src/cpu/x86/vm/templateTable_x86_64.cpp

Tue, 03 Aug 2010 08:13:38 -0400

author
bobv
date
Tue, 03 Aug 2010 08:13:38 -0400
changeset 2036
126ea7725993
parent 1957
136b78722a08
child 2138
d5d065957597
permissions
-rw-r--r--

6953477: Increase portability and flexibility of building Hotspot
Summary: A collection of portability improvements including shared code support for PPC, ARM platforms, software floating point, cross compilation support and improvements in error crash detail.
Reviewed-by: phh, never, coleenp, dholmes

duke@435 1 /*
trims@1907 2 * Copyright (c) 2003, 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
duke@435 25 #include "incls/_precompiled.incl"
duke@435 26 #include "incls/_templateTable_x86_64.cpp.incl"
duke@435 27
never@739 28 #ifndef CC_INTERP
never@739 29
duke@435 30 #define __ _masm->
duke@435 31
duke@435 32 // Platform-dependent initialization
duke@435 33
duke@435 34 void TemplateTable::pd_initialize() {
duke@435 35 // No amd64 specific initialization
duke@435 36 }
duke@435 37
duke@435 38 // Address computation: local variables
duke@435 39
duke@435 40 static inline Address iaddress(int n) {
duke@435 41 return Address(r14, Interpreter::local_offset_in_bytes(n));
duke@435 42 }
duke@435 43
duke@435 44 static inline Address laddress(int n) {
duke@435 45 return iaddress(n + 1);
duke@435 46 }
duke@435 47
duke@435 48 static inline Address faddress(int n) {
duke@435 49 return iaddress(n);
duke@435 50 }
duke@435 51
duke@435 52 static inline Address daddress(int n) {
duke@435 53 return laddress(n);
duke@435 54 }
duke@435 55
duke@435 56 static inline Address aaddress(int n) {
duke@435 57 return iaddress(n);
duke@435 58 }
duke@435 59
duke@435 60 static inline Address iaddress(Register r) {
twisti@1861 61 return Address(r14, r, Address::times_8);
duke@435 62 }
duke@435 63
duke@435 64 static inline Address laddress(Register r) {
duke@435 65 return Address(r14, r, Address::times_8, Interpreter::local_offset_in_bytes(1));
duke@435 66 }
duke@435 67
duke@435 68 static inline Address faddress(Register r) {
duke@435 69 return iaddress(r);
duke@435 70 }
duke@435 71
duke@435 72 static inline Address daddress(Register r) {
duke@435 73 return laddress(r);
duke@435 74 }
duke@435 75
duke@435 76 static inline Address aaddress(Register r) {
duke@435 77 return iaddress(r);
duke@435 78 }
duke@435 79
duke@435 80 static inline Address at_rsp() {
duke@435 81 return Address(rsp, 0);
duke@435 82 }
duke@435 83
duke@435 84 // At top of Java expression stack which may be different than esp(). It
duke@435 85 // isn't for category 1 objects.
duke@435 86 static inline Address at_tos () {
duke@435 87 return Address(rsp, Interpreter::expr_offset_in_bytes(0));
duke@435 88 }
duke@435 89
duke@435 90 static inline Address at_tos_p1() {
duke@435 91 return Address(rsp, Interpreter::expr_offset_in_bytes(1));
duke@435 92 }
duke@435 93
duke@435 94 static inline Address at_tos_p2() {
duke@435 95 return Address(rsp, Interpreter::expr_offset_in_bytes(2));
duke@435 96 }
duke@435 97
duke@435 98 static inline Address at_tos_p3() {
duke@435 99 return Address(rsp, Interpreter::expr_offset_in_bytes(3));
duke@435 100 }
duke@435 101
duke@435 102 // Condition conversion
duke@435 103 static Assembler::Condition j_not(TemplateTable::Condition cc) {
duke@435 104 switch (cc) {
duke@435 105 case TemplateTable::equal : return Assembler::notEqual;
duke@435 106 case TemplateTable::not_equal : return Assembler::equal;
duke@435 107 case TemplateTable::less : return Assembler::greaterEqual;
duke@435 108 case TemplateTable::less_equal : return Assembler::greater;
duke@435 109 case TemplateTable::greater : return Assembler::lessEqual;
duke@435 110 case TemplateTable::greater_equal: return Assembler::less;
duke@435 111 }
duke@435 112 ShouldNotReachHere();
duke@435 113 return Assembler::zero;
duke@435 114 }
duke@435 115
duke@435 116
duke@435 117 // Miscelaneous helper routines
ysr@777 118 // Store an oop (or NULL) at the address described by obj.
ysr@777 119 // If val == noreg this means store a NULL
ysr@777 120
ysr@777 121 static void do_oop_store(InterpreterMacroAssembler* _masm,
ysr@777 122 Address obj,
ysr@777 123 Register val,
ysr@777 124 BarrierSet::Name barrier,
ysr@777 125 bool precise) {
ysr@777 126 assert(val == noreg || val == rax, "parameter is just for looks");
ysr@777 127 switch (barrier) {
ysr@777 128 #ifndef SERIALGC
ysr@777 129 case BarrierSet::G1SATBCT:
ysr@777 130 case BarrierSet::G1SATBCTLogging:
ysr@777 131 {
ysr@777 132 // flatten object address if needed
ysr@777 133 if (obj.index() == noreg && obj.disp() == 0) {
ysr@777 134 if (obj.base() != rdx) {
ysr@777 135 __ movq(rdx, obj.base());
ysr@777 136 }
ysr@777 137 } else {
ysr@777 138 __ leaq(rdx, obj);
ysr@777 139 }
ysr@777 140 __ g1_write_barrier_pre(rdx, r8, rbx, val != noreg);
ysr@777 141 if (val == noreg) {
johnc@1482 142 __ store_heap_oop_null(Address(rdx, 0));
ysr@777 143 } else {
ysr@777 144 __ store_heap_oop(Address(rdx, 0), val);
ysr@777 145 __ g1_write_barrier_post(rdx, val, r8, rbx);
ysr@777 146 }
ysr@777 147
ysr@777 148 }
ysr@777 149 break;
ysr@777 150 #endif // SERIALGC
ysr@777 151 case BarrierSet::CardTableModRef:
ysr@777 152 case BarrierSet::CardTableExtension:
ysr@777 153 {
ysr@777 154 if (val == noreg) {
johnc@1482 155 __ store_heap_oop_null(obj);
ysr@777 156 } else {
ysr@777 157 __ store_heap_oop(obj, val);
ysr@777 158 // flatten object address if needed
ysr@777 159 if (!precise || (obj.index() == noreg && obj.disp() == 0)) {
ysr@777 160 __ store_check(obj.base());
ysr@777 161 } else {
ysr@777 162 __ leaq(rdx, obj);
ysr@777 163 __ store_check(rdx);
ysr@777 164 }
ysr@777 165 }
ysr@777 166 }
ysr@777 167 break;
ysr@777 168 case BarrierSet::ModRef:
ysr@777 169 case BarrierSet::Other:
ysr@777 170 if (val == noreg) {
johnc@1482 171 __ store_heap_oop_null(obj);
ysr@777 172 } else {
ysr@777 173 __ store_heap_oop(obj, val);
ysr@777 174 }
ysr@777 175 break;
ysr@777 176 default :
ysr@777 177 ShouldNotReachHere();
ysr@777 178
ysr@777 179 }
ysr@777 180 }
duke@435 181
duke@435 182 Address TemplateTable::at_bcp(int offset) {
duke@435 183 assert(_desc->uses_bcp(), "inconsistent uses_bcp information");
duke@435 184 return Address(r13, offset);
duke@435 185 }
duke@435 186
duke@435 187 void TemplateTable::patch_bytecode(Bytecodes::Code bytecode, Register bc,
duke@435 188 Register scratch,
duke@435 189 bool load_bc_into_scratch/*=true*/) {
duke@435 190 if (!RewriteBytecodes) {
duke@435 191 return;
duke@435 192 }
duke@435 193 // the pair bytecodes have already done the load.
duke@435 194 if (load_bc_into_scratch) {
duke@435 195 __ movl(bc, bytecode);
duke@435 196 }
duke@435 197 Label patch_done;
duke@435 198 if (JvmtiExport::can_post_breakpoint()) {
duke@435 199 Label fast_patch;
duke@435 200 // if a breakpoint is present we can't rewrite the stream directly
duke@435 201 __ movzbl(scratch, at_bcp(0));
duke@435 202 __ cmpl(scratch, Bytecodes::_breakpoint);
duke@435 203 __ jcc(Assembler::notEqual, fast_patch);
duke@435 204 __ get_method(scratch);
duke@435 205 // Let breakpoint table handling rewrite to quicker bytecode
twisti@1543 206 __ call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::set_original_bytecode_at), scratch, r13, bc);
duke@435 207 #ifndef ASSERT
duke@435 208 __ jmpb(patch_done);
twisti@1543 209 #else
twisti@1543 210 __ jmp(patch_done);
twisti@1543 211 #endif
duke@435 212 __ bind(fast_patch);
duke@435 213 }
twisti@1543 214 #ifdef ASSERT
duke@435 215 Label okay;
duke@435 216 __ load_unsigned_byte(scratch, at_bcp(0));
duke@435 217 __ cmpl(scratch, (int) Bytecodes::java_code(bytecode));
duke@435 218 __ jcc(Assembler::equal, okay);
duke@435 219 __ cmpl(scratch, bc);
duke@435 220 __ jcc(Assembler::equal, okay);
duke@435 221 __ stop("patching the wrong bytecode");
duke@435 222 __ bind(okay);
duke@435 223 #endif
duke@435 224 // patch bytecode
duke@435 225 __ movb(at_bcp(0), bc);
duke@435 226 __ bind(patch_done);
duke@435 227 }
duke@435 228
duke@435 229
duke@435 230 // Individual instructions
duke@435 231
duke@435 232 void TemplateTable::nop() {
duke@435 233 transition(vtos, vtos);
duke@435 234 // nothing to do
duke@435 235 }
duke@435 236
duke@435 237 void TemplateTable::shouldnotreachhere() {
duke@435 238 transition(vtos, vtos);
duke@435 239 __ stop("shouldnotreachhere bytecode");
duke@435 240 }
duke@435 241
duke@435 242 void TemplateTable::aconst_null() {
duke@435 243 transition(vtos, atos);
duke@435 244 __ xorl(rax, rax);
duke@435 245 }
duke@435 246
duke@435 247 void TemplateTable::iconst(int value) {
duke@435 248 transition(vtos, itos);
duke@435 249 if (value == 0) {
duke@435 250 __ xorl(rax, rax);
duke@435 251 } else {
duke@435 252 __ movl(rax, value);
duke@435 253 }
duke@435 254 }
duke@435 255
duke@435 256 void TemplateTable::lconst(int value) {
duke@435 257 transition(vtos, ltos);
duke@435 258 if (value == 0) {
duke@435 259 __ xorl(rax, rax);
duke@435 260 } else {
duke@435 261 __ movl(rax, value);
duke@435 262 }
duke@435 263 }
duke@435 264
duke@435 265 void TemplateTable::fconst(int value) {
duke@435 266 transition(vtos, ftos);
duke@435 267 static float one = 1.0f, two = 2.0f;
duke@435 268 switch (value) {
duke@435 269 case 0:
duke@435 270 __ xorps(xmm0, xmm0);
duke@435 271 break;
duke@435 272 case 1:
duke@435 273 __ movflt(xmm0, ExternalAddress((address) &one));
duke@435 274 break;
duke@435 275 case 2:
duke@435 276 __ movflt(xmm0, ExternalAddress((address) &two));
duke@435 277 break;
duke@435 278 default:
duke@435 279 ShouldNotReachHere();
duke@435 280 break;
duke@435 281 }
duke@435 282 }
duke@435 283
duke@435 284 void TemplateTable::dconst(int value) {
duke@435 285 transition(vtos, dtos);
duke@435 286 static double one = 1.0;
duke@435 287 switch (value) {
duke@435 288 case 0:
duke@435 289 __ xorpd(xmm0, xmm0);
duke@435 290 break;
duke@435 291 case 1:
duke@435 292 __ movdbl(xmm0, ExternalAddress((address) &one));
duke@435 293 break;
duke@435 294 default:
duke@435 295 ShouldNotReachHere();
duke@435 296 break;
duke@435 297 }
duke@435 298 }
duke@435 299
duke@435 300 void TemplateTable::bipush() {
duke@435 301 transition(vtos, itos);
duke@435 302 __ load_signed_byte(rax, at_bcp(1));
duke@435 303 }
duke@435 304
duke@435 305 void TemplateTable::sipush() {
duke@435 306 transition(vtos, itos);
jrose@1057 307 __ load_unsigned_short(rax, at_bcp(1));
duke@435 308 __ bswapl(rax);
duke@435 309 __ sarl(rax, 16);
duke@435 310 }
duke@435 311
duke@435 312 void TemplateTable::ldc(bool wide) {
duke@435 313 transition(vtos, vtos);
duke@435 314 Label call_ldc, notFloat, notClass, Done;
duke@435 315
duke@435 316 if (wide) {
duke@435 317 __ get_unsigned_2_byte_index_at_bcp(rbx, 1);
duke@435 318 } else {
duke@435 319 __ load_unsigned_byte(rbx, at_bcp(1));
duke@435 320 }
duke@435 321
duke@435 322 __ get_cpool_and_tags(rcx, rax);
duke@435 323 const int base_offset = constantPoolOopDesc::header_size() * wordSize;
duke@435 324 const int tags_offset = typeArrayOopDesc::header_size(T_BYTE) * wordSize;
duke@435 325
duke@435 326 // get type
duke@435 327 __ movzbl(rdx, Address(rax, rbx, Address::times_1, tags_offset));
duke@435 328
duke@435 329 // unresolved string - get the resolved string
duke@435 330 __ cmpl(rdx, JVM_CONSTANT_UnresolvedString);
duke@435 331 __ jccb(Assembler::equal, call_ldc);
duke@435 332
duke@435 333 // unresolved class - get the resolved class
duke@435 334 __ cmpl(rdx, JVM_CONSTANT_UnresolvedClass);
duke@435 335 __ jccb(Assembler::equal, call_ldc);
duke@435 336
duke@435 337 // unresolved class in error state - call into runtime to throw the error
duke@435 338 // from the first resolution attempt
duke@435 339 __ cmpl(rdx, JVM_CONSTANT_UnresolvedClassInError);
duke@435 340 __ jccb(Assembler::equal, call_ldc);
duke@435 341
duke@435 342 // resolved class - need to call vm to get java mirror of the class
duke@435 343 __ cmpl(rdx, JVM_CONSTANT_Class);
duke@435 344 __ jcc(Assembler::notEqual, notClass);
duke@435 345
duke@435 346 __ bind(call_ldc);
duke@435 347 __ movl(c_rarg1, wide);
duke@435 348 call_VM(rax, CAST_FROM_FN_PTR(address, InterpreterRuntime::ldc), c_rarg1);
duke@435 349 __ push_ptr(rax);
duke@435 350 __ verify_oop(rax);
duke@435 351 __ jmp(Done);
duke@435 352
duke@435 353 __ bind(notClass);
duke@435 354 __ cmpl(rdx, JVM_CONSTANT_Float);
duke@435 355 __ jccb(Assembler::notEqual, notFloat);
duke@435 356 // ftos
duke@435 357 __ movflt(xmm0, Address(rcx, rbx, Address::times_8, base_offset));
duke@435 358 __ push_f();
duke@435 359 __ jmp(Done);
duke@435 360
duke@435 361 __ bind(notFloat);
duke@435 362 #ifdef ASSERT
duke@435 363 {
duke@435 364 Label L;
duke@435 365 __ cmpl(rdx, JVM_CONSTANT_Integer);
duke@435 366 __ jcc(Assembler::equal, L);
duke@435 367 __ cmpl(rdx, JVM_CONSTANT_String);
duke@435 368 __ jcc(Assembler::equal, L);
duke@435 369 __ stop("unexpected tag type in ldc");
duke@435 370 __ bind(L);
duke@435 371 }
duke@435 372 #endif
duke@435 373 // atos and itos
duke@435 374 Label isOop;
duke@435 375 __ cmpl(rdx, JVM_CONSTANT_Integer);
duke@435 376 __ jcc(Assembler::notEqual, isOop);
duke@435 377 __ movl(rax, Address(rcx, rbx, Address::times_8, base_offset));
duke@435 378 __ push_i(rax);
duke@435 379 __ jmp(Done);
duke@435 380
duke@435 381 __ bind(isOop);
never@739 382 __ movptr(rax, Address(rcx, rbx, Address::times_8, base_offset));
duke@435 383 __ push_ptr(rax);
duke@435 384
duke@435 385 if (VerifyOops) {
duke@435 386 __ verify_oop(rax);
duke@435 387 }
duke@435 388
duke@435 389 __ bind(Done);
duke@435 390 }
duke@435 391
jrose@1957 392 // Fast path for caching oop constants.
jrose@1957 393 // %%% We should use this to handle Class and String constants also.
jrose@1957 394 // %%% It will simplify the ldc/primitive path considerably.
jrose@1957 395 void TemplateTable::fast_aldc(bool wide) {
jrose@1957 396 transition(vtos, atos);
jrose@1957 397
jrose@1957 398 if (!EnableMethodHandles) {
jrose@1957 399 // We should not encounter this bytecode if !EnableMethodHandles.
jrose@1957 400 // The verifier will stop it. However, if we get past the verifier,
jrose@1957 401 // this will stop the thread in a reasonable way, without crashing the JVM.
jrose@1957 402 __ call_VM(noreg, CAST_FROM_FN_PTR(address,
jrose@1957 403 InterpreterRuntime::throw_IncompatibleClassChangeError));
jrose@1957 404 // the call_VM checks for exception, so we should never return here.
jrose@1957 405 __ should_not_reach_here();
jrose@1957 406 return;
jrose@1957 407 }
jrose@1957 408
jrose@1957 409 const Register cache = rcx;
jrose@1957 410 const Register index = rdx;
jrose@1957 411
jrose@1957 412 resolve_cache_and_index(f1_oop, rax, cache, index, wide ? sizeof(u2) : sizeof(u1));
jrose@1957 413 if (VerifyOops) {
jrose@1957 414 __ verify_oop(rax);
jrose@1957 415 }
jrose@1957 416 }
jrose@1957 417
duke@435 418 void TemplateTable::ldc2_w() {
duke@435 419 transition(vtos, vtos);
duke@435 420 Label Long, Done;
duke@435 421 __ get_unsigned_2_byte_index_at_bcp(rbx, 1);
duke@435 422
duke@435 423 __ get_cpool_and_tags(rcx, rax);
duke@435 424 const int base_offset = constantPoolOopDesc::header_size() * wordSize;
duke@435 425 const int tags_offset = typeArrayOopDesc::header_size(T_BYTE) * wordSize;
duke@435 426
duke@435 427 // get type
duke@435 428 __ cmpb(Address(rax, rbx, Address::times_1, tags_offset),
duke@435 429 JVM_CONSTANT_Double);
duke@435 430 __ jccb(Assembler::notEqual, Long);
duke@435 431 // dtos
duke@435 432 __ movdbl(xmm0, Address(rcx, rbx, Address::times_8, base_offset));
duke@435 433 __ push_d();
duke@435 434 __ jmpb(Done);
duke@435 435
duke@435 436 __ bind(Long);
duke@435 437 // ltos
duke@435 438 __ movq(rax, Address(rcx, rbx, Address::times_8, base_offset));
duke@435 439 __ push_l();
duke@435 440
duke@435 441 __ bind(Done);
duke@435 442 }
duke@435 443
duke@435 444 void TemplateTable::locals_index(Register reg, int offset) {
duke@435 445 __ load_unsigned_byte(reg, at_bcp(offset));
never@739 446 __ negptr(reg);
duke@435 447 }
duke@435 448
duke@435 449 void TemplateTable::iload() {
duke@435 450 transition(vtos, itos);
duke@435 451 if (RewriteFrequentPairs) {
duke@435 452 Label rewrite, done;
duke@435 453 const Register bc = c_rarg3;
duke@435 454 assert(rbx != bc, "register damaged");
duke@435 455
duke@435 456 // get next byte
duke@435 457 __ load_unsigned_byte(rbx,
duke@435 458 at_bcp(Bytecodes::length_for(Bytecodes::_iload)));
duke@435 459 // if _iload, wait to rewrite to iload2. We only want to rewrite the
duke@435 460 // last two iloads in a pair. Comparing against fast_iload means that
duke@435 461 // the next bytecode is neither an iload or a caload, and therefore
duke@435 462 // an iload pair.
duke@435 463 __ cmpl(rbx, Bytecodes::_iload);
duke@435 464 __ jcc(Assembler::equal, done);
duke@435 465
duke@435 466 __ cmpl(rbx, Bytecodes::_fast_iload);
duke@435 467 __ movl(bc, Bytecodes::_fast_iload2);
duke@435 468 __ jccb(Assembler::equal, rewrite);
duke@435 469
duke@435 470 // if _caload, rewrite to fast_icaload
duke@435 471 __ cmpl(rbx, Bytecodes::_caload);
duke@435 472 __ movl(bc, Bytecodes::_fast_icaload);
duke@435 473 __ jccb(Assembler::equal, rewrite);
duke@435 474
duke@435 475 // rewrite so iload doesn't check again.
duke@435 476 __ movl(bc, Bytecodes::_fast_iload);
duke@435 477
duke@435 478 // rewrite
duke@435 479 // bc: fast bytecode
duke@435 480 __ bind(rewrite);
duke@435 481 patch_bytecode(Bytecodes::_iload, bc, rbx, false);
duke@435 482 __ bind(done);
duke@435 483 }
duke@435 484
duke@435 485 // Get the local value into tos
duke@435 486 locals_index(rbx);
duke@435 487 __ movl(rax, iaddress(rbx));
duke@435 488 }
duke@435 489
duke@435 490 void TemplateTable::fast_iload2() {
duke@435 491 transition(vtos, itos);
duke@435 492 locals_index(rbx);
duke@435 493 __ movl(rax, iaddress(rbx));
duke@435 494 __ push(itos);
duke@435 495 locals_index(rbx, 3);
duke@435 496 __ movl(rax, iaddress(rbx));
duke@435 497 }
duke@435 498
duke@435 499 void TemplateTable::fast_iload() {
duke@435 500 transition(vtos, itos);
duke@435 501 locals_index(rbx);
duke@435 502 __ movl(rax, iaddress(rbx));
duke@435 503 }
duke@435 504
duke@435 505 void TemplateTable::lload() {
duke@435 506 transition(vtos, ltos);
duke@435 507 locals_index(rbx);
duke@435 508 __ movq(rax, laddress(rbx));
duke@435 509 }
duke@435 510
duke@435 511 void TemplateTable::fload() {
duke@435 512 transition(vtos, ftos);
duke@435 513 locals_index(rbx);
duke@435 514 __ movflt(xmm0, faddress(rbx));
duke@435 515 }
duke@435 516
duke@435 517 void TemplateTable::dload() {
duke@435 518 transition(vtos, dtos);
duke@435 519 locals_index(rbx);
duke@435 520 __ movdbl(xmm0, daddress(rbx));
duke@435 521 }
duke@435 522
duke@435 523 void TemplateTable::aload() {
duke@435 524 transition(vtos, atos);
duke@435 525 locals_index(rbx);
never@739 526 __ movptr(rax, aaddress(rbx));
duke@435 527 }
duke@435 528
duke@435 529 void TemplateTable::locals_index_wide(Register reg) {
duke@435 530 __ movl(reg, at_bcp(2));
duke@435 531 __ bswapl(reg);
duke@435 532 __ shrl(reg, 16);
never@739 533 __ negptr(reg);
duke@435 534 }
duke@435 535
duke@435 536 void TemplateTable::wide_iload() {
duke@435 537 transition(vtos, itos);
duke@435 538 locals_index_wide(rbx);
duke@435 539 __ movl(rax, iaddress(rbx));
duke@435 540 }
duke@435 541
duke@435 542 void TemplateTable::wide_lload() {
duke@435 543 transition(vtos, ltos);
duke@435 544 locals_index_wide(rbx);
duke@435 545 __ movq(rax, laddress(rbx));
duke@435 546 }
duke@435 547
duke@435 548 void TemplateTable::wide_fload() {
duke@435 549 transition(vtos, ftos);
duke@435 550 locals_index_wide(rbx);
duke@435 551 __ movflt(xmm0, faddress(rbx));
duke@435 552 }
duke@435 553
duke@435 554 void TemplateTable::wide_dload() {
duke@435 555 transition(vtos, dtos);
duke@435 556 locals_index_wide(rbx);
duke@435 557 __ movdbl(xmm0, daddress(rbx));
duke@435 558 }
duke@435 559
duke@435 560 void TemplateTable::wide_aload() {
duke@435 561 transition(vtos, atos);
duke@435 562 locals_index_wide(rbx);
never@739 563 __ movptr(rax, aaddress(rbx));
duke@435 564 }
duke@435 565
duke@435 566 void TemplateTable::index_check(Register array, Register index) {
duke@435 567 // destroys rbx
duke@435 568 // check array
duke@435 569 __ null_check(array, arrayOopDesc::length_offset_in_bytes());
duke@435 570 // sign extend index for use by indexed load
never@739 571 __ movl2ptr(index, index);
duke@435 572 // check index
duke@435 573 __ cmpl(index, Address(array, arrayOopDesc::length_offset_in_bytes()));
duke@435 574 if (index != rbx) {
duke@435 575 // ??? convention: move aberrant index into ebx for exception message
duke@435 576 assert(rbx != array, "different registers");
duke@435 577 __ movl(rbx, index);
duke@435 578 }
duke@435 579 __ jump_cc(Assembler::aboveEqual,
duke@435 580 ExternalAddress(Interpreter::_throw_ArrayIndexOutOfBoundsException_entry));
duke@435 581 }
duke@435 582
duke@435 583 void TemplateTable::iaload() {
duke@435 584 transition(itos, itos);
duke@435 585 __ pop_ptr(rdx);
duke@435 586 // eax: index
duke@435 587 // rdx: array
duke@435 588 index_check(rdx, rax); // kills rbx
duke@435 589 __ movl(rax, Address(rdx, rax,
duke@435 590 Address::times_4,
duke@435 591 arrayOopDesc::base_offset_in_bytes(T_INT)));
duke@435 592 }
duke@435 593
duke@435 594 void TemplateTable::laload() {
duke@435 595 transition(itos, ltos);
duke@435 596 __ pop_ptr(rdx);
duke@435 597 // eax: index
duke@435 598 // rdx: array
duke@435 599 index_check(rdx, rax); // kills rbx
duke@435 600 __ movq(rax, Address(rdx, rbx,
duke@435 601 Address::times_8,
duke@435 602 arrayOopDesc::base_offset_in_bytes(T_LONG)));
duke@435 603 }
duke@435 604
duke@435 605 void TemplateTable::faload() {
duke@435 606 transition(itos, ftos);
duke@435 607 __ pop_ptr(rdx);
duke@435 608 // eax: index
duke@435 609 // rdx: array
duke@435 610 index_check(rdx, rax); // kills rbx
duke@435 611 __ movflt(xmm0, Address(rdx, rax,
duke@435 612 Address::times_4,
duke@435 613 arrayOopDesc::base_offset_in_bytes(T_FLOAT)));
duke@435 614 }
duke@435 615
duke@435 616 void TemplateTable::daload() {
duke@435 617 transition(itos, dtos);
duke@435 618 __ pop_ptr(rdx);
duke@435 619 // eax: index
duke@435 620 // rdx: array
duke@435 621 index_check(rdx, rax); // kills rbx
duke@435 622 __ movdbl(xmm0, Address(rdx, rax,
duke@435 623 Address::times_8,
duke@435 624 arrayOopDesc::base_offset_in_bytes(T_DOUBLE)));
duke@435 625 }
duke@435 626
duke@435 627 void TemplateTable::aaload() {
duke@435 628 transition(itos, atos);
duke@435 629 __ pop_ptr(rdx);
duke@435 630 // eax: index
duke@435 631 // rdx: array
duke@435 632 index_check(rdx, rax); // kills rbx
coleenp@548 633 __ load_heap_oop(rax, Address(rdx, rax,
ysr@777 634 UseCompressedOops ? Address::times_4 : Address::times_8,
ysr@777 635 arrayOopDesc::base_offset_in_bytes(T_OBJECT)));
duke@435 636 }
duke@435 637
duke@435 638 void TemplateTable::baload() {
duke@435 639 transition(itos, itos);
duke@435 640 __ pop_ptr(rdx);
duke@435 641 // eax: index
duke@435 642 // rdx: array
duke@435 643 index_check(rdx, rax); // kills rbx
duke@435 644 __ load_signed_byte(rax,
duke@435 645 Address(rdx, rax,
duke@435 646 Address::times_1,
duke@435 647 arrayOopDesc::base_offset_in_bytes(T_BYTE)));
duke@435 648 }
duke@435 649
duke@435 650 void TemplateTable::caload() {
duke@435 651 transition(itos, itos);
duke@435 652 __ pop_ptr(rdx);
duke@435 653 // eax: index
duke@435 654 // rdx: array
duke@435 655 index_check(rdx, rax); // kills rbx
jrose@1057 656 __ load_unsigned_short(rax,
jrose@1057 657 Address(rdx, rax,
jrose@1057 658 Address::times_2,
jrose@1057 659 arrayOopDesc::base_offset_in_bytes(T_CHAR)));
duke@435 660 }
duke@435 661
duke@435 662 // iload followed by caload frequent pair
duke@435 663 void TemplateTable::fast_icaload() {
duke@435 664 transition(vtos, itos);
duke@435 665 // load index out of locals
duke@435 666 locals_index(rbx);
duke@435 667 __ movl(rax, iaddress(rbx));
duke@435 668
duke@435 669 // eax: index
duke@435 670 // rdx: array
duke@435 671 __ pop_ptr(rdx);
duke@435 672 index_check(rdx, rax); // kills rbx
jrose@1057 673 __ load_unsigned_short(rax,
jrose@1057 674 Address(rdx, rax,
jrose@1057 675 Address::times_2,
jrose@1057 676 arrayOopDesc::base_offset_in_bytes(T_CHAR)));
duke@435 677 }
duke@435 678
duke@435 679 void TemplateTable::saload() {
duke@435 680 transition(itos, itos);
duke@435 681 __ pop_ptr(rdx);
duke@435 682 // eax: index
duke@435 683 // rdx: array
duke@435 684 index_check(rdx, rax); // kills rbx
jrose@1057 685 __ load_signed_short(rax,
jrose@1057 686 Address(rdx, rax,
jrose@1057 687 Address::times_2,
jrose@1057 688 arrayOopDesc::base_offset_in_bytes(T_SHORT)));
duke@435 689 }
duke@435 690
duke@435 691 void TemplateTable::iload(int n) {
duke@435 692 transition(vtos, itos);
duke@435 693 __ movl(rax, iaddress(n));
duke@435 694 }
duke@435 695
duke@435 696 void TemplateTable::lload(int n) {
duke@435 697 transition(vtos, ltos);
duke@435 698 __ movq(rax, laddress(n));
duke@435 699 }
duke@435 700
duke@435 701 void TemplateTable::fload(int n) {
duke@435 702 transition(vtos, ftos);
duke@435 703 __ movflt(xmm0, faddress(n));
duke@435 704 }
duke@435 705
duke@435 706 void TemplateTable::dload(int n) {
duke@435 707 transition(vtos, dtos);
duke@435 708 __ movdbl(xmm0, daddress(n));
duke@435 709 }
duke@435 710
duke@435 711 void TemplateTable::aload(int n) {
duke@435 712 transition(vtos, atos);
never@739 713 __ movptr(rax, aaddress(n));
duke@435 714 }
duke@435 715
duke@435 716 void TemplateTable::aload_0() {
duke@435 717 transition(vtos, atos);
duke@435 718 // According to bytecode histograms, the pairs:
duke@435 719 //
duke@435 720 // _aload_0, _fast_igetfield
duke@435 721 // _aload_0, _fast_agetfield
duke@435 722 // _aload_0, _fast_fgetfield
duke@435 723 //
duke@435 724 // occur frequently. If RewriteFrequentPairs is set, the (slow)
duke@435 725 // _aload_0 bytecode checks if the next bytecode is either
duke@435 726 // _fast_igetfield, _fast_agetfield or _fast_fgetfield and then
duke@435 727 // rewrites the current bytecode into a pair bytecode; otherwise it
duke@435 728 // rewrites the current bytecode into _fast_aload_0 that doesn't do
duke@435 729 // the pair check anymore.
duke@435 730 //
duke@435 731 // Note: If the next bytecode is _getfield, the rewrite must be
duke@435 732 // delayed, otherwise we may miss an opportunity for a pair.
duke@435 733 //
duke@435 734 // Also rewrite frequent pairs
duke@435 735 // aload_0, aload_1
duke@435 736 // aload_0, iload_1
duke@435 737 // These bytecodes with a small amount of code are most profitable
duke@435 738 // to rewrite
duke@435 739 if (RewriteFrequentPairs) {
duke@435 740 Label rewrite, done;
duke@435 741 const Register bc = c_rarg3;
duke@435 742 assert(rbx != bc, "register damaged");
duke@435 743 // get next byte
duke@435 744 __ load_unsigned_byte(rbx,
duke@435 745 at_bcp(Bytecodes::length_for(Bytecodes::_aload_0)));
duke@435 746
duke@435 747 // do actual aload_0
duke@435 748 aload(0);
duke@435 749
duke@435 750 // if _getfield then wait with rewrite
duke@435 751 __ cmpl(rbx, Bytecodes::_getfield);
duke@435 752 __ jcc(Assembler::equal, done);
duke@435 753
duke@435 754 // if _igetfield then reqrite to _fast_iaccess_0
duke@435 755 assert(Bytecodes::java_code(Bytecodes::_fast_iaccess_0) ==
duke@435 756 Bytecodes::_aload_0,
duke@435 757 "fix bytecode definition");
duke@435 758 __ cmpl(rbx, Bytecodes::_fast_igetfield);
duke@435 759 __ movl(bc, Bytecodes::_fast_iaccess_0);
duke@435 760 __ jccb(Assembler::equal, rewrite);
duke@435 761
duke@435 762 // if _agetfield then reqrite to _fast_aaccess_0
duke@435 763 assert(Bytecodes::java_code(Bytecodes::_fast_aaccess_0) ==
duke@435 764 Bytecodes::_aload_0,
duke@435 765 "fix bytecode definition");
duke@435 766 __ cmpl(rbx, Bytecodes::_fast_agetfield);
duke@435 767 __ movl(bc, Bytecodes::_fast_aaccess_0);
duke@435 768 __ jccb(Assembler::equal, rewrite);
duke@435 769
duke@435 770 // if _fgetfield then reqrite to _fast_faccess_0
duke@435 771 assert(Bytecodes::java_code(Bytecodes::_fast_faccess_0) ==
duke@435 772 Bytecodes::_aload_0,
duke@435 773 "fix bytecode definition");
duke@435 774 __ cmpl(rbx, Bytecodes::_fast_fgetfield);
duke@435 775 __ movl(bc, Bytecodes::_fast_faccess_0);
duke@435 776 __ jccb(Assembler::equal, rewrite);
duke@435 777
duke@435 778 // else rewrite to _fast_aload0
duke@435 779 assert(Bytecodes::java_code(Bytecodes::_fast_aload_0) ==
duke@435 780 Bytecodes::_aload_0,
duke@435 781 "fix bytecode definition");
duke@435 782 __ movl(bc, Bytecodes::_fast_aload_0);
duke@435 783
duke@435 784 // rewrite
duke@435 785 // bc: fast bytecode
duke@435 786 __ bind(rewrite);
duke@435 787 patch_bytecode(Bytecodes::_aload_0, bc, rbx, false);
duke@435 788
duke@435 789 __ bind(done);
duke@435 790 } else {
duke@435 791 aload(0);
duke@435 792 }
duke@435 793 }
duke@435 794
duke@435 795 void TemplateTable::istore() {
duke@435 796 transition(itos, vtos);
duke@435 797 locals_index(rbx);
duke@435 798 __ movl(iaddress(rbx), rax);
duke@435 799 }
duke@435 800
duke@435 801 void TemplateTable::lstore() {
duke@435 802 transition(ltos, vtos);
duke@435 803 locals_index(rbx);
duke@435 804 __ movq(laddress(rbx), rax);
duke@435 805 }
duke@435 806
duke@435 807 void TemplateTable::fstore() {
duke@435 808 transition(ftos, vtos);
duke@435 809 locals_index(rbx);
duke@435 810 __ movflt(faddress(rbx), xmm0);
duke@435 811 }
duke@435 812
duke@435 813 void TemplateTable::dstore() {
duke@435 814 transition(dtos, vtos);
duke@435 815 locals_index(rbx);
duke@435 816 __ movdbl(daddress(rbx), xmm0);
duke@435 817 }
duke@435 818
duke@435 819 void TemplateTable::astore() {
duke@435 820 transition(vtos, vtos);
twisti@1861 821 __ pop_ptr(rax);
duke@435 822 locals_index(rbx);
never@739 823 __ movptr(aaddress(rbx), rax);
duke@435 824 }
duke@435 825
duke@435 826 void TemplateTable::wide_istore() {
duke@435 827 transition(vtos, vtos);
duke@435 828 __ pop_i();
duke@435 829 locals_index_wide(rbx);
duke@435 830 __ movl(iaddress(rbx), rax);
duke@435 831 }
duke@435 832
duke@435 833 void TemplateTable::wide_lstore() {
duke@435 834 transition(vtos, vtos);
duke@435 835 __ pop_l();
duke@435 836 locals_index_wide(rbx);
duke@435 837 __ movq(laddress(rbx), rax);
duke@435 838 }
duke@435 839
duke@435 840 void TemplateTable::wide_fstore() {
duke@435 841 transition(vtos, vtos);
duke@435 842 __ pop_f();
duke@435 843 locals_index_wide(rbx);
duke@435 844 __ movflt(faddress(rbx), xmm0);
duke@435 845 }
duke@435 846
duke@435 847 void TemplateTable::wide_dstore() {
duke@435 848 transition(vtos, vtos);
duke@435 849 __ pop_d();
duke@435 850 locals_index_wide(rbx);
duke@435 851 __ movdbl(daddress(rbx), xmm0);
duke@435 852 }
duke@435 853
duke@435 854 void TemplateTable::wide_astore() {
duke@435 855 transition(vtos, vtos);
twisti@1861 856 __ pop_ptr(rax);
duke@435 857 locals_index_wide(rbx);
never@739 858 __ movptr(aaddress(rbx), rax);
duke@435 859 }
duke@435 860
duke@435 861 void TemplateTable::iastore() {
duke@435 862 transition(itos, vtos);
duke@435 863 __ pop_i(rbx);
duke@435 864 __ pop_ptr(rdx);
duke@435 865 // eax: value
duke@435 866 // ebx: index
duke@435 867 // rdx: array
duke@435 868 index_check(rdx, rbx); // prefer index in ebx
duke@435 869 __ movl(Address(rdx, rbx,
duke@435 870 Address::times_4,
duke@435 871 arrayOopDesc::base_offset_in_bytes(T_INT)),
duke@435 872 rax);
duke@435 873 }
duke@435 874
duke@435 875 void TemplateTable::lastore() {
duke@435 876 transition(ltos, vtos);
duke@435 877 __ pop_i(rbx);
duke@435 878 __ pop_ptr(rdx);
duke@435 879 // rax: value
duke@435 880 // ebx: index
duke@435 881 // rdx: array
duke@435 882 index_check(rdx, rbx); // prefer index in ebx
duke@435 883 __ movq(Address(rdx, rbx,
duke@435 884 Address::times_8,
duke@435 885 arrayOopDesc::base_offset_in_bytes(T_LONG)),
duke@435 886 rax);
duke@435 887 }
duke@435 888
duke@435 889 void TemplateTable::fastore() {
duke@435 890 transition(ftos, vtos);
duke@435 891 __ pop_i(rbx);
duke@435 892 __ pop_ptr(rdx);
duke@435 893 // xmm0: value
duke@435 894 // ebx: index
duke@435 895 // rdx: array
duke@435 896 index_check(rdx, rbx); // prefer index in ebx
duke@435 897 __ movflt(Address(rdx, rbx,
duke@435 898 Address::times_4,
duke@435 899 arrayOopDesc::base_offset_in_bytes(T_FLOAT)),
duke@435 900 xmm0);
duke@435 901 }
duke@435 902
duke@435 903 void TemplateTable::dastore() {
duke@435 904 transition(dtos, vtos);
duke@435 905 __ pop_i(rbx);
duke@435 906 __ pop_ptr(rdx);
duke@435 907 // xmm0: value
duke@435 908 // ebx: index
duke@435 909 // rdx: array
duke@435 910 index_check(rdx, rbx); // prefer index in ebx
duke@435 911 __ movdbl(Address(rdx, rbx,
duke@435 912 Address::times_8,
duke@435 913 arrayOopDesc::base_offset_in_bytes(T_DOUBLE)),
duke@435 914 xmm0);
duke@435 915 }
duke@435 916
duke@435 917 void TemplateTable::aastore() {
duke@435 918 Label is_null, ok_is_subtype, done;
duke@435 919 transition(vtos, vtos);
duke@435 920 // stack: ..., array, index, value
never@739 921 __ movptr(rax, at_tos()); // value
duke@435 922 __ movl(rcx, at_tos_p1()); // index
never@739 923 __ movptr(rdx, at_tos_p2()); // array
ysr@777 924
ysr@777 925 Address element_address(rdx, rcx,
ysr@777 926 UseCompressedOops? Address::times_4 : Address::times_8,
ysr@777 927 arrayOopDesc::base_offset_in_bytes(T_OBJECT));
ysr@777 928
duke@435 929 index_check(rdx, rcx); // kills rbx
duke@435 930 // do array store check - check for NULL value first
never@739 931 __ testptr(rax, rax);
duke@435 932 __ jcc(Assembler::zero, is_null);
duke@435 933
duke@435 934 // Move subklass into rbx
coleenp@548 935 __ load_klass(rbx, rax);
duke@435 936 // Move superklass into rax
coleenp@548 937 __ load_klass(rax, rdx);
never@739 938 __ movptr(rax, Address(rax,
never@739 939 sizeof(oopDesc) +
never@739 940 objArrayKlass::element_klass_offset_in_bytes()));
coleenp@548 941 // Compress array + index*oopSize + 12 into a single register. Frees rcx.
apetrusenko@797 942 __ lea(rdx, element_address);
duke@435 943
duke@435 944 // Generate subtype check. Blows rcx, rdi
duke@435 945 // Superklass in rax. Subklass in rbx.
duke@435 946 __ gen_subtype_check(rbx, ok_is_subtype);
duke@435 947
duke@435 948 // Come here on failure
duke@435 949 // object is at TOS
duke@435 950 __ jump(ExternalAddress(Interpreter::_throw_ArrayStoreException_entry));
duke@435 951
duke@435 952 // Come here on success
duke@435 953 __ bind(ok_is_subtype);
ysr@777 954
ysr@777 955 // Get the value we will store
apetrusenko@797 956 __ movptr(rax, at_tos());
ysr@777 957 // Now store using the appropriate barrier
ysr@777 958 do_oop_store(_masm, Address(rdx, 0), rax, _bs->kind(), true);
duke@435 959 __ jmp(done);
duke@435 960
duke@435 961 // Have a NULL in rax, rdx=array, ecx=index. Store NULL at ary[idx]
duke@435 962 __ bind(is_null);
duke@435 963 __ profile_null_seen(rbx);
ysr@777 964
ysr@777 965 // Store a NULL
ysr@777 966 do_oop_store(_masm, element_address, noreg, _bs->kind(), true);
duke@435 967
duke@435 968 // Pop stack arguments
duke@435 969 __ bind(done);
twisti@1861 970 __ addptr(rsp, 3 * Interpreter::stackElementSize);
duke@435 971 }
duke@435 972
duke@435 973 void TemplateTable::bastore() {
duke@435 974 transition(itos, vtos);
duke@435 975 __ pop_i(rbx);
duke@435 976 __ pop_ptr(rdx);
duke@435 977 // eax: value
duke@435 978 // ebx: index
duke@435 979 // rdx: array
duke@435 980 index_check(rdx, rbx); // prefer index in ebx
duke@435 981 __ movb(Address(rdx, rbx,
duke@435 982 Address::times_1,
duke@435 983 arrayOopDesc::base_offset_in_bytes(T_BYTE)),
duke@435 984 rax);
duke@435 985 }
duke@435 986
duke@435 987 void TemplateTable::castore() {
duke@435 988 transition(itos, vtos);
duke@435 989 __ pop_i(rbx);
duke@435 990 __ pop_ptr(rdx);
duke@435 991 // eax: value
duke@435 992 // ebx: index
duke@435 993 // rdx: array
duke@435 994 index_check(rdx, rbx); // prefer index in ebx
duke@435 995 __ movw(Address(rdx, rbx,
duke@435 996 Address::times_2,
duke@435 997 arrayOopDesc::base_offset_in_bytes(T_CHAR)),
duke@435 998 rax);
duke@435 999 }
duke@435 1000
duke@435 1001 void TemplateTable::sastore() {
duke@435 1002 castore();
duke@435 1003 }
duke@435 1004
duke@435 1005 void TemplateTable::istore(int n) {
duke@435 1006 transition(itos, vtos);
duke@435 1007 __ movl(iaddress(n), rax);
duke@435 1008 }
duke@435 1009
duke@435 1010 void TemplateTable::lstore(int n) {
duke@435 1011 transition(ltos, vtos);
duke@435 1012 __ movq(laddress(n), rax);
duke@435 1013 }
duke@435 1014
duke@435 1015 void TemplateTable::fstore(int n) {
duke@435 1016 transition(ftos, vtos);
duke@435 1017 __ movflt(faddress(n), xmm0);
duke@435 1018 }
duke@435 1019
duke@435 1020 void TemplateTable::dstore(int n) {
duke@435 1021 transition(dtos, vtos);
duke@435 1022 __ movdbl(daddress(n), xmm0);
duke@435 1023 }
duke@435 1024
duke@435 1025 void TemplateTable::astore(int n) {
duke@435 1026 transition(vtos, vtos);
twisti@1861 1027 __ pop_ptr(rax);
never@739 1028 __ movptr(aaddress(n), rax);
duke@435 1029 }
duke@435 1030
duke@435 1031 void TemplateTable::pop() {
duke@435 1032 transition(vtos, vtos);
twisti@1861 1033 __ addptr(rsp, Interpreter::stackElementSize);
duke@435 1034 }
duke@435 1035
duke@435 1036 void TemplateTable::pop2() {
duke@435 1037 transition(vtos, vtos);
twisti@1861 1038 __ addptr(rsp, 2 * Interpreter::stackElementSize);
duke@435 1039 }
duke@435 1040
duke@435 1041 void TemplateTable::dup() {
duke@435 1042 transition(vtos, vtos);
twisti@1861 1043 __ load_ptr(0, rax);
twisti@1861 1044 __ push_ptr(rax);
duke@435 1045 // stack: ..., a, a
duke@435 1046 }
duke@435 1047
duke@435 1048 void TemplateTable::dup_x1() {
duke@435 1049 transition(vtos, vtos);
duke@435 1050 // stack: ..., a, b
twisti@1861 1051 __ load_ptr( 0, rax); // load b
twisti@1861 1052 __ load_ptr( 1, rcx); // load a
twisti@1861 1053 __ store_ptr(1, rax); // store b
twisti@1861 1054 __ store_ptr(0, rcx); // store a
twisti@1861 1055 __ push_ptr(rax); // push b
duke@435 1056 // stack: ..., b, a, b
duke@435 1057 }
duke@435 1058
duke@435 1059 void TemplateTable::dup_x2() {
duke@435 1060 transition(vtos, vtos);
duke@435 1061 // stack: ..., a, b, c
twisti@1861 1062 __ load_ptr( 0, rax); // load c
twisti@1861 1063 __ load_ptr( 2, rcx); // load a
twisti@1861 1064 __ store_ptr(2, rax); // store c in a
twisti@1861 1065 __ push_ptr(rax); // push c
duke@435 1066 // stack: ..., c, b, c, c
twisti@1861 1067 __ load_ptr( 2, rax); // load b
twisti@1861 1068 __ store_ptr(2, rcx); // store a in b
duke@435 1069 // stack: ..., c, a, c, c
twisti@1861 1070 __ store_ptr(1, rax); // store b in c
duke@435 1071 // stack: ..., c, a, b, c
duke@435 1072 }
duke@435 1073
duke@435 1074 void TemplateTable::dup2() {
duke@435 1075 transition(vtos, vtos);
duke@435 1076 // stack: ..., a, b
twisti@1861 1077 __ load_ptr(1, rax); // load a
twisti@1861 1078 __ push_ptr(rax); // push a
twisti@1861 1079 __ load_ptr(1, rax); // load b
twisti@1861 1080 __ push_ptr(rax); // push b
duke@435 1081 // stack: ..., a, b, a, b
duke@435 1082 }
duke@435 1083
duke@435 1084 void TemplateTable::dup2_x1() {
duke@435 1085 transition(vtos, vtos);
duke@435 1086 // stack: ..., a, b, c
twisti@1861 1087 __ load_ptr( 0, rcx); // load c
twisti@1861 1088 __ load_ptr( 1, rax); // load b
twisti@1861 1089 __ push_ptr(rax); // push b
twisti@1861 1090 __ push_ptr(rcx); // push c
duke@435 1091 // stack: ..., a, b, c, b, c
twisti@1861 1092 __ store_ptr(3, rcx); // store c in b
duke@435 1093 // stack: ..., a, c, c, b, c
twisti@1861 1094 __ load_ptr( 4, rcx); // load a
twisti@1861 1095 __ store_ptr(2, rcx); // store a in 2nd c
duke@435 1096 // stack: ..., a, c, a, b, c
twisti@1861 1097 __ store_ptr(4, rax); // store b in a
duke@435 1098 // stack: ..., b, c, a, b, c
duke@435 1099 }
duke@435 1100
duke@435 1101 void TemplateTable::dup2_x2() {
duke@435 1102 transition(vtos, vtos);
duke@435 1103 // stack: ..., a, b, c, d
twisti@1861 1104 __ load_ptr( 0, rcx); // load d
twisti@1861 1105 __ load_ptr( 1, rax); // load c
twisti@1861 1106 __ push_ptr(rax); // push c
twisti@1861 1107 __ push_ptr(rcx); // push d
duke@435 1108 // stack: ..., a, b, c, d, c, d
twisti@1861 1109 __ load_ptr( 4, rax); // load b
twisti@1861 1110 __ store_ptr(2, rax); // store b in d
twisti@1861 1111 __ store_ptr(4, rcx); // store d in b
duke@435 1112 // stack: ..., a, d, c, b, c, d
twisti@1861 1113 __ load_ptr( 5, rcx); // load a
twisti@1861 1114 __ load_ptr( 3, rax); // load c
twisti@1861 1115 __ store_ptr(3, rcx); // store a in c
twisti@1861 1116 __ store_ptr(5, rax); // store c in a
duke@435 1117 // stack: ..., c, d, a, b, c, d
duke@435 1118 }
duke@435 1119
duke@435 1120 void TemplateTable::swap() {
duke@435 1121 transition(vtos, vtos);
duke@435 1122 // stack: ..., a, b
twisti@1861 1123 __ load_ptr( 1, rcx); // load a
twisti@1861 1124 __ load_ptr( 0, rax); // load b
twisti@1861 1125 __ store_ptr(0, rcx); // store a in b
twisti@1861 1126 __ store_ptr(1, rax); // store b in a
duke@435 1127 // stack: ..., b, a
duke@435 1128 }
duke@435 1129
duke@435 1130 void TemplateTable::iop2(Operation op) {
duke@435 1131 transition(itos, itos);
duke@435 1132 switch (op) {
duke@435 1133 case add : __ pop_i(rdx); __ addl (rax, rdx); break;
duke@435 1134 case sub : __ movl(rdx, rax); __ pop_i(rax); __ subl (rax, rdx); break;
duke@435 1135 case mul : __ pop_i(rdx); __ imull(rax, rdx); break;
duke@435 1136 case _and : __ pop_i(rdx); __ andl (rax, rdx); break;
duke@435 1137 case _or : __ pop_i(rdx); __ orl (rax, rdx); break;
duke@435 1138 case _xor : __ pop_i(rdx); __ xorl (rax, rdx); break;
duke@435 1139 case shl : __ movl(rcx, rax); __ pop_i(rax); __ shll (rax); break;
duke@435 1140 case shr : __ movl(rcx, rax); __ pop_i(rax); __ sarl (rax); break;
duke@435 1141 case ushr : __ movl(rcx, rax); __ pop_i(rax); __ shrl (rax); break;
duke@435 1142 default : ShouldNotReachHere();
duke@435 1143 }
duke@435 1144 }
duke@435 1145
duke@435 1146 void TemplateTable::lop2(Operation op) {
duke@435 1147 transition(ltos, ltos);
duke@435 1148 switch (op) {
twisti@1861 1149 case add : __ pop_l(rdx); __ addptr(rax, rdx); break;
twisti@1861 1150 case sub : __ mov(rdx, rax); __ pop_l(rax); __ subptr(rax, rdx); break;
twisti@1861 1151 case _and : __ pop_l(rdx); __ andptr(rax, rdx); break;
twisti@1861 1152 case _or : __ pop_l(rdx); __ orptr (rax, rdx); break;
twisti@1861 1153 case _xor : __ pop_l(rdx); __ xorptr(rax, rdx); break;
twisti@1861 1154 default : ShouldNotReachHere();
duke@435 1155 }
duke@435 1156 }
duke@435 1157
duke@435 1158 void TemplateTable::idiv() {
duke@435 1159 transition(itos, itos);
duke@435 1160 __ movl(rcx, rax);
duke@435 1161 __ pop_i(rax);
duke@435 1162 // Note: could xor eax and ecx and compare with (-1 ^ min_int). If
duke@435 1163 // they are not equal, one could do a normal division (no correction
duke@435 1164 // needed), which may speed up this implementation for the common case.
duke@435 1165 // (see also JVM spec., p.243 & p.271)
duke@435 1166 __ corrected_idivl(rcx);
duke@435 1167 }
duke@435 1168
duke@435 1169 void TemplateTable::irem() {
duke@435 1170 transition(itos, itos);
duke@435 1171 __ movl(rcx, rax);
duke@435 1172 __ pop_i(rax);
duke@435 1173 // Note: could xor eax and ecx and compare with (-1 ^ min_int). If
duke@435 1174 // they are not equal, one could do a normal division (no correction
duke@435 1175 // needed), which may speed up this implementation for the common case.
duke@435 1176 // (see also JVM spec., p.243 & p.271)
duke@435 1177 __ corrected_idivl(rcx);
duke@435 1178 __ movl(rax, rdx);
duke@435 1179 }
duke@435 1180
duke@435 1181 void TemplateTable::lmul() {
duke@435 1182 transition(ltos, ltos);
duke@435 1183 __ pop_l(rdx);
duke@435 1184 __ imulq(rax, rdx);
duke@435 1185 }
duke@435 1186
duke@435 1187 void TemplateTable::ldiv() {
duke@435 1188 transition(ltos, ltos);
never@739 1189 __ mov(rcx, rax);
duke@435 1190 __ pop_l(rax);
duke@435 1191 // generate explicit div0 check
duke@435 1192 __ testq(rcx, rcx);
duke@435 1193 __ jump_cc(Assembler::zero,
duke@435 1194 ExternalAddress(Interpreter::_throw_ArithmeticException_entry));
duke@435 1195 // Note: could xor rax and rcx and compare with (-1 ^ min_int). If
duke@435 1196 // they are not equal, one could do a normal division (no correction
duke@435 1197 // needed), which may speed up this implementation for the common case.
duke@435 1198 // (see also JVM spec., p.243 & p.271)
duke@435 1199 __ corrected_idivq(rcx); // kills rbx
duke@435 1200 }
duke@435 1201
duke@435 1202 void TemplateTable::lrem() {
duke@435 1203 transition(ltos, ltos);
never@739 1204 __ mov(rcx, rax);
duke@435 1205 __ pop_l(rax);
duke@435 1206 __ testq(rcx, rcx);
duke@435 1207 __ jump_cc(Assembler::zero,
duke@435 1208 ExternalAddress(Interpreter::_throw_ArithmeticException_entry));
duke@435 1209 // Note: could xor rax and rcx and compare with (-1 ^ min_int). If
duke@435 1210 // they are not equal, one could do a normal division (no correction
duke@435 1211 // needed), which may speed up this implementation for the common case.
duke@435 1212 // (see also JVM spec., p.243 & p.271)
duke@435 1213 __ corrected_idivq(rcx); // kills rbx
never@739 1214 __ mov(rax, rdx);
duke@435 1215 }
duke@435 1216
duke@435 1217 void TemplateTable::lshl() {
duke@435 1218 transition(itos, ltos);
duke@435 1219 __ movl(rcx, rax); // get shift count
duke@435 1220 __ pop_l(rax); // get shift value
duke@435 1221 __ shlq(rax);
duke@435 1222 }
duke@435 1223
duke@435 1224 void TemplateTable::lshr() {
duke@435 1225 transition(itos, ltos);
duke@435 1226 __ movl(rcx, rax); // get shift count
duke@435 1227 __ pop_l(rax); // get shift value
duke@435 1228 __ sarq(rax);
duke@435 1229 }
duke@435 1230
duke@435 1231 void TemplateTable::lushr() {
duke@435 1232 transition(itos, ltos);
duke@435 1233 __ movl(rcx, rax); // get shift count
duke@435 1234 __ pop_l(rax); // get shift value
duke@435 1235 __ shrq(rax);
duke@435 1236 }
duke@435 1237
duke@435 1238 void TemplateTable::fop2(Operation op) {
duke@435 1239 transition(ftos, ftos);
duke@435 1240 switch (op) {
duke@435 1241 case add:
duke@435 1242 __ addss(xmm0, at_rsp());
twisti@1861 1243 __ addptr(rsp, Interpreter::stackElementSize);
duke@435 1244 break;
duke@435 1245 case sub:
duke@435 1246 __ movflt(xmm1, xmm0);
duke@435 1247 __ pop_f(xmm0);
duke@435 1248 __ subss(xmm0, xmm1);
duke@435 1249 break;
duke@435 1250 case mul:
duke@435 1251 __ mulss(xmm0, at_rsp());
twisti@1861 1252 __ addptr(rsp, Interpreter::stackElementSize);
duke@435 1253 break;
duke@435 1254 case div:
duke@435 1255 __ movflt(xmm1, xmm0);
duke@435 1256 __ pop_f(xmm0);
duke@435 1257 __ divss(xmm0, xmm1);
duke@435 1258 break;
duke@435 1259 case rem:
duke@435 1260 __ movflt(xmm1, xmm0);
duke@435 1261 __ pop_f(xmm0);
duke@435 1262 __ call_VM_leaf(CAST_FROM_FN_PTR(address, SharedRuntime::frem), 2);
duke@435 1263 break;
duke@435 1264 default:
duke@435 1265 ShouldNotReachHere();
duke@435 1266 break;
duke@435 1267 }
duke@435 1268 }
duke@435 1269
duke@435 1270 void TemplateTable::dop2(Operation op) {
duke@435 1271 transition(dtos, dtos);
duke@435 1272 switch (op) {
duke@435 1273 case add:
duke@435 1274 __ addsd(xmm0, at_rsp());
twisti@1861 1275 __ addptr(rsp, 2 * Interpreter::stackElementSize);
duke@435 1276 break;
duke@435 1277 case sub:
duke@435 1278 __ movdbl(xmm1, xmm0);
duke@435 1279 __ pop_d(xmm0);
duke@435 1280 __ subsd(xmm0, xmm1);
duke@435 1281 break;
duke@435 1282 case mul:
duke@435 1283 __ mulsd(xmm0, at_rsp());
twisti@1861 1284 __ addptr(rsp, 2 * Interpreter::stackElementSize);
duke@435 1285 break;
duke@435 1286 case div:
duke@435 1287 __ movdbl(xmm1, xmm0);
duke@435 1288 __ pop_d(xmm0);
duke@435 1289 __ divsd(xmm0, xmm1);
duke@435 1290 break;
duke@435 1291 case rem:
duke@435 1292 __ movdbl(xmm1, xmm0);
duke@435 1293 __ pop_d(xmm0);
duke@435 1294 __ call_VM_leaf(CAST_FROM_FN_PTR(address, SharedRuntime::drem), 2);
duke@435 1295 break;
duke@435 1296 default:
duke@435 1297 ShouldNotReachHere();
duke@435 1298 break;
duke@435 1299 }
duke@435 1300 }
duke@435 1301
duke@435 1302 void TemplateTable::ineg() {
duke@435 1303 transition(itos, itos);
duke@435 1304 __ negl(rax);
duke@435 1305 }
duke@435 1306
duke@435 1307 void TemplateTable::lneg() {
duke@435 1308 transition(ltos, ltos);
duke@435 1309 __ negq(rax);
duke@435 1310 }
duke@435 1311
duke@435 1312 // Note: 'double' and 'long long' have 32-bits alignment on x86.
duke@435 1313 static jlong* double_quadword(jlong *adr, jlong lo, jlong hi) {
duke@435 1314 // Use the expression (adr)&(~0xF) to provide 128-bits aligned address
duke@435 1315 // of 128-bits operands for SSE instructions.
duke@435 1316 jlong *operand = (jlong*)(((intptr_t)adr)&((intptr_t)(~0xF)));
duke@435 1317 // Store the value to a 128-bits operand.
duke@435 1318 operand[0] = lo;
duke@435 1319 operand[1] = hi;
duke@435 1320 return operand;
duke@435 1321 }
duke@435 1322
duke@435 1323 // Buffer for 128-bits masks used by SSE instructions.
duke@435 1324 static jlong float_signflip_pool[2*2];
duke@435 1325 static jlong double_signflip_pool[2*2];
duke@435 1326
duke@435 1327 void TemplateTable::fneg() {
duke@435 1328 transition(ftos, ftos);
duke@435 1329 static jlong *float_signflip = double_quadword(&float_signflip_pool[1], 0x8000000080000000, 0x8000000080000000);
duke@435 1330 __ xorps(xmm0, ExternalAddress((address) float_signflip));
duke@435 1331 }
duke@435 1332
duke@435 1333 void TemplateTable::dneg() {
duke@435 1334 transition(dtos, dtos);
duke@435 1335 static jlong *double_signflip = double_quadword(&double_signflip_pool[1], 0x8000000000000000, 0x8000000000000000);
duke@435 1336 __ xorpd(xmm0, ExternalAddress((address) double_signflip));
duke@435 1337 }
duke@435 1338
duke@435 1339 void TemplateTable::iinc() {
duke@435 1340 transition(vtos, vtos);
duke@435 1341 __ load_signed_byte(rdx, at_bcp(2)); // get constant
duke@435 1342 locals_index(rbx);
duke@435 1343 __ addl(iaddress(rbx), rdx);
duke@435 1344 }
duke@435 1345
duke@435 1346 void TemplateTable::wide_iinc() {
duke@435 1347 transition(vtos, vtos);
duke@435 1348 __ movl(rdx, at_bcp(4)); // get constant
duke@435 1349 locals_index_wide(rbx);
duke@435 1350 __ bswapl(rdx); // swap bytes & sign-extend constant
duke@435 1351 __ sarl(rdx, 16);
duke@435 1352 __ addl(iaddress(rbx), rdx);
duke@435 1353 // Note: should probably use only one movl to get both
duke@435 1354 // the index and the constant -> fix this
duke@435 1355 }
duke@435 1356
duke@435 1357 void TemplateTable::convert() {
duke@435 1358 // Checking
duke@435 1359 #ifdef ASSERT
duke@435 1360 {
duke@435 1361 TosState tos_in = ilgl;
duke@435 1362 TosState tos_out = ilgl;
duke@435 1363 switch (bytecode()) {
duke@435 1364 case Bytecodes::_i2l: // fall through
duke@435 1365 case Bytecodes::_i2f: // fall through
duke@435 1366 case Bytecodes::_i2d: // fall through
duke@435 1367 case Bytecodes::_i2b: // fall through
duke@435 1368 case Bytecodes::_i2c: // fall through
duke@435 1369 case Bytecodes::_i2s: tos_in = itos; break;
duke@435 1370 case Bytecodes::_l2i: // fall through
duke@435 1371 case Bytecodes::_l2f: // fall through
duke@435 1372 case Bytecodes::_l2d: tos_in = ltos; break;
duke@435 1373 case Bytecodes::_f2i: // fall through
duke@435 1374 case Bytecodes::_f2l: // fall through
duke@435 1375 case Bytecodes::_f2d: tos_in = ftos; break;
duke@435 1376 case Bytecodes::_d2i: // fall through
duke@435 1377 case Bytecodes::_d2l: // fall through
duke@435 1378 case Bytecodes::_d2f: tos_in = dtos; break;
duke@435 1379 default : ShouldNotReachHere();
duke@435 1380 }
duke@435 1381 switch (bytecode()) {
duke@435 1382 case Bytecodes::_l2i: // fall through
duke@435 1383 case Bytecodes::_f2i: // fall through
duke@435 1384 case Bytecodes::_d2i: // fall through
duke@435 1385 case Bytecodes::_i2b: // fall through
duke@435 1386 case Bytecodes::_i2c: // fall through
duke@435 1387 case Bytecodes::_i2s: tos_out = itos; break;
duke@435 1388 case Bytecodes::_i2l: // fall through
duke@435 1389 case Bytecodes::_f2l: // fall through
duke@435 1390 case Bytecodes::_d2l: tos_out = ltos; break;
duke@435 1391 case Bytecodes::_i2f: // fall through
duke@435 1392 case Bytecodes::_l2f: // fall through
duke@435 1393 case Bytecodes::_d2f: tos_out = ftos; break;
duke@435 1394 case Bytecodes::_i2d: // fall through
duke@435 1395 case Bytecodes::_l2d: // fall through
duke@435 1396 case Bytecodes::_f2d: tos_out = dtos; break;
duke@435 1397 default : ShouldNotReachHere();
duke@435 1398 }
duke@435 1399 transition(tos_in, tos_out);
duke@435 1400 }
duke@435 1401 #endif // ASSERT
duke@435 1402
duke@435 1403 static const int64_t is_nan = 0x8000000000000000L;
duke@435 1404
duke@435 1405 // Conversion
duke@435 1406 switch (bytecode()) {
duke@435 1407 case Bytecodes::_i2l:
duke@435 1408 __ movslq(rax, rax);
duke@435 1409 break;
duke@435 1410 case Bytecodes::_i2f:
duke@435 1411 __ cvtsi2ssl(xmm0, rax);
duke@435 1412 break;
duke@435 1413 case Bytecodes::_i2d:
duke@435 1414 __ cvtsi2sdl(xmm0, rax);
duke@435 1415 break;
duke@435 1416 case Bytecodes::_i2b:
duke@435 1417 __ movsbl(rax, rax);
duke@435 1418 break;
duke@435 1419 case Bytecodes::_i2c:
duke@435 1420 __ movzwl(rax, rax);
duke@435 1421 break;
duke@435 1422 case Bytecodes::_i2s:
duke@435 1423 __ movswl(rax, rax);
duke@435 1424 break;
duke@435 1425 case Bytecodes::_l2i:
duke@435 1426 __ movl(rax, rax);
duke@435 1427 break;
duke@435 1428 case Bytecodes::_l2f:
duke@435 1429 __ cvtsi2ssq(xmm0, rax);
duke@435 1430 break;
duke@435 1431 case Bytecodes::_l2d:
duke@435 1432 __ cvtsi2sdq(xmm0, rax);
duke@435 1433 break;
duke@435 1434 case Bytecodes::_f2i:
duke@435 1435 {
duke@435 1436 Label L;
duke@435 1437 __ cvttss2sil(rax, xmm0);
duke@435 1438 __ cmpl(rax, 0x80000000); // NaN or overflow/underflow?
duke@435 1439 __ jcc(Assembler::notEqual, L);
duke@435 1440 __ call_VM_leaf(CAST_FROM_FN_PTR(address, SharedRuntime::f2i), 1);
duke@435 1441 __ bind(L);
duke@435 1442 }
duke@435 1443 break;
duke@435 1444 case Bytecodes::_f2l:
duke@435 1445 {
duke@435 1446 Label L;
duke@435 1447 __ cvttss2siq(rax, xmm0);
duke@435 1448 // NaN or overflow/underflow?
duke@435 1449 __ cmp64(rax, ExternalAddress((address) &is_nan));
duke@435 1450 __ jcc(Assembler::notEqual, L);
duke@435 1451 __ call_VM_leaf(CAST_FROM_FN_PTR(address, SharedRuntime::f2l), 1);
duke@435 1452 __ bind(L);
duke@435 1453 }
duke@435 1454 break;
duke@435 1455 case Bytecodes::_f2d:
duke@435 1456 __ cvtss2sd(xmm0, xmm0);
duke@435 1457 break;
duke@435 1458 case Bytecodes::_d2i:
duke@435 1459 {
duke@435 1460 Label L;
duke@435 1461 __ cvttsd2sil(rax, xmm0);
duke@435 1462 __ cmpl(rax, 0x80000000); // NaN or overflow/underflow?
duke@435 1463 __ jcc(Assembler::notEqual, L);
duke@435 1464 __ call_VM_leaf(CAST_FROM_FN_PTR(address, SharedRuntime::d2i), 1);
duke@435 1465 __ bind(L);
duke@435 1466 }
duke@435 1467 break;
duke@435 1468 case Bytecodes::_d2l:
duke@435 1469 {
duke@435 1470 Label L;
duke@435 1471 __ cvttsd2siq(rax, xmm0);
duke@435 1472 // NaN or overflow/underflow?
duke@435 1473 __ cmp64(rax, ExternalAddress((address) &is_nan));
duke@435 1474 __ jcc(Assembler::notEqual, L);
duke@435 1475 __ call_VM_leaf(CAST_FROM_FN_PTR(address, SharedRuntime::d2l), 1);
duke@435 1476 __ bind(L);
duke@435 1477 }
duke@435 1478 break;
duke@435 1479 case Bytecodes::_d2f:
duke@435 1480 __ cvtsd2ss(xmm0, xmm0);
duke@435 1481 break;
duke@435 1482 default:
duke@435 1483 ShouldNotReachHere();
duke@435 1484 }
duke@435 1485 }
duke@435 1486
duke@435 1487 void TemplateTable::lcmp() {
duke@435 1488 transition(ltos, itos);
duke@435 1489 Label done;
duke@435 1490 __ pop_l(rdx);
duke@435 1491 __ cmpq(rdx, rax);
duke@435 1492 __ movl(rax, -1);
duke@435 1493 __ jccb(Assembler::less, done);
duke@435 1494 __ setb(Assembler::notEqual, rax);
duke@435 1495 __ movzbl(rax, rax);
duke@435 1496 __ bind(done);
duke@435 1497 }
duke@435 1498
duke@435 1499 void TemplateTable::float_cmp(bool is_float, int unordered_result) {
duke@435 1500 Label done;
duke@435 1501 if (is_float) {
duke@435 1502 // XXX get rid of pop here, use ... reg, mem32
duke@435 1503 __ pop_f(xmm1);
duke@435 1504 __ ucomiss(xmm1, xmm0);
duke@435 1505 } else {
duke@435 1506 // XXX get rid of pop here, use ... reg, mem64
duke@435 1507 __ pop_d(xmm1);
duke@435 1508 __ ucomisd(xmm1, xmm0);
duke@435 1509 }
duke@435 1510 if (unordered_result < 0) {
duke@435 1511 __ movl(rax, -1);
duke@435 1512 __ jccb(Assembler::parity, done);
duke@435 1513 __ jccb(Assembler::below, done);
duke@435 1514 __ setb(Assembler::notEqual, rdx);
duke@435 1515 __ movzbl(rax, rdx);
duke@435 1516 } else {
duke@435 1517 __ movl(rax, 1);
duke@435 1518 __ jccb(Assembler::parity, done);
duke@435 1519 __ jccb(Assembler::above, done);
duke@435 1520 __ movl(rax, 0);
duke@435 1521 __ jccb(Assembler::equal, done);
duke@435 1522 __ decrementl(rax);
duke@435 1523 }
duke@435 1524 __ bind(done);
duke@435 1525 }
duke@435 1526
duke@435 1527 void TemplateTable::branch(bool is_jsr, bool is_wide) {
duke@435 1528 __ get_method(rcx); // rcx holds method
duke@435 1529 __ profile_taken_branch(rax, rbx); // rax holds updated MDP, rbx
duke@435 1530 // holds bumped taken count
duke@435 1531
duke@435 1532 const ByteSize be_offset = methodOopDesc::backedge_counter_offset() +
duke@435 1533 InvocationCounter::counter_offset();
duke@435 1534 const ByteSize inv_offset = methodOopDesc::invocation_counter_offset() +
duke@435 1535 InvocationCounter::counter_offset();
duke@435 1536 const int method_offset = frame::interpreter_frame_method_offset * wordSize;
duke@435 1537
duke@435 1538 // Load up edx with the branch displacement
duke@435 1539 __ movl(rdx, at_bcp(1));
duke@435 1540 __ bswapl(rdx);
duke@435 1541
duke@435 1542 if (!is_wide) {
duke@435 1543 __ sarl(rdx, 16);
duke@435 1544 }
never@739 1545 __ movl2ptr(rdx, rdx);
duke@435 1546
duke@435 1547 // Handle all the JSR stuff here, then exit.
duke@435 1548 // It's much shorter and cleaner than intermingling with the non-JSR
twisti@1040 1549 // normal-branch stuff occurring below.
duke@435 1550 if (is_jsr) {
duke@435 1551 // Pre-load the next target bytecode into rbx
duke@435 1552 __ load_unsigned_byte(rbx, Address(r13, rdx, Address::times_1, 0));
duke@435 1553
duke@435 1554 // compute return address as bci in rax
never@739 1555 __ lea(rax, at_bcp((is_wide ? 5 : 3) -
duke@435 1556 in_bytes(constMethodOopDesc::codes_offset())));
never@739 1557 __ subptr(rax, Address(rcx, methodOopDesc::const_offset()));
duke@435 1558 // Adjust the bcp in r13 by the displacement in rdx
never@739 1559 __ addptr(r13, rdx);
duke@435 1560 // jsr returns atos that is not an oop
duke@435 1561 __ push_i(rax);
duke@435 1562 __ dispatch_only(vtos);
duke@435 1563 return;
duke@435 1564 }
duke@435 1565
duke@435 1566 // Normal (non-jsr) branch handling
duke@435 1567
duke@435 1568 // Adjust the bcp in r13 by the displacement in rdx
never@739 1569 __ addptr(r13, rdx);
duke@435 1570
duke@435 1571 assert(UseLoopCounter || !UseOnStackReplacement,
duke@435 1572 "on-stack-replacement requires loop counters");
duke@435 1573 Label backedge_counter_overflow;
duke@435 1574 Label profile_method;
duke@435 1575 Label dispatch;
duke@435 1576 if (UseLoopCounter) {
duke@435 1577 // increment backedge counter for backward branches
duke@435 1578 // rax: MDO
duke@435 1579 // ebx: MDO bumped taken-count
duke@435 1580 // rcx: method
duke@435 1581 // rdx: target offset
duke@435 1582 // r13: target bcp
duke@435 1583 // r14: locals pointer
duke@435 1584 __ testl(rdx, rdx); // check if forward or backward branch
duke@435 1585 __ jcc(Assembler::positive, dispatch); // count only if backward branch
duke@435 1586
duke@435 1587 // increment counter
duke@435 1588 __ movl(rax, Address(rcx, be_offset)); // load backedge counter
duke@435 1589 __ incrementl(rax, InvocationCounter::count_increment); // increment
duke@435 1590 // counter
duke@435 1591 __ movl(Address(rcx, be_offset), rax); // store counter
duke@435 1592
duke@435 1593 __ movl(rax, Address(rcx, inv_offset)); // load invocation counter
duke@435 1594 __ andl(rax, InvocationCounter::count_mask_value); // and the status bits
duke@435 1595 __ addl(rax, Address(rcx, be_offset)); // add both counters
duke@435 1596
duke@435 1597 if (ProfileInterpreter) {
duke@435 1598 // Test to see if we should create a method data oop
duke@435 1599 __ cmp32(rax,
duke@435 1600 ExternalAddress((address) &InvocationCounter::InterpreterProfileLimit));
duke@435 1601 __ jcc(Assembler::less, dispatch);
duke@435 1602
duke@435 1603 // if no method data exists, go to profile method
duke@435 1604 __ test_method_data_pointer(rax, profile_method);
duke@435 1605
duke@435 1606 if (UseOnStackReplacement) {
duke@435 1607 // check for overflow against ebx which is the MDO taken count
duke@435 1608 __ cmp32(rbx,
duke@435 1609 ExternalAddress((address) &InvocationCounter::InterpreterBackwardBranchLimit));
duke@435 1610 __ jcc(Assembler::below, dispatch);
duke@435 1611
duke@435 1612 // When ProfileInterpreter is on, the backedge_count comes
duke@435 1613 // from the methodDataOop, which value does not get reset on
duke@435 1614 // the call to frequency_counter_overflow(). To avoid
duke@435 1615 // excessive calls to the overflow routine while the method is
duke@435 1616 // being compiled, add a second test to make sure the overflow
duke@435 1617 // function is called only once every overflow_frequency.
duke@435 1618 const int overflow_frequency = 1024;
duke@435 1619 __ andl(rbx, overflow_frequency - 1);
duke@435 1620 __ jcc(Assembler::zero, backedge_counter_overflow);
duke@435 1621
duke@435 1622 }
duke@435 1623 } else {
duke@435 1624 if (UseOnStackReplacement) {
duke@435 1625 // check for overflow against eax, which is the sum of the
duke@435 1626 // counters
duke@435 1627 __ cmp32(rax,
duke@435 1628 ExternalAddress((address) &InvocationCounter::InterpreterBackwardBranchLimit));
duke@435 1629 __ jcc(Assembler::aboveEqual, backedge_counter_overflow);
duke@435 1630
duke@435 1631 }
duke@435 1632 }
duke@435 1633 __ bind(dispatch);
duke@435 1634 }
duke@435 1635
duke@435 1636 // Pre-load the next target bytecode into rbx
duke@435 1637 __ load_unsigned_byte(rbx, Address(r13, 0));
duke@435 1638
duke@435 1639 // continue with the bytecode @ target
duke@435 1640 // eax: return bci for jsr's, unused otherwise
duke@435 1641 // ebx: target bytecode
duke@435 1642 // r13: target bcp
duke@435 1643 __ dispatch_only(vtos);
duke@435 1644
duke@435 1645 if (UseLoopCounter) {
duke@435 1646 if (ProfileInterpreter) {
duke@435 1647 // Out-of-line code to allocate method data oop.
duke@435 1648 __ bind(profile_method);
duke@435 1649 __ call_VM(noreg,
duke@435 1650 CAST_FROM_FN_PTR(address,
duke@435 1651 InterpreterRuntime::profile_method), r13);
duke@435 1652 __ load_unsigned_byte(rbx, Address(r13, 0)); // restore target bytecode
never@739 1653 __ movptr(rcx, Address(rbp, method_offset));
never@739 1654 __ movptr(rcx, Address(rcx,
never@739 1655 in_bytes(methodOopDesc::method_data_offset())));
never@739 1656 __ movptr(Address(rbp, frame::interpreter_frame_mdx_offset * wordSize),
never@739 1657 rcx);
duke@435 1658 __ test_method_data_pointer(rcx, dispatch);
duke@435 1659 // offset non-null mdp by MDO::data_offset() + IR::profile_method()
never@739 1660 __ addptr(rcx, in_bytes(methodDataOopDesc::data_offset()));
never@739 1661 __ addptr(rcx, rax);
never@739 1662 __ movptr(Address(rbp, frame::interpreter_frame_mdx_offset * wordSize),
never@739 1663 rcx);
duke@435 1664 __ jmp(dispatch);
duke@435 1665 }
duke@435 1666
duke@435 1667 if (UseOnStackReplacement) {
duke@435 1668 // invocation counter overflow
duke@435 1669 __ bind(backedge_counter_overflow);
never@739 1670 __ negptr(rdx);
never@739 1671 __ addptr(rdx, r13); // branch bcp
duke@435 1672 // IcoResult frequency_counter_overflow([JavaThread*], address branch_bcp)
duke@435 1673 __ call_VM(noreg,
duke@435 1674 CAST_FROM_FN_PTR(address,
duke@435 1675 InterpreterRuntime::frequency_counter_overflow),
duke@435 1676 rdx);
duke@435 1677 __ load_unsigned_byte(rbx, Address(r13, 0)); // restore target bytecode
duke@435 1678
duke@435 1679 // rax: osr nmethod (osr ok) or NULL (osr not possible)
duke@435 1680 // ebx: target bytecode
duke@435 1681 // rdx: scratch
duke@435 1682 // r14: locals pointer
duke@435 1683 // r13: bcp
never@739 1684 __ testptr(rax, rax); // test result
duke@435 1685 __ jcc(Assembler::zero, dispatch); // no osr if null
duke@435 1686 // nmethod may have been invalidated (VM may block upon call_VM return)
duke@435 1687 __ movl(rcx, Address(rax, nmethod::entry_bci_offset()));
duke@435 1688 __ cmpl(rcx, InvalidOSREntryBci);
duke@435 1689 __ jcc(Assembler::equal, dispatch);
duke@435 1690
duke@435 1691 // We have the address of an on stack replacement routine in eax
duke@435 1692 // We need to prepare to execute the OSR method. First we must
duke@435 1693 // migrate the locals and monitors off of the stack.
duke@435 1694
never@739 1695 __ mov(r13, rax); // save the nmethod
duke@435 1696
duke@435 1697 call_VM(noreg, CAST_FROM_FN_PTR(address, SharedRuntime::OSR_migration_begin));
duke@435 1698
duke@435 1699 // eax is OSR buffer, move it to expected parameter location
never@739 1700 __ mov(j_rarg0, rax);
duke@435 1701
duke@435 1702 // We use j_rarg definitions here so that registers don't conflict as parameter
duke@435 1703 // registers change across platforms as we are in the midst of a calling
duke@435 1704 // sequence to the OSR nmethod and we don't want collision. These are NOT parameters.
duke@435 1705
duke@435 1706 const Register retaddr = j_rarg2;
duke@435 1707 const Register sender_sp = j_rarg1;
duke@435 1708
duke@435 1709 // pop the interpreter frame
never@739 1710 __ movptr(sender_sp, Address(rbp, frame::interpreter_frame_sender_sp_offset * wordSize)); // get sender sp
duke@435 1711 __ leave(); // remove frame anchor
never@739 1712 __ pop(retaddr); // get return address
never@739 1713 __ mov(rsp, sender_sp); // set sp to sender sp
duke@435 1714 // Ensure compiled code always sees stack at proper alignment
never@739 1715 __ andptr(rsp, -(StackAlignmentInBytes));
duke@435 1716
duke@435 1717 // unlike x86 we need no specialized return from compiled code
duke@435 1718 // to the interpreter or the call stub.
duke@435 1719
duke@435 1720 // push the return address
never@739 1721 __ push(retaddr);
duke@435 1722
duke@435 1723 // and begin the OSR nmethod
duke@435 1724 __ jmp(Address(r13, nmethod::osr_entry_point_offset()));
duke@435 1725 }
duke@435 1726 }
duke@435 1727 }
duke@435 1728
duke@435 1729
duke@435 1730 void TemplateTable::if_0cmp(Condition cc) {
duke@435 1731 transition(itos, vtos);
duke@435 1732 // assume branch is more often taken than not (loops use backward branches)
duke@435 1733 Label not_taken;
duke@435 1734 __ testl(rax, rax);
duke@435 1735 __ jcc(j_not(cc), not_taken);
duke@435 1736 branch(false, false);
duke@435 1737 __ bind(not_taken);
duke@435 1738 __ profile_not_taken_branch(rax);
duke@435 1739 }
duke@435 1740
duke@435 1741 void TemplateTable::if_icmp(Condition cc) {
duke@435 1742 transition(itos, vtos);
duke@435 1743 // assume branch is more often taken than not (loops use backward branches)
duke@435 1744 Label not_taken;
duke@435 1745 __ pop_i(rdx);
duke@435 1746 __ cmpl(rdx, rax);
duke@435 1747 __ jcc(j_not(cc), not_taken);
duke@435 1748 branch(false, false);
duke@435 1749 __ bind(not_taken);
duke@435 1750 __ profile_not_taken_branch(rax);
duke@435 1751 }
duke@435 1752
duke@435 1753 void TemplateTable::if_nullcmp(Condition cc) {
duke@435 1754 transition(atos, vtos);
duke@435 1755 // assume branch is more often taken than not (loops use backward branches)
duke@435 1756 Label not_taken;
never@739 1757 __ testptr(rax, rax);
duke@435 1758 __ jcc(j_not(cc), not_taken);
duke@435 1759 branch(false, false);
duke@435 1760 __ bind(not_taken);
duke@435 1761 __ profile_not_taken_branch(rax);
duke@435 1762 }
duke@435 1763
duke@435 1764 void TemplateTable::if_acmp(Condition cc) {
duke@435 1765 transition(atos, vtos);
duke@435 1766 // assume branch is more often taken than not (loops use backward branches)
duke@435 1767 Label not_taken;
duke@435 1768 __ pop_ptr(rdx);
never@739 1769 __ cmpptr(rdx, rax);
duke@435 1770 __ jcc(j_not(cc), not_taken);
duke@435 1771 branch(false, false);
duke@435 1772 __ bind(not_taken);
duke@435 1773 __ profile_not_taken_branch(rax);
duke@435 1774 }
duke@435 1775
duke@435 1776 void TemplateTable::ret() {
duke@435 1777 transition(vtos, vtos);
duke@435 1778 locals_index(rbx);
never@739 1779 __ movslq(rbx, iaddress(rbx)); // get return bci, compute return bcp
duke@435 1780 __ profile_ret(rbx, rcx);
duke@435 1781 __ get_method(rax);
never@739 1782 __ movptr(r13, Address(rax, methodOopDesc::const_offset()));
never@739 1783 __ lea(r13, Address(r13, rbx, Address::times_1,
never@739 1784 constMethodOopDesc::codes_offset()));
duke@435 1785 __ dispatch_next(vtos);
duke@435 1786 }
duke@435 1787
duke@435 1788 void TemplateTable::wide_ret() {
duke@435 1789 transition(vtos, vtos);
duke@435 1790 locals_index_wide(rbx);
never@739 1791 __ movptr(rbx, aaddress(rbx)); // get return bci, compute return bcp
duke@435 1792 __ profile_ret(rbx, rcx);
duke@435 1793 __ get_method(rax);
never@739 1794 __ movptr(r13, Address(rax, methodOopDesc::const_offset()));
never@739 1795 __ lea(r13, Address(r13, rbx, Address::times_1, constMethodOopDesc::codes_offset()));
duke@435 1796 __ dispatch_next(vtos);
duke@435 1797 }
duke@435 1798
duke@435 1799 void TemplateTable::tableswitch() {
duke@435 1800 Label default_case, continue_execution;
duke@435 1801 transition(itos, vtos);
duke@435 1802 // align r13
never@739 1803 __ lea(rbx, at_bcp(BytesPerInt));
never@739 1804 __ andptr(rbx, -BytesPerInt);
duke@435 1805 // load lo & hi
duke@435 1806 __ movl(rcx, Address(rbx, BytesPerInt));
duke@435 1807 __ movl(rdx, Address(rbx, 2 * BytesPerInt));
duke@435 1808 __ bswapl(rcx);
duke@435 1809 __ bswapl(rdx);
duke@435 1810 // check against lo & hi
duke@435 1811 __ cmpl(rax, rcx);
duke@435 1812 __ jcc(Assembler::less, default_case);
duke@435 1813 __ cmpl(rax, rdx);
duke@435 1814 __ jcc(Assembler::greater, default_case);
duke@435 1815 // lookup dispatch offset
duke@435 1816 __ subl(rax, rcx);
duke@435 1817 __ movl(rdx, Address(rbx, rax, Address::times_4, 3 * BytesPerInt));
duke@435 1818 __ profile_switch_case(rax, rbx, rcx);
duke@435 1819 // continue execution
duke@435 1820 __ bind(continue_execution);
duke@435 1821 __ bswapl(rdx);
never@739 1822 __ movl2ptr(rdx, rdx);
duke@435 1823 __ load_unsigned_byte(rbx, Address(r13, rdx, Address::times_1));
never@739 1824 __ addptr(r13, rdx);
duke@435 1825 __ dispatch_only(vtos);
duke@435 1826 // handle default
duke@435 1827 __ bind(default_case);
duke@435 1828 __ profile_switch_default(rax);
duke@435 1829 __ movl(rdx, Address(rbx, 0));
duke@435 1830 __ jmp(continue_execution);
duke@435 1831 }
duke@435 1832
duke@435 1833 void TemplateTable::lookupswitch() {
duke@435 1834 transition(itos, itos);
duke@435 1835 __ stop("lookupswitch bytecode should have been rewritten");
duke@435 1836 }
duke@435 1837
duke@435 1838 void TemplateTable::fast_linearswitch() {
duke@435 1839 transition(itos, vtos);
duke@435 1840 Label loop_entry, loop, found, continue_execution;
duke@435 1841 // bswap rax so we can avoid bswapping the table entries
duke@435 1842 __ bswapl(rax);
duke@435 1843 // align r13
never@739 1844 __ lea(rbx, at_bcp(BytesPerInt)); // btw: should be able to get rid of
never@739 1845 // this instruction (change offsets
never@739 1846 // below)
never@739 1847 __ andptr(rbx, -BytesPerInt);
duke@435 1848 // set counter
duke@435 1849 __ movl(rcx, Address(rbx, BytesPerInt));
duke@435 1850 __ bswapl(rcx);
duke@435 1851 __ jmpb(loop_entry);
duke@435 1852 // table search
duke@435 1853 __ bind(loop);
duke@435 1854 __ cmpl(rax, Address(rbx, rcx, Address::times_8, 2 * BytesPerInt));
duke@435 1855 __ jcc(Assembler::equal, found);
duke@435 1856 __ bind(loop_entry);
duke@435 1857 __ decrementl(rcx);
duke@435 1858 __ jcc(Assembler::greaterEqual, loop);
duke@435 1859 // default case
duke@435 1860 __ profile_switch_default(rax);
duke@435 1861 __ movl(rdx, Address(rbx, 0));
duke@435 1862 __ jmp(continue_execution);
duke@435 1863 // entry found -> get offset
duke@435 1864 __ bind(found);
duke@435 1865 __ movl(rdx, Address(rbx, rcx, Address::times_8, 3 * BytesPerInt));
duke@435 1866 __ profile_switch_case(rcx, rax, rbx);
duke@435 1867 // continue execution
duke@435 1868 __ bind(continue_execution);
duke@435 1869 __ bswapl(rdx);
never@739 1870 __ movl2ptr(rdx, rdx);
duke@435 1871 __ load_unsigned_byte(rbx, Address(r13, rdx, Address::times_1));
never@739 1872 __ addptr(r13, rdx);
duke@435 1873 __ dispatch_only(vtos);
duke@435 1874 }
duke@435 1875
duke@435 1876 void TemplateTable::fast_binaryswitch() {
duke@435 1877 transition(itos, vtos);
duke@435 1878 // Implementation using the following core algorithm:
duke@435 1879 //
duke@435 1880 // int binary_search(int key, LookupswitchPair* array, int n) {
duke@435 1881 // // Binary search according to "Methodik des Programmierens" by
duke@435 1882 // // Edsger W. Dijkstra and W.H.J. Feijen, Addison Wesley Germany 1985.
duke@435 1883 // int i = 0;
duke@435 1884 // int j = n;
duke@435 1885 // while (i+1 < j) {
duke@435 1886 // // invariant P: 0 <= i < j <= n and (a[i] <= key < a[j] or Q)
duke@435 1887 // // with Q: for all i: 0 <= i < n: key < a[i]
duke@435 1888 // // where a stands for the array and assuming that the (inexisting)
duke@435 1889 // // element a[n] is infinitely big.
duke@435 1890 // int h = (i + j) >> 1;
duke@435 1891 // // i < h < j
duke@435 1892 // if (key < array[h].fast_match()) {
duke@435 1893 // j = h;
duke@435 1894 // } else {
duke@435 1895 // i = h;
duke@435 1896 // }
duke@435 1897 // }
duke@435 1898 // // R: a[i] <= key < a[i+1] or Q
duke@435 1899 // // (i.e., if key is within array, i is the correct index)
duke@435 1900 // return i;
duke@435 1901 // }
duke@435 1902
duke@435 1903 // Register allocation
duke@435 1904 const Register key = rax; // already set (tosca)
duke@435 1905 const Register array = rbx;
duke@435 1906 const Register i = rcx;
duke@435 1907 const Register j = rdx;
duke@435 1908 const Register h = rdi;
duke@435 1909 const Register temp = rsi;
duke@435 1910
duke@435 1911 // Find array start
never@739 1912 __ lea(array, at_bcp(3 * BytesPerInt)); // btw: should be able to
never@739 1913 // get rid of this
never@739 1914 // instruction (change
never@739 1915 // offsets below)
never@739 1916 __ andptr(array, -BytesPerInt);
duke@435 1917
duke@435 1918 // Initialize i & j
duke@435 1919 __ xorl(i, i); // i = 0;
duke@435 1920 __ movl(j, Address(array, -BytesPerInt)); // j = length(array);
duke@435 1921
duke@435 1922 // Convert j into native byteordering
duke@435 1923 __ bswapl(j);
duke@435 1924
duke@435 1925 // And start
duke@435 1926 Label entry;
duke@435 1927 __ jmp(entry);
duke@435 1928
duke@435 1929 // binary search loop
duke@435 1930 {
duke@435 1931 Label loop;
duke@435 1932 __ bind(loop);
duke@435 1933 // int h = (i + j) >> 1;
duke@435 1934 __ leal(h, Address(i, j, Address::times_1)); // h = i + j;
duke@435 1935 __ sarl(h, 1); // h = (i + j) >> 1;
duke@435 1936 // if (key < array[h].fast_match()) {
duke@435 1937 // j = h;
duke@435 1938 // } else {
duke@435 1939 // i = h;
duke@435 1940 // }
duke@435 1941 // Convert array[h].match to native byte-ordering before compare
duke@435 1942 __ movl(temp, Address(array, h, Address::times_8));
duke@435 1943 __ bswapl(temp);
duke@435 1944 __ cmpl(key, temp);
duke@435 1945 // j = h if (key < array[h].fast_match())
duke@435 1946 __ cmovl(Assembler::less, j, h);
duke@435 1947 // i = h if (key >= array[h].fast_match())
duke@435 1948 __ cmovl(Assembler::greaterEqual, i, h);
duke@435 1949 // while (i+1 < j)
duke@435 1950 __ bind(entry);
duke@435 1951 __ leal(h, Address(i, 1)); // i+1
duke@435 1952 __ cmpl(h, j); // i+1 < j
duke@435 1953 __ jcc(Assembler::less, loop);
duke@435 1954 }
duke@435 1955
duke@435 1956 // end of binary search, result index is i (must check again!)
duke@435 1957 Label default_case;
duke@435 1958 // Convert array[i].match to native byte-ordering before compare
duke@435 1959 __ movl(temp, Address(array, i, Address::times_8));
duke@435 1960 __ bswapl(temp);
duke@435 1961 __ cmpl(key, temp);
duke@435 1962 __ jcc(Assembler::notEqual, default_case);
duke@435 1963
duke@435 1964 // entry found -> j = offset
duke@435 1965 __ movl(j , Address(array, i, Address::times_8, BytesPerInt));
duke@435 1966 __ profile_switch_case(i, key, array);
duke@435 1967 __ bswapl(j);
never@739 1968 __ movl2ptr(j, j);
duke@435 1969 __ load_unsigned_byte(rbx, Address(r13, j, Address::times_1));
never@739 1970 __ addptr(r13, j);
duke@435 1971 __ dispatch_only(vtos);
duke@435 1972
duke@435 1973 // default case -> j = default offset
duke@435 1974 __ bind(default_case);
duke@435 1975 __ profile_switch_default(i);
duke@435 1976 __ movl(j, Address(array, -2 * BytesPerInt));
duke@435 1977 __ bswapl(j);
never@739 1978 __ movl2ptr(j, j);
duke@435 1979 __ load_unsigned_byte(rbx, Address(r13, j, Address::times_1));
never@739 1980 __ addptr(r13, j);
duke@435 1981 __ dispatch_only(vtos);
duke@435 1982 }
duke@435 1983
duke@435 1984
duke@435 1985 void TemplateTable::_return(TosState state) {
duke@435 1986 transition(state, state);
duke@435 1987 assert(_desc->calls_vm(),
duke@435 1988 "inconsistent calls_vm information"); // call in remove_activation
duke@435 1989
duke@435 1990 if (_desc->bytecode() == Bytecodes::_return_register_finalizer) {
duke@435 1991 assert(state == vtos, "only valid state");
never@739 1992 __ movptr(c_rarg1, aaddress(0));
coleenp@548 1993 __ load_klass(rdi, c_rarg1);
duke@435 1994 __ movl(rdi, Address(rdi, Klass::access_flags_offset_in_bytes() + sizeof(oopDesc)));
duke@435 1995 __ testl(rdi, JVM_ACC_HAS_FINALIZER);
duke@435 1996 Label skip_register_finalizer;
duke@435 1997 __ jcc(Assembler::zero, skip_register_finalizer);
duke@435 1998
duke@435 1999 __ call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::register_finalizer), c_rarg1);
duke@435 2000
duke@435 2001 __ bind(skip_register_finalizer);
duke@435 2002 }
duke@435 2003
duke@435 2004 __ remove_activation(state, r13);
duke@435 2005 __ jmp(r13);
duke@435 2006 }
duke@435 2007
duke@435 2008 // ----------------------------------------------------------------------------
duke@435 2009 // Volatile variables demand their effects be made known to all CPU's
duke@435 2010 // in order. Store buffers on most chips allow reads & writes to
duke@435 2011 // reorder; the JMM's ReadAfterWrite.java test fails in -Xint mode
duke@435 2012 // without some kind of memory barrier (i.e., it's not sufficient that
duke@435 2013 // the interpreter does not reorder volatile references, the hardware
duke@435 2014 // also must not reorder them).
duke@435 2015 //
duke@435 2016 // According to the new Java Memory Model (JMM):
duke@435 2017 // (1) All volatiles are serialized wrt to each other. ALSO reads &
duke@435 2018 // writes act as aquire & release, so:
duke@435 2019 // (2) A read cannot let unrelated NON-volatile memory refs that
duke@435 2020 // happen after the read float up to before the read. It's OK for
duke@435 2021 // non-volatile memory refs that happen before the volatile read to
duke@435 2022 // float down below it.
duke@435 2023 // (3) Similar a volatile write cannot let unrelated NON-volatile
duke@435 2024 // memory refs that happen BEFORE the write float down to after the
duke@435 2025 // write. It's OK for non-volatile memory refs that happen after the
duke@435 2026 // volatile write to float up before it.
duke@435 2027 //
duke@435 2028 // We only put in barriers around volatile refs (they are expensive),
duke@435 2029 // not _between_ memory refs (that would require us to track the
duke@435 2030 // flavor of the previous memory refs). Requirements (2) and (3)
duke@435 2031 // require some barriers before volatile stores and after volatile
duke@435 2032 // loads. These nearly cover requirement (1) but miss the
duke@435 2033 // volatile-store-volatile-load case. This final case is placed after
duke@435 2034 // volatile-stores although it could just as well go before
duke@435 2035 // volatile-loads.
duke@435 2036 void TemplateTable::volatile_barrier(Assembler::Membar_mask_bits
duke@435 2037 order_constraint) {
duke@435 2038 // Helper function to insert a is-volatile test and memory barrier
duke@435 2039 if (os::is_MP()) { // Not needed on single CPU
duke@435 2040 __ membar(order_constraint);
duke@435 2041 }
duke@435 2042 }
duke@435 2043
jrose@1920 2044 void TemplateTable::resolve_cache_and_index(int byte_no,
jrose@1920 2045 Register result,
jrose@1920 2046 Register Rcache,
jrose@1920 2047 Register index,
jrose@1920 2048 size_t index_size) {
duke@435 2049 const Register temp = rbx;
jrose@1920 2050 assert_different_registers(result, Rcache, index, temp);
jrose@1920 2051
duke@435 2052 Label resolved;
jrose@1920 2053 __ get_cache_and_index_at_bcp(Rcache, index, 1, index_size);
jrose@1920 2054 if (byte_no == f1_oop) {
jrose@1920 2055 // We are resolved if the f1 field contains a non-null object (CallSite, etc.)
jrose@1920 2056 // This kind of CP cache entry does not need to match the flags byte, because
jrose@1920 2057 // there is a 1-1 relation between bytecode type and CP entry type.
jrose@1920 2058 assert(result != noreg, ""); //else do cmpptr(Address(...), (int32_t) NULL_WORD)
jrose@1920 2059 __ movptr(result, Address(Rcache, index, Address::times_ptr, constantPoolCacheOopDesc::base_offset() + ConstantPoolCacheEntry::f1_offset()));
jrose@1920 2060 __ testptr(result, result);
twisti@1543 2061 __ jcc(Assembler::notEqual, resolved);
twisti@1543 2062 } else {
jrose@1920 2063 assert(byte_no == f1_byte || byte_no == f2_byte, "byte_no out of range");
jrose@1920 2064 assert(result == noreg, ""); //else change code for setting result
jrose@1920 2065 const int shift_count = (1 + byte_no) * BitsPerByte;
twisti@1543 2066 __ movl(temp, Address(Rcache, index, Address::times_ptr, constantPoolCacheOopDesc::base_offset() + ConstantPoolCacheEntry::indices_offset()));
twisti@1543 2067 __ shrl(temp, shift_count);
twisti@1543 2068 // have we resolved this bytecode?
twisti@1543 2069 __ andl(temp, 0xFF);
twisti@1543 2070 __ cmpl(temp, (int) bytecode());
twisti@1543 2071 __ jcc(Assembler::equal, resolved);
twisti@1543 2072 }
duke@435 2073
duke@435 2074 // resolve first time through
duke@435 2075 address entry;
duke@435 2076 switch (bytecode()) {
duke@435 2077 case Bytecodes::_getstatic:
duke@435 2078 case Bytecodes::_putstatic:
duke@435 2079 case Bytecodes::_getfield:
duke@435 2080 case Bytecodes::_putfield:
duke@435 2081 entry = CAST_FROM_FN_PTR(address, InterpreterRuntime::resolve_get_put);
duke@435 2082 break;
duke@435 2083 case Bytecodes::_invokevirtual:
duke@435 2084 case Bytecodes::_invokespecial:
duke@435 2085 case Bytecodes::_invokestatic:
duke@435 2086 case Bytecodes::_invokeinterface:
duke@435 2087 entry = CAST_FROM_FN_PTR(address, InterpreterRuntime::resolve_invoke);
duke@435 2088 break;
twisti@1543 2089 case Bytecodes::_invokedynamic:
twisti@1543 2090 entry = CAST_FROM_FN_PTR(address, InterpreterRuntime::resolve_invokedynamic);
twisti@1543 2091 break;
jrose@1957 2092 case Bytecodes::_fast_aldc:
jrose@1957 2093 entry = CAST_FROM_FN_PTR(address, InterpreterRuntime::resolve_ldc);
jrose@1957 2094 break;
jrose@1957 2095 case Bytecodes::_fast_aldc_w:
jrose@1957 2096 entry = CAST_FROM_FN_PTR(address, InterpreterRuntime::resolve_ldc);
jrose@1957 2097 break;
duke@435 2098 default:
duke@435 2099 ShouldNotReachHere();
duke@435 2100 break;
duke@435 2101 }
duke@435 2102 __ movl(temp, (int) bytecode());
duke@435 2103 __ call_VM(noreg, entry, temp);
duke@435 2104
duke@435 2105 // Update registers with resolved info
jrose@1920 2106 __ get_cache_and_index_at_bcp(Rcache, index, 1, index_size);
jrose@1920 2107 if (result != noreg)
jrose@1920 2108 __ movptr(result, Address(Rcache, index, Address::times_ptr, constantPoolCacheOopDesc::base_offset() + ConstantPoolCacheEntry::f1_offset()));
duke@435 2109 __ bind(resolved);
duke@435 2110 }
duke@435 2111
duke@435 2112 // The Rcache and index registers must be set before call
duke@435 2113 void TemplateTable::load_field_cp_cache_entry(Register obj,
duke@435 2114 Register cache,
duke@435 2115 Register index,
duke@435 2116 Register off,
duke@435 2117 Register flags,
duke@435 2118 bool is_static = false) {
duke@435 2119 assert_different_registers(cache, index, flags, off);
duke@435 2120
duke@435 2121 ByteSize cp_base_offset = constantPoolCacheOopDesc::base_offset();
duke@435 2122 // Field offset
never@739 2123 __ movptr(off, Address(cache, index, Address::times_8,
never@739 2124 in_bytes(cp_base_offset +
never@739 2125 ConstantPoolCacheEntry::f2_offset())));
duke@435 2126 // Flags
duke@435 2127 __ movl(flags, Address(cache, index, Address::times_8,
duke@435 2128 in_bytes(cp_base_offset +
duke@435 2129 ConstantPoolCacheEntry::flags_offset())));
duke@435 2130
duke@435 2131 // klass overwrite register
duke@435 2132 if (is_static) {
never@739 2133 __ movptr(obj, Address(cache, index, Address::times_8,
never@739 2134 in_bytes(cp_base_offset +
never@739 2135 ConstantPoolCacheEntry::f1_offset())));
duke@435 2136 }
duke@435 2137 }
duke@435 2138
duke@435 2139 void TemplateTable::load_invoke_cp_cache_entry(int byte_no,
duke@435 2140 Register method,
duke@435 2141 Register itable_index,
duke@435 2142 Register flags,
duke@435 2143 bool is_invokevirtual,
jrose@1920 2144 bool is_invokevfinal, /*unused*/
jrose@1920 2145 bool is_invokedynamic) {
duke@435 2146 // setup registers
duke@435 2147 const Register cache = rcx;
duke@435 2148 const Register index = rdx;
duke@435 2149 assert_different_registers(method, flags);
duke@435 2150 assert_different_registers(method, cache, index);
duke@435 2151 assert_different_registers(itable_index, flags);
duke@435 2152 assert_different_registers(itable_index, cache, index);
duke@435 2153 // determine constant pool cache field offsets
duke@435 2154 const int method_offset = in_bytes(
duke@435 2155 constantPoolCacheOopDesc::base_offset() +
duke@435 2156 (is_invokevirtual
duke@435 2157 ? ConstantPoolCacheEntry::f2_offset()
duke@435 2158 : ConstantPoolCacheEntry::f1_offset()));
duke@435 2159 const int flags_offset = in_bytes(constantPoolCacheOopDesc::base_offset() +
duke@435 2160 ConstantPoolCacheEntry::flags_offset());
duke@435 2161 // access constant pool cache fields
duke@435 2162 const int index_offset = in_bytes(constantPoolCacheOopDesc::base_offset() +
duke@435 2163 ConstantPoolCacheEntry::f2_offset());
duke@435 2164
jrose@1920 2165 if (byte_no == f1_oop) {
jrose@1920 2166 // Resolved f1_oop goes directly into 'method' register.
jrose@1920 2167 assert(is_invokedynamic, "");
jrose@1920 2168 resolve_cache_and_index(byte_no, method, cache, index, sizeof(u4));
jrose@1920 2169 } else {
jrose@1920 2170 resolve_cache_and_index(byte_no, noreg, cache, index, sizeof(u2));
jrose@1920 2171 __ movptr(method, Address(cache, index, Address::times_ptr, method_offset));
jrose@1920 2172 }
duke@435 2173 if (itable_index != noreg) {
jrose@1920 2174 __ movptr(itable_index, Address(cache, index, Address::times_ptr, index_offset));
duke@435 2175 }
jrose@1920 2176 __ movl(flags, Address(cache, index, Address::times_ptr, flags_offset));
duke@435 2177 }
duke@435 2178
duke@435 2179
duke@435 2180 // The registers cache and index expected to be set before call.
duke@435 2181 // Correct values of the cache and index registers are preserved.
duke@435 2182 void TemplateTable::jvmti_post_field_access(Register cache, Register index,
duke@435 2183 bool is_static, bool has_tos) {
duke@435 2184 // do the JVMTI work here to avoid disturbing the register state below
duke@435 2185 // We use c_rarg registers here because we want to use the register used in
duke@435 2186 // the call to the VM
duke@435 2187 if (JvmtiExport::can_post_field_access()) {
duke@435 2188 // Check to see if a field access watch has been set before we
duke@435 2189 // take the time to call into the VM.
duke@435 2190 Label L1;
duke@435 2191 assert_different_registers(cache, index, rax);
duke@435 2192 __ mov32(rax, ExternalAddress((address) JvmtiExport::get_field_access_count_addr()));
duke@435 2193 __ testl(rax, rax);
duke@435 2194 __ jcc(Assembler::zero, L1);
duke@435 2195
duke@435 2196 __ get_cache_and_index_at_bcp(c_rarg2, c_rarg3, 1);
duke@435 2197
duke@435 2198 // cache entry pointer
never@739 2199 __ addptr(c_rarg2, in_bytes(constantPoolCacheOopDesc::base_offset()));
duke@435 2200 __ shll(c_rarg3, LogBytesPerWord);
never@739 2201 __ addptr(c_rarg2, c_rarg3);
duke@435 2202 if (is_static) {
duke@435 2203 __ xorl(c_rarg1, c_rarg1); // NULL object reference
duke@435 2204 } else {
never@739 2205 __ movptr(c_rarg1, at_tos()); // get object pointer without popping it
duke@435 2206 __ verify_oop(c_rarg1);
duke@435 2207 }
duke@435 2208 // c_rarg1: object pointer or NULL
duke@435 2209 // c_rarg2: cache entry pointer
duke@435 2210 // c_rarg3: jvalue object on the stack
duke@435 2211 __ call_VM(noreg, CAST_FROM_FN_PTR(address,
duke@435 2212 InterpreterRuntime::post_field_access),
duke@435 2213 c_rarg1, c_rarg2, c_rarg3);
duke@435 2214 __ get_cache_and_index_at_bcp(cache, index, 1);
duke@435 2215 __ bind(L1);
duke@435 2216 }
duke@435 2217 }
duke@435 2218
duke@435 2219 void TemplateTable::pop_and_check_object(Register r) {
duke@435 2220 __ pop_ptr(r);
duke@435 2221 __ null_check(r); // for field access must check obj.
duke@435 2222 __ verify_oop(r);
duke@435 2223 }
duke@435 2224
duke@435 2225 void TemplateTable::getfield_or_static(int byte_no, bool is_static) {
duke@435 2226 transition(vtos, vtos);
duke@435 2227
duke@435 2228 const Register cache = rcx;
duke@435 2229 const Register index = rdx;
duke@435 2230 const Register obj = c_rarg3;
duke@435 2231 const Register off = rbx;
duke@435 2232 const Register flags = rax;
duke@435 2233 const Register bc = c_rarg3; // uses same reg as obj, so don't mix them
duke@435 2234
jrose@1920 2235 resolve_cache_and_index(byte_no, noreg, cache, index, sizeof(u2));
duke@435 2236 jvmti_post_field_access(cache, index, is_static, false);
duke@435 2237 load_field_cp_cache_entry(obj, cache, index, off, flags, is_static);
duke@435 2238
duke@435 2239 if (!is_static) {
duke@435 2240 // obj is on the stack
duke@435 2241 pop_and_check_object(obj);
duke@435 2242 }
duke@435 2243
duke@435 2244 const Address field(obj, off, Address::times_1);
duke@435 2245
duke@435 2246 Label Done, notByte, notInt, notShort, notChar,
duke@435 2247 notLong, notFloat, notObj, notDouble;
duke@435 2248
duke@435 2249 __ shrl(flags, ConstantPoolCacheEntry::tosBits);
duke@435 2250 assert(btos == 0, "change code, btos != 0");
duke@435 2251
duke@435 2252 __ andl(flags, 0x0F);
duke@435 2253 __ jcc(Assembler::notZero, notByte);
duke@435 2254 // btos
duke@435 2255 __ load_signed_byte(rax, field);
duke@435 2256 __ push(btos);
duke@435 2257 // Rewrite bytecode to be faster
duke@435 2258 if (!is_static) {
duke@435 2259 patch_bytecode(Bytecodes::_fast_bgetfield, bc, rbx);
duke@435 2260 }
duke@435 2261 __ jmp(Done);
duke@435 2262
duke@435 2263 __ bind(notByte);
duke@435 2264 __ cmpl(flags, atos);
duke@435 2265 __ jcc(Assembler::notEqual, notObj);
duke@435 2266 // atos
coleenp@548 2267 __ load_heap_oop(rax, field);
duke@435 2268 __ push(atos);
duke@435 2269 if (!is_static) {
duke@435 2270 patch_bytecode(Bytecodes::_fast_agetfield, bc, rbx);
duke@435 2271 }
duke@435 2272 __ jmp(Done);
duke@435 2273
duke@435 2274 __ bind(notObj);
duke@435 2275 __ cmpl(flags, itos);
duke@435 2276 __ jcc(Assembler::notEqual, notInt);
duke@435 2277 // itos
duke@435 2278 __ movl(rax, field);
duke@435 2279 __ push(itos);
duke@435 2280 // Rewrite bytecode to be faster
duke@435 2281 if (!is_static) {
duke@435 2282 patch_bytecode(Bytecodes::_fast_igetfield, bc, rbx);
duke@435 2283 }
duke@435 2284 __ jmp(Done);
duke@435 2285
duke@435 2286 __ bind(notInt);
duke@435 2287 __ cmpl(flags, ctos);
duke@435 2288 __ jcc(Assembler::notEqual, notChar);
duke@435 2289 // ctos
jrose@1057 2290 __ load_unsigned_short(rax, field);
duke@435 2291 __ push(ctos);
duke@435 2292 // Rewrite bytecode to be faster
duke@435 2293 if (!is_static) {
duke@435 2294 patch_bytecode(Bytecodes::_fast_cgetfield, bc, rbx);
duke@435 2295 }
duke@435 2296 __ jmp(Done);
duke@435 2297
duke@435 2298 __ bind(notChar);
duke@435 2299 __ cmpl(flags, stos);
duke@435 2300 __ jcc(Assembler::notEqual, notShort);
duke@435 2301 // stos
jrose@1057 2302 __ load_signed_short(rax, field);
duke@435 2303 __ push(stos);
duke@435 2304 // Rewrite bytecode to be faster
duke@435 2305 if (!is_static) {
duke@435 2306 patch_bytecode(Bytecodes::_fast_sgetfield, bc, rbx);
duke@435 2307 }
duke@435 2308 __ jmp(Done);
duke@435 2309
duke@435 2310 __ bind(notShort);
duke@435 2311 __ cmpl(flags, ltos);
duke@435 2312 __ jcc(Assembler::notEqual, notLong);
duke@435 2313 // ltos
duke@435 2314 __ movq(rax, field);
duke@435 2315 __ push(ltos);
duke@435 2316 // Rewrite bytecode to be faster
duke@435 2317 if (!is_static) {
duke@435 2318 patch_bytecode(Bytecodes::_fast_lgetfield, bc, rbx);
duke@435 2319 }
duke@435 2320 __ jmp(Done);
duke@435 2321
duke@435 2322 __ bind(notLong);
duke@435 2323 __ cmpl(flags, ftos);
duke@435 2324 __ jcc(Assembler::notEqual, notFloat);
duke@435 2325 // ftos
duke@435 2326 __ movflt(xmm0, field);
duke@435 2327 __ push(ftos);
duke@435 2328 // Rewrite bytecode to be faster
duke@435 2329 if (!is_static) {
duke@435 2330 patch_bytecode(Bytecodes::_fast_fgetfield, bc, rbx);
duke@435 2331 }
duke@435 2332 __ jmp(Done);
duke@435 2333
duke@435 2334 __ bind(notFloat);
duke@435 2335 #ifdef ASSERT
duke@435 2336 __ cmpl(flags, dtos);
duke@435 2337 __ jcc(Assembler::notEqual, notDouble);
duke@435 2338 #endif
duke@435 2339 // dtos
duke@435 2340 __ movdbl(xmm0, field);
duke@435 2341 __ push(dtos);
duke@435 2342 // Rewrite bytecode to be faster
duke@435 2343 if (!is_static) {
duke@435 2344 patch_bytecode(Bytecodes::_fast_dgetfield, bc, rbx);
duke@435 2345 }
duke@435 2346 #ifdef ASSERT
duke@435 2347 __ jmp(Done);
duke@435 2348
duke@435 2349 __ bind(notDouble);
duke@435 2350 __ stop("Bad state");
duke@435 2351 #endif
duke@435 2352
duke@435 2353 __ bind(Done);
duke@435 2354 // [jk] not needed currently
duke@435 2355 // volatile_barrier(Assembler::Membar_mask_bits(Assembler::LoadLoad |
duke@435 2356 // Assembler::LoadStore));
duke@435 2357 }
duke@435 2358
duke@435 2359
duke@435 2360 void TemplateTable::getfield(int byte_no) {
duke@435 2361 getfield_or_static(byte_no, false);
duke@435 2362 }
duke@435 2363
duke@435 2364 void TemplateTable::getstatic(int byte_no) {
duke@435 2365 getfield_or_static(byte_no, true);
duke@435 2366 }
duke@435 2367
duke@435 2368 // The registers cache and index expected to be set before call.
duke@435 2369 // The function may destroy various registers, just not the cache and index registers.
duke@435 2370 void TemplateTable::jvmti_post_field_mod(Register cache, Register index, bool is_static) {
duke@435 2371 transition(vtos, vtos);
duke@435 2372
duke@435 2373 ByteSize cp_base_offset = constantPoolCacheOopDesc::base_offset();
duke@435 2374
duke@435 2375 if (JvmtiExport::can_post_field_modification()) {
duke@435 2376 // Check to see if a field modification watch has been set before
duke@435 2377 // we take the time to call into the VM.
duke@435 2378 Label L1;
duke@435 2379 assert_different_registers(cache, index, rax);
duke@435 2380 __ mov32(rax, ExternalAddress((address)JvmtiExport::get_field_modification_count_addr()));
duke@435 2381 __ testl(rax, rax);
duke@435 2382 __ jcc(Assembler::zero, L1);
duke@435 2383
duke@435 2384 __ get_cache_and_index_at_bcp(c_rarg2, rscratch1, 1);
duke@435 2385
duke@435 2386 if (is_static) {
duke@435 2387 // Life is simple. Null out the object pointer.
duke@435 2388 __ xorl(c_rarg1, c_rarg1);
duke@435 2389 } else {
duke@435 2390 // Life is harder. The stack holds the value on top, followed by
duke@435 2391 // the object. We don't know the size of the value, though; it
duke@435 2392 // could be one or two words depending on its type. As a result,
duke@435 2393 // we must find the type to determine where the object is.
duke@435 2394 __ movl(c_rarg3, Address(c_rarg2, rscratch1,
duke@435 2395 Address::times_8,
duke@435 2396 in_bytes(cp_base_offset +
duke@435 2397 ConstantPoolCacheEntry::flags_offset())));
duke@435 2398 __ shrl(c_rarg3, ConstantPoolCacheEntry::tosBits);
duke@435 2399 // Make sure we don't need to mask rcx for tosBits after the
duke@435 2400 // above shift
duke@435 2401 ConstantPoolCacheEntry::verify_tosBits();
never@739 2402 __ movptr(c_rarg1, at_tos_p1()); // initially assume a one word jvalue
duke@435 2403 __ cmpl(c_rarg3, ltos);
never@739 2404 __ cmovptr(Assembler::equal,
never@739 2405 c_rarg1, at_tos_p2()); // ltos (two word jvalue)
duke@435 2406 __ cmpl(c_rarg3, dtos);
never@739 2407 __ cmovptr(Assembler::equal,
never@739 2408 c_rarg1, at_tos_p2()); // dtos (two word jvalue)
duke@435 2409 }
duke@435 2410 // cache entry pointer
never@739 2411 __ addptr(c_rarg2, in_bytes(cp_base_offset));
duke@435 2412 __ shll(rscratch1, LogBytesPerWord);
never@739 2413 __ addptr(c_rarg2, rscratch1);
duke@435 2414 // object (tos)
never@739 2415 __ mov(c_rarg3, rsp);
duke@435 2416 // c_rarg1: object pointer set up above (NULL if static)
duke@435 2417 // c_rarg2: cache entry pointer
duke@435 2418 // c_rarg3: jvalue object on the stack
duke@435 2419 __ call_VM(noreg,
duke@435 2420 CAST_FROM_FN_PTR(address,
duke@435 2421 InterpreterRuntime::post_field_modification),
duke@435 2422 c_rarg1, c_rarg2, c_rarg3);
duke@435 2423 __ get_cache_and_index_at_bcp(cache, index, 1);
duke@435 2424 __ bind(L1);
duke@435 2425 }
duke@435 2426 }
duke@435 2427
duke@435 2428 void TemplateTable::putfield_or_static(int byte_no, bool is_static) {
duke@435 2429 transition(vtos, vtos);
duke@435 2430
duke@435 2431 const Register cache = rcx;
duke@435 2432 const Register index = rdx;
duke@435 2433 const Register obj = rcx;
duke@435 2434 const Register off = rbx;
duke@435 2435 const Register flags = rax;
duke@435 2436 const Register bc = c_rarg3;
duke@435 2437
jrose@1920 2438 resolve_cache_and_index(byte_no, noreg, cache, index, sizeof(u2));
duke@435 2439 jvmti_post_field_mod(cache, index, is_static);
duke@435 2440 load_field_cp_cache_entry(obj, cache, index, off, flags, is_static);
duke@435 2441
duke@435 2442 // [jk] not needed currently
duke@435 2443 // volatile_barrier(Assembler::Membar_mask_bits(Assembler::LoadStore |
duke@435 2444 // Assembler::StoreStore));
duke@435 2445
duke@435 2446 Label notVolatile, Done;
duke@435 2447 __ movl(rdx, flags);
duke@435 2448 __ shrl(rdx, ConstantPoolCacheEntry::volatileField);
duke@435 2449 __ andl(rdx, 0x1);
duke@435 2450
duke@435 2451 // field address
duke@435 2452 const Address field(obj, off, Address::times_1);
duke@435 2453
duke@435 2454 Label notByte, notInt, notShort, notChar,
duke@435 2455 notLong, notFloat, notObj, notDouble;
duke@435 2456
duke@435 2457 __ shrl(flags, ConstantPoolCacheEntry::tosBits);
duke@435 2458
duke@435 2459 assert(btos == 0, "change code, btos != 0");
duke@435 2460 __ andl(flags, 0x0f);
duke@435 2461 __ jcc(Assembler::notZero, notByte);
duke@435 2462 // btos
duke@435 2463 __ pop(btos);
duke@435 2464 if (!is_static) pop_and_check_object(obj);
duke@435 2465 __ movb(field, rax);
duke@435 2466 if (!is_static) {
duke@435 2467 patch_bytecode(Bytecodes::_fast_bputfield, bc, rbx);
duke@435 2468 }
duke@435 2469 __ jmp(Done);
duke@435 2470
duke@435 2471 __ bind(notByte);
duke@435 2472 __ cmpl(flags, atos);
duke@435 2473 __ jcc(Assembler::notEqual, notObj);
duke@435 2474 // atos
duke@435 2475 __ pop(atos);
duke@435 2476 if (!is_static) pop_and_check_object(obj);
ysr@777 2477
ysr@777 2478 // Store into the field
ysr@777 2479 do_oop_store(_masm, field, rax, _bs->kind(), false);
ysr@777 2480
duke@435 2481 if (!is_static) {
duke@435 2482 patch_bytecode(Bytecodes::_fast_aputfield, bc, rbx);
duke@435 2483 }
duke@435 2484 __ jmp(Done);
duke@435 2485
duke@435 2486 __ bind(notObj);
duke@435 2487 __ cmpl(flags, itos);
duke@435 2488 __ jcc(Assembler::notEqual, notInt);
duke@435 2489 // itos
duke@435 2490 __ pop(itos);
duke@435 2491 if (!is_static) pop_and_check_object(obj);
duke@435 2492 __ movl(field, rax);
duke@435 2493 if (!is_static) {
duke@435 2494 patch_bytecode(Bytecodes::_fast_iputfield, bc, rbx);
duke@435 2495 }
duke@435 2496 __ jmp(Done);
duke@435 2497
duke@435 2498 __ bind(notInt);
duke@435 2499 __ cmpl(flags, ctos);
duke@435 2500 __ jcc(Assembler::notEqual, notChar);
duke@435 2501 // ctos
duke@435 2502 __ pop(ctos);
duke@435 2503 if (!is_static) pop_and_check_object(obj);
duke@435 2504 __ movw(field, rax);
duke@435 2505 if (!is_static) {
duke@435 2506 patch_bytecode(Bytecodes::_fast_cputfield, bc, rbx);
duke@435 2507 }
duke@435 2508 __ jmp(Done);
duke@435 2509
duke@435 2510 __ bind(notChar);
duke@435 2511 __ cmpl(flags, stos);
duke@435 2512 __ jcc(Assembler::notEqual, notShort);
duke@435 2513 // stos
duke@435 2514 __ pop(stos);
duke@435 2515 if (!is_static) pop_and_check_object(obj);
duke@435 2516 __ movw(field, rax);
duke@435 2517 if (!is_static) {
duke@435 2518 patch_bytecode(Bytecodes::_fast_sputfield, bc, rbx);
duke@435 2519 }
duke@435 2520 __ jmp(Done);
duke@435 2521
duke@435 2522 __ bind(notShort);
duke@435 2523 __ cmpl(flags, ltos);
duke@435 2524 __ jcc(Assembler::notEqual, notLong);
duke@435 2525 // ltos
duke@435 2526 __ pop(ltos);
duke@435 2527 if (!is_static) pop_and_check_object(obj);
duke@435 2528 __ movq(field, rax);
duke@435 2529 if (!is_static) {
duke@435 2530 patch_bytecode(Bytecodes::_fast_lputfield, bc, rbx);
duke@435 2531 }
duke@435 2532 __ jmp(Done);
duke@435 2533
duke@435 2534 __ bind(notLong);
duke@435 2535 __ cmpl(flags, ftos);
duke@435 2536 __ jcc(Assembler::notEqual, notFloat);
duke@435 2537 // ftos
duke@435 2538 __ pop(ftos);
duke@435 2539 if (!is_static) pop_and_check_object(obj);
duke@435 2540 __ movflt(field, xmm0);
duke@435 2541 if (!is_static) {
duke@435 2542 patch_bytecode(Bytecodes::_fast_fputfield, bc, rbx);
duke@435 2543 }
duke@435 2544 __ jmp(Done);
duke@435 2545
duke@435 2546 __ bind(notFloat);
duke@435 2547 #ifdef ASSERT
duke@435 2548 __ cmpl(flags, dtos);
duke@435 2549 __ jcc(Assembler::notEqual, notDouble);
duke@435 2550 #endif
duke@435 2551 // dtos
duke@435 2552 __ pop(dtos);
duke@435 2553 if (!is_static) pop_and_check_object(obj);
duke@435 2554 __ movdbl(field, xmm0);
duke@435 2555 if (!is_static) {
duke@435 2556 patch_bytecode(Bytecodes::_fast_dputfield, bc, rbx);
duke@435 2557 }
duke@435 2558
duke@435 2559 #ifdef ASSERT
duke@435 2560 __ jmp(Done);
duke@435 2561
duke@435 2562 __ bind(notDouble);
duke@435 2563 __ stop("Bad state");
duke@435 2564 #endif
duke@435 2565
duke@435 2566 __ bind(Done);
duke@435 2567 // Check for volatile store
duke@435 2568 __ testl(rdx, rdx);
duke@435 2569 __ jcc(Assembler::zero, notVolatile);
duke@435 2570 volatile_barrier(Assembler::Membar_mask_bits(Assembler::StoreLoad |
duke@435 2571 Assembler::StoreStore));
duke@435 2572
duke@435 2573 __ bind(notVolatile);
duke@435 2574 }
duke@435 2575
duke@435 2576 void TemplateTable::putfield(int byte_no) {
duke@435 2577 putfield_or_static(byte_no, false);
duke@435 2578 }
duke@435 2579
duke@435 2580 void TemplateTable::putstatic(int byte_no) {
duke@435 2581 putfield_or_static(byte_no, true);
duke@435 2582 }
duke@435 2583
duke@435 2584 void TemplateTable::jvmti_post_fast_field_mod() {
duke@435 2585 if (JvmtiExport::can_post_field_modification()) {
duke@435 2586 // Check to see if a field modification watch has been set before
duke@435 2587 // we take the time to call into the VM.
duke@435 2588 Label L2;
duke@435 2589 __ mov32(c_rarg3, ExternalAddress((address)JvmtiExport::get_field_modification_count_addr()));
duke@435 2590 __ testl(c_rarg3, c_rarg3);
duke@435 2591 __ jcc(Assembler::zero, L2);
duke@435 2592 __ pop_ptr(rbx); // copy the object pointer from tos
duke@435 2593 __ verify_oop(rbx);
duke@435 2594 __ push_ptr(rbx); // put the object pointer back on tos
never@739 2595 __ subptr(rsp, sizeof(jvalue)); // add space for a jvalue object
never@739 2596 __ mov(c_rarg3, rsp);
duke@435 2597 const Address field(c_rarg3, 0);
duke@435 2598
duke@435 2599 switch (bytecode()) { // load values into the jvalue object
coleenp@548 2600 case Bytecodes::_fast_aputfield: __ movq(field, rax); break;
duke@435 2601 case Bytecodes::_fast_lputfield: __ movq(field, rax); break;
duke@435 2602 case Bytecodes::_fast_iputfield: __ movl(field, rax); break;
duke@435 2603 case Bytecodes::_fast_bputfield: __ movb(field, rax); break;
duke@435 2604 case Bytecodes::_fast_sputfield: // fall through
duke@435 2605 case Bytecodes::_fast_cputfield: __ movw(field, rax); break;
duke@435 2606 case Bytecodes::_fast_fputfield: __ movflt(field, xmm0); break;
duke@435 2607 case Bytecodes::_fast_dputfield: __ movdbl(field, xmm0); break;
duke@435 2608 default:
duke@435 2609 ShouldNotReachHere();
duke@435 2610 }
duke@435 2611
duke@435 2612 // Save rax because call_VM() will clobber it, then use it for
duke@435 2613 // JVMTI purposes
never@739 2614 __ push(rax);
duke@435 2615 // access constant pool cache entry
duke@435 2616 __ get_cache_entry_pointer_at_bcp(c_rarg2, rax, 1);
duke@435 2617 __ verify_oop(rbx);
duke@435 2618 // rbx: object pointer copied above
duke@435 2619 // c_rarg2: cache entry pointer
duke@435 2620 // c_rarg3: jvalue object on the stack
duke@435 2621 __ call_VM(noreg,
duke@435 2622 CAST_FROM_FN_PTR(address,
duke@435 2623 InterpreterRuntime::post_field_modification),
duke@435 2624 rbx, c_rarg2, c_rarg3);
never@739 2625 __ pop(rax); // restore lower value
never@739 2626 __ addptr(rsp, sizeof(jvalue)); // release jvalue object space
duke@435 2627 __ bind(L2);
duke@435 2628 }
duke@435 2629 }
duke@435 2630
duke@435 2631 void TemplateTable::fast_storefield(TosState state) {
duke@435 2632 transition(state, vtos);
duke@435 2633
duke@435 2634 ByteSize base = constantPoolCacheOopDesc::base_offset();
duke@435 2635
duke@435 2636 jvmti_post_fast_field_mod();
duke@435 2637
duke@435 2638 // access constant pool cache
duke@435 2639 __ get_cache_and_index_at_bcp(rcx, rbx, 1);
duke@435 2640
duke@435 2641 // test for volatile with rdx
duke@435 2642 __ movl(rdx, Address(rcx, rbx, Address::times_8,
duke@435 2643 in_bytes(base +
duke@435 2644 ConstantPoolCacheEntry::flags_offset())));
duke@435 2645
duke@435 2646 // replace index with field offset from cache entry
never@739 2647 __ movptr(rbx, Address(rcx, rbx, Address::times_8,
never@739 2648 in_bytes(base + ConstantPoolCacheEntry::f2_offset())));
duke@435 2649
duke@435 2650 // [jk] not needed currently
duke@435 2651 // volatile_barrier(Assembler::Membar_mask_bits(Assembler::LoadStore |
duke@435 2652 // Assembler::StoreStore));
duke@435 2653
duke@435 2654 Label notVolatile;
duke@435 2655 __ shrl(rdx, ConstantPoolCacheEntry::volatileField);
duke@435 2656 __ andl(rdx, 0x1);
duke@435 2657
duke@435 2658 // Get object from stack
duke@435 2659 pop_and_check_object(rcx);
duke@435 2660
duke@435 2661 // field address
duke@435 2662 const Address field(rcx, rbx, Address::times_1);
duke@435 2663
duke@435 2664 // access field
duke@435 2665 switch (bytecode()) {
duke@435 2666 case Bytecodes::_fast_aputfield:
ysr@777 2667 do_oop_store(_masm, field, rax, _bs->kind(), false);
duke@435 2668 break;
duke@435 2669 case Bytecodes::_fast_lputfield:
duke@435 2670 __ movq(field, rax);
duke@435 2671 break;
duke@435 2672 case Bytecodes::_fast_iputfield:
duke@435 2673 __ movl(field, rax);
duke@435 2674 break;
duke@435 2675 case Bytecodes::_fast_bputfield:
duke@435 2676 __ movb(field, rax);
duke@435 2677 break;
duke@435 2678 case Bytecodes::_fast_sputfield:
duke@435 2679 // fall through
duke@435 2680 case Bytecodes::_fast_cputfield:
duke@435 2681 __ movw(field, rax);
duke@435 2682 break;
duke@435 2683 case Bytecodes::_fast_fputfield:
duke@435 2684 __ movflt(field, xmm0);
duke@435 2685 break;
duke@435 2686 case Bytecodes::_fast_dputfield:
duke@435 2687 __ movdbl(field, xmm0);
duke@435 2688 break;
duke@435 2689 default:
duke@435 2690 ShouldNotReachHere();
duke@435 2691 }
duke@435 2692
duke@435 2693 // Check for volatile store
duke@435 2694 __ testl(rdx, rdx);
duke@435 2695 __ jcc(Assembler::zero, notVolatile);
duke@435 2696 volatile_barrier(Assembler::Membar_mask_bits(Assembler::StoreLoad |
duke@435 2697 Assembler::StoreStore));
duke@435 2698 __ bind(notVolatile);
duke@435 2699 }
duke@435 2700
duke@435 2701
duke@435 2702 void TemplateTable::fast_accessfield(TosState state) {
duke@435 2703 transition(atos, state);
duke@435 2704
duke@435 2705 // Do the JVMTI work here to avoid disturbing the register state below
duke@435 2706 if (JvmtiExport::can_post_field_access()) {
duke@435 2707 // Check to see if a field access watch has been set before we
duke@435 2708 // take the time to call into the VM.
duke@435 2709 Label L1;
duke@435 2710 __ mov32(rcx, ExternalAddress((address) JvmtiExport::get_field_access_count_addr()));
duke@435 2711 __ testl(rcx, rcx);
duke@435 2712 __ jcc(Assembler::zero, L1);
duke@435 2713 // access constant pool cache entry
duke@435 2714 __ get_cache_entry_pointer_at_bcp(c_rarg2, rcx, 1);
coleenp@548 2715 __ verify_oop(rax);
never@739 2716 __ mov(r12, rax); // save object pointer before call_VM() clobbers it
never@739 2717 __ mov(c_rarg1, rax);
duke@435 2718 // c_rarg1: object pointer copied above
duke@435 2719 // c_rarg2: cache entry pointer
duke@435 2720 __ call_VM(noreg,
duke@435 2721 CAST_FROM_FN_PTR(address,
duke@435 2722 InterpreterRuntime::post_field_access),
duke@435 2723 c_rarg1, c_rarg2);
never@739 2724 __ mov(rax, r12); // restore object pointer
coleenp@548 2725 __ reinit_heapbase();
duke@435 2726 __ bind(L1);
duke@435 2727 }
duke@435 2728
duke@435 2729 // access constant pool cache
duke@435 2730 __ get_cache_and_index_at_bcp(rcx, rbx, 1);
duke@435 2731 // replace index with field offset from cache entry
duke@435 2732 // [jk] not needed currently
duke@435 2733 // if (os::is_MP()) {
duke@435 2734 // __ movl(rdx, Address(rcx, rbx, Address::times_8,
duke@435 2735 // in_bytes(constantPoolCacheOopDesc::base_offset() +
duke@435 2736 // ConstantPoolCacheEntry::flags_offset())));
duke@435 2737 // __ shrl(rdx, ConstantPoolCacheEntry::volatileField);
duke@435 2738 // __ andl(rdx, 0x1);
duke@435 2739 // }
never@739 2740 __ movptr(rbx, Address(rcx, rbx, Address::times_8,
never@739 2741 in_bytes(constantPoolCacheOopDesc::base_offset() +
never@739 2742 ConstantPoolCacheEntry::f2_offset())));
duke@435 2743
duke@435 2744 // rax: object
duke@435 2745 __ verify_oop(rax);
duke@435 2746 __ null_check(rax);
duke@435 2747 Address field(rax, rbx, Address::times_1);
duke@435 2748
duke@435 2749 // access field
duke@435 2750 switch (bytecode()) {
duke@435 2751 case Bytecodes::_fast_agetfield:
coleenp@548 2752 __ load_heap_oop(rax, field);
duke@435 2753 __ verify_oop(rax);
duke@435 2754 break;
duke@435 2755 case Bytecodes::_fast_lgetfield:
duke@435 2756 __ movq(rax, field);
duke@435 2757 break;
duke@435 2758 case Bytecodes::_fast_igetfield:
duke@435 2759 __ movl(rax, field);
duke@435 2760 break;
duke@435 2761 case Bytecodes::_fast_bgetfield:
duke@435 2762 __ movsbl(rax, field);
duke@435 2763 break;
duke@435 2764 case Bytecodes::_fast_sgetfield:
jrose@1057 2765 __ load_signed_short(rax, field);
duke@435 2766 break;
duke@435 2767 case Bytecodes::_fast_cgetfield:
jrose@1057 2768 __ load_unsigned_short(rax, field);
duke@435 2769 break;
duke@435 2770 case Bytecodes::_fast_fgetfield:
duke@435 2771 __ movflt(xmm0, field);
duke@435 2772 break;
duke@435 2773 case Bytecodes::_fast_dgetfield:
duke@435 2774 __ movdbl(xmm0, field);
duke@435 2775 break;
duke@435 2776 default:
duke@435 2777 ShouldNotReachHere();
duke@435 2778 }
duke@435 2779 // [jk] not needed currently
duke@435 2780 // if (os::is_MP()) {
duke@435 2781 // Label notVolatile;
duke@435 2782 // __ testl(rdx, rdx);
duke@435 2783 // __ jcc(Assembler::zero, notVolatile);
duke@435 2784 // __ membar(Assembler::LoadLoad);
duke@435 2785 // __ bind(notVolatile);
duke@435 2786 //};
duke@435 2787 }
duke@435 2788
duke@435 2789 void TemplateTable::fast_xaccess(TosState state) {
duke@435 2790 transition(vtos, state);
duke@435 2791
duke@435 2792 // get receiver
never@739 2793 __ movptr(rax, aaddress(0));
duke@435 2794 // access constant pool cache
duke@435 2795 __ get_cache_and_index_at_bcp(rcx, rdx, 2);
never@739 2796 __ movptr(rbx,
never@739 2797 Address(rcx, rdx, Address::times_8,
never@739 2798 in_bytes(constantPoolCacheOopDesc::base_offset() +
never@739 2799 ConstantPoolCacheEntry::f2_offset())));
duke@435 2800 // make sure exception is reported in correct bcp range (getfield is
duke@435 2801 // next instruction)
never@739 2802 __ increment(r13);
duke@435 2803 __ null_check(rax);
duke@435 2804 switch (state) {
duke@435 2805 case itos:
duke@435 2806 __ movl(rax, Address(rax, rbx, Address::times_1));
duke@435 2807 break;
duke@435 2808 case atos:
coleenp@548 2809 __ load_heap_oop(rax, Address(rax, rbx, Address::times_1));
duke@435 2810 __ verify_oop(rax);
duke@435 2811 break;
duke@435 2812 case ftos:
duke@435 2813 __ movflt(xmm0, Address(rax, rbx, Address::times_1));
duke@435 2814 break;
duke@435 2815 default:
duke@435 2816 ShouldNotReachHere();
duke@435 2817 }
duke@435 2818
duke@435 2819 // [jk] not needed currently
duke@435 2820 // if (os::is_MP()) {
duke@435 2821 // Label notVolatile;
duke@435 2822 // __ movl(rdx, Address(rcx, rdx, Address::times_8,
duke@435 2823 // in_bytes(constantPoolCacheOopDesc::base_offset() +
duke@435 2824 // ConstantPoolCacheEntry::flags_offset())));
duke@435 2825 // __ shrl(rdx, ConstantPoolCacheEntry::volatileField);
duke@435 2826 // __ testl(rdx, 0x1);
duke@435 2827 // __ jcc(Assembler::zero, notVolatile);
duke@435 2828 // __ membar(Assembler::LoadLoad);
duke@435 2829 // __ bind(notVolatile);
duke@435 2830 // }
duke@435 2831
never@739 2832 __ decrement(r13);
duke@435 2833 }
duke@435 2834
duke@435 2835
duke@435 2836
duke@435 2837 //-----------------------------------------------------------------------------
duke@435 2838 // Calls
duke@435 2839
duke@435 2840 void TemplateTable::count_calls(Register method, Register temp) {
duke@435 2841 // implemented elsewhere
duke@435 2842 ShouldNotReachHere();
duke@435 2843 }
duke@435 2844
twisti@1543 2845 void TemplateTable::prepare_invoke(Register method, Register index, int byte_no) {
duke@435 2846 // determine flags
twisti@1543 2847 Bytecodes::Code code = bytecode();
duke@435 2848 const bool is_invokeinterface = code == Bytecodes::_invokeinterface;
twisti@1543 2849 const bool is_invokedynamic = code == Bytecodes::_invokedynamic;
duke@435 2850 const bool is_invokevirtual = code == Bytecodes::_invokevirtual;
duke@435 2851 const bool is_invokespecial = code == Bytecodes::_invokespecial;
twisti@1543 2852 const bool load_receiver = (code != Bytecodes::_invokestatic && code != Bytecodes::_invokedynamic);
duke@435 2853 const bool receiver_null_check = is_invokespecial;
duke@435 2854 const bool save_flags = is_invokeinterface || is_invokevirtual;
duke@435 2855 // setup registers & access constant pool cache
duke@435 2856 const Register recv = rcx;
duke@435 2857 const Register flags = rdx;
duke@435 2858 assert_different_registers(method, index, recv, flags);
duke@435 2859
duke@435 2860 // save 'interpreter return address'
duke@435 2861 __ save_bcp();
duke@435 2862
jrose@1920 2863 load_invoke_cp_cache_entry(byte_no, method, index, flags, is_invokevirtual, false, is_invokedynamic);
duke@435 2864
duke@435 2865 // load receiver if needed (note: no return address pushed yet)
duke@435 2866 if (load_receiver) {
jrose@1920 2867 assert(!is_invokedynamic, "");
duke@435 2868 __ movl(recv, flags);
duke@435 2869 __ andl(recv, 0xFF);
twisti@1543 2870 Address recv_addr(rsp, recv, Address::times_8, -Interpreter::expr_offset_in_bytes(1));
twisti@1739 2871 __ movptr(recv, recv_addr);
twisti@1739 2872 __ verify_oop(recv);
duke@435 2873 }
duke@435 2874
duke@435 2875 // do null check if needed
duke@435 2876 if (receiver_null_check) {
duke@435 2877 __ null_check(recv);
duke@435 2878 }
duke@435 2879
duke@435 2880 if (save_flags) {
duke@435 2881 __ movl(r13, flags);
duke@435 2882 }
duke@435 2883
duke@435 2884 // compute return type
duke@435 2885 __ shrl(flags, ConstantPoolCacheEntry::tosBits);
duke@435 2886 // Make sure we don't need to mask flags for tosBits after the above shift
duke@435 2887 ConstantPoolCacheEntry::verify_tosBits();
duke@435 2888 // load return address
duke@435 2889 {
twisti@1543 2890 address table_addr;
twisti@1543 2891 if (is_invokeinterface || is_invokedynamic)
twisti@1543 2892 table_addr = (address)Interpreter::return_5_addrs_by_index_table();
twisti@1543 2893 else
twisti@1543 2894 table_addr = (address)Interpreter::return_3_addrs_by_index_table();
twisti@1543 2895 ExternalAddress table(table_addr);
twisti@1543 2896 __ lea(rscratch1, table);
twisti@1543 2897 __ movptr(flags, Address(rscratch1, flags, Address::times_ptr));
duke@435 2898 }
duke@435 2899
duke@435 2900 // push return address
never@739 2901 __ push(flags);
duke@435 2902
duke@435 2903 // Restore flag field from the constant pool cache, and restore esi
duke@435 2904 // for later null checks. r13 is the bytecode pointer
duke@435 2905 if (save_flags) {
duke@435 2906 __ movl(flags, r13);
duke@435 2907 __ restore_bcp();
duke@435 2908 }
duke@435 2909 }
duke@435 2910
duke@435 2911
duke@435 2912 void TemplateTable::invokevirtual_helper(Register index,
duke@435 2913 Register recv,
duke@435 2914 Register flags) {
duke@435 2915 // Uses temporary registers rax, rdx assert_different_registers(index, recv, rax, rdx);
duke@435 2916
duke@435 2917 // Test for an invoke of a final method
duke@435 2918 Label notFinal;
duke@435 2919 __ movl(rax, flags);
duke@435 2920 __ andl(rax, (1 << ConstantPoolCacheEntry::vfinalMethod));
duke@435 2921 __ jcc(Assembler::zero, notFinal);
duke@435 2922
duke@435 2923 const Register method = index; // method must be rbx
duke@435 2924 assert(method == rbx,
duke@435 2925 "methodOop must be rbx for interpreter calling convention");
duke@435 2926
duke@435 2927 // do the call - the index is actually the method to call
duke@435 2928 __ verify_oop(method);
duke@435 2929
duke@435 2930 // It's final, need a null check here!
duke@435 2931 __ null_check(recv);
duke@435 2932
duke@435 2933 // profile this call
duke@435 2934 __ profile_final_call(rax);
duke@435 2935
duke@435 2936 __ jump_from_interpreted(method, rax);
duke@435 2937
duke@435 2938 __ bind(notFinal);
duke@435 2939
duke@435 2940 // get receiver klass
duke@435 2941 __ null_check(recv, oopDesc::klass_offset_in_bytes());
coleenp@548 2942 __ load_klass(rax, recv);
duke@435 2943
duke@435 2944 __ verify_oop(rax);
duke@435 2945
duke@435 2946 // profile this call
duke@435 2947 __ profile_virtual_call(rax, r14, rdx);
duke@435 2948
duke@435 2949 // get target methodOop & entry point
duke@435 2950 const int base = instanceKlass::vtable_start_offset() * wordSize;
duke@435 2951 assert(vtableEntry::size() * wordSize == 8,
duke@435 2952 "adjust the scaling in the code below");
never@739 2953 __ movptr(method, Address(rax, index,
coleenp@548 2954 Address::times_8,
coleenp@548 2955 base + vtableEntry::method_offset_in_bytes()));
never@739 2956 __ movptr(rdx, Address(method, methodOopDesc::interpreter_entry_offset()));
duke@435 2957 __ jump_from_interpreted(method, rdx);
duke@435 2958 }
duke@435 2959
duke@435 2960
duke@435 2961 void TemplateTable::invokevirtual(int byte_no) {
duke@435 2962 transition(vtos, vtos);
jrose@1920 2963 assert(byte_no == f2_byte, "use this argument");
twisti@1543 2964 prepare_invoke(rbx, noreg, byte_no);
duke@435 2965
duke@435 2966 // rbx: index
duke@435 2967 // rcx: receiver
duke@435 2968 // rdx: flags
duke@435 2969
duke@435 2970 invokevirtual_helper(rbx, rcx, rdx);
duke@435 2971 }
duke@435 2972
duke@435 2973
duke@435 2974 void TemplateTable::invokespecial(int byte_no) {
duke@435 2975 transition(vtos, vtos);
jrose@1920 2976 assert(byte_no == f1_byte, "use this argument");
twisti@1543 2977 prepare_invoke(rbx, noreg, byte_no);
duke@435 2978 // do the call
duke@435 2979 __ verify_oop(rbx);
duke@435 2980 __ profile_call(rax);
duke@435 2981 __ jump_from_interpreted(rbx, rax);
duke@435 2982 }
duke@435 2983
duke@435 2984
duke@435 2985 void TemplateTable::invokestatic(int byte_no) {
duke@435 2986 transition(vtos, vtos);
jrose@1920 2987 assert(byte_no == f1_byte, "use this argument");
twisti@1543 2988 prepare_invoke(rbx, noreg, byte_no);
duke@435 2989 // do the call
duke@435 2990 __ verify_oop(rbx);
duke@435 2991 __ profile_call(rax);
duke@435 2992 __ jump_from_interpreted(rbx, rax);
duke@435 2993 }
duke@435 2994
duke@435 2995 void TemplateTable::fast_invokevfinal(int byte_no) {
duke@435 2996 transition(vtos, vtos);
jrose@1920 2997 assert(byte_no == f2_byte, "use this argument");
duke@435 2998 __ stop("fast_invokevfinal not used on amd64");
duke@435 2999 }
duke@435 3000
duke@435 3001 void TemplateTable::invokeinterface(int byte_no) {
duke@435 3002 transition(vtos, vtos);
jrose@1920 3003 assert(byte_no == f1_byte, "use this argument");
twisti@1543 3004 prepare_invoke(rax, rbx, byte_no);
duke@435 3005
duke@435 3006 // rax: Interface
duke@435 3007 // rbx: index
duke@435 3008 // rcx: receiver
duke@435 3009 // rdx: flags
duke@435 3010
duke@435 3011 // Special case of invokeinterface called for virtual method of
duke@435 3012 // java.lang.Object. See cpCacheOop.cpp for details.
duke@435 3013 // This code isn't produced by javac, but could be produced by
duke@435 3014 // another compliant java compiler.
duke@435 3015 Label notMethod;
duke@435 3016 __ movl(r14, rdx);
duke@435 3017 __ andl(r14, (1 << ConstantPoolCacheEntry::methodInterface));
duke@435 3018 __ jcc(Assembler::zero, notMethod);
duke@435 3019
duke@435 3020 invokevirtual_helper(rbx, rcx, rdx);
duke@435 3021 __ bind(notMethod);
duke@435 3022
duke@435 3023 // Get receiver klass into rdx - also a null check
duke@435 3024 __ restore_locals(); // restore r14
coleenp@548 3025 __ load_klass(rdx, rcx);
duke@435 3026 __ verify_oop(rdx);
duke@435 3027
duke@435 3028 // profile this call
duke@435 3029 __ profile_virtual_call(rdx, r13, r14);
duke@435 3030
jrose@1058 3031 Label no_such_interface, no_such_method;
jrose@1058 3032
jrose@1058 3033 __ lookup_interface_method(// inputs: rec. class, interface, itable index
jrose@1058 3034 rdx, rax, rbx,
jrose@1058 3035 // outputs: method, scan temp. reg
jrose@1058 3036 rbx, r13,
jrose@1058 3037 no_such_interface);
jrose@1058 3038
jrose@1058 3039 // rbx,: methodOop to call
jrose@1058 3040 // rcx: receiver
jrose@1058 3041 // Check for abstract method error
jrose@1058 3042 // Note: This should be done more efficiently via a throw_abstract_method_error
jrose@1058 3043 // interpreter entry point and a conditional jump to it in case of a null
jrose@1058 3044 // method.
jrose@1058 3045 __ testptr(rbx, rbx);
jrose@1058 3046 __ jcc(Assembler::zero, no_such_method);
jrose@1058 3047
jrose@1058 3048 // do the call
jrose@1058 3049 // rcx: receiver
jrose@1058 3050 // rbx,: methodOop
jrose@1058 3051 __ jump_from_interpreted(rbx, rdx);
jrose@1058 3052 __ should_not_reach_here();
jrose@1058 3053
jrose@1058 3054 // exception handling code follows...
jrose@1058 3055 // note: must restore interpreter registers to canonical
jrose@1058 3056 // state for exception handling to work correctly!
jrose@1058 3057
jrose@1058 3058 __ bind(no_such_method);
duke@435 3059 // throw exception
jrose@1058 3060 __ pop(rbx); // pop return address (pushed by prepare_invoke)
jrose@1058 3061 __ restore_bcp(); // r13 must be correct for exception handler (was destroyed)
jrose@1058 3062 __ restore_locals(); // make sure locals pointer is correct as well (was destroyed)
jrose@1058 3063 __ call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::throw_AbstractMethodError));
jrose@1058 3064 // the call_VM checks for exception, so we should never return here.
jrose@1058 3065 __ should_not_reach_here();
jrose@1058 3066
jrose@1058 3067 __ bind(no_such_interface);
jrose@1058 3068 // throw exception
jrose@1058 3069 __ pop(rbx); // pop return address (pushed by prepare_invoke)
jrose@1058 3070 __ restore_bcp(); // r13 must be correct for exception handler (was destroyed)
jrose@1058 3071 __ restore_locals(); // make sure locals pointer is correct as well (was destroyed)
duke@435 3072 __ call_VM(noreg, CAST_FROM_FN_PTR(address,
duke@435 3073 InterpreterRuntime::throw_IncompatibleClassChangeError));
duke@435 3074 // the call_VM checks for exception, so we should never return here.
duke@435 3075 __ should_not_reach_here();
jrose@1058 3076 return;
duke@435 3077 }
duke@435 3078
jrose@1161 3079 void TemplateTable::invokedynamic(int byte_no) {
jrose@1161 3080 transition(vtos, vtos);
jrose@1920 3081 assert(byte_no == f1_oop, "use this argument");
jrose@1161 3082
jrose@1161 3083 if (!EnableInvokeDynamic) {
jrose@1161 3084 // We should not encounter this bytecode if !EnableInvokeDynamic.
jrose@1161 3085 // The verifier will stop it. However, if we get past the verifier,
jrose@1161 3086 // this will stop the thread in a reasonable way, without crashing the JVM.
jrose@1161 3087 __ call_VM(noreg, CAST_FROM_FN_PTR(address,
jrose@1161 3088 InterpreterRuntime::throw_IncompatibleClassChangeError));
jrose@1161 3089 // the call_VM checks for exception, so we should never return here.
jrose@1161 3090 __ should_not_reach_here();
jrose@1161 3091 return;
jrose@1161 3092 }
jrose@1161 3093
jrose@1920 3094 assert(byte_no == f1_oop, "use this argument");
twisti@1543 3095 prepare_invoke(rax, rbx, byte_no);
twisti@1543 3096
twisti@1543 3097 // rax: CallSite object (f1)
twisti@1543 3098 // rbx: unused (f2)
twisti@1543 3099 // rcx: receiver address
twisti@1543 3100 // rdx: flags (unused)
twisti@1543 3101
twisti@1543 3102 if (ProfileInterpreter) {
twisti@1543 3103 Label L;
twisti@1543 3104 // %%% should make a type profile for any invokedynamic that takes a ref argument
twisti@1543 3105 // profile this call
twisti@1543 3106 __ profile_call(r13);
twisti@1543 3107 }
twisti@1543 3108
twisti@1543 3109 __ movptr(rcx, Address(rax, __ delayed_value(java_dyn_CallSite::target_offset_in_bytes, rcx)));
twisti@1543 3110 __ null_check(rcx);
twisti@1543 3111 __ prepare_to_jump_from_interpreted();
twisti@1543 3112 __ jump_to_method_handle_entry(rcx, rdx);
jrose@1161 3113 }
jrose@1161 3114
jrose@1058 3115
duke@435 3116 //-----------------------------------------------------------------------------
duke@435 3117 // Allocation
duke@435 3118
duke@435 3119 void TemplateTable::_new() {
duke@435 3120 transition(vtos, atos);
duke@435 3121 __ get_unsigned_2_byte_index_at_bcp(rdx, 1);
duke@435 3122 Label slow_case;
duke@435 3123 Label done;
duke@435 3124 Label initialize_header;
duke@435 3125 Label initialize_object; // including clearing the fields
duke@435 3126 Label allocate_shared;
duke@435 3127
duke@435 3128 __ get_cpool_and_tags(rsi, rax);
bobv@2036 3129 // Make sure the class we're about to instantiate has been resolved.
bobv@2036 3130 // This is done before loading instanceKlass to be consistent with the order
bobv@2036 3131 // how Constant Pool is updated (see constantPoolOopDesc::klass_at_put)
duke@435 3132 const int tags_offset = typeArrayOopDesc::header_size(T_BYTE) * wordSize;
duke@435 3133 __ cmpb(Address(rax, rdx, Address::times_1, tags_offset),
duke@435 3134 JVM_CONSTANT_Class);
duke@435 3135 __ jcc(Assembler::notEqual, slow_case);
duke@435 3136
bobv@2036 3137 // get instanceKlass
bobv@2036 3138 __ movptr(rsi, Address(rsi, rdx,
bobv@2036 3139 Address::times_8, sizeof(constantPoolOopDesc)));
bobv@2036 3140
duke@435 3141 // make sure klass is initialized & doesn't have finalizer
duke@435 3142 // make sure klass is fully initialized
duke@435 3143 __ cmpl(Address(rsi,
duke@435 3144 instanceKlass::init_state_offset_in_bytes() +
duke@435 3145 sizeof(oopDesc)),
duke@435 3146 instanceKlass::fully_initialized);
duke@435 3147 __ jcc(Assembler::notEqual, slow_case);
duke@435 3148
duke@435 3149 // get instance_size in instanceKlass (scaled to a count of bytes)
duke@435 3150 __ movl(rdx,
duke@435 3151 Address(rsi,
duke@435 3152 Klass::layout_helper_offset_in_bytes() + sizeof(oopDesc)));
duke@435 3153 // test to see if it has a finalizer or is malformed in some way
duke@435 3154 __ testl(rdx, Klass::_lh_instance_slow_path_bit);
duke@435 3155 __ jcc(Assembler::notZero, slow_case);
duke@435 3156
duke@435 3157 // Allocate the instance
duke@435 3158 // 1) Try to allocate in the TLAB
duke@435 3159 // 2) if fail and the object is large allocate in the shared Eden
duke@435 3160 // 3) if the above fails (or is not applicable), go to a slow case
duke@435 3161 // (creates a new TLAB, etc.)
duke@435 3162
duke@435 3163 const bool allow_shared_alloc =
duke@435 3164 Universe::heap()->supports_inline_contig_alloc() && !CMSIncrementalMode;
duke@435 3165
duke@435 3166 if (UseTLAB) {
never@739 3167 __ movptr(rax, Address(r15_thread, in_bytes(JavaThread::tlab_top_offset())));
never@739 3168 __ lea(rbx, Address(rax, rdx, Address::times_1));
never@739 3169 __ cmpptr(rbx, Address(r15_thread, in_bytes(JavaThread::tlab_end_offset())));
duke@435 3170 __ jcc(Assembler::above, allow_shared_alloc ? allocate_shared : slow_case);
never@739 3171 __ movptr(Address(r15_thread, in_bytes(JavaThread::tlab_top_offset())), rbx);
duke@435 3172 if (ZeroTLAB) {
duke@435 3173 // the fields have been already cleared
duke@435 3174 __ jmp(initialize_header);
duke@435 3175 } else {
duke@435 3176 // initialize both the header and fields
duke@435 3177 __ jmp(initialize_object);
duke@435 3178 }
duke@435 3179 }
duke@435 3180
duke@435 3181 // Allocation in the shared Eden, if allowed.
duke@435 3182 //
duke@435 3183 // rdx: instance size in bytes
duke@435 3184 if (allow_shared_alloc) {
duke@435 3185 __ bind(allocate_shared);
duke@435 3186
ysr@777 3187 ExternalAddress top((address)Universe::heap()->top_addr());
ysr@777 3188 ExternalAddress end((address)Universe::heap()->end_addr());
ysr@777 3189
duke@435 3190 const Register RtopAddr = rscratch1;
duke@435 3191 const Register RendAddr = rscratch2;
duke@435 3192
duke@435 3193 __ lea(RtopAddr, top);
duke@435 3194 __ lea(RendAddr, end);
never@739 3195 __ movptr(rax, Address(RtopAddr, 0));
duke@435 3196
duke@435 3197 // For retries rax gets set by cmpxchgq
duke@435 3198 Label retry;
duke@435 3199 __ bind(retry);
never@739 3200 __ lea(rbx, Address(rax, rdx, Address::times_1));
never@739 3201 __ cmpptr(rbx, Address(RendAddr, 0));
duke@435 3202 __ jcc(Assembler::above, slow_case);
duke@435 3203
duke@435 3204 // Compare rax with the top addr, and if still equal, store the new
duke@435 3205 // top addr in rbx at the address of the top addr pointer. Sets ZF if was
duke@435 3206 // equal, and clears it otherwise. Use lock prefix for atomicity on MPs.
duke@435 3207 //
duke@435 3208 // rax: object begin
duke@435 3209 // rbx: object end
duke@435 3210 // rdx: instance size in bytes
duke@435 3211 if (os::is_MP()) {
duke@435 3212 __ lock();
duke@435 3213 }
never@739 3214 __ cmpxchgptr(rbx, Address(RtopAddr, 0));
duke@435 3215
duke@435 3216 // if someone beat us on the allocation, try again, otherwise continue
duke@435 3217 __ jcc(Assembler::notEqual, retry);
duke@435 3218 }
duke@435 3219
duke@435 3220 if (UseTLAB || Universe::heap()->supports_inline_contig_alloc()) {
duke@435 3221 // The object is initialized before the header. If the object size is
duke@435 3222 // zero, go directly to the header initialization.
duke@435 3223 __ bind(initialize_object);
duke@435 3224 __ decrementl(rdx, sizeof(oopDesc));
duke@435 3225 __ jcc(Assembler::zero, initialize_header);
duke@435 3226
duke@435 3227 // Initialize object fields
duke@435 3228 __ xorl(rcx, rcx); // use zero reg to clear memory (shorter code)
duke@435 3229 __ shrl(rdx, LogBytesPerLong); // divide by oopSize to simplify the loop
duke@435 3230 {
duke@435 3231 Label loop;
duke@435 3232 __ bind(loop);
duke@435 3233 __ movq(Address(rax, rdx, Address::times_8,
duke@435 3234 sizeof(oopDesc) - oopSize),
duke@435 3235 rcx);
duke@435 3236 __ decrementl(rdx);
duke@435 3237 __ jcc(Assembler::notZero, loop);
duke@435 3238 }
duke@435 3239
duke@435 3240 // initialize object header only.
duke@435 3241 __ bind(initialize_header);
duke@435 3242 if (UseBiasedLocking) {
never@739 3243 __ movptr(rscratch1, Address(rsi, Klass::prototype_header_offset_in_bytes() + klassOopDesc::klass_part_offset_in_bytes()));
never@739 3244 __ movptr(Address(rax, oopDesc::mark_offset_in_bytes()), rscratch1);
duke@435 3245 } else {
duke@435 3246 __ movptr(Address(rax, oopDesc::mark_offset_in_bytes()),
duke@435 3247 (intptr_t) markOopDesc::prototype()); // header (address 0x1)
duke@435 3248 }
coleenp@602 3249 __ xorl(rcx, rcx); // use zero reg to clear memory (shorter code)
coleenp@602 3250 __ store_klass_gap(rax, rcx); // zero klass gap for compressed oops
coleenp@602 3251 __ store_klass(rax, rsi); // store klass last
kamg@1683 3252
kamg@1683 3253 {
kamg@1683 3254 SkipIfEqual skip(_masm, &DTraceAllocProbes, false);
kamg@1683 3255 // Trigger dtrace event for fastpath
kamg@1683 3256 __ push(atos); // save the return value
kamg@1683 3257 __ call_VM_leaf(
kamg@1683 3258 CAST_FROM_FN_PTR(address, SharedRuntime::dtrace_object_alloc), rax);
kamg@1683 3259 __ pop(atos); // restore the return value
kamg@1683 3260
kamg@1683 3261 }
duke@435 3262 __ jmp(done);
duke@435 3263 }
duke@435 3264
duke@435 3265
duke@435 3266 // slow case
duke@435 3267 __ bind(slow_case);
duke@435 3268 __ get_constant_pool(c_rarg1);
duke@435 3269 __ get_unsigned_2_byte_index_at_bcp(c_rarg2, 1);
duke@435 3270 call_VM(rax, CAST_FROM_FN_PTR(address, InterpreterRuntime::_new), c_rarg1, c_rarg2);
duke@435 3271 __ verify_oop(rax);
duke@435 3272
duke@435 3273 // continue
duke@435 3274 __ bind(done);
duke@435 3275 }
duke@435 3276
duke@435 3277 void TemplateTable::newarray() {
duke@435 3278 transition(itos, atos);
duke@435 3279 __ load_unsigned_byte(c_rarg1, at_bcp(1));
duke@435 3280 __ movl(c_rarg2, rax);
duke@435 3281 call_VM(rax, CAST_FROM_FN_PTR(address, InterpreterRuntime::newarray),
duke@435 3282 c_rarg1, c_rarg2);
duke@435 3283 }
duke@435 3284
duke@435 3285 void TemplateTable::anewarray() {
duke@435 3286 transition(itos, atos);
duke@435 3287 __ get_unsigned_2_byte_index_at_bcp(c_rarg2, 1);
duke@435 3288 __ get_constant_pool(c_rarg1);
duke@435 3289 __ movl(c_rarg3, rax);
duke@435 3290 call_VM(rax, CAST_FROM_FN_PTR(address, InterpreterRuntime::anewarray),
duke@435 3291 c_rarg1, c_rarg2, c_rarg3);
duke@435 3292 }
duke@435 3293
duke@435 3294 void TemplateTable::arraylength() {
duke@435 3295 transition(atos, itos);
duke@435 3296 __ null_check(rax, arrayOopDesc::length_offset_in_bytes());
duke@435 3297 __ movl(rax, Address(rax, arrayOopDesc::length_offset_in_bytes()));
duke@435 3298 }
duke@435 3299
duke@435 3300 void TemplateTable::checkcast() {
duke@435 3301 transition(atos, atos);
duke@435 3302 Label done, is_null, ok_is_subtype, quicked, resolved;
never@739 3303 __ testptr(rax, rax); // object is in rax
duke@435 3304 __ jcc(Assembler::zero, is_null);
duke@435 3305
duke@435 3306 // Get cpool & tags index
duke@435 3307 __ get_cpool_and_tags(rcx, rdx); // rcx=cpool, rdx=tags array
duke@435 3308 __ get_unsigned_2_byte_index_at_bcp(rbx, 1); // rbx=index
duke@435 3309 // See if bytecode has already been quicked
duke@435 3310 __ cmpb(Address(rdx, rbx,
duke@435 3311 Address::times_1,
duke@435 3312 typeArrayOopDesc::header_size(T_BYTE) * wordSize),
duke@435 3313 JVM_CONSTANT_Class);
duke@435 3314 __ jcc(Assembler::equal, quicked);
coleenp@548 3315 __ push(atos); // save receiver for result, and for GC
never@739 3316 __ mov(r12, rcx); // save rcx XXX
duke@435 3317 call_VM(rax, CAST_FROM_FN_PTR(address, InterpreterRuntime::quicken_io_cc));
coleenp@548 3318 __ movq(rcx, r12); // restore rcx XXX
coleenp@548 3319 __ reinit_heapbase();
duke@435 3320 __ pop_ptr(rdx); // restore receiver
duke@435 3321 __ jmpb(resolved);
duke@435 3322
duke@435 3323 // Get superklass in rax and subklass in rbx
duke@435 3324 __ bind(quicked);
never@739 3325 __ mov(rdx, rax); // Save object in rdx; rax needed for subtype check
never@739 3326 __ movptr(rax, Address(rcx, rbx,
duke@435 3327 Address::times_8, sizeof(constantPoolOopDesc)));
duke@435 3328
duke@435 3329 __ bind(resolved);
coleenp@548 3330 __ load_klass(rbx, rdx);
duke@435 3331
duke@435 3332 // Generate subtype check. Blows rcx, rdi. Object in rdx.
duke@435 3333 // Superklass in rax. Subklass in rbx.
duke@435 3334 __ gen_subtype_check(rbx, ok_is_subtype);
duke@435 3335
duke@435 3336 // Come here on failure
duke@435 3337 __ push_ptr(rdx);
duke@435 3338 // object is at TOS
duke@435 3339 __ jump(ExternalAddress(Interpreter::_throw_ClassCastException_entry));
duke@435 3340
duke@435 3341 // Come here on success
duke@435 3342 __ bind(ok_is_subtype);
never@739 3343 __ mov(rax, rdx); // Restore object in rdx
duke@435 3344
duke@435 3345 // Collect counts on whether this check-cast sees NULLs a lot or not.
duke@435 3346 if (ProfileInterpreter) {
duke@435 3347 __ jmp(done);
duke@435 3348 __ bind(is_null);
duke@435 3349 __ profile_null_seen(rcx);
duke@435 3350 } else {
duke@435 3351 __ bind(is_null); // same as 'done'
duke@435 3352 }
duke@435 3353 __ bind(done);
duke@435 3354 }
duke@435 3355
duke@435 3356 void TemplateTable::instanceof() {
duke@435 3357 transition(atos, itos);
duke@435 3358 Label done, is_null, ok_is_subtype, quicked, resolved;
never@739 3359 __ testptr(rax, rax);
duke@435 3360 __ jcc(Assembler::zero, is_null);
duke@435 3361
duke@435 3362 // Get cpool & tags index
duke@435 3363 __ get_cpool_and_tags(rcx, rdx); // rcx=cpool, rdx=tags array
duke@435 3364 __ get_unsigned_2_byte_index_at_bcp(rbx, 1); // rbx=index
duke@435 3365 // See if bytecode has already been quicked
duke@435 3366 __ cmpb(Address(rdx, rbx,
duke@435 3367 Address::times_1,
duke@435 3368 typeArrayOopDesc::header_size(T_BYTE) * wordSize),
duke@435 3369 JVM_CONSTANT_Class);
duke@435 3370 __ jcc(Assembler::equal, quicked);
duke@435 3371
coleenp@548 3372 __ push(atos); // save receiver for result, and for GC
never@739 3373 __ mov(r12, rcx); // save rcx
duke@435 3374 call_VM(rax, CAST_FROM_FN_PTR(address, InterpreterRuntime::quicken_io_cc));
coleenp@548 3375 __ movq(rcx, r12); // restore rcx
coleenp@548 3376 __ reinit_heapbase();
duke@435 3377 __ pop_ptr(rdx); // restore receiver
coleenp@548 3378 __ load_klass(rdx, rdx);
duke@435 3379 __ jmpb(resolved);
duke@435 3380
duke@435 3381 // Get superklass in rax and subklass in rdx
duke@435 3382 __ bind(quicked);
coleenp@548 3383 __ load_klass(rdx, rax);
never@739 3384 __ movptr(rax, Address(rcx, rbx,
never@739 3385 Address::times_8, sizeof(constantPoolOopDesc)));
duke@435 3386
duke@435 3387 __ bind(resolved);
duke@435 3388
duke@435 3389 // Generate subtype check. Blows rcx, rdi
duke@435 3390 // Superklass in rax. Subklass in rdx.
duke@435 3391 __ gen_subtype_check(rdx, ok_is_subtype);
duke@435 3392
duke@435 3393 // Come here on failure
duke@435 3394 __ xorl(rax, rax);
duke@435 3395 __ jmpb(done);
duke@435 3396 // Come here on success
duke@435 3397 __ bind(ok_is_subtype);
duke@435 3398 __ movl(rax, 1);
duke@435 3399
duke@435 3400 // Collect counts on whether this test sees NULLs a lot or not.
duke@435 3401 if (ProfileInterpreter) {
duke@435 3402 __ jmp(done);
duke@435 3403 __ bind(is_null);
duke@435 3404 __ profile_null_seen(rcx);
duke@435 3405 } else {
duke@435 3406 __ bind(is_null); // same as 'done'
duke@435 3407 }
duke@435 3408 __ bind(done);
duke@435 3409 // rax = 0: obj == NULL or obj is not an instanceof the specified klass
duke@435 3410 // rax = 1: obj != NULL and obj is an instanceof the specified klass
duke@435 3411 }
duke@435 3412
duke@435 3413 //-----------------------------------------------------------------------------
duke@435 3414 // Breakpoints
duke@435 3415 void TemplateTable::_breakpoint() {
duke@435 3416 // Note: We get here even if we are single stepping..
duke@435 3417 // jbug inists on setting breakpoints at every bytecode
duke@435 3418 // even if we are in single step mode.
duke@435 3419
duke@435 3420 transition(vtos, vtos);
duke@435 3421
duke@435 3422 // get the unpatched byte code
duke@435 3423 __ get_method(c_rarg1);
duke@435 3424 __ call_VM(noreg,
duke@435 3425 CAST_FROM_FN_PTR(address,
duke@435 3426 InterpreterRuntime::get_original_bytecode_at),
duke@435 3427 c_rarg1, r13);
never@739 3428 __ mov(rbx, rax);
duke@435 3429
duke@435 3430 // post the breakpoint event
duke@435 3431 __ get_method(c_rarg1);
duke@435 3432 __ call_VM(noreg,
duke@435 3433 CAST_FROM_FN_PTR(address, InterpreterRuntime::_breakpoint),
duke@435 3434 c_rarg1, r13);
duke@435 3435
duke@435 3436 // complete the execution of original bytecode
duke@435 3437 __ dispatch_only_normal(vtos);
duke@435 3438 }
duke@435 3439
duke@435 3440 //-----------------------------------------------------------------------------
duke@435 3441 // Exceptions
duke@435 3442
duke@435 3443 void TemplateTable::athrow() {
duke@435 3444 transition(atos, vtos);
duke@435 3445 __ null_check(rax);
duke@435 3446 __ jump(ExternalAddress(Interpreter::throw_exception_entry()));
duke@435 3447 }
duke@435 3448
duke@435 3449 //-----------------------------------------------------------------------------
duke@435 3450 // Synchronization
duke@435 3451 //
duke@435 3452 // Note: monitorenter & exit are symmetric routines; which is reflected
duke@435 3453 // in the assembly code structure as well
duke@435 3454 //
duke@435 3455 // Stack layout:
duke@435 3456 //
duke@435 3457 // [expressions ] <--- rsp = expression stack top
duke@435 3458 // ..
duke@435 3459 // [expressions ]
duke@435 3460 // [monitor entry] <--- monitor block top = expression stack bot
duke@435 3461 // ..
duke@435 3462 // [monitor entry]
duke@435 3463 // [frame data ] <--- monitor block bot
duke@435 3464 // ...
duke@435 3465 // [saved rbp ] <--- rbp
duke@435 3466 void TemplateTable::monitorenter() {
duke@435 3467 transition(atos, vtos);
duke@435 3468
duke@435 3469 // check for NULL object
duke@435 3470 __ null_check(rax);
duke@435 3471
duke@435 3472 const Address monitor_block_top(
duke@435 3473 rbp, frame::interpreter_frame_monitor_block_top_offset * wordSize);
duke@435 3474 const Address monitor_block_bot(
duke@435 3475 rbp, frame::interpreter_frame_initial_sp_offset * wordSize);
duke@435 3476 const int entry_size = frame::interpreter_frame_monitor_size() * wordSize;
duke@435 3477
duke@435 3478 Label allocated;
duke@435 3479
duke@435 3480 // initialize entry pointer
duke@435 3481 __ xorl(c_rarg1, c_rarg1); // points to free slot or NULL
duke@435 3482
duke@435 3483 // find a free slot in the monitor block (result in c_rarg1)
duke@435 3484 {
duke@435 3485 Label entry, loop, exit;
never@739 3486 __ movptr(c_rarg3, monitor_block_top); // points to current entry,
duke@435 3487 // starting with top-most entry
never@739 3488 __ lea(c_rarg2, monitor_block_bot); // points to word before bottom
duke@435 3489 // of monitor block
duke@435 3490 __ jmpb(entry);
duke@435 3491
duke@435 3492 __ bind(loop);
duke@435 3493 // check if current entry is used
never@739 3494 __ cmpptr(Address(c_rarg3, BasicObjectLock::obj_offset_in_bytes()), (int32_t) NULL_WORD);
duke@435 3495 // if not used then remember entry in c_rarg1
never@739 3496 __ cmov(Assembler::equal, c_rarg1, c_rarg3);
duke@435 3497 // check if current entry is for same object
never@739 3498 __ cmpptr(rax, Address(c_rarg3, BasicObjectLock::obj_offset_in_bytes()));
duke@435 3499 // if same object then stop searching
duke@435 3500 __ jccb(Assembler::equal, exit);
duke@435 3501 // otherwise advance to next entry
never@739 3502 __ addptr(c_rarg3, entry_size);
duke@435 3503 __ bind(entry);
duke@435 3504 // check if bottom reached
never@739 3505 __ cmpptr(c_rarg3, c_rarg2);
duke@435 3506 // if not at bottom then check this entry
duke@435 3507 __ jcc(Assembler::notEqual, loop);
duke@435 3508 __ bind(exit);
duke@435 3509 }
duke@435 3510
never@739 3511 __ testptr(c_rarg1, c_rarg1); // check if a slot has been found
duke@435 3512 __ jcc(Assembler::notZero, allocated); // if found, continue with that one
duke@435 3513
duke@435 3514 // allocate one if there's no free slot
duke@435 3515 {
duke@435 3516 Label entry, loop;
never@739 3517 // 1. compute new pointers // rsp: old expression stack top
never@739 3518 __ movptr(c_rarg1, monitor_block_bot); // c_rarg1: old expression stack bottom
never@739 3519 __ subptr(rsp, entry_size); // move expression stack top
never@739 3520 __ subptr(c_rarg1, entry_size); // move expression stack bottom
never@739 3521 __ mov(c_rarg3, rsp); // set start value for copy loop
never@739 3522 __ movptr(monitor_block_bot, c_rarg1); // set new monitor block bottom
duke@435 3523 __ jmp(entry);
duke@435 3524 // 2. move expression stack contents
duke@435 3525 __ bind(loop);
never@739 3526 __ movptr(c_rarg2, Address(c_rarg3, entry_size)); // load expression stack
never@739 3527 // word from old location
never@739 3528 __ movptr(Address(c_rarg3, 0), c_rarg2); // and store it at new location
never@739 3529 __ addptr(c_rarg3, wordSize); // advance to next word
duke@435 3530 __ bind(entry);
never@739 3531 __ cmpptr(c_rarg3, c_rarg1); // check if bottom reached
duke@435 3532 __ jcc(Assembler::notEqual, loop); // if not at bottom then
duke@435 3533 // copy next word
duke@435 3534 }
duke@435 3535
duke@435 3536 // call run-time routine
duke@435 3537 // c_rarg1: points to monitor entry
duke@435 3538 __ bind(allocated);
duke@435 3539
duke@435 3540 // Increment bcp to point to the next bytecode, so exception
duke@435 3541 // handling for async. exceptions work correctly.
duke@435 3542 // The object has already been poped from the stack, so the
duke@435 3543 // expression stack looks correct.
never@739 3544 __ increment(r13);
duke@435 3545
duke@435 3546 // store object
never@739 3547 __ movptr(Address(c_rarg1, BasicObjectLock::obj_offset_in_bytes()), rax);
duke@435 3548 __ lock_object(c_rarg1);
duke@435 3549
duke@435 3550 // check to make sure this monitor doesn't cause stack overflow after locking
duke@435 3551 __ save_bcp(); // in case of exception
duke@435 3552 __ generate_stack_overflow_check(0);
duke@435 3553
duke@435 3554 // The bcp has already been incremented. Just need to dispatch to
duke@435 3555 // next instruction.
duke@435 3556 __ dispatch_next(vtos);
duke@435 3557 }
duke@435 3558
duke@435 3559
duke@435 3560 void TemplateTable::monitorexit() {
duke@435 3561 transition(atos, vtos);
duke@435 3562
duke@435 3563 // check for NULL object
duke@435 3564 __ null_check(rax);
duke@435 3565
duke@435 3566 const Address monitor_block_top(
duke@435 3567 rbp, frame::interpreter_frame_monitor_block_top_offset * wordSize);
duke@435 3568 const Address monitor_block_bot(
duke@435 3569 rbp, frame::interpreter_frame_initial_sp_offset * wordSize);
duke@435 3570 const int entry_size = frame::interpreter_frame_monitor_size() * wordSize;
duke@435 3571
duke@435 3572 Label found;
duke@435 3573
duke@435 3574 // find matching slot
duke@435 3575 {
duke@435 3576 Label entry, loop;
never@739 3577 __ movptr(c_rarg1, monitor_block_top); // points to current entry,
duke@435 3578 // starting with top-most entry
never@739 3579 __ lea(c_rarg2, monitor_block_bot); // points to word before bottom
duke@435 3580 // of monitor block
duke@435 3581 __ jmpb(entry);
duke@435 3582
duke@435 3583 __ bind(loop);
duke@435 3584 // check if current entry is for same object
never@739 3585 __ cmpptr(rax, Address(c_rarg1, BasicObjectLock::obj_offset_in_bytes()));
duke@435 3586 // if same object then stop searching
duke@435 3587 __ jcc(Assembler::equal, found);
duke@435 3588 // otherwise advance to next entry
never@739 3589 __ addptr(c_rarg1, entry_size);
duke@435 3590 __ bind(entry);
duke@435 3591 // check if bottom reached
never@739 3592 __ cmpptr(c_rarg1, c_rarg2);
duke@435 3593 // if not at bottom then check this entry
duke@435 3594 __ jcc(Assembler::notEqual, loop);
duke@435 3595 }
duke@435 3596
duke@435 3597 // error handling. Unlocking was not block-structured
duke@435 3598 __ call_VM(noreg, CAST_FROM_FN_PTR(address,
duke@435 3599 InterpreterRuntime::throw_illegal_monitor_state_exception));
duke@435 3600 __ should_not_reach_here();
duke@435 3601
duke@435 3602 // call run-time routine
duke@435 3603 // rsi: points to monitor entry
duke@435 3604 __ bind(found);
duke@435 3605 __ push_ptr(rax); // make sure object is on stack (contract with oopMaps)
duke@435 3606 __ unlock_object(c_rarg1);
duke@435 3607 __ pop_ptr(rax); // discard object
duke@435 3608 }
duke@435 3609
duke@435 3610
duke@435 3611 // Wide instructions
duke@435 3612 void TemplateTable::wide() {
duke@435 3613 transition(vtos, vtos);
duke@435 3614 __ load_unsigned_byte(rbx, at_bcp(1));
duke@435 3615 __ lea(rscratch1, ExternalAddress((address)Interpreter::_wentry_point));
duke@435 3616 __ jmp(Address(rscratch1, rbx, Address::times_8));
duke@435 3617 // Note: the r13 increment step is part of the individual wide
duke@435 3618 // bytecode implementations
duke@435 3619 }
duke@435 3620
duke@435 3621
duke@435 3622 // Multi arrays
duke@435 3623 void TemplateTable::multianewarray() {
duke@435 3624 transition(vtos, atos);
duke@435 3625 __ load_unsigned_byte(rax, at_bcp(3)); // get number of dimensions
duke@435 3626 // last dim is on top of stack; we want address of first one:
duke@435 3627 // first_addr = last_addr + (ndims - 1) * wordSize
never@739 3628 __ lea(c_rarg1, Address(rsp, rax, Address::times_8, -wordSize));
duke@435 3629 call_VM(rax,
duke@435 3630 CAST_FROM_FN_PTR(address, InterpreterRuntime::multianewarray),
duke@435 3631 c_rarg1);
duke@435 3632 __ load_unsigned_byte(rbx, at_bcp(3));
never@739 3633 __ lea(rsp, Address(rsp, rbx, Address::times_8));
duke@435 3634 }
never@739 3635 #endif // !CC_INTERP

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