1 /* src/p80211/p80211knetdev.c
3 * Linux Kernel net device interface
5 * Copyright (C) 1999 AbsoluteValue Systems, Inc. All Rights Reserved.
6 * --------------------------------------------------------------------
10 * The contents of this file are subject to the Mozilla Public
11 * License Version 1.1 (the "License"); you may not use this file
12 * except in compliance with the License. You may obtain a copy of
13 * the License at http://www.mozilla.org/MPL/
15 * Software distributed under the License is distributed on an "AS
16 * IS" basis, WITHOUT WARRANTY OF ANY KIND, either express or
17 * implied. See the License for the specific language governing
18 * rights and limitations under the License.
20 * Alternatively, the contents of this file may be used under the
21 * terms of the GNU Public License version 2 (the "GPL"), in which
22 * case the provisions of the GPL are applicable instead of the
23 * above. If you wish to allow the use of your version of this file
24 * only under the terms of the GPL and not to allow others to use
25 * your version of this file under the MPL, indicate your decision
26 * by deleting the provisions above and replace them with the notice
27 * and other provisions required by the GPL. If you do not delete
28 * the provisions above, a recipient may use your version of this
29 * file under either the MPL or the GPL.
31 * --------------------------------------------------------------------
33 * Inquiries regarding the linux-wlan Open Source project can be
36 * AbsoluteValue Systems Inc.
38 * http://www.linux-wlan.com
40 * --------------------------------------------------------------------
42 * Portions of the development of this software were funded by
43 * Intersil Corporation as part of PRISM(R) chipset product development.
45 * --------------------------------------------------------------------
47 * The functions required for a Linux network device are defined here.
49 * --------------------------------------------------------------------
52 #include <linux/module.h>
53 #include <linux/kernel.h>
54 #include <linux/sched.h>
55 #include <linux/types.h>
56 #include <linux/skbuff.h>
57 #include <linux/slab.h>
58 #include <linux/proc_fs.h>
59 #include <linux/interrupt.h>
60 #include <linux/netdevice.h>
61 #include <linux/kmod.h>
62 #include <linux/if_arp.h>
63 #include <linux/wireless.h>
64 #include <linux/sockios.h>
65 #include <linux/etherdevice.h>
66 #include <linux/if_ether.h>
67 #include <linux/byteorder/generic.h>
68 #include <linux/bitops.h>
69 #include <linux/uaccess.h>
70 #include <asm/byteorder.h>
73 #include <linux/ethtool.h>
76 #include <net/iw_handler.h>
77 #include <net/net_namespace.h>
78 #include <net/cfg80211.h>
80 #include "p80211types.h"
81 #include "p80211hdr.h"
82 #include "p80211conv.h"
83 #include "p80211mgmt.h"
84 #include "p80211msg.h"
85 #include "p80211netdev.h"
86 #include "p80211ioctl.h"
87 #include "p80211req.h"
88 #include "p80211metastruct.h"
89 #include "p80211metadef.h"
93 /* Support functions */
94 static void p80211netdev_rx_bh(unsigned long arg);
96 /* netdevice method functions */
97 static int p80211knetdev_init(netdevice_t *netdev);
98 static struct net_device_stats *p80211knetdev_get_stats(netdevice_t *netdev);
99 static int p80211knetdev_open(netdevice_t *netdev);
100 static int p80211knetdev_stop(netdevice_t *netdev);
101 static int p80211knetdev_hard_start_xmit(struct sk_buff *skb,
102 netdevice_t *netdev);
103 static void p80211knetdev_set_multicast_list(netdevice_t *dev);
104 static int p80211knetdev_do_ioctl(netdevice_t *dev, struct ifreq *ifr,
106 static int p80211knetdev_set_mac_address(netdevice_t *dev, void *addr);
107 static void p80211knetdev_tx_timeout(netdevice_t *netdev);
108 static int p80211_rx_typedrop(wlandevice_t *wlandev, u16 fc);
110 int wlan_watchdog = 5000;
111 module_param(wlan_watchdog, int, 0644);
112 MODULE_PARM_DESC(wlan_watchdog, "transmit timeout in milliseconds");
114 int wlan_wext_write = 1;
115 module_param(wlan_wext_write, int, 0644);
116 MODULE_PARM_DESC(wlan_wext_write, "enable write wireless extensions");
118 /*----------------------------------------------------------------
121 * Init method for a Linux netdevice. Called in response to
129 ----------------------------------------------------------------*/
130 static int p80211knetdev_init(netdevice_t *netdev)
132 /* Called in response to register_netdev */
133 /* This is usually the probe function, but the probe has */
134 /* already been done by the MSD and the create_kdev */
135 /* function. All we do here is return success */
139 /*----------------------------------------------------------------
140 * p80211knetdev_get_stats
142 * Statistics retrieval for linux netdevices. Here we're reporting
143 * the Linux i/f level statistics. Hence, for the primary numbers,
144 * we don't want to report the numbers from the MIB. Eventually,
145 * it might be useful to collect some of the error counters though.
148 * netdev Linux netdevice
151 * the address of the statistics structure
152 ----------------------------------------------------------------*/
153 static struct net_device_stats *p80211knetdev_get_stats(netdevice_t *netdev)
155 wlandevice_t *wlandev = netdev->ml_priv;
157 /* TODO: review the MIB stats for items that correspond to
160 return &(wlandev->linux_stats);
163 /*----------------------------------------------------------------
166 * Linux netdevice open method. Following a successful call here,
167 * the device is supposed to be ready for tx and rx. In our
168 * situation that may not be entirely true due to the state of the
172 * netdev Linux network device structure
175 * zero on success, non-zero otherwise
176 ----------------------------------------------------------------*/
177 static int p80211knetdev_open(netdevice_t *netdev)
179 int result = 0; /* success */
180 wlandevice_t *wlandev = netdev->ml_priv;
182 /* Check to make sure the MSD is running */
183 if (wlandev->msdstate != WLAN_MSD_RUNNING)
186 /* Tell the MSD to open */
187 if (wlandev->open != NULL) {
188 result = wlandev->open(wlandev);
190 netif_start_queue(wlandev->netdev);
191 wlandev->state = WLAN_DEVICE_OPEN;
200 /*----------------------------------------------------------------
203 * Linux netdevice stop (close) method. Following this call,
204 * no frames should go up or down through this interface.
207 * netdev Linux network device structure
210 * zero on success, non-zero otherwise
211 ----------------------------------------------------------------*/
212 static int p80211knetdev_stop(netdevice_t *netdev)
215 wlandevice_t *wlandev = netdev->ml_priv;
217 if (wlandev->close != NULL)
218 result = wlandev->close(wlandev);
220 netif_stop_queue(wlandev->netdev);
221 wlandev->state = WLAN_DEVICE_CLOSED;
226 /*----------------------------------------------------------------
229 * Frame receive function called by the mac specific driver.
232 * wlandev WLAN network device structure
233 * skb skbuff containing a full 802.11 frame.
238 ----------------------------------------------------------------*/
239 void p80211netdev_rx(wlandevice_t *wlandev, struct sk_buff *skb)
241 /* Enqueue for post-irq processing */
242 skb_queue_tail(&wlandev->nsd_rxq, skb);
243 tasklet_schedule(&wlandev->rx_bh);
246 /*----------------------------------------------------------------
249 * Deferred processing of all received frames.
252 * wlandev WLAN network device structure
253 * skb skbuff containing a full 802.11 frame.
258 ----------------------------------------------------------------*/
259 static void p80211netdev_rx_bh(unsigned long arg)
261 wlandevice_t *wlandev = (wlandevice_t *) arg;
262 struct sk_buff *skb = NULL;
263 netdevice_t *dev = wlandev->netdev;
264 struct p80211_hdr_a3 *hdr;
266 /* Let's empty our our queue */
267 while ((skb = skb_dequeue(&wlandev->nsd_rxq))) {
268 if (wlandev->state == WLAN_DEVICE_OPEN) {
270 if (dev->type != ARPHRD_ETHER) {
271 /* RAW frame; we shouldn't convert it */
272 /* XXX Append the Prism Header here instead. */
274 /* set up various data fields */
276 skb_reset_mac_header(skb);
277 skb->ip_summed = CHECKSUM_NONE;
278 skb->pkt_type = PACKET_OTHERHOST;
279 skb->protocol = htons(ETH_P_80211_RAW);
280 dev->last_rx = jiffies;
282 wlandev->linux_stats.rx_packets++;
283 wlandev->linux_stats.rx_bytes += skb->len;
287 hdr = (struct p80211_hdr_a3 *) skb->data;
288 if (p80211_rx_typedrop(wlandev, hdr->fc)) {
293 /* perform mcast filtering */
294 if (wlandev->netdev->flags & IFF_ALLMULTI) {
295 /* allow my local address through */
297 (hdr->a1, wlandev->netdev->dev_addr,
299 /* but reject anything else that
301 if (!(hdr->a1[0] & 0x01)) {
308 if (skb_p80211_to_ether
309 (wlandev, wlandev->ethconv, skb) == 0) {
310 skb->dev->last_rx = jiffies;
311 wlandev->linux_stats.rx_packets++;
312 wlandev->linux_stats.rx_bytes +=
317 pr_debug("p80211_to_ether failed.\n");
324 /*----------------------------------------------------------------
325 * p80211knetdev_hard_start_xmit
327 * Linux netdevice method for transmitting a frame.
330 * skb Linux sk_buff containing the frame.
331 * netdev Linux netdevice.
334 * If the lower layers report that buffers are full. netdev->tbusy
335 * will be set to prevent higher layers from sending more traffic.
337 * Note: If this function returns non-zero, higher layers retain
338 * ownership of the skb.
341 * zero on success, non-zero on failure.
342 ----------------------------------------------------------------*/
343 static int p80211knetdev_hard_start_xmit(struct sk_buff *skb,
348 wlandevice_t *wlandev = netdev->ml_priv;
349 union p80211_hdr p80211_hdr;
350 struct p80211_metawep p80211_wep;
352 p80211_wep.data = NULL;
357 if (wlandev->state != WLAN_DEVICE_OPEN) {
362 memset(&p80211_hdr, 0, sizeof(union p80211_hdr));
363 memset(&p80211_wep, 0, sizeof(struct p80211_metawep));
365 if (netif_queue_stopped(netdev)) {
366 pr_debug("called when queue stopped.\n");
371 netif_stop_queue(netdev);
373 /* Check to see that a valid mode is set */
374 switch (wlandev->macmode) {
375 case WLAN_MACMODE_IBSS_STA:
376 case WLAN_MACMODE_ESS_STA:
377 case WLAN_MACMODE_ESS_AP:
380 /* Mode isn't set yet, just drop the frame
381 * and return success .
382 * TODO: we need a saner way to handle this
384 if (skb->protocol != ETH_P_80211_RAW) {
385 netif_start_queue(wlandev->netdev);
387 "Tx attempt prior to association, frame dropped.\n");
388 wlandev->linux_stats.tx_dropped++;
395 /* Check for raw transmits */
396 if (skb->protocol == ETH_P_80211_RAW) {
397 if (!capable(CAP_NET_ADMIN)) {
401 /* move the header over */
402 memcpy(&p80211_hdr, skb->data, sizeof(union p80211_hdr));
403 skb_pull(skb, sizeof(union p80211_hdr));
405 if (skb_ether_to_p80211
406 (wlandev, wlandev->ethconv, skb, &p80211_hdr,
409 pr_debug("ether_to_80211(%d) failed.\n",
415 if (wlandev->txframe == NULL) {
420 netdev->trans_start = jiffies;
422 wlandev->linux_stats.tx_packets++;
423 /* count only the packet payload */
424 wlandev->linux_stats.tx_bytes += skb->len;
426 txresult = wlandev->txframe(wlandev, skb, &p80211_hdr, &p80211_wep);
429 /* success and more buf */
430 /* avail, re: hw_txdata */
431 netif_wake_queue(wlandev->netdev);
432 result = NETDEV_TX_OK;
433 } else if (txresult == 1) {
434 /* success, no more avail */
435 pr_debug("txframe success, no more bufs\n");
436 /* netdev->tbusy = 1; don't set here, irqhdlr */
437 /* may have already cleared it */
438 result = NETDEV_TX_OK;
439 } else if (txresult == 2) {
440 /* alloc failure, drop frame */
441 pr_debug("txframe returned alloc_fail\n");
442 result = NETDEV_TX_BUSY;
444 /* buffer full or queue busy, drop frame. */
445 pr_debug("txframe returned full or busy\n");
446 result = NETDEV_TX_BUSY;
450 /* Free up the WEP buffer if it's not the same as the skb */
451 if ((p80211_wep.data) && (p80211_wep.data != skb->data))
452 kzfree(p80211_wep.data);
454 /* we always free the skb here, never in a lower level. */
461 /*----------------------------------------------------------------
462 * p80211knetdev_set_multicast_list
464 * Called from higher layers whenever there's a need to set/clear
465 * promiscuous mode or rewrite the multicast list.
472 ----------------------------------------------------------------*/
473 static void p80211knetdev_set_multicast_list(netdevice_t *dev)
475 wlandevice_t *wlandev = dev->ml_priv;
477 /* TODO: real multicast support as well */
479 if (wlandev->set_multicast_list)
480 wlandev->set_multicast_list(wlandev, dev);
486 static int p80211netdev_ethtool(wlandevice_t *wlandev, void __user *useraddr)
489 struct ethtool_drvinfo info;
490 struct ethtool_value edata;
492 memset(&info, 0, sizeof(info));
493 memset(&edata, 0, sizeof(edata));
495 if (copy_from_user(ðcmd, useraddr, sizeof(ethcmd)))
499 case ETHTOOL_GDRVINFO:
501 snprintf(info.driver, sizeof(info.driver), "p80211_%s",
503 snprintf(info.version, sizeof(info.version), "%s",
506 if (copy_to_user(useraddr, &info, sizeof(info)))
513 if (wlandev->linkstatus &&
514 (wlandev->macmode != WLAN_MACMODE_NONE)) {
520 if (copy_to_user(useraddr, &edata, sizeof(edata)))
531 /*----------------------------------------------------------------
532 * p80211knetdev_do_ioctl
534 * Handle an ioctl call on one of our devices. Everything Linux
535 * ioctl specific is done here. Then we pass the contents of the
536 * ifr->data to the request message handler.
539 * dev Linux kernel netdevice
540 * ifr Our private ioctl request structure, typed for the
541 * generic struct ifreq so we can use ptr to func
545 * zero on success, a negative errno on failure. Possible values:
546 * -ENETDOWN Device isn't up.
547 * -EBUSY cmd already in progress
548 * -ETIME p80211 cmd timed out (MSD may have its own timers)
549 * -EFAULT memory fault copying msg from user buffer
550 * -ENOMEM unable to allocate kernel msg buffer
551 * -ENOSYS bad magic, it the cmd really for us?
552 * -EintR sleeping on cmd, awakened by signal, cmd cancelled.
555 * Process thread (ioctl caller). TODO: SMP support may require
557 ----------------------------------------------------------------*/
558 static int p80211knetdev_do_ioctl(netdevice_t *dev, struct ifreq *ifr, int cmd)
561 struct p80211ioctl_req *req = (struct p80211ioctl_req *) ifr;
562 wlandevice_t *wlandev = dev->ml_priv;
565 pr_debug("rx'd ioctl, cmd=%d, len=%d\n", cmd, req->len);
568 if (cmd == SIOCETHTOOL) {
570 p80211netdev_ethtool(wlandev, (void __user *)ifr->ifr_data);
575 /* Test the magic, assume ifr is good if it's there */
576 if (req->magic != P80211_IOCTL_MAGIC) {
581 if (cmd == P80211_IFTEST) {
584 } else if (cmd != P80211_IFREQ) {
589 /* Allocate a buf of size req->len */
590 msgbuf = kmalloc(req->len, GFP_KERNEL);
592 if (copy_from_user(msgbuf, (void __user *)req->data, req->len))
595 result = p80211req_dorequest(wlandev, msgbuf);
599 ((void __user *)req->data, msgbuf, req->len)) {
608 /* If allocate,copyfrom or copyto fails, return errno */
612 /*----------------------------------------------------------------
613 * p80211knetdev_set_mac_address
615 * Handles the ioctl for changing the MACAddress of a netdevice
617 * references: linux/netdevice.h and drivers/net/net_init.c
619 * NOTE: [MSM] We only prevent address changes when the netdev is
620 * up. We don't control anything based on dot11 state. If the
621 * address is changed on a STA that's currently associated, you
622 * will probably lose the ability to send and receive data frames.
623 * Just be aware. Therefore, this should usually only be done
624 * prior to scan/join/auth/assoc.
627 * dev netdevice struct
628 * addr the new MACAddress (a struct)
631 * zero on success, a negative errno on failure. Possible values:
632 * -EBUSY device is bussy (cmd not possible)
633 * -and errors returned by: p80211req_dorequest(..)
636 ----------------------------------------------------------------*/
637 static int p80211knetdev_set_mac_address(netdevice_t *dev, void *addr)
639 struct sockaddr *new_addr = addr;
640 struct p80211msg_dot11req_mibset dot11req;
641 p80211item_unk392_t *mibattr;
642 p80211item_pstr6_t *macaddr;
643 p80211item_uint32_t *resultcode;
646 /* If we're running, we don't allow MAC address changes */
647 if (netif_running(dev))
650 /* Set up some convenience pointers. */
651 mibattr = &dot11req.mibattribute;
652 macaddr = (p80211item_pstr6_t *) &mibattr->data;
653 resultcode = &dot11req.resultcode;
655 /* Set up a dot11req_mibset */
656 memset(&dot11req, 0, sizeof(struct p80211msg_dot11req_mibset));
657 dot11req.msgcode = DIDmsg_dot11req_mibset;
658 dot11req.msglen = sizeof(struct p80211msg_dot11req_mibset);
659 memcpy(dot11req.devname,
660 ((wlandevice_t *) dev->ml_priv)->name, WLAN_DEVNAMELEN_MAX - 1);
662 /* Set up the mibattribute argument */
663 mibattr->did = DIDmsg_dot11req_mibset_mibattribute;
664 mibattr->status = P80211ENUM_msgitem_status_data_ok;
665 mibattr->len = sizeof(mibattr->data);
667 macaddr->did = DIDmib_dot11mac_dot11OperationTable_dot11MACAddress;
668 macaddr->status = P80211ENUM_msgitem_status_data_ok;
669 macaddr->len = sizeof(macaddr->data);
670 macaddr->data.len = ETH_ALEN;
671 memcpy(&macaddr->data.data, new_addr->sa_data, ETH_ALEN);
673 /* Set up the resultcode argument */
674 resultcode->did = DIDmsg_dot11req_mibset_resultcode;
675 resultcode->status = P80211ENUM_msgitem_status_no_value;
676 resultcode->len = sizeof(resultcode->data);
677 resultcode->data = 0;
679 /* now fire the request */
680 result = p80211req_dorequest(dev->ml_priv, (u8 *) &dot11req);
682 /* If the request wasn't successful, report an error and don't
683 * change the netdev address
685 if (result != 0 || resultcode->data != P80211ENUM_resultcode_success) {
687 "Low-level driver failed dot11req_mibset(dot11MACAddress).\n");
688 result = -EADDRNOTAVAIL;
690 /* everything's ok, change the addr in netdev */
691 memcpy(dev->dev_addr, new_addr->sa_data, dev->addr_len);
697 static int wlan_change_mtu(netdevice_t *dev, int new_mtu)
699 /* 2312 is max 802.11 payload, 20 is overhead, (ether + llc +snap)
700 and another 8 for wep. */
701 if ((new_mtu < 68) || (new_mtu > (2312 - 20 - 8)))
709 static const struct net_device_ops p80211_netdev_ops = {
710 .ndo_init = p80211knetdev_init,
711 .ndo_open = p80211knetdev_open,
712 .ndo_stop = p80211knetdev_stop,
713 .ndo_get_stats = p80211knetdev_get_stats,
714 .ndo_start_xmit = p80211knetdev_hard_start_xmit,
715 .ndo_set_rx_mode = p80211knetdev_set_multicast_list,
716 .ndo_do_ioctl = p80211knetdev_do_ioctl,
717 .ndo_set_mac_address = p80211knetdev_set_mac_address,
718 .ndo_tx_timeout = p80211knetdev_tx_timeout,
719 .ndo_change_mtu = wlan_change_mtu,
720 .ndo_validate_addr = eth_validate_addr,
723 /*----------------------------------------------------------------
726 * Roughly matches the functionality of ether_setup. Here
727 * we set up any members of the wlandevice structure that are common
728 * to all devices. Additionally, we allocate a linux 'struct device'
729 * and perform the same setup as ether_setup.
731 * Note: It's important that the caller have setup the wlandev->name
732 * ptr prior to calling this function.
735 * wlandev ptr to the wlandev structure for the
737 * physdev ptr to usb device
739 * zero on success, non-zero otherwise.
741 * Should be process thread. We'll assume it might be
742 * interrupt though. When we add support for statically
743 * compiled drivers, this function will be called in the
744 * context of the kernel startup code.
745 ----------------------------------------------------------------*/
746 int wlan_setup(wlandevice_t *wlandev, struct device *physdev)
751 struct wireless_dev *wdev;
753 /* Set up the wlandev */
754 wlandev->state = WLAN_DEVICE_CLOSED;
755 wlandev->ethconv = WLAN_ETHCONV_8021h;
756 wlandev->macmode = WLAN_MACMODE_NONE;
758 /* Set up the rx queue */
759 skb_queue_head_init(&wlandev->nsd_rxq);
760 tasklet_init(&wlandev->rx_bh,
761 p80211netdev_rx_bh, (unsigned long)wlandev);
763 /* Allocate and initialize the wiphy struct */
764 wiphy = wlan_create_wiphy(physdev, wlandev);
766 printk(KERN_ERR "Failed to alloc wiphy.\n");
770 /* Allocate and initialize the struct device */
771 netdev = alloc_netdev(sizeof(struct wireless_dev), "wlan%d",
773 if (netdev == NULL) {
774 printk(KERN_ERR "Failed to alloc netdev.\n");
775 wlan_free_wiphy(wiphy);
778 wlandev->netdev = netdev;
779 netdev->ml_priv = wlandev;
780 netdev->netdev_ops = &p80211_netdev_ops;
781 wdev = netdev_priv(netdev);
783 wdev->iftype = NL80211_IFTYPE_STATION;
784 netdev->ieee80211_ptr = wdev;
786 netif_stop_queue(netdev);
787 netif_carrier_off(netdev);
793 /*----------------------------------------------------------------
796 * This function is paired with the wlan_setup routine. It should
797 * be called after unregister_wlandev. Basically, all it does is
798 * free the 'struct device' that's associated with the wlandev.
799 * We do it here because the 'struct device' isn't allocated
800 * explicitly in the driver code, it's done in wlan_setup. To
801 * do the free in the driver might seem like 'magic'.
804 * wlandev ptr to the wlandev structure for the
807 * Should be process thread. We'll assume it might be
808 * interrupt though. When we add support for statically
809 * compiled drivers, this function will be called in the
810 * context of the kernel startup code.
811 ----------------------------------------------------------------*/
812 void wlan_unsetup(wlandevice_t *wlandev)
814 struct wireless_dev *wdev;
816 tasklet_kill(&wlandev->rx_bh);
818 if (wlandev->netdev) {
819 wdev = netdev_priv(wlandev->netdev);
821 wlan_free_wiphy(wdev->wiphy);
822 free_netdev(wlandev->netdev);
823 wlandev->netdev = NULL;
827 /*----------------------------------------------------------------
830 * Roughly matches the functionality of register_netdev. This function
831 * is called after the driver has successfully probed and set up the
832 * resources for the device. It's now ready to become a named device
833 * in the Linux system.
835 * First we allocate a name for the device (if not already set), then
836 * we call the Linux function register_netdevice.
839 * wlandev ptr to the wlandev structure for the
842 * zero on success, non-zero otherwise.
844 * Can be either interrupt or not.
845 ----------------------------------------------------------------*/
846 int register_wlandev(wlandevice_t *wlandev)
848 return register_netdev(wlandev->netdev);
851 /*----------------------------------------------------------------
854 * Roughly matches the functionality of unregister_netdev. This
855 * function is called to remove a named device from the system.
857 * First we tell linux that the device should no longer exist.
858 * Then we remove it from the list of known wlan devices.
861 * wlandev ptr to the wlandev structure for the
864 * zero on success, non-zero otherwise.
866 * Can be either interrupt or not.
867 ----------------------------------------------------------------*/
868 int unregister_wlandev(wlandevice_t *wlandev)
872 unregister_netdev(wlandev->netdev);
874 /* Now to clean out the rx queue */
875 while ((skb = skb_dequeue(&wlandev->nsd_rxq)))
881 /*----------------------------------------------------------------
882 * p80211netdev_hwremoved
884 * Hardware removed notification. This function should be called
885 * immediately after an MSD has detected that the underlying hardware
886 * has been yanked out from under us. The primary things we need
889 * - Prevent any further traffic from the knetdev i/f
890 * - Prevent any further requests from mgmt i/f
891 * - If there are any waitq'd mgmt requests or mgmt-frame exchanges,
893 * - Call the MSD hwremoved function.
895 * The remainder of the cleanup will be handled by unregister().
896 * Our primary goal here is to prevent as much tickling of the MSD
897 * as possible since the MSD is already in a 'wounded' state.
899 * TODO: As new features are added, this function should be
903 * wlandev WLAN network device structure
910 ----------------------------------------------------------------*/
911 void p80211netdev_hwremoved(wlandevice_t *wlandev)
913 wlandev->hwremoved = 1;
914 if (wlandev->state == WLAN_DEVICE_OPEN)
915 netif_stop_queue(wlandev->netdev);
917 netif_device_detach(wlandev->netdev);
920 /*----------------------------------------------------------------
923 * Classifies the frame, increments the appropriate counter, and
924 * returns 0|1|2 indicating whether the driver should handle, ignore, or
928 * wlandev wlan device structure
929 * fc frame control field
932 * zero if the frame should be handled by the driver,
933 * one if the frame should be ignored
934 * anything else means we drop it.
940 ----------------------------------------------------------------*/
941 static int p80211_rx_typedrop(wlandevice_t *wlandev, u16 fc)
946 /* Classify frame, increment counter */
947 ftype = WLAN_GET_FC_FTYPE(fc);
948 fstype = WLAN_GET_FC_FSTYPE(fc);
950 pr_debug("rx_typedrop : ftype=%d fstype=%d.\n", ftype, fstype);
953 case WLAN_FTYPE_MGMT:
954 if ((wlandev->netdev->flags & IFF_PROMISC) ||
955 (wlandev->netdev->flags & IFF_ALLMULTI)) {
959 pr_debug("rx'd mgmt:\n");
962 case WLAN_FSTYPE_ASSOCREQ:
963 /* printk("assocreq"); */
964 wlandev->rx.assocreq++;
966 case WLAN_FSTYPE_ASSOCRESP:
967 /* printk("assocresp"); */
968 wlandev->rx.assocresp++;
970 case WLAN_FSTYPE_REASSOCREQ:
971 /* printk("reassocreq"); */
972 wlandev->rx.reassocreq++;
974 case WLAN_FSTYPE_REASSOCRESP:
975 /* printk("reassocresp"); */
976 wlandev->rx.reassocresp++;
978 case WLAN_FSTYPE_PROBEREQ:
979 /* printk("probereq"); */
980 wlandev->rx.probereq++;
982 case WLAN_FSTYPE_PROBERESP:
983 /* printk("proberesp"); */
984 wlandev->rx.proberesp++;
986 case WLAN_FSTYPE_BEACON:
987 /* printk("beacon"); */
988 wlandev->rx.beacon++;
990 case WLAN_FSTYPE_ATIM:
991 /* printk("atim"); */
994 case WLAN_FSTYPE_DISASSOC:
995 /* printk("disassoc"); */
996 wlandev->rx.disassoc++;
998 case WLAN_FSTYPE_AUTHEN:
999 /* printk("authen"); */
1000 wlandev->rx.authen++;
1002 case WLAN_FSTYPE_DEAUTHEN:
1003 /* printk("deauthen"); */
1004 wlandev->rx.deauthen++;
1007 /* printk("unknown"); */
1008 wlandev->rx.mgmt_unknown++;
1015 case WLAN_FTYPE_CTL:
1016 if ((wlandev->netdev->flags & IFF_PROMISC) ||
1017 (wlandev->netdev->flags & IFF_ALLMULTI)) {
1021 pr_debug("rx'd ctl:\n");
1024 case WLAN_FSTYPE_PSPOLL:
1025 /* printk("pspoll"); */
1026 wlandev->rx.pspoll++;
1028 case WLAN_FSTYPE_RTS:
1029 /* printk("rts"); */
1032 case WLAN_FSTYPE_CTS:
1033 /* printk("cts"); */
1036 case WLAN_FSTYPE_ACK:
1037 /* printk("ack"); */
1040 case WLAN_FSTYPE_CFEND:
1041 /* printk("cfend"); */
1042 wlandev->rx.cfend++;
1044 case WLAN_FSTYPE_CFENDCFACK:
1045 /* printk("cfendcfack"); */
1046 wlandev->rx.cfendcfack++;
1049 /* printk("unknown"); */
1050 wlandev->rx.ctl_unknown++;
1057 case WLAN_FTYPE_DATA:
1060 case WLAN_FSTYPE_DATAONLY:
1061 wlandev->rx.dataonly++;
1063 case WLAN_FSTYPE_DATA_CFACK:
1064 wlandev->rx.data_cfack++;
1066 case WLAN_FSTYPE_DATA_CFPOLL:
1067 wlandev->rx.data_cfpoll++;
1069 case WLAN_FSTYPE_DATA_CFACK_CFPOLL:
1070 wlandev->rx.data__cfack_cfpoll++;
1072 case WLAN_FSTYPE_NULL:
1073 pr_debug("rx'd data:null\n");
1076 case WLAN_FSTYPE_CFACK:
1077 pr_debug("rx'd data:cfack\n");
1078 wlandev->rx.cfack++;
1080 case WLAN_FSTYPE_CFPOLL:
1081 pr_debug("rx'd data:cfpoll\n");
1082 wlandev->rx.cfpoll++;
1084 case WLAN_FSTYPE_CFACK_CFPOLL:
1085 pr_debug("rx'd data:cfack_cfpoll\n");
1086 wlandev->rx.cfack_cfpoll++;
1089 /* printk("unknown"); */
1090 wlandev->rx.data_unknown++;
1099 static void p80211knetdev_tx_timeout(netdevice_t *netdev)
1101 wlandevice_t *wlandev = netdev->ml_priv;
1103 if (wlandev->tx_timeout) {
1104 wlandev->tx_timeout(wlandev);
1106 printk(KERN_WARNING "Implement tx_timeout for %s\n",
1108 netif_wake_queue(wlandev->netdev);