1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Universal Flash Storage Host Performance Booster
4 *
5 * Copyright (C) 2017-2021 Samsung Electronics Co., Ltd.
6 *
7 * Authors:
8 * Yongmyung Lee <ymhungry.lee@samsung.com>
9 * Jinyoung Choi <j-young.choi@samsung.com>
10 */
11
12 #include <asm/unaligned.h>
13 #include <linux/delay.h>
14 #include <linux/device.h>
15 #include <linux/module.h>
16 #include <scsi/scsi_cmnd.h>
17
18 #include "ufshcd-priv.h"
19 #include "ufshpb.h"
20 #include "../../scsi/sd.h"
21
22 #define ACTIVATION_THRESHOLD 8 /* 8 IOs */
23 #define READ_TO_MS 1000
24 #define READ_TO_EXPIRIES 100
25 #define POLLING_INTERVAL_MS 200
26 #define THROTTLE_MAP_REQ_DEFAULT 1
27
28 /* memory management */
29 static struct kmem_cache *ufshpb_mctx_cache;
30 static mempool_t *ufshpb_mctx_pool;
31 static mempool_t *ufshpb_page_pool;
32 /* A cache size of 2MB can cache ppn in the 1GB range. */
33 static unsigned int ufshpb_host_map_kbytes = 2048;
34 static int tot_active_srgn_pages;
35
36 static struct workqueue_struct *ufshpb_wq;
37
38 static void ufshpb_update_active_info(struct ufshpb_lu *hpb, int rgn_idx,
39 int srgn_idx);
40
ufshpb_is_allowed(struct ufs_hba * hba)41 bool ufshpb_is_allowed(struct ufs_hba *hba)
42 {
43 return !(hba->ufshpb_dev.hpb_disabled);
44 }
45
46 /* HPB version 1.0 is called as legacy version. */
ufshpb_is_legacy(struct ufs_hba * hba)47 bool ufshpb_is_legacy(struct ufs_hba *hba)
48 {
49 return hba->ufshpb_dev.is_legacy;
50 }
51
ufshpb_get_hpb_data(struct scsi_device * sdev)52 static struct ufshpb_lu *ufshpb_get_hpb_data(struct scsi_device *sdev)
53 {
54 return sdev->hostdata;
55 }
56
ufshpb_get_state(struct ufshpb_lu * hpb)57 static int ufshpb_get_state(struct ufshpb_lu *hpb)
58 {
59 return atomic_read(&hpb->hpb_state);
60 }
61
ufshpb_set_state(struct ufshpb_lu * hpb,int state)62 static void ufshpb_set_state(struct ufshpb_lu *hpb, int state)
63 {
64 atomic_set(&hpb->hpb_state, state);
65 }
66
ufshpb_is_valid_srgn(struct ufshpb_region * rgn,struct ufshpb_subregion * srgn)67 static int ufshpb_is_valid_srgn(struct ufshpb_region *rgn,
68 struct ufshpb_subregion *srgn)
69 {
70 return rgn->rgn_state != HPB_RGN_INACTIVE &&
71 srgn->srgn_state == HPB_SRGN_VALID;
72 }
73
ufshpb_is_read_cmd(struct scsi_cmnd * cmd)74 static bool ufshpb_is_read_cmd(struct scsi_cmnd *cmd)
75 {
76 return req_op(scsi_cmd_to_rq(cmd)) == REQ_OP_READ;
77 }
78
ufshpb_is_write_or_discard(struct scsi_cmnd * cmd)79 static bool ufshpb_is_write_or_discard(struct scsi_cmnd *cmd)
80 {
81 return op_is_write(req_op(scsi_cmd_to_rq(cmd))) ||
82 op_is_discard(req_op(scsi_cmd_to_rq(cmd)));
83 }
84
ufshpb_is_supported_chunk(struct ufshpb_lu * hpb,int transfer_len)85 static bool ufshpb_is_supported_chunk(struct ufshpb_lu *hpb, int transfer_len)
86 {
87 return transfer_len <= hpb->pre_req_max_tr_len;
88 }
89
ufshpb_is_general_lun(int lun)90 static bool ufshpb_is_general_lun(int lun)
91 {
92 return lun < UFS_UPIU_MAX_UNIT_NUM_ID;
93 }
94
ufshpb_is_pinned_region(struct ufshpb_lu * hpb,int rgn_idx)95 static bool ufshpb_is_pinned_region(struct ufshpb_lu *hpb, int rgn_idx)
96 {
97 return hpb->lu_pinned_end != PINNED_NOT_SET &&
98 rgn_idx >= hpb->lu_pinned_start && rgn_idx <= hpb->lu_pinned_end;
99 }
100
ufshpb_kick_map_work(struct ufshpb_lu * hpb)101 static void ufshpb_kick_map_work(struct ufshpb_lu *hpb)
102 {
103 bool ret = false;
104 unsigned long flags;
105
106 if (ufshpb_get_state(hpb) != HPB_PRESENT)
107 return;
108
109 spin_lock_irqsave(&hpb->rsp_list_lock, flags);
110 if (!list_empty(&hpb->lh_inact_rgn) || !list_empty(&hpb->lh_act_srgn))
111 ret = true;
112 spin_unlock_irqrestore(&hpb->rsp_list_lock, flags);
113
114 if (ret)
115 queue_work(ufshpb_wq, &hpb->map_work);
116 }
117
ufshpb_is_hpb_rsp_valid(struct ufs_hba * hba,struct ufshcd_lrb * lrbp,struct utp_hpb_rsp * rsp_field)118 static bool ufshpb_is_hpb_rsp_valid(struct ufs_hba *hba,
119 struct ufshcd_lrb *lrbp,
120 struct utp_hpb_rsp *rsp_field)
121 {
122 /* Check HPB_UPDATE_ALERT */
123 if (!(lrbp->ucd_rsp_ptr->header.dword_2 &
124 UPIU_HEADER_DWORD(0, 2, 0, 0)))
125 return false;
126
127 if (be16_to_cpu(rsp_field->sense_data_len) != DEV_SENSE_SEG_LEN ||
128 rsp_field->desc_type != DEV_DES_TYPE ||
129 rsp_field->additional_len != DEV_ADDITIONAL_LEN ||
130 rsp_field->active_rgn_cnt > MAX_ACTIVE_NUM ||
131 rsp_field->inactive_rgn_cnt > MAX_INACTIVE_NUM ||
132 rsp_field->hpb_op == HPB_RSP_NONE ||
133 (rsp_field->hpb_op == HPB_RSP_REQ_REGION_UPDATE &&
134 !rsp_field->active_rgn_cnt && !rsp_field->inactive_rgn_cnt))
135 return false;
136
137 if (!ufshpb_is_general_lun(rsp_field->lun)) {
138 dev_warn(hba->dev, "ufshpb: lun(%d) not supported\n",
139 lrbp->lun);
140 return false;
141 }
142
143 return true;
144 }
145
ufshpb_iterate_rgn(struct ufshpb_lu * hpb,int rgn_idx,int srgn_idx,int srgn_offset,int cnt,bool set_dirty)146 static void ufshpb_iterate_rgn(struct ufshpb_lu *hpb, int rgn_idx, int srgn_idx,
147 int srgn_offset, int cnt, bool set_dirty)
148 {
149 struct ufshpb_region *rgn;
150 struct ufshpb_subregion *srgn, *prev_srgn = NULL;
151 int set_bit_len;
152 int bitmap_len;
153 unsigned long flags;
154
155 next_srgn:
156 rgn = hpb->rgn_tbl + rgn_idx;
157 srgn = rgn->srgn_tbl + srgn_idx;
158
159 if (likely(!srgn->is_last))
160 bitmap_len = hpb->entries_per_srgn;
161 else
162 bitmap_len = hpb->last_srgn_entries;
163
164 if ((srgn_offset + cnt) > bitmap_len)
165 set_bit_len = bitmap_len - srgn_offset;
166 else
167 set_bit_len = cnt;
168
169 spin_lock_irqsave(&hpb->rgn_state_lock, flags);
170 if (rgn->rgn_state != HPB_RGN_INACTIVE) {
171 if (set_dirty) {
172 if (srgn->srgn_state == HPB_SRGN_VALID)
173 bitmap_set(srgn->mctx->ppn_dirty, srgn_offset,
174 set_bit_len);
175 } else if (hpb->is_hcm) {
176 /* rewind the read timer for lru regions */
177 rgn->read_timeout = ktime_add_ms(ktime_get(),
178 rgn->hpb->params.read_timeout_ms);
179 rgn->read_timeout_expiries =
180 rgn->hpb->params.read_timeout_expiries;
181 }
182 }
183 spin_unlock_irqrestore(&hpb->rgn_state_lock, flags);
184
185 if (hpb->is_hcm && prev_srgn != srgn) {
186 bool activate = false;
187
188 spin_lock(&rgn->rgn_lock);
189 if (set_dirty) {
190 rgn->reads -= srgn->reads;
191 srgn->reads = 0;
192 set_bit(RGN_FLAG_DIRTY, &rgn->rgn_flags);
193 } else {
194 srgn->reads++;
195 rgn->reads++;
196 if (srgn->reads == hpb->params.activation_thld)
197 activate = true;
198 }
199 spin_unlock(&rgn->rgn_lock);
200
201 if (activate ||
202 test_and_clear_bit(RGN_FLAG_UPDATE, &rgn->rgn_flags)) {
203 spin_lock_irqsave(&hpb->rsp_list_lock, flags);
204 ufshpb_update_active_info(hpb, rgn_idx, srgn_idx);
205 spin_unlock_irqrestore(&hpb->rsp_list_lock, flags);
206 dev_dbg(&hpb->sdev_ufs_lu->sdev_dev,
207 "activate region %d-%d\n", rgn_idx, srgn_idx);
208 }
209
210 prev_srgn = srgn;
211 }
212
213 srgn_offset = 0;
214 if (++srgn_idx == hpb->srgns_per_rgn) {
215 srgn_idx = 0;
216 rgn_idx++;
217 }
218
219 cnt -= set_bit_len;
220 if (cnt > 0)
221 goto next_srgn;
222 }
223
ufshpb_test_ppn_dirty(struct ufshpb_lu * hpb,int rgn_idx,int srgn_idx,int srgn_offset,int cnt)224 static bool ufshpb_test_ppn_dirty(struct ufshpb_lu *hpb, int rgn_idx,
225 int srgn_idx, int srgn_offset, int cnt)
226 {
227 struct ufshpb_region *rgn;
228 struct ufshpb_subregion *srgn;
229 int bitmap_len;
230 int bit_len;
231
232 next_srgn:
233 rgn = hpb->rgn_tbl + rgn_idx;
234 srgn = rgn->srgn_tbl + srgn_idx;
235
236 if (likely(!srgn->is_last))
237 bitmap_len = hpb->entries_per_srgn;
238 else
239 bitmap_len = hpb->last_srgn_entries;
240
241 if (!ufshpb_is_valid_srgn(rgn, srgn))
242 return true;
243
244 /*
245 * If the region state is active, mctx must be allocated.
246 * In this case, check whether the region is evicted or
247 * mctx allocation fail.
248 */
249 if (unlikely(!srgn->mctx)) {
250 dev_err(&hpb->sdev_ufs_lu->sdev_dev,
251 "no mctx in region %d subregion %d.\n",
252 srgn->rgn_idx, srgn->srgn_idx);
253 return true;
254 }
255
256 if ((srgn_offset + cnt) > bitmap_len)
257 bit_len = bitmap_len - srgn_offset;
258 else
259 bit_len = cnt;
260
261 if (find_next_bit(srgn->mctx->ppn_dirty, bit_len + srgn_offset,
262 srgn_offset) < bit_len + srgn_offset)
263 return true;
264
265 srgn_offset = 0;
266 if (++srgn_idx == hpb->srgns_per_rgn) {
267 srgn_idx = 0;
268 rgn_idx++;
269 }
270
271 cnt -= bit_len;
272 if (cnt > 0)
273 goto next_srgn;
274
275 return false;
276 }
277
is_rgn_dirty(struct ufshpb_region * rgn)278 static inline bool is_rgn_dirty(struct ufshpb_region *rgn)
279 {
280 return test_bit(RGN_FLAG_DIRTY, &rgn->rgn_flags);
281 }
282
ufshpb_fill_ppn_from_page(struct ufshpb_lu * hpb,struct ufshpb_map_ctx * mctx,int pos,int len,__be64 * ppn_buf)283 static int ufshpb_fill_ppn_from_page(struct ufshpb_lu *hpb,
284 struct ufshpb_map_ctx *mctx, int pos,
285 int len, __be64 *ppn_buf)
286 {
287 struct page *page;
288 int index, offset;
289 int copied;
290
291 index = pos / (PAGE_SIZE / HPB_ENTRY_SIZE);
292 offset = pos % (PAGE_SIZE / HPB_ENTRY_SIZE);
293
294 if ((offset + len) <= (PAGE_SIZE / HPB_ENTRY_SIZE))
295 copied = len;
296 else
297 copied = (PAGE_SIZE / HPB_ENTRY_SIZE) - offset;
298
299 page = mctx->m_page[index];
300 if (unlikely(!page)) {
301 dev_err(&hpb->sdev_ufs_lu->sdev_dev,
302 "error. cannot find page in mctx\n");
303 return -ENOMEM;
304 }
305
306 memcpy(ppn_buf, page_address(page) + (offset * HPB_ENTRY_SIZE),
307 copied * HPB_ENTRY_SIZE);
308
309 return copied;
310 }
311
312 static void
ufshpb_get_pos_from_lpn(struct ufshpb_lu * hpb,unsigned long lpn,int * rgn_idx,int * srgn_idx,int * offset)313 ufshpb_get_pos_from_lpn(struct ufshpb_lu *hpb, unsigned long lpn, int *rgn_idx,
314 int *srgn_idx, int *offset)
315 {
316 int rgn_offset;
317
318 *rgn_idx = lpn >> hpb->entries_per_rgn_shift;
319 rgn_offset = lpn & hpb->entries_per_rgn_mask;
320 *srgn_idx = rgn_offset >> hpb->entries_per_srgn_shift;
321 *offset = rgn_offset & hpb->entries_per_srgn_mask;
322 }
323
324 static void
ufshpb_set_hpb_read_to_upiu(struct ufs_hba * hba,struct ufshcd_lrb * lrbp,__be64 ppn,u8 transfer_len)325 ufshpb_set_hpb_read_to_upiu(struct ufs_hba *hba, struct ufshcd_lrb *lrbp,
326 __be64 ppn, u8 transfer_len)
327 {
328 unsigned char *cdb = lrbp->cmd->cmnd;
329 __be64 ppn_tmp = ppn;
330 cdb[0] = UFSHPB_READ;
331
332 if (hba->dev_quirks & UFS_DEVICE_QUIRK_SWAP_L2P_ENTRY_FOR_HPB_READ)
333 ppn_tmp = (__force __be64)swab64((__force u64)ppn);
334
335 /* ppn value is stored as big-endian in the host memory */
336 memcpy(&cdb[6], &ppn_tmp, sizeof(__be64));
337 cdb[14] = transfer_len;
338 cdb[15] = 0;
339
340 lrbp->cmd->cmd_len = UFS_CDB_SIZE;
341 }
342
343 /*
344 * This function will set up HPB read command using host-side L2P map data.
345 */
ufshpb_prep(struct ufs_hba * hba,struct ufshcd_lrb * lrbp)346 int ufshpb_prep(struct ufs_hba *hba, struct ufshcd_lrb *lrbp)
347 {
348 struct ufshpb_lu *hpb;
349 struct ufshpb_region *rgn;
350 struct ufshpb_subregion *srgn;
351 struct scsi_cmnd *cmd = lrbp->cmd;
352 u32 lpn;
353 __be64 ppn;
354 unsigned long flags;
355 int transfer_len, rgn_idx, srgn_idx, srgn_offset;
356 int err = 0;
357
358 hpb = ufshpb_get_hpb_data(cmd->device);
359 if (!hpb)
360 return -ENODEV;
361
362 if (ufshpb_get_state(hpb) == HPB_INIT)
363 return -ENODEV;
364
365 if (ufshpb_get_state(hpb) != HPB_PRESENT) {
366 dev_notice(&hpb->sdev_ufs_lu->sdev_dev,
367 "%s: ufshpb state is not PRESENT", __func__);
368 return -ENODEV;
369 }
370
371 if (blk_rq_is_passthrough(scsi_cmd_to_rq(cmd)) ||
372 (!ufshpb_is_write_or_discard(cmd) &&
373 !ufshpb_is_read_cmd(cmd)))
374 return 0;
375
376 transfer_len = sectors_to_logical(cmd->device,
377 blk_rq_sectors(scsi_cmd_to_rq(cmd)));
378 if (unlikely(!transfer_len))
379 return 0;
380
381 lpn = sectors_to_logical(cmd->device, blk_rq_pos(scsi_cmd_to_rq(cmd)));
382 ufshpb_get_pos_from_lpn(hpb, lpn, &rgn_idx, &srgn_idx, &srgn_offset);
383 rgn = hpb->rgn_tbl + rgn_idx;
384 srgn = rgn->srgn_tbl + srgn_idx;
385
386 /* If command type is WRITE or DISCARD, set bitmap as drity */
387 if (ufshpb_is_write_or_discard(cmd)) {
388 ufshpb_iterate_rgn(hpb, rgn_idx, srgn_idx, srgn_offset,
389 transfer_len, true);
390 return 0;
391 }
392
393 if (!ufshpb_is_supported_chunk(hpb, transfer_len))
394 return 0;
395
396 if (hpb->is_hcm) {
397 /*
398 * in host control mode, reads are the main source for
399 * activation trials.
400 */
401 ufshpb_iterate_rgn(hpb, rgn_idx, srgn_idx, srgn_offset,
402 transfer_len, false);
403
404 /* keep those counters normalized */
405 if (rgn->reads > hpb->entries_per_srgn)
406 schedule_work(&hpb->ufshpb_normalization_work);
407 }
408
409 spin_lock_irqsave(&hpb->rgn_state_lock, flags);
410 if (ufshpb_test_ppn_dirty(hpb, rgn_idx, srgn_idx, srgn_offset,
411 transfer_len)) {
412 hpb->stats.miss_cnt++;
413 spin_unlock_irqrestore(&hpb->rgn_state_lock, flags);
414 return 0;
415 }
416
417 err = ufshpb_fill_ppn_from_page(hpb, srgn->mctx, srgn_offset, 1, &ppn);
418 spin_unlock_irqrestore(&hpb->rgn_state_lock, flags);
419 if (unlikely(err < 0)) {
420 /*
421 * In this case, the region state is active,
422 * but the ppn table is not allocated.
423 * Make sure that ppn table must be allocated on
424 * active state.
425 */
426 dev_err(hba->dev, "get ppn failed. err %d\n", err);
427 return err;
428 }
429
430 ufshpb_set_hpb_read_to_upiu(hba, lrbp, ppn, transfer_len);
431
432 hpb->stats.hit_cnt++;
433 return 0;
434 }
435
ufshpb_get_req(struct ufshpb_lu * hpb,int rgn_idx,enum req_opf dir,bool atomic)436 static struct ufshpb_req *ufshpb_get_req(struct ufshpb_lu *hpb,
437 int rgn_idx, enum req_opf dir,
438 bool atomic)
439 {
440 struct ufshpb_req *rq;
441 struct request *req;
442 int retries = HPB_MAP_REQ_RETRIES;
443
444 rq = kmem_cache_alloc(hpb->map_req_cache, GFP_KERNEL);
445 if (!rq)
446 return NULL;
447
448 retry:
449 req = blk_mq_alloc_request(hpb->sdev_ufs_lu->request_queue, dir,
450 BLK_MQ_REQ_NOWAIT);
451
452 if (!atomic && (PTR_ERR(req) == -EWOULDBLOCK) && (--retries > 0)) {
453 usleep_range(3000, 3100);
454 goto retry;
455 }
456
457 if (IS_ERR(req))
458 goto free_rq;
459
460 rq->hpb = hpb;
461 rq->req = req;
462 rq->rb.rgn_idx = rgn_idx;
463
464 return rq;
465
466 free_rq:
467 kmem_cache_free(hpb->map_req_cache, rq);
468 return NULL;
469 }
470
ufshpb_put_req(struct ufshpb_lu * hpb,struct ufshpb_req * rq)471 static void ufshpb_put_req(struct ufshpb_lu *hpb, struct ufshpb_req *rq)
472 {
473 blk_mq_free_request(rq->req);
474 kmem_cache_free(hpb->map_req_cache, rq);
475 }
476
ufshpb_get_map_req(struct ufshpb_lu * hpb,struct ufshpb_subregion * srgn)477 static struct ufshpb_req *ufshpb_get_map_req(struct ufshpb_lu *hpb,
478 struct ufshpb_subregion *srgn)
479 {
480 struct ufshpb_req *map_req;
481 struct bio *bio;
482 unsigned long flags;
483
484 if (hpb->is_hcm &&
485 hpb->num_inflight_map_req >= hpb->params.inflight_map_req) {
486 dev_info(&hpb->sdev_ufs_lu->sdev_dev,
487 "map_req throttle. inflight %d throttle %d",
488 hpb->num_inflight_map_req,
489 hpb->params.inflight_map_req);
490 return NULL;
491 }
492
493 map_req = ufshpb_get_req(hpb, srgn->rgn_idx, REQ_OP_DRV_IN, false);
494 if (!map_req)
495 return NULL;
496
497 bio = bio_alloc(NULL, hpb->pages_per_srgn, 0, GFP_KERNEL);
498 if (!bio) {
499 ufshpb_put_req(hpb, map_req);
500 return NULL;
501 }
502
503 map_req->bio = bio;
504
505 map_req->rb.srgn_idx = srgn->srgn_idx;
506 map_req->rb.mctx = srgn->mctx;
507
508 spin_lock_irqsave(&hpb->param_lock, flags);
509 hpb->num_inflight_map_req++;
510 spin_unlock_irqrestore(&hpb->param_lock, flags);
511
512 return map_req;
513 }
514
ufshpb_put_map_req(struct ufshpb_lu * hpb,struct ufshpb_req * map_req)515 static void ufshpb_put_map_req(struct ufshpb_lu *hpb,
516 struct ufshpb_req *map_req)
517 {
518 unsigned long flags;
519
520 bio_put(map_req->bio);
521 ufshpb_put_req(hpb, map_req);
522
523 spin_lock_irqsave(&hpb->param_lock, flags);
524 hpb->num_inflight_map_req--;
525 spin_unlock_irqrestore(&hpb->param_lock, flags);
526 }
527
ufshpb_clear_dirty_bitmap(struct ufshpb_lu * hpb,struct ufshpb_subregion * srgn)528 static int ufshpb_clear_dirty_bitmap(struct ufshpb_lu *hpb,
529 struct ufshpb_subregion *srgn)
530 {
531 struct ufshpb_region *rgn;
532 u32 num_entries = hpb->entries_per_srgn;
533
534 if (!srgn->mctx) {
535 dev_err(&hpb->sdev_ufs_lu->sdev_dev,
536 "no mctx in region %d subregion %d.\n",
537 srgn->rgn_idx, srgn->srgn_idx);
538 return -1;
539 }
540
541 if (unlikely(srgn->is_last))
542 num_entries = hpb->last_srgn_entries;
543
544 bitmap_zero(srgn->mctx->ppn_dirty, num_entries);
545
546 rgn = hpb->rgn_tbl + srgn->rgn_idx;
547 clear_bit(RGN_FLAG_DIRTY, &rgn->rgn_flags);
548
549 return 0;
550 }
551
ufshpb_update_active_info(struct ufshpb_lu * hpb,int rgn_idx,int srgn_idx)552 static void ufshpb_update_active_info(struct ufshpb_lu *hpb, int rgn_idx,
553 int srgn_idx)
554 {
555 struct ufshpb_region *rgn;
556 struct ufshpb_subregion *srgn;
557
558 rgn = hpb->rgn_tbl + rgn_idx;
559 srgn = rgn->srgn_tbl + srgn_idx;
560
561 list_del_init(&rgn->list_inact_rgn);
562
563 if (list_empty(&srgn->list_act_srgn))
564 list_add_tail(&srgn->list_act_srgn, &hpb->lh_act_srgn);
565
566 hpb->stats.rcmd_active_cnt++;
567 }
568
ufshpb_update_inactive_info(struct ufshpb_lu * hpb,int rgn_idx)569 static void ufshpb_update_inactive_info(struct ufshpb_lu *hpb, int rgn_idx)
570 {
571 struct ufshpb_region *rgn;
572 struct ufshpb_subregion *srgn;
573 int srgn_idx;
574
575 rgn = hpb->rgn_tbl + rgn_idx;
576
577 for_each_sub_region(rgn, srgn_idx, srgn)
578 list_del_init(&srgn->list_act_srgn);
579
580 if (list_empty(&rgn->list_inact_rgn))
581 list_add_tail(&rgn->list_inact_rgn, &hpb->lh_inact_rgn);
582
583 hpb->stats.rcmd_inactive_cnt++;
584 }
585
ufshpb_activate_subregion(struct ufshpb_lu * hpb,struct ufshpb_subregion * srgn)586 static void ufshpb_activate_subregion(struct ufshpb_lu *hpb,
587 struct ufshpb_subregion *srgn)
588 {
589 struct ufshpb_region *rgn;
590
591 /*
592 * If there is no mctx in subregion
593 * after I/O progress for HPB_READ_BUFFER, the region to which the
594 * subregion belongs was evicted.
595 * Make sure the region must not evict in I/O progress
596 */
597 if (!srgn->mctx) {
598 dev_err(&hpb->sdev_ufs_lu->sdev_dev,
599 "no mctx in region %d subregion %d.\n",
600 srgn->rgn_idx, srgn->srgn_idx);
601 srgn->srgn_state = HPB_SRGN_INVALID;
602 return;
603 }
604
605 rgn = hpb->rgn_tbl + srgn->rgn_idx;
606
607 if (unlikely(rgn->rgn_state == HPB_RGN_INACTIVE)) {
608 dev_err(&hpb->sdev_ufs_lu->sdev_dev,
609 "region %d subregion %d evicted\n",
610 srgn->rgn_idx, srgn->srgn_idx);
611 srgn->srgn_state = HPB_SRGN_INVALID;
612 return;
613 }
614 srgn->srgn_state = HPB_SRGN_VALID;
615 }
616
ufshpb_umap_req_compl_fn(struct request * req,blk_status_t error)617 static void ufshpb_umap_req_compl_fn(struct request *req, blk_status_t error)
618 {
619 struct ufshpb_req *umap_req = (struct ufshpb_req *)req->end_io_data;
620
621 ufshpb_put_req(umap_req->hpb, umap_req);
622 }
623
ufshpb_map_req_compl_fn(struct request * req,blk_status_t error)624 static void ufshpb_map_req_compl_fn(struct request *req, blk_status_t error)
625 {
626 struct ufshpb_req *map_req = (struct ufshpb_req *) req->end_io_data;
627 struct ufshpb_lu *hpb = map_req->hpb;
628 struct ufshpb_subregion *srgn;
629 unsigned long flags;
630
631 srgn = hpb->rgn_tbl[map_req->rb.rgn_idx].srgn_tbl +
632 map_req->rb.srgn_idx;
633
634 ufshpb_clear_dirty_bitmap(hpb, srgn);
635 spin_lock_irqsave(&hpb->rgn_state_lock, flags);
636 ufshpb_activate_subregion(hpb, srgn);
637 spin_unlock_irqrestore(&hpb->rgn_state_lock, flags);
638
639 ufshpb_put_map_req(map_req->hpb, map_req);
640 }
641
ufshpb_set_unmap_cmd(unsigned char * cdb,struct ufshpb_region * rgn)642 static void ufshpb_set_unmap_cmd(unsigned char *cdb, struct ufshpb_region *rgn)
643 {
644 cdb[0] = UFSHPB_WRITE_BUFFER;
645 cdb[1] = rgn ? UFSHPB_WRITE_BUFFER_INACT_SINGLE_ID :
646 UFSHPB_WRITE_BUFFER_INACT_ALL_ID;
647 if (rgn)
648 put_unaligned_be16(rgn->rgn_idx, &cdb[2]);
649 cdb[9] = 0x00;
650 }
651
ufshpb_set_read_buf_cmd(unsigned char * cdb,int rgn_idx,int srgn_idx,int srgn_mem_size)652 static void ufshpb_set_read_buf_cmd(unsigned char *cdb, int rgn_idx,
653 int srgn_idx, int srgn_mem_size)
654 {
655 cdb[0] = UFSHPB_READ_BUFFER;
656 cdb[1] = UFSHPB_READ_BUFFER_ID;
657
658 put_unaligned_be16(rgn_idx, &cdb[2]);
659 put_unaligned_be16(srgn_idx, &cdb[4]);
660 put_unaligned_be24(srgn_mem_size, &cdb[6]);
661
662 cdb[9] = 0x00;
663 }
664
ufshpb_execute_umap_req(struct ufshpb_lu * hpb,struct ufshpb_req * umap_req,struct ufshpb_region * rgn)665 static void ufshpb_execute_umap_req(struct ufshpb_lu *hpb,
666 struct ufshpb_req *umap_req,
667 struct ufshpb_region *rgn)
668 {
669 struct request *req = umap_req->req;
670 struct scsi_cmnd *scmd = blk_mq_rq_to_pdu(req);
671
672 req->timeout = 0;
673 req->end_io_data = umap_req;
674 req->end_io = ufshpb_umap_req_compl_fn;
675
676 ufshpb_set_unmap_cmd(scmd->cmnd, rgn);
677 scmd->cmd_len = HPB_WRITE_BUFFER_CMD_LENGTH;
678
679 blk_execute_rq_nowait(req, true);
680
681 hpb->stats.umap_req_cnt++;
682 }
683
ufshpb_execute_map_req(struct ufshpb_lu * hpb,struct ufshpb_req * map_req,bool last)684 static int ufshpb_execute_map_req(struct ufshpb_lu *hpb,
685 struct ufshpb_req *map_req, bool last)
686 {
687 struct request_queue *q;
688 struct request *req;
689 struct scsi_cmnd *scmd;
690 int mem_size = hpb->srgn_mem_size;
691 int ret = 0;
692 int i;
693
694 q = hpb->sdev_ufs_lu->request_queue;
695 for (i = 0; i < hpb->pages_per_srgn; i++) {
696 ret = bio_add_pc_page(q, map_req->bio, map_req->rb.mctx->m_page[i],
697 PAGE_SIZE, 0);
698 if (ret != PAGE_SIZE) {
699 dev_err(&hpb->sdev_ufs_lu->sdev_dev,
700 "bio_add_pc_page fail %d - %d\n",
701 map_req->rb.rgn_idx, map_req->rb.srgn_idx);
702 return ret;
703 }
704 }
705
706 req = map_req->req;
707
708 blk_rq_append_bio(req, map_req->bio);
709
710 req->end_io_data = map_req;
711 req->end_io = ufshpb_map_req_compl_fn;
712
713 if (unlikely(last))
714 mem_size = hpb->last_srgn_entries * HPB_ENTRY_SIZE;
715
716 scmd = blk_mq_rq_to_pdu(req);
717 ufshpb_set_read_buf_cmd(scmd->cmnd, map_req->rb.rgn_idx,
718 map_req->rb.srgn_idx, mem_size);
719 scmd->cmd_len = HPB_READ_BUFFER_CMD_LENGTH;
720
721 blk_execute_rq_nowait(req, true);
722
723 hpb->stats.map_req_cnt++;
724 return 0;
725 }
726
ufshpb_get_map_ctx(struct ufshpb_lu * hpb,bool last)727 static struct ufshpb_map_ctx *ufshpb_get_map_ctx(struct ufshpb_lu *hpb,
728 bool last)
729 {
730 struct ufshpb_map_ctx *mctx;
731 u32 num_entries = hpb->entries_per_srgn;
732 int i, j;
733
734 mctx = mempool_alloc(ufshpb_mctx_pool, GFP_KERNEL);
735 if (!mctx)
736 return NULL;
737
738 mctx->m_page = kmem_cache_alloc(hpb->m_page_cache, GFP_KERNEL);
739 if (!mctx->m_page)
740 goto release_mctx;
741
742 if (unlikely(last))
743 num_entries = hpb->last_srgn_entries;
744
745 mctx->ppn_dirty = bitmap_zalloc(num_entries, GFP_KERNEL);
746 if (!mctx->ppn_dirty)
747 goto release_m_page;
748
749 for (i = 0; i < hpb->pages_per_srgn; i++) {
750 mctx->m_page[i] = mempool_alloc(ufshpb_page_pool, GFP_KERNEL);
751 if (!mctx->m_page[i]) {
752 for (j = 0; j < i; j++)
753 mempool_free(mctx->m_page[j], ufshpb_page_pool);
754 goto release_ppn_dirty;
755 }
756 clear_page(page_address(mctx->m_page[i]));
757 }
758
759 return mctx;
760
761 release_ppn_dirty:
762 bitmap_free(mctx->ppn_dirty);
763 release_m_page:
764 kmem_cache_free(hpb->m_page_cache, mctx->m_page);
765 release_mctx:
766 mempool_free(mctx, ufshpb_mctx_pool);
767 return NULL;
768 }
769
ufshpb_put_map_ctx(struct ufshpb_lu * hpb,struct ufshpb_map_ctx * mctx)770 static void ufshpb_put_map_ctx(struct ufshpb_lu *hpb,
771 struct ufshpb_map_ctx *mctx)
772 {
773 int i;
774
775 for (i = 0; i < hpb->pages_per_srgn; i++)
776 mempool_free(mctx->m_page[i], ufshpb_page_pool);
777
778 bitmap_free(mctx->ppn_dirty);
779 kmem_cache_free(hpb->m_page_cache, mctx->m_page);
780 mempool_free(mctx, ufshpb_mctx_pool);
781 }
782
ufshpb_check_srgns_issue_state(struct ufshpb_lu * hpb,struct ufshpb_region * rgn)783 static int ufshpb_check_srgns_issue_state(struct ufshpb_lu *hpb,
784 struct ufshpb_region *rgn)
785 {
786 struct ufshpb_subregion *srgn;
787 int srgn_idx;
788
789 for_each_sub_region(rgn, srgn_idx, srgn)
790 if (srgn->srgn_state == HPB_SRGN_ISSUED)
791 return -EPERM;
792
793 return 0;
794 }
795
ufshpb_read_to_handler(struct work_struct * work)796 static void ufshpb_read_to_handler(struct work_struct *work)
797 {
798 struct ufshpb_lu *hpb = container_of(work, struct ufshpb_lu,
799 ufshpb_read_to_work.work);
800 struct victim_select_info *lru_info = &hpb->lru_info;
801 struct ufshpb_region *rgn, *next_rgn;
802 unsigned long flags;
803 unsigned int poll;
804 LIST_HEAD(expired_list);
805
806 if (test_and_set_bit(TIMEOUT_WORK_RUNNING, &hpb->work_data_bits))
807 return;
808
809 spin_lock_irqsave(&hpb->rgn_state_lock, flags);
810
811 list_for_each_entry_safe(rgn, next_rgn, &lru_info->lh_lru_rgn,
812 list_lru_rgn) {
813 bool timedout = ktime_after(ktime_get(), rgn->read_timeout);
814
815 if (timedout) {
816 rgn->read_timeout_expiries--;
817 if (is_rgn_dirty(rgn) ||
818 rgn->read_timeout_expiries == 0)
819 list_add(&rgn->list_expired_rgn, &expired_list);
820 else
821 rgn->read_timeout = ktime_add_ms(ktime_get(),
822 hpb->params.read_timeout_ms);
823 }
824 }
825
826 spin_unlock_irqrestore(&hpb->rgn_state_lock, flags);
827
828 list_for_each_entry_safe(rgn, next_rgn, &expired_list,
829 list_expired_rgn) {
830 list_del_init(&rgn->list_expired_rgn);
831 spin_lock_irqsave(&hpb->rsp_list_lock, flags);
832 ufshpb_update_inactive_info(hpb, rgn->rgn_idx);
833 spin_unlock_irqrestore(&hpb->rsp_list_lock, flags);
834 }
835
836 ufshpb_kick_map_work(hpb);
837
838 clear_bit(TIMEOUT_WORK_RUNNING, &hpb->work_data_bits);
839
840 poll = hpb->params.timeout_polling_interval_ms;
841 schedule_delayed_work(&hpb->ufshpb_read_to_work,
842 msecs_to_jiffies(poll));
843 }
844
ufshpb_add_lru_info(struct victim_select_info * lru_info,struct ufshpb_region * rgn)845 static void ufshpb_add_lru_info(struct victim_select_info *lru_info,
846 struct ufshpb_region *rgn)
847 {
848 rgn->rgn_state = HPB_RGN_ACTIVE;
849 list_add_tail(&rgn->list_lru_rgn, &lru_info->lh_lru_rgn);
850 atomic_inc(&lru_info->active_cnt);
851 if (rgn->hpb->is_hcm) {
852 rgn->read_timeout =
853 ktime_add_ms(ktime_get(),
854 rgn->hpb->params.read_timeout_ms);
855 rgn->read_timeout_expiries =
856 rgn->hpb->params.read_timeout_expiries;
857 }
858 }
859
ufshpb_hit_lru_info(struct victim_select_info * lru_info,struct ufshpb_region * rgn)860 static void ufshpb_hit_lru_info(struct victim_select_info *lru_info,
861 struct ufshpb_region *rgn)
862 {
863 list_move_tail(&rgn->list_lru_rgn, &lru_info->lh_lru_rgn);
864 }
865
ufshpb_victim_lru_info(struct ufshpb_lu * hpb)866 static struct ufshpb_region *ufshpb_victim_lru_info(struct ufshpb_lu *hpb)
867 {
868 struct victim_select_info *lru_info = &hpb->lru_info;
869 struct ufshpb_region *rgn, *victim_rgn = NULL;
870
871 list_for_each_entry(rgn, &lru_info->lh_lru_rgn, list_lru_rgn) {
872 if (ufshpb_check_srgns_issue_state(hpb, rgn))
873 continue;
874
875 /*
876 * in host control mode, verify that the exiting region
877 * has fewer reads
878 */
879 if (hpb->is_hcm &&
880 rgn->reads > hpb->params.eviction_thld_exit)
881 continue;
882
883 victim_rgn = rgn;
884 break;
885 }
886
887 if (!victim_rgn)
888 dev_err(&hpb->sdev_ufs_lu->sdev_dev,
889 "%s: no region allocated\n",
890 __func__);
891
892 return victim_rgn;
893 }
894
ufshpb_cleanup_lru_info(struct victim_select_info * lru_info,struct ufshpb_region * rgn)895 static void ufshpb_cleanup_lru_info(struct victim_select_info *lru_info,
896 struct ufshpb_region *rgn)
897 {
898 list_del_init(&rgn->list_lru_rgn);
899 rgn->rgn_state = HPB_RGN_INACTIVE;
900 atomic_dec(&lru_info->active_cnt);
901 }
902
ufshpb_purge_active_subregion(struct ufshpb_lu * hpb,struct ufshpb_subregion * srgn)903 static void ufshpb_purge_active_subregion(struct ufshpb_lu *hpb,
904 struct ufshpb_subregion *srgn)
905 {
906 if (srgn->srgn_state != HPB_SRGN_UNUSED) {
907 ufshpb_put_map_ctx(hpb, srgn->mctx);
908 srgn->srgn_state = HPB_SRGN_UNUSED;
909 srgn->mctx = NULL;
910 }
911 }
912
ufshpb_issue_umap_req(struct ufshpb_lu * hpb,struct ufshpb_region * rgn,bool atomic)913 static int ufshpb_issue_umap_req(struct ufshpb_lu *hpb,
914 struct ufshpb_region *rgn,
915 bool atomic)
916 {
917 struct ufshpb_req *umap_req;
918 int rgn_idx = rgn ? rgn->rgn_idx : 0;
919
920 umap_req = ufshpb_get_req(hpb, rgn_idx, REQ_OP_DRV_OUT, atomic);
921 if (!umap_req)
922 return -ENOMEM;
923
924 ufshpb_execute_umap_req(hpb, umap_req, rgn);
925
926 return 0;
927 }
928
ufshpb_issue_umap_single_req(struct ufshpb_lu * hpb,struct ufshpb_region * rgn)929 static int ufshpb_issue_umap_single_req(struct ufshpb_lu *hpb,
930 struct ufshpb_region *rgn)
931 {
932 return ufshpb_issue_umap_req(hpb, rgn, true);
933 }
934
__ufshpb_evict_region(struct ufshpb_lu * hpb,struct ufshpb_region * rgn)935 static void __ufshpb_evict_region(struct ufshpb_lu *hpb,
936 struct ufshpb_region *rgn)
937 {
938 struct victim_select_info *lru_info;
939 struct ufshpb_subregion *srgn;
940 int srgn_idx;
941
942 lru_info = &hpb->lru_info;
943
944 dev_dbg(&hpb->sdev_ufs_lu->sdev_dev, "evict region %d\n", rgn->rgn_idx);
945
946 ufshpb_cleanup_lru_info(lru_info, rgn);
947
948 for_each_sub_region(rgn, srgn_idx, srgn)
949 ufshpb_purge_active_subregion(hpb, srgn);
950 }
951
ufshpb_evict_region(struct ufshpb_lu * hpb,struct ufshpb_region * rgn)952 static int ufshpb_evict_region(struct ufshpb_lu *hpb, struct ufshpb_region *rgn)
953 {
954 unsigned long flags;
955 int ret = 0;
956
957 spin_lock_irqsave(&hpb->rgn_state_lock, flags);
958 if (rgn->rgn_state == HPB_RGN_PINNED) {
959 dev_warn(&hpb->sdev_ufs_lu->sdev_dev,
960 "pinned region cannot drop-out. region %d\n",
961 rgn->rgn_idx);
962 goto out;
963 }
964
965 if (!list_empty(&rgn->list_lru_rgn)) {
966 if (ufshpb_check_srgns_issue_state(hpb, rgn)) {
967 ret = -EBUSY;
968 goto out;
969 }
970
971 if (hpb->is_hcm) {
972 spin_unlock_irqrestore(&hpb->rgn_state_lock, flags);
973 ret = ufshpb_issue_umap_single_req(hpb, rgn);
974 spin_lock_irqsave(&hpb->rgn_state_lock, flags);
975 if (ret)
976 goto out;
977 }
978
979 __ufshpb_evict_region(hpb, rgn);
980 }
981 out:
982 spin_unlock_irqrestore(&hpb->rgn_state_lock, flags);
983 return ret;
984 }
985
ufshpb_issue_map_req(struct ufshpb_lu * hpb,struct ufshpb_region * rgn,struct ufshpb_subregion * srgn)986 static int ufshpb_issue_map_req(struct ufshpb_lu *hpb,
987 struct ufshpb_region *rgn,
988 struct ufshpb_subregion *srgn)
989 {
990 struct ufshpb_req *map_req;
991 unsigned long flags;
992 int ret;
993 int err = -EAGAIN;
994 bool alloc_required = false;
995 enum HPB_SRGN_STATE state = HPB_SRGN_INVALID;
996
997 spin_lock_irqsave(&hpb->rgn_state_lock, flags);
998
999 if (ufshpb_get_state(hpb) != HPB_PRESENT) {
1000 dev_notice(&hpb->sdev_ufs_lu->sdev_dev,
1001 "%s: ufshpb state is not PRESENT\n", __func__);
1002 goto unlock_out;
1003 }
1004
1005 if ((rgn->rgn_state == HPB_RGN_INACTIVE) &&
1006 (srgn->srgn_state == HPB_SRGN_INVALID)) {
1007 err = 0;
1008 goto unlock_out;
1009 }
1010
1011 if (srgn->srgn_state == HPB_SRGN_UNUSED)
1012 alloc_required = true;
1013
1014 /*
1015 * If the subregion is already ISSUED state,
1016 * a specific event (e.g., GC or wear-leveling, etc.) occurs in
1017 * the device and HPB response for map loading is received.
1018 * In this case, after finishing the HPB_READ_BUFFER,
1019 * the next HPB_READ_BUFFER is performed again to obtain the latest
1020 * map data.
1021 */
1022 if (srgn->srgn_state == HPB_SRGN_ISSUED)
1023 goto unlock_out;
1024
1025 srgn->srgn_state = HPB_SRGN_ISSUED;
1026 spin_unlock_irqrestore(&hpb->rgn_state_lock, flags);
1027
1028 if (alloc_required) {
1029 srgn->mctx = ufshpb_get_map_ctx(hpb, srgn->is_last);
1030 if (!srgn->mctx) {
1031 dev_err(&hpb->sdev_ufs_lu->sdev_dev,
1032 "get map_ctx failed. region %d - %d\n",
1033 rgn->rgn_idx, srgn->srgn_idx);
1034 state = HPB_SRGN_UNUSED;
1035 goto change_srgn_state;
1036 }
1037 }
1038
1039 map_req = ufshpb_get_map_req(hpb, srgn);
1040 if (!map_req)
1041 goto change_srgn_state;
1042
1043
1044 ret = ufshpb_execute_map_req(hpb, map_req, srgn->is_last);
1045 if (ret) {
1046 dev_err(&hpb->sdev_ufs_lu->sdev_dev,
1047 "%s: issue map_req failed: %d, region %d - %d\n",
1048 __func__, ret, srgn->rgn_idx, srgn->srgn_idx);
1049 goto free_map_req;
1050 }
1051 return 0;
1052
1053 free_map_req:
1054 ufshpb_put_map_req(hpb, map_req);
1055 change_srgn_state:
1056 spin_lock_irqsave(&hpb->rgn_state_lock, flags);
1057 srgn->srgn_state = state;
1058 unlock_out:
1059 spin_unlock_irqrestore(&hpb->rgn_state_lock, flags);
1060 return err;
1061 }
1062
ufshpb_add_region(struct ufshpb_lu * hpb,struct ufshpb_region * rgn)1063 static int ufshpb_add_region(struct ufshpb_lu *hpb, struct ufshpb_region *rgn)
1064 {
1065 struct ufshpb_region *victim_rgn = NULL;
1066 struct victim_select_info *lru_info = &hpb->lru_info;
1067 unsigned long flags;
1068 int ret = 0;
1069
1070 spin_lock_irqsave(&hpb->rgn_state_lock, flags);
1071 /*
1072 * If region belongs to lru_list, just move the region
1073 * to the front of lru list because the state of the region
1074 * is already active-state.
1075 */
1076 if (!list_empty(&rgn->list_lru_rgn)) {
1077 ufshpb_hit_lru_info(lru_info, rgn);
1078 goto out;
1079 }
1080
1081 if (rgn->rgn_state == HPB_RGN_INACTIVE) {
1082 if (atomic_read(&lru_info->active_cnt) ==
1083 lru_info->max_lru_active_cnt) {
1084 /*
1085 * If the maximum number of active regions
1086 * is exceeded, evict the least recently used region.
1087 * This case may occur when the device responds
1088 * to the eviction information late.
1089 * It is okay to evict the least recently used region,
1090 * because the device could detect this region
1091 * by not issuing HPB_READ
1092 *
1093 * in host control mode, verify that the entering
1094 * region has enough reads
1095 */
1096 if (hpb->is_hcm &&
1097 rgn->reads < hpb->params.eviction_thld_enter) {
1098 ret = -EACCES;
1099 goto out;
1100 }
1101
1102 victim_rgn = ufshpb_victim_lru_info(hpb);
1103 if (!victim_rgn) {
1104 dev_warn(&hpb->sdev_ufs_lu->sdev_dev,
1105 "cannot get victim region %s\n",
1106 hpb->is_hcm ? "" : "error");
1107 ret = -ENOMEM;
1108 goto out;
1109 }
1110
1111 dev_dbg(&hpb->sdev_ufs_lu->sdev_dev,
1112 "LRU full (%d), choose victim %d\n",
1113 atomic_read(&lru_info->active_cnt),
1114 victim_rgn->rgn_idx);
1115
1116 if (hpb->is_hcm) {
1117 spin_unlock_irqrestore(&hpb->rgn_state_lock,
1118 flags);
1119 ret = ufshpb_issue_umap_single_req(hpb,
1120 victim_rgn);
1121 spin_lock_irqsave(&hpb->rgn_state_lock,
1122 flags);
1123 if (ret)
1124 goto out;
1125 }
1126
1127 __ufshpb_evict_region(hpb, victim_rgn);
1128 }
1129
1130 /*
1131 * When a region is added to lru_info list_head,
1132 * it is guaranteed that the subregion has been
1133 * assigned all mctx. If failed, try to receive mctx again
1134 * without being added to lru_info list_head
1135 */
1136 ufshpb_add_lru_info(lru_info, rgn);
1137 }
1138 out:
1139 spin_unlock_irqrestore(&hpb->rgn_state_lock, flags);
1140 return ret;
1141 }
1142 /**
1143 *ufshpb_submit_region_inactive() - submit a region to be inactivated later
1144 *@hpb: per-LU HPB instance
1145 *@region_index: the index associated with the region that will be inactivated later
1146 */
ufshpb_submit_region_inactive(struct ufshpb_lu * hpb,int region_index)1147 static void ufshpb_submit_region_inactive(struct ufshpb_lu *hpb, int region_index)
1148 {
1149 int subregion_index;
1150 struct ufshpb_region *rgn;
1151 struct ufshpb_subregion *srgn;
1152
1153 /*
1154 * Remove this region from active region list and add it to inactive list
1155 */
1156 spin_lock(&hpb->rsp_list_lock);
1157 ufshpb_update_inactive_info(hpb, region_index);
1158 spin_unlock(&hpb->rsp_list_lock);
1159
1160 rgn = hpb->rgn_tbl + region_index;
1161
1162 /*
1163 * Set subregion state to be HPB_SRGN_INVALID, there will no HPB read on this subregion
1164 */
1165 spin_lock(&hpb->rgn_state_lock);
1166 if (rgn->rgn_state != HPB_RGN_INACTIVE) {
1167 for (subregion_index = 0; subregion_index < rgn->srgn_cnt; subregion_index++) {
1168 srgn = rgn->srgn_tbl + subregion_index;
1169 if (srgn->srgn_state == HPB_SRGN_VALID)
1170 srgn->srgn_state = HPB_SRGN_INVALID;
1171 }
1172 }
1173 spin_unlock(&hpb->rgn_state_lock);
1174 }
1175
ufshpb_rsp_req_region_update(struct ufshpb_lu * hpb,struct utp_hpb_rsp * rsp_field)1176 static void ufshpb_rsp_req_region_update(struct ufshpb_lu *hpb,
1177 struct utp_hpb_rsp *rsp_field)
1178 {
1179 struct ufshpb_region *rgn;
1180 struct ufshpb_subregion *srgn;
1181 int i, rgn_i, srgn_i;
1182
1183 BUILD_BUG_ON(sizeof(struct ufshpb_active_field) != HPB_ACT_FIELD_SIZE);
1184 /*
1185 * If the active region and the inactive region are the same,
1186 * we will inactivate this region.
1187 * The device could check this (region inactivated) and
1188 * will response the proper active region information
1189 */
1190 for (i = 0; i < rsp_field->active_rgn_cnt; i++) {
1191 rgn_i =
1192 be16_to_cpu(rsp_field->hpb_active_field[i].active_rgn);
1193 srgn_i =
1194 be16_to_cpu(rsp_field->hpb_active_field[i].active_srgn);
1195
1196 rgn = hpb->rgn_tbl + rgn_i;
1197 if (hpb->is_hcm &&
1198 (rgn->rgn_state != HPB_RGN_ACTIVE || is_rgn_dirty(rgn))) {
1199 /*
1200 * in host control mode, subregion activation
1201 * recommendations are only allowed to active regions.
1202 * Also, ignore recommendations for dirty regions - the
1203 * host will make decisions concerning those by himself
1204 */
1205 continue;
1206 }
1207
1208 dev_dbg(&hpb->sdev_ufs_lu->sdev_dev,
1209 "activate(%d) region %d - %d\n", i, rgn_i, srgn_i);
1210
1211 spin_lock(&hpb->rsp_list_lock);
1212 ufshpb_update_active_info(hpb, rgn_i, srgn_i);
1213 spin_unlock(&hpb->rsp_list_lock);
1214
1215 srgn = rgn->srgn_tbl + srgn_i;
1216
1217 /* blocking HPB_READ */
1218 spin_lock(&hpb->rgn_state_lock);
1219 if (srgn->srgn_state == HPB_SRGN_VALID)
1220 srgn->srgn_state = HPB_SRGN_INVALID;
1221 spin_unlock(&hpb->rgn_state_lock);
1222 }
1223
1224 if (hpb->is_hcm) {
1225 /*
1226 * in host control mode the device is not allowed to inactivate
1227 * regions
1228 */
1229 goto out;
1230 }
1231
1232 for (i = 0; i < rsp_field->inactive_rgn_cnt; i++) {
1233 rgn_i = be16_to_cpu(rsp_field->hpb_inactive_field[i]);
1234 dev_dbg(&hpb->sdev_ufs_lu->sdev_dev, "inactivate(%d) region %d\n", i, rgn_i);
1235 ufshpb_submit_region_inactive(hpb, rgn_i);
1236 }
1237
1238 out:
1239 dev_dbg(&hpb->sdev_ufs_lu->sdev_dev, "Noti: #ACT %u #INACT %u\n",
1240 rsp_field->active_rgn_cnt, rsp_field->inactive_rgn_cnt);
1241
1242 if (ufshpb_get_state(hpb) == HPB_PRESENT)
1243 queue_work(ufshpb_wq, &hpb->map_work);
1244 }
1245
1246 /*
1247 * Set the flags of all active regions to RGN_FLAG_UPDATE to let host side reload L2P entries later
1248 */
ufshpb_set_regions_update(struct ufshpb_lu * hpb)1249 static void ufshpb_set_regions_update(struct ufshpb_lu *hpb)
1250 {
1251 struct victim_select_info *lru_info = &hpb->lru_info;
1252 struct ufshpb_region *rgn;
1253 unsigned long flags;
1254
1255 spin_lock_irqsave(&hpb->rgn_state_lock, flags);
1256
1257 list_for_each_entry(rgn, &lru_info->lh_lru_rgn, list_lru_rgn)
1258 set_bit(RGN_FLAG_UPDATE, &rgn->rgn_flags);
1259
1260 spin_unlock_irqrestore(&hpb->rgn_state_lock, flags);
1261 }
1262
ufshpb_dev_reset_handler(struct ufs_hba * hba)1263 static void ufshpb_dev_reset_handler(struct ufs_hba *hba)
1264 {
1265 struct scsi_device *sdev;
1266 struct ufshpb_lu *hpb;
1267
1268 __shost_for_each_device(sdev, hba->host) {
1269 hpb = ufshpb_get_hpb_data(sdev);
1270 if (!hpb)
1271 continue;
1272
1273 if (hpb->is_hcm) {
1274 /*
1275 * For the HPB host control mode, in case device powered up and lost HPB
1276 * information, we will set the region flag to be RGN_FLAG_UPDATE, it will
1277 * let host reload its L2P entries(reactivate region in the UFS device).
1278 */
1279 ufshpb_set_regions_update(hpb);
1280 } else {
1281 /*
1282 * For the HPB device control mode, if host side receives 02h:HPB Operation
1283 * in UPIU response, which means device recommends the host side should
1284 * inactivate all active regions. Here we add all active regions to inactive
1285 * list, they will be inactivated later in ufshpb_map_work_handler().
1286 */
1287 struct victim_select_info *lru_info = &hpb->lru_info;
1288 struct ufshpb_region *rgn;
1289
1290 list_for_each_entry(rgn, &lru_info->lh_lru_rgn, list_lru_rgn)
1291 ufshpb_submit_region_inactive(hpb, rgn->rgn_idx);
1292
1293 if (ufshpb_get_state(hpb) == HPB_PRESENT)
1294 queue_work(ufshpb_wq, &hpb->map_work);
1295 }
1296 }
1297 }
1298
1299 /*
1300 * This function will parse recommended active subregion information in sense
1301 * data field of response UPIU with SAM_STAT_GOOD state.
1302 */
ufshpb_rsp_upiu(struct ufs_hba * hba,struct ufshcd_lrb * lrbp)1303 void ufshpb_rsp_upiu(struct ufs_hba *hba, struct ufshcd_lrb *lrbp)
1304 {
1305 struct ufshpb_lu *hpb = ufshpb_get_hpb_data(lrbp->cmd->device);
1306 struct utp_hpb_rsp *rsp_field = &lrbp->ucd_rsp_ptr->hr;
1307 int data_seg_len;
1308
1309 data_seg_len = be32_to_cpu(lrbp->ucd_rsp_ptr->header.dword_2)
1310 & MASK_RSP_UPIU_DATA_SEG_LEN;
1311
1312 /* If data segment length is zero, rsp_field is not valid */
1313 if (!data_seg_len)
1314 return;
1315
1316 if (unlikely(lrbp->lun != rsp_field->lun)) {
1317 struct scsi_device *sdev;
1318 bool found = false;
1319
1320 __shost_for_each_device(sdev, hba->host) {
1321 hpb = ufshpb_get_hpb_data(sdev);
1322
1323 if (!hpb)
1324 continue;
1325
1326 if (rsp_field->lun == hpb->lun) {
1327 found = true;
1328 break;
1329 }
1330 }
1331
1332 if (!found)
1333 return;
1334 }
1335
1336 if (!hpb)
1337 return;
1338
1339 if (ufshpb_get_state(hpb) == HPB_INIT)
1340 return;
1341
1342 if ((ufshpb_get_state(hpb) != HPB_PRESENT) &&
1343 (ufshpb_get_state(hpb) != HPB_SUSPEND)) {
1344 dev_notice(&hpb->sdev_ufs_lu->sdev_dev,
1345 "%s: ufshpb state is not PRESENT/SUSPEND\n",
1346 __func__);
1347 return;
1348 }
1349
1350 BUILD_BUG_ON(sizeof(struct utp_hpb_rsp) != UTP_HPB_RSP_SIZE);
1351
1352 if (!ufshpb_is_hpb_rsp_valid(hba, lrbp, rsp_field))
1353 return;
1354
1355 hpb->stats.rcmd_noti_cnt++;
1356
1357 switch (rsp_field->hpb_op) {
1358 case HPB_RSP_REQ_REGION_UPDATE:
1359 if (data_seg_len != DEV_DATA_SEG_LEN)
1360 dev_warn(&hpb->sdev_ufs_lu->sdev_dev,
1361 "%s: data seg length is not same.\n",
1362 __func__);
1363 ufshpb_rsp_req_region_update(hpb, rsp_field);
1364 break;
1365 case HPB_RSP_DEV_RESET:
1366 dev_warn(&hpb->sdev_ufs_lu->sdev_dev,
1367 "UFS device lost HPB information during PM.\n");
1368 ufshpb_dev_reset_handler(hba);
1369
1370 break;
1371 default:
1372 dev_notice(&hpb->sdev_ufs_lu->sdev_dev,
1373 "hpb_op is not available: %d\n",
1374 rsp_field->hpb_op);
1375 break;
1376 }
1377 }
1378
ufshpb_add_active_list(struct ufshpb_lu * hpb,struct ufshpb_region * rgn,struct ufshpb_subregion * srgn)1379 static void ufshpb_add_active_list(struct ufshpb_lu *hpb,
1380 struct ufshpb_region *rgn,
1381 struct ufshpb_subregion *srgn)
1382 {
1383 if (!list_empty(&rgn->list_inact_rgn))
1384 return;
1385
1386 if (!list_empty(&srgn->list_act_srgn)) {
1387 list_move(&srgn->list_act_srgn, &hpb->lh_act_srgn);
1388 return;
1389 }
1390
1391 list_add(&srgn->list_act_srgn, &hpb->lh_act_srgn);
1392 }
1393
ufshpb_add_pending_evict_list(struct ufshpb_lu * hpb,struct ufshpb_region * rgn,struct list_head * pending_list)1394 static void ufshpb_add_pending_evict_list(struct ufshpb_lu *hpb,
1395 struct ufshpb_region *rgn,
1396 struct list_head *pending_list)
1397 {
1398 struct ufshpb_subregion *srgn;
1399 int srgn_idx;
1400
1401 if (!list_empty(&rgn->list_inact_rgn))
1402 return;
1403
1404 for_each_sub_region(rgn, srgn_idx, srgn)
1405 if (!list_empty(&srgn->list_act_srgn))
1406 return;
1407
1408 list_add_tail(&rgn->list_inact_rgn, pending_list);
1409 }
1410
ufshpb_run_active_subregion_list(struct ufshpb_lu * hpb)1411 static void ufshpb_run_active_subregion_list(struct ufshpb_lu *hpb)
1412 {
1413 struct ufshpb_region *rgn;
1414 struct ufshpb_subregion *srgn;
1415 unsigned long flags;
1416 int ret = 0;
1417
1418 spin_lock_irqsave(&hpb->rsp_list_lock, flags);
1419 while ((srgn = list_first_entry_or_null(&hpb->lh_act_srgn,
1420 struct ufshpb_subregion,
1421 list_act_srgn))) {
1422 if (ufshpb_get_state(hpb) == HPB_SUSPEND)
1423 break;
1424
1425 list_del_init(&srgn->list_act_srgn);
1426 spin_unlock_irqrestore(&hpb->rsp_list_lock, flags);
1427
1428 rgn = hpb->rgn_tbl + srgn->rgn_idx;
1429 ret = ufshpb_add_region(hpb, rgn);
1430 if (ret)
1431 goto active_failed;
1432
1433 ret = ufshpb_issue_map_req(hpb, rgn, srgn);
1434 if (ret) {
1435 dev_err(&hpb->sdev_ufs_lu->sdev_dev,
1436 "issue map_req failed. ret %d, region %d - %d\n",
1437 ret, rgn->rgn_idx, srgn->srgn_idx);
1438 goto active_failed;
1439 }
1440 spin_lock_irqsave(&hpb->rsp_list_lock, flags);
1441 }
1442 spin_unlock_irqrestore(&hpb->rsp_list_lock, flags);
1443 return;
1444
1445 active_failed:
1446 dev_err(&hpb->sdev_ufs_lu->sdev_dev, "failed to activate region %d - %d, will retry\n",
1447 rgn->rgn_idx, srgn->srgn_idx);
1448 spin_lock_irqsave(&hpb->rsp_list_lock, flags);
1449 ufshpb_add_active_list(hpb, rgn, srgn);
1450 spin_unlock_irqrestore(&hpb->rsp_list_lock, flags);
1451 }
1452
ufshpb_run_inactive_region_list(struct ufshpb_lu * hpb)1453 static void ufshpb_run_inactive_region_list(struct ufshpb_lu *hpb)
1454 {
1455 struct ufshpb_region *rgn;
1456 unsigned long flags;
1457 int ret;
1458 LIST_HEAD(pending_list);
1459
1460 spin_lock_irqsave(&hpb->rsp_list_lock, flags);
1461 while ((rgn = list_first_entry_or_null(&hpb->lh_inact_rgn,
1462 struct ufshpb_region,
1463 list_inact_rgn))) {
1464 if (ufshpb_get_state(hpb) == HPB_SUSPEND)
1465 break;
1466
1467 list_del_init(&rgn->list_inact_rgn);
1468 spin_unlock_irqrestore(&hpb->rsp_list_lock, flags);
1469
1470 ret = ufshpb_evict_region(hpb, rgn);
1471 if (ret) {
1472 spin_lock_irqsave(&hpb->rsp_list_lock, flags);
1473 ufshpb_add_pending_evict_list(hpb, rgn, &pending_list);
1474 spin_unlock_irqrestore(&hpb->rsp_list_lock, flags);
1475 }
1476
1477 spin_lock_irqsave(&hpb->rsp_list_lock, flags);
1478 }
1479
1480 list_splice(&pending_list, &hpb->lh_inact_rgn);
1481 spin_unlock_irqrestore(&hpb->rsp_list_lock, flags);
1482 }
1483
ufshpb_normalization_work_handler(struct work_struct * work)1484 static void ufshpb_normalization_work_handler(struct work_struct *work)
1485 {
1486 struct ufshpb_lu *hpb = container_of(work, struct ufshpb_lu,
1487 ufshpb_normalization_work);
1488 int rgn_idx;
1489 u8 factor = hpb->params.normalization_factor;
1490
1491 for (rgn_idx = 0; rgn_idx < hpb->rgns_per_lu; rgn_idx++) {
1492 struct ufshpb_region *rgn = hpb->rgn_tbl + rgn_idx;
1493 int srgn_idx;
1494
1495 spin_lock(&rgn->rgn_lock);
1496 rgn->reads = 0;
1497 for (srgn_idx = 0; srgn_idx < hpb->srgns_per_rgn; srgn_idx++) {
1498 struct ufshpb_subregion *srgn = rgn->srgn_tbl + srgn_idx;
1499
1500 srgn->reads >>= factor;
1501 rgn->reads += srgn->reads;
1502 }
1503 spin_unlock(&rgn->rgn_lock);
1504
1505 if (rgn->rgn_state != HPB_RGN_ACTIVE || rgn->reads)
1506 continue;
1507
1508 /* if region is active but has no reads - inactivate it */
1509 spin_lock(&hpb->rsp_list_lock);
1510 ufshpb_update_inactive_info(hpb, rgn->rgn_idx);
1511 spin_unlock(&hpb->rsp_list_lock);
1512 }
1513 }
1514
ufshpb_map_work_handler(struct work_struct * work)1515 static void ufshpb_map_work_handler(struct work_struct *work)
1516 {
1517 struct ufshpb_lu *hpb = container_of(work, struct ufshpb_lu, map_work);
1518
1519 if (ufshpb_get_state(hpb) != HPB_PRESENT) {
1520 dev_notice(&hpb->sdev_ufs_lu->sdev_dev,
1521 "%s: ufshpb state is not PRESENT\n", __func__);
1522 return;
1523 }
1524
1525 ufshpb_run_inactive_region_list(hpb);
1526 ufshpb_run_active_subregion_list(hpb);
1527 }
1528
1529 /*
1530 * this function doesn't need to hold lock due to be called in init.
1531 * (rgn_state_lock, rsp_list_lock, etc..)
1532 */
ufshpb_init_pinned_active_region(struct ufs_hba * hba,struct ufshpb_lu * hpb,struct ufshpb_region * rgn)1533 static int ufshpb_init_pinned_active_region(struct ufs_hba *hba,
1534 struct ufshpb_lu *hpb,
1535 struct ufshpb_region *rgn)
1536 {
1537 struct ufshpb_subregion *srgn;
1538 int srgn_idx, i;
1539 int err = 0;
1540
1541 for_each_sub_region(rgn, srgn_idx, srgn) {
1542 srgn->mctx = ufshpb_get_map_ctx(hpb, srgn->is_last);
1543 srgn->srgn_state = HPB_SRGN_INVALID;
1544 if (!srgn->mctx) {
1545 err = -ENOMEM;
1546 dev_err(hba->dev,
1547 "alloc mctx for pinned region failed\n");
1548 goto release;
1549 }
1550
1551 list_add_tail(&srgn->list_act_srgn, &hpb->lh_act_srgn);
1552 }
1553
1554 rgn->rgn_state = HPB_RGN_PINNED;
1555 return 0;
1556
1557 release:
1558 for (i = 0; i < srgn_idx; i++) {
1559 srgn = rgn->srgn_tbl + i;
1560 ufshpb_put_map_ctx(hpb, srgn->mctx);
1561 }
1562 return err;
1563 }
1564
ufshpb_init_subregion_tbl(struct ufshpb_lu * hpb,struct ufshpb_region * rgn,bool last)1565 static void ufshpb_init_subregion_tbl(struct ufshpb_lu *hpb,
1566 struct ufshpb_region *rgn, bool last)
1567 {
1568 int srgn_idx;
1569 struct ufshpb_subregion *srgn;
1570
1571 for_each_sub_region(rgn, srgn_idx, srgn) {
1572 INIT_LIST_HEAD(&srgn->list_act_srgn);
1573
1574 srgn->rgn_idx = rgn->rgn_idx;
1575 srgn->srgn_idx = srgn_idx;
1576 srgn->srgn_state = HPB_SRGN_UNUSED;
1577 }
1578
1579 if (unlikely(last && hpb->last_srgn_entries))
1580 srgn->is_last = true;
1581 }
1582
ufshpb_alloc_subregion_tbl(struct ufshpb_lu * hpb,struct ufshpb_region * rgn,int srgn_cnt)1583 static int ufshpb_alloc_subregion_tbl(struct ufshpb_lu *hpb,
1584 struct ufshpb_region *rgn, int srgn_cnt)
1585 {
1586 rgn->srgn_tbl = kvcalloc(srgn_cnt, sizeof(struct ufshpb_subregion),
1587 GFP_KERNEL);
1588 if (!rgn->srgn_tbl)
1589 return -ENOMEM;
1590
1591 rgn->srgn_cnt = srgn_cnt;
1592 return 0;
1593 }
1594
ufshpb_lu_parameter_init(struct ufs_hba * hba,struct ufshpb_lu * hpb,struct ufshpb_dev_info * hpb_dev_info,struct ufshpb_lu_info * hpb_lu_info)1595 static void ufshpb_lu_parameter_init(struct ufs_hba *hba,
1596 struct ufshpb_lu *hpb,
1597 struct ufshpb_dev_info *hpb_dev_info,
1598 struct ufshpb_lu_info *hpb_lu_info)
1599 {
1600 u32 entries_per_rgn;
1601 u64 rgn_mem_size, tmp;
1602
1603 if (ufshpb_is_legacy(hba))
1604 hpb->pre_req_max_tr_len = HPB_LEGACY_CHUNK_HIGH;
1605 else
1606 hpb->pre_req_max_tr_len = hpb_dev_info->max_hpb_single_cmd;
1607
1608 hpb->lu_pinned_start = hpb_lu_info->pinned_start;
1609 hpb->lu_pinned_end = hpb_lu_info->num_pinned ?
1610 (hpb_lu_info->pinned_start + hpb_lu_info->num_pinned - 1)
1611 : PINNED_NOT_SET;
1612 hpb->lru_info.max_lru_active_cnt =
1613 hpb_lu_info->max_active_rgns - hpb_lu_info->num_pinned;
1614
1615 rgn_mem_size = (1ULL << hpb_dev_info->rgn_size) * HPB_RGN_SIZE_UNIT
1616 * HPB_ENTRY_SIZE;
1617 do_div(rgn_mem_size, HPB_ENTRY_BLOCK_SIZE);
1618 hpb->srgn_mem_size = (1ULL << hpb_dev_info->srgn_size)
1619 * HPB_RGN_SIZE_UNIT / HPB_ENTRY_BLOCK_SIZE * HPB_ENTRY_SIZE;
1620
1621 tmp = rgn_mem_size;
1622 do_div(tmp, HPB_ENTRY_SIZE);
1623 entries_per_rgn = (u32)tmp;
1624 hpb->entries_per_rgn_shift = ilog2(entries_per_rgn);
1625 hpb->entries_per_rgn_mask = entries_per_rgn - 1;
1626
1627 hpb->entries_per_srgn = hpb->srgn_mem_size / HPB_ENTRY_SIZE;
1628 hpb->entries_per_srgn_shift = ilog2(hpb->entries_per_srgn);
1629 hpb->entries_per_srgn_mask = hpb->entries_per_srgn - 1;
1630
1631 tmp = rgn_mem_size;
1632 do_div(tmp, hpb->srgn_mem_size);
1633 hpb->srgns_per_rgn = (int)tmp;
1634
1635 hpb->rgns_per_lu = DIV_ROUND_UP(hpb_lu_info->num_blocks,
1636 entries_per_rgn);
1637 hpb->srgns_per_lu = DIV_ROUND_UP(hpb_lu_info->num_blocks,
1638 (hpb->srgn_mem_size / HPB_ENTRY_SIZE));
1639 hpb->last_srgn_entries = hpb_lu_info->num_blocks
1640 % (hpb->srgn_mem_size / HPB_ENTRY_SIZE);
1641
1642 hpb->pages_per_srgn = DIV_ROUND_UP(hpb->srgn_mem_size, PAGE_SIZE);
1643
1644 if (hpb_dev_info->control_mode == HPB_HOST_CONTROL)
1645 hpb->is_hcm = true;
1646 }
1647
ufshpb_alloc_region_tbl(struct ufs_hba * hba,struct ufshpb_lu * hpb)1648 static int ufshpb_alloc_region_tbl(struct ufs_hba *hba, struct ufshpb_lu *hpb)
1649 {
1650 struct ufshpb_region *rgn_table, *rgn;
1651 int rgn_idx, i;
1652 int ret = 0;
1653
1654 rgn_table = kvcalloc(hpb->rgns_per_lu, sizeof(struct ufshpb_region),
1655 GFP_KERNEL);
1656 if (!rgn_table)
1657 return -ENOMEM;
1658
1659 for (rgn_idx = 0; rgn_idx < hpb->rgns_per_lu; rgn_idx++) {
1660 int srgn_cnt = hpb->srgns_per_rgn;
1661 bool last_srgn = false;
1662
1663 rgn = rgn_table + rgn_idx;
1664 rgn->rgn_idx = rgn_idx;
1665
1666 spin_lock_init(&rgn->rgn_lock);
1667
1668 INIT_LIST_HEAD(&rgn->list_inact_rgn);
1669 INIT_LIST_HEAD(&rgn->list_lru_rgn);
1670 INIT_LIST_HEAD(&rgn->list_expired_rgn);
1671
1672 if (rgn_idx == hpb->rgns_per_lu - 1) {
1673 srgn_cnt = ((hpb->srgns_per_lu - 1) %
1674 hpb->srgns_per_rgn) + 1;
1675 last_srgn = true;
1676 }
1677
1678 ret = ufshpb_alloc_subregion_tbl(hpb, rgn, srgn_cnt);
1679 if (ret)
1680 goto release_srgn_table;
1681 ufshpb_init_subregion_tbl(hpb, rgn, last_srgn);
1682
1683 if (ufshpb_is_pinned_region(hpb, rgn_idx)) {
1684 ret = ufshpb_init_pinned_active_region(hba, hpb, rgn);
1685 if (ret)
1686 goto release_srgn_table;
1687 } else {
1688 rgn->rgn_state = HPB_RGN_INACTIVE;
1689 }
1690
1691 rgn->rgn_flags = 0;
1692 rgn->hpb = hpb;
1693 }
1694
1695 hpb->rgn_tbl = rgn_table;
1696
1697 return 0;
1698
1699 release_srgn_table:
1700 for (i = 0; i <= rgn_idx; i++)
1701 kvfree(rgn_table[i].srgn_tbl);
1702
1703 kvfree(rgn_table);
1704 return ret;
1705 }
1706
ufshpb_destroy_subregion_tbl(struct ufshpb_lu * hpb,struct ufshpb_region * rgn)1707 static void ufshpb_destroy_subregion_tbl(struct ufshpb_lu *hpb,
1708 struct ufshpb_region *rgn)
1709 {
1710 int srgn_idx;
1711 struct ufshpb_subregion *srgn;
1712
1713 for_each_sub_region(rgn, srgn_idx, srgn)
1714 if (srgn->srgn_state != HPB_SRGN_UNUSED) {
1715 srgn->srgn_state = HPB_SRGN_UNUSED;
1716 ufshpb_put_map_ctx(hpb, srgn->mctx);
1717 }
1718 }
1719
ufshpb_destroy_region_tbl(struct ufshpb_lu * hpb)1720 static void ufshpb_destroy_region_tbl(struct ufshpb_lu *hpb)
1721 {
1722 int rgn_idx;
1723
1724 for (rgn_idx = 0; rgn_idx < hpb->rgns_per_lu; rgn_idx++) {
1725 struct ufshpb_region *rgn;
1726
1727 rgn = hpb->rgn_tbl + rgn_idx;
1728 if (rgn->rgn_state != HPB_RGN_INACTIVE) {
1729 rgn->rgn_state = HPB_RGN_INACTIVE;
1730
1731 ufshpb_destroy_subregion_tbl(hpb, rgn);
1732 }
1733
1734 kvfree(rgn->srgn_tbl);
1735 }
1736
1737 kvfree(hpb->rgn_tbl);
1738 }
1739
1740 /* SYSFS functions */
1741 #define ufshpb_sysfs_attr_show_func(__name) \
1742 static ssize_t __name##_show(struct device *dev, \
1743 struct device_attribute *attr, char *buf) \
1744 { \
1745 struct scsi_device *sdev = to_scsi_device(dev); \
1746 struct ufshpb_lu *hpb = ufshpb_get_hpb_data(sdev); \
1747 \
1748 if (!hpb) \
1749 return -ENODEV; \
1750 \
1751 return sysfs_emit(buf, "%llu\n", hpb->stats.__name); \
1752 } \
1753 \
1754 static DEVICE_ATTR_RO(__name)
1755
1756 ufshpb_sysfs_attr_show_func(hit_cnt);
1757 ufshpb_sysfs_attr_show_func(miss_cnt);
1758 ufshpb_sysfs_attr_show_func(rcmd_noti_cnt);
1759 ufshpb_sysfs_attr_show_func(rcmd_active_cnt);
1760 ufshpb_sysfs_attr_show_func(rcmd_inactive_cnt);
1761 ufshpb_sysfs_attr_show_func(map_req_cnt);
1762 ufshpb_sysfs_attr_show_func(umap_req_cnt);
1763
1764 static struct attribute *hpb_dev_stat_attrs[] = {
1765 &dev_attr_hit_cnt.attr,
1766 &dev_attr_miss_cnt.attr,
1767 &dev_attr_rcmd_noti_cnt.attr,
1768 &dev_attr_rcmd_active_cnt.attr,
1769 &dev_attr_rcmd_inactive_cnt.attr,
1770 &dev_attr_map_req_cnt.attr,
1771 &dev_attr_umap_req_cnt.attr,
1772 NULL,
1773 };
1774
1775 struct attribute_group ufs_sysfs_hpb_stat_group = {
1776 .name = "hpb_stats",
1777 .attrs = hpb_dev_stat_attrs,
1778 };
1779
1780 /* SYSFS functions */
1781 #define ufshpb_sysfs_param_show_func(__name) \
1782 static ssize_t __name##_show(struct device *dev, \
1783 struct device_attribute *attr, char *buf) \
1784 { \
1785 struct scsi_device *sdev = to_scsi_device(dev); \
1786 struct ufshpb_lu *hpb = ufshpb_get_hpb_data(sdev); \
1787 \
1788 if (!hpb) \
1789 return -ENODEV; \
1790 \
1791 return sysfs_emit(buf, "%d\n", hpb->params.__name); \
1792 }
1793
1794 ufshpb_sysfs_param_show_func(requeue_timeout_ms);
1795 static ssize_t
requeue_timeout_ms_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1796 requeue_timeout_ms_store(struct device *dev, struct device_attribute *attr,
1797 const char *buf, size_t count)
1798 {
1799 struct scsi_device *sdev = to_scsi_device(dev);
1800 struct ufshpb_lu *hpb = ufshpb_get_hpb_data(sdev);
1801 int val;
1802
1803 if (!hpb)
1804 return -ENODEV;
1805
1806 if (kstrtouint(buf, 0, &val))
1807 return -EINVAL;
1808
1809 if (val < 0)
1810 return -EINVAL;
1811
1812 hpb->params.requeue_timeout_ms = val;
1813
1814 return count;
1815 }
1816 static DEVICE_ATTR_RW(requeue_timeout_ms);
1817
1818 ufshpb_sysfs_param_show_func(activation_thld);
1819 static ssize_t
activation_thld_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1820 activation_thld_store(struct device *dev, struct device_attribute *attr,
1821 const char *buf, size_t count)
1822 {
1823 struct scsi_device *sdev = to_scsi_device(dev);
1824 struct ufshpb_lu *hpb = ufshpb_get_hpb_data(sdev);
1825 int val;
1826
1827 if (!hpb)
1828 return -ENODEV;
1829
1830 if (!hpb->is_hcm)
1831 return -EOPNOTSUPP;
1832
1833 if (kstrtouint(buf, 0, &val))
1834 return -EINVAL;
1835
1836 if (val <= 0)
1837 return -EINVAL;
1838
1839 hpb->params.activation_thld = val;
1840
1841 return count;
1842 }
1843 static DEVICE_ATTR_RW(activation_thld);
1844
1845 ufshpb_sysfs_param_show_func(normalization_factor);
1846 static ssize_t
normalization_factor_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1847 normalization_factor_store(struct device *dev, struct device_attribute *attr,
1848 const char *buf, size_t count)
1849 {
1850 struct scsi_device *sdev = to_scsi_device(dev);
1851 struct ufshpb_lu *hpb = ufshpb_get_hpb_data(sdev);
1852 int val;
1853
1854 if (!hpb)
1855 return -ENODEV;
1856
1857 if (!hpb->is_hcm)
1858 return -EOPNOTSUPP;
1859
1860 if (kstrtouint(buf, 0, &val))
1861 return -EINVAL;
1862
1863 if (val <= 0 || val > ilog2(hpb->entries_per_srgn))
1864 return -EINVAL;
1865
1866 hpb->params.normalization_factor = val;
1867
1868 return count;
1869 }
1870 static DEVICE_ATTR_RW(normalization_factor);
1871
1872 ufshpb_sysfs_param_show_func(eviction_thld_enter);
1873 static ssize_t
eviction_thld_enter_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1874 eviction_thld_enter_store(struct device *dev, struct device_attribute *attr,
1875 const char *buf, size_t count)
1876 {
1877 struct scsi_device *sdev = to_scsi_device(dev);
1878 struct ufshpb_lu *hpb = ufshpb_get_hpb_data(sdev);
1879 int val;
1880
1881 if (!hpb)
1882 return -ENODEV;
1883
1884 if (!hpb->is_hcm)
1885 return -EOPNOTSUPP;
1886
1887 if (kstrtouint(buf, 0, &val))
1888 return -EINVAL;
1889
1890 if (val <= hpb->params.eviction_thld_exit)
1891 return -EINVAL;
1892
1893 hpb->params.eviction_thld_enter = val;
1894
1895 return count;
1896 }
1897 static DEVICE_ATTR_RW(eviction_thld_enter);
1898
1899 ufshpb_sysfs_param_show_func(eviction_thld_exit);
1900 static ssize_t
eviction_thld_exit_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1901 eviction_thld_exit_store(struct device *dev, struct device_attribute *attr,
1902 const char *buf, size_t count)
1903 {
1904 struct scsi_device *sdev = to_scsi_device(dev);
1905 struct ufshpb_lu *hpb = ufshpb_get_hpb_data(sdev);
1906 int val;
1907
1908 if (!hpb)
1909 return -ENODEV;
1910
1911 if (!hpb->is_hcm)
1912 return -EOPNOTSUPP;
1913
1914 if (kstrtouint(buf, 0, &val))
1915 return -EINVAL;
1916
1917 if (val <= hpb->params.activation_thld)
1918 return -EINVAL;
1919
1920 hpb->params.eviction_thld_exit = val;
1921
1922 return count;
1923 }
1924 static DEVICE_ATTR_RW(eviction_thld_exit);
1925
1926 ufshpb_sysfs_param_show_func(read_timeout_ms);
1927 static ssize_t
read_timeout_ms_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1928 read_timeout_ms_store(struct device *dev, struct device_attribute *attr,
1929 const char *buf, size_t count)
1930 {
1931 struct scsi_device *sdev = to_scsi_device(dev);
1932 struct ufshpb_lu *hpb = ufshpb_get_hpb_data(sdev);
1933 int val;
1934
1935 if (!hpb)
1936 return -ENODEV;
1937
1938 if (!hpb->is_hcm)
1939 return -EOPNOTSUPP;
1940
1941 if (kstrtouint(buf, 0, &val))
1942 return -EINVAL;
1943
1944 /* read_timeout >> timeout_polling_interval */
1945 if (val < hpb->params.timeout_polling_interval_ms * 2)
1946 return -EINVAL;
1947
1948 hpb->params.read_timeout_ms = val;
1949
1950 return count;
1951 }
1952 static DEVICE_ATTR_RW(read_timeout_ms);
1953
1954 ufshpb_sysfs_param_show_func(read_timeout_expiries);
1955 static ssize_t
read_timeout_expiries_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1956 read_timeout_expiries_store(struct device *dev, struct device_attribute *attr,
1957 const char *buf, size_t count)
1958 {
1959 struct scsi_device *sdev = to_scsi_device(dev);
1960 struct ufshpb_lu *hpb = ufshpb_get_hpb_data(sdev);
1961 int val;
1962
1963 if (!hpb)
1964 return -ENODEV;
1965
1966 if (!hpb->is_hcm)
1967 return -EOPNOTSUPP;
1968
1969 if (kstrtouint(buf, 0, &val))
1970 return -EINVAL;
1971
1972 if (val <= 0)
1973 return -EINVAL;
1974
1975 hpb->params.read_timeout_expiries = val;
1976
1977 return count;
1978 }
1979 static DEVICE_ATTR_RW(read_timeout_expiries);
1980
1981 ufshpb_sysfs_param_show_func(timeout_polling_interval_ms);
1982 static ssize_t
timeout_polling_interval_ms_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1983 timeout_polling_interval_ms_store(struct device *dev,
1984 struct device_attribute *attr,
1985 const char *buf, size_t count)
1986 {
1987 struct scsi_device *sdev = to_scsi_device(dev);
1988 struct ufshpb_lu *hpb = ufshpb_get_hpb_data(sdev);
1989 int val;
1990
1991 if (!hpb)
1992 return -ENODEV;
1993
1994 if (!hpb->is_hcm)
1995 return -EOPNOTSUPP;
1996
1997 if (kstrtouint(buf, 0, &val))
1998 return -EINVAL;
1999
2000 /* timeout_polling_interval << read_timeout */
2001 if (val <= 0 || val > hpb->params.read_timeout_ms / 2)
2002 return -EINVAL;
2003
2004 hpb->params.timeout_polling_interval_ms = val;
2005
2006 return count;
2007 }
2008 static DEVICE_ATTR_RW(timeout_polling_interval_ms);
2009
2010 ufshpb_sysfs_param_show_func(inflight_map_req);
inflight_map_req_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)2011 static ssize_t inflight_map_req_store(struct device *dev,
2012 struct device_attribute *attr,
2013 const char *buf, size_t count)
2014 {
2015 struct scsi_device *sdev = to_scsi_device(dev);
2016 struct ufshpb_lu *hpb = ufshpb_get_hpb_data(sdev);
2017 int val;
2018
2019 if (!hpb)
2020 return -ENODEV;
2021
2022 if (!hpb->is_hcm)
2023 return -EOPNOTSUPP;
2024
2025 if (kstrtouint(buf, 0, &val))
2026 return -EINVAL;
2027
2028 if (val <= 0 || val > hpb->sdev_ufs_lu->queue_depth - 1)
2029 return -EINVAL;
2030
2031 hpb->params.inflight_map_req = val;
2032
2033 return count;
2034 }
2035 static DEVICE_ATTR_RW(inflight_map_req);
2036
ufshpb_hcm_param_init(struct ufshpb_lu * hpb)2037 static void ufshpb_hcm_param_init(struct ufshpb_lu *hpb)
2038 {
2039 hpb->params.activation_thld = ACTIVATION_THRESHOLD;
2040 hpb->params.normalization_factor = 1;
2041 hpb->params.eviction_thld_enter = (ACTIVATION_THRESHOLD << 5);
2042 hpb->params.eviction_thld_exit = (ACTIVATION_THRESHOLD << 4);
2043 hpb->params.read_timeout_ms = READ_TO_MS;
2044 hpb->params.read_timeout_expiries = READ_TO_EXPIRIES;
2045 hpb->params.timeout_polling_interval_ms = POLLING_INTERVAL_MS;
2046 hpb->params.inflight_map_req = THROTTLE_MAP_REQ_DEFAULT;
2047 }
2048
2049 static struct attribute *hpb_dev_param_attrs[] = {
2050 &dev_attr_requeue_timeout_ms.attr,
2051 &dev_attr_activation_thld.attr,
2052 &dev_attr_normalization_factor.attr,
2053 &dev_attr_eviction_thld_enter.attr,
2054 &dev_attr_eviction_thld_exit.attr,
2055 &dev_attr_read_timeout_ms.attr,
2056 &dev_attr_read_timeout_expiries.attr,
2057 &dev_attr_timeout_polling_interval_ms.attr,
2058 &dev_attr_inflight_map_req.attr,
2059 NULL,
2060 };
2061
2062 struct attribute_group ufs_sysfs_hpb_param_group = {
2063 .name = "hpb_params",
2064 .attrs = hpb_dev_param_attrs,
2065 };
2066
ufshpb_pre_req_mempool_init(struct ufshpb_lu * hpb)2067 static int ufshpb_pre_req_mempool_init(struct ufshpb_lu *hpb)
2068 {
2069 struct ufshpb_req *pre_req = NULL, *t;
2070 int qd = hpb->sdev_ufs_lu->queue_depth / 2;
2071 int i;
2072
2073 INIT_LIST_HEAD(&hpb->lh_pre_req_free);
2074
2075 hpb->pre_req = kcalloc(qd, sizeof(struct ufshpb_req), GFP_KERNEL);
2076 hpb->throttle_pre_req = qd;
2077 hpb->num_inflight_pre_req = 0;
2078
2079 if (!hpb->pre_req)
2080 goto release_mem;
2081
2082 for (i = 0; i < qd; i++) {
2083 pre_req = hpb->pre_req + i;
2084 INIT_LIST_HEAD(&pre_req->list_req);
2085 pre_req->req = NULL;
2086
2087 pre_req->bio = bio_alloc(NULL, 1, 0, GFP_KERNEL);
2088 if (!pre_req->bio)
2089 goto release_mem;
2090
2091 pre_req->wb.m_page = alloc_page(GFP_KERNEL | __GFP_ZERO);
2092 if (!pre_req->wb.m_page) {
2093 bio_put(pre_req->bio);
2094 goto release_mem;
2095 }
2096
2097 list_add_tail(&pre_req->list_req, &hpb->lh_pre_req_free);
2098 }
2099
2100 return 0;
2101 release_mem:
2102 list_for_each_entry_safe(pre_req, t, &hpb->lh_pre_req_free, list_req) {
2103 list_del_init(&pre_req->list_req);
2104 bio_put(pre_req->bio);
2105 __free_page(pre_req->wb.m_page);
2106 }
2107
2108 kfree(hpb->pre_req);
2109 return -ENOMEM;
2110 }
2111
ufshpb_pre_req_mempool_destroy(struct ufshpb_lu * hpb)2112 static void ufshpb_pre_req_mempool_destroy(struct ufshpb_lu *hpb)
2113 {
2114 struct ufshpb_req *pre_req = NULL;
2115 int i;
2116
2117 for (i = 0; i < hpb->throttle_pre_req; i++) {
2118 pre_req = hpb->pre_req + i;
2119 bio_put(hpb->pre_req[i].bio);
2120 if (!pre_req->wb.m_page)
2121 __free_page(hpb->pre_req[i].wb.m_page);
2122 list_del_init(&pre_req->list_req);
2123 }
2124
2125 kfree(hpb->pre_req);
2126 }
2127
ufshpb_stat_init(struct ufshpb_lu * hpb)2128 static void ufshpb_stat_init(struct ufshpb_lu *hpb)
2129 {
2130 hpb->stats.hit_cnt = 0;
2131 hpb->stats.miss_cnt = 0;
2132 hpb->stats.rcmd_noti_cnt = 0;
2133 hpb->stats.rcmd_active_cnt = 0;
2134 hpb->stats.rcmd_inactive_cnt = 0;
2135 hpb->stats.map_req_cnt = 0;
2136 hpb->stats.umap_req_cnt = 0;
2137 }
2138
ufshpb_param_init(struct ufshpb_lu * hpb)2139 static void ufshpb_param_init(struct ufshpb_lu *hpb)
2140 {
2141 hpb->params.requeue_timeout_ms = HPB_REQUEUE_TIME_MS;
2142 if (hpb->is_hcm)
2143 ufshpb_hcm_param_init(hpb);
2144 }
2145
ufshpb_lu_hpb_init(struct ufs_hba * hba,struct ufshpb_lu * hpb)2146 static int ufshpb_lu_hpb_init(struct ufs_hba *hba, struct ufshpb_lu *hpb)
2147 {
2148 int ret;
2149
2150 spin_lock_init(&hpb->rgn_state_lock);
2151 spin_lock_init(&hpb->rsp_list_lock);
2152 spin_lock_init(&hpb->param_lock);
2153
2154 INIT_LIST_HEAD(&hpb->lru_info.lh_lru_rgn);
2155 INIT_LIST_HEAD(&hpb->lh_act_srgn);
2156 INIT_LIST_HEAD(&hpb->lh_inact_rgn);
2157 INIT_LIST_HEAD(&hpb->list_hpb_lu);
2158
2159 INIT_WORK(&hpb->map_work, ufshpb_map_work_handler);
2160 if (hpb->is_hcm) {
2161 INIT_WORK(&hpb->ufshpb_normalization_work,
2162 ufshpb_normalization_work_handler);
2163 INIT_DELAYED_WORK(&hpb->ufshpb_read_to_work,
2164 ufshpb_read_to_handler);
2165 }
2166
2167 hpb->map_req_cache = kmem_cache_create("ufshpb_req_cache",
2168 sizeof(struct ufshpb_req), 0, 0, NULL);
2169 if (!hpb->map_req_cache) {
2170 dev_err(hba->dev, "ufshpb(%d) ufshpb_req_cache create fail",
2171 hpb->lun);
2172 return -ENOMEM;
2173 }
2174
2175 hpb->m_page_cache = kmem_cache_create("ufshpb_m_page_cache",
2176 sizeof(struct page *) * hpb->pages_per_srgn,
2177 0, 0, NULL);
2178 if (!hpb->m_page_cache) {
2179 dev_err(hba->dev, "ufshpb(%d) ufshpb_m_page_cache create fail",
2180 hpb->lun);
2181 ret = -ENOMEM;
2182 goto release_req_cache;
2183 }
2184
2185 ret = ufshpb_pre_req_mempool_init(hpb);
2186 if (ret) {
2187 dev_err(hba->dev, "ufshpb(%d) pre_req_mempool init fail",
2188 hpb->lun);
2189 goto release_m_page_cache;
2190 }
2191
2192 ret = ufshpb_alloc_region_tbl(hba, hpb);
2193 if (ret)
2194 goto release_pre_req_mempool;
2195
2196 ufshpb_stat_init(hpb);
2197 ufshpb_param_init(hpb);
2198
2199 if (hpb->is_hcm) {
2200 unsigned int poll;
2201
2202 poll = hpb->params.timeout_polling_interval_ms;
2203 schedule_delayed_work(&hpb->ufshpb_read_to_work,
2204 msecs_to_jiffies(poll));
2205 }
2206
2207 return 0;
2208
2209 release_pre_req_mempool:
2210 ufshpb_pre_req_mempool_destroy(hpb);
2211 release_m_page_cache:
2212 kmem_cache_destroy(hpb->m_page_cache);
2213 release_req_cache:
2214 kmem_cache_destroy(hpb->map_req_cache);
2215 return ret;
2216 }
2217
2218 static struct ufshpb_lu *
ufshpb_alloc_hpb_lu(struct ufs_hba * hba,struct scsi_device * sdev,struct ufshpb_dev_info * hpb_dev_info,struct ufshpb_lu_info * hpb_lu_info)2219 ufshpb_alloc_hpb_lu(struct ufs_hba *hba, struct scsi_device *sdev,
2220 struct ufshpb_dev_info *hpb_dev_info,
2221 struct ufshpb_lu_info *hpb_lu_info)
2222 {
2223 struct ufshpb_lu *hpb;
2224 int ret;
2225
2226 hpb = kzalloc(sizeof(struct ufshpb_lu), GFP_KERNEL);
2227 if (!hpb)
2228 return NULL;
2229
2230 hpb->lun = sdev->lun;
2231 hpb->sdev_ufs_lu = sdev;
2232
2233 ufshpb_lu_parameter_init(hba, hpb, hpb_dev_info, hpb_lu_info);
2234
2235 ret = ufshpb_lu_hpb_init(hba, hpb);
2236 if (ret) {
2237 dev_err(hba->dev, "hpb lu init failed. ret %d", ret);
2238 goto release_hpb;
2239 }
2240
2241 sdev->hostdata = hpb;
2242 return hpb;
2243
2244 release_hpb:
2245 kfree(hpb);
2246 return NULL;
2247 }
2248
ufshpb_discard_rsp_lists(struct ufshpb_lu * hpb)2249 static void ufshpb_discard_rsp_lists(struct ufshpb_lu *hpb)
2250 {
2251 struct ufshpb_region *rgn, *next_rgn;
2252 struct ufshpb_subregion *srgn, *next_srgn;
2253 unsigned long flags;
2254
2255 /*
2256 * If the device reset occurred, the remaining HPB region information
2257 * may be stale. Therefore, by discarding the lists of HPB response
2258 * that remained after reset, we prevent unnecessary work.
2259 */
2260 spin_lock_irqsave(&hpb->rsp_list_lock, flags);
2261 list_for_each_entry_safe(rgn, next_rgn, &hpb->lh_inact_rgn,
2262 list_inact_rgn)
2263 list_del_init(&rgn->list_inact_rgn);
2264
2265 list_for_each_entry_safe(srgn, next_srgn, &hpb->lh_act_srgn,
2266 list_act_srgn)
2267 list_del_init(&srgn->list_act_srgn);
2268 spin_unlock_irqrestore(&hpb->rsp_list_lock, flags);
2269 }
2270
ufshpb_cancel_jobs(struct ufshpb_lu * hpb)2271 static void ufshpb_cancel_jobs(struct ufshpb_lu *hpb)
2272 {
2273 if (hpb->is_hcm) {
2274 cancel_delayed_work_sync(&hpb->ufshpb_read_to_work);
2275 cancel_work_sync(&hpb->ufshpb_normalization_work);
2276 }
2277 cancel_work_sync(&hpb->map_work);
2278 }
2279
ufshpb_check_hpb_reset_query(struct ufs_hba * hba)2280 static bool ufshpb_check_hpb_reset_query(struct ufs_hba *hba)
2281 {
2282 int err = 0;
2283 bool flag_res = true;
2284 int try;
2285
2286 /* wait for the device to complete HPB reset query */
2287 for (try = 0; try < HPB_RESET_REQ_RETRIES; try++) {
2288 dev_dbg(hba->dev,
2289 "%s start flag reset polling %d times\n",
2290 __func__, try);
2291
2292 /* Poll fHpbReset flag to be cleared */
2293 err = ufshcd_query_flag(hba, UPIU_QUERY_OPCODE_READ_FLAG,
2294 QUERY_FLAG_IDN_HPB_RESET, 0, &flag_res);
2295
2296 if (err) {
2297 dev_err(hba->dev,
2298 "%s reading fHpbReset flag failed with error %d\n",
2299 __func__, err);
2300 return flag_res;
2301 }
2302
2303 if (!flag_res)
2304 goto out;
2305
2306 usleep_range(1000, 1100);
2307 }
2308 if (flag_res) {
2309 dev_err(hba->dev,
2310 "%s fHpbReset was not cleared by the device\n",
2311 __func__);
2312 }
2313 out:
2314 return flag_res;
2315 }
2316
2317 /**
2318 * ufshpb_toggle_state - switch HPB state of all LUs
2319 * @hba: per-adapter instance
2320 * @src: expected current HPB state
2321 * @dest: target HPB state to switch to
2322 */
ufshpb_toggle_state(struct ufs_hba * hba,enum UFSHPB_STATE src,enum UFSHPB_STATE dest)2323 void ufshpb_toggle_state(struct ufs_hba *hba, enum UFSHPB_STATE src, enum UFSHPB_STATE dest)
2324 {
2325 struct ufshpb_lu *hpb;
2326 struct scsi_device *sdev;
2327
2328 shost_for_each_device(sdev, hba->host) {
2329 hpb = ufshpb_get_hpb_data(sdev);
2330
2331 if (!hpb || ufshpb_get_state(hpb) != src)
2332 continue;
2333 ufshpb_set_state(hpb, dest);
2334
2335 if (dest == HPB_RESET) {
2336 ufshpb_cancel_jobs(hpb);
2337 ufshpb_discard_rsp_lists(hpb);
2338 }
2339 }
2340 }
2341
ufshpb_suspend(struct ufs_hba * hba)2342 void ufshpb_suspend(struct ufs_hba *hba)
2343 {
2344 struct ufshpb_lu *hpb;
2345 struct scsi_device *sdev;
2346
2347 shost_for_each_device(sdev, hba->host) {
2348 hpb = ufshpb_get_hpb_data(sdev);
2349 if (!hpb || ufshpb_get_state(hpb) != HPB_PRESENT)
2350 continue;
2351
2352 ufshpb_set_state(hpb, HPB_SUSPEND);
2353 ufshpb_cancel_jobs(hpb);
2354 }
2355 }
2356
ufshpb_resume(struct ufs_hba * hba)2357 void ufshpb_resume(struct ufs_hba *hba)
2358 {
2359 struct ufshpb_lu *hpb;
2360 struct scsi_device *sdev;
2361
2362 shost_for_each_device(sdev, hba->host) {
2363 hpb = ufshpb_get_hpb_data(sdev);
2364 if (!hpb || ufshpb_get_state(hpb) != HPB_SUSPEND)
2365 continue;
2366
2367 ufshpb_set_state(hpb, HPB_PRESENT);
2368 ufshpb_kick_map_work(hpb);
2369 if (hpb->is_hcm) {
2370 unsigned int poll = hpb->params.timeout_polling_interval_ms;
2371
2372 schedule_delayed_work(&hpb->ufshpb_read_to_work, msecs_to_jiffies(poll));
2373 }
2374 }
2375 }
2376
ufshpb_get_lu_info(struct ufs_hba * hba,int lun,struct ufshpb_lu_info * hpb_lu_info)2377 static int ufshpb_get_lu_info(struct ufs_hba *hba, int lun,
2378 struct ufshpb_lu_info *hpb_lu_info)
2379 {
2380 u16 max_active_rgns;
2381 u8 lu_enable;
2382 int size;
2383 int ret;
2384 char desc_buf[QUERY_DESC_MAX_SIZE];
2385
2386 ufshcd_map_desc_id_to_length(hba, QUERY_DESC_IDN_UNIT, &size);
2387
2388 ufshcd_rpm_get_sync(hba);
2389 ret = ufshcd_query_descriptor_retry(hba, UPIU_QUERY_OPCODE_READ_DESC,
2390 QUERY_DESC_IDN_UNIT, lun, 0,
2391 desc_buf, &size);
2392 ufshcd_rpm_put_sync(hba);
2393
2394 if (ret) {
2395 dev_err(hba->dev,
2396 "%s: idn: %d lun: %d query request failed",
2397 __func__, QUERY_DESC_IDN_UNIT, lun);
2398 return ret;
2399 }
2400
2401 lu_enable = desc_buf[UNIT_DESC_PARAM_LU_ENABLE];
2402 if (lu_enable != LU_ENABLED_HPB_FUNC)
2403 return -ENODEV;
2404
2405 max_active_rgns = get_unaligned_be16(
2406 desc_buf + UNIT_DESC_PARAM_HPB_LU_MAX_ACTIVE_RGNS);
2407 if (!max_active_rgns) {
2408 dev_err(hba->dev,
2409 "lun %d wrong number of max active regions\n", lun);
2410 return -ENODEV;
2411 }
2412
2413 hpb_lu_info->num_blocks = get_unaligned_be64(
2414 desc_buf + UNIT_DESC_PARAM_LOGICAL_BLK_COUNT);
2415 hpb_lu_info->pinned_start = get_unaligned_be16(
2416 desc_buf + UNIT_DESC_PARAM_HPB_PIN_RGN_START_OFF);
2417 hpb_lu_info->num_pinned = get_unaligned_be16(
2418 desc_buf + UNIT_DESC_PARAM_HPB_NUM_PIN_RGNS);
2419 hpb_lu_info->max_active_rgns = max_active_rgns;
2420
2421 return 0;
2422 }
2423
ufshpb_destroy_lu(struct ufs_hba * hba,struct scsi_device * sdev)2424 void ufshpb_destroy_lu(struct ufs_hba *hba, struct scsi_device *sdev)
2425 {
2426 struct ufshpb_lu *hpb = ufshpb_get_hpb_data(sdev);
2427
2428 if (!hpb)
2429 return;
2430
2431 ufshpb_set_state(hpb, HPB_FAILED);
2432
2433 sdev = hpb->sdev_ufs_lu;
2434 sdev->hostdata = NULL;
2435
2436 ufshpb_cancel_jobs(hpb);
2437
2438 ufshpb_pre_req_mempool_destroy(hpb);
2439 ufshpb_destroy_region_tbl(hpb);
2440
2441 kmem_cache_destroy(hpb->map_req_cache);
2442 kmem_cache_destroy(hpb->m_page_cache);
2443
2444 list_del_init(&hpb->list_hpb_lu);
2445
2446 kfree(hpb);
2447 }
2448
ufshpb_hpb_lu_prepared(struct ufs_hba * hba)2449 static void ufshpb_hpb_lu_prepared(struct ufs_hba *hba)
2450 {
2451 int pool_size;
2452 struct ufshpb_lu *hpb;
2453 struct scsi_device *sdev;
2454 bool init_success;
2455
2456 if (tot_active_srgn_pages == 0) {
2457 ufshpb_remove(hba);
2458 return;
2459 }
2460
2461 init_success = !ufshpb_check_hpb_reset_query(hba);
2462
2463 pool_size = PAGE_ALIGN(ufshpb_host_map_kbytes * 1024) / PAGE_SIZE;
2464 if (pool_size > tot_active_srgn_pages) {
2465 mempool_resize(ufshpb_mctx_pool, tot_active_srgn_pages);
2466 mempool_resize(ufshpb_page_pool, tot_active_srgn_pages);
2467 }
2468
2469 shost_for_each_device(sdev, hba->host) {
2470 hpb = ufshpb_get_hpb_data(sdev);
2471 if (!hpb)
2472 continue;
2473
2474 if (init_success) {
2475 ufshpb_set_state(hpb, HPB_PRESENT);
2476 if ((hpb->lu_pinned_end - hpb->lu_pinned_start) > 0)
2477 queue_work(ufshpb_wq, &hpb->map_work);
2478 } else {
2479 dev_err(hba->dev, "destroy HPB lu %d\n", hpb->lun);
2480 ufshpb_destroy_lu(hba, sdev);
2481 }
2482 }
2483
2484 if (!init_success)
2485 ufshpb_remove(hba);
2486 }
2487
ufshpb_init_hpb_lu(struct ufs_hba * hba,struct scsi_device * sdev)2488 void ufshpb_init_hpb_lu(struct ufs_hba *hba, struct scsi_device *sdev)
2489 {
2490 struct ufshpb_lu *hpb;
2491 int ret;
2492 struct ufshpb_lu_info hpb_lu_info = { 0 };
2493 int lun = sdev->lun;
2494
2495 if (lun >= hba->dev_info.max_lu_supported)
2496 goto out;
2497
2498 ret = ufshpb_get_lu_info(hba, lun, &hpb_lu_info);
2499 if (ret)
2500 goto out;
2501
2502 hpb = ufshpb_alloc_hpb_lu(hba, sdev, &hba->ufshpb_dev,
2503 &hpb_lu_info);
2504 if (!hpb)
2505 goto out;
2506
2507 tot_active_srgn_pages += hpb_lu_info.max_active_rgns *
2508 hpb->srgns_per_rgn * hpb->pages_per_srgn;
2509
2510 out:
2511 /* All LUs are initialized */
2512 if (atomic_dec_and_test(&hba->ufshpb_dev.slave_conf_cnt))
2513 ufshpb_hpb_lu_prepared(hba);
2514 }
2515
ufshpb_init_mem_wq(struct ufs_hba * hba)2516 static int ufshpb_init_mem_wq(struct ufs_hba *hba)
2517 {
2518 int ret;
2519 unsigned int pool_size;
2520
2521 ufshpb_mctx_cache = kmem_cache_create("ufshpb_mctx_cache",
2522 sizeof(struct ufshpb_map_ctx),
2523 0, 0, NULL);
2524 if (!ufshpb_mctx_cache) {
2525 dev_err(hba->dev, "ufshpb: cannot init mctx cache\n");
2526 return -ENOMEM;
2527 }
2528
2529 pool_size = PAGE_ALIGN(ufshpb_host_map_kbytes * 1024) / PAGE_SIZE;
2530 dev_info(hba->dev, "%s:%d ufshpb_host_map_kbytes %u pool_size %u\n",
2531 __func__, __LINE__, ufshpb_host_map_kbytes, pool_size);
2532
2533 ufshpb_mctx_pool = mempool_create_slab_pool(pool_size,
2534 ufshpb_mctx_cache);
2535 if (!ufshpb_mctx_pool) {
2536 dev_err(hba->dev, "ufshpb: cannot init mctx pool\n");
2537 ret = -ENOMEM;
2538 goto release_mctx_cache;
2539 }
2540
2541 ufshpb_page_pool = mempool_create_page_pool(pool_size, 0);
2542 if (!ufshpb_page_pool) {
2543 dev_err(hba->dev, "ufshpb: cannot init page pool\n");
2544 ret = -ENOMEM;
2545 goto release_mctx_pool;
2546 }
2547
2548 ufshpb_wq = alloc_workqueue("ufshpb-wq",
2549 WQ_UNBOUND | WQ_MEM_RECLAIM, 0);
2550 if (!ufshpb_wq) {
2551 dev_err(hba->dev, "ufshpb: alloc workqueue failed\n");
2552 ret = -ENOMEM;
2553 goto release_page_pool;
2554 }
2555
2556 return 0;
2557
2558 release_page_pool:
2559 mempool_destroy(ufshpb_page_pool);
2560 release_mctx_pool:
2561 mempool_destroy(ufshpb_mctx_pool);
2562 release_mctx_cache:
2563 kmem_cache_destroy(ufshpb_mctx_cache);
2564 return ret;
2565 }
2566
ufshpb_get_geo_info(struct ufs_hba * hba,u8 * geo_buf)2567 void ufshpb_get_geo_info(struct ufs_hba *hba, u8 *geo_buf)
2568 {
2569 struct ufshpb_dev_info *hpb_info = &hba->ufshpb_dev;
2570 int max_active_rgns = 0;
2571 int hpb_num_lu;
2572
2573 hpb_num_lu = geo_buf[GEOMETRY_DESC_PARAM_HPB_NUMBER_LU];
2574 if (hpb_num_lu == 0) {
2575 dev_err(hba->dev, "No HPB LU supported\n");
2576 hpb_info->hpb_disabled = true;
2577 return;
2578 }
2579
2580 hpb_info->rgn_size = geo_buf[GEOMETRY_DESC_PARAM_HPB_REGION_SIZE];
2581 hpb_info->srgn_size = geo_buf[GEOMETRY_DESC_PARAM_HPB_SUBREGION_SIZE];
2582 max_active_rgns = get_unaligned_be16(geo_buf +
2583 GEOMETRY_DESC_PARAM_HPB_MAX_ACTIVE_REGS);
2584
2585 if (hpb_info->rgn_size == 0 || hpb_info->srgn_size == 0 ||
2586 max_active_rgns == 0) {
2587 dev_err(hba->dev, "No HPB supported device\n");
2588 hpb_info->hpb_disabled = true;
2589 return;
2590 }
2591 }
2592
ufshpb_get_dev_info(struct ufs_hba * hba,u8 * desc_buf)2593 void ufshpb_get_dev_info(struct ufs_hba *hba, u8 *desc_buf)
2594 {
2595 struct ufshpb_dev_info *hpb_dev_info = &hba->ufshpb_dev;
2596 int version, ret;
2597 int max_single_cmd;
2598
2599 hpb_dev_info->control_mode = desc_buf[DEVICE_DESC_PARAM_HPB_CONTROL];
2600
2601 version = get_unaligned_be16(desc_buf + DEVICE_DESC_PARAM_HPB_VER);
2602 if ((version != HPB_SUPPORT_VERSION) &&
2603 (version != HPB_SUPPORT_LEGACY_VERSION)) {
2604 dev_err(hba->dev, "%s: HPB %x version is not supported.\n",
2605 __func__, version);
2606 hpb_dev_info->hpb_disabled = true;
2607 return;
2608 }
2609
2610 if (version == HPB_SUPPORT_LEGACY_VERSION)
2611 hpb_dev_info->is_legacy = true;
2612
2613 /*
2614 * Get the number of user logical unit to check whether all
2615 * scsi_device finish initialization
2616 */
2617 hpb_dev_info->num_lu = desc_buf[DEVICE_DESC_PARAM_NUM_LU];
2618
2619 if (hpb_dev_info->is_legacy)
2620 return;
2621
2622 ret = ufshcd_query_attr_retry(hba, UPIU_QUERY_OPCODE_READ_ATTR,
2623 QUERY_ATTR_IDN_MAX_HPB_SINGLE_CMD, 0, 0, &max_single_cmd);
2624
2625 if (ret)
2626 hpb_dev_info->max_hpb_single_cmd = HPB_LEGACY_CHUNK_HIGH;
2627 else
2628 hpb_dev_info->max_hpb_single_cmd = min(max_single_cmd + 1, HPB_MULTI_CHUNK_HIGH);
2629 }
2630
ufshpb_init(struct ufs_hba * hba)2631 void ufshpb_init(struct ufs_hba *hba)
2632 {
2633 struct ufshpb_dev_info *hpb_dev_info = &hba->ufshpb_dev;
2634 int try;
2635 int ret;
2636
2637 if (!ufshpb_is_allowed(hba) || !hba->dev_info.hpb_enabled)
2638 return;
2639
2640 if (ufshpb_init_mem_wq(hba)) {
2641 hpb_dev_info->hpb_disabled = true;
2642 return;
2643 }
2644
2645 atomic_set(&hpb_dev_info->slave_conf_cnt, hpb_dev_info->num_lu);
2646 tot_active_srgn_pages = 0;
2647 /* issue HPB reset query */
2648 for (try = 0; try < HPB_RESET_REQ_RETRIES; try++) {
2649 ret = ufshcd_query_flag(hba, UPIU_QUERY_OPCODE_SET_FLAG,
2650 QUERY_FLAG_IDN_HPB_RESET, 0, NULL);
2651 if (!ret)
2652 break;
2653 }
2654 }
2655
ufshpb_remove(struct ufs_hba * hba)2656 void ufshpb_remove(struct ufs_hba *hba)
2657 {
2658 mempool_destroy(ufshpb_page_pool);
2659 mempool_destroy(ufshpb_mctx_pool);
2660 kmem_cache_destroy(ufshpb_mctx_cache);
2661
2662 destroy_workqueue(ufshpb_wq);
2663 }
2664
2665 module_param(ufshpb_host_map_kbytes, uint, 0644);
2666 MODULE_PARM_DESC(ufshpb_host_map_kbytes,
2667 "ufshpb host mapping memory kilo-bytes for ufshpb memory-pool");
2668