Fix typo in comment, by Andreas Faerber.
[qemu/dscho.git] / target-arm / cpu.h
blobef203c3315d2b8d18d0ef886888bdc8bd13b64ff
1 /*
2 * ARM virtual CPU header
3 *
4 * Copyright (c) 2003 Fabrice Bellard
6 * This library is free software; you can redistribute it and/or
7 * modify it under the terms of the GNU Lesser General Public
8 * License as published by the Free Software Foundation; either
9 * version 2 of the License, or (at your option) any later version.
11 * This library is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
14 * Lesser General Public License for more details.
16 * You should have received a copy of the GNU Lesser General Public
17 * License along with this library; if not, write to the Free Software
18 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
20 #ifndef CPU_ARM_H
21 #define CPU_ARM_H
23 #define TARGET_LONG_BITS 32
25 #define ELF_MACHINE EM_ARM
27 #include "cpu-defs.h"
29 #include "softfloat.h"
31 #define TARGET_HAS_ICE 1
33 #define EXCP_UDEF 1 /* undefined instruction */
34 #define EXCP_SWI 2 /* software interrupt */
35 #define EXCP_PREFETCH_ABORT 3
36 #define EXCP_DATA_ABORT 4
37 #define EXCP_IRQ 5
38 #define EXCP_FIQ 6
39 #define EXCP_BKPT 7
41 typedef void ARMWriteCPFunc(void *opaque, int cp_info,
42 int srcreg, int operand, uint32_t value);
43 typedef uint32_t ARMReadCPFunc(void *opaque, int cp_info,
44 int dstreg, int operand);
46 /* We currently assume float and double are IEEE single and double
47 precision respectively.
48 Doing runtime conversions is tricky because VFP registers may contain
49 integer values (eg. as the result of a FTOSI instruction).
50 s<2n> maps to the least significant half of d<n>
51 s<2n+1> maps to the most significant half of d<n>
54 typedef struct CPUARMState {
55 /* Regs for current mode. */
56 uint32_t regs[16];
57 /* Frequently accessed CPSR bits are stored separately for efficiently.
58 This contains all the other bits. Use cpsr_{read,write} to access
59 the whole CPSR. */
60 uint32_t uncached_cpsr;
61 uint32_t spsr;
63 /* Banked registers. */
64 uint32_t banked_spsr[6];
65 uint32_t banked_r13[6];
66 uint32_t banked_r14[6];
68 /* These hold r8-r12. */
69 uint32_t usr_regs[5];
70 uint32_t fiq_regs[5];
72 /* cpsr flag cache for faster execution */
73 uint32_t CF; /* 0 or 1 */
74 uint32_t VF; /* V is the bit 31. All other bits are undefined */
75 uint32_t NZF; /* N is bit 31. Z is computed from NZF */
76 uint32_t QF; /* 0 or 1 */
78 int thumb; /* 0 = arm mode, 1 = thumb mode */
80 /* System control coprocessor (cp15) */
81 struct {
82 uint32_t c0_cpuid;
83 uint32_t c0_cachetype;
84 uint32_t c1_sys; /* System control register. */
85 uint32_t c1_coproc; /* Coprocessor access register. */
86 uint32_t c1_xscaleauxcr; /* XScale auxiliary control register. */
87 uint32_t c2_base; /* MMU translation table base. */
88 uint32_t c2_data; /* MPU data cachable bits. */
89 uint32_t c2_insn; /* MPU instruction cachable bits. */
90 uint32_t c3; /* MMU domain access control register
91 MPU write buffer control. */
92 uint32_t c5_insn; /* Fault status registers. */
93 uint32_t c5_data;
94 uint32_t c6_region[8]; /* MPU base/size registers. */
95 uint32_t c6_insn; /* Fault address registers. */
96 uint32_t c6_data;
97 uint32_t c9_insn; /* Cache lockdown registers. */
98 uint32_t c9_data;
99 uint32_t c13_fcse; /* FCSE PID. */
100 uint32_t c13_context; /* Context ID. */
101 uint32_t c15_cpar; /* XScale Coprocessor Access Register */
102 uint32_t c15_ticonfig; /* TI925T configuration byte. */
103 uint32_t c15_i_max; /* Maximum D-cache dirty line index. */
104 uint32_t c15_i_min; /* Minimum D-cache dirty line index. */
105 uint32_t c15_threadid; /* TI debugger thread-ID. */
106 } cp15;
108 /* Coprocessor IO used by peripherals */
109 struct {
110 ARMReadCPFunc *cp_read;
111 ARMWriteCPFunc *cp_write;
112 void *opaque;
113 } cp[15];
115 /* Internal CPU feature flags. */
116 uint32_t features;
118 /* exception/interrupt handling */
119 jmp_buf jmp_env;
120 int exception_index;
121 int interrupt_request;
122 int user_mode_only;
123 int halted;
125 /* VFP coprocessor state. */
126 struct {
127 float64 regs[16];
129 uint32_t xregs[16];
130 /* We store these fpcsr fields separately for convenience. */
131 int vec_len;
132 int vec_stride;
134 /* Temporary variables if we don't have spare fp regs. */
135 float32 tmp0s, tmp1s;
136 float64 tmp0d, tmp1d;
138 float_status fp_status;
139 } vfp;
141 /* iwMMXt coprocessor state. */
142 struct {
143 uint64_t regs[16];
144 uint64_t val;
146 uint32_t cregs[16];
147 } iwmmxt;
149 #if defined(CONFIG_USER_ONLY)
150 /* For usermode syscall translation. */
151 int eabi;
152 #endif
154 CPU_COMMON
156 /* These fields after the common ones so they are preserved on reset. */
157 int ram_size;
158 const char *kernel_filename;
159 const char *kernel_cmdline;
160 const char *initrd_filename;
161 int board_id;
162 target_phys_addr_t loader_start;
163 } CPUARMState;
165 CPUARMState *cpu_arm_init(void);
166 int cpu_arm_exec(CPUARMState *s);
167 void cpu_arm_close(CPUARMState *s);
168 void do_interrupt(CPUARMState *);
169 void switch_mode(CPUARMState *, int);
171 /* you can call this signal handler from your SIGBUS and SIGSEGV
172 signal handlers to inform the virtual CPU of exceptions. non zero
173 is returned if the signal was handled by the virtual CPU. */
174 int cpu_arm_signal_handler(int host_signum, void *pinfo,
175 void *puc);
177 #define CPSR_M (0x1f)
178 #define CPSR_T (1 << 5)
179 #define CPSR_F (1 << 6)
180 #define CPSR_I (1 << 7)
181 #define CPSR_A (1 << 8)
182 #define CPSR_E (1 << 9)
183 #define CPSR_IT_2_7 (0xfc00)
184 /* Bits 20-23 reserved. */
185 #define CPSR_J (1 << 24)
186 #define CPSR_IT_0_1 (3 << 25)
187 #define CPSR_Q (1 << 27)
188 #define CPSR_NZCV (0xf << 28)
190 #define CACHED_CPSR_BITS (CPSR_T | CPSR_Q | CPSR_NZCV)
191 /* Return the current CPSR value. */
192 static inline uint32_t cpsr_read(CPUARMState *env)
194 int ZF;
195 ZF = (env->NZF == 0);
196 return env->uncached_cpsr | (env->NZF & 0x80000000) | (ZF << 30) |
197 (env->CF << 29) | ((env->VF & 0x80000000) >> 3) | (env->QF << 27)
198 | (env->thumb << 5);
201 /* Set the CPSR. Note that some bits of mask must be all-set or all-clear. */
202 static inline void cpsr_write(CPUARMState *env, uint32_t val, uint32_t mask)
204 /* NOTE: N = 1 and Z = 1 cannot be stored currently */
205 if (mask & CPSR_NZCV) {
206 env->NZF = (val & 0xc0000000) ^ 0x40000000;
207 env->CF = (val >> 29) & 1;
208 env->VF = (val << 3) & 0x80000000;
210 if (mask & CPSR_Q)
211 env->QF = ((val & CPSR_Q) != 0);
212 if (mask & CPSR_T)
213 env->thumb = ((val & CPSR_T) != 0);
215 if ((env->uncached_cpsr ^ val) & mask & CPSR_M) {
216 switch_mode(env, val & CPSR_M);
218 mask &= ~CACHED_CPSR_BITS;
219 env->uncached_cpsr = (env->uncached_cpsr & ~mask) | (val & mask);
222 enum arm_cpu_mode {
223 ARM_CPU_MODE_USR = 0x10,
224 ARM_CPU_MODE_FIQ = 0x11,
225 ARM_CPU_MODE_IRQ = 0x12,
226 ARM_CPU_MODE_SVC = 0x13,
227 ARM_CPU_MODE_ABT = 0x17,
228 ARM_CPU_MODE_UND = 0x1b,
229 ARM_CPU_MODE_SYS = 0x1f
232 /* VFP system registers. */
233 #define ARM_VFP_FPSID 0
234 #define ARM_VFP_FPSCR 1
235 #define ARM_VFP_FPEXC 8
236 #define ARM_VFP_FPINST 9
237 #define ARM_VFP_FPINST2 10
239 /* iwMMXt coprocessor control registers. */
240 #define ARM_IWMMXT_wCID 0
241 #define ARM_IWMMXT_wCon 1
242 #define ARM_IWMMXT_wCSSF 2
243 #define ARM_IWMMXT_wCASF 3
244 #define ARM_IWMMXT_wCGR0 8
245 #define ARM_IWMMXT_wCGR1 9
246 #define ARM_IWMMXT_wCGR2 10
247 #define ARM_IWMMXT_wCGR3 11
249 enum arm_features {
250 ARM_FEATURE_VFP,
251 ARM_FEATURE_AUXCR, /* ARM1026 Auxiliary control register. */
252 ARM_FEATURE_XSCALE, /* Intel XScale extensions. */
253 ARM_FEATURE_IWMMXT, /* Intel iwMMXt extension. */
254 ARM_FEATURE_MPU, /* Only has Memory Protection Unit, not full MMU. */
255 ARM_FEATURE_OMAPCP /* OMAP specific CP15 ops handling. */
258 static inline int arm_feature(CPUARMState *env, int feature)
260 return (env->features & (1u << feature)) != 0;
263 void arm_cpu_list(void);
264 void cpu_arm_set_model(CPUARMState *env, const char *name);
266 void cpu_arm_set_cp_io(CPUARMState *env, int cpnum,
267 ARMReadCPFunc *cp_read, ARMWriteCPFunc *cp_write,
268 void *opaque);
270 #define ARM_CPUID_ARM1026 0x4106a262
271 #define ARM_CPUID_ARM926 0x41069265
272 #define ARM_CPUID_ARM946 0x41059461
273 #define ARM_CPUID_TI915T 0x54029152
274 #define ARM_CPUID_TI925T 0x54029252
275 #define ARM_CPUID_PXA250 0x69052100
276 #define ARM_CPUID_PXA255 0x69052d00
277 #define ARM_CPUID_PXA260 0x69052903
278 #define ARM_CPUID_PXA261 0x69052d05
279 #define ARM_CPUID_PXA262 0x69052d06
280 #define ARM_CPUID_PXA270 0x69054110
281 #define ARM_CPUID_PXA270_A0 0x69054110
282 #define ARM_CPUID_PXA270_A1 0x69054111
283 #define ARM_CPUID_PXA270_B0 0x69054112
284 #define ARM_CPUID_PXA270_B1 0x69054113
285 #define ARM_CPUID_PXA270_C0 0x69054114
286 #define ARM_CPUID_PXA270_C5 0x69054117
288 #if defined(CONFIG_USER_ONLY)
289 #define TARGET_PAGE_BITS 12
290 #else
291 /* The ARM MMU allows 1k pages. */
292 /* ??? Linux doesn't actually use these, and they're deprecated in recent
293 architecture revisions. Maybe a configure option to disable them. */
294 #define TARGET_PAGE_BITS 10
295 #endif
297 #define CPUState CPUARMState
298 #define cpu_init cpu_arm_init
299 #define cpu_exec cpu_arm_exec
300 #define cpu_gen_code cpu_arm_gen_code
301 #define cpu_signal_handler cpu_arm_signal_handler
303 #include "cpu-all.h"
305 #endif