grfabs_tt.c revision 1.2 1 1.2 leo /* $NetBSD: grfabs_tt.c,v 1.2 1996/02/22 10:11:25 leo Exp $ */
2 1.1 leo
3 1.1 leo /*
4 1.1 leo * Copyright (c) 1995 Leo Weppelman.
5 1.1 leo * All rights reserved.
6 1.1 leo *
7 1.1 leo * Redistribution and use in source and binary forms, with or without
8 1.1 leo * modification, are permitted provided that the following conditions
9 1.1 leo * are met:
10 1.1 leo * 1. Redistributions of source code must retain the above copyright
11 1.1 leo * notice, this list of conditions and the following disclaimer.
12 1.1 leo * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 leo * notice, this list of conditions and the following disclaimer in the
14 1.1 leo * documentation and/or other materials provided with the distribution.
15 1.1 leo * 3. All advertising materials mentioning features or use of this software
16 1.1 leo * must display the following acknowledgement:
17 1.1 leo * This product includes software developed by Leo Weppelman.
18 1.1 leo * 4. The name of the author may not be used to endorse or promote products
19 1.1 leo * derived from this software without specific prior written permission
20 1.1 leo *
21 1.1 leo * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
22 1.1 leo * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
23 1.1 leo * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
24 1.1 leo * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
25 1.1 leo * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
26 1.1 leo * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
27 1.1 leo * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
28 1.1 leo * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
29 1.1 leo * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
30 1.1 leo * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
31 1.1 leo */
32 1.1 leo
33 1.1 leo #ifdef TT_VIDEO
34 1.1 leo /*
35 1.1 leo * atari abstract graphics driver: TT-interface
36 1.1 leo */
37 1.1 leo #include <sys/param.h>
38 1.1 leo #include <sys/queue.h>
39 1.1 leo #include <sys/malloc.h>
40 1.1 leo #include <sys/device.h>
41 1.2 leo #include <sys/systm.h>
42 1.1 leo
43 1.1 leo #include <machine/iomap.h>
44 1.1 leo #include <machine/video.h>
45 1.1 leo #include <machine/mfp.h>
46 1.1 leo #include <atari/atari/device.h>
47 1.1 leo #include <atari/dev/grfabs_reg.h>
48 1.1 leo
49 1.1 leo /*
50 1.1 leo * Function decls
51 1.1 leo */
52 1.1 leo static void init_view __P((view_t *, bmap_t *, dmode_t *, box_t *));
53 1.1 leo static bmap_t *alloc_bitmap __P((u_long, u_long, u_char));
54 1.1 leo static colormap_t *alloc_colormap __P((dmode_t *));
55 1.1 leo static void free_bitmap __P((bmap_t *));
56 1.1 leo static void tt_display_view __P((view_t *));
57 1.1 leo static view_t *tt_alloc_view __P((dmode_t *, dimen_t *, u_char));
58 1.1 leo static void tt_free_view __P((view_t *));
59 1.1 leo static void tt_remove_view __P((view_t *));
60 1.1 leo static int tt_use_colormap __P((view_t *, colormap_t *));
61 1.1 leo
62 1.1 leo /*
63 1.1 leo * Our function switch table
64 1.1 leo */
65 1.1 leo struct grfabs_sw tt_vid_sw = {
66 1.1 leo tt_display_view,
67 1.1 leo tt_alloc_view,
68 1.1 leo tt_free_view,
69 1.1 leo tt_remove_view,
70 1.1 leo tt_use_colormap
71 1.1 leo };
72 1.1 leo
73 1.1 leo static dmode_t vid_modes[] = {
74 1.1 leo { { NULL, NULL }, "sthigh", { 640, 400 }, 1, RES_STHIGH, &tt_vid_sw },
75 1.1 leo { { NULL, NULL }, "tthigh", { 1280, 960 }, 1, RES_TTHIGH, &tt_vid_sw },
76 1.1 leo { { NULL, NULL }, "stmid", { 640, 200 }, 2, RES_STMID , &tt_vid_sw },
77 1.1 leo { { NULL, NULL }, "stlow", { 320, 200 }, 4, RES_STLOW , &tt_vid_sw },
78 1.1 leo { { NULL, NULL }, "ttmid", { 640, 480 }, 4, RES_TTMID , &tt_vid_sw },
79 1.1 leo { { NULL, NULL }, "ttlow", { 320, 480 }, 8, RES_TTLOW , &tt_vid_sw },
80 1.1 leo { { NULL, NULL }, NULL, }
81 1.1 leo };
82 1.1 leo
83 1.1 leo /*
84 1.1 leo * XXX: called from ite console init routine.
85 1.1 leo * Initialize list of posible video modes.
86 1.1 leo */
87 1.1 leo void
88 1.1 leo tt_probe_video(modelp)
89 1.1 leo MODES *modelp;
90 1.1 leo {
91 1.1 leo dmode_t *dm;
92 1.1 leo int i;
93 1.1 leo int has_mono;
94 1.1 leo
95 1.1 leo /*
96 1.1 leo * First find out what kind of monitor is attached. Dma-sound
97 1.1 leo * should be off because the 'sound-done' and 'monochrome-detect'
98 1.1 leo * are xor-ed together. I think that shutting it down here is the
99 1.1 leo * wrong place.
100 1.1 leo */
101 1.1 leo has_mono = (MFP->mf_gpip & IA_MONO) == 0;
102 1.1 leo
103 1.1 leo for (i = 0; (dm = &vid_modes[i])->name != NULL; i++) {
104 1.1 leo if (has_mono && (dm->vm_reg != RES_TTHIGH))
105 1.1 leo continue;
106 1.1 leo if (!has_mono && (dm->vm_reg == RES_TTHIGH))
107 1.1 leo continue;
108 1.1 leo LIST_INSERT_HEAD(modelp, dm, link);
109 1.1 leo }
110 1.1 leo
111 1.1 leo for (i=0; i < 16; i++)
112 1.1 leo VIDEO->vd_tt_rgb[i] = CM_L2TT(gra_def_color16[i]);
113 1.1 leo }
114 1.1 leo
115 1.1 leo static void
116 1.1 leo tt_display_view(v)
117 1.1 leo view_t *v;
118 1.1 leo {
119 1.1 leo dmode_t *dm = v->mode;
120 1.1 leo bmap_t *bm = v->bitmap;
121 1.1 leo
122 1.1 leo if (dm->current_view) {
123 1.1 leo /*
124 1.1 leo * Mark current view for this mode as no longer displayed
125 1.1 leo */
126 1.1 leo dm->current_view->flags &= ~VF_DISPLAY;
127 1.1 leo }
128 1.1 leo dm->current_view = v;
129 1.1 leo v->flags |= VF_DISPLAY;
130 1.1 leo
131 1.1 leo tt_use_colormap(v, v->colormap);
132 1.1 leo
133 1.1 leo /* XXX: should use vbl for this */
134 1.1 leo VIDEO->vd_tt_res = dm->vm_reg;
135 1.1 leo VIDEO->vd_raml = (u_long)bm->hw_address & 0xff;
136 1.1 leo VIDEO->vd_ramm = ((u_long)bm->hw_address >> 8) & 0xff;
137 1.1 leo VIDEO->vd_ramh = ((u_long)bm->hw_address >> 16) & 0xff;
138 1.1 leo }
139 1.1 leo
140 1.1 leo void
141 1.1 leo tt_remove_view(v)
142 1.1 leo view_t *v;
143 1.1 leo {
144 1.1 leo dmode_t *mode = v->mode;
145 1.1 leo
146 1.1 leo if (mode->current_view == v) {
147 1.1 leo #if 0
148 1.1 leo if (v->flags & VF_DISPLAY)
149 1.1 leo panic("Cannot shutdown display\n"); /* XXX */
150 1.1 leo #endif
151 1.1 leo mode->current_view = NULL;
152 1.1 leo }
153 1.1 leo v->flags &= ~VF_DISPLAY;
154 1.1 leo }
155 1.1 leo
156 1.1 leo void
157 1.1 leo tt_free_view(v)
158 1.1 leo view_t *v;
159 1.1 leo {
160 1.1 leo if(v) {
161 1.1 leo tt_remove_view(v);
162 1.1 leo if (v->colormap != &gra_con_cmap)
163 1.1 leo free(v->colormap, M_DEVBUF);
164 1.1 leo free_bitmap(v->bitmap);
165 1.1 leo if (v != &gra_con_view)
166 1.1 leo free(v, M_DEVBUF);
167 1.1 leo }
168 1.1 leo }
169 1.1 leo
170 1.1 leo static int
171 1.1 leo tt_use_colormap(v, cm)
172 1.1 leo view_t *v;
173 1.1 leo colormap_t *cm;
174 1.1 leo {
175 1.1 leo dmode_t *dm;
176 1.1 leo volatile u_short *creg;
177 1.1 leo u_long *src;
178 1.1 leo colormap_t *vcm;
179 1.1 leo u_long *vcreg;
180 1.1 leo u_short ncreg;
181 1.1 leo int i;
182 1.1 leo
183 1.1 leo dm = v->mode;
184 1.1 leo vcm = v->colormap;
185 1.1 leo
186 1.1 leo /*
187 1.1 leo * I guess it seems reasonable to require the maps to be
188 1.1 leo * of the same type...
189 1.1 leo */
190 1.1 leo if (cm->type != vcm->type)
191 1.1 leo return(EINVAL);
192 1.1 leo
193 1.1 leo /*
194 1.1 leo * First figure out where the actual colormap resides and
195 1.1 leo * howmany colors are in it.
196 1.1 leo */
197 1.1 leo switch (dm->vm_reg) {
198 1.1 leo case RES_STLOW:
199 1.1 leo creg = &VIDEO->vd_tt_rgb[0];
200 1.1 leo ncreg = 16;
201 1.1 leo break;
202 1.1 leo case RES_STMID:
203 1.1 leo creg = &VIDEO->vd_tt_rgb[0];
204 1.1 leo ncreg = 4;
205 1.1 leo break;
206 1.1 leo case RES_STHIGH:
207 1.1 leo creg = &VIDEO->vd_tt_rgb[254];
208 1.1 leo ncreg = 2;
209 1.1 leo break;
210 1.1 leo case RES_TTLOW:
211 1.1 leo creg = &VIDEO->vd_tt_rgb[0];
212 1.1 leo ncreg = 256;
213 1.1 leo break;
214 1.1 leo case RES_TTMID:
215 1.1 leo creg = &VIDEO->vd_tt_rgb[0];
216 1.1 leo ncreg = 16;
217 1.1 leo break;
218 1.1 leo case RES_TTHIGH:
219 1.1 leo return(0); /* No colors */
220 1.1 leo default:
221 1.1 leo panic("grf_tt:use_colormap: wrong mode!?");
222 1.1 leo }
223 1.1 leo
224 1.1 leo /* If first entry specified beyond capabilities -> error */
225 1.1 leo if (cm->first >= ncreg)
226 1.1 leo return(EINVAL);
227 1.1 leo
228 1.1 leo /*
229 1.1 leo * A little tricky, the actual colormap pointer will be NULL
230 1.1 leo * when view is not displaying, valid otherwise.
231 1.1 leo */
232 1.1 leo if (v->flags & VF_DISPLAY)
233 1.1 leo creg = &creg[cm->first];
234 1.1 leo else creg = NULL;
235 1.1 leo
236 1.1 leo vcreg = &vcm->entry[cm->first];
237 1.1 leo ncreg -= cm->first;
238 1.1 leo if (cm->size > ncreg)
239 1.1 leo return(EINVAL);
240 1.1 leo ncreg = cm->size;
241 1.1 leo
242 1.1 leo for (i = 0, src = cm->entry; i < ncreg; i++, vcreg++) {
243 1.1 leo *vcreg = *src++;
244 1.1 leo
245 1.1 leo /*
246 1.1 leo * If displaying, also update actual color registers.
247 1.1 leo */
248 1.1 leo if (creg != NULL)
249 1.1 leo *creg++ = CM_L2TT(*vcreg);
250 1.1 leo }
251 1.1 leo return (0);
252 1.1 leo }
253 1.1 leo
254 1.1 leo static view_t *
255 1.1 leo tt_alloc_view(mode, dim, depth)
256 1.1 leo dmode_t *mode;
257 1.1 leo dimen_t *dim;
258 1.1 leo u_char depth;
259 1.1 leo {
260 1.1 leo view_t *v;
261 1.1 leo bmap_t *bm;
262 1.1 leo
263 1.1 leo if (!atari_realconfig)
264 1.1 leo v = &gra_con_view;
265 1.1 leo else v = malloc(sizeof(*v), M_DEVBUF, M_NOWAIT);
266 1.1 leo if(v == NULL)
267 1.1 leo return (NULL);
268 1.1 leo
269 1.1 leo bm = alloc_bitmap(mode->size.width, mode->size.height, mode->depth);
270 1.1 leo if (bm) {
271 1.1 leo box_t box;
272 1.1 leo
273 1.1 leo v->colormap = alloc_colormap(mode);
274 1.1 leo if (v->colormap) {
275 1.1 leo INIT_BOX(&box,0,0,mode->size.width,mode->size.height);
276 1.1 leo init_view(v, bm, mode, &box);
277 1.1 leo return (v);
278 1.1 leo }
279 1.1 leo free_bitmap(bm);
280 1.1 leo }
281 1.1 leo if (v != &gra_con_view)
282 1.1 leo free(v, M_DEVBUF);
283 1.1 leo return (NULL);
284 1.1 leo }
285 1.1 leo
286 1.1 leo static void
287 1.1 leo init_view(v, bm, mode, dbox)
288 1.1 leo view_t *v;
289 1.1 leo bmap_t *bm;
290 1.1 leo dmode_t *mode;
291 1.1 leo box_t *dbox;
292 1.1 leo {
293 1.1 leo v->bitmap = bm;
294 1.1 leo v->mode = mode;
295 1.1 leo v->flags = 0;
296 1.1 leo bcopy(dbox, &v->display, sizeof(box_t));
297 1.1 leo }
298 1.1 leo
299 1.1 leo /* bitmap functions */
300 1.1 leo
301 1.1 leo static bmap_t *
302 1.1 leo alloc_bitmap(width, height, depth)
303 1.1 leo u_long width, height;
304 1.1 leo u_char depth;
305 1.1 leo {
306 1.1 leo u_long total_size, bm_size;
307 1.1 leo void *hw_address;
308 1.1 leo bmap_t *bm;
309 1.1 leo
310 1.1 leo /*
311 1.1 leo * Sigh, it seems for mapping to work we need the bitplane data to
312 1.1 leo * 1: be aligned on a page boundry.
313 1.1 leo * 2: be n pages large.
314 1.1 leo *
315 1.1 leo * why? because the user gets a page aligned address, if this is before
316 1.1 leo * your allocation, too bad. Also it seems that the mapping routines
317 1.1 leo * do not watch to closely to the allowable length. so if you go over
318 1.1 leo * n pages by less than another page, the user gets to write all over
319 1.1 leo * the entire page. Since you did not allocate up to a page boundry
320 1.1 leo * (or more) the user writes into someone elses memory. -ch
321 1.1 leo */
322 1.1 leo bm_size = atari_round_page((width * height * depth) / NBBY);
323 1.1 leo total_size = bm_size + sizeof(bmap_t) + NBPG;
324 1.1 leo
325 1.1 leo if ((bm = (bmap_t*)alloc_stmem(total_size, &hw_address)) == NULL)
326 1.1 leo return(NULL);
327 1.1 leo
328 1.1 leo bm->plane = (u_char*)bm + sizeof(bmap_t);
329 1.1 leo bm->plane = (u_char*)atari_round_page(bm->plane);
330 1.1 leo bm->hw_address = (u_char*)hw_address + sizeof(bmap_t);
331 1.1 leo bm->hw_address = (u_char*)atari_round_page(bm->hw_address);
332 1.1 leo bm->bytes_per_row = (width * depth) / NBBY;
333 1.1 leo bm->rows = height;
334 1.1 leo bm->depth = depth;
335 1.1 leo
336 1.1 leo bzero(bm->plane, bm_size);
337 1.1 leo return (bm);
338 1.1 leo }
339 1.1 leo
340 1.1 leo static void
341 1.1 leo free_bitmap(bm)
342 1.1 leo bmap_t *bm;
343 1.1 leo {
344 1.1 leo if (bm)
345 1.1 leo free_stmem(bm);
346 1.1 leo }
347 1.1 leo
348 1.1 leo static colormap_t *
349 1.1 leo alloc_colormap(dm)
350 1.1 leo dmode_t *dm;
351 1.1 leo {
352 1.1 leo int nentries, i;
353 1.1 leo colormap_t *cm;
354 1.1 leo u_char type = CM_COLOR;
355 1.1 leo
356 1.1 leo switch (dm->vm_reg) {
357 1.1 leo case RES_STLOW:
358 1.1 leo case RES_TTMID:
359 1.1 leo nentries = 16;
360 1.1 leo break;
361 1.1 leo case RES_STMID:
362 1.1 leo nentries = 4;
363 1.1 leo break;
364 1.1 leo case RES_STHIGH:
365 1.1 leo nentries = 2;
366 1.1 leo break;
367 1.1 leo case RES_TTLOW:
368 1.1 leo nentries = 256;
369 1.1 leo break;
370 1.1 leo case RES_TTHIGH:
371 1.1 leo type = CM_MONO;
372 1.1 leo nentries = 0;
373 1.1 leo break;
374 1.1 leo default:
375 1.1 leo panic("grf_tt:alloc_colormap: wrong mode!?");
376 1.1 leo }
377 1.1 leo if (!atari_realconfig) {
378 1.1 leo cm = &gra_con_cmap;
379 1.1 leo cm->entry = gra_con_colors;
380 1.1 leo }
381 1.1 leo else {
382 1.1 leo int size;
383 1.1 leo
384 1.1 leo size = sizeof(*cm) + (nentries * sizeof(cm->entry[0]));
385 1.1 leo cm = malloc(size, M_DEVBUF, M_NOWAIT);
386 1.1 leo if (cm == NULL)
387 1.1 leo return (NULL);
388 1.1 leo cm->entry = (long *)&cm[1];
389 1.1 leo
390 1.1 leo }
391 1.1 leo if ((cm->type = type) == CM_COLOR)
392 1.1 leo cm->red_mask = cm->green_mask = cm->blue_mask = 0xf;
393 1.1 leo cm->first = 0;
394 1.1 leo cm->size = nentries;
395 1.1 leo
396 1.1 leo for (i = 0; i < nentries; i++)
397 1.1 leo cm->entry[i] = gra_def_color16[i % 16];
398 1.1 leo return (cm);
399 1.1 leo }
400 1.1 leo #endif /* TT_VIDEO */
401