2 * linux/arch/arm/mach-sa1100/sa1111.c
6 * Original code by John Dorsey
8 * This program is free software; you can redistribute it and/or modify
9 * it under the terms of the GNU General Public License version 2 as
10 * published by the Free Software Foundation.
12 * This file contains all generic SA1111 support.
14 * All initialization functions provided here are intended to be called
15 * from machine specific code with proper arguments when required.
17 #include <linux/config.h>
18 #include <linux/module.h>
19 #include <linux/init.h>
20 #include <linux/kernel.h>
21 #include <linux/delay.h>
22 #include <linux/ptrace.h>
23 #include <linux/errno.h>
24 #include <linux/ioport.h>
25 #include <linux/platform_device.h>
26 #include <linux/slab.h>
27 #include <linux/spinlock.h>
28 #include <linux/dma-mapping.h>
30 #include <asm/hardware.h>
31 #include <asm/mach-types.h>
34 #include <asm/mach/irq.h>
36 #include <asm/hardware/sa1111.h>
38 #ifdef CONFIG_ARCH_PXA
39 #include <asm/arch/pxa-regs.h>
42 extern void __init sa1110_mb_enable(void);
45 * We keep the following data for the overall SA1111. Note that the
46 * struct device and struct resource are "fake"; they should be supplied
47 * by the bus above us. However, in the interests of getting all SA1111
48 * drivers converted over to the device model, we provide this as an
49 * anchor point for all the other drivers.
60 * We _really_ need to eliminate this. Its only users
61 * are the PWM and DMA checking code.
63 static struct sa1111 *g_sa1111;
65 struct sa1111_dev_info {
67 unsigned long skpcr_mask;
72 static struct sa1111_dev_info sa1111_devices[] = {
75 .skpcr_mask = SKPCR_UCLKEN,
76 .devid = SA1111_DEVID_USB,
88 .skpcr_mask = SKPCR_I2SCLKEN | SKPCR_L3CLKEN,
89 .devid = SA1111_DEVID_SAC,
99 .skpcr_mask = SKPCR_SCLKEN,
100 .devid = SA1111_DEVID_SSP,
103 .offset = SA1111_KBD,
104 .skpcr_mask = SKPCR_PTCLKEN,
105 .devid = SA1111_DEVID_PS2,
112 .offset = SA1111_MSE,
113 .skpcr_mask = SKPCR_PMCLKEN,
114 .devid = SA1111_DEVID_PS2,
123 .devid = SA1111_DEVID_PCMCIA,
136 * SA1111 interrupt support. Since clearing an IRQ while there are
137 * active IRQs causes the interrupt output to pulse, the upper levels
138 * will call us again if there are more interrupts to process.
141 sa1111_irq_handler(unsigned int irq, struct irqdesc *desc, struct pt_regs *regs)
143 unsigned int stat0, stat1, i;
144 void __iomem *base = desc->data;
146 stat0 = sa1111_readl(base + SA1111_INTSTATCLR0);
147 stat1 = sa1111_readl(base + SA1111_INTSTATCLR1);
149 sa1111_writel(stat0, base + SA1111_INTSTATCLR0);
151 desc->chip->ack(irq);
153 sa1111_writel(stat1, base + SA1111_INTSTATCLR1);
155 if (stat0 == 0 && stat1 == 0) {
156 do_bad_IRQ(irq, desc, regs);
160 for (i = IRQ_SA1111_START; stat0; i++, stat0 >>= 1)
162 do_edge_IRQ(i, irq_desc + i, regs);
164 for (i = IRQ_SA1111_START + 32; stat1; i++, stat1 >>= 1)
166 do_edge_IRQ(i, irq_desc + i, regs);
168 /* For level-based interrupts */
169 desc->chip->unmask(irq);
172 #define SA1111_IRQMASK_LO(x) (1 << (x - IRQ_SA1111_START))
173 #define SA1111_IRQMASK_HI(x) (1 << (x - IRQ_SA1111_START - 32))
175 static void sa1111_ack_irq(unsigned int irq)
179 static void sa1111_mask_lowirq(unsigned int irq)
181 void __iomem *mapbase = get_irq_chipdata(irq);
184 ie0 = sa1111_readl(mapbase + SA1111_INTEN0);
185 ie0 &= ~SA1111_IRQMASK_LO(irq);
186 writel(ie0, mapbase + SA1111_INTEN0);
189 static void sa1111_unmask_lowirq(unsigned int irq)
191 void __iomem *mapbase = get_irq_chipdata(irq);
194 ie0 = sa1111_readl(mapbase + SA1111_INTEN0);
195 ie0 |= SA1111_IRQMASK_LO(irq);
196 sa1111_writel(ie0, mapbase + SA1111_INTEN0);
200 * Attempt to re-trigger the interrupt. The SA1111 contains a register
201 * (INTSET) which claims to do this. However, in practice no amount of
202 * manipulation of INTEN and INTSET guarantees that the interrupt will
203 * be triggered. In fact, its very difficult, if not impossible to get
204 * INTSET to re-trigger the interrupt.
206 static int sa1111_retrigger_lowirq(unsigned int irq)
208 unsigned int mask = SA1111_IRQMASK_LO(irq);
209 void __iomem *mapbase = get_irq_chipdata(irq);
213 ip0 = sa1111_readl(mapbase + SA1111_INTPOL0);
214 for (i = 0; i < 8; i++) {
215 sa1111_writel(ip0 ^ mask, mapbase + SA1111_INTPOL0);
216 sa1111_writel(ip0, mapbase + SA1111_INTPOL0);
217 if (sa1111_readl(mapbase + SA1111_INTSTATCLR1) & mask)
222 printk(KERN_ERR "Danger Will Robinson: failed to "
223 "re-trigger IRQ%d\n", irq);
224 return i == 8 ? -1 : 0;
227 static int sa1111_type_lowirq(unsigned int irq, unsigned int flags)
229 unsigned int mask = SA1111_IRQMASK_LO(irq);
230 void __iomem *mapbase = get_irq_chipdata(irq);
233 if (flags == IRQT_PROBE)
236 if ((!(flags & __IRQT_RISEDGE) ^ !(flags & __IRQT_FALEDGE)) == 0)
239 ip0 = sa1111_readl(mapbase + SA1111_INTPOL0);
240 if (flags & __IRQT_RISEDGE)
244 sa1111_writel(ip0, mapbase + SA1111_INTPOL0);
245 sa1111_writel(ip0, mapbase + SA1111_WAKEPOL0);
250 static int sa1111_wake_lowirq(unsigned int irq, unsigned int on)
252 unsigned int mask = SA1111_IRQMASK_LO(irq);
253 void __iomem *mapbase = get_irq_chipdata(irq);
256 we0 = sa1111_readl(mapbase + SA1111_WAKEEN0);
261 sa1111_writel(we0, mapbase + SA1111_WAKEEN0);
266 static struct irqchip sa1111_low_chip = {
267 .ack = sa1111_ack_irq,
268 .mask = sa1111_mask_lowirq,
269 .unmask = sa1111_unmask_lowirq,
270 .retrigger = sa1111_retrigger_lowirq,
271 .set_type = sa1111_type_lowirq,
272 .set_wake = sa1111_wake_lowirq,
275 static void sa1111_mask_highirq(unsigned int irq)
277 void __iomem *mapbase = get_irq_chipdata(irq);
280 ie1 = sa1111_readl(mapbase + SA1111_INTEN1);
281 ie1 &= ~SA1111_IRQMASK_HI(irq);
282 sa1111_writel(ie1, mapbase + SA1111_INTEN1);
285 static void sa1111_unmask_highirq(unsigned int irq)
287 void __iomem *mapbase = get_irq_chipdata(irq);
290 ie1 = sa1111_readl(mapbase + SA1111_INTEN1);
291 ie1 |= SA1111_IRQMASK_HI(irq);
292 sa1111_writel(ie1, mapbase + SA1111_INTEN1);
296 * Attempt to re-trigger the interrupt. The SA1111 contains a register
297 * (INTSET) which claims to do this. However, in practice no amount of
298 * manipulation of INTEN and INTSET guarantees that the interrupt will
299 * be triggered. In fact, its very difficult, if not impossible to get
300 * INTSET to re-trigger the interrupt.
302 static int sa1111_retrigger_highirq(unsigned int irq)
304 unsigned int mask = SA1111_IRQMASK_HI(irq);
305 void __iomem *mapbase = get_irq_chipdata(irq);
309 ip1 = sa1111_readl(mapbase + SA1111_INTPOL1);
310 for (i = 0; i < 8; i++) {
311 sa1111_writel(ip1 ^ mask, mapbase + SA1111_INTPOL1);
312 sa1111_writel(ip1, mapbase + SA1111_INTPOL1);
313 if (sa1111_readl(mapbase + SA1111_INTSTATCLR1) & mask)
318 printk(KERN_ERR "Danger Will Robinson: failed to "
319 "re-trigger IRQ%d\n", irq);
320 return i == 8 ? -1 : 0;
323 static int sa1111_type_highirq(unsigned int irq, unsigned int flags)
325 unsigned int mask = SA1111_IRQMASK_HI(irq);
326 void __iomem *mapbase = get_irq_chipdata(irq);
329 if (flags == IRQT_PROBE)
332 if ((!(flags & __IRQT_RISEDGE) ^ !(flags & __IRQT_FALEDGE)) == 0)
335 ip1 = sa1111_readl(mapbase + SA1111_INTPOL1);
336 if (flags & __IRQT_RISEDGE)
340 sa1111_writel(ip1, mapbase + SA1111_INTPOL1);
341 sa1111_writel(ip1, mapbase + SA1111_WAKEPOL1);
346 static int sa1111_wake_highirq(unsigned int irq, unsigned int on)
348 unsigned int mask = SA1111_IRQMASK_HI(irq);
349 void __iomem *mapbase = get_irq_chipdata(irq);
352 we1 = sa1111_readl(mapbase + SA1111_WAKEEN1);
357 sa1111_writel(we1, mapbase + SA1111_WAKEEN1);
362 static struct irqchip sa1111_high_chip = {
363 .ack = sa1111_ack_irq,
364 .mask = sa1111_mask_highirq,
365 .unmask = sa1111_unmask_highirq,
366 .retrigger = sa1111_retrigger_highirq,
367 .set_type = sa1111_type_highirq,
368 .set_wake = sa1111_wake_highirq,
371 static void sa1111_setup_irq(struct sa1111 *sachip)
373 void __iomem *irqbase = sachip->base + SA1111_INTC;
377 * We're guaranteed that this region hasn't been taken.
379 request_mem_region(sachip->phys + SA1111_INTC, 512, "irq");
381 /* disable all IRQs */
382 sa1111_writel(0, irqbase + SA1111_INTEN0);
383 sa1111_writel(0, irqbase + SA1111_INTEN1);
384 sa1111_writel(0, irqbase + SA1111_WAKEEN0);
385 sa1111_writel(0, irqbase + SA1111_WAKEEN1);
388 * detect on rising edge. Note: Feb 2001 Errata for SA1111
389 * specifies that S0ReadyInt and S1ReadyInt should be '1'.
391 sa1111_writel(0, irqbase + SA1111_INTPOL0);
392 sa1111_writel(SA1111_IRQMASK_HI(IRQ_S0_READY_NINT) |
393 SA1111_IRQMASK_HI(IRQ_S1_READY_NINT),
394 irqbase + SA1111_INTPOL1);
397 sa1111_writel(~0, irqbase + SA1111_INTSTATCLR0);
398 sa1111_writel(~0, irqbase + SA1111_INTSTATCLR1);
400 for (irq = IRQ_GPAIN0; irq <= SSPROR; irq++) {
401 set_irq_chip(irq, &sa1111_low_chip);
402 set_irq_chipdata(irq, irqbase);
403 set_irq_handler(irq, do_edge_IRQ);
404 set_irq_flags(irq, IRQF_VALID | IRQF_PROBE);
407 for (irq = AUDXMTDMADONEA; irq <= IRQ_S1_BVD1_STSCHG; irq++) {
408 set_irq_chip(irq, &sa1111_high_chip);
409 set_irq_chipdata(irq, irqbase);
410 set_irq_handler(irq, do_edge_IRQ);
411 set_irq_flags(irq, IRQF_VALID | IRQF_PROBE);
415 * Register SA1111 interrupt
417 set_irq_type(sachip->irq, IRQT_RISING);
418 set_irq_data(sachip->irq, irqbase);
419 set_irq_chained_handler(sachip->irq, sa1111_irq_handler);
423 * Bring the SA1111 out of reset. This requires a set procedure:
424 * 1. nRESET asserted (by hardware)
425 * 2. CLK turned on from SA1110
426 * 3. nRESET deasserted
427 * 4. VCO turned on, PLL_BYPASS turned off
428 * 5. Wait lock time, then assert RCLKEn
429 * 7. PCR set to allow clocking of individual functions
431 * Until we've done this, the only registers we can access are:
436 static void sa1111_wake(struct sa1111 *sachip)
438 unsigned long flags, r;
440 spin_lock_irqsave(&sachip->lock, flags);
442 #ifdef CONFIG_ARCH_SA1100
444 * First, set up the 3.6864MHz clock on GPIO 27 for the SA-1111:
445 * (SA-1110 Developer's Manual, section 9.1.2.1)
447 GAFR |= GPIO_32_768kHz;
448 GPDR |= GPIO_32_768kHz;
449 TUCR = TUCR_3_6864MHz;
450 #elif CONFIG_ARCH_PXA
451 pxa_gpio_mode(GPIO11_3_6MHz_MD);
453 #error missing clock setup
457 * Turn VCO on, and disable PLL Bypass.
459 r = sa1111_readl(sachip->base + SA1111_SKCR);
461 sa1111_writel(r, sachip->base + SA1111_SKCR);
462 r |= SKCR_PLL_BYPASS | SKCR_OE_EN;
463 sa1111_writel(r, sachip->base + SA1111_SKCR);
466 * Wait lock time. SA1111 manual _doesn't_
467 * specify a figure for this! We choose 100us.
472 * Enable RCLK. We also ensure that RDYEN is set.
474 r |= SKCR_RCLKEN | SKCR_RDYEN;
475 sa1111_writel(r, sachip->base + SA1111_SKCR);
478 * Wait 14 RCLK cycles for the chip to finish coming out
479 * of reset. (RCLK=24MHz). This is 590ns.
484 * Ensure all clocks are initially off.
486 sa1111_writel(0, sachip->base + SA1111_SKPCR);
488 spin_unlock_irqrestore(&sachip->lock, flags);
491 #ifdef CONFIG_ARCH_SA1100
493 static u32 sa1111_dma_mask[] = {
505 * Configure the SA1111 shared memory controller.
508 sa1111_configure_smc(struct sa1111 *sachip, int sdram, unsigned int drac,
509 unsigned int cas_latency)
511 unsigned int smcr = SMCR_DTIM | SMCR_MBGE | FInsrt(drac, SMCR_DRAC);
513 if (cas_latency == 3)
516 sa1111_writel(smcr, sachip->base + SA1111_SMCR);
519 * Now clear the bits in the DMA mask to work around the SA1111
520 * DMA erratum (Intel StrongARM SA-1111 Microprocessor Companion
521 * Chip Specification Update, June 2000, Erratum #7).
523 if (sachip->dev->dma_mask)
524 *sachip->dev->dma_mask &= sa1111_dma_mask[drac >> 2];
526 sachip->dev->coherent_dma_mask &= sa1111_dma_mask[drac >> 2];
531 static void sa1111_dev_release(struct device *_dev)
533 struct sa1111_dev *dev = SA1111_DEV(_dev);
535 release_resource(&dev->res);
540 sa1111_init_one_child(struct sa1111 *sachip, struct resource *parent,
541 struct sa1111_dev_info *info)
543 struct sa1111_dev *dev;
546 dev = kmalloc(sizeof(struct sa1111_dev), GFP_KERNEL);
551 memset(dev, 0, sizeof(struct sa1111_dev));
553 snprintf(dev->dev.bus_id, sizeof(dev->dev.bus_id),
554 "%4.4lx", info->offset);
556 dev->devid = info->devid;
557 dev->dev.parent = sachip->dev;
558 dev->dev.bus = &sa1111_bus_type;
559 dev->dev.release = sa1111_dev_release;
560 dev->dev.coherent_dma_mask = sachip->dev->coherent_dma_mask;
561 dev->res.start = sachip->phys + info->offset;
562 dev->res.end = dev->res.start + 511;
563 dev->res.name = dev->dev.bus_id;
564 dev->res.flags = IORESOURCE_MEM;
565 dev->mapbase = sachip->base + info->offset;
566 dev->skpcr_mask = info->skpcr_mask;
567 memmove(dev->irq, info->irq, sizeof(dev->irq));
569 ret = request_resource(parent, &dev->res);
571 printk("SA1111: failed to allocate resource for %s\n",
578 ret = device_register(&dev->dev);
580 release_resource(&dev->res);
586 * If the parent device has a DMA mask associated with it,
587 * propagate it down to the children.
589 if (sachip->dev->dma_mask) {
590 dev->dma_mask = *sachip->dev->dma_mask;
591 dev->dev.dma_mask = &dev->dma_mask;
593 if (dev->dma_mask != 0xffffffffUL) {
594 ret = dmabounce_register_dev(&dev->dev, 1024, 4096);
596 printk("SA1111: Failed to register %s with dmabounce", dev->dev.bus_id);
597 device_unregister(&dev->dev);
607 * sa1111_probe - probe for a single SA1111 chip.
608 * @phys_addr: physical address of device.
610 * Probe for a SA1111 chip. This must be called
611 * before any other SA1111-specific code.
614 * %-ENODEV device not found.
615 * %-EBUSY physical address already marked in-use.
619 __sa1111_probe(struct device *me, struct resource *mem, int irq)
621 struct sa1111 *sachip;
623 unsigned int has_devs, val;
624 int i, ret = -ENODEV;
626 sachip = kmalloc(sizeof(struct sa1111), GFP_KERNEL);
630 memset(sachip, 0, sizeof(struct sa1111));
632 spin_lock_init(&sachip->lock);
635 dev_set_drvdata(sachip->dev, sachip);
637 sachip->phys = mem->start;
641 * Map the whole region. This also maps the
642 * registers for our children.
644 sachip->base = ioremap(mem->start, PAGE_SIZE * 2);
651 * Probe for the chip. Only touch the SBI registers.
653 id = sa1111_readl(sachip->base + SA1111_SKID);
654 if ((id & SKID_ID_MASK) != SKID_SA1111_ID) {
655 printk(KERN_DEBUG "SA1111 not detected: ID = %08lx\n", id);
660 printk(KERN_INFO "SA1111 Microprocessor Companion Chip: "
661 "silicon revision %lx, metal revision %lx\n",
662 (id & SKID_SIREV_MASK)>>4, (id & SKID_MTREV_MASK));
665 * We found it. Wake the chip up, and initialise.
669 #ifdef CONFIG_ARCH_SA1100
671 * The SDRAM configuration of the SA1110 and the SA1111 must
672 * match. This is very important to ensure that SA1111 accesses
673 * don't corrupt the SDRAM. Note that this ungates the SA1111's
674 * MBGNT signal, so we must have called sa1110_mb_disable()
677 sa1111_configure_smc(sachip, 1,
678 FExtr(MDCNFG, MDCNFG_SA1110_DRAC0),
679 FExtr(MDCNFG, MDCNFG_SA1110_TDL0));
682 * We only need to turn on DCLK whenever we want to use the
683 * DMA. It can otherwise be held firmly in the off position.
684 * (currently, we always enable it.)
686 val = sa1111_readl(sachip->base + SA1111_SKPCR);
687 sa1111_writel(val | SKPCR_DCLKEN, sachip->base + SA1111_SKPCR);
690 * Enable the SA1110 memory bus request and grant signals.
696 * The interrupt controller must be initialised before any
697 * other device to ensure that the interrupts are available.
699 if (sachip->irq != NO_IRQ)
700 sa1111_setup_irq(sachip);
705 if (machine_is_assabet() || machine_is_jornada720() ||
707 has_devs &= ~(1 << 4);
709 has_devs &= ~(1 << 1);
711 for (i = 0; i < ARRAY_SIZE(sa1111_devices); i++)
712 if (has_devs & (1 << i))
713 sa1111_init_one_child(sachip, mem, &sa1111_devices[i]);
718 iounmap(sachip->base);
724 static int sa1111_remove_one(struct device *dev, void *data)
726 device_unregister(dev);
730 static void __sa1111_remove(struct sa1111 *sachip)
732 void __iomem *irqbase = sachip->base + SA1111_INTC;
734 device_for_each_child(sachip->dev, NULL, sa1111_remove_one);
736 /* disable all IRQs */
737 sa1111_writel(0, irqbase + SA1111_INTEN0);
738 sa1111_writel(0, irqbase + SA1111_INTEN1);
739 sa1111_writel(0, irqbase + SA1111_WAKEEN0);
740 sa1111_writel(0, irqbase + SA1111_WAKEEN1);
742 if (sachip->irq != NO_IRQ) {
743 set_irq_chained_handler(sachip->irq, NULL);
744 set_irq_data(sachip->irq, NULL);
746 release_mem_region(sachip->phys + SA1111_INTC, 512);
749 iounmap(sachip->base);
754 * According to the "Intel StrongARM SA-1111 Microprocessor Companion
755 * Chip Specification Update" (June 2000), erratum #7, there is a
756 * significant bug in the SA1111 SDRAM shared memory controller. If
757 * an access to a region of memory above 1MB relative to the bank base,
758 * it is important that address bit 10 _NOT_ be asserted. Depending
759 * on the configuration of the RAM, bit 10 may correspond to one
760 * of several different (processor-relative) address bits.
762 * This routine only identifies whether or not a given DMA address
763 * is susceptible to the bug.
765 * This should only get called for sa1111_device types due to the
766 * way we configure our device dma_masks.
768 int dma_needs_bounce(struct device *dev, dma_addr_t addr, size_t size)
771 * Section 4.6 of the "Intel StrongARM SA-1111 Development Module
772 * User's Guide" mentions that jumpers R51 and R52 control the
773 * target of SA-1111 DMA (either SDRAM bank 0 on Assabet, or
774 * SDRAM bank 1 on Neponset). The default configuration selects
775 * Assabet, so any address in bank 1 is necessarily invalid.
777 return ((machine_is_assabet() || machine_is_pfs168()) &&
778 (addr >= 0xc8000000 || (addr + size) >= 0xc8000000));
781 struct sa1111_save_data {
786 unsigned char skpwm0;
787 unsigned char skpwm1;
790 * Interrupt controller
792 unsigned int intpol0;
793 unsigned int intpol1;
796 unsigned int wakepol0;
797 unsigned int wakepol1;
798 unsigned int wakeen0;
799 unsigned int wakeen1;
804 static int sa1111_suspend(struct device *dev, pm_message_t state)
806 struct sa1111 *sachip = dev_get_drvdata(dev);
807 struct sa1111_save_data *save;
812 save = kmalloc(sizeof(struct sa1111_save_data), GFP_KERNEL);
815 dev->power.saved_state = save;
817 spin_lock_irqsave(&sachip->lock, flags);
823 save->skcr = sa1111_readl(base + SA1111_SKCR);
824 save->skpcr = sa1111_readl(base + SA1111_SKPCR);
825 save->skcdr = sa1111_readl(base + SA1111_SKCDR);
826 save->skaud = sa1111_readl(base + SA1111_SKAUD);
827 save->skpwm0 = sa1111_readl(base + SA1111_SKPWM0);
828 save->skpwm1 = sa1111_readl(base + SA1111_SKPWM1);
830 base = sachip->base + SA1111_INTC;
831 save->intpol0 = sa1111_readl(base + SA1111_INTPOL0);
832 save->intpol1 = sa1111_readl(base + SA1111_INTPOL1);
833 save->inten0 = sa1111_readl(base + SA1111_INTEN0);
834 save->inten1 = sa1111_readl(base + SA1111_INTEN1);
835 save->wakepol0 = sa1111_readl(base + SA1111_WAKEPOL0);
836 save->wakepol1 = sa1111_readl(base + SA1111_WAKEPOL1);
837 save->wakeen0 = sa1111_readl(base + SA1111_WAKEEN0);
838 save->wakeen1 = sa1111_readl(base + SA1111_WAKEEN1);
843 val = sa1111_readl(sachip->base + SA1111_SKCR);
844 sa1111_writel(val | SKCR_SLEEP, sachip->base + SA1111_SKCR);
845 sa1111_writel(0, sachip->base + SA1111_SKPWM0);
846 sa1111_writel(0, sachip->base + SA1111_SKPWM1);
848 spin_unlock_irqrestore(&sachip->lock, flags);
854 * sa1111_resume - Restore the SA1111 device state.
855 * @dev: device to restore
857 * Restore the general state of the SA1111; clock control and
858 * interrupt controller. Other parts of the SA1111 must be
859 * restored by their respective drivers, and must be called
860 * via LDM after this function.
862 static int sa1111_resume(struct device *dev)
864 struct sa1111 *sachip = dev_get_drvdata(dev);
865 struct sa1111_save_data *save;
866 unsigned long flags, id;
869 save = (struct sa1111_save_data *)dev->power.saved_state;
873 spin_lock_irqsave(&sachip->lock, flags);
876 * Ensure that the SA1111 is still here.
877 * FIXME: shouldn't do this here.
879 id = sa1111_readl(sachip->base + SA1111_SKID);
880 if ((id & SKID_ID_MASK) != SKID_SA1111_ID) {
881 __sa1111_remove(sachip);
882 dev_set_drvdata(dev, NULL);
888 * First of all, wake up the chip.
891 sa1111_writel(0, sachip->base + SA1111_INTC + SA1111_INTEN0);
892 sa1111_writel(0, sachip->base + SA1111_INTC + SA1111_INTEN1);
895 sa1111_writel(save->skcr, base + SA1111_SKCR);
896 sa1111_writel(save->skpcr, base + SA1111_SKPCR);
897 sa1111_writel(save->skcdr, base + SA1111_SKCDR);
898 sa1111_writel(save->skaud, base + SA1111_SKAUD);
899 sa1111_writel(save->skpwm0, base + SA1111_SKPWM0);
900 sa1111_writel(save->skpwm1, base + SA1111_SKPWM1);
902 base = sachip->base + SA1111_INTC;
903 sa1111_writel(save->intpol0, base + SA1111_INTPOL0);
904 sa1111_writel(save->intpol1, base + SA1111_INTPOL1);
905 sa1111_writel(save->inten0, base + SA1111_INTEN0);
906 sa1111_writel(save->inten1, base + SA1111_INTEN1);
907 sa1111_writel(save->wakepol0, base + SA1111_WAKEPOL0);
908 sa1111_writel(save->wakepol1, base + SA1111_WAKEPOL1);
909 sa1111_writel(save->wakeen0, base + SA1111_WAKEEN0);
910 sa1111_writel(save->wakeen1, base + SA1111_WAKEEN1);
912 spin_unlock_irqrestore(&sachip->lock, flags);
914 dev->power.saved_state = NULL;
921 #define sa1111_suspend NULL
922 #define sa1111_resume NULL
925 static int sa1111_probe(struct device *dev)
927 struct platform_device *pdev = to_platform_device(dev);
928 struct resource *mem;
931 mem = platform_get_resource(pdev, IORESOURCE_MEM, 0);
934 irq = platform_get_irq(pdev, 0);
936 return __sa1111_probe(dev, mem, irq);
939 static int sa1111_remove(struct device *dev)
941 struct sa1111 *sachip = dev_get_drvdata(dev);
944 __sa1111_remove(sachip);
945 dev_set_drvdata(dev, NULL);
948 kfree(dev->power.saved_state);
949 dev->power.saved_state = NULL;
957 * Not sure if this should be on the system bus or not yet.
958 * We really want some way to register a system device at
959 * the per-machine level, and then have this driver pick
960 * up the registered devices.
962 * We also need to handle the SDRAM configuration for
963 * PXA250/SA1110 machine classes.
965 static struct device_driver sa1111_device_driver = {
967 .bus = &platform_bus_type,
968 .probe = sa1111_probe,
969 .remove = sa1111_remove,
970 .suspend = sa1111_suspend,
971 .resume = sa1111_resume,
975 * Get the parent device driver (us) structure
976 * from a child function device
978 static inline struct sa1111 *sa1111_chip_driver(struct sa1111_dev *sadev)
980 return (struct sa1111 *)dev_get_drvdata(sadev->dev.parent);
984 * The bits in the opdiv field are non-linear.
986 static unsigned char opdiv_table[] = { 1, 4, 2, 8 };
988 static unsigned int __sa1111_pll_clock(struct sa1111 *sachip)
990 unsigned int skcdr, fbdiv, ipdiv, opdiv;
992 skcdr = sa1111_readl(sachip->base + SA1111_SKCDR);
994 fbdiv = (skcdr & 0x007f) + 2;
995 ipdiv = ((skcdr & 0x0f80) >> 7) + 2;
996 opdiv = opdiv_table[(skcdr & 0x3000) >> 12];
998 return 3686400 * fbdiv / (ipdiv * opdiv);
1002 * sa1111_pll_clock - return the current PLL clock frequency.
1003 * @sadev: SA1111 function block
1005 * BUG: we should look at SKCR. We also blindly believe that
1006 * the chip is being fed with the 3.6864MHz clock.
1008 * Returns the PLL clock in Hz.
1010 unsigned int sa1111_pll_clock(struct sa1111_dev *sadev)
1012 struct sa1111 *sachip = sa1111_chip_driver(sadev);
1014 return __sa1111_pll_clock(sachip);
1018 * sa1111_select_audio_mode - select I2S or AC link mode
1019 * @sadev: SA1111 function block
1020 * @mode: One of %SA1111_AUDIO_ACLINK or %SA1111_AUDIO_I2S
1022 * Frob the SKCR to select AC Link mode or I2S mode for
1025 void sa1111_select_audio_mode(struct sa1111_dev *sadev, int mode)
1027 struct sa1111 *sachip = sa1111_chip_driver(sadev);
1028 unsigned long flags;
1031 spin_lock_irqsave(&sachip->lock, flags);
1033 val = sa1111_readl(sachip->base + SA1111_SKCR);
1034 if (mode == SA1111_AUDIO_I2S) {
1039 sa1111_writel(val, sachip->base + SA1111_SKCR);
1041 spin_unlock_irqrestore(&sachip->lock, flags);
1045 * sa1111_set_audio_rate - set the audio sample rate
1046 * @sadev: SA1111 SAC function block
1047 * @rate: sample rate to select
1049 int sa1111_set_audio_rate(struct sa1111_dev *sadev, int rate)
1051 struct sa1111 *sachip = sa1111_chip_driver(sadev);
1054 if (sadev->devid != SA1111_DEVID_SAC)
1057 div = (__sa1111_pll_clock(sachip) / 256 + rate / 2) / rate;
1063 sa1111_writel(div - 1, sachip->base + SA1111_SKAUD);
1069 * sa1111_get_audio_rate - get the audio sample rate
1070 * @sadev: SA1111 SAC function block device
1072 int sa1111_get_audio_rate(struct sa1111_dev *sadev)
1074 struct sa1111 *sachip = sa1111_chip_driver(sadev);
1077 if (sadev->devid != SA1111_DEVID_SAC)
1080 div = sa1111_readl(sachip->base + SA1111_SKAUD) + 1;
1082 return __sa1111_pll_clock(sachip) / (256 * div);
1085 void sa1111_set_io_dir(struct sa1111_dev *sadev,
1086 unsigned int bits, unsigned int dir,
1087 unsigned int sleep_dir)
1089 struct sa1111 *sachip = sa1111_chip_driver(sadev);
1090 unsigned long flags;
1092 void __iomem *gpio = sachip->base + SA1111_GPIO;
1094 #define MODIFY_BITS(port, mask, dir) \
1096 val = sa1111_readl(port); \
1098 val |= (dir) & (mask); \
1099 sa1111_writel(val, port); \
1102 spin_lock_irqsave(&sachip->lock, flags);
1103 MODIFY_BITS(gpio + SA1111_GPIO_PADDR, bits & 15, dir);
1104 MODIFY_BITS(gpio + SA1111_GPIO_PBDDR, (bits >> 8) & 255, dir >> 8);
1105 MODIFY_BITS(gpio + SA1111_GPIO_PCDDR, (bits >> 16) & 255, dir >> 16);
1107 MODIFY_BITS(gpio + SA1111_GPIO_PASDR, bits & 15, sleep_dir);
1108 MODIFY_BITS(gpio + SA1111_GPIO_PBSDR, (bits >> 8) & 255, sleep_dir >> 8);
1109 MODIFY_BITS(gpio + SA1111_GPIO_PCSDR, (bits >> 16) & 255, sleep_dir >> 16);
1110 spin_unlock_irqrestore(&sachip->lock, flags);
1113 void sa1111_set_io(struct sa1111_dev *sadev, unsigned int bits, unsigned int v)
1115 struct sa1111 *sachip = sa1111_chip_driver(sadev);
1116 unsigned long flags;
1118 void __iomem *gpio = sachip->base + SA1111_GPIO;
1120 spin_lock_irqsave(&sachip->lock, flags);
1121 MODIFY_BITS(gpio + SA1111_GPIO_PADWR, bits & 15, v);
1122 MODIFY_BITS(gpio + SA1111_GPIO_PBDWR, (bits >> 8) & 255, v >> 8);
1123 MODIFY_BITS(gpio + SA1111_GPIO_PCDWR, (bits >> 16) & 255, v >> 16);
1124 spin_unlock_irqrestore(&sachip->lock, flags);
1127 void sa1111_set_sleep_io(struct sa1111_dev *sadev, unsigned int bits, unsigned int v)
1129 struct sa1111 *sachip = sa1111_chip_driver(sadev);
1130 unsigned long flags;
1132 void __iomem *gpio = sachip->base + SA1111_GPIO;
1134 spin_lock_irqsave(&sachip->lock, flags);
1135 MODIFY_BITS(gpio + SA1111_GPIO_PASSR, bits & 15, v);
1136 MODIFY_BITS(gpio + SA1111_GPIO_PBSSR, (bits >> 8) & 255, v >> 8);
1137 MODIFY_BITS(gpio + SA1111_GPIO_PCSSR, (bits >> 16) & 255, v >> 16);
1138 spin_unlock_irqrestore(&sachip->lock, flags);
1142 * Individual device operations.
1146 * sa1111_enable_device - enable an on-chip SA1111 function block
1147 * @sadev: SA1111 function block device to enable
1149 void sa1111_enable_device(struct sa1111_dev *sadev)
1151 struct sa1111 *sachip = sa1111_chip_driver(sadev);
1152 unsigned long flags;
1155 spin_lock_irqsave(&sachip->lock, flags);
1156 val = sa1111_readl(sachip->base + SA1111_SKPCR);
1157 sa1111_writel(val | sadev->skpcr_mask, sachip->base + SA1111_SKPCR);
1158 spin_unlock_irqrestore(&sachip->lock, flags);
1162 * sa1111_disable_device - disable an on-chip SA1111 function block
1163 * @sadev: SA1111 function block device to disable
1165 void sa1111_disable_device(struct sa1111_dev *sadev)
1167 struct sa1111 *sachip = sa1111_chip_driver(sadev);
1168 unsigned long flags;
1171 spin_lock_irqsave(&sachip->lock, flags);
1172 val = sa1111_readl(sachip->base + SA1111_SKPCR);
1173 sa1111_writel(val & ~sadev->skpcr_mask, sachip->base + SA1111_SKPCR);
1174 spin_unlock_irqrestore(&sachip->lock, flags);
1178 * SA1111 "Register Access Bus."
1180 * We model this as a regular bus type, and hang devices directly
1183 static int sa1111_match(struct device *_dev, struct device_driver *_drv)
1185 struct sa1111_dev *dev = SA1111_DEV(_dev);
1186 struct sa1111_driver *drv = SA1111_DRV(_drv);
1188 return dev->devid == drv->devid;
1191 static int sa1111_bus_suspend(struct device *dev, pm_message_t state)
1193 struct sa1111_dev *sadev = SA1111_DEV(dev);
1194 struct sa1111_driver *drv = SA1111_DRV(dev->driver);
1197 if (drv && drv->suspend)
1198 ret = drv->suspend(sadev, state);
1202 static int sa1111_bus_resume(struct device *dev)
1204 struct sa1111_dev *sadev = SA1111_DEV(dev);
1205 struct sa1111_driver *drv = SA1111_DRV(dev->driver);
1208 if (drv && drv->resume)
1209 ret = drv->resume(sadev);
1213 static int sa1111_bus_probe(struct device *dev)
1215 struct sa1111_dev *sadev = SA1111_DEV(dev);
1216 struct sa1111_driver *drv = SA1111_DRV(dev->driver);
1220 ret = drv->probe(sadev);
1224 static int sa1111_bus_remove(struct device *dev)
1226 struct sa1111_dev *sadev = SA1111_DEV(dev);
1227 struct sa1111_driver *drv = SA1111_DRV(dev->driver);
1231 ret = drv->remove(sadev);
1235 struct bus_type sa1111_bus_type = {
1236 .name = "sa1111-rab",
1237 .match = sa1111_match,
1238 .suspend = sa1111_bus_suspend,
1239 .resume = sa1111_bus_resume,
1242 int sa1111_driver_register(struct sa1111_driver *driver)
1244 driver->drv.probe = sa1111_bus_probe;
1245 driver->drv.remove = sa1111_bus_remove;
1246 driver->drv.bus = &sa1111_bus_type;
1247 return driver_register(&driver->drv);
1250 void sa1111_driver_unregister(struct sa1111_driver *driver)
1252 driver_unregister(&driver->drv);
1255 static int __init sa1111_init(void)
1257 int ret = bus_register(&sa1111_bus_type);
1259 driver_register(&sa1111_device_driver);
1263 static void __exit sa1111_exit(void)
1265 driver_unregister(&sa1111_device_driver);
1266 bus_unregister(&sa1111_bus_type);
1269 module_init(sa1111_init);
1270 module_exit(sa1111_exit);
1272 MODULE_DESCRIPTION("Intel Corporation SA1111 core driver");
1273 MODULE_LICENSE("GPL");
1275 EXPORT_SYMBOL(sa1111_select_audio_mode);
1276 EXPORT_SYMBOL(sa1111_set_audio_rate);
1277 EXPORT_SYMBOL(sa1111_get_audio_rate);
1278 EXPORT_SYMBOL(sa1111_set_io_dir);
1279 EXPORT_SYMBOL(sa1111_set_io);
1280 EXPORT_SYMBOL(sa1111_set_sleep_io);
1281 EXPORT_SYMBOL(sa1111_enable_device);
1282 EXPORT_SYMBOL(sa1111_disable_device);
1283 EXPORT_SYMBOL(sa1111_pll_clock);
1284 EXPORT_SYMBOL(sa1111_bus_type);
1285 EXPORT_SYMBOL(sa1111_driver_register);
1286 EXPORT_SYMBOL(sa1111_driver_unregister);