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Pods/abseil/absl/debugging/internal/bounded_utf8_length_sequence.h
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Pods/abseil/absl/debugging/internal/bounded_utf8_length_sequence.h
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// Copyright 2024 The Abseil Authors
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// https://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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#ifndef ABSL_DEBUGGING_INTERNAL_BOUNDED_UTF8_LENGTH_SEQUENCE_H_
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#define ABSL_DEBUGGING_INTERNAL_BOUNDED_UTF8_LENGTH_SEQUENCE_H_
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#include <cstdint>
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#include "absl/base/config.h"
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#include "absl/numeric/bits.h"
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namespace absl {
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ABSL_NAMESPACE_BEGIN
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namespace debugging_internal {
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// A sequence of up to max_elements integers between 1 and 4 inclusive, whose
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// insertion operation computes the sum of all the elements before the insertion
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// point. This is useful in decoding Punycode, where one needs to know where in
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// a UTF-8 byte stream the n-th code point begins.
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//
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// BoundedUtf8LengthSequence is async-signal-safe and suitable for use in
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// symbolizing stack traces in a signal handler, provided max_elements is not
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// improvidently large. For inputs of lengths accepted by the Rust demangler,
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// up to a couple hundred code points, InsertAndReturnSumOfPredecessors should
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// run in a few dozen clock cycles, on par with the other arithmetic required
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// for Punycode decoding.
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template <uint32_t max_elements>
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class BoundedUtf8LengthSequence {
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public:
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// Constructs an empty sequence.
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BoundedUtf8LengthSequence() = default;
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// Inserts `utf_length` at position `index`, shifting any existing elements at
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// or beyond `index` one position to the right. If the sequence is already
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// full, the rightmost element is discarded.
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//
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// Returns the sum of the elements at positions 0 to `index - 1` inclusive.
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// If `index` is greater than the number of elements already inserted, the
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// excess positions in the range count 1 apiece.
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//
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// REQUIRES: index < max_elements and 1 <= utf8_length <= 4.
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uint32_t InsertAndReturnSumOfPredecessors(
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uint32_t index, uint32_t utf8_length) {
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// The caller shouldn't pass out-of-bounds inputs, but if it does happen,
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// clamp the values and try to continue. If we're being called from a
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// signal handler, the last thing we want to do is crash. Emitting
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// malformed UTF-8 is a lesser evil.
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if (index >= max_elements) index = max_elements - 1;
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if (utf8_length == 0 || utf8_length > 4) utf8_length = 1;
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const uint32_t word_index = index/32;
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const uint32_t bit_index = 2 * (index % 32);
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const uint64_t ones_bit = uint64_t{1} << bit_index;
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// Compute the sum of predecessors.
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// - Each value from 1 to 4 is represented by a bit field with value from
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// 0 to 3, so the desired sum is index plus the sum of the
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// representations actually stored.
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// - For each bit field, a set low bit should contribute 1 to the sum, and
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// a set high bit should contribute 2.
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// - Another way to say the same thing is that each set bit contributes 1,
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// and each set high bit contributes an additional 1.
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// - So the sum we want is index + popcount(everything) + popcount(bits in
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// odd positions).
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const uint64_t odd_bits_mask = 0xaaaaaaaaaaaaaaaa;
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const uint64_t lower_seminibbles_mask = ones_bit - 1;
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const uint64_t higher_seminibbles_mask = ~lower_seminibbles_mask;
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const uint64_t same_word_bits_below_insertion =
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rep_[word_index] & lower_seminibbles_mask;
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int full_popcount = absl::popcount(same_word_bits_below_insertion);
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int odd_popcount =
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absl::popcount(same_word_bits_below_insertion & odd_bits_mask);
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for (uint32_t j = word_index; j > 0; --j) {
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const uint64_t word_below_insertion = rep_[j - 1];
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full_popcount += absl::popcount(word_below_insertion);
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odd_popcount += absl::popcount(word_below_insertion & odd_bits_mask);
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}
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const uint32_t sum_of_predecessors =
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index + static_cast<uint32_t>(full_popcount + odd_popcount);
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// Now insert utf8_length's representation, shifting successors up one
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// place.
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for (uint32_t j = max_elements/32 - 1; j > word_index; --j) {
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rep_[j] = (rep_[j] << 2) | (rep_[j - 1] >> 62);
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}
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rep_[word_index] =
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(rep_[word_index] & lower_seminibbles_mask) |
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(uint64_t{utf8_length - 1} << bit_index) |
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((rep_[word_index] & higher_seminibbles_mask) << 2);
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return sum_of_predecessors;
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}
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private:
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// If the (32 * i + j)-th element of the represented sequence has the value k
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// (0 <= j < 32, 1 <= k <= 4), then bits 2 * j and 2 * j + 1 of rep_[i]
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// contain the seminibble (k - 1).
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//
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// In particular, the zero-initialization of rep_ makes positions not holding
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// any inserted element count as 1 in InsertAndReturnSumOfPredecessors.
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//
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// Example: rep_ = {0xb1, ... the rest zeroes ...} represents the sequence
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// (2, 1, 4, 3, ... the rest 1's ...). Constructing the sequence of Unicode
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// code points "Àa🂻中" = {U+00C0, U+0061, U+1F0BB, U+4E2D} (among many
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// other examples) would yield this value of rep_.
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static_assert(max_elements > 0 && max_elements % 32 == 0,
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"max_elements must be a positive multiple of 32");
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uint64_t rep_[max_elements/32] = {};
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};
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} // namespace debugging_internal
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ABSL_NAMESPACE_END
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} // namespace absl
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#endif // ABSL_DEBUGGING_INTERNAL_BOUNDED_UTF8_LENGTH_SEQUENCE_H_
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