intrinsics.rs 9.0 KB

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  1. // By compiling this file we check that all the intrinsics we care about continue to be provided by
  2. // the `compiler_builtins` crate regardless of the changes we make to it. If we, by mistake, stop
  3. // compiling a C implementation and forget to implement that intrinsic in Rust, this file will fail
  4. // to link due to the missing intrinsic (symbol).
  5. #![allow(unused_features)]
  6. #![cfg_attr(thumb, no_main)]
  7. #![deny(dead_code)]
  8. #![feature(asm)]
  9. #![feature(compiler_builtins_lib)]
  10. #![feature(lang_items)]
  11. #![feature(start)]
  12. #![feature(allocator_api)]
  13. #![feature(panic_handler)]
  14. #![cfg_attr(windows, feature(panic_unwind))]
  15. #![no_std]
  16. extern crate panic_handler;
  17. #[cfg(not(thumb))]
  18. #[link(name = "c")]
  19. extern {}
  20. // NOTE cfg(not(thumbv6m)) means that the operation is not supported on ARMv6-M at all. Not even
  21. // compiler-rt provides a C/assembly implementation.
  22. // Every function in this module maps will be lowered to an intrinsic by LLVM, if the platform
  23. // doesn't have native support for the operation used in the function. ARM has a naming convention
  24. // convention for its intrinsics that's different from other architectures; that's why some function
  25. // have an additional comment: the function name is the ARM name for the intrinsic and the comment
  26. // in the non-ARM name for the intrinsic.
  27. mod intrinsics {
  28. // trunccdfsf2
  29. pub fn aeabi_d2f(x: f64) -> f32 {
  30. x as f32
  31. }
  32. // fixdfsi
  33. pub fn aeabi_d2i(x: f64) -> i32 {
  34. x as i32
  35. }
  36. // fixdfdi
  37. #[cfg(not(thumbv6m))]
  38. pub fn aeabi_d2l(x: f64) -> i64 {
  39. x as i64
  40. }
  41. #[cfg(thumbv6m)]
  42. pub fn aeabi_d2l(_: f64) -> i64 {
  43. 0
  44. }
  45. // fixunsdfsi
  46. pub fn aeabi_d2uiz(x: f64) -> u32 {
  47. x as u32
  48. }
  49. // fixunsdfdi
  50. #[cfg(not(thumbv6m))]
  51. pub fn aeabi_d2ulz(x: f64) -> u64 {
  52. x as u64
  53. }
  54. #[cfg(thumbv6m)]
  55. pub fn aeabi_d2ulz(_: f64) -> u64 {
  56. 0
  57. }
  58. // adddf3
  59. pub fn aeabi_dadd(a: f64, b: f64) -> f64 {
  60. a + b
  61. }
  62. // eqdf2
  63. #[cfg(not(thumbv6m))]
  64. pub fn aeabi_dcmpeq(a: f64, b: f64) -> bool {
  65. a == b
  66. }
  67. #[cfg(thumbv6m)]
  68. pub fn aeabi_dcmpeq(_: f64, _: f64) -> bool {
  69. true
  70. }
  71. // gtdf2
  72. #[cfg(not(thumbv6m))]
  73. pub fn aeabi_dcmpgt(a: f64, b: f64) -> bool {
  74. a > b
  75. }
  76. #[cfg(thumbv6m)]
  77. pub fn aeabi_dcmpgt(_: f64, _: f64) -> bool {
  78. true
  79. }
  80. // ltdf2
  81. #[cfg(not(thumbv6m))]
  82. pub fn aeabi_dcmplt(a: f64, b: f64) -> bool {
  83. a < b
  84. }
  85. #[cfg(thumbv6m)]
  86. pub fn aeabi_dcmplt(_: f64, _: f64) -> bool {
  87. true
  88. }
  89. // divdf3
  90. pub fn aeabi_ddiv(a: f64, b: f64) -> f64 {
  91. a / b
  92. }
  93. // muldf3
  94. pub fn aeabi_dmul(a: f64, b: f64) -> f64 {
  95. a * b
  96. }
  97. // subdf3
  98. pub fn aeabi_dsub(a: f64, b: f64) -> f64 {
  99. a - b
  100. }
  101. // extendsfdf2
  102. pub fn aeabi_f2d(x: f32) -> f64 {
  103. x as f64
  104. }
  105. // fixsfsi
  106. pub fn aeabi_f2iz(x: f32) -> i32 {
  107. x as i32
  108. }
  109. // fixsfdi
  110. #[cfg(not(thumbv6m))]
  111. pub fn aeabi_f2lz(x: f32) -> i64 {
  112. x as i64
  113. }
  114. #[cfg(thumbv6m)]
  115. pub fn aeabi_f2lz(_: f32) -> i64 {
  116. 0
  117. }
  118. // fixunssfsi
  119. pub fn aeabi_f2uiz(x: f32) -> u32 {
  120. x as u32
  121. }
  122. // fixunssfdi
  123. #[cfg(not(thumbv6m))]
  124. pub fn aeabi_f2ulz(x: f32) -> u64 {
  125. x as u64
  126. }
  127. #[cfg(thumbv6m)]
  128. pub fn aeabi_f2ulz(_: f32) -> u64 {
  129. 0
  130. }
  131. // addsf3
  132. pub fn aeabi_fadd(a: f32, b: f32) -> f32 {
  133. a + b
  134. }
  135. // eqsf2
  136. #[cfg(not(thumbv6m))]
  137. pub fn aeabi_fcmpeq(a: f32, b: f32) -> bool {
  138. a == b
  139. }
  140. #[cfg(thumbv6m)]
  141. pub fn aeabi_fcmpeq(_: f32, _: f32) -> bool {
  142. true
  143. }
  144. // gtsf2
  145. #[cfg(not(thumbv6m))]
  146. pub fn aeabi_fcmpgt(a: f32, b: f32) -> bool {
  147. a > b
  148. }
  149. #[cfg(thumbv6m)]
  150. pub fn aeabi_fcmpgt(_: f32, _: f32) -> bool {
  151. true
  152. }
  153. // ltsf2
  154. #[cfg(not(thumbv6m))]
  155. pub fn aeabi_fcmplt(a: f32, b: f32) -> bool {
  156. a < b
  157. }
  158. #[cfg(thumbv6m)]
  159. pub fn aeabi_fcmplt(_: f32, _: f32) -> bool {
  160. true
  161. }
  162. // divsf3
  163. pub fn aeabi_fdiv(a: f32, b: f32) -> f32 {
  164. a / b
  165. }
  166. // mulsf3
  167. pub fn aeabi_fmul(a: f32, b: f32) -> f32 {
  168. a * b
  169. }
  170. // subsf3
  171. pub fn aeabi_fsub(a: f32, b: f32) -> f32 {
  172. a - b
  173. }
  174. // floatsidf
  175. pub fn aeabi_i2d(x: i32) -> f64 {
  176. x as f64
  177. }
  178. // floatsisf
  179. pub fn aeabi_i2f(x: i32) -> f32 {
  180. x as f32
  181. }
  182. pub fn aeabi_idiv(a: i32, b: i32) -> i32 {
  183. a.wrapping_div(b)
  184. }
  185. pub fn aeabi_idivmod(a: i32, b: i32) -> i32 {
  186. a % b
  187. }
  188. // floatdidf
  189. pub fn aeabi_l2d(x: i64) -> f64 {
  190. x as f64
  191. }
  192. // floatdisf
  193. pub fn aeabi_l2f(x: i64) -> f32 {
  194. x as f32
  195. }
  196. // divdi3
  197. pub fn aeabi_ldivmod(a: i64, b: i64) -> i64 {
  198. a / b
  199. }
  200. // muldi3
  201. pub fn aeabi_lmul(a: i64, b: i64) -> i64 {
  202. a.wrapping_mul(b)
  203. }
  204. // floatunsidf
  205. pub fn aeabi_ui2d(x: u32) -> f64 {
  206. x as f64
  207. }
  208. // floatunsisf
  209. pub fn aeabi_ui2f(x: u32) -> f32 {
  210. x as f32
  211. }
  212. pub fn aeabi_uidiv(a: u32, b: u32) -> u32 {
  213. a / b
  214. }
  215. pub fn aeabi_uidivmod(a: u32, b: u32) -> u32 {
  216. a % b
  217. }
  218. // floatundidf
  219. pub fn aeabi_ul2d(x: u64) -> f64 {
  220. x as f64
  221. }
  222. // floatundisf
  223. pub fn aeabi_ul2f(x: u64) -> f32 {
  224. x as f32
  225. }
  226. // udivdi3
  227. pub fn aeabi_uldivmod(a: u64, b: u64) -> u64 {
  228. a * b
  229. }
  230. pub fn moddi3(a: i64, b: i64) -> i64 {
  231. a % b
  232. }
  233. pub fn mulodi4(a: i64, b: i64) -> i64 {
  234. a * b
  235. }
  236. pub fn umoddi3(a: u64, b: u64) -> u64 {
  237. a % b
  238. }
  239. pub fn muloti4(a: u128, b: u128) -> Option<u128> {
  240. a.checked_mul(b)
  241. }
  242. pub fn multi3(a: u128, b: u128) -> u128 {
  243. a.wrapping_mul(b)
  244. }
  245. pub fn ashlti3(a: u128, b: usize) -> u128 {
  246. a >> b
  247. }
  248. pub fn ashrti3(a: u128, b: usize) -> u128 {
  249. a << b
  250. }
  251. pub fn lshrti3(a: i128, b: usize) -> i128 {
  252. a >> b
  253. }
  254. pub fn udivti3(a: u128, b: u128) -> u128 {
  255. a / b
  256. }
  257. pub fn umodti3(a: u128, b: u128) -> u128 {
  258. a % b
  259. }
  260. pub fn divti3(a: i128, b: i128) -> i128 {
  261. a / b
  262. }
  263. pub fn modti3(a: i128, b: i128) -> i128 {
  264. a % b
  265. }
  266. }
  267. fn run() {
  268. use intrinsics::*;
  269. // A copy of "test::black_box". Used to prevent LLVM from optimizing away the intrinsics during LTO
  270. fn bb<T>(dummy: T) -> T {
  271. unsafe { asm!("" : : "r"(&dummy)) }
  272. dummy
  273. }
  274. bb(aeabi_d2f(bb(2.)));
  275. bb(aeabi_d2i(bb(2.)));
  276. bb(aeabi_d2l(bb(2.)));
  277. bb(aeabi_d2uiz(bb(2.)));
  278. bb(aeabi_d2ulz(bb(2.)));
  279. bb(aeabi_dadd(bb(2.), bb(3.)));
  280. bb(aeabi_dcmpeq(bb(2.), bb(3.)));
  281. bb(aeabi_dcmpgt(bb(2.), bb(3.)));
  282. bb(aeabi_dcmplt(bb(2.), bb(3.)));
  283. bb(aeabi_ddiv(bb(2.), bb(3.)));
  284. bb(aeabi_dmul(bb(2.), bb(3.)));
  285. bb(aeabi_dsub(bb(2.), bb(3.)));
  286. bb(aeabi_f2d(bb(2.)));
  287. bb(aeabi_f2iz(bb(2.)));
  288. bb(aeabi_f2lz(bb(2.)));
  289. bb(aeabi_f2uiz(bb(2.)));
  290. bb(aeabi_f2ulz(bb(2.)));
  291. bb(aeabi_fadd(bb(2.), bb(3.)));
  292. bb(aeabi_fcmpeq(bb(2.), bb(3.)));
  293. bb(aeabi_fcmpgt(bb(2.), bb(3.)));
  294. bb(aeabi_fcmplt(bb(2.), bb(3.)));
  295. bb(aeabi_fdiv(bb(2.), bb(3.)));
  296. bb(aeabi_fmul(bb(2.), bb(3.)));
  297. bb(aeabi_fsub(bb(2.), bb(3.)));
  298. bb(aeabi_i2d(bb(2)));
  299. bb(aeabi_i2f(bb(2)));
  300. bb(aeabi_idiv(bb(2), bb(3)));
  301. bb(aeabi_idivmod(bb(2), bb(3)));
  302. bb(aeabi_l2d(bb(2)));
  303. bb(aeabi_l2f(bb(2)));
  304. bb(aeabi_ldivmod(bb(2), bb(3)));
  305. bb(aeabi_lmul(bb(2), bb(3)));
  306. bb(aeabi_ui2d(bb(2)));
  307. bb(aeabi_ui2f(bb(2)));
  308. bb(aeabi_uidiv(bb(2), bb(3)));
  309. bb(aeabi_uidivmod(bb(2), bb(3)));
  310. bb(aeabi_ul2d(bb(2)));
  311. bb(aeabi_ul2f(bb(2)));
  312. bb(aeabi_uldivmod(bb(2), bb(3)));
  313. bb(moddi3(bb(2), bb(3)));
  314. bb(mulodi4(bb(2), bb(3)));
  315. bb(umoddi3(bb(2), bb(3)));
  316. bb(muloti4(bb(2), bb(2)));
  317. bb(multi3(bb(2), bb(2)));
  318. bb(ashlti3(bb(2), bb(2)));
  319. bb(ashrti3(bb(2), bb(2)));
  320. bb(lshrti3(bb(2), bb(2)));
  321. bb(udivti3(bb(2), bb(2)));
  322. bb(umodti3(bb(2), bb(2)));
  323. bb(divti3(bb(2), bb(2)));
  324. bb(modti3(bb(2), bb(2)));
  325. something_with_a_dtor(&|| assert_eq!(bb(1), 1));
  326. extern {
  327. fn rust_begin_unwind();
  328. }
  329. // if bb(false) {
  330. unsafe { rust_begin_unwind(); }
  331. // }
  332. }
  333. fn something_with_a_dtor(f: &Fn()) {
  334. struct A<'a>(&'a (Fn() + 'a));
  335. impl<'a> Drop for A<'a> {
  336. fn drop(&mut self) {
  337. (self.0)();
  338. }
  339. }
  340. let _a = A(f);
  341. f();
  342. }
  343. #[cfg(not(thumb))]
  344. #[start]
  345. fn main(_: isize, _: *const *const u8) -> isize {
  346. run();
  347. 0
  348. }
  349. #[cfg(thumb)]
  350. #[no_mangle]
  351. pub fn _start() -> ! {
  352. run();
  353. loop {}
  354. }
  355. #[cfg(windows)]
  356. #[link(name = "kernel32")]
  357. #[link(name = "msvcrt")]
  358. extern {}
  359. // ARM targets need these symbols
  360. #[no_mangle]
  361. pub fn __aeabi_unwind_cpp_pr0() {}
  362. #[no_mangle]
  363. pub fn __aeabi_unwind_cpp_pr1() {}
  364. #[cfg(not(windows))]
  365. #[allow(non_snake_case)]
  366. #[no_mangle]
  367. pub fn _Unwind_Resume() {}
  368. #[cfg(not(windows))]
  369. #[lang = "eh_personality"]
  370. #[no_mangle]
  371. pub extern "C" fn eh_personality() {}