1 /*
2 * omap_hwmod implementation for OMAP2/3/4
3 *
4 * Copyright (C) 2009-2011 Nokia Corporation
5 * Copyright (C) 2011-2012 Texas Instruments, Inc.
6 *
7 * Paul Walmsley, Benoît Cousson, Kevin Hilman
8 *
9 * Created in collaboration with (alphabetical order): Thara Gopinath,
10 * Tony Lindgren, Rajendra Nayak, Vikram Pandita, Sakari Poussa, Anand
11 * Sawant, Santosh Shilimkar, Richard Woodruff
12 *
13 * This program is free software; you can redistribute it and/or modify
14 * it under the terms of the GNU General Public License version 2 as
15 * published by the Free Software Foundation.
16 *
17 * Introduction
18 * ------------
19 * One way to view an OMAP SoC is as a collection of largely unrelated
20 * IP blocks connected by interconnects. The IP blocks include
21 * devices such as ARM processors, audio serial interfaces, UARTs,
22 * etc. Some of these devices, like the DSP, are created by TI;
23 * others, like the SGX, largely originate from external vendors. In
24 * TI's documentation, on-chip devices are referred to as "OMAP
25 * modules." Some of these IP blocks are identical across several
26 * OMAP versions. Others are revised frequently.
27 *
28 * These OMAP modules are tied together by various interconnects.
29 * Most of the address and data flow between modules is via OCP-based
30 * interconnects such as the L3 and L4 buses; but there are other
31 * interconnects that distribute the hardware clock tree, handle idle
32 * and reset signaling, supply power, and connect the modules to
33 * various pads or balls on the OMAP package.
34 *
35 * OMAP hwmod provides a consistent way to describe the on-chip
36 * hardware blocks and their integration into the rest of the chip.
37 * This description can be automatically generated from the TI
38 * hardware database. OMAP hwmod provides a standard, consistent API
39 * to reset, enable, idle, and disable these hardware blocks. And
40 * hwmod provides a way for other core code, such as the Linux device
41 * code or the OMAP power management and address space mapping code,
42 * to query the hardware database.
43 *
44 * Using hwmod
45 * -----------
46 * Drivers won't call hwmod functions directly. That is done by the
47 * omap_device code, and in rare occasions, by custom integration code
48 * in arch/arm/ *omap*. The omap_device code includes functions to
49 * build a struct platform_device using omap_hwmod data, and that is
50 * currently how hwmod data is communicated to drivers and to the
51 * Linux driver model. Most drivers will call omap_hwmod functions only
52 * indirectly, via pm_runtime*() functions.
53 *
54 * From a layering perspective, here is where the OMAP hwmod code
55 * fits into the kernel software stack:
56 *
57 * +-------------------------------+
58 * | Device driver code |
59 * | (e.g., drivers/) |
60 * +-------------------------------+
61 * | Linux driver model |
62 * | (platform_device / |
63 * | platform_driver data/code) |
64 * +-------------------------------+
65 * | OMAP core-driver integration |
66 * |(arch/arm/mach-omap2/devices.c)|
67 * +-------------------------------+
68 * | omap_device code |
69 * | (../plat-omap/omap_device.c) |
70 * +-------------------------------+
71 * ----> | omap_hwmod code/data | <-----
72 * | (../mach-omap2/omap_hwmod*) |
73 * +-------------------------------+
74 * | OMAP clock/PRCM/register fns |
75 * | ({read,write}l_relaxed, clk*) |
76 * +-------------------------------+
77 *
78 * Device drivers should not contain any OMAP-specific code or data in
79 * them. They should only contain code to operate the IP block that
80 * the driver is responsible for. This is because these IP blocks can
81 * also appear in other SoCs, either from TI (such as DaVinci) or from
82 * other manufacturers; and drivers should be reusable across other
83 * platforms.
84 *
85 * The OMAP hwmod code also will attempt to reset and idle all on-chip
86 * devices upon boot. The goal here is for the kernel to be
87 * completely self-reliant and independent from bootloaders. This is
88 * to ensure a repeatable configuration, both to ensure consistent
89 * runtime behavior, and to make it easier for others to reproduce
90 * bugs.
91 *
92 * OMAP module activity states
93 * ---------------------------
94 * The hwmod code considers modules to be in one of several activity
95 * states. IP blocks start out in an UNKNOWN state, then once they
96 * are registered via the hwmod code, proceed to the REGISTERED state.
97 * Once their clock names are resolved to clock pointers, the module
98 * enters the CLKS_INITED state; and finally, once the module has been
99 * reset and the integration registers programmed, the INITIALIZED state
100 * is entered. The hwmod code will then place the module into either
101 * the IDLE state to save power, or in the case of a critical system
102 * module, the ENABLED state.
103 *
104 * OMAP core integration code can then call omap_hwmod*() functions
105 * directly to move the module between the IDLE, ENABLED, and DISABLED
106 * states, as needed. This is done during both the PM idle loop, and
107 * in the OMAP core integration code's implementation of the PM runtime
108 * functions.
109 *
110 * References
111 * ----------
112 * This is a partial list.
113 * - OMAP2420 Multimedia Processor Silicon Revision 2.1.1, 2.2 (SWPU064)
114 * - OMAP2430 Multimedia Device POP Silicon Revision 2.1 (SWPU090)
115 * - OMAP34xx Multimedia Device Silicon Revision 3.1 (SWPU108)
116 * - OMAP4430 Multimedia Device Silicon Revision 1.0 (SWPU140)
117 * - Open Core Protocol Specification 2.2
118 *
119 * To do:
120 * - handle IO mapping
121 * - bus throughput & module latency measurement code
122 *
123 * XXX add tests at the beginning of each function to ensure the hwmod is
124 * in the appropriate state
125 * XXX error return values should be checked to ensure that they are
126 * appropriate
127 */
128 #undef DEBUG
129
130 #include <linux/kernel.h>
131 #include <linux/errno.h>
132 #include <linux/io.h>
133 #include <linux/clk.h>
134 #include <linux/clk-provider.h>
135 #include <linux/delay.h>
136 #include <linux/err.h>
137 #include <linux/list.h>
138 #include <linux/mutex.h>
139 #include <linux/spinlock.h>
140 #include <linux/slab.h>
141 #include <linux/cpu.h>
142 #include <linux/of.h>
143 #include <linux/of_address.h>
144 #include <linux/bootmem.h>
145
146 #include <asm/system_misc.h>
147
148 #include "clock.h"
149 #include "omap_hwmod.h"
150
151 #include "soc.h"
152 #include "common.h"
153 #include "clockdomain.h"
154 #include "powerdomain.h"
155 #include "cm2xxx.h"
156 #include "cm3xxx.h"
157 #include "cm33xx.h"
158 #include "prm.h"
159 #include "prm3xxx.h"
160 #include "prm44xx.h"
161 #include "prm33xx.h"
162 #include "prminst44xx.h"
163 #include "pm.h"
164
165 /* Name of the OMAP hwmod for the MPU */
166 #define MPU_INITIATOR_NAME "mpu"
167
168 /*
169 * Number of struct omap_hwmod_link records per struct
170 * omap_hwmod_ocp_if record (master->slave and slave->master)
171 */
172 #define LINKS_PER_OCP_IF 2
173
174 /*
175 * Address offset (in bytes) between the reset control and the reset
176 * status registers: 4 bytes on OMAP4
177 */
178 #define OMAP4_RST_CTRL_ST_OFFSET 4
179
180 /*
181 * Maximum length for module clock handle names
182 */
183 #define MOD_CLK_MAX_NAME_LEN 32
184
185 /**
186 * struct clkctrl_provider - clkctrl provider mapping data
187 * @addr: base address for the provider
188 * @offset: base offset for the provider
189 * @clkdm: base clockdomain for provider
190 * @node: device node associated with the provider
191 * @link: list link
192 */
193 struct clkctrl_provider {
194 u32 addr;
195 u16 offset;
196 struct clockdomain *clkdm;
197 struct device_node *node;
198 struct list_head link;
199 };
200
201 static LIST_HEAD(clkctrl_providers);
202
203 /**
204 * struct omap_hwmod_soc_ops - fn ptrs for some SoC-specific operations
205 * @enable_module: function to enable a module (via MODULEMODE)
206 * @disable_module: function to disable a module (via MODULEMODE)
207 *
208 * XXX Eventually this functionality will be hidden inside the PRM/CM
209 * device drivers. Until then, this should avoid huge blocks of cpu_is_*()
210 * conditionals in this code.
211 */
212 struct omap_hwmod_soc_ops {
213 void (*enable_module)(struct omap_hwmod *oh);
214 int (*disable_module)(struct omap_hwmod *oh);
215 int (*wait_target_ready)(struct omap_hwmod *oh);
216 int (*assert_hardreset)(struct omap_hwmod *oh,
217 struct omap_hwmod_rst_info *ohri);
218 int (*deassert_hardreset)(struct omap_hwmod *oh,
219 struct omap_hwmod_rst_info *ohri);
220 int (*is_hardreset_asserted)(struct omap_hwmod *oh,
221 struct omap_hwmod_rst_info *ohri);
222 int (*init_clkdm)(struct omap_hwmod *oh);
223 void (*update_context_lost)(struct omap_hwmod *oh);
224 int (*get_context_lost)(struct omap_hwmod *oh);
225 int (*disable_direct_prcm)(struct omap_hwmod *oh);
226 u32 (*xlate_clkctrl)(struct omap_hwmod *oh,
227 struct clkctrl_provider *provider);
228 };
229
230 /* soc_ops: adapts the omap_hwmod code to the currently-booted SoC */
231 static struct omap_hwmod_soc_ops soc_ops;
232
233 /* omap_hwmod_list contains all registered struct omap_hwmods */
234 static LIST_HEAD(omap_hwmod_list);
235
236 /* mpu_oh: used to add/remove MPU initiator from sleepdep list */
237 static struct omap_hwmod *mpu_oh;
238
239 /* inited: set to true once the hwmod code is initialized */
240 static bool inited;
241
242 /* Private functions */
243
244 /**
245 * _update_sysc_cache - return the module OCP_SYSCONFIG register, keep copy
246 * @oh: struct omap_hwmod *
247 *
248 * Load the current value of the hwmod OCP_SYSCONFIG register into the
249 * struct omap_hwmod for later use. Returns -EINVAL if the hwmod has no
250 * OCP_SYSCONFIG register or 0 upon success.
251 */
_update_sysc_cache(struct omap_hwmod * oh)252 static int _update_sysc_cache(struct omap_hwmod *oh)
253 {
254 if (!oh->class->sysc) {
255 WARN(1, "omap_hwmod: %s: cannot read OCP_SYSCONFIG: not defined on hwmod's class\n", oh->name);
256 return -EINVAL;
257 }
258
259 /* XXX ensure module interface clock is up */
260
261 oh->_sysc_cache = omap_hwmod_read(oh, oh->class->sysc->sysc_offs);
262
263 if (!(oh->class->sysc->sysc_flags & SYSC_NO_CACHE))
264 oh->_int_flags |= _HWMOD_SYSCONFIG_LOADED;
265
266 return 0;
267 }
268
269 /**
270 * _write_sysconfig - write a value to the module's OCP_SYSCONFIG register
271 * @v: OCP_SYSCONFIG value to write
272 * @oh: struct omap_hwmod *
273 *
274 * Write @v into the module class' OCP_SYSCONFIG register, if it has
275 * one. No return value.
276 */
_write_sysconfig(u32 v,struct omap_hwmod * oh)277 static void _write_sysconfig(u32 v, struct omap_hwmod *oh)
278 {
279 if (!oh->class->sysc) {
280 WARN(1, "omap_hwmod: %s: cannot write OCP_SYSCONFIG: not defined on hwmod's class\n", oh->name);
281 return;
282 }
283
284 /* XXX ensure module interface clock is up */
285
286 /* Module might have lost context, always update cache and register */
287 oh->_sysc_cache = v;
288
289 /*
290 * Some IP blocks (such as RTC) require unlocking of IP before
291 * accessing its registers. If a function pointer is present
292 * to unlock, then call it before accessing sysconfig and
293 * call lock after writing sysconfig.
294 */
295 if (oh->class->unlock)
296 oh->class->unlock(oh);
297
298 omap_hwmod_write(v, oh, oh->class->sysc->sysc_offs);
299
300 if (oh->class->lock)
301 oh->class->lock(oh);
302 }
303
304 /**
305 * _set_master_standbymode: set the OCP_SYSCONFIG MIDLEMODE field in @v
306 * @oh: struct omap_hwmod *
307 * @standbymode: MIDLEMODE field bits
308 * @v: pointer to register contents to modify
309 *
310 * Update the master standby mode bits in @v to be @standbymode for
311 * the @oh hwmod. Does not write to the hardware. Returns -EINVAL
312 * upon error or 0 upon success.
313 */
_set_master_standbymode(struct omap_hwmod * oh,u8 standbymode,u32 * v)314 static int _set_master_standbymode(struct omap_hwmod *oh, u8 standbymode,
315 u32 *v)
316 {
317 u32 mstandby_mask;
318 u8 mstandby_shift;
319
320 if (!oh->class->sysc ||
321 !(oh->class->sysc->sysc_flags & SYSC_HAS_MIDLEMODE))
322 return -EINVAL;
323
324 if (!oh->class->sysc->sysc_fields) {
325 WARN(1, "omap_hwmod: %s: offset struct for sysconfig not provided in class\n", oh->name);
326 return -EINVAL;
327 }
328
329 mstandby_shift = oh->class->sysc->sysc_fields->midle_shift;
330 mstandby_mask = (0x3 << mstandby_shift);
331
332 *v &= ~mstandby_mask;
333 *v |= __ffs(standbymode) << mstandby_shift;
334
335 return 0;
336 }
337
338 /**
339 * _set_slave_idlemode: set the OCP_SYSCONFIG SIDLEMODE field in @v
340 * @oh: struct omap_hwmod *
341 * @idlemode: SIDLEMODE field bits
342 * @v: pointer to register contents to modify
343 *
344 * Update the slave idle mode bits in @v to be @idlemode for the @oh
345 * hwmod. Does not write to the hardware. Returns -EINVAL upon error
346 * or 0 upon success.
347 */
_set_slave_idlemode(struct omap_hwmod * oh,u8 idlemode,u32 * v)348 static int _set_slave_idlemode(struct omap_hwmod *oh, u8 idlemode, u32 *v)
349 {
350 u32 sidle_mask;
351 u8 sidle_shift;
352
353 if (!oh->class->sysc ||
354 !(oh->class->sysc->sysc_flags & SYSC_HAS_SIDLEMODE))
355 return -EINVAL;
356
357 if (!oh->class->sysc->sysc_fields) {
358 WARN(1, "omap_hwmod: %s: offset struct for sysconfig not provided in class\n", oh->name);
359 return -EINVAL;
360 }
361
362 sidle_shift = oh->class->sysc->sysc_fields->sidle_shift;
363 sidle_mask = (0x3 << sidle_shift);
364
365 *v &= ~sidle_mask;
366 *v |= __ffs(idlemode) << sidle_shift;
367
368 return 0;
369 }
370
371 /**
372 * _set_clockactivity: set OCP_SYSCONFIG.CLOCKACTIVITY bits in @v
373 * @oh: struct omap_hwmod *
374 * @clockact: CLOCKACTIVITY field bits
375 * @v: pointer to register contents to modify
376 *
377 * Update the clockactivity mode bits in @v to be @clockact for the
378 * @oh hwmod. Used for additional powersaving on some modules. Does
379 * not write to the hardware. Returns -EINVAL upon error or 0 upon
380 * success.
381 */
_set_clockactivity(struct omap_hwmod * oh,u8 clockact,u32 * v)382 static int _set_clockactivity(struct omap_hwmod *oh, u8 clockact, u32 *v)
383 {
384 u32 clkact_mask;
385 u8 clkact_shift;
386
387 if (!oh->class->sysc ||
388 !(oh->class->sysc->sysc_flags & SYSC_HAS_CLOCKACTIVITY))
389 return -EINVAL;
390
391 if (!oh->class->sysc->sysc_fields) {
392 WARN(1, "omap_hwmod: %s: offset struct for sysconfig not provided in class\n", oh->name);
393 return -EINVAL;
394 }
395
396 clkact_shift = oh->class->sysc->sysc_fields->clkact_shift;
397 clkact_mask = (0x3 << clkact_shift);
398
399 *v &= ~clkact_mask;
400 *v |= clockact << clkact_shift;
401
402 return 0;
403 }
404
405 /**
406 * _set_softreset: set OCP_SYSCONFIG.SOFTRESET bit in @v
407 * @oh: struct omap_hwmod *
408 * @v: pointer to register contents to modify
409 *
410 * Set the SOFTRESET bit in @v for hwmod @oh. Returns -EINVAL upon
411 * error or 0 upon success.
412 */
_set_softreset(struct omap_hwmod * oh,u32 * v)413 static int _set_softreset(struct omap_hwmod *oh, u32 *v)
414 {
415 u32 softrst_mask;
416
417 if (!oh->class->sysc ||
418 !(oh->class->sysc->sysc_flags & SYSC_HAS_SOFTRESET))
419 return -EINVAL;
420
421 if (!oh->class->sysc->sysc_fields) {
422 WARN(1, "omap_hwmod: %s: offset struct for sysconfig not provided in class\n", oh->name);
423 return -EINVAL;
424 }
425
426 softrst_mask = (0x1 << oh->class->sysc->sysc_fields->srst_shift);
427
428 *v |= softrst_mask;
429
430 return 0;
431 }
432
433 /**
434 * _clear_softreset: clear OCP_SYSCONFIG.SOFTRESET bit in @v
435 * @oh: struct omap_hwmod *
436 * @v: pointer to register contents to modify
437 *
438 * Clear the SOFTRESET bit in @v for hwmod @oh. Returns -EINVAL upon
439 * error or 0 upon success.
440 */
_clear_softreset(struct omap_hwmod * oh,u32 * v)441 static int _clear_softreset(struct omap_hwmod *oh, u32 *v)
442 {
443 u32 softrst_mask;
444
445 if (!oh->class->sysc ||
446 !(oh->class->sysc->sysc_flags & SYSC_HAS_SOFTRESET))
447 return -EINVAL;
448
449 if (!oh->class->sysc->sysc_fields) {
450 WARN(1,
451 "omap_hwmod: %s: sysc_fields absent for sysconfig class\n",
452 oh->name);
453 return -EINVAL;
454 }
455
456 softrst_mask = (0x1 << oh->class->sysc->sysc_fields->srst_shift);
457
458 *v &= ~softrst_mask;
459
460 return 0;
461 }
462
463 /**
464 * _wait_softreset_complete - wait for an OCP softreset to complete
465 * @oh: struct omap_hwmod * to wait on
466 *
467 * Wait until the IP block represented by @oh reports that its OCP
468 * softreset is complete. This can be triggered by software (see
469 * _ocp_softreset()) or by hardware upon returning from off-mode (one
470 * example is HSMMC). Waits for up to MAX_MODULE_SOFTRESET_WAIT
471 * microseconds. Returns the number of microseconds waited.
472 */
_wait_softreset_complete(struct omap_hwmod * oh)473 static int _wait_softreset_complete(struct omap_hwmod *oh)
474 {
475 struct omap_hwmod_class_sysconfig *sysc;
476 u32 softrst_mask;
477 int c = 0;
478
479 sysc = oh->class->sysc;
480
481 if (sysc->sysc_flags & SYSS_HAS_RESET_STATUS)
482 omap_test_timeout((omap_hwmod_read(oh, sysc->syss_offs)
483 & SYSS_RESETDONE_MASK),
484 MAX_MODULE_SOFTRESET_WAIT, c);
485 else if (sysc->sysc_flags & SYSC_HAS_RESET_STATUS) {
486 softrst_mask = (0x1 << sysc->sysc_fields->srst_shift);
487 omap_test_timeout(!(omap_hwmod_read(oh, sysc->sysc_offs)
488 & softrst_mask),
489 MAX_MODULE_SOFTRESET_WAIT, c);
490 }
491
492 return c;
493 }
494
495 /**
496 * _set_dmadisable: set OCP_SYSCONFIG.DMADISABLE bit in @v
497 * @oh: struct omap_hwmod *
498 *
499 * The DMADISABLE bit is a semi-automatic bit present in sysconfig register
500 * of some modules. When the DMA must perform read/write accesses, the
501 * DMADISABLE bit is cleared by the hardware. But when the DMA must stop
502 * for power management, software must set the DMADISABLE bit back to 1.
503 *
504 * Set the DMADISABLE bit in @v for hwmod @oh. Returns -EINVAL upon
505 * error or 0 upon success.
506 */
_set_dmadisable(struct omap_hwmod * oh)507 static int _set_dmadisable(struct omap_hwmod *oh)
508 {
509 u32 v;
510 u32 dmadisable_mask;
511
512 if (!oh->class->sysc ||
513 !(oh->class->sysc->sysc_flags & SYSC_HAS_DMADISABLE))
514 return -EINVAL;
515
516 if (!oh->class->sysc->sysc_fields) {
517 WARN(1, "omap_hwmod: %s: offset struct for sysconfig not provided in class\n", oh->name);
518 return -EINVAL;
519 }
520
521 /* clocks must be on for this operation */
522 if (oh->_state != _HWMOD_STATE_ENABLED) {
523 pr_warn("omap_hwmod: %s: dma can be disabled only from enabled state\n", oh->name);
524 return -EINVAL;
525 }
526
527 pr_debug("omap_hwmod: %s: setting DMADISABLE\n", oh->name);
528
529 v = oh->_sysc_cache;
530 dmadisable_mask =
531 (0x1 << oh->class->sysc->sysc_fields->dmadisable_shift);
532 v |= dmadisable_mask;
533 _write_sysconfig(v, oh);
534
535 return 0;
536 }
537
538 /**
539 * _set_module_autoidle: set the OCP_SYSCONFIG AUTOIDLE field in @v
540 * @oh: struct omap_hwmod *
541 * @autoidle: desired AUTOIDLE bitfield value (0 or 1)
542 * @v: pointer to register contents to modify
543 *
544 * Update the module autoidle bit in @v to be @autoidle for the @oh
545 * hwmod. The autoidle bit controls whether the module can gate
546 * internal clocks automatically when it isn't doing anything; the
547 * exact function of this bit varies on a per-module basis. This
548 * function does not write to the hardware. Returns -EINVAL upon
549 * error or 0 upon success.
550 */
_set_module_autoidle(struct omap_hwmod * oh,u8 autoidle,u32 * v)551 static int _set_module_autoidle(struct omap_hwmod *oh, u8 autoidle,
552 u32 *v)
553 {
554 u32 autoidle_mask;
555 u8 autoidle_shift;
556
557 if (!oh->class->sysc ||
558 !(oh->class->sysc->sysc_flags & SYSC_HAS_AUTOIDLE))
559 return -EINVAL;
560
561 if (!oh->class->sysc->sysc_fields) {
562 WARN(1, "omap_hwmod: %s: offset struct for sysconfig not provided in class\n", oh->name);
563 return -EINVAL;
564 }
565
566 autoidle_shift = oh->class->sysc->sysc_fields->autoidle_shift;
567 autoidle_mask = (0x1 << autoidle_shift);
568
569 *v &= ~autoidle_mask;
570 *v |= autoidle << autoidle_shift;
571
572 return 0;
573 }
574
575 /**
576 * _enable_wakeup: set OCP_SYSCONFIG.ENAWAKEUP bit in the hardware
577 * @oh: struct omap_hwmod *
578 *
579 * Allow the hardware module @oh to send wakeups. Returns -EINVAL
580 * upon error or 0 upon success.
581 */
_enable_wakeup(struct omap_hwmod * oh,u32 * v)582 static int _enable_wakeup(struct omap_hwmod *oh, u32 *v)
583 {
584 if (!oh->class->sysc ||
585 !((oh->class->sysc->sysc_flags & SYSC_HAS_ENAWAKEUP) ||
586 (oh->class->sysc->idlemodes & SIDLE_SMART_WKUP) ||
587 (oh->class->sysc->idlemodes & MSTANDBY_SMART_WKUP)))
588 return -EINVAL;
589
590 if (!oh->class->sysc->sysc_fields) {
591 WARN(1, "omap_hwmod: %s: offset struct for sysconfig not provided in class\n", oh->name);
592 return -EINVAL;
593 }
594
595 if (oh->class->sysc->sysc_flags & SYSC_HAS_ENAWAKEUP)
596 *v |= 0x1 << oh->class->sysc->sysc_fields->enwkup_shift;
597
598 if (oh->class->sysc->idlemodes & SIDLE_SMART_WKUP)
599 _set_slave_idlemode(oh, HWMOD_IDLEMODE_SMART_WKUP, v);
600 if (oh->class->sysc->idlemodes & MSTANDBY_SMART_WKUP)
601 _set_master_standbymode(oh, HWMOD_IDLEMODE_SMART_WKUP, v);
602
603 /* XXX test pwrdm_get_wken for this hwmod's subsystem */
604
605 return 0;
606 }
607
608 /**
609 * _disable_wakeup: clear OCP_SYSCONFIG.ENAWAKEUP bit in the hardware
610 * @oh: struct omap_hwmod *
611 *
612 * Prevent the hardware module @oh to send wakeups. Returns -EINVAL
613 * upon error or 0 upon success.
614 */
_disable_wakeup(struct omap_hwmod * oh,u32 * v)615 static int _disable_wakeup(struct omap_hwmod *oh, u32 *v)
616 {
617 if (!oh->class->sysc ||
618 !((oh->class->sysc->sysc_flags & SYSC_HAS_ENAWAKEUP) ||
619 (oh->class->sysc->idlemodes & SIDLE_SMART_WKUP) ||
620 (oh->class->sysc->idlemodes & MSTANDBY_SMART_WKUP)))
621 return -EINVAL;
622
623 if (!oh->class->sysc->sysc_fields) {
624 WARN(1, "omap_hwmod: %s: offset struct for sysconfig not provided in class\n", oh->name);
625 return -EINVAL;
626 }
627
628 if (oh->class->sysc->sysc_flags & SYSC_HAS_ENAWAKEUP)
629 *v &= ~(0x1 << oh->class->sysc->sysc_fields->enwkup_shift);
630
631 if (oh->class->sysc->idlemodes & SIDLE_SMART_WKUP)
632 _set_slave_idlemode(oh, HWMOD_IDLEMODE_SMART, v);
633 if (oh->class->sysc->idlemodes & MSTANDBY_SMART_WKUP)
634 _set_master_standbymode(oh, HWMOD_IDLEMODE_SMART, v);
635
636 /* XXX test pwrdm_get_wken for this hwmod's subsystem */
637
638 return 0;
639 }
640
_get_clkdm(struct omap_hwmod * oh)641 static struct clockdomain *_get_clkdm(struct omap_hwmod *oh)
642 {
643 struct clk_hw_omap *clk;
644
645 if (oh->clkdm) {
646 return oh->clkdm;
647 } else if (oh->_clk) {
648 if (__clk_get_flags(oh->_clk) & CLK_IS_BASIC)
649 return NULL;
650 clk = to_clk_hw_omap(__clk_get_hw(oh->_clk));
651 return clk->clkdm;
652 }
653 return NULL;
654 }
655
656 /**
657 * _add_initiator_dep: prevent @oh from smart-idling while @init_oh is active
658 * @oh: struct omap_hwmod *
659 *
660 * Prevent the hardware module @oh from entering idle while the
661 * hardare module initiator @init_oh is active. Useful when a module
662 * will be accessed by a particular initiator (e.g., if a module will
663 * be accessed by the IVA, there should be a sleepdep between the IVA
664 * initiator and the module). Only applies to modules in smart-idle
665 * mode. If the clockdomain is marked as not needing autodeps, return
666 * 0 without doing anything. Otherwise, returns -EINVAL upon error or
667 * passes along clkdm_add_sleepdep() value upon success.
668 */
_add_initiator_dep(struct omap_hwmod * oh,struct omap_hwmod * init_oh)669 static int _add_initiator_dep(struct omap_hwmod *oh, struct omap_hwmod *init_oh)
670 {
671 struct clockdomain *clkdm, *init_clkdm;
672
673 clkdm = _get_clkdm(oh);
674 init_clkdm = _get_clkdm(init_oh);
675
676 if (!clkdm || !init_clkdm)
677 return -EINVAL;
678
679 if (clkdm && clkdm->flags & CLKDM_NO_AUTODEPS)
680 return 0;
681
682 return clkdm_add_sleepdep(clkdm, init_clkdm);
683 }
684
685 /**
686 * _del_initiator_dep: allow @oh to smart-idle even if @init_oh is active
687 * @oh: struct omap_hwmod *
688 *
689 * Allow the hardware module @oh to enter idle while the hardare
690 * module initiator @init_oh is active. Useful when a module will not
691 * be accessed by a particular initiator (e.g., if a module will not
692 * be accessed by the IVA, there should be no sleepdep between the IVA
693 * initiator and the module). Only applies to modules in smart-idle
694 * mode. If the clockdomain is marked as not needing autodeps, return
695 * 0 without doing anything. Returns -EINVAL upon error or passes
696 * along clkdm_del_sleepdep() value upon success.
697 */
_del_initiator_dep(struct omap_hwmod * oh,struct omap_hwmod * init_oh)698 static int _del_initiator_dep(struct omap_hwmod *oh, struct omap_hwmod *init_oh)
699 {
700 struct clockdomain *clkdm, *init_clkdm;
701
702 clkdm = _get_clkdm(oh);
703 init_clkdm = _get_clkdm(init_oh);
704
705 if (!clkdm || !init_clkdm)
706 return -EINVAL;
707
708 if (clkdm && clkdm->flags & CLKDM_NO_AUTODEPS)
709 return 0;
710
711 return clkdm_del_sleepdep(clkdm, init_clkdm);
712 }
713
714 static const struct of_device_id ti_clkctrl_match_table[] __initconst = {
715 { .compatible = "ti,clkctrl" },
716 { }
717 };
718
_match_clkdm(struct clockdomain * clkdm,void * user)719 static int _match_clkdm(struct clockdomain *clkdm, void *user)
720 {
721 struct clkctrl_provider *provider = user;
722
723 if (clkdm_xlate_address(clkdm) == provider->addr) {
724 pr_debug("%s: Matched clkdm %s for addr %x (%s)\n", __func__,
725 clkdm->name, provider->addr,
726 provider->node->parent->name);
727 provider->clkdm = clkdm;
728
729 return -1;
730 }
731
732 return 0;
733 }
734
_setup_clkctrl_provider(struct device_node * np)735 static int _setup_clkctrl_provider(struct device_node *np)
736 {
737 const __be32 *addrp;
738 struct clkctrl_provider *provider;
739
740 provider = memblock_virt_alloc(sizeof(*provider), 0);
741 if (!provider)
742 return -ENOMEM;
743
744 addrp = of_get_address(np, 0, NULL, NULL);
745 provider->addr = (u32)of_translate_address(np, addrp);
746 provider->offset = provider->addr & 0xff;
747 provider->addr &= ~0xff;
748 provider->node = np;
749
750 clkdm_for_each(_match_clkdm, provider);
751
752 if (!provider->clkdm) {
753 pr_err("%s: nothing matched for node %s (%x)\n",
754 __func__, np->parent->name, provider->addr);
755 memblock_free_early(__pa(provider), sizeof(*provider));
756 return -EINVAL;
757 }
758
759 list_add(&provider->link, &clkctrl_providers);
760
761 return 0;
762 }
763
_init_clkctrl_providers(void)764 static int _init_clkctrl_providers(void)
765 {
766 struct device_node *np;
767 int ret = 0;
768
769 for_each_matching_node(np, ti_clkctrl_match_table) {
770 ret = _setup_clkctrl_provider(np);
771 if (ret)
772 break;
773 }
774
775 return ret;
776 }
777
_omap4_xlate_clkctrl(struct omap_hwmod * oh,struct clkctrl_provider * provider)778 static u32 _omap4_xlate_clkctrl(struct omap_hwmod *oh,
779 struct clkctrl_provider *provider)
780 {
781 return oh->prcm.omap4.clkctrl_offs -
782 provider->offset - provider->clkdm->clkdm_offs;
783 }
784
_lookup_clkctrl_clk(struct omap_hwmod * oh)785 static struct clk *_lookup_clkctrl_clk(struct omap_hwmod *oh)
786 {
787 struct clkctrl_provider *provider;
788 struct clk *clk;
789
790 if (!soc_ops.xlate_clkctrl)
791 return NULL;
792
793 list_for_each_entry(provider, &clkctrl_providers, link) {
794 if (provider->clkdm == oh->clkdm) {
795 struct of_phandle_args clkspec;
796
797 clkspec.np = provider->node;
798 clkspec.args_count = 2;
799 clkspec.args[0] = soc_ops.xlate_clkctrl(oh, provider);
800 clkspec.args[1] = 0;
801
802 clk = of_clk_get_from_provider(&clkspec);
803
804 return clk;
805 }
806 }
807
808 return NULL;
809 }
810
811 /**
812 * _init_main_clk - get a struct clk * for the the hwmod's main functional clk
813 * @oh: struct omap_hwmod *
814 *
815 * Called from _init_clocks(). Populates the @oh _clk (main
816 * functional clock pointer) if a clock matching the hwmod name is found,
817 * or a main_clk is present. Returns 0 on success or -EINVAL on error.
818 */
_init_main_clk(struct omap_hwmod * oh)819 static int _init_main_clk(struct omap_hwmod *oh)
820 {
821 int ret = 0;
822 struct clk *clk = NULL;
823
824 clk = _lookup_clkctrl_clk(oh);
825
826 if (!IS_ERR_OR_NULL(clk)) {
827 pr_debug("%s: mapped main_clk %s for %s\n", __func__,
828 __clk_get_name(clk), oh->name);
829 oh->main_clk = __clk_get_name(clk);
830 oh->_clk = clk;
831 soc_ops.disable_direct_prcm(oh);
832 } else {
833 if (!oh->main_clk)
834 return 0;
835
836 oh->_clk = clk_get(NULL, oh->main_clk);
837 }
838
839 if (IS_ERR(oh->_clk)) {
840 pr_warn("omap_hwmod: %s: cannot clk_get main_clk %s\n",
841 oh->name, oh->main_clk);
842 return -EINVAL;
843 }
844 /*
845 * HACK: This needs a re-visit once clk_prepare() is implemented
846 * to do something meaningful. Today its just a no-op.
847 * If clk_prepare() is used at some point to do things like
848 * voltage scaling etc, then this would have to be moved to
849 * some point where subsystems like i2c and pmic become
850 * available.
851 */
852 clk_prepare(oh->_clk);
853
854 if (!_get_clkdm(oh))
855 pr_debug("omap_hwmod: %s: missing clockdomain for %s.\n",
856 oh->name, oh->main_clk);
857
858 return ret;
859 }
860
861 /**
862 * _init_interface_clks - get a struct clk * for the the hwmod's interface clks
863 * @oh: struct omap_hwmod *
864 *
865 * Called from _init_clocks(). Populates the @oh OCP slave interface
866 * clock pointers. Returns 0 on success or -EINVAL on error.
867 */
_init_interface_clks(struct omap_hwmod * oh)868 static int _init_interface_clks(struct omap_hwmod *oh)
869 {
870 struct omap_hwmod_ocp_if *os;
871 struct clk *c;
872 int ret = 0;
873
874 list_for_each_entry(os, &oh->slave_ports, node) {
875 if (!os->clk)
876 continue;
877
878 c = clk_get(NULL, os->clk);
879 if (IS_ERR(c)) {
880 pr_warn("omap_hwmod: %s: cannot clk_get interface_clk %s\n",
881 oh->name, os->clk);
882 ret = -EINVAL;
883 continue;
884 }
885 os->_clk = c;
886 /*
887 * HACK: This needs a re-visit once clk_prepare() is implemented
888 * to do something meaningful. Today its just a no-op.
889 * If clk_prepare() is used at some point to do things like
890 * voltage scaling etc, then this would have to be moved to
891 * some point where subsystems like i2c and pmic become
892 * available.
893 */
894 clk_prepare(os->_clk);
895 }
896
897 return ret;
898 }
899
900 /**
901 * _init_opt_clk - get a struct clk * for the the hwmod's optional clocks
902 * @oh: struct omap_hwmod *
903 *
904 * Called from _init_clocks(). Populates the @oh omap_hwmod_opt_clk
905 * clock pointers. Returns 0 on success or -EINVAL on error.
906 */
_init_opt_clks(struct omap_hwmod * oh)907 static int _init_opt_clks(struct omap_hwmod *oh)
908 {
909 struct omap_hwmod_opt_clk *oc;
910 struct clk *c;
911 int i;
912 int ret = 0;
913
914 for (i = oh->opt_clks_cnt, oc = oh->opt_clks; i > 0; i--, oc++) {
915 c = clk_get(NULL, oc->clk);
916 if (IS_ERR(c)) {
917 pr_warn("omap_hwmod: %s: cannot clk_get opt_clk %s\n",
918 oh->name, oc->clk);
919 ret = -EINVAL;
920 continue;
921 }
922 oc->_clk = c;
923 /*
924 * HACK: This needs a re-visit once clk_prepare() is implemented
925 * to do something meaningful. Today its just a no-op.
926 * If clk_prepare() is used at some point to do things like
927 * voltage scaling etc, then this would have to be moved to
928 * some point where subsystems like i2c and pmic become
929 * available.
930 */
931 clk_prepare(oc->_clk);
932 }
933
934 return ret;
935 }
936
_enable_optional_clocks(struct omap_hwmod * oh)937 static void _enable_optional_clocks(struct omap_hwmod *oh)
938 {
939 struct omap_hwmod_opt_clk *oc;
940 int i;
941
942 pr_debug("omap_hwmod: %s: enabling optional clocks\n", oh->name);
943
944 for (i = oh->opt_clks_cnt, oc = oh->opt_clks; i > 0; i--, oc++)
945 if (oc->_clk) {
946 pr_debug("omap_hwmod: enable %s:%s\n", oc->role,
947 __clk_get_name(oc->_clk));
948 clk_enable(oc->_clk);
949 }
950 }
951
_disable_optional_clocks(struct omap_hwmod * oh)952 static void _disable_optional_clocks(struct omap_hwmod *oh)
953 {
954 struct omap_hwmod_opt_clk *oc;
955 int i;
956
957 pr_debug("omap_hwmod: %s: disabling optional clocks\n", oh->name);
958
959 for (i = oh->opt_clks_cnt, oc = oh->opt_clks; i > 0; i--, oc++)
960 if (oc->_clk) {
961 pr_debug("omap_hwmod: disable %s:%s\n", oc->role,
962 __clk_get_name(oc->_clk));
963 clk_disable(oc->_clk);
964 }
965 }
966
967 /**
968 * _enable_clocks - enable hwmod main clock and interface clocks
969 * @oh: struct omap_hwmod *
970 *
971 * Enables all clocks necessary for register reads and writes to succeed
972 * on the hwmod @oh. Returns 0.
973 */
_enable_clocks(struct omap_hwmod * oh)974 static int _enable_clocks(struct omap_hwmod *oh)
975 {
976 struct omap_hwmod_ocp_if *os;
977
978 pr_debug("omap_hwmod: %s: enabling clocks\n", oh->name);
979
980 if (oh->_clk)
981 clk_enable(oh->_clk);
982
983 list_for_each_entry(os, &oh->slave_ports, node) {
984 if (os->_clk && (os->flags & OCPIF_SWSUP_IDLE))
985 clk_enable(os->_clk);
986 }
987
988 if (oh->flags & HWMOD_OPT_CLKS_NEEDED)
989 _enable_optional_clocks(oh);
990
991 /* The opt clocks are controlled by the device driver. */
992
993 return 0;
994 }
995
996 /**
997 * _disable_clocks - disable hwmod main clock and interface clocks
998 * @oh: struct omap_hwmod *
999 *
1000 * Disables the hwmod @oh main functional and interface clocks. Returns 0.
1001 */
_disable_clocks(struct omap_hwmod * oh)1002 static int _disable_clocks(struct omap_hwmod *oh)
1003 {
1004 struct omap_hwmod_ocp_if *os;
1005
1006 pr_debug("omap_hwmod: %s: disabling clocks\n", oh->name);
1007
1008 if (oh->_clk)
1009 clk_disable(oh->_clk);
1010
1011 list_for_each_entry(os, &oh->slave_ports, node) {
1012 if (os->_clk && (os->flags & OCPIF_SWSUP_IDLE))
1013 clk_disable(os->_clk);
1014 }
1015
1016 if (oh->flags & HWMOD_OPT_CLKS_NEEDED)
1017 _disable_optional_clocks(oh);
1018
1019 /* The opt clocks are controlled by the device driver. */
1020
1021 return 0;
1022 }
1023
1024 /**
1025 * _omap4_enable_module - enable CLKCTRL modulemode on OMAP4
1026 * @oh: struct omap_hwmod *
1027 *
1028 * Enables the PRCM module mode related to the hwmod @oh.
1029 * No return value.
1030 */
_omap4_enable_module(struct omap_hwmod * oh)1031 static void _omap4_enable_module(struct omap_hwmod *oh)
1032 {
1033 if (!oh->clkdm || !oh->prcm.omap4.modulemode)
1034 return;
1035
1036 pr_debug("omap_hwmod: %s: %s: %d\n",
1037 oh->name, __func__, oh->prcm.omap4.modulemode);
1038
1039 omap_cm_module_enable(oh->prcm.omap4.modulemode,
1040 oh->clkdm->prcm_partition,
1041 oh->clkdm->cm_inst, oh->prcm.omap4.clkctrl_offs);
1042 }
1043
1044 /**
1045 * _omap4_wait_target_disable - wait for a module to be disabled on OMAP4
1046 * @oh: struct omap_hwmod *
1047 *
1048 * Wait for a module @oh to enter slave idle. Returns 0 if the module
1049 * does not have an IDLEST bit or if the module successfully enters
1050 * slave idle; otherwise, pass along the return value of the
1051 * appropriate *_cm*_wait_module_idle() function.
1052 */
_omap4_wait_target_disable(struct omap_hwmod * oh)1053 static int _omap4_wait_target_disable(struct omap_hwmod *oh)
1054 {
1055 if (!oh)
1056 return -EINVAL;
1057
1058 if (oh->_int_flags & _HWMOD_NO_MPU_PORT || !oh->clkdm)
1059 return 0;
1060
1061 if (oh->flags & HWMOD_NO_IDLEST)
1062 return 0;
1063
1064 if (!oh->prcm.omap4.clkctrl_offs &&
1065 !(oh->prcm.omap4.flags & HWMOD_OMAP4_ZERO_CLKCTRL_OFFSET))
1066 return 0;
1067
1068 return omap_cm_wait_module_idle(oh->clkdm->prcm_partition,
1069 oh->clkdm->cm_inst,
1070 oh->prcm.omap4.clkctrl_offs, 0);
1071 }
1072
1073 /**
1074 * _count_mpu_irqs - count the number of MPU IRQ lines associated with @oh
1075 * @oh: struct omap_hwmod *oh
1076 *
1077 * Count and return the number of MPU IRQs associated with the hwmod
1078 * @oh. Used to allocate struct resource data. Returns 0 if @oh is
1079 * NULL.
1080 */
_count_mpu_irqs(struct omap_hwmod * oh)1081 static int _count_mpu_irqs(struct omap_hwmod *oh)
1082 {
1083 struct omap_hwmod_irq_info *ohii;
1084 int i = 0;
1085
1086 if (!oh || !oh->mpu_irqs)
1087 return 0;
1088
1089 do {
1090 ohii = &oh->mpu_irqs[i++];
1091 } while (ohii->irq != -1);
1092
1093 return i-1;
1094 }
1095
1096 /**
1097 * _count_sdma_reqs - count the number of SDMA request lines associated with @oh
1098 * @oh: struct omap_hwmod *oh
1099 *
1100 * Count and return the number of SDMA request lines associated with
1101 * the hwmod @oh. Used to allocate struct resource data. Returns 0
1102 * if @oh is NULL.
1103 */
_count_sdma_reqs(struct omap_hwmod * oh)1104 static int _count_sdma_reqs(struct omap_hwmod *oh)
1105 {
1106 struct omap_hwmod_dma_info *ohdi;
1107 int i = 0;
1108
1109 if (!oh || !oh->sdma_reqs)
1110 return 0;
1111
1112 do {
1113 ohdi = &oh->sdma_reqs[i++];
1114 } while (ohdi->dma_req != -1);
1115
1116 return i-1;
1117 }
1118
1119 /**
1120 * _count_ocp_if_addr_spaces - count the number of address space entries for @oh
1121 * @oh: struct omap_hwmod *oh
1122 *
1123 * Count and return the number of address space ranges associated with
1124 * the hwmod @oh. Used to allocate struct resource data. Returns 0
1125 * if @oh is NULL.
1126 */
_count_ocp_if_addr_spaces(struct omap_hwmod_ocp_if * os)1127 static int _count_ocp_if_addr_spaces(struct omap_hwmod_ocp_if *os)
1128 {
1129 struct omap_hwmod_addr_space *mem;
1130 int i = 0;
1131
1132 if (!os || !os->addr)
1133 return 0;
1134
1135 do {
1136 mem = &os->addr[i++];
1137 } while (mem->pa_start != mem->pa_end);
1138
1139 return i-1;
1140 }
1141
1142 /**
1143 * _get_mpu_irq_by_name - fetch MPU interrupt line number by name
1144 * @oh: struct omap_hwmod * to operate on
1145 * @name: pointer to the name of the MPU interrupt number to fetch (optional)
1146 * @irq: pointer to an unsigned int to store the MPU IRQ number to
1147 *
1148 * Retrieve a MPU hardware IRQ line number named by @name associated
1149 * with the IP block pointed to by @oh. The IRQ number will be filled
1150 * into the address pointed to by @dma. When @name is non-null, the
1151 * IRQ line number associated with the named entry will be returned.
1152 * If @name is null, the first matching entry will be returned. Data
1153 * order is not meaningful in hwmod data, so callers are strongly
1154 * encouraged to use a non-null @name whenever possible to avoid
1155 * unpredictable effects if hwmod data is later added that causes data
1156 * ordering to change. Returns 0 upon success or a negative error
1157 * code upon error.
1158 */
_get_mpu_irq_by_name(struct omap_hwmod * oh,const char * name,unsigned int * irq)1159 static int _get_mpu_irq_by_name(struct omap_hwmod *oh, const char *name,
1160 unsigned int *irq)
1161 {
1162 int i;
1163 bool found = false;
1164
1165 if (!oh->mpu_irqs)
1166 return -ENOENT;
1167
1168 i = 0;
1169 while (oh->mpu_irqs[i].irq != -1) {
1170 if (name == oh->mpu_irqs[i].name ||
1171 !strcmp(name, oh->mpu_irqs[i].name)) {
1172 found = true;
1173 break;
1174 }
1175 i++;
1176 }
1177
1178 if (!found)
1179 return -ENOENT;
1180
1181 *irq = oh->mpu_irqs[i].irq;
1182
1183 return 0;
1184 }
1185
1186 /**
1187 * _get_sdma_req_by_name - fetch SDMA request line ID by name
1188 * @oh: struct omap_hwmod * to operate on
1189 * @name: pointer to the name of the SDMA request line to fetch (optional)
1190 * @dma: pointer to an unsigned int to store the request line ID to
1191 *
1192 * Retrieve an SDMA request line ID named by @name on the IP block
1193 * pointed to by @oh. The ID will be filled into the address pointed
1194 * to by @dma. When @name is non-null, the request line ID associated
1195 * with the named entry will be returned. If @name is null, the first
1196 * matching entry will be returned. Data order is not meaningful in
1197 * hwmod data, so callers are strongly encouraged to use a non-null
1198 * @name whenever possible to avoid unpredictable effects if hwmod
1199 * data is later added that causes data ordering to change. Returns 0
1200 * upon success or a negative error code upon error.
1201 */
_get_sdma_req_by_name(struct omap_hwmod * oh,const char * name,unsigned int * dma)1202 static int _get_sdma_req_by_name(struct omap_hwmod *oh, const char *name,
1203 unsigned int *dma)
1204 {
1205 int i;
1206 bool found = false;
1207
1208 if (!oh->sdma_reqs)
1209 return -ENOENT;
1210
1211 i = 0;
1212 while (oh->sdma_reqs[i].dma_req != -1) {
1213 if (name == oh->sdma_reqs[i].name ||
1214 !strcmp(name, oh->sdma_reqs[i].name)) {
1215 found = true;
1216 break;
1217 }
1218 i++;
1219 }
1220
1221 if (!found)
1222 return -ENOENT;
1223
1224 *dma = oh->sdma_reqs[i].dma_req;
1225
1226 return 0;
1227 }
1228
1229 /**
1230 * _get_addr_space_by_name - fetch address space start & end by name
1231 * @oh: struct omap_hwmod * to operate on
1232 * @name: pointer to the name of the address space to fetch (optional)
1233 * @pa_start: pointer to a u32 to store the starting address to
1234 * @pa_end: pointer to a u32 to store the ending address to
1235 *
1236 * Retrieve address space start and end addresses for the IP block
1237 * pointed to by @oh. The data will be filled into the addresses
1238 * pointed to by @pa_start and @pa_end. When @name is non-null, the
1239 * address space data associated with the named entry will be
1240 * returned. If @name is null, the first matching entry will be
1241 * returned. Data order is not meaningful in hwmod data, so callers
1242 * are strongly encouraged to use a non-null @name whenever possible
1243 * to avoid unpredictable effects if hwmod data is later added that
1244 * causes data ordering to change. Returns 0 upon success or a
1245 * negative error code upon error.
1246 */
_get_addr_space_by_name(struct omap_hwmod * oh,const char * name,u32 * pa_start,u32 * pa_end)1247 static int _get_addr_space_by_name(struct omap_hwmod *oh, const char *name,
1248 u32 *pa_start, u32 *pa_end)
1249 {
1250 int j;
1251 struct omap_hwmod_ocp_if *os;
1252 bool found = false;
1253
1254 list_for_each_entry(os, &oh->slave_ports, node) {
1255
1256 if (!os->addr)
1257 return -ENOENT;
1258
1259 j = 0;
1260 while (os->addr[j].pa_start != os->addr[j].pa_end) {
1261 if (name == os->addr[j].name ||
1262 !strcmp(name, os->addr[j].name)) {
1263 found = true;
1264 break;
1265 }
1266 j++;
1267 }
1268
1269 if (found)
1270 break;
1271 }
1272
1273 if (!found)
1274 return -ENOENT;
1275
1276 *pa_start = os->addr[j].pa_start;
1277 *pa_end = os->addr[j].pa_end;
1278
1279 return 0;
1280 }
1281
1282 /**
1283 * _save_mpu_port_index - find and save the index to @oh's MPU port
1284 * @oh: struct omap_hwmod *
1285 *
1286 * Determines the array index of the OCP slave port that the MPU uses
1287 * to address the device, and saves it into the struct omap_hwmod.
1288 * Intended to be called during hwmod registration only. No return
1289 * value.
1290 */
_save_mpu_port_index(struct omap_hwmod * oh)1291 static void __init _save_mpu_port_index(struct omap_hwmod *oh)
1292 {
1293 struct omap_hwmod_ocp_if *os = NULL;
1294
1295 if (!oh)
1296 return;
1297
1298 oh->_int_flags |= _HWMOD_NO_MPU_PORT;
1299
1300 list_for_each_entry(os, &oh->slave_ports, node) {
1301 if (os->user & OCP_USER_MPU) {
1302 oh->_mpu_port = os;
1303 oh->_int_flags &= ~_HWMOD_NO_MPU_PORT;
1304 break;
1305 }
1306 }
1307
1308 return;
1309 }
1310
1311 /**
1312 * _find_mpu_rt_port - return omap_hwmod_ocp_if accessible by the MPU
1313 * @oh: struct omap_hwmod *
1314 *
1315 * Given a pointer to a struct omap_hwmod record @oh, return a pointer
1316 * to the struct omap_hwmod_ocp_if record that is used by the MPU to
1317 * communicate with the IP block. This interface need not be directly
1318 * connected to the MPU (and almost certainly is not), but is directly
1319 * connected to the IP block represented by @oh. Returns a pointer
1320 * to the struct omap_hwmod_ocp_if * upon success, or returns NULL upon
1321 * error or if there does not appear to be a path from the MPU to this
1322 * IP block.
1323 */
_find_mpu_rt_port(struct omap_hwmod * oh)1324 static struct omap_hwmod_ocp_if *_find_mpu_rt_port(struct omap_hwmod *oh)
1325 {
1326 if (!oh || oh->_int_flags & _HWMOD_NO_MPU_PORT || oh->slaves_cnt == 0)
1327 return NULL;
1328
1329 return oh->_mpu_port;
1330 };
1331
1332 /**
1333 * _find_mpu_rt_addr_space - return MPU register target address space for @oh
1334 * @oh: struct omap_hwmod *
1335 *
1336 * Returns a pointer to the struct omap_hwmod_addr_space record representing
1337 * the register target MPU address space; or returns NULL upon error.
1338 */
_find_mpu_rt_addr_space(struct omap_hwmod * oh)1339 static struct omap_hwmod_addr_space * __init _find_mpu_rt_addr_space(struct omap_hwmod *oh)
1340 {
1341 struct omap_hwmod_ocp_if *os;
1342 struct omap_hwmod_addr_space *mem;
1343 int found = 0, i = 0;
1344
1345 os = _find_mpu_rt_port(oh);
1346 if (!os || !os->addr)
1347 return NULL;
1348
1349 do {
1350 mem = &os->addr[i++];
1351 if (mem->flags & ADDR_TYPE_RT)
1352 found = 1;
1353 } while (!found && mem->pa_start != mem->pa_end);
1354
1355 return (found) ? mem : NULL;
1356 }
1357
1358 /**
1359 * _enable_sysc - try to bring a module out of idle via OCP_SYSCONFIG
1360 * @oh: struct omap_hwmod *
1361 *
1362 * Ensure that the OCP_SYSCONFIG register for the IP block represented
1363 * by @oh is set to indicate to the PRCM that the IP block is active.
1364 * Usually this means placing the module into smart-idle mode and
1365 * smart-standby, but if there is a bug in the automatic idle handling
1366 * for the IP block, it may need to be placed into the force-idle or
1367 * no-idle variants of these modes. No return value.
1368 */
_enable_sysc(struct omap_hwmod * oh)1369 static void _enable_sysc(struct omap_hwmod *oh)
1370 {
1371 u8 idlemode, sf;
1372 u32 v;
1373 bool clkdm_act;
1374 struct clockdomain *clkdm;
1375
1376 if (!oh->class->sysc)
1377 return;
1378
1379 /*
1380 * Wait until reset has completed, this is needed as the IP
1381 * block is reset automatically by hardware in some cases
1382 * (off-mode for example), and the drivers require the
1383 * IP to be ready when they access it
1384 */
1385 if (oh->flags & HWMOD_CONTROL_OPT_CLKS_IN_RESET)
1386 _enable_optional_clocks(oh);
1387 _wait_softreset_complete(oh);
1388 if (oh->flags & HWMOD_CONTROL_OPT_CLKS_IN_RESET)
1389 _disable_optional_clocks(oh);
1390
1391 v = oh->_sysc_cache;
1392 sf = oh->class->sysc->sysc_flags;
1393
1394 clkdm = _get_clkdm(oh);
1395 if (sf & SYSC_HAS_SIDLEMODE) {
1396 if (oh->flags & HWMOD_SWSUP_SIDLE ||
1397 oh->flags & HWMOD_SWSUP_SIDLE_ACT) {
1398 idlemode = HWMOD_IDLEMODE_NO;
1399 } else {
1400 if (sf & SYSC_HAS_ENAWAKEUP)
1401 _enable_wakeup(oh, &v);
1402 if (oh->class->sysc->idlemodes & SIDLE_SMART_WKUP)
1403 idlemode = HWMOD_IDLEMODE_SMART_WKUP;
1404 else
1405 idlemode = HWMOD_IDLEMODE_SMART;
1406 }
1407
1408 /*
1409 * This is special handling for some IPs like
1410 * 32k sync timer. Force them to idle!
1411 */
1412 clkdm_act = (clkdm && clkdm->flags & CLKDM_ACTIVE_WITH_MPU);
1413 if (clkdm_act && !(oh->class->sysc->idlemodes &
1414 (SIDLE_SMART | SIDLE_SMART_WKUP)))
1415 idlemode = HWMOD_IDLEMODE_FORCE;
1416
1417 _set_slave_idlemode(oh, idlemode, &v);
1418 }
1419
1420 if (sf & SYSC_HAS_MIDLEMODE) {
1421 if (oh->flags & HWMOD_FORCE_MSTANDBY) {
1422 idlemode = HWMOD_IDLEMODE_FORCE;
1423 } else if (oh->flags & HWMOD_SWSUP_MSTANDBY) {
1424 idlemode = HWMOD_IDLEMODE_NO;
1425 } else {
1426 if (sf & SYSC_HAS_ENAWAKEUP)
1427 _enable_wakeup(oh, &v);
1428 if (oh->class->sysc->idlemodes & MSTANDBY_SMART_WKUP)
1429 idlemode = HWMOD_IDLEMODE_SMART_WKUP;
1430 else
1431 idlemode = HWMOD_IDLEMODE_SMART;
1432 }
1433 _set_master_standbymode(oh, idlemode, &v);
1434 }
1435
1436 /*
1437 * XXX The clock framework should handle this, by
1438 * calling into this code. But this must wait until the
1439 * clock structures are tagged with omap_hwmod entries
1440 */
1441 if ((oh->flags & HWMOD_SET_DEFAULT_CLOCKACT) &&
1442 (sf & SYSC_HAS_CLOCKACTIVITY))
1443 _set_clockactivity(oh, CLOCKACT_TEST_ICLK, &v);
1444
1445 _write_sysconfig(v, oh);
1446
1447 /*
1448 * Set the autoidle bit only after setting the smartidle bit
1449 * Setting this will not have any impact on the other modules.
1450 */
1451 if (sf & SYSC_HAS_AUTOIDLE) {
1452 idlemode = (oh->flags & HWMOD_NO_OCP_AUTOIDLE) ?
1453 0 : 1;
1454 _set_module_autoidle(oh, idlemode, &v);
1455 _write_sysconfig(v, oh);
1456 }
1457 }
1458
1459 /**
1460 * _idle_sysc - try to put a module into idle via OCP_SYSCONFIG
1461 * @oh: struct omap_hwmod *
1462 *
1463 * If module is marked as SWSUP_SIDLE, force the module into slave
1464 * idle; otherwise, configure it for smart-idle. If module is marked
1465 * as SWSUP_MSUSPEND, force the module into master standby; otherwise,
1466 * configure it for smart-standby. No return value.
1467 */
_idle_sysc(struct omap_hwmod * oh)1468 static void _idle_sysc(struct omap_hwmod *oh)
1469 {
1470 u8 idlemode, sf;
1471 u32 v;
1472
1473 if (!oh->class->sysc)
1474 return;
1475
1476 v = oh->_sysc_cache;
1477 sf = oh->class->sysc->sysc_flags;
1478
1479 if (sf & SYSC_HAS_SIDLEMODE) {
1480 if (oh->flags & HWMOD_SWSUP_SIDLE) {
1481 idlemode = HWMOD_IDLEMODE_FORCE;
1482 } else {
1483 if (sf & SYSC_HAS_ENAWAKEUP)
1484 _enable_wakeup(oh, &v);
1485 if (oh->class->sysc->idlemodes & SIDLE_SMART_WKUP)
1486 idlemode = HWMOD_IDLEMODE_SMART_WKUP;
1487 else
1488 idlemode = HWMOD_IDLEMODE_SMART;
1489 }
1490 _set_slave_idlemode(oh, idlemode, &v);
1491 }
1492
1493 if (sf & SYSC_HAS_MIDLEMODE) {
1494 if ((oh->flags & HWMOD_SWSUP_MSTANDBY) ||
1495 (oh->flags & HWMOD_FORCE_MSTANDBY)) {
1496 idlemode = HWMOD_IDLEMODE_FORCE;
1497 } else {
1498 if (sf & SYSC_HAS_ENAWAKEUP)
1499 _enable_wakeup(oh, &v);
1500 if (oh->class->sysc->idlemodes & MSTANDBY_SMART_WKUP)
1501 idlemode = HWMOD_IDLEMODE_SMART_WKUP;
1502 else
1503 idlemode = HWMOD_IDLEMODE_SMART;
1504 }
1505 _set_master_standbymode(oh, idlemode, &v);
1506 }
1507
1508 /* If the cached value is the same as the new value, skip the write */
1509 if (oh->_sysc_cache != v)
1510 _write_sysconfig(v, oh);
1511 }
1512
1513 /**
1514 * _shutdown_sysc - force a module into idle via OCP_SYSCONFIG
1515 * @oh: struct omap_hwmod *
1516 *
1517 * Force the module into slave idle and master suspend. No return
1518 * value.
1519 */
_shutdown_sysc(struct omap_hwmod * oh)1520 static void _shutdown_sysc(struct omap_hwmod *oh)
1521 {
1522 u32 v;
1523 u8 sf;
1524
1525 if (!oh->class->sysc)
1526 return;
1527
1528 v = oh->_sysc_cache;
1529 sf = oh->class->sysc->sysc_flags;
1530
1531 if (sf & SYSC_HAS_SIDLEMODE)
1532 _set_slave_idlemode(oh, HWMOD_IDLEMODE_FORCE, &v);
1533
1534 if (sf & SYSC_HAS_MIDLEMODE)
1535 _set_master_standbymode(oh, HWMOD_IDLEMODE_FORCE, &v);
1536
1537 if (sf & SYSC_HAS_AUTOIDLE)
1538 _set_module_autoidle(oh, 1, &v);
1539
1540 _write_sysconfig(v, oh);
1541 }
1542
1543 /**
1544 * _lookup - find an omap_hwmod by name
1545 * @name: find an omap_hwmod by name
1546 *
1547 * Return a pointer to an omap_hwmod by name, or NULL if not found.
1548 */
_lookup(const char * name)1549 static struct omap_hwmod *_lookup(const char *name)
1550 {
1551 struct omap_hwmod *oh, *temp_oh;
1552
1553 oh = NULL;
1554
1555 list_for_each_entry(temp_oh, &omap_hwmod_list, node) {
1556 if (!strcmp(name, temp_oh->name)) {
1557 oh = temp_oh;
1558 break;
1559 }
1560 }
1561
1562 return oh;
1563 }
1564
1565 /**
1566 * _init_clkdm - look up a clockdomain name, store pointer in omap_hwmod
1567 * @oh: struct omap_hwmod *
1568 *
1569 * Convert a clockdomain name stored in a struct omap_hwmod into a
1570 * clockdomain pointer, and save it into the struct omap_hwmod.
1571 * Return -EINVAL if the clkdm_name lookup failed.
1572 */
_init_clkdm(struct omap_hwmod * oh)1573 static int _init_clkdm(struct omap_hwmod *oh)
1574 {
1575 if (!oh->clkdm_name) {
1576 pr_debug("omap_hwmod: %s: missing clockdomain\n", oh->name);
1577 return 0;
1578 }
1579
1580 oh->clkdm = clkdm_lookup(oh->clkdm_name);
1581 if (!oh->clkdm) {
1582 pr_warn("omap_hwmod: %s: could not associate to clkdm %s\n",
1583 oh->name, oh->clkdm_name);
1584 return 0;
1585 }
1586
1587 pr_debug("omap_hwmod: %s: associated to clkdm %s\n",
1588 oh->name, oh->clkdm_name);
1589
1590 return 0;
1591 }
1592
1593 /**
1594 * _init_clocks - clk_get() all clocks associated with this hwmod. Retrieve as
1595 * well the clockdomain.
1596 * @oh: struct omap_hwmod *
1597 * @np: device_node mapped to this hwmod
1598 *
1599 * Called by omap_hwmod_setup_*() (after omap2_clk_init()).
1600 * Resolves all clock names embedded in the hwmod. Returns 0 on
1601 * success, or a negative error code on failure.
1602 */
_init_clocks(struct omap_hwmod * oh,struct device_node * np)1603 static int _init_clocks(struct omap_hwmod *oh, struct device_node *np)
1604 {
1605 int ret = 0;
1606
1607 if (oh->_state != _HWMOD_STATE_REGISTERED)
1608 return 0;
1609
1610 pr_debug("omap_hwmod: %s: looking up clocks\n", oh->name);
1611
1612 if (soc_ops.init_clkdm)
1613 ret |= soc_ops.init_clkdm(oh);
1614
1615 ret |= _init_main_clk(oh);
1616 ret |= _init_interface_clks(oh);
1617 ret |= _init_opt_clks(oh);
1618
1619 if (!ret)
1620 oh->_state = _HWMOD_STATE_CLKS_INITED;
1621 else
1622 pr_warn("omap_hwmod: %s: cannot _init_clocks\n", oh->name);
1623
1624 return ret;
1625 }
1626
1627 /**
1628 * _lookup_hardreset - fill register bit info for this hwmod/reset line
1629 * @oh: struct omap_hwmod *
1630 * @name: name of the reset line in the context of this hwmod
1631 * @ohri: struct omap_hwmod_rst_info * that this function will fill in
1632 *
1633 * Return the bit position of the reset line that match the
1634 * input name. Return -ENOENT if not found.
1635 */
_lookup_hardreset(struct omap_hwmod * oh,const char * name,struct omap_hwmod_rst_info * ohri)1636 static int _lookup_hardreset(struct omap_hwmod *oh, const char *name,
1637 struct omap_hwmod_rst_info *ohri)
1638 {
1639 int i;
1640
1641 for (i = 0; i < oh->rst_lines_cnt; i++) {
1642 const char *rst_line = oh->rst_lines[i].name;
1643 if (!strcmp(rst_line, name)) {
1644 ohri->rst_shift = oh->rst_lines[i].rst_shift;
1645 ohri->st_shift = oh->rst_lines[i].st_shift;
1646 pr_debug("omap_hwmod: %s: %s: %s: rst %d st %d\n",
1647 oh->name, __func__, rst_line, ohri->rst_shift,
1648 ohri->st_shift);
1649
1650 return 0;
1651 }
1652 }
1653
1654 return -ENOENT;
1655 }
1656
1657 /**
1658 * _assert_hardreset - assert the HW reset line of submodules
1659 * contained in the hwmod module.
1660 * @oh: struct omap_hwmod *
1661 * @name: name of the reset line to lookup and assert
1662 *
1663 * Some IP like dsp, ipu or iva contain processor that require an HW
1664 * reset line to be assert / deassert in order to enable fully the IP.
1665 * Returns -EINVAL if @oh is null, -ENOSYS if we have no way of
1666 * asserting the hardreset line on the currently-booted SoC, or passes
1667 * along the return value from _lookup_hardreset() or the SoC's
1668 * assert_hardreset code.
1669 */
_assert_hardreset(struct omap_hwmod * oh,const char * name)1670 static int _assert_hardreset(struct omap_hwmod *oh, const char *name)
1671 {
1672 struct omap_hwmod_rst_info ohri;
1673 int ret = -EINVAL;
1674
1675 if (!oh)
1676 return -EINVAL;
1677
1678 if (!soc_ops.assert_hardreset)
1679 return -ENOSYS;
1680
1681 ret = _lookup_hardreset(oh, name, &ohri);
1682 if (ret < 0)
1683 return ret;
1684
1685 ret = soc_ops.assert_hardreset(oh, &ohri);
1686
1687 return ret;
1688 }
1689
1690 /**
1691 * _deassert_hardreset - deassert the HW reset line of submodules contained
1692 * in the hwmod module.
1693 * @oh: struct omap_hwmod *
1694 * @name: name of the reset line to look up and deassert
1695 *
1696 * Some IP like dsp, ipu or iva contain processor that require an HW
1697 * reset line to be assert / deassert in order to enable fully the IP.
1698 * Returns -EINVAL if @oh is null, -ENOSYS if we have no way of
1699 * deasserting the hardreset line on the currently-booted SoC, or passes
1700 * along the return value from _lookup_hardreset() or the SoC's
1701 * deassert_hardreset code.
1702 */
_deassert_hardreset(struct omap_hwmod * oh,const char * name)1703 static int _deassert_hardreset(struct omap_hwmod *oh, const char *name)
1704 {
1705 struct omap_hwmod_rst_info ohri;
1706 int ret = -EINVAL;
1707
1708 if (!oh)
1709 return -EINVAL;
1710
1711 if (!soc_ops.deassert_hardreset)
1712 return -ENOSYS;
1713
1714 ret = _lookup_hardreset(oh, name, &ohri);
1715 if (ret < 0)
1716 return ret;
1717
1718 if (oh->clkdm) {
1719 /*
1720 * A clockdomain must be in SW_SUP otherwise reset
1721 * might not be completed. The clockdomain can be set
1722 * in HW_AUTO only when the module become ready.
1723 */
1724 clkdm_deny_idle(oh->clkdm);
1725 ret = clkdm_hwmod_enable(oh->clkdm, oh);
1726 if (ret) {
1727 WARN(1, "omap_hwmod: %s: could not enable clockdomain %s: %d\n",
1728 oh->name, oh->clkdm->name, ret);
1729 return ret;
1730 }
1731 }
1732
1733 _enable_clocks(oh);
1734 if (soc_ops.enable_module)
1735 soc_ops.enable_module(oh);
1736
1737 ret = soc_ops.deassert_hardreset(oh, &ohri);
1738
1739 if (soc_ops.disable_module)
1740 soc_ops.disable_module(oh);
1741 _disable_clocks(oh);
1742
1743 if (ret == -EBUSY)
1744 pr_warn("omap_hwmod: %s: failed to hardreset\n", oh->name);
1745
1746 if (oh->clkdm) {
1747 /*
1748 * Set the clockdomain to HW_AUTO, assuming that the
1749 * previous state was HW_AUTO.
1750 */
1751 clkdm_allow_idle(oh->clkdm);
1752
1753 clkdm_hwmod_disable(oh->clkdm, oh);
1754 }
1755
1756 return ret;
1757 }
1758
1759 /**
1760 * _read_hardreset - read the HW reset line state of submodules
1761 * contained in the hwmod module
1762 * @oh: struct omap_hwmod *
1763 * @name: name of the reset line to look up and read
1764 *
1765 * Return the state of the reset line. Returns -EINVAL if @oh is
1766 * null, -ENOSYS if we have no way of reading the hardreset line
1767 * status on the currently-booted SoC, or passes along the return
1768 * value from _lookup_hardreset() or the SoC's is_hardreset_asserted
1769 * code.
1770 */
_read_hardreset(struct omap_hwmod * oh,const char * name)1771 static int _read_hardreset(struct omap_hwmod *oh, const char *name)
1772 {
1773 struct omap_hwmod_rst_info ohri;
1774 int ret = -EINVAL;
1775
1776 if (!oh)
1777 return -EINVAL;
1778
1779 if (!soc_ops.is_hardreset_asserted)
1780 return -ENOSYS;
1781
1782 ret = _lookup_hardreset(oh, name, &ohri);
1783 if (ret < 0)
1784 return ret;
1785
1786 return soc_ops.is_hardreset_asserted(oh, &ohri);
1787 }
1788
1789 /**
1790 * _are_all_hardreset_lines_asserted - return true if the @oh is hard-reset
1791 * @oh: struct omap_hwmod *
1792 *
1793 * If all hardreset lines associated with @oh are asserted, then return true.
1794 * Otherwise, if part of @oh is out hardreset or if no hardreset lines
1795 * associated with @oh are asserted, then return false.
1796 * This function is used to avoid executing some parts of the IP block
1797 * enable/disable sequence if its hardreset line is set.
1798 */
_are_all_hardreset_lines_asserted(struct omap_hwmod * oh)1799 static bool _are_all_hardreset_lines_asserted(struct omap_hwmod *oh)
1800 {
1801 int i, rst_cnt = 0;
1802
1803 if (oh->rst_lines_cnt == 0)
1804 return false;
1805
1806 for (i = 0; i < oh->rst_lines_cnt; i++)
1807 if (_read_hardreset(oh, oh->rst_lines[i].name) > 0)
1808 rst_cnt++;
1809
1810 if (oh->rst_lines_cnt == rst_cnt)
1811 return true;
1812
1813 return false;
1814 }
1815
1816 /**
1817 * _are_any_hardreset_lines_asserted - return true if any part of @oh is
1818 * hard-reset
1819 * @oh: struct omap_hwmod *
1820 *
1821 * If any hardreset lines associated with @oh are asserted, then
1822 * return true. Otherwise, if no hardreset lines associated with @oh
1823 * are asserted, or if @oh has no hardreset lines, then return false.
1824 * This function is used to avoid executing some parts of the IP block
1825 * enable/disable sequence if any hardreset line is set.
1826 */
_are_any_hardreset_lines_asserted(struct omap_hwmod * oh)1827 static bool _are_any_hardreset_lines_asserted(struct omap_hwmod *oh)
1828 {
1829 int rst_cnt = 0;
1830 int i;
1831
1832 for (i = 0; i < oh->rst_lines_cnt && rst_cnt == 0; i++)
1833 if (_read_hardreset(oh, oh->rst_lines[i].name) > 0)
1834 rst_cnt++;
1835
1836 return (rst_cnt) ? true : false;
1837 }
1838
1839 /**
1840 * _omap4_disable_module - enable CLKCTRL modulemode on OMAP4
1841 * @oh: struct omap_hwmod *
1842 *
1843 * Disable the PRCM module mode related to the hwmod @oh.
1844 * Return EINVAL if the modulemode is not supported and 0 in case of success.
1845 */
_omap4_disable_module(struct omap_hwmod * oh)1846 static int _omap4_disable_module(struct omap_hwmod *oh)
1847 {
1848 int v;
1849
1850 if (!oh->clkdm || !oh->prcm.omap4.modulemode)
1851 return -EINVAL;
1852
1853 /*
1854 * Since integration code might still be doing something, only
1855 * disable if all lines are under hardreset.
1856 */
1857 if (_are_any_hardreset_lines_asserted(oh))
1858 return 0;
1859
1860 pr_debug("omap_hwmod: %s: %s\n", oh->name, __func__);
1861
1862 omap_cm_module_disable(oh->clkdm->prcm_partition, oh->clkdm->cm_inst,
1863 oh->prcm.omap4.clkctrl_offs);
1864
1865 v = _omap4_wait_target_disable(oh);
1866 if (v)
1867 pr_warn("omap_hwmod: %s: _wait_target_disable failed\n",
1868 oh->name);
1869
1870 return 0;
1871 }
1872
1873 /**
1874 * _ocp_softreset - reset an omap_hwmod via the OCP_SYSCONFIG bit
1875 * @oh: struct omap_hwmod *
1876 *
1877 * Resets an omap_hwmod @oh via the OCP_SYSCONFIG bit. hwmod must be
1878 * enabled for this to work. Returns -ENOENT if the hwmod cannot be
1879 * reset this way, -EINVAL if the hwmod is in the wrong state,
1880 * -ETIMEDOUT if the module did not reset in time, or 0 upon success.
1881 *
1882 * In OMAP3 a specific SYSSTATUS register is used to get the reset status.
1883 * Starting in OMAP4, some IPs do not have SYSSTATUS registers and instead
1884 * use the SYSCONFIG softreset bit to provide the status.
1885 *
1886 * Note that some IP like McBSP do have reset control but don't have
1887 * reset status.
1888 */
_ocp_softreset(struct omap_hwmod * oh)1889 static int _ocp_softreset(struct omap_hwmod *oh)
1890 {
1891 u32 v;
1892 int c = 0;
1893 int ret = 0;
1894
1895 if (!oh->class->sysc ||
1896 !(oh->class->sysc->sysc_flags & SYSC_HAS_SOFTRESET))
1897 return -ENOENT;
1898
1899 /* clocks must be on for this operation */
1900 if (oh->_state != _HWMOD_STATE_ENABLED) {
1901 pr_warn("omap_hwmod: %s: reset can only be entered from enabled state\n",
1902 oh->name);
1903 return -EINVAL;
1904 }
1905
1906 /* For some modules, all optionnal clocks need to be enabled as well */
1907 if (oh->flags & HWMOD_CONTROL_OPT_CLKS_IN_RESET)
1908 _enable_optional_clocks(oh);
1909
1910 pr_debug("omap_hwmod: %s: resetting via OCP SOFTRESET\n", oh->name);
1911
1912 v = oh->_sysc_cache;
1913 ret = _set_softreset(oh, &v);
1914 if (ret)
1915 goto dis_opt_clks;
1916
1917 _write_sysconfig(v, oh);
1918
1919 if (oh->class->sysc->srst_udelay)
1920 udelay(oh->class->sysc->srst_udelay);
1921
1922 c = _wait_softreset_complete(oh);
1923 if (c == MAX_MODULE_SOFTRESET_WAIT) {
1924 pr_warn("omap_hwmod: %s: softreset failed (waited %d usec)\n",
1925 oh->name, MAX_MODULE_SOFTRESET_WAIT);
1926 ret = -ETIMEDOUT;
1927 goto dis_opt_clks;
1928 } else {
1929 pr_debug("omap_hwmod: %s: softreset in %d usec\n", oh->name, c);
1930 }
1931
1932 ret = _clear_softreset(oh, &v);
1933 if (ret)
1934 goto dis_opt_clks;
1935
1936 _write_sysconfig(v, oh);
1937
1938 /*
1939 * XXX add _HWMOD_STATE_WEDGED for modules that don't come back from
1940 * _wait_target_ready() or _reset()
1941 */
1942
1943 dis_opt_clks:
1944 if (oh->flags & HWMOD_CONTROL_OPT_CLKS_IN_RESET)
1945 _disable_optional_clocks(oh);
1946
1947 return ret;
1948 }
1949
1950 /**
1951 * _reset - reset an omap_hwmod
1952 * @oh: struct omap_hwmod *
1953 *
1954 * Resets an omap_hwmod @oh. If the module has a custom reset
1955 * function pointer defined, then call it to reset the IP block, and
1956 * pass along its return value to the caller. Otherwise, if the IP
1957 * block has an OCP_SYSCONFIG register with a SOFTRESET bitfield
1958 * associated with it, call a function to reset the IP block via that
1959 * method, and pass along the return value to the caller. Finally, if
1960 * the IP block has some hardreset lines associated with it, assert
1961 * all of those, but do _not_ deassert them. (This is because driver
1962 * authors have expressed an apparent requirement to control the
1963 * deassertion of the hardreset lines themselves.)
1964 *
1965 * The default software reset mechanism for most OMAP IP blocks is
1966 * triggered via the OCP_SYSCONFIG.SOFTRESET bit. However, some
1967 * hwmods cannot be reset via this method. Some are not targets and
1968 * therefore have no OCP header registers to access. Others (like the
1969 * IVA) have idiosyncratic reset sequences. So for these relatively
1970 * rare cases, custom reset code can be supplied in the struct
1971 * omap_hwmod_class .reset function pointer.
1972 *
1973 * _set_dmadisable() is called to set the DMADISABLE bit so that it
1974 * does not prevent idling of the system. This is necessary for cases
1975 * where ROMCODE/BOOTLOADER uses dma and transfers control to the
1976 * kernel without disabling dma.
1977 *
1978 * Passes along the return value from either _ocp_softreset() or the
1979 * custom reset function - these must return -EINVAL if the hwmod
1980 * cannot be reset this way or if the hwmod is in the wrong state,
1981 * -ETIMEDOUT if the module did not reset in time, or 0 upon success.
1982 */
_reset(struct omap_hwmod * oh)1983 static int _reset(struct omap_hwmod *oh)
1984 {
1985 int i, r;
1986
1987 pr_debug("omap_hwmod: %s: resetting\n", oh->name);
1988
1989 if (oh->class->reset) {
1990 r = oh->class->reset(oh);
1991 } else {
1992 if (oh->rst_lines_cnt > 0) {
1993 for (i = 0; i < oh->rst_lines_cnt; i++)
1994 _assert_hardreset(oh, oh->rst_lines[i].name);
1995 return 0;
1996 } else {
1997 r = _ocp_softreset(oh);
1998 if (r == -ENOENT)
1999 r = 0;
2000 }
2001 }
2002
2003 _set_dmadisable(oh);
2004
2005 /*
2006 * OCP_SYSCONFIG bits need to be reprogrammed after a
2007 * softreset. The _enable() function should be split to avoid
2008 * the rewrite of the OCP_SYSCONFIG register.
2009 */
2010 if (oh->class->sysc) {
2011 _update_sysc_cache(oh);
2012 _enable_sysc(oh);
2013 }
2014
2015 return r;
2016 }
2017
2018 /**
2019 * _omap4_update_context_lost - increment hwmod context loss counter if
2020 * hwmod context was lost, and clear hardware context loss reg
2021 * @oh: hwmod to check for context loss
2022 *
2023 * If the PRCM indicates that the hwmod @oh lost context, increment
2024 * our in-memory context loss counter, and clear the RM_*_CONTEXT
2025 * bits. No return value.
2026 */
_omap4_update_context_lost(struct omap_hwmod * oh)2027 static void _omap4_update_context_lost(struct omap_hwmod *oh)
2028 {
2029 if (oh->prcm.omap4.flags & HWMOD_OMAP4_NO_CONTEXT_LOSS_BIT)
2030 return;
2031
2032 if (!prm_was_any_context_lost_old(oh->clkdm->pwrdm.ptr->prcm_partition,
2033 oh->clkdm->pwrdm.ptr->prcm_offs,
2034 oh->prcm.omap4.context_offs))
2035 return;
2036
2037 oh->prcm.omap4.context_lost_counter++;
2038 prm_clear_context_loss_flags_old(oh->clkdm->pwrdm.ptr->prcm_partition,
2039 oh->clkdm->pwrdm.ptr->prcm_offs,
2040 oh->prcm.omap4.context_offs);
2041 }
2042
2043 /**
2044 * _omap4_get_context_lost - get context loss counter for a hwmod
2045 * @oh: hwmod to get context loss counter for
2046 *
2047 * Returns the in-memory context loss counter for a hwmod.
2048 */
_omap4_get_context_lost(struct omap_hwmod * oh)2049 static int _omap4_get_context_lost(struct omap_hwmod *oh)
2050 {
2051 return oh->prcm.omap4.context_lost_counter;
2052 }
2053
2054 /**
2055 * _enable_preprogram - Pre-program an IP block during the _enable() process
2056 * @oh: struct omap_hwmod *
2057 *
2058 * Some IP blocks (such as AESS) require some additional programming
2059 * after enable before they can enter idle. If a function pointer to
2060 * do so is present in the hwmod data, then call it and pass along the
2061 * return value; otherwise, return 0.
2062 */
_enable_preprogram(struct omap_hwmod * oh)2063 static int _enable_preprogram(struct omap_hwmod *oh)
2064 {
2065 if (!oh->class->enable_preprogram)
2066 return 0;
2067
2068 return oh->class->enable_preprogram(oh);
2069 }
2070
2071 /**
2072 * _enable - enable an omap_hwmod
2073 * @oh: struct omap_hwmod *
2074 *
2075 * Enables an omap_hwmod @oh such that the MPU can access the hwmod's
2076 * register target. Returns -EINVAL if the hwmod is in the wrong
2077 * state or passes along the return value of _wait_target_ready().
2078 */
_enable(struct omap_hwmod * oh)2079 static int _enable(struct omap_hwmod *oh)
2080 {
2081 int r;
2082
2083 pr_debug("omap_hwmod: %s: enabling\n", oh->name);
2084
2085 /*
2086 * hwmods with HWMOD_INIT_NO_IDLE flag set are left in enabled
2087 * state at init.
2088 */
2089 if (oh->_int_flags & _HWMOD_SKIP_ENABLE) {
2090 oh->_int_flags &= ~_HWMOD_SKIP_ENABLE;
2091 return 0;
2092 }
2093
2094 if (oh->_state != _HWMOD_STATE_INITIALIZED &&
2095 oh->_state != _HWMOD_STATE_IDLE &&
2096 oh->_state != _HWMOD_STATE_DISABLED) {
2097 WARN(1, "omap_hwmod: %s: enabled state can only be entered from initialized, idle, or disabled state\n",
2098 oh->name);
2099 return -EINVAL;
2100 }
2101
2102 /*
2103 * If an IP block contains HW reset lines and all of them are
2104 * asserted, we let integration code associated with that
2105 * block handle the enable. We've received very little
2106 * information on what those driver authors need, and until
2107 * detailed information is provided and the driver code is
2108 * posted to the public lists, this is probably the best we
2109 * can do.
2110 */
2111 if (_are_all_hardreset_lines_asserted(oh))
2112 return 0;
2113
2114 _add_initiator_dep(oh, mpu_oh);
2115
2116 if (oh->clkdm) {
2117 /*
2118 * A clockdomain must be in SW_SUP before enabling
2119 * completely the module. The clockdomain can be set
2120 * in HW_AUTO only when the module become ready.
2121 */
2122 clkdm_deny_idle(oh->clkdm);
2123 r = clkdm_hwmod_enable(oh->clkdm, oh);
2124 if (r) {
2125 WARN(1, "omap_hwmod: %s: could not enable clockdomain %s: %d\n",
2126 oh->name, oh->clkdm->name, r);
2127 return r;
2128 }
2129 }
2130
2131 _enable_clocks(oh);
2132 if (soc_ops.enable_module)
2133 soc_ops.enable_module(oh);
2134 if (oh->flags & HWMOD_BLOCK_WFI)
2135 cpu_idle_poll_ctrl(true);
2136
2137 if (soc_ops.update_context_lost)
2138 soc_ops.update_context_lost(oh);
2139
2140 r = (soc_ops.wait_target_ready) ? soc_ops.wait_target_ready(oh) :
2141 -EINVAL;
2142 if (oh->clkdm && !(oh->flags & HWMOD_CLKDM_NOAUTO))
2143 clkdm_allow_idle(oh->clkdm);
2144
2145 if (!r) {
2146 oh->_state = _HWMOD_STATE_ENABLED;
2147
2148 /* Access the sysconfig only if the target is ready */
2149 if (oh->class->sysc) {
2150 if (!(oh->_int_flags & _HWMOD_SYSCONFIG_LOADED))
2151 _update_sysc_cache(oh);
2152 _enable_sysc(oh);
2153 }
2154 r = _enable_preprogram(oh);
2155 } else {
2156 if (soc_ops.disable_module)
2157 soc_ops.disable_module(oh);
2158 _disable_clocks(oh);
2159 pr_err("omap_hwmod: %s: _wait_target_ready failed: %d\n",
2160 oh->name, r);
2161
2162 if (oh->clkdm)
2163 clkdm_hwmod_disable(oh->clkdm, oh);
2164 }
2165
2166 return r;
2167 }
2168
2169 /**
2170 * _idle - idle an omap_hwmod
2171 * @oh: struct omap_hwmod *
2172 *
2173 * Idles an omap_hwmod @oh. This should be called once the hwmod has
2174 * no further work. Returns -EINVAL if the hwmod is in the wrong
2175 * state or returns 0.
2176 */
_idle(struct omap_hwmod * oh)2177 static int _idle(struct omap_hwmod *oh)
2178 {
2179 if (oh->flags & HWMOD_NO_IDLE) {
2180 oh->_int_flags |= _HWMOD_SKIP_ENABLE;
2181 return 0;
2182 }
2183
2184 pr_debug("omap_hwmod: %s: idling\n", oh->name);
2185
2186 if (_are_all_hardreset_lines_asserted(oh))
2187 return 0;
2188
2189 if (oh->_state != _HWMOD_STATE_ENABLED) {
2190 WARN(1, "omap_hwmod: %s: idle state can only be entered from enabled state\n",
2191 oh->name);
2192 return -EINVAL;
2193 }
2194
2195 if (oh->class->sysc)
2196 _idle_sysc(oh);
2197 _del_initiator_dep(oh, mpu_oh);
2198
2199 /*
2200 * If HWMOD_CLKDM_NOAUTO is set then we don't
2201 * deny idle the clkdm again since idle was already denied
2202 * in _enable()
2203 */
2204 if (oh->clkdm && !(oh->flags & HWMOD_CLKDM_NOAUTO))
2205 clkdm_deny_idle(oh->clkdm);
2206
2207 if (oh->flags & HWMOD_BLOCK_WFI)
2208 cpu_idle_poll_ctrl(false);
2209 if (soc_ops.disable_module)
2210 soc_ops.disable_module(oh);
2211
2212 /*
2213 * The module must be in idle mode before disabling any parents
2214 * clocks. Otherwise, the parent clock might be disabled before
2215 * the module transition is done, and thus will prevent the
2216 * transition to complete properly.
2217 */
2218 _disable_clocks(oh);
2219 if (oh->clkdm) {
2220 clkdm_allow_idle(oh->clkdm);
2221 clkdm_hwmod_disable(oh->clkdm, oh);
2222 }
2223
2224 oh->_state = _HWMOD_STATE_IDLE;
2225
2226 return 0;
2227 }
2228
2229 /**
2230 * _shutdown - shutdown an omap_hwmod
2231 * @oh: struct omap_hwmod *
2232 *
2233 * Shut down an omap_hwmod @oh. This should be called when the driver
2234 * used for the hwmod is removed or unloaded or if the driver is not
2235 * used by the system. Returns -EINVAL if the hwmod is in the wrong
2236 * state or returns 0.
2237 */
_shutdown(struct omap_hwmod * oh)2238 static int _shutdown(struct omap_hwmod *oh)
2239 {
2240 int ret, i;
2241 u8 prev_state;
2242
2243 if (_are_all_hardreset_lines_asserted(oh))
2244 return 0;
2245
2246 if (oh->_state != _HWMOD_STATE_IDLE &&
2247 oh->_state != _HWMOD_STATE_ENABLED) {
2248 WARN(1, "omap_hwmod: %s: disabled state can only be entered from idle, or enabled state\n",
2249 oh->name);
2250 return -EINVAL;
2251 }
2252
2253 pr_debug("omap_hwmod: %s: disabling\n", oh->name);
2254
2255 if (oh->class->pre_shutdown) {
2256 prev_state = oh->_state;
2257 if (oh->_state == _HWMOD_STATE_IDLE)
2258 _enable(oh);
2259 ret = oh->class->pre_shutdown(oh);
2260 if (ret) {
2261 if (prev_state == _HWMOD_STATE_IDLE)
2262 _idle(oh);
2263 return ret;
2264 }
2265 }
2266
2267 if (oh->class->sysc) {
2268 if (oh->_state == _HWMOD_STATE_IDLE)
2269 _enable(oh);
2270 _shutdown_sysc(oh);
2271 }
2272
2273 /* clocks and deps are already disabled in idle */
2274 if (oh->_state == _HWMOD_STATE_ENABLED) {
2275 _del_initiator_dep(oh, mpu_oh);
2276 /* XXX what about the other system initiators here? dma, dsp */
2277 if (oh->flags & HWMOD_BLOCK_WFI)
2278 cpu_idle_poll_ctrl(false);
2279 if (soc_ops.disable_module)
2280 soc_ops.disable_module(oh);
2281 _disable_clocks(oh);
2282 if (oh->clkdm)
2283 clkdm_hwmod_disable(oh->clkdm, oh);
2284 }
2285 /* XXX Should this code also force-disable the optional clocks? */
2286
2287 for (i = 0; i < oh->rst_lines_cnt; i++)
2288 _assert_hardreset(oh, oh->rst_lines[i].name);
2289
2290 oh->_state = _HWMOD_STATE_DISABLED;
2291
2292 return 0;
2293 }
2294
of_dev_find_hwmod(struct device_node * np,struct omap_hwmod * oh)2295 static int of_dev_find_hwmod(struct device_node *np,
2296 struct omap_hwmod *oh)
2297 {
2298 int count, i, res;
2299 const char *p;
2300
2301 count = of_property_count_strings(np, "ti,hwmods");
2302 if (count < 1)
2303 return -ENODEV;
2304
2305 for (i = 0; i < count; i++) {
2306 res = of_property_read_string_index(np, "ti,hwmods",
2307 i, &p);
2308 if (res)
2309 continue;
2310 if (!strcmp(p, oh->name)) {
2311 pr_debug("omap_hwmod: dt %s[%i] uses hwmod %s\n",
2312 np->name, i, oh->name);
2313 return i;
2314 }
2315 }
2316
2317 return -ENODEV;
2318 }
2319
2320 /**
2321 * of_dev_hwmod_lookup - look up needed hwmod from dt blob
2322 * @np: struct device_node *
2323 * @oh: struct omap_hwmod *
2324 * @index: index of the entry found
2325 * @found: struct device_node * found or NULL
2326 *
2327 * Parse the dt blob and find out needed hwmod. Recursive function is
2328 * implemented to take care hierarchical dt blob parsing.
2329 * Return: Returns 0 on success, -ENODEV when not found.
2330 */
of_dev_hwmod_lookup(struct device_node * np,struct omap_hwmod * oh,int * index,struct device_node ** found)2331 static int of_dev_hwmod_lookup(struct device_node *np,
2332 struct omap_hwmod *oh,
2333 int *index,
2334 struct device_node **found)
2335 {
2336 struct device_node *np0 = NULL;
2337 int res;
2338
2339 res = of_dev_find_hwmod(np, oh);
2340 if (res >= 0) {
2341 *found = np;
2342 *index = res;
2343 return 0;
2344 }
2345
2346 for_each_child_of_node(np, np0) {
2347 struct device_node *fc;
2348 int i;
2349
2350 res = of_dev_hwmod_lookup(np0, oh, &i, &fc);
2351 if (res == 0) {
2352 *found = fc;
2353 *index = i;
2354 return 0;
2355 }
2356 }
2357
2358 *found = NULL;
2359 *index = 0;
2360
2361 return -ENODEV;
2362 }
2363
2364 /**
2365 * _init_mpu_rt_base - populate the virtual address for a hwmod
2366 * @oh: struct omap_hwmod * to locate the virtual address
2367 * @data: (unused, caller should pass NULL)
2368 * @index: index of the reg entry iospace in device tree
2369 * @np: struct device_node * of the IP block's device node in the DT data
2370 *
2371 * Cache the virtual address used by the MPU to access this IP block's
2372 * registers. This address is needed early so the OCP registers that
2373 * are part of the device's address space can be ioremapped properly.
2374 *
2375 * If SYSC access is not needed, the registers will not be remapped
2376 * and non-availability of MPU access is not treated as an error.
2377 *
2378 * Returns 0 on success, -EINVAL if an invalid hwmod is passed, and
2379 * -ENXIO on absent or invalid register target address space.
2380 */
_init_mpu_rt_base(struct omap_hwmod * oh,void * data,int index,struct device_node * np)2381 static int __init _init_mpu_rt_base(struct omap_hwmod *oh, void *data,
2382 int index, struct device_node *np)
2383 {
2384 struct omap_hwmod_addr_space *mem;
2385 void __iomem *va_start = NULL;
2386
2387 if (!oh)
2388 return -EINVAL;
2389
2390 _save_mpu_port_index(oh);
2391
2392 /* if we don't need sysc access we don't need to ioremap */
2393 if (!oh->class->sysc)
2394 return 0;
2395
2396 /* we can't continue without MPU PORT if we need sysc access */
2397 if (oh->_int_flags & _HWMOD_NO_MPU_PORT)
2398 return -ENXIO;
2399
2400 mem = _find_mpu_rt_addr_space(oh);
2401 if (!mem) {
2402 pr_debug("omap_hwmod: %s: no MPU register target found\n",
2403 oh->name);
2404
2405 /* Extract the IO space from device tree blob */
2406 if (!np) {
2407 pr_err("omap_hwmod: %s: no dt node\n", oh->name);
2408 return -ENXIO;
2409 }
2410
2411 va_start = of_iomap(np, index + oh->mpu_rt_idx);
2412 } else {
2413 va_start = ioremap(mem->pa_start, mem->pa_end - mem->pa_start);
2414 }
2415
2416 if (!va_start) {
2417 if (mem)
2418 pr_err("omap_hwmod: %s: Could not ioremap\n", oh->name);
2419 else
2420 pr_err("omap_hwmod: %s: Missing dt reg%i for %pOF\n",
2421 oh->name, index, np);
2422 return -ENXIO;
2423 }
2424
2425 pr_debug("omap_hwmod: %s: MPU register target at va %p\n",
2426 oh->name, va_start);
2427
2428 oh->_mpu_rt_va = va_start;
2429 return 0;
2430 }
2431
2432 /**
2433 * _init - initialize internal data for the hwmod @oh
2434 * @oh: struct omap_hwmod *
2435 * @n: (unused)
2436 *
2437 * Look up the clocks and the address space used by the MPU to access
2438 * registers belonging to the hwmod @oh. @oh must already be
2439 * registered at this point. This is the first of two phases for
2440 * hwmod initialization. Code called here does not touch any hardware
2441 * registers, it simply prepares internal data structures. Returns 0
2442 * upon success or if the hwmod isn't registered or if the hwmod's
2443 * address space is not defined, or -EINVAL upon failure.
2444 */
_init(struct omap_hwmod * oh,void * data)2445 static int __init _init(struct omap_hwmod *oh, void *data)
2446 {
2447 int r, index;
2448 struct device_node *np = NULL;
2449 struct device_node *bus;
2450
2451 if (oh->_state != _HWMOD_STATE_REGISTERED)
2452 return 0;
2453
2454 bus = of_find_node_by_name(NULL, "ocp");
2455 if (!bus)
2456 return -ENODEV;
2457
2458 r = of_dev_hwmod_lookup(bus, oh, &index, &np);
2459 if (r)
2460 pr_debug("omap_hwmod: %s missing dt data\n", oh->name);
2461 else if (np && index)
2462 pr_warn("omap_hwmod: %s using broken dt data from %s\n",
2463 oh->name, np->name);
2464
2465 r = _init_mpu_rt_base(oh, NULL, index, np);
2466 if (r < 0) {
2467 WARN(1, "omap_hwmod: %s: doesn't have mpu register target base\n",
2468 oh->name);
2469 return 0;
2470 }
2471
2472 r = _init_clocks(oh, np);
2473 if (r < 0) {
2474 WARN(1, "omap_hwmod: %s: couldn't init clocks\n", oh->name);
2475 return -EINVAL;
2476 }
2477
2478 if (np) {
2479 if (of_find_property(np, "ti,no-reset-on-init", NULL))
2480 oh->flags |= HWMOD_INIT_NO_RESET;
2481 if (of_find_property(np, "ti,no-idle-on-init", NULL))
2482 oh->flags |= HWMOD_INIT_NO_IDLE;
2483 if (of_find_property(np, "ti,no-idle", NULL))
2484 oh->flags |= HWMOD_NO_IDLE;
2485 }
2486
2487 oh->_state = _HWMOD_STATE_INITIALIZED;
2488
2489 return 0;
2490 }
2491
2492 /**
2493 * _setup_iclk_autoidle - configure an IP block's interface clocks
2494 * @oh: struct omap_hwmod *
2495 *
2496 * Set up the module's interface clocks. XXX This function is still mostly
2497 * a stub; implementing this properly requires iclk autoidle usecounting in
2498 * the clock code. No return value.
2499 */
_setup_iclk_autoidle(struct omap_hwmod * oh)2500 static void _setup_iclk_autoidle(struct omap_hwmod *oh)
2501 {
2502 struct omap_hwmod_ocp_if *os;
2503
2504 if (oh->_state != _HWMOD_STATE_INITIALIZED)
2505 return;
2506
2507 list_for_each_entry(os, &oh->slave_ports, node) {
2508 if (!os->_clk)
2509 continue;
2510
2511 if (os->flags & OCPIF_SWSUP_IDLE) {
2512 /* XXX omap_iclk_deny_idle(c); */
2513 } else {
2514 /* XXX omap_iclk_allow_idle(c); */
2515 clk_enable(os->_clk);
2516 }
2517 }
2518
2519 return;
2520 }
2521
2522 /**
2523 * _setup_reset - reset an IP block during the setup process
2524 * @oh: struct omap_hwmod *
2525 *
2526 * Reset the IP block corresponding to the hwmod @oh during the setup
2527 * process. The IP block is first enabled so it can be successfully
2528 * reset. Returns 0 upon success or a negative error code upon
2529 * failure.
2530 */
_setup_reset(struct omap_hwmod * oh)2531 static int _setup_reset(struct omap_hwmod *oh)
2532 {
2533 int r = 0;
2534
2535 if (oh->_state != _HWMOD_STATE_INITIALIZED)
2536 return -EINVAL;
2537
2538 if (oh->flags & HWMOD_EXT_OPT_MAIN_CLK)
2539 return -EPERM;
2540
2541 if (oh->rst_lines_cnt == 0) {
2542 r = _enable(oh);
2543 if (r) {
2544 pr_warn("omap_hwmod: %s: cannot be enabled for reset (%d)\n",
2545 oh->name, oh->_state);
2546 return -EINVAL;
2547 }
2548 }
2549
2550 if (!(oh->flags & HWMOD_INIT_NO_RESET))
2551 r = _reset(oh);
2552
2553 return r;
2554 }
2555
2556 /**
2557 * _setup_postsetup - transition to the appropriate state after _setup
2558 * @oh: struct omap_hwmod *
2559 *
2560 * Place an IP block represented by @oh into a "post-setup" state --
2561 * either IDLE, ENABLED, or DISABLED. ("post-setup" simply means that
2562 * this function is called at the end of _setup().) The postsetup
2563 * state for an IP block can be changed by calling
2564 * omap_hwmod_enter_postsetup_state() early in the boot process,
2565 * before one of the omap_hwmod_setup*() functions are called for the
2566 * IP block.
2567 *
2568 * The IP block stays in this state until a PM runtime-based driver is
2569 * loaded for that IP block. A post-setup state of IDLE is
2570 * appropriate for almost all IP blocks with runtime PM-enabled
2571 * drivers, since those drivers are able to enable the IP block. A
2572 * post-setup state of ENABLED is appropriate for kernels with PM
2573 * runtime disabled. The DISABLED state is appropriate for unusual IP
2574 * blocks such as the MPU WDTIMER on kernels without WDTIMER drivers
2575 * included, since the WDTIMER starts running on reset and will reset
2576 * the MPU if left active.
2577 *
2578 * This post-setup mechanism is deprecated. Once all of the OMAP
2579 * drivers have been converted to use PM runtime, and all of the IP
2580 * block data and interconnect data is available to the hwmod code, it
2581 * should be possible to replace this mechanism with a "lazy reset"
2582 * arrangement. In a "lazy reset" setup, each IP block is enabled
2583 * when the driver first probes, then all remaining IP blocks without
2584 * drivers are either shut down or enabled after the drivers have
2585 * loaded. However, this cannot take place until the above
2586 * preconditions have been met, since otherwise the late reset code
2587 * has no way of knowing which IP blocks are in use by drivers, and
2588 * which ones are unused.
2589 *
2590 * No return value.
2591 */
_setup_postsetup(struct omap_hwmod * oh)2592 static void _setup_postsetup(struct omap_hwmod *oh)
2593 {
2594 u8 postsetup_state;
2595
2596 if (oh->rst_lines_cnt > 0)
2597 return;
2598
2599 postsetup_state = oh->_postsetup_state;
2600 if (postsetup_state == _HWMOD_STATE_UNKNOWN)
2601 postsetup_state = _HWMOD_STATE_ENABLED;
2602
2603 /*
2604 * XXX HWMOD_INIT_NO_IDLE does not belong in hwmod data -
2605 * it should be set by the core code as a runtime flag during startup
2606 */
2607 if ((oh->flags & (HWMOD_INIT_NO_IDLE | HWMOD_NO_IDLE)) &&
2608 (postsetup_state == _HWMOD_STATE_IDLE)) {
2609 oh->_int_flags |= _HWMOD_SKIP_ENABLE;
2610 postsetup_state = _HWMOD_STATE_ENABLED;
2611 }
2612
2613 if (postsetup_state == _HWMOD_STATE_IDLE)
2614 _idle(oh);
2615 else if (postsetup_state == _HWMOD_STATE_DISABLED)
2616 _shutdown(oh);
2617 else if (postsetup_state != _HWMOD_STATE_ENABLED)
2618 WARN(1, "hwmod: %s: unknown postsetup state %d! defaulting to enabled\n",
2619 oh->name, postsetup_state);
2620
2621 return;
2622 }
2623
2624 /**
2625 * _setup - prepare IP block hardware for use
2626 * @oh: struct omap_hwmod *
2627 * @n: (unused, pass NULL)
2628 *
2629 * Configure the IP block represented by @oh. This may include
2630 * enabling the IP block, resetting it, and placing it into a
2631 * post-setup state, depending on the type of IP block and applicable
2632 * flags. IP blocks are reset to prevent any previous configuration
2633 * by the bootloader or previous operating system from interfering
2634 * with power management or other parts of the system. The reset can
2635 * be avoided; see omap_hwmod_no_setup_reset(). This is the second of
2636 * two phases for hwmod initialization. Code called here generally
2637 * affects the IP block hardware, or system integration hardware
2638 * associated with the IP block. Returns 0.
2639 */
_setup(struct omap_hwmod * oh,void * data)2640 static int __init _setup(struct omap_hwmod *oh, void *data)
2641 {
2642 if (oh->_state != _HWMOD_STATE_INITIALIZED)
2643 return 0;
2644
2645 if (oh->parent_hwmod) {
2646 int r;
2647
2648 r = _enable(oh->parent_hwmod);
2649 WARN(r, "hwmod: %s: setup: failed to enable parent hwmod %s\n",
2650 oh->name, oh->parent_hwmod->name);
2651 }
2652
2653 _setup_iclk_autoidle(oh);
2654
2655 if (!_setup_reset(oh))
2656 _setup_postsetup(oh);
2657
2658 if (oh->parent_hwmod) {
2659 u8 postsetup_state;
2660
2661 postsetup_state = oh->parent_hwmod->_postsetup_state;
2662
2663 if (postsetup_state == _HWMOD_STATE_IDLE)
2664 _idle(oh->parent_hwmod);
2665 else if (postsetup_state == _HWMOD_STATE_DISABLED)
2666 _shutdown(oh->parent_hwmod);
2667 else if (postsetup_state != _HWMOD_STATE_ENABLED)
2668 WARN(1, "hwmod: %s: unknown postsetup state %d! defaulting to enabled\n",
2669 oh->parent_hwmod->name, postsetup_state);
2670 }
2671
2672 return 0;
2673 }
2674
2675 /**
2676 * _register - register a struct omap_hwmod
2677 * @oh: struct omap_hwmod *
2678 *
2679 * Registers the omap_hwmod @oh. Returns -EEXIST if an omap_hwmod
2680 * already has been registered by the same name; -EINVAL if the
2681 * omap_hwmod is in the wrong state, if @oh is NULL, if the
2682 * omap_hwmod's class field is NULL; if the omap_hwmod is missing a
2683 * name, or if the omap_hwmod's class is missing a name; or 0 upon
2684 * success.
2685 *
2686 * XXX The data should be copied into bootmem, so the original data
2687 * should be marked __initdata and freed after init. This would allow
2688 * unneeded omap_hwmods to be freed on multi-OMAP configurations. Note
2689 * that the copy process would be relatively complex due to the large number
2690 * of substructures.
2691 */
_register(struct omap_hwmod * oh)2692 static int __init _register(struct omap_hwmod *oh)
2693 {
2694 if (!oh || !oh->name || !oh->class || !oh->class->name ||
2695 (oh->_state != _HWMOD_STATE_UNKNOWN))
2696 return -EINVAL;
2697
2698 pr_debug("omap_hwmod: %s: registering\n", oh->name);
2699
2700 if (_lookup(oh->name))
2701 return -EEXIST;
2702
2703 list_add_tail(&oh->node, &omap_hwmod_list);
2704
2705 INIT_LIST_HEAD(&oh->slave_ports);
2706 spin_lock_init(&oh->_lock);
2707 lockdep_set_class(&oh->_lock, &oh->hwmod_key);
2708
2709 oh->_state = _HWMOD_STATE_REGISTERED;
2710
2711 /*
2712 * XXX Rather than doing a strcmp(), this should test a flag
2713 * set in the hwmod data, inserted by the autogenerator code.
2714 */
2715 if (!strcmp(oh->name, MPU_INITIATOR_NAME))
2716 mpu_oh = oh;
2717
2718 return 0;
2719 }
2720
2721 /**
2722 * _add_link - add an interconnect between two IP blocks
2723 * @oi: pointer to a struct omap_hwmod_ocp_if record
2724 *
2725 * Add struct omap_hwmod_link records connecting the slave IP block
2726 * specified in @oi->slave to @oi. This code is assumed to run before
2727 * preemption or SMP has been enabled, thus avoiding the need for
2728 * locking in this code. Changes to this assumption will require
2729 * additional locking. Returns 0.
2730 */
_add_link(struct omap_hwmod_ocp_if * oi)2731 static int __init _add_link(struct omap_hwmod_ocp_if *oi)
2732 {
2733 pr_debug("omap_hwmod: %s -> %s: adding link\n", oi->master->name,
2734 oi->slave->name);
2735
2736 list_add(&oi->node, &oi->slave->slave_ports);
2737 oi->slave->slaves_cnt++;
2738
2739 return 0;
2740 }
2741
2742 /**
2743 * _register_link - register a struct omap_hwmod_ocp_if
2744 * @oi: struct omap_hwmod_ocp_if *
2745 *
2746 * Registers the omap_hwmod_ocp_if record @oi. Returns -EEXIST if it
2747 * has already been registered; -EINVAL if @oi is NULL or if the
2748 * record pointed to by @oi is missing required fields; or 0 upon
2749 * success.
2750 *
2751 * XXX The data should be copied into bootmem, so the original data
2752 * should be marked __initdata and freed after init. This would allow
2753 * unneeded omap_hwmods to be freed on multi-OMAP configurations.
2754 */
_register_link(struct omap_hwmod_ocp_if * oi)2755 static int __init _register_link(struct omap_hwmod_ocp_if *oi)
2756 {
2757 if (!oi || !oi->master || !oi->slave || !oi->user)
2758 return -EINVAL;
2759
2760 if (oi->_int_flags & _OCPIF_INT_FLAGS_REGISTERED)
2761 return -EEXIST;
2762
2763 pr_debug("omap_hwmod: registering link from %s to %s\n",
2764 oi->master->name, oi->slave->name);
2765
2766 /*
2767 * Register the connected hwmods, if they haven't been
2768 * registered already
2769 */
2770 if (oi->master->_state != _HWMOD_STATE_REGISTERED)
2771 _register(oi->master);
2772
2773 if (oi->slave->_state != _HWMOD_STATE_REGISTERED)
2774 _register(oi->slave);
2775
2776 _add_link(oi);
2777
2778 oi->_int_flags |= _OCPIF_INT_FLAGS_REGISTERED;
2779
2780 return 0;
2781 }
2782
2783 /* Static functions intended only for use in soc_ops field function pointers */
2784
2785 /**
2786 * _omap2xxx_3xxx_wait_target_ready - wait for a module to leave slave idle
2787 * @oh: struct omap_hwmod *
2788 *
2789 * Wait for a module @oh to leave slave idle. Returns 0 if the module
2790 * does not have an IDLEST bit or if the module successfully leaves
2791 * slave idle; otherwise, pass along the return value of the
2792 * appropriate *_cm*_wait_module_ready() function.
2793 */
_omap2xxx_3xxx_wait_target_ready(struct omap_hwmod * oh)2794 static int _omap2xxx_3xxx_wait_target_ready(struct omap_hwmod *oh)
2795 {
2796 if (!oh)
2797 return -EINVAL;
2798
2799 if (oh->flags & HWMOD_NO_IDLEST)
2800 return 0;
2801
2802 if (!_find_mpu_rt_port(oh))
2803 return 0;
2804
2805 /* XXX check module SIDLEMODE, hardreset status, enabled clocks */
2806
2807 return omap_cm_wait_module_ready(0, oh->prcm.omap2.module_offs,
2808 oh->prcm.omap2.idlest_reg_id,
2809 oh->prcm.omap2.idlest_idle_bit);
2810 }
2811
2812 /**
2813 * _omap4_wait_target_ready - wait for a module to leave slave idle
2814 * @oh: struct omap_hwmod *
2815 *
2816 * Wait for a module @oh to leave slave idle. Returns 0 if the module
2817 * does not have an IDLEST bit or if the module successfully leaves
2818 * slave idle; otherwise, pass along the return value of the
2819 * appropriate *_cm*_wait_module_ready() function.
2820 */
_omap4_wait_target_ready(struct omap_hwmod * oh)2821 static int _omap4_wait_target_ready(struct omap_hwmod *oh)
2822 {
2823 if (!oh)
2824 return -EINVAL;
2825
2826 if (oh->flags & HWMOD_NO_IDLEST || !oh->clkdm)
2827 return 0;
2828
2829 if (!_find_mpu_rt_port(oh))
2830 return 0;
2831
2832 if (!oh->prcm.omap4.clkctrl_offs &&
2833 !(oh->prcm.omap4.flags & HWMOD_OMAP4_ZERO_CLKCTRL_OFFSET))
2834 return 0;
2835
2836 /* XXX check module SIDLEMODE, hardreset status */
2837
2838 return omap_cm_wait_module_ready(oh->clkdm->prcm_partition,
2839 oh->clkdm->cm_inst,
2840 oh->prcm.omap4.clkctrl_offs, 0);
2841 }
2842
2843 /**
2844 * _omap2_assert_hardreset - call OMAP2 PRM hardreset fn with hwmod args
2845 * @oh: struct omap_hwmod * to assert hardreset
2846 * @ohri: hardreset line data
2847 *
2848 * Call omap2_prm_assert_hardreset() with parameters extracted from
2849 * the hwmod @oh and the hardreset line data @ohri. Only intended for
2850 * use as an soc_ops function pointer. Passes along the return value
2851 * from omap2_prm_assert_hardreset(). XXX This function is scheduled
2852 * for removal when the PRM code is moved into drivers/.
2853 */
_omap2_assert_hardreset(struct omap_hwmod * oh,struct omap_hwmod_rst_info * ohri)2854 static int _omap2_assert_hardreset(struct omap_hwmod *oh,
2855 struct omap_hwmod_rst_info *ohri)
2856 {
2857 return omap_prm_assert_hardreset(ohri->rst_shift, 0,
2858 oh->prcm.omap2.module_offs, 0);
2859 }
2860
2861 /**
2862 * _omap2_deassert_hardreset - call OMAP2 PRM hardreset fn with hwmod args
2863 * @oh: struct omap_hwmod * to deassert hardreset
2864 * @ohri: hardreset line data
2865 *
2866 * Call omap2_prm_deassert_hardreset() with parameters extracted from
2867 * the hwmod @oh and the hardreset line data @ohri. Only intended for
2868 * use as an soc_ops function pointer. Passes along the return value
2869 * from omap2_prm_deassert_hardreset(). XXX This function is
2870 * scheduled for removal when the PRM code is moved into drivers/.
2871 */
_omap2_deassert_hardreset(struct omap_hwmod * oh,struct omap_hwmod_rst_info * ohri)2872 static int _omap2_deassert_hardreset(struct omap_hwmod *oh,
2873 struct omap_hwmod_rst_info *ohri)
2874 {
2875 return omap_prm_deassert_hardreset(ohri->rst_shift, ohri->st_shift, 0,
2876 oh->prcm.omap2.module_offs, 0, 0);
2877 }
2878
2879 /**
2880 * _omap2_is_hardreset_asserted - call OMAP2 PRM hardreset fn with hwmod args
2881 * @oh: struct omap_hwmod * to test hardreset
2882 * @ohri: hardreset line data
2883 *
2884 * Call omap2_prm_is_hardreset_asserted() with parameters extracted
2885 * from the hwmod @oh and the hardreset line data @ohri. Only
2886 * intended for use as an soc_ops function pointer. Passes along the
2887 * return value from omap2_prm_is_hardreset_asserted(). XXX This
2888 * function is scheduled for removal when the PRM code is moved into
2889 * drivers/.
2890 */
_omap2_is_hardreset_asserted(struct omap_hwmod * oh,struct omap_hwmod_rst_info * ohri)2891 static int _omap2_is_hardreset_asserted(struct omap_hwmod *oh,
2892 struct omap_hwmod_rst_info *ohri)
2893 {
2894 return omap_prm_is_hardreset_asserted(ohri->st_shift, 0,
2895 oh->prcm.omap2.module_offs, 0);
2896 }
2897
2898 /**
2899 * _omap4_assert_hardreset - call OMAP4 PRM hardreset fn with hwmod args
2900 * @oh: struct omap_hwmod * to assert hardreset
2901 * @ohri: hardreset line data
2902 *
2903 * Call omap4_prminst_assert_hardreset() with parameters extracted
2904 * from the hwmod @oh and the hardreset line data @ohri. Only
2905 * intended for use as an soc_ops function pointer. Passes along the
2906 * return value from omap4_prminst_assert_hardreset(). XXX This
2907 * function is scheduled for removal when the PRM code is moved into
2908 * drivers/.
2909 */
_omap4_assert_hardreset(struct omap_hwmod * oh,struct omap_hwmod_rst_info * ohri)2910 static int _omap4_assert_hardreset(struct omap_hwmod *oh,
2911 struct omap_hwmod_rst_info *ohri)
2912 {
2913 if (!oh->clkdm)
2914 return -EINVAL;
2915
2916 return omap_prm_assert_hardreset(ohri->rst_shift,
2917 oh->clkdm->pwrdm.ptr->prcm_partition,
2918 oh->clkdm->pwrdm.ptr->prcm_offs,
2919 oh->prcm.omap4.rstctrl_offs);
2920 }
2921
2922 /**
2923 * _omap4_deassert_hardreset - call OMAP4 PRM hardreset fn with hwmod args
2924 * @oh: struct omap_hwmod * to deassert hardreset
2925 * @ohri: hardreset line data
2926 *
2927 * Call omap4_prminst_deassert_hardreset() with parameters extracted
2928 * from the hwmod @oh and the hardreset line data @ohri. Only
2929 * intended for use as an soc_ops function pointer. Passes along the
2930 * return value from omap4_prminst_deassert_hardreset(). XXX This
2931 * function is scheduled for removal when the PRM code is moved into
2932 * drivers/.
2933 */
_omap4_deassert_hardreset(struct omap_hwmod * oh,struct omap_hwmod_rst_info * ohri)2934 static int _omap4_deassert_hardreset(struct omap_hwmod *oh,
2935 struct omap_hwmod_rst_info *ohri)
2936 {
2937 if (!oh->clkdm)
2938 return -EINVAL;
2939
2940 if (ohri->st_shift)
2941 pr_err("omap_hwmod: %s: %s: hwmod data error: OMAP4 does not support st_shift\n",
2942 oh->name, ohri->name);
2943 return omap_prm_deassert_hardreset(ohri->rst_shift, ohri->rst_shift,
2944 oh->clkdm->pwrdm.ptr->prcm_partition,
2945 oh->clkdm->pwrdm.ptr->prcm_offs,
2946 oh->prcm.omap4.rstctrl_offs,
2947 oh->prcm.omap4.rstctrl_offs +
2948 OMAP4_RST_CTRL_ST_OFFSET);
2949 }
2950
2951 /**
2952 * _omap4_is_hardreset_asserted - call OMAP4 PRM hardreset fn with hwmod args
2953 * @oh: struct omap_hwmod * to test hardreset
2954 * @ohri: hardreset line data
2955 *
2956 * Call omap4_prminst_is_hardreset_asserted() with parameters
2957 * extracted from the hwmod @oh and the hardreset line data @ohri.
2958 * Only intended for use as an soc_ops function pointer. Passes along
2959 * the return value from omap4_prminst_is_hardreset_asserted(). XXX
2960 * This function is scheduled for removal when the PRM code is moved
2961 * into drivers/.
2962 */
_omap4_is_hardreset_asserted(struct omap_hwmod * oh,struct omap_hwmod_rst_info * ohri)2963 static int _omap4_is_hardreset_asserted(struct omap_hwmod *oh,
2964 struct omap_hwmod_rst_info *ohri)
2965 {
2966 if (!oh->clkdm)
2967 return -EINVAL;
2968
2969 return omap_prm_is_hardreset_asserted(ohri->rst_shift,
2970 oh->clkdm->pwrdm.ptr->
2971 prcm_partition,
2972 oh->clkdm->pwrdm.ptr->prcm_offs,
2973 oh->prcm.omap4.rstctrl_offs);
2974 }
2975
2976 /**
2977 * _omap4_disable_direct_prcm - disable direct PRCM control for hwmod
2978 * @oh: struct omap_hwmod * to disable control for
2979 *
2980 * Disables direct PRCM clkctrl done by hwmod core. Instead, the hwmod
2981 * will be using its main_clk to enable/disable the module. Returns
2982 * 0 if successful.
2983 */
_omap4_disable_direct_prcm(struct omap_hwmod * oh)2984 static int _omap4_disable_direct_prcm(struct omap_hwmod *oh)
2985 {
2986 if (!oh)
2987 return -EINVAL;
2988
2989 oh->prcm.omap4.clkctrl_offs = 0;
2990 oh->prcm.omap4.modulemode = 0;
2991
2992 return 0;
2993 }
2994
2995 /**
2996 * _am33xx_deassert_hardreset - call AM33XX PRM hardreset fn with hwmod args
2997 * @oh: struct omap_hwmod * to deassert hardreset
2998 * @ohri: hardreset line data
2999 *
3000 * Call am33xx_prminst_deassert_hardreset() with parameters extracted
3001 * from the hwmod @oh and the hardreset line data @ohri. Only
3002 * intended for use as an soc_ops function pointer. Passes along the
3003 * return value from am33xx_prminst_deassert_hardreset(). XXX This
3004 * function is scheduled for removal when the PRM code is moved into
3005 * drivers/.
3006 */
_am33xx_deassert_hardreset(struct omap_hwmod * oh,struct omap_hwmod_rst_info * ohri)3007 static int _am33xx_deassert_hardreset(struct omap_hwmod *oh,
3008 struct omap_hwmod_rst_info *ohri)
3009 {
3010 return omap_prm_deassert_hardreset(ohri->rst_shift, ohri->st_shift,
3011 oh->clkdm->pwrdm.ptr->prcm_partition,
3012 oh->clkdm->pwrdm.ptr->prcm_offs,
3013 oh->prcm.omap4.rstctrl_offs,
3014 oh->prcm.omap4.rstst_offs);
3015 }
3016
3017 /* Public functions */
3018
omap_hwmod_read(struct omap_hwmod * oh,u16 reg_offs)3019 u32 omap_hwmod_read(struct omap_hwmod *oh, u16 reg_offs)
3020 {
3021 if (oh->flags & HWMOD_16BIT_REG)
3022 return readw_relaxed(oh->_mpu_rt_va + reg_offs);
3023 else
3024 return readl_relaxed(oh->_mpu_rt_va + reg_offs);
3025 }
3026
omap_hwmod_write(u32 v,struct omap_hwmod * oh,u16 reg_offs)3027 void omap_hwmod_write(u32 v, struct omap_hwmod *oh, u16 reg_offs)
3028 {
3029 if (oh->flags & HWMOD_16BIT_REG)
3030 writew_relaxed(v, oh->_mpu_rt_va + reg_offs);
3031 else
3032 writel_relaxed(v, oh->_mpu_rt_va + reg_offs);
3033 }
3034
3035 /**
3036 * omap_hwmod_softreset - reset a module via SYSCONFIG.SOFTRESET bit
3037 * @oh: struct omap_hwmod *
3038 *
3039 * This is a public function exposed to drivers. Some drivers may need to do
3040 * some settings before and after resetting the device. Those drivers after
3041 * doing the necessary settings could use this function to start a reset by
3042 * setting the SYSCONFIG.SOFTRESET bit.
3043 */
omap_hwmod_softreset(struct omap_hwmod * oh)3044 int omap_hwmod_softreset(struct omap_hwmod *oh)
3045 {
3046 u32 v;
3047 int ret;
3048
3049 if (!oh || !(oh->_sysc_cache))
3050 return -EINVAL;
3051
3052 v = oh->_sysc_cache;
3053 ret = _set_softreset(oh, &v);
3054 if (ret)
3055 goto error;
3056 _write_sysconfig(v, oh);
3057
3058 ret = _clear_softreset(oh, &v);
3059 if (ret)
3060 goto error;
3061 _write_sysconfig(v, oh);
3062
3063 error:
3064 return ret;
3065 }
3066
3067 /**
3068 * omap_hwmod_lookup - look up a registered omap_hwmod by name
3069 * @name: name of the omap_hwmod to look up
3070 *
3071 * Given a @name of an omap_hwmod, return a pointer to the registered
3072 * struct omap_hwmod *, or NULL upon error.
3073 */
omap_hwmod_lookup(const char * name)3074 struct omap_hwmod *omap_hwmod_lookup(const char *name)
3075 {
3076 struct omap_hwmod *oh;
3077
3078 if (!name)
3079 return NULL;
3080
3081 oh = _lookup(name);
3082
3083 return oh;
3084 }
3085
3086 /**
3087 * omap_hwmod_for_each - call function for each registered omap_hwmod
3088 * @fn: pointer to a callback function
3089 * @data: void * data to pass to callback function
3090 *
3091 * Call @fn for each registered omap_hwmod, passing @data to each
3092 * function. @fn must return 0 for success or any other value for
3093 * failure. If @fn returns non-zero, the iteration across omap_hwmods
3094 * will stop and the non-zero return value will be passed to the
3095 * caller of omap_hwmod_for_each(). @fn is called with
3096 * omap_hwmod_for_each() held.
3097 */
omap_hwmod_for_each(int (* fn)(struct omap_hwmod * oh,void * data),void * data)3098 int omap_hwmod_for_each(int (*fn)(struct omap_hwmod *oh, void *data),
3099 void *data)
3100 {
3101 struct omap_hwmod *temp_oh;
3102 int ret = 0;
3103
3104 if (!fn)
3105 return -EINVAL;
3106
3107 list_for_each_entry(temp_oh, &omap_hwmod_list, node) {
3108 ret = (*fn)(temp_oh, data);
3109 if (ret)
3110 break;
3111 }
3112
3113 return ret;
3114 }
3115
3116 /**
3117 * omap_hwmod_register_links - register an array of hwmod links
3118 * @ois: pointer to an array of omap_hwmod_ocp_if to register
3119 *
3120 * Intended to be called early in boot before the clock framework is
3121 * initialized. If @ois is not null, will register all omap_hwmods
3122 * listed in @ois that are valid for this chip. Returns -EINVAL if
3123 * omap_hwmod_init() hasn't been called before calling this function,
3124 * -ENOMEM if the link memory area can't be allocated, or 0 upon
3125 * success.
3126 */
omap_hwmod_register_links(struct omap_hwmod_ocp_if ** ois)3127 int __init omap_hwmod_register_links(struct omap_hwmod_ocp_if **ois)
3128 {
3129 int r, i;
3130
3131 if (!inited)
3132 return -EINVAL;
3133
3134 if (!ois)
3135 return 0;
3136
3137 if (ois[0] == NULL) /* Empty list */
3138 return 0;
3139
3140 i = 0;
3141 do {
3142 r = _register_link(ois[i]);
3143 WARN(r && r != -EEXIST,
3144 "omap_hwmod: _register_link(%s -> %s) returned %d\n",
3145 ois[i]->master->name, ois[i]->slave->name, r);
3146 } while (ois[++i]);
3147
3148 return 0;
3149 }
3150
3151 /**
3152 * _ensure_mpu_hwmod_is_setup - ensure the MPU SS hwmod is init'ed and set up
3153 * @oh: pointer to the hwmod currently being set up (usually not the MPU)
3154 *
3155 * If the hwmod data corresponding to the MPU subsystem IP block
3156 * hasn't been initialized and set up yet, do so now. This must be
3157 * done first since sleep dependencies may be added from other hwmods
3158 * to the MPU. Intended to be called only by omap_hwmod_setup*(). No
3159 * return value.
3160 */
_ensure_mpu_hwmod_is_setup(struct omap_hwmod * oh)3161 static void __init _ensure_mpu_hwmod_is_setup(struct omap_hwmod *oh)
3162 {
3163 if (!mpu_oh || mpu_oh->_state == _HWMOD_STATE_UNKNOWN)
3164 pr_err("omap_hwmod: %s: MPU initiator hwmod %s not yet registered\n",
3165 __func__, MPU_INITIATOR_NAME);
3166 else if (mpu_oh->_state == _HWMOD_STATE_REGISTERED && oh != mpu_oh)
3167 omap_hwmod_setup_one(MPU_INITIATOR_NAME);
3168 }
3169
3170 /**
3171 * omap_hwmod_setup_one - set up a single hwmod
3172 * @oh_name: const char * name of the already-registered hwmod to set up
3173 *
3174 * Initialize and set up a single hwmod. Intended to be used for a
3175 * small number of early devices, such as the timer IP blocks used for
3176 * the scheduler clock. Must be called after omap2_clk_init().
3177 * Resolves the struct clk names to struct clk pointers for each
3178 * registered omap_hwmod. Also calls _setup() on each hwmod. Returns
3179 * -EINVAL upon error or 0 upon success.
3180 */
omap_hwmod_setup_one(const char * oh_name)3181 int __init omap_hwmod_setup_one(const char *oh_name)
3182 {
3183 struct omap_hwmod *oh;
3184
3185 pr_debug("omap_hwmod: %s: %s\n", oh_name, __func__);
3186
3187 oh = _lookup(oh_name);
3188 if (!oh) {
3189 WARN(1, "omap_hwmod: %s: hwmod not yet registered\n", oh_name);
3190 return -EINVAL;
3191 }
3192
3193 _ensure_mpu_hwmod_is_setup(oh);
3194
3195 _init(oh, NULL);
3196 _setup(oh, NULL);
3197
3198 return 0;
3199 }
3200
3201 /**
3202 * omap_hwmod_setup_earlycon_flags - set up flags for early console
3203 *
3204 * Enable DEBUG_OMAPUART_FLAGS for uart hwmod that is being used as
3205 * early concole so that hwmod core doesn't reset and keep it in idle
3206 * that specific uart.
3207 */
3208 #ifdef CONFIG_SERIAL_EARLYCON
omap_hwmod_setup_earlycon_flags(void)3209 static void __init omap_hwmod_setup_earlycon_flags(void)
3210 {
3211 struct device_node *np;
3212 struct omap_hwmod *oh;
3213 const char *uart;
3214
3215 np = of_find_node_by_path("/chosen");
3216 if (np) {
3217 uart = of_get_property(np, "stdout-path", NULL);
3218 if (uart) {
3219 np = of_find_node_by_path(uart);
3220 if (np) {
3221 uart = of_get_property(np, "ti,hwmods", NULL);
3222 oh = omap_hwmod_lookup(uart);
3223 if (oh)
3224 oh->flags |= DEBUG_OMAPUART_FLAGS;
3225 }
3226 }
3227 }
3228 }
3229 #endif
3230
3231 /**
3232 * omap_hwmod_setup_all - set up all registered IP blocks
3233 *
3234 * Initialize and set up all IP blocks registered with the hwmod code.
3235 * Must be called after omap2_clk_init(). Resolves the struct clk
3236 * names to struct clk pointers for each registered omap_hwmod. Also
3237 * calls _setup() on each hwmod. Returns 0 upon success.
3238 */
omap_hwmod_setup_all(void)3239 static int __init omap_hwmod_setup_all(void)
3240 {
3241 _ensure_mpu_hwmod_is_setup(NULL);
3242
3243 omap_hwmod_for_each(_init, NULL);
3244 #ifdef CONFIG_SERIAL_EARLYCON
3245 omap_hwmod_setup_earlycon_flags();
3246 #endif
3247 omap_hwmod_for_each(_setup, NULL);
3248
3249 return 0;
3250 }
3251 omap_postcore_initcall(omap_hwmod_setup_all);
3252
3253 /**
3254 * omap_hwmod_enable - enable an omap_hwmod
3255 * @oh: struct omap_hwmod *
3256 *
3257 * Enable an omap_hwmod @oh. Intended to be called by omap_device_enable().
3258 * Returns -EINVAL on error or passes along the return value from _enable().
3259 */
omap_hwmod_enable(struct omap_hwmod * oh)3260 int omap_hwmod_enable(struct omap_hwmod *oh)
3261 {
3262 int r;
3263 unsigned long flags;
3264
3265 if (!oh)
3266 return -EINVAL;
3267
3268 spin_lock_irqsave(&oh->_lock, flags);
3269 r = _enable(oh);
3270 spin_unlock_irqrestore(&oh->_lock, flags);
3271
3272 return r;
3273 }
3274
3275 /**
3276 * omap_hwmod_idle - idle an omap_hwmod
3277 * @oh: struct omap_hwmod *
3278 *
3279 * Idle an omap_hwmod @oh. Intended to be called by omap_device_idle().
3280 * Returns -EINVAL on error or passes along the return value from _idle().
3281 */
omap_hwmod_idle(struct omap_hwmod * oh)3282 int omap_hwmod_idle(struct omap_hwmod *oh)
3283 {
3284 int r;
3285 unsigned long flags;
3286
3287 if (!oh)
3288 return -EINVAL;
3289
3290 spin_lock_irqsave(&oh->_lock, flags);
3291 r = _idle(oh);
3292 spin_unlock_irqrestore(&oh->_lock, flags);
3293
3294 return r;
3295 }
3296
3297 /**
3298 * omap_hwmod_shutdown - shutdown an omap_hwmod
3299 * @oh: struct omap_hwmod *
3300 *
3301 * Shutdown an omap_hwmod @oh. Intended to be called by
3302 * omap_device_shutdown(). Returns -EINVAL on error or passes along
3303 * the return value from _shutdown().
3304 */
omap_hwmod_shutdown(struct omap_hwmod * oh)3305 int omap_hwmod_shutdown(struct omap_hwmod *oh)
3306 {
3307 int r;
3308 unsigned long flags;
3309
3310 if (!oh)
3311 return -EINVAL;
3312
3313 spin_lock_irqsave(&oh->_lock, flags);
3314 r = _shutdown(oh);
3315 spin_unlock_irqrestore(&oh->_lock, flags);
3316
3317 return r;
3318 }
3319
3320 /*
3321 * IP block data retrieval functions
3322 */
3323
3324 /**
3325 * omap_hwmod_count_resources - count number of struct resources needed by hwmod
3326 * @oh: struct omap_hwmod *
3327 * @flags: Type of resources to include when counting (IRQ/DMA/MEM)
3328 *
3329 * Count the number of struct resource array elements necessary to
3330 * contain omap_hwmod @oh resources. Intended to be called by code
3331 * that registers omap_devices. Intended to be used to determine the
3332 * size of a dynamically-allocated struct resource array, before
3333 * calling omap_hwmod_fill_resources(). Returns the number of struct
3334 * resource array elements needed.
3335 *
3336 * XXX This code is not optimized. It could attempt to merge adjacent
3337 * resource IDs.
3338 *
3339 */
omap_hwmod_count_resources(struct omap_hwmod * oh,unsigned long flags)3340 int omap_hwmod_count_resources(struct omap_hwmod *oh, unsigned long flags)
3341 {
3342 int ret = 0;
3343
3344 if (flags & IORESOURCE_IRQ)
3345 ret += _count_mpu_irqs(oh);
3346
3347 if (flags & IORESOURCE_DMA)
3348 ret += _count_sdma_reqs(oh);
3349
3350 if (flags & IORESOURCE_MEM) {
3351 struct omap_hwmod_ocp_if *os;
3352
3353 list_for_each_entry(os, &oh->slave_ports, node)
3354 ret += _count_ocp_if_addr_spaces(os);
3355 }
3356
3357 return ret;
3358 }
3359
3360 /**
3361 * omap_hwmod_fill_resources - fill struct resource array with hwmod data
3362 * @oh: struct omap_hwmod *
3363 * @res: pointer to the first element of an array of struct resource to fill
3364 *
3365 * Fill the struct resource array @res with resource data from the
3366 * omap_hwmod @oh. Intended to be called by code that registers
3367 * omap_devices. See also omap_hwmod_count_resources(). Returns the
3368 * number of array elements filled.
3369 */
omap_hwmod_fill_resources(struct omap_hwmod * oh,struct resource * res)3370 int omap_hwmod_fill_resources(struct omap_hwmod *oh, struct resource *res)
3371 {
3372 struct omap_hwmod_ocp_if *os;
3373 int i, j, mpu_irqs_cnt, sdma_reqs_cnt, addr_cnt;
3374 int r = 0;
3375
3376 /* For each IRQ, DMA, memory area, fill in array.*/
3377
3378 mpu_irqs_cnt = _count_mpu_irqs(oh);
3379 for (i = 0; i < mpu_irqs_cnt; i++) {
3380 unsigned int irq;
3381
3382 if (oh->xlate_irq)
3383 irq = oh->xlate_irq((oh->mpu_irqs + i)->irq);
3384 else
3385 irq = (oh->mpu_irqs + i)->irq;
3386 (res + r)->name = (oh->mpu_irqs + i)->name;
3387 (res + r)->start = irq;
3388 (res + r)->end = irq;
3389 (res + r)->flags = IORESOURCE_IRQ;
3390 r++;
3391 }
3392
3393 sdma_reqs_cnt = _count_sdma_reqs(oh);
3394 for (i = 0; i < sdma_reqs_cnt; i++) {
3395 (res + r)->name = (oh->sdma_reqs + i)->name;
3396 (res + r)->start = (oh->sdma_reqs + i)->dma_req;
3397 (res + r)->end = (oh->sdma_reqs + i)->dma_req;
3398 (res + r)->flags = IORESOURCE_DMA;
3399 r++;
3400 }
3401
3402 list_for_each_entry(os, &oh->slave_ports, node) {
3403 addr_cnt = _count_ocp_if_addr_spaces(os);
3404
3405 for (j = 0; j < addr_cnt; j++) {
3406 (res + r)->name = (os->addr + j)->name;
3407 (res + r)->start = (os->addr + j)->pa_start;
3408 (res + r)->end = (os->addr + j)->pa_end;
3409 (res + r)->flags = IORESOURCE_MEM;
3410 r++;
3411 }
3412 }
3413
3414 return r;
3415 }
3416
3417 /**
3418 * omap_hwmod_fill_dma_resources - fill struct resource array with dma data
3419 * @oh: struct omap_hwmod *
3420 * @res: pointer to the array of struct resource to fill
3421 *
3422 * Fill the struct resource array @res with dma resource data from the
3423 * omap_hwmod @oh. Intended to be called by code that registers
3424 * omap_devices. See also omap_hwmod_count_resources(). Returns the
3425 * number of array elements filled.
3426 */
omap_hwmod_fill_dma_resources(struct omap_hwmod * oh,struct resource * res)3427 int omap_hwmod_fill_dma_resources(struct omap_hwmod *oh, struct resource *res)
3428 {
3429 int i, sdma_reqs_cnt;
3430 int r = 0;
3431
3432 sdma_reqs_cnt = _count_sdma_reqs(oh);
3433 for (i = 0; i < sdma_reqs_cnt; i++) {
3434 (res + r)->name = (oh->sdma_reqs + i)->name;
3435 (res + r)->start = (oh->sdma_reqs + i)->dma_req;
3436 (res + r)->end = (oh->sdma_reqs + i)->dma_req;
3437 (res + r)->flags = IORESOURCE_DMA;
3438 r++;
3439 }
3440
3441 return r;
3442 }
3443
3444 /**
3445 * omap_hwmod_get_resource_byname - fetch IP block integration data by name
3446 * @oh: struct omap_hwmod * to operate on
3447 * @type: one of the IORESOURCE_* constants from include/linux/ioport.h
3448 * @name: pointer to the name of the data to fetch (optional)
3449 * @rsrc: pointer to a struct resource, allocated by the caller
3450 *
3451 * Retrieve MPU IRQ, SDMA request line, or address space start/end
3452 * data for the IP block pointed to by @oh. The data will be filled
3453 * into a struct resource record pointed to by @rsrc. The struct
3454 * resource must be allocated by the caller. When @name is non-null,
3455 * the data associated with the matching entry in the IRQ/SDMA/address
3456 * space hwmod data arrays will be returned. If @name is null, the
3457 * first array entry will be returned. Data order is not meaningful
3458 * in hwmod data, so callers are strongly encouraged to use a non-null
3459 * @name whenever possible to avoid unpredictable effects if hwmod
3460 * data is later added that causes data ordering to change. This
3461 * function is only intended for use by OMAP core code. Device
3462 * drivers should not call this function - the appropriate bus-related
3463 * data accessor functions should be used instead. Returns 0 upon
3464 * success or a negative error code upon error.
3465 */
omap_hwmod_get_resource_byname(struct omap_hwmod * oh,unsigned int type,const char * name,struct resource * rsrc)3466 int omap_hwmod_get_resource_byname(struct omap_hwmod *oh, unsigned int type,
3467 const char *name, struct resource *rsrc)
3468 {
3469 int r;
3470 unsigned int irq, dma;
3471 u32 pa_start, pa_end;
3472
3473 if (!oh || !rsrc)
3474 return -EINVAL;
3475
3476 if (type == IORESOURCE_IRQ) {
3477 r = _get_mpu_irq_by_name(oh, name, &irq);
3478 if (r)
3479 return r;
3480
3481 rsrc->start = irq;
3482 rsrc->end = irq;
3483 } else if (type == IORESOURCE_DMA) {
3484 r = _get_sdma_req_by_name(oh, name, &dma);
3485 if (r)
3486 return r;
3487
3488 rsrc->start = dma;
3489 rsrc->end = dma;
3490 } else if (type == IORESOURCE_MEM) {
3491 r = _get_addr_space_by_name(oh, name, &pa_start, &pa_end);
3492 if (r)
3493 return r;
3494
3495 rsrc->start = pa_start;
3496 rsrc->end = pa_end;
3497 } else {
3498 return -EINVAL;
3499 }
3500
3501 rsrc->flags = type;
3502 rsrc->name = name;
3503
3504 return 0;
3505 }
3506
3507 /**
3508 * omap_hwmod_get_pwrdm - return pointer to this module's main powerdomain
3509 * @oh: struct omap_hwmod *
3510 *
3511 * Return the powerdomain pointer associated with the OMAP module
3512 * @oh's main clock. If @oh does not have a main clk, return the
3513 * powerdomain associated with the interface clock associated with the
3514 * module's MPU port. (XXX Perhaps this should use the SDMA port
3515 * instead?) Returns NULL on error, or a struct powerdomain * on
3516 * success.
3517 */
omap_hwmod_get_pwrdm(struct omap_hwmod * oh)3518 struct powerdomain *omap_hwmod_get_pwrdm(struct omap_hwmod *oh)
3519 {
3520 struct clk *c;
3521 struct omap_hwmod_ocp_if *oi;
3522 struct clockdomain *clkdm;
3523 struct clk_hw_omap *clk;
3524
3525 if (!oh)
3526 return NULL;
3527
3528 if (oh->clkdm)
3529 return oh->clkdm->pwrdm.ptr;
3530
3531 if (oh->_clk) {
3532 c = oh->_clk;
3533 } else {
3534 oi = _find_mpu_rt_port(oh);
3535 if (!oi)
3536 return NULL;
3537 c = oi->_clk;
3538 }
3539
3540 clk = to_clk_hw_omap(__clk_get_hw(c));
3541 clkdm = clk->clkdm;
3542 if (!clkdm)
3543 return NULL;
3544
3545 return clkdm->pwrdm.ptr;
3546 }
3547
3548 /**
3549 * omap_hwmod_get_mpu_rt_va - return the module's base address (for the MPU)
3550 * @oh: struct omap_hwmod *
3551 *
3552 * Returns the virtual address corresponding to the beginning of the
3553 * module's register target, in the address range that is intended to
3554 * be used by the MPU. Returns the virtual address upon success or NULL
3555 * upon error.
3556 */
omap_hwmod_get_mpu_rt_va(struct omap_hwmod * oh)3557 void __iomem *omap_hwmod_get_mpu_rt_va(struct omap_hwmod *oh)
3558 {
3559 if (!oh)
3560 return NULL;
3561
3562 if (oh->_int_flags & _HWMOD_NO_MPU_PORT)
3563 return NULL;
3564
3565 if (oh->_state == _HWMOD_STATE_UNKNOWN)
3566 return NULL;
3567
3568 return oh->_mpu_rt_va;
3569 }
3570
3571 /*
3572 * XXX what about functions for drivers to save/restore ocp_sysconfig
3573 * for context save/restore operations?
3574 */
3575
3576 /**
3577 * omap_hwmod_enable_wakeup - allow device to wake up the system
3578 * @oh: struct omap_hwmod *
3579 *
3580 * Sets the module OCP socket ENAWAKEUP bit to allow the module to
3581 * send wakeups to the PRCM, and enable I/O ring wakeup events for
3582 * this IP block if it has dynamic mux entries. Eventually this
3583 * should set PRCM wakeup registers to cause the PRCM to receive
3584 * wakeup events from the module. Does not set any wakeup routing
3585 * registers beyond this point - if the module is to wake up any other
3586 * module or subsystem, that must be set separately. Called by
3587 * omap_device code. Returns -EINVAL on error or 0 upon success.
3588 */
omap_hwmod_enable_wakeup(struct omap_hwmod * oh)3589 int omap_hwmod_enable_wakeup(struct omap_hwmod *oh)
3590 {
3591 unsigned long flags;
3592 u32 v;
3593
3594 spin_lock_irqsave(&oh->_lock, flags);
3595
3596 if (oh->class->sysc &&
3597 (oh->class->sysc->sysc_flags & SYSC_HAS_ENAWAKEUP)) {
3598 v = oh->_sysc_cache;
3599 _enable_wakeup(oh, &v);
3600 _write_sysconfig(v, oh);
3601 }
3602
3603 spin_unlock_irqrestore(&oh->_lock, flags);
3604
3605 return 0;
3606 }
3607
3608 /**
3609 * omap_hwmod_disable_wakeup - prevent device from waking the system
3610 * @oh: struct omap_hwmod *
3611 *
3612 * Clears the module OCP socket ENAWAKEUP bit to prevent the module
3613 * from sending wakeups to the PRCM, and disable I/O ring wakeup
3614 * events for this IP block if it has dynamic mux entries. Eventually
3615 * this should clear PRCM wakeup registers to cause the PRCM to ignore
3616 * wakeup events from the module. Does not set any wakeup routing
3617 * registers beyond this point - if the module is to wake up any other
3618 * module or subsystem, that must be set separately. Called by
3619 * omap_device code. Returns -EINVAL on error or 0 upon success.
3620 */
omap_hwmod_disable_wakeup(struct omap_hwmod * oh)3621 int omap_hwmod_disable_wakeup(struct omap_hwmod *oh)
3622 {
3623 unsigned long flags;
3624 u32 v;
3625
3626 spin_lock_irqsave(&oh->_lock, flags);
3627
3628 if (oh->class->sysc &&
3629 (oh->class->sysc->sysc_flags & SYSC_HAS_ENAWAKEUP)) {
3630 v = oh->_sysc_cache;
3631 _disable_wakeup(oh, &v);
3632 _write_sysconfig(v, oh);
3633 }
3634
3635 spin_unlock_irqrestore(&oh->_lock, flags);
3636
3637 return 0;
3638 }
3639
3640 /**
3641 * omap_hwmod_assert_hardreset - assert the HW reset line of submodules
3642 * contained in the hwmod module.
3643 * @oh: struct omap_hwmod *
3644 * @name: name of the reset line to lookup and assert
3645 *
3646 * Some IP like dsp, ipu or iva contain processor that require
3647 * an HW reset line to be assert / deassert in order to enable fully
3648 * the IP. Returns -EINVAL if @oh is null or if the operation is not
3649 * yet supported on this OMAP; otherwise, passes along the return value
3650 * from _assert_hardreset().
3651 */
omap_hwmod_assert_hardreset(struct omap_hwmod * oh,const char * name)3652 int omap_hwmod_assert_hardreset(struct omap_hwmod *oh, const char *name)
3653 {
3654 int ret;
3655 unsigned long flags;
3656
3657 if (!oh)
3658 return -EINVAL;
3659
3660 spin_lock_irqsave(&oh->_lock, flags);
3661 ret = _assert_hardreset(oh, name);
3662 spin_unlock_irqrestore(&oh->_lock, flags);
3663
3664 return ret;
3665 }
3666
3667 /**
3668 * omap_hwmod_deassert_hardreset - deassert the HW reset line of submodules
3669 * contained in the hwmod module.
3670 * @oh: struct omap_hwmod *
3671 * @name: name of the reset line to look up and deassert
3672 *
3673 * Some IP like dsp, ipu or iva contain processor that require
3674 * an HW reset line to be assert / deassert in order to enable fully
3675 * the IP. Returns -EINVAL if @oh is null or if the operation is not
3676 * yet supported on this OMAP; otherwise, passes along the return value
3677 * from _deassert_hardreset().
3678 */
omap_hwmod_deassert_hardreset(struct omap_hwmod * oh,const char * name)3679 int omap_hwmod_deassert_hardreset(struct omap_hwmod *oh, const char *name)
3680 {
3681 int ret;
3682 unsigned long flags;
3683
3684 if (!oh)
3685 return -EINVAL;
3686
3687 spin_lock_irqsave(&oh->_lock, flags);
3688 ret = _deassert_hardreset(oh, name);
3689 spin_unlock_irqrestore(&oh->_lock, flags);
3690
3691 return ret;
3692 }
3693
3694 /**
3695 * omap_hwmod_for_each_by_class - call @fn for each hwmod of class @classname
3696 * @classname: struct omap_hwmod_class name to search for
3697 * @fn: callback function pointer to call for each hwmod in class @classname
3698 * @user: arbitrary context data to pass to the callback function
3699 *
3700 * For each omap_hwmod of class @classname, call @fn.
3701 * If the callback function returns something other than
3702 * zero, the iterator is terminated, and the callback function's return
3703 * value is passed back to the caller. Returns 0 upon success, -EINVAL
3704 * if @classname or @fn are NULL, or passes back the error code from @fn.
3705 */
omap_hwmod_for_each_by_class(const char * classname,int (* fn)(struct omap_hwmod * oh,void * user),void * user)3706 int omap_hwmod_for_each_by_class(const char *classname,
3707 int (*fn)(struct omap_hwmod *oh,
3708 void *user),
3709 void *user)
3710 {
3711 struct omap_hwmod *temp_oh;
3712 int ret = 0;
3713
3714 if (!classname || !fn)
3715 return -EINVAL;
3716
3717 pr_debug("omap_hwmod: %s: looking for modules of class %s\n",
3718 __func__, classname);
3719
3720 list_for_each_entry(temp_oh, &omap_hwmod_list, node) {
3721 if (!strcmp(temp_oh->class->name, classname)) {
3722 pr_debug("omap_hwmod: %s: %s: calling callback fn\n",
3723 __func__, temp_oh->name);
3724 ret = (*fn)(temp_oh, user);
3725 if (ret)
3726 break;
3727 }
3728 }
3729
3730 if (ret)
3731 pr_debug("omap_hwmod: %s: iterator terminated early: %d\n",
3732 __func__, ret);
3733
3734 return ret;
3735 }
3736
3737 /**
3738 * omap_hwmod_set_postsetup_state - set the post-_setup() state for this hwmod
3739 * @oh: struct omap_hwmod *
3740 * @state: state that _setup() should leave the hwmod in
3741 *
3742 * Sets the hwmod state that @oh will enter at the end of _setup()
3743 * (called by omap_hwmod_setup_*()). See also the documentation
3744 * for _setup_postsetup(), above. Returns 0 upon success or
3745 * -EINVAL if there is a problem with the arguments or if the hwmod is
3746 * in the wrong state.
3747 */
omap_hwmod_set_postsetup_state(struct omap_hwmod * oh,u8 state)3748 int omap_hwmod_set_postsetup_state(struct omap_hwmod *oh, u8 state)
3749 {
3750 int ret;
3751 unsigned long flags;
3752
3753 if (!oh)
3754 return -EINVAL;
3755
3756 if (state != _HWMOD_STATE_DISABLED &&
3757 state != _HWMOD_STATE_ENABLED &&
3758 state != _HWMOD_STATE_IDLE)
3759 return -EINVAL;
3760
3761 spin_lock_irqsave(&oh->_lock, flags);
3762
3763 if (oh->_state != _HWMOD_STATE_REGISTERED) {
3764 ret = -EINVAL;
3765 goto ohsps_unlock;
3766 }
3767
3768 oh->_postsetup_state = state;
3769 ret = 0;
3770
3771 ohsps_unlock:
3772 spin_unlock_irqrestore(&oh->_lock, flags);
3773
3774 return ret;
3775 }
3776
3777 /**
3778 * omap_hwmod_get_context_loss_count - get lost context count
3779 * @oh: struct omap_hwmod *
3780 *
3781 * Returns the context loss count of associated @oh
3782 * upon success, or zero if no context loss data is available.
3783 *
3784 * On OMAP4, this queries the per-hwmod context loss register,
3785 * assuming one exists. If not, or on OMAP2/3, this queries the
3786 * enclosing powerdomain context loss count.
3787 */
omap_hwmod_get_context_loss_count(struct omap_hwmod * oh)3788 int omap_hwmod_get_context_loss_count(struct omap_hwmod *oh)
3789 {
3790 struct powerdomain *pwrdm;
3791 int ret = 0;
3792
3793 if (soc_ops.get_context_lost)
3794 return soc_ops.get_context_lost(oh);
3795
3796 pwrdm = omap_hwmod_get_pwrdm(oh);
3797 if (pwrdm)
3798 ret = pwrdm_get_context_loss_count(pwrdm);
3799
3800 return ret;
3801 }
3802
3803 /**
3804 * omap_hwmod_init - initialize the hwmod code
3805 *
3806 * Sets up some function pointers needed by the hwmod code to operate on the
3807 * currently-booted SoC. Intended to be called once during kernel init
3808 * before any hwmods are registered. No return value.
3809 */
omap_hwmod_init(void)3810 void __init omap_hwmod_init(void)
3811 {
3812 if (cpu_is_omap24xx()) {
3813 soc_ops.wait_target_ready = _omap2xxx_3xxx_wait_target_ready;
3814 soc_ops.assert_hardreset = _omap2_assert_hardreset;
3815 soc_ops.deassert_hardreset = _omap2_deassert_hardreset;
3816 soc_ops.is_hardreset_asserted = _omap2_is_hardreset_asserted;
3817 } else if (cpu_is_omap34xx()) {
3818 soc_ops.wait_target_ready = _omap2xxx_3xxx_wait_target_ready;
3819 soc_ops.assert_hardreset = _omap2_assert_hardreset;
3820 soc_ops.deassert_hardreset = _omap2_deassert_hardreset;
3821 soc_ops.is_hardreset_asserted = _omap2_is_hardreset_asserted;
3822 soc_ops.init_clkdm = _init_clkdm;
3823 } else if (cpu_is_omap44xx() || soc_is_omap54xx() || soc_is_dra7xx()) {
3824 soc_ops.enable_module = _omap4_enable_module;
3825 soc_ops.disable_module = _omap4_disable_module;
3826 soc_ops.wait_target_ready = _omap4_wait_target_ready;
3827 soc_ops.assert_hardreset = _omap4_assert_hardreset;
3828 soc_ops.deassert_hardreset = _omap4_deassert_hardreset;
3829 soc_ops.is_hardreset_asserted = _omap4_is_hardreset_asserted;
3830 soc_ops.init_clkdm = _init_clkdm;
3831 soc_ops.update_context_lost = _omap4_update_context_lost;
3832 soc_ops.get_context_lost = _omap4_get_context_lost;
3833 soc_ops.disable_direct_prcm = _omap4_disable_direct_prcm;
3834 soc_ops.xlate_clkctrl = _omap4_xlate_clkctrl;
3835 } else if (cpu_is_ti814x() || cpu_is_ti816x() || soc_is_am33xx() ||
3836 soc_is_am43xx()) {
3837 soc_ops.enable_module = _omap4_enable_module;
3838 soc_ops.disable_module = _omap4_disable_module;
3839 soc_ops.wait_target_ready = _omap4_wait_target_ready;
3840 soc_ops.assert_hardreset = _omap4_assert_hardreset;
3841 soc_ops.deassert_hardreset = _am33xx_deassert_hardreset;
3842 soc_ops.is_hardreset_asserted = _omap4_is_hardreset_asserted;
3843 soc_ops.init_clkdm = _init_clkdm;
3844 soc_ops.disable_direct_prcm = _omap4_disable_direct_prcm;
3845 } else {
3846 WARN(1, "omap_hwmod: unknown SoC type\n");
3847 }
3848
3849 _init_clkctrl_providers();
3850
3851 inited = true;
3852 }
3853
3854 /**
3855 * omap_hwmod_get_main_clk - get pointer to main clock name
3856 * @oh: struct omap_hwmod *
3857 *
3858 * Returns the main clock name assocated with @oh upon success,
3859 * or NULL if @oh is NULL.
3860 */
omap_hwmod_get_main_clk(struct omap_hwmod * oh)3861 const char *omap_hwmod_get_main_clk(struct omap_hwmod *oh)
3862 {
3863 if (!oh)
3864 return NULL;
3865
3866 return oh->main_clk;
3867 }
3868