pmap_bootstrap.c revision 1.47 1 1.47 tsutsui /* $NetBSD: pmap_bootstrap.c,v 1.47 2010/12/25 14:43:00 tsutsui Exp $ */
2 1.4 cgd
3 1.24 tsutsui /*
4 1.1 mycroft * Copyright (c) 1991, 1993
5 1.1 mycroft * The Regents of the University of California. All rights reserved.
6 1.1 mycroft *
7 1.1 mycroft * This code is derived from software contributed to Berkeley by
8 1.1 mycroft * the Systems Programming Group of the University of Utah Computer
9 1.1 mycroft * Science Department.
10 1.1 mycroft *
11 1.1 mycroft * Redistribution and use in source and binary forms, with or without
12 1.1 mycroft * modification, are permitted provided that the following conditions
13 1.1 mycroft * are met:
14 1.1 mycroft * 1. Redistributions of source code must retain the above copyright
15 1.1 mycroft * notice, this list of conditions and the following disclaimer.
16 1.1 mycroft * 2. Redistributions in binary form must reproduce the above copyright
17 1.1 mycroft * notice, this list of conditions and the following disclaimer in the
18 1.1 mycroft * documentation and/or other materials provided with the distribution.
19 1.23 agc * 3. Neither the name of the University nor the names of its contributors
20 1.1 mycroft * may be used to endorse or promote products derived from this software
21 1.1 mycroft * without specific prior written permission.
22 1.1 mycroft *
23 1.1 mycroft * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
24 1.1 mycroft * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
25 1.1 mycroft * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
26 1.1 mycroft * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
27 1.1 mycroft * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
28 1.1 mycroft * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
29 1.1 mycroft * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
30 1.1 mycroft * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
31 1.1 mycroft * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
32 1.1 mycroft * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
33 1.1 mycroft * SUCH DAMAGE.
34 1.1 mycroft *
35 1.4 cgd * @(#)pmap_bootstrap.c 8.1 (Berkeley) 6/10/93
36 1.1 mycroft */
37 1.20 gmcgarry
38 1.20 gmcgarry #include <sys/cdefs.h>
39 1.47 tsutsui __KERNEL_RCSID(0, "$NetBSD: pmap_bootstrap.c,v 1.47 2010/12/25 14:43:00 tsutsui Exp $");
40 1.1 mycroft
41 1.1 mycroft #include <sys/param.h>
42 1.11 scottr
43 1.11 scottr #include <machine/frame.h>
44 1.11 scottr #include <machine/cpu.h>
45 1.12 thorpej #include <machine/hp300spu.h>
46 1.11 scottr #include <machine/vmparam.h>
47 1.1 mycroft #include <machine/pte.h>
48 1.11 scottr
49 1.1 mycroft #include <hp300/hp300/clockreg.h>
50 1.1 mycroft
51 1.19 mrg #include <uvm/uvm_extern.h>
52 1.1 mycroft
53 1.36 tsutsui #define RELOC(v, t) *((t*)((uintptr_t)&(v) + firstpa))
54 1.1 mycroft
55 1.1 mycroft extern char *etext;
56 1.15 kleink extern vaddr_t CLKbase, MMUbase;
57 1.17 thorpej extern paddr_t bootinfo_pa;
58 1.17 thorpej extern vaddr_t bootinfo_va;
59 1.1 mycroft
60 1.1 mycroft extern int maxmem, physmem;
61 1.15 kleink extern paddr_t avail_start, avail_end;
62 1.9 thorpej #ifdef M68K_MMU_HP
63 1.1 mycroft extern int pmap_aliasmask;
64 1.1 mycroft #endif
65 1.1 mycroft
66 1.34 tsutsui void pmap_bootstrap(paddr_t, paddr_t);
67 1.11 scottr
68 1.1 mycroft /*
69 1.1 mycroft * Special purpose kernel virtual addresses, used for mapping
70 1.1 mycroft * physical pages for a variety of temporary or permanent purposes:
71 1.1 mycroft *
72 1.1 mycroft * CADDR1, CADDR2: pmap zero/copy operations
73 1.1 mycroft * vmmap: /dev/mem, crash dumps, parity error checking
74 1.1 mycroft * ledbase: SPU LEDs
75 1.14 leo * msgbufaddr: kernel message buffer
76 1.1 mycroft */
77 1.29 tsutsui void *CADDR1, *CADDR2, *ledbase;
78 1.29 tsutsui char *vmmap;
79 1.30 tsutsui void *msgbufaddr;
80 1.1 mycroft
81 1.1 mycroft /*
82 1.1 mycroft * Bootstrap the VM system.
83 1.1 mycroft *
84 1.1 mycroft * Called with MMU off so we must relocate all global references by `firstpa'
85 1.1 mycroft * (don't call any functions here!) `nextpa' is the first available physical
86 1.1 mycroft * memory address. Returns an updated first PA reflecting the memory we
87 1.1 mycroft * have allocated. MMU is still off when we return.
88 1.1 mycroft *
89 1.3 mycroft * XXX assumes sizeof(u_int) == sizeof(pt_entry_t)
90 1.1 mycroft * XXX a PIC compiler would make this much easier.
91 1.1 mycroft */
92 1.1 mycroft void
93 1.25 thorpej pmap_bootstrap(paddr_t nextpa, paddr_t firstpa)
94 1.1 mycroft {
95 1.40 tsutsui paddr_t kstpa, kptpa, kptmpa, lkptpa, lwp0upa;
96 1.1 mycroft u_int nptpages, kstsize;
97 1.43 tsutsui st_entry_t protoste, *ste, *este;
98 1.11 scottr pt_entry_t protopte, *pte, *epte;
99 1.44 tsutsui u_int stfree = 0; /* XXX: gcc -Wuninitialized */
100 1.1 mycroft
101 1.1 mycroft /*
102 1.1 mycroft * Calculate important physical addresses:
103 1.1 mycroft *
104 1.42 tsutsui * lwp0upa lwp 0 u-area UPAGES pages
105 1.42 tsutsui *
106 1.1 mycroft * kstpa kernel segment table 1 page (!040)
107 1.1 mycroft * N pages (040)
108 1.1 mycroft *
109 1.42 tsutsui * kptmpa kernel PT map 1 page
110 1.42 tsutsui *
111 1.42 tsutsui * lkptpa last kernel PT page 1 page
112 1.42 tsutsui *
113 1.1 mycroft * kptpa statically allocated
114 1.1 mycroft * kernel PT pages Sysptsize+ pages
115 1.1 mycroft *
116 1.1 mycroft * [ Sysptsize is the number of pages of PT, IIOMAPSIZE and
117 1.1 mycroft * EIOMAPSIZE are the number of PTEs, hence we need to round
118 1.1 mycroft * the total to a page boundary with IO maps at the end. ]
119 1.1 mycroft *
120 1.1 mycroft * The KVA corresponding to any of these PAs is:
121 1.1 mycroft * (PA - firstpa + KERNBASE).
122 1.1 mycroft */
123 1.42 tsutsui lwp0upa = nextpa;
124 1.42 tsutsui nextpa += USPACE;
125 1.1 mycroft if (RELOC(mmutype, int) == MMU_68040)
126 1.1 mycroft kstsize = MAXKL2SIZE / (NPTEPG/SG4_LEV2SIZE);
127 1.1 mycroft else
128 1.1 mycroft kstsize = 1;
129 1.1 mycroft kstpa = nextpa;
130 1.22 thorpej nextpa += kstsize * PAGE_SIZE;
131 1.1 mycroft kptmpa = nextpa;
132 1.22 thorpej nextpa += PAGE_SIZE;
133 1.1 mycroft lkptpa = nextpa;
134 1.22 thorpej nextpa += PAGE_SIZE;
135 1.26 yamt kptpa = nextpa;
136 1.26 yamt nptpages = RELOC(Sysptsize, int) +
137 1.26 yamt (IIOMAPSIZE + EIOMAPSIZE + NPTEPG - 1) / NPTEPG;
138 1.26 yamt nextpa += nptpages * PAGE_SIZE;
139 1.1 mycroft
140 1.1 mycroft /*
141 1.1 mycroft * Initialize segment table and kernel page table map.
142 1.1 mycroft *
143 1.1 mycroft * On 68030s and earlier MMUs the two are identical except for
144 1.1 mycroft * the valid bits so both are initialized with essentially the
145 1.1 mycroft * same values. On the 68040, which has a mandatory 3-level
146 1.1 mycroft * structure, the segment table holds the level 1 table and part
147 1.1 mycroft * (or all) of the level 2 table and hence is considerably
148 1.1 mycroft * different. Here the first level consists of 128 descriptors
149 1.1 mycroft * (512 bytes) each mapping 32mb of address space. Each of these
150 1.1 mycroft * points to blocks of 128 second level descriptors (512 bytes)
151 1.1 mycroft * each mapping 256kb. Note that there may be additional "segment
152 1.1 mycroft * table" pages depending on how large MAXKL2SIZE is.
153 1.1 mycroft *
154 1.35 tsutsui * Portions of the last two segment of KVA space (0xFF800000 -
155 1.35 tsutsui * 0xFFFFFFFF) are mapped for a couple of purposes.
156 1.35 tsutsui * The first segment (0xFF800000 - 0xFFBFFFFF) is mapped
157 1.35 tsutsui * for the kernel page tables.
158 1.35 tsutsui * The very last page (0xFFFFF000) in the second segment is mapped
159 1.1 mycroft * to the last physical page of RAM to give us a region in which
160 1.1 mycroft * PA == VA. We use the first part of this page for enabling
161 1.1 mycroft * and disabling mapping. The last part of this page also contains
162 1.1 mycroft * info left by the boot ROM.
163 1.1 mycroft *
164 1.1 mycroft * XXX cramming two levels of mapping into the single "segment"
165 1.1 mycroft * table on the 68040 is intended as a temporary hack to get things
166 1.1 mycroft * working. The 224mb of address space that this allows will most
167 1.1 mycroft * likely be insufficient in the future (at least for the kernel).
168 1.1 mycroft */
169 1.1 mycroft if (RELOC(mmutype, int) == MMU_68040) {
170 1.44 tsutsui int nl1desc, nl2desc, i;
171 1.1 mycroft
172 1.1 mycroft /*
173 1.1 mycroft * First invalidate the entire "segment table" pages
174 1.1 mycroft * (levels 1 and 2 have the same "invalid" value).
175 1.1 mycroft */
176 1.43 tsutsui ste = (st_entry_t *)kstpa;
177 1.43 tsutsui este = &ste[kstsize * NPTEPG];
178 1.43 tsutsui while (ste < este)
179 1.43 tsutsui *ste++ = SG_NV;
180 1.1 mycroft /*
181 1.1 mycroft * Initialize level 2 descriptors (which immediately
182 1.1 mycroft * follow the level 1 table). We need:
183 1.1 mycroft * NPTEPG / SG4_LEV3SIZE
184 1.26 yamt * level 2 descriptors to map each of the nptpages
185 1.1 mycroft * pages of PTEs. Note that we set the "used" bit
186 1.1 mycroft * now to save the HW the expense of doing it.
187 1.1 mycroft */
188 1.44 tsutsui nl2desc = nptpages * (NPTEPG / SG4_LEV3SIZE);
189 1.43 tsutsui ste = (st_entry_t *)kstpa;
190 1.43 tsutsui ste = &ste[SG4_LEV1SIZE];
191 1.44 tsutsui este = &ste[nl2desc];
192 1.1 mycroft protoste = kptpa | SG_U | SG_RW | SG_V;
193 1.43 tsutsui while (ste < este) {
194 1.43 tsutsui *ste++ = protoste;
195 1.3 mycroft protoste += (SG4_LEV3SIZE * sizeof(st_entry_t));
196 1.1 mycroft }
197 1.1 mycroft /*
198 1.1 mycroft * Initialize level 1 descriptors. We need:
199 1.44 tsutsui * howmany(nl2desc, SG4_LEV2SIZE)
200 1.44 tsutsui * level 1 descriptors to map the `nl2desc' level 2's.
201 1.1 mycroft */
202 1.44 tsutsui nl1desc = howmany(nl2desc, SG4_LEV2SIZE);
203 1.43 tsutsui ste = (st_entry_t *)kstpa;
204 1.44 tsutsui este = &ste[nl1desc];
205 1.43 tsutsui protoste = (paddr_t)&ste[SG4_LEV1SIZE] | SG_U | SG_RW | SG_V;
206 1.43 tsutsui while (ste < este) {
207 1.43 tsutsui *ste++ = protoste;
208 1.3 mycroft protoste += (SG4_LEV2SIZE * sizeof(st_entry_t));
209 1.1 mycroft }
210 1.1 mycroft /*
211 1.44 tsutsui * Initialize the final level 1 descriptor to map the next
212 1.44 tsutsui * block of level 2 descriptors for Sysptmap.
213 1.1 mycroft */
214 1.43 tsutsui ste = (st_entry_t *)kstpa;
215 1.43 tsutsui ste = &ste[SG4_LEV1SIZE - 1];
216 1.44 tsutsui *ste = protoste;
217 1.1 mycroft /*
218 1.1 mycroft * Now initialize the final portion of that block of
219 1.26 yamt * descriptors to map kptmpa and the "last PT page".
220 1.1 mycroft */
221 1.44 tsutsui i = SG4_LEV1SIZE + (nl1desc * SG4_LEV2SIZE);
222 1.43 tsutsui ste = (st_entry_t *)kstpa;
223 1.44 tsutsui ste = &ste[i + SG4_LEV2SIZE - (NPTEPG / SG4_LEV3SIZE) * 2];
224 1.43 tsutsui este = &ste[NPTEPG / SG4_LEV3SIZE];
225 1.26 yamt protoste = kptmpa | SG_U | SG_RW | SG_V;
226 1.43 tsutsui while (ste < este) {
227 1.43 tsutsui *ste++ = protoste;
228 1.26 yamt protoste += (SG4_LEV3SIZE * sizeof(st_entry_t));
229 1.26 yamt }
230 1.43 tsutsui este = &ste[NPTEPG / SG4_LEV3SIZE];
231 1.1 mycroft protoste = lkptpa | SG_U | SG_RW | SG_V;
232 1.43 tsutsui while (ste < este) {
233 1.43 tsutsui *ste++ = protoste;
234 1.3 mycroft protoste += (SG4_LEV3SIZE * sizeof(st_entry_t));
235 1.1 mycroft }
236 1.1 mycroft /*
237 1.44 tsutsui * Calculate the free level 2 descriptor mask
238 1.44 tsutsui * noting that we have used:
239 1.44 tsutsui * 0: level 1 table
240 1.44 tsutsui * 1 to nl1desc: map page tables
241 1.44 tsutsui * nl1desc + 1: maps kptmpa and last-page page table
242 1.44 tsutsui */
243 1.44 tsutsui /* mark an entry for level 1 table */
244 1.44 tsutsui stfree = ~l2tobm(0);
245 1.44 tsutsui /* mark entries for map page tables */
246 1.44 tsutsui for (i = 1; i <= nl1desc; i++)
247 1.44 tsutsui stfree &= ~l2tobm(i);
248 1.44 tsutsui /* mark an entry for kptmpa and lkptpa */
249 1.44 tsutsui stfree &= ~l2tobm(i);
250 1.44 tsutsui /* mark entries not available */
251 1.44 tsutsui for (i = MAXKL2SIZE; i < sizeof(stfree) * NBBY; i++)
252 1.44 tsutsui stfree &= ~l2tobm(i);
253 1.44 tsutsui
254 1.44 tsutsui /*
255 1.1 mycroft * Initialize Sysptmap
256 1.1 mycroft */
257 1.43 tsutsui pte = (pt_entry_t *)kptmpa;
258 1.26 yamt epte = &pte[nptpages];
259 1.1 mycroft protopte = kptpa | PG_RW | PG_CI | PG_V;
260 1.1 mycroft while (pte < epte) {
261 1.1 mycroft *pte++ = protopte;
262 1.22 thorpej protopte += PAGE_SIZE;
263 1.1 mycroft }
264 1.7 thorpej /*
265 1.44 tsutsui * Invalidate all remaining entries.
266 1.7 thorpej */
267 1.43 tsutsui epte = (pt_entry_t *)kptmpa;
268 1.46 tsutsui epte = &epte[TIB_SIZE];
269 1.7 thorpej while (pte < epte) {
270 1.7 thorpej *pte++ = PG_NV;
271 1.7 thorpej }
272 1.10 thorpej /*
273 1.26 yamt * Initialize the last ones to point to kptmpa and the page
274 1.7 thorpej * table page allocated earlier.
275 1.7 thorpej */
276 1.44 tsutsui pte = (pt_entry_t *)kptmpa;
277 1.46 tsutsui pte = &pte[SYSMAP_VA >> SEGSHIFT];
278 1.26 yamt *pte = kptmpa | PG_RW | PG_CI | PG_V;
279 1.46 tsutsui pte = (pt_entry_t *)kptmpa;
280 1.46 tsutsui pte = &pte[MAXADDR >> SEGSHIFT];
281 1.1 mycroft *pte = lkptpa | PG_RW | PG_CI | PG_V;
282 1.1 mycroft } else {
283 1.1 mycroft /*
284 1.1 mycroft * Map the page table pages in both the HW segment table
285 1.26 yamt * and the software Sysptmap.
286 1.1 mycroft */
287 1.43 tsutsui ste = (st_entry_t *)kstpa;
288 1.43 tsutsui pte = (pt_entry_t *)kptmpa;
289 1.26 yamt epte = &pte[nptpages];
290 1.1 mycroft protoste = kptpa | SG_RW | SG_V;
291 1.1 mycroft protopte = kptpa | PG_RW | PG_CI | PG_V;
292 1.1 mycroft while (pte < epte) {
293 1.1 mycroft *ste++ = protoste;
294 1.1 mycroft *pte++ = protopte;
295 1.22 thorpej protoste += PAGE_SIZE;
296 1.22 thorpej protopte += PAGE_SIZE;
297 1.1 mycroft }
298 1.1 mycroft /*
299 1.44 tsutsui * Invalidate all remaining entries in both.
300 1.1 mycroft */
301 1.44 tsutsui este = (st_entry_t *)kstpa;
302 1.47 tsutsui este = &este[TIA_SIZE];
303 1.44 tsutsui while (ste < este)
304 1.44 tsutsui *ste++ = SG_NV;
305 1.43 tsutsui epte = (pt_entry_t *)kptmpa;
306 1.46 tsutsui epte = &epte[TIB_SIZE];
307 1.44 tsutsui while (pte < epte)
308 1.1 mycroft *pte++ = PG_NV;
309 1.1 mycroft /*
310 1.26 yamt * Initialize the last ones to point to kptmpa and the page
311 1.1 mycroft * table page allocated earlier.
312 1.1 mycroft */
313 1.44 tsutsui ste = (st_entry_t *)kstpa;
314 1.46 tsutsui ste = &ste[SYSMAP_VA >> SEGSHIFT];
315 1.44 tsutsui pte = (pt_entry_t *)kptmpa;
316 1.46 tsutsui pte = &pte[SYSMAP_VA >> SEGSHIFT];
317 1.26 yamt *ste = kptmpa | SG_RW | SG_V;
318 1.26 yamt *pte = kptmpa | PG_RW | PG_CI | PG_V;
319 1.46 tsutsui ste = (st_entry_t *)kstpa;
320 1.46 tsutsui ste = &ste[MAXADDR >> SEGSHIFT];
321 1.46 tsutsui pte = (pt_entry_t *)kptmpa;
322 1.46 tsutsui pte = &pte[MAXADDR >> SEGSHIFT];
323 1.1 mycroft *ste = lkptpa | SG_RW | SG_V;
324 1.1 mycroft *pte = lkptpa | PG_RW | PG_CI | PG_V;
325 1.1 mycroft }
326 1.1 mycroft /*
327 1.43 tsutsui * Invalidate all but the final entry in the last kernel PT page.
328 1.43 tsutsui * The final entry maps the last page of physical memory to
329 1.43 tsutsui * prepare a page that is PA == VA to turn on the MMU.
330 1.1 mycroft */
331 1.43 tsutsui pte = (pt_entry_t *)lkptpa;
332 1.43 tsutsui epte = &pte[NPTEPG - 1];
333 1.1 mycroft while (pte < epte)
334 1.1 mycroft *pte++ = PG_NV;
335 1.1 mycroft *pte = MAXADDR | PG_RW | PG_CI | PG_V;
336 1.1 mycroft /*
337 1.1 mycroft * Initialize kernel page table.
338 1.1 mycroft * Start by invalidating the `nptpages' that we have allocated.
339 1.1 mycroft */
340 1.43 tsutsui pte = (pt_entry_t *)kptpa;
341 1.1 mycroft epte = &pte[nptpages * NPTEPG];
342 1.1 mycroft while (pte < epte)
343 1.1 mycroft *pte++ = PG_NV;
344 1.10 thorpej
345 1.1 mycroft /*
346 1.17 thorpej * The page of kernel text is zero-filled in locore.s,
347 1.17 thorpej * and not mapped (at VA 0). The boot loader places the
348 1.17 thorpej * bootinfo here after the kernel is loaded. Remember
349 1.17 thorpej * the physical address; we'll map it to a virtual address
350 1.17 thorpej * later.
351 1.1 mycroft */
352 1.17 thorpej RELOC(bootinfo_pa, paddr_t) = firstpa;
353 1.10 thorpej
354 1.10 thorpej /*
355 1.10 thorpej * Validate PTEs for kernel text (RO). The first page
356 1.10 thorpej * of kernel text remains invalid; see locore.s
357 1.10 thorpej */
358 1.43 tsutsui pte = (pt_entry_t *)kptpa;
359 1.43 tsutsui pte = &pte[m68k_btop(KERNBASE + PAGE_SIZE)];
360 1.13 veego epte = &pte[m68k_btop(m68k_trunc_page(&etext))];
361 1.22 thorpej protopte = (firstpa + PAGE_SIZE) | PG_RO | PG_V;
362 1.1 mycroft while (pte < epte) {
363 1.1 mycroft *pte++ = protopte;
364 1.22 thorpej protopte += PAGE_SIZE;
365 1.1 mycroft }
366 1.1 mycroft /*
367 1.1 mycroft * Validate PTEs for kernel data/bss, dynamic data allocated
368 1.40 tsutsui * by us so far (nextpa - firstpa bytes), and pages for lwp0
369 1.1 mycroft * u-area and page table allocated below (RW).
370 1.1 mycroft */
371 1.43 tsutsui epte = (pt_entry_t *)kptpa;
372 1.43 tsutsui epte = &epte[m68k_btop(nextpa - firstpa)];
373 1.1 mycroft protopte = (protopte & ~PG_PROT) | PG_RW;
374 1.1 mycroft /*
375 1.1 mycroft * Enable copy-back caching of data pages
376 1.1 mycroft */
377 1.1 mycroft if (RELOC(mmutype, int) == MMU_68040)
378 1.1 mycroft protopte |= PG_CCB;
379 1.1 mycroft while (pte < epte) {
380 1.1 mycroft *pte++ = protopte;
381 1.22 thorpej protopte += PAGE_SIZE;
382 1.1 mycroft }
383 1.1 mycroft /*
384 1.1 mycroft * Finally, validate the internal IO space PTEs (RW+CI).
385 1.1 mycroft * We do this here since the 320/350 MMU registers (also
386 1.1 mycroft * used, but to a lesser extent, on other models) are mapped
387 1.1 mycroft * in this range and it would be nice to be able to access
388 1.1 mycroft * them after the MMU is turned on.
389 1.1 mycroft */
390 1.26 yamt
391 1.26 yamt #define PTE2VA(pte) m68k_ptob(pte - ((pt_entry_t *)kptpa))
392 1.26 yamt
393 1.1 mycroft protopte = INTIOBASE | PG_RW | PG_CI | PG_V;
394 1.26 yamt epte = &pte[IIOMAPSIZE];
395 1.43 tsutsui RELOC(intiobase, uint8_t *) = (uint8_t *)PTE2VA(pte);
396 1.43 tsutsui RELOC(intiolimit, uint8_t *) = (uint8_t *)PTE2VA(epte);
397 1.1 mycroft while (pte < epte) {
398 1.1 mycroft *pte++ = protopte;
399 1.22 thorpej protopte += PAGE_SIZE;
400 1.1 mycroft }
401 1.43 tsutsui RELOC(extiobase, uint8_t *) = (uint8_t *)PTE2VA(pte);
402 1.26 yamt pte += EIOMAPSIZE;
403 1.26 yamt RELOC(virtual_avail, vaddr_t) = PTE2VA(pte);
404 1.1 mycroft
405 1.1 mycroft /*
406 1.45 tsutsui * Calculate important exported kernel addresses and related values.
407 1.1 mycroft */
408 1.1 mycroft /*
409 1.1 mycroft * Sysseg: base of kernel segment table
410 1.1 mycroft */
411 1.43 tsutsui RELOC(Sysseg, st_entry_t *) = (st_entry_t *)(kstpa - firstpa);
412 1.45 tsutsui RELOC(Sysseg_pa, paddr_t) = kstpa;
413 1.45 tsutsui if (RELOC(mmutype, int) == MMU_68040)
414 1.45 tsutsui RELOC(protostfree, u_int) = stfree;
415 1.1 mycroft /*
416 1.1 mycroft * Sysptmap: base of kernel page table map
417 1.1 mycroft */
418 1.43 tsutsui RELOC(Sysptmap, pt_entry_t *) = (pt_entry_t *)(kptmpa - firstpa);
419 1.1 mycroft /*
420 1.1 mycroft * Sysmap: kernel page table (as mapped through Sysptmap)
421 1.31 tsutsui * Allocated at the end of KVA space.
422 1.1 mycroft */
423 1.46 tsutsui RELOC(Sysmap, pt_entry_t *) = (pt_entry_t *)SYSMAP_VA;
424 1.1 mycroft /*
425 1.1 mycroft * CLKbase, MMUbase: important registers in internal IO space
426 1.1 mycroft * accessed from assembly language.
427 1.1 mycroft */
428 1.15 kleink RELOC(CLKbase, vaddr_t) =
429 1.15 kleink (vaddr_t)RELOC(intiobase, char *) + CLKBASE;
430 1.15 kleink RELOC(MMUbase, vaddr_t) =
431 1.15 kleink (vaddr_t)RELOC(intiobase, char *) + MMUBASE;
432 1.1 mycroft
433 1.1 mycroft /*
434 1.40 tsutsui * Remember the u-area address so it can be loaded in the lwp0
435 1.40 tsutsui * via uvm_lwp_setuarea() later in pmap_bootstrap_finalize().
436 1.1 mycroft */
437 1.40 tsutsui RELOC(lwp0uarea, vaddr_t) = lwp0upa - firstpa;
438 1.1 mycroft
439 1.1 mycroft /*
440 1.1 mycroft * VM data structures are now initialized, set up data for
441 1.1 mycroft * the pmap module.
442 1.8 thorpej *
443 1.8 thorpej * Note about avail_end: msgbuf is initialized just after
444 1.8 thorpej * avail_end in machdep.c. Since the last page is used
445 1.8 thorpej * for rebooting the system (code is copied there and
446 1.8 thorpej * excution continues from copied code before the MMU
447 1.8 thorpej * is disabled), the msgbuf will get trounced between
448 1.8 thorpej * reboots if it's placed in the last physical page.
449 1.8 thorpej * To work around this, we move avail_end back one more
450 1.8 thorpej * page so the msgbuf can be preserved.
451 1.1 mycroft */
452 1.15 kleink RELOC(avail_start, paddr_t) = nextpa;
453 1.15 kleink RELOC(avail_end, paddr_t) = m68k_ptob(RELOC(maxmem, int)) -
454 1.14 leo (m68k_round_page(MSGBUFSIZE) + m68k_ptob(1));
455 1.15 kleink RELOC(mem_size, vsize_t) = m68k_ptob(RELOC(physmem, int));
456 1.15 kleink RELOC(virtual_end, vaddr_t) = VM_MAX_KERNEL_ADDRESS;
457 1.1 mycroft
458 1.9 thorpej #ifdef M68K_MMU_HP
459 1.1 mycroft /*
460 1.1 mycroft * Determine VA aliasing distance if any
461 1.1 mycroft */
462 1.16 thorpej if (RELOC(ectype, int) == EC_VIRT) {
463 1.1 mycroft if (RELOC(machineid, int) == HP_320)
464 1.1 mycroft RELOC(pmap_aliasmask, int) = 0x3fff; /* 16k */
465 1.1 mycroft else if (RELOC(machineid, int) == HP_350)
466 1.1 mycroft RELOC(pmap_aliasmask, int) = 0x7fff; /* 32k */
467 1.16 thorpej }
468 1.1 mycroft #endif
469 1.1 mycroft
470 1.1 mycroft /*
471 1.1 mycroft * Allocate some fixed, special purpose kernel virtual addresses
472 1.1 mycroft */
473 1.1 mycroft {
474 1.15 kleink vaddr_t va = RELOC(virtual_avail, vaddr_t);
475 1.1 mycroft
476 1.17 thorpej RELOC(bootinfo_va, vaddr_t) = (vaddr_t)va;
477 1.22 thorpej va += PAGE_SIZE;
478 1.28 christos RELOC(CADDR1, void *) = (void *)va;
479 1.22 thorpej va += PAGE_SIZE;
480 1.28 christos RELOC(CADDR2, void *) = (void *)va;
481 1.22 thorpej va += PAGE_SIZE;
482 1.28 christos RELOC(vmmap, void *) = (void *)va;
483 1.22 thorpej va += PAGE_SIZE;
484 1.28 christos RELOC(ledbase, void *) = (void *)va;
485 1.22 thorpej va += PAGE_SIZE;
486 1.28 christos RELOC(msgbufaddr, void *) = (void *)va;
487 1.14 leo va += m68k_round_page(MSGBUFSIZE);
488 1.15 kleink RELOC(virtual_avail, vaddr_t) = va;
489 1.1 mycroft }
490 1.21 chs }
491