Mercurial > hg > graal-jvmci-8
annotate src/cpu/x86/vm/frame_x86.cpp @ 24234:ea6f94ab283b default tip
Added tag jvmci-0.36 for changeset 8128b98d4736
author | Gilles Duboscq <gilles.m.duboscq@oracle.com> |
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date | Mon, 18 Sep 2017 18:49:45 +0200 |
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rev | line source |
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0 | 1 /* |
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2 * Copyright (c) 1997, 2014, Oracle and/or its affiliates. All rights reserved. |
0 | 3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER. |
4 * | |
5 * This code is free software; you can redistribute it and/or modify it | |
6 * under the terms of the GNU General Public License version 2 only, as | |
7 * published by the Free Software Foundation. | |
8 * | |
9 * This code is distributed in the hope that it will be useful, but WITHOUT | |
10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or | |
11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License | |
12 * version 2 for more details (a copy is included in the LICENSE file that | |
13 * accompanied this code). | |
14 * | |
15 * You should have received a copy of the GNU General Public License version | |
16 * 2 along with this work; if not, write to the Free Software Foundation, | |
17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA. | |
18 * | |
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19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA |
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20 * or visit www.oracle.com if you need additional information or have any |
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21 * questions. |
0 | 22 * |
23 */ | |
24 | |
1972 | 25 #include "precompiled.hpp" |
26 #include "interpreter/interpreter.hpp" | |
27 #include "memory/resourceArea.hpp" | |
28 #include "oops/markOop.hpp" | |
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29 #include "oops/method.hpp" |
1972 | 30 #include "oops/oop.inline.hpp" |
4868 | 31 #include "prims/methodHandles.hpp" |
1972 | 32 #include "runtime/frame.inline.hpp" |
33 #include "runtime/handles.inline.hpp" | |
34 #include "runtime/javaCalls.hpp" | |
35 #include "runtime/monitorChunk.hpp" | |
10405 | 36 #include "runtime/os.hpp" |
1972 | 37 #include "runtime/signature.hpp" |
38 #include "runtime/stubCodeGenerator.hpp" | |
39 #include "runtime/stubRoutines.hpp" | |
40 #include "vmreg_x86.inline.hpp" | |
41 #ifdef COMPILER1 | |
42 #include "c1/c1_Runtime1.hpp" | |
43 #include "runtime/vframeArray.hpp" | |
44 #endif | |
0 | 45 |
46 #ifdef ASSERT | |
47 void RegisterMap::check_location_valid() { | |
48 } | |
49 #endif | |
50 | |
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51 PRAGMA_FORMAT_MUTE_WARNINGS_FOR_GCC |
0 | 52 |
53 // Profiling/safepoint support | |
54 | |
55 bool frame::safe_for_sender(JavaThread *thread) { | |
56 address sp = (address)_sp; | |
57 address fp = (address)_fp; | |
58 address unextended_sp = (address)_unextended_sp; | |
10405 | 59 |
60 // consider stack guards when trying to determine "safe" stack pointers | |
61 static size_t stack_guard_size = os::uses_stack_guard_pages() ? (StackYellowPages + StackRedPages) * os::vm_page_size() : 0; | |
62 size_t usable_stack_size = thread->stack_size() - stack_guard_size; | |
63 | |
64 // sp must be within the usable part of the stack (not in guards) | |
65 bool sp_safe = (sp < thread->stack_base()) && | |
66 (sp >= thread->stack_base() - usable_stack_size); | |
67 | |
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68 |
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69 if (!sp_safe) { |
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70 return false; |
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71 } |
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72 |
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73 // unextended sp must be within the stack and above or equal sp |
10405 | 74 bool unextended_sp_safe = (unextended_sp < thread->stack_base()) && |
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75 (unextended_sp >= sp); |
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76 |
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77 if (!unextended_sp_safe) { |
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78 return false; |
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79 } |
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80 |
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81 // an fp must be within the stack and above (but not equal) sp |
10405 | 82 // second evaluation on fp+ is added to handle situation where fp is -1 |
83 bool fp_safe = (fp < thread->stack_base() && (fp > sp) && (((fp + (return_addr_offset * sizeof(void*))) < thread->stack_base()))); | |
107
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84 |
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85 // We know sp/unextended_sp are safe only fp is questionable here |
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86 |
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87 // If the current frame is known to the code cache then we can attempt to |
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88 // to construct the sender and do some validation of it. This goes a long way |
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89 // toward eliminating issues when we get in frame construction code |
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90 |
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91 if (_cb != NULL ) { |
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92 |
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93 // First check if frame is complete and tester is reliable |
0 | 94 // Unfortunately we can only check frame complete for runtime stubs and nmethod |
95 // other generic buffer blobs are more problematic so we just assume they are | |
96 // ok. adapter blobs never have a frame complete and are never ok. | |
107
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97 |
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98 if (!_cb->is_frame_complete_at(_pc)) { |
0 | 99 if (_cb->is_nmethod() || _cb->is_adapter_blob() || _cb->is_runtime_stub()) { |
100 return false; | |
101 } | |
102 } | |
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103 |
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104 // Could just be some random pointer within the codeBlob |
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105 if (!_cb->code_contains(_pc)) { |
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106 return false; |
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107 } |
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108 |
107
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109 // Entry frame checks |
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110 if (is_entry_frame()) { |
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111 // an entry frame must have a valid fp. |
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112 |
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113 if (!fp_safe) return false; |
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114 |
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115 // Validate the JavaCallWrapper an entry frame must have |
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116 |
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117 address jcw = (address)entry_frame_call_wrapper(); |
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118 |
10405 | 119 bool jcw_safe = (jcw < thread->stack_base()) && ( jcw > fp); |
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120 |
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121 return jcw_safe; |
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122 |
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123 } |
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124 |
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125 intptr_t* sender_sp = NULL; |
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126 address sender_pc = NULL; |
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127 |
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128 if (is_interpreted_frame()) { |
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129 // fp must be safe |
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130 if (!fp_safe) { |
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131 return false; |
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132 } |
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133 |
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134 sender_pc = (address) this->fp()[return_addr_offset]; |
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135 sender_sp = (intptr_t*) addr_at(sender_sp_offset); |
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136 |
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137 } else { |
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138 // must be some sort of compiled/runtime frame |
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139 // fp does not have to be safe (although it could be check for c1?) |
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140 |
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141 // check for a valid frame_size, otherwise we are unlikely to get a valid sender_pc |
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142 if (_cb->frame_size() <= 0) { |
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143 return false; |
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144 } |
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145 |
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146 sender_sp = _unextended_sp + _cb->frame_size(); |
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147 // On Intel the return_address is always the word on the stack |
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148 sender_pc = (address) *(sender_sp-1); |
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149 } |
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150 |
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151 |
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152 // If the potential sender is the interpreter then we can do some more checking |
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153 if (Interpreter::contains(sender_pc)) { |
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154 |
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155 // ebp is always saved in a recognizable place in any code we generate. However |
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156 // only if the sender is interpreted/call_stub (c1 too?) are we certain that the saved ebp |
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157 // is really a frame pointer. |
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158 |
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159 intptr_t *saved_fp = (intptr_t*)*(sender_sp - frame::sender_sp_offset); |
10405 | 160 bool saved_fp_safe = ((address)saved_fp < thread->stack_base()) && (saved_fp > sender_sp); |
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161 |
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162 if (!saved_fp_safe) { |
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163 return false; |
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164 } |
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165 |
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166 // construct the potential sender |
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167 |
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168 frame sender(sender_sp, saved_fp, sender_pc); |
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169 |
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170 return sender.is_interpreted_frame_valid(thread); |
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171 |
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172 } |
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173 |
10405 | 174 // We must always be able to find a recognizable pc |
175 CodeBlob* sender_blob = CodeCache::find_blob_unsafe(sender_pc); | |
176 if (sender_pc == NULL || sender_blob == NULL) { | |
177 return false; | |
178 } | |
179 | |
180 // Could be a zombie method | |
181 if (sender_blob->is_zombie() || sender_blob->is_unloaded()) { | |
182 return false; | |
183 } | |
184 | |
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185 // Could just be some random pointer within the codeBlob |
1748 | 186 if (!sender_blob->code_contains(sender_pc)) { |
187 return false; | |
188 } | |
107
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189 |
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190 // We should never be able to see an adapter if the current frame is something from code cache |
1748 | 191 if (sender_blob->is_adapter_blob()) { |
107
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192 return false; |
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193 } |
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194 |
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195 // Could be the call_stub |
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196 if (StubRoutines::returns_to_call_stub(sender_pc)) { |
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197 intptr_t *saved_fp = (intptr_t*)*(sender_sp - frame::sender_sp_offset); |
10405 | 198 bool saved_fp_safe = ((address)saved_fp < thread->stack_base()) && (saved_fp > sender_sp); |
107
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199 |
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200 if (!saved_fp_safe) { |
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201 return false; |
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202 } |
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203 |
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204 // construct the potential sender |
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205 |
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206 frame sender(sender_sp, saved_fp, sender_pc); |
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207 |
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208 // Validate the JavaCallWrapper an entry frame must have |
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209 address jcw = (address)sender.entry_frame_call_wrapper(); |
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210 |
10405 | 211 bool jcw_safe = (jcw < thread->stack_base()) && ( jcw > (address)sender.fp()); |
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212 |
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213 return jcw_safe; |
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214 } |
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215 |
10405 | 216 if (sender_blob->is_nmethod()) { |
217 nmethod* nm = sender_blob->as_nmethod_or_null(); | |
218 if (nm != NULL) { | |
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219 if (nm->is_deopt_mh_entry(sender_pc) || nm->is_deopt_entry(sender_pc) || |
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220 nm->method()->is_method_handle_intrinsic()) { |
10405 | 221 return false; |
222 } | |
223 } | |
224 } | |
225 | |
226 // If the frame size is 0 something (or less) is bad because every nmethod has a non-zero frame size | |
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227 // because the return address counts against the callee's frame. |
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228 |
10405 | 229 if (sender_blob->frame_size() <= 0) { |
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230 assert(!sender_blob->is_nmethod(), "should count return address at least"); |
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231 return false; |
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232 } |
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233 |
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234 // We should never be able to see anything here except an nmethod. If something in the |
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235 // code cache (current frame) is called by an entity within the code cache that entity |
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236 // should not be anything but the call stub (already covered), the interpreter (already covered) |
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237 // or an nmethod. |
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238 |
10405 | 239 if (!sender_blob->is_nmethod()) { |
240 return false; | |
241 } | |
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242 |
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243 // Could put some more validation for the potential non-interpreted sender |
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244 // frame we'd create by calling sender if I could think of any. Wait for next crash in forte... |
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245 |
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246 // One idea is seeing if the sender_pc we have is one that we'd expect to call to current cb |
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247 |
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248 // We've validated the potential sender that would be created |
0 | 249 return true; |
250 } | |
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251 |
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252 // Must be native-compiled frame. Since sender will try and use fp to find |
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253 // linkages it must be safe |
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254 |
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255 if (!fp_safe) { |
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256 return false; |
0 | 257 } |
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258 |
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259 // Will the pc we fetch be non-zero (which we'll find at the oldest frame) |
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260 |
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261 if ( (address) this->fp()[return_addr_offset] == NULL) return false; |
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262 |
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263 |
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264 // could try and do some more potential verification of native frame if we could think of some... |
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265 |
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266 return true; |
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267 |
0 | 268 } |
269 | |
270 | |
271 void frame::patch_pc(Thread* thread, address pc) { | |
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272 address* pc_addr = &(((address*) sp())[-1]); |
0 | 273 if (TracePcPatching) { |
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274 tty->print_cr("patch_pc at address " INTPTR_FORMAT " [" INTPTR_FORMAT " -> " INTPTR_FORMAT "]", |
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275 pc_addr, *pc_addr, pc); |
0 | 276 } |
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277 // Either the return address is the original one or we are going to |
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278 // patch in the same address that's already there. |
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279 assert(_pc == *pc_addr || pc == *pc_addr, "must be"); |
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280 *pc_addr = pc; |
0 | 281 _cb = CodeCache::find_blob(pc); |
1204 | 282 address original_pc = nmethod::get_deopt_original_pc(this); |
283 if (original_pc != NULL) { | |
284 assert(original_pc == _pc, "expected original PC to be stored before patching"); | |
0 | 285 _deopt_state = is_deoptimized; |
286 // leave _pc as is | |
287 } else { | |
288 _deopt_state = not_deoptimized; | |
289 _pc = pc; | |
290 } | |
291 } | |
292 | |
293 bool frame::is_interpreted_frame() const { | |
294 return Interpreter::contains(pc()); | |
295 } | |
296 | |
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297 int frame::frame_size(RegisterMap* map) const { |
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298 frame sender = this->sender(map); |
0 | 299 return sender.sp() - sp(); |
300 } | |
301 | |
302 intptr_t* frame::entry_frame_argument_at(int offset) const { | |
303 // convert offset to index to deal with tsi | |
304 int index = (Interpreter::expr_offset_in_bytes(offset)/wordSize); | |
305 // Entry frame's arguments are always in relation to unextended_sp() | |
306 return &unextended_sp()[index]; | |
307 } | |
308 | |
309 // sender_sp | |
310 #ifdef CC_INTERP | |
311 intptr_t* frame::interpreter_frame_sender_sp() const { | |
312 assert(is_interpreted_frame(), "interpreted frame expected"); | |
313 // QQQ why does this specialize method exist if frame::sender_sp() does same thing? | |
314 // seems odd and if we always know interpreted vs. non then sender_sp() is really | |
315 // doing too much work. | |
316 return get_interpreterState()->sender_sp(); | |
317 } | |
318 | |
319 // monitor elements | |
320 | |
321 BasicObjectLock* frame::interpreter_frame_monitor_begin() const { | |
322 return get_interpreterState()->monitor_base(); | |
323 } | |
324 | |
325 BasicObjectLock* frame::interpreter_frame_monitor_end() const { | |
326 return (BasicObjectLock*) get_interpreterState()->stack_base(); | |
327 } | |
328 | |
329 #else // CC_INTERP | |
330 | |
331 intptr_t* frame::interpreter_frame_sender_sp() const { | |
332 assert(is_interpreted_frame(), "interpreted frame expected"); | |
333 return (intptr_t*) at(interpreter_frame_sender_sp_offset); | |
334 } | |
335 | |
336 void frame::set_interpreter_frame_sender_sp(intptr_t* sender_sp) { | |
337 assert(is_interpreted_frame(), "interpreted frame expected"); | |
338 ptr_at_put(interpreter_frame_sender_sp_offset, (intptr_t) sender_sp); | |
339 } | |
340 | |
341 | |
342 // monitor elements | |
343 | |
344 BasicObjectLock* frame::interpreter_frame_monitor_begin() const { | |
345 return (BasicObjectLock*) addr_at(interpreter_frame_monitor_block_bottom_offset); | |
346 } | |
347 | |
348 BasicObjectLock* frame::interpreter_frame_monitor_end() const { | |
349 BasicObjectLock* result = (BasicObjectLock*) *addr_at(interpreter_frame_monitor_block_top_offset); | |
350 // make sure the pointer points inside the frame | |
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351 assert(sp() <= (intptr_t*) result, "monitor end should be above the stack pointer"); |
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352 assert((intptr_t*) result < fp(), "monitor end should be strictly below the frame pointer"); |
0 | 353 return result; |
354 } | |
355 | |
356 void frame::interpreter_frame_set_monitor_end(BasicObjectLock* value) { | |
357 *((BasicObjectLock**)addr_at(interpreter_frame_monitor_block_top_offset)) = value; | |
358 } | |
359 | |
360 // Used by template based interpreter deoptimization | |
361 void frame::interpreter_frame_set_last_sp(intptr_t* sp) { | |
362 *((intptr_t**)addr_at(interpreter_frame_last_sp_offset)) = sp; | |
363 } | |
364 #endif // CC_INTERP | |
365 | |
366 frame frame::sender_for_entry_frame(RegisterMap* map) const { | |
367 assert(map != NULL, "map must be set"); | |
368 // Java frame called from C; skip all C frames and return top C | |
369 // frame of that chunk as the sender | |
370 JavaFrameAnchor* jfa = entry_frame_call_wrapper()->anchor(); | |
371 assert(!entry_frame_is_first(), "next Java fp must be non zero"); | |
372 assert(jfa->last_Java_sp() > sp(), "must be above this frame on stack"); | |
373 map->clear(); | |
374 assert(map->include_argument_oops(), "should be set by clear"); | |
375 if (jfa->last_Java_pc() != NULL ) { | |
376 frame fr(jfa->last_Java_sp(), jfa->last_Java_fp(), jfa->last_Java_pc()); | |
377 return fr; | |
378 } | |
379 frame fr(jfa->last_Java_sp(), jfa->last_Java_fp()); | |
380 return fr; | |
381 } | |
382 | |
1204 | 383 //------------------------------------------------------------------------------ |
384 // frame::verify_deopt_original_pc | |
385 // | |
386 // Verifies the calculated original PC of a deoptimization PC for the | |
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387 // given unextended SP. |
8721 | 388 #ifdef ASSERT |
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389 void frame::verify_deopt_original_pc(nmethod* nm, intptr_t* unextended_sp) { |
1204 | 390 frame fr; |
391 | |
392 // This is ugly but it's better than to change {get,set}_original_pc | |
393 // to take an SP value as argument. And it's only a debugging | |
394 // method anyway. | |
395 fr._unextended_sp = unextended_sp; | |
396 | |
397 address original_pc = nm->get_original_pc(&fr); | |
1748 | 398 assert(nm->insts_contains(original_pc), "original PC must be in nmethod"); |
1204 | 399 } |
400 #endif | |
401 | |
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402 //------------------------------------------------------------------------------ |
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403 // frame::adjust_unextended_sp |
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404 void frame::adjust_unextended_sp() { |
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405 // On x86, sites calling method handle intrinsics and lambda forms are treated |
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406 // as any other call site. Therefore, no special action is needed when we are |
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407 // returning to any of these call sites. |
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408 |
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409 nmethod* sender_nm = (_cb == NULL) ? NULL : _cb->as_nmethod_or_null(); |
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410 if (sender_nm != NULL) { |
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411 // If the sender PC is a deoptimization point, get the original PC. |
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412 if (sender_nm->is_deopt_entry(_pc) || |
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413 sender_nm->is_deopt_mh_entry(_pc)) { |
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414 DEBUG_ONLY(verify_deopt_original_pc(sender_nm, _unextended_sp)); |
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415 } |
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416 } |
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417 } |
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418 |
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419 //------------------------------------------------------------------------------ |
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420 // frame::update_map_with_saved_link |
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421 void frame::update_map_with_saved_link(RegisterMap* map, intptr_t** link_addr) { |
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422 // The interpreter and compiler(s) always save EBP/RBP in a known |
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423 // location on entry. We must record where that location is |
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424 // so this if EBP/RBP was live on callout from c2 we can find |
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425 // the saved copy no matter what it called. |
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426 |
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427 // Since the interpreter always saves EBP/RBP if we record where it is then |
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428 // we don't have to always save EBP/RBP on entry and exit to c2 compiled |
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429 // code, on entry will be enough. |
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430 map->set_location(rbp->as_VMReg(), (address) link_addr); |
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431 #ifdef AMD64 |
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432 // this is weird "H" ought to be at a higher address however the |
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433 // oopMaps seems to have the "H" regs at the same address and the |
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434 // vanilla register. |
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435 // XXXX make this go away |
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436 if (true) { |
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437 map->set_location(rbp->as_VMReg()->next(), (address) link_addr); |
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438 } |
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439 #endif // AMD64 |
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440 } |
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441 |
1204 | 442 |
443 //------------------------------------------------------------------------------ | |
444 // frame::sender_for_interpreter_frame | |
0 | 445 frame frame::sender_for_interpreter_frame(RegisterMap* map) const { |
1204 | 446 // SP is the raw SP from the sender after adapter or interpreter |
447 // extension. | |
448 intptr_t* sender_sp = this->sender_sp(); | |
0 | 449 |
450 // This is the sp before any possible extension (adapter/locals). | |
451 intptr_t* unextended_sp = interpreter_frame_sender_sp(); | |
452 | |
22298 | 453 #if defined(COMPILER2) || INCLUDE_JVMCI |
0 | 454 if (map->update_map()) { |
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455 update_map_with_saved_link(map, (intptr_t**) addr_at(link_offset)); |
0 | 456 } |
22298 | 457 #endif // COMPILER2 || INCLUDE_JVMCI |
1204 | 458 |
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459 return frame(sender_sp, unextended_sp, link(), sender_pc()); |
0 | 460 } |
461 | |
462 | |
1204 | 463 //------------------------------------------------------------------------------ |
464 // frame::sender_for_compiled_frame | |
0 | 465 frame frame::sender_for_compiled_frame(RegisterMap* map) const { |
466 assert(map != NULL, "map must be set"); | |
467 | |
468 // frame owned by optimizing compiler | |
469 assert(_cb->frame_size() >= 0, "must have non-zero frame size"); | |
1204 | 470 intptr_t* sender_sp = unextended_sp() + _cb->frame_size(); |
471 intptr_t* unextended_sp = sender_sp; | |
0 | 472 |
473 // On Intel the return_address is always the word on the stack | |
474 address sender_pc = (address) *(sender_sp-1); | |
475 | |
1204 | 476 // This is the saved value of EBP which may or may not really be an FP. |
477 // It is only an FP if the sender is an interpreter frame (or C1?). | |
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478 intptr_t** saved_fp_addr = (intptr_t**) (sender_sp - frame::sender_sp_offset); |
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479 |
0 | 480 if (map->update_map()) { |
481 // Tell GC to use argument oopmaps for some runtime stubs that need it. | |
482 // For C1, the runtime stub might not have oop maps, so set this flag | |
483 // outside of update_register_map. | |
484 map->set_include_argument_oops(_cb->caller_must_gc_arguments(map->thread())); | |
485 if (_cb->oop_maps() != NULL) { | |
486 OopMapSet::update_register_map(this, map); | |
487 } | |
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488 |
1204 | 489 // Since the prolog does the save and restore of EBP there is no oopmap |
0 | 490 // for it so we must fill in its location as if there was an oopmap entry |
491 // since if our caller was compiled code there could be live jvm state in it. | |
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492 update_map_with_saved_link(map, saved_fp_addr); |
0 | 493 } |
494 | |
495 assert(sender_sp != sp(), "must have changed"); | |
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496 return frame(sender_sp, unextended_sp, *saved_fp_addr, sender_pc); |
0 | 497 } |
498 | |
1204 | 499 |
500 //------------------------------------------------------------------------------ | |
501 // frame::sender | |
0 | 502 frame frame::sender(RegisterMap* map) const { |
503 // Default is we done have to follow them. The sender_for_xxx will | |
504 // update it accordingly | |
505 map->set_include_argument_oops(false); | |
506 | |
507 if (is_entry_frame()) return sender_for_entry_frame(map); | |
508 if (is_interpreted_frame()) return sender_for_interpreter_frame(map); | |
509 assert(_cb == CodeCache::find_blob(pc()),"Must be the same"); | |
510 | |
511 if (_cb != NULL) { | |
512 return sender_for_compiled_frame(map); | |
513 } | |
514 // Must be native-compiled frame, i.e. the marshaling code for native | |
515 // methods that exists in the core system. | |
516 return frame(sender_sp(), link(), sender_pc()); | |
517 } | |
518 | |
519 | |
520 bool frame::interpreter_frame_equals_unpacked_fp(intptr_t* fp) { | |
521 assert(is_interpreted_frame(), "must be interpreter frame"); | |
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522 Method* method = interpreter_frame_method(); |
0 | 523 // When unpacking an optimized frame the frame pointer is |
524 // adjusted with: | |
525 int diff = (method->max_locals() - method->size_of_parameters()) * | |
1506 | 526 Interpreter::stackElementWords; |
0 | 527 return _fp == (fp - diff); |
528 } | |
529 | |
530 void frame::pd_gc_epilog() { | |
531 // nothing done here now | |
532 } | |
533 | |
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534 bool frame::is_interpreted_frame_valid(JavaThread* thread) const { |
0 | 535 // QQQ |
536 #ifdef CC_INTERP | |
537 #else | |
538 assert(is_interpreted_frame(), "Not an interpreted frame"); | |
539 // These are reasonable sanity checks | |
540 if (fp() == 0 || (intptr_t(fp()) & (wordSize-1)) != 0) { | |
541 return false; | |
542 } | |
543 if (sp() == 0 || (intptr_t(sp()) & (wordSize-1)) != 0) { | |
544 return false; | |
545 } | |
546 if (fp() + interpreter_frame_initial_sp_offset < sp()) { | |
547 return false; | |
548 } | |
549 // These are hacks to keep us out of trouble. | |
550 // The problem with these is that they mask other problems | |
551 if (fp() <= sp()) { // this attempts to deal with unsigned comparison above | |
552 return false; | |
553 } | |
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554 |
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555 // do some validation of frame elements |
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556 |
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557 // first the method |
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558 |
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559 Method* m = *interpreter_frame_method_addr(); |
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560 |
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561 // validate the method we'd find in this potential sender |
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562 if (!m->is_valid_method()) return false; |
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563 |
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564 // stack frames shouldn't be much larger than max_stack elements |
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565 |
1506 | 566 if (fp() - sp() > 1024 + m->max_stack()*Interpreter::stackElementSize) { |
0 | 567 return false; |
568 } | |
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569 |
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570 // validate bci/bcx |
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571 |
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572 intptr_t bcx = interpreter_frame_bcx(); |
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573 if (m->validate_bci_from_bcx(bcx) < 0) { |
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574 return false; |
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575 } |
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576 |
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577 // validate ConstantPoolCache* |
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578 ConstantPoolCache* cp = *interpreter_frame_cache_addr(); |
11034 | 579 if (cp == NULL || !cp->is_metaspace_object()) return false; |
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580 |
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581 // validate locals |
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582 |
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583 address locals = (address) *interpreter_frame_locals_addr(); |
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584 |
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585 if (locals > thread->stack_base() || locals < (address) fp()) return false; |
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586 |
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587 // We'd have to be pretty unlucky to be mislead at this point |
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588 |
0 | 589 #endif // CC_INTERP |
590 return true; | |
591 } | |
592 | |
593 BasicType frame::interpreter_frame_result(oop* oop_result, jvalue* value_result) { | |
594 #ifdef CC_INTERP | |
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595 // Needed for JVMTI. The result should always be in the |
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596 // interpreterState object |
0 | 597 interpreterState istate = get_interpreterState(); |
598 #endif // CC_INTERP | |
599 assert(is_interpreted_frame(), "interpreted frame expected"); | |
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600 Method* method = interpreter_frame_method(); |
0 | 601 BasicType type = method->result_type(); |
602 | |
603 intptr_t* tos_addr; | |
604 if (method->is_native()) { | |
605 // Prior to calling into the runtime to report the method_exit the possible | |
606 // return value is pushed to the native stack. If the result is a jfloat/jdouble | |
607 // then ST0 is saved before EAX/EDX. See the note in generate_native_result | |
608 tos_addr = (intptr_t*)sp(); | |
609 if (type == T_FLOAT || type == T_DOUBLE) { | |
610 // QQQ seems like this code is equivalent on the two platforms | |
611 #ifdef AMD64 | |
612 // This is times two because we do a push(ltos) after pushing XMM0 | |
613 // and that takes two interpreter stack slots. | |
1506 | 614 tos_addr += 2 * Interpreter::stackElementWords; |
0 | 615 #else |
616 tos_addr += 2; | |
617 #endif // AMD64 | |
618 } | |
619 } else { | |
620 tos_addr = (intptr_t*)interpreter_frame_tos_address(); | |
621 } | |
622 | |
623 switch (type) { | |
624 case T_OBJECT : | |
625 case T_ARRAY : { | |
626 oop obj; | |
627 if (method->is_native()) { | |
628 #ifdef CC_INTERP | |
629 obj = istate->_oop_temp; | |
630 #else | |
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631 obj = cast_to_oop(at(interpreter_frame_oop_temp_offset)); |
0 | 632 #endif // CC_INTERP |
633 } else { | |
634 oop* obj_p = (oop*)tos_addr; | |
635 obj = (obj_p == NULL) ? (oop)NULL : *obj_p; | |
636 } | |
637 assert(obj == NULL || Universe::heap()->is_in(obj), "sanity check"); | |
638 *oop_result = obj; | |
639 break; | |
640 } | |
641 case T_BOOLEAN : value_result->z = *(jboolean*)tos_addr; break; | |
642 case T_BYTE : value_result->b = *(jbyte*)tos_addr; break; | |
643 case T_CHAR : value_result->c = *(jchar*)tos_addr; break; | |
644 case T_SHORT : value_result->s = *(jshort*)tos_addr; break; | |
645 case T_INT : value_result->i = *(jint*)tos_addr; break; | |
646 case T_LONG : value_result->j = *(jlong*)tos_addr; break; | |
647 case T_FLOAT : { | |
648 #ifdef AMD64 | |
649 value_result->f = *(jfloat*)tos_addr; | |
650 #else | |
651 if (method->is_native()) { | |
652 jdouble d = *(jdouble*)tos_addr; // Result was in ST0 so need to convert to jfloat | |
653 value_result->f = (jfloat)d; | |
654 } else { | |
655 value_result->f = *(jfloat*)tos_addr; | |
656 } | |
657 #endif // AMD64 | |
658 break; | |
659 } | |
660 case T_DOUBLE : value_result->d = *(jdouble*)tos_addr; break; | |
661 case T_VOID : /* Nothing to do */ break; | |
662 default : ShouldNotReachHere(); | |
663 } | |
664 | |
665 return type; | |
666 } | |
667 | |
668 | |
669 intptr_t* frame::interpreter_frame_tos_at(jint offset) const { | |
670 int index = (Interpreter::expr_offset_in_bytes(offset)/wordSize); | |
671 return &interpreter_frame_tos_address()[index]; | |
672 } | |
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673 |
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674 #ifndef PRODUCT |
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675 |
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676 #define DESCRIBE_FP_OFFSET(name) \ |
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677 values.describe(frame_no, fp() + frame::name##_offset, #name) |
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678 |
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679 void frame::describe_pd(FrameValues& values, int frame_no) { |
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680 if (is_interpreted_frame()) { |
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681 DESCRIBE_FP_OFFSET(interpreter_frame_sender_sp); |
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682 DESCRIBE_FP_OFFSET(interpreter_frame_last_sp); |
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683 DESCRIBE_FP_OFFSET(interpreter_frame_method); |
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684 DESCRIBE_FP_OFFSET(interpreter_frame_mdx); |
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685 DESCRIBE_FP_OFFSET(interpreter_frame_cache); |
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686 DESCRIBE_FP_OFFSET(interpreter_frame_locals); |
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687 DESCRIBE_FP_OFFSET(interpreter_frame_bcx); |
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688 DESCRIBE_FP_OFFSET(interpreter_frame_initial_sp); |
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689 #ifdef AMD64 |
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690 } else if (is_entry_frame()) { |
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691 // This could be more descriptive if we use the enum in |
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692 // stubGenerator to map to real names but it's most important to |
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693 // claim these frame slots so the error checking works. |
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694 for (int i = 0; i < entry_frame_after_call_words; i++) { |
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695 values.describe(frame_no, fp() - i, err_msg("call_stub word fp - %d", i)); |
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696 } |
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697 #endif // AMD64 |
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698 } |
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699 } |
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700 #endif // !PRODUCT |
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701 |
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702 intptr_t *frame::initial_deoptimization_info() { |
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703 // used to reset the saved FP |
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704 return fp(); |
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705 } |
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706 |
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707 intptr_t* frame::real_fp() const { |
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708 if (_cb != NULL) { |
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709 // use the frame size if valid |
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710 int size = _cb->frame_size(); |
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711 if (size > 0) { |
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712 return unextended_sp() + size; |
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713 } |
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714 } |
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715 // else rely on fp() |
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716 assert(! is_compiled_frame(), "unknown compiled frame size"); |
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717 return fp(); |
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718 } |
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719 |
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720 #ifndef PRODUCT |
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721 // This is a generic constructor which is only used by pns() in debug.cpp. |
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722 frame::frame(void* sp, void* fp, void* pc) { |
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723 init((intptr_t*)sp, (intptr_t*)fp, (address)pc); |
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724 } |
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725 #endif |