if_lii.c revision 1.11 1 1.11 matt /* $NetBSD: if_lii.c,v 1.11 2012/07/22 14:33:02 matt Exp $ */
2 1.1 cube
3 1.1 cube /*
4 1.1 cube * Copyright (c) 2008 The NetBSD Foundation.
5 1.1 cube * All rights reserved.
6 1.1 cube *
7 1.1 cube * Redistribution and use in source and binary forms, with or without
8 1.1 cube * modification, are permitted provided that the following conditions
9 1.1 cube * are met:
10 1.1 cube * 1. Redistributions of source code must retain the above copyright
11 1.1 cube * notice, this list of conditions and the following disclaimer.
12 1.1 cube * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 cube * notice, this list of conditions and the following disclaimer in the
14 1.1 cube * documentation and/or other materials provided with the distribution.
15 1.1 cube *
16 1.1 cube * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
17 1.1 cube * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
18 1.1 cube * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
19 1.1 cube * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
20 1.1 cube * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
21 1.1 cube * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
22 1.1 cube * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
23 1.1 cube * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
24 1.1 cube * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
25 1.1 cube * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
26 1.1 cube * POSSIBILITY OF SUCH DAMAGE.
27 1.1 cube */
28 1.1 cube
29 1.1 cube /*
30 1.1 cube * Driver for Attansic/Atheros's L2 Fast Ethernet controller
31 1.1 cube */
32 1.1 cube
33 1.1 cube #include <sys/cdefs.h>
34 1.11 matt __KERNEL_RCSID(0, "$NetBSD: if_lii.c,v 1.11 2012/07/22 14:33:02 matt Exp $");
35 1.1 cube
36 1.1 cube
37 1.1 cube #include <sys/param.h>
38 1.1 cube #include <sys/systm.h>
39 1.1 cube #include <sys/types.h>
40 1.1 cube #include <sys/device.h>
41 1.1 cube #include <sys/endian.h>
42 1.1 cube #include <sys/kernel.h>
43 1.1 cube #include <sys/sockio.h>
44 1.1 cube
45 1.1 cube #include <net/if.h>
46 1.1 cube #include <net/if_media.h>
47 1.1 cube #include <net/if_ether.h>
48 1.1 cube
49 1.1 cube #include <net/bpf.h>
50 1.1 cube
51 1.1 cube #include <dev/mii/mii.h>
52 1.1 cube #include <dev/mii/miivar.h>
53 1.1 cube
54 1.1 cube #include <dev/pci/pcireg.h>
55 1.1 cube #include <dev/pci/pcivar.h>
56 1.1 cube #include <dev/pci/pcidevs.h>
57 1.1 cube
58 1.1 cube #include <dev/pci/if_liireg.h>
59 1.1 cube
60 1.1 cube /* #define LII_DEBUG */
61 1.1 cube #ifdef LII_DEBUG
62 1.1 cube #define DPRINTF(x) printf x
63 1.1 cube #else
64 1.1 cube #define DPRINTF(x)
65 1.1 cube #endif
66 1.1 cube
67 1.1 cube struct lii_softc {
68 1.1 cube device_t sc_dev;
69 1.1 cube pci_chipset_tag_t sc_pc;
70 1.1 cube pcitag_t sc_tag;
71 1.1 cube
72 1.1 cube bus_space_tag_t sc_mmiot;
73 1.1 cube bus_space_handle_t sc_mmioh;
74 1.1 cube
75 1.1 cube /*
76 1.1 cube * We allocate a big chunk of DMA-safe memory for all data exchanges.
77 1.1 cube * It is unfortunate that this chip doesn't seem to do scatter-gather.
78 1.1 cube */
79 1.1 cube bus_dma_tag_t sc_dmat;
80 1.1 cube bus_dmamap_t sc_ringmap;
81 1.1 cube bus_dma_segment_t sc_ringseg;
82 1.1 cube
83 1.1 cube uint8_t *sc_ring; /* the whole area */
84 1.1 cube size_t sc_ringsize;
85 1.1 cube
86 1.1 cube struct rx_pkt *sc_rxp; /* the part used for RX */
87 1.1 cube struct tx_pkt_status *sc_txs; /* the parts used for TX */
88 1.1 cube bus_addr_t sc_txsp;
89 1.1 cube char *sc_txdbase;
90 1.1 cube bus_addr_t sc_txdp;
91 1.1 cube
92 1.1 cube unsigned int sc_rxcur;
93 1.1 cube /* the active area is [ack; cur[ */
94 1.1 cube int sc_txs_cur;
95 1.1 cube int sc_txs_ack;
96 1.1 cube int sc_txd_cur;
97 1.1 cube int sc_txd_ack;
98 1.1 cube bool sc_free_tx_slots;
99 1.1 cube
100 1.1 cube void *sc_ih;
101 1.1 cube
102 1.1 cube struct ethercom sc_ec;
103 1.1 cube struct mii_data sc_mii;
104 1.1 cube callout_t sc_tick_ch;
105 1.1 cube uint8_t sc_eaddr[ETHER_ADDR_LEN];
106 1.1 cube
107 1.1 cube int (*sc_memread)(struct lii_softc *, uint32_t,
108 1.1 cube uint32_t *);
109 1.1 cube };
110 1.1 cube
111 1.1 cube static int lii_match(device_t, cfdata_t, void *);
112 1.1 cube static void lii_attach(device_t, device_t, void *);
113 1.1 cube
114 1.1 cube static int lii_reset(struct lii_softc *);
115 1.1 cube static bool lii_eeprom_present(struct lii_softc *);
116 1.1 cube static int lii_read_macaddr(struct lii_softc *, uint8_t *);
117 1.1 cube static int lii_eeprom_read(struct lii_softc *, uint32_t, uint32_t *);
118 1.1 cube static void lii_spi_configure(struct lii_softc *);
119 1.1 cube static int lii_spi_read(struct lii_softc *, uint32_t, uint32_t *);
120 1.1 cube static void lii_setmulti(struct lii_softc *);
121 1.1 cube static void lii_tick(void *);
122 1.1 cube
123 1.1 cube static int lii_alloc_rings(struct lii_softc *);
124 1.1 cube static int lii_free_tx_space(struct lii_softc *);
125 1.1 cube
126 1.1 cube static int lii_mii_readreg(device_t, int, int);
127 1.1 cube static void lii_mii_writereg(device_t, int, int, int);
128 1.11 matt static void lii_mii_statchg(struct ifnet *);
129 1.1 cube
130 1.1 cube static int lii_media_change(struct ifnet *);
131 1.1 cube static void lii_media_status(struct ifnet *, struct ifmediareq *);
132 1.1 cube
133 1.1 cube static int lii_init(struct ifnet *);
134 1.1 cube static void lii_start(struct ifnet *);
135 1.1 cube static void lii_stop(struct ifnet *, int);
136 1.1 cube static void lii_watchdog(struct ifnet *);
137 1.1 cube static int lii_ioctl(struct ifnet *, u_long, void *);
138 1.1 cube
139 1.1 cube static int lii_intr(void *);
140 1.1 cube static void lii_rxintr(struct lii_softc *);
141 1.1 cube static void lii_txintr(struct lii_softc *);
142 1.1 cube
143 1.1 cube CFATTACH_DECL_NEW(lii, sizeof(struct lii_softc),
144 1.1 cube lii_match, lii_attach, NULL, NULL);
145 1.1 cube
146 1.1 cube /* #define LII_DEBUG_REGS */
147 1.1 cube #ifndef LII_DEBUG_REGS
148 1.1 cube #define AT_READ_4(sc,reg) \
149 1.1 cube bus_space_read_4((sc)->sc_mmiot, (sc)->sc_mmioh, (reg))
150 1.1 cube #define AT_READ_2(sc,reg) \
151 1.1 cube bus_space_read_2((sc)->sc_mmiot, (sc)->sc_mmioh, (reg))
152 1.1 cube #define AT_READ_1(sc,reg) \
153 1.1 cube bus_space_read_1((sc)->sc_mmiot, (sc)->sc_mmioh, (reg))
154 1.1 cube #define AT_WRITE_4(sc,reg,val) \
155 1.1 cube bus_space_write_4((sc)->sc_mmiot, (sc)->sc_mmioh, (reg), (val))
156 1.1 cube #define AT_WRITE_2(sc,reg,val) \
157 1.1 cube bus_space_write_2((sc)->sc_mmiot, (sc)->sc_mmioh, (reg), (val))
158 1.1 cube #define AT_WRITE_1(sc,reg,val) \
159 1.1 cube bus_space_write_1((sc)->sc_mmiot, (sc)->sc_mmioh, (reg), (val))
160 1.1 cube #else
161 1.1 cube static inline uint32_t
162 1.1 cube AT_READ_4(struct lii_softc *sc, bus_size_t reg)
163 1.1 cube {
164 1.1 cube uint32_t r = bus_space_read_4(sc->sc_mmiot, sc->sc_mmioh, reg);
165 1.1 cube printf("AT_READ_4(%x) = %x\n", (unsigned int)reg, r);
166 1.1 cube return r;
167 1.1 cube }
168 1.1 cube
169 1.1 cube static inline uint16_t
170 1.1 cube AT_READ_2(struct lii_softc *sc, bus_size_t reg)
171 1.1 cube {
172 1.1 cube uint16_t r = bus_space_read_2(sc->sc_mmiot, sc->sc_mmioh, reg);
173 1.1 cube printf("AT_READ_2(%x) = %x\n", (unsigned int)reg, r);
174 1.1 cube return r;
175 1.1 cube }
176 1.1 cube
177 1.1 cube static inline uint8_t
178 1.1 cube AT_READ_1(struct lii_softc *sc, bus_size_t reg)
179 1.1 cube {
180 1.1 cube uint8_t r = bus_space_read_1(sc->sc_mmiot, sc->sc_mmioh, reg);
181 1.1 cube printf("AT_READ_1(%x) = %x\n", (unsigned int)reg, r);
182 1.1 cube return r;
183 1.1 cube }
184 1.1 cube
185 1.1 cube static inline void
186 1.1 cube AT_WRITE_4(struct lii_softc *sc, bus_size_t reg, uint32_t val)
187 1.1 cube {
188 1.1 cube printf("AT_WRITE_4(%x, %x)\n", (unsigned int)reg, val);
189 1.1 cube bus_space_write_4(sc->sc_mmiot, sc->sc_mmioh, reg, val);
190 1.1 cube }
191 1.1 cube
192 1.1 cube static inline void
193 1.1 cube AT_WRITE_2(struct lii_softc *sc, bus_size_t reg, uint16_t val)
194 1.1 cube {
195 1.1 cube printf("AT_WRITE_2(%x, %x)\n", (unsigned int)reg, val);
196 1.1 cube bus_space_write_2(sc->sc_mmiot, sc->sc_mmioh, reg, val);
197 1.1 cube }
198 1.1 cube
199 1.1 cube static inline void
200 1.1 cube AT_WRITE_1(struct lii_softc *sc, bus_size_t reg, uint8_t val)
201 1.1 cube {
202 1.1 cube printf("AT_WRITE_1(%x, %x)\n", (unsigned int)reg, val);
203 1.1 cube bus_space_write_1(sc->sc_mmiot, sc->sc_mmioh, reg, val);
204 1.1 cube }
205 1.1 cube #endif
206 1.1 cube
207 1.1 cube /*
208 1.1 cube * Those are the default Linux parameters.
209 1.1 cube */
210 1.1 cube
211 1.1 cube #define AT_TXD_NUM 64
212 1.1 cube #define AT_TXD_BUFFER_SIZE 8192
213 1.1 cube #define AT_RXD_NUM 64
214 1.1 cube
215 1.1 cube /*
216 1.1 cube * Assuming (you know what that word makes of you) the chunk of memory
217 1.1 cube * bus_dmamem_alloc returns us is 128-byte aligned, we won't use the
218 1.1 cube * first 120 bytes of it, so that the space for the packets, and not the
219 1.1 cube * whole descriptors themselves, are on a 128-byte boundary.
220 1.1 cube */
221 1.1 cube
222 1.1 cube #define AT_RXD_PADDING 120
223 1.1 cube
224 1.1 cube static int
225 1.1 cube lii_match(device_t parent, cfdata_t cfmatch, void *aux)
226 1.1 cube {
227 1.1 cube struct pci_attach_args *pa = aux;
228 1.1 cube
229 1.1 cube return (PCI_VENDOR(pa->pa_id) == PCI_VENDOR_ATTANSIC &&
230 1.1 cube PCI_PRODUCT(pa->pa_id) == PCI_PRODUCT_ATTANSIC_ETHERNET_100);
231 1.1 cube }
232 1.1 cube
233 1.1 cube static void
234 1.1 cube lii_attach(device_t parent, device_t self, void *aux)
235 1.1 cube {
236 1.1 cube struct lii_softc *sc = device_private(self);
237 1.1 cube struct pci_attach_args *pa = aux;
238 1.1 cube uint8_t eaddr[ETHER_ADDR_LEN];
239 1.1 cube struct ifnet *ifp = &sc->sc_ec.ec_if;
240 1.1 cube pci_intr_handle_t ih;
241 1.1 cube const char *intrstr;
242 1.1 cube pcireg_t cmd;
243 1.6 cegger bus_size_t memsize = 0;
244 1.1 cube
245 1.1 cube aprint_naive("\n");
246 1.1 cube aprint_normal(": Attansic/Atheros L2 Fast Ethernet\n");
247 1.1 cube
248 1.1 cube sc->sc_dev = self;
249 1.1 cube sc->sc_pc = pa->pa_pc;
250 1.1 cube sc->sc_tag = pa->pa_tag;
251 1.1 cube sc->sc_dmat = pa->pa_dmat;
252 1.1 cube
253 1.1 cube cmd = pci_conf_read(sc->sc_pc, sc->sc_tag, PCI_COMMAND_STATUS_REG);
254 1.1 cube cmd |= PCI_COMMAND_MEM_ENABLE | PCI_COMMAND_MASTER_ENABLE;
255 1.1 cube cmd &= ~PCI_COMMAND_IO_ENABLE;
256 1.1 cube pci_conf_write(sc->sc_pc, sc->sc_tag, PCI_COMMAND_STATUS_REG, cmd);
257 1.1 cube
258 1.1 cube switch (cmd = pci_mapreg_type(sc->sc_pc, sc->sc_tag, PCI_MAPREG_START)) {
259 1.1 cube case PCI_MAPREG_TYPE_MEM | PCI_MAPREG_MEM_TYPE_32BIT:
260 1.1 cube case PCI_MAPREG_TYPE_MEM | PCI_MAPREG_MEM_TYPE_32BIT_1M:
261 1.1 cube case PCI_MAPREG_TYPE_MEM | PCI_MAPREG_MEM_TYPE_64BIT:
262 1.1 cube break;
263 1.1 cube default:
264 1.1 cube aprint_error_dev(self, "invalid base address register\n");
265 1.1 cube break;
266 1.1 cube }
267 1.1 cube if (pci_mapreg_map(pa, PCI_MAPREG_START, cmd, 0,
268 1.6 cegger &sc->sc_mmiot, &sc->sc_mmioh, NULL, &memsize) != 0) {
269 1.1 cube aprint_error_dev(self, "failed to map registers\n");
270 1.1 cube return;
271 1.1 cube }
272 1.1 cube
273 1.1 cube if (lii_reset(sc))
274 1.1 cube return;
275 1.1 cube
276 1.1 cube lii_spi_configure(sc);
277 1.1 cube
278 1.1 cube if (lii_eeprom_present(sc))
279 1.1 cube sc->sc_memread = lii_eeprom_read;
280 1.1 cube else
281 1.1 cube sc->sc_memread = lii_spi_read;
282 1.1 cube
283 1.1 cube if (lii_read_macaddr(sc, eaddr))
284 1.1 cube return;
285 1.1 cube memcpy(sc->sc_eaddr, eaddr, ETHER_ADDR_LEN);
286 1.1 cube
287 1.1 cube aprint_normal_dev(self, "Ethernet address %s\n",
288 1.1 cube ether_sprintf(eaddr));
289 1.1 cube
290 1.1 cube if (pci_intr_map(pa, &ih) != 0) {
291 1.1 cube aprint_error_dev(self, "failed to map interrupt\n");
292 1.6 cegger goto fail;
293 1.1 cube }
294 1.1 cube intrstr = pci_intr_string(sc->sc_pc, ih);
295 1.1 cube sc->sc_ih = pci_intr_establish(sc->sc_pc, ih, IPL_NET, lii_intr, sc);
296 1.1 cube if (sc->sc_ih == NULL) {
297 1.1 cube aprint_error_dev(self, "failed to establish interrupt");
298 1.1 cube if (intrstr != NULL)
299 1.1 cube aprint_error(" at %s", intrstr);
300 1.1 cube aprint_error("\n");
301 1.6 cegger goto fail;
302 1.1 cube }
303 1.1 cube aprint_normal_dev(self, "interrupting at %s\n", intrstr);
304 1.1 cube
305 1.6 cegger if (lii_alloc_rings(sc))
306 1.6 cegger goto fail;
307 1.1 cube
308 1.1 cube callout_init(&sc->sc_tick_ch, 0);
309 1.1 cube callout_setfunc(&sc->sc_tick_ch, lii_tick, sc);
310 1.1 cube
311 1.1 cube sc->sc_mii.mii_ifp = ifp;
312 1.1 cube sc->sc_mii.mii_readreg = lii_mii_readreg;
313 1.1 cube sc->sc_mii.mii_writereg = lii_mii_writereg;
314 1.1 cube sc->sc_mii.mii_statchg = lii_mii_statchg;
315 1.1 cube ifmedia_init(&sc->sc_mii.mii_media, IFM_IMASK, lii_media_change,
316 1.1 cube lii_media_status);
317 1.1 cube mii_attach(sc->sc_dev, &sc->sc_mii, 0xffffffff, 1,
318 1.1 cube MII_OFFSET_ANY, 0);
319 1.1 cube ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_AUTO);
320 1.1 cube
321 1.1 cube strlcpy(ifp->if_xname, device_xname(self), IFNAMSIZ);
322 1.1 cube ifp->if_softc = sc;
323 1.1 cube ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
324 1.1 cube ifp->if_ioctl = lii_ioctl;
325 1.1 cube ifp->if_start = lii_start;
326 1.1 cube ifp->if_watchdog = lii_watchdog;
327 1.1 cube ifp->if_init = lii_init;
328 1.1 cube ifp->if_stop = lii_stop;
329 1.1 cube IFQ_SET_READY(&ifp->if_snd);
330 1.1 cube
331 1.1 cube /*
332 1.1 cube * While the device does support HW VLAN tagging, there is no
333 1.1 cube * real point using that feature.
334 1.1 cube */
335 1.1 cube sc->sc_ec.ec_capabilities = ETHERCAP_VLAN_MTU;
336 1.1 cube
337 1.1 cube if_attach(ifp);
338 1.1 cube ether_ifattach(ifp, eaddr);
339 1.1 cube
340 1.7 tsutsui if (pmf_device_register(self, NULL, NULL))
341 1.7 tsutsui pmf_class_network_register(self, ifp);
342 1.7 tsutsui else
343 1.2 mjf aprint_error_dev(self, "couldn't establish power handler\n");
344 1.2 mjf
345 1.1 cube return;
346 1.6 cegger
347 1.6 cegger fail:
348 1.6 cegger if (sc->sc_ih != NULL) {
349 1.6 cegger pci_intr_disestablish(sc->sc_pc, sc->sc_ih);
350 1.6 cegger sc->sc_ih = NULL;
351 1.6 cegger }
352 1.6 cegger if (memsize)
353 1.6 cegger bus_space_unmap(sc->sc_mmiot, sc->sc_mmioh, memsize);
354 1.1 cube }
355 1.1 cube
356 1.1 cube static int
357 1.1 cube lii_reset(struct lii_softc *sc)
358 1.1 cube {
359 1.1 cube int i;
360 1.1 cube
361 1.1 cube DPRINTF(("lii_reset\n"));
362 1.1 cube
363 1.1 cube AT_WRITE_4(sc, ATL2_SMC, SMC_SOFT_RST);
364 1.1 cube DELAY(1000);
365 1.1 cube
366 1.1 cube for (i = 0; i < 10; ++i) {
367 1.1 cube if (AT_READ_4(sc, ATL2_BIS) == 0)
368 1.1 cube break;
369 1.1 cube DELAY(1000);
370 1.1 cube }
371 1.1 cube
372 1.1 cube if (i == 10) {
373 1.1 cube aprint_error_dev(sc->sc_dev, "reset failed\n");
374 1.1 cube return 1;
375 1.1 cube }
376 1.1 cube
377 1.1 cube AT_WRITE_4(sc, ATL2_PHYC, PHYC_ENABLE);
378 1.1 cube DELAY(10);
379 1.1 cube
380 1.1 cube /* Init PCI-Express module */
381 1.1 cube /* Magic Numbers Warning */
382 1.1 cube AT_WRITE_4(sc, ATL2_PCELTM, PCELTM_DEF);
383 1.1 cube AT_WRITE_4(sc, ATL2_PCEDTXC, PCEDTX_DEF);
384 1.1 cube
385 1.1 cube return 0;
386 1.1 cube }
387 1.1 cube
388 1.1 cube static bool
389 1.1 cube lii_eeprom_present(struct lii_softc *sc)
390 1.1 cube {
391 1.1 cube /*
392 1.1 cube * The Linux driver does this, but then it has a very weird way of
393 1.1 cube * checking whether the PCI configuration space exposes the Vital
394 1.1 cube * Product Data capability, so maybe it's not really needed.
395 1.1 cube */
396 1.1 cube
397 1.1 cube #ifdef weirdloonix
398 1.1 cube uint32_t val;
399 1.1 cube
400 1.1 cube val = AT_READ_4(sc, ATL2_SFC);
401 1.1 cube if (val & SFC_EN_VPD)
402 1.1 cube AT_WRITE_4(sc, ATL2_SFC, val & ~(SFC_EN_VPD));
403 1.1 cube #endif
404 1.1 cube
405 1.1 cube return pci_get_capability(sc->sc_pc, sc->sc_tag, PCI_CAP_VPD,
406 1.1 cube NULL, NULL) == 1;
407 1.1 cube }
408 1.1 cube
409 1.1 cube static int
410 1.1 cube lii_eeprom_read(struct lii_softc *sc, uint32_t reg, uint32_t *val)
411 1.1 cube {
412 1.1 cube int r = pci_vpd_read(sc->sc_pc, sc->sc_tag, reg, 1, (pcireg_t *)val);
413 1.1 cube
414 1.1 cube DPRINTF(("lii_eeprom_read(%x) = %x\n", reg, *val));
415 1.1 cube
416 1.1 cube return r;
417 1.1 cube }
418 1.1 cube
419 1.1 cube static void
420 1.1 cube lii_spi_configure(struct lii_softc *sc)
421 1.1 cube {
422 1.1 cube /*
423 1.1 cube * We don't offer a way to configure the SPI Flash vendor parameter, so
424 1.1 cube * the table is given for reference
425 1.1 cube */
426 1.1 cube static const struct lii_spi_flash_vendor {
427 1.1 cube const char *sfv_name;
428 1.1 cube const uint8_t sfv_opcodes[9];
429 1.1 cube } lii_sfv[] = {
430 1.1 cube { "Atmel", { 0x00, 0x03, 0x02, 0x06, 0x04, 0x05, 0x15, 0x52, 0x62 } },
431 1.1 cube { "SST", { 0x01, 0x03, 0x02, 0x06, 0x04, 0x05, 0x90, 0x20, 0x60 } },
432 1.1 cube { "ST", { 0x01, 0x03, 0x02, 0x06, 0x04, 0x05, 0xab, 0xd8, 0xc7 } },
433 1.1 cube };
434 1.1 cube #define SF_OPCODE_WRSR 0
435 1.1 cube #define SF_OPCODE_READ 1
436 1.1 cube #define SF_OPCODE_PRGM 2
437 1.1 cube #define SF_OPCODE_WREN 3
438 1.1 cube #define SF_OPCODE_WRDI 4
439 1.1 cube #define SF_OPCODE_RDSR 5
440 1.1 cube #define SF_OPCODE_RDID 6
441 1.1 cube #define SF_OPCODE_SECT_ER 7
442 1.1 cube #define SF_OPCODE_CHIP_ER 8
443 1.1 cube
444 1.1 cube #define SF_DEFAULT_VENDOR 0
445 1.1 cube static const uint8_t vendor = SF_DEFAULT_VENDOR;
446 1.1 cube
447 1.1 cube /*
448 1.1 cube * Why isn't WRDI used? Heck if I know.
449 1.1 cube */
450 1.1 cube
451 1.1 cube AT_WRITE_1(sc, ATL2_SFOP_WRSR,
452 1.1 cube lii_sfv[vendor].sfv_opcodes[SF_OPCODE_WRSR]);
453 1.1 cube AT_WRITE_1(sc, ATL2_SFOP_READ,
454 1.1 cube lii_sfv[vendor].sfv_opcodes[SF_OPCODE_READ]);
455 1.1 cube AT_WRITE_1(sc, ATL2_SFOP_PROGRAM,
456 1.1 cube lii_sfv[vendor].sfv_opcodes[SF_OPCODE_PRGM]);
457 1.1 cube AT_WRITE_1(sc, ATL2_SFOP_WREN,
458 1.1 cube lii_sfv[vendor].sfv_opcodes[SF_OPCODE_WREN]);
459 1.1 cube AT_WRITE_1(sc, ATL2_SFOP_RDSR,
460 1.1 cube lii_sfv[vendor].sfv_opcodes[SF_OPCODE_RDSR]);
461 1.1 cube AT_WRITE_1(sc, ATL2_SFOP_RDID,
462 1.1 cube lii_sfv[vendor].sfv_opcodes[SF_OPCODE_RDID]);
463 1.1 cube AT_WRITE_1(sc, ATL2_SFOP_SC_ERASE,
464 1.1 cube lii_sfv[vendor].sfv_opcodes[SF_OPCODE_SECT_ER]);
465 1.1 cube AT_WRITE_1(sc, ATL2_SFOP_CHIP_ERASE,
466 1.1 cube lii_sfv[vendor].sfv_opcodes[SF_OPCODE_CHIP_ER]);
467 1.1 cube }
468 1.1 cube
469 1.1 cube #define MAKE_SFC(cssetup, clkhi, clklo, cshold, cshi, ins) \
470 1.1 cube ( (((cssetup) & SFC_CS_SETUP_MASK) \
471 1.1 cube << SFC_CS_SETUP_SHIFT) \
472 1.1 cube | (((clkhi) & SFC_CLK_HI_MASK) \
473 1.1 cube << SFC_CLK_HI_SHIFT) \
474 1.1 cube | (((clklo) & SFC_CLK_LO_MASK) \
475 1.1 cube << SFC_CLK_LO_SHIFT) \
476 1.1 cube | (((cshold) & SFC_CS_HOLD_MASK) \
477 1.1 cube << SFC_CS_HOLD_SHIFT) \
478 1.1 cube | (((cshi) & SFC_CS_HI_MASK) \
479 1.1 cube << SFC_CS_HI_SHIFT) \
480 1.1 cube | (((ins) & SFC_INS_MASK) \
481 1.1 cube << SFC_INS_SHIFT))
482 1.1 cube
483 1.1 cube /* Magic settings from the Linux driver */
484 1.1 cube
485 1.1 cube #define CUSTOM_SPI_CS_SETUP 2
486 1.1 cube #define CUSTOM_SPI_CLK_HI 2
487 1.1 cube #define CUSTOM_SPI_CLK_LO 2
488 1.1 cube #define CUSTOM_SPI_CS_HOLD 2
489 1.1 cube #define CUSTOM_SPI_CS_HI 3
490 1.1 cube
491 1.1 cube static int
492 1.1 cube lii_spi_read(struct lii_softc *sc, uint32_t reg, uint32_t *val)
493 1.1 cube {
494 1.1 cube uint32_t v;
495 1.1 cube int i;
496 1.1 cube
497 1.1 cube AT_WRITE_4(sc, ATL2_SF_DATA, 0);
498 1.1 cube AT_WRITE_4(sc, ATL2_SF_ADDR, reg);
499 1.1 cube
500 1.1 cube v = SFC_WAIT_READY |
501 1.1 cube MAKE_SFC(CUSTOM_SPI_CS_SETUP, CUSTOM_SPI_CLK_HI,
502 1.1 cube CUSTOM_SPI_CLK_LO, CUSTOM_SPI_CS_HOLD, CUSTOM_SPI_CS_HI, 1);
503 1.1 cube
504 1.1 cube AT_WRITE_4(sc, ATL2_SFC, v);
505 1.1 cube v |= SFC_START;
506 1.1 cube AT_WRITE_4(sc, ATL2_SFC, v);
507 1.1 cube
508 1.1 cube for (i = 0; i < 10; ++i) {
509 1.1 cube DELAY(1000);
510 1.1 cube if (!(AT_READ_4(sc, ATL2_SFC) & SFC_START))
511 1.1 cube break;
512 1.1 cube }
513 1.1 cube if (i == 10)
514 1.1 cube return EBUSY;
515 1.1 cube
516 1.1 cube *val = AT_READ_4(sc, ATL2_SF_DATA);
517 1.1 cube return 0;
518 1.1 cube }
519 1.1 cube
520 1.1 cube static int
521 1.1 cube lii_read_macaddr(struct lii_softc *sc, uint8_t *ea)
522 1.1 cube {
523 1.1 cube uint32_t offset = 0x100;
524 1.1 cube uint32_t val, val1, addr0 = 0, addr1 = 0;
525 1.1 cube uint8_t found = 0;
526 1.1 cube
527 1.1 cube while ((*sc->sc_memread)(sc, offset, &val) == 0) {
528 1.1 cube offset += 4;
529 1.1 cube
530 1.1 cube /* Each chunk of data starts with a signature */
531 1.1 cube if ((val & 0xff) != 0x5a)
532 1.1 cube break;
533 1.1 cube if ((*sc->sc_memread)(sc, offset, &val1))
534 1.1 cube break;
535 1.1 cube
536 1.1 cube offset += 4;
537 1.1 cube
538 1.1 cube val >>= 16;
539 1.1 cube switch (val) {
540 1.1 cube case ATL2_MAC_ADDR_0:
541 1.1 cube addr0 = val1;
542 1.1 cube ++found;
543 1.1 cube break;
544 1.1 cube case ATL2_MAC_ADDR_1:
545 1.1 cube addr1 = val1;
546 1.1 cube ++found;
547 1.1 cube break;
548 1.1 cube default:
549 1.1 cube continue;
550 1.1 cube }
551 1.1 cube }
552 1.1 cube
553 1.1 cube if (found < 2) {
554 1.10 christos /* Make sure we try the BIOS method before giving up */
555 1.1 cube addr0 = htole32(AT_READ_4(sc, ATL2_MAC_ADDR_0));
556 1.1 cube addr1 = htole32(AT_READ_4(sc, ATL2_MAC_ADDR_1));
557 1.10 christos if ((addr0 == 0xffffff && (addr1 & 0xffff) == 0xffff) ||
558 1.10 christos (addr0 == 0 && (addr1 & 0xffff) == 0)) {
559 1.10 christos aprint_error_dev(sc->sc_dev,
560 1.10 christos "error reading MAC address\n");
561 1.10 christos return 1;
562 1.10 christos }
563 1.10 christos } else {
564 1.10 christos addr0 = htole32(addr0);
565 1.10 christos addr1 = htole32(addr1);
566 1.1 cube }
567 1.1 cube
568 1.1 cube ea[0] = (addr1 & 0x0000ff00) >> 8;
569 1.1 cube ea[1] = (addr1 & 0x000000ff);
570 1.1 cube ea[2] = (addr0 & 0xff000000) >> 24;
571 1.1 cube ea[3] = (addr0 & 0x00ff0000) >> 16;
572 1.1 cube ea[4] = (addr0 & 0x0000ff00) >> 8;
573 1.1 cube ea[5] = (addr0 & 0x000000ff);
574 1.1 cube
575 1.1 cube return 0;
576 1.1 cube }
577 1.1 cube
578 1.1 cube static int
579 1.1 cube lii_mii_readreg(device_t dev, int phy, int reg)
580 1.1 cube {
581 1.1 cube struct lii_softc *sc = device_private(dev);
582 1.1 cube uint32_t val;
583 1.1 cube int i;
584 1.1 cube
585 1.1 cube val = (reg & MDIOC_REG_MASK) << MDIOC_REG_SHIFT;
586 1.1 cube
587 1.1 cube val |= MDIOC_START | MDIOC_SUP_PREAMBLE;
588 1.1 cube val |= MDIOC_CLK_25_4 << MDIOC_CLK_SEL_SHIFT;
589 1.1 cube
590 1.1 cube val |= MDIOC_READ;
591 1.1 cube
592 1.1 cube AT_WRITE_4(sc, ATL2_MDIOC, val);
593 1.1 cube
594 1.1 cube for (i = 0; i < MDIO_WAIT_TIMES; ++i) {
595 1.1 cube DELAY(2);
596 1.1 cube val = AT_READ_4(sc, ATL2_MDIOC);
597 1.1 cube if ((val & (MDIOC_START | MDIOC_BUSY)) == 0)
598 1.1 cube break;
599 1.1 cube }
600 1.1 cube
601 1.1 cube if (i == MDIO_WAIT_TIMES)
602 1.1 cube aprint_error_dev(dev, "timeout reading PHY %d reg %d\n", phy,
603 1.1 cube reg);
604 1.1 cube
605 1.1 cube return (val & 0x0000ffff);
606 1.1 cube }
607 1.1 cube
608 1.1 cube static void
609 1.1 cube lii_mii_writereg(device_t dev, int phy, int reg, int data)
610 1.1 cube {
611 1.1 cube struct lii_softc *sc = device_private(dev);
612 1.1 cube uint32_t val;
613 1.1 cube int i;
614 1.1 cube
615 1.1 cube val = (reg & MDIOC_REG_MASK) << MDIOC_REG_SHIFT;
616 1.1 cube val |= (data & MDIOC_DATA_MASK) << MDIOC_DATA_SHIFT;
617 1.1 cube
618 1.1 cube val |= MDIOC_START | MDIOC_SUP_PREAMBLE;
619 1.1 cube val |= MDIOC_CLK_25_4 << MDIOC_CLK_SEL_SHIFT;
620 1.1 cube
621 1.1 cube /* val |= MDIOC_WRITE; */
622 1.1 cube
623 1.1 cube AT_WRITE_4(sc, ATL2_MDIOC, val);
624 1.1 cube
625 1.1 cube for (i = 0; i < MDIO_WAIT_TIMES; ++i) {
626 1.1 cube DELAY(2);
627 1.1 cube val = AT_READ_4(sc, ATL2_MDIOC);
628 1.1 cube if ((val & (MDIOC_START | MDIOC_BUSY)) == 0)
629 1.1 cube break;
630 1.1 cube }
631 1.1 cube
632 1.1 cube if (i == MDIO_WAIT_TIMES)
633 1.1 cube aprint_error_dev(dev, "timeout writing PHY %d reg %d\n", phy,
634 1.1 cube reg);
635 1.1 cube }
636 1.1 cube
637 1.1 cube static void
638 1.11 matt lii_mii_statchg(struct ifnet *ifp)
639 1.1 cube {
640 1.11 matt struct lii_softc *sc = ifp->if_softc;
641 1.1 cube uint32_t val;
642 1.1 cube
643 1.1 cube DPRINTF(("lii_mii_statchg\n"));
644 1.1 cube
645 1.1 cube val = AT_READ_4(sc, ATL2_MACC);
646 1.1 cube
647 1.1 cube if ((sc->sc_mii.mii_media_active & IFM_GMASK) == IFM_FDX)
648 1.1 cube val |= MACC_FDX;
649 1.1 cube else
650 1.1 cube val &= ~MACC_FDX;
651 1.1 cube
652 1.1 cube AT_WRITE_4(sc, ATL2_MACC, val);
653 1.1 cube }
654 1.1 cube
655 1.1 cube static int
656 1.1 cube lii_media_change(struct ifnet *ifp)
657 1.1 cube {
658 1.1 cube struct lii_softc *sc = ifp->if_softc;
659 1.1 cube
660 1.1 cube DPRINTF(("lii_media_change\n"));
661 1.1 cube
662 1.1 cube if (ifp->if_flags & IFF_UP)
663 1.1 cube mii_mediachg(&sc->sc_mii);
664 1.1 cube return 0;
665 1.1 cube }
666 1.1 cube
667 1.1 cube static void
668 1.1 cube lii_media_status(struct ifnet *ifp, struct ifmediareq *imr)
669 1.1 cube {
670 1.1 cube struct lii_softc *sc = ifp->if_softc;
671 1.1 cube
672 1.1 cube DPRINTF(("lii_media_status\n"));
673 1.1 cube
674 1.1 cube mii_pollstat(&sc->sc_mii);
675 1.1 cube imr->ifm_status = sc->sc_mii.mii_media_status;
676 1.1 cube imr->ifm_active = sc->sc_mii.mii_media_active;
677 1.1 cube }
678 1.1 cube
679 1.1 cube static int
680 1.1 cube lii_init(struct ifnet *ifp)
681 1.1 cube {
682 1.1 cube struct lii_softc *sc = ifp->if_softc;
683 1.1 cube uint32_t val;
684 1.1 cube int error;
685 1.1 cube
686 1.1 cube DPRINTF(("lii_init\n"));
687 1.1 cube
688 1.1 cube lii_stop(ifp, 0);
689 1.1 cube
690 1.1 cube memset(sc->sc_ring, 0, sc->sc_ringsize);
691 1.1 cube
692 1.1 cube /* Disable all interrupts */
693 1.1 cube AT_WRITE_4(sc, ATL2_ISR, 0xffffffff);
694 1.1 cube
695 1.1 cube /* XXX endianness */
696 1.1 cube AT_WRITE_4(sc, ATL2_MAC_ADDR_0,
697 1.1 cube sc->sc_eaddr[2] << 24 |
698 1.1 cube sc->sc_eaddr[3] << 16 |
699 1.1 cube sc->sc_eaddr[4] << 8 |
700 1.1 cube sc->sc_eaddr[5]);
701 1.1 cube AT_WRITE_4(sc, ATL2_MAC_ADDR_1,
702 1.1 cube sc->sc_eaddr[0] << 8 |
703 1.1 cube sc->sc_eaddr[1]);
704 1.1 cube
705 1.1 cube AT_WRITE_4(sc, ATL2_DESC_BASE_ADDR_HI, 0);
706 1.1 cube /* XXX
707 1.1 cube sc->sc_ringmap->dm_segs[0].ds_addr >> 32);
708 1.1 cube */
709 1.1 cube AT_WRITE_4(sc, ATL2_RXD_BASE_ADDR_LO,
710 1.1 cube (sc->sc_ringmap->dm_segs[0].ds_addr & 0xffffffff)
711 1.1 cube + AT_RXD_PADDING);
712 1.1 cube AT_WRITE_4(sc, ATL2_TXS_BASE_ADDR_LO,
713 1.1 cube sc->sc_txsp & 0xffffffff);
714 1.1 cube AT_WRITE_4(sc, ATL2_TXD_BASE_ADDR_LO,
715 1.1 cube sc->sc_txdp & 0xffffffff);
716 1.1 cube
717 1.1 cube AT_WRITE_2(sc, ATL2_TXD_BUFFER_SIZE, AT_TXD_BUFFER_SIZE / 4);
718 1.1 cube AT_WRITE_2(sc, ATL2_TXS_NUM_ENTRIES, AT_TXD_NUM);
719 1.1 cube AT_WRITE_2(sc, ATL2_RXD_NUM_ENTRIES, AT_RXD_NUM);
720 1.1 cube
721 1.1 cube /*
722 1.1 cube * Inter Paket Gap Time = 0x60 (IPGT)
723 1.1 cube * Minimum inter-frame gap for RX = 0x50 (MIFG)
724 1.1 cube * 64-bit Carrier-Sense window = 0x40 (IPGR1)
725 1.1 cube * 96-bit IPG window = 0x60 (IPGR2)
726 1.1 cube */
727 1.1 cube AT_WRITE_4(sc, ATL2_MIPFG, 0x60405060);
728 1.1 cube
729 1.1 cube /*
730 1.1 cube * Collision window = 0x37 (LCOL)
731 1.1 cube * Maximum # of retrans = 0xf (RETRY)
732 1.1 cube * Maximum binary expansion # = 0xa (ABEBT)
733 1.1 cube * IPG to start jam = 0x7 (JAMIPG)
734 1.1 cube */
735 1.1 cube AT_WRITE_4(sc, ATL2_MHDC, 0x07a0f037 |
736 1.1 cube MHDC_EXC_DEF_EN);
737 1.1 cube
738 1.1 cube /* 100 means 200us */
739 1.1 cube AT_WRITE_2(sc, ATL2_IMTIV, 100);
740 1.1 cube AT_WRITE_2(sc, ATL2_SMC, SMC_ITIMER_EN);
741 1.1 cube
742 1.1 cube /* 500000 means 100ms */
743 1.1 cube AT_WRITE_2(sc, ATL2_IALTIV, 50000);
744 1.1 cube
745 1.1 cube AT_WRITE_4(sc, ATL2_MTU, ifp->if_mtu + ETHER_HDR_LEN
746 1.1 cube + ETHER_CRC_LEN + ETHER_VLAN_ENCAP_LEN);
747 1.1 cube
748 1.1 cube /* unit unknown for TX cur-through threshold */
749 1.1 cube AT_WRITE_4(sc, ATL2_TX_CUT_THRESH, 0x177);
750 1.1 cube
751 1.1 cube AT_WRITE_2(sc, ATL2_PAUSE_ON_TH, AT_RXD_NUM * 7 / 8);
752 1.1 cube AT_WRITE_2(sc, ATL2_PAUSE_OFF_TH, AT_RXD_NUM / 12);
753 1.1 cube
754 1.1 cube sc->sc_rxcur = 0;
755 1.1 cube sc->sc_txs_cur = sc->sc_txs_ack = 0;
756 1.1 cube sc->sc_txd_cur = sc->sc_txd_ack = 0;
757 1.1 cube sc->sc_free_tx_slots = true;
758 1.1 cube AT_WRITE_2(sc, ATL2_MB_TXD_WR_IDX, sc->sc_txd_cur);
759 1.1 cube AT_WRITE_2(sc, ATL2_MB_RXD_RD_IDX, sc->sc_rxcur);
760 1.1 cube
761 1.1 cube AT_WRITE_1(sc, ATL2_DMAR, DMAR_EN);
762 1.1 cube AT_WRITE_1(sc, ATL2_DMAW, DMAW_EN);
763 1.1 cube
764 1.1 cube AT_WRITE_4(sc, ATL2_SMC, AT_READ_4(sc, ATL2_SMC) | SMC_MANUAL_INT);
765 1.1 cube
766 1.1 cube error = ((AT_READ_4(sc, ATL2_ISR) & ISR_PHY_LINKDOWN) != 0);
767 1.1 cube AT_WRITE_4(sc, ATL2_ISR, 0x3fffffff);
768 1.1 cube AT_WRITE_4(sc, ATL2_ISR, 0);
769 1.1 cube if (error) {
770 1.1 cube aprint_error_dev(sc->sc_dev, "init failed\n");
771 1.1 cube goto out;
772 1.1 cube }
773 1.1 cube
774 1.1 cube lii_setmulti(sc);
775 1.1 cube
776 1.1 cube val = AT_READ_4(sc, ATL2_MACC) & MACC_FDX;
777 1.1 cube
778 1.1 cube val |= MACC_RX_EN | MACC_TX_EN | MACC_MACLP_CLK_PHY |
779 1.1 cube MACC_TX_FLOW_EN | MACC_RX_FLOW_EN |
780 1.1 cube MACC_ADD_CRC | MACC_PAD | MACC_BCAST_EN;
781 1.1 cube
782 1.1 cube if (ifp->if_flags & IFF_PROMISC)
783 1.1 cube val |= MACC_PROMISC_EN;
784 1.1 cube else if (ifp->if_flags & IFF_ALLMULTI)
785 1.1 cube val |= MACC_ALLMULTI_EN;
786 1.1 cube
787 1.1 cube val |= 7 << MACC_PREAMBLE_LEN_SHIFT;
788 1.1 cube val |= 2 << MACC_HDX_LEFT_BUF_SHIFT;
789 1.1 cube
790 1.1 cube AT_WRITE_4(sc, ATL2_MACC, val);
791 1.1 cube
792 1.1 cube mii_mediachg(&sc->sc_mii);
793 1.1 cube
794 1.1 cube AT_WRITE_4(sc, ATL2_IMR, IMR_NORMAL_MASK);
795 1.1 cube
796 1.1 cube callout_schedule(&sc->sc_tick_ch, hz);
797 1.1 cube
798 1.1 cube ifp->if_flags |= IFF_RUNNING;
799 1.1 cube ifp->if_flags &= ~IFF_OACTIVE;
800 1.1 cube
801 1.1 cube out:
802 1.1 cube return error;
803 1.1 cube }
804 1.1 cube
805 1.1 cube static void
806 1.1 cube lii_tx_put(struct lii_softc *sc, struct mbuf *m)
807 1.1 cube {
808 1.1 cube int left;
809 1.1 cube struct tx_pkt_header *tph =
810 1.1 cube (struct tx_pkt_header *)(sc->sc_txdbase + sc->sc_txd_cur);
811 1.1 cube
812 1.1 cube memset(tph, 0, sizeof *tph);
813 1.1 cube tph->txph_size = m->m_pkthdr.len;
814 1.1 cube
815 1.1 cube sc->sc_txd_cur = (sc->sc_txd_cur + 4) % AT_TXD_BUFFER_SIZE;
816 1.1 cube
817 1.1 cube /*
818 1.1 cube * We already know we have enough space, so if there is a part of the
819 1.1 cube * space ahead of txd_cur that is active, it doesn't matter because
820 1.1 cube * left will be large enough even without it.
821 1.1 cube */
822 1.1 cube left = AT_TXD_BUFFER_SIZE - sc->sc_txd_cur;
823 1.1 cube
824 1.1 cube if (left > m->m_pkthdr.len) {
825 1.1 cube m_copydata(m, 0, m->m_pkthdr.len,
826 1.1 cube sc->sc_txdbase + sc->sc_txd_cur);
827 1.1 cube sc->sc_txd_cur += m->m_pkthdr.len;
828 1.1 cube } else {
829 1.1 cube m_copydata(m, 0, left, sc->sc_txdbase + sc->sc_txd_cur);
830 1.1 cube m_copydata(m, left, m->m_pkthdr.len - left, sc->sc_txdbase);
831 1.1 cube sc->sc_txd_cur = m->m_pkthdr.len - left;
832 1.1 cube }
833 1.1 cube
834 1.1 cube /* Round to a 32-bit boundary */
835 1.3 mjf sc->sc_txd_cur = ((sc->sc_txd_cur + 3) & ~3) % AT_TXD_BUFFER_SIZE;
836 1.1 cube if (sc->sc_txd_cur == sc->sc_txd_ack)
837 1.1 cube sc->sc_free_tx_slots = false;
838 1.1 cube }
839 1.1 cube
840 1.1 cube static int
841 1.1 cube lii_free_tx_space(struct lii_softc *sc)
842 1.1 cube {
843 1.1 cube int space;
844 1.1 cube
845 1.1 cube if (sc->sc_txd_cur >= sc->sc_txd_ack)
846 1.1 cube space = (AT_TXD_BUFFER_SIZE - sc->sc_txd_cur) +
847 1.1 cube sc->sc_txd_ack;
848 1.1 cube else
849 1.1 cube space = sc->sc_txd_ack - sc->sc_txd_cur;
850 1.1 cube
851 1.1 cube /* Account for the tx_pkt_header */
852 1.1 cube return (space - 4);
853 1.1 cube }
854 1.1 cube
855 1.1 cube static void
856 1.1 cube lii_start(struct ifnet *ifp)
857 1.1 cube {
858 1.1 cube struct lii_softc *sc = ifp->if_softc;
859 1.1 cube struct mbuf *m0;
860 1.1 cube
861 1.1 cube DPRINTF(("lii_start\n"));
862 1.1 cube
863 1.1 cube if ((ifp->if_flags & (IFF_RUNNING|IFF_OACTIVE)) != IFF_RUNNING)
864 1.1 cube return;
865 1.1 cube
866 1.1 cube for (;;) {
867 1.1 cube IFQ_POLL(&ifp->if_snd, m0);
868 1.1 cube if (m0 == NULL)
869 1.1 cube break;
870 1.1 cube
871 1.1 cube if (!sc->sc_free_tx_slots ||
872 1.1 cube lii_free_tx_space(sc) < m0->m_pkthdr.len) {
873 1.1 cube ifp->if_flags |= IFF_OACTIVE;
874 1.1 cube break;
875 1.1 cube }
876 1.1 cube
877 1.1 cube lii_tx_put(sc, m0);
878 1.1 cube
879 1.1 cube DPRINTF(("lii_start: put %d\n", sc->sc_txs_cur));
880 1.1 cube
881 1.1 cube sc->sc_txs[sc->sc_txs_cur].txps_update = 0;
882 1.1 cube sc->sc_txs_cur = (sc->sc_txs_cur + 1) % AT_TXD_NUM;
883 1.1 cube if (sc->sc_txs_cur == sc->sc_txs_ack)
884 1.1 cube sc->sc_free_tx_slots = false;
885 1.1 cube
886 1.1 cube AT_WRITE_2(sc, ATL2_MB_TXD_WR_IDX, sc->sc_txd_cur/4);
887 1.1 cube
888 1.1 cube IFQ_DEQUEUE(&ifp->if_snd, m0);
889 1.1 cube
890 1.9 joerg bpf_mtap(ifp, m0);
891 1.1 cube m_freem(m0);
892 1.1 cube }
893 1.1 cube }
894 1.1 cube
895 1.1 cube static void
896 1.1 cube lii_stop(struct ifnet *ifp, int disable)
897 1.1 cube {
898 1.1 cube struct lii_softc *sc = ifp->if_softc;
899 1.1 cube
900 1.1 cube callout_stop(&sc->sc_tick_ch);
901 1.1 cube
902 1.1 cube ifp->if_timer = 0;
903 1.1 cube ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
904 1.1 cube
905 1.1 cube mii_down(&sc->sc_mii);
906 1.1 cube
907 1.1 cube lii_reset(sc);
908 1.1 cube
909 1.1 cube AT_WRITE_4(sc, ATL2_IMR, 0);
910 1.1 cube }
911 1.1 cube
912 1.1 cube static int
913 1.1 cube lii_intr(void *v)
914 1.1 cube {
915 1.1 cube struct lii_softc *sc = v;
916 1.1 cube uint32_t status;
917 1.1 cube
918 1.1 cube status = AT_READ_4(sc, ATL2_ISR);
919 1.1 cube if (status == 0)
920 1.1 cube return 0;
921 1.1 cube
922 1.1 cube DPRINTF(("lii_intr (%x)\n", status));
923 1.1 cube
924 1.1 cube /* Clear the interrupt and disable them */
925 1.1 cube AT_WRITE_4(sc, ATL2_ISR, status | ISR_DIS_INT);
926 1.1 cube
927 1.1 cube if (status & (ISR_PHY | ISR_MANUAL)) {
928 1.1 cube /* Ack PHY interrupt. Magic register */
929 1.1 cube if (status & ISR_PHY)
930 1.1 cube (void)lii_mii_readreg(sc->sc_dev, 1, 19);
931 1.1 cube mii_mediachg(&sc->sc_mii);
932 1.1 cube }
933 1.1 cube
934 1.1 cube if (status & (ISR_DMAR_TO_RST | ISR_DMAW_TO_RST | ISR_PHY_LINKDOWN)) {
935 1.1 cube lii_init(&sc->sc_ec.ec_if);
936 1.1 cube return 1;
937 1.1 cube }
938 1.1 cube
939 1.1 cube if (status & ISR_RX_EVENT) {
940 1.1 cube #ifdef LII_DEBUG
941 1.1 cube if (!(status & ISR_RS_UPDATE))
942 1.1 cube printf("rxintr %08x\n", status);
943 1.1 cube #endif
944 1.1 cube lii_rxintr(sc);
945 1.1 cube }
946 1.1 cube
947 1.1 cube if (status & ISR_TX_EVENT)
948 1.1 cube lii_txintr(sc);
949 1.1 cube
950 1.1 cube /* Re-enable interrupts */
951 1.1 cube AT_WRITE_4(sc, ATL2_ISR, 0);
952 1.1 cube
953 1.1 cube return 1;
954 1.1 cube }
955 1.1 cube
956 1.1 cube static void
957 1.1 cube lii_rxintr(struct lii_softc *sc)
958 1.1 cube {
959 1.1 cube struct ifnet *ifp = &sc->sc_ec.ec_if;
960 1.1 cube struct rx_pkt *rxp;
961 1.1 cube struct mbuf *m;
962 1.1 cube uint16_t size;
963 1.1 cube
964 1.1 cube DPRINTF(("lii_rxintr\n"));
965 1.1 cube
966 1.1 cube for (;;) {
967 1.1 cube rxp = &sc->sc_rxp[sc->sc_rxcur];
968 1.1 cube if (rxp->rxp_update == 0)
969 1.1 cube break;
970 1.1 cube
971 1.1 cube DPRINTF(("lii_rxintr: getting %u (%u) [%x]\n", sc->sc_rxcur,
972 1.1 cube rxp->rxp_size, rxp->rxp_flags));
973 1.1 cube sc->sc_rxcur = (sc->sc_rxcur + 1) % AT_RXD_NUM;
974 1.1 cube rxp->rxp_update = 0;
975 1.1 cube if (!(rxp->rxp_flags & ATL2_RXF_SUCCESS)) {
976 1.1 cube ++ifp->if_ierrors;
977 1.1 cube continue;
978 1.1 cube }
979 1.1 cube
980 1.1 cube MGETHDR(m, M_DONTWAIT, MT_DATA);
981 1.1 cube if (m == NULL) {
982 1.1 cube ++ifp->if_ierrors;
983 1.1 cube continue;
984 1.1 cube }
985 1.1 cube size = rxp->rxp_size - ETHER_CRC_LEN;
986 1.1 cube if (size > MHLEN) {
987 1.1 cube MCLGET(m, M_DONTWAIT);
988 1.1 cube if ((m->m_flags & M_EXT) == 0) {
989 1.1 cube m_freem(m);
990 1.1 cube ++ifp->if_ierrors;
991 1.1 cube continue;
992 1.1 cube }
993 1.1 cube }
994 1.1 cube
995 1.1 cube m->m_pkthdr.rcvif = ifp;
996 1.1 cube /* Copy the packet withhout the FCS */
997 1.1 cube m->m_pkthdr.len = m->m_len = size;
998 1.1 cube memcpy(mtod(m, void *), &rxp->rxp_data[0], size);
999 1.1 cube ++ifp->if_ipackets;
1000 1.1 cube
1001 1.9 joerg bpf_mtap(ifp, m);
1002 1.1 cube
1003 1.1 cube (*ifp->if_input)(ifp, m);
1004 1.1 cube }
1005 1.1 cube
1006 1.1 cube AT_WRITE_4(sc, ATL2_MB_RXD_RD_IDX, sc->sc_rxcur);
1007 1.1 cube }
1008 1.1 cube
1009 1.1 cube static void
1010 1.1 cube lii_txintr(struct lii_softc *sc)
1011 1.1 cube {
1012 1.1 cube struct ifnet *ifp = &sc->sc_ec.ec_if;
1013 1.1 cube struct tx_pkt_status *txs;
1014 1.1 cube struct tx_pkt_header *txph;
1015 1.1 cube
1016 1.1 cube DPRINTF(("lii_txintr\n"));
1017 1.1 cube
1018 1.1 cube for (;;) {
1019 1.1 cube txs = &sc->sc_txs[sc->sc_txs_ack];
1020 1.1 cube if (txs->txps_update == 0)
1021 1.1 cube break;
1022 1.1 cube DPRINTF(("lii_txintr: ack'd %d\n", sc->sc_txs_ack));
1023 1.1 cube sc->sc_txs_ack = (sc->sc_txs_ack + 1) % AT_TXD_NUM;
1024 1.1 cube sc->sc_free_tx_slots = true;
1025 1.1 cube
1026 1.1 cube txs->txps_update = 0;
1027 1.1 cube
1028 1.1 cube txph = (struct tx_pkt_header *)
1029 1.1 cube (sc->sc_txdbase + sc->sc_txd_ack);
1030 1.1 cube
1031 1.1 cube if (txph->txph_size != txs->txps_size)
1032 1.1 cube aprint_error_dev(sc->sc_dev,
1033 1.1 cube "mismatched status and packet\n");
1034 1.1 cube /*
1035 1.1 cube * Move ack by the packet size, taking the packet header in
1036 1.1 cube * account and round to the next 32-bit boundary
1037 1.1 cube * (7 = sizeof(header) + 3)
1038 1.1 cube */
1039 1.1 cube sc->sc_txd_ack = (sc->sc_txd_ack + txph->txph_size + 7 ) & ~3;
1040 1.1 cube sc->sc_txd_ack %= AT_TXD_BUFFER_SIZE;
1041 1.1 cube
1042 1.1 cube if (txs->txps_flags & ATL2_TXF_SUCCESS)
1043 1.1 cube ++ifp->if_opackets;
1044 1.1 cube else
1045 1.1 cube ++ifp->if_oerrors;
1046 1.1 cube ifp->if_flags &= ~IFF_OACTIVE;
1047 1.1 cube }
1048 1.1 cube
1049 1.1 cube if (sc->sc_free_tx_slots)
1050 1.1 cube lii_start(ifp);
1051 1.1 cube }
1052 1.1 cube
1053 1.1 cube static int
1054 1.1 cube lii_alloc_rings(struct lii_softc *sc)
1055 1.1 cube {
1056 1.1 cube int nsegs;
1057 1.1 cube bus_size_t bs;
1058 1.1 cube
1059 1.1 cube /*
1060 1.1 cube * We need a big chunk of DMA-friendly memory because descriptors
1061 1.1 cube * are not separate from data on that crappy hardware, which means
1062 1.1 cube * we'll have to copy data from and to that memory zone to and from
1063 1.1 cube * the mbufs.
1064 1.1 cube *
1065 1.1 cube * How lame is that? Using the default values from the Linux driver,
1066 1.1 cube * we allocate space for receiving up to 64 full-size Ethernet frames,
1067 1.1 cube * and only 8kb for transmitting up to 64 Ethernet frames.
1068 1.1 cube */
1069 1.1 cube
1070 1.1 cube sc->sc_ringsize = bs = AT_RXD_PADDING
1071 1.1 cube + AT_RXD_NUM * sizeof(struct rx_pkt)
1072 1.1 cube + AT_TXD_NUM * sizeof(struct tx_pkt_status)
1073 1.1 cube + AT_TXD_BUFFER_SIZE;
1074 1.1 cube
1075 1.1 cube if (bus_dmamap_create(sc->sc_dmat, bs, 1, bs, (1<<30),
1076 1.1 cube BUS_DMA_NOWAIT, &sc->sc_ringmap) != 0) {
1077 1.1 cube aprint_error_dev(sc->sc_dev, "bus_dmamap_create failed\n");
1078 1.1 cube return 1;
1079 1.1 cube }
1080 1.1 cube
1081 1.1 cube if (bus_dmamem_alloc(sc->sc_dmat, bs, PAGE_SIZE, (1<<30),
1082 1.1 cube &sc->sc_ringseg, 1, &nsegs, BUS_DMA_NOWAIT) != 0) {
1083 1.1 cube aprint_error_dev(sc->sc_dev, "bus_dmamem_alloc failed\n");
1084 1.1 cube goto fail;
1085 1.1 cube }
1086 1.1 cube
1087 1.1 cube if (bus_dmamem_map(sc->sc_dmat, &sc->sc_ringseg, nsegs, bs,
1088 1.1 cube (void **)&sc->sc_ring, BUS_DMA_NOWAIT) != 0) {
1089 1.1 cube aprint_error_dev(sc->sc_dev, "bus_dmamem_map failed\n");
1090 1.1 cube goto fail1;
1091 1.1 cube }
1092 1.1 cube
1093 1.1 cube if (bus_dmamap_load(sc->sc_dmat, sc->sc_ringmap, sc->sc_ring,
1094 1.1 cube bs, NULL, BUS_DMA_NOWAIT) != 0) {
1095 1.1 cube aprint_error_dev(sc->sc_dev, "bus_dmamap_load failed\n");
1096 1.1 cube goto fail2;
1097 1.1 cube }
1098 1.1 cube
1099 1.1 cube sc->sc_rxp = (void *)(sc->sc_ring + AT_RXD_PADDING);
1100 1.1 cube sc->sc_txs = (void *)(sc->sc_ring + AT_RXD_PADDING
1101 1.1 cube + AT_RXD_NUM * sizeof(struct rx_pkt));
1102 1.1 cube sc->sc_txdbase = ((char *)sc->sc_txs)
1103 1.1 cube + AT_TXD_NUM * sizeof(struct tx_pkt_status);
1104 1.1 cube sc->sc_txsp = sc->sc_ringmap->dm_segs[0].ds_addr
1105 1.1 cube + ((char *)sc->sc_txs - (char *)sc->sc_ring);
1106 1.1 cube sc->sc_txdp = sc->sc_ringmap->dm_segs[0].ds_addr
1107 1.1 cube + ((char *)sc->sc_txdbase - (char *)sc->sc_ring);
1108 1.1 cube
1109 1.1 cube return 0;
1110 1.1 cube
1111 1.1 cube fail2:
1112 1.1 cube bus_dmamem_unmap(sc->sc_dmat, sc->sc_ring, bs);
1113 1.1 cube fail1:
1114 1.1 cube bus_dmamem_free(sc->sc_dmat, &sc->sc_ringseg, nsegs);
1115 1.1 cube fail:
1116 1.1 cube bus_dmamap_destroy(sc->sc_dmat, sc->sc_ringmap);
1117 1.1 cube return 1;
1118 1.1 cube }
1119 1.1 cube
1120 1.1 cube static void
1121 1.1 cube lii_watchdog(struct ifnet *ifp)
1122 1.1 cube {
1123 1.1 cube struct lii_softc *sc = ifp->if_softc;
1124 1.1 cube
1125 1.1 cube aprint_error_dev(sc->sc_dev, "watchdog timeout\n");
1126 1.1 cube ++ifp->if_oerrors;
1127 1.1 cube lii_init(ifp);
1128 1.1 cube }
1129 1.1 cube
1130 1.1 cube static int
1131 1.1 cube lii_ioctl(struct ifnet *ifp, u_long cmd, void *data)
1132 1.1 cube {
1133 1.1 cube struct lii_softc *sc = ifp->if_softc;
1134 1.1 cube int s, error;
1135 1.1 cube
1136 1.1 cube s = splnet();
1137 1.1 cube
1138 1.1 cube switch(cmd) {
1139 1.1 cube case SIOCADDMULTI:
1140 1.1 cube case SIOCDELMULTI:
1141 1.1 cube if ((error = ether_ioctl(ifp, cmd, data)) == ENETRESET) {
1142 1.1 cube if (ifp->if_flags & IFF_RUNNING)
1143 1.1 cube lii_setmulti(sc);
1144 1.1 cube error = 0;
1145 1.1 cube }
1146 1.1 cube break;
1147 1.1 cube case SIOCSIFMEDIA:
1148 1.1 cube case SIOCGIFMEDIA:
1149 1.1 cube error = ifmedia_ioctl(ifp, (struct ifreq *)data,
1150 1.1 cube &sc->sc_mii.mii_media, cmd);
1151 1.1 cube break;
1152 1.1 cube default:
1153 1.1 cube error = ether_ioctl(ifp, cmd, data);
1154 1.1 cube if (error == ENETRESET) {
1155 1.1 cube if (ifp->if_flags & IFF_RUNNING)
1156 1.1 cube lii_setmulti(sc);
1157 1.1 cube error = 0;
1158 1.1 cube }
1159 1.1 cube break;
1160 1.1 cube }
1161 1.1 cube
1162 1.1 cube splx(s);
1163 1.1 cube
1164 1.1 cube return error;
1165 1.1 cube }
1166 1.1 cube
1167 1.1 cube static void
1168 1.1 cube lii_setmulti(struct lii_softc *sc)
1169 1.1 cube {
1170 1.1 cube struct ethercom *ec = &sc->sc_ec;
1171 1.1 cube struct ifnet *ifp = &ec->ec_if;
1172 1.1 cube uint32_t mht0 = 0, mht1 = 0, crc;
1173 1.1 cube struct ether_multi *enm;
1174 1.1 cube struct ether_multistep step;
1175 1.1 cube
1176 1.1 cube /* Clear multicast hash table */
1177 1.1 cube AT_WRITE_4(sc, ATL2_MHT, 0);
1178 1.1 cube AT_WRITE_4(sc, ATL2_MHT + 4, 0);
1179 1.1 cube
1180 1.1 cube ifp->if_flags &= ~IFF_ALLMULTI;
1181 1.1 cube
1182 1.1 cube ETHER_FIRST_MULTI(step, ec, enm);
1183 1.1 cube while (enm != NULL) {
1184 1.1 cube if (memcmp(enm->enm_addrlo, enm->enm_addrhi, ETHER_ADDR_LEN)) {
1185 1.1 cube ifp->if_flags |= IFF_ALLMULTI;
1186 1.1 cube mht0 = mht1 = 0;
1187 1.1 cube goto alldone;
1188 1.1 cube }
1189 1.1 cube
1190 1.1 cube crc = ether_crc32_be(enm->enm_addrlo, ETHER_ADDR_LEN);
1191 1.1 cube
1192 1.1 cube if (crc & (1 << 31))
1193 1.5 sborrill mht1 |= (1 << ((crc >> 26) & 0x0000001f));
1194 1.1 cube else
1195 1.5 sborrill mht0 |= (1 << ((crc >> 26) & 0x0000001f));
1196 1.1 cube
1197 1.1 cube ETHER_NEXT_MULTI(step, enm);
1198 1.1 cube }
1199 1.1 cube
1200 1.1 cube alldone:
1201 1.1 cube AT_WRITE_4(sc, ATL2_MHT, mht0);
1202 1.1 cube AT_WRITE_4(sc, ATL2_MHT+4, mht1);
1203 1.1 cube }
1204 1.1 cube
1205 1.1 cube static void
1206 1.1 cube lii_tick(void *v)
1207 1.1 cube {
1208 1.1 cube struct lii_softc *sc = v;
1209 1.1 cube int s;
1210 1.1 cube
1211 1.1 cube s = splnet();
1212 1.1 cube mii_tick(&sc->sc_mii);
1213 1.1 cube splx(s);
1214 1.1 cube
1215 1.1 cube callout_schedule(&sc->sc_tick_ch, hz);
1216 1.1 cube }
1217