Mercurial > hg > truffle
annotate src/share/vm/opto/runtime.cpp @ 13907:6fc05ad86490
Remove unused 'negated' arguments.
author | Roland Schatz <roland.schatz@oracle.com> |
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date | Fri, 07 Feb 2014 15:03:21 +0100 |
parents | 6b2d8d20ecbd |
children | d8041d695d19 |
rev | line source |
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0 | 1 /* |
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2 * Copyright (c) 1998, 2013, Oracle and/or its affiliates. All rights reserved. |
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3 |
0 | 4 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER. |
5 * | |
6 * This code is free software; you can redistribute it and/or modify it | |
7 * under the terms of the GNU General Public License version 2 only, as | |
8 * published by the Free Software Foundation. | |
9 * | |
10 * This code is distributed in the hope that it will be useful, but WITHOUT | |
11 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or | |
12 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License | |
13 * version 2 for more details (a copy is included in the LICENSE file that | |
14 * accompanied this code). | |
15 * | |
16 * You should have received a copy of the GNU General Public License version | |
17 * 2 along with this work; if not, write to the Free Software Foundation, | |
18 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA. | |
19 * | |
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20 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA |
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21 * or visit www.oracle.com if you need additional information or have any |
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22 * questions. |
0 | 23 * |
24 */ | |
25 | |
1972 | 26 #include "precompiled.hpp" |
27 #include "classfile/systemDictionary.hpp" | |
28 #include "classfile/vmSymbols.hpp" | |
29 #include "code/compiledIC.hpp" | |
30 #include "code/icBuffer.hpp" | |
31 #include "code/nmethod.hpp" | |
32 #include "code/pcDesc.hpp" | |
33 #include "code/scopeDesc.hpp" | |
34 #include "code/vtableStubs.hpp" | |
35 #include "compiler/compileBroker.hpp" | |
36 #include "compiler/compilerOracle.hpp" | |
37 #include "compiler/oopMap.hpp" | |
38 #include "gc_implementation/g1/g1SATBCardTableModRefBS.hpp" | |
39 #include "gc_implementation/g1/heapRegion.hpp" | |
40 #include "gc_interface/collectedHeap.hpp" | |
41 #include "interpreter/bytecode.hpp" | |
42 #include "interpreter/interpreter.hpp" | |
43 #include "interpreter/linkResolver.hpp" | |
44 #include "memory/barrierSet.hpp" | |
45 #include "memory/gcLocker.inline.hpp" | |
46 #include "memory/oopFactory.hpp" | |
47 #include "oops/objArrayKlass.hpp" | |
48 #include "oops/oop.inline.hpp" | |
49 #include "opto/addnode.hpp" | |
50 #include "opto/callnode.hpp" | |
51 #include "opto/cfgnode.hpp" | |
52 #include "opto/connode.hpp" | |
53 #include "opto/graphKit.hpp" | |
54 #include "opto/machnode.hpp" | |
55 #include "opto/matcher.hpp" | |
56 #include "opto/memnode.hpp" | |
57 #include "opto/mulnode.hpp" | |
58 #include "opto/runtime.hpp" | |
59 #include "opto/subnode.hpp" | |
60 #include "runtime/fprofiler.hpp" | |
61 #include "runtime/handles.inline.hpp" | |
62 #include "runtime/interfaceSupport.hpp" | |
63 #include "runtime/javaCalls.hpp" | |
64 #include "runtime/sharedRuntime.hpp" | |
65 #include "runtime/signature.hpp" | |
66 #include "runtime/threadCritical.hpp" | |
67 #include "runtime/vframe.hpp" | |
68 #include "runtime/vframeArray.hpp" | |
69 #include "runtime/vframe_hp.hpp" | |
70 #include "utilities/copy.hpp" | |
71 #include "utilities/preserveException.hpp" | |
72 #ifdef TARGET_ARCH_MODEL_x86_32 | |
73 # include "adfiles/ad_x86_32.hpp" | |
74 #endif | |
75 #ifdef TARGET_ARCH_MODEL_x86_64 | |
76 # include "adfiles/ad_x86_64.hpp" | |
77 #endif | |
78 #ifdef TARGET_ARCH_MODEL_sparc | |
79 # include "adfiles/ad_sparc.hpp" | |
80 #endif | |
81 #ifdef TARGET_ARCH_MODEL_zero | |
82 # include "adfiles/ad_zero.hpp" | |
83 #endif | |
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84 #ifdef TARGET_ARCH_MODEL_arm |
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85 # include "adfiles/ad_arm.hpp" |
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86 #endif |
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87 #ifdef TARGET_ARCH_MODEL_ppc |
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88 # include "adfiles/ad_ppc.hpp" |
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89 #endif |
0 | 90 |
91 | |
92 // For debugging purposes: | |
93 // To force FullGCALot inside a runtime function, add the following two lines | |
94 // | |
95 // Universe::release_fullgc_alot_dummy(); | |
96 // MarkSweep::invoke(0, "Debugging"); | |
97 // | |
98 // At command line specify the parameters: -XX:+FullGCALot -XX:FullGCALotStart=100000000 | |
99 | |
100 | |
101 | |
102 | |
103 // Compiled code entry points | |
104 address OptoRuntime::_new_instance_Java = NULL; | |
105 address OptoRuntime::_new_array_Java = NULL; | |
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106 address OptoRuntime::_new_array_nozero_Java = NULL; |
0 | 107 address OptoRuntime::_multianewarray2_Java = NULL; |
108 address OptoRuntime::_multianewarray3_Java = NULL; | |
109 address OptoRuntime::_multianewarray4_Java = NULL; | |
110 address OptoRuntime::_multianewarray5_Java = NULL; | |
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111 address OptoRuntime::_multianewarrayN_Java = NULL; |
342 | 112 address OptoRuntime::_g1_wb_pre_Java = NULL; |
113 address OptoRuntime::_g1_wb_post_Java = NULL; | |
0 | 114 address OptoRuntime::_vtable_must_compile_Java = NULL; |
115 address OptoRuntime::_complete_monitor_locking_Java = NULL; | |
116 address OptoRuntime::_rethrow_Java = NULL; | |
117 | |
118 address OptoRuntime::_slow_arraycopy_Java = NULL; | |
119 address OptoRuntime::_register_finalizer_Java = NULL; | |
120 | |
121 # ifdef ENABLE_ZAP_DEAD_LOCALS | |
122 address OptoRuntime::_zap_dead_Java_locals_Java = NULL; | |
123 address OptoRuntime::_zap_dead_native_locals_Java = NULL; | |
124 # endif | |
125 | |
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126 ExceptionBlob* OptoRuntime::_exception_blob; |
0 | 127 |
128 // This should be called in an assertion at the start of OptoRuntime routines | |
129 // which are entered from compiled code (all of them) | |
10274 | 130 #ifdef ASSERT |
0 | 131 static bool check_compiled_frame(JavaThread* thread) { |
132 assert(thread->last_frame().is_runtime_frame(), "cannot call runtime directly from compiled code"); | |
133 RegisterMap map(thread, false); | |
134 frame caller = thread->last_frame().sender(&map); | |
135 assert(caller.is_compiled_frame(), "not being called from compiled like code"); | |
136 return true; | |
137 } | |
10274 | 138 #endif // ASSERT |
0 | 139 |
140 | |
141 #define gen(env, var, type_func_gen, c_func, fancy_jump, pass_tls, save_arg_regs, return_pc) \ | |
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142 var = generate_stub(env, type_func_gen, CAST_FROM_FN_PTR(address, c_func), #var, fancy_jump, pass_tls, save_arg_regs, return_pc); \ |
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143 if (var == NULL) { return false; } |
0 | 144 |
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145 bool OptoRuntime::generate(ciEnv* env) { |
0 | 146 |
147 generate_exception_blob(); | |
148 | |
149 // Note: tls: Means fetching the return oop out of the thread-local storage | |
150 // | |
151 // variable/name type-function-gen , runtime method ,fncy_jp, tls,save_args,retpc | |
152 // ------------------------------------------------------------------------------------------------------------------------------- | |
153 gen(env, _new_instance_Java , new_instance_Type , new_instance_C , 0 , true , false, false); | |
154 gen(env, _new_array_Java , new_array_Type , new_array_C , 0 , true , false, false); | |
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155 gen(env, _new_array_nozero_Java , new_array_Type , new_array_nozero_C , 0 , true , false, false); |
0 | 156 gen(env, _multianewarray2_Java , multianewarray2_Type , multianewarray2_C , 0 , true , false, false); |
157 gen(env, _multianewarray3_Java , multianewarray3_Type , multianewarray3_C , 0 , true , false, false); | |
158 gen(env, _multianewarray4_Java , multianewarray4_Type , multianewarray4_C , 0 , true , false, false); | |
159 gen(env, _multianewarray5_Java , multianewarray5_Type , multianewarray5_C , 0 , true , false, false); | |
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160 gen(env, _multianewarrayN_Java , multianewarrayN_Type , multianewarrayN_C , 0 , true , false, false); |
342 | 161 gen(env, _g1_wb_pre_Java , g1_wb_pre_Type , SharedRuntime::g1_wb_pre , 0 , false, false, false); |
162 gen(env, _g1_wb_post_Java , g1_wb_post_Type , SharedRuntime::g1_wb_post , 0 , false, false, false); | |
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163 gen(env, _complete_monitor_locking_Java , complete_monitor_enter_Type , SharedRuntime::complete_monitor_locking_C, 0, false, false, false); |
0 | 164 gen(env, _rethrow_Java , rethrow_Type , rethrow_C , 2 , true , false, true ); |
165 | |
166 gen(env, _slow_arraycopy_Java , slow_arraycopy_Type , SharedRuntime::slow_arraycopy_C , 0 , false, false, false); | |
167 gen(env, _register_finalizer_Java , register_finalizer_Type , register_finalizer , 0 , false, false, false); | |
168 | |
169 # ifdef ENABLE_ZAP_DEAD_LOCALS | |
170 gen(env, _zap_dead_Java_locals_Java , zap_dead_locals_Type , zap_dead_Java_locals_C , 0 , false, true , false ); | |
171 gen(env, _zap_dead_native_locals_Java , zap_dead_locals_Type , zap_dead_native_locals_C , 0 , false, true , false ); | |
172 # endif | |
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173 return true; |
0 | 174 } |
175 | |
176 #undef gen | |
177 | |
178 | |
179 // Helper method to do generation of RunTimeStub's | |
180 address OptoRuntime::generate_stub( ciEnv* env, | |
181 TypeFunc_generator gen, address C_function, | |
182 const char *name, int is_fancy_jump, | |
183 bool pass_tls, | |
184 bool save_argument_registers, | |
185 bool return_pc ) { | |
186 ResourceMark rm; | |
187 Compile C( env, gen, C_function, name, is_fancy_jump, pass_tls, save_argument_registers, return_pc ); | |
188 return C.stub_entry_point(); | |
189 } | |
190 | |
191 const char* OptoRuntime::stub_name(address entry) { | |
192 #ifndef PRODUCT | |
193 CodeBlob* cb = CodeCache::find_blob(entry); | |
194 RuntimeStub* rs =(RuntimeStub *)cb; | |
195 assert(rs != NULL && rs->is_runtime_stub(), "not a runtime stub"); | |
196 return rs->name(); | |
197 #else | |
198 // Fast implementation for product mode (maybe it should be inlined too) | |
199 return "runtime stub"; | |
200 #endif | |
201 } | |
202 | |
203 | |
204 //============================================================================= | |
205 // Opto compiler runtime routines | |
206 //============================================================================= | |
207 | |
208 | |
209 //=============================allocation====================================== | |
210 // We failed the fast-path allocation. Now we need to do a scavenge or GC | |
211 // and try allocation again. | |
212 | |
1166 | 213 void OptoRuntime::new_store_pre_barrier(JavaThread* thread) { |
0 | 214 // After any safepoint, just before going back to compiled code, |
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215 // we inform the GC that we will be doing initializing writes to |
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216 // this object in the future without emitting card-marks, so |
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217 // GC may take any compensating steps. |
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218 // NOTE: Keep this code consistent with GraphKit::store_barrier. |
0 | 219 |
220 oop new_obj = thread->vm_result(); | |
221 if (new_obj == NULL) return; | |
222 | |
223 assert(Universe::heap()->can_elide_tlab_store_barriers(), | |
224 "compiler must check this first"); | |
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225 // GC may decide to give back a safer copy of new_obj. |
1166 | 226 new_obj = Universe::heap()->new_store_pre_barrier(thread, new_obj); |
0 | 227 thread->set_vm_result(new_obj); |
228 } | |
229 | |
230 // object allocation | |
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231 JRT_BLOCK_ENTRY(void, OptoRuntime::new_instance_C(Klass* klass, JavaThread* thread)) |
0 | 232 JRT_BLOCK; |
233 #ifndef PRODUCT | |
234 SharedRuntime::_new_instance_ctr++; // new instance requires GC | |
235 #endif | |
236 assert(check_compiled_frame(thread), "incorrect caller"); | |
237 | |
238 // These checks are cheap to make and support reflective allocation. | |
6983 | 239 int lh = klass->layout_helper(); |
0 | 240 if (Klass::layout_helper_needs_slow_path(lh) |
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241 || !InstanceKlass::cast(klass)->is_initialized()) { |
0 | 242 KlassHandle kh(THREAD, klass); |
243 kh->check_valid_for_instantiation(false, THREAD); | |
244 if (!HAS_PENDING_EXCEPTION) { | |
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245 InstanceKlass::cast(kh())->initialize(THREAD); |
0 | 246 } |
247 if (!HAS_PENDING_EXCEPTION) { | |
248 klass = kh(); | |
249 } else { | |
250 klass = NULL; | |
251 } | |
252 } | |
253 | |
254 if (klass != NULL) { | |
255 // Scavenge and allocate an instance. | |
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256 oop result = InstanceKlass::cast(klass)->allocate_instance(THREAD); |
0 | 257 thread->set_vm_result(result); |
258 | |
259 // Pass oops back through thread local storage. Our apparent type to Java | |
260 // is that we return an oop, but we can block on exit from this routine and | |
261 // a GC can trash the oop in C's return register. The generated stub will | |
262 // fetch the oop from TLS after any possible GC. | |
263 } | |
264 | |
265 deoptimize_caller_frame(thread, HAS_PENDING_EXCEPTION); | |
266 JRT_BLOCK_END; | |
267 | |
268 if (GraphKit::use_ReduceInitialCardMarks()) { | |
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269 // inform GC that we won't do card marks for initializing writes. |
1166 | 270 new_store_pre_barrier(thread); |
0 | 271 } |
272 JRT_END | |
273 | |
274 | |
275 // array allocation | |
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276 JRT_BLOCK_ENTRY(void, OptoRuntime::new_array_C(Klass* array_type, int len, JavaThread *thread)) |
0 | 277 JRT_BLOCK; |
278 #ifndef PRODUCT | |
279 SharedRuntime::_new_array_ctr++; // new array requires GC | |
280 #endif | |
281 assert(check_compiled_frame(thread), "incorrect caller"); | |
282 | |
283 // Scavenge and allocate an instance. | |
284 oop result; | |
285 | |
6983 | 286 if (array_type->oop_is_typeArray()) { |
0 | 287 // The oopFactory likes to work with the element type. |
288 // (We could bypass the oopFactory, since it doesn't add much value.) | |
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289 BasicType elem_type = TypeArrayKlass::cast(array_type)->element_type(); |
0 | 290 result = oopFactory::new_typeArray(elem_type, len, THREAD); |
291 } else { | |
292 // Although the oopFactory likes to work with the elem_type, | |
293 // the compiler prefers the array_type, since it must already have | |
294 // that latter value in hand for the fast path. | |
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295 Klass* elem_type = ObjArrayKlass::cast(array_type)->element_klass(); |
0 | 296 result = oopFactory::new_objArray(elem_type, len, THREAD); |
297 } | |
298 | |
299 // Pass oops back through thread local storage. Our apparent type to Java | |
300 // is that we return an oop, but we can block on exit from this routine and | |
301 // a GC can trash the oop in C's return register. The generated stub will | |
302 // fetch the oop from TLS after any possible GC. | |
303 deoptimize_caller_frame(thread, HAS_PENDING_EXCEPTION); | |
304 thread->set_vm_result(result); | |
305 JRT_BLOCK_END; | |
306 | |
307 if (GraphKit::use_ReduceInitialCardMarks()) { | |
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308 // inform GC that we won't do card marks for initializing writes. |
1166 | 309 new_store_pre_barrier(thread); |
0 | 310 } |
311 JRT_END | |
312 | |
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313 // array allocation without zeroing |
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314 JRT_BLOCK_ENTRY(void, OptoRuntime::new_array_nozero_C(Klass* array_type, int len, JavaThread *thread)) |
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315 JRT_BLOCK; |
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316 #ifndef PRODUCT |
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317 SharedRuntime::_new_array_ctr++; // new array requires GC |
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318 #endif |
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319 assert(check_compiled_frame(thread), "incorrect caller"); |
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320 |
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321 // Scavenge and allocate an instance. |
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322 oop result; |
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323 |
6983 | 324 assert(array_type->oop_is_typeArray(), "should be called only for type array"); |
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325 // The oopFactory likes to work with the element type. |
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326 BasicType elem_type = TypeArrayKlass::cast(array_type)->element_type(); |
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327 result = oopFactory::new_typeArray_nozero(elem_type, len, THREAD); |
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328 |
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329 // Pass oops back through thread local storage. Our apparent type to Java |
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330 // is that we return an oop, but we can block on exit from this routine and |
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331 // a GC can trash the oop in C's return register. The generated stub will |
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332 // fetch the oop from TLS after any possible GC. |
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333 deoptimize_caller_frame(thread, HAS_PENDING_EXCEPTION); |
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334 thread->set_vm_result(result); |
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335 JRT_BLOCK_END; |
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336 |
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337 if (GraphKit::use_ReduceInitialCardMarks()) { |
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338 // inform GC that we won't do card marks for initializing writes. |
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339 new_store_pre_barrier(thread); |
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340 } |
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341 |
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342 oop result = thread->vm_result(); |
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343 if ((len > 0) && (result != NULL) && |
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344 is_deoptimized_caller_frame(thread)) { |
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345 // Zero array here if the caller is deoptimized. |
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346 int size = ((typeArrayOop)result)->object_size(); |
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347 BasicType elem_type = TypeArrayKlass::cast(array_type)->element_type(); |
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348 const size_t hs = arrayOopDesc::header_size(elem_type); |
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349 // Align to next 8 bytes to avoid trashing arrays's length. |
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350 const size_t aligned_hs = align_object_offset(hs); |
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351 HeapWord* obj = (HeapWord*)result; |
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352 if (aligned_hs > hs) { |
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353 Copy::zero_to_words(obj+hs, aligned_hs-hs); |
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354 } |
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355 // Optimized zeroing. |
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356 Copy::fill_to_aligned_words(obj+aligned_hs, size-aligned_hs); |
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357 } |
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358 |
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359 JRT_END |
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360 |
0 | 361 // Note: multianewarray for one dimension is handled inline by GraphKit::new_array. |
362 | |
363 // multianewarray for 2 dimensions | |
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364 JRT_ENTRY(void, OptoRuntime::multianewarray2_C(Klass* elem_type, int len1, int len2, JavaThread *thread)) |
0 | 365 #ifndef PRODUCT |
366 SharedRuntime::_multi2_ctr++; // multianewarray for 1 dimension | |
367 #endif | |
368 assert(check_compiled_frame(thread), "incorrect caller"); | |
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369 assert(elem_type->is_klass(), "not a class"); |
0 | 370 jint dims[2]; |
371 dims[0] = len1; | |
372 dims[1] = len2; | |
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373 oop obj = ArrayKlass::cast(elem_type)->multi_allocate(2, dims, THREAD); |
0 | 374 deoptimize_caller_frame(thread, HAS_PENDING_EXCEPTION); |
375 thread->set_vm_result(obj); | |
376 JRT_END | |
377 | |
378 // multianewarray for 3 dimensions | |
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379 JRT_ENTRY(void, OptoRuntime::multianewarray3_C(Klass* elem_type, int len1, int len2, int len3, JavaThread *thread)) |
0 | 380 #ifndef PRODUCT |
381 SharedRuntime::_multi3_ctr++; // multianewarray for 1 dimension | |
382 #endif | |
383 assert(check_compiled_frame(thread), "incorrect caller"); | |
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384 assert(elem_type->is_klass(), "not a class"); |
0 | 385 jint dims[3]; |
386 dims[0] = len1; | |
387 dims[1] = len2; | |
388 dims[2] = len3; | |
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389 oop obj = ArrayKlass::cast(elem_type)->multi_allocate(3, dims, THREAD); |
0 | 390 deoptimize_caller_frame(thread, HAS_PENDING_EXCEPTION); |
391 thread->set_vm_result(obj); | |
392 JRT_END | |
393 | |
394 // multianewarray for 4 dimensions | |
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395 JRT_ENTRY(void, OptoRuntime::multianewarray4_C(Klass* elem_type, int len1, int len2, int len3, int len4, JavaThread *thread)) |
0 | 396 #ifndef PRODUCT |
397 SharedRuntime::_multi4_ctr++; // multianewarray for 1 dimension | |
398 #endif | |
399 assert(check_compiled_frame(thread), "incorrect caller"); | |
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400 assert(elem_type->is_klass(), "not a class"); |
0 | 401 jint dims[4]; |
402 dims[0] = len1; | |
403 dims[1] = len2; | |
404 dims[2] = len3; | |
405 dims[3] = len4; | |
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406 oop obj = ArrayKlass::cast(elem_type)->multi_allocate(4, dims, THREAD); |
0 | 407 deoptimize_caller_frame(thread, HAS_PENDING_EXCEPTION); |
408 thread->set_vm_result(obj); | |
409 JRT_END | |
410 | |
411 // multianewarray for 5 dimensions | |
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412 JRT_ENTRY(void, OptoRuntime::multianewarray5_C(Klass* elem_type, int len1, int len2, int len3, int len4, int len5, JavaThread *thread)) |
0 | 413 #ifndef PRODUCT |
414 SharedRuntime::_multi5_ctr++; // multianewarray for 1 dimension | |
415 #endif | |
416 assert(check_compiled_frame(thread), "incorrect caller"); | |
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417 assert(elem_type->is_klass(), "not a class"); |
0 | 418 jint dims[5]; |
419 dims[0] = len1; | |
420 dims[1] = len2; | |
421 dims[2] = len3; | |
422 dims[3] = len4; | |
423 dims[4] = len5; | |
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424 oop obj = ArrayKlass::cast(elem_type)->multi_allocate(5, dims, THREAD); |
0 | 425 deoptimize_caller_frame(thread, HAS_PENDING_EXCEPTION); |
426 thread->set_vm_result(obj); | |
427 JRT_END | |
428 | |
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429 JRT_ENTRY(void, OptoRuntime::multianewarrayN_C(Klass* elem_type, arrayOopDesc* dims, JavaThread *thread)) |
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430 assert(check_compiled_frame(thread), "incorrect caller"); |
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431 assert(elem_type->is_klass(), "not a class"); |
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432 assert(oop(dims)->is_typeArray(), "not an array"); |
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433 |
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434 ResourceMark rm; |
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435 jint len = dims->length(); |
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436 assert(len > 0, "Dimensions array should contain data"); |
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437 jint *j_dims = typeArrayOop(dims)->int_at_addr(0); |
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438 jint *c_dims = NEW_RESOURCE_ARRAY(jint, len); |
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439 Copy::conjoint_jints_atomic(j_dims, c_dims, len); |
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440 |
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441 oop obj = ArrayKlass::cast(elem_type)->multi_allocate(len, c_dims, THREAD); |
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442 deoptimize_caller_frame(thread, HAS_PENDING_EXCEPTION); |
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443 thread->set_vm_result(obj); |
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444 JRT_END |
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445 |
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446 |
0 | 447 const TypeFunc *OptoRuntime::new_instance_Type() { |
448 // create input type (domain) | |
449 const Type **fields = TypeTuple::fields(1); | |
450 fields[TypeFunc::Parms+0] = TypeInstPtr::NOTNULL; // Klass to be allocated | |
451 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+1, fields); | |
452 | |
453 // create result type (range) | |
454 fields = TypeTuple::fields(1); | |
455 fields[TypeFunc::Parms+0] = TypeRawPtr::NOTNULL; // Returned oop | |
456 | |
457 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+1, fields); | |
458 | |
459 return TypeFunc::make(domain, range); | |
460 } | |
461 | |
462 | |
463 const TypeFunc *OptoRuntime::athrow_Type() { | |
464 // create input type (domain) | |
465 const Type **fields = TypeTuple::fields(1); | |
466 fields[TypeFunc::Parms+0] = TypeInstPtr::NOTNULL; // Klass to be allocated | |
467 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+1, fields); | |
468 | |
469 // create result type (range) | |
470 fields = TypeTuple::fields(0); | |
471 | |
472 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+0, fields); | |
473 | |
474 return TypeFunc::make(domain, range); | |
475 } | |
476 | |
477 | |
478 const TypeFunc *OptoRuntime::new_array_Type() { | |
479 // create input type (domain) | |
480 const Type **fields = TypeTuple::fields(2); | |
481 fields[TypeFunc::Parms+0] = TypeInstPtr::NOTNULL; // element klass | |
482 fields[TypeFunc::Parms+1] = TypeInt::INT; // array size | |
483 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+2, fields); | |
484 | |
485 // create result type (range) | |
486 fields = TypeTuple::fields(1); | |
487 fields[TypeFunc::Parms+0] = TypeRawPtr::NOTNULL; // Returned oop | |
488 | |
489 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+1, fields); | |
490 | |
491 return TypeFunc::make(domain, range); | |
492 } | |
493 | |
494 const TypeFunc *OptoRuntime::multianewarray_Type(int ndim) { | |
495 // create input type (domain) | |
496 const int nargs = ndim + 1; | |
497 const Type **fields = TypeTuple::fields(nargs); | |
498 fields[TypeFunc::Parms+0] = TypeInstPtr::NOTNULL; // element klass | |
499 for( int i = 1; i < nargs; i++ ) | |
500 fields[TypeFunc::Parms + i] = TypeInt::INT; // array size | |
501 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+nargs, fields); | |
502 | |
503 // create result type (range) | |
504 fields = TypeTuple::fields(1); | |
505 fields[TypeFunc::Parms+0] = TypeRawPtr::NOTNULL; // Returned oop | |
506 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+1, fields); | |
507 | |
508 return TypeFunc::make(domain, range); | |
509 } | |
510 | |
511 const TypeFunc *OptoRuntime::multianewarray2_Type() { | |
512 return multianewarray_Type(2); | |
513 } | |
514 | |
515 const TypeFunc *OptoRuntime::multianewarray3_Type() { | |
516 return multianewarray_Type(3); | |
517 } | |
518 | |
519 const TypeFunc *OptoRuntime::multianewarray4_Type() { | |
520 return multianewarray_Type(4); | |
521 } | |
522 | |
523 const TypeFunc *OptoRuntime::multianewarray5_Type() { | |
524 return multianewarray_Type(5); | |
525 } | |
526 | |
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527 const TypeFunc *OptoRuntime::multianewarrayN_Type() { |
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528 // create input type (domain) |
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529 const Type **fields = TypeTuple::fields(2); |
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530 fields[TypeFunc::Parms+0] = TypeInstPtr::NOTNULL; // element klass |
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531 fields[TypeFunc::Parms+1] = TypeInstPtr::NOTNULL; // array of dim sizes |
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532 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+2, fields); |
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533 |
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534 // create result type (range) |
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535 fields = TypeTuple::fields(1); |
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536 fields[TypeFunc::Parms+0] = TypeRawPtr::NOTNULL; // Returned oop |
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537 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+1, fields); |
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538 |
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539 return TypeFunc::make(domain, range); |
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540 } |
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541 |
342 | 542 const TypeFunc *OptoRuntime::g1_wb_pre_Type() { |
543 const Type **fields = TypeTuple::fields(2); | |
544 fields[TypeFunc::Parms+0] = TypeInstPtr::NOTNULL; // original field value | |
545 fields[TypeFunc::Parms+1] = TypeRawPtr::NOTNULL; // thread | |
546 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+2, fields); | |
547 | |
548 // create result type (range) | |
549 fields = TypeTuple::fields(0); | |
550 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+0, fields); | |
551 | |
552 return TypeFunc::make(domain, range); | |
553 } | |
554 | |
555 const TypeFunc *OptoRuntime::g1_wb_post_Type() { | |
556 | |
557 const Type **fields = TypeTuple::fields(2); | |
558 fields[TypeFunc::Parms+0] = TypeRawPtr::NOTNULL; // Card addr | |
559 fields[TypeFunc::Parms+1] = TypeRawPtr::NOTNULL; // thread | |
560 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+2, fields); | |
561 | |
562 // create result type (range) | |
563 fields = TypeTuple::fields(0); | |
564 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms, fields); | |
565 | |
566 return TypeFunc::make(domain, range); | |
567 } | |
568 | |
0 | 569 const TypeFunc *OptoRuntime::uncommon_trap_Type() { |
570 // create input type (domain) | |
571 const Type **fields = TypeTuple::fields(1); | |
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572 // Symbol* name of class to be loaded |
0 | 573 fields[TypeFunc::Parms+0] = TypeInt::INT; |
574 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+1, fields); | |
575 | |
576 // create result type (range) | |
577 fields = TypeTuple::fields(0); | |
578 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+0, fields); | |
579 | |
580 return TypeFunc::make(domain, range); | |
581 } | |
582 | |
583 # ifdef ENABLE_ZAP_DEAD_LOCALS | |
584 // Type used for stub generation for zap_dead_locals. | |
585 // No inputs or outputs | |
586 const TypeFunc *OptoRuntime::zap_dead_locals_Type() { | |
587 // create input type (domain) | |
588 const Type **fields = TypeTuple::fields(0); | |
589 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms,fields); | |
590 | |
591 // create result type (range) | |
592 fields = TypeTuple::fields(0); | |
593 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms,fields); | |
594 | |
595 return TypeFunc::make(domain,range); | |
596 } | |
597 # endif | |
598 | |
599 | |
600 //----------------------------------------------------------------------------- | |
601 // Monitor Handling | |
602 const TypeFunc *OptoRuntime::complete_monitor_enter_Type() { | |
603 // create input type (domain) | |
604 const Type **fields = TypeTuple::fields(2); | |
605 fields[TypeFunc::Parms+0] = TypeInstPtr::NOTNULL; // Object to be Locked | |
606 fields[TypeFunc::Parms+1] = TypeRawPtr::BOTTOM; // Address of stack location for lock | |
607 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+2,fields); | |
608 | |
609 // create result type (range) | |
610 fields = TypeTuple::fields(0); | |
611 | |
612 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+0,fields); | |
613 | |
614 return TypeFunc::make(domain,range); | |
615 } | |
616 | |
617 | |
618 //----------------------------------------------------------------------------- | |
619 const TypeFunc *OptoRuntime::complete_monitor_exit_Type() { | |
620 // create input type (domain) | |
621 const Type **fields = TypeTuple::fields(2); | |
622 fields[TypeFunc::Parms+0] = TypeInstPtr::NOTNULL; // Object to be Locked | |
623 fields[TypeFunc::Parms+1] = TypeRawPtr::BOTTOM; // Address of stack location for lock | |
624 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+2,fields); | |
625 | |
626 // create result type (range) | |
627 fields = TypeTuple::fields(0); | |
628 | |
629 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+0,fields); | |
630 | |
631 return TypeFunc::make(domain,range); | |
632 } | |
633 | |
634 const TypeFunc* OptoRuntime::flush_windows_Type() { | |
635 // create input type (domain) | |
636 const Type** fields = TypeTuple::fields(1); | |
637 fields[TypeFunc::Parms+0] = NULL; // void | |
638 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms, fields); | |
639 | |
640 // create result type | |
641 fields = TypeTuple::fields(1); | |
642 fields[TypeFunc::Parms+0] = NULL; // void | |
643 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms, fields); | |
644 | |
645 return TypeFunc::make(domain, range); | |
646 } | |
647 | |
648 const TypeFunc* OptoRuntime::l2f_Type() { | |
649 // create input type (domain) | |
650 const Type **fields = TypeTuple::fields(2); | |
651 fields[TypeFunc::Parms+0] = TypeLong::LONG; | |
652 fields[TypeFunc::Parms+1] = Type::HALF; | |
653 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+2, fields); | |
654 | |
655 // create result type (range) | |
656 fields = TypeTuple::fields(1); | |
657 fields[TypeFunc::Parms+0] = Type::FLOAT; | |
658 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+1, fields); | |
659 | |
660 return TypeFunc::make(domain, range); | |
661 } | |
662 | |
663 const TypeFunc* OptoRuntime::modf_Type() { | |
664 const Type **fields = TypeTuple::fields(2); | |
665 fields[TypeFunc::Parms+0] = Type::FLOAT; | |
666 fields[TypeFunc::Parms+1] = Type::FLOAT; | |
667 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+2, fields); | |
668 | |
669 // create result type (range) | |
670 fields = TypeTuple::fields(1); | |
671 fields[TypeFunc::Parms+0] = Type::FLOAT; | |
672 | |
673 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+1, fields); | |
674 | |
675 return TypeFunc::make(domain, range); | |
676 } | |
677 | |
678 const TypeFunc *OptoRuntime::Math_D_D_Type() { | |
679 // create input type (domain) | |
680 const Type **fields = TypeTuple::fields(2); | |
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681 // Symbol* name of class to be loaded |
0 | 682 fields[TypeFunc::Parms+0] = Type::DOUBLE; |
683 fields[TypeFunc::Parms+1] = Type::HALF; | |
684 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+2, fields); | |
685 | |
686 // create result type (range) | |
687 fields = TypeTuple::fields(2); | |
688 fields[TypeFunc::Parms+0] = Type::DOUBLE; | |
689 fields[TypeFunc::Parms+1] = Type::HALF; | |
690 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+2, fields); | |
691 | |
692 return TypeFunc::make(domain, range); | |
693 } | |
694 | |
695 const TypeFunc* OptoRuntime::Math_DD_D_Type() { | |
696 const Type **fields = TypeTuple::fields(4); | |
697 fields[TypeFunc::Parms+0] = Type::DOUBLE; | |
698 fields[TypeFunc::Parms+1] = Type::HALF; | |
699 fields[TypeFunc::Parms+2] = Type::DOUBLE; | |
700 fields[TypeFunc::Parms+3] = Type::HALF; | |
701 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+4, fields); | |
702 | |
703 // create result type (range) | |
704 fields = TypeTuple::fields(2); | |
705 fields[TypeFunc::Parms+0] = Type::DOUBLE; | |
706 fields[TypeFunc::Parms+1] = Type::HALF; | |
707 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+2, fields); | |
708 | |
709 return TypeFunc::make(domain, range); | |
710 } | |
711 | |
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712 //-------------- currentTimeMillis, currentTimeNanos, etc |
0 | 713 |
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714 const TypeFunc* OptoRuntime::void_long_Type() { |
0 | 715 // create input type (domain) |
716 const Type **fields = TypeTuple::fields(0); | |
717 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+0, fields); | |
718 | |
719 // create result type (range) | |
720 fields = TypeTuple::fields(2); | |
721 fields[TypeFunc::Parms+0] = TypeLong::LONG; | |
722 fields[TypeFunc::Parms+1] = Type::HALF; | |
723 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+2, fields); | |
724 | |
725 return TypeFunc::make(domain, range); | |
726 } | |
727 | |
728 // arraycopy stub variations: | |
729 enum ArrayCopyType { | |
730 ac_fast, // void(ptr, ptr, size_t) | |
731 ac_checkcast, // int(ptr, ptr, size_t, size_t, ptr) | |
732 ac_slow, // void(ptr, int, ptr, int, int) | |
733 ac_generic // int(ptr, int, ptr, int, int) | |
734 }; | |
735 | |
736 static const TypeFunc* make_arraycopy_Type(ArrayCopyType act) { | |
737 // create input type (domain) | |
738 int num_args = (act == ac_fast ? 3 : 5); | |
739 int num_size_args = (act == ac_fast ? 1 : act == ac_checkcast ? 2 : 0); | |
740 int argcnt = num_args; | |
741 LP64_ONLY(argcnt += num_size_args); // halfwords for lengths | |
742 const Type** fields = TypeTuple::fields(argcnt); | |
743 int argp = TypeFunc::Parms; | |
744 fields[argp++] = TypePtr::NOTNULL; // src | |
745 if (num_size_args == 0) { | |
746 fields[argp++] = TypeInt::INT; // src_pos | |
747 } | |
748 fields[argp++] = TypePtr::NOTNULL; // dest | |
749 if (num_size_args == 0) { | |
750 fields[argp++] = TypeInt::INT; // dest_pos | |
751 fields[argp++] = TypeInt::INT; // length | |
752 } | |
753 while (num_size_args-- > 0) { | |
754 fields[argp++] = TypeX_X; // size in whatevers (size_t) | |
755 LP64_ONLY(fields[argp++] = Type::HALF); // other half of long length | |
756 } | |
757 if (act == ac_checkcast) { | |
758 fields[argp++] = TypePtr::NOTNULL; // super_klass | |
759 } | |
760 assert(argp == TypeFunc::Parms+argcnt, "correct decoding of act"); | |
761 const TypeTuple* domain = TypeTuple::make(TypeFunc::Parms+argcnt, fields); | |
762 | |
763 // create result type if needed | |
764 int retcnt = (act == ac_checkcast || act == ac_generic ? 1 : 0); | |
765 fields = TypeTuple::fields(1); | |
766 if (retcnt == 0) | |
767 fields[TypeFunc::Parms+0] = NULL; // void | |
768 else | |
769 fields[TypeFunc::Parms+0] = TypeInt::INT; // status result, if needed | |
770 const TypeTuple* range = TypeTuple::make(TypeFunc::Parms+retcnt, fields); | |
771 return TypeFunc::make(domain, range); | |
772 } | |
773 | |
774 const TypeFunc* OptoRuntime::fast_arraycopy_Type() { | |
775 // This signature is simple: Two base pointers and a size_t. | |
776 return make_arraycopy_Type(ac_fast); | |
777 } | |
778 | |
779 const TypeFunc* OptoRuntime::checkcast_arraycopy_Type() { | |
780 // An extension of fast_arraycopy_Type which adds type checking. | |
781 return make_arraycopy_Type(ac_checkcast); | |
782 } | |
783 | |
784 const TypeFunc* OptoRuntime::slow_arraycopy_Type() { | |
785 // This signature is exactly the same as System.arraycopy. | |
786 // There are no intptr_t (int/long) arguments. | |
787 return make_arraycopy_Type(ac_slow); | |
788 } | |
789 | |
790 const TypeFunc* OptoRuntime::generic_arraycopy_Type() { | |
791 // This signature is like System.arraycopy, except that it returns status. | |
792 return make_arraycopy_Type(ac_generic); | |
793 } | |
794 | |
795 | |
1763 | 796 const TypeFunc* OptoRuntime::array_fill_Type() { |
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797 // create input type (domain): pointer, int, size_t |
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798 const Type** fields = TypeTuple::fields(3 LP64_ONLY( + 1)); |
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799 int argp = TypeFunc::Parms; |
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800 fields[argp++] = TypePtr::NOTNULL; |
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801 fields[argp++] = TypeInt::INT; |
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802 fields[argp++] = TypeX_X; // size in whatevers (size_t) |
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803 LP64_ONLY(fields[argp++] = Type::HALF); // other half of long length |
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804 const TypeTuple *domain = TypeTuple::make(argp, fields); |
1763 | 805 |
806 // create result type | |
807 fields = TypeTuple::fields(1); | |
808 fields[TypeFunc::Parms+0] = NULL; // void | |
809 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms, fields); | |
810 | |
811 return TypeFunc::make(domain, range); | |
812 } | |
813 | |
6894 | 814 // for aescrypt encrypt/decrypt operations, just three pointers returning void (length is constant) |
815 const TypeFunc* OptoRuntime::aescrypt_block_Type() { | |
816 // create input type (domain) | |
817 int num_args = 3; | |
818 int argcnt = num_args; | |
819 const Type** fields = TypeTuple::fields(argcnt); | |
820 int argp = TypeFunc::Parms; | |
821 fields[argp++] = TypePtr::NOTNULL; // src | |
822 fields[argp++] = TypePtr::NOTNULL; // dest | |
823 fields[argp++] = TypePtr::NOTNULL; // k array | |
824 assert(argp == TypeFunc::Parms+argcnt, "correct decoding"); | |
825 const TypeTuple* domain = TypeTuple::make(TypeFunc::Parms+argcnt, fields); | |
826 | |
827 // no result type needed | |
828 fields = TypeTuple::fields(1); | |
829 fields[TypeFunc::Parms+0] = NULL; // void | |
830 const TypeTuple* range = TypeTuple::make(TypeFunc::Parms, fields); | |
831 return TypeFunc::make(domain, range); | |
832 } | |
833 | |
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834 /** |
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835 * int updateBytesCRC32(int crc, byte* b, int len) |
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836 */ |
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837 const TypeFunc* OptoRuntime::updateBytesCRC32_Type() { |
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838 // create input type (domain) |
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839 int num_args = 3; |
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840 int argcnt = num_args; |
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841 const Type** fields = TypeTuple::fields(argcnt); |
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842 int argp = TypeFunc::Parms; |
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843 fields[argp++] = TypeInt::INT; // crc |
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844 fields[argp++] = TypePtr::NOTNULL; // src |
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845 fields[argp++] = TypeInt::INT; // len |
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846 assert(argp == TypeFunc::Parms+argcnt, "correct decoding"); |
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847 const TypeTuple* domain = TypeTuple::make(TypeFunc::Parms+argcnt, fields); |
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848 |
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849 // result type needed |
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850 fields = TypeTuple::fields(1); |
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851 fields[TypeFunc::Parms+0] = TypeInt::INT; // crc result |
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852 const TypeTuple* range = TypeTuple::make(TypeFunc::Parms+1, fields); |
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853 return TypeFunc::make(domain, range); |
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854 } |
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855 |
6894 | 856 // for cipherBlockChaining calls of aescrypt encrypt/decrypt, four pointers and a length, returning void |
857 const TypeFunc* OptoRuntime::cipherBlockChaining_aescrypt_Type() { | |
858 // create input type (domain) | |
859 int num_args = 5; | |
860 int argcnt = num_args; | |
861 const Type** fields = TypeTuple::fields(argcnt); | |
862 int argp = TypeFunc::Parms; | |
863 fields[argp++] = TypePtr::NOTNULL; // src | |
864 fields[argp++] = TypePtr::NOTNULL; // dest | |
865 fields[argp++] = TypePtr::NOTNULL; // k array | |
866 fields[argp++] = TypePtr::NOTNULL; // r array | |
867 fields[argp++] = TypeInt::INT; // src len | |
868 assert(argp == TypeFunc::Parms+argcnt, "correct decoding"); | |
869 const TypeTuple* domain = TypeTuple::make(TypeFunc::Parms+argcnt, fields); | |
870 | |
871 // no result type needed | |
872 fields = TypeTuple::fields(1); | |
873 fields[TypeFunc::Parms+0] = NULL; // void | |
874 const TypeTuple* range = TypeTuple::make(TypeFunc::Parms, fields); | |
875 return TypeFunc::make(domain, range); | |
876 } | |
877 | |
0 | 878 //------------- Interpreter state access for on stack replacement |
879 const TypeFunc* OptoRuntime::osr_end_Type() { | |
880 // create input type (domain) | |
881 const Type **fields = TypeTuple::fields(1); | |
882 fields[TypeFunc::Parms+0] = TypeRawPtr::BOTTOM; // OSR temp buf | |
883 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+1, fields); | |
884 | |
885 // create result type | |
886 fields = TypeTuple::fields(1); | |
887 // fields[TypeFunc::Parms+0] = TypeInstPtr::NOTNULL; // locked oop | |
888 fields[TypeFunc::Parms+0] = NULL; // void | |
889 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms, fields); | |
890 return TypeFunc::make(domain, range); | |
891 } | |
892 | |
893 //-------------- methodData update helpers | |
894 | |
895 const TypeFunc* OptoRuntime::profile_receiver_type_Type() { | |
896 // create input type (domain) | |
897 const Type **fields = TypeTuple::fields(2); | |
898 fields[TypeFunc::Parms+0] = TypeAryPtr::NOTNULL; // methodData pointer | |
899 fields[TypeFunc::Parms+1] = TypeInstPtr::BOTTOM; // receiver oop | |
900 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+2, fields); | |
901 | |
902 // create result type | |
903 fields = TypeTuple::fields(1); | |
904 fields[TypeFunc::Parms+0] = NULL; // void | |
905 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms, fields); | |
906 return TypeFunc::make(domain,range); | |
907 } | |
908 | |
909 JRT_LEAF(void, OptoRuntime::profile_receiver_type_C(DataLayout* data, oopDesc* receiver)) | |
910 if (receiver == NULL) return; | |
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911 Klass* receiver_klass = receiver->klass(); |
0 | 912 |
913 intptr_t* mdp = ((intptr_t*)(data)) + DataLayout::header_size_in_cells(); | |
914 int empty_row = -1; // free row, if any is encountered | |
915 | |
916 // ReceiverTypeData* vc = new ReceiverTypeData(mdp); | |
917 for (uint row = 0; row < ReceiverTypeData::row_limit(); row++) { | |
918 // if (vc->receiver(row) == receiver_klass) | |
919 int receiver_off = ReceiverTypeData::receiver_cell_index(row); | |
920 intptr_t row_recv = *(mdp + receiver_off); | |
921 if (row_recv == (intptr_t) receiver_klass) { | |
922 // vc->set_receiver_count(row, vc->receiver_count(row) + DataLayout::counter_increment); | |
923 int count_off = ReceiverTypeData::receiver_count_cell_index(row); | |
924 *(mdp + count_off) += DataLayout::counter_increment; | |
925 return; | |
926 } else if (row_recv == 0) { | |
927 // else if (vc->receiver(row) == NULL) | |
928 empty_row = (int) row; | |
929 } | |
930 } | |
931 | |
932 if (empty_row != -1) { | |
933 int receiver_off = ReceiverTypeData::receiver_cell_index(empty_row); | |
934 // vc->set_receiver(empty_row, receiver_klass); | |
935 *(mdp + receiver_off) = (intptr_t) receiver_klass; | |
936 // vc->set_receiver_count(empty_row, DataLayout::counter_increment); | |
937 int count_off = ReceiverTypeData::receiver_count_cell_index(empty_row); | |
938 *(mdp + count_off) = DataLayout::counter_increment; | |
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939 } else { |
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940 // Receiver did not match any saved receiver and there is no empty row for it. |
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941 // Increment total counter to indicate polymorphic case. |
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942 intptr_t* count_p = (intptr_t*)(((byte*)(data)) + in_bytes(CounterData::count_offset())); |
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943 *count_p += DataLayout::counter_increment; |
0 | 944 } |
945 JRT_END | |
946 | |
947 //------------------------------------------------------------------------------------- | |
948 // register policy | |
949 | |
950 bool OptoRuntime::is_callee_saved_register(MachRegisterNumbers reg) { | |
951 assert(reg >= 0 && reg < _last_Mach_Reg, "must be a machine register"); | |
952 switch (register_save_policy[reg]) { | |
953 case 'C': return false; //SOC | |
954 case 'E': return true ; //SOE | |
955 case 'N': return false; //NS | |
956 case 'A': return false; //AS | |
957 } | |
958 ShouldNotReachHere(); | |
959 return false; | |
960 } | |
961 | |
962 //----------------------------------------------------------------------- | |
963 // Exceptions | |
964 // | |
965 | |
966 static void trace_exception(oop exception_oop, address exception_pc, const char* msg) PRODUCT_RETURN; | |
967 | |
968 // The method is an entry that is always called by a C++ method not | |
969 // directly from compiled code. Compiled code will call the C++ method following. | |
970 // We can't allow async exception to be installed during exception processing. | |
971 JRT_ENTRY_NO_ASYNC(address, OptoRuntime::handle_exception_C_helper(JavaThread* thread, nmethod* &nm)) | |
972 | |
973 // Do not confuse exception_oop with pending_exception. The exception_oop | |
974 // is only used to pass arguments into the method. Not for general | |
975 // exception handling. DO NOT CHANGE IT to use pending_exception, since | |
976 // the runtime stubs checks this on exit. | |
977 assert(thread->exception_oop() != NULL, "exception oop is found"); | |
978 address handler_address = NULL; | |
979 | |
980 Handle exception(thread, thread->exception_oop()); | |
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981 address pc = thread->exception_pc(); |
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982 |
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983 // Clear out the exception oop and pc since looking up an |
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984 // exception handler can cause class loading, which might throw an |
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985 // exception and those fields are expected to be clear during |
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986 // normal bytecode execution. |
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987 thread->clear_exception_oop_and_pc(); |
0 | 988 |
989 if (TraceExceptions) { | |
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990 trace_exception(exception(), pc, ""); |
0 | 991 } |
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992 |
0 | 993 // for AbortVMOnException flag |
994 NOT_PRODUCT(Exceptions::debug_check_abort(exception)); | |
995 | |
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996 #ifdef ASSERT |
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997 if (!(exception->is_a(SystemDictionary::Throwable_klass()))) { |
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998 // should throw an exception here |
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999 ShouldNotReachHere(); |
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1000 } |
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1001 #endif |
0 | 1002 |
1003 // new exception handling: this method is entered only from adapters | |
1004 // exceptions from compiled java methods are handled in compiled code | |
1005 // using rethrow node | |
1006 | |
1007 nm = CodeCache::find_nmethod(pc); | |
1008 assert(nm != NULL, "No NMethod found"); | |
1009 if (nm->is_native_method()) { | |
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1010 fatal("Native method should not have path to exception handling"); |
0 | 1011 } else { |
1012 // we are switching to old paradigm: search for exception handler in caller_frame | |
1013 // instead in exception handler of caller_frame.sender() | |
1014 | |
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1015 if (JvmtiExport::can_post_on_exceptions()) { |
0 | 1016 // "Full-speed catching" is not necessary here, |
1017 // since we're notifying the VM on every catch. | |
1018 // Force deoptimization and the rest of the lookup | |
1019 // will be fine. | |
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1020 deoptimize_caller_frame(thread); |
0 | 1021 } |
1022 | |
1023 // Check the stack guard pages. If enabled, look for handler in this frame; | |
1024 // otherwise, forcibly unwind the frame. | |
1025 // | |
1026 // 4826555: use default current sp for reguard_stack instead of &nm: it's more accurate. | |
1027 bool force_unwind = !thread->reguard_stack(); | |
1028 bool deopting = false; | |
1029 if (nm->is_deopt_pc(pc)) { | |
1030 deopting = true; | |
1031 RegisterMap map(thread, false); | |
1032 frame deoptee = thread->last_frame().sender(&map); | |
1033 assert(deoptee.is_deoptimized_frame(), "must be deopted"); | |
1034 // Adjust the pc back to the original throwing pc | |
1035 pc = deoptee.pc(); | |
1036 } | |
1037 | |
1038 // If we are forcing an unwind because of stack overflow then deopt is | |
1039 // irrelevant sice we are throwing the frame away anyway. | |
1040 | |
1041 if (deopting && !force_unwind) { | |
1042 handler_address = SharedRuntime::deopt_blob()->unpack_with_exception(); | |
1043 } else { | |
1044 | |
1045 handler_address = | |
1046 force_unwind ? NULL : nm->handler_for_exception_and_pc(exception, pc); | |
1047 | |
1048 if (handler_address == NULL) { | |
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1049 Handle original_exception(thread, exception()); |
0 | 1050 handler_address = SharedRuntime::compute_compiled_exc_handler(nm, pc, exception, force_unwind, true); |
1051 assert (handler_address != NULL, "must have compiled handler"); | |
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1052 // Update the exception cache only when the unwind was not forced |
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1053 // and there didn't happen another exception during the computation of the |
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1054 // compiled exception handler. |
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1055 if (!force_unwind && original_exception() == exception()) { |
0 | 1056 nm->add_handler_for_exception_and_pc(exception,pc,handler_address); |
1057 } | |
1058 } else { | |
1059 assert(handler_address == SharedRuntime::compute_compiled_exc_handler(nm, pc, exception, force_unwind, true), "Must be the same"); | |
1060 } | |
1061 } | |
1062 | |
1063 thread->set_exception_pc(pc); | |
1064 thread->set_exception_handler_pc(handler_address); | |
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1065 |
1295 | 1066 // Check if the exception PC is a MethodHandle call site. |
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1067 thread->set_is_method_handle_return(nm->is_method_handle_return(pc)); |
0 | 1068 } |
1069 | |
1070 // Restore correct return pc. Was saved above. | |
1071 thread->set_exception_oop(exception()); | |
1072 return handler_address; | |
1073 | |
1074 JRT_END | |
1075 | |
1076 // We are entering here from exception_blob | |
1077 // If there is a compiled exception handler in this method, we will continue there; | |
1078 // otherwise we will unwind the stack and continue at the caller of top frame method | |
1079 // Note we enter without the usual JRT wrapper. We will call a helper routine that | |
1080 // will do the normal VM entry. We do it this way so that we can see if the nmethod | |
1081 // we looked up the handler for has been deoptimized in the meantime. If it has been | |
1082 // we must not use the handler and instread return the deopt blob. | |
1083 address OptoRuntime::handle_exception_C(JavaThread* thread) { | |
1084 // | |
1085 // We are in Java not VM and in debug mode we have a NoHandleMark | |
1086 // | |
1087 #ifndef PRODUCT | |
1088 SharedRuntime::_find_handler_ctr++; // find exception handler | |
1089 #endif | |
1090 debug_only(NoHandleMark __hm;) | |
1091 nmethod* nm = NULL; | |
1092 address handler_address = NULL; | |
1093 { | |
1094 // Enter the VM | |
1095 | |
1096 ResetNoHandleMark rnhm; | |
1097 handler_address = handle_exception_C_helper(thread, nm); | |
1098 } | |
1099 | |
1100 // Back in java: Use no oops, DON'T safepoint | |
1101 | |
1102 // Now check to see if the handler we are returning is in a now | |
1103 // deoptimized frame | |
1104 | |
1105 if (nm != NULL) { | |
1106 RegisterMap map(thread, false); | |
1107 frame caller = thread->last_frame().sender(&map); | |
1108 #ifdef ASSERT | |
1109 assert(caller.is_compiled_frame(), "must be"); | |
1110 #endif // ASSERT | |
1111 if (caller.is_deoptimized_frame()) { | |
1112 handler_address = SharedRuntime::deopt_blob()->unpack_with_exception(); | |
1113 } | |
1114 } | |
1115 return handler_address; | |
1116 } | |
1117 | |
1118 //------------------------------rethrow---------------------------------------- | |
1119 // We get here after compiled code has executed a 'RethrowNode'. The callee | |
1120 // is either throwing or rethrowing an exception. The callee-save registers | |
1121 // have been restored, synchronized objects have been unlocked and the callee | |
1122 // stack frame has been removed. The return address was passed in. | |
1123 // Exception oop is passed as the 1st argument. This routine is then called | |
1124 // from the stub. On exit, we know where to jump in the caller's code. | |
1125 // After this C code exits, the stub will pop his frame and end in a jump | |
1126 // (instead of a return). We enter the caller's default handler. | |
1127 // | |
1128 // This must be JRT_LEAF: | |
1129 // - caller will not change its state as we cannot block on exit, | |
1130 // therefore raw_exception_handler_for_return_address is all it takes | |
1131 // to handle deoptimized blobs | |
1132 // | |
1133 // However, there needs to be a safepoint check in the middle! So compiled | |
1134 // safepoints are completely watertight. | |
1135 // | |
1136 // Thus, it cannot be a leaf since it contains the No_GC_Verifier. | |
1137 // | |
1138 // *THIS IS NOT RECOMMENDED PROGRAMMING STYLE* | |
1139 // | |
1140 address OptoRuntime::rethrow_C(oopDesc* exception, JavaThread* thread, address ret_pc) { | |
1141 #ifndef PRODUCT | |
1142 SharedRuntime::_rethrow_ctr++; // count rethrows | |
1143 #endif | |
1144 assert (exception != NULL, "should have thrown a NULLPointerException"); | |
1145 #ifdef ASSERT | |
1142 | 1146 if (!(exception->is_a(SystemDictionary::Throwable_klass()))) { |
0 | 1147 // should throw an exception here |
1148 ShouldNotReachHere(); | |
1149 } | |
1150 #endif | |
1151 | |
1152 thread->set_vm_result(exception); | |
1153 // Frame not compiled (handles deoptimization blob) | |
1295 | 1154 return SharedRuntime::raw_exception_handler_for_return_address(thread, ret_pc); |
0 | 1155 } |
1156 | |
1157 | |
1158 const TypeFunc *OptoRuntime::rethrow_Type() { | |
1159 // create input type (domain) | |
1160 const Type **fields = TypeTuple::fields(1); | |
1161 fields[TypeFunc::Parms+0] = TypeInstPtr::NOTNULL; // Exception oop | |
1162 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+1,fields); | |
1163 | |
1164 // create result type (range) | |
1165 fields = TypeTuple::fields(1); | |
1166 fields[TypeFunc::Parms+0] = TypeInstPtr::NOTNULL; // Exception oop | |
1167 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+1, fields); | |
1168 | |
1169 return TypeFunc::make(domain, range); | |
1170 } | |
1171 | |
1172 | |
1173 void OptoRuntime::deoptimize_caller_frame(JavaThread *thread, bool doit) { | |
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1174 // Deoptimize the caller before continuing, as the compiled |
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1175 // exception handler table may not be valid. |
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1176 if (!StressCompiledExceptionHandlers && doit) { |
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1177 deoptimize_caller_frame(thread); |
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1178 } |
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1179 } |
0 | 1180 |
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1181 void OptoRuntime::deoptimize_caller_frame(JavaThread *thread) { |
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1182 // Called from within the owner thread, so no need for safepoint |
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1183 RegisterMap reg_map(thread); |
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1184 frame stub_frame = thread->last_frame(); |
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1185 assert(stub_frame.is_runtime_frame() || exception_blob()->contains(stub_frame.pc()), "sanity check"); |
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1186 frame caller_frame = stub_frame.sender(®_map); |
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1187 |
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1188 // Deoptimize the caller frame. |
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1189 Deoptimization::deoptimize_frame(thread, caller_frame.id()); |
0 | 1190 } |
1191 | |
1192 | |
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1193 bool OptoRuntime::is_deoptimized_caller_frame(JavaThread *thread) { |
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1194 // Called from within the owner thread, so no need for safepoint |
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1195 RegisterMap reg_map(thread); |
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1196 frame stub_frame = thread->last_frame(); |
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1197 assert(stub_frame.is_runtime_frame() || exception_blob()->contains(stub_frame.pc()), "sanity check"); |
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1198 frame caller_frame = stub_frame.sender(®_map); |
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1199 return caller_frame.is_deoptimized_frame(); |
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1200 } |
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1201 |
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1202 |
0 | 1203 const TypeFunc *OptoRuntime::register_finalizer_Type() { |
1204 // create input type (domain) | |
1205 const Type **fields = TypeTuple::fields(1); | |
1206 fields[TypeFunc::Parms+0] = TypeInstPtr::NOTNULL; // oop; Receiver | |
1207 // // The JavaThread* is passed to each routine as the last argument | |
1208 // fields[TypeFunc::Parms+1] = TypeRawPtr::NOTNULL; // JavaThread *; Executing thread | |
1209 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+1,fields); | |
1210 | |
1211 // create result type (range) | |
1212 fields = TypeTuple::fields(0); | |
1213 | |
1214 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+0,fields); | |
1215 | |
1216 return TypeFunc::make(domain,range); | |
1217 } | |
1218 | |
1219 | |
1220 //----------------------------------------------------------------------------- | |
1221 // Dtrace support. entry and exit probes have the same signature | |
1222 const TypeFunc *OptoRuntime::dtrace_method_entry_exit_Type() { | |
1223 // create input type (domain) | |
1224 const Type **fields = TypeTuple::fields(2); | |
1225 fields[TypeFunc::Parms+0] = TypeRawPtr::BOTTOM; // Thread-local storage | |
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1226 fields[TypeFunc::Parms+1] = TypeMetadataPtr::BOTTOM; // Method*; Method we are entering |
0 | 1227 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+2,fields); |
1228 | |
1229 // create result type (range) | |
1230 fields = TypeTuple::fields(0); | |
1231 | |
1232 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+0,fields); | |
1233 | |
1234 return TypeFunc::make(domain,range); | |
1235 } | |
1236 | |
1237 const TypeFunc *OptoRuntime::dtrace_object_alloc_Type() { | |
1238 // create input type (domain) | |
1239 const Type **fields = TypeTuple::fields(2); | |
1240 fields[TypeFunc::Parms+0] = TypeRawPtr::BOTTOM; // Thread-local storage | |
1241 fields[TypeFunc::Parms+1] = TypeInstPtr::NOTNULL; // oop; newly allocated object | |
1242 | |
1243 const TypeTuple *domain = TypeTuple::make(TypeFunc::Parms+2,fields); | |
1244 | |
1245 // create result type (range) | |
1246 fields = TypeTuple::fields(0); | |
1247 | |
1248 const TypeTuple *range = TypeTuple::make(TypeFunc::Parms+0,fields); | |
1249 | |
1250 return TypeFunc::make(domain,range); | |
1251 } | |
1252 | |
1253 | |
1254 JRT_ENTRY_NO_ASYNC(void, OptoRuntime::register_finalizer(oopDesc* obj, JavaThread* thread)) | |
1255 assert(obj->is_oop(), "must be a valid oop"); | |
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1256 assert(obj->klass()->has_finalizer(), "shouldn't be here otherwise"); |
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1257 InstanceKlass::register_finalizer(instanceOop(obj), CHECK); |
0 | 1258 JRT_END |
1259 | |
1260 //----------------------------------------------------------------------------- | |
1261 | |
1262 NamedCounter * volatile OptoRuntime::_named_counters = NULL; | |
1263 | |
1264 // | |
1265 // dump the collected NamedCounters. | |
1266 // | |
1267 void OptoRuntime::print_named_counters() { | |
1268 int total_lock_count = 0; | |
1269 int eliminated_lock_count = 0; | |
1270 | |
1271 NamedCounter* c = _named_counters; | |
1272 while (c) { | |
1273 if (c->tag() == NamedCounter::LockCounter || c->tag() == NamedCounter::EliminatedLockCounter) { | |
1274 int count = c->count(); | |
1275 if (count > 0) { | |
1276 bool eliminated = c->tag() == NamedCounter::EliminatedLockCounter; | |
1277 if (Verbose) { | |
1278 tty->print_cr("%d %s%s", count, c->name(), eliminated ? " (eliminated)" : ""); | |
1279 } | |
1280 total_lock_count += count; | |
1281 if (eliminated) { | |
1282 eliminated_lock_count += count; | |
1283 } | |
1284 } | |
1285 } else if (c->tag() == NamedCounter::BiasedLockingCounter) { | |
1286 BiasedLockingCounters* blc = ((BiasedLockingNamedCounter*)c)->counters(); | |
1287 if (blc->nonzero()) { | |
1288 tty->print_cr("%s", c->name()); | |
1289 blc->print_on(tty); | |
1290 } | |
1291 } | |
1292 c = c->next(); | |
1293 } | |
1294 if (total_lock_count > 0) { | |
1295 tty->print_cr("dynamic locks: %d", total_lock_count); | |
1296 if (eliminated_lock_count) { | |
1297 tty->print_cr("eliminated locks: %d (%d%%)", eliminated_lock_count, | |
1298 (int)(eliminated_lock_count * 100.0 / total_lock_count)); | |
1299 } | |
1300 } | |
1301 } | |
1302 | |
1303 // | |
1304 // Allocate a new NamedCounter. The JVMState is used to generate the | |
1305 // name which consists of method@line for the inlining tree. | |
1306 // | |
1307 | |
1308 NamedCounter* OptoRuntime::new_named_counter(JVMState* youngest_jvms, NamedCounter::CounterTag tag) { | |
1309 int max_depth = youngest_jvms->depth(); | |
1310 | |
1311 // Visit scopes from youngest to oldest. | |
1312 bool first = true; | |
1313 stringStream st; | |
1314 for (int depth = max_depth; depth >= 1; depth--) { | |
1315 JVMState* jvms = youngest_jvms->of_depth(depth); | |
1316 ciMethod* m = jvms->has_method() ? jvms->method() : NULL; | |
1317 if (!first) { | |
1318 st.print(" "); | |
1319 } else { | |
1320 first = false; | |
1321 } | |
1322 int bci = jvms->bci(); | |
1323 if (bci < 0) bci = 0; | |
1324 st.print("%s.%s@%d", m->holder()->name()->as_utf8(), m->name()->as_utf8(), bci); | |
1325 // To print linenumbers instead of bci use: m->line_number_from_bci(bci) | |
1326 } | |
1327 NamedCounter* c; | |
1328 if (tag == NamedCounter::BiasedLockingCounter) { | |
1329 c = new BiasedLockingNamedCounter(strdup(st.as_string())); | |
1330 } else { | |
1331 c = new NamedCounter(strdup(st.as_string()), tag); | |
1332 } | |
1333 | |
1334 // atomically add the new counter to the head of the list. We only | |
1335 // add counters so this is safe. | |
1336 NamedCounter* head; | |
1337 do { | |
1338 head = _named_counters; | |
1339 c->set_next(head); | |
1340 } while (Atomic::cmpxchg_ptr(c, &_named_counters, head) != head); | |
1341 return c; | |
1342 } | |
1343 | |
1344 //----------------------------------------------------------------------------- | |
1345 // Non-product code | |
1346 #ifndef PRODUCT | |
1347 | |
1348 int trace_exception_counter = 0; | |
1349 static void trace_exception(oop exception_oop, address exception_pc, const char* msg) { | |
1350 ttyLocker ttyl; | |
1351 trace_exception_counter++; | |
1352 tty->print("%d [Exception (%s): ", trace_exception_counter, msg); | |
1353 exception_oop->print_value(); | |
1354 tty->print(" in "); | |
1355 CodeBlob* blob = CodeCache::find_blob(exception_pc); | |
1356 if (blob->is_nmethod()) { | |
12876
8b80b262e501
8005173: assert(false) failed: DEBUG MESSAGE: exception oop must be empty (macroAssembler_x86.cpp:625)
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1357 nmethod* nm = blob->as_nmethod_or_null(); |
8b80b262e501
8005173: assert(false) failed: DEBUG MESSAGE: exception oop must be empty (macroAssembler_x86.cpp:625)
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1358 nm->method()->print_value(); |
0 | 1359 } else if (blob->is_runtime_stub()) { |
1360 tty->print("<runtime-stub>"); | |
1361 } else { | |
1362 tty->print("<unknown>"); | |
1363 } | |
1364 tty->print(" at " INTPTR_FORMAT, exception_pc); | |
1365 tty->print_cr("]"); | |
1366 } | |
1367 | |
1368 #endif // PRODUCT | |
1369 | |
1370 | |
1371 # ifdef ENABLE_ZAP_DEAD_LOCALS | |
1372 // Called from call sites in compiled code with oop maps (actually safepoints) | |
1373 // Zaps dead locals in first java frame. | |
1374 // Is entry because may need to lock to generate oop maps | |
1375 // Currently, only used for compiler frames, but someday may be used | |
1376 // for interpreter frames, too. | |
1377 | |
1378 int OptoRuntime::ZapDeadCompiledLocals_count = 0; | |
1379 | |
1380 // avoid pointers to member funcs with these helpers | |
1381 static bool is_java_frame( frame* f) { return f->is_java_frame(); } | |
1382 static bool is_native_frame(frame* f) { return f->is_native_frame(); } | |
1383 | |
1384 | |
1385 void OptoRuntime::zap_dead_java_or_native_locals(JavaThread* thread, | |
1386 bool (*is_this_the_right_frame_to_zap)(frame*)) { | |
1387 assert(JavaThread::current() == thread, "is this needed?"); | |
1388 | |
1389 if ( !ZapDeadCompiledLocals ) return; | |
1390 | |
1391 bool skip = false; | |
1392 | |
1393 if ( ZapDeadCompiledLocalsFirst == 0 ) ; // nothing special | |
1394 else if ( ZapDeadCompiledLocalsFirst > ZapDeadCompiledLocals_count ) skip = true; | |
1395 else if ( ZapDeadCompiledLocalsFirst == ZapDeadCompiledLocals_count ) | |
1396 warning("starting zapping after skipping"); | |
1397 | |
1398 if ( ZapDeadCompiledLocalsLast == -1 ) ; // nothing special | |
1399 else if ( ZapDeadCompiledLocalsLast < ZapDeadCompiledLocals_count ) skip = true; | |
1400 else if ( ZapDeadCompiledLocalsLast == ZapDeadCompiledLocals_count ) | |
1401 warning("about to zap last zap"); | |
1402 | |
1403 ++ZapDeadCompiledLocals_count; // counts skipped zaps, too | |
1404 | |
1405 if ( skip ) return; | |
1406 | |
1407 // find java frame and zap it | |
1408 | |
1409 for (StackFrameStream sfs(thread); !sfs.is_done(); sfs.next()) { | |
1410 if (is_this_the_right_frame_to_zap(sfs.current()) ) { | |
1411 sfs.current()->zap_dead_locals(thread, sfs.register_map()); | |
1412 return; | |
1413 } | |
1414 } | |
1415 warning("no frame found to zap in zap_dead_Java_locals_C"); | |
1416 } | |
1417 | |
1418 JRT_LEAF(void, OptoRuntime::zap_dead_Java_locals_C(JavaThread* thread)) | |
1419 zap_dead_java_or_native_locals(thread, is_java_frame); | |
1420 JRT_END | |
1421 | |
1422 // The following does not work because for one thing, the | |
1423 // thread state is wrong; it expects java, but it is native. | |
605 | 1424 // Also, the invariants in a native stub are different and |
0 | 1425 // I'm not sure it is safe to have a MachCalRuntimeDirectNode |
1426 // in there. | |
1427 // So for now, we do not zap in native stubs. | |
1428 | |
1429 JRT_LEAF(void, OptoRuntime::zap_dead_native_locals_C(JavaThread* thread)) | |
1430 zap_dead_java_or_native_locals(thread, is_native_frame); | |
1431 JRT_END | |
1432 | |
1433 # endif |