vmem.c revision 1.4 1 1.4 takemura /* $NetBSD: vmem.c,v 1.4 2000/01/16 03:07:33 takemura Exp $ */
2 1.4 takemura
3 1.4 takemura /*-
4 1.4 takemura * Copyright (c) 1999 Shin Takemura.
5 1.4 takemura * All rights reserved.
6 1.4 takemura *
7 1.4 takemura * This software is part of the PocketBSD.
8 1.4 takemura *
9 1.4 takemura * Redistribution and use in source and binary forms, with or without
10 1.4 takemura * modification, are permitted provided that the following conditions
11 1.4 takemura * are met:
12 1.4 takemura * 1. Redistributions of source code must retain the above copyright
13 1.4 takemura * notice, this list of conditions and the following disclaimer.
14 1.4 takemura * 2. Redistributions in binary form must reproduce the above copyright
15 1.4 takemura * notice, this list of conditions and the following disclaimer in the
16 1.4 takemura * documentation and/or other materials provided with the distribution.
17 1.4 takemura * 3. All advertising materials mentioning features or use of this software
18 1.4 takemura * must display the following acknowledgement:
19 1.4 takemura * This product includes software developed by the PocketBSD project
20 1.4 takemura * and its contributors.
21 1.4 takemura * 4. Neither the name of the project nor the names of its contributors
22 1.4 takemura * may be used to endorse or promote products derived from this software
23 1.4 takemura * without specific prior written permission.
24 1.4 takemura *
25 1.4 takemura * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
26 1.4 takemura * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
27 1.4 takemura * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
28 1.4 takemura * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
29 1.4 takemura * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
30 1.4 takemura * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
31 1.4 takemura * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
32 1.4 takemura * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
33 1.4 takemura * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
34 1.4 takemura * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
35 1.4 takemura * SUCH DAMAGE.
36 1.4 takemura *
37 1.4 takemura */
38 1.4 takemura #include <pbsdboot.h>
39 1.4 takemura
40 1.4 takemura struct addr_s {
41 1.4 takemura caddr_t addr;
42 1.4 takemura int in_use;
43 1.4 takemura };
44 1.4 takemura
45 1.4 takemura struct page_header_s {
46 1.4 takemura unsigned long magic0;
47 1.4 takemura int pageno;
48 1.4 takemura unsigned long magic1;
49 1.4 takemura };
50 1.4 takemura
51 1.4 takemura struct map_s *map = NULL;
52 1.4 takemura struct addr_s *phys_addrs = NULL;
53 1.4 takemura unsigned char* heap = NULL;
54 1.4 takemura int npages;
55 1.4 takemura caddr_t kernel_start;
56 1.4 takemura caddr_t kernel_end;
57 1.4 takemura
58 1.4 takemura int
59 1.4 takemura vmem_exec(caddr_t entry, int argc, char *argv[], struct bootinfo *bi)
60 1.4 takemura {
61 1.4 takemura int i;
62 1.4 takemura caddr_t p;
63 1.4 takemura
64 1.4 takemura if (map == NULL) {
65 1.4 takemura debug_printf(TEXT("vmem is not initialized.\n"));
66 1.4 takemura msg_printf(MSG_ERROR, whoami, TEXT("vmem is not initialized.\n"));
67 1.4 takemura return (-1);
68 1.4 takemura }
69 1.4 takemura
70 1.4 takemura debug_printf(TEXT("entry point=0x%x\n"), entry);
71 1.4 takemura
72 1.4 takemura map->entry = entry;
73 1.4 takemura map->base = kernel_start;
74 1.4 takemura
75 1.4 takemura for (i = 0; i < argc; i++) {
76 1.4 takemura argv[i] = vtophysaddr(argv[i]);
77 1.4 takemura }
78 1.4 takemura map->arg0 = (caddr_t)argc;
79 1.4 takemura map->arg1 = vtophysaddr((caddr_t)argv);
80 1.4 takemura map->arg2 = vtophysaddr((caddr_t)bi);
81 1.4 takemura map->arg3 = NULL;
82 1.4 takemura
83 1.4 takemura if (map->arg1 == NULL || map->arg2 == NULL) {
84 1.4 takemura debug_printf(TEXT("arg, vtophysaddr() failed\n"));
85 1.4 takemura msg_printf(MSG_ERROR, whoami,
86 1.4 takemura TEXT("arg, vtophysaddr() failed\n"));
87 1.4 takemura return (-1);
88 1.4 takemura }
89 1.4 takemura
90 1.4 takemura for (i = 0; p = map->leaf[i / map->leafsize][i % map->leafsize]; i++) {
91 1.4 takemura if ((p = vtophysaddr(p)) == NULL) {
92 1.4 takemura debug_printf(TEXT("vtophysaddr() failed, page %d (addr=0x%x) \n"),
93 1.4 takemura i, map->leaf[i / map->leafsize][i % map->leafsize]);
94 1.4 takemura msg_printf(MSG_ERROR, whoami,
95 1.4 takemura TEXT("vtophysaddr() failed, page %d (addr=0x%x) \n"),
96 1.4 takemura i, map->leaf[i / map->leafsize][i % map->leafsize]);
97 1.4 takemura return (-1);
98 1.4 takemura }
99 1.4 takemura map->leaf[i / map->leafsize][i % map->leafsize] = p;
100 1.4 takemura }
101 1.4 takemura
102 1.4 takemura for (i = 0; i < map->nleaves; i++) {
103 1.4 takemura if ((p = vtophysaddr((caddr_t)map->leaf[i])) == NULL) {
104 1.4 takemura debug_printf(TEXT("vtophysaddr() failed, leaf %d (addr=0x%x) \n"),
105 1.4 takemura i, map->leaf[i / map->leafsize][i % map->leafsize]);
106 1.4 takemura msg_printf(MSG_ERROR, whoami,
107 1.4 takemura TEXT("vtophysaddr() failed, leaf %d (addr=0x%x) \n"),
108 1.4 takemura i, map->leaf[i / map->leafsize][i % map->leafsize]);
109 1.4 takemura return (-1);
110 1.4 takemura }
111 1.4 takemura map->leaf[i] = (caddr_t*)p;
112 1.4 takemura }
113 1.4 takemura
114 1.4 takemura debug_printf(TEXT("execute startprog()\n"));
115 1.4 takemura //return (-1);
116 1.4 takemura return ((*system_info.si_boot)(vtophysaddr((caddr_t)map)));
117 1.4 takemura }
118 1.4 takemura
119 1.4 takemura caddr_t
120 1.4 takemura vmem_alloc()
121 1.4 takemura {
122 1.4 takemura int i, pagesize;
123 1.4 takemura struct page_header_s *page;
124 1.4 takemura
125 1.4 takemura pagesize = system_info.si_pagesize;
126 1.4 takemura for (i = 0; i < npages; i++) {
127 1.4 takemura page = (struct page_header_s*)&heap[pagesize * i];
128 1.4 takemura if (!phys_addrs[i].in_use &&
129 1.4 takemura !(kernel_start <= phys_addrs[i].addr &&
130 1.4 takemura phys_addrs[i].addr < kernel_end)) {
131 1.4 takemura phys_addrs[i].in_use = 1;
132 1.4 takemura return ((caddr_t)page);
133 1.4 takemura }
134 1.4 takemura }
135 1.4 takemura return (NULL);
136 1.4 takemura }
137 1.4 takemura
138 1.4 takemura static caddr_t
139 1.4 takemura alloc_kpage(caddr_t phys_addr)
140 1.4 takemura {
141 1.4 takemura int i, pagesize;
142 1.4 takemura struct page_header_s *page;
143 1.4 takemura
144 1.4 takemura pagesize = system_info.si_pagesize;
145 1.4 takemura for (i = 0; i < npages; i++) {
146 1.4 takemura page = (struct page_header_s*)&heap[pagesize * i];
147 1.4 takemura if (phys_addrs[i].addr == phys_addr) {
148 1.4 takemura if (phys_addrs[i].in_use) {
149 1.4 takemura debug_printf(TEXT("page %d (phys addr=0x%x) is already in use\n"),
150 1.4 takemura i, phys_addr);
151 1.4 takemura msg_printf(MSG_ERROR, whoami,
152 1.4 takemura TEXT("page %d (phys addr=0x%x) is already in use\n"),
153 1.4 takemura i, phys_addr);
154 1.4 takemura return (NULL);
155 1.4 takemura }
156 1.4 takemura phys_addrs[i].in_use = 1;
157 1.4 takemura return ((caddr_t)page);
158 1.4 takemura }
159 1.4 takemura }
160 1.4 takemura return (vmem_alloc());
161 1.4 takemura }
162 1.4 takemura
163 1.4 takemura caddr_t
164 1.4 takemura vmem_get(caddr_t phys_addr, int *length)
165 1.4 takemura {
166 1.4 takemura int pagesize = system_info.si_pagesize;
167 1.4 takemura int pageno = (phys_addr - kernel_start) / pagesize;
168 1.4 takemura int offset = (phys_addr - kernel_start) % pagesize;
169 1.4 takemura
170 1.4 takemura if (map == NULL || pageno < 0 || npages <= pageno) {
171 1.4 takemura return (NULL);
172 1.4 takemura }
173 1.4 takemura if (length) {
174 1.4 takemura *length = pagesize - offset;
175 1.4 takemura }
176 1.4 takemura return (map->leaf[pageno / map->leafsize][pageno % map->leafsize] + offset);
177 1.4 takemura }
178 1.4 takemura
179 1.4 takemura caddr_t
180 1.4 takemura vtophysaddr(caddr_t page)
181 1.4 takemura {
182 1.4 takemura int pageno = (page - heap) / system_info.si_pagesize;
183 1.4 takemura int offset = (page - heap) % system_info.si_pagesize;
184 1.4 takemura
185 1.4 takemura if (map == NULL || pageno < 0 || npages <= pageno) {
186 1.4 takemura return (NULL);
187 1.4 takemura }
188 1.4 takemura return (phys_addrs[pageno].addr + offset);
189 1.4 takemura }
190 1.4 takemura
191 1.4 takemura int
192 1.4 takemura vmem_init(caddr_t start, caddr_t end)
193 1.4 takemura {
194 1.4 takemura #define MEM_BLOCK_SIZE (1024*1024*4) /* must be greater than page size */
195 1.4 takemura int i, m, pageno;
196 1.4 takemura unsigned long magic0;
197 1.4 takemura unsigned long magic1;
198 1.4 takemura int nfounds;
199 1.4 takemura struct page_header_s *page;
200 1.4 takemura long size;
201 1.4 takemura int nleaves;
202 1.4 takemura int pagesize, memblocks;
203 1.4 takemura
204 1.4 takemura pagesize = system_info.si_pagesize;
205 1.4 takemura memblocks = (system_info.si_drammaxsize) / MEM_BLOCK_SIZE;
206 1.4 takemura
207 1.4 takemura /* align with page size */
208 1.4 takemura start = (caddr_t)(((long)start / pagesize) * pagesize);
209 1.4 takemura end = (caddr_t)((((long)end + pagesize - 1) / pagesize) * pagesize);
210 1.4 takemura
211 1.4 takemura kernel_start = start;
212 1.4 takemura kernel_end = end;
213 1.4 takemura size = end - start;
214 1.4 takemura
215 1.4 takemura /*
216 1.4 takemura * program image pages.
217 1.4 takemura */
218 1.4 takemura npages = (size + pagesize - 1) / pagesize;
219 1.4 takemura
220 1.4 takemura /*
221 1.4 takemura * map leaf pages.
222 1.4 takemura * npages plus one for end mark.
223 1.4 takemura */
224 1.4 takemura npages += (nleaves = ((npages * sizeof(caddr_t) + pagesize) / pagesize));
225 1.4 takemura
226 1.4 takemura /*
227 1.4 takemura * map root page, startprg code page, argument page and bootinfo page.
228 1.4 takemura */
229 1.4 takemura npages += 4;
230 1.4 takemura
231 1.4 takemura /*
232 1.4 takemura * allocate pages
233 1.4 takemura */
234 1.4 takemura debug_printf(TEXT("allocate %d pages\n"), npages);
235 1.4 takemura heap = (unsigned char*)
236 1.4 takemura VirtualAlloc(0,
237 1.4 takemura npages * pagesize,
238 1.4 takemura MEM_COMMIT,
239 1.4 takemura PAGE_READWRITE | PAGE_NOCACHE);
240 1.4 takemura if (heap == NULL) {
241 1.4 takemura debug_printf(TEXT("can't allocate heap\n"));
242 1.4 takemura msg_printf(MSG_ERROR, whoami, TEXT("can't allocate heap\n"));
243 1.4 takemura goto error_cleanup;
244 1.4 takemura }
245 1.4 takemura
246 1.4 takemura /*
247 1.4 takemura * allocate address table.
248 1.4 takemura */
249 1.4 takemura phys_addrs = (struct addr_s *)
250 1.4 takemura VirtualAlloc(0,
251 1.4 takemura npages * sizeof(struct addr_s),
252 1.4 takemura MEM_COMMIT,
253 1.4 takemura PAGE_READWRITE);
254 1.4 takemura if (phys_addrs == NULL) {
255 1.4 takemura debug_printf(TEXT("can't allocate address table\n"));
256 1.4 takemura msg_printf(MSG_ERROR, whoami, TEXT("can't allocate address table\n"));
257 1.4 takemura goto error_cleanup;
258 1.4 takemura }
259 1.4 takemura
260 1.4 takemura /*
261 1.4 takemura * set magic number for each page in buffer.
262 1.4 takemura */
263 1.4 takemura magic0 = Random();
264 1.4 takemura magic1 = Random();
265 1.4 takemura debug_printf(TEXT("magic=%08x%08x\n"), magic0, magic1);
266 1.4 takemura
267 1.4 takemura for (i = 0; i < npages; i++) {
268 1.4 takemura page = (struct page_header_s*)&heap[pagesize * i];
269 1.4 takemura page->magic0 = magic0;
270 1.4 takemura page->pageno = i;
271 1.4 takemura page->magic1 = magic1;
272 1.4 takemura phys_addrs[i].addr = 0;
273 1.4 takemura phys_addrs[i].in_use = 0;
274 1.4 takemura }
275 1.4 takemura
276 1.4 takemura /*
277 1.4 takemura * Scan whole physical memory.
278 1.4 takemura */
279 1.4 takemura nfounds = 0;
280 1.4 takemura for (m = 0; (m < memblocks) && (nfounds < npages); m++) {
281 1.4 takemura unsigned char* mem;
282 1.4 takemura /* Map physical memory block */
283 1.4 takemura mem = (unsigned char*)VirtualAlloc(0, MEM_BLOCK_SIZE,
284 1.4 takemura MEM_RESERVE, PAGE_NOACCESS);
285 1.4 takemura if(!VirtualCopy((LPVOID)mem, (LPVOID)
286 1.4 takemura ((system_info.si_dramstart + MEM_BLOCK_SIZE * m) >> 8),
287 1.4 takemura MEM_BLOCK_SIZE,
288 1.4 takemura PAGE_READWRITE | PAGE_NOCACHE | PAGE_PHYSICAL)) {
289 1.4 takemura VirtualFree(mem, 0, MEM_RELEASE);
290 1.4 takemura continue;
291 1.4 takemura }
292 1.4 takemura /* Find preliminary allocated pages */
293 1.4 takemura for (i = 0; i < (int)(MEM_BLOCK_SIZE / pagesize); i++) {
294 1.4 takemura page = (struct page_header_s*)&mem[pagesize * i];
295 1.4 takemura if (page->magic0 == magic0 &&
296 1.4 takemura page->magic1 == magic1) {
297 1.4 takemura pageno = page->pageno;
298 1.4 takemura if (0 <= pageno && pageno < npages &&
299 1.4 takemura phys_addrs[pageno].addr == 0) {
300 1.4 takemura /* Set kernel virtual addr. XXX mips dependent */
301 1.4 takemura phys_addrs[pageno].addr = (unsigned char*)
302 1.4 takemura ((0x80000000 |
303 1.4 takemura system_info.si_dramstart) +
304 1.4 takemura MEM_BLOCK_SIZE * m +
305 1.4 takemura pagesize * i);
306 1.4 takemura page->magic0 = 0;
307 1.4 takemura page->magic1 = 0;
308 1.4 takemura if (npages <= ++nfounds) {
309 1.4 takemura break;
310 1.4 takemura }
311 1.4 takemura } else {
312 1.4 takemura debug_printf(TEXT("invalid page header\n"));
313 1.4 takemura msg_printf(MSG_ERROR, whoami, TEXT("invalid page header\n"));
314 1.4 takemura goto error_cleanup;
315 1.4 takemura }
316 1.4 takemura }
317 1.4 takemura }
318 1.4 takemura VirtualFree(mem, 0, MEM_RELEASE);
319 1.4 takemura }
320 1.4 takemura
321 1.4 takemura if (nfounds < npages) {
322 1.4 takemura debug_printf(TEXT("lost %d pages\n"), npages - nfounds);
323 1.4 takemura msg_printf(MSG_ERROR, whoami,
324 1.4 takemura TEXT("lost %d pages (allocated %d pages)\n"),
325 1.4 takemura npages - nfounds, npages);
326 1.4 takemura goto error_cleanup;
327 1.4 takemura }
328 1.4 takemura
329 1.4 takemura /*
330 1.4 takemura * allocate root page
331 1.4 takemura */
332 1.4 takemura if ((map = (struct map_s*)vmem_alloc()) == NULL) {
333 1.4 takemura debug_printf(TEXT("can't allocate root page.\n"));
334 1.4 takemura msg_printf(MSG_ERROR, whoami, TEXT("can't allocate root page.\n"));
335 1.4 takemura goto error_cleanup;
336 1.4 takemura }
337 1.4 takemura map->nleaves = nleaves;
338 1.4 takemura map->leafsize = pagesize / sizeof(caddr_t);
339 1.4 takemura map->pagesize = pagesize;
340 1.4 takemura
341 1.4 takemura /*
342 1.4 takemura * allocate leaf pages
343 1.4 takemura */
344 1.4 takemura for (i = 0; i < nleaves; i++) {
345 1.4 takemura if ((map->leaf[i] = (caddr_t*)vmem_alloc()) == NULL) {
346 1.4 takemura debug_printf(TEXT("can't allocate leaf page.\n"));
347 1.4 takemura msg_printf(MSG_ERROR, whoami, TEXT("can't allocate leaf page.\n"));
348 1.4 takemura goto error_cleanup;
349 1.4 takemura }
350 1.4 takemura }
351 1.4 takemura
352 1.4 takemura /*
353 1.4 takemura * allocate kernel pages
354 1.4 takemura */
355 1.4 takemura for (i = 0; start < kernel_end; start += pagesize, i++) {
356 1.4 takemura caddr_t *leaf = map->leaf[i / map->leafsize];
357 1.4 takemura if ((leaf[i % map->leafsize] = alloc_kpage(start)) == NULL) {
358 1.4 takemura debug_printf(TEXT("can't allocate page 0x%x.\n"), start);
359 1.4 takemura msg_printf(MSG_ERROR, whoami, TEXT("can't allocate page 0x%x.\n"), start);
360 1.4 takemura goto error_cleanup;
361 1.4 takemura }
362 1.4 takemura }
363 1.4 takemura map->leaf[i / map->leafsize][i % map->leafsize] = NULL; /* END MARK */
364 1.4 takemura
365 1.4 takemura return (0);
366 1.4 takemura
367 1.4 takemura error_cleanup:
368 1.4 takemura vmem_free();
369 1.4 takemura
370 1.4 takemura return (-1);
371 1.4 takemura }
372 1.4 takemura
373 1.4 takemura void
374 1.4 takemura vmem_free()
375 1.4 takemura {
376 1.4 takemura map = NULL;
377 1.4 takemura if (heap) {
378 1.4 takemura VirtualFree(heap, 0, MEM_RELEASE);
379 1.4 takemura heap = NULL;
380 1.4 takemura }
381 1.4 takemura if (phys_addrs) {
382 1.4 takemura VirtualFree(phys_addrs, 0, MEM_RELEASE);
383 1.4 takemura phys_addrs = NULL;
384 1.4 takemura }
385 1.4 takemura }
386 1.4 takemura
387 1.4 takemura void
388 1.4 takemura vmem_dump_map()
389 1.4 takemura {
390 1.4 takemura caddr_t addr, page, paddr;
391 1.4 takemura
392 1.4 takemura if (map == NULL) {
393 1.4 takemura debug_printf(TEXT("no page map\n"));
394 1.4 takemura return;
395 1.4 takemura }
396 1.4 takemura
397 1.4 takemura for (addr = kernel_start; addr < kernel_end; addr += system_info.si_pagesize) {
398 1.4 takemura page = vmem_get(addr, NULL);
399 1.4 takemura paddr = vtophysaddr(page);
400 1.4 takemura debug_printf(TEXT("%08X: vaddr=%08X paddr=%08X %s\n"),
401 1.4 takemura addr, page, paddr, addr == paddr ? TEXT("*") : TEXT("reloc"));
402 1.4 takemura
403 1.4 takemura }
404 1.4 takemura }
405