src/cpu/sparc/vm/templateInterpreter_sparc.cpp

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

author
iveresov
date
Tue, 30 Nov 2010 23:23:40 -0800
changeset 2344
ac637b7220d1
parent 2314
f95d63e2154a
child 2438
dd031b2226de
permissions
-rw-r--r--

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

duke@435 1 /*
trims@1907 2 * Copyright (c) 1997, 2010, Oracle and/or its affiliates. All rights reserved.
duke@435 3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
duke@435 4 *
duke@435 5 * This code is free software; you can redistribute it and/or modify it
duke@435 6 * under the terms of the GNU General Public License version 2 only, as
duke@435 7 * published by the Free Software Foundation.
duke@435 8 *
duke@435 9 * This code is distributed in the hope that it will be useful, but WITHOUT
duke@435 10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
duke@435 11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
duke@435 12 * version 2 for more details (a copy is included in the LICENSE file that
duke@435 13 * accompanied this code).
duke@435 14 *
duke@435 15 * You should have received a copy of the GNU General Public License version
duke@435 16 * 2 along with this work; if not, write to the Free Software Foundation,
duke@435 17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
duke@435 18 *
trims@1907 19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
trims@1907 20 * or visit www.oracle.com if you need additional information or have any
trims@1907 21 * questions.
duke@435 22 *
duke@435 23 */
duke@435 24
stefank@2314 25 #include "precompiled.hpp"
stefank@2314 26 #include "asm/assembler.hpp"
stefank@2314 27 #include "interpreter/bytecodeHistogram.hpp"
stefank@2314 28 #include "interpreter/interpreter.hpp"
stefank@2314 29 #include "interpreter/interpreterGenerator.hpp"
stefank@2314 30 #include "interpreter/interpreterRuntime.hpp"
stefank@2314 31 #include "interpreter/templateTable.hpp"
stefank@2314 32 #include "oops/arrayOop.hpp"
stefank@2314 33 #include "oops/methodDataOop.hpp"
stefank@2314 34 #include "oops/methodOop.hpp"
stefank@2314 35 #include "oops/oop.inline.hpp"
stefank@2314 36 #include "prims/jvmtiExport.hpp"
stefank@2314 37 #include "prims/jvmtiThreadState.hpp"
stefank@2314 38 #include "runtime/arguments.hpp"
stefank@2314 39 #include "runtime/deoptimization.hpp"
stefank@2314 40 #include "runtime/frame.inline.hpp"
stefank@2314 41 #include "runtime/sharedRuntime.hpp"
stefank@2314 42 #include "runtime/stubRoutines.hpp"
stefank@2314 43 #include "runtime/synchronizer.hpp"
stefank@2314 44 #include "runtime/timer.hpp"
stefank@2314 45 #include "runtime/vframeArray.hpp"
stefank@2314 46 #include "utilities/debug.hpp"
duke@435 47
duke@435 48 #ifndef CC_INTERP
duke@435 49 #ifndef FAST_DISPATCH
duke@435 50 #define FAST_DISPATCH 1
duke@435 51 #endif
duke@435 52 #undef FAST_DISPATCH
duke@435 53
duke@435 54
duke@435 55 // Generation of Interpreter
duke@435 56 //
duke@435 57 // The InterpreterGenerator generates the interpreter into Interpreter::_code.
duke@435 58
duke@435 59
duke@435 60 #define __ _masm->
duke@435 61
duke@435 62
duke@435 63 //----------------------------------------------------------------------------------------------------
duke@435 64
duke@435 65
duke@435 66 void InterpreterGenerator::save_native_result(void) {
duke@435 67 // result potentially in O0/O1: save it across calls
duke@435 68 const Address& l_tmp = InterpreterMacroAssembler::l_tmp;
duke@435 69
duke@435 70 // result potentially in F0/F1: save it across calls
duke@435 71 const Address& d_tmp = InterpreterMacroAssembler::d_tmp;
duke@435 72
duke@435 73 // save and restore any potential method result value around the unlocking operation
duke@435 74 __ stf(FloatRegisterImpl::D, F0, d_tmp);
duke@435 75 #ifdef _LP64
duke@435 76 __ stx(O0, l_tmp);
duke@435 77 #else
duke@435 78 __ std(O0, l_tmp);
duke@435 79 #endif
duke@435 80 }
duke@435 81
duke@435 82 void InterpreterGenerator::restore_native_result(void) {
duke@435 83 const Address& l_tmp = InterpreterMacroAssembler::l_tmp;
duke@435 84 const Address& d_tmp = InterpreterMacroAssembler::d_tmp;
duke@435 85
duke@435 86 // Restore any method result value
duke@435 87 __ ldf(FloatRegisterImpl::D, d_tmp, F0);
duke@435 88 #ifdef _LP64
duke@435 89 __ ldx(l_tmp, O0);
duke@435 90 #else
duke@435 91 __ ldd(l_tmp, O0);
duke@435 92 #endif
duke@435 93 }
duke@435 94
duke@435 95 address TemplateInterpreterGenerator::generate_exception_handler_common(const char* name, const char* message, bool pass_oop) {
duke@435 96 assert(!pass_oop || message == NULL, "either oop or message but not both");
duke@435 97 address entry = __ pc();
duke@435 98 // expression stack must be empty before entering the VM if an exception happened
duke@435 99 __ empty_expression_stack();
duke@435 100 // load exception object
duke@435 101 __ set((intptr_t)name, G3_scratch);
duke@435 102 if (pass_oop) {
duke@435 103 __ call_VM(Oexception, CAST_FROM_FN_PTR(address, InterpreterRuntime::create_klass_exception), G3_scratch, Otos_i);
duke@435 104 } else {
duke@435 105 __ set((intptr_t)message, G4_scratch);
duke@435 106 __ call_VM(Oexception, CAST_FROM_FN_PTR(address, InterpreterRuntime::create_exception), G3_scratch, G4_scratch);
duke@435 107 }
duke@435 108 // throw exception
duke@435 109 assert(Interpreter::throw_exception_entry() != NULL, "generate it first");
twisti@1162 110 AddressLiteral thrower(Interpreter::throw_exception_entry());
twisti@1162 111 __ jump_to(thrower, G3_scratch);
duke@435 112 __ delayed()->nop();
duke@435 113 return entry;
duke@435 114 }
duke@435 115
duke@435 116 address TemplateInterpreterGenerator::generate_ClassCastException_handler() {
duke@435 117 address entry = __ pc();
duke@435 118 // expression stack must be empty before entering the VM if an exception
duke@435 119 // happened
duke@435 120 __ empty_expression_stack();
duke@435 121 // load exception object
duke@435 122 __ call_VM(Oexception,
duke@435 123 CAST_FROM_FN_PTR(address,
duke@435 124 InterpreterRuntime::throw_ClassCastException),
duke@435 125 Otos_i);
duke@435 126 __ should_not_reach_here();
duke@435 127 return entry;
duke@435 128 }
duke@435 129
duke@435 130
jrose@1145 131 // Arguments are: required type in G5_method_type, and
jrose@1145 132 // failing object (or NULL) in G3_method_handle.
jrose@1145 133 address TemplateInterpreterGenerator::generate_WrongMethodType_handler() {
jrose@1145 134 address entry = __ pc();
jrose@1145 135 // expression stack must be empty before entering the VM if an exception
jrose@1145 136 // happened
jrose@1145 137 __ empty_expression_stack();
jrose@1145 138 // load exception object
jrose@1145 139 __ call_VM(Oexception,
jrose@1145 140 CAST_FROM_FN_PTR(address,
jrose@1145 141 InterpreterRuntime::throw_WrongMethodTypeException),
jrose@1145 142 G5_method_type, // required
jrose@1145 143 G3_method_handle); // actual
jrose@1145 144 __ should_not_reach_here();
jrose@1145 145 return entry;
jrose@1145 146 }
jrose@1145 147
jrose@1145 148
duke@435 149 address TemplateInterpreterGenerator::generate_ArrayIndexOutOfBounds_handler(const char* name) {
duke@435 150 address entry = __ pc();
duke@435 151 // expression stack must be empty before entering the VM if an exception happened
duke@435 152 __ empty_expression_stack();
duke@435 153 // convention: expect aberrant index in register G3_scratch, then shuffle the
duke@435 154 // index to G4_scratch for the VM call
duke@435 155 __ mov(G3_scratch, G4_scratch);
duke@435 156 __ set((intptr_t)name, G3_scratch);
duke@435 157 __ call_VM(Oexception, CAST_FROM_FN_PTR(address, InterpreterRuntime::throw_ArrayIndexOutOfBoundsException), G3_scratch, G4_scratch);
duke@435 158 __ should_not_reach_here();
duke@435 159 return entry;
duke@435 160 }
duke@435 161
duke@435 162
duke@435 163 address TemplateInterpreterGenerator::generate_StackOverflowError_handler() {
duke@435 164 address entry = __ pc();
duke@435 165 // expression stack must be empty before entering the VM if an exception happened
duke@435 166 __ empty_expression_stack();
duke@435 167 __ call_VM(Oexception, CAST_FROM_FN_PTR(address, InterpreterRuntime::throw_StackOverflowError));
duke@435 168 __ should_not_reach_here();
duke@435 169 return entry;
duke@435 170 }
duke@435 171
duke@435 172
jrose@1494 173 address TemplateInterpreterGenerator::generate_return_entry_for(TosState state, int step) {
twisti@1858 174 TosState incoming_state = state;
twisti@1858 175
twisti@1858 176 Label cont;
duke@435 177 address compiled_entry = __ pc();
duke@435 178
duke@435 179 address entry = __ pc();
duke@435 180 #if !defined(_LP64) && defined(COMPILER2)
duke@435 181 // All return values are where we want them, except for Longs. C2 returns
duke@435 182 // longs in G1 in the 32-bit build whereas the interpreter wants them in O0/O1.
duke@435 183 // Since the interpreter will return longs in G1 and O0/O1 in the 32bit
duke@435 184 // build even if we are returning from interpreted we just do a little
duke@435 185 // stupid shuffing.
duke@435 186 // Note: I tried to make c2 return longs in O0/O1 and G1 so we wouldn't have to
duke@435 187 // do this here. Unfortunately if we did a rethrow we'd see an machepilog node
duke@435 188 // first which would move g1 -> O0/O1 and destroy the exception we were throwing.
duke@435 189
twisti@1858 190 if (incoming_state == ltos) {
twisti@1858 191 __ srl (G1, 0, O1);
twisti@1858 192 __ srlx(G1, 32, O0);
duke@435 193 }
twisti@1858 194 #endif // !_LP64 && COMPILER2
duke@435 195
duke@435 196 __ bind(cont);
duke@435 197
duke@435 198 // The callee returns with the stack possibly adjusted by adapter transition
duke@435 199 // We remove that possible adjustment here.
duke@435 200 // All interpreter local registers are untouched. Any result is passed back
duke@435 201 // in the O0/O1 or float registers. Before continuing, the arguments must be
duke@435 202 // popped from the java expression stack; i.e., Lesp must be adjusted.
duke@435 203
duke@435 204 __ mov(Llast_SP, SP); // Remove any adapter added stack space.
duke@435 205
twisti@1858 206 Label L_got_cache, L_giant_index;
duke@435 207 const Register cache = G3_scratch;
duke@435 208 const Register size = G1_scratch;
twisti@1858 209 if (EnableInvokeDynamic) {
twisti@1858 210 __ ldub(Address(Lbcp, 0), G1_scratch); // Load current bytecode.
twisti@1858 211 __ cmp(G1_scratch, Bytecodes::_invokedynamic);
twisti@1858 212 __ br(Assembler::equal, false, Assembler::pn, L_giant_index);
twisti@1858 213 __ delayed()->nop();
twisti@1858 214 }
duke@435 215 __ get_cache_and_index_at_bcp(cache, G1_scratch, 1);
twisti@1858 216 __ bind(L_got_cache);
twisti@1162 217 __ ld_ptr(cache, constantPoolCacheOopDesc::base_offset() +
twisti@1162 218 ConstantPoolCacheEntry::flags_offset(), size);
duke@435 219 __ and3(size, 0xFF, size); // argument size in words
twisti@1861 220 __ sll(size, Interpreter::logStackElementSize, size); // each argument size in bytes
duke@435 221 __ add(Lesp, size, Lesp); // pop arguments
duke@435 222 __ dispatch_next(state, step);
duke@435 223
twisti@1858 224 // out of the main line of code...
twisti@1858 225 if (EnableInvokeDynamic) {
twisti@1858 226 __ bind(L_giant_index);
jrose@1920 227 __ get_cache_and_index_at_bcp(cache, G1_scratch, 1, sizeof(u4));
twisti@1858 228 __ ba(false, L_got_cache);
twisti@1858 229 __ delayed()->nop();
twisti@1858 230 }
twisti@1858 231
duke@435 232 return entry;
duke@435 233 }
duke@435 234
duke@435 235
duke@435 236 address TemplateInterpreterGenerator::generate_deopt_entry_for(TosState state, int step) {
duke@435 237 address entry = __ pc();
duke@435 238 __ get_constant_pool_cache(LcpoolCache); // load LcpoolCache
duke@435 239 { Label L;
twisti@1162 240 Address exception_addr(G2_thread, Thread::pending_exception_offset());
twisti@1162 241 __ ld_ptr(exception_addr, Gtemp); // Load pending exception.
duke@435 242 __ tst(Gtemp);
duke@435 243 __ brx(Assembler::equal, false, Assembler::pt, L);
duke@435 244 __ delayed()->nop();
duke@435 245 __ call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::throw_pending_exception));
duke@435 246 __ should_not_reach_here();
duke@435 247 __ bind(L);
duke@435 248 }
duke@435 249 __ dispatch_next(state, step);
duke@435 250 return entry;
duke@435 251 }
duke@435 252
duke@435 253 // A result handler converts/unboxes a native call result into
duke@435 254 // a java interpreter/compiler result. The current frame is an
duke@435 255 // interpreter frame. The activation frame unwind code must be
duke@435 256 // consistent with that of TemplateTable::_return(...). In the
duke@435 257 // case of native methods, the caller's SP was not modified.
duke@435 258 address TemplateInterpreterGenerator::generate_result_handler_for(BasicType type) {
duke@435 259 address entry = __ pc();
duke@435 260 Register Itos_i = Otos_i ->after_save();
duke@435 261 Register Itos_l = Otos_l ->after_save();
duke@435 262 Register Itos_l1 = Otos_l1->after_save();
duke@435 263 Register Itos_l2 = Otos_l2->after_save();
duke@435 264 switch (type) {
duke@435 265 case T_BOOLEAN: __ subcc(G0, O0, G0); __ addc(G0, 0, Itos_i); break; // !0 => true; 0 => false
duke@435 266 case T_CHAR : __ sll(O0, 16, O0); __ srl(O0, 16, Itos_i); break; // cannot use and3, 0xFFFF too big as immediate value!
duke@435 267 case T_BYTE : __ sll(O0, 24, O0); __ sra(O0, 24, Itos_i); break;
duke@435 268 case T_SHORT : __ sll(O0, 16, O0); __ sra(O0, 16, Itos_i); break;
duke@435 269 case T_LONG :
duke@435 270 #ifndef _LP64
duke@435 271 __ mov(O1, Itos_l2); // move other half of long
duke@435 272 #endif // ifdef or no ifdef, fall through to the T_INT case
duke@435 273 case T_INT : __ mov(O0, Itos_i); break;
duke@435 274 case T_VOID : /* nothing to do */ break;
duke@435 275 case T_FLOAT : assert(F0 == Ftos_f, "fix this code" ); break;
duke@435 276 case T_DOUBLE : assert(F0 == Ftos_d, "fix this code" ); break;
duke@435 277 case T_OBJECT :
duke@435 278 __ ld_ptr(FP, (frame::interpreter_frame_oop_temp_offset*wordSize) + STACK_BIAS, Itos_i);
duke@435 279 __ verify_oop(Itos_i);
duke@435 280 break;
duke@435 281 default : ShouldNotReachHere();
duke@435 282 }
duke@435 283 __ ret(); // return from interpreter activation
duke@435 284 __ delayed()->restore(I5_savedSP, G0, SP); // remove interpreter frame
duke@435 285 NOT_PRODUCT(__ emit_long(0);) // marker for disassembly
duke@435 286 return entry;
duke@435 287 }
duke@435 288
duke@435 289 address TemplateInterpreterGenerator::generate_safept_entry_for(TosState state, address runtime_entry) {
duke@435 290 address entry = __ pc();
duke@435 291 __ push(state);
duke@435 292 __ call_VM(noreg, runtime_entry);
duke@435 293 __ dispatch_via(vtos, Interpreter::normal_table(vtos));
duke@435 294 return entry;
duke@435 295 }
duke@435 296
duke@435 297
duke@435 298 address TemplateInterpreterGenerator::generate_continuation_for(TosState state) {
duke@435 299 address entry = __ pc();
duke@435 300 __ dispatch_next(state);
duke@435 301 return entry;
duke@435 302 }
duke@435 303
duke@435 304 //
duke@435 305 // Helpers for commoning out cases in the various type of method entries.
duke@435 306 //
duke@435 307
duke@435 308 // increment invocation count & check for overflow
duke@435 309 //
duke@435 310 // Note: checking for negative value instead of overflow
duke@435 311 // so we have a 'sticky' overflow test
duke@435 312 //
duke@435 313 // Lmethod: method
duke@435 314 // ??: invocation counter
duke@435 315 //
duke@435 316 void InterpreterGenerator::generate_counter_incr(Label* overflow, Label* profile_method, Label* profile_method_continue) {
iveresov@2138 317 // Note: In tiered we increment either counters in methodOop or in MDO depending if we're profiling or not.
iveresov@2138 318 if (TieredCompilation) {
iveresov@2138 319 const int increment = InvocationCounter::count_increment;
iveresov@2138 320 const int mask = ((1 << Tier0InvokeNotifyFreqLog) - 1) << InvocationCounter::count_shift;
iveresov@2138 321 Label no_mdo, done;
iveresov@2138 322 if (ProfileInterpreter) {
iveresov@2138 323 // If no method data exists, go to profile_continue.
iveresov@2138 324 __ ld_ptr(Lmethod, methodOopDesc::method_data_offset(), G4_scratch);
iveresov@2138 325 __ br_null(G4_scratch, false, Assembler::pn, no_mdo);
iveresov@2138 326 __ delayed()->nop();
iveresov@2138 327 // Increment counter
iveresov@2138 328 Address mdo_invocation_counter(G4_scratch,
iveresov@2138 329 in_bytes(methodDataOopDesc::invocation_counter_offset()) +
iveresov@2138 330 in_bytes(InvocationCounter::counter_offset()));
iveresov@2138 331 __ increment_mask_and_jump(mdo_invocation_counter, increment, mask,
iveresov@2138 332 G3_scratch, Lscratch,
iveresov@2138 333 Assembler::zero, overflow);
iveresov@2138 334 __ ba(false, done);
iveresov@2138 335 __ delayed()->nop();
iveresov@2138 336 }
iveresov@2138 337
iveresov@2138 338 // Increment counter in methodOop
iveresov@2138 339 __ bind(no_mdo);
iveresov@2138 340 Address invocation_counter(Lmethod,
iveresov@2138 341 in_bytes(methodOopDesc::invocation_counter_offset()) +
iveresov@2138 342 in_bytes(InvocationCounter::counter_offset()));
iveresov@2138 343 __ increment_mask_and_jump(invocation_counter, increment, mask,
iveresov@2138 344 G3_scratch, Lscratch,
iveresov@2138 345 Assembler::zero, overflow);
iveresov@2138 346 __ bind(done);
iveresov@2138 347 } else {
iveresov@2138 348 // Update standard invocation counters
iveresov@2138 349 __ increment_invocation_counter(O0, G3_scratch);
iveresov@2138 350 if (ProfileInterpreter) { // %%% Merge this into methodDataOop
iveresov@2138 351 Address interpreter_invocation_counter(Lmethod,in_bytes(methodOopDesc::interpreter_invocation_counter_offset()));
iveresov@2138 352 __ ld(interpreter_invocation_counter, G3_scratch);
iveresov@2138 353 __ inc(G3_scratch);
iveresov@2138 354 __ st(G3_scratch, interpreter_invocation_counter);
iveresov@2138 355 }
iveresov@2138 356
iveresov@2138 357 if (ProfileInterpreter && profile_method != NULL) {
iveresov@2138 358 // Test to see if we should create a method data oop
iveresov@2138 359 AddressLiteral profile_limit((address)&InvocationCounter::InterpreterProfileLimit);
iveresov@2138 360 __ load_contents(profile_limit, G3_scratch);
iveresov@2138 361 __ cmp(O0, G3_scratch);
iveresov@2138 362 __ br(Assembler::lessUnsigned, false, Assembler::pn, *profile_method_continue);
iveresov@2138 363 __ delayed()->nop();
iveresov@2138 364
iveresov@2138 365 // if no method data exists, go to profile_method
iveresov@2138 366 __ test_method_data_pointer(*profile_method);
iveresov@2138 367 }
iveresov@2138 368
iveresov@2138 369 AddressLiteral invocation_limit((address)&InvocationCounter::InterpreterInvocationLimit);
iveresov@2138 370 __ load_contents(invocation_limit, G3_scratch);
iveresov@2138 371 __ cmp(O0, G3_scratch);
iveresov@2138 372 __ br(Assembler::greaterEqualUnsigned, false, Assembler::pn, *overflow);
iveresov@2138 373 __ delayed()->nop();
duke@435 374 }
duke@435 375
duke@435 376 }
duke@435 377
duke@435 378 // Allocate monitor and lock method (asm interpreter)
duke@435 379 // ebx - methodOop
duke@435 380 //
duke@435 381 void InterpreterGenerator::lock_method(void) {
twisti@1162 382 __ ld(Lmethod, in_bytes(methodOopDesc::access_flags_offset()), O0); // Load access flags.
duke@435 383
duke@435 384 #ifdef ASSERT
duke@435 385 { Label ok;
duke@435 386 __ btst(JVM_ACC_SYNCHRONIZED, O0);
duke@435 387 __ br( Assembler::notZero, false, Assembler::pt, ok);
duke@435 388 __ delayed()->nop();
duke@435 389 __ stop("method doesn't need synchronization");
duke@435 390 __ bind(ok);
duke@435 391 }
duke@435 392 #endif // ASSERT
duke@435 393
duke@435 394 // get synchronization object to O0
duke@435 395 { Label done;
duke@435 396 const int mirror_offset = klassOopDesc::klass_part_offset_in_bytes() + Klass::java_mirror_offset_in_bytes();
duke@435 397 __ btst(JVM_ACC_STATIC, O0);
duke@435 398 __ br( Assembler::zero, true, Assembler::pt, done);
duke@435 399 __ delayed()->ld_ptr(Llocals, Interpreter::local_offset_in_bytes(0), O0); // get receiver for not-static case
duke@435 400
duke@435 401 __ ld_ptr( Lmethod, in_bytes(methodOopDesc::constants_offset()), O0);
duke@435 402 __ ld_ptr( O0, constantPoolOopDesc::pool_holder_offset_in_bytes(), O0);
duke@435 403
duke@435 404 // lock the mirror, not the klassOop
duke@435 405 __ ld_ptr( O0, mirror_offset, O0);
duke@435 406
duke@435 407 #ifdef ASSERT
duke@435 408 __ tst(O0);
duke@435 409 __ breakpoint_trap(Assembler::zero);
duke@435 410 #endif // ASSERT
duke@435 411
duke@435 412 __ bind(done);
duke@435 413 }
duke@435 414
duke@435 415 __ add_monitor_to_stack(true, noreg, noreg); // allocate monitor elem
duke@435 416 __ st_ptr( O0, Lmonitors, BasicObjectLock::obj_offset_in_bytes()); // store object
duke@435 417 // __ untested("lock_object from method entry");
duke@435 418 __ lock_object(Lmonitors, O0);
duke@435 419 }
duke@435 420
duke@435 421
duke@435 422 void TemplateInterpreterGenerator::generate_stack_overflow_check(Register Rframe_size,
duke@435 423 Register Rscratch,
duke@435 424 Register Rscratch2) {
duke@435 425 const int page_size = os::vm_page_size();
twisti@1162 426 Address saved_exception_pc(G2_thread, JavaThread::saved_exception_pc_offset());
duke@435 427 Label after_frame_check;
duke@435 428
duke@435 429 assert_different_registers(Rframe_size, Rscratch, Rscratch2);
duke@435 430
duke@435 431 __ set( page_size, Rscratch );
duke@435 432 __ cmp( Rframe_size, Rscratch );
duke@435 433
duke@435 434 __ br( Assembler::lessEqual, false, Assembler::pt, after_frame_check );
duke@435 435 __ delayed()->nop();
duke@435 436
duke@435 437 // get the stack base, and in debug, verify it is non-zero
twisti@1162 438 __ ld_ptr( G2_thread, Thread::stack_base_offset(), Rscratch );
duke@435 439 #ifdef ASSERT
duke@435 440 Label base_not_zero;
duke@435 441 __ cmp( Rscratch, G0 );
duke@435 442 __ brx( Assembler::notEqual, false, Assembler::pn, base_not_zero );
duke@435 443 __ delayed()->nop();
duke@435 444 __ stop("stack base is zero in generate_stack_overflow_check");
duke@435 445 __ bind(base_not_zero);
duke@435 446 #endif
duke@435 447
duke@435 448 // get the stack size, and in debug, verify it is non-zero
duke@435 449 assert( sizeof(size_t) == sizeof(intptr_t), "wrong load size" );
twisti@1162 450 __ ld_ptr( G2_thread, Thread::stack_size_offset(), Rscratch2 );
duke@435 451 #ifdef ASSERT
duke@435 452 Label size_not_zero;
duke@435 453 __ cmp( Rscratch2, G0 );
duke@435 454 __ brx( Assembler::notEqual, false, Assembler::pn, size_not_zero );
duke@435 455 __ delayed()->nop();
duke@435 456 __ stop("stack size is zero in generate_stack_overflow_check");
duke@435 457 __ bind(size_not_zero);
duke@435 458 #endif
duke@435 459
duke@435 460 // compute the beginning of the protected zone minus the requested frame size
duke@435 461 __ sub( Rscratch, Rscratch2, Rscratch );
duke@435 462 __ set( (StackRedPages+StackYellowPages) * page_size, Rscratch2 );
duke@435 463 __ add( Rscratch, Rscratch2, Rscratch );
duke@435 464
duke@435 465 // Add in the size of the frame (which is the same as subtracting it from the
duke@435 466 // SP, which would take another register
duke@435 467 __ add( Rscratch, Rframe_size, Rscratch );
duke@435 468
duke@435 469 // the frame is greater than one page in size, so check against
duke@435 470 // the bottom of the stack
duke@435 471 __ cmp( SP, Rscratch );
duke@435 472 __ brx( Assembler::greater, false, Assembler::pt, after_frame_check );
duke@435 473 __ delayed()->nop();
duke@435 474
duke@435 475 // Save the return address as the exception pc
duke@435 476 __ st_ptr(O7, saved_exception_pc);
duke@435 477
duke@435 478 // the stack will overflow, throw an exception
duke@435 479 __ call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::throw_StackOverflowError));
duke@435 480
duke@435 481 // if you get to here, then there is enough stack space
duke@435 482 __ bind( after_frame_check );
duke@435 483 }
duke@435 484
duke@435 485
duke@435 486 //
duke@435 487 // Generate a fixed interpreter frame. This is identical setup for interpreted
duke@435 488 // methods and for native methods hence the shared code.
duke@435 489
duke@435 490 void TemplateInterpreterGenerator::generate_fixed_frame(bool native_call) {
duke@435 491 //
duke@435 492 //
duke@435 493 // The entry code sets up a new interpreter frame in 4 steps:
duke@435 494 //
duke@435 495 // 1) Increase caller's SP by for the extra local space needed:
duke@435 496 // (check for overflow)
duke@435 497 // Efficient implementation of xload/xstore bytecodes requires
duke@435 498 // that arguments and non-argument locals are in a contigously
duke@435 499 // addressable memory block => non-argument locals must be
duke@435 500 // allocated in the caller's frame.
duke@435 501 //
duke@435 502 // 2) Create a new stack frame and register window:
duke@435 503 // The new stack frame must provide space for the standard
duke@435 504 // register save area, the maximum java expression stack size,
duke@435 505 // the monitor slots (0 slots initially), and some frame local
duke@435 506 // scratch locations.
duke@435 507 //
duke@435 508 // 3) The following interpreter activation registers must be setup:
duke@435 509 // Lesp : expression stack pointer
duke@435 510 // Lbcp : bytecode pointer
duke@435 511 // Lmethod : method
duke@435 512 // Llocals : locals pointer
duke@435 513 // Lmonitors : monitor pointer
duke@435 514 // LcpoolCache: constant pool cache
duke@435 515 //
duke@435 516 // 4) Initialize the non-argument locals if necessary:
duke@435 517 // Non-argument locals may need to be initialized to NULL
duke@435 518 // for GC to work. If the oop-map information is accurate
duke@435 519 // (in the absence of the JSR problem), no initialization
duke@435 520 // is necessary.
duke@435 521 //
duke@435 522 // (gri - 2/25/2000)
duke@435 523
duke@435 524
twisti@1162 525 const Address size_of_parameters(G5_method, methodOopDesc::size_of_parameters_offset());
twisti@1162 526 const Address size_of_locals (G5_method, methodOopDesc::size_of_locals_offset());
twisti@1162 527 const Address max_stack (G5_method, methodOopDesc::max_stack_offset());
duke@435 528 int rounded_vm_local_words = round_to( frame::interpreter_frame_vm_local_words, WordsPerLong );
duke@435 529
duke@435 530 const int extra_space =
duke@435 531 rounded_vm_local_words + // frame local scratch space
jrose@1145 532 //6815692//methodOopDesc::extra_stack_words() + // extra push slots for MH adapters
duke@435 533 frame::memory_parameter_word_sp_offset + // register save area
duke@435 534 (native_call ? frame::interpreter_frame_extra_outgoing_argument_words : 0);
duke@435 535
duke@435 536 const Register Glocals_size = G3;
duke@435 537 const Register Otmp1 = O3;
duke@435 538 const Register Otmp2 = O4;
duke@435 539 // Lscratch can't be used as a temporary because the call_stub uses
duke@435 540 // it to assert that the stack frame was setup correctly.
duke@435 541
duke@435 542 __ lduh( size_of_parameters, Glocals_size);
duke@435 543
duke@435 544 // Gargs points to first local + BytesPerWord
duke@435 545 // Set the saved SP after the register window save
duke@435 546 //
duke@435 547 assert_different_registers(Gargs, Glocals_size, Gframe_size, O5_savedSP);
twisti@1861 548 __ sll(Glocals_size, Interpreter::logStackElementSize, Otmp1);
duke@435 549 __ add(Gargs, Otmp1, Gargs);
duke@435 550
duke@435 551 if (native_call) {
duke@435 552 __ calc_mem_param_words( Glocals_size, Gframe_size );
duke@435 553 __ add( Gframe_size, extra_space, Gframe_size);
duke@435 554 __ round_to( Gframe_size, WordsPerLong );
duke@435 555 __ sll( Gframe_size, LogBytesPerWord, Gframe_size );
duke@435 556 } else {
duke@435 557
duke@435 558 //
duke@435 559 // Compute number of locals in method apart from incoming parameters
duke@435 560 //
duke@435 561 __ lduh( size_of_locals, Otmp1 );
duke@435 562 __ sub( Otmp1, Glocals_size, Glocals_size );
duke@435 563 __ round_to( Glocals_size, WordsPerLong );
twisti@1861 564 __ sll( Glocals_size, Interpreter::logStackElementSize, Glocals_size );
duke@435 565
duke@435 566 // see if the frame is greater than one page in size. If so,
duke@435 567 // then we need to verify there is enough stack space remaining
duke@435 568 // Frame_size = (max_stack + extra_space) * BytesPerWord;
duke@435 569 __ lduh( max_stack, Gframe_size );
duke@435 570 __ add( Gframe_size, extra_space, Gframe_size );
duke@435 571 __ round_to( Gframe_size, WordsPerLong );
twisti@1861 572 __ sll( Gframe_size, Interpreter::logStackElementSize, Gframe_size);
duke@435 573
duke@435 574 // Add in java locals size for stack overflow check only
duke@435 575 __ add( Gframe_size, Glocals_size, Gframe_size );
duke@435 576
duke@435 577 const Register Otmp2 = O4;
duke@435 578 assert_different_registers(Otmp1, Otmp2, O5_savedSP);
duke@435 579 generate_stack_overflow_check(Gframe_size, Otmp1, Otmp2);
duke@435 580
duke@435 581 __ sub( Gframe_size, Glocals_size, Gframe_size);
duke@435 582
duke@435 583 //
duke@435 584 // bump SP to accomodate the extra locals
duke@435 585 //
duke@435 586 __ sub( SP, Glocals_size, SP );
duke@435 587 }
duke@435 588
duke@435 589 //
duke@435 590 // now set up a stack frame with the size computed above
duke@435 591 //
duke@435 592 __ neg( Gframe_size );
duke@435 593 __ save( SP, Gframe_size, SP );
duke@435 594
duke@435 595 //
duke@435 596 // now set up all the local cache registers
duke@435 597 //
duke@435 598 // NOTE: At this point, Lbyte_code/Lscratch has been modified. Note
duke@435 599 // that all present references to Lbyte_code initialize the register
duke@435 600 // immediately before use
duke@435 601 if (native_call) {
duke@435 602 __ mov(G0, Lbcp);
duke@435 603 } else {
twisti@1162 604 __ ld_ptr(G5_method, methodOopDesc::const_offset(), Lbcp);
twisti@1162 605 __ add(Lbcp, in_bytes(constMethodOopDesc::codes_offset()), Lbcp);
duke@435 606 }
duke@435 607 __ mov( G5_method, Lmethod); // set Lmethod
duke@435 608 __ get_constant_pool_cache( LcpoolCache ); // set LcpoolCache
duke@435 609 __ sub(FP, rounded_vm_local_words * BytesPerWord, Lmonitors ); // set Lmonitors
duke@435 610 #ifdef _LP64
duke@435 611 __ add( Lmonitors, STACK_BIAS, Lmonitors ); // Account for 64 bit stack bias
duke@435 612 #endif
duke@435 613 __ sub(Lmonitors, BytesPerWord, Lesp); // set Lesp
duke@435 614
duke@435 615 // setup interpreter activation registers
duke@435 616 __ sub(Gargs, BytesPerWord, Llocals); // set Llocals
duke@435 617
duke@435 618 if (ProfileInterpreter) {
duke@435 619 #ifdef FAST_DISPATCH
duke@435 620 // FAST_DISPATCH and ProfileInterpreter are mutually exclusive since
duke@435 621 // they both use I2.
duke@435 622 assert(0, "FAST_DISPATCH and +ProfileInterpreter are mutually exclusive");
duke@435 623 #endif // FAST_DISPATCH
duke@435 624 __ set_method_data_pointer();
duke@435 625 }
duke@435 626
duke@435 627 }
duke@435 628
duke@435 629 // Empty method, generate a very fast return.
duke@435 630
duke@435 631 address InterpreterGenerator::generate_empty_entry(void) {
duke@435 632
duke@435 633 // A method that does nother but return...
duke@435 634
duke@435 635 address entry = __ pc();
duke@435 636 Label slow_path;
duke@435 637
duke@435 638 __ verify_oop(G5_method);
duke@435 639
duke@435 640 // do nothing for empty methods (do not even increment invocation counter)
duke@435 641 if ( UseFastEmptyMethods) {
duke@435 642 // If we need a safepoint check, generate full interpreter entry.
twisti@1162 643 AddressLiteral sync_state(SafepointSynchronize::address_of_state());
twisti@1162 644 __ set(sync_state, G3_scratch);
duke@435 645 __ cmp(G3_scratch, SafepointSynchronize::_not_synchronized);
duke@435 646 __ br(Assembler::notEqual, false, Assembler::pn, slow_path);
duke@435 647 __ delayed()->nop();
duke@435 648
duke@435 649 // Code: _return
duke@435 650 __ retl();
duke@435 651 __ delayed()->mov(O5_savedSP, SP);
duke@435 652
duke@435 653 __ bind(slow_path);
duke@435 654 (void) generate_normal_entry(false);
duke@435 655
duke@435 656 return entry;
duke@435 657 }
duke@435 658 return NULL;
duke@435 659 }
duke@435 660
duke@435 661 // Call an accessor method (assuming it is resolved, otherwise drop into
duke@435 662 // vanilla (slow path) entry
duke@435 663
duke@435 664 // Generates code to elide accessor methods
duke@435 665 // Uses G3_scratch and G1_scratch as scratch
duke@435 666 address InterpreterGenerator::generate_accessor_entry(void) {
duke@435 667
duke@435 668 // Code: _aload_0, _(i|a)getfield, _(i|a)return or any rewrites thereof;
duke@435 669 // parameter size = 1
duke@435 670 // Note: We can only use this code if the getfield has been resolved
duke@435 671 // and if we don't have a null-pointer exception => check for
duke@435 672 // these conditions first and use slow path if necessary.
duke@435 673 address entry = __ pc();
duke@435 674 Label slow_path;
duke@435 675
coleenp@548 676
coleenp@548 677 // XXX: for compressed oops pointer loading and decoding doesn't fit in
coleenp@548 678 // delay slot and damages G1
coleenp@548 679 if ( UseFastAccessorMethods && !UseCompressedOops ) {
duke@435 680 // Check if we need to reach a safepoint and generate full interpreter
duke@435 681 // frame if so.
twisti@1162 682 AddressLiteral sync_state(SafepointSynchronize::address_of_state());
duke@435 683 __ load_contents(sync_state, G3_scratch);
duke@435 684 __ cmp(G3_scratch, SafepointSynchronize::_not_synchronized);
duke@435 685 __ br(Assembler::notEqual, false, Assembler::pn, slow_path);
duke@435 686 __ delayed()->nop();
duke@435 687
duke@435 688 // Check if local 0 != NULL
duke@435 689 __ ld_ptr(Gargs, G0, Otos_i ); // get local 0
duke@435 690 __ tst(Otos_i); // check if local 0 == NULL and go the slow path
duke@435 691 __ brx(Assembler::zero, false, Assembler::pn, slow_path);
duke@435 692 __ delayed()->nop();
duke@435 693
duke@435 694
duke@435 695 // read first instruction word and extract bytecode @ 1 and index @ 2
duke@435 696 // get first 4 bytes of the bytecodes (big endian!)
twisti@1162 697 __ ld_ptr(G5_method, methodOopDesc::const_offset(), G1_scratch);
twisti@1162 698 __ ld(G1_scratch, constMethodOopDesc::codes_offset(), G1_scratch);
duke@435 699
duke@435 700 // move index @ 2 far left then to the right most two bytes.
duke@435 701 __ sll(G1_scratch, 2*BitsPerByte, G1_scratch);
duke@435 702 __ srl(G1_scratch, 2*BitsPerByte - exact_log2(in_words(
duke@435 703 ConstantPoolCacheEntry::size()) * BytesPerWord), G1_scratch);
duke@435 704
duke@435 705 // get constant pool cache
twisti@1162 706 __ ld_ptr(G5_method, methodOopDesc::constants_offset(), G3_scratch);
duke@435 707 __ ld_ptr(G3_scratch, constantPoolOopDesc::cache_offset_in_bytes(), G3_scratch);
duke@435 708
duke@435 709 // get specific constant pool cache entry
duke@435 710 __ add(G3_scratch, G1_scratch, G3_scratch);
duke@435 711
duke@435 712 // Check the constant Pool cache entry to see if it has been resolved.
duke@435 713 // If not, need the slow path.
duke@435 714 ByteSize cp_base_offset = constantPoolCacheOopDesc::base_offset();
twisti@1162 715 __ ld_ptr(G3_scratch, cp_base_offset + ConstantPoolCacheEntry::indices_offset(), G1_scratch);
duke@435 716 __ srl(G1_scratch, 2*BitsPerByte, G1_scratch);
duke@435 717 __ and3(G1_scratch, 0xFF, G1_scratch);
duke@435 718 __ cmp(G1_scratch, Bytecodes::_getfield);
duke@435 719 __ br(Assembler::notEqual, false, Assembler::pn, slow_path);
duke@435 720 __ delayed()->nop();
duke@435 721
duke@435 722 // Get the type and return field offset from the constant pool cache
twisti@1162 723 __ ld_ptr(G3_scratch, cp_base_offset + ConstantPoolCacheEntry::flags_offset(), G1_scratch);
twisti@1162 724 __ ld_ptr(G3_scratch, cp_base_offset + ConstantPoolCacheEntry::f2_offset(), G3_scratch);
duke@435 725
duke@435 726 Label xreturn_path;
duke@435 727 // Need to differentiate between igetfield, agetfield, bgetfield etc.
duke@435 728 // because they are different sizes.
duke@435 729 // Get the type from the constant pool cache
duke@435 730 __ srl(G1_scratch, ConstantPoolCacheEntry::tosBits, G1_scratch);
duke@435 731 // Make sure we don't need to mask G1_scratch for tosBits after the above shift
duke@435 732 ConstantPoolCacheEntry::verify_tosBits();
duke@435 733 __ cmp(G1_scratch, atos );
duke@435 734 __ br(Assembler::equal, true, Assembler::pt, xreturn_path);
duke@435 735 __ delayed()->ld_ptr(Otos_i, G3_scratch, Otos_i);
duke@435 736 __ cmp(G1_scratch, itos);
duke@435 737 __ br(Assembler::equal, true, Assembler::pt, xreturn_path);
duke@435 738 __ delayed()->ld(Otos_i, G3_scratch, Otos_i);
duke@435 739 __ cmp(G1_scratch, stos);
duke@435 740 __ br(Assembler::equal, true, Assembler::pt, xreturn_path);
duke@435 741 __ delayed()->ldsh(Otos_i, G3_scratch, Otos_i);
duke@435 742 __ cmp(G1_scratch, ctos);
duke@435 743 __ br(Assembler::equal, true, Assembler::pt, xreturn_path);
duke@435 744 __ delayed()->lduh(Otos_i, G3_scratch, Otos_i);
duke@435 745 #ifdef ASSERT
duke@435 746 __ cmp(G1_scratch, btos);
duke@435 747 __ br(Assembler::equal, true, Assembler::pt, xreturn_path);
duke@435 748 __ delayed()->ldsb(Otos_i, G3_scratch, Otos_i);
duke@435 749 __ should_not_reach_here();
duke@435 750 #endif
duke@435 751 __ ldsb(Otos_i, G3_scratch, Otos_i);
duke@435 752 __ bind(xreturn_path);
duke@435 753
duke@435 754 // _ireturn/_areturn
duke@435 755 __ retl(); // return from leaf routine
duke@435 756 __ delayed()->mov(O5_savedSP, SP);
duke@435 757
duke@435 758 // Generate regular method entry
duke@435 759 __ bind(slow_path);
duke@435 760 (void) generate_normal_entry(false);
duke@435 761 return entry;
duke@435 762 }
duke@435 763 return NULL;
duke@435 764 }
duke@435 765
duke@435 766 //
duke@435 767 // Interpreter stub for calling a native method. (asm interpreter)
duke@435 768 // This sets up a somewhat different looking stack for calling the native method
duke@435 769 // than the typical interpreter frame setup.
duke@435 770 //
duke@435 771
duke@435 772 address InterpreterGenerator::generate_native_entry(bool synchronized) {
duke@435 773 address entry = __ pc();
duke@435 774
duke@435 775 // the following temporary registers are used during frame creation
duke@435 776 const Register Gtmp1 = G3_scratch ;
duke@435 777 const Register Gtmp2 = G1_scratch;
duke@435 778 bool inc_counter = UseCompiler || CountCompiledCalls;
duke@435 779
duke@435 780 // make sure registers are different!
duke@435 781 assert_different_registers(G2_thread, G5_method, Gargs, Gtmp1, Gtmp2);
duke@435 782
twisti@1162 783 const Address Laccess_flags(Lmethod, methodOopDesc::access_flags_offset());
duke@435 784
duke@435 785 __ verify_oop(G5_method);
duke@435 786
duke@435 787 const Register Glocals_size = G3;
duke@435 788 assert_different_registers(Glocals_size, G4_scratch, Gframe_size);
duke@435 789
duke@435 790 // make sure method is native & not abstract
duke@435 791 // rethink these assertions - they can be simplified and shared (gri 2/25/2000)
duke@435 792 #ifdef ASSERT
twisti@1162 793 __ ld(G5_method, methodOopDesc::access_flags_offset(), Gtmp1);
duke@435 794 {
duke@435 795 Label L;
duke@435 796 __ btst(JVM_ACC_NATIVE, Gtmp1);
duke@435 797 __ br(Assembler::notZero, false, Assembler::pt, L);
duke@435 798 __ delayed()->nop();
duke@435 799 __ stop("tried to execute non-native method as native");
duke@435 800 __ bind(L);
duke@435 801 }
duke@435 802 { Label L;
duke@435 803 __ btst(JVM_ACC_ABSTRACT, Gtmp1);
duke@435 804 __ br(Assembler::zero, false, Assembler::pt, L);
duke@435 805 __ delayed()->nop();
duke@435 806 __ stop("tried to execute abstract method as non-abstract");
duke@435 807 __ bind(L);
duke@435 808 }
duke@435 809 #endif // ASSERT
duke@435 810
duke@435 811 // generate the code to allocate the interpreter stack frame
duke@435 812 generate_fixed_frame(true);
duke@435 813
duke@435 814 //
duke@435 815 // No locals to initialize for native method
duke@435 816 //
duke@435 817
duke@435 818 // this slot will be set later, we initialize it to null here just in
duke@435 819 // case we get a GC before the actual value is stored later
twisti@1162 820 __ st_ptr(G0, FP, (frame::interpreter_frame_oop_temp_offset * wordSize) + STACK_BIAS);
duke@435 821
twisti@1162 822 const Address do_not_unlock_if_synchronized(G2_thread,
twisti@1162 823 JavaThread::do_not_unlock_if_synchronized_offset());
duke@435 824 // Since at this point in the method invocation the exception handler
duke@435 825 // would try to exit the monitor of synchronized methods which hasn't
duke@435 826 // been entered yet, we set the thread local variable
duke@435 827 // _do_not_unlock_if_synchronized to true. If any exception was thrown by
duke@435 828 // runtime, exception handling i.e. unlock_if_synchronized_method will
duke@435 829 // check this thread local flag.
duke@435 830 // This flag has two effects, one is to force an unwind in the topmost
duke@435 831 // interpreter frame and not perform an unlock while doing so.
duke@435 832
duke@435 833 __ movbool(true, G3_scratch);
duke@435 834 __ stbool(G3_scratch, do_not_unlock_if_synchronized);
duke@435 835
duke@435 836 // increment invocation counter and check for overflow
duke@435 837 //
duke@435 838 // Note: checking for negative value instead of overflow
duke@435 839 // so we have a 'sticky' overflow test (may be of
duke@435 840 // importance as soon as we have true MT/MP)
duke@435 841 Label invocation_counter_overflow;
duke@435 842 Label Lcontinue;
duke@435 843 if (inc_counter) {
duke@435 844 generate_counter_incr(&invocation_counter_overflow, NULL, NULL);
duke@435 845
duke@435 846 }
duke@435 847 __ bind(Lcontinue);
duke@435 848
duke@435 849 bang_stack_shadow_pages(true);
duke@435 850
duke@435 851 // reset the _do_not_unlock_if_synchronized flag
duke@435 852 __ stbool(G0, do_not_unlock_if_synchronized);
duke@435 853
duke@435 854 // check for synchronized methods
duke@435 855 // Must happen AFTER invocation_counter check and stack overflow check,
duke@435 856 // so method is not locked if overflows.
duke@435 857
duke@435 858 if (synchronized) {
duke@435 859 lock_method();
duke@435 860 } else {
duke@435 861 #ifdef ASSERT
duke@435 862 { Label ok;
duke@435 863 __ ld(Laccess_flags, O0);
duke@435 864 __ btst(JVM_ACC_SYNCHRONIZED, O0);
duke@435 865 __ br( Assembler::zero, false, Assembler::pt, ok);
duke@435 866 __ delayed()->nop();
duke@435 867 __ stop("method needs synchronization");
duke@435 868 __ bind(ok);
duke@435 869 }
duke@435 870 #endif // ASSERT
duke@435 871 }
duke@435 872
duke@435 873
duke@435 874 // start execution
duke@435 875 __ verify_thread();
duke@435 876
duke@435 877 // JVMTI support
duke@435 878 __ notify_method_entry();
duke@435 879
duke@435 880 // native call
duke@435 881
duke@435 882 // (note that O0 is never an oop--at most it is a handle)
duke@435 883 // It is important not to smash any handles created by this call,
duke@435 884 // until any oop handle in O0 is dereferenced.
duke@435 885
duke@435 886 // (note that the space for outgoing params is preallocated)
duke@435 887
duke@435 888 // get signature handler
duke@435 889 { Label L;
twisti@1162 890 Address signature_handler(Lmethod, methodOopDesc::signature_handler_offset());
twisti@1162 891 __ ld_ptr(signature_handler, G3_scratch);
duke@435 892 __ tst(G3_scratch);
duke@435 893 __ brx(Assembler::notZero, false, Assembler::pt, L);
duke@435 894 __ delayed()->nop();
duke@435 895 __ call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::prepare_native_call), Lmethod);
twisti@1162 896 __ ld_ptr(signature_handler, G3_scratch);
duke@435 897 __ bind(L);
duke@435 898 }
duke@435 899
duke@435 900 // Push a new frame so that the args will really be stored in
duke@435 901 // Copy a few locals across so the new frame has the variables
duke@435 902 // we need but these values will be dead at the jni call and
duke@435 903 // therefore not gc volatile like the values in the current
duke@435 904 // frame (Lmethod in particular)
duke@435 905
duke@435 906 // Flush the method pointer to the register save area
duke@435 907 __ st_ptr(Lmethod, SP, (Lmethod->sp_offset_in_saved_window() * wordSize) + STACK_BIAS);
duke@435 908 __ mov(Llocals, O1);
twisti@1162 909
duke@435 910 // calculate where the mirror handle body is allocated in the interpreter frame:
twisti@1162 911 __ add(FP, (frame::interpreter_frame_oop_temp_offset * wordSize) + STACK_BIAS, O2);
duke@435 912
duke@435 913 // Calculate current frame size
duke@435 914 __ sub(SP, FP, O3); // Calculate negative of current frame size
duke@435 915 __ save(SP, O3, SP); // Allocate an identical sized frame
duke@435 916
duke@435 917 // Note I7 has leftover trash. Slow signature handler will fill it in
duke@435 918 // should we get there. Normal jni call will set reasonable last_Java_pc
duke@435 919 // below (and fix I7 so the stack trace doesn't have a meaningless frame
duke@435 920 // in it).
duke@435 921
duke@435 922 // Load interpreter frame's Lmethod into same register here
duke@435 923
duke@435 924 __ ld_ptr(FP, (Lmethod->sp_offset_in_saved_window() * wordSize) + STACK_BIAS, Lmethod);
duke@435 925
duke@435 926 __ mov(I1, Llocals);
duke@435 927 __ mov(I2, Lscratch2); // save the address of the mirror
duke@435 928
duke@435 929
duke@435 930 // ONLY Lmethod and Llocals are valid here!
duke@435 931
duke@435 932 // call signature handler, It will move the arg properly since Llocals in current frame
duke@435 933 // matches that in outer frame
duke@435 934
duke@435 935 __ callr(G3_scratch, 0);
duke@435 936 __ delayed()->nop();
duke@435 937
duke@435 938 // Result handler is in Lscratch
duke@435 939
duke@435 940 // Reload interpreter frame's Lmethod since slow signature handler may block
duke@435 941 __ ld_ptr(FP, (Lmethod->sp_offset_in_saved_window() * wordSize) + STACK_BIAS, Lmethod);
duke@435 942
duke@435 943 { Label not_static;
duke@435 944
duke@435 945 __ ld(Laccess_flags, O0);
duke@435 946 __ btst(JVM_ACC_STATIC, O0);
duke@435 947 __ br( Assembler::zero, false, Assembler::pt, not_static);
twisti@1162 948 // get native function entry point(O0 is a good temp until the very end)
twisti@1162 949 __ delayed()->ld_ptr(Lmethod, in_bytes(methodOopDesc::native_function_offset()), O0);
duke@435 950 // for static methods insert the mirror argument
duke@435 951 const int mirror_offset = klassOopDesc::klass_part_offset_in_bytes() + Klass::java_mirror_offset_in_bytes();
duke@435 952
twisti@1162 953 __ ld_ptr(Lmethod, methodOopDesc:: constants_offset(), O1);
twisti@1162 954 __ ld_ptr(O1, constantPoolOopDesc::pool_holder_offset_in_bytes(), O1);
duke@435 955 __ ld_ptr(O1, mirror_offset, O1);
duke@435 956 #ifdef ASSERT
duke@435 957 if (!PrintSignatureHandlers) // do not dirty the output with this
duke@435 958 { Label L;
duke@435 959 __ tst(O1);
duke@435 960 __ brx(Assembler::notZero, false, Assembler::pt, L);
duke@435 961 __ delayed()->nop();
duke@435 962 __ stop("mirror is missing");
duke@435 963 __ bind(L);
duke@435 964 }
duke@435 965 #endif // ASSERT
duke@435 966 __ st_ptr(O1, Lscratch2, 0);
duke@435 967 __ mov(Lscratch2, O1);
duke@435 968 __ bind(not_static);
duke@435 969 }
duke@435 970
duke@435 971 // At this point, arguments have been copied off of stack into
duke@435 972 // their JNI positions, which are O1..O5 and SP[68..].
duke@435 973 // Oops are boxed in-place on the stack, with handles copied to arguments.
duke@435 974 // The result handler is in Lscratch. O0 will shortly hold the JNIEnv*.
duke@435 975
duke@435 976 #ifdef ASSERT
duke@435 977 { Label L;
duke@435 978 __ tst(O0);
duke@435 979 __ brx(Assembler::notZero, false, Assembler::pt, L);
duke@435 980 __ delayed()->nop();
duke@435 981 __ stop("native entry point is missing");
duke@435 982 __ bind(L);
duke@435 983 }
duke@435 984 #endif // ASSERT
duke@435 985
duke@435 986 //
duke@435 987 // setup the frame anchor
duke@435 988 //
duke@435 989 // The scavenge function only needs to know that the PC of this frame is
duke@435 990 // in the interpreter method entry code, it doesn't need to know the exact
duke@435 991 // PC and hence we can use O7 which points to the return address from the
duke@435 992 // previous call in the code stream (signature handler function)
duke@435 993 //
duke@435 994 // The other trick is we set last_Java_sp to FP instead of the usual SP because
duke@435 995 // we have pushed the extra frame in order to protect the volatile register(s)
duke@435 996 // in that frame when we return from the jni call
duke@435 997 //
duke@435 998
duke@435 999 __ set_last_Java_frame(FP, O7);
duke@435 1000 __ mov(O7, I7); // make dummy interpreter frame look like one above,
duke@435 1001 // not meaningless information that'll confuse me.
duke@435 1002
duke@435 1003 // flush the windows now. We don't care about the current (protection) frame
duke@435 1004 // only the outer frames
duke@435 1005
duke@435 1006 __ flush_windows();
duke@435 1007
duke@435 1008 // mark windows as flushed
twisti@1162 1009 Address flags(G2_thread, JavaThread::frame_anchor_offset() + JavaFrameAnchor::flags_offset());
duke@435 1010 __ set(JavaFrameAnchor::flushed, G3_scratch);
duke@435 1011 __ st(G3_scratch, flags);
duke@435 1012
duke@435 1013 // Transition from _thread_in_Java to _thread_in_native. We are already safepoint ready.
duke@435 1014
twisti@1162 1015 Address thread_state(G2_thread, JavaThread::thread_state_offset());
duke@435 1016 #ifdef ASSERT
duke@435 1017 { Label L;
duke@435 1018 __ ld(thread_state, G3_scratch);
duke@435 1019 __ cmp(G3_scratch, _thread_in_Java);
duke@435 1020 __ br(Assembler::equal, false, Assembler::pt, L);
duke@435 1021 __ delayed()->nop();
duke@435 1022 __ stop("Wrong thread state in native stub");
duke@435 1023 __ bind(L);
duke@435 1024 }
duke@435 1025 #endif // ASSERT
duke@435 1026 __ set(_thread_in_native, G3_scratch);
duke@435 1027 __ st(G3_scratch, thread_state);
duke@435 1028
duke@435 1029 // Call the jni method, using the delay slot to set the JNIEnv* argument.
duke@435 1030 __ save_thread(L7_thread_cache); // save Gthread
duke@435 1031 __ callr(O0, 0);
duke@435 1032 __ delayed()->
duke@435 1033 add(L7_thread_cache, in_bytes(JavaThread::jni_environment_offset()), O0);
duke@435 1034
duke@435 1035 // Back from jni method Lmethod in this frame is DEAD, DEAD, DEAD
duke@435 1036
duke@435 1037 __ restore_thread(L7_thread_cache); // restore G2_thread
coleenp@548 1038 __ reinit_heapbase();
duke@435 1039
duke@435 1040 // must we block?
duke@435 1041
duke@435 1042 // Block, if necessary, before resuming in _thread_in_Java state.
duke@435 1043 // In order for GC to work, don't clear the last_Java_sp until after blocking.
duke@435 1044 { Label no_block;
twisti@1162 1045 AddressLiteral sync_state(SafepointSynchronize::address_of_state());
duke@435 1046
duke@435 1047 // Switch thread to "native transition" state before reading the synchronization state.
duke@435 1048 // This additional state is necessary because reading and testing the synchronization
duke@435 1049 // state is not atomic w.r.t. GC, as this scenario demonstrates:
duke@435 1050 // Java thread A, in _thread_in_native state, loads _not_synchronized and is preempted.
duke@435 1051 // VM thread changes sync state to synchronizing and suspends threads for GC.
duke@435 1052 // Thread A is resumed to finish this native method, but doesn't block here since it
duke@435 1053 // didn't see any synchronization is progress, and escapes.
duke@435 1054 __ set(_thread_in_native_trans, G3_scratch);
duke@435 1055 __ st(G3_scratch, thread_state);
duke@435 1056 if(os::is_MP()) {
duke@435 1057 if (UseMembar) {
duke@435 1058 // Force this write out before the read below
duke@435 1059 __ membar(Assembler::StoreLoad);
duke@435 1060 } else {
duke@435 1061 // Write serialization page so VM thread can do a pseudo remote membar.
duke@435 1062 // We use the current thread pointer to calculate a thread specific
duke@435 1063 // offset to write to within the page. This minimizes bus traffic
duke@435 1064 // due to cache line collision.
duke@435 1065 __ serialize_memory(G2_thread, G1_scratch, G3_scratch);
duke@435 1066 }
duke@435 1067 }
duke@435 1068 __ load_contents(sync_state, G3_scratch);
duke@435 1069 __ cmp(G3_scratch, SafepointSynchronize::_not_synchronized);
duke@435 1070
duke@435 1071 Label L;
duke@435 1072 __ br(Assembler::notEqual, false, Assembler::pn, L);
twisti@1162 1073 __ delayed()->ld(G2_thread, JavaThread::suspend_flags_offset(), G3_scratch);
duke@435 1074 __ cmp(G3_scratch, 0);
duke@435 1075 __ br(Assembler::equal, false, Assembler::pt, no_block);
duke@435 1076 __ delayed()->nop();
duke@435 1077 __ bind(L);
duke@435 1078
duke@435 1079 // Block. Save any potential method result value before the operation and
duke@435 1080 // use a leaf call to leave the last_Java_frame setup undisturbed.
duke@435 1081 save_native_result();
duke@435 1082 __ call_VM_leaf(L7_thread_cache,
duke@435 1083 CAST_FROM_FN_PTR(address, JavaThread::check_special_condition_for_native_trans),
duke@435 1084 G2_thread);
duke@435 1085
duke@435 1086 // Restore any method result value
duke@435 1087 restore_native_result();
duke@435 1088 __ bind(no_block);
duke@435 1089 }
duke@435 1090
duke@435 1091 // Clear the frame anchor now
duke@435 1092
duke@435 1093 __ reset_last_Java_frame();
duke@435 1094
duke@435 1095 // Move the result handler address
duke@435 1096 __ mov(Lscratch, G3_scratch);
duke@435 1097 // return possible result to the outer frame
duke@435 1098 #ifndef __LP64
duke@435 1099 __ mov(O0, I0);
duke@435 1100 __ restore(O1, G0, O1);
duke@435 1101 #else
duke@435 1102 __ restore(O0, G0, O0);
duke@435 1103 #endif /* __LP64 */
duke@435 1104
duke@435 1105 // Move result handler to expected register
duke@435 1106 __ mov(G3_scratch, Lscratch);
duke@435 1107
duke@435 1108 // Back in normal (native) interpreter frame. State is thread_in_native_trans
duke@435 1109 // switch to thread_in_Java.
duke@435 1110
duke@435 1111 __ set(_thread_in_Java, G3_scratch);
duke@435 1112 __ st(G3_scratch, thread_state);
duke@435 1113
duke@435 1114 // reset handle block
twisti@1162 1115 __ ld_ptr(G2_thread, JavaThread::active_handles_offset(), G3_scratch);
duke@435 1116 __ st_ptr(G0, G3_scratch, JNIHandleBlock::top_offset_in_bytes());
duke@435 1117
duke@435 1118 // If we have an oop result store it where it will be safe for any further gc
duke@435 1119 // until we return now that we've released the handle it might be protected by
duke@435 1120
duke@435 1121 {
duke@435 1122 Label no_oop, store_result;
duke@435 1123
duke@435 1124 __ set((intptr_t)AbstractInterpreter::result_handler(T_OBJECT), G3_scratch);
duke@435 1125 __ cmp(G3_scratch, Lscratch);
duke@435 1126 __ brx(Assembler::notEqual, false, Assembler::pt, no_oop);
duke@435 1127 __ delayed()->nop();
duke@435 1128 __ addcc(G0, O0, O0);
duke@435 1129 __ brx(Assembler::notZero, true, Assembler::pt, store_result); // if result is not NULL:
duke@435 1130 __ delayed()->ld_ptr(O0, 0, O0); // unbox it
duke@435 1131 __ mov(G0, O0);
duke@435 1132
duke@435 1133 __ bind(store_result);
duke@435 1134 // Store it where gc will look for it and result handler expects it.
duke@435 1135 __ st_ptr(O0, FP, (frame::interpreter_frame_oop_temp_offset*wordSize) + STACK_BIAS);
duke@435 1136
duke@435 1137 __ bind(no_oop);
duke@435 1138
duke@435 1139 }
duke@435 1140
duke@435 1141
duke@435 1142 // handle exceptions (exception handling will handle unlocking!)
duke@435 1143 { Label L;
twisti@1162 1144 Address exception_addr(G2_thread, Thread::pending_exception_offset());
duke@435 1145 __ ld_ptr(exception_addr, Gtemp);
duke@435 1146 __ tst(Gtemp);
duke@435 1147 __ brx(Assembler::equal, false, Assembler::pt, L);
duke@435 1148 __ delayed()->nop();
duke@435 1149 // Note: This could be handled more efficiently since we know that the native
duke@435 1150 // method doesn't have an exception handler. We could directly return
duke@435 1151 // to the exception handler for the caller.
duke@435 1152 __ call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::throw_pending_exception));
duke@435 1153 __ should_not_reach_here();
duke@435 1154 __ bind(L);
duke@435 1155 }
duke@435 1156
duke@435 1157 // JVMTI support (preserves thread register)
duke@435 1158 __ notify_method_exit(true, ilgl, InterpreterMacroAssembler::NotifyJVMTI);
duke@435 1159
duke@435 1160 if (synchronized) {
duke@435 1161 // save and restore any potential method result value around the unlocking operation
duke@435 1162 save_native_result();
duke@435 1163
duke@435 1164 __ add( __ top_most_monitor(), O1);
duke@435 1165 __ unlock_object(O1);
duke@435 1166
duke@435 1167 restore_native_result();
duke@435 1168 }
duke@435 1169
duke@435 1170 #if defined(COMPILER2) && !defined(_LP64)
duke@435 1171
duke@435 1172 // C2 expects long results in G1 we can't tell if we're returning to interpreted
duke@435 1173 // or compiled so just be safe.
duke@435 1174
duke@435 1175 __ sllx(O0, 32, G1); // Shift bits into high G1
duke@435 1176 __ srl (O1, 0, O1); // Zero extend O1
duke@435 1177 __ or3 (O1, G1, G1); // OR 64 bits into G1
duke@435 1178
duke@435 1179 #endif /* COMPILER2 && !_LP64 */
duke@435 1180
duke@435 1181 // dispose of return address and remove activation
duke@435 1182 #ifdef ASSERT
duke@435 1183 {
duke@435 1184 Label ok;
duke@435 1185 __ cmp(I5_savedSP, FP);
duke@435 1186 __ brx(Assembler::greaterEqualUnsigned, false, Assembler::pt, ok);
duke@435 1187 __ delayed()->nop();
duke@435 1188 __ stop("bad I5_savedSP value");
duke@435 1189 __ should_not_reach_here();
duke@435 1190 __ bind(ok);
duke@435 1191 }
duke@435 1192 #endif
duke@435 1193 if (TraceJumps) {
duke@435 1194 // Move target to register that is recordable
duke@435 1195 __ mov(Lscratch, G3_scratch);
duke@435 1196 __ JMP(G3_scratch, 0);
duke@435 1197 } else {
duke@435 1198 __ jmp(Lscratch, 0);
duke@435 1199 }
duke@435 1200 __ delayed()->nop();
duke@435 1201
duke@435 1202
duke@435 1203 if (inc_counter) {
duke@435 1204 // handle invocation counter overflow
duke@435 1205 __ bind(invocation_counter_overflow);
duke@435 1206 generate_counter_overflow(Lcontinue);
duke@435 1207 }
duke@435 1208
duke@435 1209
duke@435 1210
duke@435 1211 return entry;
duke@435 1212 }
duke@435 1213
duke@435 1214
duke@435 1215 // Generic method entry to (asm) interpreter
duke@435 1216 //------------------------------------------------------------------------------------------------------------------------
duke@435 1217 //
duke@435 1218 address InterpreterGenerator::generate_normal_entry(bool synchronized) {
duke@435 1219 address entry = __ pc();
duke@435 1220
duke@435 1221 bool inc_counter = UseCompiler || CountCompiledCalls;
duke@435 1222
duke@435 1223 // the following temporary registers are used during frame creation
duke@435 1224 const Register Gtmp1 = G3_scratch ;
duke@435 1225 const Register Gtmp2 = G1_scratch;
duke@435 1226
duke@435 1227 // make sure registers are different!
duke@435 1228 assert_different_registers(G2_thread, G5_method, Gargs, Gtmp1, Gtmp2);
duke@435 1229
twisti@1162 1230 const Address size_of_parameters(G5_method, methodOopDesc::size_of_parameters_offset());
twisti@1162 1231 const Address size_of_locals (G5_method, methodOopDesc::size_of_locals_offset());
duke@435 1232 // Seems like G5_method is live at the point this is used. So we could make this look consistent
duke@435 1233 // and use in the asserts.
twisti@1162 1234 const Address access_flags (Lmethod, methodOopDesc::access_flags_offset());
duke@435 1235
duke@435 1236 __ verify_oop(G5_method);
duke@435 1237
duke@435 1238 const Register Glocals_size = G3;
duke@435 1239 assert_different_registers(Glocals_size, G4_scratch, Gframe_size);
duke@435 1240
duke@435 1241 // make sure method is not native & not abstract
duke@435 1242 // rethink these assertions - they can be simplified and shared (gri 2/25/2000)
duke@435 1243 #ifdef ASSERT
twisti@1162 1244 __ ld(G5_method, methodOopDesc::access_flags_offset(), Gtmp1);
duke@435 1245 {
duke@435 1246 Label L;
duke@435 1247 __ btst(JVM_ACC_NATIVE, Gtmp1);
duke@435 1248 __ br(Assembler::zero, false, Assembler::pt, L);
duke@435 1249 __ delayed()->nop();
duke@435 1250 __ stop("tried to execute native method as non-native");
duke@435 1251 __ bind(L);
duke@435 1252 }
duke@435 1253 { Label L;
duke@435 1254 __ btst(JVM_ACC_ABSTRACT, Gtmp1);
duke@435 1255 __ br(Assembler::zero, false, Assembler::pt, L);
duke@435 1256 __ delayed()->nop();
duke@435 1257 __ stop("tried to execute abstract method as non-abstract");
duke@435 1258 __ bind(L);
duke@435 1259 }
duke@435 1260 #endif // ASSERT
duke@435 1261
duke@435 1262 // generate the code to allocate the interpreter stack frame
duke@435 1263
duke@435 1264 generate_fixed_frame(false);
duke@435 1265
duke@435 1266 #ifdef FAST_DISPATCH
duke@435 1267 __ set((intptr_t)Interpreter::dispatch_table(), IdispatchTables);
duke@435 1268 // set bytecode dispatch table base
duke@435 1269 #endif
duke@435 1270
duke@435 1271 //
duke@435 1272 // Code to initialize the extra (i.e. non-parm) locals
duke@435 1273 //
duke@435 1274 Register init_value = noreg; // will be G0 if we must clear locals
duke@435 1275 // The way the code was setup before zerolocals was always true for vanilla java entries.
duke@435 1276 // It could only be false for the specialized entries like accessor or empty which have
duke@435 1277 // no extra locals so the testing was a waste of time and the extra locals were always
duke@435 1278 // initialized. We removed this extra complication to already over complicated code.
duke@435 1279
duke@435 1280 init_value = G0;
duke@435 1281 Label clear_loop;
duke@435 1282
duke@435 1283 // NOTE: If you change the frame layout, this code will need to
duke@435 1284 // be updated!
duke@435 1285 __ lduh( size_of_locals, O2 );
duke@435 1286 __ lduh( size_of_parameters, O1 );
twisti@1861 1287 __ sll( O2, Interpreter::logStackElementSize, O2);
twisti@1861 1288 __ sll( O1, Interpreter::logStackElementSize, O1 );
duke@435 1289 __ sub( Llocals, O2, O2 );
duke@435 1290 __ sub( Llocals, O1, O1 );
duke@435 1291
duke@435 1292 __ bind( clear_loop );
duke@435 1293 __ inc( O2, wordSize );
duke@435 1294
duke@435 1295 __ cmp( O2, O1 );
duke@435 1296 __ brx( Assembler::lessEqualUnsigned, true, Assembler::pt, clear_loop );
duke@435 1297 __ delayed()->st_ptr( init_value, O2, 0 );
duke@435 1298
twisti@1162 1299 const Address do_not_unlock_if_synchronized(G2_thread,
twisti@1162 1300 JavaThread::do_not_unlock_if_synchronized_offset());
duke@435 1301 // Since at this point in the method invocation the exception handler
duke@435 1302 // would try to exit the monitor of synchronized methods which hasn't
duke@435 1303 // been entered yet, we set the thread local variable
duke@435 1304 // _do_not_unlock_if_synchronized to true. If any exception was thrown by
duke@435 1305 // runtime, exception handling i.e. unlock_if_synchronized_method will
duke@435 1306 // check this thread local flag.
duke@435 1307 __ movbool(true, G3_scratch);
duke@435 1308 __ stbool(G3_scratch, do_not_unlock_if_synchronized);
duke@435 1309
duke@435 1310 // increment invocation counter and check for overflow
duke@435 1311 //
duke@435 1312 // Note: checking for negative value instead of overflow
duke@435 1313 // so we have a 'sticky' overflow test (may be of
duke@435 1314 // importance as soon as we have true MT/MP)
duke@435 1315 Label invocation_counter_overflow;
duke@435 1316 Label profile_method;
duke@435 1317 Label profile_method_continue;
duke@435 1318 Label Lcontinue;
duke@435 1319 if (inc_counter) {
duke@435 1320 generate_counter_incr(&invocation_counter_overflow, &profile_method, &profile_method_continue);
duke@435 1321 if (ProfileInterpreter) {
duke@435 1322 __ bind(profile_method_continue);
duke@435 1323 }
duke@435 1324 }
duke@435 1325 __ bind(Lcontinue);
duke@435 1326
duke@435 1327 bang_stack_shadow_pages(false);
duke@435 1328
duke@435 1329 // reset the _do_not_unlock_if_synchronized flag
duke@435 1330 __ stbool(G0, do_not_unlock_if_synchronized);
duke@435 1331
duke@435 1332 // check for synchronized methods
duke@435 1333 // Must happen AFTER invocation_counter check and stack overflow check,
duke@435 1334 // so method is not locked if overflows.
duke@435 1335
duke@435 1336 if (synchronized) {
duke@435 1337 lock_method();
duke@435 1338 } else {
duke@435 1339 #ifdef ASSERT
duke@435 1340 { Label ok;
duke@435 1341 __ ld(access_flags, O0);
duke@435 1342 __ btst(JVM_ACC_SYNCHRONIZED, O0);
duke@435 1343 __ br( Assembler::zero, false, Assembler::pt, ok);
duke@435 1344 __ delayed()->nop();
duke@435 1345 __ stop("method needs synchronization");
duke@435 1346 __ bind(ok);
duke@435 1347 }
duke@435 1348 #endif // ASSERT
duke@435 1349 }
duke@435 1350
duke@435 1351 // start execution
duke@435 1352
duke@435 1353 __ verify_thread();
duke@435 1354
duke@435 1355 // jvmti support
duke@435 1356 __ notify_method_entry();
duke@435 1357
duke@435 1358 // start executing instructions
duke@435 1359 __ dispatch_next(vtos);
duke@435 1360
duke@435 1361
duke@435 1362 if (inc_counter) {
duke@435 1363 if (ProfileInterpreter) {
duke@435 1364 // We have decided to profile this method in the interpreter
duke@435 1365 __ bind(profile_method);
duke@435 1366
duke@435 1367 __ call_VM(noreg, CAST_FROM_FN_PTR(address, InterpreterRuntime::profile_method), Lbcp, true);
duke@435 1368
duke@435 1369 #ifdef ASSERT
duke@435 1370 __ tst(O0);
duke@435 1371 __ breakpoint_trap(Assembler::notEqual);
duke@435 1372 #endif
duke@435 1373
duke@435 1374 __ set_method_data_pointer();
duke@435 1375
duke@435 1376 __ ba(false, profile_method_continue);
duke@435 1377 __ delayed()->nop();
duke@435 1378 }
duke@435 1379
duke@435 1380 // handle invocation counter overflow
duke@435 1381 __ bind(invocation_counter_overflow);
duke@435 1382 generate_counter_overflow(Lcontinue);
duke@435 1383 }
duke@435 1384
duke@435 1385
duke@435 1386 return entry;
duke@435 1387 }
duke@435 1388
duke@435 1389
duke@435 1390 //----------------------------------------------------------------------------------------------------
duke@435 1391 // Entry points & stack frame layout
duke@435 1392 //
duke@435 1393 // Here we generate the various kind of entries into the interpreter.
duke@435 1394 // The two main entry type are generic bytecode methods and native call method.
duke@435 1395 // These both come in synchronized and non-synchronized versions but the
duke@435 1396 // frame layout they create is very similar. The other method entry
duke@435 1397 // types are really just special purpose entries that are really entry
duke@435 1398 // and interpretation all in one. These are for trivial methods like
duke@435 1399 // accessor, empty, or special math methods.
duke@435 1400 //
duke@435 1401 // When control flow reaches any of the entry types for the interpreter
duke@435 1402 // the following holds ->
duke@435 1403 //
duke@435 1404 // C2 Calling Conventions:
duke@435 1405 //
duke@435 1406 // The entry code below assumes that the following registers are set
duke@435 1407 // when coming in:
duke@435 1408 // G5_method: holds the methodOop of the method to call
duke@435 1409 // Lesp: points to the TOS of the callers expression stack
duke@435 1410 // after having pushed all the parameters
duke@435 1411 //
duke@435 1412 // The entry code does the following to setup an interpreter frame
duke@435 1413 // pop parameters from the callers stack by adjusting Lesp
duke@435 1414 // set O0 to Lesp
duke@435 1415 // compute X = (max_locals - num_parameters)
duke@435 1416 // bump SP up by X to accomadate the extra locals
duke@435 1417 // compute X = max_expression_stack
duke@435 1418 // + vm_local_words
duke@435 1419 // + 16 words of register save area
duke@435 1420 // save frame doing a save sp, -X, sp growing towards lower addresses
duke@435 1421 // set Lbcp, Lmethod, LcpoolCache
duke@435 1422 // set Llocals to i0
duke@435 1423 // set Lmonitors to FP - rounded_vm_local_words
duke@435 1424 // set Lesp to Lmonitors - 4
duke@435 1425 //
duke@435 1426 // The frame has now been setup to do the rest of the entry code
duke@435 1427
duke@435 1428 // Try this optimization: Most method entries could live in a
duke@435 1429 // "one size fits all" stack frame without all the dynamic size
duke@435 1430 // calculations. It might be profitable to do all this calculation
duke@435 1431 // statically and approximately for "small enough" methods.
duke@435 1432
duke@435 1433 //-----------------------------------------------------------------------------------------------
duke@435 1434
duke@435 1435 // C1 Calling conventions
duke@435 1436 //
duke@435 1437 // Upon method entry, the following registers are setup:
duke@435 1438 //
duke@435 1439 // g2 G2_thread: current thread
duke@435 1440 // g5 G5_method: method to activate
duke@435 1441 // g4 Gargs : pointer to last argument
duke@435 1442 //
duke@435 1443 //
duke@435 1444 // Stack:
duke@435 1445 //
duke@435 1446 // +---------------+ <--- sp
duke@435 1447 // | |
duke@435 1448 // : reg save area :
duke@435 1449 // | |
duke@435 1450 // +---------------+ <--- sp + 0x40
duke@435 1451 // | |
duke@435 1452 // : extra 7 slots : note: these slots are not really needed for the interpreter (fix later)
duke@435 1453 // | |
duke@435 1454 // +---------------+ <--- sp + 0x5c
duke@435 1455 // | |
duke@435 1456 // : free :
duke@435 1457 // | |
duke@435 1458 // +---------------+ <--- Gargs
duke@435 1459 // | |
duke@435 1460 // : arguments :
duke@435 1461 // | |
duke@435 1462 // +---------------+
duke@435 1463 // | |
duke@435 1464 //
duke@435 1465 //
duke@435 1466 //
duke@435 1467 // AFTER FRAME HAS BEEN SETUP for method interpretation the stack looks like:
duke@435 1468 //
duke@435 1469 // +---------------+ <--- sp
duke@435 1470 // | |
duke@435 1471 // : reg save area :
duke@435 1472 // | |
duke@435 1473 // +---------------+ <--- sp + 0x40
duke@435 1474 // | |
duke@435 1475 // : extra 7 slots : note: these slots are not really needed for the interpreter (fix later)
duke@435 1476 // | |
duke@435 1477 // +---------------+ <--- sp + 0x5c
duke@435 1478 // | |
duke@435 1479 // : :
duke@435 1480 // | | <--- Lesp
duke@435 1481 // +---------------+ <--- Lmonitors (fp - 0x18)
duke@435 1482 // | VM locals |
duke@435 1483 // +---------------+ <--- fp
duke@435 1484 // | |
duke@435 1485 // : reg save area :
duke@435 1486 // | |
duke@435 1487 // +---------------+ <--- fp + 0x40
duke@435 1488 // | |
duke@435 1489 // : extra 7 slots : note: these slots are not really needed for the interpreter (fix later)
duke@435 1490 // | |
duke@435 1491 // +---------------+ <--- fp + 0x5c
duke@435 1492 // | |
duke@435 1493 // : free :
duke@435 1494 // | |
duke@435 1495 // +---------------+
duke@435 1496 // | |
duke@435 1497 // : nonarg locals :
duke@435 1498 // | |
duke@435 1499 // +---------------+
duke@435 1500 // | |
duke@435 1501 // : arguments :
duke@435 1502 // | | <--- Llocals
duke@435 1503 // +---------------+ <--- Gargs
duke@435 1504 // | |
duke@435 1505
duke@435 1506 static int size_activation_helper(int callee_extra_locals, int max_stack, int monitor_size) {
duke@435 1507
duke@435 1508 // Figure out the size of an interpreter frame (in words) given that we have a fully allocated
duke@435 1509 // expression stack, the callee will have callee_extra_locals (so we can account for
duke@435 1510 // frame extension) and monitor_size for monitors. Basically we need to calculate
duke@435 1511 // this exactly like generate_fixed_frame/generate_compute_interpreter_state.
duke@435 1512 //
duke@435 1513 //
duke@435 1514 // The big complicating thing here is that we must ensure that the stack stays properly
duke@435 1515 // aligned. This would be even uglier if monitor size wasn't modulo what the stack
duke@435 1516 // needs to be aligned for). We are given that the sp (fp) is already aligned by
duke@435 1517 // the caller so we must ensure that it is properly aligned for our callee.
duke@435 1518 //
duke@435 1519 const int rounded_vm_local_words =
duke@435 1520 round_to(frame::interpreter_frame_vm_local_words,WordsPerLong);
duke@435 1521 // callee_locals and max_stack are counts, not the size in frame.
duke@435 1522 const int locals_size =
twisti@1861 1523 round_to(callee_extra_locals * Interpreter::stackElementWords, WordsPerLong);
twisti@1861 1524 const int max_stack_words = max_stack * Interpreter::stackElementWords;
duke@435 1525 return (round_to((max_stack_words
jrose@1145 1526 //6815692//+ methodOopDesc::extra_stack_words()
duke@435 1527 + rounded_vm_local_words
duke@435 1528 + frame::memory_parameter_word_sp_offset), WordsPerLong)
duke@435 1529 // already rounded
duke@435 1530 + locals_size + monitor_size);
duke@435 1531 }
duke@435 1532
duke@435 1533 // How much stack a method top interpreter activation needs in words.
duke@435 1534 int AbstractInterpreter::size_top_interpreter_activation(methodOop method) {
duke@435 1535
duke@435 1536 // See call_stub code
duke@435 1537 int call_stub_size = round_to(7 + frame::memory_parameter_word_sp_offset,
duke@435 1538 WordsPerLong); // 7 + register save area
duke@435 1539
duke@435 1540 // Save space for one monitor to get into the interpreted method in case
duke@435 1541 // the method is synchronized
duke@435 1542 int monitor_size = method->is_synchronized() ?
duke@435 1543 1*frame::interpreter_frame_monitor_size() : 0;
duke@435 1544 return size_activation_helper(method->max_locals(), method->max_stack(),
duke@435 1545 monitor_size) + call_stub_size;
duke@435 1546 }
duke@435 1547
duke@435 1548 int AbstractInterpreter::layout_activation(methodOop method,
duke@435 1549 int tempcount,
duke@435 1550 int popframe_extra_args,
duke@435 1551 int moncount,
duke@435 1552 int callee_param_count,
duke@435 1553 int callee_local_count,
duke@435 1554 frame* caller,
duke@435 1555 frame* interpreter_frame,
duke@435 1556 bool is_top_frame) {
duke@435 1557 // Note: This calculation must exactly parallel the frame setup
duke@435 1558 // in InterpreterGenerator::generate_fixed_frame.
duke@435 1559 // If f!=NULL, set up the following variables:
duke@435 1560 // - Lmethod
duke@435 1561 // - Llocals
duke@435 1562 // - Lmonitors (to the indicated number of monitors)
duke@435 1563 // - Lesp (to the indicated number of temps)
duke@435 1564 // The frame f (if not NULL) on entry is a description of the caller of the frame
duke@435 1565 // we are about to layout. We are guaranteed that we will be able to fill in a
duke@435 1566 // new interpreter frame as its callee (i.e. the stack space is allocated and
duke@435 1567 // the amount was determined by an earlier call to this method with f == NULL).
duke@435 1568 // On return f (if not NULL) while describe the interpreter frame we just layed out.
duke@435 1569
duke@435 1570 int monitor_size = moncount * frame::interpreter_frame_monitor_size();
duke@435 1571 int rounded_vm_local_words = round_to(frame::interpreter_frame_vm_local_words,WordsPerLong);
duke@435 1572
duke@435 1573 assert(monitor_size == round_to(monitor_size, WordsPerLong), "must align");
duke@435 1574 //
duke@435 1575 // Note: if you look closely this appears to be doing something much different
duke@435 1576 // than generate_fixed_frame. What is happening is this. On sparc we have to do
duke@435 1577 // this dance with interpreter_sp_adjustment because the window save area would
duke@435 1578 // appear just below the bottom (tos) of the caller's java expression stack. Because
duke@435 1579 // the interpreter want to have the locals completely contiguous generate_fixed_frame
duke@435 1580 // will adjust the caller's sp for the "extra locals" (max_locals - parameter_size).
duke@435 1581 // Now in generate_fixed_frame the extension of the caller's sp happens in the callee.
duke@435 1582 // In this code the opposite occurs the caller adjusts it's own stack base on the callee.
duke@435 1583 // This is mostly ok but it does cause a problem when we get to the initial frame (the oldest)
duke@435 1584 // because the oldest frame would have adjust its callers frame and yet that frame
duke@435 1585 // already exists and isn't part of this array of frames we are unpacking. So at first
duke@435 1586 // glance this would seem to mess up that frame. However Deoptimization::fetch_unroll_info_helper()
duke@435 1587 // will after it calculates all of the frame's on_stack_size()'s will then figure out the
duke@435 1588 // amount to adjust the caller of the initial (oldest) frame and the calculation will all
duke@435 1589 // add up. It does seem like it simpler to account for the adjustment here (and remove the
duke@435 1590 // callee... parameters here). However this would mean that this routine would have to take
duke@435 1591 // the caller frame as input so we could adjust its sp (and set it's interpreter_sp_adjustment)
duke@435 1592 // and run the calling loop in the reverse order. This would also would appear to mean making
duke@435 1593 // this code aware of what the interactions are when that initial caller fram was an osr or
duke@435 1594 // other adapter frame. deoptimization is complicated enough and hard enough to debug that
duke@435 1595 // there is no sense in messing working code.
duke@435 1596 //
duke@435 1597
duke@435 1598 int rounded_cls = round_to((callee_local_count - callee_param_count), WordsPerLong);
duke@435 1599 assert(rounded_cls == round_to(rounded_cls, WordsPerLong), "must align");
duke@435 1600
duke@435 1601 int raw_frame_size = size_activation_helper(rounded_cls, method->max_stack(),
duke@435 1602 monitor_size);
duke@435 1603
duke@435 1604 if (interpreter_frame != NULL) {
duke@435 1605 // The skeleton frame must already look like an interpreter frame
duke@435 1606 // even if not fully filled out.
duke@435 1607 assert(interpreter_frame->is_interpreted_frame(), "Must be interpreted frame");
duke@435 1608
duke@435 1609 intptr_t* fp = interpreter_frame->fp();
duke@435 1610
duke@435 1611 JavaThread* thread = JavaThread::current();
duke@435 1612 RegisterMap map(thread, false);
duke@435 1613 // More verification that skeleton frame is properly walkable
duke@435 1614 assert(fp == caller->sp(), "fp must match");
duke@435 1615
duke@435 1616 intptr_t* montop = fp - rounded_vm_local_words;
duke@435 1617
duke@435 1618 // preallocate monitors (cf. __ add_monitor_to_stack)
duke@435 1619 intptr_t* monitors = montop - monitor_size;
duke@435 1620
duke@435 1621 // preallocate stack space
duke@435 1622 intptr_t* esp = monitors - 1 -
twisti@1861 1623 (tempcount * Interpreter::stackElementWords) -
duke@435 1624 popframe_extra_args;
duke@435 1625
twisti@1861 1626 int local_words = method->max_locals() * Interpreter::stackElementWords;
twisti@1861 1627 int parm_words = method->size_of_parameters() * Interpreter::stackElementWords;
duke@435 1628 NEEDS_CLEANUP;
duke@435 1629 intptr_t* locals;
duke@435 1630 if (caller->is_interpreted_frame()) {
duke@435 1631 // Can force the locals area to end up properly overlapping the top of the expression stack.
duke@435 1632 intptr_t* Lesp_ptr = caller->interpreter_frame_tos_address() - 1;
duke@435 1633 // Note that this computation means we replace size_of_parameters() values from the caller
duke@435 1634 // interpreter frame's expression stack with our argument locals
duke@435 1635 locals = Lesp_ptr + parm_words;
duke@435 1636 int delta = local_words - parm_words;
duke@435 1637 int computed_sp_adjustment = (delta > 0) ? round_to(delta, WordsPerLong) : 0;
duke@435 1638 *interpreter_frame->register_addr(I5_savedSP) = (intptr_t) (fp + computed_sp_adjustment) - STACK_BIAS;
duke@435 1639 } else {
duke@435 1640 assert(caller->is_compiled_frame() || caller->is_entry_frame(), "only possible cases");
duke@435 1641 // Don't have Lesp available; lay out locals block in the caller
duke@435 1642 // adjacent to the register window save area.
duke@435 1643 //
duke@435 1644 // Compiled frames do not allocate a varargs area which is why this if
duke@435 1645 // statement is needed.
duke@435 1646 //
duke@435 1647 if (caller->is_compiled_frame()) {
duke@435 1648 locals = fp + frame::register_save_words + local_words - 1;
duke@435 1649 } else {
duke@435 1650 locals = fp + frame::memory_parameter_word_sp_offset + local_words - 1;
duke@435 1651 }
duke@435 1652 if (!caller->is_entry_frame()) {
duke@435 1653 // Caller wants his own SP back
duke@435 1654 int caller_frame_size = caller->cb()->frame_size();
duke@435 1655 *interpreter_frame->register_addr(I5_savedSP) = (intptr_t)(caller->fp() - caller_frame_size) - STACK_BIAS;
duke@435 1656 }
duke@435 1657 }
duke@435 1658 if (TraceDeoptimization) {
duke@435 1659 if (caller->is_entry_frame()) {
duke@435 1660 // make sure I5_savedSP and the entry frames notion of saved SP
duke@435 1661 // agree. This assertion duplicate a check in entry frame code
duke@435 1662 // but catches the failure earlier.
duke@435 1663 assert(*caller->register_addr(Lscratch) == *interpreter_frame->register_addr(I5_savedSP),
duke@435 1664 "would change callers SP");
duke@435 1665 }
duke@435 1666 if (caller->is_entry_frame()) {
duke@435 1667 tty->print("entry ");
duke@435 1668 }
duke@435 1669 if (caller->is_compiled_frame()) {
duke@435 1670 tty->print("compiled ");
duke@435 1671 if (caller->is_deoptimized_frame()) {
duke@435 1672 tty->print("(deopt) ");
duke@435 1673 }
duke@435 1674 }
duke@435 1675 if (caller->is_interpreted_frame()) {
duke@435 1676 tty->print("interpreted ");
duke@435 1677 }
duke@435 1678 tty->print_cr("caller fp=0x%x sp=0x%x", caller->fp(), caller->sp());
duke@435 1679 tty->print_cr("save area = 0x%x, 0x%x", caller->sp(), caller->sp() + 16);
duke@435 1680 tty->print_cr("save area = 0x%x, 0x%x", caller->fp(), caller->fp() + 16);
duke@435 1681 tty->print_cr("interpreter fp=0x%x sp=0x%x", interpreter_frame->fp(), interpreter_frame->sp());
duke@435 1682 tty->print_cr("save area = 0x%x, 0x%x", interpreter_frame->sp(), interpreter_frame->sp() + 16);
duke@435 1683 tty->print_cr("save area = 0x%x, 0x%x", interpreter_frame->fp(), interpreter_frame->fp() + 16);
duke@435 1684 tty->print_cr("Llocals = 0x%x", locals);
duke@435 1685 tty->print_cr("Lesp = 0x%x", esp);
duke@435 1686 tty->print_cr("Lmonitors = 0x%x", monitors);
duke@435 1687 }
duke@435 1688
duke@435 1689 if (method->max_locals() > 0) {
duke@435 1690 assert(locals < caller->sp() || locals >= (caller->sp() + 16), "locals in save area");
duke@435 1691 assert(locals < caller->fp() || locals > (caller->fp() + 16), "locals in save area");
duke@435 1692 assert(locals < interpreter_frame->sp() || locals > (interpreter_frame->sp() + 16), "locals in save area");
duke@435 1693 assert(locals < interpreter_frame->fp() || locals >= (interpreter_frame->fp() + 16), "locals in save area");
duke@435 1694 }
duke@435 1695 #ifdef _LP64
duke@435 1696 assert(*interpreter_frame->register_addr(I5_savedSP) & 1, "must be odd");
duke@435 1697 #endif
duke@435 1698
duke@435 1699 *interpreter_frame->register_addr(Lmethod) = (intptr_t) method;
duke@435 1700 *interpreter_frame->register_addr(Llocals) = (intptr_t) locals;
duke@435 1701 *interpreter_frame->register_addr(Lmonitors) = (intptr_t) monitors;
duke@435 1702 *interpreter_frame->register_addr(Lesp) = (intptr_t) esp;
duke@435 1703 // Llast_SP will be same as SP as there is no adapter space
duke@435 1704 *interpreter_frame->register_addr(Llast_SP) = (intptr_t) interpreter_frame->sp() - STACK_BIAS;
duke@435 1705 *interpreter_frame->register_addr(LcpoolCache) = (intptr_t) method->constants()->cache();
duke@435 1706 #ifdef FAST_DISPATCH
duke@435 1707 *interpreter_frame->register_addr(IdispatchTables) = (intptr_t) Interpreter::dispatch_table();
duke@435 1708 #endif
duke@435 1709
duke@435 1710
duke@435 1711 #ifdef ASSERT
duke@435 1712 BasicObjectLock* mp = (BasicObjectLock*)monitors;
duke@435 1713
duke@435 1714 assert(interpreter_frame->interpreter_frame_method() == method, "method matches");
twisti@1861 1715 assert(interpreter_frame->interpreter_frame_local_at(9) == (intptr_t *)((intptr_t)locals - (9 * Interpreter::stackElementSize)), "locals match");
duke@435 1716 assert(interpreter_frame->interpreter_frame_monitor_end() == mp, "monitor_end matches");
duke@435 1717 assert(((intptr_t *)interpreter_frame->interpreter_frame_monitor_begin()) == ((intptr_t *)mp)+monitor_size, "monitor_begin matches");
duke@435 1718 assert(interpreter_frame->interpreter_frame_tos_address()-1 == esp, "esp matches");
duke@435 1719
duke@435 1720 // check bounds
duke@435 1721 intptr_t* lo = interpreter_frame->sp() + (frame::memory_parameter_word_sp_offset - 1);
duke@435 1722 intptr_t* hi = interpreter_frame->fp() - rounded_vm_local_words;
duke@435 1723 assert(lo < monitors && montop <= hi, "monitors in bounds");
duke@435 1724 assert(lo <= esp && esp < monitors, "esp in bounds");
duke@435 1725 #endif // ASSERT
duke@435 1726 }
duke@435 1727
duke@435 1728 return raw_frame_size;
duke@435 1729 }
duke@435 1730
duke@435 1731 //----------------------------------------------------------------------------------------------------
duke@435 1732 // Exceptions
duke@435 1733 void TemplateInterpreterGenerator::generate_throw_exception() {
duke@435 1734
duke@435 1735 // Entry point in previous activation (i.e., if the caller was interpreted)
duke@435 1736 Interpreter::_rethrow_exception_entry = __ pc();
duke@435 1737 // O0: exception
duke@435 1738
duke@435 1739 // entry point for exceptions thrown within interpreter code
duke@435 1740 Interpreter::_throw_exception_entry = __ pc();
duke@435 1741 __ verify_thread();
duke@435 1742 // expression stack is undefined here
duke@435 1743 // O0: exception, i.e. Oexception
duke@435 1744 // Lbcp: exception bcx
duke@435 1745 __ verify_oop(Oexception);
duke@435 1746
duke@435 1747
duke@435 1748 // expression stack must be empty before entering the VM in case of an exception
duke@435 1749 __ empty_expression_stack();
duke@435 1750 // find exception handler address and preserve exception oop
duke@435 1751 // call C routine to find handler and jump to it
duke@435 1752 __ call_VM(O1, CAST_FROM_FN_PTR(address, InterpreterRuntime::exception_handler_for_exception), Oexception);
duke@435 1753 __ push_ptr(O1); // push exception for exception handler bytecodes
duke@435 1754
duke@435 1755 __ JMP(O0, 0); // jump to exception handler (may be remove activation entry!)
duke@435 1756 __ delayed()->nop();
duke@435 1757
duke@435 1758
duke@435 1759 // if the exception is not handled in the current frame
duke@435 1760 // the frame is removed and the exception is rethrown
duke@435 1761 // (i.e. exception continuation is _rethrow_exception)
duke@435 1762 //
duke@435 1763 // Note: At this point the bci is still the bxi for the instruction which caused
duke@435 1764 // the exception and the expression stack is empty. Thus, for any VM calls
duke@435 1765 // at this point, GC will find a legal oop map (with empty expression stack).
duke@435 1766
duke@435 1767 // in current activation
duke@435 1768 // tos: exception
duke@435 1769 // Lbcp: exception bcp
duke@435 1770
duke@435 1771 //
duke@435 1772 // JVMTI PopFrame support
duke@435 1773 //
duke@435 1774
duke@435 1775 Interpreter::_remove_activation_preserving_args_entry = __ pc();
twisti@1162 1776 Address popframe_condition_addr(G2_thread, JavaThread::popframe_condition_offset());
duke@435 1777 // Set the popframe_processing bit in popframe_condition indicating that we are
duke@435 1778 // currently handling popframe, so that call_VMs that may happen later do not trigger new
duke@435 1779 // popframe handling cycles.
duke@435 1780
duke@435 1781 __ ld(popframe_condition_addr, G3_scratch);
duke@435 1782 __ or3(G3_scratch, JavaThread::popframe_processing_bit, G3_scratch);
duke@435 1783 __ stw(G3_scratch, popframe_condition_addr);
duke@435 1784
duke@435 1785 // Empty the expression stack, as in normal exception handling
duke@435 1786 __ empty_expression_stack();
duke@435 1787 __ unlock_if_synchronized_method(vtos, /* throw_monitor_exception */ false, /* install_monitor_exception */ false);
duke@435 1788
duke@435 1789 {
duke@435 1790 // Check to see whether we are returning to a deoptimized frame.
duke@435 1791 // (The PopFrame call ensures that the caller of the popped frame is
duke@435 1792 // either interpreted or compiled and deoptimizes it if compiled.)
duke@435 1793 // In this case, we can't call dispatch_next() after the frame is
duke@435 1794 // popped, but instead must save the incoming arguments and restore
duke@435 1795 // them after deoptimization has occurred.
duke@435 1796 //
duke@435 1797 // Note that we don't compare the return PC against the
duke@435 1798 // deoptimization blob's unpack entry because of the presence of
duke@435 1799 // adapter frames in C2.
duke@435 1800 Label caller_not_deoptimized;
duke@435 1801 __ call_VM_leaf(L7_thread_cache, CAST_FROM_FN_PTR(address, InterpreterRuntime::interpreter_contains), I7);
duke@435 1802 __ tst(O0);
duke@435 1803 __ brx(Assembler::notEqual, false, Assembler::pt, caller_not_deoptimized);
duke@435 1804 __ delayed()->nop();
duke@435 1805
duke@435 1806 const Register Gtmp1 = G3_scratch;
duke@435 1807 const Register Gtmp2 = G1_scratch;
duke@435 1808
duke@435 1809 // Compute size of arguments for saving when returning to deoptimized caller
duke@435 1810 __ lduh(Lmethod, in_bytes(methodOopDesc::size_of_parameters_offset()), Gtmp1);
twisti@1861 1811 __ sll(Gtmp1, Interpreter::logStackElementSize, Gtmp1);
duke@435 1812 __ sub(Llocals, Gtmp1, Gtmp2);
duke@435 1813 __ add(Gtmp2, wordSize, Gtmp2);
duke@435 1814 // Save these arguments
duke@435 1815 __ call_VM_leaf(L7_thread_cache, CAST_FROM_FN_PTR(address, Deoptimization::popframe_preserve_args), G2_thread, Gtmp1, Gtmp2);
duke@435 1816 // Inform deoptimization that it is responsible for restoring these arguments
duke@435 1817 __ set(JavaThread::popframe_force_deopt_reexecution_bit, Gtmp1);
twisti@1162 1818 Address popframe_condition_addr(G2_thread, JavaThread::popframe_condition_offset());
duke@435 1819 __ st(Gtmp1, popframe_condition_addr);
duke@435 1820
duke@435 1821 // Return from the current method
duke@435 1822 // The caller's SP was adjusted upon method entry to accomodate
duke@435 1823 // the callee's non-argument locals. Undo that adjustment.
duke@435 1824 __ ret();
duke@435 1825 __ delayed()->restore(I5_savedSP, G0, SP);
duke@435 1826
duke@435 1827 __ bind(caller_not_deoptimized);
duke@435 1828 }
duke@435 1829
duke@435 1830 // Clear the popframe condition flag
duke@435 1831 __ stw(G0 /* popframe_inactive */, popframe_condition_addr);
duke@435 1832
duke@435 1833 // Get out of the current method (how this is done depends on the particular compiler calling
duke@435 1834 // convention that the interpreter currently follows)
duke@435 1835 // The caller's SP was adjusted upon method entry to accomodate
duke@435 1836 // the callee's non-argument locals. Undo that adjustment.
duke@435 1837 __ restore(I5_savedSP, G0, SP);
duke@435 1838 // The method data pointer was incremented already during
duke@435 1839 // call profiling. We have to restore the mdp for the current bcp.
duke@435 1840 if (ProfileInterpreter) {
duke@435 1841 __ set_method_data_pointer_for_bcp();
duke@435 1842 }
duke@435 1843 // Resume bytecode interpretation at the current bcp
duke@435 1844 __ dispatch_next(vtos);
duke@435 1845 // end of JVMTI PopFrame support
duke@435 1846
duke@435 1847 Interpreter::_remove_activation_entry = __ pc();
duke@435 1848
duke@435 1849 // preserve exception over this code sequence (remove activation calls the vm, but oopmaps are not correct here)
duke@435 1850 __ pop_ptr(Oexception); // get exception
duke@435 1851
duke@435 1852 // Intel has the following comment:
duke@435 1853 //// remove the activation (without doing throws on illegalMonitorExceptions)
duke@435 1854 // They remove the activation without checking for bad monitor state.
duke@435 1855 // %%% We should make sure this is the right semantics before implementing.
duke@435 1856
duke@435 1857 // %%% changed set_vm_result_2 to set_vm_result and get_vm_result_2 to get_vm_result. Is there a bug here?
duke@435 1858 __ set_vm_result(Oexception);
duke@435 1859 __ unlock_if_synchronized_method(vtos, /* throw_monitor_exception */ false);
duke@435 1860
duke@435 1861 __ notify_method_exit(false, vtos, InterpreterMacroAssembler::SkipNotifyJVMTI);
duke@435 1862
duke@435 1863 __ get_vm_result(Oexception);
duke@435 1864 __ verify_oop(Oexception);
duke@435 1865
duke@435 1866 const int return_reg_adjustment = frame::pc_return_offset;
twisti@1162 1867 Address issuing_pc_addr(I7, return_reg_adjustment);
duke@435 1868
duke@435 1869 // We are done with this activation frame; find out where to go next.
duke@435 1870 // The continuation point will be an exception handler, which expects
duke@435 1871 // the following registers set up:
duke@435 1872 //
duke@435 1873 // Oexception: exception
duke@435 1874 // Oissuing_pc: the local call that threw exception
duke@435 1875 // Other On: garbage
duke@435 1876 // In/Ln: the contents of the caller's register window
duke@435 1877 //
duke@435 1878 // We do the required restore at the last possible moment, because we
duke@435 1879 // need to preserve some state across a runtime call.
duke@435 1880 // (Remember that the caller activation is unknown--it might not be
duke@435 1881 // interpreted, so things like Lscratch are useless in the caller.)
duke@435 1882
duke@435 1883 // Although the Intel version uses call_C, we can use the more
duke@435 1884 // compact call_VM. (The only real difference on SPARC is a
duke@435 1885 // harmlessly ignored [re]set_last_Java_frame, compared with
duke@435 1886 // the Intel code which lacks this.)
duke@435 1887 __ mov(Oexception, Oexception ->after_save()); // get exception in I0 so it will be on O0 after restore
duke@435 1888 __ add(issuing_pc_addr, Oissuing_pc->after_save()); // likewise set I1 to a value local to the caller
duke@435 1889 __ super_call_VM_leaf(L7_thread_cache,
duke@435 1890 CAST_FROM_FN_PTR(address, SharedRuntime::exception_handler_for_return_address),
twisti@1730 1891 G2_thread, Oissuing_pc->after_save());
duke@435 1892
duke@435 1893 // The caller's SP was adjusted upon method entry to accomodate
duke@435 1894 // the callee's non-argument locals. Undo that adjustment.
duke@435 1895 __ JMP(O0, 0); // return exception handler in caller
duke@435 1896 __ delayed()->restore(I5_savedSP, G0, SP);
duke@435 1897
duke@435 1898 // (same old exception object is already in Oexception; see above)
duke@435 1899 // Note that an "issuing PC" is actually the next PC after the call
duke@435 1900 }
duke@435 1901
duke@435 1902
duke@435 1903 //
duke@435 1904 // JVMTI ForceEarlyReturn support
duke@435 1905 //
duke@435 1906
duke@435 1907 address TemplateInterpreterGenerator::generate_earlyret_entry_for(TosState state) {
duke@435 1908 address entry = __ pc();
duke@435 1909
duke@435 1910 __ empty_expression_stack();
duke@435 1911 __ load_earlyret_value(state);
duke@435 1912
twisti@1162 1913 __ ld_ptr(G2_thread, JavaThread::jvmti_thread_state_offset(), G3_scratch);
twisti@1162 1914 Address cond_addr(G3_scratch, JvmtiThreadState::earlyret_state_offset());
duke@435 1915
duke@435 1916 // Clear the earlyret state
duke@435 1917 __ stw(G0 /* JvmtiThreadState::earlyret_inactive */, cond_addr);
duke@435 1918
duke@435 1919 __ remove_activation(state,
duke@435 1920 /* throw_monitor_exception */ false,
duke@435 1921 /* install_monitor_exception */ false);
duke@435 1922
duke@435 1923 // The caller's SP was adjusted upon method entry to accomodate
duke@435 1924 // the callee's non-argument locals. Undo that adjustment.
duke@435 1925 __ ret(); // return to caller
duke@435 1926 __ delayed()->restore(I5_savedSP, G0, SP);
duke@435 1927
duke@435 1928 return entry;
duke@435 1929 } // end of JVMTI ForceEarlyReturn support
duke@435 1930
duke@435 1931
duke@435 1932 //------------------------------------------------------------------------------------------------------------------------
duke@435 1933 // Helper for vtos entry point generation
duke@435 1934
duke@435 1935 void TemplateInterpreterGenerator::set_vtos_entry_points(Template* t, address& bep, address& cep, address& sep, address& aep, address& iep, address& lep, address& fep, address& dep, address& vep) {
duke@435 1936 assert(t->is_valid() && t->tos_in() == vtos, "illegal template");
duke@435 1937 Label L;
duke@435 1938 aep = __ pc(); __ push_ptr(); __ ba(false, L); __ delayed()->nop();
duke@435 1939 fep = __ pc(); __ push_f(); __ ba(false, L); __ delayed()->nop();
duke@435 1940 dep = __ pc(); __ push_d(); __ ba(false, L); __ delayed()->nop();
duke@435 1941 lep = __ pc(); __ push_l(); __ ba(false, L); __ delayed()->nop();
duke@435 1942 iep = __ pc(); __ push_i();
duke@435 1943 bep = cep = sep = iep; // there aren't any
duke@435 1944 vep = __ pc(); __ bind(L); // fall through
duke@435 1945 generate_and_dispatch(t);
duke@435 1946 }
duke@435 1947
duke@435 1948 // --------------------------------------------------------------------------------
duke@435 1949
duke@435 1950
duke@435 1951 InterpreterGenerator::InterpreterGenerator(StubQueue* code)
duke@435 1952 : TemplateInterpreterGenerator(code) {
duke@435 1953 generate_all(); // down here so it can be "virtual"
duke@435 1954 }
duke@435 1955
duke@435 1956 // --------------------------------------------------------------------------------
duke@435 1957
duke@435 1958 // Non-product code
duke@435 1959 #ifndef PRODUCT
duke@435 1960 address TemplateInterpreterGenerator::generate_trace_code(TosState state) {
duke@435 1961 address entry = __ pc();
duke@435 1962
duke@435 1963 __ push(state);
duke@435 1964 __ mov(O7, Lscratch); // protect return address within interpreter
duke@435 1965
duke@435 1966 // Pass a 0 (not used in sparc) and the top of stack to the bytecode tracer
duke@435 1967 __ mov( Otos_l2, G3_scratch );
duke@435 1968 __ call_VM(noreg, CAST_FROM_FN_PTR(address, SharedRuntime::trace_bytecode), G0, Otos_l1, G3_scratch);
duke@435 1969 __ mov(Lscratch, O7); // restore return address
duke@435 1970 __ pop(state);
duke@435 1971 __ retl();
duke@435 1972 __ delayed()->nop();
duke@435 1973
duke@435 1974 return entry;
duke@435 1975 }
duke@435 1976
duke@435 1977
duke@435 1978 // helpers for generate_and_dispatch
duke@435 1979
duke@435 1980 void TemplateInterpreterGenerator::count_bytecode() {
twisti@1162 1981 __ inc_counter(&BytecodeCounter::_counter_value, G3_scratch, G4_scratch);
duke@435 1982 }
duke@435 1983
duke@435 1984
duke@435 1985 void TemplateInterpreterGenerator::histogram_bytecode(Template* t) {
twisti@1162 1986 __ inc_counter(&BytecodeHistogram::_counters[t->bytecode()], G3_scratch, G4_scratch);
duke@435 1987 }
duke@435 1988
duke@435 1989
duke@435 1990 void TemplateInterpreterGenerator::histogram_bytecode_pair(Template* t) {
twisti@1162 1991 AddressLiteral index (&BytecodePairHistogram::_index);
twisti@1162 1992 AddressLiteral counters((address) &BytecodePairHistogram::_counters);
duke@435 1993
duke@435 1994 // get index, shift out old bytecode, bring in new bytecode, and store it
duke@435 1995 // _index = (_index >> log2_number_of_codes) |
duke@435 1996 // (bytecode << log2_number_of_codes);
duke@435 1997
twisti@1162 1998 __ load_contents(index, G4_scratch);
duke@435 1999 __ srl( G4_scratch, BytecodePairHistogram::log2_number_of_codes, G4_scratch );
duke@435 2000 __ set( ((int)t->bytecode()) << BytecodePairHistogram::log2_number_of_codes, G3_scratch );
duke@435 2001 __ or3( G3_scratch, G4_scratch, G4_scratch );
twisti@1162 2002 __ store_contents(G4_scratch, index, G3_scratch);
duke@435 2003
duke@435 2004 // bump bucket contents
duke@435 2005 // _counters[_index] ++;
duke@435 2006
twisti@1162 2007 __ set(counters, G3_scratch); // loads into G3_scratch
duke@435 2008 __ sll( G4_scratch, LogBytesPerWord, G4_scratch ); // Index is word address
duke@435 2009 __ add (G3_scratch, G4_scratch, G3_scratch); // Add in index
duke@435 2010 __ ld (G3_scratch, 0, G4_scratch);
duke@435 2011 __ inc (G4_scratch);
duke@435 2012 __ st (G4_scratch, 0, G3_scratch);
duke@435 2013 }
duke@435 2014
duke@435 2015
duke@435 2016 void TemplateInterpreterGenerator::trace_bytecode(Template* t) {
duke@435 2017 // Call a little run-time stub to avoid blow-up for each bytecode.
duke@435 2018 // The run-time runtime saves the right registers, depending on
duke@435 2019 // the tosca in-state for the given template.
duke@435 2020 address entry = Interpreter::trace_code(t->tos_in());
duke@435 2021 guarantee(entry != NULL, "entry must have been generated");
duke@435 2022 __ call(entry, relocInfo::none);
duke@435 2023 __ delayed()->nop();
duke@435 2024 }
duke@435 2025
duke@435 2026
duke@435 2027 void TemplateInterpreterGenerator::stop_interpreter_at() {
twisti@1162 2028 AddressLiteral counter(&BytecodeCounter::_counter_value);
twisti@1162 2029 __ load_contents(counter, G3_scratch);
twisti@1162 2030 AddressLiteral stop_at(&StopInterpreterAt);
duke@435 2031 __ load_ptr_contents(stop_at, G4_scratch);
duke@435 2032 __ cmp(G3_scratch, G4_scratch);
duke@435 2033 __ breakpoint_trap(Assembler::equal);
duke@435 2034 }
duke@435 2035 #endif // not PRODUCT
duke@435 2036 #endif // !CC_INTERP

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