2 * UniCore32 helper routines
4 * Copyright (C) 2010-2011 GUAN Xue-tao
6 * This program is free software; you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License version 2 as
8 * published by the Free Software Foundation.
13 #define SIGNBIT (uint32_t)0x80000000
14 #define SIGNBIT64 ((uint64_t)1 << 63)
16 void HELPER(exception
)(uint32_t excp
)
18 env
->exception_index
= excp
;
22 static target_ulong
asr_read(void)
26 return env
->uncached_asr
| (env
->NF
& 0x80000000) | (ZF
<< 30) |
27 (env
->CF
<< 29) | ((env
->VF
& 0x80000000) >> 3);
30 target_ulong
cpu_asr_read(CPUState
*env1
)
42 target_ulong
HELPER(asr_read
)(void)
47 static void asr_write(target_ulong val
, target_ulong mask
)
49 if (mask
& ASR_NZCV
) {
50 env
->ZF
= (~val
) & ASR_Z
;
52 env
->CF
= (val
>> 29) & 1;
53 env
->VF
= (val
<< 3) & 0x80000000;
56 if ((env
->uncached_asr
^ val
) & mask
& ASR_M
) {
57 switch_mode(env
, val
& ASR_M
);
60 env
->uncached_asr
= (env
->uncached_asr
& ~mask
) | (val
& mask
);
63 void cpu_asr_write(CPUState
*env1
, target_ulong val
, target_ulong mask
)
73 void HELPER(asr_write
)(target_ulong val
, target_ulong mask
)
78 /* Access to user mode registers from privileged modes. */
79 uint32_t HELPER(get_user_reg
)(uint32_t regno
)
84 val
= env
->banked_r29
[0];
85 } else if (regno
== 30) {
86 val
= env
->banked_r30
[0];
88 val
= env
->regs
[regno
];
93 void HELPER(set_user_reg
)(uint32_t regno
, uint32_t val
)
96 env
->banked_r29
[0] = val
;
97 } else if (regno
== 30) {
98 env
->banked_r30
[0] = val
;
100 env
->regs
[regno
] = val
;
104 /* ??? Flag setting arithmetic is awkward because we need to do comparisons.
105 The only way to do that in TCG is a conditional branch, which clobbers
106 all our temporaries. For now implement these as helper functions. */
108 uint32_t HELPER(add_cc
)(uint32_t a
, uint32_t b
)
112 env
->NF
= env
->ZF
= result
;
113 env
->CF
= result
< a
;
114 env
->VF
= (a
^ b
^ -1) & (a
^ result
);
118 uint32_t HELPER(adc_cc
)(uint32_t a
, uint32_t b
)
123 env
->CF
= result
< a
;
126 env
->CF
= result
<= a
;
128 env
->VF
= (a
^ b
^ -1) & (a
^ result
);
129 env
->NF
= env
->ZF
= result
;
133 uint32_t HELPER(sub_cc
)(uint32_t a
, uint32_t b
)
137 env
->NF
= env
->ZF
= result
;
139 env
->VF
= (a
^ b
) & (a
^ result
);
143 uint32_t HELPER(sbc_cc
)(uint32_t a
, uint32_t b
)
153 env
->VF
= (a
^ b
) & (a
^ result
);
154 env
->NF
= env
->ZF
= result
;
158 /* Similarly for variable shift instructions. */
160 uint32_t HELPER(shl
)(uint32_t x
, uint32_t i
)
162 int shift
= i
& 0xff;
169 uint32_t HELPER(shr
)(uint32_t x
, uint32_t i
)
171 int shift
= i
& 0xff;
175 return (uint32_t)x
>> shift
;
178 uint32_t HELPER(sar
)(uint32_t x
, uint32_t i
)
180 int shift
= i
& 0xff;
184 return (int32_t)x
>> shift
;
187 uint32_t HELPER(shl_cc
)(uint32_t x
, uint32_t i
)
189 int shift
= i
& 0xff;
197 } else if (shift
!= 0) {
198 env
->CF
= (x
>> (32 - shift
)) & 1;
204 uint32_t HELPER(shr_cc
)(uint32_t x
, uint32_t i
)
206 int shift
= i
& 0xff;
209 env
->CF
= (x
>> 31) & 1;
214 } else if (shift
!= 0) {
215 env
->CF
= (x
>> (shift
- 1)) & 1;
221 uint32_t HELPER(sar_cc
)(uint32_t x
, uint32_t i
)
223 int shift
= i
& 0xff;
225 env
->CF
= (x
>> 31) & 1;
226 return (int32_t)x
>> 31;
227 } else if (shift
!= 0) {
228 env
->CF
= (x
>> (shift
- 1)) & 1;
229 return (int32_t)x
>> shift
;
234 uint32_t HELPER(ror_cc
)(uint32_t x
, uint32_t i
)
238 shift
= shift1
& 0x1f;
241 env
->CF
= (x
>> 31) & 1;
245 env
->CF
= (x
>> (shift
- 1)) & 1;
246 return ((uint32_t)x
>> shift
) | (x
<< (32 - shift
));