github.com/panjjo/go@v0.0.0-20161104043856-d62b31386338/src/runtime/vlop_arm.s (about) 1 // Inferno's libkern/vlop-arm.s 2 // https://bitbucket.org/inferno-os/inferno-os/src/default/libkern/vlop-arm.s 3 // 4 // Copyright © 1994-1999 Lucent Technologies Inc. All rights reserved. 5 // Revisions Copyright © 2000-2007 Vita Nuova Holdings Limited (www.vitanuova.com). All rights reserved. 6 // Portions Copyright 2009 The Go Authors. All rights reserved. 7 // 8 // Permission is hereby granted, free of charge, to any person obtaining a copy 9 // of this software and associated documentation files (the "Software"), to deal 10 // in the Software without restriction, including without limitation the rights 11 // to use, copy, modify, merge, publish, distribute, sublicense, and/or sell 12 // copies of the Software, and to permit persons to whom the Software is 13 // furnished to do so, subject to the following conditions: 14 // 15 // The above copyright notice and this permission notice shall be included in 16 // all copies or substantial portions of the Software. 17 // 18 // THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR 19 // IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, 20 // FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE 21 // AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER 22 // LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, 23 // OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN 24 // THE SOFTWARE. 25 26 #include "go_asm.h" 27 #include "go_tls.h" 28 #include "funcdata.h" 29 #include "textflag.h" 30 31 /* replaced use of R10 by R11 because the former can be the data segment base register */ 32 33 TEXT _mulv(SB), NOSPLIT, $0 34 MOVW l0+0(FP), R2 /* l0 */ 35 MOVW h0+4(FP), R11 /* h0 */ 36 MOVW l1+8(FP), R4 /* l1 */ 37 MOVW h1+12(FP), R5 /* h1 */ 38 MULLU R4, R2, (R7,R6) 39 MUL R11, R4, R8 40 ADD R8, R7 41 MUL R2, R5, R8 42 ADD R8, R7 43 MOVW R6, ret_lo+16(FP) 44 MOVW R7, ret_hi+20(FP) 45 RET 46 47 // trampoline for _sfloat2. passes LR as arg0 and 48 // saves registers R0-R13 and CPSR on the stack. R0-R12 and CPSR flags can 49 // be changed by _sfloat2. 50 TEXT _sfloat(SB), NOSPLIT, $68-0 // 4 arg + 14*4 saved regs + cpsr + return value 51 MOVW R14, 4(R13) 52 MOVW R0, 8(R13) 53 MOVW $12(R13), R0 54 MOVM.IA.W [R1-R12], (R0) 55 MOVW $72(R13), R1 // correct for frame size 56 MOVW R1, 60(R13) 57 WORD $0xe10f1000 // mrs r1, cpsr 58 MOVW R1, 64(R13) 59 // Disable preemption of this goroutine during _sfloat2 by 60 // m->locks++ and m->locks-- around the call. 61 // Rescheduling this goroutine may cause the loss of the 62 // contents of the software floating point registers in 63 // m->freghi, m->freglo, m->fflag, if the goroutine is moved 64 // to a different m or another goroutine runs on this m. 65 // Rescheduling at ordinary function calls is okay because 66 // all registers are caller save, but _sfloat2 and the things 67 // that it runs are simulating the execution of individual 68 // program instructions, and those instructions do not expect 69 // the floating point registers to be lost. 70 // An alternative would be to move the software floating point 71 // registers into G, but they do not need to be kept at the 72 // usual places a goroutine reschedules (at function calls), 73 // so it would be a waste of 132 bytes per G. 74 MOVW g_m(g), R8 75 MOVW m_locks(R8), R1 76 ADD $1, R1 77 MOVW R1, m_locks(R8) 78 MOVW $1, R1 79 MOVW R1, m_softfloat(R8) 80 BL runtime·_sfloat2(SB) 81 MOVW 68(R13), R0 82 MOVW g_m(g), R8 83 MOVW m_locks(R8), R1 84 SUB $1, R1 85 MOVW R1, m_locks(R8) 86 MOVW $0, R1 87 MOVW R1, m_softfloat(R8) 88 MOVW R0, 0(R13) 89 MOVW 64(R13), R1 90 WORD $0xe128f001 // msr cpsr_f, r1 91 MOVW $12(R13), R0 92 // Restore R1-R12, R0. 93 MOVM.IA.W (R0), [R1-R12] 94 MOVW 8(R13), R0 95 RET 96 97 // trampoline for _sfloat2 panic. 98 // _sfloat2 instructs _sfloat to return here. 99 // We need to push a fake saved LR onto the stack, 100 // load the signal fault address into LR, and jump 101 // to the real sigpanic. 102 // This simulates what sighandler does for a memory fault. 103 TEXT runtime·_sfloatpanic(SB),NOSPLIT,$-4 104 MOVW $0, R0 105 MOVW.W R0, -4(R13) 106 MOVW g_sigpc(g), LR 107 B runtime·sigpanic(SB) 108 109 // func udiv(n, d uint32) (q, r uint32) 110 // compiler knowns the register usage of this function 111 // Reference: 112 // Sloss, Andrew et. al; ARM System Developer's Guide: Designing and Optimizing System Software 113 // Morgan Kaufmann; 1 edition (April 8, 2004), ISBN 978-1558608740 114 #define Rq R0 // input d, output q 115 #define Rr R1 // input n, output r 116 #define Rs R2 // three temporary variables 117 #define RM R3 118 #define Ra R11 119 120 // Be careful: Ra == R11 will be used by the linker for synthesized instructions. 121 TEXT udiv(SB),NOSPLIT,$-4 122 CLZ Rq, Rs // find normalizing shift 123 MOVW.S Rq<<Rs, Ra 124 MOVW $fast_udiv_tab<>-64(SB), RM 125 ADD.NE Ra>>25, RM, Ra // index by most significant 7 bits of divisor 126 MOVBU.NE (Ra), Ra 127 128 SUB.S $7, Rs 129 RSB $0, Rq, RM // M = -q 130 MOVW.PL Ra<<Rs, Rq 131 132 // 1st Newton iteration 133 MUL.PL RM, Rq, Ra // a = -q*d 134 BMI udiv_by_large_d 135 MULAWT Ra, Rq, Rq, Rq // q approx q-(q*q*d>>32) 136 TEQ RM->1, RM // check for d=0 or d=1 137 138 // 2nd Newton iteration 139 MUL.NE RM, Rq, Ra 140 MOVW.NE $0, Rs 141 MULAL.NE Rq, Ra, (Rq,Rs) 142 BEQ udiv_by_0_or_1 143 144 // q now accurate enough for a remainder r, 0<=r<3*d 145 MULLU Rq, Rr, (Rq,Rs) // q = (r * q) >> 32 146 ADD RM, Rr, Rr // r = n - d 147 MULA RM, Rq, Rr, Rr // r = n - (q+1)*d 148 149 // since 0 <= n-q*d < 3*d; thus -d <= r < 2*d 150 CMN RM, Rr // t = r-d 151 SUB.CS RM, Rr, Rr // if (t<-d || t>=0) r=r+d 152 ADD.CC $1, Rq 153 ADD.PL RM<<1, Rr 154 ADD.PL $2, Rq 155 RET 156 157 udiv_by_large_d: 158 // at this point we know d>=2^(31-6)=2^25 159 SUB $4, Ra, Ra 160 RSB $0, Rs, Rs 161 MOVW Ra>>Rs, Rq 162 MULLU Rq, Rr, (Rq,Rs) 163 MULA RM, Rq, Rr, Rr 164 165 // q now accurate enough for a remainder r, 0<=r<4*d 166 CMN Rr>>1, RM // if(r/2 >= d) 167 ADD.CS RM<<1, Rr 168 ADD.CS $2, Rq 169 CMN Rr, RM 170 ADD.CS RM, Rr 171 ADD.CS $1, Rq 172 RET 173 174 udiv_by_0_or_1: 175 // carry set if d==1, carry clear if d==0 176 BCC udiv_by_0 177 MOVW Rr, Rq 178 MOVW $0, Rr 179 RET 180 181 udiv_by_0: 182 MOVW $runtime·panicdivide(SB), R11 183 B (R11) 184 185 // var tab [64]byte 186 // tab[0] = 255; for i := 1; i <= 63; i++ { tab[i] = (1<<14)/(64+i) } 187 // laid out here as little-endian uint32s 188 DATA fast_udiv_tab<>+0x00(SB)/4, $0xf4f8fcff 189 DATA fast_udiv_tab<>+0x04(SB)/4, $0xe6eaedf0 190 DATA fast_udiv_tab<>+0x08(SB)/4, $0xdadde0e3 191 DATA fast_udiv_tab<>+0x0c(SB)/4, $0xcfd2d4d7 192 DATA fast_udiv_tab<>+0x10(SB)/4, $0xc5c7cacc 193 DATA fast_udiv_tab<>+0x14(SB)/4, $0xbcbec0c3 194 DATA fast_udiv_tab<>+0x18(SB)/4, $0xb4b6b8ba 195 DATA fast_udiv_tab<>+0x1c(SB)/4, $0xacaeb0b2 196 DATA fast_udiv_tab<>+0x20(SB)/4, $0xa5a7a8aa 197 DATA fast_udiv_tab<>+0x24(SB)/4, $0x9fa0a2a3 198 DATA fast_udiv_tab<>+0x28(SB)/4, $0x999a9c9d 199 DATA fast_udiv_tab<>+0x2c(SB)/4, $0x93949697 200 DATA fast_udiv_tab<>+0x30(SB)/4, $0x8e8f9092 201 DATA fast_udiv_tab<>+0x34(SB)/4, $0x898a8c8d 202 DATA fast_udiv_tab<>+0x38(SB)/4, $0x85868788 203 DATA fast_udiv_tab<>+0x3c(SB)/4, $0x81828384 204 GLOBL fast_udiv_tab<>(SB), RODATA, $64 205 206 // The linker will pass numerator in R8 207 #define Rn R8 208 // The linker expects the result in RTMP 209 #define RTMP R11 210 211 TEXT _divu(SB), NOSPLIT, $16-0 212 // It's not strictly true that there are no local pointers. 213 // It could be that the saved registers Rq, Rr, Rs, and Rm 214 // contain pointers. However, the only way this can matter 215 // is if the stack grows (which it can't, udiv is nosplit) 216 // or if a fault happens and more frames are added to 217 // the stack due to deferred functions. 218 // In the latter case, the stack can grow arbitrarily, 219 // and garbage collection can happen, and those 220 // operations care about pointers, but in that case 221 // the calling frame is dead, and so are the saved 222 // registers. So we can claim there are no pointers here. 223 NO_LOCAL_POINTERS 224 MOVW Rq, 4(R13) 225 MOVW Rr, 8(R13) 226 MOVW Rs, 12(R13) 227 MOVW RM, 16(R13) 228 229 MOVW Rn, Rr /* numerator */ 230 MOVW g_m(g), Rq 231 MOVW m_divmod(Rq), Rq /* denominator */ 232 BL udiv(SB) 233 MOVW Rq, RTMP 234 MOVW 4(R13), Rq 235 MOVW 8(R13), Rr 236 MOVW 12(R13), Rs 237 MOVW 16(R13), RM 238 RET 239 240 TEXT _modu(SB), NOSPLIT, $16-0 241 NO_LOCAL_POINTERS 242 MOVW Rq, 4(R13) 243 MOVW Rr, 8(R13) 244 MOVW Rs, 12(R13) 245 MOVW RM, 16(R13) 246 247 MOVW Rn, Rr /* numerator */ 248 MOVW g_m(g), Rq 249 MOVW m_divmod(Rq), Rq /* denominator */ 250 BL udiv(SB) 251 MOVW Rr, RTMP 252 MOVW 4(R13), Rq 253 MOVW 8(R13), Rr 254 MOVW 12(R13), Rs 255 MOVW 16(R13), RM 256 RET 257 258 TEXT _div(SB),NOSPLIT,$16-0 259 NO_LOCAL_POINTERS 260 MOVW Rq, 4(R13) 261 MOVW Rr, 8(R13) 262 MOVW Rs, 12(R13) 263 MOVW RM, 16(R13) 264 MOVW Rn, Rr /* numerator */ 265 MOVW g_m(g), Rq 266 MOVW m_divmod(Rq), Rq /* denominator */ 267 CMP $0, Rr 268 BGE d1 269 RSB $0, Rr, Rr 270 CMP $0, Rq 271 BGE d2 272 RSB $0, Rq, Rq 273 d0: 274 BL udiv(SB) /* none/both neg */ 275 MOVW Rq, RTMP 276 B out1 277 d1: 278 CMP $0, Rq 279 BGE d0 280 RSB $0, Rq, Rq 281 d2: 282 BL udiv(SB) /* one neg */ 283 RSB $0, Rq, RTMP 284 out1: 285 MOVW 4(R13), Rq 286 MOVW 8(R13), Rr 287 MOVW 12(R13), Rs 288 MOVW 16(R13), RM 289 RET 290 291 TEXT _mod(SB),NOSPLIT,$16-0 292 NO_LOCAL_POINTERS 293 MOVW Rq, 4(R13) 294 MOVW Rr, 8(R13) 295 MOVW Rs, 12(R13) 296 MOVW RM, 16(R13) 297 MOVW Rn, Rr /* numerator */ 298 MOVW g_m(g), Rq 299 MOVW m_divmod(Rq), Rq /* denominator */ 300 CMP $0, Rq 301 RSB.LT $0, Rq, Rq 302 CMP $0, Rr 303 BGE m1 304 RSB $0, Rr, Rr 305 BL udiv(SB) /* neg numerator */ 306 RSB $0, Rr, RTMP 307 B out 308 m1: 309 BL udiv(SB) /* pos numerator */ 310 MOVW Rr, RTMP 311 out: 312 MOVW 4(R13), Rq 313 MOVW 8(R13), Rr 314 MOVW 12(R13), Rs 315 MOVW 16(R13), RM 316 RET 317 318 // _mul64by32 and _div64by32 not implemented on arm 319 TEXT runtime·_mul64by32(SB), NOSPLIT, $0 320 MOVW $0, R0 321 MOVW (R0), R1 // crash 322 323 TEXT runtime·_div64by32(SB), NOSPLIT, $0 324 MOVW $0, R0 325 MOVW (R0), R1 // crash