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[linux.git] / drivers / i2c / i2c-core-base.c
1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3  * Linux I2C core
4  *
5  * Copyright (C) 1995-99 Simon G. Vogl
6  *   With some changes from Kyösti Mälkki <kmalkki@cc.hut.fi>
7  *   Mux support by Rodolfo Giometti <giometti@enneenne.com> and
8  *   Michael Lawnick <michael.lawnick.ext@nsn.com>
9  *
10  * Copyright (C) 2013-2017 Wolfram Sang <wsa@the-dreams.de>
11  */
12
13 #define pr_fmt(fmt) "i2c-core: " fmt
14
15 #include <dt-bindings/i2c/i2c.h>
16 #include <linux/acpi.h>
17 #include <linux/clk/clk-conf.h>
18 #include <linux/completion.h>
19 #include <linux/delay.h>
20 #include <linux/err.h>
21 #include <linux/errno.h>
22 #include <linux/gpio/consumer.h>
23 #include <linux/i2c.h>
24 #include <linux/i2c-smbus.h>
25 #include <linux/idr.h>
26 #include <linux/init.h>
27 #include <linux/irqflags.h>
28 #include <linux/jump_label.h>
29 #include <linux/kernel.h>
30 #include <linux/module.h>
31 #include <linux/mutex.h>
32 #include <linux/of_device.h>
33 #include <linux/of.h>
34 #include <linux/of_irq.h>
35 #include <linux/pm_domain.h>
36 #include <linux/pm_runtime.h>
37 #include <linux/pm_wakeirq.h>
38 #include <linux/property.h>
39 #include <linux/rwsem.h>
40 #include <linux/slab.h>
41
42 #include "i2c-core.h"
43
44 #define CREATE_TRACE_POINTS
45 #include <trace/events/i2c.h>
46
47 #define I2C_ADDR_OFFSET_TEN_BIT 0xa000
48 #define I2C_ADDR_OFFSET_SLAVE   0x1000
49
50 #define I2C_ADDR_7BITS_MAX      0x77
51 #define I2C_ADDR_7BITS_COUNT    (I2C_ADDR_7BITS_MAX + 1)
52
53 #define I2C_ADDR_DEVICE_ID      0x7c
54
55 /*
56  * core_lock protects i2c_adapter_idr, and guarantees that device detection,
57  * deletion of detected devices are serialized
58  */
59 static DEFINE_MUTEX(core_lock);
60 static DEFINE_IDR(i2c_adapter_idr);
61
62 static int i2c_detect(struct i2c_adapter *adapter, struct i2c_driver *driver);
63
64 static DEFINE_STATIC_KEY_FALSE(i2c_trace_msg_key);
65 static bool is_registered;
66
67 int i2c_transfer_trace_reg(void)
68 {
69         static_branch_inc(&i2c_trace_msg_key);
70         return 0;
71 }
72
73 void i2c_transfer_trace_unreg(void)
74 {
75         static_branch_dec(&i2c_trace_msg_key);
76 }
77
78 const struct i2c_device_id *i2c_match_id(const struct i2c_device_id *id,
79                                                 const struct i2c_client *client)
80 {
81         if (!(id && client))
82                 return NULL;
83
84         while (id->name[0]) {
85                 if (strcmp(client->name, id->name) == 0)
86                         return id;
87                 id++;
88         }
89         return NULL;
90 }
91 EXPORT_SYMBOL_GPL(i2c_match_id);
92
93 static int i2c_device_match(struct device *dev, struct device_driver *drv)
94 {
95         struct i2c_client       *client = i2c_verify_client(dev);
96         struct i2c_driver       *driver;
97
98
99         /* Attempt an OF style match */
100         if (i2c_of_match_device(drv->of_match_table, client))
101                 return 1;
102
103         /* Then ACPI style match */
104         if (acpi_driver_match_device(dev, drv))
105                 return 1;
106
107         driver = to_i2c_driver(drv);
108
109         /* Finally an I2C match */
110         if (i2c_match_id(driver->id_table, client))
111                 return 1;
112
113         return 0;
114 }
115
116 static int i2c_device_uevent(struct device *dev, struct kobj_uevent_env *env)
117 {
118         struct i2c_client *client = to_i2c_client(dev);
119         int rc;
120
121         rc = of_device_uevent_modalias(dev, env);
122         if (rc != -ENODEV)
123                 return rc;
124
125         rc = acpi_device_uevent_modalias(dev, env);
126         if (rc != -ENODEV)
127                 return rc;
128
129         return add_uevent_var(env, "MODALIAS=%s%s", I2C_MODULE_PREFIX, client->name);
130 }
131
132 /* i2c bus recovery routines */
133 static int get_scl_gpio_value(struct i2c_adapter *adap)
134 {
135         return gpiod_get_value_cansleep(adap->bus_recovery_info->scl_gpiod);
136 }
137
138 static void set_scl_gpio_value(struct i2c_adapter *adap, int val)
139 {
140         gpiod_set_value_cansleep(adap->bus_recovery_info->scl_gpiod, val);
141 }
142
143 static int get_sda_gpio_value(struct i2c_adapter *adap)
144 {
145         return gpiod_get_value_cansleep(adap->bus_recovery_info->sda_gpiod);
146 }
147
148 static void set_sda_gpio_value(struct i2c_adapter *adap, int val)
149 {
150         gpiod_set_value_cansleep(adap->bus_recovery_info->sda_gpiod, val);
151 }
152
153 static int i2c_generic_bus_free(struct i2c_adapter *adap)
154 {
155         struct i2c_bus_recovery_info *bri = adap->bus_recovery_info;
156         int ret = -EOPNOTSUPP;
157
158         if (bri->get_bus_free)
159                 ret = bri->get_bus_free(adap);
160         else if (bri->get_sda)
161                 ret = bri->get_sda(adap);
162
163         if (ret < 0)
164                 return ret;
165
166         return ret ? 0 : -EBUSY;
167 }
168
169 /*
170  * We are generating clock pulses. ndelay() determines durating of clk pulses.
171  * We will generate clock with rate 100 KHz and so duration of both clock levels
172  * is: delay in ns = (10^6 / 100) / 2
173  */
174 #define RECOVERY_NDELAY         5000
175 #define RECOVERY_CLK_CNT        9
176
177 int i2c_generic_scl_recovery(struct i2c_adapter *adap)
178 {
179         struct i2c_bus_recovery_info *bri = adap->bus_recovery_info;
180         int i = 0, scl = 1, ret = 0;
181
182         if (bri->prepare_recovery)
183                 bri->prepare_recovery(adap);
184
185         /*
186          * If we can set SDA, we will always create a STOP to ensure additional
187          * pulses will do no harm. This is achieved by letting SDA follow SCL
188          * half a cycle later. Check the 'incomplete_write_byte' fault injector
189          * for details.
190          */
191         bri->set_scl(adap, scl);
192         ndelay(RECOVERY_NDELAY / 2);
193         if (bri->set_sda)
194                 bri->set_sda(adap, scl);
195         ndelay(RECOVERY_NDELAY / 2);
196
197         /*
198          * By this time SCL is high, as we need to give 9 falling-rising edges
199          */
200         while (i++ < RECOVERY_CLK_CNT * 2) {
201                 if (scl) {
202                         /* SCL shouldn't be low here */
203                         if (!bri->get_scl(adap)) {
204                                 dev_err(&adap->dev,
205                                         "SCL is stuck low, exit recovery\n");
206                                 ret = -EBUSY;
207                                 break;
208                         }
209                 }
210
211                 scl = !scl;
212                 bri->set_scl(adap, scl);
213                 /* Creating STOP again, see above */
214                 ndelay(RECOVERY_NDELAY / 2);
215                 if (bri->set_sda)
216                         bri->set_sda(adap, scl);
217                 ndelay(RECOVERY_NDELAY / 2);
218
219                 if (scl) {
220                         ret = i2c_generic_bus_free(adap);
221                         if (ret == 0)
222                                 break;
223                 }
224         }
225
226         /* If we can't check bus status, assume recovery worked */
227         if (ret == -EOPNOTSUPP)
228                 ret = 0;
229
230         if (bri->unprepare_recovery)
231                 bri->unprepare_recovery(adap);
232
233         return ret;
234 }
235 EXPORT_SYMBOL_GPL(i2c_generic_scl_recovery);
236
237 int i2c_recover_bus(struct i2c_adapter *adap)
238 {
239         if (!adap->bus_recovery_info)
240                 return -EOPNOTSUPP;
241
242         dev_dbg(&adap->dev, "Trying i2c bus recovery\n");
243         return adap->bus_recovery_info->recover_bus(adap);
244 }
245 EXPORT_SYMBOL_GPL(i2c_recover_bus);
246
247 static void i2c_init_recovery(struct i2c_adapter *adap)
248 {
249         struct i2c_bus_recovery_info *bri = adap->bus_recovery_info;
250         char *err_str;
251
252         if (!bri)
253                 return;
254
255         if (!bri->recover_bus) {
256                 err_str = "no recover_bus() found";
257                 goto err;
258         }
259
260         if (bri->scl_gpiod && bri->recover_bus == i2c_generic_scl_recovery) {
261                 bri->get_scl = get_scl_gpio_value;
262                 bri->set_scl = set_scl_gpio_value;
263                 if (bri->sda_gpiod) {
264                         bri->get_sda = get_sda_gpio_value;
265                         /* FIXME: add proper flag instead of '0' once available */
266                         if (gpiod_get_direction(bri->sda_gpiod) == 0)
267                                 bri->set_sda = set_sda_gpio_value;
268                 }
269                 return;
270         }
271
272         if (bri->recover_bus == i2c_generic_scl_recovery) {
273                 /* Generic SCL recovery */
274                 if (!bri->set_scl || !bri->get_scl) {
275                         err_str = "no {get|set}_scl() found";
276                         goto err;
277                 }
278                 if (!bri->set_sda && !bri->get_sda) {
279                         err_str = "either get_sda() or set_sda() needed";
280                         goto err;
281                 }
282         }
283
284         return;
285  err:
286         dev_err(&adap->dev, "Not using recovery: %s\n", err_str);
287         adap->bus_recovery_info = NULL;
288 }
289
290 static int i2c_smbus_host_notify_to_irq(const struct i2c_client *client)
291 {
292         struct i2c_adapter *adap = client->adapter;
293         unsigned int irq;
294
295         if (!adap->host_notify_domain)
296                 return -ENXIO;
297
298         if (client->flags & I2C_CLIENT_TEN)
299                 return -EINVAL;
300
301         irq = irq_create_mapping(adap->host_notify_domain, client->addr);
302
303         return irq > 0 ? irq : -ENXIO;
304 }
305
306 static int i2c_device_probe(struct device *dev)
307 {
308         struct i2c_client       *client = i2c_verify_client(dev);
309         struct i2c_driver       *driver;
310         int status;
311
312         if (!client)
313                 return 0;
314
315         driver = to_i2c_driver(dev->driver);
316
317         client->irq = client->init_irq;
318
319         if (!client->irq && !driver->disable_i2c_core_irq_mapping) {
320                 int irq = -ENOENT;
321
322                 if (client->flags & I2C_CLIENT_HOST_NOTIFY) {
323                         dev_dbg(dev, "Using Host Notify IRQ\n");
324                         /* Keep adapter active when Host Notify is required */
325                         pm_runtime_get_sync(&client->adapter->dev);
326                         irq = i2c_smbus_host_notify_to_irq(client);
327                 } else if (dev->of_node) {
328                         irq = of_irq_get_byname(dev->of_node, "irq");
329                         if (irq == -EINVAL || irq == -ENODATA)
330                                 irq = of_irq_get(dev->of_node, 0);
331                 } else if (ACPI_COMPANION(dev)) {
332                         irq = i2c_acpi_get_irq(client);
333                 }
334                 if (irq == -EPROBE_DEFER)
335                         return irq;
336
337                 if (irq < 0)
338                         irq = 0;
339
340                 client->irq = irq;
341         }
342
343         /*
344          * An I2C ID table is not mandatory, if and only if, a suitable OF
345          * or ACPI ID table is supplied for the probing device.
346          */
347         if (!driver->id_table &&
348             !i2c_acpi_match_device(dev->driver->acpi_match_table, client) &&
349             !i2c_of_match_device(dev->driver->of_match_table, client))
350                 return -ENODEV;
351
352         if (client->flags & I2C_CLIENT_WAKE) {
353                 int wakeirq;
354
355                 wakeirq = of_irq_get_byname(dev->of_node, "wakeup");
356                 if (wakeirq == -EPROBE_DEFER)
357                         return wakeirq;
358
359                 device_init_wakeup(&client->dev, true);
360
361                 if (wakeirq > 0 && wakeirq != client->irq)
362                         status = dev_pm_set_dedicated_wake_irq(dev, wakeirq);
363                 else if (client->irq > 0)
364                         status = dev_pm_set_wake_irq(dev, client->irq);
365                 else
366                         status = 0;
367
368                 if (status)
369                         dev_warn(&client->dev, "failed to set up wakeup irq\n");
370         }
371
372         dev_dbg(dev, "probe\n");
373
374         status = of_clk_set_defaults(dev->of_node, false);
375         if (status < 0)
376                 goto err_clear_wakeup_irq;
377
378         status = dev_pm_domain_attach(&client->dev, true);
379         if (status)
380                 goto err_clear_wakeup_irq;
381
382         /*
383          * When there are no more users of probe(),
384          * rename probe_new to probe.
385          */
386         if (driver->probe_new)
387                 status = driver->probe_new(client);
388         else if (driver->probe)
389                 status = driver->probe(client,
390                                        i2c_match_id(driver->id_table, client));
391         else
392                 status = -EINVAL;
393
394         if (status)
395                 goto err_detach_pm_domain;
396
397         return 0;
398
399 err_detach_pm_domain:
400         dev_pm_domain_detach(&client->dev, true);
401 err_clear_wakeup_irq:
402         dev_pm_clear_wake_irq(&client->dev);
403         device_init_wakeup(&client->dev, false);
404         return status;
405 }
406
407 static int i2c_device_remove(struct device *dev)
408 {
409         struct i2c_client       *client = i2c_verify_client(dev);
410         struct i2c_driver       *driver;
411         int status = 0;
412
413         if (!client || !dev->driver)
414                 return 0;
415
416         driver = to_i2c_driver(dev->driver);
417         if (driver->remove) {
418                 dev_dbg(dev, "remove\n");
419                 status = driver->remove(client);
420         }
421
422         dev_pm_domain_detach(&client->dev, true);
423
424         dev_pm_clear_wake_irq(&client->dev);
425         device_init_wakeup(&client->dev, false);
426
427         client->irq = 0;
428         if (client->flags & I2C_CLIENT_HOST_NOTIFY)
429                 pm_runtime_put(&client->adapter->dev);
430
431         return status;
432 }
433
434 static void i2c_device_shutdown(struct device *dev)
435 {
436         struct i2c_client *client = i2c_verify_client(dev);
437         struct i2c_driver *driver;
438
439         if (!client || !dev->driver)
440                 return;
441         driver = to_i2c_driver(dev->driver);
442         if (driver->shutdown)
443                 driver->shutdown(client);
444 }
445
446 static void i2c_client_dev_release(struct device *dev)
447 {
448         kfree(to_i2c_client(dev));
449 }
450
451 static ssize_t
452 show_name(struct device *dev, struct device_attribute *attr, char *buf)
453 {
454         return sprintf(buf, "%s\n", dev->type == &i2c_client_type ?
455                        to_i2c_client(dev)->name : to_i2c_adapter(dev)->name);
456 }
457 static DEVICE_ATTR(name, S_IRUGO, show_name, NULL);
458
459 static ssize_t
460 show_modalias(struct device *dev, struct device_attribute *attr, char *buf)
461 {
462         struct i2c_client *client = to_i2c_client(dev);
463         int len;
464
465         len = of_device_modalias(dev, buf, PAGE_SIZE);
466         if (len != -ENODEV)
467                 return len;
468
469         len = acpi_device_modalias(dev, buf, PAGE_SIZE -1);
470         if (len != -ENODEV)
471                 return len;
472
473         return sprintf(buf, "%s%s\n", I2C_MODULE_PREFIX, client->name);
474 }
475 static DEVICE_ATTR(modalias, S_IRUGO, show_modalias, NULL);
476
477 static struct attribute *i2c_dev_attrs[] = {
478         &dev_attr_name.attr,
479         /* modalias helps coldplug:  modprobe $(cat .../modalias) */
480         &dev_attr_modalias.attr,
481         NULL
482 };
483 ATTRIBUTE_GROUPS(i2c_dev);
484
485 struct bus_type i2c_bus_type = {
486         .name           = "i2c",
487         .match          = i2c_device_match,
488         .probe          = i2c_device_probe,
489         .remove         = i2c_device_remove,
490         .shutdown       = i2c_device_shutdown,
491 };
492 EXPORT_SYMBOL_GPL(i2c_bus_type);
493
494 struct device_type i2c_client_type = {
495         .groups         = i2c_dev_groups,
496         .uevent         = i2c_device_uevent,
497         .release        = i2c_client_dev_release,
498 };
499 EXPORT_SYMBOL_GPL(i2c_client_type);
500
501
502 /**
503  * i2c_verify_client - return parameter as i2c_client, or NULL
504  * @dev: device, probably from some driver model iterator
505  *
506  * When traversing the driver model tree, perhaps using driver model
507  * iterators like @device_for_each_child(), you can't assume very much
508  * about the nodes you find.  Use this function to avoid oopses caused
509  * by wrongly treating some non-I2C device as an i2c_client.
510  */
511 struct i2c_client *i2c_verify_client(struct device *dev)
512 {
513         return (dev->type == &i2c_client_type)
514                         ? to_i2c_client(dev)
515                         : NULL;
516 }
517 EXPORT_SYMBOL(i2c_verify_client);
518
519
520 /* Return a unique address which takes the flags of the client into account */
521 static unsigned short i2c_encode_flags_to_addr(struct i2c_client *client)
522 {
523         unsigned short addr = client->addr;
524
525         /* For some client flags, add an arbitrary offset to avoid collisions */
526         if (client->flags & I2C_CLIENT_TEN)
527                 addr |= I2C_ADDR_OFFSET_TEN_BIT;
528
529         if (client->flags & I2C_CLIENT_SLAVE)
530                 addr |= I2C_ADDR_OFFSET_SLAVE;
531
532         return addr;
533 }
534
535 /* This is a permissive address validity check, I2C address map constraints
536  * are purposely not enforced, except for the general call address. */
537 static int i2c_check_addr_validity(unsigned int addr, unsigned short flags)
538 {
539         if (flags & I2C_CLIENT_TEN) {
540                 /* 10-bit address, all values are valid */
541                 if (addr > 0x3ff)
542                         return -EINVAL;
543         } else {
544                 /* 7-bit address, reject the general call address */
545                 if (addr == 0x00 || addr > 0x7f)
546                         return -EINVAL;
547         }
548         return 0;
549 }
550
551 /* And this is a strict address validity check, used when probing. If a
552  * device uses a reserved address, then it shouldn't be probed. 7-bit
553  * addressing is assumed, 10-bit address devices are rare and should be
554  * explicitly enumerated. */
555 int i2c_check_7bit_addr_validity_strict(unsigned short addr)
556 {
557         /*
558          * Reserved addresses per I2C specification:
559          *  0x00       General call address / START byte
560          *  0x01       CBUS address
561          *  0x02       Reserved for different bus format
562          *  0x03       Reserved for future purposes
563          *  0x04-0x07  Hs-mode master code
564          *  0x78-0x7b  10-bit slave addressing
565          *  0x7c-0x7f  Reserved for future purposes
566          */
567         if (addr < 0x08 || addr > 0x77)
568                 return -EINVAL;
569         return 0;
570 }
571
572 static int __i2c_check_addr_busy(struct device *dev, void *addrp)
573 {
574         struct i2c_client       *client = i2c_verify_client(dev);
575         int                     addr = *(int *)addrp;
576
577         if (client && i2c_encode_flags_to_addr(client) == addr)
578                 return -EBUSY;
579         return 0;
580 }
581
582 /* walk up mux tree */
583 static int i2c_check_mux_parents(struct i2c_adapter *adapter, int addr)
584 {
585         struct i2c_adapter *parent = i2c_parent_is_i2c_adapter(adapter);
586         int result;
587
588         result = device_for_each_child(&adapter->dev, &addr,
589                                         __i2c_check_addr_busy);
590
591         if (!result && parent)
592                 result = i2c_check_mux_parents(parent, addr);
593
594         return result;
595 }
596
597 /* recurse down mux tree */
598 static int i2c_check_mux_children(struct device *dev, void *addrp)
599 {
600         int result;
601
602         if (dev->type == &i2c_adapter_type)
603                 result = device_for_each_child(dev, addrp,
604                                                 i2c_check_mux_children);
605         else
606                 result = __i2c_check_addr_busy(dev, addrp);
607
608         return result;
609 }
610
611 static int i2c_check_addr_busy(struct i2c_adapter *adapter, int addr)
612 {
613         struct i2c_adapter *parent = i2c_parent_is_i2c_adapter(adapter);
614         int result = 0;
615
616         if (parent)
617                 result = i2c_check_mux_parents(parent, addr);
618
619         if (!result)
620                 result = device_for_each_child(&adapter->dev, &addr,
621                                                 i2c_check_mux_children);
622
623         return result;
624 }
625
626 /**
627  * i2c_adapter_lock_bus - Get exclusive access to an I2C bus segment
628  * @adapter: Target I2C bus segment
629  * @flags: I2C_LOCK_ROOT_ADAPTER locks the root i2c adapter, I2C_LOCK_SEGMENT
630  *      locks only this branch in the adapter tree
631  */
632 static void i2c_adapter_lock_bus(struct i2c_adapter *adapter,
633                                  unsigned int flags)
634 {
635         rt_mutex_lock_nested(&adapter->bus_lock, i2c_adapter_depth(adapter));
636 }
637
638 /**
639  * i2c_adapter_trylock_bus - Try to get exclusive access to an I2C bus segment
640  * @adapter: Target I2C bus segment
641  * @flags: I2C_LOCK_ROOT_ADAPTER trylocks the root i2c adapter, I2C_LOCK_SEGMENT
642  *      trylocks only this branch in the adapter tree
643  */
644 static int i2c_adapter_trylock_bus(struct i2c_adapter *adapter,
645                                    unsigned int flags)
646 {
647         return rt_mutex_trylock(&adapter->bus_lock);
648 }
649
650 /**
651  * i2c_adapter_unlock_bus - Release exclusive access to an I2C bus segment
652  * @adapter: Target I2C bus segment
653  * @flags: I2C_LOCK_ROOT_ADAPTER unlocks the root i2c adapter, I2C_LOCK_SEGMENT
654  *      unlocks only this branch in the adapter tree
655  */
656 static void i2c_adapter_unlock_bus(struct i2c_adapter *adapter,
657                                    unsigned int flags)
658 {
659         rt_mutex_unlock(&adapter->bus_lock);
660 }
661
662 static void i2c_dev_set_name(struct i2c_adapter *adap,
663                              struct i2c_client *client,
664                              struct i2c_board_info const *info)
665 {
666         struct acpi_device *adev = ACPI_COMPANION(&client->dev);
667
668         if (info && info->dev_name) {
669                 dev_set_name(&client->dev, "i2c-%s", info->dev_name);
670                 return;
671         }
672
673         if (adev) {
674                 dev_set_name(&client->dev, "i2c-%s", acpi_dev_name(adev));
675                 return;
676         }
677
678         dev_set_name(&client->dev, "%d-%04x", i2c_adapter_id(adap),
679                      i2c_encode_flags_to_addr(client));
680 }
681
682 int i2c_dev_irq_from_resources(const struct resource *resources,
683                                unsigned int num_resources)
684 {
685         struct irq_data *irqd;
686         int i;
687
688         for (i = 0; i < num_resources; i++) {
689                 const struct resource *r = &resources[i];
690
691                 if (resource_type(r) != IORESOURCE_IRQ)
692                         continue;
693
694                 if (r->flags & IORESOURCE_BITS) {
695                         irqd = irq_get_irq_data(r->start);
696                         if (!irqd)
697                                 break;
698
699                         irqd_set_trigger_type(irqd, r->flags & IORESOURCE_BITS);
700                 }
701
702                 return r->start;
703         }
704
705         return 0;
706 }
707
708 /**
709  * i2c_new_client_device - instantiate an i2c device
710  * @adap: the adapter managing the device
711  * @info: describes one I2C device; bus_num is ignored
712  * Context: can sleep
713  *
714  * Create an i2c device. Binding is handled through driver model
715  * probe()/remove() methods.  A driver may be bound to this device when we
716  * return from this function, or any later moment (e.g. maybe hotplugging will
717  * load the driver module).  This call is not appropriate for use by mainboard
718  * initialization logic, which usually runs during an arch_initcall() long
719  * before any i2c_adapter could exist.
720  *
721  * This returns the new i2c client, which may be saved for later use with
722  * i2c_unregister_device(); or an ERR_PTR to describe the error.
723  */
724 struct i2c_client *
725 i2c_new_client_device(struct i2c_adapter *adap, struct i2c_board_info const *info)
726 {
727         struct i2c_client       *client;
728         int                     status;
729
730         client = kzalloc(sizeof *client, GFP_KERNEL);
731         if (!client)
732                 return ERR_PTR(-ENOMEM);
733
734         client->adapter = adap;
735
736         client->dev.platform_data = info->platform_data;
737         client->flags = info->flags;
738         client->addr = info->addr;
739
740         client->init_irq = info->irq;
741         if (!client->init_irq)
742                 client->init_irq = i2c_dev_irq_from_resources(info->resources,
743                                                          info->num_resources);
744
745         strlcpy(client->name, info->type, sizeof(client->name));
746
747         status = i2c_check_addr_validity(client->addr, client->flags);
748         if (status) {
749                 dev_err(&adap->dev, "Invalid %d-bit I2C address 0x%02hx\n",
750                         client->flags & I2C_CLIENT_TEN ? 10 : 7, client->addr);
751                 goto out_err_silent;
752         }
753
754         /* Check for address business */
755         status = i2c_check_addr_busy(adap, i2c_encode_flags_to_addr(client));
756         if (status)
757                 goto out_err;
758
759         client->dev.parent = &client->adapter->dev;
760         client->dev.bus = &i2c_bus_type;
761         client->dev.type = &i2c_client_type;
762         client->dev.of_node = of_node_get(info->of_node);
763         client->dev.fwnode = info->fwnode;
764
765         i2c_dev_set_name(adap, client, info);
766
767         if (info->properties) {
768                 status = device_add_properties(&client->dev, info->properties);
769                 if (status) {
770                         dev_err(&adap->dev,
771                                 "Failed to add properties to client %s: %d\n",
772                                 client->name, status);
773                         goto out_err_put_of_node;
774                 }
775         }
776
777         status = device_register(&client->dev);
778         if (status)
779                 goto out_free_props;
780
781         dev_dbg(&adap->dev, "client [%s] registered with bus id %s\n",
782                 client->name, dev_name(&client->dev));
783
784         return client;
785
786 out_free_props:
787         if (info->properties)
788                 device_remove_properties(&client->dev);
789 out_err_put_of_node:
790         of_node_put(info->of_node);
791 out_err:
792         dev_err(&adap->dev,
793                 "Failed to register i2c client %s at 0x%02x (%d)\n",
794                 client->name, client->addr, status);
795 out_err_silent:
796         kfree(client);
797         return ERR_PTR(status);
798 }
799 EXPORT_SYMBOL_GPL(i2c_new_client_device);
800
801 /**
802  * i2c_new_device - instantiate an i2c device
803  * @adap: the adapter managing the device
804  * @info: describes one I2C device; bus_num is ignored
805  * Context: can sleep
806  *
807  * This deprecated function has the same functionality as
808  * @i2c_new_client_device, it just returns NULL instead of an ERR_PTR in case of
809  * an error for compatibility with current I2C API. It will be removed once all
810  * users are converted.
811  *
812  * This returns the new i2c client, which may be saved for later use with
813  * i2c_unregister_device(); or NULL to indicate an error.
814  */
815 struct i2c_client *
816 i2c_new_device(struct i2c_adapter *adap, struct i2c_board_info const *info)
817 {
818         struct i2c_client *ret;
819
820         ret = i2c_new_client_device(adap, info);
821         return IS_ERR(ret) ? NULL : ret;
822 }
823 EXPORT_SYMBOL_GPL(i2c_new_device);
824
825
826 /**
827  * i2c_unregister_device - reverse effect of i2c_new_device()
828  * @client: value returned from i2c_new_device()
829  * Context: can sleep
830  */
831 void i2c_unregister_device(struct i2c_client *client)
832 {
833         if (IS_ERR_OR_NULL(client))
834                 return;
835
836         if (client->dev.of_node) {
837                 of_node_clear_flag(client->dev.of_node, OF_POPULATED);
838                 of_node_put(client->dev.of_node);
839         }
840
841         if (ACPI_COMPANION(&client->dev))
842                 acpi_device_clear_enumerated(ACPI_COMPANION(&client->dev));
843         device_unregister(&client->dev);
844 }
845 EXPORT_SYMBOL_GPL(i2c_unregister_device);
846
847
848 static const struct i2c_device_id dummy_id[] = {
849         { "dummy", 0 },
850         { },
851 };
852
853 static int dummy_probe(struct i2c_client *client,
854                        const struct i2c_device_id *id)
855 {
856         return 0;
857 }
858
859 static int dummy_remove(struct i2c_client *client)
860 {
861         return 0;
862 }
863
864 static struct i2c_driver dummy_driver = {
865         .driver.name    = "dummy",
866         .probe          = dummy_probe,
867         .remove         = dummy_remove,
868         .id_table       = dummy_id,
869 };
870
871 /**
872  * i2c_new_dummy_device - return a new i2c device bound to a dummy driver
873  * @adapter: the adapter managing the device
874  * @address: seven bit address to be used
875  * Context: can sleep
876  *
877  * This returns an I2C client bound to the "dummy" driver, intended for use
878  * with devices that consume multiple addresses.  Examples of such chips
879  * include various EEPROMS (like 24c04 and 24c08 models).
880  *
881  * These dummy devices have two main uses.  First, most I2C and SMBus calls
882  * except i2c_transfer() need a client handle; the dummy will be that handle.
883  * And second, this prevents the specified address from being bound to a
884  * different driver.
885  *
886  * This returns the new i2c client, which should be saved for later use with
887  * i2c_unregister_device(); or an ERR_PTR to describe the error.
888  */
889 struct i2c_client *i2c_new_dummy_device(struct i2c_adapter *adapter, u16 address)
890 {
891         struct i2c_board_info info = {
892                 I2C_BOARD_INFO("dummy", address),
893         };
894
895         return i2c_new_client_device(adapter, &info);
896 }
897 EXPORT_SYMBOL_GPL(i2c_new_dummy_device);
898
899 struct i2c_dummy_devres {
900         struct i2c_client *client;
901 };
902
903 static void devm_i2c_release_dummy(struct device *dev, void *res)
904 {
905         struct i2c_dummy_devres *this = res;
906
907         i2c_unregister_device(this->client);
908 }
909
910 /**
911  * devm_i2c_new_dummy_device - return a new i2c device bound to a dummy driver
912  * @dev: device the managed resource is bound to
913  * @adapter: the adapter managing the device
914  * @address: seven bit address to be used
915  * Context: can sleep
916  *
917  * This is the device-managed version of @i2c_new_dummy_device. It returns the
918  * new i2c client or an ERR_PTR in case of an error.
919  */
920 struct i2c_client *devm_i2c_new_dummy_device(struct device *dev,
921                                              struct i2c_adapter *adapter,
922                                              u16 address)
923 {
924         struct i2c_dummy_devres *dr;
925         struct i2c_client *client;
926
927         dr = devres_alloc(devm_i2c_release_dummy, sizeof(*dr), GFP_KERNEL);
928         if (!dr)
929                 return ERR_PTR(-ENOMEM);
930
931         client = i2c_new_dummy_device(adapter, address);
932         if (IS_ERR(client)) {
933                 devres_free(dr);
934         } else {
935                 dr->client = client;
936                 devres_add(dev, dr);
937         }
938
939         return client;
940 }
941 EXPORT_SYMBOL_GPL(devm_i2c_new_dummy_device);
942
943 /**
944  * i2c_new_ancillary_device - Helper to get the instantiated secondary address
945  * and create the associated device
946  * @client: Handle to the primary client
947  * @name: Handle to specify which secondary address to get
948  * @default_addr: Used as a fallback if no secondary address was specified
949  * Context: can sleep
950  *
951  * I2C clients can be composed of multiple I2C slaves bound together in a single
952  * component. The I2C client driver then binds to the master I2C slave and needs
953  * to create I2C dummy clients to communicate with all the other slaves.
954  *
955  * This function creates and returns an I2C dummy client whose I2C address is
956  * retrieved from the platform firmware based on the given slave name. If no
957  * address is specified by the firmware default_addr is used.
958  *
959  * On DT-based platforms the address is retrieved from the "reg" property entry
960  * cell whose "reg-names" value matches the slave name.
961  *
962  * This returns the new i2c client, which should be saved for later use with
963  * i2c_unregister_device(); or an ERR_PTR to describe the error.
964  */
965 struct i2c_client *i2c_new_ancillary_device(struct i2c_client *client,
966                                                 const char *name,
967                                                 u16 default_addr)
968 {
969         struct device_node *np = client->dev.of_node;
970         u32 addr = default_addr;
971         int i;
972
973         if (np) {
974                 i = of_property_match_string(np, "reg-names", name);
975                 if (i >= 0)
976                         of_property_read_u32_index(np, "reg", i, &addr);
977         }
978
979         dev_dbg(&client->adapter->dev, "Address for %s : 0x%x\n", name, addr);
980         return i2c_new_dummy_device(client->adapter, addr);
981 }
982 EXPORT_SYMBOL_GPL(i2c_new_ancillary_device);
983
984 /* ------------------------------------------------------------------------- */
985
986 /* I2C bus adapters -- one roots each I2C or SMBUS segment */
987
988 static void i2c_adapter_dev_release(struct device *dev)
989 {
990         struct i2c_adapter *adap = to_i2c_adapter(dev);
991         complete(&adap->dev_released);
992 }
993
994 unsigned int i2c_adapter_depth(struct i2c_adapter *adapter)
995 {
996         unsigned int depth = 0;
997
998         while ((adapter = i2c_parent_is_i2c_adapter(adapter)))
999                 depth++;
1000
1001         WARN_ONCE(depth >= MAX_LOCKDEP_SUBCLASSES,
1002                   "adapter depth exceeds lockdep subclass limit\n");
1003
1004         return depth;
1005 }
1006 EXPORT_SYMBOL_GPL(i2c_adapter_depth);
1007
1008 /*
1009  * Let users instantiate I2C devices through sysfs. This can be used when
1010  * platform initialization code doesn't contain the proper data for
1011  * whatever reason. Also useful for drivers that do device detection and
1012  * detection fails, either because the device uses an unexpected address,
1013  * or this is a compatible device with different ID register values.
1014  *
1015  * Parameter checking may look overzealous, but we really don't want
1016  * the user to provide incorrect parameters.
1017  */
1018 static ssize_t
1019 i2c_sysfs_new_device(struct device *dev, struct device_attribute *attr,
1020                      const char *buf, size_t count)
1021 {
1022         struct i2c_adapter *adap = to_i2c_adapter(dev);
1023         struct i2c_board_info info;
1024         struct i2c_client *client;
1025         char *blank, end;
1026         int res;
1027
1028         memset(&info, 0, sizeof(struct i2c_board_info));
1029
1030         blank = strchr(buf, ' ');
1031         if (!blank) {
1032                 dev_err(dev, "%s: Missing parameters\n", "new_device");
1033                 return -EINVAL;
1034         }
1035         if (blank - buf > I2C_NAME_SIZE - 1) {
1036                 dev_err(dev, "%s: Invalid device name\n", "new_device");
1037                 return -EINVAL;
1038         }
1039         memcpy(info.type, buf, blank - buf);
1040
1041         /* Parse remaining parameters, reject extra parameters */
1042         res = sscanf(++blank, "%hi%c", &info.addr, &end);
1043         if (res < 1) {
1044                 dev_err(dev, "%s: Can't parse I2C address\n", "new_device");
1045                 return -EINVAL;
1046         }
1047         if (res > 1  && end != '\n') {
1048                 dev_err(dev, "%s: Extra parameters\n", "new_device");
1049                 return -EINVAL;
1050         }
1051
1052         if ((info.addr & I2C_ADDR_OFFSET_TEN_BIT) == I2C_ADDR_OFFSET_TEN_BIT) {
1053                 info.addr &= ~I2C_ADDR_OFFSET_TEN_BIT;
1054                 info.flags |= I2C_CLIENT_TEN;
1055         }
1056
1057         if (info.addr & I2C_ADDR_OFFSET_SLAVE) {
1058                 info.addr &= ~I2C_ADDR_OFFSET_SLAVE;
1059                 info.flags |= I2C_CLIENT_SLAVE;
1060         }
1061
1062         client = i2c_new_client_device(adap, &info);
1063         if (IS_ERR(client))
1064                 return PTR_ERR(client);
1065
1066         /* Keep track of the added device */
1067         mutex_lock(&adap->userspace_clients_lock);
1068         list_add_tail(&client->detected, &adap->userspace_clients);
1069         mutex_unlock(&adap->userspace_clients_lock);
1070         dev_info(dev, "%s: Instantiated device %s at 0x%02hx\n", "new_device",
1071                  info.type, info.addr);
1072
1073         return count;
1074 }
1075 static DEVICE_ATTR(new_device, S_IWUSR, NULL, i2c_sysfs_new_device);
1076
1077 /*
1078  * And of course let the users delete the devices they instantiated, if
1079  * they got it wrong. This interface can only be used to delete devices
1080  * instantiated by i2c_sysfs_new_device above. This guarantees that we
1081  * don't delete devices to which some kernel code still has references.
1082  *
1083  * Parameter checking may look overzealous, but we really don't want
1084  * the user to delete the wrong device.
1085  */
1086 static ssize_t
1087 i2c_sysfs_delete_device(struct device *dev, struct device_attribute *attr,
1088                         const char *buf, size_t count)
1089 {
1090         struct i2c_adapter *adap = to_i2c_adapter(dev);
1091         struct i2c_client *client, *next;
1092         unsigned short addr;
1093         char end;
1094         int res;
1095
1096         /* Parse parameters, reject extra parameters */
1097         res = sscanf(buf, "%hi%c", &addr, &end);
1098         if (res < 1) {
1099                 dev_err(dev, "%s: Can't parse I2C address\n", "delete_device");
1100                 return -EINVAL;
1101         }
1102         if (res > 1  && end != '\n') {
1103                 dev_err(dev, "%s: Extra parameters\n", "delete_device");
1104                 return -EINVAL;
1105         }
1106
1107         /* Make sure the device was added through sysfs */
1108         res = -ENOENT;
1109         mutex_lock_nested(&adap->userspace_clients_lock,
1110                           i2c_adapter_depth(adap));
1111         list_for_each_entry_safe(client, next, &adap->userspace_clients,
1112                                  detected) {
1113                 if (i2c_encode_flags_to_addr(client) == addr) {
1114                         dev_info(dev, "%s: Deleting device %s at 0x%02hx\n",
1115                                  "delete_device", client->name, client->addr);
1116
1117                         list_del(&client->detected);
1118                         i2c_unregister_device(client);
1119                         res = count;
1120                         break;
1121                 }
1122         }
1123         mutex_unlock(&adap->userspace_clients_lock);
1124
1125         if (res < 0)
1126                 dev_err(dev, "%s: Can't find device in list\n",
1127                         "delete_device");
1128         return res;
1129 }
1130 static DEVICE_ATTR_IGNORE_LOCKDEP(delete_device, S_IWUSR, NULL,
1131                                    i2c_sysfs_delete_device);
1132
1133 static struct attribute *i2c_adapter_attrs[] = {
1134         &dev_attr_name.attr,
1135         &dev_attr_new_device.attr,
1136         &dev_attr_delete_device.attr,
1137         NULL
1138 };
1139 ATTRIBUTE_GROUPS(i2c_adapter);
1140
1141 struct device_type i2c_adapter_type = {
1142         .groups         = i2c_adapter_groups,
1143         .release        = i2c_adapter_dev_release,
1144 };
1145 EXPORT_SYMBOL_GPL(i2c_adapter_type);
1146
1147 /**
1148  * i2c_verify_adapter - return parameter as i2c_adapter or NULL
1149  * @dev: device, probably from some driver model iterator
1150  *
1151  * When traversing the driver model tree, perhaps using driver model
1152  * iterators like @device_for_each_child(), you can't assume very much
1153  * about the nodes you find.  Use this function to avoid oopses caused
1154  * by wrongly treating some non-I2C device as an i2c_adapter.
1155  */
1156 struct i2c_adapter *i2c_verify_adapter(struct device *dev)
1157 {
1158         return (dev->type == &i2c_adapter_type)
1159                         ? to_i2c_adapter(dev)
1160                         : NULL;
1161 }
1162 EXPORT_SYMBOL(i2c_verify_adapter);
1163
1164 #ifdef CONFIG_I2C_COMPAT
1165 static struct class_compat *i2c_adapter_compat_class;
1166 #endif
1167
1168 static void i2c_scan_static_board_info(struct i2c_adapter *adapter)
1169 {
1170         struct i2c_devinfo      *devinfo;
1171
1172         down_read(&__i2c_board_lock);
1173         list_for_each_entry(devinfo, &__i2c_board_list, list) {
1174                 if (devinfo->busnum == adapter->nr
1175                                 && !i2c_new_device(adapter,
1176                                                 &devinfo->board_info))
1177                         dev_err(&adapter->dev,
1178                                 "Can't create device at 0x%02x\n",
1179                                 devinfo->board_info.addr);
1180         }
1181         up_read(&__i2c_board_lock);
1182 }
1183
1184 static int i2c_do_add_adapter(struct i2c_driver *driver,
1185                               struct i2c_adapter *adap)
1186 {
1187         /* Detect supported devices on that bus, and instantiate them */
1188         i2c_detect(adap, driver);
1189
1190         return 0;
1191 }
1192
1193 static int __process_new_adapter(struct device_driver *d, void *data)
1194 {
1195         return i2c_do_add_adapter(to_i2c_driver(d), data);
1196 }
1197
1198 static const struct i2c_lock_operations i2c_adapter_lock_ops = {
1199         .lock_bus =    i2c_adapter_lock_bus,
1200         .trylock_bus = i2c_adapter_trylock_bus,
1201         .unlock_bus =  i2c_adapter_unlock_bus,
1202 };
1203
1204 static void i2c_host_notify_irq_teardown(struct i2c_adapter *adap)
1205 {
1206         struct irq_domain *domain = adap->host_notify_domain;
1207         irq_hw_number_t hwirq;
1208
1209         if (!domain)
1210                 return;
1211
1212         for (hwirq = 0 ; hwirq < I2C_ADDR_7BITS_COUNT ; hwirq++)
1213                 irq_dispose_mapping(irq_find_mapping(domain, hwirq));
1214
1215         irq_domain_remove(domain);
1216         adap->host_notify_domain = NULL;
1217 }
1218
1219 static int i2c_host_notify_irq_map(struct irq_domain *h,
1220                                           unsigned int virq,
1221                                           irq_hw_number_t hw_irq_num)
1222 {
1223         irq_set_chip_and_handler(virq, &dummy_irq_chip, handle_simple_irq);
1224
1225         return 0;
1226 }
1227
1228 static const struct irq_domain_ops i2c_host_notify_irq_ops = {
1229         .map = i2c_host_notify_irq_map,
1230 };
1231
1232 static int i2c_setup_host_notify_irq_domain(struct i2c_adapter *adap)
1233 {
1234         struct irq_domain *domain;
1235
1236         if (!i2c_check_functionality(adap, I2C_FUNC_SMBUS_HOST_NOTIFY))
1237                 return 0;
1238
1239         domain = irq_domain_create_linear(adap->dev.fwnode,
1240                                           I2C_ADDR_7BITS_COUNT,
1241                                           &i2c_host_notify_irq_ops, adap);
1242         if (!domain)
1243                 return -ENOMEM;
1244
1245         adap->host_notify_domain = domain;
1246
1247         return 0;
1248 }
1249
1250 /**
1251  * i2c_handle_smbus_host_notify - Forward a Host Notify event to the correct
1252  * I2C client.
1253  * @adap: the adapter
1254  * @addr: the I2C address of the notifying device
1255  * Context: can't sleep
1256  *
1257  * Helper function to be called from an I2C bus driver's interrupt
1258  * handler. It will schedule the Host Notify IRQ.
1259  */
1260 int i2c_handle_smbus_host_notify(struct i2c_adapter *adap, unsigned short addr)
1261 {
1262         int irq;
1263
1264         if (!adap)
1265                 return -EINVAL;
1266
1267         irq = irq_find_mapping(adap->host_notify_domain, addr);
1268         if (irq <= 0)
1269                 return -ENXIO;
1270
1271         generic_handle_irq(irq);
1272
1273         return 0;
1274 }
1275 EXPORT_SYMBOL_GPL(i2c_handle_smbus_host_notify);
1276
1277 static int i2c_register_adapter(struct i2c_adapter *adap)
1278 {
1279         int res = -EINVAL;
1280
1281         /* Can't register until after driver model init */
1282         if (WARN_ON(!is_registered)) {
1283                 res = -EAGAIN;
1284                 goto out_list;
1285         }
1286
1287         /* Sanity checks */
1288         if (WARN(!adap->name[0], "i2c adapter has no name"))
1289                 goto out_list;
1290
1291         if (!adap->algo) {
1292                 pr_err("adapter '%s': no algo supplied!\n", adap->name);
1293                 goto out_list;
1294         }
1295
1296         if (!adap->lock_ops)
1297                 adap->lock_ops = &i2c_adapter_lock_ops;
1298
1299         adap->locked_flags = 0;
1300         rt_mutex_init(&adap->bus_lock);
1301         rt_mutex_init(&adap->mux_lock);
1302         mutex_init(&adap->userspace_clients_lock);
1303         INIT_LIST_HEAD(&adap->userspace_clients);
1304
1305         /* Set default timeout to 1 second if not already set */
1306         if (adap->timeout == 0)
1307                 adap->timeout = HZ;
1308
1309         /* register soft irqs for Host Notify */
1310         res = i2c_setup_host_notify_irq_domain(adap);
1311         if (res) {
1312                 pr_err("adapter '%s': can't create Host Notify IRQs (%d)\n",
1313                        adap->name, res);
1314                 goto out_list;
1315         }
1316
1317         dev_set_name(&adap->dev, "i2c-%d", adap->nr);
1318         adap->dev.bus = &i2c_bus_type;
1319         adap->dev.type = &i2c_adapter_type;
1320         res = device_register(&adap->dev);
1321         if (res) {
1322                 pr_err("adapter '%s': can't register device (%d)\n", adap->name, res);
1323                 goto out_list;
1324         }
1325
1326         res = of_i2c_setup_smbus_alert(adap);
1327         if (res)
1328                 goto out_reg;
1329
1330         dev_dbg(&adap->dev, "adapter [%s] registered\n", adap->name);
1331
1332         pm_runtime_no_callbacks(&adap->dev);
1333         pm_suspend_ignore_children(&adap->dev, true);
1334         pm_runtime_enable(&adap->dev);
1335
1336 #ifdef CONFIG_I2C_COMPAT
1337         res = class_compat_create_link(i2c_adapter_compat_class, &adap->dev,
1338                                        adap->dev.parent);
1339         if (res)
1340                 dev_warn(&adap->dev,
1341                          "Failed to create compatibility class link\n");
1342 #endif
1343
1344         i2c_init_recovery(adap);
1345
1346         /* create pre-declared device nodes */
1347         of_i2c_register_devices(adap);
1348         i2c_acpi_register_devices(adap);
1349         i2c_acpi_install_space_handler(adap);
1350
1351         if (adap->nr < __i2c_first_dynamic_bus_num)
1352                 i2c_scan_static_board_info(adap);
1353
1354         /* Notify drivers */
1355         mutex_lock(&core_lock);
1356         bus_for_each_drv(&i2c_bus_type, NULL, adap, __process_new_adapter);
1357         mutex_unlock(&core_lock);
1358
1359         return 0;
1360
1361 out_reg:
1362         init_completion(&adap->dev_released);
1363         device_unregister(&adap->dev);
1364         wait_for_completion(&adap->dev_released);
1365 out_list:
1366         mutex_lock(&core_lock);
1367         idr_remove(&i2c_adapter_idr, adap->nr);
1368         mutex_unlock(&core_lock);
1369         return res;
1370 }
1371
1372 /**
1373  * __i2c_add_numbered_adapter - i2c_add_numbered_adapter where nr is never -1
1374  * @adap: the adapter to register (with adap->nr initialized)
1375  * Context: can sleep
1376  *
1377  * See i2c_add_numbered_adapter() for details.
1378  */
1379 static int __i2c_add_numbered_adapter(struct i2c_adapter *adap)
1380 {
1381         int id;
1382
1383         mutex_lock(&core_lock);
1384         id = idr_alloc(&i2c_adapter_idr, adap, adap->nr, adap->nr + 1, GFP_KERNEL);
1385         mutex_unlock(&core_lock);
1386         if (WARN(id < 0, "couldn't get idr"))
1387                 return id == -ENOSPC ? -EBUSY : id;
1388
1389         return i2c_register_adapter(adap);
1390 }
1391
1392 /**
1393  * i2c_add_adapter - declare i2c adapter, use dynamic bus number
1394  * @adapter: the adapter to add
1395  * Context: can sleep
1396  *
1397  * This routine is used to declare an I2C adapter when its bus number
1398  * doesn't matter or when its bus number is specified by an dt alias.
1399  * Examples of bases when the bus number doesn't matter: I2C adapters
1400  * dynamically added by USB links or PCI plugin cards.
1401  *
1402  * When this returns zero, a new bus number was allocated and stored
1403  * in adap->nr, and the specified adapter became available for clients.
1404  * Otherwise, a negative errno value is returned.
1405  */
1406 int i2c_add_adapter(struct i2c_adapter *adapter)
1407 {
1408         struct device *dev = &adapter->dev;
1409         int id;
1410
1411         if (dev->of_node) {
1412                 id = of_alias_get_id(dev->of_node, "i2c");
1413                 if (id >= 0) {
1414                         adapter->nr = id;
1415                         return __i2c_add_numbered_adapter(adapter);
1416                 }
1417         }
1418
1419         mutex_lock(&core_lock);
1420         id = idr_alloc(&i2c_adapter_idr, adapter,
1421                        __i2c_first_dynamic_bus_num, 0, GFP_KERNEL);
1422         mutex_unlock(&core_lock);
1423         if (WARN(id < 0, "couldn't get idr"))
1424                 return id;
1425
1426         adapter->nr = id;
1427
1428         return i2c_register_adapter(adapter);
1429 }
1430 EXPORT_SYMBOL(i2c_add_adapter);
1431
1432 /**
1433  * i2c_add_numbered_adapter - declare i2c adapter, use static bus number
1434  * @adap: the adapter to register (with adap->nr initialized)
1435  * Context: can sleep
1436  *
1437  * This routine is used to declare an I2C adapter when its bus number
1438  * matters.  For example, use it for I2C adapters from system-on-chip CPUs,
1439  * or otherwise built in to the system's mainboard, and where i2c_board_info
1440  * is used to properly configure I2C devices.
1441  *
1442  * If the requested bus number is set to -1, then this function will behave
1443  * identically to i2c_add_adapter, and will dynamically assign a bus number.
1444  *
1445  * If no devices have pre-been declared for this bus, then be sure to
1446  * register the adapter before any dynamically allocated ones.  Otherwise
1447  * the required bus ID may not be available.
1448  *
1449  * When this returns zero, the specified adapter became available for
1450  * clients using the bus number provided in adap->nr.  Also, the table
1451  * of I2C devices pre-declared using i2c_register_board_info() is scanned,
1452  * and the appropriate driver model device nodes are created.  Otherwise, a
1453  * negative errno value is returned.
1454  */
1455 int i2c_add_numbered_adapter(struct i2c_adapter *adap)
1456 {
1457         if (adap->nr == -1) /* -1 means dynamically assign bus id */
1458                 return i2c_add_adapter(adap);
1459
1460         return __i2c_add_numbered_adapter(adap);
1461 }
1462 EXPORT_SYMBOL_GPL(i2c_add_numbered_adapter);
1463
1464 static void i2c_do_del_adapter(struct i2c_driver *driver,
1465                               struct i2c_adapter *adapter)
1466 {
1467         struct i2c_client *client, *_n;
1468
1469         /* Remove the devices we created ourselves as the result of hardware
1470          * probing (using a driver's detect method) */
1471         list_for_each_entry_safe(client, _n, &driver->clients, detected) {
1472                 if (client->adapter == adapter) {
1473                         dev_dbg(&adapter->dev, "Removing %s at 0x%x\n",
1474                                 client->name, client->addr);
1475                         list_del(&client->detected);
1476                         i2c_unregister_device(client);
1477                 }
1478         }
1479 }
1480
1481 static int __unregister_client(struct device *dev, void *dummy)
1482 {
1483         struct i2c_client *client = i2c_verify_client(dev);
1484         if (client && strcmp(client->name, "dummy"))
1485                 i2c_unregister_device(client);
1486         return 0;
1487 }
1488
1489 static int __unregister_dummy(struct device *dev, void *dummy)
1490 {
1491         struct i2c_client *client = i2c_verify_client(dev);
1492         i2c_unregister_device(client);
1493         return 0;
1494 }
1495
1496 static int __process_removed_adapter(struct device_driver *d, void *data)
1497 {
1498         i2c_do_del_adapter(to_i2c_driver(d), data);
1499         return 0;
1500 }
1501
1502 /**
1503  * i2c_del_adapter - unregister I2C adapter
1504  * @adap: the adapter being unregistered
1505  * Context: can sleep
1506  *
1507  * This unregisters an I2C adapter which was previously registered
1508  * by @i2c_add_adapter or @i2c_add_numbered_adapter.
1509  */
1510 void i2c_del_adapter(struct i2c_adapter *adap)
1511 {
1512         struct i2c_adapter *found;
1513         struct i2c_client *client, *next;
1514
1515         /* First make sure that this adapter was ever added */
1516         mutex_lock(&core_lock);
1517         found = idr_find(&i2c_adapter_idr, adap->nr);
1518         mutex_unlock(&core_lock);
1519         if (found != adap) {
1520                 pr_debug("attempting to delete unregistered adapter [%s]\n", adap->name);
1521                 return;
1522         }
1523
1524         i2c_acpi_remove_space_handler(adap);
1525         /* Tell drivers about this removal */
1526         mutex_lock(&core_lock);
1527         bus_for_each_drv(&i2c_bus_type, NULL, adap,
1528                                __process_removed_adapter);
1529         mutex_unlock(&core_lock);
1530
1531         /* Remove devices instantiated from sysfs */
1532         mutex_lock_nested(&adap->userspace_clients_lock,
1533                           i2c_adapter_depth(adap));
1534         list_for_each_entry_safe(client, next, &adap->userspace_clients,
1535                                  detected) {
1536                 dev_dbg(&adap->dev, "Removing %s at 0x%x\n", client->name,
1537                         client->addr);
1538                 list_del(&client->detected);
1539                 i2c_unregister_device(client);
1540         }
1541         mutex_unlock(&adap->userspace_clients_lock);
1542
1543         /* Detach any active clients. This can't fail, thus we do not
1544          * check the returned value. This is a two-pass process, because
1545          * we can't remove the dummy devices during the first pass: they
1546          * could have been instantiated by real devices wishing to clean
1547          * them up properly, so we give them a chance to do that first. */
1548         device_for_each_child(&adap->dev, NULL, __unregister_client);
1549         device_for_each_child(&adap->dev, NULL, __unregister_dummy);
1550
1551 #ifdef CONFIG_I2C_COMPAT
1552         class_compat_remove_link(i2c_adapter_compat_class, &adap->dev,
1553                                  adap->dev.parent);
1554 #endif
1555
1556         /* device name is gone after device_unregister */
1557         dev_dbg(&adap->dev, "adapter [%s] unregistered\n", adap->name);
1558
1559         pm_runtime_disable(&adap->dev);
1560
1561         i2c_host_notify_irq_teardown(adap);
1562
1563         /* wait until all references to the device are gone
1564          *
1565          * FIXME: This is old code and should ideally be replaced by an
1566          * alternative which results in decoupling the lifetime of the struct
1567          * device from the i2c_adapter, like spi or netdev do. Any solution
1568          * should be thoroughly tested with DEBUG_KOBJECT_RELEASE enabled!
1569          */
1570         init_completion(&adap->dev_released);
1571         device_unregister(&adap->dev);
1572         wait_for_completion(&adap->dev_released);
1573
1574         /* free bus id */
1575         mutex_lock(&core_lock);
1576         idr_remove(&i2c_adapter_idr, adap->nr);
1577         mutex_unlock(&core_lock);
1578
1579         /* Clear the device structure in case this adapter is ever going to be
1580            added again */
1581         memset(&adap->dev, 0, sizeof(adap->dev));
1582 }
1583 EXPORT_SYMBOL(i2c_del_adapter);
1584
1585 /**
1586  * i2c_parse_fw_timings - get I2C related timing parameters from firmware
1587  * @dev: The device to scan for I2C timing properties
1588  * @t: the i2c_timings struct to be filled with values
1589  * @use_defaults: bool to use sane defaults derived from the I2C specification
1590  *                when properties are not found, otherwise use 0
1591  *
1592  * Scan the device for the generic I2C properties describing timing parameters
1593  * for the signal and fill the given struct with the results. If a property was
1594  * not found and use_defaults was true, then maximum timings are assumed which
1595  * are derived from the I2C specification. If use_defaults is not used, the
1596  * results will be 0, so drivers can apply their own defaults later. The latter
1597  * is mainly intended for avoiding regressions of existing drivers which want
1598  * to switch to this function. New drivers almost always should use the defaults.
1599  */
1600
1601 void i2c_parse_fw_timings(struct device *dev, struct i2c_timings *t, bool use_defaults)
1602 {
1603         int ret;
1604
1605         memset(t, 0, sizeof(*t));
1606
1607         ret = device_property_read_u32(dev, "clock-frequency", &t->bus_freq_hz);
1608         if (ret && use_defaults)
1609                 t->bus_freq_hz = 100000;
1610
1611         ret = device_property_read_u32(dev, "i2c-scl-rising-time-ns", &t->scl_rise_ns);
1612         if (ret && use_defaults) {
1613                 if (t->bus_freq_hz <= 100000)
1614                         t->scl_rise_ns = 1000;
1615                 else if (t->bus_freq_hz <= 400000)
1616                         t->scl_rise_ns = 300;
1617                 else
1618                         t->scl_rise_ns = 120;
1619         }
1620
1621         ret = device_property_read_u32(dev, "i2c-scl-falling-time-ns", &t->scl_fall_ns);
1622         if (ret && use_defaults) {
1623                 if (t->bus_freq_hz <= 400000)
1624                         t->scl_fall_ns = 300;
1625                 else
1626                         t->scl_fall_ns = 120;
1627         }
1628
1629         device_property_read_u32(dev, "i2c-scl-internal-delay-ns", &t->scl_int_delay_ns);
1630
1631         ret = device_property_read_u32(dev, "i2c-sda-falling-time-ns", &t->sda_fall_ns);
1632         if (ret && use_defaults)
1633                 t->sda_fall_ns = t->scl_fall_ns;
1634
1635         device_property_read_u32(dev, "i2c-sda-hold-time-ns", &t->sda_hold_ns);
1636
1637         device_property_read_u32(dev, "i2c-digital-filter-width-ns",
1638                                  &t->digital_filter_width_ns);
1639
1640         device_property_read_u32(dev, "i2c-analog-filter-cutoff-frequency",
1641                                  &t->analog_filter_cutoff_freq_hz);
1642 }
1643 EXPORT_SYMBOL_GPL(i2c_parse_fw_timings);
1644
1645 /* ------------------------------------------------------------------------- */
1646
1647 int i2c_for_each_dev(void *data, int (*fn)(struct device *dev, void *data))
1648 {
1649         int res;
1650
1651         mutex_lock(&core_lock);
1652         res = bus_for_each_dev(&i2c_bus_type, NULL, data, fn);
1653         mutex_unlock(&core_lock);
1654
1655         return res;
1656 }
1657 EXPORT_SYMBOL_GPL(i2c_for_each_dev);
1658
1659 static int __process_new_driver(struct device *dev, void *data)
1660 {
1661         if (dev->type != &i2c_adapter_type)
1662                 return 0;
1663         return i2c_do_add_adapter(data, to_i2c_adapter(dev));
1664 }
1665
1666 /*
1667  * An i2c_driver is used with one or more i2c_client (device) nodes to access
1668  * i2c slave chips, on a bus instance associated with some i2c_adapter.
1669  */
1670
1671 int i2c_register_driver(struct module *owner, struct i2c_driver *driver)
1672 {
1673         int res;
1674
1675         /* Can't register until after driver model init */
1676         if (WARN_ON(!is_registered))
1677                 return -EAGAIN;
1678
1679         /* add the driver to the list of i2c drivers in the driver core */
1680         driver->driver.owner = owner;
1681         driver->driver.bus = &i2c_bus_type;
1682         INIT_LIST_HEAD(&driver->clients);
1683
1684         /* When registration returns, the driver core
1685          * will have called probe() for all matching-but-unbound devices.
1686          */
1687         res = driver_register(&driver->driver);
1688         if (res)
1689                 return res;
1690
1691         pr_debug("driver [%s] registered\n", driver->driver.name);
1692
1693         /* Walk the adapters that are already present */
1694         i2c_for_each_dev(driver, __process_new_driver);
1695
1696         return 0;
1697 }
1698 EXPORT_SYMBOL(i2c_register_driver);
1699
1700 static int __process_removed_driver(struct device *dev, void *data)
1701 {
1702         if (dev->type == &i2c_adapter_type)
1703                 i2c_do_del_adapter(data, to_i2c_adapter(dev));
1704         return 0;
1705 }
1706
1707 /**
1708  * i2c_del_driver - unregister I2C driver
1709  * @driver: the driver being unregistered
1710  * Context: can sleep
1711  */
1712 void i2c_del_driver(struct i2c_driver *driver)
1713 {
1714         i2c_for_each_dev(driver, __process_removed_driver);
1715
1716         driver_unregister(&driver->driver);
1717         pr_debug("driver [%s] unregistered\n", driver->driver.name);
1718 }
1719 EXPORT_SYMBOL(i2c_del_driver);
1720
1721 /* ------------------------------------------------------------------------- */
1722
1723 struct i2c_cmd_arg {
1724         unsigned        cmd;
1725         void            *arg;
1726 };
1727
1728 static int i2c_cmd(struct device *dev, void *_arg)
1729 {
1730         struct i2c_client       *client = i2c_verify_client(dev);
1731         struct i2c_cmd_arg      *arg = _arg;
1732         struct i2c_driver       *driver;
1733
1734         if (!client || !client->dev.driver)
1735                 return 0;
1736
1737         driver = to_i2c_driver(client->dev.driver);
1738         if (driver->command)
1739                 driver->command(client, arg->cmd, arg->arg);
1740         return 0;
1741 }
1742
1743 void i2c_clients_command(struct i2c_adapter *adap, unsigned int cmd, void *arg)
1744 {
1745         struct i2c_cmd_arg      cmd_arg;
1746
1747         cmd_arg.cmd = cmd;
1748         cmd_arg.arg = arg;
1749         device_for_each_child(&adap->dev, &cmd_arg, i2c_cmd);
1750 }
1751 EXPORT_SYMBOL(i2c_clients_command);
1752
1753 static int __init i2c_init(void)
1754 {
1755         int retval;
1756
1757         retval = of_alias_get_highest_id("i2c");
1758
1759         down_write(&__i2c_board_lock);
1760         if (retval >= __i2c_first_dynamic_bus_num)
1761                 __i2c_first_dynamic_bus_num = retval + 1;
1762         up_write(&__i2c_board_lock);
1763
1764         retval = bus_register(&i2c_bus_type);
1765         if (retval)
1766                 return retval;
1767
1768         is_registered = true;
1769
1770 #ifdef CONFIG_I2C_COMPAT
1771         i2c_adapter_compat_class = class_compat_register("i2c-adapter");
1772         if (!i2c_adapter_compat_class) {
1773                 retval = -ENOMEM;
1774                 goto bus_err;
1775         }
1776 #endif
1777         retval = i2c_add_driver(&dummy_driver);
1778         if (retval)
1779                 goto class_err;
1780
1781         if (IS_ENABLED(CONFIG_OF_DYNAMIC))
1782                 WARN_ON(of_reconfig_notifier_register(&i2c_of_notifier));
1783         if (IS_ENABLED(CONFIG_ACPI))
1784                 WARN_ON(acpi_reconfig_notifier_register(&i2c_acpi_notifier));
1785
1786         return 0;
1787
1788 class_err:
1789 #ifdef CONFIG_I2C_COMPAT
1790         class_compat_unregister(i2c_adapter_compat_class);
1791 bus_err:
1792 #endif
1793         is_registered = false;
1794         bus_unregister(&i2c_bus_type);
1795         return retval;
1796 }
1797
1798 static void __exit i2c_exit(void)
1799 {
1800         if (IS_ENABLED(CONFIG_ACPI))
1801                 WARN_ON(acpi_reconfig_notifier_unregister(&i2c_acpi_notifier));
1802         if (IS_ENABLED(CONFIG_OF_DYNAMIC))
1803                 WARN_ON(of_reconfig_notifier_unregister(&i2c_of_notifier));
1804         i2c_del_driver(&dummy_driver);
1805 #ifdef CONFIG_I2C_COMPAT
1806         class_compat_unregister(i2c_adapter_compat_class);
1807 #endif
1808         bus_unregister(&i2c_bus_type);
1809         tracepoint_synchronize_unregister();
1810 }
1811
1812 /* We must initialize early, because some subsystems register i2c drivers
1813  * in subsys_initcall() code, but are linked (and initialized) before i2c.
1814  */
1815 postcore_initcall(i2c_init);
1816 module_exit(i2c_exit);
1817
1818 /* ----------------------------------------------------
1819  * the functional interface to the i2c busses.
1820  * ----------------------------------------------------
1821  */
1822
1823 /* Check if val is exceeding the quirk IFF quirk is non 0 */
1824 #define i2c_quirk_exceeded(val, quirk) ((quirk) && ((val) > (quirk)))
1825
1826 static int i2c_quirk_error(struct i2c_adapter *adap, struct i2c_msg *msg, char *err_msg)
1827 {
1828         dev_err_ratelimited(&adap->dev, "adapter quirk: %s (addr 0x%04x, size %u, %s)\n",
1829                             err_msg, msg->addr, msg->len,
1830                             msg->flags & I2C_M_RD ? "read" : "write");
1831         return -EOPNOTSUPP;
1832 }
1833
1834 static int i2c_check_for_quirks(struct i2c_adapter *adap, struct i2c_msg *msgs, int num)
1835 {
1836         const struct i2c_adapter_quirks *q = adap->quirks;
1837         int max_num = q->max_num_msgs, i;
1838         bool do_len_check = true;
1839
1840         if (q->flags & I2C_AQ_COMB) {
1841                 max_num = 2;
1842
1843                 /* special checks for combined messages */
1844                 if (num == 2) {
1845                         if (q->flags & I2C_AQ_COMB_WRITE_FIRST && msgs[0].flags & I2C_M_RD)
1846                                 return i2c_quirk_error(adap, &msgs[0], "1st comb msg must be write");
1847
1848                         if (q->flags & I2C_AQ_COMB_READ_SECOND && !(msgs[1].flags & I2C_M_RD))
1849                                 return i2c_quirk_error(adap, &msgs[1], "2nd comb msg must be read");
1850
1851                         if (q->flags & I2C_AQ_COMB_SAME_ADDR && msgs[0].addr != msgs[1].addr)
1852                                 return i2c_quirk_error(adap, &msgs[0], "comb msg only to same addr");
1853
1854                         if (i2c_quirk_exceeded(msgs[0].len, q->max_comb_1st_msg_len))
1855                                 return i2c_quirk_error(adap, &msgs[0], "msg too long");
1856
1857                         if (i2c_quirk_exceeded(msgs[1].len, q->max_comb_2nd_msg_len))
1858                                 return i2c_quirk_error(adap, &msgs[1], "msg too long");
1859
1860                         do_len_check = false;
1861                 }
1862         }
1863
1864         if (i2c_quirk_exceeded(num, max_num))
1865                 return i2c_quirk_error(adap, &msgs[0], "too many messages");
1866
1867         for (i = 0; i < num; i++) {
1868                 u16 len = msgs[i].len;
1869
1870                 if (msgs[i].flags & I2C_M_RD) {
1871                         if (do_len_check && i2c_quirk_exceeded(len, q->max_read_len))
1872                                 return i2c_quirk_error(adap, &msgs[i], "msg too long");
1873
1874                         if (q->flags & I2C_AQ_NO_ZERO_LEN_READ && len == 0)
1875                                 return i2c_quirk_error(adap, &msgs[i], "no zero length");
1876                 } else {
1877                         if (do_len_check && i2c_quirk_exceeded(len, q->max_write_len))
1878                                 return i2c_quirk_error(adap, &msgs[i], "msg too long");
1879
1880                         if (q->flags & I2C_AQ_NO_ZERO_LEN_WRITE && len == 0)
1881                                 return i2c_quirk_error(adap, &msgs[i], "no zero length");
1882                 }
1883         }
1884
1885         return 0;
1886 }
1887
1888 /**
1889  * __i2c_transfer - unlocked flavor of i2c_transfer
1890  * @adap: Handle to I2C bus
1891  * @msgs: One or more messages to execute before STOP is issued to
1892  *      terminate the operation; each message begins with a START.
1893  * @num: Number of messages to be executed.
1894  *
1895  * Returns negative errno, else the number of messages executed.
1896  *
1897  * Adapter lock must be held when calling this function. No debug logging
1898  * takes place. adap->algo->master_xfer existence isn't checked.
1899  */
1900 int __i2c_transfer(struct i2c_adapter *adap, struct i2c_msg *msgs, int num)
1901 {
1902         unsigned long orig_jiffies;
1903         int ret, try;
1904
1905         if (WARN_ON(!msgs || num < 1))
1906                 return -EINVAL;
1907
1908         ret = __i2c_check_suspended(adap);
1909         if (ret)
1910                 return ret;
1911
1912         if (adap->quirks && i2c_check_for_quirks(adap, msgs, num))
1913                 return -EOPNOTSUPP;
1914
1915         /*
1916          * i2c_trace_msg_key gets enabled when tracepoint i2c_transfer gets
1917          * enabled.  This is an efficient way of keeping the for-loop from
1918          * being executed when not needed.
1919          */
1920         if (static_branch_unlikely(&i2c_trace_msg_key)) {
1921                 int i;
1922                 for (i = 0; i < num; i++)
1923                         if (msgs[i].flags & I2C_M_RD)
1924                                 trace_i2c_read(adap, &msgs[i], i);
1925                         else
1926                                 trace_i2c_write(adap, &msgs[i], i);
1927         }
1928
1929         /* Retry automatically on arbitration loss */
1930         orig_jiffies = jiffies;
1931         for (ret = 0, try = 0; try <= adap->retries; try++) {
1932                 if (i2c_in_atomic_xfer_mode() && adap->algo->master_xfer_atomic)
1933                         ret = adap->algo->master_xfer_atomic(adap, msgs, num);
1934                 else
1935                         ret = adap->algo->master_xfer(adap, msgs, num);
1936
1937                 if (ret != -EAGAIN)
1938                         break;
1939                 if (time_after(jiffies, orig_jiffies + adap->timeout))
1940                         break;
1941         }
1942
1943         if (static_branch_unlikely(&i2c_trace_msg_key)) {
1944                 int i;
1945                 for (i = 0; i < ret; i++)
1946                         if (msgs[i].flags & I2C_M_RD)
1947                                 trace_i2c_reply(adap, &msgs[i], i);
1948                 trace_i2c_result(adap, num, ret);
1949         }
1950
1951         return ret;
1952 }
1953 EXPORT_SYMBOL(__i2c_transfer);
1954
1955 /**
1956  * i2c_transfer - execute a single or combined I2C message
1957  * @adap: Handle to I2C bus
1958  * @msgs: One or more messages to execute before STOP is issued to
1959  *      terminate the operation; each message begins with a START.
1960  * @num: Number of messages to be executed.
1961  *
1962  * Returns negative errno, else the number of messages executed.
1963  *
1964  * Note that there is no requirement that each message be sent to
1965  * the same slave address, although that is the most common model.
1966  */
1967 int i2c_transfer(struct i2c_adapter *adap, struct i2c_msg *msgs, int num)
1968 {
1969         int ret;
1970
1971         if (!adap->algo->master_xfer) {
1972                 dev_dbg(&adap->dev, "I2C level transfers not supported\n");
1973                 return -EOPNOTSUPP;
1974         }
1975
1976         /* REVISIT the fault reporting model here is weak:
1977          *
1978          *  - When we get an error after receiving N bytes from a slave,
1979          *    there is no way to report "N".
1980          *
1981          *  - When we get a NAK after transmitting N bytes to a slave,
1982          *    there is no way to report "N" ... or to let the master
1983          *    continue executing the rest of this combined message, if
1984          *    that's the appropriate response.
1985          *
1986          *  - When for example "num" is two and we successfully complete
1987          *    the first message but get an error part way through the
1988          *    second, it's unclear whether that should be reported as
1989          *    one (discarding status on the second message) or errno
1990          *    (discarding status on the first one).
1991          */
1992         ret = __i2c_lock_bus_helper(adap);
1993         if (ret)
1994                 return ret;
1995
1996         ret = __i2c_transfer(adap, msgs, num);
1997         i2c_unlock_bus(adap, I2C_LOCK_SEGMENT);
1998
1999         return ret;
2000 }
2001 EXPORT_SYMBOL(i2c_transfer);
2002
2003 /**
2004  * i2c_transfer_buffer_flags - issue a single I2C message transferring data
2005  *                             to/from a buffer
2006  * @client: Handle to slave device
2007  * @buf: Where the data is stored
2008  * @count: How many bytes to transfer, must be less than 64k since msg.len is u16
2009  * @flags: The flags to be used for the message, e.g. I2C_M_RD for reads
2010  *
2011  * Returns negative errno, or else the number of bytes transferred.
2012  */
2013 int i2c_transfer_buffer_flags(const struct i2c_client *client, char *buf,
2014                               int count, u16 flags)
2015 {
2016         int ret;
2017         struct i2c_msg msg = {
2018                 .addr = client->addr,
2019                 .flags = flags | (client->flags & I2C_M_TEN),
2020                 .len = count,
2021                 .buf = buf,
2022         };
2023
2024         ret = i2c_transfer(client->adapter, &msg, 1);
2025
2026         /*
2027          * If everything went ok (i.e. 1 msg transferred), return #bytes
2028          * transferred, else error code.
2029          */
2030         return (ret == 1) ? count : ret;
2031 }
2032 EXPORT_SYMBOL(i2c_transfer_buffer_flags);
2033
2034 /**
2035  * i2c_get_device_id - get manufacturer, part id and die revision of a device
2036  * @client: The device to query
2037  * @id: The queried information
2038  *
2039  * Returns negative errno on error, zero on success.
2040  */
2041 int i2c_get_device_id(const struct i2c_client *client,
2042                       struct i2c_device_identity *id)
2043 {
2044         struct i2c_adapter *adap = client->adapter;
2045         union i2c_smbus_data raw_id;
2046         int ret;
2047
2048         if (!i2c_check_functionality(adap, I2C_FUNC_SMBUS_READ_I2C_BLOCK))
2049                 return -EOPNOTSUPP;
2050
2051         raw_id.block[0] = 3;
2052         ret = i2c_smbus_xfer(adap, I2C_ADDR_DEVICE_ID, 0,
2053                              I2C_SMBUS_READ, client->addr << 1,
2054                              I2C_SMBUS_I2C_BLOCK_DATA, &raw_id);
2055         if (ret)
2056                 return ret;
2057
2058         id->manufacturer_id = (raw_id.block[1] << 4) | (raw_id.block[2] >> 4);
2059         id->part_id = ((raw_id.block[2] & 0xf) << 5) | (raw_id.block[3] >> 3);
2060         id->die_revision = raw_id.block[3] & 0x7;
2061         return 0;
2062 }
2063 EXPORT_SYMBOL_GPL(i2c_get_device_id);
2064
2065 /* ----------------------------------------------------
2066  * the i2c address scanning function
2067  * Will not work for 10-bit addresses!
2068  * ----------------------------------------------------
2069  */
2070
2071 /*
2072  * Legacy default probe function, mostly relevant for SMBus. The default
2073  * probe method is a quick write, but it is known to corrupt the 24RF08
2074  * EEPROMs due to a state machine bug, and could also irreversibly
2075  * write-protect some EEPROMs, so for address ranges 0x30-0x37 and 0x50-0x5f,
2076  * we use a short byte read instead. Also, some bus drivers don't implement
2077  * quick write, so we fallback to a byte read in that case too.
2078  * On x86, there is another special case for FSC hardware monitoring chips,
2079  * which want regular byte reads (address 0x73.) Fortunately, these are the
2080  * only known chips using this I2C address on PC hardware.
2081  * Returns 1 if probe succeeded, 0 if not.
2082  */
2083 static int i2c_default_probe(struct i2c_adapter *adap, unsigned short addr)
2084 {
2085         int err;
2086         union i2c_smbus_data dummy;
2087
2088 #ifdef CONFIG_X86
2089         if (addr == 0x73 && (adap->class & I2C_CLASS_HWMON)
2090          && i2c_check_functionality(adap, I2C_FUNC_SMBUS_READ_BYTE_DATA))
2091                 err = i2c_smbus_xfer(adap, addr, 0, I2C_SMBUS_READ, 0,
2092                                      I2C_SMBUS_BYTE_DATA, &dummy);
2093         else
2094 #endif
2095         if (!((addr & ~0x07) == 0x30 || (addr & ~0x0f) == 0x50)
2096          && i2c_check_functionality(adap, I2C_FUNC_SMBUS_QUICK))
2097                 err = i2c_smbus_xfer(adap, addr, 0, I2C_SMBUS_WRITE, 0,
2098                                      I2C_SMBUS_QUICK, NULL);
2099         else if (i2c_check_functionality(adap, I2C_FUNC_SMBUS_READ_BYTE))
2100                 err = i2c_smbus_xfer(adap, addr, 0, I2C_SMBUS_READ, 0,
2101                                      I2C_SMBUS_BYTE, &dummy);
2102         else {
2103                 dev_warn(&adap->dev, "No suitable probing method supported for address 0x%02X\n",
2104                          addr);
2105                 err = -EOPNOTSUPP;
2106         }
2107
2108         return err >= 0;
2109 }
2110
2111 static int i2c_detect_address(struct i2c_client *temp_client,
2112                               struct i2c_driver *driver)
2113 {
2114         struct i2c_board_info info;
2115         struct i2c_adapter *adapter = temp_client->adapter;
2116         int addr = temp_client->addr;
2117         int err;
2118
2119         /* Make sure the address is valid */
2120         err = i2c_check_7bit_addr_validity_strict(addr);
2121         if (err) {
2122                 dev_warn(&adapter->dev, "Invalid probe address 0x%02x\n",
2123                          addr);
2124                 return err;
2125         }
2126
2127         /* Skip if already in use (7 bit, no need to encode flags) */
2128         if (i2c_check_addr_busy(adapter, addr))
2129                 return 0;
2130
2131         /* Make sure there is something at this address */
2132         if (!i2c_default_probe(adapter, addr))
2133                 return 0;
2134
2135         /* Finally call the custom detection function */
2136         memset(&info, 0, sizeof(struct i2c_board_info));
2137         info.addr = addr;
2138         err = driver->detect(temp_client, &info);
2139         if (err) {
2140                 /* -ENODEV is returned if the detection fails. We catch it
2141                    here as this isn't an error. */
2142                 return err == -ENODEV ? 0 : err;
2143         }
2144
2145         /* Consistency check */
2146         if (info.type[0] == '\0') {
2147                 dev_err(&adapter->dev,
2148                         "%s detection function provided no name for 0x%x\n",
2149                         driver->driver.name, addr);
2150         } else {
2151                 struct i2c_client *client;
2152
2153                 /* Detection succeeded, instantiate the device */
2154                 if (adapter->class & I2C_CLASS_DEPRECATED)
2155                         dev_warn(&adapter->dev,
2156                                 "This adapter will soon drop class based instantiation of devices. "
2157                                 "Please make sure client 0x%02x gets instantiated by other means. "
2158                                 "Check 'Documentation/i2c/instantiating-devices.rst' for details.\n",
2159                                 info.addr);
2160
2161                 dev_dbg(&adapter->dev, "Creating %s at 0x%02x\n",
2162                         info.type, info.addr);
2163                 client = i2c_new_device(adapter, &info);
2164                 if (client)
2165                         list_add_tail(&client->detected, &driver->clients);
2166                 else
2167                         dev_err(&adapter->dev, "Failed creating %s at 0x%02x\n",
2168                                 info.type, info.addr);
2169         }
2170         return 0;
2171 }
2172
2173 static int i2c_detect(struct i2c_adapter *adapter, struct i2c_driver *driver)
2174 {
2175         const unsigned short *address_list;
2176         struct i2c_client *temp_client;
2177         int i, err = 0;
2178         int adap_id = i2c_adapter_id(adapter);
2179
2180         address_list = driver->address_list;
2181         if (!driver->detect || !address_list)
2182                 return 0;
2183
2184         /* Warn that the adapter lost class based instantiation */
2185         if (adapter->class == I2C_CLASS_DEPRECATED) {
2186                 dev_dbg(&adapter->dev,
2187                         "This adapter dropped support for I2C classes and won't auto-detect %s devices anymore. "
2188                         "If you need it, check 'Documentation/i2c/instantiating-devices.rst' for alternatives.\n",
2189                         driver->driver.name);
2190                 return 0;
2191         }
2192
2193         /* Stop here if the classes do not match */
2194         if (!(adapter->class & driver->class))
2195                 return 0;
2196
2197         /* Set up a temporary client to help detect callback */
2198         temp_client = kzalloc(sizeof(struct i2c_client), GFP_KERNEL);
2199         if (!temp_client)
2200                 return -ENOMEM;
2201         temp_client->adapter = adapter;
2202
2203         for (i = 0; address_list[i] != I2C_CLIENT_END; i += 1) {
2204                 dev_dbg(&adapter->dev,
2205                         "found normal entry for adapter %d, addr 0x%02x\n",
2206                         adap_id, address_list[i]);
2207                 temp_client->addr = address_list[i];
2208                 err = i2c_detect_address(temp_client, driver);
2209                 if (unlikely(err))
2210                         break;
2211         }
2212
2213         kfree(temp_client);
2214         return err;
2215 }
2216
2217 int i2c_probe_func_quick_read(struct i2c_adapter *adap, unsigned short addr)
2218 {
2219         return i2c_smbus_xfer(adap, addr, 0, I2C_SMBUS_READ, 0,
2220                               I2C_SMBUS_QUICK, NULL) >= 0;
2221 }
2222 EXPORT_SYMBOL_GPL(i2c_probe_func_quick_read);
2223
2224 struct i2c_client *
2225 i2c_new_scanned_device(struct i2c_adapter *adap,
2226                        struct i2c_board_info *info,
2227                        unsigned short const *addr_list,
2228                        int (*probe)(struct i2c_adapter *adap, unsigned short addr))
2229 {
2230         int i;
2231
2232         if (!probe)
2233                 probe = i2c_default_probe;
2234
2235         for (i = 0; addr_list[i] != I2C_CLIENT_END; i++) {
2236                 /* Check address validity */
2237                 if (i2c_check_7bit_addr_validity_strict(addr_list[i]) < 0) {
2238                         dev_warn(&adap->dev, "Invalid 7-bit address 0x%02x\n",
2239                                  addr_list[i]);
2240                         continue;
2241                 }
2242
2243                 /* Check address availability (7 bit, no need to encode flags) */
2244                 if (i2c_check_addr_busy(adap, addr_list[i])) {
2245                         dev_dbg(&adap->dev,
2246                                 "Address 0x%02x already in use, not probing\n",
2247                                 addr_list[i]);
2248                         continue;
2249                 }
2250
2251                 /* Test address responsiveness */
2252                 if (probe(adap, addr_list[i]))
2253                         break;
2254         }
2255
2256         if (addr_list[i] == I2C_CLIENT_END) {
2257                 dev_dbg(&adap->dev, "Probing failed, no device found\n");
2258                 return ERR_PTR(-ENODEV);
2259         }
2260
2261         info->addr = addr_list[i];
2262         return i2c_new_client_device(adap, info);
2263 }
2264 EXPORT_SYMBOL_GPL(i2c_new_scanned_device);
2265
2266 struct i2c_client *
2267 i2c_new_probed_device(struct i2c_adapter *adap,
2268                       struct i2c_board_info *info,
2269                       unsigned short const *addr_list,
2270                       int (*probe)(struct i2c_adapter *adap, unsigned short addr))
2271 {
2272         struct i2c_client *client;
2273
2274         client = i2c_new_scanned_device(adap, info, addr_list, probe);
2275         return IS_ERR(client) ? NULL : client;
2276 }
2277 EXPORT_SYMBOL_GPL(i2c_new_probed_device);
2278
2279 struct i2c_adapter *i2c_get_adapter(int nr)
2280 {
2281         struct i2c_adapter *adapter;
2282
2283         mutex_lock(&core_lock);
2284         adapter = idr_find(&i2c_adapter_idr, nr);
2285         if (!adapter)
2286                 goto exit;
2287
2288         if (try_module_get(adapter->owner))
2289                 get_device(&adapter->dev);
2290         else
2291                 adapter = NULL;
2292
2293  exit:
2294         mutex_unlock(&core_lock);
2295         return adapter;
2296 }
2297 EXPORT_SYMBOL(i2c_get_adapter);
2298
2299 void i2c_put_adapter(struct i2c_adapter *adap)
2300 {
2301         if (!adap)
2302                 return;
2303
2304         put_device(&adap->dev);
2305         module_put(adap->owner);
2306 }
2307 EXPORT_SYMBOL(i2c_put_adapter);
2308
2309 /**
2310  * i2c_get_dma_safe_msg_buf() - get a DMA safe buffer for the given i2c_msg
2311  * @msg: the message to be checked
2312  * @threshold: the minimum number of bytes for which using DMA makes sense.
2313  *             Should at least be 1.
2314  *
2315  * Return: NULL if a DMA safe buffer was not obtained. Use msg->buf with PIO.
2316  *         Or a valid pointer to be used with DMA. After use, release it by
2317  *         calling i2c_put_dma_safe_msg_buf().
2318  *
2319  * This function must only be called from process context!
2320  */
2321 u8 *i2c_get_dma_safe_msg_buf(struct i2c_msg *msg, unsigned int threshold)
2322 {
2323         /* also skip 0-length msgs for bogus thresholds of 0 */
2324         if (!threshold)
2325                 pr_debug("DMA buffer for addr=0x%02x with length 0 is bogus\n",
2326                          msg->addr);
2327         if (msg->len < threshold || msg->len == 0)
2328                 return NULL;
2329
2330         if (msg->flags & I2C_M_DMA_SAFE)
2331                 return msg->buf;
2332
2333         pr_debug("using bounce buffer for addr=0x%02x, len=%d\n",
2334                  msg->addr, msg->len);
2335
2336         if (msg->flags & I2C_M_RD)
2337                 return kzalloc(msg->len, GFP_KERNEL);
2338         else
2339                 return kmemdup(msg->buf, msg->len, GFP_KERNEL);
2340 }
2341 EXPORT_SYMBOL_GPL(i2c_get_dma_safe_msg_buf);
2342
2343 /**
2344  * i2c_put_dma_safe_msg_buf - release DMA safe buffer and sync with i2c_msg
2345  * @buf: the buffer obtained from i2c_get_dma_safe_msg_buf(). May be NULL.
2346  * @msg: the message which the buffer corresponds to
2347  * @xferred: bool saying if the message was transferred
2348  */
2349 void i2c_put_dma_safe_msg_buf(u8 *buf, struct i2c_msg *msg, bool xferred)
2350 {
2351         if (!buf || buf == msg->buf)
2352                 return;
2353
2354         if (xferred && msg->flags & I2C_M_RD)
2355                 memcpy(msg->buf, buf, msg->len);
2356
2357         kfree(buf);
2358 }
2359 EXPORT_SYMBOL_GPL(i2c_put_dma_safe_msg_buf);
2360
2361 MODULE_AUTHOR("Simon G. Vogl <simon@tk.uni-linz.ac.at>");
2362 MODULE_DESCRIPTION("I2C-Bus main module");
2363 MODULE_LICENSE("GPL");