grf_cl.c revision 1.22 1 1.22 veego /* $NetBSD: grf_cl.c,v 1.22 1998/04/17 17:57:08 veego Exp $ */
2 1.1 chopps
3 1.1 chopps /*
4 1.19 veego * Copyright (c) 1997 Klaus Burkert
5 1.1 chopps * Copyright (c) 1995 Ezra Story
6 1.1 chopps * Copyright (c) 1995 Kari Mettinen
7 1.1 chopps * Copyright (c) 1994 Markus Wild
8 1.1 chopps * Copyright (c) 1994 Lutz Vieweg
9 1.1 chopps * All rights reserved.
10 1.1 chopps *
11 1.1 chopps * Redistribution and use in source and binary forms, with or without
12 1.1 chopps * modification, are permitted provided that the following conditions
13 1.1 chopps * are met:
14 1.1 chopps * 1. Redistributions of source code must retain the above copyright
15 1.1 chopps * notice, this list of conditions and the following disclaimer.
16 1.1 chopps * 2. Redistributions in binary form must reproduce the above copyright
17 1.1 chopps * notice, this list of conditions and the following disclaimer in the
18 1.1 chopps * documentation and/or other materials provided with the distribution.
19 1.1 chopps * 3. All advertising materials mentioning features or use of this software
20 1.1 chopps * must display the following acknowledgement:
21 1.1 chopps * This product includes software developed by Lutz Vieweg.
22 1.1 chopps * 4. The name of the author may not be used to endorse or promote products
23 1.1 chopps * derived from this software without specific prior written permission
24 1.1 chopps *
25 1.1 chopps * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
26 1.1 chopps * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
27 1.1 chopps * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
28 1.1 chopps * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
29 1.1 chopps * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
30 1.1 chopps * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
31 1.1 chopps * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
32 1.1 chopps * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
33 1.1 chopps * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
34 1.5 chopps * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
35 1.1 chopps */
36 1.5 chopps #include "grfcl.h"
37 1.5 chopps #if NGRFCL > 0
38 1.1 chopps
39 1.1 chopps /*
40 1.1 chopps * Graphics routines for Cirrus CL GD 5426 boards,
41 1.1 chopps *
42 1.1 chopps * This code offers low-level routines to access Cirrus Cl GD 5426
43 1.1 chopps * graphics-boards from within NetBSD for the Amiga.
44 1.1 chopps * No warranties for any kind of function at all - this
45 1.1 chopps * code may crash your hardware and scratch your harddisk. Use at your
46 1.1 chopps * own risk. Freely distributable.
47 1.1 chopps *
48 1.1 chopps * Modified for Cirrus CL GD 5426 from
49 1.1 chopps * Lutz Vieweg's retina driver by Kari Mettinen 08/94
50 1.1 chopps * Contributions by Ill, ScottE, MiL
51 1.1 chopps * Extensively hacked and rewritten by Ezra Story (Ezy) 01/95
52 1.6 is * Picasso/040 patches (wee!) by crest 01/96
53 1.1 chopps *
54 1.19 veego * PicassoIV support bz Klaus "crest" Burkert.
55 1.19 veego * Fixed interlace and doublescan, added clockdoubling and
56 1.19 veego * HiColor&TrueColor suuport by crest 01/97
57 1.19 veego *
58 1.1 chopps * Thanks to Village Tronic Marketing Gmbh for providing me with
59 1.1 chopps * a Picasso-II board.
60 1.1 chopps * Thanks for Integrated Electronics Oy Ab for providing me with
61 1.1 chopps * Cirrus CL GD 542x family documentation.
62 1.1 chopps *
63 1.1 chopps * TODO:
64 1.5 chopps * Mouse support (almost there! :-))
65 1.1 chopps * Blitter support
66 1.1 chopps *
67 1.1 chopps */
68 1.1 chopps
69 1.1 chopps #include <sys/param.h>
70 1.4 chopps #include <sys/systm.h>
71 1.1 chopps #include <sys/errno.h>
72 1.1 chopps #include <sys/ioctl.h>
73 1.1 chopps #include <sys/device.h>
74 1.1 chopps #include <sys/malloc.h>
75 1.5 chopps
76 1.1 chopps #include <machine/cpu.h>
77 1.1 chopps #include <dev/cons.h>
78 1.9 veego #include <amiga/dev/itevar.h>
79 1.1 chopps #include <amiga/amiga/device.h>
80 1.1 chopps #include <amiga/dev/grfioctl.h>
81 1.1 chopps #include <amiga/dev/grfvar.h>
82 1.1 chopps #include <amiga/dev/grf_clreg.h>
83 1.1 chopps #include <amiga/dev/zbusvar.h>
84 1.1 chopps
85 1.19 veego int cl_mondefok __P((struct grfvideo_mode *));
86 1.19 veego void cl_boardinit __P((struct grf_softc *));
87 1.19 veego static void cl_CompFQ __P((u_int, u_char *, u_char *, u_char *));
88 1.19 veego int cl_getvmode __P((struct grf_softc *, struct grfvideo_mode *));
89 1.19 veego int cl_setvmode __P((struct grf_softc *, unsigned int));
90 1.19 veego int cl_toggle __P((struct grf_softc *, unsigned short));
91 1.19 veego int cl_getcmap __P((struct grf_softc *, struct grf_colormap *));
92 1.19 veego int cl_putcmap __P((struct grf_softc *, struct grf_colormap *));
93 1.9 veego #ifndef CL5426CONSOLE
94 1.19 veego void cl_off __P((struct grf_softc *));
95 1.9 veego #endif
96 1.19 veego void cl_inittextmode __P((struct grf_softc *));
97 1.19 veego int cl_ioctl __P((register struct grf_softc *, u_long, void *));
98 1.19 veego int cl_getmousepos __P((struct grf_softc *, struct grf_position *));
99 1.19 veego int cl_setmousepos __P((struct grf_softc *, struct grf_position *));
100 1.19 veego static int cl_setspriteinfo __P((struct grf_softc *, struct grf_spriteinfo *));
101 1.19 veego int cl_getspriteinfo __P((struct grf_softc *, struct grf_spriteinfo *));
102 1.19 veego static int cl_getspritemax __P((struct grf_softc *, struct grf_position *));
103 1.19 veego int cl_blank __P((struct grf_softc *, int *));
104 1.19 veego int cl_setmonitor __P((struct grf_softc *, struct grfvideo_mode *));
105 1.19 veego void cl_writesprpos __P((volatile char *, short, short));
106 1.19 veego void writeshifted __P((volatile char *, char, char));
107 1.19 veego
108 1.19 veego static void RegWakeup __P((volatile caddr_t));
109 1.19 veego static void RegOnpass __P((volatile caddr_t));
110 1.19 veego static void RegOffpass __P((volatile caddr_t));
111 1.19 veego
112 1.19 veego void grfclattach __P((struct device *, struct device *, void *));
113 1.19 veego int grfclprint __P((void *, const char *));
114 1.19 veego int grfclmatch __P((struct device *, struct cfdata *, void *));
115 1.19 veego void cl_memset __P((unsigned char *, unsigned char, int));
116 1.1 chopps
117 1.5 chopps /* Graphics display definitions.
118 1.1 chopps * These are filled by 'grfconfig' using GRFIOCSETMON.
119 1.1 chopps */
120 1.20 veego #define monitor_def_max 24
121 1.20 veego static struct grfvideo_mode monitor_def[24] = {
122 1.20 veego {0}, {0}, {0}, {0}, {0}, {0}, {0}, {0},
123 1.20 veego {0}, {0}, {0}, {0}, {0}, {0}, {0}, {0},
124 1.1 chopps {0}, {0}, {0}, {0}, {0}, {0}, {0}, {0}
125 1.1 chopps };
126 1.1 chopps static struct grfvideo_mode *monitor_current = &monitor_def[0];
127 1.1 chopps
128 1.1 chopps /* Patchable maximum pixel clock */
129 1.5 chopps unsigned long cl_maxpixelclock = 86000000;
130 1.1 chopps
131 1.1 chopps /* Console display definition.
132 1.1 chopps * Default hardcoded text mode. This grf_cl is set up to
133 1.1 chopps * use one text mode only, and this is it. You may use
134 1.1 chopps * grfconfig to change the mode after boot.
135 1.5 chopps */
136 1.1 chopps /* Console font */
137 1.2 chopps #ifdef KFONT_8X11
138 1.2 chopps #define CIRRUSFONT kernel_font_8x11
139 1.2 chopps #define CIRRUSFONTY 11
140 1.2 chopps #else
141 1.1 chopps #define CIRRUSFONT kernel_font_8x8
142 1.1 chopps #define CIRRUSFONTY 8
143 1.2 chopps #endif
144 1.1 chopps extern unsigned char CIRRUSFONT[];
145 1.1 chopps
146 1.1 chopps struct grfcltext_mode clconsole_mode = {
147 1.20 veego {255, "", 25200000, 640, 480, 4, 640/8, 752/8, 792/8, 800/8,
148 1.20 veego 481, 490, 498, 522, 0},
149 1.5 chopps 8, CIRRUSFONTY, 80, 480 / CIRRUSFONTY, CIRRUSFONT, 32, 255
150 1.1 chopps };
151 1.1 chopps /* Console colors */
152 1.5 chopps unsigned char clconscolors[3][3] = { /* background, foreground, hilite */
153 1.5 chopps {0, 0x40, 0x50}, {152, 152, 152}, {255, 255, 255}
154 1.1 chopps };
155 1.1 chopps
156 1.11 veego int cltype = 0; /* Picasso, Spectrum or Piccolo */
157 1.19 veego int cl_64bit = 0; /* PiccoloSD64 or PicassoIV */
158 1.5 chopps unsigned char pass_toggle; /* passthru status tracker */
159 1.1 chopps
160 1.19 veego /*
161 1.19 veego * because all 542x-boards have 2 configdev entries, one for
162 1.1 chopps * framebuffer mem and the other for regs, we have to hold onto
163 1.1 chopps * the pointers globally until we match on both. This and 'cltype'
164 1.1 chopps * are the primary obsticles to multiple board support, but if you
165 1.1 chopps * have multiple boards you have bigger problems than grf_cl.
166 1.1 chopps */
167 1.5 chopps static void *cl_fbaddr = 0; /* framebuffer */
168 1.5 chopps static void *cl_regaddr = 0; /* registers */
169 1.5 chopps static int cl_fbsize; /* framebuffer size */
170 1.19 veego static int cl_fbautosize; /* framebuffer autoconfig size */
171 1.19 veego
172 1.5 chopps
173 1.19 veego /*
174 1.19 veego * current sprite info, if you add support for multiple boards
175 1.5 chopps * make this an array or something
176 1.5 chopps */
177 1.5 chopps struct grf_spriteinfo cl_cursprite;
178 1.5 chopps
179 1.5 chopps /* sprite bitmaps in kernel stack, you'll need to arrayize these too if
180 1.5 chopps * you add multiple board support
181 1.5 chopps */
182 1.5 chopps static unsigned char cl_imageptr[8 * 64], cl_maskptr[8 * 64];
183 1.5 chopps static unsigned char cl_sprred[2], cl_sprgreen[2], cl_sprblue[2];
184 1.1 chopps
185 1.1 chopps /* standard driver stuff */
186 1.8 mhitch struct cfattach grfcl_ca = {
187 1.7 thorpej sizeof(struct grf_softc), grfclmatch, grfclattach
188 1.7 thorpej };
189 1.7 thorpej
190 1.1 chopps static struct cfdata *cfdata;
191 1.1 chopps
192 1.1 chopps int
193 1.18 veego grfclmatch(pdp, cfp, auxp)
194 1.1 chopps struct device *pdp;
195 1.18 veego struct cfdata *cfp;
196 1.18 veego void *auxp;
197 1.1 chopps {
198 1.1 chopps struct zbus_args *zap;
199 1.19 veego static int regprod, fbprod, fbprod2;
200 1.11 veego int error;
201 1.1 chopps
202 1.19 veego fbprod2 = 0;
203 1.1 chopps zap = auxp;
204 1.1 chopps
205 1.1 chopps #ifndef CL5426CONSOLE
206 1.1 chopps if (amiga_realconfig == 0)
207 1.5 chopps return (0);
208 1.1 chopps #endif
209 1.1 chopps
210 1.5 chopps /* Grab the first board we encounter as the preferred one. This will
211 1.5 chopps * allow one board to work in a multiple 5426 board system, but not
212 1.5 chopps * multiple boards at the same time. */
213 1.1 chopps if (cltype == 0) {
214 1.1 chopps switch (zap->manid) {
215 1.11 veego case PICASSO:
216 1.19 veego switch (zap->prodid) {
217 1.19 veego case 11:
218 1.19 veego case 12:
219 1.19 veego regprod = 12;
220 1.19 veego fbprod = 11;
221 1.19 veego error = 0;
222 1.19 veego break;
223 1.19 veego case 22:
224 1.19 veego fbprod2 = 22;
225 1.19 veego error = 0;
226 1.19 veego break;
227 1.19 veego case 21:
228 1.19 veego case 23:
229 1.19 veego regprod = 23;
230 1.19 veego fbprod = 21;
231 1.19 veego cl_64bit = 1;
232 1.19 veego error = 0;
233 1.19 veego break;
234 1.19 veego case 24:
235 1.19 veego regprod = 24;
236 1.19 veego fbprod = 24;
237 1.19 veego cl_64bit = 1;
238 1.19 veego error = 0;
239 1.19 veego break;
240 1.19 veego default:
241 1.19 veego error = 1;
242 1.19 veego break;
243 1.19 veego }
244 1.19 veego if (error == 1)
245 1.19 veego return (0);
246 1.19 veego else
247 1.19 veego break;
248 1.11 veego case SPECTRUM:
249 1.3 chopps if (zap->prodid != 2 && zap->prodid != 1)
250 1.3 chopps return (0);
251 1.1 chopps regprod = 2;
252 1.1 chopps fbprod = 1;
253 1.1 chopps break;
254 1.11 veego case PICCOLO:
255 1.11 veego switch (zap->prodid) {
256 1.11 veego case 5:
257 1.11 veego case 6:
258 1.11 veego regprod = 6;
259 1.11 veego fbprod = 5;
260 1.11 veego error = 0;
261 1.11 veego break;
262 1.11 veego case 10:
263 1.11 veego case 11:
264 1.11 veego regprod = 11;
265 1.11 veego fbprod = 10;
266 1.19 veego cl_64bit = 1;
267 1.11 veego error = 0;
268 1.11 veego break;
269 1.11 veego default:
270 1.11 veego error = 1;
271 1.11 veego break;
272 1.11 veego }
273 1.11 veego if (error == 1)
274 1.11 veego return (0);
275 1.11 veego else
276 1.11 veego break;
277 1.11 veego default:
278 1.5 chopps return (0);
279 1.1 chopps }
280 1.1 chopps cltype = zap->manid;
281 1.1 chopps } else {
282 1.1 chopps if (cltype != zap->manid) {
283 1.5 chopps return (0);
284 1.1 chopps }
285 1.1 chopps }
286 1.1 chopps
287 1.5 chopps /* Configure either registers or framebuffer in any order */
288 1.19 veego if ((cltype == PICASSO) && (cl_64bit == 1)) {
289 1.19 veego switch (zap->prodid) {
290 1.19 veego case 21:
291 1.5 chopps cl_fbaddr = zap->va;
292 1.19 veego cl_fbautosize = zap->size;
293 1.19 veego break;
294 1.19 veego case 22:
295 1.19 veego cl_fbautosize += zap->size;
296 1.19 veego break;
297 1.19 veego case 23:
298 1.19 veego cl_regaddr = (void *)((unsigned long)(zap->va) + 0x10000);
299 1.19 veego break;
300 1.19 veego case 24:
301 1.19 veego cl_regaddr = (void *)((unsigned long)(zap->va) + 0x600000);
302 1.19 veego cl_fbaddr = (void *)((unsigned long)(zap->va) + 0x01000000);
303 1.19 veego cl_fbautosize = 0x400000;
304 1.19 veego break;
305 1.19 veego default:
306 1.5 chopps return (0);
307 1.19 veego }
308 1.19 veego }
309 1.19 veego else {
310 1.19 veego if (zap->prodid == regprod)
311 1.19 veego cl_regaddr = zap->va;
312 1.19 veego else
313 1.19 veego if (zap->prodid == fbprod) {
314 1.19 veego cl_fbaddr = zap->va;
315 1.19 veego cl_fbautosize = zap->size;
316 1.19 veego } else
317 1.19 veego return (0);
318 1.19 veego }
319 1.1 chopps
320 1.1 chopps #ifdef CL5426CONSOLE
321 1.19 veego if (amiga_realconfig == 0) {
322 1.19 veego cfdata = cfp;
323 1.19 veego }
324 1.5 chopps #endif
325 1.19 veego
326 1.5 chopps return (1);
327 1.1 chopps }
328 1.1 chopps
329 1.1 chopps void
330 1.1 chopps grfclattach(pdp, dp, auxp)
331 1.1 chopps struct device *pdp, *dp;
332 1.5 chopps void *auxp;
333 1.1 chopps {
334 1.1 chopps static struct grf_softc congrf;
335 1.1 chopps struct zbus_args *zap;
336 1.1 chopps struct grf_softc *gp;
337 1.1 chopps static char attachflag = 0;
338 1.1 chopps
339 1.1 chopps zap = auxp;
340 1.1 chopps
341 1.16 christos printf("\n");
342 1.1 chopps
343 1.1 chopps /* make sure both halves have matched */
344 1.1 chopps if (!cl_regaddr || !cl_fbaddr)
345 1.1 chopps return;
346 1.1 chopps
347 1.1 chopps /* do all that messy console/grf stuff */
348 1.1 chopps if (dp == NULL)
349 1.1 chopps gp = &congrf;
350 1.1 chopps else
351 1.5 chopps gp = (struct grf_softc *) dp;
352 1.1 chopps
353 1.1 chopps if (dp != NULL && congrf.g_regkva != 0) {
354 1.1 chopps /*
355 1.1 chopps * inited earlier, just copy (not device struct)
356 1.1 chopps */
357 1.1 chopps bcopy(&congrf.g_display, &gp->g_display,
358 1.5 chopps (char *) &gp[1] - (char *) &gp->g_display);
359 1.1 chopps } else {
360 1.5 chopps gp->g_regkva = (volatile caddr_t) cl_regaddr;
361 1.5 chopps gp->g_fbkva = (volatile caddr_t) cl_fbaddr;
362 1.1 chopps
363 1.1 chopps gp->g_unit = GRF_CL5426_UNIT;
364 1.1 chopps gp->g_mode = cl_mode;
365 1.1 chopps gp->g_conpri = grfcl_cnprobe();
366 1.1 chopps gp->g_flags = GF_ALIVE;
367 1.1 chopps
368 1.1 chopps /* wakeup the board */
369 1.1 chopps cl_boardinit(gp);
370 1.1 chopps #ifdef CL5426CONSOLE
371 1.1 chopps grfcl_iteinit(gp);
372 1.5 chopps (void) cl_load_mon(gp, &clconsole_mode);
373 1.1 chopps #endif
374 1.1 chopps
375 1.1 chopps }
376 1.1 chopps
377 1.1 chopps /*
378 1.1 chopps * attach grf (once)
379 1.1 chopps */
380 1.1 chopps if (amiga_config_found(cfdata, &gp->g_device, gp, grfclprint)) {
381 1.1 chopps attachflag = 1;
382 1.16 christos printf("grfcl: %dMB ", cl_fbsize / 0x100000);
383 1.1 chopps switch (cltype) {
384 1.11 veego case PICASSO:
385 1.19 veego if (cl_64bit == 1) {
386 1.19 veego printf("Picasso IV");
387 1.19 veego /* 135MHz will be supported if we
388 1.19 veego * have a palette doubling mode.
389 1.19 veego */
390 1.19 veego cl_maxpixelclock = 86000000;
391 1.19 veego }
392 1.19 veego else {
393 1.19 veego printf("Picasso II");
394 1.19 veego
395 1.19 veego /* check for PicassoII+ (crest) */
396 1.19 veego if(zap->serno == 0x00100000)
397 1.19 veego printf("+");
398 1.19 veego
399 1.19 veego /* determine used Gfx/chipset (crest) */
400 1.19 veego vgaw(gp->g_regkva, CRT_ADDRESS, 0x27); /* Chip ID */
401 1.19 veego switch(vgar(gp->g_regkva, CRT_ADDRESS_R)>>2) {
402 1.19 veego case 0x24:
403 1.19 veego printf(" (with CL-GD5426)");
404 1.19 veego break;
405 1.19 veego case 0x26:
406 1.19 veego printf(" (with CL-GD5428)");
407 1.19 veego break;
408 1.19 veego case 0x27:
409 1.19 veego printf(" (with CL-GD5429)");
410 1.19 veego break;
411 1.19 veego }
412 1.19 veego cl_maxpixelclock = 86000000;
413 1.19 veego }
414 1.1 chopps break;
415 1.11 veego case SPECTRUM:
416 1.16 christos printf("Spectrum");
417 1.5 chopps cl_maxpixelclock = 90000000;
418 1.1 chopps break;
419 1.11 veego case PICCOLO:
420 1.19 veego if (cl_64bit == 1) {
421 1.16 christos printf("Piccolo SD64");
422 1.11 veego /* 110MHz will be supported if we
423 1.11 veego * have a palette doubling mode.
424 1.11 veego */
425 1.11 veego cl_maxpixelclock = 90000000;
426 1.11 veego } else {
427 1.16 christos printf("Piccolo");
428 1.11 veego cl_maxpixelclock = 90000000;
429 1.11 veego }
430 1.1 chopps break;
431 1.1 chopps }
432 1.16 christos printf(" being used\n");
433 1.5 chopps #ifdef CL_OVERCLOCK
434 1.5 chopps cl_maxpixelclock = 115000000;
435 1.5 chopps #endif
436 1.1 chopps } else {
437 1.1 chopps if (!attachflag)
438 1.16 christos printf("grfcl unattached!!\n");
439 1.1 chopps }
440 1.1 chopps }
441 1.1 chopps
442 1.1 chopps int
443 1.1 chopps grfclprint(auxp, pnp)
444 1.5 chopps void *auxp;
445 1.13 cgd const char *pnp;
446 1.1 chopps {
447 1.1 chopps if (pnp)
448 1.16 christos printf("ite at %s: ", pnp);
449 1.5 chopps return (UNCONF);
450 1.1 chopps }
451 1.1 chopps
452 1.1 chopps void
453 1.1 chopps cl_boardinit(gp)
454 1.5 chopps struct grf_softc *gp;
455 1.1 chopps {
456 1.1 chopps unsigned char *ba = gp->g_regkva;
457 1.5 chopps int x;
458 1.1 chopps
459 1.19 veego if ((cltype == PICASSO) && (cl_64bit == 1)) { /* PicassoIV */
460 1.19 veego WCrt(ba, 0x51, 0x00); /* disable capture (FlickerFixer) */
461 1.19 veego delay(200000); /* wait some time (two frames as of now) */
462 1.19 veego WGfx(ba, 0x2f, 0x00); /* get Blitter into 542x */
463 1.19 veego WGfx(ba, GCT_ID_RESERVED, 0x00); /* compatibility mode */
464 1.19 veego WGfx(ba, GCT_ID_BLT_STAT_START, 0x00); /* or at least, try so... */
465 1.19 veego cl_fbsize = cl_fbautosize;
466 1.19 veego } else {
467 1.19 veego
468 1.19 veego /* wakeup board and flip passthru OFF */
469 1.19 veego RegWakeup(ba);
470 1.19 veego RegOnpass(ba);
471 1.19 veego
472 1.19 veego vgaw(ba, 0x46e8, 0x16);
473 1.19 veego vgaw(ba, 0x102, 1);
474 1.19 veego vgaw(ba, 0x46e8, 0x0e);
475 1.19 veego if (cl_64bit != 1)
476 1.19 veego vgaw(ba, 0x3c3, 1);
477 1.19 veego
478 1.19 veego cl_fbsize = cl_fbautosize;
479 1.1 chopps
480 1.19 veego /* setup initial unchanging parameters */
481 1.19 veego
482 1.19 veego WSeq(ba, SEQ_ID_CLOCKING_MODE, 0x21); /* 8 dot - display off */
483 1.19 veego vgaw(ba, GREG_MISC_OUTPUT_W, 0xed); /* mem disable */
484 1.19 veego
485 1.19 veego WGfx(ba, GCT_ID_OFFSET_1, 0xec); /* magic cookie */
486 1.19 veego WSeq(ba, SEQ_ID_UNLOCK_EXT, 0x12); /* yum! cookies! */
487 1.1 chopps
488 1.19 veego if (cl_64bit == 1) {
489 1.19 veego WSeq(ba, SEQ_ID_CONF_RBACK, 0x00);
490 1.19 veego WSeq(ba, SEQ_ID_DRAM_CNTL, (cl_fbsize / 0x100000 == 2) ? 0x38 : 0xb8);
491 1.19 veego } else {
492 1.19 veego WSeq(ba, SEQ_ID_DRAM_CNTL, 0xb0);
493 1.19 veego }
494 1.19 veego WSeq(ba, SEQ_ID_RESET, 0x03);
495 1.19 veego WSeq(ba, SEQ_ID_MAP_MASK, 0xff);
496 1.19 veego WSeq(ba, SEQ_ID_CHAR_MAP_SELECT, 0x00);
497 1.19 veego WSeq(ba, SEQ_ID_MEMORY_MODE, 0x0e); /* a or 6? */
498 1.19 veego WSeq(ba, SEQ_ID_EXT_SEQ_MODE, (cltype == PICASSO) ? 0x21 : 0x81);
499 1.19 veego WSeq(ba, SEQ_ID_EEPROM_CNTL, 0x00);
500 1.19 veego if (cl_64bit == 1)
501 1.19 veego WSeq(ba, SEQ_ID_PERF_TUNE, 0x5a);
502 1.19 veego else
503 1.19 veego WSeq(ba, SEQ_ID_PERF_TUNE, 0x0a); /* mouse 0a fa */
504 1.19 veego WSeq(ba, SEQ_ID_SIG_CNTL, 0x02);
505 1.19 veego WSeq(ba, SEQ_ID_CURSOR_ATTR, 0x04);
506 1.1 chopps
507 1.19 veego if (cl_64bit == 1)
508 1.19 veego WSeq(ba, SEQ_ID_MCLK_SELECT, 0x1c);
509 1.19 veego else
510 1.14 thorpej WSeq(ba, SEQ_ID_MCLK_SELECT, 0x22);
511 1.1 chopps
512 1.19 veego WCrt(ba, CRT_ID_PRESET_ROW_SCAN, 0x00);
513 1.19 veego WCrt(ba, CRT_ID_CURSOR_START, 0x00);
514 1.19 veego WCrt(ba, CRT_ID_CURSOR_END, 0x08);
515 1.19 veego WCrt(ba, CRT_ID_START_ADDR_HIGH, 0x00);
516 1.19 veego WCrt(ba, CRT_ID_START_ADDR_LOW, 0x00);
517 1.19 veego WCrt(ba, CRT_ID_CURSOR_LOC_HIGH, 0x00);
518 1.19 veego WCrt(ba, CRT_ID_CURSOR_LOC_LOW, 0x00);
519 1.1 chopps
520 1.19 veego WCrt(ba, CRT_ID_UNDERLINE_LOC, 0x07);
521 1.19 veego WCrt(ba, CRT_ID_MODE_CONTROL, 0xe3);
522 1.19 veego WCrt(ba, CRT_ID_LINE_COMPARE, 0xff); /* ff */
523 1.19 veego WCrt(ba, CRT_ID_EXT_DISP_CNTL, 0x22);
524 1.19 veego if (cl_64bit == 1) {
525 1.19 veego WCrt(ba, CRT_ID_SYNC_ADJ_GENLOCK, 0x00);
526 1.19 veego WCrt(ba, CRT_ID_OVERLAY_EXT_CTRL_REG, 0x40);
527 1.19 veego }
528 1.19 veego WSeq(ba, SEQ_ID_CURSOR_STORE, 0x3c); /* mouse 0x00 */
529 1.1 chopps
530 1.19 veego WGfx(ba, GCT_ID_SET_RESET, 0x00);
531 1.19 veego WGfx(ba, GCT_ID_ENABLE_SET_RESET, 0x00);
532 1.19 veego WGfx(ba, GCT_ID_DATA_ROTATE, 0x00);
533 1.19 veego WGfx(ba, GCT_ID_READ_MAP_SELECT, 0x00);
534 1.19 veego WGfx(ba, GCT_ID_GRAPHICS_MODE, 0x00);
535 1.19 veego WGfx(ba, GCT_ID_MISC, 0x01);
536 1.19 veego WGfx(ba, GCT_ID_COLOR_XCARE, 0x0f);
537 1.19 veego WGfx(ba, GCT_ID_BITMASK, 0xff);
538 1.19 veego WGfx(ba, GCT_ID_MODE_EXT, 0x28);
539 1.19 veego
540 1.19 veego for (x = 0; x < 0x10; x++)
541 1.19 veego WAttr(ba, x, x);
542 1.19 veego WAttr(ba, ACT_ID_ATTR_MODE_CNTL, 0x01);
543 1.19 veego WAttr(ba, ACT_ID_OVERSCAN_COLOR, 0x00);
544 1.19 veego WAttr(ba, ACT_ID_COLOR_PLANE_ENA, 0x0f);
545 1.19 veego WAttr(ba, ACT_ID_HOR_PEL_PANNING, 0x00);
546 1.19 veego WAttr(ba, ACT_ID_COLOR_SELECT, 0x00);
547 1.19 veego WAttr(ba, 0x34, 0x00);
548 1.1 chopps
549 1.19 veego vgaw(ba, VDAC_MASK, 0xff);
550 1.19 veego vgaw(ba, GREG_MISC_OUTPUT_W, 0xef);
551 1.1 chopps
552 1.19 veego WGfx(ba, GCT_ID_BLT_STAT_START, 0x04);
553 1.19 veego WGfx(ba, GCT_ID_BLT_STAT_START, 0x00);
554 1.19 veego }
555 1.1 chopps
556 1.1 chopps /* colors initially set to greyscale */
557 1.1 chopps vgaw(ba, VDAC_ADDRESS_W, 0);
558 1.5 chopps for (x = 255; x >= 0; x--) {
559 1.1 chopps vgaw(ba, VDAC_DATA, x);
560 1.1 chopps vgaw(ba, VDAC_DATA, x);
561 1.1 chopps vgaw(ba, VDAC_DATA, x);
562 1.1 chopps }
563 1.5 chopps /* set sprite bitmap pointers */
564 1.5 chopps cl_cursprite.image = cl_imageptr;
565 1.5 chopps cl_cursprite.mask = cl_maskptr;
566 1.5 chopps cl_cursprite.cmap.red = cl_sprred;
567 1.5 chopps cl_cursprite.cmap.green = cl_sprgreen;
568 1.5 chopps cl_cursprite.cmap.blue = cl_sprblue;
569 1.19 veego
570 1.19 veego if (cl_64bit == 0) {
571 1.19 veego
572 1.19 veego /* check for 1MB or 2MB board (crest) */
573 1.19 veego volatile unsigned long *cl_fbtestaddr;
574 1.19 veego cl_fbtestaddr = (volatile unsigned long *)gp->g_fbkva;
575 1.19 veego
576 1.19 veego WGfx(ba, GCT_ID_OFFSET_0, 0x40);
577 1.19 veego *cl_fbtestaddr = 0x12345678;
578 1.19 veego
579 1.19 veego if (*cl_fbtestaddr != 0x12345678) {
580 1.19 veego WSeq(ba, SEQ_ID_DRAM_CNTL, 0x30);
581 1.19 veego cl_fbsize = 0x100000;
582 1.19 veego }
583 1.19 veego else
584 1.19 veego {
585 1.19 veego cl_fbsize = 0x200000;
586 1.19 veego }
587 1.19 veego }
588 1.19 veego WGfx(ba, GCT_ID_OFFSET_0, 0x00);
589 1.1 chopps }
590 1.1 chopps
591 1.1 chopps
592 1.1 chopps int
593 1.1 chopps cl_getvmode(gp, vm)
594 1.1 chopps struct grf_softc *gp;
595 1.1 chopps struct grfvideo_mode *vm;
596 1.1 chopps {
597 1.1 chopps struct grfvideo_mode *gv;
598 1.1 chopps
599 1.1 chopps #ifdef CL5426CONSOLE
600 1.1 chopps /* Handle grabbing console mode */
601 1.1 chopps if (vm->mode_num == 255) {
602 1.1 chopps bcopy(&clconsole_mode, vm, sizeof(struct grfvideo_mode));
603 1.5 chopps /* XXX so grfconfig can tell us the correct text dimensions. */
604 1.1 chopps vm->depth = clconsole_mode.fy;
605 1.5 chopps } else
606 1.1 chopps #endif
607 1.5 chopps {
608 1.5 chopps if (vm->mode_num == 0)
609 1.5 chopps vm->mode_num = (monitor_current - monitor_def) + 1;
610 1.5 chopps if (vm->mode_num < 1 || vm->mode_num > monitor_def_max)
611 1.5 chopps return (EINVAL);
612 1.5 chopps gv = monitor_def + (vm->mode_num - 1);
613 1.5 chopps if (gv->mode_num == 0)
614 1.5 chopps return (EINVAL);
615 1.5 chopps
616 1.5 chopps bcopy(gv, vm, sizeof(struct grfvideo_mode));
617 1.5 chopps }
618 1.5 chopps
619 1.5 chopps /* adjust internal values to pixel values */
620 1.5 chopps
621 1.5 chopps vm->hblank_start *= 8;
622 1.5 chopps vm->hsync_start *= 8;
623 1.5 chopps vm->hsync_stop *= 8;
624 1.5 chopps vm->htotal *= 8;
625 1.5 chopps
626 1.5 chopps return (0);
627 1.1 chopps }
628 1.1 chopps
629 1.1 chopps
630 1.1 chopps int
631 1.1 chopps cl_setvmode(gp, mode)
632 1.1 chopps struct grf_softc *gp;
633 1.1 chopps unsigned mode;
634 1.1 chopps {
635 1.5 chopps if (!mode || (mode > monitor_def_max) ||
636 1.5 chopps monitor_def[mode - 1].mode_num == 0)
637 1.5 chopps return (EINVAL);
638 1.1 chopps
639 1.1 chopps monitor_current = monitor_def + (mode - 1);
640 1.1 chopps
641 1.5 chopps return (0);
642 1.1 chopps }
643 1.1 chopps
644 1.9 veego #ifndef CL5426CONSOLE
645 1.1 chopps void
646 1.1 chopps cl_off(gp)
647 1.5 chopps struct grf_softc *gp;
648 1.1 chopps {
649 1.5 chopps char *ba = gp->g_regkva;
650 1.1 chopps
651 1.19 veego /*
652 1.19 veego * we'll put the pass-through on for cc ite and set Full Bandwidth bit
653 1.5 chopps * on just in case it didn't work...but then it doesn't matter does
654 1.19 veego * it? =)
655 1.19 veego */
656 1.1 chopps RegOnpass(ba);
657 1.19 veego vgaw(ba, SEQ_ADDRESS, SEQ_ID_CLOCKING_MODE);
658 1.19 veego vgaw(ba, SEQ_ADDRESS_W, vgar(ba, SEQ_ADDRESS_W) | 0x20);
659 1.1 chopps }
660 1.9 veego #endif
661 1.1 chopps
662 1.5 chopps int
663 1.5 chopps cl_blank(gp, on)
664 1.5 chopps struct grf_softc *gp;
665 1.5 chopps int *on;
666 1.5 chopps {
667 1.12 is WSeq(gp->g_regkva, SEQ_ID_CLOCKING_MODE, *on > 0 ? 0x01 : 0x21);
668 1.5 chopps return(0);
669 1.5 chopps }
670 1.5 chopps
671 1.1 chopps /*
672 1.1 chopps * Change the mode of the display.
673 1.1 chopps * Return a UNIX error number or 0 for success.
674 1.1 chopps */
675 1.9 veego int
676 1.1 chopps cl_mode(gp, cmd, arg, a2, a3)
677 1.1 chopps register struct grf_softc *gp;
678 1.9 veego u_long cmd;
679 1.9 veego void *arg;
680 1.9 veego u_long a2;
681 1.9 veego int a3;
682 1.1 chopps {
683 1.5 chopps int error;
684 1.1 chopps
685 1.1 chopps switch (cmd) {
686 1.11 veego case GM_GRFON:
687 1.5 chopps error = cl_load_mon(gp,
688 1.1 chopps (struct grfcltext_mode *) monitor_current) ? 0 : EINVAL;
689 1.5 chopps return (error);
690 1.1 chopps
691 1.11 veego case GM_GRFOFF:
692 1.1 chopps #ifndef CL5426CONSOLE
693 1.1 chopps cl_off(gp);
694 1.1 chopps #else
695 1.1 chopps cl_load_mon(gp, &clconsole_mode);
696 1.1 chopps #endif
697 1.5 chopps return (0);
698 1.1 chopps
699 1.11 veego case GM_GRFCONFIG:
700 1.5 chopps return (0);
701 1.1 chopps
702 1.11 veego case GM_GRFGETVMODE:
703 1.5 chopps return (cl_getvmode(gp, (struct grfvideo_mode *) arg));
704 1.1 chopps
705 1.11 veego case GM_GRFSETVMODE:
706 1.5 chopps error = cl_setvmode(gp, *(unsigned *) arg);
707 1.5 chopps if (!error && (gp->g_flags & GF_GRFON))
708 1.5 chopps cl_load_mon(gp,
709 1.1 chopps (struct grfcltext_mode *) monitor_current);
710 1.5 chopps return (error);
711 1.1 chopps
712 1.11 veego case GM_GRFGETNUMVM:
713 1.5 chopps *(int *) arg = monitor_def_max;
714 1.5 chopps return (0);
715 1.1 chopps
716 1.11 veego case GM_GRFIOCTL:
717 1.9 veego return (cl_ioctl(gp, a2, arg));
718 1.1 chopps
719 1.11 veego default:
720 1.1 chopps break;
721 1.1 chopps }
722 1.1 chopps
723 1.5 chopps return (EINVAL);
724 1.1 chopps }
725 1.1 chopps
726 1.1 chopps int
727 1.5 chopps cl_ioctl(gp, cmd, data)
728 1.1 chopps register struct grf_softc *gp;
729 1.9 veego u_long cmd;
730 1.5 chopps void *data;
731 1.1 chopps {
732 1.1 chopps switch (cmd) {
733 1.11 veego case GRFIOCGSPRITEPOS:
734 1.5 chopps return (cl_getmousepos(gp, (struct grf_position *) data));
735 1.5 chopps
736 1.11 veego case GRFIOCSSPRITEPOS:
737 1.5 chopps return (cl_setmousepos(gp, (struct grf_position *) data));
738 1.5 chopps
739 1.11 veego case GRFIOCSSPRITEINF:
740 1.5 chopps return (cl_setspriteinfo(gp, (struct grf_spriteinfo *) data));
741 1.5 chopps
742 1.11 veego case GRFIOCGSPRITEINF:
743 1.5 chopps return (cl_getspriteinfo(gp, (struct grf_spriteinfo *) data));
744 1.5 chopps
745 1.11 veego case GRFIOCGSPRITEMAX:
746 1.5 chopps return (cl_getspritemax(gp, (struct grf_position *) data));
747 1.1 chopps
748 1.11 veego case GRFIOCGETCMAP:
749 1.5 chopps return (cl_getcmap(gp, (struct grf_colormap *) data));
750 1.1 chopps
751 1.11 veego case GRFIOCPUTCMAP:
752 1.5 chopps return (cl_putcmap(gp, (struct grf_colormap *) data));
753 1.1 chopps
754 1.11 veego case GRFIOCBITBLT:
755 1.1 chopps break;
756 1.1 chopps
757 1.11 veego case GRFTOGGLE:
758 1.5 chopps return (cl_toggle(gp, 0));
759 1.1 chopps
760 1.11 veego case GRFIOCSETMON:
761 1.5 chopps return (cl_setmonitor(gp, (struct grfvideo_mode *) data));
762 1.5 chopps
763 1.11 veego case GRFIOCBLANK:
764 1.5 chopps return (cl_blank(gp, (int *)data));
765 1.5 chopps
766 1.5 chopps }
767 1.5 chopps return (EINVAL);
768 1.5 chopps }
769 1.5 chopps
770 1.5 chopps int
771 1.5 chopps cl_getmousepos(gp, data)
772 1.5 chopps struct grf_softc *gp;
773 1.5 chopps struct grf_position *data;
774 1.5 chopps {
775 1.5 chopps data->x = cl_cursprite.pos.x;
776 1.5 chopps data->y = cl_cursprite.pos.y;
777 1.5 chopps return (0);
778 1.5 chopps }
779 1.5 chopps
780 1.5 chopps void
781 1.5 chopps cl_writesprpos(ba, x, y)
782 1.5 chopps volatile char *ba;
783 1.5 chopps short x;
784 1.5 chopps short y;
785 1.5 chopps {
786 1.5 chopps /* we want to use a 16-bit write to 3c4 so no macros used */
787 1.5 chopps volatile unsigned char *cwp;
788 1.5 chopps volatile unsigned short *wp;
789 1.5 chopps
790 1.5 chopps cwp = ba + 0x3c4;
791 1.5 chopps wp = (unsigned short *)cwp;
792 1.5 chopps
793 1.19 veego /*
794 1.19 veego * don't ask me why, but apparently you can't do a 16-bit write with
795 1.19 veego * x-position like with y-position below (dagge)
796 1.19 veego */
797 1.5 chopps cwp[0] = 0x10 | ((x << 5) & 0xff);
798 1.5 chopps cwp[1] = (x >> 3) & 0xff;
799 1.5 chopps
800 1.5 chopps *wp = 0x1100 | ((y & 7) << 13) | ((y >> 3) & 0xff);
801 1.5 chopps }
802 1.5 chopps
803 1.5 chopps void
804 1.5 chopps writeshifted(to, shiftx, shifty)
805 1.9 veego volatile char *to;
806 1.5 chopps char shiftx;
807 1.5 chopps char shifty;
808 1.5 chopps {
809 1.22 veego int y;
810 1.5 chopps unsigned long long *tptr, *iptr, *mptr, line;
811 1.5 chopps
812 1.5 chopps tptr = (unsigned long long *) to;
813 1.5 chopps iptr = (unsigned long long *) cl_cursprite.image;
814 1.5 chopps mptr = (unsigned long long *) cl_cursprite.mask;
815 1.5 chopps
816 1.5 chopps shiftx = shiftx < 0 ? 0 : shiftx;
817 1.5 chopps shifty = shifty < 0 ? 0 : shifty;
818 1.5 chopps
819 1.5 chopps /* start reading shifty lines down, and
820 1.5 chopps * shift each line in by shiftx
821 1.5 chopps */
822 1.5 chopps for (y = shifty; y < 64; y++) {
823 1.5 chopps
824 1.5 chopps /* image */
825 1.5 chopps line = iptr[y];
826 1.5 chopps *tptr++ = line << shiftx;
827 1.5 chopps
828 1.5 chopps /* mask */
829 1.5 chopps line = mptr[y];
830 1.5 chopps *tptr++ = line << shiftx;
831 1.5 chopps }
832 1.5 chopps
833 1.5 chopps /* clear the remainder */
834 1.5 chopps for (y = shifty; y > 0; y--) {
835 1.5 chopps *tptr++ = 0;
836 1.5 chopps *tptr++ = 0;
837 1.5 chopps }
838 1.5 chopps }
839 1.5 chopps
840 1.5 chopps int
841 1.5 chopps cl_setmousepos(gp, data)
842 1.5 chopps struct grf_softc *gp;
843 1.5 chopps struct grf_position *data;
844 1.5 chopps {
845 1.5 chopps volatile char *ba = gp->g_regkva;
846 1.9 veego short rx, ry, prx, pry;
847 1.9 veego #ifdef CL_SHIFTSPRITE
848 1.5 chopps volatile char *fb = gp->g_fbkva;
849 1.5 chopps volatile char *sprite = fb + (cl_fbsize - 1024);
850 1.9 veego #endif
851 1.5 chopps
852 1.5 chopps /* no movement */
853 1.5 chopps if (cl_cursprite.pos.x == data->x && cl_cursprite.pos.y == data->y)
854 1.5 chopps return (0);
855 1.5 chopps
856 1.5 chopps /* current and previous real coordinates */
857 1.5 chopps rx = data->x - cl_cursprite.hot.x;
858 1.5 chopps ry = data->y - cl_cursprite.hot.y;
859 1.5 chopps prx = cl_cursprite.pos.x - cl_cursprite.hot.x;
860 1.5 chopps pry = cl_cursprite.pos.y - cl_cursprite.hot.y;
861 1.5 chopps
862 1.19 veego /*
863 1.19 veego * if we are/were on an edge, create (un)shifted bitmap --
864 1.5 chopps * ripped out optimization (not extremely worthwhile,
865 1.5 chopps * and kind of buggy anyhow).
866 1.5 chopps */
867 1.5 chopps #ifdef CL_SHIFTSPRITE
868 1.5 chopps if (rx < 0 || ry < 0 || prx < 0 || pry < 0) {
869 1.5 chopps writeshifted(sprite, rx < 0 ? -rx : 0, ry < 0 ? -ry : 0);
870 1.5 chopps }
871 1.5 chopps #endif
872 1.5 chopps
873 1.5 chopps /* do movement, save position */
874 1.5 chopps cl_writesprpos(ba, rx < 0 ? 0 : rx, ry < 0 ? 0 : ry);
875 1.5 chopps cl_cursprite.pos.x = data->x;
876 1.5 chopps cl_cursprite.pos.y = data->y;
877 1.5 chopps
878 1.5 chopps return (0);
879 1.5 chopps }
880 1.5 chopps
881 1.5 chopps int
882 1.5 chopps cl_getspriteinfo(gp, data)
883 1.5 chopps struct grf_softc *gp;
884 1.5 chopps struct grf_spriteinfo *data;
885 1.5 chopps {
886 1.5 chopps copyout(&cl_cursprite, data, sizeof(struct grf_spriteinfo));
887 1.5 chopps copyout(cl_cursprite.image, data->image, 64 * 8);
888 1.5 chopps copyout(cl_cursprite.mask, data->mask, 64 * 8);
889 1.5 chopps return (0);
890 1.5 chopps }
891 1.5 chopps
892 1.14 thorpej static int
893 1.5 chopps cl_setspriteinfo(gp, data)
894 1.5 chopps struct grf_softc *gp;
895 1.5 chopps struct grf_spriteinfo *data;
896 1.5 chopps {
897 1.5 chopps volatile unsigned char *ba = gp->g_regkva, *fb = gp->g_fbkva;
898 1.5 chopps volatile char *sprite = fb + (cl_fbsize - 1024);
899 1.5 chopps
900 1.5 chopps if (data->set & GRFSPRSET_SHAPE) {
901 1.5 chopps
902 1.5 chopps short dsx, dsy, i;
903 1.5 chopps unsigned long *di, *dm, *si, *sm;
904 1.5 chopps unsigned long ssi[128], ssm[128];
905 1.5 chopps struct grf_position gpos;
906 1.5 chopps
907 1.5 chopps
908 1.5 chopps /* check for a too large sprite (no clipping!) */
909 1.5 chopps dsy = data->size.y;
910 1.5 chopps dsx = data->size.x;
911 1.5 chopps if (dsy > 64 || dsx > 64)
912 1.5 chopps return(EINVAL);
913 1.5 chopps
914 1.5 chopps /* prepare destination */
915 1.5 chopps di = (unsigned long *)cl_cursprite.image;
916 1.5 chopps dm = (unsigned long *)cl_cursprite.mask;
917 1.5 chopps cl_memset((unsigned char *)di, 0, 8*64);
918 1.5 chopps cl_memset((unsigned char *)dm, 0, 8*64);
919 1.5 chopps
920 1.5 chopps /* two alternatives: 64 across, then it's
921 1.5 chopps * the same format we use, just copy. Otherwise,
922 1.5 chopps * copy into tmp buf and recopy skipping the
923 1.5 chopps * unused 32 bits.
924 1.5 chopps */
925 1.5 chopps if ((dsx - 1) / 32) {
926 1.5 chopps copyin(data->image, di, 8 * dsy);
927 1.5 chopps copyin(data->mask, dm, 8 * dsy);
928 1.5 chopps } else {
929 1.5 chopps si = ssi; sm = ssm;
930 1.5 chopps copyin(data->image, si, 4 * dsy);
931 1.5 chopps copyin(data->mask, sm, 4 * dsy);
932 1.5 chopps for (i = 0; i < dsy; i++) {
933 1.5 chopps *di = *si++;
934 1.5 chopps *dm = *sm++;
935 1.5 chopps di += 2;
936 1.5 chopps dm += 2;
937 1.5 chopps }
938 1.5 chopps }
939 1.5 chopps
940 1.5 chopps /* set size */
941 1.5 chopps cl_cursprite.size.x = data->size.x;
942 1.5 chopps cl_cursprite.size.y = data->size.y;
943 1.5 chopps
944 1.5 chopps /* forcably load into board */
945 1.5 chopps gpos.x = cl_cursprite.pos.x;
946 1.5 chopps gpos.y = cl_cursprite.pos.y;
947 1.5 chopps cl_cursprite.pos.x = -1;
948 1.5 chopps cl_cursprite.pos.y = -1;
949 1.5 chopps writeshifted(sprite, 0, 0);
950 1.5 chopps cl_setmousepos(gp, &gpos);
951 1.5 chopps
952 1.5 chopps }
953 1.5 chopps if (data->set & GRFSPRSET_HOT) {
954 1.5 chopps
955 1.5 chopps cl_cursprite.hot = data->hot;
956 1.5 chopps
957 1.5 chopps }
958 1.5 chopps if (data->set & GRFSPRSET_CMAP) {
959 1.5 chopps
960 1.5 chopps u_char red[2], green[2], blue[2];
961 1.5 chopps
962 1.5 chopps copyin(data->cmap.red, red, 2);
963 1.5 chopps copyin(data->cmap.green, green, 2);
964 1.5 chopps copyin(data->cmap.blue, blue, 2);
965 1.5 chopps bcopy(red, cl_cursprite.cmap.red, 2);
966 1.5 chopps bcopy(green, cl_cursprite.cmap.green, 2);
967 1.5 chopps bcopy(blue, cl_cursprite.cmap.blue, 2);
968 1.5 chopps
969 1.5 chopps /* enable and load colors 256 & 257 */
970 1.5 chopps WSeq(ba, SEQ_ID_CURSOR_ATTR, 0x06);
971 1.5 chopps
972 1.5 chopps /* 256 */
973 1.5 chopps vgaw(ba, VDAC_ADDRESS_W, 0x00);
974 1.5 chopps if (cltype == PICASSO) {
975 1.5 chopps vgaw(ba, VDAC_DATA, (u_char) (red[0] >> 2));
976 1.5 chopps vgaw(ba, VDAC_DATA, (u_char) (green[0] >> 2));
977 1.5 chopps vgaw(ba, VDAC_DATA, (u_char) (blue[0] >> 2));
978 1.5 chopps } else {
979 1.5 chopps vgaw(ba, VDAC_DATA, (u_char) (blue[0] >> 2));
980 1.5 chopps vgaw(ba, VDAC_DATA, (u_char) (green[0] >> 2));
981 1.5 chopps vgaw(ba, VDAC_DATA, (u_char) (red[0] >> 2));
982 1.5 chopps }
983 1.5 chopps
984 1.5 chopps /* 257 */
985 1.5 chopps vgaw(ba, VDAC_ADDRESS_W, 0x0f);
986 1.5 chopps if (cltype == PICASSO) {
987 1.5 chopps vgaw(ba, VDAC_DATA, (u_char) (red[1] >> 2));
988 1.5 chopps vgaw(ba, VDAC_DATA, (u_char) (green[1] >> 2));
989 1.5 chopps vgaw(ba, VDAC_DATA, (u_char) (blue[1] >> 2));
990 1.5 chopps } else {
991 1.5 chopps vgaw(ba, VDAC_DATA, (u_char) (blue[1] >> 2));
992 1.5 chopps vgaw(ba, VDAC_DATA, (u_char) (green[1] >> 2));
993 1.5 chopps vgaw(ba, VDAC_DATA, (u_char) (red[1] >> 2));
994 1.5 chopps }
995 1.5 chopps
996 1.5 chopps /* turn on/off sprite */
997 1.5 chopps if (cl_cursprite.enable) {
998 1.5 chopps WSeq(ba, SEQ_ID_CURSOR_ATTR, 0x05);
999 1.5 chopps } else {
1000 1.5 chopps WSeq(ba, SEQ_ID_CURSOR_ATTR, 0x04);
1001 1.5 chopps }
1002 1.5 chopps
1003 1.5 chopps }
1004 1.5 chopps if (data->set & GRFSPRSET_ENABLE) {
1005 1.5 chopps
1006 1.5 chopps if (data->enable == 1) {
1007 1.5 chopps WSeq(ba, SEQ_ID_CURSOR_ATTR, 0x05);
1008 1.5 chopps cl_cursprite.enable = 1;
1009 1.5 chopps } else {
1010 1.5 chopps WSeq(ba, SEQ_ID_CURSOR_ATTR, 0x04);
1011 1.5 chopps cl_cursprite.enable = 0;
1012 1.5 chopps }
1013 1.5 chopps
1014 1.5 chopps }
1015 1.5 chopps if (data->set & GRFSPRSET_POS) {
1016 1.5 chopps
1017 1.5 chopps /* force placement */
1018 1.5 chopps cl_cursprite.pos.x = -1;
1019 1.5 chopps cl_cursprite.pos.y = -1;
1020 1.1 chopps
1021 1.5 chopps /* do it */
1022 1.5 chopps cl_setmousepos(gp, &data->pos);
1023 1.5 chopps
1024 1.1 chopps }
1025 1.5 chopps return (0);
1026 1.5 chopps }
1027 1.5 chopps
1028 1.14 thorpej static int
1029 1.5 chopps cl_getspritemax(gp, data)
1030 1.5 chopps struct grf_softc *gp;
1031 1.5 chopps struct grf_position *data;
1032 1.5 chopps {
1033 1.5 chopps if (gp->g_display.gd_planes == 24)
1034 1.5 chopps return (EINVAL);
1035 1.5 chopps data->x = 64;
1036 1.5 chopps data->y = 64;
1037 1.5 chopps return (0);
1038 1.1 chopps }
1039 1.1 chopps
1040 1.1 chopps int
1041 1.1 chopps cl_setmonitor(gp, gv)
1042 1.1 chopps struct grf_softc *gp;
1043 1.1 chopps struct grfvideo_mode *gv;
1044 1.1 chopps {
1045 1.5 chopps struct grfvideo_mode *md;
1046 1.5 chopps
1047 1.5 chopps if (!cl_mondefok(gv))
1048 1.5 chopps return(EINVAL);
1049 1.1 chopps
1050 1.1 chopps #ifdef CL5426CONSOLE
1051 1.1 chopps /* handle interactive setting of console mode */
1052 1.5 chopps if (gv->mode_num == 255) {
1053 1.1 chopps bcopy(gv, &clconsole_mode.gv, sizeof(struct grfvideo_mode));
1054 1.20 veego clconsole_mode.gv.hblank_start /= 8;
1055 1.20 veego clconsole_mode.gv.hsync_start /= 8;
1056 1.20 veego clconsole_mode.gv.hsync_stop /= 8;
1057 1.20 veego clconsole_mode.gv.htotal /= 8;
1058 1.1 chopps clconsole_mode.rows = gv->disp_height / clconsole_mode.fy;
1059 1.1 chopps clconsole_mode.cols = gv->disp_width / clconsole_mode.fx;
1060 1.1 chopps if (!(gp->g_flags & GF_GRFON))
1061 1.5 chopps cl_load_mon(gp, &clconsole_mode);
1062 1.1 chopps ite_reinit(gp->g_itedev);
1063 1.5 chopps return (0);
1064 1.1 chopps }
1065 1.1 chopps #endif
1066 1.1 chopps
1067 1.5 chopps md = monitor_def + (gv->mode_num - 1);
1068 1.5 chopps bcopy(gv, md, sizeof(struct grfvideo_mode));
1069 1.5 chopps
1070 1.20 veego /* adjust pixel oriented values to internal rep. */
1071 1.1 chopps
1072 1.20 veego md->hblank_start /= 8;
1073 1.20 veego md->hsync_start /= 8;
1074 1.20 veego md->hsync_stop /= 8;
1075 1.20 veego md->htotal /= 8;
1076 1.1 chopps
1077 1.5 chopps return (0);
1078 1.1 chopps }
1079 1.1 chopps
1080 1.1 chopps int
1081 1.5 chopps cl_getcmap(gfp, cmap)
1082 1.1 chopps struct grf_softc *gfp;
1083 1.1 chopps struct grf_colormap *cmap;
1084 1.1 chopps {
1085 1.1 chopps volatile unsigned char *ba;
1086 1.5 chopps u_char red[256], green[256], blue[256], *rp, *gp, *bp;
1087 1.5 chopps short x;
1088 1.5 chopps int error;
1089 1.1 chopps
1090 1.1 chopps if (cmap->count == 0 || cmap->index >= 256)
1091 1.1 chopps return 0;
1092 1.1 chopps
1093 1.1 chopps if (cmap->index + cmap->count > 256)
1094 1.1 chopps cmap->count = 256 - cmap->index;
1095 1.1 chopps
1096 1.1 chopps ba = gfp->g_regkva;
1097 1.1 chopps /* first read colors out of the chip, then copyout to userspace */
1098 1.6 is vgaw(ba, VDAC_ADDRESS_R, cmap->index);
1099 1.1 chopps x = cmap->count - 1;
1100 1.1 chopps
1101 1.19 veego /*
1102 1.19 veego * Some sort 'o Magic. Spectrum has some changes on the board to speed
1103 1.1 chopps * up 15 and 16Bit modes. They can access these modes with easy-to-programm
1104 1.1 chopps * rgbrgbrgb instead of rrrgggbbb. Side effect: when in 8Bit mode, rgb
1105 1.1 chopps * is swapped to bgr. I wonder if we need to check for 8Bit though, ill
1106 1.1 chopps */
1107 1.1 chopps
1108 1.19 veego /*
1109 1.19 veego * The source for the above comment is somewhat unknow to me.
1110 1.19 veego * The Spectrum, Piccolo and PiccoloSD64 have the analog Red and Blue
1111 1.19 veego * lines swapped. In 24BPP this provides RGB instead of BGR as it would
1112 1.19 veego * be native to the chipset. This requires special programming for the
1113 1.19 veego * CLUT in 8BPP to compensate and avoid false colors.
1114 1.19 veego * I didn't find any special stuff for 15 and 16BPP though, crest.
1115 1.19 veego */
1116 1.19 veego
1117 1.5 chopps switch (cltype) {
1118 1.11 veego case SPECTRUM:
1119 1.11 veego case PICCOLO:
1120 1.5 chopps rp = blue + cmap->index;
1121 1.1 chopps gp = green + cmap->index;
1122 1.1 chopps bp = red + cmap->index;
1123 1.1 chopps break;
1124 1.11 veego case PICASSO:
1125 1.5 chopps rp = red + cmap->index;
1126 1.1 chopps gp = green + cmap->index;
1127 1.1 chopps bp = blue + cmap->index;
1128 1.1 chopps break;
1129 1.11 veego default:
1130 1.9 veego rp = gp = bp = 0;
1131 1.9 veego break;
1132 1.1 chopps }
1133 1.1 chopps
1134 1.1 chopps do {
1135 1.5 chopps *rp++ = vgar(ba, VDAC_DATA) << 2;
1136 1.5 chopps *gp++ = vgar(ba, VDAC_DATA) << 2;
1137 1.5 chopps *bp++ = vgar(ba, VDAC_DATA) << 2;
1138 1.1 chopps } while (x-- > 0);
1139 1.1 chopps
1140 1.5 chopps if (!(error = copyout(red + cmap->index, cmap->red, cmap->count))
1141 1.5 chopps && !(error = copyout(green + cmap->index, cmap->green, cmap->count))
1142 1.5 chopps && !(error = copyout(blue + cmap->index, cmap->blue, cmap->count)))
1143 1.5 chopps return (0);
1144 1.1 chopps
1145 1.5 chopps return (error);
1146 1.1 chopps }
1147 1.1 chopps
1148 1.1 chopps int
1149 1.5 chopps cl_putcmap(gfp, cmap)
1150 1.1 chopps struct grf_softc *gfp;
1151 1.1 chopps struct grf_colormap *cmap;
1152 1.1 chopps {
1153 1.1 chopps volatile unsigned char *ba;
1154 1.5 chopps u_char red[256], green[256], blue[256], *rp, *gp, *bp;
1155 1.5 chopps short x;
1156 1.5 chopps int error;
1157 1.1 chopps
1158 1.1 chopps if (cmap->count == 0 || cmap->index >= 256)
1159 1.5 chopps return (0);
1160 1.1 chopps
1161 1.1 chopps if (cmap->index + cmap->count > 256)
1162 1.1 chopps cmap->count = 256 - cmap->index;
1163 1.1 chopps
1164 1.1 chopps /* first copy the colors into kernelspace */
1165 1.5 chopps if (!(error = copyin(cmap->red, red + cmap->index, cmap->count))
1166 1.5 chopps && !(error = copyin(cmap->green, green + cmap->index, cmap->count))
1167 1.5 chopps && !(error = copyin(cmap->blue, blue + cmap->index, cmap->count))) {
1168 1.1 chopps ba = gfp->g_regkva;
1169 1.5 chopps vgaw(ba, VDAC_ADDRESS_W, cmap->index);
1170 1.1 chopps x = cmap->count - 1;
1171 1.1 chopps
1172 1.5 chopps switch (cltype) {
1173 1.11 veego case SPECTRUM:
1174 1.11 veego case PICCOLO:
1175 1.1 chopps rp = blue + cmap->index;
1176 1.1 chopps gp = green + cmap->index;
1177 1.1 chopps bp = red + cmap->index;
1178 1.1 chopps break;
1179 1.11 veego case PICASSO:
1180 1.1 chopps rp = red + cmap->index;
1181 1.1 chopps gp = green + cmap->index;
1182 1.1 chopps bp = blue + cmap->index;
1183 1.1 chopps break;
1184 1.11 veego default:
1185 1.9 veego rp = gp = bp = 0;
1186 1.9 veego break;
1187 1.5 chopps }
1188 1.1 chopps
1189 1.1 chopps do {
1190 1.5 chopps vgaw(ba, VDAC_DATA, *rp++ >> 2);
1191 1.5 chopps vgaw(ba, VDAC_DATA, *gp++ >> 2);
1192 1.5 chopps vgaw(ba, VDAC_DATA, *bp++ >> 2);
1193 1.1 chopps } while (x-- > 0);
1194 1.5 chopps return (0);
1195 1.5 chopps } else
1196 1.5 chopps return (error);
1197 1.1 chopps }
1198 1.1 chopps
1199 1.1 chopps
1200 1.1 chopps int
1201 1.5 chopps cl_toggle(gp, wopp)
1202 1.1 chopps struct grf_softc *gp;
1203 1.5 chopps unsigned short wopp; /* don't need that one yet, ill */
1204 1.1 chopps {
1205 1.14 thorpej volatile caddr_t ba;
1206 1.1 chopps
1207 1.1 chopps ba = gp->g_regkva;
1208 1.1 chopps
1209 1.1 chopps if (pass_toggle) {
1210 1.1 chopps RegOffpass(ba);
1211 1.1 chopps } else {
1212 1.1 chopps RegOnpass(ba);
1213 1.1 chopps }
1214 1.5 chopps return (0);
1215 1.1 chopps }
1216 1.1 chopps
1217 1.1 chopps static void
1218 1.19 veego cl_CompFQ(fq, num, denom, clkdoub)
1219 1.5 chopps u_int fq;
1220 1.5 chopps u_char *num;
1221 1.5 chopps u_char *denom;
1222 1.19 veego u_char *clkdoub;
1223 1.1 chopps {
1224 1.1 chopps #define OSC 14318180
1225 1.1 chopps /* OK, here's what we're doing here:
1226 1.5 chopps *
1227 1.1 chopps * OSC * NUMERATOR
1228 1.1 chopps * VCLK = ------------------- Hz
1229 1.1 chopps * DENOMINATOR * (1+P)
1230 1.1 chopps *
1231 1.1 chopps * so we're given VCLK and we should give out some useful
1232 1.1 chopps * values....
1233 1.1 chopps *
1234 1.5 chopps * NUMERATOR is 7 bits wide
1235 1.1 chopps * DENOMINATOR is 5 bits wide with bit P in the same char as bit 0.
1236 1.1 chopps *
1237 1.1 chopps * We run through all the possible combinations and
1238 1.1 chopps * return the values which deviate the least from the chosen frequency.
1239 1.5 chopps *
1240 1.1 chopps */
1241 1.1 chopps #define OSC 14318180
1242 1.1 chopps #define count(n,d,p) ((OSC * n)/(d * (1+p)))
1243 1.1 chopps
1244 1.9 veego unsigned char n, d, p, minn, mind, minp = 0;
1245 1.1 chopps unsigned long err, minerr;
1246 1.1 chopps
1247 1.1 chopps /*
1248 1.5 chopps numer = 0x00 - 0x7f
1249 1.1 chopps denom = 0x00 - 0x1f (1) 0x20 - 0x3e (even)
1250 1.1 chopps */
1251 1.1 chopps
1252 1.5 chopps /* find lowest error in 6144 iterations. */
1253 1.1 chopps minerr = fq;
1254 1.1 chopps minn = 0;
1255 1.1 chopps mind = 0;
1256 1.1 chopps p = 0;
1257 1.1 chopps
1258 1.19 veego if ((cl_64bit == 1) && (fq >= 86000000))
1259 1.19 veego {
1260 1.19 veego for (d = 1; d < 0x20; d++) {
1261 1.19 veego for (n = 1; n < 0x80; n++) {
1262 1.19 veego err = abs(count(n, d, 0) - fq);
1263 1.19 veego if (err < minerr) {
1264 1.19 veego minerr = err;
1265 1.19 veego minn = n;
1266 1.19 veego mind = d;
1267 1.19 veego minp = 1;
1268 1.19 veego }
1269 1.1 chopps }
1270 1.1 chopps }
1271 1.19 veego *clkdoub = 1;
1272 1.19 veego }
1273 1.19 veego else {
1274 1.19 veego for (d = 1; d < 0x20; d++) {
1275 1.19 veego for (n = 1; n < 0x80; n++) {
1276 1.19 veego err = abs(count(n, d, p) - fq);
1277 1.19 veego if (err < minerr) {
1278 1.19 veego minerr = err;
1279 1.19 veego minn = n;
1280 1.19 veego mind = d;
1281 1.19 veego minp = p;
1282 1.19 veego }
1283 1.19 veego }
1284 1.19 veego if (d == 0x1f && p == 0) {
1285 1.19 veego p = 1;
1286 1.19 veego d = 0x0f;
1287 1.19 veego }
1288 1.1 chopps }
1289 1.19 veego *clkdoub = 0;
1290 1.1 chopps }
1291 1.1 chopps
1292 1.1 chopps *num = minn;
1293 1.1 chopps *denom = (mind << 1) | minp;
1294 1.1 chopps if (minerr > 500000)
1295 1.16 christos printf("Warning: CompFQ minimum error = %ld\n", minerr);
1296 1.1 chopps return;
1297 1.1 chopps }
1298 1.1 chopps
1299 1.1 chopps int
1300 1.5 chopps cl_mondefok(gv)
1301 1.5 chopps struct grfvideo_mode *gv;
1302 1.1 chopps {
1303 1.5 chopps unsigned long maxpix;
1304 1.5 chopps
1305 1.5 chopps if (gv->mode_num < 1 || gv->mode_num > monitor_def_max)
1306 1.5 chopps if (gv->mode_num != 255 || gv->depth != 4)
1307 1.5 chopps return(0);
1308 1.1 chopps
1309 1.5 chopps switch (gv->depth) {
1310 1.11 veego case 4:
1311 1.5 chopps if (gv->mode_num != 255)
1312 1.5 chopps return(0);
1313 1.11 veego case 1:
1314 1.11 veego case 8:
1315 1.19 veego maxpix = cl_maxpixelclock;
1316 1.19 veego if (cl_64bit == 1)
1317 1.19 veego {
1318 1.19 veego if (cltype == PICASSO) /* Picasso IV */
1319 1.19 veego maxpix = 135000000;
1320 1.19 veego else /* Piccolo SD64 */
1321 1.19 veego maxpix = 110000000;
1322 1.19 veego }
1323 1.5 chopps break;
1324 1.11 veego case 15:
1325 1.11 veego case 16:
1326 1.19 veego if (cl_64bit == 1)
1327 1.19 veego maxpix = 85000000;
1328 1.19 veego else
1329 1.19 veego maxpix = cl_maxpixelclock - (cl_maxpixelclock / 3);
1330 1.5 chopps break;
1331 1.11 veego case 24:
1332 1.19 veego if ((cltype == PICASSO) && (cl_64bit == 1))
1333 1.19 veego maxpix = 85000000;
1334 1.19 veego else
1335 1.19 veego maxpix = cl_maxpixelclock / 3;
1336 1.19 veego break;
1337 1.19 veego case 32:
1338 1.19 veego if ((cltype == PICCOLO) && (cl_64bit == 1))
1339 1.19 veego maxpix = 50000000;
1340 1.19 veego else
1341 1.19 veego maxpix = 0;
1342 1.5 chopps break;
1343 1.1 chopps default:
1344 1.20 veego printf("grfcl: Illegal depth in mode %d\n",
1345 1.20 veego (int) gv->mode_num);
1346 1.5 chopps return (0);
1347 1.1 chopps }
1348 1.20 veego
1349 1.20 veego if (gv->pixel_clock > maxpix) {
1350 1.20 veego printf("grfcl: Pixelclock too high in mode %d\n",
1351 1.20 veego (int) gv->mode_num);
1352 1.5 chopps return (0);
1353 1.20 veego }
1354 1.20 veego
1355 1.20 veego if (gv->disp_flags & GRF_FLAGS_SYNC_ON_GREEN) {
1356 1.20 veego printf("grfcl: sync-on-green is not supported\n");
1357 1.20 veego return (0);
1358 1.20 veego }
1359 1.20 veego
1360 1.5 chopps return (1);
1361 1.1 chopps }
1362 1.1 chopps
1363 1.1 chopps int
1364 1.1 chopps cl_load_mon(gp, md)
1365 1.1 chopps struct grf_softc *gp;
1366 1.1 chopps struct grfcltext_mode *md;
1367 1.1 chopps {
1368 1.1 chopps struct grfvideo_mode *gv;
1369 1.1 chopps struct grfinfo *gi;
1370 1.14 thorpej volatile caddr_t ba, fb;
1371 1.19 veego unsigned char num0, denom0, clkdoub;
1372 1.5 chopps unsigned short HT, HDE, HBS, HBE, HSS, HSE, VDE, VBS, VBE, VSS,
1373 1.5 chopps VSE, VT;
1374 1.20 veego int clkmul, offsmul, clkmode;
1375 1.20 veego int vmul;
1376 1.11 veego int sr15;
1377 1.20 veego unsigned char hvsync_pulse;
1378 1.20 veego char TEXT;
1379 1.1 chopps
1380 1.1 chopps /* identity */
1381 1.1 chopps gv = &md->gv;
1382 1.1 chopps TEXT = (gv->depth == 4);
1383 1.1 chopps
1384 1.1 chopps if (!cl_mondefok(gv)) {
1385 1.20 veego printf("grfcl: Monitor definition not ok\n");
1386 1.5 chopps return (0);
1387 1.1 chopps }
1388 1.20 veego
1389 1.1 chopps ba = gp->g_regkva;
1390 1.1 chopps fb = gp->g_fbkva;
1391 1.1 chopps
1392 1.5 chopps /* provide all needed information in grf device-independant locations */
1393 1.5 chopps gp->g_data = (caddr_t) gv;
1394 1.1 chopps gi = &gp->g_display;
1395 1.19 veego gi->gd_regaddr = (caddr_t) kvtop(ba);
1396 1.5 chopps gi->gd_regsize = 64 * 1024;
1397 1.5 chopps gi->gd_fbaddr = (caddr_t) kvtop(fb);
1398 1.5 chopps gi->gd_fbsize = cl_fbsize;
1399 1.5 chopps gi->gd_colors = 1 << gv->depth;
1400 1.5 chopps gi->gd_planes = gv->depth;
1401 1.5 chopps gi->gd_fbwidth = gv->disp_width;
1402 1.5 chopps gi->gd_fbheight = gv->disp_height;
1403 1.5 chopps gi->gd_fbx = 0;
1404 1.5 chopps gi->gd_fby = 0;
1405 1.1 chopps if (TEXT) {
1406 1.5 chopps gi->gd_dwidth = md->fx * md->cols;
1407 1.5 chopps gi->gd_dheight = md->fy * md->rows;
1408 1.1 chopps } else {
1409 1.5 chopps gi->gd_dwidth = gv->disp_width;
1410 1.5 chopps gi->gd_dheight = gv->disp_height;
1411 1.1 chopps }
1412 1.5 chopps gi->gd_dx = 0;
1413 1.5 chopps gi->gd_dy = 0;
1414 1.1 chopps
1415 1.1 chopps /* get display mode parameters */
1416 1.1 chopps
1417 1.1 chopps HBS = gv->hblank_start;
1418 1.1 chopps HSS = gv->hsync_start;
1419 1.1 chopps HSE = gv->hsync_stop;
1420 1.20 veego HBE = gv->htotal - 1;
1421 1.5 chopps HT = gv->htotal;
1422 1.1 chopps VBS = gv->vblank_start;
1423 1.1 chopps VSS = gv->vsync_start;
1424 1.1 chopps VSE = gv->vsync_stop;
1425 1.20 veego VBE = gv->vtotal - 1;
1426 1.5 chopps VT = gv->vtotal;
1427 1.1 chopps
1428 1.5 chopps if (TEXT)
1429 1.5 chopps HDE = ((gv->disp_width + md->fx - 1) / md->fx) - 1;
1430 1.1 chopps else
1431 1.5 chopps HDE = (gv->disp_width + 3) / 8 - 1; /* HBS; */
1432 1.5 chopps VDE = gv->disp_height - 1;
1433 1.1 chopps
1434 1.1 chopps /* adjustments */
1435 1.19 veego switch (gv->depth) {
1436 1.19 veego case 8:
1437 1.19 veego clkmul = 1;
1438 1.19 veego offsmul = 1;
1439 1.19 veego clkmode = 0x0;
1440 1.19 veego break;
1441 1.19 veego case 15:
1442 1.19 veego case 16:
1443 1.19 veego clkmul = 1;
1444 1.19 veego offsmul = 2;
1445 1.19 veego clkmode = 0x6;
1446 1.19 veego break;
1447 1.19 veego case 24:
1448 1.19 veego if ((cltype == PICASSO) && (cl_64bit == 1)) /* Picasso IV */
1449 1.19 veego clkmul = 1;
1450 1.19 veego else
1451 1.19 veego clkmul = 3;
1452 1.19 veego offsmul = 3;
1453 1.19 veego clkmode = 0x4;
1454 1.19 veego break;
1455 1.19 veego case 32:
1456 1.19 veego clkmul = 1;
1457 1.19 veego offsmul = 2;
1458 1.19 veego clkmode = 0x8;
1459 1.19 veego break;
1460 1.19 veego default:
1461 1.19 veego clkmul = 1;
1462 1.19 veego offsmul = 1;
1463 1.19 veego clkmode = 0x0;
1464 1.19 veego break;
1465 1.19 veego }
1466 1.1 chopps
1467 1.20 veego if ((VT > 1023) && (!(gv->disp_flags & GRF_FLAGS_LACE))) {
1468 1.19 veego WCrt(ba, CRT_ID_MODE_CONTROL, 0xe7);
1469 1.20 veego } else
1470 1.19 veego WCrt(ba, CRT_ID_MODE_CONTROL, 0xe3);
1471 1.19 veego
1472 1.20 veego vmul = 2;
1473 1.20 veego if ((VT > 1023) || (gv->disp_flags & GRF_FLAGS_LACE))
1474 1.20 veego vmul = 1;
1475 1.20 veego if (gv->disp_flags & GRF_FLAGS_DBLSCAN)
1476 1.20 veego vmul = 4;
1477 1.20 veego
1478 1.20 veego VDE = VDE * vmul / 2;
1479 1.20 veego VBS = VBS * vmul / 2;
1480 1.20 veego VSS = VSS * vmul / 2;
1481 1.20 veego VSE = VSE * vmul / 2;
1482 1.20 veego VBE = VBE * vmul / 2;
1483 1.20 veego VT = VT * vmul / 2;
1484 1.20 veego
1485 1.1 chopps WSeq(ba, SEQ_ID_MEMORY_MODE, (TEXT || (gv->depth == 1)) ? 0x06 : 0x0e);
1486 1.19 veego if (cl_64bit == 1) {
1487 1.11 veego if (TEXT || (gv->depth == 1))
1488 1.19 veego sr15 = 0xd0;
1489 1.11 veego else
1490 1.11 veego sr15 = ((cl_fbsize / 0x100000 == 2) ? 0x38 : 0xb8);
1491 1.11 veego WSeq(ba, SEQ_ID_CONF_RBACK, 0x00);
1492 1.11 veego } else {
1493 1.17 veego sr15 = (TEXT || (gv->depth == 1)) ? 0xd0 : 0xb0;
1494 1.19 veego sr15 &= ((cl_fbsize / 0x100000) == 2) ? 0xff : 0x7f;
1495 1.11 veego }
1496 1.11 veego WSeq(ba, SEQ_ID_DRAM_CNTL, sr15);
1497 1.5 chopps WGfx(ba, GCT_ID_READ_MAP_SELECT, 0x00);
1498 1.1 chopps WSeq(ba, SEQ_ID_MAP_MASK, (gv->depth == 1) ? 0x01 : 0xff);
1499 1.5 chopps WSeq(ba, SEQ_ID_CHAR_MAP_SELECT, 0x00);
1500 1.1 chopps
1501 1.1 chopps /* Set clock */
1502 1.1 chopps
1503 1.19 veego cl_CompFQ(gv->pixel_clock * clkmul, &num0, &denom0, &clkdoub);
1504 1.19 veego
1505 1.20 veego /* Horizontal/Vertical Sync Pulse */
1506 1.20 veego hvsync_pulse = vgar(ba, GREG_MISC_OUTPUT_R);
1507 1.20 veego if (gv->disp_flags & GRF_FLAGS_PHSYNC)
1508 1.20 veego hvsync_pulse &= ~0x40;
1509 1.20 veego else
1510 1.20 veego hvsync_pulse |= 0x40;
1511 1.20 veego if (gv->disp_flags & GRF_FLAGS_PVSYNC)
1512 1.20 veego hvsync_pulse &= ~0x80;
1513 1.20 veego else
1514 1.20 veego hvsync_pulse |= 0x80;
1515 1.20 veego vgaw(ba, GREG_MISC_OUTPUT_W, hvsync_pulse);
1516 1.20 veego
1517 1.19 veego if (clkdoub) {
1518 1.19 veego HDE /= 2;
1519 1.19 veego HBS /= 2;
1520 1.19 veego HSS /= 2;
1521 1.19 veego HSE /= 2;
1522 1.19 veego HBE /= 2;
1523 1.19 veego HT /= 2;
1524 1.19 veego clkmode = 0x6;
1525 1.19 veego }
1526 1.19 veego
1527 1.11 veego WSeq(ba, SEQ_ID_VCLK_3_NUM, num0);
1528 1.11 veego WSeq(ba, SEQ_ID_VCLK_3_DENOM, denom0);
1529 1.1 chopps
1530 1.1 chopps /* load display parameters into board */
1531 1.1 chopps
1532 1.1 chopps WCrt(ba, CRT_ID_HOR_TOTAL, HT);
1533 1.5 chopps WCrt(ba, CRT_ID_HOR_DISP_ENA_END, ((HDE >= HBS) ? HBS - 1 : HDE));
1534 1.1 chopps WCrt(ba, CRT_ID_START_HOR_BLANK, HBS);
1535 1.5 chopps WCrt(ba, CRT_ID_END_HOR_BLANK, (HBE & 0x1f) | 0x80); /* | 0x80? */
1536 1.1 chopps WCrt(ba, CRT_ID_START_HOR_RETR, HSS);
1537 1.1 chopps WCrt(ba, CRT_ID_END_HOR_RETR,
1538 1.5 chopps (HSE & 0x1f) |
1539 1.5 chopps ((HBE & 0x20) ? 0x80 : 0x00));
1540 1.1 chopps WCrt(ba, CRT_ID_VER_TOTAL, VT);
1541 1.1 chopps WCrt(ba, CRT_ID_OVERFLOW,
1542 1.1 chopps 0x10 |
1543 1.5 chopps ((VT & 0x100) ? 0x01 : 0x00) |
1544 1.1 chopps ((VDE & 0x100) ? 0x02 : 0x00) |
1545 1.1 chopps ((VSS & 0x100) ? 0x04 : 0x00) |
1546 1.1 chopps ((VBS & 0x100) ? 0x08 : 0x00) |
1547 1.5 chopps ((VT & 0x200) ? 0x20 : 0x00) |
1548 1.1 chopps ((VDE & 0x200) ? 0x40 : 0x00) |
1549 1.5 chopps ((VSS & 0x200) ? 0x80 : 0x00));
1550 1.1 chopps
1551 1.1 chopps WCrt(ba, CRT_ID_CHAR_HEIGHT,
1552 1.5 chopps 0x40 | /* TEXT ? 0x00 ??? */
1553 1.20 veego ((gv->disp_flags & GRF_FLAGS_DBLSCAN) ? 0x80 : 0x00) |
1554 1.1 chopps ((VBS & 0x200) ? 0x20 : 0x00) |
1555 1.5 chopps (TEXT ? ((md->fy - 1) & 0x1f) : 0x00));
1556 1.1 chopps
1557 1.1 chopps /* text cursor */
1558 1.1 chopps
1559 1.1 chopps if (TEXT) {
1560 1.5 chopps #if CL_ULCURSOR
1561 1.1 chopps WCrt(ba, CRT_ID_CURSOR_START, (md->fy & 0x1f) - 2);
1562 1.1 chopps WCrt(ba, CRT_ID_CURSOR_END, (md->fy & 0x1f) - 1);
1563 1.1 chopps #else
1564 1.1 chopps WCrt(ba, CRT_ID_CURSOR_START, 0x00);
1565 1.1 chopps WCrt(ba, CRT_ID_CURSOR_END, md->fy & 0x1f);
1566 1.1 chopps #endif
1567 1.9 veego WCrt(ba, CRT_ID_UNDERLINE_LOC, (md->fy - 1) & 0x1f);
1568 1.1 chopps
1569 1.1 chopps WCrt(ba, CRT_ID_CURSOR_LOC_HIGH, 0x00);
1570 1.5 chopps WCrt(ba, CRT_ID_CURSOR_LOC_LOW, 0x00);
1571 1.1 chopps }
1572 1.1 chopps WCrt(ba, CRT_ID_START_ADDR_HIGH, 0x00);
1573 1.1 chopps WCrt(ba, CRT_ID_START_ADDR_LOW, 0x00);
1574 1.1 chopps
1575 1.1 chopps WCrt(ba, CRT_ID_START_VER_RETR, VSS);
1576 1.14 thorpej WCrt(ba, CRT_ID_END_VER_RETR, (VSE & 0x0f) | 0x20);
1577 1.1 chopps WCrt(ba, CRT_ID_VER_DISP_ENA_END, VDE);
1578 1.1 chopps WCrt(ba, CRT_ID_START_VER_BLANK, VBS);
1579 1.1 chopps WCrt(ba, CRT_ID_END_VER_BLANK, VBE);
1580 1.1 chopps
1581 1.1 chopps WCrt(ba, CRT_ID_LINE_COMPARE, 0xff);
1582 1.5 chopps WCrt(ba, CRT_ID_LACE_END, HT / 2); /* MW/16 */
1583 1.1 chopps WCrt(ba, CRT_ID_LACE_CNTL,
1584 1.20 veego ((gv->disp_flags & GRF_FLAGS_LACE) ? 0x01 : 0x00) |
1585 1.1 chopps ((HBE & 0x40) ? 0x10 : 0x00) |
1586 1.1 chopps ((HBE & 0x80) ? 0x20 : 0x00) |
1587 1.1 chopps ((VBE & 0x100) ? 0x40 : 0x00) |
1588 1.5 chopps ((VBE & 0x200) ? 0x80 : 0x00));
1589 1.1 chopps
1590 1.5 chopps WGfx(ba, GCT_ID_GRAPHICS_MODE,
1591 1.1 chopps ((TEXT || (gv->depth == 1)) ? 0x00 : 0x40));
1592 1.1 chopps WGfx(ba, GCT_ID_MISC, (TEXT ? 0x04 : 0x01));
1593 1.1 chopps
1594 1.5 chopps WSeq(ba, SEQ_ID_EXT_SEQ_MODE,
1595 1.5 chopps ((TEXT || (gv->depth == 1)) ? 0x00 : 0x01) |
1596 1.19 veego ((cltype == PICASSO) ? 0x20 : 0x80) | clkmode);
1597 1.6 is
1598 1.6 is /* write 0x00 to VDAC_MASK before accessing HDR this helps
1599 1.6 is sometimes, out of "secret" application note (crest) */
1600 1.6 is vgaw(ba, VDAC_MASK, 0);
1601 1.6 is /* reset HDR "magic" access counter (crest) */
1602 1.6 is vgar(ba, VDAC_ADDRESS);
1603 1.6 is
1604 1.1 chopps delay(200000);
1605 1.1 chopps vgar(ba, VDAC_MASK);
1606 1.1 chopps delay(200000);
1607 1.1 chopps vgar(ba, VDAC_MASK);
1608 1.1 chopps delay(200000);
1609 1.1 chopps vgar(ba, VDAC_MASK);
1610 1.1 chopps delay(200000);
1611 1.1 chopps vgar(ba, VDAC_MASK);
1612 1.1 chopps delay(200000);
1613 1.1 chopps switch (gv->depth) {
1614 1.11 veego case 1:
1615 1.11 veego case 4: /* text */
1616 1.1 chopps vgaw(ba, VDAC_MASK, 0);
1617 1.1 chopps HDE = gv->disp_width / 16;
1618 1.1 chopps break;
1619 1.11 veego case 8:
1620 1.19 veego if (clkdoub)
1621 1.19 veego vgaw(ba, VDAC_MASK, 0x4a); /* Clockdouble Magic */
1622 1.19 veego else
1623 1.19 veego vgaw(ba, VDAC_MASK, 0);
1624 1.1 chopps HDE = gv->disp_width / 8;
1625 1.1 chopps break;
1626 1.11 veego case 15:
1627 1.1 chopps vgaw(ba, VDAC_MASK, 0xd0);
1628 1.1 chopps HDE = gv->disp_width / 4;
1629 1.1 chopps break;
1630 1.11 veego case 16:
1631 1.5 chopps vgaw(ba, VDAC_MASK, 0xc1);
1632 1.1 chopps HDE = gv->disp_width / 4;
1633 1.1 chopps break;
1634 1.11 veego case 24:
1635 1.5 chopps vgaw(ba, VDAC_MASK, 0xc5);
1636 1.1 chopps HDE = (gv->disp_width / 8) * 3;
1637 1.1 chopps break;
1638 1.19 veego case 32:
1639 1.19 veego vgaw(ba, VDAC_MASK, 0xc5);
1640 1.19 veego HDE = (gv->disp_width / 4);
1641 1.19 veego break;
1642 1.1 chopps }
1643 1.6 is
1644 1.6 is /* reset HDR "magic" access counter (crest) */
1645 1.6 is vgar(ba, VDAC_ADDRESS);
1646 1.6 is /* then enable all bit in VDAC_MASK afterwards (crest) */
1647 1.6 is vgaw(ba, VDAC_MASK, 0xff);
1648 1.1 chopps
1649 1.5 chopps WCrt(ba, CRT_ID_OFFSET, HDE);
1650 1.19 veego if (cl_64bit == 1) {
1651 1.11 veego WCrt(ba, CRT_ID_SYNC_ADJ_GENLOCK, 0x00);
1652 1.11 veego WCrt(ba, CRT_ID_OVERLAY_EXT_CTRL_REG, 0x40);
1653 1.11 veego }
1654 1.5 chopps WCrt(ba, CRT_ID_EXT_DISP_CNTL,
1655 1.1 chopps ((TEXT && gv->pixel_clock > 29000000) ? 0x40 : 0x00) |
1656 1.5 chopps 0x22 |
1657 1.19 veego ((HDE > 0xff) ? 0x10 : 0x00));
1658 1.1 chopps
1659 1.1 chopps WAttr(ba, ACT_ID_ATTR_MODE_CNTL, (TEXT ? 0x0a : 0x01));
1660 1.5 chopps WAttr(ba, 0x20 | ACT_ID_COLOR_PLANE_ENA,
1661 1.1 chopps (gv->depth == 1) ? 0x01 : 0x0f);
1662 1.1 chopps
1663 1.1 chopps /* text initialization */
1664 1.1 chopps
1665 1.1 chopps if (TEXT) {
1666 1.1 chopps cl_inittextmode(gp);
1667 1.1 chopps }
1668 1.1 chopps WSeq(ba, SEQ_ID_CURSOR_ATTR, 0x14);
1669 1.1 chopps WSeq(ba, SEQ_ID_CLOCKING_MODE, 0x01);
1670 1.1 chopps
1671 1.1 chopps /* Pass-through */
1672 1.1 chopps
1673 1.1 chopps RegOffpass(ba);
1674 1.1 chopps
1675 1.5 chopps return (1);
1676 1.1 chopps }
1677 1.1 chopps
1678 1.1 chopps void
1679 1.1 chopps cl_inittextmode(gp)
1680 1.1 chopps struct grf_softc *gp;
1681 1.1 chopps {
1682 1.5 chopps struct grfcltext_mode *tm = (struct grfcltext_mode *) gp->g_data;
1683 1.1 chopps volatile unsigned char *ba = gp->g_regkva;
1684 1.1 chopps unsigned char *fb = gp->g_fbkva;
1685 1.1 chopps unsigned char *c, *f, y;
1686 1.1 chopps unsigned short z;
1687 1.1 chopps
1688 1.1 chopps
1689 1.5 chopps /* load text font into beginning of display memory. Each character
1690 1.5 chopps * cell is 32 bytes long (enough for 4 planes) */
1691 1.1 chopps
1692 1.1 chopps SetTextPlane(ba, 0x02);
1693 1.5 chopps cl_memset(fb, 0, 256 * 32);
1694 1.5 chopps c = (unsigned char *) (fb) + (32 * tm->fdstart);
1695 1.1 chopps f = tm->fdata;
1696 1.5 chopps for (z = tm->fdstart; z <= tm->fdend; z++, c += (32 - tm->fy))
1697 1.5 chopps for (y = 0; y < tm->fy; y++)
1698 1.1 chopps *c++ = *f++;
1699 1.1 chopps
1700 1.1 chopps /* clear out text/attr planes (three screens worth) */
1701 1.1 chopps
1702 1.1 chopps SetTextPlane(ba, 0x01);
1703 1.5 chopps cl_memset(fb, 0x07, tm->cols * tm->rows * 3);
1704 1.1 chopps SetTextPlane(ba, 0x00);
1705 1.5 chopps cl_memset(fb, 0x20, tm->cols * tm->rows * 3);
1706 1.1 chopps
1707 1.1 chopps /* print out a little init msg */
1708 1.1 chopps
1709 1.5 chopps c = (unsigned char *) (fb) + (tm->cols - 16);
1710 1.1 chopps strcpy(c, "CIRRUS");
1711 1.1 chopps c[6] = 0x20;
1712 1.1 chopps
1713 1.1 chopps /* set colors (B&W) */
1714 1.1 chopps
1715 1.1 chopps vgaw(ba, VDAC_ADDRESS_W, 0);
1716 1.5 chopps for (z = 0; z < 256; z++) {
1717 1.1 chopps unsigned char r, g, b;
1718 1.1 chopps
1719 1.1 chopps y = (z & 1) ? ((z > 7) ? 2 : 1) : 0;
1720 1.1 chopps
1721 1.1 chopps if (cltype == PICASSO) {
1722 1.1 chopps r = clconscolors[y][0];
1723 1.1 chopps g = clconscolors[y][1];
1724 1.1 chopps b = clconscolors[y][2];
1725 1.1 chopps } else {
1726 1.1 chopps b = clconscolors[y][0];
1727 1.1 chopps g = clconscolors[y][1];
1728 1.1 chopps r = clconscolors[y][2];
1729 1.1 chopps }
1730 1.1 chopps vgaw(ba, VDAC_DATA, r >> 2);
1731 1.1 chopps vgaw(ba, VDAC_DATA, g >> 2);
1732 1.1 chopps vgaw(ba, VDAC_DATA, b >> 2);
1733 1.1 chopps }
1734 1.1 chopps }
1735 1.1 chopps
1736 1.1 chopps void
1737 1.5 chopps cl_memset(d, c, l)
1738 1.1 chopps unsigned char *d;
1739 1.1 chopps unsigned char c;
1740 1.5 chopps int l;
1741 1.1 chopps {
1742 1.5 chopps for (; l > 0; l--)
1743 1.1 chopps *d++ = c;
1744 1.1 chopps }
1745 1.14 thorpej
1746 1.19 veego /*
1747 1.19 veego * Special wakeup/passthrough registers on graphics boards
1748 1.14 thorpej *
1749 1.14 thorpej * The methods have diverged a bit for each board, so
1750 1.14 thorpej * WPass(P) has been converted into a set of specific
1751 1.14 thorpej * inline functions.
1752 1.14 thorpej */
1753 1.14 thorpej static void
1754 1.14 thorpej RegWakeup(ba)
1755 1.14 thorpej volatile caddr_t ba;
1756 1.14 thorpej {
1757 1.14 thorpej
1758 1.14 thorpej switch (cltype) {
1759 1.14 thorpej case SPECTRUM:
1760 1.14 thorpej vgaw(ba, PASS_ADDRESS_W, 0x1f);
1761 1.14 thorpej break;
1762 1.14 thorpej case PICASSO:
1763 1.19 veego /* Picasso needs no wakeup */
1764 1.14 thorpej break;
1765 1.14 thorpej case PICCOLO:
1766 1.19 veego if (cl_64bit == 1)
1767 1.14 thorpej vgaw(ba, PASS_ADDRESS_W, 0x1f);
1768 1.14 thorpej else
1769 1.14 thorpej vgaw(ba, PASS_ADDRESS_W, vgar(ba, PASS_ADDRESS) | 0x10);
1770 1.14 thorpej break;
1771 1.14 thorpej }
1772 1.14 thorpej delay(200000);
1773 1.14 thorpej }
1774 1.14 thorpej
1775 1.14 thorpej static void
1776 1.14 thorpej RegOnpass(ba)
1777 1.14 thorpej volatile caddr_t ba;
1778 1.14 thorpej {
1779 1.14 thorpej
1780 1.14 thorpej switch (cltype) {
1781 1.14 thorpej case SPECTRUM:
1782 1.14 thorpej vgaw(ba, PASS_ADDRESS_W, 0x4f);
1783 1.14 thorpej break;
1784 1.14 thorpej case PICASSO:
1785 1.19 veego if (cl_64bit == 0)
1786 1.19 veego vgaw(ba, PASS_ADDRESS_WP, 0x01);
1787 1.14 thorpej break;
1788 1.14 thorpej case PICCOLO:
1789 1.19 veego if (cl_64bit == 1)
1790 1.14 thorpej vgaw(ba, PASS_ADDRESS_W, 0x4f);
1791 1.14 thorpej else
1792 1.14 thorpej vgaw(ba, PASS_ADDRESS_W, vgar(ba, PASS_ADDRESS) & 0xdf);
1793 1.14 thorpej break;
1794 1.14 thorpej }
1795 1.14 thorpej pass_toggle = 1;
1796 1.14 thorpej delay(200000);
1797 1.14 thorpej }
1798 1.14 thorpej
1799 1.14 thorpej static void
1800 1.14 thorpej RegOffpass(ba)
1801 1.14 thorpej volatile caddr_t ba;
1802 1.14 thorpej {
1803 1.14 thorpej
1804 1.14 thorpej switch (cltype) {
1805 1.14 thorpej case SPECTRUM:
1806 1.14 thorpej vgaw(ba, PASS_ADDRESS_W, 0x6f);
1807 1.14 thorpej break;
1808 1.14 thorpej case PICASSO:
1809 1.19 veego if (cl_64bit == 0)
1810 1.19 veego vgaw(ba, PASS_ADDRESS_W, 0xff);
1811 1.14 thorpej break;
1812 1.14 thorpej case PICCOLO:
1813 1.19 veego if (cl_64bit == 1)
1814 1.14 thorpej vgaw(ba, PASS_ADDRESS_W, 0x6f);
1815 1.14 thorpej else
1816 1.14 thorpej vgaw(ba, PASS_ADDRESS_W, vgar(ba, PASS_ADDRESS) | 0x20);
1817 1.14 thorpej break;
1818 1.14 thorpej }
1819 1.14 thorpej pass_toggle = 0;
1820 1.14 thorpej delay(200000);
1821 1.14 thorpej }
1822 1.14 thorpej
1823 1.5 chopps #endif /* NGRFCL */
1824