/*! * Copyright (c) 2017 Microsoft Corporation. All rights reserved. * Licensed under the MIT License. See LICENSE file in the project root for license information. */ #ifndef LIGHTGBM_IO_DENSE_NBITS_BIN_HPP_ #define LIGHTGBM_IO_DENSE_NBITS_BIN_HPP_ #include #include #include #include namespace LightGBM { class Dense4bitsBin; class Dense4bitsBinIterator : public BinIterator { public: explicit Dense4bitsBinIterator(const Dense4bitsBin* bin_data, uint32_t min_bin, uint32_t max_bin, uint32_t most_freq_bin) : bin_data_(bin_data), min_bin_(static_cast(min_bin)), max_bin_(static_cast(max_bin)), most_freq_bin_(static_cast(most_freq_bin)) { if (most_freq_bin_ == 0) { offset_ = 1; } else { offset_ = 0; } } inline uint32_t RawGet(data_size_t idx) override; inline uint32_t Get(data_size_t idx) override; inline void Reset(data_size_t) override {} private: const Dense4bitsBin* bin_data_; uint8_t min_bin_; uint8_t max_bin_; uint8_t most_freq_bin_; uint8_t offset_; }; class Dense4bitsBin : public Bin { public: friend Dense4bitsBinIterator; explicit Dense4bitsBin(data_size_t num_data) : num_data_(num_data) { int len = (num_data_ + 1) / 2; data_.resize(len, static_cast(0)); buf_ = std::vector(len, static_cast(0)); } ~Dense4bitsBin() { } void Push(int, data_size_t idx, uint32_t value) override { const int i1 = idx >> 1; const int i2 = (idx & 1) << 2; const uint8_t val = static_cast(value) << i2; if (i2 == 0) { data_[i1] = val; } else { buf_[i1] = val; } } void ReSize(data_size_t num_data) override { if (num_data_ != num_data) { num_data_ = num_data; const int len = (num_data_ + 1) / 2; data_.resize(len); } } inline BinIterator* GetIterator(uint32_t min_bin, uint32_t max_bin, uint32_t most_freq_bin) const override; template void ConstructHistogramInner(const data_size_t* data_indices, data_size_t start, data_size_t end, const score_t* ordered_gradients, const score_t* ordered_hessians, hist_t* out) const { data_size_t i = start; hist_t* grad = out; hist_t* hess = out + 1; hist_cnt_t* cnt = reinterpret_cast(hess); if (USE_PREFETCH) { const data_size_t pf_offset = 64; const data_size_t pf_end = end - pf_offset; for (; i < pf_end; ++i) { const auto idx = USE_INDICES ? data_indices[i] : i; const auto pf_idx = USE_INDICES ? data_indices[i + pf_offset] : i + pf_offset; PREFETCH_T0(data_.data() + (pf_idx >> 1)); const uint8_t bin = (data_[idx >> 1] >> ((idx & 1) << 2)) & 0xf; const uint8_t ti = static_cast(bin) << 1; if (USE_HESSIAN) { grad[ti] += ordered_gradients[i]; hess[ti] += ordered_hessians[i]; } else { grad[ti] += ordered_gradients[i]; ++cnt[ti]; } } } for (; i < end; ++i) { const auto idx = USE_INDICES ? data_indices[i] : i; const uint8_t bin = (data_[idx >> 1] >> ((idx & 1) << 2)) & 0xf; const uint8_t ti = static_cast(bin) << 1; if (USE_HESSIAN) { grad[ti] += ordered_gradients[i]; hess[ti] += ordered_hessians[i]; } else { grad[ti] += ordered_gradients[i]; ++cnt[ti]; } } } void ConstructHistogram(const data_size_t* data_indices, data_size_t start, data_size_t end, const score_t* ordered_gradients, const score_t* ordered_hessians, hist_t* out) const override { ConstructHistogramInner(data_indices, start, end, ordered_gradients, ordered_hessians, out); } void ConstructHistogram(data_size_t start, data_size_t end, const score_t* ordered_gradients, const score_t* ordered_hessians, hist_t* out) const override { ConstructHistogramInner(nullptr, start, end, ordered_gradients, ordered_hessians, out); } void ConstructHistogram(const data_size_t* data_indices, data_size_t start, data_size_t end, const score_t* ordered_gradients, hist_t* out) const override { ConstructHistogramInner(data_indices, start, end, ordered_gradients, nullptr, out); } void ConstructHistogram(data_size_t start, data_size_t end, const score_t* ordered_gradients, hist_t* out) const override { ConstructHistogramInner(nullptr, start, end, ordered_gradients, nullptr, out); } data_size_t Split( uint32_t min_bin, uint32_t max_bin, uint32_t default_bin, uint32_t most_freq_bin, MissingType missing_type, bool default_left, uint32_t threshold, data_size_t* data_indices, data_size_t num_data, data_size_t* lte_indices, data_size_t* gt_indices) const override { if (num_data <= 0) { return 0; } uint8_t th = static_cast(threshold + min_bin); const uint8_t minb = static_cast(min_bin); const uint8_t maxb = static_cast(max_bin); uint8_t t_zero_bin = static_cast(min_bin + default_bin); uint8_t t_most_freq_bin = static_cast(min_bin + most_freq_bin); if (most_freq_bin == 0) { th -= 1; t_zero_bin -= 1; t_most_freq_bin -= 1; } data_size_t lte_count = 0; data_size_t gt_count = 0; data_size_t* default_indices = gt_indices; data_size_t* default_count = >_count; data_size_t* missing_default_indices = gt_indices; data_size_t* missing_default_count = >_count; if (most_freq_bin <= threshold) { default_indices = lte_indices; default_count = <e_count; } if (missing_type == MissingType::NaN) { if (default_left) { missing_default_indices = lte_indices; missing_default_count = <e_count; } if (t_most_freq_bin == maxb) { for (data_size_t i = 0; i < num_data; ++i) { const data_size_t idx = data_indices[i]; const uint8_t bin = (data_[idx >> 1] >> ((idx & 1) << 2)) & 0xf; if (t_most_freq_bin == bin || bin < minb || bin > maxb) { missing_default_indices[(*missing_default_count)++] = idx; } else if (bin > th) { gt_indices[gt_count++] = idx; } else { lte_indices[lte_count++] = idx; } } } else { for (data_size_t i = 0; i < num_data; ++i) { const data_size_t idx = data_indices[i]; const uint8_t bin = (data_[idx >> 1] >> ((idx & 1) << 2)) & 0xf; if (bin == maxb) { missing_default_indices[(*missing_default_count)++] = idx; } else if (bin < minb || bin > maxb || t_most_freq_bin == bin) { default_indices[(*default_count)++] = idx; } else if (bin > th) { gt_indices[gt_count++] = idx; } else { lte_indices[lte_count++] = idx; } } } } else { if ((default_left && missing_type == MissingType::Zero) || (default_bin <= threshold && missing_type != MissingType::Zero)) { missing_default_indices = lte_indices; missing_default_count = <e_count; } if (default_bin == most_freq_bin) { for (data_size_t i = 0; i < num_data; ++i) { const data_size_t idx = data_indices[i]; const uint8_t bin = (data_[idx >> 1] >> ((idx & 1) << 2)) & 0xf; if (bin < minb || bin > maxb || t_most_freq_bin == bin) { missing_default_indices[(*missing_default_count)++] = idx; } else if (bin > th) { gt_indices[gt_count++] = idx; } else { lte_indices[lte_count++] = idx; } } } else { for (data_size_t i = 0; i < num_data; ++i) { const data_size_t idx = data_indices[i]; const uint8_t bin = (data_[idx >> 1] >> ((idx & 1) << 2)) & 0xf; if (bin == t_zero_bin) { missing_default_indices[(*missing_default_count)++] = idx; } else if (bin < minb || bin > maxb || t_most_freq_bin == bin) { default_indices[(*default_count)++] = idx; } else if (bin > th) { gt_indices[gt_count++] = idx; } else { lte_indices[lte_count++] = idx; } } } } return lte_count; } data_size_t SplitCategorical( uint32_t min_bin, uint32_t max_bin, uint32_t most_freq_bin, const uint32_t* threshold, int num_threahold, data_size_t* data_indices, data_size_t num_data, data_size_t* lte_indices, data_size_t* gt_indices) const override { if (num_data <= 0) { return 0; } data_size_t lte_count = 0; data_size_t gt_count = 0; data_size_t* default_indices = gt_indices; data_size_t* default_count = >_count; if (Common::FindInBitset(threshold, num_threahold, most_freq_bin)) { default_indices = lte_indices; default_count = <e_count; } for (data_size_t i = 0; i < num_data; ++i) { const data_size_t idx = data_indices[i]; const uint32_t bin = (data_[idx >> 1] >> ((idx & 1) << 2)) & 0xf; if (bin < min_bin || bin > max_bin) { default_indices[(*default_count)++] = idx; } else if (Common::FindInBitset(threshold, num_threahold, bin - min_bin)) { lte_indices[lte_count++] = idx; } else { gt_indices[gt_count++] = idx; } } return lte_count; } data_size_t num_data() const override { return num_data_; } void FinishLoad() override { if (buf_.empty()) { return; } int len = (num_data_ + 1) / 2; for (int i = 0; i < len; ++i) { data_[i] |= buf_[i]; } buf_.clear(); } void LoadFromMemory(const void* memory, const std::vector& local_used_indices) override { const uint8_t* mem_data = reinterpret_cast(memory); if (!local_used_indices.empty()) { const data_size_t rest = num_data_ & 1; for (int i = 0; i < num_data_ - rest; i += 2) { // get old bins data_size_t idx = local_used_indices[i]; const auto bin1 = static_cast((mem_data[idx >> 1] >> ((idx & 1) << 2)) & 0xf); idx = local_used_indices[i + 1]; const auto bin2 = static_cast((mem_data[idx >> 1] >> ((idx & 1) << 2)) & 0xf); // add const int i1 = i >> 1; data_[i1] = (bin1 | (bin2 << 4)); } if (rest) { data_size_t idx = local_used_indices[num_data_ - 1]; data_[num_data_ >> 1] = (mem_data[idx >> 1] >> ((idx & 1) << 2)) & 0xf; } } else { for (size_t i = 0; i < data_.size(); ++i) { data_[i] = mem_data[i]; } } } void CopySubrow(const Bin* full_bin, const data_size_t* used_indices, data_size_t num_used_indices) override { auto other_bin = dynamic_cast(full_bin); const data_size_t rest = num_used_indices & 1; for (int i = 0; i < num_used_indices - rest; i += 2) { data_size_t idx = used_indices[i]; const auto bin1 = static_cast((other_bin->data_[idx >> 1] >> ((idx & 1) << 2)) & 0xf); idx = used_indices[i + 1]; const auto bin2 = static_cast((other_bin->data_[idx >> 1] >> ((idx & 1) << 2)) & 0xf); const int i1 = i >> 1; data_[i1] = (bin1 | (bin2 << 4)); } if (rest) { data_size_t idx = used_indices[num_used_indices - 1]; data_[num_used_indices >> 1] = (other_bin->data_[idx >> 1] >> ((idx & 1) << 2)) & 0xf; } } void SaveBinaryToFile(const VirtualFileWriter* writer) const override { writer->Write(data_.data(), sizeof(uint8_t) * data_.size()); } size_t SizesInByte() const override { return sizeof(uint8_t) * data_.size(); } Dense4bitsBin* Clone() override { return new Dense4bitsBin(*this); } protected: Dense4bitsBin(const Dense4bitsBin& other) : num_data_(other.num_data_), data_(other.data_), buf_(other.buf_) { } data_size_t num_data_; std::vector> data_; std::vector buf_; }; uint32_t Dense4bitsBinIterator::Get(data_size_t idx) { const auto bin = (bin_data_->data_[idx >> 1] >> ((idx & 1) << 2)) & 0xf; if (bin >= min_bin_ && bin <= max_bin_) { return bin - min_bin_ + offset_; } else { return most_freq_bin_; } } uint32_t Dense4bitsBinIterator::RawGet(data_size_t idx) { return (bin_data_->data_[idx >> 1] >> ((idx & 1) << 2)) & 0xf; } inline BinIterator* Dense4bitsBin::GetIterator(uint32_t min_bin, uint32_t max_bin, uint32_t most_freq_bin) const { return new Dense4bitsBinIterator(this, min_bin, max_bin, most_freq_bin); } } // namespace LightGBM #endif // LIGHTGBM_IO_DENSE_NBITS_BIN_HPP_