1 1.6 skrll /* $NetBSD: aeabi.h,v 1.6 2021/10/06 05:33:15 skrll Exp $ */ 2 1.1 matt 3 1.1 matt /*- 4 1.1 matt * Copyright (c) 2012 The NetBSD Foundation, Inc. 5 1.1 matt * All rights reserved. 6 1.1 matt * 7 1.1 matt * This code is derived from software contributed to The NetBSD Foundation 8 1.1 matt * by Matt Thomas of 3am Software Foundry. 9 1.1 matt * 10 1.1 matt * Redistribution and use in source and binary forms, with or without 11 1.1 matt * modification, are permitted provided that the following conditions 12 1.1 matt * are met: 13 1.1 matt * 1. Redistributions of source code must retain the above copyright 14 1.1 matt * notice, this list of conditions and the following disclaimer. 15 1.1 matt * 2. Redistributions in binary form must reproduce the above copyright 16 1.1 matt * notice, this list of conditions and the following disclaimer in the 17 1.1 matt * documentation and/or other materials provided with the distribution. 18 1.1 matt * 19 1.1 matt * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS 20 1.1 matt * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED 21 1.1 matt * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR 22 1.1 matt * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS 23 1.1 matt * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR 24 1.1 matt * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF 25 1.1 matt * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS 26 1.1 matt * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN 27 1.1 matt * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) 28 1.1 matt * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE 29 1.1 matt * POSSIBILITY OF SUCH DAMAGE. 30 1.1 matt */ 31 1.1 matt #ifndef _ARM_AEABI_H_ 32 1.1 matt #define _ARM_AEABI_H_ 33 1.1 matt 34 1.4 skrll #if defined(_KERNEL) || defined(_STANDALONE) 35 1.3 matt #include <sys/types.h> 36 1.3 matt #else 37 1.2 matt #include <stddef.h> 38 1.3 matt #endif 39 1.2 matt 40 1.1 matt #define __value_in_regs /* nothing */ 41 1.5 matt #define __aapcs __attribute__((__pcs__("aapcs"))) 42 1.1 matt 43 1.1 matt /* 44 1.1 matt * Standard double precision floating-point arithmetic helper functions 45 1.1 matt */ 46 1.5 matt double __aeabi_dadd(double, double) __aapcs; // double-precision addition 47 1.5 matt double __aeabi_ddiv(double n, double d) __aapcs; // double-precision division, n / d 48 1.5 matt double __aeabi_dmul(double, double) __aapcs; // double-precision multiplication 49 1.5 matt double __aeabi_drsub(double x, double y) __aapcs; // double-precision reverse subtraction, y - x 50 1.5 matt double __aeabi_dsub(double x, double y) __aapcs; // double-precision subtraction, x - y 51 1.5 matt double __aeabi_dneg(double) __aapcs; // double-precision negation (obsolete, to be removed in r2.09) 52 1.1 matt 53 1.1 matt /* 54 1.1 matt * Double precision floating-point comparison helper functions 55 1.1 matt */ 56 1.5 matt void __aeabi_cdcmpeq(double, double) __aapcs; // non-excepting equality comparison [1], result in PSR ZC flags 57 1.5 matt void __aeabi_cdcmple(double, double) __aapcs; // 3-way (<, =, >) compare [1], result in PSR ZC flags 58 1.5 matt void __aeabi_cdrcmple(double, double) __aapcs; // reversed 3-way (<, =, >) compare [1], result in PSR ZC flags 59 1.5 matt int __aeabi_dcmpeq(double, double) __aapcs; // result (1, 0) denotes (=, <>) [2], use for C == and != 60 1.5 matt int __aeabi_dcmplt(double, double) __aapcs; // result (1, 0) denotes (<, >=) [2], use for C < 61 1.5 matt int __aeabi_dcmple(double, double) __aapcs; // result (1, 0) denotes (<=, >) [2], use for C <= 62 1.5 matt int __aeabi_dcmpge(double, double) __aapcs; // result (1, 0) denotes (>=, <) [2], use for C >= 63 1.5 matt int __aeabi_dcmpgt(double, double) __aapcs; // result (1, 0) denotes (>, <=) [2], use for C > 64 1.5 matt int __aeabi_dcmpun(double, double) __aapcs; // result (1, 0) denotes (?, <=>) [2], use for C99 isunordered() 65 1.1 matt 66 1.1 matt /* 67 1.1 matt * Standard single precision floating-point arithmetic helper functions 68 1.1 matt */ 69 1.5 matt float __aeabi_fadd(float, float) __aapcs; // single-precision addition 70 1.5 matt float __aeabi_fdiv(float n, float d) __aapcs; // single-precision division, n / d 71 1.5 matt float __aeabi_fmul(float, float) __aapcs; // single-precision multiplication 72 1.5 matt float __aeabi_frsub(float x, float y) __aapcs; // single-precision reverse subtraction, y - x 73 1.5 matt float __aeabi_fsub(float x, float y) __aapcs; // single-precision subtraction, x - y 74 1.5 matt float __aeabi_fneg(float) __aapcs; // single-precision negation (obsolete, to be removed in r2.09) 75 1.1 matt 76 1.1 matt /* 77 1.1 matt * Standard single precision floating-point comparison helper functions 78 1.1 matt */ 79 1.5 matt void __aeabi_cfcmpeq(float, float) __aapcs; // non-excepting equality comparison [1], result in PSR ZC flags 80 1.5 matt void __aeabi_cfcmple(float, float) __aapcs; // 3-way (<, =, ?>) compare [1], result in PSR ZC flags 81 1.5 matt void __aeabi_cfrcmple(float, float) __aapcs; // reversed 3-way (<, =, ?>) compare [1], result in PSR ZC flags 82 1.5 matt int __aeabi_fcmpeq(float, float) __aapcs; // result (1, 0) denotes (=, <>) [2], use for C == and != 83 1.5 matt int __aeabi_fcmplt(float, float) __aapcs; // result (1, 0) denotes (<, >=) [2], use for C < 84 1.5 matt int __aeabi_fcmple(float, float) __aapcs; // result (1, 0) denotes (<=, >) [2], use for C <= 85 1.5 matt int __aeabi_fcmpge(float, float) __aapcs; // result (1, 0) denotes (>=, <) [2], use for C >= 86 1.5 matt int __aeabi_fcmpgt(float, float) __aapcs; // result (1, 0) denotes (>, <=) [2], use for C > 87 1.5 matt int __aeabi_fcmpun(float, float) __aapcs; // result (1, 0) denotes (?, <=>) [2], use for C99 isunordered() 88 1.1 matt 89 1.1 matt /* 90 1.1 matt * Standard conversions between floating types 91 1.1 matt */ 92 1.5 matt float __aeabi_d2f(double) __aapcs; // double to float (single precision) conversion 93 1.5 matt double __aeabi_f2d(float) __aapcs; // float (single precision) to double conversion 94 1.5 matt float __aeabi_h2f(short hf) __aapcs; // IEEE 754 binary16 storage format (VFP half precision) to binary32 (float) conversion [4, 5] 95 1.5 matt short __aeabi_f2h(float f) __aapcs; // IEEE 754 binary32 (float) to binary16 storage format (VFP half precision) conversion [4, 6] 96 1.5 matt float __aeabi_h2f_alt(short hf) __aapcs; // __aeabi_h2f_alt converts from VFP alternative format [7]. 97 1.5 matt short __aeabi_f2h_alt(float f) __aapcs; // __aeabi_f2h_alt converts to VFP alternative format [8]. 98 1.1 matt 99 1.1 matt /* 100 1.1 matt * Standard floating-point to integer conversions 101 1.1 matt */ 102 1.5 matt int __aeabi_d2iz(double) __aapcs; // double to integer C-style conversion [3] 103 1.5 matt unsigned __aeabi_d2uiz(double) __aapcs; // double to unsigned C-style conversion [3] 104 1.5 matt long long __aeabi_d2lz(double) __aapcs; // double to long long C-style conversion [3] 105 1.5 matt unsigned long long __aeabi_d2ulz(double) __aapcs; // double to unsigned long long C-style conversion [3] 106 1.5 matt int __aeabi_f2iz(float) __aapcs; // float (single precision) to integer C-style conversion [3] 107 1.5 matt unsigned __aeabi_f2uiz(float) __aapcs; // float (single precision) to unsigned C-style conversion [3] 108 1.5 matt long long __aeabi_f2lz(float) __aapcs; // float (single precision) to long long C-style conversion [3] 109 1.5 matt unsigned long long __aeabi_f2ulz(float) __aapcs; // float to unsigned long long C-style conversion [3] 110 1.1 matt 111 1.1 matt /* 112 1.1 matt * Standard integer to floating-point conversions 113 1.1 matt */ 114 1.5 matt double __aeabi_i2d(int) __aapcs; // integer to double conversion 115 1.5 matt double __aeabi_ui2d(unsigned) __aapcs; // unsigned to double conversion 116 1.5 matt double __aeabi_l2d(long long) __aapcs; // long long to double conversion 117 1.5 matt double __aeabi_ul2d(unsigned long long) __aapcs; // unsigned long long to double conversion 118 1.5 matt float __aeabi_i2f(int) __aapcs; // integer to float (single precision) conversion 119 1.5 matt float __aeabi_ui2f(unsigned) __aapcs; // unsigned to float (single precision) conversion 120 1.5 matt float __aeabi_l2f(long long) __aapcs; // long long to float (single precision) conversion 121 1.5 matt float __aeabi_ul2f(unsigned long long) __aapcs; // unsigned long long to float (single precision) conversion 122 1.1 matt 123 1.1 matt /* 124 1.1 matt * Long long functions 125 1.1 matt */ 126 1.1 matt long long __aeabi_lmul(long long, long long); // multiplication 127 1.1 matt 128 1.1 matt /* 129 1.1 matt * A pair of (unsigned) long longs is returned in {{r0, r1}, {r2, r3}}, 130 1.6 skrll * the quotient in {r0, r1}, and the remainder in {r2, r3}. 131 1.1 matt */ 132 1.1 matt typedef struct { long long quot; long long rem; } lldiv_t; 133 1.1 matt __value_in_regs lldiv_t __aeabi_ldivmod(long long n, long long d); // signed long long division and remainder, {q, r} = n / d [2] 134 1.1 matt 135 1.1 matt typedef struct { unsigned long long quot; unsigned long long rem; } ulldiv_t; 136 1.1 matt __value_in_regs ulldiv_t __aeabi_uldivmod(unsigned long long n, unsigned long long d); // unsigned signed ll division, remainder, {q, r} = n / d [2] 137 1.1 matt 138 1.1 matt /* 139 1.1 matt * Because of 2's complement number representation, these functions work 140 1.1 matt * identically with long long replaced uniformly by unsigned long long. 141 1.1 matt * Each returns its result in {r0, r1}, as specified by the [AAPCS]. 142 1.1 matt */ 143 1.1 matt long long __aeabi_llsl(long long, int); // logical shift left [1] 144 1.1 matt long long __aeabi_llsr(long long, int); // logical shift right [1] 145 1.1 matt long long __aeabi_lasr(long long, int); // arithmetic shift right [1] 146 1.1 matt 147 1.1 matt /* 148 1.1 matt * The comparison functions return negative, zero, or a positive integer 149 1.1 matt * according to whether the comparison result is <, ==, or >, respectively 150 1.1 matt * (like strcmp). 151 1.1 matt */ 152 1.1 matt int __aeabi_lcmp(long long, long long); // signed long long comparison 153 1.1 matt int __aeabi_ulcmp(unsigned long long, unsigned long long); // unsigned long long comparison 154 1.1 matt 155 1.1 matt int __aeabi_idiv(int numerator, int denominator); 156 1.1 matt unsigned __aeabi_uidiv(unsigned numerator, unsigned denominator); 157 1.1 matt typedef struct { int quot, rem; } idiv_return; 158 1.1 matt typedef struct { unsigned int quot, rem; } uidiv_return; 159 1.1 matt __value_in_regs idiv_return __aeabi_idivmod(int, int); 160 1.1 matt __value_in_regs uidiv_return __aeabi_uidivmod(unsigned int, unsigned int); 161 1.1 matt 162 1.1 matt /* 163 1.1 matt * Division by zero 164 1.1 matt * 165 1.1 matt * If an integer or long long division helper function is called upon to 166 1.1 matt * divide by 0, it should return as quotient the value returned by a call 167 1.1 matt * to __aeabi_idiv0 or __aeabi_ldiv0, respectively. A *divmod helper should 168 1.1 matt * return as remainder either 0 or the original numerator. 169 1.1 matt */ 170 1.1 matt int __aeabi_idiv0(int); 171 1.1 matt long long __aeabi_ldiv0(long long); 172 1.1 matt 173 1.1 matt /* 174 1.1 matt * These functions read and write 4-byte and 8-byte values at arbitrarily 175 1.1 matt * aligned addresses. Write functions return the value written, 176 1.1 matt * read functions the value read. 177 1.1 matt */ 178 1.1 matt int __aeabi_uread4(void *); 179 1.1 matt int __aeabi_uwrite4(int, void *); 180 1.1 matt long long __aeabi_uread8(void *); 181 1.1 matt long long __aeabi_uwrite8(long long, void *); 182 1.1 matt 183 1.1 matt /* 184 1.1 matt * Memory copying, clearing, and setting 185 1.1 matt */ 186 1.1 matt void __aeabi_memcpy8(void *, const void *, size_t); 187 1.1 matt void __aeabi_memcpy4(void *, const void *, size_t); 188 1.1 matt void __aeabi_memcpy(void *, const void *, size_t); 189 1.1 matt void __aeabi_memmove8(void *, const void *, size_t); 190 1.1 matt void __aeabi_memmove4(void *, const void *, size_t); 191 1.1 matt void __aeabi_memmove(void *, const void *, size_t); 192 1.1 matt 193 1.1 matt /* 194 1.1 matt * Memory clearing and setting 195 1.1 matt */ 196 1.1 matt void __aeabi_memset8(void *, size_t, int); 197 1.1 matt void __aeabi_memset4(void *, size_t, int); 198 1.1 matt void __aeabi_memset(void *, size_t, int); 199 1.1 matt void __aeabi_memclr8(void *, size_t); 200 1.1 matt void __aeabi_memclr4(void *, size_t); 201 1.1 matt void __aeabi_memclr(void *, size_t); 202 1.1 matt 203 1.1 matt void *__aeabi_read_tp(void); // return the value of $tp 204 1.1 matt 205 1.5 matt #undef __aapcs 206 1.5 matt 207 1.1 matt #endif /* _ARM_AEABI_H_ */ 208