src/cpu/sparc/vm/frame_sparc.cpp

Thu, 26 Jan 2012 16:49:22 +0100

author
bdelsart
date
Thu, 26 Jan 2012 16:49:22 +0100
changeset 3451
5dbed2f542ff
parent 3445
82e5a84b7436
child 3495
5f17b16b3219
permissions
-rw-r--r--

7120468: SPARC/x86: use frame::describe to enhance trace_method_handle
Summary: improvements of TraceMethodHandles for JSR292
Reviewed-by: never, twisti

duke@435 1 /*
bdelsart@3445 2 * Copyright (c) 1997, 2012, Oracle and/or its affiliates. All rights reserved.
duke@435 3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
duke@435 4 *
duke@435 5 * This code is free software; you can redistribute it and/or modify it
duke@435 6 * under the terms of the GNU General Public License version 2 only, as
duke@435 7 * published by the Free Software Foundation.
duke@435 8 *
duke@435 9 * This code is distributed in the hope that it will be useful, but WITHOUT
duke@435 10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
duke@435 11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
duke@435 12 * version 2 for more details (a copy is included in the LICENSE file that
duke@435 13 * accompanied this code).
duke@435 14 *
duke@435 15 * You should have received a copy of the GNU General Public License version
duke@435 16 * 2 along with this work; if not, write to the Free Software Foundation,
duke@435 17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
duke@435 18 *
trims@1907 19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
trims@1907 20 * or visit www.oracle.com if you need additional information or have any
trims@1907 21 * questions.
duke@435 22 *
duke@435 23 */
duke@435 24
stefank@2314 25 #include "precompiled.hpp"
stefank@2314 26 #include "interpreter/interpreter.hpp"
stefank@2314 27 #include "memory/resourceArea.hpp"
stefank@2314 28 #include "oops/markOop.hpp"
stefank@2314 29 #include "oops/methodOop.hpp"
stefank@2314 30 #include "oops/oop.inline.hpp"
stefank@2314 31 #include "runtime/frame.inline.hpp"
stefank@2314 32 #include "runtime/handles.inline.hpp"
stefank@2314 33 #include "runtime/javaCalls.hpp"
stefank@2314 34 #include "runtime/monitorChunk.hpp"
stefank@2314 35 #include "runtime/signature.hpp"
stefank@2314 36 #include "runtime/stubCodeGenerator.hpp"
stefank@2314 37 #include "runtime/stubRoutines.hpp"
stefank@2314 38 #include "vmreg_sparc.inline.hpp"
stefank@2314 39 #ifdef COMPILER1
stefank@2314 40 #include "c1/c1_Runtime1.hpp"
stefank@2314 41 #include "runtime/vframeArray.hpp"
stefank@2314 42 #endif
duke@435 43
duke@435 44 void RegisterMap::pd_clear() {
duke@435 45 if (_thread->has_last_Java_frame()) {
duke@435 46 frame fr = _thread->last_frame();
duke@435 47 _window = fr.sp();
duke@435 48 } else {
duke@435 49 _window = NULL;
duke@435 50 }
duke@435 51 _younger_window = NULL;
duke@435 52 }
duke@435 53
duke@435 54
duke@435 55 // Unified register numbering scheme: each 32-bits counts as a register
duke@435 56 // number, so all the V9 registers take 2 slots.
duke@435 57 const static int R_L_nums[] = {0+040,2+040,4+040,6+040,8+040,10+040,12+040,14+040};
duke@435 58 const static int R_I_nums[] = {0+060,2+060,4+060,6+060,8+060,10+060,12+060,14+060};
duke@435 59 const static int R_O_nums[] = {0+020,2+020,4+020,6+020,8+020,10+020,12+020,14+020};
duke@435 60 const static int R_G_nums[] = {0+000,2+000,4+000,6+000,8+000,10+000,12+000,14+000};
duke@435 61 static RegisterMap::LocationValidType bad_mask = 0;
duke@435 62 static RegisterMap::LocationValidType R_LIO_mask = 0;
duke@435 63 static bool register_map_inited = false;
duke@435 64
duke@435 65 static void register_map_init() {
duke@435 66 if (!register_map_inited) {
duke@435 67 register_map_inited = true;
duke@435 68 int i;
duke@435 69 for (i = 0; i < 8; i++) {
duke@435 70 assert(R_L_nums[i] < RegisterMap::location_valid_type_size, "in first chunk");
duke@435 71 assert(R_I_nums[i] < RegisterMap::location_valid_type_size, "in first chunk");
duke@435 72 assert(R_O_nums[i] < RegisterMap::location_valid_type_size, "in first chunk");
duke@435 73 assert(R_G_nums[i] < RegisterMap::location_valid_type_size, "in first chunk");
duke@435 74 }
duke@435 75
duke@435 76 bad_mask |= (1LL << R_O_nums[6]); // SP
duke@435 77 bad_mask |= (1LL << R_O_nums[7]); // cPC
duke@435 78 bad_mask |= (1LL << R_I_nums[6]); // FP
duke@435 79 bad_mask |= (1LL << R_I_nums[7]); // rPC
duke@435 80 bad_mask |= (1LL << R_G_nums[2]); // TLS
duke@435 81 bad_mask |= (1LL << R_G_nums[7]); // reserved by libthread
duke@435 82
duke@435 83 for (i = 0; i < 8; i++) {
duke@435 84 R_LIO_mask |= (1LL << R_L_nums[i]);
duke@435 85 R_LIO_mask |= (1LL << R_I_nums[i]);
duke@435 86 R_LIO_mask |= (1LL << R_O_nums[i]);
duke@435 87 }
duke@435 88 }
duke@435 89 }
duke@435 90
duke@435 91
duke@435 92 address RegisterMap::pd_location(VMReg regname) const {
duke@435 93 register_map_init();
duke@435 94
duke@435 95 assert(regname->is_reg(), "sanity check");
duke@435 96 // Only the GPRs get handled this way
duke@435 97 if( !regname->is_Register())
duke@435 98 return NULL;
duke@435 99
duke@435 100 // don't talk about bad registers
duke@435 101 if ((bad_mask & ((LocationValidType)1 << regname->value())) != 0) {
duke@435 102 return NULL;
duke@435 103 }
duke@435 104
duke@435 105 // Convert to a GPR
duke@435 106 Register reg;
duke@435 107 int second_word = 0;
duke@435 108 // 32-bit registers for in, out and local
duke@435 109 if (!regname->is_concrete()) {
duke@435 110 // HMM ought to return NULL for any non-concrete (odd) vmreg
duke@435 111 // this all tied up in the fact we put out double oopMaps for
duke@435 112 // register locations. When that is fixed we'd will return NULL
duke@435 113 // (or assert here).
duke@435 114 reg = regname->prev()->as_Register();
duke@435 115 #ifdef _LP64
duke@435 116 second_word = sizeof(jint);
duke@435 117 #else
duke@435 118 return NULL;
duke@435 119 #endif // _LP64
duke@435 120 } else {
duke@435 121 reg = regname->as_Register();
duke@435 122 }
duke@435 123 if (reg->is_out()) {
duke@435 124 assert(_younger_window != NULL, "Younger window should be available");
duke@435 125 return second_word + (address)&_younger_window[reg->after_save()->sp_offset_in_saved_window()];
duke@435 126 }
duke@435 127 if (reg->is_local() || reg->is_in()) {
duke@435 128 assert(_window != NULL, "Window should be available");
duke@435 129 return second_word + (address)&_window[reg->sp_offset_in_saved_window()];
duke@435 130 }
duke@435 131 // Only the window'd GPRs get handled this way; not the globals.
duke@435 132 return NULL;
duke@435 133 }
duke@435 134
duke@435 135
duke@435 136 #ifdef ASSERT
duke@435 137 void RegisterMap::check_location_valid() {
duke@435 138 register_map_init();
duke@435 139 assert((_location_valid[0] & bad_mask) == 0, "cannot have special locations for SP,FP,TLS,etc.");
duke@435 140 }
duke@435 141 #endif
duke@435 142
duke@435 143 // We are shifting windows. That means we are moving all %i to %o,
duke@435 144 // getting rid of all current %l, and keeping all %g. This is only
duke@435 145 // complicated if any of the location pointers for these are valid.
duke@435 146 // The normal case is that everything is in its standard register window
duke@435 147 // home, and _location_valid[0] is zero. In that case, this routine
duke@435 148 // does exactly nothing.
duke@435 149 void RegisterMap::shift_individual_registers() {
duke@435 150 if (!update_map()) return; // this only applies to maps with locations
duke@435 151 register_map_init();
duke@435 152 check_location_valid();
duke@435 153
duke@435 154 LocationValidType lv = _location_valid[0];
duke@435 155 LocationValidType lv0 = lv;
duke@435 156
duke@435 157 lv &= ~R_LIO_mask; // clear %l, %o, %i regs
duke@435 158
duke@435 159 // if we cleared some non-%g locations, we may have to do some shifting
duke@435 160 if (lv != lv0) {
duke@435 161 // copy %i0-%i5 to %o0-%o5, if they have special locations
duke@435 162 // This can happen in within stubs which spill argument registers
duke@435 163 // around a dynamic link operation, such as resolve_opt_virtual_call.
duke@435 164 for (int i = 0; i < 8; i++) {
duke@435 165 if (lv0 & (1LL << R_I_nums[i])) {
duke@435 166 _location[R_O_nums[i]] = _location[R_I_nums[i]];
duke@435 167 lv |= (1LL << R_O_nums[i]);
duke@435 168 }
duke@435 169 }
duke@435 170 }
duke@435 171
duke@435 172 _location_valid[0] = lv;
duke@435 173 check_location_valid();
duke@435 174 }
duke@435 175
sgoldman@542 176 bool frame::safe_for_sender(JavaThread *thread) {
duke@435 177
sgoldman@542 178 address _SP = (address) sp();
sgoldman@542 179 address _FP = (address) fp();
sgoldman@542 180 address _UNEXTENDED_SP = (address) unextended_sp();
sgoldman@542 181 // sp must be within the stack
sgoldman@542 182 bool sp_safe = (_SP <= thread->stack_base()) &&
sgoldman@542 183 (_SP >= thread->stack_base() - thread->stack_size());
sgoldman@542 184
sgoldman@542 185 if (!sp_safe) {
sgoldman@542 186 return false;
sgoldman@542 187 }
sgoldman@542 188
sgoldman@542 189 // unextended sp must be within the stack and above or equal sp
sgoldman@542 190 bool unextended_sp_safe = (_UNEXTENDED_SP <= thread->stack_base()) &&
sgoldman@542 191 (_UNEXTENDED_SP >= _SP);
sgoldman@542 192
sgoldman@542 193 if (!unextended_sp_safe) return false;
sgoldman@542 194
sgoldman@542 195 // an fp must be within the stack and above (but not equal) sp
sgoldman@542 196 bool fp_safe = (_FP <= thread->stack_base()) &&
sgoldman@542 197 (_FP > _SP);
sgoldman@542 198
sgoldman@542 199 // We know sp/unextended_sp are safe only fp is questionable here
sgoldman@542 200
sgoldman@542 201 // If the current frame is known to the code cache then we can attempt to
sgoldman@542 202 // to construct the sender and do some validation of it. This goes a long way
sgoldman@542 203 // toward eliminating issues when we get in frame construction code
sgoldman@542 204
sgoldman@542 205 if (_cb != NULL ) {
sgoldman@542 206
sgoldman@542 207 // First check if frame is complete and tester is reliable
sgoldman@542 208 // Unfortunately we can only check frame complete for runtime stubs and nmethod
sgoldman@542 209 // other generic buffer blobs are more problematic so we just assume they are
sgoldman@542 210 // ok. adapter blobs never have a frame complete and are never ok.
sgoldman@542 211
sgoldman@542 212 if (!_cb->is_frame_complete_at(_pc)) {
sgoldman@542 213 if (_cb->is_nmethod() || _cb->is_adapter_blob() || _cb->is_runtime_stub()) {
sgoldman@542 214 return false;
duke@435 215 }
sgoldman@542 216 }
sgoldman@542 217
sgoldman@542 218 // Entry frame checks
sgoldman@542 219 if (is_entry_frame()) {
sgoldman@542 220 // an entry frame must have a valid fp.
sgoldman@542 221
sgoldman@542 222 if (!fp_safe) {
sgoldman@542 223 return false;
sgoldman@542 224 }
sgoldman@542 225
sgoldman@542 226 // Validate the JavaCallWrapper an entry frame must have
sgoldman@542 227
sgoldman@542 228 address jcw = (address)entry_frame_call_wrapper();
sgoldman@542 229
sgoldman@542 230 bool jcw_safe = (jcw <= thread->stack_base()) && ( jcw > _FP);
sgoldman@542 231
sgoldman@542 232 return jcw_safe;
sgoldman@542 233
sgoldman@542 234 }
sgoldman@542 235
sgoldman@542 236 intptr_t* younger_sp = sp();
sgoldman@542 237 intptr_t* _SENDER_SP = sender_sp(); // sender is actually just _FP
sgoldman@542 238 bool adjusted_stack = is_interpreted_frame();
sgoldman@542 239
sgoldman@542 240 address sender_pc = (address)younger_sp[I7->sp_offset_in_saved_window()] + pc_return_offset;
sgoldman@542 241
sgoldman@542 242
sgoldman@542 243 // We must always be able to find a recognizable pc
sgoldman@542 244 CodeBlob* sender_blob = CodeCache::find_blob_unsafe(sender_pc);
sgoldman@542 245 if (sender_pc == NULL || sender_blob == NULL) {
sgoldman@542 246 return false;
sgoldman@542 247 }
sgoldman@542 248
sgoldman@542 249 // It should be safe to construct the sender though it might not be valid
sgoldman@542 250
sgoldman@542 251 frame sender(_SENDER_SP, younger_sp, adjusted_stack);
sgoldman@542 252
sgoldman@542 253 // Do we have a valid fp?
sgoldman@542 254 address sender_fp = (address) sender.fp();
sgoldman@542 255
sgoldman@542 256 // an fp must be within the stack and above (but not equal) current frame's _FP
sgoldman@542 257
sgoldman@542 258 bool sender_fp_safe = (sender_fp <= thread->stack_base()) &&
sgoldman@542 259 (sender_fp > _FP);
sgoldman@542 260
sgoldman@542 261 if (!sender_fp_safe) {
sgoldman@542 262 return false;
sgoldman@542 263 }
sgoldman@542 264
sgoldman@542 265
sgoldman@542 266 // If the potential sender is the interpreter then we can do some more checking
sgoldman@542 267 if (Interpreter::contains(sender_pc)) {
sgoldman@542 268 return sender.is_interpreted_frame_valid(thread);
sgoldman@542 269 }
sgoldman@542 270
sgoldman@542 271 // Could just be some random pointer within the codeBlob
twisti@2103 272 if (!sender.cb()->code_contains(sender_pc)) {
twisti@2103 273 return false;
twisti@2103 274 }
sgoldman@542 275
sgoldman@542 276 // We should never be able to see an adapter if the current frame is something from code cache
twisti@2103 277 if (sender_blob->is_adapter_blob()) {
sgoldman@542 278 return false;
sgoldman@542 279 }
sgoldman@542 280
sgoldman@542 281 if( sender.is_entry_frame()) {
sgoldman@542 282 // Validate the JavaCallWrapper an entry frame must have
sgoldman@542 283
sgoldman@542 284 address jcw = (address)sender.entry_frame_call_wrapper();
sgoldman@542 285
sgoldman@542 286 bool jcw_safe = (jcw <= thread->stack_base()) && ( jcw > sender_fp);
sgoldman@542 287
sgoldman@542 288 return jcw_safe;
sgoldman@542 289 }
sgoldman@542 290
sgoldman@542 291 // If the frame size is 0 something is bad because every nmethod has a non-zero frame size
sgoldman@542 292 // because you must allocate window space
sgoldman@542 293
sgoldman@542 294 if (sender_blob->frame_size() == 0) {
sgoldman@542 295 assert(!sender_blob->is_nmethod(), "should count return address at least");
sgoldman@542 296 return false;
sgoldman@542 297 }
sgoldman@542 298
sgoldman@542 299 // The sender should positively be an nmethod or call_stub. On sparc we might in fact see something else.
sgoldman@542 300 // The cause of this is because at a save instruction the O7 we get is a leftover from an earlier
sgoldman@542 301 // window use. So if a runtime stub creates two frames (common in fastdebug/jvmg) then we see the
sgoldman@542 302 // stale pc. So if the sender blob is not something we'd expect we have little choice but to declare
sgoldman@542 303 // the stack unwalkable. pd_get_top_frame_for_signal_handler tries to recover from this by unwinding
sgoldman@542 304 // that initial frame and retrying.
sgoldman@542 305
sgoldman@542 306 if (!sender_blob->is_nmethod()) {
sgoldman@542 307 return false;
sgoldman@542 308 }
sgoldman@542 309
sgoldman@542 310 // Could put some more validation for the potential non-interpreted sender
sgoldman@542 311 // frame we'd create by calling sender if I could think of any. Wait for next crash in forte...
sgoldman@542 312
sgoldman@542 313 // One idea is seeing if the sender_pc we have is one that we'd expect to call to current cb
sgoldman@542 314
sgoldman@542 315 // We've validated the potential sender that would be created
sgoldman@542 316
sgoldman@542 317 return true;
sgoldman@542 318
duke@435 319 }
sgoldman@542 320
sgoldman@542 321 // Must be native-compiled frame. Since sender will try and use fp to find
sgoldman@542 322 // linkages it must be safe
sgoldman@542 323
sgoldman@542 324 if (!fp_safe) return false;
sgoldman@542 325
sgoldman@542 326 // could try and do some more potential verification of native frame if we could think of some...
sgoldman@542 327
sgoldman@542 328 return true;
duke@435 329 }
duke@435 330
duke@435 331 // constructors
duke@435 332
duke@435 333 // Construct an unpatchable, deficient frame
duke@435 334 frame::frame(intptr_t* sp, unpatchable_t, address pc, CodeBlob* cb) {
duke@435 335 #ifdef _LP64
duke@435 336 assert( (((intptr_t)sp & (wordSize-1)) == 0), "frame constructor passed an invalid sp");
duke@435 337 #endif
duke@435 338 _sp = sp;
duke@435 339 _younger_sp = NULL;
duke@435 340 _pc = pc;
duke@435 341 _cb = cb;
duke@435 342 _sp_adjustment_by_callee = 0;
duke@435 343 assert(pc == NULL && cb == NULL || pc != NULL, "can't have a cb and no pc!");
duke@435 344 if (_cb == NULL && _pc != NULL ) {
duke@435 345 _cb = CodeCache::find_blob(_pc);
duke@435 346 }
duke@435 347 _deopt_state = unknown;
duke@435 348 #ifdef ASSERT
duke@435 349 if ( _cb != NULL && _cb->is_nmethod()) {
duke@435 350 // Without a valid unextended_sp() we can't convert the pc to "original"
duke@435 351 assert(!((nmethod*)_cb)->is_deopt_pc(_pc), "invariant broken");
duke@435 352 }
duke@435 353 #endif // ASSERT
duke@435 354 }
duke@435 355
twisti@1919 356 frame::frame(intptr_t* sp, intptr_t* younger_sp, bool younger_frame_is_interpreted) :
twisti@1919 357 _sp(sp),
twisti@1919 358 _younger_sp(younger_sp),
twisti@1919 359 _deopt_state(unknown),
twisti@1919 360 _sp_adjustment_by_callee(0) {
duke@435 361 if (younger_sp == NULL) {
duke@435 362 // make a deficient frame which doesn't know where its PC is
duke@435 363 _pc = NULL;
duke@435 364 _cb = NULL;
duke@435 365 } else {
duke@435 366 _pc = (address)younger_sp[I7->sp_offset_in_saved_window()] + pc_return_offset;
duke@435 367 assert( (intptr_t*)younger_sp[FP->sp_offset_in_saved_window()] == (intptr_t*)((intptr_t)sp - STACK_BIAS), "younger_sp must be valid");
duke@435 368 // Any frame we ever build should always "safe" therefore we should not have to call
duke@435 369 // find_blob_unsafe
duke@435 370 // In case of native stubs, the pc retrieved here might be
duke@435 371 // wrong. (the _last_native_pc will have the right value)
duke@435 372 // So do not put add any asserts on the _pc here.
duke@435 373 }
twisti@1919 374
twisti@1919 375 if (_pc != NULL)
twisti@1919 376 _cb = CodeCache::find_blob(_pc);
twisti@1919 377
twisti@1919 378 // Check for MethodHandle call sites.
twisti@1919 379 if (_cb != NULL) {
twisti@1919 380 nmethod* nm = _cb->as_nmethod_or_null();
twisti@1919 381 if (nm != NULL) {
twisti@1919 382 if (nm->is_deopt_mh_entry(_pc) || nm->is_method_handle_return(_pc)) {
twisti@1919 383 _sp_adjustment_by_callee = (intptr_t*) ((intptr_t) sp[L7_mh_SP_save->sp_offset_in_saved_window()] + STACK_BIAS) - sp;
twisti@1919 384 // The SP is already adjusted by this MH call site, don't
twisti@1919 385 // overwrite this value with the wrong interpreter value.
twisti@1919 386 younger_frame_is_interpreted = false;
twisti@1919 387 }
twisti@1919 388 }
duke@435 389 }
duke@435 390
twisti@1919 391 if (younger_frame_is_interpreted) {
twisti@1919 392 // compute adjustment to this frame's SP made by its interpreted callee
twisti@1919 393 _sp_adjustment_by_callee = (intptr_t*) ((intptr_t) younger_sp[I5_savedSP->sp_offset_in_saved_window()] + STACK_BIAS) - sp;
twisti@1919 394 }
duke@435 395
twisti@1919 396 // It is important that the frame is fully constructed when we do
twisti@1919 397 // this lookup as get_deopt_original_pc() needs a correct value for
twisti@1919 398 // unextended_sp() which uses _sp_adjustment_by_callee.
duke@435 399 if (_pc != NULL) {
twisti@1639 400 address original_pc = nmethod::get_deopt_original_pc(this);
twisti@1639 401 if (original_pc != NULL) {
twisti@1639 402 _pc = original_pc;
duke@435 403 _deopt_state = is_deoptimized;
duke@435 404 } else {
duke@435 405 _deopt_state = not_deoptimized;
duke@435 406 }
duke@435 407 }
duke@435 408 }
duke@435 409
duke@435 410 bool frame::is_interpreted_frame() const {
duke@435 411 return Interpreter::contains(pc());
duke@435 412 }
duke@435 413
duke@435 414 // sender_sp
duke@435 415
duke@435 416 intptr_t* frame::interpreter_frame_sender_sp() const {
duke@435 417 assert(is_interpreted_frame(), "interpreted frame expected");
duke@435 418 return fp();
duke@435 419 }
duke@435 420
duke@435 421 #ifndef CC_INTERP
duke@435 422 void frame::set_interpreter_frame_sender_sp(intptr_t* sender_sp) {
duke@435 423 assert(is_interpreted_frame(), "interpreted frame expected");
duke@435 424 Unimplemented();
duke@435 425 }
duke@435 426 #endif // CC_INTERP
duke@435 427
duke@435 428
duke@435 429 #ifdef ASSERT
duke@435 430 // Debugging aid
duke@435 431 static frame nth_sender(int n) {
duke@435 432 frame f = JavaThread::current()->last_frame();
duke@435 433
duke@435 434 for(int i = 0; i < n; ++i)
duke@435 435 f = f.sender((RegisterMap*)NULL);
duke@435 436
duke@435 437 printf("first frame %d\n", f.is_first_frame() ? 1 : 0);
duke@435 438 printf("interpreted frame %d\n", f.is_interpreted_frame() ? 1 : 0);
duke@435 439 printf("java frame %d\n", f.is_java_frame() ? 1 : 0);
duke@435 440 printf("entry frame %d\n", f.is_entry_frame() ? 1 : 0);
duke@435 441 printf("native frame %d\n", f.is_native_frame() ? 1 : 0);
duke@435 442 if (f.is_compiled_frame()) {
duke@435 443 if (f.is_deoptimized_frame())
duke@435 444 printf("deoptimized frame 1\n");
duke@435 445 else
duke@435 446 printf("compiled frame 1\n");
duke@435 447 }
duke@435 448
duke@435 449 return f;
duke@435 450 }
duke@435 451 #endif
duke@435 452
duke@435 453
duke@435 454 frame frame::sender_for_entry_frame(RegisterMap *map) const {
duke@435 455 assert(map != NULL, "map must be set");
duke@435 456 // Java frame called from C; skip all C frames and return top C
duke@435 457 // frame of that chunk as the sender
duke@435 458 JavaFrameAnchor* jfa = entry_frame_call_wrapper()->anchor();
duke@435 459 assert(!entry_frame_is_first(), "next Java fp must be non zero");
duke@435 460 assert(jfa->last_Java_sp() > _sp, "must be above this frame on stack");
duke@435 461 intptr_t* last_Java_sp = jfa->last_Java_sp();
duke@435 462 // Since we are walking the stack now this nested anchor is obviously walkable
duke@435 463 // even if it wasn't when it was stacked.
duke@435 464 if (!jfa->walkable()) {
duke@435 465 // Capture _last_Java_pc (if needed) and mark anchor walkable.
duke@435 466 jfa->capture_last_Java_pc(_sp);
duke@435 467 }
duke@435 468 assert(jfa->last_Java_pc() != NULL, "No captured pc!");
duke@435 469 map->clear();
duke@435 470 map->make_integer_regs_unsaved();
duke@435 471 map->shift_window(last_Java_sp, NULL);
duke@435 472 assert(map->include_argument_oops(), "should be set by clear");
duke@435 473 return frame(last_Java_sp, frame::unpatchable, jfa->last_Java_pc());
duke@435 474 }
duke@435 475
duke@435 476 frame frame::sender_for_interpreter_frame(RegisterMap *map) const {
duke@435 477 ShouldNotCallThis();
duke@435 478 return sender(map);
duke@435 479 }
duke@435 480
duke@435 481 frame frame::sender_for_compiled_frame(RegisterMap *map) const {
duke@435 482 ShouldNotCallThis();
duke@435 483 return sender(map);
duke@435 484 }
duke@435 485
duke@435 486 frame frame::sender(RegisterMap* map) const {
duke@435 487 assert(map != NULL, "map must be set");
duke@435 488
duke@435 489 assert(CodeCache::find_blob_unsafe(_pc) == _cb, "inconsistent");
duke@435 490
duke@435 491 // Default is not to follow arguments; update it accordingly below
duke@435 492 map->set_include_argument_oops(false);
duke@435 493
duke@435 494 if (is_entry_frame()) return sender_for_entry_frame(map);
duke@435 495
twisti@1919 496 intptr_t* younger_sp = sp();
twisti@1919 497 intptr_t* sp = sender_sp();
duke@435 498
duke@435 499 // Note: The version of this operation on any platform with callee-save
duke@435 500 // registers must update the register map (if not null).
duke@435 501 // In order to do this correctly, the various subtypes of
duke@435 502 // of frame (interpreted, compiled, glue, native),
duke@435 503 // must be distinguished. There is no need on SPARC for
duke@435 504 // such distinctions, because all callee-save registers are
duke@435 505 // preserved for all frames via SPARC-specific mechanisms.
duke@435 506 //
duke@435 507 // *** HOWEVER, *** if and when we make any floating-point
duke@435 508 // registers callee-saved, then we will have to copy over
duke@435 509 // the RegisterMap update logic from the Intel code.
duke@435 510
duke@435 511 // The constructor of the sender must know whether this frame is interpreted so it can set the
duke@435 512 // sender's _sp_adjustment_by_callee field. An osr adapter frame was originally
duke@435 513 // interpreted but its pc is in the code cache (for c1 -> osr_frame_return_id stub), so it must be
duke@435 514 // explicitly recognized.
duke@435 515
never@2950 516 if (is_ricochet_frame()) return sender_for_ricochet_frame(map);
never@2950 517
twisti@1919 518 bool frame_is_interpreted = is_interpreted_frame();
twisti@1919 519 if (frame_is_interpreted) {
duke@435 520 map->make_integer_regs_unsaved();
duke@435 521 map->shift_window(sp, younger_sp);
duke@435 522 } else if (_cb != NULL) {
duke@435 523 // Update the locations of implicitly saved registers to be their
duke@435 524 // addresses in the register save area.
duke@435 525 // For %o registers, the addresses of %i registers in the next younger
duke@435 526 // frame are used.
duke@435 527 map->shift_window(sp, younger_sp);
duke@435 528 if (map->update_map()) {
duke@435 529 // Tell GC to use argument oopmaps for some runtime stubs that need it.
duke@435 530 // For C1, the runtime stub might not have oop maps, so set this flag
duke@435 531 // outside of update_register_map.
duke@435 532 map->set_include_argument_oops(_cb->caller_must_gc_arguments(map->thread()));
duke@435 533 if (_cb->oop_maps() != NULL) {
duke@435 534 OopMapSet::update_register_map(this, map);
duke@435 535 }
duke@435 536 }
duke@435 537 }
twisti@1919 538 return frame(sp, younger_sp, frame_is_interpreted);
duke@435 539 }
duke@435 540
duke@435 541
duke@435 542 void frame::patch_pc(Thread* thread, address pc) {
duke@435 543 if(thread == Thread::current()) {
duke@435 544 StubRoutines::Sparc::flush_callers_register_windows_func()();
duke@435 545 }
duke@435 546 if (TracePcPatching) {
duke@435 547 // QQQ this assert is invalid (or too strong anyway) sice _pc could
duke@435 548 // be original pc and frame could have the deopt pc.
duke@435 549 // assert(_pc == *O7_addr() + pc_return_offset, "frame has wrong pc");
duke@435 550 tty->print_cr("patch_pc at address 0x%x [0x%x -> 0x%x] ", O7_addr(), _pc, pc);
duke@435 551 }
duke@435 552 _cb = CodeCache::find_blob(pc);
duke@435 553 *O7_addr() = pc - pc_return_offset;
duke@435 554 _cb = CodeCache::find_blob(_pc);
twisti@1639 555 address original_pc = nmethod::get_deopt_original_pc(this);
twisti@1639 556 if (original_pc != NULL) {
twisti@1639 557 assert(original_pc == _pc, "expected original to be stored before patching");
duke@435 558 _deopt_state = is_deoptimized;
duke@435 559 } else {
duke@435 560 _deopt_state = not_deoptimized;
duke@435 561 }
duke@435 562 }
duke@435 563
duke@435 564
duke@435 565 static bool sp_is_valid(intptr_t* old_sp, intptr_t* young_sp, intptr_t* sp) {
duke@435 566 return (((intptr_t)sp & (2*wordSize-1)) == 0 &&
duke@435 567 sp <= old_sp &&
duke@435 568 sp >= young_sp);
duke@435 569 }
duke@435 570
duke@435 571
duke@435 572 /*
duke@435 573 Find the (biased) sp that is just younger than old_sp starting at sp.
duke@435 574 If not found return NULL. Register windows are assumed to be flushed.
duke@435 575 */
duke@435 576 intptr_t* frame::next_younger_sp_or_null(intptr_t* old_sp, intptr_t* sp) {
duke@435 577
duke@435 578 intptr_t* previous_sp = NULL;
duke@435 579 intptr_t* orig_sp = sp;
duke@435 580
duke@435 581 int max_frames = (old_sp - sp) / 16; // Minimum frame size is 16
duke@435 582 int max_frame2 = max_frames;
duke@435 583 while(sp != old_sp && sp_is_valid(old_sp, orig_sp, sp)) {
duke@435 584 if (max_frames-- <= 0)
duke@435 585 // too many frames have gone by; invalid parameters given to this function
duke@435 586 break;
duke@435 587 previous_sp = sp;
duke@435 588 sp = (intptr_t*)sp[FP->sp_offset_in_saved_window()];
duke@435 589 sp = (intptr_t*)((intptr_t)sp + STACK_BIAS);
duke@435 590 }
duke@435 591
duke@435 592 return (sp == old_sp ? previous_sp : NULL);
duke@435 593 }
duke@435 594
duke@435 595 /*
duke@435 596 Determine if "sp" is a valid stack pointer. "sp" is assumed to be younger than
duke@435 597 "valid_sp". So if "sp" is valid itself then it should be possible to walk frames
duke@435 598 from "sp" to "valid_sp". The assumption is that the registers windows for the
duke@435 599 thread stack in question are flushed.
duke@435 600 */
duke@435 601 bool frame::is_valid_stack_pointer(intptr_t* valid_sp, intptr_t* sp) {
duke@435 602 return next_younger_sp_or_null(valid_sp, sp) != NULL;
duke@435 603 }
duke@435 604
duke@435 605
duke@435 606 bool frame::interpreter_frame_equals_unpacked_fp(intptr_t* fp) {
duke@435 607 assert(is_interpreted_frame(), "must be interpreter frame");
duke@435 608 return this->fp() == fp;
duke@435 609 }
duke@435 610
duke@435 611
duke@435 612 void frame::pd_gc_epilog() {
duke@435 613 if (is_interpreted_frame()) {
duke@435 614 // set constant pool cache entry for interpreter
duke@435 615 methodOop m = interpreter_frame_method();
duke@435 616
duke@435 617 *interpreter_frame_cpoolcache_addr() = m->constants()->cache();
duke@435 618 }
duke@435 619 }
duke@435 620
duke@435 621
sgoldman@542 622 bool frame::is_interpreted_frame_valid(JavaThread* thread) const {
duke@435 623 #ifdef CC_INTERP
duke@435 624 // Is there anything to do?
duke@435 625 #else
duke@435 626 assert(is_interpreted_frame(), "Not an interpreted frame");
duke@435 627 // These are reasonable sanity checks
duke@435 628 if (fp() == 0 || (intptr_t(fp()) & (2*wordSize-1)) != 0) {
duke@435 629 return false;
duke@435 630 }
duke@435 631 if (sp() == 0 || (intptr_t(sp()) & (2*wordSize-1)) != 0) {
duke@435 632 return false;
duke@435 633 }
sgoldman@542 634
duke@435 635 const intptr_t interpreter_frame_initial_sp_offset = interpreter_frame_vm_local_words;
duke@435 636 if (fp() + interpreter_frame_initial_sp_offset < sp()) {
duke@435 637 return false;
duke@435 638 }
duke@435 639 // These are hacks to keep us out of trouble.
duke@435 640 // The problem with these is that they mask other problems
duke@435 641 if (fp() <= sp()) { // this attempts to deal with unsigned comparison above
duke@435 642 return false;
duke@435 643 }
sgoldman@542 644 // do some validation of frame elements
sgoldman@542 645
sgoldman@542 646 // first the method
sgoldman@542 647
sgoldman@542 648 methodOop m = *interpreter_frame_method_addr();
sgoldman@542 649
sgoldman@542 650 // validate the method we'd find in this potential sender
sgoldman@542 651 if (!Universe::heap()->is_valid_method(m)) return false;
sgoldman@542 652
sgoldman@542 653 // stack frames shouldn't be much larger than max_stack elements
sgoldman@542 654
twisti@1861 655 if (fp() - sp() > 1024 + m->max_stack()*Interpreter::stackElementSize) {
duke@435 656 return false;
duke@435 657 }
sgoldman@542 658
sgoldman@542 659 // validate bci/bcx
sgoldman@542 660
sgoldman@542 661 intptr_t bcx = interpreter_frame_bcx();
sgoldman@542 662 if (m->validate_bci_from_bcx(bcx) < 0) {
sgoldman@542 663 return false;
sgoldman@542 664 }
sgoldman@542 665
sgoldman@542 666 // validate constantPoolCacheOop
sgoldman@542 667
sgoldman@542 668 constantPoolCacheOop cp = *interpreter_frame_cache_addr();
sgoldman@542 669
sgoldman@542 670 if (cp == NULL ||
sgoldman@542 671 !Space::is_aligned(cp) ||
sgoldman@542 672 !Universe::heap()->is_permanent((void*)cp)) return false;
sgoldman@542 673
sgoldman@542 674 // validate locals
sgoldman@542 675
sgoldman@542 676 address locals = (address) *interpreter_frame_locals_addr();
sgoldman@542 677
sgoldman@542 678 if (locals > thread->stack_base() || locals < (address) fp()) return false;
sgoldman@542 679
sgoldman@542 680 // We'd have to be pretty unlucky to be mislead at this point
duke@435 681 #endif /* CC_INTERP */
duke@435 682 return true;
duke@435 683 }
duke@435 684
duke@435 685
duke@435 686 // Windows have been flushed on entry (but not marked). Capture the pc that
duke@435 687 // is the return address to the frame that contains "sp" as its stack pointer.
duke@435 688 // This pc resides in the called of the frame corresponding to "sp".
duke@435 689 // As a side effect we mark this JavaFrameAnchor as having flushed the windows.
duke@435 690 // This side effect lets us mark stacked JavaFrameAnchors (stacked in the
duke@435 691 // call_helper) as flushed when we have flushed the windows for the most
duke@435 692 // recent (i.e. current) JavaFrameAnchor. This saves useless flushing calls
duke@435 693 // and lets us find the pc just once rather than multiple times as it did
duke@435 694 // in the bad old _post_Java_state days.
duke@435 695 //
duke@435 696 void JavaFrameAnchor::capture_last_Java_pc(intptr_t* sp) {
duke@435 697 if (last_Java_sp() != NULL && last_Java_pc() == NULL) {
duke@435 698 // try and find the sp just younger than _last_Java_sp
duke@435 699 intptr_t* _post_Java_sp = frame::next_younger_sp_or_null(last_Java_sp(), sp);
duke@435 700 // Really this should never fail otherwise VM call must have non-standard
duke@435 701 // frame linkage (bad) or stack is not properly flushed (worse).
duke@435 702 guarantee(_post_Java_sp != NULL, "bad stack!");
duke@435 703 _last_Java_pc = (address) _post_Java_sp[ I7->sp_offset_in_saved_window()] + frame::pc_return_offset;
duke@435 704
duke@435 705 }
duke@435 706 set_window_flushed();
duke@435 707 }
duke@435 708
duke@435 709 void JavaFrameAnchor::make_walkable(JavaThread* thread) {
duke@435 710 if (walkable()) return;
duke@435 711 // Eventually make an assert
duke@435 712 guarantee(Thread::current() == (Thread*)thread, "only current thread can flush its registers");
duke@435 713 // We always flush in case the profiler wants it but we won't mark
duke@435 714 // the windows as flushed unless we have a last_Java_frame
duke@435 715 intptr_t* sp = StubRoutines::Sparc::flush_callers_register_windows_func()();
duke@435 716 if (last_Java_sp() != NULL ) {
duke@435 717 capture_last_Java_pc(sp);
duke@435 718 }
duke@435 719 }
duke@435 720
duke@435 721 intptr_t* frame::entry_frame_argument_at(int offset) const {
duke@435 722 // convert offset to index to deal with tsi
duke@435 723 int index = (Interpreter::expr_offset_in_bytes(offset)/wordSize);
duke@435 724
duke@435 725 intptr_t* LSP = (intptr_t*) sp()[Lentry_args->sp_offset_in_saved_window()];
duke@435 726 return &LSP[index+1];
duke@435 727 }
duke@435 728
duke@435 729
duke@435 730 BasicType frame::interpreter_frame_result(oop* oop_result, jvalue* value_result) {
duke@435 731 assert(is_interpreted_frame(), "interpreted frame expected");
duke@435 732 methodOop method = interpreter_frame_method();
duke@435 733 BasicType type = method->result_type();
duke@435 734
duke@435 735 if (method->is_native()) {
duke@435 736 // Prior to notifying the runtime of the method_exit the possible result
duke@435 737 // value is saved to l_scratch and d_scratch.
duke@435 738
duke@435 739 #ifdef CC_INTERP
duke@435 740 interpreterState istate = get_interpreterState();
duke@435 741 intptr_t* l_scratch = (intptr_t*) &istate->_native_lresult;
duke@435 742 intptr_t* d_scratch = (intptr_t*) &istate->_native_fresult;
duke@435 743 #else /* CC_INTERP */
duke@435 744 intptr_t* l_scratch = fp() + interpreter_frame_l_scratch_fp_offset;
duke@435 745 intptr_t* d_scratch = fp() + interpreter_frame_d_scratch_fp_offset;
duke@435 746 #endif /* CC_INTERP */
duke@435 747
duke@435 748 address l_addr = (address)l_scratch;
duke@435 749 #ifdef _LP64
duke@435 750 // On 64-bit the result for 1/8/16/32-bit result types is in the other
duke@435 751 // word half
duke@435 752 l_addr += wordSize/2;
duke@435 753 #endif
duke@435 754
duke@435 755 switch (type) {
duke@435 756 case T_OBJECT:
duke@435 757 case T_ARRAY: {
duke@435 758 #ifdef CC_INTERP
duke@435 759 *oop_result = istate->_oop_temp;
duke@435 760 #else
duke@435 761 oop obj = (oop) at(interpreter_frame_oop_temp_offset);
duke@435 762 assert(obj == NULL || Universe::heap()->is_in(obj), "sanity check");
duke@435 763 *oop_result = obj;
duke@435 764 #endif // CC_INTERP
duke@435 765 break;
duke@435 766 }
duke@435 767
duke@435 768 case T_BOOLEAN : { jint* p = (jint*)l_addr; value_result->z = (jboolean)((*p) & 0x1); break; }
duke@435 769 case T_BYTE : { jint* p = (jint*)l_addr; value_result->b = (jbyte)((*p) & 0xff); break; }
duke@435 770 case T_CHAR : { jint* p = (jint*)l_addr; value_result->c = (jchar)((*p) & 0xffff); break; }
duke@435 771 case T_SHORT : { jint* p = (jint*)l_addr; value_result->s = (jshort)((*p) & 0xffff); break; }
duke@435 772 case T_INT : value_result->i = *(jint*)l_addr; break;
duke@435 773 case T_LONG : value_result->j = *(jlong*)l_scratch; break;
duke@435 774 case T_FLOAT : value_result->f = *(jfloat*)d_scratch; break;
duke@435 775 case T_DOUBLE : value_result->d = *(jdouble*)d_scratch; break;
duke@435 776 case T_VOID : /* Nothing to do */ break;
duke@435 777 default : ShouldNotReachHere();
duke@435 778 }
duke@435 779 } else {
duke@435 780 intptr_t* tos_addr = interpreter_frame_tos_address();
duke@435 781
duke@435 782 switch(type) {
duke@435 783 case T_OBJECT:
duke@435 784 case T_ARRAY: {
duke@435 785 oop obj = (oop)*tos_addr;
duke@435 786 assert(obj == NULL || Universe::heap()->is_in(obj), "sanity check");
duke@435 787 *oop_result = obj;
duke@435 788 break;
duke@435 789 }
duke@435 790 case T_BOOLEAN : { jint* p = (jint*)tos_addr; value_result->z = (jboolean)((*p) & 0x1); break; }
duke@435 791 case T_BYTE : { jint* p = (jint*)tos_addr; value_result->b = (jbyte)((*p) & 0xff); break; }
duke@435 792 case T_CHAR : { jint* p = (jint*)tos_addr; value_result->c = (jchar)((*p) & 0xffff); break; }
duke@435 793 case T_SHORT : { jint* p = (jint*)tos_addr; value_result->s = (jshort)((*p) & 0xffff); break; }
duke@435 794 case T_INT : value_result->i = *(jint*)tos_addr; break;
duke@435 795 case T_LONG : value_result->j = *(jlong*)tos_addr; break;
duke@435 796 case T_FLOAT : value_result->f = *(jfloat*)tos_addr; break;
duke@435 797 case T_DOUBLE : value_result->d = *(jdouble*)tos_addr; break;
duke@435 798 case T_VOID : /* Nothing to do */ break;
duke@435 799 default : ShouldNotReachHere();
duke@435 800 }
duke@435 801 };
duke@435 802
duke@435 803 return type;
duke@435 804 }
duke@435 805
duke@435 806 // Lesp pointer is one word lower than the top item on the stack.
duke@435 807 intptr_t* frame::interpreter_frame_tos_at(jint offset) const {
duke@435 808 int index = (Interpreter::expr_offset_in_bytes(offset)/wordSize) - 1;
duke@435 809 return &interpreter_frame_tos_address()[index];
duke@435 810 }
never@2868 811
never@2868 812
bdelsart@3451 813 #ifndef PRODUCT
never@2868 814
never@2868 815 #define DESCRIBE_FP_OFFSET(name) \
never@2897 816 values.describe(frame_no, fp() + frame::name##_offset, #name)
never@2868 817
never@2868 818 void frame::describe_pd(FrameValues& values, int frame_no) {
never@2868 819 for (int w = 0; w < frame::register_save_words; w++) {
never@2868 820 values.describe(frame_no, sp() + w, err_msg("register save area word %d", w), 1);
never@2868 821 }
never@2868 822
bdelsart@3445 823 if (is_ricochet_frame()) {
bdelsart@3445 824 MethodHandles::RicochetFrame::describe(this, values, frame_no);
bdelsart@3445 825 } else if (is_interpreted_frame()) {
never@2868 826 DESCRIBE_FP_OFFSET(interpreter_frame_d_scratch_fp);
never@2868 827 DESCRIBE_FP_OFFSET(interpreter_frame_l_scratch_fp);
never@2868 828 DESCRIBE_FP_OFFSET(interpreter_frame_padding);
never@2868 829 DESCRIBE_FP_OFFSET(interpreter_frame_oop_temp);
bdelsart@3445 830
bdelsart@3445 831 // esp, according to Lesp (e.g. not depending on bci), if seems valid
bdelsart@3445 832 intptr_t* esp = *interpreter_frame_esp_addr();
bdelsart@3445 833 if ((esp >= sp()) && (esp < fp())) {
bdelsart@3445 834 values.describe(-1, esp, "*Lesp");
bdelsart@3445 835 }
never@2868 836 }
never@2868 837
never@2868 838 if (!is_compiled_frame()) {
never@2868 839 if (frame::callee_aggregate_return_pointer_words != 0) {
never@2868 840 values.describe(frame_no, sp() + frame::callee_aggregate_return_pointer_sp_offset, "callee_aggregate_return_pointer_word");
never@2868 841 }
never@2868 842 for (int w = 0; w < frame::callee_register_argument_save_area_words; w++) {
never@2868 843 values.describe(frame_no, sp() + frame::callee_register_argument_save_area_sp_offset + w,
never@2868 844 err_msg("callee_register_argument_save_area_words %d", w));
never@2868 845 }
never@2868 846 }
never@2868 847 }
never@2868 848
never@2868 849 #endif
bdelsart@3130 850
bdelsart@3130 851 intptr_t *frame::initial_deoptimization_info() {
bdelsart@3130 852 // unused... but returns fp() to minimize changes introduced by 7087445
bdelsart@3130 853 return fp();
bdelsart@3130 854 }

mercurial