src/cpu/sparc/vm/assembler_sparc.inline.hpp

Tue, 30 Nov 2010 23:23:40 -0800

author
iveresov
date
Tue, 30 Nov 2010 23:23:40 -0800
changeset 2344
ac637b7220d1
parent 2314
f95d63e2154a
child 2350
2f644f85485d
permissions
-rw-r--r--

6985015: C1 needs to support compressed oops
Summary: This change implements compressed oops for C1 for x64 and sparc. The changes are mostly on the codegen level, with a few exceptions when we do access things outside of the heap that are uncompressed from the IR. Compressed oops are now also enabled with tiered.
Reviewed-by: twisti, kvn, never, phh

duke@435 1 /*
jrose@2266 2 * Copyright (c) 1997, 2010, Oracle and/or its affiliates. All rights reserved.
duke@435 3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
duke@435 4 *
duke@435 5 * This code is free software; you can redistribute it and/or modify it
duke@435 6 * under the terms of the GNU General Public License version 2 only, as
duke@435 7 * published by the Free Software Foundation.
duke@435 8 *
duke@435 9 * This code is distributed in the hope that it will be useful, but WITHOUT
duke@435 10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
duke@435 11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
duke@435 12 * version 2 for more details (a copy is included in the LICENSE file that
duke@435 13 * accompanied this code).
duke@435 14 *
duke@435 15 * You should have received a copy of the GNU General Public License version
duke@435 16 * 2 along with this work; if not, write to the Free Software Foundation,
duke@435 17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
duke@435 18 *
trims@1907 19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
trims@1907 20 * or visit www.oracle.com if you need additional information or have any
trims@1907 21 * questions.
duke@435 22 *
duke@435 23 */
duke@435 24
stefank@2314 25 #ifndef CPU_SPARC_VM_ASSEMBLER_SPARC_INLINE_HPP
stefank@2314 26 #define CPU_SPARC_VM_ASSEMBLER_SPARC_INLINE_HPP
stefank@2314 27
stefank@2314 28 #include "asm/assembler.inline.hpp"
stefank@2314 29 #include "asm/codeBuffer.hpp"
stefank@2314 30 #include "code/codeCache.hpp"
stefank@2314 31 #include "runtime/handles.inline.hpp"
stefank@2314 32
duke@435 33 inline void MacroAssembler::pd_patch_instruction(address branch, address target) {
duke@435 34 jint& stub_inst = *(jint*) branch;
duke@435 35 stub_inst = patched_branch(target - branch, stub_inst, 0);
duke@435 36 }
duke@435 37
duke@435 38 #ifndef PRODUCT
duke@435 39 inline void MacroAssembler::pd_print_patched_instruction(address branch) {
duke@435 40 jint stub_inst = *(jint*) branch;
duke@435 41 print_instruction(stub_inst);
duke@435 42 ::tty->print("%s", " (unresolved)");
duke@435 43 }
duke@435 44 #endif // PRODUCT
duke@435 45
duke@435 46 inline bool Address::is_simm13(int offset) { return Assembler::is_simm13(disp() + offset); }
duke@435 47
duke@435 48
twisti@1162 49 inline int AddressLiteral::low10() const {
twisti@1162 50 return Assembler::low10(value());
twisti@1162 51 }
twisti@1162 52
twisti@1162 53
duke@435 54 // inlines for SPARC assembler -- dmu 5/97
duke@435 55
duke@435 56 inline void Assembler::check_delay() {
duke@435 57 # ifdef CHECK_DELAY
duke@435 58 guarantee( delay_state != at_delay_slot, "must say delayed() when filling delay slot");
duke@435 59 delay_state = no_delay;
duke@435 60 # endif
duke@435 61 }
duke@435 62
duke@435 63 inline void Assembler::emit_long(int x) {
duke@435 64 check_delay();
duke@435 65 AbstractAssembler::emit_long(x);
duke@435 66 }
duke@435 67
duke@435 68 inline void Assembler::emit_data(int x, relocInfo::relocType rtype) {
duke@435 69 relocate(rtype);
duke@435 70 emit_long(x);
duke@435 71 }
duke@435 72
duke@435 73 inline void Assembler::emit_data(int x, RelocationHolder const& rspec) {
duke@435 74 relocate(rspec);
duke@435 75 emit_long(x);
duke@435 76 }
duke@435 77
duke@435 78
twisti@1162 79 inline void Assembler::add(Register s1, Register s2, Register d ) { emit_long( op(arith_op) | rd(d) | op3(add_op3) | rs1(s1) | rs2(s2) ); }
twisti@1162 80 inline void Assembler::add(Register s1, int simm13a, Register d, relocInfo::relocType rtype ) { emit_data( op(arith_op) | rd(d) | op3(add_op3) | rs1(s1) | immed(true) | simm(simm13a, 13), rtype ); }
twisti@1162 81 inline void Assembler::add(Register s1, int simm13a, Register d, RelocationHolder const& rspec ) { emit_data( op(arith_op) | rd(d) | op3(add_op3) | rs1(s1) | immed(true) | simm(simm13a, 13), rspec ); }
duke@435 82
duke@435 83 inline void Assembler::bpr( RCondition c, bool a, Predict p, Register s1, address d, relocInfo::relocType rt ) { v9_only(); emit_data( op(branch_op) | annul(a) | cond(c) | op2(bpr_op2) | wdisp16(intptr_t(d), intptr_t(pc())) | predict(p) | rs1(s1), rt); has_delay_slot(); }
duke@435 84 inline void Assembler::bpr( RCondition c, bool a, Predict p, Register s1, Label& L) { bpr( c, a, p, s1, target(L)); }
duke@435 85
duke@435 86 inline void Assembler::fb( Condition c, bool a, address d, relocInfo::relocType rt ) { v9_dep(); emit_data( op(branch_op) | annul(a) | cond(c) | op2(fb_op2) | wdisp(intptr_t(d), intptr_t(pc()), 22), rt); has_delay_slot(); }
duke@435 87 inline void Assembler::fb( Condition c, bool a, Label& L ) { fb(c, a, target(L)); }
duke@435 88
duke@435 89 inline void Assembler::fbp( Condition c, bool a, CC cc, Predict p, address d, relocInfo::relocType rt ) { v9_only(); emit_data( op(branch_op) | annul(a) | cond(c) | op2(fbp_op2) | branchcc(cc) | predict(p) | wdisp(intptr_t(d), intptr_t(pc()), 19), rt); has_delay_slot(); }
duke@435 90 inline void Assembler::fbp( Condition c, bool a, CC cc, Predict p, Label& L ) { fbp(c, a, cc, p, target(L)); }
duke@435 91
duke@435 92 inline void Assembler::cb( Condition c, bool a, address d, relocInfo::relocType rt ) { v8_only(); emit_data( op(branch_op) | annul(a) | cond(c) | op2(cb_op2) | wdisp(intptr_t(d), intptr_t(pc()), 22), rt); has_delay_slot(); }
duke@435 93 inline void Assembler::cb( Condition c, bool a, Label& L ) { cb(c, a, target(L)); }
duke@435 94
duke@435 95 inline void Assembler::br( Condition c, bool a, address d, relocInfo::relocType rt ) { v9_dep(); emit_data( op(branch_op) | annul(a) | cond(c) | op2(br_op2) | wdisp(intptr_t(d), intptr_t(pc()), 22), rt); has_delay_slot(); }
duke@435 96 inline void Assembler::br( Condition c, bool a, Label& L ) { br(c, a, target(L)); }
duke@435 97
duke@435 98 inline void Assembler::bp( Condition c, bool a, CC cc, Predict p, address d, relocInfo::relocType rt ) { v9_only(); emit_data( op(branch_op) | annul(a) | cond(c) | op2(bp_op2) | branchcc(cc) | predict(p) | wdisp(intptr_t(d), intptr_t(pc()), 19), rt); has_delay_slot(); }
duke@435 99 inline void Assembler::bp( Condition c, bool a, CC cc, Predict p, Label& L ) { bp(c, a, cc, p, target(L)); }
duke@435 100
duke@435 101 inline void Assembler::call( address d, relocInfo::relocType rt ) { emit_data( op(call_op) | wdisp(intptr_t(d), intptr_t(pc()), 30), rt); has_delay_slot(); assert(rt != relocInfo::virtual_call_type, "must use virtual_call_Relocation::spec"); }
duke@435 102 inline void Assembler::call( Label& L, relocInfo::relocType rt ) { call( target(L), rt); }
duke@435 103
duke@435 104 inline void Assembler::flush( Register s1, Register s2) { emit_long( op(arith_op) | op3(flush_op3) | rs1(s1) | rs2(s2)); }
duke@435 105 inline void Assembler::flush( Register s1, int simm13a) { emit_data( op(arith_op) | op3(flush_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 106
duke@435 107 inline void Assembler::jmpl( Register s1, Register s2, Register d ) { emit_long( op(arith_op) | rd(d) | op3(jmpl_op3) | rs1(s1) | rs2(s2)); has_delay_slot(); }
duke@435 108 inline void Assembler::jmpl( Register s1, int simm13a, Register d, RelocationHolder const& rspec ) { emit_data( op(arith_op) | rd(d) | op3(jmpl_op3) | rs1(s1) | immed(true) | simm(simm13a, 13), rspec); has_delay_slot(); }
duke@435 109
twisti@1441 110 inline void Assembler::ldf(FloatRegisterImpl::Width w, Register s1, RegisterOrConstant s2, FloatRegister d) {
twisti@1441 111 if (s2.is_register()) ldf(w, s1, s2.as_register(), d);
twisti@1441 112 else ldf(w, s1, s2.as_constant(), d);
twisti@1441 113 }
twisti@1441 114
twisti@1162 115 inline void Assembler::ldf(FloatRegisterImpl::Width w, Register s1, Register s2, FloatRegister d) { emit_long( op(ldst_op) | fd(d, w) | alt_op3(ldf_op3, w) | rs1(s1) | rs2(s2) ); }
twisti@1162 116 inline void Assembler::ldf(FloatRegisterImpl::Width w, Register s1, int simm13a, FloatRegister d, RelocationHolder const& rspec) { emit_data( op(ldst_op) | fd(d, w) | alt_op3(ldf_op3, w) | rs1(s1) | immed(true) | simm(simm13a, 13), rspec); }
duke@435 117
twisti@1162 118 inline void Assembler::ldf(FloatRegisterImpl::Width w, const Address& a, FloatRegister d, int offset) { relocate(a.rspec(offset)); ldf( w, a.base(), a.disp() + offset, d); }
duke@435 119
duke@435 120 inline void Assembler::ldfsr( Register s1, Register s2) { v9_dep(); emit_long( op(ldst_op) | op3(ldfsr_op3) | rs1(s1) | rs2(s2) ); }
duke@435 121 inline void Assembler::ldfsr( Register s1, int simm13a) { v9_dep(); emit_data( op(ldst_op) | op3(ldfsr_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 122 inline void Assembler::ldxfsr( Register s1, Register s2) { v9_only(); emit_long( op(ldst_op) | rd(G1) | op3(ldfsr_op3) | rs1(s1) | rs2(s2) ); }
duke@435 123 inline void Assembler::ldxfsr( Register s1, int simm13a) { v9_only(); emit_data( op(ldst_op) | rd(G1) | op3(ldfsr_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 124
duke@435 125 inline void Assembler::ldc( Register s1, Register s2, int crd) { v8_only(); emit_long( op(ldst_op) | fcn(crd) | op3(ldc_op3 ) | rs1(s1) | rs2(s2) ); }
duke@435 126 inline void Assembler::ldc( Register s1, int simm13a, int crd) { v8_only(); emit_data( op(ldst_op) | fcn(crd) | op3(ldc_op3 ) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 127 inline void Assembler::lddc( Register s1, Register s2, int crd) { v8_only(); emit_long( op(ldst_op) | fcn(crd) | op3(lddc_op3 ) | rs1(s1) | rs2(s2) ); }
duke@435 128 inline void Assembler::lddc( Register s1, int simm13a, int crd) { v8_only(); emit_data( op(ldst_op) | fcn(crd) | op3(lddc_op3 ) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 129 inline void Assembler::ldcsr( Register s1, Register s2, int crd) { v8_only(); emit_long( op(ldst_op) | fcn(crd) | op3(ldcsr_op3) | rs1(s1) | rs2(s2) ); }
duke@435 130 inline void Assembler::ldcsr( Register s1, int simm13a, int crd) { v8_only(); emit_data( op(ldst_op) | fcn(crd) | op3(ldcsr_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 131
duke@435 132 inline void Assembler::ldsb( Register s1, Register s2, Register d) { emit_long( op(ldst_op) | rd(d) | op3(ldsb_op3) | rs1(s1) | rs2(s2) ); }
duke@435 133 inline void Assembler::ldsb( Register s1, int simm13a, Register d) { emit_data( op(ldst_op) | rd(d) | op3(ldsb_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 134
duke@435 135 inline void Assembler::ldsh( Register s1, Register s2, Register d) { emit_long( op(ldst_op) | rd(d) | op3(ldsh_op3) | rs1(s1) | rs2(s2) ); }
duke@435 136 inline void Assembler::ldsh( Register s1, int simm13a, Register d) { emit_data( op(ldst_op) | rd(d) | op3(ldsh_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 137 inline void Assembler::ldsw( Register s1, Register s2, Register d) { emit_long( op(ldst_op) | rd(d) | op3(ldsw_op3) | rs1(s1) | rs2(s2) ); }
duke@435 138 inline void Assembler::ldsw( Register s1, int simm13a, Register d) { emit_data( op(ldst_op) | rd(d) | op3(ldsw_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 139 inline void Assembler::ldub( Register s1, Register s2, Register d) { emit_long( op(ldst_op) | rd(d) | op3(ldub_op3) | rs1(s1) | rs2(s2) ); }
duke@435 140 inline void Assembler::ldub( Register s1, int simm13a, Register d) { emit_data( op(ldst_op) | rd(d) | op3(ldub_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 141 inline void Assembler::lduh( Register s1, Register s2, Register d) { emit_long( op(ldst_op) | rd(d) | op3(lduh_op3) | rs1(s1) | rs2(s2) ); }
duke@435 142 inline void Assembler::lduh( Register s1, int simm13a, Register d) { emit_data( op(ldst_op) | rd(d) | op3(lduh_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 143 inline void Assembler::lduw( Register s1, Register s2, Register d) { emit_long( op(ldst_op) | rd(d) | op3(lduw_op3) | rs1(s1) | rs2(s2) ); }
duke@435 144 inline void Assembler::lduw( Register s1, int simm13a, Register d) { emit_data( op(ldst_op) | rd(d) | op3(lduw_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 145
duke@435 146 inline void Assembler::ldx( Register s1, Register s2, Register d) { v9_only(); emit_long( op(ldst_op) | rd(d) | op3(ldx_op3) | rs1(s1) | rs2(s2) ); }
duke@435 147 inline void Assembler::ldx( Register s1, int simm13a, Register d) { v9_only(); emit_data( op(ldst_op) | rd(d) | op3(ldx_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 148 inline void Assembler::ldd( Register s1, Register s2, Register d) { v9_dep(); assert(d->is_even(), "not even"); emit_long( op(ldst_op) | rd(d) | op3(ldd_op3) | rs1(s1) | rs2(s2) ); }
duke@435 149 inline void Assembler::ldd( Register s1, int simm13a, Register d) { v9_dep(); assert(d->is_even(), "not even"); emit_data( op(ldst_op) | rd(d) | op3(ldd_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 150
duke@435 151 #ifdef _LP64
duke@435 152 // Make all 32 bit loads signed so 64 bit registers maintain proper sign
twisti@1162 153 inline void Assembler::ld( Register s1, Register s2, Register d) { ldsw( s1, s2, d); }
twisti@1162 154 inline void Assembler::ld( Register s1, int simm13a, Register d) { ldsw( s1, simm13a, d); }
duke@435 155 #else
twisti@1162 156 inline void Assembler::ld( Register s1, Register s2, Register d) { lduw( s1, s2, d); }
twisti@1162 157 inline void Assembler::ld( Register s1, int simm13a, Register d) { lduw( s1, simm13a, d); }
duke@435 158 #endif
duke@435 159
twisti@1162 160 #ifdef ASSERT
twisti@1162 161 // ByteSize is only a class when ASSERT is defined, otherwise it's an int.
twisti@1162 162 # ifdef _LP64
twisti@1162 163 inline void Assembler::ld( Register s1, ByteSize simm13a, Register d) { ldsw( s1, in_bytes(simm13a), d); }
twisti@1162 164 # else
twisti@1162 165 inline void Assembler::ld( Register s1, ByteSize simm13a, Register d) { lduw( s1, in_bytes(simm13a), d); }
twisti@1162 166 # endif
twisti@1162 167 #endif
twisti@1162 168
twisti@1162 169 inline void Assembler::ld( const Address& a, Register d, int offset) {
twisti@1162 170 if (a.has_index()) { assert(offset == 0, ""); ld( a.base(), a.index(), d); }
twisti@1162 171 else { ld( a.base(), a.disp() + offset, d); }
jrose@1057 172 }
twisti@1162 173 inline void Assembler::ldsb(const Address& a, Register d, int offset) {
twisti@1162 174 if (a.has_index()) { assert(offset == 0, ""); ldsb(a.base(), a.index(), d); }
twisti@1162 175 else { ldsb(a.base(), a.disp() + offset, d); }
jrose@1057 176 }
twisti@1162 177 inline void Assembler::ldsh(const Address& a, Register d, int offset) {
twisti@1162 178 if (a.has_index()) { assert(offset == 0, ""); ldsh(a.base(), a.index(), d); }
twisti@1162 179 else { ldsh(a.base(), a.disp() + offset, d); }
jrose@1057 180 }
twisti@1162 181 inline void Assembler::ldsw(const Address& a, Register d, int offset) {
twisti@1162 182 if (a.has_index()) { assert(offset == 0, ""); ldsw(a.base(), a.index(), d); }
twisti@1162 183 else { ldsw(a.base(), a.disp() + offset, d); }
jrose@1057 184 }
twisti@1162 185 inline void Assembler::ldub(const Address& a, Register d, int offset) {
twisti@1162 186 if (a.has_index()) { assert(offset == 0, ""); ldub(a.base(), a.index(), d); }
twisti@1162 187 else { ldub(a.base(), a.disp() + offset, d); }
jrose@1057 188 }
twisti@1162 189 inline void Assembler::lduh(const Address& a, Register d, int offset) {
twisti@1162 190 if (a.has_index()) { assert(offset == 0, ""); lduh(a.base(), a.index(), d); }
twisti@1162 191 else { lduh(a.base(), a.disp() + offset, d); }
jrose@1057 192 }
twisti@1162 193 inline void Assembler::lduw(const Address& a, Register d, int offset) {
twisti@1162 194 if (a.has_index()) { assert(offset == 0, ""); lduw(a.base(), a.index(), d); }
twisti@1162 195 else { lduw(a.base(), a.disp() + offset, d); }
jrose@1057 196 }
twisti@1162 197 inline void Assembler::ldd( const Address& a, Register d, int offset) {
twisti@1162 198 if (a.has_index()) { assert(offset == 0, ""); ldd( a.base(), a.index(), d); }
twisti@1162 199 else { ldd( a.base(), a.disp() + offset, d); }
jrose@1057 200 }
twisti@1162 201 inline void Assembler::ldx( const Address& a, Register d, int offset) {
twisti@1162 202 if (a.has_index()) { assert(offset == 0, ""); ldx( a.base(), a.index(), d); }
twisti@1162 203 else { ldx( a.base(), a.disp() + offset, d); }
jrose@1057 204 }
jrose@1057 205
twisti@1162 206 inline void Assembler::ldub(Register s1, RegisterOrConstant s2, Register d) { ldub(Address(s1, s2), d); }
twisti@1162 207 inline void Assembler::ldsb(Register s1, RegisterOrConstant s2, Register d) { ldsb(Address(s1, s2), d); }
twisti@1162 208 inline void Assembler::lduh(Register s1, RegisterOrConstant s2, Register d) { lduh(Address(s1, s2), d); }
twisti@1162 209 inline void Assembler::ldsh(Register s1, RegisterOrConstant s2, Register d) { ldsh(Address(s1, s2), d); }
twisti@1162 210 inline void Assembler::lduw(Register s1, RegisterOrConstant s2, Register d) { lduw(Address(s1, s2), d); }
twisti@1162 211 inline void Assembler::ldsw(Register s1, RegisterOrConstant s2, Register d) { ldsw(Address(s1, s2), d); }
twisti@1162 212 inline void Assembler::ldx( Register s1, RegisterOrConstant s2, Register d) { ldx( Address(s1, s2), d); }
twisti@1162 213 inline void Assembler::ld( Register s1, RegisterOrConstant s2, Register d) { ld( Address(s1, s2), d); }
twisti@1162 214 inline void Assembler::ldd( Register s1, RegisterOrConstant s2, Register d) { ldd( Address(s1, s2), d); }
twisti@1162 215
jrose@1057 216 // form effective addresses this way:
jrose@2266 217 inline void Assembler::add(const Address& a, Register d, int offset) {
jrose@2266 218 if (a.has_index()) add(a.base(), a.index(), d);
jrose@2266 219 else { add(a.base(), a.disp() + offset, d, a.rspec(offset)); offset = 0; }
jrose@2266 220 if (offset != 0) add(d, offset, d);
jrose@2266 221 }
twisti@1858 222 inline void Assembler::add(Register s1, RegisterOrConstant s2, Register d, int offset) {
twisti@1858 223 if (s2.is_register()) add(s1, s2.as_register(), d);
jrose@1057 224 else { add(s1, s2.as_constant() + offset, d); offset = 0; }
jrose@1057 225 if (offset != 0) add(d, offset, d);
jrose@1057 226 }
duke@435 227
twisti@1858 228 inline void Assembler::andn(Register s1, RegisterOrConstant s2, Register d) {
twisti@1858 229 if (s2.is_register()) andn(s1, s2.as_register(), d);
twisti@1858 230 else andn(s1, s2.as_constant(), d);
twisti@1858 231 }
twisti@1858 232
duke@435 233 inline void Assembler::ldstub( Register s1, Register s2, Register d) { emit_long( op(ldst_op) | rd(d) | op3(ldstub_op3) | rs1(s1) | rs2(s2) ); }
duke@435 234 inline void Assembler::ldstub( Register s1, int simm13a, Register d) { emit_data( op(ldst_op) | rd(d) | op3(ldstub_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 235
duke@435 236
duke@435 237 inline void Assembler::prefetch(Register s1, Register s2, PrefetchFcn f) { v9_only(); emit_long( op(ldst_op) | fcn(f) | op3(prefetch_op3) | rs1(s1) | rs2(s2) ); }
duke@435 238 inline void Assembler::prefetch(Register s1, int simm13a, PrefetchFcn f) { v9_only(); emit_data( op(ldst_op) | fcn(f) | op3(prefetch_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 239
duke@435 240 inline void Assembler::prefetch(const Address& a, PrefetchFcn f, int offset) { v9_only(); relocate(a.rspec(offset)); prefetch(a.base(), a.disp() + offset, f); }
duke@435 241
duke@435 242
duke@435 243 inline void Assembler::rett( Register s1, Register s2 ) { emit_long( op(arith_op) | op3(rett_op3) | rs1(s1) | rs2(s2)); has_delay_slot(); }
duke@435 244 inline void Assembler::rett( Register s1, int simm13a, relocInfo::relocType rt) { emit_data( op(arith_op) | op3(rett_op3) | rs1(s1) | immed(true) | simm(simm13a, 13), rt); has_delay_slot(); }
duke@435 245
duke@435 246 inline void Assembler::sethi( int imm22a, Register d, RelocationHolder const& rspec ) { emit_data( op(branch_op) | rd(d) | op2(sethi_op2) | hi22(imm22a), rspec); }
duke@435 247
duke@435 248 // pp 222
duke@435 249
twisti@1441 250 inline void Assembler::stf( FloatRegisterImpl::Width w, FloatRegister d, Register s1, RegisterOrConstant s2) {
twisti@1441 251 if (s2.is_register()) stf(w, d, s1, s2.as_register());
twisti@1441 252 else stf(w, d, s1, s2.as_constant());
twisti@1441 253 }
twisti@1441 254
duke@435 255 inline void Assembler::stf( FloatRegisterImpl::Width w, FloatRegister d, Register s1, Register s2) { emit_long( op(ldst_op) | fd(d, w) | alt_op3(stf_op3, w) | rs1(s1) | rs2(s2) ); }
duke@435 256 inline void Assembler::stf( FloatRegisterImpl::Width w, FloatRegister d, Register s1, int simm13a) { emit_data( op(ldst_op) | fd(d, w) | alt_op3(stf_op3, w) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 257
duke@435 258 inline void Assembler::stf( FloatRegisterImpl::Width w, FloatRegister d, const Address& a, int offset) { relocate(a.rspec(offset)); stf(w, d, a.base(), a.disp() + offset); }
duke@435 259
duke@435 260 inline void Assembler::stfsr( Register s1, Register s2) { v9_dep(); emit_long( op(ldst_op) | op3(stfsr_op3) | rs1(s1) | rs2(s2) ); }
duke@435 261 inline void Assembler::stfsr( Register s1, int simm13a) { v9_dep(); emit_data( op(ldst_op) | op3(stfsr_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 262 inline void Assembler::stxfsr( Register s1, Register s2) { v9_only(); emit_long( op(ldst_op) | rd(G1) | op3(stfsr_op3) | rs1(s1) | rs2(s2) ); }
duke@435 263 inline void Assembler::stxfsr( Register s1, int simm13a) { v9_only(); emit_data( op(ldst_op) | rd(G1) | op3(stfsr_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 264
duke@435 265 // p 226
duke@435 266
duke@435 267 inline void Assembler::stb( Register d, Register s1, Register s2) { emit_long( op(ldst_op) | rd(d) | op3(stb_op3) | rs1(s1) | rs2(s2) ); }
duke@435 268 inline void Assembler::stb( Register d, Register s1, int simm13a) { emit_data( op(ldst_op) | rd(d) | op3(stb_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 269 inline void Assembler::sth( Register d, Register s1, Register s2) { emit_long( op(ldst_op) | rd(d) | op3(sth_op3) | rs1(s1) | rs2(s2) ); }
duke@435 270 inline void Assembler::sth( Register d, Register s1, int simm13a) { emit_data( op(ldst_op) | rd(d) | op3(sth_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 271 inline void Assembler::stw( Register d, Register s1, Register s2) { emit_long( op(ldst_op) | rd(d) | op3(stw_op3) | rs1(s1) | rs2(s2) ); }
duke@435 272 inline void Assembler::stw( Register d, Register s1, int simm13a) { emit_data( op(ldst_op) | rd(d) | op3(stw_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 273
duke@435 274
duke@435 275 inline void Assembler::stx( Register d, Register s1, Register s2) { v9_only(); emit_long( op(ldst_op) | rd(d) | op3(stx_op3) | rs1(s1) | rs2(s2) ); }
duke@435 276 inline void Assembler::stx( Register d, Register s1, int simm13a) { v9_only(); emit_data( op(ldst_op) | rd(d) | op3(stx_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 277 inline void Assembler::std( Register d, Register s1, Register s2) { v9_dep(); assert(d->is_even(), "not even"); emit_long( op(ldst_op) | rd(d) | op3(std_op3) | rs1(s1) | rs2(s2) ); }
duke@435 278 inline void Assembler::std( Register d, Register s1, int simm13a) { v9_dep(); assert(d->is_even(), "not even"); emit_data( op(ldst_op) | rd(d) | op3(std_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 279
twisti@1162 280 inline void Assembler::st( Register d, Register s1, Register s2) { stw(d, s1, s2); }
twisti@1162 281 inline void Assembler::st( Register d, Register s1, int simm13a) { stw(d, s1, simm13a); }
duke@435 282
twisti@1162 283 #ifdef ASSERT
twisti@1162 284 // ByteSize is only a class when ASSERT is defined, otherwise it's an int.
twisti@1162 285 inline void Assembler::st( Register d, Register s1, ByteSize simm13a) { stw(d, s1, in_bytes(simm13a)); }
twisti@1162 286 #endif
twisti@1162 287
twisti@1162 288 inline void Assembler::stb(Register d, const Address& a, int offset) {
twisti@1162 289 if (a.has_index()) { assert(offset == 0, ""); stb(d, a.base(), a.index() ); }
twisti@1162 290 else { stb(d, a.base(), a.disp() + offset); }
jrose@1057 291 }
twisti@1162 292 inline void Assembler::sth(Register d, const Address& a, int offset) {
twisti@1162 293 if (a.has_index()) { assert(offset == 0, ""); sth(d, a.base(), a.index() ); }
twisti@1162 294 else { sth(d, a.base(), a.disp() + offset); }
jrose@1057 295 }
twisti@1162 296 inline void Assembler::stw(Register d, const Address& a, int offset) {
twisti@1162 297 if (a.has_index()) { assert(offset == 0, ""); stw(d, a.base(), a.index() ); }
twisti@1162 298 else { stw(d, a.base(), a.disp() + offset); }
jrose@1057 299 }
twisti@1162 300 inline void Assembler::st( Register d, const Address& a, int offset) {
twisti@1162 301 if (a.has_index()) { assert(offset == 0, ""); st( d, a.base(), a.index() ); }
twisti@1162 302 else { st( d, a.base(), a.disp() + offset); }
jrose@1057 303 }
twisti@1162 304 inline void Assembler::std(Register d, const Address& a, int offset) {
twisti@1162 305 if (a.has_index()) { assert(offset == 0, ""); std(d, a.base(), a.index() ); }
twisti@1162 306 else { std(d, a.base(), a.disp() + offset); }
twisti@1162 307 }
twisti@1162 308 inline void Assembler::stx(Register d, const Address& a, int offset) {
twisti@1162 309 if (a.has_index()) { assert(offset == 0, ""); stx(d, a.base(), a.index() ); }
twisti@1162 310 else { stx(d, a.base(), a.disp() + offset); }
jrose@1057 311 }
jrose@1057 312
twisti@1162 313 inline void Assembler::stb(Register d, Register s1, RegisterOrConstant s2) { stb(d, Address(s1, s2)); }
twisti@1162 314 inline void Assembler::sth(Register d, Register s1, RegisterOrConstant s2) { sth(d, Address(s1, s2)); }
twisti@1441 315 inline void Assembler::stw(Register d, Register s1, RegisterOrConstant s2) { stw(d, Address(s1, s2)); }
twisti@1162 316 inline void Assembler::stx(Register d, Register s1, RegisterOrConstant s2) { stx(d, Address(s1, s2)); }
twisti@1162 317 inline void Assembler::std(Register d, Register s1, RegisterOrConstant s2) { std(d, Address(s1, s2)); }
twisti@1162 318 inline void Assembler::st( Register d, Register s1, RegisterOrConstant s2) { st( d, Address(s1, s2)); }
duke@435 319
duke@435 320 // v8 p 99
duke@435 321
duke@435 322 inline void Assembler::stc( int crd, Register s1, Register s2) { v8_only(); emit_long( op(ldst_op) | fcn(crd) | op3(stc_op3 ) | rs1(s1) | rs2(s2) ); }
duke@435 323 inline void Assembler::stc( int crd, Register s1, int simm13a) { v8_only(); emit_data( op(ldst_op) | fcn(crd) | op3(stc_op3 ) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 324 inline void Assembler::stdc( int crd, Register s1, Register s2) { v8_only(); emit_long( op(ldst_op) | fcn(crd) | op3(stdc_op3) | rs1(s1) | rs2(s2) ); }
duke@435 325 inline void Assembler::stdc( int crd, Register s1, int simm13a) { v8_only(); emit_data( op(ldst_op) | fcn(crd) | op3(stdc_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 326 inline void Assembler::stcsr( int crd, Register s1, Register s2) { v8_only(); emit_long( op(ldst_op) | fcn(crd) | op3(stcsr_op3) | rs1(s1) | rs2(s2) ); }
duke@435 327 inline void Assembler::stcsr( int crd, Register s1, int simm13a) { v8_only(); emit_data( op(ldst_op) | fcn(crd) | op3(stcsr_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 328 inline void Assembler::stdcq( int crd, Register s1, Register s2) { v8_only(); emit_long( op(ldst_op) | fcn(crd) | op3(stdcq_op3) | rs1(s1) | rs2(s2) ); }
duke@435 329 inline void Assembler::stdcq( int crd, Register s1, int simm13a) { v8_only(); emit_data( op(ldst_op) | fcn(crd) | op3(stdcq_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 330
duke@435 331
duke@435 332 // pp 231
duke@435 333
duke@435 334 inline void Assembler::swap( Register s1, Register s2, Register d) { v9_dep(); emit_long( op(ldst_op) | rd(d) | op3(swap_op3) | rs1(s1) | rs2(s2) ); }
duke@435 335 inline void Assembler::swap( Register s1, int simm13a, Register d) { v9_dep(); emit_data( op(ldst_op) | rd(d) | op3(swap_op3) | rs1(s1) | immed(true) | simm(simm13a, 13)); }
duke@435 336
duke@435 337 inline void Assembler::swap( Address& a, Register d, int offset ) { relocate(a.rspec(offset)); swap( a.base(), a.disp() + offset, d ); }
duke@435 338
duke@435 339
duke@435 340 // Use the right loads/stores for the platform
duke@435 341 inline void MacroAssembler::ld_ptr( Register s1, Register s2, Register d ) {
duke@435 342 #ifdef _LP64
twisti@1162 343 Assembler::ldx(s1, s2, d);
duke@435 344 #else
twisti@1162 345 Assembler::ld( s1, s2, d);
duke@435 346 #endif
duke@435 347 }
duke@435 348
duke@435 349 inline void MacroAssembler::ld_ptr( Register s1, int simm13a, Register d ) {
duke@435 350 #ifdef _LP64
twisti@1162 351 Assembler::ldx(s1, simm13a, d);
duke@435 352 #else
twisti@1162 353 Assembler::ld( s1, simm13a, d);
duke@435 354 #endif
duke@435 355 }
duke@435 356
twisti@1162 357 #ifdef ASSERT
twisti@1162 358 // ByteSize is only a class when ASSERT is defined, otherwise it's an int.
twisti@1162 359 inline void MacroAssembler::ld_ptr( Register s1, ByteSize simm13a, Register d ) {
twisti@1162 360 ld_ptr(s1, in_bytes(simm13a), d);
twisti@1162 361 }
twisti@1162 362 #endif
twisti@1162 363
jrose@1100 364 inline void MacroAssembler::ld_ptr( Register s1, RegisterOrConstant s2, Register d ) {
jrose@1057 365 #ifdef _LP64
twisti@1162 366 Assembler::ldx(s1, s2, d);
jrose@1057 367 #else
twisti@1162 368 Assembler::ld( s1, s2, d);
jrose@1057 369 #endif
jrose@1057 370 }
jrose@1057 371
twisti@1162 372 inline void MacroAssembler::ld_ptr(const Address& a, Register d, int offset) {
duke@435 373 #ifdef _LP64
twisti@1162 374 Assembler::ldx(a, d, offset);
duke@435 375 #else
twisti@1162 376 Assembler::ld( a, d, offset);
duke@435 377 #endif
duke@435 378 }
duke@435 379
duke@435 380 inline void MacroAssembler::st_ptr( Register d, Register s1, Register s2 ) {
duke@435 381 #ifdef _LP64
twisti@1162 382 Assembler::stx(d, s1, s2);
duke@435 383 #else
duke@435 384 Assembler::st( d, s1, s2);
duke@435 385 #endif
duke@435 386 }
duke@435 387
duke@435 388 inline void MacroAssembler::st_ptr( Register d, Register s1, int simm13a ) {
duke@435 389 #ifdef _LP64
twisti@1162 390 Assembler::stx(d, s1, simm13a);
duke@435 391 #else
duke@435 392 Assembler::st( d, s1, simm13a);
duke@435 393 #endif
duke@435 394 }
duke@435 395
twisti@1162 396 #ifdef ASSERT
twisti@1162 397 // ByteSize is only a class when ASSERT is defined, otherwise it's an int.
twisti@1162 398 inline void MacroAssembler::st_ptr( Register d, Register s1, ByteSize simm13a ) {
twisti@1162 399 st_ptr(d, s1, in_bytes(simm13a));
twisti@1162 400 }
twisti@1162 401 #endif
twisti@1162 402
jrose@1100 403 inline void MacroAssembler::st_ptr( Register d, Register s1, RegisterOrConstant s2 ) {
jrose@1057 404 #ifdef _LP64
twisti@1162 405 Assembler::stx(d, s1, s2);
jrose@1057 406 #else
jrose@1057 407 Assembler::st( d, s1, s2);
jrose@1057 408 #endif
jrose@1057 409 }
jrose@1057 410
twisti@1162 411 inline void MacroAssembler::st_ptr(Register d, const Address& a, int offset) {
duke@435 412 #ifdef _LP64
twisti@1162 413 Assembler::stx(d, a, offset);
duke@435 414 #else
twisti@1162 415 Assembler::st( d, a, offset);
duke@435 416 #endif
duke@435 417 }
duke@435 418
duke@435 419 // Use the right loads/stores for the platform
duke@435 420 inline void MacroAssembler::ld_long( Register s1, Register s2, Register d ) {
duke@435 421 #ifdef _LP64
duke@435 422 Assembler::ldx(s1, s2, d);
duke@435 423 #else
duke@435 424 Assembler::ldd(s1, s2, d);
duke@435 425 #endif
duke@435 426 }
duke@435 427
duke@435 428 inline void MacroAssembler::ld_long( Register s1, int simm13a, Register d ) {
duke@435 429 #ifdef _LP64
duke@435 430 Assembler::ldx(s1, simm13a, d);
duke@435 431 #else
duke@435 432 Assembler::ldd(s1, simm13a, d);
duke@435 433 #endif
duke@435 434 }
duke@435 435
jrose@1100 436 inline void MacroAssembler::ld_long( Register s1, RegisterOrConstant s2, Register d ) {
jrose@1057 437 #ifdef _LP64
jrose@1057 438 Assembler::ldx(s1, s2, d);
jrose@1057 439 #else
jrose@1057 440 Assembler::ldd(s1, s2, d);
jrose@1057 441 #endif
jrose@1057 442 }
jrose@1057 443
twisti@1162 444 inline void MacroAssembler::ld_long(const Address& a, Register d, int offset) {
duke@435 445 #ifdef _LP64
twisti@1162 446 Assembler::ldx(a, d, offset);
duke@435 447 #else
twisti@1162 448 Assembler::ldd(a, d, offset);
duke@435 449 #endif
duke@435 450 }
duke@435 451
duke@435 452 inline void MacroAssembler::st_long( Register d, Register s1, Register s2 ) {
duke@435 453 #ifdef _LP64
duke@435 454 Assembler::stx(d, s1, s2);
duke@435 455 #else
duke@435 456 Assembler::std(d, s1, s2);
duke@435 457 #endif
duke@435 458 }
duke@435 459
duke@435 460 inline void MacroAssembler::st_long( Register d, Register s1, int simm13a ) {
duke@435 461 #ifdef _LP64
duke@435 462 Assembler::stx(d, s1, simm13a);
duke@435 463 #else
duke@435 464 Assembler::std(d, s1, simm13a);
duke@435 465 #endif
duke@435 466 }
duke@435 467
jrose@1100 468 inline void MacroAssembler::st_long( Register d, Register s1, RegisterOrConstant s2 ) {
jrose@1057 469 #ifdef _LP64
jrose@1057 470 Assembler::stx(d, s1, s2);
jrose@1057 471 #else
jrose@1057 472 Assembler::std(d, s1, s2);
jrose@1057 473 #endif
jrose@1057 474 }
jrose@1057 475
duke@435 476 inline void MacroAssembler::st_long( Register d, const Address& a, int offset ) {
duke@435 477 #ifdef _LP64
duke@435 478 Assembler::stx(d, a, offset);
duke@435 479 #else
duke@435 480 Assembler::std(d, a, offset);
duke@435 481 #endif
duke@435 482 }
duke@435 483
duke@435 484 // Functions for isolating 64 bit shifts for LP64
duke@435 485
duke@435 486 inline void MacroAssembler::sll_ptr( Register s1, Register s2, Register d ) {
duke@435 487 #ifdef _LP64
duke@435 488 Assembler::sllx(s1, s2, d);
duke@435 489 #else
twisti@1162 490 Assembler::sll( s1, s2, d);
duke@435 491 #endif
duke@435 492 }
duke@435 493
duke@435 494 inline void MacroAssembler::sll_ptr( Register s1, int imm6a, Register d ) {
duke@435 495 #ifdef _LP64
duke@435 496 Assembler::sllx(s1, imm6a, d);
duke@435 497 #else
twisti@1162 498 Assembler::sll( s1, imm6a, d);
duke@435 499 #endif
duke@435 500 }
duke@435 501
duke@435 502 inline void MacroAssembler::srl_ptr( Register s1, Register s2, Register d ) {
duke@435 503 #ifdef _LP64
duke@435 504 Assembler::srlx(s1, s2, d);
duke@435 505 #else
twisti@1162 506 Assembler::srl( s1, s2, d);
duke@435 507 #endif
duke@435 508 }
duke@435 509
duke@435 510 inline void MacroAssembler::srl_ptr( Register s1, int imm6a, Register d ) {
duke@435 511 #ifdef _LP64
duke@435 512 Assembler::srlx(s1, imm6a, d);
duke@435 513 #else
twisti@1162 514 Assembler::srl( s1, imm6a, d);
duke@435 515 #endif
duke@435 516 }
duke@435 517
jrose@1100 518 inline void MacroAssembler::sll_ptr( Register s1, RegisterOrConstant s2, Register d ) {
jrose@1058 519 if (s2.is_register()) sll_ptr(s1, s2.as_register(), d);
jrose@1058 520 else sll_ptr(s1, s2.as_constant(), d);
jrose@1058 521 }
jrose@1058 522
duke@435 523 // Use the right branch for the platform
duke@435 524
duke@435 525 inline void MacroAssembler::br( Condition c, bool a, Predict p, address d, relocInfo::relocType rt ) {
duke@435 526 if (VM_Version::v9_instructions_work())
duke@435 527 Assembler::bp(c, a, icc, p, d, rt);
duke@435 528 else
duke@435 529 Assembler::br(c, a, d, rt);
duke@435 530 }
duke@435 531
duke@435 532 inline void MacroAssembler::br( Condition c, bool a, Predict p, Label& L ) {
duke@435 533 br(c, a, p, target(L));
duke@435 534 }
duke@435 535
duke@435 536
duke@435 537 // Branch that tests either xcc or icc depending on the
duke@435 538 // architecture compiled (LP64 or not)
duke@435 539 inline void MacroAssembler::brx( Condition c, bool a, Predict p, address d, relocInfo::relocType rt ) {
duke@435 540 #ifdef _LP64
duke@435 541 Assembler::bp(c, a, xcc, p, d, rt);
duke@435 542 #else
duke@435 543 MacroAssembler::br(c, a, p, d, rt);
duke@435 544 #endif
duke@435 545 }
duke@435 546
duke@435 547 inline void MacroAssembler::brx( Condition c, bool a, Predict p, Label& L ) {
duke@435 548 brx(c, a, p, target(L));
duke@435 549 }
duke@435 550
duke@435 551 inline void MacroAssembler::ba( bool a, Label& L ) {
duke@435 552 br(always, a, pt, L);
duke@435 553 }
duke@435 554
duke@435 555 // Warning: V9 only functions
duke@435 556 inline void MacroAssembler::bp( Condition c, bool a, CC cc, Predict p, address d, relocInfo::relocType rt ) {
duke@435 557 Assembler::bp(c, a, cc, p, d, rt);
duke@435 558 }
duke@435 559
duke@435 560 inline void MacroAssembler::bp( Condition c, bool a, CC cc, Predict p, Label& L ) {
duke@435 561 Assembler::bp(c, a, cc, p, L);
duke@435 562 }
duke@435 563
duke@435 564 inline void MacroAssembler::fb( Condition c, bool a, Predict p, address d, relocInfo::relocType rt ) {
duke@435 565 if (VM_Version::v9_instructions_work())
duke@435 566 fbp(c, a, fcc0, p, d, rt);
duke@435 567 else
duke@435 568 Assembler::fb(c, a, d, rt);
duke@435 569 }
duke@435 570
duke@435 571 inline void MacroAssembler::fb( Condition c, bool a, Predict p, Label& L ) {
duke@435 572 fb(c, a, p, target(L));
duke@435 573 }
duke@435 574
duke@435 575 inline void MacroAssembler::fbp( Condition c, bool a, CC cc, Predict p, address d, relocInfo::relocType rt ) {
duke@435 576 Assembler::fbp(c, a, cc, p, d, rt);
duke@435 577 }
duke@435 578
duke@435 579 inline void MacroAssembler::fbp( Condition c, bool a, CC cc, Predict p, Label& L ) {
duke@435 580 Assembler::fbp(c, a, cc, p, L);
duke@435 581 }
duke@435 582
duke@435 583 inline void MacroAssembler::jmp( Register s1, Register s2 ) { jmpl( s1, s2, G0 ); }
duke@435 584 inline void MacroAssembler::jmp( Register s1, int simm13a, RelocationHolder const& rspec ) { jmpl( s1, simm13a, G0, rspec); }
duke@435 585
duke@435 586 // Call with a check to see if we need to deal with the added
duke@435 587 // expense of relocation and if we overflow the displacement
duke@435 588 // of the quick call instruction./
duke@435 589 // Check to see if we have to deal with relocations
duke@435 590 inline void MacroAssembler::call( address d, relocInfo::relocType rt ) {
duke@435 591 #ifdef _LP64
duke@435 592 intptr_t disp;
duke@435 593 // NULL is ok because it will be relocated later.
duke@435 594 // Must change NULL to a reachable address in order to
duke@435 595 // pass asserts here and in wdisp.
duke@435 596 if ( d == NULL )
duke@435 597 d = pc();
duke@435 598
duke@435 599 // Is this address within range of the call instruction?
duke@435 600 // If not, use the expensive instruction sequence
duke@435 601 disp = (intptr_t)d - (intptr_t)pc();
duke@435 602 if ( disp != (intptr_t)(int32_t)disp ) {
duke@435 603 relocate(rt);
twisti@1162 604 AddressLiteral dest(d);
twisti@1162 605 jumpl_to(dest, O7, O7);
duke@435 606 }
duke@435 607 else {
duke@435 608 Assembler::call( d, rt );
duke@435 609 }
duke@435 610 #else
duke@435 611 Assembler::call( d, rt );
duke@435 612 #endif
duke@435 613 }
duke@435 614
duke@435 615 inline void MacroAssembler::call( Label& L, relocInfo::relocType rt ) {
duke@435 616 MacroAssembler::call( target(L), rt);
duke@435 617 }
duke@435 618
duke@435 619
duke@435 620
duke@435 621 inline void MacroAssembler::callr( Register s1, Register s2 ) { jmpl( s1, s2, O7 ); }
duke@435 622 inline void MacroAssembler::callr( Register s1, int simm13a, RelocationHolder const& rspec ) { jmpl( s1, simm13a, O7, rspec); }
duke@435 623
duke@435 624 // prefetch instruction
duke@435 625 inline void MacroAssembler::iprefetch( address d, relocInfo::relocType rt ) {
duke@435 626 if (VM_Version::v9_instructions_work())
duke@435 627 Assembler::bp( never, true, xcc, pt, d, rt );
duke@435 628 }
duke@435 629 inline void MacroAssembler::iprefetch( Label& L) { iprefetch( target(L) ); }
duke@435 630
duke@435 631
duke@435 632 // clobbers o7 on V8!!
duke@435 633 // returns delta from gotten pc to addr after
duke@435 634 inline int MacroAssembler::get_pc( Register d ) {
duke@435 635 int x = offset();
duke@435 636 if (VM_Version::v9_instructions_work())
duke@435 637 rdpc(d);
duke@435 638 else {
duke@435 639 Label lbl;
duke@435 640 Assembler::call(lbl, relocInfo::none); // No relocation as this is call to pc+0x8
duke@435 641 if (d == O7) delayed()->nop();
duke@435 642 else delayed()->mov(O7, d);
duke@435 643 bind(lbl);
duke@435 644 }
duke@435 645 return offset() - x;
duke@435 646 }
duke@435 647
duke@435 648
duke@435 649 // Note: All MacroAssembler::set_foo functions are defined out-of-line.
duke@435 650
duke@435 651
duke@435 652 // Loads the current PC of the following instruction as an immediate value in
duke@435 653 // 2 instructions. All PCs in the CodeCache are within 2 Gig of each other.
duke@435 654 inline intptr_t MacroAssembler::load_pc_address( Register reg, int bytes_to_skip ) {
duke@435 655 intptr_t thepc = (intptr_t)pc() + 2*BytesPerInstWord + bytes_to_skip;
duke@435 656 #ifdef _LP64
duke@435 657 Unimplemented();
duke@435 658 #else
duke@435 659 Assembler::sethi( thepc & ~0x3ff, reg, internal_word_Relocation::spec((address)thepc));
duke@435 660 Assembler::add(reg,thepc & 0x3ff, reg, internal_word_Relocation::spec((address)thepc));
duke@435 661 #endif
duke@435 662 return thepc;
duke@435 663 }
duke@435 664
twisti@1162 665
coleenp@2035 666 inline void MacroAssembler::load_contents(const AddressLiteral& addrlit, Register d, int offset) {
duke@435 667 assert_not_delayed();
twisti@1162 668 sethi(addrlit, d);
twisti@1162 669 ld(d, addrlit.low10() + offset, d);
duke@435 670 }
duke@435 671
duke@435 672
coleenp@2035 673 inline void MacroAssembler::load_ptr_contents(const AddressLiteral& addrlit, Register d, int offset) {
duke@435 674 assert_not_delayed();
twisti@1162 675 sethi(addrlit, d);
twisti@1162 676 ld_ptr(d, addrlit.low10() + offset, d);
duke@435 677 }
duke@435 678
duke@435 679
coleenp@2035 680 inline void MacroAssembler::store_contents(Register s, const AddressLiteral& addrlit, Register temp, int offset) {
duke@435 681 assert_not_delayed();
twisti@1162 682 sethi(addrlit, temp);
twisti@1162 683 st(s, temp, addrlit.low10() + offset);
duke@435 684 }
duke@435 685
duke@435 686
coleenp@2035 687 inline void MacroAssembler::store_ptr_contents(Register s, const AddressLiteral& addrlit, Register temp, int offset) {
duke@435 688 assert_not_delayed();
twisti@1162 689 sethi(addrlit, temp);
twisti@1162 690 st_ptr(s, temp, addrlit.low10() + offset);
duke@435 691 }
duke@435 692
duke@435 693
duke@435 694 // This code sequence is relocatable to any address, even on LP64.
coleenp@2035 695 inline void MacroAssembler::jumpl_to(const AddressLiteral& addrlit, Register temp, Register d, int offset) {
duke@435 696 assert_not_delayed();
duke@435 697 // Force fixed length sethi because NativeJump and NativeFarCall don't handle
duke@435 698 // variable length instruction streams.
twisti@1162 699 patchable_sethi(addrlit, temp);
twisti@1162 700 jmpl(temp, addrlit.low10() + offset, d);
duke@435 701 }
duke@435 702
duke@435 703
coleenp@2035 704 inline void MacroAssembler::jump_to(const AddressLiteral& addrlit, Register temp, int offset) {
twisti@1162 705 jumpl_to(addrlit, temp, G0, offset);
duke@435 706 }
duke@435 707
duke@435 708
twisti@1162 709 inline void MacroAssembler::jump_indirect_to(Address& a, Register temp,
twisti@1162 710 int ld_offset, int jmp_offset) {
jrose@1145 711 assert_not_delayed();
twisti@1162 712 //sethi(al); // sethi is caller responsibility for this one
jrose@1145 713 ld_ptr(a, temp, ld_offset);
jrose@1145 714 jmp(temp, jmp_offset);
jrose@1145 715 }
jrose@1145 716
jrose@1145 717
twisti@1162 718 inline void MacroAssembler::set_oop(jobject obj, Register d) {
twisti@1162 719 set_oop(allocate_oop_address(obj), d);
duke@435 720 }
duke@435 721
duke@435 722
twisti@1162 723 inline void MacroAssembler::set_oop_constant(jobject obj, Register d) {
twisti@1162 724 set_oop(constant_oop_address(obj), d);
duke@435 725 }
duke@435 726
duke@435 727
jcoomes@1902 728 inline void MacroAssembler::set_oop(const AddressLiteral& obj_addr, Register d) {
twisti@1162 729 assert(obj_addr.rspec().type() == relocInfo::oop_type, "must be an oop reloc");
twisti@1162 730 set(obj_addr, d);
duke@435 731 }
duke@435 732
duke@435 733
duke@435 734 inline void MacroAssembler::load_argument( Argument& a, Register d ) {
duke@435 735 if (a.is_register())
duke@435 736 mov(a.as_register(), d);
duke@435 737 else
duke@435 738 ld (a.as_address(), d);
duke@435 739 }
duke@435 740
duke@435 741 inline void MacroAssembler::store_argument( Register s, Argument& a ) {
duke@435 742 if (a.is_register())
duke@435 743 mov(s, a.as_register());
duke@435 744 else
duke@435 745 st_ptr (s, a.as_address()); // ABI says everything is right justified.
duke@435 746 }
duke@435 747
duke@435 748 inline void MacroAssembler::store_ptr_argument( Register s, Argument& a ) {
duke@435 749 if (a.is_register())
duke@435 750 mov(s, a.as_register());
duke@435 751 else
duke@435 752 st_ptr (s, a.as_address());
duke@435 753 }
duke@435 754
duke@435 755
duke@435 756 #ifdef _LP64
duke@435 757 inline void MacroAssembler::store_float_argument( FloatRegister s, Argument& a ) {
duke@435 758 if (a.is_float_register())
duke@435 759 // V9 ABI has F1, F3, F5 are used to pass instead of O0, O1, O2
duke@435 760 fmov(FloatRegisterImpl::S, s, a.as_float_register() );
duke@435 761 else
duke@435 762 // Floats are stored in the high half of the stack entry
duke@435 763 // The low half is undefined per the ABI.
duke@435 764 stf(FloatRegisterImpl::S, s, a.as_address(), sizeof(jfloat));
duke@435 765 }
duke@435 766
duke@435 767 inline void MacroAssembler::store_double_argument( FloatRegister s, Argument& a ) {
duke@435 768 if (a.is_float_register())
duke@435 769 // V9 ABI has D0, D2, D4 are used to pass instead of O0, O1, O2
duke@435 770 fmov(FloatRegisterImpl::D, s, a.as_double_register() );
duke@435 771 else
duke@435 772 stf(FloatRegisterImpl::D, s, a.as_address());
duke@435 773 }
duke@435 774
duke@435 775 inline void MacroAssembler::store_long_argument( Register s, Argument& a ) {
duke@435 776 if (a.is_register())
duke@435 777 mov(s, a.as_register());
duke@435 778 else
duke@435 779 stx(s, a.as_address());
duke@435 780 }
duke@435 781 #endif
duke@435 782
duke@435 783 inline void MacroAssembler::clrb( Register s1, Register s2) { stb( G0, s1, s2 ); }
duke@435 784 inline void MacroAssembler::clrh( Register s1, Register s2) { sth( G0, s1, s2 ); }
duke@435 785 inline void MacroAssembler::clr( Register s1, Register s2) { stw( G0, s1, s2 ); }
duke@435 786 inline void MacroAssembler::clrx( Register s1, Register s2) { stx( G0, s1, s2 ); }
duke@435 787
duke@435 788 inline void MacroAssembler::clrb( Register s1, int simm13a) { stb( G0, s1, simm13a); }
duke@435 789 inline void MacroAssembler::clrh( Register s1, int simm13a) { sth( G0, s1, simm13a); }
duke@435 790 inline void MacroAssembler::clr( Register s1, int simm13a) { stw( G0, s1, simm13a); }
duke@435 791 inline void MacroAssembler::clrx( Register s1, int simm13a) { stx( G0, s1, simm13a); }
duke@435 792
duke@435 793 // returns if membar generates anything, obviously this code should mirror
duke@435 794 // membar below.
duke@435 795 inline bool MacroAssembler::membar_has_effect( Membar_mask_bits const7a ) {
duke@435 796 if( !os::is_MP() ) return false; // Not needed on single CPU
duke@435 797 if( VM_Version::v9_instructions_work() ) {
duke@435 798 const Membar_mask_bits effective_mask =
duke@435 799 Membar_mask_bits(const7a & ~(LoadLoad | LoadStore | StoreStore));
duke@435 800 return (effective_mask != 0);
duke@435 801 } else {
duke@435 802 return true;
duke@435 803 }
duke@435 804 }
duke@435 805
duke@435 806 inline void MacroAssembler::membar( Membar_mask_bits const7a ) {
duke@435 807 // Uniprocessors do not need memory barriers
duke@435 808 if (!os::is_MP()) return;
duke@435 809 // Weakened for current Sparcs and TSO. See the v9 manual, sections 8.4.3,
duke@435 810 // 8.4.4.3, a.31 and a.50.
duke@435 811 if( VM_Version::v9_instructions_work() ) {
duke@435 812 // Under TSO, setting bit 3, 2, or 0 is redundant, so the only value
duke@435 813 // of the mmask subfield of const7a that does anything that isn't done
duke@435 814 // implicitly is StoreLoad.
duke@435 815 const Membar_mask_bits effective_mask =
duke@435 816 Membar_mask_bits(const7a & ~(LoadLoad | LoadStore | StoreStore));
duke@435 817 if ( effective_mask != 0 ) {
duke@435 818 Assembler::membar( effective_mask );
duke@435 819 }
duke@435 820 } else {
duke@435 821 // stbar is the closest there is on v8. Equivalent to membar(StoreStore). We
duke@435 822 // do not issue the stbar because to my knowledge all v8 machines implement TSO,
duke@435 823 // which guarantees that all stores behave as if an stbar were issued just after
duke@435 824 // each one of them. On these machines, stbar ought to be a nop. There doesn't
duke@435 825 // appear to be an equivalent of membar(StoreLoad) on v8: TSO doesn't require it,
duke@435 826 // it can't be specified by stbar, nor have I come up with a way to simulate it.
duke@435 827 //
duke@435 828 // Addendum. Dave says that ldstub guarantees a write buffer flush to coherent
duke@435 829 // space. Put one here to be on the safe side.
duke@435 830 Assembler::ldstub(SP, 0, G0);
duke@435 831 }
duke@435 832 }
stefank@2314 833
stefank@2314 834 #endif // CPU_SPARC_VM_ASSEMBLER_SPARC_INLINE_HPP

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