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Fix usermode build.
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e88de099
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1#ifndef QEMU_H
2#define QEMU_H
31e31b8a 3
9de5e440 4#include <signal.h>
edf779ff 5#include <string.h>
31e31b8a 6
6180a181 7#include "cpu.h"
992f48a0 8
06177d36
AZ
9#undef DEBUG_REMAP
10#ifdef DEBUG_REMAP
11#include <stdlib.h>
12#endif /* DEBUG_REMAP */
13
992f48a0
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14#ifdef TARGET_ABI32
15typedef uint32_t abi_ulong;
16typedef int32_t abi_long;
f3e3285d
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17#define TARGET_ABI_FMT_lx "%08x"
18#define TARGET_ABI_FMT_ld "%d"
19#define TARGET_ABI_FMT_lu "%u"
992f48a0
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20#define TARGET_ABI_BITS 32
21#else
22typedef target_ulong abi_ulong;
23typedef target_long abi_long;
f3e3285d
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24#define TARGET_ABI_FMT_lx TARGET_FMT_lx
25#define TARGET_ABI_FMT_ld TARGET_FMT_ld
26#define TARGET_ABI_FMT_lu TARGET_FMT_lu
992f48a0 27#define TARGET_ABI_BITS TARGET_LONG_BITS
4683b130
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28/* for consistency, define ABI32 too */
29#if TARGET_ABI_BITS == 32
30#define TARGET_ABI32 1
31#endif
992f48a0
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32#endif
33
34#include "thunk.h"
35#include "syscall_defs.h"
6180a181 36#include "syscall.h"
a04e134a 37#include "target_signal.h"
1fddef4b 38#include "gdbstub.h"
66fb9763 39
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40/* This struct is used to hold certain information about the image.
41 * Basically, it replicates in user space what would be certain
42 * task_struct fields in the kernel
43 */
44struct image_info {
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45 abi_ulong load_addr;
46 abi_ulong start_code;
47 abi_ulong end_code;
48 abi_ulong start_data;
49 abi_ulong end_data;
50 abi_ulong start_brk;
51 abi_ulong brk;
52 abi_ulong start_mmap;
53 abi_ulong mmap;
54 abi_ulong rss;
55 abi_ulong start_stack;
56 abi_ulong entry;
57 abi_ulong code_offset;
58 abi_ulong data_offset;
38d0662a 59 char **host_argv;
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60 int personality;
61};
62
b346ff46 63#ifdef TARGET_I386
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64/* Information about the current linux thread */
65struct vm86_saved_state {
66 uint32_t eax; /* return code */
67 uint32_t ebx;
68 uint32_t ecx;
69 uint32_t edx;
70 uint32_t esi;
71 uint32_t edi;
72 uint32_t ebp;
73 uint32_t esp;
74 uint32_t eflags;
75 uint32_t eip;
76 uint16_t cs, ss, ds, es, fs, gs;
77};
b346ff46 78#endif
851e67a1 79
28c4f361
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80#ifdef TARGET_ARM
81/* FPU emulator */
82#include "nwfpe/fpa11.h"
28c4f361
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83#endif
84
851e67a1
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85/* NOTE: we force a big alignment so that the stack stored after is
86 aligned too */
87typedef struct TaskState {
88 struct TaskState *next;
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89#ifdef TARGET_ARM
90 /* FPA state */
91 FPA11 fpa;
a4f81979 92 int swi_errno;
28c4f361 93#endif
84409ddb 94#if defined(TARGET_I386) && !defined(TARGET_X86_64)
992f48a0 95 abi_ulong target_v86;
851e67a1 96 struct vm86_saved_state vm86_saved_regs;
b333af06 97 struct target_vm86plus_struct vm86plus;
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98 uint32_t v86flags;
99 uint32_t v86mask;
e6e5906b
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100#endif
101#ifdef TARGET_M68K
102 int sim_syscalls;
a87295e8
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103#endif
104#if defined(TARGET_ARM) || defined(TARGET_M68K)
105 /* Extra fields for semihosted binaries. */
106 uint32_t stack_base;
107 uint32_t heap_base;
108 uint32_t heap_limit;
b346ff46 109#endif
851e67a1 110 int used; /* non zero if used */
978efd6a 111 struct image_info *info;
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112 uint8_t stack[0];
113} __attribute__((aligned(16))) TaskState;
114
115extern TaskState *first_task_state;
c5937220 116extern const char *qemu_uname_release;
851e67a1 117
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PB
118/* ??? See if we can avoid exposing so much of the loader internals. */
119/*
120 * MAX_ARG_PAGES defines the number of pages allocated for arguments
121 * and envelope for the new program. 32 should suffice, this gives
122 * a maximum env+arg of 128kB w/4KB pages!
123 */
124#define MAX_ARG_PAGES 32
125
126/*
5fafdf24 127 * This structure is used to hold the arguments that are
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128 * used when loading binaries.
129 */
130struct linux_binprm {
131 char buf[128];
132 void *page[MAX_ARG_PAGES];
992f48a0 133 abi_ulong p;
e5fe0c52
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134 int fd;
135 int e_uid, e_gid;
136 int argc, envc;
137 char **argv;
138 char **envp;
139 char * filename; /* Name of binary */
140};
141
142void do_init_thread(struct target_pt_regs *regs, struct image_info *infop);
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143abi_ulong loader_build_argptr(int envc, int argc, abi_ulong sp,
144 abi_ulong stringp, int push_ptr);
5fafdf24 145int loader_exec(const char * filename, char ** argv, char ** envp,
01ffc75b 146 struct target_pt_regs * regs, struct image_info *infop);
31e31b8a 147
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148int load_elf_binary(struct linux_binprm * bprm, struct target_pt_regs * regs,
149 struct image_info * info);
150int load_flt_binary(struct linux_binprm * bprm, struct target_pt_regs * regs,
151 struct image_info * info);
cb33da57
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152#ifdef TARGET_HAS_ELFLOAD32
153int load_elf_binary_multi(struct linux_binprm *bprm,
154 struct target_pt_regs *regs,
155 struct image_info *info);
156#endif
e5fe0c52 157
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158abi_long memcpy_to_target(abi_ulong dest, const void *src,
159 unsigned long len);
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160void target_set_brk(abi_ulong new_brk);
161abi_long do_brk(abi_ulong new_brk);
31e31b8a 162void syscall_init(void);
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163abi_long do_syscall(void *cpu_env, int num, abi_long arg1,
164 abi_long arg2, abi_long arg3, abi_long arg4,
165 abi_long arg5, abi_long arg6);
31e31b8a 166void gemu_log(const char *fmt, ...) __attribute__((format(printf,1,2)));
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167extern CPUState *global_env;
168void cpu_loop(CPUState *env);
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169void init_paths(const char *prefix);
170const char *path(const char *pathname);
b92c47c1 171char *target_strerror(int err);
a745ec6d 172int get_osversion(void);
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173
174extern int loglevel;
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175extern FILE *logfile;
176
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177/* strace.c */
178void print_syscall(int num,
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179 abi_long arg1, abi_long arg2, abi_long arg3,
180 abi_long arg4, abi_long arg5, abi_long arg6);
181void print_syscall_ret(int num, abi_long arg1);
b92c47c1
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182extern int do_strace;
183
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184/* signal.c */
185void process_pending_signals(void *cpu_env);
186void signal_init(void);
187int queue_signal(int sig, target_siginfo_t *info);
188void host_to_target_siginfo(target_siginfo_t *tinfo, const siginfo_t *info);
189void target_to_host_siginfo(siginfo_t *info, const target_siginfo_t *tinfo);
4cb05961 190int target_to_host_signal(int sig);
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191long do_sigreturn(CPUState *env);
192long do_rt_sigreturn(CPUState *env);
579a97f7 193abi_long do_sigaltstack(abi_ulong uss_addr, abi_ulong uoss_addr, abi_ulong sp);
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194
195#ifdef TARGET_I386
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196/* vm86.c */
197void save_v86_state(CPUX86State *env);
447db213 198void handle_vm86_trap(CPUX86State *env, int trapno);
631271d7 199void handle_vm86_fault(CPUX86State *env);
992f48a0 200int do_vm86(CPUX86State *env, long subfunction, abi_ulong v86_addr);
5bfb56b2
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201#elif defined(TARGET_SPARC64)
202void sparc64_set_context(CPUSPARCState *env);
203void sparc64_get_context(CPUSPARCState *env);
b346ff46 204#endif
631271d7 205
54936004 206/* mmap.c */
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207int target_mprotect(abi_ulong start, abi_ulong len, int prot);
208abi_long target_mmap(abi_ulong start, abi_ulong len, int prot,
209 int flags, int fd, abi_ulong offset);
210int target_munmap(abi_ulong start, abi_ulong len);
211abi_long target_mremap(abi_ulong old_addr, abi_ulong old_size,
212 abi_ulong new_size, unsigned long flags,
213 abi_ulong new_addr);
214int target_msync(abi_ulong start, abi_ulong len, int flags);
54936004 215
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216/* user access */
217
218#define VERIFY_READ 0
579a97f7 219#define VERIFY_WRITE 1 /* implies read access */
edf779ff 220
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221static inline int access_ok(int type, abi_ulong addr, abi_ulong size)
222{
223 return page_check_range((target_ulong)addr, size,
224 (type == VERIFY_READ) ? PAGE_READ : (PAGE_READ | PAGE_WRITE)) == 0;
225}
edf779ff 226
89343ecd 227/* NOTE __get_user and __put_user use host pointers and don't check access. */
579a97f7
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228/* These are usually used to access struct data members once the
229 * struct has been locked - usually with lock_user_struct().
230 */
89343ecd 231#define __put_user(x, hptr)\
edf779ff 232({\
89343ecd 233 int size = sizeof(*hptr);\
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234 switch(size) {\
235 case 1:\
2f619698 236 *(uint8_t *)(hptr) = (uint8_t)(typeof(*hptr))(x);\
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237 break;\
238 case 2:\
89343ecd 239 *(uint16_t *)(hptr) = tswap16((typeof(*hptr))(x));\
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240 break;\
241 case 4:\
89343ecd 242 *(uint32_t *)(hptr) = tswap32((typeof(*hptr))(x));\
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243 break;\
244 case 8:\
89343ecd 245 *(uint64_t *)(hptr) = tswap64((typeof(*hptr))(x));\
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246 break;\
247 default:\
248 abort();\
249 }\
250 0;\
251})
252
89343ecd 253#define __get_user(x, hptr) \
edf779ff 254({\
89343ecd 255 int size = sizeof(*hptr);\
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256 switch(size) {\
257 case 1:\
89343ecd 258 x = (typeof(*hptr))*(uint8_t *)(hptr);\
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259 break;\
260 case 2:\
89343ecd 261 x = (typeof(*hptr))tswap16(*(uint16_t *)(hptr));\
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262 break;\
263 case 4:\
89343ecd 264 x = (typeof(*hptr))tswap32(*(uint32_t *)(hptr));\
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265 break;\
266 case 8:\
89343ecd 267 x = (typeof(*hptr))tswap64(*(uint64_t *)(hptr));\
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268 break;\
269 default:\
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270 /* avoid warning */\
271 x = 0;\
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272 abort();\
273 }\
274 0;\
275})
276
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277/* put_user()/get_user() take a guest address and check access */
278/* These are usually used to access an atomic data type, such as an int,
279 * that has been passed by address. These internally perform locking
280 * and unlocking on the data type.
281 */
282#define put_user(x, gaddr, target_type) \
283({ \
284 abi_ulong __gaddr = (gaddr); \
285 target_type *__hptr; \
286 abi_long __ret; \
287 if ((__hptr = lock_user(VERIFY_WRITE, __gaddr, sizeof(target_type), 0))) { \
288 __ret = __put_user((x), __hptr); \
289 unlock_user(__hptr, __gaddr, sizeof(target_type)); \
290 } else \
291 __ret = -TARGET_EFAULT; \
292 __ret; \
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293})
294
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295#define get_user(x, gaddr, target_type) \
296({ \
297 abi_ulong __gaddr = (gaddr); \
298 target_type *__hptr; \
299 abi_long __ret; \
300 if ((__hptr = lock_user(VERIFY_READ, __gaddr, sizeof(target_type), 1))) { \
301 __ret = __get_user((x), __hptr); \
302 unlock_user(__hptr, __gaddr, 0); \
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303 } else { \
304 /* avoid warning */ \
305 (x) = 0; \
579a97f7 306 __ret = -TARGET_EFAULT; \
2f619698 307 } \
579a97f7 308 __ret; \
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309})
310
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311#define put_user_ual(x, gaddr) put_user((x), (gaddr), abi_ulong)
312#define put_user_sal(x, gaddr) put_user((x), (gaddr), abi_long)
313#define put_user_u64(x, gaddr) put_user((x), (gaddr), uint64_t)
314#define put_user_s64(x, gaddr) put_user((x), (gaddr), int64_t)
315#define put_user_u32(x, gaddr) put_user((x), (gaddr), uint32_t)
316#define put_user_s32(x, gaddr) put_user((x), (gaddr), int32_t)
317#define put_user_u16(x, gaddr) put_user((x), (gaddr), uint16_t)
318#define put_user_s16(x, gaddr) put_user((x), (gaddr), int16_t)
319#define put_user_u8(x, gaddr) put_user((x), (gaddr), uint8_t)
320#define put_user_s8(x, gaddr) put_user((x), (gaddr), int8_t)
321
322#define get_user_ual(x, gaddr) get_user((x), (gaddr), abi_ulong)
323#define get_user_sal(x, gaddr) get_user((x), (gaddr), abi_long)
324#define get_user_u64(x, gaddr) get_user((x), (gaddr), uint64_t)
325#define get_user_s64(x, gaddr) get_user((x), (gaddr), int64_t)
326#define get_user_u32(x, gaddr) get_user((x), (gaddr), uint32_t)
327#define get_user_s32(x, gaddr) get_user((x), (gaddr), int32_t)
328#define get_user_u16(x, gaddr) get_user((x), (gaddr), uint16_t)
329#define get_user_s16(x, gaddr) get_user((x), (gaddr), int16_t)
330#define get_user_u8(x, gaddr) get_user((x), (gaddr), uint8_t)
331#define get_user_s8(x, gaddr) get_user((x), (gaddr), int8_t)
332
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333/* copy_from_user() and copy_to_user() are usually used to copy data
334 * buffers between the target and host. These internally perform
335 * locking/unlocking of the memory.
336 */
337abi_long copy_from_user(void *hptr, abi_ulong gaddr, size_t len);
338abi_long copy_to_user(abi_ulong gaddr, void *hptr, size_t len);
339
53a5960a
PB
340/* Functions for accessing guest memory. The tget and tput functions
341 read/write single values, byteswapping as neccessary. The lock_user
342 gets a pointer to a contiguous area of guest memory, but does not perform
343 and byteswapping. lock_user may return either a pointer to the guest
344 memory, or a temporary buffer. */
345
346/* Lock an area of guest memory into the host. If copy is true then the
347 host area will have the same contents as the guest. */
579a97f7 348static inline void *lock_user(int type, abi_ulong guest_addr, long len, int copy)
edf779ff 349{
579a97f7
FB
350 if (!access_ok(type, guest_addr, len))
351 return NULL;
53a5960a 352#ifdef DEBUG_REMAP
579a97f7
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353 {
354 void *addr;
355 addr = malloc(len);
356 if (copy)
357 memcpy(addr, g2h(guest_addr), len);
358 else
359 memset(addr, 0, len);
360 return addr;
361 }
53a5960a
PB
362#else
363 return g2h(guest_addr);
364#endif
edf779ff
FB
365}
366
579a97f7
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367/* Unlock an area of guest memory. The first LEN bytes must be
368 flushed back to guest memory. host_ptr = NULL is explicitely
369 allowed and does nothing. */
370static inline void unlock_user(void *host_ptr, abi_ulong guest_addr,
992f48a0 371 long len)
edf779ff 372{
579a97f7 373
53a5960a 374#ifdef DEBUG_REMAP
579a97f7
FB
375 if (!host_ptr)
376 return;
377 if (host_ptr == g2h(guest_addr))
53a5960a
PB
378 return;
379 if (len > 0)
06177d36 380 memcpy(g2h(guest_addr), host_ptr, len);
579a97f7 381 free(host_ptr);
53a5960a 382#endif
edf779ff
FB
383}
384
579a97f7
FB
385/* Return the length of a string in target memory or -TARGET_EFAULT if
386 access error. */
387abi_long target_strlen(abi_ulong gaddr);
53a5960a
PB
388
389/* Like lock_user but for null terminated strings. */
992f48a0 390static inline void *lock_user_string(abi_ulong guest_addr)
53a5960a 391{
579a97f7
FB
392 abi_long len;
393 len = target_strlen(guest_addr);
394 if (len < 0)
395 return NULL;
396 return lock_user(VERIFY_READ, guest_addr, (long)(len + 1), 1);
edf779ff
FB
397}
398
53a5960a 399/* Helper macros for locking/ulocking a target struct. */
579a97f7
FB
400#define lock_user_struct(type, host_ptr, guest_addr, copy) \
401 (host_ptr = lock_user(type, guest_addr, sizeof(*host_ptr), copy))
402#define unlock_user_struct(host_ptr, guest_addr, copy) \
53a5960a
PB
403 unlock_user(host_ptr, guest_addr, (copy) ? sizeof(*host_ptr) : 0)
404
e88de099 405#endif /* QEMU_H */