When reading variable-length unformatted records, the external I/O library frames the input buffer so that the footer of the previous record remains in frame. This is done so that a BACKSPACE doesn't have to do an extra read to get the length of the previous record before repositioning over it. When switching from input to output to overwrite or append new records after reading any, it is necessary to undo this framing of the last word in the previous record, since the new output isn't going to define it in the buffer and it'll be overwritten in the filesystem with garbage.
343 lines
11 KiB
C++
343 lines
11 KiB
C++
//===-- runtime/external-unit.cpp -----------------------------------------===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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//
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// Implemenation of ExternalFileUnit for RT_USE_PSEUDO_FILE_UNIT=0.
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//
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//===----------------------------------------------------------------------===//
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#include "io-error.h"
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#include "lock.h"
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#include "tools.h"
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#include "unit-map.h"
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#include "unit.h"
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// NOTE: the header files above may define OpenMP declare target
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// variables, so they have to be included unconditionally
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// so that the offload entries are consistent between host and device.
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#if !defined(RT_USE_PSEUDO_FILE_UNIT)
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#include <cstdio>
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#include <limits>
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namespace Fortran::runtime::io {
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// The per-unit data structures are created on demand so that Fortran I/O
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// should work without a Fortran main program.
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static Lock unitMapLock;
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static Lock createOpenLock;
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static UnitMap *unitMap{nullptr};
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void FlushOutputOnCrash(const Terminator &terminator) {
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if (!defaultOutput && !errorOutput) {
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return;
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}
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IoErrorHandler handler{terminator};
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handler.HasIoStat(); // prevent nested crash if flush has error
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CriticalSection critical{unitMapLock};
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if (defaultOutput) {
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defaultOutput->FlushOutput(handler);
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}
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if (errorOutput) {
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errorOutput->FlushOutput(handler);
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}
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}
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ExternalFileUnit *ExternalFileUnit::LookUp(int unit) {
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return GetUnitMap().LookUp(unit);
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}
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ExternalFileUnit *ExternalFileUnit::LookUpOrCreate(
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int unit, const Terminator &terminator, bool &wasExtant) {
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return GetUnitMap().LookUpOrCreate(unit, terminator, wasExtant);
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}
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ExternalFileUnit *ExternalFileUnit::LookUpOrCreateAnonymous(int unit,
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Direction dir, Fortran::common::optional<bool> isUnformatted,
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const Terminator &terminator) {
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// Make sure that the returned anonymous unit has been opened
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// not just created in the unitMap.
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CriticalSection critical{createOpenLock};
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bool exists{false};
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ExternalFileUnit *result{
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GetUnitMap().LookUpOrCreate(unit, terminator, exists)};
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if (result && !exists) {
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IoErrorHandler handler{terminator};
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result->OpenAnonymousUnit(
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dir == Direction::Input ? OpenStatus::Unknown : OpenStatus::Replace,
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Action::ReadWrite, Position::Rewind, Convert::Unknown, handler);
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result->isUnformatted = isUnformatted;
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}
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return result;
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}
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ExternalFileUnit *ExternalFileUnit::LookUp(
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const char *path, std::size_t pathLen) {
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return GetUnitMap().LookUp(path, pathLen);
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}
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ExternalFileUnit &ExternalFileUnit::CreateNew(
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int unit, const Terminator &terminator) {
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bool wasExtant{false};
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ExternalFileUnit *result{
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GetUnitMap().LookUpOrCreate(unit, terminator, wasExtant)};
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RUNTIME_CHECK(terminator, result && !wasExtant);
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return *result;
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}
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ExternalFileUnit *ExternalFileUnit::LookUpForClose(int unit) {
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return GetUnitMap().LookUpForClose(unit);
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}
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ExternalFileUnit &ExternalFileUnit::NewUnit(
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const Terminator &terminator, bool forChildIo) {
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ExternalFileUnit &unit{GetUnitMap().NewUnit(terminator)};
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unit.createdForInternalChildIo_ = forChildIo;
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return unit;
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}
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bool ExternalFileUnit::OpenUnit(Fortran::common::optional<OpenStatus> status,
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Fortran::common::optional<Action> action, Position position,
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OwningPtr<char> &&newPath, std::size_t newPathLength, Convert convert,
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IoErrorHandler &handler) {
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if (convert == Convert::Unknown) {
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convert = executionEnvironment.conversion;
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}
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swapEndianness_ = convert == Convert::Swap ||
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(convert == Convert::LittleEndian && !isHostLittleEndian) ||
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(convert == Convert::BigEndian && isHostLittleEndian);
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bool impliedClose{false};
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if (IsConnected()) {
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bool isSamePath{newPath.get() && path() && pathLength() == newPathLength &&
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std::memcmp(path(), newPath.get(), newPathLength) == 0};
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if (status && *status != OpenStatus::Old && isSamePath) {
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handler.SignalError("OPEN statement for connected unit may not have "
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"explicit STATUS= other than 'OLD'");
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return impliedClose;
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}
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if (!newPath.get() || isSamePath) {
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// OPEN of existing unit, STATUS='OLD' or unspecified, not new FILE=
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newPath.reset();
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return impliedClose;
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}
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// Otherwise, OPEN on open unit with new FILE= implies CLOSE
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DoImpliedEndfile(handler);
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FlushOutput(handler);
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TruncateFrame(0, handler);
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Close(CloseStatus::Keep, handler);
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impliedClose = true;
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}
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if (newPath.get() && newPathLength > 0) {
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if (const auto *already{
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GetUnitMap().LookUp(newPath.get(), newPathLength)}) {
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handler.SignalError(IostatOpenAlreadyConnected,
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"OPEN(UNIT=%d,FILE='%.*s'): file is already connected to unit %d",
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unitNumber_, static_cast<int>(newPathLength), newPath.get(),
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already->unitNumber_);
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return impliedClose;
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}
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}
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set_path(std::move(newPath), newPathLength);
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Open(status.value_or(OpenStatus::Unknown), action, position, handler);
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auto totalBytes{knownSize()};
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if (access == Access::Direct) {
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if (!openRecl) {
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handler.SignalError(IostatOpenBadRecl,
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"OPEN(UNIT=%d,ACCESS='DIRECT'): record length is not known",
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unitNumber());
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} else if (*openRecl <= 0) {
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handler.SignalError(IostatOpenBadRecl,
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"OPEN(UNIT=%d,ACCESS='DIRECT',RECL=%jd): record length is invalid",
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unitNumber(), static_cast<std::intmax_t>(*openRecl));
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} else if (totalBytes && (*totalBytes % *openRecl != 0)) {
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handler.SignalError(IostatOpenBadRecl,
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"OPEN(UNIT=%d,ACCESS='DIRECT',RECL=%jd): record length is not an "
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"even divisor of the file size %jd",
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unitNumber(), static_cast<std::intmax_t>(*openRecl),
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static_cast<std::intmax_t>(*totalBytes));
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}
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recordLength = openRecl;
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}
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endfileRecordNumber.reset();
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currentRecordNumber = 1;
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if (totalBytes && access == Access::Direct && openRecl.value_or(0) > 0) {
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endfileRecordNumber = 1 + (*totalBytes / *openRecl);
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}
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if (position == Position::Append) {
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if (totalBytes) {
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frameOffsetInFile_ = *totalBytes;
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}
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if (access != Access::Stream) {
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if (!endfileRecordNumber) {
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// Fake it so that we can backspace relative from the end
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endfileRecordNumber = std::numeric_limits<std::int64_t>::max() - 2;
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}
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currentRecordNumber = *endfileRecordNumber;
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}
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}
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return impliedClose;
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}
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void ExternalFileUnit::OpenAnonymousUnit(
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Fortran::common::optional<OpenStatus> status,
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Fortran::common::optional<Action> action, Position position,
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Convert convert, IoErrorHandler &handler) {
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// I/O to an unconnected unit reads/creates a local file, e.g. fort.7
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std::size_t pathMaxLen{32};
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auto path{SizedNew<char>{handler}(pathMaxLen)};
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std::snprintf(path.get(), pathMaxLen, "fort.%d", unitNumber_);
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OpenUnit(status, action, position, std::move(path), std::strlen(path.get()),
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convert, handler);
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}
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void ExternalFileUnit::CloseUnit(CloseStatus status, IoErrorHandler &handler) {
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DoImpliedEndfile(handler);
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FlushOutput(handler);
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Close(status, handler);
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}
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void ExternalFileUnit::DestroyClosed() {
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GetUnitMap().DestroyClosed(*this); // destroys *this
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}
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Iostat ExternalFileUnit::SetDirection(Direction direction) {
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if (direction == Direction::Input) {
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if (mayRead()) {
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direction_ = Direction::Input;
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return IostatOk;
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} else {
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return IostatReadFromWriteOnly;
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}
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} else {
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if (mayWrite()) {
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if (direction_ == Direction::Input) {
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// Don't retain any input data from previous record, like a
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// variable-length unformatted record footer, in the frame,
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// since we're going start writing frames.
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frameOffsetInFile_ += recordOffsetInFrame_;
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recordOffsetInFrame_ = 0;
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}
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direction_ = Direction::Output;
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return IostatOk;
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} else {
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return IostatWriteToReadOnly;
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}
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}
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}
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UnitMap &ExternalFileUnit::CreateUnitMap() {
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Terminator terminator{__FILE__, __LINE__};
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IoErrorHandler handler{terminator};
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UnitMap &newUnitMap{*New<UnitMap>{terminator}().release()};
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bool wasExtant{false};
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ExternalFileUnit &out{*newUnitMap.LookUpOrCreate(
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FORTRAN_DEFAULT_OUTPUT_UNIT, terminator, wasExtant)};
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RUNTIME_CHECK(terminator, !wasExtant);
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out.Predefine(1);
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handler.SignalError(out.SetDirection(Direction::Output));
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out.isUnformatted = false;
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defaultOutput = &out;
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ExternalFileUnit &in{*newUnitMap.LookUpOrCreate(
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FORTRAN_DEFAULT_INPUT_UNIT, terminator, wasExtant)};
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RUNTIME_CHECK(terminator, !wasExtant);
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in.Predefine(0);
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handler.SignalError(in.SetDirection(Direction::Input));
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in.isUnformatted = false;
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defaultInput = ∈
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ExternalFileUnit &error{
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*newUnitMap.LookUpOrCreate(FORTRAN_ERROR_UNIT, terminator, wasExtant)};
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RUNTIME_CHECK(terminator, !wasExtant);
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error.Predefine(2);
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handler.SignalError(error.SetDirection(Direction::Output));
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error.isUnformatted = false;
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errorOutput = &error;
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return newUnitMap;
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}
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// A back-up atexit() handler for programs that don't terminate with a main
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// program END or a STOP statement or other Fortran-initiated program shutdown,
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// such as programs with a C main() that terminate normally. It flushes all
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// external I/O units. It is registered once the first time that any external
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// I/O is attempted.
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static void CloseAllExternalUnits() {
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IoErrorHandler handler{"Fortran program termination"};
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ExternalFileUnit::CloseAll(handler);
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}
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UnitMap &ExternalFileUnit::GetUnitMap() {
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if (unitMap) {
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return *unitMap;
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}
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{
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CriticalSection critical{unitMapLock};
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if (unitMap) {
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return *unitMap;
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}
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unitMap = &CreateUnitMap();
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}
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std::atexit(CloseAllExternalUnits);
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return *unitMap;
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}
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void ExternalFileUnit::CloseAll(IoErrorHandler &handler) {
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CriticalSection critical{unitMapLock};
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if (unitMap) {
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unitMap->CloseAll(handler);
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FreeMemoryAndNullify(unitMap);
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}
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defaultOutput = nullptr;
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defaultInput = nullptr;
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errorOutput = nullptr;
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}
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void ExternalFileUnit::FlushAll(IoErrorHandler &handler) {
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CriticalSection critical{unitMapLock};
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if (unitMap) {
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unitMap->FlushAll(handler);
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}
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}
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int ExternalFileUnit::GetAsynchronousId(IoErrorHandler &handler) {
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if (!mayAsynchronous()) {
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handler.SignalError(IostatBadAsynchronous);
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return -1;
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} else {
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for (int j{0}; 64 * j < maxAsyncIds; ++j) {
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if (auto least{asyncIdAvailable_[j].LeastElement()}) {
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asyncIdAvailable_[j].reset(*least);
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return 64 * j + static_cast<int>(*least);
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}
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}
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handler.SignalError(IostatTooManyAsyncOps);
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return -1;
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}
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}
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bool ExternalFileUnit::Wait(int id) {
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if (static_cast<std::size_t>(id) >= maxAsyncIds ||
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asyncIdAvailable_[id / 64].test(id % 64)) {
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return false;
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} else {
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if (id == 0) { // means "all IDs"
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for (int j{0}; 64 * j < maxAsyncIds; ++j) {
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asyncIdAvailable_[j].set();
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}
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asyncIdAvailable_[0].reset(0);
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} else {
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asyncIdAvailable_[id / 64].set(id % 64);
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}
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return true;
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}
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}
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} // namespace Fortran::runtime::io
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#endif // !defined(RT_USE_PSEUDO_FILE_UNIT)
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