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| 1 // Copyright (c) 2013, the Dart project authors. Please see the AUTHORS file | 1 // Copyright (c) 2013, the Dart project authors. Please see the AUTHORS file |
| 2 // for details. All rights reserved. Use of this source code is governed by a | 2 // for details. All rights reserved. Use of this source code is governed by a |
| 3 // BSD-style license that can be found in the LICENSE file. | 3 // BSD-style license that can be found in the LICENSE file. |
| 4 | 4 |
| 5 #include "vm/globals.h" // Needed here to get TARGET_ARCH_X64. | 5 #include "vm/globals.h" // Needed here to get TARGET_ARCH_X64. |
| 6 #if defined(TARGET_ARCH_X64) | 6 #if defined(TARGET_ARCH_X64) |
| 7 | 7 |
| 8 #include "vm/intrinsifier.h" | 8 #include "vm/intrinsifier.h" |
| 9 | 9 |
| 10 #include "vm/assembler.h" | 10 #include "vm/assembler.h" |
| (...skipping 914 matching lines...) Expand 10 before | Expand all | Expand 10 after Loading... | |
| 925 // Returning Object::null() is not required, since this method is private. | 925 // Returning Object::null() is not required, since this method is private. |
| 926 __ ret(); | 926 __ ret(); |
| 927 } | 927 } |
| 928 | 928 |
| 929 | 929 |
| 930 void Intrinsifier::Bigint_mulAdd(Assembler* assembler) { | 930 void Intrinsifier::Bigint_mulAdd(Assembler* assembler) { |
| 931 // Pseudo code: | 931 // Pseudo code: |
| 932 // static int _mulAdd(Uint32List x_digits, int xi, | 932 // static int _mulAdd(Uint32List x_digits, int xi, |
| 933 // Uint32List m_digits, int i, | 933 // Uint32List m_digits, int i, |
| 934 // Uint32List a_digits, int j, int n) { | 934 // Uint32List a_digits, int j, int n) { |
| 935 // uint32_t x = x_digits[xi >> 1]; // xi is Smi. | 935 // uint64_t x = x_digits[xi >> 1 .. (xi >> 1) + 1]; // xi is Smi and even. |
| 936 // if (x == 0 || n == 0) { | 936 // if (x == 0 || n == 0) { |
| 937 // return 1; | 937 // return 2; |
| 938 // } | 938 // } |
| 939 // uint32_t* mip = &m_digits[i >> 1]; // i is Smi. | 939 // uint64_t* mip = &m_digits[i >> 1]; // i is Smi and even. |
| 940 // uint32_t* ajp = &a_digits[j >> 1]; // j is Smi. | 940 // uint64_t* ajp = &a_digits[j >> 1]; // j is Smi and even. |
| 941 // uint32_t c = 0; | 941 // uint64_t c = 0; |
| 942 // SmiUntag(n); | 942 // SmiUntag(n); // n is Smi and even. |
| 943 // n = (n + 1)/2; // Number of pairs to process. | |
| 943 // do { | 944 // do { |
| 944 // uint32_t mi = *mip++; | 945 // uint64_t mi = *mip++; |
| 945 // uint32_t aj = *ajp; | 946 // uint364_t aj = *ajp; |
|
zra
2015/01/05 16:39:22
uint64_t?
regis
2017/01/13 02:34:46
Done.
| |
| 946 // uint64_t t = x*mi + aj + c; // 32-bit * 32-bit -> 64-bit. | 947 // uint128_t t = x*mi + aj + c; // 64-bit * 64-bit -> 128-bit. |
| 947 // *ajp++ = low32(t); | 948 // *ajp++ = low64(t); |
| 948 // c = high32(t); | 949 // c = high64(t); |
| 949 // } while (--n > 0); | 950 // } while (--n > 0); |
| 950 // while (c != 0) { | 951 // while (c != 0) { |
| 951 // uint64_t t = *ajp + c; | 952 // uint128_t t = *ajp + c; |
| 952 // *ajp++ = low32(t); | 953 // *ajp++ = low64(t); |
| 953 // c = high32(t); // c == 0 or 1. | 954 // c = high64(t); // c == 0 or 1. |
| 954 // } | 955 // } |
| 955 // return 1; | 956 // return 2; |
| 956 // } | 957 // } |
| 957 | 958 |
| 958 Label done; | 959 Label done; |
| 959 // RBX = x, done if x == 0 | 960 // RBX = x, done if x == 0 |
| 960 __ movq(RCX, Address(RSP, 7 * kWordSize)); // x_digits | 961 __ movq(RCX, Address(RSP, 7 * kWordSize)); // x_digits |
| 961 __ movq(RAX, Address(RSP, 6 * kWordSize)); // xi is Smi | 962 __ movq(RAX, Address(RSP, 6 * kWordSize)); // xi is Smi |
| 962 __ movl(RBX, FieldAddress(RCX, RAX, TIMES_2, TypedData::data_offset())); | 963 __ movq(RBX, FieldAddress(RCX, RAX, TIMES_2, TypedData::data_offset())); |
| 963 __ testl(RBX, RBX); | 964 __ testq(RBX, RBX); |
| 964 __ j(ZERO, &done, Assembler::kNearJump); | 965 __ j(ZERO, &done, Assembler::kNearJump); |
| 965 | 966 |
| 966 // R8 = SmiUntag(n), no_op if n == 0 | 967 // R8 = (SmiUntag(n) + 1)/2, no_op if n == 0 |
| 967 __ movq(R8, Address(RSP, 1 * kWordSize)); | 968 __ movq(R8, Address(RSP, 1 * kWordSize)); |
| 968 __ SmiUntag(R8); | 969 __ addq(R8, Immediate(2)); |
| 970 __ sarq(R8, Immediate(2)); // R8 = number of digit pairs to process. | |
| 969 __ j(ZERO, &done, Assembler::kNearJump); | 971 __ j(ZERO, &done, Assembler::kNearJump); |
| 970 | 972 |
| 971 // RDI = mip = &m_digits[i >> 1] | 973 // RDI = mip = &m_digits[i >> 1] |
| 972 __ movq(RDI, Address(RSP, 5 * kWordSize)); // m_digits | 974 __ movq(RDI, Address(RSP, 5 * kWordSize)); // m_digits |
| 973 __ movq(RAX, Address(RSP, 4 * kWordSize)); // i is Smi | 975 __ movq(RAX, Address(RSP, 4 * kWordSize)); // i is Smi |
| 974 __ leaq(RDI, FieldAddress(RDI, RAX, TIMES_2, TypedData::data_offset())); | 976 __ leaq(RDI, FieldAddress(RDI, RAX, TIMES_2, TypedData::data_offset())); |
| 975 | 977 |
| 976 // RSI = ajp = &a_digits[j >> 1] | 978 // RSI = ajp = &a_digits[j >> 1] |
| 977 __ movq(RSI, Address(RSP, 3 * kWordSize)); // a_digits | 979 __ movq(RSI, Address(RSP, 3 * kWordSize)); // a_digits |
| 978 __ movq(RAX, Address(RSP, 2 * kWordSize)); // j is Smi | 980 __ movq(RAX, Address(RSP, 2 * kWordSize)); // j is Smi |
| 979 __ leaq(RSI, FieldAddress(RSI, RAX, TIMES_2, TypedData::data_offset())); | 981 __ leaq(RSI, FieldAddress(RSI, RAX, TIMES_2, TypedData::data_offset())); |
| 980 | 982 |
| 981 // RCX = c = 0 | 983 // RCX = c = 0 |
| 982 __ xorq(RCX, RCX); | 984 __ xorq(RCX, RCX); |
| 983 | 985 |
| 984 Label muladd_loop; | 986 Label muladd_loop; |
| 985 __ Bind(&muladd_loop); | 987 __ Bind(&muladd_loop); |
| 986 // x: RBX | 988 // x: RBX |
| 987 // mip: RDI | 989 // mip: RDI |
| 988 // ajp: RSI | 990 // ajp: RSI |
| 989 // c: RCX | 991 // c: RCX |
| 990 // t: RDX:RAX (not live at loop entry) | 992 // t: RDX:RAX (not live at loop entry) |
| 991 // n: R8 | 993 // n: R8 |
| 992 | 994 |
| 993 // uint32_t mi = *mip++ | 995 // uint64_t mi = *mip++ |
| 994 __ movl(RAX, Address(RDI, 0)); | 996 __ movq(RAX, Address(RDI, 0)); |
| 995 __ addq(RDI, Immediate(Bigint::kBytesPerDigit)); | 997 __ addq(RDI, Immediate(2*Bigint::kBytesPerDigit)); |
| 996 | 998 |
| 997 // uint64_t t = x*mi | 999 // uint128_t t = x*mi |
| 998 __ mull(RBX); // t = RDX:RAX = RAX * RBX, 32-bit * 32-bit -> 64-bit | 1000 __ mulq(RBX); // t = RDX:RAX = RAX * RBX, 64-bit * 64-bit -> 64-bit |
| 999 __ addl(RAX, RCX); // t += c | 1001 __ addq(RAX, RCX); // t += c |
| 1000 __ adcl(RDX, Immediate(0)); | 1002 __ adcq(RDX, Immediate(0)); |
| 1001 | 1003 |
| 1002 // uint32_t aj = *ajp; t += aj | 1004 // uint64_t aj = *ajp; t += aj |
| 1003 __ addl(RAX, Address(RSI, 0)); | 1005 __ addq(RAX, Address(RSI, 0)); |
| 1004 __ adcl(RDX, Immediate(0)); | 1006 __ adcq(RDX, Immediate(0)); |
| 1005 | 1007 |
| 1006 // *ajp++ = low32(t) | 1008 // *ajp++ = low64(t) |
| 1007 __ movl(Address(RSI, 0), RAX); | 1009 __ movq(Address(RSI, 0), RAX); |
| 1008 __ addq(RSI, Immediate(Bigint::kBytesPerDigit)); | 1010 __ addq(RSI, Immediate(2*Bigint::kBytesPerDigit)); |
| 1009 | 1011 |
| 1010 // c = high32(t) | 1012 // c = high64(t) |
| 1011 __ movl(RCX, RDX); | 1013 __ movq(RCX, RDX); |
| 1012 | 1014 |
| 1013 // while (--n > 0) | 1015 // while (--n > 0) |
| 1014 __ decq(R8); // --n | 1016 __ decq(R8); // --n |
| 1015 __ j(NOT_ZERO, &muladd_loop, Assembler::kNearJump); | 1017 __ j(NOT_ZERO, &muladd_loop, Assembler::kNearJump); |
| 1016 | 1018 |
| 1017 __ testl(RCX, RCX); | 1019 __ testq(RCX, RCX); |
| 1018 __ j(ZERO, &done, Assembler::kNearJump); | 1020 __ j(ZERO, &done, Assembler::kNearJump); |
| 1019 | 1021 |
| 1020 // *ajp += c | 1022 // *ajp += c |
| 1021 __ addl(Address(RSI, 0), RCX); | 1023 __ addq(Address(RSI, 0), RCX); |
| 1022 __ j(NOT_CARRY, &done, Assembler::kNearJump); | 1024 __ j(NOT_CARRY, &done, Assembler::kNearJump); |
| 1023 | 1025 |
| 1024 Label propagate_carry_loop; | 1026 Label propagate_carry_loop; |
| 1025 __ Bind(&propagate_carry_loop); | 1027 __ Bind(&propagate_carry_loop); |
| 1026 __ addq(RSI, Immediate(Bigint::kBytesPerDigit)); | 1028 __ addq(RSI, Immediate(2*Bigint::kBytesPerDigit)); |
| 1027 __ incl(Address(RSI, 0)); // c == 0 or 1 | 1029 __ incq(Address(RSI, 0)); // c == 0 or 1 |
| 1028 __ j(CARRY, &propagate_carry_loop, Assembler::kNearJump); | 1030 __ j(CARRY, &propagate_carry_loop, Assembler::kNearJump); |
| 1029 | 1031 |
| 1030 __ Bind(&done); | 1032 __ Bind(&done); |
| 1031 __ movq(RAX, Immediate(Smi::RawValue(1))); // One digit processed. | 1033 __ movq(RAX, Immediate(Smi::RawValue(2))); // Two digits processed. |
| 1032 __ ret(); | 1034 __ ret(); |
| 1033 } | 1035 } |
| 1034 | 1036 |
| 1035 | 1037 |
| 1036 void Intrinsifier::Bigint_sqrAdd(Assembler* assembler) { | 1038 void Intrinsifier::Bigint_sqrAdd(Assembler* assembler) { |
| 1037 // Pseudo code: | 1039 // Pseudo code: |
| 1038 // static int _sqrAdd(Uint32List x_digits, int i, | 1040 // static int _sqrAdd(Uint32List x_digits, int i, |
| 1039 // Uint32List a_digits, int used) { | 1041 // Uint32List a_digits, int used) { |
| 1040 // uint32_t* xip = &x_digits[i >> 1]; // i is Smi. | 1042 // uint64_t* xip = &x_digits[i >> 1]; // i is Smi and even. |
| 1041 // uint32_t x = *xip++; | 1043 // uint64_t x = *xip++; |
| 1042 // if (x == 0) return 1; | 1044 // if (x == 0) return 2; |
| 1043 // uint32_t* ajp = &a_digits[i]; // j == 2*i, i is Smi. | 1045 // uint64_t* ajp = &a_digits[i]; // j == 2*i, i is Smi. |
| 1044 // uint32_t aj = *ajp; | 1046 // uint64_t aj = *ajp; |
| 1045 // uint64_t t = x*x + aj; | 1047 // uint128_t t = x*x + aj; |
| 1046 // *ajp++ = low32(t); | 1048 // *ajp++ = low64(t); |
| 1047 // uint64_t c = high32(t); | 1049 // uint128_t c = high64(t); |
| 1048 // int n = ((used - i) >> 1) - 1; // used and i are Smi. | 1050 // int n = ((used - i + 2) >> 2) - 1; // used and i are Smi. n: num pairs. |
| 1049 // while (--n >= 0) { | 1051 // while (--n >= 0) { |
| 1050 // uint32_t xi = *xip++; | 1052 // uint64_t xi = *xip++; |
| 1051 // uint32_t aj = *ajp; | 1053 // uint64_t aj = *ajp; |
| 1052 // uint96_t t = 2*x*xi + aj + c; // 2-bit * 32-bit * 32-bit -> 65-bit. | 1054 // uint192_t t = 2*x*xi + aj + c; // 2-bit * 64-bit * 64-bit -> 129-bit. |
| 1053 // *ajp++ = low32(t); | 1055 // *ajp++ = low64(t); |
| 1054 // c = high64(t); // 33-bit. | 1056 // c = high128(t); // 65-bit. |
| 1055 // } | 1057 // } |
| 1056 // uint32_t aj = *ajp; | 1058 // uint64_t aj = *ajp; |
| 1057 // uint64_t t = aj + c; // 32-bit + 33-bit -> 34-bit. | 1059 // uint128_t t = aj + c; // 64-bit + 65-bit -> 66-bit. |
| 1058 // *ajp++ = low32(t); | 1060 // *ajp++ = low64(t); |
| 1059 // *ajp = high32(t); | 1061 // *ajp = high64(t); |
| 1060 // return 1; | 1062 // return 2; |
| 1061 // } | 1063 // } |
| 1062 | 1064 |
| 1063 // RDI = xip = &x_digits[i >> 1] | 1065 // RDI = xip = &x_digits[i >> 1] |
| 1064 __ movq(RDI, Address(RSP, 4 * kWordSize)); // x_digits | 1066 __ movq(RDI, Address(RSP, 4 * kWordSize)); // x_digits |
| 1065 __ movq(RAX, Address(RSP, 3 * kWordSize)); // i is Smi | 1067 __ movq(RAX, Address(RSP, 3 * kWordSize)); // i is Smi |
| 1066 __ leaq(RDI, FieldAddress(RDI, RAX, TIMES_2, TypedData::data_offset())); | 1068 __ leaq(RDI, FieldAddress(RDI, RAX, TIMES_2, TypedData::data_offset())); |
| 1067 | 1069 |
| 1068 // RBX = x = *xip++, return if x == 0 | 1070 // RBX = x = *xip++, return if x == 0 |
| 1069 Label x_zero; | 1071 Label x_zero; |
| 1070 __ movl(RBX, Address(RDI, 0)); | 1072 __ movq(RBX, Address(RDI, 0)); |
| 1071 __ cmpl(RBX, Immediate(0)); | 1073 __ cmpq(RBX, Immediate(0)); |
| 1072 __ j(EQUAL, &x_zero, Assembler::kNearJump); | 1074 __ j(EQUAL, &x_zero); |
| 1073 __ addq(RDI, Immediate(Bigint::kBytesPerDigit)); | 1075 __ addq(RDI, Immediate(2*Bigint::kBytesPerDigit)); |
| 1074 | 1076 |
| 1075 // RSI = ajp = &a_digits[i] | 1077 // RSI = ajp = &a_digits[i] |
| 1076 __ movq(RSI, Address(RSP, 2 * kWordSize)); // a_digits | 1078 __ movq(RSI, Address(RSP, 2 * kWordSize)); // a_digits |
| 1077 __ leaq(RSI, FieldAddress(RSI, RAX, TIMES_4, TypedData::data_offset())); | 1079 __ leaq(RSI, FieldAddress(RSI, RAX, TIMES_4, TypedData::data_offset())); |
| 1078 | 1080 |
| 1079 // RDX:RAX = t = x*x + *ajp | 1081 // RDX:RAX = t = x*x + *ajp |
| 1080 __ movl(RAX, RBX); | 1082 __ movq(RAX, RBX); |
| 1081 __ mull(RBX); | 1083 __ mulq(RBX); |
| 1082 __ addl(RAX, Address(RSI, 0)); | 1084 __ addq(RAX, Address(RSI, 0)); |
| 1083 __ adcl(RDX, Immediate(0)); | 1085 __ adcq(RDX, Immediate(0)); |
| 1084 | 1086 |
| 1085 // *ajp++ = low32(t) | 1087 // *ajp++ = low64(t) |
| 1086 __ movl(Address(RSI, 0), RAX); | 1088 __ movq(Address(RSI, 0), RAX); |
| 1087 __ addq(RSI, Immediate(Bigint::kBytesPerDigit)); | 1089 __ addq(RSI, Immediate(2*Bigint::kBytesPerDigit)); |
| 1088 | 1090 |
| 1089 // int n = used - i - 1 | 1091 // int n = (used - i + 1)/2 - 1 |
| 1090 __ movq(R8, Address(RSP, 1 * kWordSize)); // used is Smi | 1092 __ movq(R8, Address(RSP, 1 * kWordSize)); // used is Smi |
| 1091 __ subq(R8, Address(RSP, 3 * kWordSize)); // i is Smi | 1093 __ subq(R8, Address(RSP, 3 * kWordSize)); // i is Smi |
| 1092 __ SmiUntag(R8); | 1094 __ addq(R8, Immediate(2)); |
| 1093 __ decq(R8); | 1095 __ sarq(R8, Immediate(2)); |
| 1096 __ decq(R8); // R8 = number of digit pairs to process. | |
| 1094 | 1097 |
| 1095 // uint64_t c = high32(t) | 1098 // uint128_t c = high64(t) |
| 1096 __ xorl(R13, R13); // R13 = high32(c) == 0 | 1099 __ xorq(R13, R13); // R13 = high64(c) == 0 |
| 1097 __ movl(R12, RDX); // R12 = low32(c) == high32(t) | 1100 __ movq(R12, RDX); // R12 = low64(c) == high64(t) |
| 1098 | 1101 |
| 1099 Label loop, done; | 1102 Label loop, done; |
| 1100 __ Bind(&loop); | 1103 __ Bind(&loop); |
| 1101 // x: RBX | 1104 // x: RBX |
| 1102 // xip: RDI | 1105 // xip: RDI |
| 1103 // ajp: RSI | 1106 // ajp: RSI |
| 1104 // c: R13:R12 | 1107 // c: R13:R12 |
| 1105 // t: RCX:RDX:RAX (not live at loop entry) | 1108 // t: RCX:RDX:RAX (not live at loop entry) |
| 1106 // n: R8 | 1109 // n: R8 |
| 1107 | 1110 |
| 1108 // while (--n >= 0) | 1111 // while (--n >= 0) |
| 1109 __ decq(R8); // --n | 1112 __ decq(R8); // --n |
| 1110 __ j(NEGATIVE, &done, Assembler::kNearJump); | 1113 __ j(NEGATIVE, &done, Assembler::kNearJump); |
| 1111 | 1114 |
| 1112 // uint32_t xi = *xip++ | 1115 // uint64_t xi = *xip++ |
| 1113 __ movl(RAX, Address(RDI, 0)); | 1116 __ movq(RAX, Address(RDI, 0)); |
| 1114 __ addq(RDI, Immediate(Bigint::kBytesPerDigit)); | 1117 __ addq(RDI, Immediate(2*Bigint::kBytesPerDigit)); |
| 1115 | 1118 |
| 1116 // uint96_t t = RCX:RDX:RAX = 2*x*xi + aj + c | 1119 // uint192_t t = RCX:RDX:RAX = 2*x*xi + aj + c |
| 1117 __ mull(RBX); // RDX:RAX = RAX * RBX | 1120 __ mulq(RBX); // RDX:RAX = RAX * RBX |
| 1118 __ xorl(RCX, RCX); // RCX = 0 | 1121 __ xorq(RCX, RCX); // RCX = 0 |
| 1119 __ shldl(RCX, RDX, Immediate(1)); | 1122 __ shldq(RCX, RDX, Immediate(1)); |
| 1120 __ shldl(RDX, RAX, Immediate(1)); | 1123 __ shldq(RDX, RAX, Immediate(1)); |
| 1121 __ shll(RAX, Immediate(1)); // RCX:RDX:RAX <<= 1 | 1124 __ shlq(RAX, Immediate(1)); // RCX:RDX:RAX <<= 1 |
| 1122 __ addl(RAX, Address(RSI, 0)); // t += aj | 1125 __ addq(RAX, Address(RSI, 0)); // t += aj |
| 1123 __ adcl(RDX, Immediate(0)); | 1126 __ adcq(RDX, Immediate(0)); |
| 1124 __ adcl(RCX, Immediate(0)); | 1127 __ adcq(RCX, Immediate(0)); |
| 1125 __ addl(RAX, R12); // t += low32(c) | 1128 __ addq(RAX, R12); // t += low64(c) |
| 1126 __ adcl(RDX, R13); // t += high32(c) << 32 | 1129 __ adcq(RDX, R13); // t += high64(c) << 64 |
| 1127 __ adcl(RCX, Immediate(0)); | 1130 __ adcq(RCX, Immediate(0)); |
| 1128 | 1131 |
| 1129 // *ajp++ = low32(t) | 1132 // *ajp++ = low64(t) |
| 1130 __ movl(Address(RSI, 0), RAX); | 1133 __ movq(Address(RSI, 0), RAX); |
| 1131 __ addq(RSI, Immediate(Bigint::kBytesPerDigit)); | 1134 __ addq(RSI, Immediate(2*Bigint::kBytesPerDigit)); |
| 1132 | 1135 |
| 1133 // c = high64(t) | 1136 // c = high64(t) |
| 1134 __ movl(R12, RDX); | 1137 __ movq(R12, RDX); |
| 1135 __ movl(R13, RCX); | 1138 __ movq(R13, RCX); |
| 1136 | 1139 |
| 1137 __ jmp(&loop, Assembler::kNearJump); | 1140 __ jmp(&loop, Assembler::kNearJump); |
| 1138 | 1141 |
| 1139 __ Bind(&done); | 1142 __ Bind(&done); |
| 1140 // uint64_t t = aj + c | 1143 // uint128_t t = aj + c |
| 1141 __ addl(R12, Address(RSI, 0)); // t = c, t += *ajp | 1144 __ addq(R12, Address(RSI, 0)); // t = c, t += *ajp |
| 1142 __ adcl(R13, Immediate(0)); | 1145 __ adcq(R13, Immediate(0)); |
| 1143 | 1146 |
| 1144 // *ajp++ = low32(t) | 1147 // *ajp++ = low64(t) |
| 1145 // *ajp = high32(t) | 1148 // *ajp = high64(t) |
| 1146 __ movl(Address(RSI, 0), R12); | 1149 __ movq(Address(RSI, 0), R12); |
| 1147 __ movl(Address(RSI, Bigint::kBytesPerDigit), R13); | 1150 __ movq(Address(RSI, 2*Bigint::kBytesPerDigit), R13); |
| 1148 | 1151 |
| 1149 __ Bind(&x_zero); | 1152 __ Bind(&x_zero); |
| 1150 __ movq(RAX, Immediate(Smi::RawValue(1))); // One digit processed. | 1153 __ movq(RAX, Immediate(Smi::RawValue(2))); // Two digits processed. |
| 1151 __ ret(); | 1154 __ ret(); |
| 1152 } | 1155 } |
| 1153 | 1156 |
| 1154 | 1157 |
| 1155 void Intrinsifier::Bigint_estQuotientDigit(Assembler* assembler) { | 1158 void Intrinsifier::Bigint_estQuotientDigit(Assembler* assembler) { |
| 1156 // Pseudo code: | 1159 // Pseudo code: |
| 1157 // static int _estQuotientDigit(Uint32List args, Uint32List digits, int i) { | 1160 // static int _estQuotientDigit(Uint32List args, Uint32List digits, int i) { |
| 1158 // uint32_t yt = args[_YT]; // _YT == 1. | 1161 // uint64_t yt = args[_YT_LO .. _YT]; // _YT_LO == 0, _YT == 1. |
| 1159 // uint32_t* dp = &digits[i >> 1]; // i is Smi. | 1162 // uint64_t* dp = &digits[(i >> 1) - 1]; // i is Smi. |
| 1160 // uint32_t dh = dp[0]; // dh == digits[i >> 1]. | 1163 // uint64_t dh = dp[0]; // dh == digits[(i >> 1) - 1 .. i >> 1]. |
| 1161 // uint32_t qd; | 1164 // uint64_t qd; |
| 1162 // if (dh == yt) { | 1165 // if (dh == yt) { |
| 1163 // qd = DIGIT_MASK; | 1166 // qd = (DIGIT_MASK << 32) | DIGIT_MASK; |
| 1164 // } else { | 1167 // } else { |
| 1165 // dl = dp[-1]; // dl == digits[(i - 1) >> 1]. | 1168 // dl = dp[-1]; // dl == digits[(i >> 1) - 3 .. (i >> 1) - 2]. |
| 1166 // qd = dh:dl / yt; // No overflow possible, because dh < yt. | 1169 // qd = dh:dl / yt; // No overflow possible, because dh < yt. |
| 1167 // } | 1170 // } |
| 1168 // args[_QD] = qd; // _QD == 2. | 1171 // args[_QD .. _QD_HI] = qd; // _QD == 2, _QD_HI == 3. |
| 1169 // return 1; | 1172 // return 2; |
| 1170 // } | 1173 // } |
| 1171 | 1174 |
| 1172 // RDI = args | 1175 // RDI = args |
| 1173 __ movq(RDI, Address(RSP, 3 * kWordSize)); // args | 1176 __ movq(RDI, Address(RSP, 3 * kWordSize)); // args |
| 1174 | 1177 |
| 1175 // RCX = yt = args[1] | 1178 // RCX = yt = args[0..1] |
| 1176 __ movl(RCX, | 1179 __ movq(RCX, FieldAddress(RDI, TypedData::data_offset())); |
| 1177 FieldAddress(RDI, TypedData::data_offset() + Bigint::kBytesPerDigit)); | |
| 1178 | 1180 |
| 1179 // RBX = dp = &digits[i >> 1] | 1181 // RBX = dp = &digits[(i >> 1) - 1] |
| 1180 __ movq(RBX, Address(RSP, 2 * kWordSize)); // digits | 1182 __ movq(RBX, Address(RSP, 2 * kWordSize)); // digits |
| 1181 __ movq(RAX, Address(RSP, 1 * kWordSize)); // i is Smi | 1183 __ movq(RAX, Address(RSP, 1 * kWordSize)); // i is Smi and odd. |
| 1182 __ leaq(RBX, FieldAddress(RBX, RAX, TIMES_2, TypedData::data_offset())); | 1184 __ leaq(RBX, FieldAddress(RBX, RAX, TIMES_2, |
| 1185 TypedData::data_offset() - Bigint::kBytesPerDigit)); | |
| 1183 | 1186 |
| 1184 // RDX = dh = dp[0] | 1187 // RDX = dh = dp[0] |
| 1185 __ movl(RDX, Address(RBX, 0)); | 1188 __ movq(RDX, Address(RBX, 0)); |
| 1186 | 1189 |
| 1187 // RAX = qd = DIGIT_MASK = -1 | 1190 // RAX = qd = (DIGIT_MASK << 32) | DIGIT_MASK = -1 |
| 1188 __ movl(RAX, Immediate(-1)); | 1191 __ movq(RAX, Immediate(-1)); |
| 1189 | 1192 |
| 1190 // Return qd if dh == yt | 1193 // Return qd if dh == yt |
| 1191 Label return_qd; | 1194 Label return_qd; |
| 1192 __ cmpl(RDX, RCX); | 1195 __ cmpq(RDX, RCX); |
| 1193 __ j(EQUAL, &return_qd, Assembler::kNearJump); | 1196 __ j(EQUAL, &return_qd, Assembler::kNearJump); |
| 1194 | 1197 |
| 1195 // RAX = dl = dp[-1] | 1198 // RAX = dl = dp[-1] |
| 1196 __ movl(RAX, Address(RBX, -Bigint::kBytesPerDigit)); | 1199 __ movq(RAX, Address(RBX, -2*Bigint::kBytesPerDigit)); |
| 1197 | 1200 |
| 1198 // RAX = qd = dh:dl / yt = RDX:RAX / RCX | 1201 // RAX = qd = dh:dl / yt = RDX:RAX / RCX |
| 1199 __ divl(RCX); | 1202 __ divq(RCX); |
| 1200 | 1203 |
| 1201 __ Bind(&return_qd); | 1204 __ Bind(&return_qd); |
| 1202 // args[2] = qd | 1205 // args[2..3] = qd |
| 1203 __ movl(FieldAddress(RDI, | 1206 __ movq(FieldAddress(RDI, |
| 1204 TypedData::data_offset() + 2*Bigint::kBytesPerDigit), | 1207 TypedData::data_offset() + 2*Bigint::kBytesPerDigit), |
| 1205 RAX); | 1208 RAX); |
| 1206 | 1209 |
| 1207 __ movq(RAX, Immediate(Smi::RawValue(1))); // One digit processed. | 1210 __ movq(RAX, Immediate(Smi::RawValue(2))); // Two digits processed. |
| 1208 __ ret(); | 1211 __ ret(); |
| 1209 } | 1212 } |
| 1210 | 1213 |
| 1211 | 1214 |
| 1212 void Intrinsifier::Montgomery_mulMod(Assembler* assembler) { | 1215 void Intrinsifier::Montgomery_mulMod(Assembler* assembler) { |
| 1213 // Pseudo code: | 1216 // Pseudo code: |
| 1214 // static int _mulMod(Uint32List args, Uint32List digits, int i) { | 1217 // static int _mulMod(Uint32List args, Uint32List digits, int i) { |
| 1215 // uint32_t rho = args[_RHO]; // _RHO == 2. | 1218 // uint64_t rho = args[_RHO .. _RHO_HI]; // _RHO == 2, _RHO_HI == 3. |
| 1216 // uint32_t d = digits[i >> 1]; // i is Smi. | 1219 // uint64_t d = digits[i >> 1 .. (i >> 1) + 1]; // i is Smi and even. |
| 1217 // uint64_t t = rho*d; | 1220 // uint128_t t = rho*d; |
| 1218 // args[_MU] = t mod DIGIT_BASE; // _MU == 4. | 1221 // args[_MU .. _MU_HI] = t mod DIGIT_BASE^2; // _MU == 4, _MU_HI == 5. |
| 1219 // return 1; | 1222 // return 2; |
| 1220 // } | 1223 // } |
| 1221 | 1224 |
| 1222 // RDI = args | 1225 // RDI = args |
| 1223 __ movq(RDI, Address(RSP, 3 * kWordSize)); // args | 1226 __ movq(RDI, Address(RSP, 3 * kWordSize)); // args |
| 1224 | 1227 |
| 1225 // RCX = rho = args[2] | 1228 // RCX = rho = args[2 .. 3] |
| 1226 __ movl(RCX, | 1229 __ movq(RCX, |
| 1227 FieldAddress(RDI, | 1230 FieldAddress(RDI, |
| 1228 TypedData::data_offset() + 2*Bigint::kBytesPerDigit)); | 1231 TypedData::data_offset() + 2*Bigint::kBytesPerDigit)); |
| 1229 | 1232 |
| 1230 // RAX = digits[i >> 1] | 1233 // RAX = digits[i >> 1 .. (i >> 1) + 1] |
| 1231 __ movq(RBX, Address(RSP, 2 * kWordSize)); // digits | 1234 __ movq(RBX, Address(RSP, 2 * kWordSize)); // digits |
| 1232 __ movq(RAX, Address(RSP, 1 * kWordSize)); // i is Smi | 1235 __ movq(RAX, Address(RSP, 1 * kWordSize)); // i is Smi |
| 1233 __ movl(RAX, FieldAddress(RBX, RAX, TIMES_2, TypedData::data_offset())); | 1236 __ movq(RAX, FieldAddress(RBX, RAX, TIMES_2, TypedData::data_offset())); |
| 1234 | 1237 |
| 1235 // RDX:RAX = t = rho*d | 1238 // RDX:RAX = t = rho*d |
| 1236 __ mull(RCX); | 1239 __ mulq(RCX); |
| 1237 | 1240 |
| 1238 // args[4] = t mod DIGIT_BASE = low32(t) | 1241 // args[4 .. 5] = t mod DIGIT_BASE^2 = low64(t) |
| 1239 __ movl(FieldAddress(RDI, | 1242 __ movq(FieldAddress(RDI, |
| 1240 TypedData::data_offset() + 4*Bigint::kBytesPerDigit), | 1243 TypedData::data_offset() + 4*Bigint::kBytesPerDigit), |
| 1241 RAX); | 1244 RAX); |
| 1242 | 1245 |
| 1243 __ movq(RAX, Immediate(Smi::RawValue(1))); // One digit processed. | 1246 __ movq(RAX, Immediate(Smi::RawValue(2))); // Two digits processed. |
| 1244 __ ret(); | 1247 __ ret(); |
| 1245 } | 1248 } |
| 1246 | 1249 |
| 1247 | 1250 |
| 1248 // Check if the last argument is a double, jump to label 'is_smi' if smi | 1251 // Check if the last argument is a double, jump to label 'is_smi' if smi |
| 1249 // (easy to convert to double), otherwise jump to label 'not_double_smi', | 1252 // (easy to convert to double), otherwise jump to label 'not_double_smi', |
| 1250 // Returns the last argument in RAX. | 1253 // Returns the last argument in RAX. |
| 1251 static void TestLastArgumentIsDouble(Assembler* assembler, | 1254 static void TestLastArgumentIsDouble(Assembler* assembler, |
| 1252 Label* is_smi, | 1255 Label* is_smi, |
| 1253 Label* not_double_smi) { | 1256 Label* not_double_smi) { |
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| 2006 // Set return value to Isolate::current_tag_. | 2009 // Set return value to Isolate::current_tag_. |
| 2007 __ movq(RAX, Address(RBX, Isolate::current_tag_offset())); | 2010 __ movq(RAX, Address(RBX, Isolate::current_tag_offset())); |
| 2008 __ ret(); | 2011 __ ret(); |
| 2009 } | 2012 } |
| 2010 | 2013 |
| 2011 #undef __ | 2014 #undef __ |
| 2012 | 2015 |
| 2013 } // namespace dart | 2016 } // namespace dart |
| 2014 | 2017 |
| 2015 #endif // defined TARGET_ARCH_X64 | 2018 #endif // defined TARGET_ARCH_X64 |
| OLD | NEW |