2 * eth1394.c -- Ethernet driver for Linux IEEE-1394 Subsystem
4 * Copyright (C) 2001-2003 Ben Collins <bcollins@debian.org>
5 * 2000 Bonin Franck <boninf@free.fr>
6 * 2003 Steve Kinneberg <kinnebergsteve@acmsystems.com>
8 * Mainly based on work by Emanuel Pirker and Andreas E. Bombe
10 * This program is free software; you can redistribute it and/or modify
11 * it under the terms of the GNU General Public License as published by
12 * the Free Software Foundation; either version 2 of the License, or
13 * (at your option) any later version.
15 * This program is distributed in the hope that it will be useful,
16 * but WITHOUT ANY WARRANTY; without even the implied warranty of
17 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
18 * GNU General Public License for more details.
20 * You should have received a copy of the GNU General Public License
21 * along with this program; if not, write to the Free Software Foundation,
22 * Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
25 /* This driver intends to support RFC 2734, which describes a method for
26 * transporting IPv4 datagrams over IEEE-1394 serial busses. This driver
27 * will ultimately support that method, but currently falls short in
32 * - Add MCAP. Limited Multicast exists only to 224.0.0.1 and 224.0.0.2.
34 * Non-RFC 2734 related:
35 * - Handle fragmented skb's coming from the networking layer.
36 * - Move generic GASP reception to core 1394 code
37 * - Convert kmalloc/kfree for link fragments to use kmem_cache_* instead
38 * - Stability improvements
39 * - Performance enhancements
40 * - Consider garbage collecting old partial datagrams after X amount of time
44 #include <linux/module.h>
46 #include <linux/sched.h>
47 #include <linux/kernel.h>
48 #include <linux/slab.h>
49 #include <linux/errno.h>
50 #include <linux/types.h>
51 #include <linux/delay.h>
52 #include <linux/init.h>
54 #include <linux/netdevice.h>
55 #include <linux/inetdevice.h>
56 #include <linux/etherdevice.h>
57 #include <linux/if_arp.h>
58 #include <linux/if_ether.h>
61 #include <linux/tcp.h>
62 #include <linux/skbuff.h>
63 #include <linux/bitops.h>
64 #include <linux/ethtool.h>
65 #include <asm/uaccess.h>
66 #include <asm/delay.h>
67 #include <asm/semaphore.h>
71 #include "ieee1394_types.h"
72 #include "ieee1394_core.h"
73 #include "ieee1394_transactions.h"
75 #include "highlevel.h"
79 #include "config_roms.h"
81 #define ETH1394_PRINT_G(level, fmt, args...) \
82 printk(level "%s: " fmt, driver_name, ## args)
84 #define ETH1394_PRINT(level, dev_name, fmt, args...) \
85 printk(level "%s: %s: " fmt, driver_name, dev_name, ## args)
87 #define DEBUG(fmt, args...) \
88 printk(KERN_ERR "%s:%s[%d]: " fmt "\n", driver_name, __FUNCTION__, __LINE__, ## args)
89 #define TRACE() printk(KERN_ERR "%s:%s[%d] ---- TRACE\n", driver_name, __FUNCTION__, __LINE__)
91 struct fragment_info
{
92 struct list_head list
;
97 struct partial_datagram
{
98 struct list_head list
;
104 struct list_head frag_info
;
108 struct list_head list
; /* partial datagram list per node */
109 unsigned int sz
; /* partial datagram list size per node */
110 spinlock_t lock
; /* partial datagram lock */
113 struct eth1394_host_info
{
114 struct hpsb_host
*host
;
115 struct net_device
*dev
;
118 struct eth1394_node_ref
{
119 struct unit_directory
*ud
;
120 struct list_head list
;
123 struct eth1394_node_info
{
124 u16 maxpayload
; /* Max payload */
125 u8 sspd
; /* Max speed */
126 u64 fifo
; /* FIFO address */
127 struct pdg_list pdg
; /* partial RX datagram lists */
128 int dgl
; /* Outgoing datagram label */
131 /* Our ieee1394 highlevel driver */
132 #define ETH1394_DRIVER_NAME "eth1394"
133 static const char driver_name
[] = ETH1394_DRIVER_NAME
;
135 static kmem_cache_t
*packet_task_cache
;
137 static struct hpsb_highlevel eth1394_highlevel
;
139 /* Use common.lf to determine header len */
140 static const int hdr_type_len
[] = {
141 sizeof (struct eth1394_uf_hdr
),
142 sizeof (struct eth1394_ff_hdr
),
143 sizeof (struct eth1394_sf_hdr
),
144 sizeof (struct eth1394_sf_hdr
)
147 /* Change this to IEEE1394_SPEED_S100 to make testing easier */
148 #define ETH1394_SPEED_DEF IEEE1394_SPEED_MAX
150 /* For now, this needs to be 1500, so that XP works with us */
151 #define ETH1394_DATA_LEN ETH_DATA_LEN
153 static const u16 eth1394_speedto_maxpayload
[] = {
154 /* S100, S200, S400, S800, S1600, S3200 */
155 512, 1024, 2048, 4096, 4096, 4096
158 MODULE_AUTHOR("Ben Collins (bcollins@debian.org)");
159 MODULE_DESCRIPTION("IEEE 1394 IPv4 Driver (IPv4-over-1394 as per RFC 2734)");
160 MODULE_LICENSE("GPL");
162 /* The max_partial_datagrams parameter is the maximum number of fragmented
163 * datagrams per node that eth1394 will keep in memory. Providing an upper
164 * bound allows us to limit the amount of memory that partial datagrams
165 * consume in the event that some partial datagrams are never completed.
167 static int max_partial_datagrams
= 25;
168 module_param(max_partial_datagrams
, int, S_IRUGO
| S_IWUSR
);
169 MODULE_PARM_DESC(max_partial_datagrams
,
170 "Maximum number of partially received fragmented datagrams "
174 static int ether1394_header(struct sk_buff
*skb
, struct net_device
*dev
,
175 unsigned short type
, void *daddr
, void *saddr
,
177 static int ether1394_rebuild_header(struct sk_buff
*skb
);
178 static int ether1394_header_parse(struct sk_buff
*skb
, unsigned char *haddr
);
179 static int ether1394_header_cache(struct neighbour
*neigh
, struct hh_cache
*hh
);
180 static void ether1394_header_cache_update(struct hh_cache
*hh
,
181 struct net_device
*dev
,
182 unsigned char * haddr
);
183 static int ether1394_mac_addr(struct net_device
*dev
, void *p
);
185 static void purge_partial_datagram(struct list_head
*old
);
186 static int ether1394_tx(struct sk_buff
*skb
, struct net_device
*dev
);
187 static void ether1394_iso(struct hpsb_iso
*iso
);
189 static struct ethtool_ops ethtool_ops
;
191 static int ether1394_write(struct hpsb_host
*host
, int srcid
, int destid
,
192 quadlet_t
*data
, u64 addr
, size_t len
, u16 flags
);
193 static void ether1394_add_host (struct hpsb_host
*host
);
194 static void ether1394_remove_host (struct hpsb_host
*host
);
195 static void ether1394_host_reset (struct hpsb_host
*host
);
197 /* Function for incoming 1394 packets */
198 static struct hpsb_address_ops addr_ops
= {
199 .write
= ether1394_write
,
202 /* Ieee1394 highlevel driver functions */
203 static struct hpsb_highlevel eth1394_highlevel
= {
205 .add_host
= ether1394_add_host
,
206 .remove_host
= ether1394_remove_host
,
207 .host_reset
= ether1394_host_reset
,
211 /* This is called after an "ifup" */
212 static int ether1394_open (struct net_device
*dev
)
214 struct eth1394_priv
*priv
= netdev_priv(dev
);
217 /* Something bad happened, don't even try */
218 if (priv
->bc_state
== ETHER1394_BC_ERROR
) {
219 /* we'll try again */
220 priv
->iso
= hpsb_iso_recv_init(priv
->host
,
221 ETHER1394_ISO_BUF_SIZE
,
222 ETHER1394_GASP_BUFFERS
,
223 priv
->broadcast_channel
,
224 HPSB_ISO_DMA_PACKET_PER_BUFFER
,
226 if (priv
->iso
== NULL
) {
227 ETH1394_PRINT(KERN_ERR
, dev
->name
,
228 "Could not allocate isochronous receive "
229 "context for the broadcast channel\n");
230 priv
->bc_state
= ETHER1394_BC_ERROR
;
233 if (hpsb_iso_recv_start(priv
->iso
, -1, (1 << 3), -1) < 0)
234 priv
->bc_state
= ETHER1394_BC_STOPPED
;
236 priv
->bc_state
= ETHER1394_BC_RUNNING
;
243 netif_start_queue (dev
);
247 /* This is called after an "ifdown" */
248 static int ether1394_stop (struct net_device
*dev
)
250 netif_stop_queue (dev
);
254 /* Return statistics to the caller */
255 static struct net_device_stats
*ether1394_stats (struct net_device
*dev
)
257 return &(((struct eth1394_priv
*)netdev_priv(dev
))->stats
);
260 /* What to do if we timeout. I think a host reset is probably in order, so
261 * that's what we do. Should we increment the stat counters too? */
262 static void ether1394_tx_timeout (struct net_device
*dev
)
264 ETH1394_PRINT (KERN_ERR
, dev
->name
, "Timeout, resetting host %s\n",
265 ((struct eth1394_priv
*)netdev_priv(dev
))->host
->driver
->name
);
267 highlevel_host_reset (((struct eth1394_priv
*)netdev_priv(dev
))->host
);
269 netif_wake_queue (dev
);
272 static int ether1394_change_mtu(struct net_device
*dev
, int new_mtu
)
274 struct eth1394_priv
*priv
= netdev_priv(dev
);
276 if ((new_mtu
< 68) ||
277 (new_mtu
> min(ETH1394_DATA_LEN
,
278 (int)((1 << (priv
->host
->csr
.max_rec
+ 1)) -
279 (sizeof(union eth1394_hdr
) +
280 ETHER1394_GASP_OVERHEAD
)))))
286 static void purge_partial_datagram(struct list_head
*old
)
288 struct partial_datagram
*pd
= list_entry(old
, struct partial_datagram
, list
);
289 struct list_head
*lh
, *n
;
291 list_for_each_safe(lh
, n
, &pd
->frag_info
) {
292 struct fragment_info
*fi
= list_entry(lh
, struct fragment_info
, list
);
301 /******************************************
302 * 1394 bus activity functions
303 ******************************************/
305 static struct eth1394_node_ref
*eth1394_find_node(struct list_head
*inl
,
306 struct unit_directory
*ud
)
308 struct eth1394_node_ref
*node
;
310 list_for_each_entry(node
, inl
, list
)
317 static struct eth1394_node_ref
*eth1394_find_node_guid(struct list_head
*inl
,
320 struct eth1394_node_ref
*node
;
322 list_for_each_entry(node
, inl
, list
)
323 if (node
->ud
->ne
->guid
== guid
)
329 static struct eth1394_node_ref
*eth1394_find_node_nodeid(struct list_head
*inl
,
332 struct eth1394_node_ref
*node
;
333 list_for_each_entry(node
, inl
, list
) {
334 if (node
->ud
->ne
->nodeid
== nodeid
)
341 static int eth1394_probe(struct device
*dev
)
343 struct unit_directory
*ud
;
344 struct eth1394_host_info
*hi
;
345 struct eth1394_priv
*priv
;
346 struct eth1394_node_ref
*new_node
;
347 struct eth1394_node_info
*node_info
;
349 ud
= container_of(dev
, struct unit_directory
, device
);
351 hi
= hpsb_get_hostinfo(ð1394_highlevel
, ud
->ne
->host
);
355 new_node
= kmalloc(sizeof(*new_node
),
356 in_interrupt() ? GFP_ATOMIC
: GFP_KERNEL
);
360 node_info
= kmalloc(sizeof(*node_info
),
361 in_interrupt() ? GFP_ATOMIC
: GFP_KERNEL
);
367 spin_lock_init(&node_info
->pdg
.lock
);
368 INIT_LIST_HEAD(&node_info
->pdg
.list
);
369 node_info
->pdg
.sz
= 0;
370 node_info
->fifo
= ETHER1394_INVALID_ADDR
;
372 ud
->device
.driver_data
= node_info
;
375 priv
= netdev_priv(hi
->dev
);
376 list_add_tail(&new_node
->list
, &priv
->ip_node_list
);
381 static int eth1394_remove(struct device
*dev
)
383 struct unit_directory
*ud
;
384 struct eth1394_host_info
*hi
;
385 struct eth1394_priv
*priv
;
386 struct eth1394_node_ref
*old_node
;
387 struct eth1394_node_info
*node_info
;
388 struct list_head
*lh
, *n
;
391 ud
= container_of(dev
, struct unit_directory
, device
);
392 hi
= hpsb_get_hostinfo(ð1394_highlevel
, ud
->ne
->host
);
396 priv
= netdev_priv(hi
->dev
);
398 old_node
= eth1394_find_node(&priv
->ip_node_list
, ud
);
401 list_del(&old_node
->list
);
404 node_info
= (struct eth1394_node_info
*)ud
->device
.driver_data
;
406 spin_lock_irqsave(&node_info
->pdg
.lock
, flags
);
407 /* The partial datagram list should be empty, but we'll just
408 * make sure anyway... */
409 list_for_each_safe(lh
, n
, &node_info
->pdg
.list
) {
410 purge_partial_datagram(lh
);
412 spin_unlock_irqrestore(&node_info
->pdg
.lock
, flags
);
415 ud
->device
.driver_data
= NULL
;
420 static int eth1394_update(struct unit_directory
*ud
)
422 struct eth1394_host_info
*hi
;
423 struct eth1394_priv
*priv
;
424 struct eth1394_node_ref
*node
;
425 struct eth1394_node_info
*node_info
;
427 hi
= hpsb_get_hostinfo(ð1394_highlevel
, ud
->ne
->host
);
431 priv
= netdev_priv(hi
->dev
);
433 node
= eth1394_find_node(&priv
->ip_node_list
, ud
);
436 node
= kmalloc(sizeof(*node
),
437 in_interrupt() ? GFP_ATOMIC
: GFP_KERNEL
);
441 node_info
= kmalloc(sizeof(*node_info
),
442 in_interrupt() ? GFP_ATOMIC
: GFP_KERNEL
);
448 spin_lock_init(&node_info
->pdg
.lock
);
449 INIT_LIST_HEAD(&node_info
->pdg
.list
);
450 node_info
->pdg
.sz
= 0;
452 ud
->device
.driver_data
= node_info
;
455 priv
= netdev_priv(hi
->dev
);
456 list_add_tail(&node
->list
, &priv
->ip_node_list
);
463 static struct ieee1394_device_id eth1394_id_table
[] = {
465 .match_flags
= (IEEE1394_MATCH_SPECIFIER_ID
|
466 IEEE1394_MATCH_VERSION
),
467 .specifier_id
= ETHER1394_GASP_SPECIFIER_ID
,
468 .version
= ETHER1394_GASP_VERSION
,
473 MODULE_DEVICE_TABLE(ieee1394
, eth1394_id_table
);
475 static struct hpsb_protocol_driver eth1394_proto_driver
= {
476 .name
= "IPv4 over 1394 Driver",
477 .id_table
= eth1394_id_table
,
478 .update
= eth1394_update
,
480 .name
= ETH1394_DRIVER_NAME
,
481 .bus
= &ieee1394_bus_type
,
482 .probe
= eth1394_probe
,
483 .remove
= eth1394_remove
,
488 static void ether1394_reset_priv (struct net_device
*dev
, int set_mtu
)
492 struct eth1394_priv
*priv
= netdev_priv(dev
);
493 struct hpsb_host
*host
= priv
->host
;
494 u64 guid
= *((u64
*)&(host
->csr
.rom
->bus_info_data
[3]));
495 u16 maxpayload
= 1 << (host
->csr
.max_rec
+ 1);
496 int max_speed
= IEEE1394_SPEED_MAX
;
498 spin_lock_irqsave (&priv
->lock
, flags
);
500 memset(priv
->ud_list
, 0, sizeof(struct node_entry
*) * ALL_NODES
);
501 priv
->bc_maxpayload
= 512;
503 /* Determine speed limit */
504 for (i
= 0; i
< host
->node_count
; i
++)
505 if (max_speed
> host
->speed_map
[NODEID_TO_NODE(host
->node_id
) *
507 max_speed
= host
->speed_map
[NODEID_TO_NODE(host
->node_id
) *
509 priv
->bc_sspd
= max_speed
;
511 /* We'll use our maxpayload as the default mtu */
513 dev
->mtu
= min(ETH1394_DATA_LEN
,
515 (sizeof(union eth1394_hdr
) +
516 ETHER1394_GASP_OVERHEAD
)));
518 /* Set our hardware address while we're at it */
519 *(u64
*)dev
->dev_addr
= guid
;
520 *(u64
*)dev
->broadcast
= ~0x0ULL
;
523 spin_unlock_irqrestore (&priv
->lock
, flags
);
526 /* This function is called right before register_netdev */
527 static void ether1394_init_dev (struct net_device
*dev
)
530 dev
->open
= ether1394_open
;
531 dev
->stop
= ether1394_stop
;
532 dev
->hard_start_xmit
= ether1394_tx
;
533 dev
->get_stats
= ether1394_stats
;
534 dev
->tx_timeout
= ether1394_tx_timeout
;
535 dev
->change_mtu
= ether1394_change_mtu
;
537 dev
->hard_header
= ether1394_header
;
538 dev
->rebuild_header
= ether1394_rebuild_header
;
539 dev
->hard_header_cache
= ether1394_header_cache
;
540 dev
->header_cache_update
= ether1394_header_cache_update
;
541 dev
->hard_header_parse
= ether1394_header_parse
;
542 dev
->set_mac_address
= ether1394_mac_addr
;
543 SET_ETHTOOL_OPS(dev
, ðtool_ops
);
546 dev
->watchdog_timeo
= ETHER1394_TIMEOUT
;
547 dev
->flags
= IFF_BROADCAST
| IFF_MULTICAST
;
548 dev
->features
= NETIF_F_HIGHDMA
;
549 dev
->addr_len
= ETH1394_ALEN
;
550 dev
->hard_header_len
= ETH1394_HLEN
;
551 dev
->type
= ARPHRD_IEEE1394
;
553 ether1394_reset_priv (dev
, 1);
557 * This function is called every time a card is found. It is generally called
558 * when the module is installed. This is where we add all of our ethernet
559 * devices. One for each host.
561 static void ether1394_add_host (struct hpsb_host
*host
)
563 struct eth1394_host_info
*hi
= NULL
;
564 struct net_device
*dev
= NULL
;
565 struct eth1394_priv
*priv
;
568 if (!(host
->config_roms
& HPSB_CONFIG_ROM_ENTRY_IP1394
))
571 fifo_addr
= hpsb_allocate_and_register_addrspace(ð1394_highlevel
,
574 ETHER1394_REGION_ADDR_LEN
,
575 ETHER1394_REGION_ADDR_LEN
,
577 if (fifo_addr
== ~0ULL)
580 /* We should really have our own alloc_hpsbdev() function in
581 * net_init.c instead of calling the one for ethernet then hijacking
582 * it for ourselves. That way we'd be a real networking device. */
583 dev
= alloc_etherdev(sizeof (struct eth1394_priv
));
586 ETH1394_PRINT_G (KERN_ERR
, "Out of memory trying to allocate "
587 "etherdevice for IEEE 1394 device %s-%d\n",
588 host
->driver
->name
, host
->id
);
592 SET_MODULE_OWNER(dev
);
593 SET_NETDEV_DEV(dev
, &host
->device
);
595 priv
= netdev_priv(dev
);
597 INIT_LIST_HEAD(&priv
->ip_node_list
);
599 spin_lock_init(&priv
->lock
);
601 priv
->local_fifo
= fifo_addr
;
603 hi
= hpsb_create_hostinfo(ð1394_highlevel
, host
, sizeof(*hi
));
606 ETH1394_PRINT_G (KERN_ERR
, "Out of memory trying to create "
607 "hostinfo for IEEE 1394 device %s-%d\n",
608 host
->driver
->name
, host
->id
);
612 ether1394_init_dev(dev
);
614 if (register_netdev (dev
)) {
615 ETH1394_PRINT (KERN_ERR
, dev
->name
, "Error registering network driver\n");
619 ETH1394_PRINT (KERN_INFO
, dev
->name
, "IEEE-1394 IPv4 over 1394 Ethernet (fw-host%d)\n",
625 /* Ignore validity in hopes that it will be set in the future. It'll
626 * be checked when the eth device is opened. */
627 priv
->broadcast_channel
= host
->csr
.broadcast_channel
& 0x3f;
629 priv
->iso
= hpsb_iso_recv_init(host
,
630 ETHER1394_ISO_BUF_SIZE
,
631 ETHER1394_GASP_BUFFERS
,
632 priv
->broadcast_channel
,
633 HPSB_ISO_DMA_PACKET_PER_BUFFER
,
635 if (priv
->iso
== NULL
) {
636 ETH1394_PRINT(KERN_ERR
, dev
->name
,
637 "Could not allocate isochronous receive context "
638 "for the broadcast channel\n");
639 priv
->bc_state
= ETHER1394_BC_ERROR
;
641 if (hpsb_iso_recv_start(priv
->iso
, -1, (1 << 3), -1) < 0)
642 priv
->bc_state
= ETHER1394_BC_STOPPED
;
644 priv
->bc_state
= ETHER1394_BC_RUNNING
;
653 hpsb_destroy_hostinfo(ð1394_highlevel
, host
);
658 /* Remove a card from our list */
659 static void ether1394_remove_host (struct hpsb_host
*host
)
661 struct eth1394_host_info
*hi
;
663 hi
= hpsb_get_hostinfo(ð1394_highlevel
, host
);
665 struct eth1394_priv
*priv
= netdev_priv(hi
->dev
);
667 hpsb_unregister_addrspace(ð1394_highlevel
, host
,
670 if (priv
->iso
!= NULL
)
671 hpsb_iso_shutdown(priv
->iso
);
674 unregister_netdev (hi
->dev
);
675 free_netdev(hi
->dev
);
682 /* A reset has just arisen */
683 static void ether1394_host_reset (struct hpsb_host
*host
)
685 struct eth1394_host_info
*hi
;
686 struct eth1394_priv
*priv
;
687 struct net_device
*dev
;
688 struct list_head
*lh
, *n
;
689 struct eth1394_node_ref
*node
;
690 struct eth1394_node_info
*node_info
;
693 hi
= hpsb_get_hostinfo(ð1394_highlevel
, host
);
695 /* This can happen for hosts that we don't use */
700 priv
= (struct eth1394_priv
*)netdev_priv(dev
);
702 /* Reset our private host data, but not our mtu */
703 netif_stop_queue (dev
);
704 ether1394_reset_priv (dev
, 0);
706 list_for_each_entry(node
, &priv
->ip_node_list
, list
) {
707 node_info
= (struct eth1394_node_info
*)node
->ud
->device
.driver_data
;
709 spin_lock_irqsave(&node_info
->pdg
.lock
, flags
);
711 list_for_each_safe(lh
, n
, &node_info
->pdg
.list
) {
712 purge_partial_datagram(lh
);
715 INIT_LIST_HEAD(&(node_info
->pdg
.list
));
716 node_info
->pdg
.sz
= 0;
718 spin_unlock_irqrestore(&node_info
->pdg
.lock
, flags
);
721 netif_wake_queue (dev
);
724 /******************************************
725 * HW Header net device functions
726 ******************************************/
727 /* These functions have been adapted from net/ethernet/eth.c */
730 /* Create a fake MAC header for an arbitrary protocol layer.
731 * saddr=NULL means use device source address
732 * daddr=NULL means leave destination address (eg unresolved arp). */
733 static int ether1394_header(struct sk_buff
*skb
, struct net_device
*dev
,
734 unsigned short type
, void *daddr
, void *saddr
,
737 struct eth1394hdr
*eth
= (struct eth1394hdr
*)skb_push(skb
, ETH1394_HLEN
);
739 eth
->h_proto
= htons(type
);
741 if (dev
->flags
& (IFF_LOOPBACK
|IFF_NOARP
)) {
742 memset(eth
->h_dest
, 0, dev
->addr_len
);
743 return(dev
->hard_header_len
);
747 memcpy(eth
->h_dest
,daddr
,dev
->addr_len
);
748 return dev
->hard_header_len
;
751 return -dev
->hard_header_len
;
756 /* Rebuild the faked MAC header. This is called after an ARP
757 * (or in future other address resolution) has completed on this
758 * sk_buff. We now let ARP fill in the other fields.
760 * This routine CANNOT use cached dst->neigh!
761 * Really, it is used only when dst->neigh is wrong.
763 static int ether1394_rebuild_header(struct sk_buff
*skb
)
765 struct eth1394hdr
*eth
= (struct eth1394hdr
*)skb
->data
;
766 struct net_device
*dev
= skb
->dev
;
768 switch (eth
->h_proto
) {
771 case __constant_htons(ETH_P_IP
):
772 return arp_find((unsigned char*)ð
->h_dest
, skb
);
775 ETH1394_PRINT(KERN_DEBUG
, dev
->name
,
776 "unable to resolve type %04x addresses.\n",
784 static int ether1394_header_parse(struct sk_buff
*skb
, unsigned char *haddr
)
786 struct net_device
*dev
= skb
->dev
;
787 memcpy(haddr
, dev
->dev_addr
, ETH1394_ALEN
);
792 static int ether1394_header_cache(struct neighbour
*neigh
, struct hh_cache
*hh
)
794 unsigned short type
= hh
->hh_type
;
795 struct eth1394hdr
*eth
= (struct eth1394hdr
*)(((u8
*)hh
->hh_data
) +
796 (16 - ETH1394_HLEN
));
797 struct net_device
*dev
= neigh
->dev
;
799 if (type
== __constant_htons(ETH_P_802_3
)) {
804 memcpy(eth
->h_dest
, neigh
->ha
, dev
->addr_len
);
806 hh
->hh_len
= ETH1394_HLEN
;
810 /* Called by Address Resolution module to notify changes in address. */
811 static void ether1394_header_cache_update(struct hh_cache
*hh
,
812 struct net_device
*dev
,
813 unsigned char * haddr
)
815 memcpy(((u8
*)hh
->hh_data
) + (16 - ETH1394_HLEN
), haddr
, dev
->addr_len
);
818 static int ether1394_mac_addr(struct net_device
*dev
, void *p
)
820 if (netif_running(dev
))
823 /* Not going to allow setting the MAC address, we really need to use
824 * the real one supplied by the hardware */
830 /******************************************
831 * Datagram reception code
832 ******************************************/
834 /* Copied from net/ethernet/eth.c */
835 static inline u16
ether1394_type_trans(struct sk_buff
*skb
,
836 struct net_device
*dev
)
838 struct eth1394hdr
*eth
;
841 skb
->mac
.raw
= skb
->data
;
842 skb_pull (skb
, ETH1394_HLEN
);
843 eth
= eth1394_hdr(skb
);
845 if (*eth
->h_dest
& 1) {
846 if (memcmp(eth
->h_dest
, dev
->broadcast
, dev
->addr_len
)==0)
847 skb
->pkt_type
= PACKET_BROADCAST
;
850 skb
->pkt_type
= PACKET_MULTICAST
;
853 if (memcmp(eth
->h_dest
, dev
->dev_addr
, dev
->addr_len
))
854 skb
->pkt_type
= PACKET_OTHERHOST
;
857 if (ntohs (eth
->h_proto
) >= 1536)
862 if (*(unsigned short *)rawp
== 0xFFFF)
863 return htons (ETH_P_802_3
);
865 return htons (ETH_P_802_2
);
868 /* Parse an encapsulated IP1394 header into an ethernet frame packet.
869 * We also perform ARP translation here, if need be. */
870 static inline u16
ether1394_parse_encap(struct sk_buff
*skb
,
871 struct net_device
*dev
,
872 nodeid_t srcid
, nodeid_t destid
,
875 struct eth1394_priv
*priv
= netdev_priv(dev
);
877 unsigned short ret
= 0;
879 /* Setup our hw addresses. We use these to build the
880 * ethernet header. */
881 if (destid
== (LOCAL_BUS
| ALL_NODES
))
882 dest_hw
= ~0ULL; /* broadcast */
884 dest_hw
= cpu_to_be64((((u64
)priv
->host
->csr
.guid_hi
) << 32) |
885 priv
->host
->csr
.guid_lo
);
887 /* If this is an ARP packet, convert it. First, we want to make
888 * use of some of the fields, since they tell us a little bit
889 * about the sending machine. */
890 if (ether_type
== __constant_htons (ETH_P_ARP
)) {
891 struct eth1394_arp
*arp1394
= (struct eth1394_arp
*)skb
->data
;
892 struct arphdr
*arp
= (struct arphdr
*)skb
->data
;
893 unsigned char *arp_ptr
= (unsigned char *)(arp
+ 1);
894 u64 fifo_addr
= (u64
)ntohs(arp1394
->fifo_hi
) << 32 |
895 ntohl(arp1394
->fifo_lo
);
896 u8 max_rec
= min(priv
->host
->csr
.max_rec
,
897 (u8
)(arp1394
->max_rec
));
898 int sspd
= arp1394
->sspd
;
900 struct eth1394_node_ref
*node
;
901 struct eth1394_node_info
*node_info
;
903 /* Sanity check. MacOSX seems to be sending us 131 in this
904 * field (atleast on my Panther G5). Not sure why. */
905 if (sspd
> 5 || sspd
< 0)
908 maxpayload
= min(eth1394_speedto_maxpayload
[sspd
], (u16
)(1 << (max_rec
+ 1)));
910 node
= eth1394_find_node_guid(&priv
->ip_node_list
,
911 be64_to_cpu(arp1394
->s_uniq_id
));
916 node_info
= (struct eth1394_node_info
*)node
->ud
->device
.driver_data
;
918 /* Update our speed/payload/fifo_offset table */
919 node_info
->maxpayload
= maxpayload
;
920 node_info
->sspd
= sspd
;
921 node_info
->fifo
= fifo_addr
;
923 /* Now that we're done with the 1394 specific stuff, we'll
924 * need to alter some of the data. Believe it or not, all
925 * that needs to be done is sender_IP_address needs to be
926 * moved, the destination hardware address get stuffed
927 * in and the hardware address length set to 8.
929 * IMPORTANT: The code below overwrites 1394 specific data
930 * needed above so keep the munging of the data for the
931 * higher level IP stack last. */
934 arp_ptr
+= arp
->ar_hln
; /* skip over sender unique id */
935 *(u32
*)arp_ptr
= arp1394
->sip
; /* move sender IP addr */
936 arp_ptr
+= arp
->ar_pln
; /* skip over sender IP addr */
939 /* just set ARP req target unique ID to 0 */
940 *((u64
*)arp_ptr
) = 0;
942 *((u64
*)arp_ptr
) = *((u64
*)dev
->dev_addr
);
945 /* Now add the ethernet header. */
946 if (dev
->hard_header (skb
, dev
, __constant_ntohs (ether_type
),
947 &dest_hw
, NULL
, skb
->len
) >= 0)
948 ret
= ether1394_type_trans(skb
, dev
);
953 static inline int fragment_overlap(struct list_head
*frag_list
, int offset
, int len
)
955 struct fragment_info
*fi
;
957 list_for_each_entry(fi
, frag_list
, list
) {
958 if ( ! ((offset
> (fi
->offset
+ fi
->len
- 1)) ||
959 ((offset
+ len
- 1) < fi
->offset
)))
965 static inline struct list_head
*find_partial_datagram(struct list_head
*pdgl
, int dgl
)
967 struct partial_datagram
*pd
;
969 list_for_each_entry(pd
, pdgl
, list
) {
976 /* Assumes that new fragment does not overlap any existing fragments */
977 static inline int new_fragment(struct list_head
*frag_info
, int offset
, int len
)
979 struct list_head
*lh
;
980 struct fragment_info
*fi
, *fi2
, *new;
982 list_for_each(lh
, frag_info
) {
983 fi
= list_entry(lh
, struct fragment_info
, list
);
984 if ((fi
->offset
+ fi
->len
) == offset
) {
985 /* The new fragment can be tacked on to the end */
987 /* Did the new fragment plug a hole? */
988 fi2
= list_entry(lh
->next
, struct fragment_info
, list
);
989 if ((fi
->offset
+ fi
->len
) == fi2
->offset
) {
990 /* glue fragments together */
996 } else if ((offset
+ len
) == fi
->offset
) {
997 /* The new fragment can be tacked on to the beginning */
1000 /* Did the new fragment plug a hole? */
1001 fi2
= list_entry(lh
->prev
, struct fragment_info
, list
);
1002 if ((fi2
->offset
+ fi2
->len
) == fi
->offset
) {
1003 /* glue fragments together */
1004 fi2
->len
+= fi
->len
;
1009 } else if (offset
> (fi
->offset
+ fi
->len
)) {
1011 } else if ((offset
+ len
) < fi
->offset
) {
1017 new = kmalloc(sizeof(*new), GFP_ATOMIC
);
1021 new->offset
= offset
;
1024 list_add(&new->list
, lh
);
1029 static inline int new_partial_datagram(struct net_device
*dev
,
1030 struct list_head
*pdgl
, int dgl
,
1031 int dg_size
, char *frag_buf
,
1032 int frag_off
, int frag_len
)
1034 struct partial_datagram
*new;
1036 new = kmalloc(sizeof(*new), GFP_ATOMIC
);
1040 INIT_LIST_HEAD(&new->frag_info
);
1042 if (new_fragment(&new->frag_info
, frag_off
, frag_len
) < 0) {
1048 new->dg_size
= dg_size
;
1050 new->skb
= dev_alloc_skb(dg_size
+ dev
->hard_header_len
+ 15);
1052 struct fragment_info
*fi
= list_entry(new->frag_info
.next
,
1053 struct fragment_info
,
1060 skb_reserve(new->skb
, (dev
->hard_header_len
+ 15) & ~15);
1061 new->pbuf
= skb_put(new->skb
, dg_size
);
1062 memcpy(new->pbuf
+ frag_off
, frag_buf
, frag_len
);
1064 list_add(&new->list
, pdgl
);
1069 static inline int update_partial_datagram(struct list_head
*pdgl
, struct list_head
*lh
,
1070 char *frag_buf
, int frag_off
, int frag_len
)
1072 struct partial_datagram
*pd
= list_entry(lh
, struct partial_datagram
, list
);
1074 if (new_fragment(&pd
->frag_info
, frag_off
, frag_len
) < 0) {
1078 memcpy(pd
->pbuf
+ frag_off
, frag_buf
, frag_len
);
1080 /* Move list entry to beginnig of list so that oldest partial
1081 * datagrams percolate to the end of the list */
1088 static inline int is_datagram_complete(struct list_head
*lh
, int dg_size
)
1090 struct partial_datagram
*pd
= list_entry(lh
, struct partial_datagram
, list
);
1091 struct fragment_info
*fi
= list_entry(pd
->frag_info
.next
,
1092 struct fragment_info
, list
);
1094 return (fi
->len
== dg_size
);
1097 /* Packet reception. We convert the IP1394 encapsulation header to an
1098 * ethernet header, and fill it with some of our other fields. This is
1099 * an incoming packet from the 1394 bus. */
1100 static int ether1394_data_handler(struct net_device
*dev
, int srcid
, int destid
,
1103 struct sk_buff
*skb
;
1104 unsigned long flags
;
1105 struct eth1394_priv
*priv
= netdev_priv(dev
);
1106 union eth1394_hdr
*hdr
= (union eth1394_hdr
*)buf
;
1107 u16 ether_type
= 0; /* initialized to clear warning */
1109 struct unit_directory
*ud
= priv
->ud_list
[NODEID_TO_NODE(srcid
)];
1110 struct eth1394_node_info
*node_info
;
1113 struct eth1394_node_ref
*node
;
1114 node
= eth1394_find_node_nodeid(&priv
->ip_node_list
, srcid
);
1116 HPSB_PRINT(KERN_ERR
, "ether1394 rx: sender nodeid "
1117 "lookup failure: " NODE_BUS_FMT
,
1118 NODE_BUS_ARGS(priv
->host
, srcid
));
1119 priv
->stats
.rx_dropped
++;
1124 priv
->ud_list
[NODEID_TO_NODE(srcid
)] = ud
;
1127 node_info
= (struct eth1394_node_info
*)ud
->device
.driver_data
;
1129 /* First, did we receive a fragmented or unfragmented datagram? */
1130 hdr
->words
.word1
= ntohs(hdr
->words
.word1
);
1132 hdr_len
= hdr_type_len
[hdr
->common
.lf
];
1134 if (hdr
->common
.lf
== ETH1394_HDR_LF_UF
) {
1135 /* An unfragmented datagram has been received by the ieee1394
1136 * bus. Build an skbuff around it so we can pass it to the
1137 * high level network layer. */
1139 skb
= dev_alloc_skb(len
+ dev
->hard_header_len
+ 15);
1141 HPSB_PRINT (KERN_ERR
, "ether1394 rx: low on mem\n");
1142 priv
->stats
.rx_dropped
++;
1145 skb_reserve(skb
, (dev
->hard_header_len
+ 15) & ~15);
1146 memcpy(skb_put(skb
, len
- hdr_len
), buf
+ hdr_len
, len
- hdr_len
);
1147 ether_type
= hdr
->uf
.ether_type
;
1149 /* A datagram fragment has been received, now the fun begins. */
1151 struct list_head
*pdgl
, *lh
;
1152 struct partial_datagram
*pd
;
1154 int fg_len
= len
- hdr_len
;
1158 struct pdg_list
*pdg
= &(node_info
->pdg
);
1160 hdr
->words
.word3
= ntohs(hdr
->words
.word3
);
1161 /* The 4th header word is reserved so no need to do ntohs() */
1163 if (hdr
->common
.lf
== ETH1394_HDR_LF_FF
) {
1164 ether_type
= hdr
->ff
.ether_type
;
1166 dg_size
= hdr
->ff
.dg_size
+ 1;
1169 hdr
->words
.word2
= ntohs(hdr
->words
.word2
);
1171 dg_size
= hdr
->sf
.dg_size
+ 1;
1172 fg_off
= hdr
->sf
.fg_off
;
1174 spin_lock_irqsave(&pdg
->lock
, flags
);
1176 pdgl
= &(pdg
->list
);
1177 lh
= find_partial_datagram(pdgl
, dgl
);
1180 while (pdg
->sz
>= max_partial_datagrams
) {
1181 /* remove the oldest */
1182 purge_partial_datagram(pdgl
->prev
);
1186 retval
= new_partial_datagram(dev
, pdgl
, dgl
, dg_size
,
1187 buf
+ hdr_len
, fg_off
,
1190 spin_unlock_irqrestore(&pdg
->lock
, flags
);
1194 lh
= find_partial_datagram(pdgl
, dgl
);
1196 struct partial_datagram
*pd
;
1198 pd
= list_entry(lh
, struct partial_datagram
, list
);
1200 if (fragment_overlap(&pd
->frag_info
, fg_off
, fg_len
)) {
1201 /* Overlapping fragments, obliterate old
1202 * datagram and start new one. */
1203 purge_partial_datagram(lh
);
1204 retval
= new_partial_datagram(dev
, pdgl
, dgl
,
1210 spin_unlock_irqrestore(&pdg
->lock
, flags
);
1214 retval
= update_partial_datagram(pdgl
, lh
,
1218 /* Couldn't save off fragment anyway
1219 * so might as well obliterate the
1221 purge_partial_datagram(lh
);
1223 spin_unlock_irqrestore(&pdg
->lock
, flags
);
1226 } /* fragment overlap */
1227 } /* new datagram or add to existing one */
1229 pd
= list_entry(lh
, struct partial_datagram
, list
);
1231 if (hdr
->common
.lf
== ETH1394_HDR_LF_FF
) {
1232 pd
->ether_type
= ether_type
;
1235 if (is_datagram_complete(lh
, dg_size
)) {
1236 ether_type
= pd
->ether_type
;
1238 skb
= skb_get(pd
->skb
);
1239 purge_partial_datagram(lh
);
1240 spin_unlock_irqrestore(&pdg
->lock
, flags
);
1242 /* Datagram is not complete, we're done for the
1244 spin_unlock_irqrestore(&pdg
->lock
, flags
);
1247 } /* unframgented datagram or fragmented one */
1249 /* Write metadata, and then pass to the receive level */
1251 skb
->ip_summed
= CHECKSUM_UNNECESSARY
; /* don't check it */
1253 /* Parse the encapsulation header. This actually does the job of
1254 * converting to an ethernet frame header, aswell as arp
1255 * conversion if needed. ARP conversion is easier in this
1256 * direction, since we are using ethernet as our backend. */
1257 skb
->protocol
= ether1394_parse_encap(skb
, dev
, srcid
, destid
,
1261 spin_lock_irqsave(&priv
->lock
, flags
);
1262 if (!skb
->protocol
) {
1263 priv
->stats
.rx_errors
++;
1264 priv
->stats
.rx_dropped
++;
1265 dev_kfree_skb_any(skb
);
1269 if (netif_rx(skb
) == NET_RX_DROP
) {
1270 priv
->stats
.rx_errors
++;
1271 priv
->stats
.rx_dropped
++;
1276 priv
->stats
.rx_packets
++;
1277 priv
->stats
.rx_bytes
+= skb
->len
;
1280 if (netif_queue_stopped(dev
))
1281 netif_wake_queue(dev
);
1282 spin_unlock_irqrestore(&priv
->lock
, flags
);
1284 dev
->last_rx
= jiffies
;
1289 static int ether1394_write(struct hpsb_host
*host
, int srcid
, int destid
,
1290 quadlet_t
*data
, u64 addr
, size_t len
, u16 flags
)
1292 struct eth1394_host_info
*hi
;
1294 hi
= hpsb_get_hostinfo(ð1394_highlevel
, host
);
1296 ETH1394_PRINT_G(KERN_ERR
, "Could not find net device for host %s\n",
1297 host
->driver
->name
);
1298 return RCODE_ADDRESS_ERROR
;
1301 if (ether1394_data_handler(hi
->dev
, srcid
, destid
, (char*)data
, len
))
1302 return RCODE_ADDRESS_ERROR
;
1304 return RCODE_COMPLETE
;
1307 static void ether1394_iso(struct hpsb_iso
*iso
)
1311 struct eth1394_host_info
*hi
;
1312 struct net_device
*dev
;
1313 struct eth1394_priv
*priv
;
1320 hi
= hpsb_get_hostinfo(ð1394_highlevel
, iso
->host
);
1322 ETH1394_PRINT_G(KERN_ERR
, "Could not find net device for host %s\n",
1323 iso
->host
->driver
->name
);
1329 nready
= hpsb_iso_n_ready(iso
);
1330 for (i
= 0; i
< nready
; i
++) {
1331 struct hpsb_iso_packet_info
*info
=
1332 &iso
->infos
[(iso
->first_packet
+ i
) % iso
->buf_packets
];
1333 data
= (quadlet_t
*) (iso
->data_buf
.kvirt
+ info
->offset
);
1335 /* skip over GASP header */
1336 buf
= (char *)data
+ 8;
1337 len
= info
->len
- 8;
1339 specifier_id
= (((be32_to_cpu(data
[0]) & 0xffff) << 8) |
1340 ((be32_to_cpu(data
[1]) & 0xff000000) >> 24));
1341 source_id
= be32_to_cpu(data
[0]) >> 16;
1343 priv
= netdev_priv(dev
);
1345 if (info
->channel
!= (iso
->host
->csr
.broadcast_channel
& 0x3f) ||
1346 specifier_id
!= ETHER1394_GASP_SPECIFIER_ID
) {
1347 /* This packet is not for us */
1350 ether1394_data_handler(dev
, source_id
, LOCAL_BUS
| ALL_NODES
,
1354 hpsb_iso_recv_release_packets(iso
, i
);
1356 dev
->last_rx
= jiffies
;
1359 /******************************************
1360 * Datagram transmission code
1361 ******************************************/
1363 /* Convert a standard ARP packet to 1394 ARP. The first 8 bytes (the entire
1364 * arphdr) is the same format as the ip1394 header, so they overlap. The rest
1365 * needs to be munged a bit. The remainder of the arphdr is formatted based
1366 * on hwaddr len and ipaddr len. We know what they'll be, so it's easy to
1369 * Now that the EUI is used for the hardware address all we need to do to make
1370 * this work for 1394 is to insert 2 quadlets that contain max_rec size,
1371 * speed, and unicast FIFO address information between the sender_unique_id
1372 * and the IP addresses.
1374 static inline void ether1394_arp_to_1394arp(struct sk_buff
*skb
,
1375 struct net_device
*dev
)
1377 struct eth1394_priv
*priv
= netdev_priv(dev
);
1379 struct arphdr
*arp
= (struct arphdr
*)skb
->data
;
1380 unsigned char *arp_ptr
= (unsigned char *)(arp
+ 1);
1381 struct eth1394_arp
*arp1394
= (struct eth1394_arp
*)skb
->data
;
1383 /* Believe it or not, all that need to happen is sender IP get moved
1384 * and set hw_addr_len, max_rec, sspd, fifo_hi and fifo_lo. */
1385 arp1394
->hw_addr_len
= 16;
1386 arp1394
->sip
= *(u32
*)(arp_ptr
+ ETH1394_ALEN
);
1387 arp1394
->max_rec
= priv
->host
->csr
.max_rec
;
1388 arp1394
->sspd
= priv
->host
->csr
.lnk_spd
;
1389 arp1394
->fifo_hi
= htons (priv
->local_fifo
>> 32);
1390 arp1394
->fifo_lo
= htonl (priv
->local_fifo
& ~0x0);
1395 /* We need to encapsulate the standard header with our own. We use the
1396 * ethernet header's proto for our own. */
1397 static inline unsigned int ether1394_encapsulate_prep(unsigned int max_payload
,
1399 union eth1394_hdr
*hdr
,
1400 u16 dg_size
, u16 dgl
)
1402 unsigned int adj_max_payload
= max_payload
- hdr_type_len
[ETH1394_HDR_LF_UF
];
1404 /* Does it all fit in one packet? */
1405 if (dg_size
<= adj_max_payload
) {
1406 hdr
->uf
.lf
= ETH1394_HDR_LF_UF
;
1407 hdr
->uf
.ether_type
= proto
;
1409 hdr
->ff
.lf
= ETH1394_HDR_LF_FF
;
1410 hdr
->ff
.ether_type
= proto
;
1411 hdr
->ff
.dg_size
= dg_size
- 1;
1413 adj_max_payload
= max_payload
- hdr_type_len
[ETH1394_HDR_LF_FF
];
1415 return((dg_size
+ (adj_max_payload
- 1)) / adj_max_payload
);
1418 static inline unsigned int ether1394_encapsulate(struct sk_buff
*skb
,
1419 unsigned int max_payload
,
1420 union eth1394_hdr
*hdr
)
1422 union eth1394_hdr
*bufhdr
;
1423 int ftype
= hdr
->common
.lf
;
1424 int hdrsz
= hdr_type_len
[ftype
];
1425 unsigned int adj_max_payload
= max_payload
- hdrsz
;
1428 case ETH1394_HDR_LF_UF
:
1429 bufhdr
= (union eth1394_hdr
*)skb_push(skb
, hdrsz
);
1430 bufhdr
->words
.word1
= htons(hdr
->words
.word1
);
1431 bufhdr
->words
.word2
= hdr
->words
.word2
;
1434 case ETH1394_HDR_LF_FF
:
1435 bufhdr
= (union eth1394_hdr
*)skb_push(skb
, hdrsz
);
1436 bufhdr
->words
.word1
= htons(hdr
->words
.word1
);
1437 bufhdr
->words
.word2
= hdr
->words
.word2
;
1438 bufhdr
->words
.word3
= htons(hdr
->words
.word3
);
1439 bufhdr
->words
.word4
= 0;
1441 /* Set frag type here for future interior fragments */
1442 hdr
->common
.lf
= ETH1394_HDR_LF_IF
;
1447 hdr
->sf
.fg_off
+= adj_max_payload
;
1448 bufhdr
= (union eth1394_hdr
*)skb_pull(skb
, adj_max_payload
);
1449 if (max_payload
>= skb
->len
)
1450 hdr
->common
.lf
= ETH1394_HDR_LF_LF
;
1451 bufhdr
->words
.word1
= htons(hdr
->words
.word1
);
1452 bufhdr
->words
.word2
= htons(hdr
->words
.word2
);
1453 bufhdr
->words
.word3
= htons(hdr
->words
.word3
);
1454 bufhdr
->words
.word4
= 0;
1457 return min(max_payload
, skb
->len
);
1460 static inline struct hpsb_packet
*ether1394_alloc_common_packet(struct hpsb_host
*host
)
1462 struct hpsb_packet
*p
;
1464 p
= hpsb_alloc_packet(0);
1467 p
->generation
= get_hpsb_generation(host
);
1468 p
->type
= hpsb_async
;
1473 static inline int ether1394_prep_write_packet(struct hpsb_packet
*p
,
1474 struct hpsb_host
*host
,
1475 nodeid_t node
, u64 addr
,
1476 void * data
, int tx_len
)
1481 p
->tcode
= TCODE_WRITEB
;
1482 p
->header
[1] = (host
->node_id
<< 16) | (addr
>> 32);
1483 p
->header
[2] = addr
& 0xffffffff;
1485 p
->header_size
= 16;
1486 p
->expect_response
= 1;
1488 if (hpsb_get_tlabel(p
)) {
1489 ETH1394_PRINT_G(KERN_ERR
, "No more tlabels left while sending "
1490 "to node " NODE_BUS_FMT
"\n", NODE_BUS_ARGS(host
, node
));
1493 p
->header
[0] = (p
->node_id
<< 16) | (p
->tlabel
<< 10)
1494 | (1 << 8) | (TCODE_WRITEB
<< 4);
1496 p
->header
[3] = tx_len
<< 16;
1497 p
->data_size
= (tx_len
+ 3) & ~3;
1498 p
->data
= (quadlet_t
*)data
;
1503 static inline void ether1394_prep_gasp_packet(struct hpsb_packet
*p
,
1504 struct eth1394_priv
*priv
,
1505 struct sk_buff
*skb
, int length
)
1508 p
->tcode
= TCODE_STREAM_DATA
;
1510 p
->header
[0] = (length
<< 16) | (3 << 14)
1511 | ((priv
->broadcast_channel
) << 8)
1512 | (TCODE_STREAM_DATA
<< 4);
1513 p
->data_size
= length
;
1514 p
->data
= ((quadlet_t
*)skb
->data
) - 2;
1515 p
->data
[0] = cpu_to_be32((priv
->host
->node_id
<< 16) |
1516 ETHER1394_GASP_SPECIFIER_ID_HI
);
1517 p
->data
[1] = __constant_cpu_to_be32((ETHER1394_GASP_SPECIFIER_ID_LO
<< 24) |
1518 ETHER1394_GASP_VERSION
);
1520 /* Setting the node id to ALL_NODES (not LOCAL_BUS | ALL_NODES)
1521 * prevents hpsb_send_packet() from setting the speed to an arbitrary
1522 * value based on packet->node_id if packet->node_id is not set. */
1523 p
->node_id
= ALL_NODES
;
1524 p
->speed_code
= priv
->bc_sspd
;
1527 static inline void ether1394_free_packet(struct hpsb_packet
*packet
)
1529 if (packet
->tcode
!= TCODE_STREAM_DATA
)
1530 hpsb_free_tlabel(packet
);
1531 hpsb_free_packet(packet
);
1534 static void ether1394_complete_cb(void *__ptask
);
1536 static int ether1394_send_packet(struct packet_task
*ptask
, unsigned int tx_len
)
1538 struct eth1394_priv
*priv
= ptask
->priv
;
1539 struct hpsb_packet
*packet
= NULL
;
1541 packet
= ether1394_alloc_common_packet(priv
->host
);
1545 if (ptask
->tx_type
== ETH1394_GASP
) {
1546 int length
= tx_len
+ (2 * sizeof(quadlet_t
));
1548 ether1394_prep_gasp_packet(packet
, priv
, ptask
->skb
, length
);
1549 } else if (ether1394_prep_write_packet(packet
, priv
->host
,
1551 ptask
->addr
, ptask
->skb
->data
,
1553 hpsb_free_packet(packet
);
1557 ptask
->packet
= packet
;
1558 hpsb_set_packet_complete_task(ptask
->packet
, ether1394_complete_cb
,
1561 if (hpsb_send_packet(packet
) < 0) {
1562 ether1394_free_packet(packet
);
1570 /* Task function to be run when a datagram transmission is completed */
1571 static inline void ether1394_dg_complete(struct packet_task
*ptask
, int fail
)
1573 struct sk_buff
*skb
= ptask
->skb
;
1574 struct net_device
*dev
= skb
->dev
;
1575 struct eth1394_priv
*priv
= netdev_priv(dev
);
1576 unsigned long flags
;
1579 spin_lock_irqsave(&priv
->lock
, flags
);
1581 priv
->stats
.tx_dropped
++;
1582 priv
->stats
.tx_errors
++;
1584 priv
->stats
.tx_bytes
+= skb
->len
;
1585 priv
->stats
.tx_packets
++;
1587 spin_unlock_irqrestore(&priv
->lock
, flags
);
1589 dev_kfree_skb_any(skb
);
1590 kmem_cache_free(packet_task_cache
, ptask
);
1594 /* Callback for when a packet has been sent and the status of that packet is
1596 static void ether1394_complete_cb(void *__ptask
)
1598 struct packet_task
*ptask
= (struct packet_task
*)__ptask
;
1599 struct hpsb_packet
*packet
= ptask
->packet
;
1602 if (packet
->tcode
!= TCODE_STREAM_DATA
)
1603 fail
= hpsb_packet_success(packet
);
1605 ether1394_free_packet(packet
);
1607 ptask
->outstanding_pkts
--;
1608 if (ptask
->outstanding_pkts
> 0 && !fail
) {
1611 /* Add the encapsulation header to the fragment */
1612 tx_len
= ether1394_encapsulate(ptask
->skb
, ptask
->max_payload
,
1614 if (ether1394_send_packet(ptask
, tx_len
))
1615 ether1394_dg_complete(ptask
, 1);
1617 ether1394_dg_complete(ptask
, fail
);
1623 /* Transmit a packet (called by kernel) */
1624 static int ether1394_tx (struct sk_buff
*skb
, struct net_device
*dev
)
1626 gfp_t kmflags
= in_interrupt() ? GFP_ATOMIC
: GFP_KERNEL
;
1627 struct eth1394hdr
*eth
;
1628 struct eth1394_priv
*priv
= netdev_priv(dev
);
1630 unsigned long flags
;
1632 eth1394_tx_type tx_type
;
1634 unsigned int tx_len
;
1635 unsigned int max_payload
;
1638 struct packet_task
*ptask
;
1639 struct eth1394_node_ref
*node
;
1640 struct eth1394_node_info
*node_info
= NULL
;
1642 ptask
= kmem_cache_alloc(packet_task_cache
, kmflags
);
1643 if (ptask
== NULL
) {
1648 /* XXX Ignore this for now. Noticed that when MacOSX is the IRM,
1649 * it does not set our validity bit. We need to compensate for
1650 * that somewhere else, but not in eth1394. */
1652 if ((priv
->host
->csr
.broadcast_channel
& 0xc0000000) != 0xc0000000) {
1658 if ((skb
= skb_share_check (skb
, kmflags
)) == NULL
) {
1663 /* Get rid of the fake eth1394 header, but save a pointer */
1664 eth
= (struct eth1394hdr
*)skb
->data
;
1665 skb_pull(skb
, ETH1394_HLEN
);
1667 proto
= eth
->h_proto
;
1670 /* Set the transmission type for the packet. ARP packets and IP
1671 * broadcast packets are sent via GASP. */
1672 if (memcmp(eth
->h_dest
, dev
->broadcast
, ETH1394_ALEN
) == 0 ||
1673 proto
== __constant_htons(ETH_P_ARP
) ||
1674 (proto
== __constant_htons(ETH_P_IP
) &&
1675 IN_MULTICAST(__constant_ntohl(skb
->nh
.iph
->daddr
)))) {
1676 tx_type
= ETH1394_GASP
;
1677 dest_node
= LOCAL_BUS
| ALL_NODES
;
1678 max_payload
= priv
->bc_maxpayload
- ETHER1394_GASP_OVERHEAD
;
1679 BUG_ON(max_payload
< (512 - ETHER1394_GASP_OVERHEAD
));
1681 if (max_payload
< dg_size
+ hdr_type_len
[ETH1394_HDR_LF_UF
])
1684 node
= eth1394_find_node_guid(&priv
->ip_node_list
,
1685 be64_to_cpu(*(u64
*)eth
->h_dest
));
1690 node_info
= (struct eth1394_node_info
*)node
->ud
->device
.driver_data
;
1691 if (node_info
->fifo
== ETHER1394_INVALID_ADDR
) {
1696 dest_node
= node
->ud
->ne
->nodeid
;
1697 max_payload
= node_info
->maxpayload
;
1698 BUG_ON(max_payload
< (512 - ETHER1394_GASP_OVERHEAD
));
1700 dgl
= node_info
->dgl
;
1701 if (max_payload
< dg_size
+ hdr_type_len
[ETH1394_HDR_LF_UF
])
1703 tx_type
= ETH1394_WRREQ
;
1706 /* If this is an ARP packet, convert it */
1707 if (proto
== __constant_htons (ETH_P_ARP
))
1708 ether1394_arp_to_1394arp (skb
, dev
);
1710 ptask
->hdr
.words
.word1
= 0;
1711 ptask
->hdr
.words
.word2
= 0;
1712 ptask
->hdr
.words
.word3
= 0;
1713 ptask
->hdr
.words
.word4
= 0;
1716 ptask
->tx_type
= tx_type
;
1718 if (tx_type
!= ETH1394_GASP
) {
1721 spin_lock_irqsave(&priv
->lock
, flags
);
1722 addr
= node_info
->fifo
;
1723 spin_unlock_irqrestore(&priv
->lock
, flags
);
1726 ptask
->dest_node
= dest_node
;
1729 ptask
->tx_type
= tx_type
;
1730 ptask
->max_payload
= max_payload
;
1731 ptask
->outstanding_pkts
= ether1394_encapsulate_prep(max_payload
, proto
,
1732 &ptask
->hdr
, dg_size
,
1735 /* Add the encapsulation header to the fragment */
1736 tx_len
= ether1394_encapsulate(skb
, max_payload
, &ptask
->hdr
);
1737 dev
->trans_start
= jiffies
;
1738 if (ether1394_send_packet(ptask
, tx_len
))
1741 netif_wake_queue(dev
);
1745 kmem_cache_free(packet_task_cache
, ptask
);
1750 spin_lock_irqsave (&priv
->lock
, flags
);
1751 priv
->stats
.tx_dropped
++;
1752 priv
->stats
.tx_errors
++;
1753 spin_unlock_irqrestore (&priv
->lock
, flags
);
1755 if (netif_queue_stopped(dev
))
1756 netif_wake_queue(dev
);
1758 return 0; /* returning non-zero causes serious problems */
1761 static void ether1394_get_drvinfo(struct net_device
*dev
, struct ethtool_drvinfo
*info
)
1763 strcpy (info
->driver
, driver_name
);
1764 /* FIXME XXX provide sane businfo */
1765 strcpy (info
->bus_info
, "ieee1394");
1768 static struct ethtool_ops ethtool_ops
= {
1769 .get_drvinfo
= ether1394_get_drvinfo
1772 static int __init
ether1394_init_module (void)
1774 packet_task_cache
= kmem_cache_create("packet_task", sizeof(struct packet_task
),
1777 /* Register ourselves as a highlevel driver */
1778 hpsb_register_highlevel(ð1394_highlevel
);
1780 return hpsb_register_protocol(ð1394_proto_driver
);
1783 static void __exit
ether1394_exit_module (void)
1785 hpsb_unregister_protocol(ð1394_proto_driver
);
1786 hpsb_unregister_highlevel(ð1394_highlevel
);
1787 kmem_cache_destroy(packet_task_cache
);
1790 module_init(ether1394_init_module
);
1791 module_exit(ether1394_exit_module
);