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1 /*
2  * Copyright 2011 Christoph Bumiller
3  *
4  * Permission is hereby granted, free of charge, to any person obtaining a
5  * copy of this software and associated documentation files (the "Software"),
6  * to deal in the Software without restriction, including without limitation
7  * the rights to use, copy, modify, merge, publish, distribute, sublicense,
8  * and/or sell copies of the Software, and to permit persons to whom the
9  * Software is furnished to do so, subject to the following conditions:
10  *
11  * The above copyright notice and this permission notice shall be included in
12  * all copies or substantial portions of the Software.
13  *
14  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
15  * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
16  * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.  IN NO EVENT SHALL
17  * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR
18  * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
19  * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
20  * OTHER DEALINGS IN THE SOFTWARE.
21  */
22 
23 #ifndef __NV50_IR_H__
24 #define __NV50_IR_H__
25 
26 #include <stdio.h>
27 #include <stdlib.h>
28 #include <stdint.h>
29 #include <deque>
30 #include <list>
31 #include <vector>
32 
33 #include "codegen/unordered_set.h"
34 #include "codegen/nv50_ir_util.h"
35 #include "codegen/nv50_ir_graph.h"
36 
37 #include "codegen/nv50_ir_driver.h"
38 
39 namespace nv50_ir {
40 
41 enum operation
42 {
43    OP_NOP = 0,
44    OP_PHI,
45    OP_UNION, // unify a new definition and several source values
46    OP_SPLIT, // $r0d -> { $r0, $r1 } ($r0d and $r0/$r1 will be coalesced)
47    OP_MERGE, // opposite of split, e.g. combine 2 32 bit into a 64 bit value
48    OP_CONSTRAINT, // copy values into consecutive registers
49    OP_MOV, // simple copy, no modifiers allowed
50    OP_LOAD,
51    OP_STORE,
52    OP_ADD, // NOTE: add u64 + u32 is legal for targets w/o 64-bit integer adds
53    OP_SUB,
54    OP_MUL,
55    OP_DIV,
56    OP_MOD,
57    OP_MAD,
58    OP_FMA,
59    OP_SAD, // abs(src0 - src1) + src2
60    OP_SHLADD,
61    // extended multiply-add (GM107+), does a lot of things.
62    // see envytools for detailed documentation
63    OP_XMAD,
64    OP_ABS,
65    OP_NEG,
66    OP_NOT,
67    OP_AND,
68    OP_OR,
69    OP_XOR,
70    OP_LOP3_LUT,
71    OP_SHL,
72    OP_SHR,
73    OP_SHF,
74    OP_MAX,
75    OP_MIN,
76    OP_SAT, // CLAMP(f32, 0.0, 1.0)
77    OP_CEIL,
78    OP_FLOOR,
79    OP_TRUNC,
80    OP_CVT,
81    OP_SET_AND, // dst = (src0 CMP src1) & src2
82    OP_SET_OR,
83    OP_SET_XOR,
84    OP_SET,
85    OP_SELP, // dst = src2 ? src0 : src1
86    OP_SLCT, // dst = (src2 CMP 0) ? src0 : src1
87    OP_RCP,
88    OP_RSQ,
89    OP_LG2,
90    OP_SIN,
91    OP_COS,
92    OP_EX2,
93    OP_EXP, // exponential (base M_E)
94    OP_LOG, // natural logarithm
95    OP_PRESIN,
96    OP_PREEX2,
97    OP_SQRT,
98    OP_POW,
99    OP_BRA,
100    OP_CALL,
101    OP_RET,
102    OP_CONT,
103    OP_BREAK,
104    OP_PRERET,
105    OP_PRECONT,
106    OP_PREBREAK,
107    OP_BRKPT,     // breakpoint (not related to loops)
108    OP_JOINAT,    // push control flow convergence point
109    OP_JOIN,      // converge
110    OP_DISCARD,
111    OP_EXIT,
112    OP_MEMBAR, // memory barrier (mfence, lfence, sfence)
113    OP_VFETCH, // indirection 0 in attribute space, indirection 1 is vertex base
114    OP_PFETCH, // fetch base address of vertex src0 (immediate) [+ src1]
115    OP_AFETCH, // fetch base address of shader input (a[%r1+0x10])
116    OP_EXPORT,
117    OP_LINTERP,
118    OP_PINTERP,
119    OP_EMIT,    // emit vertex
120    OP_RESTART, // restart primitive
121    OP_FINAL, // finish emitting primitives
122    OP_TEX,
123    OP_TXB, // texture bias
124    OP_TXL, // texture lod
125    OP_TXF, // texel fetch
126    OP_TXQ, // texture size query
127    OP_TXD, // texture derivatives
128    OP_TXG, // texture gather
129    OP_TXLQ, // texture query lod
130    OP_TEXCSAA, // texture op for coverage sampling
131    OP_TEXPREP, // turn cube map array into 2d array coordinates
132    OP_SULDB, // surface load (raw)
133    OP_SULDP, // surface load (formatted)
134    OP_SUSTB, // surface store (raw)
135    OP_SUSTP, // surface store (formatted)
136    OP_SUREDB,
137    OP_SUREDP, // surface reduction (atomic op)
138    OP_SULEA,   // surface load effective address
139    OP_SUBFM,   // surface bitfield manipulation
140    OP_SUCLAMP, // clamp surface coordinates
141    OP_SUEAU,   // surface effective address
142    OP_SUQ,     // surface query
143    OP_MADSP,   // special integer multiply-add
144    OP_TEXBAR, // texture dependency barrier
145    OP_DFDX,
146    OP_DFDY,
147    OP_RDSV, // read system value
148    OP_WRSV, // write system value
149    OP_PIXLD, // get info about raster object or surfaces
150    OP_QUADOP,
151    OP_QUADON,
152    OP_QUADPOP,
153    OP_POPCNT, // bitcount(src0 & src1)
154    OP_INSBF,  // insert first src1[8:15] bits of src0 into src2 at src1[0:7]
155    OP_EXTBF,  // place bits [K,K+N) of src0 into dst, src1 = 0xNNKK
156    OP_BFIND,  // find highest/lowest set bit
157    OP_BREV,   // bitfield reverse
158    OP_BMSK,   // bitfield mask
159    OP_PERMT,  // dst = bytes from src2,src0 selected by src1 (nvc0's src order)
160    OP_SGXT,
161    OP_ATOM,
162    OP_BAR,    // execution barrier, sources = { id, thread count, predicate }
163    OP_VADD,   // byte/word vector operations
164    OP_VAVG,
165    OP_VMIN,
166    OP_VMAX,
167    OP_VSAD,
168    OP_VSET,
169    OP_VSHR,
170    OP_VSHL,
171    OP_VSEL,
172    OP_CCTL, // cache control
173    OP_SHFL, // warp shuffle
174    OP_VOTE,
175    OP_BUFQ, // buffer query
176    OP_WARPSYNC,
177    OP_LAST
178 };
179 
180 // various instruction-specific modifier definitions Instruction::subOp
181 // MOV_FINAL marks a MOV originating from an EXPORT (used for placing TEXBARs)
182 #define NV50_IR_SUBOP_MUL_HIGH     1
183 #define NV50_IR_SUBOP_EMIT_RESTART 1
184 #define NV50_IR_SUBOP_LDC_IL       1
185 #define NV50_IR_SUBOP_LDC_IS       2
186 #define NV50_IR_SUBOP_LDC_ISL      3
187 #define NV50_IR_SUBOP_SHIFT_WRAP   1
188 #define NV50_IR_SUBOP_SHIFT_HIGH   2
189 #define NV50_IR_SUBOP_EMU_PRERET   1
190 #define NV50_IR_SUBOP_TEXBAR(n)    n
191 #define NV50_IR_SUBOP_MOV_FINAL    1
192 #define NV50_IR_SUBOP_EXTBF_REV    1
193 #define NV50_IR_SUBOP_BFIND_SAMT   1
194 #define NV50_IR_SUBOP_RCPRSQ_64H   1
195 #define NV50_IR_SUBOP_PERMT_F4E    1
196 #define NV50_IR_SUBOP_PERMT_B4E    2
197 #define NV50_IR_SUBOP_PERMT_RC8    3
198 #define NV50_IR_SUBOP_PERMT_ECL    4
199 #define NV50_IR_SUBOP_PERMT_ECR    5
200 #define NV50_IR_SUBOP_PERMT_RC16   6
201 #define NV50_IR_SUBOP_BAR_SYNC     0
202 #define NV50_IR_SUBOP_BAR_ARRIVE   1
203 #define NV50_IR_SUBOP_BAR_RED_AND  2
204 #define NV50_IR_SUBOP_BAR_RED_OR   3
205 #define NV50_IR_SUBOP_BAR_RED_POPC 4
206 #define NV50_IR_SUBOP_MEMBAR_L     1
207 #define NV50_IR_SUBOP_MEMBAR_S     2
208 #define NV50_IR_SUBOP_MEMBAR_M     3
209 #define NV50_IR_SUBOP_MEMBAR_CTA  (0 << 2)
210 #define NV50_IR_SUBOP_MEMBAR_GL   (1 << 2)
211 #define NV50_IR_SUBOP_MEMBAR_SYS  (2 << 2)
212 #define NV50_IR_SUBOP_MEMBAR_DIR(m)   ((m) & 0x3)
213 #define NV50_IR_SUBOP_MEMBAR_SCOPE(m) ((m) & ~0x3)
214 #define NV50_IR_SUBOP_MEMBAR(d,s) \
215    (NV50_IR_SUBOP_MEMBAR_##d | NV50_IR_SUBOP_MEMBAR_##s)
216 #define NV50_IR_SUBOP_ATOM_ADD      0
217 #define NV50_IR_SUBOP_ATOM_MIN      1
218 #define NV50_IR_SUBOP_ATOM_MAX      2
219 #define NV50_IR_SUBOP_ATOM_INC      3
220 #define NV50_IR_SUBOP_ATOM_DEC      4
221 #define NV50_IR_SUBOP_ATOM_AND      5
222 #define NV50_IR_SUBOP_ATOM_OR       6
223 #define NV50_IR_SUBOP_ATOM_XOR      7
224 #define NV50_IR_SUBOP_ATOM_CAS      8
225 #define NV50_IR_SUBOP_ATOM_EXCH     9
226 #define NV50_IR_SUBOP_CCTL_IV      5
227 #define NV50_IR_SUBOP_CCTL_IVALL   6
228 #define NV50_IR_SUBOP_SUST_IGN     0
229 #define NV50_IR_SUBOP_SUST_TRAP    1
230 #define NV50_IR_SUBOP_SUST_SDCL    3
231 #define NV50_IR_SUBOP_SULD_ZERO    0
232 #define NV50_IR_SUBOP_SULD_TRAP    1
233 #define NV50_IR_SUBOP_SULD_SDCL    3
234 #define NV50_IR_SUBOP_SUBFM_3D     1
235 #define NV50_IR_SUBOP_SUCLAMP_2D   0x10
236 #define NV50_IR_SUBOP_SUCLAMP_SD(r, d) (( 0 + (r)) | ((d == 2) ? 0x10 : 0))
237 #define NV50_IR_SUBOP_SUCLAMP_PL(r, d) (( 5 + (r)) | ((d == 2) ? 0x10 : 0))
238 #define NV50_IR_SUBOP_SUCLAMP_BL(r, d) ((10 + (r)) | ((d == 2) ? 0x10 : 0))
239 #define NV50_IR_SUBOP_PIXLD_COUNT       0
240 #define NV50_IR_SUBOP_PIXLD_COVMASK     1
241 #define NV50_IR_SUBOP_PIXLD_COVERED     2
242 #define NV50_IR_SUBOP_PIXLD_OFFSET      3
243 #define NV50_IR_SUBOP_PIXLD_CENT_OFFSET 4
244 #define NV50_IR_SUBOP_PIXLD_SAMPLEID    5
245 #define NV50_IR_SUBOP_SHFL_IDX  0
246 #define NV50_IR_SUBOP_SHFL_UP   1
247 #define NV50_IR_SUBOP_SHFL_DOWN 2
248 #define NV50_IR_SUBOP_SHFL_BFLY 3
249 #define NV50_IR_SUBOP_LOAD_LOCKED    1
250 #define NV50_IR_SUBOP_STORE_UNLOCKED 2
251 #define NV50_IR_SUBOP_MADSP_SD     0xffff
252 // Yes, we could represent those with DataType.
253 // Or put the type into operation and have a couple 1000 values in that enum.
254 // This will have to do for now.
255 // The bitfields are supposed to correspond to nve4 ISA.
256 #define NV50_IR_SUBOP_MADSP(a,b,c) (((c) << 8) | ((b) << 4) | (a))
257 #define NV50_IR_SUBOP_V1(d,a,b)    (((d) << 10) | ((b) << 5) | (a) | 0x0000)
258 #define NV50_IR_SUBOP_V2(d,a,b)    (((d) << 10) | ((b) << 5) | (a) | 0x4000)
259 #define NV50_IR_SUBOP_V4(d,a,b)    (((d) << 10) | ((b) << 5) | (a) | 0x8000)
260 #define NV50_IR_SUBOP_Vn(n)        ((n) >> 14)
261 #define NV50_IR_SUBOP_VOTE_ALL 0
262 #define NV50_IR_SUBOP_VOTE_ANY 1
263 #define NV50_IR_SUBOP_VOTE_UNI 2
264 #define NV50_IR_SUBOP_LOP3_LUT_SRC0 0xf0
265 #define NV50_IR_SUBOP_LOP3_LUT_SRC1 0xcc
266 #define NV50_IR_SUBOP_LOP3_LUT_SRC2 0xaa
267 #define NV50_IR_SUBOP_LOP3_LUT(exp) ({         \
268       uint8_t a = NV50_IR_SUBOP_LOP3_LUT_SRC0; \
269       uint8_t b = NV50_IR_SUBOP_LOP3_LUT_SRC1; \
270       uint8_t c = NV50_IR_SUBOP_LOP3_LUT_SRC2; \
271       (uint8_t)(exp);                          \
272 })
273 #define NV50_IR_SUBOP_BMSK_C (0 << 0)
274 #define NV50_IR_SUBOP_BMSK_W (1 << 0)
275 
276 #define NV50_IR_SUBOP_MINMAX_LOW  1
277 #define NV50_IR_SUBOP_MINMAX_MED  2
278 #define NV50_IR_SUBOP_MINMAX_HIGH 3
279 
280 #define NV50_IR_SUBOP_SHF_L  (0 << 0)
281 #define NV50_IR_SUBOP_SHF_R  (1 << 0)
282 #define NV50_IR_SUBOP_SHF_LO (0 << 1)
283 #define NV50_IR_SUBOP_SHF_HI (1 << 1)
284 #define NV50_IR_SUBOP_SHF_C  (0 << 2)
285 #define NV50_IR_SUBOP_SHF_W  (1 << 2)
286 
287 // xmad(src0, src1, 0) << 16 + src2
288 #define NV50_IR_SUBOP_XMAD_PSL (1 << 0)
289 // (xmad(src0, src1, src2) & 0xffff) | (src1 << 16)
290 #define NV50_IR_SUBOP_XMAD_MRG (1 << 1)
291 // xmad(src0, src1, src2.lo)
292 #define NV50_IR_SUBOP_XMAD_CLO (1 << 2)
293 // xmad(src0, src1, src2.hi)
294 #define NV50_IR_SUBOP_XMAD_CHI (2 << 2)
295 // if both operands to the multiplication are non-zero, subtract 65536 for each
296 // negative operand
297 #define NV50_IR_SUBOP_XMAD_CSFU (3 << 2)
298 // xmad(src0, src1, src2) + src1 << 16
299 #define NV50_IR_SUBOP_XMAD_CBCC (4 << 2)
300 #define NV50_IR_SUBOP_XMAD_CMODE_SHIFT 2
301 #define NV50_IR_SUBOP_XMAD_CMODE_MASK (0x7 << NV50_IR_SUBOP_XMAD_CMODE_SHIFT)
302 
303 // use the high 16 bits instead of the low 16 bits for the multiplication.
304 // if the instruction's sType is signed, sign extend the operand from 16 bits
305 // to 32 before multiplication.
306 #define NV50_IR_SUBOP_XMAD_H1_SHIFT 5
307 #define NV50_IR_SUBOP_XMAD_H1(i) (1 << (NV50_IR_SUBOP_XMAD_H1_SHIFT + (i)))
308 #define NV50_IR_SUBOP_XMAD_H1_MASK (0x3 << NV50_IR_SUBOP_XMAD_H1_SHIFT)
309 
310 enum DataType
311 {
312    TYPE_NONE,
313    TYPE_U8,
314    TYPE_S8,
315    TYPE_U16,
316    TYPE_S16,
317    TYPE_U32,
318    TYPE_S32,
319    TYPE_U64, // 64 bit operations are only lowered after register allocation
320    TYPE_S64,
321    TYPE_F16,
322    TYPE_F32,
323    TYPE_F64,
324    TYPE_B96,
325    TYPE_B128
326 };
327 
328 enum CondCode
329 {
330    CC_FL = 0,
331    CC_NEVER = CC_FL, // when used with FILE_FLAGS
332    CC_LT = 1,
333    CC_EQ = 2,
334    CC_NOT_P = CC_EQ, // when used with FILE_PREDICATE
335    CC_LE = 3,
336    CC_GT = 4,
337    CC_NE = 5,
338    CC_P  = CC_NE,
339    CC_GE = 6,
340    CC_TR = 7,
341    CC_ALWAYS = CC_TR,
342    CC_U  = 8,
343    CC_LTU = 9,
344    CC_EQU = 10,
345    CC_LEU = 11,
346    CC_GTU = 12,
347    CC_NEU = 13,
348    CC_GEU = 14,
349    CC_NO = 0x10,
350    CC_NC = 0x11,
351    CC_NS = 0x12,
352    CC_NA = 0x13,
353    CC_A  = 0x14,
354    CC_S  = 0x15,
355    CC_C  = 0x16,
356    CC_O  = 0x17
357 };
358 
359 enum RoundMode
360 {
361    ROUND_N, // nearest
362    ROUND_M, // towards -inf
363    ROUND_Z, // towards 0
364    ROUND_P, // towards +inf
365    ROUND_NI, // nearest integer
366    ROUND_MI, // to integer towards -inf
367    ROUND_ZI, // to integer towards 0
368    ROUND_PI, // to integer towards +inf
369 };
370 
371 enum CacheMode
372 {
373    CACHE_CA,            // cache at all levels
374    CACHE_WB = CACHE_CA, // cache write back
375    CACHE_CG,            // cache at global level
376    CACHE_CS,            // cache streaming
377    CACHE_CV,            // cache as volatile
378    CACHE_WT = CACHE_CV  // cache write-through
379 };
380 
381 enum DataFile
382 {
383    FILE_NULL = 0,
384    FILE_GPR,
385    FILE_PREDICATE,       // boolean predicate
386    FILE_FLAGS,           // zero/sign/carry/overflow bits
387    FILE_ADDRESS,
388    FILE_BARRIER,
389    LAST_REGISTER_FILE = FILE_BARRIER,
390    FILE_IMMEDIATE,
391    FILE_MEMORY_CONST,
392    FILE_SHADER_INPUT,
393    FILE_SHADER_OUTPUT,
394    FILE_MEMORY_BUFFER,
395    FILE_MEMORY_GLOBAL,
396    FILE_MEMORY_SHARED,
397    FILE_MEMORY_LOCAL,
398    FILE_SYSTEM_VALUE,
399    FILE_THREAD_STATE,           // "special" barrier registers
400    DATA_FILE_COUNT
401 };
402 
403 enum TexTarget
404 {
405    TEX_TARGET_1D,
406    TEX_TARGET_2D,
407    TEX_TARGET_2D_MS,
408    TEX_TARGET_3D,
409    TEX_TARGET_CUBE,
410    TEX_TARGET_1D_SHADOW,
411    TEX_TARGET_2D_SHADOW,
412    TEX_TARGET_CUBE_SHADOW,
413    TEX_TARGET_1D_ARRAY,
414    TEX_TARGET_2D_ARRAY,
415    TEX_TARGET_2D_MS_ARRAY,
416    TEX_TARGET_CUBE_ARRAY,
417    TEX_TARGET_1D_ARRAY_SHADOW,
418    TEX_TARGET_2D_ARRAY_SHADOW,
419    TEX_TARGET_RECT,
420    TEX_TARGET_RECT_SHADOW,
421    TEX_TARGET_CUBE_ARRAY_SHADOW,
422    TEX_TARGET_BUFFER,
423    TEX_TARGET_COUNT
424 };
425 
426 enum ImgFormat
427 {
428    FMT_NONE,
429 
430    FMT_RGBA32F,
431    FMT_RGBA16F,
432    FMT_RG32F,
433    FMT_RG16F,
434    FMT_R11G11B10F,
435    FMT_R32F,
436    FMT_R16F,
437 
438    FMT_RGBA32UI,
439    FMT_RGBA16UI,
440    FMT_RGB10A2UI,
441    FMT_RGBA8UI,
442    FMT_RG32UI,
443    FMT_RG16UI,
444    FMT_RG8UI,
445    FMT_R32UI,
446    FMT_R16UI,
447    FMT_R8UI,
448 
449    FMT_RGBA32I,
450    FMT_RGBA16I,
451    FMT_RGBA8I,
452    FMT_RG32I,
453    FMT_RG16I,
454    FMT_RG8I,
455    FMT_R32I,
456    FMT_R16I,
457    FMT_R8I,
458 
459    FMT_RGBA16,
460    FMT_RGB10A2,
461    FMT_RGBA8,
462    FMT_RG16,
463    FMT_RG8,
464    FMT_R16,
465    FMT_R8,
466 
467    FMT_RGBA16_SNORM,
468    FMT_RGBA8_SNORM,
469    FMT_RG16_SNORM,
470    FMT_RG8_SNORM,
471    FMT_R16_SNORM,
472    FMT_R8_SNORM,
473 
474    FMT_BGRA8,
475 
476    IMG_FORMAT_COUNT,
477 };
478 
479 enum ImgType {
480    UINT,
481    SINT,
482    UNORM,
483    SNORM,
484    FLOAT,
485 };
486 
487 enum SVSemantic
488 {
489    SV_POSITION, // WPOS
490    SV_VERTEX_ID,
491    SV_INSTANCE_ID,
492    SV_INVOCATION_ID,
493    SV_PRIMITIVE_ID,
494    SV_VERTEX_COUNT, // gl_PatchVerticesIn
495    SV_LAYER,
496    SV_VIEWPORT_INDEX,
497    SV_VIEWPORT_MASK,
498    SV_YDIR,
499    SV_FACE,
500    SV_POINT_SIZE,
501    SV_POINT_COORD,
502    SV_CLIP_DISTANCE,
503    SV_SAMPLE_INDEX,
504    SV_SAMPLE_POS,
505    SV_SAMPLE_MASK,
506    SV_TESS_OUTER,
507    SV_TESS_INNER,
508    SV_TESS_COORD,
509    SV_TID,
510    SV_COMBINED_TID,
511    SV_CTAID,
512    SV_NTID,
513    SV_GRIDID,
514    SV_NCTAID,
515    SV_LANEID,
516    SV_PHYSID,
517    SV_NPHYSID,
518    SV_CLOCK,
519    SV_LBASE,
520    SV_SBASE,
521    SV_VERTEX_STRIDE,
522    SV_INVOCATION_INFO,
523    SV_THREAD_KILL,
524    SV_BASEVERTEX,
525    SV_BASEINSTANCE,
526    SV_DRAWID,
527    SV_WORK_DIM,
528    SV_LANEMASK_EQ,
529    SV_LANEMASK_LT,
530    SV_LANEMASK_LE,
531    SV_LANEMASK_GT,
532    SV_LANEMASK_GE,
533    SV_UNDEFINED,
534    SV_LAST
535 };
536 
537 enum TSSemantic
538 {
539    // 0-15 are fixed ones on Volta/Turing
540    TS_THREAD_STATE_ENUM0 = 0,
541    TS_THREAD_STATE_ENUM1 = 1,
542    TS_THREAD_STATE_ENUM2 = 2,
543    TS_THREAD_STATE_ENUM3 = 3,
544    TS_THREAD_STATE_ENUM4 = 4,
545    TS_TRAP_RETURN_PC_LO  = 5,
546    TS_TRAP_RETURN_PC_HI  = 6,
547    TS_TRAP_RETURN_MASK   = 7,
548    TS_MEXITED            = 8,
549    TS_MKILL              = 9,
550    TS_MACTIVE            = 10,
551    TS_MATEXIT            = 11,
552    TS_OPT_STACK          = 12,
553    TS_API_CALL_DEPTH     = 13,
554    TS_ATEXIT_PC_LO       = 14,
555    TS_ATEXIT_PC_HI       = 15,
556    // special ones to make our life easier
557    TS_PQUAD_MACTIVE,
558 };
559 
560 class Program;
561 class Function;
562 class BasicBlock;
563 
564 class Target;
565 
566 class Instruction;
567 class CmpInstruction;
568 class TexInstruction;
569 class FlowInstruction;
570 
571 class Value;
572 class LValue;
573 class Symbol;
574 class ImmediateValue;
575 
576 struct Storage
577 {
578    DataFile file;
579    int8_t fileIndex; // signed, may be indirect for CONST[]
580    uint8_t size; // this should match the Instruction type's size
581    DataType type; // mainly for pretty printing
582    union {
583       uint64_t u64;    // immediate values
584       uint32_t u32;
585       uint16_t u16;
586       uint8_t u8;
587       int64_t s64;
588       int32_t s32;
589       int16_t s16;
590       int8_t s8;
591       float f32;
592       double f64;
593       int32_t offset; // offset from 0 (base of address space)
594       int32_t id;     // register id (< 0 if virtual/unassigned, in units <= 4)
595       struct {
596          SVSemantic sv;
597          int index;
598       } sv;
599       TSSemantic ts;
600    } data;
601 };
602 
603 // precedence: NOT after SAT after NEG after ABS
604 #define NV50_IR_MOD_ABS (1 << 0)
605 #define NV50_IR_MOD_NEG (1 << 1)
606 #define NV50_IR_MOD_SAT (1 << 2)
607 #define NV50_IR_MOD_NOT (1 << 3)
608 #define NV50_IR_MOD_NEG_ABS (NV50_IR_MOD_NEG | NV50_IR_MOD_ABS)
609 
610 #define NV50_IR_INTERP_MODE_MASK   0x3
611 #define NV50_IR_INTERP_LINEAR      (0 << 0)
612 #define NV50_IR_INTERP_PERSPECTIVE (1 << 0)
613 #define NV50_IR_INTERP_FLAT        (2 << 0)
614 #define NV50_IR_INTERP_SC          (3 << 0) // what exactly is that ?
615 #define NV50_IR_INTERP_SAMPLE_MASK 0xc
616 #define NV50_IR_INTERP_DEFAULT     (0 << 2)
617 #define NV50_IR_INTERP_CENTROID    (1 << 2)
618 #define NV50_IR_INTERP_OFFSET      (2 << 2)
619 #define NV50_IR_INTERP_SAMPLEID    (3 << 2)
620 
621 // do we really want this to be a class ?
622 class Modifier
623 {
624 public:
Modifier()625    Modifier() : bits(0) { }
Modifier(unsigned int m)626    Modifier(unsigned int m) : bits(m) { }
627    Modifier(operation op);
628 
629    // @return new Modifier applying a after b (asserts if unrepresentable)
630    Modifier operator*(const Modifier) const;
631    Modifier operator*=(const Modifier m) { *this = *this * m; return *this; }
632    Modifier operator==(const Modifier m) const { return m.bits == bits; }
633    Modifier operator!=(const Modifier m) const { return m.bits != bits; }
634 
635    inline Modifier operator&(const Modifier m) const { return bits & m.bits; }
636    inline Modifier operator|(const Modifier m) const { return bits | m.bits; }
637    inline Modifier operator^(const Modifier m) const { return bits ^ m.bits; }
638 
639    operation getOp() const;
640 
neg()641    inline int neg() const { return (bits & NV50_IR_MOD_NEG) ? 1 : 0; }
abs()642    inline int abs() const { return (bits & NV50_IR_MOD_ABS) ? 1 : 0; }
643 
644    inline operator bool() const { return bits ? true : false; }
645 
646    void applyTo(ImmediateValue &imm) const;
647 
648    int print(char *buf, size_t size) const;
649 
650 private:
651    uint8_t bits;
652 };
653 
654 class ValueRef
655 {
656 public:
657    ValueRef(Value * = NULL);
658    ValueRef(const ValueRef&);
659    ~ValueRef();
660 
exists()661    inline bool exists() const { return value != NULL; }
662 
663    void set(Value *);
664    void set(const ValueRef&);
get()665    inline Value *get() const { return value; }
666    inline Value *rep() const;
667 
getInsn()668    inline Instruction *getInsn() const { return insn; }
setInsn(Instruction * inst)669    inline void setInsn(Instruction *inst) { insn = inst; }
670 
isIndirect(int dim)671    inline bool isIndirect(int dim) const { return indirect[dim] >= 0; }
672    inline const ValueRef *getIndirect(int dim) const;
673 
674    inline DataFile getFile() const;
675    inline unsigned getSize() const;
676 
677    // SSA: return eventual (traverse MOVs) literal value, if it exists
678    bool getImmediate(ImmediateValue&) const;
679 
680 public:
681    Modifier mod;
682    int8_t indirect[2]; // >= 0 if relative to lvalue in insn->src(indirect[i])
683 
684    bool usedAsPtr; // for printing
685 
686 private:
687    Value *value;
688    Instruction *insn;
689 };
690 
691 class ValueDef
692 {
693 public:
694    ValueDef(Value * = NULL);
695    ValueDef(const ValueDef&);
696    ~ValueDef();
697 
exists()698    inline bool exists() const { return value != NULL; }
699 
get()700    inline Value *get() const { return value; }
701    inline Value *rep() const;
702    void set(Value *);
703    bool mayReplace(const ValueRef &);
704    void replace(const ValueRef &, bool doSet); // replace all uses of the old value
705 
getInsn()706    inline Instruction *getInsn() const { return insn; }
setInsn(Instruction * inst)707    inline void setInsn(Instruction *inst) { insn = inst; }
708 
709    inline DataFile getFile() const;
710    inline unsigned getSize() const;
711 
712    inline void setSSA(LValue *);
713    inline const LValue *preSSA() const;
714 
715 private:
716    Value *value;   // should make this LValue * ...
717    LValue *origin; // pre SSA value
718    Instruction *insn;
719 };
720 
721 class Value
722 {
723 public:
724    Value();
~Value()725    virtual ~Value() { }
726 
727    virtual Value *clone(ClonePolicy<Function>&) const = 0;
728 
729    virtual int print(char *, size_t, DataType ty = TYPE_NONE) const = 0;
730 
731    virtual bool equals(const Value *, bool strict = false) const;
732    virtual bool interfers(const Value *) const;
isUniform()733    virtual bool isUniform() const { return true; }
734 
rep()735    inline Value *rep() const { return join; }
736 
737    inline Instruction *getUniqueInsn() const;
738    inline Instruction *getInsn() const; // use when uniqueness is certain
739 
refCount()740    inline int refCount() { return uses.size(); }
741 
742    inline LValue *asLValue();
743    inline Symbol *asSym();
744    inline ImmediateValue *asImm();
745    inline const Symbol *asSym() const;
746    inline const ImmediateValue *asImm() const;
747 
inFile(DataFile f)748    inline bool inFile(DataFile f) const { return reg.file == f; }
749 
750    static inline Value *get(Iterator&);
751 
752    unordered_set<ValueRef *> uses;
753    std::list<ValueDef *> defs;
754    typedef unordered_set<ValueRef *>::iterator UseIterator;
755    typedef unordered_set<ValueRef *>::const_iterator UseCIterator;
756    typedef std::list<ValueDef *>::iterator DefIterator;
757    typedef std::list<ValueDef *>::const_iterator DefCIterator;
758 
759    int id;
760    Storage reg;
761 
762    // TODO: these should be in LValue:
763    Interval livei;
764    Value *join;
765 };
766 
767 class LValue : public Value
768 {
769 public:
770    LValue(Function *, DataFile file);
771    LValue(Function *, LValue *);
~LValue()772    ~LValue() { }
773 
774    virtual bool isUniform() const;
775 
776    virtual LValue *clone(ClonePolicy<Function>&) const;
777 
778    virtual int print(char *, size_t, DataType ty = TYPE_NONE) const;
779 
780 public:
781    unsigned compMask : 8; // compound/component mask
782    unsigned compound : 1; // used by RA, value involved in split/merge
783    unsigned ssa      : 1;
784    unsigned fixedReg : 1; // set & used by RA, earlier just use (id < 0)
785    unsigned noSpill  : 1; // do not spill (e.g. if spill temporary already)
786 };
787 
788 class Symbol : public Value
789 {
790 public:
791    Symbol(Program *, DataFile file = FILE_MEMORY_CONST, ubyte fileIdx = 0);
~Symbol()792    ~Symbol() { }
793 
794    virtual Symbol *clone(ClonePolicy<Function>&) const;
795 
796    virtual bool equals(const Value *that, bool strict) const;
797 
798    virtual bool isUniform() const;
799 
800    virtual int print(char *, size_t, DataType ty = TYPE_NONE) const;
801 
802    // print with indirect values
803    int print(char *, size_t, Value *, Value *, DataType ty = TYPE_NONE) const;
804 
805    inline void setFile(DataFile file, ubyte fileIndex = 0)
806    {
807       reg.file = file;
808       reg.fileIndex = fileIndex;
809    }
810 
811    inline void setOffset(int32_t offset);
812    inline void setAddress(Symbol *base, int32_t offset);
813    inline void setSV(SVSemantic sv, uint32_t idx = 0);
814 
getBase()815    inline const Symbol *getBase() const { return baseSym; }
816 
817 private:
818    Symbol *baseSym; // array base for Symbols representing array elements
819 };
820 
821 class ImmediateValue : public Value
822 {
823 public:
ImmediateValue()824    ImmediateValue() { }
825    ImmediateValue(Program *, uint32_t);
826    ImmediateValue(Program *, float);
827    ImmediateValue(Program *, double);
828    // NOTE: not added to program with
829    ImmediateValue(const ImmediateValue *, DataType ty);
~ImmediateValue()830    ~ImmediateValue() { };
831 
832    virtual ImmediateValue *clone(ClonePolicy<Function>&) const;
833 
834    virtual bool equals(const Value *that, bool strict) const;
835 
836    // these only work if 'type' is valid (we mostly use untyped literals):
837    bool isInteger(const int ival) const; // ival is cast to this' type
838    bool isNegative() const;
839    bool isPow2() const;
840 
841    void applyLog2();
842 
843    // for constant folding:
844    ImmediateValue operator+(const ImmediateValue&) const;
845    ImmediateValue operator-(const ImmediateValue&) const;
846    ImmediateValue operator*(const ImmediateValue&) const;
847    ImmediateValue operator/(const ImmediateValue&) const;
848 
849    ImmediateValue& operator=(const ImmediateValue&); // only sets value !
850 
851    bool compare(CondCode cc, float fval) const;
852 
853    virtual int print(char *, size_t, DataType ty = TYPE_NONE) const;
854 };
855 
856 class Instruction
857 {
858 public:
859    Instruction();
860    Instruction(Function *, operation, DataType);
861    virtual ~Instruction();
862 
863    virtual Instruction *clone(ClonePolicy<Function>&,
864                               Instruction * = NULL) const;
865 
866    void setDef(int i, Value *);
867    void setSrc(int s, Value *);
868    void setSrc(int s, const ValueRef&);
869    void swapSources(int a, int b);
870    void moveSources(int s, int delta);
871    bool setIndirect(int s, int dim, Value *);
872 
src(int s)873    inline ValueRef& src(int s) { return srcs[s]; }
def(int s)874    inline ValueDef& def(int s) { return defs[s]; }
src(int s)875    inline const ValueRef& src(int s) const { return srcs[s]; }
def(int s)876    inline const ValueDef& def(int s) const { return defs[s]; }
877 
getDef(int d)878    inline Value *getDef(int d) const { return defs[d].get(); }
getSrc(int s)879    inline Value *getSrc(int s) const { return srcs[s].get(); }
880    inline Value *getIndirect(int s, int dim) const;
881 
defExists(unsigned d)882    inline bool defExists(unsigned d) const
883    {
884       return d < defs.size() && defs[d].exists();
885    }
srcExists(unsigned s)886    inline bool srcExists(unsigned s) const
887    {
888       return s < srcs.size() && srcs[s].exists();
889    }
890 
891    inline bool constrainedDefs() const;
892 
893    bool setPredicate(CondCode ccode, Value *);
894    inline Value *getPredicate() const;
895    bool writesPredicate() const;
isPredicated()896    inline bool isPredicated() const { return predSrc >= 0; }
897 
898    inline void setFlagsSrc(int s, Value *);
899    inline void setFlagsDef(int d, Value *);
usesFlags()900    inline bool usesFlags() const { return flagsSrc >= 0; }
901 
defCount()902    unsigned int defCount() const { return defs.size(); };
903    unsigned int defCount(unsigned int mask, bool singleFile = false) const;
srcCount()904    unsigned int srcCount() const { return srcs.size(); };
905    unsigned int srcCount(unsigned int mask, bool singleFile = false) const;
906 
907    // save & remove / set indirect[0,1] and predicate source
908    void takeExtraSources(int s, Value *[3]);
909    void putExtraSources(int s, Value *[3]);
910 
setType(DataType type)911    inline void setType(DataType type) { dType = sType = type; }
912 
setType(DataType dtype,DataType stype)913    inline void setType(DataType dtype, DataType stype)
914    {
915       dType = dtype;
916       sType = stype;
917    }
918 
isPseudo()919    inline bool isPseudo() const { return op < OP_MOV; }
920    bool isDead() const;
921    bool isNop() const;
922    bool isCommutationLegal(const Instruction *) const; // must be adjacent !
923    bool isActionEqual(const Instruction *) const;
924    bool isResultEqual(const Instruction *) const;
925 
926    // check whether the defs interfere with srcs and defs of another instruction
927    bool canCommuteDefDef(const Instruction *) const;
928    bool canCommuteDefSrc(const Instruction *) const;
929 
930    void print() const;
931 
932    inline CmpInstruction *asCmp();
933    inline TexInstruction *asTex();
934    inline FlowInstruction *asFlow();
935    inline const TexInstruction *asTex() const;
936    inline const CmpInstruction *asCmp() const;
937    inline const FlowInstruction *asFlow() const;
938 
939 public:
940    Instruction *next;
941    Instruction *prev;
942    int id;
943    int serial; // CFG order
944 
945    operation op;
946    DataType dType; // destination or defining type
947    DataType sType; // source or secondary type
948    CondCode cc;
949    RoundMode rnd;
950    CacheMode cache;
951 
952    uint16_t subOp; // quadop, 1 for mul-high, etc.
953 
954    unsigned encSize    : 5; // encoding size in bytes
955    unsigned saturate   : 1; // to [0.0f, 1.0f]
956    unsigned join       : 1; // converge control flow (use OP_JOIN until end)
957    unsigned fixed      : 1; // prevent dead code elimination
958    unsigned terminator : 1; // end of basic block
959    unsigned ftz        : 1; // flush denormal to zero
960    unsigned dnz        : 1; // denormals, NaN are zero
961    unsigned ipa        : 4; // interpolation mode
962    unsigned lanes      : 4;
963    unsigned perPatch   : 1;
964    unsigned exit       : 1; // terminate program after insn
965    unsigned mask       : 4; // for vector ops
966    // prevent algebraic optimisations that aren't bit-for-bit identical
967    unsigned precise    : 1;
968 
969    int8_t postFactor; // MUL/DIV(if < 0) by 1 << postFactor
970 
971    int8_t predSrc;
972    int8_t flagsDef;
973    int8_t flagsSrc;
974 
975    uint32_t sched; // scheduling data (NOTE: maybe move to separate storage)
976 
977    BasicBlock *bb;
978 
979 protected:
980    std::deque<ValueDef> defs; // no gaps !
981    std::deque<ValueRef> srcs; // no gaps !
982 
983    // instruction specific methods:
984    // (don't want to subclass, would need more constructors and memory pools)
985 public:
setInterpolate(unsigned int mode)986    inline void setInterpolate(unsigned int mode) { ipa = mode; }
987 
getInterpMode()988    unsigned int getInterpMode() const { return ipa & 0x3; }
getSampleMode()989    unsigned int getSampleMode() const { return ipa & 0xc; }
990 
991 private:
992    void init();
993 };
994 
995 enum TexQuery
996 {
997    TXQ_DIMS, /* x, y, z, levels */
998    TXQ_TYPE, /* ?, ?, samples, ? */
999    TXQ_SAMPLE_POSITION,
1000    TXQ_FILTER,
1001    TXQ_LOD,
1002    TXQ_WRAP,
1003    TXQ_BORDER_COLOUR
1004 };
1005 
1006 class TexInstruction : public Instruction
1007 {
1008 public:
1009    class Target
1010    {
1011    public:
target(targ)1012       Target(TexTarget targ = TEX_TARGET_1D) : target(targ) { }
1013 
getName()1014       const char *getName() const { return descTable[target].name; }
getArgCount()1015       unsigned int getArgCount() const { return descTable[target].argc; }
getDim()1016       unsigned int getDim() const { return descTable[target].dim; }
isArray()1017       int isArray() const { return descTable[target].array ? 1 : 0; }
isCube()1018       int isCube() const { return descTable[target].cube ? 1 : 0; }
isShadow()1019       int isShadow() const { return descTable[target].shadow ? 1 : 0; }
isMS()1020       int isMS() const {
1021         return target == TEX_TARGET_2D_MS || target == TEX_TARGET_2D_MS_ARRAY; }
clearMS()1022       void clearMS() {
1023          if (isMS()) {
1024             if (isArray())
1025                target = TEX_TARGET_2D_ARRAY;
1026             else
1027                target = TEX_TARGET_2D;
1028          }
1029       }
1030 
1031       Target& operator=(TexTarget targ)
1032       {
1033          assert(targ < TEX_TARGET_COUNT);
1034          target = targ;
1035          return *this;
1036       }
1037 
1038       inline bool operator==(TexTarget targ) const { return target == targ; }
1039       inline bool operator!=(TexTarget targ) const { return target != targ; }
1040 
getEnum()1041       enum TexTarget getEnum() const { return target; }
1042 
1043    private:
1044       struct Desc
1045       {
1046          char name[19];
1047          uint8_t dim;
1048          uint8_t argc;
1049          bool array;
1050          bool cube;
1051          bool shadow;
1052       };
1053 
1054       static const struct Desc descTable[TEX_TARGET_COUNT];
1055 
1056    private:
1057       enum TexTarget target;
1058    };
1059 
1060 public:
1061    struct ImgFormatDesc
1062    {
1063       char name[19];
1064       uint8_t components;
1065       uint8_t bits[4];
1066       ImgType type;
1067       bool bgra;
1068    };
1069 
1070    static const struct ImgFormatDesc formatTable[IMG_FORMAT_COUNT];
1071    static const struct ImgFormatDesc *translateImgFormat(
1072          enum pipe_format format);
1073 
1074 public:
1075    TexInstruction(Function *, operation);
1076    virtual ~TexInstruction();
1077 
1078    virtual TexInstruction *clone(ClonePolicy<Function>&,
1079                                  Instruction * = NULL) const;
1080 
setTexture(Target targ,uint8_t r,uint8_t s)1081    inline void setTexture(Target targ, uint8_t r, uint8_t s)
1082    {
1083       tex.r = r;
1084       tex.s = s;
1085       tex.target = targ;
1086    }
1087 
1088    void setIndirectR(Value *);
1089    void setIndirectS(Value *);
1090    inline Value *getIndirectR() const;
1091    inline Value *getIndirectS() const;
1092 
1093 public:
1094    struct {
1095       Target target;
1096 
1097       uint16_t r;
1098       uint16_t s;
1099       int8_t rIndirectSrc;
1100       int8_t sIndirectSrc;
1101 
1102       uint8_t mask;
1103       uint8_t gatherComp;
1104 
1105       bool liveOnly; // only execute on live pixels of a quad (optimization)
1106       bool levelZero;
1107       bool derivAll;
1108       bool bindless;
1109 
1110       int8_t useOffsets; // 0, 1, or 4 for textureGatherOffsets
1111       int8_t offset[3]; // only used on nv50
1112 
1113       enum TexQuery query;
1114       const struct ImgFormatDesc *format;
1115 
1116       bool scalar; // for GM107s TEXS, TLDS, TLD4S
1117    } tex;
1118 
1119    ValueRef dPdx[3];
1120    ValueRef dPdy[3];
1121    ValueRef offset[4][3];
1122 };
1123 
1124 class CmpInstruction : public Instruction
1125 {
1126 public:
1127    CmpInstruction(Function *, operation);
1128 
1129    virtual CmpInstruction *clone(ClonePolicy<Function>&,
1130                                  Instruction * = NULL) const;
1131 
setCondition(CondCode cond)1132    void setCondition(CondCode cond) { setCond = cond; }
getCondition()1133    CondCode getCondition() const { return setCond; }
1134 
1135 public:
1136    CondCode setCond;
1137 };
1138 
1139 class FlowInstruction : public Instruction
1140 {
1141 public:
1142    FlowInstruction(Function *, operation, void *target);
1143 
1144    virtual FlowInstruction *clone(ClonePolicy<Function>&,
1145                                   Instruction * = NULL) const;
1146 
1147 public:
1148    unsigned allWarp  : 1;
1149    unsigned absolute : 1;
1150    unsigned limit    : 1;
1151    unsigned builtin  : 1; // true for calls to emulation code
1152    unsigned indirect : 1; // target in src(0)
1153 
1154    union {
1155       BasicBlock *bb;
1156       int builtin;
1157       Function *fn;
1158    } target;
1159 };
1160 
1161 class BasicBlock
1162 {
1163 public:
1164    BasicBlock(Function *);
1165    ~BasicBlock();
1166 
1167    BasicBlock *clone(ClonePolicy<Function>&) const;
1168 
getId()1169    inline int getId() const { return id; }
getInsnCount()1170    inline unsigned int getInsnCount() const { return numInsns; }
isTerminated()1171    inline bool isTerminated() const { return exit && exit->terminator; }
1172 
1173    bool dominatedBy(BasicBlock *bb);
1174    inline bool reachableBy(const BasicBlock *by, const BasicBlock *term);
1175 
1176    // returns mask of conditional out blocks
1177    // e.g. 3 for IF { .. } ELSE { .. } ENDIF, 1 for IF { .. } ENDIF
1178    unsigned int initiatesSimpleConditional() const;
1179 
1180 public:
getFunction()1181    Function *getFunction() const { return func; }
getProgram()1182    Program *getProgram() const { return program; }
1183 
getEntry()1184    Instruction *getEntry() const { return entry; } // first non-phi instruction
getPhi()1185    Instruction *getPhi() const { return phi; }
getFirst()1186    Instruction *getFirst() const { return phi ? phi : entry; }
getExit()1187    Instruction *getExit() const { return exit; }
1188 
1189    void insertHead(Instruction *);
1190    void insertTail(Instruction *);
1191    void insertBefore(Instruction *, Instruction *);
1192    void insertAfter(Instruction *, Instruction *);
1193    void remove(Instruction *);
1194    void permuteAdjacent(Instruction *, Instruction *);
1195 
1196    BasicBlock *idom() const;
1197 
1198    // NOTE: currently does not rebuild the dominator tree
1199    BasicBlock *splitBefore(Instruction *, bool attach = true);
1200    BasicBlock *splitAfter(Instruction *, bool attach = true);
1201 
getDF()1202    DLList& getDF() { return df; }
iterDF()1203    DLList::Iterator iterDF() { return df.iterator(); }
1204 
1205    static inline BasicBlock *get(Iterator&);
1206    static inline BasicBlock *get(Graph::Node *);
1207 
1208 public:
1209    Graph::Node cfg; // first edge is branch *taken* (the ELSE branch)
1210    Graph::Node dom;
1211 
1212    BitSet liveSet;
1213    BitSet defSet;
1214 
1215    uint32_t binPos;
1216    uint32_t binSize;
1217 
1218    Instruction *joinAt; // for quick reference
1219 
1220    bool explicitCont; // loop headers: true if loop contains continue stmts
1221 
1222 private:
1223    int id;
1224    DLList df;
1225 
1226    Instruction *phi;
1227    Instruction *entry;
1228    Instruction *exit;
1229 
1230    unsigned int numInsns;
1231 
1232 private:
1233    Function *func;
1234    Program *program;
1235 
1236    void splitCommon(Instruction *, BasicBlock *, bool attach);
1237 };
1238 
1239 class Function
1240 {
1241 public:
1242    Function(Program *, const char *name, uint32_t label);
1243    ~Function();
1244 
1245    static inline Function *get(Graph::Node *node);
1246 
getProgram()1247    inline Program *getProgram() const { return prog; }
getName()1248    inline const char *getName() const { return name; }
getId()1249    inline int getId() const { return id; }
getLabel()1250    inline uint32_t getLabel() const { return label; }
1251 
1252    void print();
1253    void printLiveIntervals() const;
1254    void printCFGraph(const char *filePath);
1255 
1256    bool setEntry(BasicBlock *);
1257    bool setExit(BasicBlock *);
1258 
1259    unsigned int orderInstructions(ArrayList&);
1260 
add(BasicBlock * bb,int & id)1261    inline void add(BasicBlock *bb, int& id) { allBBlocks.insert(bb, id); }
add(Instruction * insn,int & id)1262    inline void add(Instruction *insn, int& id) { allInsns.insert(insn, id); }
add(LValue * lval,int & id)1263    inline void add(LValue *lval, int& id) { allLValues.insert(lval, id); }
1264 
1265    inline LValue *getLValue(int id);
1266 
1267    void buildLiveSets();
1268    void buildDefSets();
1269    bool convertToSSA();
1270 
1271 public:
1272    std::deque<ValueDef> ins;
1273    std::deque<ValueRef> outs;
1274    std::deque<Value *> clobbers;
1275 
1276    Graph cfg;
1277    Graph::Node *cfgExit;
1278    Graph *domTree;
1279    Graph::Node call; // node in the call graph
1280 
1281    BasicBlock **bbArray; // BBs in emission order
1282    int bbCount;
1283 
1284    unsigned int loopNestingBound;
1285    int regClobberMax;
1286 
1287    uint32_t binPos;
1288    uint32_t binSize;
1289 
1290    Value *stackPtr;
1291 
1292    uint32_t tlsBase; // base address for l[] space (if no stack pointer is used)
1293    uint32_t tlsSize;
1294 
1295    ArrayList allBBlocks;
1296    ArrayList allInsns;
1297    ArrayList allLValues;
1298 
1299 private:
1300    void buildLiveSetsPreSSA(BasicBlock *, const int sequence);
1301    void buildDefSetsPreSSA(BasicBlock *bb, const int seq);
1302 
1303 private:
1304    uint32_t label;
1305    int id;
1306    const char *const name;
1307    Program *prog;
1308 };
1309 
1310 enum CGStage
1311 {
1312    CG_STAGE_PRE_SSA,
1313    CG_STAGE_SSA, // expected directly before register allocation
1314    CG_STAGE_POST_RA
1315 };
1316 
1317 class Program
1318 {
1319 public:
1320    enum Type
1321    {
1322       TYPE_VERTEX,
1323       TYPE_TESSELLATION_CONTROL,
1324       TYPE_TESSELLATION_EVAL,
1325       TYPE_GEOMETRY,
1326       TYPE_FRAGMENT,
1327       TYPE_COMPUTE
1328    };
1329 
1330    Program(Type type, Target *targ);
1331    ~Program();
1332 
1333    void print();
1334 
getType()1335    Type getType() const { return progType; }
1336 
add(Function * fn,int & id)1337    inline void add(Function *fn, int& id) { allFuncs.insert(fn, id); }
del(Function * fn,int & id)1338    inline void del(Function *fn, int& id) { allFuncs.remove(id); }
add(Value * rval,int & id)1339    inline void add(Value *rval, int& id) { allRValues.insert(rval, id); }
1340 
1341    bool makeFromNIR(struct nv50_ir_prog_info *,
1342                     struct nv50_ir_prog_info_out *);
1343    bool makeFromTGSI(struct nv50_ir_prog_info *,
1344                      struct nv50_ir_prog_info_out *);
1345    bool convertToSSA();
1346    bool optimizeSSA(int level);
1347    bool optimizePostRA(int level);
1348    bool registerAllocation();
1349    bool emitBinary(struct nv50_ir_prog_info_out *);
1350 
getTarget()1351    const Target *getTarget() const { return target; }
1352 
1353 private:
1354    Type progType;
1355    Target *target;
1356 
1357 public:
1358    Function *main;
1359    Graph calls;
1360 
1361    ArrayList allFuncs;
1362    ArrayList allRValues;
1363 
1364    uint32_t *code;
1365    uint32_t binSize;
1366    uint32_t tlsSize; // size required for FILE_MEMORY_LOCAL
1367 
1368    int maxGPR;
1369    bool fp64;
1370    bool persampleInvocation;
1371 
1372    MemoryPool mem_Instruction;
1373    MemoryPool mem_CmpInstruction;
1374    MemoryPool mem_TexInstruction;
1375    MemoryPool mem_FlowInstruction;
1376    MemoryPool mem_LValue;
1377    MemoryPool mem_Symbol;
1378    MemoryPool mem_ImmediateValue;
1379 
1380    uint32_t dbgFlags;
1381    uint8_t  optLevel;
1382 
1383    void *targetPriv; // e.g. to carry information between passes
1384 
1385    const struct nv50_ir_prog_info *driver; // for driver configuration
1386    const struct nv50_ir_prog_info_out *driver_out; // for driver configuration
1387 
1388    void releaseInstruction(Instruction *);
1389    void releaseValue(Value *);
1390 };
1391 
1392 // TODO: add const version
1393 class Pass
1394 {
1395 public:
1396    bool run(Program *, bool ordered = false, bool skipPhi = false);
1397    bool run(Function *, bool ordered = false, bool skipPhi = false);
1398 
1399 private:
1400    // return false to continue with next entity on next higher level
visit(Function *)1401    virtual bool visit(Function *) { return true; }
visit(BasicBlock *)1402    virtual bool visit(BasicBlock *) { return true; }
visit(Instruction *)1403    virtual bool visit(Instruction *) { return false; }
1404 
1405    bool doRun(Program *, bool ordered, bool skipPhi);
1406    bool doRun(Function *, bool ordered, bool skipPhi);
1407 
1408 protected:
1409    bool err;
1410    Function *func;
1411    Program *prog;
1412 };
1413 
1414 // =============================================================================
1415 
1416 #include "codegen/nv50_ir_inlines.h"
1417 
1418 } // namespace nv50_ir
1419 
1420 #endif // __NV50_IR_H__
1421