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[/] [or1k/] [trunk/] [linux/] [linux-2.4/] [net/] [irda/] [irttp.c] - Blame information for rev 1765

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1 1275 phoenix
/*********************************************************************
2
 *
3
 * Filename:      irttp.c
4
 * Version:       1.2
5
 * Description:   Tiny Transport Protocol (TTP) implementation
6
 * Status:        Stable
7
 * Author:        Dag Brattli <dagb@cs.uit.no>
8
 * Created at:    Sun Aug 31 20:14:31 1997
9
 * Modified at:   Wed Jan  5 11:31:27 2000
10
 * Modified by:   Dag Brattli <dagb@cs.uit.no>
11
 *
12
 *     Copyright (c) 1998-2000 Dag Brattli <dagb@cs.uit.no>,
13
 *     All Rights Reserved.
14
 *     Copyright (c) 2000-2001 Jean Tourrilhes <jt@hpl.hp.com>
15
 *
16
 *     This program is free software; you can redistribute it and/or
17
 *     modify it under the terms of the GNU General Public License as
18
 *     published by the Free Software Foundation; either version 2 of
19
 *     the License, or (at your option) any later version.
20
 *
21
 *     Neither Dag Brattli nor University of Tromsø admit liability nor
22
 *     provide warranty for any of this software. This material is
23
 *     provided "AS-IS" and at no charge.
24
 *
25
 ********************************************************************/
26
 
27
#include <linux/config.h>
28
#include <linux/skbuff.h>
29
#include <linux/init.h>
30
 
31
#include <asm/byteorder.h>
32
#include <asm/unaligned.h>
33
 
34
#include <net/irda/irda.h>
35
#include <net/irda/irmod.h>
36
#include <net/irda/irlap.h>
37
#include <net/irda/irlmp.h>
38
#include <net/irda/parameters.h>
39
#include <net/irda/irttp.h>
40
 
41
static struct irttp_cb *irttp = NULL;
42
 
43
static void __irttp_close_tsap(struct tsap_cb *self);
44
 
45
static int irttp_data_indication(void *instance, void *sap,
46
                                 struct sk_buff *skb);
47
static int irttp_udata_indication(void *instance, void *sap,
48
                                  struct sk_buff *skb);
49
static void irttp_disconnect_indication(void *instance, void *sap,
50
                                        LM_REASON reason, struct sk_buff *);
51
static void irttp_connect_indication(void *instance, void *sap,
52
                                     struct qos_info *qos, __u32 max_sdu_size,
53
                                     __u8 header_size, struct sk_buff *skb);
54
static void irttp_connect_confirm(void *instance, void *sap,
55
                                  struct qos_info *qos, __u32 max_sdu_size,
56
                                  __u8 header_size, struct sk_buff *skb);
57
static void irttp_run_tx_queue(struct tsap_cb *self);
58
static void irttp_run_rx_queue(struct tsap_cb *self);
59
 
60
static void irttp_flush_queues(struct tsap_cb *self);
61
static void irttp_fragment_skb(struct tsap_cb *self, struct sk_buff *skb);
62
static struct sk_buff *irttp_reassemble_skb(struct tsap_cb *self);
63
static void irttp_todo_expired(unsigned long data);
64
static int irttp_param_max_sdu_size(void *instance, irda_param_t *param,
65
                                    int get);
66
 
67
/* Information for parsing parameters in IrTTP */
68
static pi_minor_info_t pi_minor_call_table[] = {
69
        { NULL, 0 },                                             /* 0x00 */
70
        { irttp_param_max_sdu_size, PV_INTEGER | PV_BIG_ENDIAN } /* 0x01 */
71
};
72
static pi_major_info_t pi_major_call_table[] = {{ pi_minor_call_table, 2 }};
73
static pi_param_info_t param_info = { pi_major_call_table, 1, 0x0f, 4 };
74
 
75
/************************ GLOBAL PROCEDURES ************************/
76
 
77
/*
78
 * Function irttp_init (void)
79
 *
80
 *    Initialize the IrTTP layer. Called by module initialization code
81
 *
82
 */
83
int __init irttp_init(void)
84
{
85
        /* Initialize the irttp structure. */
86
        if (irttp == NULL) {
87
                irttp = kmalloc(sizeof(struct irttp_cb), GFP_KERNEL);
88
                if (irttp == NULL)
89
                        return -ENOMEM;
90
        }
91
        memset(irttp, 0, sizeof(struct irttp_cb));
92
 
93
        irttp->magic = TTP_MAGIC;
94
 
95
        irttp->tsaps = hashbin_new(HB_LOCAL);
96
        if (!irttp->tsaps) {
97
                ERROR("%s(), can't allocate IrTTP hashbin!\n", __FUNCTION__);
98
                return -ENOMEM;
99
        }
100
 
101
        return 0;
102
}
103
 
104
/*
105
 * Function irttp_cleanup (void)
106
 *
107
 *    Called by module destruction/cleanup code
108
 *
109
 */
110
#ifdef MODULE
111
void irttp_cleanup(void)
112
{
113
        /* Check for main structure */
114
        ASSERT(irttp != NULL, return;);
115
        ASSERT(irttp->magic == TTP_MAGIC, return;);
116
 
117
        /*
118
         *  Delete hashbin and close all TSAP instances in it
119
         */
120
        hashbin_delete(irttp->tsaps, (FREE_FUNC) __irttp_close_tsap);
121
 
122
        irttp->magic = 0;
123
 
124
        /* De-allocate main structure */
125
        kfree(irttp);
126
 
127
        irttp = NULL;
128
}
129
#endif
130
 
131
/*************************** SUBROUTINES ***************************/
132
 
133
/*
134
 * Function irttp_start_todo_timer (self, timeout)
135
 *
136
 *    Start todo timer.
137
 *
138
 * Made it more effient and unsensitive to race conditions - Jean II
139
 */
140
static inline void irttp_start_todo_timer(struct tsap_cb *self, int timeout)
141
{
142
        /* Set new value for timer */
143
        mod_timer(&self->todo_timer, jiffies + timeout);
144
}
145
 
146
/*
147
 * Function irttp_todo_expired (data)
148
 *
149
 *    Todo timer has expired!
150
 *
151
 * One of the restriction of the timer is that it is run only on the timer
152
 * interrupt which run every 10ms. This mean that even if you set the timer
153
 * with a delay of 0, it may take up to 10ms before it's run.
154
 * So, to minimise latency and keep cache fresh, we try to avoid using
155
 * it as much as possible.
156
 * Note : we can't use tasklets, because they can't be asynchronously
157
 * killed (need user context), and we can't guarantee that here...
158
 * Jean II
159
 */
160
static void irttp_todo_expired(unsigned long data)
161
{
162
        struct tsap_cb *self = (struct tsap_cb *) data;
163
 
164
        /* Check that we still exist */
165
        if (!self || self->magic != TTP_TSAP_MAGIC)
166
                return;
167
 
168
        IRDA_DEBUG(4, "%s(instance=%p)\n", __FUNCTION__, self);
169
 
170
        /* Try to make some progress, especially on Tx side - Jean II */
171
        irttp_run_rx_queue(self);
172
        irttp_run_tx_queue(self);
173
 
174
        /* Check if time for disconnect */
175
        if (test_bit(0, &self->disconnect_pend)) {
176
                /* Check if it's possible to disconnect yet */
177
                if (skb_queue_empty(&self->tx_queue)) {
178
                        /* Make sure disconnect is not pending anymore */
179
                        clear_bit(0, &self->disconnect_pend);    /* FALSE */
180
 
181
                        /* Note : self->disconnect_skb may be NULL */
182
                        irttp_disconnect_request(self, self->disconnect_skb,
183
                                                 P_NORMAL);
184
                        self->disconnect_skb = NULL;
185
                } else {
186
                        /* Try again later */
187
                        irttp_start_todo_timer(self, HZ/10);
188
 
189
                        /* No reason to try and close now */
190
                        return;
191
                }
192
        }
193
 
194
        /* Check if it's closing time */
195
        if (self->close_pend)
196
                /* Finish cleanup */
197
                irttp_close_tsap(self);
198
}
199
 
200
/*
201
 * Function irttp_flush_queues (self)
202
 *
203
 *     Flushes (removes all frames) in transitt-buffer (tx_list)
204
 */
205
void irttp_flush_queues(struct tsap_cb *self)
206
{
207
        struct sk_buff* skb;
208
 
209
        IRDA_DEBUG(4, "%s()\n", __FUNCTION__);
210
 
211
        ASSERT(self != NULL, return;);
212
        ASSERT(self->magic == TTP_TSAP_MAGIC, return;);
213
 
214
        /* Deallocate frames waiting to be sent */
215
        while ((skb = skb_dequeue(&self->tx_queue)) != NULL)
216
                dev_kfree_skb(skb);
217
 
218
        /* Deallocate received frames */
219
        while ((skb = skb_dequeue(&self->rx_queue)) != NULL)
220
                dev_kfree_skb(skb);
221
 
222
        /* Deallocate received fragments */
223
        while ((skb = skb_dequeue(&self->rx_fragments)) != NULL)
224
                dev_kfree_skb(skb);
225
}
226
 
227
/*
228
 * Function irttp_reassemble (self)
229
 *
230
 *    Makes a new (continuous) skb of all the fragments in the fragment
231
 *    queue
232
 *
233
 */
234
static struct sk_buff *irttp_reassemble_skb(struct tsap_cb *self)
235
{
236
        struct sk_buff *skb, *frag;
237
        int n = 0;  /* Fragment index */
238
 
239
        ASSERT(self != NULL, return NULL;);
240
        ASSERT(self->magic == TTP_TSAP_MAGIC, return NULL;);
241
 
242
        IRDA_DEBUG(2, "%s(), self->rx_sdu_size=%d\n", __FUNCTION__,
243
                   self->rx_sdu_size);
244
 
245
        skb = dev_alloc_skb(TTP_HEADER + self->rx_sdu_size);
246
        if (!skb)
247
                return NULL;
248
 
249
        /*
250
         * Need to reserve space for TTP header in case this skb needs to
251
         * be requeued in case delivery failes
252
         */
253
        skb_reserve(skb, TTP_HEADER);
254
        skb_put(skb, self->rx_sdu_size);
255
 
256
        /*
257
         *  Copy all fragments to a new buffer
258
         */
259
        while ((frag = skb_dequeue(&self->rx_fragments)) != NULL) {
260
                memcpy(skb->data+n, frag->data, frag->len);
261
                n += frag->len;
262
 
263
                dev_kfree_skb(frag);
264
        }
265
        IRDA_DEBUG(2, "%s(), frame len=%d\n", __FUNCTION__, n);
266
 
267
        IRDA_DEBUG(2, "%s(), rx_sdu_size=%d\n", __FUNCTION__, self->rx_sdu_size);
268
        ASSERT(n <= self->rx_sdu_size, return NULL;);
269
 
270
        /* Set the new length */
271
        skb_trim(skb, n);
272
 
273
        self->rx_sdu_size = 0;
274
 
275
        return skb;
276
}
277
 
278
/*
279
 * Function irttp_fragment_skb (skb)
280
 *
281
 *    Fragments a frame and queues all the fragments for transmission
282
 *
283
 */
284
static inline void irttp_fragment_skb(struct tsap_cb *self,
285
                                      struct sk_buff *skb)
286
{
287
        struct sk_buff *frag;
288
        __u8 *frame;
289
 
290
        IRDA_DEBUG(2, "%s()\n", __FUNCTION__);
291
 
292
        ASSERT(self != NULL, return;);
293
        ASSERT(self->magic == TTP_TSAP_MAGIC, return;);
294
        ASSERT(skb != NULL, return;);
295
 
296
        /*
297
         *  Split frame into a number of segments
298
         */
299
        while (skb->len > self->max_seg_size) {
300
                IRDA_DEBUG(2, "%s(), fragmenting ...\n", __FUNCTION__);
301
 
302
                /* Make new segment */
303
                frag = dev_alloc_skb(self->max_seg_size+self->max_header_size);
304
                if (!frag)
305
                        return;
306
 
307
                skb_reserve(frag, self->max_header_size);
308
 
309
                /* Copy data from the original skb into this fragment. */
310
                memcpy(skb_put(frag, self->max_seg_size), skb->data,
311
                       self->max_seg_size);
312
 
313
                /* Insert TTP header, with the more bit set */
314
                frame = skb_push(frag, TTP_HEADER);
315
                frame[0] = TTP_MORE;
316
 
317
                /* Hide the copied data from the original skb */
318
                skb_pull(skb, self->max_seg_size);
319
 
320
                /* Queue fragment */
321
                skb_queue_tail(&self->tx_queue, frag);
322
        }
323
        /* Queue what is left of the original skb */
324
        IRDA_DEBUG(2, "%s(), queuing last segment\n", __FUNCTION__);
325
 
326
        frame = skb_push(skb, TTP_HEADER);
327
        frame[0] = 0x00; /* Clear more bit */
328
 
329
        /* Queue fragment */
330
        skb_queue_tail(&self->tx_queue, skb);
331
}
332
 
333
/*
334
 * Function irttp_param_max_sdu_size (self, param)
335
 *
336
 *    Handle the MaxSduSize parameter in the connect frames, this function
337
 *    will be called both when this parameter needs to be inserted into, and
338
 *    extracted from the connect frames
339
 */
340
static int irttp_param_max_sdu_size(void *instance, irda_param_t *param,
341
                                    int get)
342
{
343
        struct tsap_cb *self;
344
 
345
        self = (struct tsap_cb *) instance;
346
 
347
        ASSERT(self != NULL, return -1;);
348
        ASSERT(self->magic == TTP_TSAP_MAGIC, return -1;);
349
 
350
        if (get)
351
                param->pv.i = self->tx_max_sdu_size;
352
        else
353
                self->tx_max_sdu_size = param->pv.i;
354
 
355
        IRDA_DEBUG(1, "%s(), MaxSduSize=%d\n", __FUNCTION__, param->pv.i);
356
 
357
        return 0;
358
}
359
 
360
/*************************** CLIENT CALLS ***************************/
361
/************************** LMP CALLBACKS **************************/
362
/* Everything is happily mixed up. Waiting for next clean up - Jean II */
363
 
364
/*
365
 * Function irttp_open_tsap (stsap, notify)
366
 *
367
 *    Create TSAP connection endpoint,
368
 */
369
struct tsap_cb *irttp_open_tsap(__u8 stsap_sel, int credit, notify_t *notify)
370
{
371
        struct tsap_cb *self;
372
        struct lsap_cb *lsap;
373
        notify_t ttp_notify;
374
 
375
        ASSERT(irttp != NULL, return NULL;);
376
        ASSERT(irttp->magic == TTP_MAGIC, return NULL;);
377
 
378
        /* The IrLMP spec (IrLMP 1.1 p10) says that we have the right to
379
         * use only 0x01-0x6F. Of course, we can use LSAP_ANY as well.
380
         * JeanII */
381
        if((stsap_sel != LSAP_ANY) &&
382
           ((stsap_sel < 0x01) || (stsap_sel >= 0x70))) {
383
                IRDA_DEBUG(0, "%s(), invalid tsap!\n", __FUNCTION__);
384
                return NULL;
385
        }
386
 
387
        self = kmalloc(sizeof(struct tsap_cb), GFP_ATOMIC);
388
        if (self == NULL) {
389
                IRDA_DEBUG(0, "%s(), unable to kmalloc!\n", __FUNCTION__);
390
                return NULL;
391
        }
392
        memset(self, 0, sizeof(struct tsap_cb));
393
        spin_lock_init(&self->lock);
394
 
395
        /* Initialise todo timer */
396
        init_timer(&self->todo_timer);
397
        self->todo_timer.data     = (unsigned long) self;
398
        self->todo_timer.function = &irttp_todo_expired;
399
 
400
        /* Initialize callbacks for IrLMP to use */
401
        irda_notify_init(&ttp_notify);
402
        ttp_notify.connect_confirm = irttp_connect_confirm;
403
        ttp_notify.connect_indication = irttp_connect_indication;
404
        ttp_notify.disconnect_indication = irttp_disconnect_indication;
405
        ttp_notify.data_indication = irttp_data_indication;
406
        ttp_notify.udata_indication = irttp_udata_indication;
407
        ttp_notify.flow_indication = irttp_flow_indication;
408
        if(notify->status_indication != NULL)
409
                ttp_notify.status_indication = irttp_status_indication;
410
        ttp_notify.instance = self;
411
        strncpy(ttp_notify.name, notify->name, NOTIFY_MAX_NAME);
412
 
413
        self->magic = TTP_TSAP_MAGIC;
414
        self->connected = FALSE;
415
 
416
        skb_queue_head_init(&self->rx_queue);
417
        skb_queue_head_init(&self->tx_queue);
418
        skb_queue_head_init(&self->rx_fragments);
419
        /*
420
         *  Create LSAP at IrLMP layer
421
         */
422
        lsap = irlmp_open_lsap(stsap_sel, &ttp_notify, 0);
423
        if (lsap == NULL) {
424
                WARNING("%s(), unable to allocate LSAP!!\n", __FUNCTION__);
425
                return NULL;
426
        }
427
 
428
        /*
429
         *  If user specified LSAP_ANY as source TSAP selector, then IrLMP
430
         *  will replace it with whatever source selector which is free, so
431
         *  the stsap_sel we have might not be valid anymore
432
         */
433
        self->stsap_sel = lsap->slsap_sel;
434
        IRDA_DEBUG(4, "%s(), stsap_sel=%02x\n", __FUNCTION__, self->stsap_sel);
435
 
436
        self->notify = *notify;
437
        self->lsap = lsap;
438
 
439
        hashbin_insert(irttp->tsaps, (irda_queue_t *) self, (int) self, NULL);
440
 
441
        if (credit > TTP_RX_MAX_CREDIT)
442
                self->initial_credit = TTP_RX_MAX_CREDIT;
443
        else
444
                self->initial_credit = credit;
445
 
446
        return self;
447
}
448
 
449
/*
450
 * Function irttp_close (handle)
451
 *
452
 *    Remove an instance of a TSAP. This function should only deal with the
453
 *    deallocation of the TSAP, and resetting of the TSAPs values;
454
 *
455
 */
456
static void __irttp_close_tsap(struct tsap_cb *self)
457
{
458
        /* First make sure we're connected. */
459
        ASSERT(self != NULL, return;);
460
        ASSERT(self->magic == TTP_TSAP_MAGIC, return;);
461
 
462
        irttp_flush_queues(self);
463
 
464
        del_timer(&self->todo_timer);
465
 
466
        /* This one won't be cleaned up if we are disconnect_pend + close_pend
467
         * and we receive a disconnect_indication */
468
        if (self->disconnect_skb)
469
                dev_kfree_skb(self->disconnect_skb);
470
 
471
        self->connected = FALSE;
472
        self->magic = ~TTP_TSAP_MAGIC;
473
 
474
        kfree(self);
475
}
476
 
477
/*
478
 * Function irttp_close (self)
479
 *
480
 *    Remove TSAP from list of all TSAPs and then deallocate all resources
481
 *    associated with this TSAP
482
 *
483
 * Note : because we *free* the tsap structure, it is the responsability
484
 * of the caller to make sure we are called only once and to deal with
485
 * possible race conditions. - Jean II
486
 */
487
int irttp_close_tsap(struct tsap_cb *self)
488
{
489
        struct tsap_cb *tsap;
490
 
491
        IRDA_DEBUG(4, "%s()\n", __FUNCTION__);
492
 
493
        ASSERT(self != NULL, return -1;);
494
        ASSERT(self->magic == TTP_TSAP_MAGIC, return -1;);
495
 
496
        /* Make sure tsap has been disconnected */
497
        if (self->connected) {
498
                /* Check if disconnect is not pending */
499
                if (!test_bit(0, &self->disconnect_pend)) {
500
                        WARNING("%s(), TSAP still connected!\n", __FUNCTION__);
501
                        irttp_disconnect_request(self, NULL, P_NORMAL);
502
                }
503
                self->close_pend = TRUE;
504
                irttp_start_todo_timer(self, HZ/10);
505
 
506
                return 0; /* Will be back! */
507
        }
508
 
509
        tsap = hashbin_remove(irttp->tsaps, (int) self, NULL);
510
 
511
        ASSERT(tsap == self, return -1;);
512
 
513
        /* Close corresponding LSAP */
514
        if (self->lsap) {
515
                irlmp_close_lsap(self->lsap);
516
                self->lsap = NULL;
517
        }
518
 
519
        __irttp_close_tsap(self);
520
 
521
        return 0;
522
}
523
 
524
/*
525
 * Function irttp_udata_request (self, skb)
526
 *
527
 *    Send unreliable data on this TSAP
528
 *
529
 */
530
int irttp_udata_request(struct tsap_cb *self, struct sk_buff *skb)
531
{
532
        ASSERT(self != NULL, return -1;);
533
        ASSERT(self->magic == TTP_TSAP_MAGIC, return -1;);
534
        ASSERT(skb != NULL, return -1;);
535
 
536
        IRDA_DEBUG(4, "%s()\n", __FUNCTION__);
537
 
538
        /* Check that nothing bad happens */
539
        if ((skb->len == 0) || (!self->connected)) {
540
                IRDA_DEBUG(1, "%s(), No data, or not connected\n", __FUNCTION__);
541
                return -1;
542
        }
543
 
544
        if (skb->len > self->max_seg_size) {
545
                IRDA_DEBUG(1, "%s(), UData is to large for IrLAP!\n", __FUNCTION__);
546
                return -1;
547
        }
548
 
549
        irlmp_udata_request(self->lsap, skb);
550
        self->stats.tx_packets++;
551
 
552
        return 0;
553
}
554
 
555
/*
556
 * Function irttp_data_request (handle, skb)
557
 *
558
 *    Queue frame for transmission. If SAR is enabled, fragement the frame
559
 *    and queue the fragments for transmission
560
 */
561
int irttp_data_request(struct tsap_cb *self, struct sk_buff *skb)
562
{
563
        __u8 *frame;
564
 
565
        ASSERT(self != NULL, return -1;);
566
        ASSERT(self->magic == TTP_TSAP_MAGIC, return -1;);
567
        ASSERT(skb != NULL, return -1;);
568
 
569
        IRDA_DEBUG(2, "%s : queue len = %d\n", __FUNCTION__,
570
                   skb_queue_len(&self->tx_queue));
571
 
572
        /* Check that nothing bad happens */
573
        if ((skb->len == 0) || (!self->connected)) {
574
                WARNING("%s(), No data, or not connected\n", __FUNCTION__);
575
                return -ENOTCONN;
576
        }
577
 
578
        /*
579
         *  Check if SAR is disabled, and the frame is larger than what fits
580
         *  inside an IrLAP frame
581
         */
582
        if ((self->tx_max_sdu_size == 0) && (skb->len > self->max_seg_size)) {
583
                ERROR("%s(), SAR disabled, and data is to large for IrLAP!\n", __FUNCTION__);
584
                return -EMSGSIZE;
585
        }
586
 
587
        /*
588
         *  Check if SAR is enabled, and the frame is larger than the
589
         *  TxMaxSduSize
590
         */
591
        if ((self->tx_max_sdu_size != 0) &&
592
            (self->tx_max_sdu_size != TTP_SAR_UNBOUND) &&
593
            (skb->len > self->tx_max_sdu_size))
594
        {
595
                ERROR("%s(), SAR enabled, "
596
                      "but data is larger than TxMaxSduSize!\n", __FUNCTION__);
597
                return -EMSGSIZE;
598
        }
599
        /*
600
         *  Check if transmit queue is full
601
         */
602
        if (skb_queue_len(&self->tx_queue) >= TTP_TX_MAX_QUEUE) {
603
                /*
604
                 *  Give it a chance to empty itself
605
                 */
606
                irttp_run_tx_queue(self);
607
 
608
                /* Drop packet. This error code should trigger the caller
609
                 * to requeue the packet in the client code - Jean II */
610
                return -ENOBUFS;
611
        }
612
 
613
        /* Queue frame, or queue frame segments */
614
        if ((self->tx_max_sdu_size == 0) || (skb->len < self->max_seg_size)) {
615
                /* Queue frame */
616
                ASSERT(skb_headroom(skb) >= TTP_HEADER, return -1;);
617
                frame = skb_push(skb, TTP_HEADER);
618
                frame[0] = 0x00; /* Clear more bit */
619
 
620
                skb_queue_tail(&self->tx_queue, skb);
621
        } else {
622
                /*
623
                 *  Fragment the frame, this function will also queue the
624
                 *  fragments, we don't care about the fact the transmit
625
                 *  queue may be overfilled by all the segments for a little
626
                 *  while
627
                 */
628
                irttp_fragment_skb(self, skb);
629
        }
630
 
631
        /* Check if we can accept more data from client */
632
        if ((!self->tx_sdu_busy) &&
633
            (skb_queue_len(&self->tx_queue) > TTP_TX_HIGH_THRESHOLD)) {
634
                /* Tx queue filling up, so stop client. */
635
                if (self->notify.flow_indication) {
636
                        self->notify.flow_indication(self->notify.instance,
637
                                                     self, FLOW_STOP);
638
                }
639
                /* self->tx_sdu_busy is the state of the client.
640
                 * Update state after notifying client to avoid
641
                 * race condition with irttp_flow_indication().
642
                 * If the queue empty itself after our test but before
643
                 * we set the flag, we will fix ourselves below in
644
                 * irttp_run_tx_queue().
645
                 * Jean II */
646
                self->tx_sdu_busy = TRUE;
647
        }
648
 
649
        /* Try to make some progress */
650
        irttp_run_tx_queue(self);
651
 
652
        return 0;
653
}
654
 
655
/*
656
 * Function irttp_run_tx_queue (self)
657
 *
658
 *    Transmit packets queued for transmission (if possible)
659
 *
660
 */
661
static void irttp_run_tx_queue(struct tsap_cb *self)
662
{
663
        struct sk_buff *skb;
664
        unsigned long flags;
665
        int n;
666
 
667
        IRDA_DEBUG(2, "%s() : send_credit = %d, queue_len = %d\n", __FUNCTION__,
668
                   self->send_credit, skb_queue_len(&self->tx_queue));
669
 
670
        /* Get exclusive access to the tx queue, otherwise don't touch it */
671
        if (irda_lock(&self->tx_queue_lock) == FALSE)
672
                return;
673
 
674
        /* Try to send out frames as long as we have credits
675
         * and as long as LAP is not full. If LAP is full, it will
676
         * poll us through irttp_flow_indication() - Jean II */
677
        while ((self->send_credit > 0) &&
678
               (!irlmp_lap_tx_queue_full(self->lsap)) &&
679
               (skb = skb_dequeue(&self->tx_queue)))
680
        {
681
                /*
682
                 *  Since we can transmit and receive frames concurrently,
683
                 *  the code below is a critical region and we must assure that
684
                 *  nobody messes with the credits while we update them.
685
                 */
686
                spin_lock_irqsave(&self->lock, flags);
687
 
688
                n = self->avail_credit;
689
                self->avail_credit = 0;
690
 
691
                /* Only room for 127 credits in frame */
692
                if (n > 127) {
693
                        self->avail_credit = n-127;
694
                        n = 127;
695
                }
696
                self->remote_credit += n;
697
                self->send_credit--;
698
 
699
                spin_unlock_irqrestore(&self->lock, flags);
700
 
701
                /*
702
                 *  More bit must be set by the data_request() or fragment()
703
                 *  functions
704
                 */
705
                skb->data[0] |= (n & 0x7f);
706
 
707
                /* Detach from socket.
708
                 * The current skb has a reference to the socket that sent
709
                 * it (skb->sk). When we pass it to IrLMP, the skb will be
710
                 * stored in in IrLAP (self->wx_list). When we are within
711
                 * IrLAP, we loose the notion of socket, so we should not
712
                 * have a reference to a socket. So, we drop it here.
713
                 *
714
                 * Why does it matter ?
715
                 * When the skb is freed (kfree_skb), if it is associated
716
                 * with a socket, it release buffer space on the socket
717
                 * (through sock_wfree() and sock_def_write_space()).
718
                 * If the socket no longer exist, we may crash. Hard.
719
                 * When we close a socket, we make sure that associated packets
720
                 * in IrTTP are freed. However, we have no way to cancel
721
                 * the packet that we have passed to IrLAP. So, if a packet
722
                 * remains in IrLAP (retry on the link or else) after we
723
                 * close the socket, we are dead !
724
                 * Jean II */
725
                if (skb->sk != NULL) {
726
                        /* IrSOCK application, IrOBEX, ... */
727
                        skb_orphan(skb);
728
                }
729
                        /* IrCOMM over IrTTP, IrLAN, ... */
730
 
731
                /* Pass the skb to IrLMP - done */
732
                irlmp_data_request(self->lsap, skb);
733
                self->stats.tx_packets++;
734
        }
735
 
736
        /* Check if we can accept more frames from client.
737
         * We don't want to wait until the todo timer to do that, and we
738
         * can't use tasklets (grr...), so we are obliged to give control
739
         * to client. That's ok, this test will be true not too often
740
         * (max once per LAP window) and we are called from places
741
         * where we can spend a bit of time doing stuff. - Jean II */
742
        if ((self->tx_sdu_busy) &&
743
            (skb_queue_len(&self->tx_queue) < TTP_TX_LOW_THRESHOLD) &&
744
            (!self->close_pend))
745
        {
746
                if (self->notify.flow_indication)
747
                        self->notify.flow_indication(self->notify.instance,
748
                                                     self, FLOW_START);
749
 
750
                /* self->tx_sdu_busy is the state of the client.
751
                 * We don't really have a race here, but it's always safer
752
                 * to update our state after the client - Jean II */
753
                self->tx_sdu_busy = FALSE;
754
        }
755
 
756
        /* Reset lock */
757
        self->tx_queue_lock = 0;
758
}
759
 
760
/*
761
 * Function irttp_give_credit (self)
762
 *
763
 *    Send a dataless flowdata TTP-PDU and give available credit to peer
764
 *    TSAP
765
 */
766
static inline void irttp_give_credit(struct tsap_cb *self)
767
{
768
        struct sk_buff *tx_skb = NULL;
769
        unsigned long flags;
770
        int n;
771
 
772
        ASSERT(self != NULL, return;);
773
        ASSERT(self->magic == TTP_TSAP_MAGIC, return;);
774
 
775
        IRDA_DEBUG(4, "%s() send=%d,avail=%d,remote=%d\n", __FUNCTION__,
776
                   self->send_credit, self->avail_credit, self->remote_credit);
777
 
778
        /* Give credit to peer */
779
        tx_skb = dev_alloc_skb(64);
780
        if (!tx_skb)
781
                return;
782
 
783
        /* Reserve space for LMP, and LAP header */
784
        skb_reserve(tx_skb, self->max_header_size);
785
 
786
        /*
787
         *  Since we can transmit and receive frames concurrently,
788
         *  the code below is a critical region and we must assure that
789
         *  nobody messes with the credits while we update them.
790
         */
791
        spin_lock_irqsave(&self->lock, flags);
792
 
793
        n = self->avail_credit;
794
        self->avail_credit = 0;
795
 
796
        /* Only space for 127 credits in frame */
797
        if (n > 127) {
798
                self->avail_credit = n - 127;
799
                n = 127;
800
        }
801
        self->remote_credit += n;
802
 
803
        spin_unlock_irqrestore(&self->lock, flags);
804
 
805
        skb_put(tx_skb, 1);
806
        tx_skb->data[0] = (__u8) (n & 0x7f);
807
 
808
        irlmp_data_request(self->lsap, tx_skb);
809
        self->stats.tx_packets++;
810
}
811
 
812
/*
813
 * Function irttp_udata_indication (instance, sap, skb)
814
 *
815
 *    Received some unit-data (unreliable)
816
 *
817
 */
818
static int irttp_udata_indication(void *instance, void *sap,
819
                                  struct sk_buff *skb)
820
{
821
        struct tsap_cb *self;
822
 
823
        IRDA_DEBUG(4, "%s()\n", __FUNCTION__);
824
 
825
        self = (struct tsap_cb *) instance;
826
 
827
        ASSERT(self != NULL, return -1;);
828
        ASSERT(self->magic == TTP_TSAP_MAGIC, return -1;);
829
        ASSERT(skb != NULL, return -1;);
830
 
831
        /* Just pass data to layer above */
832
        if (self->notify.udata_indication)
833
                self->notify.udata_indication(self->notify.instance, self,skb);
834
        else
835
                dev_kfree_skb(skb);
836
 
837
        self->stats.rx_packets++;
838
 
839
        return 0;
840
}
841
 
842
/*
843
 * Function irttp_data_indication (instance, sap, skb)
844
 *
845
 *    Receive segment from IrLMP.
846
 *
847
 */
848
static int irttp_data_indication(void *instance, void *sap,
849
                                 struct sk_buff *skb)
850
{
851
        struct tsap_cb *self;
852
        unsigned long flags;
853
        int n;
854
 
855
        self = (struct tsap_cb *) instance;
856
 
857
        n = skb->data[0] & 0x7f;     /* Extract the credits */
858
 
859
        self->stats.rx_packets++;
860
 
861
        /*  Deal with inbound credit
862
         *  Since we can transmit and receive frames concurrently,
863
         *  the code below is a critical region and we must assure that
864
         *  nobody messes with the credits while we update them.
865
         */
866
        spin_lock_irqsave(&self->lock, flags);
867
        self->send_credit += n;
868
        if (skb->len > 1)
869
                self->remote_credit--;
870
        spin_unlock_irqrestore(&self->lock, flags);
871
 
872
        /*
873
         *  Data or dataless packet? Dataless frames contains only the
874
         *  TTP_HEADER.
875
         */
876
        if (skb->len > 1) {
877
                /*
878
                 *  We don't remove the TTP header, since we must preserve the
879
                 *  more bit, so the defragment routing knows what to do
880
                 */
881
                skb_queue_tail(&self->rx_queue, skb);
882
        } else {
883
                /* Dataless flowdata TTP-PDU */
884
                dev_kfree_skb(skb);
885
        }
886
 
887
 
888
        /* Push data to the higher layer.
889
         * We do it synchronously because running the todo timer for each
890
         * receive packet would be too much overhead and latency.
891
         * By passing control to the higher layer, we run the risk that
892
         * it may take time or grab a lock. Most often, the higher layer
893
         * will only put packet in a queue.
894
         * Anyway, packets are only dripping through the IrDA, so we can
895
         * have time before the next packet.
896
         * Further, we are run from NET_BH, so the worse that can happen is
897
         * us missing the optimal time to send back the PF bit in LAP.
898
         * Jean II */
899
        irttp_run_rx_queue(self);
900
 
901
        /* We now give credits to peer in irttp_run_rx_queue().
902
         * We need to send credit *NOW*, otherwise we are going
903
         * to miss the next Tx window. The todo timer may take
904
         * a while before it's run... - Jean II */
905
 
906
        /*
907
         * If the peer device has given us some credits and we didn't have
908
         * anyone from before, then we need to shedule the tx queue.
909
         * We need to do that because our Tx have stopped (so we may not
910
         * get any LAP flow indication) and the user may be stopped as
911
         * well. - Jean II
912
         */
913
        if (self->send_credit == n) {
914
                /* Restart pushing stuff to LAP */
915
                irttp_run_tx_queue(self);
916
                /* Note : we don't want to schedule the todo timer
917
                 * because it has horrible latency. No tasklets
918
                 * because the tasklet API is broken. - Jean II */
919
        }
920
 
921
        return 0;
922
}
923
 
924
/*
925
 * Function irttp_status_indication (self, reason)
926
 *
927
 *    Status_indication, just pass to the higher layer...
928
 *
929
 */
930
void irttp_status_indication(void *instance,
931
                             LINK_STATUS link, LOCK_STATUS lock)
932
{
933
        struct tsap_cb *self;
934
 
935
        IRDA_DEBUG(4, "%s()\n", __FUNCTION__);
936
 
937
        self = (struct tsap_cb *) instance;
938
 
939
        ASSERT(self != NULL, return;);
940
        ASSERT(self->magic == TTP_TSAP_MAGIC, return;);
941
 
942
        /*
943
         *  Inform service user if he has requested it
944
         */
945
        if (self->notify.status_indication != NULL)
946
                self->notify.status_indication(self->notify.instance,
947
                                               link, lock);
948
        else
949
                IRDA_DEBUG(2, "%s(), no handler\n", __FUNCTION__);
950
}
951
 
952
/*
953
 * Function irttp_flow_indication (self, reason)
954
 *
955
 *    Flow_indication : IrLAP tells us to send more data.
956
 *
957
 */
958
void irttp_flow_indication(void *instance, void *sap, LOCAL_FLOW flow)
959
{
960
        struct tsap_cb *self;
961
 
962
        self = (struct tsap_cb *) instance;
963
 
964
        ASSERT(self != NULL, return;);
965
        ASSERT(self->magic == TTP_TSAP_MAGIC, return;);
966
 
967
        IRDA_DEBUG(4, "%s(instance=%p)\n", __FUNCTION__, self);
968
 
969
        /* We are "polled" directly from LAP, and the LAP want to fill
970
         * its Tx window. We want to do our best to send it data, so that
971
         * we maximise the window. On the other hand, we want to limit the
972
         * amount of work here so that LAP doesn't hang forever waiting
973
         * for packets. - Jean II */
974
 
975
        /* Try to send some packets. Currently, LAP calls us every time
976
         * there is one free slot, so we will send only one packet.
977
         * This allow the scheduler to do its round robin - Jean II */
978
        irttp_run_tx_queue(self);
979
 
980
        /* Note regarding the interraction with higher layer.
981
         * irttp_run_tx_queue() may call the client when its queue
982
         * start to empty, via notify.flow_indication(). Initially.
983
         * I wanted this to happen in a tasklet, to avoid client
984
         * grabbing the CPU, but we can't use tasklets safely. And timer
985
         * is definitely too slow.
986
         * This will happen only once per LAP window, and usually at
987
         * the third packet (unless window is smaller). LAP is still
988
         * doing mtt and sending first packet so it's sort of OK
989
         * to do that. Jean II */
990
 
991
        /* If we need to send disconnect. try to do it now */
992
        if(self->disconnect_pend)
993
                irttp_start_todo_timer(self, 0);
994
}
995
 
996
/*
997
 * Function irttp_flow_request (self, command)
998
 *
999
 *    This funtion could be used by the upper layers to tell IrTTP to stop
1000
 *    delivering frames if the receive queues are starting to get full, or
1001
 *    to tell IrTTP to start delivering frames again.
1002
 */
1003
void irttp_flow_request(struct tsap_cb *self, LOCAL_FLOW flow)
1004
{
1005
        IRDA_DEBUG(1, "%s()\n", __FUNCTION__);
1006
 
1007
        ASSERT(self != NULL, return;);
1008
        ASSERT(self->magic == TTP_TSAP_MAGIC, return;);
1009
 
1010
        switch (flow) {
1011
        case FLOW_STOP:
1012
                IRDA_DEBUG(1, "%s(), flow stop\n", __FUNCTION__);
1013
                self->rx_sdu_busy = TRUE;
1014
                break;
1015
        case FLOW_START:
1016
                IRDA_DEBUG(1, "%s(), flow start\n", __FUNCTION__);
1017
                self->rx_sdu_busy = FALSE;
1018
 
1019
                /* Client say he can accept more data, try to free our
1020
                 * queues ASAP - Jean II */
1021
                irttp_run_rx_queue(self);
1022
 
1023
                break;
1024
        default:
1025
                IRDA_DEBUG(1, "%s(), Unknown flow command!\n", __FUNCTION__);
1026
        }
1027
}
1028
 
1029
/*
1030
 * Function irttp_connect_request (self, dtsap_sel, daddr, qos)
1031
 *
1032
 *    Try to connect to remote destination TSAP selector
1033
 *
1034
 */
1035
int irttp_connect_request(struct tsap_cb *self, __u8 dtsap_sel,
1036
                          __u32 saddr, __u32 daddr,
1037
                          struct qos_info *qos, __u32 max_sdu_size,
1038
                          struct sk_buff *userdata)
1039
{
1040
        struct sk_buff *skb;
1041
        __u8 *frame;
1042
        __u8 n;
1043
 
1044
        IRDA_DEBUG(4, "%s(), max_sdu_size=%d\n", __FUNCTION__, max_sdu_size);
1045
 
1046
        ASSERT(self != NULL, return -EBADR;);
1047
        ASSERT(self->magic == TTP_TSAP_MAGIC, return -EBADR;);
1048
 
1049
        if (self->connected)
1050
                return -EISCONN;
1051
 
1052
        /* Any userdata supplied? */
1053
        if (userdata == NULL) {
1054
                skb = dev_alloc_skb(64);
1055
                if (!skb)
1056
                        return -ENOMEM;
1057
 
1058
                /* Reserve space for MUX_CONTROL and LAP header */
1059
                skb_reserve(skb, TTP_MAX_HEADER);
1060
        } else {
1061
                skb = userdata;
1062
                /*
1063
                 *  Check that the client has reserved enough space for
1064
                 *  headers
1065
                 */
1066
                ASSERT(skb_headroom(userdata) >= TTP_MAX_HEADER, return -1;);
1067
        }
1068
 
1069
        /* Initialize connection parameters */
1070
        self->connected = FALSE;
1071
        self->avail_credit = 0;
1072
        self->rx_max_sdu_size = max_sdu_size;
1073
        self->rx_sdu_size = 0;
1074
        self->rx_sdu_busy = FALSE;
1075
        self->dtsap_sel = dtsap_sel;
1076
 
1077
        n = self->initial_credit;
1078
 
1079
        self->remote_credit = 0;
1080
        self->send_credit = 0;
1081
 
1082
        /*
1083
         *  Give away max 127 credits for now
1084
         */
1085
        if (n > 127) {
1086
                self->avail_credit=n-127;
1087
                n = 127;
1088
        }
1089
 
1090
        self->remote_credit = n;
1091
 
1092
        /* SAR enabled? */
1093
        if (max_sdu_size > 0) {
1094
                ASSERT(skb_headroom(skb) >= (TTP_MAX_HEADER + TTP_SAR_HEADER),
1095
                       return -1;);
1096
 
1097
                /* Insert SAR parameters */
1098
                frame = skb_push(skb, TTP_HEADER+TTP_SAR_HEADER);
1099
 
1100
                frame[0] = TTP_PARAMETERS | n;
1101
                frame[1] = 0x04; /* Length */
1102
                frame[2] = 0x01; /* MaxSduSize */
1103
                frame[3] = 0x02; /* Value length */
1104
 
1105
                put_unaligned(cpu_to_be16((__u16) max_sdu_size),
1106
                              (__u16 *)(frame+4));
1107
        } else {
1108
                /* Insert plain TTP header */
1109
                frame = skb_push(skb, TTP_HEADER);
1110
 
1111
                /* Insert initial credit in frame */
1112
                frame[0] = n & 0x7f;
1113
        }
1114
 
1115
        /* Connect with IrLMP. No QoS parameters for now */
1116
        return irlmp_connect_request(self->lsap, dtsap_sel, saddr, daddr, qos,
1117
                                     skb);
1118
}
1119
 
1120
/*
1121
 * Function irttp_connect_confirm (handle, qos, skb)
1122
 *
1123
 *    Sevice user confirms TSAP connection with peer.
1124
 *
1125
 */
1126
static void irttp_connect_confirm(void *instance, void *sap,
1127
                                  struct qos_info *qos, __u32 max_seg_size,
1128
                                  __u8 max_header_size, struct sk_buff *skb)
1129
{
1130
        struct tsap_cb *self;
1131
        int parameters;
1132
        int ret;
1133
        __u8 plen;
1134
        __u8 n;
1135
 
1136
        IRDA_DEBUG(4, "%s()\n", __FUNCTION__);
1137
 
1138
        self = (struct tsap_cb *) instance;
1139
 
1140
        ASSERT(self != NULL, return;);
1141
        ASSERT(self->magic == TTP_TSAP_MAGIC, return;);
1142
        ASSERT(skb != NULL, return;);
1143
 
1144
        self->max_seg_size = max_seg_size - TTP_HEADER;
1145
        self->max_header_size = max_header_size + TTP_HEADER;
1146
 
1147
        /*
1148
         *  Check if we have got some QoS parameters back! This should be the
1149
         *  negotiated QoS for the link.
1150
         */
1151
        if (qos) {
1152
                IRDA_DEBUG(4, "IrTTP, Negotiated BAUD_RATE: %02x\n",
1153
                       qos->baud_rate.bits);
1154
                IRDA_DEBUG(4, "IrTTP, Negotiated BAUD_RATE: %d bps.\n",
1155
                       qos->baud_rate.value);
1156
        }
1157
 
1158
        n = skb->data[0] & 0x7f;
1159
 
1160
        IRDA_DEBUG(4, "%s(), Initial send_credit=%d\n", __FUNCTION__, n);
1161
 
1162
        self->send_credit = n;
1163
        self->tx_max_sdu_size = 0;
1164
        self->connected = TRUE;
1165
 
1166
        parameters = skb->data[0] & 0x80;
1167
 
1168
        ASSERT(skb->len >= TTP_HEADER, return;);
1169
        skb_pull(skb, TTP_HEADER);
1170
 
1171
        if (parameters) {
1172
                plen = skb->data[0];
1173
 
1174
                ret = irda_param_extract_all(self, skb->data+1,
1175
                                             IRDA_MIN(skb->len-1, plen),
1176
                                             &param_info);
1177
 
1178
                /* Any errors in the parameter list? */
1179
                if (ret < 0) {
1180
                        WARNING("%s(), error extracting parameters\n", __FUNCTION__);
1181
                        dev_kfree_skb(skb);
1182
 
1183
                        /* Do not accept this connection attempt */
1184
                        return;
1185
                }
1186
                /* Remove parameters */
1187
                skb_pull(skb, IRDA_MIN(skb->len, plen+1));
1188
        }
1189
 
1190
        IRDA_DEBUG(4, "%s() send=%d,avail=%d,remote=%d\n", __FUNCTION__,
1191
              self->send_credit, self->avail_credit, self->remote_credit);
1192
 
1193
        IRDA_DEBUG(2, "%s(), MaxSduSize=%d\n", __FUNCTION__, self->tx_max_sdu_size);
1194
 
1195
        if (self->notify.connect_confirm) {
1196
                self->notify.connect_confirm(self->notify.instance, self, qos,
1197
                                             self->tx_max_sdu_size,
1198
                                             self->max_header_size, skb);
1199
        }
1200
}
1201
 
1202
/*
1203
 * Function irttp_connect_indication (handle, skb)
1204
 *
1205
 *    Some other device is connecting to this TSAP
1206
 *
1207
 */
1208
void irttp_connect_indication(void *instance, void *sap, struct qos_info *qos,
1209
                              __u32 max_seg_size, __u8 max_header_size,
1210
                              struct sk_buff *skb)
1211
{
1212
        struct tsap_cb *self;
1213
        struct lsap_cb *lsap;
1214
        int parameters;
1215
        int ret;
1216
        __u8 plen;
1217
        __u8 n;
1218
 
1219
        self = (struct tsap_cb *) instance;
1220
 
1221
        ASSERT(self != NULL, return;);
1222
        ASSERT(self->magic == TTP_TSAP_MAGIC, return;);
1223
        ASSERT(skb != NULL, return;);
1224
 
1225
        lsap = (struct lsap_cb *) sap;
1226
 
1227
        self->max_seg_size = max_seg_size - TTP_HEADER;;
1228
        self->max_header_size = max_header_size+TTP_HEADER;
1229
 
1230
        IRDA_DEBUG(4, "%s(), TSAP sel=%02x\n", __FUNCTION__, self->stsap_sel);
1231
 
1232
        /* Need to update dtsap_sel if its equal to LSAP_ANY */
1233
        self->dtsap_sel = lsap->dlsap_sel;
1234
 
1235
        n = skb->data[0] & 0x7f;
1236
 
1237
        self->send_credit = n;
1238
        self->tx_max_sdu_size = 0;
1239
 
1240
        parameters = skb->data[0] & 0x80;
1241
 
1242
        ASSERT(skb->len >= TTP_HEADER, return;);
1243
        skb_pull(skb, TTP_HEADER);
1244
 
1245
        if (parameters) {
1246
                plen = skb->data[0];
1247
 
1248
                ret = irda_param_extract_all(self, skb->data+1,
1249
                                             IRDA_MIN(skb->len-1, plen),
1250
                                             &param_info);
1251
 
1252
                /* Any errors in the parameter list? */
1253
                if (ret < 0) {
1254
                        WARNING("%s(), error extracting parameters\n", __FUNCTION__);
1255
                        dev_kfree_skb(skb);
1256
 
1257
                        /* Do not accept this connection attempt */
1258
                        return;
1259
                }
1260
 
1261
                /* Remove parameters */
1262
                skb_pull(skb, IRDA_MIN(skb->len, plen+1));
1263
        }
1264
 
1265
        if (self->notify.connect_indication) {
1266
                self->notify.connect_indication(self->notify.instance, self,
1267
                                                qos, self->tx_max_sdu_size,
1268
                                                self->max_header_size, skb);
1269
        } else
1270
                dev_kfree_skb(skb);
1271
}
1272
 
1273
/*
1274
 * Function irttp_connect_response (handle, userdata)
1275
 *
1276
 *    Service user is accepting the connection, just pass it down to
1277
 *    IrLMP!
1278
 *
1279
 */
1280
int irttp_connect_response(struct tsap_cb *self, __u32 max_sdu_size,
1281
                           struct sk_buff *userdata)
1282
{
1283
        struct sk_buff *skb;
1284
        __u8 *frame;
1285
        int ret;
1286
        __u8 n;
1287
 
1288
        ASSERT(self != NULL, return -1;);
1289
        ASSERT(self->magic == TTP_TSAP_MAGIC, return -1;);
1290
 
1291
        IRDA_DEBUG(4, "%s(), Source TSAP selector=%02x\n", __FUNCTION__,
1292
                   self->stsap_sel);
1293
 
1294
        /* Any userdata supplied? */
1295
        if (userdata == NULL) {
1296
                skb = dev_alloc_skb(64);
1297
                if (!skb)
1298
                        return -ENOMEM;
1299
 
1300
                /* Reserve space for MUX_CONTROL and LAP header */
1301
                skb_reserve(skb, TTP_MAX_HEADER);
1302
        } else {
1303
                skb = userdata;
1304
                /*
1305
                 *  Check that the client has reserved enough space for
1306
                 *  headers
1307
                 */
1308
                ASSERT(skb_headroom(skb) >= TTP_MAX_HEADER, return -1;);
1309
        }
1310
 
1311
        self->avail_credit = 0;
1312
        self->remote_credit = 0;
1313
        self->rx_max_sdu_size = max_sdu_size;
1314
        self->rx_sdu_size = 0;
1315
        self->rx_sdu_busy = FALSE;
1316
 
1317
        n = self->initial_credit;
1318
 
1319
        /* Frame has only space for max 127 credits (7 bits) */
1320
        if (n > 127) {
1321
                self->avail_credit = n - 127;
1322
                n = 127;
1323
        }
1324
 
1325
        self->remote_credit = n;
1326
        self->connected = TRUE;
1327
 
1328
        /* SAR enabled? */
1329
        if (max_sdu_size > 0) {
1330
                ASSERT(skb_headroom(skb) >= (TTP_MAX_HEADER+TTP_SAR_HEADER),
1331
                       return -1;);
1332
 
1333
                /* Insert TTP header with SAR parameters */
1334
                frame = skb_push(skb, TTP_HEADER+TTP_SAR_HEADER);
1335
 
1336
                frame[0] = TTP_PARAMETERS | n;
1337
                frame[1] = 0x04; /* Length */
1338
 
1339
                /* irda_param_insert(self, IRTTP_MAX_SDU_SIZE, frame+1,  */
1340
/*                                TTP_SAR_HEADER, &param_info) */
1341
 
1342
                frame[2] = 0x01; /* MaxSduSize */
1343
                frame[3] = 0x02; /* Value length */
1344
 
1345
                put_unaligned(cpu_to_be16((__u16) max_sdu_size),
1346
                              (__u16 *)(frame+4));
1347
        } else {
1348
                /* Insert TTP header */
1349
                frame = skb_push(skb, TTP_HEADER);
1350
 
1351
                frame[0] = n & 0x7f;
1352
        }
1353
 
1354
        ret = irlmp_connect_response(self->lsap, skb);
1355
 
1356
        return ret;
1357
}
1358
 
1359
/*
1360
 * Function irttp_dup (self, instance)
1361
 *
1362
 *    Duplicate TSAP, can be used by servers to confirm a connection on a
1363
 *    new TSAP so it can keep listening on the old one.
1364
 */
1365
struct tsap_cb *irttp_dup(struct tsap_cb *orig, void *instance)
1366
{
1367
        struct tsap_cb *new;
1368
 
1369
        IRDA_DEBUG(1, "%s()\n", __FUNCTION__);
1370
 
1371
        if (!hashbin_find(irttp->tsaps, (int) orig, NULL)) {
1372
                IRDA_DEBUG(0, "%s(), unable to find TSAP\n", __FUNCTION__);
1373
                return NULL;
1374
        }
1375
        new = kmalloc(sizeof(struct tsap_cb), GFP_ATOMIC);
1376
        if (!new) {
1377
                IRDA_DEBUG(0, "%s(), unable to kmalloc\n", __FUNCTION__);
1378
                return NULL;
1379
        }
1380
        /* Dup */
1381
        memcpy(new, orig, sizeof(struct tsap_cb));
1382
        new->notify.instance = instance;
1383
        new->lsap = irlmp_dup(orig->lsap, new);
1384
 
1385
        /* Not everything should be copied */
1386
        init_timer(&new->todo_timer);
1387
 
1388
        skb_queue_head_init(&new->rx_queue);
1389
        skb_queue_head_init(&new->tx_queue);
1390
        skb_queue_head_init(&new->rx_fragments);
1391
 
1392
        hashbin_insert(irttp->tsaps, (irda_queue_t *) new, (int) new, NULL);
1393
 
1394
        return new;
1395
}
1396
 
1397
/*
1398
 * Function irttp_disconnect_request (self)
1399
 *
1400
 *    Close this connection please! If priority is high, the queued data
1401
 *    segments, if any, will be deallocated first
1402
 *
1403
 */
1404
int irttp_disconnect_request(struct tsap_cb *self, struct sk_buff *userdata,
1405
                             int priority)
1406
{
1407
        struct sk_buff *skb;
1408
        int ret;
1409
 
1410
        ASSERT(self != NULL, return -1;);
1411
        ASSERT(self->magic == TTP_TSAP_MAGIC, return -1;);
1412
 
1413
        /* Already disconnected? */
1414
        if (!self->connected) {
1415
                IRDA_DEBUG(4, "%s(), already disconnected!\n", __FUNCTION__);
1416
                if (userdata)
1417
                        dev_kfree_skb(userdata);
1418
                return -1;
1419
        }
1420
 
1421
        /* Disconnect already pending ?
1422
         * We need to use an atomic operation to prevent reentry. This
1423
         * function may be called from various context, like user, timer
1424
         * for following a disconnect_indication() (i.e. net_bh).
1425
         * Jean II */
1426
        if(test_and_set_bit(0, &self->disconnect_pend)) {
1427
                IRDA_DEBUG(0, "%s(), disconnect already pending\n", __FUNCTION__);
1428
                if (userdata)
1429
                        dev_kfree_skb(userdata);
1430
 
1431
                /* Try to make some progress */
1432
                irttp_run_tx_queue(self);
1433
                return -1;
1434
        }
1435
 
1436
        /*
1437
         *  Check if there is still data segments in the transmit queue
1438
         */
1439
        if (skb_queue_len(&self->tx_queue) > 0) {
1440
                if (priority == P_HIGH) {
1441
                        /*
1442
                         *  No need to send the queued data, if we are
1443
                         *  disconnecting right now since the data will
1444
                         *  not have any usable connection to be sent on
1445
                         */
1446
                        IRDA_DEBUG(1, "%s High priority!!()\n", __FUNCTION__);
1447
                        irttp_flush_queues(self);
1448
                } else if (priority == P_NORMAL) {
1449
                        /*
1450
                         *  Must delay disconnect until after all data segments
1451
                         *  have been sent and the tx_queue is empty
1452
                         */
1453
                        /* We'll reuse this one later for the disconnect */
1454
                        self->disconnect_skb = userdata;  /* May be NULL */
1455
 
1456
                        irttp_run_tx_queue(self);
1457
 
1458
                        irttp_start_todo_timer(self, HZ/10);
1459
                        return -1;
1460
                }
1461
        }
1462
        /* Note : we don't need to check if self->rx_queue is full and the
1463
         * state of self->rx_sdu_busy because the disconnect response will
1464
         * be sent at the LMP level (so even if the peer has its Tx queue
1465
         * full of data). - Jean II */
1466
 
1467
        IRDA_DEBUG(1, "%s(), Disconnecting ...\n", __FUNCTION__);
1468
        self->connected = FALSE;
1469
 
1470
        if (!userdata) {
1471
                skb = dev_alloc_skb(64);
1472
                if (!skb)
1473
                        return -ENOMEM;
1474
 
1475
                /*
1476
                 *  Reserve space for MUX and LAP header
1477
                 */
1478
                skb_reserve(skb, TTP_MAX_HEADER);
1479
 
1480
                userdata = skb;
1481
        }
1482
        ret = irlmp_disconnect_request(self->lsap, userdata);
1483
 
1484
        /* The disconnect is no longer pending */
1485
        clear_bit(0, &self->disconnect_pend);    /* FALSE */
1486
 
1487
        return ret;
1488
}
1489
 
1490
/*
1491
 * Function irttp_disconnect_indication (self, reason)
1492
 *
1493
 *    Disconnect indication, TSAP disconnected by peer?
1494
 *
1495
 */
1496
void irttp_disconnect_indication(void *instance, void *sap, LM_REASON reason,
1497
                                 struct sk_buff *skb)
1498
{
1499
        struct tsap_cb *self;
1500
 
1501
        IRDA_DEBUG(4, "%s()\n", __FUNCTION__);
1502
 
1503
        self = (struct tsap_cb *) instance;
1504
 
1505
        ASSERT(self != NULL, return;);
1506
        ASSERT(self->magic == TTP_TSAP_MAGIC, return;);
1507
 
1508
        /* Prevent higher layer to send more data */
1509
        self->connected = FALSE;
1510
 
1511
        /* Check if client has already tried to close the TSAP */
1512
        if (self->close_pend) {
1513
                /* In this case, the higher layer is probably gone. Don't
1514
                 * bother it and clean up the remains - Jean II */
1515
                if (skb)
1516
                        dev_kfree_skb(skb);
1517
                irttp_close_tsap(self);
1518
                return;
1519
        }
1520
 
1521
        /* If we are here, we assume that is the higher layer is still
1522
         * waiting for the disconnect notification and able to process it,
1523
         * even if he tried to disconnect. Otherwise, it would have already
1524
         * attempted to close the tsap and self->close_pend would be TRUE.
1525
         * Jean II */
1526
 
1527
        /* No need to notify the client if has already tried to disconnect */
1528
        if(self->notify.disconnect_indication)
1529
                self->notify.disconnect_indication(self->notify.instance, self,
1530
                                                   reason, skb);
1531
        else
1532
                if (skb)
1533
                        dev_kfree_skb(skb);
1534
}
1535
 
1536
/*
1537
 * Function irttp_do_data_indication (self, skb)
1538
 *
1539
 *    Try to deliver reassebled skb to layer above, and requeue it if that
1540
 *    for some reason should fail. We mark rx sdu as busy to apply back
1541
 *    pressure is necessary.
1542
 */
1543
void irttp_do_data_indication(struct tsap_cb *self, struct sk_buff *skb)
1544
{
1545
        int err;
1546
 
1547
        /* Check if client has already tried to close the TSAP */
1548
        if (self->close_pend) {
1549
                dev_kfree_skb(skb);
1550
                return;
1551
        }
1552
 
1553
        err = self->notify.data_indication(self->notify.instance, self, skb);
1554
 
1555
        /* Usually the layer above will notify that it's input queue is
1556
         * starting to get filled by using the flow request, but this may
1557
         * be difficult, so it can instead just refuse to eat it and just
1558
         * give an error back
1559
         */
1560
        if (err == -ENOMEM) {
1561
                IRDA_DEBUG(0, "%s() requeueing skb!\n", __FUNCTION__);
1562
 
1563
                /* Make sure we take a break */
1564
                self->rx_sdu_busy = TRUE;
1565
 
1566
                /* Need to push the header in again */
1567
                skb_push(skb, TTP_HEADER);
1568
                skb->data[0] = 0x00; /* Make sure MORE bit is cleared */
1569
 
1570
                /* Put skb back on queue */
1571
                skb_queue_head(&self->rx_queue, skb);
1572
        }
1573
}
1574
 
1575
/*
1576
 * Function irttp_run_rx_queue (self)
1577
 *
1578
 *     Check if we have any frames to be transmitted, or if we have any
1579
 *     available credit to give away.
1580
 */
1581
void irttp_run_rx_queue(struct tsap_cb *self)
1582
{
1583
        struct sk_buff *skb;
1584
        int more = 0;
1585
 
1586
        IRDA_DEBUG(2, "%s() send=%d,avail=%d,remote=%d\n", __FUNCTION__,
1587
                   self->send_credit, self->avail_credit, self->remote_credit);
1588
 
1589
        /* Get exclusive access to the rx queue, otherwise don't touch it */
1590
        if (irda_lock(&self->rx_queue_lock) == FALSE)
1591
                return;
1592
 
1593
        /*
1594
         *  Reassemble all frames in receive queue and deliver them
1595
         */
1596
        while (!self->rx_sdu_busy && (skb = skb_dequeue(&self->rx_queue))) {
1597
                /* This bit will tell us if it's the last fragment or not */
1598
                more = skb->data[0] & 0x80;
1599
 
1600
                /* Remove TTP header */
1601
                skb_pull(skb, TTP_HEADER);
1602
 
1603
                /* Add the length of the remaining data */
1604
                self->rx_sdu_size += skb->len;
1605
 
1606
                /*
1607
                 * If SAR is disabled, or user has requested no reassembly
1608
                 * of received fragments then we just deliver them
1609
                 * immediately. This can be requested by clients that
1610
                 * implements byte streams without any message boundaries
1611
                 */
1612
                if (self->rx_max_sdu_size == TTP_SAR_DISABLE) {
1613
                        irttp_do_data_indication(self, skb);
1614
                        self->rx_sdu_size = 0;
1615
 
1616
                        continue;
1617
                }
1618
 
1619
                /* Check if this is a fragment, and not the last fragment */
1620
                if (more) {
1621
                        /*
1622
                         *  Queue the fragment if we still are within the
1623
                         *  limits of the maximum size of the rx_sdu
1624
                         */
1625
                        if (self->rx_sdu_size <= self->rx_max_sdu_size) {
1626
                                IRDA_DEBUG(4, "%s(), queueing frag\n", __FUNCTION__);
1627
                                skb_queue_tail(&self->rx_fragments, skb);
1628
                        } else {
1629
                                /* Free the part of the SDU that is too big */
1630
                                dev_kfree_skb(skb);
1631
                        }
1632
                        continue;
1633
                }
1634
                /*
1635
                 *  This is the last fragment, so time to reassemble!
1636
                 */
1637
                if ((self->rx_sdu_size <= self->rx_max_sdu_size) ||
1638
                    (self->rx_max_sdu_size == TTP_SAR_UNBOUND))
1639
                {
1640
                        /*
1641
                         * A little optimizing. Only queue the fragment if
1642
                         * there are other fragments. Since if this is the
1643
                         * last and only fragment, there is no need to
1644
                         * reassemble :-)
1645
                         */
1646
                        if (!skb_queue_empty(&self->rx_fragments)) {
1647
                                skb_queue_tail(&self->rx_fragments,
1648
                                               skb);
1649
 
1650
                                skb = irttp_reassemble_skb(self);
1651
                        }
1652
 
1653
                        /* Now we can deliver the reassembled skb */
1654
                        irttp_do_data_indication(self, skb);
1655
                } else {
1656
                        IRDA_DEBUG(1, "%s(), Truncated frame\n", __FUNCTION__);
1657
 
1658
                        /* Free the part of the SDU that is too big */
1659
                        dev_kfree_skb(skb);
1660
 
1661
                        /* Deliver only the valid but truncated part of SDU */
1662
                        skb = irttp_reassemble_skb(self);
1663
 
1664
                        irttp_do_data_indication(self, skb);
1665
                }
1666
                self->rx_sdu_size = 0;
1667
        }
1668
 
1669
        /*
1670
         * It's not trivial to keep track of how many credits are available
1671
         * by incrementing at each packet, because delivery may fail
1672
         * (irttp_do_data_indication() may requeue the frame) and because
1673
         * we need to take care of fragmentation.
1674
         * We want the other side to send up to initial_credit packets.
1675
         * We have some frames in our queues, and we have already allowed it
1676
         * to send remote_credit.
1677
         * No need to spinlock, write is atomic and self correcting...
1678
         * Jean II
1679
         */
1680
        self->avail_credit = (self->initial_credit -
1681
                              (self->remote_credit +
1682
                               skb_queue_len(&self->rx_queue) +
1683
                               skb_queue_len(&self->rx_fragments)));
1684
 
1685
        /* Do we have too much credits to send to peer ? */
1686
        if ((self->remote_credit <= TTP_RX_MIN_CREDIT) &&
1687
            (self->avail_credit > 0)) {
1688
                /* Send explicit credit frame */
1689
                irttp_give_credit(self);
1690
                /* Note : do *NOT* check if tx_queue is non-empty, that
1691
                 * will produce deadlocks. I repeat : send a credit frame
1692
                 * even if we have something to send in our Tx queue.
1693
                 * If we have credits, it means that our Tx queue is blocked.
1694
                 *
1695
                 * Let's suppose the peer can't keep up with our Tx. He will
1696
                 * flow control us by not sending us any credits, and we
1697
                 * will stop Tx and start accumulating credits here.
1698
                 * Up to the point where the peer will stop its Tx queue,
1699
                 * for lack of credits.
1700
                 * Let's assume the peer application is single threaded.
1701
                 * It will block on Tx and never consume any Rx buffer.
1702
                 * Deadlock. Guaranteed. - Jean II
1703
                 */
1704
        }
1705
 
1706
        /* Reset lock */
1707
        self->rx_queue_lock = 0;
1708
}
1709
 
1710
#ifdef CONFIG_PROC_FS
1711
/*
1712
 * Function irttp_proc_read (buf, start, offset, len, unused)
1713
 *
1714
 *    Give some info to the /proc file system
1715
 */
1716
int irttp_proc_read(char *buf, char **start, off_t offset, int len)
1717
{
1718
        struct tsap_cb *self;
1719
        unsigned long flags;
1720
        int i = 0;
1721
 
1722
        ASSERT(irttp != NULL, return 0;);
1723
 
1724
        len = 0;
1725
 
1726
        save_flags(flags);
1727
        cli();
1728
 
1729
        self = (struct tsap_cb *) hashbin_get_first(irttp->tsaps);
1730
        while (self != NULL) {
1731
                if (!self || self->magic != TTP_TSAP_MAGIC)
1732
                        break;
1733
 
1734
                len += sprintf(buf+len, "TSAP %d, ", i++);
1735
                len += sprintf(buf+len, "stsap_sel: %02x, ",
1736
                               self->stsap_sel);
1737
                len += sprintf(buf+len, "dtsap_sel: %02x\n",
1738
                               self->dtsap_sel);
1739
                len += sprintf(buf+len, "  connected: %s, ",
1740
                               self->connected? "TRUE":"FALSE");
1741
                len += sprintf(buf+len, "avail credit: %d, ",
1742
                               self->avail_credit);
1743
                len += sprintf(buf+len, "remote credit: %d, ",
1744
                               self->remote_credit);
1745
                len += sprintf(buf+len, "send credit: %d\n",
1746
                               self->send_credit);
1747
                len += sprintf(buf+len, "  tx packets: %ld, ",
1748
                               self->stats.tx_packets);
1749
                len += sprintf(buf+len, "rx packets: %ld, ",
1750
                               self->stats.rx_packets);
1751
                len += sprintf(buf+len, "tx_queue len: %d ",
1752
                               skb_queue_len(&self->tx_queue));
1753
                len += sprintf(buf+len, "rx_queue len: %d\n",
1754
                               skb_queue_len(&self->rx_queue));
1755
                len += sprintf(buf+len, "  tx_sdu_busy: %s, ",
1756
                               self->tx_sdu_busy? "TRUE":"FALSE");
1757
                len += sprintf(buf+len, "rx_sdu_busy: %s\n",
1758
                               self->rx_sdu_busy? "TRUE":"FALSE");
1759
                len += sprintf(buf+len, "  max_seg_size: %d, ",
1760
                               self->max_seg_size);
1761
                len += sprintf(buf+len, "tx_max_sdu_size: %d, ",
1762
                               self->tx_max_sdu_size);
1763
                len += sprintf(buf+len, "rx_max_sdu_size: %d\n",
1764
                               self->rx_max_sdu_size);
1765
 
1766
                len += sprintf(buf+len, "  Used by (%s)\n",
1767
                                self->notify.name);
1768
 
1769
                len += sprintf(buf+len, "\n");
1770
 
1771
                self = (struct tsap_cb *) hashbin_get_next(irttp->tsaps);
1772
        }
1773
        restore_flags(flags);
1774
 
1775
        return len;
1776
}
1777
 
1778
#endif /* PROC_FS */

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