common: Drop linux/delay.h from common header
[oweals/u-boot.git] / drivers / net / ti / keystone_net.c
1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3  * Ethernet driver for TI K2HK EVM.
4  *
5  * (C) Copyright 2012-2014
6  *     Texas Instruments Incorporated, <www.ti.com>
7  */
8 #include <common.h>
9 #include <command.h>
10 #include <console.h>
11 #include <linux/delay.h>
12
13 #include <dm.h>
14 #include <dm/lists.h>
15
16 #include <net.h>
17 #include <phy.h>
18 #include <errno.h>
19 #include <miiphy.h>
20 #include <malloc.h>
21 #include <asm/ti-common/keystone_nav.h>
22 #include <asm/ti-common/keystone_net.h>
23 #include <asm/ti-common/keystone_serdes.h>
24 #include <asm/arch/psc_defs.h>
25 #include <linux/libfdt.h>
26
27 #include "cpsw_mdio.h"
28
29 DECLARE_GLOBAL_DATA_PTR;
30
31 #ifdef KEYSTONE2_EMAC_GIG_ENABLE
32 #define emac_gigabit_enable(x)  keystone2_eth_gigabit_enable(x)
33 #else
34 #define emac_gigabit_enable(x)  /* no gigabit to enable */
35 #endif
36
37 #define RX_BUFF_NUMS    24
38 #define RX_BUFF_LEN     1520
39 #define MAX_SIZE_STREAM_BUFFER RX_BUFF_LEN
40 #define SGMII_ANEG_TIMEOUT              4000
41
42 static u8 rx_buffs[RX_BUFF_NUMS * RX_BUFF_LEN] __aligned(16);
43
44 enum link_type {
45         LINK_TYPE_SGMII_MAC_TO_MAC_AUTO         = 0,
46         LINK_TYPE_SGMII_MAC_TO_PHY_MODE         = 1,
47         LINK_TYPE_SGMII_MAC_TO_MAC_FORCED_MODE  = 2,
48         LINK_TYPE_SGMII_MAC_TO_FIBRE_MODE       = 3,
49         LINK_TYPE_SGMII_MAC_TO_PHY_NO_MDIO_MODE = 4,
50         LINK_TYPE_RGMII_LINK_MAC_PHY            = 5,
51         LINK_TYPE_RGMII_LINK_MAC_MAC_FORCED     = 6,
52         LINK_TYPE_RGMII_LINK_MAC_PHY_NO_MDIO    = 7,
53         LINK_TYPE_10G_MAC_TO_PHY_MODE           = 10,
54         LINK_TYPE_10G_MAC_TO_MAC_FORCED_MODE    = 11,
55 };
56
57 #define mac_hi(mac)     (((mac)[0] << 0) | ((mac)[1] << 8) |    \
58                          ((mac)[2] << 16) | ((mac)[3] << 24))
59 #define mac_lo(mac)     (((mac)[4] << 0) | ((mac)[5] << 8))
60
61 #ifdef CONFIG_KSNET_NETCP_V1_0
62
63 #define EMAC_EMACSW_BASE_OFS            0x90800
64 #define EMAC_EMACSW_PORT_BASE_OFS       (EMAC_EMACSW_BASE_OFS + 0x60)
65
66 /* CPSW Switch slave registers */
67 #define CPGMACSL_REG_SA_LO              0x10
68 #define CPGMACSL_REG_SA_HI              0x14
69
70 #define DEVICE_EMACSW_BASE(base, x)     ((base) + EMAC_EMACSW_PORT_BASE_OFS +  \
71                                          (x) * 0x30)
72
73 #elif defined(CONFIG_KSNET_NETCP_V1_5)
74
75 #define EMAC_EMACSW_PORT_BASE_OFS       0x222000
76
77 /* CPSW Switch slave registers */
78 #define CPGMACSL_REG_SA_LO              0x308
79 #define CPGMACSL_REG_SA_HI              0x30c
80
81 #define DEVICE_EMACSW_BASE(base, x)     ((base) + EMAC_EMACSW_PORT_BASE_OFS +  \
82                                          (x) * 0x1000)
83
84 #endif
85
86
87 struct ks2_eth_priv {
88         struct udevice                  *dev;
89         struct phy_device               *phydev;
90         struct mii_dev                  *mdio_bus;
91         int                             phy_addr;
92         phy_interface_t                 phy_if;
93         int                             phy_of_handle;
94         int                             sgmii_link_type;
95         void                            *mdio_base;
96         struct rx_buff_desc             net_rx_buffs;
97         struct pktdma_cfg               *netcp_pktdma;
98         void                            *hd;
99         int                             slave_port;
100         enum link_type                  link_type;
101         bool                            emac_open;
102         bool                            has_mdio;
103 };
104
105 static void  __attribute__((unused))
106         keystone2_eth_gigabit_enable(struct udevice *dev)
107 {
108         struct ks2_eth_priv *priv = dev_get_priv(dev);
109
110         /*
111          * Check if link detected is giga-bit
112          * If Gigabit mode detected, enable gigbit in MAC
113          */
114         if (priv->has_mdio) {
115                 if (priv->phydev->speed != 1000)
116                         return;
117         }
118
119         writel(readl(DEVICE_EMACSL_BASE(priv->slave_port - 1) +
120                      CPGMACSL_REG_CTL) |
121                EMAC_MACCONTROL_GIGFORCE | EMAC_MACCONTROL_GIGABIT_ENABLE,
122                DEVICE_EMACSL_BASE(priv->slave_port - 1) + CPGMACSL_REG_CTL);
123 }
124
125 #ifdef CONFIG_SOC_K2G
126 int keystone_rgmii_config(struct phy_device *phy_dev)
127 {
128         unsigned int i, status;
129
130         i = 0;
131         do {
132                 if (i > SGMII_ANEG_TIMEOUT) {
133                         puts(" TIMEOUT !\n");
134                         phy_dev->link = 0;
135                         return 0;
136                 }
137
138                 if (ctrlc()) {
139                         puts("user interrupt!\n");
140                         phy_dev->link = 0;
141                         return -EINTR;
142                 }
143
144                 if ((i++ % 500) == 0)
145                         printf(".");
146
147                 udelay(1000);   /* 1 ms */
148                 status = readl(RGMII_STATUS_REG);
149         } while (!(status & RGMII_REG_STATUS_LINK));
150
151         puts(" done\n");
152
153         return 0;
154 }
155 #else
156 int keystone_sgmii_config(struct phy_device *phy_dev, int port, int interface)
157 {
158         unsigned int i, status, mask;
159         unsigned int mr_adv_ability, control;
160
161         switch (interface) {
162         case SGMII_LINK_MAC_MAC_AUTONEG:
163                 mr_adv_ability  = (SGMII_REG_MR_ADV_ENABLE |
164                                    SGMII_REG_MR_ADV_LINK |
165                                    SGMII_REG_MR_ADV_FULL_DUPLEX |
166                                    SGMII_REG_MR_ADV_GIG_MODE);
167                 control         = (SGMII_REG_CONTROL_MASTER |
168                                    SGMII_REG_CONTROL_AUTONEG);
169
170                 break;
171         case SGMII_LINK_MAC_PHY:
172         case SGMII_LINK_MAC_PHY_FORCED:
173                 mr_adv_ability  = SGMII_REG_MR_ADV_ENABLE;
174                 control         = SGMII_REG_CONTROL_AUTONEG;
175
176                 break;
177         case SGMII_LINK_MAC_MAC_FORCED:
178                 mr_adv_ability  = (SGMII_REG_MR_ADV_ENABLE |
179                                    SGMII_REG_MR_ADV_LINK |
180                                    SGMII_REG_MR_ADV_FULL_DUPLEX |
181                                    SGMII_REG_MR_ADV_GIG_MODE);
182                 control         = SGMII_REG_CONTROL_MASTER;
183
184                 break;
185         case SGMII_LINK_MAC_FIBER:
186                 mr_adv_ability  = 0x20;
187                 control         = SGMII_REG_CONTROL_AUTONEG;
188
189                 break;
190         default:
191                 mr_adv_ability  = SGMII_REG_MR_ADV_ENABLE;
192                 control         = SGMII_REG_CONTROL_AUTONEG;
193         }
194
195         __raw_writel(0, SGMII_CTL_REG(port));
196
197         /*
198          * Wait for the SerDes pll to lock,
199          * but don't trap if lock is never read
200          */
201         for (i = 0; i < 1000; i++)  {
202                 udelay(2000);
203                 status = __raw_readl(SGMII_STATUS_REG(port));
204                 if ((status & SGMII_REG_STATUS_LOCK) != 0)
205                         break;
206         }
207
208         __raw_writel(mr_adv_ability, SGMII_MRADV_REG(port));
209         __raw_writel(control, SGMII_CTL_REG(port));
210
211
212         mask = SGMII_REG_STATUS_LINK;
213
214         if (control & SGMII_REG_CONTROL_AUTONEG)
215                 mask |= SGMII_REG_STATUS_AUTONEG;
216
217         status = __raw_readl(SGMII_STATUS_REG(port));
218         if ((status & mask) == mask)
219                 return 0;
220
221         printf("\n%s Waiting for SGMII auto negotiation to complete",
222                phy_dev->dev->name);
223         while ((status & mask) != mask) {
224                 /*
225                  * Timeout reached ?
226                  */
227                 if (i > SGMII_ANEG_TIMEOUT) {
228                         puts(" TIMEOUT !\n");
229                         phy_dev->link = 0;
230                         return 0;
231                 }
232
233                 if (ctrlc()) {
234                         puts("user interrupt!\n");
235                         phy_dev->link = 0;
236                         return -EINTR;
237                 }
238
239                 if ((i++ % 500) == 0)
240                         printf(".");
241
242                 udelay(1000);   /* 1 ms */
243                 status = __raw_readl(SGMII_STATUS_REG(port));
244         }
245         puts(" done\n");
246
247         return 0;
248 }
249 #endif
250
251 int mac_sl_reset(u32 port)
252 {
253         u32 i, v;
254
255         if (port >= DEVICE_N_GMACSL_PORTS)
256                 return GMACSL_RET_INVALID_PORT;
257
258         /* Set the soft reset bit */
259         writel(CPGMAC_REG_RESET_VAL_RESET,
260                DEVICE_EMACSL_BASE(port) + CPGMACSL_REG_RESET);
261
262         /* Wait for the bit to clear */
263         for (i = 0; i < DEVICE_EMACSL_RESET_POLL_COUNT; i++) {
264                 v = readl(DEVICE_EMACSL_BASE(port) + CPGMACSL_REG_RESET);
265                 if ((v & CPGMAC_REG_RESET_VAL_RESET_MASK) !=
266                     CPGMAC_REG_RESET_VAL_RESET)
267                         return GMACSL_RET_OK;
268         }
269
270         /* Timeout on the reset */
271         return GMACSL_RET_WARN_RESET_INCOMPLETE;
272 }
273
274 int mac_sl_config(u_int16_t port, struct mac_sl_cfg *cfg)
275 {
276         u32 v, i;
277         int ret = GMACSL_RET_OK;
278
279         if (port >= DEVICE_N_GMACSL_PORTS)
280                 return GMACSL_RET_INVALID_PORT;
281
282         if (cfg->max_rx_len > CPGMAC_REG_MAXLEN_LEN) {
283                 cfg->max_rx_len = CPGMAC_REG_MAXLEN_LEN;
284                 ret = GMACSL_RET_WARN_MAXLEN_TOO_BIG;
285         }
286
287         /* Must wait if the device is undergoing reset */
288         for (i = 0; i < DEVICE_EMACSL_RESET_POLL_COUNT; i++) {
289                 v = readl(DEVICE_EMACSL_BASE(port) + CPGMACSL_REG_RESET);
290                 if ((v & CPGMAC_REG_RESET_VAL_RESET_MASK) !=
291                     CPGMAC_REG_RESET_VAL_RESET)
292                         break;
293         }
294
295         if (i == DEVICE_EMACSL_RESET_POLL_COUNT)
296                 return GMACSL_RET_CONFIG_FAIL_RESET_ACTIVE;
297
298         writel(cfg->max_rx_len, DEVICE_EMACSL_BASE(port) + CPGMACSL_REG_MAXLEN);
299         writel(cfg->ctl, DEVICE_EMACSL_BASE(port) + CPGMACSL_REG_CTL);
300
301 #ifndef CONFIG_SOC_K2HK
302         /* Map RX packet flow priority to 0 */
303         writel(0, DEVICE_EMACSL_BASE(port) + CPGMACSL_REG_RX_PRI_MAP);
304 #endif
305
306         return ret;
307 }
308
309 int ethss_config(u32 ctl, u32 max_pkt_size)
310 {
311         u32 i;
312
313         /* Max length register */
314         writel(max_pkt_size, DEVICE_CPSW_BASE + CPSW_REG_MAXLEN);
315
316         /* Control register */
317         writel(ctl, DEVICE_CPSW_BASE + CPSW_REG_CTL);
318
319         /* All statistics enabled by default */
320         writel(CPSW_REG_VAL_STAT_ENABLE_ALL,
321                DEVICE_CPSW_BASE + CPSW_REG_STAT_PORT_EN);
322
323         /* Reset and enable the ALE */
324         writel(CPSW_REG_VAL_ALE_CTL_RESET_AND_ENABLE |
325                CPSW_REG_VAL_ALE_CTL_BYPASS,
326                DEVICE_CPSW_BASE + CPSW_REG_ALE_CONTROL);
327
328         /* All ports put into forward mode */
329         for (i = 0; i < DEVICE_CPSW_NUM_PORTS; i++)
330                 writel(CPSW_REG_VAL_PORTCTL_FORWARD_MODE,
331                        DEVICE_CPSW_BASE + CPSW_REG_ALE_PORTCTL(i));
332
333         return 0;
334 }
335
336 int ethss_start(void)
337 {
338         int i;
339         struct mac_sl_cfg cfg;
340
341         cfg.max_rx_len  = MAX_SIZE_STREAM_BUFFER;
342         cfg.ctl         = GMACSL_ENABLE | GMACSL_RX_ENABLE_EXT_CTL;
343
344         for (i = 0; i < DEVICE_N_GMACSL_PORTS; i++) {
345                 mac_sl_reset(i);
346                 mac_sl_config(i, &cfg);
347         }
348
349         return 0;
350 }
351
352 int ethss_stop(void)
353 {
354         int i;
355
356         for (i = 0; i < DEVICE_N_GMACSL_PORTS; i++)
357                 mac_sl_reset(i);
358
359         return 0;
360 }
361
362 struct ks2_serdes ks2_serdes_sgmii_156p25mhz = {
363         .clk = SERDES_CLOCK_156P25M,
364         .rate = SERDES_RATE_5G,
365         .rate_mode = SERDES_QUARTER_RATE,
366         .intf = SERDES_PHY_SGMII,
367         .loopback = 0,
368 };
369
370 #ifndef CONFIG_SOC_K2G
371 static void keystone2_net_serdes_setup(void)
372 {
373         ks2_serdes_init(CONFIG_KSNET_SERDES_SGMII_BASE,
374                         &ks2_serdes_sgmii_156p25mhz,
375                         CONFIG_KSNET_SERDES_LANES_PER_SGMII);
376
377 #if defined(CONFIG_SOC_K2E) || defined(CONFIG_SOC_K2L)
378         ks2_serdes_init(CONFIG_KSNET_SERDES_SGMII2_BASE,
379                         &ks2_serdes_sgmii_156p25mhz,
380                         CONFIG_KSNET_SERDES_LANES_PER_SGMII);
381 #endif
382
383         /* wait till setup */
384         udelay(5000);
385 }
386 #endif
387
388 static int ks2_eth_start(struct udevice *dev)
389 {
390         struct ks2_eth_priv *priv = dev_get_priv(dev);
391
392 #ifdef CONFIG_SOC_K2G
393         keystone_rgmii_config(priv->phydev);
394 #else
395         keystone_sgmii_config(priv->phydev, priv->slave_port - 1,
396                               priv->sgmii_link_type);
397 #endif
398
399         udelay(10000);
400
401         /* On chip switch configuration */
402         ethss_config(target_get_switch_ctl(), SWITCH_MAX_PKT_SIZE);
403
404         qm_init();
405
406         if (ksnav_init(priv->netcp_pktdma, &priv->net_rx_buffs)) {
407                 pr_err("ksnav_init failed\n");
408                 goto err_knav_init;
409         }
410
411         /*
412          * Streaming switch configuration. If not present this
413          * statement is defined to void in target.h.
414          * If present this is usually defined to a series of register writes
415          */
416         hw_config_streaming_switch();
417
418         if (priv->has_mdio) {
419                 phy_startup(priv->phydev);
420                 if (priv->phydev->link == 0) {
421                         pr_err("phy startup failed\n");
422                         goto err_phy_start;
423                 }
424         }
425
426         emac_gigabit_enable(dev);
427
428         ethss_start();
429
430         priv->emac_open = true;
431
432         return 0;
433
434 err_phy_start:
435         ksnav_close(priv->netcp_pktdma);
436 err_knav_init:
437         qm_close();
438
439         return -EFAULT;
440 }
441
442 static int ks2_eth_send(struct udevice *dev, void *packet, int length)
443 {
444         struct ks2_eth_priv *priv = dev_get_priv(dev);
445
446         genphy_update_link(priv->phydev);
447         if (priv->phydev->link == 0)
448                 return -1;
449
450         if (length < EMAC_MIN_ETHERNET_PKT_SIZE)
451                 length = EMAC_MIN_ETHERNET_PKT_SIZE;
452
453         return ksnav_send(priv->netcp_pktdma, (u32 *)packet,
454                           length, (priv->slave_port) << 16);
455 }
456
457 static int ks2_eth_recv(struct udevice *dev, int flags, uchar **packetp)
458 {
459         struct ks2_eth_priv *priv = dev_get_priv(dev);
460         int  pkt_size;
461         u32 *pkt = NULL;
462
463         priv->hd = ksnav_recv(priv->netcp_pktdma, &pkt, &pkt_size);
464         if (priv->hd == NULL)
465                 return -EAGAIN;
466
467         *packetp = (uchar *)pkt;
468
469         return pkt_size;
470 }
471
472 static int ks2_eth_free_pkt(struct udevice *dev, uchar *packet,
473                                    int length)
474 {
475         struct ks2_eth_priv *priv = dev_get_priv(dev);
476
477         ksnav_release_rxhd(priv->netcp_pktdma, priv->hd);
478
479         return 0;
480 }
481
482 static void ks2_eth_stop(struct udevice *dev)
483 {
484         struct ks2_eth_priv *priv = dev_get_priv(dev);
485
486         if (!priv->emac_open)
487                 return;
488         ethss_stop();
489
490         ksnav_close(priv->netcp_pktdma);
491         qm_close();
492         phy_shutdown(priv->phydev);
493         priv->emac_open = false;
494 }
495
496 int ks2_eth_read_rom_hwaddr(struct udevice *dev)
497 {
498         struct ks2_eth_priv *priv = dev_get_priv(dev);
499         struct eth_pdata *pdata = dev_get_platdata(dev);
500         u32 maca = 0;
501         u32 macb = 0;
502
503         /* Read the e-fuse mac address */
504         if (priv->slave_port == 1) {
505                 maca = __raw_readl(MAC_ID_BASE_ADDR);
506                 macb = __raw_readl(MAC_ID_BASE_ADDR + 4);
507         }
508
509         pdata->enetaddr[0] = (macb >>  8) & 0xff;
510         pdata->enetaddr[1] = (macb >>  0) & 0xff;
511         pdata->enetaddr[2] = (maca >> 24) & 0xff;
512         pdata->enetaddr[3] = (maca >> 16) & 0xff;
513         pdata->enetaddr[4] = (maca >>  8) & 0xff;
514         pdata->enetaddr[5] = (maca >>  0) & 0xff;
515
516         return 0;
517 }
518
519 int ks2_eth_write_hwaddr(struct udevice *dev)
520 {
521         struct ks2_eth_priv *priv = dev_get_priv(dev);
522         struct eth_pdata *pdata = dev_get_platdata(dev);
523
524         writel(mac_hi(pdata->enetaddr),
525                DEVICE_EMACSW_BASE(pdata->iobase, priv->slave_port - 1) +
526                                   CPGMACSL_REG_SA_HI);
527         writel(mac_lo(pdata->enetaddr),
528                DEVICE_EMACSW_BASE(pdata->iobase, priv->slave_port - 1) +
529                                   CPGMACSL_REG_SA_LO);
530
531         return 0;
532 }
533
534 static int ks2_eth_probe(struct udevice *dev)
535 {
536         struct ks2_eth_priv *priv = dev_get_priv(dev);
537         struct mii_dev *mdio_bus;
538
539         priv->dev = dev;
540         priv->emac_open = false;
541
542         /* These clock enables has to be moved to common location */
543         if (cpu_is_k2g())
544                 writel(KS2_ETHERNET_RGMII, KS2_ETHERNET_CFG);
545
546         /* By default, select PA PLL clock as PA clock source */
547 #ifndef CONFIG_SOC_K2G
548         if (psc_enable_module(KS2_LPSC_PA))
549                 return -EACCES;
550 #endif
551         if (psc_enable_module(KS2_LPSC_CPGMAC))
552                 return -EACCES;
553         if (psc_enable_module(KS2_LPSC_CRYPTO))
554                 return -EACCES;
555
556         if (cpu_is_k2e() || cpu_is_k2l())
557                 pll_pa_clk_sel();
558
559         priv->net_rx_buffs.buff_ptr = rx_buffs;
560         priv->net_rx_buffs.num_buffs = RX_BUFF_NUMS;
561         priv->net_rx_buffs.buff_len = RX_BUFF_LEN;
562
563         if (priv->slave_port == 1) {
564 #ifndef CONFIG_SOC_K2G
565                 keystone2_net_serdes_setup();
566 #endif
567                 /*
568                  * Register MDIO bus for slave 0 only, other slave have
569                  * to re-use the same
570                  */
571                 mdio_bus = cpsw_mdio_init("ethernet-mdio",
572                                           (u32)priv->mdio_base,
573                                           EMAC_MDIO_CLOCK_FREQ,
574                                           EMAC_MDIO_BUS_FREQ);
575                 if (!mdio_bus) {
576                         pr_err("MDIO alloc failed\n");
577                         return -ENOMEM;
578                 }
579                 priv->mdio_bus = mdio_bus;
580         } else {
581                 /* Get the MDIO bus from slave 0 device */
582                 struct ks2_eth_priv *parent_priv;
583
584                 parent_priv = dev_get_priv(dev->parent);
585                 priv->mdio_bus = parent_priv->mdio_bus;
586                 priv->mdio_base = parent_priv->mdio_base;
587         }
588
589         priv->netcp_pktdma = &netcp_pktdma;
590
591         if (priv->has_mdio) {
592                 priv->phydev = phy_connect(priv->mdio_bus, priv->phy_addr,
593                                            dev, priv->phy_if);
594 #ifdef CONFIG_DM_ETH
595         if (priv->phy_of_handle)
596                 priv->phydev->node = offset_to_ofnode(priv->phy_of_handle);
597 #endif
598                 phy_config(priv->phydev);
599         }
600
601         return 0;
602 }
603
604 int ks2_eth_remove(struct udevice *dev)
605 {
606         struct ks2_eth_priv *priv = dev_get_priv(dev);
607
608         cpsw_mdio_free(priv->mdio_bus);
609
610         return 0;
611 }
612
613 static const struct eth_ops ks2_eth_ops = {
614         .start                  = ks2_eth_start,
615         .send                   = ks2_eth_send,
616         .recv                   = ks2_eth_recv,
617         .free_pkt               = ks2_eth_free_pkt,
618         .stop                   = ks2_eth_stop,
619         .read_rom_hwaddr        = ks2_eth_read_rom_hwaddr,
620         .write_hwaddr           = ks2_eth_write_hwaddr,
621 };
622
623 static int ks2_eth_bind_slaves(struct udevice *dev, int gbe, int *gbe_0)
624 {
625         const void *fdt = gd->fdt_blob;
626         struct udevice *sl_dev;
627         int interfaces;
628         int sec_slave;
629         int slave;
630         int ret;
631         char *slave_name;
632
633         interfaces = fdt_subnode_offset(fdt, gbe, "interfaces");
634         fdt_for_each_subnode(slave, fdt, interfaces) {
635                 int slave_no;
636
637                 slave_no = fdtdec_get_int(fdt, slave, "slave-port", -ENOENT);
638                 if (slave_no == -ENOENT)
639                         continue;
640
641                 if (slave_no == 0) {
642                         /* This is the current eth device */
643                         *gbe_0 = slave;
644                 } else {
645                         /* Slave devices to be registered */
646                         slave_name = malloc(20);
647                         snprintf(slave_name, 20, "netcp@slave-%d", slave_no);
648                         ret = device_bind_driver_to_node(dev, "eth_ks2_sl",
649                                         slave_name, offset_to_ofnode(slave),
650                                         &sl_dev);
651                         if (ret) {
652                                 pr_err("ks2_net - not able to bind slave interfaces\n");
653                                 return ret;
654                         }
655                 }
656         }
657
658         sec_slave = fdt_subnode_offset(fdt, gbe, "secondary-slave-ports");
659         fdt_for_each_subnode(slave, fdt, sec_slave) {
660                 int slave_no;
661
662                 slave_no = fdtdec_get_int(fdt, slave, "slave-port", -ENOENT);
663                 if (slave_no == -ENOENT)
664                         continue;
665
666                 /* Slave devices to be registered */
667                 slave_name = malloc(20);
668                 snprintf(slave_name, 20, "netcp@slave-%d", slave_no);
669                 ret = device_bind_driver_to_node(dev, "eth_ks2_sl", slave_name,
670                                         offset_to_ofnode(slave), &sl_dev);
671                 if (ret) {
672                         pr_err("ks2_net - not able to bind slave interfaces\n");
673                         return ret;
674                 }
675         }
676
677         return 0;
678 }
679
680 static int ks2_eth_parse_slave_interface(int netcp, int slave,
681                                          struct ks2_eth_priv *priv,
682                                          struct eth_pdata *pdata)
683 {
684         const void *fdt = gd->fdt_blob;
685         int mdio;
686         int phy;
687         int dma_count;
688         u32 dma_channel[8];
689         const char *phy_mode;
690
691         priv->slave_port = fdtdec_get_int(fdt, slave, "slave-port", -1);
692         priv->net_rx_buffs.rx_flow = priv->slave_port * 8;
693
694         /* U-Boot slave port number starts with 1 instead of 0 */
695         priv->slave_port += 1;
696
697         dma_count = fdtdec_get_int_array_count(fdt, netcp,
698                                                "ti,navigator-dmas",
699                                                dma_channel, 8);
700
701         if (dma_count > (2 * priv->slave_port)) {
702                 int dma_idx;
703
704                 dma_idx = priv->slave_port * 2 - 1;
705                 priv->net_rx_buffs.rx_flow = dma_channel[dma_idx];
706         }
707
708         priv->link_type = fdtdec_get_int(fdt, slave, "link-interface", -1);
709
710         phy = fdtdec_lookup_phandle(fdt, slave, "phy-handle");
711
712         if (phy >= 0) {
713                 priv->phy_of_handle = phy;
714                 priv->phy_addr = fdtdec_get_int(fdt, phy, "reg", -1);
715
716                 mdio = fdt_parent_offset(fdt, phy);
717                 if (mdio < 0) {
718                         pr_err("mdio dt not found\n");
719                         return -ENODEV;
720                 }
721                 priv->mdio_base = (void *)fdtdec_get_addr(fdt, mdio, "reg");
722         }
723
724         if (priv->link_type == LINK_TYPE_SGMII_MAC_TO_PHY_MODE) {
725                 priv->phy_if = PHY_INTERFACE_MODE_SGMII;
726                 pdata->phy_interface = priv->phy_if;
727                 priv->sgmii_link_type = SGMII_LINK_MAC_PHY;
728                 priv->has_mdio = true;
729         } else if (priv->link_type == LINK_TYPE_RGMII_LINK_MAC_PHY) {
730                 phy_mode = fdt_getprop(fdt, slave, "phy-mode", NULL);
731                 if (phy_mode) {
732                         priv->phy_if = phy_get_interface_by_name(phy_mode);
733                         if (priv->phy_if != PHY_INTERFACE_MODE_RGMII &&
734                             priv->phy_if != PHY_INTERFACE_MODE_RGMII_ID &&
735                             priv->phy_if != PHY_INTERFACE_MODE_RGMII_RXID &&
736                             priv->phy_if != PHY_INTERFACE_MODE_RGMII_TXID) {
737                                 pr_err("invalid phy-mode\n");
738                                 return -EINVAL;
739                         }
740                 } else {
741                         priv->phy_if = PHY_INTERFACE_MODE_RGMII;
742                 }
743                 pdata->phy_interface = priv->phy_if;
744                 priv->has_mdio = true;
745         }
746
747         return 0;
748 }
749
750 static int ks2_sl_eth_ofdata_to_platdata(struct udevice *dev)
751 {
752         struct ks2_eth_priv *priv = dev_get_priv(dev);
753         struct eth_pdata *pdata = dev_get_platdata(dev);
754         const void *fdt = gd->fdt_blob;
755         int slave = dev_of_offset(dev);
756         int interfaces;
757         int gbe;
758         int netcp_devices;
759         int netcp;
760
761         interfaces = fdt_parent_offset(fdt, slave);
762         gbe = fdt_parent_offset(fdt, interfaces);
763         netcp_devices = fdt_parent_offset(fdt, gbe);
764         netcp = fdt_parent_offset(fdt, netcp_devices);
765
766         ks2_eth_parse_slave_interface(netcp, slave, priv, pdata);
767
768         pdata->iobase = fdtdec_get_addr(fdt, netcp, "reg");
769
770         return 0;
771 }
772
773 static int ks2_eth_ofdata_to_platdata(struct udevice *dev)
774 {
775         struct ks2_eth_priv *priv = dev_get_priv(dev);
776         struct eth_pdata *pdata = dev_get_platdata(dev);
777         const void *fdt = gd->fdt_blob;
778         int gbe_0 = -ENODEV;
779         int netcp_devices;
780         int gbe;
781
782         netcp_devices = fdt_subnode_offset(fdt, dev_of_offset(dev),
783                                            "netcp-devices");
784         gbe = fdt_subnode_offset(fdt, netcp_devices, "gbe");
785
786         ks2_eth_bind_slaves(dev, gbe, &gbe_0);
787
788         ks2_eth_parse_slave_interface(dev_of_offset(dev), gbe_0, priv, pdata);
789
790         pdata->iobase = devfdt_get_addr(dev);
791
792         return 0;
793 }
794
795 static const struct udevice_id ks2_eth_ids[] = {
796         { .compatible = "ti,netcp-1.0" },
797         { }
798 };
799
800 U_BOOT_DRIVER(eth_ks2_slave) = {
801         .name   = "eth_ks2_sl",
802         .id     = UCLASS_ETH,
803         .ofdata_to_platdata = ks2_sl_eth_ofdata_to_platdata,
804         .probe  = ks2_eth_probe,
805         .remove = ks2_eth_remove,
806         .ops    = &ks2_eth_ops,
807         .priv_auto_alloc_size = sizeof(struct ks2_eth_priv),
808         .platdata_auto_alloc_size = sizeof(struct eth_pdata),
809         .flags = DM_FLAG_ALLOC_PRIV_DMA,
810 };
811
812 U_BOOT_DRIVER(eth_ks2) = {
813         .name   = "eth_ks2",
814         .id     = UCLASS_ETH,
815         .of_match = ks2_eth_ids,
816         .ofdata_to_platdata = ks2_eth_ofdata_to_platdata,
817         .probe  = ks2_eth_probe,
818         .remove = ks2_eth_remove,
819         .ops    = &ks2_eth_ops,
820         .priv_auto_alloc_size = sizeof(struct ks2_eth_priv),
821         .platdata_auto_alloc_size = sizeof(struct eth_pdata),
822         .flags = DM_FLAG_ALLOC_PRIV_DMA,
823 };