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1 /*
2  * Copyright (c) 2014 Broadcom Corporation
3  *
4  * Permission to use, copy, modify, and/or distribute this software for any
5  * purpose with or without fee is hereby granted, provided that the above
6  * copyright notice and this permission notice appear in all copies.
7  *
8  * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
9  * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
10  * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY
11  * SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
12  * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN ACTION
13  * OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF OR IN
14  * CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
15  */
16 #include <linux/kernel.h>
17 #include <linux/delay.h>
18 #include <linux/list.h>
19 #include <linux/ssb/ssb_regs.h>
20 #include <linux/bcma/bcma.h>
21 #include <linux/bcma/bcma_regs.h>
22
23 #include <defs.h>
24 #include <soc.h>
25 #include <brcm_hw_ids.h>
26 #include <brcmu_utils.h>
27 #include <chipcommon.h>
28 #include "debug.h"
29 #include "chip.h"
30
31 /* SOC Interconnect types (aka chip types) */
32 #define SOCI_SB         0
33 #define SOCI_AI         1
34
35 /* PL-368 DMP definitions */
36 #define DMP_DESC_TYPE_MSK       0x0000000F
37 #define  DMP_DESC_EMPTY         0x00000000
38 #define  DMP_DESC_VALID         0x00000001
39 #define  DMP_DESC_COMPONENT     0x00000001
40 #define  DMP_DESC_MASTER_PORT   0x00000003
41 #define  DMP_DESC_ADDRESS       0x00000005
42 #define  DMP_DESC_ADDRSIZE_GT32 0x00000008
43 #define  DMP_DESC_EOT           0x0000000F
44
45 #define DMP_COMP_DESIGNER       0xFFF00000
46 #define DMP_COMP_DESIGNER_S     20
47 #define DMP_COMP_PARTNUM        0x000FFF00
48 #define DMP_COMP_PARTNUM_S      8
49 #define DMP_COMP_CLASS          0x000000F0
50 #define DMP_COMP_CLASS_S        4
51 #define DMP_COMP_REVISION       0xFF000000
52 #define DMP_COMP_REVISION_S     24
53 #define DMP_COMP_NUM_SWRAP      0x00F80000
54 #define DMP_COMP_NUM_SWRAP_S    19
55 #define DMP_COMP_NUM_MWRAP      0x0007C000
56 #define DMP_COMP_NUM_MWRAP_S    14
57 #define DMP_COMP_NUM_SPORT      0x00003E00
58 #define DMP_COMP_NUM_SPORT_S    9
59 #define DMP_COMP_NUM_MPORT      0x000001F0
60 #define DMP_COMP_NUM_MPORT_S    4
61
62 #define DMP_MASTER_PORT_UID     0x0000FF00
63 #define DMP_MASTER_PORT_UID_S   8
64 #define DMP_MASTER_PORT_NUM     0x000000F0
65 #define DMP_MASTER_PORT_NUM_S   4
66
67 #define DMP_SLAVE_ADDR_BASE     0xFFFFF000
68 #define DMP_SLAVE_ADDR_BASE_S   12
69 #define DMP_SLAVE_PORT_NUM      0x00000F00
70 #define DMP_SLAVE_PORT_NUM_S    8
71 #define DMP_SLAVE_TYPE          0x000000C0
72 #define DMP_SLAVE_TYPE_S        6
73 #define  DMP_SLAVE_TYPE_SLAVE   0
74 #define  DMP_SLAVE_TYPE_BRIDGE  1
75 #define  DMP_SLAVE_TYPE_SWRAP   2
76 #define  DMP_SLAVE_TYPE_MWRAP   3
77 #define DMP_SLAVE_SIZE_TYPE     0x00000030
78 #define DMP_SLAVE_SIZE_TYPE_S   4
79 #define  DMP_SLAVE_SIZE_4K      0
80 #define  DMP_SLAVE_SIZE_8K      1
81 #define  DMP_SLAVE_SIZE_16K     2
82 #define  DMP_SLAVE_SIZE_DESC    3
83
84 /* EROM CompIdentB */
85 #define CIB_REV_MASK            0xff000000
86 #define CIB_REV_SHIFT           24
87
88 /* ARM CR4 core specific control flag bits */
89 #define ARMCR4_BCMA_IOCTL_CPUHALT       0x0020
90
91 /* D11 core specific control flag bits */
92 #define D11_BCMA_IOCTL_PHYCLOCKEN       0x0004
93 #define D11_BCMA_IOCTL_PHYRESET         0x0008
94
95 /* chip core base & ramsize */
96 /* bcm4329 */
97 /* SDIO device core, ID 0x829 */
98 #define BCM4329_CORE_BUS_BASE           0x18011000
99 /* internal memory core, ID 0x80e */
100 #define BCM4329_CORE_SOCRAM_BASE        0x18003000
101 /* ARM Cortex M3 core, ID 0x82a */
102 #define BCM4329_CORE_ARM_BASE           0x18002000
103 #define BCM4329_RAMSIZE                 0x48000
104 /* bcm43143 */
105 #define BCM43143_RAMSIZE                0x70000
106
107 #define CORE_SB(base, field) \
108                 (base + SBCONFIGOFF + offsetof(struct sbconfig, field))
109 #define SBCOREREV(sbidh) \
110         ((((sbidh) & SSB_IDHIGH_RCHI) >> SSB_IDHIGH_RCHI_SHIFT) | \
111           ((sbidh) & SSB_IDHIGH_RCLO))
112
113 struct sbconfig {
114         u32 PAD[2];
115         u32 sbipsflag;  /* initiator port ocp slave flag */
116         u32 PAD[3];
117         u32 sbtpsflag;  /* target port ocp slave flag */
118         u32 PAD[11];
119         u32 sbtmerrloga;        /* (sonics >= 2.3) */
120         u32 PAD;
121         u32 sbtmerrlog; /* (sonics >= 2.3) */
122         u32 PAD[3];
123         u32 sbadmatch3; /* address match3 */
124         u32 PAD;
125         u32 sbadmatch2; /* address match2 */
126         u32 PAD;
127         u32 sbadmatch1; /* address match1 */
128         u32 PAD[7];
129         u32 sbimstate;  /* initiator agent state */
130         u32 sbintvec;   /* interrupt mask */
131         u32 sbtmstatelow;       /* target state */
132         u32 sbtmstatehigh;      /* target state */
133         u32 sbbwa0;             /* bandwidth allocation table0 */
134         u32 PAD;
135         u32 sbimconfiglow;      /* initiator configuration */
136         u32 sbimconfighigh;     /* initiator configuration */
137         u32 sbadmatch0; /* address match0 */
138         u32 PAD;
139         u32 sbtmconfiglow;      /* target configuration */
140         u32 sbtmconfighigh;     /* target configuration */
141         u32 sbbconfig;  /* broadcast configuration */
142         u32 PAD;
143         u32 sbbstate;   /* broadcast state */
144         u32 PAD[3];
145         u32 sbactcnfg;  /* activate configuration */
146         u32 PAD[3];
147         u32 sbflagst;   /* current sbflags */
148         u32 PAD[3];
149         u32 sbidlow;            /* identification */
150         u32 sbidhigh;   /* identification */
151 };
152
153 struct brcmf_core_priv {
154         struct brcmf_core pub;
155         u32 wrapbase;
156         struct list_head list;
157         struct brcmf_chip_priv *chip;
158 };
159
160 struct brcmf_chip_priv {
161         struct brcmf_chip pub;
162         const struct brcmf_buscore_ops *ops;
163         void *ctx;
164         /* assured first core is chipcommon, second core is buscore */
165         struct list_head cores;
166         u16 num_cores;
167
168         bool (*iscoreup)(struct brcmf_core_priv *core);
169         void (*coredisable)(struct brcmf_core_priv *core, u32 prereset,
170                             u32 reset);
171         void (*resetcore)(struct brcmf_core_priv *core, u32 prereset, u32 reset,
172                           u32 postreset);
173 };
174
175 static void brcmf_chip_sb_corerev(struct brcmf_chip_priv *ci,
176                                   struct brcmf_core *core)
177 {
178         u32 regdata;
179
180         regdata = ci->ops->read32(ci->ctx, CORE_SB(core->base, sbidhigh));
181         core->rev = SBCOREREV(regdata);
182 }
183
184 static bool brcmf_chip_sb_iscoreup(struct brcmf_core_priv *core)
185 {
186         struct brcmf_chip_priv *ci;
187         u32 regdata;
188         u32 address;
189
190         ci = core->chip;
191         address = CORE_SB(core->pub.base, sbtmstatelow);
192         regdata = ci->ops->read32(ci->ctx, address);
193         regdata &= (SSB_TMSLOW_RESET | SSB_TMSLOW_REJECT |
194                     SSB_IMSTATE_REJECT | SSB_TMSLOW_CLOCK);
195         return SSB_TMSLOW_CLOCK == regdata;
196 }
197
198 static bool brcmf_chip_ai_iscoreup(struct brcmf_core_priv *core)
199 {
200         struct brcmf_chip_priv *ci;
201         u32 regdata;
202         bool ret;
203
204         ci = core->chip;
205         regdata = ci->ops->read32(ci->ctx, core->wrapbase + BCMA_IOCTL);
206         ret = (regdata & (BCMA_IOCTL_FGC | BCMA_IOCTL_CLK)) == BCMA_IOCTL_CLK;
207
208         regdata = ci->ops->read32(ci->ctx, core->wrapbase + BCMA_RESET_CTL);
209         ret = ret && ((regdata & BCMA_RESET_CTL_RESET) == 0);
210
211         return ret;
212 }
213
214 static void brcmf_chip_sb_coredisable(struct brcmf_core_priv *core,
215                                       u32 prereset, u32 reset)
216 {
217         struct brcmf_chip_priv *ci;
218         u32 val, base;
219
220         ci = core->chip;
221         base = core->pub.base;
222         val = ci->ops->read32(ci->ctx, CORE_SB(base, sbtmstatelow));
223         if (val & SSB_TMSLOW_RESET)
224                 return;
225
226         val = ci->ops->read32(ci->ctx, CORE_SB(base, sbtmstatelow));
227         if ((val & SSB_TMSLOW_CLOCK) != 0) {
228                 /*
229                  * set target reject and spin until busy is clear
230                  * (preserve core-specific bits)
231                  */
232                 val = ci->ops->read32(ci->ctx, CORE_SB(base, sbtmstatelow));
233                 ci->ops->write32(ci->ctx, CORE_SB(base, sbtmstatelow),
234                                          val | SSB_TMSLOW_REJECT);
235
236                 val = ci->ops->read32(ci->ctx, CORE_SB(base, sbtmstatelow));
237                 udelay(1);
238                 SPINWAIT((ci->ops->read32(ci->ctx, CORE_SB(base, sbtmstatehigh))
239                           & SSB_TMSHIGH_BUSY), 100000);
240
241                 val = ci->ops->read32(ci->ctx, CORE_SB(base, sbtmstatehigh));
242                 if (val & SSB_TMSHIGH_BUSY)
243                         brcmf_err("core state still busy\n");
244
245                 val = ci->ops->read32(ci->ctx, CORE_SB(base, sbidlow));
246                 if (val & SSB_IDLOW_INITIATOR) {
247                         val = ci->ops->read32(ci->ctx,
248                                               CORE_SB(base, sbimstate));
249                         val |= SSB_IMSTATE_REJECT;
250                         ci->ops->write32(ci->ctx,
251                                          CORE_SB(base, sbimstate), val);
252                         val = ci->ops->read32(ci->ctx,
253                                               CORE_SB(base, sbimstate));
254                         udelay(1);
255                         SPINWAIT((ci->ops->read32(ci->ctx,
256                                                   CORE_SB(base, sbimstate)) &
257                                   SSB_IMSTATE_BUSY), 100000);
258                 }
259
260                 /* set reset and reject while enabling the clocks */
261                 val = SSB_TMSLOW_FGC | SSB_TMSLOW_CLOCK |
262                       SSB_TMSLOW_REJECT | SSB_TMSLOW_RESET;
263                 ci->ops->write32(ci->ctx, CORE_SB(base, sbtmstatelow), val);
264                 val = ci->ops->read32(ci->ctx, CORE_SB(base, sbtmstatelow));
265                 udelay(10);
266
267                 /* clear the initiator reject bit */
268                 val = ci->ops->read32(ci->ctx, CORE_SB(base, sbidlow));
269                 if (val & SSB_IDLOW_INITIATOR) {
270                         val = ci->ops->read32(ci->ctx,
271                                               CORE_SB(base, sbimstate));
272                         val &= ~SSB_IMSTATE_REJECT;
273                         ci->ops->write32(ci->ctx,
274                                          CORE_SB(base, sbimstate), val);
275                 }
276         }
277
278         /* leave reset and reject asserted */
279         ci->ops->write32(ci->ctx, CORE_SB(base, sbtmstatelow),
280                          (SSB_TMSLOW_REJECT | SSB_TMSLOW_RESET));
281         udelay(1);
282 }
283
284 static void brcmf_chip_ai_coredisable(struct brcmf_core_priv *core,
285                                       u32 prereset, u32 reset)
286 {
287         struct brcmf_chip_priv *ci;
288         u32 regdata;
289
290         ci = core->chip;
291
292         /* if core is already in reset, skip reset */
293         regdata = ci->ops->read32(ci->ctx, core->wrapbase + BCMA_RESET_CTL);
294         if ((regdata & BCMA_RESET_CTL_RESET) != 0)
295                 goto in_reset_configure;
296
297         /* configure reset */
298         ci->ops->write32(ci->ctx, core->wrapbase + BCMA_IOCTL,
299                          prereset | BCMA_IOCTL_FGC | BCMA_IOCTL_CLK);
300         ci->ops->read32(ci->ctx, core->wrapbase + BCMA_IOCTL);
301
302         /* put in reset */
303         ci->ops->write32(ci->ctx, core->wrapbase + BCMA_RESET_CTL,
304                          BCMA_RESET_CTL_RESET);
305         usleep_range(10, 20);
306
307         /* wait till reset is 1 */
308         SPINWAIT(ci->ops->read32(ci->ctx, core->wrapbase + BCMA_RESET_CTL) !=
309                  BCMA_RESET_CTL_RESET, 300);
310
311 in_reset_configure:
312         /* in-reset configure */
313         ci->ops->write32(ci->ctx, core->wrapbase + BCMA_IOCTL,
314                          reset | BCMA_IOCTL_FGC | BCMA_IOCTL_CLK);
315         ci->ops->read32(ci->ctx, core->wrapbase + BCMA_IOCTL);
316 }
317
318 static void brcmf_chip_sb_resetcore(struct brcmf_core_priv *core, u32 prereset,
319                                     u32 reset, u32 postreset)
320 {
321         struct brcmf_chip_priv *ci;
322         u32 regdata;
323         u32 base;
324
325         ci = core->chip;
326         base = core->pub.base;
327         /*
328          * Must do the disable sequence first to work for
329          * arbitrary current core state.
330          */
331         brcmf_chip_sb_coredisable(core, 0, 0);
332
333         /*
334          * Now do the initialization sequence.
335          * set reset while enabling the clock and
336          * forcing them on throughout the core
337          */
338         ci->ops->write32(ci->ctx, CORE_SB(base, sbtmstatelow),
339                          SSB_TMSLOW_FGC | SSB_TMSLOW_CLOCK |
340                          SSB_TMSLOW_RESET);
341         regdata = ci->ops->read32(ci->ctx, CORE_SB(base, sbtmstatelow));
342         udelay(1);
343
344         /* clear any serror */
345         regdata = ci->ops->read32(ci->ctx, CORE_SB(base, sbtmstatehigh));
346         if (regdata & SSB_TMSHIGH_SERR)
347                 ci->ops->write32(ci->ctx, CORE_SB(base, sbtmstatehigh), 0);
348
349         regdata = ci->ops->read32(ci->ctx, CORE_SB(base, sbimstate));
350         if (regdata & (SSB_IMSTATE_IBE | SSB_IMSTATE_TO)) {
351                 regdata &= ~(SSB_IMSTATE_IBE | SSB_IMSTATE_TO);
352                 ci->ops->write32(ci->ctx, CORE_SB(base, sbimstate), regdata);
353         }
354
355         /* clear reset and allow it to propagate throughout the core */
356         ci->ops->write32(ci->ctx, CORE_SB(base, sbtmstatelow),
357                          SSB_TMSLOW_FGC | SSB_TMSLOW_CLOCK);
358         regdata = ci->ops->read32(ci->ctx, CORE_SB(base, sbtmstatelow));
359         udelay(1);
360
361         /* leave clock enabled */
362         ci->ops->write32(ci->ctx, CORE_SB(base, sbtmstatelow),
363                          SSB_TMSLOW_CLOCK);
364         regdata = ci->ops->read32(ci->ctx, CORE_SB(base, sbtmstatelow));
365         udelay(1);
366 }
367
368 static void brcmf_chip_ai_resetcore(struct brcmf_core_priv *core, u32 prereset,
369                                     u32 reset, u32 postreset)
370 {
371         struct brcmf_chip_priv *ci;
372         int count;
373
374         ci = core->chip;
375
376         /* must disable first to work for arbitrary current core state */
377         brcmf_chip_ai_coredisable(core, prereset, reset);
378
379         count = 0;
380         while (ci->ops->read32(ci->ctx, core->wrapbase + BCMA_RESET_CTL) &
381                BCMA_RESET_CTL_RESET) {
382                 ci->ops->write32(ci->ctx, core->wrapbase + BCMA_RESET_CTL, 0);
383                 count++;
384                 if (count > 50)
385                         break;
386                 usleep_range(40, 60);
387         }
388
389         ci->ops->write32(ci->ctx, core->wrapbase + BCMA_IOCTL,
390                          postreset | BCMA_IOCTL_CLK);
391         ci->ops->read32(ci->ctx, core->wrapbase + BCMA_IOCTL);
392 }
393
394 static char *brcmf_chip_name(uint chipid, char *buf, uint len)
395 {
396         const char *fmt;
397
398         fmt = ((chipid > 0xa000) || (chipid < 0x4000)) ? "%d" : "%x";
399         snprintf(buf, len, fmt, chipid);
400         return buf;
401 }
402
403 static struct brcmf_core *brcmf_chip_add_core(struct brcmf_chip_priv *ci,
404                                               u16 coreid, u32 base,
405                                               u32 wrapbase)
406 {
407         struct brcmf_core_priv *core;
408
409         core = kzalloc(sizeof(*core), GFP_KERNEL);
410         if (!core)
411                 return ERR_PTR(-ENOMEM);
412
413         core->pub.id = coreid;
414         core->pub.base = base;
415         core->chip = ci;
416         core->wrapbase = wrapbase;
417
418         list_add_tail(&core->list, &ci->cores);
419         return &core->pub;
420 }
421
422 #ifdef DEBUG
423 /* safety check for chipinfo */
424 static int brcmf_chip_cores_check(struct brcmf_chip_priv *ci)
425 {
426         struct brcmf_core_priv *core;
427         bool need_socram = false;
428         bool has_socram = false;
429         int idx = 1;
430
431         list_for_each_entry(core, &ci->cores, list) {
432                 brcmf_dbg(INFO, " [%-2d] core 0x%x:%-2d base 0x%08x wrap 0x%08x\n",
433                           idx++, core->pub.id, core->pub.rev, core->pub.base,
434                           core->wrapbase);
435
436                 switch (core->pub.id) {
437                 case BCMA_CORE_ARM_CM3:
438                         need_socram = true;
439                         break;
440                 case BCMA_CORE_INTERNAL_MEM:
441                         has_socram = true;
442                         break;
443                 case BCMA_CORE_ARM_CR4:
444                         if (ci->pub.rambase == 0) {
445                                 brcmf_err("RAM base not provided with ARM CR4 core\n");
446                                 return -ENOMEM;
447                         }
448                         break;
449                 default:
450                         break;
451                 }
452         }
453
454         /* check RAM core presence for ARM CM3 core */
455         if (need_socram && !has_socram) {
456                 brcmf_err("RAM core not provided with ARM CM3 core\n");
457                 return -ENODEV;
458         }
459         return 0;
460 }
461 #else   /* DEBUG */
462 static inline int brcmf_chip_cores_check(struct brcmf_chip_priv *ci)
463 {
464         return 0;
465 }
466 #endif
467
468 static void brcmf_chip_get_raminfo(struct brcmf_chip_priv *ci)
469 {
470         switch (ci->pub.chip) {
471         case BRCM_CC_4329_CHIP_ID:
472                 ci->pub.ramsize = BCM4329_RAMSIZE;
473                 break;
474         case BRCM_CC_43143_CHIP_ID:
475                 ci->pub.ramsize = BCM43143_RAMSIZE;
476                 break;
477         case BRCM_CC_43241_CHIP_ID:
478                 ci->pub.ramsize = 0x90000;
479                 break;
480         case BRCM_CC_4330_CHIP_ID:
481                 ci->pub.ramsize = 0x48000;
482                 break;
483         case BRCM_CC_4334_CHIP_ID:
484         case BRCM_CC_43340_CHIP_ID:
485                 ci->pub.ramsize = 0x80000;
486                 break;
487         case BRCM_CC_4335_CHIP_ID:
488                 ci->pub.ramsize = 0xc0000;
489                 ci->pub.rambase = 0x180000;
490                 break;
491         case BRCM_CC_43362_CHIP_ID:
492                 ci->pub.ramsize = 0x3c000;
493                 break;
494         case BRCM_CC_4345_CHIP_ID:
495                 ci->pub.ramsize = 0xc8000;
496                 ci->pub.rambase = 0x198000;
497                 break;
498         case BRCM_CC_4339_CHIP_ID:
499         case BRCM_CC_4354_CHIP_ID:
500         case BRCM_CC_4356_CHIP_ID:
501         case BRCM_CC_43567_CHIP_ID:
502         case BRCM_CC_43569_CHIP_ID:
503         case BRCM_CC_43570_CHIP_ID:
504                 ci->pub.ramsize = 0xc0000;
505                 ci->pub.rambase = 0x180000;
506                 break;
507         case BRCM_CC_43602_CHIP_ID:
508                 ci->pub.ramsize = 0xf0000;
509                 ci->pub.rambase = 0x180000;
510                 break;
511         default:
512                 brcmf_err("unknown chip: %s\n", ci->pub.name);
513                 break;
514         }
515 }
516
517 static u32 brcmf_chip_dmp_get_desc(struct brcmf_chip_priv *ci, u32 *eromaddr,
518                                    u8 *type)
519 {
520         u32 val;
521
522         /* read next descriptor */
523         val = ci->ops->read32(ci->ctx, *eromaddr);
524         *eromaddr += 4;
525
526         if (!type)
527                 return val;
528
529         /* determine descriptor type */
530         *type = (val & DMP_DESC_TYPE_MSK);
531         if ((*type & ~DMP_DESC_ADDRSIZE_GT32) == DMP_DESC_ADDRESS)
532                 *type = DMP_DESC_ADDRESS;
533
534         return val;
535 }
536
537 static int brcmf_chip_dmp_get_regaddr(struct brcmf_chip_priv *ci, u32 *eromaddr,
538                                       u32 *regbase, u32 *wrapbase)
539 {
540         u8 desc;
541         u32 val;
542         u8 mpnum = 0;
543         u8 stype, sztype, wraptype;
544
545         *regbase = 0;
546         *wrapbase = 0;
547
548         val = brcmf_chip_dmp_get_desc(ci, eromaddr, &desc);
549         if (desc == DMP_DESC_MASTER_PORT) {
550                 mpnum = (val & DMP_MASTER_PORT_NUM) >> DMP_MASTER_PORT_NUM_S;
551                 wraptype = DMP_SLAVE_TYPE_MWRAP;
552         } else if (desc == DMP_DESC_ADDRESS) {
553                 /* revert erom address */
554                 *eromaddr -= 4;
555                 wraptype = DMP_SLAVE_TYPE_SWRAP;
556         } else {
557                 *eromaddr -= 4;
558                 return -EILSEQ;
559         }
560
561         do {
562                 /* locate address descriptor */
563                 do {
564                         val = brcmf_chip_dmp_get_desc(ci, eromaddr, &desc);
565                         /* unexpected table end */
566                         if (desc == DMP_DESC_EOT) {
567                                 *eromaddr -= 4;
568                                 return -EFAULT;
569                         }
570                 } while (desc != DMP_DESC_ADDRESS);
571
572                 /* skip upper 32-bit address descriptor */
573                 if (val & DMP_DESC_ADDRSIZE_GT32)
574                         brcmf_chip_dmp_get_desc(ci, eromaddr, NULL);
575
576                 sztype = (val & DMP_SLAVE_SIZE_TYPE) >> DMP_SLAVE_SIZE_TYPE_S;
577
578                 /* next size descriptor can be skipped */
579                 if (sztype == DMP_SLAVE_SIZE_DESC) {
580                         val = brcmf_chip_dmp_get_desc(ci, eromaddr, NULL);
581                         /* skip upper size descriptor if present */
582                         if (val & DMP_DESC_ADDRSIZE_GT32)
583                                 brcmf_chip_dmp_get_desc(ci, eromaddr, NULL);
584                 }
585
586                 /* only look for 4K register regions */
587                 if (sztype != DMP_SLAVE_SIZE_4K)
588                         continue;
589
590                 stype = (val & DMP_SLAVE_TYPE) >> DMP_SLAVE_TYPE_S;
591
592                 /* only regular slave and wrapper */
593                 if (*regbase == 0 && stype == DMP_SLAVE_TYPE_SLAVE)
594                         *regbase = val & DMP_SLAVE_ADDR_BASE;
595                 if (*wrapbase == 0 && stype == wraptype)
596                         *wrapbase = val & DMP_SLAVE_ADDR_BASE;
597         } while (*regbase == 0 || *wrapbase == 0);
598
599         return 0;
600 }
601
602 static
603 int brcmf_chip_dmp_erom_scan(struct brcmf_chip_priv *ci)
604 {
605         struct brcmf_core *core;
606         u32 eromaddr;
607         u8 desc_type = 0;
608         u32 val;
609         u16 id;
610         u8 nmp, nsp, nmw, nsw, rev;
611         u32 base, wrap;
612         int err;
613
614         eromaddr = ci->ops->read32(ci->ctx, CORE_CC_REG(SI_ENUM_BASE, eromptr));
615
616         while (desc_type != DMP_DESC_EOT) {
617                 val = brcmf_chip_dmp_get_desc(ci, &eromaddr, &desc_type);
618                 if (!(val & DMP_DESC_VALID))
619                         continue;
620
621                 if (desc_type == DMP_DESC_EMPTY)
622                         continue;
623
624                 /* need a component descriptor */
625                 if (desc_type != DMP_DESC_COMPONENT)
626                         continue;
627
628                 id = (val & DMP_COMP_PARTNUM) >> DMP_COMP_PARTNUM_S;
629
630                 /* next descriptor must be component as well */
631                 val = brcmf_chip_dmp_get_desc(ci, &eromaddr, &desc_type);
632                 if (WARN_ON((val & DMP_DESC_TYPE_MSK) != DMP_DESC_COMPONENT))
633                         return -EFAULT;
634
635                 /* only look at cores with master port(s) */
636                 nmp = (val & DMP_COMP_NUM_MPORT) >> DMP_COMP_NUM_MPORT_S;
637                 nsp = (val & DMP_COMP_NUM_SPORT) >> DMP_COMP_NUM_SPORT_S;
638                 nmw = (val & DMP_COMP_NUM_MWRAP) >> DMP_COMP_NUM_MWRAP_S;
639                 nsw = (val & DMP_COMP_NUM_SWRAP) >> DMP_COMP_NUM_SWRAP_S;
640                 rev = (val & DMP_COMP_REVISION) >> DMP_COMP_REVISION_S;
641
642                 /* need core with ports */
643                 if (nmw + nsw == 0)
644                         continue;
645
646                 /* try to obtain register address info */
647                 err = brcmf_chip_dmp_get_regaddr(ci, &eromaddr, &base, &wrap);
648                 if (err)
649                         continue;
650
651                 /* finally a core to be added */
652                 core = brcmf_chip_add_core(ci, id, base, wrap);
653                 if (IS_ERR(core))
654                         return PTR_ERR(core);
655
656                 core->rev = rev;
657         }
658
659         return 0;
660 }
661
662 static int brcmf_chip_recognition(struct brcmf_chip_priv *ci)
663 {
664         struct brcmf_core *core;
665         u32 regdata;
666         u32 socitype;
667
668         /* Get CC core rev
669          * Chipid is assume to be at offset 0 from SI_ENUM_BASE
670          * For different chiptypes or old sdio hosts w/o chipcommon,
671          * other ways of recognition should be added here.
672          */
673         regdata = ci->ops->read32(ci->ctx, CORE_CC_REG(SI_ENUM_BASE, chipid));
674         ci->pub.chip = regdata & CID_ID_MASK;
675         ci->pub.chiprev = (regdata & CID_REV_MASK) >> CID_REV_SHIFT;
676         socitype = (regdata & CID_TYPE_MASK) >> CID_TYPE_SHIFT;
677
678         brcmf_chip_name(ci->pub.chip, ci->pub.name, sizeof(ci->pub.name));
679         brcmf_dbg(INFO, "found %s chip: BCM%s, rev=%d\n",
680                   socitype == SOCI_SB ? "SB" : "AXI", ci->pub.name,
681                   ci->pub.chiprev);
682
683         if (socitype == SOCI_SB) {
684                 if (ci->pub.chip != BRCM_CC_4329_CHIP_ID) {
685                         brcmf_err("SB chip is not supported\n");
686                         return -ENODEV;
687                 }
688                 ci->iscoreup = brcmf_chip_sb_iscoreup;
689                 ci->coredisable = brcmf_chip_sb_coredisable;
690                 ci->resetcore = brcmf_chip_sb_resetcore;
691
692                 core = brcmf_chip_add_core(ci, BCMA_CORE_CHIPCOMMON,
693                                            SI_ENUM_BASE, 0);
694                 brcmf_chip_sb_corerev(ci, core);
695                 core = brcmf_chip_add_core(ci, BCMA_CORE_SDIO_DEV,
696                                            BCM4329_CORE_BUS_BASE, 0);
697                 brcmf_chip_sb_corerev(ci, core);
698                 core = brcmf_chip_add_core(ci, BCMA_CORE_INTERNAL_MEM,
699                                            BCM4329_CORE_SOCRAM_BASE, 0);
700                 brcmf_chip_sb_corerev(ci, core);
701                 core = brcmf_chip_add_core(ci, BCMA_CORE_ARM_CM3,
702                                            BCM4329_CORE_ARM_BASE, 0);
703                 brcmf_chip_sb_corerev(ci, core);
704
705                 core = brcmf_chip_add_core(ci, BCMA_CORE_80211, 0x18001000, 0);
706                 brcmf_chip_sb_corerev(ci, core);
707         } else if (socitype == SOCI_AI) {
708                 ci->iscoreup = brcmf_chip_ai_iscoreup;
709                 ci->coredisable = brcmf_chip_ai_coredisable;
710                 ci->resetcore = brcmf_chip_ai_resetcore;
711
712                 brcmf_chip_dmp_erom_scan(ci);
713         } else {
714                 brcmf_err("chip backplane type %u is not supported\n",
715                           socitype);
716                 return -ENODEV;
717         }
718
719         brcmf_chip_get_raminfo(ci);
720
721         return brcmf_chip_cores_check(ci);
722 }
723
724 static void brcmf_chip_disable_arm(struct brcmf_chip_priv *chip, u16 id)
725 {
726         struct brcmf_core *core;
727         struct brcmf_core_priv *cr4;
728         u32 val;
729
730
731         core = brcmf_chip_get_core(&chip->pub, id);
732         if (!core)
733                 return;
734
735         switch (id) {
736         case BCMA_CORE_ARM_CM3:
737                 brcmf_chip_coredisable(core, 0, 0);
738                 break;
739         case BCMA_CORE_ARM_CR4:
740                 cr4 = container_of(core, struct brcmf_core_priv, pub);
741
742                 /* clear all IOCTL bits except HALT bit */
743                 val = chip->ops->read32(chip->ctx, cr4->wrapbase + BCMA_IOCTL);
744                 val &= ARMCR4_BCMA_IOCTL_CPUHALT;
745                 brcmf_chip_resetcore(core, val, ARMCR4_BCMA_IOCTL_CPUHALT,
746                                      ARMCR4_BCMA_IOCTL_CPUHALT);
747                 break;
748         default:
749                 brcmf_err("unknown id: %u\n", id);
750                 break;
751         }
752 }
753
754 static int brcmf_chip_setup(struct brcmf_chip_priv *chip)
755 {
756         struct brcmf_chip *pub;
757         struct brcmf_core_priv *cc;
758         u32 base;
759         u32 val;
760         int ret = 0;
761
762         pub = &chip->pub;
763         cc = list_first_entry(&chip->cores, struct brcmf_core_priv, list);
764         base = cc->pub.base;
765
766         /* get chipcommon capabilites */
767         pub->cc_caps = chip->ops->read32(chip->ctx,
768                                          CORE_CC_REG(base, capabilities));
769
770         /* get pmu caps & rev */
771         if (pub->cc_caps & CC_CAP_PMU) {
772                 val = chip->ops->read32(chip->ctx,
773                                         CORE_CC_REG(base, pmucapabilities));
774                 pub->pmurev = val & PCAP_REV_MASK;
775                 pub->pmucaps = val;
776         }
777
778         brcmf_dbg(INFO, "ccrev=%d, pmurev=%d, pmucaps=0x%x\n",
779                   cc->pub.rev, pub->pmurev, pub->pmucaps);
780
781         /* execute bus core specific setup */
782         if (chip->ops->setup)
783                 ret = chip->ops->setup(chip->ctx, pub);
784
785         /*
786          * Make sure any on-chip ARM is off (in case strapping is wrong),
787          * or downloaded code was already running.
788          */
789         brcmf_chip_disable_arm(chip, BCMA_CORE_ARM_CM3);
790         brcmf_chip_disable_arm(chip, BCMA_CORE_ARM_CR4);
791         return ret;
792 }
793
794 struct brcmf_chip *brcmf_chip_attach(void *ctx,
795                                      const struct brcmf_buscore_ops *ops)
796 {
797         struct brcmf_chip_priv *chip;
798         int err = 0;
799
800         if (WARN_ON(!ops->read32))
801                 err = -EINVAL;
802         if (WARN_ON(!ops->write32))
803                 err = -EINVAL;
804         if (WARN_ON(!ops->prepare))
805                 err = -EINVAL;
806         if (WARN_ON(!ops->exit_dl))
807                 err = -EINVAL;
808         if (err < 0)
809                 return ERR_PTR(-EINVAL);
810
811         chip = kzalloc(sizeof(*chip), GFP_KERNEL);
812         if (!chip)
813                 return ERR_PTR(-ENOMEM);
814
815         INIT_LIST_HEAD(&chip->cores);
816         chip->num_cores = 0;
817         chip->ops = ops;
818         chip->ctx = ctx;
819
820         err = ops->prepare(ctx);
821         if (err < 0)
822                 goto fail;
823
824         err = brcmf_chip_recognition(chip);
825         if (err < 0)
826                 goto fail;
827
828         err = brcmf_chip_setup(chip);
829         if (err < 0)
830                 goto fail;
831
832         return &chip->pub;
833
834 fail:
835         brcmf_chip_detach(&chip->pub);
836         return ERR_PTR(err);
837 }
838
839 void brcmf_chip_detach(struct brcmf_chip *pub)
840 {
841         struct brcmf_chip_priv *chip;
842         struct brcmf_core_priv *core;
843         struct brcmf_core_priv *tmp;
844
845         chip = container_of(pub, struct brcmf_chip_priv, pub);
846         list_for_each_entry_safe(core, tmp, &chip->cores, list) {
847                 list_del(&core->list);
848                 kfree(core);
849         }
850         kfree(chip);
851 }
852
853 struct brcmf_core *brcmf_chip_get_core(struct brcmf_chip *pub, u16 coreid)
854 {
855         struct brcmf_chip_priv *chip;
856         struct brcmf_core_priv *core;
857
858         chip = container_of(pub, struct brcmf_chip_priv, pub);
859         list_for_each_entry(core, &chip->cores, list)
860                 if (core->pub.id == coreid)
861                         return &core->pub;
862
863         return NULL;
864 }
865
866 struct brcmf_core *brcmf_chip_get_chipcommon(struct brcmf_chip *pub)
867 {
868         struct brcmf_chip_priv *chip;
869         struct brcmf_core_priv *cc;
870
871         chip = container_of(pub, struct brcmf_chip_priv, pub);
872         cc = list_first_entry(&chip->cores, struct brcmf_core_priv, list);
873         if (WARN_ON(!cc || cc->pub.id != BCMA_CORE_CHIPCOMMON))
874                 return brcmf_chip_get_core(pub, BCMA_CORE_CHIPCOMMON);
875         return &cc->pub;
876 }
877
878 bool brcmf_chip_iscoreup(struct brcmf_core *pub)
879 {
880         struct brcmf_core_priv *core;
881
882         core = container_of(pub, struct brcmf_core_priv, pub);
883         return core->chip->iscoreup(core);
884 }
885
886 void brcmf_chip_coredisable(struct brcmf_core *pub, u32 prereset, u32 reset)
887 {
888         struct brcmf_core_priv *core;
889
890         core = container_of(pub, struct brcmf_core_priv, pub);
891         core->chip->coredisable(core, prereset, reset);
892 }
893
894 void brcmf_chip_resetcore(struct brcmf_core *pub, u32 prereset, u32 reset,
895                           u32 postreset)
896 {
897         struct brcmf_core_priv *core;
898
899         core = container_of(pub, struct brcmf_core_priv, pub);
900         core->chip->resetcore(core, prereset, reset, postreset);
901 }
902
903 static void
904 brcmf_chip_cm3_enterdl(struct brcmf_chip_priv *chip)
905 {
906         struct brcmf_core *core;
907
908         brcmf_chip_disable_arm(chip, BCMA_CORE_ARM_CM3);
909         core = brcmf_chip_get_core(&chip->pub, BCMA_CORE_80211);
910         brcmf_chip_resetcore(core, D11_BCMA_IOCTL_PHYRESET |
911                                    D11_BCMA_IOCTL_PHYCLOCKEN,
912                              D11_BCMA_IOCTL_PHYCLOCKEN,
913                              D11_BCMA_IOCTL_PHYCLOCKEN);
914         core = brcmf_chip_get_core(&chip->pub, BCMA_CORE_INTERNAL_MEM);
915         brcmf_chip_resetcore(core, 0, 0, 0);
916 }
917
918 static bool brcmf_chip_cm3_exitdl(struct brcmf_chip_priv *chip)
919 {
920         struct brcmf_core *core;
921
922         core = brcmf_chip_get_core(&chip->pub, BCMA_CORE_INTERNAL_MEM);
923         if (!brcmf_chip_iscoreup(core)) {
924                 brcmf_err("SOCRAM core is down after reset?\n");
925                 return false;
926         }
927
928         chip->ops->exit_dl(chip->ctx, &chip->pub, 0);
929
930         core = brcmf_chip_get_core(&chip->pub, BCMA_CORE_ARM_CM3);
931         brcmf_chip_resetcore(core, 0, 0, 0);
932
933         return true;
934 }
935
936 static inline void
937 brcmf_chip_cr4_enterdl(struct brcmf_chip_priv *chip)
938 {
939         struct brcmf_core *core;
940
941         brcmf_chip_disable_arm(chip, BCMA_CORE_ARM_CR4);
942
943         core = brcmf_chip_get_core(&chip->pub, BCMA_CORE_80211);
944         brcmf_chip_resetcore(core, D11_BCMA_IOCTL_PHYRESET |
945                                    D11_BCMA_IOCTL_PHYCLOCKEN,
946                              D11_BCMA_IOCTL_PHYCLOCKEN,
947                              D11_BCMA_IOCTL_PHYCLOCKEN);
948 }
949
950 static bool brcmf_chip_cr4_exitdl(struct brcmf_chip_priv *chip, u32 rstvec)
951 {
952         struct brcmf_core *core;
953
954         chip->ops->exit_dl(chip->ctx, &chip->pub, rstvec);
955
956         /* restore ARM */
957         core = brcmf_chip_get_core(&chip->pub, BCMA_CORE_ARM_CR4);
958         brcmf_chip_resetcore(core, ARMCR4_BCMA_IOCTL_CPUHALT, 0, 0);
959
960         return true;
961 }
962
963 void brcmf_chip_enter_download(struct brcmf_chip *pub)
964 {
965         struct brcmf_chip_priv *chip;
966         struct brcmf_core *arm;
967
968         brcmf_dbg(TRACE, "Enter\n");
969
970         chip = container_of(pub, struct brcmf_chip_priv, pub);
971         arm = brcmf_chip_get_core(pub, BCMA_CORE_ARM_CR4);
972         if (arm) {
973                 brcmf_chip_cr4_enterdl(chip);
974                 return;
975         }
976
977         brcmf_chip_cm3_enterdl(chip);
978 }
979
980 bool brcmf_chip_exit_download(struct brcmf_chip *pub, u32 rstvec)
981 {
982         struct brcmf_chip_priv *chip;
983         struct brcmf_core *arm;
984
985         brcmf_dbg(TRACE, "Enter\n");
986
987         chip = container_of(pub, struct brcmf_chip_priv, pub);
988         arm = brcmf_chip_get_core(pub, BCMA_CORE_ARM_CR4);
989         if (arm)
990                 return brcmf_chip_cr4_exitdl(chip, rstvec);
991
992         return brcmf_chip_cm3_exitdl(chip);
993 }
994
995 bool brcmf_chip_sr_capable(struct brcmf_chip *pub)
996 {
997         u32 base, addr, reg, pmu_cc3_mask = ~0;
998         struct brcmf_chip_priv *chip;
999
1000         brcmf_dbg(TRACE, "Enter\n");
1001
1002         /* old chips with PMU version less than 17 don't support save restore */
1003         if (pub->pmurev < 17)
1004                 return false;
1005
1006         base = brcmf_chip_get_chipcommon(pub)->base;
1007         chip = container_of(pub, struct brcmf_chip_priv, pub);
1008
1009         switch (pub->chip) {
1010         case BRCM_CC_4354_CHIP_ID:
1011                 /* explicitly check SR engine enable bit */
1012                 pmu_cc3_mask = BIT(2);
1013                 /* fall-through */
1014         case BRCM_CC_43241_CHIP_ID:
1015         case BRCM_CC_4335_CHIP_ID:
1016         case BRCM_CC_4339_CHIP_ID:
1017                 /* read PMU chipcontrol register 3 */
1018                 addr = CORE_CC_REG(base, chipcontrol_addr);
1019                 chip->ops->write32(chip->ctx, addr, 3);
1020                 addr = CORE_CC_REG(base, chipcontrol_data);
1021                 reg = chip->ops->read32(chip->ctx, addr);
1022                 return (reg & pmu_cc3_mask) != 0;
1023         default:
1024                 addr = CORE_CC_REG(base, pmucapabilities_ext);
1025                 reg = chip->ops->read32(chip->ctx, addr);
1026                 if ((reg & PCAPEXT_SR_SUPPORTED_MASK) == 0)
1027                         return false;
1028
1029                 addr = CORE_CC_REG(base, retention_ctl);
1030                 reg = chip->ops->read32(chip->ctx, addr);
1031                 return (reg & (PMU_RCTL_MACPHY_DISABLE_MASK |
1032                                PMU_RCTL_LOGIC_DISABLE_MASK)) == 0;
1033         }
1034 }