acpi_pci.c revision 1.28 1 1.28 jmcneill /* $NetBSD: acpi_pci.c,v 1.28 2020/01/18 12:32:57 jmcneill Exp $ */
2 1.1 cegger
3 1.1 cegger /*
4 1.6 jruoho * Copyright (c) 2009, 2010 The NetBSD Foundation, Inc.
5 1.1 cegger * All rights reserved.
6 1.1 cegger *
7 1.1 cegger * This code is derived from software contributed to The NetBSD Foundation
8 1.6 jruoho * by Christoph Egger and Gregoire Sutre.
9 1.1 cegger *
10 1.1 cegger * Redistribution and use in source and binary forms, with or without
11 1.1 cegger * modification, are permitted provided that the following conditions
12 1.1 cegger * are met:
13 1.1 cegger * 1. Redistributions of source code must retain the above copyright
14 1.1 cegger * notice, this list of conditions and the following disclaimer.
15 1.1 cegger * 2. The name of the author may not be used to endorse or promote products
16 1.1 cegger * derived from this software without specific prior written permission.
17 1.1 cegger *
18 1.1 cegger * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
19 1.1 cegger * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
20 1.1 cegger * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
21 1.1 cegger * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
22 1.1 cegger * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
23 1.1 cegger * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
24 1.1 cegger * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED
25 1.1 cegger * AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
26 1.1 cegger * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
27 1.1 cegger * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
28 1.1 cegger * SUCH DAMAGE.
29 1.1 cegger */
30 1.1 cegger
31 1.1 cegger #include <sys/cdefs.h>
32 1.28 jmcneill __KERNEL_RCSID(0, "$NetBSD: acpi_pci.c,v 1.28 2020/01/18 12:32:57 jmcneill Exp $");
33 1.1 cegger
34 1.1 cegger #include <sys/param.h>
35 1.1 cegger #include <sys/device.h>
36 1.1 cegger #include <sys/kmem.h>
37 1.3 jruoho #include <sys/systm.h>
38 1.1 cegger
39 1.6 jruoho #include <dev/pci/pcireg.h>
40 1.17 jruoho #include <dev/pci/pcivar.h>
41 1.6 jruoho #include <dev/pci/pcidevs.h>
42 1.6 jruoho #include <dev/pci/ppbreg.h>
43 1.6 jruoho
44 1.1 cegger #include <dev/acpi/acpireg.h>
45 1.1 cegger #include <dev/acpi/acpivar.h>
46 1.1 cegger #include <dev/acpi/acpi_pci.h>
47 1.1 cegger
48 1.17 jruoho #include "locators.h"
49 1.17 jruoho
50 1.7 jruoho #define _COMPONENT ACPI_BUS_COMPONENT
51 1.7 jruoho ACPI_MODULE_NAME ("acpi_pci")
52 1.6 jruoho
53 1.7 jruoho #define ACPI_HILODWORD(x) ACPI_HIWORD(ACPI_LODWORD((x)))
54 1.7 jruoho #define ACPI_LOLODWORD(x) ACPI_LOWORD(ACPI_LODWORD((x)))
55 1.7 jruoho
56 1.7 jruoho static ACPI_STATUS acpi_pcidev_pciroot_bus(ACPI_HANDLE, uint16_t *);
57 1.7 jruoho static ACPI_STATUS acpi_pcidev_pciroot_bus_callback(ACPI_RESOURCE *,
58 1.7 jruoho void *);
59 1.1 cegger
60 1.6 jruoho /*
61 1.24 jmcneill * UUID for _DSM control method, from PCI Firmware Specification.
62 1.24 jmcneill */
63 1.24 jmcneill static UINT8 acpi_pci_dsm_uuid[ACPI_UUID_LENGTH] = {
64 1.24 jmcneill 0xd0, 0x37, 0xc9, 0xe5, 0x53, 0x35, 0x7a, 0x4d,
65 1.24 jmcneill 0x91, 0x17, 0xea, 0x4d, 0x19, 0xc3, 0x43, 0x4d
66 1.24 jmcneill };
67 1.24 jmcneill
68 1.24 jmcneill /*
69 1.11 jruoho * Regarding PCI Segment Groups (ACPI 4.0, p. 277):
70 1.6 jruoho *
71 1.6 jruoho * "The optional _SEG object is located under a PCI host bridge and
72 1.11 jruoho * evaluates to an integer that describes the PCI Segment Group (see PCI
73 1.11 jruoho * Firmware Specification v3.0)."
74 1.11 jruoho *
75 1.11 jruoho * "PCI Segment Group is purely a software concept managed by system
76 1.11 jruoho * firmware and used by OSPM. It is a logical collection of PCI buses
77 1.11 jruoho * (or bus segments). It is a way to logically group the PCI bus segments
78 1.11 jruoho * and PCI Express Hierarchies. _SEG is a level higher than _BBN."
79 1.6 jruoho *
80 1.6 jruoho * "PCI Segment Group supports more than 256 buses in a system by allowing
81 1.11 jruoho * the reuse of the PCI bus numbers. Within each PCI Segment Group, the bus
82 1.11 jruoho * numbers for the PCI buses must be unique. PCI buses in different PCI
83 1.11 jruoho * Segment Group are permitted to have the same bus number."
84 1.6 jruoho */
85 1.1 cegger
86 1.6 jruoho /*
87 1.11 jruoho * Regarding PCI Base Bus Numbers (ACPI 4.0, p. 277):
88 1.6 jruoho *
89 1.6 jruoho * "For multi-root PCI platforms, the _BBN object evaluates to the PCI bus
90 1.11 jruoho * number that the BIOS assigns. This is needed to access a PCI_Config
91 1.11 jruoho * operation region for the specified bus. The _BBN object is located under
92 1.11 jruoho * a PCI host bridge and must be unique for every host bridge within a
93 1.11 jruoho * segment since it is the PCI bus number."
94 1.6 jruoho *
95 1.6 jruoho * Moreover, the ACPI FAQ (http://www.acpi.info/acpi_faq.htm) says:
96 1.6 jruoho *
97 1.6 jruoho * "For a multiple root bus machine, _BBN is required for each bus. _BBN
98 1.11 jruoho * should provide the bus number assigned to this bus by the BIOS at boot
99 1.11 jruoho * time."
100 1.6 jruoho */
101 1.6 jruoho
102 1.6 jruoho /*
103 1.6 jruoho * acpi_pcidev_pciroot_bus:
104 1.6 jruoho *
105 1.6 jruoho * Derive the PCI bus number of a PCI root bridge from its resources.
106 1.6 jruoho * If successful, return AE_OK and fill *busp. Otherwise, return an
107 1.6 jruoho * exception code and leave *busp unchanged.
108 1.6 jruoho */
109 1.6 jruoho static ACPI_STATUS
110 1.6 jruoho acpi_pcidev_pciroot_bus(ACPI_HANDLE handle, uint16_t *busp)
111 1.1 cegger {
112 1.1 cegger ACPI_STATUS rv;
113 1.6 jruoho int32_t bus;
114 1.6 jruoho
115 1.6 jruoho bus = -1;
116 1.11 jruoho
117 1.11 jruoho /*
118 1.11 jruoho * XXX: Use the ACPI resource parsing functions (acpi_resource.c)
119 1.11 jruoho * once bus number ranges have been implemented there.
120 1.11 jruoho */
121 1.11 jruoho rv = AcpiWalkResources(handle, "_CRS",
122 1.6 jruoho acpi_pcidev_pciroot_bus_callback, &bus);
123 1.1 cegger
124 1.1 cegger if (ACPI_FAILURE(rv))
125 1.6 jruoho return rv;
126 1.6 jruoho
127 1.15 gsutre if (bus == -1)
128 1.6 jruoho return AE_NOT_EXIST;
129 1.6 jruoho
130 1.15 gsutre /* Here it holds that 0 <= bus <= 0xFFFF. */
131 1.6 jruoho *busp = (uint16_t)bus;
132 1.8 jruoho
133 1.6 jruoho return rv;
134 1.6 jruoho }
135 1.6 jruoho
136 1.6 jruoho static ACPI_STATUS
137 1.6 jruoho acpi_pcidev_pciroot_bus_callback(ACPI_RESOURCE *res, void *context)
138 1.6 jruoho {
139 1.8 jruoho ACPI_RESOURCE_ADDRESS64 addr64;
140 1.6 jruoho int32_t *bus = context;
141 1.6 jruoho
142 1.8 jruoho /* Always continue the walk by returning AE_OK. */
143 1.6 jruoho if ((res->Type != ACPI_RESOURCE_TYPE_ADDRESS16) &&
144 1.6 jruoho (res->Type != ACPI_RESOURCE_TYPE_ADDRESS32) &&
145 1.6 jruoho (res->Type != ACPI_RESOURCE_TYPE_ADDRESS64))
146 1.8 jruoho return AE_OK;
147 1.6 jruoho
148 1.6 jruoho if (ACPI_FAILURE(AcpiResourceToAddress64(res, &addr64)))
149 1.8 jruoho return AE_OK;
150 1.6 jruoho
151 1.6 jruoho if (addr64.ResourceType != ACPI_BUS_NUMBER_RANGE)
152 1.8 jruoho return AE_OK;
153 1.6 jruoho
154 1.6 jruoho if (*bus != -1)
155 1.6 jruoho return AE_ALREADY_EXISTS;
156 1.6 jruoho
157 1.19 christos if (addr64.Address.Minimum > 0xFFFF)
158 1.15 gsutre return AE_BAD_DATA;
159 1.15 gsutre
160 1.19 christos *bus = (int32_t)addr64.Address.Minimum;
161 1.8 jruoho
162 1.8 jruoho return AE_OK;
163 1.6 jruoho }
164 1.6 jruoho
165 1.6 jruoho /*
166 1.9 jruoho * acpi_pcidev_scan:
167 1.6 jruoho *
168 1.6 jruoho * Scan the ACPI device tree for PCI devices. A node is detected as a
169 1.6 jruoho * PCI device if it has an ancestor that is a PCI root bridge and such
170 1.6 jruoho * that all intermediate nodes are PCI-to-PCI bridges. Depth-first
171 1.6 jruoho * recursive implementation.
172 1.16 gsutre *
173 1.16 gsutre * PCI root bridges do not necessarily contain an _ADR, since they already
174 1.16 gsutre * contain an _HID (ACPI 4.0a, p. 197). However we require an _ADR for
175 1.16 gsutre * all non-root PCI devices.
176 1.6 jruoho */
177 1.9 jruoho ACPI_STATUS
178 1.9 jruoho acpi_pcidev_scan(struct acpi_devnode *ad)
179 1.6 jruoho {
180 1.6 jruoho struct acpi_devnode *child;
181 1.6 jruoho struct acpi_pci_info *ap;
182 1.6 jruoho ACPI_INTEGER val;
183 1.6 jruoho ACPI_STATUS rv;
184 1.6 jruoho
185 1.13 gsutre ad->ad_pciinfo = NULL;
186 1.13 gsutre
187 1.14 gsutre /*
188 1.14 gsutre * We attach PCI information only to devices that are present,
189 1.14 gsutre * enabled, and functioning properly.
190 1.14 gsutre * Note: there is a possible race condition, because _STA may
191 1.14 gsutre * have changed since ad->ad_devinfo->CurrentStatus was set.
192 1.14 gsutre */
193 1.16 gsutre if (ad->ad_devinfo->Type != ACPI_TYPE_DEVICE)
194 1.16 gsutre goto rec;
195 1.14 gsutre
196 1.22 christos if (!acpi_device_present(ad->ad_handle))
197 1.22 christos goto rec;
198 1.22 christos
199 1.6 jruoho if (ad->ad_devinfo->Flags & ACPI_PCI_ROOT_BRIDGE) {
200 1.8 jruoho
201 1.6 jruoho ap = kmem_zalloc(sizeof(*ap), KM_SLEEP);
202 1.8 jruoho
203 1.11 jruoho /*
204 1.11 jruoho * If no _SEG exist, all PCI bus segments are assumed
205 1.11 jruoho * to be in the PCI segment group 0 (ACPI 4.0, p. 277).
206 1.11 jruoho * The segment group number is conveyed in the lower
207 1.11 jruoho * 16 bits of _SEG (the other bits are all reserved).
208 1.11 jruoho */
209 1.8 jruoho rv = acpi_eval_integer(ad->ad_handle, "_SEG", &val);
210 1.8 jruoho
211 1.6 jruoho if (ACPI_SUCCESS(rv))
212 1.6 jruoho ap->ap_segment = ACPI_LOWORD(val);
213 1.6 jruoho
214 1.16 gsutre /* Try to get downstream bus number using _CRS first. */
215 1.16 gsutre rv = acpi_pcidev_pciroot_bus(ad->ad_handle, &ap->ap_downbus);
216 1.8 jruoho
217 1.6 jruoho if (ACPI_FAILURE(rv)) {
218 1.8 jruoho rv = acpi_eval_integer(ad->ad_handle, "_BBN", &val);
219 1.8 jruoho
220 1.6 jruoho if (ACPI_SUCCESS(rv))
221 1.16 gsutre ap->ap_downbus = ACPI_LOWORD(val);
222 1.6 jruoho }
223 1.6 jruoho
224 1.16 gsutre if (ap->ap_downbus > 255) {
225 1.13 gsutre aprint_error_dev(ad->ad_root,
226 1.16 gsutre "invalid PCI downstream bus for %s\n", ad->ad_name);
227 1.13 gsutre kmem_free(ap, sizeof(*ap));
228 1.13 gsutre goto rec;
229 1.13 gsutre }
230 1.13 gsutre
231 1.16 gsutre ap->ap_flags |= ACPI_PCI_INFO_BRIDGE;
232 1.16 gsutre
233 1.27 jmcneill ap->ap_pc = acpi_get_pci_chipset_tag(acpi_softc, ap->ap_segment, ap->ap_downbus);
234 1.27 jmcneill
235 1.16 gsutre /*
236 1.16 gsutre * This ACPI node denotes a PCI root bridge, but it may also
237 1.16 gsutre * denote a PCI device on the bridge's downstream bus segment.
238 1.16 gsutre */
239 1.16 gsutre if (ad->ad_devinfo->Valid & ACPI_VALID_ADR) {
240 1.16 gsutre ap->ap_bus = ap->ap_downbus;
241 1.16 gsutre ap->ap_device =
242 1.16 gsutre ACPI_HILODWORD(ad->ad_devinfo->Address);
243 1.16 gsutre ap->ap_function =
244 1.16 gsutre ACPI_LOLODWORD(ad->ad_devinfo->Address);
245 1.16 gsutre
246 1.16 gsutre if (ap->ap_device > 31 ||
247 1.16 gsutre (ap->ap_function > 7 && ap->ap_function != 0xFFFF))
248 1.16 gsutre aprint_error_dev(ad->ad_root,
249 1.16 gsutre "invalid PCI address for %s\n", ad->ad_name);
250 1.16 gsutre else
251 1.16 gsutre ap->ap_flags |= ACPI_PCI_INFO_DEVICE;
252 1.16 gsutre }
253 1.6 jruoho
254 1.6 jruoho ad->ad_pciinfo = ap;
255 1.8 jruoho
256 1.6 jruoho goto rec;
257 1.6 jruoho }
258 1.6 jruoho
259 1.6 jruoho if ((ad->ad_parent != NULL) &&
260 1.6 jruoho (ad->ad_parent->ad_pciinfo != NULL) &&
261 1.16 gsutre (ad->ad_parent->ad_pciinfo->ap_flags & ACPI_PCI_INFO_BRIDGE) &&
262 1.16 gsutre (ad->ad_devinfo->Valid & ACPI_VALID_ADR)) {
263 1.11 jruoho
264 1.6 jruoho /*
265 1.11 jruoho * Our parent is a PCI root bridge or a PCI-to-PCI
266 1.11 jruoho * bridge. We have the same PCI segment number, and
267 1.11 jruoho * our bus number is its downstream bus number.
268 1.6 jruoho */
269 1.6 jruoho ap = kmem_zalloc(sizeof(*ap), KM_SLEEP);
270 1.8 jruoho
271 1.27 jmcneill ap->ap_pc = ad->ad_parent->ad_pciinfo->ap_pc;
272 1.6 jruoho ap->ap_segment = ad->ad_parent->ad_pciinfo->ap_segment;
273 1.6 jruoho ap->ap_bus = ad->ad_parent->ad_pciinfo->ap_downbus;
274 1.7 jruoho
275 1.7 jruoho ap->ap_device = ACPI_HILODWORD(ad->ad_devinfo->Address);
276 1.7 jruoho ap->ap_function = ACPI_LOLODWORD(ad->ad_devinfo->Address);
277 1.1 cegger
278 1.15 gsutre if (ap->ap_device > 31 ||
279 1.15 gsutre (ap->ap_function > 7 && ap->ap_function != 0xFFFF)) {
280 1.13 gsutre aprint_error_dev(ad->ad_root,
281 1.13 gsutre "invalid PCI address for %s\n", ad->ad_name);
282 1.13 gsutre kmem_free(ap, sizeof(*ap));
283 1.13 gsutre goto rec;
284 1.13 gsutre }
285 1.13 gsutre
286 1.16 gsutre ap->ap_flags |= ACPI_PCI_INFO_DEVICE;
287 1.16 gsutre
288 1.15 gsutre if (ap->ap_function == 0xFFFF) {
289 1.15 gsutre /*
290 1.15 gsutre * Assume that this device is not a PCI-to-PCI bridge.
291 1.15 gsutre * XXX: Do we need to be smarter?
292 1.15 gsutre */
293 1.15 gsutre } else {
294 1.15 gsutre /*
295 1.15 gsutre * Check whether this device is a PCI-to-PCI
296 1.15 gsutre * bridge and get its secondary bus number.
297 1.15 gsutre */
298 1.27 jmcneill rv = acpi_pcidev_ppb_downbus(
299 1.27 jmcneill ad->ad_parent->ad_pciinfo->ap_pc,
300 1.27 jmcneill ap->ap_segment, ap->ap_bus, ap->ap_device,
301 1.27 jmcneill ap->ap_function, &ap->ap_downbus);
302 1.15 gsutre
303 1.16 gsutre if (ACPI_SUCCESS(rv))
304 1.16 gsutre ap->ap_flags |= ACPI_PCI_INFO_BRIDGE;
305 1.15 gsutre }
306 1.6 jruoho
307 1.6 jruoho ad->ad_pciinfo = ap;
308 1.8 jruoho
309 1.6 jruoho goto rec;
310 1.6 jruoho }
311 1.9 jruoho
312 1.8 jruoho rec:
313 1.6 jruoho SIMPLEQ_FOREACH(child, &ad->ad_child_head, ad_child_list) {
314 1.9 jruoho rv = acpi_pcidev_scan(child);
315 1.8 jruoho
316 1.6 jruoho if (ACPI_FAILURE(rv))
317 1.6 jruoho return rv;
318 1.1 cegger }
319 1.1 cegger
320 1.6 jruoho return AE_OK;
321 1.6 jruoho }
322 1.6 jruoho
323 1.6 jruoho /*
324 1.6 jruoho * acpi_pcidev_ppb_downbus:
325 1.6 jruoho *
326 1.6 jruoho * Retrieve the secondary bus number of the PCI-to-PCI bridge having the
327 1.13 gsutre * given PCI id. If successful, return AE_OK and fill *downbus.
328 1.13 gsutre * Otherwise, return an exception code and leave *downbus unchanged.
329 1.6 jruoho *
330 1.6 jruoho * XXX Need to deal with PCI segment groups (see also acpica/OsdHardware.c).
331 1.6 jruoho */
332 1.6 jruoho ACPI_STATUS
333 1.27 jmcneill acpi_pcidev_ppb_downbus(pci_chipset_tag_t pc, uint16_t segment, uint16_t bus,
334 1.27 jmcneill uint16_t device, uint16_t function, uint16_t *downbus)
335 1.6 jruoho {
336 1.6 jruoho pcitag_t tag;
337 1.6 jruoho pcireg_t val;
338 1.6 jruoho
339 1.6 jruoho if (bus > 255 || device > 31 || function > 7)
340 1.6 jruoho return AE_BAD_PARAMETER;
341 1.1 cegger
342 1.6 jruoho tag = pci_make_tag(pc, bus, device, function);
343 1.1 cegger
344 1.6 jruoho /* Check that this device exists. */
345 1.6 jruoho val = pci_conf_read(pc, tag, PCI_ID_REG);
346 1.8 jruoho
347 1.6 jruoho if (PCI_VENDOR(val) == PCI_VENDOR_INVALID ||
348 1.6 jruoho PCI_VENDOR(val) == 0)
349 1.6 jruoho return AE_NOT_EXIST;
350 1.6 jruoho
351 1.6 jruoho /* Check that this device is a PCI-to-PCI bridge. */
352 1.6 jruoho val = pci_conf_read(pc, tag, PCI_BHLC_REG);
353 1.8 jruoho
354 1.6 jruoho if (PCI_HDRTYPE_TYPE(val) != PCI_HDRTYPE_PPB)
355 1.6 jruoho return AE_TYPE;
356 1.6 jruoho
357 1.6 jruoho /* This is a PCI-to-PCI bridge. Get its secondary bus#. */
358 1.26 msaitoh val = pci_conf_read(pc, tag, PCI_BRIDGE_BUS_REG);
359 1.26 msaitoh *downbus = PCI_BRIDGE_BUS_NUM_SECONDARY(val);
360 1.8 jruoho
361 1.6 jruoho return AE_OK;
362 1.1 cegger }
363 1.1 cegger
364 1.1 cegger /*
365 1.1 cegger * acpi_pcidev_find:
366 1.1 cegger *
367 1.1 cegger * Finds a PCI device in the ACPI name space.
368 1.10 jruoho *
369 1.10 jruoho * Returns an ACPI device node on success and NULL on failure.
370 1.1 cegger */
371 1.10 jruoho struct acpi_devnode *
372 1.10 jruoho acpi_pcidev_find(uint16_t segment, uint16_t bus,
373 1.10 jruoho uint16_t device, uint16_t function)
374 1.1 cegger {
375 1.6 jruoho struct acpi_softc *sc = acpi_softc;
376 1.6 jruoho struct acpi_devnode *ad;
377 1.1 cegger
378 1.6 jruoho if (sc == NULL)
379 1.10 jruoho return NULL;
380 1.1 cegger
381 1.6 jruoho SIMPLEQ_FOREACH(ad, &sc->ad_head, ad_list) {
382 1.8 jruoho
383 1.10 jruoho if (ad->ad_pciinfo != NULL &&
384 1.16 gsutre (ad->ad_pciinfo->ap_flags & ACPI_PCI_INFO_DEVICE) &&
385 1.10 jruoho ad->ad_pciinfo->ap_segment == segment &&
386 1.10 jruoho ad->ad_pciinfo->ap_bus == bus &&
387 1.10 jruoho ad->ad_pciinfo->ap_device == device &&
388 1.10 jruoho ad->ad_pciinfo->ap_function == function)
389 1.10 jruoho return ad;
390 1.1 cegger }
391 1.8 jruoho
392 1.10 jruoho return NULL;
393 1.1 cegger }
394 1.17 jruoho
395 1.23 jmcneill /*
396 1.27 jmcneill * acpi_pcidev_get_tag:
397 1.27 jmcneill *
398 1.27 jmcneill * Returns a PCI chipset tag for a PCI device in the ACPI name space.
399 1.27 jmcneill */
400 1.27 jmcneill pci_chipset_tag_t
401 1.27 jmcneill acpi_pcidev_get_tag(uint16_t segment, uint16_t bus,
402 1.27 jmcneill uint16_t device, uint16_t function)
403 1.27 jmcneill {
404 1.27 jmcneill struct acpi_devnode *ad;
405 1.27 jmcneill
406 1.27 jmcneill ad = acpi_pcidev_find(segment, bus, device, function);
407 1.27 jmcneill if (ad == NULL || ad->ad_pciinfo == NULL)
408 1.27 jmcneill return NULL;
409 1.27 jmcneill
410 1.27 jmcneill return ad->ad_pciinfo->ap_pc;
411 1.27 jmcneill }
412 1.27 jmcneill
413 1.27 jmcneill /*
414 1.23 jmcneill * acpi_pciroot_find:
415 1.23 jmcneill *
416 1.23 jmcneill * Finds a PCI root bridge in the ACPI name space.
417 1.23 jmcneill *
418 1.23 jmcneill * Returns an ACPI device node on success and NULL on failure.
419 1.23 jmcneill */
420 1.23 jmcneill struct acpi_devnode *
421 1.23 jmcneill acpi_pciroot_find(uint16_t segment, uint16_t bus)
422 1.23 jmcneill {
423 1.23 jmcneill struct acpi_softc *sc = acpi_softc;
424 1.23 jmcneill struct acpi_devnode *ad;
425 1.23 jmcneill
426 1.23 jmcneill if (sc == NULL)
427 1.23 jmcneill return NULL;
428 1.23 jmcneill
429 1.23 jmcneill SIMPLEQ_FOREACH(ad, &sc->ad_head, ad_list) {
430 1.23 jmcneill
431 1.23 jmcneill if (ad->ad_pciinfo != NULL &&
432 1.23 jmcneill (ad->ad_pciinfo->ap_flags & ACPI_PCI_INFO_BRIDGE) &&
433 1.23 jmcneill ad->ad_pciinfo->ap_segment == segment &&
434 1.23 jmcneill ad->ad_pciinfo->ap_bus == bus)
435 1.23 jmcneill return ad;
436 1.23 jmcneill }
437 1.23 jmcneill
438 1.23 jmcneill return NULL;
439 1.23 jmcneill }
440 1.17 jruoho
441 1.17 jruoho /*
442 1.17 jruoho * acpi_pcidev_find_dev:
443 1.17 jruoho *
444 1.17 jruoho * Returns the device corresponding to the given PCI info, or NULL
445 1.17 jruoho * if it doesn't exist.
446 1.17 jruoho */
447 1.17 jruoho device_t
448 1.18 jruoho acpi_pcidev_find_dev(struct acpi_devnode *ad)
449 1.17 jruoho {
450 1.18 jruoho struct acpi_pci_info *ap;
451 1.17 jruoho struct pci_softc *pci;
452 1.17 jruoho device_t dv, pr;
453 1.17 jruoho deviter_t di;
454 1.17 jruoho
455 1.18 jruoho if (ad == NULL)
456 1.18 jruoho return NULL;
457 1.18 jruoho
458 1.18 jruoho if (ad->ad_pciinfo == NULL)
459 1.17 jruoho return NULL;
460 1.17 jruoho
461 1.18 jruoho ap = ad->ad_pciinfo;
462 1.18 jruoho
463 1.17 jruoho if (ap->ap_function == 0xFFFF)
464 1.17 jruoho return NULL;
465 1.17 jruoho
466 1.17 jruoho for (dv = deviter_first(&di, DEVITER_F_ROOT_FIRST);
467 1.17 jruoho dv != NULL; dv = deviter_next(&di)) {
468 1.17 jruoho
469 1.17 jruoho pr = device_parent(dv);
470 1.17 jruoho
471 1.17 jruoho if (pr == NULL || device_is_a(pr, "pci") != true)
472 1.17 jruoho continue;
473 1.17 jruoho
474 1.17 jruoho if (dv->dv_locators == NULL) /* This should not happen. */
475 1.17 jruoho continue;
476 1.17 jruoho
477 1.17 jruoho pci = device_private(pr);
478 1.17 jruoho
479 1.17 jruoho if (pci->sc_bus == ap->ap_bus &&
480 1.17 jruoho device_locator(dv, PCICF_DEV) == ap->ap_device &&
481 1.17 jruoho device_locator(dv, PCICF_FUNCTION) == ap->ap_function)
482 1.17 jruoho break;
483 1.17 jruoho }
484 1.17 jruoho
485 1.17 jruoho deviter_release(&di);
486 1.17 jruoho
487 1.17 jruoho return dv;
488 1.17 jruoho }
489 1.24 jmcneill
490 1.24 jmcneill /*
491 1.24 jmcneill * acpi_pci_ignore_boot_config:
492 1.24 jmcneill *
493 1.24 jmcneill * Returns 1 if the operating system may ignore the boot configuration
494 1.24 jmcneill * of PCI resources.
495 1.24 jmcneill */
496 1.24 jmcneill ACPI_INTEGER
497 1.24 jmcneill acpi_pci_ignore_boot_config(ACPI_HANDLE handle)
498 1.24 jmcneill {
499 1.24 jmcneill ACPI_OBJECT_LIST objs;
500 1.24 jmcneill ACPI_OBJECT obj[4], *pobj;
501 1.24 jmcneill ACPI_BUFFER buf;
502 1.24 jmcneill ACPI_INTEGER ret;
503 1.24 jmcneill
504 1.24 jmcneill objs.Count = 4;
505 1.24 jmcneill objs.Pointer = obj;
506 1.24 jmcneill obj[0].Type = ACPI_TYPE_BUFFER;
507 1.24 jmcneill obj[0].Buffer.Length = ACPI_UUID_LENGTH;
508 1.24 jmcneill obj[0].Buffer.Pointer = acpi_pci_dsm_uuid;
509 1.24 jmcneill obj[1].Type = ACPI_TYPE_INTEGER;
510 1.24 jmcneill obj[1].Integer.Value = 1;
511 1.24 jmcneill obj[2].Type = ACPI_TYPE_INTEGER;
512 1.24 jmcneill obj[2].Integer.Value = 5;
513 1.24 jmcneill obj[3].Type = ACPI_TYPE_PACKAGE;
514 1.24 jmcneill obj[3].Package.Count = 0;
515 1.24 jmcneill obj[3].Package.Elements = NULL;
516 1.24 jmcneill
517 1.24 jmcneill buf.Pointer = NULL;
518 1.24 jmcneill buf.Length = ACPI_ALLOCATE_LOCAL_BUFFER;
519 1.24 jmcneill
520 1.24 jmcneill if (ACPI_FAILURE(AcpiEvaluateObject(handle, "_DSM", &objs, &buf)) || buf.Pointer == NULL)
521 1.28 jmcneill return 1;
522 1.24 jmcneill
523 1.28 jmcneill ret = 1;
524 1.24 jmcneill
525 1.24 jmcneill pobj = buf.Pointer;
526 1.24 jmcneill switch (pobj->Type) {
527 1.24 jmcneill case ACPI_TYPE_INTEGER:
528 1.24 jmcneill ret = pobj->Integer.Value;
529 1.24 jmcneill break;
530 1.24 jmcneill case ACPI_TYPE_PACKAGE:
531 1.24 jmcneill if (pobj->Package.Count == 1 && pobj->Package.Elements[0].Type == ACPI_TYPE_INTEGER)
532 1.24 jmcneill ret = pobj->Package.Elements[0].Integer.Value;
533 1.24 jmcneill break;
534 1.24 jmcneill }
535 1.24 jmcneill
536 1.24 jmcneill ACPI_FREE(buf.Pointer);
537 1.24 jmcneill
538 1.24 jmcneill return ret;
539 1.24 jmcneill }
540