xref: /linux/drivers/iommu/amd/init.c (revision fab183d632628381b466a41479489541ac0e29a0)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Copyright (C) 2007-2010 Advanced Micro Devices, Inc.
4  * Author: Joerg Roedel <jroedel@suse.de>
5  *         Leo Duran <leo.duran@amd.com>
6  */
7 
8 #define pr_fmt(fmt)     "AMD-Vi: " fmt
9 #define dev_fmt(fmt)    pr_fmt(fmt)
10 
11 #include <linux/pci.h>
12 #include <linux/acpi.h>
13 #include <linux/list.h>
14 #include <linux/bitmap.h>
15 #include <linux/syscore_ops.h>
16 #include <linux/interrupt.h>
17 #include <linux/msi.h>
18 #include <linux/irq.h>
19 #include <linux/amd-iommu.h>
20 #include <linux/export.h>
21 #include <linux/kmemleak.h>
22 #include <linux/cc_platform.h>
23 #include <linux/iopoll.h>
24 #include <asm/pci-direct.h>
25 #include <asm/iommu.h>
26 #include <asm/apic.h>
27 #include <asm/gart.h>
28 #include <asm/x86_init.h>
29 #include <asm/io_apic.h>
30 #include <asm/irq_remapping.h>
31 #include <asm/set_memory.h>
32 #include <asm/sev.h>
33 
34 #include <linux/crash_dump.h>
35 
36 #include "amd_iommu.h"
37 #include "../irq_remapping.h"
38 #include "../iommu-pages.h"
39 
40 /*
41  * definitions for the ACPI scanning code
42  */
43 #define IVRS_HEADER_LENGTH 48
44 
45 #define ACPI_IVHD_TYPE_MAX_SUPPORTED	0x40
46 #define ACPI_IVMD_TYPE_ALL              0x20
47 #define ACPI_IVMD_TYPE                  0x21
48 #define ACPI_IVMD_TYPE_RANGE            0x22
49 
50 #define IVHD_DEV_ALL                    0x01
51 #define IVHD_DEV_SELECT                 0x02
52 #define IVHD_DEV_SELECT_RANGE_START     0x03
53 #define IVHD_DEV_RANGE_END              0x04
54 #define IVHD_DEV_ALIAS                  0x42
55 #define IVHD_DEV_ALIAS_RANGE            0x43
56 #define IVHD_DEV_EXT_SELECT             0x46
57 #define IVHD_DEV_EXT_SELECT_RANGE       0x47
58 #define IVHD_DEV_SPECIAL		0x48
59 #define IVHD_DEV_ACPI_HID		0xf0
60 
61 #define UID_NOT_PRESENT                 0
62 #define UID_IS_INTEGER                  1
63 #define UID_IS_CHARACTER                2
64 
65 #define IVHD_SPECIAL_IOAPIC		1
66 #define IVHD_SPECIAL_HPET		2
67 
68 #define IVHD_FLAG_HT_TUN_EN_MASK        0x01
69 #define IVHD_FLAG_PASSPW_EN_MASK        0x02
70 #define IVHD_FLAG_RESPASSPW_EN_MASK     0x04
71 #define IVHD_FLAG_ISOC_EN_MASK          0x08
72 
73 #define IVMD_FLAG_EXCL_RANGE            0x08
74 #define IVMD_FLAG_IW                    0x04
75 #define IVMD_FLAG_IR                    0x02
76 #define IVMD_FLAG_UNITY_MAP             0x01
77 
78 #define ACPI_DEVFLAG_INITPASS           0x01
79 #define ACPI_DEVFLAG_EXTINT             0x02
80 #define ACPI_DEVFLAG_NMI                0x04
81 #define ACPI_DEVFLAG_SYSMGT1            0x10
82 #define ACPI_DEVFLAG_SYSMGT2            0x20
83 #define ACPI_DEVFLAG_LINT0              0x40
84 #define ACPI_DEVFLAG_LINT1              0x80
85 #define ACPI_DEVFLAG_ATSDIS             0x10000000
86 
87 #define IVRS_GET_SBDF_ID(seg, bus, dev, fn)	(((seg & 0xffff) << 16) | ((bus & 0xff) << 8) \
88 						 | ((dev & 0x1f) << 3) | (fn & 0x7))
89 
90 /*
91  * ACPI table definitions
92  *
93  * These data structures are laid over the table to parse the important values
94  * out of it.
95  */
96 
97 /*
98  * structure describing one IOMMU in the ACPI table. Typically followed by one
99  * or more ivhd_entrys.
100  */
101 struct ivhd_header {
102 	u8 type;
103 	u8 flags;
104 	u16 length;
105 	u16 devid;
106 	u16 cap_ptr;
107 	u64 mmio_phys;
108 	u16 pci_seg;
109 	u16 info;
110 	u32 efr_attr;
111 
112 	/* Following only valid on IVHD type 11h and 40h */
113 	u64 efr_reg; /* Exact copy of MMIO_EXT_FEATURES */
114 	u64 efr_reg2;
115 } __attribute__((packed));
116 
117 /*
118  * A device entry describing which devices a specific IOMMU translates and
119  * which requestor ids they use.
120  */
121 struct ivhd_entry {
122 	u8 type;
123 	u16 devid;
124 	u8 flags;
125 	struct_group(ext_hid,
126 		u32 ext;
127 		u32 hidh;
128 	);
129 	u64 cid;
130 	u8 uidf;
131 	u8 uidl;
132 	u8 uid;
133 } __attribute__((packed));
134 
135 int amd_iommu_evtlog_size = EVTLOG_SIZE_DEF;
136 int amd_iommu_pprlog_size = PPRLOG_SIZE_DEF;
137 
138 /*
139  * An AMD IOMMU memory definition structure. It defines things like exclusion
140  * ranges for devices and regions that should be unity mapped.
141  */
142 struct ivmd_header {
143 	u8 type;
144 	u8 flags;
145 	u16 length;
146 	u16 devid;
147 	u16 aux;
148 	u16 pci_seg;
149 	u8  resv[6];
150 	u64 range_start;
151 	u64 range_length;
152 } __attribute__((packed));
153 
154 bool amd_iommu_dump;
155 bool amd_iommu_irq_remap __read_mostly;
156 
157 enum protection_domain_mode amd_iommu_pgtable = PD_MODE_V1;
158 /* Virtual address size */
159 u8 amd_iommu_hpt_vasize;
160 /* Guest page table level */
161 int amd_iommu_gpt_level = PAGE_MODE_4_LEVEL;
162 
163 int amd_iommu_guest_ir = AMD_IOMMU_GUEST_IR_VAPIC;
164 static int amd_iommu_xt_mode = IRQ_REMAP_XAPIC_MODE;
165 
166 static bool amd_iommu_detected;
167 static bool amd_iommu_disabled __initdata;
168 static bool amd_iommu_force_enable __initdata;
169 static bool amd_iommu_irtcachedis;
170 static int amd_iommu_target_ivhd_type;
171 
172 /* Global EFR and EFR2 registers */
173 u64 amd_iommu_efr;
174 u64 amd_iommu_efr2;
175 
176 /* Host (v1) page table is not supported*/
177 bool amd_iommu_hatdis;
178 
179 /* SNP is enabled on the system? */
180 bool amd_iommu_snp_en;
181 EXPORT_SYMBOL(amd_iommu_snp_en);
182 
183 /* SNP page mode 0 support */
184 bool amd_iommu_snp_mode0_sup;
185 
186 LIST_HEAD(amd_iommu_pci_seg_list);	/* list of all PCI segments */
187 LIST_HEAD(amd_iommu_list);		/* list of all AMD IOMMUs in the system */
188 LIST_HEAD(amd_ivhd_dev_flags_list);	/* list of all IVHD device entry settings */
189 
190 /* Number of IOMMUs present in the system */
191 static int amd_iommus_present;
192 
193 /* IOMMUs have a non-present cache? */
194 bool amd_iommu_np_cache __read_mostly;
195 bool amd_iommu_iotlb_sup __read_mostly = true;
196 
197 static bool amd_iommu_pc_present __read_mostly;
198 bool amdr_ivrs_remap_support __read_mostly;
199 
200 bool amd_iommu_force_isolation __read_mostly;
201 
202 unsigned long amd_iommu_pgsize_bitmap __ro_after_init = AMD_IOMMU_PGSIZES;
203 
204 enum iommu_init_state {
205 	IOMMU_START_STATE,
206 	IOMMU_IVRS_DETECTED,
207 	IOMMU_ACPI_FINISHED,
208 	IOMMU_ENABLED,
209 	IOMMU_PCI_INIT,
210 	IOMMU_INTERRUPTS_EN,
211 	IOMMU_INITIALIZED,
212 	IOMMU_NOT_FOUND,
213 	IOMMU_INIT_ERROR,
214 	IOMMU_CMDLINE_DISABLED,
215 };
216 
217 /* Early ioapic and hpet maps from kernel command line */
218 #define EARLY_MAP_SIZE		4
219 static struct devid_map __initdata early_ioapic_map[EARLY_MAP_SIZE];
220 static struct devid_map __initdata early_hpet_map[EARLY_MAP_SIZE];
221 static struct acpihid_map_entry __initdata early_acpihid_map[EARLY_MAP_SIZE];
222 
223 static int __initdata early_ioapic_map_size;
224 static int __initdata early_hpet_map_size;
225 static int __initdata early_acpihid_map_size;
226 
227 static bool __initdata cmdline_maps;
228 
229 static enum iommu_init_state init_state = IOMMU_START_STATE;
230 
231 static int amd_iommu_enable_interrupts(void);
232 static void init_device_table_dma(struct amd_iommu_pci_seg *pci_seg);
233 
234 static bool amd_iommu_pre_enabled = true;
235 
236 static u32 amd_iommu_ivinfo __initdata;
237 
translation_pre_enabled(struct amd_iommu * iommu)238 bool translation_pre_enabled(struct amd_iommu *iommu)
239 {
240 	return (iommu->flags & AMD_IOMMU_FLAG_TRANS_PRE_ENABLED);
241 }
242 
clear_translation_pre_enabled(struct amd_iommu * iommu)243 static void clear_translation_pre_enabled(struct amd_iommu *iommu)
244 {
245 	iommu->flags &= ~AMD_IOMMU_FLAG_TRANS_PRE_ENABLED;
246 }
247 
init_translation_status(struct amd_iommu * iommu)248 static void init_translation_status(struct amd_iommu *iommu)
249 {
250 	u64 ctrl;
251 
252 	ctrl = readq(iommu->mmio_base + MMIO_CONTROL_OFFSET);
253 	if (ctrl & (1<<CONTROL_IOMMU_EN))
254 		iommu->flags |= AMD_IOMMU_FLAG_TRANS_PRE_ENABLED;
255 }
256 
amd_iommu_get_num_iommus(void)257 int amd_iommu_get_num_iommus(void)
258 {
259 	return amd_iommus_present;
260 }
261 
amd_iommu_ht_range_ignore(void)262 bool amd_iommu_ht_range_ignore(void)
263 {
264 	return check_feature2(FEATURE_HT_RANGE_IGNORE);
265 }
266 
267 /*
268  * Iterate through all the IOMMUs to get common EFR
269  * masks among all IOMMUs and warn if found inconsistency.
270  */
get_global_efr(void)271 static __init void get_global_efr(void)
272 {
273 	struct amd_iommu *iommu;
274 
275 	for_each_iommu(iommu) {
276 		u64 tmp = iommu->features;
277 		u64 tmp2 = iommu->features2;
278 
279 		if (list_is_first(&iommu->list, &amd_iommu_list)) {
280 			amd_iommu_efr = tmp;
281 			amd_iommu_efr2 = tmp2;
282 			continue;
283 		}
284 
285 		if (amd_iommu_efr == tmp &&
286 		    amd_iommu_efr2 == tmp2)
287 			continue;
288 
289 		pr_err(FW_BUG
290 		       "Found inconsistent EFR/EFR2 %#llx,%#llx (global %#llx,%#llx) on iommu%d (%04x:%02x:%02x.%01x).\n",
291 		       tmp, tmp2, amd_iommu_efr, amd_iommu_efr2,
292 		       iommu->index, iommu->pci_seg->id,
293 		       PCI_BUS_NUM(iommu->devid), PCI_SLOT(iommu->devid),
294 		       PCI_FUNC(iommu->devid));
295 
296 		amd_iommu_efr &= tmp;
297 		amd_iommu_efr2 &= tmp2;
298 	}
299 
300 	pr_info("Using global IVHD EFR:%#llx, EFR2:%#llx\n", amd_iommu_efr, amd_iommu_efr2);
301 }
302 
303 /*
304  * For IVHD type 0x11/0x40, EFR is also available via IVHD.
305  * Default to IVHD EFR since it is available sooner
306  * (i.e. before PCI init).
307  */
early_iommu_features_init(struct amd_iommu * iommu,struct ivhd_header * h)308 static void __init early_iommu_features_init(struct amd_iommu *iommu,
309 					     struct ivhd_header *h)
310 {
311 	if (amd_iommu_ivinfo & IOMMU_IVINFO_EFRSUP) {
312 		iommu->features = h->efr_reg;
313 		iommu->features2 = h->efr_reg2;
314 	}
315 	if (amd_iommu_ivinfo & IOMMU_IVINFO_DMA_REMAP)
316 		amdr_ivrs_remap_support = true;
317 }
318 
319 /* Access to l1 and l2 indexed register spaces */
320 
iommu_read_l1(struct amd_iommu * iommu,u16 l1,u8 address)321 static u32 iommu_read_l1(struct amd_iommu *iommu, u16 l1, u8 address)
322 {
323 	u32 val;
324 
325 	pci_write_config_dword(iommu->dev, 0xf8, (address | l1 << 16));
326 	pci_read_config_dword(iommu->dev, 0xfc, &val);
327 	return val;
328 }
329 
iommu_write_l1(struct amd_iommu * iommu,u16 l1,u8 address,u32 val)330 static void iommu_write_l1(struct amd_iommu *iommu, u16 l1, u8 address, u32 val)
331 {
332 	pci_write_config_dword(iommu->dev, 0xf8, (address | l1 << 16 | 1 << 31));
333 	pci_write_config_dword(iommu->dev, 0xfc, val);
334 	pci_write_config_dword(iommu->dev, 0xf8, (address | l1 << 16));
335 }
336 
iommu_read_l2(struct amd_iommu * iommu,u8 address)337 static u32 iommu_read_l2(struct amd_iommu *iommu, u8 address)
338 {
339 	u32 val;
340 
341 	pci_write_config_dword(iommu->dev, 0xf0, address);
342 	pci_read_config_dword(iommu->dev, 0xf4, &val);
343 	return val;
344 }
345 
iommu_write_l2(struct amd_iommu * iommu,u8 address,u32 val)346 static void iommu_write_l2(struct amd_iommu *iommu, u8 address, u32 val)
347 {
348 	pci_write_config_dword(iommu->dev, 0xf0, (address | 1 << 8));
349 	pci_write_config_dword(iommu->dev, 0xf4, val);
350 }
351 
352 /****************************************************************************
353  *
354  * AMD IOMMU MMIO register space handling functions
355  *
356  * These functions are used to program the IOMMU device registers in
357  * MMIO space required for that driver.
358  *
359  ****************************************************************************/
360 
iommu_set_cwwb_range(struct amd_iommu * iommu)361 static void iommu_set_cwwb_range(struct amd_iommu *iommu)
362 {
363 	u64 start = iommu_virt_to_phys((void *)iommu->cmd_sem);
364 	u64 entry = start & PM_ADDR_MASK;
365 
366 	if (!check_feature(FEATURE_SNP))
367 		return;
368 
369 	/* Note:
370 	 * Re-purpose Exclusion base/limit registers for Completion wait
371 	 * write-back base/limit.
372 	 */
373 	memcpy_toio(iommu->mmio_base + MMIO_EXCL_BASE_OFFSET,
374 		    &entry, sizeof(entry));
375 
376 	/* Note:
377 	 * Default to 4 Kbytes, which can be specified by setting base
378 	 * address equal to the limit address.
379 	 */
380 	memcpy_toio(iommu->mmio_base + MMIO_EXCL_LIMIT_OFFSET,
381 		    &entry, sizeof(entry));
382 }
383 
384 /* Programs the physical address of the device table into the IOMMU hardware */
iommu_set_device_table(struct amd_iommu * iommu)385 static void iommu_set_device_table(struct amd_iommu *iommu)
386 {
387 	u64 entry;
388 	u32 dev_table_size = iommu->pci_seg->dev_table_size;
389 	void *dev_table = (void *)get_dev_table(iommu);
390 
391 	BUG_ON(iommu->mmio_base == NULL);
392 
393 	if (is_kdump_kernel())
394 		return;
395 
396 	entry = iommu_virt_to_phys(dev_table);
397 	entry |= (dev_table_size >> 12) - 1;
398 	memcpy_toio(iommu->mmio_base + MMIO_DEV_TABLE_OFFSET,
399 			&entry, sizeof(entry));
400 }
401 
iommu_feature_set(struct amd_iommu * iommu,u64 val,u64 mask,u8 shift)402 static void iommu_feature_set(struct amd_iommu *iommu, u64 val, u64 mask, u8 shift)
403 {
404 	u64 ctrl;
405 
406 	ctrl = readq(iommu->mmio_base +  MMIO_CONTROL_OFFSET);
407 	mask <<= shift;
408 	ctrl &= ~mask;
409 	ctrl |= (val << shift) & mask;
410 	writeq(ctrl, iommu->mmio_base +  MMIO_CONTROL_OFFSET);
411 }
412 
413 /* Generic functions to enable/disable certain features of the IOMMU. */
iommu_feature_enable(struct amd_iommu * iommu,u8 bit)414 void iommu_feature_enable(struct amd_iommu *iommu, u8 bit)
415 {
416 	iommu_feature_set(iommu, 1ULL, 1ULL, bit);
417 }
418 
iommu_feature_disable(struct amd_iommu * iommu,u8 bit)419 static void iommu_feature_disable(struct amd_iommu *iommu, u8 bit)
420 {
421 	iommu_feature_set(iommu, 0ULL, 1ULL, bit);
422 }
423 
424 /* Function to enable the hardware */
iommu_enable(struct amd_iommu * iommu)425 static void iommu_enable(struct amd_iommu *iommu)
426 {
427 	iommu_feature_enable(iommu, CONTROL_IOMMU_EN);
428 }
429 
iommu_disable(struct amd_iommu * iommu)430 static void iommu_disable(struct amd_iommu *iommu)
431 {
432 	if (!iommu->mmio_base)
433 		return;
434 
435 	/* Disable command buffer */
436 	iommu_feature_disable(iommu, CONTROL_CMDBUF_EN);
437 
438 	/* Disable event logging and event interrupts */
439 	iommu_feature_disable(iommu, CONTROL_EVT_INT_EN);
440 	iommu_feature_disable(iommu, CONTROL_EVT_LOG_EN);
441 
442 	/* Disable IOMMU GA_LOG */
443 	iommu_feature_disable(iommu, CONTROL_GALOG_EN);
444 	iommu_feature_disable(iommu, CONTROL_GAINT_EN);
445 
446 	/* Disable IOMMU PPR logging */
447 	iommu_feature_disable(iommu, CONTROL_PPRLOG_EN);
448 	iommu_feature_disable(iommu, CONTROL_PPRINT_EN);
449 
450 	/* Disable IOMMU hardware itself */
451 	iommu_feature_disable(iommu, CONTROL_IOMMU_EN);
452 
453 	/* Clear IRTE cache disabling bit */
454 	iommu_feature_disable(iommu, CONTROL_IRTCACHEDIS);
455 }
456 
457 /*
458  * mapping and unmapping functions for the IOMMU MMIO space. Each AMD IOMMU in
459  * the system has one.
460  */
iommu_map_mmio_space(u64 address,u64 end)461 static u8 __iomem * __init iommu_map_mmio_space(u64 address, u64 end)
462 {
463 	if (!request_mem_region(address, end, "amd_iommu")) {
464 		pr_err("Can not reserve memory region %llx-%llx for mmio\n",
465 			address, end);
466 		pr_err("This is a BIOS bug. Please contact your hardware vendor\n");
467 		return NULL;
468 	}
469 
470 	return (u8 __iomem *)ioremap(address, end);
471 }
472 
iommu_unmap_mmio_space(struct amd_iommu * iommu)473 static void __init iommu_unmap_mmio_space(struct amd_iommu *iommu)
474 {
475 	if (iommu->mmio_base)
476 		iounmap(iommu->mmio_base);
477 	release_mem_region(iommu->mmio_phys, iommu->mmio_phys_end);
478 }
479 
get_ivhd_header_size(struct ivhd_header * h)480 static inline u32 get_ivhd_header_size(struct ivhd_header *h)
481 {
482 	u32 size = 0;
483 
484 	switch (h->type) {
485 	case 0x10:
486 		size = 24;
487 		break;
488 	case 0x11:
489 	case 0x40:
490 		size = 40;
491 		break;
492 	}
493 	return size;
494 }
495 
496 /****************************************************************************
497  *
498  * The functions below belong to the first pass of AMD IOMMU ACPI table
499  * parsing. In this pass we try to find out the highest device id this
500  * code has to handle. Upon this information the size of the shared data
501  * structures is determined later.
502  *
503  ****************************************************************************/
504 
505 /*
506  * This function calculates the length of a given IVHD entry
507  */
ivhd_entry_length(u8 * ivhd)508 static inline int ivhd_entry_length(u8 *ivhd)
509 {
510 	u32 type = ((struct ivhd_entry *)ivhd)->type;
511 
512 	if (type < 0x80) {
513 		return 0x04 << (*ivhd >> 6);
514 	} else if (type == IVHD_DEV_ACPI_HID) {
515 		/* For ACPI_HID, offset 21 is uid len */
516 		return *((u8 *)ivhd + 21) + 22;
517 	}
518 	return 0;
519 }
520 
521 /*
522  * After reading the highest device id from the IOMMU PCI capability header
523  * this function looks if there is a higher device id defined in the ACPI table
524  */
find_last_devid_from_ivhd(struct ivhd_header * h)525 static int __init find_last_devid_from_ivhd(struct ivhd_header *h)
526 {
527 	u8 *p = (void *)h, *end = (void *)h;
528 	struct ivhd_entry *dev;
529 	int last_devid = -EINVAL;
530 
531 	u32 ivhd_size = get_ivhd_header_size(h);
532 
533 	if (!ivhd_size) {
534 		pr_err("Unsupported IVHD type %#x\n", h->type);
535 		return -EINVAL;
536 	}
537 
538 	p += ivhd_size;
539 	end += h->length;
540 
541 	while (p < end) {
542 		dev = (struct ivhd_entry *)p;
543 		switch (dev->type) {
544 		case IVHD_DEV_ALL:
545 			/* Use maximum BDF value for DEV_ALL */
546 			return 0xffff;
547 		case IVHD_DEV_SELECT:
548 		case IVHD_DEV_RANGE_END:
549 		case IVHD_DEV_ALIAS:
550 		case IVHD_DEV_EXT_SELECT:
551 			/* all the above subfield types refer to device ids */
552 			if (dev->devid > last_devid)
553 				last_devid = dev->devid;
554 			break;
555 		default:
556 			break;
557 		}
558 		p += ivhd_entry_length(p);
559 	}
560 
561 	WARN_ON(p != end);
562 
563 	return last_devid;
564 }
565 
check_ivrs_checksum(struct acpi_table_header * table)566 static int __init check_ivrs_checksum(struct acpi_table_header *table)
567 {
568 	int i;
569 	u8 checksum = 0, *p = (u8 *)table;
570 
571 	for (i = 0; i < table->length; ++i)
572 		checksum += p[i];
573 	if (checksum != 0) {
574 		/* ACPI table corrupt */
575 		pr_err(FW_BUG "IVRS invalid checksum\n");
576 		return -ENODEV;
577 	}
578 
579 	return 0;
580 }
581 
582 /*
583  * Iterate over all IVHD entries in the ACPI table and find the highest device
584  * id which we need to handle. This is the first of three functions which parse
585  * the ACPI table. So we check the checksum here.
586  */
find_last_devid_acpi(struct acpi_table_header * table,u16 pci_seg)587 static int __init find_last_devid_acpi(struct acpi_table_header *table, u16 pci_seg)
588 {
589 	u8 *p = (u8 *)table, *end = (u8 *)table;
590 	struct ivhd_header *h;
591 	int last_devid, last_bdf = 0;
592 
593 	p += IVRS_HEADER_LENGTH;
594 
595 	end += table->length;
596 	while (p < end) {
597 		h = (struct ivhd_header *)p;
598 		if (h->pci_seg == pci_seg &&
599 		    h->type == amd_iommu_target_ivhd_type) {
600 			last_devid = find_last_devid_from_ivhd(h);
601 
602 			if (last_devid < 0)
603 				return -EINVAL;
604 			if (last_devid > last_bdf)
605 				last_bdf = last_devid;
606 		}
607 		p += h->length;
608 	}
609 	WARN_ON(p != end);
610 
611 	return last_bdf;
612 }
613 
614 /****************************************************************************
615  *
616  * The following functions belong to the code path which parses the ACPI table
617  * the second time. In this ACPI parsing iteration we allocate IOMMU specific
618  * data structures, initialize the per PCI segment device/alias/rlookup table
619  * and also basically initialize the hardware.
620  *
621  ****************************************************************************/
622 
623 /* Allocate per PCI segment device table */
alloc_dev_table(struct amd_iommu_pci_seg * pci_seg)624 static inline int __init alloc_dev_table(struct amd_iommu_pci_seg *pci_seg)
625 {
626 	pci_seg->dev_table = iommu_alloc_pages_sz(GFP_KERNEL | GFP_DMA32,
627 						  pci_seg->dev_table_size);
628 	if (!pci_seg->dev_table)
629 		return -ENOMEM;
630 
631 	return 0;
632 }
633 
free_dev_table(struct amd_iommu_pci_seg * pci_seg)634 static inline void free_dev_table(struct amd_iommu_pci_seg *pci_seg)
635 {
636 	if (is_kdump_kernel())
637 		memunmap((void *)pci_seg->dev_table);
638 	else
639 		iommu_free_pages(pci_seg->dev_table);
640 	pci_seg->dev_table = NULL;
641 }
642 
643 /* Allocate per PCI segment IOMMU rlookup table. */
alloc_rlookup_table(struct amd_iommu_pci_seg * pci_seg)644 static inline int __init alloc_rlookup_table(struct amd_iommu_pci_seg *pci_seg)
645 {
646 	pci_seg->rlookup_table = kvzalloc_objs(*pci_seg->rlookup_table,
647 					       pci_seg->last_bdf + 1);
648 	if (pci_seg->rlookup_table == NULL)
649 		return -ENOMEM;
650 
651 	return 0;
652 }
653 
free_rlookup_table(struct amd_iommu_pci_seg * pci_seg)654 static inline void free_rlookup_table(struct amd_iommu_pci_seg *pci_seg)
655 {
656 	kvfree(pci_seg->rlookup_table);
657 	pci_seg->rlookup_table = NULL;
658 }
659 
alloc_irq_lookup_table(struct amd_iommu_pci_seg * pci_seg)660 static inline int __init alloc_irq_lookup_table(struct amd_iommu_pci_seg *pci_seg)
661 {
662 	pci_seg->irq_lookup_table = kvzalloc_objs(*pci_seg->irq_lookup_table,
663 						  pci_seg->last_bdf + 1);
664 	if (pci_seg->irq_lookup_table == NULL)
665 		return -ENOMEM;
666 
667 	return 0;
668 }
669 
free_irq_lookup_table(struct amd_iommu_pci_seg * pci_seg)670 static inline void free_irq_lookup_table(struct amd_iommu_pci_seg *pci_seg)
671 {
672 	kvfree(pci_seg->irq_lookup_table);
673 	pci_seg->irq_lookup_table = NULL;
674 }
675 
alloc_alias_table(struct amd_iommu_pci_seg * pci_seg)676 static int __init alloc_alias_table(struct amd_iommu_pci_seg *pci_seg)
677 {
678 	int i;
679 
680 	pci_seg->alias_table = kvmalloc_objs(*pci_seg->alias_table,
681 					     pci_seg->last_bdf + 1);
682 	if (!pci_seg->alias_table)
683 		return -ENOMEM;
684 
685 	/*
686 	 * let all alias entries point to itself
687 	 */
688 	for (i = 0; i <= pci_seg->last_bdf; ++i)
689 		pci_seg->alias_table[i] = i;
690 
691 	return 0;
692 }
693 
free_alias_table(struct amd_iommu_pci_seg * pci_seg)694 static void __init free_alias_table(struct amd_iommu_pci_seg *pci_seg)
695 {
696 	kvfree(pci_seg->alias_table);
697 	pci_seg->alias_table = NULL;
698 }
699 
iommu_memremap(unsigned long paddr,size_t size)700 static inline void *iommu_memremap(unsigned long paddr, size_t size)
701 {
702 	phys_addr_t phys;
703 
704 	if (!paddr)
705 		return NULL;
706 
707 	/*
708 	 * Obtain true physical address in kdump kernel when SME is enabled.
709 	 * Currently, previous kernel with SME enabled and kdump kernel
710 	 * with SME support disabled is not supported.
711 	 */
712 	phys = __sme_clr(paddr);
713 
714 	if (cc_platform_has(CC_ATTR_HOST_MEM_ENCRYPT))
715 		return (__force void *)ioremap_encrypted(phys, size);
716 	else
717 		return memremap(phys, size, MEMREMAP_WB);
718 }
719 
720 /*
721  * Allocates the command buffer. This buffer is per AMD IOMMU. We can
722  * write commands to that buffer later and the IOMMU will execute them
723  * asynchronously
724  */
alloc_command_buffer(struct amd_iommu * iommu)725 static int __init alloc_command_buffer(struct amd_iommu *iommu)
726 {
727 	iommu->cmd_buf = iommu_alloc_pages_sz(GFP_KERNEL, CMD_BUFFER_SIZE);
728 
729 	return iommu->cmd_buf ? 0 : -ENOMEM;
730 }
731 
732 /*
733  * Interrupt handler has processed all pending events and adjusted head
734  * and tail pointer. Reset overflow mask and restart logging again.
735  */
amd_iommu_restart_log(struct amd_iommu * iommu,const char * evt_type,u8 cntrl_intr,u8 cntrl_log,u32 status_run_mask,u32 status_overflow_mask)736 void amd_iommu_restart_log(struct amd_iommu *iommu, const char *evt_type,
737 			   u8 cntrl_intr, u8 cntrl_log,
738 			   u32 status_run_mask, u32 status_overflow_mask)
739 {
740 	u32 status;
741 
742 	status = readl(iommu->mmio_base + MMIO_STATUS_OFFSET);
743 	if (status & status_run_mask)
744 		return;
745 
746 	pr_info_ratelimited("IOMMU %s log restarting\n", evt_type);
747 
748 	iommu_feature_disable(iommu, cntrl_log);
749 	iommu_feature_disable(iommu, cntrl_intr);
750 
751 	writel(status_overflow_mask, iommu->mmio_base + MMIO_STATUS_OFFSET);
752 
753 	iommu_feature_enable(iommu, cntrl_intr);
754 	iommu_feature_enable(iommu, cntrl_log);
755 }
756 
757 /*
758  * This function restarts event logging in case the IOMMU experienced
759  * an event log buffer overflow.
760  */
amd_iommu_restart_event_logging(struct amd_iommu * iommu)761 void amd_iommu_restart_event_logging(struct amd_iommu *iommu)
762 {
763 	amd_iommu_restart_log(iommu, "Event", CONTROL_EVT_INT_EN,
764 			      CONTROL_EVT_LOG_EN, MMIO_STATUS_EVT_RUN_MASK,
765 			      MMIO_STATUS_EVT_OVERFLOW_MASK);
766 }
767 
768 /*
769  * This function restarts event logging in case the IOMMU experienced
770  * GA log overflow.
771  */
amd_iommu_restart_ga_log(struct amd_iommu * iommu)772 void amd_iommu_restart_ga_log(struct amd_iommu *iommu)
773 {
774 	amd_iommu_restart_log(iommu, "GA", CONTROL_GAINT_EN,
775 			      CONTROL_GALOG_EN, MMIO_STATUS_GALOG_RUN_MASK,
776 			      MMIO_STATUS_GALOG_OVERFLOW_MASK);
777 }
778 
779 /*
780  * This function resets the command buffer if the IOMMU stopped fetching
781  * commands from it.
782  */
amd_iommu_reset_cmd_buffer(struct amd_iommu * iommu)783 static void amd_iommu_reset_cmd_buffer(struct amd_iommu *iommu)
784 {
785 	iommu_feature_disable(iommu, CONTROL_CMDBUF_EN);
786 
787 	writel(0x00, iommu->mmio_base + MMIO_CMD_HEAD_OFFSET);
788 	writel(0x00, iommu->mmio_base + MMIO_CMD_TAIL_OFFSET);
789 	iommu->cmd_buf_head = 0;
790 	iommu->cmd_buf_tail = 0;
791 
792 	iommu_feature_enable(iommu, CONTROL_CMDBUF_EN);
793 }
794 
795 /*
796  * This function writes the command buffer address to the hardware and
797  * enables it.
798  */
iommu_enable_command_buffer(struct amd_iommu * iommu)799 static void iommu_enable_command_buffer(struct amd_iommu *iommu)
800 {
801 	u64 entry;
802 
803 	BUG_ON(iommu->cmd_buf == NULL);
804 
805 	if (!is_kdump_kernel()) {
806 		/*
807 		 * Command buffer is re-used for kdump kernel and setting
808 		 * of MMIO register is not required.
809 		 */
810 		entry = iommu_virt_to_phys(iommu->cmd_buf);
811 		entry |= MMIO_CMD_SIZE_512;
812 		memcpy_toio(iommu->mmio_base + MMIO_CMD_BUF_OFFSET,
813 			    &entry, sizeof(entry));
814 	}
815 
816 	amd_iommu_reset_cmd_buffer(iommu);
817 }
818 
819 /*
820  * This function disables the command buffer
821  */
iommu_disable_command_buffer(struct amd_iommu * iommu)822 static void iommu_disable_command_buffer(struct amd_iommu *iommu)
823 {
824 	iommu_feature_disable(iommu, CONTROL_CMDBUF_EN);
825 }
826 
free_command_buffer(struct amd_iommu * iommu)827 static void __init free_command_buffer(struct amd_iommu *iommu)
828 {
829 	iommu_free_pages(iommu->cmd_buf);
830 }
831 
iommu_alloc_4k_pages(struct amd_iommu * iommu,gfp_t gfp,size_t size)832 void *__init iommu_alloc_4k_pages(struct amd_iommu *iommu, gfp_t gfp,
833 				  size_t size)
834 {
835 	int nid = iommu->dev ? dev_to_node(&iommu->dev->dev) : NUMA_NO_NODE;
836 	void *buf;
837 
838 	size = PAGE_ALIGN(size);
839 	buf = iommu_alloc_pages_node_sz(nid, gfp, size);
840 	if (!buf)
841 		return NULL;
842 	if (check_feature(FEATURE_SNP) &&
843 	    set_memory_4k((unsigned long)buf, size / PAGE_SIZE)) {
844 		iommu_free_pages(buf);
845 		return NULL;
846 	}
847 
848 	return buf;
849 }
850 
851 /* allocates the memory where the IOMMU will log its events to */
alloc_event_buffer(void)852 static int __init alloc_event_buffer(void)
853 {
854 	struct amd_iommu *iommu;
855 
856 	for_each_iommu(iommu) {
857 		iommu->evt_buf = iommu_alloc_4k_pages(iommu, GFP_KERNEL,
858 						      amd_iommu_evtlog_size);
859 		if (!iommu->evt_buf)
860 			return -ENOMEM;
861 	}
862 
863 	return 0;
864 }
865 
iommu_enable_event_buffer(void)866 static void iommu_enable_event_buffer(void)
867 {
868 	struct amd_iommu *iommu;
869 	u64 entry;
870 
871 	for_each_iommu(iommu) {
872 		BUG_ON(iommu->evt_buf == NULL);
873 
874 		if (!is_kdump_kernel()) {
875 			/*
876 			 * Event buffer is re-used for kdump kernel and setting
877 			 * of MMIO register is not required.
878 			 */
879 			entry = iommu_virt_to_phys(iommu->evt_buf);
880 			entry |= (amd_iommu_evtlog_size == EVTLOG_SIZE_DEF) ?
881 				EVTLOG_LEN_MASK_DEF : EVTLOG_LEN_MASK_MAX;
882 
883 			memcpy_toio(iommu->mmio_base + MMIO_EVT_BUF_OFFSET,
884 				    &entry, sizeof(entry));
885 		}
886 
887 		/* set head and tail to zero manually */
888 		writel(0x00, iommu->mmio_base + MMIO_EVT_HEAD_OFFSET);
889 		writel(0x00, iommu->mmio_base + MMIO_EVT_TAIL_OFFSET);
890 
891 		iommu_feature_enable(iommu, CONTROL_EVT_LOG_EN);
892 	}
893 }
894 
895 /*
896  * This function disables the event log buffer
897  */
iommu_disable_event_buffer(struct amd_iommu * iommu)898 static void iommu_disable_event_buffer(struct amd_iommu *iommu)
899 {
900 	iommu_feature_disable(iommu, CONTROL_EVT_LOG_EN);
901 }
902 
free_event_buffer(struct amd_iommu * iommu)903 static void __init free_event_buffer(struct amd_iommu *iommu)
904 {
905 	iommu_free_pages(iommu->evt_buf);
906 }
907 
free_ga_log(struct amd_iommu * iommu)908 static void free_ga_log(struct amd_iommu *iommu)
909 {
910 #ifdef CONFIG_IRQ_REMAP
911 	iommu_free_pages(iommu->ga_log);
912 	iommu_free_pages(iommu->ga_log_tail);
913 #endif
914 }
915 
916 #ifdef CONFIG_IRQ_REMAP
iommu_ga_log_enable(struct amd_iommu * iommu)917 static int iommu_ga_log_enable(struct amd_iommu *iommu)
918 {
919 	u32 status, i;
920 	u64 entry;
921 
922 	if (!iommu->ga_log)
923 		return -EINVAL;
924 
925 	entry = iommu_virt_to_phys(iommu->ga_log) | GA_LOG_SIZE_512;
926 	memcpy_toio(iommu->mmio_base + MMIO_GA_LOG_BASE_OFFSET,
927 		    &entry, sizeof(entry));
928 	entry = (iommu_virt_to_phys(iommu->ga_log_tail) &
929 		 (BIT_ULL(52)-1)) & ~7ULL;
930 	memcpy_toio(iommu->mmio_base + MMIO_GA_LOG_TAIL_OFFSET,
931 		    &entry, sizeof(entry));
932 	writel(0x00, iommu->mmio_base + MMIO_GA_HEAD_OFFSET);
933 	writel(0x00, iommu->mmio_base + MMIO_GA_TAIL_OFFSET);
934 
935 
936 	iommu_feature_enable(iommu, CONTROL_GAINT_EN);
937 	iommu_feature_enable(iommu, CONTROL_GALOG_EN);
938 
939 	for (i = 0; i < MMIO_STATUS_TIMEOUT; ++i) {
940 		status = readl(iommu->mmio_base + MMIO_STATUS_OFFSET);
941 		if (status & (MMIO_STATUS_GALOG_RUN_MASK))
942 			break;
943 		udelay(10);
944 	}
945 
946 	if (WARN_ON(i >= MMIO_STATUS_TIMEOUT))
947 		return -EINVAL;
948 
949 	return 0;
950 }
951 
iommu_init_ga_log(struct amd_iommu * iommu)952 static int iommu_init_ga_log(struct amd_iommu *iommu)
953 {
954 	int nid = iommu->dev ? dev_to_node(&iommu->dev->dev) : NUMA_NO_NODE;
955 
956 	if (WARN_ON_ONCE(!AMD_IOMMU_GUEST_IR_VAPIC(amd_iommu_guest_ir)))
957 		return -EINVAL;
958 
959 	iommu->ga_log = iommu_alloc_pages_node_sz(nid, GFP_KERNEL, GA_LOG_SIZE);
960 	if (!iommu->ga_log)
961 		goto err_out;
962 
963 	iommu->ga_log_tail = iommu_alloc_pages_node_sz(nid, GFP_KERNEL, 8);
964 	if (!iommu->ga_log_tail)
965 		goto err_out;
966 
967 	return 0;
968 err_out:
969 	free_ga_log(iommu);
970 	return -EINVAL;
971 }
972 #endif /* CONFIG_IRQ_REMAP */
973 
alloc_cwwb_sem(struct amd_iommu * iommu)974 static int __init alloc_cwwb_sem(struct amd_iommu *iommu)
975 {
976 	iommu->cmd_sem = iommu_alloc_4k_pages(iommu, GFP_KERNEL, 1);
977 	if (!iommu->cmd_sem)
978 		return -ENOMEM;
979 	iommu->cmd_sem_paddr = iommu_virt_to_phys((void *)iommu->cmd_sem);
980 	return 0;
981 }
982 
remap_event_buffer(void)983 static int __init remap_event_buffer(void)
984 {
985 	struct amd_iommu *iommu;
986 	u64 paddr;
987 
988 	pr_info_once("Re-using event buffer from the previous kernel\n");
989 	for_each_iommu(iommu) {
990 		paddr = readq(iommu->mmio_base + MMIO_EVT_BUF_OFFSET) & PM_ADDR_MASK;
991 		iommu->evt_buf = iommu_memremap(paddr, amd_iommu_evtlog_size);
992 		if (!iommu->evt_buf)
993 			return -ENOMEM;
994 	}
995 
996 	return 0;
997 }
998 
remap_command_buffer(struct amd_iommu * iommu)999 static int __init remap_command_buffer(struct amd_iommu *iommu)
1000 {
1001 	u64 paddr;
1002 
1003 	pr_info_once("Re-using command buffer from the previous kernel\n");
1004 	paddr = readq(iommu->mmio_base + MMIO_CMD_BUF_OFFSET) & PM_ADDR_MASK;
1005 	iommu->cmd_buf = iommu_memremap(paddr, CMD_BUFFER_SIZE);
1006 
1007 	return iommu->cmd_buf ? 0 : -ENOMEM;
1008 }
1009 
remap_or_alloc_cwwb_sem(struct amd_iommu * iommu)1010 static int __init remap_or_alloc_cwwb_sem(struct amd_iommu *iommu)
1011 {
1012 	u64 paddr;
1013 
1014 	if (check_feature(FEATURE_SNP)) {
1015 		/*
1016 		 * When SNP is enabled, the exclusion base register is used for the
1017 		 * completion wait buffer (CWB) address. Read and re-use it.
1018 		 */
1019 		pr_info_once("Re-using CWB buffers from the previous kernel\n");
1020 		paddr = readq(iommu->mmio_base + MMIO_EXCL_BASE_OFFSET) & PM_ADDR_MASK;
1021 		iommu->cmd_sem = iommu_memremap(paddr, PAGE_SIZE);
1022 		if (!iommu->cmd_sem)
1023 			return -ENOMEM;
1024 		iommu->cmd_sem_paddr = paddr;
1025 	} else {
1026 		return alloc_cwwb_sem(iommu);
1027 	}
1028 
1029 	return 0;
1030 }
1031 
alloc_iommu_buffers(struct amd_iommu * iommu)1032 static int __init alloc_iommu_buffers(struct amd_iommu *iommu)
1033 {
1034 	int ret;
1035 
1036 	/*
1037 	 * Reuse/Remap the previous kernel's allocated completion wait
1038 	 * command and event buffers for kdump boot.
1039 	 */
1040 	if (is_kdump_kernel()) {
1041 		ret = remap_or_alloc_cwwb_sem(iommu);
1042 		if (ret)
1043 			return ret;
1044 
1045 		ret = remap_command_buffer(iommu);
1046 		if (ret)
1047 			return ret;
1048 	} else {
1049 		ret = alloc_cwwb_sem(iommu);
1050 		if (ret)
1051 			return ret;
1052 
1053 		ret = alloc_command_buffer(iommu);
1054 		if (ret)
1055 			return ret;
1056 	}
1057 
1058 	return 0;
1059 }
1060 
free_cwwb_sem(struct amd_iommu * iommu)1061 static void __init free_cwwb_sem(struct amd_iommu *iommu)
1062 {
1063 	if (iommu->cmd_sem)
1064 		iommu_free_pages((void *)iommu->cmd_sem);
1065 }
unmap_cwwb_sem(struct amd_iommu * iommu)1066 static void __init unmap_cwwb_sem(struct amd_iommu *iommu)
1067 {
1068 	if (iommu->cmd_sem) {
1069 		if (check_feature(FEATURE_SNP))
1070 			memunmap((void *)iommu->cmd_sem);
1071 		else
1072 			iommu_free_pages((void *)iommu->cmd_sem);
1073 	}
1074 }
1075 
unmap_command_buffer(struct amd_iommu * iommu)1076 static void __init unmap_command_buffer(struct amd_iommu *iommu)
1077 {
1078 	memunmap((void *)iommu->cmd_buf);
1079 }
1080 
unmap_event_buffer(struct amd_iommu * iommu)1081 static void __init unmap_event_buffer(struct amd_iommu *iommu)
1082 {
1083 	memunmap(iommu->evt_buf);
1084 }
1085 
free_iommu_buffers(struct amd_iommu * iommu)1086 static void __init free_iommu_buffers(struct amd_iommu *iommu)
1087 {
1088 	if (is_kdump_kernel()) {
1089 		unmap_cwwb_sem(iommu);
1090 		unmap_command_buffer(iommu);
1091 		unmap_event_buffer(iommu);
1092 	} else {
1093 		free_cwwb_sem(iommu);
1094 		free_command_buffer(iommu);
1095 		free_event_buffer(iommu);
1096 	}
1097 }
1098 
iommu_enable_xt(struct amd_iommu * iommu)1099 static void iommu_enable_xt(struct amd_iommu *iommu)
1100 {
1101 #ifdef CONFIG_IRQ_REMAP
1102 	/*
1103 	 * XT mode (32-bit APIC destination ID) requires
1104 	 * GA mode (128-bit IRTE support) as a prerequisite.
1105 	 */
1106 	if (AMD_IOMMU_GUEST_IR_GA(amd_iommu_guest_ir) &&
1107 	    amd_iommu_xt_mode == IRQ_REMAP_X2APIC_MODE)
1108 		iommu_feature_enable(iommu, CONTROL_XT_EN);
1109 #endif /* CONFIG_IRQ_REMAP */
1110 }
1111 
iommu_enable_gt(struct amd_iommu * iommu)1112 static void iommu_enable_gt(struct amd_iommu *iommu)
1113 {
1114 	if (!check_feature(FEATURE_GT))
1115 		return;
1116 
1117 	iommu_feature_enable(iommu, CONTROL_GT_EN);
1118 
1119 	/*
1120 	 * This feature needs to be enabled prior to a call
1121 	 * to iommu_snp_enable(). Since this function is called
1122 	 * in early_enable_iommu(), it is safe to enable here.
1123 	 */
1124 	if (check_feature2(FEATURE_GCR3TRPMODE))
1125 		iommu_feature_enable(iommu, CONTROL_GCR3TRPMODE);
1126 }
1127 
1128 /* sets a specific bit in the device table entry. */
set_dte_bit(struct dev_table_entry * dte,u8 bit)1129 static void set_dte_bit(struct dev_table_entry *dte, u8 bit)
1130 {
1131 	int i = (bit >> 6) & 0x03;
1132 	int _bit = bit & 0x3f;
1133 
1134 	dte->data[i] |= (1UL << _bit);
1135 }
1136 
__reuse_device_table(struct amd_iommu * iommu)1137 static bool __reuse_device_table(struct amd_iommu *iommu)
1138 {
1139 	struct amd_iommu_pci_seg *pci_seg = iommu->pci_seg;
1140 	struct dev_table_entry *old_dev_tbl_entry;
1141 	u32 lo, hi, old_devtb_size, devid;
1142 	phys_addr_t old_devtb_phys;
1143 	u16 dom_id;
1144 	bool dte_v;
1145 	u64 entry;
1146 
1147 	/* Each IOMMU use separate device table with the same size */
1148 	lo = readl(iommu->mmio_base + MMIO_DEV_TABLE_OFFSET);
1149 	hi = readl(iommu->mmio_base + MMIO_DEV_TABLE_OFFSET + 4);
1150 	entry = (((u64) hi) << 32) + lo;
1151 
1152 	old_devtb_size = ((entry & ~PAGE_MASK) + 1) << 12;
1153 	if (old_devtb_size != pci_seg->dev_table_size) {
1154 		pr_err("The device table size of IOMMU:%d is not expected!\n",
1155 			iommu->index);
1156 		return false;
1157 	}
1158 
1159 	/*
1160 	 * When SME is enabled in the first kernel, the entry includes the
1161 	 * memory encryption mask(sme_me_mask), we must remove the memory
1162 	 * encryption mask to obtain the true physical address in kdump kernel.
1163 	 */
1164 	old_devtb_phys = __sme_clr(entry) & PAGE_MASK;
1165 
1166 	if (old_devtb_phys >= 0x100000000ULL) {
1167 		pr_err("The address of old device table is above 4G, not trustworthy!\n");
1168 		return false;
1169 	}
1170 
1171 	/*
1172 	 * Re-use the previous kernel's device table for kdump.
1173 	 */
1174 	pci_seg->old_dev_tbl_cpy = iommu_memremap(old_devtb_phys, pci_seg->dev_table_size);
1175 	if (pci_seg->old_dev_tbl_cpy == NULL) {
1176 		pr_err("Failed to remap memory for reusing old device table!\n");
1177 		return false;
1178 	}
1179 
1180 	for (devid = 0; devid <= pci_seg->last_bdf; devid++) {
1181 		old_dev_tbl_entry = &pci_seg->old_dev_tbl_cpy[devid];
1182 		dte_v = FIELD_GET(DTE_FLAG_V, old_dev_tbl_entry->data[0]);
1183 		dom_id = FIELD_GET(DTE_DOMID_MASK, old_dev_tbl_entry->data[1]);
1184 
1185 		if (!dte_v || !dom_id)
1186 			continue;
1187 		/*
1188 		 * ID reservation can fail with -ENOSPC when there
1189 		 * are multiple devices present in the same domain,
1190 		 * hence check only for -ENOMEM.
1191 		 */
1192 		if (amd_iommu_pdom_id_reserve(dom_id, GFP_KERNEL) == -ENOMEM)
1193 			return false;
1194 	}
1195 
1196 	return true;
1197 }
1198 
reuse_device_table(void)1199 static bool reuse_device_table(void)
1200 {
1201 	struct amd_iommu *iommu;
1202 	struct amd_iommu_pci_seg *pci_seg;
1203 
1204 	if (!amd_iommu_pre_enabled)
1205 		return false;
1206 
1207 	pr_warn("Translation is already enabled - trying to reuse translation structures\n");
1208 
1209 	/*
1210 	 * All IOMMUs within PCI segment shares common device table.
1211 	 * Hence reuse device table only once per PCI segment.
1212 	 */
1213 	for_each_pci_segment(pci_seg) {
1214 		for_each_iommu(iommu) {
1215 			if (pci_seg->id != iommu->pci_seg->id)
1216 				continue;
1217 			if (!__reuse_device_table(iommu))
1218 				return false;
1219 			break;
1220 		}
1221 	}
1222 
1223 	return true;
1224 }
1225 
amd_iommu_get_ivhd_dte_flags(u16 segid,u16 devid)1226 struct dev_table_entry *amd_iommu_get_ivhd_dte_flags(u16 segid, u16 devid)
1227 {
1228 	struct ivhd_dte_flags *e;
1229 	unsigned int best_len = UINT_MAX;
1230 	struct dev_table_entry *dte = NULL;
1231 
1232 	for_each_ivhd_dte_flags(e) {
1233 		/*
1234 		 * Need to go through the whole list to find the smallest range,
1235 		 * which contains the devid.
1236 		 */
1237 		if ((e->segid == segid) &&
1238 		    (e->devid_first <= devid) && (devid <= e->devid_last)) {
1239 			unsigned int len = e->devid_last - e->devid_first;
1240 
1241 			if (len < best_len) {
1242 				dte = &(e->dte);
1243 				best_len = len;
1244 			}
1245 		}
1246 	}
1247 	return dte;
1248 }
1249 
search_ivhd_dte_flags(u16 segid,u16 first,u16 last)1250 static bool search_ivhd_dte_flags(u16 segid, u16 first, u16 last)
1251 {
1252 	struct ivhd_dte_flags *e;
1253 
1254 	for_each_ivhd_dte_flags(e) {
1255 		if ((e->segid == segid) &&
1256 		    (e->devid_first == first) &&
1257 		    (e->devid_last == last))
1258 			return true;
1259 	}
1260 	return false;
1261 }
1262 
1263 /*
1264  * This function takes the device specific flags read from the ACPI
1265  * table and sets up the device table entry with that information
1266  */
1267 static void __init
set_dev_entry_from_acpi_range(struct amd_iommu * iommu,u16 first,u16 last,u32 flags,u32 ext_flags)1268 set_dev_entry_from_acpi_range(struct amd_iommu *iommu, u16 first, u16 last,
1269 			      u32 flags, u32 ext_flags)
1270 {
1271 	int i;
1272 	struct dev_table_entry dte = {};
1273 
1274 	/* Parse IVHD DTE setting flags and store information */
1275 	if (flags) {
1276 		struct ivhd_dte_flags *d;
1277 
1278 		if (search_ivhd_dte_flags(iommu->pci_seg->id, first, last))
1279 			return;
1280 
1281 		d = kzalloc_obj(struct ivhd_dte_flags);
1282 		if (!d)
1283 			return;
1284 
1285 		pr_debug("%s: devid range %#x:%#x\n", __func__, first, last);
1286 
1287 		if (flags & ACPI_DEVFLAG_INITPASS)
1288 			set_dte_bit(&dte, DEV_ENTRY_INIT_PASS);
1289 		if (flags & ACPI_DEVFLAG_EXTINT)
1290 			set_dte_bit(&dte, DEV_ENTRY_EINT_PASS);
1291 		if (flags & ACPI_DEVFLAG_NMI)
1292 			set_dte_bit(&dte, DEV_ENTRY_NMI_PASS);
1293 		if (flags & ACPI_DEVFLAG_SYSMGT1)
1294 			set_dte_bit(&dte, DEV_ENTRY_SYSMGT1);
1295 		if (flags & ACPI_DEVFLAG_SYSMGT2)
1296 			set_dte_bit(&dte, DEV_ENTRY_SYSMGT2);
1297 		if (flags & ACPI_DEVFLAG_LINT0)
1298 			set_dte_bit(&dte, DEV_ENTRY_LINT0_PASS);
1299 		if (flags & ACPI_DEVFLAG_LINT1)
1300 			set_dte_bit(&dte, DEV_ENTRY_LINT1_PASS);
1301 
1302 		/* Apply erratum 63, which needs info in initial_dte */
1303 		if (FIELD_GET(DTE_DATA1_SYSMGT_MASK, dte.data[1]) == 0x1)
1304 			dte.data[0] |= DTE_FLAG_IW;
1305 
1306 		memcpy(&d->dte, &dte, sizeof(dte));
1307 		d->segid = iommu->pci_seg->id;
1308 		d->devid_first = first;
1309 		d->devid_last = last;
1310 		list_add_tail(&d->list, &amd_ivhd_dev_flags_list);
1311 	}
1312 
1313 	for (i = first; i <= last; i++)  {
1314 		if (flags) {
1315 			struct dev_table_entry *dev_table = get_dev_table(iommu);
1316 
1317 			memcpy(&dev_table[i], &dte, sizeof(dte));
1318 		}
1319 		amd_iommu_set_rlookup_table(iommu, i);
1320 	}
1321 }
1322 
set_dev_entry_from_acpi(struct amd_iommu * iommu,u16 devid,u32 flags,u32 ext_flags)1323 static void __init set_dev_entry_from_acpi(struct amd_iommu *iommu,
1324 					   u16 devid, u32 flags, u32 ext_flags)
1325 {
1326 	set_dev_entry_from_acpi_range(iommu, devid, devid, flags, ext_flags);
1327 }
1328 
add_special_device(u8 type,u8 id,u32 * devid,bool cmd_line)1329 int __init add_special_device(u8 type, u8 id, u32 *devid, bool cmd_line)
1330 {
1331 	struct devid_map *entry;
1332 	struct list_head *list;
1333 
1334 	if (type == IVHD_SPECIAL_IOAPIC)
1335 		list = &ioapic_map;
1336 	else if (type == IVHD_SPECIAL_HPET)
1337 		list = &hpet_map;
1338 	else
1339 		return -EINVAL;
1340 
1341 	list_for_each_entry(entry, list, list) {
1342 		if (!(entry->id == id && entry->cmd_line))
1343 			continue;
1344 
1345 		pr_info("Command-line override present for %s id %d - ignoring\n",
1346 			type == IVHD_SPECIAL_IOAPIC ? "IOAPIC" : "HPET", id);
1347 
1348 		*devid = entry->devid;
1349 
1350 		return 0;
1351 	}
1352 
1353 	entry = kzalloc_obj(*entry);
1354 	if (!entry)
1355 		return -ENOMEM;
1356 
1357 	entry->id	= id;
1358 	entry->devid	= *devid;
1359 	entry->cmd_line	= cmd_line;
1360 
1361 	list_add_tail(&entry->list, list);
1362 
1363 	return 0;
1364 }
1365 
add_acpi_hid_device(u8 * hid,u8 * uid,u32 * devid,bool cmd_line)1366 static int __init add_acpi_hid_device(u8 *hid, u8 *uid, u32 *devid,
1367 				      bool cmd_line)
1368 {
1369 	struct acpihid_map_entry *entry;
1370 	struct list_head *list = &acpihid_map;
1371 
1372 	list_for_each_entry(entry, list, list) {
1373 		if (strcmp(entry->hid, hid) ||
1374 		    (*uid && *entry->uid && strcmp(entry->uid, uid)) ||
1375 		    !entry->cmd_line)
1376 			continue;
1377 
1378 		pr_info("Command-line override for hid:%s uid:%s\n",
1379 			hid, uid);
1380 		*devid = entry->devid;
1381 		return 0;
1382 	}
1383 
1384 	entry = kzalloc_obj(*entry);
1385 	if (!entry)
1386 		return -ENOMEM;
1387 
1388 	memcpy(entry->uid, uid, strlen(uid));
1389 	memcpy(entry->hid, hid, strlen(hid));
1390 	entry->devid = *devid;
1391 	entry->cmd_line	= cmd_line;
1392 	entry->root_devid = (entry->devid & (~0x7));
1393 
1394 	pr_info("%s, add hid:%s, uid:%s, rdevid:%#x\n",
1395 		entry->cmd_line ? "cmd" : "ivrs",
1396 		entry->hid, entry->uid, entry->root_devid);
1397 
1398 	list_add_tail(&entry->list, list);
1399 	return 0;
1400 }
1401 
add_early_maps(void)1402 static int __init add_early_maps(void)
1403 {
1404 	int i, ret;
1405 
1406 	for (i = 0; i < early_ioapic_map_size; ++i) {
1407 		ret = add_special_device(IVHD_SPECIAL_IOAPIC,
1408 					 early_ioapic_map[i].id,
1409 					 &early_ioapic_map[i].devid,
1410 					 early_ioapic_map[i].cmd_line);
1411 		if (ret)
1412 			return ret;
1413 	}
1414 
1415 	for (i = 0; i < early_hpet_map_size; ++i) {
1416 		ret = add_special_device(IVHD_SPECIAL_HPET,
1417 					 early_hpet_map[i].id,
1418 					 &early_hpet_map[i].devid,
1419 					 early_hpet_map[i].cmd_line);
1420 		if (ret)
1421 			return ret;
1422 	}
1423 
1424 	for (i = 0; i < early_acpihid_map_size; ++i) {
1425 		ret = add_acpi_hid_device(early_acpihid_map[i].hid,
1426 					  early_acpihid_map[i].uid,
1427 					  &early_acpihid_map[i].devid,
1428 					  early_acpihid_map[i].cmd_line);
1429 		if (ret)
1430 			return ret;
1431 	}
1432 
1433 	return 0;
1434 }
1435 
1436 /*
1437  * Takes a pointer to an AMD IOMMU entry in the ACPI table and
1438  * initializes the hardware and our data structures with it.
1439  */
init_iommu_from_acpi(struct amd_iommu * iommu,struct ivhd_header * h)1440 static int __init init_iommu_from_acpi(struct amd_iommu *iommu,
1441 					struct ivhd_header *h)
1442 {
1443 	u8 *p = (u8 *)h;
1444 	u8 *end = p, flags = 0;
1445 	u16 devid = 0, devid_start = 0, devid_to = 0, seg_id;
1446 	u32 dev_i, ext_flags = 0;
1447 	bool alias = false;
1448 	struct ivhd_entry *e;
1449 	struct amd_iommu_pci_seg *pci_seg = iommu->pci_seg;
1450 	u32 ivhd_size;
1451 	int ret;
1452 
1453 
1454 	ret = add_early_maps();
1455 	if (ret)
1456 		return ret;
1457 
1458 	amd_iommu_apply_ivrs_quirks();
1459 
1460 	/*
1461 	 * First save the recommended feature enable bits from ACPI
1462 	 */
1463 	iommu->acpi_flags = h->flags;
1464 
1465 	/*
1466 	 * Done. Now parse the device entries
1467 	 */
1468 	ivhd_size = get_ivhd_header_size(h);
1469 	if (!ivhd_size) {
1470 		pr_err("Unsupported IVHD type %#x\n", h->type);
1471 		return -EINVAL;
1472 	}
1473 
1474 	p += ivhd_size;
1475 
1476 	end += h->length;
1477 
1478 
1479 	while (p < end) {
1480 		e = (struct ivhd_entry *)p;
1481 		seg_id = pci_seg->id;
1482 
1483 		switch (e->type) {
1484 		case IVHD_DEV_ALL:
1485 
1486 			DUMP_printk("  DEV_ALL\t\t\tsetting: %#02x\n", e->flags);
1487 			set_dev_entry_from_acpi_range(iommu, 0, pci_seg->last_bdf, e->flags, 0);
1488 			break;
1489 		case IVHD_DEV_SELECT:
1490 
1491 			DUMP_printk("  DEV_SELECT\t\t\tdevid: %04x:%02x:%02x.%x flags: %#02x\n",
1492 				    seg_id, PCI_BUS_NUM(e->devid),
1493 				    PCI_SLOT(e->devid),
1494 				    PCI_FUNC(e->devid),
1495 				    e->flags);
1496 
1497 			devid = e->devid;
1498 			set_dev_entry_from_acpi(iommu, devid, e->flags, 0);
1499 			break;
1500 		case IVHD_DEV_SELECT_RANGE_START:
1501 
1502 			DUMP_printk("  DEV_SELECT_RANGE_START\tdevid: %04x:%02x:%02x.%x flags: %#02x\n",
1503 				    seg_id, PCI_BUS_NUM(e->devid),
1504 				    PCI_SLOT(e->devid),
1505 				    PCI_FUNC(e->devid),
1506 				    e->flags);
1507 
1508 			devid_start = e->devid;
1509 			flags = e->flags;
1510 			ext_flags = 0;
1511 			alias = false;
1512 			break;
1513 		case IVHD_DEV_ALIAS:
1514 
1515 			DUMP_printk("  DEV_ALIAS\t\t\tdevid: %04x:%02x:%02x.%x flags: %#02x devid_to: %02x:%02x.%x\n",
1516 				    seg_id, PCI_BUS_NUM(e->devid),
1517 				    PCI_SLOT(e->devid),
1518 				    PCI_FUNC(e->devid),
1519 				    e->flags,
1520 				    PCI_BUS_NUM(e->ext >> 8),
1521 				    PCI_SLOT(e->ext >> 8),
1522 				    PCI_FUNC(e->ext >> 8));
1523 
1524 			devid = e->devid;
1525 			devid_to = e->ext >> 8;
1526 			set_dev_entry_from_acpi(iommu, devid   , e->flags, 0);
1527 			set_dev_entry_from_acpi(iommu, devid_to, e->flags, 0);
1528 			pci_seg->alias_table[devid] = devid_to;
1529 			break;
1530 		case IVHD_DEV_ALIAS_RANGE:
1531 
1532 			DUMP_printk("  DEV_ALIAS_RANGE\t\tdevid: %04x:%02x:%02x.%x flags: %#02x devid_to: %04x:%02x:%02x.%x\n",
1533 				    seg_id, PCI_BUS_NUM(e->devid),
1534 				    PCI_SLOT(e->devid),
1535 				    PCI_FUNC(e->devid),
1536 				    e->flags,
1537 				    seg_id, PCI_BUS_NUM(e->ext >> 8),
1538 				    PCI_SLOT(e->ext >> 8),
1539 				    PCI_FUNC(e->ext >> 8));
1540 
1541 			devid_start = e->devid;
1542 			flags = e->flags;
1543 			devid_to = e->ext >> 8;
1544 			ext_flags = 0;
1545 			alias = true;
1546 			break;
1547 		case IVHD_DEV_EXT_SELECT:
1548 
1549 			DUMP_printk("  DEV_EXT_SELECT\t\tdevid: %04x:%02x:%02x.%x flags: %#02x ext: %08x\n",
1550 				    seg_id, PCI_BUS_NUM(e->devid),
1551 				    PCI_SLOT(e->devid),
1552 				    PCI_FUNC(e->devid),
1553 				    e->flags, e->ext);
1554 
1555 			devid = e->devid;
1556 			set_dev_entry_from_acpi(iommu, devid, e->flags,
1557 						e->ext);
1558 			break;
1559 		case IVHD_DEV_EXT_SELECT_RANGE:
1560 
1561 			DUMP_printk("  DEV_EXT_SELECT_RANGE\tdevid: %04x:%02x:%02x.%x flags: %#02x ext: %08x\n",
1562 				    seg_id, PCI_BUS_NUM(e->devid),
1563 				    PCI_SLOT(e->devid),
1564 				    PCI_FUNC(e->devid),
1565 				    e->flags, e->ext);
1566 
1567 			devid_start = e->devid;
1568 			flags = e->flags;
1569 			ext_flags = e->ext;
1570 			alias = false;
1571 			break;
1572 		case IVHD_DEV_RANGE_END:
1573 
1574 			DUMP_printk("  DEV_RANGE_END\t\tdevid: %04x:%02x:%02x.%x\n",
1575 				    seg_id, PCI_BUS_NUM(e->devid),
1576 				    PCI_SLOT(e->devid),
1577 				    PCI_FUNC(e->devid));
1578 
1579 			devid = e->devid;
1580 			if (alias) {
1581 				for (dev_i = devid_start; dev_i <= devid; ++dev_i)
1582 					pci_seg->alias_table[dev_i] = devid_to;
1583 				set_dev_entry_from_acpi(iommu, devid_to, flags, ext_flags);
1584 			}
1585 			set_dev_entry_from_acpi_range(iommu, devid_start, devid, flags, ext_flags);
1586 			break;
1587 		case IVHD_DEV_SPECIAL: {
1588 			u8 handle, type;
1589 			const char *var;
1590 			u32 devid;
1591 			int ret;
1592 
1593 			handle = e->ext & 0xff;
1594 			devid = PCI_SEG_DEVID_TO_SBDF(seg_id, (e->ext >> 8));
1595 			type   = (e->ext >> 24) & 0xff;
1596 
1597 			if (type == IVHD_SPECIAL_IOAPIC)
1598 				var = "IOAPIC";
1599 			else if (type == IVHD_SPECIAL_HPET)
1600 				var = "HPET";
1601 			else
1602 				var = "UNKNOWN";
1603 
1604 			DUMP_printk("  DEV_SPECIAL(%s[%d])\t\tdevid: %04x:%02x:%02x.%x, flags: %#02x\n",
1605 				    var, (int)handle,
1606 				    seg_id, PCI_BUS_NUM(devid),
1607 				    PCI_SLOT(devid),
1608 				    PCI_FUNC(devid),
1609 				    e->flags);
1610 
1611 			ret = add_special_device(type, handle, &devid, false);
1612 			if (ret)
1613 				return ret;
1614 
1615 			/*
1616 			 * add_special_device might update the devid in case a
1617 			 * command-line override is present. So call
1618 			 * set_dev_entry_from_acpi after add_special_device.
1619 			 */
1620 			set_dev_entry_from_acpi(iommu, devid, e->flags, 0);
1621 
1622 			break;
1623 		}
1624 		case IVHD_DEV_ACPI_HID: {
1625 			u32 devid;
1626 			u8 hid[ACPIHID_HID_LEN];
1627 			u8 uid[ACPIHID_UID_LEN];
1628 			int ret;
1629 
1630 			if (h->type != 0x40) {
1631 				pr_err(FW_BUG "Invalid IVHD device type %#x\n",
1632 				       e->type);
1633 				break;
1634 			}
1635 
1636 			BUILD_BUG_ON(sizeof(e->ext_hid) != ACPIHID_HID_LEN - 1);
1637 			memcpy(hid, &e->ext_hid, ACPIHID_HID_LEN - 1);
1638 			hid[ACPIHID_HID_LEN - 1] = '\0';
1639 
1640 			if (!(*hid)) {
1641 				pr_err(FW_BUG "Invalid HID.\n");
1642 				break;
1643 			}
1644 
1645 			uid[0] = '\0';
1646 			switch (e->uidf) {
1647 			case UID_NOT_PRESENT:
1648 
1649 				if (e->uidl != 0)
1650 					pr_warn(FW_BUG "Invalid UID length.\n");
1651 
1652 				break;
1653 			case UID_IS_INTEGER:
1654 
1655 				sprintf(uid, "%d", e->uid);
1656 
1657 				break;
1658 			case UID_IS_CHARACTER:
1659 
1660 				memcpy(uid, &e->uid, e->uidl);
1661 				uid[e->uidl] = '\0';
1662 
1663 				break;
1664 			default:
1665 				break;
1666 			}
1667 
1668 			devid = PCI_SEG_DEVID_TO_SBDF(seg_id, e->devid);
1669 			DUMP_printk("  DEV_ACPI_HID(%s[%s])\t\tdevid: %04x:%02x:%02x.%x, flags: %#02x\n",
1670 				    hid, uid, seg_id,
1671 				    PCI_BUS_NUM(devid),
1672 				    PCI_SLOT(devid),
1673 				    PCI_FUNC(devid),
1674 				    e->flags);
1675 
1676 			flags = e->flags;
1677 
1678 			ret = add_acpi_hid_device(hid, uid, &devid, false);
1679 			if (ret)
1680 				return ret;
1681 
1682 			/*
1683 			 * add_special_device might update the devid in case a
1684 			 * command-line override is present. So call
1685 			 * set_dev_entry_from_acpi after add_special_device.
1686 			 */
1687 			set_dev_entry_from_acpi(iommu, devid, e->flags, 0);
1688 
1689 			break;
1690 		}
1691 		default:
1692 			break;
1693 		}
1694 
1695 		p += ivhd_entry_length(p);
1696 	}
1697 
1698 	return 0;
1699 }
1700 
1701 /* Allocate PCI segment data structure */
alloc_pci_segment(u16 id,struct acpi_table_header * ivrs_base)1702 static struct amd_iommu_pci_seg *__init alloc_pci_segment(u16 id,
1703 					  struct acpi_table_header *ivrs_base)
1704 {
1705 	struct amd_iommu_pci_seg *pci_seg;
1706 	int last_bdf;
1707 
1708 	/*
1709 	 * First parse ACPI tables to find the largest Bus/Dev/Func we need to
1710 	 * handle in this PCI segment. Upon this information the shared data
1711 	 * structures for the PCI segments in the system will be allocated.
1712 	 */
1713 	last_bdf = find_last_devid_acpi(ivrs_base, id);
1714 	if (last_bdf < 0)
1715 		return NULL;
1716 
1717 	pci_seg = kzalloc_obj(struct amd_iommu_pci_seg);
1718 	if (pci_seg == NULL)
1719 		return NULL;
1720 
1721 	pci_seg->last_bdf = last_bdf;
1722 	DUMP_printk("PCI segment : 0x%0x, last bdf : 0x%04x\n", id, last_bdf);
1723 	pci_seg->dev_table_size =
1724 		max(roundup_pow_of_two((last_bdf + 1) * DEV_TABLE_ENTRY_SIZE),
1725 		    SZ_4K);
1726 
1727 	pci_seg->id = id;
1728 	init_llist_head(&pci_seg->dev_data_list);
1729 	INIT_LIST_HEAD(&pci_seg->unity_map);
1730 	list_add_tail(&pci_seg->list, &amd_iommu_pci_seg_list);
1731 
1732 	if (alloc_dev_table(pci_seg))
1733 		goto err_free_pci_seg;
1734 	if (alloc_alias_table(pci_seg))
1735 		goto err_free_dev_table;
1736 	if (alloc_rlookup_table(pci_seg))
1737 		goto err_free_alias_table;
1738 
1739 	return pci_seg;
1740 
1741 err_free_alias_table:
1742 	free_alias_table(pci_seg);
1743 err_free_dev_table:
1744 	free_dev_table(pci_seg);
1745 err_free_pci_seg:
1746 	list_del(&pci_seg->list);
1747 	kfree(pci_seg);
1748 	return NULL;
1749 }
1750 
get_pci_segment(u16 id,struct acpi_table_header * ivrs_base)1751 static struct amd_iommu_pci_seg *__init get_pci_segment(u16 id,
1752 					struct acpi_table_header *ivrs_base)
1753 {
1754 	struct amd_iommu_pci_seg *pci_seg;
1755 
1756 	for_each_pci_segment(pci_seg) {
1757 		if (pci_seg->id == id)
1758 			return pci_seg;
1759 	}
1760 
1761 	return alloc_pci_segment(id, ivrs_base);
1762 }
1763 
free_pci_segments(void)1764 static void __init free_pci_segments(void)
1765 {
1766 	struct amd_iommu_pci_seg *pci_seg, *next;
1767 
1768 	for_each_pci_segment_safe(pci_seg, next) {
1769 		list_del(&pci_seg->list);
1770 		free_irq_lookup_table(pci_seg);
1771 		free_rlookup_table(pci_seg);
1772 		free_alias_table(pci_seg);
1773 		free_dev_table(pci_seg);
1774 		kfree(pci_seg);
1775 	}
1776 }
1777 
free_sysfs(struct amd_iommu * iommu)1778 static void __init free_sysfs(struct amd_iommu *iommu)
1779 {
1780 	if (iommu->iommu.dev) {
1781 		iommu_device_unregister(&iommu->iommu);
1782 		iommu_device_sysfs_remove(&iommu->iommu);
1783 	}
1784 }
1785 
free_iommu_one(struct amd_iommu * iommu)1786 static void __init free_iommu_one(struct amd_iommu *iommu)
1787 {
1788 	free_sysfs(iommu);
1789 	free_iommu_buffers(iommu);
1790 	amd_iommu_free_ppr_log(iommu);
1791 	free_ga_log(iommu);
1792 	iommu_unmap_mmio_space(iommu);
1793 	amd_iommu_iopf_uninit(iommu);
1794 }
1795 
free_iommu_all(void)1796 static void __init free_iommu_all(void)
1797 {
1798 	struct amd_iommu *iommu, *next;
1799 
1800 	for_each_iommu_safe(iommu, next) {
1801 		list_del(&iommu->list);
1802 		free_iommu_one(iommu);
1803 		kfree(iommu);
1804 	}
1805 }
1806 
1807 /*
1808  * Family15h Model 10h-1fh erratum 746 (IOMMU Logging May Stall Translations)
1809  * Workaround:
1810  *     BIOS should disable L2B micellaneous clock gating by setting
1811  *     L2_L2B_CK_GATE_CONTROL[CKGateL2BMiscDisable](D0F2xF4_x90[2]) = 1b
1812  */
amd_iommu_erratum_746_workaround(struct amd_iommu * iommu)1813 static void amd_iommu_erratum_746_workaround(struct amd_iommu *iommu)
1814 {
1815 	u32 value;
1816 
1817 	if ((boot_cpu_data.x86 != 0x15) ||
1818 	    (boot_cpu_data.x86_model < 0x10) ||
1819 	    (boot_cpu_data.x86_model > 0x1f))
1820 		return;
1821 
1822 	pci_write_config_dword(iommu->dev, 0xf0, 0x90);
1823 	pci_read_config_dword(iommu->dev, 0xf4, &value);
1824 
1825 	if (value & BIT(2))
1826 		return;
1827 
1828 	/* Select NB indirect register 0x90 and enable writing */
1829 	pci_write_config_dword(iommu->dev, 0xf0, 0x90 | (1 << 8));
1830 
1831 	pci_write_config_dword(iommu->dev, 0xf4, value | 0x4);
1832 	pci_info(iommu->dev, "Applying erratum 746 workaround\n");
1833 
1834 	/* Clear the enable writing bit */
1835 	pci_write_config_dword(iommu->dev, 0xf0, 0x90);
1836 }
1837 
1838 /*
1839  * Family15h Model 30h-3fh (IOMMU Mishandles ATS Write Permission)
1840  * Workaround:
1841  *     BIOS should enable ATS write permission check by setting
1842  *     L2_DEBUG_3[AtsIgnoreIWDis](D0F2xF4_x47[0]) = 1b
1843  */
amd_iommu_ats_write_check_workaround(struct amd_iommu * iommu)1844 static void amd_iommu_ats_write_check_workaround(struct amd_iommu *iommu)
1845 {
1846 	u32 value;
1847 
1848 	if ((boot_cpu_data.x86 != 0x15) ||
1849 	    (boot_cpu_data.x86_model < 0x30) ||
1850 	    (boot_cpu_data.x86_model > 0x3f))
1851 		return;
1852 
1853 	/* Test L2_DEBUG_3[AtsIgnoreIWDis] == 1 */
1854 	value = iommu_read_l2(iommu, 0x47);
1855 
1856 	if (value & BIT(0))
1857 		return;
1858 
1859 	/* Set L2_DEBUG_3[AtsIgnoreIWDis] = 1 */
1860 	iommu_write_l2(iommu, 0x47, value | BIT(0));
1861 
1862 	pci_info(iommu->dev, "Applying ATS write check workaround\n");
1863 }
1864 
1865 /*
1866  * This function glues the initialization function for one IOMMU
1867  * together and also allocates the command buffer and programs the
1868  * hardware. It does NOT enable the IOMMU. This is done afterwards.
1869  */
init_iommu_one(struct amd_iommu * iommu,struct ivhd_header * h,struct acpi_table_header * ivrs_base)1870 static int __init init_iommu_one(struct amd_iommu *iommu, struct ivhd_header *h,
1871 				 struct acpi_table_header *ivrs_base)
1872 {
1873 	struct amd_iommu_pci_seg *pci_seg;
1874 
1875 	pci_seg = get_pci_segment(h->pci_seg, ivrs_base);
1876 	if (pci_seg == NULL)
1877 		return -ENOMEM;
1878 	iommu->pci_seg = pci_seg;
1879 
1880 	raw_spin_lock_init(&iommu->lock);
1881 	iommu->cmd_sem_val = 0;
1882 
1883 	/* Add IOMMU to internal data structures */
1884 	list_add_tail(&iommu->list, &amd_iommu_list);
1885 	iommu->index = amd_iommus_present++;
1886 
1887 	if (unlikely(iommu->index >= MAX_IOMMUS)) {
1888 		WARN(1, "System has more IOMMUs than supported by this driver\n");
1889 		return -ENOSYS;
1890 	}
1891 
1892 	/*
1893 	 * Copy data from ACPI table entry to the iommu struct
1894 	 */
1895 	iommu->devid   = h->devid;
1896 	iommu->cap_ptr = h->cap_ptr;
1897 	iommu->mmio_phys = h->mmio_phys;
1898 
1899 	switch (h->type) {
1900 	case 0x10:
1901 		/* Check if IVHD EFR contains proper max banks/counters */
1902 		if ((h->efr_attr != 0) &&
1903 		    ((h->efr_attr & (0xF << 13)) != 0) &&
1904 		    ((h->efr_attr & (0x3F << 17)) != 0))
1905 			iommu->mmio_phys_end = MMIO_REG_END_OFFSET;
1906 		else
1907 			iommu->mmio_phys_end = MMIO_CNTR_CONF_OFFSET;
1908 
1909 		/* GAM requires GA mode. */
1910 		if ((h->efr_attr & (0x1 << IOMMU_FEAT_GASUP_SHIFT)) == 0)
1911 			amd_iommu_guest_ir = AMD_IOMMU_GUEST_IR_LEGACY;
1912 		break;
1913 	case 0x11:
1914 	case 0x40:
1915 		if (h->efr_reg & (1 << 9))
1916 			iommu->mmio_phys_end = MMIO_REG_END_OFFSET;
1917 		else
1918 			iommu->mmio_phys_end = MMIO_CNTR_CONF_OFFSET;
1919 
1920 		/* XT and GAM require GA mode. */
1921 		if ((h->efr_reg & (0x1 << IOMMU_EFR_GASUP_SHIFT)) == 0) {
1922 			amd_iommu_guest_ir = AMD_IOMMU_GUEST_IR_LEGACY;
1923 		} else {
1924 			if (h->efr_reg & BIT(IOMMU_EFR_XTSUP_SHIFT))
1925 				amd_iommu_xt_mode = IRQ_REMAP_X2APIC_MODE;
1926 		}
1927 
1928 		if (h->efr_attr & BIT(IOMMU_IVHD_ATTR_HATDIS_SHIFT)) {
1929 			pr_warn_once("Host Address Translation is not supported.\n");
1930 			amd_iommu_hatdis = true;
1931 		}
1932 
1933 		early_iommu_features_init(iommu, h);
1934 
1935 		break;
1936 	default:
1937 		return -EINVAL;
1938 	}
1939 
1940 	iommu->mmio_base = iommu_map_mmio_space(iommu->mmio_phys,
1941 						iommu->mmio_phys_end);
1942 	if (!iommu->mmio_base)
1943 		return -ENOMEM;
1944 
1945 	return init_iommu_from_acpi(iommu, h);
1946 }
1947 
init_iommu_one_late(struct amd_iommu * iommu)1948 static int __init init_iommu_one_late(struct amd_iommu *iommu)
1949 {
1950 	int ret;
1951 
1952 	ret = alloc_iommu_buffers(iommu);
1953 	if (ret)
1954 		return ret;
1955 
1956 	iommu->int_enabled = false;
1957 
1958 	init_translation_status(iommu);
1959 	if (translation_pre_enabled(iommu) && !is_kdump_kernel()) {
1960 		iommu_disable(iommu);
1961 		clear_translation_pre_enabled(iommu);
1962 		pr_warn("Translation was enabled for IOMMU:%d but we are not in kdump mode\n",
1963 			iommu->index);
1964 	}
1965 	if (amd_iommu_pre_enabled)
1966 		amd_iommu_pre_enabled = translation_pre_enabled(iommu);
1967 
1968 	if (amd_iommu_irq_remap) {
1969 		ret = amd_iommu_create_irq_domain(iommu);
1970 		if (ret)
1971 			return ret;
1972 	}
1973 
1974 	/*
1975 	 * Make sure IOMMU is not considered to translate itself. The IVRS
1976 	 * table tells us so, but this is a lie!
1977 	 */
1978 	iommu->pci_seg->rlookup_table[iommu->devid] = NULL;
1979 
1980 	return 0;
1981 }
1982 
1983 /**
1984  * get_highest_supported_ivhd_type - Look up the appropriate IVHD type
1985  * @ivrs: Pointer to the IVRS header
1986  *
1987  * This function search through all IVDB of the maximum supported IVHD
1988  */
get_highest_supported_ivhd_type(struct acpi_table_header * ivrs)1989 static u8 get_highest_supported_ivhd_type(struct acpi_table_header *ivrs)
1990 {
1991 	u8 *base = (u8 *)ivrs;
1992 	struct ivhd_header *ivhd = (struct ivhd_header *)
1993 					(base + IVRS_HEADER_LENGTH);
1994 	u8 last_type = ivhd->type;
1995 	u16 devid = ivhd->devid;
1996 
1997 	while (((u8 *)ivhd - base < ivrs->length) &&
1998 	       (ivhd->type <= ACPI_IVHD_TYPE_MAX_SUPPORTED)) {
1999 		u8 *p = (u8 *) ivhd;
2000 
2001 		if (ivhd->devid == devid)
2002 			last_type = ivhd->type;
2003 		ivhd = (struct ivhd_header *)(p + ivhd->length);
2004 	}
2005 
2006 	return last_type;
2007 }
2008 
2009 /*
2010  * Iterates over all IOMMU entries in the ACPI table, allocates the
2011  * IOMMU structure and initializes it with init_iommu_one()
2012  */
init_iommu_all(struct acpi_table_header * table)2013 static int __init init_iommu_all(struct acpi_table_header *table)
2014 {
2015 	u8 *p = (u8 *)table, *end = (u8 *)table;
2016 	struct ivhd_header *h;
2017 	struct amd_iommu *iommu;
2018 	int ret;
2019 
2020 	end += table->length;
2021 	p += IVRS_HEADER_LENGTH;
2022 
2023 	/* Phase 1: Process all IVHD blocks */
2024 	while (p < end) {
2025 		h = (struct ivhd_header *)p;
2026 		if (*p == amd_iommu_target_ivhd_type) {
2027 
2028 			DUMP_printk("device: %04x:%02x:%02x.%01x cap: %04x "
2029 				    "flags: %01x info %04x\n",
2030 				    h->pci_seg, PCI_BUS_NUM(h->devid),
2031 				    PCI_SLOT(h->devid), PCI_FUNC(h->devid),
2032 				    h->cap_ptr, h->flags, h->info);
2033 			DUMP_printk("       mmio-addr: %016llx\n",
2034 				    h->mmio_phys);
2035 
2036 			iommu = kzalloc_obj(struct amd_iommu);
2037 			if (iommu == NULL)
2038 				return -ENOMEM;
2039 
2040 			ret = init_iommu_one(iommu, h, table);
2041 			if (ret)
2042 				return ret;
2043 		}
2044 		p += h->length;
2045 
2046 	}
2047 	WARN_ON(p != end);
2048 
2049 	/* Phase 2 : Early feature support check */
2050 	get_global_efr();
2051 
2052 	/* Phase 3 : Enabling IOMMU features */
2053 	for_each_iommu(iommu) {
2054 		ret = init_iommu_one_late(iommu);
2055 		if (ret)
2056 			return ret;
2057 	}
2058 
2059 	return 0;
2060 }
2061 
init_iommu_perf_ctr(struct amd_iommu * iommu)2062 static void init_iommu_perf_ctr(struct amd_iommu *iommu)
2063 {
2064 	u64 val;
2065 	struct pci_dev *pdev = iommu->dev;
2066 
2067 	if (!check_feature(FEATURE_PC))
2068 		return;
2069 
2070 	amd_iommu_pc_present = true;
2071 
2072 	pci_info(pdev, "IOMMU performance counters supported\n");
2073 
2074 	val = readl(iommu->mmio_base + MMIO_CNTR_CONF_OFFSET);
2075 	iommu->max_banks = (u8) ((val >> 12) & 0x3f);
2076 	iommu->max_counters = (u8) ((val >> 7) & 0xf);
2077 
2078 	return;
2079 }
2080 
amd_iommu_show_cap(struct device * dev,struct device_attribute * attr,char * buf)2081 static ssize_t amd_iommu_show_cap(struct device *dev,
2082 				  struct device_attribute *attr,
2083 				  char *buf)
2084 {
2085 	struct amd_iommu *iommu = dev_to_amd_iommu(dev);
2086 	return sysfs_emit(buf, "%x\n", iommu->cap);
2087 }
2088 static DEVICE_ATTR(cap, S_IRUGO, amd_iommu_show_cap, NULL);
2089 
amd_iommu_show_features(struct device * dev,struct device_attribute * attr,char * buf)2090 static ssize_t amd_iommu_show_features(struct device *dev,
2091 				       struct device_attribute *attr,
2092 				       char *buf)
2093 {
2094 	return sysfs_emit(buf, "%llx:%llx\n", amd_iommu_efr, amd_iommu_efr2);
2095 }
2096 static DEVICE_ATTR(features, S_IRUGO, amd_iommu_show_features, NULL);
2097 
2098 static struct attribute *amd_iommu_attrs[] = {
2099 	&dev_attr_cap.attr,
2100 	&dev_attr_features.attr,
2101 	NULL,
2102 };
2103 
2104 static struct attribute_group amd_iommu_group = {
2105 	.name = "amd-iommu",
2106 	.attrs = amd_iommu_attrs,
2107 };
2108 
2109 static const struct attribute_group *amd_iommu_groups[] = {
2110 	&amd_iommu_group,
2111 	NULL,
2112 };
2113 
2114 /*
2115  * Note: IVHD 0x11 and 0x40 also contains exact copy
2116  * of the IOMMU Extended Feature Register [MMIO Offset 0030h].
2117  * Default to EFR in IVHD since it is available sooner (i.e. before PCI init).
2118  */
late_iommu_features_init(struct amd_iommu * iommu)2119 static void __init late_iommu_features_init(struct amd_iommu *iommu)
2120 {
2121 	u64 features, features2;
2122 
2123 	if (!(iommu->cap & (1 << IOMMU_CAP_EFR)))
2124 		return;
2125 
2126 	/* read extended feature bits */
2127 	features = readq(iommu->mmio_base + MMIO_EXT_FEATURES);
2128 	features2 = readq(iommu->mmio_base + MMIO_EXT_FEATURES2);
2129 
2130 	if (!amd_iommu_efr) {
2131 		amd_iommu_efr = features;
2132 		amd_iommu_efr2 = features2;
2133 		return;
2134 	}
2135 
2136 	/*
2137 	 * Sanity check and warn if EFR values from
2138 	 * IVHD and MMIO conflict.
2139 	 */
2140 	if (features != amd_iommu_efr ||
2141 	    features2 != amd_iommu_efr2) {
2142 		pr_warn(FW_WARN
2143 			"EFR mismatch. Use IVHD EFR (%#llx : %#llx), EFR2 (%#llx : %#llx).\n",
2144 			features, amd_iommu_efr,
2145 			features2, amd_iommu_efr2);
2146 	}
2147 }
2148 
iommu_init_pci(struct amd_iommu * iommu)2149 static int __init iommu_init_pci(struct amd_iommu *iommu)
2150 {
2151 	int cap_ptr = iommu->cap_ptr;
2152 	int ret;
2153 
2154 	iommu->dev = pci_get_domain_bus_and_slot(iommu->pci_seg->id,
2155 						 PCI_BUS_NUM(iommu->devid),
2156 						 iommu->devid & 0xff);
2157 	if (!iommu->dev)
2158 		return -ENODEV;
2159 
2160 	/* ACPI _PRT won't have an IRQ for IOMMU */
2161 	iommu->dev->irq_managed = 1;
2162 
2163 	pci_read_config_dword(iommu->dev, cap_ptr + MMIO_CAP_HDR_OFFSET,
2164 			      &iommu->cap);
2165 
2166 	if (!(iommu->cap & (1 << IOMMU_CAP_IOTLB)))
2167 		amd_iommu_iotlb_sup = false;
2168 
2169 	late_iommu_features_init(iommu);
2170 
2171 	if (check_feature(FEATURE_GT)) {
2172 		int glxval;
2173 		u64 pasmax;
2174 
2175 		pasmax = FIELD_GET(FEATURE_PASMAX, amd_iommu_efr);
2176 		iommu->iommu.max_pasids = (1 << (pasmax + 1)) - 1;
2177 
2178 		BUG_ON(iommu->iommu.max_pasids & ~PASID_MASK);
2179 
2180 		glxval = FIELD_GET(FEATURE_GLX, amd_iommu_efr);
2181 
2182 		if (amd_iommu_max_glx_val == -1)
2183 			amd_iommu_max_glx_val = glxval;
2184 		else
2185 			amd_iommu_max_glx_val = min(amd_iommu_max_glx_val, glxval);
2186 
2187 		iommu_enable_gt(iommu);
2188 	}
2189 
2190 	if (check_feature(FEATURE_PPR) && amd_iommu_alloc_ppr_log(iommu))
2191 		return -ENOMEM;
2192 
2193 	if (iommu->cap & (1UL << IOMMU_CAP_NPCACHE)) {
2194 		pr_info("Using strict mode due to virtualization\n");
2195 		iommu_set_dma_strict();
2196 		amd_iommu_np_cache = true;
2197 	}
2198 
2199 	init_iommu_perf_ctr(iommu);
2200 
2201 	if (is_rd890_iommu(iommu->dev)) {
2202 		int i, j;
2203 
2204 		iommu->root_pdev =
2205 			pci_get_domain_bus_and_slot(iommu->pci_seg->id,
2206 						    iommu->dev->bus->number,
2207 						    PCI_DEVFN(0, 0));
2208 
2209 		/*
2210 		 * Some rd890 systems may not be fully reconfigured by the
2211 		 * BIOS, so it's necessary for us to store this information so
2212 		 * it can be reprogrammed on resume
2213 		 */
2214 		pci_read_config_dword(iommu->dev, iommu->cap_ptr + 4,
2215 				&iommu->stored_addr_lo);
2216 		pci_read_config_dword(iommu->dev, iommu->cap_ptr + 8,
2217 				&iommu->stored_addr_hi);
2218 
2219 		/* Low bit locks writes to configuration space */
2220 		iommu->stored_addr_lo &= ~1;
2221 
2222 		for (i = 0; i < 6; i++)
2223 			for (j = 0; j < 0x12; j++)
2224 				iommu->stored_l1[i][j] = iommu_read_l1(iommu, i, j);
2225 
2226 		for (i = 0; i < 0x83; i++)
2227 			iommu->stored_l2[i] = iommu_read_l2(iommu, i);
2228 	}
2229 
2230 	amd_iommu_erratum_746_workaround(iommu);
2231 	amd_iommu_ats_write_check_workaround(iommu);
2232 
2233 	ret = iommu_device_sysfs_add(&iommu->iommu, &iommu->dev->dev,
2234 			       amd_iommu_groups, "ivhd%d", iommu->index);
2235 	if (ret)
2236 		return ret;
2237 
2238 	/*
2239 	 * Allocate per IOMMU IOPF queue here so that in attach device path,
2240 	 * PRI capable device can be added to IOPF queue
2241 	 */
2242 	if (amd_iommu_gt_ppr_supported()) {
2243 		ret = amd_iommu_iopf_init(iommu);
2244 		if (ret)
2245 			return ret;
2246 	}
2247 
2248 	ret = iommu_device_register(&iommu->iommu, &amd_iommu_ops, NULL);
2249 	if (ret || amd_iommu_pgtable == PD_MODE_NONE) {
2250 		/*
2251 		 * Remove sysfs if DMA translation is not supported by the
2252 		 * IOMMU. Do not return an error to enable IRQ remapping
2253 		 * in state_next(), DTE[V, TV] must eventually be set to 0.
2254 		 */
2255 		iommu_device_sysfs_remove(&iommu->iommu);
2256 	}
2257 
2258 	return pci_enable_device(iommu->dev);
2259 }
2260 
print_iommu_info(void)2261 static void print_iommu_info(void)
2262 {
2263 	int i;
2264 	static const char * const feat_str[] = {
2265 		"PreF", "PPR", "X2APIC", "NX", "GT", "[5]",
2266 		"IA", "GA", "HE", "PC"
2267 	};
2268 
2269 	if (amd_iommu_efr) {
2270 		pr_info("Extended features (%#llx, %#llx):", amd_iommu_efr, amd_iommu_efr2);
2271 
2272 		for (i = 0; i < ARRAY_SIZE(feat_str); ++i) {
2273 			if (check_feature(1ULL << i))
2274 				pr_cont(" %s", feat_str[i]);
2275 		}
2276 
2277 		if (check_feature(FEATURE_GAM_VAPIC))
2278 			pr_cont(" GA_vAPIC");
2279 
2280 		if (check_feature(FEATURE_SNP))
2281 			pr_cont(" SNP");
2282 
2283 		if (check_feature2(FEATURE_SEVSNPIO_SUP))
2284 			pr_cont(" SEV-TIO");
2285 
2286 		pr_cont("\n");
2287 	}
2288 
2289 	if (irq_remapping_enabled) {
2290 		pr_info("Interrupt remapping enabled\n");
2291 		if (amd_iommu_xt_mode == IRQ_REMAP_X2APIC_MODE)
2292 			pr_info("X2APIC enabled\n");
2293 	}
2294 	if (amd_iommu_pgtable == PD_MODE_V2) {
2295 		pr_info("V2 page table enabled (Paging mode : %d level)\n",
2296 			amd_iommu_gpt_level);
2297 	}
2298 }
2299 
amd_iommu_init_pci(void)2300 static int __init amd_iommu_init_pci(void)
2301 {
2302 	struct amd_iommu *iommu;
2303 	struct amd_iommu_pci_seg *pci_seg;
2304 	int ret;
2305 
2306 	/* Init global identity domain before registering IOMMU */
2307 	amd_iommu_init_identity_domain();
2308 
2309 	for_each_iommu(iommu) {
2310 		ret = iommu_init_pci(iommu);
2311 		if (ret) {
2312 			pr_err("IOMMU%d: Failed to initialize IOMMU Hardware (error=%d)!\n",
2313 			       iommu->index, ret);
2314 			goto out;
2315 		}
2316 		/* Need to setup range after PCI init */
2317 		iommu_set_cwwb_range(iommu);
2318 	}
2319 
2320 	/*
2321 	 * Order is important here to make sure any unity map requirements are
2322 	 * fulfilled. The unity mappings are created and written to the device
2323 	 * table during the iommu_init_pci() call.
2324 	 *
2325 	 * After that we call init_device_table_dma() to make sure any
2326 	 * uninitialized DTE will block DMA, and in the end we flush the caches
2327 	 * of all IOMMUs to make sure the changes to the device table are
2328 	 * active.
2329 	 */
2330 	for_each_pci_segment(pci_seg)
2331 		init_device_table_dma(pci_seg);
2332 
2333 	for_each_iommu(iommu)
2334 		amd_iommu_flush_all_caches(iommu);
2335 
2336 	print_iommu_info();
2337 
2338 out:
2339 	return ret;
2340 }
2341 
2342 /****************************************************************************
2343  *
2344  * The following functions initialize the MSI interrupts for all IOMMUs
2345  * in the system. It's a bit challenging because there could be multiple
2346  * IOMMUs per PCI BDF but we can call pci_enable_msi(x) only once per
2347  * pci_dev.
2348  *
2349  ****************************************************************************/
2350 
iommu_setup_msi(struct amd_iommu * iommu)2351 static int iommu_setup_msi(struct amd_iommu *iommu)
2352 {
2353 	int r;
2354 
2355 	r = pci_enable_msi(iommu->dev);
2356 	if (r)
2357 		return r;
2358 
2359 	r = request_threaded_irq(iommu->dev->irq, NULL, amd_iommu_int_thread,
2360 				 IRQF_ONESHOT, "AMD-Vi", iommu);
2361 	if (r) {
2362 		pci_disable_msi(iommu->dev);
2363 		return r;
2364 	}
2365 
2366 	return 0;
2367 }
2368 
2369 union intcapxt {
2370 	u64	capxt;
2371 	struct {
2372 		u64	reserved_0		:  2,
2373 			dest_mode_logical	:  1,
2374 			reserved_1		:  5,
2375 			destid_0_23		: 24,
2376 			vector			:  8,
2377 			reserved_2		: 16,
2378 			destid_24_31		:  8;
2379 	};
2380 } __attribute__ ((packed));
2381 
2382 
2383 static struct irq_chip intcapxt_controller;
2384 
intcapxt_irqdomain_activate(struct irq_domain * domain,struct irq_data * irqd,bool reserve)2385 static int intcapxt_irqdomain_activate(struct irq_domain *domain,
2386 				       struct irq_data *irqd, bool reserve)
2387 {
2388 	return 0;
2389 }
2390 
intcapxt_irqdomain_deactivate(struct irq_domain * domain,struct irq_data * irqd)2391 static void intcapxt_irqdomain_deactivate(struct irq_domain *domain,
2392 					  struct irq_data *irqd)
2393 {
2394 }
2395 
2396 
intcapxt_irqdomain_alloc(struct irq_domain * domain,unsigned int virq,unsigned int nr_irqs,void * arg)2397 static int intcapxt_irqdomain_alloc(struct irq_domain *domain, unsigned int virq,
2398 				    unsigned int nr_irqs, void *arg)
2399 {
2400 	struct irq_alloc_info *info = arg;
2401 	int i, ret;
2402 
2403 	if (!info || info->type != X86_IRQ_ALLOC_TYPE_AMDVI)
2404 		return -EINVAL;
2405 
2406 	ret = irq_domain_alloc_irqs_parent(domain, virq, nr_irqs, arg);
2407 	if (ret < 0)
2408 		return ret;
2409 
2410 	for (i = virq; i < virq + nr_irqs; i++) {
2411 		struct irq_data *irqd = irq_domain_get_irq_data(domain, i);
2412 
2413 		irqd->chip = &intcapxt_controller;
2414 		irqd->hwirq = info->hwirq;
2415 		irqd->chip_data = info->data;
2416 		__irq_set_handler(i, handle_edge_irq, 0, "edge");
2417 	}
2418 
2419 	return ret;
2420 }
2421 
intcapxt_irqdomain_free(struct irq_domain * domain,unsigned int virq,unsigned int nr_irqs)2422 static void intcapxt_irqdomain_free(struct irq_domain *domain, unsigned int virq,
2423 				    unsigned int nr_irqs)
2424 {
2425 	irq_domain_free_irqs_top(domain, virq, nr_irqs);
2426 }
2427 
2428 
intcapxt_unmask_irq(struct irq_data * irqd)2429 static void intcapxt_unmask_irq(struct irq_data *irqd)
2430 {
2431 	struct amd_iommu *iommu = irqd->chip_data;
2432 	struct irq_cfg *cfg = irqd_cfg(irqd);
2433 	union intcapxt xt;
2434 
2435 	xt.capxt = 0ULL;
2436 	xt.dest_mode_logical = apic->dest_mode_logical;
2437 	xt.vector = cfg->vector;
2438 	xt.destid_0_23 = cfg->dest_apicid & GENMASK(23, 0);
2439 	xt.destid_24_31 = cfg->dest_apicid >> 24;
2440 
2441 	writeq(xt.capxt, iommu->mmio_base + irqd->hwirq);
2442 }
2443 
intcapxt_mask_irq(struct irq_data * irqd)2444 static void intcapxt_mask_irq(struct irq_data *irqd)
2445 {
2446 	struct amd_iommu *iommu = irqd->chip_data;
2447 
2448 	writeq(0, iommu->mmio_base + irqd->hwirq);
2449 }
2450 
2451 
intcapxt_set_affinity(struct irq_data * irqd,const struct cpumask * mask,bool force)2452 static int intcapxt_set_affinity(struct irq_data *irqd,
2453 				 const struct cpumask *mask, bool force)
2454 {
2455 	struct irq_data *parent = irqd->parent_data;
2456 	int ret;
2457 
2458 	ret = parent->chip->irq_set_affinity(parent, mask, force);
2459 	if (ret < 0 || ret == IRQ_SET_MASK_OK_DONE)
2460 		return ret;
2461 	return 0;
2462 }
2463 
intcapxt_set_wake(struct irq_data * irqd,unsigned int on)2464 static int intcapxt_set_wake(struct irq_data *irqd, unsigned int on)
2465 {
2466 	return on ? -EOPNOTSUPP : 0;
2467 }
2468 
2469 static struct irq_chip intcapxt_controller = {
2470 	.name			= "IOMMU-MSI",
2471 	.irq_unmask		= intcapxt_unmask_irq,
2472 	.irq_mask		= intcapxt_mask_irq,
2473 	.irq_ack		= irq_chip_ack_parent,
2474 	.irq_retrigger		= irq_chip_retrigger_hierarchy,
2475 	.irq_set_affinity       = intcapxt_set_affinity,
2476 	.irq_set_wake		= intcapxt_set_wake,
2477 	.flags			= IRQCHIP_MASK_ON_SUSPEND | IRQCHIP_MOVE_DEFERRED,
2478 };
2479 
2480 static const struct irq_domain_ops intcapxt_domain_ops = {
2481 	.alloc			= intcapxt_irqdomain_alloc,
2482 	.free			= intcapxt_irqdomain_free,
2483 	.activate		= intcapxt_irqdomain_activate,
2484 	.deactivate		= intcapxt_irqdomain_deactivate,
2485 };
2486 
2487 
2488 static struct irq_domain *iommu_irqdomain;
2489 
iommu_get_irqdomain(void)2490 static struct irq_domain *iommu_get_irqdomain(void)
2491 {
2492 	struct fwnode_handle *fn;
2493 
2494 	/* No need for locking here (yet) as the init is single-threaded */
2495 	if (iommu_irqdomain)
2496 		return iommu_irqdomain;
2497 
2498 	fn = irq_domain_alloc_named_fwnode("AMD-Vi-MSI");
2499 	if (!fn)
2500 		return NULL;
2501 
2502 	iommu_irqdomain = irq_domain_create_hierarchy(x86_vector_domain, 0, 0,
2503 						      fn, &intcapxt_domain_ops,
2504 						      NULL);
2505 	if (!iommu_irqdomain)
2506 		irq_domain_free_fwnode(fn);
2507 
2508 	return iommu_irqdomain;
2509 }
2510 
__iommu_setup_intcapxt(struct amd_iommu * iommu,const char * devname,int hwirq,irq_handler_t thread_fn)2511 static int __iommu_setup_intcapxt(struct amd_iommu *iommu, const char *devname,
2512 				  int hwirq, irq_handler_t thread_fn)
2513 {
2514 	struct irq_domain *domain;
2515 	struct irq_alloc_info info;
2516 	int irq, ret;
2517 	int node = dev_to_node(&iommu->dev->dev);
2518 
2519 	domain = iommu_get_irqdomain();
2520 	if (!domain)
2521 		return -ENXIO;
2522 
2523 	init_irq_alloc_info(&info, NULL);
2524 	info.type = X86_IRQ_ALLOC_TYPE_AMDVI;
2525 	info.data = iommu;
2526 	info.hwirq = hwirq;
2527 
2528 	irq = irq_domain_alloc_irqs(domain, 1, node, &info);
2529 	if (irq < 0) {
2530 		irq_domain_remove(domain);
2531 		return irq;
2532 	}
2533 
2534 	ret = request_threaded_irq(irq, NULL, thread_fn, IRQF_ONESHOT, devname,
2535 				   iommu);
2536 	if (ret) {
2537 		irq_domain_free_irqs(irq, 1);
2538 		irq_domain_remove(domain);
2539 		return ret;
2540 	}
2541 
2542 	return 0;
2543 }
2544 
iommu_setup_intcapxt(struct amd_iommu * iommu)2545 static int iommu_setup_intcapxt(struct amd_iommu *iommu)
2546 {
2547 	int ret;
2548 
2549 	snprintf(iommu->evt_irq_name, sizeof(iommu->evt_irq_name),
2550 		 "AMD-Vi%d-Evt", iommu->index);
2551 	ret = __iommu_setup_intcapxt(iommu, iommu->evt_irq_name,
2552 				     MMIO_INTCAPXT_EVT_OFFSET,
2553 				     amd_iommu_int_thread_evtlog);
2554 	if (ret)
2555 		return ret;
2556 
2557 	snprintf(iommu->ppr_irq_name, sizeof(iommu->ppr_irq_name),
2558 		 "AMD-Vi%d-PPR", iommu->index);
2559 	ret = __iommu_setup_intcapxt(iommu, iommu->ppr_irq_name,
2560 				     MMIO_INTCAPXT_PPR_OFFSET,
2561 				     amd_iommu_int_thread_pprlog);
2562 	if (ret)
2563 		return ret;
2564 
2565 #ifdef CONFIG_IRQ_REMAP
2566 	snprintf(iommu->ga_irq_name, sizeof(iommu->ga_irq_name),
2567 		 "AMD-Vi%d-GA", iommu->index);
2568 	ret = __iommu_setup_intcapxt(iommu, iommu->ga_irq_name,
2569 				     MMIO_INTCAPXT_GALOG_OFFSET,
2570 				     amd_iommu_int_thread_galog);
2571 #endif
2572 
2573 	return ret;
2574 }
2575 
iommu_init_irq(struct amd_iommu * iommu)2576 static int iommu_init_irq(struct amd_iommu *iommu)
2577 {
2578 	int ret;
2579 
2580 	if (iommu->int_enabled)
2581 		goto enable_faults;
2582 
2583 	if (amd_iommu_xt_mode == IRQ_REMAP_X2APIC_MODE)
2584 		ret = iommu_setup_intcapxt(iommu);
2585 	else if (iommu->dev->msi_cap)
2586 		ret = iommu_setup_msi(iommu);
2587 	else
2588 		ret = -ENODEV;
2589 
2590 	if (ret)
2591 		return ret;
2592 
2593 	iommu->int_enabled = true;
2594 enable_faults:
2595 
2596 	if (amd_iommu_xt_mode == IRQ_REMAP_X2APIC_MODE)
2597 		iommu_feature_enable(iommu, CONTROL_INTCAPXT_EN);
2598 
2599 	iommu_feature_enable(iommu, CONTROL_EVT_INT_EN);
2600 
2601 	return 0;
2602 }
2603 
2604 /****************************************************************************
2605  *
2606  * The next functions belong to the third pass of parsing the ACPI
2607  * table. In this last pass the memory mapping requirements are
2608  * gathered (like exclusion and unity mapping ranges).
2609  *
2610  ****************************************************************************/
2611 
free_unity_maps(void)2612 static void __init free_unity_maps(void)
2613 {
2614 	struct unity_map_entry *entry, *next;
2615 	struct amd_iommu_pci_seg *p, *pci_seg;
2616 
2617 	for_each_pci_segment_safe(pci_seg, p) {
2618 		list_for_each_entry_safe(entry, next, &pci_seg->unity_map, list) {
2619 			list_del(&entry->list);
2620 			kfree(entry);
2621 		}
2622 	}
2623 }
2624 
2625 /* called for unity map ACPI definition */
init_unity_map_range(struct ivmd_header * m,struct acpi_table_header * ivrs_base)2626 static int __init init_unity_map_range(struct ivmd_header *m,
2627 				       struct acpi_table_header *ivrs_base)
2628 {
2629 	struct unity_map_entry *e = NULL;
2630 	struct amd_iommu_pci_seg *pci_seg;
2631 	char *s;
2632 
2633 	pci_seg = get_pci_segment(m->pci_seg, ivrs_base);
2634 	if (pci_seg == NULL)
2635 		return -ENOMEM;
2636 
2637 	e = kzalloc_obj(*e);
2638 	if (e == NULL)
2639 		return -ENOMEM;
2640 
2641 	switch (m->type) {
2642 	default:
2643 		kfree(e);
2644 		return 0;
2645 	case ACPI_IVMD_TYPE:
2646 		s = "IVMD_TYPEi\t\t\t";
2647 		e->devid_start = e->devid_end = m->devid;
2648 		break;
2649 	case ACPI_IVMD_TYPE_ALL:
2650 		s = "IVMD_TYPE_ALL\t\t";
2651 		e->devid_start = 0;
2652 		e->devid_end = pci_seg->last_bdf;
2653 		break;
2654 	case ACPI_IVMD_TYPE_RANGE:
2655 		s = "IVMD_TYPE_RANGE\t\t";
2656 		e->devid_start = m->devid;
2657 		e->devid_end = m->aux;
2658 		break;
2659 	}
2660 	e->address_start = PAGE_ALIGN(m->range_start);
2661 	e->address_end = e->address_start + PAGE_ALIGN(m->range_length);
2662 	e->prot = m->flags >> 1;
2663 
2664 	/*
2665 	 * Treat per-device exclusion ranges as r/w unity-mapped regions
2666 	 * since some buggy BIOSes might lead to the overwritten exclusion
2667 	 * range (exclusion_start and exclusion_length members). This
2668 	 * happens when there are multiple exclusion ranges (IVMD entries)
2669 	 * defined in ACPI table.
2670 	 */
2671 	if (m->flags & IVMD_FLAG_EXCL_RANGE)
2672 		e->prot = (IVMD_FLAG_IW | IVMD_FLAG_IR) >> 1;
2673 
2674 	DUMP_printk("%s devid_start: %04x:%02x:%02x.%x devid_end: "
2675 		    "%04x:%02x:%02x.%x range_start: %016llx range_end: %016llx"
2676 		    " flags: %x\n", s, m->pci_seg,
2677 		    PCI_BUS_NUM(e->devid_start), PCI_SLOT(e->devid_start),
2678 		    PCI_FUNC(e->devid_start), m->pci_seg,
2679 		    PCI_BUS_NUM(e->devid_end),
2680 		    PCI_SLOT(e->devid_end), PCI_FUNC(e->devid_end),
2681 		    e->address_start, e->address_end, m->flags);
2682 
2683 	list_add_tail(&e->list, &pci_seg->unity_map);
2684 
2685 	return 0;
2686 }
2687 
2688 /* iterates over all memory definitions we find in the ACPI table */
init_memory_definitions(struct acpi_table_header * table)2689 static int __init init_memory_definitions(struct acpi_table_header *table)
2690 {
2691 	u8 *p = (u8 *)table, *end = (u8 *)table;
2692 	struct ivmd_header *m;
2693 
2694 	end += table->length;
2695 	p += IVRS_HEADER_LENGTH;
2696 
2697 	while (p < end) {
2698 		m = (struct ivmd_header *)p;
2699 		if (m->flags & (IVMD_FLAG_UNITY_MAP | IVMD_FLAG_EXCL_RANGE))
2700 			init_unity_map_range(m, table);
2701 
2702 		p += m->length;
2703 	}
2704 
2705 	return 0;
2706 }
2707 
2708 /*
2709  * Init the device table to not allow DMA access for devices
2710  */
init_device_table_dma(struct amd_iommu_pci_seg * pci_seg)2711 static void init_device_table_dma(struct amd_iommu_pci_seg *pci_seg)
2712 {
2713 	u32 devid;
2714 	struct dev_table_entry *dev_table = pci_seg->dev_table;
2715 
2716 	if (!dev_table || amd_iommu_pgtable == PD_MODE_NONE)
2717 		return;
2718 
2719 	for (devid = 0; devid <= pci_seg->last_bdf; ++devid) {
2720 		set_dte_bit(&dev_table[devid], DEV_ENTRY_VALID);
2721 		if (!amd_iommu_snp_en)
2722 			set_dte_bit(&dev_table[devid], DEV_ENTRY_TRANSLATION);
2723 	}
2724 }
2725 
uninit_device_table_dma(struct amd_iommu_pci_seg * pci_seg)2726 static void __init uninit_device_table_dma(struct amd_iommu_pci_seg *pci_seg)
2727 {
2728 	u32 devid;
2729 	struct dev_table_entry *dev_table = pci_seg->dev_table;
2730 
2731 	if (dev_table == NULL)
2732 		return;
2733 
2734 	for (devid = 0; devid <= pci_seg->last_bdf; ++devid) {
2735 		dev_table[devid].data[0] = 0ULL;
2736 		dev_table[devid].data[1] = 0ULL;
2737 	}
2738 }
2739 
init_device_table(void)2740 static void init_device_table(void)
2741 {
2742 	struct amd_iommu_pci_seg *pci_seg;
2743 	u32 devid;
2744 
2745 	if (!amd_iommu_irq_remap)
2746 		return;
2747 
2748 	for_each_pci_segment(pci_seg) {
2749 		for (devid = 0; devid <= pci_seg->last_bdf; ++devid)
2750 			set_dte_bit(&pci_seg->dev_table[devid], DEV_ENTRY_IRQ_TBL_EN);
2751 	}
2752 }
2753 
iommu_init_flags(struct amd_iommu * iommu)2754 static void iommu_init_flags(struct amd_iommu *iommu)
2755 {
2756 	iommu->acpi_flags & IVHD_FLAG_HT_TUN_EN_MASK ?
2757 		iommu_feature_enable(iommu, CONTROL_HT_TUN_EN) :
2758 		iommu_feature_disable(iommu, CONTROL_HT_TUN_EN);
2759 
2760 	iommu->acpi_flags & IVHD_FLAG_PASSPW_EN_MASK ?
2761 		iommu_feature_enable(iommu, CONTROL_PASSPW_EN) :
2762 		iommu_feature_disable(iommu, CONTROL_PASSPW_EN);
2763 
2764 	iommu->acpi_flags & IVHD_FLAG_RESPASSPW_EN_MASK ?
2765 		iommu_feature_enable(iommu, CONTROL_RESPASSPW_EN) :
2766 		iommu_feature_disable(iommu, CONTROL_RESPASSPW_EN);
2767 
2768 	iommu->acpi_flags & IVHD_FLAG_ISOC_EN_MASK ?
2769 		iommu_feature_enable(iommu, CONTROL_ISOC_EN) :
2770 		iommu_feature_disable(iommu, CONTROL_ISOC_EN);
2771 
2772 	/*
2773 	 * make IOMMU memory accesses cache coherent
2774 	 */
2775 	iommu_feature_enable(iommu, CONTROL_COHERENT_EN);
2776 
2777 	/* Set IOTLB invalidation timeout to 1s */
2778 	iommu_feature_set(iommu, CTRL_INV_TO_1S, CTRL_INV_TO_MASK, CONTROL_INV_TIMEOUT);
2779 
2780 	/* Enable Enhanced Peripheral Page Request Handling */
2781 	if (check_feature(FEATURE_EPHSUP))
2782 		iommu_feature_enable(iommu, CONTROL_EPH_EN);
2783 }
2784 
iommu_apply_resume_quirks(struct amd_iommu * iommu)2785 static void iommu_apply_resume_quirks(struct amd_iommu *iommu)
2786 {
2787 	int i, j;
2788 	u32 ioc_feature_control;
2789 	struct pci_dev *pdev = iommu->root_pdev;
2790 
2791 	/* RD890 BIOSes may not have completely reconfigured the iommu */
2792 	if (!is_rd890_iommu(iommu->dev) || !pdev)
2793 		return;
2794 
2795 	/*
2796 	 * First, we need to ensure that the iommu is enabled. This is
2797 	 * controlled by a register in the northbridge
2798 	 */
2799 
2800 	/* Select Northbridge indirect register 0x75 and enable writing */
2801 	pci_write_config_dword(pdev, 0x60, 0x75 | (1 << 7));
2802 	pci_read_config_dword(pdev, 0x64, &ioc_feature_control);
2803 
2804 	/* Enable the iommu */
2805 	if (!(ioc_feature_control & 0x1))
2806 		pci_write_config_dword(pdev, 0x64, ioc_feature_control | 1);
2807 
2808 	/* Restore the iommu BAR */
2809 	pci_write_config_dword(iommu->dev, iommu->cap_ptr + 4,
2810 			       iommu->stored_addr_lo);
2811 	pci_write_config_dword(iommu->dev, iommu->cap_ptr + 8,
2812 			       iommu->stored_addr_hi);
2813 
2814 	/* Restore the l1 indirect regs for each of the 6 l1s */
2815 	for (i = 0; i < 6; i++)
2816 		for (j = 0; j < 0x12; j++)
2817 			iommu_write_l1(iommu, i, j, iommu->stored_l1[i][j]);
2818 
2819 	/* Restore the l2 indirect regs */
2820 	for (i = 0; i < 0x83; i++)
2821 		iommu_write_l2(iommu, i, iommu->stored_l2[i]);
2822 
2823 	/* Lock PCI setup registers */
2824 	pci_write_config_dword(iommu->dev, iommu->cap_ptr + 4,
2825 			       iommu->stored_addr_lo | 1);
2826 }
2827 
iommu_enable_ga(struct amd_iommu * iommu)2828 static void iommu_enable_ga(struct amd_iommu *iommu)
2829 {
2830 #ifdef CONFIG_IRQ_REMAP
2831 	switch (amd_iommu_guest_ir) {
2832 	case AMD_IOMMU_GUEST_IR_VAPIC:
2833 	case AMD_IOMMU_GUEST_IR_LEGACY_GA:
2834 		iommu_feature_enable(iommu, CONTROL_GA_EN);
2835 		iommu->irte_ops = &irte_128_ops;
2836 		break;
2837 	default:
2838 		iommu->irte_ops = &irte_32_ops;
2839 		break;
2840 	}
2841 #endif
2842 }
2843 
iommu_disable_irtcachedis(struct amd_iommu * iommu)2844 static void iommu_disable_irtcachedis(struct amd_iommu *iommu)
2845 {
2846 	iommu_feature_disable(iommu, CONTROL_IRTCACHEDIS);
2847 }
2848 
iommu_enable_irtcachedis(struct amd_iommu * iommu)2849 static void iommu_enable_irtcachedis(struct amd_iommu *iommu)
2850 {
2851 	u64 ctrl;
2852 
2853 	if (!amd_iommu_irtcachedis)
2854 		return;
2855 
2856 	/*
2857 	 * Note:
2858 	 * The support for IRTCacheDis feature is dertermined by
2859 	 * checking if the bit is writable.
2860 	 */
2861 	iommu_feature_enable(iommu, CONTROL_IRTCACHEDIS);
2862 	ctrl = readq(iommu->mmio_base +  MMIO_CONTROL_OFFSET);
2863 	ctrl &= (1ULL << CONTROL_IRTCACHEDIS);
2864 	if (ctrl)
2865 		iommu->irtcachedis_enabled = true;
2866 	pr_info("iommu%d (%#06x) : IRT cache is %s\n",
2867 		iommu->index, iommu->devid,
2868 		iommu->irtcachedis_enabled ? "disabled" : "enabled");
2869 }
2870 
iommu_enable_2k_int(struct amd_iommu * iommu)2871 static void iommu_enable_2k_int(struct amd_iommu *iommu)
2872 {
2873 	if (!FEATURE_NUM_INT_REMAP_SUP_2K(amd_iommu_efr2))
2874 		return;
2875 
2876 	iommu_feature_set(iommu,
2877 			  CONTROL_NUM_INT_REMAP_MODE_2K,
2878 			  CONTROL_NUM_INT_REMAP_MODE_MASK,
2879 			  CONTROL_NUM_INT_REMAP_MODE);
2880 }
2881 
early_enable_iommu(struct amd_iommu * iommu)2882 static void early_enable_iommu(struct amd_iommu *iommu)
2883 {
2884 	iommu_disable(iommu);
2885 	iommu_init_flags(iommu);
2886 	iommu_set_device_table(iommu);
2887 	iommu_enable_command_buffer(iommu);
2888 	iommu_enable_gt(iommu);
2889 	iommu_enable_ga(iommu);
2890 	iommu_enable_xt(iommu);
2891 	iommu_enable_irtcachedis(iommu);
2892 	iommu_enable_2k_int(iommu);
2893 	iommu_enable(iommu);
2894 	amd_iommu_flush_all_caches(iommu);
2895 }
2896 
2897 /*
2898  * This function finally enables all IOMMUs found in the system after
2899  * they have been initialized.
2900  *
2901  * Or if in kdump kernel and IOMMUs are all pre-enabled, try to reuse
2902  * the old content of device table entries. Not this case or reuse failed,
2903  * just continue as normal kernel does.
2904  */
early_enable_iommus(void)2905 static void early_enable_iommus(void)
2906 {
2907 	struct amd_iommu *iommu;
2908 	struct amd_iommu_pci_seg *pci_seg;
2909 
2910 	if (!reuse_device_table()) {
2911 		/*
2912 		 * If come here because of failure in reusing device table from old
2913 		 * kernel with all IOMMUs enabled, print error message and try to
2914 		 * free allocated old_dev_tbl_cpy.
2915 		 */
2916 		if (amd_iommu_pre_enabled) {
2917 			pr_err("Failed to reuse DEV table from previous kernel.\n");
2918 			/*
2919 			 * Bail out early if unable to remap/reuse DEV table from
2920 			 * previous kernel if SNP enabled as IOMMU commands will
2921 			 * time out without DEV table and cause kdump boot panic.
2922 			 */
2923 			BUG_ON(check_feature(FEATURE_SNP));
2924 		}
2925 
2926 		for_each_pci_segment(pci_seg) {
2927 			if (pci_seg->old_dev_tbl_cpy != NULL) {
2928 				memunmap((void *)pci_seg->old_dev_tbl_cpy);
2929 				pci_seg->old_dev_tbl_cpy = NULL;
2930 			}
2931 		}
2932 
2933 		for_each_iommu(iommu) {
2934 			clear_translation_pre_enabled(iommu);
2935 			early_enable_iommu(iommu);
2936 		}
2937 	} else {
2938 		pr_info("Reused DEV table from previous kernel.\n");
2939 
2940 		for_each_pci_segment(pci_seg) {
2941 			iommu_free_pages(pci_seg->dev_table);
2942 			pci_seg->dev_table = pci_seg->old_dev_tbl_cpy;
2943 		}
2944 
2945 		for_each_iommu(iommu) {
2946 			iommu_disable_command_buffer(iommu);
2947 			iommu_disable_event_buffer(iommu);
2948 			iommu_disable_irtcachedis(iommu);
2949 			iommu_enable_command_buffer(iommu);
2950 			iommu_enable_ga(iommu);
2951 			iommu_enable_xt(iommu);
2952 			iommu_enable_irtcachedis(iommu);
2953 			iommu_enable_2k_int(iommu);
2954 			iommu_set_device_table(iommu);
2955 			amd_iommu_flush_all_caches(iommu);
2956 		}
2957 	}
2958 }
2959 
enable_iommus_ppr(void)2960 static void enable_iommus_ppr(void)
2961 {
2962 	struct amd_iommu *iommu;
2963 
2964 	if (!amd_iommu_gt_ppr_supported())
2965 		return;
2966 
2967 	for_each_iommu(iommu)
2968 		amd_iommu_enable_ppr_log(iommu);
2969 }
2970 
enable_iommus_vapic(void)2971 static void enable_iommus_vapic(void)
2972 {
2973 #ifdef CONFIG_IRQ_REMAP
2974 	u32 status, i;
2975 	struct amd_iommu *iommu;
2976 
2977 	for_each_iommu(iommu) {
2978 		/*
2979 		 * Disable GALog if already running. It could have been enabled
2980 		 * in the previous boot before kdump.
2981 		 */
2982 		status = readl(iommu->mmio_base + MMIO_STATUS_OFFSET);
2983 		if (!(status & MMIO_STATUS_GALOG_RUN_MASK))
2984 			continue;
2985 
2986 		iommu_feature_disable(iommu, CONTROL_GALOG_EN);
2987 		iommu_feature_disable(iommu, CONTROL_GAINT_EN);
2988 
2989 		/*
2990 		 * Need to set and poll check the GALOGRun bit to zero before
2991 		 * we can set/ modify GA Log registers safely.
2992 		 */
2993 		for (i = 0; i < MMIO_STATUS_TIMEOUT; ++i) {
2994 			status = readl(iommu->mmio_base + MMIO_STATUS_OFFSET);
2995 			if (!(status & MMIO_STATUS_GALOG_RUN_MASK))
2996 				break;
2997 			udelay(10);
2998 		}
2999 
3000 		if (WARN_ON(i >= MMIO_STATUS_TIMEOUT))
3001 			return;
3002 	}
3003 
3004 	if (!AMD_IOMMU_GUEST_IR_VAPIC(amd_iommu_guest_ir))
3005 		return;
3006 
3007 	if (!check_feature(FEATURE_GAM_VAPIC)) {
3008 		amd_iommu_guest_ir = AMD_IOMMU_GUEST_IR_LEGACY_GA;
3009 		return;
3010 	}
3011 
3012 	if (amd_iommu_snp_en &&
3013 	    !FEATURE_SNPAVICSUP_GAM(amd_iommu_efr2)) {
3014 		pr_warn("Force to disable Virtual APIC due to SNP\n");
3015 		amd_iommu_guest_ir = AMD_IOMMU_GUEST_IR_LEGACY_GA;
3016 		return;
3017 	}
3018 
3019 	/* Enabling GAM and SNPAVIC support */
3020 	for_each_iommu(iommu) {
3021 		if (iommu_init_ga_log(iommu) ||
3022 		    iommu_ga_log_enable(iommu))
3023 			return;
3024 
3025 		iommu_feature_enable(iommu, CONTROL_GAM_EN);
3026 		if (amd_iommu_snp_en)
3027 			iommu_feature_enable(iommu, CONTROL_SNPAVIC_EN);
3028 	}
3029 
3030 	amd_iommu_irq_ops.capability |= (1 << IRQ_POSTING_CAP);
3031 	pr_info("Virtual APIC enabled\n");
3032 #endif
3033 }
3034 
disable_iommus(void)3035 static void disable_iommus(void)
3036 {
3037 	struct amd_iommu *iommu;
3038 
3039 	for_each_iommu(iommu)
3040 		iommu_disable(iommu);
3041 
3042 #ifdef CONFIG_IRQ_REMAP
3043 	if (AMD_IOMMU_GUEST_IR_VAPIC(amd_iommu_guest_ir))
3044 		amd_iommu_irq_ops.capability &= ~(1 << IRQ_POSTING_CAP);
3045 #endif
3046 }
3047 
3048 /*
3049  * Suspend/Resume support
3050  * disable suspend until real resume implemented
3051  */
3052 
amd_iommu_resume(void * data)3053 static void amd_iommu_resume(void *data)
3054 {
3055 	struct amd_iommu *iommu;
3056 
3057 	for_each_iommu(iommu)
3058 		iommu_apply_resume_quirks(iommu);
3059 
3060 	/* re-load the hardware */
3061 	for_each_iommu(iommu)
3062 		early_enable_iommu(iommu);
3063 
3064 	iommu_enable_event_buffer();
3065 	amd_iommu_enable_interrupts();
3066 }
3067 
amd_iommu_suspend(void * data)3068 static int amd_iommu_suspend(void *data)
3069 {
3070 	/* disable IOMMUs to go out of the way for BIOS */
3071 	disable_iommus();
3072 
3073 	return 0;
3074 }
3075 
3076 static const struct syscore_ops amd_iommu_syscore_ops = {
3077 	.suspend = amd_iommu_suspend,
3078 	.resume = amd_iommu_resume,
3079 };
3080 
3081 static struct syscore amd_iommu_syscore = {
3082 	.ops = &amd_iommu_syscore_ops,
3083 };
3084 
free_iommu_resources(void)3085 static void __init free_iommu_resources(void)
3086 {
3087 	free_iommu_all();
3088 	free_pci_segments();
3089 }
3090 
check_sb_ioapic(int devid)3091 static bool __init check_sb_ioapic(int devid)
3092 {
3093 	u8 bus = PCI_BUS_NUM(devid);
3094 	u8 devfn = devid & 0xff;
3095 	u16 val;
3096 
3097 	val = read_pci_config_16(bus, PCI_SLOT(devfn), PCI_FUNC(devfn),
3098 				 PCI_CLASS_DEVICE);
3099 
3100 	/*
3101 	 * The SB IOAPIC is integrated into the FCH (Southbridge), which is
3102 	 * exposed as an SMBus or ISA bridge in PCI config space.
3103 	 */
3104 	return val == PCI_CLASS_SERIAL_SMBUS || val == PCI_CLASS_BRIDGE_ISA;
3105 }
3106 
3107 /*
3108  * The Southbridge IOAPIC is assigned a GSI Base of 0 (handling interrupts
3109  * 0 through 23).
3110  */
get_sb_ioapic_id(void)3111 static int __init get_sb_ioapic_id(void)
3112 {
3113 	int idx = mp_find_ioapic(0);
3114 
3115 	if (idx < 0)
3116 		return -ENODEV;
3117 
3118 	return mpc_ioapic_id(idx);
3119 }
3120 
check_ioapic_information(void)3121 static bool __init check_ioapic_information(void)
3122 {
3123 	const char *fw_bug = FW_BUG;
3124 	bool ret, has_sb_ioapic;
3125 	int idx, sb_apicid;
3126 
3127 	has_sb_ioapic = false;
3128 	ret           = true;
3129 
3130 	/*
3131 	 * If we have map overrides on the kernel command line the
3132 	 * messages in this function might not describe firmware bugs
3133 	 * anymore - so be careful
3134 	 */
3135 	if (cmdline_maps)
3136 		fw_bug = "";
3137 
3138 	sb_apicid = get_sb_ioapic_id();
3139 	if (sb_apicid < 0) {
3140 		/*
3141 		 * Lack of SB IOAPIC registration is not a firmware bug,
3142 		 * e.g. kernel booted with noapic or noacpi.
3143 		 */
3144 		fw_bug = "";
3145 		goto out;
3146 	}
3147 
3148 	for (idx = 0; idx < nr_ioapics; idx++) {
3149 		int devid, id = mpc_ioapic_id(idx);
3150 
3151 		devid = get_ioapic_devid(id);
3152 		if (devid < 0) {
3153 			pr_err("%s: IOAPIC[%d] not in IVRS table\n",
3154 				fw_bug, id);
3155 			ret = false;
3156 		} else if (id == sb_apicid && check_sb_ioapic(devid)) {
3157 			has_sb_ioapic = true;
3158 		}
3159 	}
3160 out:
3161 	if (!has_sb_ioapic) {
3162 		/*
3163 		 * We expect the SB IOAPIC to be listed in the IVRS
3164 		 * table. The system timer is connected to the SB IOAPIC
3165 		 * and if we don't have it in the list the system will
3166 		 * panic at boot time.  This situation usually happens
3167 		 * when the BIOS is buggy and provides us the wrong
3168 		 * device id for the IOAPIC in the system.
3169 		 */
3170 		pr_err("%s: No southbridge IOAPIC found\n", fw_bug);
3171 		ret = false;
3172 	}
3173 
3174 	if (!ret)
3175 		pr_err("Disabling interrupt remapping\n");
3176 
3177 	return ret;
3178 }
3179 
free_dma_resources(void)3180 static void __init free_dma_resources(void)
3181 {
3182 	amd_iommu_pdom_id_destroy();
3183 	free_unity_maps();
3184 }
3185 
ivinfo_init(void * ivrs)3186 static void __init ivinfo_init(void *ivrs)
3187 {
3188 	amd_iommu_ivinfo = *((u32 *)(ivrs + IOMMU_IVINFO_OFFSET));
3189 }
3190 
3191 /*
3192  * This is the hardware init function for AMD IOMMU in the system.
3193  * This function is called either from amd_iommu_init or from the interrupt
3194  * remapping setup code.
3195  *
3196  * This function basically parses the ACPI table for AMD IOMMU (IVRS)
3197  * four times:
3198  *
3199  *	1 pass) Discover the most comprehensive IVHD type to use.
3200  *
3201  *	2 pass) Find the highest PCI device id the driver has to handle.
3202  *		Upon this information the size of the data structures is
3203  *		determined that needs to be allocated.
3204  *
3205  *	3 pass) Initialize the data structures just allocated with the
3206  *		information in the ACPI table about available AMD IOMMUs
3207  *		in the system. It also maps the PCI devices in the
3208  *		system to specific IOMMUs
3209  *
3210  *	4 pass) After the basic data structures are allocated and
3211  *		initialized we update them with information about memory
3212  *		remapping requirements parsed out of the ACPI table in
3213  *		this last pass.
3214  *
3215  * After everything is set up the IOMMUs are enabled and the necessary
3216  * hotplug and suspend notifiers are registered.
3217  */
early_amd_iommu_init(void)3218 static int __init early_amd_iommu_init(void)
3219 {
3220 	struct acpi_table_header *ivrs_base;
3221 	int ret;
3222 	acpi_status status;
3223 	u8 efr_hats, max_vasize;
3224 
3225 	if (!amd_iommu_detected)
3226 		return -ENODEV;
3227 
3228 	status = acpi_get_table("IVRS", 0, &ivrs_base);
3229 	if (status == AE_NOT_FOUND)
3230 		return -ENODEV;
3231 	else if (ACPI_FAILURE(status)) {
3232 		const char *err = acpi_format_exception(status);
3233 		pr_err("IVRS table error: %s\n", err);
3234 		return -EINVAL;
3235 	}
3236 
3237 	if (!boot_cpu_has(X86_FEATURE_CX16)) {
3238 		pr_err("Failed to initialize. The CMPXCHG16B feature is required.\n");
3239 		ret = -EINVAL;
3240 		goto out;
3241 	}
3242 
3243 	/*
3244 	 * Validate checksum here so we don't need to do it when
3245 	 * we actually parse the table
3246 	 */
3247 	ret = check_ivrs_checksum(ivrs_base);
3248 	if (ret)
3249 		goto out;
3250 
3251 	ivinfo_init(ivrs_base);
3252 
3253 	max_vasize = FIELD_GET(IOMMU_IVINFO_VASIZE, amd_iommu_ivinfo);
3254 	if (!max_vasize)
3255 		max_vasize = 64;
3256 
3257 	amd_iommu_target_ivhd_type = get_highest_supported_ivhd_type(ivrs_base);
3258 	DUMP_printk("Using IVHD type %#x\n", amd_iommu_target_ivhd_type);
3259 
3260 	/*
3261 	 * now the data structures are allocated and basically initialized
3262 	 * start the real acpi table scan
3263 	 */
3264 	ret = init_iommu_all(ivrs_base);
3265 	if (ret)
3266 		goto out;
3267 
3268 	/* 5 level guest page table */
3269 	if (cpu_feature_enabled(X86_FEATURE_LA57) &&
3270 	    FIELD_GET(FEATURE_GATS, amd_iommu_efr) == GUEST_PGTABLE_5_LEVEL)
3271 		amd_iommu_gpt_level = PAGE_MODE_5_LEVEL;
3272 
3273 	efr_hats = FIELD_GET(FEATURE_HATS, amd_iommu_efr);
3274 	if (efr_hats != 0x3) {
3275 		/*
3276 		 * efr[HATS] bits specify the maximum host translation level
3277 		 * supported, with LEVEL 4 being initial max level.
3278 		 */
3279 		amd_iommu_hpt_vasize = min_t(unsigned int, max_vasize,
3280 					 (efr_hats + PAGE_MODE_4_LEVEL - 1) * 9 + 21);
3281 	} else {
3282 		pr_warn_once(FW_BUG "Disable host address translation due to invalid translation level (%#x).\n",
3283 			     efr_hats);
3284 		amd_iommu_hatdis = true;
3285 	}
3286 
3287 	if (amd_iommu_pgtable == PD_MODE_V2) {
3288 		if (!amd_iommu_v2_pgtbl_supported()) {
3289 			pr_warn("Cannot enable v2 page table for DMA-API. Fallback to v1.\n");
3290 			amd_iommu_pgtable = PD_MODE_V1;
3291 		}
3292 	}
3293 
3294 	if (amd_iommu_hatdis) {
3295 		/*
3296 		 * Host (v1) page table is not available. Attempt to use
3297 		 * Guest (v2) page table.
3298 		 */
3299 		if (amd_iommu_v2_pgtbl_supported())
3300 			amd_iommu_pgtable = PD_MODE_V2;
3301 		else
3302 			amd_iommu_pgtable = PD_MODE_NONE;
3303 	}
3304 
3305 	/* Disable any previously enabled IOMMUs */
3306 	if (!is_kdump_kernel() || amd_iommu_disabled)
3307 		disable_iommus();
3308 
3309 	if (amd_iommu_irq_remap)
3310 		amd_iommu_irq_remap = check_ioapic_information();
3311 
3312 	if (amd_iommu_irq_remap) {
3313 		struct amd_iommu_pci_seg *pci_seg;
3314 		ret = -ENOMEM;
3315 		for_each_pci_segment(pci_seg) {
3316 			if (alloc_irq_lookup_table(pci_seg))
3317 				goto out;
3318 		}
3319 	}
3320 
3321 	ret = init_memory_definitions(ivrs_base);
3322 	if (ret)
3323 		goto out;
3324 
3325 	/* init the device table */
3326 	init_device_table();
3327 
3328 out:
3329 	/* Don't leak any ACPI memory */
3330 	acpi_put_table(ivrs_base);
3331 
3332 	return ret;
3333 }
3334 
amd_iommu_enable_interrupts(void)3335 static int amd_iommu_enable_interrupts(void)
3336 {
3337 	struct amd_iommu *iommu;
3338 	int ret = 0;
3339 
3340 	for_each_iommu(iommu) {
3341 		ret = iommu_init_irq(iommu);
3342 		if (ret)
3343 			goto out;
3344 	}
3345 
3346 	/*
3347 	 * Interrupt handler is ready to process interrupts. Enable
3348 	 * PPR and GA log interrupt for all IOMMUs.
3349 	 */
3350 	enable_iommus_vapic();
3351 	enable_iommus_ppr();
3352 
3353 out:
3354 	return ret;
3355 }
3356 
detect_ivrs(void)3357 static bool __init detect_ivrs(void)
3358 {
3359 	struct acpi_table_header *ivrs_base;
3360 	acpi_status status;
3361 	int i;
3362 
3363 	status = acpi_get_table("IVRS", 0, &ivrs_base);
3364 	if (status == AE_NOT_FOUND)
3365 		return false;
3366 	else if (ACPI_FAILURE(status)) {
3367 		const char *err = acpi_format_exception(status);
3368 		pr_err("IVRS table error: %s\n", err);
3369 		return false;
3370 	}
3371 
3372 	acpi_put_table(ivrs_base);
3373 
3374 	if (amd_iommu_force_enable)
3375 		goto out;
3376 
3377 	/* Don't use IOMMU if there is Stoney Ridge graphics */
3378 	for (i = 0; i < 32; i++) {
3379 		u32 pci_id;
3380 
3381 		pci_id = read_pci_config(0, i, 0, 0);
3382 		if ((pci_id & 0xffff) == 0x1002 && (pci_id >> 16) == 0x98e4) {
3383 			pr_info("Disable IOMMU on Stoney Ridge\n");
3384 			return false;
3385 		}
3386 	}
3387 
3388 out:
3389 	/* Make sure ACS will be enabled during PCI probe */
3390 	pci_request_acs();
3391 
3392 	return true;
3393 }
3394 
iommu_snp_enable(void)3395 static __init void iommu_snp_enable(void)
3396 {
3397 #ifdef CONFIG_KVM_AMD_SEV
3398 	if (!cc_platform_has(CC_ATTR_HOST_SEV_SNP))
3399 		return;
3400 
3401 	/* SNP support required IOMMU to be ON */
3402 	if (no_iommu) {
3403 		pr_warn("SNP: IOMMU disabled, SNP cannot be supported.\n");
3404 		goto disable_snp;
3405 	}
3406 
3407 	amd_iommu_snp_mode0_sup = check_feature2(FEATURE_SNP_PAGE_MODE0_SUP);
3408 	/*
3409 	 * If SNP page mode 0 is not enabled, then SNP support requires that IOMMU
3410 	 * must be configured with V1 page table (DTE[Mode] != 0).
3411 	 */
3412 	if (!amd_iommu_snp_mode0_sup) {
3413 		if (iommu_default_passthrough()) {
3414 			pr_warn("SNP: IOMMU configured in passthrough mode, SNP cannot be supported.\n");
3415 			goto disable_snp;
3416 		}
3417 
3418 		if (amd_iommu_pgtable != PD_MODE_V1) {
3419 			pr_warn("SNP: IOMMU is configured with V2 page table mode, SNP cannot be supported.\n");
3420 			goto disable_snp;
3421 		}
3422 	}
3423 
3424 	amd_iommu_snp_en = check_feature(FEATURE_SNP);
3425 	if (!amd_iommu_snp_en) {
3426 		pr_warn("SNP: IOMMU SNP feature not enabled, SNP cannot be supported.\n");
3427 		goto disable_snp;
3428 	}
3429 
3430 	/*
3431 	 * Enable host SNP support once SNP support is checked on IOMMU.
3432 	 */
3433 	if (snp_rmptable_init()) {
3434 		pr_warn("SNP: RMP initialization failed, SNP cannot be supported.\n");
3435 		goto disable_snp;
3436 	}
3437 
3438 	pr_info("IOMMU SNP support enabled.\n");
3439 	return;
3440 
3441 disable_snp:
3442 	cc_platform_clear(CC_ATTR_HOST_SEV_SNP);
3443 #endif
3444 }
3445 
amd_iommu_apply_erratum_snp(void)3446 static void amd_iommu_apply_erratum_snp(void)
3447 {
3448 #ifdef CONFIG_KVM_AMD_SEV
3449 	if (!amd_iommu_snp_en)
3450 		return;
3451 
3452 	/* Errata fix for Family 0x19 */
3453 	if (boot_cpu_data.x86 != 0x19)
3454 		return;
3455 
3456 	/* Set event log buffer size to max */
3457 	amd_iommu_evtlog_size = EVTLOG_SIZE_MAX;
3458 	pr_info("Applying erratum: Increase Event log size to 0x%x\n",
3459 		amd_iommu_evtlog_size);
3460 
3461 	/*
3462 	 * Set PPR log buffer size to max.
3463 	 * (Family 0x19, model < 0x10 doesn't support PPR when SNP is enabled).
3464 	 */
3465 	if (boot_cpu_data.x86_model >= 0x10) {
3466 		amd_iommu_pprlog_size = PPRLOG_SIZE_MAX;
3467 		pr_info("Applying erratum: Increase PPR log size to 0x%x\n",
3468 			amd_iommu_pprlog_size);
3469 	}
3470 #endif
3471 }
3472 
3473 /****************************************************************************
3474  *
3475  * AMD IOMMU Initialization State Machine
3476  *
3477  ****************************************************************************/
3478 
state_next(void)3479 static int __init state_next(void)
3480 {
3481 	int ret = 0;
3482 
3483 	switch (init_state) {
3484 	case IOMMU_START_STATE:
3485 		if (!detect_ivrs()) {
3486 			init_state	= IOMMU_NOT_FOUND;
3487 			ret		= -ENODEV;
3488 		} else {
3489 			init_state	= IOMMU_IVRS_DETECTED;
3490 		}
3491 		break;
3492 	case IOMMU_IVRS_DETECTED:
3493 		if (amd_iommu_disabled) {
3494 			init_state = IOMMU_CMDLINE_DISABLED;
3495 			ret = -EINVAL;
3496 		} else {
3497 			ret = early_amd_iommu_init();
3498 			init_state = ret ? IOMMU_INIT_ERROR : IOMMU_ACPI_FINISHED;
3499 		}
3500 		break;
3501 	case IOMMU_ACPI_FINISHED:
3502 		early_enable_iommus();
3503 		x86_platform.iommu_shutdown = disable_iommus;
3504 		init_state = IOMMU_ENABLED;
3505 		break;
3506 	case IOMMU_ENABLED:
3507 		register_syscore(&amd_iommu_syscore);
3508 		iommu_snp_enable();
3509 
3510 		amd_iommu_apply_erratum_snp();
3511 
3512 		/* Allocate/enable event log buffer */
3513 		if (is_kdump_kernel())
3514 			ret = remap_event_buffer();
3515 		else
3516 			ret = alloc_event_buffer();
3517 
3518 		if (ret) {
3519 			init_state = IOMMU_INIT_ERROR;
3520 			break;
3521 		}
3522 		iommu_enable_event_buffer();
3523 
3524 		ret = amd_iommu_init_pci();
3525 		init_state = ret ? IOMMU_INIT_ERROR : IOMMU_PCI_INIT;
3526 		break;
3527 	case IOMMU_PCI_INIT:
3528 		ret = amd_iommu_enable_interrupts();
3529 		init_state = ret ? IOMMU_INIT_ERROR : IOMMU_INTERRUPTS_EN;
3530 		break;
3531 	case IOMMU_INTERRUPTS_EN:
3532 		init_state = IOMMU_INITIALIZED;
3533 		break;
3534 	case IOMMU_INITIALIZED:
3535 		/* Nothing to do */
3536 		break;
3537 	case IOMMU_NOT_FOUND:
3538 	case IOMMU_INIT_ERROR:
3539 	case IOMMU_CMDLINE_DISABLED:
3540 		/* Error states => do nothing */
3541 		ret = -EINVAL;
3542 		break;
3543 	default:
3544 		/* Unknown state */
3545 		BUG();
3546 	}
3547 
3548 	if (ret) {
3549 		free_dma_resources();
3550 		if (!irq_remapping_enabled) {
3551 			disable_iommus();
3552 			free_iommu_resources();
3553 		} else {
3554 			struct amd_iommu *iommu;
3555 			struct amd_iommu_pci_seg *pci_seg;
3556 
3557 			for_each_pci_segment(pci_seg)
3558 				uninit_device_table_dma(pci_seg);
3559 
3560 			for_each_iommu(iommu)
3561 				amd_iommu_flush_all_caches(iommu);
3562 		}
3563 	}
3564 	return ret;
3565 }
3566 
iommu_go_to_state(enum iommu_init_state state)3567 static int __init iommu_go_to_state(enum iommu_init_state state)
3568 {
3569 	int ret = -EINVAL;
3570 
3571 	while (init_state != state) {
3572 		if (init_state == IOMMU_NOT_FOUND         ||
3573 		    init_state == IOMMU_INIT_ERROR        ||
3574 		    init_state == IOMMU_CMDLINE_DISABLED)
3575 			break;
3576 		ret = state_next();
3577 	}
3578 
3579 	/*
3580 	 * SNP platform initilazation requires IOMMUs to be fully configured.
3581 	 * If the SNP support on IOMMUs has NOT been checked, simply mark SNP
3582 	 * as unsupported. If the SNP support on IOMMUs has been checked and
3583 	 * host SNP support enabled but RMP enforcement has not been enabled
3584 	 * in IOMMUs, then the system is in a half-baked state, but can limp
3585 	 * along as all memory should be Hypervisor-Owned in the RMP. WARN,
3586 	 * but leave SNP as "supported" to avoid confusing the kernel.
3587 	 */
3588 	if (ret && cc_platform_has(CC_ATTR_HOST_SEV_SNP) &&
3589 	    !WARN_ON_ONCE(amd_iommu_snp_en))
3590 		cc_platform_clear(CC_ATTR_HOST_SEV_SNP);
3591 
3592 	return ret;
3593 }
3594 
3595 #ifdef CONFIG_IRQ_REMAP
amd_iommu_prepare(void)3596 int __init amd_iommu_prepare(void)
3597 {
3598 	int ret;
3599 
3600 	amd_iommu_irq_remap = true;
3601 
3602 	ret = iommu_go_to_state(IOMMU_ACPI_FINISHED);
3603 	if (ret) {
3604 		amd_iommu_irq_remap = false;
3605 		return ret;
3606 	}
3607 
3608 	return amd_iommu_irq_remap ? 0 : -ENODEV;
3609 }
3610 
amd_iommu_enable(void)3611 int __init amd_iommu_enable(void)
3612 {
3613 	int ret;
3614 
3615 	ret = iommu_go_to_state(IOMMU_ENABLED);
3616 	if (ret)
3617 		return ret;
3618 
3619 	irq_remapping_enabled = 1;
3620 	return amd_iommu_xt_mode;
3621 }
3622 
amd_iommu_disable(void)3623 void amd_iommu_disable(void)
3624 {
3625 	amd_iommu_suspend(NULL);
3626 }
3627 
amd_iommu_reenable(int mode)3628 int amd_iommu_reenable(int mode)
3629 {
3630 	amd_iommu_resume(NULL);
3631 
3632 	return 0;
3633 }
3634 
amd_iommu_enable_faulting(unsigned int cpu)3635 int amd_iommu_enable_faulting(unsigned int cpu)
3636 {
3637 	/* We enable MSI later when PCI is initialized */
3638 	return 0;
3639 }
3640 #endif
3641 
3642 /*
3643  * This is the core init function for AMD IOMMU hardware in the system.
3644  * This function is called from the generic x86 DMA layer initialization
3645  * code.
3646  */
amd_iommu_init(void)3647 static int __init amd_iommu_init(void)
3648 {
3649 	int ret;
3650 
3651 	ret = iommu_go_to_state(IOMMU_INITIALIZED);
3652 #ifdef CONFIG_GART_IOMMU
3653 	if (ret && list_empty(&amd_iommu_list)) {
3654 		/*
3655 		 * We failed to initialize the AMD IOMMU - try fallback
3656 		 * to GART if possible.
3657 		 */
3658 		gart_iommu_init();
3659 	}
3660 #endif
3661 
3662 	if (!ret)
3663 		amd_iommu_debugfs_setup();
3664 
3665 	return ret;
3666 }
3667 
amd_iommu_sme_check(void)3668 static bool amd_iommu_sme_check(void)
3669 {
3670 	if (!cc_platform_has(CC_ATTR_HOST_MEM_ENCRYPT) ||
3671 	    (boot_cpu_data.x86 != 0x17))
3672 		return true;
3673 
3674 	/* For Fam17h, a specific level of support is required */
3675 	if (boot_cpu_data.microcode >= 0x08001205)
3676 		return true;
3677 
3678 	if ((boot_cpu_data.microcode >= 0x08001126) &&
3679 	    (boot_cpu_data.microcode <= 0x080011ff))
3680 		return true;
3681 
3682 	pr_notice("IOMMU not currently supported when SME is active\n");
3683 
3684 	return false;
3685 }
3686 
3687 /****************************************************************************
3688  *
3689  * Early detect code. This code runs at IOMMU detection time in the DMA
3690  * layer. It just looks if there is an IVRS ACPI table to detect AMD
3691  * IOMMUs
3692  *
3693  ****************************************************************************/
amd_iommu_detect(void)3694 void __init amd_iommu_detect(void)
3695 {
3696 	int ret;
3697 
3698 	if (no_iommu || (iommu_detected && !gart_iommu_aperture))
3699 		goto disable_snp;
3700 
3701 	if (!amd_iommu_sme_check())
3702 		goto disable_snp;
3703 
3704 	ret = iommu_go_to_state(IOMMU_IVRS_DETECTED);
3705 	if (ret)
3706 		goto disable_snp;
3707 
3708 	amd_iommu_detected = true;
3709 	iommu_detected = 1;
3710 	x86_init.iommu.iommu_init = amd_iommu_init;
3711 	return;
3712 
3713 disable_snp:
3714 	if (cc_platform_has(CC_ATTR_HOST_SEV_SNP))
3715 		cc_platform_clear(CC_ATTR_HOST_SEV_SNP);
3716 }
3717 
3718 /****************************************************************************
3719  *
3720  * Parsing functions for the AMD IOMMU specific kernel command line
3721  * options.
3722  *
3723  ****************************************************************************/
3724 
parse_amd_iommu_dump(char * str)3725 static int __init parse_amd_iommu_dump(char *str)
3726 {
3727 	amd_iommu_dump = true;
3728 
3729 	return 1;
3730 }
3731 
parse_amd_iommu_intr(char * str)3732 static int __init parse_amd_iommu_intr(char *str)
3733 {
3734 	for (; *str; ++str) {
3735 		if (strncmp(str, "legacy", 6) == 0) {
3736 			amd_iommu_guest_ir = AMD_IOMMU_GUEST_IR_LEGACY_GA;
3737 			break;
3738 		}
3739 		if (strncmp(str, "vapic", 5) == 0) {
3740 			amd_iommu_guest_ir = AMD_IOMMU_GUEST_IR_VAPIC;
3741 			break;
3742 		}
3743 	}
3744 	return 1;
3745 }
3746 
parse_amd_iommu_options(char * str)3747 static int __init parse_amd_iommu_options(char *str)
3748 {
3749 	if (!str)
3750 		return -EINVAL;
3751 
3752 	while (*str) {
3753 		if (strncmp(str, "fullflush", 9) == 0) {
3754 			pr_warn("amd_iommu=fullflush deprecated; use iommu.strict=1 instead\n");
3755 			iommu_set_dma_strict();
3756 		} else if (strncmp(str, "force_enable", 12) == 0) {
3757 			amd_iommu_force_enable = true;
3758 		} else if (strncmp(str, "off", 3) == 0) {
3759 			amd_iommu_disabled = true;
3760 		} else if (strncmp(str, "force_isolation", 15) == 0) {
3761 			amd_iommu_force_isolation = true;
3762 		} else if (strncmp(str, "pgtbl_v1", 8) == 0) {
3763 			amd_iommu_pgtable = PD_MODE_V1;
3764 		} else if (strncmp(str, "pgtbl_v2", 8) == 0) {
3765 			amd_iommu_pgtable = PD_MODE_V2;
3766 		} else if (strncmp(str, "irtcachedis", 11) == 0) {
3767 			amd_iommu_irtcachedis = true;
3768 		} else if (strncmp(str, "nohugepages", 11) == 0) {
3769 			pr_info("Restricting V1 page-sizes to 4KiB");
3770 			amd_iommu_pgsize_bitmap = AMD_IOMMU_PGSIZES_4K;
3771 		} else if (strncmp(str, "v2_pgsizes_only", 15) == 0) {
3772 			pr_info("Restricting V1 page-sizes to 4KiB/2MiB/1GiB");
3773 			amd_iommu_pgsize_bitmap = AMD_IOMMU_PGSIZES_V2;
3774 		} else {
3775 			pr_notice("Unknown option - '%s'\n", str);
3776 		}
3777 
3778 		str += strcspn(str, ",");
3779 		while (*str == ',')
3780 			str++;
3781 	}
3782 
3783 	return 1;
3784 }
3785 
parse_ivrs_ioapic(char * str)3786 static int __init parse_ivrs_ioapic(char *str)
3787 {
3788 	u32 seg = 0, bus, dev, fn;
3789 	int id, i;
3790 	u32 devid;
3791 
3792 	if (sscanf(str, "=%d@%x:%x.%x", &id, &bus, &dev, &fn) == 4 ||
3793 	    sscanf(str, "=%d@%x:%x:%x.%x", &id, &seg, &bus, &dev, &fn) == 5)
3794 		goto found;
3795 
3796 	if (sscanf(str, "[%d]=%x:%x.%x", &id, &bus, &dev, &fn) == 4 ||
3797 	    sscanf(str, "[%d]=%x:%x:%x.%x", &id, &seg, &bus, &dev, &fn) == 5) {
3798 		pr_warn("ivrs_ioapic%s option format deprecated; use ivrs_ioapic=%d@%04x:%02x:%02x.%d instead\n",
3799 			str, id, seg, bus, dev, fn);
3800 		goto found;
3801 	}
3802 
3803 	pr_err("Invalid command line: ivrs_ioapic%s\n", str);
3804 	return 1;
3805 
3806 found:
3807 	if (early_ioapic_map_size == EARLY_MAP_SIZE) {
3808 		pr_err("Early IOAPIC map overflow - ignoring ivrs_ioapic%s\n",
3809 			str);
3810 		return 1;
3811 	}
3812 
3813 	devid = IVRS_GET_SBDF_ID(seg, bus, dev, fn);
3814 
3815 	cmdline_maps			= true;
3816 	i				= early_ioapic_map_size++;
3817 	early_ioapic_map[i].id		= id;
3818 	early_ioapic_map[i].devid	= devid;
3819 	early_ioapic_map[i].cmd_line	= true;
3820 
3821 	return 1;
3822 }
3823 
parse_ivrs_hpet(char * str)3824 static int __init parse_ivrs_hpet(char *str)
3825 {
3826 	u32 seg = 0, bus, dev, fn;
3827 	int id, i;
3828 	u32 devid;
3829 
3830 	if (sscanf(str, "=%d@%x:%x.%x", &id, &bus, &dev, &fn) == 4 ||
3831 	    sscanf(str, "=%d@%x:%x:%x.%x", &id, &seg, &bus, &dev, &fn) == 5)
3832 		goto found;
3833 
3834 	if (sscanf(str, "[%d]=%x:%x.%x", &id, &bus, &dev, &fn) == 4 ||
3835 	    sscanf(str, "[%d]=%x:%x:%x.%x", &id, &seg, &bus, &dev, &fn) == 5) {
3836 		pr_warn("ivrs_hpet%s option format deprecated; use ivrs_hpet=%d@%04x:%02x:%02x.%d instead\n",
3837 			str, id, seg, bus, dev, fn);
3838 		goto found;
3839 	}
3840 
3841 	pr_err("Invalid command line: ivrs_hpet%s\n", str);
3842 	return 1;
3843 
3844 found:
3845 	if (early_hpet_map_size == EARLY_MAP_SIZE) {
3846 		pr_err("Early HPET map overflow - ignoring ivrs_hpet%s\n",
3847 			str);
3848 		return 1;
3849 	}
3850 
3851 	devid = IVRS_GET_SBDF_ID(seg, bus, dev, fn);
3852 
3853 	cmdline_maps			= true;
3854 	i				= early_hpet_map_size++;
3855 	early_hpet_map[i].id		= id;
3856 	early_hpet_map[i].devid		= devid;
3857 	early_hpet_map[i].cmd_line	= true;
3858 
3859 	return 1;
3860 }
3861 
3862 #define ACPIID_LEN (ACPIHID_UID_LEN + ACPIHID_HID_LEN)
3863 
parse_ivrs_acpihid(char * str)3864 static int __init parse_ivrs_acpihid(char *str)
3865 {
3866 	u32 seg = 0, bus, dev, fn;
3867 	char *hid, *uid, *p, *addr;
3868 	char acpiid[ACPIID_LEN + 1] = { }; /* size with NULL terminator */
3869 	int i;
3870 
3871 	addr = strchr(str, '@');
3872 	if (!addr) {
3873 		addr = strchr(str, '=');
3874 		if (!addr)
3875 			goto not_found;
3876 
3877 		++addr;
3878 
3879 		if (strlen(addr) > ACPIID_LEN)
3880 			goto not_found;
3881 
3882 		if (sscanf(str, "[%x:%x.%x]=%s", &bus, &dev, &fn, acpiid) == 4 ||
3883 		    sscanf(str, "[%x:%x:%x.%x]=%s", &seg, &bus, &dev, &fn, acpiid) == 5) {
3884 			pr_warn("ivrs_acpihid%s option format deprecated; use ivrs_acpihid=%s@%04x:%02x:%02x.%d instead\n",
3885 				str, acpiid, seg, bus, dev, fn);
3886 			goto found;
3887 		}
3888 		goto not_found;
3889 	}
3890 
3891 	/* We have the '@', make it the terminator to get just the acpiid */
3892 	*addr++ = 0;
3893 
3894 	if (strlen(str) > ACPIID_LEN)
3895 		goto not_found;
3896 
3897 	if (sscanf(str, "=%s", acpiid) != 1)
3898 		goto not_found;
3899 
3900 	if (sscanf(addr, "%x:%x.%x", &bus, &dev, &fn) == 3 ||
3901 	    sscanf(addr, "%x:%x:%x.%x", &seg, &bus, &dev, &fn) == 4)
3902 		goto found;
3903 
3904 not_found:
3905 	pr_err("Invalid command line: ivrs_acpihid%s\n", str);
3906 	return 1;
3907 
3908 found:
3909 	if (early_acpihid_map_size == EARLY_MAP_SIZE) {
3910 		pr_err("Early ACPI HID map overflow - ignoring ivrs_acpihid%s\n",
3911 		       str);
3912 		return 1;
3913 	}
3914 
3915 	p = acpiid;
3916 	hid = strsep(&p, ":");
3917 	uid = p;
3918 
3919 	if (!hid || !(*hid) || !uid) {
3920 		pr_err("Invalid command line: hid or uid\n");
3921 		return 1;
3922 	}
3923 
3924 	/*
3925 	 * Ignore leading zeroes after ':', so e.g., AMDI0095:00
3926 	 * will match AMDI0095:0 in the second strcmp in acpi_dev_hid_uid_match
3927 	 */
3928 	while (*uid == '0' && *(uid + 1))
3929 		uid++;
3930 
3931 	if (strlen(hid) >= ACPIHID_HID_LEN) {
3932 		pr_err("Invalid command line: hid is too long\n");
3933 		return 1;
3934 	} else if (strlen(uid) >= ACPIHID_UID_LEN) {
3935 		pr_err("Invalid command line: uid is too long\n");
3936 		return 1;
3937 	}
3938 
3939 	i = early_acpihid_map_size++;
3940 	memcpy(early_acpihid_map[i].hid, hid, strlen(hid));
3941 	memcpy(early_acpihid_map[i].uid, uid, strlen(uid));
3942 	early_acpihid_map[i].devid = IVRS_GET_SBDF_ID(seg, bus, dev, fn);
3943 	early_acpihid_map[i].cmd_line	= true;
3944 
3945 	return 1;
3946 }
3947 
3948 __setup("amd_iommu_dump",	parse_amd_iommu_dump);
3949 __setup("amd_iommu=",		parse_amd_iommu_options);
3950 __setup("amd_iommu_intr=",	parse_amd_iommu_intr);
3951 __setup("ivrs_ioapic",		parse_ivrs_ioapic);
3952 __setup("ivrs_hpet",		parse_ivrs_hpet);
3953 __setup("ivrs_acpihid",		parse_ivrs_acpihid);
3954 
amd_iommu_pasid_supported(void)3955 bool amd_iommu_pasid_supported(void)
3956 {
3957 	/* CPU page table size should match IOMMU guest page table size */
3958 	if (cpu_feature_enabled(X86_FEATURE_LA57) &&
3959 	    amd_iommu_gpt_level != PAGE_MODE_5_LEVEL)
3960 		return false;
3961 
3962 	if (!amd_iommu_gt_ppr_supported())
3963 		return false;
3964 
3965 	/*
3966 	 * If SNP page mode 0 is not supported, then DTE[Mode]=0 is prohibited
3967 	 * on SNP-enabled system (i.e. EFR[SNPSup]=1). IOMMUv2 page table
3968 	 * cannot be used without setting up IOMMUv1 page table.
3969 	 */
3970 	return (!amd_iommu_snp_en) || (amd_iommu_snp_en && amd_iommu_snp_mode0_sup);
3971 }
3972 
get_amd_iommu(unsigned int idx)3973 struct amd_iommu *get_amd_iommu(unsigned int idx)
3974 {
3975 	unsigned int i = 0;
3976 	struct amd_iommu *iommu;
3977 
3978 	for_each_iommu(iommu)
3979 		if (i++ == idx)
3980 			return iommu;
3981 	return NULL;
3982 }
3983 
3984 /****************************************************************************
3985  *
3986  * IOMMU EFR Performance Counter support functionality. This code allows
3987  * access to the IOMMU PC functionality.
3988  *
3989  ****************************************************************************/
3990 
amd_iommu_pc_get_max_banks(unsigned int idx)3991 u8 amd_iommu_pc_get_max_banks(unsigned int idx)
3992 {
3993 	struct amd_iommu *iommu = get_amd_iommu(idx);
3994 
3995 	if (iommu)
3996 		return iommu->max_banks;
3997 
3998 	return 0;
3999 }
4000 
amd_iommu_pc_supported(void)4001 bool amd_iommu_pc_supported(void)
4002 {
4003 	return amd_iommu_pc_present;
4004 }
4005 
amd_iommu_pc_get_max_counters(unsigned int idx)4006 u8 amd_iommu_pc_get_max_counters(unsigned int idx)
4007 {
4008 	struct amd_iommu *iommu = get_amd_iommu(idx);
4009 
4010 	if (iommu)
4011 		return iommu->max_counters;
4012 
4013 	return 0;
4014 }
4015 
iommu_pc_get_set_reg(struct amd_iommu * iommu,u8 bank,u8 cntr,u8 fxn,u64 * value,bool is_write)4016 static int iommu_pc_get_set_reg(struct amd_iommu *iommu, u8 bank, u8 cntr,
4017 				u8 fxn, u64 *value, bool is_write)
4018 {
4019 	u32 offset;
4020 	u32 max_offset_lim;
4021 
4022 	/* Make sure the IOMMU PC resource is available */
4023 	if (!amd_iommu_pc_present)
4024 		return -ENODEV;
4025 
4026 	/* Check for valid iommu and pc register indexing */
4027 	if (WARN_ON(!iommu || (fxn > 0x28) || (fxn & 7)))
4028 		return -ENODEV;
4029 
4030 	offset = (u32)(((0x40 | bank) << 12) | (cntr << 8) | fxn);
4031 
4032 	/* Limit the offset to the hw defined mmio region aperture */
4033 	max_offset_lim = (u32)(((0x40 | iommu->max_banks) << 12) |
4034 				(iommu->max_counters << 8) | 0x28);
4035 	if ((offset < MMIO_CNTR_REG_OFFSET) ||
4036 	    (offset > max_offset_lim))
4037 		return -EINVAL;
4038 
4039 	if (is_write) {
4040 		u64 val = *value & GENMASK_ULL(47, 0);
4041 
4042 		writel((u32)val, iommu->mmio_base + offset);
4043 		writel((val >> 32), iommu->mmio_base + offset + 4);
4044 	} else {
4045 		*value = readl(iommu->mmio_base + offset + 4);
4046 		*value <<= 32;
4047 		*value |= readl(iommu->mmio_base + offset);
4048 		*value &= GENMASK_ULL(47, 0);
4049 	}
4050 
4051 	return 0;
4052 }
4053 
amd_iommu_pc_get_reg(struct amd_iommu * iommu,u8 bank,u8 cntr,u8 fxn,u64 * value)4054 int amd_iommu_pc_get_reg(struct amd_iommu *iommu, u8 bank, u8 cntr, u8 fxn, u64 *value)
4055 {
4056 	if (!iommu)
4057 		return -EINVAL;
4058 
4059 	return iommu_pc_get_set_reg(iommu, bank, cntr, fxn, value, false);
4060 }
4061 
amd_iommu_pc_set_reg(struct amd_iommu * iommu,u8 bank,u8 cntr,u8 fxn,u64 * value)4062 int amd_iommu_pc_set_reg(struct amd_iommu *iommu, u8 bank, u8 cntr, u8 fxn, u64 *value)
4063 {
4064 	if (!iommu)
4065 		return -EINVAL;
4066 
4067 	return iommu_pc_get_set_reg(iommu, bank, cntr, fxn, value, true);
4068 }
4069 
4070 #ifdef CONFIG_KVM_AMD_SEV
iommu_page_make_shared(void * page)4071 static int iommu_page_make_shared(void *page)
4072 {
4073 	unsigned long paddr, pfn;
4074 
4075 	paddr = iommu_virt_to_phys(page);
4076 	/* Cbit maybe set in the paddr */
4077 	pfn = __sme_clr(paddr) >> PAGE_SHIFT;
4078 
4079 	if (!(pfn % PTRS_PER_PMD)) {
4080 		int ret, level;
4081 		bool assigned;
4082 
4083 		ret = snp_lookup_rmpentry(pfn, &assigned, &level);
4084 		if (ret) {
4085 			pr_warn("IOMMU PFN %lx RMP lookup failed, ret %d\n", pfn, ret);
4086 			return ret;
4087 		}
4088 
4089 		if (!assigned) {
4090 			pr_warn("IOMMU PFN %lx not assigned in RMP table\n", pfn);
4091 			return -EINVAL;
4092 		}
4093 
4094 		if (level > PG_LEVEL_4K) {
4095 			ret = psmash(pfn);
4096 			if (!ret)
4097 				goto done;
4098 
4099 			pr_warn("PSMASH failed for IOMMU PFN %lx huge RMP entry, ret: %d, level: %d\n",
4100 				pfn, ret, level);
4101 			return ret;
4102 		}
4103 	}
4104 
4105 done:
4106 	return rmp_make_shared(pfn, PG_LEVEL_4K);
4107 }
4108 
iommu_make_shared(void * va,size_t size)4109 static int iommu_make_shared(void *va, size_t size)
4110 {
4111 	void *page;
4112 	int ret;
4113 
4114 	if (!va)
4115 		return 0;
4116 
4117 	for (page = va; page < (va + size); page += PAGE_SIZE) {
4118 		ret = iommu_page_make_shared(page);
4119 		if (ret)
4120 			return ret;
4121 	}
4122 
4123 	return 0;
4124 }
4125 
amd_iommu_snp_disable(void)4126 int amd_iommu_snp_disable(void)
4127 {
4128 	struct amd_iommu *iommu;
4129 	int ret;
4130 
4131 	if (!amd_iommu_snp_en)
4132 		return 0;
4133 
4134 	for_each_iommu(iommu) {
4135 		ret = iommu_make_shared(iommu->evt_buf, amd_iommu_evtlog_size);
4136 		if (ret)
4137 			return ret;
4138 
4139 		ret = iommu_make_shared(iommu->ppr_log, amd_iommu_pprlog_size);
4140 		if (ret)
4141 			return ret;
4142 
4143 		ret = iommu_make_shared((void *)iommu->cmd_sem, PAGE_SIZE);
4144 		if (ret)
4145 			return ret;
4146 	}
4147 
4148 	return 0;
4149 }
4150 EXPORT_SYMBOL_GPL(amd_iommu_snp_disable);
4151 
amd_iommu_sev_tio_supported(void)4152 bool amd_iommu_sev_tio_supported(void)
4153 {
4154 	return check_feature2(FEATURE_SEVSNPIO_SUP);
4155 }
4156 EXPORT_SYMBOL_GPL(amd_iommu_sev_tio_supported);
4157 #endif
4158