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1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 | /* * Copyright 2011 Tilera Corporation. All Rights Reserved. * * This program is free software; you can redistribute it and/or * modify it under the terms of the GNU General Public License * as published by the Free Software Foundation, version 2. * * This program is distributed in the hope that it will be useful, but * WITHOUT ANY WARRANTY; without even the implied warranty of * MERCHANTABILITY OR FITNESS FOR A PARTICULAR PURPOSE, GOOD TITLE or * NON INFRINGEMENT. See the GNU General Public License for * more details. */ #include <linux/linkage.h> #include <asm/errno.h> #include <asm/cache.h> #include <arch/chip.h> /* Access user memory, but use MMU to avoid propagating kernel exceptions. */ /* * strnlen_user_asm takes the pointer in r0, and the length bound in r1. * It returns the length, including the terminating NUL, or zero on exception. * If length is greater than the bound, returns one plus the bound. */ STD_ENTRY(strnlen_user_asm) { beqz r1, 2f; addi r3, r0, -1 } /* bias down to include NUL */ 1: { ld1u r4, r0; addi r1, r1, -1 } beqz r4, 2f { bnezt r1, 1b; addi r0, r0, 1 } 2: { sub r0, r0, r3; jrp lr } STD_ENDPROC(strnlen_user_asm) .pushsection .fixup,"ax" strnlen_user_fault: { move r0, zero; jrp lr } ENDPROC(strnlen_user_fault) .section __ex_table,"a" .quad 1b, strnlen_user_fault .popsection /* * strncpy_from_user_asm takes the kernel target pointer in r0, * the userspace source pointer in r1, and the length bound (including * the trailing NUL) in r2. On success, it returns the string length * (not including the trailing NUL), or -EFAULT on failure. */ STD_ENTRY(strncpy_from_user_asm) { beqz r2, 2f; move r3, r0 } 1: { ld1u r4, r1; addi r1, r1, 1; addi r2, r2, -1 } { st1 r0, r4; addi r0, r0, 1 } beqz r2, 2f bnezt r4, 1b addi r0, r0, -1 /* don't count the trailing NUL */ 2: { sub r0, r0, r3; jrp lr } STD_ENDPROC(strncpy_from_user_asm) .pushsection .fixup,"ax" strncpy_from_user_fault: { movei r0, -EFAULT; jrp lr } ENDPROC(strncpy_from_user_fault) .section __ex_table,"a" .quad 1b, strncpy_from_user_fault .popsection /* * clear_user_asm takes the user target address in r0 and the * number of bytes to zero in r1. * It returns the number of uncopiable bytes (hopefully zero) in r0. * Note that we don't use a separate .fixup section here since we fall * through into the "fixup" code as the last straight-line bundle anyway. */ STD_ENTRY(clear_user_asm) { beqz r1, 2f; or r2, r0, r1 } andi r2, r2, 7 beqzt r2, .Lclear_aligned_user_asm 1: { st1 r0, zero; addi r0, r0, 1; addi r1, r1, -1 } bnezt r1, 1b 2: { move r0, r1; jrp lr } .pushsection __ex_table,"a" .quad 1b, 2b .popsection .Lclear_aligned_user_asm: 1: { st r0, zero; addi r0, r0, 8; addi r1, r1, -8 } bnezt r1, 1b 2: { move r0, r1; jrp lr } STD_ENDPROC(clear_user_asm) .pushsection __ex_table,"a" .quad 1b, 2b .popsection /* * flush_user_asm takes the user target address in r0 and the * number of bytes to flush in r1. * It returns the number of unflushable bytes (hopefully zero) in r0. */ STD_ENTRY(flush_user_asm) beqz r1, 2f { movei r2, L2_CACHE_BYTES; add r1, r0, r1 } { sub r2, zero, r2; addi r1, r1, L2_CACHE_BYTES-1 } { and r0, r0, r2; and r1, r1, r2 } { sub r1, r1, r0 } 1: { flush r0; addi r1, r1, -CHIP_FLUSH_STRIDE() } { addi r0, r0, CHIP_FLUSH_STRIDE(); bnezt r1, 1b } 2: { move r0, r1; jrp lr } STD_ENDPROC(flush_user_asm) .pushsection __ex_table,"a" .quad 1b, 2b .popsection /* * inv_user_asm takes the user target address in r0 and the * number of bytes to invalidate in r1. * It returns the number of not inv'able bytes (hopefully zero) in r0. */ STD_ENTRY(inv_user_asm) beqz r1, 2f { movei r2, L2_CACHE_BYTES; add r1, r0, r1 } { sub r2, zero, r2; addi r1, r1, L2_CACHE_BYTES-1 } { and r0, r0, r2; and r1, r1, r2 } { sub r1, r1, r0 } 1: { inv r0; addi r1, r1, -CHIP_INV_STRIDE() } { addi r0, r0, CHIP_INV_STRIDE(); bnezt r1, 1b } 2: { move r0, r1; jrp lr } STD_ENDPROC(inv_user_asm) .pushsection __ex_table,"a" .quad 1b, 2b .popsection /* * finv_user_asm takes the user target address in r0 and the * number of bytes to flush-invalidate in r1. * It returns the number of not finv'able bytes (hopefully zero) in r0. */ STD_ENTRY(finv_user_asm) beqz r1, 2f { movei r2, L2_CACHE_BYTES; add r1, r0, r1 } { sub r2, zero, r2; addi r1, r1, L2_CACHE_BYTES-1 } { and r0, r0, r2; and r1, r1, r2 } { sub r1, r1, r0 } 1: { finv r0; addi r1, r1, -CHIP_FINV_STRIDE() } { addi r0, r0, CHIP_FINV_STRIDE(); bnezt r1, 1b } 2: { move r0, r1; jrp lr } STD_ENDPROC(finv_user_asm) .pushsection __ex_table,"a" .quad 1b, 2b .popsection |