xref: /freebsd/sys/powerpc/ofw/ofw_machdep.c (revision bcccd559e20d22c29805034b912659ffd0b97813)
1 /*-
2  * Copyright (C) 1996 Wolfgang Solfrank.
3  * Copyright (C) 1996 TooLs GmbH.
4  * All rights reserved.
5  *
6  * Redistribution and use in source and binary forms, with or without
7  * modification, are permitted provided that the following conditions
8  * are met:
9  * 1. Redistributions of source code must retain the above copyright
10  *    notice, this list of conditions and the following disclaimer.
11  * 2. Redistributions in binary form must reproduce the above copyright
12  *    notice, this list of conditions and the following disclaimer in the
13  *    documentation and/or other materials provided with the distribution.
14  * 3. All advertising materials mentioning features or use of this software
15  *    must display the following acknowledgement:
16  *	This product includes software developed by TooLs GmbH.
17  * 4. The name of TooLs GmbH may not be used to endorse or promote products
18  *    derived from this software without specific prior written permission.
19  *
20  * THIS SOFTWARE IS PROVIDED BY TOOLS GMBH ``AS IS'' AND ANY EXPRESS OR
21  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
22  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
23  * IN NO EVENT SHALL TOOLS GMBH BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
24  * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
25  * PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS;
26  * OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY,
27  * WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR
28  * OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF
29  * ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
30  *
31  * $NetBSD: ofw_machdep.c,v 1.5 2000/05/23 13:25:43 tsubai Exp $
32  */
33 
34 #include <sys/cdefs.h>
35 __FBSDID("$FreeBSD$");
36 
37 #include "opt_platform.h"
38 #include <sys/param.h>
39 #include <sys/bus.h>
40 #include <sys/systm.h>
41 #include <sys/conf.h>
42 #include <sys/disk.h>
43 #include <sys/fcntl.h>
44 #include <sys/malloc.h>
45 #include <sys/smp.h>
46 #include <sys/stat.h>
47 #include <sys/endian.h>
48 
49 #include <net/ethernet.h>
50 
51 #include <dev/fdt/fdt_common.h>
52 #include <dev/ofw/openfirm.h>
53 #include <dev/ofw/ofw_pci.h>
54 #include <dev/ofw/ofw_bus.h>
55 #include <dev/ofw/ofw_subr.h>
56 
57 #include <vm/vm.h>
58 #include <vm/vm_param.h>
59 #include <vm/vm_page.h>
60 
61 #include <machine/bus.h>
62 #include <machine/cpu.h>
63 #include <machine/md_var.h>
64 #include <machine/platform.h>
65 #include <machine/ofw_machdep.h>
66 #include <machine/trap.h>
67 
68 static void	*fdt;
69 int		ofw_real_mode;
70 
71 #ifdef AIM
72 extern register_t ofmsr[5];
73 extern void	*openfirmware_entry;
74 char		save_trap_init[0x2f00];          /* EXC_LAST */
75 char		save_trap_of[0x2f00];            /* EXC_LAST */
76 
77 int		ofwcall(void *);
78 static int	openfirmware(void *args);
79 
80 __inline void
81 ofw_save_trap_vec(char *save_trap_vec)
82 {
83 	if (!ofw_real_mode)
84                 return;
85 
86 	bcopy((void *)EXC_RST, save_trap_vec, EXC_LAST - EXC_RST);
87 }
88 
89 static __inline void
90 ofw_restore_trap_vec(char *restore_trap_vec)
91 {
92 	if (!ofw_real_mode)
93                 return;
94 
95 	bcopy(restore_trap_vec, (void *)EXC_RST, EXC_LAST - EXC_RST);
96 	__syncicache(EXC_RSVD, EXC_LAST - EXC_RSVD);
97 }
98 
99 /*
100  * Saved SPRG0-3 from OpenFirmware. Will be restored prior to the callback.
101  */
102 register_t	ofw_sprg0_save;
103 
104 static __inline void
105 ofw_sprg_prepare(void)
106 {
107 	if (ofw_real_mode)
108 		return;
109 
110 	/*
111 	 * Assume that interrupt are disabled at this point, or
112 	 * SPRG1-3 could be trashed
113 	 */
114 #ifdef __powerpc64__
115 	__asm __volatile("mtsprg1 %0\n\t"
116 	    		 "mtsprg2 %1\n\t"
117 			 "mtsprg3 %2\n\t"
118 			 :
119 			 : "r"(ofmsr[2]),
120 			 "r"(ofmsr[3]),
121 			 "r"(ofmsr[4]));
122 #else
123 	__asm __volatile("mfsprg0 %0\n\t"
124 			 "mtsprg0 %1\n\t"
125 	    		 "mtsprg1 %2\n\t"
126 	    		 "mtsprg2 %3\n\t"
127 			 "mtsprg3 %4\n\t"
128 			 : "=&r"(ofw_sprg0_save)
129 			 : "r"(ofmsr[1]),
130 			 "r"(ofmsr[2]),
131 			 "r"(ofmsr[3]),
132 			 "r"(ofmsr[4]));
133 #endif
134 }
135 
136 static __inline void
137 ofw_sprg_restore(void)
138 {
139 	if (ofw_real_mode)
140 		return;
141 
142 	/*
143 	 * Note that SPRG1-3 contents are irrelevant. They are scratch
144 	 * registers used in the early portion of trap handling when
145 	 * interrupts are disabled.
146 	 *
147 	 * PCPU data cannot be used until this routine is called !
148 	 */
149 #ifndef __powerpc64__
150 	__asm __volatile("mtsprg0 %0" :: "r"(ofw_sprg0_save));
151 #endif
152 }
153 #endif
154 
155 static int
156 parse_ofw_memory(phandle_t node, const char *prop, struct mem_region *output)
157 {
158 	cell_t address_cells, size_cells;
159 	cell_t OFmem[4 * PHYS_AVAIL_SZ];
160 	int sz, i, j;
161 	phandle_t phandle;
162 
163 	sz = 0;
164 
165 	/*
166 	 * Get #address-cells from root node, defaulting to 1 if it cannot
167 	 * be found.
168 	 */
169 	phandle = OF_finddevice("/");
170 	if (OF_getencprop(phandle, "#address-cells", &address_cells,
171 	    sizeof(address_cells)) < (ssize_t)sizeof(address_cells))
172 		address_cells = 1;
173 	if (OF_getencprop(phandle, "#size-cells", &size_cells,
174 	    sizeof(size_cells)) < (ssize_t)sizeof(size_cells))
175 		size_cells = 1;
176 
177 	/*
178 	 * Get memory.
179 	 */
180 	if (node == -1 || (sz = OF_getencprop(node, prop,
181 	    OFmem, sizeof(OFmem))) <= 0)
182 		panic("Physical memory map not found");
183 
184 	i = 0;
185 	j = 0;
186 	while (i < sz/sizeof(cell_t)) {
187 		output[j].mr_start = OFmem[i++];
188 		if (address_cells == 2) {
189 			output[j].mr_start <<= 32;
190 			output[j].mr_start += OFmem[i++];
191 		}
192 
193 		output[j].mr_size = OFmem[i++];
194 		if (size_cells == 2) {
195 			output[j].mr_size <<= 32;
196 			output[j].mr_size += OFmem[i++];
197 		}
198 
199 		if (output[j].mr_start > BUS_SPACE_MAXADDR)
200 			continue;
201 
202 		/*
203 		 * Constrain memory to that which we can access.
204 		 * 32-bit AIM can only reference 32 bits of address currently,
205 		 * but Book-E can access 36 bits.
206 		 */
207 		if (((uint64_t)output[j].mr_start +
208 		    (uint64_t)output[j].mr_size - 1) >
209 		    BUS_SPACE_MAXADDR) {
210 			output[j].mr_size = BUS_SPACE_MAXADDR -
211 			    output[j].mr_start + 1;
212 		}
213 
214 		j++;
215 	}
216 	sz = j*sizeof(output[0]);
217 
218 	return (sz);
219 }
220 
221 static int
222 excise_fdt_reserved(struct mem_region *avail, int asz)
223 {
224 	struct {
225 		uint64_t address;
226 		uint64_t size;
227 	} fdtmap[16];
228 	ssize_t fdtmapsize;
229 	phandle_t chosen;
230 	int i, j, k;
231 
232 	chosen = OF_finddevice("/chosen");
233 	fdtmapsize = OF_getprop(chosen, "fdtmemreserv", fdtmap, sizeof(fdtmap));
234 
235 	for (j = 0; j < fdtmapsize/sizeof(fdtmap[0]); j++) {
236 		fdtmap[j].address = be64toh(fdtmap[j].address);
237 		fdtmap[j].size = be64toh(fdtmap[j].size);
238 	}
239 
240 	for (i = 0; i < asz; i++) {
241 		for (j = 0; j < fdtmapsize/sizeof(fdtmap[0]); j++) {
242 			/*
243 			 * Case 1: Exclusion region encloses complete
244 			 * available entry. Drop it and move on.
245 			 */
246 			if (fdtmap[j].address <= avail[i].mr_start &&
247 			    fdtmap[j].address + fdtmap[j].size >=
248 			    avail[i].mr_start + avail[i].mr_size) {
249 				for (k = i+1; k < asz; k++)
250 					avail[k-1] = avail[k];
251 				asz--;
252 				i--; /* Repeat some entries */
253 				continue;
254 			}
255 
256 			/*
257 			 * Case 2: Exclusion region starts in available entry.
258 			 * Trim it to where the entry begins and append
259 			 * a new available entry with the region after
260 			 * the excluded region, if any.
261 			 */
262 			if (fdtmap[j].address >= avail[i].mr_start &&
263 			    fdtmap[j].address < avail[i].mr_start +
264 			    avail[i].mr_size) {
265 				if (fdtmap[j].address + fdtmap[j].size <
266 				    avail[i].mr_start + avail[i].mr_size) {
267 					avail[asz].mr_start =
268 					    fdtmap[j].address + fdtmap[j].size;
269 					avail[asz].mr_size = avail[i].mr_start +
270 					     avail[i].mr_size -
271 					     avail[asz].mr_start;
272 					asz++;
273 				}
274 
275 				avail[i].mr_size = fdtmap[j].address -
276 				    avail[i].mr_start;
277 			}
278 
279 			/*
280 			 * Case 3: Exclusion region ends in available entry.
281 			 * Move start point to where the exclusion zone ends.
282 			 * The case of a contained exclusion zone has already
283 			 * been caught in case 2.
284 			 */
285 			if (fdtmap[j].address + fdtmap[j].size >=
286 			    avail[i].mr_start && fdtmap[j].address +
287 			    fdtmap[j].size < avail[i].mr_start +
288 			    avail[i].mr_size) {
289 				avail[i].mr_size += avail[i].mr_start;
290 				avail[i].mr_start =
291 				    fdtmap[j].address + fdtmap[j].size;
292 				avail[i].mr_size -= avail[i].mr_start;
293 			}
294 		}
295 	}
296 
297 	return (asz);
298 }
299 
300 /*
301  * This is called during powerpc_init, before the system is really initialized.
302  * It shall provide the total and the available regions of RAM.
303  * The available regions need not take the kernel into account.
304  */
305 void
306 ofw_mem_regions(struct mem_region *memp, int *memsz,
307 		struct mem_region *availp, int *availsz)
308 {
309 	phandle_t phandle;
310 	int asz, msz;
311 	int res;
312 	char name[31];
313 
314 	asz = msz = 0;
315 
316 	/*
317 	 * Get memory from all the /memory nodes.
318 	 */
319 	for (phandle = OF_child(OF_peer(0)); phandle != 0;
320 	    phandle = OF_peer(phandle)) {
321 		if (OF_getprop(phandle, "name", name, sizeof(name)) <= 0)
322 			continue;
323 		if (strncmp(name, "memory", sizeof(name)) != 0 &&
324 		    strncmp(name, "memory@", strlen("memory@")) != 0)
325 			continue;
326 
327 		res = parse_ofw_memory(phandle, "reg", &memp[msz]);
328 		msz += res/sizeof(struct mem_region);
329 		if (OF_getproplen(phandle, "available") >= 0)
330 			res = parse_ofw_memory(phandle, "available",
331 			    &availp[asz]);
332 		else
333 			res = parse_ofw_memory(phandle, "reg", &availp[asz]);
334 		asz += res/sizeof(struct mem_region);
335 	}
336 
337 	phandle = OF_finddevice("/chosen");
338 	if (OF_hasprop(phandle, "fdtmemreserv"))
339 		asz = excise_fdt_reserved(availp, asz);
340 
341 	*memsz = msz;
342 	*availsz = asz;
343 }
344 
345 void
346 OF_initial_setup(void *fdt_ptr, void *junk, int (*openfirm)(void *))
347 {
348 #ifdef AIM
349 	ofmsr[0] = mfmsr();
350 	#ifdef __powerpc64__
351 	ofmsr[0] &= ~PSL_SF;
352 	#else
353 	__asm __volatile("mfsprg0 %0" : "=&r"(ofmsr[1]));
354 	#endif
355 	__asm __volatile("mfsprg1 %0" : "=&r"(ofmsr[2]));
356 	__asm __volatile("mfsprg2 %0" : "=&r"(ofmsr[3]));
357 	__asm __volatile("mfsprg3 %0" : "=&r"(ofmsr[4]));
358 	openfirmware_entry = openfirm;
359 
360 	if (ofmsr[0] & PSL_DR)
361 		ofw_real_mode = 0;
362 	else
363 		ofw_real_mode = 1;
364 
365 	ofw_save_trap_vec(save_trap_init);
366 #else
367 	ofw_real_mode = 1;
368 #endif
369 
370 	fdt = fdt_ptr;
371 
372 	#ifdef FDT_DTB_STATIC
373 	/* Check for a statically included blob */
374 	if (fdt == NULL)
375 		fdt = &fdt_static_dtb;
376 	#endif
377 }
378 
379 boolean_t
380 OF_bootstrap()
381 {
382 	boolean_t status = FALSE;
383 
384 #ifdef AIM
385 	if (openfirmware_entry != NULL) {
386 		if (ofw_real_mode) {
387 			status = OF_install(OFW_STD_REAL, 0);
388 		} else {
389 			#ifdef __powerpc64__
390 			status = OF_install(OFW_STD_32BIT, 0);
391 			#else
392 			status = OF_install(OFW_STD_DIRECT, 0);
393 			#endif
394 		}
395 
396 		if (status != TRUE)
397 			return status;
398 
399 		OF_init(openfirmware);
400 	} else
401 #endif
402 	if (fdt != NULL) {
403 		status = OF_install(OFW_FDT, 0);
404 
405 		if (status != TRUE)
406 			return status;
407 
408 		OF_init(fdt);
409 		OF_interpret("perform-fixup", 0);
410 	}
411 
412 	return (status);
413 }
414 
415 #ifdef AIM
416 void
417 ofw_quiesce(void)
418 {
419 	struct {
420 		cell_t name;
421 		cell_t nargs;
422 		cell_t nreturns;
423 	} args;
424 
425 	KASSERT(!pmap_bootstrapped, ("Cannot call ofw_quiesce after VM is up"));
426 
427 	args.name = (cell_t)(uintptr_t)"quiesce";
428 	args.nargs = 0;
429 	args.nreturns = 0;
430 	openfirmware(&args);
431 }
432 
433 static int
434 openfirmware_core(void *args)
435 {
436 	int		result;
437 	register_t	oldmsr;
438 
439 	if (openfirmware_entry == NULL)
440 		return (-1);
441 
442 	/*
443 	 * Turn off exceptions - we really don't want to end up
444 	 * anywhere unexpected with PCPU set to something strange
445 	 * or the stack pointer wrong.
446 	 */
447 	oldmsr = intr_disable();
448 
449 	ofw_sprg_prepare();
450 
451 	/* Save trap vectors */
452 	ofw_save_trap_vec(save_trap_of);
453 
454 	/* Restore initially saved trap vectors */
455 	ofw_restore_trap_vec(save_trap_init);
456 
457 #ifndef __powerpc64__
458 	/*
459 	 * Clear battable[] translations
460 	 */
461 	if (!(cpu_features & PPC_FEATURE_64))
462 		__asm __volatile("mtdbatu 2, %0\n"
463 				 "mtdbatu 3, %0" : : "r" (0));
464 	isync();
465 #endif
466 
467 	result = ofwcall(args);
468 
469 	/* Restore trap vecotrs */
470 	ofw_restore_trap_vec(save_trap_of);
471 
472 	ofw_sprg_restore();
473 
474 	intr_restore(oldmsr);
475 
476 	return (result);
477 }
478 
479 #ifdef SMP
480 struct ofw_rv_args {
481 	void *args;
482 	int retval;
483 	volatile int in_progress;
484 };
485 
486 static void
487 ofw_rendezvous_dispatch(void *xargs)
488 {
489 	struct ofw_rv_args *rv_args = xargs;
490 
491 	/* NOTE: Interrupts are disabled here */
492 
493 	if (PCPU_GET(cpuid) == 0) {
494 		/*
495 		 * Execute all OF calls on CPU 0
496 		 */
497 		rv_args->retval = openfirmware_core(rv_args->args);
498 		rv_args->in_progress = 0;
499 	} else {
500 		/*
501 		 * Spin with interrupts off on other CPUs while OF has
502 		 * control of the machine.
503 		 */
504 		while (rv_args->in_progress)
505 			cpu_spinwait();
506 	}
507 }
508 #endif
509 
510 static int
511 openfirmware(void *args)
512 {
513 	int result;
514 	#ifdef SMP
515 	struct ofw_rv_args rv_args;
516 	#endif
517 
518 	if (openfirmware_entry == NULL)
519 		return (-1);
520 
521 	#ifdef SMP
522 	rv_args.args = args;
523 	rv_args.in_progress = 1;
524 	smp_rendezvous(smp_no_rendezvous_barrier, ofw_rendezvous_dispatch,
525 	    smp_no_rendezvous_barrier, &rv_args);
526 	result = rv_args.retval;
527 	#else
528 	result = openfirmware_core(args);
529 	#endif
530 
531 	return (result);
532 }
533 
534 void
535 OF_reboot()
536 {
537 	struct {
538 		cell_t name;
539 		cell_t nargs;
540 		cell_t nreturns;
541 		cell_t arg;
542 	} args;
543 
544 	args.name = (cell_t)(uintptr_t)"interpret";
545 	args.nargs = 1;
546 	args.nreturns = 0;
547 	args.arg = (cell_t)(uintptr_t)"reset-all";
548 	openfirmware_core(&args); /* Don't do rendezvous! */
549 
550 	for (;;);	/* just in case */
551 }
552 
553 #endif /* AIM */
554 
555 void
556 OF_getetheraddr(device_t dev, u_char *addr)
557 {
558 	phandle_t	node;
559 
560 	node = ofw_bus_get_node(dev);
561 	OF_getprop(node, "local-mac-address", addr, ETHER_ADDR_LEN);
562 }
563 
564 /*
565  * Return a bus handle and bus tag that corresponds to the register
566  * numbered regno for the device referenced by the package handle
567  * dev. This function is intended to be used by console drivers in
568  * early boot only. It works by mapping the address of the device's
569  * register in the address space of its parent and recursively walk
570  * the device tree upward this way.
571  */
572 int
573 OF_decode_addr(phandle_t dev, int regno, bus_space_tag_t *tag,
574     bus_space_handle_t *handle, bus_size_t *sz)
575 {
576 	bus_addr_t addr;
577 	bus_size_t size;
578 	pcell_t pci_hi;
579 	int flags, res;
580 
581 	res = ofw_reg_to_paddr(dev, regno, &addr, &size, &pci_hi);
582 	if (res < 0)
583 		return (res);
584 
585 	if (pci_hi == OFW_PADDR_NOT_PCI) {
586 		*tag = &bs_be_tag;
587 		flags = 0;
588 	} else {
589 		*tag = &bs_le_tag;
590 		flags = (pci_hi & OFW_PCI_PHYS_HI_PREFETCHABLE) ?
591 		    BUS_SPACE_MAP_PREFETCHABLE: 0;
592 	}
593 
594 	if (sz != NULL)
595 		*sz = size;
596 
597 	return (bus_space_map(*tag, addr, size, flags, handle));
598 }
599 
600