gdbstub_arch.cpp 18 KB

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  1. // SPDX-FileCopyrightText: Copyright 2022 yuzu Emulator Project
  2. // SPDX-License-Identifier: GPL-2.0-or-later
  3. #include "common/hex_util.h"
  4. #include "core/debugger/gdbstub_arch.h"
  5. #include "core/hle/kernel/k_thread.h"
  6. namespace Core {
  7. template <typename T>
  8. static T HexToValue(std::string_view hex) {
  9. static_assert(std::is_trivially_copyable_v<T>);
  10. T value{};
  11. const auto mem{Common::HexStringToVector(hex, false)};
  12. std::memcpy(&value, mem.data(), std::min(mem.size(), sizeof(T)));
  13. return value;
  14. }
  15. template <typename T>
  16. static std::string ValueToHex(const T value) {
  17. static_assert(std::is_trivially_copyable_v<T>);
  18. std::array<u8, sizeof(T)> mem{};
  19. std::memcpy(mem.data(), &value, sizeof(T));
  20. return Common::HexToString(mem);
  21. }
  22. // For sample XML files see the GDB source /gdb/features
  23. // This XML defines what the registers are for this specific ARM device
  24. std::string_view GDBStubA64::GetTargetXML() const {
  25. return R"(<?xml version="1.0"?>
  26. <!DOCTYPE target SYSTEM "gdb-target.dtd">
  27. <target version="1.0">
  28. <architecture>aarch64</architecture>
  29. <feature name="org.gnu.gdb.aarch64.core">
  30. <reg name="x0" bitsize="64"/>
  31. <reg name="x1" bitsize="64"/>
  32. <reg name="x2" bitsize="64"/>
  33. <reg name="x3" bitsize="64"/>
  34. <reg name="x4" bitsize="64"/>
  35. <reg name="x5" bitsize="64"/>
  36. <reg name="x6" bitsize="64"/>
  37. <reg name="x7" bitsize="64"/>
  38. <reg name="x8" bitsize="64"/>
  39. <reg name="x9" bitsize="64"/>
  40. <reg name="x10" bitsize="64"/>
  41. <reg name="x11" bitsize="64"/>
  42. <reg name="x12" bitsize="64"/>
  43. <reg name="x13" bitsize="64"/>
  44. <reg name="x14" bitsize="64"/>
  45. <reg name="x15" bitsize="64"/>
  46. <reg name="x16" bitsize="64"/>
  47. <reg name="x17" bitsize="64"/>
  48. <reg name="x18" bitsize="64"/>
  49. <reg name="x19" bitsize="64"/>
  50. <reg name="x20" bitsize="64"/>
  51. <reg name="x21" bitsize="64"/>
  52. <reg name="x22" bitsize="64"/>
  53. <reg name="x23" bitsize="64"/>
  54. <reg name="x24" bitsize="64"/>
  55. <reg name="x25" bitsize="64"/>
  56. <reg name="x26" bitsize="64"/>
  57. <reg name="x27" bitsize="64"/>
  58. <reg name="x28" bitsize="64"/>
  59. <reg name="x29" bitsize="64"/>
  60. <reg name="x30" bitsize="64"/>
  61. <reg name="sp" bitsize="64" type="data_ptr"/>
  62. <reg name="pc" bitsize="64" type="code_ptr"/>
  63. <flags id="cpsr_flags" size="4">
  64. <field name="SP" start="0" end="0"/>
  65. <field name="" start="1" end="1"/>
  66. <field name="EL" start="2" end="3"/>
  67. <field name="nRW" start="4" end="4"/>
  68. <field name="" start="5" end="5"/>
  69. <field name="F" start="6" end="6"/>
  70. <field name="I" start="7" end="7"/>
  71. <field name="A" start="8" end="8"/>
  72. <field name="D" start="9" end="9"/>
  73. <field name="IL" start="20" end="20"/>
  74. <field name="SS" start="21" end="21"/>
  75. <field name="V" start="28" end="28"/>
  76. <field name="C" start="29" end="29"/>
  77. <field name="Z" start="30" end="30"/>
  78. <field name="N" start="31" end="31"/>
  79. </flags>
  80. <reg name="cpsr" bitsize="32" type="cpsr_flags"/>
  81. </feature>
  82. <feature name="org.gnu.gdb.aarch64.fpu">
  83. <vector id="v2d" type="ieee_double" count="2"/>
  84. <vector id="v2u" type="uint64" count="2"/>
  85. <vector id="v2i" type="int64" count="2"/>
  86. <vector id="v4f" type="ieee_single" count="4"/>
  87. <vector id="v4u" type="uint32" count="4"/>
  88. <vector id="v4i" type="int32" count="4"/>
  89. <vector id="v8u" type="uint16" count="8"/>
  90. <vector id="v8i" type="int16" count="8"/>
  91. <vector id="v16u" type="uint8" count="16"/>
  92. <vector id="v16i" type="int8" count="16"/>
  93. <vector id="v1u" type="uint128" count="1"/>
  94. <vector id="v1i" type="int128" count="1"/>
  95. <union id="vnd">
  96. <field name="f" type="v2d"/>
  97. <field name="u" type="v2u"/>
  98. <field name="s" type="v2i"/>
  99. </union>
  100. <union id="vns">
  101. <field name="f" type="v4f"/>
  102. <field name="u" type="v4u"/>
  103. <field name="s" type="v4i"/>
  104. </union>
  105. <union id="vnh">
  106. <field name="u" type="v8u"/>
  107. <field name="s" type="v8i"/>
  108. </union>
  109. <union id="vnb">
  110. <field name="u" type="v16u"/>
  111. <field name="s" type="v16i"/>
  112. </union>
  113. <union id="vnq">
  114. <field name="u" type="v1u"/>
  115. <field name="s" type="v1i"/>
  116. </union>
  117. <union id="aarch64v">
  118. <field name="d" type="vnd"/>
  119. <field name="s" type="vns"/>
  120. <field name="h" type="vnh"/>
  121. <field name="b" type="vnb"/>
  122. <field name="q" type="vnq"/>
  123. </union>
  124. <reg name="v0" bitsize="128" type="aarch64v" regnum="34"/>
  125. <reg name="v1" bitsize="128" type="aarch64v" />
  126. <reg name="v2" bitsize="128" type="aarch64v" />
  127. <reg name="v3" bitsize="128" type="aarch64v" />
  128. <reg name="v4" bitsize="128" type="aarch64v" />
  129. <reg name="v5" bitsize="128" type="aarch64v" />
  130. <reg name="v6" bitsize="128" type="aarch64v" />
  131. <reg name="v7" bitsize="128" type="aarch64v" />
  132. <reg name="v8" bitsize="128" type="aarch64v" />
  133. <reg name="v9" bitsize="128" type="aarch64v" />
  134. <reg name="v10" bitsize="128" type="aarch64v"/>
  135. <reg name="v11" bitsize="128" type="aarch64v"/>
  136. <reg name="v12" bitsize="128" type="aarch64v"/>
  137. <reg name="v13" bitsize="128" type="aarch64v"/>
  138. <reg name="v14" bitsize="128" type="aarch64v"/>
  139. <reg name="v15" bitsize="128" type="aarch64v"/>
  140. <reg name="v16" bitsize="128" type="aarch64v"/>
  141. <reg name="v17" bitsize="128" type="aarch64v"/>
  142. <reg name="v18" bitsize="128" type="aarch64v"/>
  143. <reg name="v19" bitsize="128" type="aarch64v"/>
  144. <reg name="v20" bitsize="128" type="aarch64v"/>
  145. <reg name="v21" bitsize="128" type="aarch64v"/>
  146. <reg name="v22" bitsize="128" type="aarch64v"/>
  147. <reg name="v23" bitsize="128" type="aarch64v"/>
  148. <reg name="v24" bitsize="128" type="aarch64v"/>
  149. <reg name="v25" bitsize="128" type="aarch64v"/>
  150. <reg name="v26" bitsize="128" type="aarch64v"/>
  151. <reg name="v27" bitsize="128" type="aarch64v"/>
  152. <reg name="v28" bitsize="128" type="aarch64v"/>
  153. <reg name="v29" bitsize="128" type="aarch64v"/>
  154. <reg name="v30" bitsize="128" type="aarch64v"/>
  155. <reg name="v31" bitsize="128" type="aarch64v"/>
  156. <reg name="fpsr" bitsize="32"/>
  157. <reg name="fpcr" bitsize="32"/>
  158. </feature>
  159. </target>)";
  160. }
  161. std::string GDBStubA64::RegRead(const Kernel::KThread* thread, size_t id) const {
  162. if (!thread) {
  163. return "";
  164. }
  165. const auto& context{thread->GetContext()};
  166. const auto& gprs{context.r};
  167. const auto& fprs{context.v};
  168. if (id < FP_REGISTER) {
  169. return ValueToHex(gprs[id]);
  170. } else if (id == FP_REGISTER) {
  171. return ValueToHex(context.fp);
  172. } else if (id == LR_REGISTER) {
  173. return ValueToHex(context.lr);
  174. } else if (id == SP_REGISTER) {
  175. return ValueToHex(context.sp);
  176. } else if (id == PC_REGISTER) {
  177. return ValueToHex(context.pc);
  178. } else if (id == PSTATE_REGISTER) {
  179. return ValueToHex(context.pstate);
  180. } else if (id >= Q0_REGISTER && id < FPSR_REGISTER) {
  181. return ValueToHex(fprs[id - Q0_REGISTER]);
  182. } else if (id == FPSR_REGISTER) {
  183. return ValueToHex(context.fpsr);
  184. } else if (id == FPCR_REGISTER) {
  185. return ValueToHex(context.fpcr);
  186. } else {
  187. return "";
  188. }
  189. }
  190. void GDBStubA64::RegWrite(Kernel::KThread* thread, size_t id, std::string_view value) const {
  191. if (!thread) {
  192. return;
  193. }
  194. auto& context{thread->GetContext()};
  195. if (id < FP_REGISTER) {
  196. context.r[id] = HexToValue<u64>(value);
  197. } else if (id == FP_REGISTER) {
  198. context.fp = HexToValue<u64>(value);
  199. } else if (id == LR_REGISTER) {
  200. context.lr = HexToValue<u64>(value);
  201. } else if (id == SP_REGISTER) {
  202. context.sp = HexToValue<u64>(value);
  203. } else if (id == PC_REGISTER) {
  204. context.pc = HexToValue<u64>(value);
  205. } else if (id == PSTATE_REGISTER) {
  206. context.pstate = HexToValue<u32>(value);
  207. } else if (id >= Q0_REGISTER && id < FPSR_REGISTER) {
  208. context.v[id - Q0_REGISTER] = HexToValue<u128>(value);
  209. } else if (id == FPSR_REGISTER) {
  210. context.fpsr = HexToValue<u32>(value);
  211. } else if (id == FPCR_REGISTER) {
  212. context.fpcr = HexToValue<u32>(value);
  213. }
  214. }
  215. std::string GDBStubA64::ReadRegisters(const Kernel::KThread* thread) const {
  216. std::string output;
  217. for (size_t reg = 0; reg <= FPCR_REGISTER; reg++) {
  218. output += RegRead(thread, reg);
  219. }
  220. return output;
  221. }
  222. void GDBStubA64::WriteRegisters(Kernel::KThread* thread, std::string_view register_data) const {
  223. for (size_t i = 0, reg = 0; reg <= FPCR_REGISTER; reg++) {
  224. if (reg <= SP_REGISTER || reg == PC_REGISTER) {
  225. RegWrite(thread, reg, register_data.substr(i, 16));
  226. i += 16;
  227. } else if (reg == PSTATE_REGISTER || reg == FPCR_REGISTER || reg == FPSR_REGISTER) {
  228. RegWrite(thread, reg, register_data.substr(i, 8));
  229. i += 8;
  230. } else if (reg >= Q0_REGISTER && reg < FPCR_REGISTER) {
  231. RegWrite(thread, reg, register_data.substr(i, 32));
  232. i += 32;
  233. }
  234. }
  235. }
  236. std::string GDBStubA64::ThreadStatus(const Kernel::KThread* thread, u8 signal) const {
  237. return fmt::format("T{:02x}{:02x}:{};{:02x}:{};{:02x}:{};thread:{:x};", signal, PC_REGISTER,
  238. RegRead(thread, PC_REGISTER), SP_REGISTER, RegRead(thread, SP_REGISTER),
  239. LR_REGISTER, RegRead(thread, LR_REGISTER), thread->GetThreadId());
  240. }
  241. u32 GDBStubA64::BreakpointInstruction() const {
  242. // A64: brk #0
  243. return 0xd4200000;
  244. }
  245. std::string_view GDBStubA32::GetTargetXML() const {
  246. return R"(<?xml version="1.0"?>
  247. <!DOCTYPE target SYSTEM "gdb-target.dtd">
  248. <target version="1.0">
  249. <architecture>arm</architecture>
  250. <feature name="org.gnu.gdb.arm.core">
  251. <reg name="r0" bitsize="32" type="uint32"/>
  252. <reg name="r1" bitsize="32" type="uint32"/>
  253. <reg name="r2" bitsize="32" type="uint32"/>
  254. <reg name="r3" bitsize="32" type="uint32"/>
  255. <reg name="r4" bitsize="32" type="uint32"/>
  256. <reg name="r5" bitsize="32" type="uint32"/>
  257. <reg name="r6" bitsize="32" type="uint32"/>
  258. <reg name="r7" bitsize="32" type="uint32"/>
  259. <reg name="r8" bitsize="32" type="uint32"/>
  260. <reg name="r9" bitsize="32" type="uint32"/>
  261. <reg name="r10" bitsize="32" type="uint32"/>
  262. <reg name="r11" bitsize="32" type="uint32"/>
  263. <reg name="r12" bitsize="32" type="uint32"/>
  264. <reg name="sp" bitsize="32" type="data_ptr"/>
  265. <reg name="lr" bitsize="32" type="code_ptr"/>
  266. <reg name="pc" bitsize="32" type="code_ptr"/>
  267. <!-- The CPSR is register 25, rather than register 16, because
  268. the FPA registers historically were placed between the PC
  269. and the CPSR in the "g" packet. -->
  270. <reg name="cpsr" bitsize="32" regnum="25"/>
  271. </feature>
  272. <feature name="org.gnu.gdb.arm.vfp">
  273. <vector id="neon_uint8x8" type="uint8" count="8"/>
  274. <vector id="neon_uint16x4" type="uint16" count="4"/>
  275. <vector id="neon_uint32x2" type="uint32" count="2"/>
  276. <vector id="neon_float32x2" type="ieee_single" count="2"/>
  277. <union id="neon_d">
  278. <field name="u8" type="neon_uint8x8"/>
  279. <field name="u16" type="neon_uint16x4"/>
  280. <field name="u32" type="neon_uint32x2"/>
  281. <field name="u64" type="uint64"/>
  282. <field name="f32" type="neon_float32x2"/>
  283. <field name="f64" type="ieee_double"/>
  284. </union>
  285. <vector id="neon_uint8x16" type="uint8" count="16"/>
  286. <vector id="neon_uint16x8" type="uint16" count="8"/>
  287. <vector id="neon_uint32x4" type="uint32" count="4"/>
  288. <vector id="neon_uint64x2" type="uint64" count="2"/>
  289. <vector id="neon_float32x4" type="ieee_single" count="4"/>
  290. <vector id="neon_float64x2" type="ieee_double" count="2"/>
  291. <union id="neon_q">
  292. <field name="u8" type="neon_uint8x16"/>
  293. <field name="u16" type="neon_uint16x8"/>
  294. <field name="u32" type="neon_uint32x4"/>
  295. <field name="u64" type="neon_uint64x2"/>
  296. <field name="f32" type="neon_float32x4"/>
  297. <field name="f64" type="neon_float64x2"/>
  298. </union>
  299. <reg name="d0" bitsize="64" type="neon_d" regnum="32"/>
  300. <reg name="d1" bitsize="64" type="neon_d"/>
  301. <reg name="d2" bitsize="64" type="neon_d"/>
  302. <reg name="d3" bitsize="64" type="neon_d"/>
  303. <reg name="d4" bitsize="64" type="neon_d"/>
  304. <reg name="d5" bitsize="64" type="neon_d"/>
  305. <reg name="d6" bitsize="64" type="neon_d"/>
  306. <reg name="d7" bitsize="64" type="neon_d"/>
  307. <reg name="d8" bitsize="64" type="neon_d"/>
  308. <reg name="d9" bitsize="64" type="neon_d"/>
  309. <reg name="d10" bitsize="64" type="neon_d"/>
  310. <reg name="d11" bitsize="64" type="neon_d"/>
  311. <reg name="d12" bitsize="64" type="neon_d"/>
  312. <reg name="d13" bitsize="64" type="neon_d"/>
  313. <reg name="d14" bitsize="64" type="neon_d"/>
  314. <reg name="d15" bitsize="64" type="neon_d"/>
  315. <reg name="d16" bitsize="64" type="neon_d"/>
  316. <reg name="d17" bitsize="64" type="neon_d"/>
  317. <reg name="d18" bitsize="64" type="neon_d"/>
  318. <reg name="d19" bitsize="64" type="neon_d"/>
  319. <reg name="d20" bitsize="64" type="neon_d"/>
  320. <reg name="d21" bitsize="64" type="neon_d"/>
  321. <reg name="d22" bitsize="64" type="neon_d"/>
  322. <reg name="d23" bitsize="64" type="neon_d"/>
  323. <reg name="d24" bitsize="64" type="neon_d"/>
  324. <reg name="d25" bitsize="64" type="neon_d"/>
  325. <reg name="d26" bitsize="64" type="neon_d"/>
  326. <reg name="d27" bitsize="64" type="neon_d"/>
  327. <reg name="d28" bitsize="64" type="neon_d"/>
  328. <reg name="d29" bitsize="64" type="neon_d"/>
  329. <reg name="d30" bitsize="64" type="neon_d"/>
  330. <reg name="d31" bitsize="64" type="neon_d"/>
  331. <reg name="q0" bitsize="128" type="neon_q" regnum="64"/>
  332. <reg name="q1" bitsize="128" type="neon_q"/>
  333. <reg name="q2" bitsize="128" type="neon_q"/>
  334. <reg name="q3" bitsize="128" type="neon_q"/>
  335. <reg name="q4" bitsize="128" type="neon_q"/>
  336. <reg name="q5" bitsize="128" type="neon_q"/>
  337. <reg name="q6" bitsize="128" type="neon_q"/>
  338. <reg name="q7" bitsize="128" type="neon_q"/>
  339. <reg name="q8" bitsize="128" type="neon_q"/>
  340. <reg name="q9" bitsize="128" type="neon_q"/>
  341. <reg name="q10" bitsize="128" type="neon_q"/>
  342. <reg name="q10" bitsize="128" type="neon_q"/>
  343. <reg name="q12" bitsize="128" type="neon_q"/>
  344. <reg name="q13" bitsize="128" type="neon_q"/>
  345. <reg name="q14" bitsize="128" type="neon_q"/>
  346. <reg name="q15" bitsize="128" type="neon_q"/>
  347. <reg name="fpscr" bitsize="32" type="int" group="float" regnum="80"/>
  348. </feature>
  349. </target>)";
  350. }
  351. std::string GDBStubA32::RegRead(const Kernel::KThread* thread, size_t id) const {
  352. if (!thread) {
  353. return "";
  354. }
  355. const auto& context{thread->GetContext()};
  356. const auto& gprs{context.r};
  357. const auto& fprs{context.v};
  358. if (id <= PC_REGISTER) {
  359. return ValueToHex(static_cast<u32>(gprs[id]));
  360. } else if (id == CPSR_REGISTER) {
  361. return ValueToHex(context.pstate);
  362. } else if (id >= D0_REGISTER && id < Q0_REGISTER) {
  363. return ValueToHex(fprs[(id - D0_REGISTER) / 2][(id - D0_REGISTER) % 2]);
  364. } else if (id >= Q0_REGISTER && id < FPSCR_REGISTER) {
  365. return ValueToHex(fprs[id - Q0_REGISTER]);
  366. } else if (id == FPSCR_REGISTER) {
  367. return ValueToHex(context.fpcr | context.fpsr);
  368. } else {
  369. return "";
  370. }
  371. }
  372. void GDBStubA32::RegWrite(Kernel::KThread* thread, size_t id, std::string_view value) const {
  373. if (!thread) {
  374. return;
  375. }
  376. auto& context{thread->GetContext()};
  377. auto& fprs{context.v};
  378. if (id <= PC_REGISTER) {
  379. context.r[id] = HexToValue<u32>(value);
  380. } else if (id == CPSR_REGISTER) {
  381. context.pstate = HexToValue<u32>(value);
  382. } else if (id >= D0_REGISTER && id < Q0_REGISTER) {
  383. fprs[(id - D0_REGISTER) / 2][(id - D0_REGISTER) % 2] = HexToValue<u64>(value);
  384. } else if (id >= Q0_REGISTER && id < FPSCR_REGISTER) {
  385. fprs[id - Q0_REGISTER] = HexToValue<u128>(value);
  386. } else if (id == FPSCR_REGISTER) {
  387. context.fpcr = HexToValue<u32>(value);
  388. context.fpsr = HexToValue<u32>(value);
  389. }
  390. }
  391. std::string GDBStubA32::ReadRegisters(const Kernel::KThread* thread) const {
  392. std::string output;
  393. for (size_t reg = 0; reg <= FPSCR_REGISTER; reg++) {
  394. const bool gpr{reg <= PC_REGISTER};
  395. const bool dfpr{reg >= D0_REGISTER && reg < Q0_REGISTER};
  396. const bool qfpr{reg >= Q0_REGISTER && reg < FPSCR_REGISTER};
  397. if (!(gpr || dfpr || qfpr || reg == CPSR_REGISTER || reg == FPSCR_REGISTER)) {
  398. continue;
  399. }
  400. output += RegRead(thread, reg);
  401. }
  402. return output;
  403. }
  404. void GDBStubA32::WriteRegisters(Kernel::KThread* thread, std::string_view register_data) const {
  405. for (size_t i = 0, reg = 0; reg <= FPSCR_REGISTER; reg++) {
  406. const bool gpr{reg <= PC_REGISTER};
  407. const bool dfpr{reg >= D0_REGISTER && reg < Q0_REGISTER};
  408. const bool qfpr{reg >= Q0_REGISTER && reg < FPSCR_REGISTER};
  409. if (gpr || reg == CPSR_REGISTER || reg == FPSCR_REGISTER) {
  410. RegWrite(thread, reg, register_data.substr(i, 8));
  411. i += 8;
  412. } else if (dfpr) {
  413. RegWrite(thread, reg, register_data.substr(i, 16));
  414. i += 16;
  415. } else if (qfpr) {
  416. RegWrite(thread, reg, register_data.substr(i, 32));
  417. i += 32;
  418. }
  419. if (reg == PC_REGISTER) {
  420. reg = CPSR_REGISTER - 1;
  421. } else if (reg == CPSR_REGISTER) {
  422. reg = D0_REGISTER - 1;
  423. }
  424. }
  425. }
  426. std::string GDBStubA32::ThreadStatus(const Kernel::KThread* thread, u8 signal) const {
  427. return fmt::format("T{:02x}{:02x}:{};{:02x}:{};{:02x}:{};thread:{:x};", signal, PC_REGISTER,
  428. RegRead(thread, PC_REGISTER), SP_REGISTER, RegRead(thread, SP_REGISTER),
  429. LR_REGISTER, RegRead(thread, LR_REGISTER), thread->GetThreadId());
  430. }
  431. u32 GDBStubA32::BreakpointInstruction() const {
  432. // A32: trap
  433. // T32: trap + b #4
  434. return 0xe7ffdefe;
  435. }
  436. } // namespace Core