#include #include #include "dense_bin.hpp" #include "sparse_bin.hpp" #include #include #include #include #include #include namespace LightGBM { BinMapper::BinMapper() { } // deep copy function for BinMapper BinMapper::BinMapper(const BinMapper& other) { num_bin_ = other.num_bin_; is_trival_ = other.is_trival_; sparse_rate_ = other.sparse_rate_; bin_upper_bound_ = std::vector(num_bin_); for (int i = 0; i < num_bin_; ++i) { bin_upper_bound_[i] = other.bin_upper_bound_[i]; } } BinMapper::BinMapper(const void* memory) { CopyFrom(reinterpret_cast(memory)); } BinMapper::~BinMapper() { } void BinMapper::FindBin(std::vector* values, size_t total_sample_cnt, int max_bin) { std::vector& ref_values = (*values); size_t sample_size = total_sample_cnt; int zero_cnt = static_cast(total_sample_cnt - ref_values.size()); // find distinct_values first std::vector distinct_values; std::vector counts; std::sort(ref_values.begin(), ref_values.end()); // push zero in the front if (ref_values.size() == 0 || (ref_values[0] > 0.0f && zero_cnt > 0)) { distinct_values.push_back(0); counts.push_back(zero_cnt); } if (ref_values.size() > 0) { distinct_values.push_back(ref_values[0]); counts.push_back(1); } for (size_t i = 1; i < ref_values.size(); ++i) { if (ref_values[i] != ref_values[i - 1]) { if (ref_values[i - 1] == 0.0f) { counts.back() += zero_cnt; } else if (ref_values[i - 1] < 0.0f && ref_values[i] > 0.0f) { distinct_values.push_back(0); counts.push_back(zero_cnt); } distinct_values.push_back(ref_values[i]); counts.push_back(1); } else { ++counts.back(); } } // push zero in the back if (ref_values.size() > 0 && ref_values.back() < 0.0f && zero_cnt > 0) { distinct_values.push_back(0); counts.push_back(zero_cnt); } int num_values = static_cast(distinct_values.size()); int cnt_in_bin0 = 0; if (num_values <= max_bin) { std::sort(distinct_values.begin(), distinct_values.end()); // use distinct value is enough num_bin_ = num_values; bin_upper_bound_ = std::vector(num_values); for (int i = 0; i < num_values - 1; ++i) { bin_upper_bound_[i] = (distinct_values[i] + distinct_values[i + 1]) / 2; } cnt_in_bin0 = counts[0]; bin_upper_bound_[num_values - 1] = std::numeric_limits::infinity(); } else { // mean size for one bin double mean_bin_size = sample_size / static_cast(max_bin); double static_mean_bin_size = mean_bin_size; std::vector upper_bounds(max_bin, std::numeric_limits::infinity()); std::vector lower_bounds(max_bin, std::numeric_limits::infinity()); int rest_sample_cnt = static_cast(sample_size); int bin_cnt = 0; lower_bounds[bin_cnt] = distinct_values[0]; int cur_cnt_inbin = 0; for (int i = 0; i < num_values - 1; ++i) { rest_sample_cnt -= counts[i]; cur_cnt_inbin += counts[i]; // need a new bin if (counts[i] >= static_mean_bin_size || cur_cnt_inbin >= mean_bin_size || (counts[i + 1] >= static_mean_bin_size && cur_cnt_inbin >= std::max(1.0, mean_bin_size * 0.5f))) { upper_bounds[bin_cnt] = distinct_values[i]; if (bin_cnt == 0) { cnt_in_bin0 = cur_cnt_inbin; } ++bin_cnt; lower_bounds[bin_cnt] = distinct_values[i + 1]; if (bin_cnt >= max_bin - 1) { break; } cur_cnt_inbin = 0; mean_bin_size = rest_sample_cnt / static_cast(max_bin - bin_cnt); } } // ++bin_cnt; // update bin upper bound bin_upper_bound_ = std::vector(bin_cnt); num_bin_ = bin_cnt; for (int i = 0; i < bin_cnt - 1; ++i) { bin_upper_bound_[i] = (upper_bounds[i] + lower_bounds[i + 1]) / 2.0f; } // last bin upper bound bin_upper_bound_[bin_cnt - 1] = std::numeric_limits::infinity(); } // check trival(num_bin_ == 1) feature if (num_bin_ <= 1) { is_trival_ = true; } else { is_trival_ = false; } // calculate sparse rate sparse_rate_ = static_cast(cnt_in_bin0) / static_cast(sample_size); } int BinMapper::SizeForSpecificBin(int bin) { int size = 0; size += sizeof(int); size += sizeof(bool); size += sizeof(double); size += bin * sizeof(double); return size; } void BinMapper::CopyTo(char * buffer) { std::memcpy(buffer, &num_bin_, sizeof(num_bin_)); buffer += sizeof(num_bin_); std::memcpy(buffer, &is_trival_, sizeof(is_trival_)); buffer += sizeof(is_trival_); std::memcpy(buffer, &sparse_rate_, sizeof(sparse_rate_)); buffer += sizeof(sparse_rate_); std::memcpy(buffer, bin_upper_bound_.data(), num_bin_ * sizeof(double)); } void BinMapper::CopyFrom(const char * buffer) { std::memcpy(&num_bin_, buffer, sizeof(num_bin_)); buffer += sizeof(num_bin_); std::memcpy(&is_trival_, buffer, sizeof(is_trival_)); buffer += sizeof(is_trival_); std::memcpy(&sparse_rate_, buffer, sizeof(sparse_rate_)); buffer += sizeof(sparse_rate_); bin_upper_bound_ = std::vector(num_bin_); std::memcpy(bin_upper_bound_.data(), buffer, num_bin_ * sizeof(double)); } void BinMapper::SaveBinaryToFile(FILE* file) const { fwrite(&num_bin_, sizeof(num_bin_), 1, file); fwrite(&is_trival_, sizeof(is_trival_), 1, file); fwrite(&sparse_rate_, sizeof(sparse_rate_), 1, file); fwrite(bin_upper_bound_.data(), sizeof(double), num_bin_, file); } size_t BinMapper::SizesInByte() const { return sizeof(num_bin_) + sizeof(is_trival_) + sizeof(sparse_rate_) + sizeof(double) * num_bin_; } template class DenseBin; template class DenseBin; template class DenseBin; template class SparseBin; template class SparseBin; template class SparseBin; template class OrderedSparseBin; template class OrderedSparseBin; template class OrderedSparseBin; Bin* Bin::CreateBin(data_size_t num_data, int num_bin, double sparse_rate, bool is_enable_sparse, bool* is_sparse, int default_bin) { // sparse threshold const double kSparseThreshold = 0.8f; if (sparse_rate >= kSparseThreshold && is_enable_sparse) { *is_sparse = true; return CreateSparseBin(num_data, num_bin, default_bin); } else { *is_sparse = false; return CreateDenseBin(num_data, num_bin, default_bin); } } Bin* Bin::CreateDenseBin(data_size_t num_data, int num_bin, int default_bin) { if (num_bin <= 256) { return new DenseBin(num_data, default_bin); } else if (num_bin <= 65536) { return new DenseBin(num_data, default_bin); } else { return new DenseBin(num_data, default_bin); } } Bin* Bin::CreateSparseBin(data_size_t num_data, int num_bin, int default_bin) { if (num_bin <= 256) { return new SparseBin(num_data, default_bin); } else if (num_bin <= 65536) { return new SparseBin(num_data, default_bin); } else { return new SparseBin(num_data, default_bin); } } } // namespace LightGBM