// Code generated by modernc.org/undup from the per-target sqlite_*.go files; DO NOT EDIT.

//go:build (freebsd && 386) || (freebsd && amd64) || (freebsd && arm) || (freebsd && arm64)

package sqlite3

import (
	"unsafe"

	"modernc.org/libc"
)

const AT_EMPTY_PATH = 16384

const CLK_TCK = 128

const CLOCKS_PER_SEC = 128

const CLOCK_MONOTONIC = 4

const CLOCK_MONOTONIC_COARSE = 12

const CLOCK_MONOTONIC_FAST = 12

const CLOCK_MONOTONIC_PRECISE = 11

const CLOCK_PROCESS_CPUTIME_ID = 15

const CLOCK_REALTIME_COARSE = 10

const CLOCK_REALTIME_FAST = 10

const CLOCK_REALTIME_PRECISE = 9

const CLOCK_SECOND = 13

const CLOCK_THREAD_CPUTIME_ID = 14

const CLOCK_UPTIME_FAST = 8

const CLOCK_UPTIME_PRECISE = 7

const CLOSE_RANGE_CLOEXEC = 4

const CPUCLOCK_WHICH_PID = 0

const CPUCLOCK_WHICH_TID = 1

type Dl_serinfo = TDl_serinfo

type Dl_serpath = TDl_serpath

const EBADMSG = 89

const ECANCELED = 85

const ECAPMODE = 94

const EDOOFUS = 88

const EILSEQ = 86

const EINTEGRITY = 97

const ELAST = 97

const EMULTIHOP = 90

const ENOATTR = 87

const ENOLINK = 91

const ENOTCAPABLE = 93

const ENOTRECOVERABLE = 95

const EOWNERDEAD = 96

const EPROTO = 92

const FDSYNC = 16777216

const FD_NONE = -200

const FRDAHEAD = 512

const F_ADD_SEALS = 19

const F_CANCEL = 5

const F_DUP2FD = 10

const F_DUP2FD_CLOEXEC = 18

const F_DUPFD_CLOEXEC = 17

const F_GETLK = 11

const F_GET_SEALS = 20

const F_ISUNIONSTACK = 21

const F_KINFO = 22

const F_OGETLK = 7

const F_OSETLK = 8

const F_OSETLKW = 9

const F_RDAHEAD = 16

const F_READAHEAD = 15

const F_SETLK = 12

const F_SETLKW = 13

const F_SETLK_REMOTE = 14

const F_UNLCKSYS = 4

const H4DISC = 7

const INHERIT_COPY = 1

const INHERIT_NONE = 2

const INHERIT_SHARE = 0

const INHERIT_ZERO = 3

const IOCPARM_SHIFT = 13

const KCMP_FILE = 100

const KCMP_FILEOBJ = 101

const KCMP_FILES = 102

const KCMP_SIGHAND = 103

const KCMP_VM = 104

const L_cuserid = 17

const MADV_AUTOSYNC = 7

const MADV_CORE = 9

const MADV_NOCORE = 8

const MADV_NOSYNC = 6

const MADV_PROTECT = 10

const MAP_32BIT = 524288

const MAP_ALIGNED_SUPER = 16777216

const MAP_ALIGNMENT_MASK = 4278190080

const MAP_EXCL = 16384

const MAP_GUARD = 8192

const MAP_NOCORE = 131072

const MAP_NOSYNC = 2048

const MAP_PREFAULT_READ = 262144

const MAP_RESERVED0020 = 32

const MAP_RESERVED0040 = 64

const MAP_RESERVED0100 = 256

const MAP_STACK = 1024

const MFD_HUGE_16GB = 2281701376

const MFD_HUGE_16MB = 1610612736

const MFD_HUGE_1GB = 2013265920

const MFD_HUGE_1MB = 1342177280

const MFD_HUGE_256MB = 1879048192

const MFD_HUGE_2GB = 2080374784

const MFD_HUGE_2MB = 1409286144

const MFD_HUGE_32MB = 1677721600

const MFD_HUGE_512KB = 1275068416

const MFD_HUGE_512MB = 1946157056

const MFD_HUGE_64KB = 1073741824

const MFD_HUGE_8MB = 1543503872

const MFD_HUGE_MASK = 4227858432

const MFD_HUGE_SHIFT = 26

const MINCORE_SUPER = 96

const MS_SYNC = 0

const NETGRAPHDISC = 6

const O_CLOEXEC = 1048576

const O_DSYNC = 16777216

const O_EMPTY_PATH = 33554432

const O_EXEC = 262144

const O_PATH = 4194304

const O_RESOLVE_BENEATH = 8388608

const O_SEARCH = 262144

const O_TTY_INIT = 524288

const O_VERIFY = 2097152

const RFCENVG = 2048

const RFCFDG = 4096

const RFCNAMEG = 1024

const RFENVG = 2

const RFFDG = 4

const RFFLAGS = 2416930932

const RFHIGHPID = 262144

const RFKERNELONLY = 268828672

const RFLINUXTHPN = 65536

const RFMEM = 32

const RFNAMEG = 1

const RFNOTEG = 8

const RFNOWAIT = 64

const RFPPWAIT = 2147483648

const RFPROC = 16

const RFPROCDESC = 268435456

const RFSIGSHARE = 16384

const RFSPAWN = 2147483648

const RFSTOPPED = 131072

const RFTHREAD = 8192

const RFTSIGMASK = 255

const RFTSIGSHIFT = 20

const RFTSIGZMB = 524288

const RTLD_DEEPBIND = 16384

const RTLD_DI_MAX = 6

const RTLD_DI_ORIGIN = 6

const RTLD_DI_SERINFO = 4

const RTLD_DI_SERINFOSIZE = 5

const RTLD_MODEMASK = 3

const SBT_MAX = 9223372036854775807

const SFBSD_NAMEDATTR = 1

const SHM_ALLOW_SEALING = 1

const SHM_GROW_ON_WRITE = 2

const SHM_LARGEPAGE = 4

const SHM_LARGEPAGE_ALLOC_DEFAULT = 0

const SHM_LARGEPAGE_ALLOC_HARD = 2

const SHM_LARGEPAGE_ALLOC_NOWAIT = 1

const SHM_RENAME_EXCHANGE = 2

const SHM_RENAME_NOREPLACE = 1

const SPACECTL_DEALLOC = 1

const SPACECTL_F_SUPPORTED = 0

const SWAPOFF_FORCE = 1

type TDl_serinfo = struct {
	Fdls_size    Tsize_t
	Fdls_cnt     uint32
	Fdls_serpath [1]TDl_serpath
}

type TDl_serpath = struct {
	Fdls_name  uintptr
	Fdls_flags uint32
}

const TIME_MONOTONIC = 2

const TIOCM_DCD = 64

type T_RuneEntry = struct {
	F__min   t__rune_t
	F__max   t__rune_t
	F__map   t__rune_t
	F__types uintptr
}

type Taccmode_t = int32

type Tc_caddr_t = uintptr

type Tclockinfo = struct {
	Fhz     int32
	Ftick   int32
	Fspare  int32
	Fstathz int32
	Fprofhz int32
}

type Tconstraint_handler_t = uintptr

type Tcpulevel_t = int32

type Tcpusetid_t = int32

type Tcpuwhich_t = int32

type Tdl_serinfo = TDl_serinfo

type Tdl_serpath = TDl_serpath

type Tdlfunc_t = uintptr

type Tfflags_t = uint32

type Tfiodgname_arg = struct {
	Flen1 int32
	Fbuf  uintptr
}

type Tid_t = int64

type Tkpaddr_t = uint64

type Tksize_t = uint64

type Tkssize_t = int64

type Tkvaddr_t = uint64

type Tmqd_t = uintptr

type Tpthread_addr_t = uintptr

type Tpthread_attr_t = uintptr

type Tpthread_barrier_t = uintptr

type Tpthread_barrierattr_t = uintptr

type Tpthread_cond_t = uintptr

type Tpthread_condattr_t = uintptr

type Tpthread_mutex_t = uintptr

type Tpthread_mutexattr_t = uintptr

type Tpthread_once = struct {
	Fstate int32
	Fmutex Tpthread_mutex_t
}

type Tpthread_once_t = struct {
	Fstate int32
	Fmutex Tpthread_mutex_t
}

type Tpthread_rwlock_t = uintptr

type Tpthread_rwlockattr_t = uintptr

type Tpthread_spinlock_t = uintptr

type Tpthread_startroutine_t = uintptr

type Trlim_t = int64

type Trman_res_t = uint64

type Tsbintime_t = int64

type Tshm_largepage_conf = struct {
	Fpsind        int32
	Falloc_policy int32
	Fpad          [10]int32
}

type Tvm_ooffset_t = uint64

type Tvm_pindex_t = uint64

const UF_ARCHIVE = 2048

const UF_NOUNLINK = 16

const UF_OFFLINE = 512

const UF_READONLY = 4096

const UF_REPARSE = 1024

const UF_SPARSE = 256

const UF_SYSTEM = 128

// C documentation
//
//	/*
//	** Move an existing blob handle to point to a different row of the same
//	** database table.
//	**
//	** If an error occurs, or if the specified row does not exist or does not
//	** contain a blob or text value, then an error code is returned and the
//	** database handle error code and message set. If this happens, then all
//	** subsequent calls to sqlite3_blob_xxx() functions (except blob_close())
//	** immediately return SQLITE_ABORT.
//	*/
func Xsqlite3_blob_reopen(tls *libc.TLS, pBlob uintptr, iRow Tsqlite3_int64) (r int32) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var db, p, v1 uintptr
	var rc int32
	var _ /* zErr at bp+0 */ uintptr
	_, _, _, _ = db, p, rc, v1
	p = pBlob
	if p == uintptr(0) {
		return _sqlite3MisuseError(tls, int32(106500))
	}
	db = (*TIncrblob)(unsafe.Pointer(p)).Fdb
	Xsqlite3_mutex_enter(tls, (*Tsqlite3)(unsafe.Pointer(db)).Fmutex)
	if (*TIncrblob)(unsafe.Pointer(p)).FpStmt == uintptr(0) {
		/* If there is no statement handle, then the blob-handle has
		 ** already been invalidated. Return SQLITE_ABORT in this case.
		 */
		rc = int32(SQLITE_ABORT)
	} else {
		(*TVdbe)(unsafe.Pointer((*TIncrblob)(unsafe.Pointer(p)).FpStmt)).Frc = SQLITE_OK
		rc = _blobSeekToRow(tls, p, iRow, bp)
		if rc != SQLITE_OK {
			if **(**uintptr)(__ccgo_up(bp)) != 0 {
				v1 = __ccgo_ts + 3942
			} else {
				v1 = libc.UintptrFromInt32(0)
			}
			_sqlite3ErrorWithMsg(tls, db, rc, v1, libc.VaList(bp+16, **(**uintptr)(__ccgo_up(bp))))
			_sqlite3DbFree(tls, db, **(**uintptr)(__ccgo_up(bp)))
		}
	}
	rc = _sqlite3ApiExit(tls, db, rc)
	Xsqlite3_mutex_leave(tls, (*Tsqlite3)(unsafe.Pointer(db)).Fmutex)
	return rc
}

/************** End of vdbeblob.c ********************************************/
/************** Begin file vdbesort.c ****************************************/
/*
** 2011-07-09
**
** The author disclaims copyright to this source code.  In place of
** a legal notice, here is a blessing:
**
**    May you do good and not evil.
**    May you find forgiveness for yourself and forgive others.
**    May you share freely, never taking more than you give.
**
*************************************************************************
** This file contains code for the VdbeSorter object, used in concert with
** a VdbeCursor to sort large numbers of keys for CREATE INDEX statements
** or by SELECT statements with ORDER BY clauses that cannot be satisfied
** using indexes and without LIMIT clauses.
**
** The VdbeSorter object implements a multi-threaded external merge sort
** algorithm that is efficient even if the number of elements being sorted
** exceeds the available memory.
**
** Here is the (internal, non-API) interface between this module and the
** rest of the SQLite system:
**
**    sqlite3VdbeSorterInit()       Create a new VdbeSorter object.
**
**    sqlite3VdbeSorterWrite()      Add a single new row to the VdbeSorter
**                                  object.  The row is a binary blob in the
**                                  OP_MakeRecord format that contains both
**                                  the ORDER BY key columns and result columns
**                                  in the case of a SELECT w/ ORDER BY, or
**                                  the complete record for an index entry
**                                  in the case of a CREATE INDEX.
**
**    sqlite3VdbeSorterRewind()     Sort all content previously added.
**                                  Position the read cursor on the
**                                  first sorted element.
**
**    sqlite3VdbeSorterNext()       Advance the read cursor to the next sorted
**                                  element.
**
**    sqlite3VdbeSorterRowkey()     Return the complete binary blob for the
**                                  row currently under the read cursor.
**
**    sqlite3VdbeSorterCompare()    Compare the binary blob for the row
**                                  currently under the read cursor against
**                                  another binary blob X and report if
**                                  X is strictly less than the read cursor.
**                                  Used to enforce uniqueness in a
**                                  CREATE UNIQUE INDEX statement.
**
**    sqlite3VdbeSorterClose()      Close the VdbeSorter object and reclaim
**                                  all resources.
**
**    sqlite3VdbeSorterReset()      Refurbish the VdbeSorter for reuse.  This
**                                  is like Close() followed by Init() only
**                                  much faster.
**
** The interfaces above must be called in a particular order.  Write() can
** only occur in between Init()/Reset() and Rewind().  Next(), Rowkey(), and
** Compare() can only occur in between Rewind() and Close()/Reset(). i.e.
**
**   Init()
**   for each record: Write()
**   Rewind()
**     Rowkey()/Compare()
**   Next()
**   Close()
**
** Algorithm:
**
** Records passed to the sorter via calls to Write() are initially held
** unsorted in main memory. Assuming the amount of memory used never exceeds
** a threshold, when Rewind() is called the set of records is sorted using
** an in-memory merge sort. In this case, no temporary files are required
** and subsequent calls to Rowkey(), Next() and Compare() read records
** directly from main memory.
**
** If the amount of space used to store records in main memory exceeds the
** threshold, then the set of records currently in memory are sorted and
** written to a temporary file in "Packed Memory Array" (PMA) format.
** A PMA created at this point is known as a "level-0 PMA". Higher levels
** of PMAs may be created by merging existing PMAs together - for example
** merging two or more level-0 PMAs together creates a level-1 PMA.
**
** The threshold for the amount of main memory to use before flushing
** records to a PMA is roughly the same as the limit configured for the
** page-cache of the main database. Specifically, the threshold is set to
** the value returned by "PRAGMA main.page_size" multiplied by
** that returned by "PRAGMA main.cache_size", in bytes.
**
** If the sorter is running in single-threaded mode, then all PMAs generated
** are appended to a single temporary file. Or, if the sorter is running in
** multi-threaded mode then up to (N+1) temporary files may be opened, where
** N is the configured number of worker threads. In this case, instead of
** sorting the records and writing the PMA to a temporary file itself, the
** calling thread usually launches a worker thread to do so. Except, if
** there are already N worker threads running, the main thread does the work
** itself.
**
** The sorter is running in multi-threaded mode if (a) the library was built
** with pre-processor symbol SQLITE_MAX_WORKER_THREADS set to a value greater
** than zero, and (b) worker threads have been enabled at runtime by calling
** "PRAGMA threads=N" with some value of N greater than 0.
**
** When Rewind() is called, any data remaining in memory is flushed to a
** final PMA. So at this point the data is stored in some number of sorted
** PMAs within temporary files on disk.
**
** If there are fewer than SORTER_MAX_MERGE_COUNT PMAs in total and the
** sorter is running in single-threaded mode, then these PMAs are merged
** incrementally as keys are retrieved from the sorter by the VDBE.  The
** MergeEngine object, described in further detail below, performs this
** merge.
**
** Or, if running in multi-threaded mode, then a background thread is
** launched to merge the existing PMAs. Once the background thread has
** merged T bytes of data into a single sorted PMA, the main thread
** begins reading keys from that PMA while the background thread proceeds
** with merging the next T bytes of data. And so on.
**
** Parameter T is set to half the value of the memory threshold used
** by Write() above to determine when to create a new PMA.
**
** If there are more than SORTER_MAX_MERGE_COUNT PMAs in total when
** Rewind() is called, then a hierarchy of incremental-merges is used.
** First, T bytes of data from the first SORTER_MAX_MERGE_COUNT PMAs on
** disk are merged together. Then T bytes of data from the second set, and
** so on, such that no operation ever merges more than SORTER_MAX_MERGE_COUNT
** PMAs at a time. This done is to improve locality.
**
** If running in multi-threaded mode and there are more than
** SORTER_MAX_MERGE_COUNT PMAs on disk when Rewind() is called, then more
** than one background thread may be created. Specifically, there may be
** one background thread for each temporary file on disk, and one background
** thread to merge the output of each of the others to a single PMA for
** the main thread to read from.
 */
/* #include "sqliteInt.h" */
/* #include "vdbeInt.h" */

/*
** If SQLITE_DEBUG_SORTER_THREADS is defined, this module outputs various
** messages to stderr that may be helpful in understanding the performance
** characteristics of the sorter in multi-threaded mode.
 */

/*
** Hard-coded maximum amount of data to accumulate in memory before flushing
** to a level 0 PMA. The purpose of this limit is to prevent various integer
** overflows. 512MiB.
 */

// C documentation
//
//	/*
//	** Open a new database handle.
//	*/
func Xsqlite3_open16(tls *libc.TLS, zFilename uintptr, ppDb uintptr) (r int32) {
	var pVal, zFilename8 uintptr
	var rc int32
	var v1 Tu8
	_, _, _, _ = pVal, rc, zFilename8, v1
	**(**uintptr)(__ccgo_up(ppDb)) = uintptr(0)
	rc = Xsqlite3_initialize(tls)
	if rc != 0 {
		return rc
	}
	if zFilename == uintptr(0) {
		zFilename = __ccgo_ts + 26266
	}
	pVal = _sqlite3ValueNew(tls, uintptr(0))
	_sqlite3ValueSetStr(tls, pVal, -int32(1), zFilename, uint8(SQLITE_UTF16LE), libc.UintptrFromInt32(0))
	zFilename8 = _sqlite3ValueText(tls, pVal, uint8(SQLITE_UTF8))
	if zFilename8 != 0 {
		rc = _openDatabase(tls, zFilename8, ppDb, libc.Uint32FromInt32(libc.Int32FromInt32(SQLITE_OPEN_READWRITE)|libc.Int32FromInt32(SQLITE_OPEN_CREATE)), uintptr(0))
		if rc == SQLITE_OK && !(libc.Int32FromUint16((*TSchema)(unsafe.Pointer((**(**TDb)(__ccgo_up((*Tsqlite3)(unsafe.Pointer(**(**uintptr)(__ccgo_up(ppDb)))).FaDb))).FpSchema)).FschemaFlags)&libc.Int32FromInt32(DB_SchemaLoaded) == libc.Int32FromInt32(DB_SchemaLoaded)) {
			v1 = libc.Uint8FromInt32(SQLITE_UTF16LE)
			(*Tsqlite3)(unsafe.Pointer(**(**uintptr)(__ccgo_up(ppDb)))).Fenc = v1
			(*TSchema)(unsafe.Pointer((**(**TDb)(__ccgo_up((*Tsqlite3)(unsafe.Pointer(**(**uintptr)(__ccgo_up(ppDb)))).FaDb))).FpSchema)).Fenc = v1
		}
	} else {
		rc = int32(SQLITE_NOMEM)
	}
	_sqlite3ValueFree(tls, pVal)
	return rc & int32(0xff)
}

// C documentation
//
//	/*
//	** Declare that a function has been overloaded by a virtual table.
//	**
//	** If the function already exists as a regular global function, then
//	** this routine is a no-op.  If the function does not exist, then create
//	** a new one that always throws a run-time error.
//	**
//	** When virtual tables intend to provide an overloaded function, they
//	** should call this routine to make sure the global function exists.
//	** A global function must exist in order for name resolution to work
//	** properly.
//	*/
func Xsqlite3_overload_function(tls *libc.TLS, db uintptr, zName uintptr, nArg int32) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var rc int32
	var zCopy uintptr
	_, _ = rc, zCopy
	Xsqlite3_mutex_enter(tls, (*Tsqlite3)(unsafe.Pointer(db)).Fmutex)
	rc = libc.BoolInt32(_sqlite3FindFunction(tls, db, zName, nArg, uint8(SQLITE_UTF8), uint8(0)) != uintptr(0))
	Xsqlite3_mutex_leave(tls, (*Tsqlite3)(unsafe.Pointer(db)).Fmutex)
	if rc != 0 {
		return SQLITE_OK
	}
	zCopy = Xsqlite3_mprintf(tls, __ccgo_ts+3942, libc.VaList(bp+8, zName))
	if zCopy == uintptr(0) {
		return int32(SQLITE_NOMEM)
	}
	return Xsqlite3_create_function_v2(tls, db, zName, nArg, int32(SQLITE_UTF8), zCopy, __ccgo_fp(_sqlite3InvalidFunction), uintptr(0), uintptr(0), __ccgo_fp(Xsqlite3_free))
}

// C documentation
//
//	/* Force an SQLITE_TOOBIG error. */
func Xsqlite3_result_error_toobig(tls *libc.TLS, pCtx uintptr) {
	(*Tsqlite3_context)(unsafe.Pointer(pCtx)).FisError = int32(SQLITE_TOOBIG)
	_sqlite3VdbeMemSetStr(tls, (*Tsqlite3_context)(unsafe.Pointer(pCtx)).FpOut, __ccgo_ts+5592, int64(-int32(1)), uint8(SQLITE_UTF8), libc.UintptrFromInt32(0))
}

// C documentation
//
//	/*
//	** Set the error code and error message associated with the database handle.
//	**
//	** This routine is intended to be called by outside extensions (ex: the
//	** Session extension). Internal logic should invoke sqlite3Error() or
//	** sqlite3ErrorWithMsg() directly.
//	*/
func Xsqlite3_set_errmsg(tls *libc.TLS, db uintptr, errcode int32, zMsg uintptr) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var rc int32
	_ = rc
	rc = SQLITE_OK
	if !(_sqlite3SafetyCheckOk(tls, db) != 0) {
		return _sqlite3MisuseError(tls, int32(190121))
	}
	Xsqlite3_mutex_enter(tls, (*Tsqlite3)(unsafe.Pointer(db)).Fmutex)
	if zMsg != 0 {
		_sqlite3ErrorWithMsg(tls, db, errcode, __ccgo_ts+3942, libc.VaList(bp+8, zMsg))
	} else {
		_sqlite3Error(tls, db, errcode)
	}
	rc = _sqlite3ApiExit(tls, db, rc)
	Xsqlite3_mutex_leave(tls, (*Tsqlite3)(unsafe.Pointer(db)).Fmutex)
	return rc
}

// C documentation
//
//	/************** End of stmt.c ************************************************/
//	/* Return the source-id for this library */
func Xsqlite3_sourceid(tls *libc.TLS) (r uintptr) {
	return __ccgo_ts + 42537
}

// C documentation
//
//	/*
//	** Register an unlock-notify callback.
//	**
//	** This is called after connection "db" has attempted some operation
//	** but has received an SQLITE_LOCKED error because another connection
//	** (call it pOther) in the same process was busy using the same shared
//	** cache.  pOther is found by looking at db->pBlockingConnection.
//	**
//	** If there is no blocking connection, the callback is invoked immediately,
//	** before this routine returns.
//	**
//	** If pOther is already blocked on db, then report SQLITE_LOCKED, to indicate
//	** a deadlock.
//	**
//	** Otherwise, make arrangements to invoke xNotify when pOther drops
//	** its locks.
//	**
//	** Each call to this routine overrides any prior callbacks registered
//	** on the same "db".  If xNotify==0 then any prior callbacks are immediately
//	** cancelled.
//	*/
func Xsqlite3_unlock_notify(tls *libc.TLS, db uintptr, __ccgo_fp_xNotify uintptr, _pArg uintptr) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	*(*uintptr)(unsafe.Pointer(bp)) = _pArg
	var p, v2 uintptr
	var rc int32
	_, _, _ = p, rc, v2
	rc = SQLITE_OK
	Xsqlite3_mutex_enter(tls, (*Tsqlite3)(unsafe.Pointer(db)).Fmutex)
	_enterMutex(tls)
	if __ccgo_fp_xNotify == uintptr(0) {
		_removeFromBlockedList(tls, db)
		(*Tsqlite3)(unsafe.Pointer(db)).FpBlockingConnection = uintptr(0)
		(*Tsqlite3)(unsafe.Pointer(db)).FpUnlockConnection = uintptr(0)
		(*Tsqlite3)(unsafe.Pointer(db)).FxUnlockNotify = uintptr(0)
		(*Tsqlite3)(unsafe.Pointer(db)).FpUnlockArg = uintptr(0)
	} else {
		if uintptr(0) == (*Tsqlite3)(unsafe.Pointer(db)).FpBlockingConnection {
			/* The blocking transaction has been concluded. Or there never was a
			 ** blocking transaction. In either case, invoke the notify callback
			 ** immediately.
			 */
			(*(*func(*libc.TLS, uintptr, int32))(unsafe.Pointer(&struct{ uintptr }{__ccgo_fp_xNotify})))(tls, bp, int32(1))
		} else {
			p = (*Tsqlite3)(unsafe.Pointer(db)).FpBlockingConnection
			for {
				if !(p != 0 && p != db) {
					break
				}
				goto _1
			_1:
				;
				p = (*Tsqlite3)(unsafe.Pointer(p)).FpUnlockConnection
			}
			if p != 0 {
				rc = int32(SQLITE_LOCKED) /* Deadlock detected. */
			} else {
				(*Tsqlite3)(unsafe.Pointer(db)).FpUnlockConnection = (*Tsqlite3)(unsafe.Pointer(db)).FpBlockingConnection
				(*Tsqlite3)(unsafe.Pointer(db)).FxUnlockNotify = __ccgo_fp_xNotify
				(*Tsqlite3)(unsafe.Pointer(db)).FpUnlockArg = **(**uintptr)(__ccgo_up(bp))
				_removeFromBlockedList(tls, db)
				_addToBlockedList(tls, db)
			}
		}
	}
	_leaveMutex(tls)
	if rc != 0 {
		v2 = __ccgo_ts + 26374
	} else {
		v2 = uintptr(0)
	}
	_sqlite3ErrorWithMsg(tls, db, rc, v2, 0)
	Xsqlite3_mutex_leave(tls, (*Tsqlite3)(unsafe.Pointer(db)).Fmutex)
	return rc
}

// C documentation
//
//	/*
//	** Provide a database schema to the changegroup object.
//	*/
func Xsqlite3changegroup_schema(tls *libc.TLS, pGrp uintptr, db uintptr, zDb uintptr) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var rc int32
	_ = rc
	rc = SQLITE_OK
	if (*Tsqlite3_changegroup)(unsafe.Pointer(pGrp)).FpList != 0 || (*Tsqlite3_changegroup)(unsafe.Pointer(pGrp)).Fdb != 0 {
		/* Cannot add a schema after one or more calls to sqlite3changegroup_add(),
		 ** or after sqlite3changegroup_schema() has already been called. */
		rc = int32(SQLITE_MISUSE)
	} else {
		(*Tsqlite3_changegroup)(unsafe.Pointer(pGrp)).FzDb = Xsqlite3_mprintf(tls, __ccgo_ts+3942, libc.VaList(bp+8, zDb))
		if (*Tsqlite3_changegroup)(unsafe.Pointer(pGrp)).FzDb == uintptr(0) {
			rc = int32(SQLITE_NOMEM)
		} else {
			(*Tsqlite3_changegroup)(unsafe.Pointer(pGrp)).Fdb = db
		}
	}
	return rc
}

func Xsqlite3rbu_savestate(tls *libc.TLS, p uintptr) (r int32) {
	var pDb, zBegin, v1 uintptr
	var rc int32
	_, _, _, _ = pDb, rc, zBegin, v1
	rc = (*Tsqlite3rbu)(unsafe.Pointer(p)).Frc
	if rc == int32(SQLITE_DONE) {
		return SQLITE_OK
	}
	if (*Tsqlite3rbu)(unsafe.Pointer(p)).FeStage == int32(RBU_STAGE_OAL) {
		if rc == SQLITE_OK {
			rc = Xsqlite3_exec(tls, (*Tsqlite3rbu)(unsafe.Pointer(p)).FdbMain, __ccgo_ts+16120, uintptr(0), uintptr(0), uintptr(0))
		}
	}
	/* Sync the db file */
	if rc == SQLITE_OK && (*Tsqlite3rbu)(unsafe.Pointer(p)).FeStage == int32(RBU_STAGE_CKPT) {
		pDb = (*Trbu_file)(unsafe.Pointer((*Tsqlite3rbu)(unsafe.Pointer(p)).FpTargetFd)).FpReal
		rc = (*(*func(*libc.TLS, uintptr, int32) int32)(unsafe.Pointer(&struct{ uintptr }{(*Tsqlite3_io_methods)(unsafe.Pointer((*Tsqlite3_file)(unsafe.Pointer(pDb)).FpMethods)).FxSync})))(tls, pDb, int32(SQLITE_SYNC_NORMAL))
	}
	(*Tsqlite3rbu)(unsafe.Pointer(p)).Frc = rc
	_rbuSaveState(tls, p, (*Tsqlite3rbu)(unsafe.Pointer(p)).FeStage)
	rc = (*Tsqlite3rbu)(unsafe.Pointer(p)).Frc
	if (*Tsqlite3rbu)(unsafe.Pointer(p)).FeStage == int32(RBU_STAGE_OAL) {
		if rc == SQLITE_OK {
			rc = Xsqlite3_exec(tls, (*Tsqlite3rbu)(unsafe.Pointer(p)).FdbRbu, __ccgo_ts+16120, uintptr(0), uintptr(0), uintptr(0))
		}
		if rc == SQLITE_OK {
			if (*Tsqlite3rbu)(unsafe.Pointer(p)).FzTarget == uintptr(0) {
				v1 = __ccgo_ts + 16105
			} else {
				v1 = __ccgo_ts + 34634
			}
			zBegin = v1
			rc = Xsqlite3_exec(tls, (*Tsqlite3rbu)(unsafe.Pointer(p)).FdbRbu, zBegin, uintptr(0), uintptr(0), uintptr(0))
		}
		if rc == SQLITE_OK {
			rc = Xsqlite3_exec(tls, (*Tsqlite3rbu)(unsafe.Pointer(p)).FdbMain, __ccgo_ts+34634, uintptr(0), uintptr(0), uintptr(0))
		}
	}
	(*Tsqlite3rbu)(unsafe.Pointer(p)).Frc = rc
	return rc
}

const _CTYPE_N = 4194304

const _CurrentRuneLocale = 0

const _MADV_DONTNEED = 4

const _MADV_NORMAL = 0

const _MADV_RANDOM = 1

const _MADV_SEQUENTIAL = 2

const _MADV_WILLNEED = 3

const _NFDBITS = 0

const _PC_ACL_EXTENDED = 59

const _PC_ACL_NFS4 = 64

const _PC_ACL_PATH_MAX = 60

const _PC_ALLOC_SIZE_MIN = 10

const _PC_ASYNC_IO = 53

const _PC_CAP_PRESENT = 61

const _PC_DEALLOC_PRESENT = 65

const _PC_FILESIZEBITS = 12

const _PC_INF_PRESENT = 62

const _PC_MAC_PRESENT = 63

const _PC_MIN_HOLE_SIZE = 21

const _PC_PRIO_IO = 54

const _PC_SYMLINK_MAX = 18

const _PC_SYNC_IO = 55

const _POSIX2_SW_DEV = -1

const _POSIX2_VERSION = 199212

const _POSIX_ADVISORY_INFO = 200112

const _POSIX_PRIORITY_SCHEDULING = 0

const _POSIX_REALTIME_SIGNALS = 200112

const _POSIX_SHARED_MEMORY_OBJECTS = 200112

const _POSIX_THREAD_PRIORITY_SCHEDULING = 200112

const _POSIX_THREAD_PRIO_INHERIT = 200112

const _POSIX_THREAD_SAFE_FUNCTIONS = -1

const _PROT_ALL = 7

const _PROT_MAX_SHIFT = 16

const _RUNE_MAGIC_1 = "RuneMagi"

type _RuneLocale = T_RuneLocale

/*
 * POSIX.1-2001 specifies _tolower() and _toupper() to be macros equivalent to
 * tolower() and toupper() respectively, minus extra checking to ensure that
 * the argument is a lower or uppercase letter respectively.  We've chosen to
 * implement these macros with the same error checking as tolower() and
 * toupper() since this doesn't violate the specification itself, only its
 * intent.  We purposely leave _tolower() and _toupper() undocumented to
 * discourage their use.
 *
 * XXX isascii() and toascii() should similarly be undocumented.
 */

/*
** Use a macro to replace memcpy() if compiled with SQLITE_INLINE_MEMCPY.
** This allows better measurements of where memcpy() is used when running
** cachegrind.  But this macro version of memcpy() is very slow so it
** should not be used in production.  This is a performance measurement
** hack only.
 */

/*
** If compiling for a processor that lacks floating point support,
** substitute integer for floating-point
 */

/*
** OMIT_TEMPDB is set to 1 if SQLITE_OMIT_TEMPDB is defined, or 0
** afterward. Having this macro allows us to cause the C compiler
** to omit code used by TEMP tables without messy #ifndef statements.
 */

/*
** The "file format" number is an integer that is incremented whenever
** the VDBE-level file format changes.  The following macros define the
** the default file format for new databases and the maximum file format
** that the library can read.
 */

/*
** Determine whether triggers are recursive by default.  This can be
** changed at run-time using a pragma.
 */

/*
** Provide a default value for SQLITE_TEMP_STORE in case it is not specified
** on the command-line
 */

/*
** If no value has been provided for SQLITE_MAX_WORKER_THREADS, or if
** SQLITE_TEMP_STORE is set to 3 (never use temporary files), set it
** to zero.
 */

/*
** The default initial allocation for the pagecache when using separate
** pagecaches for each database connection.  A positive number is the
** number of pages.  A negative number N translations means that a buffer
** of -1024*N bytes is allocated and used for as many pages as it will hold.
**
** The default value of "20" was chosen to minimize the run-time of the
** speedtest1 test program with options: --shrink-memory --reprepare
 */

/*
** Default value for the SQLITE_CONFIG_SORTERREF_SIZE option.
 */

/*
** The compile-time options SQLITE_MMAP_READWRITE and
** SQLITE_ENABLE_BATCH_ATOMIC_WRITE are not compatible with one another.
** You must choose one or the other (or neither) but not both.
 */

/*
** GCC does not define the offsetof() macro so we'll have to do it
** ourselves.
 */

/*
** sizeof64() is like sizeof(), but always returns a 64-bit value, even
** on 32-bit builds. This can help to avoid overflow by ensuring 64-bit
** arithmetic is used consistently in both 32-bit and 64-bit builds.
 */

/*
** Work around C99 "flex-array" syntax for pre-C99 compilers, so as
** to avoid complaints from -fsanitize=strict-bounds.
 */

/*
** Macros to compute minimum and maximum of two numbers.
 */

/*
** Swap two objects of type TYPE.
 */

/*
** Check to see if this machine uses EBCDIC.  (Yes, believe it or
** not, there are still machines out there that use EBCDIC.)
 */

const _SC_CPUSET_SIZE = 122

const _SC_MAPPED_FILES = 29

const _SC_PAGESIZE = 47

const _SC_PAGE_SIZE = 47

const _SC_XOPEN_XCU_VERSION = 117

const _SIG_MAXSIG = 128

const _SIG_WORDS = 4

const _V6_ILP32_OFFBIG = 0

const _V6_LP64_OFF64 = 0

const _V6_LPBIG_OFFBIG = -1

const _XLOCALE_INLINE = 0

const _XLOCALE_RUN_FUNCTIONS_DEFINED = 1

const _XOPEN_CRYPT = -1

const __CC_SUPPORTS___INLINE = 1

const __CHAR_BIT = 8

const __EXT1_VISIBLE = 1

const __INT_MAX = 2147483647

const __INT_MIN = -2147483648

const __ISO_C_VISIBLE = 2023

const __KPRINTF_ATTRIBUTE__ = 1

const __LLONG_MAX = 9223372036854775807

const __LLONG_MIN = -9223372036854775808

const __OFF_MAX = 9223372036854775807

const __OFF_MIN = -9223372036854775808

const __QUAD_MAX = 9223372036854775807

const __QUAD_MIN = -9223372036854775808

const __S2OAP = 1

const __SCHAR_MAX = 127

const __SCHAR_MIN = -128

const __SHRT_MAX = 32767

const __SHRT_MIN = -32768

const __STDC_MB_MIGHT_NEQ_WC__ = 1

const __UCHAR_MAX = 255

const __UINT_MAX = 4294967295

const __ULLONG_MAX = 18446744073709551615

const __UQUAD_MAX = 18446744073709551615

const __USHRT_MAX = 65535

const __VERSION__ = "FreeBSD Clang 19.1.7 (https://github.com/llvm/llvm-project.git llvmorg-19.1.7-0-gcd708029e0b2)"

const __WORD_BIT = 32

const __XSI_VISIBLE = 800

type ___wchar_t = T___wchar_t

var __ccgo_ts1 = "ATOMIC_INTRINSICS=1\x00COMPILER=clang-19.1.7\x00DEFAULT_AUTOVACUUM\x00DEFAULT_CACHE_SIZE=-2000\x00DEFAULT_FILE_FORMAT=4\x00DEFAULT_JOURNAL_SIZE_LIMIT=-1\x00DEFAULT_MEMSTATUS=0\x00DEFAULT_MMAP_SIZE=0\x00DEFAULT_PAGE_SIZE=4096\x00DEFAULT_PCACHE_INITSZ=20\x00DEFAULT_RECURSIVE_TRIGGERS\x00DEFAULT_SECTOR_SIZE=4096\x00DEFAULT_SYNCHRONOUS=2\x00DEFAULT_WAL_AUTOCHECKPOINT=1000\x00DEFAULT_WAL_SYNCHRONOUS=2\x00DEFAULT_WORKER_THREADS=0\x00DIRECT_OVERFLOW_READ\x00DISABLE_INTRINSIC\x00ENABLE_COLUMN_METADATA\x00ENABLE_DBPAGE_VTAB\x00ENABLE_DBSTAT_VTAB\x00ENABLE_FTS5\x00ENABLE_GEOPOLY\x00ENABLE_MATH_FUNCTIONS\x00ENABLE_MEMORY_MANAGEMENT\x00ENABLE_OFFSET_SQL_FUNC\x00ENABLE_PREUPDATE_HOOK\x00ENABLE_RBU\x00ENABLE_RTREE\x00ENABLE_SESSION\x00ENABLE_SNAPSHOT\x00ENABLE_STAT4\x00ENABLE_UNLOCK_NOTIFY\x00LIKE_DOESNT_MATCH_BLOBS\x00MALLOC_SOFT_LIMIT=1024\x00MAX_ATTACHED=10\x00MAX_COLUMN=2000\x00MAX_COMPOUND_SELECT=500\x00MAX_DEFAULT_PAGE_SIZE=8192\x00MAX_EXPR_DEPTH=1000\x00MAX_FUNCTION_ARG=1000\x00MAX_LENGTH=1000000000\x00MAX_LIKE_PATTERN_LENGTH=50000\x00MAX_MMAP_SIZE=0x7fff0000\x00MAX_PAGE_COUNT=0xfffffffe\x00MAX_PAGE_SIZE=65536\x00MAX_SQL_LENGTH=1000000000\x00MAX_TRIGGER_DEPTH=1000\x00MAX_VARIABLE_NUMBER=32766\x00MAX_VDBE_OP=250000000\x00MAX_WORKER_THREADS=8\x00MUTEX_NOOP\x00SOUNDEX\x00SYSTEM_MALLOC\x00TEMP_STORE=1\x00THREADSAFE=1\x00ANY\x00BLOB\x00INT\x00INTEGER\x00REAL\x00TEXT\x0020b:20e\x0020c:20e\x0020e\x0040f-21a-21d\x00now\x00subsec\x00subsecond\x00local time unavailable\x00auto\x00ceiling\x00floor\x00julianday\x00localtime\x00unixepoch\x00utc\x00weekday \x00start of \x00month\x00year\x00day\x0040f\x0050f\x0040f-20a-20d\x0050f-20a-20d\x00%02d\x00%2d\x00%06.3f\x00%04d-%02d-%02d\x00%04d\x00%03d\x00%.16g\x00PM\x00pm\x00AM\x00am\x00%02d:%02d\x00%.3f\x00%lld\x00%02d:%02d:%02d\x00%c%04d-%02d-%02d %02d:%02d:%06.3f\x00date\x00time\x00datetime\x00strftime\x00timediff\x00current_time\x00current_timestamp\x00current_date\x00failed to allocate %u bytes of memory\x00failed memory resize %u to %u bytes\x00out of memory\x00%\x00null\x00NaN\x00-Inf\x00\x00NULL\x00(NULL)\x00unistr('\x000123456789abcdef\x00.\x00(join-%u)\x00%u-ROW VALUES CLAUSE\x00(subquery-%u)\x00unrecognized token: \"%s\"\x00922337203685477580\x00+- \n\t0123456789\x000\x00API call with %s database connection pointer\x00unopened\x00invalid\x00Savepoint\x00AutoCommit\x00Transaction\x00Checkpoint\x00JournalMode\x00Vacuum\x00VFilter\x00VUpdate\x00Init\x00Goto\x00Gosub\x00InitCoroutine\x00Yield\x00MustBeInt\x00Jump\x00Once\x00If\x00IfNot\x00IsType\x00Not\x00IfNullRow\x00SeekLT\x00SeekLE\x00SeekGE\x00SeekGT\x00IfNotOpen\x00IfNoHope\x00NoConflict\x00NotFound\x00Found\x00SeekRowid\x00NotExists\x00Last\x00IfSizeBetween\x00SorterSort\x00Sort\x00Rewind\x00IfEmpty\x00SorterNext\x00Prev\x00Next\x00IdxLE\x00IdxGT\x00Or\x00And\x00IdxLT\x00IdxGE\x00IFindKey\x00RowSetRead\x00RowSetTest\x00Program\x00IsNull\x00NotNull\x00Ne\x00Eq\x00Gt\x00Le\x00Lt\x00Ge\x00ElseEq\x00FkIfZero\x00IfPos\x00IfNotZero\x00DecrJumpZero\x00IncrVacuum\x00VNext\x00Filter\x00PureFunc\x00Function\x00Return\x00EndCoroutine\x00HaltIfNull\x00Halt\x00Integer\x00Int64\x00String\x00BeginSubrtn\x00Null\x00SoftNull\x00Blob\x00Variable\x00Move\x00Copy\x00SCopy\x00IntCopy\x00FkCheck\x00ResultRow\x00CollSeq\x00AddImm\x00RealAffinity\x00Cast\x00Permutation\x00Compare\x00IsTrue\x00ZeroOrNull\x00Offset\x00Column\x00TypeCheck\x00Affinity\x00MakeRecord\x00Count\x00ReadCookie\x00SetCookie\x00BitAnd\x00BitOr\x00ShiftLeft\x00ShiftRight\x00Add\x00Subtract\x00Multiply\x00Divide\x00Remainder\x00Concat\x00ReopenIdx\x00OpenRead\x00BitNot\x00OpenWrite\x00OpenDup\x00String8\x00OpenAutoindex\x00OpenEphemeral\x00SorterOpen\x00SequenceTest\x00OpenPseudo\x00Close\x00ColumnsUsed\x00SeekScan\x00SeekHit\x00Sequence\x00NewRowid\x00Insert\x00RowCell\x00Delete\x00ResetCount\x00SorterCompare\x00SorterData\x00RowData\x00Rowid\x00NullRow\x00SeekEnd\x00IdxInsert\x00SorterInsert\x00IdxDelete\x00DeferredSeek\x00IdxRowid\x00FinishSeek\x00Destroy\x00Clear\x00ResetSorter\x00CreateBtree\x00SqlExec\x00ParseSchema\x00LoadAnalysis\x00DropTable\x00Real\x00DropIndex\x00DropTrigger\x00IntegrityCk\x00RowSetAdd\x00Param\x00FkCounter\x00MemMax\x00OffsetLimit\x00AggInverse\x00AggStep\x00AggStep1\x00AggValue\x00AggFinal\x00Expire\x00CursorLock\x00CursorUnlock\x00TableLock\x00VBegin\x00VCreate\x00VDestroy\x00VOpen\x00VCheck\x00VInitIn\x00VColumn\x00VRename\x00Pagecount\x00MaxPgcnt\x00ClrSubtype\x00GetSubtype\x00SetSubtype\x00FilterAdd\x00Trace\x00CursorHint\x00ReleaseReg\x00Noop\x00Explain\x00Abortable\x00open\x00close\x00access\x00getcwd\x00stat\x00fstat\x00ftruncate\x00fcntl\x00read\x00pread\x00pread64\x00write\x00pwrite\x00pwrite64\x00fchmod\x00fallocate\x00unlink\x00openDirectory\x00mkdir\x00rmdir\x00fchown\x00geteuid\x00mmap\x00munmap\x00mremap\x00getpagesize\x00readlink\x00lstat\x00ioctl\x00attempt to open \"%s\" as file descriptor %d\x00/dev/null\x00os_unix.c:%d: (%d) %s(%s) - %s\x00cannot fstat db file %s\x00file unlinked while open: %s\x00multiple links to file: %s\x00file renamed while open: %s\x00%s\x00full_fsync\x00%s-shm\x00readonly_shm\x00psow\x00unix-excl\x00%s.lock\x00/var/tmp\x00/usr/tmp\x00/tmp\x00SQLITE_TMPDIR\x00TMPDIR\x00%s/etilqs_%llx%c\x00modeof\x00fsync\x00/dev/urandom\x00unix\x00unix-none\x00unix-dotfile\x00memdb\x00memdb(%p,%lld)\x00PRAGMA \"%w\".page_count\x00BEGIN IMMEDIATE; COMMIT;\x00ATTACH x AS %Q\x00-mj\x00recovered %d pages from %s\x00-journal\x00-wal\x00nolock\x00immutable\x00PRAGMA table_list\x00recovered %d frames from WAL file %s\x00cannot limit WAL size: %s\x00:memory:\x00@  \x00\n\x00invalid page number %u\x002nd reference to page %u\x00Failed to read ptrmap key=%u\x00Bad ptr map entry key=%u expected=(%u,%u) got=(%u,%u)\x00failed to get page %u\x00freelist leaf count too big on page %u\x00size\x00overflow list length\x00%s is %u but should be %u\x00Tree %u page %u: \x00unable to get the page. error code=%d\x00btreeInitPage() returns error code %d\x00free space corruption\x00Tree %u page %u cell %u: \x00Tree %u page %u right child: \x00Offset %u out of range %u..%u\x00Extends off end of page\x00Rowid %lld out of order\x00Child page depth differs\x00Multiple uses for byte %u of page %u\x00Fragmentation of %u bytes reported as %u on page %u\x00Freelist: \x00max rootpage (%u) disagrees with header (%u)\x00incremental_vacuum enabled with a max rootpage of zero\x00Page %u: never used\x00Page %u: pointer map referenced\x00unknown database %s\x00destination database is in use\x00source and destination must be distinct\x00.0\x00%!.*g\x00-\x00%s%s\x00k(%d\x00BINARY\x00B\x00N.\x00,%s%s%s\x00)\x00?\x008\x0016LE\x0016BE\x00%.18s-%s\x00%s(%d)\x00%d\x00(blob)\x00vtab:%p\x00%c%u\x00]\x00program\x00subrtnsig:%d,%s\x00%.4c%s%.16c\x00MJ delete: %s\x00MJ collide: %s\x00-mj%06X9%02X\x00FOREIGN KEY constraint failed\x00a CHECK constraint\x00a generated column\x00an index\x00non-deterministic use of %s() in %s\x00API called with finalized prepared statement\x00API called with NULL prepared statement\x00string or blob too big\x00addr\x00opcode\x00p1\x00p2\x00p3\x00p4\x00p5\x00comment\x00id\x00parent\x00notused\x00detail\x00bind on a busy prepared statement: [%s]\x00-- \x00%!.15g\x00'%.*q'\x00zeroblob(%d)\x00x'\x00%02x\x00'\x00/* %s */ \x00/* unknown trigger */ \x00statement aborts at %d: %s; [%s%s]\x00NOT NULL\x00UNIQUE\x00CHECK\x00FOREIGN KEY\x00%s constraint failed\x00%z: %s\x00cannot store %s value in %s column %s.%s\x00cannot open savepoint - SQL statements in progress\x00no such savepoint: %s\x00cannot release savepoint - SQL statements in progress\x00cannot commit transaction - SQL statements in progress\x00cannot start a transaction within a transaction\x00cannot rollback - no transaction is active\x00cannot commit - no transaction is active\x00database schema has changed\x00index corruption\x00sqlite_master\x00SELECT*FROM\"%w\".%s WHERE %s ORDER BY rowid\x00too many levels of trigger recursion\x00into\x00out of\x00cannot change %s wal mode from within a transaction\x00database table is locked: %s\x00ValueList\x00-- %s\x00real\x00integer\x00cannot open value of type %s\x00no such rowid: %lld\x00cannot open virtual table: %s\x00cannot open table without rowid: %s\x00cannot open table with generated columns: %s\x00cannot open view: %s\x00no such column: \"%s\"\x00foreign key\x00indexed\x00cannot open %s column for writing\x00sqlite_\x00sqlite_temp_master\x00sqlite_temp_schema\x00sqlite_schema\x00main\x00*\x00new\x00old\x00excluded\x00misuse of aliased aggregate %s\x00misuse of aliased window function %s\x00row value misused\x00double-quoted string literal: \"%w\"\x00coalesce\x00no such column\x00ambiguous column name\x00%s: %s.%s.%s\x00%s: %s.%s\x00%s: \"%s\" - should this be a string literal in single-quotes?\x00%s: %s\x00partial index WHERE clauses\x00index expressions\x00CHECK constraints\x00generated columns\x00%s prohibited in %s\x00the \".\" operator\x00second argument to %#T() must be a constant between 0.0 and 1.0\x00not authorized to use function: %#T\x00non-deterministic functions\x00%#T() may not be used as a window function\x00window\x00aggregate\x00misuse of %s function %#T()\x00no such function: %#T\x00wrong number of arguments to function %#T()\x00FILTER may not be used with non-aggregate %#T()\x00subqueries\x00parameters\x00%r %s BY term out of range - should be between 1 and %d\x00too many terms in ORDER BY clause\x00ORDER\x00%r ORDER BY term does not match any column in the result set\x00too many terms in %s BY clause\x00HAVING clause on a non-aggregate query\x00GROUP\x00aggregate functions are not allowed in the GROUP BY clause\x00Expression tree is too large (maximum depth %d)\x00s\x00IN(...) element has %d term%s - expected %d\x00too many arguments on function %T\x00ORDER BY may not be used with non-aggregate %#T()\x00unsafe use of %#T()\x00variable number must be between ?1 and ?%d\x00too many SQL variables\x00%d columns assigned %d values\x00too many columns in %s\x00true\x00false\x00_ROWID_\x00ROWID\x00OID\x00USING ROWID SEARCH ON TABLE %s FOR IN-OPERATOR\x00USING INDEX %s FOR IN-OPERATOR\x00sub-select returns %d columns - expected %d\x00REUSE LIST SUBQUERY %d\x00CORRELATED \x00%sLIST SUBQUERY %d\x00REUSE SUBQUERY %d\x00%sSCALAR SUBQUERY %d\x000x\x00hex literal too big: %s%#T\x00generated column loop on \"%s\"\x00blob\x00text\x00numeric\x00flexnum\x00none\x00misuse of aggregate: %#T()\x00unknown function: %#T()\x00RAISE() may only be used within a trigger-program\x00more than %d aggregate terms\x00table %s may not be altered\x00SELECT 1 FROM \"%w\".sqlite_master WHERE name NOT LIKE 'sqliteX_%%' ESCAPE 'X' AND sql NOT LIKE 'create virtual%%' AND sqlite_rename_test(%Q, sql, type, name, %d, %Q, %d)=NULL \x00SELECT 1 FROM temp.sqlite_master WHERE name NOT LIKE 'sqliteX_%%' ESCAPE 'X' AND sql NOT LIKE 'create virtual%%' AND sqlite_rename_test(%Q, sql, type, name, 1, %Q, %d)=NULL \x00UPDATE \"%w\".sqlite_master SET sql = sqlite_rename_quotefix(%Q, sql)WHERE name NOT LIKE 'sqliteX_%%' ESCAPE 'X' AND sql NOT LIKE 'create virtual%%'\x00UPDATE temp.sqlite_master SET sql = sqlite_rename_quotefix('temp', sql)WHERE name NOT LIKE 'sqliteX_%%' ESCAPE 'X' AND sql NOT LIKE 'create virtual%%'\x00there is already another table or index with this name: %s\x00table\x00view %s may not be altered\x00UPDATE \"%w\".sqlite_master SET sql = sqlite_rename_table(%Q, type, name, sql, %Q, %Q, %d) WHERE (type!='index' OR tbl_name=%Q COLLATE nocase)AND   name NOT LIKE 'sqliteX_%%' ESCAPE 'X'\x00UPDATE %Q.sqlite_master SET tbl_name = %Q, name = CASE WHEN type='table' THEN %Q WHEN name LIKE 'sqliteX_autoindex%%' ESCAPE 'X'      AND type='index' THEN 'sqlite_autoindex_' || %Q || substr(name,%d+18) ELSE name END WHERE tbl_name=%Q COLLATE nocase AND (type='table' OR type='index' OR type='trigger');\x00sqlite_sequence\x00UPDATE \"%w\".sqlite_sequence set name = %Q WHERE name = %Q\x00UPDATE sqlite_temp_schema SET sql = sqlite_rename_table(%Q, type, name, sql, %Q, %Q, 1), tbl_name = CASE WHEN tbl_name=%Q COLLATE nocase AND   sqlite_rename_test(%Q, sql, type, name, 1, 'after rename', 0) THEN %Q ELSE tbl_name END WHERE type IN ('view', 'trigger')\x00after rename\x00SELECT raise(ABORT,%Q) FROM \"%w\".\"%w\"\x00Cannot add a PRIMARY KEY column\x00Cannot add a UNIQUE column\x00Cannot add a REFERENCES column with non-NULL default value\x00Cannot add a NOT NULL column with default value NULL\x00Cannot add a column with non-constant default\x00cannot add a STORED column\x00UPDATE \"%w\".sqlite_master SET sql = printf('%%.%ds, ',sql) || %Q || substr(sql,1+length(printf('%%.%ds',sql))) WHERE type = 'table' AND name = %Q\x00SELECT CASE WHEN quick_check GLOB 'CHECK*' THEN raise(ABORT,'CHECK constraint failed') WHEN quick_check GLOB 'non-* value in*' THEN raise(ABORT,'type mismatch on DEFAULT') ELSE raise(ABORT,'NOT NULL constraint failed') END  FROM pragma_quick_check(%Q,%Q) WHERE quick_check GLOB 'CHECK*' OR quick_check GLOB 'NULL*' OR quick_check GLOB 'non-* value in*'\x00virtual tables may not be altered\x00Cannot add a column to a view\x00sqlite_altertab_%s\x00view\x00virtual table\x00rename columns of\x00drop column from\x00edit constraints of\x00cannot %s %s \"%s\"\x00no such column: \"%T\"\x00UPDATE \"%w\".sqlite_master SET sql = sqlite_rename_column(sql, type, name, %Q, %Q, %d, %Q, %d, %d) WHERE name NOT LIKE 'sqliteX_%%' ESCAPE 'X'  AND (type != 'index' OR tbl_name = %Q)\x00UPDATE temp.sqlite_master SET sql = sqlite_rename_column(sql, type, name, %Q, %Q, %d, %Q, %d, 1) WHERE type IN ('trigger', 'view')\x00 \x00error in %s %s%s%s: %s\x00CREATE \x00\"%w\" \x00%Q%s\x00%.*s%s\x00PRIMARY KEY\x00cannot drop %s column: \"%s\"\x00cannot drop column \"%s\": no other columns exist\x00UPDATE \"%w\".sqlite_master SET sql = sqlite_drop_column(%d, sql, %d) WHERE (type=='table' AND tbl_name=%Q COLLATE nocase)\x00after drop column\x00constraint may not be dropped: %s\x00no such constraint: %s\x00%.*s%s%s\x00%.*s, %s%s\x00%.*s %s%s\x00no such column: %s\x00%Q\x00UPDATE \"%w\".sqlite_master SET sql = sqlite_drop_constraint(sql, %s) WHERE type='table' AND tbl_name=%Q COLLATE nocase\x00%.*s\x00SELECT sqlite_fail('constraint failed', %d) FROM %Q.%Q AS x WHERE x.%.*s IS NULL\x00UPDATE \"%w\".sqlite_master SET sql = sqlite_add_constraint(sqlite_drop_constraint(sql, %d), %.*Q, %d) WHERE type='table' AND tbl_name=%Q COLLATE nocase\x00SELECT sqlite_fail('constraint %q already exists', %d) FROM \"%w\".sqlite_master WHERE type='table' AND tbl_name=%Q COLLATE nocase AND sqlite_find_constraint(sql, %Q)\x00SELECT sqlite_fail('constraint failed', %d) FROM %Q.%Q WHERE (%.*s) IS NOT TRUE\x00UPDATE \"%w\".sqlite_master SET sql = sqlite_add_constraint(sql, %.*Q, -1) WHERE type='table' AND tbl_name=%Q COLLATE nocase\x00sqlite_rename_column\x00sqlite_rename_table\x00sqlite_rename_test\x00sqlite_drop_column\x00sqlite_rename_quotefix\x00sqlite_drop_constraint\x00sqlite_fail\x00sqlite_add_constraint\x00sqlite_find_constraint\x00sqlite_stat1\x00tbl,idx,stat\x00sqlite_stat4\x00tbl,idx,neq,nlt,ndlt,sample\x00sqlite_stat3\x00CREATE TABLE %Q.%s(%s)\x00DELETE FROM %Q.%s WHERE %s=%Q\x00DELETE FROM %Q.%s\x00stat_init\x00stat_push\x00%llu\x00 %llu\x00%llu \x00stat_get\x00sqlite\\_%\x00BBB\x00idx\x00tbl\x00unordered*\x00sz=[0-9]*\x00noskipscan*\x00SELECT idx,count(*) FROM %Q.sqlite_stat4 GROUP BY idx COLLATE nocase\x00SELECT idx,neq,nlt,ndlt,sample FROM %Q.sqlite_stat4\x00SELECT tbl,idx,stat FROM %Q.sqlite_stat1\x00x\x00\x00too many attached databases - max %d\x00database %s is already in use\x00database is already attached\x00attached databases must use the same text encoding as main database\x00unable to open database: %s\x00no such database: %s\x00cannot detach database %s\x00database %s is locked\x00sqlite_detach\x00sqlite_attach\x00%s cannot use variables\x00%s %T cannot reference objects in database %s\x00authorizer malfunction\x00%s.%s\x00%s.%z\x00access to %z is prohibited\x00not authorized\x00pragma_\x00json\x00no such view\x00no such table\x00corrupt database\x00unknown database %T\x00object name reserved for internal use: %s\x00temporary table name must be unqualified\x00%s %T already exists\x00there is already an index named %s\x00cannot use RETURNING in a trigger\x00sqlite_returning_%p\x00too many columns on %s\x00always\x00generated\x00duplicate column name: %s\x00default value of column [%s] is not constant\x00cannot use DEFAULT on a generated column\x00generated columns cannot be part of the PRIMARY KEY\x00table \"%s\" has more than one primary key\x00AUTOINCREMENT is only allowed on an INTEGER PRIMARY KEY\x00virtual tables cannot use computed columns\x00virtual\x00stored\x00error in generated column \"%s\"\x00,\x00\n  \x00,\n  \x00\n)\x00CREATE TABLE \x00 TEXT\x00 NUM\x00 INT\x00 REAL\x00unknown datatype for %s.%s: \"%s\"\x00missing datatype for %s.%s\x00AUTOINCREMENT not allowed on WITHOUT ROWID tables\x00PRIMARY KEY missing on table %s\x00must have at least one non-generated column\x00TABLE\x00VIEW\x00CREATE %s %.*s\x00UPDATE %Q.sqlite_master SET type='%s', name=%Q, tbl_name=%Q, rootpage=#%d, sql=%Q WHERE rowid=#%d\x00CREATE TABLE %Q.sqlite_sequence(name,seq)\x00tbl_name='%q' AND type!='trigger'\x00SELECT*FROM\"%w\".\"%w\"\x00parameters are not allowed in views\x00view %s is circularly defined\x00corrupt schema\x00UPDATE %Q.sqlite_master SET rootpage=%d WHERE #%d AND rootpage=#%d\x00sqlite_stat%d\x00DELETE FROM %Q.sqlite_sequence WHERE name=%Q\x00DELETE FROM %Q.sqlite_master WHERE tbl_name=%Q and type!='trigger'\x00table %s may not be dropped\x00use DROP TABLE to delete table %s\x00use DROP VIEW to delete view %s\x00foreign key on %s should reference only one column of table %T\x00number of columns in foreign key does not match the number of columns in the referenced table\x00unknown column \"%s\" in foreign key definition\x00FIRST\x00LAST\x00unsupported use of NULLS %s\x00index\x00cannot create a TEMP index on non-TEMP table \"%s\"\x00table %s may not be indexed\x00views may not be indexed\x00virtual tables may not be indexed\x00there is already a table named %s\x00index %s already exists\x00sqlite_autoindex_%s_%d\x00expressions prohibited in PRIMARY KEY and UNIQUE constraints\x00conflicting ON CONFLICT clauses specified\x00invalid rootpage\x00 UNIQUE\x00CREATE%s INDEX %.*s\x00INSERT INTO %Q.sqlite_master VALUES('index',%Q,%Q,#%d,%Q);\x00name='%q' AND type='index'\x00no such index: %S\x00index associated with UNIQUE or PRIMARY KEY constraint cannot be dropped\x00DELETE FROM %Q.sqlite_master WHERE name=%Q AND type='index'\x00too many FROM clause terms, max: %d\x00ON\x00USING\x00a JOIN clause is required before %s\x00BEGIN\x00ROLLBACK\x00COMMIT\x00RELEASE\x00unable to open a temporary database file for storing temporary tables\x00index '%q'\x00, \x00%s.rowid\x00expressions\x00unable to identify the object to be reindexed\x00duplicate WITH table name: %s\x00no such collation sequence: %s\x00unsafe use of virtual table \"%s\"\x00table %s may not be modified\x00cannot modify %s because it is a view\x00rows deleted\x00integer overflow\x00%!.*f\x00LIKE or GLOB pattern too complex\x00ESCAPE expression must be a single character\x00%!0.17g\x00%#Q\x00invalid Unicode escape\x00?000\x00MATCH\x00like\x00implies_nonnull_row\x00expr_compare\x00expr_implies_expr\x00affinity\x00soundex\x00load_extension\x00sqlite_compileoption_used\x00sqlite_compileoption_get\x00unlikely\x00likelihood\x00likely\x00sqlite_offset\x00ltrim\x00rtrim\x00trim\x00min\x00max\x00typeof\x00subtype\x00length\x00octet_length\x00instr\x00printf\x00format\x00unicode\x00char\x00abs\x00round\x00upper\x00lower\x00hex\x00unhex\x00concat\x00concat_ws\x00ifnull\x00random\x00randomblob\x00nullif\x00sqlite_version\x00sqlite_source_id\x00sqlite_log\x00unistr\x00quote\x00unistr_quote\x00last_insert_rowid\x00changes\x00total_changes\x00replace\x00zeroblob\x00substr\x00substring\x00sum\x00total\x00avg\x00count\x00group_concat\x00string_agg\x00glob\x00ceil\x00trunc\x00ln\x00log\x00log10\x00log2\x00exp\x00pow\x00power\x00mod\x00acos\x00asin\x00atan\x00atan2\x00cos\x00sin\x00tan\x00cosh\x00sinh\x00tanh\x00acosh\x00asinh\x00atanh\x00sqrt\x00radians\x00degrees\x00pi\x00sign\x00iif\x00if\x00foreign key mismatch - \"%w\" referencing \"%w\"\x00cannot INSERT into generated column \"%s\"\x00table %S has no column named %s\x00SCAN %S\x00table %S has %d columns but %d values were supplied\x00%d values for %d columns\x00UPSERT not implemented for virtual table \"%s\"\x00cannot UPSERT a view\x00rows inserted\x00so\x00sqlite3_extension_init\x00sqlite3_\x00lib\x00_init\x00no entry point [%s] in shared library [%s]\x00error during initialization: %s\x00unable to open shared library [%.*s]\x00automatic extension loading failed: %s\x00seq\x00from\x00to\x00on_update\x00on_delete\x00match\x00cid\x00name\x00type\x00notnull\x00dflt_value\x00pk\x00hidden\x00builtin\x00enc\x00narg\x00flags\x00schema\x00ncol\x00wr\x00strict\x00seqno\x00desc\x00coll\x00key\x00unique\x00origin\x00partial\x00wdth\x00hght\x00flgs\x00rowid\x00fkid\x00busy\x00checkpointed\x00file\x00database\x00status\x00cache_size\x00timeout\x00analysis_limit\x00application_id\x00auto_vacuum\x00automatic_index\x00busy_timeout\x00cache_spill\x00case_sensitive_like\x00cell_size_check\x00checkpoint_fullfsync\x00collation_list\x00compile_options\x00count_changes\x00data_version\x00database_list\x00default_cache_size\x00defer_foreign_keys\x00empty_result_callbacks\x00encoding\x00foreign_key_check\x00foreign_key_list\x00foreign_keys\x00freelist_count\x00full_column_names\x00fullfsync\x00function_list\x00hard_heap_limit\x00ignore_check_constraints\x00incremental_vacuum\x00index_info\x00index_list\x00index_xinfo\x00integrity_check\x00journal_mode\x00journal_size_limit\x00legacy_alter_table\x00locking_mode\x00max_page_count\x00mmap_size\x00module_list\x00optimize\x00page_count\x00page_size\x00pragma_list\x00query_only\x00quick_check\x00read_uncommitted\x00recursive_triggers\x00reverse_unordered_selects\x00schema_version\x00secure_delete\x00short_column_names\x00shrink_memory\x00soft_heap_limit\x00synchronous\x00table_info\x00table_list\x00table_xinfo\x00temp_store\x00temp_store_directory\x00threads\x00trusted_schema\x00user_version\x00wal_autocheckpoint\x00wal_checkpoint\x00writable_schema\x00exclusive\x00normal\x00full\x00incremental\x00memory\x00temporary storage cannot be changed from within a transaction\x00SET NULL\x00SET DEFAULT\x00CASCADE\x00RESTRICT\x00NO ACTION\x00delete\x00persist\x00off\x00truncate\x00wal\x00utf8\x00utf16le\x00utf16be\x00w\x00a\x00sissii\x00-%T\x00fast\x00not a writable directory\x00Safety level may not be changed inside a transaction\x00reset\x00issisii\x00issisi\x00SELECT*FROM\"%w\"\x00shadow\x00sssiii\x00iisX\x00isiX\x00c\x00u\x00isisi\x00iss\x00is\x00iissssss\x00NONE\x00siX\x00*** in database %s ***\n\x00wrong # of entries in index \x00row not in PRIMARY KEY order for %s\x00NULL value in %s.%s\x00non-%s value in %s.%s\x00NUMERIC value in %s.%s\x00C\x00TEXT value in %s.%s\x00CHECK constraint failed in %s\x00index %s stores an imprecise floating-point value for row \x00row \x00 missing from index \x00rowid not at end-of-record for row \x00 of index \x00 values differ from index \x00non-unique entry in index \x00ok\x00UTF8\x00UTF-8\x00UTF-16le\x00UTF-16be\x00UTF16le\x00UTF16be\x00UTF-16\x00UTF16\x00unsupported encoding: %s\x00restart\x00noop\x00ANALYZE \"%w\".\"%w\"\x00CREATE TABLE x\x00%c\"%s\"\x00(\"%s\"\x00,arg HIDDEN\x00,schema HIDDEN\x00PRAGMA \x00%Q.\x00=%Q\x00rename\x00drop column\x00add column\x00drop constraint\x00error in %s %s after %s: %s\x00malformed database schema (%s)\x00%z - %s\x00orphan index\x001\x00CREATE TABLE x(type text,name text,tbl_name text,rootpage int,sql text)\x00unsupported file format\x00SELECT*FROM\"%w\".%s ORDER BY rowid\x00database schema is locked: %s\x00statement too long\x00unknown join type: %T%s%T%s%T\x00a NATURAL join may not have an ON or USING clause\x00cannot join using column %s - column not present in both tables\x00ambiguous reference to %s in USING()\x00CREATE BLOOM FILTER\x00UNION ALL\x00INTERSECT\x00EXCEPT\x00UNION\x00USE TEMP B-TREE FOR %s\x00LAST TERM OF \x00USE TEMP B-TREE FOR %sORDER BY\x00USE TEMP B-TREE FOR LAST %d TERMS OF ORDER BY\x00column%d\x00%.*z:%u\x00NUM\x00VIEWs and/or subqueries nested too deep\x00cannot use window functions in recursive queries\x00recursive aggregate queries not supported\x00SETUP\x00RECURSIVE STEP\x00S\x00SCAN %d CONSTANT ROW%s\x00COMPOUND QUERY\x00LEFT-MOST SUBQUERY\x00all VALUES must have the same number of terms\x00SELECTs to the left and right of %s do not have the same number of result columns\x00MERGE (%s)\x00LEFT\x00RIGHT\x00no such index: %s\x00'%s' is not a function\x00no such index: \"%s\"\x00multiple references to recursive table: %s\x00circular reference: %s\x00table %s has %d values for %d columns\x00multiple recursive references: %s\x00recursive reference in a subquery: %s\x00%!S\x00too many references to \"%s\": max 65535\x00access to view \"%s\" prohibited\x00..%s\x00%s.%s.%s\x00no such table: %s\x00no tables specified\x00too many columns in result set\x00DISTINCT aggregates must have exactly one argument\x00USE TEMP B-TREE FOR %s(DISTINCT)\x00USE TEMP B-TREE FOR %s(ORDER BY)\x00 USING COVERING INDEX \x00SCAN %s%s%s\x00table-function argument\x00ON clause\x00%s references tables to its right\x00target object/alias may not appear in FROM clause: %s\x00expected %d columns for '%s' but got %d\x00CO-ROUTINE %!S\x00MATERIALIZE %!S\x00DISTINCT\x00GROUP BY\x00sqlite3_get_table() called with two or more incompatible queries\x00temporary trigger may not have qualified name\x00trigger\x00cannot create triggers on virtual tables\x00cannot create triggers on shadow tables\x00trigger %T already exists\x00cannot create trigger on system table\x00BEFORE\x00AFTER\x00cannot create %s trigger on view: %S\x00cannot create INSTEAD OF trigger on table: %S\x00trigger \"%s\" may not write to shadow table \"%s\"\x00INSERT INTO %Q.sqlite_master VALUES('trigger',%Q,%Q,0,'CREATE TRIGGER %q')\x00type='trigger' AND name='%q'\x00qualified table names are not allowed on INSERT, UPDATE, and DELETE statements within triggers\x00no such trigger: %S\x00DELETE FROM %Q.sqlite_master WHERE name=%Q AND type='trigger'\x00DELETE\x00UPDATE\x00%s RETURNING is not available on virtual tables\x00RETURNING may not use \"TABLE.*\" wildcards\x00triggers nested too deep\x00-- TRIGGER %s\x00cannot UPDATE generated column \"%s\"\x00rows updated\x00%r \x00%sON CONFLICT clause does not match any PRIMARY KEY or UNIQUE constraint\x00CRE\x00INS\x00cannot VACUUM from within a transaction\x00cannot VACUUM - SQL statements in progress\x00non-text filename\x00vacuum_%016llx\x00ATTACH %Q AS %s\x00output file already exists\x00reserve\x00SELECT sql FROM \"%w\".sqlite_schema WHERE type='table'AND name<>'sqlite_sequence' AND coalesce(rootpage,1)>0\x00SELECT sql FROM \"%w\".sqlite_schema WHERE type='index'\x00SELECT'INSERT INTO %s.'||quote(name)||' SELECT*FROM\"%w\".'||quote(name)FROM %s.sqlite_schema WHERE type='table'AND coalesce(rootpage,1)>0\x00INSERT INTO %s.sqlite_schema SELECT*FROM \"%w\".sqlite_schema WHERE type IN('view','trigger') OR(type='table'AND rootpage=0)\x00CREATE VIRTUAL TABLE %T\x00UPDATE %Q.sqlite_master SET type='table', name=%Q, tbl_name=%Q, rootpage=0, sql=%Q WHERE rowid=#%d\x00name=%Q AND sql=%Q\x00vtable constructor called recursively: %s\x00vtable constructor failed: %s\x00vtable constructor did not declare schema: %s\x00no such module: %s\x00syntax error\x00<expr>\x00 AND \x00(\x00 (\x00%s=?\x00ANY(%s)\x00>\x00<\x00SEARCH\x00SCAN\x00 EXISTS\x00%s %S%s\x00AUTOMATIC PARTIAL COVERING INDEX\x00AUTOMATIC COVERING INDEX\x00COVERING INDEX %s\x00INDEX %s\x00 USING \x00 USING INTEGER PRIMARY KEY (%s\x00>? AND %s\x00%c?)\x00 VIRTUAL TABLE INDEX \x000x%x:%s\x00%d:%s\x00 LEFT-JOIN\x00BLOOM FILTER ON %S (\x00rowid=?\x00MULTI-INDEX OR\x00INDEX %d\x00RIGHT-JOIN %s\x00regexp\x00NOCASE\x00too many arguments on %s() - max %d\x00automatic index on %s(%s)\x00auto-index\x00%s.xBestIndex malfunction\x00abbreviated query algorithm search\x00no query solution\x00at most %d tables in a join\x00SCAN CONSTANT ROW\x00internal query planner error\x00second argument to nth_value must be a positive integer\x00argument of ntile must be a positive integer\x00no such window: %s\x00RANGE with offset PRECEDING/FOLLOWING requires one ORDER BY expression\x00FILTER clause may only be used with aggregate window functions\x00misuse of aggregate: %s()\x00unsupported frame specification\x00PARTITION clause\x00ORDER BY clause\x00frame specification\x00cannot override %s of window: %s\x00DISTINCT is not supported for window functions\x00frame starting offset must be a non-negative integer\x00frame ending offset must be a non-negative integer\x00frame starting offset must be a non-negative number\x00frame ending offset must be a non-negative number\x00near \"%T\": syntax error\x00ORDER BY\x00LIMIT\x00%s clause should come after %s not before\x00too many terms in compound SELECT\x00syntax error after column name \"%.*s\"\x00Recursion limit\x00unknown table option: %.*s\x00set list\x00the INDEXED BY clause is not allowed on UPDATE or DELETE statements within triggers\x00the NOT INDEXED clause is not allowed on UPDATE or DELETE statements within triggers\x00incomplete input\x00unrecognized token: \"%T\"\x00%s in \"%s\"\x00create\x00temp\x00temporary\x00end\x00explain\x00unable to close due to unfinalized statements or unfinished backups\x00not an error\x00SQL logic error\x00access permission denied\x00query aborted\x00database is locked\x00database table is locked\x00attempt to write a readonly database\x00interrupted\x00disk I/O error\x00database disk image is malformed\x00unknown operation\x00database or disk is full\x00unable to open database file\x00locking protocol\x00constraint failed\x00datatype mismatch\x00bad parameter or other API misuse\x00authorization denied\x00column index out of range\x00file is not a database\x00notification message\x00warning message\x00unknown error\x00abort due to ROLLBACK\x00another row available\x00no more rows available\x00unable to delete/modify user-function due to active statements\x00unable to use function %s in the requested context\x00unknown database: %s\x00unable to delete/modify collation sequence due to active statements\x00file:\x00localhost\x00invalid uri authority: %.*s\x00vfs\x00cache\x00shared\x00private\x00mode\x00ro\x00rw\x00rwc\x00no such %s mode: %s\x00%s mode not allowed: %s\x00no such vfs: %s\x00RTRIM\x00\x00\x00\x00%s at line %d of [%.10s]\x00database corruption\x00misuse\x00cannot open file\x00no such table column: %s.%s\x00SQLITE_\x00database is deadlocked\x00array\x00object\x00JSON nested too deep\x00JSON cannot hold BLOB values\x00malformed JSON\x00inf\x009.0e999\x00infinity\x00QNaN\x00SNaN\x00json_%s() needs an odd number of arguments\x00\"\\/bfnrt\x00-9e999\x009e999\x00inity\x00\\\"\x00\\u000b\x00\\u00\x00\\u0000\x00,\n\x00: \x00*]\x00not an array element: %Q\x00JSON path too deep\x00bad JSON path: %Q\x00@\x00[\x00#\x00.\"\x00\"\x00json_object() requires an even number of arguments\x00json_object() labels must be TEXT\x00insert\x00set\x00array_insert\x00    \x00FLAGS parameter to json_valid() must be between 1 and 15\x00[]\x00}\x00{}\x00CREATE TABLE x(key,value,type,atom,id,parent,fullkey,path,json HIDDEN,root HIDDEN)\x00[%lld]\x00.\"%.*s\"\x00.%.*s\x00$\x00jsonb\x00json_array\x00jsonb_array\x00json_array_insert\x00jsonb_array_insert\x00json_array_length\x00json_error_position\x00json_extract\x00jsonb_extract\x00->\x00->>\x00json_insert\x00jsonb_insert\x00json_object\x00jsonb_object\x00json_patch\x00jsonb_patch\x00json_pretty\x00json_quote\x00json_remove\x00jsonb_remove\x00json_replace\x00jsonb_replace\x00json_set\x00jsonb_set\x00json_type\x00json_valid\x00json_group_array\x00jsonb_group_array\x00json_group_object\x00jsonb_group_object\x00json_each\x00json_tree\x00jsonb_each\x00jsonb_tree\x00data\x00DROP TABLE '%q'.'%q_node';DROP TABLE '%q'.'%q_rowid';DROP TABLE '%q'.'%q_parent';\x00RtreeMatchArg\x00SELECT * FROM %Q.%Q\x00UNIQUE constraint failed: %s.%s\x00rtree constraint failed: %s.(%s<=%s)\x00ALTER TABLE %Q.'%q_node'   RENAME TO \"%w_node\";ALTER TABLE %Q.'%q_parent' RENAME TO \"%w_parent\";ALTER TABLE %Q.'%q_rowid'  RENAME TO \"%w_rowid\";\x00SELECT stat FROM %Q.sqlite_stat1 WHERE tbl = '%q_rowid'\x00node\x00INSERT OR REPLACE INTO '%q'.'%q_node' VALUES(?1, ?2)\x00DELETE FROM '%q'.'%q_node' WHERE nodeno = ?1\x00SELECT nodeno FROM '%q'.'%q_rowid' WHERE rowid = ?1\x00INSERT OR REPLACE INTO '%q'.'%q_rowid' VALUES(?1, ?2)\x00DELETE FROM '%q'.'%q_rowid' WHERE rowid = ?1\x00SELECT parentnode FROM '%q'.'%q_parent' WHERE nodeno = ?1\x00INSERT OR REPLACE INTO '%q'.'%q_parent' VALUES(?1, ?2)\x00DELETE FROM '%q'.'%q_parent' WHERE nodeno = ?1\x00CREATE TABLE \"%w\".\"%w_rowid\"(rowid INTEGER PRIMARY KEY,nodeno\x00,a%d\x00);CREATE TABLE \"%w\".\"%w_node\"(nodeno INTEGER PRIMARY KEY,data);\x00CREATE TABLE \"%w\".\"%w_parent\"(nodeno INTEGER PRIMARY KEY,parentnode);\x00INSERT INTO \"%w\".\"%w_node\"VALUES(1,zeroblob(%d))\x00INSERT INTO\"%w\".\"%w_rowid\"(rowid,nodeno)VALUES(?1,?2)ON CONFLICT(rowid)DO UPDATE SET nodeno=excluded.nodeno\x00SELECT * FROM \"%w\".\"%w_rowid\" WHERE rowid=?1\x00UPDATE \"%w\".\"%w_rowid\"SET \x00a%d=coalesce(?%d,a%d)\x00a%d=?%d\x00 WHERE rowid=?1\x00PRAGMA %Q.page_size\x00SELECT length(data) FROM '%q'.'%q_node' WHERE nodeno = 1\x00undersize RTree blobs in \"%q_node\"\x00Wrong number of columns for an rtree table\x00Too few columns for an rtree table\x00Too many columns for an rtree table\x00Auxiliary rtree columns must be last\x00_node\x00CREATE TABLE x(%.*s INT\x00,%.*s\x00,%.*s REAL\x00,%.*s INT\x00);\x00{%lld\x00 %g\x00Invalid argument to rtreedepth()\x00%z%s%z\x00SELECT data FROM %Q.'%q_node' WHERE nodeno=?\x00Node %lld missing from database\x00SELECT parentnode FROM %Q.'%q_parent' WHERE nodeno=?1\x00SELECT nodeno FROM %Q.'%q_rowid' WHERE rowid=?1\x00%_rowid\x00%_parent\x00Mapping (%lld -> %lld) missing from %s table\x00Found (%lld -> %lld) in %s table, expected (%lld -> %lld)\x00Dimension %d of cell %d on node %lld is corrupt\x00Dimension %d of cell %d on node %lld is corrupt relative to parent\x00Node %lld is too small (%d bytes)\x00Rtree depth out of range (%d)\x00Node %lld is too small for cell count of %d (%d bytes)\x00SELECT count(*) FROM %Q.'%q%s'\x00Wrong number of entries in %%%s table - expected %lld, actual %lld\x00SELECT * FROM %Q.'%q_rowid'\x00Schema corrupt or not an rtree\x00_rowid\x00_parent\x00In RTree %s.%s:\n%z\x00wrong number of arguments to function rtreecheck()\x00[%!g,%!g],\x00[%!g,%!g]]\x00<polyline points=\x00%c%g,%g\x00 %g,%g'\x00 %s\x00></polyline>\x00Too many columns for a geopoly table\x00CREATE TABLE x(_shape\x00,%s\x00rtree\x00fullscan\x00_shape does not contain a valid polygon\x00geopoly_overlap\x00geopoly_within\x00geopoly_area\x00geopoly_blob\x00geopoly_json\x00geopoly_svg\x00geopoly_contains_point\x00geopoly_debug\x00geopoly_bbox\x00geopoly_xform\x00geopoly_regular\x00geopoly_ccw\x00geopoly_group_bbox\x00geopoly\x00rtreenode\x00rtreedepth\x00rtreecheck\x00rtree_i32\x00corrupt fossil delta\x00DROP TRIGGER IF EXISTS temp.rbu_insert_tr;DROP TRIGGER IF EXISTS temp.rbu_update1_tr;DROP TRIGGER IF EXISTS temp.rbu_update2_tr;DROP TRIGGER IF EXISTS temp.rbu_delete_tr;\x00AND rootpage!=0 AND rootpage IS NOT NULL\x00SELECT rbu_target_name(name, type='view') AS target, name FROM sqlite_schema WHERE type IN ('table', 'view') AND target IS NOT NULL  %s ORDER BY name\x00SELECT name, rootpage, sql IS NULL OR substr(8, 6)=='UNIQUE'   FROM main.sqlite_schema   WHERE type='index' AND tbl_name = ?\x00SELECT  (sql COLLATE nocase BETWEEN 'CREATE VIRTUAL' AND 'CREATE VIRTUAM'), rootpage  FROM sqlite_schema WHERE name=%Q\x00PRAGMA index_list=%Q\x00SELECT rootpage FROM sqlite_schema WHERE name = %Q\x00PRAGMA table_info=%Q\x00PRAGMA main.index_list = %Q\x00PRAGMA main.index_xinfo = %Q\x00SELECT * FROM '%q'\x00rbu_\x00rbu_rowid\x00may not have\x00requires\x00table %q %s rbu_rowid column\x00PRAGMA table_info(%Q)\x00column missing from %q: %s\x00%z%s\"%w\"\x00%z%s%s\"%w\"%s\x00SELECT max(_rowid_) FROM \"%s%w\"\x00 WHERE _rowid_ > %lld \x00 DESC\x00quote(\x00||','||\x00SELECT %s FROM \"%s%w\" ORDER BY %s LIMIT 1\x00 WHERE (%s) > (%s) \x00_rowid_\x00%z%s \"%w\" COLLATE %Q\x00%z%s \"rbu_imp_%d%w\" COLLATE %Q DESC\x00%z%s quote(\"rbu_imp_%d%w\")\x00SELECT %s FROM \"rbu_imp_%w\" ORDER BY %s LIMIT 1\x00%z%s%s\x00(%s) > (%s)\x00%z%s(%.*s) COLLATE %Q\x00%z%s\"%w\" COLLATE %Q\x00%z%s\"rbu_imp_%d%w\"%s\x00%z%s\"rbu_imp_%d%w\" %s COLLATE %Q\x00%z%s\"rbu_imp_%d%w\" IS ?\x00%z%s%s.\"%w\"\x00%z%sNULL\x00%z, %s._rowid_\x00_rowid_ = ?%d\x00%z%sc%d=?%d\x00_rowid_ = (SELECT id FROM rbu_imposter2 WHERE %z)\x00%z%s\"%w\"=?%d\x00invalid rbu_control value\x00%z%s\"%w\"=rbu_delta(\"%w\", ?%d)\x00%z%s\"%w\"=rbu_fossil_delta(\"%w\", ?%d)\x00PRIMARY KEY(\x00%z%s\"%w\"%s\x00%z)\x00SELECT name FROM sqlite_schema WHERE rootpage = ?\x00%z%sc%d %s COLLATE %Q\x00%z%sc%d%s\x00%z, id INTEGER\x00CREATE TABLE rbu_imposter2(%z, PRIMARY KEY(%z)) WITHOUT ROWID\x00PRIMARY KEY \x00 NOT NULL\x00%z%s\"%w\" %s %sCOLLATE %Q%s\x00%z, %z\x00 WITHOUT ROWID\x00CREATE TABLE \"rbu_imp_%w\"(%z)%s\x00INSERT INTO %s.'rbu_tmp_%q'(rbu_control,%s%s) VALUES(%z)\x00SELECT trim(sql) FROM sqlite_schema WHERE type='index' AND name=?\x00 LIMIT -1 OFFSET %d\x00CREATE TABLE \"rbu_imp_%w\"( %s, PRIMARY KEY( %s ) ) WITHOUT ROWID\x00INSERT INTO \"rbu_imp_%w\" VALUES(%s)\x00DELETE FROM \"rbu_imp_%w\" WHERE %s\x00AND\x00WHERE\x00SELECT %s, 0 AS rbu_control FROM '%q' %s %s %s ORDER BY %s%s\x00SELECT %s, rbu_control FROM %s.'rbu_tmp_%q' %s ORDER BY %s%s\x00SELECT %s, rbu_control FROM %s.'rbu_tmp_%q' %s UNION ALL SELECT %s, rbu_control FROM '%q' %s %s typeof(rbu_control)='integer' AND rbu_control!=1 ORDER BY %s%s\x00rbu_imp_\x00, _rowid_\x00INSERT INTO \"%s%w\"(%s%s) VALUES(%s)\x00DELETE FROM \"%s%w\" WHERE %s\x00, rbu_rowid\x00, 0 AS rbu_rowid\x00CREATE TABLE IF NOT EXISTS %s.'rbu_tmp_%q' AS SELECT *%s FROM '%q' WHERE 0;\x00CREATE TEMP TRIGGER rbu_delete_tr BEFORE DELETE ON \"%s%w\" BEGIN   SELECT rbu_tmp_insert(3, %s);END;CREATE TEMP TRIGGER rbu_update1_tr BEFORE UPDATE ON \"%s%w\" BEGIN   SELECT rbu_tmp_insert(3, %s);END;CREATE TEMP TRIGGER rbu_update2_tr AFTER UPDATE ON \"%s%w\" BEGIN   SELECT rbu_tmp_insert(4, %s);END;\x00CREATE TEMP TRIGGER rbu_insert_tr AFTER INSERT ON \"%s%w\" BEGIN   SELECT rbu_tmp_insert(0, %s);END;\x00,_rowid_ \x00,rbu_rowid\x000 AS \x00SELECT %s,%s rbu_control%s FROM '%q'%s %s %s %s\x00UPDATE \"%s%w\" SET %s WHERE %s\x00SELECT k, v FROM %s.rbu_state\x00file:///%s-vacuum?modeof=%s\x00ATTACH %Q AS stat\x00CREATE TABLE IF NOT EXISTS %s.rbu_state(k INTEGER PRIMARY KEY, v)\x00cannot vacuum wal mode database\x00&\x00file:%s-vactmp?rbu_memory=1%s%s\x00rbu_tmp_insert\x00rbu_fossil_delta\x00rbu_target_name\x00SELECT * FROM sqlite_schema\x00rbu vfs not found\x00PRAGMA main.wal_checkpoint=restart\x00rbu_exclusive_checkpoint\x00%s-oal\x00%s-wal\x00PRAGMA schema_version\x00PRAGMA schema_version = %d\x00INSERT OR REPLACE INTO %s.rbu_state(k, v) VALUES (%d, %d), (%d, %Q), (%d, %Q), (%d, %d), (%d, %lld), (%d, %lld), (%d, %lld), (%d, %lld), (%d, %lld), (%d, %Q)  \x00PRAGMA main.%s\x00PRAGMA main.%s = %d\x00PRAGMA writable_schema=1\x00SELECT sql FROM sqlite_schema WHERE sql!='' AND rootpage!=0 AND name!='sqlite_sequence'  ORDER BY type DESC\x00SELECT * FROM sqlite_schema WHERE rootpage=0 OR rootpage IS NULL\x00INSERT INTO sqlite_schema VALUES(?,?,?,?,?)\x00PRAGMA writable_schema=0\x00DELETE FROM %s.'rbu_tmp_%q'\x00rbu_state mismatch error\x00rbu_vfs_%d\x00SELECT count(*) FROM sqlite_schema WHERE type='index' AND tbl_name = %Q\x00rbu_index_cnt\x00SELECT 1 FROM sqlite_schema WHERE tbl_name = 'rbu_count'\x00SELECT sum(cnt * (1 + rbu_index_cnt(rbu_target_name(tbl))))FROM rbu_count\x00cannot update wal mode database\x00vacuum\x00update\x00database modified during rbu %s\x00BEGIN IMMEDIATE\x00PRAGMA journal_mode=off\x00-vactmp\x00DELETE FROM stat.rbu_state\x00rbu/zipvfs setup error\x00rbu(%s)/%z\x00rbu_memory\x00/\x00overflow\x00%s%.3x+%.6x\x00%s%.3x/\x00internal\x00leaf\x00corrupted\x00SELECT * FROM (SELECT 'sqlite_schema' AS name,1 AS rootpage,'table' AS type UNION ALL SELECT name,rootpage,type FROM \"%w\".sqlite_schema WHERE rootpage!=0)\x00WHERE name=%Q\x00 ORDER BY name\x00dbstat\x00CREATE TABLE x(pgno INTEGER PRIMARY KEY, data BLOB, schema HIDDEN)\x00read-only\x00cannot delete\x00cannot insert\x00no such schema\x00bad page number\x00bad page value\x00failed to open transaction\x00sqlite_dbpage\x00SELECT 0, 'tbl',  '', 0, '', 1, 0     UNION ALL SELECT 1, 'idx',  '', 0, '', 2, 0     UNION ALL SELECT 2, 'stat', '', 0, '', 0, 0\x00PRAGMA '%q'.table_xinfo('%q')\x00SELECT\x00%z%s\"%w\".\"%w\".\"%w\"=\"%w\".\"%w\".\"%w\"\x00%z%s\"%w\".\"%w\".\"%w\" IS NOT \"%w\".\"%w\".\"%w\"\x00 OR \x00_rowid_, *\x00SELECT %s FROM \"%w\".\"%w\" WHERE NOT EXISTS (  SELECT 1 FROM \"%w\".\"%w\" WHERE %s)\x00%z%s\"%w\".\"%w\".\"%w\"\x00SELECT %s,%s FROM \"%w\".\"%w\", \"%w\".\"%w\" WHERE %s AND (%z)\x00SELECT * FROM %Q.sqlite_schema\x00no such table: %s.%s\x00table schemas do not match\x00, 1\x00 AND (?6 OR ?3 IS stat)\x00tbl, idx\x00?1, (CASE WHEN ?2=X'' THEN NULL ELSE ?2 END)\x00tbl, ?2, stat\x00?%d\x00 AND (?%d OR ?%d IS %w.%w)\x00SELECT %s%s FROM %Q.%Q WHERE (%s) IS (%s)\x00SAVEPOINT changeset\x00RELEASE changeset\x00UPDATE main.\x00 SET \x00 = ?\x00 WHERE \x00idx IS CASE WHEN length(?4)=0 AND typeof(?4)='blob' THEN NULL ELSE ?4 END \x00 IS ?\x00DELETE FROM main.\x00 AND (?\x00AND \x00INSERT INTO main.\x00) VALUES(?\x00, ?\x00INSERT INTO main.sqlite_stat1 VALUES(?1, CASE WHEN length(?2)=0 AND typeof(?2)='blob' THEN NULL ELSE ?2 END, ?3)\x00DELETE FROM main.sqlite_stat1 WHERE tbl=?1 AND idx IS CASE WHEN length(?2)=0 AND typeof(?2)='blob' THEN NULL ELSE ?2 END AND (?4 OR stat IS ?3)\x00SAVEPOINT replace_op\x00RELEASE replace_op\x00PRAGMA table_list = %Q\x00SELECT %s FROM %Q WHERE (%s) IS (%s)\x00INSERT INTO %Q(%s) VALUES(%s)\x00SAVEPOINT update_op\x00ROLLBACK TO update_op\x00RELEASE update_op\x00SAVEPOINT changeset_apply\x00PRAGMA defer_foreign_keys = 1\x00sqlite3changeset_apply(): no such table: %s\x00sqlite3changeset_apply(): table %s has %d columns, expected %d or more\x00sqlite3changeset_apply(): primary key mismatch for table %s\x00PRAGMA defer_foreign_keys = 0\x00RELEASE changeset_apply\x00ROLLBACK TO changeset_apply\x00undefined\x00invalid change: %s value in PK of old.* record\x00invalid change: defined value in PK of new.* record\x00un\x00invalid change: column %d - old.* value is %sdefined but new.* is %sdefined\x00invalid change: column %d is undefined\x00invalid change: null value in PK\x00fts5: parser stack overflow\x00fts5: syntax error near \"%.*s\"\x00%z%.*s\x00wrong number of arguments to function highlight()\x00wrong number of arguments to function snippet()\x00wrong number of arguments to function fts5_get_locale()\x00non-integer argument passed to function fts5_get_locale()\x00snippet\x00highlight\x00bm25\x00fts5_get_locale\x00prefix\x00malformed prefix=... directive\x00too many prefix indexes (max %d)\x00prefix length out of range (max 999)\x00tokenize\x00multiple tokenize=... directives\x00parse error in tokenize directive\x00content\x00multiple content=... directives\x00%Q.%Q\x00contentless_delete\x00malformed contentless_delete=... directive\x00contentless_unindexed\x00content_rowid\x00multiple content_rowid=... directives\x00columnsize\x00malformed columnsize=... directive\x00locale\x00malformed locale=... directive\x00columns\x00malformed detail=... directive\x00tokendata\x00malformed tokendata=... directive\x00unrecognized option: \"%.*s\"\x00rank\x00reserved fts5 column name: %s\x00unindexed\x00unrecognized column option: %s\x00T.%Q\x00, T.%Q\x00, T.c%d\x00, NULL\x00, T.l%d\x00reserved fts5 table name: %s\x00parse error in \"%s\"\x00contentless_delete=1 requires a contentless table\x00contentless_delete=1 is incompatible with columnsize=0\x00contentless_unindexed=1 requires a contentless table\x00docsize\x00%Q.'%q_%s'\x00CREATE TABLE x(\x00%z%s%Q\x00%z, %Q HIDDEN, %s HIDDEN)\x00pgsz\x00hashsize\x00automerge\x00usermerge\x00crisismerge\x00deletemerge\x00secure-delete\x00insttoken\x00SELECT k, v FROM %Q.'%q_config'\x00version\x00invalid fts5 file format (found %d, expected %d or %d) - run 'rebuild'\x00unterminated string\x00fts5: syntax error near \"%.1s\"\x00OR\x00NOT\x00NEAR\x00expected integer, got \"%.*s\"\x00fts5: column queries are not supported (detail=none)\x00phrase\x00fts5: %s queries are not supported (detail!=full)\x00fts5 expression tree is too large (maximum depth %d)\x00fts5: corruption found reading blob %lld from table \"%s\"\x00fts5: corruption on page %d, segment %d, table \"%s\"\x00fts5: corruption in table \"%s\"\x00block\x00REPLACE INTO '%q'.'%q_data'(id, block) VALUES(?,?)\x00DELETE FROM '%q'.'%q_data' WHERE id>=? AND id<=?\x00DELETE FROM '%q'.'%q_idx' WHERE segid=?\x00\xff\x00\x00\x01\x00fts5: corrupt structure record for table \"%s\"\x00PRAGMA %Q.data_version\x00SELECT pgno FROM '%q'.'%q_idx' WHERE segid=? AND term<=? ORDER BY term DESC LIMIT 1\x00SELECT pgno FROM '%q'.'%q_idx' WHERE segid=? AND term>? ORDER BY term ASC LIMIT 1\x00INSERT INTO '%q'.'%q_idx'(segid,term,pgno) VALUES(?,?,?)\x00DELETE FROM '%q'.'%q_idx' WHERE (segid, (pgno/2)) = (?1, ?2)\x00REPLACE INTO %Q.'%q_config' VALUES ('version', %d)\x00%s_data\x00id INTEGER PRIMARY KEY, block BLOB\x00segid, term, pgno, PRIMARY KEY(segid, term)\x00\x00\x00SELECT segid, term, (pgno>>1), (pgno&1) FROM %Q.'%q_idx' WHERE segid=%d ORDER BY 1, 2\x00\x00\x00\x00\x00\x00fts5: checksum mismatch for table \"%s\"\x00recursively defined fts5 content table\x00DESC\x00ASC\x00SELECT rowid, rank FROM %Q.%Q ORDER BY %s(\"%w\"%s%s) %s\x00reads\x00unknown special query: %.*s\x00SELECT %s\x00no such function: %s\x00parse error in rank function: %s\x00%s: table does not support scanning\x00fts5: missing row %lld from content table %s\x00delete-all\x00'delete-all' may only be used with a contentless or external content fts5 table\x00rebuild\x00'rebuild' may not be used with a contentless fts5 table\x00merge\x00integrity-check\x00flush\x00%s a subset of columns on fts5 contentless-delete table: %s\x00%s contentless fts5 table: %s\x00cannot UPDATE\x00'delete' may not be used with a contentless_delete=1 table\x00cannot DELETE from contentless fts5 table: %s\x00fts5_locale() requires locale=1\x00no such cursor: %lld\x00no such tokenizer: %s\x00error in tokenizer constructor\x00fts5_api_ptr\x00fts5: 2026-06-26 20:14:12 d4c0e51e4aeb96955b99185ab9cde75c339e2c29c3f3f12428d364a10d782c62\x00config\x00malformed inverted index for FTS5 table %s.%s\x00unable to validate the inverted index for FTS5 table %s.%s: %s\x00fts5\x00fts5_source_id\x00fts5_locale\x00fts5_insttoken\x00SELECT %s FROM %s T WHERE T.%Q >= ? AND T.%Q <= ? ORDER BY T.%Q ASC\x00SELECT %s FROM %s T WHERE T.%Q <= ? AND T.%Q >= ? ORDER BY T.%Q DESC\x00SELECT %s FROM %s T WHERE T.%Q=?\x00INSERT INTO %Q.'%q_content' VALUES(%s)\x00REPLACE INTO %Q.'%q_content' VALUES(%s)\x00DELETE FROM %Q.'%q_content' WHERE id=?\x00REPLACE INTO %Q.'%q_docsize' VALUES(?,?%s)\x00DELETE FROM %Q.'%q_docsize' WHERE id=?\x00SELECT sz%s FROM %Q.'%q_docsize' WHERE id=?\x00REPLACE INTO %Q.'%q_config' VALUES(?,?)\x00SELECT %s FROM %s AS T\x00%z%s?%d\x00%z,?%d\x00,?\x00,origin\x00DROP TABLE IF EXISTS %Q.'%q_data';DROP TABLE IF EXISTS %Q.'%q_idx';DROP TABLE IF EXISTS %Q.'%q_config';\x00DROP TABLE IF EXISTS %Q.'%q_docsize';\x00DROP TABLE IF EXISTS %Q.'%q_content';\x00ALTER TABLE %Q.'%q_%s' RENAME TO '%q_%s';\x00CREATE TABLE %Q.'%q_%q'(%s)%s\x00fts5: error creating shadow table %q_%s: %s\x00id INTEGER PRIMARY KEY\x00, c%d\x00, l%d\x00id INTEGER PRIMARY KEY, sz BLOB\x00id INTEGER PRIMARY KEY, sz BLOB, origin INTEGER\x00k PRIMARY KEY, v\x00DELETE FROM %Q.'%q_data';DELETE FROM %Q.'%q_idx';\x00DELETE FROM %Q.'%q_docsize';\x00DELETE FROM %Q.'%q_content';\x00SELECT count(*) FROM %Q.'%q_%s'\x00tokenchars\x00separators\x00L* N* Co\x00categories\x00remove_diacritics\x00unicode61\x00porter\x00al\x00ance\x00ence\x00er\x00ic\x00able\x00ible\x00ant\x00ement\x00ment\x00ent\x00ion\x00ou\x00ism\x00ate\x00iti\x00ous\x00ive\x00ize\x00at\x00bl\x00ble\x00iz\x00ational\x00tional\x00tion\x00enci\x00anci\x00izer\x00logi\x00bli\x00alli\x00entli\x00eli\x00e\x00ousli\x00ization\x00ation\x00ator\x00alism\x00iveness\x00fulness\x00ful\x00ousness\x00aliti\x00iviti\x00biliti\x00ical\x00ness\x00icate\x00iciti\x00ative\x00alize\x00eed\x00ee\x00ed\x00ing\x00case_sensitive\x00trigram\x00ascii\x00col\x00row\x00instance\x00fts5vocab: unknown table type: %Q\x00CREATE TABlE vocab(term, col, doc, cnt)\x00CREATE TABlE vocab(term, doc, cnt)\x00CREATE TABlE vocab(term, doc, col, offset)\x00wrong number of vtable arguments\x00recursive definition for %s.%s\x00SELECT t.%Q FROM %Q.%Q AS t WHERE t.%Q MATCH '*id'\x00no such fts5 table: %s.%s\x00fts5vocab\x002026-06-26 20:14:12 d4c0e51e4aeb96955b99185ab9cde75c339e2c29c3f3f12428d364a10d782c62\x00"

const __clang_version__ = "19.1.7 (https://github.com/llvm/llvm-project.git llvmorg-19.1.7-0-gcd708029e0b2)"

const __isnan = 0

const __isnanf = 0

const __lockable = 0

const __no_lock_analysis = 0

const __writeonly = "__unused"

var _aAgg = [1]struct {
	FxStep  uintptr
	FxFinal uintptr
	FzName  uintptr
}{
	0: {
		FzName: __ccgo_ts + 30200,
	},
}

var _aAlterTableFuncs = [9]TFuncDef{
	0: {
		FnArg:      int16(9),
		FfuncFlags: libc.Uint32FromInt32(libc.Int32FromInt32(SQLITE_FUNC_BUILTIN) | libc.Int32FromInt32(SQLITE_FUNC_INTERNAL) | libc.Int32FromInt32(SQLITE_UTF8) | libc.Int32FromInt32(SQLITE_FUNC_CONSTANT)),
		FzName:     __ccgo_ts + 12653,
	},
	1: {
		FnArg:      int16(7),
		FfuncFlags: libc.Uint32FromInt32(libc.Int32FromInt32(SQLITE_FUNC_BUILTIN) | libc.Int32FromInt32(SQLITE_FUNC_INTERNAL) | libc.Int32FromInt32(SQLITE_UTF8) | libc.Int32FromInt32(SQLITE_FUNC_CONSTANT)),
		FzName:     __ccgo_ts + 12674,
	},
	2: {
		FnArg:      int16(7),
		FfuncFlags: libc.Uint32FromInt32(libc.Int32FromInt32(SQLITE_FUNC_BUILTIN) | libc.Int32FromInt32(SQLITE_FUNC_INTERNAL) | libc.Int32FromInt32(SQLITE_UTF8) | libc.Int32FromInt32(SQLITE_FUNC_CONSTANT)),
		FzName:     __ccgo_ts + 12694,
	},
	3: {
		FnArg:      int16(3),
		FfuncFlags: libc.Uint32FromInt32(libc.Int32FromInt32(SQLITE_FUNC_BUILTIN) | libc.Int32FromInt32(SQLITE_FUNC_INTERNAL) | libc.Int32FromInt32(SQLITE_UTF8) | libc.Int32FromInt32(SQLITE_FUNC_CONSTANT)),
		FzName:     __ccgo_ts + 12713,
	},
	4: {
		FnArg:      int16(2),
		FfuncFlags: libc.Uint32FromInt32(libc.Int32FromInt32(SQLITE_FUNC_BUILTIN) | libc.Int32FromInt32(SQLITE_FUNC_INTERNAL) | libc.Int32FromInt32(SQLITE_UTF8) | libc.Int32FromInt32(SQLITE_FUNC_CONSTANT)),
		FzName:     __ccgo_ts + 12732,
	},
	5: {
		FnArg:      int16(2),
		FfuncFlags: libc.Uint32FromInt32(libc.Int32FromInt32(SQLITE_FUNC_BUILTIN) | libc.Int32FromInt32(SQLITE_FUNC_INTERNAL) | libc.Int32FromInt32(SQLITE_UTF8) | libc.Int32FromInt32(SQLITE_FUNC_CONSTANT)),
		FzName:     __ccgo_ts + 12755,
	},
	6: {
		FnArg:      int16(2),
		FfuncFlags: libc.Uint32FromInt32(libc.Int32FromInt32(SQLITE_FUNC_BUILTIN) | libc.Int32FromInt32(SQLITE_FUNC_INTERNAL) | libc.Int32FromInt32(SQLITE_UTF8) | libc.Int32FromInt32(SQLITE_FUNC_CONSTANT)),
		FzName:     __ccgo_ts + 12778,
	},
	7: {
		FnArg:      int16(3),
		FfuncFlags: libc.Uint32FromInt32(libc.Int32FromInt32(SQLITE_FUNC_BUILTIN) | libc.Int32FromInt32(SQLITE_FUNC_INTERNAL) | libc.Int32FromInt32(SQLITE_UTF8) | libc.Int32FromInt32(SQLITE_FUNC_CONSTANT)),
		FzName:     __ccgo_ts + 12790,
	},
	8: {
		FnArg:      int16(2),
		FfuncFlags: libc.Uint32FromInt32(libc.Int32FromInt32(SQLITE_FUNC_BUILTIN) | libc.Int32FromInt32(SQLITE_FUNC_INTERNAL) | libc.Int32FromInt32(SQLITE_UTF8) | libc.Int32FromInt32(SQLITE_FUNC_CONSTANT)),
		FzName:     __ccgo_ts + 12812,
	},
}

var _aCacheMode = [3]struct {
	Fz    uintptr
	Fmode int32
}{
	0: {
		Fz:    __ccgo_ts + 26170,
		Fmode: int32(SQLITE_OPEN_SHAREDCACHE),
	},
	1: {
		Fz:    __ccgo_ts + 26177,
		Fmode: int32(SQLITE_OPEN_PRIVATECACHE),
	},
	2: {},
}

var _aFunc = [12]struct {
	FxFunc uintptr
	FnArg  int8
	FbPure uint8
	FzName uintptr
}{
	0: {
		FnArg:  int8(1),
		FbPure: uint8(1),
		FzName: __ccgo_ts + 30057,
	},
	1: {
		FnArg:  int8(1),
		FbPure: uint8(1),
		FzName: __ccgo_ts + 30070,
	},
	2: {
		FnArg:  int8(1),
		FbPure: uint8(1),
		FzName: __ccgo_ts + 30083,
	},
	3: {
		FnArg:  int8(-int32(1)),
		FbPure: uint8(1),
		FzName: __ccgo_ts + 30096,
	},
	4: {
		FnArg:  int8(2),
		FbPure: uint8(1),
		FzName: __ccgo_ts + 30042,
	},
	5: {
		FnArg:  int8(3),
		FbPure: uint8(1),
		FzName: __ccgo_ts + 30108,
	},
	6: {
		FnArg:  int8(2),
		FbPure: uint8(1),
		FzName: __ccgo_ts + 30026,
	},
	7: {
		FnArg:  int8(1),
		FzName: __ccgo_ts + 30131,
	},
	8: {
		FnArg:  int8(1),
		FbPure: uint8(1),
		FzName: __ccgo_ts + 30145,
	},
	9: {
		FnArg:  int8(7),
		FbPure: uint8(1),
		FzName: __ccgo_ts + 30158,
	},
	10: {
		FnArg:  int8(4),
		FbPure: uint8(1),
		FzName: __ccgo_ts + 30172,
	},
	11: {
		FnArg:  int8(1),
		FbPure: uint8(1),
		FzName: __ccgo_ts + 30188,
	},
}

var _aMsg = [29]uintptr{
	0:  __ccgo_ts + 25357,
	1:  __ccgo_ts + 25370,
	3:  __ccgo_ts + 25386,
	4:  __ccgo_ts + 25411,
	5:  __ccgo_ts + 25425,
	6:  __ccgo_ts + 25444,
	7:  __ccgo_ts + 1672,
	8:  __ccgo_ts + 25469,
	9:  __ccgo_ts + 25506,
	10: __ccgo_ts + 25518,
	11: __ccgo_ts + 25533,
	12: __ccgo_ts + 25566,
	13: __ccgo_ts + 25584,
	14: __ccgo_ts + 25609,
	15: __ccgo_ts + 25638,
	17: __ccgo_ts + 6241,
	18: __ccgo_ts + 5592,
	19: __ccgo_ts + 25655,
	20: __ccgo_ts + 25673,
	21: __ccgo_ts + 25691,
	23: __ccgo_ts + 25725,
	25: __ccgo_ts + 25746,
	26: __ccgo_ts + 25772,
	27: __ccgo_ts + 25795,
	28: __ccgo_ts + 25816,
}

var _aOp = [4]struct {
	FzOp uintptr
	FeOp uint8
}{
	0: {
		FzOp: __ccgo_ts + 17814,
		FeOp: uint8(SQLITE_INDEX_CONSTRAINT_MATCH),
	},
	1: {
		FzOp: __ccgo_ts + 17148,
		FeOp: uint8(SQLITE_INDEX_CONSTRAINT_GLOB),
	},
	2: {
		FzOp: __ccgo_ts + 16607,
		FeOp: uint8(SQLITE_INDEX_CONSTRAINT_LIKE),
	},
	3: {
		FzOp: __ccgo_ts + 23936,
		FeOp: uint8(SQLITE_INDEX_CONSTRAINT_REGEXP),
	},
}

var _aOpenMode = [5]struct {
	Fz    uintptr
	Fmode int32
}{
	0: {
		Fz:    __ccgo_ts + 26190,
		Fmode: int32(SQLITE_OPEN_READONLY),
	},
	1: {
		Fz:    __ccgo_ts + 26193,
		Fmode: int32(SQLITE_OPEN_READWRITE),
	},
	2: {
		Fz:    __ccgo_ts + 26196,
		Fmode: libc.Int32FromInt32(SQLITE_OPEN_READWRITE) | libc.Int32FromInt32(SQLITE_OPEN_CREATE),
	},
	3: {
		Fz:    __ccgo_ts + 19035,
		Fmode: int32(SQLITE_OPEN_MEMORY),
	},
	4: {},
}

var _aPragmaName = [66]TPragmaName{
	0: {
		FzName:    __ccgo_ts + 18034,
		FePragTyp: uint8(PragTyp_ANALYSIS_LIMIT),
		FmPragFlg: uint8(PragFlg_Result0),
	},
	1: {
		FzName:    __ccgo_ts + 18049,
		FePragTyp: uint8(PragTyp_HEADER_VALUE),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NoColumns1) | libc.Int32FromInt32(PragFlg_Result0)),
		FiArg:     uint64(BTREE_APPLICATION_ID),
	},
	2: {
		FzName:    __ccgo_ts + 18064,
		FePragTyp: uint8(PragTyp_AUTO_VACUUM),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_SchemaReq) | libc.Int32FromInt32(PragFlg_NoColumns1)),
	},
	3: {
		FzName:    __ccgo_ts + 18076,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     uint64(SQLITE_AutoIndex),
	},
	4: {
		FzName:      __ccgo_ts + 18092,
		FePragTyp:   uint8(PragTyp_BUSY_TIMEOUT),
		FmPragFlg:   uint8(PragFlg_Result0),
		FiPragCName: uint8(56),
		FnPragCName: uint8(1),
	},
	5: {
		FzName:    __ccgo_ts + 18015,
		FePragTyp: uint8(PragTyp_CACHE_SIZE),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_SchemaReq) | libc.Int32FromInt32(PragFlg_NoColumns1)),
	},
	6: {
		FzName:    __ccgo_ts + 18105,
		FePragTyp: uint8(PragTyp_CACHE_SPILL),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_SchemaReq) | libc.Int32FromInt32(PragFlg_NoColumns1)),
	},
	7: {
		FzName:    __ccgo_ts + 18117,
		FePragTyp: uint8(PragTyp_CASE_SENSITIVE_LIKE),
		FmPragFlg: uint8(PragFlg_NoColumns),
	},
	8: {
		FzName:    __ccgo_ts + 18137,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     uint64(SQLITE_CellSizeCk),
	},
	9: {
		FzName:    __ccgo_ts + 18153,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     uint64(SQLITE_CkptFullFSync),
	},
	10: {
		FzName:      __ccgo_ts + 18174,
		FePragTyp:   uint8(PragTyp_COLLATION_LIST),
		FmPragFlg:   uint8(PragFlg_Result0),
		FiPragCName: uint8(33),
		FnPragCName: uint8(2),
	},
	11: {
		FzName:    __ccgo_ts + 18189,
		FePragTyp: uint8(PragTyp_COMPILE_OPTIONS),
		FmPragFlg: uint8(PragFlg_Result0),
	},
	12: {
		FzName:    __ccgo_ts + 18205,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     libc.Uint64FromInt32(libc.Int32FromInt32(0x00001)) << libc.Int32FromInt32(32),
	},
	13: {
		FzName:    __ccgo_ts + 18219,
		FePragTyp: uint8(PragTyp_HEADER_VALUE),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_ReadOnly) | libc.Int32FromInt32(PragFlg_Result0)),
		FiArg:     uint64(BTREE_DATA_VERSION),
	},
	14: {
		FzName:      __ccgo_ts + 18232,
		FePragTyp:   uint8(PragTyp_DATABASE_LIST),
		FmPragFlg:   uint8(PragFlg_Result0),
		FiPragCName: uint8(50),
		FnPragCName: uint8(3),
	},
	15: {
		FzName:      __ccgo_ts + 18246,
		FePragTyp:   uint8(PragTyp_DEFAULT_CACHE_SIZE),
		FmPragFlg:   libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_SchemaReq) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiPragCName: uint8(55),
		FnPragCName: uint8(1),
	},
	16: {
		FzName:    __ccgo_ts + 18265,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     uint64(SQLITE_DeferFKs),
	},
	17: {
		FzName:    __ccgo_ts + 18284,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     uint64(SQLITE_NullCallback),
	},
	18: {
		FzName:    __ccgo_ts + 18307,
		FePragTyp: uint8(PragTyp_ENCODING),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
	},
	19: {
		FzName:      __ccgo_ts + 18316,
		FePragTyp:   uint8(PragTyp_FOREIGN_KEY_CHECK),
		FmPragFlg:   libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_Result1) | libc.Int32FromInt32(PragFlg_SchemaOpt)),
		FiPragCName: uint8(43),
		FnPragCName: uint8(4),
	},
	20: {
		FzName:      __ccgo_ts + 18334,
		FePragTyp:   uint8(PragTyp_FOREIGN_KEY_LIST),
		FmPragFlg:   libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_Result1) | libc.Int32FromInt32(PragFlg_SchemaOpt)),
		FnPragCName: uint8(8),
	},
	21: {
		FzName:    __ccgo_ts + 18351,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     uint64(SQLITE_ForeignKeys),
	},
	22: {
		FzName:    __ccgo_ts + 18364,
		FePragTyp: uint8(PragTyp_HEADER_VALUE),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_ReadOnly) | libc.Int32FromInt32(PragFlg_Result0)),
	},
	23: {
		FzName:    __ccgo_ts + 18379,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     uint64(SQLITE_FullColNames),
	},
	24: {
		FzName:    __ccgo_ts + 18397,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     uint64(SQLITE_FullFSync),
	},
	25: {
		FzName:      __ccgo_ts + 18407,
		FePragTyp:   uint8(PragTyp_FUNCTION_LIST),
		FmPragFlg:   uint8(PragFlg_Result0),
		FiPragCName: uint8(15),
		FnPragCName: uint8(6),
	},
	26: {
		FzName:    __ccgo_ts + 18421,
		FePragTyp: uint8(PragTyp_HARD_HEAP_LIMIT),
		FmPragFlg: uint8(PragFlg_Result0),
	},
	27: {
		FzName:    __ccgo_ts + 18437,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     uint64(SQLITE_IgnoreChecks),
	},
	28: {
		FzName:    __ccgo_ts + 18462,
		FePragTyp: uint8(PragTyp_INCREMENTAL_VACUUM),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_NoColumns)),
	},
	29: {
		FzName:      __ccgo_ts + 18481,
		FePragTyp:   uint8(PragTyp_INDEX_INFO),
		FmPragFlg:   libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_Result1) | libc.Int32FromInt32(PragFlg_SchemaOpt)),
		FiPragCName: uint8(27),
		FnPragCName: uint8(3),
	},
	30: {
		FzName:      __ccgo_ts + 18492,
		FePragTyp:   uint8(PragTyp_INDEX_LIST),
		FmPragFlg:   libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_Result1) | libc.Int32FromInt32(PragFlg_SchemaOpt)),
		FiPragCName: uint8(33),
		FnPragCName: uint8(5),
	},
	31: {
		FzName:      __ccgo_ts + 18503,
		FePragTyp:   uint8(PragTyp_INDEX_INFO),
		FmPragFlg:   libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_Result1) | libc.Int32FromInt32(PragFlg_SchemaOpt)),
		FiPragCName: uint8(27),
		FnPragCName: uint8(6),
		FiArg:       uint64(1),
	},
	32: {
		FzName:    __ccgo_ts + 18515,
		FePragTyp: uint8(PragTyp_INTEGRITY_CHECK),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_Result1) | libc.Int32FromInt32(PragFlg_SchemaOpt)),
	},
	33: {
		FzName:    __ccgo_ts + 18531,
		FePragTyp: uint8(PragTyp_JOURNAL_MODE),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_SchemaReq)),
	},
	34: {
		FzName:    __ccgo_ts + 18544,
		FePragTyp: uint8(PragTyp_JOURNAL_SIZE_LIMIT),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_SchemaReq)),
	},
	35: {
		FzName:    __ccgo_ts + 18563,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     uint64(SQLITE_LegacyAlter),
	},
	36: {
		FzName:    __ccgo_ts + 18582,
		FePragTyp: uint8(PragTyp_LOCKING_MODE),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_SchemaReq)),
	},
	37: {
		FzName:    __ccgo_ts + 18595,
		FePragTyp: uint8(PragTyp_PAGE_COUNT),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_SchemaReq)),
	},
	38: {
		FzName:    __ccgo_ts + 18610,
		FePragTyp: uint8(PragTyp_MMAP_SIZE),
	},
	39: {
		FzName:      __ccgo_ts + 18620,
		FePragTyp:   uint8(PragTyp_MODULE_LIST),
		FmPragFlg:   uint8(PragFlg_Result0),
		FiPragCName: uint8(9),
		FnPragCName: uint8(1),
	},
	40: {
		FzName:    __ccgo_ts + 18632,
		FePragTyp: uint8(PragTyp_OPTIMIZE),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result1) | libc.Int32FromInt32(PragFlg_NeedSchema)),
	},
	41: {
		FzName:    __ccgo_ts + 18641,
		FePragTyp: uint8(PragTyp_PAGE_COUNT),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_SchemaReq)),
	},
	42: {
		FzName:    __ccgo_ts + 18652,
		FePragTyp: uint8(PragTyp_PAGE_SIZE),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_SchemaReq) | libc.Int32FromInt32(PragFlg_NoColumns1)),
	},
	43: {
		FzName:      __ccgo_ts + 18662,
		FePragTyp:   uint8(PragTyp_PRAGMA_LIST),
		FmPragFlg:   uint8(PragFlg_Result0),
		FiPragCName: uint8(9),
		FnPragCName: uint8(1),
	},
	44: {
		FzName:    __ccgo_ts + 18674,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     uint64(SQLITE_QueryOnly),
	},
	45: {
		FzName:    __ccgo_ts + 18685,
		FePragTyp: uint8(PragTyp_INTEGRITY_CHECK),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_Result1) | libc.Int32FromInt32(PragFlg_SchemaOpt)),
	},
	46: {
		FzName:    __ccgo_ts + 18697,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     libc.Uint64FromInt32(libc.Int32FromInt32(0x00004)) << libc.Int32FromInt32(32),
	},
	47: {
		FzName:    __ccgo_ts + 18714,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     uint64(SQLITE_RecTriggers),
	},
	48: {
		FzName:    __ccgo_ts + 18733,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     uint64(SQLITE_ReverseOrder),
	},
	49: {
		FzName:    __ccgo_ts + 18759,
		FePragTyp: uint8(PragTyp_HEADER_VALUE),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NoColumns1) | libc.Int32FromInt32(PragFlg_Result0)),
		FiArg:     uint64(BTREE_SCHEMA_VERSION),
	},
	50: {
		FzName:    __ccgo_ts + 18774,
		FePragTyp: uint8(PragTyp_SECURE_DELETE),
		FmPragFlg: uint8(PragFlg_Result0),
	},
	51: {
		FzName:    __ccgo_ts + 18788,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     uint64(SQLITE_ShortColNames),
	},
	52: {
		FzName:    __ccgo_ts + 18807,
		FePragTyp: uint8(PragTyp_SHRINK_MEMORY),
		FmPragFlg: uint8(PragFlg_NoColumns),
	},
	53: {
		FzName:    __ccgo_ts + 18821,
		FePragTyp: uint8(PragTyp_SOFT_HEAP_LIMIT),
		FmPragFlg: uint8(PragFlg_Result0),
	},
	54: {
		FzName:    __ccgo_ts + 18837,
		FePragTyp: uint8(PragTyp_SYNCHRONOUS),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_SchemaReq) | libc.Int32FromInt32(PragFlg_NoColumns1)),
	},
	55: {
		FzName:      __ccgo_ts + 18849,
		FePragTyp:   uint8(PragTyp_TABLE_INFO),
		FmPragFlg:   libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_Result1) | libc.Int32FromInt32(PragFlg_SchemaOpt)),
		FiPragCName: uint8(8),
		FnPragCName: uint8(6),
	},
	56: {
		FzName:      __ccgo_ts + 18860,
		FePragTyp:   uint8(PragTyp_TABLE_LIST),
		FmPragFlg:   libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_Result1)),
		FiPragCName: uint8(21),
		FnPragCName: uint8(6),
	},
	57: {
		FzName:      __ccgo_ts + 18871,
		FePragTyp:   uint8(PragTyp_TABLE_INFO),
		FmPragFlg:   libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NeedSchema) | libc.Int32FromInt32(PragFlg_Result1) | libc.Int32FromInt32(PragFlg_SchemaOpt)),
		FiPragCName: uint8(8),
		FnPragCName: uint8(7),
		FiArg:       uint64(1),
	},
	58: {
		FzName:    __ccgo_ts + 18883,
		FePragTyp: uint8(PragTyp_TEMP_STORE),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
	},
	59: {
		FzName:    __ccgo_ts + 18894,
		FePragTyp: uint8(PragTyp_TEMP_STORE_DIRECTORY),
		FmPragFlg: uint8(PragFlg_NoColumns1),
	},
	60: {
		FzName:    __ccgo_ts + 18915,
		FePragTyp: uint8(PragTyp_THREADS),
		FmPragFlg: uint8(PragFlg_Result0),
	},
	61: {
		FzName:    __ccgo_ts + 18923,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     uint64(SQLITE_TrustedSchema),
	},
	62: {
		FzName:    __ccgo_ts + 18938,
		FePragTyp: uint8(PragTyp_HEADER_VALUE),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_NoColumns1) | libc.Int32FromInt32(PragFlg_Result0)),
		FiArg:     uint64(BTREE_USER_VERSION),
	},
	63: {
		FzName:    __ccgo_ts + 18951,
		FePragTyp: uint8(PragTyp_WAL_AUTOCHECKPOINT),
	},
	64: {
		FzName:      __ccgo_ts + 18970,
		FePragTyp:   uint8(PragTyp_WAL_CHECKPOINT),
		FmPragFlg:   uint8(PragFlg_NeedSchema),
		FiPragCName: uint8(47),
		FnPragCName: uint8(3),
	},
	65: {
		FzName:    __ccgo_ts + 18985,
		FePragTyp: uint8(PragTyp_FLAG),
		FmPragFlg: libc.Uint8FromInt32(libc.Int32FromInt32(PragFlg_Result0) | libc.Int32FromInt32(PragFlg_NoColumns1)),
		FiArg:     libc.Uint64FromInt32(libc.Int32FromInt32(SQLITE_WriteSchema) | libc.Int32FromInt32(SQLITE_NoSchemaError)),
	},
}

/* Number of pragmas: 68 on by default, 78 total. */

/************** End of pragma.h **********************************************/
/************** Continuing where we left off in pragma.c *********************/

/*
** When the 0x10 bit of PRAGMA optimize is set, any ANALYZE commands
** will be run with an analysis_limit set to the lessor of the value of
** the following macro or to the actual analysis_limit if it is non-zero,
** in order to prevent PRAGMA optimize from running for too long.
**
** The value of 2000 is chosen empirically so that the worst-case run-time
** for PRAGMA optimize does not exceed 100 milliseconds against a variety
** of test databases on a RaspberryPI-4 compiled using -Os and without
** -DSQLITE_DEBUG.  Of course, your mileage may vary.  For the purpose of
** this paragraph, "worst-case" means that ANALYZE ends up being
** run on every table in the database.  The worst case typically only
** happens if PRAGMA optimize is run on a database file for which ANALYZE
** has not been previously run and the 0x10000 flag is included so that
** all tables are analyzed.  The usual case for PRAGMA optimize is that
** no ANALYZE commands will be run at all, or if any ANALYZE happens it
** will be against a single table, so that expected timing for PRAGMA
** optimize on a PI-4 is more like 1 millisecond or less with the 0x10000
** flag or less than 100 microseconds without the 0x10000 flag.
**
** An analysis limit of 2000 is almost always sufficient for the query
** planner to fully characterize an index.  The additional accuracy from
** a larger analysis is not usually helpful.
 */

var _aTable = [3]struct {
	FzName uintptr
	FzCols uintptr
}{
	0: {
		FzName: __ccgo_ts + 12835,
		FzCols: __ccgo_ts + 12848,
	},
	1: {
		FzName: __ccgo_ts + 12861,
		FzCols: __ccgo_ts + 12874,
	},
	2: {
		FzName: __ccgo_ts + 12902,
	},
}

/*
** Recommended number of samples for sqlite_stat4
 */

// C documentation
//
//	/*
//	** Implementation of the abs() function.
//	**
//	** IMP: R-23979-26855 The abs(X) function returns the absolute value of
//	** the numeric argument X.
//	*/
func _absFunc(tls *libc.TLS, context uintptr, argc int32, argv uintptr) {
	var iVal Ti64
	var rVal float64
	_, _ = iVal, rVal
	_ = argc
	switch Xsqlite3_value_type(tls, **(**uintptr)(__ccgo_up(argv))) {
	case int32(SQLITE_INTEGER):
		iVal = Xsqlite3_value_int64(tls, **(**uintptr)(__ccgo_up(argv)))
		if iVal < 0 {
			if iVal == int64(-libc.Int32FromInt32(1))-(libc.Int64FromUint32(0xffffffff)|libc.Int64FromInt32(0x7fffffff)<<libc.Int32FromInt32(32)) {
				/* IMP: R-31676-45509 If X is the integer -9223372036854775808
				 ** then abs(X) throws an integer overflow error since there is no
				 ** equivalent positive 64-bit two complement value. */
				Xsqlite3_result_error(tls, context, __ccgo_ts+16460, -int32(1))
				return
			}
			iVal = -iVal
		}
		Xsqlite3_result_int64(tls, context, iVal)
	case int32(SQLITE_NULL):
		/* IMP: R-37434-19929 Abs(X) returns NULL if X is NULL. */
		Xsqlite3_result_null(tls, context)
	default:
		/* Because sqlite3_value_double() returns 0.0 if the argument is not
		 ** something that can be converted into a number, we have:
		 ** IMP: R-01992-00519 Abs(X) returns 0.0 if X is a string or blob
		 ** that cannot be converted to a numeric value.
		 */
		rVal = Xsqlite3_value_double(tls, **(**uintptr)(__ccgo_up(argv)))
		if rVal < libc.Float64FromInt32(0) {
			rVal = -rVal
		}
		Xsqlite3_result_double(tls, context, rVal)
		break
	}
}

// C documentation
//
//	/*
//	** Return a human-readable name for a constraint resolution action.
//	*/
func _actionName(tls *libc.TLS, action Tu8) (r uintptr) {
	var zName uintptr
	_ = zName
	switch libc.Int32FromUint8(action) {
	case int32(OE_SetNull):
		zName = __ccgo_ts + 19104
	case int32(OE_SetDflt):
		zName = __ccgo_ts + 19113
	case int32(OE_Cascade):
		zName = __ccgo_ts + 19125
	case int32(OE_Restrict):
		zName = __ccgo_ts + 19133
	default:
		zName = __ccgo_ts + 19142
		break
	}
	return zName
}

// C documentation
//
//	/*
//	** Buffer pCons, which is nCons bytes in size, contains the text of a
//	** NOT NULL or CHECK constraint that will be inserted into a CREATE TABLE
//	** statement. If successful, this function returns the size of the buffer in
//	** bytes not including any trailing whitespace or "--" style comments. Or,
//	** if an OOM occurs, it returns 0 and sets db->mallocFailed to true.
//	**
//	** C-style comments at the end are preserved.  "--" style comments are
//	** removed because the comment terminator might be \000, and we are about
//	** to insert the pCons[] text into the middle of a larger string, and that
//	** will have the effect of removing the comment terminator and messing up
//	** the syntax.
//	*/
func _alterRtrimConstraint(tls *libc.TLS, db uintptr, pCons uintptr, nCons int32) (r int32) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var iEnd, iOff, nToken int32
	var zTmp uintptr
	var _ /* t at bp+0 */ int32
	_, _, _, _ = iEnd, iOff, nToken, zTmp
	zTmp = _sqlite3MPrintf(tls, db, __ccgo_ts+12048, libc.VaList(bp+16, nCons, pCons))
	iOff = 0
	iEnd = 0
	if zTmp == uintptr(0) {
		return 0
	}
	for int32(1) != 0 {
		**(**int32)(__ccgo_up(bp)) = 0
		nToken = int32(_sqlite3GetToken(tls, zTmp+uintptr(iOff), bp))
		if **(**int32)(__ccgo_up(bp)) == int32(TK_ILLEGAL) {
			break
		}
		if **(**int32)(__ccgo_up(bp)) != int32(TK_SPACE) && (**(**int32)(__ccgo_up(bp)) != int32(TK_COMMENT) || libc.Int32FromUint8(**(**Tu8)(__ccgo_up(zTmp + uintptr(iOff)))) != int32('-')) {
			iEnd = iOff + nToken
		}
		iOff = iOff + nToken
	}
	_sqlite3DbFree(tls, db, zTmp)
	return iEnd
}

var _attach_func = TFuncDef{
	FnArg:      int16(3),
	FfuncFlags: uint32(SQLITE_UTF8),
	FzName:     __ccgo_ts + 13527,
}

var _az = [3]uintptr{
	0: __ccgo_ts + 16105,
	1: __ccgo_ts + 16127,
	2: __ccgo_ts + 16111,
}

var _azAlterType = [4]uintptr{
	0: __ccgo_ts + 19979,
	1: __ccgo_ts + 19986,
	2: __ccgo_ts + 19998,
	3: __ccgo_ts + 20009,
}

var _azEnc = [4]uintptr{
	1: __ccgo_ts + 19184,
	2: __ccgo_ts + 19189,
	3: __ccgo_ts + 19197,
}

/* Shared library endings to try if zFile cannot be loaded as written */
var _azEndings = [1]uintptr{
	0: __ccgo_ts + 17586,
}

var _azErr = [5]uintptr{
	0: __ccgo_ts + 24622,
	1: __ccgo_ts + 24675,
	2: __ccgo_ts + 24177,
	3: __ccgo_ts + 24726,
	4: __ccgo_ts + 24778,
}

// C documentation
//
//	/*
//	** Column names appropriate for EXPLAIN or EXPLAIN QUERY PLAN.
//	*/
var _azExplainColNames8 = [12]uintptr{
	0:  __ccgo_ts + 5615,
	1:  __ccgo_ts + 5620,
	2:  __ccgo_ts + 5627,
	3:  __ccgo_ts + 5630,
	4:  __ccgo_ts + 5633,
	5:  __ccgo_ts + 5636,
	6:  __ccgo_ts + 5639,
	7:  __ccgo_ts + 5642,
	8:  __ccgo_ts + 5650,
	9:  __ccgo_ts + 5653,
	10: __ccgo_ts + 5660,
	11: __ccgo_ts + 5668,
}

var _azFormat = [2]uintptr{
	0: __ccgo_ts + 28986,
	1: __ccgo_ts + 28997,
}

var _azInsType = [3]uintptr{
	0: __ccgo_ts + 26766,
	1: __ccgo_ts + 26773,
	2: __ccgo_ts + 26777,
}

var _azModeName = [6]uintptr{
	0: __ccgo_ts + 19152,
	1: __ccgo_ts + 19159,
	2: __ccgo_ts + 19167,
	3: __ccgo_ts + 19171,
	4: __ccgo_ts + 19035,
	5: __ccgo_ts + 19180,
}

var _azModule = [4]uintptr{
	0: __ccgo_ts + 27364,
	1: __ccgo_ts + 27374,
	2: __ccgo_ts + 27384,
	3: __ccgo_ts + 27395,
}

/* In SQLite core */

/* #include <stddef.h> */

/*
** If building separately, we will need some setup that is normally
** found in sqliteInt.h
 */

/* Macro to check for 4-byte alignment.  Only used inside of assert() */

/* #include <string.h> */
/* #include <stdio.h> */
/* #include <assert.h> */
/* #include <stdlib.h> */

/*  The following macro is used to suppress compiler warnings.
 */

var _azName1 = [3]uintptr{
	0: __ccgo_ts + 27797,
	1: __ccgo_ts + 5653,
	2: __ccgo_ts + 17965,
}

var _azName2 = [5]uintptr{
	0: __ccgo_ts + 40598,
	1: __ccgo_ts + 37589,
	2: __ccgo_ts + 27406,
	3: __ccgo_ts + 38284,
	4: __ccgo_ts + 13046,
}

var _azOne = [1]uintptr{
	0: __ccgo_ts + 11543,
}

var _azSql = [8]uintptr{
	0: __ccgo_ts + 27802,
	1: __ccgo_ts + 27855,
	2: __ccgo_ts + 27900,
	3: __ccgo_ts + 27952,
	4: __ccgo_ts + 28006,
	5: __ccgo_ts + 28051,
	6: __ccgo_ts + 28109,
	7: __ccgo_ts + 28164,
}

// C documentation
//
//	/*
//	** Directories to consider for temp files.
//	*/
var _azTempDirs = [6]uintptr{
	2: __ccgo_ts + 3999,
	3: __ccgo_ts + 4008,
	4: __ccgo_ts + 4017,
	5: __ccgo_ts + 1741,
}

var _azType = [4]uintptr{
	0: __ccgo_ts + 5824,
	1: __ccgo_ts + 5833,
	2: __ccgo_ts + 5840,
	3: __ccgo_ts + 5846,
}

var _azType1 = [6]uintptr{
	0: __ccgo_ts + 1702,
	1: __ccgo_ts + 14376,
	2: __ccgo_ts + 14382,
	3: __ccgo_ts + 14387,
	4: __ccgo_ts + 14392,
	5: __ccgo_ts + 14382,
}

var _azType2 = [5]uintptr{
	0: __ccgo_ts + 6494,
	1: __ccgo_ts + 6489,
	2: __ccgo_ts + 8489,
	3: __ccgo_ts + 8484,
	4: __ccgo_ts + 1688,
}

// C documentation
//
//	/*
//	** Check the integrity of the freelist or of an overflow page list.
//	** Verify that the number of pages on the list is N.
//	*/
func _checkList(tls *libc.TLS, pCheck uintptr, isFreeList int32, iPage TPgno, N Tu32) {
	bp := tls.Alloc(48)
	defer tls.Free(48)
	var expected, n Tu32
	var i, nErrAtStart int32
	var iFreePage TPgno
	var pOvflData, v2 uintptr
	var _ /* pOvflPage at bp+0 */ uintptr
	_, _, _, _, _, _, _ = expected, i, iFreePage, n, nErrAtStart, pOvflData, v2
	expected = N
	nErrAtStart = (*TIntegrityCk)(unsafe.Pointer(pCheck)).FnErr
	for iPage != uint32(0) && (*TIntegrityCk)(unsafe.Pointer(pCheck)).FmxErr != 0 {
		if _checkRef(tls, pCheck, iPage) != 0 {
			break
		}
		N = N - 1
		if _sqlite3PagerGet(tls, (*TIntegrityCk)(unsafe.Pointer(pCheck)).FpPager, iPage, bp, 0) != 0 {
			_checkAppendMsg(tls, pCheck, __ccgo_ts+4487, libc.VaList(bp+16, iPage))
			break
		}
		pOvflData = _sqlite3PagerGetData(tls, **(**uintptr)(__ccgo_up(bp)))
		if isFreeList != 0 {
			n = _sqlite3Get4byte(tls, pOvflData+4)
			if (*TBtShared)(unsafe.Pointer((*TIntegrityCk)(unsafe.Pointer(pCheck)).FpBt)).FautoVacuum != 0 {
				_checkPtrmap(tls, pCheck, iPage, uint8(PTRMAP_FREEPAGE), uint32(0))
			}
			if n > (*TBtShared)(unsafe.Pointer((*TIntegrityCk)(unsafe.Pointer(pCheck)).FpBt)).FusableSize/uint32(4)-uint32(2) {
				_checkAppendMsg(tls, pCheck, __ccgo_ts+4509, libc.VaList(bp+16, iPage))
				N = N - 1
			} else {
				i = 0
				for {
					if !(i < libc.Int32FromUint32(n)) {
						break
					}
					iFreePage = _sqlite3Get4byte(tls, pOvflData+uintptr(int32(8)+i*int32(4)))
					if (*TBtShared)(unsafe.Pointer((*TIntegrityCk)(unsafe.Pointer(pCheck)).FpBt)).FautoVacuum != 0 {
						_checkPtrmap(tls, pCheck, iFreePage, uint8(PTRMAP_FREEPAGE), uint32(0))
					}
					_checkRef(tls, pCheck, iFreePage)
					goto _1
				_1:
					;
					i = i + 1
				}
				N = N - n
			}
		} else {
			/* If this database supports auto-vacuum and iPage is not the last
			 ** page in this overflow list, check that the pointer-map entry for
			 ** the following page matches iPage.
			 */
			if (*TBtShared)(unsafe.Pointer((*TIntegrityCk)(unsafe.Pointer(pCheck)).FpBt)).FautoVacuum != 0 && N > uint32(0) {
				i = libc.Int32FromUint32(_sqlite3Get4byte(tls, pOvflData))
				_checkPtrmap(tls, pCheck, libc.Uint32FromInt32(i), uint8(PTRMAP_OVERFLOW2), iPage)
			}
		}
		iPage = _sqlite3Get4byte(tls, pOvflData)
		_sqlite3PagerUnref(tls, **(**uintptr)(__ccgo_up(bp)))
	}
	if N != 0 && nErrAtStart == (*TIntegrityCk)(unsafe.Pointer(pCheck)).FnErr {
		if isFreeList != 0 {
			v2 = __ccgo_ts + 4548
		} else {
			v2 = __ccgo_ts + 4553
		}
		_checkAppendMsg(tls, pCheck, __ccgo_ts+4574, libc.VaList(bp+16, v2, expected-N, expected))
	}
}

// C documentation
//
//	/*
//	** Check that the entry in the pointer-map for page iChild maps to
//	** page iParent, pointer type ptrType. If not, append an error message
//	** to pCheck.
//	*/
func _checkPtrmap(tls *libc.TLS, pCheck uintptr, iChild TPgno, eType Tu8, iParent TPgno) {
	bp := tls.Alloc(64)
	defer tls.Free(64)
	var rc int32
	var _ /* ePtrmapType at bp+0 */ Tu8
	var _ /* iPtrmapParent at bp+4 */ TPgno
	_ = rc
	rc = _ptrmapGet(tls, (*TIntegrityCk)(unsafe.Pointer(pCheck)).FpBt, iChild, bp, bp+4)
	if rc != SQLITE_OK {
		if rc == int32(SQLITE_NOMEM) || rc == libc.Int32FromInt32(SQLITE_IOERR)|libc.Int32FromInt32(12)<<libc.Int32FromInt32(8) {
			_checkOom(tls, pCheck)
		}
		_checkAppendMsg(tls, pCheck, __ccgo_ts+4404, libc.VaList(bp+16, iChild))
		return
	}
	if libc.Int32FromUint8(**(**Tu8)(__ccgo_up(bp))) != libc.Int32FromUint8(eType) || **(**TPgno)(__ccgo_up(bp + 4)) != iParent {
		_checkAppendMsg(tls, pCheck, __ccgo_ts+4433, libc.VaList(bp+16, iChild, libc.Int32FromUint8(eType), iParent, libc.Int32FromUint8(**(**Tu8)(__ccgo_up(bp))), **(**TPgno)(__ccgo_up(bp + 4))))
	}
}

// C documentation
//
//	/*
//	** Check that there is no open read-transaction on the b-tree passed as the
//	** second argument. If there is not, return SQLITE_OK. Otherwise, if there
//	** is an open read-transaction, return SQLITE_ERROR and leave an error
//	** message in database handle db.
//	*/
func _checkReadTransaction(tls *libc.TLS, db uintptr, p uintptr) (r int32) {
	if _sqlite3BtreeTxnState(tls, p) != SQLITE_TXN_NONE {
		_sqlite3ErrorWithMsg(tls, db, int32(SQLITE_ERROR), __ccgo_ts+5147, 0)
		return int32(SQLITE_ERROR)
	}
	return SQLITE_OK
}

// C documentation
//
//	/*
//	** Add 1 to the reference count for page iPage.  If this is the second
//	** reference to the page, add an error message to pCheck->zErrMsg.
//	** Return 1 if there are 2 or more references to the page and 0 if
//	** if this is the first reference to the page.
//	**
//	** Also check that the page number is in bounds.
//	*/
func _checkRef(tls *libc.TLS, pCheck uintptr, iPage TPgno) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	if iPage > (*TIntegrityCk)(unsafe.Pointer(pCheck)).FnCkPage || iPage == uint32(0) {
		_checkAppendMsg(tls, pCheck, __ccgo_ts+4356, libc.VaList(bp+8, iPage))
		return int32(1)
	}
	if _getPageReferenced(tls, pCheck, iPage) != 0 {
		_checkAppendMsg(tls, pCheck, __ccgo_ts+4379, libc.VaList(bp+8, iPage))
		return int32(1)
	}
	_setPageReferenced(tls, pCheck, iPage)
	return 0
}

var _detach_func = TFuncDef{
	FnArg:      int16(1),
	FfuncFlags: uint32(SQLITE_UTF8),
	FzName:     __ccgo_ts + 13513,
}

func _disallowAggregatesInOrderByCb(tls *libc.TLS, pWalker uintptr, pExpr uintptr) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	if libc.Int32FromUint8((*TExpr)(unsafe.Pointer(pExpr)).Fop) == int32(TK_AGG_FUNCTION) && (*TExpr)(unsafe.Pointer(pExpr)).FpAggInfo == uintptr(0) {
		_sqlite3ErrorMsg(tls, (*TWalker)(unsafe.Pointer(pWalker)).FpParse, __ccgo_ts+24431, libc.VaList(bp+8, *(*uintptr)(unsafe.Pointer(pExpr + 8))))
	}
	return WRC_Continue
}

var _encnames = [4]uintptr{
	0: __ccgo_ts + 5261,
	1: __ccgo_ts + 5263,
	2: __ccgo_ts + 5265,
	3: __ccgo_ts + 5270,
}

var _encnames1 = [9]struct {
	FzName uintptr
	Fenc   Tu8
}{
	0: {
		FzName: __ccgo_ts + 19794,
		Fenc:   uint8(SQLITE_UTF8),
	},
	1: {
		FzName: __ccgo_ts + 19799,
		Fenc:   uint8(SQLITE_UTF8),
	},
	2: {
		FzName: __ccgo_ts + 19805,
		Fenc:   uint8(SQLITE_UTF16LE),
	},
	3: {
		FzName: __ccgo_ts + 19814,
		Fenc:   uint8(SQLITE_UTF16BE),
	},
	4: {
		FzName: __ccgo_ts + 19823,
		Fenc:   uint8(SQLITE_UTF16LE),
	},
	5: {
		FzName: __ccgo_ts + 19831,
		Fenc:   uint8(SQLITE_UTF16BE),
	},
	6: {
		FzName: __ccgo_ts + 19839,
	},
	7: {
		FzName: __ccgo_ts + 19846,
	},
	8: {},
}

// C documentation
//
//	/*
//	** This routine is a helper for explainIndexRange() below
//	**
//	** pStr holds the text of an expression that we are building up one term
//	** at a time.  This routine adds a new term to the end of the expression.
//	** Terms are separated by AND so add the "AND" text for second and subsequent
//	** terms only.
//	*/
func _explainAppendTerm(tls *libc.TLS, pStr uintptr, pIdx uintptr, nTerm int32, iTerm int32, bAnd int32, zOp uintptr) {
	var i int32
	_ = i
	if bAnd != 0 {
		Xsqlite3_str_append(tls, pStr, __ccgo_ts+23627, int32(5))
	}
	if nTerm > int32(1) {
		Xsqlite3_str_append(tls, pStr, __ccgo_ts+23633, int32(1))
	}
	i = 0
	for {
		if !(i < nTerm) {
			break
		}
		if i != 0 {
			Xsqlite3_str_append(tls, pStr, __ccgo_ts+14348, int32(1))
		}
		Xsqlite3_str_appendall(tls, pStr, _explainIndexColumnName(tls, pIdx, iTerm+i))
		goto _1
	_1:
		;
		i = i + 1
	}
	if nTerm > int32(1) {
		Xsqlite3_str_append(tls, pStr, __ccgo_ts+5259, int32(1))
	}
	Xsqlite3_str_append(tls, pStr, zOp, int32(1))
	if nTerm > int32(1) {
		Xsqlite3_str_append(tls, pStr, __ccgo_ts+23633, int32(1))
	}
	i = 0
	for {
		if !(i < nTerm) {
			break
		}
		if i != 0 {
			Xsqlite3_str_append(tls, pStr, __ccgo_ts+14348, int32(1))
		}
		Xsqlite3_str_append(tls, pStr, __ccgo_ts+5261, int32(1))
		goto _2
	_2:
		;
		i = i + 1
	}
	if nTerm > int32(1) {
		Xsqlite3_str_append(tls, pStr, __ccgo_ts+5259, int32(1))
	}
}

// C documentation
//
//	/*
//	** Argument pLevel describes a strategy for scanning table pTab. This
//	** function appends text to pStr that describes the subset of table
//	** rows scanned by the strategy in the form of an SQL expression.
//	**
//	** For example, if the query:
//	**
//	**   SELECT * FROM t1 WHERE a=1 AND b>2;
//	**
//	** is run and there is an index on (a, b), then this function returns a
//	** string similar to:
//	**
//	**   "a=? AND b>?"
//	*/
func _explainIndexRange(tls *libc.TLS, pStr uintptr, pLoop uintptr) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var i, j int32
	var nEq, nSkip Tu16
	var pIndex, z, v2 uintptr
	_, _, _, _, _, _, _ = i, j, nEq, nSkip, pIndex, z, v2
	pIndex = (*(*struct {
		FnEq          Tu16
		FnBtm         Tu16
		FnTop         Tu16
		FnDistinctCol Tu16
		FpIndex       uintptr
		FpOrderBy     uintptr
	})(unsafe.Pointer(pLoop + 24))).FpIndex
	nEq = (*(*struct {
		FnEq          Tu16
		FnBtm         Tu16
		FnTop         Tu16
		FnDistinctCol Tu16
		FpIndex       uintptr
		FpOrderBy     uintptr
	})(unsafe.Pointer(pLoop + 24))).FnEq
	nSkip = (*TWhereLoop)(unsafe.Pointer(pLoop)).FnSkip
	if libc.Int32FromUint16(nEq) == 0 && (*TWhereLoop)(unsafe.Pointer(pLoop)).FwsFlags&libc.Uint32FromInt32(libc.Int32FromInt32(WHERE_BTM_LIMIT)|libc.Int32FromInt32(WHERE_TOP_LIMIT)) == uint32(0) {
		return
	}
	Xsqlite3_str_append(tls, pStr, __ccgo_ts+23635, int32(2))
	i = 0
	for {
		if !(i < libc.Int32FromUint16(nEq)) {
			break
		}
		z = _explainIndexColumnName(tls, pIndex, i)
		if i != 0 {
			Xsqlite3_str_append(tls, pStr, __ccgo_ts+23627, int32(5))
		}
		if i >= libc.Int32FromUint16(nSkip) {
			v2 = __ccgo_ts + 23638
		} else {
			v2 = __ccgo_ts + 23643
		}
		Xsqlite3_str_appendf(tls, pStr, v2, libc.VaList(bp+8, z))
		goto _1
	_1:
		;
		i = i + 1
	}
	j = i
	if (*TWhereLoop)(unsafe.Pointer(pLoop)).FwsFlags&uint32(WHERE_BTM_LIMIT) != 0 {
		_explainAppendTerm(tls, pStr, pIndex, libc.Int32FromUint16((*(*struct {
			FnEq          Tu16
			FnBtm         Tu16
			FnTop         Tu16
			FnDistinctCol Tu16
			FpIndex       uintptr
			FpOrderBy     uintptr
		})(unsafe.Pointer(pLoop + 24))).FnBtm), j, i, __ccgo_ts+23651)
		i = int32(1)
	}
	if (*TWhereLoop)(unsafe.Pointer(pLoop)).FwsFlags&uint32(WHERE_TOP_LIMIT) != 0 {
		_explainAppendTerm(tls, pStr, pIndex, libc.Int32FromUint16((*(*struct {
			FnEq          Tu16
			FnBtm         Tu16
			FnTop         Tu16
			FnDistinctCol Tu16
			FpIndex       uintptr
			FpOrderBy     uintptr
		})(unsafe.Pointer(pLoop + 24))).FnTop), j, i, __ccgo_ts+23653)
	}
	Xsqlite3_str_append(tls, pStr, __ccgo_ts+5259, int32(1))
}

// C documentation
//
//	/*
//	** Unless an "EXPLAIN QUERY PLAN" command is being processed, this function
//	** is a no-op. Otherwise, it adds a single row of output to the EQP result,
//	** where the caption is of the form:
//	**
//	**   "USE TEMP B-TREE FOR xxx"
//	**
//	** where xxx is one of "DISTINCT", "ORDER BY" or "GROUP BY". Exactly which
//	** is determined by the zUsage argument.
//	*/
func _explainTempTable(tls *libc.TLS, pParse uintptr, zUsage uintptr) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	_sqlite3VdbeExplain(tls, pParse, uint8(0), __ccgo_ts+20520, libc.VaList(bp+8, zUsage))
}

/*
** Assign expression b to lvalue a. A second, no-op, version of this macro
** is provided when SQLITE_OMIT_EXPLAIN is defined. This allows the code
** in sqlite3Select() to assign values to structure member variables that
** only exist if SQLITE_OMIT_EXPLAIN is not defined without polluting the
** code with #ifndef directives.
 */

// C documentation
//
//	/*
//	** Implementation of the fts5() function used by clients to obtain the
//	** API pointer.
//	*/
func _fts5Fts5Func(tls *libc.TLS, pCtx uintptr, nArg int32, apArg uintptr) {
	var pGlobal, ppApi uintptr
	_, _ = pGlobal, ppApi
	pGlobal = Xsqlite3_user_data(tls, pCtx)
	_ = nArg
	ppApi = Xsqlite3_value_pointer(tls, **(**uintptr)(__ccgo_up(apArg)), __ccgo_ts+40494)
	if ppApi != 0 {
		**(**uintptr)(__ccgo_up(ppApi)) = pGlobal
	}
}

func _fts5IndexCorruptIdx(tls *libc.TLS, pIdx uintptr) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	(*TFts5Index)(unsafe.Pointer(pIdx)).Frc = libc.Int32FromInt32(SQLITE_CORRUPT) | libc.Int32FromInt32(1)<<libc.Int32FromInt32(8)
	_sqlite3Fts5ConfigErrmsg(tls, (*TFts5Index)(unsafe.Pointer(pIdx)).FpConfig, __ccgo_ts+38909, libc.VaList(bp+8, (*TFts5Config)(unsafe.Pointer((*TFts5Index)(unsafe.Pointer(pIdx)).FpConfig)).FzName))
	return libc.Int32FromInt32(SQLITE_CORRUPT) | libc.Int32FromInt32(1)<<libc.Int32FromInt32(8)
}

/* Size (in bytes) of an Fts5DlidxIter object with up to N levels */

func _fts5IndexCorruptIter(tls *libc.TLS, pIdx uintptr, pIter uintptr) (r int32) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	(*TFts5Index)(unsafe.Pointer(pIdx)).Frc = libc.Int32FromInt32(SQLITE_CORRUPT) | libc.Int32FromInt32(1)<<libc.Int32FromInt32(8)
	_sqlite3Fts5ConfigErrmsg(tls, (*TFts5Index)(unsafe.Pointer(pIdx)).FpConfig, __ccgo_ts+38857, libc.VaList(bp+8, (*TFts5SegIter)(unsafe.Pointer(pIter)).FiLeafPgno, (*TFts5StructureSegment)(unsafe.Pointer((*TFts5SegIter)(unsafe.Pointer(pIter)).FpSeg)).FiSegid, (*TFts5Config)(unsafe.Pointer((*TFts5Index)(unsafe.Pointer(pIdx)).FpConfig)).FzName))
	return libc.Int32FromInt32(SQLITE_CORRUPT) | libc.Int32FromInt32(1)<<libc.Int32FromInt32(8)
}

func _fts5IndexCorruptRowid(tls *libc.TLS, pIdx uintptr, iRowid Ti64) (r int32) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	(*TFts5Index)(unsafe.Pointer(pIdx)).Frc = libc.Int32FromInt32(SQLITE_CORRUPT) | libc.Int32FromInt32(1)<<libc.Int32FromInt32(8)
	_sqlite3Fts5ConfigErrmsg(tls, (*TFts5Index)(unsafe.Pointer(pIdx)).FpConfig, __ccgo_ts+38800, libc.VaList(bp+8, iRowid, (*TFts5Config)(unsafe.Pointer((*TFts5Index)(unsafe.Pointer(pIdx)).FpConfig)).FzName))
	return libc.Int32FromInt32(SQLITE_CORRUPT) | libc.Int32FromInt32(1)<<libc.Int32FromInt32(8)
}

// C documentation
//
//	/*
//	** Run an integrity check on the FTS5 data structures.  Return a string
//	** if anything is found amiss.  Return a NULL pointer if everything is
//	** OK.
//	*/
func _fts5IntegrityMethod(tls *libc.TLS, pVtab uintptr, zSchema uintptr, zTabname uintptr, isQuick int32, pzErr uintptr) (r int32) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var pTab uintptr
	var rc, v1 int32
	_, _, _ = pTab, rc, v1
	pTab = pVtab
	_ = isQuick
	(*TFts5Config)(unsafe.Pointer((*TFts5FullTable)(unsafe.Pointer(pTab)).Fp.FpConfig)).FpzErrmsg = pzErr
	rc = _sqlite3Fts5StorageIntegrity(tls, (*TFts5FullTable)(unsafe.Pointer(pTab)).FpStorage, 0)
	if **(**uintptr)(__ccgo_up(pzErr)) == uintptr(0) && rc != SQLITE_OK {
		if rc&int32(0xff) == int32(SQLITE_CORRUPT) {
			**(**uintptr)(__ccgo_up(pzErr)) = Xsqlite3_mprintf(tls, __ccgo_ts+40605, libc.VaList(bp+8, zSchema, zTabname))
			if **(**uintptr)(__ccgo_up(pzErr)) != 0 {
				v1 = SQLITE_OK
			} else {
				v1 = int32(SQLITE_NOMEM)
			}
			rc = v1
		} else {
			**(**uintptr)(__ccgo_up(pzErr)) = Xsqlite3_mprintf(tls, __ccgo_ts+40651, libc.VaList(bp+8, zSchema, zTabname, Xsqlite3_errstr(tls, rc)))
		}
	} else {
		if rc&int32(0xff) == int32(SQLITE_CORRUPT) {
			rc = SQLITE_OK
		}
	}
	_sqlite3Fts5IndexCloseReader(tls, (*TFts5FullTable)(unsafe.Pointer(pTab)).Fp.FpIndex)
	(*TFts5Config)(unsafe.Pointer((*TFts5FullTable)(unsafe.Pointer(pTab)).Fp.FpConfig)).FpzErrmsg = uintptr(0)
	return rc
}

func _fts5PrepareStatement(tls *libc.TLS, ppStmt uintptr, pConfig uintptr, zFmt uintptr, va uintptr) (r int32) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var ap Tva_list
	var rc int32
	var zSql uintptr
	var _ /* pRet at bp+0 */ uintptr
	_, _, _ = ap, rc, zSql
	**(**uintptr)(__ccgo_up(bp)) = uintptr(0)
	ap = va
	zSql = Xsqlite3_vmprintf(tls, zFmt, ap)
	if zSql == uintptr(0) {
		rc = int32(SQLITE_NOMEM)
	} else {
		rc = Xsqlite3_prepare_v3(tls, (*TFts5Config)(unsafe.Pointer(pConfig)).Fdb, zSql, -int32(1), uint32(SQLITE_PREPARE_PERSISTENT), bp, uintptr(0))
		if rc != SQLITE_OK {
			_sqlite3Fts5ConfigErrmsg(tls, pConfig, __ccgo_ts+3942, libc.VaList(bp+16, Xsqlite3_errmsg(tls, (*TFts5Config)(unsafe.Pointer(pConfig)).Fdb)))
		}
		Xsqlite3_free(tls, zSql)
	}
	_ = ap
	**(**uintptr)(__ccgo_up(ppStmt)) = **(**uintptr)(__ccgo_up(bp))
	return rc
}

// C documentation
//
//	/*
//	** Implementation of fts5_source_id() function.
//	*/
func _fts5SourceIdFunc(tls *libc.TLS, pCtx uintptr, nArg int32, apUnused uintptr) {
	_ = nArg
	_ = apUnused
	Xsqlite3_result_text(tls, pCtx, __ccgo_ts+40507, -int32(1), uintptr(-libc.Int32FromInt32(1)))
}

// C documentation
//
//	/*
//	** This function is called to handle an FTS INSERT command. In other words,
//	** an INSERT statement of the form:
//	**
//	**     INSERT INTO fts(fts) VALUES($pCmd)
//	**     INSERT INTO fts(fts, rank) VALUES($pCmd, $pVal)
//	**
//	** Argument pVal is the value assigned to column "fts" by the INSERT
//	** statement. This function returns SQLITE_OK if successful, or an SQLite
//	** error code if an error occurs.
//	**
//	** The commands implemented by this function are documented in the "Special
//	** INSERT Directives" section of the documentation. It should be updated if
//	** more commands are added to this function.
//	*/
func _fts5SpecialInsert(tls *libc.TLS, pTab uintptr, zCmd uintptr, pVal uintptr) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var bLoadConfig, iArg, nMerge, rc int32
	var pConfig uintptr
	var _ /* bError at bp+0 */ int32
	_, _, _, _, _ = bLoadConfig, iArg, nMerge, pConfig, rc
	pConfig = (*TFts5FullTable)(unsafe.Pointer(pTab)).Fp.FpConfig
	rc = SQLITE_OK
	**(**int32)(__ccgo_up(bp)) = 0
	bLoadConfig = 0
	if 0 == Xsqlite3_stricmp(tls, __ccgo_ts+39996, zCmd) {
		if (*TFts5Config)(unsafe.Pointer(pConfig)).FeContent == FTS5_CONTENT_NORMAL {
			_fts5SetVtabError(tls, pTab, __ccgo_ts+40007, 0)
			rc = int32(SQLITE_ERROR)
		} else {
			rc = _sqlite3Fts5StorageDeleteAll(tls, (*TFts5FullTable)(unsafe.Pointer(pTab)).FpStorage)
		}
		bLoadConfig = int32(1)
	} else {
		if 0 == Xsqlite3_stricmp(tls, __ccgo_ts+40087, zCmd) {
			if _fts5IsContentless(tls, pTab, int32(1)) != 0 {
				_fts5SetVtabError(tls, pTab, __ccgo_ts+40095, 0)
				rc = int32(SQLITE_ERROR)
			} else {
				rc = _sqlite3Fts5StorageRebuild(tls, (*TFts5FullTable)(unsafe.Pointer(pTab)).FpStorage)
			}
			bLoadConfig = int32(1)
		} else {
			if 0 == Xsqlite3_stricmp(tls, __ccgo_ts+18632, zCmd) {
				rc = _sqlite3Fts5StorageOptimize(tls, (*TFts5FullTable)(unsafe.Pointer(pTab)).FpStorage)
			} else {
				if 0 == Xsqlite3_stricmp(tls, __ccgo_ts+40151, zCmd) {
					nMerge = Xsqlite3_value_int(tls, pVal)
					rc = _sqlite3Fts5StorageMerge(tls, (*TFts5FullTable)(unsafe.Pointer(pTab)).FpStorage, nMerge)
				} else {
					if 0 == Xsqlite3_stricmp(tls, __ccgo_ts+40157, zCmd) {
						iArg = Xsqlite3_value_int(tls, pVal)
						rc = _sqlite3Fts5StorageIntegrity(tls, (*TFts5FullTable)(unsafe.Pointer(pTab)).FpStorage, iArg)
					} else {
						if 0 == Xsqlite3_stricmp(tls, __ccgo_ts+40173, zCmd) {
							rc = _sqlite3Fts5FlushToDisk(tls, pTab)
						} else {
							rc = _sqlite3Fts5FlushToDisk(tls, pTab)
							if rc == SQLITE_OK {
								rc = _sqlite3Fts5IndexLoadConfig(tls, (*TFts5FullTable)(unsafe.Pointer(pTab)).Fp.FpIndex)
							}
							if rc == SQLITE_OK {
								rc = _sqlite3Fts5ConfigSetValue(tls, (*TFts5FullTable)(unsafe.Pointer(pTab)).Fp.FpConfig, zCmd, pVal, bp)
							}
							if rc == SQLITE_OK {
								if **(**int32)(__ccgo_up(bp)) != 0 {
									rc = int32(SQLITE_ERROR)
								} else {
									rc = _sqlite3Fts5StorageConfigValue(tls, (*TFts5FullTable)(unsafe.Pointer(pTab)).FpStorage, zCmd, pVal, 0)
								}
							}
						}
					}
				}
			}
		}
	}
	if rc == SQLITE_OK && bLoadConfig != 0 {
		(*TFts5Config)(unsafe.Pointer((*TFts5FullTable)(unsafe.Pointer(pTab)).Fp.FpConfig)).FiCookie = (*TFts5Config)(unsafe.Pointer((*TFts5FullTable)(unsafe.Pointer(pTab)).Fp.FpConfig)).FiCookie - 1
		rc = _sqlite3Fts5IndexLoadConfig(tls, (*TFts5FullTable)(unsafe.Pointer(pTab)).Fp.FpIndex)
	}
	return rc
}

func _fts5StorageCount(tls *libc.TLS, p uintptr, zSuffix uintptr, pnRow uintptr) (r int32) {
	bp := tls.Alloc(48)
	defer tls.Free(48)
	var pConfig, zSql uintptr
	var rc int32
	var _ /* pCnt at bp+0 */ uintptr
	_, _, _ = pConfig, rc, zSql
	pConfig = (*TFts5Storage)(unsafe.Pointer(p)).FpConfig
	zSql = Xsqlite3_mprintf(tls, __ccgo_ts+41800, libc.VaList(bp+16, (*TFts5Config)(unsafe.Pointer(pConfig)).FzDb, (*TFts5Config)(unsafe.Pointer(pConfig)).FzName, zSuffix))
	if zSql == uintptr(0) {
		rc = int32(SQLITE_NOMEM)
	} else {
		**(**uintptr)(__ccgo_up(bp)) = uintptr(0)
		rc = Xsqlite3_prepare_v2(tls, (*TFts5Config)(unsafe.Pointer(pConfig)).Fdb, zSql, -int32(1), bp, uintptr(0))
		if rc == SQLITE_OK {
			if int32(SQLITE_ROW) == Xsqlite3_step(tls, **(**uintptr)(__ccgo_up(bp))) {
				**(**Ti64)(__ccgo_up(pnRow)) = Xsqlite3_column_int64(tls, **(**uintptr)(__ccgo_up(bp)), 0)
			}
			rc = Xsqlite3_finalize(tls, **(**uintptr)(__ccgo_up(bp)))
		}
	}
	Xsqlite3_free(tls, zSql)
	return rc
}

func _fts5StorageRenameOne(tls *libc.TLS, pConfig uintptr, pRc uintptr, zTail uintptr, zName uintptr) {
	bp := tls.Alloc(48)
	defer tls.Free(48)
	if **(**int32)(__ccgo_up(pRc)) == SQLITE_OK {
		**(**int32)(__ccgo_up(pRc)) = _fts5ExecPrintf(tls, (*TFts5Config)(unsafe.Pointer(pConfig)).Fdb, uintptr(0), __ccgo_ts+41444, libc.VaList(bp+8, (*TFts5Config)(unsafe.Pointer(pConfig)).FzDb, (*TFts5Config)(unsafe.Pointer(pConfig)).FzName, zTail, zName, zTail))
	}
}

// C documentation
//
//	/*
//	** Translate a string containing an fts5vocab table type to an
//	** FTS5_VOCAB_XXX constant. If successful, set *peType to the output
//	** value and return SQLITE_OK. Otherwise, set *pzErr to an error message
//	** and return SQLITE_ERROR.
//	*/
func _fts5VocabTableType(tls *libc.TLS, zType uintptr, pzErr uintptr, peType uintptr) (r int32) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var zCopy uintptr
	var _ /* rc at bp+0 */ int32
	_ = zCopy
	**(**int32)(__ccgo_up(bp)) = SQLITE_OK
	zCopy = _sqlite3Fts5Strndup(tls, bp, zType, -int32(1))
	if **(**int32)(__ccgo_up(bp)) == SQLITE_OK {
		_sqlite3Fts5Dequote(tls, zCopy)
		if Xsqlite3_stricmp(tls, zCopy, __ccgo_ts+42217) == 0 {
			**(**int32)(__ccgo_up(peType)) = FTS5_VOCAB_COL
		} else {
			if Xsqlite3_stricmp(tls, zCopy, __ccgo_ts+42221) == 0 {
				**(**int32)(__ccgo_up(peType)) = int32(FTS5_VOCAB_ROW)
			} else {
				if Xsqlite3_stricmp(tls, zCopy, __ccgo_ts+42225) == 0 {
					**(**int32)(__ccgo_up(peType)) = int32(FTS5_VOCAB_INSTANCE)
				} else {
					**(**uintptr)(__ccgo_up(pzErr)) = Xsqlite3_mprintf(tls, __ccgo_ts+42234, libc.VaList(bp+16, zCopy))
					**(**int32)(__ccgo_up(bp)) = int32(SQLITE_ERROR)
				}
			}
		}
		Xsqlite3_free(tls, zCopy)
	}
	return **(**int32)(__ccgo_up(bp))
}

// C documentation
//
//	/*
//	** The following routine is called if the stack overflows.
//	*/
func _fts5yyStackOverflow(tls *libc.TLS, fts5yypParser uintptr) {
	var pParse uintptr
	_ = pParse
	pParse = (*Tfts5yyParser)(unsafe.Pointer(fts5yypParser)).FpParse
	for (*Tfts5yyParser)(unsafe.Pointer(fts5yypParser)).Ffts5yytos > (*Tfts5yyParser)(unsafe.Pointer(fts5yypParser)).Ffts5yystack {
		_fts5yy_pop_parser_stack(tls, fts5yypParser)
	}
	/* Here code is inserted which will execute if the parser
	 ** stack every overflows */
	/******** Begin %stack_overflow code ******************************************/
	_sqlite3Fts5ParseError(tls, pParse, __ccgo_ts+37088, 0)
	/******** End %stack_overflow code ********************************************/
	(*Tfts5yyParser)(unsafe.Pointer(fts5yypParser)).FpParse = pParse /* Suppress warning about unused %extra_argument var */
}

/*
** Print tracing information for a SHIFT action
 */

// C documentation
//
//	/*
//	** The following code executes when a syntax error first occurs.
//	*/
func _fts5yy_syntax_error(tls *libc.TLS, fts5yypParser uintptr, fts5yymajor int32, fts5yyminor TFts5Token) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var pParse uintptr
	_ = pParse
	pParse = (*Tfts5yyParser)(unsafe.Pointer(fts5yypParser)).FpParse
	/************ Begin %syntax_error code ****************************************/
	_ = fts5yymajor /* Silence a compiler warning */
	_sqlite3Fts5ParseError(tls, pParse, __ccgo_ts+37116, libc.VaList(bp+8, fts5yyminor.Fn, fts5yyminor.Fp))
	/************ End %syntax_error code ******************************************/
	(*Tfts5yyParser)(unsafe.Pointer(fts5yypParser)).FpParse = pParse /* Suppress warning about unused %extra_argument variable */
}

// C documentation
//
//	/*
//	** Rtree virtual table module xBestIndex method. There are three
//	** table scan strategies to choose from (in order from most to
//	** least desirable):
//	**
//	**   idxNum     idxStr        Strategy
//	**   ------------------------------------------------
//	**     1        "rowid"       Direct lookup by rowid.
//	**     2        "rtree"       R-tree overlap query using geopoly_overlap()
//	**     3        "rtree"       R-tree within query using geopoly_within()
//	**     4        "fullscan"    full-table scan.
//	**   ------------------------------------------------
//	*/
func _geopolyBestIndex(tls *libc.TLS, tab uintptr, pIdxInfo uintptr) (r int32) {
	var iFuncTerm, iRowidTerm, idxNum, ii int32
	var p uintptr
	_, _, _, _, _ = iFuncTerm, iRowidTerm, idxNum, ii, p
	iRowidTerm = -int32(1)
	iFuncTerm = -int32(1)
	idxNum = 0
	_ = tab
	ii = 0
	for {
		if !(ii < (*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FnConstraint) {
			break
		}
		p = (*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FaConstraint + uintptr(ii)*12
		if !((*Tsqlite3_index_constraint)(unsafe.Pointer(p)).Fusable != 0) {
			goto _1
		}
		if (*Tsqlite3_index_constraint)(unsafe.Pointer(p)).FiColumn < 0 && libc.Int32FromUint8((*Tsqlite3_index_constraint)(unsafe.Pointer(p)).Fop) == int32(SQLITE_INDEX_CONSTRAINT_EQ) {
			iRowidTerm = ii
			break
		}
		if (*Tsqlite3_index_constraint)(unsafe.Pointer(p)).FiColumn == 0 && libc.Int32FromUint8((*Tsqlite3_index_constraint)(unsafe.Pointer(p)).Fop) >= int32(SQLITE_INDEX_CONSTRAINT_FUNCTION) {
			/* p->op==SQLITE_INDEX_CONSTRAINT_FUNCTION for geopoly_overlap()
			 ** p->op==(SQLITE_INDEX_CONTRAINT_FUNCTION+1) for geopoly_within().
			 ** See geopolyFindFunction() */
			iFuncTerm = ii
			idxNum = libc.Int32FromUint8((*Tsqlite3_index_constraint)(unsafe.Pointer(p)).Fop) - int32(SQLITE_INDEX_CONSTRAINT_FUNCTION) + int32(2)
		}
		goto _1
	_1:
		;
		ii = ii + 1
	}
	if iRowidTerm >= 0 {
		(*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FidxNum = int32(1)
		(*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FidxStr = __ccgo_ts + 17965
		(**(**Tsqlite3_index_constraint_usage)(__ccgo_up((*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FaConstraintUsage + uintptr(iRowidTerm)*8))).FargvIndex = int32(1)
		(**(**Tsqlite3_index_constraint_usage)(__ccgo_up((*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FaConstraintUsage + uintptr(iRowidTerm)*8))).Fomit = uint8(1)
		(*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FestimatedCost = float64(30)
		(*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FestimatedRows = int64(1)
		(*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FidxFlags = int32(SQLITE_INDEX_SCAN_UNIQUE)
		return SQLITE_OK
	}
	if iFuncTerm >= 0 {
		(*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FidxNum = idxNum
		(*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FidxStr = __ccgo_ts + 29971
		(**(**Tsqlite3_index_constraint_usage)(__ccgo_up((*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FaConstraintUsage + uintptr(iFuncTerm)*8))).FargvIndex = int32(1)
		(**(**Tsqlite3_index_constraint_usage)(__ccgo_up((*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FaConstraintUsage + uintptr(iFuncTerm)*8))).Fomit = uint8(0)
		(*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FestimatedCost = float64(300)
		(*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FestimatedRows = int64(10)
		return SQLITE_OK
	}
	(*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FidxNum = int32(4)
	(*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FidxStr = __ccgo_ts + 29977
	(*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FestimatedCost = float64(3e+06)
	(*Tsqlite3_index_info)(unsafe.Pointer(pIdxInfo)).FestimatedRows = int64(100000)
	return SQLITE_OK
}

// C documentation
//
//	/*
//	** Report that geopoly_overlap() is an overloaded function suitable
//	** for use in xBestIndex.
//	*/
func _geopolyFindFunction(tls *libc.TLS, pVtab uintptr, nArg int32, zName uintptr, __ccgo_fp_pxFunc uintptr, ppArg uintptr) (r int32) {
	_ = pVtab
	_ = nArg
	if Xsqlite3_stricmp(tls, zName, __ccgo_ts+30026) == 0 {
		**(**uintptr)(__ccgo_up(__ccgo_fp_pxFunc)) = __ccgo_fp(_geopolyOverlapFunc)
		**(**uintptr)(__ccgo_up(ppArg)) = uintptr(0)
		return int32(SQLITE_INDEX_CONSTRAINT_FUNCTION)
	}
	if Xsqlite3_stricmp(tls, zName, __ccgo_ts+30042) == 0 {
		**(**uintptr)(__ccgo_up(__ccgo_fp_pxFunc)) = __ccgo_fp(_geopolyWithinFunc)
		**(**uintptr)(__ccgo_up(ppArg)) = uintptr(0)
		return libc.Int32FromInt32(SQLITE_INDEX_CONSTRAINT_FUNCTION) + libc.Int32FromInt32(1)
	}
	return 0
}

// C documentation
//
//	/*
//	** SQL function:     geopoly_json(X)
//	**
//	** Interpret X as a polygon and render it as a JSON array
//	** of coordinates.  Or, if X is not a valid polygon, return NULL.
//	*/
func _geopolyJsonFunc(tls *libc.TLS, context uintptr, argc int32, argv uintptr) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var db, p, x uintptr
	var i int32
	_, _, _, _ = db, i, p, x
	p = _geopolyFuncParam(tls, context, **(**uintptr)(__ccgo_up(argv)), uintptr(0))
	_ = argc
	if p != 0 {
		db = Xsqlite3_context_db_handle(tls, context)
		x = Xsqlite3_str_new(tls, db)
		Xsqlite3_str_append(tls, x, __ccgo_ts+26672, int32(1))
		i = 0
		for {
			if !(i < (*TGeoPoly)(unsafe.Pointer(p)).FnVertex) {
				break
			}
			Xsqlite3_str_appendf(tls, x, __ccgo_ts+29835, libc.VaList(bp+8, float64(**(**TGeoCoord)(__ccgo_up(p + 8 + uintptr(i*int32(2))*4))), float64(**(**TGeoCoord)(__ccgo_up(p + 8 + uintptr(i*int32(2)+int32(1))*4)))))
			goto _1
		_1:
			;
			i = i + 1
		}
		Xsqlite3_str_appendf(tls, x, __ccgo_ts+29846, libc.VaList(bp+8, float64(**(**TGeoCoord)(__ccgo_up(p + 8 + uintptr(libc.Int32FromInt32(0)*libc.Int32FromInt32(2))*4))), float64(**(**TGeoCoord)(__ccgo_up(p + 8 + uintptr(libc.Int32FromInt32(0)*libc.Int32FromInt32(2)+libc.Int32FromInt32(1))*4)))))
		Xsqlite3_result_text(tls, context, Xsqlite3_str_finish(tls, x), -int32(1), __ccgo_fp(Xsqlite3_free))
		Xsqlite3_free(tls, p)
	}
}

// C documentation
//
//	/*
//	** Interpret the given string as an auto-vacuum mode value.
//	**
//	** The following strings, "none", "full" and "incremental" are
//	** acceptable, as are their numeric equivalents: 0, 1 and 2 respectively.
//	*/
func _getAutoVacuum(tls *libc.TLS, z uintptr) (r int32) {
	var i, v1 int32
	_, _ = i, v1
	if 0 == _sqlite3StrICmp(tls, z, __ccgo_ts+8510) {
		return BTREE_AUTOVACUUM_NONE
	}
	if 0 == _sqlite3StrICmp(tls, z, __ccgo_ts+19018) {
		return int32(BTREE_AUTOVACUUM_FULL)
	}
	if 0 == _sqlite3StrICmp(tls, z, __ccgo_ts+19023) {
		return int32(BTREE_AUTOVACUUM_INCR)
	}
	i = _sqlite3Atoi(tls, z)
	if i >= 0 && i <= int32(2) {
		v1 = i
	} else {
		v1 = 0
	}
	return libc.Int32FromUint8(libc.Uint8FromInt32(v1))
}

// C documentation
//
//	/*
//	** Interpret the given string as a locking mode value.
//	*/
func _getLockingMode(tls *libc.TLS, z uintptr) (r int32) {
	if z != 0 {
		if 0 == _sqlite3StrICmp(tls, z, __ccgo_ts+19001) {
			return int32(PAGER_LOCKINGMODE_EXCLUSIVE)
		}
		if 0 == _sqlite3StrICmp(tls, z, __ccgo_ts+19011) {
			return PAGER_LOCKINGMODE_NORMAL
		}
	}
	return -int32(1)
}

// C documentation
//
//	/*
//	** Parameter zName is the name of a table that is about to be altered
//	** (either with ALTER TABLE ... RENAME TO or ALTER TABLE ... ADD COLUMN).
//	** If the table is a system table, this function leaves an error message
//	** in pParse->zErr (system tables may not be altered) and returns non-zero.
//	**
//	** Or, if zName is not a system table, zero is returned.
//	*/
func _isAlterableTable(tls *libc.TLS, pParse uintptr, pTab uintptr) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	if 0 == Xsqlite3_strnicmp(tls, (*TTable)(unsafe.Pointer(pTab)).FzName, __ccgo_ts+6758, int32(7)) || (*TTable)(unsafe.Pointer(pTab)).FtabFlags&uint32(TF_Eponymous) != uint32(0) || (*TTable)(unsafe.Pointer(pTab)).FtabFlags&uint32(TF_Shadow) != uint32(0) && _sqlite3ReadOnlyShadowTables(tls, (*TParse)(unsafe.Pointer(pParse)).Fdb) != 0 {
		_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+8645, libc.VaList(bp+8, (*TTable)(unsafe.Pointer(pTab)).FzName))
		return int32(1)
	}
	return 0
}

// C documentation
//
//	/*
//	** Return true if the pExpr term from the RETURNING clause argument
//	** list is of the form "*".  Raise an error if the terms if of the
//	** form "table.*".
//	*/
func _isAsteriskTerm(tls *libc.TLS, pParse uintptr, pTerm uintptr) (r int32) {
	if libc.Int32FromUint8((*TExpr)(unsafe.Pointer(pTerm)).Fop) == int32(TK_ASTERISK) {
		return int32(1)
	}
	if libc.Int32FromUint8((*TExpr)(unsafe.Pointer(pTerm)).Fop) != int32(TK_DOT) {
		return 0
	}
	if libc.Int32FromUint8((*TExpr)(unsafe.Pointer((*TExpr)(unsafe.Pointer(pTerm)).FpRight)).Fop) != int32(TK_ASTERISK) {
		return 0
	}
	_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+22524, 0)
	return int32(1)
}

// C documentation
//
//	/*
//	** Parameter pTab is the subject of an ALTER TABLE ... RENAME COLUMN
//	** command. This function checks if the table is a view or virtual
//	** table (columns of views or virtual tables may not be renamed). If so,
//	** it loads an error message into pParse and returns non-zero.
//	**
//	** Or, if pTab is not a view or virtual table, zero is returned.
//	*/
func _isRealTable(tls *libc.TLS, pParse uintptr, pTab uintptr, iOp int32) (r int32) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var azMsg [3]uintptr
	var zType uintptr
	_, _ = azMsg, zType
	zType = uintptr(0)
	if libc.Int32FromUint8((*TTable)(unsafe.Pointer(pTab)).FeTabType) == int32(TABTYP_VIEW) {
		zType = __ccgo_ts + 11117
	}
	if libc.Int32FromUint8((*TTable)(unsafe.Pointer(pTab)).FeTabType) == int32(TABTYP_VTAB) {
		zType = __ccgo_ts + 11122
	}
	if zType != 0 {
		azMsg = [3]uintptr{
			0: __ccgo_ts + 11136,
			1: __ccgo_ts + 11154,
			2: __ccgo_ts + 11171,
		}
		_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+11191, libc.VaList(bp+8, azMsg[iOp], zType, (*TTable)(unsafe.Pointer(pTab)).FzName))
		return int32(1)
	}
	return 0
}

// C documentation
//
//	/*
//	** Return TRUE (non-zero) if zTab is a valid name for the schema table pTab.
//	*/
func _isValidSchemaTableName(tls *libc.TLS, zTab uintptr, pTab uintptr, zDb uintptr) (r int32) {
	var zLegacy uintptr
	_ = zLegacy
	if Xsqlite3_strnicmp(tls, zTab, __ccgo_ts+6758, int32(7)) != 0 {
		return 0
	}
	zLegacy = (*TTable)(unsafe.Pointer(pTab)).FzName
	if libc.Xstrcmp(tls, zLegacy+uintptr(7), __ccgo_ts+6766+7) == 0 {
		if _sqlite3StrICmp(tls, zTab+uintptr(7), __ccgo_ts+6785+7) == 0 {
			return int32(1)
		}
		if zDb == uintptr(0) {
			return 0
		}
		if _sqlite3StrICmp(tls, zTab+uintptr(7), __ccgo_ts+6286+7) == 0 {
			return int32(1)
		}
		if _sqlite3StrICmp(tls, zTab+uintptr(7), __ccgo_ts+6804+7) == 0 {
			return int32(1)
		}
	} else {
		if _sqlite3StrICmp(tls, zTab+uintptr(7), __ccgo_ts+6804+7) == 0 {
			return int32(1)
		}
	}
	return 0
}

// C documentation
//
//	/*
//	** Generate a path error.
//	**
//	** The specifics of the error are determined by the rc argument.
//	**
//	**          rc                        error
//	**  -----------------       ----------------------
//	**  JSON_LOOKUP_ARRAY       "not an array"
//	**  JSON_LOOKUP_TOODEEP     "JSON nested too deep"
//	**  JSON_LOOKUP_ERROR       "malformed JSON"
//	**  otherwise...            "bad JSON path"
//	**
//	** If ctx is not NULL then push the error message into ctx and return NULL.
//	** If ctx is NULL, then return the text of the error message.
//	*/
func _jsonBadPathError(tls *libc.TLS, ctx uintptr, zPath uintptr, rc int32) (r uintptr) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var zMsg uintptr
	_ = zMsg
	if rc == libc.Int32FromUint32(JSON_LOOKUP_NOTARRAY) {
		zMsg = Xsqlite3_mprintf(tls, __ccgo_ts+26608, libc.VaList(bp+8, zPath))
	} else {
		if rc == libc.Int32FromUint32(JSON_LOOKUP_ERROR) {
			zMsg = Xsqlite3_mprintf(tls, __ccgo_ts+26460, 0)
		} else {
			if rc == libc.Int32FromUint32(JSON_LOOKUP_TOODEEP) {
				zMsg = Xsqlite3_mprintf(tls, __ccgo_ts+26633, 0)
			} else {
				zMsg = Xsqlite3_mprintf(tls, __ccgo_ts+26652, libc.VaList(bp+8, zPath))
			}
		}
	}
	if ctx == uintptr(0) {
		return zMsg
	}
	if zMsg != 0 {
		Xsqlite3_result_error(tls, ctx, zMsg, -int32(1))
		Xsqlite3_free(tls, zMsg)
	} else {
		Xsqlite3_result_error_nomem(tls, ctx)
	}
	return uintptr(0)
}

// C documentation
//
//	/*
//	** json_replace(JSON, PATH, VALUE, ...)
//	**
//	** Replace the value at PATH with VALUE.  If PATH does not already exist,
//	** this routine is a no-op.  If JSON or PATH is malformed, throw an error.
//	*/
func _jsonReplaceFunc(tls *libc.TLS, ctx uintptr, argc int32, argv uintptr) {
	if argc < int32(1) {
		return
	}
	if argc&int32(1) == 0 {
		_jsonWrongNumArgs(tls, ctx, __ccgo_ts+17070)
		return
	}
	_jsonInsertIntoBlob(tls, ctx, argc, argv, int32(JEDIT_REPL))
}

// C documentation
//
//	/*
//	** Report the wrong number of arguments for json_insert(), json_replace()
//	** or json_set().
//	*/
func _jsonWrongNumArgs(tls *libc.TLS, pCtx uintptr, zFuncName uintptr) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var zMsg uintptr
	_ = zMsg
	zMsg = Xsqlite3_mprintf(tls, __ccgo_ts+26506, libc.VaList(bp+8, zFuncName))
	Xsqlite3_result_error(tls, pCtx, zMsg, -int32(1))
	Xsqlite3_free(tls, zMsg)
}

/****************************************************************************
** Utility routines for dealing with the binary BLOB representation of JSON
****************************************************************************/

// C documentation
//
//	/* Human-readable names for the JSONB values.  The index for each
//	** string must correspond to the JSONB_* integer above.
//	*/
var _jsonbType = [17]uintptr{
	0:  __ccgo_ts + 1688,
	1:  __ccgo_ts + 8180,
	2:  __ccgo_ts + 8185,
	3:  __ccgo_ts + 6494,
	4:  __ccgo_ts + 6494,
	5:  __ccgo_ts + 6489,
	6:  __ccgo_ts + 6489,
	7:  __ccgo_ts + 8489,
	8:  __ccgo_ts + 8489,
	9:  __ccgo_ts + 8489,
	10: __ccgo_ts + 8489,
	11: __ccgo_ts + 26397,
	12: __ccgo_ts + 26403,
	13: __ccgo_ts + 1702,
	14: __ccgo_ts + 1702,
	15: __ccgo_ts + 1702,
	16: __ccgo_ts + 1702,
}

// C documentation
//
//	/*
//	** Check a single element of the JSONB in pParse for validity.
//	**
//	** The element to be checked starts at offset i and must end at on the
//	** last byte before iEnd.
//	**
//	** Return 0 if everything is correct.  Return the 1-based byte offset of the
//	** error if a problem is detected.  (In other words, if the error is at offset
//	** 0, return 1).
//	*/
func _jsonbValidityCheck(tls *libc.TLS, pParse uintptr, i Tu32, iEnd Tu32, iDepth Tu32) (r Tu32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var cnt, j, k, n, sub, sub1, szC Tu32
	var seen, x Tu8
	var z uintptr
	var v1 uint32
	var _ /* c at bp+4 */ Tu32
	var _ /* sz at bp+0 */ Tu32
	_, _, _, _, _, _, _, _, _, _, _ = cnt, j, k, n, seen, sub, sub1, szC, x, z, v1
	if iDepth > uint32(JSON_MAX_DEPTH) {
		return i + uint32(1)
	}
	**(**Tu32)(__ccgo_up(bp)) = uint32(0)
	n = _jsonbPayloadSize(tls, pParse, i, bp)
	if n == uint32(0) {
		return i + uint32(1)
	} /* Checked by caller */
	if i+n+**(**Tu32)(__ccgo_up(bp)) != iEnd {
		return i + uint32(1)
	} /* Checked by caller */
	z = (*TJsonParse)(unsafe.Pointer(pParse)).FaBlob
	x = libc.Uint8FromInt32(libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(i)))) & int32(0x0f))
	switch libc.Int32FromUint8(x) {
	case JSONB_NULL:
		fallthrough
	case int32(JSONB_TRUE):
		fallthrough
	case int32(JSONB_FALSE):
		if n+**(**Tu32)(__ccgo_up(bp)) == uint32(1) {
			v1 = uint32(0)
		} else {
			v1 = i + uint32(1)
		}
		return v1
	case int32(JSONB_INT):
		if **(**Tu32)(__ccgo_up(bp)) < uint32(1) {
			return i + uint32(1)
		}
		j = i + n
		if libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j)))) == int32('-') {
			j = j + 1
			if **(**Tu32)(__ccgo_up(bp)) < uint32(2) {
				return i + uint32(1)
			}
		}
		k = i + n + **(**Tu32)(__ccgo_up(bp))
		for j < k {
			if libc.Int32FromUint8(_sqlite3CtypeMap[**(**Tu8)(__ccgo_up(z + uintptr(j)))])&int32(0x04) != 0 {
				j = j + 1
			} else {
				return j + uint32(1)
			}
		}
		return uint32(0)
	case int32(JSONB_INT5):
		if **(**Tu32)(__ccgo_up(bp)) < uint32(3) {
			return i + uint32(1)
		}
		j = i + n
		if libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j)))) == int32('-') {
			if **(**Tu32)(__ccgo_up(bp)) < uint32(4) {
				return i + uint32(1)
			}
			j = j + 1
		}
		if libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j)))) != int32('0') {
			return i + uint32(1)
		}
		if libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j+uint32(1))))) != int32('x') && libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j+uint32(1))))) != int32('X') {
			return j + uint32(2)
		}
		j = j + uint32(2)
		k = i + n + **(**Tu32)(__ccgo_up(bp))
		for j < k {
			if libc.Int32FromUint8(_sqlite3CtypeMap[**(**Tu8)(__ccgo_up(z + uintptr(j)))])&int32(0x08) != 0 {
				j = j + 1
			} else {
				return j + uint32(1)
			}
		}
		return uint32(0)
	case int32(JSONB_FLOAT):
		fallthrough
	case int32(JSONB_FLOAT5):
		seen = uint8(0) /* 0: initial.  1: '.' seen  2: 'e' seen */
		if **(**Tu32)(__ccgo_up(bp)) < uint32(2) {
			return i + uint32(1)
		}
		j = i + n
		k = j + **(**Tu32)(__ccgo_up(bp))
		if libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j)))) == int32('-') {
			j = j + 1
			if **(**Tu32)(__ccgo_up(bp)) < uint32(3) {
				return i + uint32(1)
			}
		}
		if libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j)))) == int32('.') {
			if libc.Int32FromUint8(x) == int32(JSONB_FLOAT) {
				return j + uint32(1)
			}
			if !(libc.Int32FromUint8(_sqlite3CtypeMap[**(**Tu8)(__ccgo_up(z + uintptr(j+uint32(1))))])&libc.Int32FromInt32(0x04) != 0) {
				return j + uint32(1)
			}
			j = j + uint32(2)
			seen = uint8(1)
		} else {
			if libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j)))) == int32('0') && libc.Int32FromUint8(x) == int32(JSONB_FLOAT) {
				if j+uint32(3) > k {
					return j + uint32(1)
				}
				if libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j+uint32(1))))) != int32('.') && libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j+uint32(1))))) != int32('e') && libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j+uint32(1))))) != int32('E') {
					return j + uint32(1)
				}
				j = j + 1
			}
		}
		for {
			if !(j < k) {
				break
			}
			if libc.Int32FromUint8(_sqlite3CtypeMap[**(**Tu8)(__ccgo_up(z + uintptr(j)))])&int32(0x04) != 0 {
				goto _2
			}
			if libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j)))) == int32('.') {
				if libc.Int32FromUint8(seen) > 0 {
					return j + uint32(1)
				}
				if libc.Int32FromUint8(x) == int32(JSONB_FLOAT) && (j == k-uint32(1) || !(libc.Int32FromUint8(_sqlite3CtypeMap[**(**Tu8)(__ccgo_up(z + uintptr(j+uint32(1))))])&libc.Int32FromInt32(0x04) != 0)) {
					return j + uint32(1)
				}
				seen = uint8(1)
				goto _2
			}
			if libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j)))) == int32('e') || libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j)))) == int32('E') {
				if libc.Int32FromUint8(seen) == int32(2) {
					return j + uint32(1)
				}
				if j == k-uint32(1) {
					return j + uint32(1)
				}
				if libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j+uint32(1))))) == int32('+') || libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j+uint32(1))))) == int32('-') {
					j = j + 1
					if j == k-uint32(1) {
						return j + uint32(1)
					}
				}
				seen = uint8(2)
				goto _2
			}
			return j + uint32(1)
			goto _2
		_2:
			;
			j = j + 1
		}
		if libc.Int32FromUint8(seen) == 0 {
			return i + uint32(1)
		}
		return uint32(0)
	case int32(JSONB_TEXT):
		j = i + n
		k = j + **(**Tu32)(__ccgo_up(bp))
		for j < k {
			if !(_jsonIsOk[**(**Tu8)(__ccgo_up(z + uintptr(j)))] != 0) && libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j)))) != int32('\'') {
				return j + uint32(1)
			}
			j = j + 1
		}
		return uint32(0)
	case int32(JSONB_TEXTJ):
		fallthrough
	case int32(JSONB_TEXT5):
		j = i + n
		k = j + **(**Tu32)(__ccgo_up(bp))
		for j < k {
			if !(_jsonIsOk[**(**Tu8)(__ccgo_up(z + uintptr(j)))] != 0) && libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j)))) != int32('\'') {
				if libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j)))) == int32('"') {
					if libc.Int32FromUint8(x) == int32(JSONB_TEXTJ) {
						return j + uint32(1)
					}
				} else {
					if libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j)))) <= int32(0x1f) {
						/* Control characters in JSON5 string literals are ok */
						if libc.Int32FromUint8(x) == int32(JSONB_TEXTJ) {
							return j + uint32(1)
						}
					} else {
						if libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j)))) != int32('\\') || j+uint32(1) >= k {
							return j + uint32(1)
						} else {
							if libc.Xstrchr(tls, __ccgo_ts+26549, libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j+uint32(1)))))) != uintptr(0) {
								j = j + 1
							} else {
								if libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j+uint32(1))))) == int32('u') {
									if j+uint32(5) >= k {
										return j + uint32(1)
									}
									if !(_jsonIs4Hex(tls, z+uintptr(j+uint32(2))) != 0) {
										return j + uint32(1)
									}
									j = j + 1
								} else {
									if libc.Int32FromUint8(x) != int32(JSONB_TEXT5) {
										return j + uint32(1)
									} else {
										**(**Tu32)(__ccgo_up(bp + 4)) = uint32(0)
										szC = _jsonUnescapeOneChar(tls, z+uintptr(j), k-j, bp+4)
										if **(**Tu32)(__ccgo_up(bp + 4)) == uint32(JSON_INVALID_CHAR) {
											return j + uint32(1)
										}
										j = j + (szC - uint32(1))
									}
								}
							}
						}
					}
				}
			}
			j = j + 1
		}
		return uint32(0)
	case int32(JSONB_TEXTRAW):
		return uint32(0)
	case int32(JSONB_ARRAY):
		j = i + n
		k = j + **(**Tu32)(__ccgo_up(bp))
		for j < k {
			**(**Tu32)(__ccgo_up(bp)) = uint32(0)
			n = _jsonbPayloadSize(tls, pParse, j, bp)
			if n == uint32(0) {
				return j + uint32(1)
			}
			if j+n+**(**Tu32)(__ccgo_up(bp)) > k {
				return j + uint32(1)
			}
			sub = _jsonbValidityCheck(tls, pParse, j, j+n+**(**Tu32)(__ccgo_up(bp)), iDepth+uint32(1))
			if sub != 0 {
				return sub
			}
			j = j + (n + **(**Tu32)(__ccgo_up(bp)))
		}
		return uint32(0)
	case int32(JSONB_OBJECT):
		cnt = uint32(0)
		j = i + n
		k = j + **(**Tu32)(__ccgo_up(bp))
		for j < k {
			**(**Tu32)(__ccgo_up(bp)) = uint32(0)
			n = _jsonbPayloadSize(tls, pParse, j, bp)
			if n == uint32(0) {
				return j + uint32(1)
			}
			if j+n+**(**Tu32)(__ccgo_up(bp)) > k {
				return j + uint32(1)
			}
			if cnt&uint32(1) == uint32(0) {
				x = libc.Uint8FromInt32(libc.Int32FromUint8(**(**Tu8)(__ccgo_up(z + uintptr(j)))) & int32(0x0f))
				if libc.Int32FromUint8(x) < int32(JSONB_TEXT) || libc.Int32FromUint8(x) > int32(JSONB_TEXTRAW) {
					return j + uint32(1)
				}
			}
			sub1 = _jsonbValidityCheck(tls, pParse, j, j+n+**(**Tu32)(__ccgo_up(bp)), iDepth+uint32(1))
			if sub1 != 0 {
				return sub1
			}
			cnt = cnt + 1
			j = j + (n + **(**Tu32)(__ccgo_up(bp)))
		}
		if cnt&uint32(1) != uint32(0) {
			return j + uint32(1)
		}
		return uint32(0)
	default:
		return i + uint32(1)
	}
	return r
}

// C documentation
//
//	/*
//	** Load content from the sqlite_stat4 table into
//	** the Index.aSample[] arrays of all indices.
//	*/
func _loadStat4(tls *libc.TLS, db uintptr, zDb uintptr) (r int32) {
	var pStat4, v1 uintptr
	var rc int32
	var v2 bool
	_, _, _, _ = pStat4, rc, v1, v2
	rc = SQLITE_OK
	if v2 = (*Tsqlite3)(unsafe.Pointer(db)).FdbOptFlags&libc.Uint32FromInt32(libc.Int32FromInt32(SQLITE_Stat4)) == uint32(0); v2 {
		v1 = _sqlite3FindTable(tls, db, __ccgo_ts+12861, zDb)
		pStat4 = v1
	}
	if v2 && v1 != uintptr(0) && libc.Int32FromUint8((*TTable)(unsafe.Pointer(pStat4)).FeTabType) == TABTYP_NORM {
		rc = _loadStatTbl(tls, db, __ccgo_ts+13087, __ccgo_ts+13156, zDb)
	}
	return rc
}

// C documentation
//
//	/*
//	** File control method. For custom operations on an memdb-file.
//	*/
func _memdbFileControl(tls *libc.TLS, pFile uintptr, op int32, pArg uintptr) (r int32) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var iLimit Tsqlite3_int64
	var p uintptr
	var rc int32
	_, _, _ = iLimit, p, rc
	p = (*TMemFile)(unsafe.Pointer(pFile)).FpStore
	rc = int32(SQLITE_NOTFOUND)
	_memdbEnter(tls, p)
	if op == int32(SQLITE_FCNTL_VFSNAME) {
		**(**uintptr)(__ccgo_up(pArg)) = Xsqlite3_mprintf(tls, __ccgo_ts+4120, libc.VaList(bp+8, (*TMemStore)(unsafe.Pointer(p)).FaData, (*TMemStore)(unsafe.Pointer(p)).Fsz))
		rc = SQLITE_OK
	}
	if op == int32(SQLITE_FCNTL_SIZE_LIMIT) {
		iLimit = **(**Tsqlite3_int64)(__ccgo_up(pArg))
		if iLimit < (*TMemStore)(unsafe.Pointer(p)).Fsz {
			if iLimit < 0 {
				iLimit = (*TMemStore)(unsafe.Pointer(p)).FszMax
			} else {
				iLimit = (*TMemStore)(unsafe.Pointer(p)).Fsz
			}
		}
		(*TMemStore)(unsafe.Pointer(p)).FszMax = iLimit
		**(**Tsqlite3_int64)(__ccgo_up(pArg)) = iLimit
		rc = SQLITE_OK
	}
	_memdbLeave(tls, p)
	return rc
}

// C documentation
//
//	/*
//	** Populate buffer zOut with the full canonical pathname corresponding
//	** to the pathname in zPath. zOut is guaranteed to point to a buffer
//	** of at least (INST_MAX_PATHNAME+1) bytes.
//	*/
func _memdbFullPathname(tls *libc.TLS, pVfs uintptr, zPath uintptr, nOut int32, zOut uintptr) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	_ = pVfs
	Xsqlite3_snprintf(tls, nOut, zOut, __ccgo_ts+3942, libc.VaList(bp+8, zPath))
	return SQLITE_OK
}

var _memdb_vfs = Tsqlite3_vfs{
	FiVersion:   int32(2),
	FmxPathname: int32(1024),
	FzName:      __ccgo_ts + 4114,
}

// C documentation
//
//	/*
//	** Handle the special case of a compound-select that originates from a
//	** VALUES clause.  By handling this as a special case, we avoid deep
//	** recursion, and thus do not need to enforce the SQLITE_LIMIT_COMPOUND_SELECT
//	** on a VALUES clause.
//	**
//	** Because the Select object originates from a VALUES clause:
//	**   (1) There is no LIMIT or OFFSET or else there is a LIMIT of exactly 1
//	**   (2) All terms are UNION ALL
//	**   (3) There is no ORDER BY clause
//	**
//	** The "LIMIT of exactly 1" case of condition (1) comes about when a VALUES
//	** clause occurs within scalar expression (ex: "SELECT (VALUES(1),(2),(3))").
//	** The sqlite3CodeSubselect will have added the LIMIT 1 clause in tht case.
//	** Since the limit is exactly 1, we only need to evaluate the left-most VALUES.
//	*/
func _multiSelectValues(tls *libc.TLS, pParse uintptr, p uintptr, pDest uintptr) (r int32) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var bShowAll, nRow, rc int32
	var v1 uintptr
	_, _, _, _ = bShowAll, nRow, rc, v1
	nRow = int32(1)
	rc = 0
	bShowAll = libc.BoolInt32((*TSelect)(unsafe.Pointer(p)).FpLimit == uintptr(0))
	for cond := true; cond; cond = int32(1) != 0 {
		if (*TSelect)(unsafe.Pointer(p)).FpWin != 0 {
			return -int32(1)
		}
		if (*TSelect)(unsafe.Pointer(p)).FpPrior == uintptr(0) {
			break
		}
		p = (*TSelect)(unsafe.Pointer(p)).FpPrior
		nRow = nRow + bShowAll
	}
	if nRow == int32(1) {
		v1 = __ccgo_ts + 1702
	} else {
		v1 = __ccgo_ts + 20807
	}
	_sqlite3VdbeExplain(tls, pParse, uint8(0), __ccgo_ts+20809, libc.VaList(bp+8, nRow, v1))
	for p != 0 {
		_selectInnerLoop(tls, pParse, p, -int32(1), uintptr(0), uintptr(0), pDest, int32(1), int32(1))
		if !(bShowAll != 0) {
			break
		}
		(*TSelect)(unsafe.Pointer(p)).FnSelectRow = int16(nRow)
		p = (*TSelect)(unsafe.Pointer(p)).FpNext
	}
	return rc
}

// C documentation
//
//	/*
//	** Report an error that an expression is not valid for some set of
//	** pNC->ncFlags values determined by validMask.
//	**
//	** static void notValid(
//	**   Parse *pParse,       // Leave error message here
//	**   NameContext *pNC,    // The name context
//	**   const char *zMsg,    // Type of error
//	**   int validMask,       // Set of contexts for which prohibited
//	**   Expr *pExpr          // Invalidate this expression on error
//	** ){...}
//	**
//	** As an optimization, since the conditional is almost always false
//	** (because errors are rare), the conditional is moved outside of the
//	** function call using a macro.
//	*/
func _notValidImpl(tls *libc.TLS, pParse uintptr, pNC uintptr, zMsg uintptr, pExpr uintptr, pError uintptr) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var zIn uintptr
	_ = zIn
	zIn = __ccgo_ts + 7100
	if (*TNameContext)(unsafe.Pointer(pNC)).FncFlags&int32(NC_IdxExpr) != 0 {
		zIn = __ccgo_ts + 7128
	} else {
		if (*TNameContext)(unsafe.Pointer(pNC)).FncFlags&int32(NC_IsCheck) != 0 {
			zIn = __ccgo_ts + 7146
		} else {
			if (*TNameContext)(unsafe.Pointer(pNC)).FncFlags&int32(NC_GenCol) != 0 {
				zIn = __ccgo_ts + 7164
			}
		}
	}
	_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+7182, libc.VaList(bp+8, zMsg, zIn))
	if pExpr != 0 {
		(*TExpr)(unsafe.Pointer(pExpr)).Fop = uint8(TK_NULL)
	}
	_sqlite3RecordErrorOffsetOfExpr(tls, (*TParse)(unsafe.Pointer(pParse)).Fdb, pError)
}

// C documentation
//
//	/*
//	** Implementation of ntile(). This assumes that the window frame has
//	** been coerced to:
//	**
//	**   ROWS CURRENT ROW AND UNBOUNDED FOLLOWING
//	*/
func _ntileStepFunc(tls *libc.TLS, pCtx uintptr, nArg int32, apArg uintptr) {
	var p uintptr
	_ = p
	_ = nArg
	p = Xsqlite3_aggregate_context(tls, pCtx, int32(24))
	if p != 0 {
		if (*TNtileCtx)(unsafe.Pointer(p)).FnTotal == 0 {
			(*TNtileCtx)(unsafe.Pointer(p)).FnParam = Xsqlite3_value_int64(tls, **(**uintptr)(__ccgo_up(apArg)))
			if (*TNtileCtx)(unsafe.Pointer(p)).FnParam <= 0 {
				Xsqlite3_result_error(tls, pCtx, __ccgo_ts+24233, -int32(1))
			}
		}
		(*TNtileCtx)(unsafe.Pointer(p)).FnTotal = (*TNtileCtx)(unsafe.Pointer(p)).FnTotal + 1
	}
}

// C documentation
//
//	/* Add a single new term to an ExprList that is used to store a
//	  ** list of identifiers.  Report an error if the ID list contains
//	  ** a COLLATE clause or an ASC or DESC keyword, except ignore the
//	  ** error while parsing a legacy schema.
//	  */
func _parserAddExprIdListTerm(tls *libc.TLS, pParse uintptr, pPrior uintptr, pIdToken uintptr, hasCollate int32, sortOrder int32) (r uintptr) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var p uintptr
	_ = p
	p = _sqlite3ExprListAppend(tls, pParse, pPrior, uintptr(0))
	if (hasCollate != 0 || sortOrder != -int32(1)) && libc.Int32FromUint8((*Tsqlite3)(unsafe.Pointer((*TParse)(unsafe.Pointer(pParse)).Fdb)).Finit1.Fbusy) == 0 {
		_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+24943, libc.VaList(bp+8, (*TToken)(unsafe.Pointer(pIdToken)).Fn, (*TToken)(unsafe.Pointer(pIdToken)).Fz))
	}
	_sqlite3ExprListSetName(tls, pParse, p, pIdToken, int32(1))
	return p
}

/**************** End of %include directives **********************************/
/* These constants specify the various numeric values for terminal symbols.
***************** Begin token definitions *************************************/
/**************** End token definitions ***************************************/

// C documentation
//
//	/*
//	** Generate a syntax error
//	*/
func _parserSyntaxError(tls *libc.TLS, pParse uintptr, p uintptr) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+24828, libc.VaList(bp+8, p))
}

// C documentation
//
//	/* Names of columns for pragmas that return multi-column result
//	** or that return single-column results where the name of the
//	** result column is different from the name of the pragma
//	*/
var _pragCName = [57]uintptr{
	0:  __ccgo_ts + 5650,
	1:  __ccgo_ts + 17782,
	2:  __ccgo_ts + 9379,
	3:  __ccgo_ts + 17786,
	4:  __ccgo_ts + 17791,
	5:  __ccgo_ts + 17794,
	6:  __ccgo_ts + 17804,
	7:  __ccgo_ts + 17814,
	8:  __ccgo_ts + 17820,
	9:  __ccgo_ts + 17824,
	10: __ccgo_ts + 17829,
	11: __ccgo_ts + 17834,
	12: __ccgo_ts + 17842,
	13: __ccgo_ts + 17853,
	14: __ccgo_ts + 17856,
	15: __ccgo_ts + 17824,
	16: __ccgo_ts + 17863,
	17: __ccgo_ts + 17829,
	18: __ccgo_ts + 17871,
	19: __ccgo_ts + 17875,
	20: __ccgo_ts + 17880,
	21: __ccgo_ts + 17886,
	22: __ccgo_ts + 17824,
	23: __ccgo_ts + 17829,
	24: __ccgo_ts + 17893,
	25: __ccgo_ts + 17898,
	26: __ccgo_ts + 17901,
	27: __ccgo_ts + 17908,
	28: __ccgo_ts + 17820,
	29: __ccgo_ts + 17824,
	30: __ccgo_ts + 17914,
	31: __ccgo_ts + 17919,
	32: __ccgo_ts + 17924,
	33: __ccgo_ts + 17782,
	34: __ccgo_ts + 17824,
	35: __ccgo_ts + 17928,
	36: __ccgo_ts + 17935,
	37: __ccgo_ts + 17942,
	38: __ccgo_ts + 13050,
	39: __ccgo_ts + 13046,
	40: __ccgo_ts + 17950,
	41: __ccgo_ts + 17955,
	42: __ccgo_ts + 17960,
	43: __ccgo_ts + 9379,
	44: __ccgo_ts + 17965,
	45: __ccgo_ts + 5653,
	46: __ccgo_ts + 17971,
	47: __ccgo_ts + 17976,
	48: __ccgo_ts + 17167,
	49: __ccgo_ts + 17981,
	50: __ccgo_ts + 17782,
	51: __ccgo_ts + 17824,
	52: __ccgo_ts + 17994,
	53: __ccgo_ts + 17999,
	54: __ccgo_ts + 18008,
	55: __ccgo_ts + 18015,
	56: __ccgo_ts + 18026,
}

// C documentation
//
//	/*
//	** Create zero or more entries in the output for the SQL functions
//	** defined by FuncDef p.
//	*/
func _pragmaFunclistLine(tls *libc.TLS, v uintptr, p uintptr, isBuiltin int32, showInternFuncs int32) {
	bp := tls.Alloc(64)
	defer tls.Free(64)
	var mask Tu32
	var zType uintptr
	_, _ = mask, zType
	mask = libc.Uint32FromInt32(libc.Int32FromInt32(SQLITE_DETERMINISTIC) | libc.Int32FromInt32(SQLITE_DIRECTONLY) | libc.Int32FromInt32(SQLITE_SUBTYPE) | libc.Int32FromInt32(SQLITE_INNOCUOUS) | libc.Int32FromInt32(SQLITE_FUNC_INTERNAL))
	if showInternFuncs != 0 {
		mask = uint32(0xffffffff)
	}
	for {
		if !(p != 0) {
			break
		}
		if (*TFuncDef)(unsafe.Pointer(p)).FxSFunc == uintptr(0) {
			goto _1
		}
		if (*TFuncDef)(unsafe.Pointer(p)).FfuncFlags&uint32(SQLITE_FUNC_INTERNAL) != uint32(0) && showInternFuncs == 0 {
			goto _1
		}
		if (*TFuncDef)(unsafe.Pointer(p)).FxValue != uintptr(0) {
			zType = __ccgo_ts + 19205
		} else {
			if (*TFuncDef)(unsafe.Pointer(p)).FxFinalize != uintptr(0) {
				zType = __ccgo_ts + 19207
			} else {
				zType = __ccgo_ts + 7911
			}
		}
		_sqlite3VdbeMultiLoad(tls, v, int32(1), __ccgo_ts+19209, libc.VaList(bp+8, (*TFuncDef)(unsafe.Pointer(p)).FzName, isBuiltin, zType, _azEnc[(*TFuncDef)(unsafe.Pointer(p)).FfuncFlags&uint32(SQLITE_FUNC_ENCMASK)], int32((*TFuncDef)(unsafe.Pointer(p)).FnArg), (*TFuncDef)(unsafe.Pointer(p)).FfuncFlags&mask^uint32(SQLITE_INNOCUOUS)))
		goto _1
	_1:
		;
		p = (*TFuncDef)(unsafe.Pointer(p)).FpNext
	}
}

// C documentation
//
//	/*
//	** Prepare the SQL statement in buffer zSql against database handle db.
//	** If successful, set *ppStmt to point to the new statement and return
//	** SQLITE_OK.
//	**
//	** Otherwise, if an error does occur, set *ppStmt to NULL and return
//	** an SQLite error code. Additionally, set output variable *pzErrmsg to
//	** point to a buffer containing an error message. It is the responsibility
//	** of the caller to (eventually) free this buffer using sqlite3_free().
//	*/
func _prepareAndCollectError(tls *libc.TLS, db uintptr, ppStmt uintptr, pzErrmsg uintptr, zSql uintptr) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var rc int32
	_ = rc
	rc = Xsqlite3_prepare_v2(tls, db, zSql, -int32(1), ppStmt, uintptr(0))
	if rc != SQLITE_OK {
		**(**uintptr)(__ccgo_up(pzErrmsg)) = Xsqlite3_mprintf(tls, __ccgo_ts+3942, libc.VaList(bp+8, Xsqlite3_errmsg(tls, db)))
		**(**uintptr)(__ccgo_up(ppStmt)) = uintptr(0)
	}
	return rc
}

// C documentation
//
//	/*
//	** The SELECT statement iterating through the keys for the current object
//	** (p->objiter.pSelect) currently points to a valid row. However, there
//	** is something wrong with the rbu_control value in the rbu_control value
//	** stored in the (p->nCol+1)'th column. Set the error code and error message
//	** of the RBU handle to something reflecting this.
//	*/
func _rbuBadControlError(tls *libc.TLS, p uintptr) {
	(*Tsqlite3rbu)(unsafe.Pointer(p)).Frc = int32(SQLITE_ERROR)
	(*Tsqlite3rbu)(unsafe.Pointer(p)).FzErrmsg = Xsqlite3_mprintf(tls, __ccgo_ts+31744, 0)
}

// C documentation
//
//	/*
//	** If there is a "*-oal" file in the file-system corresponding to the
//	** target database in the file-system, delete it. If an error occurs,
//	** leave an error code and error message in the rbu handle.
//	*/
func _rbuDeleteOalFile(tls *libc.TLS, p uintptr) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var zOal uintptr
	var _ /* pVfs at bp+0 */ uintptr
	_ = zOal
	zOal = _rbuMPrintf(tls, p, __ccgo_ts+33750, libc.VaList(bp+16, (*Tsqlite3rbu)(unsafe.Pointer(p)).FzTarget))
	if zOal != 0 {
		**(**uintptr)(__ccgo_up(bp)) = uintptr(0)
		Xsqlite3_file_control(tls, (*Tsqlite3rbu)(unsafe.Pointer(p)).FdbMain, __ccgo_ts+6818, int32(SQLITE_FCNTL_VFS_POINTER), bp)
		(*(*func(*libc.TLS, uintptr, uintptr, int32) int32)(unsafe.Pointer(&struct{ uintptr }{(*Tsqlite3_vfs)(unsafe.Pointer(**(**uintptr)(__ccgo_up(bp)))).FxDelete})))(tls, **(**uintptr)(__ccgo_up(bp)), zOal, 0)
		Xsqlite3_free(tls, zOal)
	}
}

// C documentation
//
//	/*
//	** Return true if the database handle passed as the only argument
//	** was opened with the rbu_exclusive_checkpoint=1 URI parameter
//	** specified. Or false otherwise.
//	*/
func _rbuExclusiveCheckpoint(tls *libc.TLS, db uintptr) (r int32) {
	var zUri uintptr
	_ = zUri
	zUri = Xsqlite3_db_filename(tls, db, uintptr(0))
	return Xsqlite3_uri_boolean(tls, zUri, __ccgo_ts+33725, 0)
}

// C documentation
//
//	/*
//	** Finalize the statement passed as the second argument.
//	**
//	** If the sqlite3_finalize() call indicates that an error occurs, and the
//	** rbu handle error code is not already set, set the error code and error
//	** message accordingly.
//	*/
func _rbuFinalize(tls *libc.TLS, p uintptr, pStmt uintptr) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var db uintptr
	var rc int32
	_, _ = db, rc
	db = Xsqlite3_db_handle(tls, pStmt)
	rc = Xsqlite3_finalize(tls, pStmt)
	if (*Tsqlite3rbu)(unsafe.Pointer(p)).Frc == SQLITE_OK && rc != SQLITE_OK {
		(*Tsqlite3rbu)(unsafe.Pointer(p)).Frc = rc
		(*Tsqlite3rbu)(unsafe.Pointer(p)).FzErrmsg = Xsqlite3_mprintf(tls, __ccgo_ts+3942, libc.VaList(bp+8, Xsqlite3_errmsg(tls, db)))
	}
}

// C documentation
//
//	/*
//	** Take an EXCLUSIVE lock on the database file. Return SQLITE_OK if
//	** successful, or an SQLite error code otherwise.
//	*/
func _rbuLockDatabase(tls *libc.TLS, db uintptr) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var rc int32
	var _ /* fd at bp+0 */ uintptr
	_ = rc
	rc = SQLITE_OK
	**(**uintptr)(__ccgo_up(bp)) = uintptr(0)
	Xsqlite3_file_control(tls, db, __ccgo_ts+6818, int32(RBU_ZIPVFS_CTRL_FILE_POINTER), bp)
	if **(**uintptr)(__ccgo_up(bp)) != 0 {
		Xsqlite3_file_control(tls, db, __ccgo_ts+6818, int32(SQLITE_FCNTL_FILE_POINTER), bp)
		rc = (*(*func(*libc.TLS, uintptr, int32) int32)(unsafe.Pointer(&struct{ uintptr }{(*Tsqlite3_io_methods)(unsafe.Pointer((*Tsqlite3_file)(unsafe.Pointer(**(**uintptr)(__ccgo_up(bp)))).FpMethods)).FxLock})))(tls, **(**uintptr)(__ccgo_up(bp)), int32(SQLITE_LOCK_SHARED))
		if rc == SQLITE_OK {
			rc = (*(*func(*libc.TLS, uintptr, int32) int32)(unsafe.Pointer(&struct{ uintptr }{(*Tsqlite3_io_methods)(unsafe.Pointer((*Tsqlite3_file)(unsafe.Pointer(**(**uintptr)(__ccgo_up(bp)))).FpMethods)).FxUnlock})))(tls, **(**uintptr)(__ccgo_up(bp)), SQLITE_LOCK_NONE)
		}
		Xsqlite3_file_control(tls, db, __ccgo_ts+6818, int32(RBU_ZIPVFS_CTRL_FILE_POINTER), bp)
	} else {
		Xsqlite3_file_control(tls, db, __ccgo_ts+6818, int32(SQLITE_FCNTL_FILE_POINTER), bp)
	}
	if rc == SQLITE_OK && (*Tsqlite3_file)(unsafe.Pointer(**(**uintptr)(__ccgo_up(bp)))).FpMethods != 0 {
		rc = (*(*func(*libc.TLS, uintptr, int32) int32)(unsafe.Pointer(&struct{ uintptr }{(*Tsqlite3_io_methods)(unsafe.Pointer((*Tsqlite3_file)(unsafe.Pointer(**(**uintptr)(__ccgo_up(bp)))).FpMethods)).FxLock})))(tls, **(**uintptr)(__ccgo_up(bp)), int32(SQLITE_LOCK_SHARED))
		if rc == SQLITE_OK {
			rc = (*(*func(*libc.TLS, uintptr, int32) int32)(unsafe.Pointer(&struct{ uintptr }{(*Tsqlite3_io_methods)(unsafe.Pointer((*Tsqlite3_file)(unsafe.Pointer(**(**uintptr)(__ccgo_up(bp)))).FpMethods)).FxLock})))(tls, **(**uintptr)(__ccgo_up(bp)), int32(SQLITE_LOCK_EXCLUSIVE))
		}
	}
	return rc
}

func _rbuOpenDbhandle(tls *libc.TLS, p uintptr, zName uintptr, bUseVfs int32) (r uintptr) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var flags int32
	var v1 uintptr
	var _ /* db at bp+0 */ uintptr
	_, _ = flags, v1
	**(**uintptr)(__ccgo_up(bp)) = uintptr(0)
	if (*Tsqlite3rbu)(unsafe.Pointer(p)).Frc == SQLITE_OK {
		flags = libc.Int32FromInt32(SQLITE_OPEN_READWRITE) | libc.Int32FromInt32(SQLITE_OPEN_CREATE) | libc.Int32FromInt32(SQLITE_OPEN_URI)
		if bUseVfs != 0 {
			v1 = (*Tsqlite3rbu)(unsafe.Pointer(p)).FzVfsName
		} else {
			v1 = uintptr(0)
		}
		(*Tsqlite3rbu)(unsafe.Pointer(p)).Frc = Xsqlite3_open_v2(tls, zName, bp, flags, v1)
		if (*Tsqlite3rbu)(unsafe.Pointer(p)).Frc != 0 {
			(*Tsqlite3rbu)(unsafe.Pointer(p)).FzErrmsg = Xsqlite3_mprintf(tls, __ccgo_ts+3942, libc.VaList(bp+16, Xsqlite3_errmsg(tls, **(**uintptr)(__ccgo_up(bp)))))
			Xsqlite3_close(tls, **(**uintptr)(__ccgo_up(bp)))
			**(**uintptr)(__ccgo_up(bp)) = uintptr(0)
		}
	}
	return **(**uintptr)(__ccgo_up(bp))
}

// C documentation
//
//	/*
//	** This function is called as part of initializing or reinitializing an
//	** incremental checkpoint.
//	**
//	** It populates the sqlite3rbu.aFrame[] array with the set of
//	** (wal frame -> db page) copy operations required to checkpoint the
//	** current wal file, and obtains the set of shm locks required to safely
//	** perform the copy operations directly on the file-system.
//	**
//	** If argument pState is not NULL, then the incremental checkpoint is
//	** being resumed. In this case, if the checksum of the wal-index-header
//	** following recovery is not the same as the checksum saved in the RbuState
//	** object, then the rbu handle is set to DONE state. This occurs if some
//	** other client appends a transaction to the wal file in the middle of
//	** an incremental checkpoint.
//	*/
func _rbuSetupCheckpoint(tls *libc.TLS, p uintptr, pState uintptr) {
	var nSectorSize, rc2, v1 int32
	var pDb, pWal uintptr
	_, _, _, _, _ = nSectorSize, pDb, pWal, rc2, v1
	/* If pState is NULL, then the wal file may not have been opened and
	 ** recovered. Running a read-statement here to ensure that doing so
	 ** does not interfere with the "capture" process below.  */
	if pState == uintptr(0) {
		(*Tsqlite3rbu)(unsafe.Pointer(p)).FeStage = 0
		if (*Tsqlite3rbu)(unsafe.Pointer(p)).Frc == SQLITE_OK {
			(*Tsqlite3rbu)(unsafe.Pointer(p)).Frc = Xsqlite3_exec(tls, (*Tsqlite3rbu)(unsafe.Pointer(p)).FdbMain, __ccgo_ts+33644, uintptr(0), uintptr(0), uintptr(0))
		}
	}
	/* Assuming no error has occurred, run a "restart" checkpoint with the
	 ** sqlite3rbu.eStage variable set to CAPTURE. This turns on the following
	 ** special behaviour in the rbu VFS:
	 **
	 **   * If the exclusive shm WRITER or READ0 lock cannot be obtained,
	 **     the checkpoint fails with SQLITE_BUSY (normally SQLite would
	 **     proceed with running a passive checkpoint instead of failing).
	 **
	 **   * Attempts to read from the *-wal file or write to the database file
	 **     do not perform any IO. Instead, the frame/page combinations that
	 **     would be read/written are recorded in the sqlite3rbu.aFrame[]
	 **     array.
	 **
	 **   * Calls to xShmLock(UNLOCK) to release the exclusive shm WRITER,
	 **     READ0 and CHECKPOINT locks taken as part of the checkpoint are
	 **     no-ops. These locks will not be released until the connection
	 **     is closed.
	 **
	 **   * Attempting to xSync() the database file causes an SQLITE_NOTICE
	 **     error.
	 **
	 ** As a result, unless an error (i.e. OOM or SQLITE_BUSY) occurs, the
	 ** checkpoint below fails with SQLITE_NOTICE, and leaves the aFrame[]
	 ** array populated with a set of (frame -> page) mappings. Because the
	 ** WRITER, CHECKPOINT and READ0 locks are still held, it is safe to copy
	 ** data from the wal file into the database file according to the
	 ** contents of aFrame[].
	 */
	if (*Tsqlite3rbu)(unsafe.Pointer(p)).Frc == SQLITE_OK {
		(*Tsqlite3rbu)(unsafe.Pointer(p)).FeStage = int32(RBU_STAGE_CAPTURE)
		rc2 = Xsqlite3_exec(tls, (*Tsqlite3rbu)(unsafe.Pointer(p)).FdbMain, __ccgo_ts+33690, uintptr(0), uintptr(0), uintptr(0))
		if rc2 != int32(SQLITE_NOTICE) {
			(*Tsqlite3rbu)(unsafe.Pointer(p)).Frc = rc2
		}
	}
	if (*Tsqlite3rbu)(unsafe.Pointer(p)).Frc == SQLITE_OK && (*Tsqlite3rbu)(unsafe.Pointer(p)).FnFrame > 0 {
		(*Tsqlite3rbu)(unsafe.Pointer(p)).FeStage = int32(RBU_STAGE_CKPT)
		if pState != 0 {
			v1 = (*TRbuState)(unsafe.Pointer(pState)).FnRow
		} else {
			v1 = 0
		}
		(*Tsqlite3rbu)(unsafe.Pointer(p)).FnStep = v1
		(*Tsqlite3rbu)(unsafe.Pointer(p)).FaBuf = _rbuMalloc(tls, p, int64((*Tsqlite3rbu)(unsafe.Pointer(p)).Fpgsz))
		(*Tsqlite3rbu)(unsafe.Pointer(p)).FiWalCksum = _rbuShmChecksum(tls, p)
	}
	if (*Tsqlite3rbu)(unsafe.Pointer(p)).Frc == SQLITE_OK {
		if (*Tsqlite3rbu)(unsafe.Pointer(p)).FnFrame == 0 || pState != 0 && (*TRbuState)(unsafe.Pointer(pState)).FiWalCksum != (*Tsqlite3rbu)(unsafe.Pointer(p)).FiWalCksum {
			(*Tsqlite3rbu)(unsafe.Pointer(p)).Frc = int32(SQLITE_DONE)
			(*Tsqlite3rbu)(unsafe.Pointer(p)).FeStage = int32(RBU_STAGE_DONE)
		} else {
			pDb = (*Trbu_file)(unsafe.Pointer((*Tsqlite3rbu)(unsafe.Pointer(p)).FpTargetFd)).FpReal
			pWal = (*Trbu_file)(unsafe.Pointer((*Trbu_file)(unsafe.Pointer((*Tsqlite3rbu)(unsafe.Pointer(p)).FpTargetFd)).FpWalFd)).FpReal
			nSectorSize = (*(*func(*libc.TLS, uintptr) int32)(unsafe.Pointer(&struct{ uintptr }{(*Tsqlite3_io_methods)(unsafe.Pointer((*Tsqlite3_file)(unsafe.Pointer(pDb)).FpMethods)).FxSectorSize})))(tls, pDb)
			if nSectorSize > (*Tsqlite3rbu)(unsafe.Pointer(p)).Fpgsz {
				(*Tsqlite3rbu)(unsafe.Pointer(p)).FnPagePerSector = nSectorSize / (*Tsqlite3rbu)(unsafe.Pointer(p)).Fpgsz
			} else {
				(*Tsqlite3rbu)(unsafe.Pointer(p)).FnPagePerSector = int32(1)
			}
			/* Call xSync() on the wal file. This causes SQLite to sync the
			 ** directory in which the target database and the wal file reside, in
			 ** case it has not been synced since the rename() call in
			 ** rbuMoveOalFile(). */
			(*Tsqlite3rbu)(unsafe.Pointer(p)).Frc = (*(*func(*libc.TLS, uintptr, int32) int32)(unsafe.Pointer(&struct{ uintptr }{(*Tsqlite3_io_methods)(unsafe.Pointer((*Tsqlite3_file)(unsafe.Pointer(pWal)).FpMethods)).FxSync})))(tls, pWal, int32(SQLITE_SYNC_NORMAL))
		}
	}
}

// C documentation
//
//	/*
//	** File control method. For custom operations on an rbuVfs-file.
//	*/
func _rbuVfsFileControl(tls *libc.TLS, pFile uintptr, op int32, pArg uintptr) (r int32) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var p, pRbu, pRbu1, pRbuVfs, xControl, zIn, zOut uintptr
	var rc int32
	var _ /* dummy at bp+0 */ uintptr
	_, _, _, _, _, _, _, _ = p, pRbu, pRbu1, pRbuVfs, rc, xControl, zIn, zOut
	p = pFile
	xControl = (*Tsqlite3_io_methods)(unsafe.Pointer((*Tsqlite3_file)(unsafe.Pointer((*Trbu_file)(unsafe.Pointer(p)).FpReal)).FpMethods)).FxFileControl
	if op == int32(SQLITE_FCNTL_RBU) {
		pRbu = pArg
		/* First try to find another RBU vfs lower down in the vfs stack. If
		 ** one is found, this vfs will operate in pass-through mode. The lower
		 ** level vfs will do the special RBU handling.  */
		rc = (*(*func(*libc.TLS, uintptr, int32, uintptr) int32)(unsafe.Pointer(&struct{ uintptr }{xControl})))(tls, (*Trbu_file)(unsafe.Pointer(p)).FpReal, op, pArg)
		if rc == int32(SQLITE_NOTFOUND) {
			/* Now search for a zipvfs instance lower down in the VFS stack. If
			 ** one is found, this is an error.  */
			**(**uintptr)(__ccgo_up(bp)) = uintptr(0)
			rc = (*(*func(*libc.TLS, uintptr, int32, uintptr) int32)(unsafe.Pointer(&struct{ uintptr }{xControl})))(tls, (*Trbu_file)(unsafe.Pointer(p)).FpReal, int32(SQLITE_FCNTL_ZIPVFS), bp)
			if rc == SQLITE_OK {
				rc = int32(SQLITE_ERROR)
				(*Tsqlite3rbu)(unsafe.Pointer(pRbu)).FzErrmsg = Xsqlite3_mprintf(tls, __ccgo_ts+34709, 0)
			} else {
				if rc == int32(SQLITE_NOTFOUND) {
					(*Tsqlite3rbu)(unsafe.Pointer(pRbu)).FpTargetFd = p
					(*Trbu_file)(unsafe.Pointer(p)).FpRbu = pRbu
					_rbuMainlistAdd(tls, p)
					if (*Trbu_file)(unsafe.Pointer(p)).FpWalFd != 0 {
						(*Trbu_file)(unsafe.Pointer((*Trbu_file)(unsafe.Pointer(p)).FpWalFd)).FpRbu = pRbu
					}
					rc = SQLITE_OK
				}
			}
		}
		return rc
	} else {
		if op == int32(SQLITE_FCNTL_RBUCNT) {
			pRbu1 = pArg
			(*Tsqlite3rbu)(unsafe.Pointer(pRbu1)).FnRbu = (*Tsqlite3rbu)(unsafe.Pointer(pRbu1)).FnRbu + 1
			(*Tsqlite3rbu)(unsafe.Pointer(pRbu1)).FpRbuFd = p
			(*Trbu_file)(unsafe.Pointer(p)).FbNolock = uint8(1)
		}
	}
	rc = (*(*func(*libc.TLS, uintptr, int32, uintptr) int32)(unsafe.Pointer(&struct{ uintptr }{xControl})))(tls, (*Trbu_file)(unsafe.Pointer(p)).FpReal, op, pArg)
	if rc == SQLITE_OK && op == int32(SQLITE_FCNTL_VFSNAME) {
		pRbuVfs = (*Trbu_file)(unsafe.Pointer(p)).FpRbuVfs
		zIn = **(**uintptr)(__ccgo_up(pArg))
		zOut = Xsqlite3_mprintf(tls, __ccgo_ts+34732, libc.VaList(bp+16, (*Trbu_vfs)(unsafe.Pointer(pRbuVfs)).Fbase.FzName, zIn))
		**(**uintptr)(__ccgo_up(pArg)) = zOut
		if zOut == uintptr(0) {
			rc = int32(SQLITE_NOMEM)
		}
	}
	return rc
}

// C documentation
//
//	/*
//	** Generate VM code to replace any double-quoted strings (but not double-quoted
//	** identifiers) within the "sql" column of the sqlite_schema table in
//	** database zDb with their single-quoted equivalents. If argument bTemp is
//	** not true, similarly update all SQL statements in the sqlite_schema table
//	** of the temp db.
//	*/
func _renameFixQuotes(tls *libc.TLS, pParse uintptr, zDb uintptr, bTemp int32) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	_sqlite3NestedParse(tls, pParse, __ccgo_ts+9022, libc.VaList(bp+8, zDb, zDb))
	if bTemp == 0 {
		_sqlite3NestedParse(tls, pParse, __ccgo_ts+9169, 0)
	}
}

// C documentation
//
//	/*
//	** Reset the SQL statement passed as the first argument. Return a copy
//	** of the value returned by sqlite3_reset().
//	**
//	** If an error has occurred, then set *pzErrmsg to point to a buffer
//	** containing an error message. It is the responsibility of the caller
//	** to eventually free this buffer using sqlite3_free().
//	*/
func _resetAndCollectError(tls *libc.TLS, pStmt uintptr, pzErrmsg uintptr) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var rc int32
	_ = rc
	rc = Xsqlite3_reset(tls, pStmt)
	if rc != SQLITE_OK {
		**(**uintptr)(__ccgo_up(pzErrmsg)) = Xsqlite3_mprintf(tls, __ccgo_ts+3942, libc.VaList(bp+8, Xsqlite3_errmsg(tls, Xsqlite3_db_handle(tls, pStmt))))
	}
	return rc
}

// C documentation
//
//	/*
//	** Generate an ORDER BY or GROUP BY term out-of-range error.
//	*/
func _resolveOutOfRangeError(tls *libc.TLS, pParse uintptr, zType uintptr, i int32, mx int32, pError uintptr) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+7571, libc.VaList(bp+8, i, zType, mx))
	_sqlite3RecordErrorOffsetOfExpr(tls, (*TParse)(unsafe.Pointer(pParse)).Fdb, pError)
}

// C documentation
//
//	/*
//	** The second and subsequent arguments to this function are a printf()
//	** style format string and arguments. This function formats the string and
//	** appends it to the report being accumulated in pCheck.
//	*/
func _rtreeCheckAppendMsg(tls *libc.TLS, pCheck uintptr, zFmt uintptr, va uintptr) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var ap Tva_list
	var z, v1 uintptr
	_, _, _ = ap, z, v1
	ap = va
	if (*TRtreeCheck)(unsafe.Pointer(pCheck)).Frc == SQLITE_OK && (*TRtreeCheck)(unsafe.Pointer(pCheck)).FnErr < int32(RTREE_CHECK_MAX_ERROR) {
		z = Xsqlite3_vmprintf(tls, zFmt, ap)
		if z == uintptr(0) {
			(*TRtreeCheck)(unsafe.Pointer(pCheck)).Frc = int32(SQLITE_NOMEM)
		} else {
			if (*TRtreeCheck)(unsafe.Pointer(pCheck)).FzReport != 0 {
				v1 = __ccgo_ts + 4354
			} else {
				v1 = __ccgo_ts + 1702
			}
			(*TRtreeCheck)(unsafe.Pointer(pCheck)).FzReport = Xsqlite3_mprintf(tls, __ccgo_ts+29053, libc.VaList(bp+8, (*TRtreeCheck)(unsafe.Pointer(pCheck)).FzReport, v1, z))
			if (*TRtreeCheck)(unsafe.Pointer(pCheck)).FzReport == uintptr(0) {
				(*TRtreeCheck)(unsafe.Pointer(pCheck)).Frc = int32(SQLITE_NOMEM)
			}
		}
		(*TRtreeCheck)(unsafe.Pointer(pCheck)).FnErr = (*TRtreeCheck)(unsafe.Pointer(pCheck)).FnErr + 1
	}
	_ = ap
}

// C documentation
//
//	/*
//	** Argument pCell points to an array of coordinates stored on an rtree page.
//	** This function checks that the coordinates are internally consistent (no
//	** x1>x2 conditions) and adds an error message to the RtreeCheck object
//	** if they are not.
//	**
//	** Additionally, if pParent is not NULL, then it is assumed to point to
//	** the array of coordinates on the parent page that bound the page
//	** containing pCell. In this case it is also verified that the two
//	** sets of coordinates are mutually consistent and an error message added
//	** to the RtreeCheck object if they are not.
//	*/
func _rtreeCheckCellCoord(tls *libc.TLS, pCheck uintptr, iNode Ti64, iCell int32, pCell uintptr, pParent uintptr) {
	bp := tls.Alloc(48)
	defer tls.Free(48)
	var i, v2, v3 int32
	var v5 bool
	var _ /* c1 at bp+0 */ TRtreeCoord
	var _ /* c2 at bp+4 */ TRtreeCoord
	var _ /* p1 at bp+8 */ TRtreeCoord
	var _ /* p2 at bp+12 */ TRtreeCoord
	_, _, _, _ = i, v2, v3, v5
	i = 0
	for {
		if !(i < (*TRtreeCheck)(unsafe.Pointer(pCheck)).FnDim) {
			break
		}
		_readCoord(tls, pCell+uintptr(libc.Int32FromInt32(4)*libc.Int32FromInt32(2)*i), bp)
		_readCoord(tls, pCell+uintptr(int32(4)*(int32(2)*i+int32(1))), bp+4)
		/* printf("%e, %e\n", c1.u.f, c2.u.f); */
		if (*TRtreeCheck)(unsafe.Pointer(pCheck)).FbInt != 0 {
			v2 = libc.BoolInt32(*(*int32)(unsafe.Pointer(bp)) > *(*int32)(unsafe.Pointer(bp + 4)))
		} else {
			v2 = libc.BoolInt32(*(*TRtreeValue)(unsafe.Pointer(bp)) > *(*TRtreeValue)(unsafe.Pointer(bp + 4)))
		}
		if v2 != 0 {
			_rtreeCheckAppendMsg(tls, pCheck, __ccgo_ts+29359, libc.VaList(bp+24, i, iCell, iNode))
		}
		if pParent != 0 {
			_readCoord(tls, pParent+uintptr(libc.Int32FromInt32(4)*libc.Int32FromInt32(2)*i), bp+8)
			_readCoord(tls, pParent+uintptr(int32(4)*(int32(2)*i+int32(1))), bp+12)
			if (*TRtreeCheck)(unsafe.Pointer(pCheck)).FbInt != 0 {
				v2 = libc.BoolInt32(*(*int32)(unsafe.Pointer(bp)) < *(*int32)(unsafe.Pointer(bp + 8)))
			} else {
				v2 = libc.BoolInt32(*(*TRtreeValue)(unsafe.Pointer(bp)) < *(*TRtreeValue)(unsafe.Pointer(bp + 8)))
			}
			if v5 = v2 != 0; !v5 {
				if (*TRtreeCheck)(unsafe.Pointer(pCheck)).FbInt != 0 {
					v3 = libc.BoolInt32(*(*int32)(unsafe.Pointer(bp + 4)) > *(*int32)(unsafe.Pointer(bp + 12)))
				} else {
					v3 = libc.BoolInt32(*(*TRtreeValue)(unsafe.Pointer(bp + 4)) > *(*TRtreeValue)(unsafe.Pointer(bp + 12)))
				}
			}
			if v5 || v3 != 0 {
				_rtreeCheckAppendMsg(tls, pCheck, __ccgo_ts+29407, libc.VaList(bp+24, i, iCell, iNode))
			}
		}
		goto _1
	_1:
		;
		i = i + 1
	}
}

// C documentation
//
//	/*
//	** The second argument to this function must be either "_rowid" or
//	** "_parent". This function checks that the number of entries in the
//	** %_rowid or %_parent table is exactly nExpect. If not, it adds
//	** an error message to the report in the RtreeCheck object indicated
//	** by the first argument.
//	*/
func _rtreeCheckCount(tls *libc.TLS, pCheck uintptr, zTbl uintptr, nExpect Ti64) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var nActual Ti64
	var pCount uintptr
	_, _ = nActual, pCount
	if (*TRtreeCheck)(unsafe.Pointer(pCheck)).Frc == SQLITE_OK {
		pCount = _rtreeCheckPrepare(tls, pCheck, __ccgo_ts+29593, libc.VaList(bp+8, (*TRtreeCheck)(unsafe.Pointer(pCheck)).FzDb, (*TRtreeCheck)(unsafe.Pointer(pCheck)).FzTab, zTbl))
		if pCount != 0 {
			if Xsqlite3_step(tls, pCount) == int32(SQLITE_ROW) {
				nActual = Xsqlite3_column_int64(tls, pCount, 0)
				if nActual != nExpect {
					_rtreeCheckAppendMsg(tls, pCheck, __ccgo_ts+29624, libc.VaList(bp+8, zTbl, nExpect, nActual))
				}
			}
			(*TRtreeCheck)(unsafe.Pointer(pCheck)).Frc = Xsqlite3_finalize(tls, pCount)
		}
	}
}

// C documentation
//
//	/*
//	** Run rtreecheck() checks on node iNode, which is at depth iDepth within
//	** the r-tree structure. Argument aParent points to the array of coordinates
//	** that bound node iNode on the parent node.
//	**
//	** If any problems are discovered, an error message is appended to the
//	** report accumulated in the RtreeCheck object.
//	*/
func _rtreeCheckNode(tls *libc.TLS, pCheck uintptr, iDepth int32, aParent uintptr, iNode Ti64) {
	bp := tls.Alloc(48)
	defer tls.Free(48)
	var aNode, pCell uintptr
	var i, nCell int32
	var iVal Ti64
	var _ /* nNode at bp+0 */ int32
	_, _, _, _, _ = aNode, i, iVal, nCell, pCell
	aNode = uintptr(0)
	**(**int32)(__ccgo_up(bp)) = 0
	aNode = _rtreeCheckGetNode(tls, pCheck, iNode, bp)
	if aNode != 0 {
		if **(**int32)(__ccgo_up(bp)) < int32(4) {
			_rtreeCheckAppendMsg(tls, pCheck, __ccgo_ts+29474, libc.VaList(bp+16, iNode, **(**int32)(__ccgo_up(bp))))
		} else { /* Used to iterate through cells */
			if aParent == uintptr(0) {
				iDepth = _readInt16(tls, aNode)
				if iDepth > int32(RTREE_MAX_DEPTH) {
					_rtreeCheckAppendMsg(tls, pCheck, __ccgo_ts+29508, libc.VaList(bp+16, iDepth))
					Xsqlite3_free(tls, aNode)
					return
				}
			}
			nCell = _readInt16(tls, aNode+2)
			if int32(4)+nCell*(int32(8)+(*TRtreeCheck)(unsafe.Pointer(pCheck)).FnDim*int32(2)*int32(4)) > **(**int32)(__ccgo_up(bp)) {
				_rtreeCheckAppendMsg(tls, pCheck, __ccgo_ts+29538, libc.VaList(bp+16, iNode, nCell, **(**int32)(__ccgo_up(bp))))
			} else {
				i = 0
				for {
					if !(i < nCell) {
						break
					}
					pCell = aNode + uintptr(int32(4)+i*(int32(8)+(*TRtreeCheck)(unsafe.Pointer(pCheck)).FnDim*int32(2)*int32(4)))
					iVal = _readInt64(tls, pCell)
					_rtreeCheckCellCoord(tls, pCheck, iNode, i, pCell+8, aParent)
					if iDepth > 0 {
						_rtreeCheckMapping(tls, pCheck, 0, iVal, iNode)
						_rtreeCheckNode(tls, pCheck, iDepth-int32(1), pCell+8, iVal)
						(*TRtreeCheck)(unsafe.Pointer(pCheck)).FnNonLeaf = (*TRtreeCheck)(unsafe.Pointer(pCheck)).FnNonLeaf + 1
					} else {
						_rtreeCheckMapping(tls, pCheck, int32(1), iVal, iNode)
						(*TRtreeCheck)(unsafe.Pointer(pCheck)).FnLeaf = (*TRtreeCheck)(unsafe.Pointer(pCheck)).FnLeaf + 1
					}
					goto _1
				_1:
					;
					i = i + 1
				}
			}
		}
		Xsqlite3_free(tls, aNode)
	}
}

// C documentation
//
//	/*
//	** A constraint has failed while inserting a row into an rtree table.
//	** Assuming no OOM error occurs, this function sets the error message
//	** (at pRtree->base.zErrMsg) to an appropriate value and returns
//	** SQLITE_CONSTRAINT.
//	**
//	** Parameter iCol is the index of the leftmost column involved in the
//	** constraint failure. If it is 0, then the constraint that failed is
//	** the unique constraint on the id column. Otherwise, it is the rtree
//	** (c1<=c2) constraint on columns iCol and iCol+1 that has failed.
//	**
//	** If an OOM occurs, SQLITE_NOMEM is returned instead of SQLITE_CONSTRAINT.
//	*/
func _rtreeConstraintError(tls *libc.TLS, pRtree uintptr, iCol int32) (r int32) {
	bp := tls.Alloc(48)
	defer tls.Free(48)
	var rc, v1 int32
	var zCol, zCol1, zCol2, zSql uintptr
	var _ /* pStmt at bp+0 */ uintptr
	_, _, _, _, _, _ = rc, zCol, zCol1, zCol2, zSql, v1
	**(**uintptr)(__ccgo_up(bp)) = uintptr(0)
	zSql = Xsqlite3_mprintf(tls, __ccgo_ts+27507, libc.VaList(bp+16, (*TRtree)(unsafe.Pointer(pRtree)).FzDb, (*TRtree)(unsafe.Pointer(pRtree)).FzName))
	if zSql != 0 {
		rc = Xsqlite3_prepare_v2(tls, (*TRtree)(unsafe.Pointer(pRtree)).Fdb, zSql, -int32(1), bp, uintptr(0))
	} else {
		rc = int32(SQLITE_NOMEM)
	}
	Xsqlite3_free(tls, zSql)
	if rc == SQLITE_OK {
		if iCol == 0 {
			zCol = Xsqlite3_column_name(tls, **(**uintptr)(__ccgo_up(bp)), 0)
			(*TRtree)(unsafe.Pointer(pRtree)).Fbase.FzErrMsg = Xsqlite3_mprintf(tls, __ccgo_ts+27527, libc.VaList(bp+16, (*TRtree)(unsafe.Pointer(pRtree)).FzName, zCol))
		} else {
			zCol1 = Xsqlite3_column_name(tls, **(**uintptr)(__ccgo_up(bp)), iCol)
			zCol2 = Xsqlite3_column_name(tls, **(**uintptr)(__ccgo_up(bp)), iCol+int32(1))
			(*TRtree)(unsafe.Pointer(pRtree)).Fbase.FzErrMsg = Xsqlite3_mprintf(tls, __ccgo_ts+27559, libc.VaList(bp+16, (*TRtree)(unsafe.Pointer(pRtree)).FzName, zCol1, zCol2))
		}
	}
	Xsqlite3_finalize(tls, **(**uintptr)(__ccgo_up(bp)))
	if rc == SQLITE_OK {
		v1 = int32(SQLITE_CONSTRAINT)
	} else {
		v1 = rc
	}
	return v1
}

// C documentation
//
//	/*
//	** Rtree virtual table module xDestroy method.
//	*/
func _rtreeDestroy(tls *libc.TLS, pVtab uintptr) (r int32) {
	bp := tls.Alloc(64)
	defer tls.Free(64)
	var pRtree, zCreate uintptr
	var rc int32
	_, _, _ = pRtree, rc, zCreate
	pRtree = pVtab
	zCreate = Xsqlite3_mprintf(tls, __ccgo_ts+27411, libc.VaList(bp+8, (*TRtree)(unsafe.Pointer(pRtree)).FzDb, (*TRtree)(unsafe.Pointer(pRtree)).FzName, (*TRtree)(unsafe.Pointer(pRtree)).FzDb, (*TRtree)(unsafe.Pointer(pRtree)).FzName, (*TRtree)(unsafe.Pointer(pRtree)).FzDb, (*TRtree)(unsafe.Pointer(pRtree)).FzName))
	if !(zCreate != 0) {
		rc = int32(SQLITE_NOMEM)
	} else {
		_nodeBlobReset(tls, pRtree)
		rc = Xsqlite3_exec(tls, (*TRtree)(unsafe.Pointer(pRtree)).Fdb, zCreate, uintptr(0), uintptr(0), uintptr(0))
		Xsqlite3_free(tls, zCreate)
	}
	if rc == SQLITE_OK {
		_rtreeRelease(tls, pRtree)
	}
	return rc
}

// C documentation
//
//	/*
//	** Implementation of the xIntegrity method for Rtree.
//	*/
func _rtreeIntegrity(tls *libc.TLS, pVtab uintptr, zSchema uintptr, zName uintptr, isQuick int32, pzErr uintptr) (r int32) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var pRtree uintptr
	var rc int32
	_, _ = pRtree, rc
	pRtree = pVtab
	_ = zSchema
	_ = zName
	_ = isQuick
	rc = _rtreeCheckTable(tls, (*TRtree)(unsafe.Pointer(pRtree)).Fdb, (*TRtree)(unsafe.Pointer(pRtree)).FzDb, (*TRtree)(unsafe.Pointer(pRtree)).FzName, pzErr)
	if rc == SQLITE_OK && **(**uintptr)(__ccgo_up(pzErr)) != 0 {
		**(**uintptr)(__ccgo_up(pzErr)) = Xsqlite3_mprintf(tls, __ccgo_ts+29765, libc.VaList(bp+8, (*TRtree)(unsafe.Pointer(pRtree)).FzDb, (*TRtree)(unsafe.Pointer(pRtree)).FzName, **(**uintptr)(__ccgo_up(pzErr))))
		if **(**uintptr)(__ccgo_up(pzErr)) == uintptr(0) {
			rc = int32(SQLITE_NOMEM)
		}
	}
	return rc
}

// C documentation
//
//	/*
//	** This function populates the pRtree->nRowEst variable with an estimate
//	** of the number of rows in the virtual table. If possible, this is based
//	** on sqlite_stat1 data. Otherwise, use RTREE_DEFAULT_ROWEST.
//	*/
func _rtreeQueryStat1(tls *libc.TLS, db uintptr, pRtree uintptr) (r int32) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var nRow Ti64
	var rc, v1 int32
	var zFmt, zSql uintptr
	var v2 int64
	var _ /* p at bp+0 */ uintptr
	_, _, _, _, _, _ = nRow, rc, zFmt, zSql, v1, v2
	zFmt = __ccgo_ts + 27741
	nRow = int64(RTREE_MIN_ROWEST)
	rc = Xsqlite3_table_column_metadata(tls, db, (*TRtree)(unsafe.Pointer(pRtree)).FzDb, __ccgo_ts+12835, uintptr(0), uintptr(0), uintptr(0), uintptr(0), uintptr(0), uintptr(0))
	if rc != SQLITE_OK {
		(*TRtree)(unsafe.Pointer(pRtree)).FnRowEst = int64(RTREE_DEFAULT_ROWEST)
		if rc == int32(SQLITE_ERROR) {
			v1 = SQLITE_OK
		} else {
			v1 = rc
		}
		return v1
	}
	zSql = Xsqlite3_mprintf(tls, zFmt, libc.VaList(bp+16, (*TRtree)(unsafe.Pointer(pRtree)).FzDb, (*TRtree)(unsafe.Pointer(pRtree)).FzName))
	if zSql == uintptr(0) {
		rc = int32(SQLITE_NOMEM)
	} else {
		rc = Xsqlite3_prepare_v2(tls, db, zSql, -int32(1), bp, uintptr(0))
		if rc == SQLITE_OK {
			if Xsqlite3_step(tls, **(**uintptr)(__ccgo_up(bp))) == int32(SQLITE_ROW) {
				nRow = Xsqlite3_column_int64(tls, **(**uintptr)(__ccgo_up(bp)), 0)
			}
			rc = Xsqlite3_finalize(tls, **(**uintptr)(__ccgo_up(bp)))
		}
		Xsqlite3_free(tls, zSql)
	}
	if nRow > int64(libc.Int32FromInt32(RTREE_MIN_ROWEST)) {
		v2 = nRow
	} else {
		v2 = int64(libc.Int32FromInt32(RTREE_MIN_ROWEST))
	}
	(*TRtree)(unsafe.Pointer(pRtree)).FnRowEst = v2
	return rc
}

// C documentation
//
//	/*
//	** The xRename method for rtree module virtual tables.
//	*/
func _rtreeRename(tls *libc.TLS, pVtab uintptr, zNewName uintptr) (r int32) {
	bp := tls.Alloc(80)
	defer tls.Free(80)
	var pRtree, zSql uintptr
	var rc int32
	_, _, _ = pRtree, rc, zSql
	pRtree = pVtab
	rc = int32(SQLITE_NOMEM)
	zSql = Xsqlite3_mprintf(tls, __ccgo_ts+27596, libc.VaList(bp+8, (*TRtree)(unsafe.Pointer(pRtree)).FzDb, (*TRtree)(unsafe.Pointer(pRtree)).FzName, zNewName, (*TRtree)(unsafe.Pointer(pRtree)).FzDb, (*TRtree)(unsafe.Pointer(pRtree)).FzName, zNewName, (*TRtree)(unsafe.Pointer(pRtree)).FzDb, (*TRtree)(unsafe.Pointer(pRtree)).FzName, zNewName))
	if zSql != 0 {
		_nodeBlobReset(tls, pRtree)
		rc = Xsqlite3_exec(tls, (*TRtree)(unsafe.Pointer(pRtree)).Fdb, zSql, uintptr(0), uintptr(0), uintptr(0))
		Xsqlite3_free(tls, zSql)
	}
	return rc
}

// C documentation
//
//	/* This routine implements an SQL function that returns the "depth" parameter
//	** from the front of a blob that is an r-tree node.  For example:
//	**
//	**     SELECT rtreedepth(data) FROM rt_node WHERE nodeno=1;
//	**
//	** The depth value is 0 for all nodes other than the root node, and the root
//	** node always has nodeno=1, so the example above is the primary use for this
//	** routine.  This routine is intended for testing and analysis only.
//	*/
func _rtreedepth(tls *libc.TLS, ctx uintptr, nArg int32, apArg uintptr) {
	var zBlob uintptr
	_ = zBlob
	_ = nArg
	if Xsqlite3_value_type(tls, **(**uintptr)(__ccgo_up(apArg))) != int32(SQLITE_BLOB) || Xsqlite3_value_bytes(tls, **(**uintptr)(__ccgo_up(apArg))) < int32(2) {
		Xsqlite3_result_error(tls, ctx, __ccgo_ts+29020, -int32(1))
	} else {
		zBlob = Xsqlite3_value_blob(tls, **(**uintptr)(__ccgo_up(apArg)))
		if zBlob != 0 {
			Xsqlite3_result_int(tls, ctx, _readInt16(tls, zBlob))
		} else {
			Xsqlite3_result_error_nomem(tls, ctx)
		}
	}
}

// C documentation
//
//	/*
//	** Attempt to apply the change that the iterator passed as the first argument
//	** currently points to to the database. If a conflict is encountered, invoke
//	** the conflict handler callback.
//	**
//	** The difference between this function and sessionApplyOne() is that this
//	** function handles the case where the conflict-handler is invoked and
//	** returns SQLITE_CHANGESET_REPLACE - indicating that the change should be
//	** retried in some manner.
//	*/
func _sessionApplyOneWithRetry(tls *libc.TLS, db uintptr, pIter uintptr, pApply uintptr, __ccgo_fp_xConflict uintptr, pCtx uintptr) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var rc int32
	var _ /* bReplace at bp+0 */ int32
	var _ /* bRetry at bp+4 */ int32
	_ = rc
	**(**int32)(__ccgo_up(bp)) = 0
	**(**int32)(__ccgo_up(bp + 4)) = 0
	rc = _sessionApplyOneOp(tls, pIter, pApply, __ccgo_fp_xConflict, pCtx, bp, bp+4)
	if rc == SQLITE_OK {
		/* If the bRetry flag is set, the change has not been applied due to an
		 ** SQLITE_CHANGESET_DATA problem (i.e. this is an UPDATE or DELETE and
		 ** a row with the correct PK is present in the db, but one or more other
		 ** fields do not contain the expected values) and the conflict handler
		 ** returned SQLITE_CHANGESET_REPLACE. In this case retry the operation,
		 ** but pass NULL as the final argument so that sessionApplyOneOp() ignores
		 ** the SQLITE_CHANGESET_DATA problem.  */
		if **(**int32)(__ccgo_up(bp + 4)) != 0 {
			rc = _sessionApplyOneOp(tls, pIter, pApply, __ccgo_fp_xConflict, pCtx, uintptr(0), uintptr(0))
		} else {
			if **(**int32)(__ccgo_up(bp)) != 0 {
				rc = Xsqlite3_exec(tls, db, __ccgo_ts+36325, uintptr(0), uintptr(0), uintptr(0))
				if rc == SQLITE_OK {
					rc = _sessionBindRow(tls, pIter, __ccgo_fp(Xsqlite3changeset_new), (*TSessionApplyCtx)(unsafe.Pointer(pApply)).FnCol, (*TSessionApplyCtx)(unsafe.Pointer(pApply)).FabPK, (*TSessionApplyCtx)(unsafe.Pointer(pApply)).FpDelete)
					Xsqlite3_bind_int(tls, (*TSessionApplyCtx)(unsafe.Pointer(pApply)).FpDelete, (*TSessionApplyCtx)(unsafe.Pointer(pApply)).FnCol+int32(1), int32(1))
				}
				if rc == SQLITE_OK {
					Xsqlite3_step(tls, (*TSessionApplyCtx)(unsafe.Pointer(pApply)).FpDelete)
					rc = Xsqlite3_reset(tls, (*TSessionApplyCtx)(unsafe.Pointer(pApply)).FpDelete)
				}
				if rc == SQLITE_OK {
					rc = _sessionApplyOneOp(tls, pIter, pApply, __ccgo_fp_xConflict, pCtx, uintptr(0), uintptr(0))
				}
				if rc == SQLITE_OK {
					rc = Xsqlite3_exec(tls, db, __ccgo_ts+36346, uintptr(0), uintptr(0), uintptr(0))
				}
			}
		}
	}
	return rc
}

func _sessionDiffFindModified(tls *libc.TLS, pSession uintptr, pTab uintptr, zFrom uintptr, zExpr uintptr) (r int32) {
	bp := tls.Alloc(80)
	defer tls.Free(80)
	var iRowid Ti64
	var pDiffCtx, z1, z2, zExpr2, zStmt uintptr
	var rc int32
	var v1 int64
	var _ /* pStmt at bp+0 */ uintptr
	_, _, _, _, _, _, _, _ = iRowid, pDiffCtx, rc, z1, z2, zExpr2, zStmt, v1
	rc = SQLITE_OK
	zExpr2 = _sessionExprCompareOther(tls, (*TSessionTable)(unsafe.Pointer(pTab)).FnCol, (*Tsqlite3_session)(unsafe.Pointer(pSession)).FzDb, zFrom, (*TSessionTable)(unsafe.Pointer(pTab)).FzName, (*TSessionTable)(unsafe.Pointer(pTab)).FazCol, (*TSessionTable)(unsafe.Pointer(pTab)).FabPK)
	if zExpr2 == uintptr(0) {
		rc = int32(SQLITE_NOMEM)
	} else {
		z1 = _sessionAllCols(tls, (*Tsqlite3_session)(unsafe.Pointer(pSession)).FzDb, pTab)
		z2 = _sessionAllCols(tls, zFrom, pTab)
		zStmt = Xsqlite3_mprintf(tls, __ccgo_ts+35548, libc.VaList(bp+16, z1, z2, (*Tsqlite3_session)(unsafe.Pointer(pSession)).FzDb, (*TSessionTable)(unsafe.Pointer(pTab)).FzName, zFrom, (*TSessionTable)(unsafe.Pointer(pTab)).FzName, zExpr, zExpr2))
		if zStmt == uintptr(0) || z1 == uintptr(0) || z2 == uintptr(0) {
			rc = int32(SQLITE_NOMEM)
		} else {
			rc = Xsqlite3_prepare_v2(tls, (*Tsqlite3_session)(unsafe.Pointer(pSession)).Fdb, zStmt, -int32(1), bp, uintptr(0))
			if rc == SQLITE_OK {
				pDiffCtx = (*Tsqlite3_session)(unsafe.Pointer(pSession)).Fhook.FpCtx
				(*TSessionDiffCtx)(unsafe.Pointer(pDiffCtx)).FpStmt = **(**uintptr)(__ccgo_up(bp))
				(*TSessionDiffCtx)(unsafe.Pointer(pDiffCtx)).FnOldOff = (*TSessionTable)(unsafe.Pointer(pTab)).FnCol
				for int32(SQLITE_ROW) == Xsqlite3_step(tls, **(**uintptr)(__ccgo_up(bp))) {
					if (*TSessionTable)(unsafe.Pointer(pTab)).FbRowid != 0 {
						v1 = Xsqlite3_column_int64(tls, **(**uintptr)(__ccgo_up(bp)), 0)
					} else {
						v1 = 0
					}
					iRowid = v1
					_sessionPreupdateOneChange(tls, int32(SQLITE_UPDATE), iRowid, pSession, pTab)
				}
				rc = Xsqlite3_finalize(tls, **(**uintptr)(__ccgo_up(bp)))
			}
		}
		Xsqlite3_free(tls, zStmt)
		Xsqlite3_free(tls, z1)
		Xsqlite3_free(tls, z2)
	}
	return rc
}

func _sessionPrepare(tls *libc.TLS, db uintptr, pp uintptr, pzErrmsg uintptr, zSql uintptr) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var rc int32
	_ = rc
	rc = Xsqlite3_prepare_v2(tls, db, zSql, -int32(1), pp, uintptr(0))
	if pzErrmsg != 0 && rc != SQLITE_OK {
		**(**uintptr)(__ccgo_up(pzErrmsg)) = Xsqlite3_mprintf(tls, __ccgo_ts+3942, libc.VaList(bp+8, Xsqlite3_errmsg(tls, db)))
	}
	return rc
}

func _sessionSelectFindNew(tls *libc.TLS, zDb1 uintptr, zDb2 uintptr, bRowid int32, zTbl uintptr, zExpr uintptr) (r uintptr) {
	bp := tls.Alloc(64)
	defer tls.Free(64)
	var zRet, zSel, v1 uintptr
	_, _, _ = zRet, zSel, v1
	if bRowid != 0 {
		v1 = __ccgo_ts + 35439
	} else {
		v1 = __ccgo_ts + 6823
	}
	zSel = v1
	zRet = Xsqlite3_mprintf(tls, __ccgo_ts+35450, libc.VaList(bp+8, zSel, zDb1, zTbl, zDb2, zTbl, zExpr))
	return zRet
}

// C documentation
//
//	/*
//	** Check if table zTab in the "main" database of db is a WITHOUT ROWID
//	** table.
//	**
//	** If no error occurs, return SQLITE_OK and set output variable (*pbWR) to
//	** true if zTab is a WITHOUT ROWID table, or false otherwise. Or, if an
//	** error does occur, return an SQLite error code. The final value of (*pbWR)
//	** is undefined in this case.
//	*/
func _sessionTableIsWithoutRowid(tls *libc.TLS, db uintptr, zTab uintptr, pbWR uintptr) (r int32) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var rc int32
	var zSql uintptr
	var _ /* pList at bp+0 */ uintptr
	_, _ = rc, zSql
	**(**uintptr)(__ccgo_up(bp)) = uintptr(0)
	zSql = uintptr(0)
	rc = SQLITE_OK
	zSql = Xsqlite3_mprintf(tls, __ccgo_ts+36365, libc.VaList(bp+16, zTab))
	if zSql == uintptr(0) {
		rc = int32(SQLITE_NOMEM)
	} else {
		rc = Xsqlite3_prepare_v2(tls, db, zSql, -int32(1), bp, uintptr(0))
		Xsqlite3_free(tls, zSql)
	}
	if rc == SQLITE_OK {
		Xsqlite3_step(tls, **(**uintptr)(__ccgo_up(bp)))
		**(**int32)(__ccgo_up(pbWR)) = Xsqlite3_column_int(tls, **(**uintptr)(__ccgo_up(bp)), int32(4))
		rc = Xsqlite3_finalize(tls, **(**uintptr)(__ccgo_up(bp)))
	}
	return rc
}

// C documentation
//
//	/*
//	** Do an authorization check using the code and arguments given.  Return
//	** either SQLITE_OK (zero) or SQLITE_IGNORE or SQLITE_DENY.  If SQLITE_DENY
//	** is returned, then the error count and error message in pParse are
//	** modified appropriately.
//	*/
func _sqlite3AuthCheck(tls *libc.TLS, pParse uintptr, code int32, zArg1 uintptr, zArg2 uintptr, zArg3 uintptr) (r int32) {
	var db uintptr
	var rc int32
	_, _ = db, rc
	db = (*TParse)(unsafe.Pointer(pParse)).Fdb
	/* Don't do any authorization checks if the database is initializing
	 ** or if the parser is being invoked from within sqlite3_declare_vtab.
	 */
	if (*Tsqlite3)(unsafe.Pointer(db)).FxAuth == uintptr(0) || (*Tsqlite3)(unsafe.Pointer(db)).Finit1.Fbusy != 0 || libc.Int32FromUint8((*TParse)(unsafe.Pointer(pParse)).FeParseMode) != PARSE_MODE_NORMAL {
		return SQLITE_OK
	}
	/* EVIDENCE-OF: R-43249-19882 The third through sixth parameters to the
	 ** callback are either NULL pointers or zero-terminated strings that
	 ** contain additional details about the action to be authorized.
	 **
	 ** The following testcase() macros show that any of the 3rd through 6th
	 ** parameters can be either NULL or a string. */
	rc = (*(*func(*libc.TLS, uintptr, int32, uintptr, uintptr, uintptr, uintptr) int32)(unsafe.Pointer(&struct{ uintptr }{(*Tsqlite3)(unsafe.Pointer(db)).FxAuth})))(tls, (*Tsqlite3)(unsafe.Pointer(db)).FpAuthArg, code, zArg1, zArg2, zArg3, (*TParse)(unsafe.Pointer(pParse)).FzAuthContext)
	if rc == int32(SQLITE_DENY) {
		_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+13673, 0)
		(*TParse)(unsafe.Pointer(pParse)).Frc = int32(SQLITE_AUTH)
	} else {
		if rc != SQLITE_OK && rc != int32(SQLITE_IGNORE) {
			rc = int32(SQLITE_DENY)
			_sqliteAuthBadReturnCode(tls, pParse)
		}
	}
	return rc
}

func _sqlite3CantopenError(tls *libc.TLS, lineno int32) (r int32) {
	return _sqlite3ReportError(tls, int32(SQLITE_CANTOPEN), lineno, __ccgo_ts+26321)
}

// C documentation
//
//	/*
//	** Close an existing SQLite database
//	*/
func _sqlite3Close(tls *libc.TLS, db uintptr, forceZombie int32) (r int32) {
	var p uintptr
	_ = p
	if !(db != 0) {
		/* EVIDENCE-OF: R-63257-11740 Calling sqlite3_close() or
		 ** sqlite3_close_v2() with a NULL pointer argument is a harmless no-op. */
		return SQLITE_OK
	}
	if !(_sqlite3SafetyCheckSickOrOk(tls, db) != 0) {
		return _sqlite3MisuseError(tls, int32(188636))
	}
	Xsqlite3_mutex_enter(tls, (*Tsqlite3)(unsafe.Pointer(db)).Fmutex)
	if libc.Int32FromUint8((*Tsqlite3)(unsafe.Pointer(db)).FmTrace)&int32(SQLITE_TRACE_CLOSE) != 0 {
		(*(*func(*libc.TLS, Tu32, uintptr, uintptr, uintptr) int32)(unsafe.Pointer(&struct{ uintptr }{*(*uintptr)(unsafe.Pointer(&(*Tsqlite3)(unsafe.Pointer(db)).Ftrace))})))(tls, uint32(SQLITE_TRACE_CLOSE), (*Tsqlite3)(unsafe.Pointer(db)).FpTraceArg, db, uintptr(0))
	}
	/* Force xDisconnect calls on all virtual tables */
	_disconnectAllVtab(tls, db)
	/* If a transaction is open, the disconnectAllVtab() call above
	 ** will not have called the xDisconnect() method on any virtual
	 ** tables in the db->aVTrans[] array. The following sqlite3VtabRollback()
	 ** call will do so. We need to do this before the check for active
	 ** SQL statements below, as the v-table implementation may be storing
	 ** some prepared statements internally.
	 */
	_sqlite3VtabRollback(tls, db)
	/* Legacy behavior (sqlite3_close() behavior) is to return
	 ** SQLITE_BUSY if the connection can not be closed immediately.
	 */
	if !(forceZombie != 0) && _connectionIsBusy(tls, db) != 0 {
		_sqlite3ErrorWithMsg(tls, db, int32(SQLITE_BUSY), __ccgo_ts+25289, 0)
		Xsqlite3_mutex_leave(tls, (*Tsqlite3)(unsafe.Pointer(db)).Fmutex)
		return int32(SQLITE_BUSY)
	}
	for (*Tsqlite3)(unsafe.Pointer(db)).FpDbData != 0 {
		p = (*Tsqlite3)(unsafe.Pointer(db)).FpDbData
		(*Tsqlite3)(unsafe.Pointer(db)).FpDbData = (*TDbClientData)(unsafe.Pointer(p)).FpNext
		if (*TDbClientData)(unsafe.Pointer(p)).FxDestructor != 0 {
			(*(*func(*libc.TLS, uintptr))(unsafe.Pointer(&struct{ uintptr }{(*TDbClientData)(unsafe.Pointer(p)).FxDestructor})))(tls, (*TDbClientData)(unsafe.Pointer(p)).FpData)
		}
		Xsqlite3_free(tls, p)
	}
	/* Convert the connection into a zombie and then close it.
	 */
	(*Tsqlite3)(unsafe.Pointer(db)).FeOpenState = uint8(SQLITE_STATE_ZOMBIE)
	_sqlite3LeaveMutexAndCloseZombie(tls, db)
	return SQLITE_OK
}

func _sqlite3CorruptError(tls *libc.TLS, lineno int32) (r int32) {
	return _sqlite3ReportError(tls, int32(SQLITE_CORRUPT), lineno, __ccgo_ts+26294)
}

// C documentation
//
//	/*
//	** Invoke this routine to register the "dbpage" virtual table module
//	*/
func _sqlite3DbpageRegister(tls *libc.TLS, db uintptr) (r int32) {
	return Xsqlite3_create_module(tls, db, __ccgo_ts+35178, uintptr(unsafe.Pointer(&_dbpage_module)), uintptr(0))
}

// C documentation
//
//	/*
//	** Invoke this routine to register the "dbstat" virtual table module
//	*/
func _sqlite3DbstatRegister(tls *libc.TLS, db uintptr) (r int32) {
	return Xsqlite3_create_module(tls, db, __ccgo_ts+34993, uintptr(unsafe.Pointer(&_dbstat_module)), uintptr(0))
}

// C documentation
//
//	/*
//	** Generate VDBE code for a COMMIT or ROLLBACK statement.
//	** Code for ROLLBACK is generated if eType==TK_ROLLBACK.  Otherwise
//	** code is generated for a COMMIT.
//	*/
func _sqlite3EndTransaction(tls *libc.TLS, pParse uintptr, eType int32) {
	var isRollback int32
	var v, v1 uintptr
	_, _, _ = isRollback, v, v1
	isRollback = libc.BoolInt32(eType == int32(TK_ROLLBACK))
	if isRollback != 0 {
		v1 = __ccgo_ts + 16111
	} else {
		v1 = __ccgo_ts + 16120
	}
	if _sqlite3AuthCheck(tls, pParse, int32(SQLITE_TRANSACTION), v1, uintptr(0), uintptr(0)) != 0 {
		return
	}
	v = _sqlite3GetVdbe(tls, pParse)
	if v != 0 {
		_sqlite3VdbeAddOp2(tls, v, int32(OP_AutoCommit), int32(1), isRollback)
	}
}

// C documentation
//
//	/*
//	** Write code that will raise an error if the table described by
//	** zDb and zTab is not empty.
//	*/
func _sqlite3ErrorIfNotEmpty(tls *libc.TLS, pParse uintptr, zDb uintptr, zTab uintptr, zErr uintptr) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	_sqlite3NestedParse(tls, pParse, __ccgo_ts+10253, libc.VaList(bp+8, zErr, zDb, zTab))
}

// C documentation
//
//	/*
//	** Check to see if a function is usable according to current access
//	** rules:
//	**
//	**    SQLITE_FUNC_DIRECT    -     Only usable from top-level SQL
//	**
//	**    SQLITE_FUNC_UNSAFE    -     Usable if TRUSTED_SCHEMA or from
//	**                                top-level SQL
//	**
//	** If the function is not usable, create an error.
//	*/
func _sqlite3ExprFunctionUsable(tls *libc.TLS, pParse uintptr, pExpr uintptr, pDef uintptr) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	if (*TExpr)(unsafe.Pointer(pExpr)).Fflags&libc.Uint32FromInt32(libc.Int32FromInt32(EP_FromDDL)) != uint32(0) || libc.Int32FromUint8((*TParse)(unsafe.Pointer(pParse)).FprepFlags)&int32(SQLITE_PREPARE_FROM_DDL) != 0 {
		if (*TFuncDef)(unsafe.Pointer(pDef)).FfuncFlags&uint32(SQLITE_FUNC_DIRECT) != uint32(0) || (*Tsqlite3)(unsafe.Pointer((*TParse)(unsafe.Pointer(pParse)).Fdb)).Fflags&uint64(SQLITE_TrustedSchema) == uint64(0) {
			/* Functions prohibited in triggers and views if:
			 **     (1) tagged with SQLITE_DIRECTONLY
			 **     (2) not tagged with SQLITE_INNOCUOUS (which means it
			 **         is tagged with SQLITE_FUNC_UNSAFE) and
			 **         SQLITE_DBCONFIG_TRUSTED_SCHEMA is off (meaning
			 **         that the schema is possibly tainted).
			 */
			_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+8041, libc.VaList(bp+8, pExpr))
		}
	}
}

// C documentation
//
//	/*
//	** Report an error when attempting to use an ORDER BY clause within
//	** the arguments of a non-aggregate function.
//	*/
func _sqlite3ExprOrderByAggregateError(tls *libc.TLS, pParse uintptr, p uintptr) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+7991, libc.VaList(bp+8, p))
}

// C documentation
//
//	/*
//	** Create the shadow table named zPost, with definition zDefn. Return
//	** SQLITE_OK if successful, or an SQLite error code otherwise.
//	*/
func _sqlite3Fts5CreateTable(tls *libc.TLS, pConfig uintptr, zPost uintptr, zDefn uintptr, bWithout int32, pzErr uintptr) (r int32) {
	bp := tls.Alloc(64)
	defer tls.Free(64)
	var rc int32
	var v1 uintptr
	var _ /* zErr at bp+0 */ uintptr
	_, _ = rc, v1
	**(**uintptr)(__ccgo_up(bp)) = uintptr(0)
	if bWithout != 0 {
		v1 = __ccgo_ts + 32081
	} else {
		v1 = __ccgo_ts + 1702
	}
	rc = _fts5ExecPrintf(tls, (*TFts5Config)(unsafe.Pointer(pConfig)).Fdb, bp, __ccgo_ts+41486, libc.VaList(bp+16, (*TFts5Config)(unsafe.Pointer(pConfig)).FzDb, (*TFts5Config)(unsafe.Pointer(pConfig)).FzName, zPost, zDefn, v1))
	if **(**uintptr)(__ccgo_up(bp)) != 0 {
		**(**uintptr)(__ccgo_up(pzErr)) = Xsqlite3_mprintf(tls, __ccgo_ts+41516, libc.VaList(bp+16, (*TFts5Config)(unsafe.Pointer(pConfig)).FzName, zPost, **(**uintptr)(__ccgo_up(bp))))
		Xsqlite3_free(tls, **(**uintptr)(__ccgo_up(bp)))
	}
	return rc
}

// C documentation
//
//	/*
//	** Drop all shadow tables. Return SQLITE_OK if successful or an SQLite error
//	** code otherwise.
//	*/
func _sqlite3Fts5DropAll(tls *libc.TLS, pConfig uintptr) (r int32) {
	bp := tls.Alloc(64)
	defer tls.Free(64)
	var rc int32
	_ = rc
	rc = _fts5ExecPrintf(tls, (*TFts5Config)(unsafe.Pointer(pConfig)).Fdb, uintptr(0), __ccgo_ts+41264, libc.VaList(bp+8, (*TFts5Config)(unsafe.Pointer(pConfig)).FzDb, (*TFts5Config)(unsafe.Pointer(pConfig)).FzName, (*TFts5Config)(unsafe.Pointer(pConfig)).FzDb, (*TFts5Config)(unsafe.Pointer(pConfig)).FzName, (*TFts5Config)(unsafe.Pointer(pConfig)).FzDb, (*TFts5Config)(unsafe.Pointer(pConfig)).FzName))
	if rc == SQLITE_OK && (*TFts5Config)(unsafe.Pointer(pConfig)).FbColumnsize != 0 {
		rc = _fts5ExecPrintf(tls, (*TFts5Config)(unsafe.Pointer(pConfig)).Fdb, uintptr(0), __ccgo_ts+41368, libc.VaList(bp+8, (*TFts5Config)(unsafe.Pointer(pConfig)).FzDb, (*TFts5Config)(unsafe.Pointer(pConfig)).FzName))
	}
	if rc == SQLITE_OK && (*TFts5Config)(unsafe.Pointer(pConfig)).FeContent == FTS5_CONTENT_NORMAL {
		rc = _fts5ExecPrintf(tls, (*TFts5Config)(unsafe.Pointer(pConfig)).Fdb, uintptr(0), __ccgo_ts+41406, libc.VaList(bp+8, (*TFts5Config)(unsafe.Pointer(pConfig)).FzDb, (*TFts5Config)(unsafe.Pointer(pConfig)).FzName))
	}
	return rc
}

// C documentation
//
//	/*
//	** Apply colset pColset to expression node pExpr and all of its descendents.
//	*/
func _sqlite3Fts5ParseSetColset(tls *libc.TLS, pParse uintptr, pExpr uintptr, pColset uintptr) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var _ /* pFree at bp+0 */ uintptr
	**(**uintptr)(__ccgo_up(bp)) = pColset
	if (*TFts5Config)(unsafe.Pointer((*TFts5Parse)(unsafe.Pointer(pParse)).FpConfig)).FeDetail == int32(FTS5_DETAIL_NONE) {
		_sqlite3Fts5ParseError(tls, pParse, __ccgo_ts+38637, 0)
	} else {
		_fts5ParseSetColset(tls, pParse, pExpr, pColset, bp)
	}
	Xsqlite3_free(tls, **(**uintptr)(__ccgo_up(bp)))
}

// C documentation
//
//	/*
//	** Delete all entries in the FTS5 index.
//	*/
func _sqlite3Fts5StorageDeleteAll(tls *libc.TLS, p uintptr) (r int32) {
	bp := tls.Alloc(48)
	defer tls.Free(48)
	var pConfig uintptr
	var rc int32
	_, _ = pConfig, rc
	pConfig = (*TFts5Storage)(unsafe.Pointer(p)).FpConfig
	(*TFts5Storage)(unsafe.Pointer(p)).FbTotalsValid = 0
	/* Delete the contents of the %_data and %_docsize tables. */
	rc = _fts5ExecPrintf(tls, (*TFts5Config)(unsafe.Pointer(pConfig)).Fdb, uintptr(0), __ccgo_ts+41692, libc.VaList(bp+8, (*TFts5Config)(unsafe.Pointer(pConfig)).FzDb, (*TFts5Config)(unsafe.Pointer(pConfig)).FzName, (*TFts5Config)(unsafe.Pointer(pConfig)).FzDb, (*TFts5Config)(unsafe.Pointer(pConfig)).FzName))
	if rc == SQLITE_OK && (*TFts5Config)(unsafe.Pointer(pConfig)).FbColumnsize != 0 {
		rc = _fts5ExecPrintf(tls, (*TFts5Config)(unsafe.Pointer(pConfig)).Fdb, uintptr(0), __ccgo_ts+41742, libc.VaList(bp+8, (*TFts5Config)(unsafe.Pointer(pConfig)).FzDb, (*TFts5Config)(unsafe.Pointer(pConfig)).FzName))
	}
	if rc == SQLITE_OK && (*TFts5Config)(unsafe.Pointer(pConfig)).FeContent == int32(FTS5_CONTENT_UNINDEXED) {
		rc = _fts5ExecPrintf(tls, (*TFts5Config)(unsafe.Pointer(pConfig)).Fdb, uintptr(0), __ccgo_ts+41771, libc.VaList(bp+8, (*TFts5Config)(unsafe.Pointer(pConfig)).FzDb, (*TFts5Config)(unsafe.Pointer(pConfig)).FzName))
	}
	/* Reinitialize the %_data table. This call creates the initial structure
	 ** and averages records.  */
	if rc == SQLITE_OK {
		rc = _sqlite3Fts5IndexReinit(tls, (*TFts5Storage)(unsafe.Pointer(p)).FpIndex)
	}
	if rc == SQLITE_OK {
		rc = _sqlite3Fts5StorageConfigValue(tls, p, __ccgo_ts+38466, uintptr(0), int32(FTS5_CURRENT_VERSION))
	}
	return rc
}

func _sqlite3Fts5StorageRename(tls *libc.TLS, pStorage uintptr, zName uintptr) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var pConfig uintptr
	var _ /* rc at bp+0 */ int32
	_ = pConfig
	pConfig = (*TFts5Storage)(unsafe.Pointer(pStorage)).FpConfig
	**(**int32)(__ccgo_up(bp)) = _sqlite3Fts5StorageSync(tls, pStorage)
	_fts5StorageRenameOne(tls, pConfig, bp, __ccgo_ts+27406, zName)
	_fts5StorageRenameOne(tls, pConfig, bp, __ccgo_ts+13046, zName)
	_fts5StorageRenameOne(tls, pConfig, bp, __ccgo_ts+40598, zName)
	if (*TFts5Config)(unsafe.Pointer(pConfig)).FbColumnsize != 0 {
		_fts5StorageRenameOne(tls, pConfig, bp, __ccgo_ts+38284, zName)
	}
	if (*TFts5Config)(unsafe.Pointer(pConfig)).FeContent == FTS5_CONTENT_NORMAL {
		_fts5StorageRenameOne(tls, pConfig, bp, __ccgo_ts+37589, zName)
	}
	return **(**int32)(__ccgo_up(bp))
}

// C documentation
//
//	/*
//	** Return true if the tokenizer described by p->azArg[] is the trigram
//	** tokenizer. This tokenizer needs to be loaded before xBestIndex is
//	** called for the first time in order to correctly handle LIKE/GLOB.
//	*/
func _sqlite3Fts5TokenizerPreload(tls *libc.TLS, p uintptr) (r int32) {
	return libc.BoolInt32((*TFts5TokenizerConfig)(unsafe.Pointer(p)).FnArg >= int32(1) && 0 == Xsqlite3_stricmp(tls, **(**uintptr)(__ccgo_up((*TFts5TokenizerConfig)(unsafe.Pointer(p)).FazArg)), __ccgo_ts+42203))
}

func _sqlite3Fts5VocabInit(tls *libc.TLS, pGlobal uintptr, db uintptr) (r int32) {
	var p uintptr
	_ = p
	p = pGlobal
	return Xsqlite3_create_module_v2(tls, db, __ccgo_ts+42527, uintptr(unsafe.Pointer(&_fts5Vocab)), p, uintptr(0))
}

// C documentation
//
//	/*
//	** This function is responsible for invoking the collation factory callback
//	** or substituting a collation sequence of a different encoding when the
//	** requested collation sequence is not available in the desired encoding.
//	**
//	** If it is not NULL, then pColl must point to the database native encoding
//	** collation sequence with name zName, length nName.
//	**
//	** The return value is either the collation sequence to be used in database
//	** db for collation type name zName, length nName, or NULL, if no collation
//	** sequence can be found.  If no collation is found, leave an error message.
//	**
//	** See also: sqlite3LocateCollSeq(), sqlite3FindCollSeq()
//	*/
func _sqlite3GetCollSeq(tls *libc.TLS, pParse uintptr, enc Tu8, pColl uintptr, zName uintptr) (r uintptr) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var db, p uintptr
	_, _ = db, p
	db = (*TParse)(unsafe.Pointer(pParse)).Fdb
	p = pColl
	if !(p != 0) {
		p = _sqlite3FindCollSeq(tls, db, enc, zName, 0)
	}
	if !(p != 0) || !((*TCollSeq)(unsafe.Pointer(p)).FxCmp != 0) {
		/* No collation sequence of this type for this encoding is registered.
		 ** Call the collation factory to see if it can supply us with one.
		 */
		_callCollNeeded(tls, db, libc.Int32FromUint8(enc), zName)
		p = _sqlite3FindCollSeq(tls, db, enc, zName, 0)
	}
	if p != 0 && !((*TCollSeq)(unsafe.Pointer(p)).FxCmp != 0) && _synthCollSeq(tls, db, p) != 0 {
		p = uintptr(0)
	}
	if p == uintptr(0) {
		_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+16316, libc.VaList(bp+8, zName))
		(*TParse)(unsafe.Pointer(pParse)).Frc = libc.Int32FromInt32(SQLITE_ERROR) | libc.Int32FromInt32(1)<<libc.Int32FromInt32(8)
	}
	return p
}

// C documentation
//
//	/*
//	** The following is the implementation of an SQL function that always
//	** fails with an error message stating that the function is used in the
//	** wrong context.  The sqlite3_overload_function() API might construct
//	** SQL function that use this routine so that the functions will exist
//	** for name resolution but are actually overloaded by the xFindFunction
//	** method of virtual tables.
//	*/
func _sqlite3InvalidFunction(tls *libc.TLS, context uintptr, NotUsed int32, NotUsed2 uintptr) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var zErr, zName uintptr
	_, _ = zErr, zName
	zName = Xsqlite3_user_data(tls, context)
	_ = NotUsed
	_ = NotUsed2
	zErr = Xsqlite3_mprintf(tls, __ccgo_ts+25976, libc.VaList(bp+8, zName))
	Xsqlite3_result_error(tls, context, zErr, -int32(1))
	Xsqlite3_free(tls, zErr)
}

// C documentation
//
//	/*
//	** Check to make sure the given table is writable.
//	**
//	** If pTab is not writable  ->  generate an error message and return 1.
//	** If pTab is writable but other errors have occurred -> return 1.
//	** If pTab is writable and no prior errors -> return 0;
//	*/
func _sqlite3IsReadOnly(tls *libc.TLS, pParse uintptr, pTab uintptr, pTrigger uintptr) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	if _tabIsReadOnly(tls, pParse, pTab) != 0 {
		_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+16380, libc.VaList(bp+8, (*TTable)(unsafe.Pointer(pTab)).FzName))
		return int32(1)
	}
	if libc.Int32FromUint8((*TTable)(unsafe.Pointer(pTab)).FeTabType) == int32(TABTYP_VIEW) && (pTrigger == uintptr(0) || (*TTrigger)(unsafe.Pointer(pTrigger)).FbReturning != 0 && (*TTrigger)(unsafe.Pointer(pTrigger)).FpNext == uintptr(0)) {
		_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+16409, libc.VaList(bp+8, (*TTable)(unsafe.Pointer(pTab)).FzName))
		return int32(1)
	}
	return 0
}

// C documentation
//
//	/*
//	** Return TRUE if the given string is a row-id column name.
//	*/
func _sqlite3IsRowid(tls *libc.TLS, z uintptr) (r int32) {
	if _sqlite3StrICmp(tls, z, __ccgo_ts+8191) == 0 {
		return int32(1)
	}
	if _sqlite3StrICmp(tls, z, __ccgo_ts+8199) == 0 {
		return int32(1)
	}
	if _sqlite3StrICmp(tls, z, __ccgo_ts+8205) == 0 {
		return int32(1)
	}
	return 0
}

// C documentation
//
//	/*
//	** Check the input string to see if it is "true" or "false" (in any case).
//	**
//	**       If the string is....           Return
//	**         "true"                         EP_IsTrue
//	**         "false"                        EP_IsFalse
//	**         anything else                  0
//	*/
func _sqlite3IsTrueOrFalse(tls *libc.TLS, zIn uintptr) (r Tu32) {
	if _sqlite3StrICmp(tls, zIn, __ccgo_ts+8180) == 0 {
		return uint32(EP_IsTrue)
	}
	if _sqlite3StrICmp(tls, zIn, __ccgo_ts+8185) == 0 {
		return uint32(EP_IsFalse)
	}
	return uint32(0)
}

func _sqlite3MisuseError(tls *libc.TLS, lineno int32) (r int32) {
	return _sqlite3ReportError(tls, int32(SQLITE_MISUSE), lineno, __ccgo_ts+26314)
}

// C documentation
//
//	/*
//	** Open the sqlite_schema table stored in database number iDb for
//	** writing. The table is opened using cursor 0.
//	*/
func _sqlite3OpenSchemaTable(tls *libc.TLS, p uintptr, iDb int32) {
	var v uintptr
	_ = v
	v = _sqlite3GetVdbe(tls, p)
	_sqlite3TableLock(tls, p, iDb, uint32(SCHEMA_ROOT), uint8(1), __ccgo_ts+6286)
	_sqlite3VdbeAddOp4Int(tls, v, int32(OP_OpenWrite), 0, int32(SCHEMA_ROOT), iDb, int32(5))
	if (*TParse)(unsafe.Pointer(p)).FnTab == 0 {
		(*TParse)(unsafe.Pointer(p)).FnTab = int32(1)
	}
}

// C documentation
//
//	/*
//	** This function is called when the user invokes "PRAGMA wal_checkpoint",
//	** "PRAGMA wal_blocking_checkpoint" or calls the sqlite3_wal_checkpoint()
//	** or wal_blocking_checkpoint() API functions.
//	**
//	** Parameter eMode is one of SQLITE_CHECKPOINT_PASSIVE, FULL or RESTART.
//	*/
func _sqlite3PagerCheckpoint(tls *libc.TLS, pPager uintptr, db uintptr, eMode int32, pnLog uintptr, pnCkpt uintptr) (r int32) {
	var rc int32
	var v1 uintptr
	_, _ = rc, v1
	rc = SQLITE_OK
	if (*TPager)(unsafe.Pointer(pPager)).FpWal == uintptr(0) && libc.Int32FromUint8((*TPager)(unsafe.Pointer(pPager)).FjournalMode) == int32(PAGER_JOURNALMODE_WAL) {
		/* This only happens when a database file is zero bytes in size opened and
		 ** then "PRAGMA journal_mode=WAL" is run and then sqlite3_wal_checkpoint()
		 ** is invoked without any intervening transactions.  We need to start
		 ** a transaction to initialize pWal.  The PRAGMA table_list statement is
		 ** used for this since it starts transactions on every database file,
		 ** including all ATTACHed databases.  This seems expensive for a single
		 ** sqlite3_wal_checkpoint() call, but it happens very rarely.
		 ** https://sqlite.org/forum/forumpost/fd0f19d229156939
		 */
		Xsqlite3_exec(tls, db, __ccgo_ts+4260, uintptr(0), uintptr(0), uintptr(0))
	}
	if (*TPager)(unsafe.Pointer(pPager)).FpWal != 0 {
		if eMode <= SQLITE_CHECKPOINT_PASSIVE {
			v1 = uintptr(0)
		} else {
			v1 = (*TPager)(unsafe.Pointer(pPager)).FxBusyHandler
		}
		rc = _sqlite3WalCheckpoint(tls, (*TPager)(unsafe.Pointer(pPager)).FpWal, db, eMode, v1, (*TPager)(unsafe.Pointer(pPager)).FpBusyHandlerArg, libc.Int32FromUint8((*TPager)(unsafe.Pointer(pPager)).FwalSyncFlags), int32((*TPager)(unsafe.Pointer(pPager)).FpageSize), (*TPager)(unsafe.Pointer(pPager)).FpTmpSpace, pnLog, pnCkpt)
	}
	return rc
}

// C documentation
//
//	/*
//	** Return the preferred table name for system tables.  Translate legacy
//	** names into the new preferred names, as appropriate.
//	*/
func _sqlite3PreferredTableName(tls *libc.TLS, zName uintptr) (r uintptr) {
	if Xsqlite3_strnicmp(tls, zName, __ccgo_ts+6758, int32(7)) == 0 {
		if _sqlite3StrICmp(tls, zName+uintptr(7), __ccgo_ts+6286+7) == 0 {
			return __ccgo_ts + 6804
		}
		if _sqlite3StrICmp(tls, zName+uintptr(7), __ccgo_ts+6766+7) == 0 {
			return __ccgo_ts + 6785
		}
	}
	return zName
}

// C documentation
//
//	/*
//	** Re-register the built-in LIKE functions.  The caseSensitive
//	** parameter determines whether or not the LIKE operator is case
//	** sensitive.
//	*/
func _sqlite3RegisterLikeFunctions(tls *libc.TLS, db uintptr, caseSensitive int32) {
	var flags, nArg int32
	var pDef, pInfo uintptr
	_, _, _, _ = flags, nArg, pDef, pInfo
	if caseSensitive != 0 {
		pInfo = uintptr(unsafe.Pointer(&_likeInfoAlt))
		flags = libc.Int32FromInt32(SQLITE_FUNC_LIKE) | libc.Int32FromInt32(SQLITE_FUNC_CASE)
	} else {
		pInfo = uintptr(unsafe.Pointer(&_likeInfoNorm))
		flags = int32(SQLITE_FUNC_LIKE)
	}
	nArg = int32(2)
	for {
		if !(nArg <= int32(3)) {
			break
		}
		_sqlite3CreateFunc(tls, db, __ccgo_ts+16607, nArg, int32(SQLITE_UTF8), pInfo, __ccgo_fp(_likeFunc), uintptr(0), uintptr(0), uintptr(0), uintptr(0), uintptr(0))
		pDef = _sqlite3FindFunction(tls, db, __ccgo_ts+16607, nArg, uint8(SQLITE_UTF8), uint8(0))
		/* The sqlite3CreateFunc() call above cannot fail
		 ** because the "like" SQL-function already exists */
		**(**Tu32)(__ccgo_up(pDef + 4)) |= libc.Uint32FromInt32(flags)
		**(**Tu32)(__ccgo_up(pDef + 4)) &= libc.Uint32FromInt32(^libc.Int32FromInt32(SQLITE_FUNC_UNSAFE))
		goto _1
	_1:
		;
		nArg = nArg + 1
	}
}

// C documentation
//
//	/*
//	** This routine does per-connection function registration.  Most
//	** of the built-in functions above are part of the global function set.
//	** This routine only deals with those that are not global.
//	*/
func _sqlite3RegisterPerConnectionBuiltinFunctions(tls *libc.TLS, db uintptr) {
	var rc int32
	_ = rc
	rc = Xsqlite3_overload_function(tls, db, __ccgo_ts+16601, int32(2))
	if rc == int32(SQLITE_NOMEM) {
		_sqlite3OomFault(tls, db)
	}
}

// C documentation
//
//	/*
//	** The following routines are substitutes for constants SQLITE_CORRUPT,
//	** SQLITE_MISUSE, SQLITE_CANTOPEN, SQLITE_NOMEM and possibly other error
//	** constants.  They serve two purposes:
//	**
//	**   1.  Serve as a convenient place to set a breakpoint in a debugger
//	**       to detect when version error conditions occurs.
//	**
//	**   2.  Invoke sqlite3_log() to provide the source code location where
//	**       a low-level error is first detected.
//	*/
func _sqlite3ReportError(tls *libc.TLS, iErr int32, lineno int32, zType uintptr) (r int32) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	Xsqlite3_log(tls, iErr, __ccgo_ts+26269, libc.VaList(bp+8, zType, lineno, uintptr(20)+Xsqlite3_sourceid(tls)))
	return iErr
}

// C documentation
//
//	/*
//	** Register the r-tree module with database handle db. This creates the
//	** virtual table module "rtree" and the debugging/analysis scalar
//	** function "rtreenode".
//	*/
func _sqlite3RtreeInit(tls *libc.TLS, db uintptr) (r int32) {
	var c, c1 uintptr
	var rc, utf8 int32
	_, _, _, _ = c, c1, rc, utf8
	utf8 = int32(SQLITE_UTF8)
	rc = Xsqlite3_create_function(tls, db, __ccgo_ts+30227, int32(2), utf8, uintptr(0), __ccgo_fp(_rtreenode), uintptr(0), uintptr(0))
	if rc == SQLITE_OK {
		rc = Xsqlite3_create_function(tls, db, __ccgo_ts+30237, int32(1), utf8, uintptr(0), __ccgo_fp(_rtreedepth), uintptr(0), uintptr(0))
	}
	if rc == SQLITE_OK {
		rc = Xsqlite3_create_function(tls, db, __ccgo_ts+30248, -int32(1), utf8, uintptr(0), __ccgo_fp(_rtreecheck), uintptr(0), uintptr(0))
	}
	if rc == SQLITE_OK {
		c = libc.UintptrFromInt32(RTREE_COORD_REAL32)
		rc = Xsqlite3_create_module_v2(tls, db, __ccgo_ts+29971, uintptr(unsafe.Pointer(&_rtreeModule)), c, uintptr(0))
	}
	if rc == SQLITE_OK {
		c1 = libc.UintptrFromInt32(RTREE_COORD_INT32)
		rc = Xsqlite3_create_module_v2(tls, db, __ccgo_ts+30259, uintptr(unsafe.Pointer(&_rtreeModule)), c1, uintptr(0))
	}
	if rc == SQLITE_OK {
		rc = _sqlite3_geopoly_init(tls, db)
	}
	return rc
}

// C documentation
//
//	/*
//	** Name of the connection operator, used for error messages.
//	*/
func _sqlite3SelectOpName(tls *libc.TLS, id int32) (r uintptr) {
	var z uintptr
	_ = z
	switch id {
	case int32(TK_ALL):
		z = __ccgo_ts + 20487
	case int32(TK_INTERSECT):
		z = __ccgo_ts + 20497
	case int32(TK_EXCEPT):
		z = __ccgo_ts + 20507
	default:
		z = __ccgo_ts + 20514
		break
	}
	return z
}

// C documentation
//
//	/*
//	** Error message for when two or more terms of a compound select have different
//	** size result sets.
//	*/
func _sqlite3SelectWrongNumTermsError(tls *libc.TLS, pParse uintptr, p uintptr) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	if (*TSelect)(unsafe.Pointer(p)).FselFlags&uint32(SF_Values) != 0 {
		_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+20866, 0)
	} else {
		_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+20912, libc.VaList(bp+8, _sqlite3SelectOpName(tls, libc.Int32FromUint8((*TSelect)(unsafe.Pointer(p)).Fop))))
	}
}

// C documentation
//
//	/*
//	** Load the Parse object passed as the first argument with an error
//	** message of the form:
//	**
//	**   "sub-select returns N columns - expected M"
//	*/
func _sqlite3SubselectError(tls *libc.TLS, pParse uintptr, nActual int32, nExpect int32) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var zFmt uintptr
	_ = zFmt
	if (*TParse)(unsafe.Pointer(pParse)).FnErr == 0 {
		zFmt = __ccgo_ts + 8287
		_sqlite3ErrorMsg(tls, pParse, zFmt, libc.VaList(bp+8, nActual, nExpect))
	}
}

// C documentation
//
//	/* The table or view or trigger name is passed to this routine via tokens
//	** pName1 and pName2. If the table name was fully qualified, for example:
//	**
//	** CREATE TABLE xxx.yyy (...);
//	**
//	** Then pName1 is set to "xxx" and pName2 "yyy". On the other hand if
//	** the table name is not fully qualified, i.e.:
//	**
//	** CREATE TABLE yyy(...);
//	**
//	** Then pName1 is set to "yyy" and pName2 is "".
//	**
//	** This routine sets the *ppUnqual pointer to point at the token (pName1 or
//	** pName2) that stores the unqualified table name.  The index of the
//	** database "xxx" is returned.
//	*/
func _sqlite3TwoPartName(tls *libc.TLS, pParse uintptr, pName1 uintptr, pName2 uintptr, pUnqual uintptr) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var db uintptr
	var iDb int32
	_, _ = db, iDb /* Database holding the object */
	db = (*TParse)(unsafe.Pointer(pParse)).Fdb
	if (*TToken)(unsafe.Pointer(pName2)).Fn > uint32(0) {
		if (*Tsqlite3)(unsafe.Pointer(db)).Finit1.Fbusy != 0 {
			_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+13728, 0)
			return -int32(1)
		}
		**(**uintptr)(__ccgo_up(pUnqual)) = pName2
		iDb = _sqlite3FindDb(tls, db, pName1)
		if iDb < 0 {
			_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+13745, libc.VaList(bp+8, pName1))
			return -int32(1)
		}
	} else {
		iDb = libc.Int32FromUint8((*Tsqlite3)(unsafe.Pointer(db)).Finit1.FiDb)
		**(**uintptr)(__ccgo_up(pUnqual)) = pName1
	}
	return iDb
}

// C documentation
//
//	/*
//	** Window *pWin has just been created from a WINDOW clause. Token pBase
//	** is the base window. Earlier windows from the same WINDOW clause are
//	** stored in the linked list starting at pWin->pNextWin. This function
//	** either updates *pWin according to the base specification, or else
//	** leaves an error in pParse.
//	*/
func _sqlite3WindowChain(tls *libc.TLS, pParse uintptr, pWin uintptr, pList uintptr) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var db, pExist, zErr uintptr
	_, _, _ = db, pExist, zErr
	if (*TWindow)(unsafe.Pointer(pWin)).FzBase != 0 {
		db = (*TParse)(unsafe.Pointer(pParse)).Fdb
		pExist = _windowFind(tls, pParse, pList, (*TWindow)(unsafe.Pointer(pWin)).FzBase)
		if pExist != 0 {
			zErr = uintptr(0)
			/* Check for errors */
			if (*TWindow)(unsafe.Pointer(pWin)).FpPartition != 0 {
				zErr = __ccgo_ts + 24489
			} else {
				if (*TWindow)(unsafe.Pointer(pExist)).FpOrderBy != 0 && (*TWindow)(unsafe.Pointer(pWin)).FpOrderBy != 0 {
					zErr = __ccgo_ts + 24506
				} else {
					if libc.Int32FromUint8((*TWindow)(unsafe.Pointer(pExist)).FbImplicitFrame) == 0 {
						zErr = __ccgo_ts + 24522
					}
				}
			}
			if zErr != 0 {
				_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+24542, libc.VaList(bp+8, zErr, (*TWindow)(unsafe.Pointer(pWin)).FzBase))
			} else {
				(*TWindow)(unsafe.Pointer(pWin)).FpPartition = _sqlite3ExprListDup(tls, db, (*TWindow)(unsafe.Pointer(pExist)).FpPartition, 0)
				if (*TWindow)(unsafe.Pointer(pExist)).FpOrderBy != 0 {
					(*TWindow)(unsafe.Pointer(pWin)).FpOrderBy = _sqlite3ExprListDup(tls, db, (*TWindow)(unsafe.Pointer(pExist)).FpOrderBy, 0)
				}
				_sqlite3DbFree(tls, db, (*TWindow)(unsafe.Pointer(pWin)).FzBase)
				(*TWindow)(unsafe.Pointer(pWin)).FzBase = uintptr(0)
			}
		}
	}
}

// C documentation
//
//	/*
//	** Write an error message into pParse->zErrMsg that explains that the
//	** user-supplied authorization function returned an illegal value.
//	*/
func _sqliteAuthBadReturnCode(tls *libc.TLS, pParse uintptr) {
	_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+13611, 0)
	(*TParse)(unsafe.Pointer(pParse)).Frc = int32(SQLITE_ERROR)
}

var _statGetFuncdef = TFuncDef{
	FnArg:      int16(libc.Int32FromInt32(1) + libc.Int32FromInt32(IsStat4)),
	FfuncFlags: uint32(SQLITE_UTF8),
	FzName:     __ccgo_ts + 13023,
}

var _statInitFuncdef = TFuncDef{
	FnArg:      int16(4),
	FfuncFlags: uint32(SQLITE_UTF8),
	FzName:     __ccgo_ts + 12986,
}

var _statPushFuncdef = TFuncDef{
	FnArg:      int16(libc.Int32FromInt32(2) + libc.Int32FromInt32(IsStat4)),
	FfuncFlags: uint32(SQLITE_UTF8),
	FzName:     __ccgo_ts + 12996,
}

func _sumFinalize(tls *libc.TLS, context uintptr) {
	var p uintptr
	_ = p
	p = Xsqlite3_aggregate_context(tls, context, 0)
	if p != 0 && (*TSumCtx)(unsafe.Pointer(p)).Fcnt > 0 {
		if (*TSumCtx)(unsafe.Pointer(p)).Fapprox != 0 {
			if (*TSumCtx)(unsafe.Pointer(p)).Fovrfl != 0 {
				Xsqlite3_result_error(tls, context, __ccgo_ts+16460, -int32(1))
			} else {
				if !(_sqlite3IsOverflow(tls, (*TSumCtx)(unsafe.Pointer(p)).FrErr) != 0) {
					Xsqlite3_result_double(tls, context, (*TSumCtx)(unsafe.Pointer(p)).FrSum+(*TSumCtx)(unsafe.Pointer(p)).FrErr)
				} else {
					Xsqlite3_result_double(tls, context, (*TSumCtx)(unsafe.Pointer(p)).FrSum)
				}
			}
		} else {
			Xsqlite3_result_int64(tls, context, (*TSumCtx)(unsafe.Pointer(p)).FiSum)
		}
	}
}

// C documentation
//
//	/*
//	** Return true if it is not allowed to drop the given table
//	*/
func _tableMayNotBeDropped(tls *libc.TLS, db uintptr, pTab uintptr) (r int32) {
	if Xsqlite3_strnicmp(tls, (*TTable)(unsafe.Pointer(pTab)).FzName, __ccgo_ts+6758, int32(7)) == 0 {
		if Xsqlite3_strnicmp(tls, (*TTable)(unsafe.Pointer(pTab)).FzName+uintptr(7), __ccgo_ts+3565, int32(4)) == 0 {
			return 0
		}
		if Xsqlite3_strnicmp(tls, (*TTable)(unsafe.Pointer(pTab)).FzName+uintptr(7), __ccgo_ts+7560, int32(10)) == 0 {
			return 0
		}
		return int32(1)
	}
	if (*TTable)(unsafe.Pointer(pTab)).FtabFlags&uint32(TF_Shadow) != uint32(0) && _sqlite3ReadOnlyShadowTables(tls, db) != 0 {
		return int32(1)
	}
	if (*TTable)(unsafe.Pointer(pTab)).FtabFlags&uint32(TF_Eponymous) != 0 {
		return int32(1)
	}
	return 0
}

var _tkCoalesce = TToken{
	Fz: __ccgo_ts + 6963,
	Fn: uint32(8),
}

// C documentation
//
//	/*
//	** Return a list of all triggers on table pTab if there exists at least
//	** one trigger that must be fired when an operation of type 'op' is
//	** performed on the table, and, if that operation is an UPDATE, if at
//	** least one of the columns in pChanges is being modified.
//	*/
func _triggersReallyExist(tls *libc.TLS, pParse uintptr, pTab uintptr, op int32, pChanges uintptr, pMask uintptr) (r uintptr) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var mask int32
	var p, pList, v1 uintptr
	_, _, _, _ = mask, p, pList, v1
	mask = 0
	pList = uintptr(0)
	pList = _sqlite3TriggerList(tls, pParse, pTab)
	if pList != uintptr(0) {
		p = pList
		if (*Tsqlite3)(unsafe.Pointer((*TParse)(unsafe.Pointer(pParse)).Fdb)).Fflags&uint64(SQLITE_EnableTrigger) == uint64(0) && (*TTable)(unsafe.Pointer(pTab)).FpTrigger != uintptr(0) && _sqlite3SchemaToIndex(tls, (*TParse)(unsafe.Pointer(pParse)).Fdb, (*TTrigger)(unsafe.Pointer((*TTable)(unsafe.Pointer(pTab)).FpTrigger)).FpSchema) != int32(1) {
			/* The SQLITE_DBCONFIG_ENABLE_TRIGGER setting is off.  That means that
			 ** only TEMP triggers are allowed.  Truncate the pList so that it
			 ** includes only TEMP triggers */
			if pList == (*TTable)(unsafe.Pointer(pTab)).FpTrigger {
				pList = uintptr(0)
				goto exit_triggers_exist
			}
			for (*TTrigger)(unsafe.Pointer(p)).FpNext != 0 && (*TTrigger)(unsafe.Pointer(p)).FpNext != (*TTable)(unsafe.Pointer(pTab)).FpTrigger {
				p = (*TTrigger)(unsafe.Pointer(p)).FpNext
			}
			(*TTrigger)(unsafe.Pointer(p)).FpNext = uintptr(0)
			p = pList
		}
		for cond := true; cond; cond = p != 0 {
			if libc.Int32FromUint8((*TTrigger)(unsafe.Pointer(p)).Fop) == op && _checkColumnOverlap(tls, (*TTrigger)(unsafe.Pointer(p)).FpColumns, pChanges) != 0 {
				mask = mask | libc.Int32FromUint8((*TTrigger)(unsafe.Pointer(p)).Ftr_tm)
			} else {
				if libc.Int32FromUint8((*TTrigger)(unsafe.Pointer(p)).Fop) == int32(TK_RETURNING) {
					/* The first time a RETURNING trigger is seen, the "op" value tells
					 ** us what time of trigger it should be. */
					(*TTrigger)(unsafe.Pointer(p)).Fop = libc.Uint8FromInt32(op)
					if libc.Int32FromUint8((*TTable)(unsafe.Pointer(pTab)).FeTabType) == int32(TABTYP_VTAB) {
						if op != int32(TK_INSERT) {
							if op == int32(TK_DELETE) {
								v1 = __ccgo_ts + 22462
							} else {
								v1 = __ccgo_ts + 22469
							}
							_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+22476, libc.VaList(bp+8, v1))
						}
						(*TTrigger)(unsafe.Pointer(p)).Ftr_tm = uint8(TRIGGER_BEFORE)
					} else {
						(*TTrigger)(unsafe.Pointer(p)).Ftr_tm = uint8(TRIGGER_AFTER)
					}
					mask = mask | libc.Int32FromUint8((*TTrigger)(unsafe.Pointer(p)).Ftr_tm)
				} else {
					if (*TTrigger)(unsafe.Pointer(p)).FbReturning != 0 && libc.Int32FromUint8((*TTrigger)(unsafe.Pointer(p)).Fop) == int32(TK_INSERT) && op == int32(TK_UPDATE) && (*TParse)(unsafe.Pointer(pParse)).FpToplevel == uintptr(0) {
						/* Also fire a RETURNING trigger for an UPSERT */
						mask = mask | libc.Int32FromUint8((*TTrigger)(unsafe.Pointer(p)).Ftr_tm)
					}
				}
			}
			p = (*TTrigger)(unsafe.Pointer(p)).FpNext
		}
	}
	goto exit_triggers_exist
exit_triggers_exist:
	;
	if pMask != 0 {
		**(**int32)(__ccgo_up(pMask)) = mask
	}
	if mask != 0 {
		v1 = pList
	} else {
		v1 = uintptr(0)
	}
	return v1
}

// C documentation
//
//	/*
//	** This routine checks if there is a RESERVED lock held on the specified
//	** file by this or any other process. If such a lock is held, set *pResOut
//	** to a non-zero value otherwise *pResOut is set to zero.  The return value
//	** is set to SQLITE_OK unless an I/O error occurs during lock checking.
//	*/
func _unixCheckReservedLock(tls *libc.TLS, id uintptr, pResOut uintptr) (r int32) {
	bp := tls.Alloc(48)
	defer tls.Free(48)
	var pFile uintptr
	var rc, reserved int32
	var _ /* lock at bp+0 */ Tflock
	_, _, _ = pFile, rc, reserved
	rc = SQLITE_OK
	reserved = 0
	pFile = id
	Xsqlite3_mutex_enter(tls, (*TunixInodeInfo)(unsafe.Pointer((*TunixFile)(unsafe.Pointer(pFile)).FpInode)).FpLockMutex)
	/* Check if a thread in this process holds such a lock */
	if libc.Int32FromUint8((*TunixInodeInfo)(unsafe.Pointer((*TunixFile)(unsafe.Pointer(pFile)).FpInode)).FeFileLock) > int32(SHARED_LOCK) {
		reserved = int32(1)
	}
	/* Otherwise see if some other process holds it.
	 */
	if !(reserved != 0) && !((*TunixInodeInfo)(unsafe.Pointer((*TunixFile)(unsafe.Pointer(pFile)).FpInode)).FbProcessLock != 0) {
		(**(**Tflock)(__ccgo_up(bp))).Fl_whence = SEEK_SET
		(**(**Tflock)(__ccgo_up(bp))).Fl_start = int64(_sqlite3PendingByte + libc.Int32FromInt32(1))
		(**(**Tflock)(__ccgo_up(bp))).Fl_len = int64(1)
		(**(**Tflock)(__ccgo_up(bp))).Fl_type = int16(F_WRLCK)
		if (*(*func(*libc.TLS, int32, int32, uintptr) int32)(unsafe.Pointer(&struct{ uintptr }{_aSyscall[int32(7)].FpCurrent})))(tls, (*TunixFile)(unsafe.Pointer(pFile)).Fh, int32(F_GETLK), libc.VaList(bp+40, bp)) != 0 {
			rc = libc.Int32FromInt32(SQLITE_IOERR) | libc.Int32FromInt32(14)<<libc.Int32FromInt32(8)
			_storeLastErrno(tls, pFile, **(**int32)(__ccgo_up(libc.X__error(tls))))
		} else {
			if int32((**(**Tflock)(__ccgo_up(bp))).Fl_type) != int32(F_UNLCK) {
				reserved = int32(1)
			}
		}
	}
	Xsqlite3_mutex_leave(tls, (*TunixInodeInfo)(unsafe.Pointer((*TunixFile)(unsafe.Pointer(pFile)).FpInode)).FpLockMutex)
	**(**int32)(__ccgo_up(pResOut)) = reserved
	return rc
}

/*
** Set a posix-advisory-lock.
**
** There are two versions of this routine.  If compiled with
** SQLITE_ENABLE_SETLK_TIMEOUT then the routine has an extra parameter
** which is a pointer to a unixFile.  If the unixFile->iBusyTimeout
** value is set, then it is the number of milliseconds to wait before
** failing the lock.  The iBusyTimeout value is always reset back to
** zero on each call.
**
** If SQLITE_ENABLE_SETLK_TIMEOUT is not defined, then do a non-blocking
** attempt to set the lock.
 */

// C documentation
//
//	/*
//	** Delete the file at zPath. If the dirSync argument is true, fsync()
//	** the directory after deleting the file.
//	*/
func _unixDelete(tls *libc.TLS, NotUsed uintptr, zPath uintptr, dirSync int32) (r int32) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var rc int32
	var _ /* fd at bp+0 */ int32
	_ = rc
	rc = SQLITE_OK
	_ = NotUsed
	if (*(*func(*libc.TLS, uintptr) int32)(unsafe.Pointer(&struct{ uintptr }{_aSyscall[int32(16)].FpCurrent})))(tls, zPath) == -int32(1) {
		if **(**int32)(__ccgo_up(libc.X__error(tls))) == int32(ENOENT) {
			rc = libc.Int32FromInt32(SQLITE_IOERR) | libc.Int32FromInt32(23)<<libc.Int32FromInt32(8)
		} else {
			rc = _unixLogErrorAtLine(tls, libc.Int32FromInt32(SQLITE_IOERR)|libc.Int32FromInt32(10)<<libc.Int32FromInt32(8), __ccgo_ts+3650, zPath, int32(47046))
		}
		return rc
	}
	if dirSync&int32(1) != 0 {
		rc = (*(*func(*libc.TLS, uintptr, uintptr) int32)(unsafe.Pointer(&struct{ uintptr }{_aSyscall[int32(17)].FpCurrent})))(tls, zPath, bp)
		if rc == SQLITE_OK {
			if _full_fsync(tls, **(**int32)(__ccgo_up(bp)), 0, 0) != 0 {
				rc = _unixLogErrorAtLine(tls, libc.Int32FromInt32(SQLITE_IOERR)|libc.Int32FromInt32(5)<<libc.Int32FromInt32(8), __ccgo_ts+4067, zPath, int32(47056))
			}
			_robust_close(tls, uintptr(0), **(**int32)(__ccgo_up(bp)), int32(47058))
		} else {
			rc = SQLITE_OK
		}
	}
	return rc
}

// C documentation
//
//	/*
//	** SQLite calls this function immediately after a call to unixDlSym() or
//	** unixDlOpen() fails (returns a null pointer). If a more detailed error
//	** message is available, it is written to zBufOut. If no error message
//	** is available, zBufOut is left unmodified and SQLite uses a default
//	** error message.
//	*/
func _unixDlError(tls *libc.TLS, NotUsed uintptr, nBuf int32, zBufOut uintptr) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var zErr uintptr
	_ = zErr
	_ = NotUsed
	_unixEnterMutex(tls)
	zErr = libc.Xdlerror(tls)
	if zErr != 0 {
		Xsqlite3_snprintf(tls, nBuf, zBufOut, __ccgo_ts+3942, libc.VaList(bp+8, zErr))
	}
	_unixLeaveMutex(tls)
}

// C documentation
//
//	/*
//	** Attempt to set a system-lock on the file pFile.  The lock is
//	** described by pLock.
//	**
//	** If the pFile was opened read/write from unix-excl, then the only lock
//	** ever obtained is an exclusive lock, and it is obtained exactly once
//	** the first time any lock is attempted.  All subsequent system locking
//	** operations become no-ops.  Locking operations still happen internally,
//	** in order to coordinate access between separate database connections
//	** within this process, but all of that is handled in memory and the
//	** operating system does not participate.
//	**
//	** This function is a pass-through to fcntl(F_SETLK) if pFile is using
//	** any VFS other than "unix-excl" or if pFile is opened on "unix-excl"
//	** and is read-only.
//	**
//	** Zero is returned if the call completes successfully, or -1 if a call
//	** to fcntl() fails. In this case, errno is set appropriately (by fcntl()).
//	*/
func _unixFileLock(tls *libc.TLS, pFile uintptr, pLock uintptr) (r int32) {
	bp := tls.Alloc(48)
	defer tls.Free(48)
	var pInode uintptr
	var rc int32
	var _ /* lock at bp+0 */ Tflock
	_, _ = pInode, rc
	pInode = (*TunixFile)(unsafe.Pointer(pFile)).FpInode
	if libc.Int32FromUint16((*TunixFile)(unsafe.Pointer(pFile)).FctrlFlags)&(libc.Int32FromInt32(UNIXFILE_EXCL)|libc.Int32FromInt32(UNIXFILE_RDONLY)) == int32(UNIXFILE_EXCL) {
		if libc.Int32FromUint8((*TunixInodeInfo)(unsafe.Pointer(pInode)).FbProcessLock) == 0 {
			/* assert( pInode->nLock==0 ); <-- Not true if unix-excl READONLY used */
			(**(**Tflock)(__ccgo_up(bp))).Fl_whence = SEEK_SET
			(**(**Tflock)(__ccgo_up(bp))).Fl_start = int64(_sqlite3PendingByte + libc.Int32FromInt32(2))
			(**(**Tflock)(__ccgo_up(bp))).Fl_len = int64(SHARED_SIZE)
			(**(**Tflock)(__ccgo_up(bp))).Fl_type = int16(F_WRLCK)
			rc = (*(*func(*libc.TLS, int32, int32, uintptr) int32)(unsafe.Pointer(&struct{ uintptr }{_aSyscall[int32(7)].FpCurrent})))(tls, (*TunixFile)(unsafe.Pointer(pFile)).Fh, int32(F_SETLK), libc.VaList(bp+40, bp))
			if rc < 0 {
				return rc
			}
			(*TunixInodeInfo)(unsafe.Pointer(pInode)).FbProcessLock = uint8(1)
			(*TunixInodeInfo)(unsafe.Pointer(pInode)).FnLock = (*TunixInodeInfo)(unsafe.Pointer(pInode)).FnLock + 1
		} else {
			rc = 0
		}
	} else {
		rc = (*(*func(*libc.TLS, int32, int32, uintptr) int32)(unsafe.Pointer(&struct{ uintptr }{_aSyscall[int32(7)].FpCurrent})))(tls, (*TunixFile)(unsafe.Pointer(pFile)).Fh, int32(F_SETLK), libc.VaList(bp+40, pLock))
	}
	return rc
}

// C documentation
//
//	/*
//	** The xGetLastError() method is designed to return a better
//	** low-level error message when operating-system problems come up
//	** during SQLite operation.  Only the integer return code is currently
//	** used.
//	*/
func _unixGetLastError(tls *libc.TLS, NotUsed uintptr, NotUsed2 int32, NotUsed3 uintptr) (r int32) {
	_ = NotUsed
	_ = NotUsed2
	_ = NotUsed3
	return **(**int32)(__ccgo_up(libc.X__error(tls)))
}

/*
************************ End of sqlite3_vfs methods ***************************
******************************************************************************/

/******************************************************************************
************************** Begin Proxy Locking ********************************
**
** Proxy locking is a "uber-locking-method" in this sense:  It uses the
** other locking methods on secondary lock files.  Proxy locking is a
** meta-layer over top of the primitive locking implemented above.  For
** this reason, the division that implements of proxy locking is deferred
** until late in the file (here) after all of the other I/O methods have
** been defined - so that the primitive locking methods are available
** as services to help with the implementation of proxy locking.
**
****
**
** The default locking schemes in SQLite use byte-range locks on the
** database file to coordinate safe, concurrent access by multiple readers
** and writers [http://sqlite.org/lockingv3.html].  The five file locking
** states (UNLOCKED, PENDING, SHARED, RESERVED, EXCLUSIVE) are implemented
** as POSIX read & write locks over fixed set of locations (via fsctl),
** on AFP and SMB only exclusive byte-range locks are available via fsctl
** with _IOWR('z', 23, struct ByteRangeLockPB2) to track the same 5 states.
** To simulate a F_RDLCK on the shared range, on AFP a randomly selected
** address in the shared range is taken for a SHARED lock, the entire
** shared range is taken for an EXCLUSIVE lock):
**
**      PENDING_BYTE        0x40000000
**      RESERVED_BYTE       0x40000001
**      SHARED_RANGE        0x40000002 -> 0x40000200
**
** This works well on the local file system, but shows a nearly 100x
** slowdown in read performance on AFP because the AFP client disables
** the read cache when byte-range locks are present.  Enabling the read
** cache exposes a cache coherency problem that is present on all OS X
** supported network file systems.  NFS and AFP both observe the
** close-to-open semantics for ensuring cache coherency
** [http://nfs.sourceforge.net/#faq_a8], which does not effectively
** address the requirements for concurrent database access by multiple
** readers and writers
** [http://www.nabble.com/SQLite-on-NFS-cache-coherency-td15655701.html].
**
** To address the performance and cache coherency issues, proxy file locking
** changes the way database access is controlled by limiting access to a
** single host at a time and moving file locks off of the database file
** and onto a proxy file on the local file system.
**
**
** Using proxy locks
** -----------------
**
** C APIs
**
**  sqlite3_file_control(db, dbname, SQLITE_FCNTL_SET_LOCKPROXYFILE,
**                       <proxy_path> | ":auto:");
**  sqlite3_file_control(db, dbname, SQLITE_FCNTL_GET_LOCKPROXYFILE,
**                       &<proxy_path>);
**
**
** SQL pragmas
**
**  PRAGMA [database.]lock_proxy_file=<proxy_path> | :auto:
**  PRAGMA [database.]lock_proxy_file
**
** Specifying ":auto:" means that if there is a conch file with a matching
** host ID in it, the proxy path in the conch file will be used, otherwise
** a proxy path based on the user's temp dir
** (via confstr(_CS_DARWIN_USER_TEMP_DIR,...)) will be used and the
** actual proxy file name is generated from the name and path of the
** database file.  For example:
**
**       For database path "/Users/me/foo.db"
**       The lock path will be "<tmpdir>/sqliteplocks/_Users_me_foo.db:auto:")
**
** Once a lock proxy is configured for a database connection, it can not
** be removed, however it may be switched to a different proxy path via
** the above APIs (assuming the conch file is not being held by another
** connection or process).
**
**
** How proxy locking works
** -----------------------
**
** Proxy file locking relies primarily on two new supporting files:
**
**   *  conch file to limit access to the database file to a single host
**      at a time
**
**   *  proxy file to act as a proxy for the advisory locks normally
**      taken on the database
**
** The conch file - to use a proxy file, sqlite must first "hold the conch"
** by taking an sqlite-style shared lock on the conch file, reading the
** contents and comparing the host's unique host ID (see below) and lock
** proxy path against the values stored in the conch.  The conch file is
** stored in the same directory as the database file and the file name
** is patterned after the database file name as ".<databasename>-conch".
** If the conch file does not exist, or its contents do not match the
** host ID and/or proxy path, then the lock is escalated to an exclusive
** lock and the conch file contents is updated with the host ID and proxy
** path and the lock is downgraded to a shared lock again.  If the conch
** is held by another process (with a shared lock), the exclusive lock
** will fail and SQLITE_BUSY is returned.
**
** The proxy file - a single-byte file used for all advisory file locks
** normally taken on the database file.   This allows for safe sharing
** of the database file for multiple readers and writers on the same
** host (the conch ensures that they all use the same local lock file).
**
** Requesting the lock proxy does not immediately take the conch, it is
** only taken when the first request to lock database file is made.
** This matches the semantics of the traditional locking behavior, where
** opening a connection to a database file does not take a lock on it.
** The shared lock and an open file descriptor are maintained until
** the connection to the database is closed.
**
** The proxy file and the lock file are never deleted so they only need
** to be created the first time they are used.
**
** Configuration options
** ---------------------
**
**  SQLITE_PREFER_PROXY_LOCKING
**
**       Database files accessed on non-local file systems are
**       automatically configured for proxy locking, lock files are
**       named automatically using the same logic as
**       PRAGMA lock_proxy_file=":auto:"
**
**  SQLITE_PROXY_DEBUG
**
**       Enables the logging of error messages during host id file
**       retrieval and creation
**
**  LOCKPROXYDIR
**
**       Overrides the default directory used for lock proxy files that
**       are named automatically via the ":auto:" setting
**
**  SQLITE_DEFAULT_PROXYDIR_PERMISSIONS
**
**       Permissions to use when creating a directory for storing the
**       lock proxy files, only used when LOCKPROXYDIR is not set.
**
**
** As mentioned above, when compiled with SQLITE_PREFER_PROXY_LOCKING,
** setting the environment variable SQLITE_FORCE_PROXY_LOCKING to 1 will
** force proxy locking to be used for every database file opened, and 0
** will force automatic proxy locking to be disabled for all database
** files (explicitly calling the SQLITE_FCNTL_SET_LOCKPROXYFILE pragma or
** sqlite_file_control API is not affected by SQLITE_FORCE_PROXY_LOCKING).
 */

/*
** Proxy locking is only available on MacOSX
 */
/*
** The proxy locking style is intended for use with AFP filesystems.
** And since AFP is only supported on MacOSX, the proxy locking is also
** restricted to MacOSX.
**
**
******************* End of the proxy lock implementation **********************
******************************************************************************/

// C documentation
//
//	/*
//	** The DMS lock has not yet been taken on shm file pShmNode. Attempt to
//	** take it now. Return SQLITE_OK if successful, or an SQLite error
//	** code otherwise.
//	**
//	** If the DMS cannot be locked because this is a readonly_shm=1
//	** connection and no other process already holds a lock, return
//	** SQLITE_READONLY_CANTINIT and set pShmNode->isUnlocked=1.
//	*/
func _unixLockSharedMemory(tls *libc.TLS, pDbFd uintptr, pShmNode uintptr) (r int32) {
	bp := tls.Alloc(48)
	defer tls.Free(48)
	var rc int32
	var _ /* lock at bp+0 */ Tflock
	_ = rc
	rc = SQLITE_OK
	/* Use F_GETLK to determine the locks other processes are holding
	 ** on the DMS byte. If it indicates that another process is holding
	 ** a SHARED lock, then this process may also take a SHARED lock
	 ** and proceed with opening the *-shm file.
	 **
	 ** Or, if no other process is holding any lock, then this process
	 ** is the first to open it. In this case take an EXCLUSIVE lock on the
	 ** DMS byte and truncate the *-shm file to zero bytes in size. Then
	 ** downgrade to a SHARED lock on the DMS byte.
	 **
	 ** If another process is holding an EXCLUSIVE lock on the DMS byte,
	 ** return SQLITE_BUSY to the caller (it will try again). An earlier
	 ** version of this code attempted the SHARED lock at this point. But
	 ** this introduced a subtle race condition: if the process holding
	 ** EXCLUSIVE failed just before truncating the *-shm file, then this
	 ** process might open and use the *-shm file without truncating it.
	 ** And if the *-shm file has been corrupted by a power failure or
	 ** system crash, the database itself may also become corrupt.  */
	(**(**Tflock)(__ccgo_up(bp))).Fl_whence = SEEK_SET
	(**(**Tflock)(__ccgo_up(bp))).Fl_start = int64((libc.Int32FromInt32(22)+libc.Int32FromInt32(SQLITE_SHM_NLOCK))*libc.Int32FromInt32(4) + libc.Int32FromInt32(SQLITE_SHM_NLOCK))
	(**(**Tflock)(__ccgo_up(bp))).Fl_len = int64(1)
	(**(**Tflock)(__ccgo_up(bp))).Fl_type = int16(F_WRLCK)
	if (*(*func(*libc.TLS, int32, int32, uintptr) int32)(unsafe.Pointer(&struct{ uintptr }{_aSyscall[int32(7)].FpCurrent})))(tls, (*TunixShmNode)(unsafe.Pointer(pShmNode)).FhShm, int32(F_GETLK), libc.VaList(bp+40, bp)) != 0 {
		rc = libc.Int32FromInt32(SQLITE_IOERR) | libc.Int32FromInt32(15)<<libc.Int32FromInt32(8)
	} else {
		if int32((**(**Tflock)(__ccgo_up(bp))).Fl_type) == int32(F_UNLCK) {
			if (*TunixShmNode)(unsafe.Pointer(pShmNode)).FisReadonly != 0 {
				(*TunixShmNode)(unsafe.Pointer(pShmNode)).FisUnlocked = uint8(1)
				rc = libc.Int32FromInt32(SQLITE_READONLY) | libc.Int32FromInt32(5)<<libc.Int32FromInt32(8)
			} else {
				rc = _unixShmSystemLock(tls, pDbFd, int32(F_WRLCK), (libc.Int32FromInt32(22)+libc.Int32FromInt32(SQLITE_SHM_NLOCK))*libc.Int32FromInt32(4)+libc.Int32FromInt32(SQLITE_SHM_NLOCK), int32(1))
				/* The first connection to attach must truncate the -shm file.  We
				 ** truncate to 3 bytes (an arbitrary small number, less than the
				 ** -shm header size) rather than 0 as a system debugging aid, to
				 ** help detect if a -shm file truncation is legitimate or is the work
				 ** or a rogue process. */
				if rc == SQLITE_OK && _robust_ftruncate(tls, (*TunixShmNode)(unsafe.Pointer(pShmNode)).FhShm, int64(3)) != 0 {
					rc = _unixLogErrorAtLine(tls, libc.Int32FromInt32(SQLITE_IOERR)|libc.Int32FromInt32(18)<<libc.Int32FromInt32(8), __ccgo_ts+3576, (*TunixShmNode)(unsafe.Pointer(pShmNode)).FzFilename, int32(45100))
				}
			}
		} else {
			if int32((**(**Tflock)(__ccgo_up(bp))).Fl_type) == int32(F_WRLCK) {
				rc = int32(SQLITE_BUSY)
			}
		}
	}
	if rc == SQLITE_OK {
		rc = _unixShmSystemLock(tls, pDbFd, int32(F_RDLCK), (libc.Int32FromInt32(22)+libc.Int32FromInt32(SQLITE_SHM_NLOCK))*libc.Int32FromInt32(4)+libc.Int32FromInt32(SQLITE_SHM_NLOCK), int32(1))
	}
	return rc
}

// C documentation
//
//	/*
//	** Apply posix advisory locks for all bytes from ofst through ofst+n-1.
//	**
//	** Locks block if the mask is exactly UNIX_SHM_C and are non-blocking
//	** otherwise.
//	*/
func _unixShmSystemLock(tls *libc.TLS, pFile uintptr, lockType int32, ofst int32, n int32) (r int32) {
	bp := tls.Alloc(48)
	defer tls.Free(48)
	var pShmNode uintptr
	var rc, res int32
	var _ /* f at bp+0 */ Tflock
	_, _, _ = pShmNode, rc, res /* The posix advisory locking structure */
	rc = SQLITE_OK              /* Result code form fcntl() */
	pShmNode = (*TunixInodeInfo)(unsafe.Pointer((*TunixFile)(unsafe.Pointer(pFile)).FpInode)).FpShmNode
	/* Assert that the parameters are within expected range and that the
	 ** correct mutex or mutexes are held. */
	if ofst == (libc.Int32FromInt32(22)+libc.Int32FromInt32(SQLITE_SHM_NLOCK))*libc.Int32FromInt32(4)+libc.Int32FromInt32(SQLITE_SHM_NLOCK) {
	} else {
	}
	/* Shared locks never span more than one byte */
	/* Locks are within range */
	if (*TunixShmNode)(unsafe.Pointer(pShmNode)).FhShm >= 0 {
		/* Initialize the locking parameters */
		(**(**Tflock)(__ccgo_up(bp))).Fl_type = int16(lockType)
		(**(**Tflock)(__ccgo_up(bp))).Fl_whence = SEEK_SET
		(**(**Tflock)(__ccgo_up(bp))).Fl_start = int64(ofst)
		(**(**Tflock)(__ccgo_up(bp))).Fl_len = int64(n)
		res = (*(*func(*libc.TLS, int32, int32, uintptr) int32)(unsafe.Pointer(&struct{ uintptr }{_aSyscall[int32(7)].FpCurrent})))(tls, (*TunixShmNode)(unsafe.Pointer(pShmNode)).FhShm, int32(F_SETLK), libc.VaList(bp+40, bp))
		if res == -int32(1) {
			rc = int32(SQLITE_BUSY)
		}
	}
	/* Do debug tracing */
	return rc
}

// C documentation
//
//	/*
//	** Initialize first two members of azTempDirs[] array.
//	*/
func _unixTempFileInit(tls *libc.TLS) {
	_azTempDirs[0] = libc.Xgetenv(tls, __ccgo_ts+4022)
	_azTempDirs[int32(1)] = libc.Xgetenv(tls, __ccgo_ts+4036)
}

// C documentation
//
//	/*
//	** These functions are called when a transaction opened by the database
//	** handle associated with the VM passed as an argument is about to be
//	** committed. If there are outstanding foreign key constraint violations
//	** return an error code. Otherwise, SQLITE_OK.
//	**
//	** If there are outstanding FK violations and this function returns
//	** non-zero, set the result of the VM to SQLITE_CONSTRAINT_FOREIGNKEY
//	** and write an error message to it.
//	*/
func _vdbeFkError(tls *libc.TLS, p uintptr) (r int32) {
	(*TVdbe)(unsafe.Pointer(p)).Frc = libc.Int32FromInt32(SQLITE_CONSTRAINT) | libc.Int32FromInt32(3)<<libc.Int32FromInt32(8)
	(*TVdbe)(unsafe.Pointer(p)).FerrorAction = uint8(OE_Abort)
	_sqlite3VdbeError(tls, p, __ccgo_ts+5394, 0)
	if libc.Int32FromUint8((*TVdbe)(unsafe.Pointer(p)).FprepFlags)&int32(SQLITE_PREPARE_SAVESQL) == 0 {
		return int32(SQLITE_ERROR)
	}
	return libc.Int32FromInt32(SQLITE_CONSTRAINT) | libc.Int32FromInt32(3)<<libc.Int32FromInt32(8)
}

// C documentation
//
//	/*
//	** Check on a Vdbe to make sure it has not been finalized.  Log
//	** an error and return true if it has been finalized (or is otherwise
//	** invalid).  Return false if it is ok.
//	*/
func _vdbeSafety(tls *libc.TLS, p uintptr) (r int32) {
	if (*TVdbe)(unsafe.Pointer(p)).Fdb == uintptr(0) {
		Xsqlite3_log(tls, int32(SQLITE_MISUSE), __ccgo_ts+5507, 0)
		return int32(1)
	} else {
		return 0
	}
	return r
}

func _vdbeSafetyNotNull(tls *libc.TLS, p uintptr) (r int32) {
	if p == uintptr(0) {
		Xsqlite3_log(tls, int32(SQLITE_MISUSE), __ccgo_ts+5552, 0)
		return int32(1)
	} else {
		return _vdbeSafety(tls, p)
	}
	return r
}

// C documentation
//
//	/*
//	** If the WAL file is currently larger than nMax bytes in size, truncate
//	** it to exactly nMax bytes. If an error occurs while doing so, ignore it.
//	*/
func _walLimitSize(tls *libc.TLS, pWal uintptr, nMax Ti64) {
	bp := tls.Alloc(32)
	defer tls.Free(32)
	var rx int32
	var _ /* sz at bp+0 */ Ti64
	_ = rx
	_sqlite3BeginBenignMalloc(tls)
	rx = _sqlite3OsFileSize(tls, (*TWal)(unsafe.Pointer(pWal)).FpWalFd, bp)
	if rx == SQLITE_OK && **(**Ti64)(__ccgo_up(bp)) > nMax {
		rx = _sqlite3OsTruncate(tls, (*TWal)(unsafe.Pointer(pWal)).FpWalFd, nMax)
	}
	_sqlite3EndBenignMalloc(tls)
	if rx != 0 {
		Xsqlite3_log(tls, rx, __ccgo_ts+4315, libc.VaList(bp+16, (*TWal)(unsafe.Pointer(pWal)).FzWalName))
	}
}

func _windowFind(tls *libc.TLS, pParse uintptr, pList uintptr, zName uintptr) (r uintptr) {
	bp := tls.Alloc(16)
	defer tls.Free(16)
	var p uintptr
	_ = p
	p = pList
	for {
		if !(p != 0) {
			break
		}
		if _sqlite3StrICmp(tls, (*TWindow)(unsafe.Pointer(p)).FzName, zName) == 0 {
			break
		}
		goto _1
	_1:
		;
		p = (*TWindow)(unsafe.Pointer(p)).FpNextWin
	}
	if p == uintptr(0) {
		_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+24278, libc.VaList(bp+8, zName))
	}
	return p
}

// C documentation
//
//	/*
//	** The following routine is called if the stack overflows.
//	*/
func _yyStackOverflow(tls *libc.TLS, yypParser uintptr) {
	var pParse uintptr
	_ = pParse
	pParse = (*TyyParser)(unsafe.Pointer(yypParser)).FpParse
	for (*TyyParser)(unsafe.Pointer(yypParser)).Fyytos > (*TyyParser)(unsafe.Pointer(yypParser)).Fyystack {
		_yy_pop_parser_stack(tls, yypParser)
	}
	/* Here code is inserted which will execute if the parser
	 ** stack every overflows */
	/******** Begin %stack_overflow code ******************************************/
	if (*TParse)(unsafe.Pointer(pParse)).FnErr == 0 {
		_sqlite3ErrorMsg(tls, pParse, __ccgo_ts+24981, 0)
	}
	/******** End %stack_overflow code ********************************************/
	/* Suppress warning about unused %extra_argument var */
	(*TyyParser)(unsafe.Pointer(yypParser)).FpParse = pParse
}

/*
** Print tracing information for a SHIFT action
 */

type accmode_t = Taccmode_t

type c_caddr_t = Tc_caddr_t

type cap_ioctl_t = Tcap_ioctl_t

type constraint_handler_t = Tconstraint_handler_t

type cpulevel_t = Tcpulevel_t

type cpusetid_t = Tcpusetid_t

type cpuwhich_t = Tcpuwhich_t

type critical_t = Tcritical_t

type crypt_data = Tcrypt_data

type dl_serinfo = Tdl_serinfo

type dl_serpath = Tdl_serpath

type dlfunc_t = Tdlfunc_t

const fds_bits = 0

type fflags_t = Tfflags_t

type fiobmap2_arg = Tfiobmap2_arg

type fiodgname_arg = Tfiodgname_arg

type kpaddr_t = Tkpaddr_t

type ksize_t = Tksize_t

type kssize_t = Tkssize_t

type kvaddr_t = Tkvaddr_t

type pthread_addr_t = Tpthread_addr_t

type pthread_once = Tpthread_once

type pthread_startroutine_t = Tpthread_startroutine_t

type rman_res_t = Trman_res_t

type sbintime_t = Tsbintime_t

type shm_largepage_conf = Tshm_largepage_conf

/*
** Try to determine if gethostuuid() is available based on standard
** macros.  This might sometimes compute the wrong value for some
** obscure platforms.  For those cases, simply compile with one of
** the following:
**
**    -DHAVE_GETHOSTUUID=0
**    -DHAVE_GETHOSTUUID=1
**
** None if this matters except when building on Apple products with
** -DSQLITE_ENABLE_LOCKING_STYLE.
 */

/*
** Allowed values of unixFile.fsFlags
 */

/*
** If we are to be thread-safe, include the pthreads header.
 */
/* # include <pthread.h> */

/*
** Default permissions when creating a new file
 */

/*
** Default permissions when creating auto proxy dir
 */

/*
** Maximum supported path-length.
 */

/*
** Maximum supported symbolic links
 */

/*
** Remove and stub certain info for WASI (WebAssembly System
** Interface) builds.
 */

/* Always cast the getpid() return type for compatibility with
** kernel modules in VxWorks. */

/*
** Only set the lastErrno if the error code is a real error and not
** a normal expected return code of SQLITE_BUSY or SQLITE_OK
 */

type spacectl_range = Tspacectl_range

type syscallarg_t = Tsyscallarg_t

type t__accmode_t = int32

type t__char16_t = uint16

type t__char32_t = uint32

type t__cpulevel_t = int32

type t__cpusetid_t = int32

type t__cpuwhich_t = int32

type t__ct_rune_t = int32

type t__daddr_t = int64

type t__dev_t = uint64

type t__dlfunc_arg = struct {
	F__dlfunc_dummy int32
}

type t__fflags_t = uint32

type t__id_t = int64

type t__lwpid_t = int32

type t__mode_t = uint16

type t__mqd_t = uintptr

type t__nl_item = int32

type t__nlink_t = uint64

type t__off64_t = int64

type t__rlim_t = int64

type t__rman_res_t = uint64

type t__sbintime_t = int64

type t__sigset = t__sigset_t

type t__sigset_t = struct {
	F__bits [4]t__uint32_t
}

type t__timer_t = uintptr

type u_register_t = Tu_register_t

type uint_fast64_t = Tuint_fast64_t

/* GNU and Darwin define this and people seem to think it's portable */

/* Limits of wchar_t. */

/* ISO/IEC 9899:2011 K.3.4.4 */

/*
** The following macros are used to cast pointers to integers and
** integers to pointers.  The way you do this varies from one compiler
** to the next, so we have developed the following set of #if statements
** to generate appropriate macros for a wide range of compilers.
**
** The correct "ANSI" way to do this is to use the intptr_t type.
** Unfortunately, that typedef is not available on all compilers, or
** if it is available, it requires an #include of specific headers
** that vary from one machine to the next.
**
** Ticket #3860:  The llvm-gcc-4.2 compiler from Apple chokes on
** the ((void*)&((char*)0)[X]) construct.  But MSVC chokes on ((void*)(X)).
** So we have to define the macros in different ways depending on the
** compiler.
 */

/*
** Macros to hint to the compiler that a function should or should not be
** inlined.
 */

/*
** Make sure that the compiler intrinsics we desire are enabled when
** compiling with an appropriate version of MSVC unless prevented by
** the SQLITE_DISABLE_INTRINSIC define.
 */

/*
** Enable SQLITE_USE_SEH by default on MSVC builds.  Only omit
** SEH support if the -DSQLITE_OMIT_SEH option is given.
 */

/*
** Enable SQLITE_DIRECT_OVERFLOW_READ, unless the build explicitly
** disables it using -DSQLITE_DIRECT_OVERFLOW_READ=0
 */
/* In all other cases, enable */

/*
** The SQLITE_THREADSAFE macro must be defined as 0, 1, or 2.
** 0 means mutexes are permanently disable and the library is never
** threadsafe.  1 means the library is serialized which is the highest
** level of threadsafety.  2 means the library is multithreaded - multiple
** threads can use SQLite as long as no two threads try to use the same
** database connection at the same time.
**
** Older versions of SQLite used an optional THREADSAFE macro.
** We support that for legacy.
**
** To ensure that the correct value of "THREADSAFE" is reported when querying
** for compile-time options at runtime (e.g. "PRAGMA compile_options"), this
** logic is partially replicated in ctime.c. If it is updated here, it should
** also be updated there.
 */

/*
** Powersafe overwrite is on by default.  But can be turned off using
** the -DSQLITE_POWERSAFE_OVERWRITE=0 command-line option.
 */

/*
** EVIDENCE-OF: R-25715-37072 Memory allocation statistics are enabled by
** default unless SQLite is compiled with SQLITE_DEFAULT_MEMSTATUS=0 in
** which case memory allocation statistics are disabled by default.
 */

/*
** Exactly one of the following macros must be defined in order to
** specify which memory allocation subsystem to use.
**
**     SQLITE_SYSTEM_MALLOC          // Use normal system malloc()
**     SQLITE_WIN32_MALLOC           // Use Win32 native heap API
**     SQLITE_ZERO_MALLOC            // Use a stub allocator that always fails
**     SQLITE_MEMDEBUG               // Debugging version of system malloc()
**
** On Windows, if the SQLITE_WIN32_MALLOC_VALIDATE macro is defined and the
** assert() macro is enabled, each call into the Win32 native heap subsystem
** will cause HeapValidate to be called.  If heap validation should fail, an
** assertion will be triggered.
**
** If none of the above are defined, then set SQLITE_SYSTEM_MALLOC as
** the default.
 */

/*
** If SQLITE_MALLOC_SOFT_LIMIT is not zero, then try to keep the
** sizes of memory allocations below this value where possible.
 */

/*
** We need to define _XOPEN_SOURCE as follows in order to enable
** recursive mutexes on most Unix systems and fchmod() on OpenBSD.
** But _XOPEN_SOURCE define causes problems for Mac OS X, so omit
** it.
 */

/*
** NDEBUG and SQLITE_DEBUG are opposites.  It should always be true that
** defined(NDEBUG)==!defined(SQLITE_DEBUG).  If this is not currently true,
** make it true by defining or undefining NDEBUG.
**
** Setting NDEBUG makes the code smaller and faster by disabling the
** assert() statements in the code.  So we want the default action
** to be for NDEBUG to be set and NDEBUG to be undefined only if SQLITE_DEBUG
** is set.  Thus NDEBUG becomes an opt-in rather than an opt-out
** feature.
 */

/*
** Enable SQLITE_ENABLE_EXPLAIN_COMMENTS if SQLITE_DEBUG is turned on.
 */

/*
** The testcase() macro is used to aid in coverage testing.  When
** doing coverage testing, the condition inside the argument to
** testcase() must be evaluated both true and false in order to
** get full branch coverage.  The testcase() macro is inserted
** to help ensure adequate test coverage in places where simple
** condition/decision coverage is inadequate.  For example, testcase()
** can be used to make sure boundary values are tested.  For
** bitmask tests, testcase() can be used to make sure each bit
** is significant and used at least once.  On switch statements
** where multiple cases go to the same block of code, testcase()
** can insure that all cases are evaluated.
 */

/*
** The TESTONLY macro is used to enclose variable declarations or
** other bits of code that are needed to support the arguments
** within testcase() and assert() macros.
 */

/*
** Sometimes we need a small amount of code such as a variable initialization
** to setup for a later assert() statement.  We do not want this code to
** appear when assert() is disabled.  The following macro is therefore
** used to contain that setup code.  The "VVA" acronym stands for
** "Verification, Validation, and Accreditation".  In other words, the
** code within VVA_ONLY() will only run during verification processes.
 */

/*
** Disable ALWAYS() and NEVER() (make them pass-throughs) for coverage
** and mutation testing
 */

/*
** The ALWAYS and NEVER macros surround boolean expressions which
** are intended to always be true or false, respectively.  Such
** expressions could be omitted from the code completely.  But they
** are included in a few cases in order to enhance the resilience
** of SQLite to unexpected behavior - to make the code "self-healing"
** or "ductile" rather than being "brittle" and crashing at the first
** hint of unplanned behavior.
**
** In other words, ALWAYS and NEVER are added for defensive code.
**
** When doing coverage testing ALWAYS and NEVER are hard-coded to
** be true and false so that the unreachable code they specify will
** not be counted as untested code.
 */

/*
** Some conditionals are optimizations only.  In other words, if the
** conditionals are replaced with a constant 1 (true) or 0 (false) then
** the correct answer is still obtained, though perhaps not as quickly.
**
** The following macros mark these optimizations conditionals.
 */

/*
** Some malloc failures are only possible if SQLITE_TEST_REALLOC_STRESS is
** defined.  We need to defend against those failures when testing with
** SQLITE_TEST_REALLOC_STRESS, but we don't want the unreachable branches
** during a normal build.  The following macro can be used to disable tests
** that are always false except when SQLITE_TEST_REALLOC_STRESS is set.
 */

/*
** Declarations used for tracing the operating system interfaces.
 */

/*
** Is the sqlite3ErrName() function needed in the build?  Currently,
** it is needed by "mutex_w32.c" (when debugging), "os_win.c" (when
** OSTRACE is enabled), and by several "test*.c" files (which are
** compiled using SQLITE_TEST).
 */

/*
** SQLITE_ENABLE_EXPLAIN_COMMENTS is incompatible with SQLITE_OMIT_EXPLAIN
 */

/*
** SQLITE_OMIT_VIRTUALTABLE implies SQLITE_OMIT_ALTERTABLE
 */

/*
** Return true (non-zero) if the input is an integer that is too large
** to fit in 32-bits.  This macro is used inside of various testcase()
** macros to verify that we have tested SQLite for large-file support.
 */

/*
** The macro unlikely() is a hint that surrounds a boolean
** expression that is usually false.  Macro likely() surrounds
** a boolean expression that is usually true.  These hints could,
** in theory, be used by the compiler to generate better code, but
** currently they are just comments for human readers.
 */

/************** Include hash.h in the middle of sqliteInt.h ******************/
/************** Begin file hash.h ********************************************/
/*
** 2001 September 22
**
** The author disclaims copyright to this source code.  In place of
** a legal notice, here is a blessing:
**
**    May you do good and not evil.
**    May you find forgiveness for yourself and forgive others.
**    May you share freely, never taking more than you give.
**
*************************************************************************
** This is the header file for the generic hash-table implementation
** used in SQLite.
 */

type vm_ooffset_t = Tvm_ooffset_t

type vm_paddr_t = Tvm_paddr_t

type vm_pindex_t = Tvm_pindex_t
