Tensorrt8 #285
@@ -180,6 +180,65 @@ public:
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};
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class LayerBNWgs : public Layer {
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public:
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LayerBNWgs(Network* net, int input, int output, std::string fname_weights);
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~LayerBNWgs();
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int inputs, outputs;
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std::string weights_path;
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dnnType* bias_h, * bias_d;
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dnnType* power_h = nullptr;
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dnnType* scales_h = nullptr, * scales_d = nullptr;
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dnnType* mean_h = nullptr, * mean_d = nullptr;
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dnnType* variance_h = nullptr, * variance_d = nullptr;
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__half* bias16_h = nullptr, * bias16_d = nullptr;
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__half* power16_h = nullptr, * power16_d = nullptr;
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__half* scales16_h = nullptr, * scales16_d = nullptr;
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__half* mean16_h = nullptr, * mean16_d = nullptr;
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__half* variance16_h = nullptr, * variance16_d = nullptr;
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void releaseHost(bool release32 = true, bool release16 = true) {
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if (release32) {
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if (bias_h != nullptr) { delete[] bias_h; bias_h = nullptr; }
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if (scales_h != nullptr) { delete[] scales_h; scales_h = nullptr; }
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if (mean_h != nullptr) { delete[] mean_h; mean_h = nullptr; }
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if (variance_h != nullptr) { delete[] variance_h; variance_h = nullptr; }
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if (power_h != nullptr) { delete[] power_h; power_h = nullptr; }
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}
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if (net->fp16 && release16) {
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if (bias16_h != nullptr) { delete[] bias16_h; bias16_h = nullptr; }
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if (scales16_h != nullptr) { delete[] scales16_h; scales16_h = nullptr; }
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if (mean16_h != nullptr) { delete[] mean16_h; mean16_h = nullptr; }
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if (variance16_h != nullptr) { delete[] variance16_h; variance16_h = nullptr; }
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if (power16_h != nullptr) { delete[] power16_h; power16_h = nullptr; }
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}
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}
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void releaseDevice(bool release32 = true, bool release16 = true) {
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if (release32) {
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if (bias_d != nullptr) { cudaFree(bias_d); bias_d = nullptr; }
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if (scales_d != nullptr) { cudaFree(scales_d); scales_d = nullptr; }
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if (mean_d != nullptr) { cudaFree(mean_d); mean_d = nullptr; }
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if (variance_d != nullptr) { cudaFree(variance_d); variance_d = nullptr; }
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}
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if (net->fp16 && release16) {
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if (bias16_d != nullptr) { cudaFree(bias16_d); bias16_d = nullptr; }
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if (scales16_d != nullptr) { cudaFree(scales16_d); scales16_d = nullptr; }
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if (mean16_d != nullptr) { cudaFree(mean16_d); mean16_d = nullptr; }
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if (variance16_d != nullptr) { cudaFree(variance16_d); variance16_d = nullptr; }
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if (power16_d != nullptr) { cudaFree(power16_d); power16_d = nullptr; }
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}
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}
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};
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/**
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Input layer (it doesn't need weights)
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*/
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@@ -0,0 +1,88 @@
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#include <iostream>
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#include <string.h>
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#include "Layer.h"
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#include "kernels.h"
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namespace tk { namespace dnn {
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LayerBNWgs::LayerBNWgs(Network* net, int input, int output, std::string fname_weights) : Layer(net) {
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this->inputs = inputs;
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this->outputs = output;
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this->weights_path = fname_weights;
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std::cout << "Reading BatchNorm O = " << outputs << std::endl;
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int seek = 0;
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readBinaryFile(weights_path.c_str(), outputs, &bias_h, &bias_d, seek);
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seek += outputs;
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readBinaryFile(weights_path.c_str(), outputs, &scales_h, &scales_d, seek);
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seek += outputs;
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readBinaryFile(weights_path.c_str(), outputs, &mean_h, &mean_d, seek);
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seek += outputs;
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readBinaryFile(weights_path.c_str(), outputs, &variance_h, &variance_d, seek);
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seek += outputs;
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float eps = TKDNN_BN_MIN_EPSILON;
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power_h = new dnnType[outputs];
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for (int i = 0; i < outputs; i++) power_h[i] = 1.0f;
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for (int i = 0; i < outputs; i++)
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mean_h[i] = mean_h[i] / -sqrt(eps + variance_h[i]);
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for (int i = 0; i < outputs; i++)
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variance_h[i] = 1.0f / sqrt(eps + variance_h[i]);
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if (!net->fp16)
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return;
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int b_size = outputs;
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bias16_h = new __half[b_size];
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cudaMalloc(&bias16_d, b_size * sizeof(__half));
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float2half(bias_d, bias16_d, b_size);
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cudaMemcpy(bias16_h, bias16_d, b_size * sizeof(__half), cudaMemcpyDeviceToHost);
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power16_h = new __half[b_size];
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mean16_h = new __half[b_size];
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variance16_h = new __half[b_size];
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scales16_h = new __half[b_size];
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cudaMalloc(&power16_d, b_size * sizeof(__half));
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cudaMalloc(&mean16_d, b_size * sizeof(__half));
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cudaMalloc(&variance16_d, b_size * sizeof(__half));
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cudaMalloc(&scales16_d, b_size * sizeof(__half));
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//temporary buffers
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float* tmp_d;
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cudaMalloc(&tmp_d, b_size * sizeof(float));
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//init power array of ones
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cudaMemcpy(tmp_d, power_h, b_size * sizeof(float), cudaMemcpyHostToDevice);
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float2half(tmp_d, power16_d, b_size);
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cudaMemcpy(power16_h, power16_d, b_size * sizeof(__half), cudaMemcpyDeviceToHost);
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//mean array
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cudaMemcpy(tmp_d, mean_h, b_size * sizeof(float), cudaMemcpyHostToDevice);
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float2half(tmp_d, mean16_d, b_size);
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cudaMemcpy(mean16_h, mean16_d, b_size * sizeof(__half), cudaMemcpyDeviceToHost);
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//convert variance
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cudaMemcpy(tmp_d, variance_h, b_size * sizeof(float), cudaMemcpyHostToDevice);
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float2half(tmp_d, variance16_d, b_size);
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cudaMemcpy(variance16_h, variance16_d, b_size * sizeof(__half), cudaMemcpyDeviceToHost);
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//convert scales
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float2half(scales_d, scales16_d, b_size);
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cudaMemcpy(scales16_h, scales16_d, b_size * sizeof(__half), cudaMemcpyDeviceToHost);
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cudaFree(tmp_d);
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}
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LayerBNWgs::~LayerBNWgs() {
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releaseHost();
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releaseDevice();
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}
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} }
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