memory.cpp revision 1.1.4.2 1 /* $NetBSD: memory.cpp,v 1.1.4.2 2001/06/21 19:22:47 nathanw Exp $ */
2
3 /*-
4 * Copyright (c) 2001 The NetBSD Foundation, Inc.
5 * All rights reserved.
6 *
7 * This code is derived from software contributed to The NetBSD Foundation
8 * by UCHIYAMA Yasushi.
9 *
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
12 * are met:
13 * 1. Redistributions of source code must retain the above copyright
14 * notice, this list of conditions and the following disclaimer.
15 * 2. Redistributions in binary form must reproduce the above copyright
16 * notice, this list of conditions and the following disclaimer in the
17 * documentation and/or other materials provided with the distribution.
18 * 3. All advertising materials mentioning features or use of this software
19 * must display the following acknowledgement:
20 * This product includes software developed by the NetBSD
21 * Foundation, Inc. and its contributors.
22 * 4. Neither the name of The NetBSD Foundation nor the names of its
23 * contributors may be used to endorse or promote products derived
24 * from this software without specific prior written permission.
25 *
26 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
27 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
28 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
29 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
30 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
32 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
33 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
34 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
35 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
36 * POSSIBILITY OF SUCH DAMAGE.
37 */
38
39 #include <memory.h>
40 #include <console.h>
41
42 MemoryManager::MemoryManager(Console *&cons, size_t pagesize)
43 : _cons(cons)
44 {
45 _debug = FALSE;
46 _page_size =pagesize;
47
48 int mask = _page_size;
49 for (_page_shift = 0; !(mask & 1); _page_shift++)
50 mask >>= 1;
51
52 _page_per_region = WCE_REGION_SIZE / _page_size;
53 _nbank = 0;
54 DPRINTF((TEXT("Page size %dbyte %dpages/region\n"),
55 _page_size , _page_per_region));
56 _addr_table_idx = 0;
57 _addr_table = 0;
58 _memory = 0;
59 }
60
61 MemoryManager::~MemoryManager(void)
62 {
63 if (_memory)
64 VirtualFree(LPVOID(_memory), 0, MEM_RELEASE);
65 }
66
67 void
68 MemoryManager::loadBank(paddr_t paddr, psize_t psize)
69 {
70 struct MemoryManager::bank *b = &_bank[_nbank++];
71 b->addr = paddr;
72 b->size = psize;
73 DPRINTF((TEXT("Bank#%d 0x%08x size 0x%08x\n"), _nbank - 1,
74 b->addr, b->size));
75 }
76
77 BOOL
78 MemoryManager::reservePage(vsize_t size, BOOL page_commit)
79 {
80 // My virtual memory space
81 vaddr_t vbase;
82 vsize_t vsize;
83
84 int i, npage;
85
86 if (size == 0)
87 return FALSE;
88
89 // reserve all virtual memory.
90 vsize = roundRegion(size);
91 npage = roundPage(size) / _page_size;
92
93 size_t tabsz = sizeof(struct AddressTranslationTable) * npage;
94 _addr_table = static_cast <struct AddressTranslationTable *>
95 (malloc(tabsz));
96 if (_addr_table == NULL) {
97 DPRINTF((TEXT("can't allocate memory for translation table.\n")));
98 return FALSE;
99 }
100 DPRINTF((TEXT("address translation table %d pages.(%d byte)\n"), npage,
101 tabsz));
102
103 if (page_commit)
104 vbase = vaddr_t(VirtualAlloc(0, vsize, MEM_RESERVE,
105 PAGE_NOACCESS));
106 else
107 vbase = vaddr_t(VirtualAlloc(0, vsize, MEM_COMMIT,
108 PAGE_READWRITE | PAGE_NOCACHE));
109
110 if (vbase == 0) {
111 DPRINTF((TEXT("can't allocate memory\n")));
112 return FALSE;
113 }
114 _memory = vbase;
115
116 // find physical address of allocated page.
117 AddressTranslationTable *tab = _addr_table;
118 _naddr_table = 0;
119 for (i = 0; i < npage; i++) {
120 vaddr_t vaddr;
121 paddr_t paddr = ~0;
122
123 if (page_commit)
124 // now map to physical page.
125 vaddr = vaddr_t(VirtualAlloc(
126 LPVOID(vbase + _page_size * i),
127 _page_size, MEM_COMMIT,
128 PAGE_READWRITE | PAGE_NOCACHE));
129 else
130 vaddr = vbase + _page_size * i;
131
132 paddr = searchPage(vaddr);
133
134 if (paddr == ~0) {
135 DPRINTF((TEXT("page#%d not found\n"), i));
136 break;
137 } else {
138 #ifdef MEMORY_MAP_DEBUG
139 DPRINTF((TEXT("page %d vaddr=0x%08x paddr=0x%08x\n"),
140 _naddr_table, vaddr, paddr));
141 #endif
142 tab->vaddr = vaddr;
143 tab->paddr = paddr;
144 ++tab;
145 ++_naddr_table;
146 }
147 }
148
149 #ifdef MEMORY_MAP_DEBUG
150 // dump virtual <-> physical address table
151 tab = _addr_table;
152 for (i = 0; i < _naddr_table;) {
153 for (int j = 0; j < 4; j++, i++, tab++)
154 DPRINTF((TEXT("%08x=%08x "), tab->vaddr, tab->paddr));
155 DPRINTF((TEXT("\n")));
156 }
157 #endif
158 DPRINTF((TEXT("allocated %d page. mapped %d page.\n"), npage,
159 _naddr_table));
160
161 return TRUE;
162 }
163
164 BOOL
165 MemoryManager::getPage(vaddr_t &vaddr, paddr_t &paddr)
166 {
167 /* get plain page from the top */
168 if (_addr_table_idx >= _naddr_table ||
169 _addr_table == NULL)
170 return FALSE;
171
172 int idx = --_naddr_table;
173
174 AddressTranslationTable *tab = &_addr_table[idx];
175 vaddr = tab->vaddr;
176 paddr = tab->paddr;
177
178 return TRUE;
179 }
180
181 BOOL
182 MemoryManager::getTaggedPage(vaddr_t &vaddr, paddr_t &paddr)
183 {
184 /* get tagged page from the bottom */
185 if (_addr_table_idx >= _naddr_table ||
186 _addr_table == NULL) {
187 DPRINTF((TEXT("page insufficient.\n")));
188 return FALSE;
189 }
190 AddressTranslationTable *tab =
191 &_addr_table[_addr_table_idx++];
192 vaddr = tab->vaddr;
193 paddr = tab->paddr;
194
195 return TRUE;
196 }
197
198 BOOL
199 MemoryManager::getTaggedPage(vaddr_t &v, paddr_t &p,
200 struct PageTag **pvec, paddr_t &pvec_paddr)
201 {
202 if (!getTaggedPage(v, p))
203 return FALSE;
204
205 *pvec =(struct PageTag *)v;
206 memset(*pvec, 0, sizeof(struct PageTag));
207 v += sizeof(struct PageTag);
208 pvec_paddr = p;
209 p += sizeof(struct PageTag);
210
211 return TRUE;
212 }
213
214 vaddr_t
215 MemoryManager::mapPhysicalPage(paddr_t paddr, psize_t size, u_int32_t flags)
216 {
217 paddr_t pstart = truncPage(paddr);
218 paddr_t pend = roundPage(paddr + size);
219 psize_t psize = pend - pstart;
220
221 LPVOID p = VirtualAlloc(0, psize, MEM_RESERVE, PAGE_NOACCESS);
222
223 int ok = VirtualCopy(p, LPVOID(pstart >> 8), psize,
224 flags | PAGE_NOCACHE | PAGE_PHYSICAL);
225 if (!ok) {
226 DPRINTF((TEXT("can't map physical address 0x%08x\n"), paddr));
227 return ~0;
228 }
229 #if 0
230 DPRINTF((TEXT("start=0x%08x end=0x%08x size=0x%08x return=0x%08x\n"),
231 pstart, pend, psize, vaddr_t(p) + vaddr_t(paddr - pstart)));
232
233 #endif
234
235 return vaddr_t(p) + vaddr_t(paddr - pstart);
236 }
237
238 void
239 MemoryManager::unmapPhysicalPage(vaddr_t vaddr)
240 {
241 int ok = VirtualFree(LPVOID(truncPage(vaddr)), 0, MEM_RELEASE);
242 if (!ok)
243 DPRINTF((TEXT("can't release memory\n")));
244 }
245
246 u_int32_t
247 MemoryManager::readPhysical4(paddr_t paddr)
248 {
249 vaddr_t v = mapPhysicalPage(paddr, 4, PAGE_READONLY);
250 u_int32_t val = *(u_int32_t *)v;
251 unmapPhysicalPage(v);
252 return val;
253 }
254
255 //
256 // Use LockPages()
257 //
258 MemoryManager_LockPages::MemoryManager_LockPages
259 (BOOL(*lock_pages)(LPVOID, DWORD, PDWORD, int),
260 BOOL(*unlock_pages)(LPVOID, DWORD),
261 Console *&cons, size_t pagesize, int shift)
262 : MemoryManager(cons, pagesize)
263 {
264 _lock_pages = lock_pages;
265 _unlock_pages = unlock_pages;
266 _shift = shift;
267 DPRINTF((TEXT("use LockPages method.\n")));
268 }
269
270 MemoryManager_LockPages::~MemoryManager_LockPages(void)
271 {
272 }
273
274 paddr_t
275 MemoryManager_LockPages::searchPage(vaddr_t vaddr)
276 {
277 paddr_t paddr = ~0;
278
279 if (!_lock_pages(LPVOID(vaddr), _page_size, PDWORD(&paddr), 1))
280 return paddr;
281
282 if (!_unlock_pages(LPVOID(vaddr), _page_size)) {
283 DPRINTF((TEXT("can't unlock pages\n")));
284 }
285
286 return(paddr >>(_page_shift - _shift)) << _page_shift;
287 }
288
289 //
290 // Use VirtualCopy()
291 //
292 MemoryManager_VirtualCopy::MemoryManager_VirtualCopy(Console *&cons,
293 size_t pagesize)
294 : MemoryManager(cons, pagesize)
295 {
296 _search_guess = 0;
297 DPRINTF((TEXT("use VirtualCopy method.\n")));
298 }
299
300 MemoryManager_VirtualCopy::~MemoryManager_VirtualCopy(void)
301 {
302 }
303
304 paddr_t
305 MemoryManager_VirtualCopy::searchPage(vaddr_t vaddr)
306 {
307 paddr_t paddr = ~0;
308 int i;
309
310 // search all D-RAM bank.
311 setMagic(vaddr);
312 retry:
313 for (i = 0; i < _nbank; i++) {
314 paddr = searchBank(i);
315 if (paddr != ~0)
316 break;
317 }
318 if (_search_guess != 0 && paddr == ~0) {
319 _search_guess = 0;
320 goto retry;
321 }
322
323 clearMagic();
324
325 return paddr;
326 }
327
328 paddr_t
329 MemoryManager_VirtualCopy::searchBank(int banknum)
330 {
331 LPVOID ref;
332 paddr_t paddr, pstart, pend, pfound = ~0;
333 paddr_t bstart, bend;
334 vaddr_t ofs;
335
336 bstart = _bank[banknum].addr;
337 bend = _bank[banknum].addr + _bank[banknum].size;
338
339 pstart = _search_guess ? _search_guess : bstart;
340 pend = bend;
341
342 if (pstart < bstart || pstart >= pend)
343 return pfound;
344
345 // reserve physical reference region
346 ref = VirtualAlloc(0, BLOCK_SIZE, MEM_RESERVE, PAGE_NOACCESS);
347 if (ref == 0) {
348 DPRINTF((TEXT("can't allocate virtual memory.\n")));
349 return pfound;
350 }
351
352 for (paddr = pstart; paddr < pend; paddr += BLOCK_SIZE) {
353 if (!VirtualCopy(ref, LPVOID(paddr >> 8), BLOCK_SIZE,
354 PAGE_READONLY | PAGE_NOCACHE | PAGE_PHYSICAL)) {
355 DPRINTF((TEXT("can't map physical addr 0x%08x(->0x%08x)\n"),
356 ref, paddr));
357 goto release;
358 }
359
360 // search magic in this region.
361 ofs = checkMagicRegion(vaddr_t(ref), BLOCK_SIZE, _page_size);
362
363 // decommit reference region.
364 if (!VirtualFree(ref, BLOCK_SIZE, MEM_DECOMMIT)) {
365 DPRINTF((TEXT("can't decommit addr 0x%08x(->0x%08x)\n"),
366 ref, paddr));
367 goto release;
368 }
369
370 if (ofs != ~0) {
371 pfound = paddr + ofs;
372 _search_guess = paddr;
373 break;
374 }
375 }
376 release:
377 if (!VirtualFree(ref, 0, MEM_RELEASE))
378 DPRINTF((TEXT("can't release memory\n")));
379
380 return pfound;
381 }
382