1 /*******************************************************************************
3 * Module Name: utmath - Integer math support routines
5 ******************************************************************************/
8 * Copyright (C) 2000 - 2010, Intel Corp.
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12 * modification, are permitted provided that the following conditions
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15 * notice, this list of conditions, and the following disclaimer,
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20 * including a substantially similar Disclaimer requirement for further
21 * binary redistribution.
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23 * of any contributors may be used to endorse or promote products derived
24 * from this software without specific prior written permission.
26 * Alternatively, this software may be distributed under the terms of the
27 * GNU General Public License ("GPL") version 2 as published by the Free
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44 #include <acpi/acpi.h>
47 #define _COMPONENT ACPI_UTILITIES
48 ACPI_MODULE_NAME("utmath")
51 * Support for double-precision integer divide. This code is included here
52 * in order to support kernel environments where the double-precision math
53 * library is not available.
55 #ifndef ACPI_USE_NATIVE_DIVIDE
56 /*******************************************************************************
58 * FUNCTION: acpi_ut_short_divide
60 * PARAMETERS: Dividend - 64-bit dividend
61 * Divisor - 32-bit divisor
62 * out_quotient - Pointer to where the quotient is returned
63 * out_remainder - Pointer to where the remainder is returned
65 * RETURN: Status (Checks for divide-by-zero)
67 * DESCRIPTION: Perform a short (maximum 64 bits divided by 32 bits)
68 * divide and modulo. The result is a 64-bit quotient and a
71 ******************************************************************************/
73 acpi_ut_short_divide(u64 dividend
,
74 u32 divisor
, u64
*out_quotient
, u32
*out_remainder
)
76 union uint64_overlay dividend_ovl
;
77 union uint64_overlay quotient
;
80 ACPI_FUNCTION_TRACE(ut_short_divide
);
82 /* Always check for a zero divisor */
85 ACPI_ERROR((AE_INFO
, "Divide by zero"));
86 return_ACPI_STATUS(AE_AML_DIVIDE_BY_ZERO
);
89 dividend_ovl
.full
= dividend
;
92 * The quotient is 64 bits, the remainder is always 32 bits,
93 * and is generated by the second divide.
95 ACPI_DIV_64_BY_32(0, dividend_ovl
.part
.hi
, divisor
,
96 quotient
.part
.hi
, remainder32
);
97 ACPI_DIV_64_BY_32(remainder32
, dividend_ovl
.part
.lo
, divisor
,
98 quotient
.part
.lo
, remainder32
);
100 /* Return only what was requested */
103 *out_quotient
= quotient
.full
;
106 *out_remainder
= remainder32
;
109 return_ACPI_STATUS(AE_OK
);
112 /*******************************************************************************
114 * FUNCTION: acpi_ut_divide
116 * PARAMETERS: in_dividend - Dividend
117 * in_divisor - Divisor
118 * out_quotient - Pointer to where the quotient is returned
119 * out_remainder - Pointer to where the remainder is returned
121 * RETURN: Status (Checks for divide-by-zero)
123 * DESCRIPTION: Perform a divide and modulo.
125 ******************************************************************************/
128 acpi_ut_divide(u64 in_dividend
,
129 u64 in_divisor
, u64
*out_quotient
, u64
*out_remainder
)
131 union uint64_overlay dividend
;
132 union uint64_overlay divisor
;
133 union uint64_overlay quotient
;
134 union uint64_overlay remainder
;
135 union uint64_overlay normalized_dividend
;
136 union uint64_overlay normalized_divisor
;
138 union uint64_overlay partial2
;
139 union uint64_overlay partial3
;
141 ACPI_FUNCTION_TRACE(ut_divide
);
143 /* Always check for a zero divisor */
145 if (in_divisor
== 0) {
146 ACPI_ERROR((AE_INFO
, "Divide by zero"));
147 return_ACPI_STATUS(AE_AML_DIVIDE_BY_ZERO
);
150 divisor
.full
= in_divisor
;
151 dividend
.full
= in_dividend
;
152 if (divisor
.part
.hi
== 0) {
154 * 1) Simplest case is where the divisor is 32 bits, we can
155 * just do two divides
157 remainder
.part
.hi
= 0;
160 * The quotient is 64 bits, the remainder is always 32 bits,
161 * and is generated by the second divide.
163 ACPI_DIV_64_BY_32(0, dividend
.part
.hi
, divisor
.part
.lo
,
164 quotient
.part
.hi
, partial1
);
165 ACPI_DIV_64_BY_32(partial1
, dividend
.part
.lo
, divisor
.part
.lo
,
166 quotient
.part
.lo
, remainder
.part
.lo
);
171 * 2) The general case where the divisor is a full 64 bits
174 quotient
.part
.hi
= 0;
175 normalized_dividend
= dividend
;
176 normalized_divisor
= divisor
;
178 /* Normalize the operands (shift until the divisor is < 32 bits) */
181 ACPI_SHIFT_RIGHT_64(normalized_divisor
.part
.hi
,
182 normalized_divisor
.part
.lo
);
183 ACPI_SHIFT_RIGHT_64(normalized_dividend
.part
.hi
,
184 normalized_dividend
.part
.lo
);
186 } while (normalized_divisor
.part
.hi
!= 0);
190 ACPI_DIV_64_BY_32(normalized_dividend
.part
.hi
,
191 normalized_dividend
.part
.lo
,
192 normalized_divisor
.part
.lo
,
193 quotient
.part
.lo
, partial1
);
196 * The quotient is always 32 bits, and simply requires adjustment.
197 * The 64-bit remainder must be generated.
199 partial1
= quotient
.part
.lo
* divisor
.part
.hi
;
200 partial2
.full
= (u64
) quotient
.part
.lo
* divisor
.part
.lo
;
201 partial3
.full
= (u64
) partial2
.part
.hi
+ partial1
;
203 remainder
.part
.hi
= partial3
.part
.lo
;
204 remainder
.part
.lo
= partial2
.part
.lo
;
206 if (partial3
.part
.hi
== 0) {
207 if (partial3
.part
.lo
>= dividend
.part
.hi
) {
208 if (partial3
.part
.lo
== dividend
.part
.hi
) {
209 if (partial2
.part
.lo
> dividend
.part
.lo
) {
211 remainder
.full
-= divisor
.full
;
215 remainder
.full
-= divisor
.full
;
219 remainder
.full
= remainder
.full
- dividend
.full
;
220 remainder
.part
.hi
= (u32
) - ((s32
) remainder
.part
.hi
);
221 remainder
.part
.lo
= (u32
) - ((s32
) remainder
.part
.lo
);
223 if (remainder
.part
.lo
) {
229 /* Return only what was requested */
232 *out_quotient
= quotient
.full
;
235 *out_remainder
= remainder
.full
;
238 return_ACPI_STATUS(AE_OK
);
242 /*******************************************************************************
244 * FUNCTION: acpi_ut_short_divide, acpi_ut_divide
246 * PARAMETERS: See function headers above
248 * DESCRIPTION: Native versions of the ut_divide functions. Use these if either
249 * 1) The target is a 64-bit platform and therefore 64-bit
250 * integer math is supported directly by the machine.
251 * 2) The target is a 32-bit or 16-bit platform, and the
252 * double-precision integer math library is available to
253 * perform the divide.
255 ******************************************************************************/
257 acpi_ut_short_divide(u64 in_dividend
,
258 u32 divisor
, u64
*out_quotient
, u32
*out_remainder
)
261 ACPI_FUNCTION_TRACE(ut_short_divide
);
263 /* Always check for a zero divisor */
266 ACPI_ERROR((AE_INFO
, "Divide by zero"));
267 return_ACPI_STATUS(AE_AML_DIVIDE_BY_ZERO
);
270 /* Return only what was requested */
273 *out_quotient
= in_dividend
/ divisor
;
276 *out_remainder
= (u32
) (in_dividend
% divisor
);
279 return_ACPI_STATUS(AE_OK
);
283 acpi_ut_divide(u64 in_dividend
,
284 u64 in_divisor
, u64
*out_quotient
, u64
*out_remainder
)
286 ACPI_FUNCTION_TRACE(ut_divide
);
288 /* Always check for a zero divisor */
290 if (in_divisor
== 0) {
291 ACPI_ERROR((AE_INFO
, "Divide by zero"));
292 return_ACPI_STATUS(AE_AML_DIVIDE_BY_ZERO
);
295 /* Return only what was requested */
298 *out_quotient
= in_dividend
/ in_divisor
;
301 *out_remainder
= in_dividend
% in_divisor
;
304 return_ACPI_STATUS(AE_OK
);