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root/cebix/SheepShaver/src/Unix/main_unix.cpp
Revision: 1.22
Committed: 2004-01-04T05:45:50Z (20 years, 5 months ago) by gbeauche
Branch: MAIN
Changes since 1.21: +6 -0 lines
Log Message:
Fix ADB problems with unitinialized mutex

File Contents

# User Rev Content
1 cebix 1.1 /*
2     * main_unix.cpp - Emulation core, Unix implementation
3     *
4     * SheepShaver (C) 1997-2002 Christian Bauer and Marc Hellwig
5     *
6     * This program is free software; you can redistribute it and/or modify
7     * it under the terms of the GNU General Public License as published by
8     * the Free Software Foundation; either version 2 of the License, or
9     * (at your option) any later version.
10     *
11     * This program 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
14     * GNU General Public License for more details.
15     *
16     * You should have received a copy of the GNU General Public License
17     * along with this program; if not, write to the Free Software
18     * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
19     */
20    
21     /*
22     * NOTES:
23     *
24     * See main_beos.cpp for a description of the three operating modes.
25     *
26     * In addition to that, we have to handle the fact that the MacOS ABI
27     * is slightly different from the SysV ABI used by Linux:
28     * - Stack frames are different (e.g. LR is stored in 8(r1) under
29     * MacOS, but in 4(r1) under Linux)
30     * - There is no TOC under Linux; r2 is free for the user
31     * - r13 is used as a small data pointer under Linux (but appearently
32     * it is not used this way? To be sure, we specify -msdata=none
33     * in the Makefile)
34     * - As there is no TOC, there are also no TVECTs under Linux;
35     * function pointers point directly to the function code
36     * The Execute*() functions have to account for this. Additionally, we
37     * cannot simply call MacOS functions by getting their TVECT and jumping
38     * to it. Such calls are done via the call_macos*() functions in
39     * asm_linux.S that create a MacOS stack frame, load the TOC pointer
40     * and put the arguments into the right registers.
41     *
42     * As on the BeOS, we have to specify an alternate signal stack because
43     * interrupts (and, under Linux, Low Memory accesses) may occur when r1
44     * is pointing to the Kernel Data or to Low Memory. There is one
45     * problem, however, due to the alternate signal stack being global to
46     * all signal handlers. Consider the following scenario:
47     * - The main thread is executing some native PPC MacOS code in
48     * MODE_NATIVE, running on the MacOS stack (somewhere in the Mac RAM).
49     * - A SIGUSR2 interrupt occurs. The kernel switches to the signal
50     * stack and starts executing the SIGUSR2 signal handler.
51     * - The signal handler sees the MODE_NATIVE and calls ppc_interrupt()
52     * to handle a native interrupt.
53     * - ppc_interrupt() sets r1 to point to the Kernel Data and jumps to
54     * the nanokernel.
55     * - The nanokernel accesses a Low Memory global (most likely one of
56     * the XLMs), a SIGSEGV occurs.
57     * - The kernel sees that r1 does not point to the signal stack and
58     * switches to the signal stack again, thus overwriting the data that
59     * the SIGUSR2 handler put there.
60     * The same problem arises when calling ExecutePPC() inside the MODE_EMUL_OP
61     * interrupt handler.
62     *
63     * The solution is to set the signal stack to a second, "extra" stack
64     * inside the SIGUSR2 handler before entering the Nanokernel or calling
65     * ExecutePPC (or any function that might cause a mode switch). The signal
66     * stack is restored before exiting the SIGUSR2 handler.
67     *
68     * TODO:
69     * check if SIGSEGV handler works for all registers (including FP!)
70     */
71    
72     #include <unistd.h>
73     #include <fcntl.h>
74     #include <time.h>
75     #include <errno.h>
76     #include <stdio.h>
77     #include <stdlib.h>
78     #include <string.h>
79     #include <pthread.h>
80     #include <sys/mman.h>
81     #include <sys/ipc.h>
82     #include <sys/shm.h>
83     #include <signal.h>
84    
85     #include "sysdeps.h"
86     #include "main.h"
87     #include "version.h"
88     #include "prefs.h"
89     #include "prefs_editor.h"
90     #include "cpu_emulation.h"
91     #include "emul_op.h"
92     #include "xlowmem.h"
93     #include "xpram.h"
94     #include "timer.h"
95     #include "adb.h"
96     #include "sony.h"
97     #include "disk.h"
98     #include "cdrom.h"
99     #include "scsi.h"
100     #include "video.h"
101     #include "audio.h"
102     #include "ether.h"
103     #include "serial.h"
104     #include "clip.h"
105     #include "extfs.h"
106     #include "sys.h"
107     #include "macos_util.h"
108     #include "rom_patches.h"
109     #include "user_strings.h"
110 gbeauche 1.4 #include "vm_alloc.h"
111 gbeauche 1.5 #include "sigsegv.h"
112 gbeauche 1.15 #include "thunks.h"
113 cebix 1.1
114     #define DEBUG 0
115     #include "debug.h"
116    
117    
118     #include <X11/Xlib.h>
119    
120     #ifdef ENABLE_GTK
121     #include <gtk/gtk.h>
122     #endif
123    
124     #ifdef ENABLE_XF86_DGA
125     #include <X11/Xlib.h>
126     #include <X11/Xutil.h>
127     #include <X11/extensions/xf86dga.h>
128     #endif
129    
130     #ifdef ENABLE_MON
131     #include "mon.h"
132     #endif
133    
134    
135     // Enable Execute68k() safety checks?
136     #define SAFE_EXEC_68K 0
137    
138     // Interrupts in EMUL_OP mode?
139     #define INTERRUPTS_IN_EMUL_OP_MODE 1
140    
141     // Interrupts in native mode?
142     #define INTERRUPTS_IN_NATIVE_MODE 1
143    
144    
145     // Constants
146     const char ROM_FILE_NAME[] = "ROM";
147     const char ROM_FILE_NAME2[] = "Mac OS ROM";
148    
149 gbeauche 1.15 const uintptr RAM_BASE = 0x20000000; // Base address of RAM
150 cebix 1.1 const uint32 SIG_STACK_SIZE = 0x10000; // Size of signal stack
151    
152    
153     #if !EMULATED_PPC
154     // Structure in which registers are saved in a signal handler;
155     // sigcontext->regs points to it
156     // (see arch/ppc/kernel/signal.c)
157     typedef struct {
158     uint32 u[4];
159     } __attribute((aligned(16))) vector128;
160     #include <linux/elf.h>
161    
162     struct sigregs {
163     elf_gregset_t gp_regs; // Identical to pt_regs
164     double fp_regs[ELF_NFPREG]; // f0..f31 and fpsrc
165     //more (uninteresting) stuff following here
166     };
167     #endif
168    
169    
170     // Global variables (exported)
171     #if !EMULATED_PPC
172     void *TOC; // Small data pointer (r13)
173     #endif
174     uint32 RAMBase; // Base address of Mac RAM
175     uint32 RAMSize; // Size of Mac RAM
176     uint32 KernelDataAddr; // Address of Kernel Data
177     uint32 BootGlobsAddr; // Address of BootGlobs structure at top of Mac RAM
178     uint32 PVR; // Theoretical PVR
179     int64 CPUClockSpeed; // Processor clock speed (Hz)
180     int64 BusClockSpeed; // Bus clock speed (Hz)
181    
182    
183     // Global variables
184 gbeauche 1.11 char *x_display_name = NULL; // X11 display name
185 cebix 1.1 Display *x_display = NULL; // X11 display handle
186 gbeauche 1.21 #ifdef X11_LOCK_TYPE
187     X11_LOCK_TYPE x_display_lock = X11_LOCK_INIT; // X11 display lock
188     #endif
189 cebix 1.1
190     static int zero_fd = 0; // FD of /dev/zero
191     static bool lm_area_mapped = false; // Flag: Low Memory area mmap()ped
192     static int kernel_area = -1; // SHM ID of Kernel Data area
193     static bool rom_area_mapped = false; // Flag: Mac ROM mmap()ped
194     static bool ram_area_mapped = false; // Flag: Mac RAM mmap()ped
195     static KernelData *kernel_data; // Pointer to Kernel Data
196     static EmulatorData *emulator_data;
197    
198     static uint8 last_xpram[XPRAM_SIZE]; // Buffer for monitoring XPRAM changes
199    
200     static bool nvram_thread_active = false; // Flag: NVRAM watchdog installed
201     static pthread_t nvram_thread; // NVRAM watchdog
202     static bool tick_thread_active = false; // Flag: MacOS thread installed
203     static pthread_t tick_thread; // 60Hz thread
204     static pthread_t emul_thread; // MacOS thread
205    
206     static bool ready_for_signals = false; // Handler installed, signals can be sent
207     static int64 num_segv = 0; // Number of handled SEGV signals
208    
209 gbeauche 1.6 static struct sigaction sigusr2_action; // Interrupt signal (of emulator thread)
210 gbeauche 1.20 #if EMULATED_PPC
211     static uintptr sig_stack = 0; // Stack for PowerPC interrupt routine
212     #else
213 cebix 1.1 static struct sigaction sigsegv_action; // Data access exception signal (of emulator thread)
214     static struct sigaction sigill_action; // Illegal instruction signal (of emulator thread)
215     static void *sig_stack = NULL; // Stack for signal handlers
216     static void *extra_stack = NULL; // Stack for SIGSEGV inside interrupt handler
217     static bool emul_thread_fatal = false; // Flag: MacOS thread crashed, tick thread shall dump debug output
218     static sigregs sigsegv_regs; // Register dump when crashed
219     #endif
220    
221 gbeauche 1.18 uintptr SheepMem::zero_page = 0; // Address of ro page filled in with zeros
222 gbeauche 1.15 uintptr SheepMem::base = 0x60000000; // Address of SheepShaver data
223     uintptr SheepMem::top = 0; // Top of SheepShaver data (stack like storage)
224    
225 cebix 1.1
226     // Prototypes
227     static void Quit(void);
228     static void *emul_func(void *arg);
229     static void *nvram_func(void *arg);
230     static void *tick_func(void *arg);
231 gbeauche 1.8 #if EMULATED_PPC
232     static void sigusr2_handler(int sig);
233 gbeauche 1.13 extern void emul_ppc(uint32 start);
234     extern void init_emul_ppc(void);
235     extern void exit_emul_ppc(void);
236 gbeauche 1.8 #else
237 gbeauche 1.6 static void sigusr2_handler(int sig, sigcontext_struct *sc);
238 cebix 1.1 static void sigsegv_handler(int sig, sigcontext_struct *sc);
239     static void sigill_handler(int sig, sigcontext_struct *sc);
240     #endif
241    
242    
243     // From asm_linux.S
244 gbeauche 1.12 #if !EMULATED_PPC
245 cebix 1.1 extern "C" void *get_toc(void);
246     extern "C" void *get_sp(void);
247     extern "C" void flush_icache_range(void *start, void *end);
248     extern "C" void jump_to_rom(uint32 entry, uint32 context);
249     extern "C" void quit_emulator(void);
250     extern "C" void execute_68k(uint32 pc, M68kRegisters *r);
251     extern "C" void ppc_interrupt(uint32 entry, uint32 kernel_data);
252     extern "C" int atomic_add(int *var, int v);
253     extern "C" int atomic_and(int *var, int v);
254     extern "C" int atomic_or(int *var, int v);
255     extern void paranoia_check(void);
256 gbeauche 1.12 #endif
257    
258    
259     #if EMULATED_PPC
260     /*
261 gbeauche 1.20 * Return signal stack base
262     */
263    
264     uintptr SignalStackBase(void)
265     {
266     return sig_stack + SIG_STACK_SIZE;
267     }
268    
269    
270     /*
271 gbeauche 1.12 * Atomic operations
272     */
273    
274     #if HAVE_SPINLOCKS
275     static spinlock_t atomic_ops_lock = SPIN_LOCK_UNLOCKED;
276     #else
277     #define spin_lock(LOCK)
278     #define spin_unlock(LOCK)
279     #endif
280    
281     int atomic_add(int *var, int v)
282     {
283     spin_lock(&atomic_ops_lock);
284     int ret = *var;
285     *var += v;
286     spin_unlock(&atomic_ops_lock);
287     return ret;
288     }
289    
290     int atomic_and(int *var, int v)
291     {
292     spin_lock(&atomic_ops_lock);
293     int ret = *var;
294     *var &= v;
295     spin_unlock(&atomic_ops_lock);
296     return ret;
297     }
298    
299     int atomic_or(int *var, int v)
300     {
301     spin_lock(&atomic_ops_lock);
302     int ret = *var;
303     *var |= v;
304     spin_unlock(&atomic_ops_lock);
305     return ret;
306     }
307 cebix 1.1 #endif
308    
309    
310     /*
311     * Main program
312     */
313    
314     static void usage(const char *prg_name)
315     {
316     printf("Usage: %s [OPTION...]\n", prg_name);
317     printf("\nUnix options:\n");
318     printf(" --display STRING\n X display to use\n");
319     PrefsPrintUsage();
320     exit(0);
321     }
322    
323     int main(int argc, char **argv)
324     {
325     char str[256];
326     uint32 *boot_globs;
327     int16 i16;
328     int rom_fd;
329     FILE *proc_file;
330     const char *rom_path;
331     uint32 rom_size, actual;
332     uint8 *rom_tmp;
333     time_t now, expire;
334    
335     // Initialize variables
336     RAMBase = 0;
337     tzset();
338    
339     // Print some info
340     printf(GetString(STR_ABOUT_TEXT1), VERSION_MAJOR, VERSION_MINOR);
341     printf(" %s\n", GetString(STR_ABOUT_TEXT2));
342    
343     #if !EMULATED_PPC
344     // Get TOC pointer
345     TOC = get_toc();
346     #endif
347    
348     #ifdef ENABLE_GTK
349     // Init GTK
350     gtk_set_locale();
351     gtk_init(&argc, &argv);
352     #endif
353    
354     // Read preferences
355     PrefsInit(argc, argv);
356    
357     // Parse command line arguments
358     for (int i=1; i<argc; i++) {
359     if (strcmp(argv[i], "--help") == 0) {
360     usage(argv[0]);
361     } else if (strcmp(argv[i], "--display") == 0) {
362     i++;
363     if (i < argc)
364     x_display_name = strdup(argv[i]);
365     } else if (argv[i][0] == '-') {
366     fprintf(stderr, "Unrecognized option '%s'\n", argv[i]);
367     usage(argv[0]);
368     }
369     }
370    
371     // Open display
372     x_display = XOpenDisplay(x_display_name);
373     if (x_display == NULL) {
374     char str[256];
375     sprintf(str, GetString(STR_NO_XSERVER_ERR), XDisplayName(x_display_name));
376     ErrorAlert(str);
377     goto quit;
378     }
379    
380     #if defined(ENABLE_XF86_DGA) && !defined(ENABLE_MON)
381     // Fork out, so we can return from fullscreen mode when things get ugly
382     XF86DGAForkApp(DefaultScreen(x_display));
383     #endif
384    
385     #ifdef ENABLE_MON
386     // Initialize mon
387     mon_init();
388     #endif
389    
390     // Get system info
391     PVR = 0x00040000; // Default: 604
392     CPUClockSpeed = 100000000; // Default: 100MHz
393     BusClockSpeed = 100000000; // Default: 100MHz
394     #if !EMULATED_PPC
395     proc_file = fopen("/proc/cpuinfo", "r");
396     if (proc_file) {
397     char line[256];
398     while(fgets(line, 255, proc_file)) {
399     // Read line
400     int len = strlen(line);
401     if (len == 0)
402     continue;
403     line[len-1] = 0;
404    
405     // Parse line
406     int i;
407     char value[256];
408     if (sscanf(line, "cpu : %s", value) == 1) {
409     if (strcmp(value, "601") == 0)
410     PVR = 0x00010000;
411     else if (strcmp(value, "603") == 0)
412     PVR = 0x00030000;
413     else if (strcmp(value, "604") == 0)
414     PVR = 0x00040000;
415     else if (strcmp(value, "603e") == 0)
416     PVR = 0x00060000;
417     else if (strcmp(value, "603ev") == 0)
418     PVR = 0x00070000;
419     else if (strcmp(value, "604e") == 0)
420     PVR = 0x00090000;
421     else if (strcmp(value, "604ev5") == 0)
422     PVR = 0x000a0000;
423     else if (strcmp(value, "750") == 0)
424     PVR = 0x00080000;
425     else if (strcmp(value, "821") == 0)
426     PVR = 0x00320000;
427     else if (strcmp(value, "860") == 0)
428     PVR = 0x00500000;
429     else
430     printf("WARNING: Unknown CPU type '%s', assuming 604\n", value);
431     }
432     if (sscanf(line, "clock : %dMHz", &i) == 1)
433     CPUClockSpeed = BusClockSpeed = i * 1000000;
434     }
435     fclose(proc_file);
436     } else {
437     sprintf(str, GetString(STR_PROC_CPUINFO_WARN), strerror(errno));
438     WarningAlert(str);
439     }
440     #endif
441     D(bug("PVR: %08x (assumed)\n", PVR));
442    
443     // Init system routines
444     SysInit();
445    
446     // Show preferences editor
447     if (!PrefsFindBool("nogui"))
448     if (!PrefsEditor())
449     goto quit;
450    
451     #if !EMULATED_PPC
452     // Check some things
453     paranoia_check();
454     #endif
455    
456     // Open /dev/zero
457     zero_fd = open("/dev/zero", O_RDWR);
458     if (zero_fd < 0) {
459     sprintf(str, GetString(STR_NO_DEV_ZERO_ERR), strerror(errno));
460     ErrorAlert(str);
461     goto quit;
462     }
463    
464     // Create Low Memory area (0x0000..0x3000)
465 gbeauche 1.4 if (vm_acquire_fixed((char *)0, 0x3000) < 0) {
466 cebix 1.1 sprintf(str, GetString(STR_LOW_MEM_MMAP_ERR), strerror(errno));
467     ErrorAlert(str);
468     goto quit;
469     }
470     lm_area_mapped = true;
471    
472     // Create areas for Kernel Data
473     kernel_area = shmget(IPC_PRIVATE, KERNEL_AREA_SIZE, 0600);
474     if (kernel_area == -1) {
475     sprintf(str, GetString(STR_KD_SHMGET_ERR), strerror(errno));
476     ErrorAlert(str);
477     goto quit;
478     }
479     if (shmat(kernel_area, (void *)KERNEL_DATA_BASE, 0) < 0) {
480     sprintf(str, GetString(STR_KD_SHMAT_ERR), strerror(errno));
481     ErrorAlert(str);
482     goto quit;
483     }
484     if (shmat(kernel_area, (void *)KERNEL_DATA2_BASE, 0) < 0) {
485     sprintf(str, GetString(STR_KD2_SHMAT_ERR), strerror(errno));
486     ErrorAlert(str);
487     goto quit;
488     }
489 gbeauche 1.15 kernel_data = (KernelData *)KERNEL_DATA_BASE;
490 cebix 1.1 emulator_data = &kernel_data->ed;
491 gbeauche 1.15 KernelDataAddr = KERNEL_DATA_BASE;
492 cebix 1.1 D(bug("Kernel Data at %p, Emulator Data at %p\n", kernel_data, emulator_data));
493    
494 gbeauche 1.8 // Create area for SheepShaver data
495 gbeauche 1.15 if (!SheepMem::Init()) {
496 gbeauche 1.8 sprintf(str, GetString(STR_SHEEP_MEM_MMAP_ERR), strerror(errno));
497     ErrorAlert(str);
498     goto quit;
499     }
500    
501 cebix 1.1 // Create area for Mac ROM
502 gbeauche 1.4 if (vm_acquire_fixed((char *)ROM_BASE, ROM_AREA_SIZE) < 0) {
503 cebix 1.1 sprintf(str, GetString(STR_ROM_MMAP_ERR), strerror(errno));
504     ErrorAlert(str);
505     goto quit;
506     }
507 gbeauche 1.6 #if !EMULATED_PPC || defined(__powerpc__)
508 gbeauche 1.4 if (vm_protect((char *)ROM_BASE, ROM_AREA_SIZE, VM_PAGE_READ | VM_PAGE_WRITE | VM_PAGE_EXECUTE) < 0) {
509     sprintf(str, GetString(STR_ROM_MMAP_ERR), strerror(errno));
510     ErrorAlert(str);
511     goto quit;
512     }
513     #endif
514 cebix 1.1 rom_area_mapped = true;
515     D(bug("ROM area at %08x\n", ROM_BASE));
516    
517     // Create area for Mac RAM
518     RAMSize = PrefsFindInt32("ramsize");
519     if (RAMSize < 8*1024*1024) {
520     WarningAlert(GetString(STR_SMALL_RAM_WARN));
521     RAMSize = 8*1024*1024;
522     }
523    
524 gbeauche 1.8 if (vm_acquire_fixed((char *)RAM_BASE, RAMSize) < 0) {
525 cebix 1.1 sprintf(str, GetString(STR_RAM_MMAP_ERR), strerror(errno));
526     ErrorAlert(str);
527     goto quit;
528     }
529 gbeauche 1.4 #if !EMULATED_PPC
530 gbeauche 1.8 if (vm_protect((char *)RAM_BASE, RAMSize, VM_PAGE_READ | VM_PAGE_WRITE | VM_PAGE_EXECUTE) < 0) {
531 gbeauche 1.4 sprintf(str, GetString(STR_RAM_MMAP_ERR), strerror(errno));
532     ErrorAlert(str);
533     goto quit;
534     }
535     #endif
536 gbeauche 1.8 RAMBase = RAM_BASE;
537 cebix 1.1 ram_area_mapped = true;
538     D(bug("RAM area at %08x\n", RAMBase));
539    
540     if (RAMBase > ROM_BASE) {
541     ErrorAlert(GetString(STR_RAM_HIGHER_THAN_ROM_ERR));
542     goto quit;
543     }
544    
545     // Load Mac ROM
546     rom_path = PrefsFindString("rom");
547     rom_fd = open(rom_path ? rom_path : ROM_FILE_NAME, O_RDONLY);
548     if (rom_fd < 0) {
549     rom_fd = open(rom_path ? rom_path : ROM_FILE_NAME2, O_RDONLY);
550     if (rom_fd < 0) {
551     ErrorAlert(GetString(STR_NO_ROM_FILE_ERR));
552     goto quit;
553     }
554     }
555     printf(GetString(STR_READING_ROM_FILE));
556     rom_size = lseek(rom_fd, 0, SEEK_END);
557     lseek(rom_fd, 0, SEEK_SET);
558     rom_tmp = new uint8[ROM_SIZE];
559     actual = read(rom_fd, (void *)rom_tmp, ROM_SIZE);
560     close(rom_fd);
561 gbeauche 1.3
562     // Decode Mac ROM
563     if (!DecodeROM(rom_tmp, actual)) {
564     if (rom_size != 4*1024*1024) {
565 cebix 1.1 ErrorAlert(GetString(STR_ROM_SIZE_ERR));
566     goto quit;
567     } else {
568     ErrorAlert(GetString(STR_ROM_FILE_READ_ERR));
569     goto quit;
570     }
571     }
572 gbeauche 1.3 delete[] rom_tmp;
573 cebix 1.1
574     // Load NVRAM
575     XPRAMInit();
576    
577     // Set boot volume
578 cebix 1.10 i16 = PrefsFindInt32("bootdrive");
579 cebix 1.1 XPRAM[0x1378] = i16 >> 8;
580     XPRAM[0x1379] = i16 & 0xff;
581 cebix 1.10 i16 = PrefsFindInt32("bootdriver");
582 cebix 1.1 XPRAM[0x137a] = i16 >> 8;
583     XPRAM[0x137b] = i16 & 0xff;
584    
585     // Create BootGlobs at top of Mac memory
586     memset((void *)(RAMBase + RAMSize - 4096), 0, 4096);
587     BootGlobsAddr = RAMBase + RAMSize - 0x1c;
588     boot_globs = (uint32 *)BootGlobsAddr;
589     boot_globs[-5] = htonl(RAMBase + RAMSize); // MemTop
590     boot_globs[0] = htonl(RAMBase); // First RAM bank
591     boot_globs[1] = htonl(RAMSize);
592     boot_globs[2] = htonl((uint32)-1); // End of bank table
593    
594 gbeauche 1.15 // Init thunks
595     if (!ThunksInit())
596     goto quit;
597    
598 cebix 1.1 // Init drivers
599     SonyInit();
600     DiskInit();
601     CDROMInit();
602     SCSIInit();
603    
604     // Init external file system
605     ExtFSInit();
606    
607 gbeauche 1.22 // Init ADB
608     ADBInit();
609    
610 cebix 1.1 // Init audio
611     AudioInit();
612    
613     // Init network
614     EtherInit();
615    
616     // Init serial ports
617     SerialInit();
618    
619     // Init Time Manager
620     TimerInit();
621    
622     // Init clipboard
623     ClipInit();
624    
625     // Init video
626     if (!VideoInit())
627     goto quit;
628    
629     // Install ROM patches
630     if (!PatchROM()) {
631     ErrorAlert(GetString(STR_UNSUPPORTED_ROM_TYPE_ERR));
632     goto quit;
633     }
634    
635     // Clear caches (as we loaded and patched code) and write protect ROM
636     #if !EMULATED_PPC
637     MakeExecutable(0, (void *)ROM_BASE, ROM_AREA_SIZE);
638     #endif
639 gbeauche 1.4 vm_protect((char *)ROM_BASE, ROM_AREA_SIZE, VM_PAGE_READ | VM_PAGE_EXECUTE);
640 cebix 1.1
641     // Initialize Kernel Data
642     memset(kernel_data, 0, sizeof(KernelData));
643     if (ROMType == ROMTYPE_NEWWORLD) {
644 gbeauche 1.15 uintptr of_dev_tree = SheepMem::Reserve(4 * sizeof(uint32));
645     memset((void *)of_dev_tree, 0, 4 * sizeof(uint32));
646     uintptr vector_lookup_tbl = SheepMem::Reserve(128);
647     uintptr vector_mask_tbl = SheepMem::Reserve(64);
648 cebix 1.1 memset((uint8 *)kernel_data + 0xb80, 0x3d, 0x80);
649 gbeauche 1.15 memset((void *)vector_lookup_tbl, 0, 128);
650     memset((void *)vector_mask_tbl, 0, 64);
651 cebix 1.1 kernel_data->v[0xb80 >> 2] = htonl(ROM_BASE);
652 gbeauche 1.15 kernel_data->v[0xb84 >> 2] = htonl(of_dev_tree); // OF device tree base
653     kernel_data->v[0xb90 >> 2] = htonl(vector_lookup_tbl);
654     kernel_data->v[0xb94 >> 2] = htonl(vector_mask_tbl);
655 cebix 1.1 kernel_data->v[0xb98 >> 2] = htonl(ROM_BASE); // OpenPIC base
656     kernel_data->v[0xbb0 >> 2] = htonl(0); // ADB base
657     kernel_data->v[0xc20 >> 2] = htonl(RAMSize);
658     kernel_data->v[0xc24 >> 2] = htonl(RAMSize);
659     kernel_data->v[0xc30 >> 2] = htonl(RAMSize);
660     kernel_data->v[0xc34 >> 2] = htonl(RAMSize);
661     kernel_data->v[0xc38 >> 2] = htonl(0x00010020);
662     kernel_data->v[0xc3c >> 2] = htonl(0x00200001);
663     kernel_data->v[0xc40 >> 2] = htonl(0x00010000);
664     kernel_data->v[0xc50 >> 2] = htonl(RAMBase);
665     kernel_data->v[0xc54 >> 2] = htonl(RAMSize);
666     kernel_data->v[0xf60 >> 2] = htonl(PVR);
667     kernel_data->v[0xf64 >> 2] = htonl(CPUClockSpeed);
668     kernel_data->v[0xf68 >> 2] = htonl(BusClockSpeed);
669     kernel_data->v[0xf6c >> 2] = htonl(CPUClockSpeed);
670     } else {
671     kernel_data->v[0xc80 >> 2] = htonl(RAMSize);
672     kernel_data->v[0xc84 >> 2] = htonl(RAMSize);
673     kernel_data->v[0xc90 >> 2] = htonl(RAMSize);
674     kernel_data->v[0xc94 >> 2] = htonl(RAMSize);
675     kernel_data->v[0xc98 >> 2] = htonl(0x00010020);
676     kernel_data->v[0xc9c >> 2] = htonl(0x00200001);
677     kernel_data->v[0xca0 >> 2] = htonl(0x00010000);
678     kernel_data->v[0xcb0 >> 2] = htonl(RAMBase);
679     kernel_data->v[0xcb4 >> 2] = htonl(RAMSize);
680     kernel_data->v[0xf80 >> 2] = htonl(PVR);
681     kernel_data->v[0xf84 >> 2] = htonl(CPUClockSpeed);
682     kernel_data->v[0xf88 >> 2] = htonl(BusClockSpeed);
683     kernel_data->v[0xf8c >> 2] = htonl(CPUClockSpeed);
684     }
685    
686     // Initialize extra low memory
687     D(bug("Initializing Low Memory...\n"));
688     memset(NULL, 0, 0x3000);
689     WriteMacInt32(XLM_SIGNATURE, FOURCC('B','a','a','h')); // Signature to detect SheepShaver
690 gbeauche 1.15 WriteMacInt32(XLM_KERNEL_DATA, KernelDataAddr); // For trap replacement routines
691 cebix 1.1 WriteMacInt32(XLM_PVR, PVR); // Theoretical PVR
692     WriteMacInt32(XLM_BUS_CLOCK, BusClockSpeed); // For DriverServicesLib patch
693     WriteMacInt16(XLM_EXEC_RETURN_OPCODE, M68K_EXEC_RETURN); // For Execute68k() (RTS from the executed 68k code will jump here and end 68k mode)
694 gbeauche 1.18 WriteMacInt32(XLM_ZERO_PAGE, SheepMem::ZeroPage()); // Pointer to read-only page with all bits set to 0
695 gbeauche 1.17 #if !EMULATED_PPC
696     WriteMacInt32(XLM_TOC, (uint32)TOC); // TOC pointer of emulator
697     #endif
698     WriteMacInt32(XLM_ETHER_INIT, NativeFunction(NATIVE_ETHER_INIT)); // DLPI ethernet driver functions
699 gbeauche 1.15 WriteMacInt32(XLM_ETHER_TERM, NativeFunction(NATIVE_ETHER_TERM));
700     WriteMacInt32(XLM_ETHER_OPEN, NativeFunction(NATIVE_ETHER_OPEN));
701     WriteMacInt32(XLM_ETHER_CLOSE, NativeFunction(NATIVE_ETHER_CLOSE));
702     WriteMacInt32(XLM_ETHER_WPUT, NativeFunction(NATIVE_ETHER_WPUT));
703     WriteMacInt32(XLM_ETHER_RSRV, NativeFunction(NATIVE_ETHER_RSRV));
704     WriteMacInt32(XLM_VIDEO_DOIO, NativeFunction(NATIVE_VIDEO_DO_DRIVER_IO));
705 cebix 1.1 D(bug("Low Memory initialized\n"));
706    
707     // Start 60Hz thread
708     tick_thread_active = (pthread_create(&tick_thread, NULL, tick_func, NULL) == 0);
709     D(bug("Tick thread installed (%ld)\n", tick_thread));
710    
711     // Start NVRAM watchdog thread
712     memcpy(last_xpram, XPRAM, XPRAM_SIZE);
713     nvram_thread_active = (pthread_create(&nvram_thread, NULL, nvram_func, NULL) == 0);
714     D(bug("NVRAM thread installed (%ld)\n", nvram_thread));
715    
716     #if !EMULATED_PPC
717     // Create and install stacks for signal handlers
718     sig_stack = malloc(SIG_STACK_SIZE);
719     D(bug("Signal stack at %p\n", sig_stack));
720     if (sig_stack == NULL) {
721     ErrorAlert(GetString(STR_NOT_ENOUGH_MEMORY_ERR));
722     goto quit;
723     }
724     extra_stack = malloc(SIG_STACK_SIZE);
725     D(bug("Extra stack at %p\n", extra_stack));
726     if (extra_stack == NULL) {
727     ErrorAlert(GetString(STR_NOT_ENOUGH_MEMORY_ERR));
728     goto quit;
729     }
730     struct sigaltstack new_stack;
731     new_stack.ss_sp = sig_stack;
732     new_stack.ss_flags = 0;
733     new_stack.ss_size = SIG_STACK_SIZE;
734     if (sigaltstack(&new_stack, NULL) < 0) {
735     sprintf(str, GetString(STR_SIGALTSTACK_ERR), strerror(errno));
736     ErrorAlert(str);
737     goto quit;
738     }
739     #endif
740    
741     #if !EMULATED_PPC
742     // Install SIGSEGV handler
743     sigemptyset(&sigsegv_action.sa_mask); // Block interrupts during SEGV handling
744     sigaddset(&sigsegv_action.sa_mask, SIGUSR2);
745     sigsegv_action.sa_handler = (__sighandler_t)sigsegv_handler;
746     sigsegv_action.sa_flags = SA_ONSTACK;
747     sigsegv_action.sa_restorer = NULL;
748     if (sigaction(SIGSEGV, &sigsegv_action, NULL) < 0) {
749     sprintf(str, GetString(STR_SIGSEGV_INSTALL_ERR), strerror(errno));
750     ErrorAlert(str);
751     goto quit;
752     }
753    
754     // Install SIGILL handler
755     sigemptyset(&sigill_action.sa_mask); // Block interrupts during ILL handling
756     sigaddset(&sigill_action.sa_mask, SIGUSR2);
757     sigill_action.sa_handler = (__sighandler_t)sigill_handler;
758     sigill_action.sa_flags = SA_ONSTACK;
759     sigill_action.sa_restorer = NULL;
760     if (sigaction(SIGILL, &sigill_action, NULL) < 0) {
761     sprintf(str, GetString(STR_SIGILL_INSTALL_ERR), strerror(errno));
762     ErrorAlert(str);
763     goto quit;
764     }
765 gbeauche 1.6 #endif
766 cebix 1.1
767     // Install interrupt signal handler
768     sigemptyset(&sigusr2_action.sa_mask);
769     sigusr2_action.sa_handler = (__sighandler_t)sigusr2_handler;
770 gbeauche 1.8 sigusr2_action.sa_flags = 0;
771     #if !EMULATED_PPC
772 cebix 1.1 sigusr2_action.sa_flags = SA_ONSTACK | SA_RESTART;
773 gbeauche 1.8 #endif
774 cebix 1.1 sigusr2_action.sa_restorer = NULL;
775     if (sigaction(SIGUSR2, &sigusr2_action, NULL) < 0) {
776     sprintf(str, GetString(STR_SIGUSR2_INSTALL_ERR), strerror(errno));
777     ErrorAlert(str);
778     goto quit;
779     }
780    
781     // Get my thread ID and execute MacOS thread function
782     emul_thread = pthread_self();
783     D(bug("MacOS thread is %ld\n", emul_thread));
784     emul_func(NULL);
785    
786     quit:
787     Quit();
788     return 0;
789     }
790    
791    
792     /*
793     * Cleanup and quit
794     */
795    
796     static void Quit(void)
797     {
798 gbeauche 1.13 #if EMULATED_PPC
799     // Exit PowerPC emulation
800     exit_emul_ppc();
801     #endif
802    
803 cebix 1.1 // Stop 60Hz thread
804     if (tick_thread_active) {
805     pthread_cancel(tick_thread);
806     pthread_join(tick_thread, NULL);
807     }
808    
809     // Stop NVRAM watchdog thread
810     if (nvram_thread_active) {
811     pthread_cancel(nvram_thread);
812     pthread_join(nvram_thread, NULL);
813     }
814    
815     #if !EMULATED_PPC
816     // Uninstall SIGSEGV handler
817     sigemptyset(&sigsegv_action.sa_mask);
818     sigsegv_action.sa_handler = SIG_DFL;
819     sigsegv_action.sa_flags = 0;
820     sigaction(SIGSEGV, &sigsegv_action, NULL);
821    
822     // Uninstall SIGILL handler
823     sigemptyset(&sigill_action.sa_mask);
824     sigill_action.sa_handler = SIG_DFL;
825     sigill_action.sa_flags = 0;
826     sigaction(SIGILL, &sigill_action, NULL);
827     #endif
828    
829     // Save NVRAM
830     XPRAMExit();
831    
832     // Exit clipboard
833     ClipExit();
834    
835     // Exit Time Manager
836     TimerExit();
837    
838     // Exit serial
839     SerialExit();
840    
841     // Exit network
842     EtherExit();
843    
844     // Exit audio
845     AudioExit();
846 gbeauche 1.22
847     // Exit ADB
848     ADBExit();
849 cebix 1.1
850     // Exit video
851     VideoExit();
852    
853     // Exit external file system
854     ExtFSExit();
855    
856     // Exit drivers
857     SCSIExit();
858     CDROMExit();
859     DiskExit();
860     SonyExit();
861    
862 gbeauche 1.15 // Delete SheepShaver globals
863     SheepMem::Exit();
864    
865 cebix 1.1 // Delete RAM area
866     if (ram_area_mapped)
867 gbeauche 1.8 vm_release((char *)RAM_BASE, RAMSize);
868 cebix 1.1
869     // Delete ROM area
870     if (rom_area_mapped)
871 gbeauche 1.4 vm_release((char *)ROM_BASE, ROM_AREA_SIZE);
872 cebix 1.1
873     // Delete Kernel Data area
874     if (kernel_area >= 0) {
875     shmdt((void *)KERNEL_DATA_BASE);
876     shmdt((void *)KERNEL_DATA2_BASE);
877     shmctl(kernel_area, IPC_RMID, NULL);
878     }
879    
880     // Delete Low Memory area
881     if (lm_area_mapped)
882     munmap((char *)0x0000, 0x3000);
883    
884     // Close /dev/zero
885     if (zero_fd > 0)
886     close(zero_fd);
887    
888     // Exit system routines
889     SysExit();
890    
891     // Exit preferences
892     PrefsExit();
893    
894     #ifdef ENABLE_MON
895     // Exit mon
896     mon_exit();
897     #endif
898    
899     // Close X11 server connection
900     if (x_display)
901     XCloseDisplay(x_display);
902    
903     exit(0);
904     }
905    
906    
907     /*
908     * Jump into Mac ROM, start 680x0 emulator
909     */
910    
911     #if EMULATED_PPC
912     void jump_to_rom(uint32 entry)
913     {
914     init_emul_ppc();
915     emul_ppc(entry);
916     }
917     #endif
918    
919    
920     /*
921     * Emulator thread function
922     */
923    
924     static void *emul_func(void *arg)
925     {
926     // We're now ready to receive signals
927     ready_for_signals = true;
928    
929     // Decrease priority, so more time-critical things like audio will work better
930     nice(1);
931    
932     // Jump to ROM boot routine
933     D(bug("Jumping to ROM\n"));
934     #if EMULATED_PPC
935     jump_to_rom(ROM_BASE + 0x310000);
936     #else
937     jump_to_rom(ROM_BASE + 0x310000, (uint32)emulator_data);
938     #endif
939     D(bug("Returned from ROM\n"));
940    
941     // We're no longer ready to receive signals
942     ready_for_signals = false;
943     return NULL;
944     }
945    
946    
947     #if !EMULATED_PPC
948     /*
949     * Execute 68k subroutine (must be ended with RTS)
950     * This must only be called by the emul_thread when in EMUL_OP mode
951     * r->a[7] is unused, the routine runs on the caller's stack
952     */
953    
954     void Execute68k(uint32 pc, M68kRegisters *r)
955     {
956     #if SAFE_EXEC_68K
957     if (ReadMacInt32(XLM_RUN_MODE) != MODE_EMUL_OP)
958     printf("FATAL: Execute68k() not called from EMUL_OP mode\n");
959     if (!pthread_equal(pthread_self(), emul_thread))
960     printf("FATAL: Execute68k() not called from emul_thread\n");
961     #endif
962     execute_68k(pc, r);
963     }
964    
965    
966     /*
967     * Execute 68k A-Trap from EMUL_OP routine
968     * r->a[7] is unused, the routine runs on the caller's stack
969     */
970    
971     void Execute68kTrap(uint16 trap, M68kRegisters *r)
972     {
973     uint16 proc[2] = {trap, M68K_RTS};
974     Execute68k((uint32)proc, r);
975     }
976 gbeauche 1.7 #endif
977 cebix 1.1
978    
979     /*
980     * Quit emulator (cause return from jump_to_rom)
981     */
982    
983     void QuitEmulator(void)
984     {
985     #if EMULATED_PPC
986     Quit();
987     #else
988     quit_emulator();
989     #endif
990     }
991    
992    
993     /*
994     * Pause/resume emulator
995     */
996    
997     void PauseEmulator(void)
998     {
999     pthread_kill(emul_thread, SIGSTOP);
1000     }
1001    
1002     void ResumeEmulator(void)
1003     {
1004     pthread_kill(emul_thread, SIGCONT);
1005     }
1006    
1007    
1008     /*
1009     * Dump 68k registers
1010     */
1011    
1012     void Dump68kRegs(M68kRegisters *r)
1013     {
1014     // Display 68k registers
1015     for (int i=0; i<8; i++) {
1016     printf("d%d: %08x", i, r->d[i]);
1017     if (i == 3 || i == 7)
1018     printf("\n");
1019     else
1020     printf(", ");
1021     }
1022     for (int i=0; i<8; i++) {
1023     printf("a%d: %08x", i, r->a[i]);
1024     if (i == 3 || i == 7)
1025     printf("\n");
1026     else
1027     printf(", ");
1028     }
1029     }
1030    
1031    
1032     /*
1033     * Make code executable
1034     */
1035    
1036     void MakeExecutable(int dummy, void *start, uint32 length)
1037     {
1038 gbeauche 1.9 if (((uintptr)start >= ROM_BASE) && ((uintptr)start < (ROM_BASE + ROM_SIZE)))
1039 cebix 1.1 return;
1040 gbeauche 1.9 #if EMULATED_PPC
1041     FlushCodeCache((uintptr)start, (uintptr)start + length);
1042     #else
1043     flush_icache_range(start, (void *)((uintptr)start + length));
1044 cebix 1.1 #endif
1045     }
1046    
1047    
1048     /*
1049     * Patch things after system startup (gets called by disk driver accRun routine)
1050     */
1051    
1052     void PatchAfterStartup(void)
1053     {
1054 gbeauche 1.6 ExecuteNative(NATIVE_VIDEO_INSTALL_ACCEL);
1055 cebix 1.1 InstallExtFS();
1056     }
1057    
1058    
1059     /*
1060     * NVRAM watchdog thread (saves NVRAM every minute)
1061     */
1062    
1063     static void *nvram_func(void *arg)
1064     {
1065     struct timespec req = {60, 0}; // 1 minute
1066    
1067     for (;;) {
1068     pthread_testcancel();
1069     nanosleep(&req, NULL);
1070     pthread_testcancel();
1071     if (memcmp(last_xpram, XPRAM, XPRAM_SIZE)) {
1072     memcpy(last_xpram, XPRAM, XPRAM_SIZE);
1073     SaveXPRAM();
1074     }
1075     }
1076     return NULL;
1077     }
1078    
1079    
1080     /*
1081     * 60Hz thread (really 60.15Hz)
1082     */
1083    
1084     static void *tick_func(void *arg)
1085     {
1086     int tick_counter = 0;
1087     struct timespec req = {0, 16625000};
1088    
1089     for (;;) {
1090    
1091     // Wait
1092     nanosleep(&req, NULL);
1093    
1094     #if !EMULATED_PPC
1095     // Did we crash?
1096     if (emul_thread_fatal) {
1097    
1098     // Yes, dump registers
1099     pt_regs *r = (pt_regs *)&sigsegv_regs;
1100     char str[256];
1101     sprintf(str, "SIGSEGV\n"
1102     " pc %08lx lr %08lx ctr %08lx msr %08lx\n"
1103     " xer %08lx cr %08lx \n"
1104     " r0 %08lx r1 %08lx r2 %08lx r3 %08lx\n"
1105     " r4 %08lx r5 %08lx r6 %08lx r7 %08lx\n"
1106     " r8 %08lx r9 %08lx r10 %08lx r11 %08lx\n"
1107     " r12 %08lx r13 %08lx r14 %08lx r15 %08lx\n"
1108     " r16 %08lx r17 %08lx r18 %08lx r19 %08lx\n"
1109     " r20 %08lx r21 %08lx r22 %08lx r23 %08lx\n"
1110     " r24 %08lx r25 %08lx r26 %08lx r27 %08lx\n"
1111     " r28 %08lx r29 %08lx r30 %08lx r31 %08lx\n",
1112     r->nip, r->link, r->ctr, r->msr,
1113     r->xer, r->ccr,
1114     r->gpr[0], r->gpr[1], r->gpr[2], r->gpr[3],
1115     r->gpr[4], r->gpr[5], r->gpr[6], r->gpr[7],
1116     r->gpr[8], r->gpr[9], r->gpr[10], r->gpr[11],
1117     r->gpr[12], r->gpr[13], r->gpr[14], r->gpr[15],
1118     r->gpr[16], r->gpr[17], r->gpr[18], r->gpr[19],
1119     r->gpr[20], r->gpr[21], r->gpr[22], r->gpr[23],
1120     r->gpr[24], r->gpr[25], r->gpr[26], r->gpr[27],
1121     r->gpr[28], r->gpr[29], r->gpr[30], r->gpr[31]);
1122     printf(str);
1123     VideoQuitFullScreen();
1124    
1125     #ifdef ENABLE_MON
1126     // Start up mon in real-mode
1127     printf("Welcome to the sheep factory.\n");
1128     char *arg[4] = {"mon", "-m", "-r", NULL};
1129     mon(3, arg);
1130     #endif
1131     return NULL;
1132     }
1133     #endif
1134    
1135     // Pseudo Mac 1Hz interrupt, update local time
1136     if (++tick_counter > 60) {
1137     tick_counter = 0;
1138     WriteMacInt32(0x20c, TimerDateTime());
1139     }
1140    
1141     // Trigger 60Hz interrupt
1142     if (ReadMacInt32(XLM_IRQ_NEST) == 0) {
1143     SetInterruptFlag(INTFLAG_VIA);
1144     TriggerInterrupt();
1145     }
1146     }
1147     return NULL;
1148     }
1149    
1150    
1151     /*
1152 cebix 1.2 * Pthread configuration
1153     */
1154    
1155     void Set_pthread_attr(pthread_attr_t *attr, int priority)
1156     {
1157 gbeauche 1.14 #ifdef HAVE_PTHREADS
1158     pthread_attr_init(attr);
1159     #if defined(_POSIX_THREAD_PRIORITY_SCHEDULING)
1160     // Some of these only work for superuser
1161     if (geteuid() == 0) {
1162     pthread_attr_setinheritsched(attr, PTHREAD_EXPLICIT_SCHED);
1163     pthread_attr_setschedpolicy(attr, SCHED_FIFO);
1164     struct sched_param fifo_param;
1165     fifo_param.sched_priority = ((sched_get_priority_min(SCHED_FIFO) +
1166     sched_get_priority_max(SCHED_FIFO)) / 2 +
1167     priority);
1168     pthread_attr_setschedparam(attr, &fifo_param);
1169     }
1170     if (pthread_attr_setscope(attr, PTHREAD_SCOPE_SYSTEM) != 0) {
1171     #ifdef PTHREAD_SCOPE_BOUND_NP
1172     // If system scope is not available (eg. we're not running
1173     // with CAP_SCHED_MGT capability on an SGI box), try bound
1174     // scope. It exposes pthread scheduling to the kernel,
1175     // without setting realtime priority.
1176     pthread_attr_setscope(attr, PTHREAD_SCOPE_BOUND_NP);
1177     #endif
1178     }
1179     #endif
1180     #endif
1181 cebix 1.2 }
1182    
1183    
1184     /*
1185 cebix 1.1 * Mutexes
1186     */
1187    
1188 gbeauche 1.7 #ifdef HAVE_PTHREADS
1189    
1190     struct B2_mutex {
1191     B2_mutex() {
1192     pthread_mutexattr_t attr;
1193     pthread_mutexattr_init(&attr);
1194     // Initialize the mutex for priority inheritance --
1195     // required for accurate timing.
1196     #ifdef HAVE_PTHREAD_MUTEXATTR_SETPROTOCOL
1197     pthread_mutexattr_setprotocol(&attr, PTHREAD_PRIO_INHERIT);
1198     #endif
1199     #if defined(HAVE_PTHREAD_MUTEXATTR_SETTYPE) && defined(PTHREAD_MUTEX_NORMAL)
1200     pthread_mutexattr_settype(&attr, PTHREAD_MUTEX_NORMAL);
1201     #endif
1202     #ifdef HAVE_PTHREAD_MUTEXATTR_SETPSHARED
1203     pthread_mutexattr_setpshared(&attr, PTHREAD_PROCESS_PRIVATE);
1204     #endif
1205     pthread_mutex_init(&m, &attr);
1206     pthread_mutexattr_destroy(&attr);
1207     }
1208     ~B2_mutex() {
1209     pthread_mutex_trylock(&m); // Make sure it's locked before
1210     pthread_mutex_unlock(&m); // unlocking it.
1211     pthread_mutex_destroy(&m);
1212     }
1213     pthread_mutex_t m;
1214     };
1215    
1216     B2_mutex *B2_create_mutex(void)
1217     {
1218     return new B2_mutex;
1219     }
1220    
1221     void B2_lock_mutex(B2_mutex *mutex)
1222     {
1223     pthread_mutex_lock(&mutex->m);
1224     }
1225    
1226     void B2_unlock_mutex(B2_mutex *mutex)
1227     {
1228     pthread_mutex_unlock(&mutex->m);
1229     }
1230    
1231     void B2_delete_mutex(B2_mutex *mutex)
1232     {
1233     delete mutex;
1234     }
1235    
1236     #else
1237    
1238 cebix 1.1 struct B2_mutex {
1239     int dummy;
1240     };
1241    
1242     B2_mutex *B2_create_mutex(void)
1243     {
1244     return new B2_mutex;
1245     }
1246    
1247     void B2_lock_mutex(B2_mutex *mutex)
1248     {
1249     }
1250    
1251     void B2_unlock_mutex(B2_mutex *mutex)
1252     {
1253     }
1254    
1255     void B2_delete_mutex(B2_mutex *mutex)
1256     {
1257     delete mutex;
1258     }
1259    
1260 gbeauche 1.7 #endif
1261    
1262 cebix 1.1
1263     /*
1264     * Trigger signal USR2 from another thread
1265     */
1266    
1267 gbeauche 1.8 #if !EMULATED_PPC || ASYNC_IRQ
1268 cebix 1.1 void TriggerInterrupt(void)
1269     {
1270     if (ready_for_signals)
1271     pthread_kill(emul_thread, SIGUSR2);
1272     }
1273 gbeauche 1.7 #endif
1274 cebix 1.1
1275    
1276     /*
1277     * Interrupt flags (must be handled atomically!)
1278     */
1279    
1280     volatile uint32 InterruptFlags = 0;
1281    
1282     void SetInterruptFlag(uint32 flag)
1283     {
1284     atomic_or((int *)&InterruptFlags, flag);
1285     }
1286    
1287     void ClearInterruptFlag(uint32 flag)
1288     {
1289     atomic_and((int *)&InterruptFlags, ~flag);
1290     }
1291    
1292    
1293     /*
1294     * Disable interrupts
1295     */
1296    
1297     void DisableInterrupt(void)
1298     {
1299 gbeauche 1.7 atomic_add((int *)XLM_IRQ_NEST, 1);
1300 cebix 1.1 }
1301    
1302    
1303     /*
1304     * Enable interrupts
1305     */
1306    
1307     void EnableInterrupt(void)
1308     {
1309 gbeauche 1.7 atomic_add((int *)XLM_IRQ_NEST, -1);
1310 cebix 1.1 }
1311    
1312    
1313     /*
1314     * USR2 handler
1315     */
1316    
1317 gbeauche 1.8 #if EMULATED_PPC
1318     static void sigusr2_handler(int sig)
1319     {
1320     #if ASYNC_IRQ
1321     extern void HandleInterrupt(void);
1322     HandleInterrupt();
1323     #endif
1324     }
1325     #else
1326 cebix 1.1 static void sigusr2_handler(int sig, sigcontext_struct *sc)
1327     {
1328     pt_regs *r = sc->regs;
1329    
1330     // Do nothing if interrupts are disabled
1331     if (*(int32 *)XLM_IRQ_NEST > 0)
1332     return;
1333    
1334     // Disable MacOS stack sniffer
1335     WriteMacInt32(0x110, 0);
1336    
1337     // Interrupt action depends on current run mode
1338     switch (ReadMacInt32(XLM_RUN_MODE)) {
1339     case MODE_68K:
1340     // 68k emulator active, trigger 68k interrupt level 1
1341     WriteMacInt16(ntohl(kernel_data->v[0x67c >> 2]), 1);
1342     r->ccr |= ntohl(kernel_data->v[0x674 >> 2]);
1343     break;
1344    
1345     #if INTERRUPTS_IN_NATIVE_MODE
1346     case MODE_NATIVE:
1347     // 68k emulator inactive, in nanokernel?
1348     if (r->gpr[1] != KernelDataAddr) {
1349     // Prepare for 68k interrupt level 1
1350     WriteMacInt16(ntohl(kernel_data->v[0x67c >> 2]), 1);
1351     WriteMacInt32(ntohl(kernel_data->v[0x658 >> 2]) + 0xdc, ReadMacInt32(ntohl(kernel_data->v[0x658 >> 2]) + 0xdc) | ntohl(kernel_data->v[0x674 >> 2]));
1352    
1353     // Execute nanokernel interrupt routine (this will activate the 68k emulator)
1354     atomic_add((int32 *)XLM_IRQ_NEST, 1);
1355     if (ROMType == ROMTYPE_NEWWORLD)
1356     ppc_interrupt(ROM_BASE + 0x312b1c, KernelDataAddr);
1357     else
1358     ppc_interrupt(ROM_BASE + 0x312a3c, KernelDataAddr);
1359     }
1360     break;
1361     #endif
1362    
1363     #if INTERRUPTS_IN_EMUL_OP_MODE
1364     case MODE_EMUL_OP:
1365     // 68k emulator active, within EMUL_OP routine, execute 68k interrupt routine directly when interrupt level is 0
1366     if ((ReadMacInt32(XLM_68K_R25) & 7) == 0) {
1367    
1368     // Set extra stack for SIGSEGV handler
1369     struct sigaltstack new_stack;
1370     new_stack.ss_sp = extra_stack;
1371     new_stack.ss_flags = 0;
1372     new_stack.ss_size = SIG_STACK_SIZE;
1373     sigaltstack(&new_stack, NULL);
1374     #if 1
1375     // Execute full 68k interrupt routine
1376     M68kRegisters r;
1377     uint32 old_r25 = ReadMacInt32(XLM_68K_R25); // Save interrupt level
1378     WriteMacInt32(XLM_68K_R25, 0x21); // Execute with interrupt level 1
1379     static const uint16 proc[] = {
1380     0x3f3c, 0x0000, // move.w #$0000,-(sp) (fake format word)
1381     0x487a, 0x000a, // pea @1(pc) (return address)
1382     0x40e7, // move sr,-(sp) (saved SR)
1383     0x2078, 0x0064, // move.l $64,a0
1384     0x4ed0, // jmp (a0)
1385     M68K_RTS // @1
1386     };
1387     Execute68k((uint32)proc, &r);
1388     WriteMacInt32(XLM_68K_R25, old_r25); // Restore interrupt level
1389     #else
1390     // Only update cursor
1391     if (HasMacStarted()) {
1392     if (InterruptFlags & INTFLAG_VIA) {
1393     ClearInterruptFlag(INTFLAG_VIA);
1394     ADBInterrupt();
1395 gbeauche 1.17 ExecuteNative(NATIVE_VIDEO_VBL);
1396 cebix 1.1 }
1397     }
1398     #endif
1399     // Reset normal signal stack
1400     new_stack.ss_sp = sig_stack;
1401     new_stack.ss_flags = 0;
1402     new_stack.ss_size = SIG_STACK_SIZE;
1403     sigaltstack(&new_stack, NULL);
1404     }
1405     break;
1406     #endif
1407     }
1408     }
1409 gbeauche 1.8 #endif
1410 cebix 1.1
1411    
1412     /*
1413     * SIGSEGV handler
1414     */
1415    
1416 gbeauche 1.8 #if !EMULATED_PPC
1417 cebix 1.1 static void sigsegv_handler(int sig, sigcontext_struct *sc)
1418     {
1419     pt_regs *r = sc->regs;
1420 gbeauche 1.5
1421     // Get effective address
1422     uint32 addr = r->dar;
1423    
1424     #if ENABLE_VOSF
1425     // Handle screen fault.
1426     extern bool Screen_fault_handler(sigsegv_address_t fault_address, sigsegv_address_t fault_instruction);
1427     if (Screen_fault_handler((sigsegv_address_t)addr, (sigsegv_address_t)r->nip))
1428     return;
1429     #endif
1430    
1431 cebix 1.1 num_segv++;
1432    
1433     // Fault in Mac ROM or RAM?
1434     bool mac_fault = (r->nip >= ROM_BASE) && (r->nip < (ROM_BASE + ROM_AREA_SIZE)) || (r->nip >= RAMBase) && (r->nip < (RAMBase + RAMSize));
1435     if (mac_fault) {
1436    
1437     // "VM settings" during MacOS 8 installation
1438     if (r->nip == ROM_BASE + 0x488160 && r->gpr[20] == 0xf8000000) {
1439     r->nip += 4;
1440     r->gpr[8] = 0;
1441     return;
1442    
1443     // MacOS 8.5 installation
1444     } else if (r->nip == ROM_BASE + 0x488140 && r->gpr[16] == 0xf8000000) {
1445     r->nip += 4;
1446     r->gpr[8] = 0;
1447     return;
1448    
1449     // MacOS 8 serial drivers on startup
1450     } else if (r->nip == ROM_BASE + 0x48e080 && (r->gpr[8] == 0xf3012002 || r->gpr[8] == 0xf3012000)) {
1451     r->nip += 4;
1452     r->gpr[8] = 0;
1453     return;
1454    
1455     // MacOS 8.1 serial drivers on startup
1456     } else if (r->nip == ROM_BASE + 0x48c5e0 && (r->gpr[20] == 0xf3012002 || r->gpr[20] == 0xf3012000)) {
1457     r->nip += 4;
1458     return;
1459     } else if (r->nip == ROM_BASE + 0x4a10a0 && (r->gpr[20] == 0xf3012002 || r->gpr[20] == 0xf3012000)) {
1460     r->nip += 4;
1461     return;
1462     }
1463    
1464 gbeauche 1.5 // Get opcode and divide into fields
1465     uint32 opcode = *((uint32 *)r->nip);
1466     uint32 primop = opcode >> 26;
1467     uint32 exop = (opcode >> 1) & 0x3ff;
1468     uint32 ra = (opcode >> 16) & 0x1f;
1469     uint32 rb = (opcode >> 11) & 0x1f;
1470     uint32 rd = (opcode >> 21) & 0x1f;
1471     int32 imm = (int16)(opcode & 0xffff);
1472    
1473 cebix 1.1 // Analyze opcode
1474     enum {
1475     TYPE_UNKNOWN,
1476     TYPE_LOAD,
1477     TYPE_STORE
1478     } transfer_type = TYPE_UNKNOWN;
1479     enum {
1480     SIZE_UNKNOWN,
1481     SIZE_BYTE,
1482     SIZE_HALFWORD,
1483     SIZE_WORD
1484     } transfer_size = SIZE_UNKNOWN;
1485     enum {
1486     MODE_UNKNOWN,
1487     MODE_NORM,
1488     MODE_U,
1489     MODE_X,
1490     MODE_UX
1491     } addr_mode = MODE_UNKNOWN;
1492     switch (primop) {
1493     case 31:
1494     switch (exop) {
1495     case 23: // lwzx
1496     transfer_type = TYPE_LOAD; transfer_size = SIZE_WORD; addr_mode = MODE_X; break;
1497     case 55: // lwzux
1498     transfer_type = TYPE_LOAD; transfer_size = SIZE_WORD; addr_mode = MODE_UX; break;
1499     case 87: // lbzx
1500     transfer_type = TYPE_LOAD; transfer_size = SIZE_BYTE; addr_mode = MODE_X; break;
1501     case 119: // lbzux
1502     transfer_type = TYPE_LOAD; transfer_size = SIZE_BYTE; addr_mode = MODE_UX; break;
1503     case 151: // stwx
1504     transfer_type = TYPE_STORE; transfer_size = SIZE_WORD; addr_mode = MODE_X; break;
1505     case 183: // stwux
1506     transfer_type = TYPE_STORE; transfer_size = SIZE_WORD; addr_mode = MODE_UX; break;
1507     case 215: // stbx
1508     transfer_type = TYPE_STORE; transfer_size = SIZE_BYTE; addr_mode = MODE_X; break;
1509     case 247: // stbux
1510     transfer_type = TYPE_STORE; transfer_size = SIZE_BYTE; addr_mode = MODE_UX; break;
1511     case 279: // lhzx
1512     transfer_type = TYPE_LOAD; transfer_size = SIZE_HALFWORD; addr_mode = MODE_X; break;
1513     case 311: // lhzux
1514     transfer_type = TYPE_LOAD; transfer_size = SIZE_HALFWORD; addr_mode = MODE_UX; break;
1515     case 343: // lhax
1516     transfer_type = TYPE_LOAD; transfer_size = SIZE_HALFWORD; addr_mode = MODE_X; break;
1517     case 375: // lhaux
1518     transfer_type = TYPE_LOAD; transfer_size = SIZE_HALFWORD; addr_mode = MODE_UX; break;
1519     case 407: // sthx
1520     transfer_type = TYPE_STORE; transfer_size = SIZE_HALFWORD; addr_mode = MODE_X; break;
1521     case 439: // sthux
1522     transfer_type = TYPE_STORE; transfer_size = SIZE_HALFWORD; addr_mode = MODE_UX; break;
1523     }
1524     break;
1525    
1526     case 32: // lwz
1527     transfer_type = TYPE_LOAD; transfer_size = SIZE_WORD; addr_mode = MODE_NORM; break;
1528     case 33: // lwzu
1529     transfer_type = TYPE_LOAD; transfer_size = SIZE_WORD; addr_mode = MODE_U; break;
1530     case 34: // lbz
1531     transfer_type = TYPE_LOAD; transfer_size = SIZE_BYTE; addr_mode = MODE_NORM; break;
1532     case 35: // lbzu
1533     transfer_type = TYPE_LOAD; transfer_size = SIZE_BYTE; addr_mode = MODE_U; break;
1534     case 36: // stw
1535     transfer_type = TYPE_STORE; transfer_size = SIZE_WORD; addr_mode = MODE_NORM; break;
1536     case 37: // stwu
1537     transfer_type = TYPE_STORE; transfer_size = SIZE_WORD; addr_mode = MODE_U; break;
1538     case 38: // stb
1539     transfer_type = TYPE_STORE; transfer_size = SIZE_BYTE; addr_mode = MODE_NORM; break;
1540     case 39: // stbu
1541     transfer_type = TYPE_STORE; transfer_size = SIZE_BYTE; addr_mode = MODE_U; break;
1542     case 40: // lhz
1543     transfer_type = TYPE_LOAD; transfer_size = SIZE_HALFWORD; addr_mode = MODE_NORM; break;
1544     case 41: // lhzu
1545     transfer_type = TYPE_LOAD; transfer_size = SIZE_HALFWORD; addr_mode = MODE_U; break;
1546     case 42: // lha
1547     transfer_type = TYPE_LOAD; transfer_size = SIZE_HALFWORD; addr_mode = MODE_NORM; break;
1548     case 43: // lhau
1549     transfer_type = TYPE_LOAD; transfer_size = SIZE_HALFWORD; addr_mode = MODE_U; break;
1550     case 44: // sth
1551     transfer_type = TYPE_STORE; transfer_size = SIZE_HALFWORD; addr_mode = MODE_NORM; break;
1552     case 45: // sthu
1553     transfer_type = TYPE_STORE; transfer_size = SIZE_HALFWORD; addr_mode = MODE_U; break;
1554     }
1555    
1556     // Ignore ROM writes
1557     if (transfer_type == TYPE_STORE && addr >= ROM_BASE && addr < ROM_BASE + ROM_SIZE) {
1558     // D(bug("WARNING: %s write access to ROM at %08lx, pc %08lx\n", transfer_size == SIZE_BYTE ? "Byte" : transfer_size == SIZE_HALFWORD ? "Halfword" : "Word", addr, r->nip));
1559     if (addr_mode == MODE_U || addr_mode == MODE_UX)
1560     r->gpr[ra] = addr;
1561     r->nip += 4;
1562     goto rti;
1563     }
1564    
1565     // Ignore illegal memory accesses?
1566     if (PrefsFindBool("ignoresegv")) {
1567     if (addr_mode == MODE_U || addr_mode == MODE_UX)
1568     r->gpr[ra] = addr;
1569     if (transfer_type == TYPE_LOAD)
1570     r->gpr[rd] = 0;
1571     r->nip += 4;
1572     goto rti;
1573     }
1574    
1575     // In GUI mode, show error alert
1576     if (!PrefsFindBool("nogui")) {
1577     char str[256];
1578     if (transfer_type == TYPE_LOAD || transfer_type == TYPE_STORE)
1579     sprintf(str, GetString(STR_MEM_ACCESS_ERR), transfer_size == SIZE_BYTE ? "byte" : transfer_size == SIZE_HALFWORD ? "halfword" : "word", transfer_type == TYPE_LOAD ? GetString(STR_MEM_ACCESS_READ) : GetString(STR_MEM_ACCESS_WRITE), addr, r->nip, r->gpr[24], r->gpr[1]);
1580     else
1581     sprintf(str, GetString(STR_UNKNOWN_SEGV_ERR), r->nip, r->gpr[24], r->gpr[1], opcode);
1582     ErrorAlert(str);
1583     QuitEmulator();
1584     return;
1585     }
1586     }
1587    
1588     // For all other errors, jump into debugger (sort of...)
1589     if (!ready_for_signals) {
1590     printf("SIGSEGV\n");
1591     printf(" sigcontext %p, pt_regs %p\n", sc, r);
1592     printf(
1593     " pc %08lx lr %08lx ctr %08lx msr %08lx\n"
1594     " xer %08lx cr %08lx \n"
1595     " r0 %08lx r1 %08lx r2 %08lx r3 %08lx\n"
1596     " r4 %08lx r5 %08lx r6 %08lx r7 %08lx\n"
1597     " r8 %08lx r9 %08lx r10 %08lx r11 %08lx\n"
1598     " r12 %08lx r13 %08lx r14 %08lx r15 %08lx\n"
1599     " r16 %08lx r17 %08lx r18 %08lx r19 %08lx\n"
1600     " r20 %08lx r21 %08lx r22 %08lx r23 %08lx\n"
1601     " r24 %08lx r25 %08lx r26 %08lx r27 %08lx\n"
1602     " r28 %08lx r29 %08lx r30 %08lx r31 %08lx\n",
1603     r->nip, r->link, r->ctr, r->msr,
1604     r->xer, r->ccr,
1605     r->gpr[0], r->gpr[1], r->gpr[2], r->gpr[3],
1606     r->gpr[4], r->gpr[5], r->gpr[6], r->gpr[7],
1607     r->gpr[8], r->gpr[9], r->gpr[10], r->gpr[11],
1608     r->gpr[12], r->gpr[13], r->gpr[14], r->gpr[15],
1609     r->gpr[16], r->gpr[17], r->gpr[18], r->gpr[19],
1610     r->gpr[20], r->gpr[21], r->gpr[22], r->gpr[23],
1611     r->gpr[24], r->gpr[25], r->gpr[26], r->gpr[27],
1612     r->gpr[28], r->gpr[29], r->gpr[30], r->gpr[31]);
1613     exit(1);
1614     QuitEmulator();
1615     return;
1616     } else {
1617     // We crashed. Save registers, tell tick thread and loop forever
1618     sigsegv_regs = *(sigregs *)r;
1619     emul_thread_fatal = true;
1620     for (;;) ;
1621     }
1622     rti:;
1623     }
1624    
1625    
1626     /*
1627     * SIGILL handler
1628     */
1629    
1630     static void sigill_handler(int sig, sigcontext_struct *sc)
1631     {
1632     pt_regs *r = sc->regs;
1633     char str[256];
1634    
1635     // Fault in Mac ROM or RAM?
1636     bool mac_fault = (r->nip >= ROM_BASE) && (r->nip < (ROM_BASE + ROM_AREA_SIZE)) || (r->nip >= RAMBase) && (r->nip < (RAMBase + RAMSize));
1637     if (mac_fault) {
1638    
1639     // Get opcode and divide into fields
1640     uint32 opcode = *((uint32 *)r->nip);
1641     uint32 primop = opcode >> 26;
1642     uint32 exop = (opcode >> 1) & 0x3ff;
1643     uint32 ra = (opcode >> 16) & 0x1f;
1644     uint32 rb = (opcode >> 11) & 0x1f;
1645     uint32 rd = (opcode >> 21) & 0x1f;
1646     int32 imm = (int16)(opcode & 0xffff);
1647    
1648     switch (primop) {
1649     case 9: // POWER instructions
1650     case 22:
1651     power_inst: sprintf(str, GetString(STR_POWER_INSTRUCTION_ERR), r->nip, r->gpr[1], opcode);
1652     ErrorAlert(str);
1653     QuitEmulator();
1654     return;
1655    
1656     case 31:
1657     switch (exop) {
1658     case 83: // mfmsr
1659     r->gpr[rd] = 0xf072;
1660     r->nip += 4;
1661     goto rti;
1662    
1663     case 210: // mtsr
1664     case 242: // mtsrin
1665     case 306: // tlbie
1666     r->nip += 4;
1667     goto rti;
1668    
1669     case 339: { // mfspr
1670     int spr = ra | (rb << 5);
1671     switch (spr) {
1672     case 0: // MQ
1673     case 22: // DEC
1674     case 952: // MMCR0
1675     case 953: // PMC1
1676     case 954: // PMC2
1677     case 955: // SIA
1678     case 956: // MMCR1
1679     case 957: // PMC3
1680     case 958: // PMC4
1681     case 959: // SDA
1682     r->nip += 4;
1683     goto rti;
1684     case 25: // SDR1
1685     r->gpr[rd] = 0xdead001f;
1686     r->nip += 4;
1687     goto rti;
1688     case 287: // PVR
1689     r->gpr[rd] = PVR;
1690     r->nip += 4;
1691     goto rti;
1692     }
1693     break;
1694     }
1695    
1696     case 467: { // mtspr
1697     int spr = ra | (rb << 5);
1698     switch (spr) {
1699     case 0: // MQ
1700     case 22: // DEC
1701     case 275: // SPRG3
1702     case 528: // IBAT0U
1703     case 529: // IBAT0L
1704     case 530: // IBAT1U
1705     case 531: // IBAT1L
1706     case 532: // IBAT2U
1707     case 533: // IBAT2L
1708     case 534: // IBAT3U
1709     case 535: // IBAT3L
1710     case 536: // DBAT0U
1711     case 537: // DBAT0L
1712     case 538: // DBAT1U
1713     case 539: // DBAT1L
1714     case 540: // DBAT2U
1715     case 541: // DBAT2L
1716     case 542: // DBAT3U
1717     case 543: // DBAT3L
1718     case 952: // MMCR0
1719     case 953: // PMC1
1720     case 954: // PMC2
1721     case 955: // SIA
1722     case 956: // MMCR1
1723     case 957: // PMC3
1724     case 958: // PMC4
1725     case 959: // SDA
1726     r->nip += 4;
1727     goto rti;
1728     }
1729     break;
1730     }
1731    
1732     case 29: case 107: case 152: case 153: // POWER instructions
1733     case 184: case 216: case 217: case 248:
1734     case 264: case 277: case 331: case 360:
1735     case 363: case 488: case 531: case 537:
1736     case 541: case 664: case 665: case 696:
1737     case 728: case 729: case 760: case 920:
1738     case 921: case 952:
1739     goto power_inst;
1740     }
1741     }
1742    
1743     // In GUI mode, show error alert
1744     if (!PrefsFindBool("nogui")) {
1745     sprintf(str, GetString(STR_UNKNOWN_SEGV_ERR), r->nip, r->gpr[24], r->gpr[1], opcode);
1746     ErrorAlert(str);
1747     QuitEmulator();
1748     return;
1749     }
1750     }
1751    
1752     // For all other errors, jump into debugger (sort of...)
1753     if (!ready_for_signals) {
1754     printf("SIGILL\n");
1755     printf(" sigcontext %p, pt_regs %p\n", sc, r);
1756     printf(
1757     " pc %08lx lr %08lx ctr %08lx msr %08lx\n"
1758     " xer %08lx cr %08lx \n"
1759     " r0 %08lx r1 %08lx r2 %08lx r3 %08lx\n"
1760     " r4 %08lx r5 %08lx r6 %08lx r7 %08lx\n"
1761     " r8 %08lx r9 %08lx r10 %08lx r11 %08lx\n"
1762     " r12 %08lx r13 %08lx r14 %08lx r15 %08lx\n"
1763     " r16 %08lx r17 %08lx r18 %08lx r19 %08lx\n"
1764     " r20 %08lx r21 %08lx r22 %08lx r23 %08lx\n"
1765     " r24 %08lx r25 %08lx r26 %08lx r27 %08lx\n"
1766     " r28 %08lx r29 %08lx r30 %08lx r31 %08lx\n",
1767     r->nip, r->link, r->ctr, r->msr,
1768     r->xer, r->ccr,
1769     r->gpr[0], r->gpr[1], r->gpr[2], r->gpr[3],
1770     r->gpr[4], r->gpr[5], r->gpr[6], r->gpr[7],
1771     r->gpr[8], r->gpr[9], r->gpr[10], r->gpr[11],
1772     r->gpr[12], r->gpr[13], r->gpr[14], r->gpr[15],
1773     r->gpr[16], r->gpr[17], r->gpr[18], r->gpr[19],
1774     r->gpr[20], r->gpr[21], r->gpr[22], r->gpr[23],
1775     r->gpr[24], r->gpr[25], r->gpr[26], r->gpr[27],
1776     r->gpr[28], r->gpr[29], r->gpr[30], r->gpr[31]);
1777     exit(1);
1778     QuitEmulator();
1779     return;
1780     } else {
1781     // We crashed. Save registers, tell tick thread and loop forever
1782     sigsegv_regs = *(sigregs *)r;
1783     emul_thread_fatal = true;
1784     for (;;) ;
1785     }
1786     rti:;
1787     }
1788     #endif
1789 gbeauche 1.15
1790    
1791     /*
1792     * Helpers to share 32-bit addressable data with MacOS
1793     */
1794    
1795     bool SheepMem::Init(void)
1796     {
1797 gbeauche 1.20 const int page_size = getpagesize();
1798    
1799     // Allocate SheepShaver globals
1800 gbeauche 1.15 if (vm_acquire_fixed((char *)base, size) < 0)
1801     return false;
1802 gbeauche 1.18
1803 gbeauche 1.20 // Allocate page with all bits set to 0
1804 gbeauche 1.18 zero_page = base + size;
1805     if (vm_acquire_fixed((char *)zero_page, page_size) < 0)
1806     return false;
1807 gbeauche 1.19 memset((char *)zero_page, 0, page_size);
1808 gbeauche 1.18 if (vm_protect((char *)zero_page, page_size, VM_PAGE_READ) < 0)
1809     return false;
1810    
1811 gbeauche 1.20 #if EMULATED_PPC
1812     // Allocate alternate stack for PowerPC interrupt routine
1813     sig_stack = zero_page + page_size;
1814     if (vm_acquire_fixed((char *)sig_stack, SIG_STACK_SIZE) < 0)
1815     return false;
1816     #endif
1817    
1818 gbeauche 1.15 top = base + size;
1819     return true;
1820     }
1821    
1822     void SheepMem::Exit(void)
1823     {
1824 gbeauche 1.18 if (top) {
1825 gbeauche 1.20 const int page_size = getpagesize();
1826    
1827     // Delete SheepShaver globals
1828     vm_release((void *)base, size);
1829    
1830     // Delete zero page
1831     vm_release((void *)zero_page, page_size);
1832    
1833     #if EMULATED_PPC
1834     // Delete alternate stack for PowerPC interrupt routine
1835     vm_release((void *)sig_stack, SIG_STACK_SIZE);
1836     #endif
1837 gbeauche 1.18 }
1838 gbeauche 1.15 }
1839 cebix 1.1
1840    
1841     /*
1842     * Display alert
1843     */
1844    
1845     #ifdef ENABLE_GTK
1846     static void dl_destroyed(void)
1847     {
1848     gtk_main_quit();
1849     }
1850    
1851     static void dl_quit(GtkWidget *dialog)
1852     {
1853     gtk_widget_destroy(dialog);
1854     }
1855    
1856     void display_alert(int title_id, int prefix_id, int button_id, const char *text)
1857     {
1858     char str[256];
1859     sprintf(str, GetString(prefix_id), text);
1860    
1861     GtkWidget *dialog = gtk_dialog_new();
1862     gtk_window_set_title(GTK_WINDOW(dialog), GetString(title_id));
1863     gtk_container_border_width(GTK_CONTAINER(dialog), 5);
1864     gtk_widget_set_uposition(GTK_WIDGET(dialog), 100, 150);
1865     gtk_signal_connect(GTK_OBJECT(dialog), "destroy", GTK_SIGNAL_FUNC(dl_destroyed), NULL);
1866    
1867     GtkWidget *label = gtk_label_new(str);
1868     gtk_widget_show(label);
1869     gtk_box_pack_start(GTK_BOX(GTK_DIALOG(dialog)->vbox), label, TRUE, TRUE, 0);
1870    
1871     GtkWidget *button = gtk_button_new_with_label(GetString(button_id));
1872     gtk_widget_show(button);
1873     gtk_signal_connect_object(GTK_OBJECT(button), "clicked", GTK_SIGNAL_FUNC(dl_quit), GTK_OBJECT(dialog));
1874     gtk_box_pack_start(GTK_BOX(GTK_DIALOG(dialog)->action_area), button, FALSE, FALSE, 0);
1875     GTK_WIDGET_SET_FLAGS(button, GTK_CAN_DEFAULT);
1876     gtk_widget_grab_default(button);
1877     gtk_widget_show(dialog);
1878    
1879     gtk_main();
1880     }
1881     #endif
1882    
1883    
1884     /*
1885     * Display error alert
1886     */
1887    
1888     void ErrorAlert(const char *text)
1889     {
1890     #ifdef ENABLE_GTK
1891     if (PrefsFindBool("nogui") || x_display == NULL) {
1892     printf(GetString(STR_SHELL_ERROR_PREFIX), text);
1893     return;
1894     }
1895     VideoQuitFullScreen();
1896     display_alert(STR_ERROR_ALERT_TITLE, STR_GUI_ERROR_PREFIX, STR_QUIT_BUTTON, text);
1897     #else
1898     printf(GetString(STR_SHELL_ERROR_PREFIX), text);
1899     #endif
1900     }
1901    
1902    
1903     /*
1904     * Display warning alert
1905     */
1906    
1907     void WarningAlert(const char *text)
1908     {
1909     #ifdef ENABLE_GTK
1910     if (PrefsFindBool("nogui") || x_display == NULL) {
1911     printf(GetString(STR_SHELL_WARNING_PREFIX), text);
1912     return;
1913     }
1914     display_alert(STR_WARNING_ALERT_TITLE, STR_GUI_WARNING_PREFIX, STR_OK_BUTTON, text);
1915     #else
1916     printf(GetString(STR_SHELL_WARNING_PREFIX), text);
1917     #endif
1918     }
1919    
1920    
1921     /*
1922     * Display choice alert
1923     */
1924    
1925     bool ChoiceAlert(const char *text, const char *pos, const char *neg)
1926     {
1927     printf(GetString(STR_SHELL_WARNING_PREFIX), text);
1928     return false; //!!
1929     }