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1 /*
2 * Copyright (C) 2005-2006 Atmel Corporation
3 *
4 * This program is free software; you can redistribute it and/or modify
5 * it under the terms of the GNU General Public License version 2 as
6 * published by the Free Software Foundation.
7 */
8 #include <linux/clk.h>
9 #include <linux/delay.h>
10 #include <linux/dw_dmac.h>
11 #include <linux/fb.h>
12 #include <linux/init.h>
13 #include <linux/platform_device.h>
14 #include <linux/dma-mapping.h>
15 #include <linux/slab.h>
16 #include <linux/gpio.h>
17 #include <linux/spi/spi.h>
18 #include <linux/usb/atmel_usba_udc.h>
19
20 #include <mach/atmel-mci.h>
21 #include <linux/atmel-mci.h>
22
23 #include <asm/io.h>
24 #include <asm/irq.h>
25
26 #include <mach/at32ap700x.h>
27 #include <mach/board.h>
28 #include <mach/hmatrix.h>
29 #include <mach/portmux.h>
30 #include <mach/sram.h>
31
32 #include <sound/atmel-abdac.h>
33 #include <sound/atmel-ac97c.h>
34
35 #include <video/atmel_lcdc.h>
36
37 #include "clock.h"
38 #include "pio.h"
39 #include "pm.h"
40
41
42 #define PBMEM(base) \
43 { \
44 .start = base, \
45 .end = base + 0x3ff, \
46 .flags = IORESOURCE_MEM, \
47 }
48 #define IRQ(num) \
49 { \
50 .start = num, \
51 .end = num, \
52 .flags = IORESOURCE_IRQ, \
53 }
54 #define NAMED_IRQ(num, _name) \
55 { \
56 .start = num, \
57 .end = num, \
58 .name = _name, \
59 .flags = IORESOURCE_IRQ, \
60 }
61
62 /* REVISIT these assume *every* device supports DMA, but several
63 * don't ... tc, smc, pio, rtc, watchdog, pwm, ps2, and more.
64 */
65 #define DEFINE_DEV(_name, _id) \
66 static u64 _name##_id##_dma_mask = DMA_BIT_MASK(32); \
67 static struct platform_device _name##_id##_device = { \
68 .name = #_name, \
69 .id = _id, \
70 .dev = { \
71 .dma_mask = &_name##_id##_dma_mask, \
72 .coherent_dma_mask = DMA_BIT_MASK(32), \
73 }, \
74 .resource = _name##_id##_resource, \
75 .num_resources = ARRAY_SIZE(_name##_id##_resource), \
76 }
77 #define DEFINE_DEV_DATA(_name, _id) \
78 static u64 _name##_id##_dma_mask = DMA_BIT_MASK(32); \
79 static struct platform_device _name##_id##_device = { \
80 .name = #_name, \
81 .id = _id, \
82 .dev = { \
83 .dma_mask = &_name##_id##_dma_mask, \
84 .platform_data = &_name##_id##_data, \
85 .coherent_dma_mask = DMA_BIT_MASK(32), \
86 }, \
87 .resource = _name##_id##_resource, \
88 .num_resources = ARRAY_SIZE(_name##_id##_resource), \
89 }
90
91 #define select_peripheral(port, pin_mask, periph, flags) \
92 at32_select_periph(GPIO_##port##_BASE, pin_mask, \
93 GPIO_##periph, flags)
94
95 #define DEV_CLK(_name, devname, bus, _index) \
96 static struct clk devname##_##_name = { \
97 .name = #_name, \
98 .dev = &devname##_device.dev, \
99 .parent = &bus##_clk, \
100 .mode = bus##_clk_mode, \
101 .get_rate = bus##_clk_get_rate, \
102 .index = _index, \
103 }
104
105 static DEFINE_SPINLOCK(pm_lock);
106
107 static struct clk osc0;
108 static struct clk osc1;
109
110 static unsigned long osc_get_rate(struct clk *clk)
111 {
112 return at32_board_osc_rates[clk->index];
113 }
114
115 static unsigned long pll_get_rate(struct clk *clk, unsigned long control)
116 {
117 unsigned long div, mul, rate;
118
119 div = PM_BFEXT(PLLDIV, control) + 1;
120 mul = PM_BFEXT(PLLMUL, control) + 1;
121
122 rate = clk->parent->get_rate(clk->parent);
123 rate = (rate + div / 2) / div;
124 rate *= mul;
125
126 return rate;
127 }
128
129 static long pll_set_rate(struct clk *clk, unsigned long rate,
130 u32 *pll_ctrl)
131 {
132 unsigned long mul;
133 unsigned long mul_best_fit = 0;
134 unsigned long div;
135 unsigned long div_min;
136 unsigned long div_max;
137 unsigned long div_best_fit = 0;
138 unsigned long base;
139 unsigned long pll_in;
140 unsigned long actual = 0;
141 unsigned long rate_error;
142 unsigned long rate_error_prev = ~0UL;
143 u32 ctrl;
144
145 /* Rate must be between 80 MHz and 200 Mhz. */
146 if (rate < 80000000UL || rate > 200000000UL)
147 return -EINVAL;
148
149 ctrl = PM_BF(PLLOPT, 4);
150 base = clk->parent->get_rate(clk->parent);
151
152 /* PLL input frequency must be between 6 MHz and 32 MHz. */
153 div_min = DIV_ROUND_UP(base, 32000000UL);
154 div_max = base / 6000000UL;
155
156 if (div_max < div_min)
157 return -EINVAL;
158
159 for (div = div_min; div <= div_max; div++) {
160 pll_in = (base + div / 2) / div;
161 mul = (rate + pll_in / 2) / pll_in;
162
163 if (mul == 0)
164 continue;
165
166 actual = pll_in * mul;
167 rate_error = abs(actual - rate);
168
169 if (rate_error < rate_error_prev) {
170 mul_best_fit = mul;
171 div_best_fit = div;
172 rate_error_prev = rate_error;
173 }
174
175 if (rate_error == 0)
176 break;
177 }
178
179 if (div_best_fit == 0)
180 return -EINVAL;
181
182 ctrl |= PM_BF(PLLMUL, mul_best_fit - 1);
183 ctrl |= PM_BF(PLLDIV, div_best_fit - 1);
184 ctrl |= PM_BF(PLLCOUNT, 16);
185
186 if (clk->parent == &osc1)
187 ctrl |= PM_BIT(PLLOSC);
188
189 *pll_ctrl = ctrl;
190
191 return actual;
192 }
193
194 static unsigned long pll0_get_rate(struct clk *clk)
195 {
196 u32 control;
197
198 control = pm_readl(PLL0);
199
200 return pll_get_rate(clk, control);
201 }
202
203 static void pll1_mode(struct clk *clk, int enabled)
204 {
205 unsigned long timeout;
206 u32 status;
207 u32 ctrl;
208
209 ctrl = pm_readl(PLL1);
210
211 if (enabled) {
212 if (!PM_BFEXT(PLLMUL, ctrl) && !PM_BFEXT(PLLDIV, ctrl)) {
213 pr_debug("clk %s: failed to enable, rate not set\n",
214 clk->name);
215 return;
216 }
217
218 ctrl |= PM_BIT(PLLEN);
219 pm_writel(PLL1, ctrl);
220
221 /* Wait for PLL lock. */
222 for (timeout = 10000; timeout; timeout--) {
223 status = pm_readl(ISR);
224 if (status & PM_BIT(LOCK1))
225 break;
226 udelay(10);
227 }
228
229 if (!(status & PM_BIT(LOCK1)))
230 printk(KERN_ERR "clk %s: timeout waiting for lock\n",
231 clk->name);
232 } else {
233 ctrl &= ~PM_BIT(PLLEN);
234 pm_writel(PLL1, ctrl);
235 }
236 }
237
238 static unsigned long pll1_get_rate(struct clk *clk)
239 {
240 u32 control;
241
242 control = pm_readl(PLL1);
243
244 return pll_get_rate(clk, control);
245 }
246
247 static long pll1_set_rate(struct clk *clk, unsigned long rate, int apply)
248 {
249 u32 ctrl = 0;
250 unsigned long actual_rate;
251
252 actual_rate = pll_set_rate(clk, rate, &ctrl);
253
254 if (apply) {
255 if (actual_rate != rate)
256 return -EINVAL;
257 if (clk->users > 0)
258 return -EBUSY;
259 pr_debug(KERN_INFO "clk %s: new rate %lu (actual rate %lu)\n",
260 clk->name, rate, actual_rate);
261 pm_writel(PLL1, ctrl);
262 }
263
264 return actual_rate;
265 }
266
267 static int pll1_set_parent(struct clk *clk, struct clk *parent)
268 {
269 u32 ctrl;
270
271 if (clk->users > 0)
272 return -EBUSY;
273
274 ctrl = pm_readl(PLL1);
275 WARN_ON(ctrl & PM_BIT(PLLEN));
276
277 if (parent == &osc0)
278 ctrl &= ~PM_BIT(PLLOSC);
279 else if (parent == &osc1)
280 ctrl |= PM_BIT(PLLOSC);
281 else
282 return -EINVAL;
283
284 pm_writel(PLL1, ctrl);
285 clk->parent = parent;
286
287 return 0;
288 }
289
290 /*
291 * The AT32AP7000 has five primary clock sources: One 32kHz
292 * oscillator, two crystal oscillators and two PLLs.
293 */
294 static struct clk osc32k = {
295 .name = "osc32k",
296 .get_rate = osc_get_rate,
297 .users = 1,
298 .index = 0,
299 };
300 static struct clk osc0 = {
301 .name = "osc0",
302 .get_rate = osc_get_rate,
303 .users = 1,
304 .index = 1,
305 };
306 static struct clk osc1 = {
307 .name = "osc1",
308 .get_rate = osc_get_rate,
309 .index = 2,
310 };
311 static struct clk pll0 = {
312 .name = "pll0",
313 .get_rate = pll0_get_rate,
314 .parent = &osc0,
315 };
316 static struct clk pll1 = {
317 .name = "pll1",
318 .mode = pll1_mode,
319 .get_rate = pll1_get_rate,
320 .set_rate = pll1_set_rate,
321 .set_parent = pll1_set_parent,
322 .parent = &osc0,
323 };
324
325 /*
326 * The main clock can be either osc0 or pll0. The boot loader may
327 * have chosen one for us, so we don't really know which one until we
328 * have a look at the SM.
329 */
330 static struct clk *main_clock;
331
332 /*
333 * Synchronous clocks are generated from the main clock. The clocks
334 * must satisfy the constraint
335 * fCPU >= fHSB >= fPB
336 * i.e. each clock must not be faster than its parent.
337 */
338 static unsigned long bus_clk_get_rate(struct clk *clk, unsigned int shift)
339 {
340 return main_clock->get_rate(main_clock) >> shift;
341 };
342
343 static void cpu_clk_mode(struct clk *clk, int enabled)
344 {
345 unsigned long flags;
346 u32 mask;
347
348 spin_lock_irqsave(&pm_lock, flags);
349 mask = pm_readl(CPU_MASK);
350 if (enabled)
351 mask |= 1 << clk->index;
352 else
353 mask &= ~(1 << clk->index);
354 pm_writel(CPU_MASK, mask);
355 spin_unlock_irqrestore(&pm_lock, flags);
356 }
357
358 static unsigned long cpu_clk_get_rate(struct clk *clk)
359 {
360 unsigned long cksel, shift = 0;
361
362 cksel = pm_readl(CKSEL);
363 if (cksel & PM_BIT(CPUDIV))
364 shift = PM_BFEXT(CPUSEL, cksel) + 1;
365
366 return bus_clk_get_rate(clk, shift);
367 }
368
369 static long cpu_clk_set_rate(struct clk *clk, unsigned long rate, int apply)
370 {
371 u32 control;
372 unsigned long parent_rate, child_div, actual_rate, div;
373
374 parent_rate = clk->parent->get_rate(clk->parent);
375 control = pm_readl(CKSEL);
376
377 if (control & PM_BIT(HSBDIV))
378 child_div = 1 << (PM_BFEXT(HSBSEL, control) + 1);
379 else
380 child_div = 1;
381
382 if (rate > 3 * (parent_rate / 4) || child_div == 1) {
383 actual_rate = parent_rate;
384 control &= ~PM_BIT(CPUDIV);
385 } else {
386 unsigned int cpusel;
387 div = (parent_rate + rate / 2) / rate;
388 if (div > child_div)
389 div = child_div;
390 cpusel = (div > 1) ? (fls(div) - 2) : 0;
391 control = PM_BIT(CPUDIV) | PM_BFINS(CPUSEL, cpusel, control);
392 actual_rate = parent_rate / (1 << (cpusel + 1));
393 }
394
395 pr_debug("clk %s: new rate %lu (actual rate %lu)\n",
396 clk->name, rate, actual_rate);
397
398 if (apply)
399 pm_writel(CKSEL, control);
400
401 return actual_rate;
402 }
403
404 static void hsb_clk_mode(struct clk *clk, int enabled)
405 {
406 unsigned long flags;
407 u32 mask;
408
409 spin_lock_irqsave(&pm_lock, flags);
410 mask = pm_readl(HSB_MASK);
411 if (enabled)
412 mask |= 1 << clk->index;
413 else
414 mask &= ~(1 << clk->index);
415 pm_writel(HSB_MASK, mask);
416 spin_unlock_irqrestore(&pm_lock, flags);
417 }
418
419 static unsigned long hsb_clk_get_rate(struct clk *clk)
420 {
421 unsigned long cksel, shift = 0;
422
423 cksel = pm_readl(CKSEL);
424 if (cksel & PM_BIT(HSBDIV))
425 shift = PM_BFEXT(HSBSEL, cksel) + 1;
426
427 return bus_clk_get_rate(clk, shift);
428 }
429
430 void pba_clk_mode(struct clk *clk, int enabled)
431 {
432 unsigned long flags;
433 u32 mask;
434
435 spin_lock_irqsave(&pm_lock, flags);
436 mask = pm_readl(PBA_MASK);
437 if (enabled)
438 mask |= 1 << clk->index;
439 else
440 mask &= ~(1 << clk->index);
441 pm_writel(PBA_MASK, mask);
442 spin_unlock_irqrestore(&pm_lock, flags);
443 }
444
445 unsigned long pba_clk_get_rate(struct clk *clk)
446 {
447 unsigned long cksel, shift = 0;
448
449 cksel = pm_readl(CKSEL);
450 if (cksel & PM_BIT(PBADIV))
451 shift = PM_BFEXT(PBASEL, cksel) + 1;
452
453 return bus_clk_get_rate(clk, shift);
454 }
455
456 static void pbb_clk_mode(struct clk *clk, int enabled)
457 {
458 unsigned long flags;
459 u32 mask;
460
461 spin_lock_irqsave(&pm_lock, flags);
462 mask = pm_readl(PBB_MASK);
463 if (enabled)
464 mask |= 1 << clk->index;
465 else
466 mask &= ~(1 << clk->index);
467 pm_writel(PBB_MASK, mask);
468 spin_unlock_irqrestore(&pm_lock, flags);
469 }
470
471 static unsigned long pbb_clk_get_rate(struct clk *clk)
472 {
473 unsigned long cksel, shift = 0;
474
475 cksel = pm_readl(CKSEL);
476 if (cksel & PM_BIT(PBBDIV))
477 shift = PM_BFEXT(PBBSEL, cksel) + 1;
478
479 return bus_clk_get_rate(clk, shift);
480 }
481
482 static struct clk cpu_clk = {
483 .name = "cpu",
484 .get_rate = cpu_clk_get_rate,
485 .set_rate = cpu_clk_set_rate,
486 .users = 1,
487 };
488 static struct clk hsb_clk = {
489 .name = "hsb",
490 .parent = &cpu_clk,
491 .get_rate = hsb_clk_get_rate,
492 };
493 static struct clk pba_clk = {
494 .name = "pba",
495 .parent = &hsb_clk,
496 .mode = hsb_clk_mode,
497 .get_rate = pba_clk_get_rate,
498 .index = 1,
499 };
500 static struct clk pbb_clk = {
501 .name = "pbb",
502 .parent = &hsb_clk,
503 .mode = hsb_clk_mode,
504 .get_rate = pbb_clk_get_rate,
505 .users = 1,
506 .index = 2,
507 };
508
509 /* --------------------------------------------------------------------
510 * Generic Clock operations
511 * -------------------------------------------------------------------- */
512
513 static void genclk_mode(struct clk *clk, int enabled)
514 {
515 u32 control;
516
517 control = pm_readl(GCCTRL(clk->index));
518 if (enabled)
519 control |= PM_BIT(CEN);
520 else
521 control &= ~PM_BIT(CEN);
522 pm_writel(GCCTRL(clk->index), control);
523 }
524
525 static unsigned long genclk_get_rate(struct clk *clk)
526 {
527 u32 control;
528 unsigned long div = 1;
529
530 control = pm_readl(GCCTRL(clk->index));
531 if (control & PM_BIT(DIVEN))
532 div = 2 * (PM_BFEXT(DIV, control) + 1);
533
534 return clk->parent->get_rate(clk->parent) / div;
535 }
536
537 static long genclk_set_rate(struct clk *clk, unsigned long rate, int apply)
538 {
539 u32 control;
540 unsigned long parent_rate, actual_rate, div;
541
542 parent_rate = clk->parent->get_rate(clk->parent);
543 control = pm_readl(GCCTRL(clk->index));
544
545 if (rate > 3 * parent_rate / 4) {
546 actual_rate = parent_rate;
547 control &= ~PM_BIT(DIVEN);
548 } else {
549 div = (parent_rate + rate) / (2 * rate) - 1;
550 control = PM_BFINS(DIV, div, control) | PM_BIT(DIVEN);
551 actual_rate = parent_rate / (2 * (div + 1));
552 }
553
554 dev_dbg(clk->dev, "clk %s: new rate %lu (actual rate %lu)\n",
555 clk->name, rate, actual_rate);
556
557 if (apply)
558 pm_writel(GCCTRL(clk->index), control);
559
560 return actual_rate;
561 }
562
563 int genclk_set_parent(struct clk *clk, struct clk *parent)
564 {
565 u32 control;
566
567 dev_dbg(clk->dev, "clk %s: new parent %s (was %s)\n",
568 clk->name, parent->name, clk->parent->name);
569
570 control = pm_readl(GCCTRL(clk->index));
571
572 if (parent == &osc1 || parent == &pll1)
573 control |= PM_BIT(OSCSEL);
574 else if (parent == &osc0 || parent == &pll0)
575 control &= ~PM_BIT(OSCSEL);
576 else
577 return -EINVAL;
578
579 if (parent == &pll0 || parent == &pll1)
580 control |= PM_BIT(PLLSEL);
581 else
582 control &= ~PM_BIT(PLLSEL);
583
584 pm_writel(GCCTRL(clk->index), control);
585 clk->parent = parent;
586
587 return 0;
588 }
589
590 static void __init genclk_init_parent(struct clk *clk)
591 {
592 u32 control;
593 struct clk *parent;
594
595 BUG_ON(clk->index > 7);
596
597 control = pm_readl(GCCTRL(clk->index));
598 if (control & PM_BIT(OSCSEL))
599 parent = (control & PM_BIT(PLLSEL)) ? &pll1 : &osc1;
600 else
601 parent = (control & PM_BIT(PLLSEL)) ? &pll0 : &osc0;
602
603 clk->parent = parent;
604 }
605
606 static struct dw_dma_platform_data dw_dmac0_data = {
607 .nr_channels = 3,
608 };
609
610 static struct resource dw_dmac0_resource[] = {
611 PBMEM(0xff200000),
612 IRQ(2),
613 };
614 DEFINE_DEV_DATA(dw_dmac, 0);
615 DEV_CLK(hclk, dw_dmac0, hsb, 10);
616
617 /* --------------------------------------------------------------------
618 * System peripherals
619 * -------------------------------------------------------------------- */
620 static struct resource at32_pm0_resource[] = {
621 {
622 .start = 0xfff00000,
623 .end = 0xfff0007f,
624 .flags = IORESOURCE_MEM,
625 },
626 IRQ(20),
627 };
628
629 static struct resource at32ap700x_rtc0_resource[] = {
630 {
631 .start = 0xfff00080,
632 .end = 0xfff000af,
633 .flags = IORESOURCE_MEM,
634 },
635 IRQ(21),
636 };
637
638 static struct resource at32_wdt0_resource[] = {
639 {
640 .start = 0xfff000b0,
641 .end = 0xfff000cf,
642 .flags = IORESOURCE_MEM,
643 },
644 };
645
646 static struct resource at32_eic0_resource[] = {
647 {
648 .start = 0xfff00100,
649 .end = 0xfff0013f,
650 .flags = IORESOURCE_MEM,
651 },
652 IRQ(19),
653 };
654
655 DEFINE_DEV(at32_pm, 0);
656 DEFINE_DEV(at32ap700x_rtc, 0);
657 DEFINE_DEV(at32_wdt, 0);
658 DEFINE_DEV(at32_eic, 0);
659
660 /*
661 * Peripheral clock for PM, RTC, WDT and EIC. PM will ensure that this
662 * is always running.
663 */
664 static struct clk at32_pm_pclk = {
665 .name = "pclk",
666 .dev = &at32_pm0_device.dev,
667 .parent = &pbb_clk,
668 .mode = pbb_clk_mode,
669 .get_rate = pbb_clk_get_rate,
670 .users = 1,
671 .index = 0,
672 };
673
674 static struct resource intc0_resource[] = {
675 PBMEM(0xfff00400),
676 };
677 struct platform_device at32_intc0_device = {
678 .name = "intc",
679 .id = 0,
680 .resource = intc0_resource,
681 .num_resources = ARRAY_SIZE(intc0_resource),
682 };
683 DEV_CLK(pclk, at32_intc0, pbb, 1);
684
685 static struct clk ebi_clk = {
686 .name = "ebi",
687 .parent = &hsb_clk,
688 .mode = hsb_clk_mode,
689 .get_rate = hsb_clk_get_rate,
690 .users = 1,
691 };
692 static struct clk hramc_clk = {
693 .name = "hramc",
694 .parent = &hsb_clk,
695 .mode = hsb_clk_mode,
696 .get_rate = hsb_clk_get_rate,
697 .users = 1,
698 .index = 3,
699 };
700 static struct clk sdramc_clk = {
701 .name = "sdramc_clk",
702 .parent = &pbb_clk,
703 .mode = pbb_clk_mode,
704 .get_rate = pbb_clk_get_rate,
705 .users = 1,
706 .index = 14,
707 };
708
709 static struct resource smc0_resource[] = {
710 PBMEM(0xfff03400),
711 };
712 DEFINE_DEV(smc, 0);
713 DEV_CLK(pclk, smc0, pbb, 13);
714 DEV_CLK(mck, smc0, hsb, 0);
715
716 static struct platform_device pdc_device = {
717 .name = "pdc",
718 .id = 0,
719 };
720 DEV_CLK(hclk, pdc, hsb, 4);
721 DEV_CLK(pclk, pdc, pba, 16);
722
723 static struct clk pico_clk = {
724 .name = "pico",
725 .parent = &cpu_clk,
726 .mode = cpu_clk_mode,
727 .get_rate = cpu_clk_get_rate,
728 .users = 1,
729 };
730
731 /* --------------------------------------------------------------------
732 * HMATRIX
733 * -------------------------------------------------------------------- */
734
735 struct clk at32_hmatrix_clk = {
736 .name = "hmatrix_clk",
737 .parent = &pbb_clk,
738 .mode = pbb_clk_mode,
739 .get_rate = pbb_clk_get_rate,
740 .index = 2,
741 .users = 1,
742 };
743
744 /*
745 * Set bits in the HMATRIX Special Function Register (SFR) used by the
746 * External Bus Interface (EBI). This can be used to enable special
747 * features like CompactFlash support, NAND Flash support, etc. on
748 * certain chipselects.
749 */
750 static inline void set_ebi_sfr_bits(u32 mask)
751 {
752 hmatrix_sfr_set_bits(HMATRIX_SLAVE_EBI, mask);
753 }
754
755 /* --------------------------------------------------------------------
756 * Timer/Counter (TC)
757 * -------------------------------------------------------------------- */
758
759 static struct resource at32_tcb0_resource[] = {
760 PBMEM(0xfff00c00),
761 IRQ(22),
762 };
763 static struct platform_device at32_tcb0_device = {
764 .name = "atmel_tcb",
765 .id = 0,
766 .resource = at32_tcb0_resource,
767 .num_resources = ARRAY_SIZE(at32_tcb0_resource),
768 };
769 DEV_CLK(t0_clk, at32_tcb0, pbb, 3);
770
771 static struct resource at32_tcb1_resource[] = {
772 PBMEM(0xfff01000),
773 IRQ(23),
774 };
775 static struct platform_device at32_tcb1_device = {
776 .name = "atmel_tcb",
777 .id = 1,
778 .resource = at32_tcb1_resource,
779 .num_resources = ARRAY_SIZE(at32_tcb1_resource),
780 };
781 DEV_CLK(t0_clk, at32_tcb1, pbb, 4);
782
783 /* --------------------------------------------------------------------
784 * PIO
785 * -------------------------------------------------------------------- */
786
787 static struct resource pio0_resource[] = {
788 PBMEM(0xffe02800),
789 IRQ(13),
790 };
791 DEFINE_DEV(pio, 0);
792 DEV_CLK(mck, pio0, pba, 10);
793
794 static struct resource pio1_resource[] = {
795 PBMEM(0xffe02c00),
796 IRQ(14),
797 };
798 DEFINE_DEV(pio, 1);
799 DEV_CLK(mck, pio1, pba, 11);
800
801 static struct resource pio2_resource[] = {
802 PBMEM(0xffe03000),
803 IRQ(15),
804 };
805 DEFINE_DEV(pio, 2);
806 DEV_CLK(mck, pio2, pba, 12);
807
808 static struct resource pio3_resource[] = {
809 PBMEM(0xffe03400),
810 IRQ(16),
811 };
812 DEFINE_DEV(pio, 3);
813 DEV_CLK(mck, pio3, pba, 13);
814
815 static struct resource pio4_resource[] = {
816 PBMEM(0xffe03800),
817 IRQ(17),
818 };
819 DEFINE_DEV(pio, 4);
820 DEV_CLK(mck, pio4, pba, 14);
821
822 static int __init system_device_init(void)
823 {
824 platform_device_register(&at32_pm0_device);
825 platform_device_register(&at32_intc0_device);
826 platform_device_register(&at32ap700x_rtc0_device);
827 platform_device_register(&at32_wdt0_device);
828 platform_device_register(&at32_eic0_device);
829 platform_device_register(&smc0_device);
830 platform_device_register(&pdc_device);
831 platform_device_register(&dw_dmac0_device);
832
833 platform_device_register(&at32_tcb0_device);
834 platform_device_register(&at32_tcb1_device);
835
836 platform_device_register(&pio0_device);
837 platform_device_register(&pio1_device);
838 platform_device_register(&pio2_device);
839 platform_device_register(&pio3_device);
840 platform_device_register(&pio4_device);
841
842 return 0;
843 }
844 core_initcall(system_device_init);
845
846 /* --------------------------------------------------------------------
847 * PSIF
848 * -------------------------------------------------------------------- */
849 static struct resource atmel_psif0_resource[] __initdata = {
850 {
851 .start = 0xffe03c00,
852 .end = 0xffe03cff,
853 .flags = IORESOURCE_MEM,
854 },
855 IRQ(18),
856 };
857 static struct clk atmel_psif0_pclk = {
858 .name = "pclk",
859 .parent = &pba_clk,
860 .mode = pba_clk_mode,
861 .get_rate = pba_clk_get_rate,
862 .index = 15,
863 };
864
865 static struct resource atmel_psif1_resource[] __initdata = {
866 {
867 .start = 0xffe03d00,
868 .end = 0xffe03dff,
869 .flags = IORESOURCE_MEM,
870 },
871 IRQ(18),
872 };
873 static struct clk atmel_psif1_pclk = {
874 .name = "pclk",
875 .parent = &pba_clk,
876 .mode = pba_clk_mode,
877 .get_rate = pba_clk_get_rate,
878 .index = 15,
879 };
880
881 struct platform_device *__init at32_add_device_psif(unsigned int id)
882 {
883 struct platform_device *pdev;
884 u32 pin_mask;
885
886 if (!(id == 0 || id == 1))
887 return NULL;
888
889 pdev = platform_device_alloc("atmel_psif", id);
890 if (!pdev)
891 return NULL;
892
893 switch (id) {
894 case 0:
895 pin_mask = (1 << 8) | (1 << 9); /* CLOCK & DATA */
896
897 if (platform_device_add_resources(pdev, atmel_psif0_resource,
898 ARRAY_SIZE(atmel_psif0_resource)))
899 goto err_add_resources;
900 atmel_psif0_pclk.dev = &pdev->dev;
901 select_peripheral(PIOA, pin_mask, PERIPH_A, 0);
902 break;
903 case 1:
904 pin_mask = (1 << 11) | (1 << 12); /* CLOCK & DATA */
905
906 if (platform_device_add_resources(pdev, atmel_psif1_resource,
907 ARRAY_SIZE(atmel_psif1_resource)))
908 goto err_add_resources;
909 atmel_psif1_pclk.dev = &pdev->dev;
910 select_peripheral(PIOB, pin_mask, PERIPH_A, 0);
911 break;
912 default:
913 return NULL;
914 }
915
916 platform_device_add(pdev);
917 return pdev;
918
919 err_add_resources:
920 platform_device_put(pdev);
921 return NULL;
922 }
923
924 /* --------------------------------------------------------------------
925 * USART
926 * -------------------------------------------------------------------- */
927
928 static struct atmel_uart_data atmel_usart0_data = {
929 .use_dma_tx = 1,
930 .use_dma_rx = 1,
931 };
932 static struct resource atmel_usart0_resource[] = {
933 PBMEM(0xffe00c00),
934 IRQ(6),
935 };
936 DEFINE_DEV_DATA(atmel_usart, 0);
937 DEV_CLK(usart, atmel_usart0, pba, 3);
938
939 static struct atmel_uart_data atmel_usart1_data = {
940 .use_dma_tx = 1,
941 .use_dma_rx = 1,
942 };
943 static struct resource atmel_usart1_resource[] = {
944 PBMEM(0xffe01000),
945 IRQ(7),
946 };
947 DEFINE_DEV_DATA(atmel_usart, 1);
948 DEV_CLK(usart, atmel_usart1, pba, 4);
949
950 static struct atmel_uart_data atmel_usart2_data = {
951 .use_dma_tx = 1,
952 .use_dma_rx = 1,
953 };
954 static struct resource atmel_usart2_resource[] = {
955 PBMEM(0xffe01400),
956 IRQ(8),
957 };
958 DEFINE_DEV_DATA(atmel_usart, 2);
959 DEV_CLK(usart, atmel_usart2, pba, 5);
960
961 static struct atmel_uart_data atmel_usart3_data = {
962 .use_dma_tx = 1,
963 .use_dma_rx = 1,
964 };
965 static struct resource atmel_usart3_resource[] = {
966 PBMEM(0xffe01800),
967 IRQ(9),
968 };
969 DEFINE_DEV_DATA(atmel_usart, 3);
970 DEV_CLK(usart, atmel_usart3, pba, 6);
971
972 static inline void configure_usart0_pins(int flags)
973 {
974 u32 pin_mask = (1 << 8) | (1 << 9); /* RXD & TXD */
975 if (flags & ATMEL_USART_RTS) pin_mask |= (1 << 6);
976 if (flags & ATMEL_USART_CTS) pin_mask |= (1 << 7);
977 if (flags & ATMEL_USART_CLK) pin_mask |= (1 << 10);
978
979 select_peripheral(PIOA, pin_mask, PERIPH_B, AT32_GPIOF_PULLUP);
980 }
981
982 static inline void configure_usart1_pins(int flags)
983 {
984 u32 pin_mask = (1 << 17) | (1 << 18); /* RXD & TXD */
985 if (flags & ATMEL_USART_RTS) pin_mask |= (1 << 19);
986 if (flags & ATMEL_USART_CTS) pin_mask |= (1 << 20);
987 if (flags & ATMEL_USART_CLK) pin_mask |= (1 << 16);
988
989 select_peripheral(PIOA, pin_mask, PERIPH_A, AT32_GPIOF_PULLUP);
990 }
991
992 static inline void configure_usart2_pins(int flags)
993 {
994 u32 pin_mask = (1 << 26) | (1 << 27); /* RXD & TXD */
995 if (flags & ATMEL_USART_RTS) pin_mask |= (1 << 30);
996 if (flags & ATMEL_USART_CTS) pin_mask |= (1 << 29);
997 if (flags & ATMEL_USART_CLK) pin_mask |= (1 << 28);
998
999 select_peripheral(PIOB, pin_mask, PERIPH_B, AT32_GPIOF_PULLUP);
1000 }
1001
1002 static inline void configure_usart3_pins(int flags)
1003 {
1004 u32 pin_mask = (1 << 18) | (1 << 17); /* RXD & TXD */
1005 if (flags & ATMEL_USART_RTS) pin_mask |= (1 << 16);
1006 if (flags & ATMEL_USART_CTS) pin_mask |= (1 << 15);
1007 if (flags & ATMEL_USART_CLK) pin_mask |= (1 << 19);
1008
1009 select_peripheral(PIOB, pin_mask, PERIPH_B, AT32_GPIOF_PULLUP);
1010 }
1011
1012 static struct platform_device *__initdata at32_usarts[4];
1013
1014 void __init at32_map_usart(unsigned int hw_id, unsigned int line, int flags)
1015 {
1016 struct platform_device *pdev;
1017 struct atmel_uart_data *pdata;
1018
1019 switch (hw_id) {
1020 case 0:
1021 pdev = &atmel_usart0_device;
1022 configure_usart0_pins(flags);
1023 break;
1024 case 1:
1025 pdev = &atmel_usart1_device;
1026 configure_usart1_pins(flags);
1027 break;
1028 case 2:
1029 pdev = &atmel_usart2_device;
1030 configure_usart2_pins(flags);
1031 break;
1032 case 3:
1033 pdev = &atmel_usart3_device;
1034 configure_usart3_pins(flags);
1035 break;
1036 default:
1037 return;
1038 }
1039
1040 if (PXSEG(pdev->resource[0].start) == P4SEG) {
1041 /* Addresses in the P4 segment are permanently mapped 1:1 */
1042 struct atmel_uart_data *data = pdev->dev.platform_data;
1043 data->regs = (void __iomem *)pdev->resource[0].start;
1044 }
1045
1046 pdata = pdev->dev.platform_data;
1047 pdata->num = portnr;
1048 at32_usarts[line] = pdev;
1049 }
1050
1051 struct platform_device *__init at32_add_device_usart(unsigned int id)
1052 {
1053 platform_device_register(at32_usarts[id]);
1054 return at32_usarts[id];
1055 }
1056
1057 struct platform_device *atmel_default_console_device;
1058
1059 void __init at32_setup_serial_console(unsigned int usart_id)
1060 {
1061 atmel_default_console_device = at32_usarts[usart_id];
1062 }
1063
1064 /* --------------------------------------------------------------------
1065 * Ethernet
1066 * -------------------------------------------------------------------- */
1067
1068 #ifdef CONFIG_CPU_AT32AP7000
1069 static struct eth_platform_data macb0_data;
1070 static struct resource macb0_resource[] = {
1071 PBMEM(0xfff01800),
1072 IRQ(25),
1073 };
1074 DEFINE_DEV_DATA(macb, 0);
1075 DEV_CLK(hclk, macb0, hsb, 8);
1076 DEV_CLK(pclk, macb0, pbb, 6);
1077
1078 static struct eth_platform_data macb1_data;
1079 static struct resource macb1_resource[] = {
1080 PBMEM(0xfff01c00),
1081 IRQ(26),
1082 };
1083 DEFINE_DEV_DATA(macb, 1);
1084 DEV_CLK(hclk, macb1, hsb, 9);
1085 DEV_CLK(pclk, macb1, pbb, 7);
1086
1087 struct platform_device *__init
1088 at32_add_device_eth(unsigned int id, struct eth_platform_data *data)
1089 {
1090 struct platform_device *pdev;
1091 u32 pin_mask;
1092
1093 switch (id) {
1094 case 0:
1095 pdev = &macb0_device;
1096
1097 pin_mask = (1 << 3); /* TXD0 */
1098 pin_mask |= (1 << 4); /* TXD1 */
1099 pin_mask |= (1 << 7); /* TXEN */
1100 pin_mask |= (1 << 8); /* TXCK */
1101 pin_mask |= (1 << 9); /* RXD0 */
1102 pin_mask |= (1 << 10); /* RXD1 */
1103 pin_mask |= (1 << 13); /* RXER */
1104 pin_mask |= (1 << 15); /* RXDV */
1105 pin_mask |= (1 << 16); /* MDC */
1106 pin_mask |= (1 << 17); /* MDIO */
1107
1108 if (!data->is_rmii) {
1109 pin_mask |= (1 << 0); /* COL */
1110 pin_mask |= (1 << 1); /* CRS */
1111 pin_mask |= (1 << 2); /* TXER */
1112 pin_mask |= (1 << 5); /* TXD2 */
1113 pin_mask |= (1 << 6); /* TXD3 */
1114 pin_mask |= (1 << 11); /* RXD2 */
1115 pin_mask |= (1 << 12); /* RXD3 */
1116 pin_mask |= (1 << 14); /* RXCK */
1117 #ifndef CONFIG_BOARD_MIMC200
1118 pin_mask |= (1 << 18); /* SPD */
1119 #endif
1120 }
1121
1122 select_peripheral(PIOC, pin_mask, PERIPH_A, 0);
1123
1124 break;
1125
1126 case 1:
1127 pdev = &macb1_device;
1128
1129 pin_mask = (1 << 13); /* TXD0 */
1130 pin_mask |= (1 << 14); /* TXD1 */
1131 pin_mask |= (1 << 11); /* TXEN */
1132 pin_mask |= (1 << 12); /* TXCK */
1133 pin_mask |= (1 << 10); /* RXD0 */
1134 pin_mask |= (1 << 6); /* RXD1 */
1135 pin_mask |= (1 << 5); /* RXER */
1136 pin_mask |= (1 << 4); /* RXDV */
1137 pin_mask |= (1 << 3); /* MDC */
1138 pin_mask |= (1 << 2); /* MDIO */
1139
1140 #ifndef CONFIG_BOARD_MIMC200
1141 if (!data->is_rmii)
1142 pin_mask |= (1 << 15); /* SPD */
1143 #endif
1144
1145 select_peripheral(PIOD, pin_mask, PERIPH_B, 0);
1146
1147 if (!data->is_rmii) {
1148 pin_mask = (1 << 19); /* COL */
1149 pin_mask |= (1 << 23); /* CRS */
1150 pin_mask |= (1 << 26); /* TXER */
1151 pin_mask |= (1 << 27); /* TXD2 */
1152 pin_mask |= (1 << 28); /* TXD3 */
1153 pin_mask |= (1 << 29); /* RXD2 */
1154 pin_mask |= (1 << 30); /* RXD3 */
1155 pin_mask |= (1 << 24); /* RXCK */
1156
1157 select_peripheral(PIOC, pin_mask, PERIPH_B, 0);
1158 }
1159 break;
1160
1161 default:
1162 return NULL;
1163 }
1164
1165 memcpy(pdev->dev.platform_data, data, sizeof(struct eth_platform_data));
1166 platform_device_register(pdev);
1167
1168 return pdev;
1169 }
1170 #endif
1171
1172 /* --------------------------------------------------------------------
1173 * SPI
1174 * -------------------------------------------------------------------- */
1175 static struct resource atmel_spi0_resource[] = {
1176 PBMEM(0xffe00000),
1177 IRQ(3),
1178 };
1179 DEFINE_DEV(atmel_spi, 0);
1180 DEV_CLK(spi_clk, atmel_spi0, pba, 0);
1181
1182 static struct resource atmel_spi1_resource[] = {
1183 PBMEM(0xffe00400),
1184 IRQ(4),
1185 };
1186 DEFINE_DEV(atmel_spi, 1);
1187 DEV_CLK(spi_clk, atmel_spi1, pba, 1);
1188
1189 void __init
1190 at32_spi_setup_slaves(unsigned int bus_num, struct spi_board_info *b, unsigned int n)
1191 {
1192 /*
1193 * Manage the chipselects as GPIOs, normally using the same pins
1194 * the SPI controller expects; but boards can use other pins.
1195 */
1196 static u8 __initdata spi_pins[][4] = {
1197 { GPIO_PIN_PA(3), GPIO_PIN_PA(4),
1198 GPIO_PIN_PA(5), GPIO_PIN_PA(20) },
1199 { GPIO_PIN_PB(2), GPIO_PIN_PB(3),
1200 GPIO_PIN_PB(4), GPIO_PIN_PA(27) },
1201 };
1202 unsigned int pin, mode;
1203
1204 /* There are only 2 SPI controllers */
1205 if (bus_num > 1)
1206 return;
1207
1208 for (; n; n--, b++) {
1209 b->bus_num = bus_num;
1210 if (b->chip_select >= 4)
1211 continue;
1212 pin = (unsigned)b->controller_data;
1213 if (!pin) {
1214 pin = spi_pins[bus_num][b->chip_select];
1215 b->controller_data = (void *)pin;
1216 }
1217 mode = AT32_GPIOF_OUTPUT;
1218 if (!(b->mode & SPI_CS_HIGH))
1219 mode |= AT32_GPIOF_HIGH;
1220 at32_select_gpio(pin, mode);
1221 }
1222 }
1223
1224 struct platform_device *__init
1225 at32_add_device_spi(unsigned int id, struct spi_board_info *b, unsigned int n)
1226 {
1227 struct platform_device *pdev;
1228 u32 pin_mask;
1229
1230 switch (id) {
1231 case 0:
1232 pdev = &atmel_spi0_device;
1233 pin_mask = (1 << 1) | (1 << 2); /* MOSI & SCK */
1234
1235 /* pullup MISO so a level is always defined */
1236 select_peripheral(PIOA, (1 << 0), PERIPH_A, AT32_GPIOF_PULLUP);
1237 select_peripheral(PIOA, pin_mask, PERIPH_A, 0);
1238
1239 at32_spi_setup_slaves(0, b, n);
1240 break;
1241
1242 case 1:
1243 pdev = &atmel_spi1_device;
1244 pin_mask = (1 << 1) | (1 << 5); /* MOSI */
1245
1246 /* pullup MISO so a level is always defined */
1247 select_peripheral(PIOB, (1 << 0), PERIPH_B, AT32_GPIOF_PULLUP);
1248 select_peripheral(PIOB, pin_mask, PERIPH_B, 0);
1249
1250 at32_spi_setup_slaves(1, b, n);
1251 break;
1252
1253 default:
1254 return NULL;
1255 }
1256
1257 spi_register_board_info(b, n);
1258 platform_device_register(pdev);
1259 return pdev;
1260 }
1261
1262 /* --------------------------------------------------------------------
1263 * TWI
1264 * -------------------------------------------------------------------- */
1265 static struct resource atmel_twi0_resource[] __initdata = {
1266 PBMEM(0xffe00800),
1267 IRQ(5),
1268 };
1269 static struct clk atmel_twi0_pclk = {
1270 .name = "twi_pclk",
1271 .parent = &pba_clk,
1272 .mode = pba_clk_mode,
1273 .get_rate = pba_clk_get_rate,
1274 .index = 2,
1275 };
1276
1277 struct platform_device *__init at32_add_device_twi(unsigned int id,
1278 struct i2c_board_info *b,
1279 unsigned int n)
1280 {
1281 struct platform_device *pdev;
1282 u32 pin_mask;
1283
1284 if (id != 0)
1285 return NULL;
1286
1287 pdev = platform_device_alloc("atmel_twi", id);
1288 if (!pdev)
1289 return NULL;
1290
1291 if (platform_device_add_resources(pdev, atmel_twi0_resource,
1292 ARRAY_SIZE(atmel_twi0_resource)))
1293 goto err_add_resources;
1294
1295 pin_mask = (1 << 6) | (1 << 7); /* SDA & SDL */
1296
1297 select_peripheral(PIOA, pin_mask, PERIPH_A, 0);
1298
1299 atmel_twi0_pclk.dev = &pdev->dev;
1300
1301 if (b)
1302 i2c_register_board_info(id, b, n);
1303
1304 platform_device_add(pdev);
1305 return pdev;
1306
1307 err_add_resources:
1308 platform_device_put(pdev);
1309 return NULL;
1310 }
1311
1312 /* --------------------------------------------------------------------
1313 * MMC
1314 * -------------------------------------------------------------------- */
1315 static struct resource atmel_mci0_resource[] __initdata = {
1316 PBMEM(0xfff02400),
1317 IRQ(28),
1318 };
1319 static struct clk atmel_mci0_pclk = {
1320 .name = "mci_clk",
1321 .parent = &pbb_clk,
1322 .mode = pbb_clk_mode,
1323 .get_rate = pbb_clk_get_rate,
1324 .index = 9,
1325 };
1326
1327 struct platform_device *__init
1328 at32_add_device_mci(unsigned int id, struct mci_platform_data *data)
1329 {
1330 struct platform_device *pdev;
1331 struct mci_dma_data *slave;
1332 u32 pioa_mask;
1333 u32 piob_mask;
1334
1335 if (id != 0 || !data)
1336 return NULL;
1337
1338 /* Must have at least one usable slot */
1339 if (!data->slot[0].bus_width && !data->slot[1].bus_width)
1340 return NULL;
1341
1342 pdev = platform_device_alloc("atmel_mci", id);
1343 if (!pdev)
1344 goto fail;
1345
1346 if (platform_device_add_resources(pdev, atmel_mci0_resource,
1347 ARRAY_SIZE(atmel_mci0_resource)))
1348 goto fail;
1349
1350 slave = kzalloc(sizeof(struct mci_dma_data), GFP_KERNEL);
1351 if (!slave)
1352 goto fail;
1353
1354 slave->sdata.dma_dev = &dw_dmac0_device.dev;
1355 slave->sdata.reg_width = DW_DMA_SLAVE_WIDTH_32BIT;
1356 slave->sdata.cfg_hi = (DWC_CFGH_SRC_PER(0)
1357 | DWC_CFGH_DST_PER(1));
1358 slave->sdata.cfg_lo &= ~(DWC_CFGL_HS_DST_POL
1359 | DWC_CFGL_HS_SRC_POL);
1360
1361 data->dma_slave = slave;
1362
1363 if (platform_device_add_data(pdev, data,
1364 sizeof(struct mci_platform_data)))
1365 goto fail_free;
1366
1367 /* CLK line is common to both slots */
1368 pioa_mask = 1 << 10;
1369
1370 switch (data->slot[0].bus_width) {
1371 case 4:
1372 pioa_mask |= 1 << 13; /* DATA1 */
1373 pioa_mask |= 1 << 14; /* DATA2 */
1374 pioa_mask |= 1 << 15; /* DATA3 */
1375 /* fall through */
1376 case 1:
1377 pioa_mask |= 1 << 11; /* CMD */
1378 pioa_mask |= 1 << 12; /* DATA0 */
1379
1380 if (gpio_is_valid(data->slot[0].detect_pin))
1381 at32_select_gpio(data->slot[0].detect_pin, 0);
1382 if (gpio_is_valid(data->slot[0].wp_pin))
1383 at32_select_gpio(data->slot[0].wp_pin, 0);
1384 break;
1385 case 0:
1386 /* Slot is unused */
1387 break;
1388 default:
1389 goto fail_free;
1390 }
1391
1392 select_peripheral(PIOA, pioa_mask, PERIPH_A, 0);
1393 piob_mask = 0;
1394
1395 switch (data->slot[1].bus_width) {
1396 case 4:
1397 piob_mask |= 1 << 8; /* DATA1 */
1398 piob_mask |= 1 << 9; /* DATA2 */
1399 piob_mask |= 1 << 10; /* DATA3 */
1400 /* fall through */
1401 case 1:
1402 piob_mask |= 1 << 6; /* CMD */
1403 piob_mask |= 1 << 7; /* DATA0 */
1404 select_peripheral(PIOB, piob_mask, PERIPH_B, 0);
1405
1406 if (gpio_is_valid(data->slot[1].detect_pin))
1407 at32_select_gpio(data->slot[1].detect_pin, 0);
1408 if (gpio_is_valid(data->slot[1].wp_pin))
1409 at32_select_gpio(data->slot[1].wp_pin, 0);
1410 break;
1411 case 0:
1412 /* Slot is unused */
1413 break;
1414 default:
1415 if (!data->slot[0].bus_width)
1416 goto fail_free;
1417
1418 data->slot[1].bus_width = 0;
1419 break;
1420 }
1421
1422 atmel_mci0_pclk.dev = &pdev->dev;
1423
1424 platform_device_add(pdev);
1425 return pdev;
1426
1427 fail_free:
1428 kfree(slave);
1429 fail:
1430 data->dma_slave = NULL;
1431 platform_device_put(pdev);
1432 return NULL;
1433 }
1434
1435 /* --------------------------------------------------------------------
1436 * LCDC
1437 * -------------------------------------------------------------------- */
1438 #if defined(CONFIG_CPU_AT32AP7000) || defined(CONFIG_CPU_AT32AP7002)
1439 static struct atmel_lcdfb_info atmel_lcdfb0_data;
1440 static struct resource atmel_lcdfb0_resource[] = {
1441 {
1442 .start = 0xff000000,
1443 .end = 0xff000fff,
1444 .flags = IORESOURCE_MEM,
1445 },
1446 IRQ(1),
1447 {
1448 /* Placeholder for pre-allocated fb memory */
1449 .start = 0x00000000,
1450 .end = 0x00000000,
1451 .flags = 0,
1452 },
1453 };
1454 DEFINE_DEV_DATA(atmel_lcdfb, 0);
1455 DEV_CLK(hck1, atmel_lcdfb0, hsb, 7);
1456 static struct clk atmel_lcdfb0_pixclk = {
1457 .name = "lcdc_clk",
1458 .dev = &atmel_lcdfb0_device.dev,
1459 .mode = genclk_mode,
1460 .get_rate = genclk_get_rate,
1461 .set_rate = genclk_set_rate,
1462 .set_parent = genclk_set_parent,
1463 .index = 7,
1464 };
1465
1466 struct platform_device *__init
1467 at32_add_device_lcdc(unsigned int id, struct atmel_lcdfb_info *data,
1468 unsigned long fbmem_start, unsigned long fbmem_len,
1469 u64 pin_mask)
1470 {
1471 struct platform_device *pdev;
1472 struct atmel_lcdfb_info *info;
1473 struct fb_monspecs *monspecs;
1474 struct fb_videomode *modedb;
1475 unsigned int modedb_size;
1476 u32 portc_mask, portd_mask, porte_mask;
1477
1478 /*
1479 * Do a deep copy of the fb data, monspecs and modedb. Make
1480 * sure all allocations are done before setting up the
1481 * portmux.
1482 */
1483 monspecs = kmemdup(data->default_monspecs,
1484 sizeof(struct fb_monspecs), GFP_KERNEL);
1485 if (!monspecs)
1486 return NULL;
1487
1488 modedb_size = sizeof(struct fb_videomode) * monspecs->modedb_len;
1489 modedb = kmemdup(monspecs->modedb, modedb_size, GFP_KERNEL);
1490 if (!modedb)
1491 goto err_dup_modedb;
1492 monspecs->modedb = modedb;
1493
1494 switch (id) {
1495 case 0:
1496 pdev = &atmel_lcdfb0_device;
1497
1498 if (pin_mask == 0ULL)
1499 /* Default to "full" lcdc control signals and 24bit */
1500 pin_mask = ATMEL_LCDC_PRI_24BIT | ATMEL_LCDC_PRI_CONTROL;
1501
1502 /* LCDC on port C */
1503 portc_mask = pin_mask & 0xfff80000;
1504 select_peripheral(PIOC, portc_mask, PERIPH_A, 0);
1505
1506 /* LCDC on port D */
1507 portd_mask = pin_mask & 0x0003ffff;
1508 select_peripheral(PIOD, portd_mask, PERIPH_A, 0);
1509
1510 /* LCDC on port E */
1511 porte_mask = (pin_mask >> 32) & 0x0007ffff;
1512 select_peripheral(PIOE, porte_mask, PERIPH_B, 0);
1513
1514 clk_set_parent(&atmel_lcdfb0_pixclk, &pll0);
1515 clk_set_rate(&atmel_lcdfb0_pixclk, clk_get_rate(&pll0));
1516 break;
1517
1518 default:
1519 goto err_invalid_id;
1520 }
1521
1522 if (fbmem_len) {
1523 pdev->resource[2].start = fbmem_start;
1524 pdev->resource[2].end = fbmem_start + fbmem_len - 1;
1525 pdev->resource[2].flags = IORESOURCE_MEM;
1526 }
1527
1528 info = pdev->dev.platform_data;
1529 memcpy(info, data, sizeof(struct atmel_lcdfb_info));
1530 info->default_monspecs = monspecs;
1531
1532 platform_device_register(pdev);
1533 return pdev;
1534
1535 err_invalid_id:
1536 kfree(modedb);
1537 err_dup_modedb:
1538 kfree(monspecs);
1539 return NULL;
1540 }
1541 #endif
1542
1543 /* --------------------------------------------------------------------
1544 * PWM
1545 * -------------------------------------------------------------------- */
1546 static struct resource atmel_pwm0_resource[] __initdata = {
1547 PBMEM(0xfff01400),
1548 IRQ(24),
1549 };
1550 static struct clk atmel_pwm0_mck = {
1551 .name = "pwm_clk",
1552 .parent = &pbb_clk,
1553 .mode = pbb_clk_mode,
1554 .get_rate = pbb_clk_get_rate,
1555 .index = 5,
1556 };
1557
1558 struct platform_device *__init at32_add_device_pwm(u32 mask)
1559 {
1560 struct platform_device *pdev;
1561 u32 pin_mask;
1562
1563 if (!mask)
1564 return NULL;
1565
1566 pdev = platform_device_alloc("atmel_pwm", 0);
1567 if (!pdev)
1568 return NULL;
1569
1570 if (platform_device_add_resources(pdev, atmel_pwm0_resource,
1571 ARRAY_SIZE(atmel_pwm0_resource)))
1572 goto out_free_pdev;
1573
1574 if (platform_device_add_data(pdev, &mask, sizeof(mask)))
1575 goto out_free_pdev;
1576
1577 pin_mask = 0;
1578 if (mask & (1 << 0))
1579 pin_mask |= (1 << 28);
1580 if (mask & (1 << 1))
1581 pin_mask |= (1 << 29);
1582 if (pin_mask > 0)
1583 select_peripheral(PIOA, pin_mask, PERIPH_A, 0);
1584
1585 pin_mask = 0;
1586 if (mask & (1 << 2))
1587 pin_mask |= (1 << 21);
1588 if (mask & (1 << 3))
1589 pin_mask |= (1 << 22);
1590 if (pin_mask > 0)
1591 select_peripheral(PIOA, pin_mask, PERIPH_B, 0);
1592
1593 atmel_pwm0_mck.dev = &pdev->dev;
1594
1595 platform_device_add(pdev);
1596
1597 return pdev;
1598
1599 out_free_pdev:
1600 platform_device_put(pdev);
1601 return NULL;
1602 }
1603
1604 /* --------------------------------------------------------------------
1605 * SSC
1606 * -------------------------------------------------------------------- */
1607 static struct resource ssc0_resource[] = {
1608 PBMEM(0xffe01c00),
1609 IRQ(10),
1610 };
1611 DEFINE_DEV(ssc, 0);
1612 DEV_CLK(pclk, ssc0, pba, 7);
1613
1614 static struct resource ssc1_resource[] = {
1615 PBMEM(0xffe02000),
1616 IRQ(11),
1617 };
1618 DEFINE_DEV(ssc, 1);
1619 DEV_CLK(pclk, ssc1, pba, 8);
1620
1621 static struct resource ssc2_resource[] = {
1622 PBMEM(0xffe02400),
1623 IRQ(12),
1624 };
1625 DEFINE_DEV(ssc, 2);
1626 DEV_CLK(pclk, ssc2, pba, 9);
1627
1628 struct platform_device *__init
1629 at32_add_device_ssc(unsigned int id, unsigned int flags)
1630 {
1631 struct platform_device *pdev;
1632 u32 pin_mask = 0;
1633
1634 switch (id) {
1635 case 0:
1636 pdev = &ssc0_device;
1637 if (flags & ATMEL_SSC_RF)
1638 pin_mask |= (1 << 21); /* RF */
1639 if (flags & ATMEL_SSC_RK)
1640 pin_mask |= (1 << 22); /* RK */
1641 if (flags & ATMEL_SSC_TK)
1642 pin_mask |= (1 << 23); /* TK */
1643 if (flags & ATMEL_SSC_TF)
1644 pin_mask |= (1 << 24); /* TF */
1645 if (flags & ATMEL_SSC_TD)
1646 pin_mask |= (1 << 25); /* TD */
1647 if (flags & ATMEL_SSC_RD)
1648 pin_mask |= (1 << 26); /* RD */
1649
1650 if (pin_mask > 0)
1651 select_peripheral(PIOA, pin_mask, PERIPH_A, 0);
1652
1653 break;
1654 case 1:
1655 pdev = &ssc1_device;
1656 if (flags & ATMEL_SSC_RF)
1657 pin_mask |= (1 << 0); /* RF */
1658 if (flags & ATMEL_SSC_RK)
1659 pin_mask |= (1 << 1); /* RK */
1660 if (flags & ATMEL_SSC_TK)
1661 pin_mask |= (1 << 2); /* TK */
1662 if (flags & ATMEL_SSC_TF)
1663 pin_mask |= (1 << 3); /* TF */
1664 if (flags & ATMEL_SSC_TD)
1665 pin_mask |= (1 << 4); /* TD */
1666 if (flags & ATMEL_SSC_RD)
1667 pin_mask |= (1 << 5); /* RD */
1668
1669 if (pin_mask > 0)
1670 select_peripheral(PIOA, pin_mask, PERIPH_B, 0);
1671
1672 break;
1673 case 2:
1674 pdev = &ssc2_device;
1675 if (flags & ATMEL_SSC_TD)
1676 pin_mask |= (1 << 13); /* TD */
1677 if (flags & ATMEL_SSC_RD)
1678 pin_mask |= (1 << 14); /* RD */
1679 if (flags & ATMEL_SSC_TK)
1680 pin_mask |= (1 << 15); /* TK */
1681 if (flags & ATMEL_SSC_TF)
1682 pin_mask |= (1 << 16); /* TF */
1683 if (flags & ATMEL_SSC_RF)
1684 pin_mask |= (1 << 17); /* RF */
1685 if (flags & ATMEL_SSC_RK)
1686 pin_mask |= (1 << 18); /* RK */
1687
1688 if (pin_mask > 0)
1689 select_peripheral(PIOB, pin_mask, PERIPH_A, 0);
1690
1691 break;
1692 default:
1693 return NULL;
1694 }
1695
1696 platform_device_register(pdev);
1697 return pdev;
1698 }
1699
1700 /* --------------------------------------------------------------------
1701 * USB Device Controller
1702 * -------------------------------------------------------------------- */
1703 static struct resource usba0_resource[] __initdata = {
1704 {
1705 .start = 0xff300000,
1706 .end = 0xff3fffff,
1707 .flags = IORESOURCE_MEM,
1708 }, {
1709 .start = 0xfff03000,
1710 .end = 0xfff033ff,
1711 .flags = IORESOURCE_MEM,
1712 },
1713 IRQ(31),
1714 };
1715 static struct clk usba0_pclk = {
1716 .name = "pclk",
1717 .parent = &pbb_clk,
1718 .mode = pbb_clk_mode,
1719 .get_rate = pbb_clk_get_rate,
1720 .index = 12,
1721 };
1722 static struct clk usba0_hclk = {
1723 .name = "hclk",
1724 .parent = &hsb_clk,
1725 .mode = hsb_clk_mode,
1726 .get_rate = hsb_clk_get_rate,
1727 .index = 6,
1728 };
1729
1730 #define EP(nam, idx, maxpkt, maxbk, dma, isoc) \
1731 [idx] = { \
1732 .name = nam, \
1733 .index = idx, \
1734 .fifo_size = maxpkt, \
1735 .nr_banks = maxbk, \
1736 .can_dma = dma, \
1737 .can_isoc = isoc, \
1738 }
1739
1740 static struct usba_ep_data at32_usba_ep[] __initdata = {
1741 EP("ep0", 0, 64, 1, 0, 0),
1742 EP("ep1", 1, 512, 2, 1, 1),
1743 EP("ep2", 2, 512, 2, 1, 1),
1744 EP("ep3-int", 3, 64, 3, 1, 0),
1745 EP("ep4-int", 4, 64, 3, 1, 0),
1746 EP("ep5", 5, 1024, 3, 1, 1),
1747 EP("ep6", 6, 1024, 3, 1, 1),
1748 };
1749
1750 #undef EP
1751
1752 struct platform_device *__init
1753 at32_add_device_usba(unsigned int id, struct usba_platform_data *data)
1754 {
1755 /*
1756 * pdata doesn't have room for any endpoints, so we need to
1757 * append room for the ones we need right after it.
1758 */
1759 struct {
1760 struct usba_platform_data pdata;
1761 struct usba_ep_data ep[7];
1762 } usba_data;
1763 struct platform_device *pdev;
1764
1765 if (id != 0)
1766 return NULL;
1767
1768 pdev = platform_device_alloc("atmel_usba_udc", 0);
1769 if (!pdev)
1770 return NULL;
1771
1772 if (platform_device_add_resources(pdev, usba0_resource,
1773 ARRAY_SIZE(usba0_resource)))
1774 goto out_free_pdev;
1775
1776 if (data) {
1777 usba_data.pdata.vbus_pin = data->vbus_pin;
1778 usba_data.pdata.vbus_pin_inverted = data->vbus_pin_inverted;
1779 } else {
1780 usba_data.pdata.vbus_pin = -EINVAL;
1781 usba_data.pdata.vbus_pin_inverted = -EINVAL;
1782 }
1783
1784 data = &usba_data.pdata;
1785 data->num_ep = ARRAY_SIZE(at32_usba_ep);
1786 memcpy(data->ep, at32_usba_ep, sizeof(at32_usba_ep));
1787
1788 if (platform_device_add_data(pdev, data, sizeof(usba_data)))
1789 goto out_free_pdev;
1790
1791 if (gpio_is_valid(data->vbus_pin))
1792 at32_select_gpio(data->vbus_pin, 0);
1793
1794 usba0_pclk.dev = &pdev->dev;
1795 usba0_hclk.dev = &pdev->dev;
1796
1797 platform_device_add(pdev);
1798
1799 return pdev;
1800
1801 out_free_pdev:
1802 platform_device_put(pdev);
1803 return NULL;
1804 }
1805
1806 /* --------------------------------------------------------------------
1807 * IDE / CompactFlash
1808 * -------------------------------------------------------------------- */
1809 #if defined(CONFIG_CPU_AT32AP7000) || defined(CONFIG_CPU_AT32AP7001)
1810 static struct resource at32_smc_cs4_resource[] __initdata = {
1811 {
1812 .start = 0x04000000,
1813 .end = 0x07ffffff,
1814 .flags = IORESOURCE_MEM,
1815 },
1816 IRQ(~0UL), /* Magic IRQ will be overridden */
1817 };
1818 static struct resource at32_smc_cs5_resource[] __initdata = {
1819 {
1820 .start = 0x20000000,
1821 .end = 0x23ffffff,
1822 .flags = IORESOURCE_MEM,
1823 },
1824 IRQ(~0UL), /* Magic IRQ will be overridden */
1825 };
1826
1827 static int __init at32_init_ide_or_cf(struct platform_device *pdev,
1828 unsigned int cs, unsigned int extint)
1829 {
1830 static unsigned int extint_pin_map[4] __initdata = {
1831 (1 << 25),
1832 (1 << 26),
1833 (1 << 27),
1834 (1 << 28),
1835 };
1836 static bool common_pins_initialized __initdata = false;
1837 unsigned int extint_pin;
1838 int ret;
1839 u32 pin_mask;
1840
1841 if (extint >= ARRAY_SIZE(extint_pin_map))
1842 return -EINVAL;
1843 extint_pin = extint_pin_map[extint];
1844
1845 switch (cs) {
1846 case 4:
1847 ret = platform_device_add_resources(pdev,
1848 at32_smc_cs4_resource,
1849 ARRAY_SIZE(at32_smc_cs4_resource));
1850 if (ret)
1851 return ret;
1852
1853 /* NCS4 -> OE_N */
1854 select_peripheral(PIOE, (1 << 21), PERIPH_A, 0);
1855 hmatrix_sfr_set_bits(HMATRIX_SLAVE_EBI, HMATRIX_EBI_CF0_ENABLE);
1856 break;
1857 case 5:
1858 ret = platform_device_add_resources(pdev,
1859 at32_smc_cs5_resource,
1860 ARRAY_SIZE(at32_smc_cs5_resource));
1861 if (ret)
1862 return ret;
1863
1864 /* NCS5 -> OE_N */
1865 select_peripheral(PIOE, (1 << 22), PERIPH_A, 0);
1866 hmatrix_sfr_set_bits(HMATRIX_SLAVE_EBI, HMATRIX_EBI_CF1_ENABLE);
1867 break;
1868 default:
1869 return -EINVAL;
1870 }
1871
1872 if (!common_pins_initialized) {
1873 pin_mask = (1 << 19); /* CFCE1 -> CS0_N */
1874 pin_mask |= (1 << 20); /* CFCE2 -> CS1_N */
1875 pin_mask |= (1 << 23); /* CFRNW -> DIR */
1876 pin_mask |= (1 << 24); /* NWAIT <- IORDY */
1877
1878 select_peripheral(PIOE, pin_mask, PERIPH_A, 0);
1879
1880 common_pins_initialized = true;
1881 }
1882
1883 select_peripheral(PIOB, extint_pin, PERIPH_A, AT32_GPIOF_DEGLITCH);
1884
1885 pdev->resource[1].start = EIM_IRQ_BASE + extint;
1886 pdev->resource[1].end = pdev->resource[1].start;
1887
1888 return 0;
1889 }
1890
1891 struct platform_device *__init
1892 at32_add_device_ide(unsigned int id, unsigned int extint,
1893 struct ide_platform_data *data)
1894 {
1895 struct platform_device *pdev;
1896
1897 pdev = platform_device_alloc("at32_ide", id);
1898 if (!pdev)
1899 goto fail;
1900
1901 if (platform_device_add_data(pdev, data,
1902 sizeof(struct ide_platform_data)))
1903 goto fail;
1904
1905 if (at32_init_ide_or_cf(pdev, data->cs, extint))
1906 goto fail;
1907
1908 platform_device_add(pdev);
1909 return pdev;
1910
1911 fail:
1912 platform_device_put(pdev);
1913 return NULL;
1914 }
1915
1916 struct platform_device *__init
1917 at32_add_device_cf(unsigned int id, unsigned int extint,
1918 struct cf_platform_data *data)
1919 {
1920 struct platform_device *pdev;
1921
1922 pdev = platform_device_alloc("at32_cf", id);
1923 if (!pdev)
1924 goto fail;
1925
1926 if (platform_device_add_data(pdev, data,
1927 sizeof(struct cf_platform_data)))
1928 goto fail;
1929
1930 if (at32_init_ide_or_cf(pdev, data->cs, extint))
1931 goto fail;
1932
1933 if (gpio_is_valid(data->detect_pin))
1934 at32_select_gpio(data->detect_pin, AT32_GPIOF_DEGLITCH);
1935 if (gpio_is_valid(data->reset_pin))
1936 at32_select_gpio(data->reset_pin, 0);
1937 if (gpio_is_valid(data->vcc_pin))
1938 at32_select_gpio(data->vcc_pin, 0);
1939 /* READY is used as extint, so we can't select it as gpio */
1940
1941 platform_device_add(pdev);
1942 return pdev;
1943
1944 fail:
1945 platform_device_put(pdev);
1946 return NULL;
1947 }
1948 #endif
1949
1950 /* --------------------------------------------------------------------
1951 * NAND Flash / SmartMedia
1952 * -------------------------------------------------------------------- */
1953 static struct resource smc_cs3_resource[] __initdata = {
1954 {
1955 .start = 0x0c000000,
1956 .end = 0x0fffffff,
1957 .flags = IORESOURCE_MEM,
1958 }, {
1959 .start = 0xfff03c00,
1960 .end = 0xfff03fff,
1961 .flags = IORESOURCE_MEM,
1962 },
1963 };
1964
1965 struct platform_device *__init
1966 at32_add_device_nand(unsigned int id, struct atmel_nand_data *data)
1967 {
1968 struct platform_device *pdev;
1969
1970 if (id != 0 || !data)
1971 return NULL;
1972
1973 pdev = platform_device_alloc("atmel_nand", id);
1974 if (!pdev)
1975 goto fail;
1976
1977 if (platform_device_add_resources(pdev, smc_cs3_resource,
1978 ARRAY_SIZE(smc_cs3_resource)))
1979 goto fail;
1980
1981 if (platform_device_add_data(pdev, data,
1982 sizeof(struct atmel_nand_data)))
1983 goto fail;
1984
1985 hmatrix_sfr_set_bits(HMATRIX_SLAVE_EBI, HMATRIX_EBI_NAND_ENABLE);
1986 if (data->enable_pin)
1987 at32_select_gpio(data->enable_pin,
1988 AT32_GPIOF_OUTPUT | AT32_GPIOF_HIGH);
1989 if (data->rdy_pin)
1990 at32_select_gpio(data->rdy_pin, 0);
1991 if (data->det_pin)
1992 at32_select_gpio(data->det_pin, 0);
1993
1994 platform_device_add(pdev);
1995 return pdev;
1996
1997 fail:
1998 platform_device_put(pdev);
1999 return NULL;
2000 }
2001
2002 /* --------------------------------------------------------------------
2003 * AC97C
2004 * -------------------------------------------------------------------- */
2005 static struct resource atmel_ac97c0_resource[] __initdata = {
2006 PBMEM(0xfff02800),
2007 IRQ(29),
2008 };
2009 static struct clk atmel_ac97c0_pclk = {
2010 .name = "pclk",
2011 .parent = &pbb_clk,
2012 .mode = pbb_clk_mode,
2013 .get_rate = pbb_clk_get_rate,
2014 .index = 10,
2015 };
2016
2017 struct platform_device *__init
2018 at32_add_device_ac97c(unsigned int id, struct ac97c_platform_data *data,
2019 unsigned int flags)
2020 {
2021 struct platform_device *pdev;
2022 struct dw_dma_slave *rx_dws;
2023 struct dw_dma_slave *tx_dws;
2024 struct ac97c_platform_data _data;
2025 u32 pin_mask;
2026
2027 if (id != 0)
2028 return NULL;
2029
2030 pdev = platform_device_alloc("atmel_ac97c", id);
2031 if (!pdev)
2032 return NULL;
2033
2034 if (platform_device_add_resources(pdev, atmel_ac97c0_resource,
2035 ARRAY_SIZE(atmel_ac97c0_resource)))
2036 goto out_free_resources;
2037
2038 if (!data) {
2039 data = &_data;
2040 memset(data, 0, sizeof(struct ac97c_platform_data));
2041 data->reset_pin = -ENODEV;
2042 }
2043
2044 rx_dws = &data->rx_dws;
2045 tx_dws = &data->tx_dws;
2046
2047 /* Check if DMA slave interface for capture should be configured. */
2048 if (flags & AC97C_CAPTURE) {
2049 rx_dws->dma_dev = &dw_dmac0_device.dev;
2050 rx_dws->reg_width = DW_DMA_SLAVE_WIDTH_16BIT;
2051 rx_dws->cfg_hi = DWC_CFGH_SRC_PER(3);
2052 rx_dws->cfg_lo &= ~(DWC_CFGL_HS_DST_POL | DWC_CFGL_HS_SRC_POL);
2053 rx_dws->src_master = 0;
2054 rx_dws->dst_master = 1;
2055 rx_dws->src_msize = DW_DMA_MSIZE_1;
2056 rx_dws->dst_msize = DW_DMA_MSIZE_1;
2057 rx_dws->fc = DW_DMA_FC_D_P2M;
2058 }
2059
2060 /* Check if DMA slave interface for playback should be configured. */
2061 if (flags & AC97C_PLAYBACK) {
2062 tx_dws->dma_dev = &dw_dmac0_device.dev;
2063 tx_dws->reg_width = DW_DMA_SLAVE_WIDTH_16BIT;
2064 tx_dws->cfg_hi = DWC_CFGH_DST_PER(4);
2065 tx_dws->cfg_lo &= ~(DWC_CFGL_HS_DST_POL | DWC_CFGL_HS_SRC_POL);
2066 tx_dws->src_master = 0;
2067 tx_dws->dst_master = 1;
2068 tx_dws->src_msize = DW_DMA_MSIZE_1;
2069 tx_dws->dst_msize = DW_DMA_MSIZE_1;
2070 tx_dws->fc = DW_DMA_FC_D_M2P;
2071 }
2072
2073 if (platform_device_add_data(pdev, data,
2074 sizeof(struct ac97c_platform_data)))
2075 goto out_free_resources;
2076
2077 /* SDO | SYNC | SCLK | SDI */
2078 pin_mask = (1 << 20) | (1 << 21) | (1 << 22) | (1 << 23);
2079
2080 select_peripheral(PIOB, pin_mask, PERIPH_B, 0);
2081
2082 if (gpio_is_valid(data->reset_pin))
2083 at32_select_gpio(data->reset_pin, AT32_GPIOF_OUTPUT
2084 | AT32_GPIOF_HIGH);
2085
2086 atmel_ac97c0_pclk.dev = &pdev->dev;
2087
2088 platform_device_add(pdev);
2089 return pdev;
2090
2091 out_free_resources:
2092 platform_device_put(pdev);
2093 return NULL;
2094 }
2095
2096 /* --------------------------------------------------------------------
2097 * ABDAC
2098 * -------------------------------------------------------------------- */
2099 static struct resource abdac0_resource[] __initdata = {
2100 PBMEM(0xfff02000),
2101 IRQ(27),
2102 };
2103 static struct clk abdac0_pclk = {
2104 .name = "pclk",
2105 .parent = &pbb_clk,
2106 .mode = pbb_clk_mode,
2107 .get_rate = pbb_clk_get_rate,
2108 .index = 8,
2109 };
2110 static struct clk abdac0_sample_clk = {
2111 .name = "sample_clk",
2112 .mode = genclk_mode,
2113 .get_rate = genclk_get_rate,
2114 .set_rate = genclk_set_rate,
2115 .set_parent = genclk_set_parent,
2116 .index = 6,
2117 };
2118
2119 struct platform_device *__init
2120 at32_add_device_abdac(unsigned int id, struct atmel_abdac_pdata *data)
2121 {
2122 struct platform_device *pdev;
2123 struct dw_dma_slave *dws;
2124 u32 pin_mask;
2125
2126 if (id != 0 || !data)
2127 return NULL;
2128
2129 pdev = platform_device_alloc("atmel_abdac", id);
2130 if (!pdev)
2131 return NULL;
2132
2133 if (platform_device_add_resources(pdev, abdac0_resource,
2134 ARRAY_SIZE(abdac0_resource)))
2135 goto out_free_resources;
2136
2137 dws = &data->dws;
2138
2139 dws->dma_dev = &dw_dmac0_device.dev;
2140 dws->reg_width = DW_DMA_SLAVE_WIDTH_32BIT;
2141 dws->cfg_hi = DWC_CFGH_DST_PER(2);
2142 dws->cfg_lo &= ~(DWC_CFGL_HS_DST_POL | DWC_CFGL_HS_SRC_POL);
2143 dws->src_master = 0;
2144 dws->dst_master = 1;
2145 dws->src_msize = DW_DMA_MSIZE_1;
2146 dws->dst_msize = DW_DMA_MSIZE_1;
2147 dws->fc = DW_DMA_FC_D_M2P;
2148
2149 if (platform_device_add_data(pdev, data,
2150 sizeof(struct atmel_abdac_pdata)))
2151 goto out_free_resources;
2152
2153 pin_mask = (1 << 20) | (1 << 22); /* DATA1 & DATAN1 */
2154 pin_mask |= (1 << 21) | (1 << 23); /* DATA0 & DATAN0 */
2155
2156 select_peripheral(PIOB, pin_mask, PERIPH_A, 0);
2157
2158 abdac0_pclk.dev = &pdev->dev;
2159 abdac0_sample_clk.dev = &pdev->dev;
2160
2161 platform_device_add(pdev);
2162 return pdev;
2163
2164 out_free_resources:
2165 platform_device_put(pdev);
2166 return NULL;
2167 }
2168
2169 /* --------------------------------------------------------------------
2170 * GCLK
2171 * -------------------------------------------------------------------- */
2172 static struct clk gclk0 = {
2173 .name = "gclk0",
2174 .mode = genclk_mode,
2175 .get_rate = genclk_get_rate,
2176 .set_rate = genclk_set_rate,
2177 .set_parent = genclk_set_parent,
2178 .index = 0,
2179 };
2180 static struct clk gclk1 = {
2181 .name = "gclk1",
2182 .mode = genclk_mode,
2183 .get_rate = genclk_get_rate,
2184 .set_rate = genclk_set_rate,
2185 .set_parent = genclk_set_parent,
2186 .index = 1,
2187 };
2188 static struct clk gclk2 = {
2189 .name = "gclk2",
2190 .mode = genclk_mode,
2191 .get_rate = genclk_get_rate,
2192 .set_rate = genclk_set_rate,
2193 .set_parent = genclk_set_parent,
2194 .index = 2,
2195 };
2196 static struct clk gclk3 = {
2197 .name = "gclk3",
2198 .mode = genclk_mode,
2199 .get_rate = genclk_get_rate,
2200 .set_rate = genclk_set_rate,
2201 .set_parent = genclk_set_parent,
2202 .index = 3,
2203 };
2204 static struct clk gclk4 = {
2205 .name = "gclk4",
2206 .mode = genclk_mode,
2207 .get_rate = genclk_get_rate,
2208 .set_rate = genclk_set_rate,
2209 .set_parent = genclk_set_parent,
2210 .index = 4,
2211 };
2212
2213 static __initdata struct clk *init_clocks[] = {
2214 &osc32k,
2215 &osc0,
2216 &osc1,
2217 &pll0,
2218 &pll1,
2219 &cpu_clk,
2220 &hsb_clk,
2221 &pba_clk,
2222 &pbb_clk,
2223 &at32_pm_pclk,
2224 &at32_intc0_pclk,
2225 &at32_hmatrix_clk,
2226 &ebi_clk,
2227 &hramc_clk,
2228 &sdramc_clk,
2229 &smc0_pclk,
2230 &smc0_mck,
2231 &pdc_hclk,
2232 &pdc_pclk,
2233 &dw_dmac0_hclk,
2234 &pico_clk,
2235 &pio0_mck,
2236 &pio1_mck,
2237 &pio2_mck,
2238 &pio3_mck,
2239 &pio4_mck,
2240 &at32_tcb0_t0_clk,
2241 &at32_tcb1_t0_clk,
2242 &atmel_psif0_pclk,
2243 &atmel_psif1_pclk,
2244 &atmel_usart0_usart,
2245 &atmel_usart1_usart,
2246 &atmel_usart2_usart,
2247 &atmel_usart3_usart,
2248 &atmel_pwm0_mck,
2249 #if defined(CONFIG_CPU_AT32AP7000)
2250 &macb0_hclk,
2251 &macb0_pclk,
2252 &macb1_hclk,
2253 &macb1_pclk,
2254 #endif
2255 &atmel_spi0_spi_clk,
2256 &atmel_spi1_spi_clk,
2257 &atmel_twi0_pclk,
2258 &atmel_mci0_pclk,
2259 #if defined(CONFIG_CPU_AT32AP7000) || defined(CONFIG_CPU_AT32AP7002)
2260 &atmel_lcdfb0_hck1,
2261 &atmel_lcdfb0_pixclk,
2262 #endif
2263 &ssc0_pclk,
2264 &ssc1_pclk,
2265 &ssc2_pclk,
2266 &usba0_hclk,
2267 &usba0_pclk,
2268 &atmel_ac97c0_pclk,
2269 &abdac0_pclk,
2270 &abdac0_sample_clk,
2271 &gclk0,
2272 &gclk1,
2273 &gclk2,
2274 &gclk3,
2275 &gclk4,
2276 };
2277
2278 void __init setup_platform(void)
2279 {
2280 u32 cpu_mask = 0, hsb_mask = 0, pba_mask = 0, pbb_mask = 0;
2281 int i;
2282
2283 if (pm_readl(MCCTRL) & PM_BIT(PLLSEL)) {
2284 main_clock = &pll0;
2285 cpu_clk.parent = &pll0;
2286 } else {
2287 main_clock = &osc0;
2288 cpu_clk.parent = &osc0;
2289 }
2290
2291 if (pm_readl(PLL0) & PM_BIT(PLLOSC))
2292 pll0.parent = &osc1;
2293 if (pm_readl(PLL1) & PM_BIT(PLLOSC))
2294 pll1.parent = &osc1;
2295
2296 genclk_init_parent(&gclk0);
2297 genclk_init_parent(&gclk1);
2298 genclk_init_parent(&gclk2);
2299 genclk_init_parent(&gclk3);
2300 genclk_init_parent(&gclk4);
2301 #if defined(CONFIG_CPU_AT32AP7000) || defined(CONFIG_CPU_AT32AP7002)
2302 genclk_init_parent(&atmel_lcdfb0_pixclk);
2303 #endif
2304 genclk_init_parent(&abdac0_sample_clk);
2305
2306 /*
2307 * Build initial dynamic clock list by registering all clocks
2308 * from the array.
2309 * At the same time, turn on all clocks that have at least one
2310 * user already, and turn off everything else. We only do this
2311 * for module clocks, and even though it isn't particularly
2312 * pretty to check the address of the mode function, it should
2313 * do the trick...
2314 */
2315 for (i = 0; i < ARRAY_SIZE(init_clocks); i++) {
2316 struct clk *clk = init_clocks[i];
2317
2318 /* first, register clock */
2319 at32_clk_register(clk);
2320
2321 if (clk->users == 0)
2322 continue;
2323
2324 if (clk->mode == &cpu_clk_mode)
2325 cpu_mask |= 1 << clk->index;
2326 else if (clk->mode == &hsb_clk_mode)
2327 hsb_mask |= 1 << clk->index;
2328 else if (clk->mode == &pba_clk_mode)
2329 pba_mask |= 1 << clk->index;
2330 else if (clk->mode == &pbb_clk_mode)
2331 pbb_mask |= 1 << clk->index;
2332 }
2333
2334 pm_writel(CPU_MASK, cpu_mask);
2335 pm_writel(HSB_MASK, hsb_mask);
2336 pm_writel(PBA_MASK, pba_mask);
2337 pm_writel(PBB_MASK, pbb_mask);
2338
2339 /* Initialize the port muxes */
2340 at32_init_pio(&pio0_device);
2341 at32_init_pio(&pio1_device);
2342 at32_init_pio(&pio2_device);
2343 at32_init_pio(&pio3_device);
2344 at32_init_pio(&pio4_device);
2345 }
2346
2347 struct gen_pool *sram_pool;
2348
2349 static int __init sram_init(void)
2350 {
2351 struct gen_pool *pool;
2352
2353 /* 1KiB granularity */
2354 pool = gen_pool_create(10, -1);
2355 if (!pool)
2356 goto fail;
2357
2358 if (gen_pool_add(pool, 0x24000000, 0x8000, -1))
2359 goto err_pool_add;
2360
2361 sram_pool = pool;
2362 return 0;
2363
2364 err_pool_add:
2365 gen_pool_destroy(pool);
2366 fail:
2367 pr_err("Failed to create SRAM pool\n");
2368 return -ENOMEM;
2369 }
2370 core_initcall(sram_init);