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1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Copyright IBM Corp. 2012
4  *
5  * Author(s):
6  *   Jan Glauber <jang@linux.vnet.ibm.com>
7  *
8  * The System z PCI code is a rewrite from a prototype by
9  * the following people (Kudoz!):
10  *   Alexander Schmidt
11  *   Christoph Raisch
12  *   Hannes Hering
13  *   Hoang-Nam Nguyen
14  *   Jan-Bernd Themann
15  *   Stefan Roscher
16  *   Thomas Klein
17  */
18 
19 #define KMSG_COMPONENT "zpci"
20 #define pr_fmt(fmt) KMSG_COMPONENT ": " fmt
21 
22 #include <linux/kernel.h>
23 #include <linux/slab.h>
24 #include <linux/err.h>
25 #include <linux/export.h>
26 #include <linux/delay.h>
27 #include <linux/seq_file.h>
28 #include <linux/jump_label.h>
29 #include <linux/pci.h>
30 #include <linux/printk.h>
31 
32 #include <asm/isc.h>
33 #include <asm/airq.h>
34 #include <asm/facility.h>
35 #include <asm/pci_insn.h>
36 #include <asm/pci_clp.h>
37 #include <asm/pci_dma.h>
38 
39 #include "pci_bus.h"
40 #include "pci_iov.h"
41 
42 /* list of all detected zpci devices */
43 static LIST_HEAD(zpci_list);
44 static DEFINE_SPINLOCK(zpci_list_lock);
45 
46 static DECLARE_BITMAP(zpci_domain, ZPCI_DOMAIN_BITMAP_SIZE);
47 static DEFINE_SPINLOCK(zpci_domain_lock);
48 
49 #define ZPCI_IOMAP_ENTRIES						\
50 	min(((unsigned long) ZPCI_NR_DEVICES * PCI_STD_NUM_BARS / 2),	\
51 	    ZPCI_IOMAP_MAX_ENTRIES)
52 
53 unsigned int s390_pci_no_rid;
54 
55 static DEFINE_SPINLOCK(zpci_iomap_lock);
56 static unsigned long *zpci_iomap_bitmap;
57 struct zpci_iomap_entry *zpci_iomap_start;
58 EXPORT_SYMBOL_GPL(zpci_iomap_start);
59 
60 DEFINE_STATIC_KEY_FALSE(have_mio);
61 
62 static struct kmem_cache *zdev_fmb_cache;
63 
get_zdev_by_fid(u32 fid)64 struct zpci_dev *get_zdev_by_fid(u32 fid)
65 {
66 	struct zpci_dev *tmp, *zdev = NULL;
67 
68 	spin_lock(&zpci_list_lock);
69 	list_for_each_entry(tmp, &zpci_list, entry) {
70 		if (tmp->fid == fid) {
71 			zdev = tmp;
72 			zpci_zdev_get(zdev);
73 			break;
74 		}
75 	}
76 	spin_unlock(&zpci_list_lock);
77 	return zdev;
78 }
79 
zpci_remove_reserved_devices(void)80 void zpci_remove_reserved_devices(void)
81 {
82 	struct zpci_dev *tmp, *zdev;
83 	enum zpci_state state;
84 	LIST_HEAD(remove);
85 
86 	spin_lock(&zpci_list_lock);
87 	list_for_each_entry_safe(zdev, tmp, &zpci_list, entry) {
88 		if (zdev->state == ZPCI_FN_STATE_STANDBY &&
89 		    !clp_get_state(zdev->fid, &state) &&
90 		    state == ZPCI_FN_STATE_RESERVED)
91 			list_move_tail(&zdev->entry, &remove);
92 	}
93 	spin_unlock(&zpci_list_lock);
94 
95 	list_for_each_entry_safe(zdev, tmp, &remove, entry)
96 		zpci_device_reserved(zdev);
97 }
98 
pci_domain_nr(struct pci_bus * bus)99 int pci_domain_nr(struct pci_bus *bus)
100 {
101 	return ((struct zpci_bus *) bus->sysdata)->domain_nr;
102 }
103 EXPORT_SYMBOL_GPL(pci_domain_nr);
104 
pci_proc_domain(struct pci_bus * bus)105 int pci_proc_domain(struct pci_bus *bus)
106 {
107 	return pci_domain_nr(bus);
108 }
109 EXPORT_SYMBOL_GPL(pci_proc_domain);
110 
111 /* Modify PCI: Register I/O address translation parameters */
zpci_register_ioat(struct zpci_dev * zdev,u8 dmaas,u64 base,u64 limit,u64 iota)112 int zpci_register_ioat(struct zpci_dev *zdev, u8 dmaas,
113 		       u64 base, u64 limit, u64 iota)
114 {
115 	u64 req = ZPCI_CREATE_REQ(zdev->fh, dmaas, ZPCI_MOD_FC_REG_IOAT);
116 	struct zpci_fib fib = {0};
117 	u8 status;
118 
119 	WARN_ON_ONCE(iota & 0x3fff);
120 	fib.pba = base;
121 	fib.pal = limit;
122 	fib.iota = iota | ZPCI_IOTA_RTTO_FLAG;
123 	return zpci_mod_fc(req, &fib, &status) ? -EIO : 0;
124 }
125 
126 /* Modify PCI: Unregister I/O address translation parameters */
zpci_unregister_ioat(struct zpci_dev * zdev,u8 dmaas)127 int zpci_unregister_ioat(struct zpci_dev *zdev, u8 dmaas)
128 {
129 	u64 req = ZPCI_CREATE_REQ(zdev->fh, dmaas, ZPCI_MOD_FC_DEREG_IOAT);
130 	struct zpci_fib fib = {0};
131 	u8 cc, status;
132 
133 	cc = zpci_mod_fc(req, &fib, &status);
134 	if (cc == 3) /* Function already gone. */
135 		cc = 0;
136 	return cc ? -EIO : 0;
137 }
138 
139 /* Modify PCI: Set PCI function measurement parameters */
zpci_fmb_enable_device(struct zpci_dev * zdev)140 int zpci_fmb_enable_device(struct zpci_dev *zdev)
141 {
142 	u64 req = ZPCI_CREATE_REQ(zdev->fh, 0, ZPCI_MOD_FC_SET_MEASURE);
143 	struct zpci_fib fib = {0};
144 	u8 cc, status;
145 
146 	if (zdev->fmb || sizeof(*zdev->fmb) < zdev->fmb_length)
147 		return -EINVAL;
148 
149 	zdev->fmb = kmem_cache_zalloc(zdev_fmb_cache, GFP_KERNEL);
150 	if (!zdev->fmb)
151 		return -ENOMEM;
152 	WARN_ON((u64) zdev->fmb & 0xf);
153 
154 	/* reset software counters */
155 	atomic64_set(&zdev->allocated_pages, 0);
156 	atomic64_set(&zdev->mapped_pages, 0);
157 	atomic64_set(&zdev->unmapped_pages, 0);
158 
159 	fib.fmb_addr = virt_to_phys(zdev->fmb);
160 	cc = zpci_mod_fc(req, &fib, &status);
161 	if (cc) {
162 		kmem_cache_free(zdev_fmb_cache, zdev->fmb);
163 		zdev->fmb = NULL;
164 	}
165 	return cc ? -EIO : 0;
166 }
167 
168 /* Modify PCI: Disable PCI function measurement */
zpci_fmb_disable_device(struct zpci_dev * zdev)169 int zpci_fmb_disable_device(struct zpci_dev *zdev)
170 {
171 	u64 req = ZPCI_CREATE_REQ(zdev->fh, 0, ZPCI_MOD_FC_SET_MEASURE);
172 	struct zpci_fib fib = {0};
173 	u8 cc, status;
174 
175 	if (!zdev->fmb)
176 		return -EINVAL;
177 
178 	/* Function measurement is disabled if fmb address is zero */
179 	cc = zpci_mod_fc(req, &fib, &status);
180 	if (cc == 3) /* Function already gone. */
181 		cc = 0;
182 
183 	if (!cc) {
184 		kmem_cache_free(zdev_fmb_cache, zdev->fmb);
185 		zdev->fmb = NULL;
186 	}
187 	return cc ? -EIO : 0;
188 }
189 
zpci_cfg_load(struct zpci_dev * zdev,int offset,u32 * val,u8 len)190 static int zpci_cfg_load(struct zpci_dev *zdev, int offset, u32 *val, u8 len)
191 {
192 	u64 req = ZPCI_CREATE_REQ(zdev->fh, ZPCI_PCIAS_CFGSPC, len);
193 	u64 data;
194 	int rc;
195 
196 	rc = __zpci_load(&data, req, offset);
197 	if (!rc) {
198 		data = le64_to_cpu((__force __le64) data);
199 		data >>= (8 - len) * 8;
200 		*val = (u32) data;
201 	} else
202 		*val = 0xffffffff;
203 	return rc;
204 }
205 
zpci_cfg_store(struct zpci_dev * zdev,int offset,u32 val,u8 len)206 static int zpci_cfg_store(struct zpci_dev *zdev, int offset, u32 val, u8 len)
207 {
208 	u64 req = ZPCI_CREATE_REQ(zdev->fh, ZPCI_PCIAS_CFGSPC, len);
209 	u64 data = val;
210 	int rc;
211 
212 	data <<= (8 - len) * 8;
213 	data = (__force u64) cpu_to_le64(data);
214 	rc = __zpci_store(data, req, offset);
215 	return rc;
216 }
217 
pcibios_align_resource(void * data,const struct resource * res,resource_size_t size,resource_size_t align)218 resource_size_t pcibios_align_resource(void *data, const struct resource *res,
219 				       resource_size_t size,
220 				       resource_size_t align)
221 {
222 	return 0;
223 }
224 
225 /* combine single writes by using store-block insn */
__iowrite64_copy(void __iomem * to,const void * from,size_t count)226 void __iowrite64_copy(void __iomem *to, const void *from, size_t count)
227 {
228 	zpci_memcpy_toio(to, from, count * 8);
229 }
230 
__ioremap(phys_addr_t addr,size_t size,pgprot_t prot)231 static void __iomem *__ioremap(phys_addr_t addr, size_t size, pgprot_t prot)
232 {
233 	unsigned long offset, vaddr;
234 	struct vm_struct *area;
235 	phys_addr_t last_addr;
236 
237 	last_addr = addr + size - 1;
238 	if (!size || last_addr < addr)
239 		return NULL;
240 
241 	if (!static_branch_unlikely(&have_mio))
242 		return (void __iomem *) addr;
243 
244 	offset = addr & ~PAGE_MASK;
245 	addr &= PAGE_MASK;
246 	size = PAGE_ALIGN(size + offset);
247 	area = get_vm_area(size, VM_IOREMAP);
248 	if (!area)
249 		return NULL;
250 
251 	vaddr = (unsigned long) area->addr;
252 	if (ioremap_page_range(vaddr, vaddr + size, addr, prot)) {
253 		free_vm_area(area);
254 		return NULL;
255 	}
256 	return (void __iomem *) ((unsigned long) area->addr + offset);
257 }
258 
ioremap_prot(phys_addr_t addr,size_t size,unsigned long prot)259 void __iomem *ioremap_prot(phys_addr_t addr, size_t size, unsigned long prot)
260 {
261 	return __ioremap(addr, size, __pgprot(prot));
262 }
263 EXPORT_SYMBOL(ioremap_prot);
264 
ioremap(phys_addr_t addr,size_t size)265 void __iomem *ioremap(phys_addr_t addr, size_t size)
266 {
267 	return __ioremap(addr, size, PAGE_KERNEL);
268 }
269 EXPORT_SYMBOL(ioremap);
270 
ioremap_wc(phys_addr_t addr,size_t size)271 void __iomem *ioremap_wc(phys_addr_t addr, size_t size)
272 {
273 	return __ioremap(addr, size, pgprot_writecombine(PAGE_KERNEL));
274 }
275 EXPORT_SYMBOL(ioremap_wc);
276 
ioremap_wt(phys_addr_t addr,size_t size)277 void __iomem *ioremap_wt(phys_addr_t addr, size_t size)
278 {
279 	return __ioremap(addr, size, pgprot_writethrough(PAGE_KERNEL));
280 }
281 EXPORT_SYMBOL(ioremap_wt);
282 
iounmap(volatile void __iomem * addr)283 void iounmap(volatile void __iomem *addr)
284 {
285 	if (static_branch_likely(&have_mio))
286 		vunmap((__force void *) ((unsigned long) addr & PAGE_MASK));
287 }
288 EXPORT_SYMBOL(iounmap);
289 
290 /* Create a virtual mapping cookie for a PCI BAR */
pci_iomap_range_fh(struct pci_dev * pdev,int bar,unsigned long offset,unsigned long max)291 static void __iomem *pci_iomap_range_fh(struct pci_dev *pdev, int bar,
292 					unsigned long offset, unsigned long max)
293 {
294 	struct zpci_dev *zdev =	to_zpci(pdev);
295 	int idx;
296 
297 	idx = zdev->bars[bar].map_idx;
298 	spin_lock(&zpci_iomap_lock);
299 	/* Detect overrun */
300 	WARN_ON(!++zpci_iomap_start[idx].count);
301 	zpci_iomap_start[idx].fh = zdev->fh;
302 	zpci_iomap_start[idx].bar = bar;
303 	spin_unlock(&zpci_iomap_lock);
304 
305 	return (void __iomem *) ZPCI_ADDR(idx) + offset;
306 }
307 
pci_iomap_range_mio(struct pci_dev * pdev,int bar,unsigned long offset,unsigned long max)308 static void __iomem *pci_iomap_range_mio(struct pci_dev *pdev, int bar,
309 					 unsigned long offset,
310 					 unsigned long max)
311 {
312 	unsigned long barsize = pci_resource_len(pdev, bar);
313 	struct zpci_dev *zdev = to_zpci(pdev);
314 	void __iomem *iova;
315 
316 	iova = ioremap((unsigned long) zdev->bars[bar].mio_wt, barsize);
317 	return iova ? iova + offset : iova;
318 }
319 
pci_iomap_range(struct pci_dev * pdev,int bar,unsigned long offset,unsigned long max)320 void __iomem *pci_iomap_range(struct pci_dev *pdev, int bar,
321 			      unsigned long offset, unsigned long max)
322 {
323 	if (bar >= PCI_STD_NUM_BARS || !pci_resource_len(pdev, bar))
324 		return NULL;
325 
326 	if (static_branch_likely(&have_mio))
327 		return pci_iomap_range_mio(pdev, bar, offset, max);
328 	else
329 		return pci_iomap_range_fh(pdev, bar, offset, max);
330 }
331 EXPORT_SYMBOL(pci_iomap_range);
332 
pci_iomap(struct pci_dev * dev,int bar,unsigned long maxlen)333 void __iomem *pci_iomap(struct pci_dev *dev, int bar, unsigned long maxlen)
334 {
335 	return pci_iomap_range(dev, bar, 0, maxlen);
336 }
337 EXPORT_SYMBOL(pci_iomap);
338 
pci_iomap_wc_range_mio(struct pci_dev * pdev,int bar,unsigned long offset,unsigned long max)339 static void __iomem *pci_iomap_wc_range_mio(struct pci_dev *pdev, int bar,
340 					    unsigned long offset, unsigned long max)
341 {
342 	unsigned long barsize = pci_resource_len(pdev, bar);
343 	struct zpci_dev *zdev = to_zpci(pdev);
344 	void __iomem *iova;
345 
346 	iova = ioremap((unsigned long) zdev->bars[bar].mio_wb, barsize);
347 	return iova ? iova + offset : iova;
348 }
349 
pci_iomap_wc_range(struct pci_dev * pdev,int bar,unsigned long offset,unsigned long max)350 void __iomem *pci_iomap_wc_range(struct pci_dev *pdev, int bar,
351 				 unsigned long offset, unsigned long max)
352 {
353 	if (bar >= PCI_STD_NUM_BARS || !pci_resource_len(pdev, bar))
354 		return NULL;
355 
356 	if (static_branch_likely(&have_mio))
357 		return pci_iomap_wc_range_mio(pdev, bar, offset, max);
358 	else
359 		return pci_iomap_range_fh(pdev, bar, offset, max);
360 }
361 EXPORT_SYMBOL(pci_iomap_wc_range);
362 
pci_iomap_wc(struct pci_dev * dev,int bar,unsigned long maxlen)363 void __iomem *pci_iomap_wc(struct pci_dev *dev, int bar, unsigned long maxlen)
364 {
365 	return pci_iomap_wc_range(dev, bar, 0, maxlen);
366 }
367 EXPORT_SYMBOL(pci_iomap_wc);
368 
pci_iounmap_fh(struct pci_dev * pdev,void __iomem * addr)369 static void pci_iounmap_fh(struct pci_dev *pdev, void __iomem *addr)
370 {
371 	unsigned int idx = ZPCI_IDX(addr);
372 
373 	spin_lock(&zpci_iomap_lock);
374 	/* Detect underrun */
375 	WARN_ON(!zpci_iomap_start[idx].count);
376 	if (!--zpci_iomap_start[idx].count) {
377 		zpci_iomap_start[idx].fh = 0;
378 		zpci_iomap_start[idx].bar = 0;
379 	}
380 	spin_unlock(&zpci_iomap_lock);
381 }
382 
pci_iounmap_mio(struct pci_dev * pdev,void __iomem * addr)383 static void pci_iounmap_mio(struct pci_dev *pdev, void __iomem *addr)
384 {
385 	iounmap(addr);
386 }
387 
pci_iounmap(struct pci_dev * pdev,void __iomem * addr)388 void pci_iounmap(struct pci_dev *pdev, void __iomem *addr)
389 {
390 	if (static_branch_likely(&have_mio))
391 		pci_iounmap_mio(pdev, addr);
392 	else
393 		pci_iounmap_fh(pdev, addr);
394 }
395 EXPORT_SYMBOL(pci_iounmap);
396 
pci_read(struct pci_bus * bus,unsigned int devfn,int where,int size,u32 * val)397 static int pci_read(struct pci_bus *bus, unsigned int devfn, int where,
398 		    int size, u32 *val)
399 {
400 	struct zpci_dev *zdev = get_zdev_by_bus(bus, devfn);
401 
402 	return (zdev) ? zpci_cfg_load(zdev, where, val, size) : -ENODEV;
403 }
404 
pci_write(struct pci_bus * bus,unsigned int devfn,int where,int size,u32 val)405 static int pci_write(struct pci_bus *bus, unsigned int devfn, int where,
406 		     int size, u32 val)
407 {
408 	struct zpci_dev *zdev = get_zdev_by_bus(bus, devfn);
409 
410 	return (zdev) ? zpci_cfg_store(zdev, where, val, size) : -ENODEV;
411 }
412 
413 static struct pci_ops pci_root_ops = {
414 	.read = pci_read,
415 	.write = pci_write,
416 };
417 
zpci_map_resources(struct pci_dev * pdev)418 static void zpci_map_resources(struct pci_dev *pdev)
419 {
420 	struct zpci_dev *zdev = to_zpci(pdev);
421 	resource_size_t len;
422 	int i;
423 
424 	for (i = 0; i < PCI_STD_NUM_BARS; i++) {
425 		len = pci_resource_len(pdev, i);
426 		if (!len)
427 			continue;
428 
429 		if (zpci_use_mio(zdev))
430 			pdev->resource[i].start =
431 				(resource_size_t __force) zdev->bars[i].mio_wt;
432 		else
433 			pdev->resource[i].start = (resource_size_t __force)
434 				pci_iomap_range_fh(pdev, i, 0, 0);
435 		pdev->resource[i].end = pdev->resource[i].start + len - 1;
436 	}
437 
438 	zpci_iov_map_resources(pdev);
439 }
440 
zpci_unmap_resources(struct pci_dev * pdev)441 static void zpci_unmap_resources(struct pci_dev *pdev)
442 {
443 	struct zpci_dev *zdev = to_zpci(pdev);
444 	resource_size_t len;
445 	int i;
446 
447 	if (zpci_use_mio(zdev))
448 		return;
449 
450 	for (i = 0; i < PCI_STD_NUM_BARS; i++) {
451 		len = pci_resource_len(pdev, i);
452 		if (!len)
453 			continue;
454 		pci_iounmap_fh(pdev, (void __iomem __force *)
455 			       pdev->resource[i].start);
456 	}
457 }
458 
zpci_alloc_iomap(struct zpci_dev * zdev)459 static int zpci_alloc_iomap(struct zpci_dev *zdev)
460 {
461 	unsigned long entry;
462 
463 	spin_lock(&zpci_iomap_lock);
464 	entry = find_first_zero_bit(zpci_iomap_bitmap, ZPCI_IOMAP_ENTRIES);
465 	if (entry == ZPCI_IOMAP_ENTRIES) {
466 		spin_unlock(&zpci_iomap_lock);
467 		return -ENOSPC;
468 	}
469 	set_bit(entry, zpci_iomap_bitmap);
470 	spin_unlock(&zpci_iomap_lock);
471 	return entry;
472 }
473 
zpci_free_iomap(struct zpci_dev * zdev,int entry)474 static void zpci_free_iomap(struct zpci_dev *zdev, int entry)
475 {
476 	spin_lock(&zpci_iomap_lock);
477 	memset(&zpci_iomap_start[entry], 0, sizeof(struct zpci_iomap_entry));
478 	clear_bit(entry, zpci_iomap_bitmap);
479 	spin_unlock(&zpci_iomap_lock);
480 }
481 
__alloc_res(struct zpci_dev * zdev,unsigned long start,unsigned long size,unsigned long flags)482 static struct resource *__alloc_res(struct zpci_dev *zdev, unsigned long start,
483 				    unsigned long size, unsigned long flags)
484 {
485 	struct resource *r;
486 
487 	r = kzalloc(sizeof(*r), GFP_KERNEL);
488 	if (!r)
489 		return NULL;
490 
491 	r->start = start;
492 	r->end = r->start + size - 1;
493 	r->flags = flags;
494 	r->name = zdev->res_name;
495 
496 	if (request_resource(&iomem_resource, r)) {
497 		kfree(r);
498 		return NULL;
499 	}
500 	return r;
501 }
502 
zpci_setup_bus_resources(struct zpci_dev * zdev,struct list_head * resources)503 int zpci_setup_bus_resources(struct zpci_dev *zdev,
504 			     struct list_head *resources)
505 {
506 	unsigned long addr, size, flags;
507 	struct resource *res;
508 	int i, entry;
509 
510 	snprintf(zdev->res_name, sizeof(zdev->res_name),
511 		 "PCI Bus %04x:%02x", zdev->uid, ZPCI_BUS_NR);
512 
513 	for (i = 0; i < PCI_STD_NUM_BARS; i++) {
514 		if (!zdev->bars[i].size)
515 			continue;
516 		entry = zpci_alloc_iomap(zdev);
517 		if (entry < 0)
518 			return entry;
519 		zdev->bars[i].map_idx = entry;
520 
521 		/* only MMIO is supported */
522 		flags = IORESOURCE_MEM;
523 		if (zdev->bars[i].val & 8)
524 			flags |= IORESOURCE_PREFETCH;
525 		if (zdev->bars[i].val & 4)
526 			flags |= IORESOURCE_MEM_64;
527 
528 		if (zpci_use_mio(zdev))
529 			addr = (unsigned long) zdev->bars[i].mio_wt;
530 		else
531 			addr = ZPCI_ADDR(entry);
532 		size = 1UL << zdev->bars[i].size;
533 
534 		res = __alloc_res(zdev, addr, size, flags);
535 		if (!res) {
536 			zpci_free_iomap(zdev, entry);
537 			return -ENOMEM;
538 		}
539 		zdev->bars[i].res = res;
540 		pci_add_resource(resources, res);
541 	}
542 
543 	return 0;
544 }
545 
zpci_cleanup_bus_resources(struct zpci_dev * zdev)546 static void zpci_cleanup_bus_resources(struct zpci_dev *zdev)
547 {
548 	int i;
549 
550 	for (i = 0; i < PCI_STD_NUM_BARS; i++) {
551 		if (!zdev->bars[i].size || !zdev->bars[i].res)
552 			continue;
553 
554 		zpci_free_iomap(zdev, zdev->bars[i].map_idx);
555 		release_resource(zdev->bars[i].res);
556 		kfree(zdev->bars[i].res);
557 	}
558 }
559 
pcibios_add_device(struct pci_dev * pdev)560 int pcibios_add_device(struct pci_dev *pdev)
561 {
562 	struct zpci_dev *zdev = to_zpci(pdev);
563 	struct resource *res;
564 	int i;
565 
566 	/* The pdev has a reference to the zdev via its bus */
567 	zpci_zdev_get(zdev);
568 	if (pdev->is_physfn)
569 		pdev->no_vf_scan = 1;
570 
571 	pdev->dev.groups = zpci_attr_groups;
572 	pdev->dev.dma_ops = &s390_pci_dma_ops;
573 	zpci_map_resources(pdev);
574 
575 	for (i = 0; i < PCI_STD_NUM_BARS; i++) {
576 		res = &pdev->resource[i];
577 		if (res->parent || !res->flags)
578 			continue;
579 		pci_claim_resource(pdev, i);
580 	}
581 
582 	return 0;
583 }
584 
pcibios_release_device(struct pci_dev * pdev)585 void pcibios_release_device(struct pci_dev *pdev)
586 {
587 	struct zpci_dev *zdev = to_zpci(pdev);
588 
589 	zpci_unmap_resources(pdev);
590 	zpci_zdev_put(zdev);
591 }
592 
pcibios_enable_device(struct pci_dev * pdev,int mask)593 int pcibios_enable_device(struct pci_dev *pdev, int mask)
594 {
595 	struct zpci_dev *zdev = to_zpci(pdev);
596 
597 	zpci_debug_init_device(zdev, dev_name(&pdev->dev));
598 	zpci_fmb_enable_device(zdev);
599 
600 	return pci_enable_resources(pdev, mask);
601 }
602 
pcibios_disable_device(struct pci_dev * pdev)603 void pcibios_disable_device(struct pci_dev *pdev)
604 {
605 	struct zpci_dev *zdev = to_zpci(pdev);
606 
607 	zpci_fmb_disable_device(zdev);
608 	zpci_debug_exit_device(zdev);
609 }
610 
__zpci_register_domain(int domain)611 static int __zpci_register_domain(int domain)
612 {
613 	spin_lock(&zpci_domain_lock);
614 	if (test_bit(domain, zpci_domain)) {
615 		spin_unlock(&zpci_domain_lock);
616 		pr_err("Domain %04x is already assigned\n", domain);
617 		return -EEXIST;
618 	}
619 	set_bit(domain, zpci_domain);
620 	spin_unlock(&zpci_domain_lock);
621 	return domain;
622 }
623 
__zpci_alloc_domain(void)624 static int __zpci_alloc_domain(void)
625 {
626 	int domain;
627 
628 	spin_lock(&zpci_domain_lock);
629 	/*
630 	 * We can always auto allocate domains below ZPCI_NR_DEVICES.
631 	 * There is either a free domain or we have reached the maximum in
632 	 * which case we would have bailed earlier.
633 	 */
634 	domain = find_first_zero_bit(zpci_domain, ZPCI_NR_DEVICES);
635 	set_bit(domain, zpci_domain);
636 	spin_unlock(&zpci_domain_lock);
637 	return domain;
638 }
639 
zpci_alloc_domain(int domain)640 int zpci_alloc_domain(int domain)
641 {
642 	if (zpci_unique_uid) {
643 		if (domain)
644 			return __zpci_register_domain(domain);
645 		pr_warn("UID checking was active but no UID is provided: switching to automatic domain allocation\n");
646 		update_uid_checking(false);
647 	}
648 	return __zpci_alloc_domain();
649 }
650 
zpci_free_domain(int domain)651 void zpci_free_domain(int domain)
652 {
653 	spin_lock(&zpci_domain_lock);
654 	clear_bit(domain, zpci_domain);
655 	spin_unlock(&zpci_domain_lock);
656 }
657 
658 
zpci_enable_device(struct zpci_dev * zdev)659 int zpci_enable_device(struct zpci_dev *zdev)
660 {
661 	int rc;
662 
663 	if (clp_enable_fh(zdev, ZPCI_NR_DMA_SPACES)) {
664 		rc = -EIO;
665 		goto out;
666 	}
667 
668 	rc = zpci_dma_init_device(zdev);
669 	if (rc)
670 		goto out_dma;
671 
672 	zdev->state = ZPCI_FN_STATE_ONLINE;
673 	return 0;
674 
675 out_dma:
676 	clp_disable_fh(zdev);
677 out:
678 	return rc;
679 }
680 EXPORT_SYMBOL_GPL(zpci_enable_device);
681 
zpci_disable_device(struct zpci_dev * zdev)682 int zpci_disable_device(struct zpci_dev *zdev)
683 {
684 	zpci_dma_exit_device(zdev);
685 	/*
686 	 * The zPCI function may already be disabled by the platform, this is
687 	 * detected in clp_disable_fh() which becomes a no-op.
688 	 */
689 	return clp_disable_fh(zdev) ? -EIO : 0;
690 }
691 EXPORT_SYMBOL_GPL(zpci_disable_device);
692 
693 /* zpci_remove_device - Removes the given zdev from the PCI core
694  * @zdev: the zdev to be removed from the PCI core
695  * @set_error: if true the device's error state is set to permanent failure
696  *
697  * Sets a zPCI device to a configured but offline state; the zPCI
698  * device is still accessible through its hotplug slot and the zPCI
699  * API but is removed from the common code PCI bus, making it
700  * no longer available to drivers.
701  */
zpci_remove_device(struct zpci_dev * zdev,bool set_error)702 void zpci_remove_device(struct zpci_dev *zdev, bool set_error)
703 {
704 	struct zpci_bus *zbus = zdev->zbus;
705 	struct pci_dev *pdev;
706 
707 	if (!zdev->zbus->bus)
708 		return;
709 
710 	pdev = pci_get_slot(zbus->bus, zdev->devfn);
711 	if (pdev) {
712 		if (set_error)
713 			pdev->error_state = pci_channel_io_perm_failure;
714 		if (pdev->is_virtfn) {
715 			zpci_iov_remove_virtfn(pdev, zdev->vfn);
716 			/* balance pci_get_slot */
717 			pci_dev_put(pdev);
718 			return;
719 		}
720 		pci_stop_and_remove_bus_device_locked(pdev);
721 		/* balance pci_get_slot */
722 		pci_dev_put(pdev);
723 	}
724 }
725 
726 /**
727  * zpci_create_device() - Create a new zpci_dev and add it to the zbus
728  * @fid: Function ID of the device to be created
729  * @fh: Current Function Handle of the device to be created
730  * @state: Initial state after creation either Standby or Configured
731  *
732  * Creates a new zpci device and adds it to its, possibly newly created, zbus
733  * as well as zpci_list.
734  *
735  * Returns: 0 on success, an error value otherwise
736  */
zpci_create_device(u32 fid,u32 fh,enum zpci_state state)737 int zpci_create_device(u32 fid, u32 fh, enum zpci_state state)
738 {
739 	struct zpci_dev *zdev;
740 	int rc;
741 
742 	zpci_dbg(3, "add fid:%x, fh:%x, c:%d\n", fid, fh, state);
743 	zdev = kzalloc(sizeof(*zdev), GFP_KERNEL);
744 	if (!zdev)
745 		return -ENOMEM;
746 
747 	/* FID and Function Handle are the static/dynamic identifiers */
748 	zdev->fid = fid;
749 	zdev->fh = fh;
750 
751 	/* Query function properties and update zdev */
752 	rc = clp_query_pci_fn(zdev);
753 	if (rc)
754 		goto error;
755 	zdev->state =  state;
756 
757 	kref_init(&zdev->kref);
758 	mutex_init(&zdev->lock);
759 
760 	rc = zpci_init_iommu(zdev);
761 	if (rc)
762 		goto error;
763 
764 	if (zdev->state == ZPCI_FN_STATE_CONFIGURED) {
765 		rc = zpci_enable_device(zdev);
766 		if (rc)
767 			goto error_destroy_iommu;
768 	}
769 
770 	rc = zpci_bus_device_register(zdev, &pci_root_ops);
771 	if (rc)
772 		goto error_disable;
773 
774 	spin_lock(&zpci_list_lock);
775 	list_add_tail(&zdev->entry, &zpci_list);
776 	spin_unlock(&zpci_list_lock);
777 
778 	return 0;
779 
780 error_disable:
781 	if (zdev->state == ZPCI_FN_STATE_ONLINE)
782 		zpci_disable_device(zdev);
783 error_destroy_iommu:
784 	zpci_destroy_iommu(zdev);
785 error:
786 	zpci_dbg(0, "add fid:%x, rc:%d\n", fid, rc);
787 	kfree(zdev);
788 	return rc;
789 }
790 
zpci_is_device_configured(struct zpci_dev * zdev)791 bool zpci_is_device_configured(struct zpci_dev *zdev)
792 {
793 	enum zpci_state state = zdev->state;
794 
795 	return state != ZPCI_FN_STATE_RESERVED &&
796 		state != ZPCI_FN_STATE_STANDBY;
797 }
798 
799 /**
800  * zpci_device_reserved() - Mark device as resverved
801  * @zdev: the zpci_dev that was reserved
802  *
803  * Handle the case that a given zPCI function was reserved by another system.
804  * After a call to this function the zpci_dev can not be found via
805  * get_zdev_by_fid() anymore but may still be accessible via existing
806  * references though it will not be functional anymore.
807  */
zpci_device_reserved(struct zpci_dev * zdev)808 void zpci_device_reserved(struct zpci_dev *zdev)
809 {
810 	if (zdev->has_hp_slot)
811 		zpci_exit_slot(zdev);
812 	/*
813 	 * Remove device from zpci_list as it is going away. This also
814 	 * makes sure we ignore subsequent zPCI events for this device.
815 	 */
816 	spin_lock(&zpci_list_lock);
817 	list_del(&zdev->entry);
818 	spin_unlock(&zpci_list_lock);
819 	zdev->state = ZPCI_FN_STATE_RESERVED;
820 	zpci_dbg(3, "rsv fid:%x\n", zdev->fid);
821 	zpci_zdev_put(zdev);
822 }
823 
zpci_release_device(struct kref * kref)824 void zpci_release_device(struct kref *kref)
825 {
826 	struct zpci_dev *zdev = container_of(kref, struct zpci_dev, kref);
827 
828 	if (zdev->zbus->bus)
829 		zpci_remove_device(zdev, false);
830 
831 	switch (zdev->state) {
832 	case ZPCI_FN_STATE_ONLINE:
833 	case ZPCI_FN_STATE_CONFIGURED:
834 		zpci_disable_device(zdev);
835 		fallthrough;
836 	case ZPCI_FN_STATE_STANDBY:
837 		if (zdev->has_hp_slot)
838 			zpci_exit_slot(zdev);
839 		spin_lock(&zpci_list_lock);
840 		list_del(&zdev->entry);
841 		spin_unlock(&zpci_list_lock);
842 		zpci_dbg(3, "rsv fid:%x\n", zdev->fid);
843 		fallthrough;
844 	case ZPCI_FN_STATE_RESERVED:
845 		zpci_cleanup_bus_resources(zdev);
846 		zpci_bus_device_unregister(zdev);
847 		zpci_destroy_iommu(zdev);
848 		fallthrough;
849 	default:
850 		break;
851 	}
852 	zpci_dbg(3, "rem fid:%x\n", zdev->fid);
853 	kfree(zdev);
854 }
855 
zpci_report_error(struct pci_dev * pdev,struct zpci_report_error_header * report)856 int zpci_report_error(struct pci_dev *pdev,
857 		      struct zpci_report_error_header *report)
858 {
859 	struct zpci_dev *zdev = to_zpci(pdev);
860 
861 	return sclp_pci_report(report, zdev->fh, zdev->fid);
862 }
863 EXPORT_SYMBOL(zpci_report_error);
864 
zpci_mem_init(void)865 static int zpci_mem_init(void)
866 {
867 	BUILD_BUG_ON(!is_power_of_2(__alignof__(struct zpci_fmb)) ||
868 		     __alignof__(struct zpci_fmb) < sizeof(struct zpci_fmb));
869 
870 	zdev_fmb_cache = kmem_cache_create("PCI_FMB_cache", sizeof(struct zpci_fmb),
871 					   __alignof__(struct zpci_fmb), 0, NULL);
872 	if (!zdev_fmb_cache)
873 		goto error_fmb;
874 
875 	zpci_iomap_start = kcalloc(ZPCI_IOMAP_ENTRIES,
876 				   sizeof(*zpci_iomap_start), GFP_KERNEL);
877 	if (!zpci_iomap_start)
878 		goto error_iomap;
879 
880 	zpci_iomap_bitmap = kcalloc(BITS_TO_LONGS(ZPCI_IOMAP_ENTRIES),
881 				    sizeof(*zpci_iomap_bitmap), GFP_KERNEL);
882 	if (!zpci_iomap_bitmap)
883 		goto error_iomap_bitmap;
884 
885 	if (static_branch_likely(&have_mio))
886 		clp_setup_writeback_mio();
887 
888 	return 0;
889 error_iomap_bitmap:
890 	kfree(zpci_iomap_start);
891 error_iomap:
892 	kmem_cache_destroy(zdev_fmb_cache);
893 error_fmb:
894 	return -ENOMEM;
895 }
896 
zpci_mem_exit(void)897 static void zpci_mem_exit(void)
898 {
899 	kfree(zpci_iomap_bitmap);
900 	kfree(zpci_iomap_start);
901 	kmem_cache_destroy(zdev_fmb_cache);
902 }
903 
904 static unsigned int s390_pci_probe __initdata = 1;
905 unsigned int s390_pci_force_floating __initdata;
906 static unsigned int s390_pci_initialized;
907 
pcibios_setup(char * str)908 char * __init pcibios_setup(char *str)
909 {
910 	if (!strcmp(str, "off")) {
911 		s390_pci_probe = 0;
912 		return NULL;
913 	}
914 	if (!strcmp(str, "nomio")) {
915 		S390_lowcore.machine_flags &= ~MACHINE_FLAG_PCI_MIO;
916 		return NULL;
917 	}
918 	if (!strcmp(str, "force_floating")) {
919 		s390_pci_force_floating = 1;
920 		return NULL;
921 	}
922 	if (!strcmp(str, "norid")) {
923 		s390_pci_no_rid = 1;
924 		return NULL;
925 	}
926 	return str;
927 }
928 
zpci_is_enabled(void)929 bool zpci_is_enabled(void)
930 {
931 	return s390_pci_initialized;
932 }
933 
pci_base_init(void)934 static int __init pci_base_init(void)
935 {
936 	int rc;
937 
938 	if (!s390_pci_probe)
939 		return 0;
940 
941 	if (!test_facility(69) || !test_facility(71))
942 		return 0;
943 
944 	if (MACHINE_HAS_PCI_MIO) {
945 		static_branch_enable(&have_mio);
946 		ctl_set_bit(2, 5);
947 	}
948 
949 	rc = zpci_debug_init();
950 	if (rc)
951 		goto out;
952 
953 	rc = zpci_mem_init();
954 	if (rc)
955 		goto out_mem;
956 
957 	rc = zpci_irq_init();
958 	if (rc)
959 		goto out_irq;
960 
961 	rc = zpci_dma_init();
962 	if (rc)
963 		goto out_dma;
964 
965 	rc = clp_scan_pci_devices();
966 	if (rc)
967 		goto out_find;
968 
969 	s390_pci_initialized = 1;
970 	return 0;
971 
972 out_find:
973 	zpci_dma_exit();
974 out_dma:
975 	zpci_irq_exit();
976 out_irq:
977 	zpci_mem_exit();
978 out_mem:
979 	zpci_debug_exit();
980 out:
981 	return rc;
982 }
983 subsys_initcall_sync(pci_base_init);
984