xref: /openbmc/linux/arch/m68k/mac/misc.c (revision 171f1bc7)
1 /*
2  * Miscellaneous Mac68K-specific stuff
3  */
4 
5 #include <linux/types.h>
6 #include <linux/errno.h>
7 #include <linux/miscdevice.h>
8 #include <linux/kernel.h>
9 #include <linux/delay.h>
10 #include <linux/sched.h>
11 #include <linux/time.h>
12 #include <linux/rtc.h>
13 #include <linux/mm.h>
14 
15 #include <linux/adb.h>
16 #include <linux/cuda.h>
17 #include <linux/pmu.h>
18 
19 #include <asm/uaccess.h>
20 #include <asm/io.h>
21 #include <asm/rtc.h>
22 #include <asm/system.h>
23 #include <asm/segment.h>
24 #include <asm/setup.h>
25 #include <asm/macintosh.h>
26 #include <asm/mac_via.h>
27 #include <asm/mac_oss.h>
28 
29 #define BOOTINFO_COMPAT_1_0
30 #include <asm/bootinfo.h>
31 #include <asm/machdep.h>
32 
33 /* Offset between Unix time (1970-based) and Mac time (1904-based) */
34 
35 #define RTC_OFFSET 2082844800
36 
37 static void (*rom_reset)(void);
38 
39 #ifdef CONFIG_ADB_CUDA
40 static long cuda_read_time(void)
41 {
42 	struct adb_request req;
43 	long time;
44 
45 	if (cuda_request(&req, NULL, 2, CUDA_PACKET, CUDA_GET_TIME) < 0)
46 		return 0;
47 	while (!req.complete)
48 		cuda_poll();
49 
50 	time = (req.reply[3] << 24) | (req.reply[4] << 16)
51 		| (req.reply[5] << 8) | req.reply[6];
52 	return time - RTC_OFFSET;
53 }
54 
55 static void cuda_write_time(long data)
56 {
57 	struct adb_request req;
58 	data += RTC_OFFSET;
59 	if (cuda_request(&req, NULL, 6, CUDA_PACKET, CUDA_SET_TIME,
60 			(data >> 24) & 0xFF, (data >> 16) & 0xFF,
61 			(data >> 8) & 0xFF, data & 0xFF) < 0)
62 		return;
63 	while (!req.complete)
64 		cuda_poll();
65 }
66 
67 static __u8 cuda_read_pram(int offset)
68 {
69 	struct adb_request req;
70 	if (cuda_request(&req, NULL, 4, CUDA_PACKET, CUDA_GET_PRAM,
71 			(offset >> 8) & 0xFF, offset & 0xFF) < 0)
72 		return 0;
73 	while (!req.complete)
74 		cuda_poll();
75 	return req.reply[3];
76 }
77 
78 static void cuda_write_pram(int offset, __u8 data)
79 {
80 	struct adb_request req;
81 	if (cuda_request(&req, NULL, 5, CUDA_PACKET, CUDA_SET_PRAM,
82 			(offset >> 8) & 0xFF, offset & 0xFF, data) < 0)
83 		return;
84 	while (!req.complete)
85 		cuda_poll();
86 }
87 #else
88 #define cuda_read_time() 0
89 #define cuda_write_time(n)
90 #define cuda_read_pram NULL
91 #define cuda_write_pram NULL
92 #endif
93 
94 #ifdef CONFIG_ADB_PMU68K
95 static long pmu_read_time(void)
96 {
97 	struct adb_request req;
98 	long time;
99 
100 	if (pmu_request(&req, NULL, 1, PMU_READ_RTC) < 0)
101 		return 0;
102 	while (!req.complete)
103 		pmu_poll();
104 
105 	time = (req.reply[1] << 24) | (req.reply[2] << 16)
106 		| (req.reply[3] << 8) | req.reply[4];
107 	return time - RTC_OFFSET;
108 }
109 
110 static void pmu_write_time(long data)
111 {
112 	struct adb_request req;
113 	data += RTC_OFFSET;
114 	if (pmu_request(&req, NULL, 5, PMU_SET_RTC,
115 			(data >> 24) & 0xFF, (data >> 16) & 0xFF,
116 			(data >> 8) & 0xFF, data & 0xFF) < 0)
117 		return;
118 	while (!req.complete)
119 		pmu_poll();
120 }
121 
122 static __u8 pmu_read_pram(int offset)
123 {
124 	struct adb_request req;
125 	if (pmu_request(&req, NULL, 3, PMU_READ_NVRAM,
126 			(offset >> 8) & 0xFF, offset & 0xFF) < 0)
127 		return 0;
128 	while (!req.complete)
129 		pmu_poll();
130 	return req.reply[3];
131 }
132 
133 static void pmu_write_pram(int offset, __u8 data)
134 {
135 	struct adb_request req;
136 	if (pmu_request(&req, NULL, 4, PMU_WRITE_NVRAM,
137 			(offset >> 8) & 0xFF, offset & 0xFF, data) < 0)
138 		return;
139 	while (!req.complete)
140 		pmu_poll();
141 }
142 #else
143 #define pmu_read_time() 0
144 #define pmu_write_time(n)
145 #define pmu_read_pram NULL
146 #define pmu_write_pram NULL
147 #endif
148 
149 #if 0 /* def CONFIG_ADB_MACIISI */
150 extern int maciisi_request(struct adb_request *req,
151 			void (*done)(struct adb_request *), int nbytes, ...);
152 
153 static long maciisi_read_time(void)
154 {
155 	struct adb_request req;
156 	long time;
157 
158 	if (maciisi_request(&req, NULL, 2, CUDA_PACKET, CUDA_GET_TIME))
159 		return 0;
160 
161 	time = (req.reply[3] << 24) | (req.reply[4] << 16)
162 		| (req.reply[5] << 8) | req.reply[6];
163 	return time - RTC_OFFSET;
164 }
165 
166 static void maciisi_write_time(long data)
167 {
168 	struct adb_request req;
169 	data += RTC_OFFSET;
170 	maciisi_request(&req, NULL, 6, CUDA_PACKET, CUDA_SET_TIME,
171 			(data >> 24) & 0xFF, (data >> 16) & 0xFF,
172 			(data >> 8) & 0xFF, data & 0xFF);
173 }
174 
175 static __u8 maciisi_read_pram(int offset)
176 {
177 	struct adb_request req;
178 	if (maciisi_request(&req, NULL, 4, CUDA_PACKET, CUDA_GET_PRAM,
179 			(offset >> 8) & 0xFF, offset & 0xFF))
180 		return 0;
181 	return req.reply[3];
182 }
183 
184 static void maciisi_write_pram(int offset, __u8 data)
185 {
186 	struct adb_request req;
187 	maciisi_request(&req, NULL, 5, CUDA_PACKET, CUDA_SET_PRAM,
188 			(offset >> 8) & 0xFF, offset & 0xFF, data);
189 }
190 #else
191 #define maciisi_read_time() 0
192 #define maciisi_write_time(n)
193 #define maciisi_read_pram NULL
194 #define maciisi_write_pram NULL
195 #endif
196 
197 /*
198  * VIA PRAM/RTC access routines
199  *
200  * Must be called with interrupts disabled and
201  * the RTC should be enabled.
202  */
203 
204 static __u8 via_pram_readbyte(void)
205 {
206 	int	i,reg;
207 	__u8	data;
208 
209 	reg = via1[vBufB] & ~VIA1B_vRTCClk;
210 
211 	/* Set the RTC data line to be an input. */
212 
213 	via1[vDirB] &= ~VIA1B_vRTCData;
214 
215 	/* The bits of the byte come out in MSB order */
216 
217 	data = 0;
218 	for (i = 0 ; i < 8 ; i++) {
219 		via1[vBufB] = reg;
220 		via1[vBufB] = reg | VIA1B_vRTCClk;
221 		data = (data << 1) | (via1[vBufB] & VIA1B_vRTCData);
222 	}
223 
224 	/* Return RTC data line to output state */
225 
226 	via1[vDirB] |= VIA1B_vRTCData;
227 
228 	return data;
229 }
230 
231 static void via_pram_writebyte(__u8 data)
232 {
233 	int	i,reg,bit;
234 
235 	reg = via1[vBufB] & ~(VIA1B_vRTCClk | VIA1B_vRTCData);
236 
237 	/* The bits of the byte go in in MSB order */
238 
239 	for (i = 0 ; i < 8 ; i++) {
240 		bit = data & 0x80? 1 : 0;
241 		data <<= 1;
242 		via1[vBufB] = reg | bit;
243 		via1[vBufB] = reg | bit | VIA1B_vRTCClk;
244 	}
245 }
246 
247 /*
248  * Execute a VIA PRAM/RTC command. For read commands
249  * data should point to a one-byte buffer for the
250  * resulting data. For write commands it should point
251  * to the data byte to for the command.
252  *
253  * This function disables all interrupts while running.
254  */
255 
256 static void via_pram_command(int command, __u8 *data)
257 {
258 	unsigned long flags;
259 	int	is_read;
260 
261 	local_irq_save(flags);
262 
263 	/* Enable the RTC and make sure the strobe line is high */
264 
265 	via1[vBufB] = (via1[vBufB] | VIA1B_vRTCClk) & ~VIA1B_vRTCEnb;
266 
267 	if (command & 0xFF00) {		/* extended (two-byte) command */
268 		via_pram_writebyte((command & 0xFF00) >> 8);
269 		via_pram_writebyte(command & 0xFF);
270 		is_read = command & 0x8000;
271 	} else {			/* one-byte command */
272 		via_pram_writebyte(command);
273 		is_read = command & 0x80;
274 	}
275 	if (is_read) {
276 		*data = via_pram_readbyte();
277 	} else {
278 		via_pram_writebyte(*data);
279 	}
280 
281 	/* All done, disable the RTC */
282 
283 	via1[vBufB] |= VIA1B_vRTCEnb;
284 
285 	local_irq_restore(flags);
286 }
287 
288 static __u8 via_read_pram(int offset)
289 {
290 	return 0;
291 }
292 
293 static void via_write_pram(int offset, __u8 data)
294 {
295 }
296 
297 /*
298  * Return the current time in seconds since January 1, 1904.
299  *
300  * This only works on machines with the VIA-based PRAM/RTC, which
301  * is basically any machine with Mac II-style ADB.
302  */
303 
304 static long via_read_time(void)
305 {
306 	union {
307 		__u8 cdata[4];
308 		long idata;
309 	} result, last_result;
310 	int count = 1;
311 
312 	via_pram_command(0x81, &last_result.cdata[3]);
313 	via_pram_command(0x85, &last_result.cdata[2]);
314 	via_pram_command(0x89, &last_result.cdata[1]);
315 	via_pram_command(0x8D, &last_result.cdata[0]);
316 
317 	/*
318 	 * The NetBSD guys say to loop until you get the same reading
319 	 * twice in a row.
320 	 */
321 
322 	while (1) {
323 		via_pram_command(0x81, &result.cdata[3]);
324 		via_pram_command(0x85, &result.cdata[2]);
325 		via_pram_command(0x89, &result.cdata[1]);
326 		via_pram_command(0x8D, &result.cdata[0]);
327 
328 		if (result.idata == last_result.idata)
329 			return result.idata - RTC_OFFSET;
330 
331 		if (++count > 10)
332 			break;
333 
334 		last_result.idata = result.idata;
335 	}
336 
337 	pr_err("via_read_time: failed to read a stable value; "
338 	       "got 0x%08lx then 0x%08lx\n",
339 	       last_result.idata, result.idata);
340 
341 	return 0;
342 }
343 
344 /*
345  * Set the current time to a number of seconds since January 1, 1904.
346  *
347  * This only works on machines with the VIA-based PRAM/RTC, which
348  * is basically any machine with Mac II-style ADB.
349  */
350 
351 static void via_write_time(long time)
352 {
353 	union {
354 		__u8  cdata[4];
355 		long  idata;
356 	} data;
357 	__u8	temp;
358 
359 	/* Clear the write protect bit */
360 
361 	temp = 0x55;
362 	via_pram_command(0x35, &temp);
363 
364 	data.idata = time + RTC_OFFSET;
365 	via_pram_command(0x01, &data.cdata[3]);
366 	via_pram_command(0x05, &data.cdata[2]);
367 	via_pram_command(0x09, &data.cdata[1]);
368 	via_pram_command(0x0D, &data.cdata[0]);
369 
370 	/* Set the write protect bit */
371 
372 	temp = 0xD5;
373 	via_pram_command(0x35, &temp);
374 }
375 
376 static void via_shutdown(void)
377 {
378 	if (rbv_present) {
379 		via2[rBufB] &= ~0x04;
380 	} else {
381 		/* Direction of vDirB is output */
382 		via2[vDirB] |= 0x04;
383 		/* Send a value of 0 on that line */
384 		via2[vBufB] &= ~0x04;
385 		mdelay(1000);
386 	}
387 }
388 
389 /*
390  * FIXME: not sure how this is supposed to work exactly...
391  */
392 
393 static void oss_shutdown(void)
394 {
395 	oss->rom_ctrl = OSS_POWEROFF;
396 }
397 
398 #ifdef CONFIG_ADB_CUDA
399 
400 static void cuda_restart(void)
401 {
402 	struct adb_request req;
403 	if (cuda_request(&req, NULL, 2, CUDA_PACKET, CUDA_RESET_SYSTEM) < 0)
404 		return;
405 	while (!req.complete)
406 		cuda_poll();
407 }
408 
409 static void cuda_shutdown(void)
410 {
411 	struct adb_request req;
412 	if (cuda_request(&req, NULL, 2, CUDA_PACKET, CUDA_POWERDOWN) < 0)
413 		return;
414 	while (!req.complete)
415 		cuda_poll();
416 }
417 
418 #endif /* CONFIG_ADB_CUDA */
419 
420 #ifdef CONFIG_ADB_PMU68K
421 
422 void pmu_restart(void)
423 {
424 	struct adb_request req;
425 	if (pmu_request(&req, NULL,
426 			2, PMU_SET_INTR_MASK, PMU_INT_ADB|PMU_INT_TICK) < 0)
427 		return;
428 	while (!req.complete)
429 		pmu_poll();
430 	if (pmu_request(&req, NULL, 1, PMU_RESET) < 0)
431 		return;
432 	while (!req.complete)
433 		pmu_poll();
434 }
435 
436 void pmu_shutdown(void)
437 {
438 	struct adb_request req;
439 	if (pmu_request(&req, NULL,
440 			2, PMU_SET_INTR_MASK, PMU_INT_ADB|PMU_INT_TICK) < 0)
441 		return;
442 	while (!req.complete)
443 		pmu_poll();
444 	if (pmu_request(&req, NULL, 5, PMU_SHUTDOWN, 'M', 'A', 'T', 'T') < 0)
445 		return;
446 	while (!req.complete)
447 		pmu_poll();
448 }
449 
450 #endif
451 
452 /*
453  *-------------------------------------------------------------------
454  * Below this point are the generic routines; they'll dispatch to the
455  * correct routine for the hardware on which we're running.
456  *-------------------------------------------------------------------
457  */
458 
459 void mac_pram_read(int offset, __u8 *buffer, int len)
460 {
461 	__u8 (*func)(int);
462 	int i;
463 
464 	switch(macintosh_config->adb_type) {
465 	case MAC_ADB_IISI:
466 		func = maciisi_read_pram; break;
467 	case MAC_ADB_PB1:
468 	case MAC_ADB_PB2:
469 		func = pmu_read_pram; break;
470 	case MAC_ADB_CUDA:
471 		func = cuda_read_pram; break;
472 	default:
473 		func = via_read_pram;
474 	}
475 	if (!func)
476 		return;
477 	for (i = 0 ; i < len ; i++) {
478 		buffer[i] = (*func)(offset++);
479 	}
480 }
481 
482 void mac_pram_write(int offset, __u8 *buffer, int len)
483 {
484 	void (*func)(int, __u8);
485 	int i;
486 
487 	switch(macintosh_config->adb_type) {
488 	case MAC_ADB_IISI:
489 		func = maciisi_write_pram; break;
490 	case MAC_ADB_PB1:
491 	case MAC_ADB_PB2:
492 		func = pmu_write_pram; break;
493 	case MAC_ADB_CUDA:
494 		func = cuda_write_pram; break;
495 	default:
496 		func = via_write_pram;
497 	}
498 	if (!func)
499 		return;
500 	for (i = 0 ; i < len ; i++) {
501 		(*func)(offset++, buffer[i]);
502 	}
503 }
504 
505 void mac_poweroff(void)
506 {
507 	/*
508 	 * MAC_ADB_IISI may need to be moved up here if it doesn't actually
509 	 * work using the ADB packet method.  --David Kilzer
510 	 */
511 
512 	if (oss_present) {
513 		oss_shutdown();
514 	} else if (macintosh_config->adb_type == MAC_ADB_II) {
515 		via_shutdown();
516 #ifdef CONFIG_ADB_CUDA
517 	} else if (macintosh_config->adb_type == MAC_ADB_CUDA) {
518 		cuda_shutdown();
519 #endif
520 #ifdef CONFIG_ADB_PMU68K
521 	} else if (macintosh_config->adb_type == MAC_ADB_PB1
522 		|| macintosh_config->adb_type == MAC_ADB_PB2) {
523 		pmu_shutdown();
524 #endif
525 	}
526 	local_irq_enable();
527 	printk("It is now safe to turn off your Macintosh.\n");
528 	while(1);
529 }
530 
531 void mac_reset(void)
532 {
533 	if (macintosh_config->adb_type == MAC_ADB_II) {
534 		unsigned long flags;
535 
536 		/* need ROMBASE in booter */
537 		/* indeed, plus need to MAP THE ROM !! */
538 
539 		if (mac_bi_data.rombase == 0)
540 			mac_bi_data.rombase = 0x40800000;
541 
542 		/* works on some */
543 		rom_reset = (void *) (mac_bi_data.rombase + 0xa);
544 
545 		if (macintosh_config->ident == MAC_MODEL_SE30) {
546 			/*
547 			 * MSch: Machines known to crash on ROM reset ...
548 			 */
549 		} else {
550 			local_irq_save(flags);
551 
552 			rom_reset();
553 
554 			local_irq_restore(flags);
555 		}
556 #ifdef CONFIG_ADB_CUDA
557 	} else if (macintosh_config->adb_type == MAC_ADB_CUDA) {
558 		cuda_restart();
559 #endif
560 #ifdef CONFIG_ADB_PMU68K
561 	} else if (macintosh_config->adb_type == MAC_ADB_PB1
562 		|| macintosh_config->adb_type == MAC_ADB_PB2) {
563 		pmu_restart();
564 #endif
565 	} else if (CPU_IS_030) {
566 
567 		/* 030-specific reset routine.  The idea is general, but the
568 		 * specific registers to reset are '030-specific.  Until I
569 		 * have a non-030 machine, I can't test anything else.
570 		 *  -- C. Scott Ananian <cananian@alumni.princeton.edu>
571 		 */
572 
573 		unsigned long rombase = 0x40000000;
574 
575 		/* make a 1-to-1 mapping, using the transparent tran. reg. */
576 		unsigned long virt = (unsigned long) mac_reset;
577 		unsigned long phys = virt_to_phys(mac_reset);
578 		unsigned long addr = (phys&0xFF000000)|0x8777;
579 		unsigned long offset = phys-virt;
580 		local_irq_disable(); /* lets not screw this up, ok? */
581 		__asm__ __volatile__(".chip 68030\n\t"
582 				     "pmove %0,%/tt0\n\t"
583 				     ".chip 68k"
584 				     : : "m" (addr));
585 		/* Now jump to physical address so we can disable MMU */
586 		__asm__ __volatile__(
587                     ".chip 68030\n\t"
588 		    "lea %/pc@(1f),%/a0\n\t"
589 		    "addl %0,%/a0\n\t"/* fixup target address and stack ptr */
590 		    "addl %0,%/sp\n\t"
591 		    "pflusha\n\t"
592 		    "jmp %/a0@\n\t" /* jump into physical memory */
593 		    "0:.long 0\n\t" /* a constant zero. */
594 		    /* OK.  Now reset everything and jump to reset vector. */
595 		    "1:\n\t"
596 		    "lea %/pc@(0b),%/a0\n\t"
597 		    "pmove %/a0@, %/tc\n\t" /* disable mmu */
598 		    "pmove %/a0@, %/tt0\n\t" /* disable tt0 */
599 		    "pmove %/a0@, %/tt1\n\t" /* disable tt1 */
600 		    "movel #0, %/a0\n\t"
601 		    "movec %/a0, %/vbr\n\t" /* clear vector base register */
602 		    "movec %/a0, %/cacr\n\t" /* disable caches */
603 		    "movel #0x0808,%/a0\n\t"
604 		    "movec %/a0, %/cacr\n\t" /* flush i&d caches */
605 		    "movew #0x2700,%/sr\n\t" /* set up status register */
606 		    "movel %1@(0x0),%/a0\n\t"/* load interrupt stack pointer */
607 		    "movec %/a0, %/isp\n\t"
608 		    "movel %1@(0x4),%/a0\n\t" /* load reset vector */
609 		    "reset\n\t" /* reset external devices */
610 		    "jmp %/a0@\n\t" /* jump to the reset vector */
611 		    ".chip 68k"
612 		    : : "r" (offset), "a" (rombase) : "a0");
613 	}
614 
615 	/* should never get here */
616 	local_irq_enable();
617 	printk ("Restart failed.  Please restart manually.\n");
618 	while(1);
619 }
620 
621 /*
622  * This function translates seconds since 1970 into a proper date.
623  *
624  * Algorithm cribbed from glibc2.1, __offtime().
625  */
626 #define SECS_PER_MINUTE (60)
627 #define SECS_PER_HOUR  (SECS_PER_MINUTE * 60)
628 #define SECS_PER_DAY   (SECS_PER_HOUR * 24)
629 
630 static void unmktime(unsigned long time, long offset,
631 		     int *yearp, int *monp, int *dayp,
632 		     int *hourp, int *minp, int *secp)
633 {
634         /* How many days come before each month (0-12).  */
635 	static const unsigned short int __mon_yday[2][13] =
636 	{
637 		/* Normal years.  */
638 		{ 0, 31, 59, 90, 120, 151, 181, 212, 243, 273, 304, 334, 365 },
639 		/* Leap years.  */
640 		{ 0, 31, 60, 91, 121, 152, 182, 213, 244, 274, 305, 335, 366 }
641 	};
642 	long int days, rem, y, wday, yday;
643 	const unsigned short int *ip;
644 
645 	days = time / SECS_PER_DAY;
646 	rem = time % SECS_PER_DAY;
647 	rem += offset;
648 	while (rem < 0) {
649 		rem += SECS_PER_DAY;
650 		--days;
651 	}
652 	while (rem >= SECS_PER_DAY) {
653 		rem -= SECS_PER_DAY;
654 		++days;
655 	}
656 	*hourp = rem / SECS_PER_HOUR;
657 	rem %= SECS_PER_HOUR;
658 	*minp = rem / SECS_PER_MINUTE;
659 	*secp = rem % SECS_PER_MINUTE;
660 	/* January 1, 1970 was a Thursday. */
661 	wday = (4 + days) % 7; /* Day in the week. Not currently used */
662 	if (wday < 0) wday += 7;
663 	y = 1970;
664 
665 #define DIV(a, b) ((a) / (b) - ((a) % (b) < 0))
666 #define LEAPS_THRU_END_OF(y) (DIV (y, 4) - DIV (y, 100) + DIV (y, 400))
667 #define __isleap(year)	\
668   ((year) % 4 == 0 && ((year) % 100 != 0 || (year) % 400 == 0))
669 
670 	while (days < 0 || days >= (__isleap (y) ? 366 : 365))
671 	{
672 		/* Guess a corrected year, assuming 365 days per year.  */
673 		long int yg = y + days / 365 - (days % 365 < 0);
674 
675 		/* Adjust DAYS and Y to match the guessed year.  */
676 		days -= ((yg - y) * 365
677 			 + LEAPS_THRU_END_OF (yg - 1)
678 			 - LEAPS_THRU_END_OF (y - 1));
679 		y = yg;
680 	}
681 	*yearp = y - 1900;
682 	yday = days; /* day in the year.  Not currently used. */
683 	ip = __mon_yday[__isleap(y)];
684 	for (y = 11; days < (long int) ip[y]; --y)
685 		continue;
686 	days -= ip[y];
687 	*monp = y;
688 	*dayp = days + 1; /* day in the month */
689 	return;
690 }
691 
692 /*
693  * Read/write the hardware clock.
694  */
695 
696 int mac_hwclk(int op, struct rtc_time *t)
697 {
698 	unsigned long now;
699 
700 	if (!op) { /* read */
701 		switch (macintosh_config->adb_type) {
702 		case MAC_ADB_II:
703 		case MAC_ADB_IOP:
704 			now = via_read_time();
705 			break;
706 		case MAC_ADB_IISI:
707 			now = maciisi_read_time();
708 			break;
709 		case MAC_ADB_PB1:
710 		case MAC_ADB_PB2:
711 			now = pmu_read_time();
712 			break;
713 		case MAC_ADB_CUDA:
714 			now = cuda_read_time();
715 			break;
716 		default:
717 			now = 0;
718 		}
719 
720 		t->tm_wday = 0;
721 		unmktime(now, 0,
722 			 &t->tm_year, &t->tm_mon, &t->tm_mday,
723 			 &t->tm_hour, &t->tm_min, &t->tm_sec);
724 #if 0
725 		printk("mac_hwclk: read %04d-%02d-%-2d %02d:%02d:%02d\n",
726 			t->tm_year + 1900, t->tm_mon + 1, t->tm_mday,
727 			t->tm_hour, t->tm_min, t->tm_sec);
728 #endif
729 	} else { /* write */
730 #if 0
731 		printk("mac_hwclk: tried to write %04d-%02d-%-2d %02d:%02d:%02d\n",
732 			t->tm_year + 1900, t->tm_mon + 1, t->tm_mday,
733 			t->tm_hour, t->tm_min, t->tm_sec);
734 #endif
735 
736 		now = mktime(t->tm_year + 1900, t->tm_mon + 1, t->tm_mday,
737 			     t->tm_hour, t->tm_min, t->tm_sec);
738 
739 		switch (macintosh_config->adb_type) {
740 		case MAC_ADB_II:
741 		case MAC_ADB_IOP:
742 			via_write_time(now);
743 			break;
744 		case MAC_ADB_CUDA:
745 			cuda_write_time(now);
746 			break;
747 		case MAC_ADB_PB1:
748 		case MAC_ADB_PB2:
749 			pmu_write_time(now);
750 			break;
751 		case MAC_ADB_IISI:
752 			maciisi_write_time(now);
753 		}
754 	}
755 	return 0;
756 }
757 
758 /*
759  * Set minutes/seconds in the hardware clock
760  */
761 
762 int mac_set_clock_mmss (unsigned long nowtime)
763 {
764 	struct rtc_time now;
765 
766 	mac_hwclk(0, &now);
767 	now.tm_sec = nowtime % 60;
768 	now.tm_min = (nowtime / 60) % 60;
769 	mac_hwclk(1, &now);
770 
771 	return 0;
772 }
773