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tkDNN/src/Conv2d.cpp
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Davide Sapienza 4361d5fec0 Remove the final parameter from the layers
Signed-off-by: Davide Sapienza <sapienza.dav@gmail.com>
2020-04-09 18:48:03 +02:00

210 lines
7.9 KiB
C++

#include <iostream>
#include "Layer.h"
namespace tk { namespace dnn {
void Conv2d::initCUDNN(bool back) {
cudnnTensorDescriptor_t srcTensor = srcTensorDesc;
cudnnTensorDescriptor_t dstTensor = dstTensorDesc;
dataDim_t idim, odim;
if(!back) {
idim = input_dim;
odim = output_dim;
} else {
idim = output_dim;
odim = input_dim;
}
checkCUDNN( cudnnCreateFilterDescriptor(&filterDesc) );
checkCUDNN( cudnnCreateConvolutionDescriptor(&convDesc) );
checkCUDNN( cudnnCreateTensorDescriptor(&biasTensorDesc) );
// input tensor dim
checkCUDNN( cudnnSetTensor4dDescriptor(srcTensor,
net->tensorFormat, net->dataType, idim.n, idim.c, idim.h, idim.w) );
checkCUDNN( cudnnSetFilter4dDescriptor(filterDesc,
net->dataType, net->tensorFormat, odim.c, idim.c/groups,
kernelH, kernelW) );
checkCUDNN( cudnnSetConvolution2dDescriptor(convDesc,
paddingH, paddingW, // padding
strideH, strideW, // stride
1,1, // upscale
CUDNN_CROSS_CORRELATION, CUDNN_DATA_FLOAT) );
checkCUDNN( cudnnSetConvolutionGroupCount(convDesc,
groups) );
// check dimension of convolution output
dataDim_t tmpdim;
checkCUDNN( cudnnGetConvolution2dForwardOutputDim(
convDesc, srcTensor, filterDesc,
&tmpdim.n, &tmpdim.c, &tmpdim.h, &tmpdim.w) );
if(odim.n != tmpdim.n || odim.c != tmpdim.c || odim.h != tmpdim.h || odim.w != tmpdim.w) {
std::cout<<"tkdim input: "; idim.print();
std::cout<<"tkdim output: "; odim.print();
std::cout<<"cudnndim: "; tmpdim.print();
FatalError("Error conv dimension mismatch");
}
checkCUDNN( cudnnSetTensor4dDescriptor(dstTensor,
net->tensorFormat, net->dataType, odim.n, odim.c, odim.h, odim.w) );
checkCUDNN( cudnnSetTensor4dDescriptor(biasTensorDesc,
net->tensorFormat, net->dataType,
1, output_dim.c, 1, 1) );
// init workspace
workSpace = NULL;
ws_sizeInBytes = 0;
if(back) {
checkCUDNN( cudnnGetConvolutionBackwardDataAlgorithm(net->cudnnHandle,
filterDesc, dstTensor, convDesc, srcTensor,
CUDNN_CONVOLUTION_BWD_DATA_PREFER_FASTEST, 0, &bwAlgo) );
checkCUDNN(cudnnGetConvolutionBackwardDataWorkspaceSize(net->cudnnHandle,
filterDesc, dstTensor, convDesc, srcTensor,
bwAlgo, &ws_sizeInBytes));
// invert tensors
srcTensorDesc = dstTensor;
dstTensorDesc = srcTensor;
} else {
checkCUDNN( cudnnGetConvolutionForwardAlgorithm(net->cudnnHandle,
srcTensor, filterDesc, convDesc, dstTensor,
CUDNN_CONVOLUTION_FWD_PREFER_FASTEST, 0, &algo) );
checkCUDNN(cudnnGetConvolutionForwardWorkspaceSize(net->cudnnHandle,
srcTensor, filterDesc, convDesc, dstTensor,
algo, &ws_sizeInBytes));
}
}
void Conv2d::inferCUDNN(dnnType* srcData, bool back) {
dnnType alpha = dnnType(1);
dnnType beta = dnnType(0);
if(back) {
checkCUDNN(cudnnConvolutionBackwardData(net->cudnnHandle,
&alpha, filterDesc, data_d,
srcTensorDesc, srcData,
convDesc, bwAlgo, workSpace, ws_sizeInBytes,
&beta, dstTensorDesc, dstData));
} else {
checkCUDNN(cudnnConvolutionForward(net->cudnnHandle,
&alpha, srcTensorDesc, srcData, filterDesc,
data_d, convDesc, algo, workSpace, ws_sizeInBytes,
&beta, dstTensorDesc, dstData));
}
if(!batchnorm && !additional_bias) { //CHECK WITH IF CORRECT
// bias
alpha = dnnType(1);
beta = dnnType(1);
checkCUDNN( cudnnAddTensor(net->cudnnHandle,
&alpha, biasTensorDesc, bias_d,
&beta, dstTensorDesc, dstData) );
} else {
if(additional_bias)
{
alpha = dnnType(1);
beta = dnnType(1);
checkCUDNN( cudnnAddTensor(net->cudnnHandle,
&alpha, biasTensorDesc, bias2_d,
&beta, dstTensorDesc, dstData) );
}
if(batchnorm)
{
alpha = dnnType(1);
beta = dnnType(0);
checkCUDNN( cudnnBatchNormalizationForwardInference(net->cudnnHandle,
CUDNN_BATCHNORM_SPATIAL, &alpha, &beta,
dstTensorDesc, dstData, dstTensorDesc,
dstData, biasTensorDesc, //same tensor descriptor as bias
scales_d, bias_d, mean_d, variance_d,
TKDNN_BN_MIN_EPSILON) );
}
}
}
Conv2d::Conv2d( Network *net, int out_ch, int kernelH, int kernelW,
int strideH, int strideW, int paddingH, int paddingW,
std::string fname_weights, bool batchnorm, bool deConv, int groups, bool additional_bias) :
LayerWgs(net, net->getOutputDim().c, out_ch, kernelH, kernelW, 1,
fname_weights, batchnorm, additional_bias, deConv, groups) {
this->kernelH = kernelH;
this->kernelW = kernelW;
this->strideH = strideH;
this->strideW = strideW;
this->paddingH = paddingH;
this->paddingW = paddingW;
this->deConv = deConv;
this->groups = groups;
this->additional_bias = additional_bias;
if(!deConv) {
output_dim.n = input_dim.n;
output_dim.c = out_ch;
output_dim.h = (input_dim.h + 2 * paddingH - kernelH) / strideH + 1;
output_dim.w = (input_dim.w + 2 * paddingW - kernelW) / strideW + 1;
output_dim.l = 1;
} else {
output_dim.n = input_dim.n;
output_dim.c = out_ch;
output_dim.h = ((input_dim.h-1) * strideH) - 2*paddingH + kernelH;
output_dim.w = ((input_dim.w-1) * strideW) - 2*paddingW + kernelW;
output_dim.l = 1;
}
initCUDNN(deConv);
// allocate warkspace
if (ws_sizeInBytes!=0) {
checkCuda( cudaMalloc(&workSpace, ws_sizeInBytes) );
}
//allocate data for infer result
checkCuda( cudaMalloc(&dstData, output_dim.tot()*sizeof(dnnType)) );
}
Conv2d::~Conv2d() {
checkCUDNN( cudnnDestroyFilterDescriptor(filterDesc) );
checkCUDNN( cudnnDestroyConvolutionDescriptor(convDesc) );
checkCUDNN( cudnnDestroyTensorDescriptor(biasTensorDesc) );
if (ws_sizeInBytes!=0)
checkCuda( cudaFree(workSpace) );
checkCuda( cudaFree(dstData) );
}
dnnType* Conv2d::infer(dataDim_t &dim, dnnType* srcData) {
if(deConv) {
FatalError("you must use DeConv class for Deconvolutional layers");
}
// convolution
inferCUDNN(srcData, false);
//update data dimensions
dim = output_dim;
return dstData;
}
dnnType* DeConv2d::infer(dataDim_t &dim, dnnType* srcData) {
// convolution
inferCUDNN(srcData, true);
//update data dimensions
dim = output_dim;
return dstData;
}
}}