1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3 * Copyright (C) 2015 Masahiro Yamada <yamada.masahiro@socionext.com>
4 */
5
6 #define LOG_CATEGORY UCLASS_PINCTRL
7
8 #include <common.h>
9 #include <malloc.h>
10 #include <asm/global_data.h>
11 #include <dm/device_compat.h>
12 #include <linux/libfdt.h>
13 #include <linux/err.h>
14 #include <linux/list.h>
15 #include <dm.h>
16 #include <dm/lists.h>
17 #include <dm/pinctrl.h>
18 #include <dm/util.h>
19 #include <dm/of_access.h>
20
21 DECLARE_GLOBAL_DATA_PTR;
22
23 #if CONFIG_IS_ENABLED(PINCTRL_FULL)
24 /**
25 * pinctrl_config_one() - apply pinctrl settings for a single node
26 *
27 * @config: pin configuration node
28 * @return: 0 on success, or negative error code on failure
29 */
pinctrl_config_one(struct udevice * config)30 static int pinctrl_config_one(struct udevice *config)
31 {
32 struct udevice *pctldev;
33 const struct pinctrl_ops *ops;
34
35 pctldev = config;
36 for (;;) {
37 pctldev = dev_get_parent(pctldev);
38 if (!pctldev) {
39 dev_err(config, "could not find pctldev\n");
40 return -EINVAL;
41 }
42 if (pctldev->uclass->uc_drv->id == UCLASS_PINCTRL)
43 break;
44 }
45
46 ops = pinctrl_get_ops(pctldev);
47 return ops->set_state(pctldev, config);
48 }
49
50 /**
51 * pinctrl_select_state_full() - full implementation of pinctrl_select_state
52 *
53 * @dev: peripheral device
54 * @statename: state name, like "default"
55 * @return: 0 on success, or negative error code on failure
56 */
pinctrl_select_state_full(struct udevice * dev,const char * statename)57 static int pinctrl_select_state_full(struct udevice *dev, const char *statename)
58 {
59 char propname[32]; /* long enough */
60 const fdt32_t *list;
61 uint32_t phandle;
62 struct udevice *config;
63 int state, size, i, ret;
64
65 state = dev_read_stringlist_search(dev, "pinctrl-names", statename);
66 if (state < 0) {
67 char *end;
68 /*
69 * If statename is not found in "pinctrl-names",
70 * assume statename is just the integer state ID.
71 */
72 state = dectoul(statename, &end);
73 if (*end)
74 return -EINVAL;
75 }
76
77 snprintf(propname, sizeof(propname), "pinctrl-%d", state);
78 list = dev_read_prop(dev, propname, &size);
79 if (!list)
80 return -EINVAL;
81
82 size /= sizeof(*list);
83 for (i = 0; i < size; i++) {
84 phandle = fdt32_to_cpu(*list++);
85 ret = uclass_get_device_by_phandle_id(UCLASS_PINCONFIG, phandle,
86 &config);
87 if (ret) {
88 dev_warn(dev, "%s: uclass_get_device_by_phandle_id: err=%d\n",
89 __func__, ret);
90 continue;
91 }
92
93 ret = pinctrl_config_one(config);
94 if (ret) {
95 dev_warn(dev, "%s: pinctrl_config_one: err=%d\n",
96 __func__, ret);
97 continue;
98 }
99 }
100
101 return 0;
102 }
103
104 /**
105 * pinconfig_post_bind() - post binding for PINCONFIG uclass
106 * Recursively bind its children as pinconfig devices.
107 *
108 * @dev: pinconfig device
109 * @return: 0 on success, or negative error code on failure
110 */
pinconfig_post_bind(struct udevice * dev)111 static int pinconfig_post_bind(struct udevice *dev)
112 {
113 bool pre_reloc_only = !(gd->flags & GD_FLG_RELOC);
114 const char *name;
115 ofnode node;
116 int ret;
117
118 if (!dev_has_ofnode(dev))
119 return 0;
120
121 dev_for_each_subnode(node, dev) {
122 if (pre_reloc_only &&
123 !ofnode_pre_reloc(node))
124 continue;
125 /*
126 * If this node has "compatible" property, this is not
127 * a pin configuration node, but a normal device. skip.
128 */
129 ofnode_get_property(node, "compatible", &ret);
130 if (ret >= 0)
131 continue;
132 /* If this node has "gpio-controller" property, skip */
133 if (ofnode_read_bool(node, "gpio-controller"))
134 continue;
135
136 if (ret != -FDT_ERR_NOTFOUND)
137 return ret;
138
139 name = ofnode_get_name(node);
140 if (!name)
141 return -EINVAL;
142 ret = device_bind_driver_to_node(dev, "pinconfig", name,
143 node, NULL);
144 if (ret)
145 return ret;
146 }
147
148 return 0;
149 }
150
151 UCLASS_DRIVER(pinconfig) = {
152 .id = UCLASS_PINCONFIG,
153 #if CONFIG_IS_ENABLED(PINCONF_RECURSIVE)
154 .post_bind = pinconfig_post_bind,
155 #endif
156 .name = "pinconfig",
157 };
158
159 U_BOOT_DRIVER(pinconfig_generic) = {
160 .name = "pinconfig",
161 .id = UCLASS_PINCONFIG,
162 };
163
164 #else
pinctrl_select_state_full(struct udevice * dev,const char * statename)165 static int pinctrl_select_state_full(struct udevice *dev, const char *statename)
166 {
167 return -ENODEV;
168 }
169
pinconfig_post_bind(struct udevice * dev)170 static int pinconfig_post_bind(struct udevice *dev)
171 {
172 return 0;
173 }
174 #endif
175
176 static int
pinctrl_gpio_get_pinctrl_and_offset(struct udevice * dev,unsigned offset,struct udevice ** pctldev,unsigned int * pin_selector)177 pinctrl_gpio_get_pinctrl_and_offset(struct udevice *dev, unsigned offset,
178 struct udevice **pctldev,
179 unsigned int *pin_selector)
180 {
181 struct ofnode_phandle_args args;
182 unsigned gpio_offset, pfc_base, pfc_pins;
183 int ret;
184
185 ret = dev_read_phandle_with_args(dev, "gpio-ranges", NULL, 3,
186 0, &args);
187 if (ret) {
188 dev_dbg(dev, "%s: dev_read_phandle_with_args: err=%d\n",
189 __func__, ret);
190 return ret;
191 }
192
193 ret = uclass_get_device_by_ofnode(UCLASS_PINCTRL,
194 args.node, pctldev);
195 if (ret) {
196 dev_dbg(dev,
197 "%s: uclass_get_device_by_of_offset failed: err=%d\n",
198 __func__, ret);
199 return ret;
200 }
201
202 gpio_offset = args.args[0];
203 pfc_base = args.args[1];
204 pfc_pins = args.args[2];
205
206 if (offset < gpio_offset || offset > gpio_offset + pfc_pins) {
207 dev_dbg(dev,
208 "%s: GPIO can not be mapped to pincontrol pin\n",
209 __func__);
210 return -EINVAL;
211 }
212
213 offset -= gpio_offset;
214 offset += pfc_base;
215 *pin_selector = offset;
216
217 return 0;
218 }
219
220 /**
221 * pinctrl_gpio_request() - request a single pin to be used as GPIO
222 *
223 * @dev: GPIO peripheral device
224 * @offset: the GPIO pin offset from the GPIO controller
225 * @return: 0 on success, or negative error code on failure
226 */
pinctrl_gpio_request(struct udevice * dev,unsigned offset)227 int pinctrl_gpio_request(struct udevice *dev, unsigned offset)
228 {
229 const struct pinctrl_ops *ops;
230 struct udevice *pctldev;
231 unsigned int pin_selector;
232 int ret;
233
234 ret = pinctrl_gpio_get_pinctrl_and_offset(dev, offset,
235 &pctldev, &pin_selector);
236 if (ret)
237 return ret;
238
239 ops = pinctrl_get_ops(pctldev);
240 assert(ops);
241 if (!ops->gpio_request_enable)
242 return -ENOSYS;
243
244 return ops->gpio_request_enable(pctldev, pin_selector);
245 }
246
247 /**
248 * pinctrl_gpio_free() - free a single pin used as GPIO
249 *
250 * @dev: GPIO peripheral device
251 * @offset: the GPIO pin offset from the GPIO controller
252 * @return: 0 on success, or negative error code on failure
253 */
pinctrl_gpio_free(struct udevice * dev,unsigned offset)254 int pinctrl_gpio_free(struct udevice *dev, unsigned offset)
255 {
256 const struct pinctrl_ops *ops;
257 struct udevice *pctldev;
258 unsigned int pin_selector;
259 int ret;
260
261 ret = pinctrl_gpio_get_pinctrl_and_offset(dev, offset,
262 &pctldev, &pin_selector);
263 if (ret)
264 return ret;
265
266 ops = pinctrl_get_ops(pctldev);
267 assert(ops);
268 if (!ops->gpio_disable_free)
269 return -ENOSYS;
270
271 return ops->gpio_disable_free(pctldev, pin_selector);
272 }
273
274 /**
275 * pinctrl_select_state_simple() - simple implementation of pinctrl_select_state
276 *
277 * @dev: peripheral device
278 * @return: 0 on success, or negative error code on failure
279 */
pinctrl_select_state_simple(struct udevice * dev)280 static int pinctrl_select_state_simple(struct udevice *dev)
281 {
282 struct udevice *pctldev;
283 struct pinctrl_ops *ops;
284 int ret;
285
286 /*
287 * For most system, there is only one pincontroller device. But in
288 * case of multiple pincontroller devices, probe the one with sequence
289 * number 0 (defined by alias) to avoid race condition.
290 */
291 ret = uclass_get_device_by_seq(UCLASS_PINCTRL, 0, &pctldev);
292 if (ret)
293 /* if not found, get the first one */
294 ret = uclass_get_device(UCLASS_PINCTRL, 0, &pctldev);
295 if (ret)
296 return ret;
297
298 ops = pinctrl_get_ops(pctldev);
299 if (!ops->set_state_simple) {
300 dev_dbg(dev, "set_state_simple op missing\n");
301 return -ENOSYS;
302 }
303
304 return ops->set_state_simple(pctldev, dev);
305 }
306
pinctrl_select_state(struct udevice * dev,const char * statename)307 int pinctrl_select_state(struct udevice *dev, const char *statename)
308 {
309 /*
310 * Some device which is logical like mmc.blk, do not have
311 * a valid ofnode.
312 */
313 if (!dev_has_ofnode(dev))
314 return 0;
315 /*
316 * Try full-implemented pinctrl first.
317 * If it fails or is not implemented, try simple one.
318 */
319 if (pinctrl_select_state_full(dev, statename))
320 return pinctrl_select_state_simple(dev);
321
322 return 0;
323 }
324
pinctrl_request(struct udevice * dev,int func,int flags)325 int pinctrl_request(struct udevice *dev, int func, int flags)
326 {
327 struct pinctrl_ops *ops = pinctrl_get_ops(dev);
328
329 if (!ops->request)
330 return -ENOSYS;
331
332 return ops->request(dev, func, flags);
333 }
334
pinctrl_request_noflags(struct udevice * dev,int func)335 int pinctrl_request_noflags(struct udevice *dev, int func)
336 {
337 return pinctrl_request(dev, func, 0);
338 }
339
pinctrl_get_periph_id(struct udevice * dev,struct udevice * periph)340 int pinctrl_get_periph_id(struct udevice *dev, struct udevice *periph)
341 {
342 struct pinctrl_ops *ops = pinctrl_get_ops(dev);
343
344 if (!ops->get_periph_id)
345 return -ENOSYS;
346
347 return ops->get_periph_id(dev, periph);
348 }
349
pinctrl_get_gpio_mux(struct udevice * dev,int banknum,int index)350 int pinctrl_get_gpio_mux(struct udevice *dev, int banknum, int index)
351 {
352 struct pinctrl_ops *ops = pinctrl_get_ops(dev);
353
354 if (!ops->get_gpio_mux)
355 return -ENOSYS;
356
357 return ops->get_gpio_mux(dev, banknum, index);
358 }
359
pinctrl_get_pins_count(struct udevice * dev)360 int pinctrl_get_pins_count(struct udevice *dev)
361 {
362 struct pinctrl_ops *ops = pinctrl_get_ops(dev);
363
364 if (!ops->get_pins_count)
365 return -ENOSYS;
366
367 return ops->get_pins_count(dev);
368 }
369
pinctrl_get_pin_name(struct udevice * dev,int selector,char * buf,int size)370 int pinctrl_get_pin_name(struct udevice *dev, int selector, char *buf,
371 int size)
372 {
373 struct pinctrl_ops *ops = pinctrl_get_ops(dev);
374
375 if (!ops->get_pin_name)
376 return -ENOSYS;
377
378 snprintf(buf, size, ops->get_pin_name(dev, selector));
379
380 return 0;
381 }
382
pinctrl_get_pin_muxing(struct udevice * dev,int selector,char * buf,int size)383 int pinctrl_get_pin_muxing(struct udevice *dev, int selector, char *buf,
384 int size)
385 {
386 struct pinctrl_ops *ops = pinctrl_get_ops(dev);
387
388 if (!ops->get_pin_muxing)
389 return -ENOSYS;
390
391 return ops->get_pin_muxing(dev, selector, buf, size);
392 }
393
394 /**
395 * pinconfig_post_bind() - post binding for PINCTRL uclass
396 * Recursively bind child nodes as pinconfig devices in case of full pinctrl.
397 *
398 * @dev: pinctrl device
399 * @return: 0 on success, or negative error code on failure
400 */
pinctrl_post_bind(struct udevice * dev)401 static int __maybe_unused pinctrl_post_bind(struct udevice *dev)
402 {
403 const struct pinctrl_ops *ops = pinctrl_get_ops(dev);
404
405 if (!ops) {
406 dev_dbg(dev, "ops is not set. Do not bind.\n");
407 return -EINVAL;
408 }
409
410 /*
411 * If set_state callback is set, we assume this pinctrl driver is the
412 * full implementation. In this case, its child nodes should be bound
413 * so that peripheral devices can easily search in parent devices
414 * during later DT-parsing.
415 */
416 if (ops->set_state)
417 return pinconfig_post_bind(dev);
418
419 return 0;
420 }
421
422 UCLASS_DRIVER(pinctrl) = {
423 .id = UCLASS_PINCTRL,
424 #if CONFIG_IS_ENABLED(OF_REAL)
425 .post_bind = pinctrl_post_bind,
426 #endif
427 .flags = DM_UC_FLAG_SEQ_ALIAS,
428 .name = "pinctrl",
429 };
430