GNU Linux-libre 4.19.295-gnu1
[releases.git] / drivers / staging / vt6655 / device_main.c
1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3  * Copyright (c) 1996, 2003 VIA Networking Technologies, Inc.
4  * All rights reserved.
5  *
6  * File: device_main.c
7  *
8  * Purpose: driver entry for initial, open, close, tx and rx.
9  *
10  * Author: Lyndon Chen
11  *
12  * Date: Jan 8, 2003
13  *
14  * Functions:
15  *
16  *   vt6655_probe - module initial (insmod) driver entry
17  *   vt6655_remove - module remove entry
18  *   device_free_info - device structure resource free function
19  *   device_print_info - print out resource
20  *   device_rx_srv - rx service function
21  *   device_alloc_rx_buf - rx buffer pre-allocated function
22  *   device_free_rx_buf - free rx buffer function
23  *   device_free_tx_buf - free tx buffer function
24  *   device_init_rd0_ring- initial rd dma0 ring
25  *   device_init_rd1_ring- initial rd dma1 ring
26  *   device_init_td0_ring- initial tx dma0 ring buffer
27  *   device_init_td1_ring- initial tx dma1 ring buffer
28  *   device_init_registers- initial MAC & BBP & RF internal registers.
29  *   device_init_rings- initial tx/rx ring buffer
30  *   device_free_rings- free all allocated ring buffer
31  *   device_tx_srv- tx interrupt service function
32  *
33  * Revision History:
34  */
35 #undef __NO_VERSION__
36
37 #include <linux/file.h>
38 #include "device.h"
39 #include "card.h"
40 #include "channel.h"
41 #include "baseband.h"
42 #include "mac.h"
43 #include "power.h"
44 #include "rxtx.h"
45 #include "dpc.h"
46 #include "rf.h"
47 #include <linux/delay.h>
48 #include <linux/kthread.h>
49 #include <linux/slab.h>
50
51 /*---------------------  Static Definitions -------------------------*/
52 /*
53  * Define module options
54  */
55 MODULE_AUTHOR("VIA Networking Technologies, Inc., <lyndonchen@vntek.com.tw>");
56 MODULE_LICENSE("GPL");
57 MODULE_DESCRIPTION("VIA Networking Solomon-A/B/G Wireless LAN Adapter Driver");
58
59 #define DEVICE_PARAM(N, D)
60
61 #define RX_DESC_MIN0     16
62 #define RX_DESC_MAX0     128
63 #define RX_DESC_DEF0     32
64 DEVICE_PARAM(RxDescriptors0, "Number of receive descriptors0");
65
66 #define RX_DESC_MIN1     16
67 #define RX_DESC_MAX1     128
68 #define RX_DESC_DEF1     32
69 DEVICE_PARAM(RxDescriptors1, "Number of receive descriptors1");
70
71 #define TX_DESC_MIN0     16
72 #define TX_DESC_MAX0     128
73 #define TX_DESC_DEF0     32
74 DEVICE_PARAM(TxDescriptors0, "Number of transmit descriptors0");
75
76 #define TX_DESC_MIN1     16
77 #define TX_DESC_MAX1     128
78 #define TX_DESC_DEF1     64
79 DEVICE_PARAM(TxDescriptors1, "Number of transmit descriptors1");
80
81 #define INT_WORKS_DEF   20
82 #define INT_WORKS_MIN   10
83 #define INT_WORKS_MAX   64
84
85 DEVICE_PARAM(int_works, "Number of packets per interrupt services");
86
87 #define RTS_THRESH_DEF     2347
88
89 #define FRAG_THRESH_DEF     2346
90
91 #define SHORT_RETRY_MIN     0
92 #define SHORT_RETRY_MAX     31
93 #define SHORT_RETRY_DEF     8
94
95 DEVICE_PARAM(ShortRetryLimit, "Short frame retry limits");
96
97 #define LONG_RETRY_MIN     0
98 #define LONG_RETRY_MAX     15
99 #define LONG_RETRY_DEF     4
100
101 DEVICE_PARAM(LongRetryLimit, "long frame retry limits");
102
103 /* BasebandType[] baseband type selected
104  * 0: indicate 802.11a type
105  * 1: indicate 802.11b type
106  * 2: indicate 802.11g type
107  */
108 #define BBP_TYPE_MIN     0
109 #define BBP_TYPE_MAX     2
110 #define BBP_TYPE_DEF     2
111
112 DEVICE_PARAM(BasebandType, "baseband type");
113
114 /*
115  * Static vars definitions
116  */
117 static const struct pci_device_id vt6655_pci_id_table[] = {
118         { PCI_VDEVICE(VIA, 0x3253) },
119         { 0, }
120 };
121
122 /*---------------------  Static Functions  --------------------------*/
123
124 static int  vt6655_probe(struct pci_dev *pcid, const struct pci_device_id *ent);
125 static void device_free_info(struct vnt_private *priv);
126 static void device_print_info(struct vnt_private *priv);
127
128 static int device_init_rd0_ring(struct vnt_private *priv);
129 static int device_init_rd1_ring(struct vnt_private *priv);
130 static int device_init_td0_ring(struct vnt_private *priv);
131 static int device_init_td1_ring(struct vnt_private *priv);
132
133 static int  device_rx_srv(struct vnt_private *priv, unsigned int idx);
134 static int  device_tx_srv(struct vnt_private *priv, unsigned int idx);
135 static bool device_alloc_rx_buf(struct vnt_private *, struct vnt_rx_desc *);
136 static void device_free_rx_buf(struct vnt_private *priv, struct vnt_rx_desc *rd);
137 static void device_init_registers(struct vnt_private *priv);
138 static void device_free_tx_buf(struct vnt_private *, struct vnt_tx_desc *);
139 static void device_free_td0_ring(struct vnt_private *priv);
140 static void device_free_td1_ring(struct vnt_private *priv);
141 static void device_free_rd0_ring(struct vnt_private *priv);
142 static void device_free_rd1_ring(struct vnt_private *priv);
143 static void device_free_rings(struct vnt_private *priv);
144
145 /*---------------------  Export Variables  --------------------------*/
146
147 /*---------------------  Export Functions  --------------------------*/
148
149 static void vt6655_remove(struct pci_dev *pcid)
150 {
151         struct vnt_private *priv = pci_get_drvdata(pcid);
152
153         if (!priv)
154                 return;
155         device_free_info(priv);
156 }
157
158 static void device_get_options(struct vnt_private *priv)
159 {
160         struct vnt_options *opts = &priv->opts;
161
162         opts->rx_descs0 = RX_DESC_DEF0;
163         opts->rx_descs1 = RX_DESC_DEF1;
164         opts->tx_descs[0] = TX_DESC_DEF0;
165         opts->tx_descs[1] = TX_DESC_DEF1;
166         opts->int_works = INT_WORKS_DEF;
167
168         opts->short_retry = SHORT_RETRY_DEF;
169         opts->long_retry = LONG_RETRY_DEF;
170         opts->bbp_type = BBP_TYPE_DEF;
171 }
172
173 static void
174 device_set_options(struct vnt_private *priv)
175 {
176         priv->byShortRetryLimit = priv->opts.short_retry;
177         priv->byLongRetryLimit = priv->opts.long_retry;
178         priv->byBBType = priv->opts.bbp_type;
179         priv->byPacketType = priv->byBBType;
180         priv->byAutoFBCtrl = AUTO_FB_0;
181         priv->bUpdateBBVGA = true;
182         priv->byPreambleType = 0;
183
184         pr_debug(" byShortRetryLimit= %d\n", (int)priv->byShortRetryLimit);
185         pr_debug(" byLongRetryLimit= %d\n", (int)priv->byLongRetryLimit);
186         pr_debug(" byPreambleType= %d\n", (int)priv->byPreambleType);
187         pr_debug(" byShortPreamble= %d\n", (int)priv->byShortPreamble);
188         pr_debug(" byBBType= %d\n", (int)priv->byBBType);
189 }
190
191 /*
192  * Initialisation of MAC & BBP registers
193  */
194
195 static void device_init_registers(struct vnt_private *priv)
196 {
197         unsigned long flags;
198         unsigned int ii;
199         unsigned char byValue;
200         unsigned char byCCKPwrdBm = 0;
201         unsigned char byOFDMPwrdBm = 0;
202
203         MACbShutdown(priv);
204         BBvSoftwareReset(priv);
205
206         /* Do MACbSoftwareReset in MACvInitialize */
207         MACbSoftwareReset(priv);
208
209         priv->bAES = false;
210
211         /* Only used in 11g type, sync with ERP IE */
212         priv->bProtectMode = false;
213
214         priv->bNonERPPresent = false;
215         priv->bBarkerPreambleMd = false;
216         priv->wCurrentRate = RATE_1M;
217         priv->byTopOFDMBasicRate = RATE_24M;
218         priv->byTopCCKBasicRate = RATE_1M;
219
220         /* init MAC */
221         MACvInitialize(priv);
222
223         /* Get Local ID */
224         VNSvInPortB(priv->PortOffset + MAC_REG_LOCALID, &priv->byLocalID);
225
226         spin_lock_irqsave(&priv->lock, flags);
227
228         SROMvReadAllContents(priv->PortOffset, priv->abyEEPROM);
229
230         spin_unlock_irqrestore(&priv->lock, flags);
231
232         /* Get Channel range */
233         priv->byMinChannel = 1;
234         priv->byMaxChannel = CB_MAX_CHANNEL;
235
236         /* Get Antena */
237         byValue = SROMbyReadEmbedded(priv->PortOffset, EEP_OFS_ANTENNA);
238         if (byValue & EEP_ANTINV)
239                 priv->bTxRxAntInv = true;
240         else
241                 priv->bTxRxAntInv = false;
242
243         byValue &= (EEP_ANTENNA_AUX | EEP_ANTENNA_MAIN);
244         /* if not set default is All */
245         if (byValue == 0)
246                 byValue = (EEP_ANTENNA_AUX | EEP_ANTENNA_MAIN);
247
248         if (byValue == (EEP_ANTENNA_AUX | EEP_ANTENNA_MAIN)) {
249                 priv->byAntennaCount = 2;
250                 priv->byTxAntennaMode = ANT_B;
251                 priv->dwTxAntennaSel = 1;
252                 priv->dwRxAntennaSel = 1;
253
254                 if (priv->bTxRxAntInv)
255                         priv->byRxAntennaMode = ANT_A;
256                 else
257                         priv->byRxAntennaMode = ANT_B;
258         } else  {
259                 priv->byAntennaCount = 1;
260                 priv->dwTxAntennaSel = 0;
261                 priv->dwRxAntennaSel = 0;
262
263                 if (byValue & EEP_ANTENNA_AUX) {
264                         priv->byTxAntennaMode = ANT_A;
265
266                         if (priv->bTxRxAntInv)
267                                 priv->byRxAntennaMode = ANT_B;
268                         else
269                                 priv->byRxAntennaMode = ANT_A;
270                 } else {
271                         priv->byTxAntennaMode = ANT_B;
272
273                         if (priv->bTxRxAntInv)
274                                 priv->byRxAntennaMode = ANT_A;
275                         else
276                                 priv->byRxAntennaMode = ANT_B;
277                 }
278         }
279
280         /* Set initial antenna mode */
281         BBvSetTxAntennaMode(priv, priv->byTxAntennaMode);
282         BBvSetRxAntennaMode(priv, priv->byRxAntennaMode);
283
284         /* zonetype initial */
285         priv->byOriginalZonetype = priv->abyEEPROM[EEP_OFS_ZONETYPE];
286
287         if (!priv->bZoneRegExist)
288                 priv->byZoneType = priv->abyEEPROM[EEP_OFS_ZONETYPE];
289
290         pr_debug("priv->byZoneType = %x\n", priv->byZoneType);
291
292         /* Init RF module */
293         RFbInit(priv);
294
295         /* Get Desire Power Value */
296         priv->byCurPwr = 0xFF;
297         priv->byCCKPwr = SROMbyReadEmbedded(priv->PortOffset, EEP_OFS_PWR_CCK);
298         priv->byOFDMPwrG = SROMbyReadEmbedded(priv->PortOffset, EEP_OFS_PWR_OFDMG);
299
300         /* Load power Table */
301         for (ii = 0; ii < CB_MAX_CHANNEL_24G; ii++) {
302                 priv->abyCCKPwrTbl[ii + 1] =
303                         SROMbyReadEmbedded(priv->PortOffset,
304                                            (unsigned char)(ii + EEP_OFS_CCK_PWR_TBL));
305                 if (priv->abyCCKPwrTbl[ii + 1] == 0)
306                         priv->abyCCKPwrTbl[ii + 1] = priv->byCCKPwr;
307
308                 priv->abyOFDMPwrTbl[ii + 1] =
309                         SROMbyReadEmbedded(priv->PortOffset,
310                                            (unsigned char)(ii + EEP_OFS_OFDM_PWR_TBL));
311                 if (priv->abyOFDMPwrTbl[ii + 1] == 0)
312                         priv->abyOFDMPwrTbl[ii + 1] = priv->byOFDMPwrG;
313
314                 priv->abyCCKDefaultPwr[ii + 1] = byCCKPwrdBm;
315                 priv->abyOFDMDefaultPwr[ii + 1] = byOFDMPwrdBm;
316         }
317
318         /* recover 12,13 ,14channel for EUROPE by 11 channel */
319         for (ii = 11; ii < 14; ii++) {
320                 priv->abyCCKPwrTbl[ii] = priv->abyCCKPwrTbl[10];
321                 priv->abyOFDMPwrTbl[ii] = priv->abyOFDMPwrTbl[10];
322         }
323
324         /* Load OFDM A Power Table */
325         for (ii = 0; ii < CB_MAX_CHANNEL_5G; ii++) {
326                 priv->abyOFDMPwrTbl[ii + CB_MAX_CHANNEL_24G + 1] =
327                         SROMbyReadEmbedded(priv->PortOffset,
328                                            (unsigned char)(ii + EEP_OFS_OFDMA_PWR_TBL));
329
330                 priv->abyOFDMDefaultPwr[ii + CB_MAX_CHANNEL_24G + 1] =
331                         SROMbyReadEmbedded(priv->PortOffset,
332                                            (unsigned char)(ii + EEP_OFS_OFDMA_PWR_dBm));
333         }
334
335         if (priv->byLocalID > REV_ID_VT3253_B1) {
336                 MACvSelectPage1(priv->PortOffset);
337
338                 VNSvOutPortB(priv->PortOffset + MAC_REG_MSRCTL + 1,
339                              (MSRCTL1_TXPWR | MSRCTL1_CSAPAREN));
340
341                 MACvSelectPage0(priv->PortOffset);
342         }
343
344         /* use relative tx timeout and 802.11i D4 */
345         MACvWordRegBitsOn(priv->PortOffset,
346                           MAC_REG_CFG, (CFG_TKIPOPT | CFG_NOTXTIMEOUT));
347
348         /* set performance parameter by registry */
349         MACvSetShortRetryLimit(priv, priv->byShortRetryLimit);
350         MACvSetLongRetryLimit(priv, priv->byLongRetryLimit);
351
352         /* reset TSF counter */
353         VNSvOutPortB(priv->PortOffset + MAC_REG_TFTCTL, TFTCTL_TSFCNTRST);
354         /* enable TSF counter */
355         VNSvOutPortB(priv->PortOffset + MAC_REG_TFTCTL, TFTCTL_TSFCNTREN);
356
357         /* initialize BBP registers */
358         BBbVT3253Init(priv);
359
360         if (priv->bUpdateBBVGA) {
361                 priv->byBBVGACurrent = priv->abyBBVGA[0];
362                 priv->byBBVGANew = priv->byBBVGACurrent;
363                 BBvSetVGAGainOffset(priv, priv->abyBBVGA[0]);
364         }
365
366         BBvSetRxAntennaMode(priv, priv->byRxAntennaMode);
367         BBvSetTxAntennaMode(priv, priv->byTxAntennaMode);
368
369         /* Set BB and packet type at the same time. */
370         /* Set Short Slot Time, xIFS, and RSPINF. */
371         priv->wCurrentRate = RATE_54M;
372
373         priv->bRadioOff = false;
374
375         priv->byRadioCtl = SROMbyReadEmbedded(priv->PortOffset,
376                                                  EEP_OFS_RADIOCTL);
377         priv->bHWRadioOff = false;
378
379         if (priv->byRadioCtl & EEP_RADIOCTL_ENABLE) {
380                 /* Get GPIO */
381                 MACvGPIOIn(priv->PortOffset, &priv->byGPIO);
382
383                 if (((priv->byGPIO & GPIO0_DATA) &&
384                      !(priv->byRadioCtl & EEP_RADIOCTL_INV)) ||
385                      (!(priv->byGPIO & GPIO0_DATA) &&
386                      (priv->byRadioCtl & EEP_RADIOCTL_INV)))
387                         priv->bHWRadioOff = true;
388         }
389
390         if (priv->bHWRadioOff || priv->bRadioControlOff)
391                 CARDbRadioPowerOff(priv);
392
393         /* get Permanent network address */
394         SROMvReadEtherAddress(priv->PortOffset, priv->abyCurrentNetAddr);
395         pr_debug("Network address = %pM\n", priv->abyCurrentNetAddr);
396
397         /* reset Tx pointer */
398         CARDvSafeResetRx(priv);
399         /* reset Rx pointer */
400         CARDvSafeResetTx(priv);
401
402         if (priv->byLocalID <= REV_ID_VT3253_A1)
403                 MACvRegBitsOn(priv->PortOffset, MAC_REG_RCR, RCR_WPAERR);
404
405         /* Turn On Rx DMA */
406         MACvReceive0(priv->PortOffset);
407         MACvReceive1(priv->PortOffset);
408
409         /* start the adapter */
410         MACvStart(priv->PortOffset);
411 }
412
413 static void device_print_info(struct vnt_private *priv)
414 {
415         dev_info(&priv->pcid->dev, "MAC=%pM IO=0x%lx Mem=0x%lx IRQ=%d\n",
416                  priv->abyCurrentNetAddr, (unsigned long)priv->ioaddr,
417                  (unsigned long)priv->PortOffset, priv->pcid->irq);
418 }
419
420 static void device_free_info(struct vnt_private *priv)
421 {
422         if (!priv)
423                 return;
424
425         if (priv->mac_hw)
426                 ieee80211_unregister_hw(priv->hw);
427
428         if (priv->PortOffset)
429                 iounmap(priv->PortOffset);
430
431         if (priv->pcid)
432                 pci_release_regions(priv->pcid);
433
434         if (priv->hw)
435                 ieee80211_free_hw(priv->hw);
436 }
437
438 static bool device_init_rings(struct vnt_private *priv)
439 {
440         void *vir_pool;
441
442         /*allocate all RD/TD rings a single pool*/
443         vir_pool = dma_zalloc_coherent(&priv->pcid->dev,
444                                        priv->opts.rx_descs0 * sizeof(struct vnt_rx_desc) +
445                                        priv->opts.rx_descs1 * sizeof(struct vnt_rx_desc) +
446                                        priv->opts.tx_descs[0] * sizeof(struct vnt_tx_desc) +
447                                        priv->opts.tx_descs[1] * sizeof(struct vnt_tx_desc),
448                                        &priv->pool_dma, GFP_ATOMIC);
449         if (!vir_pool) {
450                 dev_err(&priv->pcid->dev, "allocate desc dma memory failed\n");
451                 return false;
452         }
453
454         priv->aRD0Ring = vir_pool;
455         priv->aRD1Ring = vir_pool +
456                 priv->opts.rx_descs0 * sizeof(struct vnt_rx_desc);
457
458         priv->rd0_pool_dma = priv->pool_dma;
459         priv->rd1_pool_dma = priv->rd0_pool_dma +
460                 priv->opts.rx_descs0 * sizeof(struct vnt_rx_desc);
461
462         priv->tx0_bufs = dma_zalloc_coherent(&priv->pcid->dev,
463                                              priv->opts.tx_descs[0] * PKT_BUF_SZ +
464                                              priv->opts.tx_descs[1] * PKT_BUF_SZ +
465                                              CB_BEACON_BUF_SIZE +
466                                              CB_MAX_BUF_SIZE,
467                                              &priv->tx_bufs_dma0,
468                                              GFP_ATOMIC);
469         if (!priv->tx0_bufs) {
470                 dev_err(&priv->pcid->dev, "allocate buf dma memory failed\n");
471
472                 dma_free_coherent(&priv->pcid->dev,
473                                   priv->opts.rx_descs0 * sizeof(struct vnt_rx_desc) +
474                                   priv->opts.rx_descs1 * sizeof(struct vnt_rx_desc) +
475                                   priv->opts.tx_descs[0] * sizeof(struct vnt_tx_desc) +
476                                   priv->opts.tx_descs[1] * sizeof(struct vnt_tx_desc),
477                                   vir_pool, priv->pool_dma);
478                 return false;
479         }
480
481         priv->td0_pool_dma = priv->rd1_pool_dma +
482                 priv->opts.rx_descs1 * sizeof(struct vnt_rx_desc);
483
484         priv->td1_pool_dma = priv->td0_pool_dma +
485                 priv->opts.tx_descs[0] * sizeof(struct vnt_tx_desc);
486
487         /* vir_pool: pvoid type */
488         priv->apTD0Rings = vir_pool
489                 + priv->opts.rx_descs0 * sizeof(struct vnt_rx_desc)
490                 + priv->opts.rx_descs1 * sizeof(struct vnt_rx_desc);
491
492         priv->apTD1Rings = vir_pool
493                 + priv->opts.rx_descs0 * sizeof(struct vnt_rx_desc)
494                 + priv->opts.rx_descs1 * sizeof(struct vnt_rx_desc)
495                 + priv->opts.tx_descs[0] * sizeof(struct vnt_tx_desc);
496
497         priv->tx1_bufs = priv->tx0_bufs +
498                 priv->opts.tx_descs[0] * PKT_BUF_SZ;
499
500         priv->tx_beacon_bufs = priv->tx1_bufs +
501                 priv->opts.tx_descs[1] * PKT_BUF_SZ;
502
503         priv->pbyTmpBuff = priv->tx_beacon_bufs +
504                 CB_BEACON_BUF_SIZE;
505
506         priv->tx_bufs_dma1 = priv->tx_bufs_dma0 +
507                 priv->opts.tx_descs[0] * PKT_BUF_SZ;
508
509         priv->tx_beacon_dma = priv->tx_bufs_dma1 +
510                 priv->opts.tx_descs[1] * PKT_BUF_SZ;
511
512         return true;
513 }
514
515 static void device_free_rings(struct vnt_private *priv)
516 {
517         dma_free_coherent(&priv->pcid->dev,
518                           priv->opts.rx_descs0 * sizeof(struct vnt_rx_desc) +
519                           priv->opts.rx_descs1 * sizeof(struct vnt_rx_desc) +
520                           priv->opts.tx_descs[0] * sizeof(struct vnt_tx_desc) +
521                           priv->opts.tx_descs[1] * sizeof(struct vnt_tx_desc),
522                           priv->aRD0Ring, priv->pool_dma);
523
524         if (priv->tx0_bufs)
525                 dma_free_coherent(&priv->pcid->dev,
526                                   priv->opts.tx_descs[0] * PKT_BUF_SZ +
527                                   priv->opts.tx_descs[1] * PKT_BUF_SZ +
528                                   CB_BEACON_BUF_SIZE +
529                                   CB_MAX_BUF_SIZE,
530                                   priv->tx0_bufs, priv->tx_bufs_dma0);
531 }
532
533 static int device_init_rd0_ring(struct vnt_private *priv)
534 {
535         int i;
536         dma_addr_t      curr = priv->rd0_pool_dma;
537         struct vnt_rx_desc *desc;
538         int ret;
539
540         /* Init the RD0 ring entries */
541         for (i = 0; i < priv->opts.rx_descs0;
542              i ++, curr += sizeof(struct vnt_rx_desc)) {
543                 desc = &priv->aRD0Ring[i];
544                 desc->rd_info = kzalloc(sizeof(*desc->rd_info), GFP_KERNEL);
545                 if (!desc->rd_info) {
546                         ret = -ENOMEM;
547                         goto err_free_desc;
548                 }
549
550                 if (!device_alloc_rx_buf(priv, desc)) {
551                         dev_err(&priv->pcid->dev, "can not alloc rx bufs\n");
552                         ret = -ENOMEM;
553                         goto err_free_rd;
554                 }
555
556                 desc->next = &priv->aRD0Ring[(i + 1) % priv->opts.rx_descs0];
557                 desc->next_desc = cpu_to_le32(curr + sizeof(struct vnt_rx_desc));
558         }
559
560         if (i > 0)
561                 priv->aRD0Ring[i-1].next_desc = cpu_to_le32(priv->rd0_pool_dma);
562         priv->pCurrRD[0] = &priv->aRD0Ring[0];
563
564         return 0;
565
566 err_free_rd:
567         kfree(desc->rd_info);
568
569 err_free_desc:
570         while (i--) {
571                 desc = &priv->aRD0Ring[i];
572                 device_free_rx_buf(priv, desc);
573                 kfree(desc->rd_info);
574         }
575
576         return ret;
577 }
578
579 static int device_init_rd1_ring(struct vnt_private *priv)
580 {
581         int i;
582         dma_addr_t      curr = priv->rd1_pool_dma;
583         struct vnt_rx_desc *desc;
584         int ret;
585
586         /* Init the RD1 ring entries */
587         for (i = 0; i < priv->opts.rx_descs1;
588              i ++, curr += sizeof(struct vnt_rx_desc)) {
589                 desc = &priv->aRD1Ring[i];
590                 desc->rd_info = kzalloc(sizeof(*desc->rd_info), GFP_KERNEL);
591                 if (!desc->rd_info) {
592                         ret = -ENOMEM;
593                         goto err_free_desc;
594                 }
595
596                 if (!device_alloc_rx_buf(priv, desc)) {
597                         dev_err(&priv->pcid->dev, "can not alloc rx bufs\n");
598                         ret = -ENOMEM;
599                         goto err_free_rd;
600                 }
601
602                 desc->next = &priv->aRD1Ring[(i+1) % priv->opts.rx_descs1];
603                 desc->next_desc = cpu_to_le32(curr + sizeof(struct vnt_rx_desc));
604         }
605
606         if (i > 0)
607                 priv->aRD1Ring[i-1].next_desc = cpu_to_le32(priv->rd1_pool_dma);
608         priv->pCurrRD[1] = &priv->aRD1Ring[0];
609
610         return 0;
611
612 err_free_rd:
613         kfree(desc->rd_info);
614
615 err_free_desc:
616         while (i--) {
617                 desc = &priv->aRD1Ring[i];
618                 device_free_rx_buf(priv, desc);
619                 kfree(desc->rd_info);
620         }
621
622         return ret;
623 }
624
625 static void device_free_rd0_ring(struct vnt_private *priv)
626 {
627         int i;
628
629         for (i = 0; i < priv->opts.rx_descs0; i++) {
630                 struct vnt_rx_desc *desc = &priv->aRD0Ring[i];
631
632                 device_free_rx_buf(priv, desc);
633                 kfree(desc->rd_info);
634         }
635 }
636
637 static void device_free_rd1_ring(struct vnt_private *priv)
638 {
639         int i;
640
641         for (i = 0; i < priv->opts.rx_descs1; i++) {
642                 struct vnt_rx_desc *desc = &priv->aRD1Ring[i];
643
644                 device_free_rx_buf(priv, desc);
645                 kfree(desc->rd_info);
646         }
647 }
648
649 static int device_init_td0_ring(struct vnt_private *priv)
650 {
651         int i;
652         dma_addr_t  curr;
653         struct vnt_tx_desc *desc;
654         int ret;
655
656         curr = priv->td0_pool_dma;
657         for (i = 0; i < priv->opts.tx_descs[0];
658              i++, curr += sizeof(struct vnt_tx_desc)) {
659                 desc = &priv->apTD0Rings[i];
660                 desc->td_info = kzalloc(sizeof(*desc->td_info), GFP_KERNEL);
661                 if (!desc->td_info) {
662                         ret = -ENOMEM;
663                         goto err_free_desc;
664                 }
665
666                 desc->td_info->buf = priv->tx0_bufs + i * PKT_BUF_SZ;
667                 desc->td_info->buf_dma = priv->tx_bufs_dma0 + i * PKT_BUF_SZ;
668
669                 desc->next = &(priv->apTD0Rings[(i+1) % priv->opts.tx_descs[0]]);
670                 desc->next_desc = cpu_to_le32(curr + sizeof(struct vnt_tx_desc));
671         }
672
673         if (i > 0)
674                 priv->apTD0Rings[i-1].next_desc = cpu_to_le32(priv->td0_pool_dma);
675         priv->apTailTD[0] = priv->apCurrTD[0] = &priv->apTD0Rings[0];
676
677         return 0;
678
679 err_free_desc:
680         while (i--) {
681                 desc = &priv->apTD0Rings[i];
682                 kfree(desc->td_info);
683         }
684
685         return ret;
686 }
687
688 static int device_init_td1_ring(struct vnt_private *priv)
689 {
690         int i;
691         dma_addr_t  curr;
692         struct vnt_tx_desc *desc;
693         int ret;
694
695         /* Init the TD ring entries */
696         curr = priv->td1_pool_dma;
697         for (i = 0; i < priv->opts.tx_descs[1];
698              i++, curr += sizeof(struct vnt_tx_desc)) {
699                 desc = &priv->apTD1Rings[i];
700                 desc->td_info = kzalloc(sizeof(*desc->td_info), GFP_KERNEL);
701                 if (!desc->td_info) {
702                         ret = -ENOMEM;
703                         goto err_free_desc;
704                 }
705
706                 desc->td_info->buf = priv->tx1_bufs + i * PKT_BUF_SZ;
707                 desc->td_info->buf_dma = priv->tx_bufs_dma1 + i * PKT_BUF_SZ;
708
709                 desc->next = &(priv->apTD1Rings[(i + 1) % priv->opts.tx_descs[1]]);
710                 desc->next_desc = cpu_to_le32(curr + sizeof(struct vnt_tx_desc));
711         }
712
713         if (i > 0)
714                 priv->apTD1Rings[i-1].next_desc = cpu_to_le32(priv->td1_pool_dma);
715         priv->apTailTD[1] = priv->apCurrTD[1] = &priv->apTD1Rings[0];
716
717         return 0;
718
719 err_free_desc:
720         while (i--) {
721                 desc = &priv->apTD1Rings[i];
722                 kfree(desc->td_info);
723         }
724
725         return ret;
726 }
727
728 static void device_free_td0_ring(struct vnt_private *priv)
729 {
730         int i;
731
732         for (i = 0; i < priv->opts.tx_descs[0]; i++) {
733                 struct vnt_tx_desc *desc = &priv->apTD0Rings[i];
734                 struct vnt_td_info *td_info = desc->td_info;
735
736                 dev_kfree_skb(td_info->skb);
737                 kfree(desc->td_info);
738         }
739 }
740
741 static void device_free_td1_ring(struct vnt_private *priv)
742 {
743         int i;
744
745         for (i = 0; i < priv->opts.tx_descs[1]; i++) {
746                 struct vnt_tx_desc *desc = &priv->apTD1Rings[i];
747                 struct vnt_td_info *td_info = desc->td_info;
748
749                 dev_kfree_skb(td_info->skb);
750                 kfree(desc->td_info);
751         }
752 }
753
754 /*-----------------------------------------------------------------*/
755
756 static int device_rx_srv(struct vnt_private *priv, unsigned int idx)
757 {
758         struct vnt_rx_desc *rd;
759         int works = 0;
760
761         for (rd = priv->pCurrRD[idx];
762              rd->rd0.owner == OWNED_BY_HOST;
763              rd = rd->next) {
764                 if (works++ > 15)
765                         break;
766
767                 if (!rd->rd_info->skb)
768                         break;
769
770                 if (vnt_receive_frame(priv, rd)) {
771                         if (!device_alloc_rx_buf(priv, rd)) {
772                                 dev_err(&priv->pcid->dev,
773                                         "can not allocate rx buf\n");
774                                 break;
775                         }
776                 }
777                 rd->rd0.owner = OWNED_BY_NIC;
778         }
779
780         priv->pCurrRD[idx] = rd;
781
782         return works;
783 }
784
785 static bool device_alloc_rx_buf(struct vnt_private *priv,
786                                 struct vnt_rx_desc *rd)
787 {
788         struct vnt_rd_info *rd_info = rd->rd_info;
789
790         rd_info->skb = dev_alloc_skb((int)priv->rx_buf_sz);
791         if (!rd_info->skb)
792                 return false;
793
794         rd_info->skb_dma =
795                 dma_map_single(&priv->pcid->dev,
796                                skb_put(rd_info->skb, skb_tailroom(rd_info->skb)),
797                                priv->rx_buf_sz, DMA_FROM_DEVICE);
798         if (dma_mapping_error(&priv->pcid->dev, rd_info->skb_dma)) {
799                 dev_kfree_skb(rd_info->skb);
800                 rd_info->skb = NULL;
801                 return false;
802         }
803
804         *((unsigned int *)&rd->rd0) = 0; /* FIX cast */
805
806         rd->rd0.res_count = cpu_to_le16(priv->rx_buf_sz);
807         rd->rd0.owner = OWNED_BY_NIC;
808         rd->rd1.req_count = cpu_to_le16(priv->rx_buf_sz);
809         rd->buff_addr = cpu_to_le32(rd_info->skb_dma);
810
811         return true;
812 }
813
814 static void device_free_rx_buf(struct vnt_private *priv,
815                                 struct vnt_rx_desc *rd)
816 {
817         struct vnt_rd_info *rd_info = rd->rd_info;
818
819         dma_unmap_single(&priv->pcid->dev, rd_info->skb_dma,
820                         priv->rx_buf_sz, DMA_FROM_DEVICE);
821         dev_kfree_skb(rd_info->skb);
822 }
823
824 static const u8 fallback_rate0[5][5] = {
825         {RATE_18M, RATE_18M, RATE_12M, RATE_12M, RATE_12M},
826         {RATE_24M, RATE_24M, RATE_18M, RATE_12M, RATE_12M},
827         {RATE_36M, RATE_36M, RATE_24M, RATE_18M, RATE_18M},
828         {RATE_48M, RATE_48M, RATE_36M, RATE_24M, RATE_24M},
829         {RATE_54M, RATE_54M, RATE_48M, RATE_36M, RATE_36M}
830 };
831
832 static const u8 fallback_rate1[5][5] = {
833         {RATE_18M, RATE_18M, RATE_12M, RATE_6M, RATE_6M},
834         {RATE_24M, RATE_24M, RATE_18M, RATE_6M, RATE_6M},
835         {RATE_36M, RATE_36M, RATE_24M, RATE_12M, RATE_12M},
836         {RATE_48M, RATE_48M, RATE_24M, RATE_12M, RATE_12M},
837         {RATE_54M, RATE_54M, RATE_36M, RATE_18M, RATE_18M}
838 };
839
840 static int vnt_int_report_rate(struct vnt_private *priv,
841                                struct vnt_td_info *context, u8 tsr0, u8 tsr1)
842 {
843         struct vnt_tx_fifo_head *fifo_head;
844         struct ieee80211_tx_info *info;
845         struct ieee80211_rate *rate;
846         u16 fb_option;
847         u8 tx_retry = (tsr0 & TSR0_NCR);
848         s8 idx;
849
850         if (!context)
851                 return -ENOMEM;
852
853         if (!context->skb)
854                 return -EINVAL;
855
856         fifo_head = (struct vnt_tx_fifo_head *)context->buf;
857         fb_option = (le16_to_cpu(fifo_head->fifo_ctl) &
858                         (FIFOCTL_AUTO_FB_0 | FIFOCTL_AUTO_FB_1));
859
860         info = IEEE80211_SKB_CB(context->skb);
861         idx = info->control.rates[0].idx;
862
863         if (fb_option && !(tsr1 & TSR1_TERR)) {
864                 u8 tx_rate;
865                 u8 retry = tx_retry;
866
867                 rate = ieee80211_get_tx_rate(priv->hw, info);
868                 tx_rate = rate->hw_value - RATE_18M;
869
870                 if (retry > 4)
871                         retry = 4;
872
873                 if (fb_option & FIFOCTL_AUTO_FB_0)
874                         tx_rate = fallback_rate0[tx_rate][retry];
875                 else if (fb_option & FIFOCTL_AUTO_FB_1)
876                         tx_rate = fallback_rate1[tx_rate][retry];
877
878                 if (info->band == NL80211_BAND_5GHZ)
879                         idx = tx_rate - RATE_6M;
880                 else
881                         idx = tx_rate;
882         }
883
884         ieee80211_tx_info_clear_status(info);
885
886         info->status.rates[0].count = tx_retry;
887
888         if (!(tsr1 & TSR1_TERR)) {
889                 info->status.rates[0].idx = idx;
890
891                 if (info->flags & IEEE80211_TX_CTL_NO_ACK)
892                         info->flags |= IEEE80211_TX_STAT_NOACK_TRANSMITTED;
893                 else
894                         info->flags |= IEEE80211_TX_STAT_ACK;
895         }
896
897         return 0;
898 }
899
900 static int device_tx_srv(struct vnt_private *priv, unsigned int idx)
901 {
902         struct vnt_tx_desc *desc;
903         int                      works = 0;
904         unsigned char byTsr0;
905         unsigned char byTsr1;
906
907         for (desc = priv->apTailTD[idx]; priv->iTDUsed[idx] > 0; desc = desc->next) {
908                 if (desc->td0.owner == OWNED_BY_NIC)
909                         break;
910                 if (works++ > 15)
911                         break;
912
913                 byTsr0 = desc->td0.tsr0;
914                 byTsr1 = desc->td0.tsr1;
915
916                 /* Only the status of first TD in the chain is correct */
917                 if (desc->td1.tcr & TCR_STP) {
918                         if ((desc->td_info->flags & TD_FLAGS_NETIF_SKB) != 0) {
919                                 if (!(byTsr1 & TSR1_TERR)) {
920                                         if (byTsr0 != 0) {
921                                                 pr_debug(" Tx[%d] OK but has error. tsr1[%02X] tsr0[%02X]\n",
922                                                          (int)idx, byTsr1,
923                                                          byTsr0);
924                                         }
925                                 } else {
926                                         pr_debug(" Tx[%d] dropped & tsr1[%02X] tsr0[%02X]\n",
927                                                  (int)idx, byTsr1, byTsr0);
928                                 }
929                         }
930
931                         if (byTsr1 & TSR1_TERR) {
932                                 if ((desc->td_info->flags & TD_FLAGS_PRIV_SKB) != 0) {
933                                         pr_debug(" Tx[%d] fail has error. tsr1[%02X] tsr0[%02X]\n",
934                                                  (int)idx, byTsr1, byTsr0);
935                                 }
936                         }
937
938                         vnt_int_report_rate(priv, desc->td_info, byTsr0, byTsr1);
939
940                         device_free_tx_buf(priv, desc);
941                         priv->iTDUsed[idx]--;
942                 }
943         }
944
945         priv->apTailTD[idx] = desc;
946
947         return works;
948 }
949
950 static void device_error(struct vnt_private *priv, unsigned short status)
951 {
952         if (status & ISR_FETALERR) {
953                 dev_err(&priv->pcid->dev, "Hardware fatal error\n");
954
955                 MACbShutdown(priv);
956                 return;
957         }
958 }
959
960 static void device_free_tx_buf(struct vnt_private *priv,
961                                struct vnt_tx_desc *desc)
962 {
963         struct vnt_td_info *td_info = desc->td_info;
964         struct sk_buff *skb = td_info->skb;
965
966         if (skb)
967                 ieee80211_tx_status_irqsafe(priv->hw, skb);
968
969         td_info->skb = NULL;
970         td_info->flags = 0;
971 }
972
973 static void vnt_check_bb_vga(struct vnt_private *priv)
974 {
975         long dbm;
976         int i;
977
978         if (!priv->bUpdateBBVGA)
979                 return;
980
981         if (priv->hw->conf.flags & IEEE80211_CONF_OFFCHANNEL)
982                 return;
983
984         if (!(priv->vif->bss_conf.assoc && priv->uCurrRSSI))
985                 return;
986
987         RFvRSSITodBm(priv, (u8)priv->uCurrRSSI, &dbm);
988
989         for (i = 0; i < BB_VGA_LEVEL; i++) {
990                 if (dbm < priv->ldBmThreshold[i]) {
991                         priv->byBBVGANew = priv->abyBBVGA[i];
992                         break;
993                 }
994         }
995
996         if (priv->byBBVGANew == priv->byBBVGACurrent) {
997                 priv->uBBVGADiffCount = 1;
998                 return;
999         }
1000
1001         priv->uBBVGADiffCount++;
1002
1003         if (priv->uBBVGADiffCount == 1) {
1004                 /* first VGA diff gain */
1005                 BBvSetVGAGainOffset(priv, priv->byBBVGANew);
1006
1007                 dev_dbg(&priv->pcid->dev,
1008                         "First RSSI[%d] NewGain[%d] OldGain[%d] Count[%d]\n",
1009                         (int)dbm, priv->byBBVGANew,
1010                         priv->byBBVGACurrent,
1011                         (int)priv->uBBVGADiffCount);
1012         }
1013
1014         if (priv->uBBVGADiffCount >= BB_VGA_CHANGE_THRESHOLD) {
1015                 dev_dbg(&priv->pcid->dev,
1016                         "RSSI[%d] NewGain[%d] OldGain[%d] Count[%d]\n",
1017                         (int)dbm, priv->byBBVGANew,
1018                         priv->byBBVGACurrent,
1019                         (int)priv->uBBVGADiffCount);
1020
1021                 BBvSetVGAGainOffset(priv, priv->byBBVGANew);
1022         }
1023 }
1024
1025 static void vnt_interrupt_process(struct vnt_private *priv)
1026 {
1027         struct ieee80211_low_level_stats *low_stats = &priv->low_stats;
1028         int             max_count = 0;
1029         u32 mib_counter;
1030         u32 isr;
1031         unsigned long flags;
1032
1033         MACvReadISR(priv->PortOffset, &isr);
1034
1035         if (isr == 0)
1036                 return;
1037
1038         if (isr == 0xffffffff) {
1039                 pr_debug("isr = 0xffff\n");
1040                 return;
1041         }
1042
1043         spin_lock_irqsave(&priv->lock, flags);
1044
1045         /* Read low level stats */
1046         MACvReadMIBCounter(priv->PortOffset, &mib_counter);
1047
1048         low_stats->dot11RTSSuccessCount += mib_counter & 0xff;
1049         low_stats->dot11RTSFailureCount += (mib_counter >> 8) & 0xff;
1050         low_stats->dot11ACKFailureCount += (mib_counter >> 16) & 0xff;
1051         low_stats->dot11FCSErrorCount += (mib_counter >> 24) & 0xff;
1052
1053         /*
1054          * TBD....
1055          * Must do this after doing rx/tx, cause ISR bit is slow
1056          * than RD/TD write back
1057          * update ISR counter
1058          */
1059         while (isr && priv->vif) {
1060                 MACvWriteISR(priv->PortOffset, isr);
1061
1062                 if (isr & ISR_FETALERR) {
1063                         pr_debug(" ISR_FETALERR\n");
1064                         VNSvOutPortB(priv->PortOffset + MAC_REG_SOFTPWRCTL, 0);
1065                         VNSvOutPortW(priv->PortOffset +
1066                                      MAC_REG_SOFTPWRCTL, SOFTPWRCTL_SWPECTI);
1067                         device_error(priv, isr);
1068                 }
1069
1070                 if (isr & ISR_TBTT) {
1071                         if (priv->op_mode != NL80211_IFTYPE_ADHOC)
1072                                 vnt_check_bb_vga(priv);
1073
1074                         priv->bBeaconSent = false;
1075                         if (priv->bEnablePSMode)
1076                                 PSbIsNextTBTTWakeUp((void *)priv);
1077
1078                         if ((priv->op_mode == NL80211_IFTYPE_AP ||
1079                             priv->op_mode == NL80211_IFTYPE_ADHOC) &&
1080                             priv->vif->bss_conf.enable_beacon) {
1081                                 MACvOneShotTimer1MicroSec(priv,
1082                                                           (priv->vif->bss_conf.beacon_int - MAKE_BEACON_RESERVED) << 10);
1083                         }
1084
1085                         /* TODO: adhoc PS mode */
1086                 }
1087
1088                 if (isr & ISR_BNTX) {
1089                         if (priv->op_mode == NL80211_IFTYPE_ADHOC) {
1090                                 priv->bIsBeaconBufReadySet = false;
1091                                 priv->cbBeaconBufReadySetCnt = 0;
1092                         }
1093
1094                         priv->bBeaconSent = true;
1095                 }
1096
1097                 if (isr & ISR_RXDMA0)
1098                         max_count += device_rx_srv(priv, TYPE_RXDMA0);
1099
1100                 if (isr & ISR_RXDMA1)
1101                         max_count += device_rx_srv(priv, TYPE_RXDMA1);
1102
1103                 if (isr & ISR_TXDMA0)
1104                         max_count += device_tx_srv(priv, TYPE_TXDMA0);
1105
1106                 if (isr & ISR_AC0DMA)
1107                         max_count += device_tx_srv(priv, TYPE_AC0DMA);
1108
1109                 if (isr & ISR_SOFTTIMER1) {
1110                         if (priv->vif->bss_conf.enable_beacon)
1111                                 vnt_beacon_make(priv, priv->vif);
1112                 }
1113
1114                 /* If both buffers available wake the queue */
1115                 if (AVAIL_TD(priv, TYPE_TXDMA0) &&
1116                     AVAIL_TD(priv, TYPE_AC0DMA) &&
1117                     ieee80211_queue_stopped(priv->hw, 0))
1118                         ieee80211_wake_queues(priv->hw);
1119
1120                 MACvReadISR(priv->PortOffset, &isr);
1121
1122                 MACvReceive0(priv->PortOffset);
1123                 MACvReceive1(priv->PortOffset);
1124
1125                 if (max_count > priv->opts.int_works)
1126                         break;
1127         }
1128
1129         spin_unlock_irqrestore(&priv->lock, flags);
1130 }
1131
1132 static void vnt_interrupt_work(struct work_struct *work)
1133 {
1134         struct vnt_private *priv =
1135                 container_of(work, struct vnt_private, interrupt_work);
1136
1137         if (priv->vif)
1138                 vnt_interrupt_process(priv);
1139
1140         MACvIntEnable(priv->PortOffset, IMR_MASK_VALUE);
1141 }
1142
1143 static irqreturn_t vnt_interrupt(int irq,  void *arg)
1144 {
1145         struct vnt_private *priv = arg;
1146
1147         schedule_work(&priv->interrupt_work);
1148
1149         MACvIntDisable(priv->PortOffset);
1150
1151         return IRQ_HANDLED;
1152 }
1153
1154 static int vnt_tx_packet(struct vnt_private *priv, struct sk_buff *skb)
1155 {
1156         struct ieee80211_hdr *hdr = (struct ieee80211_hdr *)skb->data;
1157         struct vnt_tx_desc *head_td;
1158         u32 dma_idx;
1159         unsigned long flags;
1160
1161         spin_lock_irqsave(&priv->lock, flags);
1162
1163         if (ieee80211_is_data(hdr->frame_control))
1164                 dma_idx = TYPE_AC0DMA;
1165         else
1166                 dma_idx = TYPE_TXDMA0;
1167
1168         if (AVAIL_TD(priv, dma_idx) < 1) {
1169                 spin_unlock_irqrestore(&priv->lock, flags);
1170                 ieee80211_stop_queues(priv->hw);
1171                 return -ENOMEM;
1172         }
1173
1174         head_td = priv->apCurrTD[dma_idx];
1175
1176         head_td->td1.tcr = 0;
1177
1178         head_td->td_info->skb = skb;
1179
1180         if (dma_idx == TYPE_AC0DMA)
1181                 head_td->td_info->flags = TD_FLAGS_NETIF_SKB;
1182
1183         priv->apCurrTD[dma_idx] = head_td->next;
1184
1185         spin_unlock_irqrestore(&priv->lock, flags);
1186
1187         vnt_generate_fifo_header(priv, dma_idx, head_td, skb);
1188
1189         spin_lock_irqsave(&priv->lock, flags);
1190
1191         priv->bPWBitOn = false;
1192
1193         /* Set TSR1 & ReqCount in TxDescHead */
1194         head_td->td1.tcr |= (TCR_STP | TCR_EDP | EDMSDU);
1195         head_td->td1.req_count = cpu_to_le16(head_td->td_info->req_count);
1196
1197         head_td->buff_addr = cpu_to_le32(head_td->td_info->buf_dma);
1198
1199         /* Poll Transmit the adapter */
1200         wmb();
1201         head_td->td0.owner = OWNED_BY_NIC;
1202         wmb(); /* second memory barrier */
1203
1204         if (head_td->td_info->flags & TD_FLAGS_NETIF_SKB)
1205                 MACvTransmitAC0(priv->PortOffset);
1206         else
1207                 MACvTransmit0(priv->PortOffset);
1208
1209         priv->iTDUsed[dma_idx]++;
1210
1211         spin_unlock_irqrestore(&priv->lock, flags);
1212
1213         return 0;
1214 }
1215
1216 static void vnt_tx_80211(struct ieee80211_hw *hw,
1217                          struct ieee80211_tx_control *control,
1218                          struct sk_buff *skb)
1219 {
1220         struct vnt_private *priv = hw->priv;
1221
1222         if (vnt_tx_packet(priv, skb))
1223                 ieee80211_free_txskb(hw, skb);
1224 }
1225
1226 static int vnt_start(struct ieee80211_hw *hw)
1227 {
1228         struct vnt_private *priv = hw->priv;
1229         int ret;
1230
1231         priv->rx_buf_sz = PKT_BUF_SZ;
1232         if (!device_init_rings(priv))
1233                 return -ENOMEM;
1234
1235         ret = request_irq(priv->pcid->irq, vnt_interrupt,
1236                           IRQF_SHARED, "vt6655", priv);
1237         if (ret) {
1238                 dev_dbg(&priv->pcid->dev, "failed to start irq\n");
1239                 goto err_free_rings;
1240         }
1241
1242         dev_dbg(&priv->pcid->dev, "call device init rd0 ring\n");
1243         ret = device_init_rd0_ring(priv);
1244         if (ret)
1245                 goto err_free_irq;
1246         ret = device_init_rd1_ring(priv);
1247         if (ret)
1248                 goto err_free_rd0_ring;
1249         ret = device_init_td0_ring(priv);
1250         if (ret)
1251                 goto err_free_rd1_ring;
1252         ret = device_init_td1_ring(priv);
1253         if (ret)
1254                 goto err_free_td0_ring;
1255
1256         device_init_registers(priv);
1257
1258         dev_dbg(&priv->pcid->dev, "call MACvIntEnable\n");
1259         MACvIntEnable(priv->PortOffset, IMR_MASK_VALUE);
1260
1261         ieee80211_wake_queues(hw);
1262
1263         return 0;
1264
1265 err_free_td0_ring:
1266         device_free_td0_ring(priv);
1267 err_free_rd1_ring:
1268         device_free_rd1_ring(priv);
1269 err_free_rd0_ring:
1270         device_free_rd0_ring(priv);
1271 err_free_irq:
1272         free_irq(priv->pcid->irq, priv);
1273 err_free_rings:
1274         device_free_rings(priv);
1275         return ret;
1276 }
1277
1278 static void vnt_stop(struct ieee80211_hw *hw)
1279 {
1280         struct vnt_private *priv = hw->priv;
1281
1282         ieee80211_stop_queues(hw);
1283
1284         cancel_work_sync(&priv->interrupt_work);
1285
1286         MACbShutdown(priv);
1287         MACbSoftwareReset(priv);
1288         CARDbRadioPowerOff(priv);
1289
1290         device_free_td0_ring(priv);
1291         device_free_td1_ring(priv);
1292         device_free_rd0_ring(priv);
1293         device_free_rd1_ring(priv);
1294         device_free_rings(priv);
1295
1296         free_irq(priv->pcid->irq, priv);
1297 }
1298
1299 static int vnt_add_interface(struct ieee80211_hw *hw, struct ieee80211_vif *vif)
1300 {
1301         struct vnt_private *priv = hw->priv;
1302
1303         priv->vif = vif;
1304
1305         switch (vif->type) {
1306         case NL80211_IFTYPE_STATION:
1307                 break;
1308         case NL80211_IFTYPE_ADHOC:
1309                 MACvRegBitsOff(priv->PortOffset, MAC_REG_RCR, RCR_UNICAST);
1310
1311                 MACvRegBitsOn(priv->PortOffset, MAC_REG_HOSTCR, HOSTCR_ADHOC);
1312
1313                 break;
1314         case NL80211_IFTYPE_AP:
1315                 MACvRegBitsOff(priv->PortOffset, MAC_REG_RCR, RCR_UNICAST);
1316
1317                 MACvRegBitsOn(priv->PortOffset, MAC_REG_HOSTCR, HOSTCR_AP);
1318
1319                 break;
1320         default:
1321                 return -EOPNOTSUPP;
1322         }
1323
1324         priv->op_mode = vif->type;
1325
1326         return 0;
1327 }
1328
1329 static void vnt_remove_interface(struct ieee80211_hw *hw,
1330                                  struct ieee80211_vif *vif)
1331 {
1332         struct vnt_private *priv = hw->priv;
1333
1334         switch (vif->type) {
1335         case NL80211_IFTYPE_STATION:
1336                 break;
1337         case NL80211_IFTYPE_ADHOC:
1338                 MACvRegBitsOff(priv->PortOffset, MAC_REG_TCR, TCR_AUTOBCNTX);
1339                 MACvRegBitsOff(priv->PortOffset,
1340                                MAC_REG_TFTCTL, TFTCTL_TSFCNTREN);
1341                 MACvRegBitsOff(priv->PortOffset, MAC_REG_HOSTCR, HOSTCR_ADHOC);
1342                 break;
1343         case NL80211_IFTYPE_AP:
1344                 MACvRegBitsOff(priv->PortOffset, MAC_REG_TCR, TCR_AUTOBCNTX);
1345                 MACvRegBitsOff(priv->PortOffset,
1346                                MAC_REG_TFTCTL, TFTCTL_TSFCNTREN);
1347                 MACvRegBitsOff(priv->PortOffset, MAC_REG_HOSTCR, HOSTCR_AP);
1348                 break;
1349         default:
1350                 break;
1351         }
1352
1353         priv->op_mode = NL80211_IFTYPE_UNSPECIFIED;
1354 }
1355
1356 static int vnt_config(struct ieee80211_hw *hw, u32 changed)
1357 {
1358         struct vnt_private *priv = hw->priv;
1359         struct ieee80211_conf *conf = &hw->conf;
1360         u8 bb_type;
1361
1362         if (changed & IEEE80211_CONF_CHANGE_PS) {
1363                 if (conf->flags & IEEE80211_CONF_PS)
1364                         PSvEnablePowerSaving(priv, conf->listen_interval);
1365                 else
1366                         PSvDisablePowerSaving(priv);
1367         }
1368
1369         if ((changed & IEEE80211_CONF_CHANGE_CHANNEL) ||
1370             (conf->flags & IEEE80211_CONF_OFFCHANNEL)) {
1371                 set_channel(priv, conf->chandef.chan);
1372
1373                 if (conf->chandef.chan->band == NL80211_BAND_5GHZ)
1374                         bb_type = BB_TYPE_11A;
1375                 else
1376                         bb_type = BB_TYPE_11G;
1377
1378                 if (priv->byBBType != bb_type) {
1379                         priv->byBBType = bb_type;
1380
1381                         CARDbSetPhyParameter(priv, priv->byBBType);
1382                 }
1383         }
1384
1385         if (changed & IEEE80211_CONF_CHANGE_POWER) {
1386                 if (priv->byBBType == BB_TYPE_11B)
1387                         priv->wCurrentRate = RATE_1M;
1388                 else
1389                         priv->wCurrentRate = RATE_54M;
1390
1391                 RFbSetPower(priv, priv->wCurrentRate,
1392                             conf->chandef.chan->hw_value);
1393         }
1394
1395         return 0;
1396 }
1397
1398 static void vnt_bss_info_changed(struct ieee80211_hw *hw,
1399                                  struct ieee80211_vif *vif,
1400                                  struct ieee80211_bss_conf *conf, u32 changed)
1401 {
1402         struct vnt_private *priv = hw->priv;
1403
1404         priv->current_aid = conf->aid;
1405
1406         if (changed & BSS_CHANGED_BSSID && conf->bssid) {
1407                 unsigned long flags;
1408
1409                 spin_lock_irqsave(&priv->lock, flags);
1410
1411                 MACvWriteBSSIDAddress(priv->PortOffset, (u8 *)conf->bssid);
1412
1413                 spin_unlock_irqrestore(&priv->lock, flags);
1414         }
1415
1416         if (changed & BSS_CHANGED_BASIC_RATES) {
1417                 priv->basic_rates = conf->basic_rates;
1418
1419                 CARDvUpdateBasicTopRate(priv);
1420
1421                 dev_dbg(&priv->pcid->dev,
1422                         "basic rates %x\n", conf->basic_rates);
1423         }
1424
1425         if (changed & BSS_CHANGED_ERP_PREAMBLE) {
1426                 if (conf->use_short_preamble) {
1427                         MACvEnableBarkerPreambleMd(priv->PortOffset);
1428                         priv->byPreambleType = true;
1429                 } else {
1430                         MACvDisableBarkerPreambleMd(priv->PortOffset);
1431                         priv->byPreambleType = false;
1432                 }
1433         }
1434
1435         if (changed & BSS_CHANGED_ERP_CTS_PROT) {
1436                 if (conf->use_cts_prot)
1437                         MACvEnableProtectMD(priv->PortOffset);
1438                 else
1439                         MACvDisableProtectMD(priv->PortOffset);
1440         }
1441
1442         if (changed & BSS_CHANGED_ERP_SLOT) {
1443                 if (conf->use_short_slot)
1444                         priv->bShortSlotTime = true;
1445                 else
1446                         priv->bShortSlotTime = false;
1447
1448                 CARDbSetPhyParameter(priv, priv->byBBType);
1449                 BBvSetVGAGainOffset(priv, priv->abyBBVGA[0]);
1450         }
1451
1452         if (changed & BSS_CHANGED_TXPOWER)
1453                 RFbSetPower(priv, priv->wCurrentRate,
1454                             conf->chandef.chan->hw_value);
1455
1456         if (changed & BSS_CHANGED_BEACON_ENABLED) {
1457                 dev_dbg(&priv->pcid->dev,
1458                         "Beacon enable %d\n", conf->enable_beacon);
1459
1460                 if (conf->enable_beacon) {
1461                         vnt_beacon_enable(priv, vif, conf);
1462
1463                         MACvRegBitsOn(priv->PortOffset, MAC_REG_TCR,
1464                                       TCR_AUTOBCNTX);
1465                 } else {
1466                         MACvRegBitsOff(priv->PortOffset, MAC_REG_TCR,
1467                                        TCR_AUTOBCNTX);
1468                 }
1469         }
1470
1471         if (changed & (BSS_CHANGED_ASSOC | BSS_CHANGED_BEACON_INFO) &&
1472             priv->op_mode != NL80211_IFTYPE_AP) {
1473                 if (conf->assoc && conf->beacon_rate) {
1474                         CARDbUpdateTSF(priv, conf->beacon_rate->hw_value,
1475                                        conf->sync_tsf);
1476
1477                         CARDbSetBeaconPeriod(priv, conf->beacon_int);
1478
1479                         CARDvSetFirstNextTBTT(priv, conf->beacon_int);
1480                 } else {
1481                         VNSvOutPortB(priv->PortOffset + MAC_REG_TFTCTL,
1482                                      TFTCTL_TSFCNTRST);
1483                         VNSvOutPortB(priv->PortOffset + MAC_REG_TFTCTL,
1484                                      TFTCTL_TSFCNTREN);
1485                 }
1486         }
1487 }
1488
1489 static u64 vnt_prepare_multicast(struct ieee80211_hw *hw,
1490                                  struct netdev_hw_addr_list *mc_list)
1491 {
1492         struct vnt_private *priv = hw->priv;
1493         struct netdev_hw_addr *ha;
1494         u64 mc_filter = 0;
1495         u32 bit_nr = 0;
1496
1497         netdev_hw_addr_list_for_each(ha, mc_list) {
1498                 bit_nr = ether_crc(ETH_ALEN, ha->addr) >> 26;
1499
1500                 mc_filter |= 1ULL << (bit_nr & 0x3f);
1501         }
1502
1503         priv->mc_list_count = mc_list->count;
1504
1505         return mc_filter;
1506 }
1507
1508 static void vnt_configure(struct ieee80211_hw *hw,
1509                           unsigned int changed_flags,
1510                           unsigned int *total_flags, u64 multicast)
1511 {
1512         struct vnt_private *priv = hw->priv;
1513         u8 rx_mode = 0;
1514
1515         *total_flags &= FIF_ALLMULTI | FIF_OTHER_BSS | FIF_BCN_PRBRESP_PROMISC;
1516
1517         VNSvInPortB(priv->PortOffset + MAC_REG_RCR, &rx_mode);
1518
1519         dev_dbg(&priv->pcid->dev, "rx mode in = %x\n", rx_mode);
1520
1521         if (changed_flags & FIF_ALLMULTI) {
1522                 if (*total_flags & FIF_ALLMULTI) {
1523                         unsigned long flags;
1524
1525                         spin_lock_irqsave(&priv->lock, flags);
1526
1527                         if (priv->mc_list_count > 2) {
1528                                 MACvSelectPage1(priv->PortOffset);
1529
1530                                 VNSvOutPortD(priv->PortOffset +
1531                                              MAC_REG_MAR0, 0xffffffff);
1532                                 VNSvOutPortD(priv->PortOffset +
1533                                             MAC_REG_MAR0 + 4, 0xffffffff);
1534
1535                                 MACvSelectPage0(priv->PortOffset);
1536                         } else {
1537                                 MACvSelectPage1(priv->PortOffset);
1538
1539                                 VNSvOutPortD(priv->PortOffset +
1540                                              MAC_REG_MAR0, (u32)multicast);
1541                                 VNSvOutPortD(priv->PortOffset +
1542                                              MAC_REG_MAR0 + 4,
1543                                              (u32)(multicast >> 32));
1544
1545                                 MACvSelectPage0(priv->PortOffset);
1546                         }
1547
1548                         spin_unlock_irqrestore(&priv->lock, flags);
1549
1550                         rx_mode |= RCR_MULTICAST | RCR_BROADCAST;
1551                 } else {
1552                         rx_mode &= ~(RCR_MULTICAST | RCR_BROADCAST);
1553                 }
1554         }
1555
1556         if (changed_flags & (FIF_OTHER_BSS | FIF_BCN_PRBRESP_PROMISC)) {
1557                 rx_mode |= RCR_MULTICAST | RCR_BROADCAST;
1558
1559                 if (*total_flags & (FIF_OTHER_BSS | FIF_BCN_PRBRESP_PROMISC))
1560                         rx_mode &= ~RCR_BSSID;
1561                 else
1562                         rx_mode |= RCR_BSSID;
1563         }
1564
1565         VNSvOutPortB(priv->PortOffset + MAC_REG_RCR, rx_mode);
1566
1567         dev_dbg(&priv->pcid->dev, "rx mode out= %x\n", rx_mode);
1568 }
1569
1570 static int vnt_set_key(struct ieee80211_hw *hw, enum set_key_cmd cmd,
1571                        struct ieee80211_vif *vif, struct ieee80211_sta *sta,
1572                        struct ieee80211_key_conf *key)
1573 {
1574         struct vnt_private *priv = hw->priv;
1575
1576         switch (cmd) {
1577         case SET_KEY:
1578                 if (vnt_set_keys(hw, sta, vif, key))
1579                         return -EOPNOTSUPP;
1580                 break;
1581         case DISABLE_KEY:
1582                 if (test_bit(key->hw_key_idx, &priv->key_entry_inuse))
1583                         clear_bit(key->hw_key_idx, &priv->key_entry_inuse);
1584         default:
1585                 break;
1586         }
1587
1588         return 0;
1589 }
1590
1591 static int vnt_get_stats(struct ieee80211_hw *hw,
1592                          struct ieee80211_low_level_stats *stats)
1593 {
1594         struct vnt_private *priv = hw->priv;
1595
1596         memcpy(stats, &priv->low_stats, sizeof(*stats));
1597
1598         return 0;
1599 }
1600
1601 static u64 vnt_get_tsf(struct ieee80211_hw *hw, struct ieee80211_vif *vif)
1602 {
1603         struct vnt_private *priv = hw->priv;
1604         u64 tsf;
1605
1606         CARDbGetCurrentTSF(priv, &tsf);
1607
1608         return tsf;
1609 }
1610
1611 static void vnt_set_tsf(struct ieee80211_hw *hw, struct ieee80211_vif *vif,
1612                         u64 tsf)
1613 {
1614         struct vnt_private *priv = hw->priv;
1615
1616         CARDvUpdateNextTBTT(priv, tsf, vif->bss_conf.beacon_int);
1617 }
1618
1619 static void vnt_reset_tsf(struct ieee80211_hw *hw, struct ieee80211_vif *vif)
1620 {
1621         struct vnt_private *priv = hw->priv;
1622
1623         /* reset TSF counter */
1624         VNSvOutPortB(priv->PortOffset + MAC_REG_TFTCTL, TFTCTL_TSFCNTRST);
1625 }
1626
1627 static const struct ieee80211_ops vnt_mac_ops = {
1628         .tx                     = vnt_tx_80211,
1629         .start                  = vnt_start,
1630         .stop                   = vnt_stop,
1631         .add_interface          = vnt_add_interface,
1632         .remove_interface       = vnt_remove_interface,
1633         .config                 = vnt_config,
1634         .bss_info_changed       = vnt_bss_info_changed,
1635         .prepare_multicast      = vnt_prepare_multicast,
1636         .configure_filter       = vnt_configure,
1637         .set_key                = vnt_set_key,
1638         .get_stats              = vnt_get_stats,
1639         .get_tsf                = vnt_get_tsf,
1640         .set_tsf                = vnt_set_tsf,
1641         .reset_tsf              = vnt_reset_tsf,
1642 };
1643
1644 static int vnt_init(struct vnt_private *priv)
1645 {
1646         SET_IEEE80211_PERM_ADDR(priv->hw, priv->abyCurrentNetAddr);
1647
1648         vnt_init_bands(priv);
1649
1650         if (ieee80211_register_hw(priv->hw))
1651                 return -ENODEV;
1652
1653         priv->mac_hw = true;
1654
1655         CARDbRadioPowerOff(priv);
1656
1657         return 0;
1658 }
1659
1660 static int
1661 vt6655_probe(struct pci_dev *pcid, const struct pci_device_id *ent)
1662 {
1663         struct vnt_private *priv;
1664         struct ieee80211_hw *hw;
1665         struct wiphy *wiphy;
1666         int         rc;
1667
1668         dev_notice(&pcid->dev,
1669                    "%s Ver. %s\n", DEVICE_FULL_DRV_NAM, DEVICE_VERSION);
1670
1671         dev_notice(&pcid->dev,
1672                    "Copyright (c) 2003 VIA Networking Technologies, Inc.\n");
1673
1674         hw = ieee80211_alloc_hw(sizeof(*priv), &vnt_mac_ops);
1675         if (!hw) {
1676                 dev_err(&pcid->dev, "could not register ieee80211_hw\n");
1677                 return -ENOMEM;
1678         }
1679
1680         priv = hw->priv;
1681         priv->pcid = pcid;
1682
1683         spin_lock_init(&priv->lock);
1684
1685         priv->hw = hw;
1686
1687         SET_IEEE80211_DEV(priv->hw, &pcid->dev);
1688
1689         if (pci_enable_device(pcid)) {
1690                 device_free_info(priv);
1691                 return -ENODEV;
1692         }
1693
1694         dev_dbg(&pcid->dev,
1695                 "Before get pci_info memaddr is %x\n", priv->memaddr);
1696
1697         pci_set_master(pcid);
1698
1699         priv->memaddr = pci_resource_start(pcid, 0);
1700         priv->ioaddr = pci_resource_start(pcid, 1);
1701         priv->PortOffset = ioremap(priv->memaddr & PCI_BASE_ADDRESS_MEM_MASK,
1702                                    256);
1703         if (!priv->PortOffset) {
1704                 dev_err(&pcid->dev, ": Failed to IO remapping ..\n");
1705                 device_free_info(priv);
1706                 return -ENODEV;
1707         }
1708
1709         rc = pci_request_regions(pcid, DEVICE_NAME);
1710         if (rc) {
1711                 dev_err(&pcid->dev, ": Failed to find PCI device\n");
1712                 device_free_info(priv);
1713                 return -ENODEV;
1714         }
1715
1716         if (dma_set_mask(&pcid->dev, DMA_BIT_MASK(32))) {
1717                 dev_err(&pcid->dev, ": Failed to set dma 32 bit mask\n");
1718                 device_free_info(priv);
1719                 return -ENODEV;
1720         }
1721
1722         INIT_WORK(&priv->interrupt_work, vnt_interrupt_work);
1723
1724         /* do reset */
1725         if (!MACbSoftwareReset(priv)) {
1726                 dev_err(&pcid->dev, ": Failed to access MAC hardware..\n");
1727                 device_free_info(priv);
1728                 return -ENODEV;
1729         }
1730         /* initial to reload eeprom */
1731         MACvInitialize(priv);
1732         MACvReadEtherAddress(priv->PortOffset, priv->abyCurrentNetAddr);
1733
1734         /* Get RFType */
1735         priv->byRFType = SROMbyReadEmbedded(priv->PortOffset, EEP_OFS_RFTYPE);
1736         priv->byRFType &= RF_MASK;
1737
1738         dev_dbg(&pcid->dev, "RF Type = %x\n", priv->byRFType);
1739
1740         device_get_options(priv);
1741         device_set_options(priv);
1742
1743         wiphy = priv->hw->wiphy;
1744
1745         wiphy->frag_threshold = FRAG_THRESH_DEF;
1746         wiphy->rts_threshold = RTS_THRESH_DEF;
1747         wiphy->interface_modes = BIT(NL80211_IFTYPE_STATION) |
1748                 BIT(NL80211_IFTYPE_ADHOC) | BIT(NL80211_IFTYPE_AP);
1749
1750         ieee80211_hw_set(priv->hw, TIMING_BEACON_ONLY);
1751         ieee80211_hw_set(priv->hw, SIGNAL_DBM);
1752         ieee80211_hw_set(priv->hw, RX_INCLUDES_FCS);
1753         ieee80211_hw_set(priv->hw, REPORTS_TX_ACK_STATUS);
1754         ieee80211_hw_set(priv->hw, SUPPORTS_PS);
1755
1756         priv->hw->max_signal = 100;
1757
1758         if (vnt_init(priv)) {
1759                 device_free_info(priv);
1760                 return -ENODEV;
1761         }
1762
1763         device_print_info(priv);
1764         pci_set_drvdata(pcid, priv);
1765
1766         return 0;
1767 }
1768
1769 /*------------------------------------------------------------------*/
1770
1771 #ifdef CONFIG_PM
1772 static int vt6655_suspend(struct pci_dev *pcid, pm_message_t state)
1773 {
1774         struct vnt_private *priv = pci_get_drvdata(pcid);
1775         unsigned long flags;
1776
1777         spin_lock_irqsave(&priv->lock, flags);
1778
1779         pci_save_state(pcid);
1780
1781         MACbShutdown(priv);
1782
1783         pci_disable_device(pcid);
1784
1785         spin_unlock_irqrestore(&priv->lock, flags);
1786
1787         pci_set_power_state(pcid, pci_choose_state(pcid, state));
1788
1789         return 0;
1790 }
1791
1792 static int vt6655_resume(struct pci_dev *pcid)
1793 {
1794         pci_set_power_state(pcid, PCI_D0);
1795         pci_enable_wake(pcid, PCI_D0, 0);
1796         pci_restore_state(pcid);
1797
1798         return 0;
1799 }
1800 #endif
1801
1802 MODULE_DEVICE_TABLE(pci, vt6655_pci_id_table);
1803
1804 static struct pci_driver device_driver = {
1805         .name = DEVICE_NAME,
1806         .id_table = vt6655_pci_id_table,
1807         .probe = vt6655_probe,
1808         .remove = vt6655_remove,
1809 #ifdef CONFIG_PM
1810         .suspend = vt6655_suspend,
1811         .resume = vt6655_resume,
1812 #endif
1813 };
1814
1815 module_pci_driver(device_driver);