xref: /linux/arch/arm/mach-omap2/prm_common.c (revision ab7b2ffcf576a49b51c240dcd68ca4b7cd60b84d)
10a84a91cSTero Kristo /*
20a84a91cSTero Kristo  * OMAP2+ common Power & Reset Management (PRM) IP block functions
30a84a91cSTero Kristo  *
40a84a91cSTero Kristo  * Copyright (C) 2011 Texas Instruments, Inc.
50a84a91cSTero Kristo  * Tero Kristo <t-kristo@ti.com>
60a84a91cSTero Kristo  *
70a84a91cSTero Kristo  * This program is free software; you can redistribute it and/or modify
80a84a91cSTero Kristo  * it under the terms of the GNU General Public License version 2 as
90a84a91cSTero Kristo  * published by the Free Software Foundation.
100a84a91cSTero Kristo  *
110a84a91cSTero Kristo  *
120a84a91cSTero Kristo  * For historical purposes, the API used to configure the PRM
130a84a91cSTero Kristo  * interrupt handler refers to it as the "PRCM interrupt."  The
140a84a91cSTero Kristo  * underlying registers are located in the PRM on OMAP3/4.
150a84a91cSTero Kristo  *
160a84a91cSTero Kristo  * XXX This code should eventually be moved to a PRM driver.
170a84a91cSTero Kristo  */
180a84a91cSTero Kristo 
190a84a91cSTero Kristo #include <linux/kernel.h>
200a84a91cSTero Kristo #include <linux/module.h>
210a84a91cSTero Kristo #include <linux/init.h>
220a84a91cSTero Kristo #include <linux/io.h>
230a84a91cSTero Kristo #include <linux/irq.h>
240a84a91cSTero Kristo #include <linux/interrupt.h>
250a84a91cSTero Kristo #include <linux/slab.h>
26943a63a4STero Kristo #include <linux/of.h>
27943a63a4STero Kristo #include <linux/of_address.h>
28943a63a4STero Kristo #include <linux/clk-provider.h>
29943a63a4STero Kristo #include <linux/clk/ti.h>
300a84a91cSTero Kristo 
3130a69ef7STony Lindgren #include "soc.h"
320a84a91cSTero Kristo #include "prm2xxx_3xxx.h"
332bb2a5d3SPaul Walmsley #include "prm2xxx.h"
342bb2a5d3SPaul Walmsley #include "prm3xxx.h"
35*ab7b2ffcSTero Kristo #include "prm33xx.h"
360a84a91cSTero Kristo #include "prm44xx.h"
37d9a16f9aSPaul Walmsley #include "common.h"
38943a63a4STero Kristo #include "clock.h"
393dbb048bSTero Kristo #include "cm.h"
403dbb048bSTero Kristo #include "control.h"
410a84a91cSTero Kristo 
420a84a91cSTero Kristo /*
430a84a91cSTero Kristo  * OMAP_PRCM_MAX_NR_PENDING_REG: maximum number of PRM_IRQ*_MPU regs
440a84a91cSTero Kristo  * XXX this is technically not needed, since
450a84a91cSTero Kristo  * omap_prcm_register_chain_handler() could allocate this based on the
460a84a91cSTero Kristo  * actual amount of memory needed for the SoC
470a84a91cSTero Kristo  */
480a84a91cSTero Kristo #define OMAP_PRCM_MAX_NR_PENDING_REG		2
490a84a91cSTero Kristo 
500a84a91cSTero Kristo /*
510a84a91cSTero Kristo  * prcm_irq_chips: an array of all of the "generic IRQ chips" in use
520a84a91cSTero Kristo  * by the PRCM interrupt handler code.  There will be one 'chip' per
530a84a91cSTero Kristo  * PRM_{IRQSTATUS,IRQENABLE}_MPU register pair.  (So OMAP3 will have
540a84a91cSTero Kristo  * one "chip" and OMAP4 will have two.)
550a84a91cSTero Kristo  */
560a84a91cSTero Kristo static struct irq_chip_generic **prcm_irq_chips;
570a84a91cSTero Kristo 
580a84a91cSTero Kristo /*
590a84a91cSTero Kristo  * prcm_irq_setup: the PRCM IRQ parameters for the hardware the code
600a84a91cSTero Kristo  * is currently running on.  Defined and passed by initialization code
610a84a91cSTero Kristo  * that calls omap_prcm_register_chain_handler().
620a84a91cSTero Kristo  */
630a84a91cSTero Kristo static struct omap_prcm_irq_setup *prcm_irq_setup;
640a84a91cSTero Kristo 
65d9a16f9aSPaul Walmsley /* prm_base: base virtual address of the PRM IP block */
66d9a16f9aSPaul Walmsley void __iomem *prm_base;
67d9a16f9aSPaul Walmsley 
682541d15fSTero Kristo u16 prm_features;
692541d15fSTero Kristo 
70e24c3573SPaul Walmsley /*
71e24c3573SPaul Walmsley  * prm_ll_data: function pointers to SoC-specific implementations of
72e24c3573SPaul Walmsley  * common PRM functions
73e24c3573SPaul Walmsley  */
74e24c3573SPaul Walmsley static struct prm_ll_data null_prm_ll_data;
75e24c3573SPaul Walmsley static struct prm_ll_data *prm_ll_data = &null_prm_ll_data;
76e24c3573SPaul Walmsley 
770a84a91cSTero Kristo /* Private functions */
780a84a91cSTero Kristo 
790a84a91cSTero Kristo /*
800a84a91cSTero Kristo  * Move priority events from events to priority_events array
810a84a91cSTero Kristo  */
820a84a91cSTero Kristo static void omap_prcm_events_filter_priority(unsigned long *events,
830a84a91cSTero Kristo 	unsigned long *priority_events)
840a84a91cSTero Kristo {
850a84a91cSTero Kristo 	int i;
860a84a91cSTero Kristo 
870a84a91cSTero Kristo 	for (i = 0; i < prcm_irq_setup->nr_regs; i++) {
880a84a91cSTero Kristo 		priority_events[i] =
890a84a91cSTero Kristo 			events[i] & prcm_irq_setup->priority_mask[i];
900a84a91cSTero Kristo 		events[i] ^= priority_events[i];
910a84a91cSTero Kristo 	}
920a84a91cSTero Kristo }
930a84a91cSTero Kristo 
940a84a91cSTero Kristo /*
950a84a91cSTero Kristo  * PRCM Interrupt Handler
960a84a91cSTero Kristo  *
970a84a91cSTero Kristo  * This is a common handler for the OMAP PRCM interrupts. Pending
980a84a91cSTero Kristo  * interrupts are detected by a call to prcm_pending_events and
990a84a91cSTero Kristo  * dispatched accordingly. Clearing of the wakeup events should be
1000a84a91cSTero Kristo  * done by the SoC specific individual handlers.
1010a84a91cSTero Kristo  */
1020a84a91cSTero Kristo static void omap_prcm_irq_handler(unsigned int irq, struct irq_desc *desc)
1030a84a91cSTero Kristo {
1040a84a91cSTero Kristo 	unsigned long pending[OMAP_PRCM_MAX_NR_PENDING_REG];
1050a84a91cSTero Kristo 	unsigned long priority_pending[OMAP_PRCM_MAX_NR_PENDING_REG];
1060a84a91cSTero Kristo 	struct irq_chip *chip = irq_desc_get_chip(desc);
1070a84a91cSTero Kristo 	unsigned int virtirq;
108b56f2cb7SVenkatraman S 	int nr_irq = prcm_irq_setup->nr_regs * 32;
1090a84a91cSTero Kristo 
1100a84a91cSTero Kristo 	/*
11191285b6fSTero Kristo 	 * If we are suspended, mask all interrupts from PRCM level,
11291285b6fSTero Kristo 	 * this does not ack them, and they will be pending until we
11391285b6fSTero Kristo 	 * re-enable the interrupts, at which point the
11491285b6fSTero Kristo 	 * omap_prcm_irq_handler will be executed again.  The
11591285b6fSTero Kristo 	 * _save_and_clear_irqen() function must ensure that the PRM
11691285b6fSTero Kristo 	 * write to disable all IRQs has reached the PRM before
11791285b6fSTero Kristo 	 * returning, or spurious PRCM interrupts may occur during
11891285b6fSTero Kristo 	 * suspend.
11991285b6fSTero Kristo 	 */
12091285b6fSTero Kristo 	if (prcm_irq_setup->suspended) {
12191285b6fSTero Kristo 		prcm_irq_setup->save_and_clear_irqen(prcm_irq_setup->saved_mask);
12291285b6fSTero Kristo 		prcm_irq_setup->suspend_save_flag = true;
12391285b6fSTero Kristo 	}
12491285b6fSTero Kristo 
12591285b6fSTero Kristo 	/*
1260a84a91cSTero Kristo 	 * Loop until all pending irqs are handled, since
1270a84a91cSTero Kristo 	 * generic_handle_irq() can cause new irqs to come
1280a84a91cSTero Kristo 	 */
12991285b6fSTero Kristo 	while (!prcm_irq_setup->suspended) {
1300a84a91cSTero Kristo 		prcm_irq_setup->read_pending_irqs(pending);
1310a84a91cSTero Kristo 
1320a84a91cSTero Kristo 		/* No bit set, then all IRQs are handled */
133b56f2cb7SVenkatraman S 		if (find_first_bit(pending, nr_irq) >= nr_irq)
1340a84a91cSTero Kristo 			break;
1350a84a91cSTero Kristo 
1360a84a91cSTero Kristo 		omap_prcm_events_filter_priority(pending, priority_pending);
1370a84a91cSTero Kristo 
1380a84a91cSTero Kristo 		/*
1390a84a91cSTero Kristo 		 * Loop on all currently pending irqs so that new irqs
1400a84a91cSTero Kristo 		 * cannot starve previously pending irqs
1410a84a91cSTero Kristo 		 */
1420a84a91cSTero Kristo 
1430a84a91cSTero Kristo 		/* Serve priority events first */
144b56f2cb7SVenkatraman S 		for_each_set_bit(virtirq, priority_pending, nr_irq)
1450a84a91cSTero Kristo 			generic_handle_irq(prcm_irq_setup->base_irq + virtirq);
1460a84a91cSTero Kristo 
1470a84a91cSTero Kristo 		/* Serve normal events next */
148b56f2cb7SVenkatraman S 		for_each_set_bit(virtirq, pending, nr_irq)
1490a84a91cSTero Kristo 			generic_handle_irq(prcm_irq_setup->base_irq + virtirq);
1500a84a91cSTero Kristo 	}
1510a84a91cSTero Kristo 	if (chip->irq_ack)
1520a84a91cSTero Kristo 		chip->irq_ack(&desc->irq_data);
1530a84a91cSTero Kristo 	if (chip->irq_eoi)
1540a84a91cSTero Kristo 		chip->irq_eoi(&desc->irq_data);
1550a84a91cSTero Kristo 	chip->irq_unmask(&desc->irq_data);
1560a84a91cSTero Kristo 
1570a84a91cSTero Kristo 	prcm_irq_setup->ocp_barrier(); /* avoid spurious IRQs */
1580a84a91cSTero Kristo }
1590a84a91cSTero Kristo 
1600a84a91cSTero Kristo /* Public functions */
1610a84a91cSTero Kristo 
1620a84a91cSTero Kristo /**
1630a84a91cSTero Kristo  * omap_prcm_event_to_irq - given a PRCM event name, returns the
1640a84a91cSTero Kristo  * corresponding IRQ on which the handler should be registered
1650a84a91cSTero Kristo  * @name: name of the PRCM interrupt bit to look up - see struct omap_prcm_irq
1660a84a91cSTero Kristo  *
1670a84a91cSTero Kristo  * Returns the Linux internal IRQ ID corresponding to @name upon success,
1680a84a91cSTero Kristo  * or -ENOENT upon failure.
1690a84a91cSTero Kristo  */
1700a84a91cSTero Kristo int omap_prcm_event_to_irq(const char *name)
1710a84a91cSTero Kristo {
1720a84a91cSTero Kristo 	int i;
1730a84a91cSTero Kristo 
1740a84a91cSTero Kristo 	if (!prcm_irq_setup || !name)
1750a84a91cSTero Kristo 		return -ENOENT;
1760a84a91cSTero Kristo 
1770a84a91cSTero Kristo 	for (i = 0; i < prcm_irq_setup->nr_irqs; i++)
1780a84a91cSTero Kristo 		if (!strcmp(prcm_irq_setup->irqs[i].name, name))
1790a84a91cSTero Kristo 			return prcm_irq_setup->base_irq +
1800a84a91cSTero Kristo 				prcm_irq_setup->irqs[i].offset;
1810a84a91cSTero Kristo 
1820a84a91cSTero Kristo 	return -ENOENT;
1830a84a91cSTero Kristo }
1840a84a91cSTero Kristo 
1850a84a91cSTero Kristo /**
1860a84a91cSTero Kristo  * omap_prcm_irq_cleanup - reverses memory allocated and other steps
1870a84a91cSTero Kristo  * done by omap_prcm_register_chain_handler()
1880a84a91cSTero Kristo  *
1890a84a91cSTero Kristo  * No return value.
1900a84a91cSTero Kristo  */
1910a84a91cSTero Kristo void omap_prcm_irq_cleanup(void)
1920a84a91cSTero Kristo {
1930fb22a8fSMarc Zyngier 	unsigned int irq;
1940a84a91cSTero Kristo 	int i;
1950a84a91cSTero Kristo 
1960a84a91cSTero Kristo 	if (!prcm_irq_setup) {
1970a84a91cSTero Kristo 		pr_err("PRCM: IRQ handler not initialized; cannot cleanup\n");
1980a84a91cSTero Kristo 		return;
1990a84a91cSTero Kristo 	}
2000a84a91cSTero Kristo 
2010a84a91cSTero Kristo 	if (prcm_irq_chips) {
2020a84a91cSTero Kristo 		for (i = 0; i < prcm_irq_setup->nr_regs; i++) {
2030a84a91cSTero Kristo 			if (prcm_irq_chips[i])
2040a84a91cSTero Kristo 				irq_remove_generic_chip(prcm_irq_chips[i],
2050a84a91cSTero Kristo 					0xffffffff, 0, 0);
2060a84a91cSTero Kristo 			prcm_irq_chips[i] = NULL;
2070a84a91cSTero Kristo 		}
2080a84a91cSTero Kristo 		kfree(prcm_irq_chips);
2090a84a91cSTero Kristo 		prcm_irq_chips = NULL;
2100a84a91cSTero Kristo 	}
2110a84a91cSTero Kristo 
21291285b6fSTero Kristo 	kfree(prcm_irq_setup->saved_mask);
21391285b6fSTero Kristo 	prcm_irq_setup->saved_mask = NULL;
21491285b6fSTero Kristo 
2150a84a91cSTero Kristo 	kfree(prcm_irq_setup->priority_mask);
2160a84a91cSTero Kristo 	prcm_irq_setup->priority_mask = NULL;
2170a84a91cSTero Kristo 
2180fb22a8fSMarc Zyngier 	if (prcm_irq_setup->xlate_irq)
2190fb22a8fSMarc Zyngier 		irq = prcm_irq_setup->xlate_irq(prcm_irq_setup->irq);
2200fb22a8fSMarc Zyngier 	else
2210fb22a8fSMarc Zyngier 		irq = prcm_irq_setup->irq;
2220fb22a8fSMarc Zyngier 	irq_set_chained_handler(irq, NULL);
2230a84a91cSTero Kristo 
2240a84a91cSTero Kristo 	if (prcm_irq_setup->base_irq > 0)
2250a84a91cSTero Kristo 		irq_free_descs(prcm_irq_setup->base_irq,
2260a84a91cSTero Kristo 			prcm_irq_setup->nr_regs * 32);
2270a84a91cSTero Kristo 	prcm_irq_setup->base_irq = 0;
2280a84a91cSTero Kristo }
2290a84a91cSTero Kristo 
23091285b6fSTero Kristo void omap_prcm_irq_prepare(void)
23191285b6fSTero Kristo {
23291285b6fSTero Kristo 	prcm_irq_setup->suspended = true;
23391285b6fSTero Kristo }
23491285b6fSTero Kristo 
23591285b6fSTero Kristo void omap_prcm_irq_complete(void)
23691285b6fSTero Kristo {
23791285b6fSTero Kristo 	prcm_irq_setup->suspended = false;
23891285b6fSTero Kristo 
23991285b6fSTero Kristo 	/* If we have not saved the masks, do not attempt to restore */
24091285b6fSTero Kristo 	if (!prcm_irq_setup->suspend_save_flag)
24191285b6fSTero Kristo 		return;
24291285b6fSTero Kristo 
24391285b6fSTero Kristo 	prcm_irq_setup->suspend_save_flag = false;
24491285b6fSTero Kristo 
24591285b6fSTero Kristo 	/*
24691285b6fSTero Kristo 	 * Re-enable all masked PRCM irq sources, this causes the PRCM
24791285b6fSTero Kristo 	 * interrupt to fire immediately if the events were masked
24891285b6fSTero Kristo 	 * previously in the chain handler
24991285b6fSTero Kristo 	 */
25091285b6fSTero Kristo 	prcm_irq_setup->restore_irqen(prcm_irq_setup->saved_mask);
25191285b6fSTero Kristo }
25291285b6fSTero Kristo 
2530a84a91cSTero Kristo /**
2540a84a91cSTero Kristo  * omap_prcm_register_chain_handler - initializes the prcm chained interrupt
2550a84a91cSTero Kristo  * handler based on provided parameters
2560a84a91cSTero Kristo  * @irq_setup: hardware data about the underlying PRM/PRCM
2570a84a91cSTero Kristo  *
2580a84a91cSTero Kristo  * Set up the PRCM chained interrupt handler on the PRCM IRQ.  Sets up
2590a84a91cSTero Kristo  * one generic IRQ chip per PRM interrupt status/enable register pair.
2600a84a91cSTero Kristo  * Returns 0 upon success, -EINVAL if called twice or if invalid
2610a84a91cSTero Kristo  * arguments are passed, or -ENOMEM on any other error.
2620a84a91cSTero Kristo  */
2630a84a91cSTero Kristo int omap_prcm_register_chain_handler(struct omap_prcm_irq_setup *irq_setup)
2640a84a91cSTero Kristo {
265eeb3711bSPaul Walmsley 	int nr_regs;
2660a84a91cSTero Kristo 	u32 mask[OMAP_PRCM_MAX_NR_PENDING_REG];
2670a84a91cSTero Kristo 	int offset, i;
2680a84a91cSTero Kristo 	struct irq_chip_generic *gc;
2690a84a91cSTero Kristo 	struct irq_chip_type *ct;
2700fb22a8fSMarc Zyngier 	unsigned int irq;
2710a84a91cSTero Kristo 
2720a84a91cSTero Kristo 	if (!irq_setup)
2730a84a91cSTero Kristo 		return -EINVAL;
2740a84a91cSTero Kristo 
275eeb3711bSPaul Walmsley 	nr_regs = irq_setup->nr_regs;
276eeb3711bSPaul Walmsley 
2770a84a91cSTero Kristo 	if (prcm_irq_setup) {
2780a84a91cSTero Kristo 		pr_err("PRCM: already initialized; won't reinitialize\n");
2790a84a91cSTero Kristo 		return -EINVAL;
2800a84a91cSTero Kristo 	}
2810a84a91cSTero Kristo 
2820a84a91cSTero Kristo 	if (nr_regs > OMAP_PRCM_MAX_NR_PENDING_REG) {
2830a84a91cSTero Kristo 		pr_err("PRCM: nr_regs too large\n");
2840a84a91cSTero Kristo 		return -EINVAL;
2850a84a91cSTero Kristo 	}
2860a84a91cSTero Kristo 
2870a84a91cSTero Kristo 	prcm_irq_setup = irq_setup;
2880a84a91cSTero Kristo 
2890a84a91cSTero Kristo 	prcm_irq_chips = kzalloc(sizeof(void *) * nr_regs, GFP_KERNEL);
29091285b6fSTero Kristo 	prcm_irq_setup->saved_mask = kzalloc(sizeof(u32) * nr_regs, GFP_KERNEL);
2910a84a91cSTero Kristo 	prcm_irq_setup->priority_mask = kzalloc(sizeof(u32) * nr_regs,
2920a84a91cSTero Kristo 		GFP_KERNEL);
2930a84a91cSTero Kristo 
29491285b6fSTero Kristo 	if (!prcm_irq_chips || !prcm_irq_setup->saved_mask ||
29591285b6fSTero Kristo 	    !prcm_irq_setup->priority_mask) {
2960a84a91cSTero Kristo 		pr_err("PRCM: kzalloc failed\n");
2970a84a91cSTero Kristo 		goto err;
2980a84a91cSTero Kristo 	}
2990a84a91cSTero Kristo 
3000a84a91cSTero Kristo 	memset(mask, 0, sizeof(mask));
3010a84a91cSTero Kristo 
3020a84a91cSTero Kristo 	for (i = 0; i < irq_setup->nr_irqs; i++) {
3030a84a91cSTero Kristo 		offset = irq_setup->irqs[i].offset;
3040a84a91cSTero Kristo 		mask[offset >> 5] |= 1 << (offset & 0x1f);
3050a84a91cSTero Kristo 		if (irq_setup->irqs[i].priority)
3060a84a91cSTero Kristo 			irq_setup->priority_mask[offset >> 5] |=
3070a84a91cSTero Kristo 				1 << (offset & 0x1f);
3080a84a91cSTero Kristo 	}
3090a84a91cSTero Kristo 
3100fb22a8fSMarc Zyngier 	if (irq_setup->xlate_irq)
3110fb22a8fSMarc Zyngier 		irq = irq_setup->xlate_irq(irq_setup->irq);
3120fb22a8fSMarc Zyngier 	else
3130fb22a8fSMarc Zyngier 		irq = irq_setup->irq;
3140fb22a8fSMarc Zyngier 	irq_set_chained_handler(irq, omap_prcm_irq_handler);
3150a84a91cSTero Kristo 
3160a84a91cSTero Kristo 	irq_setup->base_irq = irq_alloc_descs(-1, 0, irq_setup->nr_regs * 32,
3170a84a91cSTero Kristo 		0);
3180a84a91cSTero Kristo 
3190a84a91cSTero Kristo 	if (irq_setup->base_irq < 0) {
3200a84a91cSTero Kristo 		pr_err("PRCM: failed to allocate irq descs: %d\n",
3210a84a91cSTero Kristo 			irq_setup->base_irq);
3220a84a91cSTero Kristo 		goto err;
3230a84a91cSTero Kristo 	}
3240a84a91cSTero Kristo 
3254ba7c3c3SMing Lei 	for (i = 0; i < irq_setup->nr_regs; i++) {
3260a84a91cSTero Kristo 		gc = irq_alloc_generic_chip("PRCM", 1,
3270a84a91cSTero Kristo 			irq_setup->base_irq + i * 32, prm_base,
3280a84a91cSTero Kristo 			handle_level_irq);
3290a84a91cSTero Kristo 
3300a84a91cSTero Kristo 		if (!gc) {
3310a84a91cSTero Kristo 			pr_err("PRCM: failed to allocate generic chip\n");
3320a84a91cSTero Kristo 			goto err;
3330a84a91cSTero Kristo 		}
3340a84a91cSTero Kristo 		ct = gc->chip_types;
3350a84a91cSTero Kristo 		ct->chip.irq_ack = irq_gc_ack_set_bit;
3360a84a91cSTero Kristo 		ct->chip.irq_mask = irq_gc_mask_clr_bit;
3370a84a91cSTero Kristo 		ct->chip.irq_unmask = irq_gc_mask_set_bit;
3380a84a91cSTero Kristo 
3390a84a91cSTero Kristo 		ct->regs.ack = irq_setup->ack + i * 4;
3400a84a91cSTero Kristo 		ct->regs.mask = irq_setup->mask + i * 4;
3410a84a91cSTero Kristo 
3420a84a91cSTero Kristo 		irq_setup_generic_chip(gc, mask[i], 0, IRQ_NOREQUEST, 0);
3430a84a91cSTero Kristo 		prcm_irq_chips[i] = gc;
3440a84a91cSTero Kristo 	}
3450a84a91cSTero Kristo 
34630a69ef7STony Lindgren 	if (of_have_populated_dt()) {
34730a69ef7STony Lindgren 		int irq = omap_prcm_event_to_irq("io");
34881243651STero Kristo 		omap_pcs_legacy_init(irq, irq_setup->reconfigure_io_chain);
34930a69ef7STony Lindgren 	}
35030a69ef7STony Lindgren 
3510a84a91cSTero Kristo 	return 0;
3520a84a91cSTero Kristo 
3530a84a91cSTero Kristo err:
3540a84a91cSTero Kristo 	omap_prcm_irq_cleanup();
3550a84a91cSTero Kristo 	return -ENOMEM;
3560a84a91cSTero Kristo }
3573f4990f4SR Sricharan 
358e24c3573SPaul Walmsley /**
359d9a16f9aSPaul Walmsley  * omap2_set_globals_prm - set the PRM base address (for early use)
360d9a16f9aSPaul Walmsley  * @prm: PRM base virtual address
361d9a16f9aSPaul Walmsley  *
362d9a16f9aSPaul Walmsley  * XXX Will be replaced when the PRM/CM drivers are completed.
3633f4990f4SR Sricharan  */
364d9a16f9aSPaul Walmsley void __init omap2_set_globals_prm(void __iomem *prm)
3653f4990f4SR Sricharan {
366d9a16f9aSPaul Walmsley 	prm_base = prm;
367d9a16f9aSPaul Walmsley }
368d9a16f9aSPaul Walmsley 
369d9a16f9aSPaul Walmsley /**
3702bb2a5d3SPaul Walmsley  * prm_read_reset_sources - return the sources of the SoC's last reset
3712bb2a5d3SPaul Walmsley  *
3722bb2a5d3SPaul Walmsley  * Return a u32 bitmask representing the reset sources that caused the
3732bb2a5d3SPaul Walmsley  * SoC to reset.  The low-level per-SoC functions called by this
3742bb2a5d3SPaul Walmsley  * function remap the SoC-specific reset source bits into an
3752bb2a5d3SPaul Walmsley  * OMAP-common set of reset source bits, defined in
3762bb2a5d3SPaul Walmsley  * arch/arm/mach-omap2/prm.h.  Returns the standardized reset source
3772bb2a5d3SPaul Walmsley  * u32 bitmask from the hardware upon success, or returns (1 <<
3782bb2a5d3SPaul Walmsley  * OMAP_UNKNOWN_RST_SRC_ID_SHIFT) if no low-level read_reset_sources()
3792bb2a5d3SPaul Walmsley  * function was registered.
3803f4990f4SR Sricharan  */
3812bb2a5d3SPaul Walmsley u32 prm_read_reset_sources(void)
3823f4990f4SR Sricharan {
3832bb2a5d3SPaul Walmsley 	u32 ret = 1 << OMAP_UNKNOWN_RST_SRC_ID_SHIFT;
3842bb2a5d3SPaul Walmsley 
3852bb2a5d3SPaul Walmsley 	if (prm_ll_data->read_reset_sources)
3862bb2a5d3SPaul Walmsley 		ret = prm_ll_data->read_reset_sources();
3872bb2a5d3SPaul Walmsley 	else
3882bb2a5d3SPaul Walmsley 		WARN_ONCE(1, "prm: %s: no mapping function defined for reset sources\n", __func__);
3892bb2a5d3SPaul Walmsley 
3902bb2a5d3SPaul Walmsley 	return ret;
3912bb2a5d3SPaul Walmsley }
3922bb2a5d3SPaul Walmsley 
3932bb2a5d3SPaul Walmsley /**
394e6d3a8b0SRajendra Nayak  * prm_was_any_context_lost_old - was device context lost? (old API)
395e6d3a8b0SRajendra Nayak  * @part: PRM partition ID (e.g., OMAP4430_PRM_PARTITION)
396e6d3a8b0SRajendra Nayak  * @inst: PRM instance offset (e.g., OMAP4430_PRM_MPU_INST)
397e6d3a8b0SRajendra Nayak  * @idx: CONTEXT register offset
398e6d3a8b0SRajendra Nayak  *
399e6d3a8b0SRajendra Nayak  * Return 1 if any bits were set in the *_CONTEXT_* register
400e6d3a8b0SRajendra Nayak  * identified by (@part, @inst, @idx), which means that some context
401e6d3a8b0SRajendra Nayak  * was lost for that module; otherwise, return 0.  XXX Deprecated;
402e6d3a8b0SRajendra Nayak  * callers need to use a less-SoC-dependent way to identify hardware
403e6d3a8b0SRajendra Nayak  * IP blocks.
404e6d3a8b0SRajendra Nayak  */
405e6d3a8b0SRajendra Nayak bool prm_was_any_context_lost_old(u8 part, s16 inst, u16 idx)
406e6d3a8b0SRajendra Nayak {
407e6d3a8b0SRajendra Nayak 	bool ret = true;
408e6d3a8b0SRajendra Nayak 
409e6d3a8b0SRajendra Nayak 	if (prm_ll_data->was_any_context_lost_old)
410e6d3a8b0SRajendra Nayak 		ret = prm_ll_data->was_any_context_lost_old(part, inst, idx);
411e6d3a8b0SRajendra Nayak 	else
412e6d3a8b0SRajendra Nayak 		WARN_ONCE(1, "prm: %s: no mapping function defined\n",
413e6d3a8b0SRajendra Nayak 			  __func__);
414e6d3a8b0SRajendra Nayak 
415e6d3a8b0SRajendra Nayak 	return ret;
416e6d3a8b0SRajendra Nayak }
417e6d3a8b0SRajendra Nayak 
418e6d3a8b0SRajendra Nayak /**
419e6d3a8b0SRajendra Nayak  * prm_clear_context_lost_flags_old - clear context loss flags (old API)
420e6d3a8b0SRajendra Nayak  * @part: PRM partition ID (e.g., OMAP4430_PRM_PARTITION)
421e6d3a8b0SRajendra Nayak  * @inst: PRM instance offset (e.g., OMAP4430_PRM_MPU_INST)
422e6d3a8b0SRajendra Nayak  * @idx: CONTEXT register offset
423e6d3a8b0SRajendra Nayak  *
424e6d3a8b0SRajendra Nayak  * Clear hardware context loss bits for the module identified by
425e6d3a8b0SRajendra Nayak  * (@part, @inst, @idx).  No return value.  XXX Deprecated; callers
426e6d3a8b0SRajendra Nayak  * need to use a less-SoC-dependent way to identify hardware IP
427e6d3a8b0SRajendra Nayak  * blocks.
428e6d3a8b0SRajendra Nayak  */
429e6d3a8b0SRajendra Nayak void prm_clear_context_loss_flags_old(u8 part, s16 inst, u16 idx)
430e6d3a8b0SRajendra Nayak {
431e6d3a8b0SRajendra Nayak 	if (prm_ll_data->clear_context_loss_flags_old)
432e6d3a8b0SRajendra Nayak 		prm_ll_data->clear_context_loss_flags_old(part, inst, idx);
433e6d3a8b0SRajendra Nayak 	else
434e6d3a8b0SRajendra Nayak 		WARN_ONCE(1, "prm: %s: no mapping function defined\n",
435e6d3a8b0SRajendra Nayak 			  __func__);
436e6d3a8b0SRajendra Nayak }
437e6d3a8b0SRajendra Nayak 
438e6d3a8b0SRajendra Nayak /**
439efd44dc3STero Kristo  * omap_prm_assert_hardreset - assert hardreset for an IP block
440efd44dc3STero Kristo  * @shift: register bit shift corresponding to the reset line
441efd44dc3STero Kristo  * @part: PRM partition
442efd44dc3STero Kristo  * @prm_mod: PRM submodule base or instance offset
443efd44dc3STero Kristo  * @offset: register offset
444efd44dc3STero Kristo  *
445efd44dc3STero Kristo  * Asserts a hardware reset line for an IP block.
446efd44dc3STero Kristo  */
447efd44dc3STero Kristo int omap_prm_assert_hardreset(u8 shift, u8 part, s16 prm_mod, u16 offset)
448efd44dc3STero Kristo {
449efd44dc3STero Kristo 	if (!prm_ll_data->assert_hardreset) {
450efd44dc3STero Kristo 		WARN_ONCE(1, "prm: %s: no mapping function defined\n",
451efd44dc3STero Kristo 			  __func__);
452efd44dc3STero Kristo 		return -EINVAL;
453efd44dc3STero Kristo 	}
454efd44dc3STero Kristo 
455efd44dc3STero Kristo 	return prm_ll_data->assert_hardreset(shift, part, prm_mod, offset);
456efd44dc3STero Kristo }
457efd44dc3STero Kristo 
458efd44dc3STero Kristo /**
45937fb59d7STero Kristo  * omap_prm_deassert_hardreset - deassert hardreset for an IP block
46037fb59d7STero Kristo  * @shift: register bit shift corresponding to the reset line
46137fb59d7STero Kristo  * @st_shift: reset status bit shift corresponding to the reset line
46237fb59d7STero Kristo  * @part: PRM partition
46337fb59d7STero Kristo  * @prm_mod: PRM submodule base or instance offset
46437fb59d7STero Kristo  * @offset: register offset
46537fb59d7STero Kristo  * @st_offset: status register offset
46637fb59d7STero Kristo  *
46737fb59d7STero Kristo  * Deasserts a hardware reset line for an IP block.
46837fb59d7STero Kristo  */
46937fb59d7STero Kristo int omap_prm_deassert_hardreset(u8 shift, u8 st_shift, u8 part, s16 prm_mod,
47037fb59d7STero Kristo 				u16 offset, u16 st_offset)
47137fb59d7STero Kristo {
47237fb59d7STero Kristo 	if (!prm_ll_data->deassert_hardreset) {
47337fb59d7STero Kristo 		WARN_ONCE(1, "prm: %s: no mapping function defined\n",
47437fb59d7STero Kristo 			  __func__);
47537fb59d7STero Kristo 		return -EINVAL;
47637fb59d7STero Kristo 	}
47737fb59d7STero Kristo 
47837fb59d7STero Kristo 	return prm_ll_data->deassert_hardreset(shift, st_shift, part, prm_mod,
47937fb59d7STero Kristo 					       offset, st_offset);
48037fb59d7STero Kristo }
48137fb59d7STero Kristo 
48237fb59d7STero Kristo /**
4831bc28b34STero Kristo  * omap_prm_is_hardreset_asserted - check the hardreset status for an IP block
4841bc28b34STero Kristo  * @shift: register bit shift corresponding to the reset line
4851bc28b34STero Kristo  * @part: PRM partition
4861bc28b34STero Kristo  * @prm_mod: PRM submodule base or instance offset
4871bc28b34STero Kristo  * @offset: register offset
4881bc28b34STero Kristo  *
4891bc28b34STero Kristo  * Checks if a hardware reset line for an IP block is enabled or not.
4901bc28b34STero Kristo  */
4911bc28b34STero Kristo int omap_prm_is_hardreset_asserted(u8 shift, u8 part, s16 prm_mod, u16 offset)
4921bc28b34STero Kristo {
4931bc28b34STero Kristo 	if (!prm_ll_data->is_hardreset_asserted) {
4941bc28b34STero Kristo 		WARN_ONCE(1, "prm: %s: no mapping function defined\n",
4951bc28b34STero Kristo 			  __func__);
4961bc28b34STero Kristo 		return -EINVAL;
4971bc28b34STero Kristo 	}
4981bc28b34STero Kristo 
4991bc28b34STero Kristo 	return prm_ll_data->is_hardreset_asserted(shift, part, prm_mod, offset);
5001bc28b34STero Kristo }
5011bc28b34STero Kristo 
5021bc28b34STero Kristo /**
5034984eeafSTero Kristo  * omap_prm_reconfigure_io_chain - clear latches and reconfigure I/O chain
5044984eeafSTero Kristo  *
5054984eeafSTero Kristo  * Clear any previously-latched I/O wakeup events and ensure that the
5064984eeafSTero Kristo  * I/O wakeup gates are aligned with the current mux settings.
5074984eeafSTero Kristo  * Calls SoC specific I/O chain reconfigure function if available,
5084984eeafSTero Kristo  * otherwise does nothing.
5094984eeafSTero Kristo  */
5104984eeafSTero Kristo void omap_prm_reconfigure_io_chain(void)
5114984eeafSTero Kristo {
5124984eeafSTero Kristo 	if (!prcm_irq_setup || !prcm_irq_setup->reconfigure_io_chain)
5134984eeafSTero Kristo 		return;
5144984eeafSTero Kristo 
5154984eeafSTero Kristo 	prcm_irq_setup->reconfigure_io_chain();
5164984eeafSTero Kristo }
5174984eeafSTero Kristo 
5184984eeafSTero Kristo /**
51961c8621eSTero Kristo  * omap_prm_reset_system - trigger global SW reset
52061c8621eSTero Kristo  *
52161c8621eSTero Kristo  * Triggers SoC specific global warm reset to reboot the device.
52261c8621eSTero Kristo  */
52361c8621eSTero Kristo void omap_prm_reset_system(void)
52461c8621eSTero Kristo {
52561c8621eSTero Kristo 	if (!prm_ll_data->reset_system) {
52661c8621eSTero Kristo 		WARN_ONCE(1, "prm: %s: no mapping function defined\n",
52761c8621eSTero Kristo 			  __func__);
52861c8621eSTero Kristo 		return;
52961c8621eSTero Kristo 	}
53061c8621eSTero Kristo 
53161c8621eSTero Kristo 	prm_ll_data->reset_system();
53261c8621eSTero Kristo 
53361c8621eSTero Kristo 	while (1)
53461c8621eSTero Kristo 		cpu_relax();
53561c8621eSTero Kristo }
53661c8621eSTero Kristo 
53761c8621eSTero Kristo /**
5389cb6d363STero Kristo  * omap_prm_clear_mod_irqs - clear wake-up events from PRCM interrupt
5399cb6d363STero Kristo  * @module: PRM module to clear wakeups from
5409cb6d363STero Kristo  * @regs: register to clear
5419cb6d363STero Kristo  * @wkst_mask: wkst bits to clear
5429cb6d363STero Kristo  *
5439cb6d363STero Kristo  * Clears any wakeup events for the module and register set defined.
5449cb6d363STero Kristo  * Uses SoC specific implementation to do the actual wakeup status
5459cb6d363STero Kristo  * clearing.
5469cb6d363STero Kristo  */
5479cb6d363STero Kristo int omap_prm_clear_mod_irqs(s16 module, u8 regs, u32 wkst_mask)
5489cb6d363STero Kristo {
5499cb6d363STero Kristo 	if (!prm_ll_data->clear_mod_irqs) {
5509cb6d363STero Kristo 		WARN_ONCE(1, "prm: %s: no mapping function defined\n",
5519cb6d363STero Kristo 			  __func__);
5529cb6d363STero Kristo 		return -EINVAL;
5539cb6d363STero Kristo 	}
5549cb6d363STero Kristo 
5559cb6d363STero Kristo 	return prm_ll_data->clear_mod_irqs(module, regs, wkst_mask);
5569cb6d363STero Kristo }
5579cb6d363STero Kristo 
5589cb6d363STero Kristo /**
559e9f1ddcdSTero Kristo  * omap_prm_vp_check_txdone - check voltage processor TX done status
560e9f1ddcdSTero Kristo  *
561e9f1ddcdSTero Kristo  * Checks if voltage processor transmission has been completed.
562e9f1ddcdSTero Kristo  * Returns non-zero if a transmission has completed, 0 otherwise.
563e9f1ddcdSTero Kristo  */
564e9f1ddcdSTero Kristo u32 omap_prm_vp_check_txdone(u8 vp_id)
565e9f1ddcdSTero Kristo {
566e9f1ddcdSTero Kristo 	if (!prm_ll_data->vp_check_txdone) {
567e9f1ddcdSTero Kristo 		WARN_ONCE(1, "prm: %s: no mapping function defined\n",
568e9f1ddcdSTero Kristo 			  __func__);
569e9f1ddcdSTero Kristo 		return 0;
570e9f1ddcdSTero Kristo 	}
571e9f1ddcdSTero Kristo 
572e9f1ddcdSTero Kristo 	return prm_ll_data->vp_check_txdone(vp_id);
573e9f1ddcdSTero Kristo }
574e9f1ddcdSTero Kristo 
575e9f1ddcdSTero Kristo /**
576e9f1ddcdSTero Kristo  * omap_prm_vp_clear_txdone - clears voltage processor TX done status
577e9f1ddcdSTero Kristo  *
578e9f1ddcdSTero Kristo  * Clears the status bit for completed voltage processor transmission
579e9f1ddcdSTero Kristo  * returned by prm_vp_check_txdone.
580e9f1ddcdSTero Kristo  */
581e9f1ddcdSTero Kristo void omap_prm_vp_clear_txdone(u8 vp_id)
582e9f1ddcdSTero Kristo {
583e9f1ddcdSTero Kristo 	if (!prm_ll_data->vp_clear_txdone) {
584e9f1ddcdSTero Kristo 		WARN_ONCE(1, "prm: %s: no mapping function defined\n",
585e9f1ddcdSTero Kristo 			  __func__);
586e9f1ddcdSTero Kristo 		return;
587e9f1ddcdSTero Kristo 	}
588e9f1ddcdSTero Kristo 
589e9f1ddcdSTero Kristo 	prm_ll_data->vp_clear_txdone(vp_id);
590e9f1ddcdSTero Kristo }
591e9f1ddcdSTero Kristo 
592e9f1ddcdSTero Kristo /**
593e24c3573SPaul Walmsley  * prm_register - register per-SoC low-level data with the PRM
594e24c3573SPaul Walmsley  * @pld: low-level per-SoC OMAP PRM data & function pointers to register
595e24c3573SPaul Walmsley  *
596e24c3573SPaul Walmsley  * Register per-SoC low-level OMAP PRM data and function pointers with
597e24c3573SPaul Walmsley  * the OMAP PRM common interface.  The caller must keep the data
598e24c3573SPaul Walmsley  * pointed to by @pld valid until it calls prm_unregister() and
599e24c3573SPaul Walmsley  * it returns successfully.  Returns 0 upon success, -EINVAL if @pld
600e24c3573SPaul Walmsley  * is NULL, or -EEXIST if prm_register() has already been called
601e24c3573SPaul Walmsley  * without an intervening prm_unregister().
602e24c3573SPaul Walmsley  */
603e24c3573SPaul Walmsley int prm_register(struct prm_ll_data *pld)
604e24c3573SPaul Walmsley {
605e24c3573SPaul Walmsley 	if (!pld)
606e24c3573SPaul Walmsley 		return -EINVAL;
607e24c3573SPaul Walmsley 
608e24c3573SPaul Walmsley 	if (prm_ll_data != &null_prm_ll_data)
609e24c3573SPaul Walmsley 		return -EEXIST;
610e24c3573SPaul Walmsley 
611e24c3573SPaul Walmsley 	prm_ll_data = pld;
612e24c3573SPaul Walmsley 
6133f4990f4SR Sricharan 	return 0;
6143f4990f4SR Sricharan }
6153f4990f4SR Sricharan 
616e24c3573SPaul Walmsley /**
617e24c3573SPaul Walmsley  * prm_unregister - unregister per-SoC low-level data & function pointers
618e24c3573SPaul Walmsley  * @pld: low-level per-SoC OMAP PRM data & function pointers to unregister
619e24c3573SPaul Walmsley  *
620e24c3573SPaul Walmsley  * Unregister per-SoC low-level OMAP PRM data and function pointers
621e24c3573SPaul Walmsley  * that were previously registered with prm_register().  The
622e24c3573SPaul Walmsley  * caller may not destroy any of the data pointed to by @pld until
623e24c3573SPaul Walmsley  * this function returns successfully.  Returns 0 upon success, or
624e24c3573SPaul Walmsley  * -EINVAL if @pld is NULL or if @pld does not match the struct
625e24c3573SPaul Walmsley  * prm_ll_data * previously registered by prm_register().
626e24c3573SPaul Walmsley  */
627e24c3573SPaul Walmsley int prm_unregister(struct prm_ll_data *pld)
6283f4990f4SR Sricharan {
629e24c3573SPaul Walmsley 	if (!pld || prm_ll_data != pld)
630e24c3573SPaul Walmsley 		return -EINVAL;
6313f4990f4SR Sricharan 
632e24c3573SPaul Walmsley 	prm_ll_data = &null_prm_ll_data;
633e24c3573SPaul Walmsley 
6343f4990f4SR Sricharan 	return 0;
6353f4990f4SR Sricharan }
636943a63a4STero Kristo 
637*ab7b2ffcSTero Kristo #ifdef CONFIG_ARCH_OMAP2
638*ab7b2ffcSTero Kristo static struct omap_prcm_init_data omap2_prm_data __initdata = {
6393a3e1c88STero Kristo 	.index = TI_CLKM_PRM,
640*ab7b2ffcSTero Kristo 	.init = omap2xxx_prm_init,
6413a3e1c88STero Kristo };
642*ab7b2ffcSTero Kristo #endif
6433a3e1c88STero Kristo 
644*ab7b2ffcSTero Kristo #ifdef CONFIG_ARCH_OMAP3
645*ab7b2ffcSTero Kristo static struct omap_prcm_init_data omap3_prm_data __initdata = {
646ae521d4dSTero Kristo 	.index = TI_CLKM_PRM,
647*ab7b2ffcSTero Kristo 	.init = omap3xxx_prm_init,
648ae521d4dSTero Kristo 
649ae521d4dSTero Kristo 	/*
650ae521d4dSTero Kristo 	 * IVA2 offset is a negative value, must offset the prm_base
651ae521d4dSTero Kristo 	 * address by this to get it to positive
652ae521d4dSTero Kristo 	 */
653ae521d4dSTero Kristo 	.offset = -OMAP3430_IVA2_MOD,
654ae521d4dSTero Kristo };
655*ab7b2ffcSTero Kristo #endif
656ae521d4dSTero Kristo 
657*ab7b2ffcSTero Kristo #if defined(CONFIG_SOC_AM33XX) || defined(CONFIG_SOC_TI81XX)
658*ab7b2ffcSTero Kristo static struct omap_prcm_init_data am3_prm_data __initdata = {
659*ab7b2ffcSTero Kristo 	.index = TI_CLKM_PRM,
660*ab7b2ffcSTero Kristo 	.init = am33xx_prm_init,
661*ab7b2ffcSTero Kristo };
662*ab7b2ffcSTero Kristo #endif
663*ab7b2ffcSTero Kristo 
664*ab7b2ffcSTero Kristo #if defined(CONFIG_ARCH_OMAP4) || defined(CONFIG_SOC_OMAP5) || \
665*ab7b2ffcSTero Kristo 	defined(CONFIG_SOC_DRA7XX) || defined(CONFIG_SOC_AM43XX)
666*ab7b2ffcSTero Kristo static struct omap_prcm_init_data omap4_prm_data __initdata = {
667*ab7b2ffcSTero Kristo 	.index = TI_CLKM_PRM,
668*ab7b2ffcSTero Kristo 	.init = omap44xx_prm_init,
669*ab7b2ffcSTero Kristo };
670*ab7b2ffcSTero Kristo #endif
671*ab7b2ffcSTero Kristo 
672*ab7b2ffcSTero Kristo #if defined(CONFIG_ARCH_OMAP4) || defined(CONFIG_SOC_OMAP5)
673*ab7b2ffcSTero Kristo static struct omap_prcm_init_data scrm_data __initdata = {
6743a3e1c88STero Kristo 	.index = TI_CLKM_SCRM,
6753a3e1c88STero Kristo };
676*ab7b2ffcSTero Kristo #endif
6773a3e1c88STero Kristo 
678*ab7b2ffcSTero Kristo static const struct of_device_id omap_prcm_dt_match_table[] __initconst = {
679*ab7b2ffcSTero Kristo #ifdef CONFIG_SOC_AM33XX
680*ab7b2ffcSTero Kristo 	{ .compatible = "ti,am3-prcm", .data = &am3_prm_data },
681*ab7b2ffcSTero Kristo #endif
682*ab7b2ffcSTero Kristo #ifdef CONFIG_SOC_AM43XX
683*ab7b2ffcSTero Kristo 	{ .compatible = "ti,am4-prcm", .data = &omap4_prm_data },
684*ab7b2ffcSTero Kristo #endif
685*ab7b2ffcSTero Kristo #ifdef CONFIG_SOC_TI81XX
686*ab7b2ffcSTero Kristo 	{ .compatible = "ti,dm814-prcm", .data = &am3_prm_data },
687*ab7b2ffcSTero Kristo 	{ .compatible = "ti,dm816-prcm", .data = &am3_prm_data },
688*ab7b2ffcSTero Kristo #endif
689*ab7b2ffcSTero Kristo #ifdef CONFIG_ARCH_OMAP2
690*ab7b2ffcSTero Kristo 	{ .compatible = "ti,omap2-prcm", .data = &omap2_prm_data },
691*ab7b2ffcSTero Kristo #endif
692*ab7b2ffcSTero Kristo #ifdef CONFIG_ARCH_OMAP3
693ae521d4dSTero Kristo 	{ .compatible = "ti,omap3-prm", .data = &omap3_prm_data },
694*ab7b2ffcSTero Kristo #endif
695*ab7b2ffcSTero Kristo #ifdef CONFIG_ARCH_OMAP4
696*ab7b2ffcSTero Kristo 	{ .compatible = "ti,omap4-prm", .data = &omap4_prm_data },
6973a3e1c88STero Kristo 	{ .compatible = "ti,omap4-scrm", .data = &scrm_data },
698*ab7b2ffcSTero Kristo #endif
699*ab7b2ffcSTero Kristo #ifdef CONFIG_SOC_OMAP5
700*ab7b2ffcSTero Kristo 	{ .compatible = "ti,omap5-prm", .data = &omap4_prm_data },
7013a3e1c88STero Kristo 	{ .compatible = "ti,omap5-scrm", .data = &scrm_data },
702*ab7b2ffcSTero Kristo #endif
703*ab7b2ffcSTero Kristo #ifdef CONFIG_SOC_DRA7XX
704*ab7b2ffcSTero Kristo 	{ .compatible = "ti,dra7-prm", .data = &omap4_prm_data },
705*ab7b2ffcSTero Kristo #endif
706943a63a4STero Kristo 	{ }
707943a63a4STero Kristo };
708943a63a4STero Kristo 
7093a1a388eSTero Kristo /**
710ae521d4dSTero Kristo  * omap2_prm_base_init - initialize iomappings for the PRM driver
711ae521d4dSTero Kristo  *
712ae521d4dSTero Kristo  * Detects and initializes the iomappings for the PRM driver, based
713ae521d4dSTero Kristo  * on the DT data. Returns 0 in success, negative error value
714ae521d4dSTero Kristo  * otherwise.
715ae521d4dSTero Kristo  */
716ae521d4dSTero Kristo int __init omap2_prm_base_init(void)
717ae521d4dSTero Kristo {
718ae521d4dSTero Kristo 	struct device_node *np;
719ae521d4dSTero Kristo 	const struct of_device_id *match;
720ae521d4dSTero Kristo 	struct omap_prcm_init_data *data;
721ae521d4dSTero Kristo 	void __iomem *mem;
722ae521d4dSTero Kristo 
723ae521d4dSTero Kristo 	for_each_matching_node_and_match(np, omap_prcm_dt_match_table, &match) {
724ae521d4dSTero Kristo 		data = (struct omap_prcm_init_data *)match->data;
725ae521d4dSTero Kristo 
726ae521d4dSTero Kristo 		mem = of_iomap(np, 0);
727ae521d4dSTero Kristo 		if (!mem)
728ae521d4dSTero Kristo 			return -ENOMEM;
729ae521d4dSTero Kristo 
730ae521d4dSTero Kristo 		if (data->index == TI_CLKM_PRM)
731ae521d4dSTero Kristo 			prm_base = mem + data->offset;
732ae521d4dSTero Kristo 
733ae521d4dSTero Kristo 		data->mem = mem;
734*ab7b2ffcSTero Kristo 
735*ab7b2ffcSTero Kristo 		data->np = np;
736*ab7b2ffcSTero Kristo 
737*ab7b2ffcSTero Kristo 		if (data->init)
738*ab7b2ffcSTero Kristo 			data->init(data);
739ae521d4dSTero Kristo 	}
740ae521d4dSTero Kristo 
741ae521d4dSTero Kristo 	return 0;
742ae521d4dSTero Kristo }
743ae521d4dSTero Kristo 
744*ab7b2ffcSTero Kristo int __init omap2_prcm_base_init(void)
745*ab7b2ffcSTero Kristo {
746*ab7b2ffcSTero Kristo 	return omap2_prm_base_init();
747*ab7b2ffcSTero Kristo }
748*ab7b2ffcSTero Kristo 
749ae521d4dSTero Kristo /**
7503a1a388eSTero Kristo  * omap_prcm_init - low level init for the PRCM drivers
7513a1a388eSTero Kristo  *
7523a1a388eSTero Kristo  * Initializes the low level clock infrastructure for PRCM drivers.
7533a1a388eSTero Kristo  * Returns 0 in success, negative error value in failure.
7543a1a388eSTero Kristo  */
7553a1a388eSTero Kristo int __init omap_prcm_init(void)
756943a63a4STero Kristo {
757943a63a4STero Kristo 	struct device_node *np;
7583a3e1c88STero Kristo 	const struct of_device_id *match;
7593a3e1c88STero Kristo 	const struct omap_prcm_init_data *data;
7609f029b15STero Kristo 	int ret;
761943a63a4STero Kristo 
7623a3e1c88STero Kristo 	for_each_matching_node_and_match(np, omap_prcm_dt_match_table, &match) {
7633a3e1c88STero Kristo 		data = match->data;
7643a3e1c88STero Kristo 
765ae521d4dSTero Kristo 		ret = omap2_clk_provider_init(np, data->index, data->mem);
7669f029b15STero Kristo 		if (ret)
7679f029b15STero Kristo 			return ret;
768943a63a4STero Kristo 	}
769943a63a4STero Kristo 
770fe87414fSTero Kristo 	omap_cm_init();
771fe87414fSTero Kristo 
772943a63a4STero Kristo 	return 0;
773943a63a4STero Kristo }
774b550e47fSTero Kristo 
775b550e47fSTero Kristo static int __init prm_late_init(void)
776b550e47fSTero Kristo {
777b550e47fSTero Kristo 	if (prm_ll_data->late_init)
778b550e47fSTero Kristo 		return prm_ll_data->late_init();
779b550e47fSTero Kristo 	return 0;
780b550e47fSTero Kristo }
781b550e47fSTero Kristo subsys_initcall(prm_late_init);
782