xref: /linux/arch/parisc/kernel/drivers.c (revision 5862221fddede6bb15566ab3c1f23a3c353da5e1)
1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3  * drivers.c
4  *
5  * Copyright (c) 1999 The Puffin Group
6  * Copyright (c) 2001 Matthew Wilcox for Hewlett Packard
7  * Copyright (c) 2001-2023 Helge Deller <deller@gmx.de>
8  * Copyright (c) 2001,2002 Ryan Bradetich
9  * Copyright (c) 2004-2005 Thibaut VARENE <varenet@parisc-linux.org>
10  *
11  * The file handles registering devices and drivers, then matching them.
12  * It's the closest we get to a dating agency.
13  *
14  * If you're thinking about modifying this file, here are some gotchas to
15  * bear in mind:
16  *  - 715/Mirage device paths have a dummy device between Lasi and its children
17  *  - The EISA adapter may show up as a sibling or child of Wax
18  *  - Dino has an optionally functional serial port.  If firmware enables it,
19  *    it shows up as a child of Dino.  If firmware disables it, the buswalk
20  *    finds it and it shows up as a child of Cujo
21  *  - Dino has both parisc and pci devices as children
22  *  - parisc devices are discovered in a random order, including children
23  *    before parents in some cases.
24  */
25 
26 #include <linux/slab.h>
27 #include <linux/types.h>
28 #include <linux/kernel.h>
29 #include <linux/pci.h>
30 #include <linux/spinlock.h>
31 #include <linux/string.h>
32 #include <linux/export.h>
33 #include <linux/dma-map-ops.h>
34 #include <asm/hardware.h>
35 #include <asm/io.h>
36 #include <asm/pdc.h>
37 #include <asm/parisc-device.h>
38 #include <asm/ropes.h>
39 
40 /* See comments in include/asm-parisc/pci.h */
41 const struct dma_map_ops *hppa_dma_ops __ro_after_init;
42 EXPORT_SYMBOL(hppa_dma_ops);
43 
44 static struct device *root;
45 
check_dev(struct device * dev)46 static inline int check_dev(struct device *dev)
47 {
48 	if (dev->bus == &parisc_bus_type) {
49 		struct parisc_device *pdev;
50 		pdev = to_parisc_device(dev);
51 		return pdev->id.hw_type != HPHW_FAULTY;
52 	}
53 	return 1;
54 }
55 
56 static struct device *
57 parse_tree_node(struct device *parent, int index, struct hardware_path *modpath);
58 
59 struct recurse_struct {
60 	void * obj;
61 	int (*fn)(struct device *, void *);
62 };
63 
descend_children(struct device * dev,void * data)64 static int descend_children(struct device * dev, void * data)
65 {
66 	struct recurse_struct * recurse_data = (struct recurse_struct *)data;
67 
68 	if (recurse_data->fn(dev, recurse_data->obj))
69 		return 1;
70 	else
71 		return device_for_each_child(dev, recurse_data, descend_children);
72 }
73 
74 /**
75  * for_each_padev - Iterate over all devices in the tree
76  * @fn: Function to call for each device.
77  * @data: Data to pass to the called function.
78  *
79  * This performs a depth-first traversal of the tree, calling the
80  * function passed for each node.  It calls the function for parents
81  * before children.
82  */
83 
for_each_padev(int (* fn)(struct device *,void *),void * data)84 static int for_each_padev(int (*fn)(struct device *, void *), void * data)
85 {
86 	struct recurse_struct recurse_data = {
87 		.obj	= data,
88 		.fn	= fn,
89 	};
90 	return device_for_each_child(root, &recurse_data, descend_children);
91 }
92 
93 /**
94  * match_device - Report whether this driver can handle this device
95  * @driver: the PA-RISC driver to try
96  * @dev: the PA-RISC device to try
97  */
match_device(const struct parisc_driver * driver,struct parisc_device * dev)98 static int match_device(const struct parisc_driver *driver, struct parisc_device *dev)
99 {
100 	const struct parisc_device_id *ids;
101 
102 	for (ids = driver->id_table; ids->sversion; ids++) {
103 		if ((ids->sversion != SVERSION_ANY_ID) &&
104 		    (ids->sversion != dev->id.sversion))
105 			continue;
106 
107 		if ((ids->hw_type != HWTYPE_ANY_ID) &&
108 		    (ids->hw_type != dev->id.hw_type))
109 			continue;
110 
111 		if ((ids->hversion != HVERSION_ANY_ID) &&
112 		    (ids->hversion != dev->id.hversion))
113 			continue;
114 
115 		return 1;
116 	}
117 	return 0;
118 }
119 
parisc_driver_probe(struct device * dev)120 static int parisc_driver_probe(struct device *dev)
121 {
122 	int rc;
123 	struct parisc_device *pa_dev = to_parisc_device(dev);
124 	struct parisc_driver *pa_drv = to_parisc_driver(dev->driver);
125 
126 	rc = pa_drv->probe(pa_dev);
127 
128 	if (!rc)
129 		pa_dev->driver = pa_drv;
130 
131 	return rc;
132 }
133 
parisc_driver_remove(struct device * dev)134 static void __exit parisc_driver_remove(struct device *dev)
135 {
136 	struct parisc_device *pa_dev = to_parisc_device(dev);
137 	struct parisc_driver *pa_drv = to_parisc_driver(dev->driver);
138 
139 	if (pa_drv->remove)
140 		pa_drv->remove(pa_dev);
141 }
142 
143 
144 /**
145  * register_parisc_driver - Register this driver if it can handle a device
146  * @driver: the PA-RISC driver to try
147  */
register_parisc_driver(struct parisc_driver * driver)148 int register_parisc_driver(struct parisc_driver *driver)
149 {
150 	/* FIXME: we need this because apparently the sti
151 	 * driver can be registered twice */
152 	if (driver->drv.name) {
153 		pr_warn("BUG: skipping previously registered driver %s\n",
154 			driver->name);
155 		return 1;
156 	}
157 
158 	if (!driver->probe) {
159 		pr_warn("BUG: driver %s has no probe routine\n", driver->name);
160 		return 1;
161 	}
162 
163 	driver->drv.bus = &parisc_bus_type;
164 
165 	/* We install our own probe and remove routines */
166 	WARN_ON(driver->drv.probe != NULL);
167 	WARN_ON(driver->drv.remove != NULL);
168 
169 	driver->drv.name = driver->name;
170 
171 	return driver_register(&driver->drv);
172 }
173 EXPORT_SYMBOL(register_parisc_driver);
174 
175 
176 struct match_count {
177 	struct parisc_driver * driver;
178 	int count;
179 };
180 
match_and_count(struct device * dev,void * data)181 static int match_and_count(struct device * dev, void * data)
182 {
183 	struct match_count * m = data;
184 	struct parisc_device * pdev = to_parisc_device(dev);
185 
186 	if (check_dev(dev)) {
187 		if (match_device(m->driver, pdev))
188 			m->count++;
189 	}
190 	return 0;
191 }
192 
193 /**
194  * count_parisc_driver - count # of devices this driver would match
195  * @driver: the PA-RISC driver to try
196  *
197  * Use by IOMMU support to "guess" the right size IOPdir.
198  * Formula is something like memsize/(num_iommu * entry_size).
199  */
count_parisc_driver(struct parisc_driver * driver)200 int __init count_parisc_driver(struct parisc_driver *driver)
201 {
202 	struct match_count m = {
203 		.driver	= driver,
204 		.count	= 0,
205 	};
206 
207 	for_each_padev(match_and_count, &m);
208 
209 	return m.count;
210 }
211 
212 
213 
214 /**
215  * unregister_parisc_driver - Unregister this driver from the list of drivers
216  * @driver: the PA-RISC driver to unregister
217  */
unregister_parisc_driver(struct parisc_driver * driver)218 int unregister_parisc_driver(struct parisc_driver *driver)
219 {
220 	driver_unregister(&driver->drv);
221 	return 0;
222 }
223 EXPORT_SYMBOL(unregister_parisc_driver);
224 
225 struct find_data {
226 	unsigned long hpa;
227 	struct parisc_device * dev;
228 };
229 
find_device(struct device * dev,void * data)230 static int find_device(struct device * dev, void * data)
231 {
232 	struct parisc_device * pdev = to_parisc_device(dev);
233 	struct find_data * d = (struct find_data*)data;
234 
235 	if (check_dev(dev)) {
236 		if (pdev->hpa.start == d->hpa) {
237 			d->dev = pdev;
238 			return 1;
239 		}
240 	}
241 	return 0;
242 }
243 
find_device_by_addr(unsigned long hpa)244 static struct parisc_device *find_device_by_addr(unsigned long hpa)
245 {
246 	struct find_data d = {
247 		.hpa	= hpa,
248 	};
249 	int ret;
250 
251 	ret = for_each_padev(find_device, &d);
252 	return ret ? d.dev : NULL;
253 }
254 
is_IKE_device(struct device * dev,void * data)255 static int __init is_IKE_device(struct device *dev, void *data)
256 {
257 	struct parisc_device *pdev = to_parisc_device(dev);
258 
259 	if (!check_dev(dev))
260 		return 0;
261 	if (pdev->id.hw_type != HPHW_BCPORT)
262 		return 0;
263 	if (IS_IKE(pdev) ||
264 		(pdev->id.hversion == REO_MERCED_PORT) ||
265 		(pdev->id.hversion == REOG_MERCED_PORT)) {
266 			return 1;
267 	}
268 	return 0;
269 }
270 
machine_has_merced_bus(void)271 int __init machine_has_merced_bus(void)
272 {
273 	int ret;
274 
275 	ret = for_each_padev(is_IKE_device, NULL);
276 	return ret ? 1 : 0;
277 }
278 
279 /**
280  * find_pa_parent_type - Find a parent of a specific type
281  * @padev: The device to start searching from
282  * @type: The device type to search for.
283  *
284  * Walks up the device tree looking for a device of the specified type.
285  * If it finds it, it returns it.  If not, it returns NULL.
286  */
287 const struct parisc_device *
find_pa_parent_type(const struct parisc_device * padev,int type)288 find_pa_parent_type(const struct parisc_device *padev, int type)
289 {
290 	const struct device *dev = &padev->dev;
291 	while (dev != root) {
292 		struct parisc_device *candidate = to_parisc_device(dev);
293 		if (candidate->id.hw_type == type)
294 			return candidate;
295 		dev = dev->parent;
296 	}
297 
298 	return NULL;
299 }
300 
301 /*
302  * get_node_path fills in @path with the firmware path to the device.
303  * Note that if @node is a parisc device, we don't fill in the 'mod' field.
304  * This is because both callers pass the parent and fill in the mod
305  * themselves.  If @node is a PCI device, we do fill it in, even though this
306  * is inconsistent.
307  */
get_node_path(struct device * dev,struct hardware_path * path)308 static void get_node_path(struct device *dev, struct hardware_path *path)
309 {
310 	int i = 5;
311 	memset(&path->bc, -1, 6);
312 
313 	if (dev_is_pci(dev)) {
314 		unsigned int devfn = to_pci_dev(dev)->devfn;
315 		path->mod = PCI_FUNC(devfn);
316 		path->bc[i--] = PCI_SLOT(devfn);
317 		dev = dev->parent;
318 	}
319 
320 	while (dev != root) {
321 		if (dev_is_pci(dev)) {
322 			unsigned int devfn = to_pci_dev(dev)->devfn;
323 			path->bc[i--] = PCI_SLOT(devfn) | (PCI_FUNC(devfn)<< 5);
324 		} else if (dev->bus == &parisc_bus_type) {
325 			path->bc[i--] = to_parisc_device(dev)->hw_path;
326 		}
327 		dev = dev->parent;
328 	}
329 }
330 
print_hwpath(struct hardware_path * path,char * output)331 static char *print_hwpath(struct hardware_path *path, char *output)
332 {
333 	int i;
334 	for (i = 0; i < 6; i++) {
335 		if (path->bc[i] == -1)
336 			continue;
337 		output += sprintf(output, "%u/", (unsigned char) path->bc[i]);
338 	}
339 	output += sprintf(output, "%u", (unsigned char) path->mod);
340 	return output;
341 }
342 
343 /**
344  * print_pa_hwpath - Returns hardware path for PA devices
345  * @dev: The device to return the path for
346  * @output: Pointer to a previously-allocated array to place the path in.
347  *
348  * This function fills in the output array with a human-readable path
349  * to a PA device.  This string is compatible with that used by PDC, and
350  * may be printed on the outside of the box.
351  */
print_pa_hwpath(struct parisc_device * dev,char * output)352 char *print_pa_hwpath(struct parisc_device *dev, char *output)
353 {
354 	struct hardware_path path;
355 
356 	get_node_path(dev->dev.parent, &path);
357 	path.mod = dev->hw_path;
358 	return print_hwpath(&path, output);
359 }
360 EXPORT_SYMBOL(print_pa_hwpath);
361 
362 #if defined(CONFIG_PCI) || defined(CONFIG_ISA)
363 /**
364  * get_pci_node_path - Determines the hardware path for a PCI device
365  * @pdev: The device to return the path for
366  * @path: Pointer to a previously-allocated array to place the path in.
367  *
368  * This function fills in the hardware_path structure with the route to
369  * the specified PCI device.  This structure is suitable for passing to
370  * PDC calls.
371  */
get_pci_node_path(struct pci_dev * pdev,struct hardware_path * path)372 void get_pci_node_path(struct pci_dev *pdev, struct hardware_path *path)
373 {
374 	get_node_path(&pdev->dev, path);
375 }
376 EXPORT_SYMBOL(get_pci_node_path);
377 
378 /**
379  * print_pci_hwpath - Returns hardware path for PCI devices
380  * @dev: The device to return the path for
381  * @output: Pointer to a previously-allocated array to place the path in.
382  *
383  * This function fills in the output array with a human-readable path
384  * to a PCI device.  This string is compatible with that used by PDC, and
385  * may be printed on the outside of the box.
386  */
print_pci_hwpath(struct pci_dev * dev,char * output)387 char *print_pci_hwpath(struct pci_dev *dev, char *output)
388 {
389 	struct hardware_path path;
390 
391 	get_pci_node_path(dev, &path);
392 	return print_hwpath(&path, output);
393 }
394 EXPORT_SYMBOL(print_pci_hwpath);
395 
396 #endif /* defined(CONFIG_PCI) || defined(CONFIG_ISA) */
397 
setup_bus_id(struct parisc_device * padev)398 static void setup_bus_id(struct parisc_device *padev)
399 {
400 	struct hardware_path path;
401 	char name[28];
402 	char *output = name;
403 	int i;
404 
405 	get_node_path(padev->dev.parent, &path);
406 
407 	for (i = 0; i < 6; i++) {
408 		if (path.bc[i] == -1)
409 			continue;
410 		output += sprintf(output, "%u:", (unsigned char) path.bc[i]);
411 	}
412 	sprintf(output, "%u", (unsigned char) padev->hw_path);
413 	dev_set_name(&padev->dev, name);
414 }
415 
create_tree_node(char id,struct device * parent)416 static struct parisc_device * __init create_tree_node(char id,
417 						      struct device *parent)
418 {
419 	struct parisc_device *dev = kzalloc_obj(*dev);
420 	if (!dev)
421 		return NULL;
422 
423 	dev->hw_path = id;
424 	dev->id.hw_type = HPHW_FAULTY;
425 
426 	dev->dev.parent = parent;
427 	setup_bus_id(dev);
428 
429 	dev->dev.bus = &parisc_bus_type;
430 	dev->dma_mask = 0xffffffffUL;	/* PARISC devices are 32-bit */
431 
432 	/* make the generic dma mask a pointer to the parisc one */
433 	dev->dev.dma_mask = &dev->dma_mask;
434 	dev->dev.coherent_dma_mask = dev->dma_mask;
435 	if (device_register(&dev->dev)) {
436 		put_device(&dev->dev);
437 		return NULL;
438 	}
439 
440 	return dev;
441 }
442 
443 struct match_id_data {
444 	char id;
445 	struct parisc_device * dev;
446 };
447 
match_by_id(struct device * dev,void * data)448 static int match_by_id(struct device * dev, void * data)
449 {
450 	struct parisc_device * pdev = to_parisc_device(dev);
451 	struct match_id_data * d = data;
452 
453 	if (pdev->hw_path == d->id) {
454 		d->dev = pdev;
455 		return 1;
456 	}
457 	return 0;
458 }
459 
460 /**
461  * alloc_tree_node - returns a device entry in the iotree
462  * @parent: the parent node in the tree
463  * @id: the element of the module path for this entry
464  *
465  * Checks all the children of @parent for a matching @id.  If none
466  * found, it allocates a new device and returns it.
467  */
alloc_tree_node(struct device * parent,char id)468 static struct parisc_device * __init alloc_tree_node(
469 			struct device *parent, char id)
470 {
471 	struct match_id_data d = {
472 		.id = id,
473 	};
474 	if (device_for_each_child(parent, &d, match_by_id))
475 		return d.dev;
476 	else
477 		return create_tree_node(id, parent);
478 }
479 
create_parisc_device(struct hardware_path * modpath)480 static struct parisc_device *create_parisc_device(struct hardware_path *modpath)
481 {
482 	int i;
483 	struct device *parent = root;
484 	for (i = 0; i < 6; i++) {
485 		if (modpath->bc[i] == -1)
486 			continue;
487 		parent = &alloc_tree_node(parent, modpath->bc[i])->dev;
488 	}
489 	return alloc_tree_node(parent, modpath->mod);
490 }
491 
492 struct parisc_device * __init
alloc_pa_dev(unsigned long hpa,struct hardware_path * mod_path)493 alloc_pa_dev(unsigned long hpa, struct hardware_path *mod_path)
494 {
495 	int status;
496 	unsigned long bytecnt;
497 	u8 iodc_data[32];
498 	struct parisc_device *dev;
499 	const char *name;
500 
501 	/* Check to make sure this device has not already been added - Ryan */
502 	if (find_device_by_addr(hpa) != NULL)
503 		return NULL;
504 
505 	status = pdc_iodc_read(&bytecnt, hpa, 0, &iodc_data, 32);
506 	if (status != PDC_OK)
507 		return NULL;
508 
509 	dev = create_parisc_device(mod_path);
510 	if (dev->id.hw_type != HPHW_FAULTY) {
511 		pr_err("Two devices have hardware path [%s].  IODC data for second device: %7phN\n"
512 		       "Rearranging GSC cards sometimes helps\n",
513 			parisc_pathname(dev), iodc_data);
514 		return NULL;
515 	}
516 
517 	dev->id.hw_type = iodc_data[3] & 0x1f;
518 	dev->id.hversion = (iodc_data[0] << 4) | ((iodc_data[1] & 0xf0) >> 4);
519 	dev->id.hversion_rev = iodc_data[1] & 0x0f;
520 	dev->id.sversion = ((iodc_data[4] & 0x0f) << 16) |
521 			(iodc_data[5] << 8) | iodc_data[6];
522 	dev->hpa.start = hpa;
523 	/* This is awkward.  The STI spec says that gfx devices may occupy
524 	 * 32MB or 64MB.  Unfortunately, we don't know how to tell whether
525 	 * it's the former or the latter.  Assumptions either way can hurt us.
526 	 */
527 	if (hpa == 0xf4000000 || hpa == 0xf8000000) {
528 		dev->hpa.end = hpa + 0x03ffffff;
529 	} else if (hpa == 0xf6000000 || hpa == 0xfa000000) {
530 		dev->hpa.end = hpa + 0x01ffffff;
531 	} else {
532 		dev->hpa.end = hpa + 0xfff;
533 	}
534 	dev->hpa.flags = IORESOURCE_MEM;
535 	dev->hpa.name = dev->name;
536 	name = parisc_hardware_description(&dev->id) ? : "unknown";
537 	snprintf(dev->name, sizeof(dev->name), "%s [%s]",
538 		name, parisc_pathname(dev));
539 
540 	/* Silently fail things like mouse ports which are subsumed within
541 	 * the keyboard controller
542 	 */
543 	if ((hpa & 0xfff) == 0 && insert_resource(&iomem_resource, &dev->hpa))
544 		pr_warn("Unable to claim HPA %lx for device %s\n", hpa, name);
545 
546 	return dev;
547 }
548 
parisc_generic_match(struct device * dev,const struct device_driver * drv)549 static int parisc_generic_match(struct device *dev, const struct device_driver *drv)
550 {
551 	return match_device(to_parisc_driver(drv), to_parisc_device(dev));
552 }
553 
make_modalias(const struct device * dev,char * buf)554 static ssize_t make_modalias(const struct device *dev, char *buf)
555 {
556 	const struct parisc_device *padev = to_parisc_device(dev);
557 	const struct parisc_device_id *id = &padev->id;
558 
559 	return sprintf(buf, "parisc:t%02Xhv%04Xrev%02Xsv%08X\n",
560 		(u8)id->hw_type, (u16)id->hversion, (u8)id->hversion_rev,
561 		(u32)id->sversion);
562 }
563 
parisc_uevent(const struct device * dev,struct kobj_uevent_env * env)564 static int parisc_uevent(const struct device *dev, struct kobj_uevent_env *env)
565 {
566 	const struct parisc_device *padev;
567 	char modalias[40];
568 
569 	if (!dev)
570 		return -ENODEV;
571 
572 	padev = to_parisc_device(dev);
573 	if (!padev)
574 		return -ENODEV;
575 
576 	if (add_uevent_var(env, "PARISC_NAME=%s", padev->name))
577 		return -ENOMEM;
578 
579 	make_modalias(dev, modalias);
580 	if (add_uevent_var(env, "MODALIAS=%s", modalias))
581 		return -ENOMEM;
582 
583 	return 0;
584 }
585 
586 #define pa_dev_attr(name, field, format_string)				\
587 static ssize_t name##_show(struct device *dev, struct device_attribute *attr, char *buf)		\
588 {									\
589 	struct parisc_device *padev = to_parisc_device(dev);		\
590 	return sprintf(buf, format_string, padev->field);		\
591 }									\
592 static DEVICE_ATTR_RO(name);
593 
594 #define pa_dev_attr_id(field, format) pa_dev_attr(field, id.field, format)
595 
596 pa_dev_attr(irq, irq, "%u\n");
597 pa_dev_attr_id(hw_type, "0x%02x\n");
598 pa_dev_attr(rev, id.hversion_rev, "0x%x\n");
599 pa_dev_attr_id(hversion, "0x%03x\n");
600 pa_dev_attr_id(sversion, "0x%05x\n");
601 
modalias_show(struct device * dev,struct device_attribute * attr,char * buf)602 static ssize_t modalias_show(struct device *dev, struct device_attribute *attr, char *buf)
603 {
604 	return make_modalias(dev, buf);
605 }
606 static DEVICE_ATTR_RO(modalias);
607 
608 static struct attribute *parisc_device_attrs[] = {
609 	&dev_attr_irq.attr,
610 	&dev_attr_hw_type.attr,
611 	&dev_attr_rev.attr,
612 	&dev_attr_hversion.attr,
613 	&dev_attr_sversion.attr,
614 	&dev_attr_modalias.attr,
615 	NULL,
616 };
617 ATTRIBUTE_GROUPS(parisc_device);
618 
619 const struct bus_type parisc_bus_type = {
620 	.name = "parisc",
621 	.match = parisc_generic_match,
622 	.uevent = parisc_uevent,
623 	.dev_groups = parisc_device_groups,
624 	.probe = parisc_driver_probe,
625 	.remove = __exit_p(parisc_driver_remove),
626 };
627 
628 /**
629  * register_parisc_device - Locate a driver to manage this device.
630  * @dev: The parisc device.
631  *
632  * Search the driver list for a driver that is willing to manage
633  * this device.
634  */
register_parisc_device(struct parisc_device * dev)635 int __init register_parisc_device(struct parisc_device *dev)
636 {
637 	if (!dev)
638 		return 0;
639 
640 	if (dev->driver)
641 		return 1;
642 
643 	return 0;
644 }
645 
646 /**
647  * match_pci_device - Matches a pci device against a given hardware path
648  * entry.
649  * @dev: the generic device (known to be contained by a pci_dev).
650  * @index: the current BC index
651  * @modpath: the hardware path.
652  * @return: true if the device matches the hardware path.
653  */
match_pci_device(struct device * dev,int index,struct hardware_path * modpath)654 static int match_pci_device(struct device *dev, int index,
655 		struct hardware_path *modpath)
656 {
657 	struct pci_dev *pdev = to_pci_dev(dev);
658 	int id;
659 
660 	if (index == 5) {
661 		/* we are at the end of the path, and on the actual device */
662 		unsigned int devfn = pdev->devfn;
663 		return ((modpath->bc[5] == PCI_SLOT(devfn)) &&
664 					(modpath->mod == PCI_FUNC(devfn)));
665 	}
666 
667 	/* index might be out of bounds for bc[] */
668 	if (index >= 6)
669 		return 0;
670 
671 	id = PCI_SLOT(pdev->devfn) | (PCI_FUNC(pdev->devfn) << 5);
672 	return (modpath->bc[index] == id);
673 }
674 
675 /**
676  * match_parisc_device - Matches a parisc device against a given hardware
677  * path entry.
678  * @dev: the generic device (known to be contained by a parisc_device).
679  * @index: the current BC index
680  * @modpath: the hardware path.
681  * @return: true if the device matches the hardware path.
682  */
match_parisc_device(struct device * dev,int index,struct hardware_path * modpath)683 static int match_parisc_device(struct device *dev, int index,
684 		struct hardware_path *modpath)
685 {
686 	struct parisc_device *curr = to_parisc_device(dev);
687 	char id = (index == 6) ? modpath->mod : modpath->bc[index];
688 
689 	return (curr->hw_path == id);
690 }
691 
692 struct parse_tree_data {
693 	int index;
694 	struct hardware_path * modpath;
695 	struct device * dev;
696 };
697 
check_parent(struct device * dev,void * data)698 static int check_parent(struct device * dev, void * data)
699 {
700 	struct parse_tree_data * d = data;
701 
702 	if (check_dev(dev)) {
703 		if (dev->bus == &parisc_bus_type) {
704 			if (match_parisc_device(dev, d->index, d->modpath))
705 				d->dev = dev;
706 		} else if (dev_is_pci(dev)) {
707 			if (match_pci_device(dev, d->index, d->modpath))
708 				d->dev = dev;
709 		} else if (dev->bus == NULL) {
710 			/* we are on a bus bridge */
711 			struct device *new = parse_tree_node(dev, d->index, d->modpath);
712 			if (new)
713 				d->dev = new;
714 		}
715 	}
716 	return d->dev != NULL;
717 }
718 
719 /**
720  * parse_tree_node - returns a device entry in the iotree
721  * @parent: the parent node in the tree
722  * @index: the current BC index
723  * @modpath: the hardware_path struct to match a device against
724  * @return: The corresponding device if found, NULL otherwise.
725  *
726  * Checks all the children of @parent for a matching @id.  If none
727  * found, it returns NULL.
728  */
729 static struct device *
parse_tree_node(struct device * parent,int index,struct hardware_path * modpath)730 parse_tree_node(struct device *parent, int index, struct hardware_path *modpath)
731 {
732 	struct parse_tree_data d = {
733 		.index          = index,
734 		.modpath        = modpath,
735 	};
736 
737 	struct recurse_struct recurse_data = {
738 		.obj	= &d,
739 		.fn	= check_parent,
740 	};
741 
742 	if (device_for_each_child(parent, &recurse_data, descend_children))
743 		{ /* nothing */ }
744 
745 	return d.dev;
746 }
747 
748 /**
749  * hwpath_to_device - Finds the generic device corresponding to a given hardware path.
750  * @modpath: the hardware path.
751  * @return: The target device, NULL if not found.
752  */
hwpath_to_device(struct hardware_path * modpath)753 struct device *hwpath_to_device(struct hardware_path *modpath)
754 {
755 	int i;
756 	struct device *parent = root;
757 	for (i = 0; i < 6; i++) {
758 		if (modpath->bc[i] == -1)
759 			continue;
760 		parent = parse_tree_node(parent, i, modpath);
761 		if (!parent)
762 			return NULL;
763 	}
764 	if (dev_is_pci(parent)) /* pci devices already parse MOD */
765 		return parent;
766 	else
767 		return parse_tree_node(parent, 6, modpath);
768 }
769 EXPORT_SYMBOL(hwpath_to_device);
770 
771 /**
772  * device_to_hwpath - Populates the hwpath corresponding to the given device.
773  * @dev: the target device
774  * @path: pointer to a previously allocated hwpath struct to be filled in
775  */
device_to_hwpath(struct device * dev,struct hardware_path * path)776 void device_to_hwpath(struct device *dev, struct hardware_path *path)
777 {
778 	struct parisc_device *padev;
779 	if (dev->bus == &parisc_bus_type) {
780 		padev = to_parisc_device(dev);
781 		get_node_path(dev->parent, path);
782 		path->mod = padev->hw_path;
783 	} else if (dev_is_pci(dev)) {
784 		get_node_path(dev, path);
785 	}
786 }
787 EXPORT_SYMBOL(device_to_hwpath);
788 
789 #define BC_PORT_MASK 0x8
790 #define BC_LOWER_PORT 0x8
791 
792 #define BUS_CONVERTER(dev) \
793         ((dev->id.hw_type == HPHW_IOA) || (dev->id.hw_type == HPHW_BCPORT))
794 
795 #define IS_LOWER_PORT(dev) \
796         ((gsc_readl(dev->hpa.start + offsetof(struct bc_module, io_status)) \
797                 & BC_PORT_MASK) == BC_LOWER_PORT)
798 
799 #define MAX_NATIVE_DEVICES 64
800 #define NATIVE_DEVICE_OFFSET 0x1000
801 
802 #define FLEX_MASK 	F_EXTEND(0xfffc0000)
803 #define IO_IO_LOW	offsetof(struct bc_module, io_io_low)
804 #define IO_IO_HIGH	offsetof(struct bc_module, io_io_high)
805 #define READ_IO_IO_LOW(dev)  (unsigned long)(signed int)gsc_readl(dev->hpa.start + IO_IO_LOW)
806 #define READ_IO_IO_HIGH(dev) (unsigned long)(signed int)gsc_readl(dev->hpa.start + IO_IO_HIGH)
807 
808 static void walk_native_bus(unsigned long io_io_low, unsigned long io_io_high,
809                             struct device *parent);
810 
walk_lower_bus(struct parisc_device * dev)811 static void __init walk_lower_bus(struct parisc_device *dev)
812 {
813 	unsigned long io_io_low, io_io_high;
814 
815 	if (!BUS_CONVERTER(dev) || IS_LOWER_PORT(dev))
816 		return;
817 
818 	if (dev->id.hw_type == HPHW_IOA) {
819 		io_io_low = (unsigned long)(signed int)(READ_IO_IO_LOW(dev) << 16);
820 		io_io_high = io_io_low + MAX_NATIVE_DEVICES * NATIVE_DEVICE_OFFSET;
821 	} else {
822 		io_io_low = (READ_IO_IO_LOW(dev) + ~FLEX_MASK) & FLEX_MASK;
823 		io_io_high = (READ_IO_IO_HIGH(dev)+ ~FLEX_MASK) & FLEX_MASK;
824 	}
825 
826 	walk_native_bus(io_io_low, io_io_high, &dev->dev);
827 }
828 
829 /**
830  * walk_native_bus -- Probe a bus for devices
831  * @io_io_low: Base address of this bus.
832  * @io_io_high: Last address of this bus.
833  * @parent: The parent bus device.
834  *
835  * A native bus (eg Runway or GSC) may have up to 64 devices on it,
836  * spaced at intervals of 0x1000 bytes.  PDC may not inform us of these
837  * devices, so we have to probe for them.  Unfortunately, we may find
838  * devices which are not physically connected (such as extra serial &
839  * keyboard ports).  This problem is not yet solved.
840  */
walk_native_bus(unsigned long io_io_low,unsigned long io_io_high,struct device * parent)841 static void __init walk_native_bus(unsigned long io_io_low,
842 	unsigned long io_io_high, struct device *parent)
843 {
844 	int i, devices_found = 0;
845 	unsigned long hpa = io_io_low;
846 	struct hardware_path path;
847 
848 	get_node_path(parent, &path);
849 	do {
850 		for(i = 0; i < MAX_NATIVE_DEVICES; i++, hpa += NATIVE_DEVICE_OFFSET) {
851 			struct parisc_device *dev;
852 
853 			/* Was the device already added by Firmware? */
854 			dev = find_device_by_addr(hpa);
855 			if (!dev) {
856 				path.mod = i;
857 				dev = alloc_pa_dev(hpa, &path);
858 				if (!dev)
859 					continue;
860 
861 				register_parisc_device(dev);
862 				devices_found++;
863 			}
864 			walk_lower_bus(dev);
865 		}
866 	} while(!devices_found && hpa < io_io_high);
867 }
868 
869 #define CENTRAL_BUS_ADDR F_EXTEND(0xfff80000)
870 
871 /**
872  * walk_central_bus - Find devices attached to the central bus
873  *
874  * PDC doesn't tell us about all devices in the system.  This routine
875  * finds devices connected to the central bus.
876  */
walk_central_bus(void)877 void __init walk_central_bus(void)
878 {
879 	walk_native_bus(CENTRAL_BUS_ADDR,
880 			CENTRAL_BUS_ADDR + (MAX_NATIVE_DEVICES * NATIVE_DEVICE_OFFSET),
881 			root);
882 }
883 
print_parisc_device(struct parisc_device * dev)884 static __init void print_parisc_device(struct parisc_device *dev)
885 {
886 	static int count __initdata;
887 
888 	pr_info("%d. %s at %pap { type:%d, hv:%#x, sv:%#x, rev:%#x }",
889 		++count, dev->name, &(dev->hpa.start), dev->id.hw_type,
890 		dev->id.hversion, dev->id.sversion, dev->id.hversion_rev);
891 
892 	if (dev->num_addrs) {
893 		int k;
894 		pr_cont(", additional addresses: ");
895 		for (k = 0; k < dev->num_addrs; k++)
896 			pr_cont("0x%lx ", dev->addr[k]);
897 	}
898 	pr_cont("\n");
899 }
900 
901 /**
902  * init_parisc_bus - Some preparation to be done before inventory
903  */
init_parisc_bus(void)904 void __init init_parisc_bus(void)
905 {
906 	if (bus_register(&parisc_bus_type))
907 		panic("Could not register PA-RISC bus type\n");
908 
909 	root = root_device_register("parisc");
910 	if (IS_ERR(root))
911 		panic("Could not register PA-RISC root device\n");
912 }
913 
qemu_header(void)914 static __init void qemu_header(void)
915 {
916 	int num;
917 	unsigned long *p;
918 	char name_mpe[80];
919 
920 	pr_info("--- cut here ---\n");
921 	pr_info("/* AUTO-GENERATED HEADER FILE FOR SEABIOS FIRMWARE */\n");
922 	pr_cont("/* generated with Linux kernel */\n");
923 	pr_cont("/* search for PARISC_QEMU_MACHINE_HEADER in Linux */\n\n");
924 
925 	pr_info("#define PARISC_MODEL     \"%s\"\n",
926 			boot_cpu_data.pdc.sys_model_name);
927 	strcpy(name_mpe, boot_cpu_data.pdc.sys_model_name);
928 	pdc_model_sysmodel(OS_ID_MPEXL, name_mpe);
929 	pr_info("#define PARISC_MODEL_MPE \"%s\"\n\n", name_mpe);
930 
931 	#define p ((unsigned long *)&boot_cpu_data.pdc.model)
932 	pr_info("#define PARISC_PDC_MODEL 0x%lx, 0x%lx, 0x%lx, "
933 		"0x%lx, 0x%lx, 0x%lx, 0x%lx, 0x%lx, 0x%lx, 0x%lx\n\n",
934 		p[0], p[1], p[2], p[3], p[4], p[5], p[6], p[7], p[8], p[9]);
935 	#undef p
936 
937 	pr_info("#define PARISC_PDC_VERSION 0x%04lx\n\n",
938 			boot_cpu_data.pdc.versions);
939 
940 	pr_info("#define PARISC_PDC_CPUID 0x%04lx\n\n",
941 			boot_cpu_data.pdc.cpuid);
942 
943 	pr_info("#define PARISC_PDC_CAPABILITIES 0x%04lx\n\n",
944 			boot_cpu_data.pdc.capabilities);
945 
946 	pr_info("#define PARISC_PDC_ENTRY_ORG 0x%04lx\n\n",
947 #ifdef CONFIG_64BIT
948 		(unsigned long)(PAGE0->mem_pdc_hi) << 32 |
949 #endif
950 		(unsigned long)PAGE0->mem_pdc);
951 
952 	pr_info("#define PARISC_PDC_CACHE_INFO");
953 	p = (unsigned long *) &cache_info;
954 	for (num = 0; num < sizeof(cache_info); num += sizeof(unsigned long)) {
955 		if (((num % 5) == 0)) {
956 			pr_cont(" \\\n");
957 			pr_info("\t");
958 		}
959 		pr_cont("%s0x%04lx",
960 			num?", ":"", *p++);
961 	}
962 	pr_cont("\n\n");
963 }
964 
qemu_print_hpa(struct device * lin_dev,void * data)965 static __init int qemu_print_hpa(struct device *lin_dev, void *data)
966 {
967 	struct parisc_device *dev = to_parisc_device(lin_dev);
968 	unsigned long hpa = dev->hpa.start;
969 
970 	pr_cont("\t{\t.hpa = 0x%08lx,\\\n", hpa);
971 	pr_cont("\t\t.iodc = &iodc_data_hpa_%08lx,\\\n", hpa);
972 	pr_cont("\t\t.mod_info = &mod_info_hpa_%08lx,\\\n", hpa);
973 	pr_cont("\t\t.mod_path = &mod_path_hpa_%08lx,\\\n", hpa);
974 	pr_cont("\t\t.num_addr = HPA_%08lx_num_addr,\\\n", hpa);
975 	pr_cont("\t\t.add_addr = { HPA_%08lx_add_addr } },\\\n", hpa);
976 	return 0;
977 }
978 
979 
qemu_footer(void)980 static __init void qemu_footer(void)
981 {
982 	pr_info("\n\n#define PARISC_DEVICE_LIST \\\n");
983 	for_each_padev(qemu_print_hpa, NULL);
984 	pr_cont("\t{ 0, }\n");
985 	pr_info("--- cut here ---\n");
986 }
987 
988 /* print iodc data of the various hpa modules for qemu inclusion */
qemu_print_iodc_data(struct device * lin_dev,void * data)989 static __init int qemu_print_iodc_data(struct device *lin_dev, void *data)
990 {
991 	struct parisc_device *dev = to_parisc_device(lin_dev);
992 	unsigned long count;
993 	unsigned long hpa = dev->hpa.start;
994 	int status;
995 	struct pdc_iodc iodc_data;
996 
997 	int mod_index;
998 	struct pdc_system_map_mod_info pdc_mod_info;
999 	struct pdc_module_path mod_path;
1000 
1001 	memset(&iodc_data, 0, sizeof(iodc_data));
1002 	status = pdc_iodc_read(&count, hpa, 0,
1003 		&iodc_data, sizeof(iodc_data));
1004 	if (status != PDC_OK) {
1005 		pr_info("No IODC data for hpa 0x%08lx\n", hpa);
1006 		return 0;
1007 	}
1008 
1009 	pr_info("\n");
1010 
1011 	/* Prevent hung task messages when printing on serial console */
1012 	cond_resched();
1013 
1014 	pr_info("#define HPA_%08lx_DESCRIPTION \"%s\"\n",
1015 		hpa, parisc_hardware_description(&dev->id));
1016 
1017 	mod_index = 0;
1018 	do {
1019 		/* initialize device path for old machines */
1020 		memset(&mod_path, 0xff, sizeof(mod_path));
1021 		get_node_path(dev->dev.parent, &mod_path.path);
1022 		mod_path.path.mod = dev->hw_path;
1023 		memset(&pdc_mod_info, 0, sizeof(pdc_mod_info));
1024 		status = pdc_system_map_find_mods(&pdc_mod_info,
1025 				&mod_path, mod_index++);
1026 	} while (status == PDC_OK && pdc_mod_info.mod_addr != hpa);
1027 
1028 	pr_info("static struct pdc_system_map_mod_info"
1029 		" mod_info_hpa_%08lx = {\n", hpa);
1030 	#define DO(member) \
1031 		pr_cont("\t." #member " = 0x%x,\n", \
1032 			(unsigned int)pdc_mod_info.member)
1033 	DO(mod_addr);
1034 	DO(mod_pgs);
1035 	DO(add_addrs);
1036 	pr_cont("};\n");
1037 	#undef DO
1038 	pr_info("static struct pdc_module_path "
1039 		"mod_path_hpa_%08lx = {\n", hpa);
1040 	pr_cont("\t.path = { ");
1041 	pr_cont(".flags = 0x%x, ", mod_path.path.flags);
1042 	pr_cont(".bc = { 0x%02x, 0x%02x, 0x%02x, 0x%02x, 0x%02x, 0x%02x }, ",
1043 		(unsigned char)mod_path.path.bc[0],
1044 		(unsigned char)mod_path.path.bc[1],
1045 		(unsigned char)mod_path.path.bc[2],
1046 		(unsigned char)mod_path.path.bc[3],
1047 		(unsigned char)mod_path.path.bc[4],
1048 		(unsigned char)mod_path.path.bc[5]);
1049 	pr_cont(".mod = 0x%02x }\n", (unsigned char)mod_path.path.mod);
1050 	pr_cont("};\n");
1051 
1052 	pr_info("static struct pdc_iodc iodc_data_hpa_%08lx = {\n", hpa);
1053 	#define DO(member) \
1054 		pr_cont("\t." #member " = 0x%04lx,\n", \
1055 			(unsigned long)iodc_data.member)
1056 	DO(hversion_model);
1057 	DO(hversion);
1058 	DO(spa);
1059 	DO(type);
1060 	DO(sversion_rev);
1061 	DO(sversion_model);
1062 	DO(sversion_opt);
1063 	DO(rev);
1064 	DO(dep);
1065 	DO(features);
1066 	DO(checksum);
1067 	DO(length);
1068 	#undef DO
1069 	pr_cont("};\n");
1070 
1071 	pr_info("#define HPA_%08lx_num_addr %d\n", hpa, dev->num_addrs);
1072 	pr_info("#define HPA_%08lx_add_addr ", hpa);
1073 	count = 0;
1074 	if (dev->num_addrs == 0)
1075 		pr_cont("0");
1076 	while (count < dev->num_addrs) {
1077 		pr_cont("0x%08lx, ", dev->addr[count]);
1078 		count++;
1079 	}
1080 	pr_cont("\n\n");
1081 
1082 	return 0;
1083 }
1084 
1085 
1086 
print_one_device(struct device * dev,void * data)1087 static __init int print_one_device(struct device * dev, void * data)
1088 {
1089 	struct parisc_device * pdev = to_parisc_device(dev);
1090 
1091 	if (check_dev(dev))
1092 		print_parisc_device(pdev);
1093 	return 0;
1094 }
1095 
1096 /**
1097  * print_parisc_devices - Print out a list of devices found in this system
1098  */
print_parisc_devices(void)1099 void __init print_parisc_devices(void)
1100 {
1101 	for_each_padev(print_one_device, NULL);
1102 	#define PARISC_QEMU_MACHINE_HEADER 0
1103 	if (PARISC_QEMU_MACHINE_HEADER) {
1104 		qemu_header();
1105 		for_each_padev(qemu_print_iodc_data, NULL);
1106 		qemu_footer();
1107 	}
1108 }
1109