xref: /netbsd-src/sys/external/bsd/sljit/dist/sljit_src/sljitNativeMIPS_common.c (revision b7b7574d3bf8eeb51a1fa3977b59142ec6434a55)
1 /*	$NetBSD: sljitNativeMIPS_common.c,v 1.2 2014/06/17 19:33:20 alnsn Exp $	*/
2 
3 /*
4  *    Stack-less Just-In-Time compiler
5  *
6  *    Copyright 2009-2012 Zoltan Herczeg (hzmester@freemail.hu). All rights reserved.
7  *
8  * Redistribution and use in source and binary forms, with or without modification, are
9  * permitted provided that the following conditions are met:
10  *
11  *   1. Redistributions of source code must retain the above copyright notice, this list of
12  *      conditions and the following disclaimer.
13  *
14  *   2. Redistributions in binary form must reproduce the above copyright notice, this list
15  *      of conditions and the following disclaimer in the documentation and/or other materials
16  *      provided with the distribution.
17  *
18  * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDER(S) AND CONTRIBUTORS ``AS IS'' AND ANY
19  * EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
20  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT
21  * SHALL THE COPYRIGHT HOLDER(S) OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT,
22  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED
23  * TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR
24  * BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
25  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN
26  * ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
27  */
28 
29 /* Latest MIPS architecture. */
30 /* Automatically detect SLJIT_MIPS_32_64 */
31 
32 SLJIT_API_FUNC_ATTRIBUTE SLJIT_CONST char* sljit_get_platform_name(void)
33 {
34 #if (defined SLJIT_MIPS_32_64 && SLJIT_MIPS_32_64)
35 	return "MIPS V" SLJIT_CPUINFO;
36 #else
37 	return "MIPS III" SLJIT_CPUINFO;
38 #endif
39 }
40 
41 /* Length of an instruction word
42    Both for mips-32 and mips-64 */
43 typedef sljit_ui sljit_ins;
44 
45 #define TMP_REG1	(SLJIT_NO_REGISTERS + 1)
46 #define TMP_REG2	(SLJIT_NO_REGISTERS + 2)
47 #define TMP_REG3	(SLJIT_NO_REGISTERS + 3)
48 
49 /* For position independent code, t9 must contain the function address. */
50 #define PIC_ADDR_REG	TMP_REG2
51 
52 /* TMP_EREGs are used mainly for arithmetic operations. */
53 #define TMP_EREG1	15
54 #define TMP_EREG2	24
55 /* Floating point status register. */
56 #define FCSR_REG	31
57 /* Return address register. */
58 #define RETURN_ADDR_REG	31
59 
60 /* Flags are keept in volatile registers. */
61 #define EQUAL_FLAG	7
62 /* And carry flag as well. */
63 #define ULESS_FLAG	10
64 #define UGREATER_FLAG	11
65 #define LESS_FLAG	12
66 #define GREATER_FLAG	13
67 #define OVERFLOW_FLAG	14
68 
69 #define TMP_FREG1	(0)
70 #define TMP_FREG2	((SLJIT_FLOAT_REG6 + 1) << 1)
71 
72 static SLJIT_CONST sljit_ub reg_map[SLJIT_NO_REGISTERS + 4] = {
73 	0, 2, 5, 6, 3, 8, 16, 17, 18, 19, 20, 29, 4, 25, 9
74 };
75 
76 /* --------------------------------------------------------------------- */
77 /*  Instrucion forms                                                     */
78 /* --------------------------------------------------------------------- */
79 
80 #define S(s)		(reg_map[s] << 21)
81 #define T(t)		(reg_map[t] << 16)
82 #define D(d)		(reg_map[d] << 11)
83 /* Absolute registers. */
84 #define SA(s)		((s) << 21)
85 #define TA(t)		((t) << 16)
86 #define DA(d)		((d) << 11)
87 #define FT(t)		((t) << 16)
88 #define FS(s)		((s) << 11)
89 #define FD(d)		((d) << 6)
90 #define IMM(imm)	((imm) & 0xffff)
91 #define SH_IMM(imm)	((imm) << 6)
92 
93 #define DR(dr)		(reg_map[dr])
94 #define HI(opcode)	((opcode) << 26)
95 #define LO(opcode)	(opcode)
96 /* S = (16 << 21) D = (17 << 21) */
97 #define FMT_SD		(16 << 21)
98 
99 #define ABS_fmt		(HI(17) | FMT_SD | LO(5))
100 #define ADD_fmt		(HI(17) | FMT_SD | LO(0))
101 #define ADDIU		(HI(9))
102 #define ADDU		(HI(0) | LO(33))
103 #define AND		(HI(0) | LO(36))
104 #define ANDI		(HI(12))
105 #define B		(HI(4))
106 #define BAL		(HI(1) | (17 << 16))
107 #define BC1F		(HI(17) | (8 << 21))
108 #define BC1T		(HI(17) | (8 << 21) | (1 << 16))
109 #define BEQ		(HI(4))
110 #define BGEZ		(HI(1) | (1 << 16))
111 #define BGTZ		(HI(7))
112 #define BLEZ		(HI(6))
113 #define BLTZ		(HI(1) | (0 << 16))
114 #define BNE		(HI(5))
115 #define BREAK		(HI(0) | LO(13))
116 #define CFC1		(HI(17) | (2 << 21))
117 #define C_UN_fmt	(HI(17) | FMT_SD | LO(49))
118 #define C_UEQ_fmt	(HI(17) | FMT_SD | LO(51))
119 #define C_ULE_fmt	(HI(17) | FMT_SD | LO(55))
120 #define C_ULT_fmt	(HI(17) | FMT_SD | LO(53))
121 #define DADDIU		(HI(25))
122 #define DADDU		(HI(0) | LO(45))
123 #define DDIV		(HI(0) | LO(30))
124 #define DDIVU		(HI(0) | LO(31))
125 #define DIV		(HI(0) | LO(26))
126 #define DIVU		(HI(0) | LO(27))
127 #define DIV_fmt		(HI(17) | FMT_SD | LO(3))
128 #define DMULT		(HI(0) | LO(28))
129 #define DMULTU		(HI(0) | LO(29))
130 #define DSLL		(HI(0) | LO(56))
131 #define DSLL32		(HI(0) | LO(60))
132 #define DSLLV		(HI(0) | LO(20))
133 #define DSRA		(HI(0) | LO(59))
134 #define DSRA32		(HI(0) | LO(63))
135 #define DSRAV		(HI(0) | LO(23))
136 #define DSRL		(HI(0) | LO(58))
137 #define DSRL32		(HI(0) | LO(62))
138 #define DSRLV		(HI(0) | LO(22))
139 #define DSUBU		(HI(0) | LO(47))
140 #define J		(HI(2))
141 #define JAL		(HI(3))
142 #define JALR		(HI(0) | LO(9))
143 #define JR		(HI(0) | LO(8))
144 #define LD		(HI(55))
145 #define LUI		(HI(15))
146 #define LW		(HI(35))
147 #define MFHI		(HI(0) | LO(16))
148 #define MFLO		(HI(0) | LO(18))
149 #define MOV_fmt		(HI(17) | FMT_SD | LO(6))
150 #define MUL_fmt		(HI(17) | FMT_SD | LO(2))
151 #define MULT		(HI(0) | LO(24))
152 #define MULTU		(HI(0) | LO(25))
153 #define NEG_fmt		(HI(17) | FMT_SD | LO(7))
154 #define NOP		(HI(0) | LO(0))
155 #define NOR		(HI(0) | LO(39))
156 #define OR		(HI(0) | LO(37))
157 #define ORI		(HI(13))
158 #define SD		(HI(63))
159 #define SLT		(HI(0) | LO(42))
160 #define SLTI		(HI(10))
161 #define SLTIU		(HI(11))
162 #define SLTU		(HI(0) | LO(43))
163 #define SLL		(HI(0) | LO(0))
164 #define SLLV		(HI(0) | LO(4))
165 #define SRL		(HI(0) | LO(2))
166 #define SRLV		(HI(0) | LO(6))
167 #define SRA		(HI(0) | LO(3))
168 #define SRAV		(HI(0) | LO(7))
169 #define SUB_fmt		(HI(17) | FMT_SD | LO(1))
170 #define SUBU		(HI(0) | LO(35))
171 #define SW		(HI(43))
172 #define XOR		(HI(0) | LO(38))
173 #define XORI		(HI(14))
174 
175 #if (defined SLJIT_MIPS_32_64 && SLJIT_MIPS_32_64)
176 #define CLZ		(HI(28) | LO(32))
177 #define DCLZ		(HI(28) | LO(36))
178 #define MUL		(HI(28) | LO(2))
179 #define SEB		(HI(31) | (16 << 6) | LO(32))
180 #define SEH		(HI(31) | (24 << 6) | LO(32))
181 #endif
182 
183 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
184 #define ADDU_W		ADDU
185 #define ADDIU_W		ADDIU
186 #define SLL_W		SLL
187 #define SUBU_W		SUBU
188 #else
189 #define ADDU_W		DADDU
190 #define ADDIU_W		DADDIU
191 #define SLL_W		DSLL
192 #define SUBU_W		DSUBU
193 #endif
194 
195 #define SIMM_MAX	(0x7fff)
196 #define SIMM_MIN	(-0x8000)
197 #define UIMM_MAX	(0xffff)
198 
199 /* dest_reg is the absolute name of the register
200    Useful for reordering instructions in the delay slot. */
201 static sljit_si push_inst(struct sljit_compiler *compiler, sljit_ins ins, sljit_si delay_slot)
202 {
203 	SLJIT_ASSERT(delay_slot == MOVABLE_INS || delay_slot >= UNMOVABLE_INS
204 		|| delay_slot == ((ins >> 11) & 0x1f) || delay_slot == ((ins >> 16) & 0x1f));
205 	sljit_ins *ptr = (sljit_ins*)ensure_buf(compiler, sizeof(sljit_ins));
206 	FAIL_IF(!ptr);
207 	*ptr = ins;
208 	compiler->size++;
209 	compiler->delay_slot = delay_slot;
210 	return SLJIT_SUCCESS;
211 }
212 
213 static SLJIT_INLINE sljit_ins invert_branch(sljit_si flags)
214 {
215 	return (flags & IS_BIT26_COND) ? (1 << 26) : (1 << 16);
216 }
217 
218 static SLJIT_INLINE sljit_ins* detect_jump_type(struct sljit_jump *jump, sljit_ins *code_ptr, sljit_ins *code)
219 {
220 	sljit_sw diff;
221 	sljit_uw target_addr;
222 	sljit_ins *inst;
223 	sljit_ins saved_inst;
224 
225 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
226 	if (jump->flags & (SLJIT_REWRITABLE_JUMP | IS_CALL))
227 		return code_ptr;
228 #else
229 	if (jump->flags & SLJIT_REWRITABLE_JUMP)
230 		return code_ptr;
231 #endif
232 
233 	if (jump->flags & JUMP_ADDR)
234 		target_addr = jump->u.target;
235 	else {
236 		SLJIT_ASSERT(jump->flags & JUMP_LABEL);
237 		target_addr = (sljit_uw)(code + jump->u.label->size);
238 	}
239 	inst = (sljit_ins*)jump->addr;
240 	if (jump->flags & IS_COND)
241 		inst--;
242 
243 #if (defined SLJIT_CONFIG_MIPS_64 && SLJIT_CONFIG_MIPS_64)
244 	if (jump->flags & IS_CALL)
245 		goto keep_address;
246 #endif
247 
248 	/* B instructions. */
249 	if (jump->flags & IS_MOVABLE) {
250 		diff = ((sljit_sw)target_addr - (sljit_sw)(inst)) >> 2;
251 		if (diff <= SIMM_MAX && diff >= SIMM_MIN) {
252 			jump->flags |= PATCH_B;
253 
254 			if (!(jump->flags & IS_COND)) {
255 				inst[0] = inst[-1];
256 				inst[-1] = (jump->flags & IS_JAL) ? BAL : B;
257 				jump->addr -= sizeof(sljit_ins);
258 				return inst;
259 			}
260 			saved_inst = inst[0];
261 			inst[0] = inst[-1];
262 			inst[-1] = saved_inst ^ invert_branch(jump->flags);
263 			jump->addr -= 2 * sizeof(sljit_ins);
264 			return inst;
265 		}
266 	}
267 	else {
268 		diff = ((sljit_sw)target_addr - (sljit_sw)(inst + 1)) >> 2;
269 		if (diff <= SIMM_MAX && diff >= SIMM_MIN) {
270 			jump->flags |= PATCH_B;
271 
272 			if (!(jump->flags & IS_COND)) {
273 				inst[0] = (jump->flags & IS_JAL) ? BAL : B;
274 				inst[1] = NOP;
275 				return inst + 1;
276 			}
277 			inst[0] = inst[0] ^ invert_branch(jump->flags);
278 			inst[1] = NOP;
279 			jump->addr -= sizeof(sljit_ins);
280 			return inst + 1;
281 		}
282 	}
283 
284 	if (jump->flags & IS_COND) {
285 		if ((jump->flags & IS_MOVABLE) && (target_addr & ~0xfffffff) == ((jump->addr + 2 * sizeof(sljit_ins)) & ~0xfffffff)) {
286 			jump->flags |= PATCH_J;
287 			saved_inst = inst[0];
288 			inst[0] = inst[-1];
289 			inst[-1] = (saved_inst & 0xffff0000) | 3;
290 			inst[1] = J;
291 			inst[2] = NOP;
292 			return inst + 2;
293 		}
294 		else if ((target_addr & ~0xfffffff) == ((jump->addr + 3 * sizeof(sljit_ins)) & ~0xfffffff)) {
295 			jump->flags |= PATCH_J;
296 			inst[0] = (inst[0] & 0xffff0000) | 3;
297 			inst[1] = NOP;
298 			inst[2] = J;
299 			inst[3] = NOP;
300 			jump->addr += sizeof(sljit_ins);
301 			return inst + 3;
302 		}
303 	}
304 	else {
305 		/* J instuctions. */
306 		if ((jump->flags & IS_MOVABLE) && (target_addr & ~0xfffffff) == (jump->addr & ~0xfffffff)) {
307 			jump->flags |= PATCH_J;
308 			inst[0] = inst[-1];
309 			inst[-1] = (jump->flags & IS_JAL) ? JAL : J;
310 			jump->addr -= sizeof(sljit_ins);
311 			return inst;
312 		}
313 
314 		if ((target_addr & ~0xfffffff) == ((jump->addr + sizeof(sljit_ins)) & ~0xfffffff)) {
315 			jump->flags |= PATCH_J;
316 			inst[0] = (jump->flags & IS_JAL) ? JAL : J;
317 			inst[1] = NOP;
318 			return inst + 1;
319 		}
320 	}
321 
322 #if (defined SLJIT_CONFIG_MIPS_64 && SLJIT_CONFIG_MIPS_64)
323 keep_address:
324 	if (target_addr <= 0x7fffffff) {
325 		jump->flags |= PATCH_ABS32;
326 		if (jump->flags & IS_COND) {
327 			inst[0] -= 4;
328 			inst++;
329 		}
330 		inst[2] = inst[6];
331 		inst[3] = inst[7];
332 		return inst + 3;
333 	}
334 	if (target_addr <= 0x7fffffffffffl) {
335 		jump->flags |= PATCH_ABS48;
336 		if (jump->flags & IS_COND) {
337 			inst[0] -= 2;
338 			inst++;
339 		}
340 		inst[4] = inst[6];
341 		inst[5] = inst[7];
342 		return inst + 5;
343 	}
344 #endif
345 
346 	return code_ptr;
347 }
348 
349 #ifdef __GNUC__
350 static __attribute__ ((noinline)) void sljit_cache_flush(void* code, void* code_ptr)
351 {
352 	SLJIT_CACHE_FLUSH(code, code_ptr);
353 }
354 #endif
355 
356 SLJIT_API_FUNC_ATTRIBUTE void* sljit_generate_code(struct sljit_compiler *compiler)
357 {
358 	struct sljit_memory_fragment *buf;
359 	sljit_ins *code;
360 	sljit_ins *code_ptr;
361 	sljit_ins *buf_ptr;
362 	sljit_ins *buf_end;
363 	sljit_uw word_count;
364 	sljit_uw addr;
365 
366 	struct sljit_label *label;
367 	struct sljit_jump *jump;
368 	struct sljit_const *const_;
369 
370 	CHECK_ERROR_PTR();
371 	check_sljit_generate_code(compiler);
372 	reverse_buf(compiler);
373 
374 	code = (sljit_ins*)SLJIT_MALLOC_EXEC(compiler->size * sizeof(sljit_ins));
375 	PTR_FAIL_WITH_EXEC_IF(code);
376 	buf = compiler->buf;
377 
378 	code_ptr = code;
379 	word_count = 0;
380 	label = compiler->labels;
381 	jump = compiler->jumps;
382 	const_ = compiler->consts;
383 	do {
384 		buf_ptr = (sljit_ins*)buf->memory;
385 		buf_end = buf_ptr + (buf->used_size >> 2);
386 		do {
387 			*code_ptr = *buf_ptr++;
388 			SLJIT_ASSERT(!label || label->size >= word_count);
389 			SLJIT_ASSERT(!jump || jump->addr >= word_count);
390 			SLJIT_ASSERT(!const_ || const_->addr >= word_count);
391 			/* These structures are ordered by their address. */
392 			if (label && label->size == word_count) {
393 				/* Just recording the address. */
394 				label->addr = (sljit_uw)code_ptr;
395 				label->size = code_ptr - code;
396 				label = label->next;
397 			}
398 			if (jump && jump->addr == word_count) {
399 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
400 				jump->addr = (sljit_uw)(code_ptr - 3);
401 #else
402 				jump->addr = (sljit_uw)(code_ptr - 7);
403 #endif
404 				code_ptr = detect_jump_type(jump, code_ptr, code);
405 				jump = jump->next;
406 			}
407 			if (const_ && const_->addr == word_count) {
408 				/* Just recording the address. */
409 				const_->addr = (sljit_uw)code_ptr;
410 				const_ = const_->next;
411 			}
412 			code_ptr ++;
413 			word_count ++;
414 		} while (buf_ptr < buf_end);
415 
416 		buf = buf->next;
417 	} while (buf);
418 
419 	if (label && label->size == word_count) {
420 		label->addr = (sljit_uw)code_ptr;
421 		label->size = code_ptr - code;
422 		label = label->next;
423 	}
424 
425 	SLJIT_ASSERT(!label);
426 	SLJIT_ASSERT(!jump);
427 	SLJIT_ASSERT(!const_);
428 	SLJIT_ASSERT(code_ptr - code <= (sljit_sw)compiler->size);
429 
430 	jump = compiler->jumps;
431 	while (jump) {
432 		do {
433 			addr = (jump->flags & JUMP_LABEL) ? jump->u.label->addr : jump->u.target;
434 			buf_ptr = (sljit_ins*)jump->addr;
435 
436 			if (jump->flags & PATCH_B) {
437 				addr = (sljit_sw)(addr - (jump->addr + sizeof(sljit_ins))) >> 2;
438 				SLJIT_ASSERT((sljit_sw)addr <= SIMM_MAX && (sljit_sw)addr >= SIMM_MIN);
439 				buf_ptr[0] = (buf_ptr[0] & 0xffff0000) | (addr & 0xffff);
440 				break;
441 			}
442 			if (jump->flags & PATCH_J) {
443 				SLJIT_ASSERT((addr & ~0xfffffff) == ((jump->addr + sizeof(sljit_ins)) & ~0xfffffff));
444 				buf_ptr[0] |= (addr >> 2) & 0x03ffffff;
445 				break;
446 			}
447 
448 			/* Set the fields of immediate loads. */
449 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
450 			buf_ptr[0] = (buf_ptr[0] & 0xffff0000) | ((addr >> 16) & 0xffff);
451 			buf_ptr[1] = (buf_ptr[1] & 0xffff0000) | (addr & 0xffff);
452 #else
453 			if (jump->flags & PATCH_ABS32) {
454 				SLJIT_ASSERT(addr <= 0x7fffffff);
455 				buf_ptr[0] = (buf_ptr[0] & 0xffff0000) | ((addr >> 16) & 0xffff);
456 				buf_ptr[1] = (buf_ptr[1] & 0xffff0000) | (addr & 0xffff);
457 			}
458 			else if (jump->flags & PATCH_ABS48) {
459 				SLJIT_ASSERT(addr <= 0x7fffffffffffl);
460 				buf_ptr[0] = (buf_ptr[0] & 0xffff0000) | ((addr >> 32) & 0xffff);
461 				buf_ptr[1] = (buf_ptr[1] & 0xffff0000) | ((addr >> 16) & 0xffff);
462 				buf_ptr[3] = (buf_ptr[3] & 0xffff0000) | (addr & 0xffff);
463 			}
464 			else {
465 				buf_ptr[0] = (buf_ptr[0] & 0xffff0000) | ((addr >> 48) & 0xffff);
466 				buf_ptr[1] = (buf_ptr[1] & 0xffff0000) | ((addr >> 32) & 0xffff);
467 				buf_ptr[3] = (buf_ptr[3] & 0xffff0000) | ((addr >> 16) & 0xffff);
468 				buf_ptr[5] = (buf_ptr[5] & 0xffff0000) | (addr & 0xffff);
469 			}
470 #endif
471 		} while (0);
472 		jump = jump->next;
473 	}
474 
475 	compiler->error = SLJIT_ERR_COMPILED;
476 	compiler->executable_size = (code_ptr - code) * sizeof(sljit_ins);
477 #ifndef __GNUC__
478 	SLJIT_CACHE_FLUSH(code, code_ptr);
479 #else
480 	/* GCC workaround for invalid code generation with -O2. */
481 	sljit_cache_flush(code, code_ptr);
482 #endif
483 	return code;
484 }
485 
486 /* --------------------------------------------------------------------- */
487 /*  Entry, exit                                                          */
488 /* --------------------------------------------------------------------- */
489 
490 /* Creates an index in data_transfer_insts array. */
491 #define LOAD_DATA	0x01
492 #define WORD_DATA	0x00
493 #define BYTE_DATA	0x02
494 #define HALF_DATA	0x04
495 #define INT_DATA	0x06
496 #define SIGNED_DATA	0x08
497 /* Separates integer and floating point registers */
498 #define GPR_REG		0x0f
499 #define DOUBLE_DATA	0x10
500 
501 #define MEM_MASK	0x1f
502 
503 #define WRITE_BACK	0x00020
504 #define ARG_TEST	0x00040
505 #define ALT_KEEP_CACHE	0x00080
506 #define CUMULATIVE_OP	0x00100
507 #define LOGICAL_OP	0x00200
508 #define IMM_OP		0x00400
509 #define SRC2_IMM	0x00800
510 
511 #define UNUSED_DEST	0x01000
512 #define REG_DEST	0x02000
513 #define REG1_SOURCE	0x04000
514 #define REG2_SOURCE	0x08000
515 #define SLOW_SRC1	0x10000
516 #define SLOW_SRC2	0x20000
517 #define SLOW_DEST	0x40000
518 
519 /* Only these flags are set. UNUSED_DEST is not set when no flags should be set. */
520 #define CHECK_FLAGS(list) \
521 	(!(flags & UNUSED_DEST) || (op & GET_FLAGS(~(list))))
522 
523 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
524 #define STACK_STORE	SW
525 #define STACK_LOAD	LW
526 #else
527 #define STACK_STORE	SD
528 #define STACK_LOAD	LD
529 #endif
530 
531 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
532 #include "sljitNativeMIPS_32.c"
533 #else
534 #include "sljitNativeMIPS_64.c"
535 #endif
536 
537 SLJIT_API_FUNC_ATTRIBUTE sljit_si sljit_emit_enter(struct sljit_compiler *compiler, sljit_si args, sljit_si scratches, sljit_si saveds, sljit_si local_size)
538 {
539 	sljit_ins base;
540 
541 	CHECK_ERROR();
542 	check_sljit_emit_enter(compiler, args, scratches, saveds, local_size);
543 
544 	compiler->scratches = scratches;
545 	compiler->saveds = saveds;
546 #if (defined SLJIT_DEBUG && SLJIT_DEBUG)
547 	compiler->logical_local_size = local_size;
548 #endif
549 
550 	local_size += (saveds + 1 + 4) * sizeof(sljit_sw);
551 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
552 	local_size = (local_size + 15) & ~0xf;
553 #else
554 	local_size = (local_size + 31) & ~0x1f;
555 #endif
556 	compiler->local_size = local_size;
557 
558 	if (local_size <= SIMM_MAX) {
559 		/* Frequent case. */
560 		FAIL_IF(push_inst(compiler, ADDIU_W | S(SLJIT_LOCALS_REG) | T(SLJIT_LOCALS_REG) | IMM(-local_size), DR(SLJIT_LOCALS_REG)));
561 		base = S(SLJIT_LOCALS_REG);
562 	}
563 	else {
564 		FAIL_IF(load_immediate(compiler, DR(TMP_REG1), local_size));
565 		FAIL_IF(push_inst(compiler, ADDU_W | S(SLJIT_LOCALS_REG) | TA(0) | D(TMP_REG2), DR(TMP_REG2)));
566 		FAIL_IF(push_inst(compiler, SUBU_W | S(SLJIT_LOCALS_REG) | T(TMP_REG1) | D(SLJIT_LOCALS_REG), DR(SLJIT_LOCALS_REG)));
567 		base = S(TMP_REG2);
568 		local_size = 0;
569 	}
570 
571 	FAIL_IF(push_inst(compiler, STACK_STORE | base | TA(RETURN_ADDR_REG) | IMM(local_size - 1 * (sljit_si)sizeof(sljit_sw)), MOVABLE_INS));
572 	if (saveds >= 1)
573 		FAIL_IF(push_inst(compiler, STACK_STORE | base | T(SLJIT_SAVED_REG1) | IMM(local_size - 2 * (sljit_si)sizeof(sljit_sw)), MOVABLE_INS));
574 	if (saveds >= 2)
575 		FAIL_IF(push_inst(compiler, STACK_STORE | base | T(SLJIT_SAVED_REG2) | IMM(local_size - 3 * (sljit_si)sizeof(sljit_sw)), MOVABLE_INS));
576 	if (saveds >= 3)
577 		FAIL_IF(push_inst(compiler, STACK_STORE | base | T(SLJIT_SAVED_REG3) | IMM(local_size - 4 * (sljit_si)sizeof(sljit_sw)), MOVABLE_INS));
578 	if (saveds >= 4)
579 		FAIL_IF(push_inst(compiler, STACK_STORE | base | T(SLJIT_SAVED_EREG1) | IMM(local_size - 5 * (sljit_si)sizeof(sljit_sw)), MOVABLE_INS));
580 	if (saveds >= 5)
581 		FAIL_IF(push_inst(compiler, STACK_STORE | base | T(SLJIT_SAVED_EREG2) | IMM(local_size - 6 * (sljit_si)sizeof(sljit_sw)), MOVABLE_INS));
582 
583 	if (args >= 1)
584 		FAIL_IF(push_inst(compiler, ADDU_W | SA(4) | TA(0) | D(SLJIT_SAVED_REG1), DR(SLJIT_SAVED_REG1)));
585 	if (args >= 2)
586 		FAIL_IF(push_inst(compiler, ADDU_W | SA(5) | TA(0) | D(SLJIT_SAVED_REG2), DR(SLJIT_SAVED_REG2)));
587 	if (args >= 3)
588 		FAIL_IF(push_inst(compiler, ADDU_W | SA(6) | TA(0) | D(SLJIT_SAVED_REG3), DR(SLJIT_SAVED_REG3)));
589 
590 	return SLJIT_SUCCESS;
591 }
592 
593 SLJIT_API_FUNC_ATTRIBUTE void sljit_set_context(struct sljit_compiler *compiler, sljit_si args, sljit_si scratches, sljit_si saveds, sljit_si local_size)
594 {
595 	CHECK_ERROR_VOID();
596 	check_sljit_set_context(compiler, args, scratches, saveds, local_size);
597 
598 	compiler->scratches = scratches;
599 	compiler->saveds = saveds;
600 #if (defined SLJIT_DEBUG && SLJIT_DEBUG)
601 	compiler->logical_local_size = local_size;
602 #endif
603 
604 	local_size += (saveds + 1 + 4) * sizeof(sljit_sw);
605 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
606 	compiler->local_size = (local_size + 15) & ~0xf;
607 #else
608 	compiler->local_size = (local_size + 31) & ~0x1f;
609 #endif
610 }
611 
612 SLJIT_API_FUNC_ATTRIBUTE sljit_si sljit_emit_return(struct sljit_compiler *compiler, sljit_si op, sljit_si src, sljit_sw srcw)
613 {
614 	sljit_si local_size;
615 	sljit_ins base;
616 
617 	CHECK_ERROR();
618 	check_sljit_emit_return(compiler, op, src, srcw);
619 
620 	FAIL_IF(emit_mov_before_return(compiler, op, src, srcw));
621 
622 	local_size = compiler->local_size;
623 	if (local_size <= SIMM_MAX)
624 		base = S(SLJIT_LOCALS_REG);
625 	else {
626 		FAIL_IF(load_immediate(compiler, DR(TMP_REG1), local_size));
627 		FAIL_IF(push_inst(compiler, ADDU_W | S(SLJIT_LOCALS_REG) | T(TMP_REG1) | D(TMP_REG1), DR(TMP_REG1)));
628 		base = S(TMP_REG1);
629 		local_size = 0;
630 	}
631 
632 	FAIL_IF(push_inst(compiler, STACK_LOAD | base | TA(RETURN_ADDR_REG) | IMM(local_size - 1 * (sljit_si)sizeof(sljit_sw)), RETURN_ADDR_REG));
633 	if (compiler->saveds >= 5)
634 		FAIL_IF(push_inst(compiler, STACK_LOAD | base | T(SLJIT_SAVED_EREG2) | IMM(local_size - 6 * (sljit_si)sizeof(sljit_sw)), DR(SLJIT_SAVED_EREG2)));
635 	if (compiler->saveds >= 4)
636 		FAIL_IF(push_inst(compiler, STACK_LOAD | base | T(SLJIT_SAVED_EREG1) | IMM(local_size - 5 * (sljit_si)sizeof(sljit_sw)), DR(SLJIT_SAVED_EREG1)));
637 	if (compiler->saveds >= 3)
638 		FAIL_IF(push_inst(compiler, STACK_LOAD | base | T(SLJIT_SAVED_REG3) | IMM(local_size - 4 * (sljit_si)sizeof(sljit_sw)), DR(SLJIT_SAVED_REG3)));
639 	if (compiler->saveds >= 2)
640 		FAIL_IF(push_inst(compiler, STACK_LOAD | base | T(SLJIT_SAVED_REG2) | IMM(local_size - 3 * (sljit_si)sizeof(sljit_sw)), DR(SLJIT_SAVED_REG2)));
641 	if (compiler->saveds >= 1)
642 		FAIL_IF(push_inst(compiler, STACK_LOAD | base | T(SLJIT_SAVED_REG1) | IMM(local_size - 2 * (sljit_si)sizeof(sljit_sw)), DR(SLJIT_SAVED_REG1)));
643 
644 	FAIL_IF(push_inst(compiler, JR | SA(RETURN_ADDR_REG), UNMOVABLE_INS));
645 	if (compiler->local_size <= SIMM_MAX)
646 		return push_inst(compiler, ADDIU_W | S(SLJIT_LOCALS_REG) | T(SLJIT_LOCALS_REG) | IMM(compiler->local_size), UNMOVABLE_INS);
647 	else
648 		return push_inst(compiler, ADDU_W | S(TMP_REG1) | TA(0) | D(SLJIT_LOCALS_REG), UNMOVABLE_INS);
649 }
650 
651 #undef STACK_STORE
652 #undef STACK_LOAD
653 
654 /* --------------------------------------------------------------------- */
655 /*  Operators                                                            */
656 /* --------------------------------------------------------------------- */
657 
658 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
659 #define ARCH_32_64(a, b)	a
660 #else
661 #define ARCH_32_64(a, b)	b
662 #endif
663 
664 static SLJIT_CONST sljit_ins data_transfer_insts[16 + 4] = {
665 /* u w s */ ARCH_32_64(HI(43) /* sw */, HI(63) /* sd */),
666 /* u w l */ ARCH_32_64(HI(35) /* lw */, HI(55) /* ld */),
667 /* u b s */ HI(40) /* sb */,
668 /* u b l */ HI(36) /* lbu */,
669 /* u h s */ HI(41) /* sh */,
670 /* u h l */ HI(37) /* lhu */,
671 /* u i s */ HI(43) /* sw */,
672 /* u i l */ ARCH_32_64(HI(35) /* lw */, HI(39) /* lwu */),
673 
674 /* s w s */ ARCH_32_64(HI(43) /* sw */, HI(63) /* sd */),
675 /* s w l */ ARCH_32_64(HI(35) /* lw */, HI(55) /* ld */),
676 /* s b s */ HI(40) /* sb */,
677 /* s b l */ HI(32) /* lb */,
678 /* s h s */ HI(41) /* sh */,
679 /* s h l */ HI(33) /* lh */,
680 /* s i s */ HI(43) /* sw */,
681 /* s i l */ HI(35) /* lw */,
682 
683 /* d   s */ HI(61) /* sdc1 */,
684 /* d   l */ HI(53) /* ldc1 */,
685 /* s   s */ HI(57) /* swc1 */,
686 /* s   l */ HI(49) /* lwc1 */,
687 };
688 
689 #undef ARCH_32_64
690 
691 /* reg_ar is an absoulute register! */
692 
693 /* Can perform an operation using at most 1 instruction. */
694 static sljit_si getput_arg_fast(struct sljit_compiler *compiler, sljit_si flags, sljit_si reg_ar, sljit_si arg, sljit_sw argw)
695 {
696 	SLJIT_ASSERT(arg & SLJIT_MEM);
697 
698 	if ((!(flags & WRITE_BACK) || !(arg & REG_MASK)) && !(arg & OFFS_REG_MASK) && argw <= SIMM_MAX && argw >= SIMM_MIN) {
699 		/* Works for both absoulte and relative addresses. */
700 		if (SLJIT_UNLIKELY(flags & ARG_TEST))
701 			return 1;
702 		FAIL_IF(push_inst(compiler, data_transfer_insts[flags & MEM_MASK] | S(arg & REG_MASK)
703 			| TA(reg_ar) | IMM(argw), ((flags & MEM_MASK) <= GPR_REG && (flags & LOAD_DATA)) ? reg_ar : MOVABLE_INS));
704 		return -1;
705 	}
706 	return 0;
707 }
708 
709 /* See getput_arg below.
710    Note: can_cache is called only for binary operators. Those
711    operators always uses word arguments without write back. */
712 static sljit_si can_cache(sljit_si arg, sljit_sw argw, sljit_si next_arg, sljit_sw next_argw)
713 {
714 	SLJIT_ASSERT((arg & SLJIT_MEM) && (next_arg & SLJIT_MEM));
715 
716 	/* Simple operation except for updates. */
717 	if (arg & OFFS_REG_MASK) {
718 		argw &= 0x3;
719 		next_argw &= 0x3;
720 		if (argw && argw == next_argw && (arg == next_arg || (arg & OFFS_REG_MASK) == (next_arg & OFFS_REG_MASK)))
721 			return 1;
722 		return 0;
723 	}
724 
725 	if (arg == next_arg) {
726 		if (((next_argw - argw) <= SIMM_MAX && (next_argw - argw) >= SIMM_MIN))
727 			return 1;
728 		return 0;
729 	}
730 
731 	return 0;
732 }
733 
734 /* Emit the necessary instructions. See can_cache above. */
735 static sljit_si getput_arg(struct sljit_compiler *compiler, sljit_si flags, sljit_si reg_ar, sljit_si arg, sljit_sw argw, sljit_si next_arg, sljit_sw next_argw)
736 {
737 	sljit_si tmp_ar, base, delay_slot;
738 
739 	SLJIT_ASSERT(arg & SLJIT_MEM);
740 	if (!(next_arg & SLJIT_MEM)) {
741 		next_arg = 0;
742 		next_argw = 0;
743 	}
744 
745 	if ((flags & MEM_MASK) <= GPR_REG && (flags & LOAD_DATA)) {
746 		tmp_ar = reg_ar;
747 		delay_slot = reg_ar;
748 	} else {
749 		tmp_ar = DR(TMP_REG1);
750 		delay_slot = MOVABLE_INS;
751 	}
752 	base = arg & REG_MASK;
753 
754 	if (SLJIT_UNLIKELY(arg & OFFS_REG_MASK)) {
755 		argw &= 0x3;
756 		if ((flags & WRITE_BACK) && reg_ar == DR(base)) {
757 			SLJIT_ASSERT(!(flags & LOAD_DATA) && DR(TMP_REG1) != reg_ar);
758 			FAIL_IF(push_inst(compiler, ADDU_W | SA(reg_ar) | TA(0) | D(TMP_REG1), DR(TMP_REG1)));
759 			reg_ar = DR(TMP_REG1);
760 		}
761 
762 		/* Using the cache. */
763 		if (argw == compiler->cache_argw) {
764 			if (!(flags & WRITE_BACK)) {
765 				if (arg == compiler->cache_arg)
766 					return push_inst(compiler, data_transfer_insts[flags & MEM_MASK] | S(TMP_REG3) | TA(reg_ar), delay_slot);
767 				if ((SLJIT_MEM | (arg & OFFS_REG_MASK)) == compiler->cache_arg) {
768 					if (arg == next_arg && argw == (next_argw & 0x3)) {
769 						compiler->cache_arg = arg;
770 						compiler->cache_argw = argw;
771 						FAIL_IF(push_inst(compiler, ADDU_W | S(base) | T(TMP_REG3) | D(TMP_REG3), DR(TMP_REG3)));
772 						return push_inst(compiler, data_transfer_insts[flags & MEM_MASK] | S(TMP_REG3) | TA(reg_ar), delay_slot);
773 					}
774 					FAIL_IF(push_inst(compiler, ADDU_W | S(base) | T(TMP_REG3) | DA(tmp_ar), tmp_ar));
775 					return push_inst(compiler, data_transfer_insts[flags & MEM_MASK] | SA(tmp_ar) | TA(reg_ar), delay_slot);
776 				}
777 			}
778 			else {
779 				if ((SLJIT_MEM | (arg & OFFS_REG_MASK)) == compiler->cache_arg) {
780 					FAIL_IF(push_inst(compiler, ADDU_W | S(base) | T(TMP_REG3) | D(base), DR(base)));
781 					return push_inst(compiler, data_transfer_insts[flags & MEM_MASK] | S(base) | TA(reg_ar), delay_slot);
782 				}
783 			}
784 		}
785 
786 		if (SLJIT_UNLIKELY(argw)) {
787 			compiler->cache_arg = SLJIT_MEM | (arg & OFFS_REG_MASK);
788 			compiler->cache_argw = argw;
789 			FAIL_IF(push_inst(compiler, SLL_W | T(OFFS_REG(arg)) | D(TMP_REG3) | SH_IMM(argw), DR(TMP_REG3)));
790 		}
791 
792 		if (!(flags & WRITE_BACK)) {
793 			if (arg == next_arg && argw == (next_argw & 0x3)) {
794 				compiler->cache_arg = arg;
795 				compiler->cache_argw = argw;
796 				FAIL_IF(push_inst(compiler, ADDU_W | S(base) | T(!argw ? OFFS_REG(arg) : TMP_REG3) | D(TMP_REG3), DR(TMP_REG3)));
797 				tmp_ar = DR(TMP_REG3);
798 			}
799 			else
800 				FAIL_IF(push_inst(compiler, ADDU_W | S(base) | T(!argw ? OFFS_REG(arg) : TMP_REG3) | DA(tmp_ar), tmp_ar));
801 			return push_inst(compiler, data_transfer_insts[flags & MEM_MASK] | SA(tmp_ar) | TA(reg_ar), delay_slot);
802 		}
803 		FAIL_IF(push_inst(compiler, ADDU_W | S(base) | T(!argw ? OFFS_REG(arg) : TMP_REG3) | D(base), DR(base)));
804 		return push_inst(compiler, data_transfer_insts[flags & MEM_MASK] | S(base) | TA(reg_ar), delay_slot);
805 	}
806 
807 	if (SLJIT_UNLIKELY(flags & WRITE_BACK) && base) {
808 		/* Update only applies if a base register exists. */
809 		if (reg_ar == DR(base)) {
810 			SLJIT_ASSERT(!(flags & LOAD_DATA) && DR(TMP_REG1) != reg_ar);
811 			if (argw <= SIMM_MAX && argw >= SIMM_MIN) {
812 				FAIL_IF(push_inst(compiler, data_transfer_insts[flags & MEM_MASK] | S(base) | TA(reg_ar) | IMM(argw), MOVABLE_INS));
813 				if (argw)
814 					return push_inst(compiler, ADDIU_W | S(base) | T(base) | IMM(argw), DR(base));
815 				return SLJIT_SUCCESS;
816 			}
817 			FAIL_IF(push_inst(compiler, ADDU_W | SA(reg_ar) | TA(0) | D(TMP_REG1), DR(TMP_REG1)));
818 			reg_ar = DR(TMP_REG1);
819 		}
820 
821 		if (argw <= SIMM_MAX && argw >= SIMM_MIN) {
822 			if (argw)
823 				FAIL_IF(push_inst(compiler, ADDIU_W | S(base) | T(base) | IMM(argw), DR(base)));
824 		}
825 		else {
826 			if (compiler->cache_arg == SLJIT_MEM && argw - compiler->cache_argw <= SIMM_MAX && argw - compiler->cache_argw >= SIMM_MIN) {
827 				if (argw != compiler->cache_argw) {
828 					FAIL_IF(push_inst(compiler, ADDIU_W | S(TMP_REG3) | T(TMP_REG3) | IMM(argw - compiler->cache_argw), DR(TMP_REG3)));
829 					compiler->cache_argw = argw;
830 				}
831 				FAIL_IF(push_inst(compiler, ADDU_W | S(base) | T(TMP_REG3) | D(base), DR(base)));
832 			}
833 			else {
834 				compiler->cache_arg = SLJIT_MEM;
835 				compiler->cache_argw = argw;
836 				FAIL_IF(load_immediate(compiler, DR(TMP_REG3), argw));
837 				FAIL_IF(push_inst(compiler, ADDU_W | S(base) | T(TMP_REG3) | D(base), DR(base)));
838 			}
839 		}
840 		return push_inst(compiler, data_transfer_insts[flags & MEM_MASK] | S(base) | TA(reg_ar), delay_slot);
841 	}
842 
843 	if (compiler->cache_arg == arg && argw - compiler->cache_argw <= SIMM_MAX && argw - compiler->cache_argw >= SIMM_MIN) {
844 		if (argw != compiler->cache_argw) {
845 			FAIL_IF(push_inst(compiler, ADDIU_W | S(TMP_REG3) | T(TMP_REG3) | IMM(argw - compiler->cache_argw), DR(TMP_REG3)));
846 			compiler->cache_argw = argw;
847 		}
848 		return push_inst(compiler, data_transfer_insts[flags & MEM_MASK] | S(TMP_REG3) | TA(reg_ar), delay_slot);
849 	}
850 
851 	if (compiler->cache_arg == SLJIT_MEM && argw - compiler->cache_argw <= SIMM_MAX && argw - compiler->cache_argw >= SIMM_MIN) {
852 		if (argw != compiler->cache_argw)
853 			FAIL_IF(push_inst(compiler, ADDIU_W | S(TMP_REG3) | T(TMP_REG3) | IMM(argw - compiler->cache_argw), DR(TMP_REG3)));
854 	}
855 	else {
856 		compiler->cache_arg = SLJIT_MEM;
857 		FAIL_IF(load_immediate(compiler, DR(TMP_REG3), argw));
858 	}
859 	compiler->cache_argw = argw;
860 
861 	if (!base)
862 		return push_inst(compiler, data_transfer_insts[flags & MEM_MASK] | S(TMP_REG3) | TA(reg_ar), delay_slot);
863 
864 	if (arg == next_arg && next_argw - argw <= SIMM_MAX && next_argw - argw >= SIMM_MIN) {
865 		compiler->cache_arg = arg;
866 		FAIL_IF(push_inst(compiler, ADDU_W | S(TMP_REG3) | T(base) | D(TMP_REG3), DR(TMP_REG3)));
867 		return push_inst(compiler, data_transfer_insts[flags & MEM_MASK] | S(TMP_REG3) | TA(reg_ar), delay_slot);
868 	}
869 
870 	FAIL_IF(push_inst(compiler, ADDU_W | S(TMP_REG3) | T(base) | DA(tmp_ar), tmp_ar));
871 	return push_inst(compiler, data_transfer_insts[flags & MEM_MASK] | SA(tmp_ar) | TA(reg_ar), delay_slot);
872 }
873 
874 static SLJIT_INLINE sljit_si emit_op_mem(struct sljit_compiler *compiler, sljit_si flags, sljit_si reg_ar, sljit_si arg, sljit_sw argw)
875 {
876 	if (getput_arg_fast(compiler, flags, reg_ar, arg, argw))
877 		return compiler->error;
878 	compiler->cache_arg = 0;
879 	compiler->cache_argw = 0;
880 	return getput_arg(compiler, flags, reg_ar, arg, argw, 0, 0);
881 }
882 
883 static SLJIT_INLINE sljit_si emit_op_mem2(struct sljit_compiler *compiler, sljit_si flags, sljit_si reg, sljit_si arg1, sljit_sw arg1w, sljit_si arg2, sljit_sw arg2w)
884 {
885 	if (getput_arg_fast(compiler, flags, reg, arg1, arg1w))
886 		return compiler->error;
887 	return getput_arg(compiler, flags, reg, arg1, arg1w, arg2, arg2w);
888 }
889 
890 static sljit_si emit_op(struct sljit_compiler *compiler, sljit_si op, sljit_si flags,
891 	sljit_si dst, sljit_sw dstw,
892 	sljit_si src1, sljit_sw src1w,
893 	sljit_si src2, sljit_sw src2w)
894 {
895 	/* arg1 goes to TMP_REG1 or src reg
896 	   arg2 goes to TMP_REG2, imm or src reg
897 	   TMP_REG3 can be used for caching
898 	   result goes to TMP_REG2, so put result can use TMP_REG1 and TMP_REG3. */
899 	sljit_si dst_r = TMP_REG2;
900 	sljit_si src1_r;
901 	sljit_sw src2_r = 0;
902 	sljit_si sugg_src2_r = TMP_REG2;
903 
904 	if (!(flags & ALT_KEEP_CACHE)) {
905 		compiler->cache_arg = 0;
906 		compiler->cache_argw = 0;
907 	}
908 
909 	if (SLJIT_UNLIKELY(dst == SLJIT_UNUSED)) {
910 		if (op >= SLJIT_MOV && op <= SLJIT_MOVU_SI && !(src2 & SLJIT_MEM))
911 			return SLJIT_SUCCESS;
912 		if (GET_FLAGS(op))
913 			flags |= UNUSED_DEST;
914 	}
915 	else if (FAST_IS_REG(dst)) {
916 		dst_r = dst;
917 		flags |= REG_DEST;
918 		if (op >= SLJIT_MOV && op <= SLJIT_MOVU_SI)
919 			sugg_src2_r = dst_r;
920 	}
921 	else if ((dst & SLJIT_MEM) && !getput_arg_fast(compiler, flags | ARG_TEST, DR(TMP_REG1), dst, dstw))
922 		flags |= SLOW_DEST;
923 
924 	if (flags & IMM_OP) {
925 		if ((src2 & SLJIT_IMM) && src2w) {
926 			if ((!(flags & LOGICAL_OP) && (src2w <= SIMM_MAX && src2w >= SIMM_MIN))
927 				|| ((flags & LOGICAL_OP) && !(src2w & ~UIMM_MAX))) {
928 				flags |= SRC2_IMM;
929 				src2_r = src2w;
930 			}
931 		}
932 		if (!(flags & SRC2_IMM) && (flags & CUMULATIVE_OP) && (src1 & SLJIT_IMM) && src1w) {
933 			if ((!(flags & LOGICAL_OP) && (src1w <= SIMM_MAX && src1w >= SIMM_MIN))
934 				|| ((flags & LOGICAL_OP) && !(src1w & ~UIMM_MAX))) {
935 				flags |= SRC2_IMM;
936 				src2_r = src1w;
937 
938 				/* And swap arguments. */
939 				src1 = src2;
940 				src1w = src2w;
941 				src2 = SLJIT_IMM;
942 				/* src2w = src2_r unneeded. */
943 			}
944 		}
945 	}
946 
947 	/* Source 1. */
948 	if (FAST_IS_REG(src1)) {
949 		src1_r = src1;
950 		flags |= REG1_SOURCE;
951 	}
952 	else if (src1 & SLJIT_IMM) {
953 		if (src1w) {
954 			FAIL_IF(load_immediate(compiler, DR(TMP_REG1), src1w));
955 			src1_r = TMP_REG1;
956 		}
957 		else
958 			src1_r = 0;
959 	}
960 	else {
961 		if (getput_arg_fast(compiler, flags | LOAD_DATA, DR(TMP_REG1), src1, src1w))
962 			FAIL_IF(compiler->error);
963 		else
964 			flags |= SLOW_SRC1;
965 		src1_r = TMP_REG1;
966 	}
967 
968 	/* Source 2. */
969 	if (FAST_IS_REG(src2)) {
970 		src2_r = src2;
971 		flags |= REG2_SOURCE;
972 		if (!(flags & REG_DEST) && op >= SLJIT_MOV && op <= SLJIT_MOVU_SI)
973 			dst_r = src2_r;
974 	}
975 	else if (src2 & SLJIT_IMM) {
976 		if (!(flags & SRC2_IMM)) {
977 			if (src2w) {
978 				FAIL_IF(load_immediate(compiler, DR(sugg_src2_r), src2w));
979 				src2_r = sugg_src2_r;
980 			}
981 			else {
982 				src2_r = 0;
983 				if ((op >= SLJIT_MOV && op <= SLJIT_MOVU_SI) && (dst & SLJIT_MEM))
984 					dst_r = 0;
985 			}
986 		}
987 	}
988 	else {
989 		if (getput_arg_fast(compiler, flags | LOAD_DATA, DR(sugg_src2_r), src2, src2w))
990 			FAIL_IF(compiler->error);
991 		else
992 			flags |= SLOW_SRC2;
993 		src2_r = sugg_src2_r;
994 	}
995 
996 	if ((flags & (SLOW_SRC1 | SLOW_SRC2)) == (SLOW_SRC1 | SLOW_SRC2)) {
997 		SLJIT_ASSERT(src2_r == TMP_REG2);
998 		if (!can_cache(src1, src1w, src2, src2w) && can_cache(src1, src1w, dst, dstw)) {
999 			FAIL_IF(getput_arg(compiler, flags | LOAD_DATA, DR(TMP_REG2), src2, src2w, src1, src1w));
1000 			FAIL_IF(getput_arg(compiler, flags | LOAD_DATA, DR(TMP_REG1), src1, src1w, dst, dstw));
1001 		}
1002 		else {
1003 			FAIL_IF(getput_arg(compiler, flags | LOAD_DATA, DR(TMP_REG1), src1, src1w, src2, src2w));
1004 			FAIL_IF(getput_arg(compiler, flags | LOAD_DATA, DR(TMP_REG2), src2, src2w, dst, dstw));
1005 		}
1006 	}
1007 	else if (flags & SLOW_SRC1)
1008 		FAIL_IF(getput_arg(compiler, flags | LOAD_DATA, DR(TMP_REG1), src1, src1w, dst, dstw));
1009 	else if (flags & SLOW_SRC2)
1010 		FAIL_IF(getput_arg(compiler, flags | LOAD_DATA, DR(sugg_src2_r), src2, src2w, dst, dstw));
1011 
1012 	FAIL_IF(emit_single_op(compiler, op, flags, dst_r, src1_r, src2_r));
1013 
1014 	if (dst & SLJIT_MEM) {
1015 		if (!(flags & SLOW_DEST)) {
1016 			getput_arg_fast(compiler, flags, DR(dst_r), dst, dstw);
1017 			return compiler->error;
1018 		}
1019 		return getput_arg(compiler, flags, DR(dst_r), dst, dstw, 0, 0);
1020 	}
1021 
1022 	return SLJIT_SUCCESS;
1023 }
1024 
1025 SLJIT_API_FUNC_ATTRIBUTE sljit_si sljit_emit_op0(struct sljit_compiler *compiler, sljit_si op)
1026 {
1027 #if (defined SLJIT_CONFIG_MIPS_64 && SLJIT_CONFIG_MIPS_64)
1028 	sljit_si int_op = op & SLJIT_INT_OP;
1029 #endif
1030 
1031 	CHECK_ERROR();
1032 	check_sljit_emit_op0(compiler, op);
1033 
1034 	op = GET_OPCODE(op);
1035 	switch (op) {
1036 	case SLJIT_BREAKPOINT:
1037 		return push_inst(compiler, BREAK, UNMOVABLE_INS);
1038 	case SLJIT_NOP:
1039 		return push_inst(compiler, NOP, UNMOVABLE_INS);
1040 	case SLJIT_UMUL:
1041 	case SLJIT_SMUL:
1042 #if (defined SLJIT_CONFIG_MIPS_64 && SLJIT_CONFIG_MIPS_64)
1043 		FAIL_IF(push_inst(compiler, (op == SLJIT_UMUL ? DMULTU : DMULT) | S(SLJIT_SCRATCH_REG1) | T(SLJIT_SCRATCH_REG2), MOVABLE_INS));
1044 #else
1045 		FAIL_IF(push_inst(compiler, (op == SLJIT_UMUL ? MULTU : MULT) | S(SLJIT_SCRATCH_REG1) | T(SLJIT_SCRATCH_REG2), MOVABLE_INS));
1046 #endif
1047 		FAIL_IF(push_inst(compiler, MFLO | D(SLJIT_SCRATCH_REG1), DR(SLJIT_SCRATCH_REG1)));
1048 		return push_inst(compiler, MFHI | D(SLJIT_SCRATCH_REG2), DR(SLJIT_SCRATCH_REG2));
1049 	case SLJIT_UDIV:
1050 	case SLJIT_SDIV:
1051 #if !(defined SLJIT_MIPS_32_64 && SLJIT_MIPS_32_64)
1052 		FAIL_IF(push_inst(compiler, NOP, UNMOVABLE_INS));
1053 		FAIL_IF(push_inst(compiler, NOP, UNMOVABLE_INS));
1054 #endif
1055 
1056 #if (defined SLJIT_CONFIG_MIPS_64 && SLJIT_CONFIG_MIPS_64)
1057 		if (int_op)
1058 			FAIL_IF(push_inst(compiler, (op == SLJIT_UDIV ? DIVU : DIV) | S(SLJIT_SCRATCH_REG1) | T(SLJIT_SCRATCH_REG2), MOVABLE_INS));
1059 		else
1060 			FAIL_IF(push_inst(compiler, (op == SLJIT_UDIV ? DDIVU : DDIV) | S(SLJIT_SCRATCH_REG1) | T(SLJIT_SCRATCH_REG2), MOVABLE_INS));
1061 #else
1062 		FAIL_IF(push_inst(compiler, (op == SLJIT_UDIV ? DIVU : DIV) | S(SLJIT_SCRATCH_REG1) | T(SLJIT_SCRATCH_REG2), MOVABLE_INS));
1063 #endif
1064 
1065 		FAIL_IF(push_inst(compiler, MFLO | D(SLJIT_SCRATCH_REG1), DR(SLJIT_SCRATCH_REG1)));
1066 		return push_inst(compiler, MFHI | D(SLJIT_SCRATCH_REG2), DR(SLJIT_SCRATCH_REG2));
1067 	}
1068 
1069 	return SLJIT_SUCCESS;
1070 }
1071 
1072 SLJIT_API_FUNC_ATTRIBUTE sljit_si sljit_emit_op1(struct sljit_compiler *compiler, sljit_si op,
1073 	sljit_si dst, sljit_sw dstw,
1074 	sljit_si src, sljit_sw srcw)
1075 {
1076 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
1077 #	define flags 0
1078 #else
1079 	sljit_si flags = 0;
1080 #endif
1081 
1082 	CHECK_ERROR();
1083 	check_sljit_emit_op1(compiler, op, dst, dstw, src, srcw);
1084 	ADJUST_LOCAL_OFFSET(dst, dstw);
1085 	ADJUST_LOCAL_OFFSET(src, srcw);
1086 
1087 #if (defined SLJIT_CONFIG_MIPS_64 && SLJIT_CONFIG_MIPS_64)
1088 	if ((op & SLJIT_INT_OP) && GET_OPCODE(op) >= SLJIT_NOT) {
1089 		flags |= INT_DATA | SIGNED_DATA;
1090 		if (src & SLJIT_IMM)
1091 			srcw = (sljit_si)srcw;
1092 	}
1093 #endif
1094 
1095 	switch (GET_OPCODE(op)) {
1096 	case SLJIT_MOV:
1097 	case SLJIT_MOV_P:
1098 		return emit_op(compiler, SLJIT_MOV, WORD_DATA, dst, dstw, TMP_REG1, 0, src, srcw);
1099 
1100 	case SLJIT_MOV_UI:
1101 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
1102 		return emit_op(compiler, SLJIT_MOV_UI, INT_DATA, dst, dstw, TMP_REG1, 0, src, srcw);
1103 #else
1104 		return emit_op(compiler, SLJIT_MOV_UI, INT_DATA, dst, dstw, TMP_REG1, 0, src, (src & SLJIT_IMM) ? (sljit_ui)srcw : srcw);
1105 #endif
1106 
1107 	case SLJIT_MOV_SI:
1108 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
1109 		return emit_op(compiler, SLJIT_MOV_SI, INT_DATA | SIGNED_DATA, dst, dstw, TMP_REG1, 0, src, srcw);
1110 #else
1111 		return emit_op(compiler, SLJIT_MOV_SI, INT_DATA | SIGNED_DATA, dst, dstw, TMP_REG1, 0, src, (src & SLJIT_IMM) ? (sljit_si)srcw : srcw);
1112 #endif
1113 
1114 	case SLJIT_MOV_UB:
1115 		return emit_op(compiler, SLJIT_MOV_UB, BYTE_DATA, dst, dstw, TMP_REG1, 0, src, (src & SLJIT_IMM) ? (sljit_ub)srcw : srcw);
1116 
1117 	case SLJIT_MOV_SB:
1118 		return emit_op(compiler, SLJIT_MOV_SB, BYTE_DATA | SIGNED_DATA, dst, dstw, TMP_REG1, 0, src, (src & SLJIT_IMM) ? (sljit_sb)srcw : srcw);
1119 
1120 	case SLJIT_MOV_UH:
1121 		return emit_op(compiler, SLJIT_MOV_UH, HALF_DATA, dst, dstw, TMP_REG1, 0, src, (src & SLJIT_IMM) ? (sljit_uh)srcw : srcw);
1122 
1123 	case SLJIT_MOV_SH:
1124 		return emit_op(compiler, SLJIT_MOV_SH, HALF_DATA | SIGNED_DATA, dst, dstw, TMP_REG1, 0, src, (src & SLJIT_IMM) ? (sljit_sh)srcw : srcw);
1125 
1126 	case SLJIT_MOVU:
1127 	case SLJIT_MOVU_P:
1128 		return emit_op(compiler, SLJIT_MOV, WORD_DATA | WRITE_BACK, dst, dstw, TMP_REG1, 0, src, srcw);
1129 
1130 	case SLJIT_MOVU_UI:
1131 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
1132 		return emit_op(compiler, SLJIT_MOV_UI, INT_DATA | WRITE_BACK, dst, dstw, TMP_REG1, 0, src, srcw);
1133 #else
1134 		return emit_op(compiler, SLJIT_MOV_UI, INT_DATA | WRITE_BACK, dst, dstw, TMP_REG1, 0, src, (src & SLJIT_IMM) ? (sljit_ui)srcw : srcw);
1135 #endif
1136 
1137 	case SLJIT_MOVU_SI:
1138 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
1139 		return emit_op(compiler, SLJIT_MOV_SI, INT_DATA | SIGNED_DATA | WRITE_BACK, dst, dstw, TMP_REG1, 0, src, srcw);
1140 #else
1141 		return emit_op(compiler, SLJIT_MOV_SI, INT_DATA | SIGNED_DATA | WRITE_BACK, dst, dstw, TMP_REG1, 0, src, (src & SLJIT_IMM) ? (sljit_si)srcw : srcw);
1142 #endif
1143 
1144 	case SLJIT_MOVU_UB:
1145 		return emit_op(compiler, SLJIT_MOV_UB, BYTE_DATA | WRITE_BACK, dst, dstw, TMP_REG1, 0, src, (src & SLJIT_IMM) ? (sljit_ub)srcw : srcw);
1146 
1147 	case SLJIT_MOVU_SB:
1148 		return emit_op(compiler, SLJIT_MOV_SB, BYTE_DATA | SIGNED_DATA | WRITE_BACK, dst, dstw, TMP_REG1, 0, src, (src & SLJIT_IMM) ? (sljit_sb)srcw : srcw);
1149 
1150 	case SLJIT_MOVU_UH:
1151 		return emit_op(compiler, SLJIT_MOV_UH, HALF_DATA | WRITE_BACK, dst, dstw, TMP_REG1, 0, src, (src & SLJIT_IMM) ? (sljit_uh)srcw : srcw);
1152 
1153 	case SLJIT_MOVU_SH:
1154 		return emit_op(compiler, SLJIT_MOV_SH, HALF_DATA | SIGNED_DATA | WRITE_BACK, dst, dstw, TMP_REG1, 0, src, (src & SLJIT_IMM) ? (sljit_sh)srcw : srcw);
1155 
1156 	case SLJIT_NOT:
1157 		return emit_op(compiler, op, flags, dst, dstw, TMP_REG1, 0, src, srcw);
1158 
1159 	case SLJIT_NEG:
1160 		return emit_op(compiler, SLJIT_SUB | GET_ALL_FLAGS(op), flags | IMM_OP, dst, dstw, SLJIT_IMM, 0, src, srcw);
1161 
1162 	case SLJIT_CLZ:
1163 		return emit_op(compiler, op, flags, dst, dstw, TMP_REG1, 0, src, srcw);
1164 	}
1165 
1166 	return SLJIT_SUCCESS;
1167 
1168 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
1169 #	undef flags
1170 #endif
1171 }
1172 
1173 SLJIT_API_FUNC_ATTRIBUTE sljit_si sljit_emit_op2(struct sljit_compiler *compiler, sljit_si op,
1174 	sljit_si dst, sljit_sw dstw,
1175 	sljit_si src1, sljit_sw src1w,
1176 	sljit_si src2, sljit_sw src2w)
1177 {
1178 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
1179 #	define flags 0
1180 #else
1181 	sljit_si flags = 0;
1182 #endif
1183 
1184 	CHECK_ERROR();
1185 	check_sljit_emit_op2(compiler, op, dst, dstw, src1, src1w, src2, src2w);
1186 	ADJUST_LOCAL_OFFSET(dst, dstw);
1187 	ADJUST_LOCAL_OFFSET(src1, src1w);
1188 	ADJUST_LOCAL_OFFSET(src2, src2w);
1189 
1190 #if (defined SLJIT_CONFIG_MIPS_64 && SLJIT_CONFIG_MIPS_64)
1191 	if (op & SLJIT_INT_OP) {
1192 		flags |= INT_DATA | SIGNED_DATA;
1193 		if (src1 & SLJIT_IMM)
1194 			src1w = (sljit_si)src1w;
1195 		if (src2 & SLJIT_IMM)
1196 			src2w = (sljit_si)src2w;
1197 	}
1198 #endif
1199 
1200 	switch (GET_OPCODE(op)) {
1201 	case SLJIT_ADD:
1202 	case SLJIT_ADDC:
1203 		return emit_op(compiler, op, flags | CUMULATIVE_OP | IMM_OP, dst, dstw, src1, src1w, src2, src2w);
1204 
1205 	case SLJIT_SUB:
1206 	case SLJIT_SUBC:
1207 		return emit_op(compiler, op, flags | IMM_OP, dst, dstw, src1, src1w, src2, src2w);
1208 
1209 	case SLJIT_MUL:
1210 		return emit_op(compiler, op, flags | CUMULATIVE_OP, dst, dstw, src1, src1w, src2, src2w);
1211 
1212 	case SLJIT_AND:
1213 	case SLJIT_OR:
1214 	case SLJIT_XOR:
1215 		return emit_op(compiler, op, flags | CUMULATIVE_OP | LOGICAL_OP | IMM_OP, dst, dstw, src1, src1w, src2, src2w);
1216 
1217 	case SLJIT_SHL:
1218 	case SLJIT_LSHR:
1219 	case SLJIT_ASHR:
1220 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
1221 		if (src2 & SLJIT_IMM)
1222 			src2w &= 0x1f;
1223 #else
1224 		if (src2 & SLJIT_IMM) {
1225 			if (op & SLJIT_INT_OP)
1226 				src2w &= 0x1f;
1227 			else
1228 				src2w &= 0x3f;
1229 		}
1230 #endif
1231 		return emit_op(compiler, op, flags | IMM_OP, dst, dstw, src1, src1w, src2, src2w);
1232 	}
1233 
1234 	return SLJIT_SUCCESS;
1235 
1236 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
1237 #	undef flags
1238 #endif
1239 }
1240 
1241 SLJIT_API_FUNC_ATTRIBUTE sljit_si sljit_get_register_index(sljit_si reg)
1242 {
1243 	check_sljit_get_register_index(reg);
1244 	return reg_map[reg];
1245 }
1246 
1247 SLJIT_API_FUNC_ATTRIBUTE sljit_si sljit_get_float_register_index(sljit_si reg)
1248 {
1249 	check_sljit_get_float_register_index(reg);
1250 	return reg << 1;
1251 }
1252 
1253 SLJIT_API_FUNC_ATTRIBUTE sljit_si sljit_emit_op_custom(struct sljit_compiler *compiler,
1254 	void *instruction, sljit_si size)
1255 {
1256 	CHECK_ERROR();
1257 	check_sljit_emit_op_custom(compiler, instruction, size);
1258 	SLJIT_ASSERT(size == 4);
1259 
1260 	return push_inst(compiler, *(sljit_ins*)instruction, UNMOVABLE_INS);
1261 }
1262 
1263 /* --------------------------------------------------------------------- */
1264 /*  Floating point operators                                             */
1265 /* --------------------------------------------------------------------- */
1266 
1267 SLJIT_API_FUNC_ATTRIBUTE sljit_si sljit_is_fpu_available(void)
1268 {
1269 #ifdef SLJIT_IS_FPU_AVAILABLE
1270 	return SLJIT_IS_FPU_AVAILABLE;
1271 #elif defined(__GNUC__)
1272 	sljit_sw fir;
1273 	asm ("cfc1 %0, $0" : "=r"(fir));
1274 	return (fir >> 22) & 0x1;
1275 #else
1276 #error "FIR check is not implemented for this architecture"
1277 #endif
1278 }
1279 
1280 #define FLOAT_DATA(op) (DOUBLE_DATA | ((op & SLJIT_SINGLE_OP) >> 7))
1281 #define FMT(op) (((op & SLJIT_SINGLE_OP) ^ SLJIT_SINGLE_OP) << (21 - 8))
1282 
1283 SLJIT_API_FUNC_ATTRIBUTE sljit_si sljit_emit_fop1(struct sljit_compiler *compiler, sljit_si op,
1284 	sljit_si dst, sljit_sw dstw,
1285 	sljit_si src, sljit_sw srcw)
1286 {
1287 	sljit_si dst_fr;
1288 
1289 	CHECK_ERROR();
1290 	check_sljit_emit_fop1(compiler, op, dst, dstw, src, srcw);
1291 	SLJIT_COMPILE_ASSERT((SLJIT_SINGLE_OP == 0x100) && !(DOUBLE_DATA & 0x2), float_transfer_bit_error);
1292 
1293 	compiler->cache_arg = 0;
1294 	compiler->cache_argw = 0;
1295 
1296 	if (GET_OPCODE(op) == SLJIT_CMPD) {
1297 		if (dst & SLJIT_MEM) {
1298 			FAIL_IF(emit_op_mem2(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG1, dst, dstw, src, srcw));
1299 			dst = TMP_FREG1;
1300 		}
1301 		else
1302 			dst <<= 1;
1303 
1304 		if (src & SLJIT_MEM) {
1305 			FAIL_IF(emit_op_mem2(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG2, src, srcw, 0, 0));
1306 			src = TMP_FREG2;
1307 		}
1308 		else
1309 			src <<= 1;
1310 
1311 		/* src and dst are swapped. */
1312 		if (op & SLJIT_SET_E) {
1313 			FAIL_IF(push_inst(compiler, C_UEQ_fmt | FMT(op) | FT(src) | FS(dst), UNMOVABLE_INS));
1314 			FAIL_IF(push_inst(compiler, CFC1 | TA(EQUAL_FLAG) | DA(FCSR_REG), EQUAL_FLAG));
1315 			FAIL_IF(push_inst(compiler, SRL | TA(EQUAL_FLAG) | DA(EQUAL_FLAG) | SH_IMM(23), EQUAL_FLAG));
1316 			FAIL_IF(push_inst(compiler, ANDI | SA(EQUAL_FLAG) | TA(EQUAL_FLAG) | IMM(1), EQUAL_FLAG));
1317 		}
1318 		if (op & SLJIT_SET_S) {
1319 			/* Mixing the instructions for the two checks. */
1320 			FAIL_IF(push_inst(compiler, C_ULT_fmt | FMT(op) | FT(src) | FS(dst), UNMOVABLE_INS));
1321 			FAIL_IF(push_inst(compiler, CFC1 | TA(ULESS_FLAG) | DA(FCSR_REG), ULESS_FLAG));
1322 			FAIL_IF(push_inst(compiler, C_ULT_fmt | FMT(op) | FT(dst) | FS(src), UNMOVABLE_INS));
1323 			FAIL_IF(push_inst(compiler, SRL | TA(ULESS_FLAG) | DA(ULESS_FLAG) | SH_IMM(23), ULESS_FLAG));
1324 			FAIL_IF(push_inst(compiler, ANDI | SA(ULESS_FLAG) | TA(ULESS_FLAG) | IMM(1), ULESS_FLAG));
1325 			FAIL_IF(push_inst(compiler, CFC1 | TA(UGREATER_FLAG) | DA(FCSR_REG), UGREATER_FLAG));
1326 			FAIL_IF(push_inst(compiler, SRL | TA(UGREATER_FLAG) | DA(UGREATER_FLAG) | SH_IMM(23), UGREATER_FLAG));
1327 			FAIL_IF(push_inst(compiler, ANDI | SA(UGREATER_FLAG) | TA(UGREATER_FLAG) | IMM(1), UGREATER_FLAG));
1328 		}
1329 		return push_inst(compiler, C_UN_fmt | FMT(op) | FT(src) | FS(dst), FCSR_FCC);
1330 	}
1331 
1332 	dst_fr = FAST_IS_REG(dst) ? (dst << 1) : TMP_FREG1;
1333 
1334 	if (src & SLJIT_MEM) {
1335 		FAIL_IF(emit_op_mem2(compiler, FLOAT_DATA(op) | LOAD_DATA, dst_fr, src, srcw, dst, dstw));
1336 		src = dst_fr;
1337 	}
1338 	else
1339 		src <<= 1;
1340 
1341 	switch (GET_OPCODE(op)) {
1342 		case SLJIT_MOVD:
1343 			if (src != dst_fr && dst_fr != TMP_FREG1)
1344 				FAIL_IF(push_inst(compiler, MOV_fmt | FMT(op) | FS(src) | FD(dst_fr), MOVABLE_INS));
1345 			break;
1346 		case SLJIT_NEGD:
1347 			FAIL_IF(push_inst(compiler, NEG_fmt | FMT(op) | FS(src) | FD(dst_fr), MOVABLE_INS));
1348 			break;
1349 		case SLJIT_ABSD:
1350 			FAIL_IF(push_inst(compiler, ABS_fmt | FMT(op) | FS(src) | FD(dst_fr), MOVABLE_INS));
1351 			break;
1352 	}
1353 
1354 	if (dst_fr == TMP_FREG1) {
1355 		if (GET_OPCODE(op) == SLJIT_MOVD)
1356 			dst_fr = src;
1357 		FAIL_IF(emit_op_mem2(compiler, FLOAT_DATA(op), dst_fr, dst, dstw, 0, 0));
1358 	}
1359 
1360 	return SLJIT_SUCCESS;
1361 }
1362 
1363 SLJIT_API_FUNC_ATTRIBUTE sljit_si sljit_emit_fop2(struct sljit_compiler *compiler, sljit_si op,
1364 	sljit_si dst, sljit_sw dstw,
1365 	sljit_si src1, sljit_sw src1w,
1366 	sljit_si src2, sljit_sw src2w)
1367 {
1368 	sljit_si dst_fr, flags = 0;
1369 
1370 	CHECK_ERROR();
1371 	check_sljit_emit_fop2(compiler, op, dst, dstw, src1, src1w, src2, src2w);
1372 
1373 	compiler->cache_arg = 0;
1374 	compiler->cache_argw = 0;
1375 
1376 	dst_fr = FAST_IS_REG(dst) ? (dst << 1) : TMP_FREG2;
1377 
1378 	if (src1 & SLJIT_MEM) {
1379 		if (getput_arg_fast(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG1, src1, src1w)) {
1380 			FAIL_IF(compiler->error);
1381 			src1 = TMP_FREG1;
1382 		} else
1383 			flags |= SLOW_SRC1;
1384 	}
1385 	else
1386 		src1 <<= 1;
1387 
1388 	if (src2 & SLJIT_MEM) {
1389 		if (getput_arg_fast(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG2, src2, src2w)) {
1390 			FAIL_IF(compiler->error);
1391 			src2 = TMP_FREG2;
1392 		} else
1393 			flags |= SLOW_SRC2;
1394 	}
1395 	else
1396 		src2 <<= 1;
1397 
1398 	if ((flags & (SLOW_SRC1 | SLOW_SRC2)) == (SLOW_SRC1 | SLOW_SRC2)) {
1399 		if (!can_cache(src1, src1w, src2, src2w) && can_cache(src1, src1w, dst, dstw)) {
1400 			FAIL_IF(getput_arg(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG2, src2, src2w, src1, src1w));
1401 			FAIL_IF(getput_arg(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG1, src1, src1w, dst, dstw));
1402 		}
1403 		else {
1404 			FAIL_IF(getput_arg(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG1, src1, src1w, src2, src2w));
1405 			FAIL_IF(getput_arg(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG2, src2, src2w, dst, dstw));
1406 		}
1407 	}
1408 	else if (flags & SLOW_SRC1)
1409 		FAIL_IF(getput_arg(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG1, src1, src1w, dst, dstw));
1410 	else if (flags & SLOW_SRC2)
1411 		FAIL_IF(getput_arg(compiler, FLOAT_DATA(op) | LOAD_DATA, TMP_FREG2, src2, src2w, dst, dstw));
1412 
1413 	if (flags & SLOW_SRC1)
1414 		src1 = TMP_FREG1;
1415 	if (flags & SLOW_SRC2)
1416 		src2 = TMP_FREG2;
1417 
1418 	switch (GET_OPCODE(op)) {
1419 	case SLJIT_ADDD:
1420 		FAIL_IF(push_inst(compiler, ADD_fmt | FMT(op) | FT(src2) | FS(src1) | FD(dst_fr), MOVABLE_INS));
1421 		break;
1422 
1423 	case SLJIT_SUBD:
1424 		FAIL_IF(push_inst(compiler, SUB_fmt | FMT(op) | FT(src2) | FS(src1) | FD(dst_fr), MOVABLE_INS));
1425 		break;
1426 
1427 	case SLJIT_MULD:
1428 		FAIL_IF(push_inst(compiler, MUL_fmt | FMT(op) | FT(src2) | FS(src1) | FD(dst_fr), MOVABLE_INS));
1429 		break;
1430 
1431 	case SLJIT_DIVD:
1432 		FAIL_IF(push_inst(compiler, DIV_fmt | FMT(op) | FT(src2) | FS(src1) | FD(dst_fr), MOVABLE_INS));
1433 		break;
1434 	}
1435 
1436 	if (dst_fr == TMP_FREG2)
1437 		FAIL_IF(emit_op_mem2(compiler, FLOAT_DATA(op), TMP_FREG2, dst, dstw, 0, 0));
1438 
1439 	return SLJIT_SUCCESS;
1440 }
1441 
1442 /* --------------------------------------------------------------------- */
1443 /*  Other instructions                                                   */
1444 /* --------------------------------------------------------------------- */
1445 
1446 SLJIT_API_FUNC_ATTRIBUTE sljit_si sljit_emit_fast_enter(struct sljit_compiler *compiler, sljit_si dst, sljit_sw dstw)
1447 {
1448 	CHECK_ERROR();
1449 	check_sljit_emit_fast_enter(compiler, dst, dstw);
1450 	ADJUST_LOCAL_OFFSET(dst, dstw);
1451 
1452 	/* For UNUSED dst. Uncommon, but possible. */
1453 	if (dst == SLJIT_UNUSED)
1454 		return SLJIT_SUCCESS;
1455 
1456 	if (FAST_IS_REG(dst))
1457 		return push_inst(compiler, ADDU_W | SA(RETURN_ADDR_REG) | TA(0) | D(dst), DR(dst));
1458 
1459 	/* Memory. */
1460 	return emit_op_mem(compiler, WORD_DATA, RETURN_ADDR_REG, dst, dstw);
1461 }
1462 
1463 SLJIT_API_FUNC_ATTRIBUTE sljit_si sljit_emit_fast_return(struct sljit_compiler *compiler, sljit_si src, sljit_sw srcw)
1464 {
1465 	CHECK_ERROR();
1466 	check_sljit_emit_fast_return(compiler, src, srcw);
1467 	ADJUST_LOCAL_OFFSET(src, srcw);
1468 
1469 	if (FAST_IS_REG(src))
1470 		FAIL_IF(push_inst(compiler, ADDU_W | S(src) | TA(0) | DA(RETURN_ADDR_REG), RETURN_ADDR_REG));
1471 	else if (src & SLJIT_MEM)
1472 		FAIL_IF(emit_op_mem(compiler, WORD_DATA | LOAD_DATA, RETURN_ADDR_REG, src, srcw));
1473 	else if (src & SLJIT_IMM)
1474 		FAIL_IF(load_immediate(compiler, RETURN_ADDR_REG, srcw));
1475 
1476 	FAIL_IF(push_inst(compiler, JR | SA(RETURN_ADDR_REG), UNMOVABLE_INS));
1477 	return push_inst(compiler, NOP, UNMOVABLE_INS);
1478 }
1479 
1480 /* --------------------------------------------------------------------- */
1481 /*  Conditional instructions                                             */
1482 /* --------------------------------------------------------------------- */
1483 
1484 SLJIT_API_FUNC_ATTRIBUTE struct sljit_label* sljit_emit_label(struct sljit_compiler *compiler)
1485 {
1486 	struct sljit_label *label;
1487 
1488 	CHECK_ERROR_PTR();
1489 	check_sljit_emit_label(compiler);
1490 
1491 	if (compiler->last_label && compiler->last_label->size == compiler->size)
1492 		return compiler->last_label;
1493 
1494 	label = (struct sljit_label*)ensure_abuf(compiler, sizeof(struct sljit_label));
1495 	PTR_FAIL_IF(!label);
1496 	set_label(label, compiler);
1497 	compiler->delay_slot = UNMOVABLE_INS;
1498 	return label;
1499 }
1500 
1501 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
1502 #define JUMP_LENGTH	4
1503 #else
1504 #define JUMP_LENGTH	8
1505 #endif
1506 
1507 #define BR_Z(src) \
1508 	inst = BEQ | SA(src) | TA(0) | JUMP_LENGTH; \
1509 	flags = IS_BIT26_COND; \
1510 	delay_check = src;
1511 
1512 #define BR_NZ(src) \
1513 	inst = BNE | SA(src) | TA(0) | JUMP_LENGTH; \
1514 	flags = IS_BIT26_COND; \
1515 	delay_check = src;
1516 
1517 #define BR_T() \
1518 	inst = BC1T | JUMP_LENGTH; \
1519 	flags = IS_BIT16_COND; \
1520 	delay_check = FCSR_FCC;
1521 
1522 #define BR_F() \
1523 	inst = BC1F | JUMP_LENGTH; \
1524 	flags = IS_BIT16_COND; \
1525 	delay_check = FCSR_FCC;
1526 
1527 SLJIT_API_FUNC_ATTRIBUTE struct sljit_jump* sljit_emit_jump(struct sljit_compiler *compiler, sljit_si type)
1528 {
1529 	struct sljit_jump *jump;
1530 	sljit_ins inst;
1531 	sljit_si flags = 0;
1532 	sljit_si delay_check = UNMOVABLE_INS;
1533 
1534 	CHECK_ERROR_PTR();
1535 	check_sljit_emit_jump(compiler, type);
1536 
1537 	jump = (struct sljit_jump*)ensure_abuf(compiler, sizeof(struct sljit_jump));
1538 	PTR_FAIL_IF(!jump);
1539 	set_jump(jump, compiler, type & SLJIT_REWRITABLE_JUMP);
1540 	type &= 0xff;
1541 
1542 	switch (type) {
1543 	case SLJIT_C_EQUAL:
1544 	case SLJIT_C_FLOAT_NOT_EQUAL:
1545 		BR_NZ(EQUAL_FLAG);
1546 		break;
1547 	case SLJIT_C_NOT_EQUAL:
1548 	case SLJIT_C_FLOAT_EQUAL:
1549 		BR_Z(EQUAL_FLAG);
1550 		break;
1551 	case SLJIT_C_LESS:
1552 	case SLJIT_C_FLOAT_LESS:
1553 		BR_Z(ULESS_FLAG);
1554 		break;
1555 	case SLJIT_C_GREATER_EQUAL:
1556 	case SLJIT_C_FLOAT_GREATER_EQUAL:
1557 		BR_NZ(ULESS_FLAG);
1558 		break;
1559 	case SLJIT_C_GREATER:
1560 	case SLJIT_C_FLOAT_GREATER:
1561 		BR_Z(UGREATER_FLAG);
1562 		break;
1563 	case SLJIT_C_LESS_EQUAL:
1564 	case SLJIT_C_FLOAT_LESS_EQUAL:
1565 		BR_NZ(UGREATER_FLAG);
1566 		break;
1567 	case SLJIT_C_SIG_LESS:
1568 		BR_Z(LESS_FLAG);
1569 		break;
1570 	case SLJIT_C_SIG_GREATER_EQUAL:
1571 		BR_NZ(LESS_FLAG);
1572 		break;
1573 	case SLJIT_C_SIG_GREATER:
1574 		BR_Z(GREATER_FLAG);
1575 		break;
1576 	case SLJIT_C_SIG_LESS_EQUAL:
1577 		BR_NZ(GREATER_FLAG);
1578 		break;
1579 	case SLJIT_C_OVERFLOW:
1580 	case SLJIT_C_MUL_OVERFLOW:
1581 		BR_Z(OVERFLOW_FLAG);
1582 		break;
1583 	case SLJIT_C_NOT_OVERFLOW:
1584 	case SLJIT_C_MUL_NOT_OVERFLOW:
1585 		BR_NZ(OVERFLOW_FLAG);
1586 		break;
1587 	case SLJIT_C_FLOAT_UNORDERED:
1588 		BR_F();
1589 		break;
1590 	case SLJIT_C_FLOAT_ORDERED:
1591 		BR_T();
1592 		break;
1593 	default:
1594 		/* Not conditional branch. */
1595 		inst = 0;
1596 		break;
1597 	}
1598 
1599 	jump->flags |= flags;
1600 	if (compiler->delay_slot == MOVABLE_INS || (compiler->delay_slot != UNMOVABLE_INS && compiler->delay_slot != delay_check))
1601 		jump->flags |= IS_MOVABLE;
1602 
1603 	if (inst)
1604 		PTR_FAIL_IF(push_inst(compiler, inst, UNMOVABLE_INS));
1605 
1606 	PTR_FAIL_IF(emit_const(compiler, TMP_REG2, 0));
1607 	if (type <= SLJIT_JUMP) {
1608 		PTR_FAIL_IF(push_inst(compiler, JR | S(TMP_REG2), UNMOVABLE_INS));
1609 		jump->addr = compiler->size;
1610 		PTR_FAIL_IF(push_inst(compiler, NOP, UNMOVABLE_INS));
1611 	} else {
1612 		SLJIT_ASSERT(DR(PIC_ADDR_REG) == 25 && PIC_ADDR_REG == TMP_REG2);
1613 		/* Cannot be optimized out if type is >= CALL0. */
1614 		jump->flags |= IS_JAL | (type >= SLJIT_CALL0 ? IS_CALL : 0);
1615 		PTR_FAIL_IF(push_inst(compiler, JALR | S(TMP_REG2) | DA(RETURN_ADDR_REG), UNMOVABLE_INS));
1616 		jump->addr = compiler->size;
1617 		/* A NOP if type < CALL1. */
1618 		PTR_FAIL_IF(push_inst(compiler, ADDU_W | S(SLJIT_SCRATCH_REG1) | TA(0) | DA(4), UNMOVABLE_INS));
1619 	}
1620 	return jump;
1621 }
1622 
1623 #define RESOLVE_IMM1() \
1624 	if (src1 & SLJIT_IMM) { \
1625 		if (src1w) { \
1626 			PTR_FAIL_IF(load_immediate(compiler, DR(TMP_REG1), src1w)); \
1627 			src1 = TMP_REG1; \
1628 		} \
1629 		else \
1630 			src1 = 0; \
1631 	}
1632 
1633 #define RESOLVE_IMM2() \
1634 	if (src2 & SLJIT_IMM) { \
1635 		if (src2w) { \
1636 			PTR_FAIL_IF(load_immediate(compiler, DR(TMP_REG2), src2w)); \
1637 			src2 = TMP_REG2; \
1638 		} \
1639 		else \
1640 			src2 = 0; \
1641 	}
1642 
1643 SLJIT_API_FUNC_ATTRIBUTE struct sljit_jump* sljit_emit_cmp(struct sljit_compiler *compiler, sljit_si type,
1644 	sljit_si src1, sljit_sw src1w,
1645 	sljit_si src2, sljit_sw src2w)
1646 {
1647 	struct sljit_jump *jump;
1648 	sljit_si flags;
1649 	sljit_ins inst;
1650 
1651 	CHECK_ERROR_PTR();
1652 	check_sljit_emit_cmp(compiler, type, src1, src1w, src2, src2w);
1653 	ADJUST_LOCAL_OFFSET(src1, src1w);
1654 	ADJUST_LOCAL_OFFSET(src2, src2w);
1655 
1656 	compiler->cache_arg = 0;
1657 	compiler->cache_argw = 0;
1658 	flags = ((type & SLJIT_INT_OP) ? INT_DATA : WORD_DATA) | LOAD_DATA;
1659 	if (src1 & SLJIT_MEM) {
1660 		PTR_FAIL_IF(emit_op_mem2(compiler, flags, DR(TMP_REG1), src1, src1w, src2, src2w));
1661 		src1 = TMP_REG1;
1662 	}
1663 	if (src2 & SLJIT_MEM) {
1664 		PTR_FAIL_IF(emit_op_mem2(compiler, flags, DR(TMP_REG2), src2, src2w, 0, 0));
1665 		src2 = TMP_REG2;
1666 	}
1667 
1668 	jump = (struct sljit_jump*)ensure_abuf(compiler, sizeof(struct sljit_jump));
1669 	PTR_FAIL_IF(!jump);
1670 	set_jump(jump, compiler, type & SLJIT_REWRITABLE_JUMP);
1671 	type &= 0xff;
1672 
1673 	if (type <= SLJIT_C_NOT_EQUAL) {
1674 		RESOLVE_IMM1();
1675 		RESOLVE_IMM2();
1676 		jump->flags |= IS_BIT26_COND;
1677 		if (compiler->delay_slot == MOVABLE_INS || (compiler->delay_slot != UNMOVABLE_INS && compiler->delay_slot != DR(src1) && compiler->delay_slot != DR(src2)))
1678 			jump->flags |= IS_MOVABLE;
1679 		PTR_FAIL_IF(push_inst(compiler, (type == SLJIT_C_EQUAL ? BNE : BEQ) | S(src1) | T(src2) | JUMP_LENGTH, UNMOVABLE_INS));
1680 	}
1681 	else if (type >= SLJIT_C_SIG_LESS && (((src1 & SLJIT_IMM) && (src1w == 0)) || ((src2 & SLJIT_IMM) && (src2w == 0)))) {
1682 		inst = NOP;
1683 		if ((src1 & SLJIT_IMM) && (src1w == 0)) {
1684 			RESOLVE_IMM2();
1685 			switch (type) {
1686 			case SLJIT_C_SIG_LESS:
1687 				inst = BLEZ;
1688 				jump->flags |= IS_BIT26_COND;
1689 				break;
1690 			case SLJIT_C_SIG_GREATER_EQUAL:
1691 				inst = BGTZ;
1692 				jump->flags |= IS_BIT26_COND;
1693 				break;
1694 			case SLJIT_C_SIG_GREATER:
1695 				inst = BGEZ;
1696 				jump->flags |= IS_BIT16_COND;
1697 				break;
1698 			case SLJIT_C_SIG_LESS_EQUAL:
1699 				inst = BLTZ;
1700 				jump->flags |= IS_BIT16_COND;
1701 				break;
1702 			}
1703 			src1 = src2;
1704 		}
1705 		else {
1706 			RESOLVE_IMM1();
1707 			switch (type) {
1708 			case SLJIT_C_SIG_LESS:
1709 				inst = BGEZ;
1710 				jump->flags |= IS_BIT16_COND;
1711 				break;
1712 			case SLJIT_C_SIG_GREATER_EQUAL:
1713 				inst = BLTZ;
1714 				jump->flags |= IS_BIT16_COND;
1715 				break;
1716 			case SLJIT_C_SIG_GREATER:
1717 				inst = BLEZ;
1718 				jump->flags |= IS_BIT26_COND;
1719 				break;
1720 			case SLJIT_C_SIG_LESS_EQUAL:
1721 				inst = BGTZ;
1722 				jump->flags |= IS_BIT26_COND;
1723 				break;
1724 			}
1725 		}
1726 		PTR_FAIL_IF(push_inst(compiler, inst | S(src1) | JUMP_LENGTH, UNMOVABLE_INS));
1727 	}
1728 	else {
1729 		if (type == SLJIT_C_LESS || type == SLJIT_C_GREATER_EQUAL || type == SLJIT_C_SIG_LESS || type == SLJIT_C_SIG_GREATER_EQUAL) {
1730 			RESOLVE_IMM1();
1731 			if ((src2 & SLJIT_IMM) && src2w <= SIMM_MAX && src2w >= SIMM_MIN)
1732 				PTR_FAIL_IF(push_inst(compiler, (type <= SLJIT_C_LESS_EQUAL ? SLTIU : SLTI) | S(src1) | T(TMP_REG1) | IMM(src2w), DR(TMP_REG1)));
1733 			else {
1734 				RESOLVE_IMM2();
1735 				PTR_FAIL_IF(push_inst(compiler, (type <= SLJIT_C_LESS_EQUAL ? SLTU : SLT) | S(src1) | T(src2) | D(TMP_REG1), DR(TMP_REG1)));
1736 			}
1737 			type = (type == SLJIT_C_LESS || type == SLJIT_C_SIG_LESS) ? SLJIT_C_NOT_EQUAL : SLJIT_C_EQUAL;
1738 		}
1739 		else {
1740 			RESOLVE_IMM2();
1741 			if ((src1 & SLJIT_IMM) && src1w <= SIMM_MAX && src1w >= SIMM_MIN)
1742 				PTR_FAIL_IF(push_inst(compiler, (type <= SLJIT_C_LESS_EQUAL ? SLTIU : SLTI) | S(src2) | T(TMP_REG1) | IMM(src1w), DR(TMP_REG1)));
1743 			else {
1744 				RESOLVE_IMM1();
1745 				PTR_FAIL_IF(push_inst(compiler, (type <= SLJIT_C_LESS_EQUAL ? SLTU : SLT) | S(src2) | T(src1) | D(TMP_REG1), DR(TMP_REG1)));
1746 			}
1747 			type = (type == SLJIT_C_GREATER || type == SLJIT_C_SIG_GREATER) ? SLJIT_C_NOT_EQUAL : SLJIT_C_EQUAL;
1748 		}
1749 
1750 		jump->flags |= IS_BIT26_COND;
1751 		PTR_FAIL_IF(push_inst(compiler, (type == SLJIT_C_EQUAL ? BNE : BEQ) | S(TMP_REG1) | TA(0) | JUMP_LENGTH, UNMOVABLE_INS));
1752 	}
1753 
1754 	PTR_FAIL_IF(emit_const(compiler, TMP_REG2, 0));
1755 	PTR_FAIL_IF(push_inst(compiler, JR | S(TMP_REG2), UNMOVABLE_INS));
1756 	jump->addr = compiler->size;
1757 	PTR_FAIL_IF(push_inst(compiler, NOP, UNMOVABLE_INS));
1758 	return jump;
1759 }
1760 
1761 #undef RESOLVE_IMM1
1762 #undef RESOLVE_IMM2
1763 
1764 SLJIT_API_FUNC_ATTRIBUTE struct sljit_jump* sljit_emit_fcmp(struct sljit_compiler *compiler, sljit_si type,
1765 	sljit_si src1, sljit_sw src1w,
1766 	sljit_si src2, sljit_sw src2w)
1767 {
1768 	struct sljit_jump *jump;
1769 	sljit_ins inst;
1770 	sljit_si if_true;
1771 
1772 	CHECK_ERROR_PTR();
1773 	check_sljit_emit_fcmp(compiler, type, src1, src1w, src2, src2w);
1774 
1775 	compiler->cache_arg = 0;
1776 	compiler->cache_argw = 0;
1777 
1778 	if (src1 & SLJIT_MEM) {
1779 		PTR_FAIL_IF(emit_op_mem2(compiler, FLOAT_DATA(type) | LOAD_DATA, TMP_FREG1, src1, src1w, src2, src2w));
1780 		src1 = TMP_FREG1;
1781 	}
1782 	else
1783 		src1 <<= 1;
1784 
1785 	if (src2 & SLJIT_MEM) {
1786 		PTR_FAIL_IF(emit_op_mem2(compiler, FLOAT_DATA(type) | LOAD_DATA, TMP_FREG2, src2, src2w, 0, 0));
1787 		src2 = TMP_FREG2;
1788 	}
1789 	else
1790 		src2 <<= 1;
1791 
1792 	jump = (struct sljit_jump*)ensure_abuf(compiler, sizeof(struct sljit_jump));
1793 	PTR_FAIL_IF(!jump);
1794 	set_jump(jump, compiler, type & SLJIT_REWRITABLE_JUMP);
1795 	jump->flags |= IS_BIT16_COND;
1796 
1797 	switch (type & 0xff) {
1798 	case SLJIT_C_FLOAT_EQUAL:
1799 		inst = C_UEQ_fmt;
1800 		if_true = 1;
1801 		break;
1802 	case SLJIT_C_FLOAT_NOT_EQUAL:
1803 		inst = C_UEQ_fmt;
1804 		if_true = 0;
1805 		break;
1806 	case SLJIT_C_FLOAT_LESS:
1807 		inst = C_ULT_fmt;
1808 		if_true = 1;
1809 		break;
1810 	case SLJIT_C_FLOAT_GREATER_EQUAL:
1811 		inst = C_ULT_fmt;
1812 		if_true = 0;
1813 		break;
1814 	case SLJIT_C_FLOAT_GREATER:
1815 		inst = C_ULE_fmt;
1816 		if_true = 0;
1817 		break;
1818 	case SLJIT_C_FLOAT_LESS_EQUAL:
1819 		inst = C_ULE_fmt;
1820 		if_true = 1;
1821 		break;
1822 	case SLJIT_C_FLOAT_UNORDERED:
1823 		inst = C_UN_fmt;
1824 		if_true = 1;
1825 		break;
1826 	case SLJIT_C_FLOAT_ORDERED:
1827 	default: /* Make compilers happy. */
1828 		inst = C_UN_fmt;
1829 		if_true = 0;
1830 		break;
1831 	}
1832 
1833 	PTR_FAIL_IF(push_inst(compiler, inst | FMT(type) | FT(src2) | FS(src1), UNMOVABLE_INS));
1834 	/* Intentionally the other opcode. */
1835 	PTR_FAIL_IF(push_inst(compiler, (if_true ? BC1F : BC1T) | JUMP_LENGTH, UNMOVABLE_INS));
1836 	PTR_FAIL_IF(emit_const(compiler, TMP_REG2, 0));
1837 	PTR_FAIL_IF(push_inst(compiler, JR | S(TMP_REG2), UNMOVABLE_INS));
1838 	jump->addr = compiler->size;
1839 	PTR_FAIL_IF(push_inst(compiler, NOP, UNMOVABLE_INS));
1840 	return jump;
1841 }
1842 
1843 #undef JUMP_LENGTH
1844 #undef BR_Z
1845 #undef BR_NZ
1846 #undef BR_T
1847 #undef BR_F
1848 
1849 #undef FLOAT_DATA
1850 #undef FMT
1851 
1852 SLJIT_API_FUNC_ATTRIBUTE sljit_si sljit_emit_ijump(struct sljit_compiler *compiler, sljit_si type, sljit_si src, sljit_sw srcw)
1853 {
1854 	sljit_si src_r = TMP_REG2;
1855 	struct sljit_jump *jump = NULL;
1856 
1857 	CHECK_ERROR();
1858 	check_sljit_emit_ijump(compiler, type, src, srcw);
1859 	ADJUST_LOCAL_OFFSET(src, srcw);
1860 
1861 	if (FAST_IS_REG(src)) {
1862 		if (DR(src) != 4)
1863 			src_r = src;
1864 		else
1865 			FAIL_IF(push_inst(compiler, ADDU_W | S(src) | TA(0) | D(TMP_REG2), DR(TMP_REG2)));
1866 	}
1867 
1868 	if (type >= SLJIT_CALL0) {
1869 		SLJIT_ASSERT(DR(PIC_ADDR_REG) == 25 && PIC_ADDR_REG == TMP_REG2);
1870 		if (src & (SLJIT_IMM | SLJIT_MEM)) {
1871 			if (src & SLJIT_IMM)
1872 				FAIL_IF(load_immediate(compiler, DR(PIC_ADDR_REG), srcw));
1873 			else {
1874 				SLJIT_ASSERT(src_r == TMP_REG2 && (src & SLJIT_MEM));
1875 				FAIL_IF(emit_op(compiler, SLJIT_MOV, WORD_DATA, TMP_REG2, 0, TMP_REG1, 0, src, srcw));
1876 			}
1877 			FAIL_IF(push_inst(compiler, JALR | S(PIC_ADDR_REG) | DA(RETURN_ADDR_REG), UNMOVABLE_INS));
1878 			/* We need an extra instruction in any case. */
1879 			return push_inst(compiler, ADDU_W | S(SLJIT_SCRATCH_REG1) | TA(0) | DA(4), UNMOVABLE_INS);
1880 		}
1881 
1882 		/* Register input. */
1883 		if (type >= SLJIT_CALL1)
1884 			FAIL_IF(push_inst(compiler, ADDU_W | S(SLJIT_SCRATCH_REG1) | TA(0) | DA(4), 4));
1885 		FAIL_IF(push_inst(compiler, JALR | S(src_r) | DA(RETURN_ADDR_REG), UNMOVABLE_INS));
1886 		return push_inst(compiler, ADDU_W | S(src_r) | TA(0) | D(PIC_ADDR_REG), UNMOVABLE_INS);
1887 	}
1888 
1889 	if (src & SLJIT_IMM) {
1890 		jump = (struct sljit_jump*)ensure_abuf(compiler, sizeof(struct sljit_jump));
1891 		FAIL_IF(!jump);
1892 		set_jump(jump, compiler, JUMP_ADDR | ((type >= SLJIT_FAST_CALL) ? IS_JAL : 0));
1893 		jump->u.target = srcw;
1894 
1895 		if (compiler->delay_slot != UNMOVABLE_INS)
1896 			jump->flags |= IS_MOVABLE;
1897 
1898 		FAIL_IF(emit_const(compiler, TMP_REG2, 0));
1899 	}
1900 	else if (src & SLJIT_MEM)
1901 		FAIL_IF(emit_op(compiler, SLJIT_MOV, WORD_DATA, TMP_REG2, 0, TMP_REG1, 0, src, srcw));
1902 
1903 	FAIL_IF(push_inst(compiler, JR | S(src_r), UNMOVABLE_INS));
1904 	if (jump)
1905 		jump->addr = compiler->size;
1906 	FAIL_IF(push_inst(compiler, NOP, UNMOVABLE_INS));
1907 	return SLJIT_SUCCESS;
1908 }
1909 
1910 SLJIT_API_FUNC_ATTRIBUTE sljit_si sljit_emit_op_flags(struct sljit_compiler *compiler, sljit_si op,
1911 	sljit_si dst, sljit_sw dstw,
1912 	sljit_si src, sljit_sw srcw,
1913 	sljit_si type)
1914 {
1915 	sljit_si sugg_dst_ar, dst_ar;
1916 	sljit_si flags = GET_ALL_FLAGS(op);
1917 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
1918 #	define mem_type WORD_DATA
1919 #else
1920 	sljit_si mem_type = (op & SLJIT_INT_OP) ? (INT_DATA | SIGNED_DATA) : WORD_DATA;
1921 #endif
1922 
1923 	CHECK_ERROR();
1924 	check_sljit_emit_op_flags(compiler, op, dst, dstw, src, srcw, type);
1925 	ADJUST_LOCAL_OFFSET(dst, dstw);
1926 
1927 	if (dst == SLJIT_UNUSED)
1928 		return SLJIT_SUCCESS;
1929 
1930 	op = GET_OPCODE(op);
1931 #if (defined SLJIT_CONFIG_MIPS_64 && SLJIT_CONFIG_MIPS_64)
1932 	if (op == SLJIT_MOV_SI || op == SLJIT_MOV_UI)
1933 		mem_type = INT_DATA | SIGNED_DATA;
1934 #endif
1935 	sugg_dst_ar = DR((op < SLJIT_ADD && FAST_IS_REG(dst)) ? dst : TMP_REG2);
1936 
1937 	compiler->cache_arg = 0;
1938 	compiler->cache_argw = 0;
1939 	if (op >= SLJIT_ADD && (src & SLJIT_MEM)) {
1940 		ADJUST_LOCAL_OFFSET(src, srcw);
1941 		FAIL_IF(emit_op_mem2(compiler, mem_type | LOAD_DATA, DR(TMP_REG1), src, srcw, dst, dstw));
1942 		src = TMP_REG1;
1943 		srcw = 0;
1944 	}
1945 
1946 	switch (type) {
1947 	case SLJIT_C_EQUAL:
1948 	case SLJIT_C_NOT_EQUAL:
1949 		FAIL_IF(push_inst(compiler, SLTIU | SA(EQUAL_FLAG) | TA(sugg_dst_ar) | IMM(1), sugg_dst_ar));
1950 		dst_ar = sugg_dst_ar;
1951 		break;
1952 	case SLJIT_C_LESS:
1953 	case SLJIT_C_GREATER_EQUAL:
1954 	case SLJIT_C_FLOAT_LESS:
1955 	case SLJIT_C_FLOAT_GREATER_EQUAL:
1956 		dst_ar = ULESS_FLAG;
1957 		break;
1958 	case SLJIT_C_GREATER:
1959 	case SLJIT_C_LESS_EQUAL:
1960 	case SLJIT_C_FLOAT_GREATER:
1961 	case SLJIT_C_FLOAT_LESS_EQUAL:
1962 		dst_ar = UGREATER_FLAG;
1963 		break;
1964 	case SLJIT_C_SIG_LESS:
1965 	case SLJIT_C_SIG_GREATER_EQUAL:
1966 		dst_ar = LESS_FLAG;
1967 		break;
1968 	case SLJIT_C_SIG_GREATER:
1969 	case SLJIT_C_SIG_LESS_EQUAL:
1970 		dst_ar = GREATER_FLAG;
1971 		break;
1972 	case SLJIT_C_OVERFLOW:
1973 	case SLJIT_C_NOT_OVERFLOW:
1974 		dst_ar = OVERFLOW_FLAG;
1975 		break;
1976 	case SLJIT_C_MUL_OVERFLOW:
1977 	case SLJIT_C_MUL_NOT_OVERFLOW:
1978 		FAIL_IF(push_inst(compiler, SLTIU | SA(OVERFLOW_FLAG) | TA(sugg_dst_ar) | IMM(1), sugg_dst_ar));
1979 		dst_ar = sugg_dst_ar;
1980 		type ^= 0x1; /* Flip type bit for the XORI below. */
1981 		break;
1982 	case SLJIT_C_FLOAT_EQUAL:
1983 	case SLJIT_C_FLOAT_NOT_EQUAL:
1984 		dst_ar = EQUAL_FLAG;
1985 		break;
1986 
1987 	case SLJIT_C_FLOAT_UNORDERED:
1988 	case SLJIT_C_FLOAT_ORDERED:
1989 		FAIL_IF(push_inst(compiler, CFC1 | TA(sugg_dst_ar) | DA(FCSR_REG), sugg_dst_ar));
1990 		FAIL_IF(push_inst(compiler, SRL | TA(sugg_dst_ar) | DA(sugg_dst_ar) | SH_IMM(23), sugg_dst_ar));
1991 		FAIL_IF(push_inst(compiler, ANDI | SA(sugg_dst_ar) | TA(sugg_dst_ar) | IMM(1), sugg_dst_ar));
1992 		dst_ar = sugg_dst_ar;
1993 		break;
1994 
1995 	default:
1996 		SLJIT_ASSERT_STOP();
1997 		dst_ar = sugg_dst_ar;
1998 		break;
1999 	}
2000 
2001 	if (type & 0x1) {
2002 		FAIL_IF(push_inst(compiler, XORI | SA(dst_ar) | TA(sugg_dst_ar) | IMM(1), sugg_dst_ar));
2003 		dst_ar = sugg_dst_ar;
2004 	}
2005 
2006 	if (op >= SLJIT_ADD) {
2007 		if (DR(TMP_REG2) != dst_ar)
2008 			FAIL_IF(push_inst(compiler, ADDU_W | SA(dst_ar) | TA(0) | D(TMP_REG2), DR(TMP_REG2)));
2009 		return emit_op(compiler, op | flags, mem_type | CUMULATIVE_OP | LOGICAL_OP | IMM_OP | ALT_KEEP_CACHE, dst, dstw, src, srcw, TMP_REG2, 0);
2010 	}
2011 
2012 	if (dst & SLJIT_MEM)
2013 		return emit_op_mem(compiler, mem_type, dst_ar, dst, dstw);
2014 
2015 	if (sugg_dst_ar != dst_ar)
2016 		return push_inst(compiler, ADDU_W | SA(dst_ar) | TA(0) | DA(sugg_dst_ar), sugg_dst_ar);
2017 	return SLJIT_SUCCESS;
2018 
2019 #if (defined SLJIT_CONFIG_MIPS_32 && SLJIT_CONFIG_MIPS_32)
2020 #	undef mem_type
2021 #endif
2022 }
2023 
2024 SLJIT_API_FUNC_ATTRIBUTE struct sljit_const* sljit_emit_const(struct sljit_compiler *compiler, sljit_si dst, sljit_sw dstw, sljit_sw init_value)
2025 {
2026 	struct sljit_const *const_;
2027 	sljit_si reg;
2028 
2029 	CHECK_ERROR_PTR();
2030 	check_sljit_emit_const(compiler, dst, dstw, init_value);
2031 	ADJUST_LOCAL_OFFSET(dst, dstw);
2032 
2033 	const_ = (struct sljit_const*)ensure_abuf(compiler, sizeof(struct sljit_const));
2034 	PTR_FAIL_IF(!const_);
2035 	set_const(const_, compiler);
2036 
2037 	reg = SLOW_IS_REG(dst) ? dst : TMP_REG2;
2038 
2039 	PTR_FAIL_IF(emit_const(compiler, reg, init_value));
2040 
2041 	if (dst & SLJIT_MEM)
2042 		PTR_FAIL_IF(emit_op(compiler, SLJIT_MOV, WORD_DATA, dst, dstw, TMP_REG1, 0, TMP_REG2, 0));
2043 	return const_;
2044 }
2045