n_gsm: clean up printks
[deliverable/linux.git] / drivers / tty / n_gsm.c
CommitLineData
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1/*
2 * n_gsm.c GSM 0710 tty multiplexor
3 * Copyright (c) 2009/10 Intel Corporation
4 *
5 * This program is free software; you can redistribute it and/or modify
6 * it under the terms of the GNU General Public License version 2 as
7 * published by the Free Software Foundation.
8 *
9 * This program is distributed in the hope that it will be useful,
10 * but WITHOUT ANY WARRANTY; without even the implied warranty of
11 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
12 * GNU General Public License for more details.
13 *
14 * You should have received a copy of the GNU General Public License
15 * along with this program; if not, write to the Free Software
16 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
17 *
18 * * THIS IS A DEVELOPMENT SNAPSHOT IT IS NOT A FINAL RELEASE *
19 *
20 * TO DO:
21 * Mostly done: ioctls for setting modes/timing
5f9a31d6 22 * Partly done: hooks so you can pull off frames to non tty devs
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23 * Restart DLCI 0 when it closes ?
24 * Test basic encoding
25 * Improve the tx engine
26 * Resolve tx side locking by adding a queue_head and routing
27 * all control traffic via it
28 * General tidy/document
29 * Review the locking/move to refcounts more (mux now moved to an
30 * alloc/free model ready)
31 * Use newest tty open/close port helpers and install hooks
32 * What to do about power functions ?
33 * Termios setting and negotiation
34 * Do we need a 'which mux are you' ioctl to correlate mux and tty sets
35 *
36 */
37
38#include <linux/types.h>
39#include <linux/major.h>
40#include <linux/errno.h>
41#include <linux/signal.h>
42#include <linux/fcntl.h>
43#include <linux/sched.h>
44#include <linux/interrupt.h>
45#include <linux/tty.h>
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46#include <linux/ctype.h>
47#include <linux/mm.h>
48#include <linux/string.h>
49#include <linux/slab.h>
50#include <linux/poll.h>
51#include <linux/bitops.h>
52#include <linux/file.h>
53#include <linux/uaccess.h>
54#include <linux/module.h>
55#include <linux/timer.h>
56#include <linux/tty_flip.h>
57#include <linux/tty_driver.h>
58#include <linux/serial.h>
59#include <linux/kfifo.h>
60#include <linux/skbuff.h>
61#include <linux/gsmmux.h>
62
63static int debug;
64module_param(debug, int, 0600);
65
66#define T1 (HZ/10)
67#define T2 (HZ/3)
68#define N2 3
69
70/* Use long timers for testing at low speed with debug on */
71#ifdef DEBUG_TIMING
72#define T1 HZ
73#define T2 (2 * HZ)
74#endif
75
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76/*
77 * Semi-arbitary buffer size limits. 0710 is normally run with 32-64 byte
78 * limits so this is plenty
79 */
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80#define MAX_MRU 512
81#define MAX_MTU 512
82
83/*
84 * Each block of data we have queued to go out is in the form of
85 * a gsm_msg which holds everything we need in a link layer independant
86 * format
87 */
88
89struct gsm_msg {
90 struct gsm_msg *next;
91 u8 addr; /* DLCI address + flags */
92 u8 ctrl; /* Control byte + flags */
93 unsigned int len; /* Length of data block (can be zero) */
94 unsigned char *data; /* Points into buffer but not at the start */
95 unsigned char buffer[0];
96};
97
98/*
99 * Each active data link has a gsm_dlci structure associated which ties
100 * the link layer to an optional tty (if the tty side is open). To avoid
101 * complexity right now these are only ever freed up when the mux is
102 * shut down.
103 *
104 * At the moment we don't free DLCI objects until the mux is torn down
105 * this avoid object life time issues but might be worth review later.
106 */
107
108struct gsm_dlci {
109 struct gsm_mux *gsm;
110 int addr;
111 int state;
112#define DLCI_CLOSED 0
113#define DLCI_OPENING 1 /* Sending SABM not seen UA */
114#define DLCI_OPEN 2 /* SABM/UA complete */
115#define DLCI_CLOSING 3 /* Sending DISC not seen UA/DM */
116
117 /* Link layer */
118 spinlock_t lock; /* Protects the internal state */
119 struct timer_list t1; /* Retransmit timer for SABM and UA */
120 int retries;
121 /* Uplink tty if active */
122 struct tty_port port; /* The tty bound to this DLCI if there is one */
123 struct kfifo *fifo; /* Queue fifo for the DLCI */
124 struct kfifo _fifo; /* For new fifo API porting only */
125 int adaption; /* Adaption layer in use */
126 u32 modem_rx; /* Our incoming virtual modem lines */
127 u32 modem_tx; /* Our outgoing modem lines */
128 int dead; /* Refuse re-open */
129 /* Flow control */
130 int throttled; /* Private copy of throttle state */
131 int constipated; /* Throttle status for outgoing */
132 /* Packetised I/O */
133 struct sk_buff *skb; /* Frame being sent */
134 struct sk_buff_head skb_list; /* Queued frames */
135 /* Data handling callback */
136 void (*data)(struct gsm_dlci *dlci, u8 *data, int len);
137};
138
139/* DLCI 0, 62/63 are special or reseved see gsmtty_open */
140
141#define NUM_DLCI 64
142
143/*
144 * DLCI 0 is used to pass control blocks out of band of the data
145 * flow (and with a higher link priority). One command can be outstanding
146 * at a time and we use this structure to manage them. They are created
147 * and destroyed by the user context, and updated by the receive paths
148 * and timers
149 */
150
151struct gsm_control {
152 u8 cmd; /* Command we are issuing */
153 u8 *data; /* Data for the command in case we retransmit */
154 int len; /* Length of block for retransmission */
155 int done; /* Done flag */
156 int error; /* Error if any */
157};
158
159/*
160 * Each GSM mux we have is represented by this structure. If we are
161 * operating as an ldisc then we use this structure as our ldisc
162 * state. We need to sort out lifetimes and locking with respect
163 * to the gsm mux array. For now we don't free DLCI objects that
164 * have been instantiated until the mux itself is terminated.
165 *
166 * To consider further: tty open versus mux shutdown.
167 */
168
169struct gsm_mux {
170 struct tty_struct *tty; /* The tty our ldisc is bound to */
171 spinlock_t lock;
172
173 /* Events on the GSM channel */
174 wait_queue_head_t event;
175
176 /* Bits for GSM mode decoding */
177
178 /* Framing Layer */
179 unsigned char *buf;
180 int state;
181#define GSM_SEARCH 0
182#define GSM_START 1
183#define GSM_ADDRESS 2
184#define GSM_CONTROL 3
185#define GSM_LEN 4
186#define GSM_DATA 5
187#define GSM_FCS 6
188#define GSM_OVERRUN 7
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189#define GSM_LEN0 8
190#define GSM_LEN1 9
191#define GSM_SSOF 10
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192 unsigned int len;
193 unsigned int address;
194 unsigned int count;
195 int escape;
196 int encoding;
197 u8 control;
198 u8 fcs;
c2f2f000 199 u8 received_fcs;
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200 u8 *txframe; /* TX framing buffer */
201
202 /* Methods for the receiver side */
203 void (*receive)(struct gsm_mux *gsm, u8 ch);
204 void (*error)(struct gsm_mux *gsm, u8 ch, u8 flag);
205 /* And transmit side */
206 int (*output)(struct gsm_mux *mux, u8 *data, int len);
207
208 /* Link Layer */
209 unsigned int mru;
210 unsigned int mtu;
211 int initiator; /* Did we initiate connection */
212 int dead; /* Has the mux been shut down */
213 struct gsm_dlci *dlci[NUM_DLCI];
214 int constipated; /* Asked by remote to shut up */
215
216 spinlock_t tx_lock;
217 unsigned int tx_bytes; /* TX data outstanding */
218#define TX_THRESH_HI 8192
219#define TX_THRESH_LO 2048
220 struct gsm_msg *tx_head; /* Pending data packets */
221 struct gsm_msg *tx_tail;
222
223 /* Control messages */
224 struct timer_list t2_timer; /* Retransmit timer for commands */
225 int cretries; /* Command retry counter */
226 struct gsm_control *pending_cmd;/* Our current pending command */
227 spinlock_t control_lock; /* Protects the pending command */
228
229 /* Configuration */
230 int adaption; /* 1 or 2 supported */
231 u8 ftype; /* UI or UIH */
232 int t1, t2; /* Timers in 1/100th of a sec */
233 int n2; /* Retry count */
234
235 /* Statistics (not currently exposed) */
236 unsigned long bad_fcs;
237 unsigned long malformed;
238 unsigned long io_error;
239 unsigned long bad_size;
240 unsigned long unsupported;
241};
242
243
244/*
245 * Mux objects - needed so that we can translate a tty index into the
246 * relevant mux and DLCI.
247 */
248
249#define MAX_MUX 4 /* 256 minors */
250static struct gsm_mux *gsm_mux[MAX_MUX]; /* GSM muxes */
251static spinlock_t gsm_mux_lock;
252
253/*
254 * This section of the driver logic implements the GSM encodings
255 * both the basic and the 'advanced'. Reliable transport is not
256 * supported.
257 */
258
259#define CR 0x02
260#define EA 0x01
261#define PF 0x10
262
263/* I is special: the rest are ..*/
264#define RR 0x01
265#define UI 0x03
266#define RNR 0x05
267#define REJ 0x09
268#define DM 0x0F
269#define SABM 0x2F
270#define DISC 0x43
271#define UA 0x63
272#define UIH 0xEF
273
274/* Channel commands */
275#define CMD_NSC 0x09
276#define CMD_TEST 0x11
277#define CMD_PSC 0x21
278#define CMD_RLS 0x29
279#define CMD_FCOFF 0x31
280#define CMD_PN 0x41
281#define CMD_RPN 0x49
282#define CMD_FCON 0x51
283#define CMD_CLD 0x61
284#define CMD_SNC 0x69
285#define CMD_MSC 0x71
286
287/* Virtual modem bits */
288#define MDM_FC 0x01
289#define MDM_RTC 0x02
290#define MDM_RTR 0x04
291#define MDM_IC 0x20
292#define MDM_DV 0x40
293
294#define GSM0_SOF 0xF9
5f9a31d6 295#define GSM1_SOF 0x7E
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296#define GSM1_ESCAPE 0x7D
297#define GSM1_ESCAPE_BITS 0x20
298#define XON 0x11
299#define XOFF 0x13
300
301static const struct tty_port_operations gsm_port_ops;
302
303/*
304 * CRC table for GSM 0710
305 */
306
307static const u8 gsm_fcs8[256] = {
308 0x00, 0x91, 0xE3, 0x72, 0x07, 0x96, 0xE4, 0x75,
309 0x0E, 0x9F, 0xED, 0x7C, 0x09, 0x98, 0xEA, 0x7B,
310 0x1C, 0x8D, 0xFF, 0x6E, 0x1B, 0x8A, 0xF8, 0x69,
311 0x12, 0x83, 0xF1, 0x60, 0x15, 0x84, 0xF6, 0x67,
312 0x38, 0xA9, 0xDB, 0x4A, 0x3F, 0xAE, 0xDC, 0x4D,
313 0x36, 0xA7, 0xD5, 0x44, 0x31, 0xA0, 0xD2, 0x43,
314 0x24, 0xB5, 0xC7, 0x56, 0x23, 0xB2, 0xC0, 0x51,
315 0x2A, 0xBB, 0xC9, 0x58, 0x2D, 0xBC, 0xCE, 0x5F,
316 0x70, 0xE1, 0x93, 0x02, 0x77, 0xE6, 0x94, 0x05,
317 0x7E, 0xEF, 0x9D, 0x0C, 0x79, 0xE8, 0x9A, 0x0B,
318 0x6C, 0xFD, 0x8F, 0x1E, 0x6B, 0xFA, 0x88, 0x19,
319 0x62, 0xF3, 0x81, 0x10, 0x65, 0xF4, 0x86, 0x17,
320 0x48, 0xD9, 0xAB, 0x3A, 0x4F, 0xDE, 0xAC, 0x3D,
321 0x46, 0xD7, 0xA5, 0x34, 0x41, 0xD0, 0xA2, 0x33,
322 0x54, 0xC5, 0xB7, 0x26, 0x53, 0xC2, 0xB0, 0x21,
323 0x5A, 0xCB, 0xB9, 0x28, 0x5D, 0xCC, 0xBE, 0x2F,
324 0xE0, 0x71, 0x03, 0x92, 0xE7, 0x76, 0x04, 0x95,
325 0xEE, 0x7F, 0x0D, 0x9C, 0xE9, 0x78, 0x0A, 0x9B,
326 0xFC, 0x6D, 0x1F, 0x8E, 0xFB, 0x6A, 0x18, 0x89,
327 0xF2, 0x63, 0x11, 0x80, 0xF5, 0x64, 0x16, 0x87,
328 0xD8, 0x49, 0x3B, 0xAA, 0xDF, 0x4E, 0x3C, 0xAD,
329 0xD6, 0x47, 0x35, 0xA4, 0xD1, 0x40, 0x32, 0xA3,
330 0xC4, 0x55, 0x27, 0xB6, 0xC3, 0x52, 0x20, 0xB1,
331 0xCA, 0x5B, 0x29, 0xB8, 0xCD, 0x5C, 0x2E, 0xBF,
332 0x90, 0x01, 0x73, 0xE2, 0x97, 0x06, 0x74, 0xE5,
333 0x9E, 0x0F, 0x7D, 0xEC, 0x99, 0x08, 0x7A, 0xEB,
334 0x8C, 0x1D, 0x6F, 0xFE, 0x8B, 0x1A, 0x68, 0xF9,
335 0x82, 0x13, 0x61, 0xF0, 0x85, 0x14, 0x66, 0xF7,
336 0xA8, 0x39, 0x4B, 0xDA, 0xAF, 0x3E, 0x4C, 0xDD,
337 0xA6, 0x37, 0x45, 0xD4, 0xA1, 0x30, 0x42, 0xD3,
338 0xB4, 0x25, 0x57, 0xC6, 0xB3, 0x22, 0x50, 0xC1,
339 0xBA, 0x2B, 0x59, 0xC8, 0xBD, 0x2C, 0x5E, 0xCF
340};
341
342#define INIT_FCS 0xFF
343#define GOOD_FCS 0xCF
344
345/**
346 * gsm_fcs_add - update FCS
347 * @fcs: Current FCS
348 * @c: Next data
349 *
350 * Update the FCS to include c. Uses the algorithm in the specification
351 * notes.
352 */
353
354static inline u8 gsm_fcs_add(u8 fcs, u8 c)
355{
356 return gsm_fcs8[fcs ^ c];
357}
358
359/**
360 * gsm_fcs_add_block - update FCS for a block
361 * @fcs: Current FCS
362 * @c: buffer of data
363 * @len: length of buffer
364 *
365 * Update the FCS to include c. Uses the algorithm in the specification
366 * notes.
367 */
368
369static inline u8 gsm_fcs_add_block(u8 fcs, u8 *c, int len)
370{
371 while (len--)
372 fcs = gsm_fcs8[fcs ^ *c++];
373 return fcs;
374}
375
376/**
377 * gsm_read_ea - read a byte into an EA
378 * @val: variable holding value
379 * c: byte going into the EA
380 *
381 * Processes one byte of an EA. Updates the passed variable
382 * and returns 1 if the EA is now completely read
383 */
384
385static int gsm_read_ea(unsigned int *val, u8 c)
386{
387 /* Add the next 7 bits into the value */
388 *val <<= 7;
389 *val |= c >> 1;
390 /* Was this the last byte of the EA 1 = yes*/
391 return c & EA;
392}
393
394/**
395 * gsm_encode_modem - encode modem data bits
396 * @dlci: DLCI to encode from
397 *
398 * Returns the correct GSM encoded modem status bits (6 bit field) for
399 * the current status of the DLCI and attached tty object
400 */
401
402static u8 gsm_encode_modem(const struct gsm_dlci *dlci)
403{
404 u8 modembits = 0;
405 /* FC is true flow control not modem bits */
406 if (dlci->throttled)
407 modembits |= MDM_FC;
408 if (dlci->modem_tx & TIOCM_DTR)
409 modembits |= MDM_RTC;
410 if (dlci->modem_tx & TIOCM_RTS)
411 modembits |= MDM_RTR;
412 if (dlci->modem_tx & TIOCM_RI)
413 modembits |= MDM_IC;
414 if (dlci->modem_tx & TIOCM_CD)
415 modembits |= MDM_DV;
416 return modembits;
417}
418
419/**
420 * gsm_print_packet - display a frame for debug
421 * @hdr: header to print before decode
422 * @addr: address EA from the frame
423 * @cr: C/R bit from the frame
424 * @control: control including PF bit
425 * @data: following data bytes
426 * @dlen: length of data
427 *
428 * Displays a packet in human readable format for debugging purposes. The
429 * style is based on amateur radio LAP-B dump display.
430 */
431
432static void gsm_print_packet(const char *hdr, int addr, int cr,
433 u8 control, const u8 *data, int dlen)
434{
435 if (!(debug & 1))
436 return;
437
5f9a31d6 438 pr_info("%s %d) %c: ", hdr, addr, "RC"[cr]);
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439
440 switch (control & ~PF) {
441 case SABM:
5f9a31d6 442 pr_cont("SABM");
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443 break;
444 case UA:
5f9a31d6 445 pr_cont("UA");
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446 break;
447 case DISC:
5f9a31d6 448 pr_cont("DISC");
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449 break;
450 case DM:
5f9a31d6 451 pr_cont("DM");
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452 break;
453 case UI:
5f9a31d6 454 pr_cont("UI");
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455 break;
456 case UIH:
5f9a31d6 457 pr_cont("UIH");
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458 break;
459 default:
460 if (!(control & 0x01)) {
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461 pr_cont("I N(S)%d N(R)%d",
462 (control & 0x0E) >> 1, (control & 0xE) >> 5);
e1eaea46 463 } else switch (control & 0x0F) {
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464 case RR:
465 pr_cont("RR(%d)", (control & 0xE0) >> 5);
466 break;
467 case RNR:
468 pr_cont("RNR(%d)", (control & 0xE0) >> 5);
469 break;
470 case REJ:
471 pr_cont("REJ(%d)", (control & 0xE0) >> 5);
472 break;
473 default:
474 pr_cont("[%02X]", control);
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475 }
476 }
477
478 if (control & PF)
5f9a31d6 479 pr_cont("(P)");
e1eaea46 480 else
5f9a31d6 481 pr_cont("(F)");
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482
483 if (dlen) {
484 int ct = 0;
485 while (dlen--) {
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486 if (ct % 8 == 0) {
487 pr_cont("\n");
488 pr_debug(" ");
489 }
490 pr_cont("%02X ", *data++);
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491 ct++;
492 }
493 }
5f9a31d6 494 pr_cont("\n");
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495}
496
497
498/*
499 * Link level transmission side
500 */
501
502/**
503 * gsm_stuff_packet - bytestuff a packet
504 * @ibuf: input
505 * @obuf: output
506 * @len: length of input
507 *
508 * Expand a buffer by bytestuffing it. The worst case size change
509 * is doubling and the caller is responsible for handing out
510 * suitable sized buffers.
511 */
512
513static int gsm_stuff_frame(const u8 *input, u8 *output, int len)
514{
515 int olen = 0;
516 while (len--) {
517 if (*input == GSM1_SOF || *input == GSM1_ESCAPE
518 || *input == XON || *input == XOFF) {
519 *output++ = GSM1_ESCAPE;
520 *output++ = *input++ ^ GSM1_ESCAPE_BITS;
521 olen++;
522 } else
523 *output++ = *input++;
524 olen++;
525 }
526 return olen;
527}
528
529static void hex_packet(const unsigned char *p, int len)
530{
531 int i;
532 for (i = 0; i < len; i++) {
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533 if (i && (i % 16) == 0) {
534 pr_cont("\n");
535 pr_debug("");
536 }
537 pr_cont("%02X ", *p++);
e1eaea46 538 }
5f9a31d6 539 pr_cont("\n");
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540}
541
542/**
543 * gsm_send - send a control frame
544 * @gsm: our GSM mux
545 * @addr: address for control frame
546 * @cr: command/response bit
547 * @control: control byte including PF bit
548 *
549 * Format up and transmit a control frame. These do not go via the
550 * queueing logic as they should be transmitted ahead of data when
551 * they are needed.
552 *
553 * FIXME: Lock versus data TX path
554 */
555
556static void gsm_send(struct gsm_mux *gsm, int addr, int cr, int control)
557{
558 int len;
559 u8 cbuf[10];
560 u8 ibuf[3];
561
562 switch (gsm->encoding) {
563 case 0:
564 cbuf[0] = GSM0_SOF;
565 cbuf[1] = (addr << 2) | (cr << 1) | EA;
566 cbuf[2] = control;
567 cbuf[3] = EA; /* Length of data = 0 */
568 cbuf[4] = 0xFF - gsm_fcs_add_block(INIT_FCS, cbuf + 1, 3);
569 cbuf[5] = GSM0_SOF;
570 len = 6;
571 break;
572 case 1:
573 case 2:
574 /* Control frame + packing (but not frame stuffing) in mode 1 */
575 ibuf[0] = (addr << 2) | (cr << 1) | EA;
576 ibuf[1] = control;
577 ibuf[2] = 0xFF - gsm_fcs_add_block(INIT_FCS, ibuf, 2);
578 /* Stuffing may double the size worst case */
579 len = gsm_stuff_frame(ibuf, cbuf + 1, 3);
580 /* Now add the SOF markers */
581 cbuf[0] = GSM1_SOF;
582 cbuf[len + 1] = GSM1_SOF;
583 /* FIXME: we can omit the lead one in many cases */
584 len += 2;
585 break;
586 default:
587 WARN_ON(1);
588 return;
589 }
590 gsm->output(gsm, cbuf, len);
591 gsm_print_packet("-->", addr, cr, control, NULL, 0);
592}
593
594/**
595 * gsm_response - send a control response
596 * @gsm: our GSM mux
597 * @addr: address for control frame
598 * @control: control byte including PF bit
599 *
600 * Format up and transmit a link level response frame.
601 */
602
603static inline void gsm_response(struct gsm_mux *gsm, int addr, int control)
604{
605 gsm_send(gsm, addr, 0, control);
606}
607
608/**
609 * gsm_command - send a control command
610 * @gsm: our GSM mux
611 * @addr: address for control frame
612 * @control: control byte including PF bit
613 *
614 * Format up and transmit a link level command frame.
615 */
616
617static inline void gsm_command(struct gsm_mux *gsm, int addr, int control)
618{
619 gsm_send(gsm, addr, 1, control);
620}
621
622/* Data transmission */
623
624#define HDR_LEN 6 /* ADDR CTRL [LEN.2] DATA FCS */
625
626/**
627 * gsm_data_alloc - allocate data frame
628 * @gsm: GSM mux
629 * @addr: DLCI address
630 * @len: length excluding header and FCS
631 * @ctrl: control byte
632 *
633 * Allocate a new data buffer for sending frames with data. Space is left
634 * at the front for header bytes but that is treated as an implementation
635 * detail and not for the high level code to use
636 */
637
638static struct gsm_msg *gsm_data_alloc(struct gsm_mux *gsm, u8 addr, int len,
639 u8 ctrl)
640{
641 struct gsm_msg *m = kmalloc(sizeof(struct gsm_msg) + len + HDR_LEN,
642 GFP_ATOMIC);
643 if (m == NULL)
644 return NULL;
645 m->data = m->buffer + HDR_LEN - 1; /* Allow for FCS */
646 m->len = len;
647 m->addr = addr;
648 m->ctrl = ctrl;
649 m->next = NULL;
650 return m;
651}
652
653/**
654 * gsm_data_kick - poke the queue
655 * @gsm: GSM Mux
656 *
657 * The tty device has called us to indicate that room has appeared in
658 * the transmit queue. Ram more data into the pipe if we have any
659 *
660 * FIXME: lock against link layer control transmissions
661 */
662
663static void gsm_data_kick(struct gsm_mux *gsm)
664{
665 struct gsm_msg *msg = gsm->tx_head;
666 int len;
667 int skip_sof = 0;
668
669 /* FIXME: We need to apply this solely to data messages */
670 if (gsm->constipated)
671 return;
672
673 while (gsm->tx_head != NULL) {
674 msg = gsm->tx_head;
675 if (gsm->encoding != 0) {
676 gsm->txframe[0] = GSM1_SOF;
677 len = gsm_stuff_frame(msg->data,
678 gsm->txframe + 1, msg->len);
679 gsm->txframe[len + 1] = GSM1_SOF;
680 len += 2;
681 } else {
682 gsm->txframe[0] = GSM0_SOF;
683 memcpy(gsm->txframe + 1 , msg->data, msg->len);
684 gsm->txframe[msg->len + 1] = GSM0_SOF;
685 len = msg->len + 2;
686 }
687
688 if (debug & 4) {
5f9a31d6 689 pr_debug("gsm_data_kick:\n");
e1eaea46
AC
690 hex_packet(gsm->txframe, len);
691 }
692
693 if (gsm->output(gsm, gsm->txframe + skip_sof,
694 len - skip_sof) < 0)
695 break;
696 /* FIXME: Can eliminate one SOF in many more cases */
697 gsm->tx_head = msg->next;
698 if (gsm->tx_head == NULL)
699 gsm->tx_tail = NULL;
700 gsm->tx_bytes -= msg->len;
701 kfree(msg);
702 /* For a burst of frames skip the extra SOF within the
703 burst */
704 skip_sof = 1;
705 }
706}
707
708/**
709 * __gsm_data_queue - queue a UI or UIH frame
710 * @dlci: DLCI sending the data
711 * @msg: message queued
712 *
713 * Add data to the transmit queue and try and get stuff moving
714 * out of the mux tty if not already doing so. The Caller must hold
715 * the gsm tx lock.
716 */
717
718static void __gsm_data_queue(struct gsm_dlci *dlci, struct gsm_msg *msg)
719{
720 struct gsm_mux *gsm = dlci->gsm;
721 u8 *dp = msg->data;
722 u8 *fcs = dp + msg->len;
723
724 /* Fill in the header */
725 if (gsm->encoding == 0) {
726 if (msg->len < 128)
727 *--dp = (msg->len << 1) | EA;
728 else {
729 *--dp = (msg->len >> 6) | EA;
730 *--dp = (msg->len & 127) << 1;
731 }
732 }
733
734 *--dp = msg->ctrl;
735 if (gsm->initiator)
736 *--dp = (msg->addr << 2) | 2 | EA;
737 else
738 *--dp = (msg->addr << 2) | EA;
739 *fcs = gsm_fcs_add_block(INIT_FCS, dp , msg->data - dp);
740 /* Ugly protocol layering violation */
741 if (msg->ctrl == UI || msg->ctrl == (UI|PF))
742 *fcs = gsm_fcs_add_block(*fcs, msg->data, msg->len);
743 *fcs = 0xFF - *fcs;
744
745 gsm_print_packet("Q> ", msg->addr, gsm->initiator, msg->ctrl,
746 msg->data, msg->len);
747
748 /* Move the header back and adjust the length, also allow for the FCS
749 now tacked on the end */
750 msg->len += (msg->data - dp) + 1;
751 msg->data = dp;
752
753 /* Add to the actual output queue */
754 if (gsm->tx_tail)
755 gsm->tx_tail->next = msg;
756 else
757 gsm->tx_head = msg;
758 gsm->tx_tail = msg;
759 gsm->tx_bytes += msg->len;
760 gsm_data_kick(gsm);
761}
762
763/**
764 * gsm_data_queue - queue a UI or UIH frame
765 * @dlci: DLCI sending the data
766 * @msg: message queued
767 *
768 * Add data to the transmit queue and try and get stuff moving
769 * out of the mux tty if not already doing so. Take the
770 * the gsm tx lock and dlci lock.
771 */
772
773static void gsm_data_queue(struct gsm_dlci *dlci, struct gsm_msg *msg)
774{
775 unsigned long flags;
776 spin_lock_irqsave(&dlci->gsm->tx_lock, flags);
777 __gsm_data_queue(dlci, msg);
778 spin_unlock_irqrestore(&dlci->gsm->tx_lock, flags);
779}
780
781/**
782 * gsm_dlci_data_output - try and push data out of a DLCI
783 * @gsm: mux
784 * @dlci: the DLCI to pull data from
785 *
786 * Pull data from a DLCI and send it into the transmit queue if there
787 * is data. Keep to the MRU of the mux. This path handles the usual tty
788 * interface which is a byte stream with optional modem data.
789 *
790 * Caller must hold the tx_lock of the mux.
791 */
792
793static int gsm_dlci_data_output(struct gsm_mux *gsm, struct gsm_dlci *dlci)
794{
795 struct gsm_msg *msg;
796 u8 *dp;
797 int len, size;
798 int h = dlci->adaption - 1;
799
800 len = kfifo_len(dlci->fifo);
801 if (len == 0)
802 return 0;
803
804 /* MTU/MRU count only the data bits */
805 if (len > gsm->mtu)
806 len = gsm->mtu;
807
808 size = len + h;
809
810 msg = gsm_data_alloc(gsm, dlci->addr, size, gsm->ftype);
811 /* FIXME: need a timer or something to kick this so it can't
812 get stuck with no work outstanding and no buffer free */
813 if (msg == NULL)
814 return -ENOMEM;
815 dp = msg->data;
816 switch (dlci->adaption) {
817 case 1: /* Unstructured */
818 break;
819 case 2: /* Unstructed with modem bits. Always one byte as we never
820 send inline break data */
821 *dp += gsm_encode_modem(dlci);
822 len--;
823 break;
824 }
825 WARN_ON(kfifo_out_locked(dlci->fifo, dp , len, &dlci->lock) != len);
826 __gsm_data_queue(dlci, msg);
827 /* Bytes of data we used up */
828 return size;
829}
830
831/**
832 * gsm_dlci_data_output_framed - try and push data out of a DLCI
833 * @gsm: mux
834 * @dlci: the DLCI to pull data from
835 *
836 * Pull data from a DLCI and send it into the transmit queue if there
837 * is data. Keep to the MRU of the mux. This path handles framed data
838 * queued as skbuffs to the DLCI.
839 *
840 * Caller must hold the tx_lock of the mux.
841 */
842
843static int gsm_dlci_data_output_framed(struct gsm_mux *gsm,
844 struct gsm_dlci *dlci)
845{
846 struct gsm_msg *msg;
847 u8 *dp;
848 int len, size;
849 int last = 0, first = 0;
850 int overhead = 0;
851
852 /* One byte per frame is used for B/F flags */
853 if (dlci->adaption == 4)
854 overhead = 1;
855
856 /* dlci->skb is locked by tx_lock */
857 if (dlci->skb == NULL) {
858 dlci->skb = skb_dequeue(&dlci->skb_list);
859 if (dlci->skb == NULL)
860 return 0;
861 first = 1;
862 }
863 len = dlci->skb->len + overhead;
864
865 /* MTU/MRU count only the data bits */
866 if (len > gsm->mtu) {
867 if (dlci->adaption == 3) {
868 /* Over long frame, bin it */
869 kfree_skb(dlci->skb);
870 dlci->skb = NULL;
871 return 0;
872 }
873 len = gsm->mtu;
874 } else
875 last = 1;
876
877 size = len + overhead;
878 msg = gsm_data_alloc(gsm, dlci->addr, size, gsm->ftype);
879
880 /* FIXME: need a timer or something to kick this so it can't
881 get stuck with no work outstanding and no buffer free */
882 if (msg == NULL)
883 return -ENOMEM;
884 dp = msg->data;
885
886 if (dlci->adaption == 4) { /* Interruptible framed (Packetised Data) */
887 /* Flag byte to carry the start/end info */
888 *dp++ = last << 7 | first << 6 | 1; /* EA */
889 len--;
890 }
891 memcpy(dp, skb_pull(dlci->skb, len), len);
892 __gsm_data_queue(dlci, msg);
893 if (last)
894 dlci->skb = NULL;
895 return size;
896}
897
898/**
899 * gsm_dlci_data_sweep - look for data to send
900 * @gsm: the GSM mux
901 *
902 * Sweep the GSM mux channels in priority order looking for ones with
903 * data to send. We could do with optimising this scan a bit. We aim
904 * to fill the queue totally or up to TX_THRESH_HI bytes. Once we hit
905 * TX_THRESH_LO we get called again
906 *
907 * FIXME: We should round robin between groups and in theory you can
908 * renegotiate DLCI priorities with optional stuff. Needs optimising.
909 */
910
911static void gsm_dlci_data_sweep(struct gsm_mux *gsm)
912{
913 int len;
914 /* Priority ordering: We should do priority with RR of the groups */
915 int i = 1;
e1eaea46 916
e1eaea46
AC
917 while (i < NUM_DLCI) {
918 struct gsm_dlci *dlci;
919
920 if (gsm->tx_bytes > TX_THRESH_HI)
921 break;
922 dlci = gsm->dlci[i];
923 if (dlci == NULL || dlci->constipated) {
924 i++;
925 continue;
926 }
927 if (dlci->adaption < 3)
928 len = gsm_dlci_data_output(gsm, dlci);
929 else
930 len = gsm_dlci_data_output_framed(gsm, dlci);
931 if (len < 0)
e73790a5 932 break;
e1eaea46
AC
933 /* DLCI empty - try the next */
934 if (len == 0)
935 i++;
936 }
e1eaea46
AC
937}
938
939/**
940 * gsm_dlci_data_kick - transmit if possible
941 * @dlci: DLCI to kick
942 *
943 * Transmit data from this DLCI if the queue is empty. We can't rely on
944 * a tty wakeup except when we filled the pipe so we need to fire off
945 * new data ourselves in other cases.
946 */
947
948static void gsm_dlci_data_kick(struct gsm_dlci *dlci)
949{
950 unsigned long flags;
951
952 spin_lock_irqsave(&dlci->gsm->tx_lock, flags);
953 /* If we have nothing running then we need to fire up */
954 if (dlci->gsm->tx_bytes == 0)
955 gsm_dlci_data_output(dlci->gsm, dlci);
956 else if (dlci->gsm->tx_bytes < TX_THRESH_LO)
957 gsm_dlci_data_sweep(dlci->gsm);
958 spin_unlock_irqrestore(&dlci->gsm->tx_lock, flags);
959}
960
961/*
962 * Control message processing
963 */
964
965
966/**
967 * gsm_control_reply - send a response frame to a control
968 * @gsm: gsm channel
969 * @cmd: the command to use
970 * @data: data to follow encoded info
971 * @dlen: length of data
972 *
973 * Encode up and queue a UI/UIH frame containing our response.
974 */
975
976static void gsm_control_reply(struct gsm_mux *gsm, int cmd, u8 *data,
977 int dlen)
978{
979 struct gsm_msg *msg;
980 msg = gsm_data_alloc(gsm, 0, dlen + 2, gsm->ftype);
981 msg->data[0] = (cmd & 0xFE) << 1 | EA; /* Clear C/R */
982 msg->data[1] = (dlen << 1) | EA;
983 memcpy(msg->data + 2, data, dlen);
984 gsm_data_queue(gsm->dlci[0], msg);
985}
986
987/**
988 * gsm_process_modem - process received modem status
989 * @tty: virtual tty bound to the DLCI
990 * @dlci: DLCI to affect
991 * @modem: modem bits (full EA)
992 *
993 * Used when a modem control message or line state inline in adaption
994 * layer 2 is processed. Sort out the local modem state and throttles
995 */
996
997static void gsm_process_modem(struct tty_struct *tty, struct gsm_dlci *dlci,
998 u32 modem)
999{
1000 int mlines = 0;
1001 u8 brk = modem >> 6;
1002
1003 /* Flow control/ready to communicate */
1004 if (modem & MDM_FC) {
1005 /* Need to throttle our output on this device */
1006 dlci->constipated = 1;
1007 }
1008 if (modem & MDM_RTC) {
1009 mlines |= TIOCM_DSR | TIOCM_DTR;
1010 dlci->constipated = 0;
1011 gsm_dlci_data_kick(dlci);
1012 }
1013 /* Map modem bits */
1014 if (modem & MDM_RTR)
1015 mlines |= TIOCM_RTS | TIOCM_CTS;
1016 if (modem & MDM_IC)
1017 mlines |= TIOCM_RI;
1018 if (modem & MDM_DV)
1019 mlines |= TIOCM_CD;
1020
1021 /* Carrier drop -> hangup */
1022 if (tty) {
1023 if ((mlines & TIOCM_CD) == 0 && (dlci->modem_rx & TIOCM_CD))
1024 if (!(tty->termios->c_cflag & CLOCAL))
1025 tty_hangup(tty);
1026 if (brk & 0x01)
1027 tty_insert_flip_char(tty, 0, TTY_BREAK);
1028 }
1029 dlci->modem_rx = mlines;
1030}
1031
1032/**
1033 * gsm_control_modem - modem status received
1034 * @gsm: GSM channel
1035 * @data: data following command
1036 * @clen: command length
1037 *
1038 * We have received a modem status control message. This is used by
1039 * the GSM mux protocol to pass virtual modem line status and optionally
1040 * to indicate break signals. Unpack it, convert to Linux representation
1041 * and if need be stuff a break message down the tty.
1042 */
1043
1044static void gsm_control_modem(struct gsm_mux *gsm, u8 *data, int clen)
1045{
1046 unsigned int addr = 0;
1047 unsigned int modem = 0;
1048 struct gsm_dlci *dlci;
1049 int len = clen;
1050 u8 *dp = data;
1051 struct tty_struct *tty;
1052
1053 while (gsm_read_ea(&addr, *dp++) == 0) {
1054 len--;
1055 if (len == 0)
1056 return;
1057 }
1058 /* Must be at least one byte following the EA */
1059 len--;
1060 if (len <= 0)
1061 return;
1062
1063 addr >>= 1;
1064 /* Closed port, or invalid ? */
1065 if (addr == 0 || addr >= NUM_DLCI || gsm->dlci[addr] == NULL)
1066 return;
1067 dlci = gsm->dlci[addr];
1068
1069 while (gsm_read_ea(&modem, *dp++) == 0) {
1070 len--;
1071 if (len == 0)
1072 return;
1073 }
1074 tty = tty_port_tty_get(&dlci->port);
1075 gsm_process_modem(tty, dlci, modem);
1076 if (tty) {
1077 tty_wakeup(tty);
1078 tty_kref_put(tty);
1079 }
1080 gsm_control_reply(gsm, CMD_MSC, data, clen);
1081}
1082
1083/**
1084 * gsm_control_rls - remote line status
1085 * @gsm: GSM channel
1086 * @data: data bytes
1087 * @clen: data length
1088 *
1089 * The modem sends us a two byte message on the control channel whenever
1090 * it wishes to send us an error state from the virtual link. Stuff
1091 * this into the uplink tty if present
1092 */
1093
1094static void gsm_control_rls(struct gsm_mux *gsm, u8 *data, int clen)
1095{
1096 struct tty_struct *tty;
1097 unsigned int addr = 0 ;
1098 u8 bits;
1099 int len = clen;
1100 u8 *dp = data;
1101
1102 while (gsm_read_ea(&addr, *dp++) == 0) {
1103 len--;
1104 if (len == 0)
1105 return;
1106 }
1107 /* Must be at least one byte following ea */
1108 len--;
1109 if (len <= 0)
1110 return;
1111 addr >>= 1;
1112 /* Closed port, or invalid ? */
1113 if (addr == 0 || addr >= NUM_DLCI || gsm->dlci[addr] == NULL)
1114 return;
1115 /* No error ? */
1116 bits = *dp;
1117 if ((bits & 1) == 0)
1118 return;
1119 /* See if we have an uplink tty */
1120 tty = tty_port_tty_get(&gsm->dlci[addr]->port);
1121
1122 if (tty) {
1123 if (bits & 2)
1124 tty_insert_flip_char(tty, 0, TTY_OVERRUN);
1125 if (bits & 4)
1126 tty_insert_flip_char(tty, 0, TTY_PARITY);
1127 if (bits & 8)
1128 tty_insert_flip_char(tty, 0, TTY_FRAME);
1129 tty_flip_buffer_push(tty);
1130 tty_kref_put(tty);
1131 }
1132 gsm_control_reply(gsm, CMD_RLS, data, clen);
1133}
1134
1135static void gsm_dlci_begin_close(struct gsm_dlci *dlci);
1136
1137/**
1138 * gsm_control_message - DLCI 0 control processing
1139 * @gsm: our GSM mux
1140 * @command: the command EA
1141 * @data: data beyond the command/length EAs
1142 * @clen: length
1143 *
1144 * Input processor for control messages from the other end of the link.
1145 * Processes the incoming request and queues a response frame or an
1146 * NSC response if not supported
1147 */
1148
1149static void gsm_control_message(struct gsm_mux *gsm, unsigned int command,
1150 u8 *data, int clen)
1151{
1152 u8 buf[1];
1153 switch (command) {
1154 case CMD_CLD: {
1155 struct gsm_dlci *dlci = gsm->dlci[0];
1156 /* Modem wishes to close down */
1157 if (dlci) {
1158 dlci->dead = 1;
1159 gsm->dead = 1;
1160 gsm_dlci_begin_close(dlci);
1161 }
1162 }
1163 break;
1164 case CMD_TEST:
1165 /* Modem wishes to test, reply with the data */
1166 gsm_control_reply(gsm, CMD_TEST, data, clen);
1167 break;
1168 case CMD_FCON:
1169 /* Modem wants us to STFU */
1170 gsm->constipated = 1;
1171 gsm_control_reply(gsm, CMD_FCON, NULL, 0);
1172 break;
1173 case CMD_FCOFF:
1174 /* Modem can accept data again */
1175 gsm->constipated = 0;
1176 gsm_control_reply(gsm, CMD_FCOFF, NULL, 0);
1177 /* Kick the link in case it is idling */
1178 gsm_data_kick(gsm);
1179 break;
1180 case CMD_MSC:
1181 /* Out of band modem line change indicator for a DLCI */
1182 gsm_control_modem(gsm, data, clen);
1183 break;
1184 case CMD_RLS:
1185 /* Out of band error reception for a DLCI */
1186 gsm_control_rls(gsm, data, clen);
1187 break;
1188 case CMD_PSC:
1189 /* Modem wishes to enter power saving state */
1190 gsm_control_reply(gsm, CMD_PSC, NULL, 0);
1191 break;
1192 /* Optional unsupported commands */
1193 case CMD_PN: /* Parameter negotiation */
1194 case CMD_RPN: /* Remote port negotation */
1195 case CMD_SNC: /* Service negotation command */
1196 default:
1197 /* Reply to bad commands with an NSC */
1198 buf[0] = command;
1199 gsm_control_reply(gsm, CMD_NSC, buf, 1);
1200 break;
1201 }
1202}
1203
1204/**
1205 * gsm_control_response - process a response to our control
1206 * @gsm: our GSM mux
1207 * @command: the command (response) EA
1208 * @data: data beyond the command/length EA
1209 * @clen: length
1210 *
1211 * Process a response to an outstanding command. We only allow a single
1212 * control message in flight so this is fairly easy. All the clean up
1213 * is done by the caller, we just update the fields, flag it as done
1214 * and return
1215 */
1216
1217static void gsm_control_response(struct gsm_mux *gsm, unsigned int command,
1218 u8 *data, int clen)
1219{
1220 struct gsm_control *ctrl;
1221 unsigned long flags;
1222
1223 spin_lock_irqsave(&gsm->control_lock, flags);
1224
1225 ctrl = gsm->pending_cmd;
1226 /* Does the reply match our command */
1227 command |= 1;
1228 if (ctrl != NULL && (command == ctrl->cmd || command == CMD_NSC)) {
1229 /* Our command was replied to, kill the retry timer */
1230 del_timer(&gsm->t2_timer);
1231 gsm->pending_cmd = NULL;
1232 /* Rejected by the other end */
1233 if (command == CMD_NSC)
1234 ctrl->error = -EOPNOTSUPP;
1235 ctrl->done = 1;
1236 wake_up(&gsm->event);
1237 }
1238 spin_unlock_irqrestore(&gsm->control_lock, flags);
1239}
1240
1241/**
5f9a31d6 1242 * gsm_control_transmit - send control packet
e1eaea46
AC
1243 * @gsm: gsm mux
1244 * @ctrl: frame to send
1245 *
1246 * Send out a pending control command (called under control lock)
1247 */
1248
1249static void gsm_control_transmit(struct gsm_mux *gsm, struct gsm_control *ctrl)
1250{
1251 struct gsm_msg *msg = gsm_data_alloc(gsm, 0, ctrl->len + 1,
1252 gsm->ftype|PF);
1253 if (msg == NULL)
1254 return;
1255 msg->data[0] = (ctrl->cmd << 1) | 2 | EA; /* command */
1256 memcpy(msg->data + 1, ctrl->data, ctrl->len);
1257 gsm_data_queue(gsm->dlci[0], msg);
1258}
1259
1260/**
1261 * gsm_control_retransmit - retransmit a control frame
1262 * @data: pointer to our gsm object
1263 *
1264 * Called off the T2 timer expiry in order to retransmit control frames
1265 * that have been lost in the system somewhere. The control_lock protects
1266 * us from colliding with another sender or a receive completion event.
1267 * In that situation the timer may still occur in a small window but
1268 * gsm->pending_cmd will be NULL and we just let the timer expire.
1269 */
1270
1271static void gsm_control_retransmit(unsigned long data)
1272{
1273 struct gsm_mux *gsm = (struct gsm_mux *)data;
1274 struct gsm_control *ctrl;
1275 unsigned long flags;
1276 spin_lock_irqsave(&gsm->control_lock, flags);
1277 ctrl = gsm->pending_cmd;
1278 if (ctrl) {
1279 gsm->cretries--;
1280 if (gsm->cretries == 0) {
1281 gsm->pending_cmd = NULL;
1282 ctrl->error = -ETIMEDOUT;
1283 ctrl->done = 1;
1284 spin_unlock_irqrestore(&gsm->control_lock, flags);
1285 wake_up(&gsm->event);
1286 return;
1287 }
1288 gsm_control_transmit(gsm, ctrl);
1289 mod_timer(&gsm->t2_timer, jiffies + gsm->t2 * HZ / 100);
1290 }
1291 spin_unlock_irqrestore(&gsm->control_lock, flags);
1292}
1293
1294/**
1295 * gsm_control_send - send a control frame on DLCI 0
1296 * @gsm: the GSM channel
1297 * @command: command to send including CR bit
1298 * @data: bytes of data (must be kmalloced)
1299 * @len: length of the block to send
1300 *
1301 * Queue and dispatch a control command. Only one command can be
1302 * active at a time. In theory more can be outstanding but the matching
1303 * gets really complicated so for now stick to one outstanding.
1304 */
1305
1306static struct gsm_control *gsm_control_send(struct gsm_mux *gsm,
1307 unsigned int command, u8 *data, int clen)
1308{
1309 struct gsm_control *ctrl = kzalloc(sizeof(struct gsm_control),
1310 GFP_KERNEL);
1311 unsigned long flags;
1312 if (ctrl == NULL)
1313 return NULL;
1314retry:
1315 wait_event(gsm->event, gsm->pending_cmd == NULL);
1316 spin_lock_irqsave(&gsm->control_lock, flags);
1317 if (gsm->pending_cmd != NULL) {
1318 spin_unlock_irqrestore(&gsm->control_lock, flags);
1319 goto retry;
1320 }
1321 ctrl->cmd = command;
1322 ctrl->data = data;
1323 ctrl->len = clen;
1324 gsm->pending_cmd = ctrl;
1325 gsm->cretries = gsm->n2;
1326 mod_timer(&gsm->t2_timer, jiffies + gsm->t2 * HZ / 100);
1327 gsm_control_transmit(gsm, ctrl);
1328 spin_unlock_irqrestore(&gsm->control_lock, flags);
1329 return ctrl;
1330}
1331
1332/**
1333 * gsm_control_wait - wait for a control to finish
1334 * @gsm: GSM mux
1335 * @control: control we are waiting on
1336 *
1337 * Waits for the control to complete or time out. Frees any used
1338 * resources and returns 0 for success, or an error if the remote
1339 * rejected or ignored the request.
1340 */
1341
1342static int gsm_control_wait(struct gsm_mux *gsm, struct gsm_control *control)
1343{
1344 int err;
1345 wait_event(gsm->event, control->done == 1);
1346 err = control->error;
1347 kfree(control);
1348 return err;
1349}
1350
1351
1352/*
1353 * DLCI level handling: Needs krefs
1354 */
1355
1356/*
1357 * State transitions and timers
1358 */
1359
1360/**
1361 * gsm_dlci_close - a DLCI has closed
1362 * @dlci: DLCI that closed
1363 *
1364 * Perform processing when moving a DLCI into closed state. If there
1365 * is an attached tty this is hung up
1366 */
1367
1368static void gsm_dlci_close(struct gsm_dlci *dlci)
1369{
1370 del_timer(&dlci->t1);
1371 if (debug & 8)
5f9a31d6 1372 pr_debug("DLCI %d goes closed.\n", dlci->addr);
e1eaea46
AC
1373 dlci->state = DLCI_CLOSED;
1374 if (dlci->addr != 0) {
1375 struct tty_struct *tty = tty_port_tty_get(&dlci->port);
1376 if (tty) {
1377 tty_hangup(tty);
1378 tty_kref_put(tty);
1379 }
1380 kfifo_reset(dlci->fifo);
1381 } else
1382 dlci->gsm->dead = 1;
1383 wake_up(&dlci->gsm->event);
1384 /* A DLCI 0 close is a MUX termination so we need to kick that
1385 back to userspace somehow */
1386}
1387
1388/**
1389 * gsm_dlci_open - a DLCI has opened
1390 * @dlci: DLCI that opened
1391 *
1392 * Perform processing when moving a DLCI into open state.
1393 */
1394
1395static void gsm_dlci_open(struct gsm_dlci *dlci)
1396{
1397 /* Note that SABM UA .. SABM UA first UA lost can mean that we go
1398 open -> open */
1399 del_timer(&dlci->t1);
1400 /* This will let a tty open continue */
1401 dlci->state = DLCI_OPEN;
1402 if (debug & 8)
5f9a31d6 1403 pr_debug("DLCI %d goes open.\n", dlci->addr);
e1eaea46
AC
1404 wake_up(&dlci->gsm->event);
1405}
1406
1407/**
1408 * gsm_dlci_t1 - T1 timer expiry
1409 * @dlci: DLCI that opened
1410 *
1411 * The T1 timer handles retransmits of control frames (essentially of
1412 * SABM and DISC). We resend the command until the retry count runs out
1413 * in which case an opening port goes back to closed and a closing port
1414 * is simply put into closed state (any further frames from the other
1415 * end will get a DM response)
1416 */
1417
1418static void gsm_dlci_t1(unsigned long data)
1419{
1420 struct gsm_dlci *dlci = (struct gsm_dlci *)data;
1421 struct gsm_mux *gsm = dlci->gsm;
1422
1423 switch (dlci->state) {
1424 case DLCI_OPENING:
1425 dlci->retries--;
1426 if (dlci->retries) {
1427 gsm_command(dlci->gsm, dlci->addr, SABM|PF);
1428 mod_timer(&dlci->t1, jiffies + gsm->t1 * HZ / 100);
1429 } else
1430 gsm_dlci_close(dlci);
1431 break;
1432 case DLCI_CLOSING:
1433 dlci->retries--;
1434 if (dlci->retries) {
1435 gsm_command(dlci->gsm, dlci->addr, DISC|PF);
1436 mod_timer(&dlci->t1, jiffies + gsm->t1 * HZ / 100);
1437 } else
1438 gsm_dlci_close(dlci);
1439 break;
1440 }
1441}
1442
1443/**
1444 * gsm_dlci_begin_open - start channel open procedure
1445 * @dlci: DLCI to open
1446 *
1447 * Commence opening a DLCI from the Linux side. We issue SABM messages
1448 * to the modem which should then reply with a UA, at which point we
1449 * will move into open state. Opening is done asynchronously with retry
1450 * running off timers and the responses.
1451 */
1452
1453static void gsm_dlci_begin_open(struct gsm_dlci *dlci)
1454{
1455 struct gsm_mux *gsm = dlci->gsm;
1456 if (dlci->state == DLCI_OPEN || dlci->state == DLCI_OPENING)
1457 return;
1458 dlci->retries = gsm->n2;
1459 dlci->state = DLCI_OPENING;
1460 gsm_command(dlci->gsm, dlci->addr, SABM|PF);
1461 mod_timer(&dlci->t1, jiffies + gsm->t1 * HZ / 100);
1462}
1463
1464/**
1465 * gsm_dlci_begin_close - start channel open procedure
1466 * @dlci: DLCI to open
1467 *
1468 * Commence closing a DLCI from the Linux side. We issue DISC messages
1469 * to the modem which should then reply with a UA, at which point we
1470 * will move into closed state. Closing is done asynchronously with retry
1471 * off timers. We may also receive a DM reply from the other end which
1472 * indicates the channel was already closed.
1473 */
1474
1475static void gsm_dlci_begin_close(struct gsm_dlci *dlci)
1476{
1477 struct gsm_mux *gsm = dlci->gsm;
1478 if (dlci->state == DLCI_CLOSED || dlci->state == DLCI_CLOSING)
1479 return;
1480 dlci->retries = gsm->n2;
1481 dlci->state = DLCI_CLOSING;
1482 gsm_command(dlci->gsm, dlci->addr, DISC|PF);
1483 mod_timer(&dlci->t1, jiffies + gsm->t1 * HZ / 100);
1484}
1485
1486/**
1487 * gsm_dlci_data - data arrived
1488 * @dlci: channel
1489 * @data: block of bytes received
1490 * @len: length of received block
1491 *
1492 * A UI or UIH frame has arrived which contains data for a channel
1493 * other than the control channel. If the relevant virtual tty is
1494 * open we shovel the bits down it, if not we drop them.
1495 */
1496
1497static void gsm_dlci_data(struct gsm_dlci *dlci, u8 *data, int len)
1498{
1499 /* krefs .. */
1500 struct tty_port *port = &dlci->port;
1501 struct tty_struct *tty = tty_port_tty_get(port);
1502 unsigned int modem = 0;
1503
1504 if (debug & 16)
5f9a31d6 1505 pr_debug("%d bytes for tty %p\n", len, tty);
e1eaea46
AC
1506 if (tty) {
1507 switch (dlci->adaption) {
5f9a31d6
AC
1508 /* Unsupported types */
1509 /* Packetised interruptible data */
1510 case 4:
1511 break;
1512 /* Packetised uininterruptible voice/data */
1513 case 3:
1514 break;
1515 /* Asynchronous serial with line state in each frame */
1516 case 2:
1517 while (gsm_read_ea(&modem, *data++) == 0) {
1518 len--;
1519 if (len == 0)
1520 return;
1521 }
1522 gsm_process_modem(tty, dlci, modem);
1523 /* Line state will go via DLCI 0 controls only */
1524 case 1:
1525 default:
1526 tty_insert_flip_string(tty, data, len);
1527 tty_flip_buffer_push(tty);
e1eaea46
AC
1528 }
1529 tty_kref_put(tty);
1530 }
1531}
1532
1533/**
1534 * gsm_dlci_control - data arrived on control channel
1535 * @dlci: channel
1536 * @data: block of bytes received
1537 * @len: length of received block
1538 *
1539 * A UI or UIH frame has arrived which contains data for DLCI 0 the
1540 * control channel. This should contain a command EA followed by
1541 * control data bytes. The command EA contains a command/response bit
1542 * and we divide up the work accordingly.
1543 */
1544
1545static void gsm_dlci_command(struct gsm_dlci *dlci, u8 *data, int len)
1546{
1547 /* See what command is involved */
1548 unsigned int command = 0;
1549 while (len-- > 0) {
1550 if (gsm_read_ea(&command, *data++) == 1) {
1551 int clen = *data++;
1552 len--;
1553 /* FIXME: this is properly an EA */
1554 clen >>= 1;
1555 /* Malformed command ? */
1556 if (clen > len)
1557 return;
1558 if (command & 1)
1559 gsm_control_message(dlci->gsm, command,
1560 data, clen);
1561 else
1562 gsm_control_response(dlci->gsm, command,
1563 data, clen);
1564 return;
1565 }
1566 }
1567}
1568
1569/*
1570 * Allocate/Free DLCI channels
1571 */
1572
1573/**
1574 * gsm_dlci_alloc - allocate a DLCI
1575 * @gsm: GSM mux
1576 * @addr: address of the DLCI
1577 *
1578 * Allocate and install a new DLCI object into the GSM mux.
1579 *
1580 * FIXME: review locking races
1581 */
1582
1583static struct gsm_dlci *gsm_dlci_alloc(struct gsm_mux *gsm, int addr)
1584{
1585 struct gsm_dlci *dlci = kzalloc(sizeof(struct gsm_dlci), GFP_ATOMIC);
1586 if (dlci == NULL)
1587 return NULL;
1588 spin_lock_init(&dlci->lock);
1589 dlci->fifo = &dlci->_fifo;
1590 if (kfifo_alloc(&dlci->_fifo, 4096, GFP_KERNEL) < 0) {
1591 kfree(dlci);
1592 return NULL;
1593 }
1594
1595 skb_queue_head_init(&dlci->skb_list);
1596 init_timer(&dlci->t1);
1597 dlci->t1.function = gsm_dlci_t1;
1598 dlci->t1.data = (unsigned long)dlci;
1599 tty_port_init(&dlci->port);
1600 dlci->port.ops = &gsm_port_ops;
1601 dlci->gsm = gsm;
1602 dlci->addr = addr;
1603 dlci->adaption = gsm->adaption;
1604 dlci->state = DLCI_CLOSED;
1605 if (addr)
1606 dlci->data = gsm_dlci_data;
1607 else
1608 dlci->data = gsm_dlci_command;
1609 gsm->dlci[addr] = dlci;
1610 return dlci;
1611}
1612
1613/**
1614 * gsm_dlci_free - release DLCI
1615 * @dlci: DLCI to destroy
1616 *
1617 * Free up a DLCI. Currently to keep the lifetime rules sane we only
1618 * clean up DLCI objects when the MUX closes rather than as the port
1619 * is closed down on both the tty and mux levels.
1620 *
1621 * Can sleep.
1622 */
1623static void gsm_dlci_free(struct gsm_dlci *dlci)
1624{
1625 struct tty_struct *tty = tty_port_tty_get(&dlci->port);
1626 if (tty) {
1627 tty_vhangup(tty);
1628 tty_kref_put(tty);
1629 }
1630 del_timer_sync(&dlci->t1);
1631 dlci->gsm->dlci[dlci->addr] = NULL;
1632 kfifo_free(dlci->fifo);
1633 kfree(dlci);
1634}
1635
e1eaea46
AC
1636/*
1637 * LAPBish link layer logic
1638 */
1639
1640/**
1641 * gsm_queue - a GSM frame is ready to process
1642 * @gsm: pointer to our gsm mux
1643 *
1644 * At this point in time a frame has arrived and been demangled from
1645 * the line encoding. All the differences between the encodings have
1646 * been handled below us and the frame is unpacked into the structures.
1647 * The fcs holds the header FCS but any data FCS must be added here.
1648 */
1649
1650static void gsm_queue(struct gsm_mux *gsm)
1651{
1652 struct gsm_dlci *dlci;
1653 u8 cr;
1654 int address;
1655 /* We have to sneak a look at the packet body to do the FCS.
1656 A somewhat layering violation in the spec */
1657
1658 if ((gsm->control & ~PF) == UI)
1659 gsm->fcs = gsm_fcs_add_block(gsm->fcs, gsm->buf, gsm->len);
c2f2f000
AC
1660 /* generate final CRC with received FCS */
1661 gsm->fcs = gsm_fcs_add(gsm->fcs, gsm->received_fcs);
e1eaea46
AC
1662 if (gsm->fcs != GOOD_FCS) {
1663 gsm->bad_fcs++;
1664 if (debug & 4)
5f9a31d6 1665 pr_debug("BAD FCS %02x\n", gsm->fcs);
e1eaea46
AC
1666 return;
1667 }
1668 address = gsm->address >> 1;
1669 if (address >= NUM_DLCI)
1670 goto invalid;
1671
1672 cr = gsm->address & 1; /* C/R bit */
1673
1674 gsm_print_packet("<--", address, cr, gsm->control, gsm->buf, gsm->len);
1675
1676 cr ^= 1 - gsm->initiator; /* Flip so 1 always means command */
1677 dlci = gsm->dlci[address];
1678
1679 switch (gsm->control) {
1680 case SABM|PF:
1681 if (cr == 0)
1682 goto invalid;
1683 if (dlci == NULL)
1684 dlci = gsm_dlci_alloc(gsm, address);
1685 if (dlci == NULL)
1686 return;
1687 if (dlci->dead)
1688 gsm_response(gsm, address, DM);
1689 else {
1690 gsm_response(gsm, address, UA);
1691 gsm_dlci_open(dlci);
1692 }
1693 break;
1694 case DISC|PF:
1695 if (cr == 0)
1696 goto invalid;
1697 if (dlci == NULL || dlci->state == DLCI_CLOSED) {
1698 gsm_response(gsm, address, DM);
1699 return;
1700 }
1701 /* Real close complete */
1702 gsm_response(gsm, address, UA);
1703 gsm_dlci_close(dlci);
1704 break;
1705 case UA:
1706 case UA|PF:
1707 if (cr == 0 || dlci == NULL)
1708 break;
1709 switch (dlci->state) {
1710 case DLCI_CLOSING:
1711 gsm_dlci_close(dlci);
1712 break;
1713 case DLCI_OPENING:
1714 gsm_dlci_open(dlci);
1715 break;
1716 }
1717 break;
1718 case DM: /* DM can be valid unsolicited */
1719 case DM|PF:
1720 if (cr)
1721 goto invalid;
1722 if (dlci == NULL)
1723 return;
1724 gsm_dlci_close(dlci);
1725 break;
1726 case UI:
1727 case UI|PF:
1728 case UIH:
1729 case UIH|PF:
1730#if 0
1731 if (cr)
1732 goto invalid;
1733#endif
1734 if (dlci == NULL || dlci->state != DLCI_OPEN) {
1735 gsm_command(gsm, address, DM|PF);
1736 return;
1737 }
1738 dlci->data(dlci, gsm->buf, gsm->len);
1739 break;
1740 default:
1741 goto invalid;
1742 }
1743 return;
1744invalid:
1745 gsm->malformed++;
1746 return;
1747}
1748
1749
1750/**
1751 * gsm0_receive - perform processing for non-transparency
1752 * @gsm: gsm data for this ldisc instance
1753 * @c: character
1754 *
1755 * Receive bytes in gsm mode 0
1756 */
1757
1758static void gsm0_receive(struct gsm_mux *gsm, unsigned char c)
1759{
c2f2f000
AC
1760 unsigned int len;
1761
e1eaea46
AC
1762 switch (gsm->state) {
1763 case GSM_SEARCH: /* SOF marker */
1764 if (c == GSM0_SOF) {
1765 gsm->state = GSM_ADDRESS;
1766 gsm->address = 0;
1767 gsm->len = 0;
1768 gsm->fcs = INIT_FCS;
1769 }
c2f2f000
AC
1770 break;
1771 case GSM_ADDRESS: /* Address EA */
e1eaea46
AC
1772 gsm->fcs = gsm_fcs_add(gsm->fcs, c);
1773 if (gsm_read_ea(&gsm->address, c))
1774 gsm->state = GSM_CONTROL;
1775 break;
1776 case GSM_CONTROL: /* Control Byte */
1777 gsm->fcs = gsm_fcs_add(gsm->fcs, c);
1778 gsm->control = c;
c2f2f000 1779 gsm->state = GSM_LEN0;
e1eaea46 1780 break;
c2f2f000 1781 case GSM_LEN0: /* Length EA */
e1eaea46
AC
1782 gsm->fcs = gsm_fcs_add(gsm->fcs, c);
1783 if (gsm_read_ea(&gsm->len, c)) {
1784 if (gsm->len > gsm->mru) {
1785 gsm->bad_size++;
1786 gsm->state = GSM_SEARCH;
1787 break;
1788 }
1789 gsm->count = 0;
c2f2f000
AC
1790 if (!gsm->len)
1791 gsm->state = GSM_FCS;
1792 else
1793 gsm->state = GSM_DATA;
1794 break;
e1eaea46 1795 }
c2f2f000
AC
1796 gsm->state = GSM_LEN1;
1797 break;
1798 case GSM_LEN1:
1799 gsm->fcs = gsm_fcs_add(gsm->fcs, c);
1800 len = c;
1801 gsm->len |= len << 7;
1802 if (gsm->len > gsm->mru) {
1803 gsm->bad_size++;
1804 gsm->state = GSM_SEARCH;
1805 break;
1806 }
1807 gsm->count = 0;
1808 if (!gsm->len)
1809 gsm->state = GSM_FCS;
1810 else
1811 gsm->state = GSM_DATA;
e1eaea46
AC
1812 break;
1813 case GSM_DATA: /* Data */
1814 gsm->buf[gsm->count++] = c;
1815 if (gsm->count == gsm->len)
1816 gsm->state = GSM_FCS;
1817 break;
1818 case GSM_FCS: /* FCS follows the packet */
c2f2f000
AC
1819 gsm->received_fcs = c;
1820 if (c == GSM0_SOF) {
1821 gsm->state = GSM_SEARCH;
1822 break;
1823 }
e1eaea46 1824 gsm_queue(gsm);
c2f2f000
AC
1825 gsm->state = GSM_SSOF;
1826 break;
1827 case GSM_SSOF:
1828 if (c == GSM0_SOF) {
1829 gsm->state = GSM_SEARCH;
1830 break;
1831 }
e1eaea46
AC
1832 break;
1833 }
1834}
1835
1836/**
c2f2f000 1837 * gsm1_receive - perform processing for non-transparency
e1eaea46
AC
1838 * @gsm: gsm data for this ldisc instance
1839 * @c: character
1840 *
1841 * Receive bytes in mode 1 (Advanced option)
1842 */
1843
1844static void gsm1_receive(struct gsm_mux *gsm, unsigned char c)
1845{
1846 if (c == GSM1_SOF) {
1847 /* EOF is only valid in frame if we have got to the data state
1848 and received at least one byte (the FCS) */
1849 if (gsm->state == GSM_DATA && gsm->count) {
1850 /* Extract the FCS */
1851 gsm->count--;
1852 gsm->fcs = gsm_fcs_add(gsm->fcs, gsm->buf[gsm->count]);
1853 gsm->len = gsm->count;
1854 gsm_queue(gsm);
1855 gsm->state = GSM_START;
1856 return;
1857 }
1858 /* Any partial frame was a runt so go back to start */
1859 if (gsm->state != GSM_START) {
1860 gsm->malformed++;
1861 gsm->state = GSM_START;
1862 }
1863 /* A SOF in GSM_START means we are still reading idling or
1864 framing bytes */
1865 return;
1866 }
1867
1868 if (c == GSM1_ESCAPE) {
1869 gsm->escape = 1;
1870 return;
1871 }
1872
1873 /* Only an unescaped SOF gets us out of GSM search */
1874 if (gsm->state == GSM_SEARCH)
1875 return;
1876
1877 if (gsm->escape) {
1878 c ^= GSM1_ESCAPE_BITS;
1879 gsm->escape = 0;
1880 }
1881 switch (gsm->state) {
1882 case GSM_START: /* First byte after SOF */
1883 gsm->address = 0;
1884 gsm->state = GSM_ADDRESS;
1885 gsm->fcs = INIT_FCS;
1886 /* Drop through */
1887 case GSM_ADDRESS: /* Address continuation */
1888 gsm->fcs = gsm_fcs_add(gsm->fcs, c);
1889 if (gsm_read_ea(&gsm->address, c))
1890 gsm->state = GSM_CONTROL;
1891 break;
1892 case GSM_CONTROL: /* Control Byte */
1893 gsm->fcs = gsm_fcs_add(gsm->fcs, c);
1894 gsm->control = c;
1895 gsm->count = 0;
1896 gsm->state = GSM_DATA;
1897 break;
1898 case GSM_DATA: /* Data */
5f9a31d6 1899 if (gsm->count > gsm->mru) { /* Allow one for the FCS */
e1eaea46
AC
1900 gsm->state = GSM_OVERRUN;
1901 gsm->bad_size++;
1902 } else
1903 gsm->buf[gsm->count++] = c;
1904 break;
1905 case GSM_OVERRUN: /* Over-long - eg a dropped SOF */
1906 break;
1907 }
1908}
1909
1910/**
1911 * gsm_error - handle tty error
1912 * @gsm: ldisc data
1913 * @data: byte received (may be invalid)
1914 * @flag: error received
1915 *
1916 * Handle an error in the receipt of data for a frame. Currently we just
1917 * go back to hunting for a SOF.
1918 *
1919 * FIXME: better diagnostics ?
1920 */
1921
1922static void gsm_error(struct gsm_mux *gsm,
1923 unsigned char data, unsigned char flag)
1924{
1925 gsm->state = GSM_SEARCH;
1926 gsm->io_error++;
1927}
1928
1929/**
1930 * gsm_cleanup_mux - generic GSM protocol cleanup
1931 * @gsm: our mux
1932 *
1933 * Clean up the bits of the mux which are the same for all framing
1934 * protocols. Remove the mux from the mux table, stop all the timers
1935 * and then shut down each device hanging up the channels as we go.
1936 */
1937
1938void gsm_cleanup_mux(struct gsm_mux *gsm)
1939{
1940 int i;
1941 struct gsm_dlci *dlci = gsm->dlci[0];
1942 struct gsm_msg *txq;
1943
1944 gsm->dead = 1;
1945
1946 spin_lock(&gsm_mux_lock);
1947 for (i = 0; i < MAX_MUX; i++) {
1948 if (gsm_mux[i] == gsm) {
1949 gsm_mux[i] = NULL;
1950 break;
1951 }
1952 }
1953 spin_unlock(&gsm_mux_lock);
1954 WARN_ON(i == MAX_MUX);
1955
1956 del_timer_sync(&gsm->t2_timer);
1957 /* Now we are sure T2 has stopped */
1958 if (dlci) {
1959 dlci->dead = 1;
1960 gsm_dlci_begin_close(dlci);
1961 wait_event_interruptible(gsm->event,
1962 dlci->state == DLCI_CLOSED);
1963 }
1964 /* Free up any link layer users */
1965 for (i = 0; i < NUM_DLCI; i++)
1966 if (gsm->dlci[i])
1967 gsm_dlci_free(gsm->dlci[i]);
1968 /* Now wipe the queues */
1969 for (txq = gsm->tx_head; txq != NULL; txq = gsm->tx_head) {
1970 gsm->tx_head = txq->next;
1971 kfree(txq);
1972 }
1973 gsm->tx_tail = NULL;
1974}
1975EXPORT_SYMBOL_GPL(gsm_cleanup_mux);
1976
1977/**
1978 * gsm_activate_mux - generic GSM setup
1979 * @gsm: our mux
1980 *
1981 * Set up the bits of the mux which are the same for all framing
1982 * protocols. Add the mux to the mux table so it can be opened and
1983 * finally kick off connecting to DLCI 0 on the modem.
1984 */
1985
1986int gsm_activate_mux(struct gsm_mux *gsm)
1987{
1988 struct gsm_dlci *dlci;
1989 int i = 0;
1990
1991 init_timer(&gsm->t2_timer);
1992 gsm->t2_timer.function = gsm_control_retransmit;
1993 gsm->t2_timer.data = (unsigned long)gsm;
1994 init_waitqueue_head(&gsm->event);
1995 spin_lock_init(&gsm->control_lock);
1996 spin_lock_init(&gsm->tx_lock);
1997
1998 if (gsm->encoding == 0)
1999 gsm->receive = gsm0_receive;
2000 else
2001 gsm->receive = gsm1_receive;
2002 gsm->error = gsm_error;
2003
2004 spin_lock(&gsm_mux_lock);
2005 for (i = 0; i < MAX_MUX; i++) {
2006 if (gsm_mux[i] == NULL) {
2007 gsm_mux[i] = gsm;
2008 break;
2009 }
2010 }
2011 spin_unlock(&gsm_mux_lock);
2012 if (i == MAX_MUX)
2013 return -EBUSY;
2014
2015 dlci = gsm_dlci_alloc(gsm, 0);
2016 if (dlci == NULL)
2017 return -ENOMEM;
2018 gsm->dead = 0; /* Tty opens are now permissible */
2019 return 0;
2020}
2021EXPORT_SYMBOL_GPL(gsm_activate_mux);
2022
2023/**
2024 * gsm_free_mux - free up a mux
2025 * @mux: mux to free
2026 *
2027 * Dispose of allocated resources for a dead mux. No refcounting
2028 * at present so the mux must be truely dead.
2029 */
2030void gsm_free_mux(struct gsm_mux *gsm)
2031{
2032 kfree(gsm->txframe);
2033 kfree(gsm->buf);
2034 kfree(gsm);
2035}
2036EXPORT_SYMBOL_GPL(gsm_free_mux);
2037
2038/**
2039 * gsm_alloc_mux - allocate a mux
2040 *
2041 * Creates a new mux ready for activation.
2042 */
2043
2044struct gsm_mux *gsm_alloc_mux(void)
2045{
2046 struct gsm_mux *gsm = kzalloc(sizeof(struct gsm_mux), GFP_KERNEL);
2047 if (gsm == NULL)
2048 return NULL;
2049 gsm->buf = kmalloc(MAX_MRU + 1, GFP_KERNEL);
2050 if (gsm->buf == NULL) {
2051 kfree(gsm);
2052 return NULL;
2053 }
2054 gsm->txframe = kmalloc(2 * MAX_MRU + 2, GFP_KERNEL);
2055 if (gsm->txframe == NULL) {
2056 kfree(gsm->buf);
2057 kfree(gsm);
2058 return NULL;
2059 }
2060 spin_lock_init(&gsm->lock);
2061
2062 gsm->t1 = T1;
2063 gsm->t2 = T2;
2064 gsm->n2 = N2;
2065 gsm->ftype = UIH;
2066 gsm->initiator = 0;
2067 gsm->adaption = 1;
2068 gsm->encoding = 1;
2069 gsm->mru = 64; /* Default to encoding 1 so these should be 64 */
2070 gsm->mtu = 64;
2071 gsm->dead = 1; /* Avoid early tty opens */
2072
2073 return gsm;
2074}
2075EXPORT_SYMBOL_GPL(gsm_alloc_mux);
2076
e1eaea46
AC
2077/**
2078 * gsmld_output - write to link
2079 * @gsm: our mux
2080 * @data: bytes to output
2081 * @len: size
2082 *
2083 * Write a block of data from the GSM mux to the data channel. This
2084 * will eventually be serialized from above but at the moment isn't.
2085 */
2086
2087static int gsmld_output(struct gsm_mux *gsm, u8 *data, int len)
2088{
2089 if (tty_write_room(gsm->tty) < len) {
2090 set_bit(TTY_DO_WRITE_WAKEUP, &gsm->tty->flags);
2091 return -ENOSPC;
2092 }
2093 if (debug & 4) {
5f9a31d6 2094 pr_debug("-->%d bytes out\n", len);
e1eaea46
AC
2095 hex_packet(data, len);
2096 }
2097 gsm->tty->ops->write(gsm->tty, data, len);
2098 return len;
2099}
2100
2101/**
2102 * gsmld_attach_gsm - mode set up
2103 * @tty: our tty structure
2104 * @gsm: our mux
2105 *
2106 * Set up the MUX for basic mode and commence connecting to the
2107 * modem. Currently called from the line discipline set up but
2108 * will need moving to an ioctl path.
2109 */
2110
2111static int gsmld_attach_gsm(struct tty_struct *tty, struct gsm_mux *gsm)
2112{
2113 int ret;
2114
2115 gsm->tty = tty_kref_get(tty);
2116 gsm->output = gsmld_output;
2117 ret = gsm_activate_mux(gsm);
2118 if (ret != 0)
2119 tty_kref_put(gsm->tty);
2120 return ret;
2121}
2122
2123
2124/**
2125 * gsmld_detach_gsm - stop doing 0710 mux
2126 * @tty: tty atttached to the mux
2127 * @gsm: mux
2128 *
2129 * Shutdown and then clean up the resources used by the line discipline
2130 */
2131
2132static void gsmld_detach_gsm(struct tty_struct *tty, struct gsm_mux *gsm)
2133{
2134 WARN_ON(tty != gsm->tty);
2135 gsm_cleanup_mux(gsm);
2136 tty_kref_put(gsm->tty);
2137 gsm->tty = NULL;
2138}
2139
2140static void gsmld_receive_buf(struct tty_struct *tty, const unsigned char *cp,
2141 char *fp, int count)
2142{
2143 struct gsm_mux *gsm = tty->disc_data;
2144 const unsigned char *dp;
2145 char *f;
2146 int i;
2147 char buf[64];
2148 char flags;
2149
2150 if (debug & 4) {
5f9a31d6 2151 pr_debug("Inbytes %dd\n", count);
e1eaea46
AC
2152 hex_packet(cp, count);
2153 }
2154
2155 for (i = count, dp = cp, f = fp; i; i--, dp++) {
2156 flags = *f++;
2157 switch (flags) {
2158 case TTY_NORMAL:
2159 gsm->receive(gsm, *dp);
2160 break;
2161 case TTY_OVERRUN:
2162 case TTY_BREAK:
2163 case TTY_PARITY:
2164 case TTY_FRAME:
2165 gsm->error(gsm, *dp, flags);
2166 break;
2167 default:
5f9a31d6 2168 WARN_ONCE("%s: unknown flag %d\n",
e1eaea46
AC
2169 tty_name(tty, buf), flags);
2170 break;
2171 }
2172 }
2173 /* FASYNC if needed ? */
2174 /* If clogged call tty_throttle(tty); */
2175}
2176
2177/**
2178 * gsmld_chars_in_buffer - report available bytes
2179 * @tty: tty device
2180 *
2181 * Report the number of characters buffered to be delivered to user
2182 * at this instant in time.
2183 *
2184 * Locking: gsm lock
2185 */
2186
2187static ssize_t gsmld_chars_in_buffer(struct tty_struct *tty)
2188{
2189 return 0;
2190}
2191
2192/**
2193 * gsmld_flush_buffer - clean input queue
2194 * @tty: terminal device
2195 *
2196 * Flush the input buffer. Called when the line discipline is
2197 * being closed, when the tty layer wants the buffer flushed (eg
2198 * at hangup).
2199 */
2200
2201static void gsmld_flush_buffer(struct tty_struct *tty)
2202{
2203}
2204
2205/**
2206 * gsmld_close - close the ldisc for this tty
2207 * @tty: device
2208 *
2209 * Called from the terminal layer when this line discipline is
2210 * being shut down, either because of a close or becsuse of a
2211 * discipline change. The function will not be called while other
2212 * ldisc methods are in progress.
2213 */
2214
2215static void gsmld_close(struct tty_struct *tty)
2216{
2217 struct gsm_mux *gsm = tty->disc_data;
2218
2219 gsmld_detach_gsm(tty, gsm);
2220
2221 gsmld_flush_buffer(tty);
2222 /* Do other clean up here */
2223 gsm_free_mux(gsm);
2224}
2225
2226/**
2227 * gsmld_open - open an ldisc
2228 * @tty: terminal to open
2229 *
2230 * Called when this line discipline is being attached to the
2231 * terminal device. Can sleep. Called serialized so that no
2232 * other events will occur in parallel. No further open will occur
2233 * until a close.
2234 */
2235
2236static int gsmld_open(struct tty_struct *tty)
2237{
2238 struct gsm_mux *gsm;
2239
2240 if (tty->ops->write == NULL)
2241 return -EINVAL;
2242
2243 /* Attach our ldisc data */
2244 gsm = gsm_alloc_mux();
2245 if (gsm == NULL)
2246 return -ENOMEM;
2247
2248 tty->disc_data = gsm;
2249 tty->receive_room = 65536;
2250
2251 /* Attach the initial passive connection */
2252 gsm->encoding = 1;
2253 return gsmld_attach_gsm(tty, gsm);
2254}
2255
2256/**
2257 * gsmld_write_wakeup - asynchronous I/O notifier
2258 * @tty: tty device
2259 *
2260 * Required for the ptys, serial driver etc. since processes
2261 * that attach themselves to the master and rely on ASYNC
2262 * IO must be woken up
2263 */
2264
2265static void gsmld_write_wakeup(struct tty_struct *tty)
2266{
2267 struct gsm_mux *gsm = tty->disc_data;
328be395 2268 unsigned long flags;
e1eaea46
AC
2269
2270 /* Queue poll */
2271 clear_bit(TTY_DO_WRITE_WAKEUP, &tty->flags);
2272 gsm_data_kick(gsm);
328be395
DC
2273 if (gsm->tx_bytes < TX_THRESH_LO) {
2274 spin_lock_irqsave(&gsm->tx_lock, flags);
e1eaea46 2275 gsm_dlci_data_sweep(gsm);
328be395
DC
2276 spin_unlock_irqrestore(&gsm->tx_lock, flags);
2277 }
e1eaea46
AC
2278}
2279
2280/**
2281 * gsmld_read - read function for tty
2282 * @tty: tty device
2283 * @file: file object
2284 * @buf: userspace buffer pointer
2285 * @nr: size of I/O
2286 *
2287 * Perform reads for the line discipline. We are guaranteed that the
2288 * line discipline will not be closed under us but we may get multiple
2289 * parallel readers and must handle this ourselves. We may also get
2290 * a hangup. Always called in user context, may sleep.
2291 *
2292 * This code must be sure never to sleep through a hangup.
2293 */
2294
2295static ssize_t gsmld_read(struct tty_struct *tty, struct file *file,
2296 unsigned char __user *buf, size_t nr)
2297{
2298 return -EOPNOTSUPP;
2299}
2300
2301/**
2302 * gsmld_write - write function for tty
2303 * @tty: tty device
2304 * @file: file object
2305 * @buf: userspace buffer pointer
2306 * @nr: size of I/O
2307 *
2308 * Called when the owner of the device wants to send a frame
2309 * itself (or some other control data). The data is transferred
2310 * as-is and must be properly framed and checksummed as appropriate
2311 * by userspace. Frames are either sent whole or not at all as this
2312 * avoids pain user side.
2313 */
2314
2315static ssize_t gsmld_write(struct tty_struct *tty, struct file *file,
2316 const unsigned char *buf, size_t nr)
2317{
2318 int space = tty_write_room(tty);
2319 if (space >= nr)
2320 return tty->ops->write(tty, buf, nr);
2321 set_bit(TTY_DO_WRITE_WAKEUP, &tty->flags);
2322 return -ENOBUFS;
2323}
2324
2325/**
2326 * gsmld_poll - poll method for N_GSM0710
2327 * @tty: terminal device
2328 * @file: file accessing it
2329 * @wait: poll table
2330 *
2331 * Called when the line discipline is asked to poll() for data or
2332 * for special events. This code is not serialized with respect to
2333 * other events save open/close.
2334 *
2335 * This code must be sure never to sleep through a hangup.
2336 * Called without the kernel lock held - fine
2337 */
2338
2339static unsigned int gsmld_poll(struct tty_struct *tty, struct file *file,
2340 poll_table *wait)
2341{
2342 unsigned int mask = 0;
2343 struct gsm_mux *gsm = tty->disc_data;
2344
2345 poll_wait(file, &tty->read_wait, wait);
2346 poll_wait(file, &tty->write_wait, wait);
2347 if (tty_hung_up_p(file))
2348 mask |= POLLHUP;
2349 if (!tty_is_writelocked(tty) && tty_write_room(tty) > 0)
2350 mask |= POLLOUT | POLLWRNORM;
2351 if (gsm->dead)
2352 mask |= POLLHUP;
2353 return mask;
2354}
2355
2356static int gsmld_config(struct tty_struct *tty, struct gsm_mux *gsm,
2357 struct gsm_config *c)
2358{
2359 int need_close = 0;
2360 int need_restart = 0;
2361
2362 /* Stuff we don't support yet - UI or I frame transport, windowing */
5f9a31d6 2363 if ((c->adaption != 1 && c->adaption != 2) || c->k)
e1eaea46
AC
2364 return -EOPNOTSUPP;
2365 /* Check the MRU/MTU range looks sane */
2366 if (c->mru > MAX_MRU || c->mtu > MAX_MTU || c->mru < 8 || c->mtu < 8)
2367 return -EINVAL;
2368 if (c->n2 < 3)
2369 return -EINVAL;
2370 if (c->encapsulation > 1) /* Basic, advanced, no I */
2371 return -EINVAL;
2372 if (c->initiator > 1)
2373 return -EINVAL;
2374 if (c->i == 0 || c->i > 2) /* UIH and UI only */
2375 return -EINVAL;
2376 /*
2377 * See what is needed for reconfiguration
2378 */
2379
2380 /* Timing fields */
2381 if (c->t1 != 0 && c->t1 != gsm->t1)
2382 need_restart = 1;
2383 if (c->t2 != 0 && c->t2 != gsm->t2)
2384 need_restart = 1;
2385 if (c->encapsulation != gsm->encoding)
2386 need_restart = 1;
2387 if (c->adaption != gsm->adaption)
2388 need_restart = 1;
2389 /* Requires care */
2390 if (c->initiator != gsm->initiator)
2391 need_close = 1;
2392 if (c->mru != gsm->mru)
2393 need_restart = 1;
2394 if (c->mtu != gsm->mtu)
2395 need_restart = 1;
2396
2397 /*
2398 * Close down what is needed, restart and initiate the new
2399 * configuration
2400 */
2401
2402 if (need_close || need_restart) {
2403 gsm_dlci_begin_close(gsm->dlci[0]);
2404 /* This will timeout if the link is down due to N2 expiring */
2405 wait_event_interruptible(gsm->event,
2406 gsm->dlci[0]->state == DLCI_CLOSED);
2407 if (signal_pending(current))
2408 return -EINTR;
2409 }
2410 if (need_restart)
2411 gsm_cleanup_mux(gsm);
2412
2413 gsm->initiator = c->initiator;
2414 gsm->mru = c->mru;
2415 gsm->encoding = c->encapsulation;
2416 gsm->adaption = c->adaption;
2417
2418 if (c->i == 1)
2419 gsm->ftype = UIH;
2420 else if (c->i == 2)
2421 gsm->ftype = UI;
2422
2423 if (c->t1)
2424 gsm->t1 = c->t1;
2425 if (c->t2)
2426 gsm->t2 = c->t2;
2427
2428 /* FIXME: We need to separate activation/deactivation from adding
2429 and removing from the mux array */
2430 if (need_restart)
2431 gsm_activate_mux(gsm);
2432 if (gsm->initiator && need_close)
2433 gsm_dlci_begin_open(gsm->dlci[0]);
2434 return 0;
2435}
2436
2437static int gsmld_ioctl(struct tty_struct *tty, struct file *file,
2438 unsigned int cmd, unsigned long arg)
2439{
2440 struct gsm_config c;
2441 struct gsm_mux *gsm = tty->disc_data;
2442
2443 switch (cmd) {
2444 case GSMIOC_GETCONF:
2445 memset(&c, 0, sizeof(c));
2446 c.adaption = gsm->adaption;
2447 c.encapsulation = gsm->encoding;
2448 c.initiator = gsm->initiator;
2449 c.t1 = gsm->t1;
2450 c.t2 = gsm->t2;
2451 c.t3 = 0; /* Not supported */
2452 c.n2 = gsm->n2;
2453 if (gsm->ftype == UIH)
2454 c.i = 1;
2455 else
2456 c.i = 2;
5f9a31d6 2457 pr_debug("Ftype %d i %d\n", gsm->ftype, c.i);
e1eaea46
AC
2458 c.mru = gsm->mru;
2459 c.mtu = gsm->mtu;
2460 c.k = 0;
2461 if (copy_to_user((void *)arg, &c, sizeof(c)))
2462 return -EFAULT;
2463 return 0;
2464 case GSMIOC_SETCONF:
2465 if (copy_from_user(&c, (void *)arg, sizeof(c)))
2466 return -EFAULT;
2467 return gsmld_config(tty, gsm, &c);
2468 default:
2469 return n_tty_ioctl_helper(tty, file, cmd, arg);
2470 }
2471}
2472
2473
2474/* Line discipline for real tty */
2475struct tty_ldisc_ops tty_ldisc_packet = {
2476 .owner = THIS_MODULE,
2477 .magic = TTY_LDISC_MAGIC,
2478 .name = "n_gsm",
2479 .open = gsmld_open,
2480 .close = gsmld_close,
2481 .flush_buffer = gsmld_flush_buffer,
2482 .chars_in_buffer = gsmld_chars_in_buffer,
2483 .read = gsmld_read,
2484 .write = gsmld_write,
2485 .ioctl = gsmld_ioctl,
2486 .poll = gsmld_poll,
2487 .receive_buf = gsmld_receive_buf,
2488 .write_wakeup = gsmld_write_wakeup
2489};
2490
2491/*
2492 * Virtual tty side
2493 */
2494
2495#define TX_SIZE 512
2496
2497static int gsmtty_modem_update(struct gsm_dlci *dlci, u8 brk)
2498{
2499 u8 modembits[5];
2500 struct gsm_control *ctrl;
2501 int len = 2;
2502
2503 if (brk)
2504 len++;
2505
2506 modembits[0] = len << 1 | EA; /* Data bytes */
2507 modembits[1] = dlci->addr << 2 | 3; /* DLCI, EA, 1 */
2508 modembits[2] = gsm_encode_modem(dlci) << 1 | EA;
2509 if (brk)
2510 modembits[3] = brk << 4 | 2 | EA; /* Valid, EA */
2511 ctrl = gsm_control_send(dlci->gsm, CMD_MSC, modembits, len + 1);
2512 if (ctrl == NULL)
2513 return -ENOMEM;
2514 return gsm_control_wait(dlci->gsm, ctrl);
2515}
2516
2517static int gsm_carrier_raised(struct tty_port *port)
2518{
2519 struct gsm_dlci *dlci = container_of(port, struct gsm_dlci, port);
2520 /* Not yet open so no carrier info */
2521 if (dlci->state != DLCI_OPEN)
2522 return 0;
2523 if (debug & 2)
2524 return 1;
2525 return dlci->modem_rx & TIOCM_CD;
2526}
2527
2528static void gsm_dtr_rts(struct tty_port *port, int onoff)
2529{
2530 struct gsm_dlci *dlci = container_of(port, struct gsm_dlci, port);
2531 unsigned int modem_tx = dlci->modem_tx;
2532 if (onoff)
2533 modem_tx |= TIOCM_DTR | TIOCM_RTS;
2534 else
2535 modem_tx &= ~(TIOCM_DTR | TIOCM_RTS);
2536 if (modem_tx != dlci->modem_tx) {
2537 dlci->modem_tx = modem_tx;
2538 gsmtty_modem_update(dlci, 0);
2539 }
2540}
2541
2542static const struct tty_port_operations gsm_port_ops = {
2543 .carrier_raised = gsm_carrier_raised,
2544 .dtr_rts = gsm_dtr_rts,
2545};
2546
2547
2548static int gsmtty_open(struct tty_struct *tty, struct file *filp)
2549{
2550 struct gsm_mux *gsm;
2551 struct gsm_dlci *dlci;
2552 struct tty_port *port;
2553 unsigned int line = tty->index;
2554 unsigned int mux = line >> 6;
2555
2556 line = line & 0x3F;
2557
2558 if (mux >= MAX_MUX)
2559 return -ENXIO;
2560 /* FIXME: we need to lock gsm_mux for lifetimes of ttys eventually */
2561 if (gsm_mux[mux] == NULL)
2562 return -EUNATCH;
2563 if (line == 0 || line > 61) /* 62/63 reserved */
2564 return -ECHRNG;
2565 gsm = gsm_mux[mux];
2566 if (gsm->dead)
2567 return -EL2HLT;
2568 dlci = gsm->dlci[line];
2569 if (dlci == NULL)
2570 dlci = gsm_dlci_alloc(gsm, line);
2571 if (dlci == NULL)
2572 return -ENOMEM;
2573 port = &dlci->port;
2574 port->count++;
2575 tty->driver_data = dlci;
2576 tty_port_tty_set(port, tty);
2577
2578 dlci->modem_rx = 0;
2579 /* We could in theory open and close before we wait - eg if we get
2580 a DM straight back. This is ok as that will have caused a hangup */
2581 set_bit(ASYNCB_INITIALIZED, &port->flags);
2582 /* Start sending off SABM messages */
2583 gsm_dlci_begin_open(dlci);
2584 /* And wait for virtual carrier */
2585 return tty_port_block_til_ready(port, tty, filp);
2586}
2587
2588static void gsmtty_close(struct tty_struct *tty, struct file *filp)
2589{
2590 struct gsm_dlci *dlci = tty->driver_data;
2591 if (dlci == NULL)
2592 return;
2593 if (tty_port_close_start(&dlci->port, tty, filp) == 0)
2594 return;
2595 gsm_dlci_begin_close(dlci);
2596 tty_port_close_end(&dlci->port, tty);
2597 tty_port_tty_set(&dlci->port, NULL);
2598}
2599
2600static void gsmtty_hangup(struct tty_struct *tty)
2601{
2602 struct gsm_dlci *dlci = tty->driver_data;
2603 tty_port_hangup(&dlci->port);
2604 gsm_dlci_begin_close(dlci);
2605}
2606
2607static int gsmtty_write(struct tty_struct *tty, const unsigned char *buf,
2608 int len)
2609{
2610 struct gsm_dlci *dlci = tty->driver_data;
2611 /* Stuff the bytes into the fifo queue */
2612 int sent = kfifo_in_locked(dlci->fifo, buf, len, &dlci->lock);
2613 /* Need to kick the channel */
2614 gsm_dlci_data_kick(dlci);
2615 return sent;
2616}
2617
2618static int gsmtty_write_room(struct tty_struct *tty)
2619{
2620 struct gsm_dlci *dlci = tty->driver_data;
2621 return TX_SIZE - kfifo_len(dlci->fifo);
2622}
2623
2624static int gsmtty_chars_in_buffer(struct tty_struct *tty)
2625{
2626 struct gsm_dlci *dlci = tty->driver_data;
2627 return kfifo_len(dlci->fifo);
2628}
2629
2630static void gsmtty_flush_buffer(struct tty_struct *tty)
2631{
2632 struct gsm_dlci *dlci = tty->driver_data;
2633 /* Caution needed: If we implement reliable transport classes
2634 then the data being transmitted can't simply be junked once
2635 it has first hit the stack. Until then we can just blow it
2636 away */
2637 kfifo_reset(dlci->fifo);
2638 /* Need to unhook this DLCI from the transmit queue logic */
2639}
2640
2641static void gsmtty_wait_until_sent(struct tty_struct *tty, int timeout)
2642{
2643 /* The FIFO handles the queue so the kernel will do the right
2644 thing waiting on chars_in_buffer before calling us. No work
2645 to do here */
2646}
2647
2648static int gsmtty_tiocmget(struct tty_struct *tty, struct file *filp)
2649{
2650 struct gsm_dlci *dlci = tty->driver_data;
2651 return dlci->modem_rx;
2652}
2653
2654static int gsmtty_tiocmset(struct tty_struct *tty, struct file *filp,
2655 unsigned int set, unsigned int clear)
2656{
2657 struct gsm_dlci *dlci = tty->driver_data;
2658 unsigned int modem_tx = dlci->modem_tx;
2659
2660 modem_tx &= clear;
2661 modem_tx |= set;
2662
2663 if (modem_tx != dlci->modem_tx) {
2664 dlci->modem_tx = modem_tx;
2665 return gsmtty_modem_update(dlci, 0);
2666 }
2667 return 0;
2668}
2669
2670
2671static int gsmtty_ioctl(struct tty_struct *tty, struct file *filp,
2672 unsigned int cmd, unsigned long arg)
2673{
2674 return -ENOIOCTLCMD;
2675}
2676
2677static void gsmtty_set_termios(struct tty_struct *tty, struct ktermios *old)
2678{
2679 /* For the moment its fixed. In actual fact the speed information
2680 for the virtual channel can be propogated in both directions by
2681 the RPN control message. This however rapidly gets nasty as we
2682 then have to remap modem signals each way according to whether
2683 our virtual cable is null modem etc .. */
2684 tty_termios_copy_hw(tty->termios, old);
2685}
2686
2687static void gsmtty_throttle(struct tty_struct *tty)
2688{
2689 struct gsm_dlci *dlci = tty->driver_data;
2690 if (tty->termios->c_cflag & CRTSCTS)
2691 dlci->modem_tx &= ~TIOCM_DTR;
2692 dlci->throttled = 1;
2693 /* Send an MSC with DTR cleared */
2694 gsmtty_modem_update(dlci, 0);
2695}
2696
2697static void gsmtty_unthrottle(struct tty_struct *tty)
2698{
2699 struct gsm_dlci *dlci = tty->driver_data;
2700 if (tty->termios->c_cflag & CRTSCTS)
2701 dlci->modem_tx |= TIOCM_DTR;
2702 dlci->throttled = 0;
2703 /* Send an MSC with DTR set */
2704 gsmtty_modem_update(dlci, 0);
2705}
2706
2707static int gsmtty_break_ctl(struct tty_struct *tty, int state)
2708{
2709 struct gsm_dlci *dlci = tty->driver_data;
2710 int encode = 0; /* Off */
2711
2712 if (state == -1) /* "On indefinitely" - we can't encode this
2713 properly */
2714 encode = 0x0F;
2715 else if (state > 0) {
2716 encode = state / 200; /* mS to encoding */
2717 if (encode > 0x0F)
2718 encode = 0x0F; /* Best effort */
2719 }
2720 return gsmtty_modem_update(dlci, encode);
2721}
2722
2723static struct tty_driver *gsm_tty_driver;
2724
2725/* Virtual ttys for the demux */
2726static const struct tty_operations gsmtty_ops = {
2727 .open = gsmtty_open,
2728 .close = gsmtty_close,
2729 .write = gsmtty_write,
2730 .write_room = gsmtty_write_room,
2731 .chars_in_buffer = gsmtty_chars_in_buffer,
2732 .flush_buffer = gsmtty_flush_buffer,
2733 .ioctl = gsmtty_ioctl,
2734 .throttle = gsmtty_throttle,
2735 .unthrottle = gsmtty_unthrottle,
2736 .set_termios = gsmtty_set_termios,
2737 .hangup = gsmtty_hangup,
2738 .wait_until_sent = gsmtty_wait_until_sent,
2739 .tiocmget = gsmtty_tiocmget,
2740 .tiocmset = gsmtty_tiocmset,
2741 .break_ctl = gsmtty_break_ctl,
2742};
2743
2744
2745
2746static int __init gsm_init(void)
2747{
2748 /* Fill in our line protocol discipline, and register it */
2749 int status = tty_register_ldisc(N_GSM0710, &tty_ldisc_packet);
2750 if (status != 0) {
5f9a31d6
AC
2751 pr_err("n_gsm: can't register line discipline (err = %d)\n",
2752 status);
e1eaea46
AC
2753 return status;
2754 }
2755
2756 gsm_tty_driver = alloc_tty_driver(256);
2757 if (!gsm_tty_driver) {
2758 tty_unregister_ldisc(N_GSM0710);
5f9a31d6 2759 pr_err("gsm_init: tty allocation failed.\n");
e1eaea46
AC
2760 return -EINVAL;
2761 }
2762 gsm_tty_driver->owner = THIS_MODULE;
2763 gsm_tty_driver->driver_name = "gsmtty";
2764 gsm_tty_driver->name = "gsmtty";
2765 gsm_tty_driver->major = 0; /* Dynamic */
2766 gsm_tty_driver->minor_start = 0;
2767 gsm_tty_driver->type = TTY_DRIVER_TYPE_SERIAL;
2768 gsm_tty_driver->subtype = SERIAL_TYPE_NORMAL;
2769 gsm_tty_driver->flags = TTY_DRIVER_REAL_RAW | TTY_DRIVER_DYNAMIC_DEV
5f9a31d6 2770 | TTY_DRIVER_HARDWARE_BREAK;
e1eaea46
AC
2771 gsm_tty_driver->init_termios = tty_std_termios;
2772 /* Fixme */
2773 gsm_tty_driver->init_termios.c_lflag &= ~ECHO;
2774 tty_set_operations(gsm_tty_driver, &gsmtty_ops);
2775
2776 spin_lock_init(&gsm_mux_lock);
2777
2778 if (tty_register_driver(gsm_tty_driver)) {
2779 put_tty_driver(gsm_tty_driver);
2780 tty_unregister_ldisc(N_GSM0710);
5f9a31d6 2781 pr_err("gsm_init: tty registration failed.\n");
e1eaea46
AC
2782 return -EBUSY;
2783 }
5f9a31d6
AC
2784 pr_debug("gsm_init: loaded as %d,%d.\n",
2785 gsm_tty_driver->major, gsm_tty_driver->minor_start);
e1eaea46
AC
2786 return 0;
2787}
2788
2789static void __exit gsm_exit(void)
2790{
2791 int status = tty_unregister_ldisc(N_GSM0710);
2792 if (status != 0)
5f9a31d6
AC
2793 pr_err("n_gsm: can't unregister line discipline (err = %d)\n",
2794 status);
e1eaea46
AC
2795 tty_unregister_driver(gsm_tty_driver);
2796 put_tty_driver(gsm_tty_driver);
e1eaea46
AC
2797}
2798
2799module_init(gsm_init);
2800module_exit(gsm_exit);
2801
2802
2803MODULE_LICENSE("GPL");
2804MODULE_ALIAS_LDISC(N_GSM0710);
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