source: rtems/cpukit/libblock/src/bdbuf.c @ 40284de

4.115
Last change on this file since 40284de was 40284de, checked in by Sebastian Huber <sebastian.huber@…>, on 05/30/12 at 10:43:56

libblock: Remove const qualifier from bdbuf API

This allows addtion of per disk statistics for example.

  • Property mode set to 100644
File size: 79.6 KB
Line 
1/**
2 * @file
3 *
4 * @ingroup rtems_bdbuf
5 *
6 * Block device buffer management.
7 */
8
9/*
10 * Disk I/O buffering
11 * Buffer managment
12 *
13 * Copyright (C) 2001 OKTET Ltd., St.-Peterburg, Russia
14 * Author: Andrey G. Ivanov <Andrey.Ivanov@oktet.ru>
15 *         Victor V. Vengerov <vvv@oktet.ru>
16 *         Alexander Kukuta <kam@oktet.ru>
17 *
18 * Copyright (C) 2008,2009 Chris Johns <chrisj@rtems.org>
19 *    Rewritten to remove score mutex access. Fixes many performance
20 *    issues.
21 *
22 * Copyright (c) 2009-2012 embedded brains GmbH.
23 *
24 * @(#) bdbuf.c,v 1.14 2004/04/17 08:15:17 ralf Exp
25 */
26
27/**
28 * Set to 1 to enable debug tracing.
29 */
30#define RTEMS_BDBUF_TRACE 0
31
32#if HAVE_CONFIG_H
33#include "config.h"
34#endif
35#include <limits.h>
36#include <errno.h>
37#include <stdio.h>
38#include <string.h>
39#include <inttypes.h>
40
41#include <rtems.h>
42#include <rtems/error.h>
43#include <rtems/malloc.h>
44
45#include "rtems/bdbuf.h"
46
47#define BDBUF_INVALID_DEV NULL
48
49/*
50 * Simpler label for this file.
51 */
52#define bdbuf_config rtems_bdbuf_configuration
53
54/**
55 * A swapout transfer transaction data. This data is passed to a worked thread
56 * to handle the write phase of the transfer.
57 */
58typedef struct rtems_bdbuf_swapout_transfer
59{
60  rtems_chain_control   bds;         /**< The transfer list of BDs. */
61  const rtems_disk_device *dd;       /**< The device the transfer is for. */
62  bool                  syncing;     /**< The data is a sync'ing. */
63  rtems_blkdev_request* write_req;   /**< The write request array. */
64  uint32_t              bufs_per_bd; /**< Number of buffers per bd. */
65} rtems_bdbuf_swapout_transfer;
66
67/**
68 * Swapout worker thread. These are available to take processing from the
69 * main swapout thread and handle the I/O operation.
70 */
71typedef struct rtems_bdbuf_swapout_worker
72{
73  rtems_chain_node             link;     /**< The threads sit on a chain when
74                                          * idle. */
75  rtems_id                     id;       /**< The id of the task so we can wake
76                                          * it. */
77  bool                         enabled;  /**< The worker is enabled. */
78  rtems_bdbuf_swapout_transfer transfer; /**< The transfer data for this
79                                          * thread. */
80} rtems_bdbuf_swapout_worker;
81
82/**
83 * Buffer waiters synchronization.
84 */
85typedef struct rtems_bdbuf_waiters {
86  unsigned count;
87  rtems_id sema;
88} rtems_bdbuf_waiters;
89
90/**
91 * The BD buffer cache.
92 */
93typedef struct rtems_bdbuf_cache
94{
95  rtems_id            swapout;           /**< Swapout task ID */
96  bool                swapout_enabled;   /**< Swapout is only running if
97                                          * enabled. Set to false to kill the
98                                          * swap out task. It deletes itself. */
99  rtems_chain_control swapout_workers;   /**< The work threads for the swapout
100                                          * task. */
101
102  rtems_bdbuf_buffer* bds;               /**< Pointer to table of buffer
103                                          * descriptors. */
104  void*               buffers;           /**< The buffer's memory. */
105  size_t              buffer_min_count;  /**< Number of minimum size buffers
106                                          * that fit the buffer memory. */
107  size_t              max_bds_per_group; /**< The number of BDs of minimum
108                                          * buffer size that fit in a group. */
109  uint32_t            flags;             /**< Configuration flags. */
110
111  rtems_id            lock;              /**< The cache lock. It locks all
112                                          * cache data, BD and lists. */
113  rtems_id            sync_lock;         /**< Sync calls block writes. */
114  bool                sync_active;       /**< True if a sync is active. */
115  rtems_id            sync_requester;    /**< The sync requester. */
116  const rtems_disk_device *sync_device;  /**< The device to sync and
117                                          * BDBUF_INVALID_DEV not a device
118                                          * sync. */
119
120  rtems_bdbuf_buffer* tree;              /**< Buffer descriptor lookup AVL tree
121                                          * root. There is only one. */
122  rtems_chain_control lru;               /**< Least recently used list */
123  rtems_chain_control modified;          /**< Modified buffers list */
124  rtems_chain_control sync;              /**< Buffers to sync list */
125
126  rtems_bdbuf_waiters access_waiters;    /**< Wait for a buffer in
127                                          * ACCESS_CACHED, ACCESS_MODIFIED or
128                                          * ACCESS_EMPTY
129                                          * state. */
130  rtems_bdbuf_waiters transfer_waiters;  /**< Wait for a buffer in TRANSFER
131                                          * state. */
132  rtems_bdbuf_waiters buffer_waiters;    /**< Wait for a buffer and no one is
133                                          * available. */
134
135  size_t              group_count;       /**< The number of groups. */
136  rtems_bdbuf_group*  groups;            /**< The groups. */
137
138  bool                initialised;       /**< Initialised state. */
139} rtems_bdbuf_cache;
140
141/**
142 * Fatal errors
143 */
144#define RTEMS_BLKDEV_FATAL_ERROR(n) \
145  (((uint32_t)'B' << 24) | ((uint32_t)(n) & (uint32_t)0x00FFFFFF))
146
147#define RTEMS_BLKDEV_FATAL_BDBUF_STATE_11      RTEMS_BLKDEV_FATAL_ERROR(1)
148#define RTEMS_BLKDEV_FATAL_BDBUF_STATE_4       RTEMS_BLKDEV_FATAL_ERROR(2)
149#define RTEMS_BLKDEV_FATAL_BDBUF_STATE_5       RTEMS_BLKDEV_FATAL_ERROR(3)
150#define RTEMS_BLKDEV_FATAL_BDBUF_STATE_6       RTEMS_BLKDEV_FATAL_ERROR(4)
151#define RTEMS_BLKDEV_FATAL_BDBUF_STATE_7       RTEMS_BLKDEV_FATAL_ERROR(5)
152#define RTEMS_BLKDEV_FATAL_BDBUF_STATE_8       RTEMS_BLKDEV_FATAL_ERROR(6)
153#define RTEMS_BLKDEV_FATAL_BDBUF_STATE_9       RTEMS_BLKDEV_FATAL_ERROR(7)
154#define RTEMS_BLKDEV_FATAL_BDBUF_STATE_10      RTEMS_BLKDEV_FATAL_ERROR(8)
155#define RTEMS_BLKDEV_FATAL_BDBUF_TREE_RM       RTEMS_BLKDEV_FATAL_ERROR(9)
156#define RTEMS_BLKDEV_FATAL_BDBUF_SWAPOUT       RTEMS_BLKDEV_FATAL_ERROR(10)
157
158/*
159 * The lock/unlock fatal errors occur in case the bdbuf is not initialized with
160 * rtems_bdbuf_init().  General system corruption like stack overflow etc. may
161 * also trigger these fatal errors.
162 */
163#define RTEMS_BLKDEV_FATAL_BDBUF_SYNC_LOCK     RTEMS_BLKDEV_FATAL_ERROR(11)
164#define RTEMS_BLKDEV_FATAL_BDBUF_SYNC_UNLOCK   RTEMS_BLKDEV_FATAL_ERROR(12)
165#define RTEMS_BLKDEV_FATAL_BDBUF_CACHE_LOCK    RTEMS_BLKDEV_FATAL_ERROR(13)
166#define RTEMS_BLKDEV_FATAL_BDBUF_CACHE_UNLOCK  RTEMS_BLKDEV_FATAL_ERROR(14)
167
168#define RTEMS_BLKDEV_FATAL_BDBUF_PREEMPT_DIS   RTEMS_BLKDEV_FATAL_ERROR(15)
169#define RTEMS_BLKDEV_FATAL_BDBUF_CACHE_WAIT_2  RTEMS_BLKDEV_FATAL_ERROR(16)
170#define RTEMS_BLKDEV_FATAL_BDBUF_PREEMPT_RST   RTEMS_BLKDEV_FATAL_ERROR(17)
171#define RTEMS_BLKDEV_FATAL_BDBUF_CACHE_WAIT_TO RTEMS_BLKDEV_FATAL_ERROR(18)
172#define RTEMS_BLKDEV_FATAL_BDBUF_CACHE_WAKE    RTEMS_BLKDEV_FATAL_ERROR(19)
173#define RTEMS_BLKDEV_FATAL_BDBUF_SO_WAKE       RTEMS_BLKDEV_FATAL_ERROR(20)
174#define RTEMS_BLKDEV_FATAL_BDBUF_SO_NOMEM      RTEMS_BLKDEV_FATAL_ERROR(21)
175#define RTEMS_BLKDEV_FATAL_BDBUF_SO_WK_CREATE  RTEMS_BLKDEV_FATAL_ERROR(22)
176#define BLKDEV_FATAL_BDBUF_SWAPOUT_RE          RTEMS_BLKDEV_FATAL_ERROR(24)
177#define BLKDEV_FATAL_BDBUF_SWAPOUT_TS          RTEMS_BLKDEV_FATAL_ERROR(25)
178#define RTEMS_BLKDEV_FATAL_BDBUF_WAIT_EVNT     RTEMS_BLKDEV_FATAL_ERROR(26)
179#define RTEMS_BLKDEV_FATAL_BDBUF_RECYCLE       RTEMS_BLKDEV_FATAL_ERROR(27)
180#define RTEMS_BLKDEV_FATAL_BDBUF_STATE_0       RTEMS_BLKDEV_FATAL_ERROR(28)
181#define RTEMS_BLKDEV_FATAL_BDBUF_STATE_1       RTEMS_BLKDEV_FATAL_ERROR(29)
182#define RTEMS_BLKDEV_FATAL_BDBUF_STATE_2       RTEMS_BLKDEV_FATAL_ERROR(30)
183
184/**
185 * The events used in this code. These should be system events rather than
186 * application events.
187 */
188#define RTEMS_BDBUF_TRANSFER_SYNC  RTEMS_EVENT_1
189#define RTEMS_BDBUF_SWAPOUT_SYNC   RTEMS_EVENT_2
190
191/**
192 * Lock semaphore attributes. This is used for locking type mutexes.
193 *
194 * @warning Priority inheritance is on.
195 */
196#define RTEMS_BDBUF_CACHE_LOCK_ATTRIBS \
197  (RTEMS_PRIORITY | RTEMS_BINARY_SEMAPHORE | \
198   RTEMS_INHERIT_PRIORITY | RTEMS_NO_PRIORITY_CEILING | RTEMS_LOCAL)
199
200/**
201 * Waiter semaphore attributes.
202 *
203 * @warning Do not configure as inherit priority. If a driver is in the driver
204 *          initialisation table this locked semaphore will have the IDLE task
205 *          as the holder and a blocking task will raise the priority of the
206 *          IDLE task which can cause unsual side effects.
207 */
208#define RTEMS_BDBUF_CACHE_WAITER_ATTRIBS \
209  (RTEMS_PRIORITY | RTEMS_SIMPLE_BINARY_SEMAPHORE | \
210   RTEMS_NO_INHERIT_PRIORITY | RTEMS_NO_PRIORITY_CEILING | RTEMS_LOCAL)
211
212/**
213 * Waiter timeout. Set to non-zero to find some info on a waiter that is
214 * waiting too long.
215 */
216#define RTEMS_BDBUF_WAIT_TIMEOUT RTEMS_NO_TIMEOUT
217#if !defined (RTEMS_BDBUF_WAIT_TIMEOUT)
218#define RTEMS_BDBUF_WAIT_TIMEOUT \
219  (TOD_MICROSECONDS_TO_TICKS (20000000))
220#endif
221
222/*
223 * The swap out task.
224 */
225static rtems_task rtems_bdbuf_swapout_task(rtems_task_argument arg);
226
227/**
228 * The Buffer Descriptor cache.
229 */
230static rtems_bdbuf_cache bdbuf_cache;
231
232#if RTEMS_BDBUF_TRACE
233/**
234 * If true output the trace message.
235 */
236bool rtems_bdbuf_tracer;
237
238/**
239 * Return the number of items on the list.
240 *
241 * @param list The chain control.
242 * @return uint32_t The number of items on the list.
243 */
244uint32_t
245rtems_bdbuf_list_count (rtems_chain_control* list)
246{
247  rtems_chain_node* node = rtems_chain_first (list);
248  uint32_t          count = 0;
249  while (!rtems_chain_is_tail (list, node))
250  {
251    count++;
252    node = rtems_chain_next (node);
253  }
254  return count;
255}
256
257/**
258 * Show the usage for the bdbuf cache.
259 */
260void
261rtems_bdbuf_show_usage (void)
262{
263  uint32_t group;
264  uint32_t total = 0;
265  uint32_t val;
266
267  for (group = 0; group < bdbuf_cache.group_count; group++)
268    total += bdbuf_cache.groups[group].users;
269  printf ("bdbuf:group users=%lu", total);
270  val = rtems_bdbuf_list_count (&bdbuf_cache.lru);
271  printf (", lru=%lu", val);
272  total = val;
273  val = rtems_bdbuf_list_count (&bdbuf_cache.modified);
274  printf (", mod=%lu", val);
275  total += val;
276  val = rtems_bdbuf_list_count (&bdbuf_cache.sync);
277  printf (", sync=%lu", val);
278  total += val;
279  printf (", total=%lu\n", total);
280}
281
282/**
283 * Show the users for a group of a bd.
284 *
285 * @param where A label to show the context of output.
286 * @param bd The bd to show the users of.
287 */
288void
289rtems_bdbuf_show_users (const char* where, rtems_bdbuf_buffer* bd)
290{
291  const char* states[] =
292    { "FR", "EM", "CH", "AC", "AM", "AE", "AP", "MD", "SY", "TR", "TP" };
293
294  printf ("bdbuf:users: %15s: [%" PRIu32 " (%s)] %td:%td = %" PRIu32 " %s\n",
295          where,
296          bd->block, states[bd->state],
297          bd->group - bdbuf_cache.groups,
298          bd - bdbuf_cache.bds,
299          bd->group->users,
300          bd->group->users > 8 ? "<<<<<<<" : "");
301}
302#else
303#define rtems_bdbuf_tracer (0)
304#define rtems_bdbuf_show_usage() ((void) 0)
305#define rtems_bdbuf_show_users(_w, _b) ((void) 0)
306#endif
307
308/**
309 * The default maximum height of 32 allows for AVL trees having between
310 * 5,704,880 and 4,294,967,295 nodes, depending on order of insertion.  You may
311 * change this compile-time constant as you wish.
312 */
313#ifndef RTEMS_BDBUF_AVL_MAX_HEIGHT
314#define RTEMS_BDBUF_AVL_MAX_HEIGHT (32)
315#endif
316
317static void
318rtems_bdbuf_fatal (rtems_bdbuf_buf_state state, uint32_t error)
319{
320  rtems_fatal_error_occurred ((((uint32_t) state) << 16) | error);
321}
322
323/**
324 * Searches for the node with specified dd/block.
325 *
326 * @param root pointer to the root node of the AVL-Tree
327 * @param dd disk device search key
328 * @param block block search key
329 * @retval NULL node with the specified dd/block is not found
330 * @return pointer to the node with specified dd/block
331 */
332static rtems_bdbuf_buffer *
333rtems_bdbuf_avl_search (rtems_bdbuf_buffer** root,
334                        const rtems_disk_device *dd,
335                        rtems_blkdev_bnum    block)
336{
337  rtems_bdbuf_buffer* p = *root;
338
339  while ((p != NULL) && ((p->dd != dd) || (p->block != block)))
340  {
341    if (((uintptr_t) p->dd < (uintptr_t) dd)
342        || ((p->dd == dd) && (p->block < block)))
343    {
344      p = p->avl.right;
345    }
346    else
347    {
348      p = p->avl.left;
349    }
350  }
351
352  return p;
353}
354
355/**
356 * Inserts the specified node to the AVl-Tree.
357 *
358 * @param root pointer to the root node of the AVL-Tree
359 * @param node Pointer to the node to add.
360 * @retval 0 The node added successfully
361 * @retval -1 An error occured
362 */
363static int
364rtems_bdbuf_avl_insert(rtems_bdbuf_buffer** root,
365                       rtems_bdbuf_buffer*  node)
366{
367  const rtems_disk_device *dd = node->dd;
368  rtems_blkdev_bnum block = node->block;
369
370  rtems_bdbuf_buffer*  p = *root;
371  rtems_bdbuf_buffer*  q;
372  rtems_bdbuf_buffer*  p1;
373  rtems_bdbuf_buffer*  p2;
374  rtems_bdbuf_buffer*  buf_stack[RTEMS_BDBUF_AVL_MAX_HEIGHT];
375  rtems_bdbuf_buffer** buf_prev = buf_stack;
376
377  bool modified = false;
378
379  if (p == NULL)
380  {
381    *root = node;
382    node->avl.left = NULL;
383    node->avl.right = NULL;
384    node->avl.bal = 0;
385    return 0;
386  }
387
388  while (p != NULL)
389  {
390    *buf_prev++ = p;
391
392    if (((uintptr_t) p->dd < (uintptr_t) dd)
393        || ((p->dd == dd) && (p->block < block)))
394    {
395      p->avl.cache = 1;
396      q = p->avl.right;
397      if (q == NULL)
398      {
399        q = node;
400        p->avl.right = q = node;
401        break;
402      }
403    }
404    else if ((p->dd != dd) || (p->block != block))
405    {
406      p->avl.cache = -1;
407      q = p->avl.left;
408      if (q == NULL)
409      {
410        q = node;
411        p->avl.left = q;
412        break;
413      }
414    }
415    else
416    {
417      return -1;
418    }
419
420    p = q;
421  }
422
423  q->avl.left = q->avl.right = NULL;
424  q->avl.bal = 0;
425  modified = true;
426  buf_prev--;
427
428  while (modified)
429  {
430    if (p->avl.cache == -1)
431    {
432      switch (p->avl.bal)
433      {
434        case 1:
435          p->avl.bal = 0;
436          modified = false;
437          break;
438
439        case 0:
440          p->avl.bal = -1;
441          break;
442
443        case -1:
444          p1 = p->avl.left;
445          if (p1->avl.bal == -1) /* simple LL-turn */
446          {
447            p->avl.left = p1->avl.right;
448            p1->avl.right = p;
449            p->avl.bal = 0;
450            p = p1;
451          }
452          else /* double LR-turn */
453          {
454            p2 = p1->avl.right;
455            p1->avl.right = p2->avl.left;
456            p2->avl.left = p1;
457            p->avl.left = p2->avl.right;
458            p2->avl.right = p;
459            if (p2->avl.bal == -1) p->avl.bal = +1; else p->avl.bal = 0;
460            if (p2->avl.bal == +1) p1->avl.bal = -1; else p1->avl.bal = 0;
461            p = p2;
462          }
463          p->avl.bal = 0;
464          modified = false;
465          break;
466
467        default:
468          break;
469      }
470    }
471    else
472    {
473      switch (p->avl.bal)
474      {
475        case -1:
476          p->avl.bal = 0;
477          modified = false;
478          break;
479
480        case 0:
481          p->avl.bal = 1;
482          break;
483
484        case 1:
485          p1 = p->avl.right;
486          if (p1->avl.bal == 1) /* simple RR-turn */
487          {
488            p->avl.right = p1->avl.left;
489            p1->avl.left = p;
490            p->avl.bal = 0;
491            p = p1;
492          }
493          else /* double RL-turn */
494          {
495            p2 = p1->avl.left;
496            p1->avl.left = p2->avl.right;
497            p2->avl.right = p1;
498            p->avl.right = p2->avl.left;
499            p2->avl.left = p;
500            if (p2->avl.bal == +1) p->avl.bal = -1; else p->avl.bal = 0;
501            if (p2->avl.bal == -1) p1->avl.bal = +1; else p1->avl.bal = 0;
502            p = p2;
503          }
504          p->avl.bal = 0;
505          modified = false;
506          break;
507
508        default:
509          break;
510      }
511    }
512    q = p;
513    if (buf_prev > buf_stack)
514    {
515      p = *--buf_prev;
516
517      if (p->avl.cache == -1)
518      {
519        p->avl.left = q;
520      }
521      else
522      {
523        p->avl.right = q;
524      }
525    }
526    else
527    {
528      *root = p;
529      break;
530    }
531  };
532
533  return 0;
534}
535
536
537/**
538 * Removes the node from the tree.
539 *
540 * @param root Pointer to pointer to the root node
541 * @param node Pointer to the node to remove
542 * @retval 0 Item removed
543 * @retval -1 No such item found
544 */
545static int
546rtems_bdbuf_avl_remove(rtems_bdbuf_buffer**      root,
547                       const rtems_bdbuf_buffer* node)
548{
549  const rtems_disk_device *dd = node->dd;
550  rtems_blkdev_bnum block = node->block;
551
552  rtems_bdbuf_buffer*  p = *root;
553  rtems_bdbuf_buffer*  q;
554  rtems_bdbuf_buffer*  r;
555  rtems_bdbuf_buffer*  s;
556  rtems_bdbuf_buffer*  p1;
557  rtems_bdbuf_buffer*  p2;
558  rtems_bdbuf_buffer*  buf_stack[RTEMS_BDBUF_AVL_MAX_HEIGHT];
559  rtems_bdbuf_buffer** buf_prev = buf_stack;
560
561  bool modified = false;
562
563  memset (buf_stack, 0, sizeof(buf_stack));
564
565  while (p != NULL)
566  {
567    *buf_prev++ = p;
568
569    if (((uintptr_t) p->dd < (uintptr_t) dd)
570        || ((p->dd == dd) && (p->block < block)))
571    {
572      p->avl.cache = 1;
573      p = p->avl.right;
574    }
575    else if ((p->dd != dd) || (p->block != block))
576    {
577      p->avl.cache = -1;
578      p = p->avl.left;
579    }
580    else
581    {
582      /* node found */
583      break;
584    }
585  }
586
587  if (p == NULL)
588  {
589    /* there is no such node */
590    return -1;
591  }
592
593  q = p;
594
595  buf_prev--;
596  if (buf_prev > buf_stack)
597  {
598    p = *(buf_prev - 1);
599  }
600  else
601  {
602    p = NULL;
603  }
604
605  /* at this moment q - is a node to delete, p is q's parent */
606  if (q->avl.right == NULL)
607  {
608    r = q->avl.left;
609    if (r != NULL)
610    {
611      r->avl.bal = 0;
612    }
613    q = r;
614  }
615  else
616  {
617    rtems_bdbuf_buffer **t;
618
619    r = q->avl.right;
620
621    if (r->avl.left == NULL)
622    {
623      r->avl.left = q->avl.left;
624      r->avl.bal = q->avl.bal;
625      r->avl.cache = 1;
626      *buf_prev++ = q = r;
627    }
628    else
629    {
630      t = buf_prev++;
631      s = r;
632
633      while (s->avl.left != NULL)
634      {
635        *buf_prev++ = r = s;
636        s = r->avl.left;
637        r->avl.cache = -1;
638      }
639
640      s->avl.left = q->avl.left;
641      r->avl.left = s->avl.right;
642      s->avl.right = q->avl.right;
643      s->avl.bal = q->avl.bal;
644      s->avl.cache = 1;
645
646      *t = q = s;
647    }
648  }
649
650  if (p != NULL)
651  {
652    if (p->avl.cache == -1)
653    {
654      p->avl.left = q;
655    }
656    else
657    {
658      p->avl.right = q;
659    }
660  }
661  else
662  {
663    *root = q;
664  }
665
666  modified = true;
667
668  while (modified)
669  {
670    if (buf_prev > buf_stack)
671    {
672      p = *--buf_prev;
673    }
674    else
675    {
676      break;
677    }
678
679    if (p->avl.cache == -1)
680    {
681      /* rebalance left branch */
682      switch (p->avl.bal)
683      {
684        case -1:
685          p->avl.bal = 0;
686          break;
687        case  0:
688          p->avl.bal = 1;
689          modified = false;
690          break;
691
692        case +1:
693          p1 = p->avl.right;
694
695          if (p1->avl.bal >= 0) /* simple RR-turn */
696          {
697            p->avl.right = p1->avl.left;
698            p1->avl.left = p;
699
700            if (p1->avl.bal == 0)
701            {
702              p1->avl.bal = -1;
703              modified = false;
704            }
705            else
706            {
707              p->avl.bal = 0;
708              p1->avl.bal = 0;
709            }
710            p = p1;
711          }
712          else /* double RL-turn */
713          {
714            p2 = p1->avl.left;
715
716            p1->avl.left = p2->avl.right;
717            p2->avl.right = p1;
718            p->avl.right = p2->avl.left;
719            p2->avl.left = p;
720
721            if (p2->avl.bal == +1) p->avl.bal = -1; else p->avl.bal = 0;
722            if (p2->avl.bal == -1) p1->avl.bal = 1; else p1->avl.bal = 0;
723
724            p = p2;
725            p2->avl.bal = 0;
726          }
727          break;
728
729        default:
730          break;
731      }
732    }
733    else
734    {
735      /* rebalance right branch */
736      switch (p->avl.bal)
737      {
738        case +1:
739          p->avl.bal = 0;
740          break;
741
742        case  0:
743          p->avl.bal = -1;
744          modified = false;
745          break;
746
747        case -1:
748          p1 = p->avl.left;
749
750          if (p1->avl.bal <= 0) /* simple LL-turn */
751          {
752            p->avl.left = p1->avl.right;
753            p1->avl.right = p;
754            if (p1->avl.bal == 0)
755            {
756              p1->avl.bal = 1;
757              modified = false;
758            }
759            else
760            {
761              p->avl.bal = 0;
762              p1->avl.bal = 0;
763            }
764            p = p1;
765          }
766          else /* double LR-turn */
767          {
768            p2 = p1->avl.right;
769
770            p1->avl.right = p2->avl.left;
771            p2->avl.left = p1;
772            p->avl.left = p2->avl.right;
773            p2->avl.right = p;
774
775            if (p2->avl.bal == -1) p->avl.bal = 1; else p->avl.bal = 0;
776            if (p2->avl.bal == +1) p1->avl.bal = -1; else p1->avl.bal = 0;
777
778            p = p2;
779            p2->avl.bal = 0;
780          }
781          break;
782
783        default:
784          break;
785      }
786    }
787
788    if (buf_prev > buf_stack)
789    {
790      q = *(buf_prev - 1);
791
792      if (q->avl.cache == -1)
793      {
794        q->avl.left = p;
795      }
796      else
797      {
798        q->avl.right = p;
799      }
800    }
801    else
802    {
803      *root = p;
804      break;
805    }
806
807  }
808
809  return 0;
810}
811
812static void
813rtems_bdbuf_set_state (rtems_bdbuf_buffer *bd, rtems_bdbuf_buf_state state)
814{
815  bd->state = state;
816}
817
818static rtems_blkdev_bnum
819rtems_bdbuf_media_block (const rtems_disk_device *dd, rtems_blkdev_bnum block)
820{
821  if (dd->block_to_media_block_shift >= 0)
822    return block << dd->block_to_media_block_shift;
823  else
824    /*
825     * Change the block number for the block size to the block number for the media
826     * block size. We have to use 64bit maths. There is no short cut here.
827     */
828    return (rtems_blkdev_bnum)
829      ((((uint64_t) block) * dd->block_size) / dd->media_block_size);
830}
831
832/**
833 * Lock the mutex. A single task can nest calls.
834 *
835 * @param lock The mutex to lock.
836 * @param fatal_error_code The error code if the call fails.
837 */
838static void
839rtems_bdbuf_lock (rtems_id lock, uint32_t fatal_error_code)
840{
841  rtems_status_code sc = rtems_semaphore_obtain (lock,
842                                                 RTEMS_WAIT,
843                                                 RTEMS_NO_TIMEOUT);
844  if (sc != RTEMS_SUCCESSFUL)
845    rtems_fatal_error_occurred (fatal_error_code);
846}
847
848/**
849 * Unlock the mutex.
850 *
851 * @param lock The mutex to unlock.
852 * @param fatal_error_code The error code if the call fails.
853 */
854static void
855rtems_bdbuf_unlock (rtems_id lock, uint32_t fatal_error_code)
856{
857  rtems_status_code sc = rtems_semaphore_release (lock);
858  if (sc != RTEMS_SUCCESSFUL)
859    rtems_fatal_error_occurred (fatal_error_code);
860}
861
862/**
863 * Lock the cache. A single task can nest calls.
864 */
865static void
866rtems_bdbuf_lock_cache (void)
867{
868  rtems_bdbuf_lock (bdbuf_cache.lock, RTEMS_BLKDEV_FATAL_BDBUF_CACHE_LOCK);
869}
870
871/**
872 * Unlock the cache.
873 */
874static void
875rtems_bdbuf_unlock_cache (void)
876{
877  rtems_bdbuf_unlock (bdbuf_cache.lock, RTEMS_BLKDEV_FATAL_BDBUF_CACHE_UNLOCK);
878}
879
880/**
881 * Lock the cache's sync. A single task can nest calls.
882 */
883static void
884rtems_bdbuf_lock_sync (void)
885{
886  rtems_bdbuf_lock (bdbuf_cache.sync_lock, RTEMS_BLKDEV_FATAL_BDBUF_SYNC_LOCK);
887}
888
889/**
890 * Unlock the cache's sync lock. Any blocked writers are woken.
891 */
892static void
893rtems_bdbuf_unlock_sync (void)
894{
895  rtems_bdbuf_unlock (bdbuf_cache.sync_lock,
896                      RTEMS_BLKDEV_FATAL_BDBUF_SYNC_UNLOCK);
897}
898
899static void
900rtems_bdbuf_group_obtain (rtems_bdbuf_buffer *bd)
901{
902  ++bd->group->users;
903}
904
905static void
906rtems_bdbuf_group_release (rtems_bdbuf_buffer *bd)
907{
908  --bd->group->users;
909}
910
911static rtems_mode
912rtems_bdbuf_disable_preemption (void)
913{
914  rtems_status_code sc = RTEMS_SUCCESSFUL;
915  rtems_mode prev_mode = 0;
916
917  sc = rtems_task_mode (RTEMS_NO_PREEMPT, RTEMS_PREEMPT_MASK, &prev_mode);
918  if (sc != RTEMS_SUCCESSFUL)
919    rtems_fatal_error_occurred (RTEMS_BLKDEV_FATAL_BDBUF_PREEMPT_DIS);
920
921  return prev_mode;
922}
923
924static void
925rtems_bdbuf_restore_preemption (rtems_mode prev_mode)
926{
927  rtems_status_code sc = RTEMS_SUCCESSFUL;
928
929  sc = rtems_task_mode (prev_mode, RTEMS_ALL_MODE_MASKS, &prev_mode);
930  if (sc != RTEMS_SUCCESSFUL)
931    rtems_fatal_error_occurred (RTEMS_BLKDEV_FATAL_BDBUF_PREEMPT_RST);
932}
933
934/**
935 * Wait until woken. Semaphores are used so a number of tasks can wait and can
936 * be woken at once. Task events would require we maintain a list of tasks to
937 * be woken and this would require storage and we do not know the number of
938 * tasks that could be waiting.
939 *
940 * While we have the cache locked we can try and claim the semaphore and
941 * therefore know when we release the lock to the cache we will block until the
942 * semaphore is released. This may even happen before we get to block.
943 *
944 * A counter is used to save the release call when no one is waiting.
945 *
946 * The function assumes the cache is locked on entry and it will be locked on
947 * exit.
948 */
949static void
950rtems_bdbuf_anonymous_wait (rtems_bdbuf_waiters *waiters)
951{
952  rtems_status_code sc;
953  rtems_mode        prev_mode;
954
955  /*
956   * Indicate we are waiting.
957   */
958  ++waiters->count;
959
960  /*
961   * Disable preemption then unlock the cache and block.  There is no POSIX
962   * condition variable in the core API so this is a work around.
963   *
964   * The issue is a task could preempt after the cache is unlocked because it is
965   * blocking or just hits that window, and before this task has blocked on the
966   * semaphore. If the preempting task flushes the queue this task will not see
967   * the flush and may block for ever or until another transaction flushes this
968   * semaphore.
969   */
970  prev_mode = rtems_bdbuf_disable_preemption ();
971
972  /*
973   * Unlock the cache, wait, and lock the cache when we return.
974   */
975  rtems_bdbuf_unlock_cache ();
976
977  sc = rtems_semaphore_obtain (waiters->sema, RTEMS_WAIT, RTEMS_BDBUF_WAIT_TIMEOUT);
978
979  if (sc == RTEMS_TIMEOUT)
980    rtems_fatal_error_occurred (RTEMS_BLKDEV_FATAL_BDBUF_CACHE_WAIT_TO);
981
982  if (sc != RTEMS_UNSATISFIED)
983    rtems_fatal_error_occurred (RTEMS_BLKDEV_FATAL_BDBUF_CACHE_WAIT_2);
984
985  rtems_bdbuf_lock_cache ();
986
987  rtems_bdbuf_restore_preemption (prev_mode);
988
989  --waiters->count;
990}
991
992static void
993rtems_bdbuf_wait (rtems_bdbuf_buffer *bd, rtems_bdbuf_waiters *waiters)
994{
995  rtems_bdbuf_group_obtain (bd);
996  ++bd->waiters;
997  rtems_bdbuf_anonymous_wait (waiters);
998  --bd->waiters;
999  rtems_bdbuf_group_release (bd);
1000}
1001
1002/**
1003 * Wake a blocked resource. The resource has a counter that lets us know if
1004 * there are any waiters.
1005 */
1006static void
1007rtems_bdbuf_wake (const rtems_bdbuf_waiters *waiters)
1008{
1009  rtems_status_code sc = RTEMS_SUCCESSFUL;
1010
1011  if (waiters->count > 0)
1012  {
1013    sc = rtems_semaphore_flush (waiters->sema);
1014    if (sc != RTEMS_SUCCESSFUL)
1015      rtems_fatal_error_occurred (RTEMS_BLKDEV_FATAL_BDBUF_CACHE_WAKE);
1016  }
1017}
1018
1019static void
1020rtems_bdbuf_wake_swapper (void)
1021{
1022  rtems_status_code sc = rtems_event_send (bdbuf_cache.swapout,
1023                                           RTEMS_BDBUF_SWAPOUT_SYNC);
1024  if (sc != RTEMS_SUCCESSFUL)
1025    rtems_fatal_error_occurred (RTEMS_BLKDEV_FATAL_BDBUF_SO_WAKE);
1026}
1027
1028static bool
1029rtems_bdbuf_has_buffer_waiters (void)
1030{
1031  return bdbuf_cache.buffer_waiters.count;
1032}
1033
1034static void
1035rtems_bdbuf_remove_from_tree (rtems_bdbuf_buffer *bd)
1036{
1037  if (rtems_bdbuf_avl_remove (&bdbuf_cache.tree, bd) != 0)
1038    rtems_bdbuf_fatal (bd->state, RTEMS_BLKDEV_FATAL_BDBUF_TREE_RM);
1039}
1040
1041static void
1042rtems_bdbuf_remove_from_tree_and_lru_list (rtems_bdbuf_buffer *bd)
1043{
1044  switch (bd->state)
1045  {
1046    case RTEMS_BDBUF_STATE_FREE:
1047      break;
1048    case RTEMS_BDBUF_STATE_CACHED:
1049      rtems_bdbuf_remove_from_tree (bd);
1050      break;
1051    default:
1052      rtems_bdbuf_fatal (bd->state, RTEMS_BLKDEV_FATAL_BDBUF_STATE_10);
1053  }
1054
1055  rtems_chain_extract_unprotected (&bd->link);
1056}
1057
1058static void
1059rtems_bdbuf_make_free_and_add_to_lru_list (rtems_bdbuf_buffer *bd)
1060{
1061  rtems_bdbuf_set_state (bd, RTEMS_BDBUF_STATE_FREE);
1062  rtems_chain_prepend_unprotected (&bdbuf_cache.lru, &bd->link);
1063}
1064
1065static void
1066rtems_bdbuf_make_empty (rtems_bdbuf_buffer *bd)
1067{
1068  rtems_bdbuf_set_state (bd, RTEMS_BDBUF_STATE_EMPTY);
1069}
1070
1071static void
1072rtems_bdbuf_make_cached_and_add_to_lru_list (rtems_bdbuf_buffer *bd)
1073{
1074  rtems_bdbuf_set_state (bd, RTEMS_BDBUF_STATE_CACHED);
1075  rtems_chain_append_unprotected (&bdbuf_cache.lru, &bd->link);
1076}
1077
1078static void
1079rtems_bdbuf_discard_buffer (rtems_bdbuf_buffer *bd)
1080{
1081  rtems_bdbuf_make_empty (bd);
1082
1083  if (bd->waiters == 0)
1084  {
1085    rtems_bdbuf_remove_from_tree (bd);
1086    rtems_bdbuf_make_free_and_add_to_lru_list (bd);
1087  }
1088}
1089
1090static void
1091rtems_bdbuf_add_to_modified_list_after_access (rtems_bdbuf_buffer *bd)
1092{
1093  if (bdbuf_cache.sync_active && bdbuf_cache.sync_device == bd->dd)
1094  {
1095    rtems_bdbuf_unlock_cache ();
1096
1097    /*
1098     * Wait for the sync lock.
1099     */
1100    rtems_bdbuf_lock_sync ();
1101
1102    rtems_bdbuf_unlock_sync ();
1103    rtems_bdbuf_lock_cache ();
1104  }
1105
1106  /*
1107   * Only the first modified release sets the timer and any further user
1108   * accesses do not change the timer value which should move down. This
1109   * assumes the user's hold of the buffer is much less than the time on the
1110   * modified list. Resetting the timer on each access which could result in a
1111   * buffer never getting to 0 and never being forced onto disk. This raises a
1112   * difficult question. Is a snapshot of a block that is changing better than
1113   * nothing being written? We have tended to think we should hold changes for
1114   * only a specific period of time even if still changing and get onto disk
1115   * and letting the file system try and recover this position if it can.
1116   */
1117  if (bd->state == RTEMS_BDBUF_STATE_ACCESS_CACHED
1118        || bd->state == RTEMS_BDBUF_STATE_ACCESS_EMPTY)
1119    bd->hold_timer = bdbuf_config.swap_block_hold;
1120
1121  rtems_bdbuf_set_state (bd, RTEMS_BDBUF_STATE_MODIFIED);
1122  rtems_chain_append_unprotected (&bdbuf_cache.modified, &bd->link);
1123
1124  if (bd->waiters)
1125    rtems_bdbuf_wake (&bdbuf_cache.access_waiters);
1126  else if (rtems_bdbuf_has_buffer_waiters ())
1127    rtems_bdbuf_wake_swapper ();
1128}
1129
1130static void
1131rtems_bdbuf_add_to_lru_list_after_access (rtems_bdbuf_buffer *bd)
1132{
1133  rtems_bdbuf_group_release (bd);
1134  rtems_bdbuf_make_cached_and_add_to_lru_list (bd);
1135
1136  if (bd->waiters)
1137    rtems_bdbuf_wake (&bdbuf_cache.access_waiters);
1138  else
1139    rtems_bdbuf_wake (&bdbuf_cache.buffer_waiters);
1140}
1141
1142/**
1143 * Compute the number of BDs per group for a given buffer size.
1144 *
1145 * @param size The buffer size. It can be any size and we scale up.
1146 */
1147static size_t
1148rtems_bdbuf_bds_per_group (size_t size)
1149{
1150  size_t bufs_per_size;
1151  size_t bds_per_size;
1152
1153  if (size > bdbuf_config.buffer_max)
1154    return 0;
1155
1156  bufs_per_size = ((size - 1) / bdbuf_config.buffer_min) + 1;
1157
1158  for (bds_per_size = 1;
1159       bds_per_size < bufs_per_size;
1160       bds_per_size <<= 1)
1161    ;
1162
1163  return bdbuf_cache.max_bds_per_group / bds_per_size;
1164}
1165
1166static void
1167rtems_bdbuf_discard_buffer_after_access (rtems_bdbuf_buffer *bd)
1168{
1169  rtems_bdbuf_group_release (bd);
1170  rtems_bdbuf_discard_buffer (bd);
1171
1172  if (bd->waiters)
1173    rtems_bdbuf_wake (&bdbuf_cache.access_waiters);
1174  else
1175    rtems_bdbuf_wake (&bdbuf_cache.buffer_waiters);
1176}
1177
1178/**
1179 * Reallocate a group. The BDs currently allocated in the group are removed
1180 * from the ALV tree and any lists then the new BD's are prepended to the ready
1181 * list of the cache.
1182 *
1183 * @param group The group to reallocate.
1184 * @param new_bds_per_group The new count of BDs per group.
1185 * @return A buffer of this group.
1186 */
1187static rtems_bdbuf_buffer *
1188rtems_bdbuf_group_realloc (rtems_bdbuf_group* group, size_t new_bds_per_group)
1189{
1190  rtems_bdbuf_buffer* bd;
1191  size_t              b;
1192  size_t              bufs_per_bd;
1193
1194  if (rtems_bdbuf_tracer)
1195    printf ("bdbuf:realloc: %tu: %zd -> %zd\n",
1196            group - bdbuf_cache.groups, group->bds_per_group,
1197            new_bds_per_group);
1198
1199  bufs_per_bd = bdbuf_cache.max_bds_per_group / group->bds_per_group;
1200
1201  for (b = 0, bd = group->bdbuf;
1202       b < group->bds_per_group;
1203       b++, bd += bufs_per_bd)
1204    rtems_bdbuf_remove_from_tree_and_lru_list (bd);
1205
1206  group->bds_per_group = new_bds_per_group;
1207  bufs_per_bd = bdbuf_cache.max_bds_per_group / new_bds_per_group;
1208
1209  for (b = 1, bd = group->bdbuf + bufs_per_bd;
1210       b < group->bds_per_group;
1211       b++, bd += bufs_per_bd)
1212    rtems_bdbuf_make_free_and_add_to_lru_list (bd);
1213
1214  if (b > 1)
1215    rtems_bdbuf_wake (&bdbuf_cache.buffer_waiters);
1216
1217  return group->bdbuf;
1218}
1219
1220static void
1221rtems_bdbuf_setup_empty_buffer (rtems_bdbuf_buffer *bd,
1222                                const rtems_disk_device *dd,
1223                                rtems_blkdev_bnum   block)
1224{
1225  bd->dd        = dd ;
1226  bd->block     = block;
1227  bd->avl.left  = NULL;
1228  bd->avl.right = NULL;
1229  bd->waiters   = 0;
1230
1231  if (rtems_bdbuf_avl_insert (&bdbuf_cache.tree, bd) != 0)
1232    rtems_fatal_error_occurred (RTEMS_BLKDEV_FATAL_BDBUF_RECYCLE);
1233
1234  rtems_bdbuf_make_empty (bd);
1235}
1236
1237static rtems_bdbuf_buffer *
1238rtems_bdbuf_get_buffer_from_lru_list (const rtems_disk_device *dd,
1239                                      rtems_blkdev_bnum block,
1240                                      size_t            bds_per_group)
1241{
1242  rtems_chain_node *node = rtems_chain_first (&bdbuf_cache.lru);
1243
1244  while (!rtems_chain_is_tail (&bdbuf_cache.lru, node))
1245  {
1246    rtems_bdbuf_buffer *bd = (rtems_bdbuf_buffer *) node;
1247    rtems_bdbuf_buffer *empty_bd = NULL;
1248
1249    if (rtems_bdbuf_tracer)
1250      printf ("bdbuf:next-bd: %tu (%td:%" PRId32 ") %zd -> %zd\n",
1251              bd - bdbuf_cache.bds,
1252              bd->group - bdbuf_cache.groups, bd->group->users,
1253              bd->group->bds_per_group, bds_per_group);
1254
1255    /*
1256     * If nobody waits for this BD, we may recycle it.
1257     */
1258    if (bd->waiters == 0)
1259    {
1260      if (bd->group->bds_per_group == bds_per_group)
1261      {
1262        rtems_bdbuf_remove_from_tree_and_lru_list (bd);
1263
1264        empty_bd = bd;
1265      }
1266      else if (bd->group->users == 0)
1267        empty_bd = rtems_bdbuf_group_realloc (bd->group, bds_per_group);
1268    }
1269
1270    if (empty_bd != NULL)
1271    {
1272      rtems_bdbuf_setup_empty_buffer (empty_bd, dd, block);
1273
1274      return empty_bd;
1275    }
1276
1277    node = rtems_chain_next (node);
1278  }
1279
1280  return NULL;
1281}
1282
1283static rtems_status_code
1284rtems_bdbuf_create_task(
1285  rtems_name name,
1286  rtems_task_priority priority,
1287  rtems_task_priority default_priority,
1288  rtems_task_entry entry,
1289  rtems_task_argument arg,
1290  rtems_id *id
1291)
1292{
1293  rtems_status_code sc;
1294  size_t stack_size = bdbuf_config.task_stack_size ?
1295    bdbuf_config.task_stack_size : RTEMS_BDBUF_TASK_STACK_SIZE_DEFAULT;
1296
1297  priority = priority != 0 ? priority : default_priority;
1298
1299  sc = rtems_task_create (name,
1300                          priority,
1301                          stack_size,
1302                          RTEMS_PREEMPT | RTEMS_NO_TIMESLICE | RTEMS_NO_ASR,
1303                          RTEMS_LOCAL | RTEMS_NO_FLOATING_POINT,
1304                          id);
1305
1306  if (sc == RTEMS_SUCCESSFUL)
1307    sc = rtems_task_start (*id, entry, arg);
1308
1309  return sc;
1310}
1311
1312/**
1313 * Initialise the cache.
1314 *
1315 * @return rtems_status_code The initialisation status.
1316 */
1317rtems_status_code
1318rtems_bdbuf_init (void)
1319{
1320  rtems_bdbuf_group*  group;
1321  rtems_bdbuf_buffer* bd;
1322  uint8_t*            buffer;
1323  size_t              b;
1324  size_t              cache_aligment;
1325  rtems_status_code   sc;
1326  rtems_mode          prev_mode;
1327
1328  if (rtems_bdbuf_tracer)
1329    printf ("bdbuf:init\n");
1330
1331  if (rtems_interrupt_is_in_progress())
1332    return RTEMS_CALLED_FROM_ISR;
1333
1334  /*
1335   * Check the configuration table values.
1336   */
1337  if ((bdbuf_config.buffer_max % bdbuf_config.buffer_min) != 0)
1338    return RTEMS_INVALID_NUMBER;
1339
1340  /*
1341   * We use a special variable to manage the initialisation incase we have
1342   * completing threads doing this. You may get errors if the another thread
1343   * makes a call and we have not finished initialisation.
1344   */
1345  prev_mode = rtems_bdbuf_disable_preemption ();
1346  if (bdbuf_cache.initialised)
1347  {
1348    rtems_bdbuf_restore_preemption (prev_mode);
1349    return RTEMS_RESOURCE_IN_USE;
1350  }
1351
1352  memset(&bdbuf_cache, 0, sizeof(bdbuf_cache));
1353  bdbuf_cache.initialised = true;
1354  rtems_bdbuf_restore_preemption (prev_mode);
1355
1356  /*
1357   * For unspecified cache alignments we use the CPU alignment.
1358   */
1359  cache_aligment = 32; /* FIXME rtems_cache_get_data_line_size() */
1360  if (cache_aligment <= 0)
1361    cache_aligment = CPU_ALIGNMENT;
1362
1363  bdbuf_cache.sync_device = BDBUF_INVALID_DEV;
1364
1365  rtems_chain_initialize_empty (&bdbuf_cache.swapout_workers);
1366  rtems_chain_initialize_empty (&bdbuf_cache.lru);
1367  rtems_chain_initialize_empty (&bdbuf_cache.modified);
1368  rtems_chain_initialize_empty (&bdbuf_cache.sync);
1369
1370  /*
1371   * Create the locks for the cache.
1372   */
1373  sc = rtems_semaphore_create (rtems_build_name ('B', 'D', 'C', 'l'),
1374                               1, RTEMS_BDBUF_CACHE_LOCK_ATTRIBS, 0,
1375                               &bdbuf_cache.lock);
1376  if (sc != RTEMS_SUCCESSFUL)
1377    goto error;
1378
1379  rtems_bdbuf_lock_cache ();
1380
1381  sc = rtems_semaphore_create (rtems_build_name ('B', 'D', 'C', 's'),
1382                               1, RTEMS_BDBUF_CACHE_LOCK_ATTRIBS, 0,
1383                               &bdbuf_cache.sync_lock);
1384  if (sc != RTEMS_SUCCESSFUL)
1385    goto error;
1386
1387  sc = rtems_semaphore_create (rtems_build_name ('B', 'D', 'C', 'a'),
1388                               0, RTEMS_BDBUF_CACHE_WAITER_ATTRIBS, 0,
1389                               &bdbuf_cache.access_waiters.sema);
1390  if (sc != RTEMS_SUCCESSFUL)
1391    goto error;
1392
1393  sc = rtems_semaphore_create (rtems_build_name ('B', 'D', 'C', 't'),
1394                               0, RTEMS_BDBUF_CACHE_WAITER_ATTRIBS, 0,
1395                               &bdbuf_cache.transfer_waiters.sema);
1396  if (sc != RTEMS_SUCCESSFUL)
1397    goto error;
1398
1399  sc = rtems_semaphore_create (rtems_build_name ('B', 'D', 'C', 'b'),
1400                               0, RTEMS_BDBUF_CACHE_WAITER_ATTRIBS, 0,
1401                               &bdbuf_cache.buffer_waiters.sema);
1402  if (sc != RTEMS_SUCCESSFUL)
1403    goto error;
1404
1405  /*
1406   * Compute the various number of elements in the cache.
1407   */
1408  bdbuf_cache.buffer_min_count =
1409    bdbuf_config.size / bdbuf_config.buffer_min;
1410  bdbuf_cache.max_bds_per_group =
1411    bdbuf_config.buffer_max / bdbuf_config.buffer_min;
1412  bdbuf_cache.group_count =
1413    bdbuf_cache.buffer_min_count / bdbuf_cache.max_bds_per_group;
1414
1415  /*
1416   * Allocate the memory for the buffer descriptors.
1417   */
1418  bdbuf_cache.bds = calloc (sizeof (rtems_bdbuf_buffer),
1419                            bdbuf_cache.buffer_min_count);
1420  if (!bdbuf_cache.bds)
1421    goto error;
1422
1423  /*
1424   * Allocate the memory for the buffer descriptors.
1425   */
1426  bdbuf_cache.groups = calloc (sizeof (rtems_bdbuf_group),
1427                               bdbuf_cache.group_count);
1428  if (!bdbuf_cache.groups)
1429    goto error;
1430
1431  /*
1432   * Allocate memory for buffer memory. The buffer memory will be cache
1433   * aligned. It is possible to free the memory allocated by rtems_memalign()
1434   * with free(). Return 0 if allocated.
1435   *
1436   * The memory allocate allows a
1437   */
1438  if (rtems_memalign ((void **) &bdbuf_cache.buffers,
1439                      cache_aligment,
1440                      bdbuf_cache.buffer_min_count * bdbuf_config.buffer_min) != 0)
1441    goto error;
1442
1443  /*
1444   * The cache is empty after opening so we need to add all the buffers to it
1445   * and initialise the groups.
1446   */
1447  for (b = 0, group = bdbuf_cache.groups,
1448         bd = bdbuf_cache.bds, buffer = bdbuf_cache.buffers;
1449       b < bdbuf_cache.buffer_min_count;
1450       b++, bd++, buffer += bdbuf_config.buffer_min)
1451  {
1452    bd->dd    = BDBUF_INVALID_DEV;
1453    bd->group  = group;
1454    bd->buffer = buffer;
1455
1456    rtems_chain_append_unprotected (&bdbuf_cache.lru, &bd->link);
1457
1458    if ((b % bdbuf_cache.max_bds_per_group) ==
1459        (bdbuf_cache.max_bds_per_group - 1))
1460      group++;
1461  }
1462
1463  for (b = 0,
1464         group = bdbuf_cache.groups,
1465         bd = bdbuf_cache.bds;
1466       b < bdbuf_cache.group_count;
1467       b++,
1468         group++,
1469         bd += bdbuf_cache.max_bds_per_group)
1470  {
1471    group->bds_per_group = bdbuf_cache.max_bds_per_group;
1472    group->bdbuf = bd;
1473  }
1474
1475  /*
1476   * Create and start swapout task. This task will create and manage the worker
1477   * threads.
1478   */
1479  bdbuf_cache.swapout_enabled = true;
1480
1481  sc = rtems_bdbuf_create_task (rtems_build_name('B', 'S', 'W', 'P'),
1482                                bdbuf_config.swapout_priority,
1483                                RTEMS_BDBUF_SWAPOUT_TASK_PRIORITY_DEFAULT,
1484                                rtems_bdbuf_swapout_task,
1485                                0,
1486                                &bdbuf_cache.swapout);
1487  if (sc != RTEMS_SUCCESSFUL)
1488    goto error;
1489
1490  rtems_bdbuf_unlock_cache ();
1491
1492  return RTEMS_SUCCESSFUL;
1493
1494error:
1495
1496  if (bdbuf_cache.swapout != 0)
1497    rtems_task_delete (bdbuf_cache.swapout);
1498
1499  free (bdbuf_cache.buffers);
1500  free (bdbuf_cache.groups);
1501  free (bdbuf_cache.bds);
1502
1503  rtems_semaphore_delete (bdbuf_cache.buffer_waiters.sema);
1504  rtems_semaphore_delete (bdbuf_cache.access_waiters.sema);
1505  rtems_semaphore_delete (bdbuf_cache.transfer_waiters.sema);
1506  rtems_semaphore_delete (bdbuf_cache.sync_lock);
1507
1508  if (bdbuf_cache.lock != 0)
1509  {
1510    rtems_bdbuf_unlock_cache ();
1511    rtems_semaphore_delete (bdbuf_cache.lock);
1512  }
1513
1514  bdbuf_cache.initialised = false;
1515
1516  return RTEMS_UNSATISFIED;
1517}
1518
1519static void
1520rtems_bdbuf_wait_for_event (rtems_event_set event)
1521{
1522  rtems_status_code sc = RTEMS_SUCCESSFUL;
1523  rtems_event_set   out = 0;
1524
1525  sc = rtems_event_receive (event,
1526                            RTEMS_EVENT_ALL | RTEMS_WAIT,
1527                            RTEMS_NO_TIMEOUT,
1528                            &out);
1529
1530  if (sc != RTEMS_SUCCESSFUL || out != event)
1531    rtems_fatal_error_occurred (RTEMS_BLKDEV_FATAL_BDBUF_WAIT_EVNT);
1532}
1533
1534static void
1535rtems_bdbuf_wait_for_access (rtems_bdbuf_buffer *bd)
1536{
1537  while (true)
1538  {
1539    switch (bd->state)
1540    {
1541      case RTEMS_BDBUF_STATE_MODIFIED:
1542        rtems_bdbuf_group_release (bd);
1543        /* Fall through */
1544      case RTEMS_BDBUF_STATE_CACHED:
1545        rtems_chain_extract_unprotected (&bd->link);
1546        /* Fall through */
1547      case RTEMS_BDBUF_STATE_EMPTY:
1548        return;
1549      case RTEMS_BDBUF_STATE_ACCESS_CACHED:
1550      case RTEMS_BDBUF_STATE_ACCESS_EMPTY:
1551      case RTEMS_BDBUF_STATE_ACCESS_MODIFIED:
1552      case RTEMS_BDBUF_STATE_ACCESS_PURGED:
1553        rtems_bdbuf_wait (bd, &bdbuf_cache.access_waiters);
1554        break;
1555      case RTEMS_BDBUF_STATE_SYNC:
1556      case RTEMS_BDBUF_STATE_TRANSFER:
1557      case RTEMS_BDBUF_STATE_TRANSFER_PURGED:
1558        rtems_bdbuf_wait (bd, &bdbuf_cache.transfer_waiters);
1559        break;
1560      default:
1561        rtems_bdbuf_fatal (bd->state, RTEMS_BLKDEV_FATAL_BDBUF_STATE_7);
1562    }
1563  }
1564}
1565
1566static void
1567rtems_bdbuf_request_sync_for_modified_buffer (rtems_bdbuf_buffer *bd)
1568{
1569  rtems_bdbuf_set_state (bd, RTEMS_BDBUF_STATE_SYNC);
1570  rtems_chain_extract_unprotected (&bd->link);
1571  rtems_chain_append_unprotected (&bdbuf_cache.sync, &bd->link);
1572  rtems_bdbuf_wake_swapper ();
1573}
1574
1575/**
1576 * @brief Waits until the buffer is ready for recycling.
1577 *
1578 * @retval @c true Buffer is valid and may be recycled.
1579 * @retval @c false Buffer is invalid and has to searched again.
1580 */
1581static bool
1582rtems_bdbuf_wait_for_recycle (rtems_bdbuf_buffer *bd)
1583{
1584  while (true)
1585  {
1586    switch (bd->state)
1587    {
1588      case RTEMS_BDBUF_STATE_FREE:
1589        return true;
1590      case RTEMS_BDBUF_STATE_MODIFIED:
1591        rtems_bdbuf_request_sync_for_modified_buffer (bd);
1592        break;
1593      case RTEMS_BDBUF_STATE_CACHED:
1594      case RTEMS_BDBUF_STATE_EMPTY:
1595        if (bd->waiters == 0)
1596          return true;
1597        else
1598        {
1599          /*
1600           * It is essential that we wait here without a special wait count and
1601           * without the group in use.  Otherwise we could trigger a wait ping
1602           * pong with another recycle waiter.  The state of the buffer is
1603           * arbitrary afterwards.
1604           */
1605          rtems_bdbuf_anonymous_wait (&bdbuf_cache.buffer_waiters);
1606          return false;
1607        }
1608      case RTEMS_BDBUF_STATE_ACCESS_CACHED:
1609      case RTEMS_BDBUF_STATE_ACCESS_EMPTY:
1610      case RTEMS_BDBUF_STATE_ACCESS_MODIFIED:
1611      case RTEMS_BDBUF_STATE_ACCESS_PURGED:
1612        rtems_bdbuf_wait (bd, &bdbuf_cache.access_waiters);
1613        break;
1614      case RTEMS_BDBUF_STATE_SYNC:
1615      case RTEMS_BDBUF_STATE_TRANSFER:
1616      case RTEMS_BDBUF_STATE_TRANSFER_PURGED:
1617        rtems_bdbuf_wait (bd, &bdbuf_cache.transfer_waiters);
1618        break;
1619      default:
1620        rtems_bdbuf_fatal (bd->state, RTEMS_BLKDEV_FATAL_BDBUF_STATE_8);
1621    }
1622  }
1623}
1624
1625static void
1626rtems_bdbuf_wait_for_sync_done (rtems_bdbuf_buffer *bd)
1627{
1628  while (true)
1629  {
1630    switch (bd->state)
1631    {
1632      case RTEMS_BDBUF_STATE_CACHED:
1633      case RTEMS_BDBUF_STATE_EMPTY:
1634      case RTEMS_BDBUF_STATE_MODIFIED:
1635      case RTEMS_BDBUF_STATE_ACCESS_CACHED:
1636      case RTEMS_BDBUF_STATE_ACCESS_EMPTY:
1637      case RTEMS_BDBUF_STATE_ACCESS_MODIFIED:
1638      case RTEMS_BDBUF_STATE_ACCESS_PURGED:
1639        return;
1640      case RTEMS_BDBUF_STATE_SYNC:
1641      case RTEMS_BDBUF_STATE_TRANSFER:
1642      case RTEMS_BDBUF_STATE_TRANSFER_PURGED:
1643        rtems_bdbuf_wait (bd, &bdbuf_cache.transfer_waiters);
1644        break;
1645      default:
1646        rtems_bdbuf_fatal (bd->state, RTEMS_BLKDEV_FATAL_BDBUF_STATE_9);
1647    }
1648  }
1649}
1650
1651static void
1652rtems_bdbuf_wait_for_buffer (void)
1653{
1654  if (!rtems_chain_is_empty (&bdbuf_cache.modified))
1655    rtems_bdbuf_wake_swapper ();
1656
1657  rtems_bdbuf_anonymous_wait (&bdbuf_cache.buffer_waiters);
1658}
1659
1660static void
1661rtems_bdbuf_sync_after_access (rtems_bdbuf_buffer *bd)
1662{
1663  rtems_bdbuf_set_state (bd, RTEMS_BDBUF_STATE_SYNC);
1664
1665  rtems_chain_append_unprotected (&bdbuf_cache.sync, &bd->link);
1666
1667  if (bd->waiters)
1668    rtems_bdbuf_wake (&bdbuf_cache.access_waiters);
1669
1670  rtems_bdbuf_wake_swapper ();
1671  rtems_bdbuf_wait_for_sync_done (bd);
1672
1673  /*
1674   * We may have created a cached or empty buffer which may be recycled.
1675   */
1676  if (bd->waiters == 0
1677        && (bd->state == RTEMS_BDBUF_STATE_CACHED
1678          || bd->state == RTEMS_BDBUF_STATE_EMPTY))
1679  {
1680    if (bd->state == RTEMS_BDBUF_STATE_EMPTY)
1681    {
1682      rtems_bdbuf_remove_from_tree (bd);
1683      rtems_bdbuf_make_free_and_add_to_lru_list (bd);
1684    }
1685    rtems_bdbuf_wake (&bdbuf_cache.buffer_waiters);
1686  }
1687}
1688
1689static rtems_bdbuf_buffer *
1690rtems_bdbuf_get_buffer_for_read_ahead (const rtems_disk_device *dd,
1691                                       rtems_blkdev_bnum block,
1692                                       size_t            bds_per_group)
1693{
1694  rtems_bdbuf_buffer *bd = NULL;
1695
1696  bd = rtems_bdbuf_avl_search (&bdbuf_cache.tree, dd, block);
1697
1698  if (bd == NULL)
1699  {
1700    bd = rtems_bdbuf_get_buffer_from_lru_list (dd, block, bds_per_group);
1701
1702    if (bd != NULL)
1703      rtems_bdbuf_group_obtain (bd);
1704  }
1705  else
1706    /*
1707     * The buffer is in the cache.  So it is already available or in use, and
1708     * thus no need for a read ahead.
1709     */
1710    bd = NULL;
1711
1712  return bd;
1713}
1714
1715static rtems_bdbuf_buffer *
1716rtems_bdbuf_get_buffer_for_access (const rtems_disk_device *dd,
1717                                   rtems_blkdev_bnum block,
1718                                   size_t            bds_per_group)
1719{
1720  rtems_bdbuf_buffer *bd = NULL;
1721
1722  do
1723  {
1724    bd = rtems_bdbuf_avl_search (&bdbuf_cache.tree, dd, block);
1725
1726    if (bd != NULL)
1727    {
1728      if (bd->group->bds_per_group != bds_per_group)
1729      {
1730        if (rtems_bdbuf_wait_for_recycle (bd))
1731        {
1732          rtems_bdbuf_remove_from_tree_and_lru_list (bd);
1733          rtems_bdbuf_make_free_and_add_to_lru_list (bd);
1734          rtems_bdbuf_wake (&bdbuf_cache.buffer_waiters);
1735        }
1736        bd = NULL;
1737      }
1738    }
1739    else
1740    {
1741      bd = rtems_bdbuf_get_buffer_from_lru_list (dd, block, bds_per_group);
1742
1743      if (bd == NULL)
1744        rtems_bdbuf_wait_for_buffer ();
1745    }
1746  }
1747  while (bd == NULL);
1748
1749  rtems_bdbuf_wait_for_access (bd);
1750  rtems_bdbuf_group_obtain (bd);
1751
1752  return bd;
1753}
1754
1755static rtems_status_code
1756rtems_bdbuf_get_media_block (const rtems_disk_device *dd,
1757                             rtems_blkdev_bnum        block,
1758                             rtems_blkdev_bnum       *media_block_ptr)
1759{
1760  /*
1761   * Compute the media block number. Drivers work with media block number not
1762   * the block number a BD may have as this depends on the block size set by
1763   * the user.
1764   */
1765  rtems_blkdev_bnum mb = rtems_bdbuf_media_block (dd, block);
1766  if (mb >= dd->size)
1767  {
1768    return RTEMS_INVALID_ID;
1769  }
1770
1771  *media_block_ptr = mb + dd->start;
1772
1773  return RTEMS_SUCCESSFUL;
1774}
1775
1776rtems_status_code
1777rtems_bdbuf_get (rtems_disk_device   *dd,
1778                 rtems_blkdev_bnum    block,
1779                 rtems_bdbuf_buffer **bd_ptr)
1780{
1781  rtems_status_code   sc = RTEMS_SUCCESSFUL;
1782  rtems_bdbuf_buffer *bd = NULL;
1783  rtems_blkdev_bnum   media_block = 0;
1784
1785  sc = rtems_bdbuf_get_media_block (dd, block, &media_block);
1786  if (sc != RTEMS_SUCCESSFUL)
1787    return sc;
1788
1789  rtems_bdbuf_lock_cache ();
1790
1791  /*
1792   * Print the block index relative to the physical disk.
1793   */
1794  if (rtems_bdbuf_tracer)
1795    printf ("bdbuf:get: %" PRIu32 " (%" PRIu32 ") (dev = %08x)\n",
1796            media_block, block, (unsigned) dd->dev);
1797
1798  bd = rtems_bdbuf_get_buffer_for_access (dd, media_block, dd->bds_per_group);
1799
1800  switch (bd->state)
1801  {
1802    case RTEMS_BDBUF_STATE_CACHED:
1803      rtems_bdbuf_set_state (bd, RTEMS_BDBUF_STATE_ACCESS_CACHED);
1804      break;
1805    case RTEMS_BDBUF_STATE_EMPTY:
1806      rtems_bdbuf_set_state (bd, RTEMS_BDBUF_STATE_ACCESS_EMPTY);
1807      break;
1808    case RTEMS_BDBUF_STATE_MODIFIED:
1809      /*
1810       * To get a modified buffer could be considered a bug in the caller
1811       * because you should not be getting an already modified buffer but user
1812       * may have modified a byte in a block then decided to seek the start and
1813       * write the whole block and the file system will have no record of this
1814       * so just gets the block to fill.
1815       */
1816      rtems_bdbuf_set_state (bd, RTEMS_BDBUF_STATE_ACCESS_MODIFIED);
1817      break;
1818    default:
1819      rtems_bdbuf_fatal (bd->state, RTEMS_BLKDEV_FATAL_BDBUF_STATE_2);
1820      break;
1821  }
1822
1823  if (rtems_bdbuf_tracer)
1824  {
1825    rtems_bdbuf_show_users ("get", bd);
1826    rtems_bdbuf_show_usage ();
1827  }
1828
1829  rtems_bdbuf_unlock_cache ();
1830
1831  *bd_ptr = bd;
1832
1833  return RTEMS_SUCCESSFUL;
1834}
1835
1836/**
1837 * Call back handler called by the low level driver when the transfer has
1838 * completed. This function may be invoked from interrupt handler.
1839 *
1840 * @param arg Arbitrary argument specified in block device request
1841 *            structure (in this case - pointer to the appropriate
1842 *            block device request structure).
1843 * @param status I/O completion status
1844 */
1845static void
1846rtems_bdbuf_transfer_done (void* arg, rtems_status_code status)
1847{
1848  rtems_blkdev_request* req = (rtems_blkdev_request*) arg;
1849
1850  req->status = status;
1851
1852  rtems_event_send (req->io_task, RTEMS_BDBUF_TRANSFER_SYNC);
1853}
1854
1855static void
1856rtems_bdbuf_create_read_request (const rtems_disk_device *dd,
1857                                 rtems_blkdev_bnum        media_block,
1858                                 size_t                   bds_per_group,
1859                                 rtems_blkdev_request    *req,
1860                                 rtems_bdbuf_buffer     **bd_ptr)
1861{
1862  rtems_bdbuf_buffer *bd = NULL;
1863  rtems_blkdev_bnum   media_block_end = dd->start + dd->size;
1864  rtems_blkdev_bnum   media_block_count = dd->block_to_media_block_shift >= 0 ?
1865    1U << dd->block_to_media_block_shift
1866      : dd->block_size / dd->media_block_size;
1867  uint32_t            block_size = dd->block_size;
1868  uint32_t            transfer_index = 1;
1869  uint32_t            transfer_count = bdbuf_config.max_read_ahead_blocks + 1;
1870
1871  if (media_block_end - media_block < transfer_count)
1872    transfer_count = media_block_end - media_block;
1873
1874  req->req = RTEMS_BLKDEV_REQ_READ;
1875  req->req_done = rtems_bdbuf_transfer_done;
1876  req->done_arg = req;
1877  req->io_task = rtems_task_self ();
1878  req->status = RTEMS_RESOURCE_IN_USE;
1879  req->bufnum = 0;
1880
1881  bd = rtems_bdbuf_get_buffer_for_access (dd, media_block, bds_per_group);
1882
1883  *bd_ptr = bd;
1884
1885  req->bufs [0].user   = bd;
1886  req->bufs [0].block  = media_block;
1887  req->bufs [0].length = block_size;
1888  req->bufs [0].buffer = bd->buffer;
1889
1890  if (rtems_bdbuf_tracer)
1891    rtems_bdbuf_show_users ("read", bd);
1892
1893  switch (bd->state)
1894  {
1895    case RTEMS_BDBUF_STATE_CACHED:
1896    case RTEMS_BDBUF_STATE_MODIFIED:
1897      return;
1898    case RTEMS_BDBUF_STATE_EMPTY:
1899      rtems_bdbuf_set_state (bd, RTEMS_BDBUF_STATE_TRANSFER);
1900      break;
1901    default:
1902      rtems_bdbuf_fatal (bd->state, RTEMS_BLKDEV_FATAL_BDBUF_STATE_1);
1903      break;
1904  }
1905
1906  while (transfer_index < transfer_count)
1907  {
1908    media_block += media_block_count;
1909
1910    bd = rtems_bdbuf_get_buffer_for_read_ahead (dd, media_block,
1911                                                bds_per_group);
1912
1913    if (bd == NULL)
1914      break;
1915
1916    rtems_bdbuf_set_state (bd, RTEMS_BDBUF_STATE_TRANSFER);
1917
1918    req->bufs [transfer_index].user   = bd;
1919    req->bufs [transfer_index].block  = media_block;
1920    req->bufs [transfer_index].length = block_size;
1921    req->bufs [transfer_index].buffer = bd->buffer;
1922
1923    if (rtems_bdbuf_tracer)
1924      rtems_bdbuf_show_users ("read-ahead", bd);
1925
1926    ++transfer_index;
1927  }
1928
1929  req->bufnum = transfer_index;
1930}
1931
1932static rtems_status_code
1933rtems_bdbuf_execute_transfer_request (const rtems_disk_device *dd,
1934                                      rtems_blkdev_request    *req,
1935                                      bool                     cache_locked)
1936{
1937  rtems_status_code sc = RTEMS_SUCCESSFUL;
1938  int result = 0;
1939  uint32_t transfer_index = 0;
1940  bool wake_transfer_waiters = false;
1941  bool wake_buffer_waiters = false;
1942
1943  if (cache_locked)
1944    rtems_bdbuf_unlock_cache ();
1945
1946  result = dd->ioctl (dd->phys_dev, RTEMS_BLKIO_REQUEST, req);
1947
1948  if (result == 0)
1949  {
1950    rtems_bdbuf_wait_for_event (RTEMS_BDBUF_TRANSFER_SYNC);
1951    sc = req->status;
1952  }
1953  else
1954    sc = RTEMS_IO_ERROR;
1955
1956  rtems_bdbuf_lock_cache ();
1957
1958  for (transfer_index = 0; transfer_index < req->bufnum; ++transfer_index)
1959  {
1960    rtems_bdbuf_buffer *bd = req->bufs [transfer_index].user;
1961    bool waiters = bd->waiters;
1962
1963    if (waiters)
1964      wake_transfer_waiters = true;
1965    else
1966      wake_buffer_waiters = true;
1967
1968    rtems_bdbuf_group_release (bd);
1969
1970    if (sc == RTEMS_SUCCESSFUL && bd->state == RTEMS_BDBUF_STATE_TRANSFER)
1971      rtems_bdbuf_make_cached_and_add_to_lru_list (bd);
1972    else
1973      rtems_bdbuf_discard_buffer (bd);
1974
1975    if (rtems_bdbuf_tracer)
1976      rtems_bdbuf_show_users ("transfer", bd);
1977  }
1978
1979  if (wake_transfer_waiters)
1980    rtems_bdbuf_wake (&bdbuf_cache.transfer_waiters);
1981
1982  if (wake_buffer_waiters)
1983    rtems_bdbuf_wake (&bdbuf_cache.buffer_waiters);
1984
1985  if (!cache_locked)
1986    rtems_bdbuf_unlock_cache ();
1987
1988  if (sc == RTEMS_SUCCESSFUL || sc == RTEMS_UNSATISFIED)
1989    return sc;
1990  else
1991    return RTEMS_IO_ERROR;
1992}
1993
1994rtems_status_code
1995rtems_bdbuf_read (rtems_disk_device   *dd,
1996                  rtems_blkdev_bnum    block,
1997                  rtems_bdbuf_buffer **bd_ptr)
1998{
1999  rtems_status_code     sc = RTEMS_SUCCESSFUL;
2000  rtems_blkdev_request *req = NULL;
2001  rtems_bdbuf_buffer   *bd = NULL;
2002  rtems_blkdev_bnum     media_block = 0;
2003
2004  sc = rtems_bdbuf_get_media_block (dd, block, &media_block);
2005  if (sc != RTEMS_SUCCESSFUL)
2006    return sc;
2007
2008  /*
2009   * TODO: This type of request structure is wrong and should be removed.
2010   */
2011#define bdbuf_alloc(size) __builtin_alloca (size)
2012
2013  req = bdbuf_alloc (sizeof (rtems_blkdev_request) +
2014                     sizeof (rtems_blkdev_sg_buffer) *
2015                      (bdbuf_config.max_read_ahead_blocks + 1));
2016
2017  if (rtems_bdbuf_tracer)
2018    printf ("bdbuf:read: %" PRIu32 " (%" PRIu32 ") (dev = %08x)\n",
2019            media_block + dd->start, block, (unsigned) dd->dev);
2020
2021  rtems_bdbuf_lock_cache ();
2022  rtems_bdbuf_create_read_request (dd, media_block, dd->bds_per_group, req, &bd);
2023
2024  if (req->bufnum > 0)
2025  {
2026    sc = rtems_bdbuf_execute_transfer_request (dd, req, true);
2027    if (sc == RTEMS_SUCCESSFUL)
2028    {
2029      rtems_chain_extract_unprotected (&bd->link);
2030      rtems_bdbuf_group_obtain (bd);
2031    }
2032  }
2033
2034  if (sc == RTEMS_SUCCESSFUL)
2035  {
2036    switch (bd->state)
2037    {
2038      case RTEMS_BDBUF_STATE_CACHED:
2039        rtems_bdbuf_set_state (bd, RTEMS_BDBUF_STATE_ACCESS_CACHED);
2040        break;
2041      case RTEMS_BDBUF_STATE_MODIFIED:
2042        rtems_bdbuf_set_state (bd, RTEMS_BDBUF_STATE_ACCESS_MODIFIED);
2043        break;
2044      default:
2045        rtems_bdbuf_fatal (bd->state, RTEMS_BLKDEV_FATAL_BDBUF_STATE_4);
2046        break;
2047    }
2048
2049    if (rtems_bdbuf_tracer)
2050    {
2051      rtems_bdbuf_show_users ("read", bd);
2052      rtems_bdbuf_show_usage ();
2053    }
2054
2055    *bd_ptr = bd;
2056  }
2057  else
2058    *bd_ptr = NULL;
2059
2060  rtems_bdbuf_unlock_cache ();
2061
2062  return sc;
2063}
2064
2065static rtems_status_code
2066rtems_bdbuf_check_bd_and_lock_cache (rtems_bdbuf_buffer *bd, const char *kind)
2067{
2068  if (bd == NULL)
2069    return RTEMS_INVALID_ADDRESS;
2070  if (rtems_bdbuf_tracer)
2071  {
2072    printf ("bdbuf:%s: %" PRIu32 "\n", kind, bd->block);
2073    rtems_bdbuf_show_users (kind, bd);
2074  }
2075  rtems_bdbuf_lock_cache();
2076
2077  return RTEMS_SUCCESSFUL;
2078}
2079
2080rtems_status_code
2081rtems_bdbuf_release (rtems_bdbuf_buffer *bd)
2082{
2083  rtems_status_code sc = RTEMS_SUCCESSFUL;
2084
2085  sc = rtems_bdbuf_check_bd_and_lock_cache (bd, "release");
2086  if (sc != RTEMS_SUCCESSFUL)
2087    return sc;
2088
2089  switch (bd->state)
2090  {
2091    case RTEMS_BDBUF_STATE_ACCESS_CACHED:
2092      rtems_bdbuf_add_to_lru_list_after_access (bd);
2093      break;
2094    case RTEMS_BDBUF_STATE_ACCESS_EMPTY:
2095    case RTEMS_BDBUF_STATE_ACCESS_PURGED:
2096      rtems_bdbuf_discard_buffer_after_access (bd);
2097      break;
2098    case RTEMS_BDBUF_STATE_ACCESS_MODIFIED:
2099      rtems_bdbuf_add_to_modified_list_after_access (bd);
2100      break;
2101    default:
2102      rtems_bdbuf_fatal (bd->state, RTEMS_BLKDEV_FATAL_BDBUF_STATE_0);
2103      break;
2104  }
2105
2106  if (rtems_bdbuf_tracer)
2107    rtems_bdbuf_show_usage ();
2108
2109  rtems_bdbuf_unlock_cache ();
2110
2111  return RTEMS_SUCCESSFUL;
2112}
2113
2114rtems_status_code
2115rtems_bdbuf_release_modified (rtems_bdbuf_buffer *bd)
2116{
2117  rtems_status_code sc = RTEMS_SUCCESSFUL;
2118
2119  sc = rtems_bdbuf_check_bd_and_lock_cache (bd, "release modified");
2120  if (sc != RTEMS_SUCCESSFUL)
2121    return sc;
2122
2123  switch (bd->state)
2124  {
2125    case RTEMS_BDBUF_STATE_ACCESS_CACHED:
2126    case RTEMS_BDBUF_STATE_ACCESS_EMPTY:
2127    case RTEMS_BDBUF_STATE_ACCESS_MODIFIED:
2128      rtems_bdbuf_add_to_modified_list_after_access (bd);
2129      break;
2130    case RTEMS_BDBUF_STATE_ACCESS_PURGED:
2131      rtems_bdbuf_discard_buffer_after_access (bd);
2132      break;
2133    default:
2134      rtems_bdbuf_fatal (bd->state, RTEMS_BLKDEV_FATAL_BDBUF_STATE_6);
2135      break;
2136  }
2137
2138  if (rtems_bdbuf_tracer)
2139    rtems_bdbuf_show_usage ();
2140
2141  rtems_bdbuf_unlock_cache ();
2142
2143  return RTEMS_SUCCESSFUL;
2144}
2145
2146rtems_status_code
2147rtems_bdbuf_sync (rtems_bdbuf_buffer *bd)
2148{
2149  rtems_status_code sc = RTEMS_SUCCESSFUL;
2150
2151  sc = rtems_bdbuf_check_bd_and_lock_cache (bd, "sync");
2152  if (sc != RTEMS_SUCCESSFUL)
2153    return sc;
2154
2155  switch (bd->state)
2156  {
2157    case RTEMS_BDBUF_STATE_ACCESS_CACHED:
2158    case RTEMS_BDBUF_STATE_ACCESS_EMPTY:
2159    case RTEMS_BDBUF_STATE_ACCESS_MODIFIED:
2160      rtems_bdbuf_sync_after_access (bd);
2161      break;
2162    case RTEMS_BDBUF_STATE_ACCESS_PURGED:
2163      rtems_bdbuf_discard_buffer_after_access (bd);
2164      break;
2165    default:
2166      rtems_bdbuf_fatal (bd->state, RTEMS_BLKDEV_FATAL_BDBUF_STATE_5);
2167      break;
2168  }
2169
2170  if (rtems_bdbuf_tracer)
2171    rtems_bdbuf_show_usage ();
2172
2173  rtems_bdbuf_unlock_cache ();
2174
2175  return RTEMS_SUCCESSFUL;
2176}
2177
2178rtems_status_code
2179rtems_bdbuf_syncdev (rtems_disk_device *dd)
2180{
2181  if (rtems_bdbuf_tracer)
2182    printf ("bdbuf:syncdev: %08x\n", (unsigned) dd->dev);
2183
2184  /*
2185   * Take the sync lock before locking the cache. Once we have the sync lock we
2186   * can lock the cache. If another thread has the sync lock it will cause this
2187   * thread to block until it owns the sync lock then it can own the cache. The
2188   * sync lock can only be obtained with the cache unlocked.
2189   */
2190  rtems_bdbuf_lock_sync ();
2191  rtems_bdbuf_lock_cache ();
2192
2193  /*
2194   * Set the cache to have a sync active for a specific device and let the swap
2195   * out task know the id of the requester to wake when done.
2196   *
2197   * The swap out task will negate the sync active flag when no more buffers
2198   * for the device are held on the "modified for sync" queues.
2199   */
2200  bdbuf_cache.sync_active    = true;
2201  bdbuf_cache.sync_requester = rtems_task_self ();
2202  bdbuf_cache.sync_device    = dd;
2203
2204  rtems_bdbuf_wake_swapper ();
2205  rtems_bdbuf_unlock_cache ();
2206  rtems_bdbuf_wait_for_event (RTEMS_BDBUF_TRANSFER_SYNC);
2207  rtems_bdbuf_unlock_sync ();
2208
2209  return RTEMS_SUCCESSFUL;
2210}
2211
2212/**
2213 * Swapout transfer to the driver. The driver will break this I/O into groups
2214 * of consecutive write requests is multiple consecutive buffers are required
2215 * by the driver. The cache is not locked.
2216 *
2217 * @param transfer The transfer transaction.
2218 */
2219static void
2220rtems_bdbuf_swapout_write (rtems_bdbuf_swapout_transfer* transfer)
2221{
2222  rtems_chain_node *node;
2223
2224  if (rtems_bdbuf_tracer)
2225    printf ("bdbuf:swapout transfer: %08x\n", (unsigned) transfer->dd->dev);
2226
2227  /*
2228   * If there are buffers to transfer to the media transfer them.
2229   */
2230  if (!rtems_chain_is_empty (&transfer->bds))
2231  {
2232    /*
2233     * The last block number used when the driver only supports
2234     * continuous blocks in a single request.
2235     */
2236    uint32_t last_block = 0;
2237
2238    /*
2239     * Number of buffers per bd. This is used to detect the next
2240     * block.
2241     */
2242    uint32_t bufs_per_bd = 0;
2243
2244    const rtems_disk_device *dd = transfer->dd;
2245
2246    bufs_per_bd = dd->block_size / bdbuf_config.buffer_min;
2247
2248    /*
2249     * Take as many buffers as configured and pass to the driver. Note, the
2250     * API to the drivers has an array of buffers and if a chain was passed
2251     * we could have just passed the list. If the driver API is updated it
2252     * should be possible to make this change with little effect in this
2253     * code. The array that is passed is broken in design and should be
2254     * removed. Merging members of a struct into the first member is
2255     * trouble waiting to happen.
2256     */
2257    transfer->write_req->status = RTEMS_RESOURCE_IN_USE;
2258    transfer->write_req->bufnum = 0;
2259
2260    while ((node = rtems_chain_get_unprotected(&transfer->bds)) != NULL)
2261    {
2262      rtems_bdbuf_buffer* bd = (rtems_bdbuf_buffer*) node;
2263      bool                write = false;
2264
2265      /*
2266       * If the device only accepts sequential buffers and this is not the
2267       * first buffer (the first is always sequential, and the buffer is not
2268       * sequential then put the buffer back on the transfer chain and write
2269       * the committed buffers.
2270       */
2271
2272      if (rtems_bdbuf_tracer)
2273        printf ("bdbuf:swapout write: bd:%" PRIu32 ", bufnum:%" PRIu32 " mode:%s\n",
2274                bd->block, transfer->write_req->bufnum,
2275                dd->phys_dev->capabilities &
2276                RTEMS_BLKDEV_CAP_MULTISECTOR_CONT ? "MULIT" : "SCAT");
2277
2278      if ((dd->phys_dev->capabilities & RTEMS_BLKDEV_CAP_MULTISECTOR_CONT) &&
2279          transfer->write_req->bufnum &&
2280          (bd->block != (last_block + bufs_per_bd)))
2281      {
2282        rtems_chain_prepend_unprotected (&transfer->bds, &bd->link);
2283        write = true;
2284      }
2285      else
2286      {
2287        rtems_blkdev_sg_buffer* buf;
2288        buf = &transfer->write_req->bufs[transfer->write_req->bufnum];
2289        transfer->write_req->bufnum++;
2290        buf->user   = bd;
2291        buf->block  = bd->block;
2292        buf->length = dd->block_size;
2293        buf->buffer = bd->buffer;
2294        last_block  = bd->block;
2295      }
2296
2297      /*
2298       * Perform the transfer if there are no more buffers, or the transfer
2299       * size has reached the configured max. value.
2300       */
2301
2302      if (rtems_chain_is_empty (&transfer->bds) ||
2303          (transfer->write_req->bufnum >= bdbuf_config.max_write_blocks))
2304        write = true;
2305
2306      if (write)
2307      {
2308        rtems_bdbuf_execute_transfer_request (dd, transfer->write_req, false);
2309
2310        transfer->write_req->status = RTEMS_RESOURCE_IN_USE;
2311        transfer->write_req->bufnum = 0;
2312      }
2313    }
2314
2315    /*
2316     * If sync'ing and the deivce is capability of handling a sync IO control
2317     * call perform the call.
2318     */
2319    if (transfer->syncing &&
2320        (dd->phys_dev->capabilities & RTEMS_BLKDEV_CAP_SYNC))
2321    {
2322      /* int result = */ dd->ioctl (dd->phys_dev, RTEMS_BLKDEV_REQ_SYNC, NULL);
2323      /* How should the error be handled ? */
2324    }
2325  }
2326}
2327
2328/**
2329 * Process the modified list of buffers. There is a sync or modified list that
2330 * needs to be handled so we have a common function to do the work.
2331 *
2332 * @param dd_ptr Pointer to the device to handle. If BDBUF_INVALID_DEV no
2333 * device is selected so select the device of the first buffer to be written to
2334 * disk.
2335 * @param chain The modified chain to process.
2336 * @param transfer The chain to append buffers to be written too.
2337 * @param sync_active If true this is a sync operation so expire all timers.
2338 * @param update_timers If true update the timers.
2339 * @param timer_delta It update_timers is true update the timers by this
2340 *                    amount.
2341 */
2342static void
2343rtems_bdbuf_swapout_modified_processing (const rtems_disk_device **dd_ptr,
2344                                         rtems_chain_control* chain,
2345                                         rtems_chain_control* transfer,
2346                                         bool                 sync_active,
2347                                         bool                 update_timers,
2348                                         uint32_t             timer_delta)
2349{
2350  if (!rtems_chain_is_empty (chain))
2351  {
2352    rtems_chain_node* node = rtems_chain_head (chain);
2353    bool              sync_all;
2354   
2355    node = node->next;
2356
2357    /*
2358     * A sync active with no valid dev means sync all.
2359     */
2360    if (sync_active && (*dd_ptr == BDBUF_INVALID_DEV))
2361      sync_all = true;
2362    else
2363      sync_all = false;
2364   
2365    while (!rtems_chain_is_tail (chain, node))
2366    {
2367      rtems_bdbuf_buffer* bd = (rtems_bdbuf_buffer*) node;
2368
2369      /*
2370       * Check if the buffer's hold timer has reached 0. If a sync is active
2371       * or someone waits for a buffer written force all the timers to 0.
2372       *
2373       * @note Lots of sync requests will skew this timer. It should be based
2374       *       on TOD to be accurate. Does it matter ?
2375       */
2376      if (sync_all || (sync_active && (*dd_ptr == bd->dd))
2377          || rtems_bdbuf_has_buffer_waiters ())
2378        bd->hold_timer = 0;
2379
2380      if (bd->hold_timer)
2381      {
2382        if (update_timers)
2383        {
2384          if (bd->hold_timer > timer_delta)
2385            bd->hold_timer -= timer_delta;
2386          else
2387            bd->hold_timer = 0;
2388        }
2389
2390        if (bd->hold_timer)
2391        {
2392          node = node->next;
2393          continue;
2394        }
2395      }
2396
2397      /*
2398       * This assumes we can set it to BDBUF_INVALID_DEV which is just an
2399       * assumption. Cannot use the transfer list being empty the sync dev
2400       * calls sets the dev to use.
2401       */
2402      if (*dd_ptr == BDBUF_INVALID_DEV)
2403        *dd_ptr = bd->dd;
2404
2405      if (bd->dd == *dd_ptr)
2406      {
2407        rtems_chain_node* next_node = node->next;
2408        rtems_chain_node* tnode = rtems_chain_tail (transfer);
2409
2410        /*
2411         * The blocks on the transfer list are sorted in block order. This
2412         * means multi-block transfers for drivers that require consecutive
2413         * blocks perform better with sorted blocks and for real disks it may
2414         * help lower head movement.
2415         */
2416
2417        rtems_bdbuf_set_state (bd, RTEMS_BDBUF_STATE_TRANSFER);
2418
2419        rtems_chain_extract_unprotected (node);
2420
2421        tnode = tnode->previous;
2422
2423        while (node && !rtems_chain_is_head (transfer, tnode))
2424        {
2425          rtems_bdbuf_buffer* tbd = (rtems_bdbuf_buffer*) tnode;
2426
2427          if (bd->block > tbd->block)
2428          {
2429            rtems_chain_insert_unprotected (tnode, node);
2430            node = NULL;
2431          }
2432          else
2433            tnode = tnode->previous;
2434        }
2435
2436        if (node)
2437          rtems_chain_prepend_unprotected (transfer, node);
2438
2439        node = next_node;
2440      }
2441      else
2442      {
2443        node = node->next;
2444      }
2445    }
2446  }
2447}
2448
2449/**
2450 * Process the cache's modified buffers. Check the sync list first then the
2451 * modified list extracting the buffers suitable to be written to disk. We have
2452 * a device at a time. The task level loop will repeat this operation while
2453 * there are buffers to be written. If the transfer fails place the buffers
2454 * back on the modified list and try again later. The cache is unlocked while
2455 * the buffers are being written to disk.
2456 *
2457 * @param timer_delta It update_timers is true update the timers by this
2458 *                    amount.
2459 * @param update_timers If true update the timers.
2460 * @param transfer The transfer transaction data.
2461 *
2462 * @retval true Buffers where written to disk so scan again.
2463 * @retval false No buffers where written to disk.
2464 */
2465static bool
2466rtems_bdbuf_swapout_processing (unsigned long                 timer_delta,
2467                                bool                          update_timers,
2468                                rtems_bdbuf_swapout_transfer* transfer)
2469{
2470  rtems_bdbuf_swapout_worker* worker;
2471  bool                        transfered_buffers = false;
2472
2473  rtems_bdbuf_lock_cache ();
2474
2475  /*
2476   * If a sync is active do not use a worker because the current code does not
2477   * cleaning up after. We need to know the buffers have been written when
2478   * syncing to release sync lock and currently worker threads do not return to
2479   * here. We do not know the worker is the last in a sequence of sync writes
2480   * until after we have it running so we do not know to tell it to release the
2481   * lock. The simplest solution is to get the main swap out task perform all
2482   * sync operations.
2483   */
2484  if (bdbuf_cache.sync_active)
2485    worker = NULL;
2486  else
2487  {
2488    worker = (rtems_bdbuf_swapout_worker*)
2489      rtems_chain_get_unprotected (&bdbuf_cache.swapout_workers);
2490    if (worker)
2491      transfer = &worker->transfer;
2492  }
2493
2494  rtems_chain_initialize_empty (&transfer->bds);
2495  transfer->dd = BDBUF_INVALID_DEV;
2496  transfer->syncing = bdbuf_cache.sync_active;
2497 
2498  /*
2499   * When the sync is for a device limit the sync to that device. If the sync
2500   * is for a buffer handle process the devices in the order on the sync
2501   * list. This means the dev is BDBUF_INVALID_DEV.
2502   */
2503  if (bdbuf_cache.sync_active)
2504    transfer->dd = bdbuf_cache.sync_device;
2505   
2506  /*
2507   * If we have any buffers in the sync queue move them to the modified
2508   * list. The first sync buffer will select the device we use.
2509   */
2510  rtems_bdbuf_swapout_modified_processing (&transfer->dd,
2511                                           &bdbuf_cache.sync,
2512                                           &transfer->bds,
2513                                           true, false,
2514                                           timer_delta);
2515
2516  /*
2517   * Process the cache's modified list.
2518   */
2519  rtems_bdbuf_swapout_modified_processing (&transfer->dd,
2520                                           &bdbuf_cache.modified,
2521                                           &transfer->bds,
2522                                           bdbuf_cache.sync_active,
2523                                           update_timers,
2524                                           timer_delta);
2525
2526  /*
2527   * We have all the buffers that have been modified for this device so the
2528   * cache can be unlocked because the state of each buffer has been set to
2529   * TRANSFER.
2530   */
2531  rtems_bdbuf_unlock_cache ();
2532
2533  /*
2534   * If there are buffers to transfer to the media transfer them.
2535   */
2536  if (!rtems_chain_is_empty (&transfer->bds))
2537  {
2538    if (worker)
2539    {
2540      rtems_status_code sc = rtems_event_send (worker->id,
2541                                               RTEMS_BDBUF_SWAPOUT_SYNC);
2542      if (sc != RTEMS_SUCCESSFUL)
2543        rtems_fatal_error_occurred (RTEMS_BLKDEV_FATAL_BDBUF_SO_WAKE);
2544    }
2545    else
2546    {
2547      rtems_bdbuf_swapout_write (transfer);
2548    }
2549
2550    transfered_buffers = true;
2551  }
2552
2553  if (bdbuf_cache.sync_active && !transfered_buffers)
2554  {
2555    rtems_id sync_requester;
2556    rtems_bdbuf_lock_cache ();
2557    sync_requester = bdbuf_cache.sync_requester;
2558    bdbuf_cache.sync_active = false;
2559    bdbuf_cache.sync_requester = 0;
2560    rtems_bdbuf_unlock_cache ();
2561    if (sync_requester)
2562      rtems_event_send (sync_requester, RTEMS_BDBUF_TRANSFER_SYNC);
2563  }
2564
2565  return transfered_buffers;
2566}
2567
2568/**
2569 * Allocate the write request and initialise it for good measure.
2570 *
2571 * @return rtems_blkdev_request* The write reference memory.
2572 */
2573static rtems_blkdev_request*
2574rtems_bdbuf_swapout_writereq_alloc (void)
2575{
2576  /*
2577   * @note chrisj The rtems_blkdev_request and the array at the end is a hack.
2578   * I am disappointment at finding code like this in RTEMS. The request should
2579   * have been a rtems_chain_control. Simple, fast and less storage as the node
2580   * is already part of the buffer structure.
2581   */
2582  rtems_blkdev_request* write_req =
2583    malloc (sizeof (rtems_blkdev_request) +
2584            (bdbuf_config.max_write_blocks * sizeof (rtems_blkdev_sg_buffer)));
2585
2586  if (!write_req)
2587    rtems_fatal_error_occurred (RTEMS_BLKDEV_FATAL_BDBUF_SO_NOMEM);
2588
2589  write_req->req = RTEMS_BLKDEV_REQ_WRITE;
2590  write_req->req_done = rtems_bdbuf_transfer_done;
2591  write_req->done_arg = write_req;
2592  write_req->io_task = rtems_task_self ();
2593
2594  return write_req;
2595}
2596
2597/**
2598 * The swapout worker thread body.
2599 *
2600 * @param arg A pointer to the worker thread's private data.
2601 * @return rtems_task Not used.
2602 */
2603static rtems_task
2604rtems_bdbuf_swapout_worker_task (rtems_task_argument arg)
2605{
2606  rtems_bdbuf_swapout_worker* worker = (rtems_bdbuf_swapout_worker*) arg;
2607
2608  while (worker->enabled)
2609  {
2610    rtems_bdbuf_wait_for_event (RTEMS_BDBUF_SWAPOUT_SYNC);
2611
2612    rtems_bdbuf_swapout_write (&worker->transfer);
2613
2614    rtems_bdbuf_lock_cache ();
2615
2616    rtems_chain_initialize_empty (&worker->transfer.bds);
2617    worker->transfer.dd = BDBUF_INVALID_DEV;
2618
2619    rtems_chain_append_unprotected (&bdbuf_cache.swapout_workers, &worker->link);
2620
2621    rtems_bdbuf_unlock_cache ();
2622  }
2623
2624  free (worker->transfer.write_req);
2625  free (worker);
2626
2627  rtems_task_delete (RTEMS_SELF);
2628}
2629
2630/**
2631 * Open the swapout worker threads.
2632 */
2633static void
2634rtems_bdbuf_swapout_workers_open (void)
2635{
2636  rtems_status_code sc;
2637  size_t            w;
2638
2639  rtems_bdbuf_lock_cache ();
2640
2641  for (w = 0; w < bdbuf_config.swapout_workers; w++)
2642  {
2643    rtems_bdbuf_swapout_worker* worker;
2644
2645    worker = malloc (sizeof (rtems_bdbuf_swapout_worker));
2646    if (!worker)
2647      rtems_fatal_error_occurred (RTEMS_BLKDEV_FATAL_BDBUF_SO_NOMEM);
2648
2649    rtems_chain_append_unprotected (&bdbuf_cache.swapout_workers, &worker->link);
2650    worker->enabled = true;
2651    worker->transfer.write_req = rtems_bdbuf_swapout_writereq_alloc ();
2652
2653    rtems_chain_initialize_empty (&worker->transfer.bds);
2654    worker->transfer.dd = BDBUF_INVALID_DEV;
2655
2656    sc = rtems_bdbuf_create_task (rtems_build_name('B', 'D', 'o', 'a' + w),
2657                                  bdbuf_config.swapout_worker_priority,
2658                                  RTEMS_BDBUF_SWAPOUT_WORKER_TASK_PRIORITY_DEFAULT,
2659                                  rtems_bdbuf_swapout_worker_task,
2660                                  (rtems_task_argument) worker,
2661                                  &worker->id);
2662    if (sc != RTEMS_SUCCESSFUL)
2663      rtems_fatal_error_occurred (RTEMS_BLKDEV_FATAL_BDBUF_SO_WK_CREATE);
2664  }
2665
2666  rtems_bdbuf_unlock_cache ();
2667}
2668
2669/**
2670 * Close the swapout worker threads.
2671 */
2672static void
2673rtems_bdbuf_swapout_workers_close (void)
2674{
2675  rtems_chain_node* node;
2676
2677  rtems_bdbuf_lock_cache ();
2678
2679  node = rtems_chain_first (&bdbuf_cache.swapout_workers);
2680  while (!rtems_chain_is_tail (&bdbuf_cache.swapout_workers, node))
2681  {
2682    rtems_bdbuf_swapout_worker* worker = (rtems_bdbuf_swapout_worker*) node;
2683    worker->enabled = false;
2684    rtems_event_send (worker->id, RTEMS_BDBUF_SWAPOUT_SYNC);
2685    node = rtems_chain_next (node);
2686  }
2687
2688  rtems_bdbuf_unlock_cache ();
2689}
2690
2691/**
2692 * Body of task which takes care on flushing modified buffers to the disk.
2693 *
2694 * @param arg A pointer to the global cache data. Use the global variable and
2695 *            not this.
2696 * @return rtems_task Not used.
2697 */
2698static rtems_task
2699rtems_bdbuf_swapout_task (rtems_task_argument arg)
2700{
2701  rtems_bdbuf_swapout_transfer transfer;
2702  uint32_t                     period_in_ticks;
2703  const uint32_t               period_in_msecs = bdbuf_config.swapout_period;;
2704  uint32_t                     timer_delta;
2705
2706  transfer.write_req = rtems_bdbuf_swapout_writereq_alloc ();
2707  rtems_chain_initialize_empty (&transfer.bds);
2708  transfer.dd = BDBUF_INVALID_DEV;
2709  transfer.syncing = false;
2710
2711  /*
2712   * Localise the period.
2713   */
2714  period_in_ticks = RTEMS_MICROSECONDS_TO_TICKS (period_in_msecs * 1000);
2715
2716  /*
2717   * This is temporary. Needs to be changed to use the real time clock.
2718   */
2719  timer_delta = period_in_msecs;
2720
2721  /*
2722   * Create the worker threads.
2723   */
2724  rtems_bdbuf_swapout_workers_open ();
2725
2726  while (bdbuf_cache.swapout_enabled)
2727  {
2728    rtems_event_set   out;
2729    rtems_status_code sc;
2730
2731    /*
2732     * Only update the timers once in the processing cycle.
2733     */
2734    bool update_timers = true;
2735
2736    /*
2737     * If we write buffers to any disk perform a check again. We only write a
2738     * single device at a time and the cache may have more than one device's
2739     * buffers modified waiting to be written.
2740     */
2741    bool transfered_buffers;
2742
2743    do
2744    {
2745      transfered_buffers = false;
2746
2747      /*
2748       * Extact all the buffers we find for a specific device. The device is
2749       * the first one we find on a modified list. Process the sync queue of
2750       * buffers first.
2751       */
2752      if (rtems_bdbuf_swapout_processing (timer_delta,
2753                                          update_timers,
2754                                          &transfer))
2755      {
2756        transfered_buffers = true;
2757      }
2758
2759      /*
2760       * Only update the timers once.
2761       */
2762      update_timers = false;
2763    }
2764    while (transfered_buffers);
2765
2766    sc = rtems_event_receive (RTEMS_BDBUF_SWAPOUT_SYNC,
2767                              RTEMS_EVENT_ALL | RTEMS_WAIT,
2768                              period_in_ticks,
2769                              &out);
2770
2771    if ((sc != RTEMS_SUCCESSFUL) && (sc != RTEMS_TIMEOUT))
2772      rtems_fatal_error_occurred (BLKDEV_FATAL_BDBUF_SWAPOUT_RE);
2773  }
2774
2775  rtems_bdbuf_swapout_workers_close ();
2776
2777  free (transfer.write_req);
2778
2779  rtems_task_delete (RTEMS_SELF);
2780}
2781
2782static void
2783rtems_bdbuf_purge_list (rtems_chain_control *purge_list)
2784{
2785  bool wake_buffer_waiters = false;
2786  rtems_chain_node *node = NULL;
2787
2788  while ((node = rtems_chain_get_unprotected (purge_list)) != NULL)
2789  {
2790    rtems_bdbuf_buffer *bd = (rtems_bdbuf_buffer *) node;
2791
2792    if (bd->waiters == 0)
2793      wake_buffer_waiters = true;
2794
2795    rtems_bdbuf_discard_buffer (bd);
2796  }
2797
2798  if (wake_buffer_waiters)
2799    rtems_bdbuf_wake (&bdbuf_cache.buffer_waiters);
2800}
2801
2802static void
2803rtems_bdbuf_gather_for_purge (rtems_chain_control *purge_list,
2804                              const rtems_disk_device *dd)
2805{
2806  rtems_bdbuf_buffer *stack [RTEMS_BDBUF_AVL_MAX_HEIGHT];
2807  rtems_bdbuf_buffer **prev = stack;
2808  rtems_bdbuf_buffer *cur = bdbuf_cache.tree;
2809
2810  *prev = NULL;
2811
2812  while (cur != NULL)
2813  {
2814    if (cur->dd == dd)
2815    {
2816      switch (cur->state)
2817      {
2818        case RTEMS_BDBUF_STATE_FREE:
2819        case RTEMS_BDBUF_STATE_EMPTY:
2820        case RTEMS_BDBUF_STATE_ACCESS_PURGED:
2821        case RTEMS_BDBUF_STATE_TRANSFER_PURGED:
2822          break;
2823        case RTEMS_BDBUF_STATE_SYNC:
2824          rtems_bdbuf_wake (&bdbuf_cache.transfer_waiters);
2825          /* Fall through */
2826        case RTEMS_BDBUF_STATE_MODIFIED:
2827          rtems_bdbuf_group_release (cur);
2828          /* Fall through */
2829        case RTEMS_BDBUF_STATE_CACHED:
2830          rtems_chain_extract_unprotected (&cur->link);
2831          rtems_chain_append_unprotected (purge_list, &cur->link);
2832          break;
2833        case RTEMS_BDBUF_STATE_TRANSFER:
2834          rtems_bdbuf_set_state (cur, RTEMS_BDBUF_STATE_TRANSFER_PURGED);
2835          break;
2836        case RTEMS_BDBUF_STATE_ACCESS_CACHED:
2837        case RTEMS_BDBUF_STATE_ACCESS_EMPTY:
2838        case RTEMS_BDBUF_STATE_ACCESS_MODIFIED:
2839          rtems_bdbuf_set_state (cur, RTEMS_BDBUF_STATE_ACCESS_PURGED);
2840          break;
2841        default:
2842          rtems_fatal_error_occurred (RTEMS_BLKDEV_FATAL_BDBUF_STATE_11);
2843      }
2844    }
2845
2846    if (cur->avl.left != NULL)
2847    {
2848      /* Left */
2849      ++prev;
2850      *prev = cur;
2851      cur = cur->avl.left;
2852    }
2853    else if (cur->avl.right != NULL)
2854    {
2855      /* Right */
2856      ++prev;
2857      *prev = cur;
2858      cur = cur->avl.right;
2859    }
2860    else
2861    {
2862      while (*prev != NULL
2863             && (cur == (*prev)->avl.right || (*prev)->avl.right == NULL))
2864      {
2865        /* Up */
2866        cur = *prev;
2867        --prev;
2868      }
2869      if (*prev != NULL)
2870        /* Right */
2871        cur = (*prev)->avl.right;
2872      else
2873        /* Finished */
2874        cur = NULL;
2875    }
2876  }
2877}
2878
2879void
2880rtems_bdbuf_purge_dev (rtems_disk_device *dd)
2881{
2882  rtems_chain_control purge_list;
2883
2884  rtems_chain_initialize_empty (&purge_list);
2885  rtems_bdbuf_lock_cache ();
2886  rtems_bdbuf_gather_for_purge (&purge_list, dd);
2887  rtems_bdbuf_purge_list (&purge_list);
2888  rtems_bdbuf_unlock_cache ();
2889}
2890
2891rtems_status_code
2892rtems_bdbuf_set_block_size (rtems_disk_device *dd, uint32_t block_size)
2893{
2894  rtems_status_code sc = RTEMS_SUCCESSFUL;
2895
2896  rtems_bdbuf_lock_cache ();
2897
2898  if (block_size > 0)
2899  {
2900    size_t bds_per_group = rtems_bdbuf_bds_per_group (block_size);
2901
2902    if (bds_per_group != 0)
2903    {
2904      int block_to_media_block_shift = 0;
2905      uint32_t media_blocks_per_block = block_size / dd->media_block_size;
2906      uint32_t one = 1;
2907
2908      while ((one << block_to_media_block_shift) < media_blocks_per_block)
2909      {
2910        ++block_to_media_block_shift;
2911      }
2912
2913      if ((dd->media_block_size << block_to_media_block_shift) != block_size)
2914        block_to_media_block_shift = -1;
2915
2916      dd->block_size = block_size;
2917      dd->block_to_media_block_shift = block_to_media_block_shift;
2918      dd->bds_per_group = bds_per_group;
2919    }
2920    else
2921    {
2922      sc = RTEMS_INVALID_NUMBER;
2923    }
2924  }
2925  else
2926  {
2927    sc = RTEMS_INVALID_NUMBER;
2928  }
2929
2930  rtems_bdbuf_unlock_cache ();
2931
2932  return sc;
2933}
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