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Dispatcher.hpp
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Dispatcher.hpp
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#ifndef HPP_DISPATCHER
#define HPP_DISPATCHER
#include <stdexcept>
#include <fstream>
#include <string>
#include <vector>
#include <mutex>
#if defined(__APPLE__) || defined(__MACOSX)
#include <OpenCL/cl.h>
#define clCreateCommandQueueWithProperties clCreateCommandQueue
#else
#include <CL/cl.h>
#endif
#include "SpeedSample.hpp"
#include "CLMemory.hpp"
#include "types.hpp"
#include "Mode.hpp"
#define PROFANITY_SPEEDSAMPLES 20
#define PROFANITY_MAX_SCORE 40
class Dispatcher {
private:
class OpenCLException : public std::runtime_error {
public:
OpenCLException(const std::string s, const cl_int res);
static void throwIfError(const std::string s, const cl_int res);
const cl_int m_res;
};
struct Device {
static cl_command_queue createQueue(cl_context & clContext, cl_device_id & clDeviceId);
static cl_kernel createKernel(cl_program & clProgram, const std::string s);
static cl_ulong4 createSeed();
Device(Dispatcher & parent, cl_context & clContext, cl_program & clProgram, cl_device_id clDeviceId, const size_t worksizeLocal, const size_t size, const size_t index, const Mode & mode);
~Device();
Dispatcher & m_parent;
const size_t m_index;
cl_device_id m_clDeviceId;
size_t m_worksizeLocal;
cl_uchar m_clScoreMax;
cl_command_queue m_clQueue;
cl_kernel m_kernelInit;
cl_kernel m_kernelInverse;
cl_kernel m_kernelIterate;
cl_kernel m_kernelTransform;
cl_kernel m_kernelScore;
CLMemory<point> m_memPrecomp;
CLMemory<mp_number> m_memPointsDeltaX;
CLMemory<mp_number> m_memInversedNegativeDoubleGy;
CLMemory<mp_number> m_memPrevLambda;
CLMemory<result> m_memResult;
// Data parameters used in some modes
CLMemory<cl_uchar> m_memData1;
CLMemory<cl_uchar> m_memData2;
// Seed and round information
cl_ulong4 m_clSeed;
cl_ulong m_round;
// Speed sampling
SpeedSample m_speed;
// Initialization
size_t m_sizeInitialized;
cl_event m_eventFinished;
};
public:
Dispatcher(cl_context & clContext, cl_program & clProgram, const Mode mode, const size_t worksizeMax, const size_t inverseSize, const size_t inverseMultiple, const cl_uchar clScoreQuit = 0);
~Dispatcher();
void addDevice(cl_device_id clDeviceId, const size_t worksizeLocal, const size_t index);
void run();
private:
void init();
void initBegin(Device & d);
void initContinue(Device & d);
void dispatch(Device & d);
void enqueueKernel(cl_command_queue & clQueue, cl_kernel & clKernel, size_t worksizeGlobal, const size_t worksizeLocal, cl_event * pEvent);
void enqueueKernelDevice(Device & d, cl_kernel & clKernel, size_t worksizeGlobal, cl_event * pEvent);
void handleResult(Device & d);
void randomizeSeed(Device & d);
void onEvent(cl_event event, cl_int status, Device & d);
void printSpeed();
private:
static void CL_CALLBACK staticCallback(cl_event event, cl_int event_command_exec_status, void * user_data);
static std::string formatSpeed(double s);
private: /* Instance variables */
cl_context & m_clContext;
cl_program & m_clProgram;
const Mode m_mode;
const size_t m_worksizeMax;
const size_t m_inverseSize;
const size_t m_size;
cl_uchar m_clScoreMax;
cl_uchar m_clScoreQuit;
std::vector<Device *> m_vDevices;
cl_event m_eventFinished;
// Run information
std::mutex m_mutex;
std::chrono::time_point<std::chrono::steady_clock> timeStart;
unsigned int m_countPrint;
unsigned int m_countRunning;
size_t m_sizeInitTotal;
size_t m_sizeInitDone;
bool m_quit;
};
#endif /* HPP_DISPATCHER */