1*4882a593Smuzhiyun/* SPDX-License-Identifier: GPL-2.0 */ 2*4882a593Smuzhiyun/* Optimized version of the standard memset() function. 3*4882a593Smuzhiyun 4*4882a593Smuzhiyun Copyright (c) 2002 Hewlett-Packard Co/CERN 5*4882a593Smuzhiyun Sverre Jarp <Sverre.Jarp@cern.ch> 6*4882a593Smuzhiyun 7*4882a593Smuzhiyun Return: dest 8*4882a593Smuzhiyun 9*4882a593Smuzhiyun Inputs: 10*4882a593Smuzhiyun in0: dest 11*4882a593Smuzhiyun in1: value 12*4882a593Smuzhiyun in2: count 13*4882a593Smuzhiyun 14*4882a593Smuzhiyun The algorithm is fairly straightforward: set byte by byte until we 15*4882a593Smuzhiyun we get to a 16B-aligned address, then loop on 128 B chunks using an 16*4882a593Smuzhiyun early store as prefetching, then loop on 32B chucks, then clear remaining 17*4882a593Smuzhiyun words, finally clear remaining bytes. 18*4882a593Smuzhiyun Since a stf.spill f0 can store 16B in one go, we use this instruction 19*4882a593Smuzhiyun to get peak speed when value = 0. */ 20*4882a593Smuzhiyun 21*4882a593Smuzhiyun#include <asm/asmmacro.h> 22*4882a593Smuzhiyun#include <asm/export.h> 23*4882a593Smuzhiyun#undef ret 24*4882a593Smuzhiyun 25*4882a593Smuzhiyun#define dest in0 26*4882a593Smuzhiyun#define value in1 27*4882a593Smuzhiyun#define cnt in2 28*4882a593Smuzhiyun 29*4882a593Smuzhiyun#define tmp r31 30*4882a593Smuzhiyun#define save_lc r30 31*4882a593Smuzhiyun#define ptr0 r29 32*4882a593Smuzhiyun#define ptr1 r28 33*4882a593Smuzhiyun#define ptr2 r27 34*4882a593Smuzhiyun#define ptr3 r26 35*4882a593Smuzhiyun#define ptr9 r24 36*4882a593Smuzhiyun#define loopcnt r23 37*4882a593Smuzhiyun#define linecnt r22 38*4882a593Smuzhiyun#define bytecnt r21 39*4882a593Smuzhiyun 40*4882a593Smuzhiyun#define fvalue f6 41*4882a593Smuzhiyun 42*4882a593Smuzhiyun// This routine uses only scratch predicate registers (p6 - p15) 43*4882a593Smuzhiyun#define p_scr p6 // default register for same-cycle branches 44*4882a593Smuzhiyun#define p_nz p7 45*4882a593Smuzhiyun#define p_zr p8 46*4882a593Smuzhiyun#define p_unalgn p9 47*4882a593Smuzhiyun#define p_y p11 48*4882a593Smuzhiyun#define p_n p12 49*4882a593Smuzhiyun#define p_yy p13 50*4882a593Smuzhiyun#define p_nn p14 51*4882a593Smuzhiyun 52*4882a593Smuzhiyun#define MIN1 15 53*4882a593Smuzhiyun#define MIN1P1HALF 8 54*4882a593Smuzhiyun#define LINE_SIZE 128 55*4882a593Smuzhiyun#define LSIZE_SH 7 // shift amount 56*4882a593Smuzhiyun#define PREF_AHEAD 8 57*4882a593Smuzhiyun 58*4882a593SmuzhiyunGLOBAL_ENTRY(memset) 59*4882a593Smuzhiyun{ .mmi 60*4882a593Smuzhiyun .prologue 61*4882a593Smuzhiyun alloc tmp = ar.pfs, 3, 0, 0, 0 62*4882a593Smuzhiyun lfetch.nt1 [dest] // 63*4882a593Smuzhiyun .save ar.lc, save_lc 64*4882a593Smuzhiyun mov.i save_lc = ar.lc 65*4882a593Smuzhiyun .body 66*4882a593Smuzhiyun} { .mmi 67*4882a593Smuzhiyun mov ret0 = dest // return value 68*4882a593Smuzhiyun cmp.ne p_nz, p_zr = value, r0 // use stf.spill if value is zero 69*4882a593Smuzhiyun cmp.eq p_scr, p0 = cnt, r0 70*4882a593Smuzhiyun;; } 71*4882a593Smuzhiyun{ .mmi 72*4882a593Smuzhiyun and ptr2 = -(MIN1+1), dest // aligned address 73*4882a593Smuzhiyun and tmp = MIN1, dest // prepare to check for correct alignment 74*4882a593Smuzhiyun tbit.nz p_y, p_n = dest, 0 // Do we have an odd address? (M_B_U) 75*4882a593Smuzhiyun} { .mib 76*4882a593Smuzhiyun mov ptr1 = dest 77*4882a593Smuzhiyun mux1 value = value, @brcst // create 8 identical bytes in word 78*4882a593Smuzhiyun(p_scr) br.ret.dpnt.many rp // return immediately if count = 0 79*4882a593Smuzhiyun;; } 80*4882a593Smuzhiyun{ .mib 81*4882a593Smuzhiyun cmp.ne p_unalgn, p0 = tmp, r0 // 82*4882a593Smuzhiyun} { .mib 83*4882a593Smuzhiyun sub bytecnt = (MIN1+1), tmp // NB: # of bytes to move is 1 higher than loopcnt 84*4882a593Smuzhiyun cmp.gt p_scr, p0 = 16, cnt // is it a minimalistic task? 85*4882a593Smuzhiyun(p_scr) br.cond.dptk.many .move_bytes_unaligned // go move just a few (M_B_U) 86*4882a593Smuzhiyun;; } 87*4882a593Smuzhiyun{ .mmi 88*4882a593Smuzhiyun(p_unalgn) add ptr1 = (MIN1+1), ptr2 // after alignment 89*4882a593Smuzhiyun(p_unalgn) add ptr2 = MIN1P1HALF, ptr2 // after alignment 90*4882a593Smuzhiyun(p_unalgn) tbit.nz.unc p_y, p_n = bytecnt, 3 // should we do a st8 ? 91*4882a593Smuzhiyun;; } 92*4882a593Smuzhiyun{ .mib 93*4882a593Smuzhiyun(p_y) add cnt = -8, cnt // 94*4882a593Smuzhiyun(p_unalgn) tbit.nz.unc p_yy, p_nn = bytecnt, 2 // should we do a st4 ? 95*4882a593Smuzhiyun} { .mib 96*4882a593Smuzhiyun(p_y) st8 [ptr2] = value,-4 // 97*4882a593Smuzhiyun(p_n) add ptr2 = 4, ptr2 // 98*4882a593Smuzhiyun;; } 99*4882a593Smuzhiyun{ .mib 100*4882a593Smuzhiyun(p_yy) add cnt = -4, cnt // 101*4882a593Smuzhiyun(p_unalgn) tbit.nz.unc p_y, p_n = bytecnt, 1 // should we do a st2 ? 102*4882a593Smuzhiyun} { .mib 103*4882a593Smuzhiyun(p_yy) st4 [ptr2] = value,-2 // 104*4882a593Smuzhiyun(p_nn) add ptr2 = 2, ptr2 // 105*4882a593Smuzhiyun;; } 106*4882a593Smuzhiyun{ .mmi 107*4882a593Smuzhiyun mov tmp = LINE_SIZE+1 // for compare 108*4882a593Smuzhiyun(p_y) add cnt = -2, cnt // 109*4882a593Smuzhiyun(p_unalgn) tbit.nz.unc p_yy, p_nn = bytecnt, 0 // should we do a st1 ? 110*4882a593Smuzhiyun} { .mmi 111*4882a593Smuzhiyun setf.sig fvalue=value // transfer value to FLP side 112*4882a593Smuzhiyun(p_y) st2 [ptr2] = value,-1 // 113*4882a593Smuzhiyun(p_n) add ptr2 = 1, ptr2 // 114*4882a593Smuzhiyun;; } 115*4882a593Smuzhiyun 116*4882a593Smuzhiyun{ .mmi 117*4882a593Smuzhiyun(p_yy) st1 [ptr2] = value // 118*4882a593Smuzhiyun cmp.gt p_scr, p0 = tmp, cnt // is it a minimalistic task? 119*4882a593Smuzhiyun} { .mbb 120*4882a593Smuzhiyun(p_yy) add cnt = -1, cnt // 121*4882a593Smuzhiyun(p_scr) br.cond.dpnt.many .fraction_of_line // go move just a few 122*4882a593Smuzhiyun;; } 123*4882a593Smuzhiyun 124*4882a593Smuzhiyun{ .mib 125*4882a593Smuzhiyun nop.m 0 126*4882a593Smuzhiyun shr.u linecnt = cnt, LSIZE_SH 127*4882a593Smuzhiyun(p_zr) br.cond.dptk.many .l1b // Jump to use stf.spill 128*4882a593Smuzhiyun;; } 129*4882a593Smuzhiyun 130*4882a593Smuzhiyun TEXT_ALIGN(32) // --------------------- // L1A: store ahead into cache lines; fill later 131*4882a593Smuzhiyun{ .mmi 132*4882a593Smuzhiyun and tmp = -(LINE_SIZE), cnt // compute end of range 133*4882a593Smuzhiyun mov ptr9 = ptr1 // used for prefetching 134*4882a593Smuzhiyun and cnt = (LINE_SIZE-1), cnt // remainder 135*4882a593Smuzhiyun} { .mmi 136*4882a593Smuzhiyun mov loopcnt = PREF_AHEAD-1 // default prefetch loop 137*4882a593Smuzhiyun cmp.gt p_scr, p0 = PREF_AHEAD, linecnt // check against actual value 138*4882a593Smuzhiyun;; } 139*4882a593Smuzhiyun{ .mmi 140*4882a593Smuzhiyun(p_scr) add loopcnt = -1, linecnt // 141*4882a593Smuzhiyun add ptr2 = 8, ptr1 // start of stores (beyond prefetch stores) 142*4882a593Smuzhiyun add ptr1 = tmp, ptr1 // first address beyond total range 143*4882a593Smuzhiyun;; } 144*4882a593Smuzhiyun{ .mmi 145*4882a593Smuzhiyun add tmp = -1, linecnt // next loop count 146*4882a593Smuzhiyun mov.i ar.lc = loopcnt // 147*4882a593Smuzhiyun;; } 148*4882a593Smuzhiyun.pref_l1a: 149*4882a593Smuzhiyun{ .mib 150*4882a593Smuzhiyun stf8 [ptr9] = fvalue, 128 // Do stores one cache line apart 151*4882a593Smuzhiyun nop.i 0 152*4882a593Smuzhiyun br.cloop.dptk.few .pref_l1a 153*4882a593Smuzhiyun;; } 154*4882a593Smuzhiyun{ .mmi 155*4882a593Smuzhiyun add ptr0 = 16, ptr2 // Two stores in parallel 156*4882a593Smuzhiyun mov.i ar.lc = tmp // 157*4882a593Smuzhiyun;; } 158*4882a593Smuzhiyun.l1ax: 159*4882a593Smuzhiyun { .mmi 160*4882a593Smuzhiyun stf8 [ptr2] = fvalue, 8 161*4882a593Smuzhiyun stf8 [ptr0] = fvalue, 8 162*4882a593Smuzhiyun ;; } 163*4882a593Smuzhiyun { .mmi 164*4882a593Smuzhiyun stf8 [ptr2] = fvalue, 24 165*4882a593Smuzhiyun stf8 [ptr0] = fvalue, 24 166*4882a593Smuzhiyun ;; } 167*4882a593Smuzhiyun { .mmi 168*4882a593Smuzhiyun stf8 [ptr2] = fvalue, 8 169*4882a593Smuzhiyun stf8 [ptr0] = fvalue, 8 170*4882a593Smuzhiyun ;; } 171*4882a593Smuzhiyun { .mmi 172*4882a593Smuzhiyun stf8 [ptr2] = fvalue, 24 173*4882a593Smuzhiyun stf8 [ptr0] = fvalue, 24 174*4882a593Smuzhiyun ;; } 175*4882a593Smuzhiyun { .mmi 176*4882a593Smuzhiyun stf8 [ptr2] = fvalue, 8 177*4882a593Smuzhiyun stf8 [ptr0] = fvalue, 8 178*4882a593Smuzhiyun ;; } 179*4882a593Smuzhiyun { .mmi 180*4882a593Smuzhiyun stf8 [ptr2] = fvalue, 24 181*4882a593Smuzhiyun stf8 [ptr0] = fvalue, 24 182*4882a593Smuzhiyun ;; } 183*4882a593Smuzhiyun { .mmi 184*4882a593Smuzhiyun stf8 [ptr2] = fvalue, 8 185*4882a593Smuzhiyun stf8 [ptr0] = fvalue, 32 186*4882a593Smuzhiyun cmp.lt p_scr, p0 = ptr9, ptr1 // do we need more prefetching? 187*4882a593Smuzhiyun ;; } 188*4882a593Smuzhiyun{ .mmb 189*4882a593Smuzhiyun stf8 [ptr2] = fvalue, 24 190*4882a593Smuzhiyun(p_scr) stf8 [ptr9] = fvalue, 128 191*4882a593Smuzhiyun br.cloop.dptk.few .l1ax 192*4882a593Smuzhiyun;; } 193*4882a593Smuzhiyun{ .mbb 194*4882a593Smuzhiyun cmp.le p_scr, p0 = 8, cnt // just a few bytes left ? 195*4882a593Smuzhiyun(p_scr) br.cond.dpnt.many .fraction_of_line // Branch no. 2 196*4882a593Smuzhiyun br.cond.dpnt.many .move_bytes_from_alignment // Branch no. 3 197*4882a593Smuzhiyun;; } 198*4882a593Smuzhiyun 199*4882a593Smuzhiyun TEXT_ALIGN(32) 200*4882a593Smuzhiyun.l1b: // ------------------------------------ // L1B: store ahead into cache lines; fill later 201*4882a593Smuzhiyun{ .mmi 202*4882a593Smuzhiyun and tmp = -(LINE_SIZE), cnt // compute end of range 203*4882a593Smuzhiyun mov ptr9 = ptr1 // used for prefetching 204*4882a593Smuzhiyun and cnt = (LINE_SIZE-1), cnt // remainder 205*4882a593Smuzhiyun} { .mmi 206*4882a593Smuzhiyun mov loopcnt = PREF_AHEAD-1 // default prefetch loop 207*4882a593Smuzhiyun cmp.gt p_scr, p0 = PREF_AHEAD, linecnt // check against actual value 208*4882a593Smuzhiyun;; } 209*4882a593Smuzhiyun{ .mmi 210*4882a593Smuzhiyun(p_scr) add loopcnt = -1, linecnt 211*4882a593Smuzhiyun add ptr2 = 16, ptr1 // start of stores (beyond prefetch stores) 212*4882a593Smuzhiyun add ptr1 = tmp, ptr1 // first address beyond total range 213*4882a593Smuzhiyun;; } 214*4882a593Smuzhiyun{ .mmi 215*4882a593Smuzhiyun add tmp = -1, linecnt // next loop count 216*4882a593Smuzhiyun mov.i ar.lc = loopcnt 217*4882a593Smuzhiyun;; } 218*4882a593Smuzhiyun.pref_l1b: 219*4882a593Smuzhiyun{ .mib 220*4882a593Smuzhiyun stf.spill [ptr9] = f0, 128 // Do stores one cache line apart 221*4882a593Smuzhiyun nop.i 0 222*4882a593Smuzhiyun br.cloop.dptk.few .pref_l1b 223*4882a593Smuzhiyun;; } 224*4882a593Smuzhiyun{ .mmi 225*4882a593Smuzhiyun add ptr0 = 16, ptr2 // Two stores in parallel 226*4882a593Smuzhiyun mov.i ar.lc = tmp 227*4882a593Smuzhiyun;; } 228*4882a593Smuzhiyun.l1bx: 229*4882a593Smuzhiyun { .mmi 230*4882a593Smuzhiyun stf.spill [ptr2] = f0, 32 231*4882a593Smuzhiyun stf.spill [ptr0] = f0, 32 232*4882a593Smuzhiyun ;; } 233*4882a593Smuzhiyun { .mmi 234*4882a593Smuzhiyun stf.spill [ptr2] = f0, 32 235*4882a593Smuzhiyun stf.spill [ptr0] = f0, 32 236*4882a593Smuzhiyun ;; } 237*4882a593Smuzhiyun { .mmi 238*4882a593Smuzhiyun stf.spill [ptr2] = f0, 32 239*4882a593Smuzhiyun stf.spill [ptr0] = f0, 64 240*4882a593Smuzhiyun cmp.lt p_scr, p0 = ptr9, ptr1 // do we need more prefetching? 241*4882a593Smuzhiyun ;; } 242*4882a593Smuzhiyun{ .mmb 243*4882a593Smuzhiyun stf.spill [ptr2] = f0, 32 244*4882a593Smuzhiyun(p_scr) stf.spill [ptr9] = f0, 128 245*4882a593Smuzhiyun br.cloop.dptk.few .l1bx 246*4882a593Smuzhiyun;; } 247*4882a593Smuzhiyun{ .mib 248*4882a593Smuzhiyun cmp.gt p_scr, p0 = 8, cnt // just a few bytes left ? 249*4882a593Smuzhiyun(p_scr) br.cond.dpnt.many .move_bytes_from_alignment // 250*4882a593Smuzhiyun;; } 251*4882a593Smuzhiyun 252*4882a593Smuzhiyun.fraction_of_line: 253*4882a593Smuzhiyun{ .mib 254*4882a593Smuzhiyun add ptr2 = 16, ptr1 255*4882a593Smuzhiyun shr.u loopcnt = cnt, 5 // loopcnt = cnt / 32 256*4882a593Smuzhiyun;; } 257*4882a593Smuzhiyun{ .mib 258*4882a593Smuzhiyun cmp.eq p_scr, p0 = loopcnt, r0 259*4882a593Smuzhiyun add loopcnt = -1, loopcnt 260*4882a593Smuzhiyun(p_scr) br.cond.dpnt.many .store_words 261*4882a593Smuzhiyun;; } 262*4882a593Smuzhiyun{ .mib 263*4882a593Smuzhiyun and cnt = 0x1f, cnt // compute the remaining cnt 264*4882a593Smuzhiyun mov.i ar.lc = loopcnt 265*4882a593Smuzhiyun;; } 266*4882a593Smuzhiyun TEXT_ALIGN(32) 267*4882a593Smuzhiyun.l2: // ------------------------------------ // L2A: store 32B in 2 cycles 268*4882a593Smuzhiyun{ .mmb 269*4882a593Smuzhiyun stf8 [ptr1] = fvalue, 8 270*4882a593Smuzhiyun stf8 [ptr2] = fvalue, 8 271*4882a593Smuzhiyun;; } { .mmb 272*4882a593Smuzhiyun stf8 [ptr1] = fvalue, 24 273*4882a593Smuzhiyun stf8 [ptr2] = fvalue, 24 274*4882a593Smuzhiyun br.cloop.dptk.many .l2 275*4882a593Smuzhiyun;; } 276*4882a593Smuzhiyun.store_words: 277*4882a593Smuzhiyun{ .mib 278*4882a593Smuzhiyun cmp.gt p_scr, p0 = 8, cnt // just a few bytes left ? 279*4882a593Smuzhiyun(p_scr) br.cond.dpnt.many .move_bytes_from_alignment // Branch 280*4882a593Smuzhiyun;; } 281*4882a593Smuzhiyun 282*4882a593Smuzhiyun{ .mmi 283*4882a593Smuzhiyun stf8 [ptr1] = fvalue, 8 // store 284*4882a593Smuzhiyun cmp.le p_y, p_n = 16, cnt 285*4882a593Smuzhiyun add cnt = -8, cnt // subtract 286*4882a593Smuzhiyun;; } 287*4882a593Smuzhiyun{ .mmi 288*4882a593Smuzhiyun(p_y) stf8 [ptr1] = fvalue, 8 // store 289*4882a593Smuzhiyun(p_y) cmp.le.unc p_yy, p_nn = 16, cnt 290*4882a593Smuzhiyun(p_y) add cnt = -8, cnt // subtract 291*4882a593Smuzhiyun;; } 292*4882a593Smuzhiyun{ .mmi // store 293*4882a593Smuzhiyun(p_yy) stf8 [ptr1] = fvalue, 8 294*4882a593Smuzhiyun(p_yy) add cnt = -8, cnt // subtract 295*4882a593Smuzhiyun;; } 296*4882a593Smuzhiyun 297*4882a593Smuzhiyun.move_bytes_from_alignment: 298*4882a593Smuzhiyun{ .mib 299*4882a593Smuzhiyun cmp.eq p_scr, p0 = cnt, r0 300*4882a593Smuzhiyun tbit.nz.unc p_y, p0 = cnt, 2 // should we terminate with a st4 ? 301*4882a593Smuzhiyun(p_scr) br.cond.dpnt.few .restore_and_exit 302*4882a593Smuzhiyun;; } 303*4882a593Smuzhiyun{ .mib 304*4882a593Smuzhiyun(p_y) st4 [ptr1] = value,4 305*4882a593Smuzhiyun tbit.nz.unc p_yy, p0 = cnt, 1 // should we terminate with a st2 ? 306*4882a593Smuzhiyun;; } 307*4882a593Smuzhiyun{ .mib 308*4882a593Smuzhiyun(p_yy) st2 [ptr1] = value,2 309*4882a593Smuzhiyun tbit.nz.unc p_y, p0 = cnt, 0 // should we terminate with a st1 ? 310*4882a593Smuzhiyun;; } 311*4882a593Smuzhiyun 312*4882a593Smuzhiyun{ .mib 313*4882a593Smuzhiyun(p_y) st1 [ptr1] = value 314*4882a593Smuzhiyun;; } 315*4882a593Smuzhiyun.restore_and_exit: 316*4882a593Smuzhiyun{ .mib 317*4882a593Smuzhiyun nop.m 0 318*4882a593Smuzhiyun mov.i ar.lc = save_lc 319*4882a593Smuzhiyun br.ret.sptk.many rp 320*4882a593Smuzhiyun;; } 321*4882a593Smuzhiyun 322*4882a593Smuzhiyun.move_bytes_unaligned: 323*4882a593Smuzhiyun{ .mmi 324*4882a593Smuzhiyun .pred.rel "mutex",p_y, p_n 325*4882a593Smuzhiyun .pred.rel "mutex",p_yy, p_nn 326*4882a593Smuzhiyun(p_n) cmp.le p_yy, p_nn = 4, cnt 327*4882a593Smuzhiyun(p_y) cmp.le p_yy, p_nn = 5, cnt 328*4882a593Smuzhiyun(p_n) add ptr2 = 2, ptr1 329*4882a593Smuzhiyun} { .mmi 330*4882a593Smuzhiyun(p_y) add ptr2 = 3, ptr1 331*4882a593Smuzhiyun(p_y) st1 [ptr1] = value, 1 // fill 1 (odd-aligned) byte [15, 14 (or less) left] 332*4882a593Smuzhiyun(p_y) add cnt = -1, cnt 333*4882a593Smuzhiyun;; } 334*4882a593Smuzhiyun{ .mmi 335*4882a593Smuzhiyun(p_yy) cmp.le.unc p_y, p0 = 8, cnt 336*4882a593Smuzhiyun add ptr3 = ptr1, cnt // prepare last store 337*4882a593Smuzhiyun mov.i ar.lc = save_lc 338*4882a593Smuzhiyun} { .mmi 339*4882a593Smuzhiyun(p_yy) st2 [ptr1] = value, 4 // fill 2 (aligned) bytes 340*4882a593Smuzhiyun(p_yy) st2 [ptr2] = value, 4 // fill 2 (aligned) bytes [11, 10 (o less) left] 341*4882a593Smuzhiyun(p_yy) add cnt = -4, cnt 342*4882a593Smuzhiyun;; } 343*4882a593Smuzhiyun{ .mmi 344*4882a593Smuzhiyun(p_y) cmp.le.unc p_yy, p0 = 8, cnt 345*4882a593Smuzhiyun add ptr3 = -1, ptr3 // last store 346*4882a593Smuzhiyun tbit.nz p_scr, p0 = cnt, 1 // will there be a st2 at the end ? 347*4882a593Smuzhiyun} { .mmi 348*4882a593Smuzhiyun(p_y) st2 [ptr1] = value, 4 // fill 2 (aligned) bytes 349*4882a593Smuzhiyun(p_y) st2 [ptr2] = value, 4 // fill 2 (aligned) bytes [7, 6 (or less) left] 350*4882a593Smuzhiyun(p_y) add cnt = -4, cnt 351*4882a593Smuzhiyun;; } 352*4882a593Smuzhiyun{ .mmi 353*4882a593Smuzhiyun(p_yy) st2 [ptr1] = value, 4 // fill 2 (aligned) bytes 354*4882a593Smuzhiyun(p_yy) st2 [ptr2] = value, 4 // fill 2 (aligned) bytes [3, 2 (or less) left] 355*4882a593Smuzhiyun tbit.nz p_y, p0 = cnt, 0 // will there be a st1 at the end ? 356*4882a593Smuzhiyun} { .mmi 357*4882a593Smuzhiyun(p_yy) add cnt = -4, cnt 358*4882a593Smuzhiyun;; } 359*4882a593Smuzhiyun{ .mmb 360*4882a593Smuzhiyun(p_scr) st2 [ptr1] = value // fill 2 (aligned) bytes 361*4882a593Smuzhiyun(p_y) st1 [ptr3] = value // fill last byte (using ptr3) 362*4882a593Smuzhiyun br.ret.sptk.many rp 363*4882a593Smuzhiyun} 364*4882a593SmuzhiyunEND(memset) 365*4882a593SmuzhiyunEXPORT_SYMBOL(memset) 366