xref: /linux/drivers/parport/share.c (revision ef15ccbb3e8640a723c42ad90eaf81d66ae02017)
1 /*
2  * Parallel-port resource manager code.
3  *
4  * Authors: David Campbell <campbell@tirian.che.curtin.edu.au>
5  *          Tim Waugh <tim@cyberelk.demon.co.uk>
6  *          Jose Renau <renau@acm.org>
7  *          Philip Blundell <philb@gnu.org>
8  *	    Andrea Arcangeli
9  *
10  * based on work by Grant Guenther <grant@torque.net>
11  *          and Philip Blundell
12  *
13  * Any part of this program may be used in documents licensed under
14  * the GNU Free Documentation License, Version 1.1 or any later version
15  * published by the Free Software Foundation.
16  */
17 
18 #undef PARPORT_DEBUG_SHARING		/* undef for production */
19 
20 #include <linux/module.h>
21 #include <linux/string.h>
22 #include <linux/threads.h>
23 #include <linux/parport.h>
24 #include <linux/delay.h>
25 #include <linux/errno.h>
26 #include <linux/interrupt.h>
27 #include <linux/ioport.h>
28 #include <linux/kernel.h>
29 #include <linux/slab.h>
30 #include <linux/sched/signal.h>
31 #include <linux/kmod.h>
32 #include <linux/device.h>
33 
34 #include <linux/spinlock.h>
35 #include <linux/mutex.h>
36 #include <asm/irq.h>
37 
38 #undef PARPORT_PARANOID
39 
40 #define PARPORT_DEFAULT_TIMESLICE	(HZ/5)
41 
42 unsigned long parport_default_timeslice = PARPORT_DEFAULT_TIMESLICE;
43 int parport_default_spintime =  DEFAULT_SPIN_TIME;
44 
45 static LIST_HEAD(portlist);
46 static DEFINE_SPINLOCK(parportlist_lock);
47 
48 /* list of all allocated ports, sorted by ->number */
49 static LIST_HEAD(all_ports);
50 static DEFINE_SPINLOCK(full_list_lock);
51 
52 static DEFINE_MUTEX(registration_lock);
53 
54 /* What you can do to a port that's gone away.. */
55 static void dead_write_lines(struct parport *p, unsigned char b){}
56 static unsigned char dead_read_lines(struct parport *p) { return 0; }
57 static unsigned char dead_frob_lines(struct parport *p, unsigned char b,
58 			     unsigned char c) { return 0; }
59 static void dead_onearg(struct parport *p){}
60 static void dead_initstate(struct pardevice *d, struct parport_state *s) { }
61 static void dead_state(struct parport *p, struct parport_state *s) { }
62 static size_t dead_write(struct parport *p, const void *b, size_t l, int f)
63 { return 0; }
64 static size_t dead_read(struct parport *p, void *b, size_t l, int f)
65 { return 0; }
66 static struct parport_operations dead_ops = {
67 	.write_data	= dead_write_lines,	/* data */
68 	.read_data	= dead_read_lines,
69 
70 	.write_control	= dead_write_lines,	/* control */
71 	.read_control	= dead_read_lines,
72 	.frob_control	= dead_frob_lines,
73 
74 	.read_status	= dead_read_lines,	/* status */
75 
76 	.enable_irq	= dead_onearg,		/* enable_irq */
77 	.disable_irq	= dead_onearg,		/* disable_irq */
78 
79 	.data_forward	= dead_onearg,		/* data_forward */
80 	.data_reverse	= dead_onearg,		/* data_reverse */
81 
82 	.init_state	= dead_initstate,	/* init_state */
83 	.save_state	= dead_state,
84 	.restore_state	= dead_state,
85 
86 	.epp_write_data	= dead_write,		/* epp */
87 	.epp_read_data	= dead_read,
88 	.epp_write_addr	= dead_write,
89 	.epp_read_addr	= dead_read,
90 
91 	.ecp_write_data	= dead_write,		/* ecp */
92 	.ecp_read_data	= dead_read,
93 	.ecp_write_addr	= dead_write,
94 
95 	.compat_write_data	= dead_write,	/* compat */
96 	.nibble_read_data	= dead_read,	/* nibble */
97 	.byte_read_data		= dead_read,	/* byte */
98 
99 	.owner		= NULL,
100 };
101 
102 static struct device_type parport_device_type = {
103 	.name = "parport",
104 };
105 
106 static int is_parport(struct device *dev)
107 {
108 	return dev->type == &parport_device_type;
109 }
110 
111 static int parport_probe(struct device *dev)
112 {
113 	struct parport_driver *drv;
114 
115 	if (is_parport(dev))
116 		return -ENODEV;
117 
118 	drv = to_parport_driver(dev->driver);
119 	if (!drv->probe) {
120 		/* if driver has not defined a custom probe */
121 		struct pardevice *par_dev = to_pardevice(dev);
122 
123 		if (strcmp(par_dev->name, drv->name))
124 			return -ENODEV;
125 		return 0;
126 	}
127 	/* if driver defined its own probe */
128 	return drv->probe(to_pardevice(dev));
129 }
130 
131 static const struct bus_type parport_bus_type = {
132 	.name = "parport",
133 	.probe = parport_probe,
134 };
135 
136 int parport_bus_init(void)
137 {
138 	return bus_register(&parport_bus_type);
139 }
140 
141 void parport_bus_exit(void)
142 {
143 	bus_unregister(&parport_bus_type);
144 }
145 
146 /*
147  * iterates through all the drivers registered with the bus and sends the port
148  * details to the match_port callback of the driver, so that the driver can
149  * know about the new port that just registered with the bus and decide if it
150  * wants to use this new port.
151  */
152 static int driver_check(struct device_driver *dev_drv, void *_port)
153 {
154 	struct parport *port = _port;
155 	struct parport_driver *drv = to_parport_driver(dev_drv);
156 
157 	if (drv->match_port)
158 		drv->match_port(port);
159 	return 0;
160 }
161 
162 /* Call attach(port) for each registered driver. */
163 static void attach_driver_chain(struct parport *port)
164 {
165 	/* caller has exclusive registration_lock */
166 
167 	/*
168 	 * call the driver_check function of the drivers registered in
169 	 * new device model
170 	 */
171 
172 	bus_for_each_drv(&parport_bus_type, NULL, port, driver_check);
173 }
174 
175 static int driver_detach(struct device_driver *_drv, void *_port)
176 {
177 	struct parport *port = _port;
178 	struct parport_driver *drv = to_parport_driver(_drv);
179 
180 	if (drv->detach)
181 		drv->detach(port);
182 	return 0;
183 }
184 
185 /* Call detach(port) for each registered driver. */
186 static void detach_driver_chain(struct parport *port)
187 {
188 	/* caller has exclusive registration_lock */
189 
190 	/*
191 	 * call the detach function of the drivers registered in
192 	 * new device model
193 	 */
194 
195 	bus_for_each_drv(&parport_bus_type, NULL, port, driver_detach);
196 }
197 
198 /* Ask kmod for some lowlevel drivers. */
199 static void get_lowlevel_driver(void)
200 {
201 	/*
202 	 * There is no actual module called this: you should set
203 	 * up an alias for modutils.
204 	 */
205 	request_module("parport_lowlevel");
206 }
207 
208 /*
209  * iterates through all the devices connected to the bus and sends the device
210  * details to the match_port callback of the driver, so that the driver can
211  * know what are all the ports that are connected to the bus and choose the
212  * port to which it wants to register its device.
213  */
214 static int port_check(struct device *dev, void *dev_drv)
215 {
216 	struct parport_driver *drv = dev_drv;
217 	struct parport *port;
218 
219 	/* only send ports, do not send other devices connected to bus */
220 	if (is_parport(dev)) {
221 		port = to_parport_dev(dev);
222 		if (test_bit(PARPORT_ANNOUNCED, &port->devflags))
223 			drv->match_port(port);
224 	}
225 	return 0;
226 }
227 
228 /*
229  * Iterates through all the devices connected to the bus and return 1
230  * if the device is a parallel port.
231  */
232 
233 static int port_detect(struct device *dev, void *dev_drv)
234 {
235 	if (is_parport(dev))
236 		return 1;
237 	return 0;
238 }
239 
240 /**
241  *	__parport_register_driver - register a parallel port device driver
242  *	@drv: structure describing the driver
243  *	@owner: owner module of drv
244  *	@mod_name: module name string
245  *
246  *	This can be called by a parallel port device driver in order
247  *	to receive notifications about ports being found in the
248  *	system, as well as ports no longer available.
249  *
250  *	If devmodel is true then the new device model is used
251  *	for registration.
252  *
253  *	The @drv structure is allocated by the caller and must not be
254  *	deallocated until after calling parport_unregister_driver().
255  *
256  *	If using the non device model:
257  *	The driver's attach() function may block.  The port that
258  *	attach() is given will be valid for the duration of the
259  *	callback, but if the driver wants to take a copy of the
260  *	pointer it must call parport_get_port() to do so.  Calling
261  *	parport_register_device() on that port will do this for you.
262  *
263  *	The driver's detach() function may block.  The port that
264  *	detach() is given will be valid for the duration of the
265  *	callback, but if the driver wants to take a copy of the
266  *	pointer it must call parport_get_port() to do so.
267  *
268  *
269  *	Returns 0 on success. The non device model will always succeeds.
270  *	but the new device model can fail and will return the error code.
271  **/
272 
273 int __parport_register_driver(struct parport_driver *drv, struct module *owner,
274 			      const char *mod_name)
275 {
276 	/* using device model */
277 	int ret;
278 
279 	/* initialize common driver fields */
280 	drv->driver.name = drv->name;
281 	drv->driver.bus = &parport_bus_type;
282 	drv->driver.owner = owner;
283 	drv->driver.mod_name = mod_name;
284 	ret = driver_register(&drv->driver);
285 	if (ret)
286 		return ret;
287 
288 	/*
289 	 * check if bus has any parallel port registered, if
290 	 * none is found then load the lowlevel driver.
291 	 */
292 	ret = bus_for_each_dev(&parport_bus_type, NULL, NULL,
293 			       port_detect);
294 	if (!ret)
295 		get_lowlevel_driver();
296 
297 	mutex_lock(&registration_lock);
298 	if (drv->match_port)
299 		bus_for_each_dev(&parport_bus_type, NULL, drv,
300 				 port_check);
301 	mutex_unlock(&registration_lock);
302 
303 	return 0;
304 }
305 EXPORT_SYMBOL(__parport_register_driver);
306 
307 static int port_detach(struct device *dev, void *_drv)
308 {
309 	struct parport_driver *drv = _drv;
310 
311 	if (is_parport(dev) && drv->detach)
312 		drv->detach(to_parport_dev(dev));
313 
314 	return 0;
315 }
316 
317 /**
318  *	parport_unregister_driver - deregister a parallel port device driver
319  *	@drv: structure describing the driver that was given to
320  *	      parport_register_driver()
321  *
322  *	This should be called by a parallel port device driver that
323  *	has registered itself using parport_register_driver() when it
324  *	is about to be unloaded.
325  *
326  *	When it returns, the driver's attach() routine will no longer
327  *	be called, and for each port that attach() was called for, the
328  *	detach() routine will have been called.
329  *
330  *	All the driver's attach() and detach() calls are guaranteed to have
331  *	finished by the time this function returns.
332  **/
333 
334 void parport_unregister_driver(struct parport_driver *drv)
335 {
336 	mutex_lock(&registration_lock);
337 	bus_for_each_dev(&parport_bus_type, NULL, drv, port_detach);
338 	driver_unregister(&drv->driver);
339 	mutex_unlock(&registration_lock);
340 }
341 EXPORT_SYMBOL(parport_unregister_driver);
342 
343 static void free_port(struct device *dev)
344 {
345 	int d;
346 	struct parport *port = to_parport_dev(dev);
347 
348 	spin_lock(&full_list_lock);
349 	list_del(&port->full_list);
350 	spin_unlock(&full_list_lock);
351 	for (d = 0; d < 5; d++) {
352 		kfree(port->probe_info[d].class_name);
353 		kfree(port->probe_info[d].mfr);
354 		kfree(port->probe_info[d].model);
355 		kfree(port->probe_info[d].cmdset);
356 		kfree(port->probe_info[d].description);
357 	}
358 
359 	kfree(port);
360 }
361 
362 /**
363  *	parport_get_port - increment a port's reference count
364  *	@port: the port
365  *
366  *	This ensures that a struct parport pointer remains valid
367  *	until the matching parport_put_port() call.
368  **/
369 
370 struct parport *parport_get_port(struct parport *port)
371 {
372 	struct device *dev = get_device(&port->bus_dev);
373 
374 	return to_parport_dev(dev);
375 }
376 EXPORT_SYMBOL(parport_get_port);
377 
378 void parport_del_port(struct parport *port)
379 {
380 	device_unregister(&port->bus_dev);
381 }
382 EXPORT_SYMBOL(parport_del_port);
383 
384 /**
385  *	parport_put_port - decrement a port's reference count
386  *	@port: the port
387  *
388  *	This should be called once for each call to parport_get_port(),
389  *	once the port is no longer needed. When the reference count reaches
390  *	zero (port is no longer used), free_port is called.
391  **/
392 
393 void parport_put_port(struct parport *port)
394 {
395 	put_device(&port->bus_dev);
396 }
397 EXPORT_SYMBOL(parport_put_port);
398 
399 /**
400  *	parport_register_port - register a parallel port
401  *	@base: base I/O address
402  *	@irq: IRQ line
403  *	@dma: DMA channel
404  *	@ops: pointer to the port driver's port operations structure
405  *
406  *	When a parallel port (lowlevel) driver finds a port that
407  *	should be made available to parallel port device drivers, it
408  *	should call parport_register_port().  The @base, @irq, and
409  *	@dma parameters are for the convenience of port drivers, and
410  *	for ports where they aren't meaningful needn't be set to
411  *	anything special.  They can be altered afterwards by adjusting
412  *	the relevant members of the parport structure that is returned
413  *	and represents the port.  They should not be tampered with
414  *	after calling parport_announce_port, however.
415  *
416  *	If there are parallel port device drivers in the system that
417  *	have registered themselves using parport_register_driver(),
418  *	they are not told about the port at this time; that is done by
419  *	parport_announce_port().
420  *
421  *	The @ops structure is allocated by the caller, and must not be
422  *	deallocated before calling parport_remove_port().
423  *
424  *	If there is no memory to allocate a new parport structure,
425  *	this function will return %NULL.
426  **/
427 
428 struct parport *parport_register_port(unsigned long base, int irq, int dma,
429 				      struct parport_operations *ops)
430 {
431 	struct list_head *l;
432 	struct parport *tmp;
433 	int num;
434 	int device;
435 	int ret;
436 
437 	tmp = kzalloc_obj(struct parport);
438 	if (!tmp)
439 		return NULL;
440 
441 	/* Init our structure */
442 	tmp->base = base;
443 	tmp->irq = irq;
444 	tmp->dma = dma;
445 	tmp->muxport = tmp->daisy = tmp->muxsel = -1;
446 	INIT_LIST_HEAD(&tmp->list);
447 	tmp->ops = ops;
448 	tmp->physport = tmp;
449 	rwlock_init(&tmp->cad_lock);
450 	spin_lock_init(&tmp->waitlist_lock);
451 	spin_lock_init(&tmp->pardevice_lock);
452 	tmp->ieee1284.mode = IEEE1284_MODE_COMPAT;
453 	tmp->ieee1284.phase = IEEE1284_PH_FWD_IDLE;
454 	sema_init(&tmp->ieee1284.irq, 0);
455 	tmp->spintime = parport_default_spintime;
456 	atomic_set(&tmp->ref_count, 1);
457 
458 	/* Search for the lowest free parport number. */
459 
460 	spin_lock(&full_list_lock);
461 	num = 0;
462 	list_for_each(l, &all_ports) {
463 		struct parport *p = list_entry(l, struct parport, full_list);
464 
465 		if (p->number != num++)
466 			break;
467 	}
468 	tmp->portnum = tmp->number = num;
469 	list_add_tail(&tmp->full_list, l);
470 	spin_unlock(&full_list_lock);
471 
472 	/*
473 	 * Now that the portnum is known finish doing the Init.
474 	 */
475 	dev_set_name(&tmp->bus_dev, "parport%d", tmp->portnum);
476 	tmp->bus_dev.bus = &parport_bus_type;
477 	tmp->bus_dev.release = free_port;
478 	tmp->bus_dev.type = &parport_device_type;
479 
480 	tmp->name = dev_name(&tmp->bus_dev);
481 
482 	for (device = 0; device < 5; device++)
483 		/* assume the worst */
484 		tmp->probe_info[device].class = PARPORT_CLASS_LEGACY;
485 
486 	ret = device_register(&tmp->bus_dev);
487 	if (ret) {
488 		put_device(&tmp->bus_dev);
489 		return NULL;
490 	}
491 
492 	return tmp;
493 }
494 EXPORT_SYMBOL(parport_register_port);
495 
496 /**
497  *	parport_announce_port - tell device drivers about a parallel port
498  *	@port: parallel port to announce
499  *
500  *	After a port driver has registered a parallel port with
501  *	parport_register_port, and performed any necessary
502  *	initialisation or adjustments, it should call
503  *	parport_announce_port() in order to notify all device drivers
504  *	that have called parport_register_driver().  Their attach()
505  *	functions will be called, with @port as the parameter.
506  **/
507 
508 void parport_announce_port(struct parport *port)
509 {
510 	int i;
511 
512 #ifdef CONFIG_PARPORT_1284
513 	/* Analyse the IEEE1284.3 topology of the port. */
514 	parport_daisy_init(port);
515 #endif
516 
517 	if (!port->dev)
518 		pr_warn("%s: fix this legacy no-device port driver!\n",
519 			port->name);
520 
521 	parport_proc_register(port);
522 	mutex_lock(&registration_lock);
523 	spin_lock_irq(&parportlist_lock);
524 	list_add_tail(&port->list, &portlist);
525 	for (i = 1; i < 3; i++) {
526 		struct parport *slave = port->slaves[i-1];
527 		if (slave)
528 			list_add_tail(&slave->list, &portlist);
529 	}
530 	spin_unlock_irq(&parportlist_lock);
531 
532 	/* Let drivers know that new port(s) has arrived. */
533 	attach_driver_chain(port);
534 	for (i = 1; i < 3; i++) {
535 		struct parport *slave = port->slaves[i-1];
536 		if (slave)
537 			attach_driver_chain(slave);
538 	}
539 	set_bit(PARPORT_ANNOUNCED, &port->devflags);
540 	mutex_unlock(&registration_lock);
541 }
542 EXPORT_SYMBOL(parport_announce_port);
543 
544 /**
545  *	parport_remove_port - deregister a parallel port
546  *	@port: parallel port to deregister
547  *
548  *	When a parallel port driver is forcibly unloaded, or a
549  *	parallel port becomes inaccessible, the port driver must call
550  *	this function in order to deal with device drivers that still
551  *	want to use it.
552  *
553  *	The parport structure associated with the port has its
554  *	operations structure replaced with one containing 'null'
555  *	operations that return errors or just don't do anything.
556  *
557  *	Any drivers that have registered themselves using
558  *	parport_register_driver() are notified that the port is no
559  *	longer accessible by having their detach() routines called
560  *	with @port as the parameter.
561  **/
562 
563 void parport_remove_port(struct parport *port)
564 {
565 	int i;
566 
567 	mutex_lock(&registration_lock);
568 
569 	clear_bit(PARPORT_ANNOUNCED, &port->devflags);
570 
571 	/* Spread the word. */
572 	detach_driver_chain(port);
573 
574 #ifdef CONFIG_PARPORT_1284
575 	/* Forget the IEEE1284.3 topology of the port. */
576 	parport_daisy_fini(port);
577 	for (i = 1; i < 3; i++) {
578 		struct parport *slave = port->slaves[i-1];
579 		if (!slave)
580 			continue;
581 		detach_driver_chain(slave);
582 		parport_daisy_fini(slave);
583 	}
584 #endif
585 
586 	port->ops = &dead_ops;
587 	spin_lock(&parportlist_lock);
588 	list_del_init(&port->list);
589 	for (i = 1; i < 3; i++) {
590 		struct parport *slave = port->slaves[i-1];
591 		if (slave)
592 			list_del_init(&slave->list);
593 	}
594 	spin_unlock(&parportlist_lock);
595 
596 	mutex_unlock(&registration_lock);
597 
598 	parport_proc_unregister(port);
599 
600 	for (i = 1; i < 3; i++) {
601 		struct parport *slave = port->slaves[i-1];
602 		if (slave)
603 			parport_put_port(slave);
604 	}
605 }
606 EXPORT_SYMBOL(parport_remove_port);
607 
608 static void free_pardevice(struct device *dev)
609 {
610 	struct pardevice *par_dev = to_pardevice(dev);
611 
612 	kfree_const(par_dev->name);
613 	kfree(par_dev);
614 }
615 
616 /**
617  *	parport_register_dev_model - register a device on a parallel port
618  *	@port: port to which the device is attached
619  *	@name: a name to refer to the device
620  *	@par_dev_cb: struct containing callbacks
621  *	@id: device number to be given to the device
622  *
623  *	This function, called by parallel port device drivers,
624  *	declares that a device is connected to a port, and tells the
625  *	system all it needs to know.
626  *
627  *	The struct pardev_cb contains pointer to callbacks. preemption
628  *	callback function, @preempt, is called when this device driver
629  *	has claimed access to the port but another device driver wants
630  *	to use it.  It is given, @private, as its parameter, and should
631  *	return zero if it is willing for the system to release the port
632  *	to another driver on its behalf. If it wants to keep control of
633  *	the port it should return non-zero, and no action will be taken.
634  *	It is good manners for the driver to try to release the port at
635  *	the earliest opportunity after its preemption callback rejects a
636  *	preemption attempt. Note that if a preemption callback is happy
637  *	for preemption to go ahead, there is no need to release the
638  *	port; it is done automatically. This function may not block, as
639  *	it may be called from interrupt context. If the device driver
640  *	does not support preemption, @preempt can be %NULL.
641  *
642  *	The wake-up ("kick") callback function, @wakeup, is called when
643  *	the port is available to be claimed for exclusive access; that
644  *	is, parport_claim() is guaranteed to succeed when called from
645  *	inside the wake-up callback function.  If the driver wants to
646  *	claim the port it should do so; otherwise, it need not take
647  *	any action.  This function may not block, as it may be called
648  *	from interrupt context.  If the device driver does not want to
649  *	be explicitly invited to claim the port in this way, @wakeup can
650  *	be %NULL.
651  *
652  *	The interrupt handler, @irq_func, is called when an interrupt
653  *	arrives from the parallel port.  Note that if a device driver
654  *	wants to use interrupts it should use parport_enable_irq(),
655  *	and can also check the irq member of the parport structure
656  *	representing the port.
657  *
658  *	The parallel port (lowlevel) driver is the one that has called
659  *	request_irq() and whose interrupt handler is called first.
660  *	This handler does whatever needs to be done to the hardware to
661  *	acknowledge the interrupt (for PC-style ports there is nothing
662  *	special to be done).  It then tells the IEEE 1284 code about
663  *	the interrupt, which may involve reacting to an IEEE 1284
664  *	event depending on the current IEEE 1284 phase.  After this,
665  *	it calls @irq_func.  Needless to say, @irq_func will be called
666  *	from interrupt context, and may not block.
667  *
668  *	The %PARPORT_DEV_EXCL flag is for preventing port sharing, and
669  *	so should only be used when sharing the port with other device
670  *	drivers is impossible and would lead to incorrect behaviour.
671  *	Use it sparingly!  Normally, @flags will be zero.
672  *
673  *	This function returns a pointer to a structure that represents
674  *	the device on the port, or %NULL if there is not enough memory
675  *	to allocate space for that structure.
676  **/
677 
678 struct pardevice *
679 parport_register_dev_model(struct parport *port, const char *name,
680 			   const struct pardev_cb *par_dev_cb, int id)
681 {
682 	struct pardevice *par_dev;
683 	const char *devname;
684 	int ret;
685 
686 	if (port->physport->flags & PARPORT_FLAG_EXCL) {
687 		/* An exclusive device is registered. */
688 		pr_err("%s: no more devices allowed\n", port->name);
689 		return NULL;
690 	}
691 
692 	if (par_dev_cb->flags & PARPORT_DEV_LURK) {
693 		if (!par_dev_cb->preempt || !par_dev_cb->wakeup) {
694 			pr_info("%s: refused to register lurking device (%s) without callbacks\n",
695 				port->name, name);
696 			return NULL;
697 		}
698 	}
699 
700 	if (par_dev_cb->flags & PARPORT_DEV_EXCL) {
701 		if (port->physport->devices) {
702 			/*
703 			 * If a device is already registered and this new
704 			 * device wants exclusive access, then no need to
705 			 * continue as we can not grant exclusive access to
706 			 * this device.
707 			 */
708 			pr_err("%s: cannot grant exclusive access for device %s\n",
709 			       port->name, name);
710 			return NULL;
711 		}
712 	}
713 
714 	if (!try_module_get(port->ops->owner))
715 		return NULL;
716 
717 	parport_get_port(port);
718 
719 	par_dev = kzalloc_obj(*par_dev);
720 	if (!par_dev)
721 		goto err_put_port;
722 
723 	par_dev->state = kzalloc_obj(*par_dev->state);
724 	if (!par_dev->state)
725 		goto err_put_par_dev;
726 
727 	devname = kstrdup_const(name, GFP_KERNEL);
728 	if (!devname)
729 		goto err_free_par_dev;
730 
731 	par_dev->name = devname;
732 	par_dev->port = port;
733 	par_dev->daisy = -1;
734 	par_dev->preempt = par_dev_cb->preempt;
735 	par_dev->wakeup = par_dev_cb->wakeup;
736 	par_dev->private = par_dev_cb->private;
737 	par_dev->flags = par_dev_cb->flags;
738 	par_dev->irq_func = par_dev_cb->irq_func;
739 	par_dev->waiting = 0;
740 	par_dev->timeout = 5 * HZ;
741 
742 	par_dev->dev.parent = &port->bus_dev;
743 	par_dev->dev.bus = &parport_bus_type;
744 	ret = dev_set_name(&par_dev->dev, "%s.%d", devname, id);
745 	if (ret)
746 		goto err_free_devname;
747 	par_dev->dev.release = free_pardevice;
748 	par_dev->devmodel = true;
749 	ret = device_register(&par_dev->dev);
750 	if (ret) {
751 		kfree(par_dev->state);
752 		put_device(&par_dev->dev);
753 		goto err_put_port;
754 	}
755 
756 	/* Chain this onto the list */
757 	par_dev->prev = NULL;
758 	/*
759 	 * This function must not run from an irq handler so we don' t need
760 	 * to clear irq on the local CPU. -arca
761 	 */
762 	spin_lock(&port->physport->pardevice_lock);
763 
764 	if (par_dev_cb->flags & PARPORT_DEV_EXCL) {
765 		if (port->physport->devices) {
766 			spin_unlock(&port->physport->pardevice_lock);
767 			pr_debug("%s: cannot grant exclusive access for device %s\n",
768 				 port->name, name);
769 			kfree(par_dev->state);
770 			device_unregister(&par_dev->dev);
771 			goto err_put_port;
772 		}
773 		port->flags |= PARPORT_FLAG_EXCL;
774 	}
775 
776 	par_dev->next = port->physport->devices;
777 	wmb();	/*
778 		 * Make sure that tmp->next is written before it's
779 		 * added to the list; see comments marked 'no locking
780 		 * required'
781 		 */
782 	if (port->physport->devices)
783 		port->physport->devices->prev = par_dev;
784 	port->physport->devices = par_dev;
785 	spin_unlock(&port->physport->pardevice_lock);
786 
787 	init_waitqueue_head(&par_dev->wait_q);
788 	par_dev->timeslice = parport_default_timeslice;
789 	par_dev->waitnext = NULL;
790 	par_dev->waitprev = NULL;
791 
792 	/*
793 	 * This has to be run as last thing since init_state may need other
794 	 * pardevice fields. -arca
795 	 */
796 	port->ops->init_state(par_dev, par_dev->state);
797 	if (!test_and_set_bit(PARPORT_DEVPROC_REGISTERED, &port->devflags)) {
798 		port->proc_device = par_dev;
799 		parport_device_proc_register(par_dev);
800 	}
801 
802 	return par_dev;
803 
804 err_free_devname:
805 	kfree_const(devname);
806 err_free_par_dev:
807 	kfree(par_dev->state);
808 err_put_par_dev:
809 	if (!par_dev->devmodel)
810 		kfree(par_dev);
811 err_put_port:
812 	parport_put_port(port);
813 	module_put(port->ops->owner);
814 
815 	return NULL;
816 }
817 EXPORT_SYMBOL(parport_register_dev_model);
818 
819 /**
820  *	parport_unregister_device - deregister a device on a parallel port
821  *	@dev: pointer to structure representing device
822  *
823  *	This undoes the effect of parport_register_device().
824  **/
825 
826 void parport_unregister_device(struct pardevice *dev)
827 {
828 	struct parport *port;
829 
830 #ifdef PARPORT_PARANOID
831 	if (!dev) {
832 		pr_err("%s: passed NULL\n", __func__);
833 		return;
834 	}
835 #endif
836 
837 	port = dev->port->physport;
838 
839 	if (port->proc_device == dev) {
840 		port->proc_device = NULL;
841 		clear_bit(PARPORT_DEVPROC_REGISTERED, &port->devflags);
842 		parport_device_proc_unregister(dev);
843 	}
844 
845 	if (port->cad == dev) {
846 		printk(KERN_DEBUG "%s: %s forgot to release port\n",
847 		       port->name, dev->name);
848 		parport_release(dev);
849 	}
850 
851 	spin_lock(&port->pardevice_lock);
852 	if (dev->next)
853 		dev->next->prev = dev->prev;
854 	if (dev->prev)
855 		dev->prev->next = dev->next;
856 	else
857 		port->devices = dev->next;
858 
859 	if (dev->flags & PARPORT_DEV_EXCL)
860 		port->flags &= ~PARPORT_FLAG_EXCL;
861 
862 	spin_unlock(&port->pardevice_lock);
863 
864 	/*
865 	 * Make sure we haven't left any pointers around in the wait
866 	 * list.
867 	 */
868 	spin_lock_irq(&port->waitlist_lock);
869 	if (dev->waitprev || dev->waitnext || port->waithead == dev) {
870 		if (dev->waitprev)
871 			dev->waitprev->waitnext = dev->waitnext;
872 		else
873 			port->waithead = dev->waitnext;
874 		if (dev->waitnext)
875 			dev->waitnext->waitprev = dev->waitprev;
876 		else
877 			port->waittail = dev->waitprev;
878 	}
879 	spin_unlock_irq(&port->waitlist_lock);
880 
881 	kfree(dev->state);
882 	device_unregister(&dev->dev);
883 
884 	module_put(port->ops->owner);
885 	parport_put_port(port);
886 }
887 EXPORT_SYMBOL(parport_unregister_device);
888 
889 /**
890  *	parport_find_number - find a parallel port by number
891  *	@number: parallel port number
892  *
893  *	This returns the parallel port with the specified number, or
894  *	%NULL if there is none.
895  *
896  *	There is an implicit parport_get_port() done already; to throw
897  *	away the reference to the port that parport_find_number()
898  *	gives you, use parport_put_port().
899  */
900 
901 struct parport *parport_find_number(int number)
902 {
903 	struct parport *port, *result = NULL;
904 
905 	if (list_empty(&portlist))
906 		get_lowlevel_driver();
907 
908 	spin_lock(&parportlist_lock);
909 	list_for_each_entry(port, &portlist, list) {
910 		if (port->number == number) {
911 			result = parport_get_port(port);
912 			break;
913 		}
914 	}
915 	spin_unlock(&parportlist_lock);
916 	return result;
917 }
918 EXPORT_SYMBOL(parport_find_number);
919 
920 /**
921  *	parport_find_base - find a parallel port by base address
922  *	@base: base I/O address
923  *
924  *	This returns the parallel port with the specified base
925  *	address, or %NULL if there is none.
926  *
927  *	There is an implicit parport_get_port() done already; to throw
928  *	away the reference to the port that parport_find_base()
929  *	gives you, use parport_put_port().
930  */
931 
932 struct parport *parport_find_base(unsigned long base)
933 {
934 	struct parport *port, *result = NULL;
935 
936 	if (list_empty(&portlist))
937 		get_lowlevel_driver();
938 
939 	spin_lock(&parportlist_lock);
940 	list_for_each_entry(port, &portlist, list) {
941 		if (port->base == base) {
942 			result = parport_get_port(port);
943 			break;
944 		}
945 	}
946 	spin_unlock(&parportlist_lock);
947 	return result;
948 }
949 EXPORT_SYMBOL(parport_find_base);
950 
951 /**
952  *	parport_claim - claim access to a parallel port device
953  *	@dev: pointer to structure representing a device on the port
954  *
955  *	This function will not block and so can be used from interrupt
956  *	context.  If parport_claim() succeeds in claiming access to
957  *	the port it returns zero and the port is available to use.  It
958  *	may fail (returning non-zero) if the port is in use by another
959  *	driver and that driver is not willing to relinquish control of
960  *	the port.
961  **/
962 
963 int parport_claim(struct pardevice *dev)
964 {
965 	struct pardevice *oldcad;
966 	struct parport *port = dev->port->physport;
967 	unsigned long flags;
968 
969 	if (port->cad == dev) {
970 		pr_info("%s: %s already owner\n", dev->port->name, dev->name);
971 		return 0;
972 	}
973 
974 	/* Preempt any current device */
975 	write_lock_irqsave(&port->cad_lock, flags);
976 	oldcad = port->cad;
977 	if (oldcad) {
978 		if (oldcad->preempt) {
979 			if (oldcad->preempt(oldcad->private))
980 				goto blocked;
981 			port->ops->save_state(port, dev->state);
982 		} else
983 			goto blocked;
984 
985 		if (port->cad != oldcad) {
986 			/*
987 			 * I think we'll actually deadlock rather than
988 			 * get here, but just in case..
989 			 */
990 			pr_warn("%s: %s released port when preempted!\n",
991 				port->name, oldcad->name);
992 			if (port->cad)
993 				goto blocked;
994 		}
995 	}
996 
997 	/* Can't fail from now on, so mark ourselves as no longer waiting.  */
998 	if (dev->waiting & 1) {
999 		dev->waiting = 0;
1000 
1001 		/* Take ourselves out of the wait list again.  */
1002 		spin_lock_irq(&port->waitlist_lock);
1003 		if (dev->waitprev)
1004 			dev->waitprev->waitnext = dev->waitnext;
1005 		else
1006 			port->waithead = dev->waitnext;
1007 		if (dev->waitnext)
1008 			dev->waitnext->waitprev = dev->waitprev;
1009 		else
1010 			port->waittail = dev->waitprev;
1011 		spin_unlock_irq(&port->waitlist_lock);
1012 		dev->waitprev = dev->waitnext = NULL;
1013 	}
1014 
1015 	/* Now we do the change of devices */
1016 	port->cad = dev;
1017 
1018 #ifdef CONFIG_PARPORT_1284
1019 	/* If it's a mux port, select it. */
1020 	if (dev->port->muxport >= 0) {
1021 		/* FIXME */
1022 		port->muxsel = dev->port->muxport;
1023 	}
1024 
1025 	/* If it's a daisy chain device, select it. */
1026 	if (dev->daisy >= 0) {
1027 		/* This could be lazier. */
1028 		if (!parport_daisy_select(port, dev->daisy,
1029 					   IEEE1284_MODE_COMPAT))
1030 			port->daisy = dev->daisy;
1031 	}
1032 #endif /* IEEE1284.3 support */
1033 
1034 	/* Restore control registers */
1035 	port->ops->restore_state(port, dev->state);
1036 	write_unlock_irqrestore(&port->cad_lock, flags);
1037 	dev->time = jiffies;
1038 	return 0;
1039 
1040 blocked:
1041 	/*
1042 	 * If this is the first time we tried to claim the port, register an
1043 	 * interest.  This is only allowed for devices sleeping in
1044 	 * parport_claim_or_block(), or those with a wakeup function.
1045 	 */
1046 
1047 	/* The cad_lock is still held for writing here */
1048 	if (dev->waiting & 2 || dev->wakeup) {
1049 		spin_lock(&port->waitlist_lock);
1050 		if (test_and_set_bit(0, &dev->waiting) == 0) {
1051 			/* First add ourselves to the end of the wait list. */
1052 			dev->waitnext = NULL;
1053 			dev->waitprev = port->waittail;
1054 			if (port->waittail) {
1055 				port->waittail->waitnext = dev;
1056 				port->waittail = dev;
1057 			} else
1058 				port->waithead = port->waittail = dev;
1059 		}
1060 		spin_unlock(&port->waitlist_lock);
1061 	}
1062 	write_unlock_irqrestore(&port->cad_lock, flags);
1063 	return -EAGAIN;
1064 }
1065 EXPORT_SYMBOL(parport_claim);
1066 
1067 /**
1068  *	parport_claim_or_block - claim access to a parallel port device
1069  *	@dev: pointer to structure representing a device on the port
1070  *
1071  *	This behaves like parport_claim(), but will block if necessary
1072  *	to wait for the port to be free.  A return value of 1
1073  *	indicates that it slept; 0 means that it succeeded without
1074  *	needing to sleep.  A negative error code indicates failure.
1075  **/
1076 
1077 int parport_claim_or_block(struct pardevice *dev)
1078 {
1079 	int r;
1080 
1081 	/*
1082 	 * Signal to parport_claim() that we can wait even without a
1083 	 * wakeup function.
1084 	 */
1085 	dev->waiting = 2;
1086 
1087 	/* Try to claim the port.  If this fails, we need to sleep.  */
1088 	r = parport_claim(dev);
1089 	if (r == -EAGAIN) {
1090 #ifdef PARPORT_DEBUG_SHARING
1091 		printk(KERN_DEBUG "%s: parport_claim() returned -EAGAIN\n",
1092 		       dev->name);
1093 #endif
1094 		/*
1095 		 * FIXME!!! Use the proper locking for dev->waiting,
1096 		 * and make this use the "wait_event_interruptible()"
1097 		 * interfaces. The cli/sti that used to be here
1098 		 * did nothing.
1099 		 *
1100 		 * See also parport_release()
1101 		 */
1102 
1103 		/*
1104 		 * If dev->waiting is clear now, an interrupt
1105 		 * gave us the port and we would deadlock if we slept.
1106 		 */
1107 		if (dev->waiting) {
1108 			wait_event_interruptible(dev->wait_q,
1109 						 !dev->waiting);
1110 			if (signal_pending(current))
1111 				return -EINTR;
1112 			r = 1;
1113 		} else {
1114 			r = 0;
1115 #ifdef PARPORT_DEBUG_SHARING
1116 			printk(KERN_DEBUG "%s: didn't sleep in parport_claim_or_block()\n",
1117 			       dev->name);
1118 #endif
1119 		}
1120 
1121 #ifdef PARPORT_DEBUG_SHARING
1122 		if (dev->port->physport->cad != dev)
1123 			printk(KERN_DEBUG "%s: exiting parport_claim_or_block but %s owns port!\n",
1124 			       dev->name, dev->port->physport->cad ?
1125 			       dev->port->physport->cad->name : "nobody");
1126 #endif
1127 	}
1128 	dev->waiting = 0;
1129 	return r;
1130 }
1131 EXPORT_SYMBOL(parport_claim_or_block);
1132 
1133 /**
1134  *	parport_release - give up access to a parallel port device
1135  *	@dev: pointer to structure representing parallel port device
1136  *
1137  *	This function cannot fail, but it should not be called without
1138  *	the port claimed.  Similarly, if the port is already claimed
1139  *	you should not try claiming it again.
1140  **/
1141 
1142 void parport_release(struct pardevice *dev)
1143 {
1144 	struct parport *port = dev->port->physport;
1145 	struct pardevice *pd;
1146 	unsigned long flags;
1147 
1148 	/* Make sure that dev is the current device */
1149 	write_lock_irqsave(&port->cad_lock, flags);
1150 	if (port->cad != dev) {
1151 		write_unlock_irqrestore(&port->cad_lock, flags);
1152 		pr_warn("%s: %s tried to release parport when not owner\n",
1153 			port->name, dev->name);
1154 		return;
1155 	}
1156 
1157 #ifdef CONFIG_PARPORT_1284
1158 	/* If this is on a mux port, deselect it. */
1159 	if (dev->port->muxport >= 0) {
1160 		/* FIXME */
1161 		port->muxsel = -1;
1162 	}
1163 
1164 	/* If this is a daisy device, deselect it. */
1165 	if (dev->daisy >= 0) {
1166 		parport_daisy_deselect_all(port);
1167 		port->daisy = -1;
1168 	}
1169 #endif
1170 
1171 	port->cad = NULL;
1172 	write_unlock_irqrestore(&port->cad_lock, flags);
1173 
1174 	/* Save control registers */
1175 	port->ops->save_state(port, dev->state);
1176 
1177 	/*
1178 	 * If anybody is waiting, find out who's been there longest and
1179 	 * then wake them up. (Note: no locking required)
1180 	 */
1181 	/* !!! LOCKING IS NEEDED HERE */
1182 	for (pd = port->waithead; pd; pd = pd->waitnext) {
1183 		if (pd->waiting & 2) { /* sleeping in claim_or_block */
1184 			parport_claim(pd);
1185 			if (waitqueue_active(&pd->wait_q))
1186 				wake_up_interruptible(&pd->wait_q);
1187 			return;
1188 		} else if (pd->wakeup) {
1189 			pd->wakeup(pd->private);
1190 			if (dev->port->cad) /* racy but no matter */
1191 				return;
1192 		} else {
1193 			pr_err("%s: don't know how to wake %s\n",
1194 			       port->name, pd->name);
1195 		}
1196 	}
1197 
1198 	/*
1199 	 * Nobody was waiting, so walk the list to see if anyone is
1200 	 * interested in being woken up. (Note: no locking required)
1201 	 */
1202 	/* !!! LOCKING IS NEEDED HERE */
1203 	for (pd = port->devices; !port->cad && pd; pd = pd->next) {
1204 		if (pd->wakeup && pd != dev)
1205 			pd->wakeup(pd->private);
1206 	}
1207 }
1208 EXPORT_SYMBOL(parport_release);
1209 
1210 irqreturn_t parport_irq_handler(int irq, void *dev_id)
1211 {
1212 	struct parport *port = dev_id;
1213 
1214 	parport_generic_irq(port);
1215 
1216 	return IRQ_HANDLED;
1217 }
1218 EXPORT_SYMBOL(parport_irq_handler);
1219 
1220 MODULE_DESCRIPTION("Parallel-port resource manager");
1221 MODULE_LICENSE("GPL");
1222