mm: fix exec activate_mm vs TLB shootdown and lazy tlb switching race
[linux/fpc-iii.git] / arch / m68k / mac / via.c
blob6ab6a1d54b378ed2e6eeeecf4c6fc5a4a4e3b6e8
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * 6522 Versatile Interface Adapter (VIA)
5 * There are two of these on the Mac II. Some IRQs are vectored
6 * via them as are assorted bits and bobs - eg RTC, ADB.
8 * CSA: Motorola seems to have removed documentation on the 6522 from
9 * their web site; try
10 * http://nerini.drf.com/vectrex/other/text/chips/6522/
11 * http://www.zymurgy.net/classic/vic20/vicdet1.htm
12 * and
13 * http://193.23.168.87/mikro_laborversuche/via_iobaustein/via6522_1.html
14 * for info. A full-text web search on 6522 AND VIA will probably also
15 * net some usefulness. <cananian@alumni.princeton.edu> 20apr1999
17 * Additional data is here (the SY6522 was used in the Mac II etc):
18 * http://www.6502.org/documents/datasheets/synertek/synertek_sy6522.pdf
19 * http://www.6502.org/documents/datasheets/synertek/synertek_sy6522_programming_reference.pdf
21 * PRAM/RTC access algorithms are from the NetBSD RTC toolkit version 1.08b
22 * by Erik Vogan and adapted to Linux by Joshua M. Thompson (funaho@jurai.org)
26 #include <linux/types.h>
27 #include <linux/kernel.h>
28 #include <linux/mm.h>
29 #include <linux/delay.h>
30 #include <linux/init.h>
31 #include <linux/module.h>
32 #include <linux/irq.h>
34 #include <asm/macintosh.h>
35 #include <asm/macints.h>
36 #include <asm/mac_via.h>
37 #include <asm/mac_psc.h>
38 #include <asm/mac_oss.h>
40 volatile __u8 *via1, *via2;
41 int rbv_present;
42 int via_alt_mapping;
43 EXPORT_SYMBOL(via_alt_mapping);
44 static __u8 rbv_clear;
47 * Globals for accessing the VIA chip registers without having to
48 * check if we're hitting a real VIA or an RBV. Normally you could
49 * just hit the combined register (ie, vIER|rIER) but that seems to
50 * break on AV Macs...probably because they actually decode more than
51 * eight address bits. Why can't Apple engineers at least be
52 * _consistently_ lazy? - 1999-05-21 (jmt)
55 static int gIER,gIFR,gBufA,gBufB;
58 * On Macs with a genuine VIA chip there is no way to mask an individual slot
59 * interrupt. This limitation also seems to apply to VIA clone logic cores in
60 * Quadra-like ASICs. (RBV and OSS machines don't have this limitation.)
62 * We used to fake it by configuring the relevant VIA pin as an output
63 * (to mask the interrupt) or input (to unmask). That scheme did not work on
64 * (at least) the Quadra 700. A NuBus card's /NMRQ signal is an open-collector
65 * circuit (see Designing Cards and Drivers for Macintosh II and Macintosh SE,
66 * p. 10-11 etc) but VIA outputs are not (see datasheet).
68 * Driving these outputs high must cause the VIA to source current and the
69 * card to sink current when it asserts /NMRQ. Current will flow but the pin
70 * voltage is uncertain and so the /NMRQ condition may still cause a transition
71 * at the VIA2 CA1 input (which explains the lost interrupts). A side effect
72 * is that a disabled slot IRQ can never be tested as pending or not.
74 * Driving these outputs low doesn't work either. All the slot /NMRQ lines are
75 * (active low) OR'd together to generate the CA1 (aka "SLOTS") interrupt (see
76 * The Guide To Macintosh Family Hardware, 2nd edition p. 167). If we drive a
77 * disabled /NMRQ line low, the falling edge immediately triggers a CA1
78 * interrupt and all slot interrupts after that will generate no transition
79 * and therefore no interrupt, even after being re-enabled.
81 * So we make the VIA port A I/O lines inputs and use nubus_disabled to keep
82 * track of their states. When any slot IRQ becomes disabled we mask the CA1
83 * umbrella interrupt. Only when all slot IRQs become enabled do we unmask
84 * the CA1 interrupt. It must remain enabled even when cards have no interrupt
85 * handler registered. Drivers must therefore disable a slot interrupt at the
86 * device before they call free_irq (like shared and autovector interrupts).
88 * There is also a related problem when MacOS is used to boot Linux. A network
89 * card brought up by a MacOS driver may raise an interrupt while Linux boots.
90 * This can be fatal since it can't be handled until the right driver loads
91 * (if such a driver exists at all). Apparently related to this hardware
92 * limitation, "Designing Cards and Drivers", p. 9-8, says that a slot
93 * interrupt with no driver would crash MacOS (the book was written before
94 * the appearance of Macs with RBV or OSS).
97 static u8 nubus_disabled;
99 void via_debug_dump(void);
102 * Initialize the VIAs
104 * First we figure out where they actually _are_ as well as what type of
105 * VIA we have for VIA2 (it could be a real VIA or an RBV or even an OSS.)
106 * Then we pretty much clear them out and disable all IRQ sources.
108 * Note: the OSS is actually "detected" here and not in oss_init(). It just
109 * seems more logical to do it here since via_init() needs to know
110 * these things anyways.
113 void __init via_init(void)
115 switch(macintosh_config->via_type) {
117 /* IIci, IIsi, IIvx, IIvi (P6xx), LC series */
119 case MAC_VIA_IICI:
120 via1 = (void *) VIA1_BASE;
121 if (macintosh_config->ident == MAC_MODEL_IIFX) {
122 via2 = NULL;
123 rbv_present = 0;
124 oss_present = 1;
125 } else {
126 via2 = (void *) RBV_BASE;
127 rbv_present = 1;
128 oss_present = 0;
130 if (macintosh_config->ident == MAC_MODEL_LCIII) {
131 rbv_clear = 0x00;
132 } else {
133 /* on most RBVs (& unlike the VIAs), you */
134 /* need to set bit 7 when you write to IFR */
135 /* in order for your clear to occur. */
136 rbv_clear = 0x80;
138 gIER = rIER;
139 gIFR = rIFR;
140 gBufA = rSIFR;
141 gBufB = rBufB;
142 break;
144 /* Quadra and early MacIIs agree on the VIA locations */
146 case MAC_VIA_QUADRA:
147 case MAC_VIA_II:
148 via1 = (void *) VIA1_BASE;
149 via2 = (void *) VIA2_BASE;
150 rbv_present = 0;
151 oss_present = 0;
152 rbv_clear = 0x00;
153 gIER = vIER;
154 gIFR = vIFR;
155 gBufA = vBufA;
156 gBufB = vBufB;
157 break;
158 default:
159 panic("UNKNOWN VIA TYPE");
162 printk(KERN_INFO "VIA1 at %p is a 6522 or clone\n", via1);
164 printk(KERN_INFO "VIA2 at %p is ", via2);
165 if (rbv_present) {
166 printk("an RBV\n");
167 } else if (oss_present) {
168 printk("an OSS\n");
169 } else {
170 printk("a 6522 or clone\n");
173 #ifdef DEBUG_VIA
174 via_debug_dump();
175 #endif
178 * Shut down all IRQ sources, reset the timers, and
179 * kill the timer latch on VIA1.
182 via1[vIER] = 0x7F;
183 via1[vIFR] = 0x7F;
184 via1[vT1LL] = 0;
185 via1[vT1LH] = 0;
186 via1[vT1CL] = 0;
187 via1[vT1CH] = 0;
188 via1[vT2CL] = 0;
189 via1[vT2CH] = 0;
190 via1[vACR] &= ~0xC0; /* setup T1 timer with no PB7 output */
191 via1[vACR] &= ~0x03; /* disable port A & B latches */
194 * SE/30: disable video IRQ
195 * XXX: testing for SE/30 VBL
198 if (macintosh_config->ident == MAC_MODEL_SE30) {
199 via1[vDirB] |= 0x40;
200 via1[vBufB] |= 0x40;
204 * Set the RTC bits to a known state: all lines to outputs and
205 * RTC disabled (yes that's 0 to enable and 1 to disable).
208 via1[vDirB] |= (VIA1B_vRTCEnb | VIA1B_vRTCClk | VIA1B_vRTCData);
209 via1[vBufB] |= (VIA1B_vRTCEnb | VIA1B_vRTCClk);
211 /* Everything below this point is VIA2/RBV only... */
213 if (oss_present)
214 return;
216 if ((macintosh_config->via_type == MAC_VIA_QUADRA) &&
217 (macintosh_config->adb_type != MAC_ADB_PB1) &&
218 (macintosh_config->adb_type != MAC_ADB_PB2) &&
219 (macintosh_config->ident != MAC_MODEL_C660) &&
220 (macintosh_config->ident != MAC_MODEL_Q840)) {
221 via_alt_mapping = 1;
222 via1[vDirB] |= 0x40;
223 via1[vBufB] &= ~0x40;
224 } else {
225 via_alt_mapping = 0;
229 * Now initialize VIA2. For RBV we just kill all interrupts;
230 * for a regular VIA we also reset the timers and stuff.
233 via2[gIER] = 0x7F;
234 via2[gIFR] = 0x7F | rbv_clear;
235 if (!rbv_present) {
236 via2[vT1LL] = 0;
237 via2[vT1LH] = 0;
238 via2[vT1CL] = 0;
239 via2[vT1CH] = 0;
240 via2[vT2CL] = 0;
241 via2[vT2CH] = 0;
242 via2[vACR] &= ~0xC0; /* setup T1 timer with no PB7 output */
243 via2[vACR] &= ~0x03; /* disable port A & B latches */
246 /* Everything below this point is VIA2 only... */
248 if (rbv_present)
249 return;
252 * Set vPCR for control line interrupts.
254 * CA1 (SLOTS IRQ), CB1 (ASC IRQ): negative edge trigger.
256 * Macs with ESP SCSI have a negative edge triggered SCSI interrupt.
257 * Testing reveals that PowerBooks do too. However, the SE/30
258 * schematic diagram shows an active high NCR5380 IRQ line.
261 pr_debug("VIA2 vPCR is 0x%02X\n", via2[vPCR]);
262 if (macintosh_config->via_type == MAC_VIA_II) {
263 /* CA2 (SCSI DRQ), CB2 (SCSI IRQ): indep. input, pos. edge */
264 via2[vPCR] = 0x66;
265 } else {
266 /* CA2 (SCSI DRQ), CB2 (SCSI IRQ): indep. input, neg. edge */
267 via2[vPCR] = 0x22;
272 * Debugging dump, used in various places to see what's going on.
275 void via_debug_dump(void)
277 printk(KERN_DEBUG "VIA1: DDRA = 0x%02X DDRB = 0x%02X ACR = 0x%02X\n",
278 (uint) via1[vDirA], (uint) via1[vDirB], (uint) via1[vACR]);
279 printk(KERN_DEBUG " PCR = 0x%02X IFR = 0x%02X IER = 0x%02X\n",
280 (uint) via1[vPCR], (uint) via1[vIFR], (uint) via1[vIER]);
281 if (oss_present) {
282 printk(KERN_DEBUG "VIA2: <OSS>\n");
283 } else if (rbv_present) {
284 printk(KERN_DEBUG "VIA2: IFR = 0x%02X IER = 0x%02X\n",
285 (uint) via2[rIFR], (uint) via2[rIER]);
286 printk(KERN_DEBUG " SIFR = 0x%02X SIER = 0x%02X\n",
287 (uint) via2[rSIFR], (uint) via2[rSIER]);
288 } else {
289 printk(KERN_DEBUG "VIA2: DDRA = 0x%02X DDRB = 0x%02X ACR = 0x%02X\n",
290 (uint) via2[vDirA], (uint) via2[vDirB],
291 (uint) via2[vACR]);
292 printk(KERN_DEBUG " PCR = 0x%02X IFR = 0x%02X IER = 0x%02X\n",
293 (uint) via2[vPCR],
294 (uint) via2[vIFR], (uint) via2[vIER]);
299 * Flush the L2 cache on Macs that have it by flipping
300 * the system into 24-bit mode for an instant.
303 void via_l2_flush(int writeback)
305 unsigned long flags;
307 local_irq_save(flags);
308 via2[gBufB] &= ~VIA2B_vMode32;
309 via2[gBufB] |= VIA2B_vMode32;
310 local_irq_restore(flags);
314 * Return the status of the L2 cache on a IIci
317 int via_get_cache_disable(void)
319 /* Safeguard against being called accidentally */
320 if (!via2) {
321 printk(KERN_ERR "via_get_cache_disable called on a non-VIA machine!\n");
322 return 1;
325 return (int) via2[gBufB] & VIA2B_vCDis;
329 * Initialize VIA2 for Nubus access
332 void __init via_nubus_init(void)
334 /* unlock nubus transactions */
336 if ((macintosh_config->adb_type != MAC_ADB_PB1) &&
337 (macintosh_config->adb_type != MAC_ADB_PB2)) {
338 /* set the line to be an output on non-RBV machines */
339 if (!rbv_present)
340 via2[vDirB] |= 0x02;
342 /* this seems to be an ADB bit on PMU machines */
343 /* according to MkLinux. -- jmt */
344 via2[gBufB] |= 0x02;
348 * Disable the slot interrupts. On some hardware that's not possible.
349 * On some hardware it's unclear what all of these I/O lines do.
352 switch (macintosh_config->via_type) {
353 case MAC_VIA_II:
354 case MAC_VIA_QUADRA:
355 pr_debug("VIA2 vDirA is 0x%02X\n", via2[vDirA]);
356 break;
357 case MAC_VIA_IICI:
358 /* RBV. Disable all the slot interrupts. SIER works like IER. */
359 via2[rSIER] = 0x7F;
360 break;
364 void via_nubus_irq_startup(int irq)
366 int irq_idx = IRQ_IDX(irq);
368 switch (macintosh_config->via_type) {
369 case MAC_VIA_II:
370 case MAC_VIA_QUADRA:
371 /* Make the port A line an input. Probably redundant. */
372 if (macintosh_config->via_type == MAC_VIA_II) {
373 /* The top two bits are RAM size outputs. */
374 via2[vDirA] &= 0xC0 | ~(1 << irq_idx);
375 } else {
376 /* Allow NuBus slots 9 through F. */
377 via2[vDirA] &= 0x80 | ~(1 << irq_idx);
379 /* fall through */
380 case MAC_VIA_IICI:
381 via_irq_enable(irq);
382 break;
386 void via_nubus_irq_shutdown(int irq)
388 switch (macintosh_config->via_type) {
389 case MAC_VIA_II:
390 case MAC_VIA_QUADRA:
391 /* Ensure that the umbrella CA1 interrupt remains enabled. */
392 via_irq_enable(irq);
393 break;
394 case MAC_VIA_IICI:
395 via_irq_disable(irq);
396 break;
401 * The generic VIA interrupt routines (shamelessly stolen from Alan Cox's
402 * via6522.c :-), disable/pending masks added.
405 #define VIA_TIMER_1_INT BIT(6)
407 void via1_irq(struct irq_desc *desc)
409 int irq_num;
410 unsigned char irq_bit, events;
412 events = via1[vIFR] & via1[vIER] & 0x7F;
413 if (!events)
414 return;
416 irq_num = IRQ_MAC_TIMER_1;
417 irq_bit = VIA_TIMER_1_INT;
418 if (events & irq_bit) {
419 unsigned long flags;
421 local_irq_save(flags);
422 via1[vIFR] = irq_bit;
423 generic_handle_irq(irq_num);
424 local_irq_restore(flags);
426 events &= ~irq_bit;
427 if (!events)
428 return;
431 irq_num = VIA1_SOURCE_BASE;
432 irq_bit = 1;
433 do {
434 if (events & irq_bit) {
435 via1[vIFR] = irq_bit;
436 generic_handle_irq(irq_num);
438 ++irq_num;
439 irq_bit <<= 1;
440 } while (events >= irq_bit);
443 static void via2_irq(struct irq_desc *desc)
445 int irq_num;
446 unsigned char irq_bit, events;
448 events = via2[gIFR] & via2[gIER] & 0x7F;
449 if (!events)
450 return;
452 irq_num = VIA2_SOURCE_BASE;
453 irq_bit = 1;
454 do {
455 if (events & irq_bit) {
456 via2[gIFR] = irq_bit | rbv_clear;
457 generic_handle_irq(irq_num);
459 ++irq_num;
460 irq_bit <<= 1;
461 } while (events >= irq_bit);
465 * Dispatch Nubus interrupts. We are called as a secondary dispatch by the
466 * VIA2 dispatcher as a fast interrupt handler.
469 static void via_nubus_irq(struct irq_desc *desc)
471 int slot_irq;
472 unsigned char slot_bit, events;
474 events = ~via2[gBufA] & 0x7F;
475 if (rbv_present)
476 events &= via2[rSIER];
477 else
478 events &= ~via2[vDirA];
479 if (!events)
480 return;
482 do {
483 slot_irq = IRQ_NUBUS_F;
484 slot_bit = 0x40;
485 do {
486 if (events & slot_bit) {
487 events &= ~slot_bit;
488 generic_handle_irq(slot_irq);
490 --slot_irq;
491 slot_bit >>= 1;
492 } while (events);
494 /* clear the CA1 interrupt and make certain there's no more. */
495 via2[gIFR] = 0x02 | rbv_clear;
496 events = ~via2[gBufA] & 0x7F;
497 if (rbv_present)
498 events &= via2[rSIER];
499 else
500 events &= ~via2[vDirA];
501 } while (events);
505 * Register the interrupt dispatchers for VIA or RBV machines only.
508 void __init via_register_interrupts(void)
510 if (via_alt_mapping) {
511 /* software interrupt */
512 irq_set_chained_handler(IRQ_AUTO_1, via1_irq);
513 /* via1 interrupt */
514 irq_set_chained_handler(IRQ_AUTO_6, via1_irq);
515 } else {
516 irq_set_chained_handler(IRQ_AUTO_1, via1_irq);
518 irq_set_chained_handler(IRQ_AUTO_2, via2_irq);
519 irq_set_chained_handler(IRQ_MAC_NUBUS, via_nubus_irq);
522 void via_irq_enable(int irq) {
523 int irq_src = IRQ_SRC(irq);
524 int irq_idx = IRQ_IDX(irq);
526 if (irq_src == 1) {
527 via1[vIER] = IER_SET_BIT(irq_idx);
528 } else if (irq_src == 2) {
529 if (irq != IRQ_MAC_NUBUS || nubus_disabled == 0)
530 via2[gIER] = IER_SET_BIT(irq_idx);
531 } else if (irq_src == 7) {
532 switch (macintosh_config->via_type) {
533 case MAC_VIA_II:
534 case MAC_VIA_QUADRA:
535 nubus_disabled &= ~(1 << irq_idx);
536 /* Enable the CA1 interrupt when no slot is disabled. */
537 if (!nubus_disabled)
538 via2[gIER] = IER_SET_BIT(1);
539 break;
540 case MAC_VIA_IICI:
541 /* On RBV, enable the slot interrupt.
542 * SIER works like IER.
544 via2[rSIER] = IER_SET_BIT(irq_idx);
545 break;
550 void via_irq_disable(int irq) {
551 int irq_src = IRQ_SRC(irq);
552 int irq_idx = IRQ_IDX(irq);
554 if (irq_src == 1) {
555 via1[vIER] = IER_CLR_BIT(irq_idx);
556 } else if (irq_src == 2) {
557 via2[gIER] = IER_CLR_BIT(irq_idx);
558 } else if (irq_src == 7) {
559 switch (macintosh_config->via_type) {
560 case MAC_VIA_II:
561 case MAC_VIA_QUADRA:
562 nubus_disabled |= 1 << irq_idx;
563 if (nubus_disabled)
564 via2[gIER] = IER_CLR_BIT(1);
565 break;
566 case MAC_VIA_IICI:
567 via2[rSIER] = IER_CLR_BIT(irq_idx);
568 break;
573 void via1_set_head(int head)
575 if (head == 0)
576 via1[vBufA] &= ~VIA1A_vHeadSel;
577 else
578 via1[vBufA] |= VIA1A_vHeadSel;
580 EXPORT_SYMBOL(via1_set_head);
582 int via2_scsi_drq_pending(void)
584 return via2[gIFR] & (1 << IRQ_IDX(IRQ_MAC_SCSIDRQ));
586 EXPORT_SYMBOL(via2_scsi_drq_pending);
588 /* timer and clock source */
590 #define VIA_CLOCK_FREQ 783360 /* VIA "phase 2" clock in Hz */
591 #define VIA_TIMER_INTERVAL (1000000 / HZ) /* microseconds per jiffy */
592 #define VIA_TIMER_CYCLES (VIA_CLOCK_FREQ / HZ) /* clock cycles per jiffy */
594 #define VIA_TC (VIA_TIMER_CYCLES - 2) /* including 0 and -1 */
595 #define VIA_TC_LOW (VIA_TC & 0xFF)
596 #define VIA_TC_HIGH (VIA_TC >> 8)
598 void __init via_init_clock(irq_handler_t timer_routine)
600 if (request_irq(IRQ_MAC_TIMER_1, timer_routine, 0, "timer", NULL)) {
601 pr_err("Couldn't register %s interrupt\n", "timer");
602 return;
605 via1[vT1LL] = VIA_TC_LOW;
606 via1[vT1LH] = VIA_TC_HIGH;
607 via1[vT1CL] = VIA_TC_LOW;
608 via1[vT1CH] = VIA_TC_HIGH;
609 via1[vACR] |= 0x40;
612 u32 mac_gettimeoffset(void)
614 unsigned long flags;
615 u8 count_high;
616 u16 count, offset = 0;
619 * Timer counter wrap-around is detected with the timer interrupt flag
620 * but reading the counter low byte (vT1CL) would reset the flag.
621 * Also, accessing both counter registers is essentially a data race.
622 * These problems are avoided by ignoring the low byte. Clock accuracy
623 * is 256 times worse (error can reach 0.327 ms) but CPU overhead is
624 * reduced by avoiding slow VIA register accesses.
627 local_irq_save(flags);
628 count_high = via1[vT1CH];
629 if (count_high == 0xFF)
630 count_high = 0;
631 if (count_high > 0 && (via1[vIFR] & VIA_TIMER_1_INT))
632 offset = VIA_TIMER_CYCLES;
633 local_irq_restore(flags);
635 count = count_high << 8;
636 count = VIA_TIMER_CYCLES - count + offset;
638 return ((count * VIA_TIMER_INTERVAL) / VIA_TIMER_CYCLES) * 1000;