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1
/*
2
 * Linux host USB redirector
3
 *
4
 * Copyright (c) 2005 Fabrice Bellard
5
 *
6
 * Copyright (c) 2008 Max Krasnyansky
7
 *      Support for host device auto connect & disconnect
8
 *      Major rewrite to support fully async operation
9
 *
10
 * Copyright 2008 TJ <linux@tjworld.net>
11
 *      Added flexible support for /dev/bus/usb /sys/bus/usb/devices in addition
12
 *      to the legacy /proc/bus/usb USB device discovery and handling
13
 *
14
 * Permission is hereby granted, free of charge, to any person obtaining a copy
15
 * of this software and associated documentation files (the "Software"), to deal
16
 * in the Software without restriction, including without limitation the rights
17
 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
18
 * copies of the Software, and to permit persons to whom the Software is
19
 * furnished to do so, subject to the following conditions:
20
 *
21
 * The above copyright notice and this permission notice shall be included in
22
 * all copies or substantial portions of the Software.
23
 *
24
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
25
 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
26
 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
27
 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
28
 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
29
 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
30
 * THE SOFTWARE.
31
 */
32

    
33
#include "qemu-common.h"
34
#include "qemu-timer.h"
35
#include "monitor.h"
36

    
37
#include <dirent.h>
38
#include <sys/ioctl.h>
39
#include <signal.h>
40

    
41
#include <linux/usbdevice_fs.h>
42
#include <linux/version.h>
43
#include "hw/usb.h"
44

    
45
/* We redefine it to avoid version problems */
46
struct usb_ctrltransfer {
47
    uint8_t  bRequestType;
48
    uint8_t  bRequest;
49
    uint16_t wValue;
50
    uint16_t wIndex;
51
    uint16_t wLength;
52
    uint32_t timeout;
53
    void *data;
54
};
55

    
56
struct usb_ctrlrequest {
57
    uint8_t bRequestType;
58
    uint8_t bRequest;
59
    uint16_t wValue;
60
    uint16_t wIndex;
61
    uint16_t wLength;
62
};
63

    
64
typedef int USBScanFunc(void *opaque, int bus_num, int addr, int class_id,
65
                        int vendor_id, int product_id,
66
                        const char *product_name, int speed);
67
static int usb_host_find_device(int *pbus_num, int *paddr,
68
                                char *product_name, int product_name_size,
69
                                const char *devname);
70
//#define DEBUG
71

    
72
#ifdef DEBUG
73
#define dprintf printf
74
#else
75
#define dprintf(...)
76
#endif
77

    
78
#define USBDBG_DEVOPENED "husb: opened %s/devices\n"
79

    
80
#define USBPROCBUS_PATH "/proc/bus/usb"
81
#define PRODUCT_NAME_SZ 32
82
#define MAX_ENDPOINTS 16
83
#define USBDEVBUS_PATH "/dev/bus/usb"
84
#define USBSYSBUS_PATH "/sys/bus/usb"
85

    
86
static char *usb_host_device_path;
87

    
88
#define USB_FS_NONE 0
89
#define USB_FS_PROC 1
90
#define USB_FS_DEV 2
91
#define USB_FS_SYS 3
92

    
93
static int usb_fs_type;
94

    
95
/* endpoint association data */
96
struct endp_data {
97
    uint8_t type;
98
    uint8_t halted;
99
};
100

    
101
enum {
102
    CTRL_STATE_IDLE = 0,
103
    CTRL_STATE_SETUP,
104
    CTRL_STATE_DATA,
105
    CTRL_STATE_ACK
106
};
107

    
108
/*
109
 * Control transfer state.
110
 * Note that 'buffer' _must_ follow 'req' field because 
111
 * we need contigious buffer when we submit control URB.
112
 */ 
113
struct ctrl_struct {
114
    uint16_t len;
115
    uint16_t offset;
116
    uint8_t  state;
117
    struct   usb_ctrlrequest req;
118
    uint8_t  buffer[1024];
119
};
120

    
121
typedef struct USBHostDevice {
122
    USBDevice dev;
123
    int       fd;
124

    
125
    uint8_t   descr[1024];
126
    int       descr_len;
127
    int       configuration;
128
    int       ninterfaces;
129
    int       closing;
130

    
131
    struct ctrl_struct ctrl;
132
    struct endp_data endp_table[MAX_ENDPOINTS];
133

    
134
    /* Host side address */
135
    int bus_num;
136
    int addr;
137

    
138
    struct USBHostDevice *next;
139
} USBHostDevice;
140

    
141
static int is_isoc(USBHostDevice *s, int ep)
142
{
143
    return s->endp_table[ep - 1].type == USBDEVFS_URB_TYPE_ISO;
144
}
145

    
146
static int is_halted(USBHostDevice *s, int ep)
147
{
148
    return s->endp_table[ep - 1].halted;
149
}
150

    
151
static void clear_halt(USBHostDevice *s, int ep)
152
{
153
    s->endp_table[ep - 1].halted = 0;
154
}
155

    
156
static void set_halt(USBHostDevice *s, int ep)
157
{
158
    s->endp_table[ep - 1].halted = 1;
159
}
160

    
161
static USBHostDevice *hostdev_list;
162

    
163
static void hostdev_link(USBHostDevice *dev)
164
{
165
    dev->next = hostdev_list;
166
    hostdev_list = dev;
167
}
168

    
169
static void hostdev_unlink(USBHostDevice *dev)
170
{
171
    USBHostDevice *pdev = hostdev_list;
172
    USBHostDevice **prev = &hostdev_list;
173

    
174
    while (pdev) {
175
        if (pdev == dev) {
176
            *prev = dev->next;
177
            return;
178
        }
179

    
180
        prev = &pdev->next;
181
        pdev = pdev->next;
182
    }
183
}
184

    
185
static USBHostDevice *hostdev_find(int bus_num, int addr)
186
{
187
    USBHostDevice *s = hostdev_list;
188
    while (s) {
189
        if (s->bus_num == bus_num && s->addr == addr)
190
            return s;
191
        s = s->next;
192
    }
193
    return NULL;
194
}
195

    
196
/* 
197
 * Async URB state.
198
 * We always allocate one isoc descriptor even for bulk transfers
199
 * to simplify allocation and casts. 
200
 */
201
typedef struct AsyncURB
202
{
203
    struct usbdevfs_urb urb;
204
    struct usbdevfs_iso_packet_desc isocpd;
205

    
206
    USBPacket     *packet;
207
    USBHostDevice *hdev;
208
} AsyncURB;
209

    
210
static AsyncURB *async_alloc(void)
211
{
212
    return (AsyncURB *) qemu_mallocz(sizeof(AsyncURB));
213
}
214

    
215
static void async_free(AsyncURB *aurb)
216
{
217
    qemu_free(aurb);
218
}
219

    
220
static void async_complete_ctrl(USBHostDevice *s, USBPacket *p)
221
{
222
    switch(s->ctrl.state) {
223
    case CTRL_STATE_SETUP:
224
        if (p->len < s->ctrl.len)
225
            s->ctrl.len = p->len;
226
        s->ctrl.state = CTRL_STATE_DATA;
227
        p->len = 8;
228
        break;
229

    
230
    case CTRL_STATE_ACK:
231
        s->ctrl.state = CTRL_STATE_IDLE;
232
        p->len = 0;
233
        break;
234

    
235
    default:
236
        break;
237
    }
238
}
239

    
240
static void async_complete(void *opaque)
241
{
242
    USBHostDevice *s = opaque;
243
    AsyncURB *aurb;
244

    
245
    while (1) {
246
            USBPacket *p;
247

    
248
        int r = ioctl(s->fd, USBDEVFS_REAPURBNDELAY, &aurb);
249
        if (r < 0) {
250
            if (errno == EAGAIN)
251
                return;
252

    
253
            if (errno == ENODEV && !s->closing) {
254
                printf("husb: device %d.%d disconnected\n", s->bus_num, s->addr);
255
                usb_device_del_addr(0, s->dev.addr);
256
                return;
257
            }
258

    
259
            dprintf("husb: async. reap urb failed errno %d\n", errno);
260
            return;
261
        }
262

    
263
        p = aurb->packet;
264

    
265
        dprintf("husb: async completed. aurb %p status %d alen %d\n", 
266
                aurb, aurb->urb.status, aurb->urb.actual_length);
267

    
268
        if (p) {
269
            switch (aurb->urb.status) {
270
            case 0:
271
                p->len = aurb->urb.actual_length;
272
                if (aurb->urb.type == USBDEVFS_URB_TYPE_CONTROL)
273
                    async_complete_ctrl(s, p);
274
                break;
275

    
276
            case -EPIPE:
277
                set_halt(s, p->devep);
278
                /* fall through */
279
            default:
280
                p->len = USB_RET_NAK;
281
                break;
282
            }
283

    
284
            usb_packet_complete(p);
285
        }
286

    
287
        async_free(aurb);
288
    }
289
}
290

    
291
static void async_cancel(USBPacket *unused, void *opaque)
292
{
293
    AsyncURB *aurb = opaque;
294
    USBHostDevice *s = aurb->hdev;
295

    
296
    dprintf("husb: async cancel. aurb %p\n", aurb);
297

    
298
    /* Mark it as dead (see async_complete above) */
299
    aurb->packet = NULL;
300

    
301
    int r = ioctl(s->fd, USBDEVFS_DISCARDURB, aurb);
302
    if (r < 0) {
303
        dprintf("husb: async. discard urb failed errno %d\n", errno);
304
    }
305
}
306

    
307
static int usb_host_claim_interfaces(USBHostDevice *dev, int configuration)
308
{
309
    int dev_descr_len, config_descr_len;
310
    int interface, nb_interfaces, nb_configurations;
311
    int ret, i;
312

    
313
    if (configuration == 0) /* address state - ignore */
314
        return 1;
315

    
316
    dprintf("husb: claiming interfaces. config %d\n", configuration);
317

    
318
    i = 0;
319
    dev_descr_len = dev->descr[0];
320
    if (dev_descr_len > dev->descr_len)
321
        goto fail;
322
    nb_configurations = dev->descr[17];
323

    
324
    i += dev_descr_len;
325
    while (i < dev->descr_len) {
326
        dprintf("husb: i is %d, descr_len is %d, dl %d, dt %d\n", i, dev->descr_len,
327
               dev->descr[i], dev->descr[i+1]);
328

    
329
        if (dev->descr[i+1] != USB_DT_CONFIG) {
330
            i += dev->descr[i];
331
            continue;
332
        }
333
        config_descr_len = dev->descr[i];
334

    
335
        printf("husb: config #%d need %d\n", dev->descr[i + 5], configuration); 
336

    
337
        if (configuration < 0 || configuration == dev->descr[i + 5]) {
338
            configuration = dev->descr[i + 5];
339
            break;
340
        }
341

    
342
        i += config_descr_len;
343
    }
344

    
345
    if (i >= dev->descr_len) {
346
        fprintf(stderr, "husb: update iface failed. no matching configuration\n");
347
        goto fail;
348
    }
349
    nb_interfaces = dev->descr[i + 4];
350

    
351
#ifdef USBDEVFS_DISCONNECT
352
    /* earlier Linux 2.4 do not support that */
353
    {
354
        struct usbdevfs_ioctl ctrl;
355
        for (interface = 0; interface < nb_interfaces; interface++) {
356
            ctrl.ioctl_code = USBDEVFS_DISCONNECT;
357
            ctrl.ifno = interface;
358
            ret = ioctl(dev->fd, USBDEVFS_IOCTL, &ctrl);
359
            if (ret < 0 && errno != ENODATA) {
360
                perror("USBDEVFS_DISCONNECT");
361
                goto fail;
362
            }
363
        }
364
    }
365
#endif
366

    
367
    /* XXX: only grab if all interfaces are free */
368
    for (interface = 0; interface < nb_interfaces; interface++) {
369
        ret = ioctl(dev->fd, USBDEVFS_CLAIMINTERFACE, &interface);
370
        if (ret < 0) {
371
            if (errno == EBUSY) {
372
                printf("husb: update iface. device already grabbed\n");
373
            } else {
374
                perror("husb: failed to claim interface");
375
            }
376
        fail:
377
            return 0;
378
        }
379
    }
380

    
381
    printf("husb: %d interfaces claimed for configuration %d\n",
382
           nb_interfaces, configuration);
383

    
384
    dev->ninterfaces   = nb_interfaces;
385
    dev->configuration = configuration;
386
    return 1;
387
}
388

    
389
static int usb_host_release_interfaces(USBHostDevice *s)
390
{
391
    int ret, i;
392

    
393
    dprintf("husb: releasing interfaces\n");
394

    
395
    for (i = 0; i < s->ninterfaces; i++) {
396
        ret = ioctl(s->fd, USBDEVFS_RELEASEINTERFACE, &i);
397
        if (ret < 0) {
398
            perror("husb: failed to release interface");
399
            return 0;
400
        }
401
    }
402

    
403
    return 1;
404
}
405

    
406
static void usb_host_handle_reset(USBDevice *dev)
407
{
408
    USBHostDevice *s = (USBHostDevice *) dev;
409

    
410
    dprintf("husb: reset device %u.%u\n", s->bus_num, s->addr);
411

    
412
    ioctl(s->fd, USBDEVFS_RESET);
413

    
414
    usb_host_claim_interfaces(s, s->configuration);
415
}
416

    
417
static void usb_host_handle_destroy(USBDevice *dev)
418
{
419
    USBHostDevice *s = (USBHostDevice *)dev;
420

    
421
    s->closing = 1;
422

    
423
    qemu_set_fd_handler(s->fd, NULL, NULL, NULL);
424

    
425
    hostdev_unlink(s);
426

    
427
    async_complete(s);
428

    
429
    if (s->fd >= 0)
430
        close(s->fd);
431

    
432
    qemu_free(s);
433
}
434

    
435
static int usb_linux_update_endp_table(USBHostDevice *s);
436

    
437
static int usb_host_handle_data(USBHostDevice *s, USBPacket *p)
438
{
439
    struct usbdevfs_urb *urb;
440
    AsyncURB *aurb;
441
    int ret;
442

    
443
    aurb = async_alloc();
444
    aurb->hdev   = s;
445
    aurb->packet = p;
446

    
447
    urb = &aurb->urb;
448

    
449
    if (p->pid == USB_TOKEN_IN)
450
            urb->endpoint = p->devep | 0x80;
451
    else
452
            urb->endpoint = p->devep;
453

    
454
    if (is_halted(s, p->devep)) {
455
        ret = ioctl(s->fd, USBDEVFS_CLEAR_HALT, &urb->endpoint);
456
        if (ret < 0) {
457
            dprintf("husb: failed to clear halt. ep 0x%x errno %d\n", 
458
                   urb->endpoint, errno);
459
            return USB_RET_NAK;
460
        }
461
        clear_halt(s, p->devep);
462
    }
463

    
464
    urb->buffer        = p->data;
465
    urb->buffer_length = p->len;
466

    
467
    if (is_isoc(s, p->devep)) {
468
        /* Setup ISOC transfer */
469
        urb->type     = USBDEVFS_URB_TYPE_ISO;
470
        urb->flags    = USBDEVFS_URB_ISO_ASAP;
471
        urb->number_of_packets = 1;
472
        urb->iso_frame_desc[0].length = p->len;
473
    } else {
474
        /* Setup bulk transfer */
475
        urb->type     = USBDEVFS_URB_TYPE_BULK;
476
    }
477

    
478
    urb->usercontext = s;
479

    
480
    ret = ioctl(s->fd, USBDEVFS_SUBMITURB, urb);
481

    
482
    dprintf("husb: data submit. ep 0x%x len %u aurb %p\n", urb->endpoint, p->len, aurb);
483

    
484
    if (ret < 0) {
485
        dprintf("husb: submit failed. errno %d\n", errno);
486
        async_free(aurb);
487

    
488
        switch(errno) {
489
        case ETIMEDOUT:
490
            return USB_RET_NAK;
491
        case EPIPE:
492
        default:
493
            return USB_RET_STALL;
494
        }
495
    }
496

    
497
    usb_defer_packet(p, async_cancel, aurb);
498
    return USB_RET_ASYNC;
499
}
500

    
501
static int ctrl_error(void)
502
{
503
    if (errno == ETIMEDOUT)
504
        return USB_RET_NAK;
505
    else 
506
        return USB_RET_STALL;
507
}
508

    
509
static int usb_host_set_address(USBHostDevice *s, int addr)
510
{
511
    dprintf("husb: ctrl set addr %u\n", addr);
512
    s->dev.addr = addr;
513
    return 0;
514
}
515

    
516
static int usb_host_set_config(USBHostDevice *s, int config)
517
{
518
    usb_host_release_interfaces(s);
519

    
520
    int ret = ioctl(s->fd, USBDEVFS_SETCONFIGURATION, &config);
521
 
522
    dprintf("husb: ctrl set config %d ret %d errno %d\n", config, ret, errno);
523
    
524
    if (ret < 0)
525
        return ctrl_error();
526
 
527
    usb_host_claim_interfaces(s, config);
528
    return 0;
529
}
530

    
531
static int usb_host_set_interface(USBHostDevice *s, int iface, int alt)
532
{
533
    struct usbdevfs_setinterface si;
534
    int ret;
535

    
536
    si.interface  = iface;
537
    si.altsetting = alt;
538
    ret = ioctl(s->fd, USBDEVFS_SETINTERFACE, &si);
539
    
540
    dprintf("husb: ctrl set iface %d altset %d ret %d errno %d\n", 
541
            iface, alt, ret, errno);
542
    
543
    if (ret < 0)
544
        return ctrl_error();
545

    
546
    usb_linux_update_endp_table(s);
547
    return 0;
548
}
549

    
550
static int usb_host_handle_control(USBHostDevice *s, USBPacket *p)
551
{
552
    struct usbdevfs_urb *urb;
553
    AsyncURB *aurb;
554
    int ret, value, index;
555

    
556
    /* 
557
     * Process certain standard device requests.
558
     * These are infrequent and are processed synchronously.
559
     */
560
    value = le16_to_cpu(s->ctrl.req.wValue);
561
    index = le16_to_cpu(s->ctrl.req.wIndex);
562

    
563
    dprintf("husb: ctrl type 0x%x req 0x%x val 0x%x index %u len %u\n",
564
        s->ctrl.req.bRequestType, s->ctrl.req.bRequest, value, index, 
565
        s->ctrl.len);
566

    
567
    if (s->ctrl.req.bRequestType == 0) {
568
        switch (s->ctrl.req.bRequest) {
569
        case USB_REQ_SET_ADDRESS:
570
            return usb_host_set_address(s, value);
571

    
572
        case USB_REQ_SET_CONFIGURATION:
573
            return usb_host_set_config(s, value & 0xff);
574
        }
575
    }
576

    
577
    if (s->ctrl.req.bRequestType == 1 &&
578
                  s->ctrl.req.bRequest == USB_REQ_SET_INTERFACE)
579
        return usb_host_set_interface(s, index, value);
580

    
581
    /* The rest are asynchronous */
582

    
583
    aurb = async_alloc();
584
    aurb->hdev   = s;
585
    aurb->packet = p;
586

    
587
    /* 
588
     * Setup ctrl transfer.
589
     *
590
     * s->ctrl is layed out such that data buffer immediately follows
591
     * 'req' struct which is exactly what usbdevfs expects.
592
     */ 
593
    urb = &aurb->urb;
594

    
595
    urb->type     = USBDEVFS_URB_TYPE_CONTROL;
596
    urb->endpoint = p->devep;
597

    
598
    urb->buffer        = &s->ctrl.req;
599
    urb->buffer_length = 8 + s->ctrl.len;
600

    
601
    urb->usercontext = s;
602

    
603
    ret = ioctl(s->fd, USBDEVFS_SUBMITURB, urb);
604

    
605
    dprintf("husb: submit ctrl. len %u aurb %p\n", urb->buffer_length, aurb);
606

    
607
    if (ret < 0) {
608
        dprintf("husb: submit failed. errno %d\n", errno);
609
        async_free(aurb);
610

    
611
        switch(errno) {
612
        case ETIMEDOUT:
613
            return USB_RET_NAK;
614
        case EPIPE:
615
        default:
616
            return USB_RET_STALL;
617
        }
618
    }
619

    
620
    usb_defer_packet(p, async_cancel, aurb);
621
    return USB_RET_ASYNC;
622
}
623

    
624
static int do_token_setup(USBDevice *dev, USBPacket *p)
625
{
626
    USBHostDevice *s = (USBHostDevice *) dev;
627
    int ret = 0;
628

    
629
    if (p->len != 8)
630
        return USB_RET_STALL;
631
 
632
    memcpy(&s->ctrl.req, p->data, 8);
633
    s->ctrl.len    = le16_to_cpu(s->ctrl.req.wLength);
634
    s->ctrl.offset = 0;
635
    s->ctrl.state  = CTRL_STATE_SETUP;
636

    
637
    if (s->ctrl.req.bRequestType & USB_DIR_IN) {
638
        ret = usb_host_handle_control(s, p);
639
        if (ret < 0)
640
            return ret;
641

    
642
        if (ret < s->ctrl.len)
643
            s->ctrl.len = ret;
644
        s->ctrl.state = CTRL_STATE_DATA;
645
    } else {
646
        if (s->ctrl.len == 0)
647
            s->ctrl.state = CTRL_STATE_ACK;
648
        else
649
            s->ctrl.state = CTRL_STATE_DATA;
650
    }
651

    
652
    return ret;
653
}
654

    
655
static int do_token_in(USBDevice *dev, USBPacket *p)
656
{
657
    USBHostDevice *s = (USBHostDevice *) dev;
658
    int ret = 0;
659

    
660
    if (p->devep != 0)
661
        return usb_host_handle_data(s, p);
662

    
663
    switch(s->ctrl.state) {
664
    case CTRL_STATE_ACK:
665
        if (!(s->ctrl.req.bRequestType & USB_DIR_IN)) {
666
            ret = usb_host_handle_control(s, p);
667
            if (ret == USB_RET_ASYNC)
668
                return USB_RET_ASYNC;
669

    
670
            s->ctrl.state = CTRL_STATE_IDLE;
671
            return ret > 0 ? 0 : ret;
672
        }
673

    
674
        return 0;
675

    
676
    case CTRL_STATE_DATA:
677
        if (s->ctrl.req.bRequestType & USB_DIR_IN) {
678
            int len = s->ctrl.len - s->ctrl.offset;
679
            if (len > p->len)
680
                len = p->len;
681
            memcpy(p->data, s->ctrl.buffer + s->ctrl.offset, len);
682
            s->ctrl.offset += len;
683
            if (s->ctrl.offset >= s->ctrl.len)
684
                s->ctrl.state = CTRL_STATE_ACK;
685
            return len;
686
        }
687

    
688
        s->ctrl.state = CTRL_STATE_IDLE;
689
        return USB_RET_STALL;
690

    
691
    default:
692
        return USB_RET_STALL;
693
    }
694
}
695

    
696
static int do_token_out(USBDevice *dev, USBPacket *p)
697
{
698
    USBHostDevice *s = (USBHostDevice *) dev;
699

    
700
    if (p->devep != 0)
701
        return usb_host_handle_data(s, p);
702

    
703
    switch(s->ctrl.state) {
704
    case CTRL_STATE_ACK:
705
        if (s->ctrl.req.bRequestType & USB_DIR_IN) {
706
            s->ctrl.state = CTRL_STATE_IDLE;
707
            /* transfer OK */
708
        } else {
709
            /* ignore additional output */
710
        }
711
        return 0;
712

    
713
    case CTRL_STATE_DATA:
714
        if (!(s->ctrl.req.bRequestType & USB_DIR_IN)) {
715
            int len = s->ctrl.len - s->ctrl.offset;
716
            if (len > p->len)
717
                len = p->len;
718
            memcpy(s->ctrl.buffer + s->ctrl.offset, p->data, len);
719
            s->ctrl.offset += len;
720
            if (s->ctrl.offset >= s->ctrl.len)
721
                s->ctrl.state = CTRL_STATE_ACK;
722
            return len;
723
        }
724

    
725
        s->ctrl.state = CTRL_STATE_IDLE;
726
        return USB_RET_STALL;
727

    
728
    default:
729
        return USB_RET_STALL;
730
    }
731
}
732

    
733
/*
734
 * Packet handler.
735
 * Called by the HC (host controller).
736
 *
737
 * Returns length of the transaction or one of the USB_RET_XXX codes.
738
 */
739
static int usb_host_handle_packet(USBDevice *s, USBPacket *p)
740
{
741
    switch(p->pid) {
742
    case USB_MSG_ATTACH:
743
        s->state = USB_STATE_ATTACHED;
744
        return 0;
745

    
746
    case USB_MSG_DETACH:
747
        s->state = USB_STATE_NOTATTACHED;
748
        return 0;
749

    
750
    case USB_MSG_RESET:
751
        s->remote_wakeup = 0;
752
        s->addr = 0;
753
        s->state = USB_STATE_DEFAULT;
754
        s->info->handle_reset(s);
755
        return 0;
756
    }
757

    
758
    /* Rest of the PIDs must match our address */
759
    if (s->state < USB_STATE_DEFAULT || p->devaddr != s->addr)
760
        return USB_RET_NODEV;
761

    
762
    switch (p->pid) {
763
    case USB_TOKEN_SETUP:
764
        return do_token_setup(s, p);
765

    
766
    case USB_TOKEN_IN:
767
        return do_token_in(s, p);
768

    
769
    case USB_TOKEN_OUT:
770
        return do_token_out(s, p);
771
 
772
    default:
773
        return USB_RET_STALL;
774
    }
775
}
776

    
777
/* returns 1 on problem encountered or 0 for success */
778
static int usb_linux_update_endp_table(USBHostDevice *s)
779
{
780
    uint8_t *descriptors;
781
    uint8_t devep, type, configuration, alt_interface;
782
    struct usb_ctrltransfer ct;
783
    int interface, ret, length, i;
784

    
785
    ct.bRequestType = USB_DIR_IN;
786
    ct.bRequest = USB_REQ_GET_CONFIGURATION;
787
    ct.wValue = 0;
788
    ct.wIndex = 0;
789
    ct.wLength = 1;
790
    ct.data = &configuration;
791
    ct.timeout = 50;
792

    
793
    ret = ioctl(s->fd, USBDEVFS_CONTROL, &ct);
794
    if (ret < 0) {
795
        perror("usb_linux_update_endp_table");
796
        return 1;
797
    }
798

    
799
    /* in address state */
800
    if (configuration == 0)
801
        return 1;
802

    
803
    /* get the desired configuration, interface, and endpoint descriptors
804
     * from device description */
805
    descriptors = &s->descr[18];
806
    length = s->descr_len - 18;
807
    i = 0;
808

    
809
    if (descriptors[i + 1] != USB_DT_CONFIG ||
810
        descriptors[i + 5] != configuration) {
811
        dprintf("invalid descriptor data - configuration\n");
812
        return 1;
813
    }
814
    i += descriptors[i];
815

    
816
    while (i < length) {
817
        if (descriptors[i + 1] != USB_DT_INTERFACE ||
818
            (descriptors[i + 1] == USB_DT_INTERFACE &&
819
             descriptors[i + 4] == 0)) {
820
            i += descriptors[i];
821
            continue;
822
        }
823

    
824
        interface = descriptors[i + 2];
825

    
826
        ct.bRequestType = USB_DIR_IN | USB_RECIP_INTERFACE;
827
        ct.bRequest = USB_REQ_GET_INTERFACE;
828
        ct.wValue = 0;
829
        ct.wIndex = interface;
830
        ct.wLength = 1;
831
        ct.data = &alt_interface;
832
        ct.timeout = 50;
833

    
834
        ret = ioctl(s->fd, USBDEVFS_CONTROL, &ct);
835
        if (ret < 0) {
836
            alt_interface = interface;
837
        }
838

    
839
        /* the current interface descriptor is the active interface
840
         * and has endpoints */
841
        if (descriptors[i + 3] != alt_interface) {
842
            i += descriptors[i];
843
            continue;
844
        }
845

    
846
        /* advance to the endpoints */
847
        while (i < length && descriptors[i +1] != USB_DT_ENDPOINT)
848
            i += descriptors[i];
849

    
850
        if (i >= length)
851
            break;
852

    
853
        while (i < length) {
854
            if (descriptors[i + 1] != USB_DT_ENDPOINT)
855
                break;
856

    
857
            devep = descriptors[i + 2];
858
            switch (descriptors[i + 3] & 0x3) {
859
            case 0x00:
860
                type = USBDEVFS_URB_TYPE_CONTROL;
861
                break;
862
            case 0x01:
863
                type = USBDEVFS_URB_TYPE_ISO;
864
                break;
865
            case 0x02:
866
                type = USBDEVFS_URB_TYPE_BULK;
867
                break;
868
            case 0x03:
869
                type = USBDEVFS_URB_TYPE_INTERRUPT;
870
                break;
871
            default:
872
                dprintf("usb_host: malformed endpoint type\n");
873
                type = USBDEVFS_URB_TYPE_BULK;
874
            }
875
            s->endp_table[(devep & 0xf) - 1].type = type;
876
            s->endp_table[(devep & 0xf) - 1].halted = 0;
877

    
878
            i += descriptors[i];
879
        }
880
    }
881
    return 0;
882
}
883

    
884
static int usb_host_initfn(USBDevice *dev)
885
{
886
    return 0;
887
}
888

    
889
static USBDevice *usb_host_device_open_addr(int bus_num, int addr, const char *prod_name)
890
{
891
    int fd = -1, ret;
892
    USBDevice *d = NULL;
893
    USBHostDevice *dev;
894
    struct usbdevfs_connectinfo ci;
895
    char buf[1024];
896

    
897
    printf("husb: open device %d.%d\n", bus_num, addr);
898

    
899
    if (!usb_host_device_path) {
900
        perror("husb: USB Host Device Path not set");
901
        goto fail;
902
    }
903
    snprintf(buf, sizeof(buf), "%s/%03d/%03d", usb_host_device_path,
904
             bus_num, addr);
905
    fd = open(buf, O_RDWR | O_NONBLOCK);
906
    if (fd < 0) {
907
        perror(buf);
908
        goto fail;
909
    }
910
    dprintf("husb: opened %s\n", buf);
911

    
912
    d = usb_create_simple(NULL /* FIXME */, "USB Host Device");
913
    dev = DO_UPCAST(USBHostDevice, dev, d);
914

    
915
    dev->bus_num = bus_num;
916
    dev->addr = addr;
917

    
918
    /* read the device description */
919
    dev->descr_len = read(fd, dev->descr, sizeof(dev->descr));
920
    if (dev->descr_len <= 0) {
921
        perror("husb: reading device data failed");
922
        goto fail;
923
    }
924

    
925
#ifdef DEBUG
926
    {
927
        int x;
928
        printf("=== begin dumping device descriptor data ===\n");
929
        for (x = 0; x < dev->descr_len; x++)
930
            printf("%02x ", dev->descr[x]);
931
        printf("\n=== end dumping device descriptor data ===\n");
932
    }
933
#endif
934

    
935

    
936
    /* 
937
     * Initial configuration is -1 which makes us claim first 
938
     * available config. We used to start with 1, which does not
939
     * always work. I've seen devices where first config starts 
940
     * with 2.
941
     */
942
    if (!usb_host_claim_interfaces(dev, -1))
943
        goto fail;
944

    
945
    ret = ioctl(fd, USBDEVFS_CONNECTINFO, &ci);
946
    if (ret < 0) {
947
        perror("usb_host_device_open: USBDEVFS_CONNECTINFO");
948
        goto fail;
949
    }
950

    
951
    printf("husb: grabbed usb device %d.%d\n", bus_num, addr);
952

    
953
    ret = usb_linux_update_endp_table(dev);
954
    if (ret)
955
        goto fail;
956

    
957
    if (ci.slow)
958
        dev->dev.speed = USB_SPEED_LOW;
959
    else
960
        dev->dev.speed = USB_SPEED_HIGH;
961

    
962
    if (!prod_name || prod_name[0] == '\0')
963
        snprintf(dev->dev.devname, sizeof(dev->dev.devname),
964
                 "host:%d.%d", bus_num, addr);
965
    else
966
        pstrcpy(dev->dev.devname, sizeof(dev->dev.devname),
967
                prod_name);
968

    
969
    /* USB devio uses 'write' flag to check for async completions */
970
    qemu_set_fd_handler(dev->fd, NULL, async_complete, dev);
971

    
972
    hostdev_link(dev);
973

    
974
    return (USBDevice *) dev;
975

    
976
fail:
977
    if (d)
978
        qdev_free(&d->qdev);
979
    if (fd != -1)
980
        close(fd);
981
    return NULL;
982
}
983

    
984
static struct USBDeviceInfo usb_host_dev_info = {
985
    .qdev.name      = "USB Host Device",
986
    .qdev.size      = sizeof(USBHostDevice),
987
    .init           = usb_host_initfn,
988
    .handle_packet  = usb_host_handle_packet,
989
    .handle_reset   = usb_host_handle_reset,
990
#if 0
991
    .handle_control = usb_host_handle_control,
992
    .handle_data    = usb_host_handle_data,
993
#endif
994
    .handle_destroy = usb_host_handle_destroy,
995
};
996

    
997
static void usb_host_register_devices(void)
998
{
999
    usb_qdev_register(&usb_host_dev_info);
1000
}
1001
device_init(usb_host_register_devices)
1002

    
1003
static int usb_host_auto_add(const char *spec);
1004
static int usb_host_auto_del(const char *spec);
1005

    
1006
USBDevice *usb_host_device_open(const char *devname)
1007
{
1008
    Monitor *mon = cur_mon;
1009
    int bus_num, addr;
1010
    char product_name[PRODUCT_NAME_SZ];
1011

    
1012
    if (strstr(devname, "auto:")) {
1013
        usb_host_auto_add(devname);
1014
        return NULL;
1015
    }
1016

    
1017
    if (usb_host_find_device(&bus_num, &addr, product_name, sizeof(product_name),
1018
                             devname) < 0)
1019
        return NULL;
1020

    
1021
    if (hostdev_find(bus_num, addr)) {
1022
       monitor_printf(mon, "husb: host usb device %d.%d is already open\n",
1023
                      bus_num, addr);
1024
       return NULL;
1025
    }
1026

    
1027
    return usb_host_device_open_addr(bus_num, addr, product_name);
1028
}
1029

    
1030
int usb_host_device_close(const char *devname)
1031
{
1032
    char product_name[PRODUCT_NAME_SZ];
1033
    int bus_num, addr;
1034
    USBHostDevice *s;
1035

    
1036
    if (strstr(devname, "auto:"))
1037
        return usb_host_auto_del(devname);
1038

    
1039
    if (usb_host_find_device(&bus_num, &addr, product_name, sizeof(product_name),
1040
                             devname) < 0)
1041
        return -1;
1042
 
1043
    s = hostdev_find(bus_num, addr);
1044
    if (s) {
1045
        usb_device_del_addr(0, s->dev.addr);
1046
        return 0;
1047
    }
1048

    
1049
    return -1;
1050
}
1051
 
1052
static int get_tag_value(char *buf, int buf_size,
1053
                         const char *str, const char *tag,
1054
                         const char *stopchars)
1055
{
1056
    const char *p;
1057
    char *q;
1058
    p = strstr(str, tag);
1059
    if (!p)
1060
        return -1;
1061
    p += strlen(tag);
1062
    while (qemu_isspace(*p))
1063
        p++;
1064
    q = buf;
1065
    while (*p != '\0' && !strchr(stopchars, *p)) {
1066
        if ((q - buf) < (buf_size - 1))
1067
            *q++ = *p;
1068
        p++;
1069
    }
1070
    *q = '\0';
1071
    return q - buf;
1072
}
1073

    
1074
/*
1075
 * Use /proc/bus/usb/devices or /dev/bus/usb/devices file to determine
1076
 * host's USB devices. This is legacy support since many distributions
1077
 * are moving to /sys/bus/usb
1078
 */
1079
static int usb_host_scan_dev(void *opaque, USBScanFunc *func)
1080
{
1081
    FILE *f = NULL;
1082
    char line[1024];
1083
    char buf[1024];
1084
    int bus_num, addr, speed, device_count, class_id, product_id, vendor_id;
1085
    char product_name[512];
1086
    int ret = 0;
1087

    
1088
    if (!usb_host_device_path) {
1089
        perror("husb: USB Host Device Path not set");
1090
        goto the_end;
1091
    }
1092
    snprintf(line, sizeof(line), "%s/devices", usb_host_device_path);
1093
    f = fopen(line, "r");
1094
    if (!f) {
1095
        perror("husb: cannot open devices file");
1096
        goto the_end;
1097
    }
1098

    
1099
    device_count = 0;
1100
    bus_num = addr = speed = class_id = product_id = vendor_id = 0;
1101
    for(;;) {
1102
        if (fgets(line, sizeof(line), f) == NULL)
1103
            break;
1104
        if (strlen(line) > 0)
1105
            line[strlen(line) - 1] = '\0';
1106
        if (line[0] == 'T' && line[1] == ':') {
1107
            if (device_count && (vendor_id || product_id)) {
1108
                /* New device.  Add the previously discovered device.  */
1109
                ret = func(opaque, bus_num, addr, class_id, vendor_id,
1110
                           product_id, product_name, speed);
1111
                if (ret)
1112
                    goto the_end;
1113
            }
1114
            if (get_tag_value(buf, sizeof(buf), line, "Bus=", " ") < 0)
1115
                goto fail;
1116
            bus_num = atoi(buf);
1117
            if (get_tag_value(buf, sizeof(buf), line, "Dev#=", " ") < 0)
1118
                goto fail;
1119
            addr = atoi(buf);
1120
            if (get_tag_value(buf, sizeof(buf), line, "Spd=", " ") < 0)
1121
                goto fail;
1122
            if (!strcmp(buf, "480"))
1123
                speed = USB_SPEED_HIGH;
1124
            else if (!strcmp(buf, "1.5"))
1125
                speed = USB_SPEED_LOW;
1126
            else
1127
                speed = USB_SPEED_FULL;
1128
            product_name[0] = '\0';
1129
            class_id = 0xff;
1130
            device_count++;
1131
            product_id = 0;
1132
            vendor_id = 0;
1133
        } else if (line[0] == 'P' && line[1] == ':') {
1134
            if (get_tag_value(buf, sizeof(buf), line, "Vendor=", " ") < 0)
1135
                goto fail;
1136
            vendor_id = strtoul(buf, NULL, 16);
1137
            if (get_tag_value(buf, sizeof(buf), line, "ProdID=", " ") < 0)
1138
                goto fail;
1139
            product_id = strtoul(buf, NULL, 16);
1140
        } else if (line[0] == 'S' && line[1] == ':') {
1141
            if (get_tag_value(buf, sizeof(buf), line, "Product=", "") < 0)
1142
                goto fail;
1143
            pstrcpy(product_name, sizeof(product_name), buf);
1144
        } else if (line[0] == 'D' && line[1] == ':') {
1145
            if (get_tag_value(buf, sizeof(buf), line, "Cls=", " (") < 0)
1146
                goto fail;
1147
            class_id = strtoul(buf, NULL, 16);
1148
        }
1149
    fail: ;
1150
    }
1151
    if (device_count && (vendor_id || product_id)) {
1152
        /* Add the last device.  */
1153
        ret = func(opaque, bus_num, addr, class_id, vendor_id,
1154
                   product_id, product_name, speed);
1155
    }
1156
 the_end:
1157
    if (f)
1158
        fclose(f);
1159
    return ret;
1160
}
1161

    
1162
/*
1163
 * Read sys file-system device file
1164
 *
1165
 * @line address of buffer to put file contents in
1166
 * @line_size size of line
1167
 * @device_file path to device file (printf format string)
1168
 * @device_name device being opened (inserted into device_file)
1169
 *
1170
 * @return 0 failed, 1 succeeded ('line' contains data)
1171
 */
1172
static int usb_host_read_file(char *line, size_t line_size, const char *device_file, const char *device_name)
1173
{
1174
    Monitor *mon = cur_mon;
1175
    FILE *f;
1176
    int ret = 0;
1177
    char filename[PATH_MAX];
1178

    
1179
    snprintf(filename, PATH_MAX, USBSYSBUS_PATH "/devices/%s/%s", device_name,
1180
             device_file);
1181
    f = fopen(filename, "r");
1182
    if (f) {
1183
        fgets(line, line_size, f);
1184
        fclose(f);
1185
        ret = 1;
1186
    } else {
1187
        monitor_printf(mon, "husb: could not open %s\n", filename);
1188
    }
1189

    
1190
    return ret;
1191
}
1192

    
1193
/*
1194
 * Use /sys/bus/usb/devices/ directory to determine host's USB
1195
 * devices.
1196
 *
1197
 * This code is based on Robert Schiele's original patches posted to
1198
 * the Novell bug-tracker https://bugzilla.novell.com/show_bug.cgi?id=241950
1199
 */
1200
static int usb_host_scan_sys(void *opaque, USBScanFunc *func)
1201
{
1202
    DIR *dir = NULL;
1203
    char line[1024];
1204
    int bus_num, addr, speed, class_id, product_id, vendor_id;
1205
    int ret = 0;
1206
    char product_name[512];
1207
    struct dirent *de;
1208

    
1209
    dir = opendir(USBSYSBUS_PATH "/devices");
1210
    if (!dir) {
1211
        perror("husb: cannot open devices directory");
1212
        goto the_end;
1213
    }
1214

    
1215
    while ((de = readdir(dir))) {
1216
        if (de->d_name[0] != '.' && !strchr(de->d_name, ':')) {
1217
            char *tmpstr = de->d_name;
1218
            if (!strncmp(de->d_name, "usb", 3))
1219
                tmpstr += 3;
1220
            bus_num = atoi(tmpstr);
1221

    
1222
            if (!usb_host_read_file(line, sizeof(line), "devnum", de->d_name))
1223
                goto the_end;
1224
            if (sscanf(line, "%d", &addr) != 1)
1225
                goto the_end;
1226

    
1227
            if (!usb_host_read_file(line, sizeof(line), "bDeviceClass",
1228
                                    de->d_name))
1229
                goto the_end;
1230
            if (sscanf(line, "%x", &class_id) != 1)
1231
                goto the_end;
1232

    
1233
            if (!usb_host_read_file(line, sizeof(line), "idVendor", de->d_name))
1234
                goto the_end;
1235
            if (sscanf(line, "%x", &vendor_id) != 1)
1236
                goto the_end;
1237

    
1238
            if (!usb_host_read_file(line, sizeof(line), "idProduct",
1239
                                    de->d_name))
1240
                goto the_end;
1241
            if (sscanf(line, "%x", &product_id) != 1)
1242
                goto the_end;
1243

    
1244
            if (!usb_host_read_file(line, sizeof(line), "product",
1245
                                    de->d_name)) {
1246
                *product_name = 0;
1247
            } else {
1248
                if (strlen(line) > 0)
1249
                    line[strlen(line) - 1] = '\0';
1250
                pstrcpy(product_name, sizeof(product_name), line);
1251
            }
1252

    
1253
            if (!usb_host_read_file(line, sizeof(line), "speed", de->d_name))
1254
                goto the_end;
1255
            if (!strcmp(line, "480\n"))
1256
                speed = USB_SPEED_HIGH;
1257
            else if (!strcmp(line, "1.5\n"))
1258
                speed = USB_SPEED_LOW;
1259
            else
1260
                speed = USB_SPEED_FULL;
1261

    
1262
            ret = func(opaque, bus_num, addr, class_id, vendor_id,
1263
                       product_id, product_name, speed);
1264
            if (ret)
1265
                goto the_end;
1266
        }
1267
    }
1268
 the_end:
1269
    if (dir)
1270
        closedir(dir);
1271
    return ret;
1272
}
1273

    
1274
/*
1275
 * Determine how to access the host's USB devices and call the
1276
 * specific support function.
1277
 */
1278
static int usb_host_scan(void *opaque, USBScanFunc *func)
1279
{
1280
    Monitor *mon = cur_mon;
1281
    FILE *f = NULL;
1282
    DIR *dir = NULL;
1283
    int ret = 0;
1284
    const char *fs_type[] = {"unknown", "proc", "dev", "sys"};
1285
    char devpath[PATH_MAX];
1286

    
1287
    /* only check the host once */
1288
    if (!usb_fs_type) {
1289
        dir = opendir(USBSYSBUS_PATH "/devices");
1290
        if (dir) {
1291
            /* devices found in /dev/bus/usb/ (yes - not a mistake!) */
1292
            strcpy(devpath, USBDEVBUS_PATH);
1293
            usb_fs_type = USB_FS_SYS;
1294
            closedir(dir);
1295
            dprintf(USBDBG_DEVOPENED, USBSYSBUS_PATH);
1296
            goto found_devices;
1297
        }
1298
        f = fopen(USBPROCBUS_PATH "/devices", "r");
1299
        if (f) {
1300
            /* devices found in /proc/bus/usb/ */
1301
            strcpy(devpath, USBPROCBUS_PATH);
1302
            usb_fs_type = USB_FS_PROC;
1303
            fclose(f);
1304
            dprintf(USBDBG_DEVOPENED, USBPROCBUS_PATH);
1305
            goto found_devices;
1306
        }
1307
        /* try additional methods if an access method hasn't been found yet */
1308
        f = fopen(USBDEVBUS_PATH "/devices", "r");
1309
        if (f) {
1310
            /* devices found in /dev/bus/usb/ */
1311
            strcpy(devpath, USBDEVBUS_PATH);
1312
            usb_fs_type = USB_FS_DEV;
1313
            fclose(f);
1314
            dprintf(USBDBG_DEVOPENED, USBDEVBUS_PATH);
1315
            goto found_devices;
1316
        }
1317
    found_devices:
1318
        if (!usb_fs_type) {
1319
            monitor_printf(mon, "husb: unable to access USB devices\n");
1320
            return -ENOENT;
1321
        }
1322

    
1323
        /* the module setting (used later for opening devices) */
1324
        usb_host_device_path = qemu_mallocz(strlen(devpath)+1);
1325
        strcpy(usb_host_device_path, devpath);
1326
        monitor_printf(mon, "husb: using %s file-system with %s\n",
1327
                       fs_type[usb_fs_type], usb_host_device_path);
1328
    }
1329

    
1330
    switch (usb_fs_type) {
1331
    case USB_FS_PROC:
1332
    case USB_FS_DEV:
1333
        ret = usb_host_scan_dev(opaque, func);
1334
        break;
1335
    case USB_FS_SYS:
1336
        ret = usb_host_scan_sys(opaque, func);
1337
        break;
1338
    default:
1339
        ret = -EINVAL;
1340
        break;
1341
    }
1342
    return ret;
1343
}
1344

    
1345
struct USBAutoFilter {
1346
    struct USBAutoFilter *next;
1347
    int bus_num;
1348
    int addr;
1349
    int vendor_id;
1350
    int product_id;
1351
};
1352

    
1353
static QEMUTimer *usb_auto_timer;
1354
static struct USBAutoFilter *usb_auto_filter;
1355

    
1356
static int usb_host_auto_scan(void *opaque, int bus_num, int addr,
1357
                     int class_id, int vendor_id, int product_id,
1358
                     const char *product_name, int speed)
1359
{
1360
    struct USBAutoFilter *f;
1361
    struct USBDevice *dev;
1362

    
1363
    /* Ignore hubs */
1364
    if (class_id == 9)
1365
        return 0;
1366

    
1367
    for (f = usb_auto_filter; f; f = f->next) {
1368
        if (f->bus_num >= 0 && f->bus_num != bus_num)
1369
            continue;
1370

    
1371
        if (f->addr >= 0 && f->addr != addr)
1372
            continue;
1373

    
1374
        if (f->vendor_id >= 0 && f->vendor_id != vendor_id)
1375
            continue;
1376

    
1377
        if (f->product_id >= 0 && f->product_id != product_id)
1378
            continue;
1379

    
1380
        /* We got a match */
1381

    
1382
        /* Allredy attached ? */
1383
        if (hostdev_find(bus_num, addr))
1384
            return 0;
1385

    
1386
        dprintf("husb: auto open: bus_num %d addr %d\n", bus_num, addr);
1387

    
1388
        dev = usb_host_device_open_addr(bus_num, addr, product_name);
1389
        if (dev)
1390
            usb_device_add_dev(dev);
1391
    }
1392

    
1393
    return 0;
1394
}
1395

    
1396
static void usb_host_auto_timer(void *unused)
1397
{
1398
    usb_host_scan(NULL, usb_host_auto_scan);
1399
    qemu_mod_timer(usb_auto_timer, qemu_get_clock(rt_clock) + 2000);
1400
}
1401

    
1402
/*
1403
 * Autoconnect filter
1404
 * Format:
1405
 *    auto:bus:dev[:vid:pid]
1406
 *    auto:bus.dev[:vid:pid]
1407
 *
1408
 *    bus  - bus number    (dec, * means any)
1409
 *    dev  - device number (dec, * means any)
1410
 *    vid  - vendor id     (hex, * means any)
1411
 *    pid  - product id    (hex, * means any)
1412
 *
1413
 *    See 'lsusb' output.
1414
 */
1415
static int parse_filter(const char *spec, struct USBAutoFilter *f)
1416
{
1417
    enum { BUS, DEV, VID, PID, DONE };
1418
    const char *p = spec;
1419
    int i;
1420

    
1421
    f->bus_num    = -1;
1422
    f->addr       = -1;
1423
    f->vendor_id  = -1;
1424
    f->product_id = -1;
1425

    
1426
    for (i = BUS; i < DONE; i++) {
1427
            p = strpbrk(p, ":.");
1428
            if (!p) break;
1429
        p++;
1430
 
1431
            if (*p == '*')
1432
            continue;
1433

    
1434
        switch(i) {
1435
        case BUS: f->bus_num = strtol(p, NULL, 10);    break;
1436
        case DEV: f->addr    = strtol(p, NULL, 10);    break;
1437
        case VID: f->vendor_id  = strtol(p, NULL, 16); break;
1438
        case PID: f->product_id = strtol(p, NULL, 16); break;
1439
        }
1440
    }
1441

    
1442
    if (i < DEV) {
1443
        fprintf(stderr, "husb: invalid auto filter spec %s\n", spec);
1444
        return -1;
1445
    }
1446

    
1447
    return 0;
1448
}
1449

    
1450
static int match_filter(const struct USBAutoFilter *f1, 
1451
                        const struct USBAutoFilter *f2)
1452
{
1453
    return f1->bus_num    == f2->bus_num &&
1454
           f1->addr       == f2->addr &&
1455
           f1->vendor_id  == f2->vendor_id &&
1456
           f1->product_id == f2->product_id;
1457
}
1458

    
1459
static int usb_host_auto_add(const char *spec)
1460
{
1461
    struct USBAutoFilter filter, *f;
1462

    
1463
    if (parse_filter(spec, &filter) < 0)
1464
        return -1;
1465

    
1466
    f = qemu_mallocz(sizeof(*f));
1467

    
1468
    *f = filter; 
1469

    
1470
    if (!usb_auto_filter) {
1471
        /*
1472
         * First entry. Init and start the monitor.
1473
         * Right now we're using timer to check for new devices.
1474
         * If this turns out to be too expensive we can move that into a 
1475
         * separate thread.
1476
         */
1477
        usb_auto_timer = qemu_new_timer(rt_clock, usb_host_auto_timer, NULL);
1478
        if (!usb_auto_timer) {
1479
            fprintf(stderr, "husb: failed to allocate auto scan timer\n");
1480
            qemu_free(f);
1481
            return -1;
1482
        }
1483

    
1484
        /* Check for new devices every two seconds */
1485
        qemu_mod_timer(usb_auto_timer, qemu_get_clock(rt_clock) + 2000);
1486
    }
1487

    
1488
    dprintf("husb: added auto filter: bus_num %d addr %d vid %d pid %d\n",
1489
        f->bus_num, f->addr, f->vendor_id, f->product_id);
1490

    
1491
    f->next = usb_auto_filter;
1492
    usb_auto_filter = f;
1493

    
1494
    return 0;
1495
}
1496

    
1497
static int usb_host_auto_del(const char *spec)
1498
{
1499
    struct USBAutoFilter *pf = usb_auto_filter;
1500
    struct USBAutoFilter **prev = &usb_auto_filter;
1501
    struct USBAutoFilter filter;
1502

    
1503
    if (parse_filter(spec, &filter) < 0)
1504
        return -1;
1505

    
1506
    while (pf) {
1507
        if (match_filter(pf, &filter)) {
1508
            dprintf("husb: removed auto filter: bus_num %d addr %d vid %d pid %d\n",
1509
                     pf->bus_num, pf->addr, pf->vendor_id, pf->product_id);
1510

    
1511
            *prev = pf->next;
1512

    
1513
            if (!usb_auto_filter) {
1514
                /* No more filters. Stop scanning. */
1515
                qemu_del_timer(usb_auto_timer);
1516
                qemu_free_timer(usb_auto_timer);
1517
            }
1518

    
1519
            return 0;
1520
        }
1521

    
1522
        prev = &pf->next;
1523
        pf   = pf->next;
1524
    }
1525

    
1526
    return -1;
1527
}
1528

    
1529
typedef struct FindDeviceState {
1530
    int vendor_id;
1531
    int product_id;
1532
    int bus_num;
1533
    int addr;
1534
    char product_name[PRODUCT_NAME_SZ];
1535
} FindDeviceState;
1536

    
1537
static int usb_host_find_device_scan(void *opaque, int bus_num, int addr,
1538
                                     int class_id,
1539
                                     int vendor_id, int product_id,
1540
                                     const char *product_name, int speed)
1541
{
1542
    FindDeviceState *s = opaque;
1543
    if ((vendor_id == s->vendor_id &&
1544
        product_id == s->product_id) ||
1545
        (bus_num == s->bus_num &&
1546
        addr == s->addr)) {
1547
        pstrcpy(s->product_name, PRODUCT_NAME_SZ, product_name);
1548
        s->bus_num = bus_num;
1549
        s->addr = addr;
1550
        return 1;
1551
    } else {
1552
        return 0;
1553
    }
1554
}
1555

    
1556
/* the syntax is :
1557
   'bus.addr' (decimal numbers) or
1558
   'vendor_id:product_id' (hexa numbers) */
1559
static int usb_host_find_device(int *pbus_num, int *paddr,
1560
                                char *product_name, int product_name_size,
1561
                                const char *devname)
1562
{
1563
    const char *p;
1564
    int ret;
1565
    FindDeviceState fs;
1566

    
1567
    p = strchr(devname, '.');
1568
    if (p) {
1569
        *pbus_num = strtoul(devname, NULL, 0);
1570
        *paddr = strtoul(p + 1, NULL, 0);
1571
        fs.bus_num = *pbus_num;
1572
        fs.addr = *paddr;
1573
        ret = usb_host_scan(&fs, usb_host_find_device_scan);
1574
        if (ret)
1575
            pstrcpy(product_name, product_name_size, fs.product_name);
1576
        return 0;
1577
    }
1578

    
1579
    p = strchr(devname, ':');
1580
    if (p) {
1581
        fs.vendor_id = strtoul(devname, NULL, 16);
1582
        fs.product_id = strtoul(p + 1, NULL, 16);
1583
        ret = usb_host_scan(&fs, usb_host_find_device_scan);
1584
        if (ret) {
1585
            *pbus_num = fs.bus_num;
1586
            *paddr = fs.addr;
1587
            pstrcpy(product_name, product_name_size, fs.product_name);
1588
            return 0;
1589
        }
1590
    }
1591
    return -1;
1592
}
1593

    
1594
/**********************/
1595
/* USB host device info */
1596

    
1597
struct usb_class_info {
1598
    int class;
1599
    const char *class_name;
1600
};
1601

    
1602
static const struct usb_class_info usb_class_info[] = {
1603
    { USB_CLASS_AUDIO, "Audio"},
1604
    { USB_CLASS_COMM, "Communication"},
1605
    { USB_CLASS_HID, "HID"},
1606
    { USB_CLASS_HUB, "Hub" },
1607
    { USB_CLASS_PHYSICAL, "Physical" },
1608
    { USB_CLASS_PRINTER, "Printer" },
1609
    { USB_CLASS_MASS_STORAGE, "Storage" },
1610
    { USB_CLASS_CDC_DATA, "Data" },
1611
    { USB_CLASS_APP_SPEC, "Application Specific" },
1612
    { USB_CLASS_VENDOR_SPEC, "Vendor Specific" },
1613
    { USB_CLASS_STILL_IMAGE, "Still Image" },
1614
    { USB_CLASS_CSCID, "Smart Card" },
1615
    { USB_CLASS_CONTENT_SEC, "Content Security" },
1616
    { -1, NULL }
1617
};
1618

    
1619
static const char *usb_class_str(uint8_t class)
1620
{
1621
    const struct usb_class_info *p;
1622
    for(p = usb_class_info; p->class != -1; p++) {
1623
        if (p->class == class)
1624
            break;
1625
    }
1626
    return p->class_name;
1627
}
1628

    
1629
static void usb_info_device(Monitor *mon, int bus_num, int addr, int class_id,
1630
                            int vendor_id, int product_id,
1631
                            const char *product_name,
1632
                            int speed)
1633
{
1634
    const char *class_str, *speed_str;
1635

    
1636
    switch(speed) {
1637
    case USB_SPEED_LOW:
1638
        speed_str = "1.5";
1639
        break;
1640
    case USB_SPEED_FULL:
1641
        speed_str = "12";
1642
        break;
1643
    case USB_SPEED_HIGH:
1644
        speed_str = "480";
1645
        break;
1646
    default:
1647
        speed_str = "?";
1648
        break;
1649
    }
1650

    
1651
    monitor_printf(mon, "  Device %d.%d, speed %s Mb/s\n",
1652
                bus_num, addr, speed_str);
1653
    class_str = usb_class_str(class_id);
1654
    if (class_str)
1655
        monitor_printf(mon, "    %s:", class_str);
1656
    else
1657
        monitor_printf(mon, "    Class %02x:", class_id);
1658
    monitor_printf(mon, " USB device %04x:%04x", vendor_id, product_id);
1659
    if (product_name[0] != '\0')
1660
        monitor_printf(mon, ", %s", product_name);
1661
    monitor_printf(mon, "\n");
1662
}
1663

    
1664
static int usb_host_info_device(void *opaque, int bus_num, int addr,
1665
                                int class_id,
1666
                                int vendor_id, int product_id,
1667
                                const char *product_name,
1668
                                int speed)
1669
{
1670
    Monitor *mon = opaque;
1671

    
1672
    usb_info_device(mon, bus_num, addr, class_id, vendor_id, product_id,
1673
                    product_name, speed);
1674
    return 0;
1675
}
1676

    
1677
static void dec2str(int val, char *str, size_t size)
1678
{
1679
    if (val == -1)
1680
        snprintf(str, size, "*");
1681
    else
1682
        snprintf(str, size, "%d", val); 
1683
}
1684

    
1685
static void hex2str(int val, char *str, size_t size)
1686
{
1687
    if (val == -1)
1688
        snprintf(str, size, "*");
1689
    else
1690
        snprintf(str, size, "%x", val);
1691
}
1692

    
1693
void usb_host_info(Monitor *mon)
1694
{
1695
    struct USBAutoFilter *f;
1696

    
1697
    usb_host_scan(mon, usb_host_info_device);
1698

    
1699
    if (usb_auto_filter)
1700
        monitor_printf(mon, "  Auto filters:\n");
1701
    for (f = usb_auto_filter; f; f = f->next) {
1702
        char bus[10], addr[10], vid[10], pid[10];
1703
        dec2str(f->bus_num, bus, sizeof(bus));
1704
        dec2str(f->addr, addr, sizeof(addr));
1705
        hex2str(f->vendor_id, vid, sizeof(vid));
1706
        hex2str(f->product_id, pid, sizeof(pid));
1707
        monitor_printf(mon, "    Device %s.%s ID %s:%s\n",
1708
                       bus, addr, vid, pid);
1709
    }
1710
}