src/share/vm/c1/c1_LIR.hpp

Thu, 21 Mar 2013 09:27:54 +0100

author
roland
date
Thu, 21 Mar 2013 09:27:54 +0100
changeset 4860
46f6f063b272
parent 4721
47bc9800972c
child 4947
acadb114c818
permissions
-rw-r--r--

7153771: array bound check elimination for c1
Summary: when possible optimize out array bound checks, inserting predicates when needed.
Reviewed-by: never, kvn, twisti
Contributed-by: thomaswue <thomas.wuerthinger@oracle.com>

duke@435 1 /*
twisti@3969 2 * Copyright (c) 2000, 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 #ifndef SHARE_VM_C1_C1_LIR_HPP
stefank@2314 26 #define SHARE_VM_C1_C1_LIR_HPP
stefank@2314 27
stefank@2314 28 #include "c1/c1_ValueType.hpp"
coleenp@4037 29 #include "oops/method.hpp"
stefank@2314 30
duke@435 31 class BlockBegin;
duke@435 32 class BlockList;
duke@435 33 class LIR_Assembler;
duke@435 34 class CodeEmitInfo;
duke@435 35 class CodeStub;
duke@435 36 class CodeStubList;
duke@435 37 class ArrayCopyStub;
duke@435 38 class LIR_Op;
duke@435 39 class ciType;
duke@435 40 class ValueType;
duke@435 41 class LIR_OpVisitState;
duke@435 42 class FpuStackSim;
duke@435 43
duke@435 44 //---------------------------------------------------------------------
duke@435 45 // LIR Operands
duke@435 46 // LIR_OprDesc
duke@435 47 // LIR_OprPtr
duke@435 48 // LIR_Const
duke@435 49 // LIR_Address
duke@435 50 //---------------------------------------------------------------------
duke@435 51 class LIR_OprDesc;
duke@435 52 class LIR_OprPtr;
duke@435 53 class LIR_Const;
duke@435 54 class LIR_Address;
duke@435 55 class LIR_OprVisitor;
duke@435 56
duke@435 57
duke@435 58 typedef LIR_OprDesc* LIR_Opr;
duke@435 59 typedef int RegNr;
duke@435 60
duke@435 61 define_array(LIR_OprArray, LIR_Opr)
duke@435 62 define_stack(LIR_OprList, LIR_OprArray)
duke@435 63
duke@435 64 define_array(LIR_OprRefArray, LIR_Opr*)
duke@435 65 define_stack(LIR_OprRefList, LIR_OprRefArray)
duke@435 66
duke@435 67 define_array(CodeEmitInfoArray, CodeEmitInfo*)
duke@435 68 define_stack(CodeEmitInfoList, CodeEmitInfoArray)
duke@435 69
duke@435 70 define_array(LIR_OpArray, LIR_Op*)
duke@435 71 define_stack(LIR_OpList, LIR_OpArray)
duke@435 72
duke@435 73 // define LIR_OprPtr early so LIR_OprDesc can refer to it
duke@435 74 class LIR_OprPtr: public CompilationResourceObj {
duke@435 75 public:
duke@435 76 bool is_oop_pointer() const { return (type() == T_OBJECT); }
duke@435 77 bool is_float_kind() const { BasicType t = type(); return (t == T_FLOAT) || (t == T_DOUBLE); }
duke@435 78
duke@435 79 virtual LIR_Const* as_constant() { return NULL; }
duke@435 80 virtual LIR_Address* as_address() { return NULL; }
duke@435 81 virtual BasicType type() const = 0;
duke@435 82 virtual void print_value_on(outputStream* out) const = 0;
duke@435 83 };
duke@435 84
duke@435 85
duke@435 86
duke@435 87 // LIR constants
duke@435 88 class LIR_Const: public LIR_OprPtr {
duke@435 89 private:
duke@435 90 JavaValue _value;
duke@435 91
duke@435 92 void type_check(BasicType t) const { assert(type() == t, "type check"); }
duke@435 93 void type_check(BasicType t1, BasicType t2) const { assert(type() == t1 || type() == t2, "type check"); }
roland@1732 94 void type_check(BasicType t1, BasicType t2, BasicType t3) const { assert(type() == t1 || type() == t2 || type() == t3, "type check"); }
duke@435 95
duke@435 96 public:
roland@1732 97 LIR_Const(jint i, bool is_address=false) { _value.set_type(is_address?T_ADDRESS:T_INT); _value.set_jint(i); }
duke@435 98 LIR_Const(jlong l) { _value.set_type(T_LONG); _value.set_jlong(l); }
duke@435 99 LIR_Const(jfloat f) { _value.set_type(T_FLOAT); _value.set_jfloat(f); }
duke@435 100 LIR_Const(jdouble d) { _value.set_type(T_DOUBLE); _value.set_jdouble(d); }
duke@435 101 LIR_Const(jobject o) { _value.set_type(T_OBJECT); _value.set_jobject(o); }
duke@435 102 LIR_Const(void* p) {
duke@435 103 #ifdef _LP64
duke@435 104 assert(sizeof(jlong) >= sizeof(p), "too small");;
duke@435 105 _value.set_type(T_LONG); _value.set_jlong((jlong)p);
duke@435 106 #else
duke@435 107 assert(sizeof(jint) >= sizeof(p), "too small");;
duke@435 108 _value.set_type(T_INT); _value.set_jint((jint)p);
duke@435 109 #endif
duke@435 110 }
coleenp@4037 111 LIR_Const(Metadata* m) {
coleenp@4037 112 _value.set_type(T_METADATA);
coleenp@4037 113 #ifdef _LP64
coleenp@4037 114 _value.set_jlong((jlong)m);
coleenp@4037 115 #else
coleenp@4037 116 _value.set_jint((jint)m);
coleenp@4037 117 #endif // _LP64
coleenp@4037 118 }
duke@435 119
duke@435 120 virtual BasicType type() const { return _value.get_type(); }
duke@435 121 virtual LIR_Const* as_constant() { return this; }
duke@435 122
roland@1732 123 jint as_jint() const { type_check(T_INT, T_ADDRESS); return _value.get_jint(); }
duke@435 124 jlong as_jlong() const { type_check(T_LONG ); return _value.get_jlong(); }
duke@435 125 jfloat as_jfloat() const { type_check(T_FLOAT ); return _value.get_jfloat(); }
duke@435 126 jdouble as_jdouble() const { type_check(T_DOUBLE); return _value.get_jdouble(); }
duke@435 127 jobject as_jobject() const { type_check(T_OBJECT); return _value.get_jobject(); }
duke@435 128 jint as_jint_lo() const { type_check(T_LONG ); return low(_value.get_jlong()); }
duke@435 129 jint as_jint_hi() const { type_check(T_LONG ); return high(_value.get_jlong()); }
duke@435 130
duke@435 131 #ifdef _LP64
duke@435 132 address as_pointer() const { type_check(T_LONG ); return (address)_value.get_jlong(); }
coleenp@4037 133 Metadata* as_metadata() const { type_check(T_METADATA); return (Metadata*)_value.get_jlong(); }
duke@435 134 #else
duke@435 135 address as_pointer() const { type_check(T_INT ); return (address)_value.get_jint(); }
coleenp@4037 136 Metadata* as_metadata() const { type_check(T_METADATA); return (Metadata*)_value.get_jint(); }
duke@435 137 #endif
duke@435 138
duke@435 139
roland@1732 140 jint as_jint_bits() const { type_check(T_FLOAT, T_INT, T_ADDRESS); return _value.get_jint(); }
duke@435 141 jint as_jint_lo_bits() const {
duke@435 142 if (type() == T_DOUBLE) {
duke@435 143 return low(jlong_cast(_value.get_jdouble()));
duke@435 144 } else {
duke@435 145 return as_jint_lo();
duke@435 146 }
duke@435 147 }
duke@435 148 jint as_jint_hi_bits() const {
duke@435 149 if (type() == T_DOUBLE) {
duke@435 150 return high(jlong_cast(_value.get_jdouble()));
duke@435 151 } else {
duke@435 152 return as_jint_hi();
duke@435 153 }
duke@435 154 }
never@739 155 jlong as_jlong_bits() const {
never@739 156 if (type() == T_DOUBLE) {
never@739 157 return jlong_cast(_value.get_jdouble());
never@739 158 } else {
never@739 159 return as_jlong();
never@739 160 }
never@739 161 }
duke@435 162
duke@435 163 virtual void print_value_on(outputStream* out) const PRODUCT_RETURN;
duke@435 164
duke@435 165
duke@435 166 bool is_zero_float() {
duke@435 167 jfloat f = as_jfloat();
duke@435 168 jfloat ok = 0.0f;
duke@435 169 return jint_cast(f) == jint_cast(ok);
duke@435 170 }
duke@435 171
duke@435 172 bool is_one_float() {
duke@435 173 jfloat f = as_jfloat();
duke@435 174 return !g_isnan(f) && g_isfinite(f) && f == 1.0;
duke@435 175 }
duke@435 176
duke@435 177 bool is_zero_double() {
duke@435 178 jdouble d = as_jdouble();
duke@435 179 jdouble ok = 0.0;
duke@435 180 return jlong_cast(d) == jlong_cast(ok);
duke@435 181 }
duke@435 182
duke@435 183 bool is_one_double() {
duke@435 184 jdouble d = as_jdouble();
duke@435 185 return !g_isnan(d) && g_isfinite(d) && d == 1.0;
duke@435 186 }
duke@435 187 };
duke@435 188
duke@435 189
duke@435 190 //---------------------LIR Operand descriptor------------------------------------
duke@435 191 //
duke@435 192 // The class LIR_OprDesc represents a LIR instruction operand;
duke@435 193 // it can be a register (ALU/FPU), stack location or a constant;
duke@435 194 // Constants and addresses are represented as resource area allocated
duke@435 195 // structures (see above).
duke@435 196 // Registers and stack locations are inlined into the this pointer
duke@435 197 // (see value function).
duke@435 198
duke@435 199 class LIR_OprDesc: public CompilationResourceObj {
duke@435 200 public:
duke@435 201 // value structure:
duke@435 202 // data opr-type opr-kind
duke@435 203 // +--------------+-------+-------+
duke@435 204 // [max...........|7 6 5 4|3 2 1 0]
duke@435 205 // ^
duke@435 206 // is_pointer bit
duke@435 207 //
duke@435 208 // lowest bit cleared, means it is a structure pointer
duke@435 209 // we need 4 bits to represent types
duke@435 210
duke@435 211 private:
duke@435 212 friend class LIR_OprFact;
duke@435 213
duke@435 214 // Conversion
duke@435 215 intptr_t value() const { return (intptr_t) this; }
duke@435 216
duke@435 217 bool check_value_mask(intptr_t mask, intptr_t masked_value) const {
duke@435 218 return (value() & mask) == masked_value;
duke@435 219 }
duke@435 220
duke@435 221 enum OprKind {
duke@435 222 pointer_value = 0
duke@435 223 , stack_value = 1
duke@435 224 , cpu_register = 3
duke@435 225 , fpu_register = 5
duke@435 226 , illegal_value = 7
duke@435 227 };
duke@435 228
duke@435 229 enum OprBits {
duke@435 230 pointer_bits = 1
duke@435 231 , kind_bits = 3
duke@435 232 , type_bits = 4
duke@435 233 , size_bits = 2
duke@435 234 , destroys_bits = 1
duke@435 235 , virtual_bits = 1
duke@435 236 , is_xmm_bits = 1
duke@435 237 , last_use_bits = 1
duke@435 238 , is_fpu_stack_offset_bits = 1 // used in assertion checking on x86 for FPU stack slot allocation
duke@435 239 , non_data_bits = kind_bits + type_bits + size_bits + destroys_bits + last_use_bits +
duke@435 240 is_fpu_stack_offset_bits + virtual_bits + is_xmm_bits
duke@435 241 , data_bits = BitsPerInt - non_data_bits
duke@435 242 , reg_bits = data_bits / 2 // for two registers in one value encoding
duke@435 243 };
duke@435 244
duke@435 245 enum OprShift {
duke@435 246 kind_shift = 0
duke@435 247 , type_shift = kind_shift + kind_bits
duke@435 248 , size_shift = type_shift + type_bits
duke@435 249 , destroys_shift = size_shift + size_bits
duke@435 250 , last_use_shift = destroys_shift + destroys_bits
duke@435 251 , is_fpu_stack_offset_shift = last_use_shift + last_use_bits
duke@435 252 , virtual_shift = is_fpu_stack_offset_shift + is_fpu_stack_offset_bits
duke@435 253 , is_xmm_shift = virtual_shift + virtual_bits
duke@435 254 , data_shift = is_xmm_shift + is_xmm_bits
duke@435 255 , reg1_shift = data_shift
duke@435 256 , reg2_shift = data_shift + reg_bits
duke@435 257
duke@435 258 };
duke@435 259
duke@435 260 enum OprSize {
duke@435 261 single_size = 0 << size_shift
duke@435 262 , double_size = 1 << size_shift
duke@435 263 };
duke@435 264
duke@435 265 enum OprMask {
duke@435 266 kind_mask = right_n_bits(kind_bits)
duke@435 267 , type_mask = right_n_bits(type_bits) << type_shift
duke@435 268 , size_mask = right_n_bits(size_bits) << size_shift
duke@435 269 , last_use_mask = right_n_bits(last_use_bits) << last_use_shift
duke@435 270 , is_fpu_stack_offset_mask = right_n_bits(is_fpu_stack_offset_bits) << is_fpu_stack_offset_shift
duke@435 271 , virtual_mask = right_n_bits(virtual_bits) << virtual_shift
duke@435 272 , is_xmm_mask = right_n_bits(is_xmm_bits) << is_xmm_shift
duke@435 273 , pointer_mask = right_n_bits(pointer_bits)
duke@435 274 , lower_reg_mask = right_n_bits(reg_bits)
duke@435 275 , no_type_mask = (int)(~(type_mask | last_use_mask | is_fpu_stack_offset_mask))
duke@435 276 };
duke@435 277
duke@435 278 uintptr_t data() const { return value() >> data_shift; }
duke@435 279 int lo_reg_half() const { return data() & lower_reg_mask; }
duke@435 280 int hi_reg_half() const { return (data() >> reg_bits) & lower_reg_mask; }
duke@435 281 OprKind kind_field() const { return (OprKind)(value() & kind_mask); }
duke@435 282 OprSize size_field() const { return (OprSize)(value() & size_mask); }
duke@435 283
duke@435 284 static char type_char(BasicType t);
duke@435 285
duke@435 286 public:
duke@435 287 enum {
duke@435 288 vreg_base = ConcreteRegisterImpl::number_of_registers,
duke@435 289 vreg_max = (1 << data_bits) - 1
duke@435 290 };
duke@435 291
duke@435 292 static inline LIR_Opr illegalOpr();
duke@435 293
duke@435 294 enum OprType {
duke@435 295 unknown_type = 0 << type_shift // means: not set (catch uninitialized types)
duke@435 296 , int_type = 1 << type_shift
duke@435 297 , long_type = 2 << type_shift
duke@435 298 , object_type = 3 << type_shift
never@2171 299 , address_type = 4 << type_shift
duke@435 300 , float_type = 5 << type_shift
duke@435 301 , double_type = 6 << type_shift
roland@4051 302 , metadata_type = 7 << type_shift
duke@435 303 };
duke@435 304 friend OprType as_OprType(BasicType t);
duke@435 305 friend BasicType as_BasicType(OprType t);
duke@435 306
duke@435 307 OprType type_field_valid() const { assert(is_register() || is_stack(), "should not be called otherwise"); return (OprType)(value() & type_mask); }
duke@435 308 OprType type_field() const { return is_illegal() ? unknown_type : (OprType)(value() & type_mask); }
duke@435 309
duke@435 310 static OprSize size_for(BasicType t) {
duke@435 311 switch (t) {
duke@435 312 case T_LONG:
duke@435 313 case T_DOUBLE:
duke@435 314 return double_size;
duke@435 315 break;
duke@435 316
duke@435 317 case T_FLOAT:
duke@435 318 case T_BOOLEAN:
duke@435 319 case T_CHAR:
duke@435 320 case T_BYTE:
duke@435 321 case T_SHORT:
duke@435 322 case T_INT:
never@2171 323 case T_ADDRESS:
duke@435 324 case T_OBJECT:
duke@435 325 case T_ARRAY:
roland@4051 326 case T_METADATA:
duke@435 327 return single_size;
duke@435 328 break;
duke@435 329
duke@435 330 default:
duke@435 331 ShouldNotReachHere();
never@739 332 return single_size;
duke@435 333 }
duke@435 334 }
duke@435 335
duke@435 336
duke@435 337 void validate_type() const PRODUCT_RETURN;
duke@435 338
duke@435 339 BasicType type() const {
duke@435 340 if (is_pointer()) {
duke@435 341 return pointer()->type();
duke@435 342 }
duke@435 343 return as_BasicType(type_field());
duke@435 344 }
duke@435 345
duke@435 346
duke@435 347 ValueType* value_type() const { return as_ValueType(type()); }
duke@435 348
duke@435 349 char type_char() const { return type_char((is_pointer()) ? pointer()->type() : type()); }
duke@435 350
duke@435 351 bool is_equal(LIR_Opr opr) const { return this == opr; }
duke@435 352 // checks whether types are same
duke@435 353 bool is_same_type(LIR_Opr opr) const {
duke@435 354 assert(type_field() != unknown_type &&
duke@435 355 opr->type_field() != unknown_type, "shouldn't see unknown_type");
duke@435 356 return type_field() == opr->type_field();
duke@435 357 }
duke@435 358 bool is_same_register(LIR_Opr opr) {
duke@435 359 return (is_register() && opr->is_register() &&
duke@435 360 kind_field() == opr->kind_field() &&
duke@435 361 (value() & no_type_mask) == (opr->value() & no_type_mask));
duke@435 362 }
duke@435 363
duke@435 364 bool is_pointer() const { return check_value_mask(pointer_mask, pointer_value); }
duke@435 365 bool is_illegal() const { return kind_field() == illegal_value; }
duke@435 366 bool is_valid() const { return kind_field() != illegal_value; }
duke@435 367
duke@435 368 bool is_register() const { return is_cpu_register() || is_fpu_register(); }
duke@435 369 bool is_virtual() const { return is_virtual_cpu() || is_virtual_fpu(); }
duke@435 370
duke@435 371 bool is_constant() const { return is_pointer() && pointer()->as_constant() != NULL; }
duke@435 372 bool is_address() const { return is_pointer() && pointer()->as_address() != NULL; }
duke@435 373
duke@435 374 bool is_float_kind() const { return is_pointer() ? pointer()->is_float_kind() : (kind_field() == fpu_register); }
duke@435 375 bool is_oop() const;
duke@435 376
duke@435 377 // semantic for fpu- and xmm-registers:
duke@435 378 // * is_float and is_double return true for xmm_registers
duke@435 379 // (so is_single_fpu and is_single_xmm are true)
duke@435 380 // * So you must always check for is_???_xmm prior to is_???_fpu to
duke@435 381 // distinguish between fpu- and xmm-registers
duke@435 382
duke@435 383 bool is_stack() const { validate_type(); return check_value_mask(kind_mask, stack_value); }
duke@435 384 bool is_single_stack() const { validate_type(); return check_value_mask(kind_mask | size_mask, stack_value | single_size); }
duke@435 385 bool is_double_stack() const { validate_type(); return check_value_mask(kind_mask | size_mask, stack_value | double_size); }
duke@435 386
duke@435 387 bool is_cpu_register() const { validate_type(); return check_value_mask(kind_mask, cpu_register); }
duke@435 388 bool is_virtual_cpu() const { validate_type(); return check_value_mask(kind_mask | virtual_mask, cpu_register | virtual_mask); }
duke@435 389 bool is_fixed_cpu() const { validate_type(); return check_value_mask(kind_mask | virtual_mask, cpu_register); }
duke@435 390 bool is_single_cpu() const { validate_type(); return check_value_mask(kind_mask | size_mask, cpu_register | single_size); }
duke@435 391 bool is_double_cpu() const { validate_type(); return check_value_mask(kind_mask | size_mask, cpu_register | double_size); }
duke@435 392
duke@435 393 bool is_fpu_register() const { validate_type(); return check_value_mask(kind_mask, fpu_register); }
duke@435 394 bool is_virtual_fpu() const { validate_type(); return check_value_mask(kind_mask | virtual_mask, fpu_register | virtual_mask); }
duke@435 395 bool is_fixed_fpu() const { validate_type(); return check_value_mask(kind_mask | virtual_mask, fpu_register); }
duke@435 396 bool is_single_fpu() const { validate_type(); return check_value_mask(kind_mask | size_mask, fpu_register | single_size); }
duke@435 397 bool is_double_fpu() const { validate_type(); return check_value_mask(kind_mask | size_mask, fpu_register | double_size); }
duke@435 398
duke@435 399 bool is_xmm_register() const { validate_type(); return check_value_mask(kind_mask | is_xmm_mask, fpu_register | is_xmm_mask); }
duke@435 400 bool is_single_xmm() const { validate_type(); return check_value_mask(kind_mask | size_mask | is_xmm_mask, fpu_register | single_size | is_xmm_mask); }
duke@435 401 bool is_double_xmm() const { validate_type(); return check_value_mask(kind_mask | size_mask | is_xmm_mask, fpu_register | double_size | is_xmm_mask); }
duke@435 402
duke@435 403 // fast accessor functions for special bits that do not work for pointers
duke@435 404 // (in this functions, the check for is_pointer() is omitted)
duke@435 405 bool is_single_word() const { assert(is_register() || is_stack(), "type check"); return check_value_mask(size_mask, single_size); }
duke@435 406 bool is_double_word() const { assert(is_register() || is_stack(), "type check"); return check_value_mask(size_mask, double_size); }
duke@435 407 bool is_virtual_register() const { assert(is_register(), "type check"); return check_value_mask(virtual_mask, virtual_mask); }
duke@435 408 bool is_oop_register() const { assert(is_register() || is_stack(), "type check"); return type_field_valid() == object_type; }
duke@435 409 BasicType type_register() const { assert(is_register() || is_stack(), "type check"); return as_BasicType(type_field_valid()); }
duke@435 410
duke@435 411 bool is_last_use() const { assert(is_register(), "only works for registers"); return (value() & last_use_mask) != 0; }
duke@435 412 bool is_fpu_stack_offset() const { assert(is_register(), "only works for registers"); return (value() & is_fpu_stack_offset_mask) != 0; }
duke@435 413 LIR_Opr make_last_use() { assert(is_register(), "only works for registers"); return (LIR_Opr)(value() | last_use_mask); }
duke@435 414 LIR_Opr make_fpu_stack_offset() { assert(is_register(), "only works for registers"); return (LIR_Opr)(value() | is_fpu_stack_offset_mask); }
duke@435 415
duke@435 416
duke@435 417 int single_stack_ix() const { assert(is_single_stack() && !is_virtual(), "type check"); return (int)data(); }
duke@435 418 int double_stack_ix() const { assert(is_double_stack() && !is_virtual(), "type check"); return (int)data(); }
duke@435 419 RegNr cpu_regnr() const { assert(is_single_cpu() && !is_virtual(), "type check"); return (RegNr)data(); }
duke@435 420 RegNr cpu_regnrLo() const { assert(is_double_cpu() && !is_virtual(), "type check"); return (RegNr)lo_reg_half(); }
duke@435 421 RegNr cpu_regnrHi() const { assert(is_double_cpu() && !is_virtual(), "type check"); return (RegNr)hi_reg_half(); }
duke@435 422 RegNr fpu_regnr() const { assert(is_single_fpu() && !is_virtual(), "type check"); return (RegNr)data(); }
duke@435 423 RegNr fpu_regnrLo() const { assert(is_double_fpu() && !is_virtual(), "type check"); return (RegNr)lo_reg_half(); }
duke@435 424 RegNr fpu_regnrHi() const { assert(is_double_fpu() && !is_virtual(), "type check"); return (RegNr)hi_reg_half(); }
duke@435 425 RegNr xmm_regnr() const { assert(is_single_xmm() && !is_virtual(), "type check"); return (RegNr)data(); }
duke@435 426 RegNr xmm_regnrLo() const { assert(is_double_xmm() && !is_virtual(), "type check"); return (RegNr)lo_reg_half(); }
duke@435 427 RegNr xmm_regnrHi() const { assert(is_double_xmm() && !is_virtual(), "type check"); return (RegNr)hi_reg_half(); }
duke@435 428 int vreg_number() const { assert(is_virtual(), "type check"); return (RegNr)data(); }
duke@435 429
duke@435 430 LIR_OprPtr* pointer() const { assert(is_pointer(), "type check"); return (LIR_OprPtr*)this; }
duke@435 431 LIR_Const* as_constant_ptr() const { return pointer()->as_constant(); }
duke@435 432 LIR_Address* as_address_ptr() const { return pointer()->as_address(); }
duke@435 433
duke@435 434 Register as_register() const;
duke@435 435 Register as_register_lo() const;
duke@435 436 Register as_register_hi() const;
duke@435 437
duke@435 438 Register as_pointer_register() {
duke@435 439 #ifdef _LP64
duke@435 440 if (is_double_cpu()) {
duke@435 441 assert(as_register_lo() == as_register_hi(), "should be a single register");
duke@435 442 return as_register_lo();
duke@435 443 }
duke@435 444 #endif
duke@435 445 return as_register();
duke@435 446 }
duke@435 447
never@739 448 #ifdef X86
duke@435 449 XMMRegister as_xmm_float_reg() const;
duke@435 450 XMMRegister as_xmm_double_reg() const;
duke@435 451 // for compatibility with RInfo
duke@435 452 int fpu () const { return lo_reg_half(); }
never@739 453 #endif // X86
bobv@2036 454 #if defined(SPARC) || defined(ARM) || defined(PPC)
duke@435 455 FloatRegister as_float_reg () const;
duke@435 456 FloatRegister as_double_reg () const;
duke@435 457 #endif
duke@435 458
duke@435 459 jint as_jint() const { return as_constant_ptr()->as_jint(); }
duke@435 460 jlong as_jlong() const { return as_constant_ptr()->as_jlong(); }
duke@435 461 jfloat as_jfloat() const { return as_constant_ptr()->as_jfloat(); }
duke@435 462 jdouble as_jdouble() const { return as_constant_ptr()->as_jdouble(); }
duke@435 463 jobject as_jobject() const { return as_constant_ptr()->as_jobject(); }
duke@435 464
duke@435 465 void print() const PRODUCT_RETURN;
duke@435 466 void print(outputStream* out) const PRODUCT_RETURN;
duke@435 467 };
duke@435 468
duke@435 469
duke@435 470 inline LIR_OprDesc::OprType as_OprType(BasicType type) {
duke@435 471 switch (type) {
duke@435 472 case T_INT: return LIR_OprDesc::int_type;
duke@435 473 case T_LONG: return LIR_OprDesc::long_type;
duke@435 474 case T_FLOAT: return LIR_OprDesc::float_type;
duke@435 475 case T_DOUBLE: return LIR_OprDesc::double_type;
duke@435 476 case T_OBJECT:
duke@435 477 case T_ARRAY: return LIR_OprDesc::object_type;
never@2171 478 case T_ADDRESS: return LIR_OprDesc::address_type;
roland@4051 479 case T_METADATA: return LIR_OprDesc::metadata_type;
duke@435 480 case T_ILLEGAL: // fall through
duke@435 481 default: ShouldNotReachHere(); return LIR_OprDesc::unknown_type;
duke@435 482 }
duke@435 483 }
duke@435 484
duke@435 485 inline BasicType as_BasicType(LIR_OprDesc::OprType t) {
duke@435 486 switch (t) {
duke@435 487 case LIR_OprDesc::int_type: return T_INT;
duke@435 488 case LIR_OprDesc::long_type: return T_LONG;
duke@435 489 case LIR_OprDesc::float_type: return T_FLOAT;
duke@435 490 case LIR_OprDesc::double_type: return T_DOUBLE;
duke@435 491 case LIR_OprDesc::object_type: return T_OBJECT;
never@2171 492 case LIR_OprDesc::address_type: return T_ADDRESS;
roland@4051 493 case LIR_OprDesc::metadata_type:return T_METADATA;
duke@435 494 case LIR_OprDesc::unknown_type: // fall through
duke@435 495 default: ShouldNotReachHere(); return T_ILLEGAL;
duke@435 496 }
duke@435 497 }
duke@435 498
duke@435 499
duke@435 500 // LIR_Address
duke@435 501 class LIR_Address: public LIR_OprPtr {
duke@435 502 friend class LIR_OpVisitState;
duke@435 503
duke@435 504 public:
duke@435 505 // NOTE: currently these must be the log2 of the scale factor (and
duke@435 506 // must also be equivalent to the ScaleFactor enum in
duke@435 507 // assembler_i486.hpp)
duke@435 508 enum Scale {
duke@435 509 times_1 = 0,
duke@435 510 times_2 = 1,
duke@435 511 times_4 = 2,
duke@435 512 times_8 = 3
duke@435 513 };
duke@435 514
duke@435 515 private:
duke@435 516 LIR_Opr _base;
duke@435 517 LIR_Opr _index;
duke@435 518 Scale _scale;
duke@435 519 intx _disp;
duke@435 520 BasicType _type;
duke@435 521
duke@435 522 public:
duke@435 523 LIR_Address(LIR_Opr base, LIR_Opr index, BasicType type):
duke@435 524 _base(base)
duke@435 525 , _index(index)
duke@435 526 , _scale(times_1)
duke@435 527 , _type(type)
duke@435 528 , _disp(0) { verify(); }
duke@435 529
iveresov@1927 530 LIR_Address(LIR_Opr base, intx disp, BasicType type):
duke@435 531 _base(base)
duke@435 532 , _index(LIR_OprDesc::illegalOpr())
duke@435 533 , _scale(times_1)
duke@435 534 , _type(type)
duke@435 535 , _disp(disp) { verify(); }
duke@435 536
iveresov@1927 537 LIR_Address(LIR_Opr base, BasicType type):
iveresov@1927 538 _base(base)
iveresov@1927 539 , _index(LIR_OprDesc::illegalOpr())
iveresov@1927 540 , _scale(times_1)
iveresov@1927 541 , _type(type)
iveresov@1927 542 , _disp(0) { verify(); }
iveresov@1927 543
bobv@2036 544 #if defined(X86) || defined(ARM)
iveresov@1927 545 LIR_Address(LIR_Opr base, LIR_Opr index, Scale scale, intx disp, BasicType type):
duke@435 546 _base(base)
duke@435 547 , _index(index)
duke@435 548 , _scale(scale)
duke@435 549 , _type(type)
duke@435 550 , _disp(disp) { verify(); }
bobv@2036 551 #endif // X86 || ARM
duke@435 552
duke@435 553 LIR_Opr base() const { return _base; }
duke@435 554 LIR_Opr index() const { return _index; }
duke@435 555 Scale scale() const { return _scale; }
duke@435 556 intx disp() const { return _disp; }
duke@435 557
duke@435 558 bool equals(LIR_Address* other) const { return base() == other->base() && index() == other->index() && disp() == other->disp() && scale() == other->scale(); }
duke@435 559
duke@435 560 virtual LIR_Address* as_address() { return this; }
duke@435 561 virtual BasicType type() const { return _type; }
duke@435 562 virtual void print_value_on(outputStream* out) const PRODUCT_RETURN;
duke@435 563
duke@435 564 void verify() const PRODUCT_RETURN;
duke@435 565
duke@435 566 static Scale scale(BasicType type);
duke@435 567 };
duke@435 568
duke@435 569
duke@435 570 // operand factory
duke@435 571 class LIR_OprFact: public AllStatic {
duke@435 572 public:
duke@435 573
duke@435 574 static LIR_Opr illegalOpr;
duke@435 575
never@2171 576 static LIR_Opr single_cpu(int reg) {
never@2171 577 return (LIR_Opr)(intptr_t)((reg << LIR_OprDesc::reg1_shift) |
never@2171 578 LIR_OprDesc::int_type |
never@2171 579 LIR_OprDesc::cpu_register |
never@2171 580 LIR_OprDesc::single_size);
never@2171 581 }
never@2171 582 static LIR_Opr single_cpu_oop(int reg) {
never@2171 583 return (LIR_Opr)(intptr_t)((reg << LIR_OprDesc::reg1_shift) |
never@2171 584 LIR_OprDesc::object_type |
never@2171 585 LIR_OprDesc::cpu_register |
never@2171 586 LIR_OprDesc::single_size);
never@2171 587 }
never@2171 588 static LIR_Opr single_cpu_address(int reg) {
never@2171 589 return (LIR_Opr)(intptr_t)((reg << LIR_OprDesc::reg1_shift) |
never@2171 590 LIR_OprDesc::address_type |
never@2171 591 LIR_OprDesc::cpu_register |
never@2171 592 LIR_OprDesc::single_size);
never@2171 593 }
roland@4051 594 static LIR_Opr single_cpu_metadata(int reg) {
roland@4051 595 return (LIR_Opr)(intptr_t)((reg << LIR_OprDesc::reg1_shift) |
roland@4051 596 LIR_OprDesc::metadata_type |
roland@4051 597 LIR_OprDesc::cpu_register |
roland@4051 598 LIR_OprDesc::single_size);
roland@4051 599 }
never@739 600 static LIR_Opr double_cpu(int reg1, int reg2) {
never@739 601 LP64_ONLY(assert(reg1 == reg2, "must be identical"));
never@739 602 return (LIR_Opr)(intptr_t)((reg1 << LIR_OprDesc::reg1_shift) |
never@739 603 (reg2 << LIR_OprDesc::reg2_shift) |
never@739 604 LIR_OprDesc::long_type |
never@739 605 LIR_OprDesc::cpu_register |
never@739 606 LIR_OprDesc::double_size);
never@739 607 }
duke@435 608
never@739 609 static LIR_Opr single_fpu(int reg) { return (LIR_Opr)(intptr_t)((reg << LIR_OprDesc::reg1_shift) |
never@739 610 LIR_OprDesc::float_type |
never@739 611 LIR_OprDesc::fpu_register |
never@739 612 LIR_OprDesc::single_size); }
bobv@2036 613 #if defined(ARM)
bobv@2036 614 static LIR_Opr double_fpu(int reg1, int reg2) { return (LIR_Opr)((reg1 << LIR_OprDesc::reg1_shift) | (reg2 << LIR_OprDesc::reg2_shift) | LIR_OprDesc::double_type | LIR_OprDesc::fpu_register | LIR_OprDesc::double_size); }
bobv@2036 615 static LIR_Opr single_softfp(int reg) { return (LIR_Opr)((reg << LIR_OprDesc::reg1_shift) | LIR_OprDesc::float_type | LIR_OprDesc::cpu_register | LIR_OprDesc::single_size); }
bobv@2036 616 static LIR_Opr double_softfp(int reg1, int reg2) { return (LIR_Opr)((reg1 << LIR_OprDesc::reg1_shift) | (reg2 << LIR_OprDesc::reg2_shift) | LIR_OprDesc::double_type | LIR_OprDesc::cpu_register | LIR_OprDesc::double_size); }
bobv@2036 617 #endif
duke@435 618 #ifdef SPARC
never@739 619 static LIR_Opr double_fpu(int reg1, int reg2) { return (LIR_Opr)(intptr_t)((reg1 << LIR_OprDesc::reg1_shift) |
never@739 620 (reg2 << LIR_OprDesc::reg2_shift) |
never@739 621 LIR_OprDesc::double_type |
never@739 622 LIR_OprDesc::fpu_register |
never@739 623 LIR_OprDesc::double_size); }
duke@435 624 #endif
never@739 625 #ifdef X86
never@739 626 static LIR_Opr double_fpu(int reg) { return (LIR_Opr)(intptr_t)((reg << LIR_OprDesc::reg1_shift) |
never@739 627 (reg << LIR_OprDesc::reg2_shift) |
never@739 628 LIR_OprDesc::double_type |
never@739 629 LIR_OprDesc::fpu_register |
never@739 630 LIR_OprDesc::double_size); }
never@739 631
never@739 632 static LIR_Opr single_xmm(int reg) { return (LIR_Opr)(intptr_t)((reg << LIR_OprDesc::reg1_shift) |
never@739 633 LIR_OprDesc::float_type |
never@739 634 LIR_OprDesc::fpu_register |
never@739 635 LIR_OprDesc::single_size |
never@739 636 LIR_OprDesc::is_xmm_mask); }
never@739 637 static LIR_Opr double_xmm(int reg) { return (LIR_Opr)(intptr_t)((reg << LIR_OprDesc::reg1_shift) |
never@739 638 (reg << LIR_OprDesc::reg2_shift) |
never@739 639 LIR_OprDesc::double_type |
never@739 640 LIR_OprDesc::fpu_register |
never@739 641 LIR_OprDesc::double_size |
never@739 642 LIR_OprDesc::is_xmm_mask); }
never@739 643 #endif // X86
bobv@2036 644 #ifdef PPC
bobv@2036 645 static LIR_Opr double_fpu(int reg) { return (LIR_Opr)(intptr_t)((reg << LIR_OprDesc::reg1_shift) |
bobv@2036 646 (reg << LIR_OprDesc::reg2_shift) |
bobv@2036 647 LIR_OprDesc::double_type |
bobv@2036 648 LIR_OprDesc::fpu_register |
bobv@2036 649 LIR_OprDesc::double_size); }
bobv@2036 650 static LIR_Opr single_softfp(int reg) { return (LIR_Opr)((reg << LIR_OprDesc::reg1_shift) |
bobv@2036 651 LIR_OprDesc::float_type |
bobv@2036 652 LIR_OprDesc::cpu_register |
bobv@2036 653 LIR_OprDesc::single_size); }
bobv@2036 654 static LIR_Opr double_softfp(int reg1, int reg2) { return (LIR_Opr)((reg2 << LIR_OprDesc::reg1_shift) |
bobv@2036 655 (reg1 << LIR_OprDesc::reg2_shift) |
bobv@2036 656 LIR_OprDesc::double_type |
bobv@2036 657 LIR_OprDesc::cpu_register |
bobv@2036 658 LIR_OprDesc::double_size); }
bobv@2036 659 #endif // PPC
duke@435 660
duke@435 661 static LIR_Opr virtual_register(int index, BasicType type) {
duke@435 662 LIR_Opr res;
duke@435 663 switch (type) {
duke@435 664 case T_OBJECT: // fall through
never@739 665 case T_ARRAY:
never@739 666 res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
never@739 667 LIR_OprDesc::object_type |
never@739 668 LIR_OprDesc::cpu_register |
never@739 669 LIR_OprDesc::single_size |
never@739 670 LIR_OprDesc::virtual_mask);
never@739 671 break;
never@739 672
roland@4051 673 case T_METADATA:
roland@4051 674 res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
roland@4051 675 LIR_OprDesc::metadata_type|
roland@4051 676 LIR_OprDesc::cpu_register |
roland@4051 677 LIR_OprDesc::single_size |
roland@4051 678 LIR_OprDesc::virtual_mask);
roland@4051 679 break;
roland@4051 680
never@739 681 case T_INT:
never@739 682 res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
never@739 683 LIR_OprDesc::int_type |
never@739 684 LIR_OprDesc::cpu_register |
never@739 685 LIR_OprDesc::single_size |
never@739 686 LIR_OprDesc::virtual_mask);
never@739 687 break;
never@739 688
never@2171 689 case T_ADDRESS:
never@2171 690 res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
never@2171 691 LIR_OprDesc::address_type |
never@2171 692 LIR_OprDesc::cpu_register |
never@2171 693 LIR_OprDesc::single_size |
never@2171 694 LIR_OprDesc::virtual_mask);
never@2171 695 break;
never@2171 696
never@739 697 case T_LONG:
never@739 698 res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
never@739 699 LIR_OprDesc::long_type |
never@739 700 LIR_OprDesc::cpu_register |
never@739 701 LIR_OprDesc::double_size |
never@739 702 LIR_OprDesc::virtual_mask);
never@739 703 break;
never@739 704
bobv@2036 705 #ifdef __SOFTFP__
bobv@2036 706 case T_FLOAT:
bobv@2036 707 res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
bobv@2036 708 LIR_OprDesc::float_type |
bobv@2036 709 LIR_OprDesc::cpu_register |
bobv@2036 710 LIR_OprDesc::single_size |
bobv@2036 711 LIR_OprDesc::virtual_mask);
bobv@2036 712 break;
bobv@2036 713 case T_DOUBLE:
bobv@2036 714 res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
bobv@2036 715 LIR_OprDesc::double_type |
bobv@2036 716 LIR_OprDesc::cpu_register |
bobv@2036 717 LIR_OprDesc::double_size |
bobv@2036 718 LIR_OprDesc::virtual_mask);
bobv@2036 719 break;
bobv@2036 720 #else // __SOFTFP__
never@739 721 case T_FLOAT:
never@739 722 res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
never@739 723 LIR_OprDesc::float_type |
never@739 724 LIR_OprDesc::fpu_register |
never@739 725 LIR_OprDesc::single_size |
never@739 726 LIR_OprDesc::virtual_mask);
never@739 727 break;
never@739 728
never@739 729 case
never@739 730 T_DOUBLE: res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
never@739 731 LIR_OprDesc::double_type |
never@739 732 LIR_OprDesc::fpu_register |
never@739 733 LIR_OprDesc::double_size |
never@739 734 LIR_OprDesc::virtual_mask);
never@739 735 break;
bobv@2036 736 #endif // __SOFTFP__
duke@435 737 default: ShouldNotReachHere(); res = illegalOpr;
duke@435 738 }
duke@435 739
duke@435 740 #ifdef ASSERT
duke@435 741 res->validate_type();
duke@435 742 assert(res->vreg_number() == index, "conversion check");
duke@435 743 assert(index >= LIR_OprDesc::vreg_base, "must start at vreg_base");
duke@435 744 assert(index <= (max_jint >> LIR_OprDesc::data_shift), "index is too big");
duke@435 745
duke@435 746 // old-style calculation; check if old and new method are equal
duke@435 747 LIR_OprDesc::OprType t = as_OprType(type);
bobv@2036 748 #ifdef __SOFTFP__
bobv@2036 749 LIR_Opr old_res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
bobv@2036 750 t |
bobv@2036 751 LIR_OprDesc::cpu_register |
bobv@2036 752 LIR_OprDesc::size_for(type) | LIR_OprDesc::virtual_mask);
bobv@2036 753 #else // __SOFTFP__
never@739 754 LIR_Opr old_res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) | t |
never@739 755 ((type == T_FLOAT || type == T_DOUBLE) ? LIR_OprDesc::fpu_register : LIR_OprDesc::cpu_register) |
duke@435 756 LIR_OprDesc::size_for(type) | LIR_OprDesc::virtual_mask);
duke@435 757 assert(res == old_res, "old and new method not equal");
bobv@2036 758 #endif // __SOFTFP__
bobv@2036 759 #endif // ASSERT
duke@435 760
duke@435 761 return res;
duke@435 762 }
duke@435 763
duke@435 764 // 'index' is computed by FrameMap::local_stack_pos(index); do not use other parameters as
duke@435 765 // the index is platform independent; a double stack useing indeces 2 and 3 has always
duke@435 766 // index 2.
duke@435 767 static LIR_Opr stack(int index, BasicType type) {
duke@435 768 LIR_Opr res;
duke@435 769 switch (type) {
duke@435 770 case T_OBJECT: // fall through
never@739 771 case T_ARRAY:
never@739 772 res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
never@739 773 LIR_OprDesc::object_type |
never@739 774 LIR_OprDesc::stack_value |
never@739 775 LIR_OprDesc::single_size);
never@739 776 break;
never@739 777
roland@4051 778 case T_METADATA:
roland@4051 779 res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
roland@4051 780 LIR_OprDesc::metadata_type |
roland@4051 781 LIR_OprDesc::stack_value |
roland@4051 782 LIR_OprDesc::single_size);
roland@4051 783 break;
never@739 784 case T_INT:
never@739 785 res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
never@739 786 LIR_OprDesc::int_type |
never@739 787 LIR_OprDesc::stack_value |
never@739 788 LIR_OprDesc::single_size);
never@739 789 break;
never@739 790
never@2171 791 case T_ADDRESS:
never@2171 792 res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
never@2171 793 LIR_OprDesc::address_type |
never@2171 794 LIR_OprDesc::stack_value |
never@2171 795 LIR_OprDesc::single_size);
never@2171 796 break;
never@2171 797
never@739 798 case T_LONG:
never@739 799 res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
never@739 800 LIR_OprDesc::long_type |
never@739 801 LIR_OprDesc::stack_value |
never@739 802 LIR_OprDesc::double_size);
never@739 803 break;
never@739 804
never@739 805 case T_FLOAT:
never@739 806 res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
never@739 807 LIR_OprDesc::float_type |
never@739 808 LIR_OprDesc::stack_value |
never@739 809 LIR_OprDesc::single_size);
never@739 810 break;
never@739 811 case T_DOUBLE:
never@739 812 res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
never@739 813 LIR_OprDesc::double_type |
never@739 814 LIR_OprDesc::stack_value |
never@739 815 LIR_OprDesc::double_size);
never@739 816 break;
duke@435 817
duke@435 818 default: ShouldNotReachHere(); res = illegalOpr;
duke@435 819 }
duke@435 820
duke@435 821 #ifdef ASSERT
duke@435 822 assert(index >= 0, "index must be positive");
duke@435 823 assert(index <= (max_jint >> LIR_OprDesc::data_shift), "index is too big");
duke@435 824
never@739 825 LIR_Opr old_res = (LIR_Opr)(intptr_t)((index << LIR_OprDesc::data_shift) |
never@739 826 LIR_OprDesc::stack_value |
never@739 827 as_OprType(type) |
never@739 828 LIR_OprDesc::size_for(type));
duke@435 829 assert(res == old_res, "old and new method not equal");
duke@435 830 #endif
duke@435 831
duke@435 832 return res;
duke@435 833 }
duke@435 834
duke@435 835 static LIR_Opr intConst(jint i) { return (LIR_Opr)(new LIR_Const(i)); }
duke@435 836 static LIR_Opr longConst(jlong l) { return (LIR_Opr)(new LIR_Const(l)); }
duke@435 837 static LIR_Opr floatConst(jfloat f) { return (LIR_Opr)(new LIR_Const(f)); }
duke@435 838 static LIR_Opr doubleConst(jdouble d) { return (LIR_Opr)(new LIR_Const(d)); }
duke@435 839 static LIR_Opr oopConst(jobject o) { return (LIR_Opr)(new LIR_Const(o)); }
duke@435 840 static LIR_Opr address(LIR_Address* a) { return (LIR_Opr)a; }
duke@435 841 static LIR_Opr intptrConst(void* p) { return (LIR_Opr)(new LIR_Const(p)); }
duke@435 842 static LIR_Opr intptrConst(intptr_t v) { return (LIR_Opr)(new LIR_Const((void*)v)); }
duke@435 843 static LIR_Opr illegal() { return (LIR_Opr)-1; }
roland@1732 844 static LIR_Opr addressConst(jint i) { return (LIR_Opr)(new LIR_Const(i, true)); }
coleenp@4037 845 static LIR_Opr metadataConst(Metadata* m) { return (LIR_Opr)(new LIR_Const(m)); }
duke@435 846
duke@435 847 static LIR_Opr value_type(ValueType* type);
duke@435 848 static LIR_Opr dummy_value_type(ValueType* type);
duke@435 849 };
duke@435 850
duke@435 851
duke@435 852 //-------------------------------------------------------------------------------
duke@435 853 // LIR Instructions
duke@435 854 //-------------------------------------------------------------------------------
duke@435 855 //
duke@435 856 // Note:
duke@435 857 // - every instruction has a result operand
duke@435 858 // - every instruction has an CodeEmitInfo operand (can be revisited later)
duke@435 859 // - every instruction has a LIR_OpCode operand
duke@435 860 // - LIR_OpN, means an instruction that has N input operands
duke@435 861 //
duke@435 862 // class hierarchy:
duke@435 863 //
duke@435 864 class LIR_Op;
duke@435 865 class LIR_Op0;
duke@435 866 class LIR_OpLabel;
duke@435 867 class LIR_Op1;
duke@435 868 class LIR_OpBranch;
duke@435 869 class LIR_OpConvert;
duke@435 870 class LIR_OpAllocObj;
duke@435 871 class LIR_OpRoundFP;
duke@435 872 class LIR_Op2;
duke@435 873 class LIR_OpDelay;
duke@435 874 class LIR_Op3;
duke@435 875 class LIR_OpAllocArray;
duke@435 876 class LIR_OpCall;
duke@435 877 class LIR_OpJavaCall;
duke@435 878 class LIR_OpRTCall;
duke@435 879 class LIR_OpArrayCopy;
duke@435 880 class LIR_OpLock;
duke@435 881 class LIR_OpTypeCheck;
duke@435 882 class LIR_OpCompareAndSwap;
duke@435 883 class LIR_OpProfileCall;
roland@4860 884 class LIR_OpAssert;
duke@435 885
duke@435 886
duke@435 887 // LIR operation codes
duke@435 888 enum LIR_Code {
duke@435 889 lir_none
duke@435 890 , begin_op0
duke@435 891 , lir_word_align
duke@435 892 , lir_label
duke@435 893 , lir_nop
duke@435 894 , lir_backwardbranch_target
duke@435 895 , lir_std_entry
duke@435 896 , lir_osr_entry
duke@435 897 , lir_build_frame
duke@435 898 , lir_fpop_raw
duke@435 899 , lir_24bit_FPU
duke@435 900 , lir_reset_FPU
duke@435 901 , lir_breakpoint
duke@435 902 , lir_rtcall
duke@435 903 , lir_membar
duke@435 904 , lir_membar_acquire
duke@435 905 , lir_membar_release
jiangli@3592 906 , lir_membar_loadload
jiangli@3592 907 , lir_membar_storestore
jiangli@3592 908 , lir_membar_loadstore
jiangli@3592 909 , lir_membar_storeload
duke@435 910 , lir_get_thread
duke@435 911 , end_op0
duke@435 912 , begin_op1
duke@435 913 , lir_fxch
duke@435 914 , lir_fld
duke@435 915 , lir_ffree
duke@435 916 , lir_push
duke@435 917 , lir_pop
duke@435 918 , lir_null_check
duke@435 919 , lir_return
duke@435 920 , lir_leal
duke@435 921 , lir_neg
duke@435 922 , lir_branch
duke@435 923 , lir_cond_float_branch
duke@435 924 , lir_move
duke@435 925 , lir_prefetchr
duke@435 926 , lir_prefetchw
duke@435 927 , lir_convert
duke@435 928 , lir_alloc_object
duke@435 929 , lir_monaddr
duke@435 930 , lir_roundfp
duke@435 931 , lir_safepoint
iveresov@2138 932 , lir_pack64
iveresov@2138 933 , lir_unpack64
never@1813 934 , lir_unwind
duke@435 935 , end_op1
duke@435 936 , begin_op2
duke@435 937 , lir_cmp
duke@435 938 , lir_cmp_l2i
duke@435 939 , lir_ucmp_fd2i
duke@435 940 , lir_cmp_fd2i
duke@435 941 , lir_cmove
duke@435 942 , lir_add
duke@435 943 , lir_sub
duke@435 944 , lir_mul
duke@435 945 , lir_mul_strictfp
duke@435 946 , lir_div
duke@435 947 , lir_div_strictfp
duke@435 948 , lir_rem
duke@435 949 , lir_sqrt
duke@435 950 , lir_abs
duke@435 951 , lir_sin
duke@435 952 , lir_cos
duke@435 953 , lir_tan
duke@435 954 , lir_log
duke@435 955 , lir_log10
roland@3787 956 , lir_exp
roland@3787 957 , lir_pow
duke@435 958 , lir_logic_and
duke@435 959 , lir_logic_or
duke@435 960 , lir_logic_xor
duke@435 961 , lir_shl
duke@435 962 , lir_shr
duke@435 963 , lir_ushr
duke@435 964 , lir_alloc_array
duke@435 965 , lir_throw
duke@435 966 , lir_compare_to
roland@4106 967 , lir_xadd
roland@4106 968 , lir_xchg
duke@435 969 , end_op2
duke@435 970 , begin_op3
duke@435 971 , lir_idiv
duke@435 972 , lir_irem
duke@435 973 , end_op3
duke@435 974 , begin_opJavaCall
duke@435 975 , lir_static_call
duke@435 976 , lir_optvirtual_call
duke@435 977 , lir_icvirtual_call
duke@435 978 , lir_virtual_call
twisti@1730 979 , lir_dynamic_call
duke@435 980 , end_opJavaCall
duke@435 981 , begin_opArrayCopy
duke@435 982 , lir_arraycopy
duke@435 983 , end_opArrayCopy
duke@435 984 , begin_opLock
duke@435 985 , lir_lock
duke@435 986 , lir_unlock
duke@435 987 , end_opLock
duke@435 988 , begin_delay_slot
duke@435 989 , lir_delay_slot
duke@435 990 , end_delay_slot
duke@435 991 , begin_opTypeCheck
duke@435 992 , lir_instanceof
duke@435 993 , lir_checkcast
duke@435 994 , lir_store_check
duke@435 995 , end_opTypeCheck
duke@435 996 , begin_opCompareAndSwap
duke@435 997 , lir_cas_long
duke@435 998 , lir_cas_obj
duke@435 999 , lir_cas_int
duke@435 1000 , end_opCompareAndSwap
duke@435 1001 , begin_opMDOProfile
duke@435 1002 , lir_profile_call
duke@435 1003 , end_opMDOProfile
roland@4860 1004 , begin_opAssert
roland@4860 1005 , lir_assert
roland@4860 1006 , end_opAssert
duke@435 1007 };
duke@435 1008
duke@435 1009
duke@435 1010 enum LIR_Condition {
duke@435 1011 lir_cond_equal
duke@435 1012 , lir_cond_notEqual
duke@435 1013 , lir_cond_less
duke@435 1014 , lir_cond_lessEqual
duke@435 1015 , lir_cond_greaterEqual
duke@435 1016 , lir_cond_greater
duke@435 1017 , lir_cond_belowEqual
duke@435 1018 , lir_cond_aboveEqual
duke@435 1019 , lir_cond_always
duke@435 1020 , lir_cond_unknown = -1
duke@435 1021 };
duke@435 1022
duke@435 1023
duke@435 1024 enum LIR_PatchCode {
duke@435 1025 lir_patch_none,
duke@435 1026 lir_patch_low,
duke@435 1027 lir_patch_high,
duke@435 1028 lir_patch_normal
duke@435 1029 };
duke@435 1030
duke@435 1031
duke@435 1032 enum LIR_MoveKind {
duke@435 1033 lir_move_normal,
duke@435 1034 lir_move_volatile,
duke@435 1035 lir_move_unaligned,
iveresov@2344 1036 lir_move_wide,
duke@435 1037 lir_move_max_flag
duke@435 1038 };
duke@435 1039
duke@435 1040
duke@435 1041 // --------------------------------------------------
duke@435 1042 // LIR_Op
duke@435 1043 // --------------------------------------------------
duke@435 1044 class LIR_Op: public CompilationResourceObj {
duke@435 1045 friend class LIR_OpVisitState;
duke@435 1046
duke@435 1047 #ifdef ASSERT
duke@435 1048 private:
duke@435 1049 const char * _file;
duke@435 1050 int _line;
duke@435 1051 #endif
duke@435 1052
duke@435 1053 protected:
duke@435 1054 LIR_Opr _result;
duke@435 1055 unsigned short _code;
duke@435 1056 unsigned short _flags;
duke@435 1057 CodeEmitInfo* _info;
duke@435 1058 int _id; // value id for register allocation
duke@435 1059 int _fpu_pop_count;
duke@435 1060 Instruction* _source; // for debugging
duke@435 1061
duke@435 1062 static void print_condition(outputStream* out, LIR_Condition cond) PRODUCT_RETURN;
duke@435 1063
duke@435 1064 protected:
duke@435 1065 static bool is_in_range(LIR_Code test, LIR_Code start, LIR_Code end) { return start < test && test < end; }
duke@435 1066
duke@435 1067 public:
duke@435 1068 LIR_Op()
duke@435 1069 : _result(LIR_OprFact::illegalOpr)
duke@435 1070 , _code(lir_none)
duke@435 1071 , _flags(0)
duke@435 1072 , _info(NULL)
duke@435 1073 #ifdef ASSERT
duke@435 1074 , _file(NULL)
duke@435 1075 , _line(0)
duke@435 1076 #endif
duke@435 1077 , _fpu_pop_count(0)
duke@435 1078 , _source(NULL)
duke@435 1079 , _id(-1) {}
duke@435 1080
duke@435 1081 LIR_Op(LIR_Code code, LIR_Opr result, CodeEmitInfo* info)
duke@435 1082 : _result(result)
duke@435 1083 , _code(code)
duke@435 1084 , _flags(0)
duke@435 1085 , _info(info)
duke@435 1086 #ifdef ASSERT
duke@435 1087 , _file(NULL)
duke@435 1088 , _line(0)
duke@435 1089 #endif
duke@435 1090 , _fpu_pop_count(0)
duke@435 1091 , _source(NULL)
duke@435 1092 , _id(-1) {}
duke@435 1093
duke@435 1094 CodeEmitInfo* info() const { return _info; }
duke@435 1095 LIR_Code code() const { return (LIR_Code)_code; }
duke@435 1096 LIR_Opr result_opr() const { return _result; }
duke@435 1097 void set_result_opr(LIR_Opr opr) { _result = opr; }
duke@435 1098
duke@435 1099 #ifdef ASSERT
duke@435 1100 void set_file_and_line(const char * file, int line) {
duke@435 1101 _file = file;
duke@435 1102 _line = line;
duke@435 1103 }
duke@435 1104 #endif
duke@435 1105
duke@435 1106 virtual const char * name() const PRODUCT_RETURN0;
duke@435 1107
duke@435 1108 int id() const { return _id; }
duke@435 1109 void set_id(int id) { _id = id; }
duke@435 1110
duke@435 1111 // FPU stack simulation helpers -- only used on Intel
duke@435 1112 void set_fpu_pop_count(int count) { assert(count >= 0 && count <= 1, "currently only 0 and 1 are valid"); _fpu_pop_count = count; }
duke@435 1113 int fpu_pop_count() const { return _fpu_pop_count; }
duke@435 1114 bool pop_fpu_stack() { return _fpu_pop_count > 0; }
duke@435 1115
duke@435 1116 Instruction* source() const { return _source; }
duke@435 1117 void set_source(Instruction* ins) { _source = ins; }
duke@435 1118
duke@435 1119 virtual void emit_code(LIR_Assembler* masm) = 0;
duke@435 1120 virtual void print_instr(outputStream* out) const = 0;
duke@435 1121 virtual void print_on(outputStream* st) const PRODUCT_RETURN;
duke@435 1122
duke@435 1123 virtual LIR_OpCall* as_OpCall() { return NULL; }
duke@435 1124 virtual LIR_OpJavaCall* as_OpJavaCall() { return NULL; }
duke@435 1125 virtual LIR_OpLabel* as_OpLabel() { return NULL; }
duke@435 1126 virtual LIR_OpDelay* as_OpDelay() { return NULL; }
duke@435 1127 virtual LIR_OpLock* as_OpLock() { return NULL; }
duke@435 1128 virtual LIR_OpAllocArray* as_OpAllocArray() { return NULL; }
duke@435 1129 virtual LIR_OpAllocObj* as_OpAllocObj() { return NULL; }
duke@435 1130 virtual LIR_OpRoundFP* as_OpRoundFP() { return NULL; }
duke@435 1131 virtual LIR_OpBranch* as_OpBranch() { return NULL; }
duke@435 1132 virtual LIR_OpRTCall* as_OpRTCall() { return NULL; }
duke@435 1133 virtual LIR_OpConvert* as_OpConvert() { return NULL; }
duke@435 1134 virtual LIR_Op0* as_Op0() { return NULL; }
duke@435 1135 virtual LIR_Op1* as_Op1() { return NULL; }
duke@435 1136 virtual LIR_Op2* as_Op2() { return NULL; }
duke@435 1137 virtual LIR_Op3* as_Op3() { return NULL; }
duke@435 1138 virtual LIR_OpArrayCopy* as_OpArrayCopy() { return NULL; }
duke@435 1139 virtual LIR_OpTypeCheck* as_OpTypeCheck() { return NULL; }
duke@435 1140 virtual LIR_OpCompareAndSwap* as_OpCompareAndSwap() { return NULL; }
duke@435 1141 virtual LIR_OpProfileCall* as_OpProfileCall() { return NULL; }
roland@4860 1142 virtual LIR_OpAssert* as_OpAssert() { return NULL; }
duke@435 1143
duke@435 1144 virtual void verify() const {}
duke@435 1145 };
duke@435 1146
duke@435 1147 // for calls
duke@435 1148 class LIR_OpCall: public LIR_Op {
duke@435 1149 friend class LIR_OpVisitState;
duke@435 1150
duke@435 1151 protected:
duke@435 1152 address _addr;
duke@435 1153 LIR_OprList* _arguments;
duke@435 1154 protected:
duke@435 1155 LIR_OpCall(LIR_Code code, address addr, LIR_Opr result,
duke@435 1156 LIR_OprList* arguments, CodeEmitInfo* info = NULL)
duke@435 1157 : LIR_Op(code, result, info)
duke@435 1158 , _arguments(arguments)
duke@435 1159 , _addr(addr) {}
duke@435 1160
duke@435 1161 public:
duke@435 1162 address addr() const { return _addr; }
duke@435 1163 const LIR_OprList* arguments() const { return _arguments; }
duke@435 1164 virtual LIR_OpCall* as_OpCall() { return this; }
duke@435 1165 };
duke@435 1166
duke@435 1167
duke@435 1168 // --------------------------------------------------
duke@435 1169 // LIR_OpJavaCall
duke@435 1170 // --------------------------------------------------
duke@435 1171 class LIR_OpJavaCall: public LIR_OpCall {
duke@435 1172 friend class LIR_OpVisitState;
duke@435 1173
duke@435 1174 private:
twisti@1919 1175 ciMethod* _method;
twisti@1919 1176 LIR_Opr _receiver;
twisti@1919 1177 LIR_Opr _method_handle_invoke_SP_save_opr; // Used in LIR_OpVisitState::visit to store the reference to FrameMap::method_handle_invoke_SP_save_opr.
duke@435 1178
duke@435 1179 public:
duke@435 1180 LIR_OpJavaCall(LIR_Code code, ciMethod* method,
duke@435 1181 LIR_Opr receiver, LIR_Opr result,
duke@435 1182 address addr, LIR_OprList* arguments,
duke@435 1183 CodeEmitInfo* info)
duke@435 1184 : LIR_OpCall(code, addr, result, arguments, info)
duke@435 1185 , _receiver(receiver)
twisti@1919 1186 , _method(method)
twisti@1919 1187 , _method_handle_invoke_SP_save_opr(LIR_OprFact::illegalOpr)
twisti@1919 1188 { assert(is_in_range(code, begin_opJavaCall, end_opJavaCall), "code check"); }
duke@435 1189
duke@435 1190 LIR_OpJavaCall(LIR_Code code, ciMethod* method,
duke@435 1191 LIR_Opr receiver, LIR_Opr result, intptr_t vtable_offset,
duke@435 1192 LIR_OprList* arguments, CodeEmitInfo* info)
duke@435 1193 : LIR_OpCall(code, (address)vtable_offset, result, arguments, info)
duke@435 1194 , _receiver(receiver)
twisti@1919 1195 , _method(method)
twisti@1919 1196 , _method_handle_invoke_SP_save_opr(LIR_OprFact::illegalOpr)
twisti@1919 1197 { assert(is_in_range(code, begin_opJavaCall, end_opJavaCall), "code check"); }
duke@435 1198
duke@435 1199 LIR_Opr receiver() const { return _receiver; }
duke@435 1200 ciMethod* method() const { return _method; }
duke@435 1201
twisti@1730 1202 // JSR 292 support.
twisti@1730 1203 bool is_invokedynamic() const { return code() == lir_dynamic_call; }
twisti@1730 1204 bool is_method_handle_invoke() const {
twisti@1730 1205 return
twisti@1730 1206 is_invokedynamic() // An invokedynamic is always a MethodHandle call site.
twisti@1730 1207 ||
twisti@3969 1208 method()->is_compiled_lambda_form() // Java-generated adapter
twisti@3969 1209 ||
twisti@3969 1210 method()->is_method_handle_intrinsic(); // JVM-generated MH intrinsic
twisti@1730 1211 }
twisti@1730 1212
duke@435 1213 intptr_t vtable_offset() const {
duke@435 1214 assert(_code == lir_virtual_call, "only have vtable for real vcall");
duke@435 1215 return (intptr_t) addr();
duke@435 1216 }
duke@435 1217
duke@435 1218 virtual void emit_code(LIR_Assembler* masm);
duke@435 1219 virtual LIR_OpJavaCall* as_OpJavaCall() { return this; }
duke@435 1220 virtual void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1221 };
duke@435 1222
duke@435 1223 // --------------------------------------------------
duke@435 1224 // LIR_OpLabel
duke@435 1225 // --------------------------------------------------
duke@435 1226 // Location where a branch can continue
duke@435 1227 class LIR_OpLabel: public LIR_Op {
duke@435 1228 friend class LIR_OpVisitState;
duke@435 1229
duke@435 1230 private:
duke@435 1231 Label* _label;
duke@435 1232 public:
duke@435 1233 LIR_OpLabel(Label* lbl)
duke@435 1234 : LIR_Op(lir_label, LIR_OprFact::illegalOpr, NULL)
duke@435 1235 , _label(lbl) {}
duke@435 1236 Label* label() const { return _label; }
duke@435 1237
duke@435 1238 virtual void emit_code(LIR_Assembler* masm);
duke@435 1239 virtual LIR_OpLabel* as_OpLabel() { return this; }
duke@435 1240 virtual void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1241 };
duke@435 1242
duke@435 1243 // LIR_OpArrayCopy
duke@435 1244 class LIR_OpArrayCopy: public LIR_Op {
duke@435 1245 friend class LIR_OpVisitState;
duke@435 1246
duke@435 1247 private:
duke@435 1248 ArrayCopyStub* _stub;
duke@435 1249 LIR_Opr _src;
duke@435 1250 LIR_Opr _src_pos;
duke@435 1251 LIR_Opr _dst;
duke@435 1252 LIR_Opr _dst_pos;
duke@435 1253 LIR_Opr _length;
duke@435 1254 LIR_Opr _tmp;
duke@435 1255 ciArrayKlass* _expected_type;
duke@435 1256 int _flags;
duke@435 1257
duke@435 1258 public:
duke@435 1259 enum Flags {
duke@435 1260 src_null_check = 1 << 0,
duke@435 1261 dst_null_check = 1 << 1,
duke@435 1262 src_pos_positive_check = 1 << 2,
duke@435 1263 dst_pos_positive_check = 1 << 3,
duke@435 1264 length_positive_check = 1 << 4,
duke@435 1265 src_range_check = 1 << 5,
duke@435 1266 dst_range_check = 1 << 6,
duke@435 1267 type_check = 1 << 7,
roland@2728 1268 overlapping = 1 << 8,
roland@2728 1269 unaligned = 1 << 9,
roland@2728 1270 src_objarray = 1 << 10,
roland@2728 1271 dst_objarray = 1 << 11,
roland@2728 1272 all_flags = (1 << 12) - 1
duke@435 1273 };
duke@435 1274
duke@435 1275 LIR_OpArrayCopy(LIR_Opr src, LIR_Opr src_pos, LIR_Opr dst, LIR_Opr dst_pos, LIR_Opr length, LIR_Opr tmp,
duke@435 1276 ciArrayKlass* expected_type, int flags, CodeEmitInfo* info);
duke@435 1277
duke@435 1278 LIR_Opr src() const { return _src; }
duke@435 1279 LIR_Opr src_pos() const { return _src_pos; }
duke@435 1280 LIR_Opr dst() const { return _dst; }
duke@435 1281 LIR_Opr dst_pos() const { return _dst_pos; }
duke@435 1282 LIR_Opr length() const { return _length; }
duke@435 1283 LIR_Opr tmp() const { return _tmp; }
duke@435 1284 int flags() const { return _flags; }
duke@435 1285 ciArrayKlass* expected_type() const { return _expected_type; }
duke@435 1286 ArrayCopyStub* stub() const { return _stub; }
duke@435 1287
duke@435 1288 virtual void emit_code(LIR_Assembler* masm);
duke@435 1289 virtual LIR_OpArrayCopy* as_OpArrayCopy() { return this; }
duke@435 1290 void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1291 };
duke@435 1292
duke@435 1293
duke@435 1294 // --------------------------------------------------
duke@435 1295 // LIR_Op0
duke@435 1296 // --------------------------------------------------
duke@435 1297 class LIR_Op0: public LIR_Op {
duke@435 1298 friend class LIR_OpVisitState;
duke@435 1299
duke@435 1300 public:
duke@435 1301 LIR_Op0(LIR_Code code)
duke@435 1302 : LIR_Op(code, LIR_OprFact::illegalOpr, NULL) { assert(is_in_range(code, begin_op0, end_op0), "code check"); }
duke@435 1303 LIR_Op0(LIR_Code code, LIR_Opr result, CodeEmitInfo* info = NULL)
duke@435 1304 : LIR_Op(code, result, info) { assert(is_in_range(code, begin_op0, end_op0), "code check"); }
duke@435 1305
duke@435 1306 virtual void emit_code(LIR_Assembler* masm);
duke@435 1307 virtual LIR_Op0* as_Op0() { return this; }
duke@435 1308 virtual void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1309 };
duke@435 1310
duke@435 1311
duke@435 1312 // --------------------------------------------------
duke@435 1313 // LIR_Op1
duke@435 1314 // --------------------------------------------------
duke@435 1315
duke@435 1316 class LIR_Op1: public LIR_Op {
duke@435 1317 friend class LIR_OpVisitState;
duke@435 1318
duke@435 1319 protected:
duke@435 1320 LIR_Opr _opr; // input operand
duke@435 1321 BasicType _type; // Operand types
duke@435 1322 LIR_PatchCode _patch; // only required with patchin (NEEDS_CLEANUP: do we want a special instruction for patching?)
duke@435 1323
duke@435 1324 static void print_patch_code(outputStream* out, LIR_PatchCode code);
duke@435 1325
duke@435 1326 void set_kind(LIR_MoveKind kind) {
duke@435 1327 assert(code() == lir_move, "must be");
duke@435 1328 _flags = kind;
duke@435 1329 }
duke@435 1330
duke@435 1331 public:
duke@435 1332 LIR_Op1(LIR_Code code, LIR_Opr opr, LIR_Opr result = LIR_OprFact::illegalOpr, BasicType type = T_ILLEGAL, LIR_PatchCode patch = lir_patch_none, CodeEmitInfo* info = NULL)
duke@435 1333 : LIR_Op(code, result, info)
duke@435 1334 , _opr(opr)
duke@435 1335 , _patch(patch)
duke@435 1336 , _type(type) { assert(is_in_range(code, begin_op1, end_op1), "code check"); }
duke@435 1337
duke@435 1338 LIR_Op1(LIR_Code code, LIR_Opr opr, LIR_Opr result, BasicType type, LIR_PatchCode patch, CodeEmitInfo* info, LIR_MoveKind kind)
duke@435 1339 : LIR_Op(code, result, info)
duke@435 1340 , _opr(opr)
duke@435 1341 , _patch(patch)
duke@435 1342 , _type(type) {
duke@435 1343 assert(code == lir_move, "must be");
duke@435 1344 set_kind(kind);
duke@435 1345 }
duke@435 1346
duke@435 1347 LIR_Op1(LIR_Code code, LIR_Opr opr, CodeEmitInfo* info)
duke@435 1348 : LIR_Op(code, LIR_OprFact::illegalOpr, info)
duke@435 1349 , _opr(opr)
duke@435 1350 , _patch(lir_patch_none)
duke@435 1351 , _type(T_ILLEGAL) { assert(is_in_range(code, begin_op1, end_op1), "code check"); }
duke@435 1352
duke@435 1353 LIR_Opr in_opr() const { return _opr; }
duke@435 1354 LIR_PatchCode patch_code() const { return _patch; }
duke@435 1355 BasicType type() const { return _type; }
duke@435 1356
duke@435 1357 LIR_MoveKind move_kind() const {
duke@435 1358 assert(code() == lir_move, "must be");
duke@435 1359 return (LIR_MoveKind)_flags;
duke@435 1360 }
duke@435 1361
duke@435 1362 virtual void emit_code(LIR_Assembler* masm);
duke@435 1363 virtual LIR_Op1* as_Op1() { return this; }
duke@435 1364 virtual const char * name() const PRODUCT_RETURN0;
duke@435 1365
duke@435 1366 void set_in_opr(LIR_Opr opr) { _opr = opr; }
duke@435 1367
duke@435 1368 virtual void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1369 virtual void verify() const;
duke@435 1370 };
duke@435 1371
duke@435 1372
duke@435 1373 // for runtime calls
duke@435 1374 class LIR_OpRTCall: public LIR_OpCall {
duke@435 1375 friend class LIR_OpVisitState;
duke@435 1376
duke@435 1377 private:
duke@435 1378 LIR_Opr _tmp;
duke@435 1379 public:
duke@435 1380 LIR_OpRTCall(address addr, LIR_Opr tmp,
duke@435 1381 LIR_Opr result, LIR_OprList* arguments, CodeEmitInfo* info = NULL)
duke@435 1382 : LIR_OpCall(lir_rtcall, addr, result, arguments, info)
duke@435 1383 , _tmp(tmp) {}
duke@435 1384
duke@435 1385 virtual void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1386 virtual void emit_code(LIR_Assembler* masm);
duke@435 1387 virtual LIR_OpRTCall* as_OpRTCall() { return this; }
duke@435 1388
duke@435 1389 LIR_Opr tmp() const { return _tmp; }
duke@435 1390
duke@435 1391 virtual void verify() const;
duke@435 1392 };
duke@435 1393
duke@435 1394
duke@435 1395 class LIR_OpBranch: public LIR_Op {
duke@435 1396 friend class LIR_OpVisitState;
duke@435 1397
duke@435 1398 private:
duke@435 1399 LIR_Condition _cond;
duke@435 1400 BasicType _type;
duke@435 1401 Label* _label;
duke@435 1402 BlockBegin* _block; // if this is a branch to a block, this is the block
duke@435 1403 BlockBegin* _ublock; // if this is a float-branch, this is the unorderd block
duke@435 1404 CodeStub* _stub; // if this is a branch to a stub, this is the stub
duke@435 1405
duke@435 1406 public:
iveresov@3443 1407 LIR_OpBranch(LIR_Condition cond, BasicType type, Label* lbl)
duke@435 1408 : LIR_Op(lir_branch, LIR_OprFact::illegalOpr, (CodeEmitInfo*) NULL)
duke@435 1409 , _cond(cond)
iveresov@3443 1410 , _type(type)
duke@435 1411 , _label(lbl)
duke@435 1412 , _block(NULL)
duke@435 1413 , _ublock(NULL)
duke@435 1414 , _stub(NULL) { }
duke@435 1415
duke@435 1416 LIR_OpBranch(LIR_Condition cond, BasicType type, BlockBegin* block);
duke@435 1417 LIR_OpBranch(LIR_Condition cond, BasicType type, CodeStub* stub);
duke@435 1418
duke@435 1419 // for unordered comparisons
duke@435 1420 LIR_OpBranch(LIR_Condition cond, BasicType type, BlockBegin* block, BlockBegin* ublock);
duke@435 1421
duke@435 1422 LIR_Condition cond() const { return _cond; }
duke@435 1423 BasicType type() const { return _type; }
duke@435 1424 Label* label() const { return _label; }
duke@435 1425 BlockBegin* block() const { return _block; }
duke@435 1426 BlockBegin* ublock() const { return _ublock; }
duke@435 1427 CodeStub* stub() const { return _stub; }
duke@435 1428
duke@435 1429 void change_block(BlockBegin* b);
duke@435 1430 void change_ublock(BlockBegin* b);
duke@435 1431 void negate_cond();
duke@435 1432
duke@435 1433 virtual void emit_code(LIR_Assembler* masm);
duke@435 1434 virtual LIR_OpBranch* as_OpBranch() { return this; }
duke@435 1435 virtual void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1436 };
duke@435 1437
duke@435 1438
duke@435 1439 class ConversionStub;
duke@435 1440
duke@435 1441 class LIR_OpConvert: public LIR_Op1 {
duke@435 1442 friend class LIR_OpVisitState;
duke@435 1443
duke@435 1444 private:
duke@435 1445 Bytecodes::Code _bytecode;
duke@435 1446 ConversionStub* _stub;
bobv@2036 1447 #ifdef PPC
bobv@2036 1448 LIR_Opr _tmp1;
bobv@2036 1449 LIR_Opr _tmp2;
bobv@2036 1450 #endif
duke@435 1451
duke@435 1452 public:
duke@435 1453 LIR_OpConvert(Bytecodes::Code code, LIR_Opr opr, LIR_Opr result, ConversionStub* stub)
duke@435 1454 : LIR_Op1(lir_convert, opr, result)
duke@435 1455 , _stub(stub)
bobv@2036 1456 #ifdef PPC
bobv@2036 1457 , _tmp1(LIR_OprDesc::illegalOpr())
bobv@2036 1458 , _tmp2(LIR_OprDesc::illegalOpr())
bobv@2036 1459 #endif
duke@435 1460 , _bytecode(code) {}
duke@435 1461
bobv@2036 1462 #ifdef PPC
bobv@2036 1463 LIR_OpConvert(Bytecodes::Code code, LIR_Opr opr, LIR_Opr result, ConversionStub* stub
bobv@2036 1464 ,LIR_Opr tmp1, LIR_Opr tmp2)
bobv@2036 1465 : LIR_Op1(lir_convert, opr, result)
bobv@2036 1466 , _stub(stub)
bobv@2036 1467 , _tmp1(tmp1)
bobv@2036 1468 , _tmp2(tmp2)
bobv@2036 1469 , _bytecode(code) {}
bobv@2036 1470 #endif
bobv@2036 1471
duke@435 1472 Bytecodes::Code bytecode() const { return _bytecode; }
duke@435 1473 ConversionStub* stub() const { return _stub; }
bobv@2036 1474 #ifdef PPC
bobv@2036 1475 LIR_Opr tmp1() const { return _tmp1; }
bobv@2036 1476 LIR_Opr tmp2() const { return _tmp2; }
bobv@2036 1477 #endif
duke@435 1478
duke@435 1479 virtual void emit_code(LIR_Assembler* masm);
duke@435 1480 virtual LIR_OpConvert* as_OpConvert() { return this; }
duke@435 1481 virtual void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1482
duke@435 1483 static void print_bytecode(outputStream* out, Bytecodes::Code code) PRODUCT_RETURN;
duke@435 1484 };
duke@435 1485
duke@435 1486
duke@435 1487 // LIR_OpAllocObj
duke@435 1488 class LIR_OpAllocObj : public LIR_Op1 {
duke@435 1489 friend class LIR_OpVisitState;
duke@435 1490
duke@435 1491 private:
duke@435 1492 LIR_Opr _tmp1;
duke@435 1493 LIR_Opr _tmp2;
duke@435 1494 LIR_Opr _tmp3;
duke@435 1495 LIR_Opr _tmp4;
duke@435 1496 int _hdr_size;
duke@435 1497 int _obj_size;
duke@435 1498 CodeStub* _stub;
duke@435 1499 bool _init_check;
duke@435 1500
duke@435 1501 public:
duke@435 1502 LIR_OpAllocObj(LIR_Opr klass, LIR_Opr result,
duke@435 1503 LIR_Opr t1, LIR_Opr t2, LIR_Opr t3, LIR_Opr t4,
duke@435 1504 int hdr_size, int obj_size, bool init_check, CodeStub* stub)
duke@435 1505 : LIR_Op1(lir_alloc_object, klass, result)
duke@435 1506 , _tmp1(t1)
duke@435 1507 , _tmp2(t2)
duke@435 1508 , _tmp3(t3)
duke@435 1509 , _tmp4(t4)
duke@435 1510 , _hdr_size(hdr_size)
duke@435 1511 , _obj_size(obj_size)
duke@435 1512 , _init_check(init_check)
duke@435 1513 , _stub(stub) { }
duke@435 1514
duke@435 1515 LIR_Opr klass() const { return in_opr(); }
duke@435 1516 LIR_Opr obj() const { return result_opr(); }
duke@435 1517 LIR_Opr tmp1() const { return _tmp1; }
duke@435 1518 LIR_Opr tmp2() const { return _tmp2; }
duke@435 1519 LIR_Opr tmp3() const { return _tmp3; }
duke@435 1520 LIR_Opr tmp4() const { return _tmp4; }
duke@435 1521 int header_size() const { return _hdr_size; }
duke@435 1522 int object_size() const { return _obj_size; }
duke@435 1523 bool init_check() const { return _init_check; }
duke@435 1524 CodeStub* stub() const { return _stub; }
duke@435 1525
duke@435 1526 virtual void emit_code(LIR_Assembler* masm);
duke@435 1527 virtual LIR_OpAllocObj * as_OpAllocObj () { return this; }
duke@435 1528 virtual void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1529 };
duke@435 1530
duke@435 1531
duke@435 1532 // LIR_OpRoundFP
duke@435 1533 class LIR_OpRoundFP : public LIR_Op1 {
duke@435 1534 friend class LIR_OpVisitState;
duke@435 1535
duke@435 1536 private:
duke@435 1537 LIR_Opr _tmp;
duke@435 1538
duke@435 1539 public:
duke@435 1540 LIR_OpRoundFP(LIR_Opr reg, LIR_Opr stack_loc_temp, LIR_Opr result)
duke@435 1541 : LIR_Op1(lir_roundfp, reg, result)
duke@435 1542 , _tmp(stack_loc_temp) {}
duke@435 1543
duke@435 1544 LIR_Opr tmp() const { return _tmp; }
duke@435 1545 virtual LIR_OpRoundFP* as_OpRoundFP() { return this; }
duke@435 1546 void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1547 };
duke@435 1548
duke@435 1549 // LIR_OpTypeCheck
duke@435 1550 class LIR_OpTypeCheck: public LIR_Op {
duke@435 1551 friend class LIR_OpVisitState;
duke@435 1552
duke@435 1553 private:
duke@435 1554 LIR_Opr _object;
duke@435 1555 LIR_Opr _array;
duke@435 1556 ciKlass* _klass;
duke@435 1557 LIR_Opr _tmp1;
duke@435 1558 LIR_Opr _tmp2;
duke@435 1559 LIR_Opr _tmp3;
duke@435 1560 bool _fast_check;
duke@435 1561 CodeEmitInfo* _info_for_patch;
duke@435 1562 CodeEmitInfo* _info_for_exception;
duke@435 1563 CodeStub* _stub;
duke@435 1564 ciMethod* _profiled_method;
duke@435 1565 int _profiled_bci;
iveresov@2138 1566 bool _should_profile;
duke@435 1567
duke@435 1568 public:
duke@435 1569 LIR_OpTypeCheck(LIR_Code code, LIR_Opr result, LIR_Opr object, ciKlass* klass,
duke@435 1570 LIR_Opr tmp1, LIR_Opr tmp2, LIR_Opr tmp3, bool fast_check,
iveresov@2138 1571 CodeEmitInfo* info_for_exception, CodeEmitInfo* info_for_patch, CodeStub* stub);
duke@435 1572 LIR_OpTypeCheck(LIR_Code code, LIR_Opr object, LIR_Opr array,
iveresov@2138 1573 LIR_Opr tmp1, LIR_Opr tmp2, LIR_Opr tmp3, CodeEmitInfo* info_for_exception);
duke@435 1574
duke@435 1575 LIR_Opr object() const { return _object; }
duke@435 1576 LIR_Opr array() const { assert(code() == lir_store_check, "not valid"); return _array; }
duke@435 1577 LIR_Opr tmp1() const { return _tmp1; }
duke@435 1578 LIR_Opr tmp2() const { return _tmp2; }
duke@435 1579 LIR_Opr tmp3() const { return _tmp3; }
duke@435 1580 ciKlass* klass() const { assert(code() == lir_instanceof || code() == lir_checkcast, "not valid"); return _klass; }
duke@435 1581 bool fast_check() const { assert(code() == lir_instanceof || code() == lir_checkcast, "not valid"); return _fast_check; }
duke@435 1582 CodeEmitInfo* info_for_patch() const { return _info_for_patch; }
duke@435 1583 CodeEmitInfo* info_for_exception() const { return _info_for_exception; }
duke@435 1584 CodeStub* stub() const { return _stub; }
duke@435 1585
coleenp@4037 1586 // MethodData* profiling
iveresov@2138 1587 void set_profiled_method(ciMethod *method) { _profiled_method = method; }
iveresov@2138 1588 void set_profiled_bci(int bci) { _profiled_bci = bci; }
iveresov@2138 1589 void set_should_profile(bool b) { _should_profile = b; }
iveresov@2138 1590 ciMethod* profiled_method() const { return _profiled_method; }
iveresov@2138 1591 int profiled_bci() const { return _profiled_bci; }
iveresov@2138 1592 bool should_profile() const { return _should_profile; }
duke@435 1593
duke@435 1594 virtual void emit_code(LIR_Assembler* masm);
duke@435 1595 virtual LIR_OpTypeCheck* as_OpTypeCheck() { return this; }
duke@435 1596 void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1597 };
duke@435 1598
duke@435 1599 // LIR_Op2
duke@435 1600 class LIR_Op2: public LIR_Op {
duke@435 1601 friend class LIR_OpVisitState;
duke@435 1602
duke@435 1603 int _fpu_stack_size; // for sin/cos implementation on Intel
duke@435 1604
duke@435 1605 protected:
duke@435 1606 LIR_Opr _opr1;
duke@435 1607 LIR_Opr _opr2;
duke@435 1608 BasicType _type;
roland@3787 1609 LIR_Opr _tmp1;
roland@3787 1610 LIR_Opr _tmp2;
roland@3787 1611 LIR_Opr _tmp3;
roland@3787 1612 LIR_Opr _tmp4;
roland@3787 1613 LIR_Opr _tmp5;
duke@435 1614 LIR_Condition _condition;
duke@435 1615
duke@435 1616 void verify() const;
duke@435 1617
duke@435 1618 public:
duke@435 1619 LIR_Op2(LIR_Code code, LIR_Condition condition, LIR_Opr opr1, LIR_Opr opr2, CodeEmitInfo* info = NULL)
duke@435 1620 : LIR_Op(code, LIR_OprFact::illegalOpr, info)
duke@435 1621 , _opr1(opr1)
duke@435 1622 , _opr2(opr2)
duke@435 1623 , _type(T_ILLEGAL)
duke@435 1624 , _condition(condition)
duke@435 1625 , _fpu_stack_size(0)
roland@3787 1626 , _tmp1(LIR_OprFact::illegalOpr)
roland@3787 1627 , _tmp2(LIR_OprFact::illegalOpr)
roland@3787 1628 , _tmp3(LIR_OprFact::illegalOpr)
roland@3787 1629 , _tmp4(LIR_OprFact::illegalOpr)
roland@3787 1630 , _tmp5(LIR_OprFact::illegalOpr) {
roland@4860 1631 assert(code == lir_cmp || code == lir_assert, "code check");
duke@435 1632 }
duke@435 1633
iveresov@2412 1634 LIR_Op2(LIR_Code code, LIR_Condition condition, LIR_Opr opr1, LIR_Opr opr2, LIR_Opr result, BasicType type)
duke@435 1635 : LIR_Op(code, result, NULL)
duke@435 1636 , _opr1(opr1)
duke@435 1637 , _opr2(opr2)
iveresov@2412 1638 , _type(type)
duke@435 1639 , _condition(condition)
duke@435 1640 , _fpu_stack_size(0)
roland@3787 1641 , _tmp1(LIR_OprFact::illegalOpr)
roland@3787 1642 , _tmp2(LIR_OprFact::illegalOpr)
roland@3787 1643 , _tmp3(LIR_OprFact::illegalOpr)
roland@3787 1644 , _tmp4(LIR_OprFact::illegalOpr)
roland@3787 1645 , _tmp5(LIR_OprFact::illegalOpr) {
duke@435 1646 assert(code == lir_cmove, "code check");
iveresov@2412 1647 assert(type != T_ILLEGAL, "cmove should have type");
duke@435 1648 }
duke@435 1649
duke@435 1650 LIR_Op2(LIR_Code code, LIR_Opr opr1, LIR_Opr opr2, LIR_Opr result = LIR_OprFact::illegalOpr,
duke@435 1651 CodeEmitInfo* info = NULL, BasicType type = T_ILLEGAL)
duke@435 1652 : LIR_Op(code, result, info)
duke@435 1653 , _opr1(opr1)
duke@435 1654 , _opr2(opr2)
duke@435 1655 , _type(type)
duke@435 1656 , _condition(lir_cond_unknown)
duke@435 1657 , _fpu_stack_size(0)
roland@3787 1658 , _tmp1(LIR_OprFact::illegalOpr)
roland@3787 1659 , _tmp2(LIR_OprFact::illegalOpr)
roland@3787 1660 , _tmp3(LIR_OprFact::illegalOpr)
roland@3787 1661 , _tmp4(LIR_OprFact::illegalOpr)
roland@3787 1662 , _tmp5(LIR_OprFact::illegalOpr) {
duke@435 1663 assert(code != lir_cmp && is_in_range(code, begin_op2, end_op2), "code check");
duke@435 1664 }
duke@435 1665
roland@3787 1666 LIR_Op2(LIR_Code code, LIR_Opr opr1, LIR_Opr opr2, LIR_Opr result, LIR_Opr tmp1, LIR_Opr tmp2 = LIR_OprFact::illegalOpr,
roland@3787 1667 LIR_Opr tmp3 = LIR_OprFact::illegalOpr, LIR_Opr tmp4 = LIR_OprFact::illegalOpr, LIR_Opr tmp5 = LIR_OprFact::illegalOpr)
duke@435 1668 : LIR_Op(code, result, NULL)
duke@435 1669 , _opr1(opr1)
duke@435 1670 , _opr2(opr2)
duke@435 1671 , _type(T_ILLEGAL)
duke@435 1672 , _condition(lir_cond_unknown)
duke@435 1673 , _fpu_stack_size(0)
roland@3787 1674 , _tmp1(tmp1)
roland@3787 1675 , _tmp2(tmp2)
roland@3787 1676 , _tmp3(tmp3)
roland@3787 1677 , _tmp4(tmp4)
roland@3787 1678 , _tmp5(tmp5) {
duke@435 1679 assert(code != lir_cmp && is_in_range(code, begin_op2, end_op2), "code check");
duke@435 1680 }
duke@435 1681
duke@435 1682 LIR_Opr in_opr1() const { return _opr1; }
duke@435 1683 LIR_Opr in_opr2() const { return _opr2; }
duke@435 1684 BasicType type() const { return _type; }
roland@3787 1685 LIR_Opr tmp1_opr() const { return _tmp1; }
roland@3787 1686 LIR_Opr tmp2_opr() const { return _tmp2; }
roland@3787 1687 LIR_Opr tmp3_opr() const { return _tmp3; }
roland@3787 1688 LIR_Opr tmp4_opr() const { return _tmp4; }
roland@3787 1689 LIR_Opr tmp5_opr() const { return _tmp5; }
duke@435 1690 LIR_Condition condition() const {
roland@4860 1691 assert(code() == lir_cmp || code() == lir_cmove || code() == lir_assert, "only valid for cmp and cmove and assert"); return _condition;
duke@435 1692 }
bobv@2036 1693 void set_condition(LIR_Condition condition) {
bobv@2036 1694 assert(code() == lir_cmp || code() == lir_cmove, "only valid for cmp and cmove"); _condition = condition;
bobv@2036 1695 }
duke@435 1696
duke@435 1697 void set_fpu_stack_size(int size) { _fpu_stack_size = size; }
duke@435 1698 int fpu_stack_size() const { return _fpu_stack_size; }
duke@435 1699
duke@435 1700 void set_in_opr1(LIR_Opr opr) { _opr1 = opr; }
duke@435 1701 void set_in_opr2(LIR_Opr opr) { _opr2 = opr; }
duke@435 1702
duke@435 1703 virtual void emit_code(LIR_Assembler* masm);
duke@435 1704 virtual LIR_Op2* as_Op2() { return this; }
duke@435 1705 virtual void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1706 };
duke@435 1707
duke@435 1708 class LIR_OpAllocArray : public LIR_Op {
duke@435 1709 friend class LIR_OpVisitState;
duke@435 1710
duke@435 1711 private:
duke@435 1712 LIR_Opr _klass;
duke@435 1713 LIR_Opr _len;
duke@435 1714 LIR_Opr _tmp1;
duke@435 1715 LIR_Opr _tmp2;
duke@435 1716 LIR_Opr _tmp3;
duke@435 1717 LIR_Opr _tmp4;
duke@435 1718 BasicType _type;
duke@435 1719 CodeStub* _stub;
duke@435 1720
duke@435 1721 public:
duke@435 1722 LIR_OpAllocArray(LIR_Opr klass, LIR_Opr len, LIR_Opr result, LIR_Opr t1, LIR_Opr t2, LIR_Opr t3, LIR_Opr t4, BasicType type, CodeStub* stub)
duke@435 1723 : LIR_Op(lir_alloc_array, result, NULL)
duke@435 1724 , _klass(klass)
duke@435 1725 , _len(len)
duke@435 1726 , _tmp1(t1)
duke@435 1727 , _tmp2(t2)
duke@435 1728 , _tmp3(t3)
duke@435 1729 , _tmp4(t4)
duke@435 1730 , _type(type)
duke@435 1731 , _stub(stub) {}
duke@435 1732
duke@435 1733 LIR_Opr klass() const { return _klass; }
duke@435 1734 LIR_Opr len() const { return _len; }
duke@435 1735 LIR_Opr obj() const { return result_opr(); }
duke@435 1736 LIR_Opr tmp1() const { return _tmp1; }
duke@435 1737 LIR_Opr tmp2() const { return _tmp2; }
duke@435 1738 LIR_Opr tmp3() const { return _tmp3; }
duke@435 1739 LIR_Opr tmp4() const { return _tmp4; }
duke@435 1740 BasicType type() const { return _type; }
duke@435 1741 CodeStub* stub() const { return _stub; }
duke@435 1742
duke@435 1743 virtual void emit_code(LIR_Assembler* masm);
duke@435 1744 virtual LIR_OpAllocArray * as_OpAllocArray () { return this; }
duke@435 1745 virtual void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1746 };
duke@435 1747
duke@435 1748
duke@435 1749 class LIR_Op3: public LIR_Op {
duke@435 1750 friend class LIR_OpVisitState;
duke@435 1751
duke@435 1752 private:
duke@435 1753 LIR_Opr _opr1;
duke@435 1754 LIR_Opr _opr2;
duke@435 1755 LIR_Opr _opr3;
duke@435 1756 public:
duke@435 1757 LIR_Op3(LIR_Code code, LIR_Opr opr1, LIR_Opr opr2, LIR_Opr opr3, LIR_Opr result, CodeEmitInfo* info = NULL)
duke@435 1758 : LIR_Op(code, result, info)
duke@435 1759 , _opr1(opr1)
duke@435 1760 , _opr2(opr2)
duke@435 1761 , _opr3(opr3) { assert(is_in_range(code, begin_op3, end_op3), "code check"); }
duke@435 1762 LIR_Opr in_opr1() const { return _opr1; }
duke@435 1763 LIR_Opr in_opr2() const { return _opr2; }
duke@435 1764 LIR_Opr in_opr3() const { return _opr3; }
duke@435 1765
duke@435 1766 virtual void emit_code(LIR_Assembler* masm);
duke@435 1767 virtual LIR_Op3* as_Op3() { return this; }
duke@435 1768 virtual void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1769 };
duke@435 1770
duke@435 1771
duke@435 1772 //--------------------------------
duke@435 1773 class LabelObj: public CompilationResourceObj {
duke@435 1774 private:
duke@435 1775 Label _label;
duke@435 1776 public:
duke@435 1777 LabelObj() {}
duke@435 1778 Label* label() { return &_label; }
duke@435 1779 };
duke@435 1780
duke@435 1781
duke@435 1782 class LIR_OpLock: public LIR_Op {
duke@435 1783 friend class LIR_OpVisitState;
duke@435 1784
duke@435 1785 private:
duke@435 1786 LIR_Opr _hdr;
duke@435 1787 LIR_Opr _obj;
duke@435 1788 LIR_Opr _lock;
duke@435 1789 LIR_Opr _scratch;
duke@435 1790 CodeStub* _stub;
duke@435 1791 public:
duke@435 1792 LIR_OpLock(LIR_Code code, LIR_Opr hdr, LIR_Opr obj, LIR_Opr lock, LIR_Opr scratch, CodeStub* stub, CodeEmitInfo* info)
duke@435 1793 : LIR_Op(code, LIR_OprFact::illegalOpr, info)
duke@435 1794 , _hdr(hdr)
duke@435 1795 , _obj(obj)
duke@435 1796 , _lock(lock)
duke@435 1797 , _scratch(scratch)
duke@435 1798 , _stub(stub) {}
duke@435 1799
duke@435 1800 LIR_Opr hdr_opr() const { return _hdr; }
duke@435 1801 LIR_Opr obj_opr() const { return _obj; }
duke@435 1802 LIR_Opr lock_opr() const { return _lock; }
duke@435 1803 LIR_Opr scratch_opr() const { return _scratch; }
duke@435 1804 CodeStub* stub() const { return _stub; }
duke@435 1805
duke@435 1806 virtual void emit_code(LIR_Assembler* masm);
duke@435 1807 virtual LIR_OpLock* as_OpLock() { return this; }
duke@435 1808 void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1809 };
duke@435 1810
duke@435 1811
duke@435 1812 class LIR_OpDelay: public LIR_Op {
duke@435 1813 friend class LIR_OpVisitState;
duke@435 1814
duke@435 1815 private:
duke@435 1816 LIR_Op* _op;
duke@435 1817
duke@435 1818 public:
duke@435 1819 LIR_OpDelay(LIR_Op* op, CodeEmitInfo* info):
duke@435 1820 LIR_Op(lir_delay_slot, LIR_OprFact::illegalOpr, info),
duke@435 1821 _op(op) {
duke@435 1822 assert(op->code() == lir_nop || LIRFillDelaySlots, "should be filling with nops");
duke@435 1823 }
duke@435 1824 virtual void emit_code(LIR_Assembler* masm);
duke@435 1825 virtual LIR_OpDelay* as_OpDelay() { return this; }
duke@435 1826 void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1827 LIR_Op* delay_op() const { return _op; }
duke@435 1828 CodeEmitInfo* call_info() const { return info(); }
duke@435 1829 };
duke@435 1830
roland@4860 1831 #ifdef ASSERT
roland@4860 1832 // LIR_OpAssert
roland@4860 1833 class LIR_OpAssert : public LIR_Op2 {
roland@4860 1834 friend class LIR_OpVisitState;
roland@4860 1835
roland@4860 1836 private:
roland@4860 1837 const char* _msg;
roland@4860 1838 bool _halt;
roland@4860 1839
roland@4860 1840 public:
roland@4860 1841 LIR_OpAssert(LIR_Condition condition, LIR_Opr opr1, LIR_Opr opr2, const char* msg, bool halt)
roland@4860 1842 : LIR_Op2(lir_assert, condition, opr1, opr2)
roland@4860 1843 , _halt(halt)
roland@4860 1844 , _msg(msg) {
roland@4860 1845 }
roland@4860 1846
roland@4860 1847 const char* msg() const { return _msg; }
roland@4860 1848 bool halt() const { return _halt; }
roland@4860 1849
roland@4860 1850 virtual void emit_code(LIR_Assembler* masm);
roland@4860 1851 virtual LIR_OpAssert* as_OpAssert() { return this; }
roland@4860 1852 virtual void print_instr(outputStream* out) const PRODUCT_RETURN;
roland@4860 1853 };
roland@4860 1854 #endif
duke@435 1855
duke@435 1856 // LIR_OpCompareAndSwap
duke@435 1857 class LIR_OpCompareAndSwap : public LIR_Op {
duke@435 1858 friend class LIR_OpVisitState;
duke@435 1859
duke@435 1860 private:
duke@435 1861 LIR_Opr _addr;
duke@435 1862 LIR_Opr _cmp_value;
duke@435 1863 LIR_Opr _new_value;
duke@435 1864 LIR_Opr _tmp1;
duke@435 1865 LIR_Opr _tmp2;
duke@435 1866
duke@435 1867 public:
bobv@2036 1868 LIR_OpCompareAndSwap(LIR_Code code, LIR_Opr addr, LIR_Opr cmp_value, LIR_Opr new_value,
bobv@2036 1869 LIR_Opr t1, LIR_Opr t2, LIR_Opr result)
bobv@2036 1870 : LIR_Op(code, result, NULL) // no result, no info
duke@435 1871 , _addr(addr)
duke@435 1872 , _cmp_value(cmp_value)
duke@435 1873 , _new_value(new_value)
duke@435 1874 , _tmp1(t1)
duke@435 1875 , _tmp2(t2) { }
duke@435 1876
duke@435 1877 LIR_Opr addr() const { return _addr; }
duke@435 1878 LIR_Opr cmp_value() const { return _cmp_value; }
duke@435 1879 LIR_Opr new_value() const { return _new_value; }
duke@435 1880 LIR_Opr tmp1() const { return _tmp1; }
duke@435 1881 LIR_Opr tmp2() const { return _tmp2; }
duke@435 1882
duke@435 1883 virtual void emit_code(LIR_Assembler* masm);
duke@435 1884 virtual LIR_OpCompareAndSwap * as_OpCompareAndSwap () { return this; }
duke@435 1885 virtual void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1886 };
duke@435 1887
duke@435 1888 // LIR_OpProfileCall
duke@435 1889 class LIR_OpProfileCall : public LIR_Op {
duke@435 1890 friend class LIR_OpVisitState;
duke@435 1891
duke@435 1892 private:
duke@435 1893 ciMethod* _profiled_method;
twisti@3969 1894 int _profiled_bci;
twisti@3969 1895 ciMethod* _profiled_callee;
twisti@3969 1896 LIR_Opr _mdo;
twisti@3969 1897 LIR_Opr _recv;
twisti@3969 1898 LIR_Opr _tmp1;
twisti@3969 1899 ciKlass* _known_holder;
duke@435 1900
duke@435 1901 public:
duke@435 1902 // Destroys recv
twisti@3969 1903 LIR_OpProfileCall(LIR_Code code, ciMethod* profiled_method, int profiled_bci, ciMethod* profiled_callee, LIR_Opr mdo, LIR_Opr recv, LIR_Opr t1, ciKlass* known_holder)
duke@435 1904 : LIR_Op(code, LIR_OprFact::illegalOpr, NULL) // no result, no info
duke@435 1905 , _profiled_method(profiled_method)
duke@435 1906 , _profiled_bci(profiled_bci)
twisti@3969 1907 , _profiled_callee(profiled_callee)
duke@435 1908 , _mdo(mdo)
duke@435 1909 , _recv(recv)
duke@435 1910 , _tmp1(t1)
duke@435 1911 , _known_holder(known_holder) { }
duke@435 1912
duke@435 1913 ciMethod* profiled_method() const { return _profiled_method; }
duke@435 1914 int profiled_bci() const { return _profiled_bci; }
twisti@3969 1915 ciMethod* profiled_callee() const { return _profiled_callee; }
duke@435 1916 LIR_Opr mdo() const { return _mdo; }
duke@435 1917 LIR_Opr recv() const { return _recv; }
duke@435 1918 LIR_Opr tmp1() const { return _tmp1; }
duke@435 1919 ciKlass* known_holder() const { return _known_holder; }
duke@435 1920
duke@435 1921 virtual void emit_code(LIR_Assembler* masm);
duke@435 1922 virtual LIR_OpProfileCall* as_OpProfileCall() { return this; }
duke@435 1923 virtual void print_instr(outputStream* out) const PRODUCT_RETURN;
duke@435 1924 };
duke@435 1925
duke@435 1926 class LIR_InsertionBuffer;
duke@435 1927
duke@435 1928 //--------------------------------LIR_List---------------------------------------------------
duke@435 1929 // Maintains a list of LIR instructions (one instance of LIR_List per basic block)
duke@435 1930 // The LIR instructions are appended by the LIR_List class itself;
duke@435 1931 //
duke@435 1932 // Notes:
duke@435 1933 // - all offsets are(should be) in bytes
duke@435 1934 // - local positions are specified with an offset, with offset 0 being local 0
duke@435 1935
duke@435 1936 class LIR_List: public CompilationResourceObj {
duke@435 1937 private:
duke@435 1938 LIR_OpList _operations;
duke@435 1939
duke@435 1940 Compilation* _compilation;
duke@435 1941 #ifndef PRODUCT
duke@435 1942 BlockBegin* _block;
duke@435 1943 #endif
duke@435 1944 #ifdef ASSERT
duke@435 1945 const char * _file;
duke@435 1946 int _line;
duke@435 1947 #endif
duke@435 1948
duke@435 1949 void append(LIR_Op* op) {
duke@435 1950 if (op->source() == NULL)
duke@435 1951 op->set_source(_compilation->current_instruction());
duke@435 1952 #ifndef PRODUCT
duke@435 1953 if (PrintIRWithLIR) {
duke@435 1954 _compilation->maybe_print_current_instruction();
duke@435 1955 op->print(); tty->cr();
duke@435 1956 }
duke@435 1957 #endif // PRODUCT
duke@435 1958
duke@435 1959 _operations.append(op);
duke@435 1960
duke@435 1961 #ifdef ASSERT
duke@435 1962 op->verify();
duke@435 1963 op->set_file_and_line(_file, _line);
duke@435 1964 _file = NULL;
duke@435 1965 _line = 0;
duke@435 1966 #endif
duke@435 1967 }
duke@435 1968
duke@435 1969 public:
duke@435 1970 LIR_List(Compilation* compilation, BlockBegin* block = NULL);
duke@435 1971
duke@435 1972 #ifdef ASSERT
duke@435 1973 void set_file_and_line(const char * file, int line);
duke@435 1974 #endif
duke@435 1975
duke@435 1976 //---------- accessors ---------------
duke@435 1977 LIR_OpList* instructions_list() { return &_operations; }
duke@435 1978 int length() const { return _operations.length(); }
duke@435 1979 LIR_Op* at(int i) const { return _operations.at(i); }
duke@435 1980
duke@435 1981 NOT_PRODUCT(BlockBegin* block() const { return _block; });
duke@435 1982
duke@435 1983 // insert LIR_Ops in buffer to right places in LIR_List
duke@435 1984 void append(LIR_InsertionBuffer* buffer);
duke@435 1985
duke@435 1986 //---------- mutators ---------------
duke@435 1987 void insert_before(int i, LIR_List* op_list) { _operations.insert_before(i, op_list->instructions_list()); }
duke@435 1988 void insert_before(int i, LIR_Op* op) { _operations.insert_before(i, op); }
iveresov@2138 1989 void remove_at(int i) { _operations.remove_at(i); }
duke@435 1990
duke@435 1991 //---------- printing -------------
duke@435 1992 void print_instructions() PRODUCT_RETURN;
duke@435 1993
duke@435 1994
duke@435 1995 //---------- instructions -------------
duke@435 1996 void call_opt_virtual(ciMethod* method, LIR_Opr receiver, LIR_Opr result,
duke@435 1997 address dest, LIR_OprList* arguments,
duke@435 1998 CodeEmitInfo* info) {
duke@435 1999 append(new LIR_OpJavaCall(lir_optvirtual_call, method, receiver, result, dest, arguments, info));
duke@435 2000 }
duke@435 2001 void call_static(ciMethod* method, LIR_Opr result,
duke@435 2002 address dest, LIR_OprList* arguments, CodeEmitInfo* info) {
duke@435 2003 append(new LIR_OpJavaCall(lir_static_call, method, LIR_OprFact::illegalOpr, result, dest, arguments, info));
duke@435 2004 }
duke@435 2005 void call_icvirtual(ciMethod* method, LIR_Opr receiver, LIR_Opr result,
duke@435 2006 address dest, LIR_OprList* arguments, CodeEmitInfo* info) {
duke@435 2007 append(new LIR_OpJavaCall(lir_icvirtual_call, method, receiver, result, dest, arguments, info));
duke@435 2008 }
duke@435 2009 void call_virtual(ciMethod* method, LIR_Opr receiver, LIR_Opr result,
duke@435 2010 intptr_t vtable_offset, LIR_OprList* arguments, CodeEmitInfo* info) {
duke@435 2011 append(new LIR_OpJavaCall(lir_virtual_call, method, receiver, result, vtable_offset, arguments, info));
duke@435 2012 }
twisti@1730 2013 void call_dynamic(ciMethod* method, LIR_Opr receiver, LIR_Opr result,
twisti@1730 2014 address dest, LIR_OprList* arguments, CodeEmitInfo* info) {
twisti@1730 2015 append(new LIR_OpJavaCall(lir_dynamic_call, method, receiver, result, dest, arguments, info));
twisti@1730 2016 }
duke@435 2017
duke@435 2018 void get_thread(LIR_Opr result) { append(new LIR_Op0(lir_get_thread, result)); }
duke@435 2019 void word_align() { append(new LIR_Op0(lir_word_align)); }
duke@435 2020 void membar() { append(new LIR_Op0(lir_membar)); }
duke@435 2021 void membar_acquire() { append(new LIR_Op0(lir_membar_acquire)); }
duke@435 2022 void membar_release() { append(new LIR_Op0(lir_membar_release)); }
jiangli@3592 2023 void membar_loadload() { append(new LIR_Op0(lir_membar_loadload)); }
jiangli@3592 2024 void membar_storestore() { append(new LIR_Op0(lir_membar_storestore)); }
jiangli@3592 2025 void membar_loadstore() { append(new LIR_Op0(lir_membar_loadstore)); }
jiangli@3592 2026 void membar_storeload() { append(new LIR_Op0(lir_membar_storeload)); }
duke@435 2027
duke@435 2028 void nop() { append(new LIR_Op0(lir_nop)); }
duke@435 2029 void build_frame() { append(new LIR_Op0(lir_build_frame)); }
duke@435 2030
duke@435 2031 void std_entry(LIR_Opr receiver) { append(new LIR_Op0(lir_std_entry, receiver)); }
duke@435 2032 void osr_entry(LIR_Opr osrPointer) { append(new LIR_Op0(lir_osr_entry, osrPointer)); }
duke@435 2033
duke@435 2034 void branch_destination(Label* lbl) { append(new LIR_OpLabel(lbl)); }
duke@435 2035
duke@435 2036 void negate(LIR_Opr from, LIR_Opr to) { append(new LIR_Op1(lir_neg, from, to)); }
duke@435 2037 void leal(LIR_Opr from, LIR_Opr result_reg) { append(new LIR_Op1(lir_leal, from, result_reg)); }
duke@435 2038
duke@435 2039 // result is a stack location for old backend and vreg for UseLinearScan
duke@435 2040 // stack_loc_temp is an illegal register for old backend
duke@435 2041 void roundfp(LIR_Opr reg, LIR_Opr stack_loc_temp, LIR_Opr result) { append(new LIR_OpRoundFP(reg, stack_loc_temp, result)); }
duke@435 2042 void unaligned_move(LIR_Address* src, LIR_Opr dst) { append(new LIR_Op1(lir_move, LIR_OprFact::address(src), dst, dst->type(), lir_patch_none, NULL, lir_move_unaligned)); }
duke@435 2043 void unaligned_move(LIR_Opr src, LIR_Address* dst) { append(new LIR_Op1(lir_move, src, LIR_OprFact::address(dst), src->type(), lir_patch_none, NULL, lir_move_unaligned)); }
duke@435 2044 void unaligned_move(LIR_Opr src, LIR_Opr dst) { append(new LIR_Op1(lir_move, src, dst, dst->type(), lir_patch_none, NULL, lir_move_unaligned)); }
duke@435 2045 void move(LIR_Opr src, LIR_Opr dst, CodeEmitInfo* info = NULL) { append(new LIR_Op1(lir_move, src, dst, dst->type(), lir_patch_none, info)); }
duke@435 2046 void move(LIR_Address* src, LIR_Opr dst, CodeEmitInfo* info = NULL) { append(new LIR_Op1(lir_move, LIR_OprFact::address(src), dst, src->type(), lir_patch_none, info)); }
duke@435 2047 void move(LIR_Opr src, LIR_Address* dst, CodeEmitInfo* info = NULL) { append(new LIR_Op1(lir_move, src, LIR_OprFact::address(dst), dst->type(), lir_patch_none, info)); }
iveresov@2344 2048 void move_wide(LIR_Address* src, LIR_Opr dst, CodeEmitInfo* info = NULL) {
iveresov@2344 2049 if (UseCompressedOops) {
iveresov@2344 2050 append(new LIR_Op1(lir_move, LIR_OprFact::address(src), dst, src->type(), lir_patch_none, info, lir_move_wide));
iveresov@2344 2051 } else {
iveresov@2344 2052 move(src, dst, info);
iveresov@2344 2053 }
iveresov@2344 2054 }
iveresov@2344 2055 void move_wide(LIR_Opr src, LIR_Address* dst, CodeEmitInfo* info = NULL) {
iveresov@2344 2056 if (UseCompressedOops) {
iveresov@2344 2057 append(new LIR_Op1(lir_move, src, LIR_OprFact::address(dst), dst->type(), lir_patch_none, info, lir_move_wide));
iveresov@2344 2058 } else {
iveresov@2344 2059 move(src, dst, info);
iveresov@2344 2060 }
iveresov@2344 2061 }
duke@435 2062 void volatile_move(LIR_Opr src, LIR_Opr dst, BasicType type, CodeEmitInfo* info = NULL, LIR_PatchCode patch_code = lir_patch_none) { append(new LIR_Op1(lir_move, src, dst, type, patch_code, info, lir_move_volatile)); }
duke@435 2063
roland@4051 2064 void oop2reg (jobject o, LIR_Opr reg) { assert(reg->type() == T_OBJECT, "bad reg"); append(new LIR_Op1(lir_move, LIR_OprFact::oopConst(o), reg)); }
duke@435 2065 void oop2reg_patch(jobject o, LIR_Opr reg, CodeEmitInfo* info);
duke@435 2066
roland@4051 2067 void metadata2reg (Metadata* o, LIR_Opr reg) { assert(reg->type() == T_METADATA, "bad reg"); append(new LIR_Op1(lir_move, LIR_OprFact::metadataConst(o), reg)); }
coleenp@4037 2068 void klass2reg_patch(Metadata* o, LIR_Opr reg, CodeEmitInfo* info);
coleenp@4037 2069
duke@435 2070 void return_op(LIR_Opr result) { append(new LIR_Op1(lir_return, result)); }
duke@435 2071
duke@435 2072 void safepoint(LIR_Opr tmp, CodeEmitInfo* info) { append(new LIR_Op1(lir_safepoint, tmp, info)); }
duke@435 2073
bobv@2036 2074 #ifdef PPC
bobv@2036 2075 void convert(Bytecodes::Code code, LIR_Opr left, LIR_Opr dst, LIR_Opr tmp1, LIR_Opr tmp2) { append(new LIR_OpConvert(code, left, dst, NULL, tmp1, tmp2)); }
bobv@2036 2076 #endif
duke@435 2077 void convert(Bytecodes::Code code, LIR_Opr left, LIR_Opr dst, ConversionStub* stub = NULL/*, bool is_32bit = false*/) { append(new LIR_OpConvert(code, left, dst, stub)); }
duke@435 2078
duke@435 2079 void logical_and (LIR_Opr left, LIR_Opr right, LIR_Opr dst) { append(new LIR_Op2(lir_logic_and, left, right, dst)); }
duke@435 2080 void logical_or (LIR_Opr left, LIR_Opr right, LIR_Opr dst) { append(new LIR_Op2(lir_logic_or, left, right, dst)); }
duke@435 2081 void logical_xor (LIR_Opr left, LIR_Opr right, LIR_Opr dst) { append(new LIR_Op2(lir_logic_xor, left, right, dst)); }
duke@435 2082
iveresov@2138 2083 void pack64(LIR_Opr src, LIR_Opr dst) { append(new LIR_Op1(lir_pack64, src, dst, T_LONG, lir_patch_none, NULL)); }
iveresov@2138 2084 void unpack64(LIR_Opr src, LIR_Opr dst) { append(new LIR_Op1(lir_unpack64, src, dst, T_LONG, lir_patch_none, NULL)); }
iveresov@2138 2085
duke@435 2086 void null_check(LIR_Opr opr, CodeEmitInfo* info) { append(new LIR_Op1(lir_null_check, opr, info)); }
never@1813 2087 void throw_exception(LIR_Opr exceptionPC, LIR_Opr exceptionOop, CodeEmitInfo* info) {
never@1813 2088 append(new LIR_Op2(lir_throw, exceptionPC, exceptionOop, LIR_OprFact::illegalOpr, info));
never@1813 2089 }
never@1813 2090 void unwind_exception(LIR_Opr exceptionOop) {
never@1813 2091 append(new LIR_Op1(lir_unwind, exceptionOop));
never@1813 2092 }
duke@435 2093
duke@435 2094 void compare_to (LIR_Opr left, LIR_Opr right, LIR_Opr dst) {
duke@435 2095 append(new LIR_Op2(lir_compare_to, left, right, dst));
duke@435 2096 }
duke@435 2097
duke@435 2098 void push(LIR_Opr opr) { append(new LIR_Op1(lir_push, opr)); }
duke@435 2099 void pop(LIR_Opr reg) { append(new LIR_Op1(lir_pop, reg)); }
duke@435 2100
duke@435 2101 void cmp(LIR_Condition condition, LIR_Opr left, LIR_Opr right, CodeEmitInfo* info = NULL) {
duke@435 2102 append(new LIR_Op2(lir_cmp, condition, left, right, info));
duke@435 2103 }
duke@435 2104 void cmp(LIR_Condition condition, LIR_Opr left, int right, CodeEmitInfo* info = NULL) {
duke@435 2105 cmp(condition, left, LIR_OprFact::intConst(right), info);
duke@435 2106 }
duke@435 2107
duke@435 2108 void cmp_mem_int(LIR_Condition condition, LIR_Opr base, int disp, int c, CodeEmitInfo* info);
duke@435 2109 void cmp_reg_mem(LIR_Condition condition, LIR_Opr reg, LIR_Address* addr, CodeEmitInfo* info);
duke@435 2110
iveresov@2412 2111 void cmove(LIR_Condition condition, LIR_Opr src1, LIR_Opr src2, LIR_Opr dst, BasicType type) {
iveresov@2412 2112 append(new LIR_Op2(lir_cmove, condition, src1, src2, dst, type));
duke@435 2113 }
duke@435 2114
bobv@2036 2115 void cas_long(LIR_Opr addr, LIR_Opr cmp_value, LIR_Opr new_value,
bobv@2036 2116 LIR_Opr t1, LIR_Opr t2, LIR_Opr result = LIR_OprFact::illegalOpr);
bobv@2036 2117 void cas_obj(LIR_Opr addr, LIR_Opr cmp_value, LIR_Opr new_value,
bobv@2036 2118 LIR_Opr t1, LIR_Opr t2, LIR_Opr result = LIR_OprFact::illegalOpr);
bobv@2036 2119 void cas_int(LIR_Opr addr, LIR_Opr cmp_value, LIR_Opr new_value,
bobv@2036 2120 LIR_Opr t1, LIR_Opr t2, LIR_Opr result = LIR_OprFact::illegalOpr);
duke@435 2121
duke@435 2122 void abs (LIR_Opr from, LIR_Opr to, LIR_Opr tmp) { append(new LIR_Op2(lir_abs , from, tmp, to)); }
duke@435 2123 void sqrt(LIR_Opr from, LIR_Opr to, LIR_Opr tmp) { append(new LIR_Op2(lir_sqrt, from, tmp, to)); }
never@1388 2124 void log (LIR_Opr from, LIR_Opr to, LIR_Opr tmp) { append(new LIR_Op2(lir_log, from, LIR_OprFact::illegalOpr, to, tmp)); }
never@1388 2125 void log10 (LIR_Opr from, LIR_Opr to, LIR_Opr tmp) { append(new LIR_Op2(lir_log10, from, LIR_OprFact::illegalOpr, to, tmp)); }
duke@435 2126 void sin (LIR_Opr from, LIR_Opr to, LIR_Opr tmp1, LIR_Opr tmp2) { append(new LIR_Op2(lir_sin , from, tmp1, to, tmp2)); }
duke@435 2127 void cos (LIR_Opr from, LIR_Opr to, LIR_Opr tmp1, LIR_Opr tmp2) { append(new LIR_Op2(lir_cos , from, tmp1, to, tmp2)); }
duke@435 2128 void tan (LIR_Opr from, LIR_Opr to, LIR_Opr tmp1, LIR_Opr tmp2) { append(new LIR_Op2(lir_tan , from, tmp1, to, tmp2)); }
roland@3787 2129 void exp (LIR_Opr from, LIR_Opr to, LIR_Opr tmp1, LIR_Opr tmp2, LIR_Opr tmp3, LIR_Opr tmp4, LIR_Opr tmp5) { append(new LIR_Op2(lir_exp , from, tmp1, to, tmp2, tmp3, tmp4, tmp5)); }
roland@3787 2130 void pow (LIR_Opr arg1, LIR_Opr arg2, LIR_Opr res, LIR_Opr tmp1, LIR_Opr tmp2, LIR_Opr tmp3, LIR_Opr tmp4, LIR_Opr tmp5) { append(new LIR_Op2(lir_pow, arg1, arg2, res, tmp1, tmp2, tmp3, tmp4, tmp5)); }
duke@435 2131
duke@435 2132 void add (LIR_Opr left, LIR_Opr right, LIR_Opr res) { append(new LIR_Op2(lir_add, left, right, res)); }
duke@435 2133 void sub (LIR_Opr left, LIR_Opr right, LIR_Opr res, CodeEmitInfo* info = NULL) { append(new LIR_Op2(lir_sub, left, right, res, info)); }
duke@435 2134 void mul (LIR_Opr left, LIR_Opr right, LIR_Opr res) { append(new LIR_Op2(lir_mul, left, right, res)); }
duke@435 2135 void mul_strictfp (LIR_Opr left, LIR_Opr right, LIR_Opr res, LIR_Opr tmp) { append(new LIR_Op2(lir_mul_strictfp, left, right, res, tmp)); }
duke@435 2136 void div (LIR_Opr left, LIR_Opr right, LIR_Opr res, CodeEmitInfo* info = NULL) { append(new LIR_Op2(lir_div, left, right, res, info)); }
duke@435 2137 void div_strictfp (LIR_Opr left, LIR_Opr right, LIR_Opr res, LIR_Opr tmp) { append(new LIR_Op2(lir_div_strictfp, left, right, res, tmp)); }
duke@435 2138 void rem (LIR_Opr left, LIR_Opr right, LIR_Opr res, CodeEmitInfo* info = NULL) { append(new LIR_Op2(lir_rem, left, right, res, info)); }
duke@435 2139
duke@435 2140 void volatile_load_mem_reg(LIR_Address* address, LIR_Opr dst, CodeEmitInfo* info, LIR_PatchCode patch_code = lir_patch_none);
duke@435 2141 void volatile_load_unsafe_reg(LIR_Opr base, LIR_Opr offset, LIR_Opr dst, BasicType type, CodeEmitInfo* info, LIR_PatchCode patch_code);
duke@435 2142
duke@435 2143 void load(LIR_Address* addr, LIR_Opr src, CodeEmitInfo* info = NULL, LIR_PatchCode patch_code = lir_patch_none);
duke@435 2144
duke@435 2145 void prefetch(LIR_Address* addr, bool is_store);
duke@435 2146
duke@435 2147 void store_mem_int(jint v, LIR_Opr base, int offset_in_bytes, BasicType type, CodeEmitInfo* info, LIR_PatchCode patch_code = lir_patch_none);
duke@435 2148 void store_mem_oop(jobject o, LIR_Opr base, int offset_in_bytes, BasicType type, CodeEmitInfo* info, LIR_PatchCode patch_code = lir_patch_none);
duke@435 2149 void store(LIR_Opr src, LIR_Address* addr, CodeEmitInfo* info = NULL, LIR_PatchCode patch_code = lir_patch_none);
duke@435 2150 void volatile_store_mem_reg(LIR_Opr src, LIR_Address* address, CodeEmitInfo* info, LIR_PatchCode patch_code = lir_patch_none);
duke@435 2151 void volatile_store_unsafe_reg(LIR_Opr src, LIR_Opr base, LIR_Opr offset, BasicType type, CodeEmitInfo* info, LIR_PatchCode patch_code);
duke@435 2152
duke@435 2153 void idiv(LIR_Opr left, LIR_Opr right, LIR_Opr res, LIR_Opr tmp, CodeEmitInfo* info);
duke@435 2154 void idiv(LIR_Opr left, int right, LIR_Opr res, LIR_Opr tmp, CodeEmitInfo* info);
duke@435 2155 void irem(LIR_Opr left, LIR_Opr right, LIR_Opr res, LIR_Opr tmp, CodeEmitInfo* info);
duke@435 2156 void irem(LIR_Opr left, int right, LIR_Opr res, LIR_Opr tmp, CodeEmitInfo* info);
duke@435 2157
duke@435 2158 void allocate_object(LIR_Opr dst, LIR_Opr t1, LIR_Opr t2, LIR_Opr t3, LIR_Opr t4, int header_size, int object_size, LIR_Opr klass, bool init_check, CodeStub* stub);
duke@435 2159 void allocate_array(LIR_Opr dst, LIR_Opr len, LIR_Opr t1,LIR_Opr t2, LIR_Opr t3,LIR_Opr t4, BasicType type, LIR_Opr klass, CodeStub* stub);
duke@435 2160
duke@435 2161 // jump is an unconditional branch
duke@435 2162 void jump(BlockBegin* block) {
duke@435 2163 append(new LIR_OpBranch(lir_cond_always, T_ILLEGAL, block));
duke@435 2164 }
duke@435 2165 void jump(CodeStub* stub) {
duke@435 2166 append(new LIR_OpBranch(lir_cond_always, T_ILLEGAL, stub));
duke@435 2167 }
iveresov@3443 2168 void branch(LIR_Condition cond, BasicType type, Label* lbl) { append(new LIR_OpBranch(cond, type, lbl)); }
duke@435 2169 void branch(LIR_Condition cond, BasicType type, BlockBegin* block) {
duke@435 2170 assert(type != T_FLOAT && type != T_DOUBLE, "no fp comparisons");
duke@435 2171 append(new LIR_OpBranch(cond, type, block));
duke@435 2172 }
duke@435 2173 void branch(LIR_Condition cond, BasicType type, CodeStub* stub) {
duke@435 2174 assert(type != T_FLOAT && type != T_DOUBLE, "no fp comparisons");
duke@435 2175 append(new LIR_OpBranch(cond, type, stub));
duke@435 2176 }
duke@435 2177 void branch(LIR_Condition cond, BasicType type, BlockBegin* block, BlockBegin* unordered) {
duke@435 2178 assert(type == T_FLOAT || type == T_DOUBLE, "fp comparisons only");
duke@435 2179 append(new LIR_OpBranch(cond, type, block, unordered));
duke@435 2180 }
duke@435 2181
duke@435 2182 void shift_left(LIR_Opr value, LIR_Opr count, LIR_Opr dst, LIR_Opr tmp);
duke@435 2183 void shift_right(LIR_Opr value, LIR_Opr count, LIR_Opr dst, LIR_Opr tmp);
duke@435 2184 void unsigned_shift_right(LIR_Opr value, LIR_Opr count, LIR_Opr dst, LIR_Opr tmp);
duke@435 2185
duke@435 2186 void shift_left(LIR_Opr value, int count, LIR_Opr dst) { shift_left(value, LIR_OprFact::intConst(count), dst, LIR_OprFact::illegalOpr); }
duke@435 2187 void shift_right(LIR_Opr value, int count, LIR_Opr dst) { shift_right(value, LIR_OprFact::intConst(count), dst, LIR_OprFact::illegalOpr); }
duke@435 2188 void unsigned_shift_right(LIR_Opr value, int count, LIR_Opr dst) { unsigned_shift_right(value, LIR_OprFact::intConst(count), dst, LIR_OprFact::illegalOpr); }
duke@435 2189
duke@435 2190 void lcmp2int(LIR_Opr left, LIR_Opr right, LIR_Opr dst) { append(new LIR_Op2(lir_cmp_l2i, left, right, dst)); }
duke@435 2191 void fcmp2int(LIR_Opr left, LIR_Opr right, LIR_Opr dst, bool is_unordered_less);
duke@435 2192
duke@435 2193 void call_runtime_leaf(address routine, LIR_Opr tmp, LIR_Opr result, LIR_OprList* arguments) {
duke@435 2194 append(new LIR_OpRTCall(routine, tmp, result, arguments));
duke@435 2195 }
duke@435 2196
duke@435 2197 void call_runtime(address routine, LIR_Opr tmp, LIR_Opr result,
duke@435 2198 LIR_OprList* arguments, CodeEmitInfo* info) {
duke@435 2199 append(new LIR_OpRTCall(routine, tmp, result, arguments, info));
duke@435 2200 }
duke@435 2201
duke@435 2202 void load_stack_address_monitor(int monitor_ix, LIR_Opr dst) { append(new LIR_Op1(lir_monaddr, LIR_OprFact::intConst(monitor_ix), dst)); }
bobv@2036 2203 void unlock_object(LIR_Opr hdr, LIR_Opr obj, LIR_Opr lock, LIR_Opr scratch, CodeStub* stub);
duke@435 2204 void lock_object(LIR_Opr hdr, LIR_Opr obj, LIR_Opr lock, LIR_Opr scratch, CodeStub* stub, CodeEmitInfo* info);
duke@435 2205
duke@435 2206 void set_24bit_fpu() { append(new LIR_Op0(lir_24bit_FPU )); }
duke@435 2207 void restore_fpu() { append(new LIR_Op0(lir_reset_FPU )); }
duke@435 2208 void breakpoint() { append(new LIR_Op0(lir_breakpoint)); }
duke@435 2209
duke@435 2210 void arraycopy(LIR_Opr src, LIR_Opr src_pos, LIR_Opr dst, LIR_Opr dst_pos, LIR_Opr length, LIR_Opr tmp, ciArrayKlass* expected_type, int flags, CodeEmitInfo* info) { append(new LIR_OpArrayCopy(src, src_pos, dst, dst_pos, length, tmp, expected_type, flags, info)); }
duke@435 2211
duke@435 2212 void fpop_raw() { append(new LIR_Op0(lir_fpop_raw)); }
duke@435 2213
iveresov@2146 2214 void instanceof(LIR_Opr result, LIR_Opr object, ciKlass* klass, LIR_Opr tmp1, LIR_Opr tmp2, LIR_Opr tmp3, bool fast_check, CodeEmitInfo* info_for_patch, ciMethod* profiled_method, int profiled_bci);
iveresov@3153 2215 void store_check(LIR_Opr object, LIR_Opr array, LIR_Opr tmp1, LIR_Opr tmp2, LIR_Opr tmp3, CodeEmitInfo* info_for_exception, ciMethod* profiled_method, int profiled_bci);
iveresov@2138 2216
duke@435 2217 void checkcast (LIR_Opr result, LIR_Opr object, ciKlass* klass,
duke@435 2218 LIR_Opr tmp1, LIR_Opr tmp2, LIR_Opr tmp3, bool fast_check,
duke@435 2219 CodeEmitInfo* info_for_exception, CodeEmitInfo* info_for_patch, CodeStub* stub,
duke@435 2220 ciMethod* profiled_method, int profiled_bci);
coleenp@4037 2221 // MethodData* profiling
twisti@3969 2222 void profile_call(ciMethod* method, int bci, ciMethod* callee, LIR_Opr mdo, LIR_Opr recv, LIR_Opr t1, ciKlass* cha_klass) {
twisti@3969 2223 append(new LIR_OpProfileCall(lir_profile_call, method, bci, callee, mdo, recv, t1, cha_klass));
iveresov@2138 2224 }
roland@4106 2225
roland@4106 2226 void xadd(LIR_Opr src, LIR_Opr add, LIR_Opr res, LIR_Opr tmp) { append(new LIR_Op2(lir_xadd, src, add, res, tmp)); }
roland@4106 2227 void xchg(LIR_Opr src, LIR_Opr set, LIR_Opr res, LIR_Opr tmp) { append(new LIR_Op2(lir_xchg, src, set, res, tmp)); }
roland@4860 2228 #ifdef ASSERT
roland@4860 2229 void lir_assert(LIR_Condition condition, LIR_Opr opr1, LIR_Opr opr2, const char* msg, bool halt) { append(new LIR_OpAssert(condition, opr1, opr2, msg, halt)); }
roland@4860 2230 #endif
duke@435 2231 };
duke@435 2232
duke@435 2233 void print_LIR(BlockList* blocks);
duke@435 2234
duke@435 2235 class LIR_InsertionBuffer : public CompilationResourceObj {
duke@435 2236 private:
duke@435 2237 LIR_List* _lir; // the lir list where ops of this buffer should be inserted later (NULL when uninitialized)
duke@435 2238
duke@435 2239 // list of insertion points. index and count are stored alternately:
duke@435 2240 // _index_and_count[i * 2]: the index into lir list where "count" ops should be inserted
duke@435 2241 // _index_and_count[i * 2 + 1]: the number of ops to be inserted at index
duke@435 2242 intStack _index_and_count;
duke@435 2243
duke@435 2244 // the LIR_Ops to be inserted
duke@435 2245 LIR_OpList _ops;
duke@435 2246
duke@435 2247 void append_new(int index, int count) { _index_and_count.append(index); _index_and_count.append(count); }
duke@435 2248 void set_index_at(int i, int value) { _index_and_count.at_put((i << 1), value); }
duke@435 2249 void set_count_at(int i, int value) { _index_and_count.at_put((i << 1) + 1, value); }
duke@435 2250
duke@435 2251 #ifdef ASSERT
duke@435 2252 void verify();
duke@435 2253 #endif
duke@435 2254 public:
duke@435 2255 LIR_InsertionBuffer() : _lir(NULL), _index_and_count(8), _ops(8) { }
duke@435 2256
duke@435 2257 // must be called before using the insertion buffer
duke@435 2258 void init(LIR_List* lir) { assert(!initialized(), "already initialized"); _lir = lir; _index_and_count.clear(); _ops.clear(); }
duke@435 2259 bool initialized() const { return _lir != NULL; }
duke@435 2260 // called automatically when the buffer is appended to the LIR_List
duke@435 2261 void finish() { _lir = NULL; }
duke@435 2262
duke@435 2263 // accessors
duke@435 2264 LIR_List* lir_list() const { return _lir; }
duke@435 2265 int number_of_insertion_points() const { return _index_and_count.length() >> 1; }
duke@435 2266 int index_at(int i) const { return _index_and_count.at((i << 1)); }
duke@435 2267 int count_at(int i) const { return _index_and_count.at((i << 1) + 1); }
duke@435 2268
duke@435 2269 int number_of_ops() const { return _ops.length(); }
duke@435 2270 LIR_Op* op_at(int i) const { return _ops.at(i); }
duke@435 2271
duke@435 2272 // append an instruction to the buffer
duke@435 2273 void append(int index, LIR_Op* op);
duke@435 2274
duke@435 2275 // instruction
duke@435 2276 void move(int index, LIR_Opr src, LIR_Opr dst, CodeEmitInfo* info = NULL) { append(index, new LIR_Op1(lir_move, src, dst, dst->type(), lir_patch_none, info)); }
duke@435 2277 };
duke@435 2278
duke@435 2279
duke@435 2280 //
duke@435 2281 // LIR_OpVisitState is used for manipulating LIR_Ops in an abstract way.
duke@435 2282 // Calling a LIR_Op's visit function with a LIR_OpVisitState causes
duke@435 2283 // information about the input, output and temporaries used by the
duke@435 2284 // op to be recorded. It also records whether the op has call semantics
duke@435 2285 // and also records all the CodeEmitInfos used by this op.
duke@435 2286 //
duke@435 2287
duke@435 2288
duke@435 2289 class LIR_OpVisitState: public StackObj {
duke@435 2290 public:
duke@435 2291 typedef enum { inputMode, firstMode = inputMode, tempMode, outputMode, numModes, invalidMode = -1 } OprMode;
duke@435 2292
duke@435 2293 enum {
bpittore@4404 2294 maxNumberOfOperands = 20,
duke@435 2295 maxNumberOfInfos = 4
duke@435 2296 };
duke@435 2297
duke@435 2298 private:
duke@435 2299 LIR_Op* _op;
duke@435 2300
duke@435 2301 // optimization: the operands and infos are not stored in a variable-length
duke@435 2302 // list, but in a fixed-size array to save time of size checks and resizing
duke@435 2303 int _oprs_len[numModes];
duke@435 2304 LIR_Opr* _oprs_new[numModes][maxNumberOfOperands];
duke@435 2305 int _info_len;
duke@435 2306 CodeEmitInfo* _info_new[maxNumberOfInfos];
duke@435 2307
duke@435 2308 bool _has_call;
duke@435 2309 bool _has_slow_case;
duke@435 2310
duke@435 2311
duke@435 2312 // only include register operands
duke@435 2313 // addresses are decomposed to the base and index registers
duke@435 2314 // constants and stack operands are ignored
duke@435 2315 void append(LIR_Opr& opr, OprMode mode) {
duke@435 2316 assert(opr->is_valid(), "should not call this otherwise");
duke@435 2317 assert(mode >= 0 && mode < numModes, "bad mode");
duke@435 2318
duke@435 2319 if (opr->is_register()) {
duke@435 2320 assert(_oprs_len[mode] < maxNumberOfOperands, "array overflow");
duke@435 2321 _oprs_new[mode][_oprs_len[mode]++] = &opr;
duke@435 2322
duke@435 2323 } else if (opr->is_pointer()) {
duke@435 2324 LIR_Address* address = opr->as_address_ptr();
duke@435 2325 if (address != NULL) {
duke@435 2326 // special handling for addresses: add base and index register of the address
roland@4106 2327 // both are always input operands or temp if we want to extend
roland@4106 2328 // their liveness!
roland@4106 2329 if (mode == outputMode) {
roland@4106 2330 mode = inputMode;
roland@4106 2331 }
roland@4106 2332 assert (mode == inputMode || mode == tempMode, "input or temp only for addresses");
duke@435 2333 if (address->_base->is_valid()) {
duke@435 2334 assert(address->_base->is_register(), "must be");
roland@4106 2335 assert(_oprs_len[mode] < maxNumberOfOperands, "array overflow");
roland@4106 2336 _oprs_new[mode][_oprs_len[mode]++] = &address->_base;
duke@435 2337 }
duke@435 2338 if (address->_index->is_valid()) {
duke@435 2339 assert(address->_index->is_register(), "must be");
roland@4106 2340 assert(_oprs_len[mode] < maxNumberOfOperands, "array overflow");
roland@4106 2341 _oprs_new[mode][_oprs_len[mode]++] = &address->_index;
duke@435 2342 }
duke@435 2343
duke@435 2344 } else {
duke@435 2345 assert(opr->is_constant(), "constant operands are not processed");
duke@435 2346 }
duke@435 2347 } else {
duke@435 2348 assert(opr->is_stack(), "stack operands are not processed");
duke@435 2349 }
duke@435 2350 }
duke@435 2351
duke@435 2352 void append(CodeEmitInfo* info) {
duke@435 2353 assert(info != NULL, "should not call this otherwise");
duke@435 2354 assert(_info_len < maxNumberOfInfos, "array overflow");
duke@435 2355 _info_new[_info_len++] = info;
duke@435 2356 }
duke@435 2357
duke@435 2358 public:
duke@435 2359 LIR_OpVisitState() { reset(); }
duke@435 2360
duke@435 2361 LIR_Op* op() const { return _op; }
duke@435 2362 void set_op(LIR_Op* op) { reset(); _op = op; }
duke@435 2363
duke@435 2364 bool has_call() const { return _has_call; }
duke@435 2365 bool has_slow_case() const { return _has_slow_case; }
duke@435 2366
duke@435 2367 void reset() {
duke@435 2368 _op = NULL;
duke@435 2369 _has_call = false;
duke@435 2370 _has_slow_case = false;
duke@435 2371
duke@435 2372 _oprs_len[inputMode] = 0;
duke@435 2373 _oprs_len[tempMode] = 0;
duke@435 2374 _oprs_len[outputMode] = 0;
duke@435 2375 _info_len = 0;
duke@435 2376 }
duke@435 2377
duke@435 2378
duke@435 2379 int opr_count(OprMode mode) const {
duke@435 2380 assert(mode >= 0 && mode < numModes, "bad mode");
duke@435 2381 return _oprs_len[mode];
duke@435 2382 }
duke@435 2383
duke@435 2384 LIR_Opr opr_at(OprMode mode, int index) const {
duke@435 2385 assert(mode >= 0 && mode < numModes, "bad mode");
duke@435 2386 assert(index >= 0 && index < _oprs_len[mode], "index out of bound");
duke@435 2387 return *_oprs_new[mode][index];
duke@435 2388 }
duke@435 2389
duke@435 2390 void set_opr_at(OprMode mode, int index, LIR_Opr opr) const {
duke@435 2391 assert(mode >= 0 && mode < numModes, "bad mode");
duke@435 2392 assert(index >= 0 && index < _oprs_len[mode], "index out of bound");
duke@435 2393 *_oprs_new[mode][index] = opr;
duke@435 2394 }
duke@435 2395
duke@435 2396 int info_count() const {
duke@435 2397 return _info_len;
duke@435 2398 }
duke@435 2399
duke@435 2400 CodeEmitInfo* info_at(int index) const {
duke@435 2401 assert(index < _info_len, "index out of bounds");
duke@435 2402 return _info_new[index];
duke@435 2403 }
duke@435 2404
duke@435 2405 XHandlers* all_xhandler();
duke@435 2406
duke@435 2407 // collects all register operands of the instruction
duke@435 2408 void visit(LIR_Op* op);
duke@435 2409
jprovino@4721 2410 #ifdef ASSERT
duke@435 2411 // check that an operation has no operands
duke@435 2412 bool no_operands(LIR_Op* op);
duke@435 2413 #endif
duke@435 2414
duke@435 2415 // LIR_Op visitor functions use these to fill in the state
duke@435 2416 void do_input(LIR_Opr& opr) { append(opr, LIR_OpVisitState::inputMode); }
duke@435 2417 void do_output(LIR_Opr& opr) { append(opr, LIR_OpVisitState::outputMode); }
duke@435 2418 void do_temp(LIR_Opr& opr) { append(opr, LIR_OpVisitState::tempMode); }
duke@435 2419 void do_info(CodeEmitInfo* info) { append(info); }
duke@435 2420
duke@435 2421 void do_stub(CodeStub* stub);
duke@435 2422 void do_call() { _has_call = true; }
duke@435 2423 void do_slow_case() { _has_slow_case = true; }
duke@435 2424 void do_slow_case(CodeEmitInfo* info) {
duke@435 2425 _has_slow_case = true;
duke@435 2426 append(info);
duke@435 2427 }
duke@435 2428 };
duke@435 2429
duke@435 2430
duke@435 2431 inline LIR_Opr LIR_OprDesc::illegalOpr() { return LIR_OprFact::illegalOpr; };
stefank@2314 2432
stefank@2314 2433 #endif // SHARE_VM_C1_C1_LIR_HPP

mercurial