1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3 * PCI <-> OF mapping helpers
4 *
5 * Copyright 2011 IBM Corp.
6 */
7 #define pr_fmt(fmt) "PCI: OF: " fmt
8
9 #include <linux/cleanup.h>
10 #include <linux/irqdomain.h>
11 #include <linux/kernel.h>
12 #include <linux/pci.h>
13 #include <linux/of.h>
14 #include <linux/of_irq.h>
15 #include <linux/of_address.h>
16 #include <linux/of_pci.h>
17 #include <linux/platform_device.h>
18 #include "pci.h"
19
20 #ifdef CONFIG_PCI
21 /**
22 * pci_set_of_node - Find and set device's DT device_node
23 * @dev: the PCI device structure to fill
24 *
25 * Returns 0 on success with of_node set or when no device is described in the
26 * DT. Returns -ENODEV if the device is present, but disabled in the DT.
27 */
pci_set_of_node(struct pci_dev * dev)28 int pci_set_of_node(struct pci_dev *dev)
29 {
30 if (!dev->bus->dev.of_node)
31 return 0;
32
33 struct device_node *node __free(device_node) =
34 of_pci_find_child_device(dev->bus->dev.of_node, dev->devfn);
35 if (!node)
36 return 0;
37
38 struct device *pdev __free(put_device) =
39 bus_find_device_by_of_node(&platform_bus_type, node);
40 if (pdev)
41 dev->bus->dev.of_node_reused = true;
42
43 device_set_node(&dev->dev, of_fwnode_handle(no_free_ptr(node)));
44 return 0;
45 }
46
pci_release_of_node(struct pci_dev * dev)47 void pci_release_of_node(struct pci_dev *dev)
48 {
49 of_node_put(dev->dev.of_node);
50 device_set_node(&dev->dev, NULL);
51 }
52
pci_set_bus_of_node(struct pci_bus * bus)53 void pci_set_bus_of_node(struct pci_bus *bus)
54 {
55 struct device_node *node;
56
57 if (bus->self == NULL) {
58 node = pcibios_get_phb_of_node(bus);
59 } else {
60 node = of_node_get(bus->self->dev.of_node);
61 if (node && of_property_read_bool(node, "external-facing"))
62 bus->self->external_facing = true;
63 }
64
65 device_set_node(&bus->dev, of_fwnode_handle(node));
66 }
67
pci_release_bus_of_node(struct pci_bus * bus)68 void pci_release_bus_of_node(struct pci_bus *bus)
69 {
70 of_node_put(bus->dev.of_node);
71 device_set_node(&bus->dev, NULL);
72 }
73
pcibios_get_phb_of_node(struct pci_bus * bus)74 struct device_node * __weak pcibios_get_phb_of_node(struct pci_bus *bus)
75 {
76 /* This should only be called for PHBs */
77 if (WARN_ON(bus->self || bus->parent))
78 return NULL;
79
80 /*
81 * Look for a node pointer in either the intermediary device we
82 * create above the root bus or its own parent. Normally only
83 * the later is populated.
84 */
85 if (bus->bridge->of_node)
86 return of_node_get(bus->bridge->of_node);
87 if (bus->bridge->parent && bus->bridge->parent->of_node)
88 return of_node_get(bus->bridge->parent->of_node);
89 return NULL;
90 }
91
pci_host_bridge_of_msi_domain(struct pci_bus * bus)92 struct irq_domain *pci_host_bridge_of_msi_domain(struct pci_bus *bus)
93 {
94 #ifdef CONFIG_IRQ_DOMAIN
95 struct irq_domain *d;
96
97 if (!bus->dev.of_node)
98 return NULL;
99
100 /* Start looking for a phandle to an MSI controller. */
101 d = of_msi_get_domain(&bus->dev, bus->dev.of_node, DOMAIN_BUS_PCI_MSI);
102 if (d)
103 return d;
104
105 /*
106 * If we don't have an msi-parent property, look for a domain
107 * directly attached to the host bridge.
108 */
109 d = irq_find_matching_host(bus->dev.of_node, DOMAIN_BUS_PCI_MSI);
110 if (d)
111 return d;
112
113 return irq_find_host(bus->dev.of_node);
114 #else
115 return NULL;
116 #endif
117 }
118
pci_host_of_has_msi_map(struct device * dev)119 bool pci_host_of_has_msi_map(struct device *dev)
120 {
121 if (dev && dev->of_node)
122 return of_get_property(dev->of_node, "msi-map", NULL);
123 return false;
124 }
125
__of_pci_pci_compare(struct device_node * node,unsigned int data)126 static inline int __of_pci_pci_compare(struct device_node *node,
127 unsigned int data)
128 {
129 int devfn;
130
131 devfn = of_pci_get_devfn(node);
132 if (devfn < 0)
133 return 0;
134
135 return devfn == data;
136 }
137
of_pci_find_child_device(struct device_node * parent,unsigned int devfn)138 struct device_node *of_pci_find_child_device(struct device_node *parent,
139 unsigned int devfn)
140 {
141 struct device_node *node, *node2;
142
143 for_each_child_of_node(parent, node) {
144 if (__of_pci_pci_compare(node, devfn))
145 return node;
146 /*
147 * Some OFs create a parent node "multifunc-device" as
148 * a fake root for all functions of a multi-function
149 * device we go down them as well.
150 */
151 if (of_node_name_eq(node, "multifunc-device")) {
152 for_each_child_of_node(node, node2) {
153 if (__of_pci_pci_compare(node2, devfn)) {
154 of_node_put(node);
155 return node2;
156 }
157 }
158 }
159 }
160 return NULL;
161 }
162 EXPORT_SYMBOL_GPL(of_pci_find_child_device);
163
164 /**
165 * of_pci_get_devfn() - Get device and function numbers for a device node
166 * @np: device node
167 *
168 * Parses a standard 5-cell PCI resource and returns an 8-bit value that can
169 * be passed to the PCI_SLOT() and PCI_FUNC() macros to extract the device
170 * and function numbers respectively. On error a negative error code is
171 * returned.
172 */
of_pci_get_devfn(struct device_node * np)173 int of_pci_get_devfn(struct device_node *np)
174 {
175 u32 reg[5];
176 int error;
177
178 error = of_property_read_u32_array(np, "reg", reg, ARRAY_SIZE(reg));
179 if (error)
180 return error;
181
182 return (reg[0] >> 8) & 0xff;
183 }
184 EXPORT_SYMBOL_GPL(of_pci_get_devfn);
185
186 /**
187 * of_pci_parse_bus_range() - parse the bus-range property of a PCI device
188 * @node: device node
189 * @res: address to a struct resource to return the bus-range
190 *
191 * Returns 0 on success or a negative error-code on failure.
192 */
of_pci_parse_bus_range(struct device_node * node,struct resource * res)193 static int of_pci_parse_bus_range(struct device_node *node,
194 struct resource *res)
195 {
196 u32 bus_range[2];
197 int error;
198
199 error = of_property_read_u32_array(node, "bus-range", bus_range,
200 ARRAY_SIZE(bus_range));
201 if (error)
202 return error;
203
204 res->name = node->name;
205 res->start = bus_range[0];
206 res->end = bus_range[1];
207 res->flags = IORESOURCE_BUS;
208
209 return 0;
210 }
211
212 /**
213 * of_get_pci_domain_nr - Find the host bridge domain number
214 * of the given device node.
215 * @node: Device tree node with the domain information.
216 *
217 * This function will try to obtain the host bridge domain number by finding
218 * a property called "linux,pci-domain" of the given device node.
219 *
220 * Return:
221 * * > 0 - On success, an associated domain number.
222 * * -EINVAL - The property "linux,pci-domain" does not exist.
223 * * -ENODATA - The linux,pci-domain" property does not have value.
224 * * -EOVERFLOW - Invalid "linux,pci-domain" property value.
225 *
226 * Returns the associated domain number from DT in the range [0-0xffff], or
227 * a negative value if the required property is not found.
228 */
of_get_pci_domain_nr(struct device_node * node)229 int of_get_pci_domain_nr(struct device_node *node)
230 {
231 u32 domain;
232 int error;
233
234 error = of_property_read_u32(node, "linux,pci-domain", &domain);
235 if (error)
236 return error;
237
238 return (u16)domain;
239 }
240 EXPORT_SYMBOL_GPL(of_get_pci_domain_nr);
241
242 /**
243 * of_pci_preserve_config - Return true if the boot configuration needs to
244 * be preserved
245 * @node: Device tree node.
246 *
247 * Look for "linux,pci-probe-only" property for a given PCI controller's
248 * node and return true if found. Also look in the chosen node if the
249 * property is not found in the given controller's node. Having this
250 * property ensures that the kernel doesn't reconfigure the BARs and bridge
251 * windows that are already done by the platform firmware.
252 *
253 * Return: true if the property exists; false otherwise.
254 */
of_pci_preserve_config(struct device_node * node)255 bool of_pci_preserve_config(struct device_node *node)
256 {
257 u32 val = 0;
258 int ret;
259
260 if (!node) {
261 pr_warn("device node is NULL, trying with of_chosen\n");
262 node = of_chosen;
263 }
264
265 retry:
266 ret = of_property_read_u32(node, "linux,pci-probe-only", &val);
267 if (ret) {
268 if (ret == -ENODATA || ret == -EOVERFLOW) {
269 pr_warn("Incorrect value for linux,pci-probe-only in %pOF, ignoring\n",
270 node);
271 return false;
272 }
273 if (ret == -EINVAL) {
274 if (node == of_chosen)
275 return false;
276
277 node = of_chosen;
278 goto retry;
279 }
280 }
281
282 if (val)
283 return true;
284 else
285 return false;
286 }
287
288 /**
289 * of_pci_check_probe_only - Setup probe only mode if linux,pci-probe-only
290 * is present and valid
291 */
of_pci_check_probe_only(void)292 void of_pci_check_probe_only(void)
293 {
294 if (of_pci_preserve_config(of_chosen))
295 pci_add_flags(PCI_PROBE_ONLY);
296 else
297 pci_clear_flags(PCI_PROBE_ONLY);
298 }
299 EXPORT_SYMBOL_GPL(of_pci_check_probe_only);
300
301 /**
302 * devm_of_pci_get_host_bridge_resources() - Resource-managed parsing of PCI
303 * host bridge resources from DT
304 * @dev: host bridge device
305 * @resources: list where the range of resources will be added after DT parsing
306 * @ib_resources: list where the range of inbound resources (with addresses
307 * from 'dma-ranges') will be added after DT parsing
308 * @io_base: pointer to a variable that will contain on return the physical
309 * address for the start of the I/O range. Can be NULL if the caller doesn't
310 * expect I/O ranges to be present in the device tree.
311 *
312 * This function will parse the "ranges" property of a PCI host bridge device
313 * node and setup the resource mapping based on its content. It is expected
314 * that the property conforms with the Power ePAPR document.
315 *
316 * It returns zero if the range parsing has been successful or a standard error
317 * value if it failed.
318 */
devm_of_pci_get_host_bridge_resources(struct device * dev,struct list_head * resources,struct list_head * ib_resources,resource_size_t * io_base)319 static int devm_of_pci_get_host_bridge_resources(struct device *dev,
320 struct list_head *resources,
321 struct list_head *ib_resources,
322 resource_size_t *io_base)
323 {
324 struct device_node *dev_node = dev->of_node;
325 struct resource *res, tmp_res;
326 struct resource *bus_range;
327 struct of_pci_range range;
328 struct of_pci_range_parser parser;
329 const char *range_type;
330 int err;
331
332 if (io_base)
333 *io_base = (resource_size_t)OF_BAD_ADDR;
334
335 bus_range = devm_kzalloc(dev, sizeof(*bus_range), GFP_KERNEL);
336 if (!bus_range)
337 return -ENOMEM;
338
339 dev_info(dev, "host bridge %pOF ranges:\n", dev_node);
340
341 err = of_pci_parse_bus_range(dev_node, bus_range);
342 if (err) {
343 bus_range->start = 0;
344 bus_range->end = 0xff;
345 bus_range->flags = IORESOURCE_BUS;
346 } else {
347 if (bus_range->end > 0xff) {
348 dev_warn(dev, " Invalid end bus number in %pR, defaulting to 0xff\n",
349 bus_range);
350 bus_range->end = 0xff;
351 }
352 }
353 pci_add_resource(resources, bus_range);
354
355 /* Check for ranges property */
356 err = of_pci_range_parser_init(&parser, dev_node);
357 if (err)
358 return 0;
359
360 dev_dbg(dev, "Parsing ranges property...\n");
361 for_each_of_pci_range(&parser, &range) {
362 /* Read next ranges element */
363 if ((range.flags & IORESOURCE_TYPE_BITS) == IORESOURCE_IO)
364 range_type = "IO";
365 else if ((range.flags & IORESOURCE_TYPE_BITS) == IORESOURCE_MEM)
366 range_type = "MEM";
367 else
368 range_type = "err";
369 dev_info(dev, " %6s %#012llx..%#012llx -> %#012llx\n",
370 range_type, range.cpu_addr,
371 range.cpu_addr + range.size - 1, range.pci_addr);
372
373 /*
374 * If we failed translation or got a zero-sized region
375 * then skip this range
376 */
377 if (range.cpu_addr == OF_BAD_ADDR || range.size == 0)
378 continue;
379
380 err = of_pci_range_to_resource(&range, dev_node, &tmp_res);
381 if (err)
382 continue;
383
384 res = devm_kmemdup(dev, &tmp_res, sizeof(tmp_res), GFP_KERNEL);
385 if (!res) {
386 err = -ENOMEM;
387 goto failed;
388 }
389
390 if (resource_type(res) == IORESOURCE_IO) {
391 if (!io_base) {
392 dev_err(dev, "I/O range found for %pOF. Please provide an io_base pointer to save CPU base address\n",
393 dev_node);
394 err = -EINVAL;
395 goto failed;
396 }
397 if (*io_base != (resource_size_t)OF_BAD_ADDR)
398 dev_warn(dev, "More than one I/O resource converted for %pOF. CPU base address for old range lost!\n",
399 dev_node);
400 *io_base = range.cpu_addr;
401 } else if (resource_type(res) == IORESOURCE_MEM) {
402 res->flags &= ~IORESOURCE_MEM_64;
403 }
404
405 pci_add_resource_offset(resources, res, res->start - range.pci_addr);
406 }
407
408 /* Check for dma-ranges property */
409 if (!ib_resources)
410 return 0;
411 err = of_pci_dma_range_parser_init(&parser, dev_node);
412 if (err)
413 return 0;
414
415 dev_dbg(dev, "Parsing dma-ranges property...\n");
416 for_each_of_pci_range(&parser, &range) {
417 /*
418 * If we failed translation or got a zero-sized region
419 * then skip this range
420 */
421 if (((range.flags & IORESOURCE_TYPE_BITS) != IORESOURCE_MEM) ||
422 range.cpu_addr == OF_BAD_ADDR || range.size == 0)
423 continue;
424
425 dev_info(dev, " %6s %#012llx..%#012llx -> %#012llx\n",
426 "IB MEM", range.cpu_addr,
427 range.cpu_addr + range.size - 1, range.pci_addr);
428
429
430 err = of_pci_range_to_resource(&range, dev_node, &tmp_res);
431 if (err)
432 continue;
433
434 res = devm_kmemdup(dev, &tmp_res, sizeof(tmp_res), GFP_KERNEL);
435 if (!res) {
436 err = -ENOMEM;
437 goto failed;
438 }
439
440 pci_add_resource_offset(ib_resources, res,
441 res->start - range.pci_addr);
442 }
443
444 return 0;
445
446 failed:
447 pci_free_resource_list(resources);
448 return err;
449 }
450
451 #if IS_ENABLED(CONFIG_OF_IRQ)
452 /**
453 * of_irq_parse_pci - Resolve the interrupt for a PCI device
454 * @pdev: the device whose interrupt is to be resolved
455 * @out_irq: structure of_phandle_args filled by this function
456 *
457 * This function resolves the PCI interrupt for a given PCI device. If a
458 * device node exists for a given pci_dev, it will use normal OF tree
459 * walking. If not, it will implement standard swizzling and walk up the
460 * PCI tree until a device node is found, at which point it will finish
461 * resolving using the OF tree walking.
462 */
of_irq_parse_pci(const struct pci_dev * pdev,struct of_phandle_args * out_irq)463 static int of_irq_parse_pci(const struct pci_dev *pdev, struct of_phandle_args *out_irq)
464 {
465 struct device_node *dn, *ppnode = NULL;
466 struct pci_dev *ppdev;
467 __be32 laddr[3];
468 u8 pin;
469 int rc;
470
471 /*
472 * Check if we have a device node, if yes, fallback to standard
473 * device tree parsing
474 */
475 dn = pci_device_to_OF_node(pdev);
476 if (dn) {
477 rc = of_irq_parse_one(dn, 0, out_irq);
478 if (!rc)
479 return rc;
480 }
481
482 /*
483 * Ok, we don't, time to have fun. Let's start by building up an
484 * interrupt spec. we assume #interrupt-cells is 1, which is standard
485 * for PCI. If you do different, then don't use that routine.
486 */
487 rc = pci_read_config_byte(pdev, PCI_INTERRUPT_PIN, &pin);
488 if (rc != 0)
489 goto err;
490 /* No pin, exit with no error message. */
491 if (pin == 0)
492 return -ENODEV;
493
494 /* Local interrupt-map in the device node? Use it! */
495 if (of_property_present(dn, "interrupt-map")) {
496 pin = pci_swizzle_interrupt_pin(pdev, pin);
497 ppnode = dn;
498 }
499
500 /* Now we walk up the PCI tree */
501 while (!ppnode) {
502 /* Get the pci_dev of our parent */
503 ppdev = pdev->bus->self;
504
505 /* Ouch, it's a host bridge... */
506 if (ppdev == NULL) {
507 ppnode = pci_bus_to_OF_node(pdev->bus);
508
509 /* No node for host bridge ? give up */
510 if (ppnode == NULL) {
511 rc = -EINVAL;
512 goto err;
513 }
514 } else {
515 /* We found a P2P bridge, check if it has a node */
516 ppnode = pci_device_to_OF_node(ppdev);
517 }
518
519 /*
520 * Ok, we have found a parent with a device node, hand over to
521 * the OF parsing code.
522 *
523 * We build a unit address from the linux device to be used for
524 * resolution. Note that we use the linux bus number which may
525 * not match your firmware bus numbering.
526 *
527 * Fortunately, in most cases, interrupt-map-mask doesn't
528 * include the bus number as part of the matching.
529 *
530 * You should still be careful about that though if you intend
531 * to rely on this function (you ship a firmware that doesn't
532 * create device nodes for all PCI devices).
533 */
534 if (ppnode)
535 break;
536
537 /*
538 * We can only get here if we hit a P2P bridge with no node;
539 * let's do standard swizzling and try again
540 */
541 pin = pci_swizzle_interrupt_pin(pdev, pin);
542 pdev = ppdev;
543 }
544
545 out_irq->np = ppnode;
546 out_irq->args_count = 1;
547 out_irq->args[0] = pin;
548 laddr[0] = cpu_to_be32((pdev->bus->number << 16) | (pdev->devfn << 8));
549 laddr[1] = laddr[2] = cpu_to_be32(0);
550 rc = of_irq_parse_raw(laddr, out_irq);
551 if (rc)
552 goto err;
553 return 0;
554 err:
555 if (rc == -ENOENT) {
556 dev_warn(&pdev->dev,
557 "%s: no interrupt-map found, INTx interrupts not available\n",
558 __func__);
559 pr_warn_once("%s: possibly some PCI slots don't have level triggered interrupts capability\n",
560 __func__);
561 } else {
562 dev_err(&pdev->dev, "%s: failed with rc=%d\n", __func__, rc);
563 }
564 return rc;
565 }
566
567 /**
568 * of_irq_parse_and_map_pci() - Decode a PCI IRQ from the device tree and map to a VIRQ
569 * @dev: The PCI device needing an IRQ
570 * @slot: PCI slot number; passed when used as map_irq callback. Unused
571 * @pin: PCI IRQ pin number; passed when used as map_irq callback. Unused
572 *
573 * @slot and @pin are unused, but included in the function so that this
574 * function can be used directly as the map_irq callback to
575 * pci_assign_irq() and struct pci_host_bridge.map_irq pointer
576 */
of_irq_parse_and_map_pci(const struct pci_dev * dev,u8 slot,u8 pin)577 int of_irq_parse_and_map_pci(const struct pci_dev *dev, u8 slot, u8 pin)
578 {
579 struct of_phandle_args oirq;
580 int ret;
581
582 ret = of_irq_parse_pci(dev, &oirq);
583 if (ret)
584 return 0; /* Proper return code 0 == NO_IRQ */
585
586 return irq_create_of_mapping(&oirq);
587 }
588 EXPORT_SYMBOL_GPL(of_irq_parse_and_map_pci);
589 #endif /* CONFIG_OF_IRQ */
590
pci_parse_request_of_pci_ranges(struct device * dev,struct pci_host_bridge * bridge)591 static int pci_parse_request_of_pci_ranges(struct device *dev,
592 struct pci_host_bridge *bridge)
593 {
594 int err, res_valid = 0;
595 resource_size_t iobase;
596 struct resource_entry *win, *tmp;
597
598 INIT_LIST_HEAD(&bridge->windows);
599 INIT_LIST_HEAD(&bridge->dma_ranges);
600
601 err = devm_of_pci_get_host_bridge_resources(dev, &bridge->windows,
602 &bridge->dma_ranges, &iobase);
603 if (err)
604 return err;
605
606 err = devm_request_pci_bus_resources(dev, &bridge->windows);
607 if (err)
608 return err;
609
610 resource_list_for_each_entry_safe(win, tmp, &bridge->windows) {
611 struct resource *res = win->res;
612
613 switch (resource_type(res)) {
614 case IORESOURCE_IO:
615 err = devm_pci_remap_iospace(dev, res, iobase);
616 if (err) {
617 dev_warn(dev, "error %d: failed to map resource %pR\n",
618 err, res);
619 resource_list_destroy_entry(win);
620 }
621 break;
622 case IORESOURCE_MEM:
623 res_valid |= !(res->flags & IORESOURCE_PREFETCH);
624
625 if (!(res->flags & IORESOURCE_PREFETCH))
626 if (upper_32_bits(resource_size(res)))
627 dev_warn(dev, "Memory resource size exceeds max for 32 bits\n");
628
629 break;
630 }
631 }
632
633 if (!res_valid)
634 dev_warn(dev, "non-prefetchable memory resource required\n");
635
636 return 0;
637 }
638
devm_of_pci_bridge_init(struct device * dev,struct pci_host_bridge * bridge)639 int devm_of_pci_bridge_init(struct device *dev, struct pci_host_bridge *bridge)
640 {
641 if (!dev->of_node)
642 return 0;
643
644 bridge->swizzle_irq = pci_common_swizzle;
645 bridge->map_irq = of_irq_parse_and_map_pci;
646
647 return pci_parse_request_of_pci_ranges(dev, bridge);
648 }
649
650 #ifdef CONFIG_PCI_DYNAMIC_OF_NODES
651
of_pci_remove_node(struct pci_dev * pdev)652 void of_pci_remove_node(struct pci_dev *pdev)
653 {
654 struct device_node *np;
655
656 np = pci_device_to_OF_node(pdev);
657 if (!np || !of_node_check_flag(np, OF_DYNAMIC))
658 return;
659
660 device_remove_of_node(&pdev->dev);
661 of_changeset_revert(np->data);
662 of_changeset_destroy(np->data);
663 of_node_put(np);
664 }
665
of_pci_make_dev_node(struct pci_dev * pdev)666 void of_pci_make_dev_node(struct pci_dev *pdev)
667 {
668 struct device_node *ppnode, *np = NULL;
669 const char *pci_type;
670 struct of_changeset *cset;
671 const char *name;
672 int ret;
673
674 /*
675 * If there is already a device tree node linked to this device,
676 * return immediately.
677 */
678 if (pci_device_to_OF_node(pdev))
679 return;
680
681 /* Check if there is device tree node for parent device */
682 if (!pdev->bus->self)
683 ppnode = pdev->bus->dev.of_node;
684 else
685 ppnode = pdev->bus->self->dev.of_node;
686 if (!ppnode)
687 return;
688
689 if (pci_is_bridge(pdev))
690 pci_type = "pci";
691 else
692 pci_type = "dev";
693
694 name = kasprintf(GFP_KERNEL, "%s@%x,%x", pci_type,
695 PCI_SLOT(pdev->devfn), PCI_FUNC(pdev->devfn));
696 if (!name)
697 return;
698
699 cset = kmalloc(sizeof(*cset), GFP_KERNEL);
700 if (!cset)
701 goto out_free_name;
702 of_changeset_init(cset);
703
704 np = of_changeset_create_node(cset, ppnode, name);
705 if (!np)
706 goto out_destroy_cset;
707
708 ret = of_pci_add_properties(pdev, cset, np);
709 if (ret)
710 goto out_free_node;
711
712 ret = of_changeset_apply(cset);
713 if (ret)
714 goto out_free_node;
715
716 np->data = cset;
717
718 ret = device_add_of_node(&pdev->dev, np);
719 if (ret)
720 goto out_revert_cset;
721
722 kfree(name);
723
724 return;
725
726 out_revert_cset:
727 np->data = NULL;
728 of_changeset_revert(cset);
729 out_free_node:
730 of_node_put(np);
731 out_destroy_cset:
732 of_changeset_destroy(cset);
733 kfree(cset);
734 out_free_name:
735 kfree(name);
736 }
737
of_pci_remove_host_bridge_node(struct pci_host_bridge * bridge)738 void of_pci_remove_host_bridge_node(struct pci_host_bridge *bridge)
739 {
740 struct device_node *np;
741
742 np = pci_bus_to_OF_node(bridge->bus);
743 if (!np || !of_node_check_flag(np, OF_DYNAMIC))
744 return;
745
746 device_remove_of_node(&bridge->bus->dev);
747 device_remove_of_node(&bridge->dev);
748 of_changeset_revert(np->data);
749 of_changeset_destroy(np->data);
750 of_node_put(np);
751 }
752
of_pci_make_host_bridge_node(struct pci_host_bridge * bridge)753 void of_pci_make_host_bridge_node(struct pci_host_bridge *bridge)
754 {
755 struct device_node *np = NULL;
756 struct of_changeset *cset;
757 const char *name;
758 int ret;
759
760 /*
761 * If there is already a device tree node linked to the PCI bus handled
762 * by this bridge (i.e. the PCI root bus), nothing to do.
763 */
764 if (pci_bus_to_OF_node(bridge->bus))
765 return;
766
767 /*
768 * The root bus has no node. Check that the host bridge has no node
769 * too
770 */
771 if (bridge->dev.of_node) {
772 dev_err(&bridge->dev, "PCI host bridge of_node already set");
773 return;
774 }
775
776 /* Check if there is a DT root node to attach the created node */
777 if (!of_root) {
778 pr_err("of_root node is NULL, cannot create PCI host bridge node\n");
779 return;
780 }
781
782 name = kasprintf(GFP_KERNEL, "pci@%x,%x", pci_domain_nr(bridge->bus),
783 bridge->bus->number);
784 if (!name)
785 return;
786
787 cset = kmalloc(sizeof(*cset), GFP_KERNEL);
788 if (!cset)
789 goto out_free_name;
790 of_changeset_init(cset);
791
792 np = of_changeset_create_node(cset, of_root, name);
793 if (!np)
794 goto out_destroy_cset;
795
796 ret = of_pci_add_host_bridge_properties(bridge, cset, np);
797 if (ret)
798 goto out_free_node;
799
800 /*
801 * This of_node will be added to an existing device. The of_node parent
802 * is the root OF node and so this node will be handled by the platform
803 * bus. Avoid any new device creation.
804 */
805 of_node_set_flag(np, OF_POPULATED);
806 np->fwnode.dev = &bridge->dev;
807 fwnode_dev_initialized(&np->fwnode, true);
808
809 ret = of_changeset_apply(cset);
810 if (ret)
811 goto out_free_node;
812
813 np->data = cset;
814
815 /* Add the of_node to host bridge and the root bus */
816 ret = device_add_of_node(&bridge->dev, np);
817 if (ret)
818 goto out_revert_cset;
819
820 ret = device_add_of_node(&bridge->bus->dev, np);
821 if (ret)
822 goto out_remove_bridge_dev_of_node;
823
824 kfree(name);
825
826 return;
827
828 out_remove_bridge_dev_of_node:
829 device_remove_of_node(&bridge->dev);
830 out_revert_cset:
831 np->data = NULL;
832 of_changeset_revert(cset);
833 out_free_node:
834 of_node_put(np);
835 out_destroy_cset:
836 of_changeset_destroy(cset);
837 kfree(cset);
838 out_free_name:
839 kfree(name);
840 }
841
842 #endif /* CONFIG_PCI_DYNAMIC_OF_NODES */
843
844 /**
845 * of_pci_supply_present() - Check if the power supply is present for the PCI
846 * device
847 * @np: Device tree node
848 *
849 * Check if the power supply for the PCI device is present in the device tree
850 * node or not.
851 *
852 * Return: true if at least one power supply exists; false otherwise.
853 */
of_pci_supply_present(struct device_node * np)854 bool of_pci_supply_present(struct device_node *np)
855 {
856 struct property *prop;
857 char *supply;
858
859 if (!np)
860 return false;
861
862 for_each_property_of_node(np, prop) {
863 supply = strrchr(prop->name, '-');
864 if (supply && !strcmp(supply, "-supply"))
865 return true;
866 }
867
868 return false;
869 }
870
871 #endif /* CONFIG_PCI */
872
873 /**
874 * of_pci_get_max_link_speed - Find the maximum link speed of the given device node.
875 * @node: Device tree node with the maximum link speed information.
876 *
877 * This function will try to find the limitation of link speed by finding
878 * a property called "max-link-speed" of the given device node.
879 *
880 * Return:
881 * * > 0 - On success, a maximum link speed.
882 * * -EINVAL - Invalid "max-link-speed" property value, or failure to access
883 * the property of the device tree node.
884 *
885 * Returns the associated max link speed from DT, or a negative value if the
886 * required property is not found or is invalid.
887 */
of_pci_get_max_link_speed(struct device_node * node)888 int of_pci_get_max_link_speed(struct device_node *node)
889 {
890 u32 max_link_speed;
891
892 if (of_property_read_u32(node, "max-link-speed", &max_link_speed) ||
893 max_link_speed == 0 || max_link_speed > 4)
894 return -EINVAL;
895
896 return max_link_speed;
897 }
898 EXPORT_SYMBOL_GPL(of_pci_get_max_link_speed);
899
900 /**
901 * of_pci_get_slot_power_limit - Parses the "slot-power-limit-milliwatt"
902 * property.
903 *
904 * @node: device tree node with the slot power limit information
905 * @slot_power_limit_value: pointer where the value should be stored in PCIe
906 * Slot Capabilities Register format
907 * @slot_power_limit_scale: pointer where the scale should be stored in PCIe
908 * Slot Capabilities Register format
909 *
910 * Returns the slot power limit in milliwatts and if @slot_power_limit_value
911 * and @slot_power_limit_scale pointers are non-NULL, fills in the value and
912 * scale in format used by PCIe Slot Capabilities Register.
913 *
914 * If the property is not found or is invalid, returns 0.
915 */
of_pci_get_slot_power_limit(struct device_node * node,u8 * slot_power_limit_value,u8 * slot_power_limit_scale)916 u32 of_pci_get_slot_power_limit(struct device_node *node,
917 u8 *slot_power_limit_value,
918 u8 *slot_power_limit_scale)
919 {
920 u32 slot_power_limit_mw;
921 u8 value, scale;
922
923 if (of_property_read_u32(node, "slot-power-limit-milliwatt",
924 &slot_power_limit_mw))
925 slot_power_limit_mw = 0;
926
927 /* Calculate Slot Power Limit Value and Slot Power Limit Scale */
928 if (slot_power_limit_mw == 0) {
929 value = 0x00;
930 scale = 0;
931 } else if (slot_power_limit_mw <= 255) {
932 value = slot_power_limit_mw;
933 scale = 3;
934 } else if (slot_power_limit_mw <= 255*10) {
935 value = slot_power_limit_mw / 10;
936 scale = 2;
937 slot_power_limit_mw = slot_power_limit_mw / 10 * 10;
938 } else if (slot_power_limit_mw <= 255*100) {
939 value = slot_power_limit_mw / 100;
940 scale = 1;
941 slot_power_limit_mw = slot_power_limit_mw / 100 * 100;
942 } else if (slot_power_limit_mw <= 239*1000) {
943 value = slot_power_limit_mw / 1000;
944 scale = 0;
945 slot_power_limit_mw = slot_power_limit_mw / 1000 * 1000;
946 } else if (slot_power_limit_mw < 250*1000) {
947 value = 0xEF;
948 scale = 0;
949 slot_power_limit_mw = 239*1000;
950 } else if (slot_power_limit_mw <= 600*1000) {
951 value = 0xF0 + (slot_power_limit_mw / 1000 - 250) / 25;
952 scale = 0;
953 slot_power_limit_mw = slot_power_limit_mw / (1000*25) * (1000*25);
954 } else {
955 value = 0xFE;
956 scale = 0;
957 slot_power_limit_mw = 600*1000;
958 }
959
960 if (slot_power_limit_value)
961 *slot_power_limit_value = value;
962
963 if (slot_power_limit_scale)
964 *slot_power_limit_scale = scale;
965
966 return slot_power_limit_mw;
967 }
968 EXPORT_SYMBOL_GPL(of_pci_get_slot_power_limit);
969
970 /**
971 * of_pci_get_equalization_presets - Parses the "eq-presets-Ngts" property.
972 *
973 * @dev: Device containing the properties.
974 * @presets: Pointer to store the parsed data.
975 * @num_lanes: Maximum number of lanes supported.
976 *
977 * If the property is present, read and store the data in the @presets structure.
978 * Else, assign a default value of PCI_EQ_RESV.
979 *
980 * Return: 0 if the property is not available or successfully parsed else
981 * errno otherwise.
982 */
of_pci_get_equalization_presets(struct device * dev,struct pci_eq_presets * presets,int num_lanes)983 int of_pci_get_equalization_presets(struct device *dev,
984 struct pci_eq_presets *presets,
985 int num_lanes)
986 {
987 char name[20];
988 int ret;
989
990 presets->eq_presets_8gts[0] = PCI_EQ_RESV;
991 ret = of_property_read_u16_array(dev->of_node, "eq-presets-8gts",
992 presets->eq_presets_8gts, num_lanes);
993 if (ret && ret != -EINVAL) {
994 dev_err(dev, "Error reading eq-presets-8gts: %d\n", ret);
995 return ret;
996 }
997
998 for (int i = 0; i < EQ_PRESET_TYPE_MAX - 1; i++) {
999 presets->eq_presets_Ngts[i][0] = PCI_EQ_RESV;
1000 snprintf(name, sizeof(name), "eq-presets-%dgts", 8 << (i + 1));
1001 ret = of_property_read_u8_array(dev->of_node, name,
1002 presets->eq_presets_Ngts[i],
1003 num_lanes);
1004 if (ret && ret != -EINVAL) {
1005 dev_err(dev, "Error reading %s: %d\n", name, ret);
1006 return ret;
1007 }
1008 }
1009
1010 return 0;
1011 }
1012 EXPORT_SYMBOL_GPL(of_pci_get_equalization_presets);
1013