hle_ipc.cpp 22 KB

123456789101112131415161718192021222324252627282930313233343536373839404142434445464748495051525354555657585960616263646566676869707172737475767778798081828384858687888990919293949596979899100101102103104105106107108109110111112113114115116117118119120121122123124125126127128129130131132133134135136137138139140141142143144145146147148149150151152153154155156157158159160161162163164165166167168169170171172173174175176177178179180181182183184185186187188189190191192193194195196197198199200201202203204205206207208209210211212213214215216217218219220221222223224225226227228229230231232233234235236237238239240241242243244245246247248249250251252253254255256257258259260261262263264265266267268269270271272273274275276277278279280281282283284285286287288289290291292293294295296297298299300301302303304305306307308309310311312313314315316317318319320321322323324325326327328329330331332333334335336337338339340341342343344345346347348349350351352353354355356357358359360361362363364365366367368369370371372373374375376377378379380381382383384385386387388389390391392393394395396397398399400401402403404405406407408409410411412413414415416417418419420421422423424425426427428429430431432433434435436437438439440441442443444445446447448449450451452453454455456457458459460461462463464465466467468469470471472473474475476477478479480481482483484485486487488489490491492493494495496497498499500501502503504505506507508509510511512513514515516517518519520521522523524525526527528529530531532533534535536537538539540541542543544545546547548549550551552553554555
  1. // SPDX-FileCopyrightText: Copyright 2018 yuzu Emulator Project
  2. // SPDX-License-Identifier: GPL-2.0-or-later
  3. #include <algorithm>
  4. #include <array>
  5. #include <sstream>
  6. #include <boost/range/algorithm_ext/erase.hpp>
  7. #include "common/assert.h"
  8. #include "common/common_funcs.h"
  9. #include "common/common_types.h"
  10. #include "common/logging/log.h"
  11. #include "common/scratch_buffer.h"
  12. #include "core/guest_memory.h"
  13. #include "core/hle/kernel/k_auto_object.h"
  14. #include "core/hle/kernel/k_handle_table.h"
  15. #include "core/hle/kernel/k_process.h"
  16. #include "core/hle/kernel/k_server_port.h"
  17. #include "core/hle/kernel/k_server_session.h"
  18. #include "core/hle/kernel/k_thread.h"
  19. #include "core/hle/kernel/kernel.h"
  20. #include "core/hle/service/hle_ipc.h"
  21. #include "core/hle/service/ipc_helpers.h"
  22. #include "core/memory.h"
  23. namespace Service {
  24. SessionRequestHandler::SessionRequestHandler(Kernel::KernelCore& kernel_, const char* service_name_)
  25. : kernel{kernel_} {}
  26. SessionRequestHandler::~SessionRequestHandler() = default;
  27. SessionRequestManager::SessionRequestManager(Kernel::KernelCore& kernel_,
  28. ServerManager& server_manager_)
  29. : kernel{kernel_}, server_manager{server_manager_} {}
  30. SessionRequestManager::~SessionRequestManager() = default;
  31. bool SessionRequestManager::HasSessionRequestHandler(const HLERequestContext& context) const {
  32. if (IsDomain() && context.HasDomainMessageHeader()) {
  33. const auto& message_header = context.GetDomainMessageHeader();
  34. const auto object_id = message_header.object_id;
  35. if (object_id > DomainHandlerCount()) {
  36. LOG_CRITICAL(IPC, "object_id {} is too big!", object_id);
  37. return false;
  38. }
  39. return !DomainHandler(object_id - 1).expired();
  40. } else {
  41. return session_handler != nullptr;
  42. }
  43. }
  44. Result SessionRequestManager::CompleteSyncRequest(Kernel::KServerSession* server_session,
  45. HLERequestContext& context) {
  46. Result result = ResultSuccess;
  47. // If the session has been converted to a domain, handle the domain request
  48. if (this->HasSessionRequestHandler(context)) {
  49. if (IsDomain() && context.HasDomainMessageHeader()) {
  50. result = HandleDomainSyncRequest(server_session, context);
  51. // If there is no domain header, the regular session handler is used
  52. } else if (this->HasSessionHandler()) {
  53. // If this manager has an associated HLE handler, forward the request to it.
  54. result = this->SessionHandler().HandleSyncRequest(*server_session, context);
  55. }
  56. } else {
  57. ASSERT_MSG(false, "Session handler is invalid, stubbing response!");
  58. IPC::ResponseBuilder rb(context, 2);
  59. rb.Push(ResultSuccess);
  60. }
  61. if (convert_to_domain) {
  62. ASSERT_MSG(!IsDomain(), "ServerSession is already a domain instance.");
  63. this->ConvertToDomain();
  64. convert_to_domain = false;
  65. }
  66. return result;
  67. }
  68. Result SessionRequestManager::HandleDomainSyncRequest(Kernel::KServerSession* server_session,
  69. HLERequestContext& context) {
  70. if (!context.HasDomainMessageHeader()) {
  71. return ResultSuccess;
  72. }
  73. // Set domain handlers in HLE context, used for domain objects (IPC interfaces) as inputs
  74. ASSERT(context.GetManager().get() == this);
  75. // If there is a DomainMessageHeader, then this is CommandType "Request"
  76. const auto& domain_message_header = context.GetDomainMessageHeader();
  77. const u32 object_id{domain_message_header.object_id};
  78. switch (domain_message_header.command) {
  79. case IPC::DomainMessageHeader::CommandType::SendMessage:
  80. if (object_id > this->DomainHandlerCount()) {
  81. LOG_CRITICAL(IPC,
  82. "object_id {} is too big! This probably means a recent service call "
  83. "needed to return a new interface!",
  84. object_id);
  85. ASSERT(false);
  86. return ResultSuccess; // Ignore error if asserts are off
  87. }
  88. if (auto strong_ptr = this->DomainHandler(object_id - 1).lock()) {
  89. return strong_ptr->HandleSyncRequest(*server_session, context);
  90. } else {
  91. ASSERT(false);
  92. return ResultSuccess;
  93. }
  94. case IPC::DomainMessageHeader::CommandType::CloseVirtualHandle: {
  95. LOG_DEBUG(IPC, "CloseVirtualHandle, object_id=0x{:08X}", object_id);
  96. this->CloseDomainHandler(object_id - 1);
  97. IPC::ResponseBuilder rb{context, 2};
  98. rb.Push(ResultSuccess);
  99. return ResultSuccess;
  100. }
  101. }
  102. LOG_CRITICAL(IPC, "Unknown domain command={}", domain_message_header.command.Value());
  103. ASSERT(false);
  104. return ResultSuccess;
  105. }
  106. HLERequestContext::HLERequestContext(Kernel::KernelCore& kernel_, Core::Memory::Memory& memory_,
  107. Kernel::KServerSession* server_session_,
  108. Kernel::KThread* thread_)
  109. : server_session(server_session_), thread(thread_), kernel{kernel_}, memory{memory_} {
  110. cmd_buf[0] = 0;
  111. }
  112. HLERequestContext::~HLERequestContext() = default;
  113. void HLERequestContext::ParseCommandBuffer(u32_le* src_cmdbuf, bool incoming) {
  114. IPC::RequestParser rp(src_cmdbuf);
  115. command_header = rp.PopRaw<IPC::CommandHeader>();
  116. if (command_header->IsCloseCommand()) {
  117. // Close does not populate the rest of the IPC header
  118. return;
  119. }
  120. // If handle descriptor is present, add size of it
  121. if (command_header->enable_handle_descriptor) {
  122. handle_descriptor_header = rp.PopRaw<IPC::HandleDescriptorHeader>();
  123. if (handle_descriptor_header->send_current_pid) {
  124. pid = thread->GetOwnerProcess()->GetProcessId();
  125. rp.Skip(2, false);
  126. }
  127. if (incoming) {
  128. // Populate the object lists with the data in the IPC request.
  129. incoming_copy_handles.reserve(handle_descriptor_header->num_handles_to_copy);
  130. incoming_move_handles.reserve(handle_descriptor_header->num_handles_to_move);
  131. for (u32 handle = 0; handle < handle_descriptor_header->num_handles_to_copy; ++handle) {
  132. incoming_copy_handles.push_back(rp.Pop<Handle>());
  133. }
  134. for (u32 handle = 0; handle < handle_descriptor_header->num_handles_to_move; ++handle) {
  135. incoming_move_handles.push_back(rp.Pop<Handle>());
  136. }
  137. } else {
  138. // For responses we just ignore the handles, they're empty and will be populated when
  139. // translating the response.
  140. rp.Skip(handle_descriptor_header->num_handles_to_copy, false);
  141. rp.Skip(handle_descriptor_header->num_handles_to_move, false);
  142. }
  143. }
  144. buffer_x_descriptors.reserve(command_header->num_buf_x_descriptors);
  145. buffer_a_descriptors.reserve(command_header->num_buf_a_descriptors);
  146. buffer_b_descriptors.reserve(command_header->num_buf_b_descriptors);
  147. buffer_w_descriptors.reserve(command_header->num_buf_w_descriptors);
  148. for (u32 i = 0; i < command_header->num_buf_x_descriptors; ++i) {
  149. buffer_x_descriptors.push_back(rp.PopRaw<IPC::BufferDescriptorX>());
  150. }
  151. for (u32 i = 0; i < command_header->num_buf_a_descriptors; ++i) {
  152. buffer_a_descriptors.push_back(rp.PopRaw<IPC::BufferDescriptorABW>());
  153. }
  154. for (u32 i = 0; i < command_header->num_buf_b_descriptors; ++i) {
  155. buffer_b_descriptors.push_back(rp.PopRaw<IPC::BufferDescriptorABW>());
  156. }
  157. for (u32 i = 0; i < command_header->num_buf_w_descriptors; ++i) {
  158. buffer_w_descriptors.push_back(rp.PopRaw<IPC::BufferDescriptorABW>());
  159. }
  160. const auto buffer_c_offset = rp.GetCurrentOffset() + command_header->data_size;
  161. if (!command_header->IsTipc()) {
  162. // Padding to align to 16 bytes
  163. rp.AlignWithPadding();
  164. if (GetManager()->IsDomain() &&
  165. ((command_header->type == IPC::CommandType::Request ||
  166. command_header->type == IPC::CommandType::RequestWithContext) ||
  167. !incoming)) {
  168. // If this is an incoming message, only CommandType "Request" has a domain header
  169. // All outgoing domain messages have the domain header, if only incoming has it
  170. if (incoming || domain_message_header) {
  171. domain_message_header = rp.PopRaw<IPC::DomainMessageHeader>();
  172. } else {
  173. if (GetManager()->IsDomain()) {
  174. LOG_WARNING(IPC, "Domain request has no DomainMessageHeader!");
  175. }
  176. }
  177. }
  178. data_payload_header = rp.PopRaw<IPC::DataPayloadHeader>();
  179. data_payload_offset = rp.GetCurrentOffset();
  180. if (domain_message_header &&
  181. domain_message_header->command ==
  182. IPC::DomainMessageHeader::CommandType::CloseVirtualHandle) {
  183. // CloseVirtualHandle command does not have SFC* or any data
  184. return;
  185. }
  186. if (incoming) {
  187. ASSERT(data_payload_header->magic == Common::MakeMagic('S', 'F', 'C', 'I'));
  188. } else {
  189. ASSERT(data_payload_header->magic == Common::MakeMagic('S', 'F', 'C', 'O'));
  190. }
  191. }
  192. rp.SetCurrentOffset(buffer_c_offset);
  193. // For Inline buffers, the response data is written directly to buffer_c_offset
  194. // and in this case we don't have any BufferDescriptorC on the request.
  195. if (command_header->buf_c_descriptor_flags >
  196. IPC::CommandHeader::BufferDescriptorCFlag::InlineDescriptor) {
  197. if (command_header->buf_c_descriptor_flags ==
  198. IPC::CommandHeader::BufferDescriptorCFlag::OneDescriptor) {
  199. buffer_c_descriptors.push_back(rp.PopRaw<IPC::BufferDescriptorC>());
  200. } else {
  201. u32 num_buf_c_descriptors =
  202. static_cast<u32>(command_header->buf_c_descriptor_flags.Value()) - 2;
  203. // This is used to detect possible underflows, in case something is broken
  204. // with the two ifs above and the flags value is == 0 || == 1.
  205. ASSERT(num_buf_c_descriptors < 14);
  206. for (u32 i = 0; i < num_buf_c_descriptors; ++i) {
  207. buffer_c_descriptors.push_back(rp.PopRaw<IPC::BufferDescriptorC>());
  208. }
  209. }
  210. }
  211. rp.SetCurrentOffset(data_payload_offset);
  212. command = rp.Pop<u32_le>();
  213. rp.Skip(1, false); // The command is actually an u64, but we don't use the high part.
  214. }
  215. Result HLERequestContext::PopulateFromIncomingCommandBuffer(u32_le* src_cmdbuf) {
  216. client_handle_table = &thread->GetOwnerProcess()->GetHandleTable();
  217. ParseCommandBuffer(src_cmdbuf, true);
  218. if (command_header->IsCloseCommand()) {
  219. // Close does not populate the rest of the IPC header
  220. return ResultSuccess;
  221. }
  222. std::copy_n(src_cmdbuf, IPC::COMMAND_BUFFER_LENGTH, cmd_buf.begin());
  223. return ResultSuccess;
  224. }
  225. Result HLERequestContext::WriteToOutgoingCommandBuffer() {
  226. auto current_offset = handles_offset;
  227. auto& owner_process = *thread->GetOwnerProcess();
  228. auto& handle_table = owner_process.GetHandleTable();
  229. for (auto& object : outgoing_copy_objects) {
  230. Handle handle{};
  231. if (object) {
  232. R_TRY(handle_table.Add(&handle, object));
  233. }
  234. cmd_buf[current_offset++] = handle;
  235. }
  236. for (auto& object : outgoing_move_objects) {
  237. Handle handle{};
  238. if (object) {
  239. R_TRY(handle_table.Add(&handle, object));
  240. // Close our reference to the object, as it is being moved to the caller.
  241. object->Close();
  242. }
  243. cmd_buf[current_offset++] = handle;
  244. }
  245. // Write the domain objects to the command buffer, these go after the raw untranslated data.
  246. // TODO(Subv): This completely ignores C buffers.
  247. if (GetManager()->IsDomain()) {
  248. current_offset = domain_offset - static_cast<u32>(outgoing_domain_objects.size());
  249. for (auto& object : outgoing_domain_objects) {
  250. GetManager()->AppendDomainHandler(std::move(object));
  251. cmd_buf[current_offset++] = static_cast<u32_le>(GetManager()->DomainHandlerCount());
  252. }
  253. }
  254. // Copy the translated command buffer back into the thread's command buffer area.
  255. memory.WriteBlock(thread->GetTlsAddress(), cmd_buf.data(), write_size * sizeof(u32));
  256. return ResultSuccess;
  257. }
  258. std::vector<u8> HLERequestContext::ReadBufferCopy(std::size_t buffer_index) const {
  259. const bool is_buffer_a{BufferDescriptorA().size() > buffer_index &&
  260. BufferDescriptorA()[buffer_index].Size()};
  261. if (is_buffer_a) {
  262. ASSERT_OR_EXECUTE_MSG(
  263. BufferDescriptorA().size() > buffer_index, { return {}; },
  264. "BufferDescriptorA invalid buffer_index {}", buffer_index);
  265. std::vector<u8> buffer(BufferDescriptorA()[buffer_index].Size());
  266. memory.ReadBlock(BufferDescriptorA()[buffer_index].Address(), buffer.data(), buffer.size());
  267. return buffer;
  268. } else {
  269. ASSERT_OR_EXECUTE_MSG(
  270. BufferDescriptorX().size() > buffer_index, { return {}; },
  271. "BufferDescriptorX invalid buffer_index {}", buffer_index);
  272. std::vector<u8> buffer(BufferDescriptorX()[buffer_index].Size());
  273. memory.ReadBlock(BufferDescriptorX()[buffer_index].Address(), buffer.data(), buffer.size());
  274. return buffer;
  275. }
  276. }
  277. std::span<const u8> HLERequestContext::ReadBufferA(std::size_t buffer_index) const {
  278. Core::Memory::CpuGuestMemory<u8, Core::Memory::GuestMemoryFlags::UnsafeRead> gm(memory, 0, 0);
  279. ASSERT_OR_EXECUTE_MSG(
  280. BufferDescriptorA().size() > buffer_index, { return {}; },
  281. "BufferDescriptorA invalid buffer_index {}", buffer_index);
  282. return gm.Read(BufferDescriptorA()[buffer_index].Address(),
  283. BufferDescriptorA()[buffer_index].Size(), &read_buffer_data_a[buffer_index]);
  284. }
  285. std::span<const u8> HLERequestContext::ReadBufferX(std::size_t buffer_index) const {
  286. Core::Memory::CpuGuestMemory<u8, Core::Memory::GuestMemoryFlags::UnsafeRead> gm(memory, 0, 0);
  287. ASSERT_OR_EXECUTE_MSG(
  288. BufferDescriptorX().size() > buffer_index, { return {}; },
  289. "BufferDescriptorX invalid buffer_index {}", buffer_index);
  290. return gm.Read(BufferDescriptorX()[buffer_index].Address(),
  291. BufferDescriptorX()[buffer_index].Size(), &read_buffer_data_x[buffer_index]);
  292. }
  293. std::span<const u8> HLERequestContext::ReadBuffer(std::size_t buffer_index) const {
  294. Core::Memory::CpuGuestMemory<u8, Core::Memory::GuestMemoryFlags::UnsafeRead> gm(memory, 0, 0);
  295. const bool is_buffer_a{BufferDescriptorA().size() > buffer_index &&
  296. BufferDescriptorA()[buffer_index].Size()};
  297. const bool is_buffer_x{BufferDescriptorX().size() > buffer_index &&
  298. BufferDescriptorX()[buffer_index].Size()};
  299. if (is_buffer_a && is_buffer_x) {
  300. LOG_WARNING(Input, "Both buffer descriptors are available a.size={}, x.size={}",
  301. BufferDescriptorA()[buffer_index].Size(),
  302. BufferDescriptorX()[buffer_index].Size());
  303. }
  304. if (is_buffer_a) {
  305. ASSERT_OR_EXECUTE_MSG(
  306. BufferDescriptorA().size() > buffer_index, { return {}; },
  307. "BufferDescriptorA invalid buffer_index {}", buffer_index);
  308. return gm.Read(BufferDescriptorA()[buffer_index].Address(),
  309. BufferDescriptorA()[buffer_index].Size(), &read_buffer_data_a[buffer_index]);
  310. } else {
  311. ASSERT_OR_EXECUTE_MSG(
  312. BufferDescriptorX().size() > buffer_index, { return {}; },
  313. "BufferDescriptorX invalid buffer_index {}", buffer_index);
  314. return gm.Read(BufferDescriptorX()[buffer_index].Address(),
  315. BufferDescriptorX()[buffer_index].Size(), &read_buffer_data_x[buffer_index]);
  316. }
  317. }
  318. std::size_t HLERequestContext::WriteBuffer(const void* buffer, std::size_t size,
  319. std::size_t buffer_index) const {
  320. if (size == 0) {
  321. LOG_WARNING(Core, "skip empty buffer write");
  322. return 0;
  323. }
  324. const bool is_buffer_b{BufferDescriptorB().size() > buffer_index &&
  325. BufferDescriptorB()[buffer_index].Size()};
  326. const std::size_t buffer_size{GetWriteBufferSize(buffer_index)};
  327. if (size > buffer_size) {
  328. LOG_CRITICAL(Core, "size ({:016X}) is greater than buffer_size ({:016X})", size,
  329. buffer_size);
  330. size = buffer_size; // TODO(bunnei): This needs to be HW tested
  331. }
  332. if (is_buffer_b) {
  333. ASSERT_OR_EXECUTE_MSG(
  334. BufferDescriptorB().size() > buffer_index &&
  335. BufferDescriptorB()[buffer_index].Size() >= size,
  336. { return 0; }, "BufferDescriptorB is invalid, index={}, size={}", buffer_index, size);
  337. WriteBufferB(buffer, size, buffer_index);
  338. } else {
  339. ASSERT_OR_EXECUTE_MSG(
  340. BufferDescriptorC().size() > buffer_index &&
  341. BufferDescriptorC()[buffer_index].Size() >= size,
  342. { return 0; }, "BufferDescriptorC is invalid, index={}, size={}", buffer_index, size);
  343. WriteBufferC(buffer, size, buffer_index);
  344. }
  345. return size;
  346. }
  347. std::size_t HLERequestContext::WriteBufferB(const void* buffer, std::size_t size,
  348. std::size_t buffer_index) const {
  349. if (buffer_index >= BufferDescriptorB().size() || size == 0) {
  350. return 0;
  351. }
  352. const auto buffer_size{BufferDescriptorB()[buffer_index].Size()};
  353. if (size > buffer_size) {
  354. LOG_CRITICAL(Core, "size ({:016X}) is greater than buffer_size ({:016X})", size,
  355. buffer_size);
  356. size = buffer_size; // TODO(bunnei): This needs to be HW tested
  357. }
  358. memory.WriteBlock(BufferDescriptorB()[buffer_index].Address(), buffer, size);
  359. return size;
  360. }
  361. std::size_t HLERequestContext::WriteBufferC(const void* buffer, std::size_t size,
  362. std::size_t buffer_index) const {
  363. if (buffer_index >= BufferDescriptorC().size() || size == 0) {
  364. return 0;
  365. }
  366. const auto buffer_size{BufferDescriptorC()[buffer_index].Size()};
  367. if (size > buffer_size) {
  368. LOG_CRITICAL(Core, "size ({:016X}) is greater than buffer_size ({:016X})", size,
  369. buffer_size);
  370. size = buffer_size; // TODO(bunnei): This needs to be HW tested
  371. }
  372. memory.WriteBlock(BufferDescriptorC()[buffer_index].Address(), buffer, size);
  373. return size;
  374. }
  375. std::size_t HLERequestContext::GetReadBufferSize(std::size_t buffer_index) const {
  376. const bool is_buffer_a{BufferDescriptorA().size() > buffer_index &&
  377. BufferDescriptorA()[buffer_index].Size()};
  378. if (is_buffer_a) {
  379. ASSERT_OR_EXECUTE_MSG(
  380. BufferDescriptorA().size() > buffer_index, { return 0; },
  381. "BufferDescriptorA invalid buffer_index {}", buffer_index);
  382. return BufferDescriptorA()[buffer_index].Size();
  383. } else {
  384. ASSERT_OR_EXECUTE_MSG(
  385. BufferDescriptorX().size() > buffer_index, { return 0; },
  386. "BufferDescriptorX invalid buffer_index {}", buffer_index);
  387. return BufferDescriptorX()[buffer_index].Size();
  388. }
  389. }
  390. std::size_t HLERequestContext::GetWriteBufferSize(std::size_t buffer_index) const {
  391. const bool is_buffer_b{BufferDescriptorB().size() > buffer_index &&
  392. BufferDescriptorB()[buffer_index].Size()};
  393. if (is_buffer_b) {
  394. ASSERT_OR_EXECUTE_MSG(
  395. BufferDescriptorB().size() > buffer_index, { return 0; },
  396. "BufferDescriptorB invalid buffer_index {}", buffer_index);
  397. return BufferDescriptorB()[buffer_index].Size();
  398. } else {
  399. ASSERT_OR_EXECUTE_MSG(
  400. BufferDescriptorC().size() > buffer_index, { return 0; },
  401. "BufferDescriptorC invalid buffer_index {}", buffer_index);
  402. return BufferDescriptorC()[buffer_index].Size();
  403. }
  404. return 0;
  405. }
  406. bool HLERequestContext::CanReadBuffer(std::size_t buffer_index) const {
  407. const bool is_buffer_a{BufferDescriptorA().size() > buffer_index &&
  408. BufferDescriptorA()[buffer_index].Size()};
  409. if (is_buffer_a) {
  410. return BufferDescriptorA().size() > buffer_index;
  411. } else {
  412. return BufferDescriptorX().size() > buffer_index;
  413. }
  414. }
  415. bool HLERequestContext::CanWriteBuffer(std::size_t buffer_index) const {
  416. const bool is_buffer_b{BufferDescriptorB().size() > buffer_index &&
  417. BufferDescriptorB()[buffer_index].Size()};
  418. if (is_buffer_b) {
  419. return BufferDescriptorB().size() > buffer_index;
  420. } else {
  421. return BufferDescriptorC().size() > buffer_index;
  422. }
  423. }
  424. std::string HLERequestContext::Description() const {
  425. if (!command_header) {
  426. return "No command header available";
  427. }
  428. std::ostringstream s;
  429. s << "IPC::CommandHeader: Type:" << static_cast<u32>(command_header->type.Value());
  430. s << ", X(Pointer):" << command_header->num_buf_x_descriptors;
  431. if (command_header->num_buf_x_descriptors) {
  432. s << '[';
  433. for (u64 i = 0; i < command_header->num_buf_x_descriptors; ++i) {
  434. s << "0x" << std::hex << BufferDescriptorX()[i].Size();
  435. if (i < command_header->num_buf_x_descriptors - 1)
  436. s << ", ";
  437. }
  438. s << ']';
  439. }
  440. s << ", A(Send):" << command_header->num_buf_a_descriptors;
  441. if (command_header->num_buf_a_descriptors) {
  442. s << '[';
  443. for (u64 i = 0; i < command_header->num_buf_a_descriptors; ++i) {
  444. s << "0x" << std::hex << BufferDescriptorA()[i].Size();
  445. if (i < command_header->num_buf_a_descriptors - 1)
  446. s << ", ";
  447. }
  448. s << ']';
  449. }
  450. s << ", B(Receive):" << command_header->num_buf_b_descriptors;
  451. if (command_header->num_buf_b_descriptors) {
  452. s << '[';
  453. for (u64 i = 0; i < command_header->num_buf_b_descriptors; ++i) {
  454. s << "0x" << std::hex << BufferDescriptorB()[i].Size();
  455. if (i < command_header->num_buf_b_descriptors - 1)
  456. s << ", ";
  457. }
  458. s << ']';
  459. }
  460. s << ", C(ReceiveList):" << BufferDescriptorC().size();
  461. if (!BufferDescriptorC().empty()) {
  462. s << '[';
  463. for (u64 i = 0; i < BufferDescriptorC().size(); ++i) {
  464. s << "0x" << std::hex << BufferDescriptorC()[i].Size();
  465. if (i < BufferDescriptorC().size() - 1)
  466. s << ", ";
  467. }
  468. s << ']';
  469. }
  470. s << ", data_size:" << command_header->data_size.Value();
  471. return s.str();
  472. }
  473. } // namespace Service