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triton/examples/cpp/shift.cpp

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#include <cstring>
#include <cstdio>
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#include <sstream>
#include "triton/runtime/jit.h"
#include "triton/driver/backend.h"
#include "triton/driver/stream.h"
#include "triton/tools/bench.hpp"
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#include "triton/dnn/shift.h"
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#include "triton/external/half.hpp"
int main() {
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typedef half_float::half NumericT;
std::string numeric_t_str = "fp16";
// initialize default compute device
auto context = triton::driver::backend::contexts::get_default();
// initialize just-in-time compiler
triton::jit jit(context);
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// initialization
int32_t R = 3, S = 3;
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int32_t BS = 32, F = 1024;
int32_t H = 32, W = 32;
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int32_t C = 1024;
// random shifts
std::vector<int32_t> shift_h(C);
std::vector<int32_t> shift_w(C);
for(int32_t c = 0; c < C; c++){
shift_h[c] = rand() % R - R/2;
shift_w[c] = rand() % S - S/2;
}
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// configuration
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triton::dnn::shift shift(BS, C, 1, H, W, 1, R, S, F, shift_h, shift_w, numeric_t_str, numeric_t_str, triton::dnn::shift::FPROP);
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// host buffers
std::vector<float> hc(shift.c_size());
std::vector<float> rc(shift.c_size());
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std::vector<NumericT> ha(shift.a_size());
std::vector<NumericT> hb(shift.b_size());
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// device buffers
triton::driver::buffer* dc = triton::driver::buffer::create(context, hc.size()*4);
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triton::driver::buffer* da = triton::driver::buffer::create(context, ha.size()*sizeof(NumericT));
triton::driver::buffer* db = triton::driver::buffer::create(context, hb.size()*sizeof(NumericT));
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triton::driver::stream* stream = triton::driver::stream::create(context);
// initialize host
srand(0);
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for(size_t i = 0; i < ha.size(); i++)
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ha[i] = (NumericT)rand() / RAND_MAX;
for(size_t i = 0; i < hb.size(); i++)
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hb[i] = (NumericT)rand() / RAND_MAX;
for(size_t i = 0; i < hc.size(); i++)
hc[i] = 0;
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// initialize device
stream->write(da, true, 0, ha);
stream->write(db, true, 0, hb);
stream->write(dc, true, 0, hc);
stream->synchronize();
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// benchmark
auto benchmark = [&](triton::driver::kernel* kernel,
triton::jit::launch_information info) {
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shift.init(stream, (triton::driver::cu_module*)kernel->module());
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// launch infoRR
unsigned TM = info.global_range_size[0];
unsigned TN = info.global_range_size[1];
unsigned nthreads = info.num_threads;
// set argument
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shift.enqueue(stream, kernel, da, db, dc, TM, TN, nthreads);
stream->synchronize();
// benchmark
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double ts = triton::tools::bench([&](){shift.enqueue(stream, kernel, da, db, dc, TM, TN, nthreads);},
[&](){ stream->synchronize(); }, context->device());
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return shift.get_nflops() / ts * 1e-3;
};
// shift
std::vector<unsigned> params = {
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16, 4, 64, 16, 4, 128, 2, 2, 1, 2, 4, 4, 16, 4
};
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std::ostringstream oss;
shift.src(oss);
std::string src = oss.str();
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jit.autotune("shift", src.c_str(), benchmark);
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jit.add_module("shift", src.c_str(), params);
triton::driver::kernel* kernel = jit.get_function("shift");
triton::jit::launch_information info = jit.get_launch_info("shift");
std::cout << "Performance: " << benchmark(kernel, info) << " TFLOPS " << std::endl;
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// stream->read(dc, true, 0, hc);
// shift.cpu_ref(rc.data(), ha.data(), hb.data());
// for(size_t i = 0; i < hc.size(); i++)
// if(std::isnan(hc[i]) || std::abs(hc[i] - rc[i])/std::max(hc[i], rc[i]) > 1e-4){
// std::cout << i << " " << hc[i] << " " << rc[i] << std::endl;
// exit(EXIT_FAILURE);
// }
// std::cout << "Pass!" << std::endl;
}