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Side by Side Diff: runtime/vm/intrinsifier_arm64.cc

Issue 701233003: Implement bigint intrinsics on arm64. (Closed) Base URL: http://dart.googlecode.com/svn/branches/bleeding_edge/dart/
Patch Set: Created 6 years, 1 month ago
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1 // Copyright (c) 2014, the Dart project authors. Please see the AUTHORS file 1 // Copyright (c) 2014, 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_ARM64. 5 #include "vm/globals.h" // Needed here to get TARGET_ARCH_ARM64.
6 #if defined(TARGET_ARCH_ARM64) 6 #if defined(TARGET_ARCH_ARM64)
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 784 matching lines...) Expand 10 before | Expand all | Expand 10 after
795 795
796 void Intrinsifier::Bigint_setDigits(Assembler* assembler) { 796 void Intrinsifier::Bigint_setDigits(Assembler* assembler) {
797 __ ldr(R0, Address(SP, 0 * kWordSize)); 797 __ ldr(R0, Address(SP, 0 * kWordSize));
798 __ ldr(R1, Address(SP, 1 * kWordSize)); 798 __ ldr(R1, Address(SP, 1 * kWordSize));
799 __ StoreIntoObject(R1, FieldAddress(R1, Bigint::digits_offset()), R0, false); 799 __ StoreIntoObject(R1, FieldAddress(R1, Bigint::digits_offset()), R0, false);
800 __ ret(); 800 __ ret();
801 } 801 }
802 802
803 803
804 void Intrinsifier::Bigint_absAdd(Assembler* assembler) { 804 void Intrinsifier::Bigint_absAdd(Assembler* assembler) {
805 // TODO(regis): Implement. 805 // static void _absAdd(Uint32List digits, int used,
806 // Uint32List a_digits, int a_used,
807 // Uint32List r_digits)
808
809 // R2 = used, R3 = digits
810 __ ldp(R2, R3, Address(SP, 3 * kWordSize, Address::PairOffset));
811 __ add(R3, R3, Operand(TypedData::data_offset() - kHeapObjectTag));
812
813 // R4 = a_used, R5 = a_digits
814 __ ldp(R4, R5, Address(SP, 1 * kWordSize, Address::PairOffset));
815 __ add(R5, R5, Operand(TypedData::data_offset() - kHeapObjectTag));
816
817 // R6 = r_digits
818 __ ldr(R6, Address(SP, 0 * kWordSize));
819 __ add(R6, R6, Operand(TypedData::data_offset() - kHeapObjectTag));
820
821 // R7 = &digits[a_used >> 1], a_used is Smi.
822 __ add(R7, R3, Operand(R4, LSL, 1));
823
824 // R8 = &digits[used >> 1], used is Smi.
825 __ add(R8, R3, Operand(R2, LSL, 1));
826
827 __ adds(R0, R0, Operand(0)); // carry flag = 0
828 Label add_loop;
829 __ Bind(&add_loop);
830 // Loop a_used times, a_used > 0.
831 __ ldr(R0, Address(R3, Bigint::kBytesPerDigit, Address::PostIndex),
832 kUnsignedWord);
833 __ ldr(R1, Address(R5, Bigint::kBytesPerDigit, Address::PostIndex),
834 kUnsignedWord);
835 __ adcsw(R0, R0, R1);
836 __ sub(R9, R3, Operand(R7)); // Does not affect carry flag.
837 __ str(R0, Address(R6, Bigint::kBytesPerDigit, Address::PostIndex),
838 kUnsignedWord);
839 __ cbnz(&add_loop, R9); // Does not affect carry flag.
840
841 Label last_carry;
842 __ sub(R9, R3, Operand(R8)); // Does not affect carry flag.
843 __ cbz(&last_carry, R9); // If used - a_used == 0.
844
845 Label carry_loop;
846 __ Bind(&carry_loop);
847 // Loop used - a_used times, used - a_used > 0.
848 __ ldr(R0, Address(R3, Bigint::kBytesPerDigit, Address::PostIndex),
849 kUnsignedWord);
850 __ adcsw(R0, R0, ZR);
851 __ sub(R9, R3, Operand(R8)); // Does not affect carry flag.
852 __ str(R0, Address(R6, Bigint::kBytesPerDigit, Address::PostIndex),
853 kUnsignedWord);
854 __ cbnz(&carry_loop, R9);
855
856 __ Bind(&last_carry);
857 __ adc(R0, ZR, ZR);
858 __ str(R0, Address(R6, 0), kUnsignedWord);
859
860 // Returning Object::null() is not required, since this method is private.
861 __ ret();
806 } 862 }
807 863
808 864
809 void Intrinsifier::Bigint_absSub(Assembler* assembler) { 865 void Intrinsifier::Bigint_absSub(Assembler* assembler) {
810 // TODO(regis): Implement. 866 // static void _absSub(Uint32List digits, int used,
867 // Uint32List a_digits, int a_used,
868 // Uint32List r_digits)
869
870 // R2 = used, R3 = digits
871 __ ldp(R2, R3, Address(SP, 3 * kWordSize, Address::PairOffset));
872 __ add(R3, R3, Operand(TypedData::data_offset() - kHeapObjectTag));
873
874 // R4 = a_used, R5 = a_digits
875 __ ldp(R4, R5, Address(SP, 1 * kWordSize, Address::PairOffset));
876 __ add(R5, R5, Operand(TypedData::data_offset() - kHeapObjectTag));
877
878 // R6 = r_digits
879 __ ldr(R6, Address(SP, 0 * kWordSize));
880 __ add(R6, R6, Operand(TypedData::data_offset() - kHeapObjectTag));
881
882 // R7 = &digits[a_used >> 1], a_used is Smi.
883 __ add(R7, R3, Operand(R4, LSL, 1));
884
885 // R8 = &digits[used >> 1], used is Smi.
886 __ add(R8, R3, Operand(R2, LSL, 1));
887
888 __ subs(R0, R0, Operand(0)); // carry flag = 1
889 Label sub_loop;
890 __ Bind(&sub_loop);
891 // Loop a_used times, a_used > 0.
892 __ ldr(R0, Address(R3, Bigint::kBytesPerDigit, Address::PostIndex),
893 kUnsignedWord);
894 __ ldr(R1, Address(R5, Bigint::kBytesPerDigit, Address::PostIndex),
895 kUnsignedWord);
896 __ sbcsw(R0, R0, R1);
897 __ sub(R9, R3, Operand(R7)); // Does not affect carry flag.
898 __ str(R0, Address(R6, Bigint::kBytesPerDigit, Address::PostIndex),
899 kUnsignedWord);
900 __ cbnz(&sub_loop, R9); // Does not affect carry flag.
901
902 Label done;
903 __ sub(R9, R3, Operand(R8)); // Does not affect carry flag.
904 __ cbz(&done, R9); // If used - a_used == 0.
905
906 Label carry_loop;
907 __ Bind(&carry_loop);
908 // Loop used - a_used times, used - a_used > 0.
909 __ ldr(R0, Address(R3, Bigint::kBytesPerDigit, Address::PostIndex),
910 kUnsignedWord);
911 __ sbcsw(R0, R0, ZR);
912 __ sub(R9, R3, Operand(R8)); // Does not affect carry flag.
913 __ str(R0, Address(R6, Bigint::kBytesPerDigit, Address::PostIndex),
914 kUnsignedWord);
915 __ cbnz(&carry_loop, R9);
916
917 __ Bind(&done);
918 // Returning Object::null() is not required, since this method is private.
919 __ ret();
811 } 920 }
812 921
813 922
814 void Intrinsifier::Bigint_mulAdd(Assembler* assembler) { 923 void Intrinsifier::Bigint_mulAdd(Assembler* assembler) {
815 // TODO(regis): Implement. 924 // Pseudo code:
925 // static void _mulAdd(Uint32List x_digits, int xi,
926 // Uint32List m_digits, int i,
927 // Uint32List a_digits, int j, int n) {
928 // uint32_t x = x_digits[xi >> 1]; // xi is Smi.
929 // if (x == 0 || n == 0) {
930 // return;
931 // }
932 // uint32_t* mip = &m_digits[i >> 1]; // i is Smi.
933 // uint32_t* ajp = &a_digits[j >> 1]; // j is Smi.
934 // uint32_t c = 0;
935 // SmiUntag(n);
936 // do {
937 // uint32_t mi = *mip++;
938 // uint32_t aj = *ajp;
939 // uint64_t t = x*mi + aj + c; // 32-bit * 32-bit -> 64-bit.
940 // *ajp++ = low32(t);
941 // c = high32(t);
942 // } while (--n > 0);
943 // while (c != 0) {
944 // uint64_t t = *ajp + c;
945 // *ajp++ = low32(t);
946 // c = high32(t); // c == 0 or 1.
947 // }
948 // }
949
950 Label done;
951 // R3 = x, no_op if x == 0
952 // R0 = xi as Smi, R1 = x_digits.
953 __ ldp(R0, R1, Address(SP, 5 * kWordSize, Address::PairOffset));
954 __ add(R1, R1, Operand(R0, LSL, 1));
955 __ ldr(R3, FieldAddress(R1, TypedData::data_offset()), kUnsignedWord);
956 __ tst(R3, Operand(R3));
957 __ b(&done, EQ);
958
959 // R6 = SmiUntag(n), no_op if n == 0
960 __ ldr(R6, Address(SP, 0 * kWordSize));
961 __ adds(R6, ZR, Operand(R6, ASR, kSmiTagSize)); // SmiUntag(R6) and set cc.
962 __ b(&done, EQ);
963
964 // R4 = mip = &m_digits[i >> 1]
965 // R0 = i as Smi, R1 = m_digits.
966 __ ldp(R0, R1, Address(SP, 3 * kWordSize, Address::PairOffset));
967 __ add(R1, R1, Operand(R0, LSL, 1));
968 __ add(R4, R1, Operand(TypedData::data_offset() - kHeapObjectTag));
969
970 // R5 = ajp = &a_digits[j >> 1]
971 // R0 = j as Smi, R1 = a_digits.
972 __ ldp(R0, R1, Address(SP, 1 * kWordSize, Address::PairOffset));
973 __ add(R1, R1, Operand(R0, LSL, 1));
974 __ add(R5, R1, Operand(TypedData::data_offset() - kHeapObjectTag));
975
976 // R1 = c = 0
977 __ mov(R1, ZR);
978
979 Label muladd_loop;
980 __ Bind(&muladd_loop);
981 // x: R3
982 // mip: R4
983 // ajp: R5
984 // c: R1
985 // n: R6
986
987 // uint32_t mi = *mip++
988 __ ldr(R2, Address(R4, Bigint::kBytesPerDigit, Address::PostIndex),
989 kUnsignedWord);
990
991 // uint32_t aj = *ajp
992 __ ldr(R0, Address(R5, 0), kUnsignedWord);
993
994 // uint64_t t = x*mi + aj + c
995 __ umaddl(R0, R2, R3, R0); // X0 = W2*W3 + X0.
996 __ add(R0, R0, Operand(R1)); // R0 += c.
997
998 // *ajp++ = low32(t) = R0
999 __ str(R0, Address(R5, Bigint::kBytesPerDigit, Address::PostIndex),
1000 kUnsignedWord);
1001
1002 // c = R1 = high32(t) = R0 >> 32.
1003 __ LsrImmediate(R1, R0, 32);
1004
1005 // while (--n > 0)
1006 __ subs(R6, R6, Operand(1)); // --n
1007 __ b(&muladd_loop, NE);
1008
1009 __ tst(R1, Operand(R1));
1010 __ b(&done, EQ);
1011
1012 // *ajp++ += c
1013 __ ldr(R0, Address(R5, 0), kUnsignedWord);
1014 __ addsw(R0, R0, Operand(R1));
1015 __ str(R0, Address(R5, Bigint::kBytesPerDigit, Address::PostIndex),
1016 kUnsignedWord);
1017 __ b(&done, CC);
1018
1019 Label propagate_carry_loop;
1020 __ Bind(&propagate_carry_loop);
1021 __ ldr(R0, Address(R5, 0), kUnsignedWord);
1022 __ addsw(R0, R0, Operand(1));
1023 __ str(R0, Address(R5, Bigint::kBytesPerDigit, Address::PostIndex),
1024 kUnsignedWord);
1025 __ b(&propagate_carry_loop, CS);
1026
1027 __ Bind(&done);
1028 // Returning Object::null() is not required, since this method is private.
1029 __ ret();
816 } 1030 }
817 1031
818 1032
819 void Intrinsifier::Bigint_sqrAdd(Assembler* assembler) { 1033 void Intrinsifier::Bigint_sqrAdd(Assembler* assembler) {
820 // TODO(regis): Implement. 1034 // Pseudo code:
1035 // static void _sqrAdd(Uint32List x_digits, int i,
1036 // Uint32List a_digits, int used) {
1037 // uint32_t* xip = &x_digits[i >> 1]; // i is Smi.
1038 // uint32_t x = *xip++;
1039 // if (x == 0) return;
1040 // uint32_t* ajp = &a_digits[i]; // j == 2*i, i is Smi.
1041 // uint32_t aj = *ajp;
1042 // uint64_t t = x*x + aj;
1043 // *ajp++ = low32(t);
1044 // uint64_t c = high32(t);
1045 // int n = ((used - i) >> 1) - 1; // used and i are Smi.
1046 // while (--n >= 0) {
1047 // uint32_t xi = *xip++;
1048 // uint32_t aj = *ajp;
1049 // uint96_t t = 2*x*xi + aj + c; // 2-bit * 32-bit * 32-bit -> 65-bit.
1050 // *ajp++ = low32(t);
1051 // c = high64(t); // 33-bit.
1052 // }
1053 // uint32_t aj = *ajp;
1054 // uint64_t t = aj + c; // 32-bit + 33-bit -> 34-bit.
1055 // *ajp++ = low32(t);
1056 // *ajp = high32(t);
1057 // }
1058
1059 // R4 = xip = &x_digits[i >> 1]
1060 // R2 = i as Smi, R3 = x_digits
1061 __ ldp(R2, R3, Address(SP, 2 * kWordSize, Address::PairOffset));
1062 __ add(R3, R3, Operand(R2, LSL, 1));
1063 __ add(R4, R3, Operand(TypedData::data_offset() - kHeapObjectTag));
1064
1065 // R3 = x = *xip++, return if x == 0
1066 Label x_zero;
1067 __ ldr(R3, Address(R4, Bigint::kBytesPerDigit, Address::PostIndex),
1068 kUnsignedWord);
1069 __ tst(R3, Operand(R3));
1070 __ b(&x_zero, EQ);
1071
1072 // R5 = ajp = &a_digits[i]
1073 __ ldr(R1, Address(SP, 1 * kWordSize)); // a_digits
1074 __ add(R1, R1, Operand(R2, LSL, 2)); // j == 2*i, i is Smi.
1075 __ add(R5, R1, Operand(TypedData::data_offset() - kHeapObjectTag));
1076
1077 // X0 = t = x*x + *ajp
1078 __ ldr(R0, Address(R5, 0), kUnsignedWord);
1079 __ umaddl(R0, R3, R3, R0); // X0 = W3*W3 + X0.
1080
1081 // *ajp++ = low32(t) = R0
1082 __ str(R0, Address(R5, Bigint::kBytesPerDigit, Address::PostIndex),
1083 kUnsignedWord);
1084
1085 // c = R6 = high32(t) = R0 >> 32.
1086 __ LsrImmediate(R6, R0, 32);
1087
1088 // int n = used - i - 1
1089 __ ldr(R0, Address(SP, 0 * kWordSize)); // used is Smi
1090 __ sub(R8, R0, Operand(R2));
1091 __ movn(R0, Immediate(1), 0); // R0 = ~1 = -2.
1092 __ adds(R8, R0, Operand(R8, ASR, kSmiTagSize)); // while (--n >= 0)
1093
1094 Label loop, done;
1095 __ b(&done, MI);
1096
1097 __ Bind(&loop);
1098 // x: R3
1099 // xip: R4
1100 // ajp: R5
1101 // c: R6
1102 // t: R1:R0 (not live at loop entry)
1103 // n: R8
1104
1105 // uint32_t xi = *xip++
1106 __ ldr(R2, Address(R4, Bigint::kBytesPerDigit, Address::PostIndex),
1107 kUnsignedWord);
1108
1109 // uint32_t aj = *ajp
1110 __ ldr(R1, Address(R5, 0), kUnsignedWord);
1111
1112 // uint96_t t = R1:R0 = 2*x*xi + aj + c
1113 __ umaddl(R0, R2, R3, ZR); // X0 = W2*W3 + 0 = x*xi.
1114 __ add(R1, R0, Operand(R1)); // R1 = x*xi + aj.
1115 __ adds(R0, R0, Operand(R1));
1116 __ adc(R1, ZR, ZR); // R1:R0 = 2*R0 + R1 = 2*x*xi + aj.
1117 __ adds(R0, R0, Operand(R6));
1118 __ adc(R1, R1, ZR); // R1:R0 = R1:R0 + R6 = 2*x*xi + aj + c.
1119
1120 // *ajp++ = low32(t) = R0
1121 __ str(R0, Address(R5, Bigint::kBytesPerDigit, Address::PostIndex),
1122 kUnsignedWord);
1123
1124 // R6 = c = t >> 32.
1125 __ LslImmediate(R6, R1, 32);
1126 __ orr(R6, R6, Operand(R0, LSR, 32));
1127
1128 // while (--n >= 0)
1129 __ subs(R8, R8, Operand(1)); // --n
1130 __ b(&loop, PL);
1131
1132 __ Bind(&done);
1133 // uint32_t aj = *ajp
1134 __ ldr(R0, Address(R5, 0), kUnsignedWord);
1135
1136 // uint64_t t = aj + c
1137 __ add(R6, R6, Operand(R0));
1138
1139 // R7 = R6 >> 32.
1140 __ LsrImmediate(R7, R6, 32);
1141
1142 // *ajp = low32(t) = low32(R6)
1143 // *(ajp + 1) = high32(t) = low32(R7)
1144 __ stp(R6, R7, Address(R5, 0, Address::PairOffset), kUnsignedWord);
1145
1146 __ Bind(&x_zero);
1147 // Returning Object::null() is not required, since this method is private.
1148 __ ret();
821 } 1149 }
822 1150
823 1151
824 void Intrinsifier::Bigint_estQuotientDigit(Assembler* assembler) { 1152 void Intrinsifier::Bigint_estQuotientDigit(Assembler* assembler) {
825 // TODO(regis): Implement. 1153 // Pseudo code:
1154 // static void _estQuotientDigit(Uint32List args, Uint32List digits, int i) {
1155 // uint32_t yt = args[_YT]; // _YT == 0.
1156 // uint32_t* dp = &digits[i >> 1]; // i is Smi.
1157 // uint32_t dh = dp[0]; // dh == digits[i >> 1].
1158 // uint32_t qd;
1159 // if (dh == yt) {
1160 // qd = DIGIT_MASK;
1161 // } else {
1162 // dl = dp[-1]; // dl == digits[(i - 1) >> 1].
1163 // qd = dh:dl / yt; // No overflow possible, because dh < yt.
1164 // }
1165 // args[_QD] = qd; // _QD == 1;
1166 // }
1167
1168 // R4 = args
1169 __ ldr(R4, Address(SP, 2 * kWordSize)); // args
1170
1171 // R3 = yt = args[0]
1172 __ ldr(R3, FieldAddress(R4, TypedData::data_offset()), kUnsignedWord);
1173
1174 // R2 = dh = digits[i >> 1]
1175 // R0 = i as Smi, R1 = digits
1176 __ ldp(R0, R1, Address(SP, 0 * kWordSize, Address::PairOffset));
1177 __ add(R1, R1, Operand(R0, LSL, 1));
1178 __ ldr(R2, FieldAddress(R1, TypedData::data_offset()), kUnsignedWord);
1179
1180 // R0 = qd = DIGIT_MASK = -1
1181 __ movn(R0, Immediate(0), 0);
1182
1183 // Return qd if dh == yt
1184 Label return_qd;
1185 __ cmp(R2, Operand(R3));
1186 __ b(&return_qd, EQ);
1187
1188 // R1 = dl = digits[(i - 1) >> 1]
1189 __ ldr(R1,
1190 FieldAddress(R1, TypedData::data_offset() - Bigint::kBytesPerDigit),
1191 kUnsignedWord);
1192
1193 // R1 = dh:dl
1194 __ orr(R1, R1, Operand(R2, LSL, 32));
1195
1196 // R0 = qd = dh:dl / yt = R1 / R3
1197 __ udiv(R0, R1, R3);
1198
1199 __ Bind(&return_qd);
1200 // args[1] = qd
1201 __ str(R0,
1202 FieldAddress(R4, TypedData::data_offset() + Bigint::kBytesPerDigit),
1203 kUnsignedWord);
1204
1205 // Returning Object::null() is not required, since this method is private.
1206 __ ret();
826 } 1207 }
827 1208
828 1209
829 void Intrinsifier::Montgomery_mulMod(Assembler* assembler) { 1210 void Intrinsifier::Montgomery_mulMod(Assembler* assembler) {
830 // TODO(regis): Implement. 1211 // Pseudo code:
831 } 1212 // static void _mulMod(Uint32List args, Uint32List digits, int i) {
832 1213 // uint32_t rho = args[_RHO]; // _RHO == 0.
833 1214 // uint32_t d = digits[i >> 1]; // i is Smi.
1215 // uint64_t t = rho*d;
1216 // args[_MU] = t mod DIGIT_BASE; // _MU == 1.
1217 // }
1218
1219 // R4 = args
1220 __ ldr(R4, Address(SP, 2 * kWordSize)); // args
1221
1222 // R3 = rho = args[0]
1223 __ ldr(R3, FieldAddress(R4, TypedData::data_offset()), kUnsignedWord);
1224
1225 // R2 = digits[i >> 1]
1226 // R0 = i as Smi, R1 = digits
1227 __ ldp(R0, R1, Address(SP, 0 * kWordSize, Address::PairOffset));
1228 __ add(R1, R1, Operand(R0, LSL, 1));
1229 __ ldr(R2, FieldAddress(R1, TypedData::data_offset()), kUnsignedWord);
1230
1231 // X0 = t = rho*d
1232 __ umaddl(R0, R2, R3, ZR); // X0 = W2*W3 + 0.
1233
1234 // args[1] = t mod DIGIT_BASE = low32(t)
1235 __ str(R0,
1236 FieldAddress(R4, TypedData::data_offset() + Bigint::kBytesPerDigit),
1237 kWord);
1238
1239 // Returning Object::null() is not required, since this method is private.
1240 __ ret();
1241 }
1242
1243
834 // Check if the last argument is a double, jump to label 'is_smi' if smi 1244 // Check if the last argument is a double, jump to label 'is_smi' if smi
835 // (easy to convert to double), otherwise jump to label 'not_double_smi', 1245 // (easy to convert to double), otherwise jump to label 'not_double_smi',
836 // Returns the last argument in R0. 1246 // Returns the last argument in R0.
837 static void TestLastArgumentIsDouble(Assembler* assembler, 1247 static void TestLastArgumentIsDouble(Assembler* assembler,
838 Label* is_smi, 1248 Label* is_smi,
839 Label* not_double_smi) { 1249 Label* not_double_smi) {
840 __ ldr(R0, Address(SP, 0 * kWordSize)); 1250 __ ldr(R0, Address(SP, 0 * kWordSize));
841 __ tsti(R0, Immediate(kSmiTagMask)); 1251 __ tsti(R0, Immediate(kSmiTagMask));
842 __ b(is_smi, EQ); 1252 __ b(is_smi, EQ);
843 __ CompareClassId(R0, kDoubleCid, kNoPP); 1253 __ CompareClassId(R0, kDoubleCid, kNoPP);
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1552 Isolate* isolate = Isolate::Current(); 1962 Isolate* isolate = Isolate::Current();
1553 __ LoadImmediate(R1, reinterpret_cast<uword>(isolate), kNoPP); 1963 __ LoadImmediate(R1, reinterpret_cast<uword>(isolate), kNoPP);
1554 // Set return value to Isolate::current_tag_. 1964 // Set return value to Isolate::current_tag_.
1555 __ ldr(R0, Address(R1, Isolate::current_tag_offset())); 1965 __ ldr(R0, Address(R1, Isolate::current_tag_offset()));
1556 __ ret(); 1966 __ ret();
1557 } 1967 }
1558 1968
1559 } // namespace dart 1969 } // namespace dart
1560 1970
1561 #endif // defined TARGET_ARCH_ARM64 1971 #endif // defined TARGET_ARCH_ARM64
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