1 1.9 rin /* $NetBSD: copyin.c,v 1.9 2020/07/06 09:34:16 rin Exp $ */ 2 1.2 matt 3 1.2 matt /*- 4 1.2 matt * Copyright (c) 2010, 2011 The NetBSD Foundation, Inc. 5 1.2 matt * All rights reserved. 6 1.2 matt * 7 1.2 matt * This code is derived from software contributed to The NetBSD Foundation 8 1.2 matt * by Raytheon BBN Technologies Corp and Defense Advanced Research Projects 9 1.2 matt * Agency and which was developed by Matt Thomas of 3am Software Foundry. 10 1.2 matt * 11 1.2 matt * This material is based upon work supported by the Defense Advanced Research 12 1.2 matt * Projects Agency and Space and Naval Warfare Systems Center, Pacific, under 13 1.2 matt * Contract No. N66001-09-C-2073. 14 1.2 matt * Approved for Public Release, Distribution Unlimited 15 1.2 matt * 16 1.2 matt * Redistribution and use in source and binary forms, with or without 17 1.2 matt * modification, are permitted provided that the following conditions 18 1.2 matt * are met: 19 1.2 matt * 1. Redistributions of source code must retain the above copyright 20 1.2 matt * notice, this list of conditions and the following disclaimer. 21 1.2 matt * 2. Redistributions in binary form must reproduce the above copyright 22 1.2 matt * notice, this list of conditions and the following disclaimer in the 23 1.2 matt * documentation and/or other materials provided with the distribution. 24 1.2 matt * 25 1.2 matt * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS 26 1.2 matt * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED 27 1.2 matt * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR 28 1.2 matt * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS 29 1.2 matt * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR 30 1.2 matt * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF 31 1.2 matt * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS 32 1.2 matt * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN 33 1.2 matt * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) 34 1.2 matt * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE 35 1.2 matt * POSSIBILITY OF SUCH DAMAGE. 36 1.2 matt */ 37 1.2 matt 38 1.9 rin #define __UFETCHSTORE_PRIVATE 39 1.9 rin 40 1.2 matt #include <sys/cdefs.h> 41 1.9 rin __KERNEL_RCSID(0, "$NetBSD: copyin.c,v 1.9 2020/07/06 09:34:16 rin Exp $"); 42 1.2 matt 43 1.2 matt #include <sys/param.h> 44 1.2 matt #include <sys/lwp.h> 45 1.7 thorpej #include <sys/systm.h> 46 1.2 matt 47 1.4 matt #include <powerpc/pcb.h> 48 1.2 matt 49 1.3 matt #include <powerpc/booke/cpuvar.h> 50 1.3 matt 51 1.2 matt static inline uint8_t 52 1.2 matt copyin_byte(const uint8_t * const usaddr8, register_t ds_msr) 53 1.2 matt { 54 1.2 matt register_t msr; 55 1.2 matt uint8_t data; 56 1.2 matt __asm volatile( 57 1.2 matt "mfmsr %[msr]; " /* Save MSR */ 58 1.2 matt "mtmsr %[ds_msr]; sync; isync; " /* DS on */ 59 1.2 matt "lbz %[data],0(%[usaddr8]); " /* fetch user byte */ 60 1.2 matt "mtmsr %[msr]; sync; isync; " /* DS off */ 61 1.2 matt : [msr] "=&r" (msr), [data] "=r" (data) 62 1.2 matt : [ds_msr] "r" (ds_msr), [usaddr8] "b" (usaddr8)); 63 1.2 matt return data; 64 1.2 matt } 65 1.2 matt 66 1.2 matt static inline uint16_t 67 1.2 matt copyin_halfword(const uint16_t * const usaddr16, register_t ds_msr) 68 1.2 matt { 69 1.2 matt register_t msr; 70 1.2 matt uint16_t data; 71 1.2 matt __asm volatile( 72 1.2 matt "mfmsr %[msr]; " /* Save MSR */ 73 1.2 matt "mtmsr %[ds_msr]; sync; isync; " /* DS on */ 74 1.2 matt "lhz %[data],0(%[usaddr16]); " /* fetch user byte */ 75 1.2 matt "mtmsr %[msr]; sync; isync; " /* DS off */ 76 1.2 matt : [msr] "=&r" (msr), [data] "=r" (data) 77 1.2 matt : [ds_msr] "r" (ds_msr), [usaddr16] "b" (usaddr16)); 78 1.2 matt return data; 79 1.2 matt } 80 1.2 matt 81 1.2 matt static inline uint32_t 82 1.2 matt copyin_word(const uint32_t * const usaddr32, register_t ds_msr) 83 1.2 matt { 84 1.2 matt register_t msr; 85 1.2 matt uint32_t data; 86 1.2 matt __asm volatile( 87 1.2 matt "mfmsr %[msr]; " /* Save MSR */ 88 1.2 matt "mtmsr %[ds_msr]; sync; isync; " /* DS on */ 89 1.2 matt "lwz %[data],0(%[usaddr32]); " /* load user byte */ 90 1.2 matt "mtmsr %[msr]; sync; isync; " /* DS off */ 91 1.2 matt : [msr] "=&r" (msr), [data] "=r" (data) 92 1.2 matt : [ds_msr] "r" (ds_msr), [usaddr32] "b" (usaddr32)); 93 1.2 matt return data; 94 1.2 matt } 95 1.2 matt 96 1.2 matt static inline uint32_t 97 1.2 matt copyin_word_bswap(const uint32_t * const usaddr32, register_t ds_msr) 98 1.2 matt { 99 1.2 matt register_t msr; 100 1.2 matt uint32_t data; 101 1.2 matt __asm volatile( 102 1.2 matt "mfmsr %[msr]; " /* Save MSR */ 103 1.2 matt "mtmsr %[ds_msr]; sync; isync; " /* DS on */ 104 1.2 matt "lwbrx %[data],0,%[usaddr32]; " /* load user LE word */ 105 1.2 matt "mtmsr %[msr]; sync; isync; " /* DS off */ 106 1.2 matt : [msr] "=&r" (msr), [data] "=r" (data) 107 1.2 matt : [ds_msr] "r" (ds_msr), [usaddr32] "b" (usaddr32)); 108 1.2 matt return data; 109 1.2 matt } 110 1.2 matt 111 1.2 matt static inline void 112 1.2 matt copyin_8words(const uint32_t *usaddr32, uint32_t *kdaddr32, register_t ds_msr) 113 1.2 matt { 114 1.2 matt register_t msr; 115 1.2 matt //uint32_t data[8]; 116 1.2 matt __asm volatile( 117 1.2 matt "mfmsr %[msr]" /* Save MSR */ 118 1.2 matt "\n\t" "mtmsr %[ds_msr]; sync; isync" /* DS on */ 119 1.2 matt "\n\t" "lwz %[data0],0(%[usaddr32])" /* fetch user data */ 120 1.2 matt "\n\t" "lwz %[data1],4(%[usaddr32])" /* fetch user data */ 121 1.2 matt "\n\t" "lwz %[data2],8(%[usaddr32])" /* fetch user data */ 122 1.2 matt "\n\t" "lwz %[data3],12(%[usaddr32])" /* fetch user data */ 123 1.2 matt "\n\t" "lwz %[data4],16(%[usaddr32])" /* fetch user data */ 124 1.2 matt "\n\t" "lwz %[data5],20(%[usaddr32])" /* fetch user data */ 125 1.2 matt "\n\t" "lwz %[data6],24(%[usaddr32])" /* fetch user data */ 126 1.2 matt "\n\t" "lwz %[data7],28(%[usaddr32])" /* fetch user data */ 127 1.2 matt "\n\t" "mtmsr %[msr]; sync; isync" /* DS off */ 128 1.2 matt : [msr] "=&r" (msr), 129 1.2 matt [data0] "=&r" (kdaddr32[0]), [data1] "=&r" (kdaddr32[1]), 130 1.2 matt [data2] "=&r" (kdaddr32[2]), [data3] "=&r" (kdaddr32[3]), 131 1.2 matt [data4] "=&r" (kdaddr32[4]), [data5] "=&r" (kdaddr32[5]), 132 1.2 matt [data6] "=&r" (kdaddr32[6]), [data7] "=&r" (kdaddr32[7]) 133 1.2 matt : [ds_msr] "r" (ds_msr), [usaddr32] "b" (usaddr32)); 134 1.2 matt } 135 1.2 matt 136 1.2 matt static inline void 137 1.2 matt copyin_16words(const uint32_t *usaddr32, uint32_t *kdaddr32, register_t ds_msr) 138 1.2 matt { 139 1.2 matt register_t msr; 140 1.2 matt __asm volatile( 141 1.2 matt "mfmsr %[msr]" /* Save MSR */ 142 1.2 matt "\n\t" "mtmsr %[ds_msr]; sync; isync" /* DS on */ 143 1.2 matt "\n\t" "lwz %[data0],0(%[usaddr32])" /* fetch user data */ 144 1.2 matt "\n\t" "lwz %[data1],4(%[usaddr32])" /* fetch user data */ 145 1.2 matt "\n\t" "lwz %[data2],8(%[usaddr32])" /* fetch user data */ 146 1.2 matt "\n\t" "lwz %[data3],12(%[usaddr32])" /* fetch user data */ 147 1.2 matt "\n\t" "lwz %[data4],16(%[usaddr32])" /* fetch user data */ 148 1.2 matt "\n\t" "lwz %[data5],20(%[usaddr32])" /* fetch user data */ 149 1.2 matt "\n\t" "lwz %[data6],24(%[usaddr32])" /* fetch user data */ 150 1.2 matt "\n\t" "lwz %[data7],28(%[usaddr32])" /* fetch user data */ 151 1.2 matt "\n\t" "lwz %[data8],32(%[usaddr32])" /* fetch user data */ 152 1.2 matt "\n\t" "lwz %[data9],36(%[usaddr32])" /* fetch user data */ 153 1.2 matt "\n\t" "lwz %[data10],40(%[usaddr32])" /* fetch user data */ 154 1.2 matt "\n\t" "lwz %[data11],44(%[usaddr32])" /* fetch user data */ 155 1.2 matt "\n\t" "lwz %[data12],48(%[usaddr32])" /* fetch user data */ 156 1.2 matt "\n\t" "lwz %[data13],52(%[usaddr32])" /* fetch user data */ 157 1.2 matt "\n\t" "lwz %[data14],56(%[usaddr32])" /* fetch user data */ 158 1.2 matt "\n\t" "lwz %[data15],60(%[usaddr32])" /* fetch user data */ 159 1.2 matt "\n\t" "mtmsr %[msr]; sync; isync" /* DS off */ 160 1.2 matt : [msr] "=&r" (msr), 161 1.2 matt [data0] "=&r" (kdaddr32[0]), [data1] "=&r" (kdaddr32[1]), 162 1.2 matt [data2] "=&r" (kdaddr32[2]), [data3] "=&r" (kdaddr32[3]), 163 1.2 matt [data4] "=&r" (kdaddr32[4]), [data5] "=&r" (kdaddr32[5]), 164 1.2 matt [data6] "=&r" (kdaddr32[6]), [data7] "=&r" (kdaddr32[7]), 165 1.2 matt [data8] "=&r" (kdaddr32[8]), [data9] "=&r" (kdaddr32[9]), 166 1.2 matt [data10] "=&r" (kdaddr32[10]), [data11] "=&r" (kdaddr32[11]), 167 1.2 matt [data12] "=&r" (kdaddr32[12]), [data13] "=&r" (kdaddr32[13]), 168 1.2 matt [data14] "=&r" (kdaddr32[14]), [data15] "=&r" (kdaddr32[15]) 169 1.2 matt : [ds_msr] "r" (ds_msr), [usaddr32] "b" (usaddr32)); 170 1.2 matt } 171 1.2 matt static inline void 172 1.2 matt copyin_bytes(vaddr_t usaddr, vaddr_t kdaddr, size_t len, register_t ds_msr) 173 1.2 matt { 174 1.2 matt const uint8_t *usaddr8 = (void *)usaddr; 175 1.2 matt uint8_t *kdaddr8 = (void *)kdaddr; 176 1.2 matt while (len-- > 0) { 177 1.2 matt *kdaddr8++ = copyin_byte(usaddr8++, ds_msr); 178 1.2 matt } 179 1.2 matt } 180 1.2 matt 181 1.2 matt static inline void 182 1.2 matt copyin_words(vaddr_t usaddr, vaddr_t kdaddr, size_t len, register_t ds_msr) 183 1.2 matt { 184 1.2 matt KASSERT((kdaddr & 3) == 0); 185 1.2 matt KASSERT((usaddr & 3) == 0); 186 1.2 matt const uint32_t *usaddr32 = (void *)usaddr; 187 1.2 matt uint32_t *kdaddr32 = (void *)kdaddr; 188 1.2 matt len >>= 2; 189 1.2 matt while (len >= 16) { 190 1.2 matt copyin_16words(usaddr32, kdaddr32, ds_msr); 191 1.2 matt usaddr32 += 16, kdaddr32 += 16, len -= 16; 192 1.2 matt } 193 1.2 matt KASSERT(len < 16); 194 1.2 matt if (len >= 8) { 195 1.2 matt copyin_8words(usaddr32, kdaddr32, ds_msr); 196 1.2 matt usaddr32 += 8, kdaddr32 += 8, len -= 8; 197 1.2 matt } 198 1.2 matt while (len-- > 0) { 199 1.2 matt *kdaddr32++ = copyin_word(usaddr32++, ds_msr); 200 1.2 matt } 201 1.2 matt } 202 1.2 matt 203 1.7 thorpej int 204 1.7 thorpej _ufetch_8(const uint8_t *vusaddr, uint8_t *valp) 205 1.7 thorpej { 206 1.7 thorpej struct pcb * const pcb = lwp_getpcb(curlwp); 207 1.7 thorpej struct faultbuf env; 208 1.7 thorpej 209 1.7 thorpej if (setfault(&env) != 0) { 210 1.7 thorpej pcb->pcb_onfault = NULL; 211 1.7 thorpej return EFAULT; 212 1.7 thorpej } 213 1.7 thorpej 214 1.7 thorpej *valp = copyin_byte(vusaddr, mfmsr() | PSL_DS); 215 1.7 thorpej 216 1.7 thorpej pcb->pcb_onfault = NULL; 217 1.7 thorpej 218 1.7 thorpej return 0; 219 1.7 thorpej } 220 1.7 thorpej 221 1.7 thorpej int 222 1.7 thorpej _ufetch_16(const uint16_t *vusaddr, uint16_t *valp) 223 1.3 matt { 224 1.3 matt struct pcb * const pcb = lwp_getpcb(curlwp); 225 1.3 matt struct faultbuf env; 226 1.3 matt 227 1.3 matt if (setfault(&env) != 0) { 228 1.3 matt pcb->pcb_onfault = NULL; 229 1.7 thorpej return EFAULT; 230 1.3 matt } 231 1.3 matt 232 1.7 thorpej *valp = copyin_halfword(vusaddr, mfmsr() | PSL_DS); 233 1.3 matt 234 1.3 matt pcb->pcb_onfault = NULL; 235 1.3 matt 236 1.7 thorpej return 0; 237 1.7 thorpej } 238 1.7 thorpej 239 1.7 thorpej int 240 1.7 thorpej _ufetch_32(const uint32_t *vusaddr, uint32_t *valp) 241 1.7 thorpej { 242 1.7 thorpej struct pcb * const pcb = lwp_getpcb(curlwp); 243 1.7 thorpej struct faultbuf env; 244 1.7 thorpej 245 1.7 thorpej if (setfault(&env) != 0) { 246 1.7 thorpej pcb->pcb_onfault = NULL; 247 1.7 thorpej return EFAULT; 248 1.7 thorpej } 249 1.7 thorpej 250 1.7 thorpej *valp = copyin_word(vusaddr, mfmsr() | PSL_DS); 251 1.7 thorpej 252 1.7 thorpej pcb->pcb_onfault = NULL; 253 1.7 thorpej 254 1.7 thorpej return 0; 255 1.3 matt } 256 1.3 matt 257 1.2 matt int 258 1.2 matt copyin(const void *vusaddr, void *vkdaddr, size_t len) 259 1.2 matt { 260 1.2 matt struct pcb * const pcb = lwp_getpcb(curlwp); 261 1.2 matt struct faultbuf env; 262 1.2 matt vaddr_t usaddr = (vaddr_t) vusaddr; 263 1.2 matt vaddr_t kdaddr = (vaddr_t) vkdaddr; 264 1.2 matt 265 1.2 matt if (__predict_false(len == 0)) { 266 1.2 matt return 0; 267 1.2 matt } 268 1.2 matt 269 1.2 matt const register_t ds_msr = mfmsr() | PSL_DS; 270 1.2 matt 271 1.2 matt int rv = setfault(&env); 272 1.2 matt if (rv != 0) { 273 1.2 matt pcb->pcb_onfault = NULL; 274 1.2 matt return rv; 275 1.2 matt } 276 1.2 matt 277 1.2 matt if (__predict_false(len < 4)) { 278 1.2 matt copyin_bytes(usaddr, kdaddr, len, ds_msr); 279 1.2 matt pcb->pcb_onfault = NULL; 280 1.2 matt return 0; 281 1.2 matt } 282 1.2 matt 283 1.2 matt const size_t alignment = (usaddr ^ kdaddr) & 3; 284 1.2 matt if (__predict_true(alignment == 0)) { 285 1.2 matt size_t slen; 286 1.2 matt if (__predict_false(kdaddr & 3)) { 287 1.2 matt slen = 4 - (kdaddr & 3); 288 1.2 matt copyin_bytes(usaddr, kdaddr, slen, ds_msr); 289 1.2 matt usaddr += slen, kdaddr += slen, len -= slen; 290 1.2 matt } 291 1.2 matt slen = len & ~3; 292 1.2 matt if (__predict_true(slen >= 4)) { 293 1.2 matt copyin_words(usaddr, kdaddr, slen, ds_msr); 294 1.2 matt usaddr += slen, kdaddr += slen, len -= slen; 295 1.2 matt } 296 1.2 matt } 297 1.2 matt if (len > 0) { 298 1.2 matt copyin_bytes(usaddr, kdaddr, len, ds_msr); 299 1.2 matt } 300 1.2 matt pcb->pcb_onfault = NULL; 301 1.2 matt return 0; 302 1.2 matt } 303 1.2 matt 304 1.2 matt int 305 1.2 matt copyinstr(const void *usaddr, void *kdaddr, size_t len, size_t *done) 306 1.2 matt { 307 1.2 matt struct pcb * const pcb = lwp_getpcb(curlwp); 308 1.2 matt struct faultbuf env; 309 1.8 rin int rv; 310 1.2 matt 311 1.2 matt if (__predict_false(len == 0)) { 312 1.2 matt if (done) 313 1.2 matt *done = 0; 314 1.2 matt return 0; 315 1.2 matt } 316 1.2 matt 317 1.8 rin rv = setfault(&env); 318 1.2 matt if (rv != 0) { 319 1.2 matt pcb->pcb_onfault = NULL; 320 1.2 matt if (done) 321 1.2 matt *done = 0; 322 1.2 matt return rv; 323 1.2 matt } 324 1.2 matt 325 1.2 matt const register_t ds_msr = mfmsr() | PSL_DS; 326 1.2 matt const uint32_t *usaddr32 = (const void *)((uintptr_t)usaddr & ~3); 327 1.2 matt uint8_t *kdaddr8 = kdaddr; 328 1.2 matt size_t copylen, wlen; 329 1.2 matt uint32_t data; 330 1.2 matt size_t uoff = (uintptr_t)usaddr & 3; 331 1.2 matt wlen = 4 - uoff; 332 1.2 matt /* 333 1.2 matt * We need discard any leading bytes if the address was 334 1.2 matt * unaligned. We read the words byteswapped so that the LSB 335 1.2 matt * contains the lowest address byte. 336 1.2 matt */ 337 1.2 matt data = copyin_word_bswap(usaddr32++, ds_msr) >> (8 * uoff); 338 1.2 matt for (copylen = 0; copylen < len; copylen++, wlen--, data >>= 8) { 339 1.2 matt if (wlen == 0) { 340 1.2 matt /* 341 1.2 matt * If we've depleted the data in the word, fetch the 342 1.2 matt * next one. 343 1.2 matt */ 344 1.2 matt data = copyin_word_bswap(usaddr32++, ds_msr); 345 1.2 matt wlen = 4; 346 1.2 matt } 347 1.2 matt *kdaddr8++ = data; 348 1.2 matt if ((uint8_t) data == 0) { 349 1.2 matt copylen++; 350 1.8 rin goto out; 351 1.2 matt } 352 1.2 matt } 353 1.8 rin rv = ENAMETOOLONG; 354 1.2 matt 355 1.8 rin out: 356 1.2 matt pcb->pcb_onfault = NULL; 357 1.2 matt if (done) 358 1.2 matt *done = copylen; 359 1.8 rin return rv; 360 1.2 matt } 361