bytecodeInterpreter.hpp revision 7877:cc8363b030d5
1/*
2 * Copyright (c) 2002, 2014, Oracle and/or its affiliates. All rights reserved.
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 *
19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
20 * or visit www.oracle.com if you need additional information or have any
21 * questions.
22 *
23 */
24
25#ifndef SHARE_VM_INTERPRETER_BYTECODEINTERPRETER_HPP
26#define SHARE_VM_INTERPRETER_BYTECODEINTERPRETER_HPP
27
28#include "memory/allocation.hpp"
29#include "oops/methodData.hpp"
30#include "oops/method.hpp"
31#include "runtime/basicLock.hpp"
32#include "runtime/frame.hpp"
33#include "runtime/globals.hpp"
34#include "utilities/globalDefinitions.hpp"
35
36#ifdef CC_INTERP
37
38// JavaStack Implementation
39#define MORE_STACK(count)  \
40    (topOfStack -= ((count) * Interpreter::stackElementWords))
41
42// CVM definitions find hotspot equivalents...
43
44class InterpreterMacroAssembler;
45
46union VMJavaVal64 {
47    jlong   l;
48    jdouble d;
49    uint32_t      v[2];
50};
51
52
53typedef class BytecodeInterpreter* interpreterState;
54
55struct call_message {
56  class Method* _callee;           // method to call during call_method request
57  address _callee_entry_point;     // address to jump to for call_method request
58  int _bcp_advance;                // size of the invoke bytecode operation
59};
60
61struct osr_message {
62  address _osr_buf;                 // the osr buffer
63  address _osr_entry;               // the entry to the osr method
64};
65
66struct osr_result {
67  nmethod* nm;                      // osr nmethod
68  address return_addr;              // osr blob return address
69};
70
71// Result returned to frame manager
72union frame_manager_message {
73  call_message _to_call;            // describes callee
74  osr_message _osr;                 // describes the osr
75  osr_result _osr_result;           // result of OSR request
76};
77
78class BytecodeInterpreter : StackObj {
79friend class SharedRuntime;
80friend class AbstractInterpreterGenerator;
81friend class CppInterpreterGenerator;
82friend class InterpreterGenerator;
83friend class InterpreterMacroAssembler;
84friend class frame;
85friend class VMStructs;
86
87public:
88    enum messages {
89         no_request = 0,            // unused
90         initialize,                // Perform one time interpreter initializations (assumes all switches set)
91         // status message to C++ interpreter
92         method_entry,              // initial method entry to interpreter
93         method_resume,             // frame manager response to return_from_method request (assuming a frame to resume)
94         deopt_resume,              // returning from a native call into a deopted frame
95         deopt_resume2,             // deopt resume as a result of a PopFrame
96         got_monitors,              // frame manager response to more_monitors request
97         rethrow_exception,         // unwinding and throwing exception
98         // requests to frame manager from C++ interpreter
99         call_method,               // request for new frame from interpreter, manager responds with method_entry
100         return_from_method,        // request from interpreter to unwind, manager responds with method_continue
101         more_monitors,             // need a new monitor
102         throwing_exception,        // unwind stack and rethrow
103         popping_frame,             // unwind call and retry call
104         do_osr,                    // request this invocation be OSR's
105         early_return               // early return as commanded by jvmti
106    };
107
108private:
109    JavaThread*           _thread;        // the vm's java thread pointer
110    address               _bcp;           // instruction pointer
111    intptr_t*             _locals;        // local variable pointer
112    ConstantPoolCache*    _constants;     // constant pool cache
113    Method*               _method;        // method being executed
114    DataLayout*           _mdx;           // compiler profiling data for current bytecode
115    intptr_t*             _stack;         // expression stack
116    messages              _msg;           // frame manager <-> interpreter message
117    frame_manager_message _result;        // result to frame manager
118    interpreterState      _prev_link;     // previous interpreter state
119    oop                   _oop_temp;      // mirror for interpreted native, null otherwise
120    intptr_t*             _stack_base;    // base of expression stack
121    intptr_t*             _stack_limit;   // limit of expression stack
122    BasicObjectLock*      _monitor_base;  // base of monitors on the native stack
123
124
125public:
126  // Constructor is only used by the initialization step. All other instances are created
127  // by the frame manager.
128  BytecodeInterpreter(messages msg);
129
130//
131// Deoptimization support
132//
133static void layout_interpreterState(interpreterState to_fill,
134                                    frame* caller,
135                                    frame* interpreter_frame,
136                                    Method* method,
137                                    intptr_t* locals,
138                                    intptr_t* stack,
139                                    intptr_t* stack_base,
140                                    intptr_t* monitor_base,
141                                    intptr_t* frame_bottom,
142                                    bool top_frame);
143
144/*
145 * Generic 32-bit wide "Java slot" definition. This type occurs
146 * in operand stacks, Java locals, object fields, constant pools.
147 */
148union VMJavaVal32 {
149    jint     i;
150    jfloat   f;
151    class oopDesc*   r;
152    uint32_t raw;
153};
154
155/*
156 * Generic 64-bit Java value definition
157 */
158union VMJavaVal64 {
159    jlong   l;
160    jdouble d;
161    uint32_t      v[2];
162};
163
164/*
165 * Generic 32-bit wide "Java slot" definition. This type occurs
166 * in Java locals, object fields, constant pools, and
167 * operand stacks (as a CVMStackVal32).
168 */
169typedef union VMSlotVal32 {
170    VMJavaVal32    j;     /* For "Java" values */
171    address        a;     /* a return created by jsr or jsr_w */
172} VMSlotVal32;
173
174
175/*
176 * Generic 32-bit wide stack slot definition.
177 */
178union VMStackVal32 {
179    VMJavaVal32    j;     /* For "Java" values */
180    VMSlotVal32    s;     /* any value from a "slot" or locals[] */
181};
182
183inline JavaThread* thread() { return _thread; }
184
185inline address bcp() { return _bcp; }
186inline void set_bcp(address new_bcp) { _bcp = new_bcp; }
187
188inline intptr_t* locals() { return _locals; }
189
190inline ConstantPoolCache* constants() { return _constants; }
191inline Method* method() { return _method; }
192inline DataLayout* mdx() { return _mdx; }
193inline void set_mdx(DataLayout *new_mdx) { _mdx = new_mdx; }
194
195inline messages msg() { return _msg; }
196inline void set_msg(messages new_msg) { _msg = new_msg; }
197
198inline Method* callee() { return _result._to_call._callee; }
199inline void set_callee(Method* new_callee) { _result._to_call._callee = new_callee; }
200inline void set_callee_entry_point(address entry) { _result._to_call._callee_entry_point = entry; }
201inline void set_osr_buf(address buf) { _result._osr._osr_buf = buf; }
202inline void set_osr_entry(address entry) { _result._osr._osr_entry = entry; }
203inline int bcp_advance() { return _result._to_call._bcp_advance; }
204inline void set_bcp_advance(int count) { _result._to_call._bcp_advance = count; }
205
206inline interpreterState prev() { return _prev_link; }
207
208inline intptr_t* stack() { return _stack; }
209inline void set_stack(intptr_t* new_stack) { _stack = new_stack; }
210
211
212inline intptr_t* stack_base() { return _stack_base; }
213inline intptr_t* stack_limit() { return _stack_limit; }
214
215inline BasicObjectLock* monitor_base() { return _monitor_base; }
216
217/*
218 * 64-bit Arithmetic:
219 *
220 * The functions below follow the semantics of the
221 * ladd, land, ldiv, lmul, lor, lxor, and lrem bytecodes,
222 * respectively.
223 */
224
225static jlong VMlongAdd(jlong op1, jlong op2);
226static jlong VMlongAnd(jlong op1, jlong op2);
227static jlong VMlongDiv(jlong op1, jlong op2);
228static jlong VMlongMul(jlong op1, jlong op2);
229static jlong VMlongOr (jlong op1, jlong op2);
230static jlong VMlongSub(jlong op1, jlong op2);
231static jlong VMlongXor(jlong op1, jlong op2);
232static jlong VMlongRem(jlong op1, jlong op2);
233
234/*
235 * Shift:
236 *
237 * The functions below follow the semantics of the
238 * lushr, lshl, and lshr bytecodes, respectively.
239 */
240
241static jlong VMlongUshr(jlong op1, jint op2);
242static jlong VMlongShl (jlong op1, jint op2);
243static jlong VMlongShr (jlong op1, jint op2);
244
245/*
246 * Unary:
247 *
248 * Return the negation of "op" (-op), according to
249 * the semantics of the lneg bytecode.
250 */
251
252static jlong VMlongNeg(jlong op);
253
254/*
255 * Return the complement of "op" (~op)
256 */
257
258static jlong VMlongNot(jlong op);
259
260
261/*
262 * Comparisons to 0:
263 */
264
265static int32_t VMlongLtz(jlong op);     /* op <= 0 */
266static int32_t VMlongGez(jlong op);     /* op >= 0 */
267static int32_t VMlongEqz(jlong op);     /* op == 0 */
268
269/*
270 * Between operands:
271 */
272
273static int32_t VMlongEq(jlong op1, jlong op2);    /* op1 == op2 */
274static int32_t VMlongNe(jlong op1, jlong op2);    /* op1 != op2 */
275static int32_t VMlongGe(jlong op1, jlong op2);    /* op1 >= op2 */
276static int32_t VMlongLe(jlong op1, jlong op2);    /* op1 <= op2 */
277static int32_t VMlongLt(jlong op1, jlong op2);    /* op1 <  op2 */
278static int32_t VMlongGt(jlong op1, jlong op2);    /* op1 >  op2 */
279
280/*
281 * Comparisons (returning an jint value: 0, 1, or -1)
282 *
283 * Between operands:
284 *
285 * Compare "op1" and "op2" according to the semantics of the
286 * "lcmp" bytecode.
287 */
288
289static int32_t VMlongCompare(jlong op1, jlong op2);
290
291/*
292 * Convert int to long, according to "i2l" bytecode semantics
293 */
294static jlong VMint2Long(jint val);
295
296/*
297 * Convert long to int, according to "l2i" bytecode semantics
298 */
299static jint VMlong2Int(jlong val);
300
301/*
302 * Convert long to float, according to "l2f" bytecode semantics
303 */
304static jfloat VMlong2Float(jlong val);
305
306/*
307 * Convert long to double, according to "l2d" bytecode semantics
308 */
309static jdouble VMlong2Double(jlong val);
310
311/*
312 * Java floating-point float value manipulation.
313 *
314 * The result argument is, once again, an lvalue.
315 *
316 * Arithmetic:
317 *
318 * The functions below follow the semantics of the
319 * fadd, fsub, fmul, fdiv, and frem bytecodes,
320 * respectively.
321 */
322
323static jfloat VMfloatAdd(jfloat op1, jfloat op2);
324static jfloat VMfloatSub(jfloat op1, jfloat op2);
325static jfloat VMfloatMul(jfloat op1, jfloat op2);
326static jfloat VMfloatDiv(jfloat op1, jfloat op2);
327static jfloat VMfloatRem(jfloat op1, jfloat op2);
328
329/*
330 * Unary:
331 *
332 * Return the negation of "op" (-op), according to
333 * the semantics of the fneg bytecode.
334 */
335
336static jfloat VMfloatNeg(jfloat op);
337
338/*
339 * Comparisons (returning an int value: 0, 1, or -1)
340 *
341 * Between operands:
342 *
343 * Compare "op1" and "op2" according to the semantics of the
344 * "fcmpl" (direction is -1) or "fcmpg" (direction is 1) bytecodes.
345 */
346
347static int32_t VMfloatCompare(jfloat op1, jfloat op2,
348                              int32_t direction);
349/*
350 * Conversion:
351 */
352
353/*
354 * Convert float to double, according to "f2d" bytecode semantics
355 */
356
357static jdouble VMfloat2Double(jfloat op);
358
359/*
360 ******************************************
361 * Java double floating-point manipulation.
362 ******************************************
363 *
364 * The result argument is, once again, an lvalue.
365 *
366 * Conversions:
367 */
368
369/*
370 * Convert double to int, according to "d2i" bytecode semantics
371 */
372
373static jint VMdouble2Int(jdouble val);
374
375/*
376 * Convert double to float, according to "d2f" bytecode semantics
377 */
378
379static jfloat VMdouble2Float(jdouble val);
380
381/*
382 * Convert int to double, according to "i2d" bytecode semantics
383 */
384
385static jdouble VMint2Double(jint val);
386
387/*
388 * Arithmetic:
389 *
390 * The functions below follow the semantics of the
391 * dadd, dsub, ddiv, dmul, and drem bytecodes, respectively.
392 */
393
394static jdouble VMdoubleAdd(jdouble op1, jdouble op2);
395static jdouble VMdoubleSub(jdouble op1, jdouble op2);
396static jdouble VMdoubleDiv(jdouble op1, jdouble op2);
397static jdouble VMdoubleMul(jdouble op1, jdouble op2);
398static jdouble VMdoubleRem(jdouble op1, jdouble op2);
399
400/*
401 * Unary:
402 *
403 * Return the negation of "op" (-op), according to
404 * the semantics of the dneg bytecode.
405 */
406
407static jdouble VMdoubleNeg(jdouble op);
408
409/*
410 * Comparisons (returning an int32_t value: 0, 1, or -1)
411 *
412 * Between operands:
413 *
414 * Compare "op1" and "op2" according to the semantics of the
415 * "dcmpl" (direction is -1) or "dcmpg" (direction is 1) bytecodes.
416 */
417
418static int32_t VMdoubleCompare(jdouble op1, jdouble op2, int32_t direction);
419
420/*
421 * Copy two typeless 32-bit words from one location to another.
422 * This is semantically equivalent to:
423 *
424 * to[0] = from[0];
425 * to[1] = from[1];
426 *
427 * but this interface is provided for those platforms that could
428 * optimize this into a single 64-bit transfer.
429 */
430
431static void VMmemCopy64(uint32_t to[2], const uint32_t from[2]);
432
433
434// Arithmetic operations
435
436/*
437 * Java arithmetic methods.
438 * The functions below follow the semantics of the
439 * iadd, isub, imul, idiv, irem, iand, ior, ixor,
440 * and ineg bytecodes, respectively.
441 */
442
443static jint VMintAdd(jint op1, jint op2);
444static jint VMintSub(jint op1, jint op2);
445static jint VMintMul(jint op1, jint op2);
446static jint VMintDiv(jint op1, jint op2);
447static jint VMintRem(jint op1, jint op2);
448static jint VMintAnd(jint op1, jint op2);
449static jint VMintOr (jint op1, jint op2);
450static jint VMintXor(jint op1, jint op2);
451
452/*
453 * Shift Operation:
454 * The functions below follow the semantics of the
455 * iushr, ishl, and ishr bytecodes, respectively.
456 */
457
458static juint VMintUshr(jint op, jint num);
459static jint VMintShl (jint op, jint num);
460static jint VMintShr (jint op, jint num);
461
462/*
463 * Unary Operation:
464 *
465 * Return the negation of "op" (-op), according to
466 * the semantics of the ineg bytecode.
467 */
468
469static jint VMintNeg(jint op);
470
471/*
472 * Int Conversions:
473 */
474
475/*
476 * Convert int to float, according to "i2f" bytecode semantics
477 */
478
479static jfloat VMint2Float(jint val);
480
481/*
482 * Convert int to byte, according to "i2b" bytecode semantics
483 */
484
485static jbyte VMint2Byte(jint val);
486
487/*
488 * Convert int to char, according to "i2c" bytecode semantics
489 */
490
491static jchar VMint2Char(jint val);
492
493/*
494 * Convert int to short, according to "i2s" bytecode semantics
495 */
496
497static jshort VMint2Short(jint val);
498
499/*=========================================================================
500 * Bytecode interpreter operations
501 *=======================================================================*/
502
503static void dup(intptr_t *tos);
504static void dup2(intptr_t *tos);
505static void dup_x1(intptr_t *tos);    /* insert top word two down */
506static void dup_x2(intptr_t *tos);    /* insert top word three down  */
507static void dup2_x1(intptr_t *tos);   /* insert top 2 slots three down */
508static void dup2_x2(intptr_t *tos);   /* insert top 2 slots four down */
509static void swap(intptr_t *tos);      /* swap top two elements */
510
511// umm don't like this method modifies its object
512
513// The Interpreter used when
514static void run(interpreterState istate);
515// The interpreter used if JVMTI needs interpreter events
516static void runWithChecks(interpreterState istate);
517static void End_Of_Interpreter(void);
518
519// Inline static functions for Java Stack and Local manipulation
520
521static address stack_slot(intptr_t *tos, int offset);
522static jint stack_int(intptr_t *tos, int offset);
523static jfloat stack_float(intptr_t *tos, int offset);
524static oop stack_object(intptr_t *tos, int offset);
525static jdouble stack_double(intptr_t *tos, int offset);
526static jlong stack_long(intptr_t *tos, int offset);
527
528// only used for value types
529static void set_stack_slot(intptr_t *tos, address value, int offset);
530static void set_stack_int(intptr_t *tos, int value, int offset);
531static void set_stack_float(intptr_t *tos, jfloat value, int offset);
532static void set_stack_object(intptr_t *tos, oop value, int offset);
533
534// needs to be platform dep for the 32 bit platforms.
535static void set_stack_double(intptr_t *tos, jdouble value, int offset);
536static void set_stack_long(intptr_t *tos, jlong value, int offset);
537
538static void set_stack_double_from_addr(intptr_t *tos, address addr, int offset);
539static void set_stack_long_from_addr(intptr_t *tos, address addr, int offset);
540
541// Locals
542
543static address locals_slot(intptr_t* locals, int offset);
544static jint locals_int(intptr_t* locals, int offset);
545static jfloat locals_float(intptr_t* locals, int offset);
546static oop locals_object(intptr_t* locals, int offset);
547static jdouble locals_double(intptr_t* locals, int offset);
548static jlong locals_long(intptr_t* locals, int offset);
549
550static address locals_long_at(intptr_t* locals, int offset);
551static address locals_double_at(intptr_t* locals, int offset);
552
553static void set_locals_slot(intptr_t *locals, address value, int offset);
554static void set_locals_int(intptr_t *locals, jint value, int offset);
555static void set_locals_float(intptr_t *locals, jfloat value, int offset);
556static void set_locals_object(intptr_t *locals, oop value, int offset);
557static void set_locals_double(intptr_t *locals, jdouble value, int offset);
558static void set_locals_long(intptr_t *locals, jlong value, int offset);
559static void set_locals_double_from_addr(intptr_t *locals,
560                                   address addr, int offset);
561static void set_locals_long_from_addr(intptr_t *locals,
562                                   address addr, int offset);
563
564static void astore(intptr_t* topOfStack, int stack_offset,
565                   intptr_t* locals,     int locals_offset);
566
567// Support for dup and swap
568static void copy_stack_slot(intptr_t *tos, int from_offset, int to_offset);
569
570#ifndef PRODUCT
571static const char* C_msg(BytecodeInterpreter::messages msg);
572void print();
573#endif // PRODUCT
574
575    // Platform fields/methods
576#ifdef TARGET_ARCH_x86
577# include "bytecodeInterpreter_x86.hpp"
578#endif
579#ifdef TARGET_ARCH_sparc
580# include "bytecodeInterpreter_sparc.hpp"
581#endif
582#ifdef TARGET_ARCH_zero
583# include "bytecodeInterpreter_zero.hpp"
584#endif
585#ifdef TARGET_ARCH_arm
586# include "bytecodeInterpreter_arm.hpp"
587#endif
588#ifdef TARGET_ARCH_ppc
589# include "bytecodeInterpreter_ppc.hpp"
590#endif
591#ifdef TARGET_ARCH_aarch64
592# include "bytecodeInterpreter_aarch64.hpp"
593#endif
594
595
596}; // BytecodeInterpreter
597
598#endif // CC_INTERP
599
600#endif // SHARE_VM_INTERPRETER_BYTECODEINTERPRETER_HPP
601