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
|
#
# %CopyrightBegin%
#
# Copyright Ericsson AB 1997-2016. All Rights Reserved.
#
# Licensed under the Apache License, Version 2.0 (the "License");
# you may not use this file except in compliance with the License.
# You may obtain a copy of the License at
#
# http://www.apache.org/licenses/LICENSE-2.0
#
# Unless required by applicable law or agreed to in writing, software
# distributed under the License is distributed on an "AS IS" BASIS,
# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
# See the License for the specific language governing permissions and
# limitations under the License.
#
# %CopyrightEnd%
#
#
# The instructions that follows are only known by the loader and the emulator.
# They can be changed without recompiling old Beam files.
#
# Instructions starting with a "i_" prefix are instructions produced by
# instruction transformations; thus, they never occur in BEAM files.
#
# The too_old_compiler/0 instruction is specially handled in beam_load.c
# to produce a user-friendly message informing the user that the module
# needs to be re-compiled with a modern compiler.
too_old_compiler/0
too_old_compiler | never() =>
# In R9C and earlier, the loader used to insert special instructions inside
# the module_info/0,1 functions. (In R10B and later, the compiler inserts
# an explicit call to an undocumented BIF, so that no loader trickery is
# necessary.) Since the instructions don't work correctly in R12B, simply
# refuse to load the module.
func_info M=a a==am_module_info A=u==0 | label L | move n x==0 => too_old_compiler
func_info M=a a==am_module_info A=u==1 | label L | move n x==0 => too_old_compiler
# The undocumented and unsupported guard BIF is_constant/1 was removed
# in R13. The is_constant/2 operation is marked as obsolete in genop.tab,
# so the loader will automatically generate a too_old_compiler message
# it is used, but we need to handle the is_constant/1 BIF specially here.
bif1 Fail u$func:erlang:is_constant/1 Src Dst => too_old_compiler
# Since the constant pool was introduced in R12B, empty tuples ({})
# are literals. Therefore we no longer need to allow put_tuple/2
# with a tuple size of zero.
put_tuple u==0 d => too_old_compiler
#
# All the other instructions.
#
label L
i_func_info I a a I
int_code_end
i_generic_breakpoint
i_debug_breakpoint
i_return_time_trace
i_return_to_trace
i_yield
return
#
# To ensure that a "move Src x(0)" instruction can be combined
# with the following call instruction, we need to make sure that
# there is no line/1 instruction between the move and the call.
#
# A tail-recursive call to an external function (non-BIF) will
# never be saved on the stack, so there is no reason to keep
# the line instruction. (The compiler did not remove the line
# instruction because it cannot tell the difference between
# BIFs and ordinary Erlang functions.)
#
move S X0=x==0 | line Loc | call_ext Ar Func => \
line Loc | move S X0 | call_ext Ar Func
move S X0=x==0 | line Loc | call_ext_last Ar Func=u$is_not_bif D => \
move S X0 | call_ext_last Ar Func D
move S X0=x==0 | line Loc | call_ext_only Ar Func=u$is_not_bif => \
move S X0 | call_ext_only Ar Func
move S X0=x==0 | line Loc | call Ar Func => \
line Loc | move S X0 | call Ar Func
line Loc | func_info M F A => func_info M F A | line Loc
line I
%macro: allocate Allocate -pack
%macro: allocate_zero AllocateZero -pack
%macro: allocate_heap AllocateHeap -pack
%macro: allocate_heap_zero AllocateHeapZero -pack
%macro: test_heap TestHeap -pack
allocate t t
allocate_heap t I t
deallocate I
init y
allocate_zero t t
allocate_heap_zero t I t
trim N Remaining => i_trim N
i_trim I
test_heap I t
allocate_heap S u==0 R => allocate S R
allocate_heap_zero S u==0 R => allocate_zero S R
init2 y y
init3 y y y
init Y1 | init Y2 | init Y3 => init3 Y1 Y2 Y3
init Y1 | init Y2 => init2 Y1 Y2
%macro: init2 Init2 -pack
%macro: init3 Init3 -pack
# Selecting values
select_val S=aiq Fail=f Size=u Rest=* => const_select_val(S, Fail, Size, Rest)
select_val S=s Fail=f Size=u Rest=* | use_jump_tab(Size, Rest) => \
gen_jump_tab(S, Fail, Size, Rest)
is_integer Fail=f S | select_val S=s Fail=f Size=u Rest=* | use_jump_tab(Size, Rest) => \
gen_jump_tab(S, Fail, Size, Rest)
is_integer TypeFail=f S | select_val S=s Fail=f Size=u Rest=* | \
mixed_types(Size, Rest) => \
gen_split_values(S, TypeFail, Fail, Size, Rest)
select_val S=s Fail=f Size=u Rest=* | mixed_types(Size, Rest) => \
gen_split_values(S, Fail, Fail, Size, Rest)
is_integer Fail=f S | select_val S=d Fail=f Size=u Rest=* | \
fixed_size_values(Size, Rest) => gen_select_val(S, Fail, Size, Rest)
is_atom Fail=f S | select_val S=d Fail=f Size=u Rest=* | \
fixed_size_values(Size, Rest) => gen_select_val(S, Fail, Size, Rest)
select_val S=s Fail=f Size=u Rest=* | floats_or_bignums(Size, Rest) => \
gen_select_literals(S, Fail, Size, Rest)
select_val S=d Fail=f Size=u Rest=* | fixed_size_values(Size, Rest) => \
gen_select_val(S, Fail, Size, Rest)
is_tuple Fail=f S | select_tuple_arity S=d Fail=f Size=u Rest=* => \
gen_select_tuple_arity(S, Fail, Size, Rest)
select_tuple_arity S=d Fail=f Size=u Rest=* => \
gen_select_tuple_arity(S, Fail, Size, Rest)
i_select_val_bins x f I
i_select_val_bins y f I
i_select_val_lins x f I
i_select_val_lins y f I
i_select_val2 x f c c f f
i_select_val2 y f c c f f
i_select_tuple_arity x f I
i_select_tuple_arity y f I
i_select_tuple_arity2 x f A A f f
i_select_tuple_arity2 y f A A f f
i_jump_on_val_zero x f I
i_jump_on_val_zero y f I
i_jump_on_val x f I I
i_jump_on_val y f I I
%macro: get_list GetList -pack
get_list x x x
get_list x x y
get_list x y x
get_list x y y
get_list y x x
get_list y x y
get_list y y x
get_list y y y
# The following get_list instructions using x(0) are frequently used.
get_list r x x
get_list r r y
get_list x r x
get_list r x y
get_list r y r
get_list r x r
# Old-style catch.
catch y f
catch_end y
# Try/catch.
try Y F => catch Y F
try_case Y => try_end Y
try_end y
try_case_end s
# Destructive set tuple element
set_tuple_element s d P
# Get tuple element
%macro: i_get_tuple_element GetTupleElement -pack
i_get_tuple_element x P x
i_get_tuple_element y P x
%cold
i_get_tuple_element x P y
i_get_tuple_element y P y
%hot
%macro: i_get_tuple_element2 GetTupleElement2 -pack
i_get_tuple_element2 x P x
%macro: i_get_tuple_element2y GetTupleElement2Y -pack
i_get_tuple_element2y x P y y
%macro: i_get_tuple_element3 GetTupleElement3 -pack
i_get_tuple_element3 x P x
%macro: is_number IsNumber -fail_action
%cold
is_number f x
is_number f y
%hot
is_number Fail=f i =>
is_number Fail=f na => jump Fail
is_number Fail Literal=q => move Literal x | is_number Fail x
jump f
case_end NotInX=cy => move NotInX x | case_end x
badmatch NotInX=cy => move NotInX x | badmatch x
case_end x
badmatch x
if_end
# Operands for raise/2 are almost always in x(2) and x(1).
# Optimize for that case.
raise x==2 x==1 => i_raise
raise Trace=y Value=y => move Trace x=2 | move Value x=1 | i_raise
raise Trace Value => move Trace x=3 | move Value x=1 | move x=3 x=2 | i_raise
i_raise
# Internal now, but could be useful to make known to the compiler.
badarg j
system_limit j
move C=cxy x==0 | jump Lbl => move_jump Lbl C
%macro: move_jump MoveJump -nonext
move_jump f n
move_jump f c
move_jump f x
move_jump f y
# Movement to and from the stack is common
# Try to pack as much as we can into one instruction
# Window move
move_window/5
move_window/6
# x -> y
move X1=x Y1=y | move X2=x Y2=y | move X3=x Y3=y | succ(Y1,Y2) | succ(Y2,Y3) => \
move_window X1 X2 X3 Y1 Y3
move_window X1=x X2=x X3=x Y1=y Y3=y | move X4=x Y4=y | succ(Y3,Y4) => \
move_window X1 X2 X3 X4 Y1 Y4
move_window X1=x X2=x X3=x X4=x Y1=y Y4=y | move X5=x Y5=y | succ(Y4,Y5) => \
move_window5 X1 X2 X3 X4 X5 Y1
move_window X1=x X2=x X3=x Y1=y Y3=y => move_window3 X1 X2 X3 Y1
move_window X1=x X2=x X3=x X4=x Y1=y Y4=y => move_window4 X1 X2 X3 X4 Y1
%macro: move_window3 MoveWindow3 -pack
%macro: move_window4 MoveWindow4 -pack
%macro: move_window5 MoveWindow5 -pack
move_window3 x x x y
move_window4 x x x x y
move_window5 x x x x x y
# Swap registers.
move R1=x Tmp=x | move R2=xy R1 | move Tmp R2 => swap_temp R1 R2 Tmp
swap_temp R1 R2 Tmp | line Loc | apply Live | is_killed_apply(Tmp, Live) => \
swap R1 R2 | line Loc | apply Live
swap_temp R1 R2 Tmp | line Loc | call Live Addr | is_killed(Tmp, Live) => \
swap R1 R2 | line Loc | call Live Addr
swap_temp R1 R2 Tmp | call_only Live Addr | \
is_killed(Tmp, Live) => swap R1 R2 | call_only Live Addr
swap_temp R1 R2 Tmp | call_last Live Addr D | \
is_killed(Tmp, Live) => swap R1 R2 | call_last Live Addr D
swap_temp R1 R2 Tmp | line Loc | call_ext Live Addr | is_killed(Tmp, Live) => \
swap R1 R2 | line Loc | call_ext Live Addr
swap_temp R1 R2 Tmp | line Loc | call_ext_only Live Addr | \
is_killed(Tmp, Live) => swap R1 R2 | line Loc | call_ext_only Live Addr
swap_temp R1 R2 Tmp | line Loc | call_ext_last Live Addr D | \
is_killed(Tmp, Live) => swap R1 R2 | line Loc | call_ext_last Live Addr D
%macro: swap_temp SwapTemp -pack
swap_temp x x x
swap_temp x y x
%macro: swap Swap -pack
swap x x
swap x y
move Src=x D1=x | move Src=x D2=x => move_dup Src D1 D2
move Src=x SD=x | move SD=x D=x => move_dup Src SD D
move Src=x D1=x | move Src=x D2=y => move_dup Src D1 D2
move Src=y SD=x | move SD=x D=y => move_dup Src SD D
move Src=x SD=x | move SD=x D=y => move_dup Src SD D
move Src=y SD=x | move SD=x D=x => move_dup Src SD D
move SD=x D=x | move Src=xy SD=x => move_shift Src SD D
move SD=y D=x | move Src=x SD=y => move_shift Src SD D
move SD=x D=y | move Src=x SD=x => move_shift Src SD D
# The transformations above guarantee that the source for
# the second move is not the same as the destination for
# the first move. That means that we can do the moves in
# parallel (fetch both values, then store them) which could
# be faster.
move X1=x Y1=y | move X2=x Y2=y => move2_par X1 Y1 X2 Y2
move Y1=y X1=x | move Y2=y X2=x => move2_par Y1 X1 Y2 X2
move X1=x X2=x | move X3=x X4=x => move2_par X1 X2 X3 X4
move X1=x X2=x | move X3=x Y1=y => move2_par X1 X2 X3 Y1
move S1=x S2=x | move X1=x Y1=y => move2_par S1 S2 X1 Y1
move S1=y S2=x | move X1=x Y1=y => move2_par S1 S2 X1 Y1
move Y1=y X1=x | move S1=x D1=x => move2_par Y1 X1 S1 D1
move S1=x D1=x | move Y1=y X1=x => move2_par S1 D1 Y1 X1
move2_par X1=x Y1=y X2=x Y2=y | move X3=x Y3=y => move3 X1 Y1 X2 Y2 X3 Y3
move2_par Y1=y X1=x Y2=y X2=x | move Y3=y X3=x => move3 Y1 X1 Y2 X2 Y3 X3
move2_par X1=x X2=x X3=x X4=x | move X5=x X6=x => move3 X1 X2 X3 X4 X5 X6
move C=aiq X=x==1 => move_x1 C
move C=aiq X=x==2 => move_x2 C
move_x1 c
move_x2 c
%macro: move_shift MoveShift -pack
move_shift x x x
move_shift y x x
move_shift x y x
move_shift x x y
%macro: move_dup MoveDup -pack
move_dup x x x
move_dup x x y
move_dup y x x
move_dup y x y
%macro: move2_par Move2Par -pack
move2_par x y x y
move2_par y x y x
move2_par x x x x
move2_par x x x y
move2_par y x x y
move2_par x x y x
move2_par y x x x
%macro: move3 Move3 -pack
move3 x y x y x y
move3 y x y x y x
move3 x x x x x x
# The compiler almost never generates a "move Literal y(Y)" instruction,
# so let's cheat if we encounter one.
move S=n D=y => init D
move S=c D=y => move S x | move x D
%macro:move Move -pack -gen_dest
move x x
move x y
move y x
move c x
move n x
move y y
# The following move instructions using x(0) are frequently used.
move x r
move r x
move y r
move c r
move r y
# Receive operations.
loop_rec Fail x==0 | smp_mark_target_label(Fail) => i_loop_rec Fail
label L | wait_timeout Fail Src | smp_already_locked(L) => label L | i_wait_timeout_locked Fail Src
wait_timeout Fail Src => i_wait_timeout Fail Src
i_wait_timeout Fail Src=aiq => gen_literal_timeout(Fail, Src)
i_wait_timeout_locked Fail Src=aiq => gen_literal_timeout_locked(Fail, Src)
label L | wait Fail | smp_already_locked(L) => label L | wait_locked Fail
wait Fail | smp() => wait_unlocked Fail
label L | timeout | smp_already_locked(L) => label L | timeout_locked
remove_message
timeout
timeout_locked
i_loop_rec f
loop_rec_end f
wait f
wait_locked f
wait_unlocked f
i_wait_timeout f I
i_wait_timeout f s
i_wait_timeout_locked f I
i_wait_timeout_locked f s
i_wait_error
i_wait_error_locked
send
#
# Optimized comparisons with one immediate/literal operand.
#
is_eq_exact Lbl R=xy C=ian => i_is_eq_exact_immed Lbl R C
is_eq_exact Lbl R=xy C=q => i_is_eq_exact_literal Lbl R C
is_ne_exact Lbl R=xy C=ian => i_is_ne_exact_immed Lbl R C
is_ne_exact Lbl R=xy C=q => i_is_ne_exact_literal Lbl R C
%macro: i_is_eq_exact_immed EqualImmed -fail_action
i_is_eq_exact_immed f r c
i_is_eq_exact_immed f x c
i_is_eq_exact_immed f y c
i_is_eq_exact_literal f x c
i_is_eq_exact_literal f y c
%macro: i_is_ne_exact_immed NotEqualImmed -fail_action
i_is_ne_exact_immed f x c
i_is_ne_exact_immed f y c
i_is_ne_exact_literal f x c
i_is_ne_exact_literal f y c
is_eq_exact Lbl Y=y X=x => is_eq_exact Lbl X Y
%macro: is_eq_exact EqualExact -fail_action -pack
is_eq_exact f x x
is_eq_exact f x y
is_eq_exact f s s
%macro: is_lt IsLessThan -fail_action
is_lt f x x
is_lt f x c
is_lt f c x
%cold
is_lt f s s
%hot
%macro: is_ge IsGreaterEqual -fail_action
is_ge f x x
is_ge f x c
is_ge f c x
%cold
is_ge f s s
%hot
%macro: is_ne_exact NotEqualExact -fail_action
is_ne_exact f s s
%macro: is_eq Equal -fail_action
is_eq f s s
%macro: is_ne NotEqual -fail_action
is_ne f s s
#
# Putting things.
#
put_tuple Arity Dst => i_put_tuple Dst u
i_put_tuple Dst Arity Puts=* | put S1 | put S2 | \
put S3 | put S4 | put S5 => \
tuple_append_put5(Arity, Dst, Puts, S1, S2, S3, S4, S5)
i_put_tuple Dst Arity Puts=* | put S => \
tuple_append_put(Arity, Dst, Puts, S)
i_put_tuple/2
%macro:i_put_tuple PutTuple -pack -goto:do_put_tuple
i_put_tuple x I
i_put_tuple y I
#
# The instruction "put_list Const [] Dst" were generated in rare
# circumstances up to and including OTP 18. Starting with OTP 19,
# AFAIK, it should never be generated.
#
put_list Const=c n Dst => move Const x | put_list x n Dst
%macro:put_list PutList -pack -gen_dest
put_list x n x
put_list y n x
put_list x x x
put_list y x x
put_list y y x
put_list x y x
put_list y x x
# put_list SrcReg Constant Dst
put_list x c x
put_list x c y
put_list y c x
# put_list Constant SrcReg Dst
put_list c x x
put_list c y x
# The following put_list instructions using x(0) are frequently used.
put_list y r r
put_list x r r
put_list r n r
put_list r n x
put_list r x x
put_list r x r
put_list x x r
%cold
put_list s s d
%hot
#
# Some more only used by the emulator
#
normal_exit
continue_exit
apply_bif
call_nif
call_error_handler
error_action_code
return_trace
#
# Instruction transformations & folded instructions.
#
# Note: There is no 'move_return y r', since there never are any y registers
# when we do move_return (if we have y registers, we must do move_deallocate_return).
move S x==0 | return => move_return S
%macro: move_return MoveReturn -nonext
move_return x
move_return c
move_return n
move S x==0 | deallocate D | return => move_deallocate_return S D
%macro: move_deallocate_return MoveDeallocateReturn -pack -nonext
move_deallocate_return x Q
move_deallocate_return y Q
move_deallocate_return c Q
move_deallocate_return n Q
deallocate D | return => deallocate_return D
%macro: deallocate_return DeallocateReturn -nonext
deallocate_return Q
test_heap Need u==1 | put_list Y=y x==0 x==0 => test_heap_1_put_list Need Y
%macro: test_heap_1_put_list TestHeapPutList -pack
test_heap_1_put_list I y
# Test tuple & arity (head)
is_tuple Fail Literal=q => move Literal x | is_tuple Fail x
is_tuple Fail=f c => jump Fail
is_tuple Fail=f S=xy | test_arity Fail=f S=xy Arity => is_tuple_of_arity Fail S Arity
%macro:is_tuple_of_arity IsTupleOfArity -fail_action
is_tuple_of_arity f r A
is_tuple_of_arity f x A
is_tuple_of_arity f y A
%macro: is_tuple IsTuple -fail_action
is_tuple f r
is_tuple f x
is_tuple f y
test_arity Fail Literal=q Arity => move Literal x | test_arity Fail x Arity
test_arity Fail=f c Arity => jump Fail
%macro: test_arity IsArity -fail_action
test_arity f x A
test_arity f y A
get_tuple_element Reg=x P1 D1=x | get_tuple_element Reg=x P2 D2=x | \
get_tuple_element Reg=x P3 D3=x | \
succ(P1, P2) | succ(P2, P3) | \
succ(D1, D2) | succ(D2, D3) => i_get_tuple_element3 Reg P1 D1
get_tuple_element Reg=x P1 D1=x | get_tuple_element Reg=x P2 D2=x | \
succ(P1, P2) | succ(D1, D2) => i_get_tuple_element2 Reg P1 D1
get_tuple_element Reg=x P1 D1=y | get_tuple_element Reg=x P2 D2=y | \
succ(P1, P2) => i_get_tuple_element2y Reg P1 D1 D2
get_tuple_element Reg P Dst => i_get_tuple_element Reg P Dst
is_integer Fail=f i =>
is_integer Fail=f an => jump Fail
is_integer Fail Literal=q => move Literal x | is_integer Fail x
is_integer Fail=f S=x | allocate Need Regs => is_integer_allocate Fail S Need Regs
%macro: is_integer_allocate IsIntegerAllocate -fail_action
is_integer_allocate f x I I
%macro: is_integer IsInteger -fail_action
is_integer f x
is_integer f y
is_list Fail=f n =>
is_list Fail Literal=q => move Literal x | is_list Fail x
is_list Fail=f c => jump Fail
%macro: is_list IsList -fail_action
is_list f x
%cold
is_list f y
%hot
is_nonempty_list Fail=f S=x | allocate Need Rs => is_nonempty_list_allocate Fail S Need Rs
%macro:is_nonempty_list_allocate IsNonemptyListAllocate -fail_action -pack
is_nonempty_list_allocate f r I t
is_nonempty_list_allocate f x I t
is_nonempty_list F=f x==0 | test_heap I1 I2 => is_non_empty_list_test_heap F I1 I2
%macro: is_non_empty_list_test_heap IsNonemptyListTestHeap -fail_action -pack
is_non_empty_list_test_heap f I t
is_nonempty_list Fail=f S=x | get_list S D1=x D2=x => \
is_nonempty_list_get_list Fail S D1 D2
%macro: is_nonempty_list_get_list IsNonemptyListGetList -fail_action -pack
is_nonempty_list_get_list f r x x
is_nonempty_list_get_list f x x x
%macro: is_nonempty_list IsNonemptyList -fail_action
is_nonempty_list f x
is_nonempty_list f y
%macro: is_atom IsAtom -fail_action
is_atom f x
%cold
is_atom f y
%hot
is_atom Fail=f a =>
is_atom Fail=f niq => jump Fail
%macro: is_float IsFloat -fail_action
is_float f x
%cold
is_float f y
%hot
is_float Fail=f nai => jump Fail
is_float Fail Literal=q => move Literal x | is_float Fail x
is_nil Fail=f n =>
is_nil Fail=f qia => jump Fail
%macro: is_nil IsNil -fail_action
is_nil f x
is_nil f y
is_binary Fail Literal=q => move Literal x | is_binary Fail x
is_binary Fail=f c => jump Fail
%macro: is_binary IsBinary -fail_action
is_binary f x
%cold
is_binary f y
%hot
# XXX Deprecated.
is_bitstr Fail Term => is_bitstring Fail Term
is_bitstring Fail Literal=q => move Literal x | is_bitstring Fail x
is_bitstring Fail=f c => jump Fail
%macro: is_bitstring IsBitstring -fail_action
is_bitstring f x
%cold
is_bitstring f y
%hot
is_reference Fail=f cq => jump Fail
%macro: is_reference IsRef -fail_action
is_reference f x
%cold
is_reference f y
%hot
is_pid Fail=f cq => jump Fail
%macro: is_pid IsPid -fail_action
is_pid f x
%cold
is_pid f y
%hot
is_port Fail=f cq => jump Fail
%macro: is_port IsPort -fail_action
is_port f x
%cold
is_port f y
%hot
is_boolean Fail=f a==am_true =>
is_boolean Fail=f a==am_false =>
is_boolean Fail=f ac => jump Fail
%cold
%macro: is_boolean IsBoolean -fail_action
is_boolean f x
is_boolean f y
%hot
is_function2 Fail=f acq Arity => jump Fail
is_function2 Fail=f Fun a => jump Fail
is_function2 f s s
%macro: is_function2 IsFunction2 -fail_action
# Allocating & initializing.
allocate Need Regs | init Y => allocate_init Need Regs Y
init Y1 | init Y2 => init2 Y1 Y2
%macro: allocate_init AllocateInit -pack
allocate_init t I y
#################################################################
# External function and bif calls.
#################################################################
#
# The BIFs erts_internal:check_process_code/2 must be called like a function,
# to ensure that c_p->i (program counter) is set correctly (an ordinary
# BIF call doesn't set it).
#
call_ext u==2 Bif=u$bif:erts_internal:check_process_code/2 => i_call_ext Bif
call_ext_last u==2 Bif=u$bif:erts_internal:check_process_code/2 D => i_call_ext_last Bif D
call_ext_only u==2 Bif=u$bif:erts_internal:check_process_code/2 => i_call_ext_only Bif
#
# The BIFs erlang:garbage_collect/0 must be called like a function,
# to allow them to invoke the garbage collector. (The stack pointer must
# be saved and p->arity must be zeroed, which is not done on ordinary BIF calls.)
#
call_ext u==0 Bif=u$bif:erlang:garbage_collect/0 => i_call_ext Bif
call_ext_last u==0 Bif=u$bif:erlang:garbage_collect/0 D => i_call_ext_last Bif D
call_ext_only u==0 Bif=u$bif:erlang:garbage_collect/0 => i_call_ext_only Bif
#
# put/2 and erase/1 must be able to do garbage collection, so we must call
# them like functions.
#
call_ext u==2 Bif=u$bif:erlang:put/2 => i_call_ext Bif
call_ext_last u==2 Bif=u$bif:erlang:put/2 D => i_call_ext_last Bif D
call_ext_only u==2 Bif=u$bif:erlang:put/2 => i_call_ext_only Bif
call_ext u==1 Bif=u$bif:erlang:erase/1 => i_call_ext Bif
call_ext_last u==1 Bif=u$bif:erlang:erase/1 D => i_call_ext_last Bif D
call_ext_only u==1 Bif=u$bif:erlang:erase/1 => i_call_ext_only Bif
#
# The process_info/1,2 BIF should be called like a function, to force
# the emulator to set c_p->current before calling it (a BIF call doesn't
# set it).
#
# In addition, we force the use of a non-tail-recursive call. This will ensure
# that c_p->cp points into the function making the call.
#
call_ext u==1 Bif=u$bif:erlang:process_info/1 => i_call_ext Bif
call_ext_last u==1 Bif=u$bif:erlang:process_info/1 D => i_call_ext Bif | deallocate_return D
call_ext_only Ar=u==1 Bif=u$bif:erlang:process_info/1 => allocate u Ar | i_call_ext Bif | deallocate_return u
call_ext u==2 Bif=u$bif:erlang:process_info/2 => i_call_ext Bif
call_ext_last u==2 Bif=u$bif:erlang:process_info/2 D => i_call_ext Bif | deallocate_return D
call_ext_only Ar=u==2 Bif=u$bif:erlang:process_info/2 => allocate u Ar | i_call_ext Bif | deallocate_return u
#
# load_nif/2 also needs to know calling function like process_info
#
call_ext u==2 Bif=u$bif:erlang:load_nif/2 => i_call_ext Bif
call_ext_last u==2 Bif=u$bif:erlang:load_nif/2 D => i_call_ext Bif | deallocate_return D
call_ext_only Ar=u==2 Bif=u$bif:erlang:load_nif/2 => allocate u Ar | i_call_ext Bif | deallocate_return u
#
# apply/2 is an instruction, not a BIF.
#
call_ext u==2 u$func:erlang:apply/2 => i_apply_fun
call_ext_last u==2 u$func:erlang:apply/2 D => i_apply_fun_last D
call_ext_only u==2 u$func:erlang:apply/2 => i_apply_fun_only
#
# The apply/3 BIF is an instruction.
#
call_ext u==3 u$bif:erlang:apply/3 => i_apply
call_ext_last u==3 u$bif:erlang:apply/3 D => i_apply_last D
call_ext_only u==3 u$bif:erlang:apply/3 => i_apply_only
#
# The exit/1 and throw/1 BIFs never execute the instruction following them;
# thus there is no need to generate any return instruction.
#
call_ext_last u==1 Bif=u$bif:erlang:exit/1 D => call_bif Bif
call_ext_last u==1 Bif=u$bif:erlang:throw/1 D => call_bif Bif
call_ext_only u==1 Bif=u$bif:erlang:exit/1 => call_bif Bif
call_ext_only u==1 Bif=u$bif:erlang:throw/1 => call_bif Bif
#
# The error/1 and error/2 BIFs never execute the instruction following them;
# thus there is no need to generate any return instruction.
# However, they generate stack backtraces, so if the call instruction
# is call_ext_only/2 instruction, we explicitly do an allocate/2 to store
# the continuation pointer on the stack.
#
call_ext_last u==1 Bif=u$bif:erlang:error/1 D => call_bif Bif
call_ext_last u==2 Bif=u$bif:erlang:error/2 D => call_bif Bif
call_ext_only Ar=u==1 Bif=u$bif:erlang:error/1 => \
allocate u Ar | call_bif Bif
call_ext_only Ar=u==2 Bif=u$bif:erlang:error/2 => \
allocate u Ar | call_bif Bif
#
# The yield/0 BIF is an instruction
#
call_ext u==0 u$func:erlang:yield/0 => i_yield
call_ext_last u==0 u$func:erlang:yield/0 D => i_yield | deallocate_return D
call_ext_only u==0 u$func:erlang:yield/0 => i_yield | return
#
# The hibernate/3 BIF is an instruction.
#
call_ext u==3 u$func:erlang:hibernate/3 => i_hibernate
call_ext_last u==3 u$func:erlang:hibernate/3 D => i_hibernate
call_ext_only u==3 u$func:erlang:hibernate/3 => i_hibernate
#
# If VM probes are not enabled, we want to short-circult calls to
# the dt tag BIFs to make them as cheap as possible.
#
%unless USE_VM_PROBES
call_ext Arity u$func:erlang:dt_get_tag/0 => \
move a=am_undefined x=0
call_ext_last Arity u$func:erlang:dt_get_tag/0 D => \
move a=am_undefined x=0 | deallocate D | return
call_ext_only Arity u$func:erlang:dt_get_tag/0 => \
move a=am_undefined x=0 | return
move Any x==0 | call_ext Arity u$func:erlang:dt_put_tag/1 => \
move a=am_undefined x=0
move Any x==0 | call_ext_last Arity u$func:erlang:dt_put_tag/1 D => \
move a=am_undefined x=0 | deallocate D | return
move Any x==0 | call_ext_only Arity u$func:erlang:dt_put_tag/1 => \
move a=am_undefined x=0 | return
call_ext Arity u$func:erlang:dt_put_tag/1 => \
move a=am_undefined x=0
call_ext_last Arity u$func:erlang:dt_put_tag/1 D => \
move a=am_undefined x=0 | deallocate D | return
call_ext_only Arity u$func:erlang:dt_put_tag/1 => \
move a=am_undefined x=0 | return
call_ext Arity u$func:erlang:dt_get_tag_data/0 => \
move a=am_undefined x=0
call_ext_last Arity u$func:erlang:dt_get_tag_data/0 D => \
move a=am_undefined x=0 | deallocate D | return
call_ext_only Arity u$func:erlang:dt_get_tag_data/0 => \
move a=am_undefined x=0 | return
move Any x==0 | call_ext Arity u$func:erlang:dt_spread_tag/1 => \
move a=am_true x=0
move Any x==0 | call_ext_last Arity u$func:erlang:dt_spread_tag/1 D => \
move a=am_true x=0 | deallocate D | return
move Any x==0 | call_ext_only Arity u$func:erlang:dt_spread_tag/1 => \
move a=am_true x=0 | return
call_ext Arity u$func:erlang:dt_spread_tag/1 => \
move a=am_true x=0
call_ext_last Arity u$func:erlang:dt_spread_tag/1 D => \
move a=am_true x=0 | deallocate D | return
call_ext_only Arity u$func:erlang:dt_spread_tag/1 => \
move a=am_true x=0 | return
move Any x==0 | call_ext Arity u$func:erlang:dt_restore_tag/1 => \
move a=am_true x=0
move Any x==0 | call_ext_last Arity u$func:erlang:dt_restore_tag/1 D => \
move a=am_true x=0 | deallocate D | return
move Any x==0 | call_ext_only Arity u$func:erlang:dt_restore_tag/1 => \
move a=am_true x=0 | return
call_ext Arity u$func:erlang:dt_restore_tag/1 => \
move a=am_true x=0
call_ext_last Arity u$func:erlang:dt_restore_tag/1 D => \
move a=am_true x=0 | deallocate D | return
call_ext_only Arity u$func:erlang:dt_restore_tag/1 => \
move a=am_true x=0 | return
move Any x==0 | call_ext Arity u$func:erlang:dt_prepend_vm_tag_data/1 => \
move Any x=0
move Any x==0 | call_ext_last Arity u$func:erlang:dt_prepend_vm_tag_data/1 D => \
move Any x=0 | deallocate D | return
move Any x==0 | call_ext_only Arity u$func:erlang:dt_prepend_vm_tag_data/1 => \
move Any x=0 | return
call_ext Arity u$func:erlang:dt_prepend_vm_tag_data/1 =>
call_ext_last Arity u$func:erlang:dt_prepend_vm_tag_data/1 D => \
deallocate D | return
call_ext_only Arity u$func:erlang:dt_prepend_vm_tag_data/1 => \
return
move Any x==0 | call_ext Arity u$func:erlang:dt_append_vm_tag_data/1 => \
move Any x=0
move Any x==0 | call_ext_last Arity u$func:erlang:dt_append_vm_tag_data/1 D => \
move Any x=0 | deallocate D | return
move Any x==0 | call_ext_only Arity u$func:erlang:dt_append_vm_tag_data/1 => \
move Any x=0 | return
call_ext Arity u$func:erlang:dt_append_vm_tag_data/1 =>
call_ext_last Arity u$func:erlang:dt_append_vm_tag_data/1 D => \
deallocate D | return
call_ext_only Arity u$func:erlang:dt_append_vm_tag_data/1 => \
return
# Can happen after one of the transformations above.
move Discarded x==0 | move Something x==0 => move Something x=0
%endif
call_ext u==0 u$func:os:perf_counter/0 => \
i_perf_counter
call_ext_last u==0 u$func:os:perf_counter/0 D => \
i_perf_counter | deallocate_return D
call_ext_only u==0 u$func:os:perf_counter/0 => \
i_perf_counter | return
#
# The general case for BIFs that have no special instructions.
# A BIF used in the tail must be followed by a return instruction.
#
# To make trapping and stack backtraces work correctly, we make sure that
# the continuation pointer is always stored on the stack.
call_ext u Bif=u$is_bif => call_bif Bif
call_ext_last u Bif=u$is_bif D => call_bif Bif | deallocate_return D
call_ext_only Ar=u Bif=u$is_bif => \
allocate u Ar | call_bif Bif | deallocate_return u
#
# Any remaining calls are calls to Erlang functions, not BIFs.
# We rename the instructions to internal names. This is necessary,
# to avoid an end-less loop, because we want to call a few BIFs
# with call instructions.
#
move S=c x==0 | call_ext Ar=u Func=u$is_not_bif => i_move_call_ext S Func
move S=c x==0 | call_ext_last Ar=u Func=u$is_not_bif D => i_move_call_ext_last Func D S
move S=c x==0 | call_ext_only Ar=u Func=u$is_not_bif => i_move_call_ext_only Func S
call_ext Ar Func => i_call_ext Func
call_ext_last Ar Func D => i_call_ext_last Func D
call_ext_only Ar Func => i_call_ext_only Func
i_apply
i_apply_last P
i_apply_only
i_apply_fun
i_apply_fun_last P
i_apply_fun_only
i_hibernate
i_perf_counter
call_bif e
#
# Calls to non-building and guard BIFs.
#
bif0 u$bif:erlang:self/0 Dst=d => self Dst
bif0 u$bif:erlang:node/0 Dst=d => node Dst
bif1 Fail Bif=u$bif:erlang:get/1 Src=s Dst=d => gen_get(Src, Dst)
bif2 Jump=j u$bif:erlang:element/2 S1=s S2=xy Dst=d => gen_element(Jump, S1, S2, Dst)
bif1 p Bif S1 Dst => bif1_body Bif S1 Dst
bif2 p Bif S1 S2 Dst => i_bif2_body Bif S1 S2 Dst
bif2 Fail Bif S1 S2 Dst => i_bif2 Fail Bif S1 S2 Dst
i_get_hash c I d
i_get s d
%macro: self Self
self x
self y
%macro: node Node
node x
%cold
node y
%hot
i_fast_element j x I d
i_fast_element j y I d
i_element j x s d
i_element j y s d
bif1 f b s d
bif1_body b s d
i_bif2 f b s s d
i_bif2_body b s s d
#
# Internal calls.
#
move S=c x==0 | call Ar P=f => i_move_call S P
move S=s x==0 | call Ar P=f => move_call S P
i_move_call c f
%macro:move_call MoveCall -arg_f -size -nonext
move_call/2
move_call x f
move_call y f
move S=c x==0 | call_last Ar P=f D => i_move_call_last P D S
move S x==0 | call_last Ar P=f D => move_call_last S P D
i_move_call_last f P c
%macro:move_call_last MoveCallLast -arg_f -nonext -pack
move_call_last/3
move_call_last x f Q
move_call_last y f Q
move S=c x==0 | call_only Ar P=f => i_move_call_only P S
move S=x x==0 | call_only Ar P=f => move_call_only S P
i_move_call_only f c
%macro:move_call_only MoveCallOnly -arg_f -nonext
move_call_only/2
move_call_only x f
call Ar Func => i_call Func
call_last Ar Func D => i_call_last Func D
call_only Ar Func => i_call_only Func
i_call f
i_call_last f P
i_call_only f
i_call_ext e
i_call_ext_last e P
i_call_ext_only e
i_move_call_ext c e
i_move_call_ext_last e P c
i_move_call_ext_only e c
# Fun calls.
call_fun Arity | deallocate D | return => i_call_fun_last Arity D
call_fun Arity => i_call_fun Arity
i_call_fun I
i_call_fun_last I P
make_fun2 OldIndex=u => gen_make_fun2(OldIndex)
%macro: i_make_fun MakeFun -pack
%cold
i_make_fun I t
%hot
%macro: is_function IsFunction -fail_action
is_function f x
is_function f y
is_function Fail=f c => jump Fail
func_info M F A => i_func_info u M F A
# ================================================================
# New bit syntax matching (R11B).
# ================================================================
%cold
bs_start_match2 Fail=f ica X Y D => jump Fail
bs_start_match2 Fail Bin X Y D => i_bs_start_match2 Bin Fail X Y D
i_bs_start_match2 x f I I d
i_bs_start_match2 y f I I d
bs_save2 Reg Index => gen_bs_save(Reg, Index)
i_bs_save2 x I
bs_restore2 Reg Index => gen_bs_restore(Reg, Index)
i_bs_restore2 x I
# Matching integers
bs_match_string Fail Ms Bits Val => i_bs_match_string Ms Fail Bits Val
i_bs_match_string x f I I
# Fetching integers from binaries.
bs_get_integer2 Fail=f Ms=x Live=u Sz=sq Unit=u Flags=u Dst=d => \
gen_get_integer2(Fail, Ms, Live, Sz, Unit, Flags, Dst)
i_bs_get_integer_small_imm x I f I d
i_bs_get_integer_imm x I I f I d
i_bs_get_integer f I I s s d
i_bs_get_integer_8 x f d
i_bs_get_integer_16 x f d
i_bs_get_integer_32 x f I d
# Fetching binaries from binaries.
bs_get_binary2 Fail=f Ms=x Live=u Sz=sq Unit=u Flags=u Dst=d => \
gen_get_binary2(Fail, Ms, Live, Sz, Unit, Flags, Dst)
%macro: i_bs_get_binary_imm2 BsGetBinaryImm_2 -fail_action -gen_dest
%macro: i_bs_get_binary2 BsGetBinary_2 -fail_action -gen_dest
%macro: i_bs_get_binary_all2 BsGetBinaryAll_2 -fail_action -gen_dest
i_bs_get_binary_imm2 f x I I I d
i_bs_get_binary2 f x I s I d
i_bs_get_binary_all2 f x I I d
i_bs_get_binary_all_reuse x f I
# Fetching float from binaries.
bs_get_float2 Fail=f Ms=x Live=u Sz=s Unit=u Flags=u Dst=d => \
gen_get_float2(Fail, Ms, Live, Sz, Unit, Flags, Dst)
bs_get_float2 Fail=f Ms=x Live=u Sz=q Unit=u Flags=u Dst=d => jump Fail
%macro: i_bs_get_float2 BsGetFloat2 -fail_action -gen_dest
i_bs_get_float2 f x I s I d
# Miscellanous
bs_skip_bits2 Fail=f Ms=x Sz=sq Unit=u Flags=u => \
gen_skip_bits2(Fail, Ms, Sz, Unit, Flags)
%macro: i_bs_skip_bits_imm2 BsSkipBitsImm2 -fail_action
i_bs_skip_bits_imm2 f x I
%macro: i_bs_skip_bits2 BsSkipBits2 -fail_action
i_bs_skip_bits2 f x x I
i_bs_skip_bits2 f x y I
%macro: i_bs_skip_bits_all2 BsSkipBitsAll2 -fail_action
i_bs_skip_bits_all2 f x I
bs_test_tail2 Fail=f Ms=x Bits=u==0 => bs_test_zero_tail2 Fail Ms
bs_test_tail2 Fail=f Ms=x Bits=u => bs_test_tail_imm2 Fail Ms Bits
bs_test_zero_tail2 f x
bs_test_tail_imm2 f x I
bs_test_unit F Ms Unit=u==8 => bs_test_unit8 F Ms
bs_test_unit f x I
bs_test_unit8 f x
# An y register operand for bs_context_to_binary is rare,
# but can happen because of inlining.
bs_context_to_binary Y=y => move Y x | bs_context_to_binary x
bs_context_to_binary x
#
# Utf8/utf16/utf32 support. (R12B-5)
#
bs_get_utf8 Fail=f Ms=x u u Dst=d => i_bs_get_utf8 Ms Fail Dst
i_bs_get_utf8 x f d
bs_skip_utf8 Fail=f Ms=x u u => i_bs_get_utf8 Ms Fail x
bs_get_utf16 Fail=f Ms=x u Flags=u Dst=d => i_bs_get_utf16 Ms Fail Flags Dst
bs_skip_utf16 Fail=f Ms=x u Flags=u => i_bs_get_utf16 Ms Fail Flags x
i_bs_get_utf16 x f I d
bs_get_utf32 Fail=f Ms=x Live=u Flags=u Dst=d => \
bs_get_integer2 Fail Ms Live i=32 u=1 Flags Dst | \
i_bs_validate_unicode_retract Fail Dst Ms
bs_skip_utf32 Fail=f Ms=x Live=u Flags=u => \
bs_get_integer2 Fail Ms Live i=32 u=1 Flags x | \
i_bs_validate_unicode_retract Fail x Ms
i_bs_validate_unicode_retract j s s
%hot
#
# Constructing binaries
#
%cold
bs_init2 Fail Sz Words Regs Flags Dst | binary_too_big(Sz) => system_limit Fail
bs_init2 Fail Sz=u Words=u==0 Regs Flags Dst | should_gen_heap_bin(Sz) => \
i_bs_init_heap_bin Sz Regs Dst
bs_init2 Fail Sz=u Words=u==0 Regs Flags Dst => i_bs_init Sz Regs Dst
bs_init2 Fail Sz=u Words Regs Flags Dst | should_gen_heap_bin(Sz) => \
i_bs_init_heap_bin_heap Sz Words Regs Dst
bs_init2 Fail Sz=u Words Regs Flags Dst => \
i_bs_init_heap Sz Words Regs Dst
bs_init2 Fail Sz Words=u==0 Regs Flags Dst => \
i_bs_init_fail Sz Fail Regs Dst
bs_init2 Fail Sz Words Regs Flags Dst => \
i_bs_init_fail_heap Sz Words Fail Regs Dst
i_bs_init_fail x j I d
i_bs_init_fail y j I d
i_bs_init_fail_heap s I j I d
i_bs_init I I d
i_bs_init_heap_bin I I d
i_bs_init_heap I I I d
i_bs_init_heap_bin_heap I I I d
bs_init_bits Fail Sz=o Words Regs Flags Dst => system_limit Fail
bs_init_bits Fail Sz=u Words=u==0 Regs Flags Dst => i_bs_init_bits Sz Regs Dst
bs_init_bits Fail Sz=u Words Regs Flags Dst => i_bs_init_bits_heap Sz Words Regs Dst
bs_init_bits Fail Sz Words=u==0 Regs Flags Dst => \
i_bs_init_bits_fail Sz Fail Regs Dst
bs_init_bits Fail Sz Words Regs Flags Dst => \
i_bs_init_bits_fail_heap Sz Words Fail Regs Dst
i_bs_init_bits_fail x j I d
i_bs_init_bits_fail y j I d
i_bs_init_bits_fail_heap s I j I d
i_bs_init_bits I I d
i_bs_init_bits_heap I I I d
bs_add Fail S1=i==0 S2 Unit=u==1 D => move S2 D
bs_add j s s I d
bs_append Fail Size Extra Live Unit Bin Flags Dst => \
move Bin x | i_bs_append Fail Extra Live Unit Size Dst
bs_private_append Fail Size Unit Bin Flags Dst => \
i_bs_private_append Fail Unit Size Bin Dst
bs_init_writable
i_bs_append j I I I s d
i_bs_private_append j I s s d
#
# Storing integers into binaries.
#
bs_put_integer Fail=j Sz=sq Unit=u Flags=u Src=s => \
gen_put_integer(Fail, Sz, Unit, Flags, Src)
%macro: i_new_bs_put_integer NewBsPutInteger
%macro: i_new_bs_put_integer_imm NewBsPutIntegerImm
i_new_bs_put_integer j s I s
i_new_bs_put_integer_imm j I I s
#
# Utf8/utf16/utf32 support. (R12B-5)
#
bs_utf8_size j Src=s Dst=d => i_bs_utf8_size Src Dst
i_bs_utf8_size s d
bs_utf16_size j Src=s Dst=d => i_bs_utf16_size Src Dst
i_bs_utf16_size s d
bs_put_utf8 Fail u Src=s => i_bs_put_utf8 Fail Src
i_bs_put_utf8 j s
bs_put_utf16 j I s
bs_put_utf32 Fail=j Flags=u Src=s => \
i_bs_validate_unicode Fail Src | bs_put_integer Fail i=32 u=1 Flags Src
i_bs_validate_unicode j s
#
# Storing floats into binaries.
#
bs_put_float Fail Sz=q Unit Flags Val => badarg Fail
bs_put_float Fail=j Sz=s Unit=u Flags=u Src=s => \
gen_put_float(Fail, Sz, Unit, Flags, Src)
%macro: i_new_bs_put_float NewBsPutFloat
%macro: i_new_bs_put_float_imm NewBsPutFloatImm
i_new_bs_put_float j s I s
i_new_bs_put_float_imm j I I s
#
# Storing binaries into binaries.
#
bs_put_binary Fail=j Sz=s Unit=u Flags=u Src=s => \
gen_put_binary(Fail, Sz, Unit, Flags, Src)
%macro: i_new_bs_put_binary NewBsPutBinary
i_new_bs_put_binary j s I s
%macro: i_new_bs_put_binary_imm NewBsPutBinaryImm
i_new_bs_put_binary_imm j I s
%macro: i_new_bs_put_binary_all NewBsPutBinaryAll
i_new_bs_put_binary_all j s I
#
# Warning: The i_bs_put_string and i_new_bs_put_string instructions
# are specially treated in the loader.
# Don't change the instruction format unless you change the loader too.
#
bs_put_string I I
%hot
#
# New floating point instructions (R8).
#
fadd p FR1 FR2 FR3 => i_fadd FR1 FR2 FR3
fsub p FR1 FR2 FR3 => i_fsub FR1 FR2 FR3
fmul p FR1 FR2 FR3 => i_fmul FR1 FR2 FR3
fdiv p FR1 FR2 FR3 => i_fdiv FR1 FR2 FR3
fnegate p FR1 FR2 => i_fnegate FR1 FR2
fconv Arg=iqan Dst=l => move Arg x | fconv x Dst
fmove q l
fmove d l
fmove l d
fconv d l
i_fadd l l l
i_fsub l l l
i_fmul l l l
i_fdiv l l l
i_fnegate l l
fclearerror | no_fpe_signals() =>
fcheckerror p | no_fpe_signals() =>
fcheckerror p => i_fcheckerror
i_fcheckerror
fclearerror
#
# New apply instructions in R10B.
#
apply I
apply_last I P
#
# Map instructions in R17.
#
sorted_put_map_assoc/5
put_map_assoc F Map Dst Live Size Rest=* | map_key_sort(Size, Rest) => \
sorted_put_map_assoc F Map Dst Live Size Rest
sorted_put_map_exact/5
put_map_exact F Map Dst Live Size Rest=* | map_key_sort(Size, Rest) => \
sorted_put_map_exact F Map Dst Live Size Rest
sorted_put_map_assoc j Map Dst Live Size Rest=* | is_empty_map(Map) => \
new_map Dst Live Size Rest
sorted_put_map_assoc F Src=s Dst Live Size Rest=* => \
update_map_assoc F Src Dst Live Size Rest
sorted_put_map_assoc F Src Dst Live Size Rest=* => \
move Src x | update_map_assoc F x Dst Live Size Rest
sorted_put_map_exact F Src=s Dst Live Size Rest=* => \
update_map_exact F Src Dst Live Size Rest
sorted_put_map_exact F Src Dst Live Size Rest=* => \
move Src x | update_map_exact F x Dst Live Size Rest
new_map d I I
update_map_assoc j s d I I
update_map_exact j s d I I
is_map Fail Lit=q | literal_is_map(Lit) =>
is_map Fail cq => jump Fail
%macro: is_map IsMap -fail_action
is_map f x
is_map f y
## Transform has_map_fields #{ K1 := _, K2 := _ } to has_map_elements
has_map_fields Fail Src Size Rest=* => \
gen_has_map_fields(Fail, Src, Size, Rest)
## Transform get_map_elements(s) #{ K1 := V1, K2 := V2 }
get_map_elements Fail Src=xy Size=u==2 Rest=* => \
gen_get_map_element(Fail, Src, Size, Rest)
get_map_elements Fail Src Size Rest=* | map_key_sort(Size, Rest) => \
gen_get_map_elements(Fail, Src, Size, Rest)
i_get_map_elements f s I
i_get_map_element Fail Src=xy Key=y Dst => \
move Key x | i_get_map_element Fail Src x Dst
%macro: i_get_map_element_hash GetMapElementHash -fail_action
i_get_map_element_hash f x c I x
i_get_map_element_hash f y c I x
i_get_map_element_hash f x c I y
i_get_map_element_hash f y c I y
%macro: i_get_map_element GetMapElement -fail_action
i_get_map_element f x x x
i_get_map_element f y x x
i_get_map_element f x x y
i_get_map_element f y x y
#
# Convert the plus operations to a generic plus instruction.
#
gen_plus/5
gen_minus/5
gc_bif1 Fail Live u$bif:erlang:splus/1 Src Dst => \
gen_plus Fail Live Src i Dst
gc_bif2 Fail Live u$bif:erlang:splus/2 S1 S2 Dst => \
gen_plus Fail Live S1 S2 Dst
gc_bif1 Fail Live u$bif:erlang:sminus/1 Src Dst => \
gen_minus Fail Live i Src Dst
gc_bif2 Fail Live u$bif:erlang:sminus/2 S1 S2 Dst => \
gen_minus Fail Live S1 S2 Dst
#
# Optimize addition and subtraction of small literals using
# the i_increment/4 instruction (in bodies, not in guards).
#
gen_plus p Live Int=i Reg=d Dst => \
gen_increment(Reg, Int, Live, Dst)
gen_plus p Live Reg=d Int=i Dst => \
gen_increment(Reg, Int, Live, Dst)
gen_minus p Live Reg=d Int=i Dst | negation_is_small(Int) => \
gen_increment_from_minus(Reg, Int, Live, Dst)
#
# GCing arithmetic instructions.
#
gen_plus Fail Live S1 S2 Dst => i_plus Fail Live S1 S2 Dst
gen_minus Fail Live S1 S2 Dst => i_minus Fail Live S1 S2 Dst
gc_bif2 Fail Live u$bif:erlang:stimes/2 S1 S2 Dst => \
i_times Fail Live S1 S2 Dst
gc_bif2 Fail Live u$bif:erlang:div/2 S1 S2 Dst => \
i_m_div Fail Live S1 S2 Dst
gc_bif2 Fail Live u$bif:erlang:intdiv/2 S1 S2 Dst => \
i_int_div Fail Live S1 S2 Dst
gc_bif2 Fail Live u$bif:erlang:rem/2 S1 S2 Dst => \
i_rem Fail Live S1 S2 Dst
gc_bif2 Fail Live u$bif:erlang:bsl/2 S1 S2 Dst => \
i_bsl Fail Live S1 S2 Dst
gc_bif2 Fail Live u$bif:erlang:bsr/2 S1 S2 Dst => \
i_bsr Fail Live S1 S2 Dst
gc_bif2 Fail Live u$bif:erlang:band/2 S1 S2 Dst => \
i_band Fail Live S1 S2 Dst
gc_bif2 Fail Live u$bif:erlang:bor/2 S1 S2 Dst => \
i_bor Fail Live S1 S2 Dst
gc_bif2 Fail Live u$bif:erlang:bxor/2 S1 S2 Dst => \
i_bxor Fail Live S1 S2 Dst
gc_bif1 Fail I u$bif:erlang:bnot/1 Src Dst=d => i_int_bnot Fail Src I Dst
i_increment r I I d
i_increment x I I d
i_increment y I I d
i_plus j I x x d
i_plus j I x y d
i_plus j I s s d
i_minus j I x x d
i_minus j I s s d
i_times j I s s d
i_m_div j I s s d
i_int_div j I s s d
i_rem j I x x d
i_rem j I s s d
i_bsl j I s s d
i_bsr j I s s d
i_band j I x c d
i_band j I s s d
i_bor j I s s d
i_bxor j I s s d
i_int_bnot j s I d
#
# Old guard BIFs that creates heap fragments are no longer allowed.
#
bif1 Fail u$bif:erlang:length/1 s d => too_old_compiler
bif1 Fail u$bif:erlang:size/1 s d => too_old_compiler
bif1 Fail u$bif:erlang:abs/1 s d => too_old_compiler
bif1 Fail u$bif:erlang:float/1 s d => too_old_compiler
bif1 Fail u$bif:erlang:round/1 s d => too_old_compiler
bif1 Fail u$bif:erlang:trunc/1 s d => too_old_compiler
#
# Guard BIFs.
#
gc_bif1 Fail I Bif Src Dst => \
gen_guard_bif1(Fail, I, Bif, Src, Dst)
gc_bif2 Fail I Bif S1 S2 Dst => \
gen_guard_bif2(Fail, I, Bif, S1, S2, Dst)
gc_bif3 Fail I Bif S1 S2 S3 Dst => \
gen_guard_bif3(Fail, I, Bif, S1, S2, S3, Dst)
i_gc_bif1 j I s I d
i_gc_bif2 j I I s s d
ii_gc_bif3/7
# A specific instruction can only have 6 operands, so we must
# pass one of the arguments in an x register.
ii_gc_bif3 Fail Bif Live S1 S2 S3 Dst => \
move S1 x | i_gc_bif3 Fail Bif Live S2 S3 Dst
i_gc_bif3 j I I s s d
#
# The following instruction is specially handled in beam_load.c
# to produce a user-friendly message if an unsupported guard BIF is
# encountered.
#
unsupported_guard_bif/3
unsupported_guard_bif A B C | never() =>
#
# R13B03
#
on_load
#
# R14A.
#
recv_mark f
recv_set Fail | label Lbl | loop_rec Lf Reg => \
i_recv_set | label Lbl | loop_rec Lf Reg
i_recv_set
|