xref: /linux/drivers/iommu/arm/arm-smmu-v3/arm-smmu-v3.h (revision 1fc5a74b108fc90951890ec513ac81869f5eaff1)
1 /* SPDX-License-Identifier: GPL-2.0-only */
2 /*
3  * IOMMU API for ARM architected SMMUv3 implementations.
4  *
5  * Copyright (C) 2015 ARM Limited
6  */
7 
8 #ifndef _ARM_SMMU_V3_H
9 #define _ARM_SMMU_V3_H
10 
11 #include <linux/bitfield.h>
12 #include <linux/iommu.h>
13 #include <linux/iommufd.h>
14 #include <linux/kernel.h>
15 #include <linux/mmzone.h>
16 #include <linux/sizes.h>
17 
18 struct arm_smmu_device;
19 struct arm_vsmmu;
20 
21 /* MMIO registers */
22 #define ARM_SMMU_IDR0			0x0
23 #define IDR0_ST_LVL			GENMASK(28, 27)
24 #define IDR0_ST_LVL_2LVL		1
25 #define IDR0_STALL_MODEL		GENMASK(25, 24)
26 #define IDR0_STALL_MODEL_STALL		0
27 #define IDR0_STALL_MODEL_FORCE		2
28 #define IDR0_TTENDIAN			GENMASK(22, 21)
29 #define IDR0_TTENDIAN_MIXED		0
30 #define IDR0_TTENDIAN_LE		2
31 #define IDR0_TTENDIAN_BE		3
32 #define IDR0_CD2L			(1 << 19)
33 #define IDR0_VMID16			(1 << 18)
34 #define IDR0_PRI			(1 << 16)
35 #define IDR0_SEV			(1 << 14)
36 #define IDR0_MSI			(1 << 13)
37 #define IDR0_ASID16			(1 << 12)
38 #define IDR0_ATS			(1 << 10)
39 #define IDR0_HYP			(1 << 9)
40 #define IDR0_HTTU			GENMASK(7, 6)
41 #define IDR0_HTTU_ACCESS		1
42 #define IDR0_HTTU_ACCESS_DIRTY		2
43 #define IDR0_HTTU_ACCESS_DIRTY_HAFT	3
44 #define IDR0_COHACC			(1 << 4)
45 #define IDR0_TTF			GENMASK(3, 2)
46 #define IDR0_TTF_AARCH64		2
47 #define IDR0_S1P			(1 << 1)
48 #define IDR0_S2P			(1 << 0)
49 
50 #define ARM_SMMU_IDR1			0x4
51 #define IDR1_TABLES_PRESET		(1 << 30)
52 #define IDR1_QUEUES_PRESET		(1 << 29)
53 #define IDR1_REL			(1 << 28)
54 #define IDR1_ATTR_TYPES_OVR		(1 << 27)
55 #define IDR1_CMDQS			GENMASK(25, 21)
56 #define IDR1_EVTQS			GENMASK(20, 16)
57 #define IDR1_PRIQS			GENMASK(15, 11)
58 #define IDR1_SSIDSIZE			GENMASK(10, 6)
59 #define IDR1_SIDSIZE			GENMASK(5, 0)
60 
61 #define ARM_SMMU_IDR3			0xc
62 #define IDR3_FWB			(1 << 8)
63 #define IDR3_RIL			(1 << 10)
64 #define IDR3_BBM			GENMASK(12, 11)
65 
66 #define ARM_SMMU_IDR5			0x14
67 #define IDR5_STALL_MAX			GENMASK(31, 16)
68 #define IDR5_DS				(1 << 7)
69 #define IDR5_GRAN64K			(1 << 6)
70 #define IDR5_GRAN16K			(1 << 5)
71 #define IDR5_GRAN4K			(1 << 4)
72 #define IDR5_OAS			GENMASK(2, 0)
73 #define IDR5_OAS_32_BIT			0
74 #define IDR5_OAS_36_BIT			1
75 #define IDR5_OAS_40_BIT			2
76 #define IDR5_OAS_42_BIT			3
77 #define IDR5_OAS_44_BIT			4
78 #define IDR5_OAS_48_BIT			5
79 #define IDR5_OAS_52_BIT			6
80 #define IDR5_VAX			GENMASK(11, 10)
81 #define IDR5_VAX_52_BIT			1
82 
83 #define ARM_SMMU_IIDR			0x18
84 #define IIDR_PRODUCTID			GENMASK(31, 20)
85 #define IIDR_VARIANT			GENMASK(19, 16)
86 #define IIDR_REVISION			GENMASK(15, 12)
87 #define IIDR_IMPLEMENTER		GENMASK(11, 0)
88 
89 #define ARM_SMMU_AIDR			0x1C
90 
91 #define ARM_SMMU_CR0			0x20
92 #define CR0_ATSCHK			(1 << 4)
93 #define CR0_CMDQEN			(1 << 3)
94 #define CR0_EVTQEN			(1 << 2)
95 #define CR0_PRIQEN			(1 << 1)
96 #define CR0_SMMUEN			(1 << 0)
97 
98 #define ARM_SMMU_CR0ACK			0x24
99 
100 #define ARM_SMMU_CR1			0x28
101 #define CR1_TABLE_SH			GENMASK(11, 10)
102 #define CR1_TABLE_OC			GENMASK(9, 8)
103 #define CR1_TABLE_IC			GENMASK(7, 6)
104 #define CR1_QUEUE_SH			GENMASK(5, 4)
105 #define CR1_QUEUE_OC			GENMASK(3, 2)
106 #define CR1_QUEUE_IC			GENMASK(1, 0)
107 /* CR1 cacheability fields don't quite follow the usual TCR-style encoding */
108 #define CR1_CACHE_NC			0
109 #define CR1_CACHE_WB			1
110 #define CR1_CACHE_WT			2
111 
112 #define ARM_SMMU_CR2			0x2c
113 #define CR2_PTM				(1 << 2)
114 #define CR2_RECINVSID			(1 << 1)
115 #define CR2_E2H				(1 << 0)
116 
117 #define ARM_SMMU_GBPA			0x44
118 #define GBPA_UPDATE			(1 << 31)
119 #define GBPA_ABORT			(1 << 20)
120 
121 #define ARM_SMMU_IRQ_CTRL		0x50
122 #define IRQ_CTRL_EVTQ_IRQEN		(1 << 2)
123 #define IRQ_CTRL_PRIQ_IRQEN		(1 << 1)
124 #define IRQ_CTRL_GERROR_IRQEN		(1 << 0)
125 
126 #define ARM_SMMU_IRQ_CTRLACK		0x54
127 
128 #define ARM_SMMU_GERROR			0x60
129 #define GERROR_SFM_ERR			(1 << 8)
130 #define GERROR_MSI_GERROR_ABT_ERR	(1 << 7)
131 #define GERROR_MSI_PRIQ_ABT_ERR		(1 << 6)
132 #define GERROR_MSI_EVTQ_ABT_ERR		(1 << 5)
133 #define GERROR_MSI_CMDQ_ABT_ERR		(1 << 4)
134 #define GERROR_PRIQ_ABT_ERR		(1 << 3)
135 #define GERROR_EVTQ_ABT_ERR		(1 << 2)
136 #define GERROR_CMDQ_ERR			(1 << 0)
137 #define GERROR_ERR_MASK			0x1fd
138 
139 #define ARM_SMMU_GERRORN		0x64
140 
141 #define ARM_SMMU_GERROR_IRQ_CFG0	0x68
142 #define ARM_SMMU_GERROR_IRQ_CFG1	0x70
143 #define ARM_SMMU_GERROR_IRQ_CFG2	0x74
144 
145 #define ARM_SMMU_STRTAB_BASE		0x80
146 #define STRTAB_BASE_RA			(1UL << 62)
147 #define STRTAB_BASE_ADDR_MASK		GENMASK_ULL(51, 6)
148 
149 #define ARM_SMMU_STRTAB_BASE_CFG	0x88
150 #define STRTAB_BASE_CFG_FMT		GENMASK(17, 16)
151 #define STRTAB_BASE_CFG_FMT_LINEAR	0
152 #define STRTAB_BASE_CFG_FMT_2LVL	1
153 #define STRTAB_BASE_CFG_SPLIT		GENMASK(10, 6)
154 #define STRTAB_BASE_CFG_LOG2SIZE	GENMASK(5, 0)
155 
156 #define ARM_SMMU_CMDQ_BASE		0x90
157 #define ARM_SMMU_CMDQ_PROD		0x98
158 #define ARM_SMMU_CMDQ_CONS		0x9c
159 
160 #define ARM_SMMU_EVTQ_BASE		0xa0
161 #define ARM_SMMU_EVTQ_PROD		0xa8
162 #define ARM_SMMU_EVTQ_CONS		0xac
163 #define ARM_SMMU_EVTQ_IRQ_CFG0		0xb0
164 #define ARM_SMMU_EVTQ_IRQ_CFG1		0xb8
165 #define ARM_SMMU_EVTQ_IRQ_CFG2		0xbc
166 
167 #define ARM_SMMU_PRIQ_BASE		0xc0
168 #define ARM_SMMU_PRIQ_PROD		0xc8
169 #define ARM_SMMU_PRIQ_CONS		0xcc
170 #define ARM_SMMU_PRIQ_IRQ_CFG0		0xd0
171 #define ARM_SMMU_PRIQ_IRQ_CFG1		0xd8
172 #define ARM_SMMU_PRIQ_IRQ_CFG2		0xdc
173 
174 #define ARM_SMMU_REG_SZ			0xe00
175 
176 /* Common MSI config fields */
177 #define MSI_CFG0_ADDR_MASK		GENMASK_ULL(51, 2)
178 #define MSI_CFG2_SH			GENMASK(5, 4)
179 #define MSI_CFG2_MEMATTR		GENMASK(3, 0)
180 
181 /* Common memory attribute values */
182 #define ARM_SMMU_SH_NSH			0
183 #define ARM_SMMU_SH_OSH			2
184 #define ARM_SMMU_SH_ISH			3
185 #define ARM_SMMU_MEMATTR_DEVICE_nGnRE	0x1
186 #define ARM_SMMU_MEMATTR_OIWB		0xf
187 
188 #define Q_IDX(llq, p)			((p) & ((1 << (llq)->max_n_shift) - 1))
189 #define Q_WRP(llq, p)			((p) & (1 << (llq)->max_n_shift))
190 #define Q_OVERFLOW_FLAG			(1U << 31)
191 #define Q_OVF(p)			((p) & Q_OVERFLOW_FLAG)
192 #define Q_ENT(q, p)			((q)->base +			\
193 					 Q_IDX(&((q)->llq), p) *	\
194 					 (q)->ent_dwords)
195 
196 #define Q_BASE_RWA			(1UL << 62)
197 #define Q_BASE_ADDR_MASK		GENMASK_ULL(51, 5)
198 #define Q_BASE_LOG2SIZE			GENMASK(4, 0)
199 
200 /* Ensure DMA allocations are naturally aligned */
201 #ifdef CONFIG_CMA_ALIGNMENT
202 #define Q_MAX_SZ_SHIFT			(PAGE_SHIFT + CONFIG_CMA_ALIGNMENT)
203 #else
204 #define Q_MAX_SZ_SHIFT			(PAGE_SHIFT + MAX_PAGE_ORDER)
205 #endif
206 
207 /*
208  * Stream table.
209  *
210  * Linear: Enough to cover 1 << IDR1.SIDSIZE entries
211  * 2lvl: 128k L1 entries,
212  *       256 lazy entries per table (each table covers a PCI bus)
213  */
214 #define STRTAB_SPLIT			8
215 
216 #define STRTAB_L1_DESC_SPAN		GENMASK_ULL(4, 0)
217 #define STRTAB_L1_DESC_L2PTR_MASK	GENMASK_ULL(51, 6)
218 
219 #define STRTAB_STE_DWORDS		8
220 
221 struct arm_smmu_ste {
222 	__le64 data[STRTAB_STE_DWORDS];
223 };
224 
225 #define STRTAB_NUM_L2_STES		(1 << STRTAB_SPLIT)
226 struct arm_smmu_strtab_l2 {
227 	struct arm_smmu_ste stes[STRTAB_NUM_L2_STES];
228 };
229 
230 struct arm_smmu_strtab_l1 {
231 	__le64 l2ptr;
232 };
233 #define STRTAB_MAX_L1_ENTRIES		(1 << 17)
234 
arm_smmu_strtab_l1_idx(u32 sid)235 static inline u32 arm_smmu_strtab_l1_idx(u32 sid)
236 {
237 	return sid / STRTAB_NUM_L2_STES;
238 }
239 
arm_smmu_strtab_l2_idx(u32 sid)240 static inline u32 arm_smmu_strtab_l2_idx(u32 sid)
241 {
242 	return sid % STRTAB_NUM_L2_STES;
243 }
244 
245 #define STRTAB_STE_0_V			(1UL << 0)
246 #define STRTAB_STE_0_CFG		GENMASK_ULL(3, 1)
247 #define STRTAB_STE_0_CFG_ABORT		0
248 #define STRTAB_STE_0_CFG_BYPASS		4
249 #define STRTAB_STE_0_CFG_S1_TRANS	5
250 #define STRTAB_STE_0_CFG_S2_TRANS	6
251 #define STRTAB_STE_0_CFG_NESTED		7
252 
253 #define STRTAB_STE_0_S1FMT		GENMASK_ULL(5, 4)
254 #define STRTAB_STE_0_S1FMT_LINEAR	0
255 #define STRTAB_STE_0_S1FMT_64K_L2	2
256 #define STRTAB_STE_0_S1CTXPTR_MASK	GENMASK_ULL(51, 6)
257 #define STRTAB_STE_0_S1CDMAX		GENMASK_ULL(63, 59)
258 
259 #define STRTAB_STE_1_S1DSS		GENMASK_ULL(1, 0)
260 #define STRTAB_STE_1_S1DSS_TERMINATE	0x0
261 #define STRTAB_STE_1_S1DSS_BYPASS	0x1
262 #define STRTAB_STE_1_S1DSS_SSID0	0x2
263 
264 #define STRTAB_STE_1_S1C_CACHE_NC	0UL
265 #define STRTAB_STE_1_S1C_CACHE_WBRA	1UL
266 #define STRTAB_STE_1_S1C_CACHE_WT	2UL
267 #define STRTAB_STE_1_S1C_CACHE_WB	3UL
268 #define STRTAB_STE_1_S1CIR		GENMASK_ULL(3, 2)
269 #define STRTAB_STE_1_S1COR		GENMASK_ULL(5, 4)
270 #define STRTAB_STE_1_S1CSH		GENMASK_ULL(7, 6)
271 
272 #define STRTAB_STE_1_MEV		(1UL << 19)
273 #define STRTAB_STE_1_S2FWB		(1UL << 25)
274 #define STRTAB_STE_1_S1STALLD		(1UL << 27)
275 
276 #define STRTAB_STE_1_EATS		GENMASK_ULL(29, 28)
277 #define STRTAB_STE_1_EATS_ABT		0UL
278 #define STRTAB_STE_1_EATS_TRANS		1UL
279 #define STRTAB_STE_1_EATS_S1CHK		2UL
280 
281 #define STRTAB_STE_1_STRW		GENMASK_ULL(31, 30)
282 #define STRTAB_STE_1_STRW_NSEL1		0UL
283 #define STRTAB_STE_1_STRW_EL2		2UL
284 
285 #define STRTAB_STE_1_SHCFG		GENMASK_ULL(45, 44)
286 #define STRTAB_STE_1_SHCFG_INCOMING	1UL
287 
288 #define STRTAB_STE_2_S2VMID		GENMASK_ULL(15, 0)
289 #define STRTAB_STE_2_VTCR		GENMASK_ULL(50, 32)
290 #define STRTAB_STE_2_VTCR_S2T0SZ	GENMASK_ULL(5, 0)
291 #define STRTAB_STE_2_VTCR_S2SL0		GENMASK_ULL(7, 6)
292 #define STRTAB_STE_2_VTCR_S2IR0		GENMASK_ULL(9, 8)
293 #define STRTAB_STE_2_VTCR_S2OR0		GENMASK_ULL(11, 10)
294 #define STRTAB_STE_2_VTCR_S2SH0		GENMASK_ULL(13, 12)
295 #define STRTAB_STE_2_VTCR_S2TG		GENMASK_ULL(15, 14)
296 #define STRTAB_STE_2_VTCR_S2PS		GENMASK_ULL(18, 16)
297 #define STRTAB_STE_2_S2AA64		(1UL << 51)
298 #define STRTAB_STE_2_S2ENDI		(1UL << 52)
299 #define STRTAB_STE_2_S2PTW		(1UL << 54)
300 #define STRTAB_STE_2_S2S		(1UL << 57)
301 #define STRTAB_STE_2_S2R		(1UL << 58)
302 
303 #define STRTAB_STE_3_S2TTB_MASK		GENMASK_ULL(51, 4)
304 
305 /* These bits can be controlled by userspace for STRTAB_STE_0_CFG_NESTED */
306 #define STRTAB_STE_0_NESTING_ALLOWED                                         \
307 	cpu_to_le64(STRTAB_STE_0_V | STRTAB_STE_0_CFG | STRTAB_STE_0_S1FMT | \
308 		    STRTAB_STE_0_S1CTXPTR_MASK | STRTAB_STE_0_S1CDMAX)
309 #define STRTAB_STE_1_NESTING_ALLOWED                            \
310 	cpu_to_le64(STRTAB_STE_1_S1DSS | STRTAB_STE_1_S1CIR |   \
311 		    STRTAB_STE_1_S1COR | STRTAB_STE_1_S1CSH |   \
312 		    STRTAB_STE_1_S1STALLD | STRTAB_STE_1_EATS)
313 
314 /*
315  * Context descriptors.
316  *
317  * Linear: when less than 1024 SSIDs are supported
318  * 2lvl: at most 1024 L1 entries,
319  *       1024 lazy entries per table.
320  */
321 #define CTXDESC_L2_ENTRIES		1024
322 
323 #define CTXDESC_L1_DESC_V		(1UL << 0)
324 #define CTXDESC_L1_DESC_L2PTR_MASK	GENMASK_ULL(51, 12)
325 
326 #define CTXDESC_CD_DWORDS		8
327 
328 struct arm_smmu_cd {
329 	__le64 data[CTXDESC_CD_DWORDS];
330 };
331 
332 struct arm_smmu_cdtab_l2 {
333 	struct arm_smmu_cd cds[CTXDESC_L2_ENTRIES];
334 };
335 
336 struct arm_smmu_cdtab_l1 {
337 	__le64 l2ptr;
338 };
339 
arm_smmu_cdtab_l1_idx(unsigned int ssid)340 static inline unsigned int arm_smmu_cdtab_l1_idx(unsigned int ssid)
341 {
342 	return ssid / CTXDESC_L2_ENTRIES;
343 }
344 
arm_smmu_cdtab_l2_idx(unsigned int ssid)345 static inline unsigned int arm_smmu_cdtab_l2_idx(unsigned int ssid)
346 {
347 	return ssid % CTXDESC_L2_ENTRIES;
348 }
349 
350 #define CTXDESC_CD_0_TCR_T0SZ		GENMASK_ULL(5, 0)
351 #define CTXDESC_CD_0_TCR_TG0		GENMASK_ULL(7, 6)
352 #define CTXDESC_CD_0_TCR_IRGN0		GENMASK_ULL(9, 8)
353 #define CTXDESC_CD_0_TCR_ORGN0		GENMASK_ULL(11, 10)
354 #define CTXDESC_CD_0_TCR_SH0		GENMASK_ULL(13, 12)
355 #define CTXDESC_CD_0_TCR_EPD0		(1ULL << 14)
356 #define CTXDESC_CD_0_TCR_EPD1		(1ULL << 30)
357 
358 #define CTXDESC_CD_0_ENDI		(1UL << 15)
359 #define CTXDESC_CD_0_V			(1UL << 31)
360 
361 #define CTXDESC_CD_0_TCR_IPS		GENMASK_ULL(34, 32)
362 #define CTXDESC_CD_0_TCR_TBI0		(1ULL << 38)
363 
364 #define CTXDESC_CD_0_TCR_HA            (1UL << 43)
365 #define CTXDESC_CD_0_TCR_HD            (1UL << 42)
366 
367 #define CTXDESC_CD_0_AA64		(1UL << 41)
368 #define CTXDESC_CD_0_S			(1UL << 44)
369 #define CTXDESC_CD_0_R			(1UL << 45)
370 #define CTXDESC_CD_0_A			(1UL << 46)
371 #define CTXDESC_CD_0_ASET		(1UL << 47)
372 #define CTXDESC_CD_0_ASID		GENMASK_ULL(63, 48)
373 
374 #define CTXDESC_CD_1_HAFT		(1UL << 3)
375 #define CTXDESC_CD_1_TTB0_MASK		GENMASK_ULL(51, 4)
376 
377 /*
378  * When the SMMU only supports linear context descriptor tables, pick a
379  * reasonable size limit (64kB).
380  */
381 #define CTXDESC_LINEAR_CDMAX		ilog2(SZ_64K / sizeof(struct arm_smmu_cd))
382 
383 /* Command queue */
384 #define CMDQ_ENT_SZ_SHIFT		4
385 #define CMDQ_ENT_DWORDS			((1 << CMDQ_ENT_SZ_SHIFT) >> 3)
386 #define CMDQ_MAX_SZ_SHIFT		(Q_MAX_SZ_SHIFT - CMDQ_ENT_SZ_SHIFT)
387 
388 #define CMDQ_CONS_ERR			GENMASK(30, 24)
389 #define CMDQ_ERR_CERROR_NONE_IDX	0
390 #define CMDQ_ERR_CERROR_ILL_IDX		1
391 #define CMDQ_ERR_CERROR_ABT_IDX		2
392 #define CMDQ_ERR_CERROR_ATC_INV_IDX	3
393 
394 #define CMDQ_PROD_OWNED_FLAG		Q_OVERFLOW_FLAG
395 
396 struct arm_smmu_cmd {
397 	u64 data[CMDQ_ENT_DWORDS];
398 };
399 
400 /*
401  * This is used to size the command queue and therefore must be at least
402  * BITS_PER_LONG so that the valid_map works correctly (it relies on the
403  * total number of queue entries being a multiple of BITS_PER_LONG).
404  */
405 #define CMDQ_BATCH_ENTRIES		BITS_PER_LONG
406 
407 #define CMDQ_0_OP			GENMASK_ULL(7, 0)
408 #define CMDQ_0_SSV			(1UL << 11)
409 
410 #define CMDQ_PREFETCH_0_SID		GENMASK_ULL(63, 32)
411 #define CMDQ_PREFETCH_1_SIZE		GENMASK_ULL(4, 0)
412 #define CMDQ_PREFETCH_1_ADDR_MASK	GENMASK_ULL(63, 12)
413 
414 #define CMDQ_CFGI_0_SSID		GENMASK_ULL(31, 12)
415 #define CMDQ_CFGI_0_SID			GENMASK_ULL(63, 32)
416 #define CMDQ_CFGI_1_LEAF		(1UL << 0)
417 #define CMDQ_CFGI_1_RANGE		GENMASK_ULL(4, 0)
418 
419 #define CMDQ_TLBI_0_NUM			GENMASK_ULL(16, 12)
420 #define CMDQ_TLBI_RANGE_NUM_MAX		31
421 #define CMDQ_TLBI_0_SCALE		GENMASK_ULL(25, 20)
422 #define CMDQ_TLBI_0_VMID		GENMASK_ULL(47, 32)
423 #define CMDQ_TLBI_0_ASID		GENMASK_ULL(63, 48)
424 #define CMDQ_TLBI_1_LEAF		(1UL << 0)
425 #define CMDQ_TLBI_1_TTL			GENMASK_ULL(9, 8)
426 #define CMDQ_TLBI_1_TG			GENMASK_ULL(11, 10)
427 #define CMDQ_TLBI_1_VA_MASK		GENMASK_ULL(63, 12)
428 #define CMDQ_TLBI_1_IPA_MASK		GENMASK_ULL(51, 12)
429 
430 #define CMDQ_ATC_0_SSID			GENMASK_ULL(31, 12)
431 #define CMDQ_ATC_0_SID			GENMASK_ULL(63, 32)
432 #define CMDQ_ATC_0_GLOBAL		(1UL << 9)
433 #define CMDQ_ATC_1_SIZE			GENMASK_ULL(5, 0)
434 #define CMDQ_ATC_1_ADDR_MASK		GENMASK_ULL(63, 12)
435 
436 #define ATC_INV_SIZE_ALL 52
437 
438 #define CMDQ_PRI_0_SSID			GENMASK_ULL(31, 12)
439 #define CMDQ_PRI_0_SID			GENMASK_ULL(63, 32)
440 #define CMDQ_PRI_1_GRPID		GENMASK_ULL(8, 0)
441 #define CMDQ_PRI_1_RESP			GENMASK_ULL(13, 12)
442 
443 enum pri_resp {
444 	PRI_RESP_DENY = 0,
445 	PRI_RESP_FAIL = 1,
446 	PRI_RESP_SUCC = 2,
447 };
448 
449 #define CMDQ_RESUME_0_RESP_TERM		0UL
450 #define CMDQ_RESUME_0_RESP_RETRY	1UL
451 #define CMDQ_RESUME_0_RESP_ABORT	2UL
452 #define CMDQ_RESUME_0_RESP		GENMASK_ULL(13, 12)
453 #define CMDQ_RESUME_0_SID		GENMASK_ULL(63, 32)
454 #define CMDQ_RESUME_1_STAG		GENMASK_ULL(15, 0)
455 
456 #define CMDQ_SYNC_0_CS			GENMASK_ULL(13, 12)
457 #define CMDQ_SYNC_0_CS_NONE		0
458 #define CMDQ_SYNC_0_CS_IRQ		1
459 #define CMDQ_SYNC_0_CS_SEV		2
460 #define CMDQ_SYNC_0_MSH			GENMASK_ULL(23, 22)
461 #define CMDQ_SYNC_0_MSIATTR		GENMASK_ULL(27, 24)
462 #define CMDQ_SYNC_0_MSIDATA		GENMASK_ULL(63, 32)
463 #define CMDQ_SYNC_1_MSIADDR_MASK	GENMASK_ULL(51, 2)
464 
465 enum arm_smmu_cmdq_opcode {
466 	CMDQ_OP_PREFETCH_CFG = 0x1,
467 	CMDQ_OP_CFGI_STE = 0x3,
468 	CMDQ_OP_CFGI_ALL = 0x4,
469 	CMDQ_OP_CFGI_CD = 0x5,
470 	CMDQ_OP_CFGI_CD_ALL = 0x6,
471 	CMDQ_OP_TLBI_NH_ALL = 0x10,
472 	CMDQ_OP_TLBI_NH_ASID = 0x11,
473 	CMDQ_OP_TLBI_NH_VA = 0x12,
474 	CMDQ_OP_TLBI_NH_VAA = 0x13,
475 	CMDQ_OP_TLBI_EL2_ALL = 0x20,
476 	CMDQ_OP_TLBI_EL2_ASID = 0x21,
477 	CMDQ_OP_TLBI_EL2_VA = 0x22,
478 	CMDQ_OP_TLBI_S12_VMALL = 0x28,
479 	CMDQ_OP_TLBI_S2_IPA = 0x2a,
480 	CMDQ_OP_TLBI_NSNH_ALL = 0x30,
481 	CMDQ_OP_ATC_INV = 0x40,
482 	CMDQ_OP_PRI_RESP = 0x41,
483 	CMDQ_OP_RESUME = 0x44,
484 	CMDQ_OP_CMD_SYNC = 0x46,
485 };
486 
487 static inline struct arm_smmu_cmd
arm_smmu_make_cmd_op(enum arm_smmu_cmdq_opcode op)488 arm_smmu_make_cmd_op(enum arm_smmu_cmdq_opcode op)
489 {
490 	struct arm_smmu_cmd cmd = {};
491 
492 	cmd.data[0] = FIELD_PREP(CMDQ_0_OP, op);
493 	return cmd;
494 }
495 
arm_smmu_make_cmd_cfgi_all(void)496 static inline struct arm_smmu_cmd arm_smmu_make_cmd_cfgi_all(void)
497 {
498 	struct arm_smmu_cmd cmd = arm_smmu_make_cmd_op(CMDQ_OP_CFGI_ALL);
499 
500 	cmd.data[1] |= FIELD_PREP(CMDQ_CFGI_1_RANGE, 31);
501 	return cmd;
502 }
503 
arm_smmu_make_cmd_prefetch_cfg(u32 sid)504 static inline struct arm_smmu_cmd arm_smmu_make_cmd_prefetch_cfg(u32 sid)
505 {
506 	struct arm_smmu_cmd cmd = arm_smmu_make_cmd_op(CMDQ_OP_PREFETCH_CFG);
507 
508 	cmd.data[0] |= FIELD_PREP(CMDQ_PREFETCH_0_SID, sid);
509 	return cmd;
510 }
511 
arm_smmu_make_cmd_cfgi_ste(u32 sid,bool leaf)512 static inline struct arm_smmu_cmd arm_smmu_make_cmd_cfgi_ste(u32 sid, bool leaf)
513 {
514 	struct arm_smmu_cmd cmd = arm_smmu_make_cmd_op(CMDQ_OP_CFGI_STE);
515 
516 	cmd.data[0] |= FIELD_PREP(CMDQ_CFGI_0_SID, sid);
517 	cmd.data[1] |= FIELD_PREP(CMDQ_CFGI_1_LEAF, leaf);
518 	return cmd;
519 }
520 
arm_smmu_make_cmd_cfgi_cd(u32 sid,u32 ssid,bool leaf)521 static inline struct arm_smmu_cmd arm_smmu_make_cmd_cfgi_cd(u32 sid, u32 ssid,
522 							    bool leaf)
523 {
524 	struct arm_smmu_cmd cmd = arm_smmu_make_cmd_op(CMDQ_OP_CFGI_CD);
525 
526 	cmd.data[0] |= FIELD_PREP(CMDQ_CFGI_0_SID, sid) |
527 		       FIELD_PREP(CMDQ_CFGI_0_SSID, ssid);
528 	cmd.data[1] |= FIELD_PREP(CMDQ_CFGI_1_LEAF, leaf);
529 	return cmd;
530 }
531 
arm_smmu_make_cmd_resume(u32 sid,u16 stag,u8 resp)532 static inline struct arm_smmu_cmd arm_smmu_make_cmd_resume(u32 sid, u16 stag,
533 							   u8 resp)
534 {
535 	struct arm_smmu_cmd cmd = arm_smmu_make_cmd_op(CMDQ_OP_RESUME);
536 
537 	cmd.data[0] |= FIELD_PREP(CMDQ_RESUME_0_SID, sid) |
538 		       FIELD_PREP(CMDQ_RESUME_0_RESP, resp);
539 	cmd.data[1] |= FIELD_PREP(CMDQ_RESUME_1_STAG, stag);
540 	return cmd;
541 }
542 
arm_smmu_make_cmd_pri_resp(u32 sid,u32 ssid,bool ssv,u16 grpid,enum pri_resp resp)543 static inline struct arm_smmu_cmd arm_smmu_make_cmd_pri_resp(u32 sid, u32 ssid,
544 							     bool ssv,
545 							     u16 grpid,
546 							     enum pri_resp resp)
547 {
548 	struct arm_smmu_cmd cmd = arm_smmu_make_cmd_op(CMDQ_OP_PRI_RESP);
549 
550 	cmd.data[0] |= FIELD_PREP(CMDQ_0_SSV, ssv) |
551 		       FIELD_PREP(CMDQ_PRI_0_SID, sid) |
552 		       FIELD_PREP(CMDQ_PRI_0_SSID, ssid);
553 	cmd.data[1] |= FIELD_PREP(CMDQ_PRI_1_GRPID, grpid) |
554 		       FIELD_PREP(CMDQ_PRI_1_RESP, resp);
555 	return cmd;
556 }
557 
arm_smmu_make_cmd_atc_inv(u32 sid,u32 ssid,u64 addr,u8 size)558 static inline struct arm_smmu_cmd arm_smmu_make_cmd_atc_inv(u32 sid, u32 ssid,
559 							    u64 addr, u8 size)
560 {
561 	struct arm_smmu_cmd cmd = arm_smmu_make_cmd_op(CMDQ_OP_ATC_INV);
562 
563 	cmd.data[0] |= FIELD_PREP(CMDQ_0_SSV, ssid != IOMMU_NO_PASID) |
564 		       FIELD_PREP(CMDQ_ATC_0_SSID, ssid) |
565 		       FIELD_PREP(CMDQ_ATC_0_SID, sid);
566 	cmd.data[1] |= FIELD_PREP(CMDQ_ATC_1_SIZE, size) |
567 		       (addr & CMDQ_ATC_1_ADDR_MASK);
568 	return cmd;
569 }
570 
arm_smmu_make_cmd_atc_inv_all(u32 sid,u32 ssid)571 static inline struct arm_smmu_cmd arm_smmu_make_cmd_atc_inv_all(u32 sid,
572 								u32 ssid)
573 {
574 	return arm_smmu_make_cmd_atc_inv(sid, ssid, 0, ATC_INV_SIZE_ALL);
575 }
576 
arm_smmu_make_cmd_sync(unsigned int cs,u64 msiaddr)577 static inline struct arm_smmu_cmd arm_smmu_make_cmd_sync(unsigned int cs,
578 							 u64 msiaddr)
579 {
580 	struct arm_smmu_cmd cmd = arm_smmu_make_cmd_op(CMDQ_OP_CMD_SYNC);
581 
582 	cmd.data[0] |= FIELD_PREP(CMDQ_SYNC_0_CS, cs) |
583 		       FIELD_PREP(CMDQ_SYNC_0_MSH, ARM_SMMU_SH_ISH) |
584 		       FIELD_PREP(CMDQ_SYNC_0_MSIATTR, ARM_SMMU_MEMATTR_OIWB);
585 	cmd.data[1] |= msiaddr & CMDQ_SYNC_1_MSIADDR_MASK;
586 	return cmd;
587 }
588 
589 /*
590  * TLBI commands - the non-sized variants just need opcode + asid/vmid.
591  * For sized variants the caller sets up data[0] with the immutable fields
592  * (opcode + asid/vmid) and the range loop fills in per-iteration fields.
593  */
594 static inline struct arm_smmu_cmd
arm_smmu_make_cmd_tlbi(enum arm_smmu_cmdq_opcode op,u16 asid,u16 vmid)595 arm_smmu_make_cmd_tlbi(enum arm_smmu_cmdq_opcode op, u16 asid, u16 vmid)
596 {
597 	struct arm_smmu_cmd cmd = arm_smmu_make_cmd_op(op);
598 
599 	cmd.data[0] |= FIELD_PREP(CMDQ_TLBI_0_ASID, asid) |
600 		       FIELD_PREP(CMDQ_TLBI_0_VMID, vmid);
601 	return cmd;
602 }
603 
604 /* Event queue */
605 #define EVTQ_ENT_SZ_SHIFT		5
606 #define EVTQ_ENT_DWORDS			((1 << EVTQ_ENT_SZ_SHIFT) >> 3)
607 #define EVTQ_MAX_SZ_SHIFT		(Q_MAX_SZ_SHIFT - EVTQ_ENT_SZ_SHIFT)
608 
609 #define EVTQ_0_ID			GENMASK_ULL(7, 0)
610 
611 #define EVT_ID_BAD_STREAMID_CONFIG	0x02
612 #define EVT_ID_STE_FETCH_FAULT		0x03
613 #define EVT_ID_BAD_STE_CONFIG		0x04
614 #define EVT_ID_STREAM_DISABLED_FAULT	0x06
615 #define EVT_ID_BAD_SUBSTREAMID_CONFIG	0x08
616 #define EVT_ID_CD_FETCH_FAULT		0x09
617 #define EVT_ID_BAD_CD_CONFIG		0x0a
618 #define EVT_ID_TRANSLATION_FAULT	0x10
619 #define EVT_ID_ADDR_SIZE_FAULT		0x11
620 #define EVT_ID_ACCESS_FAULT		0x12
621 #define EVT_ID_PERMISSION_FAULT		0x13
622 #define EVT_ID_VMS_FETCH_FAULT		0x25
623 
624 #define EVTQ_0_SSV			(1UL << 11)
625 #define EVTQ_0_SSID			GENMASK_ULL(31, 12)
626 #define EVTQ_0_SID			GENMASK_ULL(63, 32)
627 #define EVTQ_1_STAG			GENMASK_ULL(15, 0)
628 #define EVTQ_1_STALL			(1UL << 31)
629 #define EVTQ_1_PnU			(1UL << 33)
630 #define EVTQ_1_InD			(1UL << 34)
631 #define EVTQ_1_RnW			(1UL << 35)
632 #define EVTQ_1_S2			(1UL << 39)
633 #define EVTQ_1_CLASS			GENMASK_ULL(41, 40)
634 #define EVTQ_1_CLASS_TT			0x01
635 #define EVTQ_1_TT_READ			(1UL << 44)
636 #define EVTQ_2_ADDR			GENMASK_ULL(63, 0)
637 #define EVTQ_3_IPA			GENMASK_ULL(51, 12)
638 #define EVTQ_3_FETCH_ADDR		GENMASK_ULL(51, 3)
639 
640 /* PRI queue */
641 #define PRIQ_ENT_SZ_SHIFT		4
642 #define PRIQ_ENT_DWORDS			((1 << PRIQ_ENT_SZ_SHIFT) >> 3)
643 #define PRIQ_MAX_SZ_SHIFT		(Q_MAX_SZ_SHIFT - PRIQ_ENT_SZ_SHIFT)
644 
645 #define PRIQ_0_SID			GENMASK_ULL(31, 0)
646 #define PRIQ_0_SSID			GENMASK_ULL(51, 32)
647 #define PRIQ_0_PERM_PRIV		(1UL << 58)
648 #define PRIQ_0_PERM_EXEC		(1UL << 59)
649 #define PRIQ_0_PERM_READ		(1UL << 60)
650 #define PRIQ_0_PERM_WRITE		(1UL << 61)
651 #define PRIQ_0_PRG_LAST			(1UL << 62)
652 #define PRIQ_0_SSID_V			(1UL << 63)
653 
654 #define PRIQ_1_PRG_IDX			GENMASK_ULL(8, 0)
655 #define PRIQ_1_ADDR_MASK		GENMASK_ULL(63, 12)
656 
657 /* High-level queue structures */
658 #define ARM_SMMU_POLL_TIMEOUT_US	1000000 /* 1s! */
659 #define ARM_SMMU_POLL_SPIN_COUNT	10
660 
661 #define MSI_IOVA_BASE			0x8000000
662 #define MSI_IOVA_LENGTH			0x100000
663 
664 struct arm_smmu_ll_queue {
665 	union {
666 		u64			val;
667 		struct {
668 			u32		prod;
669 			u32		cons;
670 		};
671 		struct {
672 			atomic_t	prod;
673 			atomic_t	cons;
674 		} atomic;
675 		u8			__pad[SMP_CACHE_BYTES];
676 	} ____cacheline_aligned_in_smp;
677 	u32				max_n_shift;
678 };
679 
680 struct arm_smmu_queue {
681 	struct arm_smmu_ll_queue	llq;
682 	int				irq; /* Wired interrupt */
683 
684 	__le64				*base;
685 	dma_addr_t			base_dma;
686 	u64				q_base;
687 
688 	size_t				ent_dwords;
689 
690 	u32 __iomem			*prod_reg;
691 	u32 __iomem			*cons_reg;
692 };
693 
694 struct arm_smmu_queue_poll {
695 	ktime_t				timeout;
696 	unsigned int			delay;
697 	unsigned int			spin_cnt;
698 	bool				wfe;
699 };
700 
701 struct arm_smmu_cmdq {
702 	struct arm_smmu_queue		q;
703 	atomic_long_t			*valid_map;
704 	atomic_t			owner_prod;
705 	atomic_t			lock;
706 	bool				(*supports_cmd)(struct arm_smmu_cmd *cmd);
707 };
708 
arm_smmu_cmdq_supports_cmd(struct arm_smmu_cmdq * cmdq,struct arm_smmu_cmd * cmd)709 static inline bool arm_smmu_cmdq_supports_cmd(struct arm_smmu_cmdq *cmdq,
710 					      struct arm_smmu_cmd *cmd)
711 {
712 	return cmdq->supports_cmd ? cmdq->supports_cmd(cmd) : true;
713 }
714 
715 struct arm_smmu_cmdq_batch {
716 	struct arm_smmu_cmd		cmds[CMDQ_BATCH_ENTRIES];
717 	struct arm_smmu_cmdq		*cmdq;
718 	int				num;
719 };
720 
721 /*
722  * The order here also determines the sequence in which commands are sent to the
723  * command queue. E.g. TLBI must be done before ATC_INV.
724  */
725 enum arm_smmu_inv_type {
726 	INV_TYPE_S1_ASID,
727 	INV_TYPE_S2_VMID,
728 	INV_TYPE_S2_VMID_S1_CLEAR,
729 	INV_TYPE_ATS,
730 	INV_TYPE_ATS_FULL,
731 };
732 
733 struct arm_smmu_inv {
734 	struct arm_smmu_device *smmu;
735 	u8 type;
736 	u8 size_opcode;
737 	u8 nsize_opcode;
738 	u32 id; /* ASID or VMID or SID */
739 	union {
740 		size_t pgsize; /* ARM_SMMU_FEAT_RANGE_INV */
741 		u32 ssid; /* INV_TYPE_ATS */
742 	};
743 
744 	int users; /* users=0 to mark as a trash to be purged */
745 };
746 
arm_smmu_inv_is_ats(const struct arm_smmu_inv * inv)747 static inline bool arm_smmu_inv_is_ats(const struct arm_smmu_inv *inv)
748 {
749 	return inv->type == INV_TYPE_ATS || inv->type == INV_TYPE_ATS_FULL;
750 }
751 
752 /**
753  * struct arm_smmu_invs - Per-domain invalidation array
754  * @max_invs: maximum capacity of the flexible array
755  * @num_invs: number of invalidations in the flexible array. May be smaller than
756  *            @max_invs after a tailing trash entry is excluded, but must not be
757  *            greater than @max_invs
758  * @num_trashes: number of trash entries in the array for arm_smmu_invs_purge().
759  *               Must not be greater than @num_invs
760  * @rwlock: optional rwlock to fence ATS operations
761  * @has_ats: flag if the array contains an INV_TYPE_ATS or INV_TYPE_ATS_FULL
762  * @rcu: rcu head for kfree_rcu()
763  * @inv: flexible invalidation array
764  *
765  * The arm_smmu_invs is an RCU data structure. During a ->attach_dev callback,
766  * arm_smmu_invs_merge(), arm_smmu_invs_unref() and arm_smmu_invs_purge() will
767  * be used to allocate a new copy of an old array for addition and deletion in
768  * the old domain's and new domain's invs arrays.
769  *
770  * The arm_smmu_invs_unref() mutates a given array, by internally reducing the
771  * users counts of some given entries. This exists to support a no-fail routine
772  * like attaching to an IOMMU_DOMAIN_BLOCKED. And it could pair with a followup
773  * arm_smmu_invs_purge() call to generate a new clean array.
774  *
775  * Concurrent invalidation thread will push every invalidation described in the
776  * array into the command queue for each invalidation event. It is designed like
777  * this to optimize the invalidation fast path by avoiding locks.
778  *
779  * A domain can be shared across SMMU instances. When an instance gets removed,
780  * it would delete all the entries that belong to that SMMU instance. Then, a
781  * synchronize_rcu() would have to be called to sync the array, to prevent any
782  * concurrent invalidation thread accessing the old array from issuing commands
783  * to the command queue of a removed SMMU instance.
784  */
785 struct arm_smmu_invs {
786 	size_t max_invs;
787 	size_t num_invs;
788 	size_t num_trashes;
789 	rwlock_t rwlock;
790 	bool has_ats;
791 	struct rcu_head rcu;
792 	struct arm_smmu_inv inv[] __counted_by(max_invs);
793 };
794 
arm_smmu_invs_alloc(size_t num_invs)795 static inline struct arm_smmu_invs *arm_smmu_invs_alloc(size_t num_invs)
796 {
797 	struct arm_smmu_invs *new_invs;
798 
799 	new_invs = kzalloc_flex(*new_invs, inv, num_invs);
800 	if (!new_invs)
801 		return NULL;
802 	new_invs->max_invs = num_invs;
803 	new_invs->num_invs = num_invs;
804 	rwlock_init(&new_invs->rwlock);
805 	return new_invs;
806 }
807 
808 struct arm_smmu_evtq {
809 	struct arm_smmu_queue		q;
810 	struct iopf_queue		*iopf;
811 	u32				max_stalls;
812 };
813 
814 struct arm_smmu_priq {
815 	struct arm_smmu_queue		q;
816 };
817 
818 /* High-level stream table and context descriptor structures */
819 struct arm_smmu_ctx_desc {
820 	u16				asid;
821 };
822 
823 struct arm_smmu_ctx_desc_cfg {
824 	union {
825 		struct {
826 			struct arm_smmu_cd *table;
827 			unsigned int num_ents;
828 		} linear;
829 		struct {
830 			struct arm_smmu_cdtab_l1 *l1tab;
831 			struct arm_smmu_cdtab_l2 **l2ptrs;
832 			unsigned int num_l1_ents;
833 		} l2;
834 	};
835 	dma_addr_t			cdtab_dma;
836 	unsigned int			used_ssids;
837 	u8				in_ste;
838 	u8				s1fmt;
839 	/* log2 of the maximum number of CDs supported by this table */
840 	u8				s1cdmax;
841 };
842 
843 static inline bool
arm_smmu_cdtab_allocated(struct arm_smmu_ctx_desc_cfg * cfg)844 arm_smmu_cdtab_allocated(struct arm_smmu_ctx_desc_cfg *cfg)
845 {
846 	return cfg->linear.table || cfg->l2.l1tab;
847 }
848 
849 /* True if the cd table has SSIDS > 0 in use. */
arm_smmu_ssids_in_use(struct arm_smmu_ctx_desc_cfg * cd_table)850 static inline bool arm_smmu_ssids_in_use(struct arm_smmu_ctx_desc_cfg *cd_table)
851 {
852 	return cd_table->used_ssids;
853 }
854 
855 struct arm_smmu_s2_cfg {
856 	u16				vmid;
857 };
858 
859 struct arm_smmu_strtab_cfg {
860 	union {
861 		struct {
862 			struct arm_smmu_ste *table;
863 			dma_addr_t ste_dma;
864 			unsigned int num_ents;
865 		} linear;
866 		struct {
867 			struct arm_smmu_strtab_l1 *l1tab;
868 			struct arm_smmu_strtab_l2 **l2ptrs;
869 			dma_addr_t l1_dma;
870 			unsigned int num_l1_ents;
871 		} l2;
872 	};
873 };
874 
875 struct arm_smmu_impl_ops {
876 	int (*device_reset)(struct arm_smmu_device *smmu);
877 	void (*device_disable)(struct arm_smmu_device *smmu);
878 	void (*device_remove)(struct arm_smmu_device *smmu);
879 	int (*init_structures)(struct arm_smmu_device *smmu);
880 	struct arm_smmu_cmdq *(*get_secondary_cmdq)(
881 		struct arm_smmu_device *smmu, struct arm_smmu_cmd *cmd);
882 	/*
883 	 * An implementation should define its own type other than the default
884 	 * IOMMU_HW_INFO_TYPE_ARM_SMMUV3. And it must validate the input @type
885 	 * to return its own structure.
886 	 */
887 	void *(*hw_info)(struct arm_smmu_device *smmu, u32 *length,
888 			 enum iommu_hw_info_type *type);
889 	size_t (*get_viommu_size)(enum iommu_viommu_type viommu_type);
890 	int (*vsmmu_init)(struct arm_vsmmu *vsmmu,
891 			  const struct iommu_user_data *user_data);
892 };
893 
894 /* An SMMUv3 instance */
895 struct arm_smmu_device {
896 	struct device			*dev;
897 	struct device			*impl_dev;
898 	const struct arm_smmu_impl_ops	*impl_ops;
899 
900 	void __iomem			*base;
901 	void __iomem			*page1;
902 
903 #define ARM_SMMU_FEAT_2_LVL_STRTAB	(1 << 0)
904 #define ARM_SMMU_FEAT_2_LVL_CDTAB	(1 << 1)
905 #define ARM_SMMU_FEAT_TT_LE		(1 << 2)
906 #define ARM_SMMU_FEAT_TT_BE		(1 << 3)
907 #define ARM_SMMU_FEAT_PRI		(1 << 4)
908 #define ARM_SMMU_FEAT_ATS		(1 << 5)
909 #define ARM_SMMU_FEAT_SEV		(1 << 6)
910 #define ARM_SMMU_FEAT_MSI		(1 << 7)
911 #define ARM_SMMU_FEAT_COHERENCY		(1 << 8)
912 #define ARM_SMMU_FEAT_TRANS_S1		(1 << 9)
913 #define ARM_SMMU_FEAT_TRANS_S2		(1 << 10)
914 #define ARM_SMMU_FEAT_STALLS		(1 << 11)
915 #define ARM_SMMU_FEAT_HYP		(1 << 12)
916 #define ARM_SMMU_FEAT_STALL_FORCE	(1 << 13)
917 #define ARM_SMMU_FEAT_VAX		(1 << 14)
918 #define ARM_SMMU_FEAT_RANGE_INV		(1 << 15)
919 #define ARM_SMMU_FEAT_BTM		(1 << 16)
920 #define ARM_SMMU_FEAT_SVA		(1 << 17)
921 #define ARM_SMMU_FEAT_E2H		(1 << 18)
922 #define ARM_SMMU_FEAT_NESTING		(1 << 19)
923 #define ARM_SMMU_FEAT_ATTR_TYPES_OVR	(1 << 20)
924 #define ARM_SMMU_FEAT_HA		(1 << 21)
925 #define ARM_SMMU_FEAT_HD		(1 << 22)
926 #define ARM_SMMU_FEAT_S2FWB		(1 << 23)
927 #define ARM_SMMU_FEAT_BBML2		(1 << 24)
928 #define ARM_SMMU_FEAT_HAFT		(1 << 25)
929 #define ARM_SMMU_FEAT_DS		(1 << 26)
930 	u32				features;
931 
932 #define ARM_SMMU_OPT_SKIP_PREFETCH	(1 << 0)
933 #define ARM_SMMU_OPT_PAGE0_REGS_ONLY	(1 << 1)
934 #define ARM_SMMU_OPT_MSIPOLL		(1 << 2)
935 #define ARM_SMMU_OPT_CMDQ_FORCE_SYNC	(1 << 3)
936 #define ARM_SMMU_OPT_TEGRA241_CMDQV	(1 << 4)
937 	u32				options;
938 
939 	struct arm_smmu_cmdq		cmdq;
940 	struct arm_smmu_evtq		evtq;
941 	struct arm_smmu_priq		priq;
942 
943 	int				gerr_irq;
944 	int				combined_irq;
945 
946 	unsigned long			oas; /* PA */
947 	unsigned long			pgsize_bitmap;
948 
949 #define ARM_SMMU_MAX_ASIDS		(1 << 16)
950 	unsigned int			asid_bits;
951 
952 #define ARM_SMMU_MAX_VMIDS		(1 << 16)
953 	unsigned int			vmid_bits;
954 	struct ida			vmid_map;
955 
956 	unsigned int			ssid_bits;
957 	unsigned int			sid_bits;
958 
959 	struct arm_smmu_strtab_cfg	strtab_cfg;
960 
961 	/* IOMMU core code handle */
962 	struct iommu_device		iommu;
963 
964 	struct rb_root			streams;
965 	struct mutex			streams_mutex;
966 };
967 
968 struct arm_smmu_stream {
969 	u32				id;
970 	struct arm_smmu_master		*master;
971 	struct rb_node			node;
972 };
973 
974 struct arm_smmu_vmaster {
975 	struct arm_vsmmu		*vsmmu;
976 	unsigned long			vsid;
977 };
978 
979 struct arm_smmu_event {
980 	u8				stall : 1,
981 					ssv : 1,
982 					privileged : 1,
983 					instruction : 1,
984 					s2 : 1,
985 					read : 1,
986 					ttrnw : 1,
987 					class_tt : 1;
988 	u8				id;
989 	u8				class;
990 	u16				stag;
991 	u32				sid;
992 	u32				ssid;
993 	u64				iova;
994 	u64				ipa;
995 	u64				fetch_addr;
996 	struct device			*dev;
997 };
998 
999 /* SMMU private data for each master */
1000 struct arm_smmu_master {
1001 	struct arm_smmu_device		*smmu;
1002 	struct device			*dev;
1003 	struct arm_smmu_stream		*streams;
1004 	/*
1005 	 * Scratch memory for a to_merge or to_unref array to build a per-domain
1006 	 * invalidation array. It'll be pre-allocated with enough enries for all
1007 	 * possible build scenarios. It can be used by only one caller at a time
1008 	 * until the arm_smmu_invs_merge/unref() finishes. Must be locked by the
1009 	 * iommu_group mutex.
1010 	 */
1011 	struct arm_smmu_invs		*build_invs;
1012 	struct arm_smmu_vmaster		*vmaster; /* use smmu->streams_mutex */
1013 	/* Locked by the iommu core using the group mutex */
1014 	struct arm_smmu_ctx_desc_cfg	cd_table;
1015 	unsigned int			num_streams;
1016 	bool				ats_enabled : 1;
1017 	bool				ste_ats_enabled : 1;
1018 	bool				stall_enabled;
1019 	bool				ats_always_on;
1020 	unsigned int			ssid_bits;
1021 	unsigned int			iopf_refcount;
1022 };
1023 
1024 /* SMMU private data for an IOMMU domain */
1025 enum arm_smmu_domain_stage {
1026 	ARM_SMMU_DOMAIN_S1 = 0,
1027 	ARM_SMMU_DOMAIN_S2,
1028 	ARM_SMMU_DOMAIN_SVA,
1029 };
1030 
1031 struct arm_smmu_domain {
1032 	struct arm_smmu_device		*smmu;
1033 
1034 	struct io_pgtable_ops		*pgtbl_ops;
1035 	atomic_t			nr_ats_masters;
1036 
1037 	enum arm_smmu_domain_stage	stage;
1038 	union {
1039 		struct arm_smmu_ctx_desc	cd;
1040 		struct arm_smmu_s2_cfg		s2_cfg;
1041 	};
1042 
1043 	struct iommu_domain		domain;
1044 
1045 	struct arm_smmu_invs __rcu	*invs;
1046 
1047 	/* List of struct arm_smmu_master_domain */
1048 	struct list_head		devices;
1049 	spinlock_t			devices_lock;
1050 	bool				enforce_cache_coherency : 1;
1051 	bool				nest_parent : 1;
1052 
1053 	struct mmu_notifier		mmu_notifier;
1054 };
1055 
1056 struct arm_smmu_nested_domain {
1057 	struct iommu_domain domain;
1058 	struct arm_vsmmu *vsmmu;
1059 	bool enable_ats : 1;
1060 
1061 	__le64 ste[2];
1062 };
1063 
1064 /* The following are exposed for testing purposes. */
1065 struct arm_smmu_entry_writer_ops;
1066 struct arm_smmu_entry_writer {
1067 	const struct arm_smmu_entry_writer_ops *ops;
1068 	struct arm_smmu_master *master;
1069 };
1070 
1071 struct arm_smmu_entry_writer_ops {
1072 	void (*get_used)(const __le64 *entry, __le64 *used);
1073 	void (*get_update_safe)(const __le64 *cur, const __le64 *target,
1074 				__le64 *safe_bits);
1075 	void (*sync)(struct arm_smmu_entry_writer *writer);
1076 };
1077 
1078 void arm_smmu_make_abort_ste(struct arm_smmu_ste *target);
1079 void arm_smmu_make_s2_domain_ste(struct arm_smmu_ste *target,
1080 				 struct arm_smmu_master *master,
1081 				 struct arm_smmu_domain *smmu_domain,
1082 				 bool ats_enabled);
1083 
1084 #if IS_ENABLED(CONFIG_KUNIT)
1085 void arm_smmu_get_ste_used(const __le64 *ent, __le64 *used_bits);
1086 void arm_smmu_get_ste_update_safe(const __le64 *cur, const __le64 *target,
1087 				  __le64 *safe_bits);
1088 void arm_smmu_write_entry(struct arm_smmu_entry_writer *writer, __le64 *cur,
1089 			  const __le64 *target);
1090 void arm_smmu_get_cd_used(const __le64 *ent, __le64 *used_bits);
1091 void arm_smmu_make_bypass_ste(struct arm_smmu_device *smmu,
1092 			      struct arm_smmu_ste *target);
1093 void arm_smmu_make_cdtable_ste(struct arm_smmu_ste *target,
1094 			       struct arm_smmu_master *master, bool ats_enabled,
1095 			       unsigned int s1dss);
1096 void arm_smmu_make_sva_cd(struct arm_smmu_cd *target,
1097 			  struct arm_smmu_master *master, struct mm_struct *mm,
1098 			  u16 asid);
1099 
1100 struct arm_smmu_invs *arm_smmu_invs_merge(struct arm_smmu_invs *invs,
1101 					  struct arm_smmu_invs *to_merge);
1102 void arm_smmu_invs_unref(struct arm_smmu_invs *invs,
1103 			 struct arm_smmu_invs *to_unref);
1104 struct arm_smmu_invs *arm_smmu_invs_purge(struct arm_smmu_invs *invs);
1105 #endif
1106 
1107 struct arm_smmu_master_domain {
1108 	struct list_head devices_elm;
1109 	struct arm_smmu_master *master;
1110 	/*
1111 	 * For nested domains the master_domain is threaded onto the S2 parent,
1112 	 * this points to the IOMMU_DOMAIN_NESTED to disambiguate the masters.
1113 	 */
1114 	struct iommu_domain *domain;
1115 	ioasid_t ssid;
1116 	bool nested_ats_flush : 1;
1117 	bool using_iopf : 1;
1118 };
1119 
to_smmu_domain(struct iommu_domain * dom)1120 static inline struct arm_smmu_domain *to_smmu_domain(struct iommu_domain *dom)
1121 {
1122 	return container_of(dom, struct arm_smmu_domain, domain);
1123 }
1124 
1125 static inline struct arm_smmu_nested_domain *
to_smmu_nested_domain(struct iommu_domain * dom)1126 to_smmu_nested_domain(struct iommu_domain *dom)
1127 {
1128 	return container_of(dom, struct arm_smmu_nested_domain, domain);
1129 }
1130 
1131 extern struct xarray arm_smmu_asid_xa;
1132 extern struct mutex arm_smmu_asid_lock;
1133 
1134 struct arm_smmu_domain *arm_smmu_domain_alloc(void);
1135 
arm_smmu_domain_free(struct arm_smmu_domain * smmu_domain)1136 static inline void arm_smmu_domain_free(struct arm_smmu_domain *smmu_domain)
1137 {
1138 	/* No concurrency with invalidation is possible at this point */
1139 	kfree(rcu_dereference_protected(smmu_domain->invs, true));
1140 	kfree(smmu_domain);
1141 }
1142 
1143 void arm_smmu_clear_cd(struct arm_smmu_master *master, ioasid_t ssid);
1144 struct arm_smmu_cd *arm_smmu_get_cd_ptr(struct arm_smmu_master *master,
1145 					u32 ssid);
1146 void arm_smmu_make_s1_cd(struct arm_smmu_cd *target,
1147 			 struct arm_smmu_master *master,
1148 			 struct arm_smmu_domain *smmu_domain);
1149 void arm_smmu_write_cd_entry(struct arm_smmu_master *master, int ssid,
1150 			     struct arm_smmu_cd *cdptr,
1151 			     const struct arm_smmu_cd *target);
1152 
1153 int arm_smmu_set_pasid(struct arm_smmu_master *master,
1154 		       struct arm_smmu_domain *smmu_domain, ioasid_t pasid,
1155 		       struct arm_smmu_cd *cd, struct iommu_domain *old);
1156 
1157 void arm_smmu_domain_inv_range(struct arm_smmu_domain *smmu_domain,
1158 			       unsigned long iova, size_t size,
1159 			       unsigned int granule, bool leaf);
1160 
arm_smmu_domain_inv(struct arm_smmu_domain * smmu_domain)1161 static inline void arm_smmu_domain_inv(struct arm_smmu_domain *smmu_domain)
1162 {
1163 	arm_smmu_domain_inv_range(smmu_domain, 0, 0, 0, false);
1164 }
1165 
1166 void __arm_smmu_cmdq_skip_err(struct arm_smmu_device *smmu,
1167 			      struct arm_smmu_cmdq *cmdq);
1168 int arm_smmu_init_one_queue(struct arm_smmu_device *smmu,
1169 			    struct arm_smmu_queue *q, void __iomem *page,
1170 			    unsigned long prod_off, unsigned long cons_off,
1171 			    size_t dwords, const char *name);
1172 int arm_smmu_cmdq_init(struct arm_smmu_device *smmu,
1173 		       struct arm_smmu_cmdq *cmdq);
1174 
arm_smmu_master_canwbs(struct arm_smmu_master * master)1175 static inline bool arm_smmu_master_canwbs(struct arm_smmu_master *master)
1176 {
1177 	return dev_iommu_fwspec_get(master->dev)->flags &
1178 	       IOMMU_FWSPEC_PCI_RC_CANWBS;
1179 }
1180 
1181 /**
1182  * struct arm_smmu_inv_state - Per-domain invalidation array state
1183  * @invs_ptr: points to the domain->invs (unwinding nesting/etc.) or is NULL if
1184  *            no change should be made
1185  * @old_invs: the original invs array
1186  * @new_invs: for new domain, this is the new invs array to update domain->invs;
1187  *            for old domain, this is the master->build_invs to pass in as the
1188  *            to_unref argument to an arm_smmu_invs_unref() call
1189  */
1190 struct arm_smmu_inv_state {
1191 	struct arm_smmu_invs __rcu **invs_ptr;
1192 	struct arm_smmu_invs *old_invs;
1193 	struct arm_smmu_invs *new_invs;
1194 };
1195 
1196 struct arm_smmu_attach_state {
1197 	/* Inputs */
1198 	struct iommu_domain *old_domain;
1199 	struct arm_smmu_master *master;
1200 	bool cd_needs_ats;
1201 	bool disable_ats;
1202 	ioasid_t ssid;
1203 	/* Resulting state */
1204 	struct arm_smmu_vmaster *vmaster;
1205 	struct arm_smmu_inv_state old_domain_invst;
1206 	struct arm_smmu_inv_state new_domain_invst;
1207 	bool ats_enabled;
1208 };
1209 
1210 int arm_smmu_attach_prepare(struct arm_smmu_attach_state *state,
1211 			    struct iommu_domain *new_domain);
1212 void arm_smmu_attach_commit(struct arm_smmu_attach_state *state);
1213 void arm_smmu_install_ste_for_dev(struct arm_smmu_master *master,
1214 				  const struct arm_smmu_ste *target);
1215 
1216 int __arm_smmu_cmdq_issue_cmdlist(struct arm_smmu_device *smmu,
1217 				  struct arm_smmu_cmdq *cmdq,
1218 				  struct arm_smmu_cmd *cmds, int n,
1219 				  bool sync);
1220 int arm_smmu_cmdq_issue_cmdlist(struct arm_smmu_device *smmu,
1221 				struct arm_smmu_cmdq *cmdq,
1222 				struct arm_smmu_cmd *cmds, int n,
1223 				bool sync);
1224 bool arm_smmu_erratum_repeat_tlbi_cfgi(void);
1225 
1226 #ifdef CONFIG_ARM_SMMU_V3_SVA
1227 bool arm_smmu_sva_supported(struct arm_smmu_device *smmu);
1228 void arm_smmu_sva_notifier_synchronize(void);
1229 struct iommu_domain *arm_smmu_sva_domain_alloc(struct device *dev,
1230 					       struct mm_struct *mm);
1231 #else /* CONFIG_ARM_SMMU_V3_SVA */
arm_smmu_sva_supported(struct arm_smmu_device * smmu)1232 static inline bool arm_smmu_sva_supported(struct arm_smmu_device *smmu)
1233 {
1234 	return false;
1235 }
1236 
arm_smmu_sva_notifier_synchronize(void)1237 static inline void arm_smmu_sva_notifier_synchronize(void) {}
1238 
1239 #define arm_smmu_sva_domain_alloc NULL
1240 
1241 #endif /* CONFIG_ARM_SMMU_V3_SVA */
1242 
1243 #ifdef CONFIG_TEGRA241_CMDQV
1244 struct arm_smmu_device *tegra241_cmdqv_probe(struct arm_smmu_device *smmu);
1245 #else /* CONFIG_TEGRA241_CMDQV */
1246 static inline struct arm_smmu_device *
tegra241_cmdqv_probe(struct arm_smmu_device * smmu)1247 tegra241_cmdqv_probe(struct arm_smmu_device *smmu)
1248 {
1249 	return ERR_PTR(-ENODEV);
1250 }
1251 #endif /* CONFIG_TEGRA241_CMDQV */
1252 
1253 struct arm_vsmmu {
1254 	struct iommufd_viommu core;
1255 	struct arm_smmu_device *smmu;
1256 	struct arm_smmu_domain *s2_parent;
1257 	u16 vmid;
1258 };
1259 
1260 #if IS_ENABLED(CONFIG_ARM_SMMU_V3_IOMMUFD)
1261 void *arm_smmu_hw_info(struct device *dev, u32 *length,
1262 		       enum iommu_hw_info_type *type);
1263 size_t arm_smmu_get_viommu_size(struct device *dev,
1264 				enum iommu_viommu_type viommu_type);
1265 int arm_vsmmu_init(struct iommufd_viommu *viommu,
1266 		   struct iommu_domain *parent_domain,
1267 		   const struct iommu_user_data *user_data);
1268 int arm_smmu_attach_prepare_vmaster(struct arm_smmu_attach_state *state,
1269 				    struct arm_smmu_nested_domain *nested_domain);
1270 void arm_smmu_attach_commit_vmaster(struct arm_smmu_attach_state *state);
1271 void arm_smmu_master_clear_vmaster(struct arm_smmu_master *master);
1272 int arm_vmaster_report_event(struct arm_smmu_vmaster *vmaster, u64 *evt);
1273 struct iommu_domain *
1274 arm_vsmmu_alloc_domain_nested(struct iommufd_viommu *viommu, u32 flags,
1275 			      const struct iommu_user_data *user_data);
1276 int arm_vsmmu_cache_invalidate(struct iommufd_viommu *viommu,
1277 			       struct iommu_user_data_array *array);
1278 #else
1279 #define arm_smmu_get_viommu_size NULL
1280 #define arm_smmu_hw_info NULL
1281 #define arm_vsmmu_init NULL
1282 #define arm_vsmmu_alloc_domain_nested NULL
1283 #define arm_vsmmu_cache_invalidate NULL
1284 
1285 static inline int
arm_smmu_attach_prepare_vmaster(struct arm_smmu_attach_state * state,struct arm_smmu_nested_domain * nested_domain)1286 arm_smmu_attach_prepare_vmaster(struct arm_smmu_attach_state *state,
1287 				struct arm_smmu_nested_domain *nested_domain)
1288 {
1289 	return 0;
1290 }
1291 
1292 static inline void
arm_smmu_attach_commit_vmaster(struct arm_smmu_attach_state * state)1293 arm_smmu_attach_commit_vmaster(struct arm_smmu_attach_state *state)
1294 {
1295 }
1296 
1297 static inline void
arm_smmu_master_clear_vmaster(struct arm_smmu_master * master)1298 arm_smmu_master_clear_vmaster(struct arm_smmu_master *master)
1299 {
1300 }
1301 
arm_vmaster_report_event(struct arm_smmu_vmaster * vmaster,u64 * evt)1302 static inline int arm_vmaster_report_event(struct arm_smmu_vmaster *vmaster,
1303 					   u64 *evt)
1304 {
1305 	return -EOPNOTSUPP;
1306 }
1307 #endif /* CONFIG_ARM_SMMU_V3_IOMMUFD */
1308 
1309 #endif /* _ARM_SMMU_V3_H */
1310