1 1.32 rin /* $NetBSD: if_fwip.c,v 1.32 2024/07/05 04:31:51 rin Exp $ */ 2 1.1 kiyohara /*- 3 1.1 kiyohara * Copyright (c) 2004 4 1.1 kiyohara * Doug Rabson 5 1.1 kiyohara * Copyright (c) 2002-2003 6 1.1 kiyohara * Hidetoshi Shimokawa. All rights reserved. 7 1.22 kiyohara * 8 1.1 kiyohara * Redistribution and use in source and binary forms, with or without 9 1.1 kiyohara * modification, are permitted provided that the following conditions 10 1.1 kiyohara * are met: 11 1.1 kiyohara * 1. Redistributions of source code must retain the above copyright 12 1.1 kiyohara * notice, this list of conditions and the following disclaimer. 13 1.1 kiyohara * 2. Redistributions in binary form must reproduce the above copyright 14 1.1 kiyohara * notice, this list of conditions and the following disclaimer in the 15 1.1 kiyohara * documentation and/or other materials provided with the distribution. 16 1.1 kiyohara * 3. All advertising materials mentioning features or use of this software 17 1.1 kiyohara * must display the following acknowledgement: 18 1.1 kiyohara * 19 1.1 kiyohara * This product includes software developed by Hidetoshi Shimokawa. 20 1.1 kiyohara * 21 1.1 kiyohara * 4. Neither the name of the author nor the names of its contributors 22 1.1 kiyohara * may be used to endorse or promote products derived from this software 23 1.1 kiyohara * without specific prior written permission. 24 1.22 kiyohara * 25 1.1 kiyohara * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND 26 1.1 kiyohara * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 27 1.1 kiyohara * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 28 1.1 kiyohara * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE 29 1.1 kiyohara * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 30 1.1 kiyohara * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 31 1.1 kiyohara * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 32 1.1 kiyohara * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 33 1.1 kiyohara * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 34 1.1 kiyohara * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 35 1.1 kiyohara * SUCH DAMAGE. 36 1.22 kiyohara * 37 1.22 kiyohara * $FreeBSD: src/sys/dev/firewire/if_fwip.c,v 1.18 2009/02/09 16:58:18 fjoe Exp $ 38 1.1 kiyohara */ 39 1.1 kiyohara 40 1.12 lukem #include <sys/cdefs.h> 41 1.32 rin __KERNEL_RCSID(0, "$NetBSD: if_fwip.c,v 1.32 2024/07/05 04:31:51 rin Exp $"); 42 1.1 kiyohara 43 1.1 kiyohara #include <sys/param.h> 44 1.1 kiyohara #include <sys/bus.h> 45 1.1 kiyohara #include <sys/device.h> 46 1.1 kiyohara #include <sys/errno.h> 47 1.24 christos #include <sys/malloc.h> 48 1.1 kiyohara #include <sys/mbuf.h> 49 1.22 kiyohara #include <sys/mutex.h> 50 1.1 kiyohara #include <sys/sysctl.h> 51 1.1 kiyohara 52 1.22 kiyohara #include <net/bpf.h> 53 1.1 kiyohara #include <net/if.h> 54 1.1 kiyohara #include <net/if_ieee1394.h> 55 1.8 kiyohara #include <net/if_types.h> 56 1.1 kiyohara 57 1.1 kiyohara #include <dev/ieee1394/firewire.h> 58 1.1 kiyohara #include <dev/ieee1394/firewirereg.h> 59 1.1 kiyohara #include <dev/ieee1394/iec13213.h> 60 1.1 kiyohara #include <dev/ieee1394/if_fwipvar.h> 61 1.1 kiyohara 62 1.1 kiyohara /* 63 1.1 kiyohara * We really need a mechanism for allocating regions in the FIFO 64 1.1 kiyohara * address space. We pick a address in the OHCI controller's 'middle' 65 1.1 kiyohara * address space. This means that the controller will automatically 66 1.1 kiyohara * send responses for us, which is fine since we don't have any 67 1.1 kiyohara * important information to put in the response anyway. 68 1.1 kiyohara */ 69 1.1 kiyohara #define INET_FIFO 0xfffe00000000LL 70 1.1 kiyohara 71 1.15 gmcgarry #define FWIPDEBUG if (fwipdebug) aprint_debug_ifnet 72 1.1 kiyohara #define TX_MAX_QUEUE (FWMAXQUEUE - 1) 73 1.1 kiyohara 74 1.1 kiyohara 75 1.22 kiyohara struct fw_hwaddr { 76 1.22 kiyohara uint32_t sender_unique_ID_hi; 77 1.22 kiyohara uint32_t sender_unique_ID_lo; 78 1.22 kiyohara uint8_t sender_max_rec; 79 1.22 kiyohara uint8_t sspd; 80 1.22 kiyohara uint16_t sender_unicast_FIFO_hi; 81 1.22 kiyohara uint32_t sender_unicast_FIFO_lo; 82 1.22 kiyohara }; 83 1.22 kiyohara 84 1.22 kiyohara 85 1.22 kiyohara static int fwipmatch(device_t, cfdata_t, void *); 86 1.22 kiyohara static void fwipattach(device_t, device_t, void *); 87 1.22 kiyohara static int fwipdetach(device_t, int); 88 1.22 kiyohara static int fwipactivate(device_t, enum devact); 89 1.22 kiyohara 90 1.1 kiyohara /* network interface */ 91 1.22 kiyohara static void fwip_start(struct ifnet *); 92 1.22 kiyohara static int fwip_ioctl(struct ifnet *, u_long, void *); 93 1.10 kiyohara static int fwip_init(struct ifnet *); 94 1.10 kiyohara static void fwip_stop(struct ifnet *, int); 95 1.1 kiyohara 96 1.22 kiyohara static void fwip_post_busreset(void *); 97 1.22 kiyohara static void fwip_output_callback(struct fw_xfer *); 98 1.22 kiyohara static void fwip_async_output(struct fwip_softc *, struct ifnet *); 99 1.22 kiyohara static void fwip_stream_input(struct fw_xferq *); 100 1.1 kiyohara static void fwip_unicast_input(struct fw_xfer *); 101 1.1 kiyohara 102 1.1 kiyohara static int fwipdebug = 0; 103 1.1 kiyohara static int broadcast_channel = 0xc0 | 0x1f; /* tag | channel(XXX) */ 104 1.1 kiyohara static int tx_speed = 2; 105 1.1 kiyohara static int rx_queue_len = FWMAXQUEUE; 106 1.1 kiyohara 107 1.1 kiyohara /* 108 1.1 kiyohara * Setup sysctl(3) MIB, hw.fwip.* 109 1.1 kiyohara * 110 1.17 ad * TBD condition CTLFLAG_PERMANENT on being a module or not 111 1.1 kiyohara */ 112 1.1 kiyohara SYSCTL_SETUP(sysctl_fwip, "sysctl fwip(4) subtree setup") 113 1.1 kiyohara { 114 1.1 kiyohara int rc, fwip_node_num; 115 1.1 kiyohara const struct sysctlnode *node; 116 1.1 kiyohara 117 1.1 kiyohara if ((rc = sysctl_createv(clog, 0, NULL, &node, 118 1.1 kiyohara CTLFLAG_PERMANENT, CTLTYPE_NODE, "fwip", 119 1.1 kiyohara SYSCTL_DESCR("fwip controls"), 120 1.1 kiyohara NULL, 0, NULL, 0, CTL_HW, CTL_CREATE, CTL_EOL)) != 0) { 121 1.1 kiyohara goto err; 122 1.1 kiyohara } 123 1.1 kiyohara fwip_node_num = node->sysctl_num; 124 1.1 kiyohara 125 1.1 kiyohara /* fwip RX queue length */ 126 1.1 kiyohara if ((rc = sysctl_createv(clog, 0, NULL, &node, 127 1.1 kiyohara CTLFLAG_PERMANENT | CTLFLAG_READWRITE, CTLTYPE_INT, 128 1.1 kiyohara "rx_queue_len", SYSCTL_DESCR("Length of the receive queue"), 129 1.1 kiyohara NULL, 0, &rx_queue_len, 130 1.1 kiyohara 0, CTL_HW, fwip_node_num, CTL_CREATE, CTL_EOL)) != 0) { 131 1.1 kiyohara goto err; 132 1.1 kiyohara } 133 1.1 kiyohara 134 1.1 kiyohara /* fwip RX queue length */ 135 1.1 kiyohara if ((rc = sysctl_createv(clog, 0, NULL, &node, 136 1.1 kiyohara CTLFLAG_PERMANENT | CTLFLAG_READWRITE, CTLTYPE_INT, 137 1.1 kiyohara "if_fwip_debug", SYSCTL_DESCR("fwip driver debug flag"), 138 1.1 kiyohara NULL, 0, &fwipdebug, 139 1.1 kiyohara 0, CTL_HW, fwip_node_num, CTL_CREATE, CTL_EOL)) != 0) { 140 1.1 kiyohara goto err; 141 1.1 kiyohara } 142 1.1 kiyohara 143 1.1 kiyohara return; 144 1.1 kiyohara 145 1.1 kiyohara err: 146 1.22 kiyohara aprint_error("%s: sysctl_createv failed (rc = %d)\n", __func__, rc); 147 1.1 kiyohara } 148 1.1 kiyohara 149 1.1 kiyohara 150 1.22 kiyohara CFATTACH_DECL_NEW(fwip, sizeof(struct fwip_softc), 151 1.22 kiyohara fwipmatch, fwipattach, fwipdetach, fwipactivate); 152 1.8 kiyohara 153 1.1 kiyohara 154 1.1 kiyohara static int 155 1.19 cegger fwipmatch(device_t parent, cfdata_t cf, void *aux) 156 1.1 kiyohara { 157 1.1 kiyohara struct fw_attach_args *fwa = aux; 158 1.1 kiyohara 159 1.1 kiyohara if (strcmp(fwa->name, "fwip") == 0) 160 1.22 kiyohara return 1; 161 1.22 kiyohara return 0; 162 1.1 kiyohara } 163 1.1 kiyohara 164 1.22 kiyohara static void 165 1.22 kiyohara fwipattach(device_t parent, device_t self, void *aux) 166 1.1 kiyohara { 167 1.22 kiyohara struct fwip_softc *sc = device_private(self); 168 1.22 kiyohara struct fw_attach_args *fwa = (struct fw_attach_args *)aux; 169 1.22 kiyohara struct fw_hwaddr *hwaddr; 170 1.1 kiyohara struct ifnet *ifp; 171 1.1 kiyohara 172 1.22 kiyohara aprint_naive("\n"); 173 1.22 kiyohara aprint_normal(": IP over IEEE1394\n"); 174 1.22 kiyohara 175 1.22 kiyohara sc->sc_fd.dev = self; 176 1.22 kiyohara sc->sc_eth.fwip_ifp = &sc->sc_eth.fwcom.fc_if; 177 1.22 kiyohara hwaddr = (struct fw_hwaddr *)&sc->sc_eth.fwcom.ic_hwaddr; 178 1.1 kiyohara 179 1.22 kiyohara ifp = sc->sc_eth.fwip_ifp; 180 1.8 kiyohara 181 1.22 kiyohara mutex_init(&sc->sc_fwb.fwb_mtx, MUTEX_DEFAULT, IPL_NET); 182 1.22 kiyohara mutex_init(&sc->sc_mtx, MUTEX_DEFAULT, IPL_NET); 183 1.21 mrg 184 1.1 kiyohara /* XXX */ 185 1.22 kiyohara sc->sc_dma_ch = -1; 186 1.1 kiyohara 187 1.22 kiyohara sc->sc_fd.fc = fwa->fc; 188 1.1 kiyohara if (tx_speed < 0) 189 1.22 kiyohara tx_speed = sc->sc_fd.fc->speed; 190 1.1 kiyohara 191 1.22 kiyohara sc->sc_fd.post_explore = NULL; 192 1.22 kiyohara sc->sc_fd.post_busreset = fwip_post_busreset; 193 1.22 kiyohara sc->sc_eth.fwip = sc; 194 1.1 kiyohara 195 1.1 kiyohara /* 196 1.1 kiyohara * Encode our hardware the way that arp likes it. 197 1.1 kiyohara */ 198 1.22 kiyohara hwaddr->sender_unique_ID_hi = htonl(sc->sc_fd.fc->eui.hi); 199 1.22 kiyohara hwaddr->sender_unique_ID_lo = htonl(sc->sc_fd.fc->eui.lo); 200 1.22 kiyohara hwaddr->sender_max_rec = sc->sc_fd.fc->maxrec; 201 1.22 kiyohara hwaddr->sspd = sc->sc_fd.fc->speed; 202 1.1 kiyohara hwaddr->sender_unicast_FIFO_hi = htons((uint16_t)(INET_FIFO >> 32)); 203 1.1 kiyohara hwaddr->sender_unicast_FIFO_lo = htonl((uint32_t)INET_FIFO); 204 1.1 kiyohara 205 1.22 kiyohara /* fill the rest and attach interface */ 206 1.22 kiyohara ifp->if_softc = &sc->sc_eth; 207 1.1 kiyohara 208 1.22 kiyohara strlcpy(ifp->if_xname, device_xname(self), IFNAMSIZ); 209 1.22 kiyohara ifp->if_start = fwip_start; 210 1.22 kiyohara ifp->if_ioctl = fwip_ioctl; 211 1.22 kiyohara ifp->if_init = fwip_init; 212 1.22 kiyohara ifp->if_stop = fwip_stop; 213 1.22 kiyohara ifp->if_flags = (IFF_BROADCAST|IFF_SIMPLEX|IFF_MULTICAST); 214 1.1 kiyohara IFQ_SET_READY(&ifp->if_snd); 215 1.22 kiyohara IFQ_SET_MAXLEN(&ifp->if_snd, TX_MAX_QUEUE); 216 1.1 kiyohara 217 1.22 kiyohara if_attach(ifp); 218 1.22 kiyohara ieee1394_ifattach(ifp, (const struct ieee1394_hwaddr *)hwaddr); 219 1.1 kiyohara 220 1.11 jmcneill if (!pmf_device_register(self, NULL, NULL)) 221 1.11 jmcneill aprint_error_dev(self, "couldn't establish power handler\n"); 222 1.11 jmcneill else 223 1.11 jmcneill pmf_class_network_register(self, ifp); 224 1.11 jmcneill 225 1.1 kiyohara FWIPDEBUG(ifp, "interface created\n"); 226 1.22 kiyohara return; 227 1.1 kiyohara } 228 1.1 kiyohara 229 1.22 kiyohara static int 230 1.22 kiyohara fwipdetach(device_t self, int flags) 231 1.1 kiyohara { 232 1.22 kiyohara struct fwip_softc *sc = device_private(self); 233 1.22 kiyohara struct ifnet *ifp = sc->sc_eth.fwip_ifp; 234 1.1 kiyohara 235 1.22 kiyohara fwip_stop(sc->sc_eth.fwip_ifp, 1); 236 1.22 kiyohara ieee1394_ifdetach(ifp); 237 1.22 kiyohara if_detach(ifp); 238 1.22 kiyohara mutex_destroy(&sc->sc_mtx); 239 1.22 kiyohara mutex_destroy(&sc->sc_fwb.fwb_mtx); 240 1.22 kiyohara return 0; 241 1.22 kiyohara } 242 1.1 kiyohara 243 1.22 kiyohara static int 244 1.22 kiyohara fwipactivate(device_t self, enum devact act) 245 1.22 kiyohara { 246 1.22 kiyohara struct fwip_softc *sc = device_private(self); 247 1.1 kiyohara 248 1.22 kiyohara switch (act) { 249 1.22 kiyohara case DVACT_DEACTIVATE: 250 1.22 kiyohara if_deactivate(sc->sc_eth.fwip_ifp); 251 1.22 kiyohara return 0; 252 1.22 kiyohara default: 253 1.22 kiyohara return EOPNOTSUPP; 254 1.22 kiyohara } 255 1.22 kiyohara } 256 1.22 kiyohara 257 1.22 kiyohara static void 258 1.22 kiyohara fwip_start(struct ifnet *ifp) 259 1.22 kiyohara { 260 1.22 kiyohara struct fwip_softc *sc = ((struct fwip_eth_softc *)ifp->if_softc)->fwip; 261 1.22 kiyohara 262 1.22 kiyohara FWIPDEBUG(ifp, "starting\n"); 263 1.1 kiyohara 264 1.22 kiyohara if (sc->sc_dma_ch < 0) { 265 1.22 kiyohara struct mbuf *m = NULL; 266 1.1 kiyohara 267 1.22 kiyohara FWIPDEBUG(ifp, "not ready\n"); 268 1.1 kiyohara 269 1.22 kiyohara do { 270 1.22 kiyohara IF_DEQUEUE(&ifp->if_snd, m); 271 1.32 rin m_freem(m); 272 1.30 thorpej if_statinc(ifp, if_oerrors); 273 1.22 kiyohara } while (m != NULL); 274 1.1 kiyohara 275 1.22 kiyohara return; 276 1.1 kiyohara } 277 1.1 kiyohara 278 1.22 kiyohara ifp->if_flags |= IFF_OACTIVE; 279 1.22 kiyohara 280 1.22 kiyohara if (ifp->if_snd.ifq_len != 0) 281 1.22 kiyohara fwip_async_output(sc, ifp); 282 1.22 kiyohara 283 1.22 kiyohara ifp->if_flags &= ~IFF_OACTIVE; 284 1.1 kiyohara } 285 1.1 kiyohara 286 1.22 kiyohara static int 287 1.22 kiyohara fwip_ioctl(struct ifnet *ifp, u_long cmd, void *data) 288 1.1 kiyohara { 289 1.22 kiyohara int s, error = 0; 290 1.1 kiyohara 291 1.22 kiyohara s = splnet(); 292 1.8 kiyohara 293 1.22 kiyohara switch (cmd) { 294 1.22 kiyohara case SIOCSIFFLAGS: 295 1.22 kiyohara if ((error = ifioctl_common(ifp, cmd, data)) != 0) 296 1.22 kiyohara break; 297 1.22 kiyohara switch (ifp->if_flags & (IFF_UP | IFF_RUNNING)) { 298 1.22 kiyohara case IFF_RUNNING: 299 1.22 kiyohara fwip_stop(ifp, 0); 300 1.22 kiyohara break; 301 1.22 kiyohara case IFF_UP: 302 1.22 kiyohara fwip_init(ifp); 303 1.22 kiyohara break; 304 1.22 kiyohara default: 305 1.22 kiyohara break; 306 1.22 kiyohara } 307 1.22 kiyohara break; 308 1.8 kiyohara 309 1.22 kiyohara case SIOCADDMULTI: 310 1.22 kiyohara case SIOCDELMULTI: 311 1.22 kiyohara break; 312 1.1 kiyohara 313 1.22 kiyohara default: 314 1.22 kiyohara error = ieee1394_ioctl(ifp, cmd, data); 315 1.22 kiyohara if (error == ENETRESET) 316 1.22 kiyohara error = 0; 317 1.22 kiyohara break; 318 1.22 kiyohara } 319 1.1 kiyohara 320 1.1 kiyohara splx(s); 321 1.1 kiyohara 322 1.22 kiyohara return error; 323 1.1 kiyohara } 324 1.1 kiyohara 325 1.22 kiyohara static int 326 1.22 kiyohara fwip_init(struct ifnet *ifp) 327 1.1 kiyohara { 328 1.22 kiyohara struct fwip_softc *sc = ((struct fwip_eth_softc *)ifp->if_softc)->fwip; 329 1.1 kiyohara struct firewire_comm *fc; 330 1.1 kiyohara struct fw_xferq *xferq; 331 1.1 kiyohara struct fw_xfer *xfer; 332 1.1 kiyohara struct mbuf *m; 333 1.1 kiyohara int i; 334 1.1 kiyohara 335 1.1 kiyohara FWIPDEBUG(ifp, "initializing\n"); 336 1.1 kiyohara 337 1.22 kiyohara fc = sc->sc_fd.fc; 338 1.22 kiyohara if (sc->sc_dma_ch < 0) { 339 1.22 kiyohara sc->sc_dma_ch = fw_open_isodma(fc, /* tx */0); 340 1.22 kiyohara if (sc->sc_dma_ch < 0) 341 1.22 kiyohara return ENXIO; 342 1.22 kiyohara xferq = fc->ir[sc->sc_dma_ch]; 343 1.10 kiyohara xferq->flag |= 344 1.10 kiyohara FWXFERQ_EXTBUF | FWXFERQ_HANDLER | FWXFERQ_STREAM; 345 1.1 kiyohara xferq->flag &= ~0xff; 346 1.1 kiyohara xferq->flag |= broadcast_channel & 0xff; 347 1.1 kiyohara /* register fwip_input handler */ 348 1.22 kiyohara xferq->sc = (void *) sc; 349 1.1 kiyohara xferq->hand = fwip_stream_input; 350 1.1 kiyohara xferq->bnchunk = rx_queue_len; 351 1.1 kiyohara xferq->bnpacket = 1; 352 1.1 kiyohara xferq->psize = MCLBYTES; 353 1.1 kiyohara xferq->queued = 0; 354 1.1 kiyohara xferq->buf = NULL; 355 1.24 christos xferq->bulkxfer = (struct fw_bulkxfer *) malloc( 356 1.24 christos sizeof(struct fw_bulkxfer) * xferq->bnchunk, 357 1.25 dsl M_FW, M_WAITOK); 358 1.1 kiyohara if (xferq->bulkxfer == NULL) { 359 1.24 christos aprint_error_ifnet(ifp, "if_fwip: malloc failed\n"); 360 1.22 kiyohara return ENOMEM; 361 1.1 kiyohara } 362 1.1 kiyohara STAILQ_INIT(&xferq->stvalid); 363 1.1 kiyohara STAILQ_INIT(&xferq->stfree); 364 1.1 kiyohara STAILQ_INIT(&xferq->stdma); 365 1.1 kiyohara xferq->stproc = NULL; 366 1.22 kiyohara for (i = 0; i < xferq->bnchunk; i++) { 367 1.22 kiyohara m = m_getcl(M_WAITOK, MT_DATA, M_PKTHDR); 368 1.1 kiyohara xferq->bulkxfer[i].mbuf = m; 369 1.1 kiyohara if (m != NULL) { 370 1.1 kiyohara m->m_len = m->m_pkthdr.len = m->m_ext.ext_size; 371 1.1 kiyohara STAILQ_INSERT_TAIL(&xferq->stfree, 372 1.1 kiyohara &xferq->bulkxfer[i], link); 373 1.1 kiyohara } else 374 1.22 kiyohara aprint_error_ifnet(ifp, 375 1.22 kiyohara "fwip_as_input: m_getcl failed\n"); 376 1.1 kiyohara } 377 1.1 kiyohara 378 1.22 kiyohara sc->sc_fwb.start = INET_FIFO; 379 1.22 kiyohara sc->sc_fwb.end = INET_FIFO + 16384; /* S3200 packet size */ 380 1.1 kiyohara 381 1.1 kiyohara /* pre-allocate xfer */ 382 1.22 kiyohara STAILQ_INIT(&sc->sc_fwb.xferlist); 383 1.22 kiyohara for (i = 0; i < rx_queue_len; i++) { 384 1.25 dsl xfer = fw_xfer_alloc(M_FW); 385 1.1 kiyohara if (xfer == NULL) 386 1.1 kiyohara break; 387 1.22 kiyohara m = m_getcl(M_WAITOK, MT_DATA, M_PKTHDR); 388 1.1 kiyohara xfer->recv.payload = mtod(m, uint32_t *); 389 1.1 kiyohara xfer->recv.pay_len = MCLBYTES; 390 1.1 kiyohara xfer->hand = fwip_unicast_input; 391 1.1 kiyohara xfer->fc = fc; 392 1.22 kiyohara xfer->sc = (void *) sc; 393 1.1 kiyohara xfer->mbuf = m; 394 1.22 kiyohara STAILQ_INSERT_TAIL(&sc->sc_fwb.xferlist, xfer, link); 395 1.1 kiyohara } 396 1.22 kiyohara fw_bindadd(fc, &sc->sc_fwb); 397 1.1 kiyohara 398 1.22 kiyohara STAILQ_INIT(&sc->sc_xferlist); 399 1.1 kiyohara for (i = 0; i < TX_MAX_QUEUE; i++) { 400 1.25 dsl xfer = fw_xfer_alloc(M_FW); 401 1.1 kiyohara if (xfer == NULL) 402 1.1 kiyohara break; 403 1.1 kiyohara xfer->send.spd = tx_speed; 404 1.22 kiyohara xfer->fc = sc->sc_fd.fc; 405 1.22 kiyohara xfer->sc = (void *)sc; 406 1.1 kiyohara xfer->hand = fwip_output_callback; 407 1.22 kiyohara STAILQ_INSERT_TAIL(&sc->sc_xferlist, xfer, link); 408 1.1 kiyohara } 409 1.1 kiyohara } else 410 1.22 kiyohara xferq = fc->ir[sc->sc_dma_ch]; 411 1.1 kiyohara 412 1.22 kiyohara sc->sc_last_dest.hi = 0; 413 1.22 kiyohara sc->sc_last_dest.lo = 0; 414 1.1 kiyohara 415 1.1 kiyohara /* start dma */ 416 1.1 kiyohara if ((xferq->flag & FWXFERQ_RUNNING) == 0) 417 1.22 kiyohara fc->irx_enable(fc, sc->sc_dma_ch); 418 1.1 kiyohara 419 1.1 kiyohara ifp->if_flags |= IFF_RUNNING; 420 1.1 kiyohara ifp->if_flags &= ~IFF_OACTIVE; 421 1.1 kiyohara 422 1.1 kiyohara #if 0 423 1.1 kiyohara /* attempt to start output */ 424 1.1 kiyohara fwip_start(ifp); 425 1.1 kiyohara #endif 426 1.22 kiyohara return 0; 427 1.1 kiyohara } 428 1.1 kiyohara 429 1.22 kiyohara static void 430 1.22 kiyohara fwip_stop(struct ifnet *ifp, int disable) 431 1.1 kiyohara { 432 1.22 kiyohara struct fwip_softc *sc = ((struct fwip_eth_softc *)ifp->if_softc)->fwip; 433 1.22 kiyohara struct firewire_comm *fc = sc->sc_fd.fc; 434 1.22 kiyohara struct fw_xferq *xferq; 435 1.22 kiyohara struct fw_xfer *xfer, *next; 436 1.22 kiyohara int i; 437 1.22 kiyohara 438 1.22 kiyohara if (sc->sc_dma_ch >= 0) { 439 1.22 kiyohara xferq = fc->ir[sc->sc_dma_ch]; 440 1.22 kiyohara 441 1.22 kiyohara if (xferq->flag & FWXFERQ_RUNNING) 442 1.22 kiyohara fc->irx_disable(fc, sc->sc_dma_ch); 443 1.22 kiyohara xferq->flag &= 444 1.22 kiyohara ~(FWXFERQ_MODEMASK | FWXFERQ_OPEN | FWXFERQ_STREAM | 445 1.22 kiyohara FWXFERQ_EXTBUF | FWXFERQ_HANDLER | FWXFERQ_CHTAGMASK); 446 1.22 kiyohara xferq->hand = NULL; 447 1.22 kiyohara 448 1.22 kiyohara for (i = 0; i < xferq->bnchunk; i++) 449 1.22 kiyohara m_freem(xferq->bulkxfer[i].mbuf); 450 1.25 dsl free(xferq->bulkxfer, M_FW); 451 1.1 kiyohara 452 1.22 kiyohara fw_bindremove(fc, &sc->sc_fwb); 453 1.22 kiyohara for (xfer = STAILQ_FIRST(&sc->sc_fwb.xferlist); xfer != NULL; 454 1.22 kiyohara xfer = next) { 455 1.22 kiyohara next = STAILQ_NEXT(xfer, link); 456 1.22 kiyohara fw_xfer_free(xfer); 457 1.1 kiyohara } 458 1.8 kiyohara 459 1.22 kiyohara for (xfer = STAILQ_FIRST(&sc->sc_xferlist); xfer != NULL; 460 1.22 kiyohara xfer = next) { 461 1.22 kiyohara next = STAILQ_NEXT(xfer, link); 462 1.22 kiyohara fw_xfer_free(xfer); 463 1.8 kiyohara } 464 1.1 kiyohara 465 1.22 kiyohara xferq->bulkxfer = NULL; 466 1.22 kiyohara sc->sc_dma_ch = -1; 467 1.1 kiyohara } 468 1.1 kiyohara 469 1.22 kiyohara ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE); 470 1.1 kiyohara } 471 1.1 kiyohara 472 1.1 kiyohara static void 473 1.1 kiyohara fwip_post_busreset(void *arg) 474 1.1 kiyohara { 475 1.22 kiyohara struct fwip_softc *sc = arg; 476 1.1 kiyohara struct crom_src *src; 477 1.1 kiyohara struct crom_chunk *root; 478 1.1 kiyohara 479 1.22 kiyohara src = sc->sc_fd.fc->crom_src; 480 1.22 kiyohara root = sc->sc_fd.fc->crom_root; 481 1.1 kiyohara 482 1.1 kiyohara /* RFC2734 IPv4 over IEEE1394 */ 483 1.22 kiyohara memset(&sc->sc_unit4, 0, sizeof(struct crom_chunk)); 484 1.22 kiyohara crom_add_chunk(src, root, &sc->sc_unit4, CROM_UDIR); 485 1.22 kiyohara crom_add_entry(&sc->sc_unit4, CSRKEY_SPEC, CSRVAL_IETF); 486 1.22 kiyohara crom_add_simple_text(src, &sc->sc_unit4, &sc->sc_spec4, "IANA"); 487 1.22 kiyohara crom_add_entry(&sc->sc_unit4, CSRKEY_VER, 1); 488 1.22 kiyohara crom_add_simple_text(src, &sc->sc_unit4, &sc->sc_ver4, "IPv4"); 489 1.1 kiyohara 490 1.1 kiyohara /* RFC3146 IPv6 over IEEE1394 */ 491 1.22 kiyohara memset(&sc->sc_unit6, 0, sizeof(struct crom_chunk)); 492 1.22 kiyohara crom_add_chunk(src, root, &sc->sc_unit6, CROM_UDIR); 493 1.22 kiyohara crom_add_entry(&sc->sc_unit6, CSRKEY_SPEC, CSRVAL_IETF); 494 1.22 kiyohara crom_add_simple_text(src, &sc->sc_unit6, &sc->sc_spec6, "IANA"); 495 1.22 kiyohara crom_add_entry(&sc->sc_unit6, CSRKEY_VER, 2); 496 1.22 kiyohara crom_add_simple_text(src, &sc->sc_unit6, &sc->sc_ver6, "IPv6"); 497 1.22 kiyohara 498 1.22 kiyohara sc->sc_last_dest.hi = 0; 499 1.22 kiyohara sc->sc_last_dest.lo = 0; 500 1.22 kiyohara ieee1394_drain(sc->sc_eth.fwip_ifp); 501 1.1 kiyohara } 502 1.1 kiyohara 503 1.1 kiyohara static void 504 1.1 kiyohara fwip_output_callback(struct fw_xfer *xfer) 505 1.1 kiyohara { 506 1.22 kiyohara struct fwip_softc *sc = (struct fwip_softc *)xfer->sc; 507 1.1 kiyohara struct ifnet *ifp; 508 1.1 kiyohara 509 1.22 kiyohara ifp = sc->sc_eth.fwip_ifp; 510 1.1 kiyohara /* XXX error check */ 511 1.1 kiyohara FWIPDEBUG(ifp, "resp = %d\n", xfer->resp); 512 1.1 kiyohara if (xfer->resp != 0) 513 1.30 thorpej if_statinc(ifp, if_oerrors); 514 1.22 kiyohara 515 1.1 kiyohara m_freem(xfer->mbuf); 516 1.1 kiyohara fw_xfer_unload(xfer); 517 1.1 kiyohara 518 1.22 kiyohara mutex_enter(&sc->sc_mtx); 519 1.22 kiyohara STAILQ_INSERT_TAIL(&sc->sc_xferlist, xfer, link); 520 1.22 kiyohara mutex_exit(&sc->sc_mtx); 521 1.1 kiyohara 522 1.1 kiyohara /* for queue full */ 523 1.22 kiyohara if (ifp->if_snd.ifq_head != NULL) 524 1.1 kiyohara fwip_start(ifp); 525 1.1 kiyohara } 526 1.1 kiyohara 527 1.1 kiyohara /* Async. stream output */ 528 1.1 kiyohara static void 529 1.22 kiyohara fwip_async_output(struct fwip_softc *sc, struct ifnet *ifp) 530 1.1 kiyohara { 531 1.22 kiyohara struct firewire_comm *fc = sc->sc_fd.fc; 532 1.1 kiyohara struct mbuf *m; 533 1.1 kiyohara struct m_tag *mtag; 534 1.1 kiyohara struct fw_hwaddr *destfw; 535 1.1 kiyohara struct fw_xfer *xfer; 536 1.1 kiyohara struct fw_xferq *xferq; 537 1.1 kiyohara struct fw_pkt *fp; 538 1.1 kiyohara uint16_t nodeid; 539 1.1 kiyohara int error; 540 1.1 kiyohara int i = 0; 541 1.1 kiyohara 542 1.1 kiyohara xfer = NULL; 543 1.10 kiyohara xferq = fc->atq; 544 1.10 kiyohara while ((xferq->queued < xferq->maxq - 1) && 545 1.10 kiyohara (ifp->if_snd.ifq_head != NULL)) { 546 1.22 kiyohara mutex_enter(&sc->sc_mtx); 547 1.22 kiyohara if (STAILQ_EMPTY(&sc->sc_xferlist)) { 548 1.22 kiyohara mutex_exit(&sc->sc_mtx); 549 1.10 kiyohara #if 0 550 1.22 kiyohara aprint_normal("if_fwip: lack of xfer\n"); 551 1.10 kiyohara #endif 552 1.10 kiyohara break; 553 1.1 kiyohara } 554 1.31 thorpej IF_POLL(&ifp->if_snd, m); 555 1.10 kiyohara if (m == NULL) { 556 1.22 kiyohara mutex_exit(&sc->sc_mtx); 557 1.1 kiyohara break; 558 1.10 kiyohara } 559 1.22 kiyohara xfer = STAILQ_FIRST(&sc->sc_xferlist); 560 1.22 kiyohara STAILQ_REMOVE_HEAD(&sc->sc_xferlist, link); 561 1.22 kiyohara mutex_exit(&sc->sc_mtx); 562 1.1 kiyohara 563 1.1 kiyohara /* 564 1.1 kiyohara * Dig out the link-level address which 565 1.1 kiyohara * firewire_output got via arp or neighbour 566 1.1 kiyohara * discovery. If we don't have a link-level address, 567 1.1 kiyohara * just stick the thing on the broadcast channel. 568 1.1 kiyohara */ 569 1.29 maxv mtag = m_tag_find(m, MTAG_FIREWIRE_HWADDR); 570 1.1 kiyohara if (mtag == NULL) 571 1.1 kiyohara destfw = 0; 572 1.1 kiyohara else 573 1.1 kiyohara destfw = (struct fw_hwaddr *) (mtag + 1); 574 1.1 kiyohara 575 1.1 kiyohara /* 576 1.1 kiyohara * Put the mbuf in the xfer early in case we hit an 577 1.1 kiyohara * error case below - fwip_output_callback will free 578 1.1 kiyohara * the mbuf. 579 1.1 kiyohara */ 580 1.1 kiyohara xfer->mbuf = m; 581 1.1 kiyohara 582 1.1 kiyohara /* 583 1.1 kiyohara * We use the arp result (if any) to add a suitable firewire 584 1.1 kiyohara * packet header before handing off to the bus. 585 1.1 kiyohara */ 586 1.1 kiyohara fp = &xfer->send.hdr; 587 1.1 kiyohara nodeid = FWLOCALBUS | fc->nodeid; 588 1.1 kiyohara if ((m->m_flags & M_BCAST) || !destfw) { 589 1.1 kiyohara /* 590 1.1 kiyohara * Broadcast packets are sent as GASP packets with 591 1.1 kiyohara * specifier ID 0x00005e, version 1 on the broadcast 592 1.1 kiyohara * channel. To be conservative, we send at the 593 1.1 kiyohara * slowest possible speed. 594 1.1 kiyohara */ 595 1.1 kiyohara uint32_t *p; 596 1.1 kiyohara 597 1.22 kiyohara M_PREPEND(m, 2 * sizeof(uint32_t), M_DONTWAIT); 598 1.1 kiyohara p = mtod(m, uint32_t *); 599 1.1 kiyohara fp->mode.stream.len = m->m_pkthdr.len; 600 1.1 kiyohara fp->mode.stream.chtag = broadcast_channel; 601 1.1 kiyohara fp->mode.stream.tcode = FWTCODE_STREAM; 602 1.1 kiyohara fp->mode.stream.sy = 0; 603 1.1 kiyohara xfer->send.spd = 0; 604 1.1 kiyohara p[0] = htonl(nodeid << 16); 605 1.1 kiyohara p[1] = htonl((0x5e << 24) | 1); 606 1.1 kiyohara } else { 607 1.1 kiyohara /* 608 1.1 kiyohara * Unicast packets are sent as block writes to the 609 1.1 kiyohara * target's unicast fifo address. If we can't 610 1.1 kiyohara * find the node address, we just give up. We 611 1.1 kiyohara * could broadcast it but that might overflow 612 1.1 kiyohara * the packet size limitations due to the 613 1.1 kiyohara * extra GASP header. Note: the hardware 614 1.1 kiyohara * address is stored in network byte order to 615 1.1 kiyohara * make life easier for ARP. 616 1.1 kiyohara */ 617 1.1 kiyohara struct fw_device *fd; 618 1.1 kiyohara struct fw_eui64 eui; 619 1.1 kiyohara 620 1.1 kiyohara eui.hi = ntohl(destfw->sender_unique_ID_hi); 621 1.1 kiyohara eui.lo = ntohl(destfw->sender_unique_ID_lo); 622 1.22 kiyohara if (sc->sc_last_dest.hi != eui.hi || 623 1.22 kiyohara sc->sc_last_dest.lo != eui.lo) { 624 1.1 kiyohara fd = fw_noderesolve_eui64(fc, &eui); 625 1.1 kiyohara if (!fd) { 626 1.1 kiyohara /* error */ 627 1.30 thorpej if_statinc(ifp, if_oerrors); 628 1.1 kiyohara /* XXX set error code */ 629 1.1 kiyohara fwip_output_callback(xfer); 630 1.1 kiyohara continue; 631 1.1 kiyohara 632 1.1 kiyohara } 633 1.22 kiyohara sc->sc_last_hdr.mode.wreqb.dst = 634 1.22 kiyohara FWLOCALBUS | fd->dst; 635 1.22 kiyohara sc->sc_last_hdr.mode.wreqb.tlrt = 0; 636 1.22 kiyohara sc->sc_last_hdr.mode.wreqb.tcode = 637 1.22 kiyohara FWTCODE_WREQB; 638 1.22 kiyohara sc->sc_last_hdr.mode.wreqb.pri = 0; 639 1.22 kiyohara sc->sc_last_hdr.mode.wreqb.src = nodeid; 640 1.22 kiyohara sc->sc_last_hdr.mode.wreqb.dest_hi = 641 1.1 kiyohara ntohs(destfw->sender_unicast_FIFO_hi); 642 1.22 kiyohara sc->sc_last_hdr.mode.wreqb.dest_lo = 643 1.1 kiyohara ntohl(destfw->sender_unicast_FIFO_lo); 644 1.22 kiyohara sc->sc_last_hdr.mode.wreqb.extcode = 0; 645 1.22 kiyohara sc->sc_last_dest = eui; 646 1.1 kiyohara } 647 1.1 kiyohara 648 1.22 kiyohara fp->mode.wreqb = sc->sc_last_hdr.mode.wreqb; 649 1.1 kiyohara fp->mode.wreqb.len = m->m_pkthdr.len; 650 1.28 riastrad xfer->send.spd = uimin(destfw->sspd, fc->speed); 651 1.1 kiyohara } 652 1.1 kiyohara 653 1.1 kiyohara xfer->send.pay_len = m->m_pkthdr.len; 654 1.1 kiyohara 655 1.1 kiyohara error = fw_asyreq(fc, -1, xfer); 656 1.1 kiyohara if (error == EAGAIN) { 657 1.1 kiyohara /* 658 1.1 kiyohara * We ran out of tlabels - requeue the packet 659 1.1 kiyohara * for later transmission. 660 1.1 kiyohara */ 661 1.1 kiyohara xfer->mbuf = 0; 662 1.22 kiyohara mutex_enter(&sc->sc_mtx); 663 1.22 kiyohara STAILQ_INSERT_TAIL(&sc->sc_xferlist, xfer, link); 664 1.22 kiyohara mutex_exit(&sc->sc_mtx); 665 1.1 kiyohara break; 666 1.1 kiyohara } 667 1.31 thorpej IF_DEQUEUE(&ifp->if_snd, m); 668 1.1 kiyohara if (error) { 669 1.1 kiyohara /* error */ 670 1.30 thorpej if_statinc(ifp, if_oerrors); 671 1.1 kiyohara /* XXX set error code */ 672 1.1 kiyohara fwip_output_callback(xfer); 673 1.1 kiyohara continue; 674 1.1 kiyohara } else { 675 1.30 thorpej if_statinc(ifp, if_opackets); 676 1.1 kiyohara i++; 677 1.1 kiyohara } 678 1.1 kiyohara } 679 1.1 kiyohara #if 0 680 1.1 kiyohara if (i > 1) 681 1.22 kiyohara aprint_normal("%d queued\n", i); 682 1.1 kiyohara #endif 683 1.10 kiyohara if (i > 0) 684 1.1 kiyohara xferq->start(fc); 685 1.1 kiyohara } 686 1.1 kiyohara 687 1.1 kiyohara /* Async. stream output */ 688 1.1 kiyohara static void 689 1.1 kiyohara fwip_stream_input(struct fw_xferq *xferq) 690 1.1 kiyohara { 691 1.1 kiyohara struct mbuf *m, *m0; 692 1.1 kiyohara struct m_tag *mtag; 693 1.1 kiyohara struct ifnet *ifp; 694 1.22 kiyohara struct fwip_softc *sc; 695 1.1 kiyohara struct fw_bulkxfer *sxfer; 696 1.1 kiyohara struct fw_pkt *fp; 697 1.1 kiyohara uint16_t src; 698 1.1 kiyohara uint32_t *p; 699 1.1 kiyohara 700 1.22 kiyohara sc = (struct fwip_softc *)xferq->sc; 701 1.22 kiyohara ifp = sc->sc_eth.fwip_ifp; 702 1.1 kiyohara while ((sxfer = STAILQ_FIRST(&xferq->stvalid)) != NULL) { 703 1.1 kiyohara STAILQ_REMOVE_HEAD(&xferq->stvalid, link); 704 1.1 kiyohara fp = mtod(sxfer->mbuf, struct fw_pkt *); 705 1.22 kiyohara if (sc->sc_fd.fc->irx_post != NULL) 706 1.22 kiyohara sc->sc_fd.fc->irx_post(sc->sc_fd.fc, fp->mode.ld); 707 1.1 kiyohara m = sxfer->mbuf; 708 1.1 kiyohara 709 1.1 kiyohara /* insert new rbuf */ 710 1.1 kiyohara sxfer->mbuf = m0 = m_getcl(M_DONTWAIT, MT_DATA, M_PKTHDR); 711 1.1 kiyohara if (m0 != NULL) { 712 1.1 kiyohara m0->m_len = m0->m_pkthdr.len = m0->m_ext.ext_size; 713 1.1 kiyohara STAILQ_INSERT_TAIL(&xferq->stfree, sxfer, link); 714 1.1 kiyohara } else 715 1.22 kiyohara aprint_error_ifnet(ifp, 716 1.22 kiyohara "fwip_as_input: m_getcl failed\n"); 717 1.1 kiyohara 718 1.1 kiyohara /* 719 1.1 kiyohara * We must have a GASP header - leave the 720 1.1 kiyohara * encapsulation sanity checks to the generic 721 1.1 kiyohara * code. Remeber that we also have the firewire async 722 1.1 kiyohara * stream header even though that isn't accounted for 723 1.1 kiyohara * in mode.stream.len. 724 1.1 kiyohara */ 725 1.22 kiyohara if (sxfer->resp != 0 || 726 1.22 kiyohara fp->mode.stream.len < 2 * sizeof(uint32_t)) { 727 1.1 kiyohara m_freem(m); 728 1.30 thorpej if_statinc(ifp, if_ierrors); 729 1.1 kiyohara continue; 730 1.1 kiyohara } 731 1.1 kiyohara m->m_len = m->m_pkthdr.len = fp->mode.stream.len 732 1.1 kiyohara + sizeof(fp->mode.stream); 733 1.1 kiyohara 734 1.1 kiyohara /* 735 1.1 kiyohara * If we received the packet on the broadcast channel, 736 1.1 kiyohara * mark it as broadcast, otherwise we assume it must 737 1.1 kiyohara * be multicast. 738 1.1 kiyohara */ 739 1.1 kiyohara if (fp->mode.stream.chtag == broadcast_channel) 740 1.1 kiyohara m->m_flags |= M_BCAST; 741 1.1 kiyohara else 742 1.1 kiyohara m->m_flags |= M_MCAST; 743 1.1 kiyohara 744 1.1 kiyohara /* 745 1.1 kiyohara * Make sure we recognise the GASP specifier and 746 1.1 kiyohara * version. 747 1.1 kiyohara */ 748 1.1 kiyohara p = mtod(m, uint32_t *); 749 1.22 kiyohara if ((((ntohl(p[1]) & 0xffff) << 8) | ntohl(p[2]) >> 24) != 750 1.22 kiyohara 0x00005e || 751 1.22 kiyohara (ntohl(p[2]) & 0xffffff) != 1) { 752 1.1 kiyohara FWIPDEBUG(ifp, "Unrecognised GASP header %#08x %#08x\n", 753 1.1 kiyohara ntohl(p[1]), ntohl(p[2])); 754 1.1 kiyohara m_freem(m); 755 1.30 thorpej if_statinc(ifp, if_ierrors); 756 1.1 kiyohara continue; 757 1.1 kiyohara } 758 1.1 kiyohara 759 1.1 kiyohara /* 760 1.1 kiyohara * Record the sender ID for possible BPF usage. 761 1.1 kiyohara */ 762 1.1 kiyohara src = ntohl(p[1]) >> 16; 763 1.22 kiyohara if (ifp->if_bpf) { 764 1.22 kiyohara mtag = m_tag_get(MTAG_FIREWIRE_SENDER_EUID, 765 1.22 kiyohara 2 * sizeof(uint32_t), M_NOWAIT); 766 1.1 kiyohara if (mtag) { 767 1.1 kiyohara /* bpf wants it in network byte order */ 768 1.1 kiyohara struct fw_device *fd; 769 1.1 kiyohara uint32_t *p2 = (uint32_t *) (mtag + 1); 770 1.22 kiyohara 771 1.22 kiyohara fd = fw_noderesolve_nodeid(sc->sc_fd.fc, 772 1.1 kiyohara src & 0x3f); 773 1.1 kiyohara if (fd) { 774 1.1 kiyohara p2[0] = htonl(fd->eui.hi); 775 1.1 kiyohara p2[1] = htonl(fd->eui.lo); 776 1.1 kiyohara } else { 777 1.1 kiyohara p2[0] = 0; 778 1.1 kiyohara p2[1] = 0; 779 1.1 kiyohara } 780 1.1 kiyohara m_tag_prepend(m, mtag); 781 1.1 kiyohara } 782 1.1 kiyohara } 783 1.1 kiyohara 784 1.1 kiyohara /* 785 1.1 kiyohara * Trim off the GASP header 786 1.1 kiyohara */ 787 1.1 kiyohara m_adj(m, 3*sizeof(uint32_t)); 788 1.27 ozaki m_set_rcvif(m, ifp); 789 1.22 kiyohara ieee1394_input(ifp, m, src); 790 1.30 thorpej if_statinc(ifp, if_ipackets); 791 1.1 kiyohara } 792 1.1 kiyohara if (STAILQ_FIRST(&xferq->stfree) != NULL) 793 1.22 kiyohara sc->sc_fd.fc->irx_enable(sc->sc_fd.fc, sc->sc_dma_ch); 794 1.1 kiyohara } 795 1.1 kiyohara 796 1.4 perry static inline void 797 1.22 kiyohara fwip_unicast_input_recycle(struct fwip_softc *sc, struct fw_xfer *xfer) 798 1.1 kiyohara { 799 1.1 kiyohara struct mbuf *m; 800 1.1 kiyohara 801 1.1 kiyohara /* 802 1.1 kiyohara * We have finished with a unicast xfer. Allocate a new 803 1.1 kiyohara * cluster and stick it on the back of the input queue. 804 1.1 kiyohara */ 805 1.2 kiyohara m = m_getcl(M_DONTWAIT, MT_DATA, M_PKTHDR); 806 1.2 kiyohara if (m == NULL) 807 1.22 kiyohara aprint_error_dev(sc->sc_fd.dev, 808 1.22 kiyohara "fwip_unicast_input_recycle: m_getcl failed\n"); 809 1.1 kiyohara xfer->recv.payload = mtod(m, uint32_t *); 810 1.1 kiyohara xfer->recv.pay_len = MCLBYTES; 811 1.1 kiyohara xfer->mbuf = m; 812 1.22 kiyohara mutex_enter(&sc->sc_fwb.fwb_mtx); 813 1.22 kiyohara STAILQ_INSERT_TAIL(&sc->sc_fwb.xferlist, xfer, link); 814 1.22 kiyohara mutex_exit(&sc->sc_fwb.fwb_mtx); 815 1.1 kiyohara } 816 1.1 kiyohara 817 1.1 kiyohara static void 818 1.1 kiyohara fwip_unicast_input(struct fw_xfer *xfer) 819 1.1 kiyohara { 820 1.1 kiyohara uint64_t address; 821 1.1 kiyohara struct mbuf *m; 822 1.1 kiyohara struct m_tag *mtag; 823 1.1 kiyohara struct ifnet *ifp; 824 1.22 kiyohara struct fwip_softc *sc; 825 1.1 kiyohara struct fw_pkt *fp; 826 1.1 kiyohara int rtcode; 827 1.1 kiyohara 828 1.22 kiyohara sc = (struct fwip_softc *)xfer->sc; 829 1.22 kiyohara ifp = sc->sc_eth.fwip_ifp; 830 1.1 kiyohara m = xfer->mbuf; 831 1.1 kiyohara xfer->mbuf = 0; 832 1.1 kiyohara fp = &xfer->recv.hdr; 833 1.1 kiyohara 834 1.1 kiyohara /* 835 1.1 kiyohara * Check the fifo address - we only accept addresses of 836 1.1 kiyohara * exactly INET_FIFO. 837 1.1 kiyohara */ 838 1.1 kiyohara address = ((uint64_t)fp->mode.wreqb.dest_hi << 32) 839 1.1 kiyohara | fp->mode.wreqb.dest_lo; 840 1.1 kiyohara if (fp->mode.wreqb.tcode != FWTCODE_WREQB) { 841 1.1 kiyohara rtcode = FWRCODE_ER_TYPE; 842 1.1 kiyohara } else if (address != INET_FIFO) { 843 1.1 kiyohara rtcode = FWRCODE_ER_ADDR; 844 1.1 kiyohara } else { 845 1.1 kiyohara rtcode = FWRCODE_COMPLETE; 846 1.1 kiyohara } 847 1.1 kiyohara 848 1.1 kiyohara /* 849 1.1 kiyohara * Pick up a new mbuf and stick it on the back of the receive 850 1.1 kiyohara * queue. 851 1.1 kiyohara */ 852 1.22 kiyohara fwip_unicast_input_recycle(sc, xfer); 853 1.1 kiyohara 854 1.1 kiyohara /* 855 1.1 kiyohara * If we've already rejected the packet, give up now. 856 1.1 kiyohara */ 857 1.1 kiyohara if (rtcode != FWRCODE_COMPLETE) { 858 1.1 kiyohara m_freem(m); 859 1.30 thorpej if_statinc(ifp, if_ierrors); 860 1.1 kiyohara return; 861 1.1 kiyohara } 862 1.1 kiyohara 863 1.22 kiyohara if (ifp->if_bpf) { 864 1.1 kiyohara /* 865 1.1 kiyohara * Record the sender ID for possible BPF usage. 866 1.1 kiyohara */ 867 1.22 kiyohara mtag = m_tag_get(MTAG_FIREWIRE_SENDER_EUID, 868 1.22 kiyohara 2 * sizeof(uint32_t), M_NOWAIT); 869 1.1 kiyohara if (mtag) { 870 1.1 kiyohara /* bpf wants it in network byte order */ 871 1.1 kiyohara struct fw_device *fd; 872 1.1 kiyohara uint32_t *p = (uint32_t *) (mtag + 1); 873 1.22 kiyohara 874 1.22 kiyohara fd = fw_noderesolve_nodeid(sc->sc_fd.fc, 875 1.1 kiyohara fp->mode.wreqb.src & 0x3f); 876 1.1 kiyohara if (fd) { 877 1.1 kiyohara p[0] = htonl(fd->eui.hi); 878 1.1 kiyohara p[1] = htonl(fd->eui.lo); 879 1.1 kiyohara } else { 880 1.1 kiyohara p[0] = 0; 881 1.1 kiyohara p[1] = 0; 882 1.1 kiyohara } 883 1.1 kiyohara m_tag_prepend(m, mtag); 884 1.1 kiyohara } 885 1.1 kiyohara } 886 1.1 kiyohara 887 1.1 kiyohara /* 888 1.1 kiyohara * Hand off to the generic encapsulation code. We don't use 889 1.1 kiyohara * ifp->if_input so that we can pass the source nodeid as an 890 1.1 kiyohara * argument to facilitate link-level fragment reassembly. 891 1.1 kiyohara */ 892 1.1 kiyohara m->m_len = m->m_pkthdr.len = fp->mode.wreqb.len; 893 1.27 ozaki m_set_rcvif(m, ifp); 894 1.22 kiyohara ieee1394_input(ifp, m, fp->mode.wreqb.src); 895 1.30 thorpej if_statinc(ifp, if_ipackets); 896 1.1 kiyohara } 897