xref: /dpdk/drivers/bus/pci/linux/pci.c (revision d622cad892a1fc715635d137d1598053fd0b8e3a)
1 /* SPDX-License-Identifier: BSD-3-Clause
2  * Copyright(c) 2010-2014 Intel Corporation
3  */
4 
5 #include <string.h>
6 #include <dirent.h>
7 
8 #include <rte_log.h>
9 #include <rte_bus.h>
10 #include <rte_pci.h>
11 #include <rte_bus_pci.h>
12 #include <rte_eal_memconfig.h>
13 #include <rte_malloc.h>
14 #include <rte_devargs.h>
15 #include <rte_memcpy.h>
16 #include <rte_vfio.h>
17 
18 #include "eal_filesystem.h"
19 
20 #include "private.h"
21 #include "pci_init.h"
22 
23 /**
24  * @file
25  * PCI probing under linux
26  *
27  * This code is used to simulate a PCI probe by parsing information in sysfs.
28  * When a registered device matches a driver, it is then initialized with
29  * IGB_UIO driver (or doesn't initialize, if the device wasn't bound to it).
30  */
31 
32 extern struct rte_pci_bus rte_pci_bus;
33 
34 static int
35 pci_get_kernel_driver_by_path(const char *filename, char *dri_name,
36 			      size_t len)
37 {
38 	int count;
39 	char path[PATH_MAX];
40 	char *name;
41 
42 	if (!filename || !dri_name)
43 		return -1;
44 
45 	count = readlink(filename, path, PATH_MAX);
46 	if (count >= PATH_MAX)
47 		return -1;
48 
49 	/* For device does not have a driver */
50 	if (count < 0)
51 		return 1;
52 
53 	path[count] = '\0';
54 
55 	name = strrchr(path, '/');
56 	if (name) {
57 		strlcpy(dri_name, name + 1, len);
58 		return 0;
59 	}
60 
61 	return -1;
62 }
63 
64 /* Map pci device */
65 int
66 rte_pci_map_device(struct rte_pci_device *dev)
67 {
68 	int ret = -1;
69 
70 	/* try mapping the NIC resources using VFIO if it exists */
71 	switch (dev->kdrv) {
72 	case RTE_KDRV_VFIO:
73 #ifdef VFIO_PRESENT
74 		if (pci_vfio_is_enabled())
75 			ret = pci_vfio_map_resource(dev);
76 #endif
77 		break;
78 	case RTE_KDRV_IGB_UIO:
79 	case RTE_KDRV_UIO_GENERIC:
80 		if (rte_eal_using_phys_addrs()) {
81 			/* map resources for devices that use uio */
82 			ret = pci_uio_map_resource(dev);
83 		}
84 		break;
85 	default:
86 		RTE_LOG(DEBUG, EAL,
87 			"  Not managed by a supported kernel driver, skipped\n");
88 		ret = 1;
89 		break;
90 	}
91 
92 	return ret;
93 }
94 
95 /* Unmap pci device */
96 void
97 rte_pci_unmap_device(struct rte_pci_device *dev)
98 {
99 	/* try unmapping the NIC resources using VFIO if it exists */
100 	switch (dev->kdrv) {
101 	case RTE_KDRV_VFIO:
102 #ifdef VFIO_PRESENT
103 		if (pci_vfio_is_enabled())
104 			pci_vfio_unmap_resource(dev);
105 #endif
106 		break;
107 	case RTE_KDRV_IGB_UIO:
108 	case RTE_KDRV_UIO_GENERIC:
109 		/* unmap resources for devices that use uio */
110 		pci_uio_unmap_resource(dev);
111 		break;
112 	default:
113 		RTE_LOG(DEBUG, EAL,
114 			"  Not managed by a supported kernel driver, skipped\n");
115 		break;
116 	}
117 }
118 
119 static int
120 find_max_end_va(const struct rte_memseg_list *msl, void *arg)
121 {
122 	size_t sz = msl->len;
123 	void *end_va = RTE_PTR_ADD(msl->base_va, sz);
124 	void **max_va = arg;
125 
126 	if (*max_va < end_va)
127 		*max_va = end_va;
128 	return 0;
129 }
130 
131 void *
132 pci_find_max_end_va(void)
133 {
134 	void *va = NULL;
135 
136 	rte_memseg_list_walk(find_max_end_va, &va);
137 	return va;
138 }
139 
140 
141 /* parse one line of the "resource" sysfs file (note that the 'line'
142  * string is modified)
143  */
144 int
145 pci_parse_one_sysfs_resource(char *line, size_t len, uint64_t *phys_addr,
146 	uint64_t *end_addr, uint64_t *flags)
147 {
148 	union pci_resource_info {
149 		struct {
150 			char *phys_addr;
151 			char *end_addr;
152 			char *flags;
153 		};
154 		char *ptrs[PCI_RESOURCE_FMT_NVAL];
155 	} res_info;
156 
157 	if (rte_strsplit(line, len, res_info.ptrs, 3, ' ') != 3) {
158 		RTE_LOG(ERR, EAL,
159 			"%s(): bad resource format\n", __func__);
160 		return -1;
161 	}
162 	errno = 0;
163 	*phys_addr = strtoull(res_info.phys_addr, NULL, 16);
164 	*end_addr = strtoull(res_info.end_addr, NULL, 16);
165 	*flags = strtoull(res_info.flags, NULL, 16);
166 	if (errno != 0) {
167 		RTE_LOG(ERR, EAL,
168 			"%s(): bad resource format\n", __func__);
169 		return -1;
170 	}
171 
172 	return 0;
173 }
174 
175 /* parse the "resource" sysfs file */
176 static int
177 pci_parse_sysfs_resource(const char *filename, struct rte_pci_device *dev)
178 {
179 	FILE *f;
180 	char buf[BUFSIZ];
181 	int i;
182 	uint64_t phys_addr, end_addr, flags;
183 
184 	f = fopen(filename, "r");
185 	if (f == NULL) {
186 		RTE_LOG(ERR, EAL, "Cannot open sysfs resource\n");
187 		return -1;
188 	}
189 
190 	for (i = 0; i<PCI_MAX_RESOURCE; i++) {
191 
192 		if (fgets(buf, sizeof(buf), f) == NULL) {
193 			RTE_LOG(ERR, EAL,
194 				"%s(): cannot read resource\n", __func__);
195 			goto error;
196 		}
197 		if (pci_parse_one_sysfs_resource(buf, sizeof(buf), &phys_addr,
198 				&end_addr, &flags) < 0)
199 			goto error;
200 
201 		if (flags & IORESOURCE_MEM) {
202 			dev->mem_resource[i].phys_addr = phys_addr;
203 			dev->mem_resource[i].len = end_addr - phys_addr + 1;
204 			/* not mapped for now */
205 			dev->mem_resource[i].addr = NULL;
206 		}
207 	}
208 	fclose(f);
209 	return 0;
210 
211 error:
212 	fclose(f);
213 	return -1;
214 }
215 
216 /* Scan one pci sysfs entry, and fill the devices list from it. */
217 static int
218 pci_scan_one(const char *dirname, const struct rte_pci_addr *addr)
219 {
220 	char filename[PATH_MAX];
221 	unsigned long tmp;
222 	struct rte_pci_device *dev;
223 	char driver[PATH_MAX];
224 	int ret;
225 
226 	dev = malloc(sizeof(*dev));
227 	if (dev == NULL)
228 		return -1;
229 
230 	memset(dev, 0, sizeof(*dev));
231 	dev->device.bus = &rte_pci_bus.bus;
232 	dev->addr = *addr;
233 
234 	/* get vendor id */
235 	snprintf(filename, sizeof(filename), "%s/vendor", dirname);
236 	if (eal_parse_sysfs_value(filename, &tmp) < 0) {
237 		free(dev);
238 		return -1;
239 	}
240 	dev->id.vendor_id = (uint16_t)tmp;
241 
242 	/* get device id */
243 	snprintf(filename, sizeof(filename), "%s/device", dirname);
244 	if (eal_parse_sysfs_value(filename, &tmp) < 0) {
245 		free(dev);
246 		return -1;
247 	}
248 	dev->id.device_id = (uint16_t)tmp;
249 
250 	/* get subsystem_vendor id */
251 	snprintf(filename, sizeof(filename), "%s/subsystem_vendor",
252 		 dirname);
253 	if (eal_parse_sysfs_value(filename, &tmp) < 0) {
254 		free(dev);
255 		return -1;
256 	}
257 	dev->id.subsystem_vendor_id = (uint16_t)tmp;
258 
259 	/* get subsystem_device id */
260 	snprintf(filename, sizeof(filename), "%s/subsystem_device",
261 		 dirname);
262 	if (eal_parse_sysfs_value(filename, &tmp) < 0) {
263 		free(dev);
264 		return -1;
265 	}
266 	dev->id.subsystem_device_id = (uint16_t)tmp;
267 
268 	/* get class_id */
269 	snprintf(filename, sizeof(filename), "%s/class",
270 		 dirname);
271 	if (eal_parse_sysfs_value(filename, &tmp) < 0) {
272 		free(dev);
273 		return -1;
274 	}
275 	/* the least 24 bits are valid: class, subclass, program interface */
276 	dev->id.class_id = (uint32_t)tmp & RTE_CLASS_ANY_ID;
277 
278 	/* get max_vfs */
279 	dev->max_vfs = 0;
280 	snprintf(filename, sizeof(filename), "%s/max_vfs", dirname);
281 	if (!access(filename, F_OK) &&
282 	    eal_parse_sysfs_value(filename, &tmp) == 0)
283 		dev->max_vfs = (uint16_t)tmp;
284 	else {
285 		/* for non igb_uio driver, need kernel version >= 3.8 */
286 		snprintf(filename, sizeof(filename),
287 			 "%s/sriov_numvfs", dirname);
288 		if (!access(filename, F_OK) &&
289 		    eal_parse_sysfs_value(filename, &tmp) == 0)
290 			dev->max_vfs = (uint16_t)tmp;
291 	}
292 
293 	/* get numa node, default to 0 if not present */
294 	snprintf(filename, sizeof(filename), "%s/numa_node",
295 		 dirname);
296 
297 	if (access(filename, F_OK) != -1) {
298 		if (eal_parse_sysfs_value(filename, &tmp) == 0)
299 			dev->device.numa_node = tmp;
300 		else
301 			dev->device.numa_node = -1;
302 	} else {
303 		dev->device.numa_node = 0;
304 	}
305 
306 	pci_name_set(dev);
307 
308 	/* parse resources */
309 	snprintf(filename, sizeof(filename), "%s/resource", dirname);
310 	if (pci_parse_sysfs_resource(filename, dev) < 0) {
311 		RTE_LOG(ERR, EAL, "%s(): cannot parse resource\n", __func__);
312 		free(dev);
313 		return -1;
314 	}
315 
316 	/* parse driver */
317 	snprintf(filename, sizeof(filename), "%s/driver", dirname);
318 	ret = pci_get_kernel_driver_by_path(filename, driver, sizeof(driver));
319 	if (ret < 0) {
320 		RTE_LOG(ERR, EAL, "Fail to get kernel driver\n");
321 		free(dev);
322 		return -1;
323 	}
324 
325 	if (!ret) {
326 		if (!strcmp(driver, "vfio-pci"))
327 			dev->kdrv = RTE_KDRV_VFIO;
328 		else if (!strcmp(driver, "igb_uio"))
329 			dev->kdrv = RTE_KDRV_IGB_UIO;
330 		else if (!strcmp(driver, "uio_pci_generic"))
331 			dev->kdrv = RTE_KDRV_UIO_GENERIC;
332 		else
333 			dev->kdrv = RTE_KDRV_UNKNOWN;
334 	} else
335 		dev->kdrv = RTE_KDRV_NONE;
336 
337 	/* device is valid, add in list (sorted) */
338 	if (TAILQ_EMPTY(&rte_pci_bus.device_list)) {
339 		rte_pci_add_device(dev);
340 	} else {
341 		struct rte_pci_device *dev2;
342 		int ret;
343 
344 		TAILQ_FOREACH(dev2, &rte_pci_bus.device_list, next) {
345 			ret = rte_pci_addr_cmp(&dev->addr, &dev2->addr);
346 			if (ret > 0)
347 				continue;
348 
349 			if (ret < 0) {
350 				rte_pci_insert_device(dev2, dev);
351 			} else { /* already registered */
352 				if (!rte_dev_is_probed(&dev2->device)) {
353 					dev2->kdrv = dev->kdrv;
354 					dev2->max_vfs = dev->max_vfs;
355 					pci_name_set(dev2);
356 					memmove(dev2->mem_resource,
357 						dev->mem_resource,
358 						sizeof(dev->mem_resource));
359 				} else {
360 					/**
361 					 * If device is plugged and driver is
362 					 * probed already, (This happens when
363 					 * we call rte_dev_probe which will
364 					 * scan all device on the bus) we don't
365 					 * need to do anything here unless...
366 					 **/
367 					if (dev2->kdrv != dev->kdrv ||
368 						dev2->max_vfs != dev->max_vfs)
369 						/*
370 						 * This should not happens.
371 						 * But it is still possible if
372 						 * we unbind a device from
373 						 * vfio or uio before hotplug
374 						 * remove and rebind it with
375 						 * a different configure.
376 						 * So we just print out the
377 						 * error as an alarm.
378 						 */
379 						RTE_LOG(ERR, EAL, "Unexpected device scan at %s!\n",
380 							filename);
381 				}
382 				free(dev);
383 			}
384 			return 0;
385 		}
386 
387 		rte_pci_add_device(dev);
388 	}
389 
390 	return 0;
391 }
392 
393 int
394 pci_update_device(const struct rte_pci_addr *addr)
395 {
396 	char filename[PATH_MAX];
397 
398 	snprintf(filename, sizeof(filename), "%s/" PCI_PRI_FMT,
399 		 rte_pci_get_sysfs_path(), addr->domain, addr->bus, addr->devid,
400 		 addr->function);
401 
402 	return pci_scan_one(filename, addr);
403 }
404 
405 /*
406  * split up a pci address into its constituent parts.
407  */
408 static int
409 parse_pci_addr_format(const char *buf, int bufsize, struct rte_pci_addr *addr)
410 {
411 	/* first split on ':' */
412 	union splitaddr {
413 		struct {
414 			char *domain;
415 			char *bus;
416 			char *devid;
417 			char *function;
418 		};
419 		char *str[PCI_FMT_NVAL]; /* last element-separator is "." not ":" */
420 	} splitaddr;
421 
422 	char *buf_copy = strndup(buf, bufsize);
423 	if (buf_copy == NULL)
424 		return -1;
425 
426 	if (rte_strsplit(buf_copy, bufsize, splitaddr.str, PCI_FMT_NVAL, ':')
427 			!= PCI_FMT_NVAL - 1)
428 		goto error;
429 	/* final split is on '.' between devid and function */
430 	splitaddr.function = strchr(splitaddr.devid,'.');
431 	if (splitaddr.function == NULL)
432 		goto error;
433 	*splitaddr.function++ = '\0';
434 
435 	/* now convert to int values */
436 	errno = 0;
437 	addr->domain = strtoul(splitaddr.domain, NULL, 16);
438 	addr->bus = strtoul(splitaddr.bus, NULL, 16);
439 	addr->devid = strtoul(splitaddr.devid, NULL, 16);
440 	addr->function = strtoul(splitaddr.function, NULL, 10);
441 	if (errno != 0)
442 		goto error;
443 
444 	free(buf_copy); /* free the copy made with strdup */
445 	return 0;
446 error:
447 	free(buf_copy);
448 	return -1;
449 }
450 
451 /*
452  * Scan the content of the PCI bus, and the devices in the devices
453  * list
454  */
455 int
456 rte_pci_scan(void)
457 {
458 	struct dirent *e;
459 	DIR *dir;
460 	char dirname[PATH_MAX];
461 	struct rte_pci_addr addr;
462 
463 	/* for debug purposes, PCI can be disabled */
464 	if (!rte_eal_has_pci())
465 		return 0;
466 
467 #ifdef VFIO_PRESENT
468 	if (!pci_vfio_is_enabled())
469 		RTE_LOG(DEBUG, EAL, "VFIO PCI modules not loaded\n");
470 #endif
471 
472 	dir = opendir(rte_pci_get_sysfs_path());
473 	if (dir == NULL) {
474 		RTE_LOG(ERR, EAL, "%s(): opendir failed: %s\n",
475 			__func__, strerror(errno));
476 		return -1;
477 	}
478 
479 	while ((e = readdir(dir)) != NULL) {
480 		if (e->d_name[0] == '.')
481 			continue;
482 
483 		if (parse_pci_addr_format(e->d_name, sizeof(e->d_name), &addr) != 0)
484 			continue;
485 
486 		snprintf(dirname, sizeof(dirname), "%s/%s",
487 				rte_pci_get_sysfs_path(), e->d_name);
488 
489 		if (pci_scan_one(dirname, &addr) < 0)
490 			goto error;
491 	}
492 	closedir(dir);
493 	return 0;
494 
495 error:
496 	closedir(dir);
497 	return -1;
498 }
499 
500 #if defined(RTE_ARCH_X86)
501 static bool
502 pci_one_device_iommu_support_va(const struct rte_pci_device *dev)
503 {
504 #define VTD_CAP_MGAW_SHIFT	16
505 #define VTD_CAP_MGAW_MASK	(0x3fULL << VTD_CAP_MGAW_SHIFT)
506 #define X86_VA_WIDTH 47 /* From Documentation/x86/x86_64/mm.txt */
507 	const struct rte_pci_addr *addr = &dev->addr;
508 	char filename[PATH_MAX];
509 	FILE *fp;
510 	uint64_t mgaw, vtd_cap_reg = 0;
511 
512 	snprintf(filename, sizeof(filename),
513 		 "%s/" PCI_PRI_FMT "/iommu/intel-iommu/cap",
514 		 rte_pci_get_sysfs_path(), addr->domain, addr->bus, addr->devid,
515 		 addr->function);
516 	if (access(filename, F_OK) == -1) {
517 		/* We don't have an Intel IOMMU, assume VA supported*/
518 		return true;
519 	}
520 
521 	/* We have an intel IOMMU */
522 	fp = fopen(filename, "r");
523 	if (fp == NULL) {
524 		RTE_LOG(ERR, EAL, "%s(): can't open %s\n", __func__, filename);
525 		return false;
526 	}
527 
528 	if (fscanf(fp, "%" PRIx64, &vtd_cap_reg) != 1) {
529 		RTE_LOG(ERR, EAL, "%s(): can't read %s\n", __func__, filename);
530 		fclose(fp);
531 		return false;
532 	}
533 
534 	fclose(fp);
535 
536 	mgaw = ((vtd_cap_reg & VTD_CAP_MGAW_MASK) >> VTD_CAP_MGAW_SHIFT) + 1;
537 
538 	/*
539 	 * Assuming there is no limitation by now. We can not know at this point
540 	 * because the memory has not been initialized yet. Setting the dma mask
541 	 * will force a check once memory initialization is done. We can not do
542 	 * a fallback to IOVA PA now, but if the dma check fails, the error
543 	 * message should advice for using '--iova-mode pa' if IOVA VA is the
544 	 * current mode.
545 	 */
546 	rte_mem_set_dma_mask(mgaw);
547 	return true;
548 }
549 #elif defined(RTE_ARCH_PPC_64)
550 static bool
551 pci_one_device_iommu_support_va(__rte_unused const struct rte_pci_device *dev)
552 {
553 	return false;
554 }
555 #else
556 static bool
557 pci_one_device_iommu_support_va(__rte_unused const struct rte_pci_device *dev)
558 {
559 	return true;
560 }
561 #endif
562 
563 enum rte_iova_mode
564 pci_device_iova_mode(const struct rte_pci_driver *pdrv,
565 		     const struct rte_pci_device *pdev)
566 {
567 	enum rte_iova_mode iova_mode = RTE_IOVA_DC;
568 	static int iommu_no_va = -1;
569 
570 	switch (pdev->kdrv) {
571 	case RTE_KDRV_VFIO: {
572 #ifdef VFIO_PRESENT
573 		static int is_vfio_noiommu_enabled = -1;
574 
575 		if (is_vfio_noiommu_enabled == -1) {
576 			if (rte_vfio_noiommu_is_enabled() == 1)
577 				is_vfio_noiommu_enabled = 1;
578 			else
579 				is_vfio_noiommu_enabled = 0;
580 		}
581 		if (is_vfio_noiommu_enabled != 0)
582 			iova_mode = RTE_IOVA_PA;
583 		else if ((pdrv->drv_flags & RTE_PCI_DRV_NEED_IOVA_AS_VA) != 0)
584 			iova_mode = RTE_IOVA_VA;
585 #endif
586 		break;
587 	}
588 
589 	case RTE_KDRV_IGB_UIO:
590 	case RTE_KDRV_UIO_GENERIC:
591 		iova_mode = RTE_IOVA_PA;
592 		break;
593 
594 	default:
595 		if ((pdrv->drv_flags & RTE_PCI_DRV_NEED_IOVA_AS_VA) != 0)
596 			iova_mode = RTE_IOVA_VA;
597 		break;
598 	}
599 
600 	if (iova_mode != RTE_IOVA_PA) {
601 		/*
602 		 * We can check this only once, because the IOMMU hardware is
603 		 * the same for all of them.
604 		 */
605 		if (iommu_no_va == -1)
606 			iommu_no_va = pci_one_device_iommu_support_va(pdev)
607 					? 0 : 1;
608 		if (iommu_no_va != 0)
609 			iova_mode = RTE_IOVA_PA;
610 	}
611 	return iova_mode;
612 }
613 
614 /* Read PCI config space. */
615 int rte_pci_read_config(const struct rte_pci_device *device,
616 		void *buf, size_t len, off_t offset)
617 {
618 	char devname[RTE_DEV_NAME_MAX_LEN] = "";
619 	const struct rte_intr_handle *intr_handle = &device->intr_handle;
620 
621 	switch (device->kdrv) {
622 	case RTE_KDRV_IGB_UIO:
623 	case RTE_KDRV_UIO_GENERIC:
624 		return pci_uio_read_config(intr_handle, buf, len, offset);
625 #ifdef VFIO_PRESENT
626 	case RTE_KDRV_VFIO:
627 		return pci_vfio_read_config(intr_handle, buf, len, offset);
628 #endif
629 	default:
630 		rte_pci_device_name(&device->addr, devname,
631 				    RTE_DEV_NAME_MAX_LEN);
632 		RTE_LOG(ERR, EAL,
633 			"Unknown driver type for %s\n", devname);
634 		return -1;
635 	}
636 }
637 
638 /* Write PCI config space. */
639 int rte_pci_write_config(const struct rte_pci_device *device,
640 		const void *buf, size_t len, off_t offset)
641 {
642 	char devname[RTE_DEV_NAME_MAX_LEN] = "";
643 	const struct rte_intr_handle *intr_handle = &device->intr_handle;
644 
645 	switch (device->kdrv) {
646 	case RTE_KDRV_IGB_UIO:
647 	case RTE_KDRV_UIO_GENERIC:
648 		return pci_uio_write_config(intr_handle, buf, len, offset);
649 #ifdef VFIO_PRESENT
650 	case RTE_KDRV_VFIO:
651 		return pci_vfio_write_config(intr_handle, buf, len, offset);
652 #endif
653 	default:
654 		rte_pci_device_name(&device->addr, devname,
655 				    RTE_DEV_NAME_MAX_LEN);
656 		RTE_LOG(ERR, EAL,
657 			"Unknown driver type for %s\n", devname);
658 		return -1;
659 	}
660 }
661 
662 #if defined(RTE_ARCH_X86)
663 static int
664 pci_ioport_map(struct rte_pci_device *dev, int bar __rte_unused,
665 		struct rte_pci_ioport *p)
666 {
667 	uint16_t start, end;
668 	FILE *fp;
669 	char *line = NULL;
670 	char pci_id[16];
671 	int found = 0;
672 	size_t linesz;
673 
674 	snprintf(pci_id, sizeof(pci_id), PCI_PRI_FMT,
675 		 dev->addr.domain, dev->addr.bus,
676 		 dev->addr.devid, dev->addr.function);
677 
678 	fp = fopen("/proc/ioports", "r");
679 	if (fp == NULL) {
680 		RTE_LOG(ERR, EAL, "%s(): can't open ioports\n", __func__);
681 		return -1;
682 	}
683 
684 	while (getdelim(&line, &linesz, '\n', fp) > 0) {
685 		char *ptr = line;
686 		char *left;
687 		int n;
688 
689 		n = strcspn(ptr, ":");
690 		ptr[n] = 0;
691 		left = &ptr[n + 1];
692 
693 		while (*left && isspace(*left))
694 			left++;
695 
696 		if (!strncmp(left, pci_id, strlen(pci_id))) {
697 			found = 1;
698 
699 			while (*ptr && isspace(*ptr))
700 				ptr++;
701 
702 			sscanf(ptr, "%04hx-%04hx", &start, &end);
703 
704 			break;
705 		}
706 	}
707 
708 	free(line);
709 	fclose(fp);
710 
711 	if (!found)
712 		return -1;
713 
714 	p->base = start;
715 	RTE_LOG(DEBUG, EAL, "PCI Port IO found start=0x%x\n", start);
716 
717 	return 0;
718 }
719 #endif
720 
721 int
722 rte_pci_ioport_map(struct rte_pci_device *dev, int bar,
723 		struct rte_pci_ioport *p)
724 {
725 	int ret = -1;
726 
727 	switch (dev->kdrv) {
728 #ifdef VFIO_PRESENT
729 	case RTE_KDRV_VFIO:
730 		if (pci_vfio_is_enabled())
731 			ret = pci_vfio_ioport_map(dev, bar, p);
732 		break;
733 #endif
734 	case RTE_KDRV_IGB_UIO:
735 		ret = pci_uio_ioport_map(dev, bar, p);
736 		break;
737 	case RTE_KDRV_UIO_GENERIC:
738 #if defined(RTE_ARCH_X86)
739 		ret = pci_ioport_map(dev, bar, p);
740 #else
741 		ret = pci_uio_ioport_map(dev, bar, p);
742 #endif
743 		break;
744 	case RTE_KDRV_NONE:
745 #if defined(RTE_ARCH_X86)
746 		ret = pci_ioport_map(dev, bar, p);
747 #endif
748 		break;
749 	default:
750 		break;
751 	}
752 
753 	if (!ret)
754 		p->dev = dev;
755 
756 	return ret;
757 }
758 
759 void
760 rte_pci_ioport_read(struct rte_pci_ioport *p,
761 		void *data, size_t len, off_t offset)
762 {
763 	switch (p->dev->kdrv) {
764 #ifdef VFIO_PRESENT
765 	case RTE_KDRV_VFIO:
766 		pci_vfio_ioport_read(p, data, len, offset);
767 		break;
768 #endif
769 	case RTE_KDRV_IGB_UIO:
770 		pci_uio_ioport_read(p, data, len, offset);
771 		break;
772 	case RTE_KDRV_UIO_GENERIC:
773 		pci_uio_ioport_read(p, data, len, offset);
774 		break;
775 	case RTE_KDRV_NONE:
776 #if defined(RTE_ARCH_X86)
777 		pci_uio_ioport_read(p, data, len, offset);
778 #endif
779 		break;
780 	default:
781 		break;
782 	}
783 }
784 
785 void
786 rte_pci_ioport_write(struct rte_pci_ioport *p,
787 		const void *data, size_t len, off_t offset)
788 {
789 	switch (p->dev->kdrv) {
790 #ifdef VFIO_PRESENT
791 	case RTE_KDRV_VFIO:
792 		pci_vfio_ioport_write(p, data, len, offset);
793 		break;
794 #endif
795 	case RTE_KDRV_IGB_UIO:
796 		pci_uio_ioport_write(p, data, len, offset);
797 		break;
798 	case RTE_KDRV_UIO_GENERIC:
799 		pci_uio_ioport_write(p, data, len, offset);
800 		break;
801 	case RTE_KDRV_NONE:
802 #if defined(RTE_ARCH_X86)
803 		pci_uio_ioport_write(p, data, len, offset);
804 #endif
805 		break;
806 	default:
807 		break;
808 	}
809 }
810 
811 int
812 rte_pci_ioport_unmap(struct rte_pci_ioport *p)
813 {
814 	int ret = -1;
815 
816 	switch (p->dev->kdrv) {
817 #ifdef VFIO_PRESENT
818 	case RTE_KDRV_VFIO:
819 		if (pci_vfio_is_enabled())
820 			ret = pci_vfio_ioport_unmap(p);
821 		break;
822 #endif
823 	case RTE_KDRV_IGB_UIO:
824 		ret = pci_uio_ioport_unmap(p);
825 		break;
826 	case RTE_KDRV_UIO_GENERIC:
827 #if defined(RTE_ARCH_X86)
828 		ret = 0;
829 #else
830 		ret = pci_uio_ioport_unmap(p);
831 #endif
832 		break;
833 	case RTE_KDRV_NONE:
834 #if defined(RTE_ARCH_X86)
835 		ret = 0;
836 #endif
837 		break;
838 	default:
839 		break;
840 	}
841 
842 	return ret;
843 }
844