зеркало из https://github.com/microsoft/clang-1.git
1662 строки
58 KiB
C++
1662 строки
58 KiB
C++
//===--- Lexer.cpp - C Language Family Lexer ------------------------------===//
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//
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// The LLVM Compiler Infrastructure
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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//
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// This file implements the Lexer and Token interfaces.
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//
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//===----------------------------------------------------------------------===//
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//
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// TODO: GCC Diagnostics emitted by the lexer:
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// PEDWARN: (form feed|vertical tab) in preprocessing directive
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//
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// Universal characters, unicode, char mapping:
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// WARNING: `%.*s' is not in NFKC
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// WARNING: `%.*s' is not in NFC
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//
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// Other:
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// TODO: Options to support:
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// -fexec-charset,-fwide-exec-charset
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//
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//===----------------------------------------------------------------------===//
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#include "clang/Lex/Lexer.h"
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#include "clang/Lex/Preprocessor.h"
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#include "clang/Basic/Diagnostic.h"
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#include "clang/Basic/SourceManager.h"
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#include "llvm/Support/Compiler.h"
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#include "llvm/Support/MemoryBuffer.h"
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#include <cctype>
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using namespace clang;
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static void InitCharacterInfo();
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//===----------------------------------------------------------------------===//
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// Token Class Implementation
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//===----------------------------------------------------------------------===//
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/// isObjCAtKeyword - Return true if we have an ObjC keyword identifier.
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bool Token::isObjCAtKeyword(tok::ObjCKeywordKind objcKey) const {
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return is(tok::identifier) &&
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getIdentifierInfo()->getObjCKeywordID() == objcKey;
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}
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/// getObjCKeywordID - Return the ObjC keyword kind.
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tok::ObjCKeywordKind Token::getObjCKeywordID() const {
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IdentifierInfo *specId = getIdentifierInfo();
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return specId ? specId->getObjCKeywordID() : tok::objc_not_keyword;
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}
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/// isNamedIdentifier - Return true if this token is a ppidentifier with the
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/// specified name. For example, tok.isNamedIdentifier("this").
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bool Token::isNamedIdentifier(const char *Name) const {
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return IdentInfo && !strcmp(IdentInfo->getName(), Name);
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}
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//===----------------------------------------------------------------------===//
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// Lexer Class Implementation
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//===----------------------------------------------------------------------===//
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/// Lexer constructor - Create a new lexer object for the specified buffer
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/// with the specified preprocessor managing the lexing process. This lexer
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/// assumes that the associated file buffer and Preprocessor objects will
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/// outlive it, so it doesn't take ownership of either of them.
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Lexer::Lexer(SourceLocation fileloc, Preprocessor &pp,
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const char *BufStart, const char *BufEnd)
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: FileLoc(fileloc), PP(&pp), Features(pp.getLangOptions()) {
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SourceManager &SourceMgr = PP->getSourceManager();
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unsigned InputFileID = SourceMgr.getPhysicalLoc(FileLoc).getFileID();
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const llvm::MemoryBuffer *InputFile = SourceMgr.getBuffer(InputFileID);
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Is_PragmaLexer = false;
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InitCharacterInfo();
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// BufferStart must always be InputFile->getBufferStart().
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BufferStart = InputFile->getBufferStart();
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// BufferPtr and BufferEnd can start out somewhere inside the current buffer.
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// If unspecified, they starts at the start/end of the buffer.
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BufferPtr = BufStart ? BufStart : BufferStart;
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BufferEnd = BufEnd ? BufEnd : InputFile->getBufferEnd();
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assert(BufferEnd[0] == 0 &&
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"We assume that the input buffer has a null character at the end"
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" to simplify lexing!");
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// Start of the file is a start of line.
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IsAtStartOfLine = true;
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// We are not after parsing a #.
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ParsingPreprocessorDirective = false;
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// We are not after parsing #include.
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ParsingFilename = false;
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// We are not in raw mode. Raw mode disables diagnostics and interpretation
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// of tokens (e.g. identifiers, thus disabling macro expansion). It is used
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// to quickly lex the tokens of the buffer, e.g. when handling a "#if 0" block
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// or otherwise skipping over tokens.
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LexingRawMode = false;
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// Default to keeping comments if requested.
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KeepCommentMode = PP->getCommentRetentionState();
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}
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/// Lexer constructor - Create a new raw lexer object. This object is only
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/// suitable for calls to 'LexRawToken'. This lexer assumes that the
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/// associated file buffer will outlive it, so it doesn't take ownership of
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/// either of them.
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Lexer::Lexer(SourceLocation fileloc, const LangOptions &features,
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const char *BufStart, const char *BufEnd)
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: FileLoc(fileloc), PP(0), Features(features) {
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Is_PragmaLexer = false;
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InitCharacterInfo();
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BufferStart = BufStart;
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BufferPtr = BufStart;
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BufferEnd = BufEnd;
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assert(BufferEnd[0] == 0 &&
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"We assume that the input buffer has a null character at the end"
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" to simplify lexing!");
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// Start of the file is a start of line.
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IsAtStartOfLine = true;
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// We are not after parsing a #.
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ParsingPreprocessorDirective = false;
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// We are not after parsing #include.
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ParsingFilename = false;
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// We *are* in raw mode.
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LexingRawMode = true;
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// Never keep comments in raw mode.
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KeepCommentMode = false;
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}
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/// Stringify - Convert the specified string into a C string, with surrounding
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/// ""'s, and with escaped \ and " characters.
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std::string Lexer::Stringify(const std::string &Str, bool Charify) {
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std::string Result = Str;
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char Quote = Charify ? '\'' : '"';
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for (unsigned i = 0, e = Result.size(); i != e; ++i) {
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if (Result[i] == '\\' || Result[i] == Quote) {
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Result.insert(Result.begin()+i, '\\');
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++i; ++e;
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}
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}
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return Result;
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}
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/// Stringify - Convert the specified string into a C string by escaping '\'
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/// and " characters. This does not add surrounding ""'s to the string.
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void Lexer::Stringify(llvm::SmallVectorImpl<char> &Str) {
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for (unsigned i = 0, e = Str.size(); i != e; ++i) {
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if (Str[i] == '\\' || Str[i] == '"') {
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Str.insert(Str.begin()+i, '\\');
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++i; ++e;
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}
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}
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}
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/// MeasureTokenLength - Relex the token at the specified location and return
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/// its length in bytes in the input file. If the token needs cleaning (e.g.
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/// includes a trigraph or an escaped newline) then this count includes bytes
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/// that are part of that.
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unsigned Lexer::MeasureTokenLength(SourceLocation Loc,
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const SourceManager &SM) {
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// If this comes from a macro expansion, we really do want the macro name, not
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// the token this macro expanded to.
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Loc = SM.getLogicalLoc(Loc);
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const char *StrData = SM.getCharacterData(Loc);
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// TODO: this could be special cased for common tokens like identifiers, ')',
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// etc to make this faster, if it mattered. Just look at StrData[0] to handle
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// all obviously single-char tokens. This could use
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// Lexer::isObviouslySimpleCharacter for example to handle identifiers or
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// something.
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const char *BufEnd = SM.getBufferData(Loc.getFileID()).second;
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// Create a langops struct and enable trigraphs. This is sufficient for
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// measuring tokens.
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LangOptions LangOpts;
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LangOpts.Trigraphs = true;
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// Create a lexer starting at the beginning of this token.
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Lexer TheLexer(Loc, LangOpts, StrData, BufEnd);
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Token TheTok;
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TheLexer.LexRawToken(TheTok);
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return TheTok.getLength();
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}
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//===----------------------------------------------------------------------===//
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// Character information.
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//===----------------------------------------------------------------------===//
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static unsigned char CharInfo[256];
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enum {
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CHAR_HORZ_WS = 0x01, // ' ', '\t', '\f', '\v'. Note, no '\0'
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CHAR_VERT_WS = 0x02, // '\r', '\n'
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CHAR_LETTER = 0x04, // a-z,A-Z
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CHAR_NUMBER = 0x08, // 0-9
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CHAR_UNDER = 0x10, // _
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CHAR_PERIOD = 0x20 // .
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};
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static void InitCharacterInfo() {
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static bool isInited = false;
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if (isInited) return;
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isInited = true;
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// Intiialize the CharInfo table.
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// TODO: statically initialize this.
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CharInfo[(int)' '] = CharInfo[(int)'\t'] =
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CharInfo[(int)'\f'] = CharInfo[(int)'\v'] = CHAR_HORZ_WS;
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CharInfo[(int)'\n'] = CharInfo[(int)'\r'] = CHAR_VERT_WS;
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CharInfo[(int)'_'] = CHAR_UNDER;
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CharInfo[(int)'.'] = CHAR_PERIOD;
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for (unsigned i = 'a'; i <= 'z'; ++i)
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CharInfo[i] = CharInfo[i+'A'-'a'] = CHAR_LETTER;
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for (unsigned i = '0'; i <= '9'; ++i)
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CharInfo[i] = CHAR_NUMBER;
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}
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/// isIdentifierBody - Return true if this is the body character of an
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/// identifier, which is [a-zA-Z0-9_].
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static inline bool isIdentifierBody(unsigned char c) {
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return (CharInfo[c] & (CHAR_LETTER|CHAR_NUMBER|CHAR_UNDER)) ? true : false;
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}
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/// isHorizontalWhitespace - Return true if this character is horizontal
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/// whitespace: ' ', '\t', '\f', '\v'. Note that this returns false for '\0'.
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static inline bool isHorizontalWhitespace(unsigned char c) {
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return (CharInfo[c] & CHAR_HORZ_WS) ? true : false;
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}
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/// isWhitespace - Return true if this character is horizontal or vertical
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/// whitespace: ' ', '\t', '\f', '\v', '\n', '\r'. Note that this returns false
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/// for '\0'.
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static inline bool isWhitespace(unsigned char c) {
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return (CharInfo[c] & (CHAR_HORZ_WS|CHAR_VERT_WS)) ? true : false;
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}
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/// isNumberBody - Return true if this is the body character of an
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/// preprocessing number, which is [a-zA-Z0-9_.].
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static inline bool isNumberBody(unsigned char c) {
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return (CharInfo[c] & (CHAR_LETTER|CHAR_NUMBER|CHAR_UNDER|CHAR_PERIOD)) ?
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true : false;
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}
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//===----------------------------------------------------------------------===//
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// Diagnostics forwarding code.
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//===----------------------------------------------------------------------===//
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/// GetMappedTokenLoc - If lexing out of a 'mapped buffer', where we pretend the
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/// lexer buffer was all instantiated at a single point, perform the mapping.
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/// This is currently only used for _Pragma implementation, so it is the slow
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/// path of the hot getSourceLocation method. Do not allow it to be inlined.
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static SourceLocation GetMappedTokenLoc(Preprocessor &PP,
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SourceLocation FileLoc,
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unsigned CharNo) DISABLE_INLINE;
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static SourceLocation GetMappedTokenLoc(Preprocessor &PP,
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SourceLocation FileLoc,
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unsigned CharNo) {
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// Otherwise, we're lexing "mapped tokens". This is used for things like
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// _Pragma handling. Combine the instantiation location of FileLoc with the
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// physical location.
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SourceManager &SourceMgr = PP.getSourceManager();
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// Create a new SLoc which is expanded from logical(FileLoc) but whose
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// characters come from phys(FileLoc)+Offset.
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SourceLocation VirtLoc = SourceMgr.getLogicalLoc(FileLoc);
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SourceLocation PhysLoc = SourceMgr.getPhysicalLoc(FileLoc);
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PhysLoc = SourceLocation::getFileLoc(PhysLoc.getFileID(), CharNo);
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return SourceMgr.getInstantiationLoc(PhysLoc, VirtLoc);
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}
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/// getSourceLocation - Return a source location identifier for the specified
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/// offset in the current file.
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SourceLocation Lexer::getSourceLocation(const char *Loc) const {
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assert(Loc >= BufferStart && Loc <= BufferEnd &&
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"Location out of range for this buffer!");
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// In the normal case, we're just lexing from a simple file buffer, return
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// the file id from FileLoc with the offset specified.
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unsigned CharNo = Loc-BufferStart;
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if (FileLoc.isFileID())
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return SourceLocation::getFileLoc(FileLoc.getFileID(), CharNo);
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assert(PP && "This doesn't work on raw lexers");
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return GetMappedTokenLoc(*PP, FileLoc, CharNo);
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}
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/// Diag - Forwarding function for diagnostics. This translate a source
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/// position in the current buffer into a SourceLocation object for rendering.
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void Lexer::Diag(const char *Loc, unsigned DiagID,
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const std::string &Msg) const {
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if (LexingRawMode && Diagnostic::isBuiltinNoteWarningOrExtension(DiagID))
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return;
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PP->Diag(getSourceLocation(Loc), DiagID, Msg);
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}
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void Lexer::Diag(SourceLocation Loc, unsigned DiagID,
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const std::string &Msg) const {
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if (LexingRawMode && Diagnostic::isBuiltinNoteWarningOrExtension(DiagID))
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return;
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PP->Diag(Loc, DiagID, Msg);
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}
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//===----------------------------------------------------------------------===//
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// Trigraph and Escaped Newline Handling Code.
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//===----------------------------------------------------------------------===//
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/// GetTrigraphCharForLetter - Given a character that occurs after a ?? pair,
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/// return the decoded trigraph letter it corresponds to, or '\0' if nothing.
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static char GetTrigraphCharForLetter(char Letter) {
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switch (Letter) {
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default: return 0;
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case '=': return '#';
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case ')': return ']';
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case '(': return '[';
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case '!': return '|';
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case '\'': return '^';
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case '>': return '}';
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case '/': return '\\';
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case '<': return '{';
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case '-': return '~';
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}
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}
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/// DecodeTrigraphChar - If the specified character is a legal trigraph when
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/// prefixed with ??, emit a trigraph warning. If trigraphs are enabled,
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/// return the result character. Finally, emit a warning about trigraph use
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/// whether trigraphs are enabled or not.
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static char DecodeTrigraphChar(const char *CP, Lexer *L) {
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char Res = GetTrigraphCharForLetter(*CP);
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if (Res && L) {
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if (!L->getFeatures().Trigraphs) {
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L->Diag(CP-2, diag::trigraph_ignored);
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return 0;
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} else {
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L->Diag(CP-2, diag::trigraph_converted, std::string()+Res);
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}
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}
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return Res;
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}
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/// getCharAndSizeSlow - Peek a single 'character' from the specified buffer,
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/// get its size, and return it. This is tricky in several cases:
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/// 1. If currently at the start of a trigraph, we warn about the trigraph,
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/// then either return the trigraph (skipping 3 chars) or the '?',
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/// depending on whether trigraphs are enabled or not.
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/// 2. If this is an escaped newline (potentially with whitespace between
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/// the backslash and newline), implicitly skip the newline and return
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/// the char after it.
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/// 3. If this is a UCN, return it. FIXME: C++ UCN's?
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///
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/// This handles the slow/uncommon case of the getCharAndSize method. Here we
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/// know that we can accumulate into Size, and that we have already incremented
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/// Ptr by Size bytes.
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///
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/// NOTE: When this method is updated, getCharAndSizeSlowNoWarn (below) should
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/// be updated to match.
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///
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char Lexer::getCharAndSizeSlow(const char *Ptr, unsigned &Size,
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Token *Tok) {
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// If we have a slash, look for an escaped newline.
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if (Ptr[0] == '\\') {
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++Size;
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++Ptr;
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Slash:
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// Common case, backslash-char where the char is not whitespace.
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if (!isWhitespace(Ptr[0])) return '\\';
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// See if we have optional whitespace characters followed by a newline.
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{
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unsigned SizeTmp = 0;
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do {
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++SizeTmp;
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if (Ptr[SizeTmp-1] == '\n' || Ptr[SizeTmp-1] == '\r') {
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// Remember that this token needs to be cleaned.
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if (Tok) Tok->setFlag(Token::NeedsCleaning);
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// Warn if there was whitespace between the backslash and newline.
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if (SizeTmp != 1 && Tok)
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Diag(Ptr, diag::backslash_newline_space);
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// If this is a \r\n or \n\r, skip the newlines.
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if ((Ptr[SizeTmp] == '\r' || Ptr[SizeTmp] == '\n') &&
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Ptr[SizeTmp-1] != Ptr[SizeTmp])
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++SizeTmp;
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// Found backslash<whitespace><newline>. Parse the char after it.
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Size += SizeTmp;
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Ptr += SizeTmp;
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// Use slow version to accumulate a correct size field.
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return getCharAndSizeSlow(Ptr, Size, Tok);
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}
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} while (isWhitespace(Ptr[SizeTmp]));
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}
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// Otherwise, this is not an escaped newline, just return the slash.
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return '\\';
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}
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// If this is a trigraph, process it.
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if (Ptr[0] == '?' && Ptr[1] == '?') {
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// If this is actually a legal trigraph (not something like "??x"), emit
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// a trigraph warning. If so, and if trigraphs are enabled, return it.
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if (char C = DecodeTrigraphChar(Ptr+2, Tok ? this : 0)) {
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// Remember that this token needs to be cleaned.
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if (Tok) Tok->setFlag(Token::NeedsCleaning);
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Ptr += 3;
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Size += 3;
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if (C == '\\') goto Slash;
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return C;
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}
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}
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// If this is neither, return a single character.
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++Size;
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return *Ptr;
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}
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/// getCharAndSizeSlowNoWarn - Handle the slow/uncommon case of the
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/// getCharAndSizeNoWarn method. Here we know that we can accumulate into Size,
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/// and that we have already incremented Ptr by Size bytes.
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///
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/// NOTE: When this method is updated, getCharAndSizeSlow (above) should
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/// be updated to match.
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char Lexer::getCharAndSizeSlowNoWarn(const char *Ptr, unsigned &Size,
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const LangOptions &Features) {
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// If we have a slash, look for an escaped newline.
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if (Ptr[0] == '\\') {
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++Size;
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++Ptr;
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Slash:
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// Common case, backslash-char where the char is not whitespace.
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if (!isWhitespace(Ptr[0])) return '\\';
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// See if we have optional whitespace characters followed by a newline.
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{
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unsigned SizeTmp = 0;
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do {
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++SizeTmp;
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if (Ptr[SizeTmp-1] == '\n' || Ptr[SizeTmp-1] == '\r') {
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// If this is a \r\n or \n\r, skip the newlines.
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if ((Ptr[SizeTmp] == '\r' || Ptr[SizeTmp] == '\n') &&
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Ptr[SizeTmp-1] != Ptr[SizeTmp])
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++SizeTmp;
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// Found backslash<whitespace><newline>. Parse the char after it.
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Size += SizeTmp;
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Ptr += SizeTmp;
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// Use slow version to accumulate a correct size field.
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return getCharAndSizeSlowNoWarn(Ptr, Size, Features);
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}
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} while (isWhitespace(Ptr[SizeTmp]));
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}
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// Otherwise, this is not an escaped newline, just return the slash.
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return '\\';
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}
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|
|
// If this is a trigraph, process it.
|
|
if (Features.Trigraphs && Ptr[0] == '?' && Ptr[1] == '?') {
|
|
// If this is actually a legal trigraph (not something like "??x"), return
|
|
// it.
|
|
if (char C = GetTrigraphCharForLetter(Ptr[2])) {
|
|
Ptr += 3;
|
|
Size += 3;
|
|
if (C == '\\') goto Slash;
|
|
return C;
|
|
}
|
|
}
|
|
|
|
// If this is neither, return a single character.
|
|
++Size;
|
|
return *Ptr;
|
|
}
|
|
|
|
//===----------------------------------------------------------------------===//
|
|
// Helper methods for lexing.
|
|
//===----------------------------------------------------------------------===//
|
|
|
|
void Lexer::LexIdentifier(Token &Result, const char *CurPtr) {
|
|
// Match [_A-Za-z0-9]*, we have already matched [_A-Za-z$]
|
|
unsigned Size;
|
|
unsigned char C = *CurPtr++;
|
|
while (isIdentifierBody(C)) {
|
|
C = *CurPtr++;
|
|
}
|
|
--CurPtr; // Back up over the skipped character.
|
|
|
|
// Fast path, no $,\,? in identifier found. '\' might be an escaped newline
|
|
// or UCN, and ? might be a trigraph for '\', an escaped newline or UCN.
|
|
// FIXME: UCNs.
|
|
if (C != '\\' && C != '?' && (C != '$' || !Features.DollarIdents)) {
|
|
FinishIdentifier:
|
|
const char *IdStart = BufferPtr;
|
|
FormTokenWithChars(Result, CurPtr);
|
|
Result.setKind(tok::identifier);
|
|
|
|
// If we are in raw mode, return this identifier raw. There is no need to
|
|
// look up identifier information or attempt to macro expand it.
|
|
if (LexingRawMode) return;
|
|
|
|
// Fill in Result.IdentifierInfo, looking up the identifier in the
|
|
// identifier table.
|
|
PP->LookUpIdentifierInfo(Result, IdStart);
|
|
|
|
// Finally, now that we know we have an identifier, pass this off to the
|
|
// preprocessor, which may macro expand it or something.
|
|
return PP->HandleIdentifier(Result);
|
|
}
|
|
|
|
// Otherwise, $,\,? in identifier found. Enter slower path.
|
|
|
|
C = getCharAndSize(CurPtr, Size);
|
|
while (1) {
|
|
if (C == '$') {
|
|
// If we hit a $ and they are not supported in identifiers, we are done.
|
|
if (!Features.DollarIdents) goto FinishIdentifier;
|
|
|
|
// Otherwise, emit a diagnostic and continue.
|
|
Diag(CurPtr, diag::ext_dollar_in_identifier);
|
|
CurPtr = ConsumeChar(CurPtr, Size, Result);
|
|
C = getCharAndSize(CurPtr, Size);
|
|
continue;
|
|
} else if (!isIdentifierBody(C)) { // FIXME: UCNs.
|
|
// Found end of identifier.
|
|
goto FinishIdentifier;
|
|
}
|
|
|
|
// Otherwise, this character is good, consume it.
|
|
CurPtr = ConsumeChar(CurPtr, Size, Result);
|
|
|
|
C = getCharAndSize(CurPtr, Size);
|
|
while (isIdentifierBody(C)) { // FIXME: UCNs.
|
|
CurPtr = ConsumeChar(CurPtr, Size, Result);
|
|
C = getCharAndSize(CurPtr, Size);
|
|
}
|
|
}
|
|
}
|
|
|
|
|
|
/// LexNumericConstant - Lex the remainer of a integer or floating point
|
|
/// constant. From[-1] is the first character lexed. Return the end of the
|
|
/// constant.
|
|
void Lexer::LexNumericConstant(Token &Result, const char *CurPtr) {
|
|
unsigned Size;
|
|
char C = getCharAndSize(CurPtr, Size);
|
|
char PrevCh = 0;
|
|
while (isNumberBody(C)) { // FIXME: UCNs?
|
|
CurPtr = ConsumeChar(CurPtr, Size, Result);
|
|
PrevCh = C;
|
|
C = getCharAndSize(CurPtr, Size);
|
|
}
|
|
|
|
// If we fell out, check for a sign, due to 1e+12. If we have one, continue.
|
|
if ((C == '-' || C == '+') && (PrevCh == 'E' || PrevCh == 'e'))
|
|
return LexNumericConstant(Result, ConsumeChar(CurPtr, Size, Result));
|
|
|
|
// If we have a hex FP constant, continue.
|
|
if (Features.HexFloats &&
|
|
(C == '-' || C == '+') && (PrevCh == 'P' || PrevCh == 'p'))
|
|
return LexNumericConstant(Result, ConsumeChar(CurPtr, Size, Result));
|
|
|
|
Result.setKind(tok::numeric_constant);
|
|
|
|
// Update the location of token as well as BufferPtr.
|
|
FormTokenWithChars(Result, CurPtr);
|
|
}
|
|
|
|
/// LexStringLiteral - Lex the remainder of a string literal, after having lexed
|
|
/// either " or L".
|
|
void Lexer::LexStringLiteral(Token &Result, const char *CurPtr, bool Wide){
|
|
const char *NulCharacter = 0; // Does this string contain the \0 character?
|
|
|
|
char C = getAndAdvanceChar(CurPtr, Result);
|
|
while (C != '"') {
|
|
// Skip escaped characters.
|
|
if (C == '\\') {
|
|
// Skip the escaped character.
|
|
C = getAndAdvanceChar(CurPtr, Result);
|
|
} else if (C == '\n' || C == '\r' || // Newline.
|
|
(C == 0 && CurPtr-1 == BufferEnd)) { // End of file.
|
|
if (!LexingRawMode) Diag(BufferPtr, diag::err_unterminated_string);
|
|
Result.setKind(tok::unknown);
|
|
FormTokenWithChars(Result, CurPtr-1);
|
|
return;
|
|
} else if (C == 0) {
|
|
NulCharacter = CurPtr-1;
|
|
}
|
|
C = getAndAdvanceChar(CurPtr, Result);
|
|
}
|
|
|
|
// If a nul character existed in the string, warn about it.
|
|
if (NulCharacter) Diag(NulCharacter, diag::null_in_string);
|
|
|
|
Result.setKind(Wide ? tok::wide_string_literal : tok::string_literal);
|
|
|
|
// Update the location of the token as well as the BufferPtr instance var.
|
|
FormTokenWithChars(Result, CurPtr);
|
|
}
|
|
|
|
/// LexAngledStringLiteral - Lex the remainder of an angled string literal,
|
|
/// after having lexed the '<' character. This is used for #include filenames.
|
|
void Lexer::LexAngledStringLiteral(Token &Result, const char *CurPtr) {
|
|
const char *NulCharacter = 0; // Does this string contain the \0 character?
|
|
|
|
char C = getAndAdvanceChar(CurPtr, Result);
|
|
while (C != '>') {
|
|
// Skip escaped characters.
|
|
if (C == '\\') {
|
|
// Skip the escaped character.
|
|
C = getAndAdvanceChar(CurPtr, Result);
|
|
} else if (C == '\n' || C == '\r' || // Newline.
|
|
(C == 0 && CurPtr-1 == BufferEnd)) { // End of file.
|
|
if (!LexingRawMode) Diag(BufferPtr, diag::err_unterminated_string);
|
|
Result.setKind(tok::unknown);
|
|
FormTokenWithChars(Result, CurPtr-1);
|
|
return;
|
|
} else if (C == 0) {
|
|
NulCharacter = CurPtr-1;
|
|
}
|
|
C = getAndAdvanceChar(CurPtr, Result);
|
|
}
|
|
|
|
// If a nul character existed in the string, warn about it.
|
|
if (NulCharacter) Diag(NulCharacter, diag::null_in_string);
|
|
|
|
Result.setKind(tok::angle_string_literal);
|
|
|
|
// Update the location of token as well as BufferPtr.
|
|
FormTokenWithChars(Result, CurPtr);
|
|
}
|
|
|
|
|
|
/// LexCharConstant - Lex the remainder of a character constant, after having
|
|
/// lexed either ' or L'.
|
|
void Lexer::LexCharConstant(Token &Result, const char *CurPtr) {
|
|
const char *NulCharacter = 0; // Does this character contain the \0 character?
|
|
|
|
// Handle the common case of 'x' and '\y' efficiently.
|
|
char C = getAndAdvanceChar(CurPtr, Result);
|
|
if (C == '\'') {
|
|
if (!LexingRawMode) Diag(BufferPtr, diag::err_empty_character);
|
|
Result.setKind(tok::unknown);
|
|
FormTokenWithChars(Result, CurPtr);
|
|
return;
|
|
} else if (C == '\\') {
|
|
// Skip the escaped character.
|
|
// FIXME: UCN's.
|
|
C = getAndAdvanceChar(CurPtr, Result);
|
|
}
|
|
|
|
if (C && C != '\n' && C != '\r' && CurPtr[0] == '\'') {
|
|
++CurPtr;
|
|
} else {
|
|
// Fall back on generic code for embedded nulls, newlines, wide chars.
|
|
do {
|
|
// Skip escaped characters.
|
|
if (C == '\\') {
|
|
// Skip the escaped character.
|
|
C = getAndAdvanceChar(CurPtr, Result);
|
|
} else if (C == '\n' || C == '\r' || // Newline.
|
|
(C == 0 && CurPtr-1 == BufferEnd)) { // End of file.
|
|
if (!LexingRawMode) Diag(BufferPtr, diag::err_unterminated_char);
|
|
Result.setKind(tok::unknown);
|
|
FormTokenWithChars(Result, CurPtr-1);
|
|
return;
|
|
} else if (C == 0) {
|
|
NulCharacter = CurPtr-1;
|
|
}
|
|
C = getAndAdvanceChar(CurPtr, Result);
|
|
} while (C != '\'');
|
|
}
|
|
|
|
if (NulCharacter) Diag(NulCharacter, diag::null_in_char);
|
|
|
|
Result.setKind(tok::char_constant);
|
|
|
|
// Update the location of token as well as BufferPtr.
|
|
FormTokenWithChars(Result, CurPtr);
|
|
}
|
|
|
|
/// SkipWhitespace - Efficiently skip over a series of whitespace characters.
|
|
/// Update BufferPtr to point to the next non-whitespace character and return.
|
|
void Lexer::SkipWhitespace(Token &Result, const char *CurPtr) {
|
|
// Whitespace - Skip it, then return the token after the whitespace.
|
|
unsigned char Char = *CurPtr; // Skip consequtive spaces efficiently.
|
|
while (1) {
|
|
// Skip horizontal whitespace very aggressively.
|
|
while (isHorizontalWhitespace(Char))
|
|
Char = *++CurPtr;
|
|
|
|
// Otherwise if we something other than whitespace, we're done.
|
|
if (Char != '\n' && Char != '\r')
|
|
break;
|
|
|
|
if (ParsingPreprocessorDirective) {
|
|
// End of preprocessor directive line, let LexTokenInternal handle this.
|
|
BufferPtr = CurPtr;
|
|
return;
|
|
}
|
|
|
|
// ok, but handle newline.
|
|
// The returned token is at the start of the line.
|
|
Result.setFlag(Token::StartOfLine);
|
|
// No leading whitespace seen so far.
|
|
Result.clearFlag(Token::LeadingSpace);
|
|
Char = *++CurPtr;
|
|
}
|
|
|
|
// If this isn't immediately after a newline, there is leading space.
|
|
char PrevChar = CurPtr[-1];
|
|
if (PrevChar != '\n' && PrevChar != '\r')
|
|
Result.setFlag(Token::LeadingSpace);
|
|
|
|
BufferPtr = CurPtr;
|
|
}
|
|
|
|
// SkipBCPLComment - We have just read the // characters from input. Skip until
|
|
// we find the newline character thats terminate the comment. Then update
|
|
/// BufferPtr and return.
|
|
bool Lexer::SkipBCPLComment(Token &Result, const char *CurPtr) {
|
|
// If BCPL comments aren't explicitly enabled for this language, emit an
|
|
// extension warning.
|
|
if (!Features.BCPLComment) {
|
|
Diag(BufferPtr, diag::ext_bcpl_comment);
|
|
|
|
// Mark them enabled so we only emit one warning for this translation
|
|
// unit.
|
|
Features.BCPLComment = true;
|
|
}
|
|
|
|
// Scan over the body of the comment. The common case, when scanning, is that
|
|
// the comment contains normal ascii characters with nothing interesting in
|
|
// them. As such, optimize for this case with the inner loop.
|
|
char C;
|
|
do {
|
|
C = *CurPtr;
|
|
// FIXME: Speedup BCPL comment lexing. Just scan for a \n or \r character.
|
|
// If we find a \n character, scan backwards, checking to see if it's an
|
|
// escaped newline, like we do for block comments.
|
|
|
|
// Skip over characters in the fast loop.
|
|
while (C != 0 && // Potentially EOF.
|
|
C != '\\' && // Potentially escaped newline.
|
|
C != '?' && // Potentially trigraph.
|
|
C != '\n' && C != '\r') // Newline or DOS-style newline.
|
|
C = *++CurPtr;
|
|
|
|
// If this is a newline, we're done.
|
|
if (C == '\n' || C == '\r')
|
|
break; // Found the newline? Break out!
|
|
|
|
// Otherwise, this is a hard case. Fall back on getAndAdvanceChar to
|
|
// properly decode the character.
|
|
const char *OldPtr = CurPtr;
|
|
C = getAndAdvanceChar(CurPtr, Result);
|
|
|
|
// If we read multiple characters, and one of those characters was a \r or
|
|
// \n, then we had an escaped newline within the comment. Emit diagnostic
|
|
// unless the next line is also a // comment.
|
|
if (CurPtr != OldPtr+1 && C != '/' && CurPtr[0] != '/') {
|
|
for (; OldPtr != CurPtr; ++OldPtr)
|
|
if (OldPtr[0] == '\n' || OldPtr[0] == '\r') {
|
|
// Okay, we found a // comment that ends in a newline, if the next
|
|
// line is also a // comment, but has spaces, don't emit a diagnostic.
|
|
if (isspace(C)) {
|
|
const char *ForwardPtr = CurPtr;
|
|
while (isspace(*ForwardPtr)) // Skip whitespace.
|
|
++ForwardPtr;
|
|
if (ForwardPtr[0] == '/' && ForwardPtr[1] == '/')
|
|
break;
|
|
}
|
|
|
|
Diag(OldPtr-1, diag::ext_multi_line_bcpl_comment);
|
|
break;
|
|
}
|
|
}
|
|
|
|
if (CurPtr == BufferEnd+1) { --CurPtr; break; }
|
|
} while (C != '\n' && C != '\r');
|
|
|
|
// Found but did not consume the newline.
|
|
|
|
// If we are returning comments as tokens, return this comment as a token.
|
|
if (KeepCommentMode)
|
|
return SaveBCPLComment(Result, CurPtr);
|
|
|
|
// If we are inside a preprocessor directive and we see the end of line,
|
|
// return immediately, so that the lexer can return this as an EOM token.
|
|
if (ParsingPreprocessorDirective || CurPtr == BufferEnd) {
|
|
BufferPtr = CurPtr;
|
|
return true;
|
|
}
|
|
|
|
// Otherwise, eat the \n character. We don't care if this is a \n\r or
|
|
// \r\n sequence.
|
|
++CurPtr;
|
|
|
|
// The next returned token is at the start of the line.
|
|
Result.setFlag(Token::StartOfLine);
|
|
// No leading whitespace seen so far.
|
|
Result.clearFlag(Token::LeadingSpace);
|
|
BufferPtr = CurPtr;
|
|
return true;
|
|
}
|
|
|
|
/// SaveBCPLComment - If in save-comment mode, package up this BCPL comment in
|
|
/// an appropriate way and return it.
|
|
bool Lexer::SaveBCPLComment(Token &Result, const char *CurPtr) {
|
|
Result.setKind(tok::comment);
|
|
FormTokenWithChars(Result, CurPtr);
|
|
|
|
// If this BCPL-style comment is in a macro definition, transmogrify it into
|
|
// a C-style block comment.
|
|
if (ParsingPreprocessorDirective) {
|
|
std::string Spelling = PP->getSpelling(Result);
|
|
assert(Spelling[0] == '/' && Spelling[1] == '/' && "Not bcpl comment?");
|
|
Spelling[1] = '*'; // Change prefix to "/*".
|
|
Spelling += "*/"; // add suffix.
|
|
|
|
Result.setLocation(PP->CreateString(&Spelling[0], Spelling.size(),
|
|
Result.getLocation()));
|
|
Result.setLength(Spelling.size());
|
|
}
|
|
return false;
|
|
}
|
|
|
|
/// isBlockCommentEndOfEscapedNewLine - Return true if the specified newline
|
|
/// character (either \n or \r) is part of an escaped newline sequence. Issue a
|
|
/// diagnostic if so. We know that the is inside of a block comment.
|
|
static bool isEndOfBlockCommentWithEscapedNewLine(const char *CurPtr,
|
|
Lexer *L) {
|
|
assert(CurPtr[0] == '\n' || CurPtr[0] == '\r');
|
|
|
|
// Back up off the newline.
|
|
--CurPtr;
|
|
|
|
// If this is a two-character newline sequence, skip the other character.
|
|
if (CurPtr[0] == '\n' || CurPtr[0] == '\r') {
|
|
// \n\n or \r\r -> not escaped newline.
|
|
if (CurPtr[0] == CurPtr[1])
|
|
return false;
|
|
// \n\r or \r\n -> skip the newline.
|
|
--CurPtr;
|
|
}
|
|
|
|
// If we have horizontal whitespace, skip over it. We allow whitespace
|
|
// between the slash and newline.
|
|
bool HasSpace = false;
|
|
while (isHorizontalWhitespace(*CurPtr) || *CurPtr == 0) {
|
|
--CurPtr;
|
|
HasSpace = true;
|
|
}
|
|
|
|
// If we have a slash, we know this is an escaped newline.
|
|
if (*CurPtr == '\\') {
|
|
if (CurPtr[-1] != '*') return false;
|
|
} else {
|
|
// It isn't a slash, is it the ?? / trigraph?
|
|
if (CurPtr[0] != '/' || CurPtr[-1] != '?' || CurPtr[-2] != '?' ||
|
|
CurPtr[-3] != '*')
|
|
return false;
|
|
|
|
// This is the trigraph ending the comment. Emit a stern warning!
|
|
CurPtr -= 2;
|
|
|
|
// If no trigraphs are enabled, warn that we ignored this trigraph and
|
|
// ignore this * character.
|
|
if (!L->getFeatures().Trigraphs) {
|
|
L->Diag(CurPtr, diag::trigraph_ignored_block_comment);
|
|
return false;
|
|
}
|
|
L->Diag(CurPtr, diag::trigraph_ends_block_comment);
|
|
}
|
|
|
|
// Warn about having an escaped newline between the */ characters.
|
|
L->Diag(CurPtr, diag::escaped_newline_block_comment_end);
|
|
|
|
// If there was space between the backslash and newline, warn about it.
|
|
if (HasSpace) L->Diag(CurPtr, diag::backslash_newline_space);
|
|
|
|
return true;
|
|
}
|
|
|
|
#ifdef __SSE2__
|
|
#include <emmintrin.h>
|
|
#elif __ALTIVEC__
|
|
#include <altivec.h>
|
|
#undef bool
|
|
#endif
|
|
|
|
/// SkipBlockComment - We have just read the /* characters from input. Read
|
|
/// until we find the */ characters that terminate the comment. Note that we
|
|
/// don't bother decoding trigraphs or escaped newlines in block comments,
|
|
/// because they cannot cause the comment to end. The only thing that can
|
|
/// happen is the comment could end with an escaped newline between the */ end
|
|
/// of comment.
|
|
bool Lexer::SkipBlockComment(Token &Result, const char *CurPtr) {
|
|
// Scan one character past where we should, looking for a '/' character. Once
|
|
// we find it, check to see if it was preceeded by a *. This common
|
|
// optimization helps people who like to put a lot of * characters in their
|
|
// comments.
|
|
|
|
// The first character we get with newlines and trigraphs skipped to handle
|
|
// the degenerate /*/ case below correctly if the * has an escaped newline
|
|
// after it.
|
|
unsigned CharSize;
|
|
unsigned char C = getCharAndSize(CurPtr, CharSize);
|
|
CurPtr += CharSize;
|
|
if (C == 0 && CurPtr == BufferEnd+1) {
|
|
Diag(BufferPtr, diag::err_unterminated_block_comment);
|
|
BufferPtr = CurPtr-1;
|
|
return true;
|
|
}
|
|
|
|
// Check to see if the first character after the '/*' is another /. If so,
|
|
// then this slash does not end the block comment, it is part of it.
|
|
if (C == '/')
|
|
C = *CurPtr++;
|
|
|
|
while (1) {
|
|
// Skip over all non-interesting characters until we find end of buffer or a
|
|
// (probably ending) '/' character.
|
|
if (CurPtr + 24 < BufferEnd) {
|
|
// While not aligned to a 16-byte boundary.
|
|
while (C != '/' && ((intptr_t)CurPtr & 0x0F) != 0)
|
|
C = *CurPtr++;
|
|
|
|
if (C == '/') goto FoundSlash;
|
|
|
|
#ifdef __SSE2__
|
|
__m128i Slashes = _mm_set_epi8('/', '/', '/', '/', '/', '/', '/', '/',
|
|
'/', '/', '/', '/', '/', '/', '/', '/');
|
|
while (CurPtr+16 <= BufferEnd &&
|
|
_mm_movemask_epi8(_mm_cmpeq_epi8(*(__m128i*)CurPtr, Slashes)) == 0)
|
|
CurPtr += 16;
|
|
#elif __ALTIVEC__
|
|
__vector unsigned char Slashes = {
|
|
'/', '/', '/', '/', '/', '/', '/', '/',
|
|
'/', '/', '/', '/', '/', '/', '/', '/'
|
|
};
|
|
while (CurPtr+16 <= BufferEnd &&
|
|
!vec_any_eq(*(vector unsigned char*)CurPtr, Slashes))
|
|
CurPtr += 16;
|
|
#else
|
|
// Scan for '/' quickly. Many block comments are very large.
|
|
while (CurPtr[0] != '/' &&
|
|
CurPtr[1] != '/' &&
|
|
CurPtr[2] != '/' &&
|
|
CurPtr[3] != '/' &&
|
|
CurPtr+4 < BufferEnd) {
|
|
CurPtr += 4;
|
|
}
|
|
#endif
|
|
|
|
// It has to be one of the bytes scanned, increment to it and read one.
|
|
C = *CurPtr++;
|
|
}
|
|
|
|
// Loop to scan the remainder.
|
|
while (C != '/' && C != '\0')
|
|
C = *CurPtr++;
|
|
|
|
FoundSlash:
|
|
if (C == '/') {
|
|
if (CurPtr[-2] == '*') // We found the final */. We're done!
|
|
break;
|
|
|
|
if ((CurPtr[-2] == '\n' || CurPtr[-2] == '\r')) {
|
|
if (isEndOfBlockCommentWithEscapedNewLine(CurPtr-2, this)) {
|
|
// We found the final */, though it had an escaped newline between the
|
|
// * and /. We're done!
|
|
break;
|
|
}
|
|
}
|
|
if (CurPtr[0] == '*' && CurPtr[1] != '/') {
|
|
// If this is a /* inside of the comment, emit a warning. Don't do this
|
|
// if this is a /*/, which will end the comment. This misses cases with
|
|
// embedded escaped newlines, but oh well.
|
|
Diag(CurPtr-1, diag::nested_block_comment);
|
|
}
|
|
} else if (C == 0 && CurPtr == BufferEnd+1) {
|
|
Diag(BufferPtr, diag::err_unterminated_block_comment);
|
|
// Note: the user probably forgot a */. We could continue immediately
|
|
// after the /*, but this would involve lexing a lot of what really is the
|
|
// comment, which surely would confuse the parser.
|
|
BufferPtr = CurPtr-1;
|
|
return true;
|
|
}
|
|
C = *CurPtr++;
|
|
}
|
|
|
|
// If we are returning comments as tokens, return this comment as a token.
|
|
if (KeepCommentMode) {
|
|
Result.setKind(tok::comment);
|
|
FormTokenWithChars(Result, CurPtr);
|
|
return false;
|
|
}
|
|
|
|
// It is common for the tokens immediately after a /**/ comment to be
|
|
// whitespace. Instead of going through the big switch, handle it
|
|
// efficiently now.
|
|
if (isHorizontalWhitespace(*CurPtr)) {
|
|
Result.setFlag(Token::LeadingSpace);
|
|
SkipWhitespace(Result, CurPtr+1);
|
|
return true;
|
|
}
|
|
|
|
// Otherwise, just return so that the next character will be lexed as a token.
|
|
BufferPtr = CurPtr;
|
|
Result.setFlag(Token::LeadingSpace);
|
|
return true;
|
|
}
|
|
|
|
//===----------------------------------------------------------------------===//
|
|
// Primary Lexing Entry Points
|
|
//===----------------------------------------------------------------------===//
|
|
|
|
/// LexIncludeFilename - After the preprocessor has parsed a #include, lex and
|
|
/// (potentially) macro expand the filename.
|
|
void Lexer::LexIncludeFilename(Token &FilenameTok) {
|
|
assert(ParsingPreprocessorDirective &&
|
|
ParsingFilename == false &&
|
|
"Must be in a preprocessing directive!");
|
|
|
|
// We are now parsing a filename!
|
|
ParsingFilename = true;
|
|
|
|
// Lex the filename.
|
|
Lex(FilenameTok);
|
|
|
|
// We should have obtained the filename now.
|
|
ParsingFilename = false;
|
|
|
|
// No filename?
|
|
if (FilenameTok.is(tok::eom))
|
|
Diag(FilenameTok.getLocation(), diag::err_pp_expects_filename);
|
|
}
|
|
|
|
/// ReadToEndOfLine - Read the rest of the current preprocessor line as an
|
|
/// uninterpreted string. This switches the lexer out of directive mode.
|
|
std::string Lexer::ReadToEndOfLine() {
|
|
assert(ParsingPreprocessorDirective && ParsingFilename == false &&
|
|
"Must be in a preprocessing directive!");
|
|
std::string Result;
|
|
Token Tmp;
|
|
|
|
// CurPtr - Cache BufferPtr in an automatic variable.
|
|
const char *CurPtr = BufferPtr;
|
|
while (1) {
|
|
char Char = getAndAdvanceChar(CurPtr, Tmp);
|
|
switch (Char) {
|
|
default:
|
|
Result += Char;
|
|
break;
|
|
case 0: // Null.
|
|
// Found end of file?
|
|
if (CurPtr-1 != BufferEnd) {
|
|
// Nope, normal character, continue.
|
|
Result += Char;
|
|
break;
|
|
}
|
|
// FALL THROUGH.
|
|
case '\r':
|
|
case '\n':
|
|
// Okay, we found the end of the line. First, back up past the \0, \r, \n.
|
|
assert(CurPtr[-1] == Char && "Trigraphs for newline?");
|
|
BufferPtr = CurPtr-1;
|
|
|
|
// Next, lex the character, which should handle the EOM transition.
|
|
Lex(Tmp);
|
|
assert(Tmp.is(tok::eom) && "Unexpected token!");
|
|
|
|
// Finally, we're done, return the string we found.
|
|
return Result;
|
|
}
|
|
}
|
|
}
|
|
|
|
/// LexEndOfFile - CurPtr points to the end of this file. Handle this
|
|
/// condition, reporting diagnostics and handling other edge cases as required.
|
|
/// This returns true if Result contains a token, false if PP.Lex should be
|
|
/// called again.
|
|
bool Lexer::LexEndOfFile(Token &Result, const char *CurPtr) {
|
|
// If we hit the end of the file while parsing a preprocessor directive,
|
|
// end the preprocessor directive first. The next token returned will
|
|
// then be the end of file.
|
|
if (ParsingPreprocessorDirective) {
|
|
// Done parsing the "line".
|
|
ParsingPreprocessorDirective = false;
|
|
Result.setKind(tok::eom);
|
|
// Update the location of token as well as BufferPtr.
|
|
FormTokenWithChars(Result, CurPtr);
|
|
|
|
// Restore comment saving mode, in case it was disabled for directive.
|
|
KeepCommentMode = PP->getCommentRetentionState();
|
|
return true; // Have a token.
|
|
}
|
|
|
|
// If we are in raw mode, return this event as an EOF token. Let the caller
|
|
// that put us in raw mode handle the event.
|
|
if (LexingRawMode) {
|
|
Result.startToken();
|
|
BufferPtr = BufferEnd;
|
|
FormTokenWithChars(Result, BufferEnd);
|
|
Result.setKind(tok::eof);
|
|
return true;
|
|
}
|
|
|
|
// Otherwise, issue diagnostics for unterminated #if and missing newline.
|
|
|
|
// If we are in a #if directive, emit an error.
|
|
while (!ConditionalStack.empty()) {
|
|
Diag(ConditionalStack.back().IfLoc, diag::err_pp_unterminated_conditional);
|
|
ConditionalStack.pop_back();
|
|
}
|
|
|
|
// If the file was empty or didn't end in a newline, issue a pedwarn.
|
|
if (CurPtr[-1] != '\n' && CurPtr[-1] != '\r')
|
|
Diag(BufferEnd, diag::ext_no_newline_eof);
|
|
|
|
BufferPtr = CurPtr;
|
|
|
|
// Finally, let the preprocessor handle this.
|
|
return PP->HandleEndOfFile(Result);
|
|
}
|
|
|
|
/// isNextPPTokenLParen - Return 1 if the next unexpanded token lexed from
|
|
/// the specified lexer will return a tok::l_paren token, 0 if it is something
|
|
/// else and 2 if there are no more tokens in the buffer controlled by the
|
|
/// lexer.
|
|
unsigned Lexer::isNextPPTokenLParen() {
|
|
assert(!LexingRawMode && "How can we expand a macro from a skipping buffer?");
|
|
|
|
// Switch to 'skipping' mode. This will ensure that we can lex a token
|
|
// without emitting diagnostics, disables macro expansion, and will cause EOF
|
|
// to return an EOF token instead of popping the include stack.
|
|
LexingRawMode = true;
|
|
|
|
// Save state that can be changed while lexing so that we can restore it.
|
|
const char *TmpBufferPtr = BufferPtr;
|
|
|
|
Token Tok;
|
|
Tok.startToken();
|
|
LexTokenInternal(Tok);
|
|
|
|
// Restore state that may have changed.
|
|
BufferPtr = TmpBufferPtr;
|
|
|
|
// Restore the lexer back to non-skipping mode.
|
|
LexingRawMode = false;
|
|
|
|
if (Tok.is(tok::eof))
|
|
return 2;
|
|
return Tok.is(tok::l_paren);
|
|
}
|
|
|
|
|
|
/// LexTokenInternal - This implements a simple C family lexer. It is an
|
|
/// extremely performance critical piece of code. This assumes that the buffer
|
|
/// has a null character at the end of the file. Return true if an error
|
|
/// occurred and compilation should terminate, false if normal. This returns a
|
|
/// preprocessing token, not a normal token, as such, it is an internal
|
|
/// interface. It assumes that the Flags of result have been cleared before
|
|
/// calling this.
|
|
void Lexer::LexTokenInternal(Token &Result) {
|
|
LexNextToken:
|
|
// New token, can't need cleaning yet.
|
|
Result.clearFlag(Token::NeedsCleaning);
|
|
Result.setIdentifierInfo(0);
|
|
|
|
// CurPtr - Cache BufferPtr in an automatic variable.
|
|
const char *CurPtr = BufferPtr;
|
|
|
|
// Small amounts of horizontal whitespace is very common between tokens.
|
|
if ((*CurPtr == ' ') || (*CurPtr == '\t')) {
|
|
++CurPtr;
|
|
while ((*CurPtr == ' ') || (*CurPtr == '\t'))
|
|
++CurPtr;
|
|
BufferPtr = CurPtr;
|
|
Result.setFlag(Token::LeadingSpace);
|
|
}
|
|
|
|
unsigned SizeTmp, SizeTmp2; // Temporaries for use in cases below.
|
|
|
|
// Read a character, advancing over it.
|
|
char Char = getAndAdvanceChar(CurPtr, Result);
|
|
switch (Char) {
|
|
case 0: // Null.
|
|
// Found end of file?
|
|
if (CurPtr-1 == BufferEnd) {
|
|
// Read the PP instance variable into an automatic variable, because
|
|
// LexEndOfFile will often delete 'this'.
|
|
Preprocessor *PPCache = PP;
|
|
if (LexEndOfFile(Result, CurPtr-1)) // Retreat back into the file.
|
|
return; // Got a token to return.
|
|
assert(PPCache && "Raw buffer::LexEndOfFile should return a token");
|
|
return PPCache->Lex(Result);
|
|
}
|
|
|
|
Diag(CurPtr-1, diag::null_in_file);
|
|
Result.setFlag(Token::LeadingSpace);
|
|
SkipWhitespace(Result, CurPtr);
|
|
goto LexNextToken; // GCC isn't tail call eliminating.
|
|
case '\n':
|
|
case '\r':
|
|
// If we are inside a preprocessor directive and we see the end of line,
|
|
// we know we are done with the directive, so return an EOM token.
|
|
if (ParsingPreprocessorDirective) {
|
|
// Done parsing the "line".
|
|
ParsingPreprocessorDirective = false;
|
|
|
|
// Restore comment saving mode, in case it was disabled for directive.
|
|
KeepCommentMode = PP->getCommentRetentionState();
|
|
|
|
// Since we consumed a newline, we are back at the start of a line.
|
|
IsAtStartOfLine = true;
|
|
|
|
Result.setKind(tok::eom);
|
|
break;
|
|
}
|
|
// The returned token is at the start of the line.
|
|
Result.setFlag(Token::StartOfLine);
|
|
// No leading whitespace seen so far.
|
|
Result.clearFlag(Token::LeadingSpace);
|
|
SkipWhitespace(Result, CurPtr);
|
|
goto LexNextToken; // GCC isn't tail call eliminating.
|
|
case ' ':
|
|
case '\t':
|
|
case '\f':
|
|
case '\v':
|
|
SkipHorizontalWhitespace:
|
|
Result.setFlag(Token::LeadingSpace);
|
|
SkipWhitespace(Result, CurPtr);
|
|
|
|
SkipIgnoredUnits:
|
|
CurPtr = BufferPtr;
|
|
|
|
// If the next token is obviously a // or /* */ comment, skip it efficiently
|
|
// too (without going through the big switch stmt).
|
|
if (CurPtr[0] == '/' && CurPtr[1] == '/' && !KeepCommentMode) {
|
|
SkipBCPLComment(Result, CurPtr+2);
|
|
goto SkipIgnoredUnits;
|
|
} else if (CurPtr[0] == '/' && CurPtr[1] == '*' && !KeepCommentMode) {
|
|
SkipBlockComment(Result, CurPtr+2);
|
|
goto SkipIgnoredUnits;
|
|
} else if (isHorizontalWhitespace(*CurPtr)) {
|
|
goto SkipHorizontalWhitespace;
|
|
}
|
|
goto LexNextToken; // GCC isn't tail call eliminating.
|
|
|
|
// C99 6.4.4.1: Integer Constants.
|
|
// C99 6.4.4.2: Floating Constants.
|
|
case '0': case '1': case '2': case '3': case '4':
|
|
case '5': case '6': case '7': case '8': case '9':
|
|
// Notify MIOpt that we read a non-whitespace/non-comment token.
|
|
MIOpt.ReadToken();
|
|
return LexNumericConstant(Result, CurPtr);
|
|
|
|
case 'L': // Identifier (Loony) or wide literal (L'x' or L"xyz").
|
|
// Notify MIOpt that we read a non-whitespace/non-comment token.
|
|
MIOpt.ReadToken();
|
|
Char = getCharAndSize(CurPtr, SizeTmp);
|
|
|
|
// Wide string literal.
|
|
if (Char == '"')
|
|
return LexStringLiteral(Result, ConsumeChar(CurPtr, SizeTmp, Result),
|
|
true);
|
|
|
|
// Wide character constant.
|
|
if (Char == '\'')
|
|
return LexCharConstant(Result, ConsumeChar(CurPtr, SizeTmp, Result));
|
|
// FALL THROUGH, treating L like the start of an identifier.
|
|
|
|
// C99 6.4.2: Identifiers.
|
|
case 'A': case 'B': case 'C': case 'D': case 'E': case 'F': case 'G':
|
|
case 'H': case 'I': case 'J': case 'K': /*'L'*/case 'M': case 'N':
|
|
case 'O': case 'P': case 'Q': case 'R': case 'S': case 'T': case 'U':
|
|
case 'V': case 'W': case 'X': case 'Y': case 'Z':
|
|
case 'a': case 'b': case 'c': case 'd': case 'e': case 'f': case 'g':
|
|
case 'h': case 'i': case 'j': case 'k': case 'l': case 'm': case 'n':
|
|
case 'o': case 'p': case 'q': case 'r': case 's': case 't': case 'u':
|
|
case 'v': case 'w': case 'x': case 'y': case 'z':
|
|
case '_':
|
|
// Notify MIOpt that we read a non-whitespace/non-comment token.
|
|
MIOpt.ReadToken();
|
|
return LexIdentifier(Result, CurPtr);
|
|
|
|
case '$': // $ in identifiers.
|
|
if (Features.DollarIdents) {
|
|
Diag(CurPtr-1, diag::ext_dollar_in_identifier);
|
|
// Notify MIOpt that we read a non-whitespace/non-comment token.
|
|
MIOpt.ReadToken();
|
|
return LexIdentifier(Result, CurPtr);
|
|
}
|
|
|
|
Result.setKind(tok::unknown);
|
|
break;
|
|
|
|
// C99 6.4.4: Character Constants.
|
|
case '\'':
|
|
// Notify MIOpt that we read a non-whitespace/non-comment token.
|
|
MIOpt.ReadToken();
|
|
return LexCharConstant(Result, CurPtr);
|
|
|
|
// C99 6.4.5: String Literals.
|
|
case '"':
|
|
// Notify MIOpt that we read a non-whitespace/non-comment token.
|
|
MIOpt.ReadToken();
|
|
return LexStringLiteral(Result, CurPtr, false);
|
|
|
|
// C99 6.4.6: Punctuators.
|
|
case '?':
|
|
Result.setKind(tok::question);
|
|
break;
|
|
case '[':
|
|
Result.setKind(tok::l_square);
|
|
break;
|
|
case ']':
|
|
Result.setKind(tok::r_square);
|
|
break;
|
|
case '(':
|
|
Result.setKind(tok::l_paren);
|
|
break;
|
|
case ')':
|
|
Result.setKind(tok::r_paren);
|
|
break;
|
|
case '{':
|
|
Result.setKind(tok::l_brace);
|
|
break;
|
|
case '}':
|
|
Result.setKind(tok::r_brace);
|
|
break;
|
|
case '.':
|
|
Char = getCharAndSize(CurPtr, SizeTmp);
|
|
if (Char >= '0' && Char <= '9') {
|
|
// Notify MIOpt that we read a non-whitespace/non-comment token.
|
|
MIOpt.ReadToken();
|
|
|
|
return LexNumericConstant(Result, ConsumeChar(CurPtr, SizeTmp, Result));
|
|
} else if (Features.CPlusPlus && Char == '*') {
|
|
Result.setKind(tok::periodstar);
|
|
CurPtr += SizeTmp;
|
|
} else if (Char == '.' &&
|
|
getCharAndSize(CurPtr+SizeTmp, SizeTmp2) == '.') {
|
|
Result.setKind(tok::ellipsis);
|
|
CurPtr = ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result),
|
|
SizeTmp2, Result);
|
|
} else {
|
|
Result.setKind(tok::period);
|
|
}
|
|
break;
|
|
case '&':
|
|
Char = getCharAndSize(CurPtr, SizeTmp);
|
|
if (Char == '&') {
|
|
Result.setKind(tok::ampamp);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else if (Char == '=') {
|
|
Result.setKind(tok::ampequal);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else {
|
|
Result.setKind(tok::amp);
|
|
}
|
|
break;
|
|
case '*':
|
|
if (getCharAndSize(CurPtr, SizeTmp) == '=') {
|
|
Result.setKind(tok::starequal);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else {
|
|
Result.setKind(tok::star);
|
|
}
|
|
break;
|
|
case '+':
|
|
Char = getCharAndSize(CurPtr, SizeTmp);
|
|
if (Char == '+') {
|
|
Result.setKind(tok::plusplus);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else if (Char == '=') {
|
|
Result.setKind(tok::plusequal);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else {
|
|
Result.setKind(tok::plus);
|
|
}
|
|
break;
|
|
case '-':
|
|
Char = getCharAndSize(CurPtr, SizeTmp);
|
|
if (Char == '-') {
|
|
Result.setKind(tok::minusminus);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else if (Char == '>' && Features.CPlusPlus &&
|
|
getCharAndSize(CurPtr+SizeTmp, SizeTmp2) == '*') {
|
|
Result.setKind(tok::arrowstar); // C++ ->*
|
|
CurPtr = ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result),
|
|
SizeTmp2, Result);
|
|
} else if (Char == '>') {
|
|
Result.setKind(tok::arrow);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else if (Char == '=') {
|
|
Result.setKind(tok::minusequal);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else {
|
|
Result.setKind(tok::minus);
|
|
}
|
|
break;
|
|
case '~':
|
|
Result.setKind(tok::tilde);
|
|
break;
|
|
case '!':
|
|
if (getCharAndSize(CurPtr, SizeTmp) == '=') {
|
|
Result.setKind(tok::exclaimequal);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else {
|
|
Result.setKind(tok::exclaim);
|
|
}
|
|
break;
|
|
case '/':
|
|
// 6.4.9: Comments
|
|
Char = getCharAndSize(CurPtr, SizeTmp);
|
|
if (Char == '/') { // BCPL comment.
|
|
if (SkipBCPLComment(Result, ConsumeChar(CurPtr, SizeTmp, Result))) {
|
|
// It is common for the tokens immediately after a // comment to be
|
|
// whitespace (indentation for the next line). Instead of going through
|
|
// the big switch, handle it efficiently now.
|
|
goto SkipIgnoredUnits;
|
|
}
|
|
return; // KeepCommentMode
|
|
} else if (Char == '*') { // /**/ comment.
|
|
if (SkipBlockComment(Result, ConsumeChar(CurPtr, SizeTmp, Result)))
|
|
goto LexNextToken; // GCC isn't tail call eliminating.
|
|
return; // KeepCommentMode
|
|
} else if (Char == '=') {
|
|
Result.setKind(tok::slashequal);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else {
|
|
Result.setKind(tok::slash);
|
|
}
|
|
break;
|
|
case '%':
|
|
Char = getCharAndSize(CurPtr, SizeTmp);
|
|
if (Char == '=') {
|
|
Result.setKind(tok::percentequal);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else if (Features.Digraphs && Char == '>') {
|
|
Result.setKind(tok::r_brace); // '%>' -> '}'
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else if (Features.Digraphs && Char == ':') {
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
Char = getCharAndSize(CurPtr, SizeTmp);
|
|
if (Char == '%' && getCharAndSize(CurPtr+SizeTmp, SizeTmp2) == ':') {
|
|
Result.setKind(tok::hashhash); // '%:%:' -> '##'
|
|
CurPtr = ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result),
|
|
SizeTmp2, Result);
|
|
} else if (Char == '@' && Features.Microsoft) { // %:@ -> #@ -> Charize
|
|
Result.setKind(tok::hashat);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
Diag(BufferPtr, diag::charize_microsoft_ext);
|
|
} else {
|
|
Result.setKind(tok::hash); // '%:' -> '#'
|
|
|
|
// We parsed a # character. If this occurs at the start of the line,
|
|
// it's actually the start of a preprocessing directive. Callback to
|
|
// the preprocessor to handle it.
|
|
// FIXME: -fpreprocessed mode??
|
|
if (Result.isAtStartOfLine() && !LexingRawMode) {
|
|
BufferPtr = CurPtr;
|
|
PP->HandleDirective(Result);
|
|
|
|
// As an optimization, if the preprocessor didn't switch lexers, tail
|
|
// recurse.
|
|
if (PP->isCurrentLexer(this)) {
|
|
// Start a new token. If this is a #include or something, the PP may
|
|
// want us starting at the beginning of the line again. If so, set
|
|
// the StartOfLine flag.
|
|
if (IsAtStartOfLine) {
|
|
Result.setFlag(Token::StartOfLine);
|
|
IsAtStartOfLine = false;
|
|
}
|
|
goto LexNextToken; // GCC isn't tail call eliminating.
|
|
}
|
|
|
|
return PP->Lex(Result);
|
|
}
|
|
}
|
|
} else {
|
|
Result.setKind(tok::percent);
|
|
}
|
|
break;
|
|
case '<':
|
|
Char = getCharAndSize(CurPtr, SizeTmp);
|
|
if (ParsingFilename) {
|
|
return LexAngledStringLiteral(Result, CurPtr+SizeTmp);
|
|
} else if (Char == '<' &&
|
|
getCharAndSize(CurPtr+SizeTmp, SizeTmp2) == '=') {
|
|
Result.setKind(tok::lesslessequal);
|
|
CurPtr = ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result),
|
|
SizeTmp2, Result);
|
|
} else if (Char == '<') {
|
|
Result.setKind(tok::lessless);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else if (Char == '=') {
|
|
Result.setKind(tok::lessequal);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else if (Features.Digraphs && Char == ':') {
|
|
Result.setKind(tok::l_square); // '<:' -> '['
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else if (Features.Digraphs && Char == '>') {
|
|
Result.setKind(tok::l_brace); // '<%' -> '{'
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else {
|
|
Result.setKind(tok::less);
|
|
}
|
|
break;
|
|
case '>':
|
|
Char = getCharAndSize(CurPtr, SizeTmp);
|
|
if (Char == '=') {
|
|
Result.setKind(tok::greaterequal);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else if (Char == '>' &&
|
|
getCharAndSize(CurPtr+SizeTmp, SizeTmp2) == '=') {
|
|
Result.setKind(tok::greatergreaterequal);
|
|
CurPtr = ConsumeChar(ConsumeChar(CurPtr, SizeTmp, Result),
|
|
SizeTmp2, Result);
|
|
} else if (Char == '>') {
|
|
Result.setKind(tok::greatergreater);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else {
|
|
Result.setKind(tok::greater);
|
|
}
|
|
break;
|
|
case '^':
|
|
Char = getCharAndSize(CurPtr, SizeTmp);
|
|
if (Char == '=') {
|
|
Result.setKind(tok::caretequal);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else {
|
|
Result.setKind(tok::caret);
|
|
}
|
|
break;
|
|
case '|':
|
|
Char = getCharAndSize(CurPtr, SizeTmp);
|
|
if (Char == '=') {
|
|
Result.setKind(tok::pipeequal);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else if (Char == '|') {
|
|
Result.setKind(tok::pipepipe);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else {
|
|
Result.setKind(tok::pipe);
|
|
}
|
|
break;
|
|
case ':':
|
|
Char = getCharAndSize(CurPtr, SizeTmp);
|
|
if (Features.Digraphs && Char == '>') {
|
|
Result.setKind(tok::r_square); // ':>' -> ']'
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else if (Features.CPlusPlus && Char == ':') {
|
|
Result.setKind(tok::coloncolon);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else {
|
|
Result.setKind(tok::colon);
|
|
}
|
|
break;
|
|
case ';':
|
|
Result.setKind(tok::semi);
|
|
break;
|
|
case '=':
|
|
Char = getCharAndSize(CurPtr, SizeTmp);
|
|
if (Char == '=') {
|
|
Result.setKind(tok::equalequal);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else {
|
|
Result.setKind(tok::equal);
|
|
}
|
|
break;
|
|
case ',':
|
|
Result.setKind(tok::comma);
|
|
break;
|
|
case '#':
|
|
Char = getCharAndSize(CurPtr, SizeTmp);
|
|
if (Char == '#') {
|
|
Result.setKind(tok::hashhash);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else if (Char == '@' && Features.Microsoft) { // #@ -> Charize
|
|
Result.setKind(tok::hashat);
|
|
Diag(BufferPtr, diag::charize_microsoft_ext);
|
|
CurPtr = ConsumeChar(CurPtr, SizeTmp, Result);
|
|
} else {
|
|
Result.setKind(tok::hash);
|
|
// We parsed a # character. If this occurs at the start of the line,
|
|
// it's actually the start of a preprocessing directive. Callback to
|
|
// the preprocessor to handle it.
|
|
// FIXME: -fpreprocessed mode??
|
|
if (Result.isAtStartOfLine() && !LexingRawMode) {
|
|
BufferPtr = CurPtr;
|
|
PP->HandleDirective(Result);
|
|
|
|
// As an optimization, if the preprocessor didn't switch lexers, tail
|
|
// recurse.
|
|
if (PP->isCurrentLexer(this)) {
|
|
// Start a new token. If this is a #include or something, the PP may
|
|
// want us starting at the beginning of the line again. If so, set
|
|
// the StartOfLine flag.
|
|
if (IsAtStartOfLine) {
|
|
Result.setFlag(Token::StartOfLine);
|
|
IsAtStartOfLine = false;
|
|
}
|
|
goto LexNextToken; // GCC isn't tail call eliminating.
|
|
}
|
|
return PP->Lex(Result);
|
|
}
|
|
}
|
|
break;
|
|
|
|
case '@':
|
|
// Objective C support.
|
|
if (CurPtr[-1] == '@' && Features.ObjC1)
|
|
Result.setKind(tok::at);
|
|
else
|
|
Result.setKind(tok::unknown);
|
|
break;
|
|
|
|
case '\\':
|
|
// FIXME: UCN's.
|
|
// FALL THROUGH.
|
|
default:
|
|
Result.setKind(tok::unknown);
|
|
break;
|
|
}
|
|
|
|
// Notify MIOpt that we read a non-whitespace/non-comment token.
|
|
MIOpt.ReadToken();
|
|
|
|
// Update the location of token as well as BufferPtr.
|
|
FormTokenWithChars(Result, CurPtr);
|
|
}
|