46def4051a08155e368c1513f43ff45bd912ec37
[openwrt.git] / target / linux / ramips / files / drivers / net / ramips.c
1 /*
2  *   This program is free software; you can redistribute it and/or modify
3  *   it under the terms of the GNU General Public License as published by
4  *   the Free Software Foundation; either version 2 of the License, or
5  *   (at your option) any later version.
6  *
7  *   This program is distributed in the hope that it will be useful,
8  *   but WITHOUT ANY WARRANTY; without even the implied warranty of
9  *   MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
10  *   GNU General Public License for more details.
11  *
12  *   You should have received a copy of the GNU General Public License
13  *   along with this program; if not, write to the Free Software
14  *   Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307, USA.
15  *
16  *   Copyright (C) 2009 John Crispin <blogic@openwrt.org>
17  */
18
19 #include <linux/module.h>
20 #include <linux/version.h>
21 #include <linux/kernel.h>
22 #include <linux/types.h>
23 #include <linux/pci.h>
24 #include <linux/init.h>
25 #include <linux/skbuff.h>
26 #include <linux/if_vlan.h>
27 #include <linux/if_ether.h>
28 #include <asm/uaccess.h>
29 #include <net/sock.h>
30 #include <asm/uaccess.h>
31
32 #include <rt305x.h>
33 #include <rt305x_regs.h>
34 #include <eth.h>
35
36 #define TX_TIMEOUT (20 * HZ / 100)
37 #define MAX_RX_LENGTH   1500
38
39 #ifdef CONFIG_RALINK_RT305X
40 #include "ramips_esw.c"
41 #endif
42
43 static struct net_device * ramips_dev;
44 static void __iomem *ramips_fe_base = 0;
45
46 static inline void
47 ramips_fe_wr(u32 val, unsigned reg)
48 {
49         __raw_writel(val, ramips_fe_base + reg);
50 }
51
52 static inline u32
53 ramips_fe_rr(unsigned reg)
54 {
55         return __raw_readl(ramips_fe_base + reg);
56 }
57
58 static int
59 ramips_alloc_dma(struct net_device *dev)
60 {
61 #define phys_to_bus(a)  (a & 0x1FFFFFFF)
62         struct raeth_priv *priv = (struct raeth_priv*)netdev_priv(dev);
63         int i;
64
65         priv->skb_free_idx = 0;
66
67         /* setup tx ring */
68         priv->tx = pci_alloc_consistent(NULL,
69                 NUM_TX_DESC * sizeof(struct ramips_tx_dma), &priv->phy_tx);
70         for(i = 0; i < NUM_TX_DESC; i++)
71         {
72                 memset(&priv->tx[i], 0, sizeof(struct ramips_tx_dma));
73                 priv->tx[i].txd2 |= TX_DMA_LSO | TX_DMA_DONE;
74                 priv->tx[i].txd4 &= (TX_DMA_QN_MASK | TX_DMA_PN_MASK);
75                 priv->tx[i].txd4 |= TX_DMA_QN(3) | TX_DMA_PN(1);
76         }
77         ramips_fe_wr(phys_to_bus(priv->phy_tx), RAMIPS_TX_BASE_PTR0);
78         ramips_fe_wr(NUM_TX_DESC, RAMIPS_TX_MAX_CNT0);
79         ramips_fe_wr(0, RAMIPS_TX_CTX_IDX0);
80         ramips_fe_wr(RAMIPS_PST_DTX_IDX0, RAMIPS_PDMA_RST_CFG);
81
82         /* setup rx ring */
83         priv->rx = pci_alloc_consistent(NULL,
84                 NUM_RX_DESC * sizeof(struct ramips_rx_dma), &priv->phy_rx);
85         memset(priv->rx, 0, sizeof(struct ramips_rx_dma) * NUM_RX_DESC);
86         for(i = 0; i < NUM_RX_DESC; i++)
87         {
88                 struct sk_buff *new_skb = dev_alloc_skb(MAX_RX_LENGTH + 2);
89                 BUG_ON(!new_skb);
90                 skb_reserve(new_skb, 2);
91                 priv->rx[i].rxd1 =
92                         dma_map_single(NULL, skb_put(new_skb, 2), MAX_RX_LENGTH + 2,
93                                 PCI_DMA_FROMDEVICE);
94                 priv->rx[i].rxd2 |= RX_DMA_LSO;
95                 priv->rx[i].rxd3 = (unsigned int)new_skb;
96         }
97         dma_cache_wback_inv((unsigned long)priv->rx,
98                 NUM_RX_DESC * (sizeof(struct ramips_rx_dma)));
99
100         ramips_fe_wr(phys_to_bus(priv->phy_rx), RAMIPS_RX_BASE_PTR0);
101         ramips_fe_wr(NUM_RX_DESC, RAMIPS_RX_MAX_CNT0);
102         ramips_fe_wr((NUM_RX_DESC - 1), RAMIPS_RX_CALC_IDX0);
103         ramips_fe_wr(RAMIPS_PST_DRX_IDX0, RAMIPS_PDMA_RST_CFG);
104
105         return 0;
106 }
107
108 static int
109 ramips_eth_hard_start_xmit(struct sk_buff* skb, struct net_device *dev)
110 {
111         struct raeth_priv *priv = (struct raeth_priv*)netdev_priv(dev);
112         unsigned long tx;
113         unsigned int tx_next;
114
115 #ifdef CONFIG_RALINK_RT305X
116 #define MIN_PKT_LEN  64
117          if(skb->len < MIN_PKT_LEN)
118          {
119              if(skb_padto(skb, MIN_PKT_LEN))
120                  {
121                          printk(KERN_ERR "ramips_eth: skb_padto failed\n");
122                          kfree_skb(skb);
123                          return 0;
124              }
125              skb_put(skb, MIN_PKT_LEN - skb->len);
126          }
127 #endif
128         dev->trans_start = jiffies;
129         dma_cache_wback_inv((unsigned long)skb->data, skb->len);
130         tx = ramips_fe_rr(RAMIPS_TX_CTX_IDX0);
131         if(tx == NUM_TX_DESC - 1)
132                 tx_next = 0;
133         else
134                 tx_next = tx + 1;
135         if((priv->tx[tx].txd3 == 0) && (priv->tx[tx_next].txd3 == 0))
136         {
137                 if(!(priv->tx[tx].txd2 & TX_DMA_DONE))
138                 {
139                         kfree_skb(skb);
140                         priv->stat.tx_dropped++;
141                         printk(KERN_ERR "%s: dropping\n", dev->name);
142                         return 0;
143                 }
144                 priv->tx[tx].txd1 = virt_to_phys(skb->data);
145                 priv->tx[tx].txd2 &= ~(TX_DMA_PLEN0_MASK | TX_DMA_DONE);
146                 priv->tx[tx].txd2 |= TX_DMA_PLEN0(skb->len);
147                 ramips_fe_wr((tx + 1) % NUM_TX_DESC, RAMIPS_TX_CTX_IDX0);
148                 priv->stat.tx_packets++;
149                 priv->stat.tx_bytes += skb->len;
150                 priv->tx[tx].txd3 = (unsigned int)skb;
151                 ramips_fe_wr((tx + 1) % NUM_TX_DESC, RAMIPS_TX_CTX_IDX0);
152         } else {
153                 priv->stat.tx_dropped++;
154                 kfree_skb(skb);
155         }
156         return 0;
157 }
158
159 static void
160 ramips_eth_rx_hw(unsigned long ptr)
161 {
162         struct net_device *dev = (struct net_device*)ptr;
163         struct raeth_priv *priv = (struct raeth_priv*)netdev_priv(dev);
164         int rx;
165         int max_rx = 16;
166
167         while(max_rx)
168         {
169                 struct sk_buff *rx_skb, *new_skb;
170
171                 rx = (ramips_fe_rr(RAMIPS_RX_CALC_IDX0) + 1) % NUM_RX_DESC;
172                 if(!(priv->rx[rx].rxd2 & RX_DMA_DONE))
173                         break;
174                 max_rx--;
175
176                 rx_skb = (struct sk_buff*)priv->rx[rx].rxd3;
177                 rx_skb->len = RX_DMA_PLEN0(priv->rx[rx].rxd2);
178                 rx_skb->tail = rx_skb->data + rx_skb->len;
179                 rx_skb->dev = dev;
180                 rx_skb->protocol = eth_type_trans(rx_skb, dev);
181                 rx_skb->ip_summed = CHECKSUM_NONE;
182                 priv->stat.rx_packets++;
183                 priv->stat.rx_bytes += rx_skb->len;
184                 netif_rx(rx_skb);
185
186                 new_skb = __dev_alloc_skb(MAX_RX_LENGTH + 2, GFP_DMA | GFP_ATOMIC);
187                 priv->rx[rx].rxd3 = (unsigned int)new_skb;
188                 BUG_ON(!new_skb);
189                 skb_reserve(new_skb, 2);
190                 priv->rx[rx].rxd1 =
191                         dma_map_single(NULL, new_skb->data, MAX_RX_LENGTH + 2,
192                         PCI_DMA_FROMDEVICE);
193                 priv->rx[rx].rxd2 &= ~RX_DMA_DONE;
194                 dma_cache_wback_inv((unsigned long)&priv->rx[rx],
195                         sizeof(struct ramips_rx_dma));
196                 ramips_fe_wr(rx, RAMIPS_RX_CALC_IDX0);
197         }
198         if(max_rx == 0)
199                 tasklet_schedule(&priv->rx_tasklet);
200         else
201                 ramips_fe_wr(ramips_fe_rr(RAMIPS_FE_INT_ENABLE) | RAMIPS_RX_DLY_INT,
202                         RAMIPS_FE_INT_ENABLE);
203 }
204
205 static void
206 ramips_eth_tx_housekeeping(unsigned long ptr)
207 {
208         struct net_device *dev = (struct net_device*)ptr;
209         struct raeth_priv *priv = (struct raeth_priv*)netdev_priv(dev);
210
211         while((priv->tx[priv->skb_free_idx].txd2 & TX_DMA_DONE) &&
212                 (priv->tx[priv->skb_free_idx].txd3))
213         {
214                 dev_kfree_skb_irq((struct sk_buff*)priv->tx[priv->skb_free_idx].txd3);
215                 priv->tx[priv->skb_free_idx].txd3 = 0;
216                 priv->skb_free_idx++;
217                 if(priv->skb_free_idx >= NUM_TX_DESC)
218                         priv->skb_free_idx = 0;
219         }
220         ramips_fe_wr(ramips_fe_rr(RAMIPS_FE_INT_ENABLE) | RAMIPS_TX_DLY_INT,
221                 RAMIPS_FE_INT_ENABLE);
222 }
223
224 static struct net_device_stats*
225 ramips_eth_get_stats(struct net_device *dev)
226 {
227         return &((struct raeth_priv*)netdev_priv(dev))->stat;
228 }
229
230 static int
231 ramips_eth_set_mac_addr(struct net_device *dev, void *priv)
232 {
233         unsigned char *mac = (unsigned char*)priv;
234
235         if(netif_running(dev))
236                 return -EBUSY;
237         memcpy(dev->dev_addr, ((struct sockaddr*)priv)->sa_data, dev->addr_len);
238         ramips_fe_wr((mac[0] << 8) | mac[1], RAMIPS_GDMA1_MAC_ADRH);
239         ramips_fe_wr(RAMIPS_GDMA1_MAC_ADRL,
240                 (mac[2] << 24) | (mac[3] << 16) | (mac[4] << 8) | mac[5]);
241         return 0;
242 }
243
244 static void
245 ramips_eth_timeout(struct net_device *dev)
246 {
247         tasklet_schedule(
248                 &((struct raeth_priv*)netdev_priv(dev))->tx_housekeeping_tasklet);
249 }
250
251 static irqreturn_t
252 ramips_eth_irq(int irq, void *dev)
253 {
254         struct raeth_priv *priv = (struct raeth_priv*)netdev_priv(dev);
255         unsigned long fe_int = ramips_fe_rr(RAMIPS_FE_INT_STATUS);
256
257         if(fe_int & RAMIPS_RX_DLY_INT)
258         {
259                 ramips_fe_wr(ramips_fe_rr(RAMIPS_FE_INT_ENABLE) & ~(RAMIPS_RX_DLY_INT),
260                         RAMIPS_FE_INT_ENABLE);
261                 tasklet_schedule(&priv->rx_tasklet);
262         }
263         if(fe_int & RAMIPS_TX_DLY_INT)
264                 tasklet_schedule(&priv->tx_housekeeping_tasklet);
265         ramips_fe_wr(0xFFFFFFFF, RAMIPS_FE_INT_STATUS);
266         return IRQ_HANDLED;
267 }
268
269 static int
270 ramips_eth_open(struct net_device *dev)
271 {
272         struct raeth_priv *priv = (struct raeth_priv*)netdev_priv(dev);
273
274         ramips_alloc_dma(dev);
275         ramips_fe_wr((ramips_fe_rr(RAMIPS_PDMA_GLO_CFG) & 0xff) |
276                 (RAMIPS_TX_WB_DDONE | RAMIPS_RX_DMA_EN |
277                 RAMIPS_TX_DMA_EN | RAMIPS_PDMA_SIZE_4DWORDS),
278                 RAMIPS_PDMA_GLO_CFG);
279         ramips_fe_wr((ramips_fe_rr(RAMIPS_FE_GLO_CFG) &
280                 ~(RAMIPS_US_CYC_CNT_MASK << RAMIPS_US_CYC_CNT_SHIFT)) |
281                 ((rt305x_sys_freq / RAMIPS_US_CYC_CNT_DIVISOR) << RAMIPS_US_CYC_CNT_SHIFT),
282                 RAMIPS_FE_GLO_CFG);
283         request_irq(dev->irq, ramips_eth_irq, IRQF_DISABLED, dev->name, dev);
284         tasklet_init(&priv->tx_housekeeping_tasklet, ramips_eth_tx_housekeeping,
285                 (unsigned long)dev);
286         tasklet_init(&priv->rx_tasklet, ramips_eth_rx_hw, (unsigned long)dev);
287         ramips_fe_wr(RAMIPS_DELAY_INIT, RAMIPS_DLY_INT_CFG);
288         ramips_fe_wr(RAMIPS_TX_DLY_INT | RAMIPS_RX_DLY_INT, RAMIPS_FE_INT_ENABLE);
289         ramips_fe_wr(ramips_fe_rr(RAMIPS_GDMA1_FWD_CFG) &
290                 ~(RAMIPS_GDM1_ICS_EN | RAMIPS_GDM1_TCS_EN | RAMIPS_GDM1_UCS_EN | 0xffff),
291                 RAMIPS_GDMA1_FWD_CFG);
292         ramips_fe_wr(ramips_fe_rr(RAMIPS_CDMA_CSG_CFG) &
293                 ~(RAMIPS_ICS_GEN_EN | RAMIPS_TCS_GEN_EN | RAMIPS_UCS_GEN_EN),
294                 RAMIPS_CDMA_CSG_CFG);
295         ramips_fe_wr(RAMIPS_PSE_FQFC_CFG_INIT, RAMIPS_PSE_FQ_CFG);
296         ramips_fe_wr(1, RAMIPS_FE_RST_GL);
297         ramips_fe_wr(0, RAMIPS_FE_RST_GL);
298         netif_start_queue(dev);
299         return 0;
300 }
301
302 static int
303 ramips_eth_stop(struct net_device *dev)
304 {
305         struct raeth_priv *priv = (struct raeth_priv*)netdev_priv(dev);
306
307         ramips_fe_wr(RAMIPS_PDMA_GLO_CFG, ramips_fe_rr(RAMIPS_PDMA_GLO_CFG) &
308                 ~(RAMIPS_TX_WB_DDONE | RAMIPS_RX_DMA_EN | RAMIPS_TX_DMA_EN));
309         free_irq(dev->irq, dev);
310         netif_stop_queue(dev);
311         tasklet_kill(&priv->tx_housekeeping_tasklet);
312         tasklet_kill(&priv->rx_tasklet);
313         pci_free_consistent(NULL, NUM_TX_DESC * sizeof(struct ramips_tx_dma),
314                 priv->tx, priv->phy_tx);
315         pci_free_consistent(NULL, NUM_RX_DESC * sizeof(struct ramips_rx_dma),
316                 priv->rx, priv->phy_rx);
317         printk(KERN_INFO "ramips_eth: stopped\n");
318         return 0;
319 }
320
321 int __init
322 ramips_eth_probe(struct net_device *dev)
323 {
324         struct sockaddr addr;
325         unsigned char mac_addr01234[5] = {0x00, 0x0C, 0x43, 0x28, 0x80};
326
327         /* reset frame engine */
328         rt305x_sysc_wr(RAMIPS_FE_RESET_BIT, RAMIPS_FE_RESET);
329         rt305x_sysc_wr(0, RAMIPS_FE_RESET);
330
331         net_srandom(jiffies);
332         memcpy(addr.sa_data, mac_addr01234, 5);
333         addr.sa_data[5] = net_random()&0xFF;
334         ramips_eth_set_mac_addr(dev, &addr);
335
336         ether_setup(dev);
337         dev->open = ramips_eth_open;
338         dev->stop = ramips_eth_stop;
339         dev->hard_start_xmit = ramips_eth_hard_start_xmit;
340         dev->get_stats = ramips_eth_get_stats;
341         dev->set_mac_address = ramips_eth_set_mac_addr;
342         dev->mtu = MAX_RX_LENGTH;
343         dev->tx_timeout = ramips_eth_timeout;
344         dev->watchdog_timeo = TX_TIMEOUT;
345         return 0;
346 }
347
348 int __init
349 ramips_eth_init(void)
350 {
351         ramips_fe_base = ioremap_nocache(RT305X_FE_BASE, PAGE_SIZE);
352         if(!ramips_fe_base)
353                 return -ENOMEM;
354         ramips_dev = alloc_etherdev(sizeof(struct raeth_priv));
355         if(!ramips_dev)
356                 return -ENOMEM;
357         strcpy(ramips_dev->name, "eth%d");
358         ramips_dev->irq = RT305X_CPU_IRQ_FE;
359         ramips_dev->addr_len = ETH_ALEN;
360         ramips_dev->base_addr = (unsigned long)ramips_fe_base;
361         ramips_dev->init = ramips_eth_probe;
362         if(register_netdev(ramips_dev))
363         {
364                 printk(KERN_ERR "ramips_eth: error bringing up device\n");
365                 return -ENXIO;
366         }
367 #ifdef CONFIG_RALINK_RT305X
368         rt305x_esw_init();
369 #endif
370         printk(KERN_INFO "ramips_eth: loaded\n");
371         return 0;
372 }
373
374 void
375 ramips_eth_cleanup(void)
376 {
377         unregister_netdev(ramips_dev);
378         free_netdev(ramips_dev);
379         printk(KERN_INFO "ramips_eth: unloaded");
380 }
381
382 module_init(ramips_eth_init);
383 module_exit(ramips_eth_cleanup);
384
385 MODULE_LICENSE("GPL");
386 MODULE_AUTHOR("John Crispin <blogic@openwrt.org>");
387 MODULE_DESCRIPTION("ethernet driver for ramips boards");