George Rokos | 2467df6 | 2017-01-25 21:27:24 +0000 | [diff] [blame] | 1 | //===------ omptarget.cpp - Target independent OpenMP target RTL -- C++ -*-===// |
| 2 | // |
| 3 | // The LLVM Compiler Infrastructure |
| 4 | // |
| 5 | // This file is dual licensed under the MIT and the University of Illinois Open |
| 6 | // Source Licenses. See LICENSE.txt for details. |
| 7 | // |
| 8 | //===----------------------------------------------------------------------===// |
| 9 | // |
| 10 | // Implementation of the interface to be used by Clang during the codegen of a |
| 11 | // target region. |
| 12 | // |
| 13 | //===----------------------------------------------------------------------===// |
| 14 | |
| 15 | #include <algorithm> |
| 16 | #include <cassert> |
| 17 | #include <climits> |
| 18 | #include <cstdlib> |
| 19 | #include <cstring> |
| 20 | #include <dlfcn.h> |
| 21 | #include <list> |
| 22 | #include <map> |
| 23 | #include <mutex> |
| 24 | #include <string> |
| 25 | #include <vector> |
| 26 | |
| 27 | // Header file global to this project |
| 28 | #include "omptarget.h" |
| 29 | |
| 30 | #define DP(...) DEBUGP("Libomptarget", __VA_ARGS__) |
| 31 | #define INF_REF_CNT (LONG_MAX>>1) // leave room for additions/subtractions |
| 32 | #define CONSIDERED_INF(x) (x > (INF_REF_CNT>>1)) |
| 33 | |
| 34 | // List of all plugins that can support offloading. |
| 35 | static const char *RTLNames[] = { |
| 36 | /* PowerPC target */ "libomptarget.rtl.ppc64.so", |
| 37 | /* x86_64 target */ "libomptarget.rtl.x86_64.so", |
| 38 | /* CUDA target */ "libomptarget.rtl.cuda.so"}; |
| 39 | |
| 40 | // forward declarations |
| 41 | struct RTLInfoTy; |
| 42 | static int target(int32_t device_id, void *host_ptr, int32_t arg_num, |
| 43 | void **args_base, void **args, int64_t *arg_sizes, int64_t *arg_types, |
| 44 | int32_t team_num, int32_t thread_limit, int IsTeamConstruct); |
| 45 | |
| 46 | /// Map between host data and target data. |
| 47 | struct HostDataToTargetTy { |
| 48 | uintptr_t HstPtrBase; // host info. |
| 49 | uintptr_t HstPtrBegin; |
| 50 | uintptr_t HstPtrEnd; // non-inclusive. |
| 51 | |
| 52 | uintptr_t TgtPtrBegin; // target info. |
| 53 | |
| 54 | long RefCount; |
| 55 | |
| 56 | HostDataToTargetTy() |
| 57 | : HstPtrBase(0), HstPtrBegin(0), HstPtrEnd(0), |
| 58 | TgtPtrBegin(0), RefCount(0) {} |
| 59 | HostDataToTargetTy(uintptr_t BP, uintptr_t B, uintptr_t E, uintptr_t TB) |
| 60 | : HstPtrBase(BP), HstPtrBegin(B), HstPtrEnd(E), |
| 61 | TgtPtrBegin(TB), RefCount(1) {} |
| 62 | }; |
| 63 | |
| 64 | typedef std::list<HostDataToTargetTy> HostDataToTargetListTy; |
| 65 | |
| 66 | struct LookupResult { |
| 67 | struct { |
| 68 | unsigned IsContained : 1; |
| 69 | unsigned ExtendsBefore : 1; |
| 70 | unsigned ExtendsAfter : 1; |
| 71 | } Flags; |
| 72 | |
| 73 | HostDataToTargetListTy::iterator Entry; |
| 74 | |
Jonas Hahnfeld | cfe5ef5 | 2017-01-27 11:03:33 +0000 | [diff] [blame] | 75 | LookupResult() : Flags({0,0,0}), Entry() {} |
George Rokos | 2467df6 | 2017-01-25 21:27:24 +0000 | [diff] [blame] | 76 | }; |
| 77 | |
| 78 | /// Map for shadow pointers |
| 79 | struct ShadowPtrValTy { |
| 80 | void *HstPtrVal; |
| 81 | void *TgtPtrAddr; |
| 82 | void *TgtPtrVal; |
| 83 | }; |
| 84 | typedef std::map<void *, ShadowPtrValTy> ShadowPtrListTy; |
| 85 | |
| 86 | /// |
| 87 | struct PendingCtorDtorListsTy { |
| 88 | std::list<void *> PendingCtors; |
| 89 | std::list<void *> PendingDtors; |
| 90 | }; |
| 91 | typedef std::map<__tgt_bin_desc *, PendingCtorDtorListsTy> |
| 92 | PendingCtorsDtorsPerLibrary; |
| 93 | |
| 94 | struct DeviceTy { |
| 95 | int32_t DeviceID; |
| 96 | RTLInfoTy *RTL; |
| 97 | int32_t RTLDeviceID; |
| 98 | |
| 99 | bool IsInit; |
| 100 | std::once_flag InitFlag; |
| 101 | bool HasPendingGlobals; |
| 102 | |
| 103 | HostDataToTargetListTy HostDataToTargetMap; |
| 104 | PendingCtorsDtorsPerLibrary PendingCtorsDtors; |
| 105 | |
| 106 | ShadowPtrListTy ShadowPtrMap; |
| 107 | |
| 108 | std::mutex DataMapMtx, PendingGlobalsMtx, ShadowMtx; |
| 109 | |
| 110 | uint64_t loopTripCnt; |
| 111 | |
| 112 | DeviceTy(RTLInfoTy *RTL) |
| 113 | : DeviceID(-1), RTL(RTL), RTLDeviceID(-1), IsInit(false), InitFlag(), |
| 114 | HasPendingGlobals(false), HostDataToTargetMap(), |
| 115 | PendingCtorsDtors(), ShadowPtrMap(), DataMapMtx(), PendingGlobalsMtx(), |
| 116 | ShadowMtx(), loopTripCnt(0) {} |
| 117 | |
| 118 | // The existence of mutexes makes DeviceTy non-copyable. We need to |
| 119 | // provide a copy constructor and an assignment operator explicitly. |
| 120 | DeviceTy(const DeviceTy &d) |
| 121 | : DeviceID(d.DeviceID), RTL(d.RTL), RTLDeviceID(d.RTLDeviceID), |
| 122 | IsInit(d.IsInit), InitFlag(), HasPendingGlobals(d.HasPendingGlobals), |
| 123 | HostDataToTargetMap(d.HostDataToTargetMap), |
| 124 | PendingCtorsDtors(d.PendingCtorsDtors), ShadowPtrMap(d.ShadowPtrMap), |
| 125 | DataMapMtx(), PendingGlobalsMtx(), |
| 126 | ShadowMtx(), loopTripCnt(d.loopTripCnt) {} |
| 127 | |
| 128 | DeviceTy& operator=(const DeviceTy &d) { |
| 129 | DeviceID = d.DeviceID; |
| 130 | RTL = d.RTL; |
| 131 | RTLDeviceID = d.RTLDeviceID; |
| 132 | IsInit = d.IsInit; |
| 133 | HasPendingGlobals = d.HasPendingGlobals; |
| 134 | HostDataToTargetMap = d.HostDataToTargetMap; |
| 135 | PendingCtorsDtors = d.PendingCtorsDtors; |
| 136 | ShadowPtrMap = d.ShadowPtrMap; |
| 137 | loopTripCnt = d.loopTripCnt; |
| 138 | |
| 139 | return *this; |
| 140 | } |
| 141 | |
| 142 | long getMapEntryRefCnt(void *HstPtrBegin); |
| 143 | LookupResult lookupMapping(void *HstPtrBegin, int64_t Size); |
| 144 | void *getOrAllocTgtPtr(void *HstPtrBegin, void *HstPtrBase, int64_t Size, |
| 145 | bool &IsNew, bool IsImplicit, bool UpdateRefCount = true); |
| 146 | void *getTgtPtrBegin(void *HstPtrBegin, int64_t Size); |
| 147 | void *getTgtPtrBegin(void *HstPtrBegin, int64_t Size, bool &IsLast, |
| 148 | bool UpdateRefCount); |
| 149 | int deallocTgtPtr(void *TgtPtrBegin, int64_t Size, bool ForceDelete); |
| 150 | int associatePtr(void *HstPtrBegin, void *TgtPtrBegin, int64_t Size); |
| 151 | int disassociatePtr(void *HstPtrBegin); |
| 152 | |
| 153 | // calls to RTL |
| 154 | int32_t initOnce(); |
| 155 | __tgt_target_table *load_binary(void *Img); |
| 156 | |
| 157 | int32_t data_submit(void *TgtPtrBegin, void *HstPtrBegin, int64_t Size); |
| 158 | int32_t data_retrieve(void *HstPtrBegin, void *TgtPtrBegin, int64_t Size); |
| 159 | |
| 160 | int32_t run_region(void *TgtEntryPtr, void **TgtVarsPtr, int32_t TgtVarsSize); |
| 161 | int32_t run_team_region(void *TgtEntryPtr, void **TgtVarsPtr, |
| 162 | int32_t TgtVarsSize, int32_t NumTeams, int32_t ThreadLimit, |
| 163 | uint64_t LoopTripCount); |
| 164 | |
| 165 | private: |
| 166 | // Call to RTL |
| 167 | void init(); // To be called only via DeviceTy::initOnce() |
| 168 | }; |
| 169 | |
| 170 | /// Map between Device ID (i.e. openmp device id) and its DeviceTy. |
| 171 | typedef std::vector<DeviceTy> DevicesTy; |
| 172 | static DevicesTy Devices; |
| 173 | |
| 174 | struct RTLInfoTy { |
| 175 | typedef int32_t(is_valid_binary_ty)(void *); |
| 176 | typedef int32_t(number_of_devices_ty)(); |
| 177 | typedef int32_t(init_device_ty)(int32_t); |
| 178 | typedef __tgt_target_table *(load_binary_ty)(int32_t, void *); |
| 179 | typedef void *(data_alloc_ty)(int32_t, int64_t); |
| 180 | typedef int32_t(data_submit_ty)(int32_t, void *, void *, int64_t); |
| 181 | typedef int32_t(data_retrieve_ty)(int32_t, void *, void *, int64_t); |
| 182 | typedef int32_t(data_delete_ty)(int32_t, void *); |
| 183 | typedef int32_t(run_region_ty)(int32_t, void *, void **, int32_t); |
| 184 | typedef int32_t(run_team_region_ty)(int32_t, void *, void **, int32_t, |
| 185 | int32_t, int32_t, uint64_t); |
| 186 | |
| 187 | int32_t Idx; // RTL index, index is the number of devices |
| 188 | // of other RTLs that were registered before, |
| 189 | // i.e. the OpenMP index of the first device |
| 190 | // to be registered with this RTL. |
| 191 | int32_t NumberOfDevices; // Number of devices this RTL deals with. |
| 192 | std::vector<DeviceTy *> Devices; // one per device (NumberOfDevices in total). |
| 193 | |
| 194 | void *LibraryHandler; |
| 195 | |
| 196 | #ifdef OMPTARGET_DEBUG |
| 197 | std::string RTLName; |
| 198 | #endif |
| 199 | |
| 200 | // Functions implemented in the RTL. |
| 201 | is_valid_binary_ty *is_valid_binary; |
| 202 | number_of_devices_ty *number_of_devices; |
| 203 | init_device_ty *init_device; |
| 204 | load_binary_ty *load_binary; |
| 205 | data_alloc_ty *data_alloc; |
| 206 | data_submit_ty *data_submit; |
| 207 | data_retrieve_ty *data_retrieve; |
| 208 | data_delete_ty *data_delete; |
| 209 | run_region_ty *run_region; |
| 210 | run_team_region_ty *run_team_region; |
| 211 | |
| 212 | // Are there images associated with this RTL. |
| 213 | bool isUsed; |
| 214 | |
| 215 | // Mutex for thread-safety when calling RTL interface functions. |
| 216 | // It is easier to enforce thread-safety at the libomptarget level, |
| 217 | // so that developers of new RTLs do not have to worry about it. |
| 218 | std::mutex Mtx; |
| 219 | |
| 220 | // The existence of the mutex above makes RTLInfoTy non-copyable. |
| 221 | // We need to provide a copy constructor explicitly. |
| 222 | RTLInfoTy() |
| 223 | : Idx(-1), NumberOfDevices(-1), Devices(), LibraryHandler(0), |
| 224 | #ifdef OMPTARGET_DEBUG |
| 225 | RTLName(), |
| 226 | #endif |
| 227 | is_valid_binary(0), number_of_devices(0), init_device(0), |
| 228 | load_binary(0), data_alloc(0), data_submit(0), data_retrieve(0), |
| 229 | data_delete(0), run_region(0), run_team_region(0), isUsed(false), |
| 230 | Mtx() {} |
| 231 | |
| 232 | RTLInfoTy(const RTLInfoTy &r) : Mtx() { |
| 233 | Idx = r.Idx; |
| 234 | NumberOfDevices = r.NumberOfDevices; |
| 235 | Devices = r.Devices; |
| 236 | LibraryHandler = r.LibraryHandler; |
| 237 | #ifdef OMPTARGET_DEBUG |
| 238 | RTLName = r.RTLName; |
| 239 | #endif |
| 240 | is_valid_binary = r.is_valid_binary; |
| 241 | number_of_devices = r.number_of_devices; |
| 242 | init_device = r.init_device; |
| 243 | load_binary = r.load_binary; |
| 244 | data_alloc = r.data_alloc; |
| 245 | data_submit = r.data_submit; |
| 246 | data_retrieve = r.data_retrieve; |
| 247 | data_delete = r.data_delete; |
| 248 | run_region = r.run_region; |
| 249 | run_team_region = r.run_team_region; |
| 250 | isUsed = r.isUsed; |
| 251 | } |
| 252 | }; |
| 253 | |
| 254 | /// RTLs identified in the system. |
| 255 | class RTLsTy { |
| 256 | private: |
| 257 | // Mutex-like object to guarantee thread-safety and unique initialization |
| 258 | // (i.e. the library attempts to load the RTLs (plugins) only once). |
| 259 | std::once_flag initFlag; |
| 260 | void LoadRTLs(); // not thread-safe |
| 261 | |
| 262 | public: |
| 263 | // List of the detected runtime libraries. |
| 264 | std::list<RTLInfoTy> AllRTLs; |
| 265 | |
| 266 | // Array of pointers to the detected runtime libraries that have compatible |
| 267 | // binaries. |
| 268 | std::vector<RTLInfoTy *> UsedRTLs; |
| 269 | |
| 270 | explicit RTLsTy() {} |
| 271 | |
| 272 | // Load all the runtime libraries (plugins) if not done before. |
| 273 | void LoadRTLsOnce(); |
| 274 | }; |
| 275 | |
| 276 | void RTLsTy::LoadRTLs() { |
| 277 | // Parse environment variable OMP_TARGET_OFFLOAD (if set) |
| 278 | char *envStr = getenv("OMP_TARGET_OFFLOAD"); |
| 279 | if (envStr && !strcmp(envStr, "DISABLED")) { |
| 280 | DP("Target offloading disabled by environment\n"); |
| 281 | return; |
| 282 | } |
| 283 | |
| 284 | DP("Loading RTLs...\n"); |
| 285 | |
| 286 | // Attempt to open all the plugins and, if they exist, check if the interface |
| 287 | // is correct and if they are supporting any devices. |
| 288 | for (auto *Name : RTLNames) { |
| 289 | DP("Loading library '%s'...\n", Name); |
| 290 | void *dynlib_handle = dlopen(Name, RTLD_NOW); |
| 291 | |
| 292 | if (!dynlib_handle) { |
| 293 | // Library does not exist or cannot be found. |
| 294 | DP("Unable to load library '%s': %s!\n", Name, dlerror()); |
| 295 | continue; |
| 296 | } |
| 297 | |
| 298 | DP("Successfully loaded library '%s'!\n", Name); |
| 299 | |
| 300 | // Retrieve the RTL information from the runtime library. |
| 301 | RTLInfoTy R; |
| 302 | |
| 303 | R.LibraryHandler = dynlib_handle; |
| 304 | R.isUsed = false; |
| 305 | |
| 306 | #ifdef OMPTARGET_DEBUG |
| 307 | R.RTLName = Name; |
| 308 | #endif |
| 309 | |
| 310 | if (!(R.is_valid_binary = (RTLInfoTy::is_valid_binary_ty *)dlsym( |
| 311 | dynlib_handle, "__tgt_rtl_is_valid_binary"))) |
| 312 | continue; |
| 313 | if (!(R.number_of_devices = (RTLInfoTy::number_of_devices_ty *)dlsym( |
| 314 | dynlib_handle, "__tgt_rtl_number_of_devices"))) |
| 315 | continue; |
| 316 | if (!(R.init_device = (RTLInfoTy::init_device_ty *)dlsym( |
| 317 | dynlib_handle, "__tgt_rtl_init_device"))) |
| 318 | continue; |
| 319 | if (!(R.load_binary = (RTLInfoTy::load_binary_ty *)dlsym( |
| 320 | dynlib_handle, "__tgt_rtl_load_binary"))) |
| 321 | continue; |
| 322 | if (!(R.data_alloc = (RTLInfoTy::data_alloc_ty *)dlsym( |
| 323 | dynlib_handle, "__tgt_rtl_data_alloc"))) |
| 324 | continue; |
| 325 | if (!(R.data_submit = (RTLInfoTy::data_submit_ty *)dlsym( |
| 326 | dynlib_handle, "__tgt_rtl_data_submit"))) |
| 327 | continue; |
| 328 | if (!(R.data_retrieve = (RTLInfoTy::data_retrieve_ty *)dlsym( |
| 329 | dynlib_handle, "__tgt_rtl_data_retrieve"))) |
| 330 | continue; |
| 331 | if (!(R.data_delete = (RTLInfoTy::data_delete_ty *)dlsym( |
| 332 | dynlib_handle, "__tgt_rtl_data_delete"))) |
| 333 | continue; |
| 334 | if (!(R.run_region = (RTLInfoTy::run_region_ty *)dlsym( |
| 335 | dynlib_handle, "__tgt_rtl_run_target_region"))) |
| 336 | continue; |
| 337 | if (!(R.run_team_region = (RTLInfoTy::run_team_region_ty *)dlsym( |
| 338 | dynlib_handle, "__tgt_rtl_run_target_team_region"))) |
| 339 | continue; |
| 340 | |
| 341 | // No devices are supported by this RTL? |
| 342 | if (!(R.NumberOfDevices = R.number_of_devices())) { |
| 343 | DP("No devices supported in this RTL\n"); |
| 344 | continue; |
| 345 | } |
| 346 | |
| 347 | DP("Registering RTL %s supporting %d devices!\n", |
| 348 | R.RTLName.c_str(), R.NumberOfDevices); |
| 349 | |
| 350 | // The RTL is valid! Will save the information in the RTLs list. |
| 351 | AllRTLs.push_back(R); |
| 352 | } |
| 353 | |
| 354 | DP("RTLs loaded!\n"); |
| 355 | |
| 356 | return; |
| 357 | } |
| 358 | |
| 359 | void RTLsTy::LoadRTLsOnce() { |
| 360 | // RTL.LoadRTLs() is called only once in a thread-safe fashion. |
| 361 | std::call_once(initFlag, &RTLsTy::LoadRTLs, this); |
| 362 | } |
| 363 | |
| 364 | static RTLsTy RTLs; |
| 365 | static std::mutex RTLsMtx; |
| 366 | |
| 367 | /// Map between the host entry begin and the translation table. Each |
| 368 | /// registered library gets one TranslationTable. Use the map from |
| 369 | /// __tgt_offload_entry so that we may quickly determine whether we |
| 370 | /// are trying to (re)register an existing lib or really have a new one. |
| 371 | struct TranslationTable { |
| 372 | __tgt_target_table HostTable; |
| 373 | |
| 374 | // Image assigned to a given device. |
| 375 | std::vector<__tgt_device_image *> TargetsImages; // One image per device ID. |
| 376 | |
| 377 | // Table of entry points or NULL if it was not already computed. |
| 378 | std::vector<__tgt_target_table *> TargetsTable; // One table per device ID. |
| 379 | }; |
| 380 | typedef std::map<__tgt_offload_entry *, TranslationTable> |
| 381 | HostEntriesBeginToTransTableTy; |
| 382 | static HostEntriesBeginToTransTableTy HostEntriesBeginToTransTable; |
| 383 | static std::mutex TrlTblMtx; |
| 384 | |
| 385 | /// Map between the host ptr and a table index |
| 386 | struct TableMap { |
| 387 | TranslationTable *Table; // table associated with the host ptr. |
| 388 | uint32_t Index; // index in which the host ptr translated entry is found. |
| 389 | TableMap() : Table(0), Index(0) {} |
| 390 | TableMap(TranslationTable *table, uint32_t index) |
| 391 | : Table(table), Index(index) {} |
| 392 | }; |
| 393 | typedef std::map<void *, TableMap> HostPtrToTableMapTy; |
| 394 | static HostPtrToTableMapTy HostPtrToTableMap; |
| 395 | static std::mutex TblMapMtx; |
| 396 | |
| 397 | /// Check whether a device has an associated RTL and initialize it if it's not |
| 398 | /// already initialized. |
| 399 | static bool device_is_ready(int device_num) { |
| 400 | DP("Checking whether device %d is ready.\n", device_num); |
| 401 | // Devices.size() can only change while registering a new |
| 402 | // library, so try to acquire the lock of RTLs' mutex. |
| 403 | RTLsMtx.lock(); |
| 404 | size_t Devices_size = Devices.size(); |
| 405 | RTLsMtx.unlock(); |
| 406 | if (Devices_size <= (size_t)device_num) { |
| 407 | DP("Device ID %d does not have a matching RTL\n", device_num); |
| 408 | return false; |
| 409 | } |
| 410 | |
| 411 | // Get device info |
| 412 | DeviceTy &Device = Devices[device_num]; |
| 413 | |
| 414 | DP("Is the device %d (local ID %d) initialized? %d\n", device_num, |
| 415 | Device.RTLDeviceID, Device.IsInit); |
| 416 | |
| 417 | // Init the device if not done before |
| 418 | if (!Device.IsInit && Device.initOnce() != OFFLOAD_SUCCESS) { |
| 419 | DP("Failed to init device %d\n", device_num); |
| 420 | return false; |
| 421 | } |
| 422 | |
| 423 | DP("Device %d is ready to use.\n", device_num); |
| 424 | |
| 425 | return true; |
| 426 | } |
| 427 | |
| 428 | //////////////////////////////////////////////////////////////////////////////// |
| 429 | // Target API functions |
| 430 | // |
| 431 | EXTERN int omp_get_num_devices(void) { |
| 432 | RTLsMtx.lock(); |
| 433 | size_t Devices_size = Devices.size(); |
| 434 | RTLsMtx.unlock(); |
| 435 | |
| 436 | DP("Call to omp_get_num_devices returning %zd\n", Devices_size); |
| 437 | |
| 438 | return Devices_size; |
| 439 | } |
| 440 | |
| 441 | EXTERN int omp_get_initial_device(void) { |
| 442 | DP("Call to omp_get_initial_device returning %d\n", HOST_DEVICE); |
| 443 | return HOST_DEVICE; |
| 444 | } |
| 445 | |
| 446 | EXTERN void *omp_target_alloc(size_t size, int device_num) { |
| 447 | DP("Call to omp_target_alloc for device %d requesting %zu bytes\n", |
| 448 | device_num, size); |
| 449 | |
| 450 | if (size <= 0) { |
| 451 | DP("Call to omp_target_alloc with non-positive length\n"); |
| 452 | return NULL; |
| 453 | } |
| 454 | |
| 455 | void *rc = NULL; |
| 456 | |
| 457 | if (device_num == omp_get_initial_device()) { |
| 458 | rc = malloc(size); |
| 459 | DP("omp_target_alloc returns host ptr " DPxMOD "\n", DPxPTR(rc)); |
| 460 | return rc; |
| 461 | } |
| 462 | |
| 463 | if (!device_is_ready(device_num)) { |
| 464 | DP("omp_target_alloc returns NULL ptr\n"); |
| 465 | return NULL; |
| 466 | } |
| 467 | |
| 468 | DeviceTy &Device = Devices[device_num]; |
| 469 | rc = Device.RTL->data_alloc(Device.RTLDeviceID, size); |
| 470 | DP("omp_target_alloc returns device ptr " DPxMOD "\n", DPxPTR(rc)); |
| 471 | return rc; |
| 472 | } |
| 473 | |
| 474 | EXTERN void omp_target_free(void *device_ptr, int device_num) { |
| 475 | DP("Call to omp_target_free for device %d and address " DPxMOD "\n", |
| 476 | device_num, DPxPTR(device_ptr)); |
| 477 | |
| 478 | if (!device_ptr) { |
| 479 | DP("Call to omp_target_free with NULL ptr\n"); |
| 480 | return; |
| 481 | } |
| 482 | |
| 483 | if (device_num == omp_get_initial_device()) { |
| 484 | free(device_ptr); |
| 485 | DP("omp_target_free deallocated host ptr\n"); |
| 486 | return; |
| 487 | } |
| 488 | |
| 489 | if (!device_is_ready(device_num)) { |
| 490 | DP("omp_target_free returns, nothing to do\n"); |
| 491 | return; |
| 492 | } |
| 493 | |
| 494 | DeviceTy &Device = Devices[device_num]; |
| 495 | Device.RTL->data_delete(Device.RTLDeviceID, (void *)device_ptr); |
| 496 | DP("omp_target_free deallocated device ptr\n"); |
| 497 | } |
| 498 | |
| 499 | EXTERN int omp_target_is_present(void *ptr, int device_num) { |
| 500 | DP("Call to omp_target_is_present for device %d and address " DPxMOD "\n", |
| 501 | device_num, DPxPTR(ptr)); |
| 502 | |
| 503 | if (!ptr) { |
| 504 | DP("Call to omp_target_is_present with NULL ptr, returning false\n"); |
| 505 | return false; |
| 506 | } |
| 507 | |
| 508 | if (device_num == omp_get_initial_device()) { |
| 509 | DP("Call to omp_target_is_present on host, returning true\n"); |
| 510 | return true; |
| 511 | } |
| 512 | |
| 513 | RTLsMtx.lock(); |
| 514 | size_t Devices_size = Devices.size(); |
| 515 | RTLsMtx.unlock(); |
| 516 | if (Devices_size <= (size_t)device_num) { |
| 517 | DP("Call to omp_target_is_present with invalid device ID, returning " |
| 518 | "false\n"); |
| 519 | return false; |
| 520 | } |
| 521 | |
| 522 | DeviceTy& Device = Devices[device_num]; |
| 523 | bool IsLast; // not used |
| 524 | int rc = (Device.getTgtPtrBegin(ptr, 0, IsLast, false) != NULL); |
| 525 | DP("Call to omp_target_is_present returns %d\n", rc); |
| 526 | return rc; |
| 527 | } |
| 528 | |
| 529 | EXTERN int omp_target_memcpy(void *dst, void *src, size_t length, |
| 530 | size_t dst_offset, size_t src_offset, int dst_device, int src_device) { |
| 531 | DP("Call to omp_target_memcpy, dst device %d, src device %d, " |
| 532 | "dst addr " DPxMOD ", src addr " DPxMOD ", dst offset %zu, " |
| 533 | "src offset %zu, length %zu\n", dst_device, src_device, DPxPTR(dst), |
| 534 | DPxPTR(src), dst_offset, src_offset, length); |
| 535 | |
| 536 | if (!dst || !src || length <= 0) { |
| 537 | DP("Call to omp_target_memcpy with invalid arguments\n"); |
| 538 | return OFFLOAD_FAIL; |
| 539 | } |
| 540 | |
| 541 | if (src_device != omp_get_initial_device() && !device_is_ready(src_device)) { |
| 542 | DP("omp_target_memcpy returns OFFLOAD_FAIL\n"); |
| 543 | return OFFLOAD_FAIL; |
| 544 | } |
| 545 | |
| 546 | if (dst_device != omp_get_initial_device() && !device_is_ready(dst_device)) { |
| 547 | DP("omp_target_memcpy returns OFFLOAD_FAIL\n"); |
| 548 | return OFFLOAD_FAIL; |
| 549 | } |
| 550 | |
| 551 | int rc = OFFLOAD_SUCCESS; |
| 552 | void *srcAddr = (char *)src + src_offset; |
| 553 | void *dstAddr = (char *)dst + dst_offset; |
| 554 | |
| 555 | if (src_device == omp_get_initial_device() && |
| 556 | dst_device == omp_get_initial_device()) { |
| 557 | DP("copy from host to host\n"); |
| 558 | const void *p = memcpy(dstAddr, srcAddr, length); |
| 559 | if (p == NULL) |
| 560 | rc = OFFLOAD_FAIL; |
| 561 | } else if (src_device == omp_get_initial_device()) { |
| 562 | DP("copy from host to device\n"); |
| 563 | DeviceTy& DstDev = Devices[dst_device]; |
| 564 | rc = DstDev.data_submit(dstAddr, srcAddr, length); |
| 565 | } else if (dst_device == omp_get_initial_device()) { |
| 566 | DP("copy from device to host\n"); |
| 567 | DeviceTy& SrcDev = Devices[src_device]; |
| 568 | rc = SrcDev.data_retrieve(dstAddr, srcAddr, length); |
| 569 | } else { |
| 570 | DP("copy from device to device\n"); |
| 571 | void *buffer = malloc(length); |
| 572 | DeviceTy& SrcDev = Devices[src_device]; |
| 573 | DeviceTy& DstDev = Devices[dst_device]; |
| 574 | rc = SrcDev.data_retrieve(buffer, srcAddr, length); |
| 575 | if (rc == OFFLOAD_SUCCESS) |
| 576 | rc = DstDev.data_submit(dstAddr, buffer, length); |
| 577 | } |
| 578 | |
| 579 | DP("omp_target_memcpy returns %d\n", rc); |
| 580 | return rc; |
| 581 | } |
| 582 | |
| 583 | EXTERN int omp_target_memcpy_rect(void *dst, void *src, size_t element_size, |
| 584 | int num_dims, const size_t *volume, const size_t *dst_offsets, |
| 585 | const size_t *src_offsets, const size_t *dst_dimensions, |
| 586 | const size_t *src_dimensions, int dst_device, int src_device) { |
| 587 | DP("Call to omp_target_memcpy_rect, dst device %d, src device %d, " |
| 588 | "dst addr " DPxMOD ", src addr " DPxMOD ", dst offsets " DPxMOD ", " |
| 589 | "src offsets " DPxMOD ", dst dims " DPxMOD ", src dims " DPxMOD ", " |
| 590 | "volume " DPxMOD ", element size %zu, num_dims %d\n", dst_device, |
| 591 | src_device, DPxPTR(dst), DPxPTR(src), DPxPTR(dst_offsets), |
| 592 | DPxPTR(src_offsets), DPxPTR(dst_dimensions), DPxPTR(src_dimensions), |
| 593 | DPxPTR(volume), element_size, num_dims); |
| 594 | |
| 595 | if (!(dst || src)) { |
| 596 | DP("Call to omp_target_memcpy_rect returns max supported dimensions %d\n", |
| 597 | INT_MAX); |
| 598 | return INT_MAX; |
| 599 | } |
| 600 | |
| 601 | if (!dst || !src || element_size < 1 || num_dims < 1 || !volume || |
| 602 | !dst_offsets || !src_offsets || !dst_dimensions || !src_dimensions) { |
| 603 | DP("Call to omp_target_memcpy_rect with invalid arguments\n"); |
| 604 | return OFFLOAD_FAIL; |
| 605 | } |
| 606 | |
| 607 | int rc; |
| 608 | if (num_dims == 1) { |
| 609 | rc = omp_target_memcpy(dst, src, element_size * volume[0], |
| 610 | element_size * dst_offsets[0], element_size * src_offsets[0], |
| 611 | dst_device, src_device); |
| 612 | } else { |
| 613 | size_t dst_slice_size = element_size; |
| 614 | size_t src_slice_size = element_size; |
| 615 | for (int i=1; i<num_dims; ++i) { |
| 616 | dst_slice_size *= dst_dimensions[i]; |
| 617 | src_slice_size *= src_dimensions[i]; |
| 618 | } |
| 619 | |
| 620 | size_t dst_off = dst_offsets[0] * dst_slice_size; |
| 621 | size_t src_off = src_offsets[0] * src_slice_size; |
| 622 | for (size_t i=0; i<volume[0]; ++i) { |
| 623 | rc = omp_target_memcpy_rect((char *) dst + dst_off + dst_slice_size * i, |
| 624 | (char *) src + src_off + src_slice_size * i, element_size, |
| 625 | num_dims - 1, volume + 1, dst_offsets + 1, src_offsets + 1, |
| 626 | dst_dimensions + 1, src_dimensions + 1, dst_device, src_device); |
| 627 | |
| 628 | if (rc) { |
| 629 | DP("Recursive call to omp_target_memcpy_rect returns unsuccessfully\n"); |
| 630 | return rc; |
| 631 | } |
| 632 | } |
| 633 | } |
| 634 | |
| 635 | DP("omp_target_memcpy_rect returns %d\n", rc); |
| 636 | return rc; |
| 637 | } |
| 638 | |
| 639 | EXTERN int omp_target_associate_ptr(void *host_ptr, void *device_ptr, |
| 640 | size_t size, size_t device_offset, int device_num) { |
| 641 | DP("Call to omp_target_associate_ptr with host_ptr " DPxMOD ", " |
| 642 | "device_ptr " DPxMOD ", size %zu, device_offset %zu, device_num %d\n", |
| 643 | DPxPTR(host_ptr), DPxPTR(device_ptr), size, device_offset, device_num); |
| 644 | |
| 645 | if (!host_ptr || !device_ptr || size <= 0) { |
| 646 | DP("Call to omp_target_associate_ptr with invalid arguments\n"); |
| 647 | return OFFLOAD_FAIL; |
| 648 | } |
| 649 | |
| 650 | if (device_num == omp_get_initial_device()) { |
| 651 | DP("omp_target_associate_ptr: no association possible on the host\n"); |
| 652 | return OFFLOAD_FAIL; |
| 653 | } |
| 654 | |
| 655 | if (!device_is_ready(device_num)) { |
| 656 | DP("omp_target_associate_ptr returns OFFLOAD_FAIL\n"); |
| 657 | return OFFLOAD_FAIL; |
| 658 | } |
| 659 | |
| 660 | DeviceTy& Device = Devices[device_num]; |
| 661 | void *device_addr = (void *)((uint64_t)device_ptr + (uint64_t)device_offset); |
| 662 | int rc = Device.associatePtr(host_ptr, device_addr, size); |
| 663 | DP("omp_target_associate_ptr returns %d\n", rc); |
| 664 | return rc; |
| 665 | } |
| 666 | |
| 667 | EXTERN int omp_target_disassociate_ptr(void *host_ptr, int device_num) { |
| 668 | DP("Call to omp_target_disassociate_ptr with host_ptr " DPxMOD ", " |
| 669 | "device_num %d\n", DPxPTR(host_ptr), device_num); |
| 670 | |
| 671 | if (!host_ptr) { |
| 672 | DP("Call to omp_target_associate_ptr with invalid host_ptr\n"); |
| 673 | return OFFLOAD_FAIL; |
| 674 | } |
| 675 | |
| 676 | if (device_num == omp_get_initial_device()) { |
| 677 | DP("omp_target_disassociate_ptr: no association possible on the host\n"); |
| 678 | return OFFLOAD_FAIL; |
| 679 | } |
| 680 | |
| 681 | if (!device_is_ready(device_num)) { |
| 682 | DP("omp_target_disassociate_ptr returns OFFLOAD_FAIL\n"); |
| 683 | return OFFLOAD_FAIL; |
| 684 | } |
| 685 | |
| 686 | DeviceTy& Device = Devices[device_num]; |
| 687 | int rc = Device.disassociatePtr(host_ptr); |
| 688 | DP("omp_target_disassociate_ptr returns %d\n", rc); |
| 689 | return rc; |
| 690 | } |
| 691 | |
| 692 | //////////////////////////////////////////////////////////////////////////////// |
| 693 | // functionality for device |
| 694 | |
| 695 | int DeviceTy::associatePtr(void *HstPtrBegin, void *TgtPtrBegin, int64_t Size) { |
| 696 | DataMapMtx.lock(); |
| 697 | |
| 698 | // Check if entry exists |
| 699 | for (auto &HT : HostDataToTargetMap) { |
| 700 | if ((uintptr_t)HstPtrBegin == HT.HstPtrBegin) { |
| 701 | // Mapping already exists |
| 702 | bool isValid = HT.HstPtrBegin == (uintptr_t) HstPtrBegin && |
| 703 | HT.HstPtrEnd == (uintptr_t) HstPtrBegin + Size && |
| 704 | HT.TgtPtrBegin == (uintptr_t) TgtPtrBegin; |
| 705 | DataMapMtx.unlock(); |
| 706 | if (isValid) { |
| 707 | DP("Attempt to re-associate the same device ptr+offset with the same " |
| 708 | "host ptr, nothing to do\n"); |
| 709 | return OFFLOAD_SUCCESS; |
| 710 | } else { |
| 711 | DP("Not allowed to re-associate a different device ptr+offset with the " |
| 712 | "same host ptr\n"); |
| 713 | return OFFLOAD_FAIL; |
| 714 | } |
| 715 | } |
| 716 | } |
| 717 | |
| 718 | // Mapping does not exist, allocate it |
| 719 | HostDataToTargetTy newEntry; |
| 720 | |
| 721 | // Set up missing fields |
| 722 | newEntry.HstPtrBase = (uintptr_t) HstPtrBegin; |
| 723 | newEntry.HstPtrBegin = (uintptr_t) HstPtrBegin; |
| 724 | newEntry.HstPtrEnd = (uintptr_t) HstPtrBegin + Size; |
| 725 | newEntry.TgtPtrBegin = (uintptr_t) TgtPtrBegin; |
| 726 | // refCount must be infinite |
| 727 | newEntry.RefCount = INF_REF_CNT; |
| 728 | |
| 729 | DP("Creating new map entry: HstBase=" DPxMOD ", HstBegin=" DPxMOD ", HstEnd=" |
| 730 | DPxMOD ", TgtBegin=" DPxMOD "\n", DPxPTR(newEntry.HstPtrBase), |
| 731 | DPxPTR(newEntry.HstPtrBegin), DPxPTR(newEntry.HstPtrEnd), |
| 732 | DPxPTR(newEntry.TgtPtrBegin)); |
| 733 | HostDataToTargetMap.push_front(newEntry); |
| 734 | |
| 735 | DataMapMtx.unlock(); |
| 736 | |
| 737 | return OFFLOAD_SUCCESS; |
| 738 | } |
| 739 | |
| 740 | int DeviceTy::disassociatePtr(void *HstPtrBegin) { |
| 741 | DataMapMtx.lock(); |
| 742 | |
| 743 | // Check if entry exists |
| 744 | for (HostDataToTargetListTy::iterator ii = HostDataToTargetMap.begin(); |
| 745 | ii != HostDataToTargetMap.end(); ++ii) { |
| 746 | if ((uintptr_t)HstPtrBegin == ii->HstPtrBegin) { |
| 747 | // Mapping exists |
| 748 | if (CONSIDERED_INF(ii->RefCount)) { |
| 749 | DP("Association found, removing it\n"); |
| 750 | HostDataToTargetMap.erase(ii); |
| 751 | DataMapMtx.unlock(); |
| 752 | return OFFLOAD_SUCCESS; |
| 753 | } else { |
| 754 | DP("Trying to disassociate a pointer which was not mapped via " |
| 755 | "omp_target_associate_ptr\n"); |
| 756 | break; |
| 757 | } |
| 758 | } |
| 759 | } |
| 760 | |
| 761 | // Mapping not found |
| 762 | DataMapMtx.unlock(); |
| 763 | DP("Association not found\n"); |
| 764 | return OFFLOAD_FAIL; |
| 765 | } |
| 766 | |
| 767 | // Get ref count of map entry containing HstPtrBegin |
| 768 | long DeviceTy::getMapEntryRefCnt(void *HstPtrBegin) { |
| 769 | uintptr_t hp = (uintptr_t)HstPtrBegin; |
| 770 | long RefCnt = -1; |
| 771 | |
| 772 | DataMapMtx.lock(); |
| 773 | for (auto &HT : HostDataToTargetMap) { |
| 774 | if (hp >= HT.HstPtrBegin && hp < HT.HstPtrEnd) { |
| 775 | DP("DeviceTy::getMapEntry: requested entry found\n"); |
| 776 | RefCnt = HT.RefCount; |
| 777 | break; |
| 778 | } |
| 779 | } |
| 780 | DataMapMtx.unlock(); |
| 781 | |
| 782 | if (RefCnt < 0) { |
| 783 | DP("DeviceTy::getMapEntry: requested entry not found\n"); |
| 784 | } |
| 785 | |
| 786 | return RefCnt; |
| 787 | } |
| 788 | |
| 789 | LookupResult DeviceTy::lookupMapping(void *HstPtrBegin, int64_t Size) { |
| 790 | uintptr_t hp = (uintptr_t)HstPtrBegin; |
| 791 | LookupResult lr; |
| 792 | |
| 793 | DP("Looking up mapping(HstPtrBegin=" DPxMOD ", Size=%ld)...\n", DPxPTR(hp), |
| 794 | Size); |
| 795 | for (lr.Entry = HostDataToTargetMap.begin(); |
| 796 | lr.Entry != HostDataToTargetMap.end(); ++lr.Entry) { |
| 797 | auto &HT = *lr.Entry; |
| 798 | // Is it contained? |
| 799 | lr.Flags.IsContained = hp >= HT.HstPtrBegin && hp < HT.HstPtrEnd && |
| 800 | (hp+Size) <= HT.HstPtrEnd; |
| 801 | // Does it extend into an already mapped region? |
| 802 | lr.Flags.ExtendsBefore = hp < HT.HstPtrBegin && (hp+Size) > HT.HstPtrBegin; |
| 803 | // Does it extend beyond the mapped region? |
| 804 | lr.Flags.ExtendsAfter = hp < HT.HstPtrEnd && (hp+Size) > HT.HstPtrEnd; |
| 805 | |
| 806 | if (lr.Flags.IsContained || lr.Flags.ExtendsBefore || |
| 807 | lr.Flags.ExtendsAfter) { |
| 808 | break; |
| 809 | } |
| 810 | } |
| 811 | |
| 812 | if (lr.Flags.ExtendsBefore) { |
| 813 | DP("WARNING: Pointer is not mapped but section extends into already " |
| 814 | "mapped data\n"); |
| 815 | } |
| 816 | if (lr.Flags.ExtendsAfter) { |
| 817 | DP("WARNING: Pointer is already mapped but section extends beyond mapped " |
| 818 | "region\n"); |
| 819 | } |
| 820 | |
| 821 | return lr; |
| 822 | } |
| 823 | |
| 824 | // Used by target_data_begin |
| 825 | // Return the target pointer begin (where the data will be moved). |
| 826 | // Allocate memory if this is the first occurrence if this mapping. |
| 827 | // Increment the reference counter. |
| 828 | // If NULL is returned, then either data allocation failed or the user tried |
| 829 | // to do an illegal mapping. |
| 830 | void *DeviceTy::getOrAllocTgtPtr(void *HstPtrBegin, void *HstPtrBase, |
| 831 | int64_t Size, bool &IsNew, bool IsImplicit, bool UpdateRefCount) { |
| 832 | void *rc = NULL; |
| 833 | DataMapMtx.lock(); |
| 834 | LookupResult lr = lookupMapping(HstPtrBegin, Size); |
| 835 | |
| 836 | // Check if the pointer is contained. |
| 837 | if (lr.Flags.IsContained || |
| 838 | ((lr.Flags.ExtendsBefore || lr.Flags.ExtendsAfter) && IsImplicit)) { |
| 839 | auto &HT = *lr.Entry; |
| 840 | IsNew = false; |
| 841 | |
| 842 | if (UpdateRefCount) |
| 843 | ++HT.RefCount; |
| 844 | |
| 845 | uintptr_t tp = HT.TgtPtrBegin + ((uintptr_t)HstPtrBegin - HT.HstPtrBegin); |
| 846 | DP("Mapping exists%s with HstPtrBegin=" DPxMOD ", TgtPtrBegin=" DPxMOD ", " |
| 847 | "Size=%ld,%s RefCount=%s\n", (IsImplicit ? " (implicit)" : ""), |
| 848 | DPxPTR(HstPtrBegin), DPxPTR(tp), Size, |
| 849 | (UpdateRefCount ? " updated" : ""), |
| 850 | (CONSIDERED_INF(HT.RefCount)) ? "INF" : |
| 851 | std::to_string(HT.RefCount).c_str()); |
| 852 | rc = (void *)tp; |
| 853 | } else if ((lr.Flags.ExtendsBefore || lr.Flags.ExtendsAfter) && !IsImplicit) { |
| 854 | // Explicit extension of mapped data - not allowed. |
| 855 | DP("Explicit extension of mapping is not allowed.\n"); |
| 856 | } else if (Size) { |
| 857 | // If it is not contained and Size > 0 we should create a new entry for it. |
| 858 | IsNew = true; |
| 859 | uintptr_t tp = (uintptr_t)RTL->data_alloc(RTLDeviceID, Size); |
| 860 | DP("Creating new map entry: HstBase=" DPxMOD ", HstBegin=" DPxMOD ", " |
| 861 | "HstEnd=" DPxMOD ", TgtBegin=" DPxMOD "\n", DPxPTR(HstPtrBase), |
| 862 | DPxPTR(HstPtrBegin), DPxPTR((uintptr_t)HstPtrBegin + Size), DPxPTR(tp)); |
| 863 | HostDataToTargetMap.push_front(HostDataToTargetTy((uintptr_t)HstPtrBase, |
| 864 | (uintptr_t)HstPtrBegin, (uintptr_t)HstPtrBegin + Size, tp)); |
| 865 | rc = (void *)tp; |
| 866 | } |
| 867 | |
| 868 | DataMapMtx.unlock(); |
| 869 | return rc; |
| 870 | } |
| 871 | |
| 872 | // Used by target_data_begin, target_data_end, target_data_update and target. |
| 873 | // Return the target pointer begin (where the data will be moved). |
| 874 | // Decrement the reference counter if called from target_data_end. |
| 875 | void *DeviceTy::getTgtPtrBegin(void *HstPtrBegin, int64_t Size, bool &IsLast, |
| 876 | bool UpdateRefCount) { |
| 877 | void *rc = NULL; |
| 878 | DataMapMtx.lock(); |
| 879 | LookupResult lr = lookupMapping(HstPtrBegin, Size); |
| 880 | |
| 881 | if (lr.Flags.IsContained || lr.Flags.ExtendsBefore || lr.Flags.ExtendsAfter) { |
| 882 | auto &HT = *lr.Entry; |
| 883 | IsLast = !(HT.RefCount > 1); |
| 884 | |
| 885 | if (HT.RefCount > 1 && UpdateRefCount) |
| 886 | --HT.RefCount; |
| 887 | |
| 888 | uintptr_t tp = HT.TgtPtrBegin + ((uintptr_t)HstPtrBegin - HT.HstPtrBegin); |
| 889 | DP("Mapping exists with HstPtrBegin=" DPxMOD ", TgtPtrBegin=" DPxMOD ", " |
| 890 | "Size=%ld,%s RefCount=%s\n", DPxPTR(HstPtrBegin), DPxPTR(tp), Size, |
| 891 | (UpdateRefCount ? " updated" : ""), |
| 892 | (CONSIDERED_INF(HT.RefCount)) ? "INF" : |
| 893 | std::to_string(HT.RefCount).c_str()); |
| 894 | rc = (void *)tp; |
| 895 | } else { |
| 896 | IsLast = false; |
| 897 | } |
| 898 | |
| 899 | DataMapMtx.unlock(); |
| 900 | return rc; |
| 901 | } |
| 902 | |
| 903 | // Return the target pointer begin (where the data will be moved). |
| 904 | // Lock-free version called from within assertions. |
| 905 | void *DeviceTy::getTgtPtrBegin(void *HstPtrBegin, int64_t Size) { |
| 906 | uintptr_t hp = (uintptr_t)HstPtrBegin; |
| 907 | LookupResult lr = lookupMapping(HstPtrBegin, Size); |
| 908 | if (lr.Flags.IsContained || lr.Flags.ExtendsBefore || lr.Flags.ExtendsAfter) { |
| 909 | auto &HT = *lr.Entry; |
| 910 | uintptr_t tp = HT.TgtPtrBegin + (hp - HT.HstPtrBegin); |
| 911 | return (void *)tp; |
| 912 | } |
| 913 | |
| 914 | return NULL; |
| 915 | } |
| 916 | |
| 917 | int DeviceTy::deallocTgtPtr(void *HstPtrBegin, int64_t Size, bool ForceDelete) { |
| 918 | // Check if the pointer is contained in any sub-nodes. |
| 919 | int rc; |
| 920 | DataMapMtx.lock(); |
| 921 | LookupResult lr = lookupMapping(HstPtrBegin, Size); |
| 922 | if (lr.Flags.IsContained || lr.Flags.ExtendsBefore || lr.Flags.ExtendsAfter) { |
| 923 | auto &HT = *lr.Entry; |
| 924 | if (ForceDelete) |
| 925 | HT.RefCount = 1; |
| 926 | if (--HT.RefCount <= 0) { |
| 927 | assert(HT.RefCount == 0 && "did not expect a negative ref count"); |
| 928 | DP("Deleting tgt data " DPxMOD " of size %ld\n", |
| 929 | DPxPTR(HT.TgtPtrBegin), Size); |
| 930 | RTL->data_delete(RTLDeviceID, (void *)HT.TgtPtrBegin); |
| 931 | DP("Removing%s mapping with HstPtrBegin=" DPxMOD ", TgtPtrBegin=" DPxMOD |
| 932 | ", Size=%ld\n", (ForceDelete ? " (forced)" : ""), |
| 933 | DPxPTR(HT.HstPtrBegin), DPxPTR(HT.TgtPtrBegin), Size); |
| 934 | HostDataToTargetMap.erase(lr.Entry); |
| 935 | } |
| 936 | rc = OFFLOAD_SUCCESS; |
| 937 | } else { |
| 938 | DP("Section to delete (hst addr " DPxMOD ") does not exist in the allocated" |
| 939 | " memory\n", DPxPTR(HstPtrBegin)); |
| 940 | rc = OFFLOAD_FAIL; |
| 941 | } |
| 942 | |
| 943 | DataMapMtx.unlock(); |
| 944 | return rc; |
| 945 | } |
| 946 | |
| 947 | /// Init device, should not be called directly. |
| 948 | void DeviceTy::init() { |
| 949 | int32_t rc = RTL->init_device(RTLDeviceID); |
| 950 | if (rc == OFFLOAD_SUCCESS) { |
| 951 | IsInit = true; |
| 952 | } |
| 953 | } |
| 954 | |
| 955 | /// Thread-safe method to initialize the device only once. |
| 956 | int32_t DeviceTy::initOnce() { |
| 957 | std::call_once(InitFlag, &DeviceTy::init, this); |
| 958 | |
| 959 | // At this point, if IsInit is true, then either this thread or some other |
| 960 | // thread in the past successfully initialized the device, so we can return |
| 961 | // OFFLOAD_SUCCESS. If this thread executed init() via call_once() and it |
| 962 | // failed, return OFFLOAD_FAIL. If call_once did not invoke init(), it means |
| 963 | // that some other thread already attempted to execute init() and if IsInit |
| 964 | // is still false, return OFFLOAD_FAIL. |
| 965 | if (IsInit) |
| 966 | return OFFLOAD_SUCCESS; |
| 967 | else |
| 968 | return OFFLOAD_FAIL; |
| 969 | } |
| 970 | |
| 971 | // Load binary to device. |
| 972 | __tgt_target_table *DeviceTy::load_binary(void *Img) { |
| 973 | RTL->Mtx.lock(); |
| 974 | __tgt_target_table *rc = RTL->load_binary(RTLDeviceID, Img); |
| 975 | RTL->Mtx.unlock(); |
| 976 | return rc; |
| 977 | } |
| 978 | |
| 979 | // Submit data to device. |
| 980 | int32_t DeviceTy::data_submit(void *TgtPtrBegin, void *HstPtrBegin, |
| 981 | int64_t Size) { |
| 982 | return RTL->data_submit(RTLDeviceID, TgtPtrBegin, HstPtrBegin, Size); |
| 983 | } |
| 984 | |
| 985 | // Retrieve data from device. |
| 986 | int32_t DeviceTy::data_retrieve(void *HstPtrBegin, void *TgtPtrBegin, |
| 987 | int64_t Size) { |
| 988 | return RTL->data_retrieve(RTLDeviceID, HstPtrBegin, TgtPtrBegin, Size); |
| 989 | } |
| 990 | |
| 991 | // Run region on device |
| 992 | int32_t DeviceTy::run_region(void *TgtEntryPtr, void **TgtVarsPtr, |
| 993 | int32_t TgtVarsSize) { |
| 994 | return RTL->run_region(RTLDeviceID, TgtEntryPtr, TgtVarsPtr, TgtVarsSize); |
| 995 | } |
| 996 | |
| 997 | // Run team region on device. |
| 998 | int32_t DeviceTy::run_team_region(void *TgtEntryPtr, void **TgtVarsPtr, |
| 999 | int32_t TgtVarsSize, int32_t NumTeams, int32_t ThreadLimit, |
| 1000 | uint64_t LoopTripCount) { |
| 1001 | return RTL->run_team_region(RTLDeviceID, TgtEntryPtr, TgtVarsPtr, TgtVarsSize, |
| 1002 | NumTeams, ThreadLimit, LoopTripCount); |
| 1003 | } |
| 1004 | |
| 1005 | //////////////////////////////////////////////////////////////////////////////// |
| 1006 | // Functionality for registering libs |
| 1007 | |
| 1008 | static void RegisterImageIntoTranslationTable(TranslationTable &TT, |
| 1009 | RTLInfoTy &RTL, __tgt_device_image *image) { |
| 1010 | |
| 1011 | // same size, as when we increase one, we also increase the other. |
| 1012 | assert(TT.TargetsTable.size() == TT.TargetsImages.size() && |
| 1013 | "We should have as many images as we have tables!"); |
| 1014 | |
| 1015 | // Resize the Targets Table and Images to accommodate the new targets if |
| 1016 | // required |
| 1017 | unsigned TargetsTableMinimumSize = RTL.Idx + RTL.NumberOfDevices; |
| 1018 | |
| 1019 | if (TT.TargetsTable.size() < TargetsTableMinimumSize) { |
| 1020 | TT.TargetsImages.resize(TargetsTableMinimumSize, 0); |
| 1021 | TT.TargetsTable.resize(TargetsTableMinimumSize, 0); |
| 1022 | } |
| 1023 | |
| 1024 | // Register the image in all devices for this target type. |
| 1025 | for (int32_t i = 0; i < RTL.NumberOfDevices; ++i) { |
| 1026 | // If we are changing the image we are also invalidating the target table. |
| 1027 | if (TT.TargetsImages[RTL.Idx + i] != image) { |
| 1028 | TT.TargetsImages[RTL.Idx + i] = image; |
| 1029 | TT.TargetsTable[RTL.Idx + i] = 0; // lazy initialization of target table. |
| 1030 | } |
| 1031 | } |
| 1032 | } |
| 1033 | |
| 1034 | //////////////////////////////////////////////////////////////////////////////// |
| 1035 | // Functionality for registering Ctors/Dtors |
| 1036 | |
| 1037 | static void RegisterGlobalCtorsDtorsForImage(__tgt_bin_desc *desc, |
| 1038 | __tgt_device_image *img, RTLInfoTy *RTL) { |
| 1039 | |
| 1040 | for (int32_t i = 0; i < RTL->NumberOfDevices; ++i) { |
| 1041 | DeviceTy &Device = Devices[RTL->Idx + i]; |
| 1042 | Device.PendingGlobalsMtx.lock(); |
| 1043 | Device.HasPendingGlobals = true; |
| 1044 | for (__tgt_offload_entry *entry = img->EntriesBegin; |
| 1045 | entry != img->EntriesEnd; ++entry) { |
| 1046 | if (entry->flags & OMP_DECLARE_TARGET_CTOR) { |
| 1047 | DP("Adding ctor " DPxMOD " to the pending list.\n", |
| 1048 | DPxPTR(entry->addr)); |
| 1049 | Device.PendingCtorsDtors[desc].PendingCtors.push_back(entry->addr); |
| 1050 | } else if (entry->flags & OMP_DECLARE_TARGET_DTOR) { |
| 1051 | // Dtors are pushed in reverse order so they are executed from end |
| 1052 | // to beginning when unregistering the library! |
| 1053 | DP("Adding dtor " DPxMOD " to the pending list.\n", |
| 1054 | DPxPTR(entry->addr)); |
| 1055 | Device.PendingCtorsDtors[desc].PendingDtors.push_front(entry->addr); |
| 1056 | } |
| 1057 | |
| 1058 | if (entry->flags & OMP_DECLARE_TARGET_LINK) { |
| 1059 | DP("The \"link\" attribute is not yet supported!\n"); |
| 1060 | } |
| 1061 | } |
| 1062 | Device.PendingGlobalsMtx.unlock(); |
| 1063 | } |
| 1064 | } |
| 1065 | |
| 1066 | //////////////////////////////////////////////////////////////////////////////// |
| 1067 | /// adds a target shared library to the target execution image |
| 1068 | EXTERN void __tgt_register_lib(__tgt_bin_desc *desc) { |
| 1069 | |
| 1070 | // Attempt to load all plugins available in the system. |
| 1071 | RTLs.LoadRTLsOnce(); |
| 1072 | |
| 1073 | RTLsMtx.lock(); |
| 1074 | // Register the images with the RTLs that understand them, if any. |
| 1075 | for (int32_t i = 0; i < desc->NumDeviceImages; ++i) { |
| 1076 | // Obtain the image. |
| 1077 | __tgt_device_image *img = &desc->DeviceImages[i]; |
| 1078 | |
| 1079 | RTLInfoTy *FoundRTL = NULL; |
| 1080 | |
| 1081 | // Scan the RTLs that have associated images until we find one that supports |
| 1082 | // the current image. |
| 1083 | for (auto &R : RTLs.AllRTLs) { |
| 1084 | if (!R.is_valid_binary(img)) { |
| 1085 | DP("Image " DPxMOD " is NOT compatible with RTL %s!\n", |
| 1086 | DPxPTR(img->ImageStart), R.RTLName.c_str()); |
| 1087 | continue; |
| 1088 | } |
| 1089 | |
| 1090 | DP("Image " DPxMOD " is compatible with RTL %s!\n", |
| 1091 | DPxPTR(img->ImageStart), R.RTLName.c_str()); |
| 1092 | |
| 1093 | // If this RTL is not already in use, initialize it. |
| 1094 | if (!R.isUsed) { |
| 1095 | // Initialize the device information for the RTL we are about to use. |
| 1096 | DeviceTy device(&R); |
| 1097 | |
| 1098 | size_t start = Devices.size(); |
| 1099 | Devices.resize(start + R.NumberOfDevices, device); |
| 1100 | for (int32_t device_id = 0; device_id < R.NumberOfDevices; |
| 1101 | device_id++) { |
| 1102 | // global device ID |
| 1103 | Devices[start + device_id].DeviceID = start + device_id; |
| 1104 | // RTL local device ID |
| 1105 | Devices[start + device_id].RTLDeviceID = device_id; |
| 1106 | |
| 1107 | // Save pointer to device in RTL in case we want to unregister the RTL |
| 1108 | R.Devices.push_back(&Devices[start + device_id]); |
| 1109 | } |
| 1110 | |
| 1111 | // Initialize the index of this RTL and save it in the used RTLs. |
| 1112 | R.Idx = (RTLs.UsedRTLs.empty()) |
| 1113 | ? 0 |
| 1114 | : RTLs.UsedRTLs.back()->Idx + |
| 1115 | RTLs.UsedRTLs.back()->NumberOfDevices; |
| 1116 | assert((size_t) R.Idx == start && |
| 1117 | "RTL index should equal the number of devices used so far."); |
| 1118 | R.isUsed = true; |
| 1119 | RTLs.UsedRTLs.push_back(&R); |
| 1120 | |
| 1121 | DP("RTL " DPxMOD " has index %d!\n", DPxPTR(R.LibraryHandler), R.Idx); |
| 1122 | } |
| 1123 | |
| 1124 | // Initialize (if necessary) translation table for this library. |
| 1125 | TrlTblMtx.lock(); |
| 1126 | if(!HostEntriesBeginToTransTable.count(desc->HostEntriesBegin)){ |
| 1127 | TranslationTable &tt = |
| 1128 | HostEntriesBeginToTransTable[desc->HostEntriesBegin]; |
| 1129 | tt.HostTable.EntriesBegin = desc->HostEntriesBegin; |
| 1130 | tt.HostTable.EntriesEnd = desc->HostEntriesEnd; |
| 1131 | } |
| 1132 | |
| 1133 | // Retrieve translation table for this library. |
| 1134 | TranslationTable &TransTable = |
| 1135 | HostEntriesBeginToTransTable[desc->HostEntriesBegin]; |
| 1136 | |
| 1137 | DP("Registering image " DPxMOD " with RTL %s!\n", |
| 1138 | DPxPTR(img->ImageStart), R.RTLName.c_str()); |
| 1139 | RegisterImageIntoTranslationTable(TransTable, R, img); |
| 1140 | TrlTblMtx.unlock(); |
| 1141 | FoundRTL = &R; |
| 1142 | |
| 1143 | // Load ctors/dtors for static objects |
| 1144 | RegisterGlobalCtorsDtorsForImage(desc, img, FoundRTL); |
| 1145 | |
| 1146 | // if an RTL was found we are done - proceed to register the next image |
| 1147 | break; |
| 1148 | } |
| 1149 | |
| 1150 | if (!FoundRTL) { |
| 1151 | DP("No RTL found for image " DPxMOD "!\n", DPxPTR(img->ImageStart)); |
| 1152 | } |
| 1153 | } |
| 1154 | RTLsMtx.unlock(); |
| 1155 | |
| 1156 | |
| 1157 | DP("Done registering entries!\n"); |
| 1158 | } |
| 1159 | |
| 1160 | //////////////////////////////////////////////////////////////////////////////// |
| 1161 | /// unloads a target shared library |
| 1162 | EXTERN void __tgt_unregister_lib(__tgt_bin_desc *desc) { |
| 1163 | DP("Unloading target library!\n"); |
| 1164 | |
| 1165 | RTLsMtx.lock(); |
| 1166 | // Find which RTL understands each image, if any. |
| 1167 | for (int32_t i = 0; i < desc->NumDeviceImages; ++i) { |
| 1168 | // Obtain the image. |
| 1169 | __tgt_device_image *img = &desc->DeviceImages[i]; |
| 1170 | |
| 1171 | RTLInfoTy *FoundRTL = NULL; |
| 1172 | |
| 1173 | // Scan the RTLs that have associated images until we find one that supports |
| 1174 | // the current image. We only need to scan RTLs that are already being used. |
| 1175 | for (auto *R : RTLs.UsedRTLs) { |
| 1176 | |
| 1177 | assert(R->isUsed && "Expecting used RTLs."); |
| 1178 | |
| 1179 | if (!R->is_valid_binary(img)) { |
| 1180 | DP("Image " DPxMOD " is NOT compatible with RTL " DPxMOD "!\n", |
| 1181 | DPxPTR(img->ImageStart), DPxPTR(R->LibraryHandler)); |
| 1182 | continue; |
| 1183 | } |
| 1184 | |
| 1185 | DP("Image " DPxMOD " is compatible with RTL " DPxMOD "!\n", |
| 1186 | DPxPTR(img->ImageStart), DPxPTR(R->LibraryHandler)); |
| 1187 | |
| 1188 | FoundRTL = R; |
| 1189 | |
| 1190 | // Execute dtors for static objects if the device has been used, i.e. |
| 1191 | // if its PendingCtors list has been emptied. |
| 1192 | for (int32_t i = 0; i < FoundRTL->NumberOfDevices; ++i) { |
| 1193 | DeviceTy &Device = Devices[FoundRTL->Idx + i]; |
| 1194 | Device.PendingGlobalsMtx.lock(); |
| 1195 | if (Device.PendingCtorsDtors[desc].PendingCtors.empty()) { |
| 1196 | for (auto &dtor : Device.PendingCtorsDtors[desc].PendingDtors) { |
| 1197 | int rc = target(Device.DeviceID, dtor, 0, NULL, NULL, NULL, NULL, 1, |
| 1198 | 1, true /*team*/); |
| 1199 | if (rc != OFFLOAD_SUCCESS) { |
| 1200 | DP("Running destructor " DPxMOD " failed.\n", DPxPTR(dtor)); |
| 1201 | } |
| 1202 | } |
| 1203 | // Remove this library's entry from PendingCtorsDtors |
| 1204 | Device.PendingCtorsDtors.erase(desc); |
| 1205 | } |
| 1206 | Device.PendingGlobalsMtx.unlock(); |
| 1207 | } |
| 1208 | |
| 1209 | DP("Unregistered image " DPxMOD " from RTL " DPxMOD "!\n", |
| 1210 | DPxPTR(img->ImageStart), DPxPTR(R->LibraryHandler)); |
| 1211 | |
| 1212 | break; |
| 1213 | } |
| 1214 | |
| 1215 | // if no RTL was found proceed to unregister the next image |
| 1216 | if (!FoundRTL){ |
| 1217 | DP("No RTLs in use support the image " DPxMOD "!\n", |
| 1218 | DPxPTR(img->ImageStart)); |
| 1219 | } |
| 1220 | } |
| 1221 | RTLsMtx.unlock(); |
| 1222 | DP("Done unregistering images!\n"); |
| 1223 | |
| 1224 | // Remove entries from HostPtrToTableMap |
| 1225 | TblMapMtx.lock(); |
| 1226 | for (__tgt_offload_entry *cur = desc->HostEntriesBegin; |
| 1227 | cur < desc->HostEntriesEnd; ++cur) { |
| 1228 | HostPtrToTableMap.erase(cur->addr); |
| 1229 | } |
| 1230 | |
| 1231 | // Remove translation table for this descriptor. |
| 1232 | auto tt = HostEntriesBeginToTransTable.find(desc->HostEntriesBegin); |
| 1233 | if (tt != HostEntriesBeginToTransTable.end()) { |
| 1234 | DP("Removing translation table for descriptor " DPxMOD "\n", |
| 1235 | DPxPTR(desc->HostEntriesBegin)); |
| 1236 | HostEntriesBeginToTransTable.erase(tt); |
| 1237 | } else { |
| 1238 | DP("Translation table for descriptor " DPxMOD " cannot be found, probably " |
| 1239 | "it has been already removed.\n", DPxPTR(desc->HostEntriesBegin)); |
| 1240 | } |
| 1241 | |
| 1242 | TblMapMtx.unlock(); |
| 1243 | |
| 1244 | // TODO: Remove RTL and the devices it manages if it's not used anymore? |
| 1245 | // TODO: Write some RTL->unload_image(...) function? |
| 1246 | |
| 1247 | DP("Done unregistering library!\n"); |
| 1248 | } |
| 1249 | |
| 1250 | /// Map global data and execute pending ctors |
| 1251 | static int InitLibrary(DeviceTy& Device) { |
| 1252 | /* |
| 1253 | * Map global data |
| 1254 | */ |
| 1255 | int32_t device_id = Device.DeviceID; |
| 1256 | int rc = OFFLOAD_SUCCESS; |
| 1257 | |
| 1258 | Device.PendingGlobalsMtx.lock(); |
| 1259 | TrlTblMtx.lock(); |
| 1260 | for (HostEntriesBeginToTransTableTy::iterator |
| 1261 | ii = HostEntriesBeginToTransTable.begin(); |
| 1262 | ii != HostEntriesBeginToTransTable.end(); ++ii) { |
| 1263 | TranslationTable *TransTable = &ii->second; |
| 1264 | if (TransTable->TargetsTable[device_id] != 0) { |
| 1265 | // Library entries have already been processed |
| 1266 | continue; |
| 1267 | } |
| 1268 | |
| 1269 | // 1) get image. |
| 1270 | assert(TransTable->TargetsImages.size() > (size_t)device_id && |
| 1271 | "Not expecting a device ID outside the table's bounds!"); |
| 1272 | __tgt_device_image *img = TransTable->TargetsImages[device_id]; |
| 1273 | if (!img) { |
| 1274 | DP("No image loaded for device id %d.\n", device_id); |
| 1275 | rc = OFFLOAD_FAIL; |
| 1276 | break; |
| 1277 | } |
| 1278 | // 2) load image into the target table. |
| 1279 | __tgt_target_table *TargetTable = |
| 1280 | TransTable->TargetsTable[device_id] = Device.load_binary(img); |
| 1281 | // Unable to get table for this image: invalidate image and fail. |
| 1282 | if (!TargetTable) { |
| 1283 | DP("Unable to generate entries table for device id %d.\n", device_id); |
| 1284 | TransTable->TargetsImages[device_id] = 0; |
| 1285 | rc = OFFLOAD_FAIL; |
| 1286 | break; |
| 1287 | } |
| 1288 | |
| 1289 | // Verify whether the two table sizes match. |
| 1290 | size_t hsize = |
| 1291 | TransTable->HostTable.EntriesEnd - TransTable->HostTable.EntriesBegin; |
| 1292 | size_t tsize = TargetTable->EntriesEnd - TargetTable->EntriesBegin; |
| 1293 | |
| 1294 | // Invalid image for these host entries! |
| 1295 | if (hsize != tsize) { |
| 1296 | DP("Host and Target tables mismatch for device id %d [%zx != %zx].\n", |
| 1297 | device_id, hsize, tsize); |
| 1298 | TransTable->TargetsImages[device_id] = 0; |
| 1299 | TransTable->TargetsTable[device_id] = 0; |
| 1300 | rc = OFFLOAD_FAIL; |
| 1301 | break; |
| 1302 | } |
| 1303 | |
| 1304 | // process global data that needs to be mapped. |
| 1305 | Device.DataMapMtx.lock(); |
| 1306 | __tgt_target_table *HostTable = &TransTable->HostTable; |
| 1307 | for (__tgt_offload_entry *CurrDeviceEntry = TargetTable->EntriesBegin, |
| 1308 | *CurrHostEntry = HostTable->EntriesBegin, |
| 1309 | *EntryDeviceEnd = TargetTable->EntriesEnd; |
| 1310 | CurrDeviceEntry != EntryDeviceEnd; |
| 1311 | CurrDeviceEntry++, CurrHostEntry++) { |
| 1312 | if (CurrDeviceEntry->size != 0) { |
| 1313 | // has data. |
| 1314 | assert(CurrDeviceEntry->size == CurrHostEntry->size && |
| 1315 | "data size mismatch"); |
| 1316 | assert(Device.getTgtPtrBegin(CurrHostEntry->addr, |
| 1317 | CurrHostEntry->size) == NULL && |
| 1318 | "data in declared target should not be already mapped"); |
| 1319 | // add entry to map. |
| 1320 | DP("Add mapping from host " DPxMOD " to device " DPxMOD " with size %zu" |
| 1321 | "\n", DPxPTR(CurrHostEntry->addr), DPxPTR(CurrDeviceEntry->addr), |
| 1322 | CurrDeviceEntry->size); |
| 1323 | Device.HostDataToTargetMap.push_front(HostDataToTargetTy( |
| 1324 | (uintptr_t)CurrHostEntry->addr, (uintptr_t)CurrHostEntry->addr, |
| 1325 | (uintptr_t)CurrHostEntry->addr + CurrHostEntry->size, |
| 1326 | (uintptr_t)CurrDeviceEntry->addr)); |
| 1327 | } |
| 1328 | } |
| 1329 | Device.DataMapMtx.unlock(); |
| 1330 | } |
| 1331 | TrlTblMtx.unlock(); |
| 1332 | |
| 1333 | if (rc != OFFLOAD_SUCCESS) { |
| 1334 | Device.PendingGlobalsMtx.unlock(); |
| 1335 | return rc; |
| 1336 | } |
| 1337 | |
| 1338 | /* |
| 1339 | * Run ctors for static objects |
| 1340 | */ |
| 1341 | if (!Device.PendingCtorsDtors.empty()) { |
| 1342 | // Call all ctors for all libraries registered so far |
| 1343 | for (auto &lib : Device.PendingCtorsDtors) { |
| 1344 | if (!lib.second.PendingCtors.empty()) { |
| 1345 | DP("Has pending ctors... call now\n"); |
| 1346 | for (auto &entry : lib.second.PendingCtors) { |
| 1347 | void *ctor = entry; |
| 1348 | int rc = target(device_id, ctor, 0, NULL, NULL, NULL, |
| 1349 | NULL, 1, 1, true /*team*/); |
| 1350 | if (rc != OFFLOAD_SUCCESS) { |
| 1351 | DP("Running ctor " DPxMOD " failed.\n", DPxPTR(ctor)); |
| 1352 | Device.PendingGlobalsMtx.unlock(); |
| 1353 | return OFFLOAD_FAIL; |
| 1354 | } |
| 1355 | } |
| 1356 | // Clear the list to indicate that this device has been used |
| 1357 | lib.second.PendingCtors.clear(); |
| 1358 | DP("Done with pending ctors for lib " DPxMOD "\n", DPxPTR(lib.first)); |
| 1359 | } |
| 1360 | } |
| 1361 | } |
| 1362 | Device.HasPendingGlobals = false; |
| 1363 | Device.PendingGlobalsMtx.unlock(); |
| 1364 | |
| 1365 | return OFFLOAD_SUCCESS; |
| 1366 | } |
| 1367 | |
| 1368 | // Check whether a device has been initialized, global ctors have been |
| 1369 | // executed and global data has been mapped; do so if not already done. |
| 1370 | static int CheckDevice(int32_t device_id) { |
| 1371 | // Is device ready? |
| 1372 | if (!device_is_ready(device_id)) { |
| 1373 | DP("Device %d is not ready.\n", device_id); |
| 1374 | return OFFLOAD_FAIL; |
| 1375 | } |
| 1376 | |
| 1377 | // Get device info. |
| 1378 | DeviceTy &Device = Devices[device_id]; |
| 1379 | |
| 1380 | // Check whether global data has been mapped for this device |
| 1381 | Device.PendingGlobalsMtx.lock(); |
| 1382 | bool hasPendingGlobals = Device.HasPendingGlobals; |
| 1383 | Device.PendingGlobalsMtx.unlock(); |
| 1384 | if (hasPendingGlobals && InitLibrary(Device) != OFFLOAD_SUCCESS) { |
| 1385 | DP("Failed to init globals on device %d\n", device_id); |
| 1386 | return OFFLOAD_FAIL; |
| 1387 | } |
| 1388 | |
| 1389 | return OFFLOAD_SUCCESS; |
| 1390 | } |
| 1391 | |
| 1392 | // Following datatypes and functions (tgt_oldmap_type, combined_entry_t, |
| 1393 | // translate_map, cleanup_map) will be removed once the compiler starts using |
| 1394 | // the new map types. |
| 1395 | |
| 1396 | // Old map types |
| 1397 | enum tgt_oldmap_type { |
| 1398 | OMP_TGT_OLDMAPTYPE_TO = 0x001, // copy data from host to device |
| 1399 | OMP_TGT_OLDMAPTYPE_FROM = 0x002, // copy data from device to host |
| 1400 | OMP_TGT_OLDMAPTYPE_ALWAYS = 0x004, // copy regardless of the ref. count |
| 1401 | OMP_TGT_OLDMAPTYPE_DELETE = 0x008, // force unmapping of data |
| 1402 | OMP_TGT_OLDMAPTYPE_MAP_PTR = 0x010, // map pointer as well as pointee |
| 1403 | OMP_TGT_OLDMAPTYPE_FIRST_MAP = 0x020, // first occurrence of mapped variable |
| 1404 | OMP_TGT_OLDMAPTYPE_RETURN_PTR = 0x040, // return TgtBase addr of mapped data |
| 1405 | OMP_TGT_OLDMAPTYPE_PRIVATE_PTR = 0x080, // private variable - not mapped |
| 1406 | OMP_TGT_OLDMAPTYPE_PRIVATE_VAL = 0x100 // copy by value - not mapped |
| 1407 | }; |
| 1408 | |
| 1409 | // Temporary functions for map translation and cleanup |
| 1410 | struct combined_entry_t { |
| 1411 | int num_members; // number of members in combined entry |
| 1412 | void *base_addr; // base address of combined entry |
| 1413 | void *begin_addr; // begin address of combined entry |
| 1414 | void *end_addr; // size of combined entry |
| 1415 | }; |
| 1416 | |
| 1417 | static void translate_map(int32_t arg_num, void **args_base, void **args, |
| 1418 | int64_t *arg_sizes, int32_t *arg_types, int32_t &new_arg_num, |
| 1419 | void **&new_args_base, void **&new_args, int64_t *&new_arg_sizes, |
| 1420 | int64_t *&new_arg_types, bool is_target_construct) { |
| 1421 | if (arg_num <= 0) { |
| 1422 | DP("Nothing to translate\n"); |
| 1423 | new_arg_num = 0; |
| 1424 | return; |
| 1425 | } |
| 1426 | |
| 1427 | // array of combined entries |
| 1428 | combined_entry_t *cmb_entries = |
| 1429 | (combined_entry_t *) alloca(arg_num * sizeof(combined_entry_t)); |
| 1430 | // number of combined entries |
| 1431 | long num_combined = 0; |
| 1432 | // old entry is MAP_PTR? |
| 1433 | bool *is_ptr_old = (bool *) alloca(arg_num * sizeof(bool)); |
| 1434 | // old entry is member of member_of[old] cmb_entry |
| 1435 | int *member_of = (int *) alloca(arg_num * sizeof(int)); |
George Rokos | 15a6e7d | 2017-02-15 20:45:37 +0000 | [diff] [blame^] | 1436 | // temporary storage for modifications of the original arg_types |
| 1437 | int32_t *mod_arg_types = (int32_t *) alloca(arg_num *sizeof(int32_t)); |
George Rokos | 2467df6 | 2017-01-25 21:27:24 +0000 | [diff] [blame] | 1438 | |
| 1439 | DP("Translating %d map entries\n", arg_num); |
| 1440 | for (int i = 0; i < arg_num; ++i) { |
| 1441 | member_of[i] = -1; |
| 1442 | is_ptr_old[i] = false; |
George Rokos | 15a6e7d | 2017-02-15 20:45:37 +0000 | [diff] [blame^] | 1443 | mod_arg_types[i] = arg_types[i]; |
George Rokos | 2467df6 | 2017-01-25 21:27:24 +0000 | [diff] [blame] | 1444 | // Scan previous entries to see whether this entry shares the same base |
| 1445 | for (int j = 0; j < i; ++j) { |
| 1446 | void *new_begin_addr = NULL; |
| 1447 | void *new_end_addr = NULL; |
| 1448 | |
George Rokos | 15a6e7d | 2017-02-15 20:45:37 +0000 | [diff] [blame^] | 1449 | if (mod_arg_types[i] & OMP_TGT_OLDMAPTYPE_MAP_PTR) { |
George Rokos | 2467df6 | 2017-01-25 21:27:24 +0000 | [diff] [blame] | 1450 | if (args_base[i] == args[j]) { |
George Rokos | 15a6e7d | 2017-02-15 20:45:37 +0000 | [diff] [blame^] | 1451 | if (!(mod_arg_types[j] & OMP_TGT_OLDMAPTYPE_MAP_PTR)) { |
George Rokos | 2467df6 | 2017-01-25 21:27:24 +0000 | [diff] [blame] | 1452 | DP("Entry %d has the same base as entry %d's begin address\n", i, |
| 1453 | j); |
| 1454 | new_begin_addr = args_base[i]; |
| 1455 | new_end_addr = (char *)args_base[i] + sizeof(void *); |
| 1456 | assert(arg_sizes[j] == sizeof(void *)); |
| 1457 | is_ptr_old[j] = true; |
| 1458 | } else { |
| 1459 | DP("Entry %d has the same base as entry %d's begin address, but " |
| 1460 | "%d's base was a MAP_PTR too\n", i, j, j); |
George Rokos | 15a6e7d | 2017-02-15 20:45:37 +0000 | [diff] [blame^] | 1461 | int32_t to_from_always_delete = |
| 1462 | OMP_TGT_OLDMAPTYPE_TO | OMP_TGT_OLDMAPTYPE_FROM | |
| 1463 | OMP_TGT_OLDMAPTYPE_ALWAYS | OMP_TGT_OLDMAPTYPE_DELETE; |
| 1464 | if (mod_arg_types[j] & to_from_always_delete) { |
| 1465 | DP("Resetting to/from/always/delete flags for entry %d because " |
| 1466 | "it is only a pointer to pointer\n", j); |
| 1467 | mod_arg_types[j] &= ~to_from_always_delete; |
| 1468 | } |
George Rokos | 2467df6 | 2017-01-25 21:27:24 +0000 | [diff] [blame] | 1469 | } |
| 1470 | } |
| 1471 | } else { |
George Rokos | 15a6e7d | 2017-02-15 20:45:37 +0000 | [diff] [blame^] | 1472 | if (!(mod_arg_types[i] & OMP_TGT_OLDMAPTYPE_FIRST_MAP) && |
George Rokos | 2467df6 | 2017-01-25 21:27:24 +0000 | [diff] [blame] | 1473 | args_base[i] == args_base[j]) { |
| 1474 | DP("Entry %d has the same base address as entry %d\n", i, j); |
| 1475 | new_begin_addr = args[i]; |
| 1476 | new_end_addr = (char *)args[i] + arg_sizes[i]; |
| 1477 | } |
| 1478 | } |
| 1479 | |
| 1480 | // If we have combined the entry with a previous one |
| 1481 | if (new_begin_addr) { |
| 1482 | int id; |
| 1483 | if(member_of[j] == -1) { |
| 1484 | // We have a new entry |
| 1485 | id = num_combined++; |
| 1486 | DP("Creating new combined entry %d for old entry %d\n", id, j); |
| 1487 | // Initialize new entry |
| 1488 | cmb_entries[id].num_members = 1; |
| 1489 | cmb_entries[id].base_addr = args_base[j]; |
George Rokos | 15a6e7d | 2017-02-15 20:45:37 +0000 | [diff] [blame^] | 1490 | if (mod_arg_types[j] & OMP_TGT_OLDMAPTYPE_MAP_PTR) { |
George Rokos | 2467df6 | 2017-01-25 21:27:24 +0000 | [diff] [blame] | 1491 | cmb_entries[id].begin_addr = args_base[j]; |
| 1492 | cmb_entries[id].end_addr = (char *)args_base[j] + arg_sizes[j]; |
| 1493 | } else { |
| 1494 | cmb_entries[id].begin_addr = args[j]; |
| 1495 | cmb_entries[id].end_addr = (char *)args[j] + arg_sizes[j]; |
| 1496 | } |
| 1497 | member_of[j] = id; |
| 1498 | } else { |
| 1499 | // Reuse existing combined entry |
| 1500 | DP("Reusing existing combined entry %d\n", member_of[j]); |
| 1501 | id = member_of[j]; |
| 1502 | } |
| 1503 | |
| 1504 | // Update combined entry |
| 1505 | DP("Adding entry %d to combined entry %d\n", i, id); |
| 1506 | cmb_entries[id].num_members++; |
| 1507 | // base_addr stays the same |
| 1508 | cmb_entries[id].begin_addr = |
| 1509 | std::min(cmb_entries[id].begin_addr, new_begin_addr); |
| 1510 | cmb_entries[id].end_addr = |
| 1511 | std::max(cmb_entries[id].end_addr, new_end_addr); |
| 1512 | member_of[i] = id; |
| 1513 | break; |
| 1514 | } |
| 1515 | } |
| 1516 | } |
| 1517 | |
| 1518 | DP("New entries: %ld combined + %d original\n", num_combined, arg_num); |
| 1519 | new_arg_num = arg_num + num_combined; |
| 1520 | new_args_base = (void **) malloc(new_arg_num * sizeof(void *)); |
| 1521 | new_args = (void **) malloc(new_arg_num * sizeof(void *)); |
| 1522 | new_arg_sizes = (int64_t *) malloc(new_arg_num * sizeof(int64_t)); |
| 1523 | new_arg_types = (int64_t *) malloc(new_arg_num * sizeof(int64_t)); |
| 1524 | |
| 1525 | const int64_t alignment = 8; |
| 1526 | |
| 1527 | int next_id = 0; // next ID |
| 1528 | int next_cid = 0; // next combined ID |
| 1529 | int *combined_to_new_id = (int *) alloca(num_combined * sizeof(int)); |
| 1530 | for (int i = 0; i < arg_num; ++i) { |
| 1531 | // It is member_of |
| 1532 | if (member_of[i] == next_cid) { |
| 1533 | int cid = next_cid++; // ID of this combined entry |
| 1534 | int nid = next_id++; // ID of the new (global) entry |
| 1535 | combined_to_new_id[cid] = nid; |
| 1536 | DP("Combined entry %3d will become new entry %3d\n", cid, nid); |
| 1537 | |
| 1538 | int64_t padding = (int64_t)cmb_entries[cid].begin_addr % alignment; |
| 1539 | if (padding) { |
| 1540 | DP("Using a padding of %" PRId64 " for begin address " DPxMOD "\n", |
| 1541 | padding, DPxPTR(cmb_entries[cid].begin_addr)); |
| 1542 | cmb_entries[cid].begin_addr = |
| 1543 | (char *)cmb_entries[cid].begin_addr - padding; |
| 1544 | } |
| 1545 | |
| 1546 | new_args_base[nid] = cmb_entries[cid].base_addr; |
| 1547 | new_args[nid] = cmb_entries[cid].begin_addr; |
| 1548 | new_arg_sizes[nid] = (int64_t) ((char *)cmb_entries[cid].end_addr - |
| 1549 | (char *)cmb_entries[cid].begin_addr); |
| 1550 | new_arg_types[nid] = OMP_TGT_MAPTYPE_TARGET_PARAM; |
| 1551 | DP("Entry %3d: base_addr " DPxMOD ", begin_addr " DPxMOD ", " |
| 1552 | "size %" PRId64 ", type 0x%" PRIx64 "\n", nid, |
| 1553 | DPxPTR(new_args_base[nid]), DPxPTR(new_args[nid]), new_arg_sizes[nid], |
| 1554 | new_arg_types[nid]); |
| 1555 | } else if (member_of[i] != -1) { |
| 1556 | DP("Combined entry %3d has been encountered before, do nothing\n", |
| 1557 | member_of[i]); |
| 1558 | } |
| 1559 | |
| 1560 | // Now that the combined entry (the one the old entry was a member of) has |
| 1561 | // been inserted into the new arguments list, proceed with the old entry. |
| 1562 | int nid = next_id++; |
| 1563 | DP("Old entry %3d will become new entry %3d\n", i, nid); |
| 1564 | |
| 1565 | new_args_base[nid] = args_base[i]; |
| 1566 | new_args[nid] = args[i]; |
| 1567 | new_arg_sizes[nid] = arg_sizes[i]; |
George Rokos | 15a6e7d | 2017-02-15 20:45:37 +0000 | [diff] [blame^] | 1568 | int64_t old_type = mod_arg_types[i]; |
George Rokos | 2467df6 | 2017-01-25 21:27:24 +0000 | [diff] [blame] | 1569 | |
| 1570 | if (is_ptr_old[i]) { |
| 1571 | // Reset TO and FROM flags |
| 1572 | old_type &= ~(OMP_TGT_OLDMAPTYPE_TO | OMP_TGT_OLDMAPTYPE_FROM); |
| 1573 | } |
| 1574 | |
| 1575 | if (member_of[i] == -1) { |
| 1576 | if (!is_target_construct) |
| 1577 | old_type &= ~OMP_TGT_MAPTYPE_TARGET_PARAM; |
| 1578 | new_arg_types[nid] = old_type; |
| 1579 | DP("Entry %3d: base_addr " DPxMOD ", begin_addr " DPxMOD ", size %" PRId64 |
| 1580 | ", type 0x%" PRIx64 " (old entry %d not MEMBER_OF)\n", nid, |
| 1581 | DPxPTR(new_args_base[nid]), DPxPTR(new_args[nid]), new_arg_sizes[nid], |
| 1582 | new_arg_types[nid], i); |
| 1583 | } else { |
| 1584 | // Old entry is not FIRST_MAP |
| 1585 | old_type &= ~OMP_TGT_OLDMAPTYPE_FIRST_MAP; |
| 1586 | // Add MEMBER_OF |
| 1587 | int new_member_of = combined_to_new_id[member_of[i]]; |
| 1588 | old_type |= ((int64_t)new_member_of + 1) << 48; |
| 1589 | new_arg_types[nid] = old_type; |
| 1590 | DP("Entry %3d: base_addr " DPxMOD ", begin_addr " DPxMOD ", size %" PRId64 |
| 1591 | ", type 0x%" PRIx64 " (old entry %d MEMBER_OF %d)\n", nid, |
| 1592 | DPxPTR(new_args_base[nid]), DPxPTR(new_args[nid]), new_arg_sizes[nid], |
| 1593 | new_arg_types[nid], i, new_member_of); |
| 1594 | } |
| 1595 | } |
| 1596 | } |
| 1597 | |
| 1598 | static void cleanup_map(int32_t new_arg_num, void **new_args_base, |
| 1599 | void **new_args, int64_t *new_arg_sizes, int64_t *new_arg_types, |
| 1600 | int32_t arg_num, void **args_base) { |
| 1601 | if (new_arg_num > 0) { |
| 1602 | int offset = new_arg_num - arg_num; |
| 1603 | for (int32_t i = 0; i < arg_num; ++i) { |
| 1604 | // Restore old base address |
| 1605 | args_base[i] = new_args_base[i+offset]; |
| 1606 | } |
| 1607 | free(new_args_base); |
| 1608 | free(new_args); |
| 1609 | free(new_arg_sizes); |
| 1610 | free(new_arg_types); |
| 1611 | } |
| 1612 | } |
| 1613 | |
| 1614 | static short member_of(int64_t type) { |
| 1615 | return ((type & OMP_TGT_MAPTYPE_MEMBER_OF) >> 48) - 1; |
| 1616 | } |
| 1617 | |
| 1618 | /// Internal function to do the mapping and transfer the data to the device |
| 1619 | static int target_data_begin(DeviceTy &Device, int32_t arg_num, |
| 1620 | void **args_base, void **args, int64_t *arg_sizes, int64_t *arg_types) { |
| 1621 | // process each input. |
| 1622 | int rc = OFFLOAD_SUCCESS; |
| 1623 | for (int32_t i = 0; i < arg_num; ++i) { |
| 1624 | // Ignore private variables and arrays - there is no mapping for them. |
| 1625 | if ((arg_types[i] & OMP_TGT_MAPTYPE_LITERAL) || |
| 1626 | (arg_types[i] & OMP_TGT_MAPTYPE_PRIVATE)) |
| 1627 | continue; |
| 1628 | |
| 1629 | void *HstPtrBegin = args[i]; |
| 1630 | void *HstPtrBase = args_base[i]; |
| 1631 | // Address of pointer on the host and device, respectively. |
| 1632 | void *Pointer_HstPtrBegin, *Pointer_TgtPtrBegin; |
| 1633 | bool IsNew, Pointer_IsNew; |
| 1634 | bool IsImplicit = arg_types[i] & OMP_TGT_MAPTYPE_IMPLICIT; |
| 1635 | bool UpdateRef = !(arg_types[i] & OMP_TGT_MAPTYPE_MEMBER_OF); |
| 1636 | if (arg_types[i] & OMP_TGT_MAPTYPE_PTR_AND_OBJ) { |
| 1637 | DP("Has a pointer entry: \n"); |
| 1638 | // base is address of pointer. |
| 1639 | Pointer_TgtPtrBegin = Device.getOrAllocTgtPtr(HstPtrBase, HstPtrBase, |
| 1640 | sizeof(void *), Pointer_IsNew, IsImplicit, UpdateRef); |
| 1641 | if (!Pointer_TgtPtrBegin) { |
| 1642 | DP("Call to getOrAllocTgtPtr returned null pointer (device failure or " |
| 1643 | "illegal mapping).\n"); |
| 1644 | } |
| 1645 | DP("There are %zu bytes allocated at target address " DPxMOD " - is%s new" |
| 1646 | "\n", sizeof(void *), DPxPTR(Pointer_TgtPtrBegin), |
| 1647 | (Pointer_IsNew ? "" : " not")); |
| 1648 | Pointer_HstPtrBegin = HstPtrBase; |
| 1649 | // modify current entry. |
| 1650 | HstPtrBase = *(void **)HstPtrBase; |
| 1651 | UpdateRef = true; // subsequently update ref count of pointee |
| 1652 | } |
| 1653 | |
| 1654 | void *TgtPtrBegin = Device.getOrAllocTgtPtr(HstPtrBegin, HstPtrBase, |
| 1655 | arg_sizes[i], IsNew, IsImplicit, UpdateRef); |
| 1656 | if (!TgtPtrBegin && arg_sizes[i]) { |
| 1657 | // If arg_sizes[i]==0, then the argument is a pointer to NULL, so |
| 1658 | // getOrAlloc() returning NULL is not an error. |
| 1659 | DP("Call to getOrAllocTgtPtr returned null pointer (device failure or " |
| 1660 | "illegal mapping).\n"); |
| 1661 | } |
| 1662 | DP("There are %" PRId64 " bytes allocated at target address " DPxMOD |
| 1663 | " - is%s new\n", arg_sizes[i], DPxPTR(TgtPtrBegin), |
| 1664 | (IsNew ? "" : " not")); |
| 1665 | |
| 1666 | if (arg_types[i] & OMP_TGT_MAPTYPE_RETURN_PARAM) { |
| 1667 | void *ret_ptr; |
| 1668 | if (arg_types[i] & OMP_TGT_MAPTYPE_PTR_AND_OBJ) |
| 1669 | ret_ptr = Pointer_TgtPtrBegin; |
| 1670 | else { |
| 1671 | bool IsLast; // not used |
| 1672 | ret_ptr = Device.getTgtPtrBegin(HstPtrBegin, 0, IsLast, false); |
| 1673 | } |
| 1674 | |
| 1675 | DP("Returning device pointer " DPxMOD "\n", DPxPTR(ret_ptr)); |
| 1676 | args_base[i] = ret_ptr; |
| 1677 | } |
| 1678 | |
| 1679 | if (arg_types[i] & OMP_TGT_MAPTYPE_TO) { |
| 1680 | bool copy = false; |
| 1681 | if (IsNew || (arg_types[i] & OMP_TGT_MAPTYPE_ALWAYS)) { |
| 1682 | copy = true; |
| 1683 | } else if (arg_types[i] & OMP_TGT_MAPTYPE_MEMBER_OF) { |
| 1684 | // Copy data only if the "parent" struct has RefCount==1. |
| 1685 | short parent_idx = member_of(arg_types[i]); |
| 1686 | long parent_rc = Device.getMapEntryRefCnt(args[parent_idx]); |
| 1687 | assert(parent_rc > 0 && "parent struct not found"); |
| 1688 | if (parent_rc == 1) { |
| 1689 | copy = true; |
| 1690 | } |
| 1691 | } |
| 1692 | |
| 1693 | if (copy) { |
| 1694 | DP("Moving %" PRId64 " bytes (hst:" DPxMOD ") -> (tgt:" DPxMOD ")\n", |
| 1695 | arg_sizes[i], DPxPTR(HstPtrBegin), DPxPTR(TgtPtrBegin)); |
| 1696 | int rt = Device.data_submit(TgtPtrBegin, HstPtrBegin, arg_sizes[i]); |
| 1697 | if (rt != OFFLOAD_SUCCESS) { |
| 1698 | DP("Copying data to device failed.\n"); |
| 1699 | rc = OFFLOAD_FAIL; |
| 1700 | } |
| 1701 | } |
| 1702 | } |
| 1703 | |
| 1704 | if (arg_types[i] & OMP_TGT_MAPTYPE_PTR_AND_OBJ) { |
| 1705 | DP("Update pointer (" DPxMOD ") -> [" DPxMOD "]\n", |
| 1706 | DPxPTR(Pointer_TgtPtrBegin), DPxPTR(TgtPtrBegin)); |
| 1707 | uint64_t Delta = (uint64_t)HstPtrBegin - (uint64_t)HstPtrBase; |
| 1708 | void *TgtPtrBase = (void *)((uint64_t)TgtPtrBegin - Delta); |
| 1709 | int rt = Device.data_submit(Pointer_TgtPtrBegin, &TgtPtrBase, |
| 1710 | sizeof(void *)); |
| 1711 | if (rt != OFFLOAD_SUCCESS) { |
| 1712 | DP("Copying data to device failed.\n"); |
| 1713 | rc = OFFLOAD_FAIL; |
| 1714 | } |
| 1715 | // create shadow pointers for this entry |
| 1716 | Device.ShadowMtx.lock(); |
| 1717 | Device.ShadowPtrMap[Pointer_HstPtrBegin] = {HstPtrBase, |
| 1718 | Pointer_TgtPtrBegin, TgtPtrBase}; |
| 1719 | Device.ShadowMtx.unlock(); |
| 1720 | } |
| 1721 | } |
| 1722 | |
| 1723 | return rc; |
| 1724 | } |
| 1725 | |
| 1726 | EXTERN void __tgt_target_data_begin_nowait(int32_t device_id, int32_t arg_num, |
| 1727 | void **args_base, void **args, int64_t *arg_sizes, int32_t *arg_types, |
| 1728 | int32_t depNum, void *depList, int32_t noAliasDepNum, |
| 1729 | void *noAliasDepList) { |
| 1730 | if (depNum + noAliasDepNum > 0) |
| 1731 | __kmpc_omp_taskwait(NULL, 0); |
| 1732 | |
| 1733 | __tgt_target_data_begin(device_id, arg_num, args_base, args, arg_sizes, |
| 1734 | arg_types); |
| 1735 | } |
| 1736 | |
| 1737 | /// creates host-to-target data mapping, stores it in the |
| 1738 | /// libomptarget.so internal structure (an entry in a stack of data maps) |
| 1739 | /// and passes the data to the device. |
| 1740 | EXTERN void __tgt_target_data_begin(int32_t device_id, int32_t arg_num, |
| 1741 | void **args_base, void **args, int64_t *arg_sizes, int32_t *arg_types) { |
| 1742 | DP("Entering data begin region for device %d with %d mappings\n", device_id, |
| 1743 | arg_num); |
| 1744 | |
| 1745 | // No devices available? |
| 1746 | if (device_id == OFFLOAD_DEVICE_DEFAULT) { |
| 1747 | device_id = omp_get_default_device(); |
| 1748 | DP("Use default device id %d\n", device_id); |
| 1749 | } |
| 1750 | |
| 1751 | if (CheckDevice(device_id) != OFFLOAD_SUCCESS) { |
| 1752 | DP("Failed to get device %d ready\n", device_id); |
| 1753 | return; |
| 1754 | } |
| 1755 | |
| 1756 | DeviceTy& Device = Devices[device_id]; |
| 1757 | |
| 1758 | // Translate maps |
| 1759 | int32_t new_arg_num; |
| 1760 | void **new_args_base; |
| 1761 | void **new_args; |
| 1762 | int64_t *new_arg_sizes; |
| 1763 | int64_t *new_arg_types; |
| 1764 | translate_map(arg_num, args_base, args, arg_sizes, arg_types, new_arg_num, |
| 1765 | new_args_base, new_args, new_arg_sizes, new_arg_types, false); |
| 1766 | |
| 1767 | //target_data_begin(Device, arg_num, args_base, args, arg_sizes, arg_types); |
| 1768 | target_data_begin(Device, new_arg_num, new_args_base, new_args, new_arg_sizes, |
| 1769 | new_arg_types); |
| 1770 | |
| 1771 | // Cleanup translation memory |
| 1772 | cleanup_map(new_arg_num, new_args_base, new_args, new_arg_sizes, |
| 1773 | new_arg_types, arg_num, args_base); |
| 1774 | } |
| 1775 | |
| 1776 | /// Internal function to undo the mapping and retrieve the data from the device. |
| 1777 | static int target_data_end(DeviceTy &Device, int32_t arg_num, void **args_base, |
| 1778 | void **args, int64_t *arg_sizes, int64_t *arg_types) { |
| 1779 | int rc = OFFLOAD_SUCCESS; |
| 1780 | // process each input. |
| 1781 | for (int32_t i = arg_num - 1; i >= 0; --i) { |
| 1782 | // Ignore private variables and arrays - there is no mapping for them. |
| 1783 | // Also, ignore the use_device_ptr directive, it has no effect here. |
| 1784 | if ((arg_types[i] & OMP_TGT_MAPTYPE_LITERAL) || |
| 1785 | (arg_types[i] & OMP_TGT_MAPTYPE_PRIVATE)) |
| 1786 | continue; |
| 1787 | |
| 1788 | void *HstPtrBegin = args[i]; |
| 1789 | bool IsLast; |
| 1790 | bool UpdateRef = !(arg_types[i] & OMP_TGT_MAPTYPE_MEMBER_OF) || |
| 1791 | (arg_types[i] & OMP_TGT_MAPTYPE_PTR_AND_OBJ); |
| 1792 | bool ForceDelete = arg_types[i] & OMP_TGT_MAPTYPE_DELETE; |
| 1793 | |
| 1794 | // If PTR_AND_OBJ, HstPtrBegin is address of pointee |
| 1795 | void *TgtPtrBegin = Device.getTgtPtrBegin(HstPtrBegin, arg_sizes[i], IsLast, |
| 1796 | UpdateRef); |
| 1797 | DP("There are %" PRId64 " bytes allocated at target address " DPxMOD |
| 1798 | " - is%s last\n", arg_sizes[i], DPxPTR(TgtPtrBegin), |
| 1799 | (IsLast ? "" : " not")); |
| 1800 | |
George Rokos | 15a6e7d | 2017-02-15 20:45:37 +0000 | [diff] [blame^] | 1801 | bool DelEntry = IsLast || ForceDelete; |
| 1802 | |
George Rokos | 2467df6 | 2017-01-25 21:27:24 +0000 | [diff] [blame] | 1803 | if ((arg_types[i] & OMP_TGT_MAPTYPE_MEMBER_OF) && |
| 1804 | !(arg_types[i] & OMP_TGT_MAPTYPE_PTR_AND_OBJ)) { |
George Rokos | 15a6e7d | 2017-02-15 20:45:37 +0000 | [diff] [blame^] | 1805 | DelEntry = false; // protect parent struct from being deallocated |
George Rokos | 2467df6 | 2017-01-25 21:27:24 +0000 | [diff] [blame] | 1806 | } |
| 1807 | |
George Rokos | 2467df6 | 2017-01-25 21:27:24 +0000 | [diff] [blame] | 1808 | if ((arg_types[i] & OMP_TGT_MAPTYPE_FROM) || DelEntry) { |
| 1809 | // Move data back to the host |
| 1810 | if (arg_types[i] & OMP_TGT_MAPTYPE_FROM) { |
| 1811 | bool Always = arg_types[i] & OMP_TGT_MAPTYPE_ALWAYS; |
| 1812 | bool CopyMember = false; |
| 1813 | if ((arg_types[i] & OMP_TGT_MAPTYPE_MEMBER_OF) && |
| 1814 | !(arg_types[i] & OMP_TGT_MAPTYPE_PTR_AND_OBJ)) { |
| 1815 | // Copy data only if the "parent" struct has RefCount==1. |
| 1816 | short parent_idx = member_of(arg_types[i]); |
| 1817 | long parent_rc = Device.getMapEntryRefCnt(args[parent_idx]); |
| 1818 | assert(parent_rc > 0 && "parent struct not found"); |
| 1819 | if (parent_rc == 1) { |
| 1820 | CopyMember = true; |
| 1821 | } |
| 1822 | } |
| 1823 | |
| 1824 | if (DelEntry || Always || CopyMember) { |
| 1825 | DP("Moving %" PRId64 " bytes (tgt:" DPxMOD ") -> (hst:" DPxMOD ")\n", |
| 1826 | arg_sizes[i], DPxPTR(TgtPtrBegin), DPxPTR(HstPtrBegin)); |
| 1827 | int rt = Device.data_retrieve(HstPtrBegin, TgtPtrBegin, arg_sizes[i]); |
| 1828 | if (rt != OFFLOAD_SUCCESS) { |
| 1829 | DP("Copying data from device failed.\n"); |
| 1830 | rc = OFFLOAD_FAIL; |
| 1831 | } |
| 1832 | } |
| 1833 | } |
| 1834 | |
| 1835 | // If we copied back to the host a struct/array containing pointers, we |
| 1836 | // need to restore the original host pointer values from their shadow |
| 1837 | // copies. If the struct is going to be deallocated, remove any remaining |
| 1838 | // shadow pointer entries for this struct. |
| 1839 | uintptr_t lb = (uintptr_t) HstPtrBegin; |
| 1840 | uintptr_t ub = (uintptr_t) HstPtrBegin + arg_sizes[i]; |
| 1841 | Device.ShadowMtx.lock(); |
| 1842 | for (ShadowPtrListTy::iterator it = Device.ShadowPtrMap.begin(); |
| 1843 | it != Device.ShadowPtrMap.end(); ++it) { |
| 1844 | void **ShadowHstPtrAddr = (void**) it->first; |
| 1845 | |
| 1846 | // An STL map is sorted on its keys; use this property |
| 1847 | // to quickly determine when to break out of the loop. |
| 1848 | if ((uintptr_t) ShadowHstPtrAddr < lb) |
| 1849 | continue; |
| 1850 | if ((uintptr_t) ShadowHstPtrAddr >= ub) |
| 1851 | break; |
| 1852 | |
| 1853 | // If we copied the struct to the host, we need to restore the pointer. |
| 1854 | if (arg_types[i] & OMP_TGT_MAPTYPE_FROM) { |
| 1855 | DP("Restoring original host pointer value " DPxMOD " for host " |
| 1856 | "pointer " DPxMOD "\n", DPxPTR(it->second.HstPtrVal), |
| 1857 | DPxPTR(ShadowHstPtrAddr)); |
| 1858 | *ShadowHstPtrAddr = it->second.HstPtrVal; |
| 1859 | } |
| 1860 | // If the struct is to be deallocated, remove the shadow entry. |
| 1861 | if (DelEntry) { |
| 1862 | DP("Removing shadow pointer " DPxMOD "\n", DPxPTR(ShadowHstPtrAddr)); |
| 1863 | Device.ShadowPtrMap.erase(it); |
| 1864 | } |
| 1865 | } |
| 1866 | Device.ShadowMtx.unlock(); |
| 1867 | |
| 1868 | // Deallocate map |
| 1869 | if (DelEntry) { |
| 1870 | int rt = Device.deallocTgtPtr(HstPtrBegin, arg_sizes[i], ForceDelete); |
| 1871 | if (rt != OFFLOAD_SUCCESS) { |
| 1872 | DP("Deallocating data from device failed.\n"); |
| 1873 | rc = OFFLOAD_FAIL; |
| 1874 | } |
| 1875 | } |
| 1876 | } |
| 1877 | } |
| 1878 | |
| 1879 | return rc; |
| 1880 | } |
| 1881 | |
| 1882 | /// passes data from the target, releases target memory and destroys |
| 1883 | /// the host-target mapping (top entry from the stack of data maps) |
| 1884 | /// created by the last __tgt_target_data_begin. |
| 1885 | EXTERN void __tgt_target_data_end(int32_t device_id, int32_t arg_num, |
| 1886 | void **args_base, void **args, int64_t *arg_sizes, int32_t *arg_types) { |
| 1887 | DP("Entering data end region with %d mappings\n", arg_num); |
| 1888 | |
| 1889 | // No devices available? |
| 1890 | if (device_id == OFFLOAD_DEVICE_DEFAULT) { |
| 1891 | device_id = omp_get_default_device(); |
| 1892 | } |
| 1893 | |
| 1894 | RTLsMtx.lock(); |
| 1895 | size_t Devices_size = Devices.size(); |
| 1896 | RTLsMtx.unlock(); |
| 1897 | if (Devices_size <= (size_t)device_id) { |
| 1898 | DP("Device ID %d does not have a matching RTL.\n", device_id); |
| 1899 | return; |
| 1900 | } |
| 1901 | |
| 1902 | DeviceTy &Device = Devices[device_id]; |
| 1903 | if (!Device.IsInit) { |
| 1904 | DP("uninit device: ignore"); |
| 1905 | return; |
| 1906 | } |
| 1907 | |
| 1908 | // Translate maps |
| 1909 | int32_t new_arg_num; |
| 1910 | void **new_args_base; |
| 1911 | void **new_args; |
| 1912 | int64_t *new_arg_sizes; |
| 1913 | int64_t *new_arg_types; |
| 1914 | translate_map(arg_num, args_base, args, arg_sizes, arg_types, new_arg_num, |
| 1915 | new_args_base, new_args, new_arg_sizes, new_arg_types, false); |
| 1916 | |
| 1917 | //target_data_end(Device, arg_num, args_base, args, arg_sizes, arg_types); |
| 1918 | target_data_end(Device, new_arg_num, new_args_base, new_args, new_arg_sizes, |
| 1919 | new_arg_types); |
| 1920 | |
| 1921 | // Cleanup translation memory |
| 1922 | cleanup_map(new_arg_num, new_args_base, new_args, new_arg_sizes, |
| 1923 | new_arg_types, arg_num, args_base); |
| 1924 | } |
| 1925 | |
| 1926 | EXTERN void __tgt_target_data_end_nowait(int32_t device_id, int32_t arg_num, |
| 1927 | void **args_base, void **args, int64_t *arg_sizes, int32_t *arg_types, |
| 1928 | int32_t depNum, void *depList, int32_t noAliasDepNum, |
| 1929 | void *noAliasDepList) { |
| 1930 | if (depNum + noAliasDepNum > 0) |
| 1931 | __kmpc_omp_taskwait(NULL, 0); |
| 1932 | |
| 1933 | __tgt_target_data_end(device_id, arg_num, args_base, args, arg_sizes, |
| 1934 | arg_types); |
| 1935 | } |
| 1936 | |
| 1937 | /// passes data to/from the target. |
| 1938 | EXTERN void __tgt_target_data_update(int32_t device_id, int32_t arg_num, |
| 1939 | void **args_base, void **args, int64_t *arg_sizes, int32_t *arg_types) { |
| 1940 | DP("Entering data update with %d mappings\n", arg_num); |
| 1941 | |
| 1942 | // No devices available? |
| 1943 | if (device_id == OFFLOAD_DEVICE_DEFAULT) { |
| 1944 | device_id = omp_get_default_device(); |
| 1945 | } |
| 1946 | |
| 1947 | if (CheckDevice(device_id) != OFFLOAD_SUCCESS) { |
| 1948 | DP("Failed to get device %d ready\n", device_id); |
| 1949 | return; |
| 1950 | } |
| 1951 | |
| 1952 | DeviceTy& Device = Devices[device_id]; |
| 1953 | |
| 1954 | // process each input. |
| 1955 | for (int32_t i = 0; i < arg_num; ++i) { |
| 1956 | if ((arg_types[i] & OMP_TGT_MAPTYPE_LITERAL) || |
| 1957 | (arg_types[i] & OMP_TGT_MAPTYPE_PRIVATE)) |
| 1958 | continue; |
| 1959 | |
| 1960 | void *HstPtrBegin = args[i]; |
| 1961 | int64_t MapSize = arg_sizes[i]; |
| 1962 | bool IsLast; |
| 1963 | void *TgtPtrBegin = Device.getTgtPtrBegin(HstPtrBegin, MapSize, IsLast, |
| 1964 | false); |
| 1965 | |
| 1966 | if (arg_types[i] & OMP_TGT_MAPTYPE_FROM) { |
| 1967 | DP("Moving %" PRId64 " bytes (tgt:" DPxMOD ") -> (hst:" DPxMOD ")\n", |
| 1968 | arg_sizes[i], DPxPTR(TgtPtrBegin), DPxPTR(HstPtrBegin)); |
| 1969 | Device.data_retrieve(HstPtrBegin, TgtPtrBegin, MapSize); |
| 1970 | |
| 1971 | uintptr_t lb = (uintptr_t) HstPtrBegin; |
| 1972 | uintptr_t ub = (uintptr_t) HstPtrBegin + MapSize; |
| 1973 | Device.ShadowMtx.lock(); |
| 1974 | for (ShadowPtrListTy::iterator it = Device.ShadowPtrMap.begin(); |
| 1975 | it != Device.ShadowPtrMap.end(); ++it) { |
| 1976 | void **ShadowHstPtrAddr = (void**) it->first; |
| 1977 | if ((uintptr_t) ShadowHstPtrAddr < lb) |
| 1978 | continue; |
| 1979 | if ((uintptr_t) ShadowHstPtrAddr >= ub) |
| 1980 | break; |
| 1981 | DP("Restoring original host pointer value " DPxMOD " for host pointer " |
| 1982 | DPxMOD "\n", DPxPTR(it->second.HstPtrVal), |
| 1983 | DPxPTR(ShadowHstPtrAddr)); |
| 1984 | *ShadowHstPtrAddr = it->second.HstPtrVal; |
| 1985 | } |
| 1986 | Device.ShadowMtx.unlock(); |
| 1987 | } |
| 1988 | |
| 1989 | if (arg_types[i] & OMP_TGT_MAPTYPE_TO) { |
| 1990 | DP("Moving %" PRId64 " bytes (hst:" DPxMOD ") -> (tgt:" DPxMOD ")\n", |
| 1991 | arg_sizes[i], DPxPTR(HstPtrBegin), DPxPTR(TgtPtrBegin)); |
| 1992 | Device.data_submit(TgtPtrBegin, HstPtrBegin, MapSize); |
| 1993 | |
| 1994 | uintptr_t lb = (uintptr_t) HstPtrBegin; |
| 1995 | uintptr_t ub = (uintptr_t) HstPtrBegin + MapSize; |
| 1996 | Device.ShadowMtx.lock(); |
| 1997 | for (ShadowPtrListTy::iterator it = Device.ShadowPtrMap.begin(); |
| 1998 | it != Device.ShadowPtrMap.end(); ++it) { |
| 1999 | void **ShadowHstPtrAddr = (void**) it->first; |
| 2000 | if ((uintptr_t) ShadowHstPtrAddr < lb) |
| 2001 | continue; |
| 2002 | if ((uintptr_t) ShadowHstPtrAddr >= ub) |
| 2003 | break; |
| 2004 | DP("Restoring original target pointer value " DPxMOD " for target " |
| 2005 | "pointer " DPxMOD "\n", DPxPTR(it->second.TgtPtrVal), |
| 2006 | DPxPTR(it->second.TgtPtrAddr)); |
| 2007 | Device.data_submit(it->second.TgtPtrAddr, |
| 2008 | &it->second.TgtPtrVal, sizeof(void *)); |
| 2009 | } |
| 2010 | Device.ShadowMtx.unlock(); |
| 2011 | } |
| 2012 | } |
| 2013 | } |
| 2014 | |
| 2015 | EXTERN void __tgt_target_data_update_nowait( |
| 2016 | int32_t device_id, int32_t arg_num, void **args_base, void **args, |
| 2017 | int64_t *arg_sizes, int32_t *arg_types, int32_t depNum, void *depList, |
| 2018 | int32_t noAliasDepNum, void *noAliasDepList) { |
| 2019 | if (depNum + noAliasDepNum > 0) |
| 2020 | __kmpc_omp_taskwait(NULL, 0); |
| 2021 | |
| 2022 | __tgt_target_data_update(device_id, arg_num, args_base, args, arg_sizes, |
| 2023 | arg_types); |
| 2024 | } |
| 2025 | |
| 2026 | /// performs the same actions as data_begin in case arg_num is |
| 2027 | /// non-zero and initiates run of the offloaded region on the target platform; |
| 2028 | /// if arg_num is non-zero after the region execution is done it also |
| 2029 | /// performs the same action as data_update and data_end above. This function |
| 2030 | /// returns 0 if it was able to transfer the execution to a target and an |
| 2031 | /// integer different from zero otherwise. |
| 2032 | static int target(int32_t device_id, void *host_ptr, int32_t arg_num, |
| 2033 | void **args_base, void **args, int64_t *arg_sizes, int64_t *arg_types, |
| 2034 | int32_t team_num, int32_t thread_limit, int IsTeamConstruct) { |
| 2035 | DeviceTy &Device = Devices[device_id]; |
| 2036 | |
| 2037 | // Find the table information in the map or look it up in the translation |
| 2038 | // tables. |
| 2039 | TableMap *TM = 0; |
| 2040 | TblMapMtx.lock(); |
| 2041 | HostPtrToTableMapTy::iterator TableMapIt = HostPtrToTableMap.find(host_ptr); |
| 2042 | if (TableMapIt == HostPtrToTableMap.end()) { |
| 2043 | // We don't have a map. So search all the registered libraries. |
| 2044 | TrlTblMtx.lock(); |
| 2045 | for (HostEntriesBeginToTransTableTy::iterator |
| 2046 | ii = HostEntriesBeginToTransTable.begin(), |
| 2047 | ie = HostEntriesBeginToTransTable.end(); |
| 2048 | !TM && ii != ie; ++ii) { |
| 2049 | // get the translation table (which contains all the good info). |
| 2050 | TranslationTable *TransTable = &ii->second; |
| 2051 | // iterate over all the host table entries to see if we can locate the |
| 2052 | // host_ptr. |
| 2053 | __tgt_offload_entry *begin = TransTable->HostTable.EntriesBegin; |
| 2054 | __tgt_offload_entry *end = TransTable->HostTable.EntriesEnd; |
| 2055 | __tgt_offload_entry *cur = begin; |
| 2056 | for (uint32_t i = 0; cur < end; ++cur, ++i) { |
| 2057 | if (cur->addr != host_ptr) |
| 2058 | continue; |
| 2059 | // we got a match, now fill the HostPtrToTableMap so that we |
| 2060 | // may avoid this search next time. |
| 2061 | TM = &HostPtrToTableMap[host_ptr]; |
| 2062 | TM->Table = TransTable; |
| 2063 | TM->Index = i; |
| 2064 | break; |
| 2065 | } |
| 2066 | } |
| 2067 | TrlTblMtx.unlock(); |
| 2068 | } else { |
| 2069 | TM = &TableMapIt->second; |
| 2070 | } |
| 2071 | TblMapMtx.unlock(); |
| 2072 | |
| 2073 | // No map for this host pointer found! |
| 2074 | if (!TM) { |
| 2075 | DP("Host ptr " DPxMOD " does not have a matching target pointer.\n", |
| 2076 | DPxPTR(host_ptr)); |
| 2077 | return OFFLOAD_FAIL; |
| 2078 | } |
| 2079 | |
| 2080 | // get target table. |
| 2081 | TrlTblMtx.lock(); |
| 2082 | assert(TM->Table->TargetsTable.size() > (size_t)device_id && |
| 2083 | "Not expecting a device ID outside the table's bounds!"); |
| 2084 | __tgt_target_table *TargetTable = TM->Table->TargetsTable[device_id]; |
| 2085 | TrlTblMtx.unlock(); |
| 2086 | assert(TargetTable && "Global data has not been mapped\n"); |
| 2087 | |
| 2088 | // Move data to device. |
| 2089 | int rc = target_data_begin(Device, arg_num, args_base, args, arg_sizes, |
| 2090 | arg_types); |
| 2091 | |
| 2092 | if (rc != OFFLOAD_SUCCESS) { |
| 2093 | DP("Call to target_data_begin failed, skipping target execution.\n"); |
| 2094 | // Call target_data_end to dealloc whatever target_data_begin allocated |
| 2095 | // and return OFFLOAD_FAIL. |
| 2096 | target_data_end(Device, arg_num, args_base, args, arg_sizes, arg_types); |
| 2097 | return OFFLOAD_FAIL; |
| 2098 | } |
| 2099 | |
| 2100 | std::vector<void *> tgt_args; |
| 2101 | |
| 2102 | // List of (first-)private arrays allocated for this target region |
| 2103 | std::vector<void *> fpArrays; |
| 2104 | |
| 2105 | for (int32_t i = 0; i < arg_num; ++i) { |
| 2106 | if (!(arg_types[i] & OMP_TGT_MAPTYPE_TARGET_PARAM)) { |
| 2107 | // This is not a target parameter, do not push it into tgt_args. |
| 2108 | continue; |
| 2109 | } |
| 2110 | void *HstPtrBegin = args[i]; |
| 2111 | void *HstPtrBase = args_base[i]; |
| 2112 | void *TgtPtrBase; |
| 2113 | bool IsLast; // unused. |
| 2114 | if (arg_types[i] & OMP_TGT_MAPTYPE_LITERAL) { |
| 2115 | DP("Forwarding first-private value " DPxMOD " to the target construct\n", |
| 2116 | DPxPTR(HstPtrBase)); |
| 2117 | TgtPtrBase = HstPtrBase; |
| 2118 | } else if (arg_types[i] & OMP_TGT_MAPTYPE_PRIVATE) { |
| 2119 | // Allocate memory for (first-)private array |
| 2120 | void *TgtPtrBegin = Device.RTL->data_alloc(Device.RTLDeviceID, |
| 2121 | arg_sizes[i]); |
| 2122 | if (!TgtPtrBegin) { |
| 2123 | DP ("Data allocation for %sprivate array " DPxMOD " failed\n", |
| 2124 | (arg_types[i] & OMP_TGT_MAPTYPE_TO ? "first-" : ""), |
| 2125 | DPxPTR(HstPtrBegin)); |
| 2126 | rc = OFFLOAD_FAIL; |
| 2127 | break; |
| 2128 | } else { |
| 2129 | fpArrays.push_back(TgtPtrBegin); |
| 2130 | uint64_t PtrDelta = (uint64_t)HstPtrBegin - (uint64_t)HstPtrBase; |
| 2131 | TgtPtrBase = (void *)((uint64_t)TgtPtrBegin - PtrDelta); |
| 2132 | DP("Allocated %" PRId64 " bytes of target memory at " DPxMOD " for " |
| 2133 | "%sprivate array " DPxMOD " - pushing target argument " DPxMOD "\n", |
| 2134 | arg_sizes[i], DPxPTR(TgtPtrBegin), |
| 2135 | (arg_types[i] & OMP_TGT_MAPTYPE_TO ? "first-" : ""), |
| 2136 | DPxPTR(HstPtrBegin), DPxPTR(TgtPtrBase)); |
| 2137 | // If first-private, copy data from host |
| 2138 | if (arg_types[i] & OMP_TGT_MAPTYPE_TO) { |
| 2139 | int rt = Device.data_submit(TgtPtrBegin, HstPtrBegin, arg_sizes[i]); |
| 2140 | if (rt != OFFLOAD_SUCCESS) { |
| 2141 | DP ("Copying data to device failed.\n"); |
| 2142 | rc = OFFLOAD_FAIL; |
| 2143 | break; |
| 2144 | } |
| 2145 | } |
| 2146 | } |
| 2147 | } else if (arg_types[i] & OMP_TGT_MAPTYPE_PTR_AND_OBJ) { |
| 2148 | void *TgtPtrBegin = Device.getTgtPtrBegin(HstPtrBase, sizeof(void *), |
| 2149 | IsLast, false); |
| 2150 | TgtPtrBase = TgtPtrBegin; // no offset for ptrs. |
| 2151 | DP("Obtained target argument " DPxMOD " from host pointer " DPxMOD " to " |
| 2152 | "object " DPxMOD "\n", DPxPTR(TgtPtrBegin), DPxPTR(HstPtrBase), |
| 2153 | DPxPTR(HstPtrBase)); |
| 2154 | } else { |
| 2155 | void *TgtPtrBegin = Device.getTgtPtrBegin(HstPtrBegin, arg_sizes[i], |
| 2156 | IsLast, false); |
| 2157 | uint64_t PtrDelta = (uint64_t)HstPtrBegin - (uint64_t)HstPtrBase; |
| 2158 | TgtPtrBase = (void *)((uint64_t)TgtPtrBegin - PtrDelta); |
| 2159 | DP("Obtained target argument " DPxMOD " from host pointer " DPxMOD "\n", |
| 2160 | DPxPTR(TgtPtrBase), DPxPTR(HstPtrBegin)); |
| 2161 | } |
| 2162 | tgt_args.push_back(TgtPtrBase); |
| 2163 | } |
| 2164 | // Push omp handle. |
| 2165 | tgt_args.push_back((void *)0); |
| 2166 | |
| 2167 | // Pop loop trip count |
| 2168 | uint64_t ltc = Device.loopTripCnt; |
| 2169 | Device.loopTripCnt = 0; |
| 2170 | |
| 2171 | // Launch device execution. |
| 2172 | if (rc == OFFLOAD_SUCCESS) { |
| 2173 | DP("Launching target execution %s with pointer " DPxMOD " (index=%d).\n", |
| 2174 | TargetTable->EntriesBegin[TM->Index].name, |
| 2175 | DPxPTR(TargetTable->EntriesBegin[TM->Index].addr), TM->Index); |
| 2176 | if (IsTeamConstruct) { |
| 2177 | rc = Device.run_team_region(TargetTable->EntriesBegin[TM->Index].addr, |
| 2178 | &tgt_args[0], tgt_args.size(), team_num, thread_limit, ltc); |
| 2179 | } else { |
| 2180 | rc = Device.run_region(TargetTable->EntriesBegin[TM->Index].addr, |
| 2181 | &tgt_args[0], tgt_args.size()); |
| 2182 | } |
| 2183 | } else { |
| 2184 | DP("Errors occurred while obtaining target arguments, skipping kernel " |
| 2185 | "execution\n"); |
| 2186 | } |
| 2187 | |
| 2188 | // Deallocate (first-)private arrays |
| 2189 | for (auto it : fpArrays) { |
| 2190 | int rt = Device.RTL->data_delete(Device.RTLDeviceID, it); |
| 2191 | if (rt != OFFLOAD_SUCCESS) { |
| 2192 | DP("Deallocation of (first-)private arrays failed.\n"); |
| 2193 | rc = OFFLOAD_FAIL; |
| 2194 | } |
| 2195 | } |
| 2196 | |
| 2197 | // Move data from device. |
| 2198 | int rt = target_data_end(Device, arg_num, args_base, args, arg_sizes, |
| 2199 | arg_types); |
| 2200 | |
| 2201 | if (rt != OFFLOAD_SUCCESS) { |
| 2202 | DP("Call to target_data_end failed.\n"); |
| 2203 | rc = OFFLOAD_FAIL; |
| 2204 | } |
| 2205 | |
| 2206 | return rc; |
| 2207 | } |
| 2208 | |
| 2209 | EXTERN int __tgt_target(int32_t device_id, void *host_ptr, int32_t arg_num, |
| 2210 | void **args_base, void **args, int64_t *arg_sizes, int32_t *arg_types) { |
| 2211 | if (device_id == OFFLOAD_DEVICE_CONSTRUCTOR || |
| 2212 | device_id == OFFLOAD_DEVICE_DESTRUCTOR) { |
| 2213 | // Return immediately for the time being, target calls with device_id |
| 2214 | // -2 or -3 will be removed from the compiler in the future. |
| 2215 | return OFFLOAD_SUCCESS; |
| 2216 | } |
| 2217 | |
| 2218 | DP("Entering target region with entry point " DPxMOD " and device Id %d\n", |
| 2219 | DPxPTR(host_ptr), device_id); |
| 2220 | |
| 2221 | if (device_id == OFFLOAD_DEVICE_DEFAULT) { |
| 2222 | device_id = omp_get_default_device(); |
| 2223 | } |
| 2224 | |
| 2225 | if (CheckDevice(device_id) != OFFLOAD_SUCCESS) { |
| 2226 | DP("Failed to get device %d ready\n", device_id); |
| 2227 | return OFFLOAD_FAIL; |
| 2228 | } |
| 2229 | |
| 2230 | // Translate maps |
| 2231 | int32_t new_arg_num; |
| 2232 | void **new_args_base; |
| 2233 | void **new_args; |
| 2234 | int64_t *new_arg_sizes; |
| 2235 | int64_t *new_arg_types; |
| 2236 | translate_map(arg_num, args_base, args, arg_sizes, arg_types, new_arg_num, |
| 2237 | new_args_base, new_args, new_arg_sizes, new_arg_types, true); |
| 2238 | |
| 2239 | //return target(device_id, host_ptr, arg_num, args_base, args, arg_sizes, |
| 2240 | // arg_types, 0, 0, false /*team*/, false /*recursive*/); |
| 2241 | int rc = target(device_id, host_ptr, new_arg_num, new_args_base, new_args, |
| 2242 | new_arg_sizes, new_arg_types, 0, 0, false /*team*/); |
| 2243 | |
| 2244 | // Cleanup translation memory |
| 2245 | cleanup_map(new_arg_num, new_args_base, new_args, new_arg_sizes, |
| 2246 | new_arg_types, arg_num, args_base); |
| 2247 | |
| 2248 | return rc; |
| 2249 | } |
| 2250 | |
| 2251 | EXTERN int __tgt_target_nowait(int32_t device_id, void *host_ptr, |
| 2252 | int32_t arg_num, void **args_base, void **args, int64_t *arg_sizes, |
| 2253 | int32_t *arg_types, int32_t depNum, void *depList, int32_t noAliasDepNum, |
| 2254 | void *noAliasDepList) { |
| 2255 | if (depNum + noAliasDepNum > 0) |
| 2256 | __kmpc_omp_taskwait(NULL, 0); |
| 2257 | |
| 2258 | return __tgt_target(device_id, host_ptr, arg_num, args_base, args, arg_sizes, |
| 2259 | arg_types); |
| 2260 | } |
| 2261 | |
| 2262 | EXTERN int __tgt_target_teams(int32_t device_id, void *host_ptr, |
| 2263 | int32_t arg_num, void **args_base, void **args, int64_t *arg_sizes, |
| 2264 | int32_t *arg_types, int32_t team_num, int32_t thread_limit) { |
| 2265 | if (device_id == OFFLOAD_DEVICE_CONSTRUCTOR || |
| 2266 | device_id == OFFLOAD_DEVICE_DESTRUCTOR) { |
| 2267 | // Return immediately for the time being, target calls with device_id |
| 2268 | // -2 or -3 will be removed from the compiler in the future. |
| 2269 | return OFFLOAD_SUCCESS; |
| 2270 | } |
| 2271 | |
| 2272 | DP("Entering target region with entry point " DPxMOD " and device Id %d\n", |
| 2273 | DPxPTR(host_ptr), device_id); |
| 2274 | |
| 2275 | if (device_id == OFFLOAD_DEVICE_DEFAULT) { |
| 2276 | device_id = omp_get_default_device(); |
| 2277 | } |
| 2278 | |
| 2279 | if (CheckDevice(device_id) != OFFLOAD_SUCCESS) { |
| 2280 | DP("Failed to get device %d ready\n", device_id); |
| 2281 | return OFFLOAD_FAIL; |
| 2282 | } |
| 2283 | |
| 2284 | // Translate maps |
| 2285 | int32_t new_arg_num; |
| 2286 | void **new_args_base; |
| 2287 | void **new_args; |
| 2288 | int64_t *new_arg_sizes; |
| 2289 | int64_t *new_arg_types; |
| 2290 | translate_map(arg_num, args_base, args, arg_sizes, arg_types, new_arg_num, |
| 2291 | new_args_base, new_args, new_arg_sizes, new_arg_types, true); |
| 2292 | |
| 2293 | //return target(device_id, host_ptr, arg_num, args_base, args, arg_sizes, |
| 2294 | // arg_types, team_num, thread_limit, true /*team*/, |
| 2295 | // false /*recursive*/); |
| 2296 | int rc = target(device_id, host_ptr, new_arg_num, new_args_base, new_args, |
| 2297 | new_arg_sizes, new_arg_types, team_num, thread_limit, true /*team*/); |
| 2298 | |
| 2299 | // Cleanup translation memory |
| 2300 | cleanup_map(new_arg_num, new_args_base, new_args, new_arg_sizes, |
| 2301 | new_arg_types, arg_num, args_base); |
| 2302 | |
| 2303 | return rc; |
| 2304 | } |
| 2305 | |
| 2306 | EXTERN int __tgt_target_teams_nowait(int32_t device_id, void *host_ptr, |
| 2307 | int32_t arg_num, void **args_base, void **args, int64_t *arg_sizes, |
| 2308 | int32_t *arg_types, int32_t team_num, int32_t thread_limit, int32_t depNum, |
| 2309 | void *depList, int32_t noAliasDepNum, void *noAliasDepList) { |
| 2310 | if (depNum + noAliasDepNum > 0) |
| 2311 | __kmpc_omp_taskwait(NULL, 0); |
| 2312 | |
| 2313 | return __tgt_target_teams(device_id, host_ptr, arg_num, args_base, args, |
| 2314 | arg_sizes, arg_types, team_num, thread_limit); |
| 2315 | } |
| 2316 | |
| 2317 | |
| 2318 | // The trip count mechanism will be revised - this scheme is not thread-safe. |
| 2319 | EXTERN void __kmpc_push_target_tripcount(int32_t device_id, |
| 2320 | uint64_t loop_tripcount) { |
| 2321 | if (device_id == OFFLOAD_DEVICE_DEFAULT) { |
| 2322 | device_id = omp_get_default_device(); |
| 2323 | } |
| 2324 | |
| 2325 | if (CheckDevice(device_id) != OFFLOAD_SUCCESS) { |
| 2326 | DP("Failed to get device %d ready\n", device_id); |
| 2327 | return; |
| 2328 | } |
| 2329 | |
| 2330 | DP("__kmpc_push_target_tripcount(%d, %" PRIu64 ")\n", device_id, |
| 2331 | loop_tripcount); |
| 2332 | Devices[device_id].loopTripCnt = loop_tripcount; |
| 2333 | } |
| 2334 | |