src/cpu/mips/vm/stubGenerator_mips_64.cpp

Fri, 29 Apr 2016 00:06:10 +0800

author
aoqi
date
Fri, 29 Apr 2016 00:06:10 +0800
changeset 1
2d8a650513c2
child 7
e26ad49b7194
permissions
-rw-r--r--

Added MIPS 64-bit port.

aoqi@1 1 /*
aoqi@1 2 * Copyright (c) 2003, 2013, Oracle and/or its affiliates. All rights reserved.
aoqi@1 3 * Copyright (c) 2015, 2016, Loongson Technology. All rights reserved.
aoqi@1 4 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
aoqi@1 5 *
aoqi@1 6 * This code is free software; you can redistribute it and/or modify it
aoqi@1 7 * under the terms of the GNU General Public License version 2 only, as
aoqi@1 8 * published by the Free Software Foundation.
aoqi@1 9 *
aoqi@1 10 * This code is distributed in the hope that it will be useful, but WITHOUT
aoqi@1 11 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
aoqi@1 12 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
aoqi@1 13 * version 2 for more details (a copy is included in the LICENSE file that
aoqi@1 14 * accompanied this code).
aoqi@1 15 *
aoqi@1 16 * You should have received a copy of the GNU General Public License version
aoqi@1 17 * 2 along with this work; if not, write to the Free Software Foundation,
aoqi@1 18 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
aoqi@1 19 *
aoqi@1 20 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
aoqi@1 21 * or visit www.oracle.com if you need additional information or have any
aoqi@1 22 * questions.
aoqi@1 23 *
aoqi@1 24 */
aoqi@1 25
aoqi@1 26 #include "precompiled.hpp"
aoqi@1 27 #include "asm/macroAssembler.hpp"
aoqi@1 28 #include "asm/macroAssembler.inline.hpp"
aoqi@1 29 #include "interpreter/interpreter.hpp"
aoqi@1 30 #include "nativeInst_mips.hpp"
aoqi@1 31 #include "oops/instanceOop.hpp"
aoqi@1 32 #include "oops/method.hpp"
aoqi@1 33 #include "oops/objArrayKlass.hpp"
aoqi@1 34 #include "oops/oop.inline.hpp"
aoqi@1 35 #include "prims/methodHandles.hpp"
aoqi@1 36 #include "runtime/frame.inline.hpp"
aoqi@1 37 #include "runtime/handles.inline.hpp"
aoqi@1 38 #include "runtime/sharedRuntime.hpp"
aoqi@1 39 #include "runtime/stubCodeGenerator.hpp"
aoqi@1 40 #include "runtime/stubRoutines.hpp"
aoqi@1 41 #include "runtime/thread.inline.hpp"
aoqi@1 42 #include "utilities/top.hpp"
aoqi@1 43 #ifdef COMPILER2
aoqi@1 44 #include "opto/runtime.hpp"
aoqi@1 45 #endif
aoqi@1 46
aoqi@1 47
aoqi@1 48 // Declaration and definition of StubGenerator (no .hpp file).
aoqi@1 49 // For a more detailed description of the stub routine structure
aoqi@1 50 // see the comment in stubRoutines.hpp
aoqi@1 51
aoqi@1 52 #define __ _masm->
aoqi@1 53 //#define TIMES_OOP (UseCompressedOops ? Address::times_4 : Address::times_8)
aoqi@1 54 //#define a__ ((Assembler*)_masm)->
aoqi@1 55
aoqi@1 56 //#ifdef PRODUCT
aoqi@1 57 //#define BLOCK_COMMENT(str) /* nothing */
aoqi@1 58 //#else
aoqi@1 59 //#define BLOCK_COMMENT(str) __ block_comment(str)
aoqi@1 60 //#endif
aoqi@1 61
aoqi@1 62 //#define BIND(label) bind(label); BLOCK_COMMENT(#label ":")
aoqi@1 63 const int MXCSR_MASK = 0xFFC0; // Mask out any pending exceptions
aoqi@1 64
aoqi@1 65 // Stub Code definitions
aoqi@1 66
aoqi@1 67 static address handle_unsafe_access() {
aoqi@1 68 JavaThread* thread = JavaThread::current();
aoqi@1 69 address pc = thread->saved_exception_pc();
aoqi@1 70 // pc is the instruction which we must emulate
aoqi@1 71 // doing a no-op is fine: return garbage from the load
aoqi@1 72 // therefore, compute npc
aoqi@1 73 //address npc = Assembler::locate_next_instruction(pc);
aoqi@1 74 address npc = (address)((unsigned long)pc + sizeof(unsigned long));
aoqi@1 75
aoqi@1 76 // request an async exception
aoqi@1 77 thread->set_pending_unsafe_access_error();
aoqi@1 78
aoqi@1 79 // return address of next instruction to execute
aoqi@1 80 return npc;
aoqi@1 81 }
aoqi@1 82
aoqi@1 83 class StubGenerator: public StubCodeGenerator {
aoqi@1 84 private:
aoqi@1 85
aoqi@1 86 // ABI mips n64
aoqi@1 87 // This fig is not MIPS ABI. It is call Java from C ABI.
aoqi@1 88 // Call stubs are used to call Java from C
aoqi@1 89 //
aoqi@1 90 // [ return_from_Java ]
aoqi@1 91 // [ argument word n-1 ] <--- sp
aoqi@1 92 // ...
aoqi@1 93 // [ argument word 0 ]
aoqi@1 94 // ...
aoqi@1 95 //-10 [ S6 ]
aoqi@1 96 // -9 [ S5 ]
aoqi@1 97 // -8 [ S4 ]
aoqi@1 98 // -7 [ S3 ]
aoqi@1 99 // -6 [ S0 ]
aoqi@1 100 // -5 [ TSR(S2) ]
aoqi@1 101 // -4 [ LVP(S7) ]
aoqi@1 102 // -3 [ BCP(S1) ]
aoqi@1 103 // -2 [ saved fp ] <--- fp_after_call
aoqi@1 104 // -1 [ return address ]
aoqi@1 105 // 0 [ ptr. to call wrapper ] <--- a0 (old sp -->)fp
aoqi@1 106 // 1 [ result ] <--- a1
aoqi@1 107 // 2 [ result_type ] <--- a2
aoqi@1 108 // 3 [ method ] <--- a3
aoqi@1 109 // 4 [ entry_point ] <--- a4
aoqi@1 110 // 5 [ parameters ] <--- a5
aoqi@1 111 // 6 [ parameter_size ] <--- a6
aoqi@1 112 // 7 [ thread ] <--- a7
aoqi@1 113
aoqi@1 114 //
aoqi@1 115 // _LP64: n64 does not save paras in sp.
aoqi@1 116 //
aoqi@1 117 // [ return_from_Java ]
aoqi@1 118 // [ argument word n-1 ] <--- sp
aoqi@1 119 // ...
aoqi@1 120 // [ argument word 0 ]
aoqi@1 121 // ...
aoqi@1 122 //-14 [ thread ]
aoqi@1 123 //-13 [ result_type ] <--- a2
aoqi@1 124 //-12 [ result ] <--- a1
aoqi@1 125 //-11 [ ptr. to call wrapper ] <--- a0
aoqi@1 126 //-10 [ S6 ]
aoqi@1 127 // -9 [ S5 ]
aoqi@1 128 // -8 [ S4 ]
aoqi@1 129 // -7 [ S3 ]
aoqi@1 130 // -6 [ S0 ]
aoqi@1 131 // -5 [ TSR(S2) ]
aoqi@1 132 // -4 [ LVP(S7) ]
aoqi@1 133 // -3 [ BCP(S1) ]
aoqi@1 134 // -2 [ saved fp ] <--- fp_after_call
aoqi@1 135 // -1 [ return address ]
aoqi@1 136 // 0 [ ] <--- old sp
aoqi@1 137 /*
aoqi@1 138 * 2014/01/16 Fu: Find a right place in the call_stub for GP.
aoqi@1 139 * GP will point to the starting point of Interpreter::dispatch_table(itos).
aoqi@1 140 * It should be saved/restored before/after Java calls.
aoqi@1 141 *
aoqi@1 142 */
aoqi@1 143 enum call_stub_layout {
aoqi@1 144 RA_off = -1,
aoqi@1 145 FP_off = -2,
aoqi@1 146 BCP_off = -3,
aoqi@1 147 LVP_off = -4,
aoqi@1 148 TSR_off = -5,
aoqi@1 149 S1_off = -6,
aoqi@1 150 S3_off = -7,
aoqi@1 151 S4_off = -8,
aoqi@1 152 S5_off = -9,
aoqi@1 153 S6_off = -10,
aoqi@1 154 result_off = -11,
aoqi@1 155 result_type_off = -12,
aoqi@1 156 thread_off = -13,
aoqi@1 157 total_off = thread_off - 3,
aoqi@1 158 GP_off = -16,
aoqi@1 159 };
aoqi@1 160
aoqi@1 161 address generate_call_stub(address& return_address) {
aoqi@1 162
aoqi@1 163 StubCodeMark mark(this, "StubRoutines", "call_stub");
aoqi@1 164 address start = __ pc();
aoqi@1 165
aoqi@1 166 // same as in generate_catch_exception()!
aoqi@1 167
aoqi@1 168 // stub code
aoqi@1 169 // save ra and fp
aoqi@1 170 __ sd(RA, SP, RA_off * wordSize);
aoqi@1 171 __ sd(FP, SP, FP_off * wordSize);
aoqi@1 172 __ sd(BCP, SP, BCP_off * wordSize);
aoqi@1 173 __ sd(LVP, SP, LVP_off * wordSize);
aoqi@1 174 __ sd(GP, SP, GP_off * wordSize);
aoqi@1 175 __ sd(TSR, SP, TSR_off * wordSize);
aoqi@1 176 __ sd(S1, SP, S1_off * wordSize);
aoqi@1 177 __ sd(S3, SP, S3_off * wordSize);
aoqi@1 178 __ sd(S4, SP, S4_off * wordSize);
aoqi@1 179 __ sd(S5, SP, S5_off * wordSize);
aoqi@1 180 __ sd(S6, SP, S6_off * wordSize);
aoqi@1 181
aoqi@1 182
aoqi@1 183 __ li48(GP, (long)Interpreter::dispatch_table(itos));
aoqi@1 184
aoqi@1 185 // I think 14 is the max gap between argument and callee saved register
aoqi@1 186 __ daddi(FP, SP, (-2) * wordSize);
aoqi@1 187 __ daddi(SP, SP, total_off * wordSize);
aoqi@1 188 //FIXME, aoqi. find a suitable place to save A1 & A2.
aoqi@1 189 /*
aoqi@1 190 __ sd(A0, FP, frame::entry_frame_call_wrapper_offset * wordSize);
aoqi@1 191 __ sd(A1, FP, 3 * wordSize);
aoqi@1 192 __ sd(A2, FP, 4 * wordSize);
aoqi@1 193 __ sd(A3, FP, 5 * wordSize);
aoqi@1 194 __ sd(A4, FP, 6 * wordSize);
aoqi@1 195 __ sd(A5, FP, 7 * wordSize);
aoqi@1 196 __ sd(A6, FP, 8 * wordSize);
aoqi@1 197 __ sd(A7, FP, 9 * wordSize);
aoqi@1 198 */
aoqi@1 199 __ sd(A0, FP, frame::entry_frame_call_wrapper_offset * wordSize);
aoqi@1 200 __ sd(A1, FP, result_off * wordSize);
aoqi@1 201 __ sd(A2, FP, result_type_off * wordSize);
aoqi@1 202 __ sd(A7, FP, thread_off * wordSize);
aoqi@1 203
aoqi@1 204 #ifdef OPT_THREAD
aoqi@1 205 //__ get_thread(TREG);
aoqi@1 206 __ move(TREG, A7);
aoqi@1 207
aoqi@1 208 //__ ld(TREG, FP, thread_off * wordSize);
aoqi@1 209 #endif
aoqi@1 210 //add for compressedoops
aoqi@1 211 __ reinit_heapbase();
aoqi@1 212
aoqi@1 213 #ifdef ASSERT
aoqi@1 214 // make sure we have no pending exceptions
aoqi@1 215 {
aoqi@1 216 Label L;
aoqi@1 217 __ ld(AT, A7, in_bytes(Thread::pending_exception_offset()));
aoqi@1 218 __ beq(AT, R0, L);
aoqi@1 219 __ delayed()->nop();
aoqi@1 220 /* FIXME: I do not know how to realize stop in mips arch, do it in the future */
aoqi@1 221 __ stop("StubRoutines::call_stub: entered with pending exception");
aoqi@1 222 __ bind(L);
aoqi@1 223 }
aoqi@1 224 #endif
aoqi@1 225
aoqi@1 226 // pass parameters if any
aoqi@1 227 // A5: parameter
aoqi@1 228 // A6: parameter_size
aoqi@1 229 // T0: parameter_size_tmp(--)
aoqi@1 230 // T2: offset(++)
aoqi@1 231 // T3: tmp
aoqi@1 232 Label parameters_done;
aoqi@1 233 // judge if the parameter_size equals 0
aoqi@1 234 __ beq(A6, R0, parameters_done);
aoqi@1 235 __ delayed()->nop();
aoqi@1 236 __ dsll(AT, A6, Interpreter::logStackElementSize);
aoqi@1 237 __ dsub(SP, SP, AT);
aoqi@1 238 __ move(AT, -StackAlignmentInBytes);
aoqi@1 239 __ andr(SP, SP , AT);
aoqi@1 240 // Copy Java parameters in reverse order (receiver last)
aoqi@1 241 // Note that the argument order is inverted in the process
aoqi@1 242 // source is edx[ecx: N-1..0]
aoqi@1 243 // dest is esp[ebx: 0..N-1]
aoqi@1 244 Label loop;
aoqi@1 245 __ move(T0, A6);
aoqi@1 246 __ move(T2, R0);
aoqi@1 247 __ bind(loop);
aoqi@1 248
aoqi@1 249 // get parameter
aoqi@1 250 __ dsll(T3, T0, LogBytesPerWord);
aoqi@1 251 __ dadd(T3, T3, A5);
aoqi@1 252 __ ld(AT, T3, -wordSize);
aoqi@1 253 __ dsll(T3, T2, LogBytesPerWord);
aoqi@1 254 __ dadd(T3, T3, SP);
aoqi@1 255 __ sd(AT, T3, Interpreter::expr_offset_in_bytes(0));
aoqi@1 256 __ daddi(T2, T2, 1);
aoqi@1 257 __ daddi(T0, T0, -1);
aoqi@1 258 __ bne(T0, R0, loop);
aoqi@1 259 __ delayed()->nop();
aoqi@1 260 // advance to next parameter
aoqi@1 261
aoqi@1 262 // call Java function
aoqi@1 263 __ bind(parameters_done);
aoqi@1 264
aoqi@1 265 // receiver in V0, methodOop in Rmethod
aoqi@1 266
aoqi@1 267 __ move(Rmethod, A3);
aoqi@1 268 __ move(Rsender, SP); //set sender sp
aoqi@1 269 __ jalr(A4);
aoqi@1 270 __ delayed()->nop();
aoqi@1 271 return_address = __ pc();
aoqi@1 272
aoqi@1 273 Label common_return;
aoqi@1 274 __ bind(common_return);
aoqi@1 275
aoqi@1 276 // store result depending on type
aoqi@1 277 // (everything that is not T_LONG, T_FLOAT or T_DOUBLE is treated as T_INT)
aoqi@1 278 __ ld(T0, FP, result_off * wordSize); // result --> T0
aoqi@1 279 Label is_long, is_float, is_double, exit;
aoqi@1 280 __ ld(T2, FP, result_type_off * wordSize); // result_type --> T2
aoqi@1 281 __ daddi(T3, T2, (-1) * T_LONG);
aoqi@1 282 __ beq(T3, R0, is_long);
aoqi@1 283 __ delayed()->daddi(T3, T2, (-1) * T_FLOAT);
aoqi@1 284 __ beq(T3, R0, is_float);
aoqi@1 285 __ delayed()->daddi(T3, T2, (-1) * T_DOUBLE);
aoqi@1 286 __ beq(T3, R0, is_double);
aoqi@1 287 __ delayed()->nop();
aoqi@1 288
aoqi@1 289 // handle T_INT case
aoqi@1 290 __ sd(V0, T0, 0 * wordSize);
aoqi@1 291 __ bind(exit);
aoqi@1 292
aoqi@1 293 // restore
aoqi@1 294 __ daddi(SP, FP, 2 * wordSize );
aoqi@1 295 __ ld(RA, SP, RA_off * wordSize);
aoqi@1 296 __ ld(FP, SP, FP_off * wordSize);
aoqi@1 297 __ ld(BCP, SP, BCP_off * wordSize);
aoqi@1 298 __ ld(LVP, SP, LVP_off * wordSize);
aoqi@1 299 __ ld(GP, SP, GP_off * wordSize);
aoqi@1 300 __ ld(TSR, SP, TSR_off * wordSize);
aoqi@1 301
aoqi@1 302 __ ld(S1, SP, S1_off * wordSize);
aoqi@1 303 __ ld(S3, SP, S3_off * wordSize);
aoqi@1 304 __ ld(S4, SP, S4_off * wordSize);
aoqi@1 305 __ ld(S5, SP, S5_off * wordSize);
aoqi@1 306 __ ld(S6, SP, S6_off * wordSize);
aoqi@1 307
aoqi@1 308 // return
aoqi@1 309 __ jr(RA);
aoqi@1 310 __ delayed()->nop();
aoqi@1 311
aoqi@1 312 // handle return types different from T_INT
aoqi@1 313 __ bind(is_long);
aoqi@1 314 __ sd(V0, T0, 0 * wordSize);
aoqi@1 315 //__ sd(V1, T0, 1 * wordSize);
aoqi@1 316 __ sd(R0, T0, 1 * wordSize);
aoqi@1 317 __ b(exit);
aoqi@1 318 __ delayed()->nop();
aoqi@1 319
aoqi@1 320 __ bind(is_float);
aoqi@1 321 __ swc1(F0, T0, 0 * wordSize);
aoqi@1 322 __ b(exit);
aoqi@1 323 __ delayed()->nop();
aoqi@1 324
aoqi@1 325 __ bind(is_double);
aoqi@1 326 __ sdc1(F0, T0, 0 * wordSize);
aoqi@1 327 //__ sdc1(F1, T0, 1 * wordSize);
aoqi@1 328 __ sd(R0, T0, 1 * wordSize);
aoqi@1 329 __ b(exit);
aoqi@1 330 __ delayed()->nop();
aoqi@1 331 //FIXME, 1.6 mips version add operation of fpu here
aoqi@1 332 StubRoutines::gs2::set_call_stub_compiled_return(__ pc());
aoqi@1 333 __ b(common_return);
aoqi@1 334 __ delayed()->nop();
aoqi@1 335 return start;
aoqi@1 336 }
aoqi@1 337
aoqi@1 338 // Return point for a Java call if there's an exception thrown in
aoqi@1 339 // Java code. The exception is caught and transformed into a
aoqi@1 340 // pending exception stored in JavaThread that can be tested from
aoqi@1 341 // within the VM.
aoqi@1 342 //
aoqi@1 343 // Note: Usually the parameters are removed by the callee. In case
aoqi@1 344 // of an exception crossing an activation frame boundary, that is
aoqi@1 345 // not the case if the callee is compiled code => need to setup the
aoqi@1 346 // rsp.
aoqi@1 347 //
aoqi@1 348 // rax: exception oop
aoqi@1 349
aoqi@1 350 address generate_catch_exception() {
aoqi@1 351 StubCodeMark mark(this, "StubRoutines", "catch_exception");
aoqi@1 352 address start = __ pc();
aoqi@1 353
aoqi@1 354 Register thread = TREG;
aoqi@1 355
aoqi@1 356 // get thread directly
aoqi@1 357 #ifndef OPT_THREAD
aoqi@1 358 __ ld(thread, FP, thread_off * wordSize);
aoqi@1 359 #endif
aoqi@1 360
aoqi@1 361 #ifdef ASSERT
aoqi@1 362 // verify that threads correspond
aoqi@1 363 { Label L;
aoqi@1 364 __ get_thread(T8);
aoqi@1 365 __ beq(T8, thread, L);
aoqi@1 366 __ delayed()->nop();
aoqi@1 367 __ stop("StubRoutines::catch_exception: threads must correspond");
aoqi@1 368 __ bind(L);
aoqi@1 369 }
aoqi@1 370 #endif
aoqi@1 371 // set pending exception
aoqi@1 372 __ verify_oop(V0);
aoqi@1 373 __ sd(V0, thread, in_bytes(Thread::pending_exception_offset()));
aoqi@1 374 __ li(AT, (long)__FILE__);
aoqi@1 375 __ sd(AT, thread, in_bytes(Thread::exception_file_offset ()));
aoqi@1 376 __ li(AT, (long)__LINE__);
aoqi@1 377 __ sd(AT, thread, in_bytes(Thread::exception_line_offset ()));
aoqi@1 378
aoqi@1 379 // complete return to VM
aoqi@1 380 assert(StubRoutines::_call_stub_return_address != NULL, "_call_stub_return_address must have been generated before");
aoqi@1 381 __ jmp(StubRoutines::_call_stub_return_address, relocInfo::none);
aoqi@1 382 __ delayed()->nop();
aoqi@1 383
aoqi@1 384 return start;
aoqi@1 385 }
aoqi@1 386
aoqi@1 387 // Continuation point for runtime calls returning with a pending
aoqi@1 388 // exception. The pending exception check happened in the runtime
aoqi@1 389 // or native call stub. The pending exception in Thread is
aoqi@1 390 // converted into a Java-level exception.
aoqi@1 391 //
aoqi@1 392 // Contract with Java-level exception handlers:
aoqi@1 393 // rax: exception
aoqi@1 394 // rdx: throwing pc
aoqi@1 395 //
aoqi@1 396 // NOTE: At entry of this stub, exception-pc must be on stack !!
aoqi@1 397
aoqi@1 398 address generate_forward_exception() {
aoqi@1 399 StubCodeMark mark(this, "StubRoutines", "forward exception");
aoqi@1 400 //Register thread = TREG;
aoqi@1 401 Register thread = TREG;
aoqi@1 402 address start = __ pc();
aoqi@1 403
aoqi@1 404 // Upon entry, the sp points to the return address returning into Java
aoqi@1 405 // (interpreted or compiled) code; i.e., the return address becomes the
aoqi@1 406 // throwing pc.
aoqi@1 407 //
aoqi@1 408 // Arguments pushed before the runtime call are still on the stack but
aoqi@1 409 // the exception handler will reset the stack pointer -> ignore them.
aoqi@1 410 // A potential result in registers can be ignored as well.
aoqi@1 411
aoqi@1 412 #ifdef ASSERT
aoqi@1 413 // make sure this code is only executed if there is a pending exception
aoqi@1 414 #ifndef OPT_THREAD
aoqi@1 415 __ get_thread(thread);
aoqi@1 416 #endif
aoqi@1 417 { Label L;
aoqi@1 418 __ ld(AT, thread, in_bytes(Thread::pending_exception_offset()));
aoqi@1 419 __ bne(AT, R0, L);
aoqi@1 420 __ delayed()->nop();
aoqi@1 421 __ stop("StubRoutines::forward exception: no pending exception (1)");
aoqi@1 422 __ bind(L);
aoqi@1 423 }
aoqi@1 424 #endif
aoqi@1 425
aoqi@1 426 // compute exception handler into T9
aoqi@1 427 __ ld(A1, SP, 0);
aoqi@1 428 __ call_VM_leaf(CAST_FROM_FN_PTR(address, SharedRuntime::exception_handler_for_return_address), thread, A1);
aoqi@1 429 __ move(T9, V0);
aoqi@1 430 __ pop(V1);
aoqi@1 431
aoqi@1 432 #ifndef OPT_THREAD
aoqi@1 433 __ get_thread(thread);
aoqi@1 434 #endif
aoqi@1 435 __ ld(V0, thread, in_bytes(Thread::pending_exception_offset()));
aoqi@1 436 __ sd(R0, thread, in_bytes(Thread::pending_exception_offset()));
aoqi@1 437
aoqi@1 438 #ifdef ASSERT
aoqi@1 439 // make sure exception is set
aoqi@1 440 { Label L;
aoqi@1 441 __ bne(V0, R0, L);
aoqi@1 442 __ delayed()->nop();
aoqi@1 443 __ stop("StubRoutines::forward exception: no pending exception (2)");
aoqi@1 444 __ bind(L);
aoqi@1 445 }
aoqi@1 446 #endif
aoqi@1 447
aoqi@1 448 // continue at exception handler (return address removed)
aoqi@1 449 // V0: exception
aoqi@1 450 // T9: exception handler
aoqi@1 451 // V1: throwing pc
aoqi@1 452 __ verify_oop(V0);
aoqi@1 453 __ jr(T9);
aoqi@1 454 __ delayed()->nop();
aoqi@1 455
aoqi@1 456 return start;
aoqi@1 457 }
aoqi@1 458
aoqi@1 459 // Support for intptr_t get_previous_fp()
aoqi@1 460 //
aoqi@1 461 // This routine is used to find the previous frame pointer for the
aoqi@1 462 // caller (current_frame_guess). This is used as part of debugging
aoqi@1 463 // ps() is seemingly lost trying to find frames.
aoqi@1 464 // This code assumes that caller current_frame_guess) has a frame.
aoqi@1 465 address generate_get_previous_fp() {
aoqi@1 466 StubCodeMark mark(this, "StubRoutines", "get_previous_fp");
aoqi@1 467 const Address old_fp (FP, 0);
aoqi@1 468 const Address older_fp (V0, 0);
aoqi@1 469 address start = __ pc();
aoqi@1 470 __ enter();
aoqi@1 471 __ lw(V0, old_fp); // callers fp
aoqi@1 472 __ lw(V0, older_fp); // the frame for ps()
aoqi@1 473 __ leave();
aoqi@1 474 __ jr(RA);
aoqi@1 475 __ delayed()->nop();
aoqi@1 476 return start;
aoqi@1 477 }
aoqi@1 478 // The following routine generates a subroutine to throw an
aoqi@1 479 // asynchronous UnknownError when an unsafe access gets a fault that
aoqi@1 480 // could not be reasonably prevented by the programmer. (Example:
aoqi@1 481 // SIGBUS/OBJERR.)
aoqi@1 482 address generate_handler_for_unsafe_access() {
aoqi@1 483 StubCodeMark mark(this, "StubRoutines", "handler_for_unsafe_access");
aoqi@1 484 address start = __ pc();
aoqi@1 485 __ pushad(); // push registers
aoqi@1 486 // Address next_pc(esp, RegisterImpl::number_of_registers * BytesPerWord);
aoqi@1 487 __ call(CAST_FROM_FN_PTR(address, handle_unsafe_access), relocInfo::runtime_call_type);
aoqi@1 488 __ delayed()->nop();
aoqi@1 489 __ sw(V0, SP, RegisterImpl::number_of_registers * BytesPerWord);
aoqi@1 490 __ popad();
aoqi@1 491 __ jr(RA);
aoqi@1 492 __ delayed()->nop();
aoqi@1 493 return start;
aoqi@1 494 }
aoqi@1 495
aoqi@1 496 // Non-destructive plausibility checks for oops
aoqi@1 497 //
aoqi@1 498 // Arguments:
aoqi@1 499 // all args on stack!
aoqi@1 500 //
aoqi@1 501 // Stack after saving c_rarg3:
aoqi@1 502 // [tos + 0]: saved c_rarg3
aoqi@1 503 // [tos + 1]: saved c_rarg2
aoqi@1 504 // [tos + 2]: saved r12 (several TemplateTable methods use it)
aoqi@1 505 // [tos + 3]: saved flags
aoqi@1 506 // [tos + 4]: return address
aoqi@1 507 // * [tos + 5]: error message (char*)
aoqi@1 508 // * [tos + 6]: object to verify (oop)
aoqi@1 509 // * [tos + 7]: saved rax - saved by caller and bashed
aoqi@1 510 // * = popped on exit
aoqi@1 511 address generate_verify_oop() {
aoqi@1 512 StubCodeMark mark(this, "StubRoutines", "verify_oop");
aoqi@1 513 address start = __ pc();
aoqi@1 514 __ reinit_heapbase();
aoqi@1 515 __ verify_oop_subroutine();
aoqi@1 516 address end = __ pc();
aoqi@1 517 return start;
aoqi@1 518 }
aoqi@1 519
aoqi@1 520 //
aoqi@1 521 // Generate overlap test for array copy stubs
aoqi@1 522 //
aoqi@1 523 // Input:
aoqi@1 524 // A0 - array1
aoqi@1 525 // A1 - array2
aoqi@1 526 // A2 - element count
aoqi@1 527 //
aoqi@1 528 // Note: this code can only use %eax, %ecx, and %edx
aoqi@1 529 //
aoqi@1 530
aoqi@1 531 // use T9 as temp
aoqi@1 532 void array_overlap_test(address no_overlap_target, int log2_elem_size) {
aoqi@1 533 int elem_size = 1 << log2_elem_size;
aoqi@1 534 Address::ScaleFactor sf = Address::times_1;
aoqi@1 535
aoqi@1 536 switch (log2_elem_size) {
aoqi@1 537 case 0: sf = Address::times_1; break;
aoqi@1 538 case 1: sf = Address::times_2; break;
aoqi@1 539 case 2: sf = Address::times_4; break;
aoqi@1 540 case 3: sf = Address::times_8; break;
aoqi@1 541 }
aoqi@1 542
aoqi@1 543 __ dsll(AT, A2, sf);
aoqi@1 544 __ dadd(AT, AT, A0);
aoqi@1 545 __ lea(T9, Address(AT, -elem_size));
aoqi@1 546 __ dsub(AT, A1, A0);
aoqi@1 547 __ blez(AT, no_overlap_target);
aoqi@1 548 __ delayed()->nop();
aoqi@1 549 __ dsub(AT, A1, T9);
aoqi@1 550 __ bgtz(AT, no_overlap_target);
aoqi@1 551 __ delayed()->nop();
aoqi@1 552
aoqi@1 553 }
aoqi@1 554
aoqi@1 555 //
aoqi@1 556 // Generate store check for array
aoqi@1 557 //
aoqi@1 558 // Input:
aoqi@1 559 // %edi - starting address
aoqi@1 560 // %ecx - element count
aoqi@1 561 //
aoqi@1 562 // The 2 input registers are overwritten
aoqi@1 563 //
aoqi@1 564
aoqi@1 565 //
aoqi@1 566 // Generate store check for array
aoqi@1 567 //
aoqi@1 568 // Input:
aoqi@1 569 // T0 - starting address(edi)
aoqi@1 570 // T1 - element count (ecx)
aoqi@1 571 //
aoqi@1 572 // The 2 input registers are overwritten
aoqi@1 573 //
aoqi@1 574
aoqi@1 575 #define TIMES_OOP (UseCompressedOops ? Address::times_4 : Address::times_8)
aoqi@1 576
aoqi@1 577 void array_store_check() {
aoqi@1 578 BarrierSet* bs = Universe::heap()->barrier_set();
aoqi@1 579 assert(bs->kind() == BarrierSet::CardTableModRef, "Wrong barrier set kind");
aoqi@1 580 CardTableModRefBS* ct = (CardTableModRefBS*)bs;
aoqi@1 581 assert(sizeof(*ct->byte_map_base) == sizeof(jbyte), "adjust this code");
aoqi@1 582 Label l_0;
aoqi@1 583
aoqi@1 584 __ dsll(AT, T1, TIMES_OOP);
aoqi@1 585 __ dadd(AT, T0, AT);
aoqi@1 586 __ daddiu(T1, AT, - BytesPerHeapOop);
aoqi@1 587
aoqi@1 588 __ shr(T0, CardTableModRefBS::card_shift);
aoqi@1 589 __ shr(T1, CardTableModRefBS::card_shift);
aoqi@1 590
aoqi@1 591 __ dsub(T1, T1, T0); // end --> cards count
aoqi@1 592 __ bind(l_0);
aoqi@1 593
aoqi@1 594 __ li48(AT, (long)ct->byte_map_base);
aoqi@1 595 __ dadd(AT, AT, T0);
aoqi@1 596 __ dadd(AT, AT, T1);
aoqi@1 597 __ sb(R0, AT, 0);
aoqi@1 598 //__ daddi(T1, T1, -4);
aoqi@1 599 __ daddi(T1, T1, - 1);
aoqi@1 600 __ bgez(T1, l_0);
aoqi@1 601 __ delayed()->nop();
aoqi@1 602 }
aoqi@1 603
aoqi@1 604 // Arguments:
aoqi@1 605 // aligned - true => Input and output aligned on a HeapWord == 8-byte boundary
aoqi@1 606 // ignored
aoqi@1 607 // name - stub name string
aoqi@1 608 //
aoqi@1 609 // Inputs:
aoqi@1 610 // c_rarg0 - source array address
aoqi@1 611 // c_rarg1 - destination array address
aoqi@1 612 // c_rarg2 - element count, treated as ssize_t, can be zero
aoqi@1 613 //
aoqi@1 614 // If 'from' and/or 'to' are aligned on 4-, 2-, or 1-byte boundaries,
aoqi@1 615 // we let the hardware handle it. The one to eight bytes within words,
aoqi@1 616 // dwords or qwords that span cache line boundaries will still be loaded
aoqi@1 617 // and stored atomically.
aoqi@1 618 //
aoqi@1 619 // Side Effects:
aoqi@1 620 // disjoint_byte_copy_entry is set to the no-overlap entry point
aoqi@1 621 // used by generate_conjoint_byte_copy().
aoqi@1 622 //
aoqi@1 623 address generate_disjoint_byte_copy(bool aligned, const char *name) {
aoqi@1 624 StubCodeMark mark(this, "StubRoutines", name);
aoqi@1 625 __ align(CodeEntryAlignment);
aoqi@1 626 address start = __ pc();
aoqi@1 627 Label l_0, l_1, l_2, l_3, l_4, l_5, l_6;
aoqi@1 628
aoqi@1 629 __ push(T3);
aoqi@1 630 __ push(T0);
aoqi@1 631 __ push(T1);
aoqi@1 632 __ push(T8);
aoqi@1 633 __ move(T3, A0);
aoqi@1 634 __ move(T0, A1);
aoqi@1 635 __ move(T1, A2);
aoqi@1 636 __ move(T8, T1); // original count in T1
aoqi@1 637 __ daddi(AT, T1, -3);
aoqi@1 638 __ blez(AT, l_4);
aoqi@1 639 __ delayed()->nop();
aoqi@1 640 if (!aligned) {
aoqi@1 641 // align source address at dword address boundary
aoqi@1 642 __ move(T1, 4);
aoqi@1 643 __ sub(T1, T1, T3);
aoqi@1 644 __ andi(T1, T1, 3);
aoqi@1 645 __ beq(T1, R0, l_1);
aoqi@1 646 __ delayed()->nop();
aoqi@1 647 __ sub(T8,T8,T1);
aoqi@1 648 __ bind(l_0);
aoqi@1 649 __ lb(AT, T3, 0);
aoqi@1 650 __ sb(AT, T0, 0);
aoqi@1 651 __ addi(T3, T3, 1);
aoqi@1 652 __ addi(T0, T0, 1);
aoqi@1 653 __ addi(T1 ,T1, -1);
aoqi@1 654 __ bne(T1, R0, l_0);
aoqi@1 655 __ delayed()->nop();
aoqi@1 656 __ bind(l_1);
aoqi@1 657 __ move(T1, T8);
aoqi@1 658 }
aoqi@1 659 __ shr(T1, 2);
aoqi@1 660 __ beq(T1, R0, l_4); // no dwords to move
aoqi@1 661 __ delayed()->nop();
aoqi@1 662 // copy aligned dwords
aoqi@1 663 __ bind(l_2);
aoqi@1 664 __ align(16);
aoqi@1 665 __ bind(l_3);
aoqi@1 666 __ lw(AT, T3, 0);
aoqi@1 667 __ sw(AT, T0, 0 );
aoqi@1 668 __ addi(T3, T3, 4);
aoqi@1 669 __ addi(T0, T0, 4);
aoqi@1 670 __ addi(T1, T1, -1);
aoqi@1 671 __ bne(T1, R0, l_3);
aoqi@1 672 __ delayed()->nop();
aoqi@1 673 __ bind(l_4);
aoqi@1 674 __ move(T1, T8);
aoqi@1 675 __ andi(T1, T1, 3);
aoqi@1 676 __ beq(T1, R0, l_6);
aoqi@1 677 __ delayed()->nop();
aoqi@1 678 // copy suffix
aoqi@1 679 __ bind(l_5);
aoqi@1 680 __ lb(AT, T3, 0);
aoqi@1 681 __ sb(AT, T0, 0);
aoqi@1 682 __ addi(T3, T3, 1);
aoqi@1 683 __ addi(T0, T0, 1);
aoqi@1 684 __ addi(T1, T1, -1);
aoqi@1 685 __ bne(T1, R0, l_5 );
aoqi@1 686 __ delayed()->nop();
aoqi@1 687 __ bind(l_6);
aoqi@1 688 __ pop(T8);
aoqi@1 689 __ pop(T1);
aoqi@1 690 __ pop(T0);
aoqi@1 691 __ pop(T3);
aoqi@1 692 __ jr(RA);
aoqi@1 693 __ delayed()->nop();
aoqi@1 694 return start;
aoqi@1 695 }
aoqi@1 696
aoqi@1 697 // Arguments:
aoqi@1 698 // aligned - true => Input and output aligned on a HeapWord == 8-byte boundary
aoqi@1 699 // ignored
aoqi@1 700 // name - stub name string
aoqi@1 701 //
aoqi@1 702 // Inputs:
aoqi@1 703 // c_rarg0 - source array address
aoqi@1 704 // c_rarg1 - destination array address
aoqi@1 705 // c_rarg2 - element count, treated as ssize_t, can be zero
aoqi@1 706 //
aoqi@1 707 // If 'from' and/or 'to' are aligned on 4-, 2-, or 1-byte boundaries,
aoqi@1 708 // we let the hardware handle it. The one to eight bytes within words,
aoqi@1 709 // dwords or qwords that span cache line boundaries will still be loaded
aoqi@1 710 // and stored atomically.
aoqi@1 711 //
aoqi@1 712 address generate_conjoint_byte_copy(bool aligned, const char *name) {
aoqi@1 713 Label l_1, l_2, l_3, l_4, l_5;
aoqi@1 714 StubCodeMark mark(this, "StubRoutines", name);
aoqi@1 715 __ align(CodeEntryAlignment);
aoqi@1 716 address start = __ pc();
aoqi@1 717 address nooverlap_target = aligned ?
aoqi@1 718 StubRoutines::arrayof_jbyte_disjoint_arraycopy() :
aoqi@1 719 StubRoutines::jbyte_disjoint_arraycopy();
aoqi@1 720
aoqi@1 721 array_overlap_test(nooverlap_target, 0);
aoqi@1 722
aoqi@1 723 __ push(T3);
aoqi@1 724 __ push(T0);
aoqi@1 725 __ push(T1);
aoqi@1 726 __ push(T8);
aoqi@1 727
aoqi@1 728
aoqi@1 729 // copy from high to low
aoqi@1 730 __ move(T3, A0);
aoqi@1 731 __ move(T0, A1);
aoqi@1 732 __ move(T1, A2);
aoqi@1 733 __ dadd(AT, T3, T1);
aoqi@1 734 __ lea(T3, Address(AT, -4));
aoqi@1 735 __ dadd(AT, T0, T1);
aoqi@1 736 __ lea(T0, Address(AT, -4));
aoqi@1 737 __ move(T8, T1);
aoqi@1 738 __ daddi(AT, T1, -3);
aoqi@1 739 __ blez(AT, l_3);
aoqi@1 740 __ delayed()->nop();
aoqi@1 741 __ dsrl(T1, T1, 2);
aoqi@1 742 __ align(16);
aoqi@1 743 __ bind(l_1);
aoqi@1 744 __ lw(AT, T3, 0);
aoqi@1 745 __ sw(AT, T0, 0);
aoqi@1 746 __ addi(T3, T3, -4);
aoqi@1 747 __ addi(T0, T0, -4);
aoqi@1 748 __ addi(T1, T1, -1);
aoqi@1 749 __ bne(T1, R0, l_1);
aoqi@1 750 __ delayed()->nop();
aoqi@1 751 __ b(l_3);
aoqi@1 752 __ delayed()->nop();
aoqi@1 753 // copy dwords aligned or not with repeat move
aoqi@1 754 __ bind(l_2);
aoqi@1 755 __ bind(l_3);
aoqi@1 756 // copy suffix (0-3 bytes)
aoqi@1 757 __ andi(T8, T8, 3);
aoqi@1 758 __ beq(T8, R0, l_5);
aoqi@1 759 __ delayed()->nop();
aoqi@1 760 __ addi(T3, T3, 3);
aoqi@1 761 __ addi(T0, T0, 3);
aoqi@1 762 __ bind(l_4);
aoqi@1 763 __ lb(AT, T3, 0);
aoqi@1 764 __ sb(AT, T0, 0);
aoqi@1 765 __ addi(T3, T3, -1);
aoqi@1 766 __ addi(T0, T0, -1);
aoqi@1 767 __ addi(T8, T8, -1);
aoqi@1 768 __ bne(T8, R0, l_4);
aoqi@1 769 __ delayed()->nop();
aoqi@1 770 __ bind(l_5);
aoqi@1 771 __ pop(T8);
aoqi@1 772 __ pop(T1);
aoqi@1 773 __ pop(T0);
aoqi@1 774 __ pop(T3);
aoqi@1 775 __ jr(RA);
aoqi@1 776 __ delayed()->nop();
aoqi@1 777 return start;
aoqi@1 778 }
aoqi@1 779
aoqi@1 780 // Arguments:
aoqi@1 781 // aligned - true => Input and output aligned on a HeapWord == 8-byte boundary
aoqi@1 782 // ignored
aoqi@1 783 // name - stub name string
aoqi@1 784 //
aoqi@1 785 // Inputs:
aoqi@1 786 // c_rarg0 - source array address
aoqi@1 787 // c_rarg1 - destination array address
aoqi@1 788 // c_rarg2 - element count, treated as ssize_t, can be zero
aoqi@1 789 //
aoqi@1 790 // If 'from' and/or 'to' are aligned on 4- or 2-byte boundaries, we
aoqi@1 791 // let the hardware handle it. The two or four words within dwords
aoqi@1 792 // or qwords that span cache line boundaries will still be loaded
aoqi@1 793 // and stored atomically.
aoqi@1 794 //
aoqi@1 795 // Side Effects:
aoqi@1 796 // disjoint_short_copy_entry is set to the no-overlap entry point
aoqi@1 797 // used by generate_conjoint_short_copy().
aoqi@1 798 //
aoqi@1 799 address generate_disjoint_short_copy(bool aligned, const char *name) {
aoqi@1 800 Label l_1, l_2, l_3, l_4, l_5, l_6, l_7, l_8;
aoqi@1 801 StubCodeMark mark(this, "StubRoutines", name);
aoqi@1 802 __ align(CodeEntryAlignment);
aoqi@1 803 address start = __ pc();
aoqi@1 804
aoqi@1 805 __ push(T3);
aoqi@1 806 __ push(T0);
aoqi@1 807 __ push(T1);
aoqi@1 808 __ push(T8);
aoqi@1 809 __ move(T1, A2);
aoqi@1 810 __ move(T3, A0);
aoqi@1 811 __ move(T0, A1);
aoqi@1 812
aoqi@1 813 if (!aligned) {
aoqi@1 814 __ beq(T1, R0, l_5);
aoqi@1 815 __ delayed()->nop();
aoqi@1 816 // align source address at dword address boundary
aoqi@1 817 __ move(T8, T3); // original from
aoqi@1 818 __ andi(T8, T8, 3); // either 0 or 2
aoqi@1 819 __ beq(T8, R0, l_1); // no prefix
aoqi@1 820 __ delayed()->nop();
aoqi@1 821 // copy prefix
aoqi@1 822 __ lh(AT, T3, 0);
aoqi@1 823 __ sh(AT, T0, 0);
aoqi@1 824 __ add(T3, T3, T8);
aoqi@1 825 __ add(T0, T0, T8);
aoqi@1 826 __ addi(T1, T1, -1);
aoqi@1 827 __ bind(l_1);
aoqi@1 828 }
aoqi@1 829 __ move(T8, T1); // word count less prefix
aoqi@1 830 __ sra(T1, T1, 1);
aoqi@1 831 __ beq(T1, R0, l_4);
aoqi@1 832 __ delayed()->nop();
aoqi@1 833 // copy aligned dwords
aoqi@1 834 __ bind(l_2);
aoqi@1 835 __ align(16);
aoqi@1 836 __ bind(l_3);
aoqi@1 837 __ lw(AT, T3, 0);
aoqi@1 838 __ sw(AT, T0, 0 );
aoqi@1 839 __ addi(T3, T3, 4);
aoqi@1 840 __ addi(T0, T0, 4);
aoqi@1 841 __ addi(T1, T1, -1);
aoqi@1 842 __ bne(T1, R0, l_3);
aoqi@1 843 __ delayed()->nop();
aoqi@1 844 __ bind(l_4);
aoqi@1 845 __ andi(T8, T8, 1);
aoqi@1 846 __ beq(T8, R0, l_5);
aoqi@1 847 __ delayed()->nop();
aoqi@1 848 // copy suffix
aoqi@1 849 __ lh(AT, T3, 0);
aoqi@1 850 __ sh(AT, T0, 0);
aoqi@1 851 __ bind(l_5);
aoqi@1 852 __ pop(T8);
aoqi@1 853 __ pop(T1);
aoqi@1 854 __ pop(T0);
aoqi@1 855 __ pop(T3);
aoqi@1 856 __ jr(RA);
aoqi@1 857 __ delayed()->nop();
aoqi@1 858 return start;
aoqi@1 859 }
aoqi@1 860
aoqi@1 861 // Arguments:
aoqi@1 862 // aligned - true => Input and output aligned on a HeapWord == 8-byte boundary
aoqi@1 863 // ignored
aoqi@1 864 // name - stub name string
aoqi@1 865 //
aoqi@1 866 // Inputs:
aoqi@1 867 // c_rarg0 - source array address
aoqi@1 868 // c_rarg1 - destination array address
aoqi@1 869 // c_rarg2 - element count, treated as ssize_t, can be zero
aoqi@1 870 //
aoqi@1 871 // If 'from' and/or 'to' are aligned on 4- or 2-byte boundaries, we
aoqi@1 872 // let the hardware handle it. The two or four words within dwords
aoqi@1 873 // or qwords that span cache line boundaries will still be loaded
aoqi@1 874 // and stored atomically.
aoqi@1 875 //
aoqi@1 876 address generate_conjoint_short_copy(bool aligned, const char *name) {
aoqi@1 877 Label l_1, l_2, l_3, l_4, l_5;
aoqi@1 878 StubCodeMark mark(this, "StubRoutines", name);
aoqi@1 879 __ align(CodeEntryAlignment);
aoqi@1 880 address start = __ pc();
aoqi@1 881 address nooverlap_target = aligned ?
aoqi@1 882 StubRoutines::arrayof_jshort_disjoint_arraycopy() :
aoqi@1 883 StubRoutines::jshort_disjoint_arraycopy();
aoqi@1 884
aoqi@1 885 array_overlap_test(nooverlap_target, 1);
aoqi@1 886
aoqi@1 887 __ push(T3);
aoqi@1 888 __ push(T0);
aoqi@1 889 __ push(T1);
aoqi@1 890 __ push(T8);
aoqi@1 891
aoqi@1 892 /*
aoqi@1 893 __ pushl(esi);
aoqi@1 894 __ movl(ecx, Address(esp, 4+12)); // count
aoqi@1 895 __ pushl(edi);
aoqi@1 896 __ movl(esi, Address(esp, 8+ 4)); // from
aoqi@1 897 __ movl(edi, Address(esp, 8+ 8)); // to
aoqi@1 898 */
aoqi@1 899 __ move(T1, A2);
aoqi@1 900 __ move(T3, A0);
aoqi@1 901 __ move(T0, A1);
aoqi@1 902
aoqi@1 903
aoqi@1 904 // copy dwords from high to low
aoqi@1 905 // __ leal(esi, Address(esi, ecx, Address::times_2, -4)); // from + count*2 - 4
aoqi@1 906 __ sll(AT, T1, Address::times_2);
aoqi@1 907 __ add(AT, T3, AT);
aoqi@1 908 __ lea(T3, Address( AT, -4));
aoqi@1 909 //__ std();
aoqi@1 910 //__ leal(edi, Address(edi, ecx, Address::times_2, -4)); // to + count*2 - 4
aoqi@1 911 __ sll(AT,T1 , Address::times_2);
aoqi@1 912 __ add(AT, T0, AT);
aoqi@1 913 __ lea(T0, Address( AT, -4));
aoqi@1 914 // __ movl(eax, ecx);
aoqi@1 915 __ move(T8, T1);
aoqi@1 916 __ bind(l_1);
aoqi@1 917 // __ sarl(ecx, 1); // dword count
aoqi@1 918 __ sra(T1,T1, 1);
aoqi@1 919 //__ jcc(Assembler::equal, l_4); // no dwords to move
aoqi@1 920 __ beq(T1, R0, l_4);
aoqi@1 921 __ delayed()->nop();
aoqi@1 922 /* __ cmpl(ecx, 32);
aoqi@1 923 __ jcc(Assembler::above, l_3); // > 32 dwords
aoqi@1 924 // copy dwords with loop
aoqi@1 925 __ subl(edi, esi);
aoqi@1 926 */ __ align(16);
aoqi@1 927 __ bind(l_2);
aoqi@1 928 //__ movl(edx, Address(esi));
aoqi@1 929 __ lw(AT, T3, 0);
aoqi@1 930 //__ movl(Address(edi, esi, Address::times_1), edx);
aoqi@1 931 __ sw(AT, T0, 0);
aoqi@1 932 //__ subl(esi, 4);
aoqi@1 933 __ addi(T3, T3, -4);
aoqi@1 934 __ addi(T0, T0, -4);
aoqi@1 935 //__ decl(ecx);
aoqi@1 936 __ addi(T1, T1, -1);
aoqi@1 937 // __ jcc(Assembler::notEqual, l_2);
aoqi@1 938 __ bne(T1, R0, l_2);
aoqi@1 939 __ delayed()->nop();
aoqi@1 940 // __ addl(edi, esi);
aoqi@1 941 // __ jmp(l_4);
aoqi@1 942 __ b(l_4);
aoqi@1 943 __ delayed()->nop();
aoqi@1 944 // copy dwords with repeat move
aoqi@1 945 __ bind(l_3);
aoqi@1 946 // __ rep_movl();
aoqi@1 947 __ bind(l_4);
aoqi@1 948 // __ andl(eax, 1); // suffix count
aoqi@1 949 __ andi(T8, T8, 1); // suffix count
aoqi@1 950 //__ jcc(Assembler::equal, l_5); // no suffix
aoqi@1 951 __ beq(T8, R0, l_5 );
aoqi@1 952 __ delayed()->nop();
aoqi@1 953 // copy suffix
aoqi@1 954 // __ movw(edx, Address(esi, 2));
aoqi@1 955 __ lh(AT, T3, 2);
aoqi@1 956 // __ movw(Address(edi, 2), edx);
aoqi@1 957 __ sh(AT, T0, 2);
aoqi@1 958 __ bind(l_5);
aoqi@1 959 // __ cld();
aoqi@1 960 // __ popl(edi);
aoqi@1 961 // __ popl(esi);
aoqi@1 962 // __ ret(0);
aoqi@1 963 __ pop(T8);
aoqi@1 964 __ pop(T1);
aoqi@1 965 __ pop(T0);
aoqi@1 966 __ pop(T3);
aoqi@1 967 __ jr(RA);
aoqi@1 968 __ delayed()->nop();
aoqi@1 969 return start;
aoqi@1 970 }
aoqi@1 971
aoqi@1 972 // Arguments:
aoqi@1 973 // aligned - true => Input and output aligned on a HeapWord == 8-byte boundary
aoqi@1 974 // ignored
aoqi@1 975 // is_oop - true => oop array, so generate store check code
aoqi@1 976 // name - stub name string
aoqi@1 977 //
aoqi@1 978 // Inputs:
aoqi@1 979 // c_rarg0 - source array address
aoqi@1 980 // c_rarg1 - destination array address
aoqi@1 981 // c_rarg2 - element count, treated as ssize_t, can be zero
aoqi@1 982 //
aoqi@1 983 // If 'from' and/or 'to' are aligned on 4-byte boundaries, we let
aoqi@1 984 // the hardware handle it. The two dwords within qwords that span
aoqi@1 985 // cache line boundaries will still be loaded and stored atomicly.
aoqi@1 986 //
aoqi@1 987 // Side Effects:
aoqi@1 988 // disjoint_int_copy_entry is set to the no-overlap entry point
aoqi@1 989 // used by generate_conjoint_int_oop_copy().
aoqi@1 990 //
aoqi@1 991 address generate_disjoint_int_oop_copy(bool aligned, bool is_oop, const char *name) {
aoqi@1 992 Label l_2, l_3, l_4, l_stchk;
aoqi@1 993 StubCodeMark mark(this, "StubRoutines", name);
aoqi@1 994 __ align(CodeEntryAlignment);
aoqi@1 995 address start = __ pc();
aoqi@1 996 /*
aoqi@1 997 __ pushl(esi);
aoqi@1 998 __ movl(ecx, Address(esp, 4+12)); // count
aoqi@1 999 __ pushl(edi);
aoqi@1 1000 __ movl(esi, Address(esp, 8+ 4)); // from
aoqi@1 1001 __ movl(edi, Address(esp, 8+ 8)); // to
aoqi@1 1002 */
aoqi@1 1003 __ push(T3);
aoqi@1 1004 __ push(T0);
aoqi@1 1005 __ push(T1);
aoqi@1 1006 __ push(T8);
aoqi@1 1007 __ move(T1, A2);
aoqi@1 1008 __ move(T3, A0);
aoqi@1 1009 __ move(T0, A1);
aoqi@1 1010
aoqi@1 1011 // __ cmpl(ecx, 32);
aoqi@1 1012 // __ jcc(Assembler::belowEqual, l_2); // <= 32 dwords
aoqi@1 1013 // __ rep_movl();
aoqi@1 1014 __ b(l_2);
aoqi@1 1015 __ delayed()->nop();
aoqi@1 1016 if (is_oop) {
aoqi@1 1017 // __ jmp(l_stchk);
aoqi@1 1018 __ b(l_stchk);
aoqi@1 1019 __ delayed()->nop();
aoqi@1 1020 }
aoqi@1 1021 // __ popl(edi);
aoqi@1 1022 // __ popl(esi);
aoqi@1 1023 // __ ret(0);
aoqi@1 1024 __ pop(T8);
aoqi@1 1025 __ pop(T1);
aoqi@1 1026 __ pop(T0);
aoqi@1 1027 __ pop(T3);
aoqi@1 1028 __ jr(RA);
aoqi@1 1029 __ delayed()->nop();
aoqi@1 1030
aoqi@1 1031 __ bind(l_2);
aoqi@1 1032 // __ subl(edi, esi);
aoqi@1 1033 // __ testl(ecx, ecx);
aoqi@1 1034 // __ jcc(Assembler::zero, l_4);
aoqi@1 1035 __ beq(T1, R0, l_4);
aoqi@1 1036 __ delayed()->nop();
aoqi@1 1037 __ align(16);
aoqi@1 1038 __ bind(l_3);
aoqi@1 1039 //__ movl(edx, Address(esi));
aoqi@1 1040 __ lw(AT, T3, 0);
aoqi@1 1041 // __ movl(Address(edi, esi, Address::times_1), edx);
aoqi@1 1042 __ sw(AT, T0, 0);
aoqi@1 1043 // __ addl(esi, 4);
aoqi@1 1044 __ addi(T3, T3, 4);
aoqi@1 1045 __ addi(T0, T0, 4);
aoqi@1 1046 // __ decl(ecx);
aoqi@1 1047 __ addi(T1, T1, -1);
aoqi@1 1048 // __ jcc(Assembler::notEqual, l_3);
aoqi@1 1049 __ bne(T1, R0, l_3);
aoqi@1 1050 __ delayed()->nop();
aoqi@1 1051 if (is_oop) {
aoqi@1 1052 __ bind(l_stchk);
aoqi@1 1053 // __ movl(edi, Address(esp, 8+ 8));
aoqi@1 1054 // __ movl(ecx, Address(esp, 8+ 12));
aoqi@1 1055 __ move(T0, A1);
aoqi@1 1056 __ move(T1, A2);
aoqi@1 1057 array_store_check();
aoqi@1 1058 }
aoqi@1 1059 __ bind(l_4);
aoqi@1 1060 // __ popl(edi);
aoqi@1 1061 // __ popl(esi);
aoqi@1 1062 // __ ret(0);
aoqi@1 1063 __ pop(T8);
aoqi@1 1064 __ pop(T1);
aoqi@1 1065 __ pop(T0);
aoqi@1 1066 __ pop(T3);
aoqi@1 1067 __ jr(RA);
aoqi@1 1068 __ delayed()->nop();
aoqi@1 1069 return start;
aoqi@1 1070 }
aoqi@1 1071
aoqi@1 1072 // Arguments:
aoqi@1 1073 // aligned - true => Input and output aligned on a HeapWord == 8-byte boundary
aoqi@1 1074 // ignored
aoqi@1 1075 // is_oop - true => oop array, so generate store check code
aoqi@1 1076 // name - stub name string
aoqi@1 1077 //
aoqi@1 1078 // Inputs:
aoqi@1 1079 // c_rarg0 - source array address
aoqi@1 1080 // c_rarg1 - destination array address
aoqi@1 1081 // c_rarg2 - element count, treated as ssize_t, can be zero
aoqi@1 1082 //
aoqi@1 1083 // If 'from' and/or 'to' are aligned on 4-byte boundaries, we let
aoqi@1 1084 // the hardware handle it. The two dwords within qwords that span
aoqi@1 1085 // cache line boundaries will still be loaded and stored atomicly.
aoqi@1 1086 //
aoqi@1 1087 address generate_conjoint_int_oop_copy(bool aligned, bool is_oop, const char *name) {
aoqi@1 1088 Label l_2, l_3, l_4, l_stchk;
aoqi@1 1089 StubCodeMark mark(this, "StubRoutines", name);
aoqi@1 1090 __ align(CodeEntryAlignment);
aoqi@1 1091 address start = __ pc();
aoqi@1 1092 address nooverlap_target;
aoqi@1 1093
aoqi@1 1094 if (is_oop) {
aoqi@1 1095 nooverlap_target = aligned ?
aoqi@1 1096 StubRoutines::arrayof_oop_disjoint_arraycopy() :
aoqi@1 1097 StubRoutines::oop_disjoint_arraycopy();
aoqi@1 1098 }else {
aoqi@1 1099 nooverlap_target = aligned ?
aoqi@1 1100 StubRoutines::arrayof_jint_disjoint_arraycopy() :
aoqi@1 1101 StubRoutines::jint_disjoint_arraycopy();
aoqi@1 1102 }
aoqi@1 1103
aoqi@1 1104 array_overlap_test(nooverlap_target, 2);
aoqi@1 1105
aoqi@1 1106 __ push(T3);
aoqi@1 1107 __ push(T0);
aoqi@1 1108 __ push(T1);
aoqi@1 1109 __ push(T8);
aoqi@1 1110
aoqi@1 1111 /*
aoqi@1 1112 __ pushl(esi);
aoqi@1 1113 __ movl(ecx, Address(esp, 4+12)); // count
aoqi@1 1114 __ pushl(edi);
aoqi@1 1115 __ movl(esi, Address(esp, 8+ 4)); // from
aoqi@1 1116 __ movl(edi, Address(esp, 8+ 8)); // to
aoqi@1 1117 */
aoqi@1 1118 __ move(T1, A2);
aoqi@1 1119 __ move(T3, A0);
aoqi@1 1120 __ move(T0, A1);
aoqi@1 1121
aoqi@1 1122 //__ leal(esi, Address(esi, ecx, Address::times_4, -4)); // from + count*4 - 4
aoqi@1 1123 __ sll(AT, T1, Address::times_4);
aoqi@1 1124 __ add(AT, T3, AT);
aoqi@1 1125 __ lea(T3 , Address(AT, -4));
aoqi@1 1126 //__ std();
aoqi@1 1127 //__ leal(edi, Address(edi, ecx, Address::times_4, -4)); // to + count*4 - 4
aoqi@1 1128 __ sll(AT, T1, Address::times_4);
aoqi@1 1129 __ add(AT, T0, AT);
aoqi@1 1130 __ lea(T0 , Address(AT, -4));
aoqi@1 1131
aoqi@1 1132 // __ cmpl(ecx, 32);
aoqi@1 1133 // __ jcc(Assembler::above, l_3); // > 32 dwords
aoqi@1 1134 // __ testl(ecx, ecx);
aoqi@1 1135 //__ jcc(Assembler::zero, l_4);
aoqi@1 1136 __ beq(T1, R0, l_4);
aoqi@1 1137 __ delayed()->nop();
aoqi@1 1138 // __ subl(edi, esi);
aoqi@1 1139 __ align(16);
aoqi@1 1140 __ bind(l_2);
aoqi@1 1141 // __ movl(edx, Address(esi));
aoqi@1 1142 __ lw(AT, T3, 0);
aoqi@1 1143 // __ movl(Address(esi, edi, Address::times_1), edx);
aoqi@1 1144 __ sw(AT, T0, 0);
aoqi@1 1145 // __ subl(esi, 4);
aoqi@1 1146 __ addi(T3, T3, -4);
aoqi@1 1147 __ addi(T0, T0, -4);
aoqi@1 1148 // __ decl(ecx);
aoqi@1 1149 __ addi(T1, T1, -1);
aoqi@1 1150 //__ jcc(Assembler::notEqual, l_2);
aoqi@1 1151 __ bne(T1, R0, l_2);
aoqi@1 1152 __ delayed()->nop();
aoqi@1 1153 if (is_oop) {
aoqi@1 1154 // __ jmp(l_stchk);
aoqi@1 1155 __ b( l_stchk);
aoqi@1 1156 __ delayed()->nop();
aoqi@1 1157 }
aoqi@1 1158 __ bind(l_4);
aoqi@1 1159 // __ cld();
aoqi@1 1160 // __ popl(edi);
aoqi@1 1161 // __ popl(esi);
aoqi@1 1162 // __ ret(0);
aoqi@1 1163 __ pop(T8);
aoqi@1 1164 __ pop(T1);
aoqi@1 1165 __ pop(T0);
aoqi@1 1166 __ pop(T3);
aoqi@1 1167 __ jr(RA);
aoqi@1 1168 __ delayed()->nop();
aoqi@1 1169 __ bind(l_3);
aoqi@1 1170 // __ rep_movl();
aoqi@1 1171 if (is_oop) {
aoqi@1 1172 __ bind(l_stchk);
aoqi@1 1173 // __ movl(edi, Address(esp, 8+ 8));
aoqi@1 1174 __ move(T0, A1);
aoqi@1 1175 // __ movl(ecx, Address(esp, 8+ 12));
aoqi@1 1176 __ move(T1, A2);
aoqi@1 1177 array_store_check();
aoqi@1 1178 }
aoqi@1 1179 // __ cld();
aoqi@1 1180 // __ popl(edi);
aoqi@1 1181 // __ popl(esi);
aoqi@1 1182 // __ ret(0);
aoqi@1 1183 __ pop(T8);
aoqi@1 1184 __ pop(T1);
aoqi@1 1185 __ pop(T0);
aoqi@1 1186 __ pop(T3);
aoqi@1 1187 __ jr(RA);
aoqi@1 1188 __ delayed()->nop();
aoqi@1 1189 return start;
aoqi@1 1190 }
aoqi@1 1191
aoqi@1 1192 // Arguments:
aoqi@1 1193 // aligned - true => Input and output aligned on a HeapWord == 8-byte boundary
aoqi@1 1194 // ignored
aoqi@1 1195 // is_oop - true => oop array, so generate store check code
aoqi@1 1196 // name - stub name string
aoqi@1 1197 //
aoqi@1 1198 // Inputs:
aoqi@1 1199 // c_rarg0 - source array address
aoqi@1 1200 // c_rarg1 - destination array address
aoqi@1 1201 // c_rarg2 - element count, treated as ssize_t, can be zero
aoqi@1 1202 //
aoqi@1 1203 // If 'from' and/or 'to' are aligned on 4-byte boundaries, we let
aoqi@1 1204 // the hardware handle it. The two dwords within qwords that span
aoqi@1 1205 // cache line boundaries will still be loaded and stored atomicly.
aoqi@1 1206 //
aoqi@1 1207 // Side Effects:
aoqi@1 1208 // disjoint_int_copy_entry is set to the no-overlap entry point
aoqi@1 1209 // used by generate_conjoint_int_oop_copy().
aoqi@1 1210 //
aoqi@1 1211 address generate_disjoint_long_oop_copy(bool aligned, bool is_oop, const char *name) {
aoqi@1 1212 Label l_2, l_3, l_4, l_stchk;
aoqi@1 1213 StubCodeMark mark(this, "StubRoutines", name);
aoqi@1 1214 __ align(CodeEntryAlignment);
aoqi@1 1215 address start = __ pc();
aoqi@1 1216 __ push(T3);
aoqi@1 1217 __ push(T0);
aoqi@1 1218 __ push(T1);
aoqi@1 1219 __ push(T8);
aoqi@1 1220 __ move(T1, A2);
aoqi@1 1221 __ move(T3, A0);
aoqi@1 1222 __ move(T0, A1);
aoqi@1 1223
aoqi@1 1224 // __ cmpl(ecx, 32);
aoqi@1 1225 // __ jcc(Assembler::belowEqual, l_2); // <= 32 dwords
aoqi@1 1226 // __ rep_movl();
aoqi@1 1227 __ b(l_2);
aoqi@1 1228 __ delayed()->nop();
aoqi@1 1229 if (is_oop) {
aoqi@1 1230 // __ jmp(l_stchk);
aoqi@1 1231 __ b(l_stchk);
aoqi@1 1232 __ delayed()->nop();
aoqi@1 1233 }
aoqi@1 1234 // __ popl(edi);
aoqi@1 1235 // __ popl(esi);
aoqi@1 1236 // __ ret(0);
aoqi@1 1237 __ pop(T8);
aoqi@1 1238 __ pop(T1);
aoqi@1 1239 __ pop(T0);
aoqi@1 1240 __ pop(T3);
aoqi@1 1241 __ jr(RA);
aoqi@1 1242 __ delayed()->nop();
aoqi@1 1243
aoqi@1 1244 __ bind(l_2);
aoqi@1 1245 // __ subl(edi, esi);
aoqi@1 1246 // __ testl(ecx, ecx);
aoqi@1 1247 // __ jcc(Assembler::zero, l_4);
aoqi@1 1248 __ beq(T1, R0, l_4);
aoqi@1 1249 __ delayed()->nop();
aoqi@1 1250 __ align(16);
aoqi@1 1251 __ bind(l_3);
aoqi@1 1252 //__ movl(edx, Address(esi));
aoqi@1 1253 __ ld(AT, T3, 0);
aoqi@1 1254 // __ movl(Address(edi, esi, Address::times_1), edx);
aoqi@1 1255 __ sd(AT, T0, 0);
aoqi@1 1256 // __ addl(esi, 4);
aoqi@1 1257 __ addi(T3, T3, 8);
aoqi@1 1258 __ addi(T0, T0, 8);
aoqi@1 1259 // __ decl(ecx);
aoqi@1 1260 __ addi(T1, T1, -1);
aoqi@1 1261 // __ jcc(Assembler::notEqual, l_3);
aoqi@1 1262 __ bne(T1, R0, l_3);
aoqi@1 1263 __ delayed()->nop();
aoqi@1 1264 if (is_oop) {
aoqi@1 1265 __ bind(l_stchk);
aoqi@1 1266 // __ movl(edi, Address(esp, 8+ 8));
aoqi@1 1267 // __ movl(ecx, Address(esp, 8+ 12));
aoqi@1 1268 __ move(T0, A1);
aoqi@1 1269 __ move(T1, A2);
aoqi@1 1270 array_store_check();
aoqi@1 1271 }
aoqi@1 1272 __ bind(l_4);
aoqi@1 1273 // __ popl(edi);
aoqi@1 1274 // __ popl(esi);
aoqi@1 1275 // __ ret(0);
aoqi@1 1276 __ pop(T8);
aoqi@1 1277 __ pop(T1);
aoqi@1 1278 __ pop(T0);
aoqi@1 1279 __ pop(T3);
aoqi@1 1280 __ jr(RA);
aoqi@1 1281 __ delayed()->nop();
aoqi@1 1282 return start;
aoqi@1 1283 }
aoqi@1 1284
aoqi@1 1285 // Arguments:
aoqi@1 1286 // aligned - true => Input and output aligned on a HeapWord == 8-byte boundary
aoqi@1 1287 // ignored
aoqi@1 1288 // is_oop - true => oop array, so generate store check code
aoqi@1 1289 // name - stub name string
aoqi@1 1290 //
aoqi@1 1291 // Inputs:
aoqi@1 1292 // c_rarg0 - source array address
aoqi@1 1293 // c_rarg1 - destination array address
aoqi@1 1294 // c_rarg2 - element count, treated as ssize_t, can be zero
aoqi@1 1295 //
aoqi@1 1296 // If 'from' and/or 'to' are aligned on 4-byte boundaries, we let
aoqi@1 1297 // the hardware handle it. The two dwords within qwords that span
aoqi@1 1298 // cache line boundaries will still be loaded and stored atomicly.
aoqi@1 1299 //
aoqi@1 1300 address generate_conjoint_long_oop_copy(bool aligned, bool is_oop, const char *name) {
aoqi@1 1301 Label l_2, l_3, l_4, l_stchk;
aoqi@1 1302 StubCodeMark mark(this, "StubRoutines", name);
aoqi@1 1303 __ align(CodeEntryAlignment);
aoqi@1 1304 address start = __ pc();
aoqi@1 1305 address nooverlap_target;
aoqi@1 1306
aoqi@1 1307 if (is_oop) {
aoqi@1 1308 nooverlap_target = aligned ?
aoqi@1 1309 StubRoutines::arrayof_oop_disjoint_arraycopy() :
aoqi@1 1310 StubRoutines::oop_disjoint_arraycopy();
aoqi@1 1311 }else {
aoqi@1 1312 nooverlap_target = aligned ?
aoqi@1 1313 StubRoutines::arrayof_jlong_disjoint_arraycopy() :
aoqi@1 1314 StubRoutines::jlong_disjoint_arraycopy();
aoqi@1 1315 }
aoqi@1 1316
aoqi@1 1317 array_overlap_test(nooverlap_target, 3);
aoqi@1 1318
aoqi@1 1319 __ push(T3);
aoqi@1 1320 __ push(T0);
aoqi@1 1321 __ push(T1);
aoqi@1 1322 __ push(T8);
aoqi@1 1323
aoqi@1 1324 __ move(T1, A2);
aoqi@1 1325 __ move(T3, A0);
aoqi@1 1326 __ move(T0, A1);
aoqi@1 1327
aoqi@1 1328 //__ leal(esi, Address(esi, ecx, Address::times_4, -4)); // from + count*4 - 4
aoqi@1 1329 __ sll(AT, T1, Address::times_8);
aoqi@1 1330 __ add(AT, T3, AT);
aoqi@1 1331 __ lea(T3 , Address(AT, -8));
aoqi@1 1332 //__ std();
aoqi@1 1333 //__ leal(edi, Address(edi, ecx, Address::times_4, -4)); // to + count*4 - 4
aoqi@1 1334 __ sll(AT, T1, Address::times_8);
aoqi@1 1335 __ add(AT, T0, AT);
aoqi@1 1336 __ lea(T0 , Address(AT, -8));
aoqi@1 1337
aoqi@1 1338 // __ cmpl(ecx, 32);
aoqi@1 1339 // __ jcc(Assembler::above, l_3); // > 32 dwords
aoqi@1 1340 // __ testl(ecx, ecx);
aoqi@1 1341 //__ jcc(Assembler::zero, l_4);
aoqi@1 1342 __ beq(T1, R0, l_4);
aoqi@1 1343 __ delayed()->nop();
aoqi@1 1344 // __ subl(edi, esi);
aoqi@1 1345 __ align(16);
aoqi@1 1346 __ bind(l_2);
aoqi@1 1347 // __ movl(edx, Address(esi));
aoqi@1 1348 __ ld(AT, T3, 0);
aoqi@1 1349 // __ movl(Address(esi, edi, Address::times_1), edx);
aoqi@1 1350 __ sd(AT, T0, 0);
aoqi@1 1351 // __ subl(esi, 4);
aoqi@1 1352 __ addi(T3, T3, -8);
aoqi@1 1353 __ addi(T0, T0, -8);
aoqi@1 1354 // __ decl(ecx);
aoqi@1 1355 __ addi(T1, T1, -1);
aoqi@1 1356 //__ jcc(Assembler::notEqual, l_2);
aoqi@1 1357 __ bne(T1, R0, l_2);
aoqi@1 1358 __ delayed()->nop();
aoqi@1 1359 if (is_oop) {
aoqi@1 1360 // __ jmp(l_stchk);
aoqi@1 1361 __ b( l_stchk);
aoqi@1 1362 __ delayed()->nop();
aoqi@1 1363 }
aoqi@1 1364 __ bind(l_4);
aoqi@1 1365 // __ cld();
aoqi@1 1366 // __ popl(edi);
aoqi@1 1367 // __ popl(esi);
aoqi@1 1368 // __ ret(0);
aoqi@1 1369 __ pop(T8);
aoqi@1 1370 __ pop(T1);
aoqi@1 1371 __ pop(T0);
aoqi@1 1372 __ pop(T3);
aoqi@1 1373 __ jr(RA);
aoqi@1 1374 __ delayed()->nop();
aoqi@1 1375 __ bind(l_3);
aoqi@1 1376 // __ rep_movl();
aoqi@1 1377 if (is_oop) {
aoqi@1 1378 __ bind(l_stchk);
aoqi@1 1379 // __ movl(edi, Address(esp, 8+ 8));
aoqi@1 1380 __ move(T0, A1);
aoqi@1 1381 // __ movl(ecx, Address(esp, 8+ 12));
aoqi@1 1382 __ move(T1, A2);
aoqi@1 1383 array_store_check();
aoqi@1 1384 }
aoqi@1 1385 // __ cld();
aoqi@1 1386 // __ popl(edi);
aoqi@1 1387 // __ popl(esi);
aoqi@1 1388 // __ ret(0);
aoqi@1 1389 __ pop(T8);
aoqi@1 1390 __ pop(T1);
aoqi@1 1391 __ pop(T0);
aoqi@1 1392 __ pop(T3);
aoqi@1 1393 __ jr(RA);
aoqi@1 1394 __ delayed()->nop();
aoqi@1 1395 return start;
aoqi@1 1396 }
aoqi@1 1397 #if 0
aoqi@1 1398 // Arguments:
aoqi@1 1399 // aligned - true => Input and output aligned on a HeapWord boundary == 8 bytes
aoqi@1 1400 // ignored
aoqi@1 1401 // is_oop - true => oop array, so generate store check code
aoqi@1 1402 // name - stub name string
aoqi@1 1403 //
aoqi@1 1404 // Inputs:
aoqi@1 1405 // c_rarg0 - source array address
aoqi@1 1406 // c_rarg1 - destination array address
aoqi@1 1407 // c_rarg2 - element count, treated as ssize_t, can be zero
aoqi@1 1408 //
aoqi@1 1409 address generate_conjoint_long_oop_copy(bool aligned, bool is_oop, const char *name) {
aoqi@1 1410 __ align(CodeEntryAlignment);
aoqi@1 1411 StubCodeMark mark(this, "StubRoutines", name);
aoqi@1 1412 address start = __ pc();
aoqi@1 1413
aoqi@1 1414 Label L_copy_32_bytes, L_copy_8_bytes, L_exit;
aoqi@1 1415 const Register from = rdi; // source array address
aoqi@1 1416 const Register to = rsi; // destination array address
aoqi@1 1417 const Register qword_count = rdx; // elements count
aoqi@1 1418 const Register saved_count = rcx;
aoqi@1 1419
aoqi@1 1420 __ enter(); // required for proper stackwalking of RuntimeStub frame
aoqi@1 1421 assert_clean_int(c_rarg2, rax); // Make sure 'count' is clean int.
aoqi@1 1422
aoqi@1 1423 address disjoint_copy_entry = NULL;
aoqi@1 1424 if (is_oop) {
aoqi@1 1425 assert(!UseCompressedOops, "shouldn't be called for compressed oops");
aoqi@1 1426 disjoint_copy_entry = disjoint_oop_copy_entry;
aoqi@1 1427 oop_copy_entry = __ pc();
aoqi@1 1428 array_overlap_test(disjoint_oop_copy_entry, Address::times_8);
aoqi@1 1429 } else {
aoqi@1 1430 disjoint_copy_entry = disjoint_long_copy_entry;
aoqi@1 1431 long_copy_entry = __ pc();
aoqi@1 1432 array_overlap_test(disjoint_long_copy_entry, Address::times_8);
aoqi@1 1433 }
aoqi@1 1434 BLOCK_COMMENT("Entry:");
aoqi@1 1435 // caller can pass a 64-bit byte count here (from Unsafe.copyMemory)
aoqi@1 1436
aoqi@1 1437 array_overlap_test(disjoint_copy_entry, Address::times_8);
aoqi@1 1438 setup_arg_regs(); // from => rdi, to => rsi, count => rdx
aoqi@1 1439 // r9 and r10 may be used to save non-volatile registers
aoqi@1 1440
aoqi@1 1441 // 'from', 'to' and 'qword_count' are now valid
aoqi@1 1442
aoqi@1 1443 if (is_oop) {
aoqi@1 1444 // Save to and count for store barrier
aoqi@1 1445 __ movptr(saved_count, qword_count);
aoqi@1 1446 // No registers are destroyed by this call
aoqi@1 1447 gen_write_ref_array_pre_barrier(to, saved_count);
aoqi@1 1448 }
aoqi@1 1449
aoqi@1 1450 __ jmp(L_copy_32_bytes);
aoqi@1 1451
aoqi@1 1452 // Copy trailing qwords
aoqi@1 1453 __ BIND(L_copy_8_bytes);
aoqi@1 1454 __ movq(rax, Address(from, qword_count, Address::times_8, -8));
aoqi@1 1455 __ movq(Address(to, qword_count, Address::times_8, -8), rax);
aoqi@1 1456 __ decrement(qword_count);
aoqi@1 1457 __ jcc(Assembler::notZero, L_copy_8_bytes);
aoqi@1 1458
aoqi@1 1459 if (is_oop) {
aoqi@1 1460 __ jmp(L_exit);
aoqi@1 1461 } else {
aoqi@1 1462 inc_counter_np(SharedRuntime::_jlong_array_copy_ctr);
aoqi@1 1463 restore_arg_regs();
aoqi@1 1464 __ xorptr(rax, rax); // return 0
aoqi@1 1465 __ leave(); // required for proper stackwalking of RuntimeStub frame
aoqi@1 1466 __ ret(0);
aoqi@1 1467 }
aoqi@1 1468
aoqi@1 1469 // Copy in 32-bytes chunks
aoqi@1 1470 copy_32_bytes_backward(from, to, qword_count, rax, L_copy_32_bytes, L_copy_8_bytes);
aoqi@1 1471
aoqi@1 1472 if (is_oop) {
aoqi@1 1473 __ BIND(L_exit);
aoqi@1 1474 __ lea(rcx, Address(to, saved_count, Address::times_8, -8));
aoqi@1 1475 gen_write_ref_array_post_barrier(to, rcx, rax);
aoqi@1 1476 inc_counter_np(SharedRuntime::_oop_array_copy_ctr);
aoqi@1 1477 } else {
aoqi@1 1478 inc_counter_np(SharedRuntime::_jlong_array_copy_ctr);
aoqi@1 1479 }
aoqi@1 1480 restore_arg_regs();
aoqi@1 1481 __ xorptr(rax, rax); // return 0
aoqi@1 1482 __ leave(); // required for proper stackwalking of RuntimeStub frame
aoqi@1 1483 __ ret(0);
aoqi@1 1484
aoqi@1 1485 return start;
aoqi@1 1486 }
aoqi@1 1487
aoqi@1 1488
aoqi@1 1489 // Helper for generating a dynamic type check.
aoqi@1 1490 // Smashes no registers.
aoqi@1 1491 void generate_type_check(Register sub_klass,
aoqi@1 1492 Register super_check_offset,
aoqi@1 1493 Register super_klass,
aoqi@1 1494 Label& L_success) {
aoqi@1 1495 assert_different_registers(sub_klass, super_check_offset, super_klass);
aoqi@1 1496
aoqi@1 1497 BLOCK_COMMENT("type_check:");
aoqi@1 1498
aoqi@1 1499 Label L_miss;
aoqi@1 1500
aoqi@1 1501 // a couple of useful fields in sub_klass:
aoqi@1 1502 int ss_offset = (klassOopDesc::header_size() * HeapWordSize +
aoqi@1 1503 Klass::secondary_supers_offset_in_bytes());
aoqi@1 1504 int sc_offset = (klassOopDesc::header_size() * HeapWordSize +
aoqi@1 1505 Klass::secondary_super_cache_offset_in_bytes());
aoqi@1 1506 Address secondary_supers_addr(sub_klass, ss_offset);
aoqi@1 1507 Address super_cache_addr( sub_klass, sc_offset);
aoqi@1 1508
aoqi@1 1509 // if the pointers are equal, we are done (e.g., String[] elements)
aoqi@1 1510 __ cmpptr(super_klass, sub_klass);
aoqi@1 1511 __ jcc(Assembler::equal, L_success);
aoqi@1 1512
aoqi@1 1513 // check the supertype display:
aoqi@1 1514 Address super_check_addr(sub_klass, super_check_offset, Address::times_1, 0);
aoqi@1 1515 __ cmpptr(super_klass, super_check_addr); // test the super type
aoqi@1 1516 __ jcc(Assembler::equal, L_success);
aoqi@1 1517
aoqi@1 1518 // if it was a primary super, we can just fail immediately
aoqi@1 1519 __ cmpl(super_check_offset, sc_offset);
aoqi@1 1520 __ jcc(Assembler::notEqual, L_miss);
aoqi@1 1521
aoqi@1 1522 // Now do a linear scan of the secondary super-klass chain.
aoqi@1 1523 // The repne_scan instruction uses fixed registers, which we must spill.
aoqi@1 1524 // (We need a couple more temps in any case.)
aoqi@1 1525 // This code is rarely used, so simplicity is a virtue here.
aoqi@1 1526 inc_counter_np(SharedRuntime::_partial_subtype_ctr);
aoqi@1 1527 {
aoqi@1 1528 __ push(rax);
aoqi@1 1529 __ push(rcx);
aoqi@1 1530 __ push(rdi);
aoqi@1 1531 assert_different_registers(sub_klass, super_klass, rax, rcx, rdi);
aoqi@1 1532
aoqi@1 1533 __ movptr(rdi, secondary_supers_addr);
aoqi@1 1534 // Load the array length.
aoqi@1 1535 __ movl(rcx, Address(rdi, arrayOopDesc::length_offset_in_bytes()));
aoqi@1 1536 // Skip to start of data.
aoqi@1 1537 __ addptr(rdi, arrayOopDesc::base_offset_in_bytes(T_OBJECT));
aoqi@1 1538 // Scan rcx words at [rdi] for occurance of rax
aoqi@1 1539 // Set NZ/Z based on last compare
aoqi@1 1540 __ movptr(rax, super_klass);
aoqi@1 1541 if (UseCompressedOops) {
aoqi@1 1542 // Compare against compressed form. Don't need to uncompress because
aoqi@1 1543 // looks like orig rax is restored in popq below.
aoqi@1 1544 __ encode_heap_oop(rax);
aoqi@1 1545 __ repne_scanl();
aoqi@1 1546 } else {
aoqi@1 1547 __ repne_scan();
aoqi@1 1548 }
aoqi@1 1549
aoqi@1 1550 // Unspill the temp. registers:
aoqi@1 1551 __ pop(rdi);
aoqi@1 1552 __ pop(rcx);
aoqi@1 1553 __ pop(rax);
aoqi@1 1554
aoqi@1 1555 __ jcc(Assembler::notEqual, L_miss);
aoqi@1 1556 }
aoqi@1 1557
aoqi@1 1558 // Success. Cache the super we found and proceed in triumph.
aoqi@1 1559 __ movptr(super_cache_addr, super_klass); // note: rax is dead
aoqi@1 1560 __ jmp(L_success);
aoqi@1 1561
aoqi@1 1562 // Fall through on failure!
aoqi@1 1563 __ BIND(L_miss);
aoqi@1 1564 }
aoqi@1 1565
aoqi@1 1566 //
aoqi@1 1567 // Generate checkcasting array copy stub
aoqi@1 1568 //
aoqi@1 1569 // Input:
aoqi@1 1570 // c_rarg0 - source array address
aoqi@1 1571 // c_rarg1 - destination array address
aoqi@1 1572 // c_rarg2 - element count, treated as ssize_t, can be zero
aoqi@1 1573 // c_rarg3 - size_t ckoff (super_check_offset)
aoqi@1 1574 // not Win64
aoqi@1 1575 // c_rarg4 - oop ckval (super_klass)
aoqi@1 1576 // Win64
aoqi@1 1577 // rsp+40 - oop ckval (super_klass)
aoqi@1 1578 //
aoqi@1 1579 // Output:
aoqi@1 1580 // rax == 0 - success
aoqi@1 1581 // rax == -1^K - failure, where K is partial transfer count
aoqi@1 1582 //
aoqi@1 1583 address generate_checkcast_copy(const char *name) {
aoqi@1 1584
aoqi@1 1585 Label L_load_element, L_store_element, L_do_card_marks, L_done;
aoqi@1 1586
aoqi@1 1587 // Input registers (after setup_arg_regs)
aoqi@1 1588 const Register from = rdi; // source array address
aoqi@1 1589 const Register to = rsi; // destination array address
aoqi@1 1590 const Register length = rdx; // elements count
aoqi@1 1591 const Register ckoff = rcx; // super_check_offset
aoqi@1 1592 const Register ckval = r8; // super_klass
aoqi@1 1593
aoqi@1 1594 // Registers used as temps (r13, r14 are save-on-entry)
aoqi@1 1595 const Register end_from = from; // source array end address
aoqi@1 1596 const Register end_to = r13; // destination array end address
aoqi@1 1597 const Register count = rdx; // -(count_remaining)
aoqi@1 1598 const Register r14_length = r14; // saved copy of length
aoqi@1 1599 // End pointers are inclusive, and if length is not zero they point
aoqi@1 1600 // to the last unit copied: end_to[0] := end_from[0]
aoqi@1 1601
aoqi@1 1602 const Register rax_oop = rax; // actual oop copied
aoqi@1 1603 const Register r11_klass = r11; // oop._klass
aoqi@1 1604
aoqi@1 1605 //---------------------------------------------------------------
aoqi@1 1606 // Assembler stub will be used for this call to arraycopy
aoqi@1 1607 // if the two arrays are subtypes of Object[] but the
aoqi@1 1608 // destination array type is not equal to or a supertype
aoqi@1 1609 // of the source type. Each element must be separately
aoqi@1 1610 // checked.
aoqi@1 1611
aoqi@1 1612 __ align(CodeEntryAlignment);
aoqi@1 1613 StubCodeMark mark(this, "StubRoutines", name);
aoqi@1 1614 address start = __ pc();
aoqi@1 1615
aoqi@1 1616 __ enter(); // required for proper stackwalking of RuntimeStub frame
aoqi@1 1617
aoqi@1 1618 checkcast_copy_entry = __ pc();
aoqi@1 1619 BLOCK_COMMENT("Entry:");
aoqi@1 1620
aoqi@1 1621 #ifdef ASSERT
aoqi@1 1622 // caller guarantees that the arrays really are different
aoqi@1 1623 // otherwise, we would have to make conjoint checks
aoqi@1 1624 { Label L;
aoqi@1 1625 array_overlap_test(L, TIMES_OOP);
aoqi@1 1626 __ stop("checkcast_copy within a single array");
aoqi@1 1627 __ bind(L);
aoqi@1 1628 }
aoqi@1 1629 #endif //ASSERT
aoqi@1 1630
aoqi@1 1631 // allocate spill slots for r13, r14
aoqi@1 1632 enum {
aoqi@1 1633 saved_r13_offset,
aoqi@1 1634 saved_r14_offset,
aoqi@1 1635 saved_rbp_offset,
aoqi@1 1636 saved_rip_offset,
aoqi@1 1637 saved_rarg0_offset
aoqi@1 1638 };
aoqi@1 1639 __ subptr(rsp, saved_rbp_offset * wordSize);
aoqi@1 1640 __ movptr(Address(rsp, saved_r13_offset * wordSize), r13);
aoqi@1 1641 __ movptr(Address(rsp, saved_r14_offset * wordSize), r14);
aoqi@1 1642 setup_arg_regs(4); // from => rdi, to => rsi, length => rdx
aoqi@1 1643 // ckoff => rcx, ckval => r8
aoqi@1 1644 // r9 and r10 may be used to save non-volatile registers
aoqi@1 1645 #ifdef _WIN64
aoqi@1 1646 // last argument (#4) is on stack on Win64
aoqi@1 1647 const int ckval_offset = saved_rarg0_offset + 4;
aoqi@1 1648 __ movptr(ckval, Address(rsp, ckval_offset * wordSize));
aoqi@1 1649 #endif
aoqi@1 1650
aoqi@1 1651 // check that int operands are properly extended to size_t
aoqi@1 1652 assert_clean_int(length, rax);
aoqi@1 1653 assert_clean_int(ckoff, rax);
aoqi@1 1654
aoqi@1 1655 #ifdef ASSERT
aoqi@1 1656 BLOCK_COMMENT("assert consistent ckoff/ckval");
aoqi@1 1657 // The ckoff and ckval must be mutually consistent,
aoqi@1 1658 // even though caller generates both.
aoqi@1 1659 { Label L;
aoqi@1 1660 int sco_offset = (klassOopDesc::header_size() * HeapWordSize +
aoqi@1 1661 Klass::super_check_offset_offset_in_bytes());
aoqi@1 1662 __ cmpl(ckoff, Address(ckval, sco_offset));
aoqi@1 1663 __ jcc(Assembler::equal, L);
aoqi@1 1664 __ stop("super_check_offset inconsistent");
aoqi@1 1665 __ bind(L);
aoqi@1 1666 }
aoqi@1 1667 #endif //ASSERT
aoqi@1 1668
aoqi@1 1669 // Loop-invariant addresses. They are exclusive end pointers.
aoqi@1 1670 Address end_from_addr(from, length, TIMES_OOP, 0);
aoqi@1 1671 Address end_to_addr(to, length, TIMES_OOP, 0);
aoqi@1 1672 // Loop-variant addresses. They assume post-incremented count < 0.
aoqi@1 1673 Address from_element_addr(end_from, count, TIMES_OOP, 0);
aoqi@1 1674 Address to_element_addr(end_to, count, TIMES_OOP, 0);
aoqi@1 1675
aoqi@1 1676 gen_write_ref_array_pre_barrier(to, count);
aoqi@1 1677
aoqi@1 1678 // Copy from low to high addresses, indexed from the end of each array.
aoqi@1 1679 __ lea(end_from, end_from_addr);
aoqi@1 1680 __ lea(end_to, end_to_addr);
aoqi@1 1681 __ movptr(r14_length, length); // save a copy of the length
aoqi@1 1682 assert(length == count, ""); // else fix next line:
aoqi@1 1683 __ negptr(count); // negate and test the length
aoqi@1 1684 __ jcc(Assembler::notZero, L_load_element);
aoqi@1 1685
aoqi@1 1686 // Empty array: Nothing to do.
aoqi@1 1687 __ xorptr(rax, rax); // return 0 on (trivial) success
aoqi@1 1688 __ jmp(L_done);
aoqi@1 1689
aoqi@1 1690 // ======== begin loop ========
aoqi@1 1691 // (Loop is rotated; its entry is L_load_element.)
aoqi@1 1692 // Loop control:
aoqi@1 1693 // for (count = -count; count != 0; count++)
aoqi@1 1694 // Base pointers src, dst are biased by 8*(count-1),to last element.
aoqi@1 1695 __ align(16);
aoqi@1 1696
aoqi@1 1697 __ BIND(L_store_element);
aoqi@1 1698 __ store_heap_oop(rax_oop, to_element_addr); // store the oop
aoqi@1 1699 __ increment(count); // increment the count toward zero
aoqi@1 1700 __ jcc(Assembler::zero, L_do_card_marks);
aoqi@1 1701
aoqi@1 1702 // ======== loop entry is here ========
aoqi@1 1703 __ BIND(L_load_element);
aoqi@1 1704 __ load_heap_oop(rax_oop, from_element_addr); // load the oop
aoqi@1 1705 __ testptr(rax_oop, rax_oop);
aoqi@1 1706 __ jcc(Assembler::zero, L_store_element);
aoqi@1 1707
aoqi@1 1708 __ load_klass(r11_klass, rax_oop);// query the object klass
aoqi@1 1709 generate_type_check(r11_klass, ckoff, ckval, L_store_element);
aoqi@1 1710 // ======== end loop ========
aoqi@1 1711
aoqi@1 1712 // It was a real error; we must depend on the caller to finish the job.
aoqi@1 1713 // Register rdx = -1 * number of *remaining* oops, r14 = *total* oops.
aoqi@1 1714 // Emit GC store barriers for the oops we have copied (r14 + rdx),
aoqi@1 1715 // and report their number to the caller.
aoqi@1 1716 assert_different_registers(rax, r14_length, count, to, end_to, rcx);
aoqi@1 1717 __ lea(end_to, to_element_addr);
aoqi@1 1718 gen_write_ref_array_post_barrier(to, end_to, rscratch1);
aoqi@1 1719 __ movptr(rax, r14_length); // original oops
aoqi@1 1720 __ addptr(rax, count); // K = (original - remaining) oops
aoqi@1 1721 __ notptr(rax); // report (-1^K) to caller
aoqi@1 1722 __ jmp(L_done);
aoqi@1 1723
aoqi@1 1724 // Come here on success only.
aoqi@1 1725 __ BIND(L_do_card_marks);
aoqi@1 1726 __ addptr(end_to, -wordSize); // make an inclusive end pointer
aoqi@1 1727 gen_write_ref_array_post_barrier(to, end_to, rscratch1);
aoqi@1 1728 __ xorptr(rax, rax); // return 0 on success
aoqi@1 1729
aoqi@1 1730 // Common exit point (success or failure).
aoqi@1 1731 __ BIND(L_done);
aoqi@1 1732 __ movptr(r13, Address(rsp, saved_r13_offset * wordSize));
aoqi@1 1733 __ movptr(r14, Address(rsp, saved_r14_offset * wordSize));
aoqi@1 1734 inc_counter_np(SharedRuntime::_checkcast_array_copy_ctr);
aoqi@1 1735 restore_arg_regs();
aoqi@1 1736 __ leave(); // required for proper stackwalking of RuntimeStub frame
aoqi@1 1737 __ ret(0);
aoqi@1 1738
aoqi@1 1739 return start;
aoqi@1 1740 }
aoqi@1 1741
aoqi@1 1742 //
aoqi@1 1743 // Generate 'unsafe' array copy stub
aoqi@1 1744 // Though just as safe as the other stubs, it takes an unscaled
aoqi@1 1745 // size_t argument instead of an element count.
aoqi@1 1746 //
aoqi@1 1747 // Input:
aoqi@1 1748 // c_rarg0 - source array address
aoqi@1 1749 // c_rarg1 - destination array address
aoqi@1 1750 // c_rarg2 - byte count, treated as ssize_t, can be zero
aoqi@1 1751 //
aoqi@1 1752 // Examines the alignment of the operands and dispatches
aoqi@1 1753 // to a long, int, short, or byte copy loop.
aoqi@1 1754 //
aoqi@1 1755 address generate_unsafe_copy(const char *name) {
aoqi@1 1756
aoqi@1 1757 Label L_long_aligned, L_int_aligned, L_short_aligned;
aoqi@1 1758
aoqi@1 1759 // Input registers (before setup_arg_regs)
aoqi@1 1760 const Register from = c_rarg0; // source array address
aoqi@1 1761 const Register to = c_rarg1; // destination array address
aoqi@1 1762 const Register size = c_rarg2; // byte count (size_t)
aoqi@1 1763
aoqi@1 1764 // Register used as a temp
aoqi@1 1765 const Register bits = rax; // test copy of low bits
aoqi@1 1766
aoqi@1 1767 __ align(CodeEntryAlignment);
aoqi@1 1768 StubCodeMark mark(this, "StubRoutines", name);
aoqi@1 1769 address start = __ pc();
aoqi@1 1770
aoqi@1 1771 __ enter(); // required for proper stackwalking of RuntimeStub frame
aoqi@1 1772
aoqi@1 1773 // bump this on entry, not on exit:
aoqi@1 1774 inc_counter_np(SharedRuntime::_unsafe_array_copy_ctr);
aoqi@1 1775
aoqi@1 1776 __ mov(bits, from);
aoqi@1 1777 __ orptr(bits, to);
aoqi@1 1778 __ orptr(bits, size);
aoqi@1 1779
aoqi@1 1780 __ testb(bits, BytesPerLong-1);
aoqi@1 1781 __ jccb(Assembler::zero, L_long_aligned);
aoqi@1 1782
aoqi@1 1783 __ testb(bits, BytesPerInt-1);
aoqi@1 1784 __ jccb(Assembler::zero, L_int_aligned);
aoqi@1 1785
aoqi@1 1786 __ testb(bits, BytesPerShort-1);
aoqi@1 1787 __ jump_cc(Assembler::notZero, RuntimeAddress(byte_copy_entry));
aoqi@1 1788
aoqi@1 1789 __ BIND(L_short_aligned);
aoqi@1 1790 __ shrptr(size, LogBytesPerShort); // size => short_count
aoqi@1 1791 __ jump(RuntimeAddress(short_copy_entry));
aoqi@1 1792
aoqi@1 1793 __ BIND(L_int_aligned);
aoqi@1 1794 __ shrptr(size, LogBytesPerInt); // size => int_count
aoqi@1 1795 __ jump(RuntimeAddress(int_copy_entry));
aoqi@1 1796
aoqi@1 1797 __ BIND(L_long_aligned);
aoqi@1 1798 __ shrptr(size, LogBytesPerLong); // size => qword_count
aoqi@1 1799 __ jump(RuntimeAddress(long_copy_entry));
aoqi@1 1800
aoqi@1 1801 return start;
aoqi@1 1802 }
aoqi@1 1803
aoqi@1 1804 // Perform range checks on the proposed arraycopy.
aoqi@1 1805 // Kills temp, but nothing else.
aoqi@1 1806 // Also, clean the sign bits of src_pos and dst_pos.
aoqi@1 1807 void arraycopy_range_checks(Register src, // source array oop (c_rarg0)
aoqi@1 1808 Register src_pos, // source position (c_rarg1)
aoqi@1 1809 Register dst, // destination array oo (c_rarg2)
aoqi@1 1810 Register dst_pos, // destination position (c_rarg3)
aoqi@1 1811 Register length,
aoqi@1 1812 Register temp,
aoqi@1 1813 Label& L_failed) {
aoqi@1 1814 BLOCK_COMMENT("arraycopy_range_checks:");
aoqi@1 1815
aoqi@1 1816 // if (src_pos + length > arrayOop(src)->length()) FAIL;
aoqi@1 1817 __ movl(temp, length);
aoqi@1 1818 __ addl(temp, src_pos); // src_pos + length
aoqi@1 1819 __ cmpl(temp, Address(src, arrayOopDesc::length_offset_in_bytes()));
aoqi@1 1820 __ jcc(Assembler::above, L_failed);
aoqi@1 1821
aoqi@1 1822 // if (dst_pos + length > arrayOop(dst)->length()) FAIL;
aoqi@1 1823 __ movl(temp, length);
aoqi@1 1824 __ addl(temp, dst_pos); // dst_pos + length
aoqi@1 1825 __ cmpl(temp, Address(dst, arrayOopDesc::length_offset_in_bytes()));
aoqi@1 1826 __ jcc(Assembler::above, L_failed);
aoqi@1 1827
aoqi@1 1828 // Have to clean up high 32-bits of 'src_pos' and 'dst_pos'.
aoqi@1 1829 // Move with sign extension can be used since they are positive.
aoqi@1 1830 __ movslq(src_pos, src_pos);
aoqi@1 1831 __ movslq(dst_pos, dst_pos);
aoqi@1 1832
aoqi@1 1833 BLOCK_COMMENT("arraycopy_range_checks done");
aoqi@1 1834 }
aoqi@1 1835
aoqi@1 1836 //
aoqi@1 1837 // Generate generic array copy stubs
aoqi@1 1838 //
aoqi@1 1839 // Input:
aoqi@1 1840 // c_rarg0 - src oop
aoqi@1 1841 // c_rarg1 - src_pos (32-bits)
aoqi@1 1842 // c_rarg2 - dst oop
aoqi@1 1843 // c_rarg3 - dst_pos (32-bits)
aoqi@1 1844 // not Win64
aoqi@1 1845 // c_rarg4 - element count (32-bits)
aoqi@1 1846 // Win64
aoqi@1 1847 // rsp+40 - element count (32-bits)
aoqi@1 1848 //
aoqi@1 1849 // Output:
aoqi@1 1850 // rax == 0 - success
aoqi@1 1851 // rax == -1^K - failure, where K is partial transfer count
aoqi@1 1852 //
aoqi@1 1853 address generate_generic_copy(const char *name) {
aoqi@1 1854
aoqi@1 1855 Label L_failed, L_failed_0, L_objArray;
aoqi@1 1856 Label L_copy_bytes, L_copy_shorts, L_copy_ints, L_copy_longs;
aoqi@1 1857
aoqi@1 1858 // Input registers
aoqi@1 1859 const Register src = c_rarg0; // source array oop
aoqi@1 1860 const Register src_pos = c_rarg1; // source position
aoqi@1 1861 const Register dst = c_rarg2; // destination array oop
aoqi@1 1862 const Register dst_pos = c_rarg3; // destination position
aoqi@1 1863 // elements count is on stack on Win64
aoqi@1 1864 #ifdef _WIN64
aoqi@1 1865 #define C_RARG4 Address(rsp, 6 * wordSize)
aoqi@1 1866 #else
aoqi@1 1867 #define C_RARG4 c_rarg4
aoqi@1 1868 #endif
aoqi@1 1869
aoqi@1 1870 { int modulus = CodeEntryAlignment;
aoqi@1 1871 int target = modulus - 5; // 5 = sizeof jmp(L_failed)
aoqi@1 1872 int advance = target - (__ offset() % modulus);
aoqi@1 1873 if (advance < 0) advance += modulus;
aoqi@1 1874 if (advance > 0) __ nop(advance);
aoqi@1 1875 }
aoqi@1 1876 StubCodeMark mark(this, "StubRoutines", name);
aoqi@1 1877
aoqi@1 1878 // Short-hop target to L_failed. Makes for denser prologue code.
aoqi@1 1879 __ BIND(L_failed_0);
aoqi@1 1880 __ jmp(L_failed);
aoqi@1 1881 assert(__ offset() % CodeEntryAlignment == 0, "no further alignment needed");
aoqi@1 1882
aoqi@1 1883 __ align(CodeEntryAlignment);
aoqi@1 1884 address start = __ pc();
aoqi@1 1885
aoqi@1 1886 __ enter(); // required for proper stackwalking of RuntimeStub frame
aoqi@1 1887
aoqi@1 1888 // bump this on entry, not on exit:
aoqi@1 1889 inc_counter_np(SharedRuntime::_generic_array_copy_ctr);
aoqi@1 1890
aoqi@1 1891 //-----------------------------------------------------------------------
aoqi@1 1892 // Assembler stub will be used for this call to arraycopy
aoqi@1 1893 // if the following conditions are met:
aoqi@1 1894 //
aoqi@1 1895 // (1) src and dst must not be null.
aoqi@1 1896 // (2) src_pos must not be negative.
aoqi@1 1897 // (3) dst_pos must not be negative.
aoqi@1 1898 // (4) length must not be negative.
aoqi@1 1899 // (5) src klass and dst klass should be the same and not NULL.
aoqi@1 1900 // (6) src and dst should be arrays.
aoqi@1 1901 // (7) src_pos + length must not exceed length of src.
aoqi@1 1902 // (8) dst_pos + length must not exceed length of dst.
aoqi@1 1903 //
aoqi@1 1904
aoqi@1 1905 // if (src == NULL) return -1;
aoqi@1 1906 __ testptr(src, src); // src oop
aoqi@1 1907 size_t j1off = __ offset();
aoqi@1 1908 __ jccb(Assembler::zero, L_failed_0);
aoqi@1 1909
aoqi@1 1910 // if (src_pos < 0) return -1;
aoqi@1 1911 __ testl(src_pos, src_pos); // src_pos (32-bits)
aoqi@1 1912 __ jccb(Assembler::negative, L_failed_0);
aoqi@1 1913
aoqi@1 1914 // if (dst == NULL) return -1;
aoqi@1 1915 __ testptr(dst, dst); // dst oop
aoqi@1 1916 __ jccb(Assembler::zero, L_failed_0);
aoqi@1 1917
aoqi@1 1918 // if (dst_pos < 0) return -1;
aoqi@1 1919 __ testl(dst_pos, dst_pos); // dst_pos (32-bits)
aoqi@1 1920 size_t j4off = __ offset();
aoqi@1 1921 __ jccb(Assembler::negative, L_failed_0);
aoqi@1 1922
aoqi@1 1923 // The first four tests are very dense code,
aoqi@1 1924 // but not quite dense enough to put four
aoqi@1 1925 // jumps in a 16-byte instruction fetch buffer.
aoqi@1 1926 // That's good, because some branch predicters
aoqi@1 1927 // do not like jumps so close together.
aoqi@1 1928 // Make sure of this.
aoqi@1 1929 guarantee(((j1off ^ j4off) & ~15) != 0, "I$ line of 1st & 4th jumps");
aoqi@1 1930
aoqi@1 1931 // registers used as temp
aoqi@1 1932 const Register r11_length = r11; // elements count to copy
aoqi@1 1933 const Register r10_src_klass = r10; // array klass
aoqi@1 1934 const Register r9_dst_klass = r9; // dest array klass
aoqi@1 1935
aoqi@1 1936 // if (length < 0) return -1;
aoqi@1 1937 __ movl(r11_length, C_RARG4); // length (elements count, 32-bits value)
aoqi@1 1938 __ testl(r11_length, r11_length);
aoqi@1 1939 __ jccb(Assembler::negative, L_failed_0);
aoqi@1 1940
aoqi@1 1941 __ load_klass(r10_src_klass, src);
aoqi@1 1942 #ifdef ASSERT
aoqi@1 1943 // assert(src->klass() != NULL);
aoqi@1 1944 BLOCK_COMMENT("assert klasses not null");
aoqi@1 1945 { Label L1, L2;
aoqi@1 1946 __ testptr(r10_src_klass, r10_src_klass);
aoqi@1 1947 __ jcc(Assembler::notZero, L2); // it is broken if klass is NULL
aoqi@1 1948 __ bind(L1);
aoqi@1 1949 __ stop("broken null klass");
aoqi@1 1950 __ bind(L2);
aoqi@1 1951 __ load_klass(r9_dst_klass, dst);
aoqi@1 1952 __ cmpq(r9_dst_klass, 0);
aoqi@1 1953 __ jcc(Assembler::equal, L1); // this would be broken also
aoqi@1 1954 BLOCK_COMMENT("assert done");
aoqi@1 1955 }
aoqi@1 1956 #endif
aoqi@1 1957
aoqi@1 1958 // Load layout helper (32-bits)
aoqi@1 1959 //
aoqi@1 1960 // |array_tag| | header_size | element_type | |log2_element_size|
aoqi@1 1961 // 32 30 24 16 8 2 0
aoqi@1 1962 //
aoqi@1 1963 // array_tag: typeArray = 0x3, objArray = 0x2, non-array = 0x0
aoqi@1 1964 //
aoqi@1 1965
aoqi@1 1966 int lh_offset = klassOopDesc::header_size() * HeapWordSize +
aoqi@1 1967 Klass::layout_helper_offset_in_bytes();
aoqi@1 1968
aoqi@1 1969 const Register rax_lh = rax; // layout helper
aoqi@1 1970
aoqi@1 1971 __ movl(rax_lh, Address(r10_src_klass, lh_offset));
aoqi@1 1972
aoqi@1 1973 // Handle objArrays completely differently...
aoqi@1 1974 jint objArray_lh = Klass::array_layout_helper(T_OBJECT);
aoqi@1 1975 __ cmpl(rax_lh, objArray_lh);
aoqi@1 1976 __ jcc(Assembler::equal, L_objArray);
aoqi@1 1977
aoqi@1 1978 // if (src->klass() != dst->klass()) return -1;
aoqi@1 1979 __ load_klass(r9_dst_klass, dst);
aoqi@1 1980 __ cmpq(r10_src_klass, r9_dst_klass);
aoqi@1 1981 __ jcc(Assembler::notEqual, L_failed);
aoqi@1 1982
aoqi@1 1983 // if (!src->is_Array()) return -1;
aoqi@1 1984 __ cmpl(rax_lh, Klass::_lh_neutral_value);
aoqi@1 1985 __ jcc(Assembler::greaterEqual, L_failed);
aoqi@1 1986
aoqi@1 1987 // At this point, it is known to be a typeArray (array_tag 0x3).
aoqi@1 1988 #ifdef ASSERT
aoqi@1 1989 { Label L;
aoqi@1 1990 __ cmpl(rax_lh, (Klass::_lh_array_tag_type_value << Klass::_lh_array_tag_shift));
aoqi@1 1991 __ jcc(Assembler::greaterEqual, L);
aoqi@1 1992 __ stop("must be a primitive array");
aoqi@1 1993 __ bind(L);
aoqi@1 1994 }
aoqi@1 1995 #endif
aoqi@1 1996
aoqi@1 1997 arraycopy_range_checks(src, src_pos, dst, dst_pos, r11_length,
aoqi@1 1998 r10, L_failed);
aoqi@1 1999
aoqi@1 2000 // typeArrayKlass
aoqi@1 2001 //
aoqi@1 2002 // src_addr = (src + array_header_in_bytes()) + (src_pos << log2elemsize);
aoqi@1 2003 // dst_addr = (dst + array_header_in_bytes()) + (dst_pos << log2elemsize);
aoqi@1 2004 //
aoqi@1 2005
aoqi@1 2006 const Register r10_offset = r10; // array offset
aoqi@1 2007 const Register rax_elsize = rax_lh; // element size
aoqi@1 2008
aoqi@1 2009 __ movl(r10_offset, rax_lh);
aoqi@1 2010 __ shrl(r10_offset, Klass::_lh_header_size_shift);
aoqi@1 2011 __ andptr(r10_offset, Klass::_lh_header_size_mask); // array_offset
aoqi@1 2012 __ addptr(src, r10_offset); // src array offset
aoqi@1 2013 __ addptr(dst, r10_offset); // dst array offset
aoqi@1 2014 BLOCK_COMMENT("choose copy loop based on element size");
aoqi@1 2015 __ andl(rax_lh, Klass::_lh_log2_element_size_mask); // rax_lh -> rax_elsize
aoqi@1 2016
aoqi@1 2017 // next registers should be set before the jump to corresponding stub
aoqi@1 2018 const Register from = c_rarg0; // source array address
aoqi@1 2019 const Register to = c_rarg1; // destination array address
aoqi@1 2020 const Register count = c_rarg2; // elements count
aoqi@1 2021
aoqi@1 2022 // 'from', 'to', 'count' registers should be set in such order
aoqi@1 2023 // since they are the same as 'src', 'src_pos', 'dst'.
aoqi@1 2024
aoqi@1 2025 __ BIND(L_copy_bytes);
aoqi@1 2026 __ cmpl(rax_elsize, 0);
aoqi@1 2027 __ jccb(Assembler::notEqual, L_copy_shorts);
aoqi@1 2028 __ lea(from, Address(src, src_pos, Address::times_1, 0));// src_addr
aoqi@1 2029 __ lea(to, Address(dst, dst_pos, Address::times_1, 0));// dst_addr
aoqi@1 2030 __ movl2ptr(count, r11_length); // length
aoqi@1 2031 __ jump(RuntimeAddress(byte_copy_entry));
aoqi@1 2032
aoqi@1 2033 __ BIND(L_copy_shorts);
aoqi@1 2034 __ cmpl(rax_elsize, LogBytesPerShort);
aoqi@1 2035 __ jccb(Assembler::notEqual, L_copy_ints);
aoqi@1 2036 __ lea(from, Address(src, src_pos, Address::times_2, 0));// src_addr
aoqi@1 2037 __ lea(to, Address(dst, dst_pos, Address::times_2, 0));// dst_addr
aoqi@1 2038 __ movl2ptr(count, r11_length); // length
aoqi@1 2039 __ jump(RuntimeAddress(short_copy_entry));
aoqi@1 2040
aoqi@1 2041 __ BIND(L_copy_ints);
aoqi@1 2042 __ cmpl(rax_elsize, LogBytesPerInt);
aoqi@1 2043 __ jccb(Assembler::notEqual, L_copy_longs);
aoqi@1 2044 __ lea(from, Address(src, src_pos, Address::times_4, 0));// src_addr
aoqi@1 2045 __ lea(to, Address(dst, dst_pos, Address::times_4, 0));// dst_addr
aoqi@1 2046 __ movl2ptr(count, r11_length); // length
aoqi@1 2047 __ jump(RuntimeAddress(int_copy_entry));
aoqi@1 2048
aoqi@1 2049 __ BIND(L_copy_longs);
aoqi@1 2050 #ifdef ASSERT
aoqi@1 2051 { Label L;
aoqi@1 2052 __ cmpl(rax_elsize, LogBytesPerLong);
aoqi@1 2053 __ jcc(Assembler::equal, L);
aoqi@1 2054 __ stop("must be long copy, but elsize is wrong");
aoqi@1 2055 __ bind(L);
aoqi@1 2056 }
aoqi@1 2057 #endif
aoqi@1 2058 __ lea(from, Address(src, src_pos, Address::times_8, 0));// src_addr
aoqi@1 2059 __ lea(to, Address(dst, dst_pos, Address::times_8, 0));// dst_addr
aoqi@1 2060 __ movl2ptr(count, r11_length); // length
aoqi@1 2061 __ jump(RuntimeAddress(long_copy_entry));
aoqi@1 2062
aoqi@1 2063 // objArrayKlass
aoqi@1 2064 __ BIND(L_objArray);
aoqi@1 2065 // live at this point: r10_src_klass, src[_pos], dst[_pos]
aoqi@1 2066
aoqi@1 2067 Label L_plain_copy, L_checkcast_copy;
aoqi@1 2068 // test array classes for subtyping
aoqi@1 2069 __ load_klass(r9_dst_klass, dst);
aoqi@1 2070 __ cmpq(r10_src_klass, r9_dst_klass); // usual case is exact equality
aoqi@1 2071 __ jcc(Assembler::notEqual, L_checkcast_copy);
aoqi@1 2072
aoqi@1 2073 // Identically typed arrays can be copied without element-wise checks.
aoqi@1 2074 arraycopy_range_checks(src, src_pos, dst, dst_pos, r11_length,
aoqi@1 2075 r10, L_failed);
aoqi@1 2076
aoqi@1 2077 __ lea(from, Address(src, src_pos, TIMES_OOP,
aoqi@1 2078 arrayOopDesc::base_offset_in_bytes(T_OBJECT))); // src_addr
aoqi@1 2079 __ lea(to, Address(dst, dst_pos, TIMES_OOP,
aoqi@1 2080 arrayOopDesc::base_offset_in_bytes(T_OBJECT))); // dst_addr
aoqi@1 2081 __ movl2ptr(count, r11_length); // length
aoqi@1 2082 __ BIND(L_plain_copy);
aoqi@1 2083 __ jump(RuntimeAddress(oop_copy_entry));
aoqi@1 2084
aoqi@1 2085 __ BIND(L_checkcast_copy);
aoqi@1 2086 // live at this point: r10_src_klass, !r11_length
aoqi@1 2087 {
aoqi@1 2088 // assert(r11_length == C_RARG4); // will reload from here
aoqi@1 2089 Register r11_dst_klass = r11;
aoqi@1 2090 __ load_klass(r11_dst_klass, dst);
aoqi@1 2091
aoqi@1 2092 // Before looking at dst.length, make sure dst is also an objArray.
aoqi@1 2093 __ cmpl(Address(r11_dst_klass, lh_offset), objArray_lh);
aoqi@1 2094 __ jcc(Assembler::notEqual, L_failed);
aoqi@1 2095
aoqi@1 2096 // It is safe to examine both src.length and dst.length.
aoqi@1 2097 #ifndef _WIN64
aoqi@1 2098 arraycopy_range_checks(src, src_pos, dst, dst_pos, C_RARG4,
aoqi@1 2099 rax, L_failed);
aoqi@1 2100 #else
aoqi@1 2101 __ movl(r11_length, C_RARG4); // reload
aoqi@1 2102 arraycopy_range_checks(src, src_pos, dst, dst_pos, r11_length,
aoqi@1 2103 rax, L_failed);
aoqi@1 2104 __ load_klass(r11_dst_klass, dst); // reload
aoqi@1 2105 #endif
aoqi@1 2106
aoqi@1 2107 // Marshal the base address arguments now, freeing registers.
aoqi@1 2108 __ lea(from, Address(src, src_pos, TIMES_OOP,
aoqi@1 2109 arrayOopDesc::base_offset_in_bytes(T_OBJECT)));
aoqi@1 2110 __ lea(to, Address(dst, dst_pos, TIMES_OOP,
aoqi@1 2111 arrayOopDesc::base_offset_in_bytes(T_OBJECT)));
aoqi@1 2112 __ movl(count, C_RARG4); // length (reloaded)
aoqi@1 2113 Register sco_temp = c_rarg3; // this register is free now
aoqi@1 2114 assert_different_registers(from, to, count, sco_temp,
aoqi@1 2115 r11_dst_klass, r10_src_klass);
aoqi@1 2116 assert_clean_int(count, sco_temp);
aoqi@1 2117
aoqi@1 2118 // Generate the type check.
aoqi@1 2119 int sco_offset = (klassOopDesc::header_size() * HeapWordSize +
aoqi@1 2120 Klass::super_check_offset_offset_in_bytes());
aoqi@1 2121 __ movl(sco_temp, Address(r11_dst_klass, sco_offset));
aoqi@1 2122 assert_clean_int(sco_temp, rax);
aoqi@1 2123 generate_type_check(r10_src_klass, sco_temp, r11_dst_klass, L_plain_copy);
aoqi@1 2124
aoqi@1 2125 // Fetch destination element klass from the objArrayKlass header.
aoqi@1 2126 int ek_offset = (klassOopDesc::header_size() * HeapWordSize +
aoqi@1 2127 objArrayKlass::element_klass_offset_in_bytes());
aoqi@1 2128 __ movptr(r11_dst_klass, Address(r11_dst_klass, ek_offset));
aoqi@1 2129 __ movl(sco_temp, Address(r11_dst_klass, sco_offset));
aoqi@1 2130 assert_clean_int(sco_temp, rax);
aoqi@1 2131
aoqi@1 2132 // the checkcast_copy loop needs two extra arguments:
aoqi@1 2133 assert(c_rarg3 == sco_temp, "#3 already in place");
aoqi@1 2134 __ movptr(C_RARG4, r11_dst_klass); // dst.klass.element_klass
aoqi@1 2135 __ jump(RuntimeAddress(checkcast_copy_entry));
aoqi@1 2136 }
aoqi@1 2137
aoqi@1 2138 __ BIND(L_failed);
aoqi@1 2139 __ xorptr(rax, rax);
aoqi@1 2140 __ notptr(rax); // return -1
aoqi@1 2141 __ leave(); // required for proper stackwalking of RuntimeStub frame
aoqi@1 2142 __ ret(0);
aoqi@1 2143
aoqi@1 2144 return start;
aoqi@1 2145 }
aoqi@1 2146
aoqi@1 2147 #undef length_arg
aoqi@1 2148 #endif
aoqi@1 2149
aoqi@1 2150 //FIXME
aoqi@1 2151 address generate_disjoint_long_copy(bool aligned, const char *name) {
aoqi@1 2152 Label l_1, l_2;
aoqi@1 2153 StubCodeMark mark(this, "StubRoutines", name);
aoqi@1 2154 __ align(CodeEntryAlignment);
aoqi@1 2155 address start = __ pc();
aoqi@1 2156
aoqi@1 2157 // __ movl(ecx, Address(esp, 4+8)); // count
aoqi@1 2158 // __ movl(eax, Address(esp, 4+0)); // from
aoqi@1 2159 // __ movl(edx, Address(esp, 4+4)); // to
aoqi@1 2160 __ move(T1, A2);
aoqi@1 2161 __ move(T3, A0);
aoqi@1 2162 __ move(T0, A1);
aoqi@1 2163 __ push(T3);
aoqi@1 2164 __ push(T0);
aoqi@1 2165 __ push(T1);
aoqi@1 2166 //__ subl(edx, eax);
aoqi@1 2167 //__ jmp(l_2);
aoqi@1 2168 __ b(l_2);
aoqi@1 2169 __ delayed()->nop();
aoqi@1 2170 __ align(16);
aoqi@1 2171 __ bind(l_1);
aoqi@1 2172 // if (VM_Version::supports_mmx()) {
aoqi@1 2173 // __ movq(mmx0, Address(eax));
aoqi@1 2174 // __ movq(Address(eax, edx, Address::times_1), mmx0);
aoqi@1 2175 // } else {
aoqi@1 2176 // __ fild_d(Address(eax));
aoqi@1 2177 __ ld(AT, T3, 0);
aoqi@1 2178 // __ fistp_d(Address(eax, edx, Address::times_1));
aoqi@1 2179 __ sd (AT, T0, 0);
aoqi@1 2180 // }
aoqi@1 2181 // __ addl(eax, 8);
aoqi@1 2182 __ addi(T3, T3, 8);
aoqi@1 2183 __ addi(T0, T0, 8);
aoqi@1 2184 __ bind(l_2);
aoqi@1 2185 // __ decl(ecx);
aoqi@1 2186 __ addi(T1, T1, -1);
aoqi@1 2187 // __ jcc(Assembler::greaterEqual, l_1);
aoqi@1 2188 __ bgez(T1, l_1);
aoqi@1 2189 __ delayed()->nop();
aoqi@1 2190 // if (VM_Version::supports_mmx()) {
aoqi@1 2191 // __ emms();
aoqi@1 2192 // }
aoqi@1 2193 // __ ret(0);
aoqi@1 2194 __ pop(T1);
aoqi@1 2195 __ pop(T0);
aoqi@1 2196 __ pop(T3);
aoqi@1 2197 __ jr(RA);
aoqi@1 2198 __ delayed()->nop();
aoqi@1 2199 return start;
aoqi@1 2200 }
aoqi@1 2201
aoqi@1 2202
aoqi@1 2203 address generate_conjoint_long_copy(bool aligned, const char *name) {
aoqi@1 2204 Label l_1, l_2;
aoqi@1 2205 StubCodeMark mark(this, "StubRoutines", name);
aoqi@1 2206 __ align(CodeEntryAlignment);
aoqi@1 2207 address start = __ pc();
aoqi@1 2208 address nooverlap_target = aligned ?
aoqi@1 2209 StubRoutines::arrayof_jlong_disjoint_arraycopy() :
aoqi@1 2210 StubRoutines::jlong_disjoint_arraycopy();
aoqi@1 2211 array_overlap_test(nooverlap_target, 3);
aoqi@1 2212
aoqi@1 2213 __ push(T3);
aoqi@1 2214 __ push(T0);
aoqi@1 2215 __ push(T1);
aoqi@1 2216
aoqi@1 2217 /* __ movl(ecx, Address(esp, 4+8)); // count
aoqi@1 2218 __ movl(eax, Address(esp, 4+0)); // from
aoqi@1 2219 __ movl(edx, Address(esp, 4+4)); // to
aoqi@1 2220 __ jmp(l_2);
aoqi@1 2221
aoqi@1 2222 */
aoqi@1 2223 __ move(T1, A2);
aoqi@1 2224 __ move(T3, A0);
aoqi@1 2225 __ move(T0, A1);
aoqi@1 2226 __ sll(AT, T1, Address::times_8);
aoqi@1 2227 __ add(AT, T3, AT);
aoqi@1 2228 __ lea(T3 , Address(AT, -8));
aoqi@1 2229 __ sll(AT, T1, Address::times_8);
aoqi@1 2230 __ add(AT, T0, AT);
aoqi@1 2231 __ lea(T0 , Address(AT, -8));
aoqi@1 2232
aoqi@1 2233
aoqi@1 2234
aoqi@1 2235 __ b(l_2);
aoqi@1 2236 __ delayed()->nop();
aoqi@1 2237 __ align(16);
aoqi@1 2238 __ bind(l_1);
aoqi@1 2239 /* if (VM_Version::supports_mmx()) {
aoqi@1 2240 __ movq(mmx0, Address(eax, ecx, Address::times_8));
aoqi@1 2241 __ movq(Address(edx, ecx,Address::times_8), mmx0);
aoqi@1 2242 } else {
aoqi@1 2243 __ fild_d(Address(eax, ecx, Address::times_8));
aoqi@1 2244 __ fistp_d(Address(edx, ecx,Address::times_8));
aoqi@1 2245 }
aoqi@1 2246 */
aoqi@1 2247 __ ld(AT, T3, 0);
aoqi@1 2248 __ sd (AT, T0, 0);
aoqi@1 2249 __ addi(T3, T3, -8);
aoqi@1 2250 __ addi(T0, T0,-8);
aoqi@1 2251 __ bind(l_2);
aoqi@1 2252 // __ decl(ecx);
aoqi@1 2253 __ addi(T1, T1, -1);
aoqi@1 2254 //__ jcc(Assembler::greaterEqual, l_1);
aoqi@1 2255 __ bgez(T1, l_1);
aoqi@1 2256 __ delayed()->nop();
aoqi@1 2257 // if (VM_Version::supports_mmx()) {
aoqi@1 2258 // __ emms();
aoqi@1 2259 // }
aoqi@1 2260 // __ ret(0);
aoqi@1 2261 __ pop(T1);
aoqi@1 2262 __ pop(T0);
aoqi@1 2263 __ pop(T3);
aoqi@1 2264 __ jr(RA);
aoqi@1 2265 __ delayed()->nop();
aoqi@1 2266 return start;
aoqi@1 2267 }
aoqi@1 2268
aoqi@1 2269 void generate_arraycopy_stubs() {
aoqi@1 2270 if (UseCompressedOops) {
aoqi@1 2271 StubRoutines::_oop_disjoint_arraycopy = generate_disjoint_int_oop_copy(false, true, "oop_disjoint_arraycopy");
aoqi@1 2272 StubRoutines::_oop_arraycopy = generate_conjoint_int_oop_copy(false, true, "oop_arraycopy");
aoqi@1 2273 } else {
aoqi@1 2274 StubRoutines::_oop_disjoint_arraycopy = generate_disjoint_long_oop_copy(false, true, "oop_disjoint_arraycopy");
aoqi@1 2275 StubRoutines::_oop_arraycopy = generate_conjoint_long_oop_copy(false, true, "oop_arraycopy");
aoqi@1 2276 }
aoqi@1 2277
aoqi@1 2278 StubRoutines::_jbyte_disjoint_arraycopy = generate_disjoint_byte_copy(false, "jbyte_disjoint_arraycopy");
aoqi@1 2279 StubRoutines::_jshort_disjoint_arraycopy = generate_disjoint_short_copy(false, "jshort_disjoint_arraycopy");
aoqi@1 2280 StubRoutines::_jint_disjoint_arraycopy = generate_disjoint_int_oop_copy(false, false, "jint_disjoint_arraycopy");
aoqi@1 2281 StubRoutines::_jlong_disjoint_arraycopy = generate_disjoint_long_copy(false, "jlong_disjoint_arraycopy");
aoqi@1 2282 StubRoutines::_arrayof_jbyte_disjoint_arraycopy = generate_disjoint_byte_copy(true, "arrayof_jbyte_disjoint_arraycopy");
aoqi@1 2283
aoqi@1 2284 // if (VM_Version::supports_mmx())
aoqi@1 2285 //if (false)
aoqi@1 2286 // StubRoutines::_arrayof_jshort_disjoint_arraycopy = generate_disjoint_short_mmx_copy_aligned("arrayof_jshort_disjoint_arraycopy");
aoqi@1 2287 // else
aoqi@1 2288 StubRoutines::_arrayof_jshort_disjoint_arraycopy = generate_disjoint_short_copy(true, "arrayof_jshort_disjoint_arraycopy");
aoqi@1 2289 StubRoutines::_arrayof_jint_disjoint_arraycopy = generate_disjoint_int_oop_copy(true, false, "arrayof_jint_disjoint_arraycopy");
aoqi@1 2290 //StubRoutines::_arrayof_oop_disjoint_arraycopy = generate_disjoint_int_oop_copy(true, true, "arrayof_oop_disjoint_arraycopy");
aoqi@1 2291 StubRoutines::_arrayof_jlong_disjoint_arraycopy = generate_disjoint_long_copy(true, "arrayof_jlong_disjoint_arraycopy");
aoqi@1 2292
aoqi@1 2293 StubRoutines::_jbyte_arraycopy = generate_conjoint_byte_copy(false, "jbyte_arraycopy");
aoqi@1 2294 StubRoutines::_jshort_arraycopy = generate_conjoint_short_copy(false, "jshort_arraycopy");
aoqi@1 2295 StubRoutines::_jint_arraycopy = generate_conjoint_int_oop_copy(false, false, "jint_arraycopy");
aoqi@1 2296 StubRoutines::_jlong_arraycopy = generate_conjoint_long_copy(false, "jlong_arraycopy");
aoqi@1 2297
aoqi@1 2298 StubRoutines::_arrayof_jbyte_arraycopy = generate_conjoint_byte_copy(true, "arrayof_jbyte_arraycopy");
aoqi@1 2299 StubRoutines::_arrayof_jshort_arraycopy = generate_conjoint_short_copy(true, "arrayof_jshort_arraycopy");
aoqi@1 2300 StubRoutines::_arrayof_jint_arraycopy = generate_conjoint_int_oop_copy(true, false, "arrayof_jint_arraycopy");
aoqi@1 2301 //StubRoutines::_arrayof_oop_arraycopy = generate_conjoint_int_oop_copy(true, true, "arrayof_oop_arraycopy");
aoqi@1 2302 StubRoutines::_arrayof_jlong_arraycopy = generate_conjoint_long_copy(true, "arrayof_jlong_arraycopy");
aoqi@1 2303
aoqi@1 2304 StubRoutines::_arrayof_oop_disjoint_arraycopy = StubRoutines::_oop_disjoint_arraycopy;
aoqi@1 2305 StubRoutines::_arrayof_oop_arraycopy = StubRoutines::_oop_arraycopy;
aoqi@1 2306 }
aoqi@1 2307
aoqi@1 2308 //Wang: add a function to implement SafeFetch32 and SafeFetchN
aoqi@1 2309 void generate_safefetch(const char* name, int size, address* entry,
aoqi@1 2310 address* fault_pc, address* continuation_pc) {
aoqi@1 2311 // safefetch signatures:
aoqi@1 2312 // int SafeFetch32(int* adr, int errValue);
aoqi@1 2313 // intptr_t SafeFetchN (intptr_t* adr, intptr_t errValue);
aoqi@1 2314 //
aoqi@1 2315 // arguments:
aoqi@1 2316 // A0 = adr
aoqi@1 2317 // A1 = errValue
aoqi@1 2318 //
aoqi@1 2319 // result:
aoqi@1 2320 // PPC_RET = *adr or errValue
aoqi@1 2321
aoqi@1 2322 StubCodeMark mark(this, "StubRoutines", name);
aoqi@1 2323
aoqi@1 2324 // Entry point, pc or function descriptor.
aoqi@1 2325 *entry = __ pc();
aoqi@1 2326
aoqi@1 2327 // Load *adr into A1, may fault.
aoqi@1 2328 *fault_pc = __ pc();
aoqi@1 2329 switch (size) {
aoqi@1 2330 case 4:
aoqi@1 2331 // int32_t
aoqi@1 2332 __ lw(A1, A0, 0);
aoqi@1 2333 break;
aoqi@1 2334 case 8:
aoqi@1 2335 // int64_t
aoqi@1 2336 __ ld(A1, A0, 0);
aoqi@1 2337 break;
aoqi@1 2338 default:
aoqi@1 2339 ShouldNotReachHere();
aoqi@1 2340 }
aoqi@1 2341
aoqi@1 2342 // return errValue or *adr
aoqi@1 2343 *continuation_pc = __ pc();
aoqi@1 2344 __ addu(V0,A1,R0);
aoqi@1 2345 __ jr(RA);
aoqi@1 2346 __ delayed()->nop();
aoqi@1 2347 }
aoqi@1 2348
aoqi@1 2349
aoqi@1 2350 #undef __
aoqi@1 2351 #define __ masm->
aoqi@1 2352
aoqi@1 2353 // Continuation point for throwing of implicit exceptions that are
aoqi@1 2354 // not handled in the current activation. Fabricates an exception
aoqi@1 2355 // oop and initiates normal exception dispatching in this
aoqi@1 2356 // frame. Since we need to preserve callee-saved values (currently
aoqi@1 2357 // only for C2, but done for C1 as well) we need a callee-saved oop
aoqi@1 2358 // map and therefore have to make these stubs into RuntimeStubs
aoqi@1 2359 // rather than BufferBlobs. If the compiler needs all registers to
aoqi@1 2360 // be preserved between the fault point and the exception handler
aoqi@1 2361 // then it must assume responsibility for that in
aoqi@1 2362 // AbstractCompiler::continuation_for_implicit_null_exception or
aoqi@1 2363 // continuation_for_implicit_division_by_zero_exception. All other
aoqi@1 2364 // implicit exceptions (e.g., NullPointerException or
aoqi@1 2365 // AbstractMethodError on entry) are either at call sites or
aoqi@1 2366 // otherwise assume that stack unwinding will be initiated, so
aoqi@1 2367 // caller saved registers were assumed volatile in the compiler.
aoqi@1 2368 address generate_throw_exception(const char* name,
aoqi@1 2369 address runtime_entry,
aoqi@1 2370 bool restore_saved_exception_pc) {
aoqi@1 2371 // Information about frame layout at time of blocking runtime call.
aoqi@1 2372 // Note that we only have to preserve callee-saved registers since
aoqi@1 2373 // the compilers are responsible for supplying a continuation point
aoqi@1 2374 // if they expect all registers to be preserved.
aoqi@1 2375 //#define aoqi_test
aoqi@1 2376 #ifdef aoqi_test
aoqi@1 2377 tty->print_cr("%s:%d name:%s", __func__, __LINE__, name);
aoqi@1 2378 #endif
aoqi@1 2379 enum layout {
aoqi@1 2380 thread_off, // last_java_sp
aoqi@1 2381 S7_off, // callee saved register sp + 1
aoqi@1 2382 S6_off, // callee saved register sp + 2
aoqi@1 2383 S5_off, // callee saved register sp + 3
aoqi@1 2384 S4_off, // callee saved register sp + 4
aoqi@1 2385 S3_off, // callee saved register sp + 5
aoqi@1 2386 S2_off, // callee saved register sp + 6
aoqi@1 2387 S1_off, // callee saved register sp + 7
aoqi@1 2388 S0_off, // callee saved register sp + 8
aoqi@1 2389 FP_off,
aoqi@1 2390 ret_address,
aoqi@1 2391 framesize
aoqi@1 2392 };
aoqi@1 2393
aoqi@1 2394 int insts_size = 2048;
aoqi@1 2395 int locs_size = 32;
aoqi@1 2396
aoqi@1 2397 // CodeBuffer* code = new CodeBuffer(insts_size, locs_size, 0, 0, 0, false,
aoqi@1 2398 // NULL, NULL, NULL, false, NULL, name, false);
aoqi@1 2399 CodeBuffer code (name , insts_size, locs_size);
aoqi@1 2400 #ifdef aoqi_test
aoqi@1 2401 tty->print_cr("%s:%d name:%s", __func__, __LINE__, name);
aoqi@1 2402 #endif
aoqi@1 2403 OopMapSet* oop_maps = new OopMapSet();
aoqi@1 2404 #ifdef aoqi_test
aoqi@1 2405 tty->print_cr("%s:%d name:%s", __func__, __LINE__, name);
aoqi@1 2406 #endif
aoqi@1 2407 MacroAssembler* masm = new MacroAssembler(&code);
aoqi@1 2408 #ifdef aoqi_test
aoqi@1 2409 tty->print_cr("%s:%d name:%s", __func__, __LINE__, name);
aoqi@1 2410 #endif
aoqi@1 2411
aoqi@1 2412 address start = __ pc();
aoqi@1 2413 //__ stop("generate_throw_exception");
aoqi@1 2414 /*
aoqi@1 2415 __ move(AT, (int)&jerome1 );
aoqi@1 2416 __ sw(SP, AT, 0);
aoqi@1 2417 __ move(AT, (int)&jerome2 );
aoqi@1 2418 __ sw(FP, AT, 0);
aoqi@1 2419 __ move(AT, (int)&jerome3 );
aoqi@1 2420 __ sw(RA, AT, 0);
aoqi@1 2421 __ move(AT, (int)&jerome4 );
aoqi@1 2422 __ sw(R0, AT, 0);
aoqi@1 2423 __ move(AT, (int)&jerome5 );
aoqi@1 2424 __ sw(R0, AT, 0);
aoqi@1 2425 __ move(AT, (int)&jerome6 );
aoqi@1 2426 __ sw(R0, AT, 0);
aoqi@1 2427 __ move(AT, (int)&jerome7 );
aoqi@1 2428 __ sw(R0, AT, 0);
aoqi@1 2429 __ move(AT, (int)&jerome10 );
aoqi@1 2430 __ sw(R0, AT, 0);
aoqi@1 2431
aoqi@1 2432 __ pushad();
aoqi@1 2433
aoqi@1 2434 //__ enter();
aoqi@1 2435 __ call(CAST_FROM_FN_PTR(address, SharedRuntime::print_call_statistics),
aoqi@1 2436 relocInfo::runtime_call_type);
aoqi@1 2437 __ delayed()->nop();
aoqi@1 2438
aoqi@1 2439 //__ leave();
aoqi@1 2440 __ popad();
aoqi@1 2441
aoqi@1 2442 */
aoqi@1 2443
aoqi@1 2444 // This is an inlined and slightly modified version of call_VM
aoqi@1 2445 // which has the ability to fetch the return PC out of
aoqi@1 2446 // thread-local storage and also sets up last_Java_sp slightly
aoqi@1 2447 // differently than the real call_VM
aoqi@1 2448 #ifndef OPT_THREAD
aoqi@1 2449 Register java_thread = TREG;
aoqi@1 2450 __ get_thread(java_thread);
aoqi@1 2451 #else
aoqi@1 2452 Register java_thread = TREG;
aoqi@1 2453 #endif
aoqi@1 2454 #ifdef aoqi_test
aoqi@1 2455 tty->print_cr("%s:%d name:%s", __func__, __LINE__, name);
aoqi@1 2456 #endif
aoqi@1 2457 if (restore_saved_exception_pc) {
aoqi@1 2458 __ ld(RA, java_thread, in_bytes(JavaThread::saved_exception_pc_offset())); // eax
aoqi@1 2459 }
aoqi@1 2460
aoqi@1 2461 __ enter(); // required for proper stackwalking of RuntimeStub frame
aoqi@1 2462
aoqi@1 2463 __ addi(SP, SP, (-1) * (framesize-2) * wordSize); // prolog
aoqi@1 2464 __ sd(S0, SP, S0_off * wordSize);
aoqi@1 2465 __ sd(S1, SP, S1_off * wordSize);
aoqi@1 2466 __ sd(S2, SP, S2_off * wordSize);
aoqi@1 2467 __ sd(S3, SP, S3_off * wordSize);
aoqi@1 2468 __ sd(S4, SP, S4_off * wordSize);
aoqi@1 2469 __ sd(S5, SP, S5_off * wordSize);
aoqi@1 2470 __ sd(S6, SP, S6_off * wordSize);
aoqi@1 2471 __ sd(S7, SP, S7_off * wordSize);
aoqi@1 2472
aoqi@1 2473 int frame_complete = __ pc() - start;
aoqi@1 2474 // push java thread (becomes first argument of C function)
aoqi@1 2475 __ sd(java_thread, SP, thread_off * wordSize);
aoqi@1 2476 if (java_thread!=A0)
aoqi@1 2477 __ move(A0, java_thread);
aoqi@1 2478
aoqi@1 2479 // Set up last_Java_sp and last_Java_fp
aoqi@1 2480 __ set_last_Java_frame(java_thread, SP, FP, NULL);
aoqi@1 2481 __ relocate(relocInfo::internal_pc_type);
aoqi@1 2482 {
aoqi@1 2483 intptr_t save_pc = (intptr_t)__ pc() + NativeMovConstReg::instruction_size + NativeCall::return_address_offset + 4;
aoqi@1 2484 __ li48(AT, save_pc);
aoqi@1 2485 }
aoqi@1 2486 __ sd(AT, java_thread, in_bytes(JavaThread::last_Java_pc_offset()));
aoqi@1 2487
aoqi@1 2488 // Call runtime
aoqi@1 2489 __ call(runtime_entry);
aoqi@1 2490 __ delayed()->nop();
aoqi@1 2491 // Generate oop map
aoqi@1 2492 OopMap* map = new OopMap(framesize, 0);
aoqi@1 2493 oop_maps->add_gc_map(__ offset(), map);
aoqi@1 2494
aoqi@1 2495 // restore the thread (cannot use the pushed argument since arguments
aoqi@1 2496 // may be overwritten by C code generated by an optimizing compiler);
aoqi@1 2497 // however can use the register value directly if it is callee saved.
aoqi@1 2498 #ifndef OPT_THREAD
aoqi@1 2499 __ get_thread(java_thread);
aoqi@1 2500 #endif
aoqi@1 2501
aoqi@1 2502 __ ld(SP, java_thread, in_bytes(JavaThread::last_Java_sp_offset()));
aoqi@1 2503 // __ reset_last_Java_frame(java_thread, true);
aoqi@1 2504 __ reset_last_Java_frame(java_thread, true, true);
aoqi@1 2505
aoqi@1 2506 // Restore callee save registers. This must be done after resetting the Java frame
aoqi@1 2507 __ ld(S0, SP, S0_off * wordSize);
aoqi@1 2508 __ ld(S1, SP, S1_off * wordSize);
aoqi@1 2509 __ ld(S2, SP, S2_off * wordSize);
aoqi@1 2510 __ ld(S3, SP, S3_off * wordSize);
aoqi@1 2511 __ ld(S4, SP, S4_off * wordSize);
aoqi@1 2512 __ ld(S5, SP, S5_off * wordSize);
aoqi@1 2513 __ ld(S6, SP, S6_off * wordSize);
aoqi@1 2514 __ ld(S7, SP, S7_off * wordSize);
aoqi@1 2515
aoqi@1 2516 // discard arguments
aoqi@1 2517 __ addi(SP, SP, (framesize-2) * wordSize); // epilog
aoqi@1 2518 // __ leave(); // required for proper stackwalking of RuntimeStub frame
aoqi@1 2519 __ addi(SP, FP, wordSize);
aoqi@1 2520 __ ld(FP, SP, -1*wordSize);
aoqi@1 2521 // check for pending exceptions
aoqi@1 2522 #ifdef ASSERT
aoqi@1 2523 Label L;
aoqi@1 2524 __ lw(AT, java_thread, in_bytes(Thread::pending_exception_offset()));
aoqi@1 2525 __ bne(AT, R0, L);
aoqi@1 2526 __ delayed()->nop();
aoqi@1 2527 __ should_not_reach_here();
aoqi@1 2528 __ bind(L);
aoqi@1 2529 #endif //ASSERT
aoqi@1 2530 __ jmp(StubRoutines::forward_exception_entry(), relocInfo::runtime_call_type);
aoqi@1 2531 __ delayed()->nop();
aoqi@1 2532 #ifdef aoqi_test
aoqi@1 2533 tty->print_cr("%s:%d name:%s", __func__, __LINE__, name);
aoqi@1 2534 #endif
aoqi@1 2535 RuntimeStub* stub = RuntimeStub::new_runtime_stub(name, &code,frame_complete,
aoqi@1 2536 framesize, oop_maps, false);
aoqi@1 2537 #ifdef aoqi_test
aoqi@1 2538 tty->print_cr("%s:%d name:%s", __func__, __LINE__, name);
aoqi@1 2539 #endif
aoqi@1 2540 return stub->entry_point();
aoqi@1 2541 }
aoqi@1 2542
aoqi@1 2543 // Initialization
aoqi@1 2544 void generate_initial() {
aoqi@1 2545 /*
aoqi@1 2546 // Generates all stubs and initializes the entry points
aoqi@1 2547
aoqi@1 2548 // This platform-specific stub is needed by generate_call_stub()
aoqi@1 2549 StubRoutines::mips::_mxcsr_std = generate_fp_mask("mxcsr_std", 0x0000000000001F80);
aoqi@1 2550
aoqi@1 2551 // entry points that exist in all platforms Note: This is code
aoqi@1 2552 // that could be shared among different platforms - however the
aoqi@1 2553 // benefit seems to be smaller than the disadvantage of having a
aoqi@1 2554 // much more complicated generator structure. See also comment in
aoqi@1 2555 // stubRoutines.hpp.
aoqi@1 2556
aoqi@1 2557 StubRoutines::_forward_exception_entry = generate_forward_exception();
aoqi@1 2558
aoqi@1 2559 StubRoutines::_call_stub_entry =
aoqi@1 2560 generate_call_stub(StubRoutines::_call_stub_return_address);
aoqi@1 2561
aoqi@1 2562 // is referenced by megamorphic call
aoqi@1 2563 StubRoutines::_catch_exception_entry = generate_catch_exception();
aoqi@1 2564
aoqi@1 2565 // atomic calls
aoqi@1 2566 StubRoutines::_atomic_xchg_entry = generate_atomic_xchg();
aoqi@1 2567 StubRoutines::_atomic_xchg_ptr_entry = generate_atomic_xchg_ptr();
aoqi@1 2568 StubRoutines::_atomic_cmpxchg_entry = generate_atomic_cmpxchg();
aoqi@1 2569 StubRoutines::_atomic_cmpxchg_long_entry = generate_atomic_cmpxchg_long();
aoqi@1 2570 StubRoutines::_atomic_add_entry = generate_atomic_add();
aoqi@1 2571 StubRoutines::_atomic_add_ptr_entry = generate_atomic_add_ptr();
aoqi@1 2572 StubRoutines::_fence_entry = generate_orderaccess_fence();
aoqi@1 2573
aoqi@1 2574 StubRoutines::_handler_for_unsafe_access_entry =
aoqi@1 2575 generate_handler_for_unsafe_access();
aoqi@1 2576
aoqi@1 2577 // platform dependent
aoqi@1 2578 StubRoutines::mips::_get_previous_fp_entry = generate_get_previous_fp();
aoqi@1 2579
aoqi@1 2580 StubRoutines::mips::_verify_mxcsr_entry = generate_verify_mxcsr();
aoqi@1 2581 */
aoqi@1 2582 // Generates all stubs and initializes the entry points
aoqi@1 2583
aoqi@1 2584 //-------------------------------------------------------------
aoqi@1 2585 //-----------------------------------------------------------
aoqi@1 2586 // entry points that exist in all platforms
aoqi@1 2587 // Note: This is code that could be shared among different platforms - however the benefit seems to be smaller
aoqi@1 2588 // than the disadvantage of having a much more complicated generator structure.
aoqi@1 2589 // See also comment in stubRoutines.hpp.
aoqi@1 2590 StubRoutines::_forward_exception_entry = generate_forward_exception();
aoqi@1 2591 StubRoutines::_call_stub_entry = generate_call_stub(StubRoutines::_call_stub_return_address);
aoqi@1 2592 // is referenced by megamorphic call
aoqi@1 2593 StubRoutines::_catch_exception_entry = generate_catch_exception();
aoqi@1 2594
aoqi@1 2595 StubRoutines::_handler_for_unsafe_access_entry = generate_handler_for_unsafe_access();
aoqi@1 2596
aoqi@1 2597 // platform dependent
aoqi@1 2598 StubRoutines::gs2::_get_previous_fp_entry = generate_get_previous_fp();
aoqi@1 2599 }
aoqi@1 2600
aoqi@1 2601 void generate_all() {
aoqi@1 2602 #ifdef aoqi_test
aoqi@1 2603 tty->print_cr("%s:%d", __func__, __LINE__);
aoqi@1 2604 #endif
aoqi@1 2605 // Generates all stubs and initializes the entry points
aoqi@1 2606
aoqi@1 2607 // These entry points require SharedInfo::stack0 to be set up in
aoqi@1 2608 // non-core builds and need to be relocatable, so they each
aoqi@1 2609 // fabricate a RuntimeStub internally.
aoqi@1 2610 /*
aoqi@1 2611 StubRoutines::_throw_AbstractMethodError_entry =
aoqi@1 2612 generate_throw_exception("AbstractMethodError throw_exception",
aoqi@1 2613 CAST_FROM_FN_PTR(address,
aoqi@1 2614 SharedRuntime::
aoqi@1 2615 throw_AbstractMethodError),
aoqi@1 2616 false);
aoqi@1 2617
aoqi@1 2618 StubRoutines::_throw_IncompatibleClassChangeError_entry =
aoqi@1 2619 generate_throw_exception("IncompatibleClassChangeError throw_exception",
aoqi@1 2620 CAST_FROM_FN_PTR(address,
aoqi@1 2621 SharedRuntime::
aoqi@1 2622 throw_IncompatibleClassChangeError),
aoqi@1 2623 false);
aoqi@1 2624
aoqi@1 2625 StubRoutines::_throw_ArithmeticException_entry =
aoqi@1 2626 generate_throw_exception("ArithmeticException throw_exception",
aoqi@1 2627 CAST_FROM_FN_PTR(address,
aoqi@1 2628 SharedRuntime::
aoqi@1 2629 throw_ArithmeticException),
aoqi@1 2630 true);
aoqi@1 2631
aoqi@1 2632 StubRoutines::_throw_NullPointerException_entry =
aoqi@1 2633 generate_throw_exception("NullPointerException throw_exception",
aoqi@1 2634 CAST_FROM_FN_PTR(address,
aoqi@1 2635 SharedRuntime::
aoqi@1 2636 throw_NullPointerException),
aoqi@1 2637 true);
aoqi@1 2638
aoqi@1 2639 StubRoutines::_throw_NullPointerException_at_call_entry =
aoqi@1 2640 generate_throw_exception("NullPointerException at call throw_exception",
aoqi@1 2641 CAST_FROM_FN_PTR(address,
aoqi@1 2642 SharedRuntime::
aoqi@1 2643 throw_NullPointerException_at_call),
aoqi@1 2644 false);
aoqi@1 2645
aoqi@1 2646 StubRoutines::_throw_StackOverflowError_entry =
aoqi@1 2647 generate_throw_exception("StackOverflowError throw_exception",
aoqi@1 2648 CAST_FROM_FN_PTR(address,
aoqi@1 2649 SharedRuntime::
aoqi@1 2650 throw_StackOverflowError),
aoqi@1 2651 false);
aoqi@1 2652
aoqi@1 2653 // entry points that are platform specific
aoqi@1 2654 StubRoutines::mips::_f2i_fixup = generate_f2i_fixup();
aoqi@1 2655 StubRoutines::mips::_f2l_fixup = generate_f2l_fixup();
aoqi@1 2656 StubRoutines::mips::_d2i_fixup = generate_d2i_fixup();
aoqi@1 2657 StubRoutines::mips::_d2l_fixup = generate_d2l_fixup();
aoqi@1 2658
aoqi@1 2659 StubRoutines::mips::_float_sign_mask = generate_fp_mask("float_sign_mask", 0x7FFFFFFF7FFFFFFF);
aoqi@1 2660 StubRoutines::mips::_float_sign_flip = generate_fp_mask("float_sign_flip", 0x8000000080000000);
aoqi@1 2661 StubRoutines::mips::_double_sign_mask = generate_fp_mask("double_sign_mask", 0x7FFFFFFFFFFFFFFF);
aoqi@1 2662 StubRoutines::mips::_double_sign_flip = generate_fp_mask("double_sign_flip", 0x8000000000000000);
aoqi@1 2663
aoqi@1 2664 // support for verify_oop (must happen after universe_init)
aoqi@1 2665 StubRoutines::_verify_oop_subroutine_entry = generate_verify_oop();
aoqi@1 2666
aoqi@1 2667 // arraycopy stubs used by compilers
aoqi@1 2668 generate_arraycopy_stubs();
aoqi@1 2669 */
aoqi@1 2670 #ifdef aoqi_test
aoqi@1 2671 tty->print_cr("%s:%d", __func__, __LINE__);
aoqi@1 2672 #endif
aoqi@1 2673 StubRoutines::_throw_AbstractMethodError_entry = generate_throw_exception("AbstractMethodError throw_exception", CAST_FROM_FN_PTR(address, SharedRuntime::throw_AbstractMethodError), false);
aoqi@1 2674 #ifdef aoqi_test
aoqi@1 2675 tty->print_cr("%s:%d", __func__, __LINE__);
aoqi@1 2676 #endif
aoqi@1 2677 // StubRoutines::_throw_ArithmeticException_entry = generate_throw_exception("ArithmeticException throw_exception", CAST_FROM_FN_PTR(address, SharedRuntime::throw_ArithmeticException), true);
aoqi@1 2678 #ifdef aoqi_test
aoqi@1 2679 tty->print_cr("%s:%d", __func__, __LINE__);
aoqi@1 2680 #endif
aoqi@1 2681 // StubRoutines::_throw_NullPointerException_entry = generate_throw_exception("NullPointerException throw_exception", CAST_FROM_FN_PTR(address, SharedRuntime::throw_NullPointerException), true);
aoqi@1 2682 #ifdef aoqi_test
aoqi@1 2683 tty->print_cr("%s:%d", __func__, __LINE__);
aoqi@1 2684 #endif
aoqi@1 2685 StubRoutines::_throw_NullPointerException_at_call_entry= generate_throw_exception("NullPointerException at call throw_exception", CAST_FROM_FN_PTR(address, SharedRuntime::throw_NullPointerException_at_call), false);
aoqi@1 2686 #ifdef aoqi_test
aoqi@1 2687 tty->print_cr("%s:%d", __func__, __LINE__);
aoqi@1 2688 #endif
aoqi@1 2689 StubRoutines::_throw_StackOverflowError_entry = generate_throw_exception("StackOverflowError throw_exception", CAST_FROM_FN_PTR(address, SharedRuntime::throw_StackOverflowError), false);
aoqi@1 2690 #ifdef aoqi_test
aoqi@1 2691 tty->print_cr("%s:%d", __func__, __LINE__);
aoqi@1 2692 #endif
aoqi@1 2693
aoqi@1 2694 //------------------------------------------------------
aoqi@1 2695 //------------------------------------------------------------------
aoqi@1 2696 // entry points that are platform specific
aoqi@1 2697
aoqi@1 2698 // support for verify_oop (must happen after universe_init)
aoqi@1 2699 #ifdef aoqi_test
aoqi@1 2700 tty->print_cr("%s:%d", __func__, __LINE__);
aoqi@1 2701 #endif
aoqi@1 2702 StubRoutines::_verify_oop_subroutine_entry = generate_verify_oop();
aoqi@1 2703 #ifdef aoqi_test
aoqi@1 2704 tty->print_cr("%s:%d", __func__, __LINE__);
aoqi@1 2705 #endif
aoqi@1 2706 #ifndef CORE
aoqi@1 2707 // arraycopy stubs used by compilers
aoqi@1 2708 generate_arraycopy_stubs();
aoqi@1 2709 #ifdef aoqi_test
aoqi@1 2710 tty->print_cr("%s:%d", __func__, __LINE__);
aoqi@1 2711 #endif
aoqi@1 2712 #endif
aoqi@1 2713
aoqi@1 2714 // Safefetch stubs.
aoqi@1 2715 generate_safefetch("SafeFetch32", sizeof(int), &StubRoutines::_safefetch32_entry,
aoqi@1 2716 &StubRoutines::_safefetch32_fault_pc,
aoqi@1 2717 &StubRoutines::_safefetch32_continuation_pc);
aoqi@1 2718 generate_safefetch("SafeFetchN", sizeof(intptr_t), &StubRoutines::_safefetchN_entry,
aoqi@1 2719 &StubRoutines::_safefetchN_fault_pc,
aoqi@1 2720 &StubRoutines::_safefetchN_continuation_pc);
aoqi@1 2721 }
aoqi@1 2722
aoqi@1 2723 public:
aoqi@1 2724 StubGenerator(CodeBuffer* code, bool all) : StubCodeGenerator(code) {
aoqi@1 2725 if (all) {
aoqi@1 2726 generate_all();
aoqi@1 2727 } else {
aoqi@1 2728 generate_initial();
aoqi@1 2729 }
aoqi@1 2730 }
aoqi@1 2731 }; // end class declaration
aoqi@1 2732 /*
aoqi@1 2733 address StubGenerator::disjoint_byte_copy_entry = NULL;
aoqi@1 2734 address StubGenerator::disjoint_short_copy_entry = NULL;
aoqi@1 2735 address StubGenerator::disjoint_int_copy_entry = NULL;
aoqi@1 2736 address StubGenerator::disjoint_long_copy_entry = NULL;
aoqi@1 2737 address StubGenerator::disjoint_oop_copy_entry = NULL;
aoqi@1 2738
aoqi@1 2739 address StubGenerator::byte_copy_entry = NULL;
aoqi@1 2740 address StubGenerator::short_copy_entry = NULL;
aoqi@1 2741 address StubGenerator::int_copy_entry = NULL;
aoqi@1 2742 address StubGenerator::long_copy_entry = NULL;
aoqi@1 2743 address StubGenerator::oop_copy_entry = NULL;
aoqi@1 2744
aoqi@1 2745 address StubGenerator::checkcast_copy_entry = NULL;
aoqi@1 2746 */
aoqi@1 2747 void StubGenerator_generate(CodeBuffer* code, bool all) {
aoqi@1 2748 StubGenerator g(code, all);
aoqi@1 2749 }

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