3 * Copyright (C) 1995-1996 Gary Thomas (gdt@linuxppc.org)
4 * Rewritten by Cort Dougan (cort@cs.nmt.edu) for PReP
5 * Copyright (C) 1996 Cort Dougan <cort@cs.nmt.edu>
6 * Low-level exception handlers and MMU support
7 * rewritten by Paul Mackerras.
8 * Copyright (C) 1996 Paul Mackerras.
9 * MPC8xx modifications by Dan Malek
10 * Copyright (C) 1997 Dan Malek (dmalek@jlc.net).
12 * This file contains low-level support and setup for PowerPC 8xx
13 * embedded processors, including trap and interrupt dispatch.
15 * This program is free software; you can redistribute it and/or
16 * modify it under the terms of the GNU General Public License
17 * as published by the Free Software Foundation; either version
18 * 2 of the License, or (at your option) any later version.
22 #include <asm/processor.h>
25 #include <asm/cache.h>
26 #include <asm/pgtable.h>
27 #include <asm/cputable.h>
28 #include <asm/thread_info.h>
29 #include <asm/ppc_asm.h>
30 #include <asm/asm-offsets.h>
32 /* Macro to make the code more readable. */
33 #ifdef CONFIG_8xx_CPU6
34 #define DO_8xx_CPU6(val, reg) \
39 #define DO_8xx_CPU6(val, reg)
49 * This port was done on an MBX board with an 860. Right now I only
50 * support an ELF compressed (zImage) boot from EPPC-Bug because the
51 * code there loads up some registers before calling us:
52 * r3: ptr to board info data
53 * r4: initrd_start or if no initrd then 0
54 * r5: initrd_end - unused if r4 is 0
55 * r6: Start of command line string
56 * r7: End of command line string
58 * I decided to use conditional compilation instead of checking PVR and
59 * adding more processor specific branches around code I don't need.
60 * Since this is an embedded processor, I also appreciate any memory
63 * The MPC8xx does not have any BATs, but it supports large page sizes.
64 * We first initialize the MMU to support 8M byte pages, then load one
65 * entry into each of the instruction and data TLBs to map the first
66 * 8M 1:1. I also mapped an additional I/O space 1:1 so we can get to
67 * the "internal" processor registers before MMU_init is called.
69 * The TLB code currently contains a major hack. Since I use the condition
70 * code register, I have to save and restore it. I am out of registers, so
71 * I just store it in memory location 0 (the TLB handlers are not reentrant).
72 * To avoid making any decisions, I need to use the "segment" valid bit
73 * in the first level table, but that would require many changes to the
74 * Linux page directory/table functions that I don't want to do right now.
76 * I used to use SPRG2 for a temporary register in the TLB handler, but it
77 * has since been put to other uses. I now use a hack to save a register
78 * and the CCR at memory location 0.....Someday I'll fix this.....
83 mr r31,r3 /* save parameters */
89 /* We have to turn on the MMU right away so we get cache modes
94 /* We now have the lower 8 Meg mapped into TLB entries, and the caches
100 ori r0,r0,MSR_DR|MSR_IR
103 ori r0,r0,start_here@l
106 rfi /* enables MMU */
109 * Exception entry code. This code runs with address translation
110 * turned off, i.e. using physical addresses.
111 * We assume sprg3 has the physical address of the current
112 * task's thread_struct.
114 #define EXCEPTION_PROLOG \
115 mtspr SPRN_SPRG0,r10; \
116 mtspr SPRN_SPRG1,r11; \
118 EXCEPTION_PROLOG_1; \
121 #define EXCEPTION_PROLOG_1 \
122 mfspr r11,SPRN_SRR1; /* check whether user or kernel */ \
123 andi. r11,r11,MSR_PR; \
124 tophys(r11,r1); /* use tophys(r1) if kernel */ \
126 mfspr r11,SPRN_SPRG3; \
127 lwz r11,THREAD_INFO-THREAD(r11); \
128 addi r11,r11,THREAD_SIZE; \
130 1: subi r11,r11,INT_FRAME_SIZE /* alloc exc. frame */
133 #define EXCEPTION_PROLOG_2 \
135 stw r10,_CCR(r11); /* save registers */ \
136 stw r12,GPR12(r11); \
138 mfspr r10,SPRN_SPRG0; \
139 stw r10,GPR10(r11); \
140 mfspr r12,SPRN_SPRG1; \
141 stw r12,GPR11(r11); \
143 stw r10,_LINK(r11); \
144 mfspr r12,SPRN_SRR0; \
145 mfspr r9,SPRN_SRR1; \
148 tovirt(r1,r11); /* set new kernel sp */ \
149 li r10,MSR_KERNEL & ~(MSR_IR|MSR_DR); /* can take exceptions */ \
150 MTMSRD(r10); /* (except for mach check in rtas) */ \
152 SAVE_4GPRS(3, r11); \
156 * Note: code which follows this uses cr0.eq (set if from kernel),
157 * r11, r12 (SRR0), and r9 (SRR1).
159 * Note2: once we have set r1 we are in a position to take exceptions
160 * again, and we could thus set MSR:RI at that point.
166 #define EXCEPTION(n, label, hdlr, xfer) \
170 addi r3,r1,STACK_FRAME_OVERHEAD; \
173 #define EXC_XFER_TEMPLATE(n, hdlr, trap, copyee, tfer, ret) \
183 #define COPY_EE(d, s) rlwimi d,s,0,16,16
186 #define EXC_XFER_STD(n, hdlr) \
187 EXC_XFER_TEMPLATE(n, hdlr, n, NOCOPY, transfer_to_handler_full, \
188 ret_from_except_full)
190 #define EXC_XFER_LITE(n, hdlr) \
191 EXC_XFER_TEMPLATE(n, hdlr, n+1, NOCOPY, transfer_to_handler, \
194 #define EXC_XFER_EE(n, hdlr) \
195 EXC_XFER_TEMPLATE(n, hdlr, n, COPY_EE, transfer_to_handler_full, \
196 ret_from_except_full)
198 #define EXC_XFER_EE_LITE(n, hdlr) \
199 EXC_XFER_TEMPLATE(n, hdlr, n+1, COPY_EE, transfer_to_handler, \
203 EXCEPTION(0x100, Reset, unknown_exception, EXC_XFER_STD)
213 addi r3,r1,STACK_FRAME_OVERHEAD
214 EXC_XFER_STD(0x200, machine_check_exception)
216 /* Data access exception.
217 * This is "never generated" by the MPC8xx. We jump to it for other
218 * translation errors.
227 EXC_XFER_EE_LITE(0x300, handle_page_fault)
229 /* Instruction access exception.
230 * This is "never generated" by the MPC8xx. We jump to it for other
231 * translation errors.
238 EXC_XFER_EE_LITE(0x400, handle_page_fault)
240 /* External interrupt */
241 EXCEPTION(0x500, HardwareInterrupt, do_IRQ, EXC_XFER_LITE)
243 /* Alignment exception */
251 addi r3,r1,STACK_FRAME_OVERHEAD
252 EXC_XFER_EE(0x600, alignment_exception)
254 /* Program check exception */
255 EXCEPTION(0x700, ProgramCheck, program_check_exception, EXC_XFER_STD)
257 /* No FPU on MPC8xx. This exception is not supposed to happen.
259 EXCEPTION(0x800, FPUnavailable, unknown_exception, EXC_XFER_STD)
262 EXCEPTION(0x900, Decrementer, timer_interrupt, EXC_XFER_LITE)
264 EXCEPTION(0xa00, Trap_0a, unknown_exception, EXC_XFER_EE)
265 EXCEPTION(0xb00, Trap_0b, unknown_exception, EXC_XFER_EE)
271 EXC_XFER_EE_LITE(0xc00, DoSyscall)
273 /* Single step - not used on 601 */
274 EXCEPTION(0xd00, SingleStep, single_step_exception, EXC_XFER_STD)
275 EXCEPTION(0xe00, Trap_0e, unknown_exception, EXC_XFER_EE)
276 EXCEPTION(0xf00, Trap_0f, unknown_exception, EXC_XFER_EE)
278 /* On the MPC8xx, this is a software emulation interrupt. It occurs
279 * for all unimplemented and illegal instructions.
281 EXCEPTION(0x1000, SoftEmu, SoftwareEmulation, EXC_XFER_STD)
285 * For the MPC8xx, this is a software tablewalk to load the instruction
286 * TLB. It is modelled after the example in the Motorola manual. The task
287 * switch loads the M_TWB register with the pointer to the first level table.
288 * If we discover there is no second level table (value is zero) or if there
289 * is an invalid pte, we load that into the TLB, which causes another fault
290 * into the TLB Error interrupt where we can handle such problems.
291 * We have to use the MD_xxx registers for the tablewalk because the
292 * equivalent MI_xxx registers only perform the attribute functions.
295 #ifdef CONFIG_8xx_CPU6
298 DO_8xx_CPU6(0x3f80, r3)
299 mtspr SPRN_M_TW, r10 /* Save a couple of working registers */
303 mfspr r10, SPRN_SRR0 /* Get effective address of fault */
304 DO_8xx_CPU6(0x3780, r3)
305 mtspr SPRN_MD_EPN, r10 /* Have to use MD_EPN for walk, MI_EPN can't */
306 mfspr r10, SPRN_M_TWB /* Get level 1 table entry address */
308 /* If we are faulting a kernel address, we have to use the
309 * kernel page tables.
311 andi. r11, r10, 0x0800 /* Address >= 0x80000000 */
313 lis r11, swapper_pg_dir@h
314 ori r11, r11, swapper_pg_dir@l
315 rlwimi r10, r11, 0, 2, 19
317 lwz r11, 0(r10) /* Get the level 1 entry */
318 rlwinm. r10, r11,0,0,19 /* Extract page descriptor page address */
319 beq 2f /* If zero, don't try to find a pte */
321 /* We have a pte table, so load the MI_TWC with the attributes
322 * for this "segment."
324 ori r11,r11,1 /* Set valid bit */
325 DO_8xx_CPU6(0x2b80, r3)
326 mtspr SPRN_MI_TWC, r11 /* Set segment attributes */
327 DO_8xx_CPU6(0x3b80, r3)
328 mtspr SPRN_MD_TWC, r11 /* Load pte table base address */
329 mfspr r11, SPRN_MD_TWC /* ....and get the pte address */
330 lwz r10, 0(r11) /* Get the pte */
333 /* do not set the _PAGE_ACCESSED bit of a non-present page */
334 andi. r11, r10, _PAGE_PRESENT
336 ori r10, r10, _PAGE_ACCESSED
337 mfspr r11, SPRN_MD_TWC /* get the pte address again */
341 ori r10, r10, _PAGE_ACCESSED
345 /* The Linux PTE won't go exactly into the MMU TLB.
346 * Software indicator bits 21, 22 and 28 must be clear.
347 * Software indicator bits 24, 25, 26, and 27 must be
348 * set. All other Linux PTE bits control the behavior
352 rlwimi r10, r11, 0, 24, 28 /* Set 24-27, clear 28 */
353 DO_8xx_CPU6(0x2d80, r3)
354 mtspr SPRN_MI_RPN, r10 /* Update TLB entry */
356 mfspr r10, SPRN_M_TW /* Restore registers */
360 #ifdef CONFIG_8xx_CPU6
368 DO_8xx_CPU6(0x3f80, r3)
369 mtspr SPRN_M_TW, r10 /* Save a couple of working registers */
373 mfspr r10, SPRN_M_TWB /* Get level 1 table entry address */
375 /* If we are faulting a kernel address, we have to use the
376 * kernel page tables.
378 andi. r11, r10, 0x0800
380 lis r11, swapper_pg_dir@h
381 ori r11, r11, swapper_pg_dir@l
382 rlwimi r10, r11, 0, 2, 19
386 lwz r11, 0(r10) /* Get the level 1 entry */
387 rlwinm. r10, r11,0,0,19 /* Extract page descriptor page address */
388 beq 2f /* If zero, don't try to find a pte */
390 /* We have a pte table, so load fetch the pte from the table.
392 ori r11, r11, 1 /* Set valid bit in physical L2 page */
393 DO_8xx_CPU6(0x3b80, r3)
394 mtspr SPRN_MD_TWC, r11 /* Load pte table base address */
395 mfspr r10, SPRN_MD_TWC /* ....and get the pte address */
396 lwz r10, 0(r10) /* Get the pte */
398 /* Insert the Guarded flag into the TWC from the Linux PTE.
399 * It is bit 27 of both the Linux PTE and the TWC (at least
400 * I got that right :-). It will be better when we can put
401 * this into the Linux pgd/pmd and load it in the operation
404 rlwimi r11, r10, 0, 27, 27
405 DO_8xx_CPU6(0x3b80, r3)
406 mtspr SPRN_MD_TWC, r11
409 /* do not set the _PAGE_ACCESSED bit of a non-present page */
410 andi. r11, r10, _PAGE_PRESENT
412 ori r10, r10, _PAGE_ACCESSED
414 /* and update pte in table */
416 ori r10, r10, _PAGE_ACCESSED
418 mfspr r11, SPRN_MD_TWC /* get the pte address again */
421 /* The Linux PTE won't go exactly into the MMU TLB.
422 * Software indicator bits 21, 22 and 28 must be clear.
423 * Software indicator bits 24, 25, 26, and 27 must be
424 * set. All other Linux PTE bits control the behavior
428 rlwimi r10, r11, 0, 24, 28 /* Set 24-27, clear 28 */
429 DO_8xx_CPU6(0x3d80, r3)
430 mtspr SPRN_MD_RPN, r10 /* Update TLB entry */
432 mfspr r10, SPRN_M_TW /* Restore registers */
439 /* This is an instruction TLB error on the MPC8xx. This could be due
440 * to many reasons, such as executing guarded memory or illegal instruction
441 * addresses. There is nothing to do but handle a big time error fault.
449 lwz r11, 0(r10) /* Get the level 1 entry */
450 rlwinm. r10, r11,0,0,19 /* Extract page descriptor page address */
451 beq 3f /* If zero, don't try to find a pte */
453 /* We have a pte table, so load fetch the pte from the table.
455 ori r11, r11, 1 /* Set valid bit in physical L2 page */
456 DO_8xx_CPU6(0x3b80, r3)
457 mtspr SPRN_MD_TWC, r11 /* Load pte table base address */
458 mfspr r10, SPRN_MD_TWC /* ....and get the pte address */
459 lwz r10, 0(r10) /* Get the pte */
461 /* Insert the Guarded flag into the TWC from the Linux PTE.
462 * It is bit 27 of both the Linux PTE and the TWC (at least
463 * I got that right :-). It will be better when we can put
464 * this into the Linux pgd/pmd and load it in the operation
467 rlwimi r11, r10, 0, 27, 27
469 rlwimi r12, r10, 0, 0, 9 /* extract phys. addr */
470 mfspr r3, SPRN_MD_EPN
471 rlwinm r3, r3, 0, 0, 9 /* extract virtual address */
473 cmpw r3, r12 /* only use 8M page if it is a direct
476 ori r11, r11, MD_PS8MEG
480 li r12, 0 /* can't use 8MB TLB, so zero r12. */
482 DO_8xx_CPU6(0x3b80, r3)
483 mtspr SPRN_MD_TWC, r11
485 /* The Linux PTE won't go exactly into the MMU TLB.
486 * Software indicator bits 21, 22 and 28 must be clear.
487 * Software indicator bits 24, 25, 26, and 27 must be
488 * set. All other Linux PTE bits control the behavior
492 rlwimi r10, r11, 0, 24, 28 /* Set 24-27, clear 28 */
497 mfspr r12, SPRN_MD_EPN
498 lis r3, 0xff80 /* 10-19 must be clear for 8MB TLB */
501 DO_8xx_CPU6(0x3780, r3)
502 mtspr SPRN_MD_EPN, r12
504 lis r3, 0xff80 /* 10-19 must be clear for 8MB TLB */
508 DO_8xx_CPU6(0x3d80, r3)
509 mtspr SPRN_MD_RPN, r10 /* Update TLB entry */
511 mfspr r10, SPRN_M_TW /* Restore registers */
520 /* This is the data TLB error on the MPC8xx. This could be due to
521 * many reasons, including a dirty update to a pte. We can catch that
522 * one here, but anything else is an error. First, we track down the
523 * Linux pte. If it is valid, write access is allowed, but the
524 * page dirty bit is not set, we will set it and reload the TLB. For
525 * any other case, we bail out to a higher level function that can
530 #ifdef CONFIG_8xx_CPU6
533 DO_8xx_CPU6(0x3f80, r3)
534 mtspr SPRN_M_TW, r10 /* Save a couple of working registers */
539 /* First, make sure this was a store operation.
541 mfspr r10, SPRN_DSISR
542 andis. r11, r10, 0x0200 /* If set, indicates store op */
545 /* The EA of a data TLB miss is automatically stored in the MD_EPN
546 * register. The EA of a data TLB error is automatically stored in
547 * the DAR, but not the MD_EPN register. We must copy the 20 most
548 * significant bits of the EA from the DAR to MD_EPN before we
549 * start walking the page tables. We also need to copy the CASID
550 * value from the M_CASID register.
551 * Addendum: The EA of a data TLB error is _supposed_ to be stored
552 * in DAR, but it seems that this doesn't happen in some cases, such
553 * as when the error is due to a dcbi instruction to a page with a
554 * TLB that doesn't have the changed bit set. In such cases, there
555 * does not appear to be any way to recover the EA of the error
556 * since it is neither in DAR nor MD_EPN. As a workaround, the
557 * _PAGE_HWWRITE bit is set for all kernel data pages when the PTEs
558 * are initialized in mapin_ram(). This will avoid the problem,
559 * assuming we only use the dcbi instruction on kernel addresses.
562 rlwinm r11, r10, 0, 0, 19
563 ori r11, r11, MD_EVALID
564 mfspr r10, SPRN_M_CASID
565 rlwimi r11, r10, 0, 28, 31
566 DO_8xx_CPU6(0x3780, r3)
567 mtspr SPRN_MD_EPN, r11
569 mfspr r10, SPRN_M_TWB /* Get level 1 table entry address */
571 /* If we are faulting a kernel address, we have to use the
572 * kernel page tables.
574 andi. r11, r10, 0x0800
576 lis r11, swapper_pg_dir@h
577 ori r11, r11, swapper_pg_dir@l
578 rlwimi r10, r11, 0, 2, 19
580 lwz r11, 0(r10) /* Get the level 1 entry */
581 rlwinm. r10, r11,0,0,19 /* Extract page descriptor page address */
582 beq 2f /* If zero, bail */
584 /* We have a pte table, so fetch the pte from the table.
586 ori r11, r11, 1 /* Set valid bit in physical L2 page */
587 DO_8xx_CPU6(0x3b80, r3)
588 mtspr SPRN_MD_TWC, r11 /* Load pte table base address */
589 mfspr r11, SPRN_MD_TWC /* ....and get the pte address */
590 lwz r10, 0(r11) /* Get the pte */
592 andi. r11, r10, _PAGE_RW /* Is it writeable? */
593 beq 2f /* Bail out if not */
595 /* Update 'changed', among others.
598 ori r10, r10, _PAGE_DIRTY|_PAGE_HWWRITE
599 /* do not set the _PAGE_ACCESSED bit of a non-present page */
600 andi. r11, r10, _PAGE_PRESENT
602 ori r10, r10, _PAGE_ACCESSED
605 ori r10, r10, _PAGE_DIRTY|_PAGE_ACCESSED|_PAGE_HWWRITE
607 mfspr r11, SPRN_MD_TWC /* Get pte address again */
608 stw r10, 0(r11) /* and update pte in table */
610 /* The Linux PTE won't go exactly into the MMU TLB.
611 * Software indicator bits 21, 22 and 28 must be clear.
612 * Software indicator bits 24, 25, 26, and 27 must be
613 * set. All other Linux PTE bits control the behavior
617 rlwimi r10, r11, 0, 24, 28 /* Set 24-27, clear 28 */
618 DO_8xx_CPU6(0x3d80, r3)
619 mtspr SPRN_MD_RPN, r10 /* Update TLB entry */
621 mfspr r10, SPRN_M_TW /* Restore registers */
625 #ifdef CONFIG_8xx_CPU6
630 mfspr r10, SPRN_M_TW /* Restore registers */
634 #ifdef CONFIG_8xx_CPU6
639 EXCEPTION(0x1500, Trap_15, unknown_exception, EXC_XFER_EE)
640 EXCEPTION(0x1600, Trap_16, unknown_exception, EXC_XFER_EE)
641 EXCEPTION(0x1700, Trap_17, unknown_exception, EXC_XFER_EE)
642 EXCEPTION(0x1800, Trap_18, unknown_exception, EXC_XFER_EE)
643 EXCEPTION(0x1900, Trap_19, unknown_exception, EXC_XFER_EE)
644 EXCEPTION(0x1a00, Trap_1a, unknown_exception, EXC_XFER_EE)
645 EXCEPTION(0x1b00, Trap_1b, unknown_exception, EXC_XFER_EE)
647 /* On the MPC8xx, these next four traps are used for development
648 * support of breakpoints and such. Someday I will get around to
651 EXCEPTION(0x1c00, Trap_1c, unknown_exception, EXC_XFER_EE)
652 EXCEPTION(0x1d00, Trap_1d, unknown_exception, EXC_XFER_EE)
653 EXCEPTION(0x1e00, Trap_1e, unknown_exception, EXC_XFER_EE)
654 EXCEPTION(0x1f00, Trap_1f, unknown_exception, EXC_XFER_EE)
663 * This is where the main kernel code starts.
668 ori r2,r2,init_task@l
670 /* ptr to phys current thread */
672 addi r4,r4,THREAD /* init task's THREAD */
675 mtspr SPRN_SPRG2,r3 /* 0 => r1 has kernel sp */
678 lis r1,init_thread_union@ha
679 addi r1,r1,init_thread_union@l
681 stwu r0,THREAD_SIZE-STACK_FRAME_OVERHEAD(r1)
683 bl early_init /* We have to do this with MMU on */
686 * Decide what sort of machine this is and initialize the MMU.
697 * Go back to running unmapped so we can load up new values
698 * and change to using our exception vectors.
699 * On the 8xx, all we have to do is invalidate the TLB to clear
700 * the old 8M byte TLB mappings and load the page table base register.
702 /* The right way to do this would be to track it down through
703 * init's THREAD like the context switch code does, but this is
704 * easier......until someone changes init's static structures.
706 lis r6, swapper_pg_dir@h
707 ori r6, r6, swapper_pg_dir@l
709 #ifdef CONFIG_8xx_CPU6
710 lis r4, cpu6_errata_word@h
711 ori r4, r4, cpu6_errata_word@l
720 li r3,MSR_KERNEL & ~(MSR_IR|MSR_DR)
724 /* Load up the kernel context */
726 SYNC /* Force all PTE updates to finish */
727 tlbia /* Clear all TLB entries */
728 sync /* wait for tlbia/tlbie to finish */
729 TLBSYNC /* ... on all CPUs */
731 /* set up the PTE pointers for the Abatron bdiGDB.
734 lis r5, abatron_pteptrs@h
735 ori r5, r5, abatron_pteptrs@l
736 stw r5, 0xf0(r0) /* Must match your Abatron config file */
740 /* Now turn on the MMU for real! */
742 lis r3,start_kernel@h
743 ori r3,r3,start_kernel@l
746 rfi /* enable MMU and jump to start_kernel */
748 /* Set up the initial MMU state so we can do the first level of
749 * kernel initialization. This maps the first 8 MBytes of memory 1:1
750 * virtual to physical. Also, set the cache mode since that is defined
751 * by TLB entries and perform any additional mapping (like of the IMMR).
752 * If configured to pin some TLBs, we pin the first 8 Mbytes of kernel,
753 * 24 Mbytes of data, and the 8M IMMR space. Anything not covered by
754 * these mappings is mapped by page tables.
757 tlbia /* Invalidate all TLB entries */
758 #ifdef CONFIG_PIN_TLB
764 mtspr SPRN_MI_CTR, r8 /* Set instruction MMU control */
766 #ifdef CONFIG_PIN_TLB
767 lis r10, (MD_RSV4I | MD_RESETVAL)@h
771 lis r10, MD_RESETVAL@h
773 #ifndef CONFIG_8xx_COPYBACK
774 oris r10, r10, MD_WTDEF@h
776 mtspr SPRN_MD_CTR, r10 /* Set data TLB control */
778 /* Now map the lower 8 Meg into the TLBs. For this quick hack,
779 * we can load the instruction and data TLB registers with the
782 lis r8, KERNELBASE@h /* Create vaddr for TLB */
783 ori r8, r8, MI_EVALID /* Mark it valid */
784 mtspr SPRN_MI_EPN, r8
785 mtspr SPRN_MD_EPN, r8
786 li r8, MI_PS8MEG /* Set 8M byte page */
787 ori r8, r8, MI_SVALID /* Make it valid */
788 mtspr SPRN_MI_TWC, r8
789 mtspr SPRN_MD_TWC, r8
790 li r8, MI_BOOTINIT /* Create RPN for address 0 */
791 mtspr SPRN_MI_RPN, r8 /* Store TLB entry */
792 mtspr SPRN_MD_RPN, r8
793 lis r8, MI_Kp@h /* Set the protection mode */
797 /* Map another 8 MByte at the IMMR to get the processor
798 * internal registers (among other things).
800 #ifdef CONFIG_PIN_TLB
801 addi r10, r10, 0x0100
802 mtspr SPRN_MD_CTR, r10
804 mfspr r9, 638 /* Get current IMMR */
805 andis. r9, r9, 0xff80 /* Get 8Mbyte boundary */
807 mr r8, r9 /* Create vaddr for TLB */
808 ori r8, r8, MD_EVALID /* Mark it valid */
809 mtspr SPRN_MD_EPN, r8
810 li r8, MD_PS8MEG /* Set 8M byte page */
811 ori r8, r8, MD_SVALID /* Make it valid */
812 mtspr SPRN_MD_TWC, r8
813 mr r8, r9 /* Create paddr for TLB */
814 ori r8, r8, MI_BOOTINIT|0x2 /* Inhibit cache -- Cort */
815 mtspr SPRN_MD_RPN, r8
817 #ifdef CONFIG_PIN_TLB
818 /* Map two more 8M kernel data pages.
820 addi r10, r10, 0x0100
821 mtspr SPRN_MD_CTR, r10
823 lis r8, KERNELBASE@h /* Create vaddr for TLB */
824 addis r8, r8, 0x0080 /* Add 8M */
825 ori r8, r8, MI_EVALID /* Mark it valid */
826 mtspr SPRN_MD_EPN, r8
827 li r9, MI_PS8MEG /* Set 8M byte page */
828 ori r9, r9, MI_SVALID /* Make it valid */
829 mtspr SPRN_MD_TWC, r9
830 li r11, MI_BOOTINIT /* Create RPN for address 0 */
831 addis r11, r11, 0x0080 /* Add 8M */
832 mtspr SPRN_MD_RPN, r11
834 addi r10, r10, 0x0100
835 mtspr SPRN_MD_CTR, r10
837 addis r8, r8, 0x0080 /* Add 8M */
838 mtspr SPRN_MD_EPN, r8
839 mtspr SPRN_MD_TWC, r9
840 addis r11, r11, 0x0080 /* Add 8M */
841 mtspr SPRN_MD_RPN, r11
844 /* Since the cache is enabled according to the information we
845 * just loaded into the TLB, invalidate and enable the caches here.
846 * We should probably check/set other modes....later.
849 mtspr SPRN_IC_CST, r8
850 mtspr SPRN_DC_CST, r8
852 mtspr SPRN_IC_CST, r8
853 #ifdef CONFIG_8xx_COPYBACK
854 mtspr SPRN_DC_CST, r8
856 /* For a debug option, I left this here to easily enable
857 * the write through cache mode
860 mtspr SPRN_DC_CST, r8
862 mtspr SPRN_DC_CST, r8
868 * Set up to use a given MMU context.
869 * r3 is context number, r4 is PGD pointer.
871 * We place the physical address of the new task page directory loaded
872 * into the MMU base register, and set the ASID compare register with
877 #ifdef CONFIG_BDI_SWITCH
878 /* Context switch the PTE pointer for the Abatron BDI2000.
879 * The PGDIR is passed as second argument.
886 #ifdef CONFIG_8xx_CPU6
887 lis r6, cpu6_errata_word@h
888 ori r6, r6, cpu6_errata_word@l
893 mtspr SPRN_M_TWB, r4 /* Update MMU base address */
897 mtspr SPRN_M_CASID, r3 /* Update context */
899 mtspr SPRN_M_CASID,r3 /* Update context */
901 mtspr SPRN_M_TWB, r4 /* and pgd */
906 #ifdef CONFIG_8xx_CPU6
907 /* It's here because it is unique to the 8xx.
908 * It is important we get called with interrupts disabled. I used to
909 * do that, but it appears that all code that calls this already had
910 * interrupt disabled.
914 lis r7, cpu6_errata_word@h
915 ori r7, r7, cpu6_errata_word@l
919 mtspr 22, r3 /* Update Decrementer */
925 * We put a few things here that have to be page-aligned.
926 * This stuff goes at the beginning of the data segment,
927 * which is page-aligned.
932 .globl empty_zero_page
936 .globl swapper_pg_dir
941 * This space gets a copy of optional info passed to us by the bootstrap
942 * Used to pass parameters into the kernel like root=/dev/sda1, etc.
948 /* Room for two PTE table poiners, usually the kernel and current user
949 * pointer to their respective root page table (pgdir).
954 #ifdef CONFIG_8xx_CPU6
955 .globl cpu6_errata_word