igsfb_subr.c revision 1.14 1 1.14 christos /* $NetBSD: igsfb_subr.c,v 1.14 2017/04/03 17:40:07 christos Exp $ */
2 1.1 uwe
3 1.1 uwe /*
4 1.1 uwe * Copyright (c) 2002 Valeriy E. Ushakov
5 1.11 macallan * 2009 Michael Lorenz
6 1.1 uwe * All rights reserved.
7 1.1 uwe *
8 1.1 uwe * Redistribution and use in source and binary forms, with or without
9 1.1 uwe * modification, are permitted provided that the following conditions
10 1.1 uwe * are met:
11 1.1 uwe * 1. Redistributions of source code must retain the above copyright
12 1.1 uwe * notice, this list of conditions and the following disclaimer.
13 1.1 uwe * 2. Redistributions in binary form must reproduce the above copyright
14 1.1 uwe * notice, this list of conditions and the following disclaimer in the
15 1.1 uwe * documentation and/or other materials provided with the distribution.
16 1.1 uwe * 3. The name of the author may not be used to endorse or promote products
17 1.1 uwe * derived from this software without specific prior written permission
18 1.1 uwe *
19 1.1 uwe * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
20 1.1 uwe * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
21 1.1 uwe * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
22 1.1 uwe * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
23 1.1 uwe * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
24 1.1 uwe * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
25 1.1 uwe * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
26 1.1 uwe * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
27 1.1 uwe * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
28 1.1 uwe * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
29 1.1 uwe */
30 1.1 uwe
31 1.1 uwe /*
32 1.1 uwe * Integraphics Systems IGA 168x and CyberPro series.
33 1.1 uwe */
34 1.1 uwe #include <sys/cdefs.h>
35 1.14 christos __KERNEL_RCSID(0, "$NetBSD: igsfb_subr.c,v 1.14 2017/04/03 17:40:07 christos Exp $");
36 1.1 uwe
37 1.1 uwe #include <sys/param.h>
38 1.1 uwe #include <sys/systm.h>
39 1.1 uwe #include <sys/kernel.h>
40 1.1 uwe #include <sys/device.h>
41 1.1 uwe
42 1.9 ad #include <sys/bus.h>
43 1.1 uwe
44 1.2 uwe #include <dev/wscons/wsdisplayvar.h>
45 1.1 uwe #include <dev/wscons/wsconsio.h>
46 1.2 uwe #include <dev/rasops/rasops.h>
47 1.6 macallan #include <dev/wscons/wsdisplay_vconsvar.h>
48 1.1 uwe
49 1.1 uwe #include <dev/ic/igsfbreg.h>
50 1.1 uwe #include <dev/ic/igsfbvar.h>
51 1.1 uwe
52 1.10 macallan #ifdef IGSFB_DEBUG
53 1.10 macallan #define DPRINTF printf
54 1.10 macallan #else
55 1.10 macallan #define DPRINTF while (0) printf
56 1.10 macallan #endif
57 1.1 uwe
58 1.2 uwe static void igsfb_init_seq(struct igsfb_devconfig *);
59 1.2 uwe static void igsfb_init_crtc(struct igsfb_devconfig *);
60 1.2 uwe static void igsfb_init_grfx(struct igsfb_devconfig *);
61 1.2 uwe static void igsfb_init_attr(struct igsfb_devconfig *);
62 1.2 uwe static void igsfb_init_ext(struct igsfb_devconfig *);
63 1.2 uwe static void igsfb_init_dac(struct igsfb_devconfig *);
64 1.1 uwe
65 1.2 uwe static void igsfb_freq_latch(struct igsfb_devconfig *);
66 1.2 uwe static void igsfb_video_on(struct igsfb_devconfig *);
67 1.10 macallan static void igsfb_calc_pll(int, int *, int *, int *, int, int, int, int);
68 1.1 uwe
69 1.1 uwe
70 1.1 uwe
71 1.1 uwe /*
72 1.1 uwe * Enable chip.
73 1.1 uwe */
74 1.1 uwe int
75 1.7 uwe igsfb_enable(bus_space_tag_t iot, bus_addr_t iobase, int ioflags)
76 1.1 uwe {
77 1.1 uwe bus_space_handle_t vdoh;
78 1.1 uwe bus_space_handle_t vseh;
79 1.1 uwe bus_space_handle_t regh;
80 1.1 uwe int ret;
81 1.1 uwe
82 1.2 uwe ret = bus_space_map(iot, iobase + IGS_VDO, 1, ioflags, &vdoh);
83 1.1 uwe if (ret != 0) {
84 1.1 uwe printf("unable to map VDO register\n");
85 1.1 uwe goto out0;
86 1.1 uwe }
87 1.1 uwe
88 1.2 uwe ret = bus_space_map(iot, iobase + IGS_VSE, 1, ioflags, &vseh);
89 1.1 uwe if (ret != 0) {
90 1.1 uwe printf("unable to map VSE register\n");
91 1.1 uwe goto out1;
92 1.1 uwe }
93 1.1 uwe
94 1.2 uwe ret = bus_space_map(iot, iobase + IGS_REG_BASE, IGS_REG_SIZE, ioflags,
95 1.2 uwe ®h);
96 1.1 uwe if (ret != 0) {
97 1.1 uwe printf("unable to map I/O registers\n");
98 1.1 uwe goto out2;
99 1.1 uwe }
100 1.1 uwe
101 1.1 uwe /*
102 1.1 uwe * Start decoding i/o space accesses.
103 1.1 uwe */
104 1.1 uwe bus_space_write_1(iot, vdoh, 0, IGS_VDO_ENABLE | IGS_VDO_SETUP);
105 1.1 uwe bus_space_write_1(iot, vseh, 0, IGS_VSE_ENABLE);
106 1.1 uwe bus_space_write_1(iot, vdoh, 0, IGS_VDO_ENABLE);
107 1.1 uwe
108 1.1 uwe /*
109 1.1 uwe * Start decoding memory space accesses (XXX: move out of here?
110 1.1 uwe * we program this register in igsfb_init_ext).
111 1.1 uwe * While here, enable coprocessor and select IGS_COP_BASE_B.
112 1.1 uwe */
113 1.1 uwe igs_ext_write(iot, regh, IGS_EXT_BIU_MISC_CTL,
114 1.1 uwe (IGS_EXT_BIU_LINEAREN
115 1.1 uwe | IGS_EXT_BIU_COPREN | IGS_EXT_BIU_COPASELB));
116 1.1 uwe
117 1.1 uwe bus_space_unmap(iot, regh, IGS_REG_SIZE);
118 1.1 uwe out2: bus_space_unmap(iot, vseh, 1);
119 1.1 uwe out1: bus_space_unmap(iot, vdoh, 1);
120 1.8 uwe out0: return ret;
121 1.1 uwe }
122 1.1 uwe
123 1.1 uwe
124 1.1 uwe /*
125 1.1 uwe * Init sequencer.
126 1.1 uwe * This is common for all video modes.
127 1.1 uwe */
128 1.1 uwe static void
129 1.7 uwe igsfb_init_seq(struct igsfb_devconfig *dc)
130 1.1 uwe {
131 1.2 uwe bus_space_tag_t iot = dc->dc_iot;
132 1.2 uwe bus_space_handle_t ioh = dc->dc_ioh;
133 1.1 uwe
134 1.1 uwe /* start messing with sequencer */
135 1.1 uwe igs_seq_write(iot, ioh, IGS_SEQ_RESET, 0);
136 1.1 uwe
137 1.1 uwe igs_seq_write(iot, ioh, 1, 0x01); /* 8 dot clock */
138 1.1 uwe igs_seq_write(iot, ioh, 2, 0x0f); /* enable all maps */
139 1.1 uwe igs_seq_write(iot, ioh, 3, 0x00); /* character generator */
140 1.1 uwe igs_seq_write(iot, ioh, 4, 0x0e); /* memory mode */
141 1.1 uwe
142 1.1 uwe /* this selects color mode among other things */
143 1.1 uwe bus_space_write_1(iot, ioh, IGS_MISC_OUTPUT_W, 0xef);
144 1.1 uwe
145 1.1 uwe /* normal sequencer operation */
146 1.1 uwe igs_seq_write(iot, ioh, IGS_SEQ_RESET,
147 1.1 uwe IGS_SEQ_RESET_SYNC | IGS_SEQ_RESET_ASYNC);
148 1.1 uwe }
149 1.1 uwe
150 1.7 uwe
151 1.1 uwe /*
152 1.1 uwe * Init CRTC to 640x480 8bpp at 60Hz
153 1.1 uwe */
154 1.1 uwe static void
155 1.7 uwe igsfb_init_crtc(struct igsfb_devconfig *dc)
156 1.1 uwe {
157 1.2 uwe bus_space_tag_t iot = dc->dc_iot;
158 1.2 uwe bus_space_handle_t ioh = dc->dc_ioh;
159 1.1 uwe
160 1.1 uwe igs_crtc_write(iot, ioh, 0x00, 0x5f);
161 1.1 uwe igs_crtc_write(iot, ioh, 0x01, 0x4f);
162 1.1 uwe igs_crtc_write(iot, ioh, 0x02, 0x50);
163 1.1 uwe igs_crtc_write(iot, ioh, 0x03, 0x80);
164 1.1 uwe igs_crtc_write(iot, ioh, 0x04, 0x52);
165 1.1 uwe igs_crtc_write(iot, ioh, 0x05, 0x9d);
166 1.1 uwe igs_crtc_write(iot, ioh, 0x06, 0x0b);
167 1.1 uwe igs_crtc_write(iot, ioh, 0x07, 0x3e);
168 1.1 uwe
169 1.1 uwe /* next block is almost constant, only bit 6 in reg 9 differs */
170 1.1 uwe igs_crtc_write(iot, ioh, 0x08, 0x00);
171 1.1 uwe igs_crtc_write(iot, ioh, 0x09, 0x40); /* <- either 0x40 or 0x60 */
172 1.1 uwe igs_crtc_write(iot, ioh, 0x0a, 0x00);
173 1.1 uwe igs_crtc_write(iot, ioh, 0x0b, 0x00);
174 1.1 uwe igs_crtc_write(iot, ioh, 0x0c, 0x00);
175 1.1 uwe igs_crtc_write(iot, ioh, 0x0d, 0x00);
176 1.1 uwe igs_crtc_write(iot, ioh, 0x0e, 0x00);
177 1.1 uwe igs_crtc_write(iot, ioh, 0x0f, 0x00);
178 1.1 uwe
179 1.1 uwe igs_crtc_write(iot, ioh, 0x10, 0xe9);
180 1.1 uwe igs_crtc_write(iot, ioh, 0x11, 0x8b);
181 1.1 uwe igs_crtc_write(iot, ioh, 0x12, 0xdf);
182 1.1 uwe igs_crtc_write(iot, ioh, 0x13, 0x50);
183 1.1 uwe igs_crtc_write(iot, ioh, 0x14, 0x00);
184 1.1 uwe igs_crtc_write(iot, ioh, 0x15, 0xe6);
185 1.1 uwe igs_crtc_write(iot, ioh, 0x16, 0x04);
186 1.1 uwe igs_crtc_write(iot, ioh, 0x17, 0xc3);
187 1.1 uwe
188 1.1 uwe igs_crtc_write(iot, ioh, 0x18, 0xff);
189 1.1 uwe }
190 1.1 uwe
191 1.1 uwe
192 1.1 uwe /*
193 1.1 uwe * Init graphics controller.
194 1.1 uwe * This is common for all video modes.
195 1.1 uwe */
196 1.1 uwe static void
197 1.7 uwe igsfb_init_grfx(struct igsfb_devconfig *dc)
198 1.1 uwe {
199 1.2 uwe bus_space_tag_t iot = dc->dc_iot;
200 1.2 uwe bus_space_handle_t ioh = dc->dc_ioh;
201 1.1 uwe
202 1.1 uwe igs_grfx_write(iot, ioh, 0, 0x00);
203 1.1 uwe igs_grfx_write(iot, ioh, 1, 0x00);
204 1.1 uwe igs_grfx_write(iot, ioh, 2, 0x00);
205 1.1 uwe igs_grfx_write(iot, ioh, 3, 0x00);
206 1.1 uwe igs_grfx_write(iot, ioh, 4, 0x00);
207 1.1 uwe igs_grfx_write(iot, ioh, 5, 0x60); /* SRMODE, MODE256 */
208 1.1 uwe igs_grfx_write(iot, ioh, 6, 0x05); /* 64k @ a0000, GRAPHICS */
209 1.1 uwe igs_grfx_write(iot, ioh, 7, 0x0f); /* color compare all */
210 1.1 uwe igs_grfx_write(iot, ioh, 8, 0xff); /* bitmask = all bits mutable */
211 1.1 uwe }
212 1.1 uwe
213 1.1 uwe
214 1.1 uwe /*
215 1.1 uwe * Init attribute controller.
216 1.1 uwe * This is common for all video modes.
217 1.1 uwe */
218 1.1 uwe static void
219 1.7 uwe igsfb_init_attr(struct igsfb_devconfig *dc)
220 1.1 uwe {
221 1.2 uwe bus_space_tag_t iot = dc->dc_iot;
222 1.2 uwe bus_space_handle_t ioh = dc->dc_ioh;
223 1.1 uwe int i;
224 1.1 uwe
225 1.1 uwe igs_attr_flip_flop(iot, ioh); /* reset attr flip-flop to address */
226 1.1 uwe
227 1.1 uwe for (i = 0; i < 16; ++i) /* crt palette */
228 1.1 uwe igs_attr_write(iot, ioh, i, i);
229 1.1 uwe
230 1.1 uwe igs_attr_write(iot, ioh, 0x10, 0x01); /* select graphic mode */
231 1.1 uwe igs_attr_write(iot, ioh, 0x11, 0x00); /* crt overscan color */
232 1.1 uwe igs_attr_write(iot, ioh, 0x12, 0x0f); /* color plane enable */
233 1.1 uwe igs_attr_write(iot, ioh, 0x13, 0x00);
234 1.1 uwe igs_attr_write(iot, ioh, 0x14, 0x00);
235 1.1 uwe }
236 1.1 uwe
237 1.1 uwe
238 1.1 uwe /*
239 1.1 uwe * When done with ATTR controller, call this to unblank the screen.
240 1.1 uwe */
241 1.1 uwe static void
242 1.7 uwe igsfb_video_on(struct igsfb_devconfig *dc)
243 1.1 uwe {
244 1.2 uwe bus_space_tag_t iot = dc->dc_iot;
245 1.2 uwe bus_space_handle_t ioh = dc->dc_ioh;
246 1.1 uwe
247 1.1 uwe igs_attr_flip_flop(iot, ioh);
248 1.1 uwe bus_space_write_1(iot, ioh, IGS_ATTR_IDX, 0x20);
249 1.1 uwe bus_space_write_1(iot, ioh, IGS_ATTR_IDX, 0x20);
250 1.1 uwe }
251 1.1 uwe
252 1.1 uwe
253 1.1 uwe /*
254 1.1 uwe * Latch VCLK (b0/b1) and MCLK (b2/b3) values.
255 1.1 uwe */
256 1.1 uwe static void
257 1.7 uwe igsfb_freq_latch(struct igsfb_devconfig *dc)
258 1.1 uwe {
259 1.2 uwe bus_space_tag_t iot = dc->dc_iot;
260 1.2 uwe bus_space_handle_t ioh = dc->dc_ioh;
261 1.1 uwe
262 1.1 uwe bus_space_write_1(iot, ioh, IGS_EXT_IDX, 0xb9);
263 1.1 uwe bus_space_write_1(iot, ioh, IGS_EXT_PORT, 0x80);
264 1.1 uwe bus_space_write_1(iot, ioh, IGS_EXT_PORT, 0x00);
265 1.1 uwe }
266 1.1 uwe
267 1.1 uwe
268 1.1 uwe static void
269 1.7 uwe igsfb_init_ext(struct igsfb_devconfig *dc)
270 1.1 uwe {
271 1.2 uwe bus_space_tag_t iot = dc->dc_iot;
272 1.2 uwe bus_space_handle_t ioh = dc->dc_ioh;
273 1.2 uwe int is_cyberpro = (dc->dc_id >= 0x2000);
274 1.1 uwe
275 1.1 uwe igs_ext_write(iot, ioh, 0x10, 0x10); /* IGS_EXT_START_ADDR enable */
276 1.1 uwe igs_ext_write(iot, ioh, 0x12, 0x00); /* IGS_EXT_IRQ_CTL disable */
277 1.1 uwe igs_ext_write(iot, ioh, 0x13, 0x00); /* MBZ for normal operation */
278 1.1 uwe
279 1.1 uwe igs_ext_write(iot, ioh, 0x31, 0x00); /* segment write ptr */
280 1.1 uwe igs_ext_write(iot, ioh, 0x32, 0x00); /* segment read ptr */
281 1.1 uwe
282 1.3 uwe /* IGS_EXT_BIU_MISC_CTL: linearen, copren, copaselb, segon */
283 1.3 uwe igs_ext_write(iot, ioh, 0x33, 0x1d);
284 1.1 uwe
285 1.1 uwe /* sprite location */
286 1.1 uwe igs_ext_write(iot, ioh, 0x50, 0x00);
287 1.1 uwe igs_ext_write(iot, ioh, 0x51, 0x00);
288 1.1 uwe igs_ext_write(iot, ioh, 0x52, 0x00);
289 1.1 uwe igs_ext_write(iot, ioh, 0x53, 0x00);
290 1.1 uwe igs_ext_write(iot, ioh, 0x54, 0x00);
291 1.1 uwe igs_ext_write(iot, ioh, 0x55, 0x00);
292 1.1 uwe igs_ext_write(iot, ioh, 0x56, 0x00); /* sprite control */
293 1.1 uwe
294 1.1 uwe /* IGS_EXT_GRFX_MODE */
295 1.1 uwe igs_ext_write(iot, ioh, 0x57, 0x01); /* raster fb */
296 1.1 uwe
297 1.1 uwe /* overscan R/G/B */
298 1.1 uwe igs_ext_write(iot, ioh, 0x58, 0x00);
299 1.1 uwe igs_ext_write(iot, ioh, 0x59, 0x00);
300 1.1 uwe igs_ext_write(iot, ioh, 0x5A, 0x00);
301 1.1 uwe
302 1.1 uwe /*
303 1.1 uwe * Video memory size &c. We rely on firmware to program
304 1.1 uwe * BUS_CTL(30), MEM_CTL1(71), MEM_CTL2(72) appropriately.
305 1.1 uwe */
306 1.1 uwe
307 1.1 uwe /* ext memory ctl0 */
308 1.1 uwe igs_ext_write(iot, ioh, 0x70, 0x0B); /* enable fifo, seq */
309 1.1 uwe
310 1.1 uwe /* ext hidden ctl1 */
311 1.1 uwe igs_ext_write(iot, ioh, 0x73, 0x30); /* XXX: krups: 0x20 */
312 1.1 uwe
313 1.1 uwe /* ext fifo control */
314 1.1 uwe igs_ext_write(iot, ioh, 0x74, 0x10); /* XXX: krups: 0x1b */
315 1.1 uwe igs_ext_write(iot, ioh, 0x75, 0x10); /* XXX: krups: 0x1e */
316 1.1 uwe
317 1.1 uwe igs_ext_write(iot, ioh, 0x76, 0x00); /* ext seq. */
318 1.1 uwe igs_ext_write(iot, ioh, 0x7A, 0xC8); /* ext. hidden ctl */
319 1.1 uwe
320 1.1 uwe /* ext graphics ctl: GCEXTPATH. krups 1, nettrom 1, docs 3 */
321 1.1 uwe igs_ext_write(iot, ioh, 0x90, 0x01);
322 1.1 uwe
323 1.2 uwe if (is_cyberpro) /* select normal vclk/mclk registers */
324 1.1 uwe igs_ext_write(iot, ioh, 0xBF, 0x00);
325 1.1 uwe
326 1.1 uwe igs_ext_write(iot, ioh, 0xB0, 0xD2); /* VCLK = 25.175MHz */
327 1.1 uwe igs_ext_write(iot, ioh, 0xB1, 0xD3);
328 1.1 uwe igs_ext_write(iot, ioh, 0xB2, 0xDB); /* MCLK = 75MHz*/
329 1.1 uwe igs_ext_write(iot, ioh, 0xB3, 0x54);
330 1.2 uwe igsfb_freq_latch(dc);
331 1.1 uwe
332 1.2 uwe if (is_cyberpro)
333 1.1 uwe igs_ext_write(iot, ioh, 0xF8, 0x04); /* XXX: ??? */
334 1.1 uwe
335 1.1 uwe /* 640x480 8bpp at 60Hz */
336 1.1 uwe igs_ext_write(iot, ioh, 0x11, 0x00);
337 1.1 uwe igs_ext_write(iot, ioh, 0x77, 0x01); /* 8bpp, indexed */
338 1.1 uwe igs_ext_write(iot, ioh, 0x14, 0x51);
339 1.1 uwe igs_ext_write(iot, ioh, 0x15, 0x00);
340 1.1 uwe }
341 1.1 uwe
342 1.1 uwe
343 1.1 uwe static void
344 1.7 uwe igsfb_init_dac(struct igsfb_devconfig *dc)
345 1.1 uwe {
346 1.2 uwe bus_space_tag_t iot = dc->dc_iot;
347 1.2 uwe bus_space_handle_t ioh = dc->dc_ioh;
348 1.4 uwe uint8_t reg;
349 1.1 uwe
350 1.1 uwe /* RAMDAC address 2 select */
351 1.1 uwe reg = igs_ext_read(iot, ioh, IGS_EXT_SPRITE_CTL);
352 1.1 uwe igs_ext_write(iot, ioh, IGS_EXT_SPRITE_CTL,
353 1.1 uwe reg | IGS_EXT_SPRITE_DAC_PEL);
354 1.1 uwe
355 1.1 uwe /* VREFEN, DAC8 */
356 1.1 uwe bus_space_write_1(iot, ioh, IGS_DAC_CMD, 0x06);
357 1.1 uwe
358 1.1 uwe /* restore */
359 1.1 uwe igs_ext_write(iot, ioh, IGS_EXT_SPRITE_CTL, reg);
360 1.1 uwe
361 1.1 uwe bus_space_write_1(iot, ioh, IGS_PEL_MASK, 0xff);
362 1.1 uwe }
363 1.1 uwe
364 1.1 uwe
365 1.1 uwe void
366 1.7 uwe igsfb_1024x768_8bpp_60Hz(struct igsfb_devconfig *dc)
367 1.1 uwe {
368 1.2 uwe bus_space_tag_t iot = dc->dc_iot;
369 1.2 uwe bus_space_handle_t ioh = dc->dc_ioh;
370 1.1 uwe
371 1.1 uwe igs_crtc_write(iot, ioh, 0x11, 0x00); /* write enable CRTC 0..7 */
372 1.1 uwe
373 1.1 uwe igs_crtc_write(iot, ioh, 0x00, 0xa3);
374 1.1 uwe igs_crtc_write(iot, ioh, 0x01, 0x7f);
375 1.1 uwe igs_crtc_write(iot, ioh, 0x02, 0x7f); /* krups: 80 */
376 1.1 uwe igs_crtc_write(iot, ioh, 0x03, 0x85); /* krups: 84 */
377 1.1 uwe igs_crtc_write(iot, ioh, 0x04, 0x84); /* krups: 88 */
378 1.1 uwe igs_crtc_write(iot, ioh, 0x05, 0x95); /* krups: 99 */
379 1.1 uwe igs_crtc_write(iot, ioh, 0x06, 0x24);
380 1.1 uwe igs_crtc_write(iot, ioh, 0x07, 0xfd);
381 1.1 uwe
382 1.1 uwe /* next block is almost constant, only bit 6 in reg 9 differs */
383 1.1 uwe igs_crtc_write(iot, ioh, 0x08, 0x00);
384 1.1 uwe igs_crtc_write(iot, ioh, 0x09, 0x60); /* <- either 0x40 or 0x60 */
385 1.1 uwe igs_crtc_write(iot, ioh, 0x0a, 0x00);
386 1.1 uwe igs_crtc_write(iot, ioh, 0x0b, 0x00);
387 1.1 uwe igs_crtc_write(iot, ioh, 0x0c, 0x00);
388 1.1 uwe igs_crtc_write(iot, ioh, 0x0d, 0x00);
389 1.1 uwe igs_crtc_write(iot, ioh, 0x0e, 0x00);
390 1.1 uwe igs_crtc_write(iot, ioh, 0x0f, 0x00);
391 1.1 uwe
392 1.1 uwe igs_crtc_write(iot, ioh, 0x10, 0x06);
393 1.1 uwe igs_crtc_write(iot, ioh, 0x11, 0x8c);
394 1.1 uwe igs_crtc_write(iot, ioh, 0x12, 0xff);
395 1.1 uwe igs_crtc_write(iot, ioh, 0x13, 0x80); /* depends on BPP */
396 1.1 uwe igs_crtc_write(iot, ioh, 0x14, 0x0f);
397 1.1 uwe igs_crtc_write(iot, ioh, 0x15, 0x02);
398 1.1 uwe igs_crtc_write(iot, ioh, 0x16, 0x21);
399 1.1 uwe igs_crtc_write(iot, ioh, 0x17, 0xe3);
400 1.1 uwe igs_crtc_write(iot, ioh, 0x18, 0xff);
401 1.1 uwe
402 1.1 uwe igs_ext_write(iot, ioh, 0xB0, 0xE2); /* VCLK */
403 1.1 uwe igs_ext_write(iot, ioh, 0xB1, 0x58);
404 1.1 uwe #if 1
405 1.1 uwe /* XXX: hmm, krups does this */
406 1.1 uwe igs_ext_write(iot, ioh, 0xB2, 0xE2); /* MCLK */
407 1.1 uwe igs_ext_write(iot, ioh, 0xB3, 0x58);
408 1.1 uwe #endif
409 1.2 uwe igsfb_freq_latch(dc);
410 1.1 uwe
411 1.1 uwe igs_ext_write(iot, ioh, 0x11, 0x00);
412 1.1 uwe igs_ext_write(iot, ioh, 0x77, 0x01); /* 8bpp, indexed */
413 1.1 uwe igs_ext_write(iot, ioh, 0x14, 0x81);
414 1.1 uwe igs_ext_write(iot, ioh, 0x15, 0x00);
415 1.10 macallan
416 1.10 macallan dc->dc_width = 1024;
417 1.10 macallan dc->dc_height = 768;
418 1.10 macallan dc->dc_depth = 8;
419 1.10 macallan dc->dc_stride = dc->dc_width;
420 1.1 uwe }
421 1.1 uwe
422 1.1 uwe
423 1.1 uwe /*
424 1.1 uwe * igs-video-init from krups prom
425 1.1 uwe */
426 1.1 uwe void
427 1.7 uwe igsfb_hw_setup(struct igsfb_devconfig *dc)
428 1.1 uwe {
429 1.10 macallan const struct videomode *mode = NULL;
430 1.12 macallan int i, size, d;
431 1.1 uwe
432 1.2 uwe igsfb_init_seq(dc);
433 1.2 uwe igsfb_init_crtc(dc);
434 1.2 uwe igsfb_init_attr(dc);
435 1.2 uwe igsfb_init_grfx(dc);
436 1.2 uwe igsfb_init_ext(dc);
437 1.2 uwe igsfb_init_dac(dc);
438 1.1 uwe
439 1.14 christos for (i = 0; i < videomode_count; i++) {
440 1.14 christos if (strcmp(dc->dc_modestring, videomode_list[i].name) == 0)
441 1.14 christos break;
442 1.10 macallan }
443 1.10 macallan
444 1.10 macallan if (i < videomode_count) {
445 1.12 macallan size = videomode_list[i].hdisplay * videomode_list[i].vdisplay;
446 1.10 macallan /* found a mode, now let's see if we can display it */
447 1.10 macallan if ((videomode_list[i].dot_clock <= IGS_MAX_CLOCK) &&
448 1.10 macallan (videomode_list[i].hdisplay <= 2048) &&
449 1.10 macallan (videomode_list[i].hdisplay >= 320) &&
450 1.10 macallan (videomode_list[i].vdisplay <= 2048) &&
451 1.12 macallan (videomode_list[i].vdisplay >= 200) &&
452 1.12 macallan (size <= (dc->dc_memsz - 0x1000))) {
453 1.10 macallan mode = &videomode_list[i];
454 1.12 macallan /*
455 1.12 macallan * now let's see which maximum depth we can support
456 1.12 macallan * in that mode
457 1.12 macallan */
458 1.12 macallan d = (dc->dc_vmemsz - 0x1000) / size;
459 1.12 macallan if (d >= 4) {
460 1.12 macallan dc->dc_maxdepth = 32;
461 1.12 macallan } else if (d >= 2) {
462 1.12 macallan dc->dc_maxdepth = 16;
463 1.12 macallan } else
464 1.12 macallan dc->dc_maxdepth = 8;
465 1.10 macallan }
466 1.10 macallan }
467 1.12 macallan dc->dc_mode = mode;
468 1.10 macallan
469 1.10 macallan if (mode != NULL) {
470 1.10 macallan igsfb_set_mode(dc, mode, 8);
471 1.12 macallan } else {
472 1.10 macallan igsfb_1024x768_8bpp_60Hz(dc);
473 1.12 macallan dc->dc_maxdepth = 8;
474 1.12 macallan }
475 1.10 macallan
476 1.2 uwe igsfb_video_on(dc);
477 1.1 uwe }
478 1.10 macallan
479 1.10 macallan void
480 1.10 macallan igsfb_set_mode(struct igsfb_devconfig *dc, const struct videomode *mode,
481 1.10 macallan int depth)
482 1.10 macallan {
483 1.10 macallan bus_space_tag_t iot = dc->dc_iot;
484 1.10 macallan bus_space_handle_t ioh = dc->dc_ioh;
485 1.10 macallan int i, m, n, p, hoffset, bytes_per_pixel, memfetch;
486 1.10 macallan int vsync_start, hsync_start, vsync_end, hsync_end;
487 1.10 macallan int vblank_start, vblank_end, hblank_start, hblank_end;
488 1.12 macallan int croffset;
489 1.12 macallan uint8_t vclk1, vclk2, vclk3, overflow, reg, seq_mode;
490 1.10 macallan
491 1.11 macallan switch (depth) {
492 1.11 macallan case 8:
493 1.12 macallan seq_mode = IGS_EXT_SEQ_8BPP;
494 1.11 macallan break;
495 1.11 macallan case 15:
496 1.12 macallan seq_mode = IGS_EXT_SEQ_15BPP; /* 5-5-5 */
497 1.11 macallan break;
498 1.11 macallan case 16:
499 1.12 macallan seq_mode = IGS_EXT_SEQ_16BPP; /* 5-6-5 */
500 1.11 macallan break;
501 1.11 macallan case 24:
502 1.12 macallan seq_mode = IGS_EXT_SEQ_24BPP; /* 8-8-8 */
503 1.11 macallan break;
504 1.11 macallan case 32:
505 1.12 macallan seq_mode = IGS_EXT_SEQ_32BPP;
506 1.11 macallan break;
507 1.11 macallan default:
508 1.11 macallan aprint_error("igsfb: unsupported depth (%d), reverting"
509 1.11 macallan " to 8 bit\n", depth);
510 1.11 macallan depth = 8;
511 1.12 macallan seq_mode = IGS_EXT_SEQ_8BPP;
512 1.11 macallan }
513 1.13 jakllsch bytes_per_pixel = howmany(depth, NBBY);
514 1.11 macallan
515 1.10 macallan hoffset = (mode->hdisplay >> 3) * bytes_per_pixel;
516 1.10 macallan memfetch = hoffset + 1;
517 1.10 macallan overflow = (((mode->vtotal - 2) & 0x400) >> 10) |
518 1.10 macallan (((mode->vdisplay -1) & 0x400) >> 9) |
519 1.10 macallan ((mode->vsync_start & 0x400) >> 8) |
520 1.10 macallan ((mode->vsync_start & 0x400) >> 7) |
521 1.10 macallan 0x10;
522 1.10 macallan
523 1.12 macallan /* RAMDAC address 2 select */
524 1.12 macallan reg = igs_ext_read(iot, ioh, IGS_EXT_SPRITE_CTL);
525 1.12 macallan igs_ext_write(iot, ioh, IGS_EXT_SPRITE_CTL,
526 1.12 macallan reg | IGS_EXT_SPRITE_DAC_PEL);
527 1.12 macallan
528 1.10 macallan if (depth == 8) {
529 1.10 macallan /* palette mode */
530 1.10 macallan bus_space_write_1(dc->dc_iot, dc->dc_ioh, IGS_DAC_CMD, 0x06);
531 1.10 macallan } else {
532 1.10 macallan /* bypass palette */
533 1.10 macallan bus_space_write_1(dc->dc_iot, dc->dc_ioh, IGS_DAC_CMD, 0x16);
534 1.10 macallan }
535 1.12 macallan /* restore */
536 1.12 macallan igs_ext_write(iot, ioh, IGS_EXT_SPRITE_CTL, reg);
537 1.12 macallan
538 1.12 macallan bus_space_write_1(iot, ioh, IGS_PEL_MASK, 0xff);
539 1.10 macallan
540 1.10 macallan igs_crtc_write(iot, ioh, 0x11, 0x00); /* write enable CRTC 0..7 */
541 1.10 macallan
542 1.10 macallan hsync_start = mode->hsync_start;
543 1.10 macallan hsync_end = mode->hsync_end;
544 1.10 macallan
545 1.10 macallan hblank_start = min(mode->hsync_start, mode->hdisplay);
546 1.10 macallan hblank_end = hsync_end;
547 1.10 macallan if ((hblank_end - hblank_start) >= 63 * 8) {
548 1.10 macallan
549 1.10 macallan /*
550 1.10 macallan * H Blanking size must be < 63*8. Same remark as above.
551 1.10 macallan */
552 1.10 macallan hblank_start = hblank_end - 63 * 8;
553 1.10 macallan }
554 1.10 macallan
555 1.10 macallan vblank_start = min(mode->vsync_start, mode->vdisplay);
556 1.10 macallan vblank_end = mode->vsync_end;
557 1.10 macallan
558 1.10 macallan vsync_start = mode->vsync_start;
559 1.10 macallan vsync_end = mode->vsync_end;
560 1.10 macallan igs_crtc_write(iot, ioh, 0x00, (mode->htotal >> 3) - 5);
561 1.10 macallan igs_crtc_write(iot, ioh, 0x01, (mode->hdisplay >> 3) - 1);
562 1.10 macallan igs_crtc_write(iot, ioh, 0x02, (hblank_start >> 3) - 1);
563 1.10 macallan igs_crtc_write(iot, ioh, 0x03, 0x80 | (((hblank_end >> 3) - 1) & 0x1f));
564 1.10 macallan igs_crtc_write(iot, ioh, 0x04, hsync_start >> 3);
565 1.10 macallan igs_crtc_write(iot, ioh, 0x05, ((((hblank_end >> 3) - 1) & 0x20) << 2)
566 1.10 macallan | ((hsync_end >> 3) & 0x1f));
567 1.10 macallan igs_crtc_write(iot, ioh, 0x06, (mode->vtotal - 2) & 0xff);
568 1.10 macallan igs_crtc_write(iot, ioh, 0x07,
569 1.10 macallan ((vsync_start & 0x200) >> 2) |
570 1.10 macallan (((mode->vdisplay - 1) & 0x200) >> 3) |
571 1.10 macallan (((mode->vtotal - 2) & 0x200) >> 4) |
572 1.10 macallan 0x10 |
573 1.10 macallan (((vblank_start - 1) & 0x100) >> 5) |
574 1.10 macallan ((vsync_start & 0x100) >> 6) |
575 1.10 macallan (((mode->vdisplay - 1) & 0x100) >> 7) |
576 1.10 macallan ((mode->vtotal & 0x100) >> 8));
577 1.10 macallan
578 1.10 macallan igs_crtc_write(iot, ioh, 0x08, 0x00);
579 1.10 macallan igs_crtc_write(iot, ioh, 0x09, 0x40 |
580 1.10 macallan (((vblank_start - 1) & 0x200) >> 4));
581 1.10 macallan igs_crtc_write(iot, ioh, 0x0a, 0x00);
582 1.10 macallan igs_crtc_write(iot, ioh, 0x0b, 0x00);
583 1.10 macallan igs_crtc_write(iot, ioh, 0x0c, 0x00);
584 1.10 macallan igs_crtc_write(iot, ioh, 0x0d, 0x00);
585 1.10 macallan igs_crtc_write(iot, ioh, 0x0e, 0x00);
586 1.10 macallan igs_crtc_write(iot, ioh, 0x0f, 0x00);
587 1.10 macallan
588 1.10 macallan igs_crtc_write(iot, ioh, 0x10, vsync_start & 0xff);
589 1.10 macallan igs_crtc_write(iot, ioh, 0x11, (vsync_end & 0x0f) | 0x20);
590 1.10 macallan igs_crtc_write(iot, ioh, 0x12, (mode->vdisplay - 1) & 0xff);
591 1.10 macallan igs_crtc_write(iot, ioh, 0x13, hoffset & 0xff);
592 1.10 macallan igs_crtc_write(iot, ioh, 0x14, 0x0f);
593 1.10 macallan igs_crtc_write(iot, ioh, 0x15, (vblank_start - 1) & 0xff);
594 1.10 macallan igs_crtc_write(iot, ioh, 0x16, (vblank_end - 1) & 0xff);
595 1.10 macallan igs_crtc_write(iot, ioh, 0x17, 0xe3);
596 1.10 macallan igs_crtc_write(iot, ioh, 0x18, 0xff);
597 1.10 macallan
598 1.10 macallan for (i = 0; i < 0x10; i++)
599 1.10 macallan igs_attr_write(iot, ioh, i, i);
600 1.10 macallan
601 1.10 macallan igs_attr_write(iot, ioh, 0x10, 0x01);
602 1.10 macallan igs_attr_write(iot, ioh, 0x11, 0x00);
603 1.10 macallan igs_attr_write(iot, ioh, 0x12, 0x0f);
604 1.10 macallan igs_attr_write(iot, ioh, 0x13, 0x00);
605 1.10 macallan
606 1.10 macallan igs_grfx_write(iot, ioh, 0x00, 0x00);
607 1.10 macallan igs_grfx_write(iot, ioh, 0x01, 0x00);
608 1.10 macallan igs_grfx_write(iot, ioh, 0x02, 0x00);
609 1.10 macallan igs_grfx_write(iot, ioh, 0x03, 0x00);
610 1.10 macallan igs_grfx_write(iot, ioh, 0x04, 0x00);
611 1.10 macallan igs_grfx_write(iot, ioh, 0x05, 0x60);
612 1.10 macallan igs_grfx_write(iot, ioh, 0x06, 0x05);
613 1.10 macallan igs_grfx_write(iot, ioh, 0x07, 0x0f);
614 1.10 macallan igs_grfx_write(iot, ioh, 0x08, 0xff);
615 1.10 macallan
616 1.10 macallan /* crank up memory clock to 95MHz - needed for higher resolutions */
617 1.11 macallan igs_ext_write(iot, ioh, IGS_EXT_MCLK0, 0x91);
618 1.11 macallan igs_ext_write(iot, ioh, IGS_EXT_MCLK1, 0x6a);
619 1.10 macallan igsfb_freq_latch(dc);
620 1.10 macallan
621 1.11 macallan igs_ext_write(iot, ioh, IGS_EXT_VOVFL, overflow);
622 1.12 macallan igs_ext_write(iot, ioh, IGS_EXT_SEQ_MISC, seq_mode);
623 1.10 macallan igs_ext_write(iot, ioh, 0x14, memfetch & 0xff);
624 1.10 macallan igs_ext_write(iot, ioh, 0x15,
625 1.10 macallan ((memfetch & 0x300) >> 8) | ((hoffset & 0x300) >> 4));
626 1.10 macallan
627 1.10 macallan /* finally set the dot clock */
628 1.10 macallan igsfb_calc_pll(mode->dot_clock, &m, &n, &p, 2047, 255, 7, IGS_MIN_VCO);
629 1.10 macallan DPRINTF("m: %x, n: %x, p: %x\n", m, n, p);
630 1.10 macallan vclk1 = m & 0xff;
631 1.10 macallan vclk2 = (n & 0x1f) | ((p << 6) & 0xc0) |
632 1.10 macallan (mode->dot_clock > 180000 ? 0x20 : 0);
633 1.10 macallan vclk3 = ((m >> 8) & 0x7) | ((n >> 2) & 0x38) | ((p << 4) & 0x40);
634 1.10 macallan DPRINTF("clk: %02x %02x %02x\n", vclk1, vclk2, vclk3);
635 1.11 macallan igs_ext_write(iot, ioh, IGS_EXT_VCLK0, vclk1);
636 1.11 macallan igs_ext_write(iot, ioh, IGS_EXT_VCLK1, vclk2);
637 1.10 macallan igs_ext_write(iot, ioh, 0xBA, vclk3);
638 1.10 macallan igsfb_freq_latch(dc);
639 1.10 macallan DPRINTF("clock: %d\n", IGS_CLOCK(m, n, p));
640 1.10 macallan
641 1.12 macallan if (dc->dc_id > 0x2000) {
642 1.12 macallan /* we have a blitter, so configure it as well */
643 1.12 macallan bus_space_write_1(dc->dc_iot, dc->dc_coph, IGS_COP_MAP_FMT_REG,
644 1.12 macallan bytes_per_pixel - 1);
645 1.12 macallan bus_space_write_2(dc->dc_iot, dc->dc_coph,
646 1.12 macallan IGS_COP_SRC_MAP_WIDTH_REG, dc->dc_width - 1);
647 1.12 macallan bus_space_write_2(dc->dc_iot, dc->dc_coph,
648 1.12 macallan IGS_COP_DST_MAP_WIDTH_REG, dc->dc_width - 1);
649 1.12 macallan }
650 1.12 macallan
651 1.12 macallan /* re-init the cursor data address too */
652 1.12 macallan croffset = dc->dc_vmemsz - IGS_CURSOR_DATA_SIZE;
653 1.12 macallan croffset >>= 10; /* bytes -> kilobytes */
654 1.12 macallan igs_ext_write(dc->dc_iot, dc->dc_ioh,
655 1.12 macallan IGS_EXT_SPRITE_DATA_LO, croffset & 0xff);
656 1.12 macallan igs_ext_write(dc->dc_iot, dc->dc_ioh,
657 1.12 macallan IGS_EXT_SPRITE_DATA_HI, (croffset >> 8) & 0xf);
658 1.12 macallan
659 1.10 macallan dc->dc_width = mode->hdisplay;
660 1.10 macallan dc->dc_height = mode->vdisplay;
661 1.10 macallan dc->dc_depth = depth;
662 1.13 jakllsch dc->dc_stride = dc->dc_width * howmany(depth, NBBY);
663 1.12 macallan
664 1.12 macallan igsfb_video_on(dc);
665 1.10 macallan }
666 1.10 macallan
667 1.10 macallan
668 1.10 macallan static void
669 1.10 macallan igsfb_calc_pll(int target, int *Mp, int *Np, int *Pp, int maxM, int maxN,
670 1.10 macallan int maxP, int minVco)
671 1.10 macallan {
672 1.10 macallan int M, N, P, bestM = 0, bestN = 0;
673 1.10 macallan int f_vco, f_out;
674 1.10 macallan int err, besterr;
675 1.10 macallan
676 1.10 macallan /*
677 1.10 macallan * Compute correct P value to keep VCO in range
678 1.10 macallan */
679 1.10 macallan for (P = 0; P <= maxP; P++)
680 1.10 macallan {
681 1.10 macallan f_vco = target * IGS_SCALE(P);
682 1.10 macallan if (f_vco >= minVco)
683 1.10 macallan break;
684 1.10 macallan }
685 1.10 macallan
686 1.10 macallan /* M = f_out / f_ref * ((N + 1) * IGS_SCALE(P)); */
687 1.10 macallan besterr = target;
688 1.10 macallan for (N = 1; N <= maxN; N++)
689 1.10 macallan {
690 1.10 macallan M = ((target * (N + 1) * IGS_SCALE(P) + (IGS_CLOCK_REF/2)) +
691 1.10 macallan IGS_CLOCK_REF/2) / IGS_CLOCK_REF - 1;
692 1.10 macallan if (0 <= M && M <= maxM)
693 1.10 macallan {
694 1.10 macallan f_out = IGS_CLOCK(M,N,P);
695 1.10 macallan err = target - f_out;
696 1.10 macallan if (err < 0)
697 1.10 macallan err = -err;
698 1.10 macallan if (err < besterr)
699 1.10 macallan {
700 1.10 macallan besterr = err;
701 1.10 macallan bestM = M;
702 1.10 macallan bestN = N;
703 1.10 macallan }
704 1.10 macallan }
705 1.10 macallan }
706 1.10 macallan *Mp = bestM;
707 1.10 macallan *Np = bestN;
708 1.10 macallan *Pp = P;
709 1.10 macallan }
710