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Continuing with #3070. Just a dir and file rename (only prefix change is lexer_file_test). Everything in the lex dir should be marked as a move. Note, I think this closes #3070. There may still be further cleanup later, but the organizational changes suggested there are being completed. --------- Co-authored-by: Chandler Carruth <chandlerc@gmail.com>
1216 lines
45 KiB
C++
1216 lines
45 KiB
C++
// Part of the Carbon Language project, under the Apache License v2.0 with LLVM
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// Exceptions. See /LICENSE for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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#include "toolchain/lex/tokenized_buffer.h"
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#include <algorithm>
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#include <array>
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#include <cmath>
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#include "common/check.h"
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#include "common/string_helpers.h"
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#include "llvm/ADT/StringRef.h"
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#include "llvm/ADT/StringSwitch.h"
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#include "llvm/Support/ErrorHandling.h"
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#include "llvm/Support/Format.h"
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#include "llvm/Support/FormatVariadic.h"
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#include "llvm/Support/raw_ostream.h"
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#include "toolchain/lex/character_set.h"
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#include "toolchain/lex/helpers.h"
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#include "toolchain/lex/numeric_literal.h"
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#include "toolchain/lex/string_literal.h"
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#if __x86_64__
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#include <x86intrin.h>
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#endif
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namespace Carbon::Lex {
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// TODO: Move Overload and VariantMatch somewhere more central.
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// Form an overload set from a list of functions. For example:
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//
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// ```
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// auto overloaded = Overload{[] (int) {}, [] (float) {}};
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// ```
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template <typename... Fs>
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struct Overload : Fs... {
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using Fs::operator()...;
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};
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template <typename... Fs>
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Overload(Fs...) -> Overload<Fs...>;
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// Pattern-match against the type of the value stored in the variant `V`. Each
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// element of `fs` should be a function that takes one or more of the variant
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// values in `V`.
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template <typename V, typename... Fs>
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auto VariantMatch(V&& v, Fs&&... fs) -> decltype(auto) {
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return std::visit(Overload{std::forward<Fs&&>(fs)...}, std::forward<V&&>(v));
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}
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// Scans the provided text and returns the prefix `StringRef` of contiguous
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// identifier characters.
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//
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// This is a performance sensitive function and so uses vectorized code
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// sequences to optimize its scanning. When modifying, the identifier lexing
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// benchmarks should be checked for regressions.
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//
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// Identifier characters here are currently the ASCII characters `[0-9A-Za-z_]`.
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//
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// TODO: Currently, this code does not implement Carbon's design for Unicode
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// characters in identifiers. It does work on UTF-8 code unit sequences, but
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// currently considers non-ASCII characters to be non-identifier characters.
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// Some work has been done to ensure the hot loop, while optimized, retains
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// enough information to add Unicode handling without completely destroying the
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// relevant optimizations.
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static auto ScanForIdentifierPrefix(llvm::StringRef text) -> llvm::StringRef {
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// A table of booleans that we can use to classify bytes as being valid
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// identifier (or keyword) characters. This is used in the generic,
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// non-vectorized fallback code to scan for length of an identifier.
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static constexpr std::array<bool, 256> IsIdByteTable = ([]() constexpr {
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std::array<bool, 256> table = {};
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for (char c = '0'; c <= '9'; ++c) {
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table[c] = true;
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}
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for (char c = 'A'; c <= 'Z'; ++c) {
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table[c] = true;
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}
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for (char c = 'a'; c <= 'z'; ++c) {
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table[c] = true;
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}
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table['_'] = true;
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return table;
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})();
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#if __x86_64__
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// This code uses a scheme derived from the techniques in Geoff Langdale and
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// Daniel Lemire's work on parsing JSON[1]. Specifically, that paper outlines
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// a technique of using two 4-bit indexed in-register look-up tables (LUTs) to
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// classify bytes in a branchless SIMD code sequence.
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//
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// [1]: https://arxiv.org/pdf/1902.08318.pdf
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//
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// The goal is to get a bit mask classifying different sets of bytes. For each
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// input byte, we first test for a high bit indicating a UTF-8 encoded Unicode
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// character. Otherwise, we want the mask bits to be set with the following
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// logic derived by inspecting the high nibble and low nibble of the input:
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// bit0 = 1 for `_`: high `0x5` and low `0xF`
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// bit1 = 1 for `0-9`: high `0x3` and low `0x0` - `0x9`
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// bit2 = 1 for `A-O` and `a-o`: high `0x4` or `0x6` and low `0x1` - `0xF`
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// bit3 = 1 for `P-Z` and 'p-z': high `0x5` or `0x7` and low `0x0` - `0xA`
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// bit4 = unused
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// bit5 = unused
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// bit6 = unused
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// bit7 = unused
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//
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// No bits set means definitively non-ID ASCII character.
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//
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// bits 4-7 remain unused if we need to classify more characters.
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const auto high_lut = _mm_setr_epi8(
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/* __b0=*/0b0000'0000,
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/* __b1=*/0b0000'0000,
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/* __b2=*/0b0000'0000,
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/* __b3=*/0b0000'0010,
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/* __b4=*/0b0000'0100,
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/* __b5=*/0b0000'1001,
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/* __b6=*/0b0000'0100,
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/* __b7=*/0b0000'1000,
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/* __b8=*/0b0000'0000,
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/* __b9=*/0b0000'0000,
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/*__b10=*/0b0000'0000,
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/*__b11=*/0b0000'0000,
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/*__b12=*/0b0000'0000,
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/*__b13=*/0b0000'0000,
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/*__b14=*/0b0000'0000,
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/*__b15=*/0b0000'0000);
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const auto low_lut = _mm_setr_epi8(
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/* __b0=*/0b0000'1010,
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/* __b1=*/0b0000'1110,
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/* __b2=*/0b0000'1110,
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/* __b3=*/0b0000'1110,
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/* __b4=*/0b0000'1110,
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/* __b5=*/0b0000'1110,
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/* __b6=*/0b0000'1110,
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/* __b7=*/0b0000'1110,
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/* __b8=*/0b0000'1110,
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/* __b9=*/0b0000'1110,
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/*__b10=*/0b0000'1100,
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/*__b11=*/0b0000'0100,
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/*__b12=*/0b0000'0100,
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/*__b13=*/0b0000'0100,
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/*__b14=*/0b0000'0100,
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/*__b15=*/0b0000'0101);
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// Use `ssize_t` for performance here as we index memory in a tight loop.
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ssize_t i = 0;
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const ssize_t size = text.size();
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while ((i + 16) <= size) {
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__m128i input =
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_mm_loadu_si128(reinterpret_cast<const __m128i*>(text.data() + i));
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// The high bits of each byte indicate a non-ASCII character encoded using
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// UTF-8. Test those and fall back to the scalar code if present. These
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// bytes will also cause spurious zeros in the LUT results, but we can
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// ignore that because we track them independently here.
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#if __SSE4_1__
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if (!_mm_test_all_zeros(_mm_set1_epi8(0x80), input)) {
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break;
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}
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#else
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if (_mm_movemask_epi8(input) != 0) {
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break;
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}
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#endif
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// Do two LUT lookups and mask the results together to get the results for
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// both low and high nibbles. Note that we don't need to mask out the high
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// bit of input here because we track that above for UTF-8 handling.
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__m128i low_mask = _mm_shuffle_epi8(low_lut, input);
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// Note that the input needs to be masked to only include the high nibble or
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// we could end up with bit7 set forcing the result to a zero byte.
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__m128i input_high =
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_mm_and_si128(_mm_srli_epi32(input, 4), _mm_set1_epi8(0x0f));
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__m128i high_mask = _mm_shuffle_epi8(high_lut, input_high);
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__m128i mask = _mm_and_si128(low_mask, high_mask);
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// Now compare to find the completely zero bytes.
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__m128i id_byte_mask_vec = _mm_cmpeq_epi8(mask, _mm_setzero_si128());
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int tail_ascii_mask = _mm_movemask_epi8(id_byte_mask_vec);
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// Check if there are bits in the tail mask, which means zero bytes and the
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// end of the identifier. We could do this without materializing the scalar
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// mask on more recent CPUs, but we generally expect the median length we
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// encounter to be <16 characters and so we avoid the extra instruction in
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// that case and predict this branch to succeed so it is laid out in a
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// reasonable way.
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if (LLVM_LIKELY(tail_ascii_mask != 0)) {
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// Move past the definitively classified bytes that are part of the
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// identifier, and return the complete identifier text.
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i += __builtin_ctz(tail_ascii_mask);
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return text.substr(0, i);
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}
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i += 16;
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}
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// Fallback to scalar loop. We only end up here when we don't have >=16
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// bytes to scan or we find a UTF-8 unicode character.
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// TODO: This assumes all Unicode characters are non-identifiers.
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while (i < size && IsIdByteTable[static_cast<unsigned char>(text[i])]) {
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++i;
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}
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return text.substr(0, i);
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#else
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// TODO: Optimize this with SIMD for other architectures.
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return text.take_while(
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[](char c) { return IsIdByteTable[static_cast<unsigned char>(c)]; });
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#endif
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}
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// Implementation of the lexer logic itself.
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//
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// The design is that lexing can loop over the source buffer, consuming it into
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// tokens by calling into this API. This class handles the state and breaks down
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// the different lexing steps that may be used. It directly updates the provided
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// tokenized buffer with the lexed tokens.
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class TokenizedBuffer::Lexer {
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public:
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// Symbolic result of a lexing action. This indicates whether we successfully
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// lexed a token, or whether other lexing actions should be attempted.
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//
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// While it wraps a simple boolean state, its API both helps make the failures
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// more self documenting, and by consuming the actual token constructively
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// when one is produced, it helps ensure the correct result is returned.
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class LexResult {
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public:
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// Consumes (and discard) a valid token to construct a result
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// indicating a token has been produced. Relies on implicit conversions.
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// NOLINTNEXTLINE(google-explicit-constructor)
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LexResult(Token /*discarded_token*/) : LexResult(true) {}
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// Returns a result indicating no token was produced.
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static auto NoMatch() -> LexResult { return LexResult(false); }
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// Tests whether a token was produced by the lexing routine, and
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// the lexer can continue forming tokens.
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explicit operator bool() const { return formed_token_; }
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private:
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explicit LexResult(bool formed_token) : formed_token_(formed_token) {}
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bool formed_token_;
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};
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using DispatchFunctionT = auto(Lexer& lexer, llvm::StringRef& source_text)
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-> LexResult;
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using DispatchTableT = std::array<DispatchFunctionT*, 256>;
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Lexer(TokenizedBuffer& buffer, DiagnosticConsumer& consumer)
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: buffer_(&buffer),
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translator_(&buffer),
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emitter_(translator_, consumer),
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token_translator_(&buffer),
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token_emitter_(token_translator_, consumer),
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current_line_(buffer.AddLine(LineInfo(0))),
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current_line_info_(&buffer.GetLineInfo(current_line_)) {}
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// Perform the necessary bookkeeping to step past a newline at the current
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// line and column.
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auto HandleNewline() -> void {
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current_line_info_->length = current_column_;
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current_line_ = buffer_->AddLine(
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LineInfo(current_line_info_->start + current_column_ + 1));
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current_line_info_ = &buffer_->GetLineInfo(current_line_);
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current_column_ = 0;
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set_indent_ = false;
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}
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auto NoteWhitespace() -> void {
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if (!buffer_->token_infos_.empty()) {
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buffer_->token_infos_.back().has_trailing_space = true;
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}
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}
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auto SkipWhitespace(llvm::StringRef& source_text) -> bool {
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const char* const whitespace_start = source_text.begin();
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while (!source_text.empty()) {
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// We only support line-oriented commenting and lex comments as-if they
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// were whitespace.
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if (source_text.startswith("//")) {
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// Any comment must be the only non-whitespace on the line.
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if (set_indent_) {
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CARBON_DIAGNOSTIC(TrailingComment, Error,
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"Trailing comments are not permitted.");
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emitter_.Emit(source_text.begin(), TrailingComment);
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}
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// The introducer '//' must be followed by whitespace or EOF.
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if (source_text.size() > 2 && !IsSpace(source_text[2])) {
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CARBON_DIAGNOSTIC(NoWhitespaceAfterCommentIntroducer, Error,
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"Whitespace is required after '//'.");
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emitter_.Emit(source_text.begin() + 2,
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NoWhitespaceAfterCommentIntroducer);
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}
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while (!source_text.empty() && source_text.front() != '\n') {
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++current_column_;
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source_text = source_text.drop_front();
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}
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if (source_text.empty()) {
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break;
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}
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}
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switch (source_text.front()) {
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default:
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// If we find a non-whitespace character without exhausting the
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// buffer, return true to continue lexing.
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CARBON_CHECK(!IsSpace(source_text.front()));
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if (whitespace_start != source_text.begin()) {
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NoteWhitespace();
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}
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return true;
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case '\n':
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// If this is the last character in the source, directly return here
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// to avoid creating an empty line.
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source_text = source_text.drop_front();
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if (source_text.empty()) {
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current_line_info_->length = current_column_;
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return false;
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}
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// Otherwise, add a line and set up to continue lexing.
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HandleNewline();
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continue;
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case ' ':
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case '\t':
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// Skip other forms of whitespace while tracking column.
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// TODO: This obviously needs looooots more work to handle unicode
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// whitespace as well as special handling to allow better tokenization
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// of operators. This is just a stub to check that our column
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// management works.
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++current_column_;
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source_text = source_text.drop_front();
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continue;
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}
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}
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CARBON_CHECK(source_text.empty())
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<< "Cannot reach here w/o finishing the text!";
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// Update the line length as this is also the end of a line.
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current_line_info_->length = current_column_;
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return false;
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}
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auto LexNumericLiteral(llvm::StringRef& source_text) -> LexResult {
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std::optional<NumericLiteral> literal = NumericLiteral::Lex(source_text);
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if (!literal) {
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return LexError(source_text);
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}
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int int_column = current_column_;
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int token_size = literal->text().size();
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current_column_ += token_size;
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source_text = source_text.drop_front(token_size);
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if (!set_indent_) {
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current_line_info_->indent = int_column;
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set_indent_ = true;
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}
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return VariantMatch(
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literal->ComputeValue(emitter_),
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[&](NumericLiteral::IntegerValue&& value) {
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auto token = buffer_->AddToken({.kind = TokenKind::IntegerLiteral,
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.token_line = current_line_,
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.column = int_column});
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buffer_->GetTokenInfo(token).literal_index =
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buffer_->literal_int_storage_.size();
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buffer_->literal_int_storage_.push_back(std::move(value.value));
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return token;
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},
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[&](NumericLiteral::RealValue&& value) {
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auto token = buffer_->AddToken({.kind = TokenKind::RealLiteral,
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.token_line = current_line_,
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.column = int_column});
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buffer_->GetTokenInfo(token).literal_index =
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buffer_->literal_int_storage_.size();
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buffer_->literal_int_storage_.push_back(std::move(value.mantissa));
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buffer_->literal_int_storage_.push_back(std::move(value.exponent));
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CARBON_CHECK(buffer_->GetRealLiteral(token).is_decimal ==
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(value.radix == NumericLiteral::Radix::Decimal));
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return token;
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},
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[&](NumericLiteral::UnrecoverableError) {
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auto token = buffer_->AddToken({
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.kind = TokenKind::Error,
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.token_line = current_line_,
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.column = int_column,
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.error_length = token_size,
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});
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return token;
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});
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}
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auto LexStringLiteral(llvm::StringRef& source_text) -> LexResult {
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std::optional<StringLiteral> literal = StringLiteral::Lex(source_text);
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if (!literal) {
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return LexError(source_text);
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}
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Line string_line = current_line_;
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int string_column = current_column_;
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int literal_size = literal->text().size();
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source_text = source_text.drop_front(literal_size);
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if (!set_indent_) {
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current_line_info_->indent = string_column;
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set_indent_ = true;
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}
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// Update line and column information.
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if (!literal->is_multi_line()) {
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current_column_ += literal_size;
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} else {
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for (char c : literal->text()) {
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if (c == '\n') {
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HandleNewline();
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// The indentation of all lines in a multi-line string literal is
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// that of the first line.
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current_line_info_->indent = string_column;
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set_indent_ = true;
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} else {
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++current_column_;
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}
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}
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}
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if (literal->is_terminated()) {
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auto token =
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buffer_->AddToken({.kind = TokenKind::StringLiteral,
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.token_line = string_line,
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.column = string_column,
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.literal_index = static_cast<int32_t>(
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buffer_->literal_string_storage_.size())});
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buffer_->literal_string_storage_.push_back(
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literal->ComputeValue(emitter_));
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return token;
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} else {
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CARBON_DIAGNOSTIC(UnterminatedString, Error,
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"String is missing a terminator.");
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emitter_.Emit(literal->text().begin(), UnterminatedString);
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return buffer_->AddToken({.kind = TokenKind::Error,
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.token_line = string_line,
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.column = string_column,
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.error_length = literal_size});
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}
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}
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auto LexSymbolToken(llvm::StringRef& source_text,
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TokenKind kind = TokenKind::Error) -> LexResult {
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auto compute_symbol_kind = [](llvm::StringRef source_text) {
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return llvm::StringSwitch<TokenKind>(source_text)
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#define CARBON_SYMBOL_TOKEN(Name, Spelling) \
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.StartsWith(Spelling, TokenKind::Name)
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#include "toolchain/lex/token_kind.def"
|
|
.Default(TokenKind::Error);
|
|
};
|
|
|
|
// We use the `error` token as a place-holder for cases where one character
|
|
// isn't enough to pick a definitive symbol token. Recompute the kind using
|
|
// the full symbol set.
|
|
if (LLVM_UNLIKELY(kind == TokenKind::Error)) {
|
|
kind = compute_symbol_kind(source_text);
|
|
if (kind == TokenKind::Error) {
|
|
return LexError(source_text);
|
|
}
|
|
} else {
|
|
// Verify in a debug build that the incoming token kind is correct.
|
|
CARBON_DCHECK(kind == compute_symbol_kind(source_text))
|
|
<< "Incoming token kind '" << kind
|
|
<< "' does not match computed kind '"
|
|
<< compute_symbol_kind(source_text) << "'!";
|
|
}
|
|
|
|
if (!set_indent_) {
|
|
current_line_info_->indent = current_column_;
|
|
set_indent_ = true;
|
|
}
|
|
|
|
CloseInvalidOpenGroups(kind);
|
|
|
|
const char* location = source_text.begin();
|
|
Token token = buffer_->AddToken(
|
|
{.kind = kind, .token_line = current_line_, .column = current_column_});
|
|
current_column_ += kind.fixed_spelling().size();
|
|
source_text = source_text.drop_front(kind.fixed_spelling().size());
|
|
|
|
// Opening symbols just need to be pushed onto our queue of opening groups.
|
|
if (kind.is_opening_symbol()) {
|
|
open_groups_.push_back(token);
|
|
return token;
|
|
}
|
|
|
|
// Only closing symbols need further special handling.
|
|
if (!kind.is_closing_symbol()) {
|
|
return token;
|
|
}
|
|
|
|
TokenInfo& closing_token_info = buffer_->GetTokenInfo(token);
|
|
|
|
// Check that there is a matching opening symbol before we consume this as
|
|
// a closing symbol.
|
|
if (open_groups_.empty()) {
|
|
closing_token_info.kind = TokenKind::Error;
|
|
closing_token_info.error_length = kind.fixed_spelling().size();
|
|
|
|
CARBON_DIAGNOSTIC(
|
|
UnmatchedClosing, Error,
|
|
"Closing symbol without a corresponding opening symbol.");
|
|
emitter_.Emit(location, UnmatchedClosing);
|
|
// Note that this still returns true as we do consume a symbol.
|
|
return token;
|
|
}
|
|
|
|
// Finally can handle a normal closing symbol.
|
|
Token opening_token = open_groups_.pop_back_val();
|
|
TokenInfo& opening_token_info = buffer_->GetTokenInfo(opening_token);
|
|
opening_token_info.closing_token = token;
|
|
closing_token_info.opening_token = opening_token;
|
|
return token;
|
|
}
|
|
|
|
// Given a word that has already been lexed, determine whether it is a type
|
|
// literal and if so form the corresponding token.
|
|
auto LexWordAsTypeLiteralToken(llvm::StringRef word, int column)
|
|
-> LexResult {
|
|
if (word.size() < 2) {
|
|
// Too short to form one of these tokens.
|
|
return LexResult::NoMatch();
|
|
}
|
|
if (word[1] < '1' || word[1] > '9') {
|
|
// Doesn't start with a valid initial digit.
|
|
return LexResult::NoMatch();
|
|
}
|
|
|
|
std::optional<TokenKind> kind;
|
|
switch (word.front()) {
|
|
case 'i':
|
|
kind = TokenKind::IntegerTypeLiteral;
|
|
break;
|
|
case 'u':
|
|
kind = TokenKind::UnsignedIntegerTypeLiteral;
|
|
break;
|
|
case 'f':
|
|
kind = TokenKind::FloatingPointTypeLiteral;
|
|
break;
|
|
default:
|
|
return LexResult::NoMatch();
|
|
};
|
|
|
|
llvm::StringRef suffix = word.substr(1);
|
|
if (!CanLexInteger(emitter_, suffix)) {
|
|
return buffer_->AddToken(
|
|
{.kind = TokenKind::Error,
|
|
.token_line = current_line_,
|
|
.column = column,
|
|
.error_length = static_cast<int32_t>(word.size())});
|
|
}
|
|
llvm::APInt suffix_value;
|
|
if (suffix.getAsInteger(10, suffix_value)) {
|
|
return LexResult::NoMatch();
|
|
}
|
|
|
|
auto token = buffer_->AddToken(
|
|
{.kind = *kind, .token_line = current_line_, .column = column});
|
|
buffer_->GetTokenInfo(token).literal_index =
|
|
buffer_->literal_int_storage_.size();
|
|
buffer_->literal_int_storage_.push_back(std::move(suffix_value));
|
|
return token;
|
|
}
|
|
|
|
// Closes all open groups that cannot remain open across the symbol `K`.
|
|
// Users may pass `Error` to close all open groups.
|
|
auto CloseInvalidOpenGroups(TokenKind kind) -> void {
|
|
if (!kind.is_closing_symbol() && kind != TokenKind::Error) {
|
|
return;
|
|
}
|
|
|
|
while (!open_groups_.empty()) {
|
|
Token opening_token = open_groups_.back();
|
|
TokenKind opening_kind = buffer_->GetTokenInfo(opening_token).kind;
|
|
if (kind == opening_kind.closing_symbol()) {
|
|
return;
|
|
}
|
|
|
|
open_groups_.pop_back();
|
|
CARBON_DIAGNOSTIC(
|
|
MismatchedClosing, Error,
|
|
"Closing symbol does not match most recent opening symbol.");
|
|
token_emitter_.Emit(opening_token, MismatchedClosing);
|
|
|
|
CARBON_CHECK(!buffer_->tokens().empty())
|
|
<< "Must have a prior opening token!";
|
|
Token prev_token = buffer_->tokens().end()[-1];
|
|
|
|
// TODO: do a smarter backwards scan for where to put the closing
|
|
// token.
|
|
Token closing_token = buffer_->AddToken(
|
|
{.kind = opening_kind.closing_symbol(),
|
|
.has_trailing_space = buffer_->HasTrailingWhitespace(prev_token),
|
|
.is_recovery = true,
|
|
.token_line = current_line_,
|
|
.column = current_column_});
|
|
TokenInfo& opening_token_info = buffer_->GetTokenInfo(opening_token);
|
|
TokenInfo& closing_token_info = buffer_->GetTokenInfo(closing_token);
|
|
opening_token_info.closing_token = closing_token;
|
|
closing_token_info.opening_token = opening_token;
|
|
}
|
|
}
|
|
|
|
auto GetOrCreateIdentifier(llvm::StringRef text) -> Identifier {
|
|
auto insert_result = buffer_->identifier_map_.insert(
|
|
{text, Identifier(buffer_->identifier_infos_.size())});
|
|
if (insert_result.second) {
|
|
buffer_->identifier_infos_.push_back({text});
|
|
}
|
|
return insert_result.first->second;
|
|
}
|
|
|
|
auto LexKeywordOrIdentifier(llvm::StringRef& source_text) -> LexResult {
|
|
if (static_cast<unsigned char>(source_text.front()) > 0x7F) {
|
|
// TODO: Need to add support for Unicode lexing.
|
|
return LexError(source_text);
|
|
}
|
|
CARBON_CHECK(IsAlpha(source_text.front()) || source_text.front() == '_');
|
|
|
|
if (!set_indent_) {
|
|
current_line_info_->indent = current_column_;
|
|
set_indent_ = true;
|
|
}
|
|
|
|
// Take the valid characters off the front of the source buffer.
|
|
llvm::StringRef identifier_text = ScanForIdentifierPrefix(source_text);
|
|
CARBON_CHECK(!identifier_text.empty())
|
|
<< "Must have at least one character!";
|
|
int identifier_column = current_column_;
|
|
current_column_ += identifier_text.size();
|
|
source_text = source_text.drop_front(identifier_text.size());
|
|
|
|
// Check if the text is a type literal, and if so form such a literal.
|
|
if (LexResult result =
|
|
LexWordAsTypeLiteralToken(identifier_text, identifier_column)) {
|
|
return result;
|
|
}
|
|
|
|
// Check if the text matches a keyword token, and if so use that.
|
|
TokenKind kind = llvm::StringSwitch<TokenKind>(identifier_text)
|
|
#define CARBON_KEYWORD_TOKEN(Name, Spelling) .Case(Spelling, TokenKind::Name)
|
|
#include "toolchain/lex/token_kind.def"
|
|
.Default(TokenKind::Error);
|
|
if (kind != TokenKind::Error) {
|
|
return buffer_->AddToken({.kind = kind,
|
|
.token_line = current_line_,
|
|
.column = identifier_column});
|
|
}
|
|
|
|
// Otherwise we have a generic identifier.
|
|
return buffer_->AddToken({.kind = TokenKind::Identifier,
|
|
.token_line = current_line_,
|
|
.column = identifier_column,
|
|
.id = GetOrCreateIdentifier(identifier_text)});
|
|
}
|
|
|
|
auto LexError(llvm::StringRef& source_text) -> LexResult {
|
|
llvm::StringRef error_text = source_text.take_while([](char c) {
|
|
if (IsAlnum(c)) {
|
|
return false;
|
|
}
|
|
switch (c) {
|
|
case '_':
|
|
case '\t':
|
|
case '\n':
|
|
return false;
|
|
default:
|
|
break;
|
|
}
|
|
return llvm::StringSwitch<bool>(llvm::StringRef(&c, 1))
|
|
#define CARBON_SYMBOL_TOKEN(Name, Spelling) .StartsWith(Spelling, false)
|
|
#include "toolchain/lex/token_kind.def"
|
|
.Default(true);
|
|
});
|
|
if (error_text.empty()) {
|
|
// TODO: Reimplement this to use the lexer properly. In the meantime,
|
|
// guarantee that we eat at least one byte.
|
|
error_text = source_text.take_front(1);
|
|
}
|
|
|
|
auto token = buffer_->AddToken(
|
|
{.kind = TokenKind::Error,
|
|
.token_line = current_line_,
|
|
.column = current_column_,
|
|
.error_length = static_cast<int32_t>(error_text.size())});
|
|
CARBON_DIAGNOSTIC(UnrecognizedCharacters, Error,
|
|
"Encountered unrecognized characters while parsing.");
|
|
emitter_.Emit(error_text.begin(), UnrecognizedCharacters);
|
|
|
|
current_column_ += error_text.size();
|
|
source_text = source_text.drop_front(error_text.size());
|
|
return token;
|
|
}
|
|
|
|
auto AddEndOfFileToken() -> void {
|
|
buffer_->AddToken({.kind = TokenKind::EndOfFile,
|
|
.token_line = current_line_,
|
|
.column = current_column_});
|
|
}
|
|
|
|
constexpr static auto MakeDispatchTable() -> DispatchTableT {
|
|
DispatchTableT table = {};
|
|
auto dispatch_lex_error = +[](Lexer& lexer, llvm::StringRef& source_text) {
|
|
return lexer.LexError(source_text);
|
|
};
|
|
for (int i = 0; i < 256; ++i) {
|
|
table[i] = dispatch_lex_error;
|
|
}
|
|
|
|
// Symbols have some special dispatching. First, set the first character of
|
|
// each symbol token spelling to dispatch to the symbol lexer. We don't
|
|
// provide a pre-computed token here, so the symbol lexer will compute the
|
|
// exact symbol token kind.
|
|
auto dispatch_lex_symbol = +[](Lexer& lexer, llvm::StringRef& source_text) {
|
|
return lexer.LexSymbolToken(source_text);
|
|
};
|
|
#define CARBON_SYMBOL_TOKEN(TokenName, Spelling) \
|
|
table[(Spelling)[0]] = dispatch_lex_symbol;
|
|
#include "toolchain/lex/token_kind.def"
|
|
|
|
// Now special cased single-character symbols that are guaranteed to not
|
|
// join with another symbol. These are grouping symbols, terminators,
|
|
// or separators in the grammar and have a good reason to be
|
|
// orthogonal to any other punctuation. We do this separately because this
|
|
// needs to override some of the generic handling above, and provide a
|
|
// custom token.
|
|
#define CARBON_ONE_CHAR_SYMBOL_TOKEN(TokenName, Spelling) \
|
|
table[(Spelling)[0]] = +[](Lexer& lexer, llvm::StringRef& source_text) { \
|
|
return lexer.LexSymbolToken(source_text, TokenKind::TokenName); \
|
|
};
|
|
#include "toolchain/lex/token_kind.def"
|
|
|
|
auto dispatch_lex_word = +[](Lexer& lexer, llvm::StringRef& source_text) {
|
|
return lexer.LexKeywordOrIdentifier(source_text);
|
|
};
|
|
table['_'] = dispatch_lex_word;
|
|
// Note that we don't use `llvm::seq` because this needs to be `constexpr`
|
|
// evaluated.
|
|
for (unsigned char c = 'a'; c <= 'z'; ++c) {
|
|
table[c] = dispatch_lex_word;
|
|
}
|
|
for (unsigned char c = 'A'; c <= 'Z'; ++c) {
|
|
table[c] = dispatch_lex_word;
|
|
}
|
|
// We dispatch all non-ASCII UTF-8 characters to the identifier lexing
|
|
// as whitespace characters should already have been skipped and the
|
|
// only remaining valid Unicode characters would be part of an
|
|
// identifier. That code can either accept or reject.
|
|
for (int i = 0x80; i < 0x100; ++i) {
|
|
table[i] = dispatch_lex_word;
|
|
}
|
|
|
|
auto dispatch_lex_numeric =
|
|
+[](Lexer& lexer, llvm::StringRef& source_text) {
|
|
return lexer.LexNumericLiteral(source_text);
|
|
};
|
|
for (unsigned char c = '0'; c <= '9'; ++c) {
|
|
table[c] = dispatch_lex_numeric;
|
|
}
|
|
|
|
auto dispatch_lex_string = +[](Lexer& lexer, llvm::StringRef& source_text) {
|
|
return lexer.LexStringLiteral(source_text);
|
|
};
|
|
table['\''] = dispatch_lex_string;
|
|
table['"'] = dispatch_lex_string;
|
|
table['#'] = dispatch_lex_string;
|
|
|
|
return table;
|
|
};
|
|
|
|
private:
|
|
TokenizedBuffer* buffer_;
|
|
|
|
SourceBufferLocationTranslator translator_;
|
|
LexerDiagnosticEmitter emitter_;
|
|
|
|
TokenLocationTranslator token_translator_;
|
|
TokenDiagnosticEmitter token_emitter_;
|
|
|
|
Line current_line_;
|
|
LineInfo* current_line_info_;
|
|
|
|
int current_column_ = 0;
|
|
bool set_indent_ = false;
|
|
|
|
llvm::SmallVector<Token> open_groups_;
|
|
};
|
|
|
|
auto TokenizedBuffer::Lex(SourceBuffer& source, DiagnosticConsumer& consumer)
|
|
-> TokenizedBuffer {
|
|
TokenizedBuffer buffer(source);
|
|
ErrorTrackingDiagnosticConsumer error_tracking_consumer(consumer);
|
|
Lexer lexer(buffer, error_tracking_consumer);
|
|
|
|
// Build a table of function pointers that we can use to dispatch to the
|
|
// correct lexer routine based on the first byte of source text.
|
|
//
|
|
// While it is tempting to simply use a `switch` on the first byte and
|
|
// dispatch with cases into this, in practice that doesn't produce great code.
|
|
// There seem to be two issues that are the root cause.
|
|
//
|
|
// First, there are lots of different values of bytes that dispatch to a
|
|
// fairly small set of routines, and then some byte values that dispatch
|
|
// differently for each byte. This pattern isn't one that the compiler-based
|
|
// lowering of switches works well with -- it tries to balance all the cases,
|
|
// and in doing so emits several compares and other control flow rather than a
|
|
// simple jump table.
|
|
//
|
|
// Second, with a `case`, it isn't as obvious how to create a single, uniform
|
|
// interface that is effective for *every* byte value, and thus makes for a
|
|
// single consistent table-based dispatch. By forcing these to be function
|
|
// pointers, we also coerce the code to use a strictly homogeneous structure
|
|
// that can form a single dispatch table.
|
|
//
|
|
// These two actually interact -- the second issue is part of what makes the
|
|
// non-table lowering in the first one desirable for many switches and cases.
|
|
//
|
|
// Ultimately, when table-based dispatch is such an important technique, we
|
|
// get better results by taking full control and manually creating the
|
|
// dispatch structures.
|
|
constexpr Lexer::DispatchTableT DispatchTable = Lexer::MakeDispatchTable();
|
|
|
|
llvm::StringRef source_text = source.text();
|
|
while (lexer.SkipWhitespace(source_text)) {
|
|
Lexer::LexResult result =
|
|
DispatchTable[static_cast<unsigned char>(source_text.front())](
|
|
lexer, source_text);
|
|
CARBON_CHECK(result) << "Failed to form a token!";
|
|
}
|
|
|
|
// The end-of-file token is always considered to be whitespace.
|
|
lexer.NoteWhitespace();
|
|
|
|
lexer.CloseInvalidOpenGroups(TokenKind::Error);
|
|
lexer.AddEndOfFileToken();
|
|
|
|
if (error_tracking_consumer.seen_error()) {
|
|
buffer.has_errors_ = true;
|
|
}
|
|
|
|
return buffer;
|
|
}
|
|
|
|
auto TokenizedBuffer::GetKind(Token token) const -> TokenKind {
|
|
return GetTokenInfo(token).kind;
|
|
}
|
|
|
|
auto TokenizedBuffer::GetLine(Token token) const -> Line {
|
|
return GetTokenInfo(token).token_line;
|
|
}
|
|
|
|
auto TokenizedBuffer::GetLineNumber(Token token) const -> int {
|
|
return GetLineNumber(GetLine(token));
|
|
}
|
|
|
|
auto TokenizedBuffer::GetColumnNumber(Token token) const -> int {
|
|
return GetTokenInfo(token).column + 1;
|
|
}
|
|
|
|
auto TokenizedBuffer::GetTokenText(Token token) const -> llvm::StringRef {
|
|
const auto& token_info = GetTokenInfo(token);
|
|
llvm::StringRef fixed_spelling = token_info.kind.fixed_spelling();
|
|
if (!fixed_spelling.empty()) {
|
|
return fixed_spelling;
|
|
}
|
|
|
|
if (token_info.kind == TokenKind::Error) {
|
|
const auto& line_info = GetLineInfo(token_info.token_line);
|
|
int64_t token_start = line_info.start + token_info.column;
|
|
return source_->text().substr(token_start, token_info.error_length);
|
|
}
|
|
|
|
// Refer back to the source text to preserve oddities like radix or digit
|
|
// separators the author included.
|
|
if (token_info.kind == TokenKind::IntegerLiteral ||
|
|
token_info.kind == TokenKind::RealLiteral) {
|
|
const auto& line_info = GetLineInfo(token_info.token_line);
|
|
int64_t token_start = line_info.start + token_info.column;
|
|
std::optional<NumericLiteral> relexed_token =
|
|
NumericLiteral::Lex(source_->text().substr(token_start));
|
|
CARBON_CHECK(relexed_token) << "Could not reform numeric literal token.";
|
|
return relexed_token->text();
|
|
}
|
|
|
|
// Refer back to the source text to find the original spelling, including
|
|
// escape sequences etc.
|
|
if (token_info.kind == TokenKind::StringLiteral) {
|
|
const auto& line_info = GetLineInfo(token_info.token_line);
|
|
int64_t token_start = line_info.start + token_info.column;
|
|
std::optional<StringLiteral> relexed_token =
|
|
StringLiteral::Lex(source_->text().substr(token_start));
|
|
CARBON_CHECK(relexed_token) << "Could not reform string literal token.";
|
|
return relexed_token->text();
|
|
}
|
|
|
|
// Refer back to the source text to avoid needing to reconstruct the
|
|
// spelling from the size.
|
|
if (token_info.kind.is_sized_type_literal()) {
|
|
const auto& line_info = GetLineInfo(token_info.token_line);
|
|
int64_t token_start = line_info.start + token_info.column;
|
|
llvm::StringRef suffix =
|
|
source_->text().substr(token_start + 1).take_while(IsDecimalDigit);
|
|
return llvm::StringRef(suffix.data() - 1, suffix.size() + 1);
|
|
}
|
|
|
|
if (token_info.kind == TokenKind::EndOfFile) {
|
|
return llvm::StringRef();
|
|
}
|
|
|
|
CARBON_CHECK(token_info.kind == TokenKind::Identifier) << token_info.kind;
|
|
return GetIdentifierText(token_info.id);
|
|
}
|
|
|
|
auto TokenizedBuffer::GetIdentifier(Token token) const -> Identifier {
|
|
const auto& token_info = GetTokenInfo(token);
|
|
CARBON_CHECK(token_info.kind == TokenKind::Identifier) << token_info.kind;
|
|
return token_info.id;
|
|
}
|
|
|
|
auto TokenizedBuffer::GetIntegerLiteral(Token token) const
|
|
-> const llvm::APInt& {
|
|
const auto& token_info = GetTokenInfo(token);
|
|
CARBON_CHECK(token_info.kind == TokenKind::IntegerLiteral) << token_info.kind;
|
|
return literal_int_storage_[token_info.literal_index];
|
|
}
|
|
|
|
auto TokenizedBuffer::GetRealLiteral(Token token) const -> RealLiteralValue {
|
|
const auto& token_info = GetTokenInfo(token);
|
|
CARBON_CHECK(token_info.kind == TokenKind::RealLiteral) << token_info.kind;
|
|
|
|
// Note that every real literal is at least three characters long, so we can
|
|
// safely look at the second character to determine whether we have a
|
|
// decimal or hexadecimal literal.
|
|
const auto& line_info = GetLineInfo(token_info.token_line);
|
|
int64_t token_start = line_info.start + token_info.column;
|
|
char second_char = source_->text()[token_start + 1];
|
|
bool is_decimal = second_char != 'x' && second_char != 'b';
|
|
|
|
return {.mantissa = literal_int_storage_[token_info.literal_index],
|
|
.exponent = literal_int_storage_[token_info.literal_index + 1],
|
|
.is_decimal = is_decimal};
|
|
}
|
|
|
|
auto TokenizedBuffer::GetStringLiteral(Token token) const -> llvm::StringRef {
|
|
const auto& token_info = GetTokenInfo(token);
|
|
CARBON_CHECK(token_info.kind == TokenKind::StringLiteral) << token_info.kind;
|
|
return literal_string_storage_[token_info.literal_index];
|
|
}
|
|
|
|
auto TokenizedBuffer::GetTypeLiteralSize(Token token) const
|
|
-> const llvm::APInt& {
|
|
const auto& token_info = GetTokenInfo(token);
|
|
CARBON_CHECK(token_info.kind.is_sized_type_literal()) << token_info.kind;
|
|
return literal_int_storage_[token_info.literal_index];
|
|
}
|
|
|
|
auto TokenizedBuffer::GetMatchedClosingToken(Token opening_token) const
|
|
-> Token {
|
|
const auto& opening_token_info = GetTokenInfo(opening_token);
|
|
CARBON_CHECK(opening_token_info.kind.is_opening_symbol())
|
|
<< opening_token_info.kind;
|
|
return opening_token_info.closing_token;
|
|
}
|
|
|
|
auto TokenizedBuffer::GetMatchedOpeningToken(Token closing_token) const
|
|
-> Token {
|
|
const auto& closing_token_info = GetTokenInfo(closing_token);
|
|
CARBON_CHECK(closing_token_info.kind.is_closing_symbol())
|
|
<< closing_token_info.kind;
|
|
return closing_token_info.opening_token;
|
|
}
|
|
|
|
auto TokenizedBuffer::HasLeadingWhitespace(Token token) const -> bool {
|
|
auto it = TokenIterator(token);
|
|
return it == tokens().begin() || GetTokenInfo(*(it - 1)).has_trailing_space;
|
|
}
|
|
|
|
auto TokenizedBuffer::HasTrailingWhitespace(Token token) const -> bool {
|
|
return GetTokenInfo(token).has_trailing_space;
|
|
}
|
|
|
|
auto TokenizedBuffer::IsRecoveryToken(Token token) const -> bool {
|
|
return GetTokenInfo(token).is_recovery;
|
|
}
|
|
|
|
auto TokenizedBuffer::GetLineNumber(Line line) const -> int {
|
|
return line.index + 1;
|
|
}
|
|
|
|
auto TokenizedBuffer::GetIndentColumnNumber(Line line) const -> int {
|
|
return GetLineInfo(line).indent + 1;
|
|
}
|
|
|
|
auto TokenizedBuffer::GetIdentifierText(Identifier identifier) const
|
|
-> llvm::StringRef {
|
|
return identifier_infos_[identifier.index].text;
|
|
}
|
|
|
|
auto TokenizedBuffer::PrintWidths::Widen(const PrintWidths& widths) -> void {
|
|
index = std::max(widths.index, index);
|
|
kind = std::max(widths.kind, kind);
|
|
column = std::max(widths.column, column);
|
|
line = std::max(widths.line, line);
|
|
indent = std::max(widths.indent, indent);
|
|
}
|
|
|
|
// Compute the printed width of a number. When numbers are printed in decimal,
|
|
// the number of digits needed is is one more than the log-base-10 of the
|
|
// value. We handle a value of `zero` explicitly.
|
|
//
|
|
// This routine requires its argument to be *non-negative*.
|
|
static auto ComputeDecimalPrintedWidth(int number) -> int {
|
|
CARBON_CHECK(number >= 0) << "Negative numbers are not supported.";
|
|
if (number == 0) {
|
|
return 1;
|
|
}
|
|
|
|
return static_cast<int>(std::log10(number)) + 1;
|
|
}
|
|
|
|
auto TokenizedBuffer::GetTokenPrintWidths(Token token) const -> PrintWidths {
|
|
PrintWidths widths = {};
|
|
widths.index = ComputeDecimalPrintedWidth(token_infos_.size());
|
|
widths.kind = GetKind(token).name().size();
|
|
widths.line = ComputeDecimalPrintedWidth(GetLineNumber(token));
|
|
widths.column = ComputeDecimalPrintedWidth(GetColumnNumber(token));
|
|
widths.indent =
|
|
ComputeDecimalPrintedWidth(GetIndentColumnNumber(GetLine(token)));
|
|
return widths;
|
|
}
|
|
|
|
auto TokenizedBuffer::Print(llvm::raw_ostream& output_stream) const -> void {
|
|
if (tokens().begin() == tokens().end()) {
|
|
return;
|
|
}
|
|
|
|
PrintWidths widths = {};
|
|
widths.index = ComputeDecimalPrintedWidth((token_infos_.size()));
|
|
for (Token token : tokens()) {
|
|
widths.Widen(GetTokenPrintWidths(token));
|
|
}
|
|
|
|
output_stream << "[\n";
|
|
for (Token token : tokens()) {
|
|
PrintToken(output_stream, token, widths);
|
|
output_stream << "\n";
|
|
}
|
|
output_stream << "]\n";
|
|
}
|
|
|
|
auto TokenizedBuffer::PrintToken(llvm::raw_ostream& output_stream,
|
|
Token token) const -> void {
|
|
PrintToken(output_stream, token, {});
|
|
}
|
|
|
|
auto TokenizedBuffer::PrintToken(llvm::raw_ostream& output_stream, Token token,
|
|
PrintWidths widths) const -> void {
|
|
widths.Widen(GetTokenPrintWidths(token));
|
|
int token_index = token.index;
|
|
const auto& token_info = GetTokenInfo(token);
|
|
llvm::StringRef token_text = GetTokenText(token);
|
|
|
|
// Output the main chunk using one format string. We have to do the
|
|
// justification manually in order to use the dynamically computed widths
|
|
// and get the quotes included.
|
|
output_stream << llvm::formatv(
|
|
"{ index: {0}, kind: {1}, line: {2}, column: {3}, indent: {4}, "
|
|
"spelling: '{5}'",
|
|
llvm::format_decimal(token_index, widths.index),
|
|
llvm::right_justify(llvm::formatv("'{0}'", token_info.kind.name()).str(),
|
|
widths.kind + 2),
|
|
llvm::format_decimal(GetLineNumber(token_info.token_line), widths.line),
|
|
llvm::format_decimal(GetColumnNumber(token), widths.column),
|
|
llvm::format_decimal(GetIndentColumnNumber(token_info.token_line),
|
|
widths.indent),
|
|
token_text);
|
|
|
|
switch (token_info.kind) {
|
|
case TokenKind::Identifier:
|
|
output_stream << ", identifier: " << GetIdentifier(token).index;
|
|
break;
|
|
case TokenKind::IntegerLiteral:
|
|
output_stream << ", value: `";
|
|
GetIntegerLiteral(token).print(output_stream, /*isSigned=*/false);
|
|
output_stream << "`";
|
|
break;
|
|
case TokenKind::RealLiteral:
|
|
output_stream << ", value: `" << GetRealLiteral(token) << "`";
|
|
break;
|
|
case TokenKind::StringLiteral:
|
|
output_stream << ", value: `" << GetStringLiteral(token) << "`";
|
|
break;
|
|
default:
|
|
if (token_info.kind.is_opening_symbol()) {
|
|
output_stream << ", closing_token: "
|
|
<< GetMatchedClosingToken(token).index;
|
|
} else if (token_info.kind.is_closing_symbol()) {
|
|
output_stream << ", opening_token: "
|
|
<< GetMatchedOpeningToken(token).index;
|
|
}
|
|
break;
|
|
}
|
|
|
|
if (token_info.has_trailing_space) {
|
|
output_stream << ", has_trailing_space: true";
|
|
}
|
|
if (token_info.is_recovery) {
|
|
output_stream << ", recovery: true";
|
|
}
|
|
|
|
output_stream << " },";
|
|
}
|
|
|
|
auto TokenizedBuffer::GetLineInfo(Line line) -> LineInfo& {
|
|
return line_infos_[line.index];
|
|
}
|
|
|
|
auto TokenizedBuffer::GetLineInfo(Line line) const -> const LineInfo& {
|
|
return line_infos_[line.index];
|
|
}
|
|
|
|
auto TokenizedBuffer::AddLine(LineInfo info) -> Line {
|
|
line_infos_.push_back(info);
|
|
return Line(static_cast<int>(line_infos_.size()) - 1);
|
|
}
|
|
|
|
auto TokenizedBuffer::GetTokenInfo(Token token) -> TokenInfo& {
|
|
return token_infos_[token.index];
|
|
}
|
|
|
|
auto TokenizedBuffer::GetTokenInfo(Token token) const -> const TokenInfo& {
|
|
return token_infos_[token.index];
|
|
}
|
|
|
|
auto TokenizedBuffer::AddToken(TokenInfo info) -> Token {
|
|
token_infos_.push_back(info);
|
|
expected_parse_tree_size_ += info.kind.expected_parse_tree_size();
|
|
return Token(static_cast<int>(token_infos_.size()) - 1);
|
|
}
|
|
|
|
auto TokenIterator::Print(llvm::raw_ostream& output) const -> void {
|
|
output << token_.index;
|
|
}
|
|
|
|
auto TokenizedBuffer::SourceBufferLocationTranslator::GetLocation(
|
|
const char* loc) -> DiagnosticLocation {
|
|
CARBON_CHECK(StringRefContainsPointer(buffer_->source_->text(), loc))
|
|
<< "location not within buffer";
|
|
int64_t offset = loc - buffer_->source_->text().begin();
|
|
|
|
// Find the first line starting after the given location. Note that we can't
|
|
// inspect `line.length` here because it is not necessarily correct for the
|
|
// final line during lexing (but will be correct later for the parse tree).
|
|
const auto* line_it = std::partition_point(
|
|
buffer_->line_infos_.begin(), buffer_->line_infos_.end(),
|
|
[offset](const LineInfo& line) { return line.start <= offset; });
|
|
|
|
// Step back one line to find the line containing the given position.
|
|
CARBON_CHECK(line_it != buffer_->line_infos_.begin())
|
|
<< "location precedes the start of the first line";
|
|
--line_it;
|
|
int line_number = line_it - buffer_->line_infos_.begin();
|
|
int column_number = offset - line_it->start;
|
|
|
|
// Start by grabbing the line from the buffer. If the line isn't fully lexed,
|
|
// the length will be npos and the line will be grabbed from the known start
|
|
// to the end of the buffer; we'll then adjust the length.
|
|
llvm::StringRef line =
|
|
buffer_->source_->text().substr(line_it->start, line_it->length);
|
|
if (line_it->length == static_cast<int32_t>(llvm::StringRef::npos)) {
|
|
CARBON_CHECK(line.take_front(column_number).count('\n') == 0)
|
|
<< "Currently we assume no unlexed newlines prior to the error column, "
|
|
"but there was one when erroring at "
|
|
<< buffer_->source_->filename() << ":" << line_number << ":"
|
|
<< column_number;
|
|
// Look for the next newline since we don't know the length. We can start at
|
|
// the column because prior newlines will have been lexed.
|
|
auto end_newline_pos = line.find('\n', column_number);
|
|
if (end_newline_pos != llvm::StringRef::npos) {
|
|
line = line.take_front(end_newline_pos);
|
|
}
|
|
}
|
|
|
|
return {.file_name = buffer_->source_->filename(),
|
|
.line = line,
|
|
.line_number = line_number + 1,
|
|
.column_number = column_number + 1};
|
|
}
|
|
|
|
auto TokenLocationTranslator::GetLocation(Token token) -> DiagnosticLocation {
|
|
// Map the token location into a position within the source buffer.
|
|
const auto& token_info = buffer_->GetTokenInfo(token);
|
|
const auto& line_info = buffer_->GetLineInfo(token_info.token_line);
|
|
const char* token_start =
|
|
buffer_->source_->text().begin() + line_info.start + token_info.column;
|
|
|
|
// Find the corresponding file location.
|
|
// TODO: Should we somehow indicate in the diagnostic location if this token
|
|
// is a recovery token that doesn't correspond to the original source?
|
|
return TokenizedBuffer::SourceBufferLocationTranslator(buffer_).GetLocation(
|
|
token_start);
|
|
}
|
|
|
|
} // namespace Carbon::Lex
|