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bellarde88de092005-02-07 12:35:39 +00001#ifndef QEMU_H
2#define QEMU_H
bellard31e31b82003-02-18 22:55:36 +00003
Timothy E Baldwin4d330ce2016-05-12 18:47:46 +01004#include "hostdep.h"
bellard6180a182003-09-30 21:04:53 +00005#include "cpu.h"
Paolo Bonzini63c91552016-03-15 13:18:37 +01006#include "exec/exec-all.h"
Paolo Bonzinif08b6172014-03-28 19:42:10 +01007#include "exec/cpu_ldst.h"
blueswir1992f48a2007-10-14 16:27:31 +00008
balrog06177d32007-12-24 13:47:52 +00009#undef DEBUG_REMAP
10#ifdef DEBUG_REMAP
balrog06177d32007-12-24 13:47:52 +000011#endif /* DEBUG_REMAP */
12
Paolo Bonzini022c62c2012-12-17 18:19:49 +010013#include "exec/user/abitypes.h"
blueswir1992f48a2007-10-14 16:27:31 +000014
Paolo Bonzini022c62c2012-12-17 18:19:49 +010015#include "exec/user/thunk.h"
blueswir1992f48a2007-10-14 16:27:31 +000016#include "syscall_defs.h"
LluĂ­s Vilanova460c5792016-02-01 19:38:42 +010017#include "target_syscall.h"
Paolo Bonzini022c62c2012-12-17 18:19:49 +010018#include "exec/gdbstub.h"
Paolo Bonzini1de7afc2012-12-17 18:20:00 +010019#include "qemu/queue.h"
bellard66fb9762003-03-23 01:06:05 +000020
pbrookd5975362008-06-07 20:50:51 +000021#define THREAD __thread
pbrookd5975362008-06-07 20:50:51 +000022
bellard31e31b82003-02-18 22:55:36 +000023/* This struct is used to hold certain information about the image.
24 * Basically, it replicates in user space what would be certain
25 * task_struct fields in the kernel
26 */
27struct image_info {
Richard Henderson9955ffa2010-07-27 10:25:30 -070028 abi_ulong load_bias;
blueswir1992f48a2007-10-14 16:27:31 +000029 abi_ulong load_addr;
30 abi_ulong start_code;
31 abi_ulong end_code;
32 abi_ulong start_data;
33 abi_ulong end_data;
34 abi_ulong start_brk;
35 abi_ulong brk;
36 abi_ulong start_mmap;
blueswir1992f48a2007-10-14 16:27:31 +000037 abi_ulong start_stack;
Paul Brook97374d32010-06-16 13:03:51 +010038 abi_ulong stack_limit;
blueswir1992f48a2007-10-14 16:27:31 +000039 abi_ulong entry;
40 abi_ulong code_offset;
41 abi_ulong data_offset;
Mika Westerbergedf8e2a2009-04-07 09:57:11 +030042 abi_ulong saved_auxv;
Alexander Graf125b0f52012-01-28 21:12:14 +020043 abi_ulong auxv_len;
Mika Westerbergedf8e2a2009-04-07 09:57:11 +030044 abi_ulong arg_start;
45 abi_ulong arg_end;
Paul Brookd8fd2952012-03-30 18:02:50 +010046 uint32_t elf_flags;
bellard31e31b82003-02-18 22:55:36 +000047 int personality;
Mike Frysinger1af02e82011-02-07 01:05:50 -050048#ifdef CONFIG_USE_FDPIC
49 abi_ulong loadmap_addr;
50 uint16_t nsegs;
51 void *loadsegs;
52 abi_ulong pt_dynamic_addr;
53 struct image_info *other_info;
54#endif
bellard31e31b82003-02-18 22:55:36 +000055};
56
bellardb346ff42003-06-15 20:05:50 +000057#ifdef TARGET_I386
bellard851e67a2003-03-29 16:53:14 +000058/* Information about the current linux thread */
59struct vm86_saved_state {
60 uint32_t eax; /* return code */
61 uint32_t ebx;
62 uint32_t ecx;
63 uint32_t edx;
64 uint32_t esi;
65 uint32_t edi;
66 uint32_t ebp;
67 uint32_t esp;
68 uint32_t eflags;
69 uint32_t eip;
70 uint16_t cs, ss, ds, es, fs, gs;
71};
bellardb346ff42003-06-15 20:05:50 +000072#endif
bellard851e67a2003-03-29 16:53:14 +000073
Peter Maydell848d72c2013-09-03 20:12:17 +010074#if defined(TARGET_ARM) && defined(TARGET_ABI32)
bellard28c4f362004-02-16 21:47:43 +000075/* FPU emulator */
76#include "nwfpe/fpa11.h"
bellard28c4f362004-02-16 21:47:43 +000077#endif
78
pbrook624f7972008-05-31 16:11:38 +000079#define MAX_SIGQUEUE_SIZE 1024
80
81struct sigqueue {
82 struct sigqueue *next;
Anthony Liguoric227f092009-10-01 16:12:16 -050083 target_siginfo_t info;
pbrook624f7972008-05-31 16:11:38 +000084};
85
86struct emulated_sigtable {
87 int pending; /* true if signal is pending */
88 struct sigqueue *first;
89 struct sigqueue info; /* in order to always have memory for the
90 first signal, we put it here */
91};
92
bellard851e67a2003-03-29 16:53:14 +000093/* NOTE: we force a big alignment so that the stack stored after is
94 aligned too */
95typedef struct TaskState {
Mika Westerbergedf8e2a2009-04-07 09:57:11 +030096 pid_t ts_tid; /* tid (or pid) of this task */
bellard28c4f362004-02-16 21:47:43 +000097#ifdef TARGET_ARM
Peter Maydell848d72c2013-09-03 20:12:17 +010098# ifdef TARGET_ABI32
bellard28c4f362004-02-16 21:47:43 +000099 /* FPA state */
100 FPA11 fpa;
Peter Maydell848d72c2013-09-03 20:12:17 +0100101# endif
bellarda4f81972005-04-23 18:25:41 +0000102 int swi_errno;
bellard28c4f362004-02-16 21:47:43 +0000103#endif
Guan Xuetaod2fbca92011-04-12 16:27:03 +0800104#ifdef TARGET_UNICORE32
105 int swi_errno;
106#endif
j_mayer84409dd2007-04-06 08:56:50 +0000107#if defined(TARGET_I386) && !defined(TARGET_X86_64)
blueswir1992f48a2007-10-14 16:27:31 +0000108 abi_ulong target_v86;
bellard851e67a2003-03-29 16:53:14 +0000109 struct vm86_saved_state vm86_saved_regs;
bellardb333af02003-05-14 21:48:51 +0000110 struct target_vm86plus_struct vm86plus;
bellard631271d2003-05-10 13:14:52 +0000111 uint32_t v86flags;
112 uint32_t v86mask;
bellardb346ff42003-06-15 20:05:50 +0000113#endif
pbrookc2764712009-03-07 15:24:59 +0000114 abi_ulong child_tidptr;
pbrooke6e59062006-10-22 00:18:54 +0000115#ifdef TARGET_M68K
116 int sim_syscalls;
Peter Maydell1ccd9372013-07-16 18:44:55 +0100117 abi_ulong tp_value;
pbrooke6e59062006-10-22 00:18:54 +0000118#endif
Guan Xuetaod2fbca92011-04-12 16:27:03 +0800119#if defined(TARGET_ARM) || defined(TARGET_M68K) || defined(TARGET_UNICORE32)
pbrooka87295e2007-05-26 15:09:38 +0000120 /* Extra fields for semihosted binaries. */
pbrooka87295e2007-05-26 15:09:38 +0000121 uint32_t heap_base;
122 uint32_t heap_limit;
123#endif
Riku Voipiod0fd11f2012-01-28 22:00:17 +0200124 uint32_t stack_base;
bellard851e67a2003-03-29 16:53:14 +0000125 int used; /* non zero if used */
Peter Maydella7ec0f92014-03-14 14:36:56 +0000126 bool sigsegv_blocked; /* SIGSEGV blocked by guest */
pbrook978efd62006-06-17 18:30:42 +0000127 struct image_info *info;
Mika Westerbergedf8e2a2009-04-07 09:57:11 +0300128 struct linux_binprm *bprm;
pbrook624f7972008-05-31 16:11:38 +0000129
130 struct emulated_sigtable sigtab[TARGET_NSIG];
131 struct sigqueue sigqueue_table[MAX_SIGQUEUE_SIZE]; /* siginfo queue */
132 struct sigqueue *first_free; /* first free siginfo queue entry */
133 int signal_pending; /* non zero if a signal may be pending */
bellard851e67a2003-03-29 16:53:14 +0000134} __attribute__((aligned(16))) TaskState;
135
aurel32d088d662009-01-30 20:09:01 +0000136extern char *exec_path;
pbrook624f7972008-05-31 16:11:38 +0000137void init_task_state(TaskState *ts);
Mika Westerbergedf8e2a2009-04-07 09:57:11 +0300138void task_settid(TaskState *);
139void stop_all_tasks(void);
pbrookc5937222006-05-14 11:30:38 +0000140extern const char *qemu_uname_release;
Paul Brook379f6692009-07-17 12:48:08 +0100141extern unsigned long mmap_min_addr;
bellard851e67a2003-03-29 16:53:14 +0000142
pbrooke5fe0c52006-06-11 13:32:59 +0000143/* ??? See if we can avoid exposing so much of the loader internals. */
pbrooke5fe0c52006-06-11 13:32:59 +0000144
Richard Henderson9955ffa2010-07-27 10:25:30 -0700145/* Read a good amount of data initially, to hopefully get all the
146 program headers loaded. */
147#define BPRM_BUF_SIZE 1024
148
pbrooke5fe0c52006-06-11 13:32:59 +0000149/*
ths5fafdf22007-09-16 21:08:06 +0000150 * This structure is used to hold the arguments that are
pbrooke5fe0c52006-06-11 13:32:59 +0000151 * used when loading binaries.
152 */
153struct linux_binprm {
Richard Henderson9955ffa2010-07-27 10:25:30 -0700154 char buf[BPRM_BUF_SIZE] __attribute__((aligned));
blueswir1992f48a2007-10-14 16:27:31 +0000155 abi_ulong p;
pbrooke5fe0c52006-06-11 13:32:59 +0000156 int fd;
157 int e_uid, e_gid;
158 int argc, envc;
159 char **argv;
160 char **envp;
161 char * filename; /* Name of binary */
Andreas Färber9349b4f2012-03-14 01:38:32 +0100162 int (*core_dump)(int, const CPUArchState *); /* coredump routine */
pbrooke5fe0c52006-06-11 13:32:59 +0000163};
164
165void do_init_thread(struct target_pt_regs *regs, struct image_info *infop);
blueswir1992f48a2007-10-14 16:27:31 +0000166abi_ulong loader_build_argptr(int envc, int argc, abi_ulong sp,
167 abi_ulong stringp, int push_ptr);
Laurent Vivier03cfd8f2013-08-30 01:46:44 +0200168int loader_exec(int fdexec, const char *filename, char **argv, char **envp,
Mika Westerbergedf8e2a2009-04-07 09:57:11 +0300169 struct target_pt_regs * regs, struct image_info *infop,
170 struct linux_binprm *);
bellard31e31b82003-02-18 22:55:36 +0000171
Will Newtonf0116c52014-01-09 09:10:50 +0000172int load_elf_binary(struct linux_binprm *bprm, struct image_info *info);
173int load_flt_binary(struct linux_binprm *bprm, struct image_info *info);
pbrooke5fe0c52006-06-11 13:32:59 +0000174
bellard579a97f2007-11-11 14:26:47 +0000175abi_long memcpy_to_target(abi_ulong dest, const void *src,
176 unsigned long len);
blueswir1992f48a2007-10-14 16:27:31 +0000177void target_set_brk(abi_ulong new_brk);
178abi_long do_brk(abi_ulong new_brk);
bellard31e31b82003-02-18 22:55:36 +0000179void syscall_init(void);
blueswir1992f48a2007-10-14 16:27:31 +0000180abi_long do_syscall(void *cpu_env, int num, abi_long arg1,
181 abi_long arg2, abi_long arg3, abi_long arg4,
Peter Maydell5945cfc2011-06-16 17:37:13 +0100182 abi_long arg5, abi_long arg6, abi_long arg7,
183 abi_long arg8);
Stefan Weile5924d82010-09-23 21:28:03 +0200184void gemu_log(const char *fmt, ...) GCC_FMT_ATTR(1, 2);
Andreas Färbera2247f82013-06-09 19:47:04 +0200185extern THREAD CPUState *thread_cpu;
Andreas Färber9349b4f2012-03-14 01:38:32 +0100186void cpu_loop(CPUArchState *env);
thsb92c47c2007-11-01 00:07:38 +0000187char *target_strerror(int err);
pbrooka745ec62008-05-06 15:36:17 +0000188int get_osversion(void);
Peter Maydell4a24a752013-09-03 20:12:20 +0100189void init_qemu_uname_release(void);
pbrookd5975362008-06-07 20:50:51 +0000190void fork_start(void);
191void fork_end(int child);
bellard6977fbf2003-04-29 20:39:23 +0000192
Meador Ingedce10402012-07-26 16:50:01 +0000193/* Creates the initial guest address space in the host memory space using
194 * the given host start address hint and size. The guest_start parameter
195 * specifies the start address of the guest space. guest_base will be the
196 * difference between the host start address computed by this function and
197 * guest_start. If fixed is specified, then the mapped address space must
198 * start at host_start. The real start address of the mapped memory space is
199 * returned or -1 if there was an error.
200 */
201unsigned long init_guest_space(unsigned long host_start,
202 unsigned long host_size,
203 unsigned long guest_start,
204 bool fixed);
205
Paolo Bonzini1de7afc2012-12-17 18:20:00 +0100206#include "qemu/log.h"
bellard631271d2003-05-10 13:14:52 +0000207
Timothy E Baldwin4d330ce2016-05-12 18:47:46 +0100208/* safe_syscall.S */
209
210/**
211 * safe_syscall:
212 * @int number: number of system call to make
213 * ...: arguments to the system call
214 *
215 * Call a system call if guest signal not pending.
216 * This has the same API as the libc syscall() function, except that it
217 * may return -1 with errno == TARGET_ERESTARTSYS if a signal was pending.
218 *
219 * Returns: the system call result, or -1 with an error code in errno
220 * (Errnos are host errnos; we rely on TARGET_ERESTARTSYS not clashing
221 * with any of the host errno values.)
222 */
223
224/* A guide to using safe_syscall() to handle interactions between guest
225 * syscalls and guest signals:
226 *
227 * Guest syscalls come in two flavours:
228 *
229 * (1) Non-interruptible syscalls
230 *
231 * These are guest syscalls that never get interrupted by signals and
232 * so never return EINTR. They can be implemented straightforwardly in
233 * QEMU: just make sure that if the implementation code has to make any
234 * blocking calls that those calls are retried if they return EINTR.
235 * It's also OK to implement these with safe_syscall, though it will be
236 * a little less efficient if a signal is delivered at the 'wrong' moment.
237 *
238 * (2) Interruptible syscalls
239 *
240 * These are guest syscalls that can be interrupted by signals and
241 * for which we need to either return EINTR or arrange for the guest
242 * syscall to be restarted. This category includes both syscalls which
243 * always restart (and in the kernel return -ERESTARTNOINTR), ones
244 * which only restart if there is no handler (kernel returns -ERESTARTNOHAND
245 * or -ERESTART_RESTARTBLOCK), and the most common kind which restart
246 * if the handler was registered with SA_RESTART (kernel returns
247 * -ERESTARTSYS). System calls which are only interruptible in some
248 * situations (like 'open') also need to be handled this way.
249 *
250 * Here it is important that the host syscall is made
251 * via this safe_syscall() function, and *not* via the host libc.
252 * If the host libc is used then the implementation will appear to work
253 * most of the time, but there will be a race condition where a
254 * signal could arrive just before we make the host syscall inside libc,
255 * and then then guest syscall will not correctly be interrupted.
256 * Instead the implementation of the guest syscall can use the safe_syscall
257 * function but otherwise just return the result or errno in the usual
258 * way; the main loop code will take care of restarting the syscall
259 * if appropriate.
260 *
261 * (If the implementation needs to make multiple host syscalls this is
262 * OK; any which might really block must be via safe_syscall(); for those
263 * which are only technically blocking (ie which we know in practice won't
264 * stay in the host kernel indefinitely) it's OK to use libc if necessary.
265 * You must be able to cope with backing out correctly if some safe_syscall
266 * you make in the implementation returns either -TARGET_ERESTARTSYS or
267 * EINTR though.)
268 *
269 *
270 * How and why the safe_syscall implementation works:
271 *
272 * The basic setup is that we make the host syscall via a known
273 * section of host native assembly. If a signal occurs, our signal
274 * handler checks the interrupted host PC against the addresse of that
275 * known section. If the PC is before or at the address of the syscall
276 * instruction then we change the PC to point at a "return
277 * -TARGET_ERESTARTSYS" code path instead, and then exit the signal handler
278 * (causing the safe_syscall() call to immediately return that value).
279 * Then in the main.c loop if we see this magic return value we adjust
280 * the guest PC to wind it back to before the system call, and invoke
281 * the guest signal handler as usual.
282 *
283 * This winding-back will happen in two cases:
284 * (1) signal came in just before we took the host syscall (a race);
285 * in this case we'll take the guest signal and have another go
286 * at the syscall afterwards, and this is indistinguishable for the
287 * guest from the timing having been different such that the guest
288 * signal really did win the race
289 * (2) signal came in while the host syscall was blocking, and the
290 * host kernel decided the syscall should be restarted;
291 * in this case we want to restart the guest syscall also, and so
292 * rewinding is the right thing. (Note that "restart" semantics mean
293 * "first call the signal handler, then reattempt the syscall".)
294 * The other situation to consider is when a signal came in while the
295 * host syscall was blocking, and the host kernel decided that the syscall
296 * should not be restarted; in this case QEMU's host signal handler will
297 * be invoked with the PC pointing just after the syscall instruction,
298 * with registers indicating an EINTR return; the special code in the
299 * handler will not kick in, and we will return EINTR to the guest as
300 * we should.
301 *
302 * Notice that we can leave the host kernel to make the decision for
303 * us about whether to do a restart of the syscall or not; we do not
304 * need to check SA_RESTART flags in QEMU or distinguish the various
305 * kinds of restartability.
306 */
307#ifdef HAVE_SAFE_SYSCALL
308/* The core part of this function is implemented in assembly */
309extern long safe_syscall_base(int *pending, long number, ...);
310
311#define safe_syscall(...) \
312 ({ \
313 long ret_; \
314 int *psp_ = &((TaskState *)thread_cpu->opaque)->signal_pending; \
315 ret_ = safe_syscall_base(psp_, __VA_ARGS__); \
316 if (is_error(ret_)) { \
317 errno = -ret_; \
318 ret_ = -1; \
319 } \
320 ret_; \
321 })
322
323#else
324
325/* Fallback for architectures which don't yet provide a safe-syscall assembly
326 * fragment; note that this is racy!
327 * This should go away when all host architectures have been updated.
328 */
329#define safe_syscall syscall
330
331#endif
332
Richard Hendersona05c6402012-09-15 11:34:20 -0700333/* syscall.c */
334int host_to_target_waitstatus(int status);
335
thsb92c47c2007-11-01 00:07:38 +0000336/* strace.c */
337void print_syscall(int num,
bellardc16f9ed2007-11-11 17:23:29 +0000338 abi_long arg1, abi_long arg2, abi_long arg3,
339 abi_long arg4, abi_long arg5, abi_long arg6);
340void print_syscall_ret(int num, abi_long arg1);
thsb92c47c2007-11-01 00:07:38 +0000341extern int do_strace;
342
bellardb346ff42003-06-15 20:05:50 +0000343/* signal.c */
Andreas Färber9349b4f2012-03-14 01:38:32 +0100344void process_pending_signals(CPUArchState *cpu_env);
bellardb346ff42003-06-15 20:05:50 +0000345void signal_init(void);
Andreas Färber9349b4f2012-03-14 01:38:32 +0100346int queue_signal(CPUArchState *env, int sig, target_siginfo_t *info);
Anthony Liguoric227f092009-10-01 16:12:16 -0500347void host_to_target_siginfo(target_siginfo_t *tinfo, const siginfo_t *info);
348void target_to_host_siginfo(siginfo_t *info, const target_siginfo_t *tinfo);
pbrook4cb05962008-05-30 18:05:19 +0000349int target_to_host_signal(int sig);
pbrook1d9d8b52009-04-16 15:17:02 +0000350int host_to_target_signal(int sig);
Andreas Färber9349b4f2012-03-14 01:38:32 +0100351long do_sigreturn(CPUArchState *env);
352long do_rt_sigreturn(CPUArchState *env);
bellard579a97f2007-11-11 14:26:47 +0000353abi_long do_sigaltstack(abi_ulong uss_addr, abi_ulong uoss_addr, abi_ulong sp);
Alex Barcelo1c275922014-03-14 14:36:55 +0000354int do_sigprocmask(int how, const sigset_t *set, sigset_t *oldset);
bellardb346ff42003-06-15 20:05:50 +0000355
356#ifdef TARGET_I386
bellard631271d2003-05-10 13:14:52 +0000357/* vm86.c */
358void save_v86_state(CPUX86State *env);
bellard447db212003-05-10 15:10:36 +0000359void handle_vm86_trap(CPUX86State *env, int trapno);
bellard631271d2003-05-10 13:14:52 +0000360void handle_vm86_fault(CPUX86State *env);
blueswir1992f48a2007-10-14 16:27:31 +0000361int do_vm86(CPUX86State *env, long subfunction, abi_ulong v86_addr);
blueswir15bfb56b2007-10-05 17:01:51 +0000362#elif defined(TARGET_SPARC64)
363void sparc64_set_context(CPUSPARCState *env);
364void sparc64_get_context(CPUSPARCState *env);
bellardb346ff42003-06-15 20:05:50 +0000365#endif
bellard631271d2003-05-10 13:14:52 +0000366
bellard54936002003-05-13 00:25:15 +0000367/* mmap.c */
blueswir1992f48a2007-10-14 16:27:31 +0000368int target_mprotect(abi_ulong start, abi_ulong len, int prot);
369abi_long target_mmap(abi_ulong start, abi_ulong len, int prot,
370 int flags, int fd, abi_ulong offset);
371int target_munmap(abi_ulong start, abi_ulong len);
372abi_long target_mremap(abi_ulong old_addr, abi_ulong old_size,
373 abi_ulong new_size, unsigned long flags,
374 abi_ulong new_addr);
375int target_msync(abi_ulong start, abi_ulong len, int flags);
pbrook07765902008-05-31 16:33:53 +0000376extern unsigned long last_brk;
Peter Maydell59e9d912012-03-08 14:40:33 +0000377extern abi_ulong mmap_next_start;
Riku Voipio9ad197d2009-04-21 17:23:23 +0300378abi_ulong mmap_find_vma(abi_ulong, abi_ulong);
pbrookc2764712009-03-07 15:24:59 +0000379void cpu_list_lock(void);
380void cpu_list_unlock(void);
pbrookd5975362008-06-07 20:50:51 +0000381void mmap_fork_start(void);
382void mmap_fork_end(int child);
bellard54936002003-05-13 00:25:15 +0000383
blueswir1440c7e82008-10-05 11:05:14 +0000384/* main.c */
Richard Henderson703e0e82010-03-19 14:21:13 -0700385extern unsigned long guest_stack_size;
blueswir1440c7e82008-10-05 11:05:14 +0000386
bellardedf779f2004-02-22 13:40:13 +0000387/* user access */
388
389#define VERIFY_READ 0
bellard579a97f2007-11-11 14:26:47 +0000390#define VERIFY_WRITE 1 /* implies read access */
bellardedf779f2004-02-22 13:40:13 +0000391
bellarddae32702007-11-14 10:51:00 +0000392static inline int access_ok(int type, abi_ulong addr, abi_ulong size)
393{
394 return page_check_range((target_ulong)addr, size,
395 (type == VERIFY_READ) ? PAGE_READ : (PAGE_READ | PAGE_WRITE)) == 0;
396}
bellardedf779f2004-02-22 13:40:13 +0000397
Richard Henderson658f2dc2013-01-04 16:39:31 -0800398/* NOTE __get_user and __put_user use host pointers and don't check access.
399 These are usually used to access struct data members once the struct has
400 been locked - usually with lock_user_struct. */
bellardedf779f2004-02-22 13:40:13 +0000401
Richard Henderson658f2dc2013-01-04 16:39:31 -0800402/* Tricky points:
403 - Use __builtin_choose_expr to avoid type promotion from ?:,
404 - Invalid sizes result in a compile time error stemming from
405 the fact that abort has no parameters.
406 - It's easier to use the endian-specific unaligned load/store
407 functions than host-endian unaligned load/store plus tswapN. */
408
409#define __put_user_e(x, hptr, e) \
410 (__builtin_choose_expr(sizeof(*(hptr)) == 1, stb_p, \
411 __builtin_choose_expr(sizeof(*(hptr)) == 2, stw_##e##_p, \
412 __builtin_choose_expr(sizeof(*(hptr)) == 4, stl_##e##_p, \
413 __builtin_choose_expr(sizeof(*(hptr)) == 8, stq_##e##_p, abort)))) \
Riku Voipioa42267e2014-04-22 15:40:50 +0300414 ((hptr), (x)), (void)0)
Richard Henderson658f2dc2013-01-04 16:39:31 -0800415
416#define __get_user_e(x, hptr, e) \
Peter Maydell0bc8ce92013-01-31 12:50:40 +0000417 ((x) = (typeof(*hptr))( \
Richard Henderson658f2dc2013-01-04 16:39:31 -0800418 __builtin_choose_expr(sizeof(*(hptr)) == 1, ldub_p, \
419 __builtin_choose_expr(sizeof(*(hptr)) == 2, lduw_##e##_p, \
420 __builtin_choose_expr(sizeof(*(hptr)) == 4, ldl_##e##_p, \
421 __builtin_choose_expr(sizeof(*(hptr)) == 8, ldq_##e##_p, abort)))) \
Riku Voipioa42267e2014-04-22 15:40:50 +0300422 (hptr)), (void)0)
Richard Henderson658f2dc2013-01-04 16:39:31 -0800423
424#ifdef TARGET_WORDS_BIGENDIAN
425# define __put_user(x, hptr) __put_user_e(x, hptr, be)
426# define __get_user(x, hptr) __get_user_e(x, hptr, be)
427#else
428# define __put_user(x, hptr) __put_user_e(x, hptr, le)
429# define __get_user(x, hptr) __get_user_e(x, hptr, le)
430#endif
bellardedf779f2004-02-22 13:40:13 +0000431
bellard579a97f2007-11-11 14:26:47 +0000432/* put_user()/get_user() take a guest address and check access */
433/* These are usually used to access an atomic data type, such as an int,
434 * that has been passed by address. These internally perform locking
435 * and unlocking on the data type.
436 */
437#define put_user(x, gaddr, target_type) \
438({ \
439 abi_ulong __gaddr = (gaddr); \
440 target_type *__hptr; \
Riku Voipioa42267e2014-04-22 15:40:50 +0300441 abi_long __ret = 0; \
bellard579a97f2007-11-11 14:26:47 +0000442 if ((__hptr = lock_user(VERIFY_WRITE, __gaddr, sizeof(target_type), 0))) { \
Riku Voipioa42267e2014-04-22 15:40:50 +0300443 __put_user((x), __hptr); \
bellard579a97f2007-11-11 14:26:47 +0000444 unlock_user(__hptr, __gaddr, sizeof(target_type)); \
445 } else \
446 __ret = -TARGET_EFAULT; \
447 __ret; \
bellardedf779f2004-02-22 13:40:13 +0000448})
449
bellard579a97f2007-11-11 14:26:47 +0000450#define get_user(x, gaddr, target_type) \
451({ \
452 abi_ulong __gaddr = (gaddr); \
453 target_type *__hptr; \
Riku Voipioa42267e2014-04-22 15:40:50 +0300454 abi_long __ret = 0; \
bellard579a97f2007-11-11 14:26:47 +0000455 if ((__hptr = lock_user(VERIFY_READ, __gaddr, sizeof(target_type), 1))) { \
Riku Voipioa42267e2014-04-22 15:40:50 +0300456 __get_user((x), __hptr); \
bellard579a97f2007-11-11 14:26:47 +0000457 unlock_user(__hptr, __gaddr, 0); \
bellard2f619692007-11-16 10:46:05 +0000458 } else { \
459 /* avoid warning */ \
460 (x) = 0; \
bellard579a97f2007-11-11 14:26:47 +0000461 __ret = -TARGET_EFAULT; \
bellard2f619692007-11-16 10:46:05 +0000462 } \
bellard579a97f2007-11-11 14:26:47 +0000463 __ret; \
bellardedf779f2004-02-22 13:40:13 +0000464})
465
bellard2f619692007-11-16 10:46:05 +0000466#define put_user_ual(x, gaddr) put_user((x), (gaddr), abi_ulong)
467#define put_user_sal(x, gaddr) put_user((x), (gaddr), abi_long)
468#define put_user_u64(x, gaddr) put_user((x), (gaddr), uint64_t)
469#define put_user_s64(x, gaddr) put_user((x), (gaddr), int64_t)
470#define put_user_u32(x, gaddr) put_user((x), (gaddr), uint32_t)
471#define put_user_s32(x, gaddr) put_user((x), (gaddr), int32_t)
472#define put_user_u16(x, gaddr) put_user((x), (gaddr), uint16_t)
473#define put_user_s16(x, gaddr) put_user((x), (gaddr), int16_t)
474#define put_user_u8(x, gaddr) put_user((x), (gaddr), uint8_t)
475#define put_user_s8(x, gaddr) put_user((x), (gaddr), int8_t)
476
477#define get_user_ual(x, gaddr) get_user((x), (gaddr), abi_ulong)
478#define get_user_sal(x, gaddr) get_user((x), (gaddr), abi_long)
479#define get_user_u64(x, gaddr) get_user((x), (gaddr), uint64_t)
480#define get_user_s64(x, gaddr) get_user((x), (gaddr), int64_t)
481#define get_user_u32(x, gaddr) get_user((x), (gaddr), uint32_t)
482#define get_user_s32(x, gaddr) get_user((x), (gaddr), int32_t)
483#define get_user_u16(x, gaddr) get_user((x), (gaddr), uint16_t)
484#define get_user_s16(x, gaddr) get_user((x), (gaddr), int16_t)
485#define get_user_u8(x, gaddr) get_user((x), (gaddr), uint8_t)
486#define get_user_s8(x, gaddr) get_user((x), (gaddr), int8_t)
487
bellard579a97f2007-11-11 14:26:47 +0000488/* copy_from_user() and copy_to_user() are usually used to copy data
489 * buffers between the target and host. These internally perform
490 * locking/unlocking of the memory.
491 */
492abi_long copy_from_user(void *hptr, abi_ulong gaddr, size_t len);
493abi_long copy_to_user(abi_ulong gaddr, void *hptr, size_t len);
494
pbrook53a59602006-03-25 19:31:22 +0000495/* Functions for accessing guest memory. The tget and tput functions
Stefan Weil6f20f552013-09-12 19:57:15 +0200496 read/write single values, byteswapping as necessary. The lock_user function
pbrook53a59602006-03-25 19:31:22 +0000497 gets a pointer to a contiguous area of guest memory, but does not perform
Stefan Weil6f20f552013-09-12 19:57:15 +0200498 any byteswapping. lock_user may return either a pointer to the guest
pbrook53a59602006-03-25 19:31:22 +0000499 memory, or a temporary buffer. */
500
501/* Lock an area of guest memory into the host. If copy is true then the
502 host area will have the same contents as the guest. */
bellard579a97f2007-11-11 14:26:47 +0000503static inline void *lock_user(int type, abi_ulong guest_addr, long len, int copy)
bellardedf779f2004-02-22 13:40:13 +0000504{
bellard579a97f2007-11-11 14:26:47 +0000505 if (!access_ok(type, guest_addr, len))
506 return NULL;
pbrook53a59602006-03-25 19:31:22 +0000507#ifdef DEBUG_REMAP
bellard579a97f2007-11-11 14:26:47 +0000508 {
509 void *addr;
510 addr = malloc(len);
511 if (copy)
512 memcpy(addr, g2h(guest_addr), len);
513 else
514 memset(addr, 0, len);
515 return addr;
516 }
pbrook53a59602006-03-25 19:31:22 +0000517#else
518 return g2h(guest_addr);
519#endif
bellardedf779f2004-02-22 13:40:13 +0000520}
521
bellard579a97f2007-11-11 14:26:47 +0000522/* Unlock an area of guest memory. The first LEN bytes must be
ths1235fc02008-06-03 19:51:57 +0000523 flushed back to guest memory. host_ptr = NULL is explicitly
bellard579a97f2007-11-11 14:26:47 +0000524 allowed and does nothing. */
525static inline void unlock_user(void *host_ptr, abi_ulong guest_addr,
blueswir1992f48a2007-10-14 16:27:31 +0000526 long len)
bellardedf779f2004-02-22 13:40:13 +0000527{
bellard579a97f2007-11-11 14:26:47 +0000528
pbrook53a59602006-03-25 19:31:22 +0000529#ifdef DEBUG_REMAP
bellard579a97f2007-11-11 14:26:47 +0000530 if (!host_ptr)
531 return;
532 if (host_ptr == g2h(guest_addr))
pbrook53a59602006-03-25 19:31:22 +0000533 return;
534 if (len > 0)
balrog06177d32007-12-24 13:47:52 +0000535 memcpy(g2h(guest_addr), host_ptr, len);
bellard579a97f2007-11-11 14:26:47 +0000536 free(host_ptr);
pbrook53a59602006-03-25 19:31:22 +0000537#endif
bellardedf779f2004-02-22 13:40:13 +0000538}
539
bellard579a97f2007-11-11 14:26:47 +0000540/* Return the length of a string in target memory or -TARGET_EFAULT if
541 access error. */
542abi_long target_strlen(abi_ulong gaddr);
bellardedf779f2004-02-22 13:40:13 +0000543
pbrook53a59602006-03-25 19:31:22 +0000544/* Like lock_user but for null terminated strings. */
blueswir1992f48a2007-10-14 16:27:31 +0000545static inline void *lock_user_string(abi_ulong guest_addr)
pbrook53a59602006-03-25 19:31:22 +0000546{
bellard579a97f2007-11-11 14:26:47 +0000547 abi_long len;
548 len = target_strlen(guest_addr);
549 if (len < 0)
550 return NULL;
551 return lock_user(VERIFY_READ, guest_addr, (long)(len + 1), 1);
pbrook53a59602006-03-25 19:31:22 +0000552}
553
Stefan Weil41d1af42013-09-12 19:57:41 +0200554/* Helper macros for locking/unlocking a target struct. */
bellard579a97f2007-11-11 14:26:47 +0000555#define lock_user_struct(type, host_ptr, guest_addr, copy) \
556 (host_ptr = lock_user(type, guest_addr, sizeof(*host_ptr), copy))
557#define unlock_user_struct(host_ptr, guest_addr, copy) \
pbrook53a59602006-03-25 19:31:22 +0000558 unlock_user(host_ptr, guest_addr, (copy) ? sizeof(*host_ptr) : 0)
559
pbrookc8a706f2008-06-02 16:16:42 +0000560#include <pthread.h>
pbrookc8a706f2008-06-02 16:16:42 +0000561
Peter Maydelldfeab062013-07-16 18:44:52 +0100562/* Include target-specific struct and function definitions;
563 * they may need access to the target-independent structures
564 * above, so include them last.
565 */
566#include "target_cpu.h"
567#include "target_signal.h"
Petar Jovanovic55a2b162013-10-30 14:46:31 +0100568#include "target_structs.h"
Peter Maydelldfeab062013-07-16 18:44:52 +0100569
bellarde88de092005-02-07 12:35:39 +0000570#endif /* QEMU_H */