1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 155 156 157 158 159 160 161 162 163 164 165 166 167 168 169 170 171 172 173 174 175 176 177 178 179 180 181 182 183 184 185 186 187 188 189 190 191 192 193 194 195 196 197 198 199 200 201 202 203 204 205 206 207 208 209 210 211 212 213 214 215 216 217 218 219 220 221 222 223 224 225 226 227 228 229 230 231 232 233 234 235 236 237 238 239 240 241 242 243 244 245 246 247 248 249 250 251 252 253 254 255 256 257 258 259 260 261 262 263 264 265 266 267 268 269 270 271 272 273 274 275 276 277 278 279 280 281 282 283 284 285 286 287 288 289 290 291 292 293 294 295 296 297 298 299 300 301 302 303 304 305 306 307 308 309 310 311 312 313 314 315 316 317 318 319 320 321 322 323 324 325 326 327 328 329 330 331 332 333 334 335 336 337 338 339 340 341 342 343 344 345 346 347 348 349 350 351 352 353 354 355 356 357 358 359 360 361 362 363 364 365 366 367 368 369 370 371 372 373 374 375 376 377 378 379 380 381 382 383 384 385 386 387 388 389 390 391 392 393 394 395 396 397 398 399 400 401 402 403 404 405 406 407 408 409 410 411 412 413 414 415 416 417 418 419 420 421 422 423 424 425 426 427 428 429 430 431 432 433 434 435 436 437 438 439 440 441 442 443 444 445 446 447 448 449 450 451 452 453 454 455 456 457 458 459 460 461 462 463 464 465 466 467 468 469 470 471 472 473 474 475 476 477 478 479 480 481 482 483 484 485 486 487 488 489 490 491 492 493 494 495 496 497 498 499 500 501 502 503 504 505 506 507 508 509 510 511 512 513 514 515 516 517 518 519 520 521 522 523 524 525 526 527 528 529 530 531 532 533 534 535 536 537 538 539 540 541 542 543 544 545 546 547 548 549 550 551 552 553 554 555 556 557 558 559 560 561 562 563 564 565 566 567 568 569 570 571 572 573 574 575 576 577 578 579 580 581 582 583 584 585 586 587 588 589 590 591 592 593 594 595 596 597 598 599 600 601 602 603 604 605 606 607 608 609 610 611 612 613 614 615 616 617 618 619 620 621 622 623 624 625 626 627 628 629 630 631 632 633 634 635 636 637 638 639 640 641 642 643 644 645 646 647 648 649 650 651 652 653 654 655 656 657 658 659 660 661 662 663 664 665 666 667 668 669 670 671 672 673 674 675 676 677 678 679 680 681 682 683 684 685 686 687 688 689 690 691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711 712 713 714 715 716 717 718 719 720 721 722 723 724 725 726 727 728 729 730 731 732 733 734 735 736 737 738 739 740 741 742 743 744 745 746 747 748 749 750 751 752 753 754 755 756 757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799 800 801 802 803 804 805 806 807 808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281 1282 1283 1284 1285 1286 1287 1288 1289 1290 1291 1292 1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309 1310 1311 1312 1313 1314 1315 1316 1317 1318 1319 1320 1321 1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336 1337 1338 1339 1340 1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357 1358 1359 1360 1361 1362 1363 1364 1365 1366 1367 1368 1369 1370 1371 1372 1373 1374 1375 1376 1377 1378 1379 1380 1381 1382 1383 1384 1385 1386 1387 1388 1389 1390 1391 1392 1393 1394 1395 1396 1397 1398 1399 1400 1401 1402 1403 1404 1405 1406 1407 1408 1409 1410 1411 1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427 1428 1429 1430 1431 1432 1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474 1475 1476 1477 1478 1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501 1502 1503 1504 1505 1506 1507 1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528 1529 1530 1531 1532 1533 1534 1535 1536 1537 1538 1539 1540 1541 1542 1543 1544 1545 1546 1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564 1565 1566 1567 1568 1569 1570 1571 1572 1573 1574 1575 1576 1577 1578 1579 1580 1581 1582 1583 1584 1585 1586 1587 1588 1589 1590 1591 1592 1593 1594 1595 1596 1597 1598 1599 1600 1601 1602 1603 1604 1605 1606 1607 1608 1609 1610 1611 1612 1613 1614 1615 1616 1617 1618 1619 1620 1621 1622 1623 1624 1625 1626 1627 1628 1629 1630 1631 1632 1633 1634 1635 1636 1637 1638 1639 1640 1641 1642 1643 1644 1645 1646 1647 1648 1649 1650 1651 1652 1653 1654 1655 1656 1657 1658 1659 1660 1661 1662 1663 1664 1665 1666 1667 1668 1669 1670 1671 1672 1673 1674 1675 1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687 1688 1689 1690 1691 1692 1693 1694 1695 1696 1697 1698 1699 1700 1701 1702 1703 1704 1705 1706 1707 1708 1709 1710 1711 1712 1713 1714 1715 1716 1717 1718 1719 1720 1721 1722 1723 1724 1725 1726 1727 1728 1729 1730 1731 1732 1733 1734 1735 1736 1737 1738 1739 1740 1741 1742 1743 1744 1745 1746 1747 1748 1749 1750 1751 1752 1753 1754 1755 1756 1757 1758 1759 1760 1761 1762 1763 1764 1765 1766 1767 1768 1769 1770 1771 1772 1773 1774 1775 1776 1777 1778 1779 1780 1781 1782 1783 1784 1785 1786 1787 1788 1789 1790 1791 1792 1793 1794 1795 1796 1797 1798 1799 1800 1801 1802 1803 1804 1805 1806 1807 1808 1809 1810 1811 1812 1813 1814 1815 1816 1817 1818 1819 1820 1821 1822 1823 1824 1825 1826 1827 1828 1829 1830 1831 1832 1833 1834 1835 1836 1837 1838 1839 1840 1841 1842 1843 1844 1845 1846 1847 1848 1849 1850 1851 1852 1853 1854 1855 1856 1857 1858 1859 1860 1861 1862 1863 1864 1865 1866 1867 1868 1869 1870 1871 1872 1873 1874 1875 1876 1877 1878 1879 1880 1881 1882 1883 1884 1885 1886 1887 1888 1889 1890 1891 1892 1893 1894 1895 1896 1897 1898 1899 1900 1901 1902 1903 1904 1905 1906 1907 1908 1909 1910 1911 1912 1913 1914 1915 1916 1917 1918 1919 1920 1921 1922 1923 1924 1925 1926 1927 1928 1929 1930 1931 1932 1933 1934 1935 1936 1937 1938 1939 1940 1941 1942 1943 1944 1945 1946 1947 1948 1949 1950 1951 1952 1953 1954 1955 1956 1957 1958 1959 1960 1961 1962 1963 1964 1965 1966 1967 1968 1969 1970 1971 1972 1973 1974 1975 1976 1977 1978 1979 1980 1981 1982 1983 1984 1985 1986 1987 1988 1989 1990 1991 1992 1993 1994 1995 1996 1997 1998 1999 2000 2001 2002 2003 2004 2005 2006 2007 2008 2009 2010 2011 2012 2013 2014 2015 2016 2017 2018 2019 2020 2021 2022 2023 2024 2025 2026 2027 2028 2029 2030 2031 2032 2033 2034 2035 2036 2037 2038 2039 2040 2041 2042 2043 2044 2045 2046 2047 2048 2049 2050 2051 2052 2053 2054 2055 2056 2057 2058 2059 2060 2061 2062 2063 2064 2065 2066 2067 2068 2069 2070 2071 2072 2073 2074 2075 2076 2077 2078 2079 2080 2081 2082 2083 2084 2085 2086 2087 2088 2089 2090 2091 2092 2093 2094 2095 2096 2097 2098 2099 2100 2101 2102 2103 2104 2105 2106 2107 2108 2109 2110 2111 2112 2113 2114 2115 2116 2117 2118 2119 2120 2121 2122 2123 2124 2125 2126 2127 2128 2129 2130 2131 2132 2133 2134 2135 2136 2137 2138 2139 2140 2141 2142 2143 2144 2145 2146 2147 2148 2149 2150 2151 2152 2153 2154 2155 2156 2157 2158 2159 2160 2161 2162 2163 2164 2165 2166 2167 2168 2169 2170 2171 2172 2173 2174 2175 2176 2177 2178 2179 2180 2181 2182 2183 2184 2185 2186 2187 2188 2189 2190 2191 2192 2193 2194 2195 2196 2197 2198 2199 2200 2201 2202 2203 2204 2205 2206 2207 2208 2209 2210 2211 2212 2213 2214 2215 2216 2217 2218 2219 2220 2221 2222 2223 2224 2225 2226 2227 2228 2229 2230 2231 2232 2233 2234 2235 2236 2237 2238 2239 2240 2241 2242 2243 2244 2245 2246 2247 2248 2249 2250 2251 2252 2253 2254 2255 2256 2257 2258 2259 2260 2261 2262 2263 2264 2265 2266 2267 2268 2269 2270 2271 2272 2273 2274 2275 2276 2277 2278 2279 2280 2281 2282 2283 2284 2285 2286 2287 2288 2289 2290 2291 2292 2293 2294 2295 2296 2297 2298 2299 2300 2301 2302 2303 2304 2305 2306 2307 2308 2309 2310 2311 2312
//! This module contains `TyKind` and its major components. #![allow(rustc::usage_of_ty_tykind)] use self::InferTy::*; use self::TyKind::*; use crate::infer::canonical::Canonical; use crate::ty::subst::{GenericArg, InternalSubsts, Subst, SubstsRef}; use crate::ty::{ self, AdtDef, DefIdTree, Discr, Ty, TyCtxt, TypeFlags, TypeFoldable, WithConstness, }; use crate::ty::{DelaySpanBugEmitted, List, ParamEnv, TyS}; use polonius_engine::Atom; use rustc_ast as ast; use rustc_data_structures::captures::Captures; use rustc_hir as hir; use rustc_hir::def_id::DefId; use rustc_index::vec::Idx; use rustc_macros::HashStable; use rustc_span::symbol::{kw, Ident, Symbol}; use rustc_target::abi::VariantIdx; use rustc_target::spec::abi; use std::borrow::Cow; use std::cmp::Ordering; use std::marker::PhantomData; use std::ops::Range; use ty::util::IntTypeExt; #[derive(Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Debug, TyEncodable, TyDecodable)] #[derive(HashStable, TypeFoldable, Lift)] pub struct TypeAndMut<'tcx> { pub ty: Ty<'tcx>, pub mutbl: hir::Mutability, } #[derive(Clone, PartialEq, PartialOrd, Eq, Ord, Hash, TyEncodable, TyDecodable, Copy)] #[derive(HashStable)] /// A "free" region `fr` can be interpreted as "some region /// at least as big as the scope `fr.scope`". pub struct FreeRegion { pub scope: DefId, pub bound_region: BoundRegion, } #[derive(Clone, PartialEq, PartialOrd, Eq, Ord, Hash, TyEncodable, TyDecodable, Copy)] #[derive(HashStable)] pub enum BoundRegion { /// An anonymous region parameter for a given fn (&T) BrAnon(u32), /// Named region parameters for functions (a in &'a T) /// /// The `DefId` is needed to distinguish free regions in /// the event of shadowing. BrNamed(DefId, Symbol), /// Anonymous region for the implicit env pointer parameter /// to a closure BrEnv, } impl BoundRegion { pub fn is_named(&self) -> bool { match *self { BoundRegion::BrNamed(_, name) => name != kw::UnderscoreLifetime, _ => false, } } /// When canonicalizing, we replace unbound inference variables and free /// regions with anonymous late bound regions. This method asserts that /// we have an anonymous late bound region, which hence may refer to /// a canonical variable. pub fn assert_bound_var(&self) -> BoundVar { match *self { BoundRegion::BrAnon(var) => BoundVar::from_u32(var), _ => bug!("bound region is not anonymous"), } } } /// N.B., if you change this, you'll probably want to change the corresponding /// AST structure in `librustc_ast/ast.rs` as well. #[derive(Clone, PartialEq, Eq, PartialOrd, Ord, Hash, TyEncodable, TyDecodable, Debug)] #[derive(HashStable)] #[rustc_diagnostic_item = "TyKind"] pub enum TyKind<'tcx> { /// The primitive boolean type. Written as `bool`. Bool, /// The primitive character type; holds a Unicode scalar value /// (a non-surrogate code point). Written as `char`. Char, /// A primitive signed integer type. For example, `i32`. Int(ast::IntTy), /// A primitive unsigned integer type. For example, `u32`. Uint(ast::UintTy), /// A primitive floating-point type. For example, `f64`. Float(ast::FloatTy), /// Structures, enumerations and unions. /// /// InternalSubsts here, possibly against intuition, *may* contain `Param`s. /// That is, even after substitution it is possible that there are type /// variables. This happens when the `Adt` corresponds to an ADT /// definition and not a concrete use of it. Adt(&'tcx AdtDef, SubstsRef<'tcx>), /// An unsized FFI type that is opaque to Rust. Written as `extern type T`. Foreign(DefId), /// The pointee of a string slice. Written as `str`. Str, /// An array with the given length. Written as `[T; n]`. Array(Ty<'tcx>, &'tcx ty::Const<'tcx>), /// The pointee of an array slice. Written as `[T]`. Slice(Ty<'tcx>), /// A raw pointer. Written as `*mut T` or `*const T` RawPtr(TypeAndMut<'tcx>), /// A reference; a pointer with an associated lifetime. Written as /// `&'a mut T` or `&'a T`. Ref(Region<'tcx>, Ty<'tcx>, hir::Mutability), /// The anonymous type of a function declaration/definition. Each /// function has a unique type, which is output (for a function /// named `foo` returning an `i32`) as `fn() -> i32 {foo}`. /// /// For example the type of `bar` here: /// /// ```rust /// fn foo() -> i32 { 1 } /// let bar = foo; // bar: fn() -> i32 {foo} /// ``` FnDef(DefId, SubstsRef<'tcx>), /// A pointer to a function. Written as `fn() -> i32`. /// /// For example the type of `bar` here: /// /// ```rust /// fn foo() -> i32 { 1 } /// let bar: fn() -> i32 = foo; /// ``` FnPtr(PolyFnSig<'tcx>), /// A trait, defined with `trait`. Dynamic(Binder<&'tcx List<ExistentialPredicate<'tcx>>>, ty::Region<'tcx>), /// The anonymous type of a closure. Used to represent the type of /// `|a| a`. Closure(DefId, SubstsRef<'tcx>), /// The anonymous type of a generator. Used to represent the type of /// `|a| yield a`. Generator(DefId, SubstsRef<'tcx>, hir::Movability), /// A type representin the types stored inside a generator. /// This should only appear in GeneratorInteriors. GeneratorWitness(Binder<&'tcx List<Ty<'tcx>>>), /// The never type `!` Never, /// A tuple type. For example, `(i32, bool)`. /// Use `TyS::tuple_fields` to iterate over the field types. Tuple(SubstsRef<'tcx>), /// The projection of an associated type. For example, /// `<T as Trait<..>>::N`. Projection(ProjectionTy<'tcx>), /// Opaque (`impl Trait`) type found in a return type. /// The `DefId` comes either from /// * the `impl Trait` ast::Ty node, /// * or the `type Foo = impl Trait` declaration /// The substitutions are for the generics of the function in question. /// After typeck, the concrete type can be found in the `types` map. Opaque(DefId, SubstsRef<'tcx>), /// A type parameter; for example, `T` in `fn f<T>(x: T) {}`. Param(ParamTy), /// Bound type variable, used only when preparing a trait query. Bound(ty::DebruijnIndex, BoundTy), /// A placeholder type - universally quantified higher-ranked type. Placeholder(ty::PlaceholderType), /// A type variable used during type checking. Infer(InferTy), /// A placeholder for a type which could not be computed; this is /// propagated to avoid useless error messages. Error(DelaySpanBugEmitted), } impl TyKind<'tcx> { #[inline] pub fn is_primitive(&self) -> bool { match self { Bool | Char | Int(_) | Uint(_) | Float(_) => true, _ => false, } } /// Get the article ("a" or "an") to use with this type. pub fn article(&self) -> &'static str { match self { Int(_) | Float(_) | Array(_, _) => "an", Adt(def, _) if def.is_enum() => "an", // This should never happen, but ICEing and causing the user's code // to not compile felt too harsh. Error(_) => "a", _ => "a", } } } // `TyKind` is used a lot. Make sure it doesn't unintentionally get bigger. #[cfg(target_arch = "x86_64")] static_assert_size!(TyKind<'_>, 24); /// A closure can be modeled as a struct that looks like: /// /// struct Closure<'l0...'li, T0...Tj, CK, CS, U>(...U); /// /// where: /// /// - 'l0...'li and T0...Tj are the generic parameters /// in scope on the function that defined the closure, /// - CK represents the *closure kind* (Fn vs FnMut vs FnOnce). This /// is rather hackily encoded via a scalar type. See /// `TyS::to_opt_closure_kind` for details. /// - CS represents the *closure signature*, representing as a `fn()` /// type. For example, `fn(u32, u32) -> u32` would mean that the closure /// implements `CK<(u32, u32), Output = u32>`, where `CK` is the trait /// specified above. /// - U is a type parameter representing the types of its upvars, tupled up /// (borrowed, if appropriate; that is, if an U field represents a by-ref upvar, /// and the up-var has the type `Foo`, then that field of U will be `&Foo`). /// /// So, for example, given this function: /// /// fn foo<'a, T>(data: &'a mut T) { /// do(|| data.count += 1) /// } /// /// the type of the closure would be something like: /// /// struct Closure<'a, T, U>(...U); /// /// Note that the type of the upvar is not specified in the struct. /// You may wonder how the impl would then be able to use the upvar, /// if it doesn't know it's type? The answer is that the impl is /// (conceptually) not fully generic over Closure but rather tied to /// instances with the expected upvar types: /// /// impl<'b, 'a, T> FnMut() for Closure<'a, T, (&'b mut &'a mut T,)> { /// ... /// } /// /// You can see that the *impl* fully specified the type of the upvar /// and thus knows full well that `data` has type `&'b mut &'a mut T`. /// (Here, I am assuming that `data` is mut-borrowed.) /// /// Now, the last question you may ask is: Why include the upvar types /// in an extra type parameter? The reason for this design is that the /// upvar types can reference lifetimes that are internal to the /// creating function. In my example above, for example, the lifetime /// `'b` represents the scope of the closure itself; this is some /// subset of `foo`, probably just the scope of the call to the to /// `do()`. If we just had the lifetime/type parameters from the /// enclosing function, we couldn't name this lifetime `'b`. Note that /// there can also be lifetimes in the types of the upvars themselves, /// if one of them happens to be a reference to something that the /// creating fn owns. /// /// OK, you say, so why not create a more minimal set of parameters /// that just includes the extra lifetime parameters? The answer is /// primarily that it would be hard --- we don't know at the time when /// we create the closure type what the full types of the upvars are, /// nor do we know which are borrowed and which are not. In this /// design, we can just supply a fresh type parameter and figure that /// out later. /// /// All right, you say, but why include the type parameters from the /// original function then? The answer is that codegen may need them /// when monomorphizing, and they may not appear in the upvars. A /// closure could capture no variables but still make use of some /// in-scope type parameter with a bound (e.g., if our example above /// had an extra `U: Default`, and the closure called `U::default()`). /// /// There is another reason. This design (implicitly) prohibits /// closures from capturing themselves (except via a trait /// object). This simplifies closure inference considerably, since it /// means that when we infer the kind of a closure or its upvars, we /// don't have to handle cycles where the decisions we make for /// closure C wind up influencing the decisions we ought to make for /// closure C (which would then require fixed point iteration to /// handle). Plus it fixes an ICE. :P /// /// ## Generators /// /// Generators are handled similarly in `GeneratorSubsts`. The set of /// type parameters is similar, but `CK` and `CS` are replaced by the /// following type parameters: /// /// * `GS`: The generator's "resume type", which is the type of the /// argument passed to `resume`, and the type of `yield` expressions /// inside the generator. /// * `GY`: The "yield type", which is the type of values passed to /// `yield` inside the generator. /// * `GR`: The "return type", which is the type of value returned upon /// completion of the generator. /// * `GW`: The "generator witness". #[derive(Copy, Clone, Debug, TypeFoldable)] pub struct ClosureSubsts<'tcx> { /// Lifetime and type parameters from the enclosing function, /// concatenated with a tuple containing the types of the upvars. /// /// These are separated out because codegen wants to pass them around /// when monomorphizing. pub substs: SubstsRef<'tcx>, } /// Struct returned by `split()`. pub struct ClosureSubstsParts<'tcx, T> { pub parent_substs: &'tcx [GenericArg<'tcx>], pub closure_kind_ty: T, pub closure_sig_as_fn_ptr_ty: T, pub tupled_upvars_ty: T, } impl<'tcx> ClosureSubsts<'tcx> { /// Construct `ClosureSubsts` from `ClosureSubstsParts`, containing `Substs` /// for the closure parent, alongside additional closure-specific components. pub fn new( tcx: TyCtxt<'tcx>, parts: ClosureSubstsParts<'tcx, Ty<'tcx>>, ) -> ClosureSubsts<'tcx> { ClosureSubsts { substs: tcx.mk_substs( parts.parent_substs.iter().copied().chain( [parts.closure_kind_ty, parts.closure_sig_as_fn_ptr_ty, parts.tupled_upvars_ty] .iter() .map(|&ty| ty.into()), ), ), } } /// Divides the closure substs into their respective components. /// The ordering assumed here must match that used by `ClosureSubsts::new` above. fn split(self) -> ClosureSubstsParts<'tcx, GenericArg<'tcx>> { match self.substs[..] { [ref parent_substs @ .., closure_kind_ty, closure_sig_as_fn_ptr_ty, tupled_upvars_ty] => { ClosureSubstsParts { parent_substs, closure_kind_ty, closure_sig_as_fn_ptr_ty, tupled_upvars_ty, } } _ => bug!("closure substs missing synthetics"), } } /// Returns `true` only if enough of the synthetic types are known to /// allow using all of the methods on `ClosureSubsts` without panicking. /// /// Used primarily by `ty::print::pretty` to be able to handle closure /// types that haven't had their synthetic types substituted in. pub fn is_valid(self) -> bool { self.substs.len() >= 3 && matches!(self.split().tupled_upvars_ty.expect_ty().kind(), Tuple(_)) } /// Returns the substitutions of the closure's parent. pub fn parent_substs(self) -> &'tcx [GenericArg<'tcx>] { self.split().parent_substs } /// Returns an iterator over the list of types of captured paths by the closure. /// In case there was a type error in figuring out the types of the captured path, an /// empty iterator is returned. #[inline] pub fn upvar_tys(self) -> impl Iterator<Item = Ty<'tcx>> + 'tcx { match self.tupled_upvars_ty().kind() { TyKind::Error(_) => None, TyKind::Tuple(..) => Some(self.tupled_upvars_ty().tuple_fields()), TyKind::Infer(_) => bug!("upvar_tys called before capture types are inferred"), ty => bug!("Unexpected representation of upvar types tuple {:?}", ty), } .into_iter() .flatten() } /// Returns the tuple type representing the upvars for this closure. #[inline] pub fn tupled_upvars_ty(self) -> Ty<'tcx> { self.split().tupled_upvars_ty.expect_ty() } /// Returns the closure kind for this closure; may return a type /// variable during inference. To get the closure kind during /// inference, use `infcx.closure_kind(substs)`. pub fn kind_ty(self) -> Ty<'tcx> { self.split().closure_kind_ty.expect_ty() } /// Returns the `fn` pointer type representing the closure signature for this /// closure. // FIXME(eddyb) this should be unnecessary, as the shallowly resolved // type is known at the time of the creation of `ClosureSubsts`, // see `rustc_typeck::check::closure`. pub fn sig_as_fn_ptr_ty(self) -> Ty<'tcx> { self.split().closure_sig_as_fn_ptr_ty.expect_ty() } /// Returns the closure kind for this closure; only usable outside /// of an inference context, because in that context we know that /// there are no type variables. /// /// If you have an inference context, use `infcx.closure_kind()`. pub fn kind(self) -> ty::ClosureKind { self.kind_ty().to_opt_closure_kind().unwrap() } /// Extracts the signature from the closure. pub fn sig(self) -> ty::PolyFnSig<'tcx> { let ty = self.sig_as_fn_ptr_ty(); match ty.kind() { ty::FnPtr(sig) => *sig, _ => bug!("closure_sig_as_fn_ptr_ty is not a fn-ptr: {:?}", ty.kind()), } } } /// Similar to `ClosureSubsts`; see the above documentation for more. #[derive(Copy, Clone, Debug, TypeFoldable)] pub struct GeneratorSubsts<'tcx> { pub substs: SubstsRef<'tcx>, } pub struct GeneratorSubstsParts<'tcx, T> { pub parent_substs: &'tcx [GenericArg<'tcx>], pub resume_ty: T, pub yield_ty: T, pub return_ty: T, pub witness: T, pub tupled_upvars_ty: T, } impl<'tcx> GeneratorSubsts<'tcx> { /// Construct `GeneratorSubsts` from `GeneratorSubstsParts`, containing `Substs` /// for the generator parent, alongside additional generator-specific components. pub fn new( tcx: TyCtxt<'tcx>, parts: GeneratorSubstsParts<'tcx, Ty<'tcx>>, ) -> GeneratorSubsts<'tcx> { GeneratorSubsts { substs: tcx.mk_substs( parts.parent_substs.iter().copied().chain( [ parts.resume_ty, parts.yield_ty, parts.return_ty, parts.witness, parts.tupled_upvars_ty, ] .iter() .map(|&ty| ty.into()), ), ), } } /// Divides the generator substs into their respective components. /// The ordering assumed here must match that used by `GeneratorSubsts::new` above. fn split(self) -> GeneratorSubstsParts<'tcx, GenericArg<'tcx>> { match self.substs[..] { [ref parent_substs @ .., resume_ty, yield_ty, return_ty, witness, tupled_upvars_ty] => { GeneratorSubstsParts { parent_substs, resume_ty, yield_ty, return_ty, witness, tupled_upvars_ty, } } _ => bug!("generator substs missing synthetics"), } } /// Returns `true` only if enough of the synthetic types are known to /// allow using all of the methods on `GeneratorSubsts` without panicking. /// /// Used primarily by `ty::print::pretty` to be able to handle generator /// types that haven't had their synthetic types substituted in. pub fn is_valid(self) -> bool { self.substs.len() >= 5 && matches!(self.split().tupled_upvars_ty.expect_ty().kind(), Tuple(_)) } /// Returns the substitutions of the generator's parent. pub fn parent_substs(self) -> &'tcx [GenericArg<'tcx>] { self.split().parent_substs } /// This describes the types that can be contained in a generator. /// It will be a type variable initially and unified in the last stages of typeck of a body. /// It contains a tuple of all the types that could end up on a generator frame. /// The state transformation MIR pass may only produce layouts which mention types /// in this tuple. Upvars are not counted here. pub fn witness(self) -> Ty<'tcx> { self.split().witness.expect_ty() } /// Returns an iterator over the list of types of captured paths by the generator. /// In case there was a type error in figuring out the types of the captured path, an /// empty iterator is returned. #[inline] pub fn upvar_tys(self) -> impl Iterator<Item = Ty<'tcx>> + 'tcx { match self.tupled_upvars_ty().kind() { TyKind::Error(_) => None, TyKind::Tuple(..) => Some(self.tupled_upvars_ty().tuple_fields()), TyKind::Infer(_) => bug!("upvar_tys called before capture types are inferred"), ty => bug!("Unexpected representation of upvar types tuple {:?}", ty), } .into_iter() .flatten() } /// Returns the tuple type representing the upvars for this generator. #[inline] pub fn tupled_upvars_ty(self) -> Ty<'tcx> { self.split().tupled_upvars_ty.expect_ty() } /// Returns the type representing the resume type of the generator. pub fn resume_ty(self) -> Ty<'tcx> { self.split().resume_ty.expect_ty() } /// Returns the type representing the yield type of the generator. pub fn yield_ty(self) -> Ty<'tcx> { self.split().yield_ty.expect_ty() } /// Returns the type representing the return type of the generator. pub fn return_ty(self) -> Ty<'tcx> { self.split().return_ty.expect_ty() } /// Returns the "generator signature", which consists of its yield /// and return types. /// /// N.B., some bits of the code prefers to see this wrapped in a /// binder, but it never contains bound regions. Probably this /// function should be removed. pub fn poly_sig(self) -> PolyGenSig<'tcx> { ty::Binder::dummy(self.sig()) } /// Returns the "generator signature", which consists of its resume, yield /// and return types. pub fn sig(self) -> GenSig<'tcx> { ty::GenSig { resume_ty: self.resume_ty(), yield_ty: self.yield_ty(), return_ty: self.return_ty(), } } } impl<'tcx> GeneratorSubsts<'tcx> { /// Generator has not been resumed yet. pub const UNRESUMED: usize = 0; /// Generator has returned or is completed. pub const RETURNED: usize = 1; /// Generator has been poisoned. pub const POISONED: usize = 2; const UNRESUMED_NAME: &'static str = "Unresumed"; const RETURNED_NAME: &'static str = "Returned"; const POISONED_NAME: &'static str = "Panicked"; /// The valid variant indices of this generator. #[inline] pub fn variant_range(&self, def_id: DefId, tcx: TyCtxt<'tcx>) -> Range<VariantIdx> { // FIXME requires optimized MIR let num_variants = tcx.generator_layout(def_id).variant_fields.len(); VariantIdx::new(0)..VariantIdx::new(num_variants) } /// The discriminant for the given variant. Panics if the `variant_index` is /// out of range. #[inline] pub fn discriminant_for_variant( &self, def_id: DefId, tcx: TyCtxt<'tcx>, variant_index: VariantIdx, ) -> Discr<'tcx> { // Generators don't support explicit discriminant values, so they are // the same as the variant index. assert!(self.variant_range(def_id, tcx).contains(&variant_index)); Discr { val: variant_index.as_usize() as u128, ty: self.discr_ty(tcx) } } /// The set of all discriminants for the generator, enumerated with their /// variant indices. #[inline] pub fn discriminants( self, def_id: DefId, tcx: TyCtxt<'tcx>, ) -> impl Iterator<Item = (VariantIdx, Discr<'tcx>)> + Captures<'tcx> { self.variant_range(def_id, tcx).map(move |index| { (index, Discr { val: index.as_usize() as u128, ty: self.discr_ty(tcx) }) }) } /// Calls `f` with a reference to the name of the enumerator for the given /// variant `v`. pub fn variant_name(v: VariantIdx) -> Cow<'static, str> { match v.as_usize() { Self::UNRESUMED => Cow::from(Self::UNRESUMED_NAME), Self::RETURNED => Cow::from(Self::RETURNED_NAME), Self::POISONED => Cow::from(Self::POISONED_NAME), _ => Cow::from(format!("Suspend{}", v.as_usize() - 3)), } } /// The type of the state discriminant used in the generator type. #[inline] pub fn discr_ty(&self, tcx: TyCtxt<'tcx>) -> Ty<'tcx> { tcx.types.u32 } /// This returns the types of the MIR locals which had to be stored across suspension points. /// It is calculated in rustc_mir::transform::generator::StateTransform. /// All the types here must be in the tuple in GeneratorInterior. /// /// The locals are grouped by their variant number. Note that some locals may /// be repeated in multiple variants. #[inline] pub fn state_tys( self, def_id: DefId, tcx: TyCtxt<'tcx>, ) -> impl Iterator<Item = impl Iterator<Item = Ty<'tcx>> + Captures<'tcx>> { let layout = tcx.generator_layout(def_id); layout.variant_fields.iter().map(move |variant| { variant.iter().map(move |field| layout.field_tys[*field].subst(tcx, self.substs)) }) } /// This is the types of the fields of a generator which are not stored in a /// variant. #[inline] pub fn prefix_tys(self) -> impl Iterator<Item = Ty<'tcx>> { self.upvar_tys() } } #[derive(Debug, Copy, Clone)] pub enum UpvarSubsts<'tcx> { Closure(SubstsRef<'tcx>), Generator(SubstsRef<'tcx>), } impl<'tcx> UpvarSubsts<'tcx> { /// Returns an iterator over the list of types of captured paths by the closure/generator. /// In case there was a type error in figuring out the types of the captured path, an /// empty iterator is returned. #[inline] pub fn upvar_tys(self) -> impl Iterator<Item = Ty<'tcx>> + 'tcx { let tupled_tys = match self { UpvarSubsts::Closure(substs) => substs.as_closure().tupled_upvars_ty(), UpvarSubsts::Generator(substs) => substs.as_generator().tupled_upvars_ty(), }; match tupled_tys.kind() { TyKind::Error(_) => None, TyKind::Tuple(..) => Some(self.tupled_upvars_ty().tuple_fields()), TyKind::Infer(_) => bug!("upvar_tys called before capture types are inferred"), ty => bug!("Unexpected representation of upvar types tuple {:?}", ty), } .into_iter() .flatten() } #[inline] pub fn tupled_upvars_ty(self) -> Ty<'tcx> { match self { UpvarSubsts::Closure(substs) => substs.as_closure().tupled_upvars_ty(), UpvarSubsts::Generator(substs) => substs.as_generator().tupled_upvars_ty(), } } } #[derive(Debug, Copy, Clone, PartialEq, PartialOrd, Ord, Eq, Hash, TyEncodable, TyDecodable)] #[derive(HashStable, TypeFoldable)] pub enum ExistentialPredicate<'tcx> { /// E.g., `Iterator`. Trait(ExistentialTraitRef<'tcx>), /// E.g., `Iterator::Item = T`. Projection(ExistentialProjection<'tcx>), /// E.g., `Send`. AutoTrait(DefId), } impl<'tcx> ExistentialPredicate<'tcx> { /// Compares via an ordering that will not change if modules are reordered or other changes are /// made to the tree. In particular, this ordering is preserved across incremental compilations. pub fn stable_cmp(&self, tcx: TyCtxt<'tcx>, other: &Self) -> Ordering { use self::ExistentialPredicate::*; match (*self, *other) { (Trait(_), Trait(_)) => Ordering::Equal, (Projection(ref a), Projection(ref b)) => { tcx.def_path_hash(a.item_def_id).cmp(&tcx.def_path_hash(b.item_def_id)) } (AutoTrait(ref a), AutoTrait(ref b)) => { tcx.trait_def(*a).def_path_hash.cmp(&tcx.trait_def(*b).def_path_hash) } (Trait(_), _) => Ordering::Less, (Projection(_), Trait(_)) => Ordering::Greater, (Projection(_), _) => Ordering::Less, (AutoTrait(_), _) => Ordering::Greater, } } } impl<'tcx> Binder<ExistentialPredicate<'tcx>> { pub fn with_self_ty(&self, tcx: TyCtxt<'tcx>, self_ty: Ty<'tcx>) -> ty::Predicate<'tcx> { use crate::ty::ToPredicate; match self.skip_binder() { ExistentialPredicate::Trait(tr) => { self.rebind(tr).with_self_ty(tcx, self_ty).without_const().to_predicate(tcx) } ExistentialPredicate::Projection(p) => { self.rebind(p.with_self_ty(tcx, self_ty)).to_predicate(tcx) } ExistentialPredicate::AutoTrait(did) => { let trait_ref = self.rebind(ty::TraitRef { def_id: did, substs: tcx.mk_substs_trait(self_ty, &[]), }); trait_ref.without_const().to_predicate(tcx) } } } } impl<'tcx> List<ExistentialPredicate<'tcx>> { /// Returns the "principal `DefId`" of this set of existential predicates. /// /// A Rust trait object type consists (in addition to a lifetime bound) /// of a set of trait bounds, which are separated into any number /// of auto-trait bounds, and at most one non-auto-trait bound. The /// non-auto-trait bound is called the "principal" of the trait /// object. /// /// Only the principal can have methods or type parameters (because /// auto traits can have neither of them). This is important, because /// it means the auto traits can be treated as an unordered set (methods /// would force an order for the vtable, while relating traits with /// type parameters without knowing the order to relate them in is /// a rather non-trivial task). /// /// For example, in the trait object `dyn fmt::Debug + Sync`, the /// principal bound is `Some(fmt::Debug)`, while the auto-trait bounds /// are the set `{Sync}`. /// /// It is also possible to have a "trivial" trait object that /// consists only of auto traits, with no principal - for example, /// `dyn Send + Sync`. In that case, the set of auto-trait bounds /// is `{Send, Sync}`, while there is no principal. These trait objects /// have a "trivial" vtable consisting of just the size, alignment, /// and destructor. pub fn principal(&self) -> Option<ExistentialTraitRef<'tcx>> { match self[0] { ExistentialPredicate::Trait(tr) => Some(tr), _ => None, } } pub fn principal_def_id(&self) -> Option<DefId> { self.principal().map(|trait_ref| trait_ref.def_id) } #[inline] pub fn projection_bounds<'a>( &'a self, ) -> impl Iterator<Item = ExistentialProjection<'tcx>> + 'a { self.iter().filter_map(|predicate| match predicate { ExistentialPredicate::Projection(projection) => Some(projection), _ => None, }) } #[inline] pub fn auto_traits<'a>(&'a self) -> impl Iterator<Item = DefId> + 'a { self.iter().filter_map(|predicate| match predicate { ExistentialPredicate::AutoTrait(did) => Some(did), _ => None, }) } } impl<'tcx> Binder<&'tcx List<ExistentialPredicate<'tcx>>> { pub fn principal(&self) -> Option<ty::Binder<ExistentialTraitRef<'tcx>>> { self.map_bound(|b| b.principal()).transpose() } pub fn principal_def_id(&self) -> Option<DefId> { self.skip_binder().principal_def_id() } #[inline] pub fn projection_bounds<'a>( &'a self, ) -> impl Iterator<Item = PolyExistentialProjection<'tcx>> + 'a { self.skip_binder().projection_bounds().map(Binder::bind) } #[inline] pub fn auto_traits<'a>(&'a self) -> impl Iterator<Item = DefId> + 'a { self.skip_binder().auto_traits() } pub fn iter<'a>( &'a self, ) -> impl DoubleEndedIterator<Item = Binder<ExistentialPredicate<'tcx>>> + 'tcx { self.skip_binder().iter().map(Binder::bind) } } /// A complete reference to a trait. These take numerous guises in syntax, /// but perhaps the most recognizable form is in a where-clause: /// /// T: Foo<U> /// /// This would be represented by a trait-reference where the `DefId` is the /// `DefId` for the trait `Foo` and the substs define `T` as parameter 0, /// and `U` as parameter 1. /// /// Trait references also appear in object types like `Foo<U>`, but in /// that case the `Self` parameter is absent from the substitutions. #[derive(Copy, Clone, PartialEq, Eq, Hash, TyEncodable, TyDecodable)] #[derive(HashStable, TypeFoldable)] pub struct TraitRef<'tcx> { pub def_id: DefId, pub substs: SubstsRef<'tcx>, } impl<'tcx> TraitRef<'tcx> { pub fn new(def_id: DefId, substs: SubstsRef<'tcx>) -> TraitRef<'tcx> { TraitRef { def_id, substs } } /// Returns a `TraitRef` of the form `P0: Foo<P1..Pn>` where `Pi` /// are the parameters defined on trait. pub fn identity(tcx: TyCtxt<'tcx>, def_id: DefId) -> TraitRef<'tcx> { TraitRef { def_id, substs: InternalSubsts::identity_for_item(tcx, def_id) } } #[inline] pub fn self_ty(&self) -> Ty<'tcx> { self.substs.type_at(0) } pub fn from_method( tcx: TyCtxt<'tcx>, trait_id: DefId, substs: SubstsRef<'tcx>, ) -> ty::TraitRef<'tcx> { let defs = tcx.generics_of(trait_id); ty::TraitRef { def_id: trait_id, substs: tcx.intern_substs(&substs[..defs.params.len()]) } } } pub type PolyTraitRef<'tcx> = Binder<TraitRef<'tcx>>; impl<'tcx> PolyTraitRef<'tcx> { pub fn self_ty(&self) -> Binder<Ty<'tcx>> { self.map_bound_ref(|tr| tr.self_ty()) } pub fn def_id(&self) -> DefId { self.skip_binder().def_id } pub fn to_poly_trait_predicate(&self) -> ty::PolyTraitPredicate<'tcx> { self.map_bound(|trait_ref| ty::TraitPredicate { trait_ref }) } } /// An existential reference to a trait, where `Self` is erased. /// For example, the trait object `Trait<'a, 'b, X, Y>` is: /// /// exists T. T: Trait<'a, 'b, X, Y> /// /// The substitutions don't include the erased `Self`, only trait /// type and lifetime parameters (`[X, Y]` and `['a, 'b]` above). #[derive(Copy, Clone, PartialEq, Eq, PartialOrd, Ord, Hash, TyEncodable, TyDecodable)] #[derive(HashStable, TypeFoldable)] pub struct ExistentialTraitRef<'tcx> { pub def_id: DefId, pub substs: SubstsRef<'tcx>, } impl<'tcx> ExistentialTraitRef<'tcx> { pub fn erase_self_ty( tcx: TyCtxt<'tcx>, trait_ref: ty::TraitRef<'tcx>, ) -> ty::ExistentialTraitRef<'tcx> { // Assert there is a Self. trait_ref.substs.type_at(0); ty::ExistentialTraitRef { def_id: trait_ref.def_id, substs: tcx.intern_substs(&trait_ref.substs[1..]), } } /// Object types don't have a self type specified. Therefore, when /// we convert the principal trait-ref into a normal trait-ref, /// you must give *some* self type. A common choice is `mk_err()` /// or some placeholder type. pub fn with_self_ty(&self, tcx: TyCtxt<'tcx>, self_ty: Ty<'tcx>) -> ty::TraitRef<'tcx> { // otherwise the escaping vars would be captured by the binder // debug_assert!(!self_ty.has_escaping_bound_vars()); ty::TraitRef { def_id: self.def_id, substs: tcx.mk_substs_trait(self_ty, self.substs) } } } pub type PolyExistentialTraitRef<'tcx> = Binder<ExistentialTraitRef<'tcx>>; impl<'tcx> PolyExistentialTraitRef<'tcx> { pub fn def_id(&self) -> DefId { self.skip_binder().def_id } /// Object types don't have a self type specified. Therefore, when /// we convert the principal trait-ref into a normal trait-ref, /// you must give *some* self type. A common choice is `mk_err()` /// or some placeholder type. pub fn with_self_ty(&self, tcx: TyCtxt<'tcx>, self_ty: Ty<'tcx>) -> ty::PolyTraitRef<'tcx> { self.map_bound(|trait_ref| trait_ref.with_self_ty(tcx, self_ty)) } } /// Binder is a binder for higher-ranked lifetimes or types. It is part of the /// compiler's representation for things like `for<'a> Fn(&'a isize)` /// (which would be represented by the type `PolyTraitRef == /// Binder<TraitRef>`). Note that when we instantiate, /// erase, or otherwise "discharge" these bound vars, we change the /// type from `Binder<T>` to just `T` (see /// e.g., `liberate_late_bound_regions`). #[derive(Copy, Clone, PartialEq, Eq, PartialOrd, Ord, Hash, Debug, TyEncodable, TyDecodable)] pub struct Binder<T>(T); impl<T> Binder<T> { /// Wraps `value` in a binder, asserting that `value` does not /// contain any bound vars that would be bound by the /// binder. This is commonly used to 'inject' a value T into a /// different binding level. pub fn dummy<'tcx>(value: T) -> Binder<T> where T: TypeFoldable<'tcx>, { debug_assert!(!value.has_escaping_bound_vars()); Binder(value) } /// Wraps `value` in a binder, binding higher-ranked vars (if any). pub fn bind(value: T) -> Binder<T> { Binder(value) } /// Wraps `value` in a binder without actually binding any currently /// unbound variables. /// /// Note that this will shift all debrujin indices of escaping bound variables /// by 1 to avoid accidential captures. pub fn wrap_nonbinding(tcx: TyCtxt<'tcx>, value: T) -> Binder<T> where T: TypeFoldable<'tcx>, { if value.has_escaping_bound_vars() { Binder::bind(super::fold::shift_vars(tcx, value, 1)) } else { Binder::dummy(value) } } /// Skips the binder and returns the "bound" value. This is a /// risky thing to do because it's easy to get confused about /// De Bruijn indices and the like. It is usually better to /// discharge the binder using `no_bound_vars` or /// `replace_late_bound_regions` or something like /// that. `skip_binder` is only valid when you are either /// extracting data that has nothing to do with bound vars, you /// are doing some sort of test that does not involve bound /// regions, or you are being very careful about your depth /// accounting. /// /// Some examples where `skip_binder` is reasonable: /// /// - extracting the `DefId` from a PolyTraitRef; /// - comparing the self type of a PolyTraitRef to see if it is equal to /// a type parameter `X`, since the type `X` does not reference any regions pub fn skip_binder(self) -> T { self.0 } pub fn as_ref(&self) -> Binder<&T> { Binder(&self.0) } pub fn map_bound_ref<F, U>(&self, f: F) -> Binder<U> where F: FnOnce(&T) -> U, { self.as_ref().map_bound(f) } pub fn map_bound<F, U>(self, f: F) -> Binder<U> where F: FnOnce(T) -> U, { Binder(f(self.0)) } /// Wraps a `value` in a binder, using the same bound variables as the /// current `Binder`. This should not be used if the new value *changes* /// the bound variables. Note: the (old or new) value itself does not /// necessarily need to *name* all the bound variables. /// /// This currently doesn't do anything different than `bind`, because we /// don't actually track bound vars. However, semantically, it is different /// because bound vars aren't allowed to change here, whereas they are /// in `bind`. This may be (debug) asserted in the future. pub fn rebind<U>(&self, value: U) -> Binder<U> { Binder(value) } /// Unwraps and returns the value within, but only if it contains /// no bound vars at all. (In other words, if this binder -- /// and indeed any enclosing binder -- doesn't bind anything at /// all.) Otherwise, returns `None`. /// /// (One could imagine having a method that just unwraps a single /// binder, but permits late-bound vars bound by enclosing /// binders, but that would require adjusting the debruijn /// indices, and given the shallow binding structure we often use, /// would not be that useful.) pub fn no_bound_vars<'tcx>(self) -> Option<T> where T: TypeFoldable<'tcx>, { if self.0.has_escaping_bound_vars() { None } else { Some(self.skip_binder()) } } /// Given two things that have the same binder level, /// and an operation that wraps on their contents, executes the operation /// and then wraps its result. /// /// `f` should consider bound regions at depth 1 to be free, and /// anything it produces with bound regions at depth 1 will be /// bound in the resulting return value. pub fn fuse<U, F, R>(self, u: Binder<U>, f: F) -> Binder<R> where F: FnOnce(T, U) -> R, { Binder(f(self.0, u.0)) } /// Splits the contents into two things that share the same binder /// level as the original, returning two distinct binders. /// /// `f` should consider bound regions at depth 1 to be free, and /// anything it produces with bound regions at depth 1 will be /// bound in the resulting return values. pub fn split<U, V, F>(self, f: F) -> (Binder<U>, Binder<V>) where F: FnOnce(T) -> (U, V), { let (u, v) = f(self.0); (Binder(u), Binder(v)) } } impl<T> Binder<Option<T>> { pub fn transpose(self) -> Option<Binder<T>> { match self.0 { Some(v) => Some(Binder(v)), None => None, } } } /// Represents the projection of an associated type. In explicit UFCS /// form this would be written `<T as Trait<..>>::N`. #[derive(Copy, Clone, PartialEq, Eq, PartialOrd, Ord, Hash, Debug, TyEncodable, TyDecodable)] #[derive(HashStable, TypeFoldable)] pub struct ProjectionTy<'tcx> { /// The parameters of the associated item. pub substs: SubstsRef<'tcx>, /// The `DefId` of the `TraitItem` for the associated type `N`. /// /// Note that this is not the `DefId` of the `TraitRef` containing this /// associated type, which is in `tcx.associated_item(item_def_id).container`. pub item_def_id: DefId, } impl<'tcx> ProjectionTy<'tcx> { /// Construct a `ProjectionTy` by searching the trait from `trait_ref` for the /// associated item named `item_name`. pub fn from_ref_and_name( tcx: TyCtxt<'_>, trait_ref: ty::TraitRef<'tcx>, item_name: Ident, ) -> ProjectionTy<'tcx> { let item_def_id = tcx .associated_items(trait_ref.def_id) .find_by_name_and_kind(tcx, item_name, ty::AssocKind::Type, trait_ref.def_id) .unwrap() .def_id; ProjectionTy { substs: trait_ref.substs, item_def_id } } /// Extracts the underlying trait reference from this projection. /// For example, if this is a projection of `<T as Iterator>::Item`, /// then this function would return a `T: Iterator` trait reference. pub fn trait_ref(&self, tcx: TyCtxt<'tcx>) -> ty::TraitRef<'tcx> { let def_id = tcx.associated_item(self.item_def_id).container.id(); ty::TraitRef { def_id, substs: self.substs.truncate_to(tcx, tcx.generics_of(def_id)) } } pub fn self_ty(&self) -> Ty<'tcx> { self.substs.type_at(0) } } #[derive(Copy, Clone, Debug, TypeFoldable)] pub struct GenSig<'tcx> { pub resume_ty: Ty<'tcx>, pub yield_ty: Ty<'tcx>, pub return_ty: Ty<'tcx>, } pub type PolyGenSig<'tcx> = Binder<GenSig<'tcx>>; impl<'tcx> PolyGenSig<'tcx> { pub fn resume_ty(&self) -> ty::Binder<Ty<'tcx>> { self.map_bound_ref(|sig| sig.resume_ty) } pub fn yield_ty(&self) -> ty::Binder<Ty<'tcx>> { self.map_bound_ref(|sig| sig.yield_ty) } pub fn return_ty(&self) -> ty::Binder<Ty<'tcx>> { self.map_bound_ref(|sig| sig.return_ty) } } /// Signature of a function type, which we have arbitrarily /// decided to use to refer to the input/output types. /// /// - `inputs`: is the list of arguments and their modes. /// - `output`: is the return type. /// - `c_variadic`: indicates whether this is a C-variadic function. #[derive(Copy, Clone, PartialEq, Eq, PartialOrd, Ord, Hash, TyEncodable, TyDecodable)] #[derive(HashStable, TypeFoldable)] pub struct FnSig<'tcx> { pub inputs_and_output: &'tcx List<Ty<'tcx>>, pub c_variadic: bool, pub unsafety: hir::Unsafety, pub abi: abi::Abi, } impl<'tcx> FnSig<'tcx> { pub fn inputs(&self) -> &'tcx [Ty<'tcx>] { &self.inputs_and_output[..self.inputs_and_output.len() - 1] } pub fn output(&self) -> Ty<'tcx> { self.inputs_and_output[self.inputs_and_output.len() - 1] } // Creates a minimal `FnSig` to be used when encountering a `TyKind::Error` in a fallible // method. fn fake() -> FnSig<'tcx> { FnSig { inputs_and_output: List::empty(), c_variadic: false, unsafety: hir::Unsafety::Normal, abi: abi::Abi::Rust, } } } pub type PolyFnSig<'tcx> = Binder<FnSig<'tcx>>; impl<'tcx> PolyFnSig<'tcx> { #[inline] pub fn inputs(&self) -> Binder<&'tcx [Ty<'tcx>]> { self.map_bound_ref(|fn_sig| fn_sig.inputs()) } #[inline] pub fn input(&self, index: usize) -> ty::Binder<Ty<'tcx>> { self.map_bound_ref(|fn_sig| fn_sig.inputs()[index]) } pub fn inputs_and_output(&self) -> ty::Binder<&'tcx List<Ty<'tcx>>> { self.map_bound_ref(|fn_sig| fn_sig.inputs_and_output) } #[inline] pub fn output(&self) -> ty::Binder<Ty<'tcx>> { self.map_bound_ref(|fn_sig| fn_sig.output()) } pub fn c_variadic(&self) -> bool { self.skip_binder().c_variadic } pub fn unsafety(&self) -> hir::Unsafety { self.skip_binder().unsafety } pub fn abi(&self) -> abi::Abi { self.skip_binder().abi } } pub type CanonicalPolyFnSig<'tcx> = Canonical<'tcx, Binder<FnSig<'tcx>>>; #[derive(Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, TyEncodable, TyDecodable)] #[derive(HashStable)] pub struct ParamTy { pub index: u32, pub name: Symbol, } impl<'tcx> ParamTy { pub fn new(index: u32, name: Symbol) -> ParamTy { ParamTy { index, name } } pub fn for_self() -> ParamTy { ParamTy::new(0, kw::SelfUpper) } pub fn for_def(def: &ty::GenericParamDef) -> ParamTy { ParamTy::new(def.index, def.name) } pub fn to_ty(self, tcx: TyCtxt<'tcx>) -> Ty<'tcx> { tcx.mk_ty_param(self.index, self.name) } } #[derive(Copy, Clone, Hash, TyEncodable, TyDecodable, Eq, PartialEq, Ord, PartialOrd)] #[derive(HashStable)] pub struct ParamConst { pub index: u32, pub name: Symbol, } impl<'tcx> ParamConst { pub fn new(index: u32, name: Symbol) -> ParamConst { ParamConst { index, name } } pub fn for_def(def: &ty::GenericParamDef) -> ParamConst { ParamConst::new(def.index, def.name) } pub fn to_const(self, tcx: TyCtxt<'tcx>, ty: Ty<'tcx>) -> &'tcx ty::Const<'tcx> { tcx.mk_const_param(self.index, self.name, ty) } } rustc_index::newtype_index! { /// A [De Bruijn index][dbi] is a standard means of representing /// regions (and perhaps later types) in a higher-ranked setting. In /// particular, imagine a type like this: /// /// for<'a> fn(for<'b> fn(&'b isize, &'a isize), &'a char) /// ^ ^ | | | /// | | | | | /// | +------------+ 0 | | /// | | | /// +----------------------------------+ 1 | /// | | /// +----------------------------------------------+ 0 /// /// In this type, there are two binders (the outer fn and the inner /// fn). We need to be able to determine, for any given region, which /// fn type it is bound by, the inner or the outer one. There are /// various ways you can do this, but a De Bruijn index is one of the /// more convenient and has some nice properties. The basic idea is to /// count the number of binders, inside out. Some examples should help /// clarify what I mean. /// /// Let's start with the reference type `&'b isize` that is the first /// argument to the inner function. This region `'b` is assigned a De /// Bruijn index of 0, meaning "the innermost binder" (in this case, a /// fn). The region `'a` that appears in the second argument type (`&'a /// isize`) would then be assigned a De Bruijn index of 1, meaning "the /// second-innermost binder". (These indices are written on the arrays /// in the diagram). /// /// What is interesting is that De Bruijn index attached to a particular /// variable will vary depending on where it appears. For example, /// the final type `&'a char` also refers to the region `'a` declared on /// the outermost fn. But this time, this reference is not nested within /// any other binders (i.e., it is not an argument to the inner fn, but /// rather the outer one). Therefore, in this case, it is assigned a /// De Bruijn index of 0, because the innermost binder in that location /// is the outer fn. /// /// [dbi]: https://en.wikipedia.org/wiki/De_Bruijn_index #[derive(HashStable)] pub struct DebruijnIndex { DEBUG_FORMAT = "DebruijnIndex({})", const INNERMOST = 0, } } pub type Region<'tcx> = &'tcx RegionKind; /// Representation of regions. Note that the NLL checker uses a distinct /// representation of regions. For this reason, it internally replaces all the /// regions with inference variables -- the index of the variable is then used /// to index into internal NLL data structures. See `rustc_mir::borrow_check` /// module for more information. /// /// ## The Region lattice within a given function /// /// In general, the region lattice looks like /// /// ``` /// static ----------+-----...------+ (greatest) /// | | | /// early-bound and | | /// free regions | | /// | | | /// | | | /// empty(root) placeholder(U1) | /// | / | /// | / placeholder(Un) /// empty(U1) -- / /// | / /// ... / /// | / /// empty(Un) -------- (smallest) /// ``` /// /// Early-bound/free regions are the named lifetimes in scope from the /// function declaration. They have relationships to one another /// determined based on the declared relationships from the /// function. /// /// Note that inference variables and bound regions are not included /// in this diagram. In the case of inference variables, they should /// be inferred to some other region from the diagram. In the case of /// bound regions, they are excluded because they don't make sense to /// include -- the diagram indicates the relationship between free /// regions. /// /// ## Inference variables /// /// During region inference, we sometimes create inference variables, /// represented as `ReVar`. These will be inferred by the code in /// `infer::lexical_region_resolve` to some free region from the /// lattice above (the minimal region that meets the /// constraints). /// /// During NLL checking, where regions are defined differently, we /// also use `ReVar` -- in that case, the index is used to index into /// the NLL region checker's data structures. The variable may in fact /// represent either a free region or an inference variable, in that /// case. /// /// ## Bound Regions /// /// These are regions that are stored behind a binder and must be substituted /// with some concrete region before being used. There are two kind of /// bound regions: early-bound, which are bound in an item's `Generics`, /// and are substituted by a `InternalSubsts`, and late-bound, which are part of /// higher-ranked types (e.g., `for<'a> fn(&'a ())`), and are substituted by /// the likes of `liberate_late_bound_regions`. The distinction exists /// because higher-ranked lifetimes aren't supported in all places. See [1][2]. /// /// Unlike `Param`s, bound regions are not supposed to exist "in the wild" /// outside their binder, e.g., in types passed to type inference, and /// should first be substituted (by placeholder regions, free regions, /// or region variables). /// /// ## Placeholder and Free Regions /// /// One often wants to work with bound regions without knowing their precise /// identity. For example, when checking a function, the lifetime of a borrow /// can end up being assigned to some region parameter. In these cases, /// it must be ensured that bounds on the region can't be accidentally /// assumed without being checked. /// /// To do this, we replace the bound regions with placeholder markers, /// which don't satisfy any relation not explicitly provided. /// /// There are two kinds of placeholder regions in rustc: `ReFree` and /// `RePlaceholder`. When checking an item's body, `ReFree` is supposed /// to be used. These also support explicit bounds: both the internally-stored /// *scope*, which the region is assumed to outlive, as well as other /// relations stored in the `FreeRegionMap`. Note that these relations /// aren't checked when you `make_subregion` (or `eq_types`), only by /// `resolve_regions_and_report_errors`. /// /// When working with higher-ranked types, some region relations aren't /// yet known, so you can't just call `resolve_regions_and_report_errors`. /// `RePlaceholder` is designed for this purpose. In these contexts, /// there's also the risk that some inference variable laying around will /// get unified with your placeholder region: if you want to check whether /// `for<'a> Foo<'_>: 'a`, and you substitute your bound region `'a` /// with a placeholder region `'%a`, the variable `'_` would just be /// instantiated to the placeholder region `'%a`, which is wrong because /// the inference variable is supposed to satisfy the relation /// *for every value of the placeholder region*. To ensure that doesn't /// happen, you can use `leak_check`. This is more clearly explained /// by the [rustc dev guide]. /// /// [1]: http://smallcultfollowing.com/babysteps/blog/2013/10/29/intermingled-parameter-lists/ /// [2]: http://smallcultfollowing.com/babysteps/blog/2013/11/04/intermingled-parameter-lists/ /// [rustc dev guide]: https://rustc-dev-guide.rust-lang.org/traits/hrtb.html #[derive(Clone, PartialEq, Eq, Hash, Copy, TyEncodable, TyDecodable, PartialOrd, Ord)] pub enum RegionKind { /// Region bound in a type or fn declaration which will be /// substituted 'early' -- that is, at the same time when type /// parameters are substituted. ReEarlyBound(EarlyBoundRegion), /// Region bound in a function scope, which will be substituted when the /// function is called. ReLateBound(DebruijnIndex, BoundRegion), /// When checking a function body, the types of all arguments and so forth /// that refer to bound region parameters are modified to refer to free /// region parameters. ReFree(FreeRegion), /// Static data that has an "infinite" lifetime. Top in the region lattice. ReStatic, /// A region variable. Should not exist after typeck. ReVar(RegionVid), /// A placeholder region -- basically, the higher-ranked version of `ReFree`. /// Should not exist after typeck. RePlaceholder(ty::PlaceholderRegion), /// Empty lifetime is for data that is never accessed. We tag the /// empty lifetime with a universe -- the idea is that we don't /// want `exists<'a> { forall<'b> { 'b: 'a } }` to be satisfiable. /// Therefore, the `'empty` in a universe `U` is less than all /// regions visible from `U`, but not less than regions not visible /// from `U`. ReEmpty(ty::UniverseIndex), /// Erased region, used by trait selection, in MIR and during codegen. ReErased, } #[derive(Copy, Clone, PartialEq, Eq, Hash, TyEncodable, TyDecodable, Debug, PartialOrd, Ord)] pub struct EarlyBoundRegion { pub def_id: DefId, pub index: u32, pub name: Symbol, } #[derive(Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, TyEncodable, TyDecodable)] pub struct TyVid { pub index: u32, } #[derive(Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, TyEncodable, TyDecodable)] pub struct ConstVid<'tcx> { pub index: u32, pub phantom: PhantomData<&'tcx ()>, } #[derive(Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, TyEncodable, TyDecodable)] pub struct IntVid { pub index: u32, } #[derive(Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, TyEncodable, TyDecodable)] pub struct FloatVid { pub index: u32, } rustc_index::newtype_index! { pub struct RegionVid { DEBUG_FORMAT = custom, } } impl Atom for RegionVid { fn index(self) -> usize { Idx::index(self) } } #[derive(Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, TyEncodable, TyDecodable)] #[derive(HashStable)] pub enum InferTy { TyVar(TyVid), IntVar(IntVid), FloatVar(FloatVid), /// A `FreshTy` is one that is generated as a replacement for an /// unbound type variable. This is convenient for caching etc. See /// `infer::freshen` for more details. FreshTy(u32), FreshIntTy(u32), FreshFloatTy(u32), } rustc_index::newtype_index! { pub struct BoundVar { .. } } #[derive(Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Debug, TyEncodable, TyDecodable)] #[derive(HashStable)] pub struct BoundTy { pub var: BoundVar, pub kind: BoundTyKind, } #[derive(Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Debug, TyEncodable, TyDecodable)] #[derive(HashStable)] pub enum BoundTyKind { Anon, Param(Symbol), } impl From<BoundVar> for BoundTy { fn from(var: BoundVar) -> Self { BoundTy { var, kind: BoundTyKind::Anon } } } /// A `ProjectionPredicate` for an `ExistentialTraitRef`. #[derive(Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash, Debug, TyEncodable, TyDecodable)] #[derive(HashStable, TypeFoldable)] pub struct ExistentialProjection<'tcx> { pub item_def_id: DefId, pub substs: SubstsRef<'tcx>, pub ty: Ty<'tcx>, } pub type PolyExistentialProjection<'tcx> = Binder<ExistentialProjection<'tcx>>; impl<'tcx> ExistentialProjection<'tcx> { /// Extracts the underlying existential trait reference from this projection. /// For example, if this is a projection of `exists T. <T as Iterator>::Item == X`, /// then this function would return a `exists T. T: Iterator` existential trait /// reference. pub fn trait_ref(&self, tcx: TyCtxt<'_>) -> ty::ExistentialTraitRef<'tcx> { // FIXME(generic_associated_types): substs is the substs of the // associated type, which should be truncated to get the correct substs // for the trait. let def_id = tcx.associated_item(self.item_def_id).container.id(); ty::ExistentialTraitRef { def_id, substs: self.substs } } pub fn with_self_ty( &self, tcx: TyCtxt<'tcx>, self_ty: Ty<'tcx>, ) -> ty::ProjectionPredicate<'tcx> { // otherwise the escaping regions would be captured by the binders debug_assert!(!self_ty.has_escaping_bound_vars()); ty::ProjectionPredicate { projection_ty: ty::ProjectionTy { item_def_id: self.item_def_id, substs: tcx.mk_substs_trait(self_ty, self.substs), }, ty: self.ty, } } } impl<'tcx> PolyExistentialProjection<'tcx> { pub fn with_self_ty( &self, tcx: TyCtxt<'tcx>, self_ty: Ty<'tcx>, ) -> ty::PolyProjectionPredicate<'tcx> { self.map_bound(|p| p.with_self_ty(tcx, self_ty)) } pub fn item_def_id(&self) -> DefId { self.skip_binder().item_def_id } } impl DebruijnIndex { /// Returns the resulting index when this value is moved into /// `amount` number of new binders. So, e.g., if you had /// /// for<'a> fn(&'a x) /// /// and you wanted to change it to /// /// for<'a> fn(for<'b> fn(&'a x)) /// /// you would need to shift the index for `'a` into a new binder. #[must_use] pub fn shifted_in(self, amount: u32) -> DebruijnIndex { DebruijnIndex::from_u32(self.as_u32() + amount) } /// Update this index in place by shifting it "in" through /// `amount` number of binders. pub fn shift_in(&mut self, amount: u32) { *self = self.shifted_in(amount); } /// Returns the resulting index when this value is moved out from /// `amount` number of new binders. #[must_use] pub fn shifted_out(self, amount: u32) -> DebruijnIndex { DebruijnIndex::from_u32(self.as_u32() - amount) } /// Update in place by shifting out from `amount` binders. pub fn shift_out(&mut self, amount: u32) { *self = self.shifted_out(amount); } /// Adjusts any De Bruijn indices so as to make `to_binder` the /// innermost binder. That is, if we have something bound at `to_binder`, /// it will now be bound at INNERMOST. This is an appropriate thing to do /// when moving a region out from inside binders: /// /// ``` /// for<'a> fn(for<'b> for<'c> fn(&'a u32), _) /// // Binder: D3 D2 D1 ^^ /// ``` /// /// Here, the region `'a` would have the De Bruijn index D3, /// because it is the bound 3 binders out. However, if we wanted /// to refer to that region `'a` in the second argument (the `_`), /// those two binders would not be in scope. In that case, we /// might invoke `shift_out_to_binder(D3)`. This would adjust the /// De Bruijn index of `'a` to D1 (the innermost binder). /// /// If we invoke `shift_out_to_binder` and the region is in fact /// bound by one of the binders we are shifting out of, that is an /// error (and should fail an assertion failure). pub fn shifted_out_to_binder(self, to_binder: DebruijnIndex) -> Self { self.shifted_out(to_binder.as_u32() - INNERMOST.as_u32()) } } /// Region utilities impl RegionKind { /// Is this region named by the user? pub fn has_name(&self) -> bool { match *self { RegionKind::ReEarlyBound(ebr) => ebr.has_name(), RegionKind::ReLateBound(_, br) => br.is_named(), RegionKind::ReFree(fr) => fr.bound_region.is_named(), RegionKind::ReStatic => true, RegionKind::ReVar(..) => false, RegionKind::RePlaceholder(placeholder) => placeholder.name.is_named(), RegionKind::ReEmpty(_) => false, RegionKind::ReErased => false, } } pub fn is_late_bound(&self) -> bool { match *self { ty::ReLateBound(..) => true, _ => false, } } pub fn is_placeholder(&self) -> bool { match *self { ty::RePlaceholder(..) => true, _ => false, } } pub fn bound_at_or_above_binder(&self, index: DebruijnIndex) -> bool { match *self { ty::ReLateBound(debruijn, _) => debruijn >= index, _ => false, } } /// Adjusts any De Bruijn indices so as to make `to_binder` the /// innermost binder. That is, if we have something bound at `to_binder`, /// it will now be bound at INNERMOST. This is an appropriate thing to do /// when moving a region out from inside binders: /// /// ``` /// for<'a> fn(for<'b> for<'c> fn(&'a u32), _) /// // Binder: D3 D2 D1 ^^ /// ``` /// /// Here, the region `'a` would have the De Bruijn index D3, /// because it is the bound 3 binders out. However, if we wanted /// to refer to that region `'a` in the second argument (the `_`), /// those two binders would not be in scope. In that case, we /// might invoke `shift_out_to_binder(D3)`. This would adjust the /// De Bruijn index of `'a` to D1 (the innermost binder). /// /// If we invoke `shift_out_to_binder` and the region is in fact /// bound by one of the binders we are shifting out of, that is an /// error (and should fail an assertion failure). pub fn shifted_out_to_binder(&self, to_binder: ty::DebruijnIndex) -> RegionKind { match *self { ty::ReLateBound(debruijn, r) => { ty::ReLateBound(debruijn.shifted_out_to_binder(to_binder), r) } r => r, } } pub fn type_flags(&self) -> TypeFlags { let mut flags = TypeFlags::empty(); match *self { ty::ReVar(..) => { flags = flags | TypeFlags::HAS_FREE_REGIONS; flags = flags | TypeFlags::HAS_FREE_LOCAL_REGIONS; flags = flags | TypeFlags::HAS_RE_INFER; } ty::RePlaceholder(..) => { flags = flags | TypeFlags::HAS_FREE_REGIONS; flags = flags | TypeFlags::HAS_FREE_LOCAL_REGIONS; flags = flags | TypeFlags::HAS_RE_PLACEHOLDER; } ty::ReEarlyBound(..) => { flags = flags | TypeFlags::HAS_FREE_REGIONS; flags = flags | TypeFlags::HAS_FREE_LOCAL_REGIONS; flags = flags | TypeFlags::HAS_RE_PARAM; } ty::ReFree { .. } => { flags = flags | TypeFlags::HAS_FREE_REGIONS; flags = flags | TypeFlags::HAS_FREE_LOCAL_REGIONS; } ty::ReEmpty(_) | ty::ReStatic => { flags = flags | TypeFlags::HAS_FREE_REGIONS; } ty::ReLateBound(..) => { flags = flags | TypeFlags::HAS_RE_LATE_BOUND; } ty::ReErased => { flags = flags | TypeFlags::HAS_RE_ERASED; } } debug!("type_flags({:?}) = {:?}", self, flags); flags } /// Given an early-bound or free region, returns the `DefId` where it was bound. /// For example, consider the regions in this snippet of code: /// /// ``` /// impl<'a> Foo { /// ^^ -- early bound, declared on an impl /// /// fn bar<'b, 'c>(x: &self, y: &'b u32, z: &'c u64) where 'static: 'c /// ^^ ^^ ^ anonymous, late-bound /// | early-bound, appears in where-clauses /// late-bound, appears only in fn args /// {..} /// } /// ``` /// /// Here, `free_region_binding_scope('a)` would return the `DefId` /// of the impl, and for all the other highlighted regions, it /// would return the `DefId` of the function. In other cases (not shown), this /// function might return the `DefId` of a closure. pub fn free_region_binding_scope(&self, tcx: TyCtxt<'_>) -> DefId { match self { ty::ReEarlyBound(br) => tcx.parent(br.def_id).unwrap(), ty::ReFree(fr) => fr.scope, _ => bug!("free_region_binding_scope invoked on inappropriate region: {:?}", self), } } } /// Type utilities impl<'tcx> TyS<'tcx> { #[inline(always)] pub fn kind(&self) -> &TyKind<'tcx> { &self.kind } #[inline(always)] pub fn flags(&self) -> TypeFlags { self.flags } #[inline] pub fn is_unit(&self) -> bool { match self.kind() { Tuple(ref tys) => tys.is_empty(), _ => false, } } #[inline] pub fn is_never(&self) -> bool { matches!(self.kind(), Never) } /// Checks whether a type is definitely uninhabited. This is /// conservative: for some types that are uninhabited we return `false`, /// but we only return `true` for types that are definitely uninhabited. /// `ty.conservative_is_privately_uninhabited` implies that any value of type `ty` /// will be `Abi::Uninhabited`. (Note that uninhabited types may have nonzero /// size, to account for partial initialisation. See #49298 for details.) pub fn conservative_is_privately_uninhabited(&self, tcx: TyCtxt<'tcx>) -> bool { // FIXME(varkor): we can make this less conversative by substituting concrete // type arguments. match self.kind() { ty::Never => true, ty::Adt(def, _) if def.is_union() => { // For now, `union`s are never considered uninhabited. false } ty::Adt(def, _) => { // Any ADT is uninhabited if either: // (a) It has no variants (i.e. an empty `enum`); // (b) Each of its variants (a single one in the case of a `struct`) has at least // one uninhabited field. def.variants.iter().all(|var| { var.fields.iter().any(|field| { tcx.type_of(field.did).conservative_is_privately_uninhabited(tcx) }) }) } ty::Tuple(..) => { self.tuple_fields().any(|ty| ty.conservative_is_privately_uninhabited(tcx)) } ty::Array(ty, len) => { match len.try_eval_usize(tcx, ParamEnv::empty()) { Some(0) | None => false, // If the array is definitely non-empty, it's uninhabited if // the type of its elements is uninhabited. Some(1..) => ty.conservative_is_privately_uninhabited(tcx), } } ty::Ref(..) => { // References to uninitialised memory is valid for any type, including // uninhabited types, in unsafe code, so we treat all references as // inhabited. false } _ => false, } } #[inline] pub fn is_primitive(&self) -> bool { self.kind().is_primitive() } #[inline] pub fn is_adt(&self) -> bool { matches!(self.kind(), Adt(..)) } #[inline] pub fn is_ref(&self) -> bool { matches!(self.kind(), Ref(..)) } #[inline] pub fn is_ty_var(&self) -> bool { matches!(self.kind(), Infer(TyVar(_))) } #[inline] pub fn is_ty_infer(&self) -> bool { matches!(self.kind(), Infer(_)) } #[inline] pub fn is_phantom_data(&self) -> bool { if let Adt(def, _) = self.kind() { def.is_phantom_data() } else { false } } #[inline] pub fn is_bool(&self) -> bool { *self.kind() == Bool } /// Returns `true` if this type is a `str`. #[inline] pub fn is_str(&self) -> bool { *self.kind() == Str } #[inline] pub fn is_param(&self, index: u32) -> bool { match self.kind() { ty::Param(ref data) => data.index == index, _ => false, } } #[inline] pub fn is_slice(&self) -> bool { match self.kind() { RawPtr(TypeAndMut { ty, .. }) | Ref(_, ty, _) => matches!(ty.kind(), Slice(_) | Str), _ => false, } } #[inline] pub fn is_array(&self) -> bool { matches!(self.kind(), Array(..)) } #[inline] pub fn is_simd(&self) -> bool { match self.kind() { Adt(def, _) => def.repr.simd(), _ => false, } } pub fn sequence_element_type(&self, tcx: TyCtxt<'tcx>) -> Ty<'tcx> { match self.kind() { Array(ty, _) | Slice(ty) => ty, Str => tcx.mk_mach_uint(ast::UintTy::U8), _ => bug!("`sequence_element_type` called on non-sequence value: {}", self), } } pub fn simd_type(&self, tcx: TyCtxt<'tcx>) -> Ty<'tcx> { match self.kind() { Adt(def, substs) => def.non_enum_variant().fields[0].ty(tcx, substs), _ => bug!("`simd_type` called on invalid type"), } } pub fn simd_size(&self, _tcx: TyCtxt<'tcx>) -> u64 { // Parameter currently unused, but probably needed in the future to // allow `#[repr(simd)] struct Simd<T, const N: usize>([T; N]);`. match self.kind() { Adt(def, _) => def.non_enum_variant().fields.len() as u64, _ => bug!("`simd_size` called on invalid type"), } } pub fn simd_size_and_type(&self, tcx: TyCtxt<'tcx>) -> (u64, Ty<'tcx>) { match self.kind() { Adt(def, substs) => { let variant = def.non_enum_variant(); (variant.fields.len() as u64, variant.fields[0].ty(tcx, substs)) } _ => bug!("`simd_size_and_type` called on invalid type"), } } #[inline] pub fn is_region_ptr(&self) -> bool { matches!(self.kind(), Ref(..)) } #[inline] pub fn is_mutable_ptr(&self) -> bool { matches!( self.kind(), RawPtr(TypeAndMut { mutbl: hir::Mutability::Mut, .. }) | Ref(_, _, hir::Mutability::Mut) ) } #[inline] pub fn is_unsafe_ptr(&self) -> bool { matches!(self.kind(), RawPtr(_)) } /// Tests if this is any kind of primitive pointer type (reference, raw pointer, fn pointer). #[inline] pub fn is_any_ptr(&self) -> bool { self.is_region_ptr() || self.is_unsafe_ptr() || self.is_fn_ptr() } #[inline] pub fn is_box(&self) -> bool { match self.kind() { Adt(def, _) => def.is_box(), _ => false, } } /// Panics if called on any type other than `Box<T>`. pub fn boxed_ty(&self) -> Ty<'tcx> { match self.kind() { Adt(def, substs) if def.is_box() => substs.type_at(0), _ => bug!("`boxed_ty` is called on non-box type {:?}", self), } } /// A scalar type is one that denotes an atomic datum, with no sub-components. /// (A RawPtr is scalar because it represents a non-managed pointer, so its /// contents are abstract to rustc.) #[inline] pub fn is_scalar(&self) -> bool { matches!( self.kind(), Bool | Char | Int(_) | Float(_) | Uint(_) | FnDef(..) | FnPtr(_) | RawPtr(_) | Infer(IntVar(_) | FloatVar(_)) ) } /// Returns `true` if this type is a floating point type. #[inline] pub fn is_floating_point(&self) -> bool { matches!(self.kind(), Float(_) | Infer(FloatVar(_))) } #[inline] pub fn is_trait(&self) -> bool { matches!(self.kind(), Dynamic(..)) } #[inline] pub fn is_enum(&self) -> bool { match self.kind() { Adt(adt_def, _) => adt_def.is_enum(), _ => false, } } #[inline] pub fn is_closure(&self) -> bool { matches!(self.kind(), Closure(..)) } #[inline] pub fn is_generator(&self) -> bool { matches!(self.kind(), Generator(..)) } #[inline] pub fn is_integral(&self) -> bool { matches!(self.kind(), Infer(IntVar(_)) | Int(_) | Uint(_)) } #[inline] pub fn is_fresh_ty(&self) -> bool { matches!(self.kind(), Infer(FreshTy(_))) } #[inline] pub fn is_fresh(&self) -> bool { matches!(self.kind(), Infer(FreshTy(_) | FreshIntTy(_) | FreshFloatTy(_))) } #[inline] pub fn is_char(&self) -> bool { matches!(self.kind(), Char) } #[inline] pub fn is_numeric(&self) -> bool { self.is_integral() || self.is_floating_point() } #[inline] pub fn is_signed(&self) -> bool { matches!(self.kind(), Int(_)) } #[inline] pub fn is_ptr_sized_integral(&self) -> bool { matches!(self.kind(), Int(ast::IntTy::Isize) | Uint(ast::UintTy::Usize)) } #[inline] pub fn is_machine(&self) -> bool { matches!(self.kind(), Int(..) | Uint(..) | Float(..)) } #[inline] pub fn has_concrete_skeleton(&self) -> bool { !matches!(self.kind(), Param(_) | Infer(_) | Error(_)) } /// Returns the type and mutability of `*ty`. /// /// The parameter `explicit` indicates if this is an *explicit* dereference. /// Some types -- notably unsafe ptrs -- can only be dereferenced explicitly. pub fn builtin_deref(&self, explicit: bool) -> Option<TypeAndMut<'tcx>> { match self.kind() { Adt(def, _) if def.is_box() => { Some(TypeAndMut { ty: self.boxed_ty(), mutbl: hir::Mutability::Not }) } Ref(_, ty, mutbl) => Some(TypeAndMut { ty, mutbl: *mutbl }), RawPtr(mt) if explicit => Some(*mt), _ => None, } } /// Returns the type of `ty[i]`. pub fn builtin_index(&self) -> Option<Ty<'tcx>> { match self.kind() { Array(ty, _) | Slice(ty) => Some(ty), _ => None, } } pub fn fn_sig(&self, tcx: TyCtxt<'tcx>) -> PolyFnSig<'tcx> { match self.kind() { FnDef(def_id, substs) => tcx.fn_sig(*def_id).subst(tcx, substs), FnPtr(f) => *f, Error(_) => { // ignore errors (#54954) ty::Binder::dummy(FnSig::fake()) } Closure(..) => bug!( "to get the signature of a closure, use `substs.as_closure().sig()` not `fn_sig()`", ), _ => bug!("Ty::fn_sig() called on non-fn type: {:?}", self), } } #[inline] pub fn is_fn(&self) -> bool { matches!(self.kind(), FnDef(..) | FnPtr(_)) } #[inline] pub fn is_fn_ptr(&self) -> bool { matches!(self.kind(), FnPtr(_)) } #[inline] pub fn is_impl_trait(&self) -> bool { matches!(self.kind(), Opaque(..)) } #[inline] pub fn ty_adt_def(&self) -> Option<&'tcx AdtDef> { match self.kind() { Adt(adt, _) => Some(adt), _ => None, } } /// Iterates over tuple fields. /// Panics when called on anything but a tuple. pub fn tuple_fields(&self) -> impl DoubleEndedIterator<Item = Ty<'tcx>> { match self.kind() { Tuple(substs) => substs.iter().map(|field| field.expect_ty()), _ => bug!("tuple_fields called on non-tuple"), } } /// If the type contains variants, returns the valid range of variant indices. // // FIXME: This requires the optimized MIR in the case of generators. #[inline] pub fn variant_range(&self, tcx: TyCtxt<'tcx>) -> Option<Range<VariantIdx>> { match self.kind() { TyKind::Adt(adt, _) => Some(adt.variant_range()), TyKind::Generator(def_id, substs, _) => { Some(substs.as_generator().variant_range(*def_id, tcx)) } _ => None, } } /// If the type contains variants, returns the variant for `variant_index`. /// Panics if `variant_index` is out of range. // // FIXME: This requires the optimized MIR in the case of generators. #[inline] pub fn discriminant_for_variant( &self, tcx: TyCtxt<'tcx>, variant_index: VariantIdx, ) -> Option<Discr<'tcx>> { match self.kind() { TyKind::Adt(adt, _) if adt.variants.is_empty() => { bug!("discriminant_for_variant called on zero variant enum"); } TyKind::Adt(adt, _) if adt.is_enum() => { Some(adt.discriminant_for_variant(tcx, variant_index)) } TyKind::Generator(def_id, substs, _) => { Some(substs.as_generator().discriminant_for_variant(*def_id, tcx, variant_index)) } _ => None, } } /// Returns the type of the discriminant of this type. pub fn discriminant_ty(&self, tcx: TyCtxt<'tcx>) -> Ty<'tcx> { match self.kind() { ty::Adt(adt, _) if adt.is_enum() => adt.repr.discr_type().to_ty(tcx), ty::Generator(_, substs, _) => substs.as_generator().discr_ty(tcx), _ => { // This can only be `0`, for now, so `u8` will suffice. tcx.types.u8 } } } /// When we create a closure, we record its kind (i.e., what trait /// it implements) into its `ClosureSubsts` using a type /// parameter. This is kind of a phantom type, except that the /// most convenient thing for us to are the integral types. This /// function converts such a special type into the closure /// kind. To go the other way, use /// `tcx.closure_kind_ty(closure_kind)`. /// /// Note that during type checking, we use an inference variable /// to represent the closure kind, because it has not yet been /// inferred. Once upvar inference (in `src/librustc_typeck/check/upvar.rs`) /// is complete, that type variable will be unified. pub fn to_opt_closure_kind(&self) -> Option<ty::ClosureKind> { match self.kind() { Int(int_ty) => match int_ty { ast::IntTy::I8 => Some(ty::ClosureKind::Fn), ast::IntTy::I16 => Some(ty::ClosureKind::FnMut), ast::IntTy::I32 => Some(ty::ClosureKind::FnOnce), _ => bug!("cannot convert type `{:?}` to a closure kind", self), }, // "Bound" types appear in canonical queries when the // closure type is not yet known Bound(..) | Infer(_) => None, Error(_) => Some(ty::ClosureKind::Fn), _ => bug!("cannot convert type `{:?}` to a closure kind", self), } } /// Fast path helper for testing if a type is `Sized`. /// /// Returning true means the type is known to be sized. Returning /// `false` means nothing -- could be sized, might not be. /// /// Note that we could never rely on the fact that a type such as `[_]` is /// trivially `!Sized` because we could be in a type environment with a /// bound such as `[_]: Copy`. A function with such a bound obviously never /// can be called, but that doesn't mean it shouldn't typecheck. This is why /// this method doesn't return `Option<bool>`. pub fn is_trivially_sized(&self, tcx: TyCtxt<'tcx>) -> bool { match self.kind() { ty::Infer(ty::IntVar(_) | ty::FloatVar(_)) | ty::Uint(_) | ty::Int(_) | ty::Bool | ty::Float(_) | ty::FnDef(..) | ty::FnPtr(_) | ty::RawPtr(..) | ty::Char | ty::Ref(..) | ty::Generator(..) | ty::GeneratorWitness(..) | ty::Array(..) | ty::Closure(..) | ty::Never | ty::Error(_) => true, ty::Str | ty::Slice(_) | ty::Dynamic(..) | ty::Foreign(..) => false, ty::Tuple(tys) => tys.iter().all(|ty| ty.expect_ty().is_trivially_sized(tcx)), ty::Adt(def, _substs) => def.sized_constraint(tcx).is_empty(), ty::Projection(_) | ty::Param(_) | ty::Opaque(..) => false, ty::Infer(ty::TyVar(_)) => false, ty::Bound(..) | ty::Placeholder(..) | ty::Infer(ty::FreshTy(_) | ty::FreshIntTy(_) | ty::FreshFloatTy(_)) => { bug!("`is_trivially_sized` applied to unexpected type: {:?}", self) } } } }