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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 |
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| 968 | 968 |
| 969 ReturnType value = 0; | 969 ReturnType value = 0; |
| 970 char buffer[register_size * sizeof(vfp_registers_[0])]; | 970 char buffer[register_size * sizeof(vfp_registers_[0])]; |
| 971 OS::MemCopy(buffer, &vfp_registers_[register_size * reg_index], | 971 OS::MemCopy(buffer, &vfp_registers_[register_size * reg_index], |
| 972 register_size * sizeof(vfp_registers_[0])); | 972 register_size * sizeof(vfp_registers_[0])); |
| 973 OS::MemCopy(&value, buffer, register_size * sizeof(vfp_registers_[0])); | 973 OS::MemCopy(&value, buffer, register_size * sizeof(vfp_registers_[0])); |
| 974 return value; | 974 return value; |
| 975 } | 975 } |
| 976 | 976 |
| 977 | 977 |
| 978 // For use in calls that take two double values, constructed either | 978 // Runtime FP routines take up to two double arguments and zero |
| 979 // or one integer arguments. All are consructed here. |
| 979 // from r0-r3 or d0 and d1. | 980 // from r0-r3 or d0 and d1. |
| 980 void Simulator::GetFpArgs(double* x, double* y) { | 981 void Simulator::GetFpArgs(double* x, double* y, int32_t* z) { |
| 981 if (use_eabi_hardfloat()) { | 982 if (use_eabi_hardfloat()) { |
| 982 *x = vfp_registers_[0]; | 983 *x = vfp_registers_[0]; |
| 983 *y = vfp_registers_[1]; | 984 *y = vfp_registers_[1]; |
| 985 *z = registers_[1]; |
| 984 } else { | 986 } else { |
| 985 // We use a char buffer to get around the strict-aliasing rules which | 987 // We use a char buffer to get around the strict-aliasing rules which |
| 986 // otherwise allow the compiler to optimize away the copy. | 988 // otherwise allow the compiler to optimize away the copy. |
| 987 char buffer[sizeof(*x)]; | 989 char buffer[sizeof(*x)]; |
| 988 // Registers 0 and 1 -> x. | 990 // Registers 0 and 1 -> x. |
| 989 OS::MemCopy(buffer, registers_, sizeof(*x)); | 991 OS::MemCopy(buffer, registers_, sizeof(*x)); |
| 990 OS::MemCopy(x, buffer, sizeof(*x)); | 992 OS::MemCopy(x, buffer, sizeof(*x)); |
| 991 // Registers 2 and 3 -> y. | 993 // Register 2 and 3 -> y. |
| 992 OS::MemCopy(buffer, registers_ + 2, sizeof(*y)); | 994 OS::MemCopy(buffer, registers_ + 2, sizeof(*y)); |
| 993 OS::MemCopy(y, buffer, sizeof(*y)); | 995 OS::MemCopy(y, buffer, sizeof(*y)); |
| 996 // Register 2 -> z |
| 997 memcpy(buffer, registers_ + 2, sizeof(*z)); |
| 998 memcpy(z, buffer, sizeof(*z)); |
| 994 } | 999 } |
| 995 } | 1000 } |
| 996 | 1001 |
| 997 // For use in calls that take one double value, constructed either | |
| 998 // from r0 and r1 or d0. | |
| 999 void Simulator::GetFpArgs(double* x) { | |
| 1000 if (use_eabi_hardfloat()) { | |
| 1001 *x = vfp_registers_[0]; | |
| 1002 } else { | |
| 1003 // We use a char buffer to get around the strict-aliasing rules which | |
| 1004 // otherwise allow the compiler to optimize away the copy. | |
| 1005 char buffer[sizeof(*x)]; | |
| 1006 // Registers 0 and 1 -> x. | |
| 1007 OS::MemCopy(buffer, registers_, sizeof(*x)); | |
| 1008 OS::MemCopy(x, buffer, sizeof(*x)); | |
| 1009 } | |
| 1010 } | |
| 1011 | |
| 1012 | |
| 1013 // For use in calls that take one double value constructed either | |
| 1014 // from r0 and r1 or d0 and one integer value. | |
| 1015 void Simulator::GetFpArgs(double* x, int32_t* y) { | |
| 1016 if (use_eabi_hardfloat()) { | |
| 1017 *x = vfp_registers_[0]; | |
| 1018 *y = registers_[1]; | |
| 1019 } else { | |
| 1020 // We use a char buffer to get around the strict-aliasing rules which | |
| 1021 // otherwise allow the compiler to optimize away the copy. | |
| 1022 char buffer[sizeof(*x)]; | |
| 1023 // Registers 0 and 1 -> x. | |
| 1024 OS::MemCopy(buffer, registers_, sizeof(*x)); | |
| 1025 OS::MemCopy(x, buffer, sizeof(*x)); | |
| 1026 // Register 2 -> y. | |
| 1027 OS::MemCopy(buffer, registers_ + 2, sizeof(*y)); | |
| 1028 OS::MemCopy(y, buffer, sizeof(*y)); | |
| 1029 } | |
| 1030 } | |
| 1031 | |
| 1032 | 1002 |
| 1033 // The return value is either in r0/r1 or d0. | 1003 // The return value is either in r0/r1 or d0. |
| 1034 void Simulator::SetFpResult(const double& result) { | 1004 void Simulator::SetFpResult(const double& result) { |
| 1035 if (use_eabi_hardfloat()) { | 1005 if (use_eabi_hardfloat()) { |
| 1036 char buffer[2 * sizeof(vfp_registers_[0])]; | 1006 char buffer[2 * sizeof(vfp_registers_[0])]; |
| 1037 OS::MemCopy(buffer, &result, sizeof(buffer)); | 1007 OS::MemCopy(buffer, &result, sizeof(buffer)); |
| 1038 // Copy result to d0. | 1008 // Copy result to d0. |
| 1039 OS::MemCopy(vfp_registers_, buffer, sizeof(buffer)); | 1009 OS::MemCopy(vfp_registers_, buffer, sizeof(buffer)); |
| 1040 } else { | 1010 } else { |
| 1041 char buffer[2 * sizeof(registers_[0])]; | 1011 char buffer[2 * sizeof(registers_[0])]; |
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| 1641 // uses the ObjectPair which is essentially two 32-bit values stuffed into a | 1611 // uses the ObjectPair which is essentially two 32-bit values stuffed into a |
| 1642 // 64-bit value. With the code below we assume that all runtime calls return | 1612 // 64-bit value. With the code below we assume that all runtime calls return |
| 1643 // 64 bits of result. If they don't, the r1 result register contains a bogus | 1613 // 64 bits of result. If they don't, the r1 result register contains a bogus |
| 1644 // value, which is fine because it is caller-saved. | 1614 // value, which is fine because it is caller-saved. |
| 1645 typedef int64_t (*SimulatorRuntimeCall)(int32_t arg0, | 1615 typedef int64_t (*SimulatorRuntimeCall)(int32_t arg0, |
| 1646 int32_t arg1, | 1616 int32_t arg1, |
| 1647 int32_t arg2, | 1617 int32_t arg2, |
| 1648 int32_t arg3, | 1618 int32_t arg3, |
| 1649 int32_t arg4, | 1619 int32_t arg4, |
| 1650 int32_t arg5); | 1620 int32_t arg5); |
| 1651 typedef double (*SimulatorRuntimeFPCall)(int32_t arg0, | 1621 |
| 1652 int32_t arg1, | 1622 // These prototypes handle the four types of FP calls. |
| 1653 int32_t arg2, | 1623 typedef int64_t (*SimulatorRuntimeCompareCall)(double darg0, double darg1); |
| 1654 int32_t arg3); | 1624 typedef double (*SimulatorRuntimeFPFPCall)(double darg0, double darg1); |
| 1625 typedef double (*SimulatorRuntimeFPCall)(double darg0); |
| 1626 typedef double (*SimulatorRuntimeFPIntCall)(double darg0, int32_t arg0); |
| 1655 | 1627 |
| 1656 // This signature supports direct call in to API function native callback | 1628 // This signature supports direct call in to API function native callback |
| 1657 // (refer to InvocationCallback in v8.h). | 1629 // (refer to InvocationCallback in v8.h). |
| 1658 typedef v8::Handle<v8::Value> (*SimulatorRuntimeDirectApiCall)(int32_t arg0); | 1630 typedef v8::Handle<v8::Value> (*SimulatorRuntimeDirectApiCall)(int32_t arg0); |
| 1659 | 1631 |
| 1660 // This signature supports direct call to accessor getter callback. | 1632 // This signature supports direct call to accessor getter callback. |
| 1661 typedef v8::Handle<v8::Value> (*SimulatorRuntimeDirectGetterCall)(int32_t arg0, | 1633 typedef v8::Handle<v8::Value> (*SimulatorRuntimeDirectGetterCall)(int32_t arg0, |
| 1662 int32_t arg1); | 1634 int32_t arg1); |
| 1663 | 1635 |
| 1664 // Software interrupt instructions are used by the simulator to call into the | 1636 // Software interrupt instructions are used by the simulator to call into the |
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| 1710 default: | 1682 default: |
| 1711 break; | 1683 break; |
| 1712 } | 1684 } |
| 1713 } | 1685 } |
| 1714 // This is dodgy but it works because the C entry stubs are never moved. | 1686 // This is dodgy but it works because the C entry stubs are never moved. |
| 1715 // See comment in codegen-arm.cc and bug 1242173. | 1687 // See comment in codegen-arm.cc and bug 1242173. |
| 1716 int32_t saved_lr = get_register(lr); | 1688 int32_t saved_lr = get_register(lr); |
| 1717 intptr_t external = | 1689 intptr_t external = |
| 1718 reinterpret_cast<intptr_t>(redirection->external_function()); | 1690 reinterpret_cast<intptr_t>(redirection->external_function()); |
| 1719 if (fp_call) { | 1691 if (fp_call) { |
| 1692 double dval0, dval1; // one or two double parameters |
| 1693 int32_t ival; // zero or one integer parameters |
| 1694 int64_t iresult = 0; // integer return value |
| 1695 double dresult = 0; // double return value |
| 1696 GetFpArgs(&dval0, &dval1, &ival); |
| 1720 if (::v8::internal::FLAG_trace_sim || !stack_aligned) { | 1697 if (::v8::internal::FLAG_trace_sim || !stack_aligned) { |
| 1721 SimulatorRuntimeFPCall target = | 1698 SimulatorRuntimeCall generic_target = |
| 1722 reinterpret_cast<SimulatorRuntimeFPCall>(external); | 1699 reinterpret_cast<SimulatorRuntimeCall>(external); |
| 1723 double dval0, dval1; | |
| 1724 int32_t ival; | |
| 1725 switch (redirection->type()) { | 1700 switch (redirection->type()) { |
| 1726 case ExternalReference::BUILTIN_FP_FP_CALL: | 1701 case ExternalReference::BUILTIN_FP_FP_CALL: |
| 1727 case ExternalReference::BUILTIN_COMPARE_CALL: | 1702 case ExternalReference::BUILTIN_COMPARE_CALL: |
| 1728 GetFpArgs(&dval0, &dval1); | |
| 1729 PrintF("Call to host function at %p with args %f, %f", | 1703 PrintF("Call to host function at %p with args %f, %f", |
| 1730 FUNCTION_ADDR(target), dval0, dval1); | 1704 FUNCTION_ADDR(generic_target), dval0, dval1); |
| 1731 break; | 1705 break; |
| 1732 case ExternalReference::BUILTIN_FP_CALL: | 1706 case ExternalReference::BUILTIN_FP_CALL: |
| 1733 GetFpArgs(&dval0); | |
| 1734 PrintF("Call to host function at %p with arg %f", | 1707 PrintF("Call to host function at %p with arg %f", |
| 1735 FUNCTION_ADDR(target), dval0); | 1708 FUNCTION_ADDR(generic_target), dval0); |
| 1736 break; | 1709 break; |
| 1737 case ExternalReference::BUILTIN_FP_INT_CALL: | 1710 case ExternalReference::BUILTIN_FP_INT_CALL: |
| 1738 GetFpArgs(&dval0, &ival); | |
| 1739 PrintF("Call to host function at %p with args %f, %d", | 1711 PrintF("Call to host function at %p with args %f, %d", |
| 1740 FUNCTION_ADDR(target), dval0, ival); | 1712 FUNCTION_ADDR(generic_target), dval0, ival); |
| 1741 break; | 1713 break; |
| 1742 default: | 1714 default: |
| 1743 UNREACHABLE(); | 1715 UNREACHABLE(); |
| 1744 break; | 1716 break; |
| 1745 } | 1717 } |
| 1746 if (!stack_aligned) { | 1718 if (!stack_aligned) { |
| 1747 PrintF(" with unaligned stack %08x\n", get_register(sp)); | 1719 PrintF(" with unaligned stack %08x\n", get_register(sp)); |
| 1748 } | 1720 } |
| 1749 PrintF("\n"); | 1721 PrintF("\n"); |
| 1750 } | 1722 } |
| 1751 CHECK(stack_aligned); | 1723 CHECK(stack_aligned); |
| 1752 if (redirection->type() != ExternalReference::BUILTIN_COMPARE_CALL) { | 1724 switch (redirection->type()) { |
| 1725 case ExternalReference::BUILTIN_COMPARE_CALL: { |
| 1726 SimulatorRuntimeCompareCall target = |
| 1727 reinterpret_cast<SimulatorRuntimeCompareCall>(external); |
| 1728 iresult = target(dval0, dval1); |
| 1729 set_register(r0, static_cast<int32_t>(iresult)); |
| 1730 set_register(r1, static_cast<int32_t>(iresult >> 32)); |
| 1731 break; |
| 1732 } |
| 1733 case ExternalReference::BUILTIN_FP_FP_CALL: { |
| 1734 SimulatorRuntimeFPFPCall target = |
| 1735 reinterpret_cast<SimulatorRuntimeFPFPCall>(external); |
| 1736 dresult = target(dval0, dval1); |
| 1737 SetFpResult(dresult); |
| 1738 break; |
| 1739 } |
| 1740 case ExternalReference::BUILTIN_FP_CALL: { |
| 1753 SimulatorRuntimeFPCall target = | 1741 SimulatorRuntimeFPCall target = |
| 1754 reinterpret_cast<SimulatorRuntimeFPCall>(external); | 1742 reinterpret_cast<SimulatorRuntimeFPCall>(external); |
| 1755 double result = target(arg0, arg1, arg2, arg3); | 1743 dresult = target(dval0); |
| 1756 SetFpResult(result); | 1744 SetFpResult(dresult); |
| 1757 } else { | 1745 break; |
| 1758 SimulatorRuntimeCall target = | 1746 } |
| 1759 reinterpret_cast<SimulatorRuntimeCall>(external); | 1747 case ExternalReference::BUILTIN_FP_INT_CALL: { |
| 1760 int64_t result = target(arg0, arg1, arg2, arg3, arg4, arg5); | 1748 SimulatorRuntimeFPIntCall target = |
| 1761 int32_t lo_res = static_cast<int32_t>(result); | 1749 reinterpret_cast<SimulatorRuntimeFPIntCall>(external); |
| 1762 int32_t hi_res = static_cast<int32_t>(result >> 32); | 1750 dresult = target(dval0, ival); |
| 1763 if (::v8::internal::FLAG_trace_sim) { | 1751 SetFpResult(dresult); |
| 1764 PrintF("Returned %08x\n", lo_res); | 1752 break; |
| 1753 } |
| 1754 default: |
| 1755 UNREACHABLE(); |
| 1756 break; |
| 1757 } |
| 1758 if (::v8::internal::FLAG_trace_sim || !stack_aligned) { |
| 1759 switch (redirection->type()) { |
| 1760 case ExternalReference::BUILTIN_COMPARE_CALL: |
| 1761 PrintF("Returned %08x\n", static_cast<int32_t>(iresult)); |
| 1762 break; |
| 1763 case ExternalReference::BUILTIN_FP_FP_CALL: |
| 1764 case ExternalReference::BUILTIN_FP_CALL: |
| 1765 case ExternalReference::BUILTIN_FP_INT_CALL: |
| 1766 PrintF("Returned %f\n", dresult); |
| 1767 break; |
| 1768 default: |
| 1769 UNREACHABLE(); |
| 1770 break; |
| 1765 } | 1771 } |
| 1766 set_register(r0, lo_res); | |
| 1767 set_register(r1, hi_res); | |
| 1768 } | 1772 } |
| 1769 } else if (redirection->type() == ExternalReference::DIRECT_API_CALL) { | 1773 } else if (redirection->type() == ExternalReference::DIRECT_API_CALL) { |
| 1770 SimulatorRuntimeDirectApiCall target = | 1774 SimulatorRuntimeDirectApiCall target = |
| 1771 reinterpret_cast<SimulatorRuntimeDirectApiCall>(external); | 1775 reinterpret_cast<SimulatorRuntimeDirectApiCall>(external); |
| 1772 if (::v8::internal::FLAG_trace_sim || !stack_aligned) { | 1776 if (::v8::internal::FLAG_trace_sim || !stack_aligned) { |
| 1773 PrintF("Call to host function at %p args %08x", | 1777 PrintF("Call to host function at %p args %08x", |
| 1774 FUNCTION_ADDR(target), arg0); | 1778 FUNCTION_ADDR(target), arg0); |
| 1775 if (!stack_aligned) { | 1779 if (!stack_aligned) { |
| 1776 PrintF(" with unaligned stack %08x\n", get_register(sp)); | 1780 PrintF(" with unaligned stack %08x\n", get_register(sp)); |
| 1777 } | 1781 } |
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| 3485 uintptr_t address = *stack_slot; | 3489 uintptr_t address = *stack_slot; |
| 3486 set_register(sp, current_sp + sizeof(uintptr_t)); | 3490 set_register(sp, current_sp + sizeof(uintptr_t)); |
| 3487 return address; | 3491 return address; |
| 3488 } | 3492 } |
| 3489 | 3493 |
| 3490 } } // namespace v8::internal | 3494 } } // namespace v8::internal |
| 3491 | 3495 |
| 3492 #endif // USE_SIMULATOR | 3496 #endif // USE_SIMULATOR |
| 3493 | 3497 |
| 3494 #endif // V8_TARGET_ARCH_ARM | 3498 #endif // V8_TARGET_ARCH_ARM |
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