sun2.c revision 1.13 1 1.13 riastrad /* $NetBSD: sun2.c,v 1.13 2020/06/20 18:45:06 riastradh Exp $ */
2 1.1 fredette
3 1.1 fredette /*-
4 1.1 fredette * Copyright (c) 1998 The NetBSD Foundation, Inc.
5 1.1 fredette * All rights reserved.
6 1.1 fredette *
7 1.1 fredette * This code is derived from software contributed to The NetBSD Foundation
8 1.1 fredette * by Gordon W. Ross and Matthew Fredette.
9 1.1 fredette *
10 1.1 fredette * Redistribution and use in source and binary forms, with or without
11 1.1 fredette * modification, are permitted provided that the following conditions
12 1.1 fredette * are met:
13 1.1 fredette * 1. Redistributions of source code must retain the above copyright
14 1.1 fredette * notice, this list of conditions and the following disclaimer.
15 1.1 fredette * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 fredette * notice, this list of conditions and the following disclaimer in the
17 1.1 fredette * documentation and/or other materials provided with the distribution.
18 1.1 fredette *
19 1.1 fredette * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.1 fredette * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.1 fredette * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.1 fredette * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.1 fredette * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.1 fredette * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.1 fredette * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.1 fredette * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.1 fredette * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.1 fredette * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.1 fredette * POSSIBILITY OF SUCH DAMAGE.
30 1.1 fredette */
31 1.1 fredette
32 1.1 fredette /*
33 1.1 fredette * Standalone functions specific to the Sun2.
34 1.1 fredette */
35 1.1 fredette
36 1.4 nathanw /*
37 1.13 riastrad * We need to get the sun2 NBSG definition, even if we're
38 1.4 nathanw * building this with a different sun68k target.
39 1.4 nathanw */
40 1.11 tsutsui #include <arch/sun2/include/pmap.h>
41 1.1 fredette
42 1.1 fredette #include <sys/param.h>
43 1.1 fredette #include <machine/idprom.h>
44 1.1 fredette #include <machine/mon.h>
45 1.1 fredette
46 1.1 fredette #include <arch/sun2/include/pte.h>
47 1.1 fredette #include <arch/sun2/sun2/control.h>
48 1.1 fredette #ifdef notyet
49 1.1 fredette #include <arch/sun3/sun3/vme.h>
50 1.1 fredette #else
51 1.1 fredette #define VME16_BASE MBIO_BASE
52 1.1 fredette #define VME16_MASK MBIO_MASK
53 1.1 fredette #endif
54 1.1 fredette #include <arch/sun2/sun2/mbmem.h>
55 1.1 fredette #include <arch/sun2/sun2/mbio.h>
56 1.1 fredette
57 1.1 fredette #include <stand.h>
58 1.1 fredette
59 1.1 fredette #include "libsa.h"
60 1.1 fredette #include "dvma.h"
61 1.1 fredette #include "saio.h" /* enum MAPTYPES */
62 1.1 fredette
63 1.1 fredette #define OBIO_MASK 0xFFFFFF
64 1.1 fredette
65 1.12 tsutsui static u_int sun2_get_pte(vaddr_t);
66 1.12 tsutsui static void sun2_set_pte(vaddr_t, u_int);
67 1.12 tsutsui static void dvma2_init(void);
68 1.12 tsutsui static char * dvma2_alloc(int);
69 1.12 tsutsui static void dvma2_free(char *, int);
70 1.12 tsutsui static char * dvma2_mapin(char *, int);
71 1.12 tsutsui static void dvma2_mapout(char *, int);
72 1.12 tsutsui static char * dev2_mapin(int, u_long, int);
73 1.12 tsutsui static int sun2_get_segmap(vaddr_t);
74 1.12 tsutsui static void sun2_set_segmap(vaddr_t, int);
75 1.1 fredette
76 1.1 fredette struct mapinfo {
77 1.1 fredette int maptype;
78 1.1 fredette int pgtype;
79 1.1 fredette u_int base;
80 1.1 fredette u_int mask;
81 1.1 fredette };
82 1.1 fredette
83 1.1 fredette #ifdef notyet
84 1.1 fredette struct mapinfo
85 1.1 fredette sun2_mapinfo[MAP__NTYPES] = {
86 1.1 fredette /* On-board memory, I/O */
87 1.1 fredette { MAP_MAINMEM, PGT_OBMEM, 0, ~0 },
88 1.1 fredette { MAP_OBIO, PGT_OBIO, 0, OBIO_MASK },
89 1.1 fredette /* Multibus memory, I/O */
90 1.1 fredette { MAP_MBMEM, PGT_MBMEM, MBMEM_BASE, MBMEM_MASK },
91 1.1 fredette { MAP_MBIO, PGT_MBIO, MBIO_BASE, MBIO_MASK },
92 1.1 fredette /* VME A16 */
93 1.1 fredette { MAP_VME16A16D, PGT_VME_D16, VME16_BASE, VME16_MASK },
94 1.1 fredette { MAP_VME16A32D, 0, 0, 0 },
95 1.1 fredette /* VME A24 */
96 1.1 fredette { MAP_VME24A16D, 0, 0, 0 },
97 1.1 fredette { MAP_VME24A32D, 0, 0, 0 },
98 1.1 fredette /* VME A32 */
99 1.1 fredette { MAP_VME32A16D, 0, 0, 0 },
100 1.1 fredette { MAP_VME32A32D, 0, 0, 0 },
101 1.1 fredette };
102 1.1 fredette #endif
103 1.1 fredette
104 1.1 fredette /* The virtual address we will use for PROM device mappings. */
105 1.1 fredette int sun2_devmap = SUN3_MONSHORTSEG;
106 1.1 fredette
107 1.12 tsutsui static char *
108 1.6 chs dev2_mapin(int maptype, u_long physaddr, int length)
109 1.1 fredette {
110 1.1 fredette #ifdef notyet
111 1.1 fredette u_int i, pa, pte, pgva, va;
112 1.1 fredette
113 1.1 fredette if ((sun2_devmap + length) > SUN3_MONSHORTPAGE)
114 1.5 provos panic("dev2_mapin: length=%d", length);
115 1.1 fredette
116 1.1 fredette for (i = 0; i < MAP__NTYPES; i++)
117 1.1 fredette if (sun2_mapinfo[i].maptype == maptype)
118 1.1 fredette goto found;
119 1.1 fredette panic("dev2_mapin: bad maptype");
120 1.1 fredette found:
121 1.1 fredette
122 1.1 fredette if (physaddr & ~(sun2_mapinfo[i].mask))
123 1.1 fredette panic("dev2_mapin: bad address");
124 1.1 fredette pa = sun2_mapinfo[i].base += physaddr;
125 1.1 fredette
126 1.1 fredette pte = PA_PGNUM(pa) | PG_PERM |
127 1.1 fredette sun2_mapinfo[i].pgtype;
128 1.1 fredette
129 1.1 fredette va = pgva = sun2_devmap;
130 1.1 fredette do {
131 1.12 tsutsui sun2_set_pte(pgva, pte);
132 1.1 fredette pgva += NBPG;
133 1.1 fredette pte += 1;
134 1.1 fredette length -= NBPG;
135 1.1 fredette } while (length > 0);
136 1.1 fredette sun2_devmap = pgva;
137 1.1 fredette va += (physaddr & PGOFSET);
138 1.1 fredette
139 1.1 fredette #ifdef DEBUG_PROM
140 1.1 fredette if (debug)
141 1.1 fredette printf("dev2_mapin: va=0x%x pte=0x%x\n",
142 1.12 tsutsui va, sun2_get_pte(va));
143 1.1 fredette #endif
144 1.1 fredette return ((char*)va);
145 1.1 fredette #else
146 1.1 fredette panic("dev2_mapin");
147 1.1 fredette return(NULL);
148 1.1 fredette #endif
149 1.1 fredette }
150 1.1 fredette
151 1.1 fredette /*****************************************************************
152 1.1 fredette * DVMA support
153 1.1 fredette */
154 1.1 fredette
155 1.1 fredette /*
156 1.1 fredette * The easiest way to deal with the need for DVMA mappings is to
157 1.1 fredette * create a DVMA alias mapping of the entire address range used by
158 1.1 fredette * the boot program. That way, dvma_mapin can just compute the
159 1.1 fredette * DVMA alias address, and dvma_mapout does nothing.
160 1.1 fredette *
161 1.1 fredette * Note that this assumes that standalone programs will do I/O
162 1.1 fredette * operations only within range (SA_MIN_VA .. SA_MAX_VA) checked.
163 1.1 fredette */
164 1.1 fredette
165 1.1 fredette #define DVMA_BASE 0x00f00000
166 1.1 fredette #define DVMA_MAPLEN 0x38000 /* 256K - 32K (save MONSHORTSEG) */
167 1.1 fredette
168 1.1 fredette #define SA_MIN_VA 0x220000
169 1.1 fredette #define SA_MAX_VA (SA_MIN_VA + DVMA_MAPLEN)
170 1.1 fredette
171 1.1 fredette /* This points to the end of the free DVMA space. */
172 1.1 fredette u_int dvma2_end = DVMA_BASE + DVMA_MAPLEN;
173 1.1 fredette
174 1.13 riastrad static void
175 1.6 chs dvma2_init(void)
176 1.1 fredette {
177 1.1 fredette int segva, dmava, sme;
178 1.1 fredette
179 1.1 fredette segva = SA_MIN_VA;
180 1.1 fredette dmava = DVMA_BASE;
181 1.1 fredette
182 1.1 fredette while (segva < SA_MAX_VA) {
183 1.12 tsutsui sme = sun2_get_segmap(segva);
184 1.12 tsutsui sun2_set_segmap(dmava, sme);
185 1.1 fredette segva += NBSG;
186 1.1 fredette dmava += NBSG;
187 1.1 fredette }
188 1.1 fredette }
189 1.1 fredette
190 1.1 fredette /* Convert a local address to a DVMA address. */
191 1.12 tsutsui static char *
192 1.1 fredette dvma2_mapin(char *addr, int len)
193 1.1 fredette {
194 1.1 fredette int va = (int)addr;
195 1.1 fredette
196 1.1 fredette /* Make sure the address is in the DVMA map. */
197 1.1 fredette if ((va < SA_MIN_VA) || (va >= SA_MAX_VA))
198 1.13 riastrad panic("dvma2_mapin: 0x%x outside 0x%x..0x%x",
199 1.1 fredette va, SA_MIN_VA, SA_MAX_VA);
200 1.1 fredette
201 1.1 fredette va -= SA_MIN_VA;
202 1.1 fredette va += DVMA_BASE;
203 1.1 fredette
204 1.1 fredette return ((char *) va);
205 1.1 fredette }
206 1.1 fredette
207 1.1 fredette /* Destroy a DVMA address alias. */
208 1.1 fredette void
209 1.1 fredette dvma2_mapout(char *addr, int len)
210 1.1 fredette {
211 1.1 fredette int va = (int)addr;
212 1.1 fredette
213 1.1 fredette /* Make sure the address is in the DVMA map. */
214 1.1 fredette if ((va < DVMA_BASE) || (va >= (DVMA_BASE + DVMA_MAPLEN)))
215 1.1 fredette panic("dvma2_mapout");
216 1.1 fredette }
217 1.1 fredette
218 1.12 tsutsui static char *
219 1.1 fredette dvma2_alloc(int len)
220 1.1 fredette {
221 1.1 fredette len = m68k_round_page(len);
222 1.1 fredette dvma2_end -= len;
223 1.1 fredette return((char*)dvma2_end);
224 1.1 fredette }
225 1.1 fredette
226 1.1 fredette void
227 1.1 fredette dvma2_free(char *dvma, int len)
228 1.1 fredette {
229 1.1 fredette /* not worth the trouble */
230 1.1 fredette }
231 1.1 fredette
232 1.1 fredette /*****************************************************************
233 1.1 fredette * Control space stuff...
234 1.1 fredette */
235 1.1 fredette
236 1.12 tsutsui static u_int
237 1.12 tsutsui sun2_get_pte(vaddr_t va)
238 1.1 fredette {
239 1.1 fredette u_int pte;
240 1.1 fredette
241 1.1 fredette pte = get_control_word(CONTROL_ADDR_BUILD(PGMAP_BASE, va));
242 1.1 fredette if (pte & PG_VALID) {
243 1.13 riastrad /*
244 1.1 fredette * This clears bit 30 (the kernel readable bit, which
245 1.1 fredette * should always be set), bit 28 (which should always
246 1.1 fredette * be set) and bit 26 (the user writable bit, which we
247 1.1 fredette * always have tracking the kernel writable bit). In
248 1.1 fredette * the protection, this leaves bit 29 (the kernel
249 1.1 fredette * writable bit) and bit 27 (the user readable bit).
250 1.1 fredette * See pte2.h for more about this hack.
251 1.1 fredette */
252 1.1 fredette pte &= ~(0x54000000);
253 1.1 fredette /*
254 1.1 fredette * Flip bit 27 (the user readable bit) to become bit
255 1.1 fredette * 27 (the PG_SYSTEM bit).
256 1.1 fredette */
257 1.1 fredette pte ^= (PG_SYSTEM);
258 1.1 fredette }
259 1.1 fredette return (pte);
260 1.1 fredette }
261 1.1 fredette
262 1.12 tsutsui static void
263 1.12 tsutsui sun2_set_pte(vaddr_t va, u_int pte)
264 1.1 fredette {
265 1.1 fredette if (pte & PG_VALID) {
266 1.1 fredette /* Clear bit 26 (the user writable bit). */
267 1.1 fredette pte &= (~0x04000000);
268 1.1 fredette /*
269 1.1 fredette * Flip bit 27 (the PG_SYSTEM bit) to become bit 27
270 1.1 fredette * (the user readable bit).
271 1.1 fredette */
272 1.1 fredette pte ^= (PG_SYSTEM);
273 1.1 fredette /*
274 1.1 fredette * Always set bits 30 (the kernel readable bit) and
275 1.1 fredette * bit 28, and set bit 26 (the user writable bit) iff
276 1.1 fredette * bit 29 (the kernel writable bit) is set *and* bit
277 1.1 fredette * 27 (the user readable bit) is set. This latter bit
278 1.1 fredette * of logic is expressed in the bizarre second term
279 1.1 fredette * below, chosen because it needs no branches.
280 1.1 fredette */
281 1.1 fredette #if (PG_WRITE >> 2) != PG_SYSTEM
282 1.1 fredette #error "PG_WRITE and PG_SYSTEM definitions don't match!"
283 1.1 fredette #endif
284 1.1 fredette pte |= 0x50000000
285 1.1 fredette | ((((pte & PG_WRITE) >> 2) & pte) >> 1);
286 1.1 fredette }
287 1.1 fredette set_control_word(CONTROL_ADDR_BUILD(PGMAP_BASE, va), pte);
288 1.1 fredette }
289 1.1 fredette
290 1.12 tsutsui static int
291 1.12 tsutsui sun2_get_segmap(vaddr_t va)
292 1.1 fredette {
293 1.1 fredette va = CONTROL_ADDR_BUILD(SEGMAP_BASE, va);
294 1.1 fredette return (get_control_byte(va));
295 1.1 fredette }
296 1.1 fredette
297 1.12 tsutsui static void
298 1.12 tsutsui sun2_set_segmap(vaddr_t va, int sme)
299 1.1 fredette {
300 1.1 fredette va = CONTROL_ADDR_BUILD(SEGMAP_BASE, va);
301 1.1 fredette set_control_byte(va, sme);
302 1.1 fredette }
303 1.1 fredette
304 1.1 fredette /*
305 1.1 fredette * Copy the IDPROM contents into the passed buffer.
306 1.1 fredette * The caller (idprom.c) will do the checksum.
307 1.1 fredette */
308 1.1 fredette void
309 1.1 fredette sun2_getidprom(u_char *dst)
310 1.1 fredette {
311 1.2 fredette vaddr_t src; /* control space address */
312 1.1 fredette int len, x;
313 1.1 fredette
314 1.1 fredette src = IDPROM_BASE;
315 1.1 fredette len = sizeof(struct idprom);
316 1.1 fredette do {
317 1.1 fredette x = get_control_byte(src);
318 1.1 fredette src += NBPG;
319 1.1 fredette *dst++ = x;
320 1.1 fredette } while (--len > 0);
321 1.1 fredette }
322 1.1 fredette
323 1.1 fredette /*****************************************************************
324 1.1 fredette * Init our function pointers, etc.
325 1.1 fredette */
326 1.1 fredette
327 1.3 fredette /*
328 1.13 riastrad * For booting, the PROM in fredette's Sun 2/120 doesn't map
329 1.13 riastrad * much main memory, and what is mapped is mapped strangely.
330 1.3 fredette * Low virtual memory is mapped like:
331 1.3 fredette *
332 1.3 fredette * 0x000000 - 0x0bffff virtual -> 0x000000 - 0x0bffff physical
333 1.3 fredette * 0x0c0000 - 0x0fffff virtual -> invalid
334 1.3 fredette * 0x100000 - 0x13ffff virtual -> 0x0c0000 - 0x0fffff physical
335 1.3 fredette * 0x200800 - 0x3fffff virtual -> 0x200800 - 0x3fffff physical
336 1.3 fredette *
337 1.3 fredette * I think the SunOS authors wanted to load kernels starting at
338 1.3 fredette * physical zero, and assumed that kernels would be less
339 1.3 fredette * than 768K (0x0c0000) long. Also, the PROM maps physical
340 1.3 fredette * 0x0c0000 - 0x0fffff into DVMA space, so we can't take the
341 1.3 fredette * easy road and just add more mappings to use that physical
342 1.3 fredette * memory while loading (the PROM might do DMA there).
343 1.3 fredette *
344 1.3 fredette * What we do, then, is assume a 4MB machine (you'll really
345 1.3 fredette * need that to run NetBSD at all anyways), and we map two
346 1.3 fredette * chunks of physical and virtual space:
347 1.3 fredette *
348 1.3 fredette * 0x400000 - 0x4bffff virtual -> 0x000000 - 0x0bffff physical
349 1.3 fredette * 0x4c0000 - 0x600000 virtual -> 0x2c0000 - 0x3fffff physical
350 1.3 fredette *
351 1.13 riastrad * And then we load starting at virtual 0x400000. We will do
352 1.3 fredette * all of this mapping just by copying PMEGs.
353 1.3 fredette *
354 1.3 fredette * After the load is done, but before we enter the kernel, we're
355 1.3 fredette * done with the PROM, so we copy the part of the kernel that
356 1.3 fredette * got loaded at physical 0x2c0000 down to physical 0x0c0000.
357 1.3 fredette * This can't just be a PMEG copy; we've actually got to move
358 1.3 fredette * bytes in physical memory.
359 1.3 fredette *
360 1.3 fredette * These two chunks of physical and virtual space are defined
361 1.3 fredette * in macros below. Some of the macros are only for completeness:
362 1.3 fredette */
363 1.3 fredette #define MEM_CHUNK0_SIZE (0x0c0000)
364 1.3 fredette #define MEM_CHUNK0_LOAD_PHYS (0x000000)
365 1.3 fredette #define MEM_CHUNK0_LOAD_VIRT (0x400000)
366 1.3 fredette #define MEM_CHUNK0_LOAD_VIRT_PROM MEM_CHUNK0_LOAD_PHYS
367 1.3 fredette #define MEM_CHUNK0_COPY_PHYS MEM_CHUNK0_LOAD_PHYS
368 1.3 fredette #define MEM_CHUNK0_COPY_VIRT MEM_CHUNK0_COPY_PHYS
369 1.3 fredette
370 1.3 fredette #define MEM_CHUNK1_SIZE (0x140000)
371 1.3 fredette #define MEM_CHUNK1_LOAD_PHYS (0x2c0000)
372 1.3 fredette #define MEM_CHUNK1_LOAD_VIRT (MEM_CHUNK0_LOAD_VIRT + MEM_CHUNK0_SIZE)
373 1.3 fredette #define MEM_CHUNK1_LOAD_VIRT_PROM MEM_CHUNK1_LOAD_PHYS
374 1.3 fredette #define MEM_CHUNK1_COPY_PHYS (MEM_CHUNK0_LOAD_PHYS + MEM_CHUNK0_SIZE)
375 1.3 fredette #define MEM_CHUNK1_COPY_VIRT MEM_CHUNK1_COPY_PHYS
376 1.3 fredette
377 1.3 fredette /* Maps memory for loading. */
378 1.13 riastrad u_long
379 1.6 chs sun2_map_mem_load(void)
380 1.3 fredette {
381 1.3 fredette vaddr_t off;
382 1.3 fredette
383 1.3 fredette /* Map chunk zero for loading. */
384 1.3 fredette for(off = 0; off < MEM_CHUNK0_SIZE; off += NBSG)
385 1.12 tsutsui sun2_set_segmap(MEM_CHUNK0_LOAD_VIRT + off,
386 1.12 tsutsui sun2_get_segmap(MEM_CHUNK0_LOAD_VIRT_PROM + off));
387 1.3 fredette
388 1.3 fredette /* Map chunk one for loading. */
389 1.3 fredette for(off = 0; off < MEM_CHUNK1_SIZE; off += NBSG)
390 1.12 tsutsui sun2_set_segmap(MEM_CHUNK1_LOAD_VIRT + off,
391 1.12 tsutsui sun2_get_segmap(MEM_CHUNK1_LOAD_VIRT_PROM + off));
392 1.3 fredette
393 1.3 fredette /* Tell our caller where in virtual space to load. */
394 1.3 fredette return MEM_CHUNK0_LOAD_VIRT;
395 1.3 fredette }
396 1.3 fredette
397 1.3 fredette /* Remaps memory for running. */
398 1.3 fredette void *
399 1.6 chs sun2_map_mem_run(void *entry)
400 1.3 fredette {
401 1.3 fredette vaddr_t off, off_end;
402 1.3 fredette int sme;
403 1.3 fredette u_int pte;
404 1.3 fredette
405 1.3 fredette /* Chunk zero is already mapped and copied. */
406 1.3 fredette
407 1.3 fredette /* Chunk one needs to be mapped and copied. */
408 1.12 tsutsui pte = (sun2_get_pte(0) & ~PG_FRAME);
409 1.3 fredette for(off = 0; off < MEM_CHUNK1_SIZE; ) {
410 1.3 fredette
411 1.3 fredette /*
412 1.3 fredette * We use the PMEG immediately before the
413 1.3 fredette * segment we're copying in the PROM virtual
414 1.3 fredette * mapping of the chunk. If this is the first
415 1.3 fredette * segment, this is the PMEG the PROM used to
416 1.3 fredette * map 0x2b8000 virtual to 0x2b8000 physical,
417 1.3 fredette * which I'll assume is unused. For the second
418 1.3 fredette * and subsequent segments, this will be the
419 1.3 fredette * PMEG used to map the previous segment, which
420 1.3 fredette * is now (since we already copied it) unused.
421 1.3 fredette */
422 1.12 tsutsui sme = sun2_get_segmap((MEM_CHUNK1_LOAD_VIRT_PROM + off) - NBSG);
423 1.12 tsutsui sun2_set_segmap(MEM_CHUNK1_COPY_VIRT + off, sme);
424 1.3 fredette
425 1.3 fredette /* Set the PTEs in this new PMEG. */
426 1.3 fredette for(off_end = off + NBSG; off < off_end; off += NBPG)
427 1.13 riastrad sun2_set_pte(MEM_CHUNK1_COPY_VIRT + off,
428 1.3 fredette pte | PA_PGNUM(MEM_CHUNK1_COPY_PHYS + off));
429 1.13 riastrad
430 1.3 fredette /* Copy this segment. */
431 1.8 christos memcpy((void *)(MEM_CHUNK1_COPY_VIRT + (off - NBSG)),
432 1.8 christos (void *)(MEM_CHUNK1_LOAD_VIRT + (off - NBSG)),
433 1.6 chs NBSG);
434 1.3 fredette }
435 1.13 riastrad
436 1.3 fredette /* Tell our caller where in virtual space to enter. */
437 1.10 tsutsui return ((char *)entry) - MEM_CHUNK0_LOAD_VIRT;
438 1.3 fredette }
439 1.3 fredette
440 1.13 riastrad void
441 1.6 chs sun2_init(void)
442 1.1 fredette {
443 1.1 fredette /* Set the function pointers. */
444 1.1 fredette dev_mapin_p = dev2_mapin;
445 1.1 fredette dvma_alloc_p = dvma2_alloc;
446 1.1 fredette dvma_free_p = dvma2_free;
447 1.1 fredette dvma_mapin_p = dvma2_mapin;
448 1.1 fredette dvma_mapout_p = dvma2_mapout;
449 1.13 riastrad
450 1.1 fredette /* Prepare DVMA segment. */
451 1.1 fredette dvma2_init();
452 1.1 fredette }
453