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| 1 // Copyright 2012 the V8 project authors. All rights reserved. | 1 // Copyright 2012 the V8 project authors. All rights reserved. |
| 2 // Redistribution and use in source and binary forms, with or without | 2 // Redistribution and use in source and binary forms, with or without |
| 3 // modification, are permitted provided that the following conditions are | 3 // modification, are permitted provided that the following conditions are |
| 4 // met: | 4 // met: |
| 5 // | 5 // |
| 6 // * Redistributions of source code must retain the above copyright | 6 // * Redistributions of source code must retain the above copyright |
| 7 // notice, this list of conditions and the following disclaimer. | 7 // notice, this list of conditions and the following disclaimer. |
| 8 // * Redistributions in binary form must reproduce the above | 8 // * Redistributions in binary form must reproduce the above |
| 9 // copyright notice, this list of conditions and the following | 9 // copyright notice, this list of conditions and the following |
| 10 // disclaimer in the documentation and/or other materials provided | 10 // disclaimer in the documentation and/or other materials provided |
| (...skipping 1223 matching lines...) Expand 10 before | Expand all | Expand 10 after Loading... | |
| 1234 } | 1234 } |
| 1235 } | 1235 } |
| 1236 | 1236 |
| 1237 | 1237 |
| 1238 void MacroAssembler::AllocateInNewSpace(int object_size, | 1238 void MacroAssembler::AllocateInNewSpace(int object_size, |
| 1239 Register result, | 1239 Register result, |
| 1240 Register result_end, | 1240 Register result_end, |
| 1241 Register scratch, | 1241 Register scratch, |
| 1242 Label* gc_required, | 1242 Label* gc_required, |
| 1243 AllocationFlags flags) { | 1243 AllocationFlags flags) { |
| 1244 ASSERT((flags & (RESULT_CONTAINS_TOP | SIZE_IN_WORDS)) == 0); | |
| 1244 if (!FLAG_inline_new) { | 1245 if (!FLAG_inline_new) { |
| 1245 if (emit_debug_code()) { | 1246 if (emit_debug_code()) { |
| 1246 // Trash the registers to simulate an allocation failure. | 1247 // Trash the registers to simulate an allocation failure. |
| 1247 mov(result, Immediate(0x7091)); | 1248 mov(result, Immediate(0x7091)); |
| 1248 if (result_end.is_valid()) { | 1249 if (result_end.is_valid()) { |
| 1249 mov(result_end, Immediate(0x7191)); | 1250 mov(result_end, Immediate(0x7191)); |
| 1250 } | 1251 } |
| 1251 if (scratch.is_valid()) { | 1252 if (scratch.is_valid()) { |
| 1252 mov(scratch, Immediate(0x7291)); | 1253 mov(scratch, Immediate(0x7291)); |
| 1253 } | 1254 } |
| 1254 } | 1255 } |
| 1255 jmp(gc_required); | 1256 jmp(gc_required); |
| 1256 return; | 1257 return; |
| 1257 } | 1258 } |
| 1258 ASSERT(!result.is(result_end)); | 1259 ASSERT(!result.is(result_end)); |
| 1259 | 1260 |
| 1260 // Load address of new object into result. | 1261 // Load address of new object into result. |
| 1261 LoadAllocationTopHelper(result, scratch, flags); | 1262 LoadAllocationTopHelper(result, scratch, flags); |
| 1262 | 1263 |
| 1264 // Align the next allocation. Storing the filler map without checking top is | |
| 1265 // always safe because the limit of the heap is always aligned. | |
| 1266 if ((flags & DOUBLE_ALIGNMENT) != 0) { | |
|
Yang
2012/12/28 10:03:48
Maybe add an assert saying that this works because
danno
2012/12/28 15:44:55
Done.
| |
| 1267 Label aligned; | |
| 1268 test(result, Immediate(kDoubleAlignmentMask)); | |
| 1269 j(zero, &aligned, Label::kNear); | |
| 1270 mov(Operand(result, 0), | |
| 1271 Immediate(isolate()->factory()->one_pointer_filler_map())); | |
| 1272 add(result, Immediate(kDoubleSize / 2)); | |
| 1273 bind(&aligned); | |
| 1274 } | |
| 1275 | |
| 1263 Register top_reg = result_end.is_valid() ? result_end : result; | 1276 Register top_reg = result_end.is_valid() ? result_end : result; |
| 1264 | 1277 |
| 1265 // Calculate new top and bail out if new space is exhausted. | 1278 // Calculate new top and bail out if new space is exhausted. |
| 1266 ExternalReference new_space_allocation_limit = | 1279 ExternalReference new_space_allocation_limit = |
| 1267 ExternalReference::new_space_allocation_limit_address(isolate()); | 1280 ExternalReference::new_space_allocation_limit_address(isolate()); |
| 1268 | 1281 |
| 1269 if (!top_reg.is(result)) { | 1282 if (!top_reg.is(result)) { |
| 1270 mov(top_reg, result); | 1283 mov(top_reg, result); |
| 1271 } | 1284 } |
| 1272 add(top_reg, Immediate(object_size)); | 1285 add(top_reg, Immediate(object_size)); |
| 1273 j(carry, gc_required); | 1286 j(carry, gc_required); |
| 1274 cmp(top_reg, Operand::StaticVariable(new_space_allocation_limit)); | 1287 cmp(top_reg, Operand::StaticVariable(new_space_allocation_limit)); |
| 1275 j(above, gc_required); | 1288 j(above, gc_required); |
| 1276 | 1289 |
| 1277 // Update allocation top. | 1290 // Update allocation top. |
| 1278 UpdateAllocationTopHelper(top_reg, scratch); | 1291 UpdateAllocationTopHelper(top_reg, scratch); |
| 1279 | 1292 |
| 1280 // Tag result if requested. | 1293 // Tag result if requested. |
| 1294 bool tag_result = (flags & TAG_OBJECT) != 0; | |
| 1281 if (top_reg.is(result)) { | 1295 if (top_reg.is(result)) { |
| 1282 if ((flags & TAG_OBJECT) != 0) { | 1296 if (tag_result) { |
| 1283 sub(result, Immediate(object_size - kHeapObjectTag)); | 1297 sub(result, Immediate(object_size - kHeapObjectTag)); |
| 1284 } else { | 1298 } else { |
| 1285 sub(result, Immediate(object_size)); | 1299 sub(result, Immediate(object_size)); |
| 1286 } | 1300 } |
| 1287 } else if ((flags & TAG_OBJECT) != 0) { | 1301 } else if (tag_result) { |
| 1288 add(result, Immediate(kHeapObjectTag)); | 1302 ASSERT(kHeapObjectTag == 1); |
| 1303 inc(result); | |
| 1289 } | 1304 } |
| 1290 } | 1305 } |
| 1291 | 1306 |
| 1292 | 1307 |
| 1293 void MacroAssembler::AllocateInNewSpace(int header_size, | 1308 void MacroAssembler::AllocateInNewSpace( |
| 1294 ScaleFactor element_size, | 1309 int header_size, |
| 1295 Register element_count, | 1310 ScaleFactor element_size, |
| 1296 Register result, | 1311 Register element_count, |
| 1297 Register result_end, | 1312 RegisterValueType element_count_type, |
| 1298 Register scratch, | 1313 Register result, |
| 1299 Label* gc_required, | 1314 Register result_end, |
| 1300 AllocationFlags flags) { | 1315 Register scratch, |
| 1316 Label* gc_required, | |
| 1317 AllocationFlags flags) { | |
| 1318 ASSERT((flags & SIZE_IN_WORDS) == 0); | |
| 1301 if (!FLAG_inline_new) { | 1319 if (!FLAG_inline_new) { |
| 1302 if (emit_debug_code()) { | 1320 if (emit_debug_code()) { |
| 1303 // Trash the registers to simulate an allocation failure. | 1321 // Trash the registers to simulate an allocation failure. |
| 1304 mov(result, Immediate(0x7091)); | 1322 mov(result, Immediate(0x7091)); |
| 1305 mov(result_end, Immediate(0x7191)); | 1323 mov(result_end, Immediate(0x7191)); |
| 1306 if (scratch.is_valid()) { | 1324 if (scratch.is_valid()) { |
| 1307 mov(scratch, Immediate(0x7291)); | 1325 mov(scratch, Immediate(0x7291)); |
| 1308 } | 1326 } |
| 1309 // Register element_count is not modified by the function. | 1327 // Register element_count is not modified by the function. |
| 1310 } | 1328 } |
| 1311 jmp(gc_required); | 1329 jmp(gc_required); |
| 1312 return; | 1330 return; |
| 1313 } | 1331 } |
| 1314 ASSERT(!result.is(result_end)); | 1332 ASSERT(!result.is(result_end)); |
| 1315 | 1333 |
| 1316 // Load address of new object into result. | 1334 // Load address of new object into result. |
| 1317 LoadAllocationTopHelper(result, scratch, flags); | 1335 LoadAllocationTopHelper(result, scratch, flags); |
| 1318 | 1336 |
| 1337 // Align the next allocation. Storing the filler map without checking top is | |
| 1338 // always safe because the limit of the heap is always aligned. | |
| 1339 if ((flags & DOUBLE_ALIGNMENT) != 0) { | |
| 1340 Label aligned; | |
| 1341 test(result, Immediate(kDoubleAlignmentMask)); | |
| 1342 j(zero, &aligned, Label::kNear); | |
| 1343 mov(Operand(result, 0), | |
| 1344 Immediate(isolate()->factory()->one_pointer_filler_map())); | |
| 1345 add(result, Immediate(kDoubleSize / 2)); | |
| 1346 bind(&aligned); | |
| 1347 } | |
| 1348 | |
| 1319 // Calculate new top and bail out if new space is exhausted. | 1349 // Calculate new top and bail out if new space is exhausted. |
| 1320 ExternalReference new_space_allocation_limit = | 1350 ExternalReference new_space_allocation_limit = |
| 1321 ExternalReference::new_space_allocation_limit_address(isolate()); | 1351 ExternalReference::new_space_allocation_limit_address(isolate()); |
| 1322 | 1352 |
| 1323 // We assume that element_count*element_size + header_size does not | 1353 // We assume that element_count*element_size + header_size does not |
| 1324 // overflow. | 1354 // overflow. |
| 1355 if (element_count_type == REGISTER_VALUE_IS_SMI) { | |
| 1356 STATIC_ASSERT(static_cast<ScaleFactor>(times_2 - 1) == times_1); | |
| 1357 STATIC_ASSERT(static_cast<ScaleFactor>(times_4 - 1) == times_2); | |
| 1358 STATIC_ASSERT(static_cast<ScaleFactor>(times_8 - 1) == times_4); | |
|
Yang
2012/12/28 10:03:48
Also assert that kSmiTagSize == 1.
danno
2012/12/28 15:44:55
Done.
| |
| 1359 ASSERT(element_size >= times_2); | |
| 1360 element_size = static_cast<ScaleFactor>(element_size - 1); | |
| 1361 } else { | |
| 1362 ASSERT(element_count_type == REGISTER_VALUE_IS_INT32); | |
| 1363 } | |
| 1325 lea(result_end, Operand(element_count, element_size, header_size)); | 1364 lea(result_end, Operand(element_count, element_size, header_size)); |
| 1326 add(result_end, result); | 1365 add(result_end, result); |
| 1327 j(carry, gc_required); | 1366 j(carry, gc_required); |
| 1328 cmp(result_end, Operand::StaticVariable(new_space_allocation_limit)); | 1367 cmp(result_end, Operand::StaticVariable(new_space_allocation_limit)); |
| 1329 j(above, gc_required); | 1368 j(above, gc_required); |
| 1330 | 1369 |
| 1331 // Tag result if requested. | |
| 1332 if ((flags & TAG_OBJECT) != 0) { | 1370 if ((flags & TAG_OBJECT) != 0) { |
| 1333 lea(result, Operand(result, kHeapObjectTag)); | 1371 ASSERT(kHeapObjectTag == 1); |
| 1372 inc(result); | |
| 1334 } | 1373 } |
| 1335 | 1374 |
| 1336 // Update allocation top. | 1375 // Update allocation top. |
| 1337 UpdateAllocationTopHelper(result_end, scratch); | 1376 UpdateAllocationTopHelper(result_end, scratch); |
| 1338 } | 1377 } |
| 1339 | 1378 |
| 1340 | 1379 |
| 1341 void MacroAssembler::AllocateInNewSpace(Register object_size, | 1380 void MacroAssembler::AllocateInNewSpace(Register object_size, |
| 1342 Register result, | 1381 Register result, |
| 1343 Register result_end, | 1382 Register result_end, |
| 1344 Register scratch, | 1383 Register scratch, |
| 1345 Label* gc_required, | 1384 Label* gc_required, |
| 1346 AllocationFlags flags) { | 1385 AllocationFlags flags) { |
| 1386 ASSERT((flags & (DOUBLE_ALIGNMENT | RESULT_CONTAINS_TOP | | |
| 1387 SIZE_IN_WORDS)) == 0); | |
| 1347 if (!FLAG_inline_new) { | 1388 if (!FLAG_inline_new) { |
| 1348 if (emit_debug_code()) { | 1389 if (emit_debug_code()) { |
| 1349 // Trash the registers to simulate an allocation failure. | 1390 // Trash the registers to simulate an allocation failure. |
| 1350 mov(result, Immediate(0x7091)); | 1391 mov(result, Immediate(0x7091)); |
| 1351 mov(result_end, Immediate(0x7191)); | 1392 mov(result_end, Immediate(0x7191)); |
| 1352 if (scratch.is_valid()) { | 1393 if (scratch.is_valid()) { |
| 1353 mov(scratch, Immediate(0x7291)); | 1394 mov(scratch, Immediate(0x7291)); |
| 1354 } | 1395 } |
| 1355 // object_size is left unchanged by this function. | 1396 // object_size is left unchanged by this function. |
| 1356 } | 1397 } |
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| 1426 ASSERT((SeqTwoByteString::kHeaderSize & kObjectAlignmentMask) == 0); | 1467 ASSERT((SeqTwoByteString::kHeaderSize & kObjectAlignmentMask) == 0); |
| 1427 ASSERT(kShortSize == 2); | 1468 ASSERT(kShortSize == 2); |
| 1428 // scratch1 = length * 2 + kObjectAlignmentMask. | 1469 // scratch1 = length * 2 + kObjectAlignmentMask. |
| 1429 lea(scratch1, Operand(length, length, times_1, kObjectAlignmentMask)); | 1470 lea(scratch1, Operand(length, length, times_1, kObjectAlignmentMask)); |
| 1430 and_(scratch1, Immediate(~kObjectAlignmentMask)); | 1471 and_(scratch1, Immediate(~kObjectAlignmentMask)); |
| 1431 | 1472 |
| 1432 // Allocate two byte string in new space. | 1473 // Allocate two byte string in new space. |
| 1433 AllocateInNewSpace(SeqTwoByteString::kHeaderSize, | 1474 AllocateInNewSpace(SeqTwoByteString::kHeaderSize, |
| 1434 times_1, | 1475 times_1, |
| 1435 scratch1, | 1476 scratch1, |
| 1477 REGISTER_VALUE_IS_INT32, | |
| 1436 result, | 1478 result, |
| 1437 scratch2, | 1479 scratch2, |
| 1438 scratch3, | 1480 scratch3, |
| 1439 gc_required, | 1481 gc_required, |
| 1440 TAG_OBJECT); | 1482 TAG_OBJECT); |
| 1441 | 1483 |
| 1442 // Set the map, length and hash field. | 1484 // Set the map, length and hash field. |
| 1443 mov(FieldOperand(result, HeapObject::kMapOffset), | 1485 mov(FieldOperand(result, HeapObject::kMapOffset), |
| 1444 Immediate(isolate()->factory()->string_map())); | 1486 Immediate(isolate()->factory()->string_map())); |
| 1445 mov(scratch1, length); | 1487 mov(scratch1, length); |
| (...skipping 15 matching lines...) Expand all Loading... | |
| 1461 ASSERT((SeqOneByteString::kHeaderSize & kObjectAlignmentMask) == 0); | 1503 ASSERT((SeqOneByteString::kHeaderSize & kObjectAlignmentMask) == 0); |
| 1462 mov(scratch1, length); | 1504 mov(scratch1, length); |
| 1463 ASSERT(kCharSize == 1); | 1505 ASSERT(kCharSize == 1); |
| 1464 add(scratch1, Immediate(kObjectAlignmentMask)); | 1506 add(scratch1, Immediate(kObjectAlignmentMask)); |
| 1465 and_(scratch1, Immediate(~kObjectAlignmentMask)); | 1507 and_(scratch1, Immediate(~kObjectAlignmentMask)); |
| 1466 | 1508 |
| 1467 // Allocate ASCII string in new space. | 1509 // Allocate ASCII string in new space. |
| 1468 AllocateInNewSpace(SeqOneByteString::kHeaderSize, | 1510 AllocateInNewSpace(SeqOneByteString::kHeaderSize, |
| 1469 times_1, | 1511 times_1, |
| 1470 scratch1, | 1512 scratch1, |
| 1513 REGISTER_VALUE_IS_INT32, | |
| 1471 result, | 1514 result, |
| 1472 scratch2, | 1515 scratch2, |
| 1473 scratch3, | 1516 scratch3, |
| 1474 gc_required, | 1517 gc_required, |
| 1475 TAG_OBJECT); | 1518 TAG_OBJECT); |
| 1476 | 1519 |
| 1477 // Set the map, length and hash field. | 1520 // Set the map, length and hash field. |
| 1478 mov(FieldOperand(result, HeapObject::kMapOffset), | 1521 mov(FieldOperand(result, HeapObject::kMapOffset), |
| 1479 Immediate(isolate()->factory()->ascii_string_map())); | 1522 Immediate(isolate()->factory()->ascii_string_map())); |
| 1480 mov(scratch1, length); | 1523 mov(scratch1, length); |
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| 3001 j(not_equal, call_runtime); | 3044 j(not_equal, call_runtime); |
| 3002 | 3045 |
| 3003 mov(ecx, FieldOperand(ebx, Map::kPrototypeOffset)); | 3046 mov(ecx, FieldOperand(ebx, Map::kPrototypeOffset)); |
| 3004 cmp(ecx, isolate()->factory()->null_value()); | 3047 cmp(ecx, isolate()->factory()->null_value()); |
| 3005 j(not_equal, &next); | 3048 j(not_equal, &next); |
| 3006 } | 3049 } |
| 3007 | 3050 |
| 3008 } } // namespace v8::internal | 3051 } } // namespace v8::internal |
| 3009 | 3052 |
| 3010 #endif // V8_TARGET_ARCH_IA32 | 3053 #endif // V8_TARGET_ARCH_IA32 |
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