* Pre-compiling kernel binaries when setting up the benchmark, like OpenCL equivalent * Using the linear access syntax for buffers
249 lines
5.8 KiB
C++
249 lines
5.8 KiB
C++
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// Copyright (c) 2015-16 Tom Deakin, Simon McIntosh-Smith,
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// University of Bristol HPC
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//
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// For full license terms please see the LICENSE file distributed with this
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// source code
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#include "SYCLStream.h"
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#include <iostream>
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using namespace cl::sycl;
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// Cache list of devices
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bool cached = false;
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std::vector<device> devices;
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void getDeviceList(void);
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program * p;
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/* Forward declaration of SYCL kernels */
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namespace kernels {
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class copy;
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class mul;
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class add;
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class triad;
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}
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template <class T>
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SYCLStream<T>::SYCLStream(const unsigned int ARRAY_SIZE, const int device_index)
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{
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if (!cached)
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getDeviceList();
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array_size = ARRAY_SIZE;
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if (device_index >= devices.size())
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throw std::runtime_error("Invalid device index");
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device dev = devices[device_index];
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// Print out device information
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std::cout << "Using SYCL device " << getDeviceName(device_index) << std::endl;
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std::cout << "Driver: " << getDeviceDriver(device_index) << std::endl;
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queue = new cl::sycl::queue(dev);
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/* Pre-build the kernels */
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p = new program(queue->get_context());
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p->build_from_kernel_name<kernels::copy>();
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p->build_from_kernel_name<kernels::mul>();
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p->build_from_kernel_name<kernels::add>();
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p->build_from_kernel_name<kernels::triad>();
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// Create buffers
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d_a = new buffer<T>(array_size);
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d_b = new buffer<T>(array_size);
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d_c = new buffer<T>(array_size);
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}
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template <class T>
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SYCLStream<T>::~SYCLStream()
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{
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delete d_a;
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delete d_b;
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delete d_c;
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delete p;
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delete queue;
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}
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template <class T>
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void SYCLStream<T>::copy()
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{
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queue->submit([&](handler &cgh)
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{
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auto ka = d_a->template get_access<access::mode::read>(cgh);
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auto kc = d_c->template get_access<access::mode::write>(cgh);
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cgh.parallel_for<kernels::copy>(p->get_kernel<kernels::copy>(),
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range<1>{array_size}, [=](item<1> item)
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{
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auto id = item.get();
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kc[id[0]] = ka[id[0]];
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});
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});
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queue->wait();
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}
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template <class T>
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void SYCLStream<T>::mul()
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{
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const T scalar = 0.3;
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queue->submit([&](handler &cgh)
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{
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auto kb = d_b->template get_access<access::mode::write>(cgh);
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auto kc = d_c->template get_access<access::mode::read>(cgh);
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cgh.parallel_for<kernels::mul>(p->get_kernel<kernels::mul>(),
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range<1>{array_size}, [=](item<1> item)
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{
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auto id = item.get();
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kb[id[0]] = scalar * kc[id[0]];
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});
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});
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queue->wait();
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}
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template <class T>
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void SYCLStream<T>::add()
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{
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queue->submit([&](handler &cgh)
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{
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auto ka = d_a->template get_access<access::mode::read>(cgh);
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auto kb = d_b->template get_access<access::mode::read>(cgh);
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auto kc = d_c->template get_access<access::mode::write>(cgh);
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cgh.parallel_for<kernels::add>(p->get_kernel<kernels::add>(),
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range<1>{array_size}, [=](item<1> item)
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{
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auto id = item.get();
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kc[id[0]] = ka[id[0]] + kb[id[0]];
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});
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});
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queue->wait();
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}
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template <class T>
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void SYCLStream<T>::triad()
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{
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const T scalar = 0.3;
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queue->submit([&](handler &cgh)
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{
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auto ka = d_a->template get_access<access::mode::write>(cgh);
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auto kb = d_b->template get_access<access::mode::read>(cgh);
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auto kc = d_c->template get_access<access::mode::read>(cgh);
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cgh.parallel_for<kernels::triad>(p->get_kernel<kernels::triad>(),
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range<1>{array_size}, [=](item<1> item)
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{
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auto id = item.get();
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ka[id] = kb[id[0]] + scalar * kc[id[0]];
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});
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});
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queue->wait();
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}
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template <class T>
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void SYCLStream<T>::write_arrays(const std::vector<T>& a, const std::vector<T>& b, const std::vector<T>& c)
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{
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auto _a = d_a->template get_access<access::mode::write, access::target::host_buffer>();
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auto _b = d_b->template get_access<access::mode::write, access::target::host_buffer>();
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auto _c = d_c->template get_access<access::mode::write, access::target::host_buffer>();
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for (int i = 0; i < array_size; i++)
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{
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_a[i] = a[i];
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_b[i] = b[i];
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_c[i] = c[i];
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}
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}
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template <class T>
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void SYCLStream<T>::read_arrays(std::vector<T>& a, std::vector<T>& b, std::vector<T>& c)
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{
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auto _a = d_a->template get_access<access::mode::read, access::target::host_buffer>();
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auto _b = d_b->template get_access<access::mode::read, access::target::host_buffer>();
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auto _c = d_c->template get_access<access::mode::read, access::target::host_buffer>();
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for (int i = 0; i < array_size; i++)
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{
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a[i] = _a[i];
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b[i] = _b[i];
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c[i] = _c[i];
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}
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}
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void getDeviceList(void)
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{
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// Get list of platforms
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std::vector<platform> platforms = platform::get_platforms();
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// Enumerate devices
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for (unsigned i = 0; i < platforms.size(); i++)
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{
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std::vector<device> plat_devices = platforms[i].get_devices();
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devices.insert(devices.end(), plat_devices.begin(), plat_devices.end());
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}
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cached = true;
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}
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void listDevices(void)
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{
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getDeviceList();
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// Print device names
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if (devices.size() == 0)
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{
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std::cerr << "No devices found." << std::endl;
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}
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else
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{
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std::cout << std::endl;
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std::cout << "Devices:" << std::endl;
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for (int i = 0; i < devices.size(); i++)
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{
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std::cout << i << ": " << getDeviceName(i) << std::endl;
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}
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std::cout << std::endl;
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}
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}
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std::string getDeviceName(const int device)
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{
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if (!cached)
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getDeviceList();
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std::string name;
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if (device < devices.size())
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{
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name = devices[device].get_info<info::device::name>();
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}
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else
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{
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throw std::runtime_error("Error asking for name for non-existant device");
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}
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return name;
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}
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std::string getDeviceDriver(const int device)
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{
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if (!cached)
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getDeviceList();
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std::string driver;
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if (device < devices.size())
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{
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driver = devices[device].get_info<info::device::driver_version>();
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}
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else
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{
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throw std::runtime_error("Error asking for driver for non-existant device");
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}
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return driver;
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}
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// TODO: Fix kernel names to allow multiple template specializations
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//template class SYCLStream<float>;
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template class SYCLStream<double>;
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