blob: be5e33814cb144ea7db78787342c6dda1e7e0a08 [file] [log] [blame]
Linus Torvalds1da177e2005-04-16 15:20:36 -07001/* $Id: cosa.c,v 1.31 2000/03/08 17:47:16 kas Exp $ */
2
3/*
4 * Copyright (C) 1995-1997 Jan "Yenya" Kasprzak <kas@fi.muni.cz>
5 *
6 * This program is free software; you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License as published by
8 * the Free Software Foundation; either version 2 of the License, or
9 * (at your option) any later version.
10 *
11 * This program is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 * GNU General Public License for more details.
15 *
16 * You should have received a copy of the GNU General Public License
17 * along with this program; if not, write to the Free Software
18 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
19 */
20
21/*
22 * The driver for the SRP and COSA synchronous serial cards.
23 *
24 * HARDWARE INFO
25 *
26 * Both cards are developed at the Institute of Computer Science,
27 * Masaryk University (http://www.ics.muni.cz/). The hardware is
28 * developed by Jiri Novotny <novotny@ics.muni.cz>. More information
29 * and the photo of both cards is available at
30 * http://www.pavoucek.cz/cosa.html. The card documentation, firmwares
31 * and other goods can be downloaded from ftp://ftp.ics.muni.cz/pub/cosa/.
32 * For Linux-specific utilities, see below in the "Software info" section.
33 * If you want to order the card, contact Jiri Novotny.
34 *
35 * The SRP (serial port?, the Czech word "srp" means "sickle") card
36 * is a 2-port intelligent (with its own 8-bit CPU) synchronous serial card
37 * with V.24 interfaces up to 80kb/s each.
38 *
39 * The COSA (communication serial adapter?, the Czech word "kosa" means
40 * "scythe") is a next-generation sync/async board with two interfaces
41 * - currently any of V.24, X.21, V.35 and V.36 can be selected.
42 * It has a 16-bit SAB80166 CPU and can do up to 10 Mb/s per channel.
43 * The 8-channels version is in development.
44 *
45 * Both types have downloadable firmware and communicate via ISA DMA.
46 * COSA can be also a bus-mastering device.
47 *
48 * SOFTWARE INFO
49 *
50 * The homepage of the Linux driver is at http://www.fi.muni.cz/~kas/cosa/.
51 * The CVS tree of Linux driver can be viewed there, as well as the
52 * firmware binaries and user-space utilities for downloading the firmware
53 * into the card and setting up the card.
54 *
55 * The Linux driver (unlike the present *BSD drivers :-) can work even
56 * for the COSA and SRP in one computer and allows each channel to work
57 * in one of the three modes (character device, Cisco HDLC, Sync PPP).
58 *
59 * AUTHOR
60 *
61 * The Linux driver was written by Jan "Yenya" Kasprzak <kas@fi.muni.cz>.
62 *
63 * You can mail me bugfixes and even success reports. I am especially
64 * interested in the SMP and/or muliti-channel success/failure reports
65 * (I wonder if I did the locking properly :-).
66 *
67 * THE AUTHOR USED THE FOLLOWING SOURCES WHEN PROGRAMMING THE DRIVER
68 *
69 * The COSA/SRP NetBSD driver by Zdenek Salvet and Ivos Cernohlavek
70 * The skeleton.c by Donald Becker
71 * The SDL Riscom/N2 driver by Mike Natale
72 * The Comtrol Hostess SV11 driver by Alan Cox
73 * The Sync PPP/Cisco HDLC layer (syncppp.c) ported to Linux by Alan Cox
74 */
75/*
76 * 5/25/1999 : Marcelo Tosatti <marcelo@conectiva.com.br>
77 * fixed a deadlock in cosa_sppp_open
78 */
79
80/* ---------- Headers, macros, data structures ---------- */
81
82#include <linux/config.h>
83#include <linux/module.h>
84#include <linux/kernel.h>
85#include <linux/slab.h>
86#include <linux/poll.h>
87#include <linux/fs.h>
Linus Torvalds1da177e2005-04-16 15:20:36 -070088#include <linux/interrupt.h>
89#include <linux/delay.h>
90#include <linux/errno.h>
91#include <linux/ioport.h>
92#include <linux/netdevice.h>
93#include <linux/spinlock.h>
94#include <linux/smp_lock.h>
95#include <linux/device.h>
96
97#undef COSA_SLOW_IO /* for testing purposes only */
98#undef REALLY_SLOW_IO
99
100#include <asm/io.h>
101#include <asm/dma.h>
102#include <asm/byteorder.h>
103
104#include <net/syncppp.h>
105#include "cosa.h"
106
107/* Maximum length of the identification string. */
108#define COSA_MAX_ID_STRING 128
109
110/* Maximum length of the channel name */
111#define COSA_MAX_NAME (sizeof("cosaXXXcXXX")+1)
112
113/* Per-channel data structure */
114
115struct channel_data {
116 void *if_ptr; /* General purpose pointer (used by SPPP) */
117 int usage; /* Usage count; >0 for chrdev, -1 for netdev */
118 int num; /* Number of the channel */
119 struct cosa_data *cosa; /* Pointer to the per-card structure */
120 int txsize; /* Size of transmitted data */
121 char *txbuf; /* Transmit buffer */
122 char name[COSA_MAX_NAME]; /* channel name */
123
124 /* The HW layer interface */
125 /* routine called from the RX interrupt */
126 char *(*setup_rx)(struct channel_data *channel, int size);
127 /* routine called when the RX is done (from the EOT interrupt) */
128 int (*rx_done)(struct channel_data *channel);
129 /* routine called when the TX is done (from the EOT interrupt) */
130 int (*tx_done)(struct channel_data *channel, int size);
131
132 /* Character device parts */
133 struct semaphore rsem, wsem;
134 char *rxdata;
135 int rxsize;
136 wait_queue_head_t txwaitq, rxwaitq;
137 int tx_status, rx_status;
138
139 /* SPPP/HDLC device parts */
140 struct ppp_device pppdev;
141 struct sk_buff *rx_skb, *tx_skb;
142 struct net_device_stats stats;
143};
144
145/* cosa->firmware_status bits */
146#define COSA_FW_RESET (1<<0) /* Is the ROM monitor active? */
147#define COSA_FW_DOWNLOAD (1<<1) /* Is the microcode downloaded? */
148#define COSA_FW_START (1<<2) /* Is the microcode running? */
149
150struct cosa_data {
151 int num; /* Card number */
152 char name[COSA_MAX_NAME]; /* Card name - e.g "cosa0" */
153 unsigned int datareg, statusreg; /* I/O ports */
154 unsigned short irq, dma; /* IRQ and DMA number */
155 unsigned short startaddr; /* Firmware start address */
156 unsigned short busmaster; /* Use busmastering? */
157 int nchannels; /* # of channels on this card */
158 int driver_status; /* For communicating with firmware */
159 int firmware_status; /* Downloaded, reseted, etc. */
160 long int rxbitmap, txbitmap; /* Bitmap of channels who are willing to send/receive data */
161 long int rxtx; /* RX or TX in progress? */
162 int enabled;
163 int usage; /* usage count */
164 int txchan, txsize, rxsize;
165 struct channel_data *rxchan;
166 char *bouncebuf;
167 char *txbuf, *rxbuf;
168 struct channel_data *chan;
169 spinlock_t lock; /* For exclusive operations on this structure */
170 char id_string[COSA_MAX_ID_STRING]; /* ROM monitor ID string */
171 char *type; /* card type */
172};
173
174/*
175 * Define this if you want all the possible ports to be autoprobed.
176 * It is here but it probably is not a good idea to use this.
177 */
178/* #define COSA_ISA_AUTOPROBE 1 */
179
180/*
181 * Character device major number. 117 was allocated for us.
182 * The value of 0 means to allocate a first free one.
183 */
184static int cosa_major = 117;
185
186/*
187 * Encoding of the minor numbers:
188 * The lowest CARD_MINOR_BITS bits means the channel on the single card,
189 * the highest bits means the card number.
190 */
191#define CARD_MINOR_BITS 4 /* How many bits in minor number are reserved
192 * for the single card */
193/*
194 * The following depends on CARD_MINOR_BITS. Unfortunately, the "MODULE_STRING"
195 * macro doesn't like anything other than the raw number as an argument :-(
196 */
197#define MAX_CARDS 16
198/* #define MAX_CARDS (1 << (8-CARD_MINOR_BITS)) */
199
200#define DRIVER_RX_READY 0x0001
201#define DRIVER_TX_READY 0x0002
202#define DRIVER_TXMAP_SHIFT 2
203#define DRIVER_TXMAP_MASK 0x0c /* FIXME: 0xfc for 8-channel version */
204
205/*
206 * for cosa->rxtx - indicates whether either transmit or receive is
207 * in progress. These values are mean number of the bit.
208 */
209#define TXBIT 0
210#define RXBIT 1
211#define IRQBIT 2
212
213#define COSA_MTU 2000 /* FIXME: I don't know this exactly */
214
215#undef DEBUG_DATA //1 /* Dump the data read or written to the channel */
216#undef DEBUG_IRQS //1 /* Print the message when the IRQ is received */
217#undef DEBUG_IO //1 /* Dump the I/O traffic */
218
219#define TX_TIMEOUT (5*HZ)
220
221/* Maybe the following should be allocated dynamically */
222static struct cosa_data cosa_cards[MAX_CARDS];
223static int nr_cards;
224
225#ifdef COSA_ISA_AUTOPROBE
226static int io[MAX_CARDS+1] = { 0x220, 0x228, 0x210, 0x218, 0, };
227/* NOTE: DMA is not autoprobed!!! */
228static int dma[MAX_CARDS+1] = { 1, 7, 1, 7, 1, 7, 1, 7, 0, };
229#else
230static int io[MAX_CARDS+1];
231static int dma[MAX_CARDS+1];
232#endif
233/* IRQ can be safely autoprobed */
234static int irq[MAX_CARDS+1] = { -1, -1, -1, -1, -1, -1, 0, };
235
236/* for class stuff*/
gregkh@suse.de56b22932005-03-23 10:01:41 -0800237static struct class *cosa_class;
Linus Torvalds1da177e2005-04-16 15:20:36 -0700238
239#ifdef MODULE
240module_param_array(io, int, NULL, 0);
241MODULE_PARM_DESC(io, "The I/O bases of the COSA or SRP cards");
242module_param_array(irq, int, NULL, 0);
243MODULE_PARM_DESC(irq, "The IRQ lines of the COSA or SRP cards");
244module_param_array(dma, int, NULL, 0);
245MODULE_PARM_DESC(dma, "The DMA channels of the COSA or SRP cards");
246
247MODULE_AUTHOR("Jan \"Yenya\" Kasprzak, <kas@fi.muni.cz>");
248MODULE_DESCRIPTION("Modular driver for the COSA or SRP synchronous card");
249MODULE_LICENSE("GPL");
250#endif
251
252/* I use this mainly for testing purposes */
253#ifdef COSA_SLOW_IO
254#define cosa_outb outb_p
255#define cosa_outw outw_p
256#define cosa_inb inb_p
257#define cosa_inw inw_p
258#else
259#define cosa_outb outb
260#define cosa_outw outw
261#define cosa_inb inb
262#define cosa_inw inw
263#endif
264
265#define is_8bit(cosa) (!(cosa->datareg & 0x08))
266
267#define cosa_getstatus(cosa) (cosa_inb(cosa->statusreg))
268#define cosa_putstatus(cosa, stat) (cosa_outb(stat, cosa->statusreg))
269#define cosa_getdata16(cosa) (cosa_inw(cosa->datareg))
270#define cosa_getdata8(cosa) (cosa_inb(cosa->datareg))
271#define cosa_putdata16(cosa, dt) (cosa_outw(dt, cosa->datareg))
272#define cosa_putdata8(cosa, dt) (cosa_outb(dt, cosa->datareg))
273
274/* Initialization stuff */
275static int cosa_probe(int ioaddr, int irq, int dma);
276
277/* HW interface */
278static void cosa_enable_rx(struct channel_data *chan);
279static void cosa_disable_rx(struct channel_data *chan);
280static int cosa_start_tx(struct channel_data *channel, char *buf, int size);
281static void cosa_kick(struct cosa_data *cosa);
282static int cosa_dma_able(struct channel_data *chan, char *buf, int data);
283
284/* SPPP/HDLC stuff */
285static void sppp_channel_init(struct channel_data *chan);
286static void sppp_channel_delete(struct channel_data *chan);
287static int cosa_sppp_open(struct net_device *d);
288static int cosa_sppp_close(struct net_device *d);
289static void cosa_sppp_timeout(struct net_device *d);
290static int cosa_sppp_tx(struct sk_buff *skb, struct net_device *d);
291static char *sppp_setup_rx(struct channel_data *channel, int size);
292static int sppp_rx_done(struct channel_data *channel);
293static int sppp_tx_done(struct channel_data *channel, int size);
294static int cosa_sppp_ioctl(struct net_device *dev, struct ifreq *ifr, int cmd);
295static struct net_device_stats *cosa_net_stats(struct net_device *dev);
296
297/* Character device */
298static void chardev_channel_init(struct channel_data *chan);
299static char *chrdev_setup_rx(struct channel_data *channel, int size);
300static int chrdev_rx_done(struct channel_data *channel);
301static int chrdev_tx_done(struct channel_data *channel, int size);
302static ssize_t cosa_read(struct file *file,
303 char __user *buf, size_t count, loff_t *ppos);
304static ssize_t cosa_write(struct file *file,
305 const char __user *buf, size_t count, loff_t *ppos);
306static unsigned int cosa_poll(struct file *file, poll_table *poll);
307static int cosa_open(struct inode *inode, struct file *file);
308static int cosa_release(struct inode *inode, struct file *file);
309static int cosa_chardev_ioctl(struct inode *inode, struct file *file,
310 unsigned int cmd, unsigned long arg);
311#ifdef COSA_FASYNC_WORKING
312static int cosa_fasync(struct inode *inode, struct file *file, int on);
313#endif
314
315static struct file_operations cosa_fops = {
316 .owner = THIS_MODULE,
317 .llseek = no_llseek,
318 .read = cosa_read,
319 .write = cosa_write,
320 .poll = cosa_poll,
321 .ioctl = cosa_chardev_ioctl,
322 .open = cosa_open,
323 .release = cosa_release,
324#ifdef COSA_FASYNC_WORKING
325 .fasync = cosa_fasync,
326#endif
327};
328
329/* Ioctls */
330static int cosa_start(struct cosa_data *cosa, int address);
331static int cosa_reset(struct cosa_data *cosa);
332static int cosa_download(struct cosa_data *cosa, void __user *a);
333static int cosa_readmem(struct cosa_data *cosa, void __user *a);
334
335/* COSA/SRP ROM monitor */
336static int download(struct cosa_data *cosa, const char __user *data, int addr, int len);
337static int startmicrocode(struct cosa_data *cosa, int address);
338static int readmem(struct cosa_data *cosa, char __user *data, int addr, int len);
339static int cosa_reset_and_read_id(struct cosa_data *cosa, char *id);
340
341/* Auxilliary functions */
342static int get_wait_data(struct cosa_data *cosa);
343static int put_wait_data(struct cosa_data *cosa, int data);
344static int puthexnumber(struct cosa_data *cosa, int number);
345static void put_driver_status(struct cosa_data *cosa);
346static void put_driver_status_nolock(struct cosa_data *cosa);
347
348/* Interrupt handling */
349static irqreturn_t cosa_interrupt(int irq, void *cosa, struct pt_regs *regs);
350
351/* I/O ops debugging */
352#ifdef DEBUG_IO
353static void debug_data_in(struct cosa_data *cosa, int data);
354static void debug_data_out(struct cosa_data *cosa, int data);
355static void debug_data_cmd(struct cosa_data *cosa, int data);
356static void debug_status_in(struct cosa_data *cosa, int status);
357static void debug_status_out(struct cosa_data *cosa, int status);
358#endif
359
360
361/* ---------- Initialization stuff ---------- */
362
363static int __init cosa_init(void)
364{
365 int i, err = 0;
366
367 printk(KERN_INFO "cosa v1.08 (c) 1997-2000 Jan Kasprzak <kas@fi.muni.cz>\n");
368#ifdef CONFIG_SMP
369 printk(KERN_INFO "cosa: SMP found. Please mail any success/failure reports to the author.\n");
370#endif
371 if (cosa_major > 0) {
372 if (register_chrdev(cosa_major, "cosa", &cosa_fops)) {
373 printk(KERN_WARNING "cosa: unable to get major %d\n",
374 cosa_major);
375 err = -EIO;
376 goto out;
377 }
378 } else {
379 if (!(cosa_major=register_chrdev(0, "cosa", &cosa_fops))) {
380 printk(KERN_WARNING "cosa: unable to register chardev\n");
381 err = -EIO;
382 goto out;
383 }
384 }
385 for (i=0; i<MAX_CARDS; i++)
386 cosa_cards[i].num = -1;
387 for (i=0; io[i] != 0 && i < MAX_CARDS; i++)
388 cosa_probe(io[i], irq[i], dma[i]);
389 if (!nr_cards) {
390 printk(KERN_WARNING "cosa: no devices found.\n");
391 unregister_chrdev(cosa_major, "cosa");
392 err = -ENODEV;
393 goto out;
394 }
gregkh@suse.de56b22932005-03-23 10:01:41 -0800395 cosa_class = class_create(THIS_MODULE, "cosa");
Linus Torvalds1da177e2005-04-16 15:20:36 -0700396 if (IS_ERR(cosa_class)) {
397 err = PTR_ERR(cosa_class);
398 goto out_chrdev;
399 }
400 for (i=0; i<nr_cards; i++) {
Greg Kroah-Hartman53f46542005-10-27 22:25:43 -0700401 class_device_create(cosa_class, NULL, MKDEV(cosa_major, i),
Linus Torvalds1da177e2005-04-16 15:20:36 -0700402 NULL, "cosa%d", i);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700403 }
404 err = 0;
405 goto out;
406
407out_chrdev:
408 unregister_chrdev(cosa_major, "cosa");
409out:
410 return err;
411}
412module_init(cosa_init);
413
414static void __exit cosa_exit(void)
415{
416 struct cosa_data *cosa;
417 int i;
418 printk(KERN_INFO "Unloading the cosa module\n");
419
Greg Kroah-Hartman8ab5e4c2005-06-20 21:15:16 -0700420 for (i=0; i<nr_cards; i++)
gregkh@suse.de56b22932005-03-23 10:01:41 -0800421 class_device_destroy(cosa_class, MKDEV(cosa_major, i));
gregkh@suse.de56b22932005-03-23 10:01:41 -0800422 class_destroy(cosa_class);
Linus Torvalds1da177e2005-04-16 15:20:36 -0700423 for (cosa=cosa_cards; nr_cards--; cosa++) {
424 /* Clean up the per-channel data */
425 for (i=0; i<cosa->nchannels; i++) {
426 /* Chardev driver has no alloc'd per-channel data */
427 sppp_channel_delete(cosa->chan+i);
428 }
429 /* Clean up the per-card data */
430 kfree(cosa->chan);
431 kfree(cosa->bouncebuf);
432 free_irq(cosa->irq, cosa);
433 free_dma(cosa->dma);
434 release_region(cosa->datareg,is_8bit(cosa)?2:4);
435 }
436 unregister_chrdev(cosa_major, "cosa");
437}
438module_exit(cosa_exit);
439
440/*
441 * This function should register all the net devices needed for the
442 * single channel.
443 */
444static __inline__ void channel_init(struct channel_data *chan)
445{
446 sprintf(chan->name, "cosa%dc%d", chan->cosa->num, chan->num);
447
448 /* Initialize the chardev data structures */
449 chardev_channel_init(chan);
450
451 /* Register the sppp interface */
452 sppp_channel_init(chan);
453}
454
455static int cosa_probe(int base, int irq, int dma)
456{
457 struct cosa_data *cosa = cosa_cards+nr_cards;
458 int i, err = 0;
459
460 memset(cosa, 0, sizeof(struct cosa_data));
461
462 /* Checking validity of parameters: */
463 /* IRQ should be 2-7 or 10-15; negative IRQ means autoprobe */
464 if ((irq >= 0 && irq < 2) || irq > 15 || (irq < 10 && irq > 7)) {
465 printk (KERN_INFO "cosa_probe: invalid IRQ %d\n", irq);
466 return -1;
467 }
468 /* I/O address should be between 0x100 and 0x3ff and should be
469 * multiple of 8. */
470 if (base < 0x100 || base > 0x3ff || base & 0x7) {
471 printk (KERN_INFO "cosa_probe: invalid I/O address 0x%x\n",
472 base);
473 return -1;
474 }
475 /* DMA should be 0,1 or 3-7 */
476 if (dma < 0 || dma == 4 || dma > 7) {
477 printk (KERN_INFO "cosa_probe: invalid DMA %d\n", dma);
478 return -1;
479 }
480 /* and finally, on 16-bit COSA DMA should be 4-7 and
481 * I/O base should not be multiple of 0x10 */
482 if (((base & 0x8) && dma < 4) || (!(base & 0x8) && dma > 3)) {
483 printk (KERN_INFO "cosa_probe: 8/16 bit base and DMA mismatch"
484 " (base=0x%x, dma=%d)\n", base, dma);
485 return -1;
486 }
487
488 cosa->dma = dma;
489 cosa->datareg = base;
490 cosa->statusreg = is_8bit(cosa)?base+1:base+2;
491 spin_lock_init(&cosa->lock);
492
493 if (!request_region(base, is_8bit(cosa)?2:4,"cosa"))
494 return -1;
495
496 if (cosa_reset_and_read_id(cosa, cosa->id_string) < 0) {
497 printk(KERN_DEBUG "cosa: probe at 0x%x failed.\n", base);
498 err = -1;
499 goto err_out;
500 }
501
502 /* Test the validity of identification string */
503 if (!strncmp(cosa->id_string, "SRP", 3))
504 cosa->type = "srp";
505 else if (!strncmp(cosa->id_string, "COSA", 4))
506 cosa->type = is_8bit(cosa)? "cosa8": "cosa16";
507 else {
508/* Print a warning only if we are not autoprobing */
509#ifndef COSA_ISA_AUTOPROBE
510 printk(KERN_INFO "cosa: valid signature not found at 0x%x.\n",
511 base);
512#endif
513 err = -1;
514 goto err_out;
515 }
516 /* Update the name of the region now we know the type of card */
517 release_region(base, is_8bit(cosa)?2:4);
518 if (!request_region(base, is_8bit(cosa)?2:4, cosa->type)) {
519 printk(KERN_DEBUG "cosa: changing name at 0x%x failed.\n", base);
520 return -1;
521 }
522
523 /* Now do IRQ autoprobe */
524 if (irq < 0) {
525 unsigned long irqs;
526/* printk(KERN_INFO "IRQ autoprobe\n"); */
527 irqs = probe_irq_on();
528 /*
529 * Enable interrupt on tx buffer empty (it sure is)
530 * really sure ?
531 * FIXME: When this code is not used as module, we should
532 * probably call udelay() instead of the interruptible sleep.
533 */
534 set_current_state(TASK_INTERRUPTIBLE);
535 cosa_putstatus(cosa, SR_TX_INT_ENA);
536 schedule_timeout(30);
537 irq = probe_irq_off(irqs);
538 /* Disable all IRQs from the card */
539 cosa_putstatus(cosa, 0);
540 /* Empty the received data register */
541 cosa_getdata8(cosa);
542
543 if (irq < 0) {
544 printk (KERN_INFO "cosa IRQ autoprobe: multiple interrupts obtained (%d, board at 0x%x)\n",
545 irq, cosa->datareg);
546 err = -1;
547 goto err_out;
548 }
549 if (irq == 0) {
550 printk (KERN_INFO "cosa IRQ autoprobe: no interrupt obtained (board at 0x%x)\n",
551 cosa->datareg);
552 /* return -1; */
553 }
554 }
555
556 cosa->irq = irq;
557 cosa->num = nr_cards;
558 cosa->usage = 0;
559 cosa->nchannels = 2; /* FIXME: how to determine this? */
560
561 if (request_irq(cosa->irq, cosa_interrupt, 0, cosa->type, cosa)) {
562 err = -1;
563 goto err_out;
564 }
565 if (request_dma(cosa->dma, cosa->type)) {
566 err = -1;
567 goto err_out1;
568 }
569
570 cosa->bouncebuf = kmalloc(COSA_MTU, GFP_KERNEL|GFP_DMA);
571 if (!cosa->bouncebuf) {
572 err = -ENOMEM;
573 goto err_out2;
574 }
575 sprintf(cosa->name, "cosa%d", cosa->num);
576
577 /* Initialize the per-channel data */
578 cosa->chan = kmalloc(sizeof(struct channel_data)*cosa->nchannels,
579 GFP_KERNEL);
580 if (!cosa->chan) {
581 err = -ENOMEM;
582 goto err_out3;
583 }
584 memset(cosa->chan, 0, sizeof(struct channel_data)*cosa->nchannels);
585 for (i=0; i<cosa->nchannels; i++) {
586 cosa->chan[i].cosa = cosa;
587 cosa->chan[i].num = i;
588 channel_init(cosa->chan+i);
589 }
590
591 printk (KERN_INFO "cosa%d: %s (%s at 0x%x irq %d dma %d), %d channels\n",
592 cosa->num, cosa->id_string, cosa->type,
593 cosa->datareg, cosa->irq, cosa->dma, cosa->nchannels);
594
595 return nr_cards++;
596err_out3:
597 kfree(cosa->bouncebuf);
598err_out2:
599 free_dma(cosa->dma);
600err_out1:
601 free_irq(cosa->irq, cosa);
602err_out:
603 release_region(cosa->datareg,is_8bit(cosa)?2:4);
604 printk(KERN_NOTICE "cosa%d: allocating resources failed\n",
605 cosa->num);
606 return err;
607}
608
609
610/*---------- SPPP/HDLC netdevice ---------- */
611
612static void cosa_setup(struct net_device *d)
613{
614 d->open = cosa_sppp_open;
615 d->stop = cosa_sppp_close;
616 d->hard_start_xmit = cosa_sppp_tx;
617 d->do_ioctl = cosa_sppp_ioctl;
618 d->get_stats = cosa_net_stats;
619 d->tx_timeout = cosa_sppp_timeout;
620 d->watchdog_timeo = TX_TIMEOUT;
621}
622
623static void sppp_channel_init(struct channel_data *chan)
624{
625 struct net_device *d;
626 chan->if_ptr = &chan->pppdev;
627 d = alloc_netdev(0, chan->name, cosa_setup);
628 if (!d) {
629 printk(KERN_WARNING "%s: alloc_netdev failed.\n", chan->name);
630 return;
631 }
632 chan->pppdev.dev = d;
633 d->base_addr = chan->cosa->datareg;
634 d->irq = chan->cosa->irq;
635 d->dma = chan->cosa->dma;
636 d->priv = chan;
637 sppp_attach(&chan->pppdev);
638 if (register_netdev(d)) {
639 printk(KERN_WARNING "%s: register_netdev failed.\n", d->name);
640 sppp_detach(d);
641 free_netdev(d);
642 chan->pppdev.dev = NULL;
643 return;
644 }
645}
646
647static void sppp_channel_delete(struct channel_data *chan)
648{
649 unregister_netdev(chan->pppdev.dev);
650 sppp_detach(chan->pppdev.dev);
651 free_netdev(chan->pppdev.dev);
652 chan->pppdev.dev = NULL;
653}
654
655static int cosa_sppp_open(struct net_device *d)
656{
657 struct channel_data *chan = d->priv;
658 int err;
659 unsigned long flags;
660
661 if (!(chan->cosa->firmware_status & COSA_FW_START)) {
662 printk(KERN_NOTICE "%s: start the firmware first (status %d)\n",
663 chan->cosa->name, chan->cosa->firmware_status);
664 return -EPERM;
665 }
666 spin_lock_irqsave(&chan->cosa->lock, flags);
667 if (chan->usage != 0) {
668 printk(KERN_WARNING "%s: sppp_open called with usage count %d\n",
669 chan->name, chan->usage);
670 spin_unlock_irqrestore(&chan->cosa->lock, flags);
671 return -EBUSY;
672 }
673 chan->setup_rx = sppp_setup_rx;
674 chan->tx_done = sppp_tx_done;
675 chan->rx_done = sppp_rx_done;
676 chan->usage=-1;
677 chan->cosa->usage++;
678 spin_unlock_irqrestore(&chan->cosa->lock, flags);
679
680 err = sppp_open(d);
681 if (err) {
682 spin_lock_irqsave(&chan->cosa->lock, flags);
683 chan->usage=0;
684 chan->cosa->usage--;
685
686 spin_unlock_irqrestore(&chan->cosa->lock, flags);
687 return err;
688 }
689
690 netif_start_queue(d);
691 cosa_enable_rx(chan);
692 return 0;
693}
694
695static int cosa_sppp_tx(struct sk_buff *skb, struct net_device *dev)
696{
697 struct channel_data *chan = dev->priv;
698
699 netif_stop_queue(dev);
700
701 chan->tx_skb = skb;
702 cosa_start_tx(chan, skb->data, skb->len);
703 return 0;
704}
705
706static void cosa_sppp_timeout(struct net_device *dev)
707{
708 struct channel_data *chan = dev->priv;
709
710 if (test_bit(RXBIT, &chan->cosa->rxtx)) {
711 chan->stats.rx_errors++;
712 chan->stats.rx_missed_errors++;
713 } else {
714 chan->stats.tx_errors++;
715 chan->stats.tx_aborted_errors++;
716 }
717 cosa_kick(chan->cosa);
718 if (chan->tx_skb) {
719 dev_kfree_skb(chan->tx_skb);
720 chan->tx_skb = NULL;
721 }
722 netif_wake_queue(dev);
723}
724
725static int cosa_sppp_close(struct net_device *d)
726{
727 struct channel_data *chan = d->priv;
728 unsigned long flags;
729
730 netif_stop_queue(d);
731 sppp_close(d);
732 cosa_disable_rx(chan);
733 spin_lock_irqsave(&chan->cosa->lock, flags);
734 if (chan->rx_skb) {
735 kfree_skb(chan->rx_skb);
736 chan->rx_skb = NULL;
737 }
738 if (chan->tx_skb) {
739 kfree_skb(chan->tx_skb);
740 chan->tx_skb = NULL;
741 }
742 chan->usage=0;
743 chan->cosa->usage--;
744 spin_unlock_irqrestore(&chan->cosa->lock, flags);
745 return 0;
746}
747
748static char *sppp_setup_rx(struct channel_data *chan, int size)
749{
750 /*
751 * We can safely fall back to non-dma-able memory, because we have
752 * the cosa->bouncebuf pre-allocated.
753 */
754 if (chan->rx_skb)
755 kfree_skb(chan->rx_skb);
756 chan->rx_skb = dev_alloc_skb(size);
757 if (chan->rx_skb == NULL) {
758 printk(KERN_NOTICE "%s: Memory squeeze, dropping packet\n",
759 chan->name);
760 chan->stats.rx_dropped++;
761 return NULL;
762 }
763 chan->pppdev.dev->trans_start = jiffies;
764 return skb_put(chan->rx_skb, size);
765}
766
767static int sppp_rx_done(struct channel_data *chan)
768{
769 if (!chan->rx_skb) {
770 printk(KERN_WARNING "%s: rx_done with empty skb!\n",
771 chan->name);
772 chan->stats.rx_errors++;
773 chan->stats.rx_frame_errors++;
774 return 0;
775 }
776 chan->rx_skb->protocol = htons(ETH_P_WAN_PPP);
777 chan->rx_skb->dev = chan->pppdev.dev;
778 chan->rx_skb->mac.raw = chan->rx_skb->data;
779 chan->stats.rx_packets++;
780 chan->stats.rx_bytes += chan->cosa->rxsize;
781 netif_rx(chan->rx_skb);
782 chan->rx_skb = NULL;
783 chan->pppdev.dev->last_rx = jiffies;
784 return 0;
785}
786
787/* ARGSUSED */
788static int sppp_tx_done(struct channel_data *chan, int size)
789{
790 if (!chan->tx_skb) {
791 printk(KERN_WARNING "%s: tx_done with empty skb!\n",
792 chan->name);
793 chan->stats.tx_errors++;
794 chan->stats.tx_aborted_errors++;
795 return 1;
796 }
797 dev_kfree_skb_irq(chan->tx_skb);
798 chan->tx_skb = NULL;
799 chan->stats.tx_packets++;
800 chan->stats.tx_bytes += size;
801 netif_wake_queue(chan->pppdev.dev);
802 return 1;
803}
804
805static struct net_device_stats *cosa_net_stats(struct net_device *dev)
806{
807 struct channel_data *chan = dev->priv;
808 return &chan->stats;
809}
810
811
812/*---------- Character device ---------- */
813
814static void chardev_channel_init(struct channel_data *chan)
815{
816 init_MUTEX(&chan->rsem);
817 init_MUTEX(&chan->wsem);
818}
819
820static ssize_t cosa_read(struct file *file,
821 char __user *buf, size_t count, loff_t *ppos)
822{
823 DECLARE_WAITQUEUE(wait, current);
824 unsigned long flags;
825 struct channel_data *chan = file->private_data;
826 struct cosa_data *cosa = chan->cosa;
827 char *kbuf;
828
829 if (!(cosa->firmware_status & COSA_FW_START)) {
830 printk(KERN_NOTICE "%s: start the firmware first (status %d)\n",
831 cosa->name, cosa->firmware_status);
832 return -EPERM;
833 }
834 if (down_interruptible(&chan->rsem))
835 return -ERESTARTSYS;
836
837 if ((chan->rxdata = kmalloc(COSA_MTU, GFP_DMA|GFP_KERNEL)) == NULL) {
838 printk(KERN_INFO "%s: cosa_read() - OOM\n", cosa->name);
839 up(&chan->rsem);
840 return -ENOMEM;
841 }
842
843 chan->rx_status = 0;
844 cosa_enable_rx(chan);
845 spin_lock_irqsave(&cosa->lock, flags);
846 add_wait_queue(&chan->rxwaitq, &wait);
847 while(!chan->rx_status) {
848 current->state = TASK_INTERRUPTIBLE;
849 spin_unlock_irqrestore(&cosa->lock, flags);
850 schedule();
851 spin_lock_irqsave(&cosa->lock, flags);
852 if (signal_pending(current) && chan->rx_status == 0) {
853 chan->rx_status = 1;
854 remove_wait_queue(&chan->rxwaitq, &wait);
855 current->state = TASK_RUNNING;
856 spin_unlock_irqrestore(&cosa->lock, flags);
857 up(&chan->rsem);
858 return -ERESTARTSYS;
859 }
860 }
861 remove_wait_queue(&chan->rxwaitq, &wait);
862 current->state = TASK_RUNNING;
863 kbuf = chan->rxdata;
864 count = chan->rxsize;
865 spin_unlock_irqrestore(&cosa->lock, flags);
866 up(&chan->rsem);
867
868 if (copy_to_user(buf, kbuf, count)) {
869 kfree(kbuf);
870 return -EFAULT;
871 }
872 kfree(kbuf);
873 return count;
874}
875
876static char *chrdev_setup_rx(struct channel_data *chan, int size)
877{
878 /* Expect size <= COSA_MTU */
879 chan->rxsize = size;
880 return chan->rxdata;
881}
882
883static int chrdev_rx_done(struct channel_data *chan)
884{
885 if (chan->rx_status) { /* Reader has died */
886 kfree(chan->rxdata);
887 up(&chan->wsem);
888 }
889 chan->rx_status = 1;
890 wake_up_interruptible(&chan->rxwaitq);
891 return 1;
892}
893
894
895static ssize_t cosa_write(struct file *file,
896 const char __user *buf, size_t count, loff_t *ppos)
897{
898 DECLARE_WAITQUEUE(wait, current);
899 struct channel_data *chan = file->private_data;
900 struct cosa_data *cosa = chan->cosa;
901 unsigned long flags;
902 char *kbuf;
903
904 if (!(cosa->firmware_status & COSA_FW_START)) {
905 printk(KERN_NOTICE "%s: start the firmware first (status %d)\n",
906 cosa->name, cosa->firmware_status);
907 return -EPERM;
908 }
909 if (down_interruptible(&chan->wsem))
910 return -ERESTARTSYS;
911
912 if (count > COSA_MTU)
913 count = COSA_MTU;
914
915 /* Allocate the buffer */
916 if ((kbuf = kmalloc(count, GFP_KERNEL|GFP_DMA)) == NULL) {
917 printk(KERN_NOTICE "%s: cosa_write() OOM - dropping packet\n",
918 cosa->name);
919 up(&chan->wsem);
920 return -ENOMEM;
921 }
922 if (copy_from_user(kbuf, buf, count)) {
923 up(&chan->wsem);
924 kfree(kbuf);
925 return -EFAULT;
926 }
927 chan->tx_status=0;
928 cosa_start_tx(chan, kbuf, count);
929
930 spin_lock_irqsave(&cosa->lock, flags);
931 add_wait_queue(&chan->txwaitq, &wait);
932 while(!chan->tx_status) {
933 current->state = TASK_INTERRUPTIBLE;
934 spin_unlock_irqrestore(&cosa->lock, flags);
935 schedule();
936 spin_lock_irqsave(&cosa->lock, flags);
937 if (signal_pending(current) && chan->tx_status == 0) {
938 chan->tx_status = 1;
939 remove_wait_queue(&chan->txwaitq, &wait);
940 current->state = TASK_RUNNING;
941 chan->tx_status = 1;
942 spin_unlock_irqrestore(&cosa->lock, flags);
943 return -ERESTARTSYS;
944 }
945 }
946 remove_wait_queue(&chan->txwaitq, &wait);
947 current->state = TASK_RUNNING;
948 up(&chan->wsem);
949 spin_unlock_irqrestore(&cosa->lock, flags);
950 kfree(kbuf);
951 return count;
952}
953
954static int chrdev_tx_done(struct channel_data *chan, int size)
955{
956 if (chan->tx_status) { /* Writer was interrupted */
957 kfree(chan->txbuf);
958 up(&chan->wsem);
959 }
960 chan->tx_status = 1;
961 wake_up_interruptible(&chan->txwaitq);
962 return 1;
963}
964
965static unsigned int cosa_poll(struct file *file, poll_table *poll)
966{
967 printk(KERN_INFO "cosa_poll is here\n");
968 return 0;
969}
970
971static int cosa_open(struct inode *inode, struct file *file)
972{
973 struct cosa_data *cosa;
974 struct channel_data *chan;
975 unsigned long flags;
976 int n;
977
978 if ((n=iminor(file->f_dentry->d_inode)>>CARD_MINOR_BITS)
979 >= nr_cards)
980 return -ENODEV;
981 cosa = cosa_cards+n;
982
983 if ((n=iminor(file->f_dentry->d_inode)
984 & ((1<<CARD_MINOR_BITS)-1)) >= cosa->nchannels)
985 return -ENODEV;
986 chan = cosa->chan + n;
987
988 file->private_data = chan;
989
990 spin_lock_irqsave(&cosa->lock, flags);
991
992 if (chan->usage < 0) { /* in netdev mode */
993 spin_unlock_irqrestore(&cosa->lock, flags);
994 return -EBUSY;
995 }
996 cosa->usage++;
997 chan->usage++;
998
999 chan->tx_done = chrdev_tx_done;
1000 chan->setup_rx = chrdev_setup_rx;
1001 chan->rx_done = chrdev_rx_done;
1002 spin_unlock_irqrestore(&cosa->lock, flags);
1003 return 0;
1004}
1005
1006static int cosa_release(struct inode *inode, struct file *file)
1007{
1008 struct channel_data *channel = file->private_data;
1009 struct cosa_data *cosa;
1010 unsigned long flags;
1011
1012 cosa = channel->cosa;
1013 spin_lock_irqsave(&cosa->lock, flags);
1014 cosa->usage--;
1015 channel->usage--;
1016 spin_unlock_irqrestore(&cosa->lock, flags);
1017 return 0;
1018}
1019
1020#ifdef COSA_FASYNC_WORKING
1021static struct fasync_struct *fasync[256] = { NULL, };
1022
1023/* To be done ... */
1024static int cosa_fasync(struct inode *inode, struct file *file, int on)
1025{
1026 int port = iminor(inode);
1027 int rv = fasync_helper(inode, file, on, &fasync[port]);
1028 return rv < 0 ? rv : 0;
1029}
1030#endif
1031
1032
1033/* ---------- Ioctls ---------- */
1034
1035/*
1036 * Ioctl subroutines can safely be made inline, because they are called
1037 * only from cosa_ioctl().
1038 */
1039static inline int cosa_reset(struct cosa_data *cosa)
1040{
1041 char idstring[COSA_MAX_ID_STRING];
1042 if (cosa->usage > 1)
1043 printk(KERN_INFO "cosa%d: WARNING: reset requested with cosa->usage > 1 (%d). Odd things may happen.\n",
1044 cosa->num, cosa->usage);
1045 cosa->firmware_status &= ~(COSA_FW_RESET|COSA_FW_START);
1046 if (cosa_reset_and_read_id(cosa, idstring) < 0) {
1047 printk(KERN_NOTICE "cosa%d: reset failed\n", cosa->num);
1048 return -EIO;
1049 }
1050 printk(KERN_INFO "cosa%d: resetting device: %s\n", cosa->num,
1051 idstring);
1052 cosa->firmware_status |= COSA_FW_RESET;
1053 return 0;
1054}
1055
1056/* High-level function to download data into COSA memory. Calls download() */
1057static inline int cosa_download(struct cosa_data *cosa, void __user *arg)
1058{
1059 struct cosa_download d;
1060 int i;
1061
1062 if (cosa->usage > 1)
1063 printk(KERN_INFO "%s: WARNING: download of microcode requested with cosa->usage > 1 (%d). Odd things may happen.\n",
1064 cosa->name, cosa->usage);
1065 if (!(cosa->firmware_status & COSA_FW_RESET)) {
1066 printk(KERN_NOTICE "%s: reset the card first (status %d).\n",
1067 cosa->name, cosa->firmware_status);
1068 return -EPERM;
1069 }
1070
1071 if (copy_from_user(&d, arg, sizeof(d)))
1072 return -EFAULT;
1073
1074 if (d.addr < 0 || d.addr > COSA_MAX_FIRMWARE_SIZE)
1075 return -EINVAL;
1076 if (d.len < 0 || d.len > COSA_MAX_FIRMWARE_SIZE)
1077 return -EINVAL;
1078
1079
1080 /* If something fails, force the user to reset the card */
1081 cosa->firmware_status &= ~(COSA_FW_RESET|COSA_FW_DOWNLOAD);
1082
1083 i = download(cosa, d.code, d.len, d.addr);
1084 if (i < 0) {
1085 printk(KERN_NOTICE "cosa%d: microcode download failed: %d\n",
1086 cosa->num, i);
1087 return -EIO;
1088 }
1089 printk(KERN_INFO "cosa%d: downloading microcode - 0x%04x bytes at 0x%04x\n",
1090 cosa->num, d.len, d.addr);
1091 cosa->firmware_status |= COSA_FW_RESET|COSA_FW_DOWNLOAD;
1092 return 0;
1093}
1094
1095/* High-level function to read COSA memory. Calls readmem() */
1096static inline int cosa_readmem(struct cosa_data *cosa, void __user *arg)
1097{
1098 struct cosa_download d;
1099 int i;
1100
1101 if (cosa->usage > 1)
1102 printk(KERN_INFO "cosa%d: WARNING: readmem requested with "
1103 "cosa->usage > 1 (%d). Odd things may happen.\n",
1104 cosa->num, cosa->usage);
1105 if (!(cosa->firmware_status & COSA_FW_RESET)) {
1106 printk(KERN_NOTICE "%s: reset the card first (status %d).\n",
1107 cosa->name, cosa->firmware_status);
1108 return -EPERM;
1109 }
1110
1111 if (copy_from_user(&d, arg, sizeof(d)))
1112 return -EFAULT;
1113
1114 /* If something fails, force the user to reset the card */
1115 cosa->firmware_status &= ~COSA_FW_RESET;
1116
1117 i = readmem(cosa, d.code, d.len, d.addr);
1118 if (i < 0) {
1119 printk(KERN_NOTICE "cosa%d: reading memory failed: %d\n",
1120 cosa->num, i);
1121 return -EIO;
1122 }
1123 printk(KERN_INFO "cosa%d: reading card memory - 0x%04x bytes at 0x%04x\n",
1124 cosa->num, d.len, d.addr);
1125 cosa->firmware_status |= COSA_FW_RESET;
1126 return 0;
1127}
1128
1129/* High-level function to start microcode. Calls startmicrocode(). */
1130static inline int cosa_start(struct cosa_data *cosa, int address)
1131{
1132 int i;
1133
1134 if (cosa->usage > 1)
1135 printk(KERN_INFO "cosa%d: WARNING: start microcode requested with cosa->usage > 1 (%d). Odd things may happen.\n",
1136 cosa->num, cosa->usage);
1137
1138 if ((cosa->firmware_status & (COSA_FW_RESET|COSA_FW_DOWNLOAD))
1139 != (COSA_FW_RESET|COSA_FW_DOWNLOAD)) {
1140 printk(KERN_NOTICE "%s: download the microcode and/or reset the card first (status %d).\n",
1141 cosa->name, cosa->firmware_status);
1142 return -EPERM;
1143 }
1144 cosa->firmware_status &= ~COSA_FW_RESET;
1145 if ((i=startmicrocode(cosa, address)) < 0) {
1146 printk(KERN_NOTICE "cosa%d: start microcode at 0x%04x failed: %d\n",
1147 cosa->num, address, i);
1148 return -EIO;
1149 }
1150 printk(KERN_INFO "cosa%d: starting microcode at 0x%04x\n",
1151 cosa->num, address);
1152 cosa->startaddr = address;
1153 cosa->firmware_status |= COSA_FW_START;
1154 return 0;
1155}
1156
1157/* Buffer of size at least COSA_MAX_ID_STRING is expected */
1158static inline int cosa_getidstr(struct cosa_data *cosa, char __user *string)
1159{
1160 int l = strlen(cosa->id_string)+1;
1161 if (copy_to_user(string, cosa->id_string, l))
1162 return -EFAULT;
1163 return l;
1164}
1165
1166/* Buffer of size at least COSA_MAX_ID_STRING is expected */
1167static inline int cosa_gettype(struct cosa_data *cosa, char __user *string)
1168{
1169 int l = strlen(cosa->type)+1;
1170 if (copy_to_user(string, cosa->type, l))
1171 return -EFAULT;
1172 return l;
1173}
1174
1175static int cosa_ioctl_common(struct cosa_data *cosa,
1176 struct channel_data *channel, unsigned int cmd, unsigned long arg)
1177{
1178 void __user *argp = (void __user *)arg;
1179 switch(cmd) {
1180 case COSAIORSET: /* Reset the device */
1181 if (!capable(CAP_NET_ADMIN))
1182 return -EACCES;
1183 return cosa_reset(cosa);
1184 case COSAIOSTRT: /* Start the firmware */
1185 if (!capable(CAP_SYS_RAWIO))
1186 return -EACCES;
1187 return cosa_start(cosa, arg);
1188 case COSAIODOWNLD: /* Download the firmware */
1189 if (!capable(CAP_SYS_RAWIO))
1190 return -EACCES;
1191
1192 return cosa_download(cosa, argp);
1193 case COSAIORMEM:
1194 if (!capable(CAP_SYS_RAWIO))
1195 return -EACCES;
1196 return cosa_readmem(cosa, argp);
1197 case COSAIORTYPE:
1198 return cosa_gettype(cosa, argp);
1199 case COSAIORIDSTR:
1200 return cosa_getidstr(cosa, argp);
1201 case COSAIONRCARDS:
1202 return nr_cards;
1203 case COSAIONRCHANS:
1204 return cosa->nchannels;
1205 case COSAIOBMSET:
1206 if (!capable(CAP_SYS_RAWIO))
1207 return -EACCES;
1208 if (is_8bit(cosa))
1209 return -EINVAL;
1210 if (arg != COSA_BM_OFF && arg != COSA_BM_ON)
1211 return -EINVAL;
1212 cosa->busmaster = arg;
1213 return 0;
1214 case COSAIOBMGET:
1215 return cosa->busmaster;
1216 }
1217 return -ENOIOCTLCMD;
1218}
1219
1220static int cosa_sppp_ioctl(struct net_device *dev, struct ifreq *ifr,
1221 int cmd)
1222{
1223 int rv;
1224 struct channel_data *chan = dev->priv;
1225 rv = cosa_ioctl_common(chan->cosa, chan, cmd, (unsigned long)ifr->ifr_data);
1226 if (rv == -ENOIOCTLCMD) {
1227 return sppp_do_ioctl(dev, ifr, cmd);
1228 }
1229 return rv;
1230}
1231
1232static int cosa_chardev_ioctl(struct inode *inode, struct file *file,
1233 unsigned int cmd, unsigned long arg)
1234{
1235 struct channel_data *channel = file->private_data;
1236 struct cosa_data *cosa = channel->cosa;
1237 return cosa_ioctl_common(cosa, channel, cmd, arg);
1238}
1239
1240
1241/*---------- HW layer interface ---------- */
1242
1243/*
1244 * The higher layer can bind itself to the HW layer by setting the callbacks
1245 * in the channel_data structure and by using these routines.
1246 */
1247static void cosa_enable_rx(struct channel_data *chan)
1248{
1249 struct cosa_data *cosa = chan->cosa;
1250
1251 if (!test_and_set_bit(chan->num, &cosa->rxbitmap))
1252 put_driver_status(cosa);
1253}
1254
1255static void cosa_disable_rx(struct channel_data *chan)
1256{
1257 struct cosa_data *cosa = chan->cosa;
1258
1259 if (test_and_clear_bit(chan->num, &cosa->rxbitmap))
1260 put_driver_status(cosa);
1261}
1262
1263/*
1264 * FIXME: This routine probably should check for cosa_start_tx() called when
1265 * the previous transmit is still unfinished. In this case the non-zero
1266 * return value should indicate to the caller that the queuing(sp?) up
1267 * the transmit has failed.
1268 */
1269static int cosa_start_tx(struct channel_data *chan, char *buf, int len)
1270{
1271 struct cosa_data *cosa = chan->cosa;
1272 unsigned long flags;
1273#ifdef DEBUG_DATA
1274 int i;
1275
1276 printk(KERN_INFO "cosa%dc%d: starting tx(0x%x)", chan->cosa->num,
1277 chan->num, len);
1278 for (i=0; i<len; i++)
1279 printk(" %02x", buf[i]&0xff);
1280 printk("\n");
1281#endif
1282 spin_lock_irqsave(&cosa->lock, flags);
1283 chan->txbuf = buf;
1284 chan->txsize = len;
1285 if (len > COSA_MTU)
1286 chan->txsize = COSA_MTU;
1287 spin_unlock_irqrestore(&cosa->lock, flags);
1288
1289 /* Tell the firmware we are ready */
1290 set_bit(chan->num, &cosa->txbitmap);
1291 put_driver_status(cosa);
1292
1293 return 0;
1294}
1295
1296static void put_driver_status(struct cosa_data *cosa)
1297{
1298 unsigned long flags;
1299 int status;
1300
1301 spin_lock_irqsave(&cosa->lock, flags);
1302
1303 status = (cosa->rxbitmap ? DRIVER_RX_READY : 0)
1304 | (cosa->txbitmap ? DRIVER_TX_READY : 0)
1305 | (cosa->txbitmap? ~(cosa->txbitmap<<DRIVER_TXMAP_SHIFT)
1306 &DRIVER_TXMAP_MASK : 0);
1307 if (!cosa->rxtx) {
1308 if (cosa->rxbitmap|cosa->txbitmap) {
1309 if (!cosa->enabled) {
1310 cosa_putstatus(cosa, SR_RX_INT_ENA);
1311#ifdef DEBUG_IO
1312 debug_status_out(cosa, SR_RX_INT_ENA);
1313#endif
1314 cosa->enabled = 1;
1315 }
1316 } else if (cosa->enabled) {
1317 cosa->enabled = 0;
1318 cosa_putstatus(cosa, 0);
1319#ifdef DEBUG_IO
1320 debug_status_out(cosa, 0);
1321#endif
1322 }
1323 cosa_putdata8(cosa, status);
1324#ifdef DEBUG_IO
1325 debug_data_cmd(cosa, status);
1326#endif
1327 }
1328 spin_unlock_irqrestore(&cosa->lock, flags);
1329}
1330
1331static void put_driver_status_nolock(struct cosa_data *cosa)
1332{
1333 int status;
1334
1335 status = (cosa->rxbitmap ? DRIVER_RX_READY : 0)
1336 | (cosa->txbitmap ? DRIVER_TX_READY : 0)
1337 | (cosa->txbitmap? ~(cosa->txbitmap<<DRIVER_TXMAP_SHIFT)
1338 &DRIVER_TXMAP_MASK : 0);
1339
1340 if (cosa->rxbitmap|cosa->txbitmap) {
1341 cosa_putstatus(cosa, SR_RX_INT_ENA);
1342#ifdef DEBUG_IO
1343 debug_status_out(cosa, SR_RX_INT_ENA);
1344#endif
1345 cosa->enabled = 1;
1346 } else {
1347 cosa_putstatus(cosa, 0);
1348#ifdef DEBUG_IO
1349 debug_status_out(cosa, 0);
1350#endif
1351 cosa->enabled = 0;
1352 }
1353 cosa_putdata8(cosa, status);
1354#ifdef DEBUG_IO
1355 debug_data_cmd(cosa, status);
1356#endif
1357}
1358
1359/*
1360 * The "kickme" function: When the DMA times out, this is called to
1361 * clean up the driver status.
1362 * FIXME: Preliminary support, the interface is probably wrong.
1363 */
1364static void cosa_kick(struct cosa_data *cosa)
1365{
1366 unsigned long flags, flags1;
1367 char *s = "(probably) IRQ";
1368
1369 if (test_bit(RXBIT, &cosa->rxtx))
1370 s = "RX DMA";
1371 if (test_bit(TXBIT, &cosa->rxtx))
1372 s = "TX DMA";
1373
1374 printk(KERN_INFO "%s: %s timeout - restarting.\n", cosa->name, s);
1375 spin_lock_irqsave(&cosa->lock, flags);
1376 cosa->rxtx = 0;
1377
1378 flags1 = claim_dma_lock();
1379 disable_dma(cosa->dma);
1380 clear_dma_ff(cosa->dma);
1381 release_dma_lock(flags1);
1382
1383 /* FIXME: Anything else? */
1384 udelay(100);
1385 cosa_putstatus(cosa, 0);
1386 udelay(100);
1387 (void) cosa_getdata8(cosa);
1388 udelay(100);
1389 cosa_putdata8(cosa, 0);
1390 udelay(100);
1391 put_driver_status_nolock(cosa);
1392 spin_unlock_irqrestore(&cosa->lock, flags);
1393}
1394
1395/*
1396 * Check if the whole buffer is DMA-able. It means it is below the 16M of
1397 * physical memory and doesn't span the 64k boundary. For now it seems
1398 * SKB's never do this, but we'll check this anyway.
1399 */
1400static int cosa_dma_able(struct channel_data *chan, char *buf, int len)
1401{
1402 static int count;
1403 unsigned long b = (unsigned long)buf;
1404 if (b+len >= MAX_DMA_ADDRESS)
1405 return 0;
1406 if ((b^ (b+len)) & 0x10000) {
1407 if (count++ < 5)
1408 printk(KERN_INFO "%s: packet spanning a 64k boundary\n",
1409 chan->name);
1410 return 0;
1411 }
1412 return 1;
1413}
1414
1415
1416/* ---------- The SRP/COSA ROM monitor functions ---------- */
1417
1418/*
1419 * Downloading SRP microcode: say "w" to SRP monitor, it answers by "w=",
1420 * drivers need to say 4-digit hex number meaning start address of the microcode
1421 * separated by a single space. Monitor replies by saying " =". Now driver
1422 * has to write 4-digit hex number meaning the last byte address ended
1423 * by a single space. Monitor has to reply with a space. Now the download
1424 * begins. After the download monitor replies with "\r\n." (CR LF dot).
1425 */
1426static int download(struct cosa_data *cosa, const char __user *microcode, int length, int address)
1427{
1428 int i;
1429
1430 if (put_wait_data(cosa, 'w') == -1) return -1;
1431 if ((i=get_wait_data(cosa)) != 'w') { printk("dnld: 0x%04x\n",i); return -2;}
1432 if (get_wait_data(cosa) != '=') return -3;
1433
1434 if (puthexnumber(cosa, address) < 0) return -4;
1435 if (put_wait_data(cosa, ' ') == -1) return -10;
1436 if (get_wait_data(cosa) != ' ') return -11;
1437 if (get_wait_data(cosa) != '=') return -12;
1438
1439 if (puthexnumber(cosa, address+length-1) < 0) return -13;
1440 if (put_wait_data(cosa, ' ') == -1) return -18;
1441 if (get_wait_data(cosa) != ' ') return -19;
1442
1443 while (length--) {
1444 char c;
1445#ifndef SRP_DOWNLOAD_AT_BOOT
1446 if (get_user(c, microcode))
1447 return -23; /* ??? */
1448#else
1449 c = *microcode;
1450#endif
1451 if (put_wait_data(cosa, c) == -1)
1452 return -20;
1453 microcode++;
1454 }
1455
1456 if (get_wait_data(cosa) != '\r') return -21;
1457 if (get_wait_data(cosa) != '\n') return -22;
1458 if (get_wait_data(cosa) != '.') return -23;
1459#if 0
1460 printk(KERN_DEBUG "cosa%d: download completed.\n", cosa->num);
1461#endif
1462 return 0;
1463}
1464
1465
1466/*
1467 * Starting microcode is done via the "g" command of the SRP monitor.
1468 * The chat should be the following: "g" "g=" "<addr><CR>"
1469 * "<CR><CR><LF><CR><LF>".
1470 */
1471static int startmicrocode(struct cosa_data *cosa, int address)
1472{
1473 if (put_wait_data(cosa, 'g') == -1) return -1;
1474 if (get_wait_data(cosa) != 'g') return -2;
1475 if (get_wait_data(cosa) != '=') return -3;
1476
1477 if (puthexnumber(cosa, address) < 0) return -4;
1478 if (put_wait_data(cosa, '\r') == -1) return -5;
1479
1480 if (get_wait_data(cosa) != '\r') return -6;
1481 if (get_wait_data(cosa) != '\r') return -7;
1482 if (get_wait_data(cosa) != '\n') return -8;
1483 if (get_wait_data(cosa) != '\r') return -9;
1484 if (get_wait_data(cosa) != '\n') return -10;
1485#if 0
1486 printk(KERN_DEBUG "cosa%d: microcode started\n", cosa->num);
1487#endif
1488 return 0;
1489}
1490
1491/*
1492 * Reading memory is done via the "r" command of the SRP monitor.
1493 * The chat is the following "r" "r=" "<addr> " " =" "<last_byte> " " "
1494 * Then driver can read the data and the conversation is finished
1495 * by SRP monitor sending "<CR><LF>." (dot at the end).
1496 *
1497 * This routine is not needed during the normal operation and serves
1498 * for debugging purposes only.
1499 */
1500static int readmem(struct cosa_data *cosa, char __user *microcode, int length, int address)
1501{
1502 if (put_wait_data(cosa, 'r') == -1) return -1;
1503 if ((get_wait_data(cosa)) != 'r') return -2;
1504 if ((get_wait_data(cosa)) != '=') return -3;
1505
1506 if (puthexnumber(cosa, address) < 0) return -4;
1507 if (put_wait_data(cosa, ' ') == -1) return -5;
1508 if (get_wait_data(cosa) != ' ') return -6;
1509 if (get_wait_data(cosa) != '=') return -7;
1510
1511 if (puthexnumber(cosa, address+length-1) < 0) return -8;
1512 if (put_wait_data(cosa, ' ') == -1) return -9;
1513 if (get_wait_data(cosa) != ' ') return -10;
1514
1515 while (length--) {
1516 char c;
1517 int i;
1518 if ((i=get_wait_data(cosa)) == -1) {
1519 printk (KERN_INFO "cosa: 0x%04x bytes remaining\n",
1520 length);
1521 return -11;
1522 }
1523 c=i;
1524#if 1
1525 if (put_user(c, microcode))
1526 return -23; /* ??? */
1527#else
1528 *microcode = c;
1529#endif
1530 microcode++;
1531 }
1532
1533 if (get_wait_data(cosa) != '\r') return -21;
1534 if (get_wait_data(cosa) != '\n') return -22;
1535 if (get_wait_data(cosa) != '.') return -23;
1536#if 0
1537 printk(KERN_DEBUG "cosa%d: readmem completed.\n", cosa->num);
1538#endif
1539 return 0;
1540}
1541
1542/*
1543 * This function resets the device and reads the initial prompt
1544 * of the device's ROM monitor.
1545 */
1546static int cosa_reset_and_read_id(struct cosa_data *cosa, char *idstring)
1547{
1548 int i=0, id=0, prev=0, curr=0;
1549
1550 /* Reset the card ... */
1551 cosa_putstatus(cosa, 0);
1552 cosa_getdata8(cosa);
1553 cosa_putstatus(cosa, SR_RST);
1554#ifdef MODULE
1555 msleep(500);
1556#else
1557 udelay(5*100000);
1558#endif
1559 /* Disable all IRQs from the card */
1560 cosa_putstatus(cosa, 0);
1561
1562 /*
1563 * Try to read the ID string. The card then prints out the
1564 * identification string ended by the "\n\x2e".
1565 *
1566 * The following loop is indexed through i (instead of id)
1567 * to avoid looping forever when for any reason
1568 * the port returns '\r', '\n' or '\x2e' permanently.
1569 */
1570 for (i=0; i<COSA_MAX_ID_STRING-1; i++, prev=curr) {
1571 if ((curr = get_wait_data(cosa)) == -1) {
1572 return -1;
1573 }
1574 curr &= 0xff;
1575 if (curr != '\r' && curr != '\n' && curr != 0x2e)
1576 idstring[id++] = curr;
1577 if (curr == 0x2e && prev == '\n')
1578 break;
1579 }
1580 /* Perhaps we should fail when i==COSA_MAX_ID_STRING-1 ? */
1581 idstring[id] = '\0';
1582 return id;
1583}
1584
1585
1586/* ---------- Auxiliary routines for COSA/SRP monitor ---------- */
1587
1588/*
1589 * This routine gets the data byte from the card waiting for the SR_RX_RDY
1590 * bit to be set in a loop. It should be used in the exceptional cases
1591 * only (for example when resetting the card or downloading the firmware.
1592 */
1593static int get_wait_data(struct cosa_data *cosa)
1594{
1595 int retries = 1000;
1596
1597 while (--retries) {
1598 /* read data and return them */
1599 if (cosa_getstatus(cosa) & SR_RX_RDY) {
1600 short r;
1601 r = cosa_getdata8(cosa);
1602#if 0
1603 printk(KERN_INFO "cosa: get_wait_data returning after %d retries\n", 999-retries);
1604#endif
1605 return r;
1606 }
1607 /* sleep if not ready to read */
Nishanth Aravamudan3173c892005-09-11 02:09:55 -07001608 schedule_timeout_interruptible(1);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001609 }
1610 printk(KERN_INFO "cosa: timeout in get_wait_data (status 0x%x)\n",
1611 cosa_getstatus(cosa));
1612 return -1;
1613}
1614
1615/*
1616 * This routine puts the data byte to the card waiting for the SR_TX_RDY
1617 * bit to be set in a loop. It should be used in the exceptional cases
1618 * only (for example when resetting the card or downloading the firmware).
1619 */
1620static int put_wait_data(struct cosa_data *cosa, int data)
1621{
1622 int retries = 1000;
1623 while (--retries) {
1624 /* read data and return them */
1625 if (cosa_getstatus(cosa) & SR_TX_RDY) {
1626 cosa_putdata8(cosa, data);
1627#if 0
1628 printk(KERN_INFO "Putdata: %d retries\n", 999-retries);
1629#endif
1630 return 0;
1631 }
1632#if 0
1633 /* sleep if not ready to read */
Nishanth Aravamudan3173c892005-09-11 02:09:55 -07001634 schedule_timeout_interruptible(1);
Linus Torvalds1da177e2005-04-16 15:20:36 -07001635#endif
1636 }
1637 printk(KERN_INFO "cosa%d: timeout in put_wait_data (status 0x%x)\n",
1638 cosa->num, cosa_getstatus(cosa));
1639 return -1;
1640}
1641
1642/*
1643 * The following routine puts the hexadecimal number into the SRP monitor
1644 * and verifies the proper echo of the sent bytes. Returns 0 on success,
1645 * negative number on failure (-1,-3,-5,-7) means that put_wait_data() failed,
1646 * (-2,-4,-6,-8) means that reading echo failed.
1647 */
1648static int puthexnumber(struct cosa_data *cosa, int number)
1649{
1650 char temp[5];
1651 int i;
1652
1653 /* Well, I should probably replace this by something faster. */
1654 sprintf(temp, "%04X", number);
1655 for (i=0; i<4; i++) {
1656 if (put_wait_data(cosa, temp[i]) == -1) {
1657 printk(KERN_NOTICE "cosa%d: puthexnumber failed to write byte %d\n",
1658 cosa->num, i);
1659 return -1-2*i;
1660 }
1661 if (get_wait_data(cosa) != temp[i]) {
1662 printk(KERN_NOTICE "cosa%d: puthexhumber failed to read echo of byte %d\n",
1663 cosa->num, i);
1664 return -2-2*i;
1665 }
1666 }
1667 return 0;
1668}
1669
1670
1671/* ---------- Interrupt routines ---------- */
1672
1673/*
1674 * There are three types of interrupt:
1675 * At the beginning of transmit - this handled is in tx_interrupt(),
1676 * at the beginning of receive - it is in rx_interrupt() and
1677 * at the end of transmit/receive - it is the eot_interrupt() function.
1678 * These functions are multiplexed by cosa_interrupt() according to the
1679 * COSA status byte. I have moved the rx/tx/eot interrupt handling into
1680 * separate functions to make it more readable. These functions are inline,
1681 * so there should be no overhead of function call.
1682 *
1683 * In the COSA bus-master mode, we need to tell the card the address of a
1684 * buffer. Unfortunately, COSA may be too slow for us, so we must busy-wait.
1685 * It's time to use the bottom half :-(
1686 */
1687
1688/*
1689 * Transmit interrupt routine - called when COSA is willing to obtain
1690 * data from the OS. The most tricky part of the routine is selection
1691 * of channel we (OS) want to send packet for. For SRP we should probably
1692 * use the round-robin approach. The newer COSA firmwares have a simple
1693 * flow-control - in the status word has bits 2 and 3 set to 1 means that the
1694 * channel 0 or 1 doesn't want to receive data.
1695 *
1696 * It seems there is a bug in COSA firmware (need to trace it further):
1697 * When the driver status says that the kernel has no more data for transmit
1698 * (e.g. at the end of TX DMA) and then the kernel changes its mind
1699 * (e.g. new packet is queued to hard_start_xmit()), the card issues
1700 * the TX interrupt but does not mark the channel as ready-to-transmit.
1701 * The fix seems to be to push the packet to COSA despite its request.
1702 * We first try to obey the card's opinion, and then fall back to forced TX.
1703 */
1704static inline void tx_interrupt(struct cosa_data *cosa, int status)
1705{
1706 unsigned long flags, flags1;
1707#ifdef DEBUG_IRQS
1708 printk(KERN_INFO "cosa%d: SR_DOWN_REQUEST status=0x%04x\n",
1709 cosa->num, status);
1710#endif
1711 spin_lock_irqsave(&cosa->lock, flags);
1712 set_bit(TXBIT, &cosa->rxtx);
1713 if (!test_bit(IRQBIT, &cosa->rxtx)) {
1714 /* flow control, see the comment above */
1715 int i=0;
1716 if (!cosa->txbitmap) {
1717 printk(KERN_WARNING "%s: No channel wants data "
1718 "in TX IRQ. Expect DMA timeout.",
1719 cosa->name);
1720 put_driver_status_nolock(cosa);
1721 clear_bit(TXBIT, &cosa->rxtx);
1722 spin_unlock_irqrestore(&cosa->lock, flags);
1723 return;
1724 }
1725 while(1) {
1726 cosa->txchan++;
1727 i++;
1728 if (cosa->txchan >= cosa->nchannels)
1729 cosa->txchan = 0;
1730 if (!(cosa->txbitmap & (1<<cosa->txchan)))
1731 continue;
1732 if (~status & (1 << (cosa->txchan+DRIVER_TXMAP_SHIFT)))
1733 break;
1734 /* in second pass, accept first ready-to-TX channel */
1735 if (i > cosa->nchannels) {
1736 /* Can be safely ignored */
1737#ifdef DEBUG_IRQS
1738 printk(KERN_DEBUG "%s: Forcing TX "
1739 "to not-ready channel %d\n",
1740 cosa->name, cosa->txchan);
1741#endif
1742 break;
1743 }
1744 }
1745
1746 cosa->txsize = cosa->chan[cosa->txchan].txsize;
1747 if (cosa_dma_able(cosa->chan+cosa->txchan,
1748 cosa->chan[cosa->txchan].txbuf, cosa->txsize)) {
1749 cosa->txbuf = cosa->chan[cosa->txchan].txbuf;
1750 } else {
1751 memcpy(cosa->bouncebuf, cosa->chan[cosa->txchan].txbuf,
1752 cosa->txsize);
1753 cosa->txbuf = cosa->bouncebuf;
1754 }
1755 }
1756
1757 if (is_8bit(cosa)) {
1758 if (!test_bit(IRQBIT, &cosa->rxtx)) {
1759 cosa_putstatus(cosa, SR_TX_INT_ENA);
1760 cosa_putdata8(cosa, ((cosa->txchan << 5) & 0xe0)|
1761 ((cosa->txsize >> 8) & 0x1f));
1762#ifdef DEBUG_IO
1763 debug_status_out(cosa, SR_TX_INT_ENA);
1764 debug_data_out(cosa, ((cosa->txchan << 5) & 0xe0)|
1765 ((cosa->txsize >> 8) & 0x1f));
1766 debug_data_in(cosa, cosa_getdata8(cosa));
1767#else
1768 cosa_getdata8(cosa);
1769#endif
1770 set_bit(IRQBIT, &cosa->rxtx);
1771 spin_unlock_irqrestore(&cosa->lock, flags);
1772 return;
1773 } else {
1774 clear_bit(IRQBIT, &cosa->rxtx);
1775 cosa_putstatus(cosa, 0);
1776 cosa_putdata8(cosa, cosa->txsize&0xff);
1777#ifdef DEBUG_IO
1778 debug_status_out(cosa, 0);
1779 debug_data_out(cosa, cosa->txsize&0xff);
1780#endif
1781 }
1782 } else {
1783 cosa_putstatus(cosa, SR_TX_INT_ENA);
1784 cosa_putdata16(cosa, ((cosa->txchan<<13) & 0xe000)
1785 | (cosa->txsize & 0x1fff));
1786#ifdef DEBUG_IO
1787 debug_status_out(cosa, SR_TX_INT_ENA);
1788 debug_data_out(cosa, ((cosa->txchan<<13) & 0xe000)
1789 | (cosa->txsize & 0x1fff));
1790 debug_data_in(cosa, cosa_getdata8(cosa));
1791 debug_status_out(cosa, 0);
1792#else
1793 cosa_getdata8(cosa);
1794#endif
1795 cosa_putstatus(cosa, 0);
1796 }
1797
1798 if (cosa->busmaster) {
1799 unsigned long addr = virt_to_bus(cosa->txbuf);
1800 int count=0;
1801 printk(KERN_INFO "busmaster IRQ\n");
1802 while (!(cosa_getstatus(cosa)&SR_TX_RDY)) {
1803 count++;
1804 udelay(10);
1805 if (count > 1000) break;
1806 }
1807 printk(KERN_INFO "status %x\n", cosa_getstatus(cosa));
1808 printk(KERN_INFO "ready after %d loops\n", count);
1809 cosa_putdata16(cosa, (addr >> 16)&0xffff);
1810
1811 count = 0;
1812 while (!(cosa_getstatus(cosa)&SR_TX_RDY)) {
1813 count++;
1814 if (count > 1000) break;
1815 udelay(10);
1816 }
1817 printk(KERN_INFO "ready after %d loops\n", count);
1818 cosa_putdata16(cosa, addr &0xffff);
1819 flags1 = claim_dma_lock();
1820 set_dma_mode(cosa->dma, DMA_MODE_CASCADE);
1821 enable_dma(cosa->dma);
1822 release_dma_lock(flags1);
1823 } else {
1824 /* start the DMA */
1825 flags1 = claim_dma_lock();
1826 disable_dma(cosa->dma);
1827 clear_dma_ff(cosa->dma);
1828 set_dma_mode(cosa->dma, DMA_MODE_WRITE);
1829 set_dma_addr(cosa->dma, virt_to_bus(cosa->txbuf));
1830 set_dma_count(cosa->dma, cosa->txsize);
1831 enable_dma(cosa->dma);
1832 release_dma_lock(flags1);
1833 }
1834 cosa_putstatus(cosa, SR_TX_DMA_ENA|SR_USR_INT_ENA);
1835#ifdef DEBUG_IO
1836 debug_status_out(cosa, SR_TX_DMA_ENA|SR_USR_INT_ENA);
1837#endif
1838 spin_unlock_irqrestore(&cosa->lock, flags);
1839}
1840
1841static inline void rx_interrupt(struct cosa_data *cosa, int status)
1842{
1843 unsigned long flags;
1844#ifdef DEBUG_IRQS
1845 printk(KERN_INFO "cosa%d: SR_UP_REQUEST\n", cosa->num);
1846#endif
1847
1848 spin_lock_irqsave(&cosa->lock, flags);
1849 set_bit(RXBIT, &cosa->rxtx);
1850
1851 if (is_8bit(cosa)) {
1852 if (!test_bit(IRQBIT, &cosa->rxtx)) {
1853 set_bit(IRQBIT, &cosa->rxtx);
1854 put_driver_status_nolock(cosa);
1855 cosa->rxsize = cosa_getdata8(cosa) <<8;
1856#ifdef DEBUG_IO
1857 debug_data_in(cosa, cosa->rxsize >> 8);
1858#endif
1859 spin_unlock_irqrestore(&cosa->lock, flags);
1860 return;
1861 } else {
1862 clear_bit(IRQBIT, &cosa->rxtx);
1863 cosa->rxsize |= cosa_getdata8(cosa) & 0xff;
1864#ifdef DEBUG_IO
1865 debug_data_in(cosa, cosa->rxsize & 0xff);
1866#endif
1867#if 0
1868 printk(KERN_INFO "cosa%d: receive rxsize = (0x%04x).\n",
1869 cosa->num, cosa->rxsize);
1870#endif
1871 }
1872 } else {
1873 cosa->rxsize = cosa_getdata16(cosa);
1874#ifdef DEBUG_IO
1875 debug_data_in(cosa, cosa->rxsize);
1876#endif
1877#if 0
1878 printk(KERN_INFO "cosa%d: receive rxsize = (0x%04x).\n",
1879 cosa->num, cosa->rxsize);
1880#endif
1881 }
1882 if (((cosa->rxsize & 0xe000) >> 13) >= cosa->nchannels) {
1883 printk(KERN_WARNING "%s: rx for unknown channel (0x%04x)\n",
1884 cosa->name, cosa->rxsize);
1885 spin_unlock_irqrestore(&cosa->lock, flags);
1886 goto reject;
1887 }
1888 cosa->rxchan = cosa->chan + ((cosa->rxsize & 0xe000) >> 13);
1889 cosa->rxsize &= 0x1fff;
1890 spin_unlock_irqrestore(&cosa->lock, flags);
1891
1892 cosa->rxbuf = NULL;
1893 if (cosa->rxchan->setup_rx)
1894 cosa->rxbuf = cosa->rxchan->setup_rx(cosa->rxchan, cosa->rxsize);
1895
1896 if (!cosa->rxbuf) {
1897reject: /* Reject the packet */
1898 printk(KERN_INFO "cosa%d: rejecting packet on channel %d\n",
1899 cosa->num, cosa->rxchan->num);
1900 cosa->rxbuf = cosa->bouncebuf;
1901 }
1902
1903 /* start the DMA */
1904 flags = claim_dma_lock();
1905 disable_dma(cosa->dma);
1906 clear_dma_ff(cosa->dma);
1907 set_dma_mode(cosa->dma, DMA_MODE_READ);
1908 if (cosa_dma_able(cosa->rxchan, cosa->rxbuf, cosa->rxsize & 0x1fff)) {
1909 set_dma_addr(cosa->dma, virt_to_bus(cosa->rxbuf));
1910 } else {
1911 set_dma_addr(cosa->dma, virt_to_bus(cosa->bouncebuf));
1912 }
1913 set_dma_count(cosa->dma, (cosa->rxsize&0x1fff));
1914 enable_dma(cosa->dma);
1915 release_dma_lock(flags);
1916 spin_lock_irqsave(&cosa->lock, flags);
1917 cosa_putstatus(cosa, SR_RX_DMA_ENA|SR_USR_INT_ENA);
1918 if (!is_8bit(cosa) && (status & SR_TX_RDY))
1919 cosa_putdata8(cosa, DRIVER_RX_READY);
1920#ifdef DEBUG_IO
1921 debug_status_out(cosa, SR_RX_DMA_ENA|SR_USR_INT_ENA);
1922 if (!is_8bit(cosa) && (status & SR_TX_RDY))
1923 debug_data_cmd(cosa, DRIVER_RX_READY);
1924#endif
1925 spin_unlock_irqrestore(&cosa->lock, flags);
1926}
1927
1928static inline void eot_interrupt(struct cosa_data *cosa, int status)
1929{
1930 unsigned long flags, flags1;
1931 spin_lock_irqsave(&cosa->lock, flags);
1932 flags1 = claim_dma_lock();
1933 disable_dma(cosa->dma);
1934 clear_dma_ff(cosa->dma);
1935 release_dma_lock(flags1);
1936 if (test_bit(TXBIT, &cosa->rxtx)) {
1937 struct channel_data *chan = cosa->chan+cosa->txchan;
1938 if (chan->tx_done)
1939 if (chan->tx_done(chan, cosa->txsize))
1940 clear_bit(chan->num, &cosa->txbitmap);
1941 } else if (test_bit(RXBIT, &cosa->rxtx)) {
1942#ifdef DEBUG_DATA
1943 {
1944 int i;
1945 printk(KERN_INFO "cosa%dc%d: done rx(0x%x)", cosa->num,
1946 cosa->rxchan->num, cosa->rxsize);
1947 for (i=0; i<cosa->rxsize; i++)
1948 printk (" %02x", cosa->rxbuf[i]&0xff);
1949 printk("\n");
1950 }
1951#endif
1952 /* Packet for unknown channel? */
1953 if (cosa->rxbuf == cosa->bouncebuf)
1954 goto out;
1955 if (!cosa_dma_able(cosa->rxchan, cosa->rxbuf, cosa->rxsize))
1956 memcpy(cosa->rxbuf, cosa->bouncebuf, cosa->rxsize);
1957 if (cosa->rxchan->rx_done)
1958 if (cosa->rxchan->rx_done(cosa->rxchan))
1959 clear_bit(cosa->rxchan->num, &cosa->rxbitmap);
1960 } else {
1961 printk(KERN_NOTICE "cosa%d: unexpected EOT interrupt\n",
1962 cosa->num);
1963 }
1964 /*
1965 * Clear the RXBIT, TXBIT and IRQBIT (the latest should be
1966 * cleared anyway). We should do it as soon as possible
1967 * so that we can tell the COSA we are done and to give it a time
1968 * for recovery.
1969 */
1970out:
1971 cosa->rxtx = 0;
1972 put_driver_status_nolock(cosa);
1973 spin_unlock_irqrestore(&cosa->lock, flags);
1974}
1975
1976static irqreturn_t cosa_interrupt(int irq, void *cosa_, struct pt_regs *regs)
1977{
1978 unsigned status;
1979 int count = 0;
1980 struct cosa_data *cosa = cosa_;
1981again:
1982 status = cosa_getstatus(cosa);
1983#ifdef DEBUG_IRQS
1984 printk(KERN_INFO "cosa%d: got IRQ, status 0x%02x\n", cosa->num,
1985 status & 0xff);
1986#endif
1987#ifdef DEBUG_IO
1988 debug_status_in(cosa, status);
1989#endif
1990 switch (status & SR_CMD_FROM_SRP_MASK) {
1991 case SR_DOWN_REQUEST:
1992 tx_interrupt(cosa, status);
1993 break;
1994 case SR_UP_REQUEST:
1995 rx_interrupt(cosa, status);
1996 break;
1997 case SR_END_OF_TRANSFER:
1998 eot_interrupt(cosa, status);
1999 break;
2000 default:
2001 /* We may be too fast for SRP. Try to wait a bit more. */
2002 if (count++ < 100) {
2003 udelay(100);
2004 goto again;
2005 }
2006 printk(KERN_INFO "cosa%d: unknown status 0x%02x in IRQ after %d retries\n",
2007 cosa->num, status & 0xff, count);
2008 }
2009#ifdef DEBUG_IRQS
2010 if (count)
2011 printk(KERN_INFO "%s: %d-times got unknown status in IRQ\n",
2012 cosa->name, count);
2013 else
2014 printk(KERN_INFO "%s: returning from IRQ\n", cosa->name);
2015#endif
2016 return IRQ_HANDLED;
2017}
2018
2019
2020/* ---------- I/O debugging routines ---------- */
2021/*
2022 * These routines can be used to monitor COSA/SRP I/O and to printk()
2023 * the data being transferred on the data and status I/O port in a
2024 * readable way.
2025 */
2026
2027#ifdef DEBUG_IO
2028static void debug_status_in(struct cosa_data *cosa, int status)
2029{
2030 char *s;
2031 switch(status & SR_CMD_FROM_SRP_MASK) {
2032 case SR_UP_REQUEST:
2033 s = "RX_REQ";
2034 break;
2035 case SR_DOWN_REQUEST:
2036 s = "TX_REQ";
2037 break;
2038 case SR_END_OF_TRANSFER:
2039 s = "ET_REQ";
2040 break;
2041 default:
2042 s = "NO_REQ";
2043 break;
2044 }
2045 printk(KERN_INFO "%s: IO: status -> 0x%02x (%s%s%s%s)\n",
2046 cosa->name,
2047 status,
2048 status & SR_USR_RQ ? "USR_RQ|":"",
2049 status & SR_TX_RDY ? "TX_RDY|":"",
2050 status & SR_RX_RDY ? "RX_RDY|":"",
2051 s);
2052}
2053
2054static void debug_status_out(struct cosa_data *cosa, int status)
2055{
2056 printk(KERN_INFO "%s: IO: status <- 0x%02x (%s%s%s%s%s%s)\n",
2057 cosa->name,
2058 status,
2059 status & SR_RX_DMA_ENA ? "RXDMA|":"!rxdma|",
2060 status & SR_TX_DMA_ENA ? "TXDMA|":"!txdma|",
2061 status & SR_RST ? "RESET|":"",
2062 status & SR_USR_INT_ENA ? "USRINT|":"!usrint|",
2063 status & SR_TX_INT_ENA ? "TXINT|":"!txint|",
2064 status & SR_RX_INT_ENA ? "RXINT":"!rxint");
2065}
2066
2067static void debug_data_in(struct cosa_data *cosa, int data)
2068{
2069 printk(KERN_INFO "%s: IO: data -> 0x%04x\n", cosa->name, data);
2070}
2071
2072static void debug_data_out(struct cosa_data *cosa, int data)
2073{
2074 printk(KERN_INFO "%s: IO: data <- 0x%04x\n", cosa->name, data);
2075}
2076
2077static void debug_data_cmd(struct cosa_data *cosa, int data)
2078{
2079 printk(KERN_INFO "%s: IO: data <- 0x%04x (%s|%s)\n",
2080 cosa->name, data,
2081 data & SR_RDY_RCV ? "RX_RDY" : "!rx_rdy",
2082 data & SR_RDY_SND ? "TX_RDY" : "!tx_rdy");
2083}
2084#endif
2085
2086/* EOF -- this file has not been truncated */