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Kim Phillips8e8ec592011-03-13 16:54:26 +08001/*
2 * CAAM hardware register-level view
3 *
4 * Copyright 2008-2011 Freescale Semiconductor, Inc.
5 */
6
7#ifndef REGS_H
8#define REGS_H
9
10#include <linux/types.h>
11#include <linux/io.h>
12
13/*
14 * Architecture-specific register access methods
15 *
16 * CAAM's bus-addressable registers are 64 bits internally.
17 * They have been wired to be safely accessible on 32-bit
18 * architectures, however. Registers were organized such
19 * that (a) they can be contained in 32 bits, (b) if not, then they
20 * can be treated as two 32-bit entities, or finally (c) if they
21 * must be treated as a single 64-bit value, then this can safely
22 * be done with two 32-bit cycles.
23 *
24 * For 32-bit operations on 64-bit values, CAAM follows the same
25 * 64-bit register access conventions as it's predecessors, in that
26 * writes are "triggered" by a write to the register at the numerically
27 * higher address, thus, a full 64-bit write cycle requires a write
28 * to the lower address, followed by a write to the higher address,
29 * which will latch/execute the write cycle.
30 *
31 * For example, let's assume a SW reset of CAAM through the master
32 * configuration register.
33 * - SWRST is in bit 31 of MCFG.
34 * - MCFG begins at base+0x0000.
35 * - Bits 63-32 are a 32-bit word at base+0x0000 (numerically-lower)
36 * - Bits 31-0 are a 32-bit word at base+0x0004 (numerically-higher)
37 *
38 * (and on Power, the convention is 0-31, 32-63, I know...)
39 *
40 * Assuming a 64-bit write to this MCFG to perform a software reset
41 * would then require a write of 0 to base+0x0000, followed by a
42 * write of 0x80000000 to base+0x0004, which would "execute" the
43 * reset.
44 *
45 * Of course, since MCFG 63-32 is all zero, we could cheat and simply
46 * write 0x8000000 to base+0x0004, and the reset would work fine.
47 * However, since CAAM does contain some write-and-read-intended
48 * 64-bit registers, this code defines 64-bit access methods for
49 * the sake of internal consistency and simplicity, and so that a
50 * clean transition to 64-bit is possible when it becomes necessary.
51 *
52 * There are limitations to this that the developer must recognize.
53 * 32-bit architectures cannot enforce an atomic-64 operation,
54 * Therefore:
55 *
56 * - On writes, since the HW is assumed to latch the cycle on the
57 * write of the higher-numeric-address word, then ordered
58 * writes work OK.
59 *
60 * - For reads, where a register contains a relevant value of more
61 * that 32 bits, the hardware employs logic to latch the other
62 * "half" of the data until read, ensuring an accurate value.
63 * This is of particular relevance when dealing with CAAM's
64 * performance counters.
65 *
66 */
67
68#ifdef __BIG_ENDIAN
69#define wr_reg32(reg, data) out_be32(reg, data)
70#define rd_reg32(reg) in_be32(reg)
71#ifdef CONFIG_64BIT
72#define wr_reg64(reg, data) out_be64(reg, data)
73#define rd_reg64(reg) in_be64(reg)
74#endif
75#else
76#ifdef __LITTLE_ENDIAN
77#define wr_reg32(reg, data) __raw_writel(reg, data)
78#define rd_reg32(reg) __raw_readl(reg)
79#ifdef CONFIG_64BIT
80#define wr_reg64(reg, data) __raw_writeq(reg, data)
81#define rd_reg64(reg) __raw_readq(reg)
82#endif
83#endif
84#endif
85
86#ifndef CONFIG_64BIT
87static inline void wr_reg64(u64 __iomem *reg, u64 data)
88{
89 wr_reg32((u32 __iomem *)reg, (data & 0xffffffff00000000ull) >> 32);
90 wr_reg32((u32 __iomem *)reg + 1, data & 0x00000000ffffffffull);
91}
92
93static inline u64 rd_reg64(u64 __iomem *reg)
94{
95 return (((u64)rd_reg32((u32 __iomem *)reg)) << 32) |
96 ((u64)rd_reg32((u32 __iomem *)reg + 1));
97}
98#endif
99
100/*
101 * jr_outentry
102 * Represents each entry in a JobR output ring
103 */
104struct jr_outentry {
105 dma_addr_t desc;/* Pointer to completed descriptor */
106 u32 jrstatus; /* Status for completed descriptor */
107} __packed;
108
109/*
110 * caam_perfmon - Performance Monitor/Secure Memory Status/
111 * CAAM Global Status/Component Version IDs
112 *
113 * Spans f00-fff wherever instantiated
114 */
115
116/* Number of DECOs */
117#define CHA_NUM_DECONUM_SHIFT 56
118#define CHA_NUM_DECONUM_MASK (0xfull << CHA_NUM_DECONUM_SHIFT)
119
Ruchika Gupta986dfbc2013-04-26 15:44:54 +0530120/* CHA Version IDs */
121#define CHA_ID_AES_SHIFT 0
122#define CHA_ID_AES_MASK (0xfull << CHA_ID_AES_SHIFT)
123
124#define CHA_ID_DES_SHIFT 4
125#define CHA_ID_DES_MASK (0xfull << CHA_ID_DES_SHIFT)
126
127#define CHA_ID_ARC4_SHIFT 8
128#define CHA_ID_ARC4_MASK (0xfull << CHA_ID_ARC4_SHIFT)
129
130#define CHA_ID_MD_SHIFT 12
131#define CHA_ID_MD_MASK (0xfull << CHA_ID_MD_SHIFT)
132
133#define CHA_ID_RNG_SHIFT 16
134#define CHA_ID_RNG_MASK (0xfull << CHA_ID_RNG_SHIFT)
135
136#define CHA_ID_SNW8_SHIFT 20
137#define CHA_ID_SNW8_MASK (0xfull << CHA_ID_SNW8_SHIFT)
138
139#define CHA_ID_KAS_SHIFT 24
140#define CHA_ID_KAS_MASK (0xfull << CHA_ID_KAS_SHIFT)
141
142#define CHA_ID_PK_SHIFT 28
143#define CHA_ID_PK_MASK (0xfull << CHA_ID_PK_SHIFT)
144
145#define CHA_ID_CRC_SHIFT 32
146#define CHA_ID_CRC_MASK (0xfull << CHA_ID_CRC_SHIFT)
147
148#define CHA_ID_SNW9_SHIFT 36
149#define CHA_ID_SNW9_MASK (0xfull << CHA_ID_SNW9_SHIFT)
150
151#define CHA_ID_DECO_SHIFT 56
152#define CHA_ID_DECO_MASK (0xfull << CHA_ID_DECO_SHIFT)
153
154#define CHA_ID_JR_SHIFT 60
155#define CHA_ID_JR_MASK (0xfull << CHA_ID_JR_SHIFT)
156
Alex Porosanu82c2f962012-07-11 11:06:11 +0800157struct sec_vid {
158 u16 ip_id;
159 u8 maj_rev;
160 u8 min_rev;
161};
162
Kim Phillips8e8ec592011-03-13 16:54:26 +0800163struct caam_perfmon {
164 /* Performance Monitor Registers f00-f9f */
165 u64 req_dequeued; /* PC_REQ_DEQ - Dequeued Requests */
166 u64 ob_enc_req; /* PC_OB_ENC_REQ - Outbound Encrypt Requests */
167 u64 ib_dec_req; /* PC_IB_DEC_REQ - Inbound Decrypt Requests */
168 u64 ob_enc_bytes; /* PC_OB_ENCRYPT - Outbound Bytes Encrypted */
169 u64 ob_prot_bytes; /* PC_OB_PROTECT - Outbound Bytes Protected */
170 u64 ib_dec_bytes; /* PC_IB_DECRYPT - Inbound Bytes Decrypted */
171 u64 ib_valid_bytes; /* PC_IB_VALIDATED Inbound Bytes Validated */
172 u64 rsvd[13];
173
174 /* CAAM Hardware Instantiation Parameters fa0-fbf */
175 u64 cha_rev; /* CRNR - CHA Revision Number */
176#define CTPR_QI_SHIFT 57
Kim Phillipsf3af9862011-04-11 19:15:21 -0500177#define CTPR_QI_MASK (0x1ull << CTPR_QI_SHIFT)
Kim Phillips8e8ec592011-03-13 16:54:26 +0800178 u64 comp_parms; /* CTPR - Compile Parameters Register */
179 u64 rsvd1[2];
180
181 /* CAAM Global Status fc0-fdf */
182 u64 faultaddr; /* FAR - Fault Address */
183 u32 faultliodn; /* FALR - Fault Address LIODN */
184 u32 faultdetail; /* FADR - Fault Addr Detail */
185 u32 rsvd2;
186 u32 status; /* CSTA - CAAM Status */
187 u64 rsvd3;
188
189 /* Component Instantiation Parameters fe0-fff */
190 u32 rtic_id; /* RVID - RTIC Version ID */
191 u32 ccb_id; /* CCBVID - CCB Version ID */
192 u64 cha_id; /* CHAVID - CHA Version ID */
193 u64 cha_num; /* CHANUM - CHA Number */
194 u64 caam_id; /* CAAMVID - CAAM Version ID */
195};
196
197/* LIODN programming for DMA configuration */
198#define MSTRID_LOCK_LIODN 0x80000000
199#define MSTRID_LOCK_MAKETRUSTED 0x00010000 /* only for JR masterid */
200
201#define MSTRID_LIODN_MASK 0x0fff
202struct masterid {
203 u32 liodn_ms; /* lock and make-trusted control bits */
204 u32 liodn_ls; /* LIODN for non-sequence and seq access */
205};
206
207/* Partition ID for DMA configuration */
208struct partid {
209 u32 rsvd1;
210 u32 pidr; /* partition ID, DECO */
211};
212
Kim Phillips281922a2012-06-22 19:48:52 -0500213/* RNGB test mode (replicated twice in some configurations) */
Kim Phillips8e8ec592011-03-13 16:54:26 +0800214/* Padded out to 0x100 */
215struct rngtst {
216 u32 mode; /* RTSTMODEx - Test mode */
217 u32 rsvd1[3];
218 u32 reset; /* RTSTRESETx - Test reset control */
219 u32 rsvd2[3];
220 u32 status; /* RTSTSSTATUSx - Test status */
221 u32 rsvd3;
222 u32 errstat; /* RTSTERRSTATx - Test error status */
223 u32 rsvd4;
224 u32 errctl; /* RTSTERRCTLx - Test error control */
225 u32 rsvd5;
226 u32 entropy; /* RTSTENTROPYx - Test entropy */
227 u32 rsvd6[15];
228 u32 verifctl; /* RTSTVERIFCTLx - Test verification control */
229 u32 rsvd7;
230 u32 verifstat; /* RTSTVERIFSTATx - Test verification status */
231 u32 rsvd8;
232 u32 verifdata; /* RTSTVERIFDx - Test verification data */
233 u32 rsvd9;
234 u32 xkey; /* RTSTXKEYx - Test XKEY */
235 u32 rsvd10;
236 u32 oscctctl; /* RTSTOSCCTCTLx - Test osc. counter control */
237 u32 rsvd11;
238 u32 oscct; /* RTSTOSCCTx - Test oscillator counter */
239 u32 rsvd12;
240 u32 oscctstat; /* RTSTODCCTSTATx - Test osc counter status */
241 u32 rsvd13[2];
242 u32 ofifo[4]; /* RTSTOFIFOx - Test output FIFO */
243 u32 rsvd14[15];
244};
245
Kim Phillips281922a2012-06-22 19:48:52 -0500246/* RNG4 TRNG test registers */
247struct rng4tst {
248#define RTMCTL_PRGM 0x00010000 /* 1 -> program mode, 0 -> run mode */
249 u32 rtmctl; /* misc. control register */
250 u32 rtscmisc; /* statistical check misc. register */
251 u32 rtpkrrng; /* poker range register */
252 union {
253 u32 rtpkrmax; /* PRGM=1: poker max. limit register */
254 u32 rtpkrsq; /* PRGM=0: poker square calc. result register */
255 };
256#define RTSDCTL_ENT_DLY_SHIFT 16
257#define RTSDCTL_ENT_DLY_MASK (0xffff << RTSDCTL_ENT_DLY_SHIFT)
258 u32 rtsdctl; /* seed control register */
259 union {
260 u32 rtsblim; /* PRGM=1: sparse bit limit register */
261 u32 rttotsam; /* PRGM=0: total samples register */
262 };
263 u32 rtfrqmin; /* frequency count min. limit register */
264 union {
265 u32 rtfrqmax; /* PRGM=1: freq. count max. limit register */
266 u32 rtfrqcnt; /* PRGM=0: freq. count register */
267 };
Ruchika Gupta986dfbc2013-04-26 15:44:54 +0530268 u32 rsvd1[40];
269#define RDSTA_IF0 0x00000001
270 u32 rdsta;
271 u32 rsvd2[15];
Kim Phillips281922a2012-06-22 19:48:52 -0500272};
273
Kim Phillips8e8ec592011-03-13 16:54:26 +0800274/*
275 * caam_ctrl - basic core configuration
276 * starts base + 0x0000 padded out to 0x1000
277 */
278
279#define KEK_KEY_SIZE 8
280#define TKEK_KEY_SIZE 8
281#define TDSK_KEY_SIZE 8
282
283#define DECO_RESET 1 /* Use with DECO reset/availability regs */
284#define DECO_RESET_0 (DECO_RESET << 0)
285#define DECO_RESET_1 (DECO_RESET << 1)
286#define DECO_RESET_2 (DECO_RESET << 2)
287#define DECO_RESET_3 (DECO_RESET << 3)
288#define DECO_RESET_4 (DECO_RESET << 4)
289
290struct caam_ctrl {
291 /* Basic Configuration Section 000-01f */
292 /* Read/Writable */
293 u32 rsvd1;
294 u32 mcr; /* MCFG Master Config Register */
Vakul Garg575c1bd2013-03-12 13:55:21 +0530295 u32 rsvd2;
296 u32 scfgr; /* SCFGR, Security Config Register */
Kim Phillips8e8ec592011-03-13 16:54:26 +0800297
298 /* Bus Access Configuration Section 010-11f */
299 /* Read/Writable */
300 struct masterid jr_mid[4]; /* JRxLIODNR - JobR LIODN setup */
301 u32 rsvd3[12];
302 struct masterid rtic_mid[4]; /* RTICxLIODNR - RTIC LIODN setup */
303 u32 rsvd4[7];
304 u32 deco_rq; /* DECORR - DECO Request */
305 struct partid deco_mid[5]; /* DECOxLIODNR - 1 per DECO */
306 u32 rsvd5[22];
307
308 /* DECO Availability/Reset Section 120-3ff */
309 u32 deco_avail; /* DAR - DECO availability */
310 u32 deco_reset; /* DRR - DECO reset */
311 u32 rsvd6[182];
312
313 /* Key Encryption/Decryption Configuration 400-5ff */
314 /* Read/Writable only while in Non-secure mode */
315 u32 kek[KEK_KEY_SIZE]; /* JDKEKR - Key Encryption Key */
316 u32 tkek[TKEK_KEY_SIZE]; /* TDKEKR - Trusted Desc KEK */
317 u32 tdsk[TDSK_KEY_SIZE]; /* TDSKR - Trusted Desc Signing Key */
318 u32 rsvd7[32];
319 u64 sknonce; /* SKNR - Secure Key Nonce */
320 u32 rsvd8[70];
321
322 /* RNG Test/Verification/Debug Access 600-7ff */
323 /* (Useful in Test/Debug modes only...) */
Kim Phillips281922a2012-06-22 19:48:52 -0500324 union {
325 struct rngtst rtst[2];
326 struct rng4tst r4tst[2];
327 };
Kim Phillips8e8ec592011-03-13 16:54:26 +0800328
329 u32 rsvd9[448];
330
331 /* Performance Monitor f00-fff */
332 struct caam_perfmon perfmon;
333};
334
335/*
336 * Controller master config register defs
337 */
338#define MCFGR_SWRESET 0x80000000 /* software reset */
339#define MCFGR_WDENABLE 0x40000000 /* DECO watchdog enable */
340#define MCFGR_WDFAIL 0x20000000 /* DECO watchdog force-fail */
341#define MCFGR_DMA_RESET 0x10000000
342#define MCFGR_LONG_PTR 0x00010000 /* Use >32-bit desc addressing */
Vakul Garg575c1bd2013-03-12 13:55:21 +0530343#define SCFGR_RDBENABLE 0x00000400
Kim Phillips8e8ec592011-03-13 16:54:26 +0800344
345/* AXI read cache control */
346#define MCFGR_ARCACHE_SHIFT 12
347#define MCFGR_ARCACHE_MASK (0xf << MCFGR_ARCACHE_SHIFT)
348
349/* AXI write cache control */
350#define MCFGR_AWCACHE_SHIFT 8
351#define MCFGR_AWCACHE_MASK (0xf << MCFGR_AWCACHE_SHIFT)
352
353/* AXI pipeline depth */
354#define MCFGR_AXIPIPE_SHIFT 4
355#define MCFGR_AXIPIPE_MASK (0xf << MCFGR_AXIPIPE_SHIFT)
356
357#define MCFGR_AXIPRI 0x00000008 /* Assert AXI priority sideband */
358#define MCFGR_BURST_64 0x00000001 /* Max burst size */
359
360/*
361 * caam_job_ring - direct job ring setup
362 * 1-4 possible per instantiation, base + 1000/2000/3000/4000
363 * Padded out to 0x1000
364 */
365struct caam_job_ring {
366 /* Input ring */
367 u64 inpring_base; /* IRBAx - Input desc ring baseaddr */
368 u32 rsvd1;
369 u32 inpring_size; /* IRSx - Input ring size */
370 u32 rsvd2;
371 u32 inpring_avail; /* IRSAx - Input ring room remaining */
372 u32 rsvd3;
373 u32 inpring_jobadd; /* IRJAx - Input ring jobs added */
374
375 /* Output Ring */
376 u64 outring_base; /* ORBAx - Output status ring base addr */
377 u32 rsvd4;
378 u32 outring_size; /* ORSx - Output ring size */
379 u32 rsvd5;
380 u32 outring_rmvd; /* ORJRx - Output ring jobs removed */
381 u32 rsvd6;
382 u32 outring_used; /* ORSFx - Output ring slots full */
383
384 /* Status/Configuration */
385 u32 rsvd7;
386 u32 jroutstatus; /* JRSTAx - JobR output status */
387 u32 rsvd8;
388 u32 jrintstatus; /* JRINTx - JobR interrupt status */
389 u32 rconfig_hi; /* JRxCFG - Ring configuration */
390 u32 rconfig_lo;
391
392 /* Indices. CAAM maintains as "heads" of each queue */
393 u32 rsvd9;
394 u32 inp_rdidx; /* IRRIx - Input ring read index */
395 u32 rsvd10;
396 u32 out_wtidx; /* ORWIx - Output ring write index */
397
398 /* Command/control */
399 u32 rsvd11;
400 u32 jrcommand; /* JRCRx - JobR command */
401
402 u32 rsvd12[932];
403
404 /* Performance Monitor f00-fff */
405 struct caam_perfmon perfmon;
406};
407
408#define JR_RINGSIZE_MASK 0x03ff
409/*
410 * jrstatus - Job Ring Output Status
411 * All values in lo word
412 * Also note, same values written out as status through QI
413 * in the command/status field of a frame descriptor
414 */
415#define JRSTA_SSRC_SHIFT 28
416#define JRSTA_SSRC_MASK 0xf0000000
417
418#define JRSTA_SSRC_NONE 0x00000000
419#define JRSTA_SSRC_CCB_ERROR 0x20000000
420#define JRSTA_SSRC_JUMP_HALT_USER 0x30000000
421#define JRSTA_SSRC_DECO 0x40000000
422#define JRSTA_SSRC_JRERROR 0x60000000
423#define JRSTA_SSRC_JUMP_HALT_CC 0x70000000
424
425#define JRSTA_DECOERR_JUMP 0x08000000
426#define JRSTA_DECOERR_INDEX_SHIFT 8
427#define JRSTA_DECOERR_INDEX_MASK 0xff00
428#define JRSTA_DECOERR_ERROR_MASK 0x00ff
429
430#define JRSTA_DECOERR_NONE 0x00
431#define JRSTA_DECOERR_LINKLEN 0x01
432#define JRSTA_DECOERR_LINKPTR 0x02
433#define JRSTA_DECOERR_JRCTRL 0x03
434#define JRSTA_DECOERR_DESCCMD 0x04
435#define JRSTA_DECOERR_ORDER 0x05
436#define JRSTA_DECOERR_KEYCMD 0x06
437#define JRSTA_DECOERR_LOADCMD 0x07
438#define JRSTA_DECOERR_STORECMD 0x08
439#define JRSTA_DECOERR_OPCMD 0x09
440#define JRSTA_DECOERR_FIFOLDCMD 0x0a
441#define JRSTA_DECOERR_FIFOSTCMD 0x0b
442#define JRSTA_DECOERR_MOVECMD 0x0c
443#define JRSTA_DECOERR_JUMPCMD 0x0d
444#define JRSTA_DECOERR_MATHCMD 0x0e
445#define JRSTA_DECOERR_SHASHCMD 0x0f
446#define JRSTA_DECOERR_SEQCMD 0x10
447#define JRSTA_DECOERR_DECOINTERNAL 0x11
448#define JRSTA_DECOERR_SHDESCHDR 0x12
449#define JRSTA_DECOERR_HDRLEN 0x13
450#define JRSTA_DECOERR_BURSTER 0x14
451#define JRSTA_DECOERR_DESCSIGNATURE 0x15
452#define JRSTA_DECOERR_DMA 0x16
453#define JRSTA_DECOERR_BURSTFIFO 0x17
454#define JRSTA_DECOERR_JRRESET 0x1a
455#define JRSTA_DECOERR_JOBFAIL 0x1b
456#define JRSTA_DECOERR_DNRERR 0x80
457#define JRSTA_DECOERR_UNDEFPCL 0x81
458#define JRSTA_DECOERR_PDBERR 0x82
459#define JRSTA_DECOERR_ANRPLY_LATE 0x83
460#define JRSTA_DECOERR_ANRPLY_REPLAY 0x84
461#define JRSTA_DECOERR_SEQOVF 0x85
462#define JRSTA_DECOERR_INVSIGN 0x86
463#define JRSTA_DECOERR_DSASIGN 0x87
464
465#define JRSTA_CCBERR_JUMP 0x08000000
466#define JRSTA_CCBERR_INDEX_MASK 0xff00
467#define JRSTA_CCBERR_INDEX_SHIFT 8
468#define JRSTA_CCBERR_CHAID_MASK 0x00f0
469#define JRSTA_CCBERR_CHAID_SHIFT 4
470#define JRSTA_CCBERR_ERRID_MASK 0x000f
471
472#define JRSTA_CCBERR_CHAID_AES (0x01 << JRSTA_CCBERR_CHAID_SHIFT)
473#define JRSTA_CCBERR_CHAID_DES (0x02 << JRSTA_CCBERR_CHAID_SHIFT)
474#define JRSTA_CCBERR_CHAID_ARC4 (0x03 << JRSTA_CCBERR_CHAID_SHIFT)
475#define JRSTA_CCBERR_CHAID_MD (0x04 << JRSTA_CCBERR_CHAID_SHIFT)
476#define JRSTA_CCBERR_CHAID_RNG (0x05 << JRSTA_CCBERR_CHAID_SHIFT)
477#define JRSTA_CCBERR_CHAID_SNOW (0x06 << JRSTA_CCBERR_CHAID_SHIFT)
478#define JRSTA_CCBERR_CHAID_KASUMI (0x07 << JRSTA_CCBERR_CHAID_SHIFT)
479#define JRSTA_CCBERR_CHAID_PK (0x08 << JRSTA_CCBERR_CHAID_SHIFT)
480#define JRSTA_CCBERR_CHAID_CRC (0x09 << JRSTA_CCBERR_CHAID_SHIFT)
481
482#define JRSTA_CCBERR_ERRID_NONE 0x00
483#define JRSTA_CCBERR_ERRID_MODE 0x01
484#define JRSTA_CCBERR_ERRID_DATASIZ 0x02
485#define JRSTA_CCBERR_ERRID_KEYSIZ 0x03
486#define JRSTA_CCBERR_ERRID_PKAMEMSZ 0x04
487#define JRSTA_CCBERR_ERRID_PKBMEMSZ 0x05
488#define JRSTA_CCBERR_ERRID_SEQUENCE 0x06
489#define JRSTA_CCBERR_ERRID_PKDIVZRO 0x07
490#define JRSTA_CCBERR_ERRID_PKMODEVN 0x08
491#define JRSTA_CCBERR_ERRID_KEYPARIT 0x09
492#define JRSTA_CCBERR_ERRID_ICVCHK 0x0a
493#define JRSTA_CCBERR_ERRID_HARDWARE 0x0b
494#define JRSTA_CCBERR_ERRID_CCMAAD 0x0c
495#define JRSTA_CCBERR_ERRID_INVCHA 0x0f
496
497#define JRINT_ERR_INDEX_MASK 0x3fff0000
498#define JRINT_ERR_INDEX_SHIFT 16
499#define JRINT_ERR_TYPE_MASK 0xf00
500#define JRINT_ERR_TYPE_SHIFT 8
501#define JRINT_ERR_HALT_MASK 0xc
502#define JRINT_ERR_HALT_SHIFT 2
503#define JRINT_ERR_HALT_INPROGRESS 0x4
504#define JRINT_ERR_HALT_COMPLETE 0x8
505#define JRINT_JR_ERROR 0x02
506#define JRINT_JR_INT 0x01
507
508#define JRINT_ERR_TYPE_WRITE 1
509#define JRINT_ERR_TYPE_BAD_INPADDR 3
510#define JRINT_ERR_TYPE_BAD_OUTADDR 4
511#define JRINT_ERR_TYPE_INV_INPWRT 5
512#define JRINT_ERR_TYPE_INV_OUTWRT 6
513#define JRINT_ERR_TYPE_RESET 7
514#define JRINT_ERR_TYPE_REMOVE_OFL 8
515#define JRINT_ERR_TYPE_ADD_OFL 9
516
517#define JRCFG_SOE 0x04
518#define JRCFG_ICEN 0x02
519#define JRCFG_IMSK 0x01
520#define JRCFG_ICDCT_SHIFT 8
521#define JRCFG_ICTT_SHIFT 16
522
523#define JRCR_RESET 0x01
524
525/*
526 * caam_assurance - Assurance Controller View
527 * base + 0x6000 padded out to 0x1000
528 */
529
530struct rtic_element {
531 u64 address;
532 u32 rsvd;
533 u32 length;
534};
535
536struct rtic_block {
537 struct rtic_element element[2];
538};
539
540struct rtic_memhash {
541 u32 memhash_be[32];
542 u32 memhash_le[32];
543};
544
545struct caam_assurance {
546 /* Status/Command/Watchdog */
547 u32 rsvd1;
548 u32 status; /* RSTA - Status */
549 u32 rsvd2;
550 u32 cmd; /* RCMD - Command */
551 u32 rsvd3;
552 u32 ctrl; /* RCTL - Control */
553 u32 rsvd4;
554 u32 throttle; /* RTHR - Throttle */
555 u32 rsvd5[2];
556 u64 watchdog; /* RWDOG - Watchdog Timer */
557 u32 rsvd6;
558 u32 rend; /* REND - Endian corrections */
559 u32 rsvd7[50];
560
561 /* Block access/configuration @ 100/110/120/130 */
562 struct rtic_block memblk[4]; /* Memory Blocks A-D */
563 u32 rsvd8[32];
564
565 /* Block hashes @ 200/300/400/500 */
566 struct rtic_memhash hash[4]; /* Block hash values A-D */
567 u32 rsvd_3[640];
568};
569
570/*
571 * caam_queue_if - QI configuration and control
572 * starts base + 0x7000, padded out to 0x1000 long
573 */
574
575struct caam_queue_if {
576 u32 qi_control_hi; /* QICTL - QI Control */
577 u32 qi_control_lo;
578 u32 rsvd1;
579 u32 qi_status; /* QISTA - QI Status */
580 u32 qi_deq_cfg_hi; /* QIDQC - QI Dequeue Configuration */
581 u32 qi_deq_cfg_lo;
582 u32 qi_enq_cfg_hi; /* QISEQC - QI Enqueue Command */
583 u32 qi_enq_cfg_lo;
584 u32 rsvd2[1016];
585};
586
587/* QI control bits - low word */
588#define QICTL_DQEN 0x01 /* Enable frame pop */
589#define QICTL_STOP 0x02 /* Stop dequeue/enqueue */
590#define QICTL_SOE 0x04 /* Stop on error */
591
592/* QI control bits - high word */
593#define QICTL_MBSI 0x01
594#define QICTL_MHWSI 0x02
595#define QICTL_MWSI 0x04
596#define QICTL_MDWSI 0x08
597#define QICTL_CBSI 0x10 /* CtrlDataByteSwapInput */
598#define QICTL_CHWSI 0x20 /* CtrlDataHalfSwapInput */
599#define QICTL_CWSI 0x40 /* CtrlDataWordSwapInput */
600#define QICTL_CDWSI 0x80 /* CtrlDataDWordSwapInput */
601#define QICTL_MBSO 0x0100
602#define QICTL_MHWSO 0x0200
603#define QICTL_MWSO 0x0400
604#define QICTL_MDWSO 0x0800
605#define QICTL_CBSO 0x1000 /* CtrlDataByteSwapOutput */
606#define QICTL_CHWSO 0x2000 /* CtrlDataHalfSwapOutput */
607#define QICTL_CWSO 0x4000 /* CtrlDataWordSwapOutput */
608#define QICTL_CDWSO 0x8000 /* CtrlDataDWordSwapOutput */
609#define QICTL_DMBS 0x010000
610#define QICTL_EPO 0x020000
611
612/* QI status bits */
613#define QISTA_PHRDERR 0x01 /* PreHeader Read Error */
614#define QISTA_CFRDERR 0x02 /* Compound Frame Read Error */
615#define QISTA_OFWRERR 0x04 /* Output Frame Read Error */
616#define QISTA_BPDERR 0x08 /* Buffer Pool Depleted */
617#define QISTA_BTSERR 0x10 /* Buffer Undersize */
618#define QISTA_CFWRERR 0x20 /* Compound Frame Write Err */
619#define QISTA_STOPD 0x80000000 /* QI Stopped (see QICTL) */
620
621/* deco_sg_table - DECO view of scatter/gather table */
622struct deco_sg_table {
623 u64 addr; /* Segment Address */
624 u32 elen; /* E, F bits + 30-bit length */
625 u32 bpid_offset; /* Buffer Pool ID + 16-bit length */
626};
627
628/*
629 * caam_deco - descriptor controller - CHA cluster block
630 *
631 * Only accessible when direct DECO access is turned on
632 * (done in DECORR, via MID programmed in DECOxMID
633 *
634 * 5 typical, base + 0x8000/9000/a000/b000
635 * Padded out to 0x1000 long
636 */
637struct caam_deco {
638 u32 rsvd1;
639 u32 cls1_mode; /* CxC1MR - Class 1 Mode */
640 u32 rsvd2;
641 u32 cls1_keysize; /* CxC1KSR - Class 1 Key Size */
642 u32 cls1_datasize_hi; /* CxC1DSR - Class 1 Data Size */
643 u32 cls1_datasize_lo;
644 u32 rsvd3;
645 u32 cls1_icvsize; /* CxC1ICVSR - Class 1 ICV size */
646 u32 rsvd4[5];
647 u32 cha_ctrl; /* CCTLR - CHA control */
648 u32 rsvd5;
649 u32 irq_crtl; /* CxCIRQ - CCB interrupt done/error/clear */
650 u32 rsvd6;
651 u32 clr_written; /* CxCWR - Clear-Written */
652 u32 ccb_status_hi; /* CxCSTA - CCB Status/Error */
653 u32 ccb_status_lo;
654 u32 rsvd7[3];
655 u32 aad_size; /* CxAADSZR - Current AAD Size */
656 u32 rsvd8;
657 u32 cls1_iv_size; /* CxC1IVSZR - Current Class 1 IV Size */
658 u32 rsvd9[7];
659 u32 pkha_a_size; /* PKASZRx - Size of PKHA A */
660 u32 rsvd10;
661 u32 pkha_b_size; /* PKBSZRx - Size of PKHA B */
662 u32 rsvd11;
663 u32 pkha_n_size; /* PKNSZRx - Size of PKHA N */
664 u32 rsvd12;
665 u32 pkha_e_size; /* PKESZRx - Size of PKHA E */
666 u32 rsvd13[24];
667 u32 cls1_ctx[16]; /* CxC1CTXR - Class 1 Context @100 */
668 u32 rsvd14[48];
669 u32 cls1_key[8]; /* CxC1KEYR - Class 1 Key @200 */
670 u32 rsvd15[121];
671 u32 cls2_mode; /* CxC2MR - Class 2 Mode */
672 u32 rsvd16;
673 u32 cls2_keysize; /* CxX2KSR - Class 2 Key Size */
674 u32 cls2_datasize_hi; /* CxC2DSR - Class 2 Data Size */
675 u32 cls2_datasize_lo;
676 u32 rsvd17;
677 u32 cls2_icvsize; /* CxC2ICVSZR - Class 2 ICV Size */
678 u32 rsvd18[56];
679 u32 cls2_ctx[18]; /* CxC2CTXR - Class 2 Context @500 */
680 u32 rsvd19[46];
681 u32 cls2_key[32]; /* CxC2KEYR - Class2 Key @600 */
682 u32 rsvd20[84];
683 u32 inp_infofifo_hi; /* CxIFIFO - Input Info FIFO @7d0 */
684 u32 inp_infofifo_lo;
685 u32 rsvd21[2];
686 u64 inp_datafifo; /* CxDFIFO - Input Data FIFO */
687 u32 rsvd22[2];
688 u64 out_datafifo; /* CxOFIFO - Output Data FIFO */
689 u32 rsvd23[2];
690 u32 jr_ctl_hi; /* CxJRR - JobR Control Register @800 */
691 u32 jr_ctl_lo;
692 u64 jr_descaddr; /* CxDADR - JobR Descriptor Address */
693 u32 op_status_hi; /* DxOPSTA - DECO Operation Status */
694 u32 op_status_lo;
695 u32 rsvd24[2];
696 u32 liodn; /* DxLSR - DECO LIODN Status - non-seq */
697 u32 td_liodn; /* DxLSR - DECO LIODN Status - trustdesc */
698 u32 rsvd26[6];
699 u64 math[4]; /* DxMTH - Math register */
700 u32 rsvd27[8];
701 struct deco_sg_table gthr_tbl[4]; /* DxGTR - Gather Tables */
702 u32 rsvd28[16];
703 struct deco_sg_table sctr_tbl[4]; /* DxSTR - Scatter Tables */
704 u32 rsvd29[48];
705 u32 descbuf[64]; /* DxDESB - Descriptor buffer */
706 u32 rsvd30[320];
707};
708
709/*
710 * Current top-level view of memory map is:
711 *
712 * 0x0000 - 0x0fff - CAAM Top-Level Control
713 * 0x1000 - 0x1fff - Job Ring 0
714 * 0x2000 - 0x2fff - Job Ring 1
715 * 0x3000 - 0x3fff - Job Ring 2
716 * 0x4000 - 0x4fff - Job Ring 3
717 * 0x5000 - 0x5fff - (unused)
718 * 0x6000 - 0x6fff - Assurance Controller
719 * 0x7000 - 0x7fff - Queue Interface
720 * 0x8000 - 0x8fff - DECO-CCB 0
721 * 0x9000 - 0x9fff - DECO-CCB 1
722 * 0xa000 - 0xafff - DECO-CCB 2
723 * 0xb000 - 0xbfff - DECO-CCB 3
724 * 0xc000 - 0xcfff - DECO-CCB 4
725 *
726 * caam_full describes the full register view of CAAM if useful,
727 * although many configurations may choose to implement parts of
728 * the register map separately, in differing privilege regions
729 */
730struct caam_full {
731 struct caam_ctrl __iomem ctrl;
732 struct caam_job_ring jr[4];
733 u64 rsvd[512];
734 struct caam_assurance assure;
735 struct caam_queue_if qi;
Kim Phillips8e8ec592011-03-13 16:54:26 +0800736};
737
738#endif /* REGS_H */