ucc_geth.c 119 KB

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  1. /*
  2. * Copyright (C) 2006-2009 Freescale Semicondutor, Inc. All rights reserved.
  3. *
  4. * Author: Shlomi Gridish <gridish@freescale.com>
  5. * Li Yang <leoli@freescale.com>
  6. *
  7. * Description:
  8. * QE UCC Gigabit Ethernet Driver
  9. *
  10. * This program is free software; you can redistribute it and/or modify it
  11. * under the terms of the GNU General Public License as published by the
  12. * Free Software Foundation; either version 2 of the License, or (at your
  13. * option) any later version.
  14. */
  15. #include <linux/kernel.h>
  16. #include <linux/init.h>
  17. #include <linux/errno.h>
  18. #include <linux/slab.h>
  19. #include <linux/stddef.h>
  20. #include <linux/interrupt.h>
  21. #include <linux/netdevice.h>
  22. #include <linux/etherdevice.h>
  23. #include <linux/skbuff.h>
  24. #include <linux/spinlock.h>
  25. #include <linux/mm.h>
  26. #include <linux/dma-mapping.h>
  27. #include <linux/mii.h>
  28. #include <linux/phy.h>
  29. #include <linux/workqueue.h>
  30. #include <linux/of_mdio.h>
  31. #include <linux/of_platform.h>
  32. #include <asm/uaccess.h>
  33. #include <asm/irq.h>
  34. #include <asm/io.h>
  35. #include <asm/immap_qe.h>
  36. #include <asm/qe.h>
  37. #include <asm/ucc.h>
  38. #include <asm/ucc_fast.h>
  39. #include <asm/machdep.h>
  40. #include "ucc_geth.h"
  41. #include "fsl_pq_mdio.h"
  42. #undef DEBUG
  43. #define ugeth_printk(level, format, arg...) \
  44. printk(level format "\n", ## arg)
  45. #define ugeth_dbg(format, arg...) \
  46. ugeth_printk(KERN_DEBUG , format , ## arg)
  47. #define ugeth_err(format, arg...) \
  48. ugeth_printk(KERN_ERR , format , ## arg)
  49. #define ugeth_info(format, arg...) \
  50. ugeth_printk(KERN_INFO , format , ## arg)
  51. #define ugeth_warn(format, arg...) \
  52. ugeth_printk(KERN_WARNING , format , ## arg)
  53. #ifdef UGETH_VERBOSE_DEBUG
  54. #define ugeth_vdbg ugeth_dbg
  55. #else
  56. #define ugeth_vdbg(fmt, args...) do { } while (0)
  57. #endif /* UGETH_VERBOSE_DEBUG */
  58. #define UGETH_MSG_DEFAULT (NETIF_MSG_IFUP << 1 ) - 1
  59. static DEFINE_SPINLOCK(ugeth_lock);
  60. static struct {
  61. u32 msg_enable;
  62. } debug = { -1 };
  63. module_param_named(debug, debug.msg_enable, int, 0);
  64. MODULE_PARM_DESC(debug, "Debug verbosity level (0=none, ..., 0xffff=all)");
  65. static struct ucc_geth_info ugeth_primary_info = {
  66. .uf_info = {
  67. .bd_mem_part = MEM_PART_SYSTEM,
  68. .rtsm = UCC_FAST_SEND_IDLES_BETWEEN_FRAMES,
  69. .max_rx_buf_length = 1536,
  70. /* adjusted at startup if max-speed 1000 */
  71. .urfs = UCC_GETH_URFS_INIT,
  72. .urfet = UCC_GETH_URFET_INIT,
  73. .urfset = UCC_GETH_URFSET_INIT,
  74. .utfs = UCC_GETH_UTFS_INIT,
  75. .utfet = UCC_GETH_UTFET_INIT,
  76. .utftt = UCC_GETH_UTFTT_INIT,
  77. .ufpt = 256,
  78. .mode = UCC_FAST_PROTOCOL_MODE_ETHERNET,
  79. .ttx_trx = UCC_FAST_GUMR_TRANSPARENT_TTX_TRX_NORMAL,
  80. .tenc = UCC_FAST_TX_ENCODING_NRZ,
  81. .renc = UCC_FAST_RX_ENCODING_NRZ,
  82. .tcrc = UCC_FAST_16_BIT_CRC,
  83. .synl = UCC_FAST_SYNC_LEN_NOT_USED,
  84. },
  85. .numQueuesTx = 1,
  86. .numQueuesRx = 1,
  87. .extendedFilteringChainPointer = ((uint32_t) NULL),
  88. .typeorlen = 3072 /*1536 */ ,
  89. .nonBackToBackIfgPart1 = 0x40,
  90. .nonBackToBackIfgPart2 = 0x60,
  91. .miminumInterFrameGapEnforcement = 0x50,
  92. .backToBackInterFrameGap = 0x60,
  93. .mblinterval = 128,
  94. .nortsrbytetime = 5,
  95. .fracsiz = 1,
  96. .strictpriorityq = 0xff,
  97. .altBebTruncation = 0xa,
  98. .excessDefer = 1,
  99. .maxRetransmission = 0xf,
  100. .collisionWindow = 0x37,
  101. .receiveFlowControl = 1,
  102. .transmitFlowControl = 1,
  103. .maxGroupAddrInHash = 4,
  104. .maxIndAddrInHash = 4,
  105. .prel = 7,
  106. .maxFrameLength = 1518,
  107. .minFrameLength = 64,
  108. .maxD1Length = 1520,
  109. .maxD2Length = 1520,
  110. .vlantype = 0x8100,
  111. .ecamptr = ((uint32_t) NULL),
  112. .eventRegMask = UCCE_OTHER,
  113. .pausePeriod = 0xf000,
  114. .interruptcoalescingmaxvalue = {1, 1, 1, 1, 1, 1, 1, 1},
  115. .bdRingLenTx = {
  116. TX_BD_RING_LEN,
  117. TX_BD_RING_LEN,
  118. TX_BD_RING_LEN,
  119. TX_BD_RING_LEN,
  120. TX_BD_RING_LEN,
  121. TX_BD_RING_LEN,
  122. TX_BD_RING_LEN,
  123. TX_BD_RING_LEN},
  124. .bdRingLenRx = {
  125. RX_BD_RING_LEN,
  126. RX_BD_RING_LEN,
  127. RX_BD_RING_LEN,
  128. RX_BD_RING_LEN,
  129. RX_BD_RING_LEN,
  130. RX_BD_RING_LEN,
  131. RX_BD_RING_LEN,
  132. RX_BD_RING_LEN},
  133. .numStationAddresses = UCC_GETH_NUM_OF_STATION_ADDRESSES_1,
  134. .largestexternallookupkeysize =
  135. QE_FLTR_LARGEST_EXTERNAL_TABLE_LOOKUP_KEY_SIZE_NONE,
  136. .statisticsMode = UCC_GETH_STATISTICS_GATHERING_MODE_HARDWARE |
  137. UCC_GETH_STATISTICS_GATHERING_MODE_FIRMWARE_TX |
  138. UCC_GETH_STATISTICS_GATHERING_MODE_FIRMWARE_RX,
  139. .vlanOperationTagged = UCC_GETH_VLAN_OPERATION_TAGGED_NOP,
  140. .vlanOperationNonTagged = UCC_GETH_VLAN_OPERATION_NON_TAGGED_NOP,
  141. .rxQoSMode = UCC_GETH_QOS_MODE_DEFAULT,
  142. .aufc = UPSMR_AUTOMATIC_FLOW_CONTROL_MODE_NONE,
  143. .padAndCrc = MACCFG2_PAD_AND_CRC_MODE_PAD_AND_CRC,
  144. .numThreadsTx = UCC_GETH_NUM_OF_THREADS_1,
  145. .numThreadsRx = UCC_GETH_NUM_OF_THREADS_1,
  146. .riscTx = QE_RISC_ALLOCATION_RISC1_AND_RISC2,
  147. .riscRx = QE_RISC_ALLOCATION_RISC1_AND_RISC2,
  148. };
  149. static struct ucc_geth_info ugeth_info[8];
  150. #ifdef DEBUG
  151. static void mem_disp(u8 *addr, int size)
  152. {
  153. u8 *i;
  154. int size16Aling = (size >> 4) << 4;
  155. int size4Aling = (size >> 2) << 2;
  156. int notAlign = 0;
  157. if (size % 16)
  158. notAlign = 1;
  159. for (i = addr; (u32) i < (u32) addr + size16Aling; i += 16)
  160. printk("0x%08x: %08x %08x %08x %08x\r\n",
  161. (u32) i,
  162. *((u32 *) (i)),
  163. *((u32 *) (i + 4)),
  164. *((u32 *) (i + 8)), *((u32 *) (i + 12)));
  165. if (notAlign == 1)
  166. printk("0x%08x: ", (u32) i);
  167. for (; (u32) i < (u32) addr + size4Aling; i += 4)
  168. printk("%08x ", *((u32 *) (i)));
  169. for (; (u32) i < (u32) addr + size; i++)
  170. printk("%02x", *((u8 *) (i)));
  171. if (notAlign == 1)
  172. printk("\r\n");
  173. }
  174. #endif /* DEBUG */
  175. static struct list_head *dequeue(struct list_head *lh)
  176. {
  177. unsigned long flags;
  178. spin_lock_irqsave(&ugeth_lock, flags);
  179. if (!list_empty(lh)) {
  180. struct list_head *node = lh->next;
  181. list_del(node);
  182. spin_unlock_irqrestore(&ugeth_lock, flags);
  183. return node;
  184. } else {
  185. spin_unlock_irqrestore(&ugeth_lock, flags);
  186. return NULL;
  187. }
  188. }
  189. static struct sk_buff *get_new_skb(struct ucc_geth_private *ugeth,
  190. u8 __iomem *bd)
  191. {
  192. struct sk_buff *skb = NULL;
  193. skb = __skb_dequeue(&ugeth->rx_recycle);
  194. if (!skb)
  195. skb = dev_alloc_skb(ugeth->ug_info->uf_info.max_rx_buf_length +
  196. UCC_GETH_RX_DATA_BUF_ALIGNMENT);
  197. if (skb == NULL)
  198. return NULL;
  199. /* We need the data buffer to be aligned properly. We will reserve
  200. * as many bytes as needed to align the data properly
  201. */
  202. skb_reserve(skb,
  203. UCC_GETH_RX_DATA_BUF_ALIGNMENT -
  204. (((unsigned)skb->data) & (UCC_GETH_RX_DATA_BUF_ALIGNMENT -
  205. 1)));
  206. skb->dev = ugeth->ndev;
  207. out_be32(&((struct qe_bd __iomem *)bd)->buf,
  208. dma_map_single(ugeth->dev,
  209. skb->data,
  210. ugeth->ug_info->uf_info.max_rx_buf_length +
  211. UCC_GETH_RX_DATA_BUF_ALIGNMENT,
  212. DMA_FROM_DEVICE));
  213. out_be32((u32 __iomem *)bd,
  214. (R_E | R_I | (in_be32((u32 __iomem*)bd) & R_W)));
  215. return skb;
  216. }
  217. static int rx_bd_buffer_set(struct ucc_geth_private *ugeth, u8 rxQ)
  218. {
  219. u8 __iomem *bd;
  220. u32 bd_status;
  221. struct sk_buff *skb;
  222. int i;
  223. bd = ugeth->p_rx_bd_ring[rxQ];
  224. i = 0;
  225. do {
  226. bd_status = in_be32((u32 __iomem *)bd);
  227. skb = get_new_skb(ugeth, bd);
  228. if (!skb) /* If can not allocate data buffer,
  229. abort. Cleanup will be elsewhere */
  230. return -ENOMEM;
  231. ugeth->rx_skbuff[rxQ][i] = skb;
  232. /* advance the BD pointer */
  233. bd += sizeof(struct qe_bd);
  234. i++;
  235. } while (!(bd_status & R_W));
  236. return 0;
  237. }
  238. static int fill_init_enet_entries(struct ucc_geth_private *ugeth,
  239. u32 *p_start,
  240. u8 num_entries,
  241. u32 thread_size,
  242. u32 thread_alignment,
  243. unsigned int risc,
  244. int skip_page_for_first_entry)
  245. {
  246. u32 init_enet_offset;
  247. u8 i;
  248. int snum;
  249. for (i = 0; i < num_entries; i++) {
  250. if ((snum = qe_get_snum()) < 0) {
  251. if (netif_msg_ifup(ugeth))
  252. ugeth_err("fill_init_enet_entries: Can not get SNUM.");
  253. return snum;
  254. }
  255. if ((i == 0) && skip_page_for_first_entry)
  256. /* First entry of Rx does not have page */
  257. init_enet_offset = 0;
  258. else {
  259. init_enet_offset =
  260. qe_muram_alloc(thread_size, thread_alignment);
  261. if (IS_ERR_VALUE(init_enet_offset)) {
  262. if (netif_msg_ifup(ugeth))
  263. ugeth_err("fill_init_enet_entries: Can not allocate DPRAM memory.");
  264. qe_put_snum((u8) snum);
  265. return -ENOMEM;
  266. }
  267. }
  268. *(p_start++) =
  269. ((u8) snum << ENET_INIT_PARAM_SNUM_SHIFT) | init_enet_offset
  270. | risc;
  271. }
  272. return 0;
  273. }
  274. static int return_init_enet_entries(struct ucc_geth_private *ugeth,
  275. u32 *p_start,
  276. u8 num_entries,
  277. unsigned int risc,
  278. int skip_page_for_first_entry)
  279. {
  280. u32 init_enet_offset;
  281. u8 i;
  282. int snum;
  283. for (i = 0; i < num_entries; i++) {
  284. u32 val = *p_start;
  285. /* Check that this entry was actually valid --
  286. needed in case failed in allocations */
  287. if ((val & ENET_INIT_PARAM_RISC_MASK) == risc) {
  288. snum =
  289. (u32) (val & ENET_INIT_PARAM_SNUM_MASK) >>
  290. ENET_INIT_PARAM_SNUM_SHIFT;
  291. qe_put_snum((u8) snum);
  292. if (!((i == 0) && skip_page_for_first_entry)) {
  293. /* First entry of Rx does not have page */
  294. init_enet_offset =
  295. (val & ENET_INIT_PARAM_PTR_MASK);
  296. qe_muram_free(init_enet_offset);
  297. }
  298. *p_start++ = 0;
  299. }
  300. }
  301. return 0;
  302. }
  303. #ifdef DEBUG
  304. static int dump_init_enet_entries(struct ucc_geth_private *ugeth,
  305. u32 __iomem *p_start,
  306. u8 num_entries,
  307. u32 thread_size,
  308. unsigned int risc,
  309. int skip_page_for_first_entry)
  310. {
  311. u32 init_enet_offset;
  312. u8 i;
  313. int snum;
  314. for (i = 0; i < num_entries; i++) {
  315. u32 val = in_be32(p_start);
  316. /* Check that this entry was actually valid --
  317. needed in case failed in allocations */
  318. if ((val & ENET_INIT_PARAM_RISC_MASK) == risc) {
  319. snum =
  320. (u32) (val & ENET_INIT_PARAM_SNUM_MASK) >>
  321. ENET_INIT_PARAM_SNUM_SHIFT;
  322. qe_put_snum((u8) snum);
  323. if (!((i == 0) && skip_page_for_first_entry)) {
  324. /* First entry of Rx does not have page */
  325. init_enet_offset =
  326. (in_be32(p_start) &
  327. ENET_INIT_PARAM_PTR_MASK);
  328. ugeth_info("Init enet entry %d:", i);
  329. ugeth_info("Base address: 0x%08x",
  330. (u32)
  331. qe_muram_addr(init_enet_offset));
  332. mem_disp(qe_muram_addr(init_enet_offset),
  333. thread_size);
  334. }
  335. p_start++;
  336. }
  337. }
  338. return 0;
  339. }
  340. #endif
  341. static void put_enet_addr_container(struct enet_addr_container *enet_addr_cont)
  342. {
  343. kfree(enet_addr_cont);
  344. }
  345. static void set_mac_addr(__be16 __iomem *reg, u8 *mac)
  346. {
  347. out_be16(&reg[0], ((u16)mac[5] << 8) | mac[4]);
  348. out_be16(&reg[1], ((u16)mac[3] << 8) | mac[2]);
  349. out_be16(&reg[2], ((u16)mac[1] << 8) | mac[0]);
  350. }
  351. static int hw_clear_addr_in_paddr(struct ucc_geth_private *ugeth, u8 paddr_num)
  352. {
  353. struct ucc_geth_82xx_address_filtering_pram __iomem *p_82xx_addr_filt;
  354. if (!(paddr_num < NUM_OF_PADDRS)) {
  355. ugeth_warn("%s: Illagel paddr_num.", __func__);
  356. return -EINVAL;
  357. }
  358. p_82xx_addr_filt =
  359. (struct ucc_geth_82xx_address_filtering_pram __iomem *) ugeth->p_rx_glbl_pram->
  360. addressfiltering;
  361. /* Writing address ff.ff.ff.ff.ff.ff disables address
  362. recognition for this register */
  363. out_be16(&p_82xx_addr_filt->paddr[paddr_num].h, 0xffff);
  364. out_be16(&p_82xx_addr_filt->paddr[paddr_num].m, 0xffff);
  365. out_be16(&p_82xx_addr_filt->paddr[paddr_num].l, 0xffff);
  366. return 0;
  367. }
  368. static void hw_add_addr_in_hash(struct ucc_geth_private *ugeth,
  369. u8 *p_enet_addr)
  370. {
  371. struct ucc_geth_82xx_address_filtering_pram __iomem *p_82xx_addr_filt;
  372. u32 cecr_subblock;
  373. p_82xx_addr_filt =
  374. (struct ucc_geth_82xx_address_filtering_pram __iomem *) ugeth->p_rx_glbl_pram->
  375. addressfiltering;
  376. cecr_subblock =
  377. ucc_fast_get_qe_cr_subblock(ugeth->ug_info->uf_info.ucc_num);
  378. /* Ethernet frames are defined in Little Endian mode,
  379. therefor to insert */
  380. /* the address to the hash (Big Endian mode), we reverse the bytes.*/
  381. set_mac_addr(&p_82xx_addr_filt->taddr.h, p_enet_addr);
  382. qe_issue_cmd(QE_SET_GROUP_ADDRESS, cecr_subblock,
  383. QE_CR_PROTOCOL_ETHERNET, 0);
  384. }
  385. static inline int compare_addr(u8 **addr1, u8 **addr2)
  386. {
  387. return memcmp(addr1, addr2, ENET_NUM_OCTETS_PER_ADDRESS);
  388. }
  389. #ifdef DEBUG
  390. static void get_statistics(struct ucc_geth_private *ugeth,
  391. struct ucc_geth_tx_firmware_statistics *
  392. tx_firmware_statistics,
  393. struct ucc_geth_rx_firmware_statistics *
  394. rx_firmware_statistics,
  395. struct ucc_geth_hardware_statistics *hardware_statistics)
  396. {
  397. struct ucc_fast __iomem *uf_regs;
  398. struct ucc_geth __iomem *ug_regs;
  399. struct ucc_geth_tx_firmware_statistics_pram *p_tx_fw_statistics_pram;
  400. struct ucc_geth_rx_firmware_statistics_pram *p_rx_fw_statistics_pram;
  401. ug_regs = ugeth->ug_regs;
  402. uf_regs = (struct ucc_fast __iomem *) ug_regs;
  403. p_tx_fw_statistics_pram = ugeth->p_tx_fw_statistics_pram;
  404. p_rx_fw_statistics_pram = ugeth->p_rx_fw_statistics_pram;
  405. /* Tx firmware only if user handed pointer and driver actually
  406. gathers Tx firmware statistics */
  407. if (tx_firmware_statistics && p_tx_fw_statistics_pram) {
  408. tx_firmware_statistics->sicoltx =
  409. in_be32(&p_tx_fw_statistics_pram->sicoltx);
  410. tx_firmware_statistics->mulcoltx =
  411. in_be32(&p_tx_fw_statistics_pram->mulcoltx);
  412. tx_firmware_statistics->latecoltxfr =
  413. in_be32(&p_tx_fw_statistics_pram->latecoltxfr);
  414. tx_firmware_statistics->frabortduecol =
  415. in_be32(&p_tx_fw_statistics_pram->frabortduecol);
  416. tx_firmware_statistics->frlostinmactxer =
  417. in_be32(&p_tx_fw_statistics_pram->frlostinmactxer);
  418. tx_firmware_statistics->carriersenseertx =
  419. in_be32(&p_tx_fw_statistics_pram->carriersenseertx);
  420. tx_firmware_statistics->frtxok =
  421. in_be32(&p_tx_fw_statistics_pram->frtxok);
  422. tx_firmware_statistics->txfrexcessivedefer =
  423. in_be32(&p_tx_fw_statistics_pram->txfrexcessivedefer);
  424. tx_firmware_statistics->txpkts256 =
  425. in_be32(&p_tx_fw_statistics_pram->txpkts256);
  426. tx_firmware_statistics->txpkts512 =
  427. in_be32(&p_tx_fw_statistics_pram->txpkts512);
  428. tx_firmware_statistics->txpkts1024 =
  429. in_be32(&p_tx_fw_statistics_pram->txpkts1024);
  430. tx_firmware_statistics->txpktsjumbo =
  431. in_be32(&p_tx_fw_statistics_pram->txpktsjumbo);
  432. }
  433. /* Rx firmware only if user handed pointer and driver actually
  434. * gathers Rx firmware statistics */
  435. if (rx_firmware_statistics && p_rx_fw_statistics_pram) {
  436. int i;
  437. rx_firmware_statistics->frrxfcser =
  438. in_be32(&p_rx_fw_statistics_pram->frrxfcser);
  439. rx_firmware_statistics->fraligner =
  440. in_be32(&p_rx_fw_statistics_pram->fraligner);
  441. rx_firmware_statistics->inrangelenrxer =
  442. in_be32(&p_rx_fw_statistics_pram->inrangelenrxer);
  443. rx_firmware_statistics->outrangelenrxer =
  444. in_be32(&p_rx_fw_statistics_pram->outrangelenrxer);
  445. rx_firmware_statistics->frtoolong =
  446. in_be32(&p_rx_fw_statistics_pram->frtoolong);
  447. rx_firmware_statistics->runt =
  448. in_be32(&p_rx_fw_statistics_pram->runt);
  449. rx_firmware_statistics->verylongevent =
  450. in_be32(&p_rx_fw_statistics_pram->verylongevent);
  451. rx_firmware_statistics->symbolerror =
  452. in_be32(&p_rx_fw_statistics_pram->symbolerror);
  453. rx_firmware_statistics->dropbsy =
  454. in_be32(&p_rx_fw_statistics_pram->dropbsy);
  455. for (i = 0; i < 0x8; i++)
  456. rx_firmware_statistics->res0[i] =
  457. p_rx_fw_statistics_pram->res0[i];
  458. rx_firmware_statistics->mismatchdrop =
  459. in_be32(&p_rx_fw_statistics_pram->mismatchdrop);
  460. rx_firmware_statistics->underpkts =
  461. in_be32(&p_rx_fw_statistics_pram->underpkts);
  462. rx_firmware_statistics->pkts256 =
  463. in_be32(&p_rx_fw_statistics_pram->pkts256);
  464. rx_firmware_statistics->pkts512 =
  465. in_be32(&p_rx_fw_statistics_pram->pkts512);
  466. rx_firmware_statistics->pkts1024 =
  467. in_be32(&p_rx_fw_statistics_pram->pkts1024);
  468. rx_firmware_statistics->pktsjumbo =
  469. in_be32(&p_rx_fw_statistics_pram->pktsjumbo);
  470. rx_firmware_statistics->frlossinmacer =
  471. in_be32(&p_rx_fw_statistics_pram->frlossinmacer);
  472. rx_firmware_statistics->pausefr =
  473. in_be32(&p_rx_fw_statistics_pram->pausefr);
  474. for (i = 0; i < 0x4; i++)
  475. rx_firmware_statistics->res1[i] =
  476. p_rx_fw_statistics_pram->res1[i];
  477. rx_firmware_statistics->removevlan =
  478. in_be32(&p_rx_fw_statistics_pram->removevlan);
  479. rx_firmware_statistics->replacevlan =
  480. in_be32(&p_rx_fw_statistics_pram->replacevlan);
  481. rx_firmware_statistics->insertvlan =
  482. in_be32(&p_rx_fw_statistics_pram->insertvlan);
  483. }
  484. /* Hardware only if user handed pointer and driver actually
  485. gathers hardware statistics */
  486. if (hardware_statistics &&
  487. (in_be32(&uf_regs->upsmr) & UCC_GETH_UPSMR_HSE)) {
  488. hardware_statistics->tx64 = in_be32(&ug_regs->tx64);
  489. hardware_statistics->tx127 = in_be32(&ug_regs->tx127);
  490. hardware_statistics->tx255 = in_be32(&ug_regs->tx255);
  491. hardware_statistics->rx64 = in_be32(&ug_regs->rx64);
  492. hardware_statistics->rx127 = in_be32(&ug_regs->rx127);
  493. hardware_statistics->rx255 = in_be32(&ug_regs->rx255);
  494. hardware_statistics->txok = in_be32(&ug_regs->txok);
  495. hardware_statistics->txcf = in_be16(&ug_regs->txcf);
  496. hardware_statistics->tmca = in_be32(&ug_regs->tmca);
  497. hardware_statistics->tbca = in_be32(&ug_regs->tbca);
  498. hardware_statistics->rxfok = in_be32(&ug_regs->rxfok);
  499. hardware_statistics->rxbok = in_be32(&ug_regs->rxbok);
  500. hardware_statistics->rbyt = in_be32(&ug_regs->rbyt);
  501. hardware_statistics->rmca = in_be32(&ug_regs->rmca);
  502. hardware_statistics->rbca = in_be32(&ug_regs->rbca);
  503. }
  504. }
  505. static void dump_bds(struct ucc_geth_private *ugeth)
  506. {
  507. int i;
  508. int length;
  509. for (i = 0; i < ugeth->ug_info->numQueuesTx; i++) {
  510. if (ugeth->p_tx_bd_ring[i]) {
  511. length =
  512. (ugeth->ug_info->bdRingLenTx[i] *
  513. sizeof(struct qe_bd));
  514. ugeth_info("TX BDs[%d]", i);
  515. mem_disp(ugeth->p_tx_bd_ring[i], length);
  516. }
  517. }
  518. for (i = 0; i < ugeth->ug_info->numQueuesRx; i++) {
  519. if (ugeth->p_rx_bd_ring[i]) {
  520. length =
  521. (ugeth->ug_info->bdRingLenRx[i] *
  522. sizeof(struct qe_bd));
  523. ugeth_info("RX BDs[%d]", i);
  524. mem_disp(ugeth->p_rx_bd_ring[i], length);
  525. }
  526. }
  527. }
  528. static void dump_regs(struct ucc_geth_private *ugeth)
  529. {
  530. int i;
  531. ugeth_info("UCC%d Geth registers:", ugeth->ug_info->uf_info.ucc_num);
  532. ugeth_info("Base address: 0x%08x", (u32) ugeth->ug_regs);
  533. ugeth_info("maccfg1 : addr - 0x%08x, val - 0x%08x",
  534. (u32) & ugeth->ug_regs->maccfg1,
  535. in_be32(&ugeth->ug_regs->maccfg1));
  536. ugeth_info("maccfg2 : addr - 0x%08x, val - 0x%08x",
  537. (u32) & ugeth->ug_regs->maccfg2,
  538. in_be32(&ugeth->ug_regs->maccfg2));
  539. ugeth_info("ipgifg : addr - 0x%08x, val - 0x%08x",
  540. (u32) & ugeth->ug_regs->ipgifg,
  541. in_be32(&ugeth->ug_regs->ipgifg));
  542. ugeth_info("hafdup : addr - 0x%08x, val - 0x%08x",
  543. (u32) & ugeth->ug_regs->hafdup,
  544. in_be32(&ugeth->ug_regs->hafdup));
  545. ugeth_info("ifctl : addr - 0x%08x, val - 0x%08x",
  546. (u32) & ugeth->ug_regs->ifctl,
  547. in_be32(&ugeth->ug_regs->ifctl));
  548. ugeth_info("ifstat : addr - 0x%08x, val - 0x%08x",
  549. (u32) & ugeth->ug_regs->ifstat,
  550. in_be32(&ugeth->ug_regs->ifstat));
  551. ugeth_info("macstnaddr1: addr - 0x%08x, val - 0x%08x",
  552. (u32) & ugeth->ug_regs->macstnaddr1,
  553. in_be32(&ugeth->ug_regs->macstnaddr1));
  554. ugeth_info("macstnaddr2: addr - 0x%08x, val - 0x%08x",
  555. (u32) & ugeth->ug_regs->macstnaddr2,
  556. in_be32(&ugeth->ug_regs->macstnaddr2));
  557. ugeth_info("uempr : addr - 0x%08x, val - 0x%08x",
  558. (u32) & ugeth->ug_regs->uempr,
  559. in_be32(&ugeth->ug_regs->uempr));
  560. ugeth_info("utbipar : addr - 0x%08x, val - 0x%08x",
  561. (u32) & ugeth->ug_regs->utbipar,
  562. in_be32(&ugeth->ug_regs->utbipar));
  563. ugeth_info("uescr : addr - 0x%08x, val - 0x%04x",
  564. (u32) & ugeth->ug_regs->uescr,
  565. in_be16(&ugeth->ug_regs->uescr));
  566. ugeth_info("tx64 : addr - 0x%08x, val - 0x%08x",
  567. (u32) & ugeth->ug_regs->tx64,
  568. in_be32(&ugeth->ug_regs->tx64));
  569. ugeth_info("tx127 : addr - 0x%08x, val - 0x%08x",
  570. (u32) & ugeth->ug_regs->tx127,
  571. in_be32(&ugeth->ug_regs->tx127));
  572. ugeth_info("tx255 : addr - 0x%08x, val - 0x%08x",
  573. (u32) & ugeth->ug_regs->tx255,
  574. in_be32(&ugeth->ug_regs->tx255));
  575. ugeth_info("rx64 : addr - 0x%08x, val - 0x%08x",
  576. (u32) & ugeth->ug_regs->rx64,
  577. in_be32(&ugeth->ug_regs->rx64));
  578. ugeth_info("rx127 : addr - 0x%08x, val - 0x%08x",
  579. (u32) & ugeth->ug_regs->rx127,
  580. in_be32(&ugeth->ug_regs->rx127));
  581. ugeth_info("rx255 : addr - 0x%08x, val - 0x%08x",
  582. (u32) & ugeth->ug_regs->rx255,
  583. in_be32(&ugeth->ug_regs->rx255));
  584. ugeth_info("txok : addr - 0x%08x, val - 0x%08x",
  585. (u32) & ugeth->ug_regs->txok,
  586. in_be32(&ugeth->ug_regs->txok));
  587. ugeth_info("txcf : addr - 0x%08x, val - 0x%04x",
  588. (u32) & ugeth->ug_regs->txcf,
  589. in_be16(&ugeth->ug_regs->txcf));
  590. ugeth_info("tmca : addr - 0x%08x, val - 0x%08x",
  591. (u32) & ugeth->ug_regs->tmca,
  592. in_be32(&ugeth->ug_regs->tmca));
  593. ugeth_info("tbca : addr - 0x%08x, val - 0x%08x",
  594. (u32) & ugeth->ug_regs->tbca,
  595. in_be32(&ugeth->ug_regs->tbca));
  596. ugeth_info("rxfok : addr - 0x%08x, val - 0x%08x",
  597. (u32) & ugeth->ug_regs->rxfok,
  598. in_be32(&ugeth->ug_regs->rxfok));
  599. ugeth_info("rxbok : addr - 0x%08x, val - 0x%08x",
  600. (u32) & ugeth->ug_regs->rxbok,
  601. in_be32(&ugeth->ug_regs->rxbok));
  602. ugeth_info("rbyt : addr - 0x%08x, val - 0x%08x",
  603. (u32) & ugeth->ug_regs->rbyt,
  604. in_be32(&ugeth->ug_regs->rbyt));
  605. ugeth_info("rmca : addr - 0x%08x, val - 0x%08x",
  606. (u32) & ugeth->ug_regs->rmca,
  607. in_be32(&ugeth->ug_regs->rmca));
  608. ugeth_info("rbca : addr - 0x%08x, val - 0x%08x",
  609. (u32) & ugeth->ug_regs->rbca,
  610. in_be32(&ugeth->ug_regs->rbca));
  611. ugeth_info("scar : addr - 0x%08x, val - 0x%08x",
  612. (u32) & ugeth->ug_regs->scar,
  613. in_be32(&ugeth->ug_regs->scar));
  614. ugeth_info("scam : addr - 0x%08x, val - 0x%08x",
  615. (u32) & ugeth->ug_regs->scam,
  616. in_be32(&ugeth->ug_regs->scam));
  617. if (ugeth->p_thread_data_tx) {
  618. int numThreadsTxNumerical;
  619. switch (ugeth->ug_info->numThreadsTx) {
  620. case UCC_GETH_NUM_OF_THREADS_1:
  621. numThreadsTxNumerical = 1;
  622. break;
  623. case UCC_GETH_NUM_OF_THREADS_2:
  624. numThreadsTxNumerical = 2;
  625. break;
  626. case UCC_GETH_NUM_OF_THREADS_4:
  627. numThreadsTxNumerical = 4;
  628. break;
  629. case UCC_GETH_NUM_OF_THREADS_6:
  630. numThreadsTxNumerical = 6;
  631. break;
  632. case UCC_GETH_NUM_OF_THREADS_8:
  633. numThreadsTxNumerical = 8;
  634. break;
  635. default:
  636. numThreadsTxNumerical = 0;
  637. break;
  638. }
  639. ugeth_info("Thread data TXs:");
  640. ugeth_info("Base address: 0x%08x",
  641. (u32) ugeth->p_thread_data_tx);
  642. for (i = 0; i < numThreadsTxNumerical; i++) {
  643. ugeth_info("Thread data TX[%d]:", i);
  644. ugeth_info("Base address: 0x%08x",
  645. (u32) & ugeth->p_thread_data_tx[i]);
  646. mem_disp((u8 *) & ugeth->p_thread_data_tx[i],
  647. sizeof(struct ucc_geth_thread_data_tx));
  648. }
  649. }
  650. if (ugeth->p_thread_data_rx) {
  651. int numThreadsRxNumerical;
  652. switch (ugeth->ug_info->numThreadsRx) {
  653. case UCC_GETH_NUM_OF_THREADS_1:
  654. numThreadsRxNumerical = 1;
  655. break;
  656. case UCC_GETH_NUM_OF_THREADS_2:
  657. numThreadsRxNumerical = 2;
  658. break;
  659. case UCC_GETH_NUM_OF_THREADS_4:
  660. numThreadsRxNumerical = 4;
  661. break;
  662. case UCC_GETH_NUM_OF_THREADS_6:
  663. numThreadsRxNumerical = 6;
  664. break;
  665. case UCC_GETH_NUM_OF_THREADS_8:
  666. numThreadsRxNumerical = 8;
  667. break;
  668. default:
  669. numThreadsRxNumerical = 0;
  670. break;
  671. }
  672. ugeth_info("Thread data RX:");
  673. ugeth_info("Base address: 0x%08x",
  674. (u32) ugeth->p_thread_data_rx);
  675. for (i = 0; i < numThreadsRxNumerical; i++) {
  676. ugeth_info("Thread data RX[%d]:", i);
  677. ugeth_info("Base address: 0x%08x",
  678. (u32) & ugeth->p_thread_data_rx[i]);
  679. mem_disp((u8 *) & ugeth->p_thread_data_rx[i],
  680. sizeof(struct ucc_geth_thread_data_rx));
  681. }
  682. }
  683. if (ugeth->p_exf_glbl_param) {
  684. ugeth_info("EXF global param:");
  685. ugeth_info("Base address: 0x%08x",
  686. (u32) ugeth->p_exf_glbl_param);
  687. mem_disp((u8 *) ugeth->p_exf_glbl_param,
  688. sizeof(*ugeth->p_exf_glbl_param));
  689. }
  690. if (ugeth->p_tx_glbl_pram) {
  691. ugeth_info("TX global param:");
  692. ugeth_info("Base address: 0x%08x", (u32) ugeth->p_tx_glbl_pram);
  693. ugeth_info("temoder : addr - 0x%08x, val - 0x%04x",
  694. (u32) & ugeth->p_tx_glbl_pram->temoder,
  695. in_be16(&ugeth->p_tx_glbl_pram->temoder));
  696. ugeth_info("sqptr : addr - 0x%08x, val - 0x%08x",
  697. (u32) & ugeth->p_tx_glbl_pram->sqptr,
  698. in_be32(&ugeth->p_tx_glbl_pram->sqptr));
  699. ugeth_info("schedulerbasepointer: addr - 0x%08x, val - 0x%08x",
  700. (u32) & ugeth->p_tx_glbl_pram->schedulerbasepointer,
  701. in_be32(&ugeth->p_tx_glbl_pram->
  702. schedulerbasepointer));
  703. ugeth_info("txrmonbaseptr: addr - 0x%08x, val - 0x%08x",
  704. (u32) & ugeth->p_tx_glbl_pram->txrmonbaseptr,
  705. in_be32(&ugeth->p_tx_glbl_pram->txrmonbaseptr));
  706. ugeth_info("tstate : addr - 0x%08x, val - 0x%08x",
  707. (u32) & ugeth->p_tx_glbl_pram->tstate,
  708. in_be32(&ugeth->p_tx_glbl_pram->tstate));
  709. ugeth_info("iphoffset[0] : addr - 0x%08x, val - 0x%02x",
  710. (u32) & ugeth->p_tx_glbl_pram->iphoffset[0],
  711. ugeth->p_tx_glbl_pram->iphoffset[0]);
  712. ugeth_info("iphoffset[1] : addr - 0x%08x, val - 0x%02x",
  713. (u32) & ugeth->p_tx_glbl_pram->iphoffset[1],
  714. ugeth->p_tx_glbl_pram->iphoffset[1]);
  715. ugeth_info("iphoffset[2] : addr - 0x%08x, val - 0x%02x",
  716. (u32) & ugeth->p_tx_glbl_pram->iphoffset[2],
  717. ugeth->p_tx_glbl_pram->iphoffset[2]);
  718. ugeth_info("iphoffset[3] : addr - 0x%08x, val - 0x%02x",
  719. (u32) & ugeth->p_tx_glbl_pram->iphoffset[3],
  720. ugeth->p_tx_glbl_pram->iphoffset[3]);
  721. ugeth_info("iphoffset[4] : addr - 0x%08x, val - 0x%02x",
  722. (u32) & ugeth->p_tx_glbl_pram->iphoffset[4],
  723. ugeth->p_tx_glbl_pram->iphoffset[4]);
  724. ugeth_info("iphoffset[5] : addr - 0x%08x, val - 0x%02x",
  725. (u32) & ugeth->p_tx_glbl_pram->iphoffset[5],
  726. ugeth->p_tx_glbl_pram->iphoffset[5]);
  727. ugeth_info("iphoffset[6] : addr - 0x%08x, val - 0x%02x",
  728. (u32) & ugeth->p_tx_glbl_pram->iphoffset[6],
  729. ugeth->p_tx_glbl_pram->iphoffset[6]);
  730. ugeth_info("iphoffset[7] : addr - 0x%08x, val - 0x%02x",
  731. (u32) & ugeth->p_tx_glbl_pram->iphoffset[7],
  732. ugeth->p_tx_glbl_pram->iphoffset[7]);
  733. ugeth_info("vtagtable[0] : addr - 0x%08x, val - 0x%08x",
  734. (u32) & ugeth->p_tx_glbl_pram->vtagtable[0],
  735. in_be32(&ugeth->p_tx_glbl_pram->vtagtable[0]));
  736. ugeth_info("vtagtable[1] : addr - 0x%08x, val - 0x%08x",
  737. (u32) & ugeth->p_tx_glbl_pram->vtagtable[1],
  738. in_be32(&ugeth->p_tx_glbl_pram->vtagtable[1]));
  739. ugeth_info("vtagtable[2] : addr - 0x%08x, val - 0x%08x",
  740. (u32) & ugeth->p_tx_glbl_pram->vtagtable[2],
  741. in_be32(&ugeth->p_tx_glbl_pram->vtagtable[2]));
  742. ugeth_info("vtagtable[3] : addr - 0x%08x, val - 0x%08x",
  743. (u32) & ugeth->p_tx_glbl_pram->vtagtable[3],
  744. in_be32(&ugeth->p_tx_glbl_pram->vtagtable[3]));
  745. ugeth_info("vtagtable[4] : addr - 0x%08x, val - 0x%08x",
  746. (u32) & ugeth->p_tx_glbl_pram->vtagtable[4],
  747. in_be32(&ugeth->p_tx_glbl_pram->vtagtable[4]));
  748. ugeth_info("vtagtable[5] : addr - 0x%08x, val - 0x%08x",
  749. (u32) & ugeth->p_tx_glbl_pram->vtagtable[5],
  750. in_be32(&ugeth->p_tx_glbl_pram->vtagtable[5]));
  751. ugeth_info("vtagtable[6] : addr - 0x%08x, val - 0x%08x",
  752. (u32) & ugeth->p_tx_glbl_pram->vtagtable[6],
  753. in_be32(&ugeth->p_tx_glbl_pram->vtagtable[6]));
  754. ugeth_info("vtagtable[7] : addr - 0x%08x, val - 0x%08x",
  755. (u32) & ugeth->p_tx_glbl_pram->vtagtable[7],
  756. in_be32(&ugeth->p_tx_glbl_pram->vtagtable[7]));
  757. ugeth_info("tqptr : addr - 0x%08x, val - 0x%08x",
  758. (u32) & ugeth->p_tx_glbl_pram->tqptr,
  759. in_be32(&ugeth->p_tx_glbl_pram->tqptr));
  760. }
  761. if (ugeth->p_rx_glbl_pram) {
  762. ugeth_info("RX global param:");
  763. ugeth_info("Base address: 0x%08x", (u32) ugeth->p_rx_glbl_pram);
  764. ugeth_info("remoder : addr - 0x%08x, val - 0x%08x",
  765. (u32) & ugeth->p_rx_glbl_pram->remoder,
  766. in_be32(&ugeth->p_rx_glbl_pram->remoder));
  767. ugeth_info("rqptr : addr - 0x%08x, val - 0x%08x",
  768. (u32) & ugeth->p_rx_glbl_pram->rqptr,
  769. in_be32(&ugeth->p_rx_glbl_pram->rqptr));
  770. ugeth_info("typeorlen : addr - 0x%08x, val - 0x%04x",
  771. (u32) & ugeth->p_rx_glbl_pram->typeorlen,
  772. in_be16(&ugeth->p_rx_glbl_pram->typeorlen));
  773. ugeth_info("rxgstpack : addr - 0x%08x, val - 0x%02x",
  774. (u32) & ugeth->p_rx_glbl_pram->rxgstpack,
  775. ugeth->p_rx_glbl_pram->rxgstpack);
  776. ugeth_info("rxrmonbaseptr : addr - 0x%08x, val - 0x%08x",
  777. (u32) & ugeth->p_rx_glbl_pram->rxrmonbaseptr,
  778. in_be32(&ugeth->p_rx_glbl_pram->rxrmonbaseptr));
  779. ugeth_info("intcoalescingptr: addr - 0x%08x, val - 0x%08x",
  780. (u32) & ugeth->p_rx_glbl_pram->intcoalescingptr,
  781. in_be32(&ugeth->p_rx_glbl_pram->intcoalescingptr));
  782. ugeth_info("rstate : addr - 0x%08x, val - 0x%02x",
  783. (u32) & ugeth->p_rx_glbl_pram->rstate,
  784. ugeth->p_rx_glbl_pram->rstate);
  785. ugeth_info("mrblr : addr - 0x%08x, val - 0x%04x",
  786. (u32) & ugeth->p_rx_glbl_pram->mrblr,
  787. in_be16(&ugeth->p_rx_glbl_pram->mrblr));
  788. ugeth_info("rbdqptr : addr - 0x%08x, val - 0x%08x",
  789. (u32) & ugeth->p_rx_glbl_pram->rbdqptr,
  790. in_be32(&ugeth->p_rx_glbl_pram->rbdqptr));
  791. ugeth_info("mflr : addr - 0x%08x, val - 0x%04x",
  792. (u32) & ugeth->p_rx_glbl_pram->mflr,
  793. in_be16(&ugeth->p_rx_glbl_pram->mflr));
  794. ugeth_info("minflr : addr - 0x%08x, val - 0x%04x",
  795. (u32) & ugeth->p_rx_glbl_pram->minflr,
  796. in_be16(&ugeth->p_rx_glbl_pram->minflr));
  797. ugeth_info("maxd1 : addr - 0x%08x, val - 0x%04x",
  798. (u32) & ugeth->p_rx_glbl_pram->maxd1,
  799. in_be16(&ugeth->p_rx_glbl_pram->maxd1));
  800. ugeth_info("maxd2 : addr - 0x%08x, val - 0x%04x",
  801. (u32) & ugeth->p_rx_glbl_pram->maxd2,
  802. in_be16(&ugeth->p_rx_glbl_pram->maxd2));
  803. ugeth_info("ecamptr : addr - 0x%08x, val - 0x%08x",
  804. (u32) & ugeth->p_rx_glbl_pram->ecamptr,
  805. in_be32(&ugeth->p_rx_glbl_pram->ecamptr));
  806. ugeth_info("l2qt : addr - 0x%08x, val - 0x%08x",
  807. (u32) & ugeth->p_rx_glbl_pram->l2qt,
  808. in_be32(&ugeth->p_rx_glbl_pram->l2qt));
  809. ugeth_info("l3qt[0] : addr - 0x%08x, val - 0x%08x",
  810. (u32) & ugeth->p_rx_glbl_pram->l3qt[0],
  811. in_be32(&ugeth->p_rx_glbl_pram->l3qt[0]));
  812. ugeth_info("l3qt[1] : addr - 0x%08x, val - 0x%08x",
  813. (u32) & ugeth->p_rx_glbl_pram->l3qt[1],
  814. in_be32(&ugeth->p_rx_glbl_pram->l3qt[1]));
  815. ugeth_info("l3qt[2] : addr - 0x%08x, val - 0x%08x",
  816. (u32) & ugeth->p_rx_glbl_pram->l3qt[2],
  817. in_be32(&ugeth->p_rx_glbl_pram->l3qt[2]));
  818. ugeth_info("l3qt[3] : addr - 0x%08x, val - 0x%08x",
  819. (u32) & ugeth->p_rx_glbl_pram->l3qt[3],
  820. in_be32(&ugeth->p_rx_glbl_pram->l3qt[3]));
  821. ugeth_info("l3qt[4] : addr - 0x%08x, val - 0x%08x",
  822. (u32) & ugeth->p_rx_glbl_pram->l3qt[4],
  823. in_be32(&ugeth->p_rx_glbl_pram->l3qt[4]));
  824. ugeth_info("l3qt[5] : addr - 0x%08x, val - 0x%08x",
  825. (u32) & ugeth->p_rx_glbl_pram->l3qt[5],
  826. in_be32(&ugeth->p_rx_glbl_pram->l3qt[5]));
  827. ugeth_info("l3qt[6] : addr - 0x%08x, val - 0x%08x",
  828. (u32) & ugeth->p_rx_glbl_pram->l3qt[6],
  829. in_be32(&ugeth->p_rx_glbl_pram->l3qt[6]));
  830. ugeth_info("l3qt[7] : addr - 0x%08x, val - 0x%08x",
  831. (u32) & ugeth->p_rx_glbl_pram->l3qt[7],
  832. in_be32(&ugeth->p_rx_glbl_pram->l3qt[7]));
  833. ugeth_info("vlantype : addr - 0x%08x, val - 0x%04x",
  834. (u32) & ugeth->p_rx_glbl_pram->vlantype,
  835. in_be16(&ugeth->p_rx_glbl_pram->vlantype));
  836. ugeth_info("vlantci : addr - 0x%08x, val - 0x%04x",
  837. (u32) & ugeth->p_rx_glbl_pram->vlantci,
  838. in_be16(&ugeth->p_rx_glbl_pram->vlantci));
  839. for (i = 0; i < 64; i++)
  840. ugeth_info
  841. ("addressfiltering[%d]: addr - 0x%08x, val - 0x%02x",
  842. i,
  843. (u32) & ugeth->p_rx_glbl_pram->addressfiltering[i],
  844. ugeth->p_rx_glbl_pram->addressfiltering[i]);
  845. ugeth_info("exfGlobalParam : addr - 0x%08x, val - 0x%08x",
  846. (u32) & ugeth->p_rx_glbl_pram->exfGlobalParam,
  847. in_be32(&ugeth->p_rx_glbl_pram->exfGlobalParam));
  848. }
  849. if (ugeth->p_send_q_mem_reg) {
  850. ugeth_info("Send Q memory registers:");
  851. ugeth_info("Base address: 0x%08x",
  852. (u32) ugeth->p_send_q_mem_reg);
  853. for (i = 0; i < ugeth->ug_info->numQueuesTx; i++) {
  854. ugeth_info("SQQD[%d]:", i);
  855. ugeth_info("Base address: 0x%08x",
  856. (u32) & ugeth->p_send_q_mem_reg->sqqd[i]);
  857. mem_disp((u8 *) & ugeth->p_send_q_mem_reg->sqqd[i],
  858. sizeof(struct ucc_geth_send_queue_qd));
  859. }
  860. }
  861. if (ugeth->p_scheduler) {
  862. ugeth_info("Scheduler:");
  863. ugeth_info("Base address: 0x%08x", (u32) ugeth->p_scheduler);
  864. mem_disp((u8 *) ugeth->p_scheduler,
  865. sizeof(*ugeth->p_scheduler));
  866. }
  867. if (ugeth->p_tx_fw_statistics_pram) {
  868. ugeth_info("TX FW statistics pram:");
  869. ugeth_info("Base address: 0x%08x",
  870. (u32) ugeth->p_tx_fw_statistics_pram);
  871. mem_disp((u8 *) ugeth->p_tx_fw_statistics_pram,
  872. sizeof(*ugeth->p_tx_fw_statistics_pram));
  873. }
  874. if (ugeth->p_rx_fw_statistics_pram) {
  875. ugeth_info("RX FW statistics pram:");
  876. ugeth_info("Base address: 0x%08x",
  877. (u32) ugeth->p_rx_fw_statistics_pram);
  878. mem_disp((u8 *) ugeth->p_rx_fw_statistics_pram,
  879. sizeof(*ugeth->p_rx_fw_statistics_pram));
  880. }
  881. if (ugeth->p_rx_irq_coalescing_tbl) {
  882. ugeth_info("RX IRQ coalescing tables:");
  883. ugeth_info("Base address: 0x%08x",
  884. (u32) ugeth->p_rx_irq_coalescing_tbl);
  885. for (i = 0; i < ugeth->ug_info->numQueuesRx; i++) {
  886. ugeth_info("RX IRQ coalescing table entry[%d]:", i);
  887. ugeth_info("Base address: 0x%08x",
  888. (u32) & ugeth->p_rx_irq_coalescing_tbl->
  889. coalescingentry[i]);
  890. ugeth_info
  891. ("interruptcoalescingmaxvalue: addr - 0x%08x, val - 0x%08x",
  892. (u32) & ugeth->p_rx_irq_coalescing_tbl->
  893. coalescingentry[i].interruptcoalescingmaxvalue,
  894. in_be32(&ugeth->p_rx_irq_coalescing_tbl->
  895. coalescingentry[i].
  896. interruptcoalescingmaxvalue));
  897. ugeth_info
  898. ("interruptcoalescingcounter : addr - 0x%08x, val - 0x%08x",
  899. (u32) & ugeth->p_rx_irq_coalescing_tbl->
  900. coalescingentry[i].interruptcoalescingcounter,
  901. in_be32(&ugeth->p_rx_irq_coalescing_tbl->
  902. coalescingentry[i].
  903. interruptcoalescingcounter));
  904. }
  905. }
  906. if (ugeth->p_rx_bd_qs_tbl) {
  907. ugeth_info("RX BD QS tables:");
  908. ugeth_info("Base address: 0x%08x", (u32) ugeth->p_rx_bd_qs_tbl);
  909. for (i = 0; i < ugeth->ug_info->numQueuesRx; i++) {
  910. ugeth_info("RX BD QS table[%d]:", i);
  911. ugeth_info("Base address: 0x%08x",
  912. (u32) & ugeth->p_rx_bd_qs_tbl[i]);
  913. ugeth_info
  914. ("bdbaseptr : addr - 0x%08x, val - 0x%08x",
  915. (u32) & ugeth->p_rx_bd_qs_tbl[i].bdbaseptr,
  916. in_be32(&ugeth->p_rx_bd_qs_tbl[i].bdbaseptr));
  917. ugeth_info
  918. ("bdptr : addr - 0x%08x, val - 0x%08x",
  919. (u32) & ugeth->p_rx_bd_qs_tbl[i].bdptr,
  920. in_be32(&ugeth->p_rx_bd_qs_tbl[i].bdptr));
  921. ugeth_info
  922. ("externalbdbaseptr: addr - 0x%08x, val - 0x%08x",
  923. (u32) & ugeth->p_rx_bd_qs_tbl[i].externalbdbaseptr,
  924. in_be32(&ugeth->p_rx_bd_qs_tbl[i].
  925. externalbdbaseptr));
  926. ugeth_info
  927. ("externalbdptr : addr - 0x%08x, val - 0x%08x",
  928. (u32) & ugeth->p_rx_bd_qs_tbl[i].externalbdptr,
  929. in_be32(&ugeth->p_rx_bd_qs_tbl[i].externalbdptr));
  930. ugeth_info("ucode RX Prefetched BDs:");
  931. ugeth_info("Base address: 0x%08x",
  932. (u32)
  933. qe_muram_addr(in_be32
  934. (&ugeth->p_rx_bd_qs_tbl[i].
  935. bdbaseptr)));
  936. mem_disp((u8 *)
  937. qe_muram_addr(in_be32
  938. (&ugeth->p_rx_bd_qs_tbl[i].
  939. bdbaseptr)),
  940. sizeof(struct ucc_geth_rx_prefetched_bds));
  941. }
  942. }
  943. if (ugeth->p_init_enet_param_shadow) {
  944. int size;
  945. ugeth_info("Init enet param shadow:");
  946. ugeth_info("Base address: 0x%08x",
  947. (u32) ugeth->p_init_enet_param_shadow);
  948. mem_disp((u8 *) ugeth->p_init_enet_param_shadow,
  949. sizeof(*ugeth->p_init_enet_param_shadow));
  950. size = sizeof(struct ucc_geth_thread_rx_pram);
  951. if (ugeth->ug_info->rxExtendedFiltering) {
  952. size +=
  953. THREAD_RX_PRAM_ADDITIONAL_FOR_EXTENDED_FILTERING;
  954. if (ugeth->ug_info->largestexternallookupkeysize ==
  955. QE_FLTR_TABLE_LOOKUP_KEY_SIZE_8_BYTES)
  956. size +=
  957. THREAD_RX_PRAM_ADDITIONAL_FOR_EXTENDED_FILTERING_8;
  958. if (ugeth->ug_info->largestexternallookupkeysize ==
  959. QE_FLTR_TABLE_LOOKUP_KEY_SIZE_16_BYTES)
  960. size +=
  961. THREAD_RX_PRAM_ADDITIONAL_FOR_EXTENDED_FILTERING_16;
  962. }
  963. dump_init_enet_entries(ugeth,
  964. &(ugeth->p_init_enet_param_shadow->
  965. txthread[0]),
  966. ENET_INIT_PARAM_MAX_ENTRIES_TX,
  967. sizeof(struct ucc_geth_thread_tx_pram),
  968. ugeth->ug_info->riscTx, 0);
  969. dump_init_enet_entries(ugeth,
  970. &(ugeth->p_init_enet_param_shadow->
  971. rxthread[0]),
  972. ENET_INIT_PARAM_MAX_ENTRIES_RX, size,
  973. ugeth->ug_info->riscRx, 1);
  974. }
  975. }
  976. #endif /* DEBUG */
  977. static void init_default_reg_vals(u32 __iomem *upsmr_register,
  978. u32 __iomem *maccfg1_register,
  979. u32 __iomem *maccfg2_register)
  980. {
  981. out_be32(upsmr_register, UCC_GETH_UPSMR_INIT);
  982. out_be32(maccfg1_register, UCC_GETH_MACCFG1_INIT);
  983. out_be32(maccfg2_register, UCC_GETH_MACCFG2_INIT);
  984. }
  985. static int init_half_duplex_params(int alt_beb,
  986. int back_pressure_no_backoff,
  987. int no_backoff,
  988. int excess_defer,
  989. u8 alt_beb_truncation,
  990. u8 max_retransmissions,
  991. u8 collision_window,
  992. u32 __iomem *hafdup_register)
  993. {
  994. u32 value = 0;
  995. if ((alt_beb_truncation > HALFDUP_ALT_BEB_TRUNCATION_MAX) ||
  996. (max_retransmissions > HALFDUP_MAX_RETRANSMISSION_MAX) ||
  997. (collision_window > HALFDUP_COLLISION_WINDOW_MAX))
  998. return -EINVAL;
  999. value = (u32) (alt_beb_truncation << HALFDUP_ALT_BEB_TRUNCATION_SHIFT);
  1000. if (alt_beb)
  1001. value |= HALFDUP_ALT_BEB;
  1002. if (back_pressure_no_backoff)
  1003. value |= HALFDUP_BACK_PRESSURE_NO_BACKOFF;
  1004. if (no_backoff)
  1005. value |= HALFDUP_NO_BACKOFF;
  1006. if (excess_defer)
  1007. value |= HALFDUP_EXCESSIVE_DEFER;
  1008. value |= (max_retransmissions << HALFDUP_MAX_RETRANSMISSION_SHIFT);
  1009. value |= collision_window;
  1010. out_be32(hafdup_register, value);
  1011. return 0;
  1012. }
  1013. static int init_inter_frame_gap_params(u8 non_btb_cs_ipg,
  1014. u8 non_btb_ipg,
  1015. u8 min_ifg,
  1016. u8 btb_ipg,
  1017. u32 __iomem *ipgifg_register)
  1018. {
  1019. u32 value = 0;
  1020. /* Non-Back-to-back IPG part 1 should be <= Non-Back-to-back
  1021. IPG part 2 */
  1022. if (non_btb_cs_ipg > non_btb_ipg)
  1023. return -EINVAL;
  1024. if ((non_btb_cs_ipg > IPGIFG_NON_BACK_TO_BACK_IFG_PART1_MAX) ||
  1025. (non_btb_ipg > IPGIFG_NON_BACK_TO_BACK_IFG_PART2_MAX) ||
  1026. /*(min_ifg > IPGIFG_MINIMUM_IFG_ENFORCEMENT_MAX) || */
  1027. (btb_ipg > IPGIFG_BACK_TO_BACK_IFG_MAX))
  1028. return -EINVAL;
  1029. value |=
  1030. ((non_btb_cs_ipg << IPGIFG_NON_BACK_TO_BACK_IFG_PART1_SHIFT) &
  1031. IPGIFG_NBTB_CS_IPG_MASK);
  1032. value |=
  1033. ((non_btb_ipg << IPGIFG_NON_BACK_TO_BACK_IFG_PART2_SHIFT) &
  1034. IPGIFG_NBTB_IPG_MASK);
  1035. value |=
  1036. ((min_ifg << IPGIFG_MINIMUM_IFG_ENFORCEMENT_SHIFT) &
  1037. IPGIFG_MIN_IFG_MASK);
  1038. value |= (btb_ipg & IPGIFG_BTB_IPG_MASK);
  1039. out_be32(ipgifg_register, value);
  1040. return 0;
  1041. }
  1042. int init_flow_control_params(u32 automatic_flow_control_mode,
  1043. int rx_flow_control_enable,
  1044. int tx_flow_control_enable,
  1045. u16 pause_period,
  1046. u16 extension_field,
  1047. u32 __iomem *upsmr_register,
  1048. u32 __iomem *uempr_register,
  1049. u32 __iomem *maccfg1_register)
  1050. {
  1051. u32 value = 0;
  1052. /* Set UEMPR register */
  1053. value = (u32) pause_period << UEMPR_PAUSE_TIME_VALUE_SHIFT;
  1054. value |= (u32) extension_field << UEMPR_EXTENDED_PAUSE_TIME_VALUE_SHIFT;
  1055. out_be32(uempr_register, value);
  1056. /* Set UPSMR register */
  1057. setbits32(upsmr_register, automatic_flow_control_mode);
  1058. value = in_be32(maccfg1_register);
  1059. if (rx_flow_control_enable)
  1060. value |= MACCFG1_FLOW_RX;
  1061. if (tx_flow_control_enable)
  1062. value |= MACCFG1_FLOW_TX;
  1063. out_be32(maccfg1_register, value);
  1064. return 0;
  1065. }
  1066. static int init_hw_statistics_gathering_mode(int enable_hardware_statistics,
  1067. int auto_zero_hardware_statistics,
  1068. u32 __iomem *upsmr_register,
  1069. u16 __iomem *uescr_register)
  1070. {
  1071. u16 uescr_value = 0;
  1072. /* Enable hardware statistics gathering if requested */
  1073. if (enable_hardware_statistics)
  1074. setbits32(upsmr_register, UCC_GETH_UPSMR_HSE);
  1075. /* Clear hardware statistics counters */
  1076. uescr_value = in_be16(uescr_register);
  1077. uescr_value |= UESCR_CLRCNT;
  1078. /* Automatically zero hardware statistics counters on read,
  1079. if requested */
  1080. if (auto_zero_hardware_statistics)
  1081. uescr_value |= UESCR_AUTOZ;
  1082. out_be16(uescr_register, uescr_value);
  1083. return 0;
  1084. }
  1085. static int init_firmware_statistics_gathering_mode(int
  1086. enable_tx_firmware_statistics,
  1087. int enable_rx_firmware_statistics,
  1088. u32 __iomem *tx_rmon_base_ptr,
  1089. u32 tx_firmware_statistics_structure_address,
  1090. u32 __iomem *rx_rmon_base_ptr,
  1091. u32 rx_firmware_statistics_structure_address,
  1092. u16 __iomem *temoder_register,
  1093. u32 __iomem *remoder_register)
  1094. {
  1095. /* Note: this function does not check if */
  1096. /* the parameters it receives are NULL */
  1097. if (enable_tx_firmware_statistics) {
  1098. out_be32(tx_rmon_base_ptr,
  1099. tx_firmware_statistics_structure_address);
  1100. setbits16(temoder_register, TEMODER_TX_RMON_STATISTICS_ENABLE);
  1101. }
  1102. if (enable_rx_firmware_statistics) {
  1103. out_be32(rx_rmon_base_ptr,
  1104. rx_firmware_statistics_structure_address);
  1105. setbits32(remoder_register, REMODER_RX_RMON_STATISTICS_ENABLE);
  1106. }
  1107. return 0;
  1108. }
  1109. static int init_mac_station_addr_regs(u8 address_byte_0,
  1110. u8 address_byte_1,
  1111. u8 address_byte_2,
  1112. u8 address_byte_3,
  1113. u8 address_byte_4,
  1114. u8 address_byte_5,
  1115. u32 __iomem *macstnaddr1_register,
  1116. u32 __iomem *macstnaddr2_register)
  1117. {
  1118. u32 value = 0;
  1119. /* Example: for a station address of 0x12345678ABCD, */
  1120. /* 0x12 is byte 0, 0x34 is byte 1 and so on and 0xCD is byte 5 */
  1121. /* MACSTNADDR1 Register: */
  1122. /* 0 7 8 15 */
  1123. /* station address byte 5 station address byte 4 */
  1124. /* 16 23 24 31 */
  1125. /* station address byte 3 station address byte 2 */
  1126. value |= (u32) ((address_byte_2 << 0) & 0x000000FF);
  1127. value |= (u32) ((address_byte_3 << 8) & 0x0000FF00);
  1128. value |= (u32) ((address_byte_4 << 16) & 0x00FF0000);
  1129. value |= (u32) ((address_byte_5 << 24) & 0xFF000000);
  1130. out_be32(macstnaddr1_register, value);
  1131. /* MACSTNADDR2 Register: */
  1132. /* 0 7 8 15 */
  1133. /* station address byte 1 station address byte 0 */
  1134. /* 16 23 24 31 */
  1135. /* reserved reserved */
  1136. value = 0;
  1137. value |= (u32) ((address_byte_0 << 16) & 0x00FF0000);
  1138. value |= (u32) ((address_byte_1 << 24) & 0xFF000000);
  1139. out_be32(macstnaddr2_register, value);
  1140. return 0;
  1141. }
  1142. static int init_check_frame_length_mode(int length_check,
  1143. u32 __iomem *maccfg2_register)
  1144. {
  1145. u32 value = 0;
  1146. value = in_be32(maccfg2_register);
  1147. if (length_check)
  1148. value |= MACCFG2_LC;
  1149. else
  1150. value &= ~MACCFG2_LC;
  1151. out_be32(maccfg2_register, value);
  1152. return 0;
  1153. }
  1154. static int init_preamble_length(u8 preamble_length,
  1155. u32 __iomem *maccfg2_register)
  1156. {
  1157. if ((preamble_length < 3) || (preamble_length > 7))
  1158. return -EINVAL;
  1159. clrsetbits_be32(maccfg2_register, MACCFG2_PREL_MASK,
  1160. preamble_length << MACCFG2_PREL_SHIFT);
  1161. return 0;
  1162. }
  1163. static int init_rx_parameters(int reject_broadcast,
  1164. int receive_short_frames,
  1165. int promiscuous, u32 __iomem *upsmr_register)
  1166. {
  1167. u32 value = 0;
  1168. value = in_be32(upsmr_register);
  1169. if (reject_broadcast)
  1170. value |= UCC_GETH_UPSMR_BRO;
  1171. else
  1172. value &= ~UCC_GETH_UPSMR_BRO;
  1173. if (receive_short_frames)
  1174. value |= UCC_GETH_UPSMR_RSH;
  1175. else
  1176. value &= ~UCC_GETH_UPSMR_RSH;
  1177. if (promiscuous)
  1178. value |= UCC_GETH_UPSMR_PRO;
  1179. else
  1180. value &= ~UCC_GETH_UPSMR_PRO;
  1181. out_be32(upsmr_register, value);
  1182. return 0;
  1183. }
  1184. static int init_max_rx_buff_len(u16 max_rx_buf_len,
  1185. u16 __iomem *mrblr_register)
  1186. {
  1187. /* max_rx_buf_len value must be a multiple of 128 */
  1188. if ((max_rx_buf_len == 0) ||
  1189. (max_rx_buf_len % UCC_GETH_MRBLR_ALIGNMENT))
  1190. return -EINVAL;
  1191. out_be16(mrblr_register, max_rx_buf_len);
  1192. return 0;
  1193. }
  1194. static int init_min_frame_len(u16 min_frame_length,
  1195. u16 __iomem *minflr_register,
  1196. u16 __iomem *mrblr_register)
  1197. {
  1198. u16 mrblr_value = 0;
  1199. mrblr_value = in_be16(mrblr_register);
  1200. if (min_frame_length >= (mrblr_value - 4))
  1201. return -EINVAL;
  1202. out_be16(minflr_register, min_frame_length);
  1203. return 0;
  1204. }
  1205. static int adjust_enet_interface(struct ucc_geth_private *ugeth)
  1206. {
  1207. struct ucc_geth_info *ug_info;
  1208. struct ucc_geth __iomem *ug_regs;
  1209. struct ucc_fast __iomem *uf_regs;
  1210. int ret_val;
  1211. u32 upsmr, maccfg2;
  1212. u16 value;
  1213. ugeth_vdbg("%s: IN", __func__);
  1214. ug_info = ugeth->ug_info;
  1215. ug_regs = ugeth->ug_regs;
  1216. uf_regs = ugeth->uccf->uf_regs;
  1217. /* Set MACCFG2 */
  1218. maccfg2 = in_be32(&ug_regs->maccfg2);
  1219. maccfg2 &= ~MACCFG2_INTERFACE_MODE_MASK;
  1220. if ((ugeth->max_speed == SPEED_10) ||
  1221. (ugeth->max_speed == SPEED_100))
  1222. maccfg2 |= MACCFG2_INTERFACE_MODE_NIBBLE;
  1223. else if (ugeth->max_speed == SPEED_1000)
  1224. maccfg2 |= MACCFG2_INTERFACE_MODE_BYTE;
  1225. maccfg2 |= ug_info->padAndCrc;
  1226. out_be32(&ug_regs->maccfg2, maccfg2);
  1227. /* Set UPSMR */
  1228. upsmr = in_be32(&uf_regs->upsmr);
  1229. upsmr &= ~(UCC_GETH_UPSMR_RPM | UCC_GETH_UPSMR_R10M |
  1230. UCC_GETH_UPSMR_TBIM | UCC_GETH_UPSMR_RMM);
  1231. if ((ugeth->phy_interface == PHY_INTERFACE_MODE_RMII) ||
  1232. (ugeth->phy_interface == PHY_INTERFACE_MODE_RGMII) ||
  1233. (ugeth->phy_interface == PHY_INTERFACE_MODE_RGMII_ID) ||
  1234. (ugeth->phy_interface == PHY_INTERFACE_MODE_RGMII_RXID) ||
  1235. (ugeth->phy_interface == PHY_INTERFACE_MODE_RGMII_TXID) ||
  1236. (ugeth->phy_interface == PHY_INTERFACE_MODE_RTBI)) {
  1237. if (ugeth->phy_interface != PHY_INTERFACE_MODE_RMII)
  1238. upsmr |= UCC_GETH_UPSMR_RPM;
  1239. switch (ugeth->max_speed) {
  1240. case SPEED_10:
  1241. upsmr |= UCC_GETH_UPSMR_R10M;
  1242. /* FALLTHROUGH */
  1243. case SPEED_100:
  1244. if (ugeth->phy_interface != PHY_INTERFACE_MODE_RTBI)
  1245. upsmr |= UCC_GETH_UPSMR_RMM;
  1246. }
  1247. }
  1248. if ((ugeth->phy_interface == PHY_INTERFACE_MODE_TBI) ||
  1249. (ugeth->phy_interface == PHY_INTERFACE_MODE_RTBI)) {
  1250. upsmr |= UCC_GETH_UPSMR_TBIM;
  1251. }
  1252. if ((ugeth->phy_interface == PHY_INTERFACE_MODE_SGMII))
  1253. upsmr |= UCC_GETH_UPSMR_SGMM;
  1254. out_be32(&uf_regs->upsmr, upsmr);
  1255. /* Disable autonegotiation in tbi mode, because by default it
  1256. comes up in autonegotiation mode. */
  1257. /* Note that this depends on proper setting in utbipar register. */
  1258. if ((ugeth->phy_interface == PHY_INTERFACE_MODE_TBI) ||
  1259. (ugeth->phy_interface == PHY_INTERFACE_MODE_RTBI)) {
  1260. struct ucc_geth_info *ug_info = ugeth->ug_info;
  1261. struct phy_device *tbiphy;
  1262. if (!ug_info->tbi_node)
  1263. ugeth_warn("TBI mode requires that the device "
  1264. "tree specify a tbi-handle\n");
  1265. tbiphy = of_phy_find_device(ug_info->tbi_node);
  1266. if (!tbiphy)
  1267. ugeth_warn("Could not get TBI device\n");
  1268. value = phy_read(tbiphy, ENET_TBI_MII_CR);
  1269. value &= ~0x1000; /* Turn off autonegotiation */
  1270. phy_write(tbiphy, ENET_TBI_MII_CR, value);
  1271. }
  1272. init_check_frame_length_mode(ug_info->lengthCheckRx, &ug_regs->maccfg2);
  1273. ret_val = init_preamble_length(ug_info->prel, &ug_regs->maccfg2);
  1274. if (ret_val != 0) {
  1275. if (netif_msg_probe(ugeth))
  1276. ugeth_err("%s: Preamble length must be between 3 and 7 inclusive.",
  1277. __func__);
  1278. return ret_val;
  1279. }
  1280. return 0;
  1281. }
  1282. static int ugeth_graceful_stop_tx(struct ucc_geth_private *ugeth)
  1283. {
  1284. struct ucc_fast_private *uccf;
  1285. u32 cecr_subblock;
  1286. u32 temp;
  1287. int i = 10;
  1288. uccf = ugeth->uccf;
  1289. /* Mask GRACEFUL STOP TX interrupt bit and clear it */
  1290. clrbits32(uccf->p_uccm, UCC_GETH_UCCE_GRA);
  1291. out_be32(uccf->p_ucce, UCC_GETH_UCCE_GRA); /* clear by writing 1 */
  1292. /* Issue host command */
  1293. cecr_subblock =
  1294. ucc_fast_get_qe_cr_subblock(ugeth->ug_info->uf_info.ucc_num);
  1295. qe_issue_cmd(QE_GRACEFUL_STOP_TX, cecr_subblock,
  1296. QE_CR_PROTOCOL_ETHERNET, 0);
  1297. /* Wait for command to complete */
  1298. do {
  1299. msleep(10);
  1300. temp = in_be32(uccf->p_ucce);
  1301. } while (!(temp & UCC_GETH_UCCE_GRA) && --i);
  1302. uccf->stopped_tx = 1;
  1303. return 0;
  1304. }
  1305. static int ugeth_graceful_stop_rx(struct ucc_geth_private *ugeth)
  1306. {
  1307. struct ucc_fast_private *uccf;
  1308. u32 cecr_subblock;
  1309. u8 temp;
  1310. int i = 10;
  1311. uccf = ugeth->uccf;
  1312. /* Clear acknowledge bit */
  1313. temp = in_8(&ugeth->p_rx_glbl_pram->rxgstpack);
  1314. temp &= ~GRACEFUL_STOP_ACKNOWLEDGE_RX;
  1315. out_8(&ugeth->p_rx_glbl_pram->rxgstpack, temp);
  1316. /* Keep issuing command and checking acknowledge bit until
  1317. it is asserted, according to spec */
  1318. do {
  1319. /* Issue host command */
  1320. cecr_subblock =
  1321. ucc_fast_get_qe_cr_subblock(ugeth->ug_info->uf_info.
  1322. ucc_num);
  1323. qe_issue_cmd(QE_GRACEFUL_STOP_RX, cecr_subblock,
  1324. QE_CR_PROTOCOL_ETHERNET, 0);
  1325. msleep(10);
  1326. temp = in_8(&ugeth->p_rx_glbl_pram->rxgstpack);
  1327. } while (!(temp & GRACEFUL_STOP_ACKNOWLEDGE_RX) && --i);
  1328. uccf->stopped_rx = 1;
  1329. return 0;
  1330. }
  1331. static int ugeth_restart_tx(struct ucc_geth_private *ugeth)
  1332. {
  1333. struct ucc_fast_private *uccf;
  1334. u32 cecr_subblock;
  1335. uccf = ugeth->uccf;
  1336. cecr_subblock =
  1337. ucc_fast_get_qe_cr_subblock(ugeth->ug_info->uf_info.ucc_num);
  1338. qe_issue_cmd(QE_RESTART_TX, cecr_subblock, QE_CR_PROTOCOL_ETHERNET, 0);
  1339. uccf->stopped_tx = 0;
  1340. return 0;
  1341. }
  1342. static int ugeth_restart_rx(struct ucc_geth_private *ugeth)
  1343. {
  1344. struct ucc_fast_private *uccf;
  1345. u32 cecr_subblock;
  1346. uccf = ugeth->uccf;
  1347. cecr_subblock =
  1348. ucc_fast_get_qe_cr_subblock(ugeth->ug_info->uf_info.ucc_num);
  1349. qe_issue_cmd(QE_RESTART_RX, cecr_subblock, QE_CR_PROTOCOL_ETHERNET,
  1350. 0);
  1351. uccf->stopped_rx = 0;
  1352. return 0;
  1353. }
  1354. static int ugeth_enable(struct ucc_geth_private *ugeth, enum comm_dir mode)
  1355. {
  1356. struct ucc_fast_private *uccf;
  1357. int enabled_tx, enabled_rx;
  1358. uccf = ugeth->uccf;
  1359. /* check if the UCC number is in range. */
  1360. if (ugeth->ug_info->uf_info.ucc_num >= UCC_MAX_NUM) {
  1361. if (netif_msg_probe(ugeth))
  1362. ugeth_err("%s: ucc_num out of range.", __func__);
  1363. return -EINVAL;
  1364. }
  1365. enabled_tx = uccf->enabled_tx;
  1366. enabled_rx = uccf->enabled_rx;
  1367. /* Get Tx and Rx going again, in case this channel was actively
  1368. disabled. */
  1369. if ((mode & COMM_DIR_TX) && (!enabled_tx) && uccf->stopped_tx)
  1370. ugeth_restart_tx(ugeth);
  1371. if ((mode & COMM_DIR_RX) && (!enabled_rx) && uccf->stopped_rx)
  1372. ugeth_restart_rx(ugeth);
  1373. ucc_fast_enable(uccf, mode); /* OK to do even if not disabled */
  1374. return 0;
  1375. }
  1376. static int ugeth_disable(struct ucc_geth_private *ugeth, enum comm_dir mode)
  1377. {
  1378. struct ucc_fast_private *uccf;
  1379. uccf = ugeth->uccf;
  1380. /* check if the UCC number is in range. */
  1381. if (ugeth->ug_info->uf_info.ucc_num >= UCC_MAX_NUM) {
  1382. if (netif_msg_probe(ugeth))
  1383. ugeth_err("%s: ucc_num out of range.", __func__);
  1384. return -EINVAL;
  1385. }
  1386. /* Stop any transmissions */
  1387. if ((mode & COMM_DIR_TX) && uccf->enabled_tx && !uccf->stopped_tx)
  1388. ugeth_graceful_stop_tx(ugeth);
  1389. /* Stop any receptions */
  1390. if ((mode & COMM_DIR_RX) && uccf->enabled_rx && !uccf->stopped_rx)
  1391. ugeth_graceful_stop_rx(ugeth);
  1392. ucc_fast_disable(ugeth->uccf, mode); /* OK to do even if not enabled */
  1393. return 0;
  1394. }
  1395. static void ugeth_quiesce(struct ucc_geth_private *ugeth)
  1396. {
  1397. /* Prevent any further xmits, plus detach the device. */
  1398. netif_device_detach(ugeth->ndev);
  1399. /* Wait for any current xmits to finish. */
  1400. netif_tx_disable(ugeth->ndev);
  1401. /* Disable the interrupt to avoid NAPI rescheduling. */
  1402. disable_irq(ugeth->ug_info->uf_info.irq);
  1403. /* Stop NAPI, and possibly wait for its completion. */
  1404. napi_disable(&ugeth->napi);
  1405. }
  1406. static void ugeth_activate(struct ucc_geth_private *ugeth)
  1407. {
  1408. napi_enable(&ugeth->napi);
  1409. enable_irq(ugeth->ug_info->uf_info.irq);
  1410. netif_device_attach(ugeth->ndev);
  1411. }
  1412. /* Called every time the controller might need to be made
  1413. * aware of new link state. The PHY code conveys this
  1414. * information through variables in the ugeth structure, and this
  1415. * function converts those variables into the appropriate
  1416. * register values, and can bring down the device if needed.
  1417. */
  1418. static void adjust_link(struct net_device *dev)
  1419. {
  1420. struct ucc_geth_private *ugeth = netdev_priv(dev);
  1421. struct ucc_geth __iomem *ug_regs;
  1422. struct ucc_fast __iomem *uf_regs;
  1423. struct phy_device *phydev = ugeth->phydev;
  1424. int new_state = 0;
  1425. ug_regs = ugeth->ug_regs;
  1426. uf_regs = ugeth->uccf->uf_regs;
  1427. if (phydev->link) {
  1428. u32 tempval = in_be32(&ug_regs->maccfg2);
  1429. u32 upsmr = in_be32(&uf_regs->upsmr);
  1430. /* Now we make sure that we can be in full duplex mode.
  1431. * If not, we operate in half-duplex mode. */
  1432. if (phydev->duplex != ugeth->oldduplex) {
  1433. new_state = 1;
  1434. if (!(phydev->duplex))
  1435. tempval &= ~(MACCFG2_FDX);
  1436. else
  1437. tempval |= MACCFG2_FDX;
  1438. ugeth->oldduplex = phydev->duplex;
  1439. }
  1440. if (phydev->speed != ugeth->oldspeed) {
  1441. new_state = 1;
  1442. switch (phydev->speed) {
  1443. case SPEED_1000:
  1444. tempval = ((tempval &
  1445. ~(MACCFG2_INTERFACE_MODE_MASK)) |
  1446. MACCFG2_INTERFACE_MODE_BYTE);
  1447. break;
  1448. case SPEED_100:
  1449. case SPEED_10:
  1450. tempval = ((tempval &
  1451. ~(MACCFG2_INTERFACE_MODE_MASK)) |
  1452. MACCFG2_INTERFACE_MODE_NIBBLE);
  1453. /* if reduced mode, re-set UPSMR.R10M */
  1454. if ((ugeth->phy_interface == PHY_INTERFACE_MODE_RMII) ||
  1455. (ugeth->phy_interface == PHY_INTERFACE_MODE_RGMII) ||
  1456. (ugeth->phy_interface == PHY_INTERFACE_MODE_RGMII_ID) ||
  1457. (ugeth->phy_interface == PHY_INTERFACE_MODE_RGMII_RXID) ||
  1458. (ugeth->phy_interface == PHY_INTERFACE_MODE_RGMII_TXID) ||
  1459. (ugeth->phy_interface == PHY_INTERFACE_MODE_RTBI)) {
  1460. if (phydev->speed == SPEED_10)
  1461. upsmr |= UCC_GETH_UPSMR_R10M;
  1462. else
  1463. upsmr &= ~UCC_GETH_UPSMR_R10M;
  1464. }
  1465. break;
  1466. default:
  1467. if (netif_msg_link(ugeth))
  1468. ugeth_warn(
  1469. "%s: Ack! Speed (%d) is not 10/100/1000!",
  1470. dev->name, phydev->speed);
  1471. break;
  1472. }
  1473. ugeth->oldspeed = phydev->speed;
  1474. }
  1475. if (!ugeth->oldlink) {
  1476. new_state = 1;
  1477. ugeth->oldlink = 1;
  1478. }
  1479. if (new_state) {
  1480. /*
  1481. * To change the MAC configuration we need to disable
  1482. * the controller. To do so, we have to either grab
  1483. * ugeth->lock, which is a bad idea since 'graceful
  1484. * stop' commands might take quite a while, or we can
  1485. * quiesce driver's activity.
  1486. */
  1487. ugeth_quiesce(ugeth);
  1488. ugeth_disable(ugeth, COMM_DIR_RX_AND_TX);
  1489. out_be32(&ug_regs->maccfg2, tempval);
  1490. out_be32(&uf_regs->upsmr, upsmr);
  1491. ugeth_enable(ugeth, COMM_DIR_RX_AND_TX);
  1492. ugeth_activate(ugeth);
  1493. }
  1494. } else if (ugeth->oldlink) {
  1495. new_state = 1;
  1496. ugeth->oldlink = 0;
  1497. ugeth->oldspeed = 0;
  1498. ugeth->oldduplex = -1;
  1499. }
  1500. if (new_state && netif_msg_link(ugeth))
  1501. phy_print_status(phydev);
  1502. }
  1503. /* Initialize TBI PHY interface for communicating with the
  1504. * SERDES lynx PHY on the chip. We communicate with this PHY
  1505. * through the MDIO bus on each controller, treating it as a
  1506. * "normal" PHY at the address found in the UTBIPA register. We assume
  1507. * that the UTBIPA register is valid. Either the MDIO bus code will set
  1508. * it to a value that doesn't conflict with other PHYs on the bus, or the
  1509. * value doesn't matter, as there are no other PHYs on the bus.
  1510. */
  1511. static void uec_configure_serdes(struct net_device *dev)
  1512. {
  1513. struct ucc_geth_private *ugeth = netdev_priv(dev);
  1514. struct ucc_geth_info *ug_info = ugeth->ug_info;
  1515. struct phy_device *tbiphy;
  1516. if (!ug_info->tbi_node) {
  1517. dev_warn(&dev->dev, "SGMII mode requires that the device "
  1518. "tree specify a tbi-handle\n");
  1519. return;
  1520. }
  1521. tbiphy = of_phy_find_device(ug_info->tbi_node);
  1522. if (!tbiphy) {
  1523. dev_err(&dev->dev, "error: Could not get TBI device\n");
  1524. return;
  1525. }
  1526. /*
  1527. * If the link is already up, we must already be ok, and don't need to
  1528. * configure and reset the TBI<->SerDes link. Maybe U-Boot configured
  1529. * everything for us? Resetting it takes the link down and requires
  1530. * several seconds for it to come back.
  1531. */
  1532. if (phy_read(tbiphy, ENET_TBI_MII_SR) & TBISR_LSTATUS)
  1533. return;
  1534. /* Single clk mode, mii mode off(for serdes communication) */
  1535. phy_write(tbiphy, ENET_TBI_MII_ANA, TBIANA_SETTINGS);
  1536. phy_write(tbiphy, ENET_TBI_MII_TBICON, TBICON_CLK_SELECT);
  1537. phy_write(tbiphy, ENET_TBI_MII_CR, TBICR_SETTINGS);
  1538. }
  1539. /* Configure the PHY for dev.
  1540. * returns 0 if success. -1 if failure
  1541. */
  1542. static int init_phy(struct net_device *dev)
  1543. {
  1544. struct ucc_geth_private *priv = netdev_priv(dev);
  1545. struct ucc_geth_info *ug_info = priv->ug_info;
  1546. struct phy_device *phydev;
  1547. priv->oldlink = 0;
  1548. priv->oldspeed = 0;
  1549. priv->oldduplex = -1;
  1550. phydev = of_phy_connect(dev, ug_info->phy_node, &adjust_link, 0,
  1551. priv->phy_interface);
  1552. if (!phydev)
  1553. phydev = of_phy_connect_fixed_link(dev, &adjust_link,
  1554. priv->phy_interface);
  1555. if (!phydev) {
  1556. dev_err(&dev->dev, "Could not attach to PHY\n");
  1557. return -ENODEV;
  1558. }
  1559. if (priv->phy_interface == PHY_INTERFACE_MODE_SGMII)
  1560. uec_configure_serdes(dev);
  1561. phydev->supported &= (ADVERTISED_10baseT_Half |
  1562. ADVERTISED_10baseT_Full |
  1563. ADVERTISED_100baseT_Half |
  1564. ADVERTISED_100baseT_Full);
  1565. if (priv->max_speed == SPEED_1000)
  1566. phydev->supported |= ADVERTISED_1000baseT_Full;
  1567. phydev->advertising = phydev->supported;
  1568. priv->phydev = phydev;
  1569. return 0;
  1570. }
  1571. static void ugeth_dump_regs(struct ucc_geth_private *ugeth)
  1572. {
  1573. #ifdef DEBUG
  1574. ucc_fast_dump_regs(ugeth->uccf);
  1575. dump_regs(ugeth);
  1576. dump_bds(ugeth);
  1577. #endif
  1578. }
  1579. static int ugeth_82xx_filtering_clear_all_addr_in_hash(struct ucc_geth_private *
  1580. ugeth,
  1581. enum enet_addr_type
  1582. enet_addr_type)
  1583. {
  1584. struct ucc_geth_82xx_address_filtering_pram __iomem *p_82xx_addr_filt;
  1585. struct ucc_fast_private *uccf;
  1586. enum comm_dir comm_dir;
  1587. struct list_head *p_lh;
  1588. u16 i, num;
  1589. u32 __iomem *addr_h;
  1590. u32 __iomem *addr_l;
  1591. u8 *p_counter;
  1592. uccf = ugeth->uccf;
  1593. p_82xx_addr_filt =
  1594. (struct ucc_geth_82xx_address_filtering_pram __iomem *)
  1595. ugeth->p_rx_glbl_pram->addressfiltering;
  1596. if (enet_addr_type == ENET_ADDR_TYPE_GROUP) {
  1597. addr_h = &(p_82xx_addr_filt->gaddr_h);
  1598. addr_l = &(p_82xx_addr_filt->gaddr_l);
  1599. p_lh = &ugeth->group_hash_q;
  1600. p_counter = &(ugeth->numGroupAddrInHash);
  1601. } else if (enet_addr_type == ENET_ADDR_TYPE_INDIVIDUAL) {
  1602. addr_h = &(p_82xx_addr_filt->iaddr_h);
  1603. addr_l = &(p_82xx_addr_filt->iaddr_l);
  1604. p_lh = &ugeth->ind_hash_q;
  1605. p_counter = &(ugeth->numIndAddrInHash);
  1606. } else
  1607. return -EINVAL;
  1608. comm_dir = 0;
  1609. if (uccf->enabled_tx)
  1610. comm_dir |= COMM_DIR_TX;
  1611. if (uccf->enabled_rx)
  1612. comm_dir |= COMM_DIR_RX;
  1613. if (comm_dir)
  1614. ugeth_disable(ugeth, comm_dir);
  1615. /* Clear the hash table. */
  1616. out_be32(addr_h, 0x00000000);
  1617. out_be32(addr_l, 0x00000000);
  1618. if (!p_lh)
  1619. return 0;
  1620. num = *p_counter;
  1621. /* Delete all remaining CQ elements */
  1622. for (i = 0; i < num; i++)
  1623. put_enet_addr_container(ENET_ADDR_CONT_ENTRY(dequeue(p_lh)));
  1624. *p_counter = 0;
  1625. if (comm_dir)
  1626. ugeth_enable(ugeth, comm_dir);
  1627. return 0;
  1628. }
  1629. static int ugeth_82xx_filtering_clear_addr_in_paddr(struct ucc_geth_private *ugeth,
  1630. u8 paddr_num)
  1631. {
  1632. ugeth->indAddrRegUsed[paddr_num] = 0; /* mark this paddr as not used */
  1633. return hw_clear_addr_in_paddr(ugeth, paddr_num);/* clear in hardware */
  1634. }
  1635. static void ucc_geth_memclean(struct ucc_geth_private *ugeth)
  1636. {
  1637. u16 i, j;
  1638. u8 __iomem *bd;
  1639. if (!ugeth)
  1640. return;
  1641. if (ugeth->uccf) {
  1642. ucc_fast_free(ugeth->uccf);
  1643. ugeth->uccf = NULL;
  1644. }
  1645. if (ugeth->p_thread_data_tx) {
  1646. qe_muram_free(ugeth->thread_dat_tx_offset);
  1647. ugeth->p_thread_data_tx = NULL;
  1648. }
  1649. if (ugeth->p_thread_data_rx) {
  1650. qe_muram_free(ugeth->thread_dat_rx_offset);
  1651. ugeth->p_thread_data_rx = NULL;
  1652. }
  1653. if (ugeth->p_exf_glbl_param) {
  1654. qe_muram_free(ugeth->exf_glbl_param_offset);
  1655. ugeth->p_exf_glbl_param = NULL;
  1656. }
  1657. if (ugeth->p_rx_glbl_pram) {
  1658. qe_muram_free(ugeth->rx_glbl_pram_offset);
  1659. ugeth->p_rx_glbl_pram = NULL;
  1660. }
  1661. if (ugeth->p_tx_glbl_pram) {
  1662. qe_muram_free(ugeth->tx_glbl_pram_offset);
  1663. ugeth->p_tx_glbl_pram = NULL;
  1664. }
  1665. if (ugeth->p_send_q_mem_reg) {
  1666. qe_muram_free(ugeth->send_q_mem_reg_offset);
  1667. ugeth->p_send_q_mem_reg = NULL;
  1668. }
  1669. if (ugeth->p_scheduler) {
  1670. qe_muram_free(ugeth->scheduler_offset);
  1671. ugeth->p_scheduler = NULL;
  1672. }
  1673. if (ugeth->p_tx_fw_statistics_pram) {
  1674. qe_muram_free(ugeth->tx_fw_statistics_pram_offset);
  1675. ugeth->p_tx_fw_statistics_pram = NULL;
  1676. }
  1677. if (ugeth->p_rx_fw_statistics_pram) {
  1678. qe_muram_free(ugeth->rx_fw_statistics_pram_offset);
  1679. ugeth->p_rx_fw_statistics_pram = NULL;
  1680. }
  1681. if (ugeth->p_rx_irq_coalescing_tbl) {
  1682. qe_muram_free(ugeth->rx_irq_coalescing_tbl_offset);
  1683. ugeth->p_rx_irq_coalescing_tbl = NULL;
  1684. }
  1685. if (ugeth->p_rx_bd_qs_tbl) {
  1686. qe_muram_free(ugeth->rx_bd_qs_tbl_offset);
  1687. ugeth->p_rx_bd_qs_tbl = NULL;
  1688. }
  1689. if (ugeth->p_init_enet_param_shadow) {
  1690. return_init_enet_entries(ugeth,
  1691. &(ugeth->p_init_enet_param_shadow->
  1692. rxthread[0]),
  1693. ENET_INIT_PARAM_MAX_ENTRIES_RX,
  1694. ugeth->ug_info->riscRx, 1);
  1695. return_init_enet_entries(ugeth,
  1696. &(ugeth->p_init_enet_param_shadow->
  1697. txthread[0]),
  1698. ENET_INIT_PARAM_MAX_ENTRIES_TX,
  1699. ugeth->ug_info->riscTx, 0);
  1700. kfree(ugeth->p_init_enet_param_shadow);
  1701. ugeth->p_init_enet_param_shadow = NULL;
  1702. }
  1703. for (i = 0; i < ugeth->ug_info->numQueuesTx; i++) {
  1704. bd = ugeth->p_tx_bd_ring[i];
  1705. if (!bd)
  1706. continue;
  1707. for (j = 0; j < ugeth->ug_info->bdRingLenTx[i]; j++) {
  1708. if (ugeth->tx_skbuff[i][j]) {
  1709. dma_unmap_single(ugeth->dev,
  1710. in_be32(&((struct qe_bd __iomem *)bd)->buf),
  1711. (in_be32((u32 __iomem *)bd) &
  1712. BD_LENGTH_MASK),
  1713. DMA_TO_DEVICE);
  1714. dev_kfree_skb_any(ugeth->tx_skbuff[i][j]);
  1715. ugeth->tx_skbuff[i][j] = NULL;
  1716. }
  1717. }
  1718. kfree(ugeth->tx_skbuff[i]);
  1719. if (ugeth->p_tx_bd_ring[i]) {
  1720. if (ugeth->ug_info->uf_info.bd_mem_part ==
  1721. MEM_PART_SYSTEM)
  1722. kfree((void *)ugeth->tx_bd_ring_offset[i]);
  1723. else if (ugeth->ug_info->uf_info.bd_mem_part ==
  1724. MEM_PART_MURAM)
  1725. qe_muram_free(ugeth->tx_bd_ring_offset[i]);
  1726. ugeth->p_tx_bd_ring[i] = NULL;
  1727. }
  1728. }
  1729. for (i = 0; i < ugeth->ug_info->numQueuesRx; i++) {
  1730. if (ugeth->p_rx_bd_ring[i]) {
  1731. /* Return existing data buffers in ring */
  1732. bd = ugeth->p_rx_bd_ring[i];
  1733. for (j = 0; j < ugeth->ug_info->bdRingLenRx[i]; j++) {
  1734. if (ugeth->rx_skbuff[i][j]) {
  1735. dma_unmap_single(ugeth->dev,
  1736. in_be32(&((struct qe_bd __iomem *)bd)->buf),
  1737. ugeth->ug_info->
  1738. uf_info.max_rx_buf_length +
  1739. UCC_GETH_RX_DATA_BUF_ALIGNMENT,
  1740. DMA_FROM_DEVICE);
  1741. dev_kfree_skb_any(
  1742. ugeth->rx_skbuff[i][j]);
  1743. ugeth->rx_skbuff[i][j] = NULL;
  1744. }
  1745. bd += sizeof(struct qe_bd);
  1746. }
  1747. kfree(ugeth->rx_skbuff[i]);
  1748. if (ugeth->ug_info->uf_info.bd_mem_part ==
  1749. MEM_PART_SYSTEM)
  1750. kfree((void *)ugeth->rx_bd_ring_offset[i]);
  1751. else if (ugeth->ug_info->uf_info.bd_mem_part ==
  1752. MEM_PART_MURAM)
  1753. qe_muram_free(ugeth->rx_bd_ring_offset[i]);
  1754. ugeth->p_rx_bd_ring[i] = NULL;
  1755. }
  1756. }
  1757. while (!list_empty(&ugeth->group_hash_q))
  1758. put_enet_addr_container(ENET_ADDR_CONT_ENTRY
  1759. (dequeue(&ugeth->group_hash_q)));
  1760. while (!list_empty(&ugeth->ind_hash_q))
  1761. put_enet_addr_container(ENET_ADDR_CONT_ENTRY
  1762. (dequeue(&ugeth->ind_hash_q)));
  1763. if (ugeth->ug_regs) {
  1764. iounmap(ugeth->ug_regs);
  1765. ugeth->ug_regs = NULL;
  1766. }
  1767. skb_queue_purge(&ugeth->rx_recycle);
  1768. }
  1769. static void ucc_geth_set_multi(struct net_device *dev)
  1770. {
  1771. struct ucc_geth_private *ugeth;
  1772. struct dev_mc_list *dmi;
  1773. struct ucc_fast __iomem *uf_regs;
  1774. struct ucc_geth_82xx_address_filtering_pram __iomem *p_82xx_addr_filt;
  1775. int i;
  1776. ugeth = netdev_priv(dev);
  1777. uf_regs = ugeth->uccf->uf_regs;
  1778. if (dev->flags & IFF_PROMISC) {
  1779. setbits32(&uf_regs->upsmr, UCC_GETH_UPSMR_PRO);
  1780. } else {
  1781. clrbits32(&uf_regs->upsmr, UCC_GETH_UPSMR_PRO);
  1782. p_82xx_addr_filt =
  1783. (struct ucc_geth_82xx_address_filtering_pram __iomem *) ugeth->
  1784. p_rx_glbl_pram->addressfiltering;
  1785. if (dev->flags & IFF_ALLMULTI) {
  1786. /* Catch all multicast addresses, so set the
  1787. * filter to all 1's.
  1788. */
  1789. out_be32(&p_82xx_addr_filt->gaddr_h, 0xffffffff);
  1790. out_be32(&p_82xx_addr_filt->gaddr_l, 0xffffffff);
  1791. } else {
  1792. /* Clear filter and add the addresses in the list.
  1793. */
  1794. out_be32(&p_82xx_addr_filt->gaddr_h, 0x0);
  1795. out_be32(&p_82xx_addr_filt->gaddr_l, 0x0);
  1796. dmi = dev->mc_list;
  1797. for (i = 0; i < netdev_mc_count(dev);
  1798. i++, dmi = dmi->next) {
  1799. /* Only support group multicast for now.
  1800. */
  1801. if (!(dmi->dmi_addr[0] & 1))
  1802. continue;
  1803. /* Ask CPM to run CRC and set bit in
  1804. * filter mask.
  1805. */
  1806. hw_add_addr_in_hash(ugeth, dmi->dmi_addr);
  1807. }
  1808. }
  1809. }
  1810. }
  1811. static void ucc_geth_stop(struct ucc_geth_private *ugeth)
  1812. {
  1813. struct ucc_geth __iomem *ug_regs = ugeth->ug_regs;
  1814. struct phy_device *phydev = ugeth->phydev;
  1815. ugeth_vdbg("%s: IN", __func__);
  1816. /* Disable the controller */
  1817. ugeth_disable(ugeth, COMM_DIR_RX_AND_TX);
  1818. /* Tell the kernel the link is down */
  1819. phy_stop(phydev);
  1820. /* Mask all interrupts */
  1821. out_be32(ugeth->uccf->p_uccm, 0x00000000);
  1822. /* Clear all interrupts */
  1823. out_be32(ugeth->uccf->p_ucce, 0xffffffff);
  1824. /* Disable Rx and Tx */
  1825. clrbits32(&ug_regs->maccfg1, MACCFG1_ENABLE_RX | MACCFG1_ENABLE_TX);
  1826. phy_disconnect(ugeth->phydev);
  1827. ugeth->phydev = NULL;
  1828. ucc_geth_memclean(ugeth);
  1829. }
  1830. static int ucc_struct_init(struct ucc_geth_private *ugeth)
  1831. {
  1832. struct ucc_geth_info *ug_info;
  1833. struct ucc_fast_info *uf_info;
  1834. int i;
  1835. ug_info = ugeth->ug_info;
  1836. uf_info = &ug_info->uf_info;
  1837. if (!((uf_info->bd_mem_part == MEM_PART_SYSTEM) ||
  1838. (uf_info->bd_mem_part == MEM_PART_MURAM))) {
  1839. if (netif_msg_probe(ugeth))
  1840. ugeth_err("%s: Bad memory partition value.",
  1841. __func__);
  1842. return -EINVAL;
  1843. }
  1844. /* Rx BD lengths */
  1845. for (i = 0; i < ug_info->numQueuesRx; i++) {
  1846. if ((ug_info->bdRingLenRx[i] < UCC_GETH_RX_BD_RING_SIZE_MIN) ||
  1847. (ug_info->bdRingLenRx[i] %
  1848. UCC_GETH_RX_BD_RING_SIZE_ALIGNMENT)) {
  1849. if (netif_msg_probe(ugeth))
  1850. ugeth_err
  1851. ("%s: Rx BD ring length must be multiple of 4, no smaller than 8.",
  1852. __func__);
  1853. return -EINVAL;
  1854. }
  1855. }
  1856. /* Tx BD lengths */
  1857. for (i = 0; i < ug_info->numQueuesTx; i++) {
  1858. if (ug_info->bdRingLenTx[i] < UCC_GETH_TX_BD_RING_SIZE_MIN) {
  1859. if (netif_msg_probe(ugeth))
  1860. ugeth_err
  1861. ("%s: Tx BD ring length must be no smaller than 2.",
  1862. __func__);
  1863. return -EINVAL;
  1864. }
  1865. }
  1866. /* mrblr */
  1867. if ((uf_info->max_rx_buf_length == 0) ||
  1868. (uf_info->max_rx_buf_length % UCC_GETH_MRBLR_ALIGNMENT)) {
  1869. if (netif_msg_probe(ugeth))
  1870. ugeth_err
  1871. ("%s: max_rx_buf_length must be non-zero multiple of 128.",
  1872. __func__);
  1873. return -EINVAL;
  1874. }
  1875. /* num Tx queues */
  1876. if (ug_info->numQueuesTx > NUM_TX_QUEUES) {
  1877. if (netif_msg_probe(ugeth))
  1878. ugeth_err("%s: number of tx queues too large.", __func__);
  1879. return -EINVAL;
  1880. }
  1881. /* num Rx queues */
  1882. if (ug_info->numQueuesRx > NUM_RX_QUEUES) {
  1883. if (netif_msg_probe(ugeth))
  1884. ugeth_err("%s: number of rx queues too large.", __func__);
  1885. return -EINVAL;
  1886. }
  1887. /* l2qt */
  1888. for (i = 0; i < UCC_GETH_VLAN_PRIORITY_MAX; i++) {
  1889. if (ug_info->l2qt[i] >= ug_info->numQueuesRx) {
  1890. if (netif_msg_probe(ugeth))
  1891. ugeth_err
  1892. ("%s: VLAN priority table entry must not be"
  1893. " larger than number of Rx queues.",
  1894. __func__);
  1895. return -EINVAL;
  1896. }
  1897. }
  1898. /* l3qt */
  1899. for (i = 0; i < UCC_GETH_IP_PRIORITY_MAX; i++) {
  1900. if (ug_info->l3qt[i] >= ug_info->numQueuesRx) {
  1901. if (netif_msg_probe(ugeth))
  1902. ugeth_err
  1903. ("%s: IP priority table entry must not be"
  1904. " larger than number of Rx queues.",
  1905. __func__);
  1906. return -EINVAL;
  1907. }
  1908. }
  1909. if (ug_info->cam && !ug_info->ecamptr) {
  1910. if (netif_msg_probe(ugeth))
  1911. ugeth_err("%s: If cam mode is chosen, must supply cam ptr.",
  1912. __func__);
  1913. return -EINVAL;
  1914. }
  1915. if ((ug_info->numStationAddresses !=
  1916. UCC_GETH_NUM_OF_STATION_ADDRESSES_1) &&
  1917. ug_info->rxExtendedFiltering) {
  1918. if (netif_msg_probe(ugeth))
  1919. ugeth_err("%s: Number of station addresses greater than 1 "
  1920. "not allowed in extended parsing mode.",
  1921. __func__);
  1922. return -EINVAL;
  1923. }
  1924. /* Generate uccm_mask for receive */
  1925. uf_info->uccm_mask = ug_info->eventRegMask & UCCE_OTHER;/* Errors */
  1926. for (i = 0; i < ug_info->numQueuesRx; i++)
  1927. uf_info->uccm_mask |= (UCC_GETH_UCCE_RXF0 << i);
  1928. for (i = 0; i < ug_info->numQueuesTx; i++)
  1929. uf_info->uccm_mask |= (UCC_GETH_UCCE_TXB0 << i);
  1930. /* Initialize the general fast UCC block. */
  1931. if (ucc_fast_init(uf_info, &ugeth->uccf)) {
  1932. if (netif_msg_probe(ugeth))
  1933. ugeth_err("%s: Failed to init uccf.", __func__);
  1934. return -ENOMEM;
  1935. }
  1936. /* read the number of risc engines, update the riscTx and riscRx
  1937. * if there are 4 riscs in QE
  1938. */
  1939. if (qe_get_num_of_risc() == 4) {
  1940. ug_info->riscTx = QE_RISC_ALLOCATION_FOUR_RISCS;
  1941. ug_info->riscRx = QE_RISC_ALLOCATION_FOUR_RISCS;
  1942. }
  1943. ugeth->ug_regs = ioremap(uf_info->regs, sizeof(*ugeth->ug_regs));
  1944. if (!ugeth->ug_regs) {
  1945. if (netif_msg_probe(ugeth))
  1946. ugeth_err("%s: Failed to ioremap regs.", __func__);
  1947. return -ENOMEM;
  1948. }
  1949. skb_queue_head_init(&ugeth->rx_recycle);
  1950. return 0;
  1951. }
  1952. static int ucc_geth_startup(struct ucc_geth_private *ugeth)
  1953. {
  1954. struct ucc_geth_82xx_address_filtering_pram __iomem *p_82xx_addr_filt;
  1955. struct ucc_geth_init_pram __iomem *p_init_enet_pram;
  1956. struct ucc_fast_private *uccf;
  1957. struct ucc_geth_info *ug_info;
  1958. struct ucc_fast_info *uf_info;
  1959. struct ucc_fast __iomem *uf_regs;
  1960. struct ucc_geth __iomem *ug_regs;
  1961. int ret_val = -EINVAL;
  1962. u32 remoder = UCC_GETH_REMODER_INIT;
  1963. u32 init_enet_pram_offset, cecr_subblock, command;
  1964. u32 ifstat, i, j, size, l2qt, l3qt, length;
  1965. u16 temoder = UCC_GETH_TEMODER_INIT;
  1966. u16 test;
  1967. u8 function_code = 0;
  1968. u8 __iomem *bd;
  1969. u8 __iomem *endOfRing;
  1970. u8 numThreadsRxNumerical, numThreadsTxNumerical;
  1971. ugeth_vdbg("%s: IN", __func__);
  1972. uccf = ugeth->uccf;
  1973. ug_info = ugeth->ug_info;
  1974. uf_info = &ug_info->uf_info;
  1975. uf_regs = uccf->uf_regs;
  1976. ug_regs = ugeth->ug_regs;
  1977. switch (ug_info->numThreadsRx) {
  1978. case UCC_GETH_NUM_OF_THREADS_1:
  1979. numThreadsRxNumerical = 1;
  1980. break;
  1981. case UCC_GETH_NUM_OF_THREADS_2:
  1982. numThreadsRxNumerical = 2;
  1983. break;
  1984. case UCC_GETH_NUM_OF_THREADS_4:
  1985. numThreadsRxNumerical = 4;
  1986. break;
  1987. case UCC_GETH_NUM_OF_THREADS_6:
  1988. numThreadsRxNumerical = 6;
  1989. break;
  1990. case UCC_GETH_NUM_OF_THREADS_8:
  1991. numThreadsRxNumerical = 8;
  1992. break;
  1993. default:
  1994. if (netif_msg_ifup(ugeth))
  1995. ugeth_err("%s: Bad number of Rx threads value.",
  1996. __func__);
  1997. return -EINVAL;
  1998. break;
  1999. }
  2000. switch (ug_info->numThreadsTx) {
  2001. case UCC_GETH_NUM_OF_THREADS_1:
  2002. numThreadsTxNumerical = 1;
  2003. break;
  2004. case UCC_GETH_NUM_OF_THREADS_2:
  2005. numThreadsTxNumerical = 2;
  2006. break;
  2007. case UCC_GETH_NUM_OF_THREADS_4:
  2008. numThreadsTxNumerical = 4;
  2009. break;
  2010. case UCC_GETH_NUM_OF_THREADS_6:
  2011. numThreadsTxNumerical = 6;
  2012. break;
  2013. case UCC_GETH_NUM_OF_THREADS_8:
  2014. numThreadsTxNumerical = 8;
  2015. break;
  2016. default:
  2017. if (netif_msg_ifup(ugeth))
  2018. ugeth_err("%s: Bad number of Tx threads value.",
  2019. __func__);
  2020. return -EINVAL;
  2021. break;
  2022. }
  2023. /* Calculate rx_extended_features */
  2024. ugeth->rx_non_dynamic_extended_features = ug_info->ipCheckSumCheck ||
  2025. ug_info->ipAddressAlignment ||
  2026. (ug_info->numStationAddresses !=
  2027. UCC_GETH_NUM_OF_STATION_ADDRESSES_1);
  2028. ugeth->rx_extended_features = ugeth->rx_non_dynamic_extended_features ||
  2029. (ug_info->vlanOperationTagged != UCC_GETH_VLAN_OPERATION_TAGGED_NOP) ||
  2030. (ug_info->vlanOperationNonTagged !=
  2031. UCC_GETH_VLAN_OPERATION_NON_TAGGED_NOP);
  2032. init_default_reg_vals(&uf_regs->upsmr,
  2033. &ug_regs->maccfg1, &ug_regs->maccfg2);
  2034. /* Set UPSMR */
  2035. /* For more details see the hardware spec. */
  2036. init_rx_parameters(ug_info->bro,
  2037. ug_info->rsh, ug_info->pro, &uf_regs->upsmr);
  2038. /* We're going to ignore other registers for now, */
  2039. /* except as needed to get up and running */
  2040. /* Set MACCFG1 */
  2041. /* For more details see the hardware spec. */
  2042. init_flow_control_params(ug_info->aufc,
  2043. ug_info->receiveFlowControl,
  2044. ug_info->transmitFlowControl,
  2045. ug_info->pausePeriod,
  2046. ug_info->extensionField,
  2047. &uf_regs->upsmr,
  2048. &ug_regs->uempr, &ug_regs->maccfg1);
  2049. setbits32(&ug_regs->maccfg1, MACCFG1_ENABLE_RX | MACCFG1_ENABLE_TX);
  2050. /* Set IPGIFG */
  2051. /* For more details see the hardware spec. */
  2052. ret_val = init_inter_frame_gap_params(ug_info->nonBackToBackIfgPart1,
  2053. ug_info->nonBackToBackIfgPart2,
  2054. ug_info->
  2055. miminumInterFrameGapEnforcement,
  2056. ug_info->backToBackInterFrameGap,
  2057. &ug_regs->ipgifg);
  2058. if (ret_val != 0) {
  2059. if (netif_msg_ifup(ugeth))
  2060. ugeth_err("%s: IPGIFG initialization parameter too large.",
  2061. __func__);
  2062. return ret_val;
  2063. }
  2064. /* Set HAFDUP */
  2065. /* For more details see the hardware spec. */
  2066. ret_val = init_half_duplex_params(ug_info->altBeb,
  2067. ug_info->backPressureNoBackoff,
  2068. ug_info->noBackoff,
  2069. ug_info->excessDefer,
  2070. ug_info->altBebTruncation,
  2071. ug_info->maxRetransmission,
  2072. ug_info->collisionWindow,
  2073. &ug_regs->hafdup);
  2074. if (ret_val != 0) {
  2075. if (netif_msg_ifup(ugeth))
  2076. ugeth_err("%s: Half Duplex initialization parameter too large.",
  2077. __func__);
  2078. return ret_val;
  2079. }
  2080. /* Set IFSTAT */
  2081. /* For more details see the hardware spec. */
  2082. /* Read only - resets upon read */
  2083. ifstat = in_be32(&ug_regs->ifstat);
  2084. /* Clear UEMPR */
  2085. /* For more details see the hardware spec. */
  2086. out_be32(&ug_regs->uempr, 0);
  2087. /* Set UESCR */
  2088. /* For more details see the hardware spec. */
  2089. init_hw_statistics_gathering_mode((ug_info->statisticsMode &
  2090. UCC_GETH_STATISTICS_GATHERING_MODE_HARDWARE),
  2091. 0, &uf_regs->upsmr, &ug_regs->uescr);
  2092. /* Allocate Tx bds */
  2093. for (j = 0; j < ug_info->numQueuesTx; j++) {
  2094. /* Allocate in multiple of
  2095. UCC_GETH_TX_BD_RING_SIZE_MEMORY_ALIGNMENT,
  2096. according to spec */
  2097. length = ((ug_info->bdRingLenTx[j] * sizeof(struct qe_bd))
  2098. / UCC_GETH_TX_BD_RING_SIZE_MEMORY_ALIGNMENT)
  2099. * UCC_GETH_TX_BD_RING_SIZE_MEMORY_ALIGNMENT;
  2100. if ((ug_info->bdRingLenTx[j] * sizeof(struct qe_bd)) %
  2101. UCC_GETH_TX_BD_RING_SIZE_MEMORY_ALIGNMENT)
  2102. length += UCC_GETH_TX_BD_RING_SIZE_MEMORY_ALIGNMENT;
  2103. if (uf_info->bd_mem_part == MEM_PART_SYSTEM) {
  2104. u32 align = 4;
  2105. if (UCC_GETH_TX_BD_RING_ALIGNMENT > 4)
  2106. align = UCC_GETH_TX_BD_RING_ALIGNMENT;
  2107. ugeth->tx_bd_ring_offset[j] =
  2108. (u32) kmalloc((u32) (length + align), GFP_KERNEL);
  2109. if (ugeth->tx_bd_ring_offset[j] != 0)
  2110. ugeth->p_tx_bd_ring[j] =
  2111. (u8 __iomem *)((ugeth->tx_bd_ring_offset[j] +
  2112. align) & ~(align - 1));
  2113. } else if (uf_info->bd_mem_part == MEM_PART_MURAM) {
  2114. ugeth->tx_bd_ring_offset[j] =
  2115. qe_muram_alloc(length,
  2116. UCC_GETH_TX_BD_RING_ALIGNMENT);
  2117. if (!IS_ERR_VALUE(ugeth->tx_bd_ring_offset[j]))
  2118. ugeth->p_tx_bd_ring[j] =
  2119. (u8 __iomem *) qe_muram_addr(ugeth->
  2120. tx_bd_ring_offset[j]);
  2121. }
  2122. if (!ugeth->p_tx_bd_ring[j]) {
  2123. if (netif_msg_ifup(ugeth))
  2124. ugeth_err
  2125. ("%s: Can not allocate memory for Tx bd rings.",
  2126. __func__);
  2127. return -ENOMEM;
  2128. }
  2129. /* Zero unused end of bd ring, according to spec */
  2130. memset_io((void __iomem *)(ugeth->p_tx_bd_ring[j] +
  2131. ug_info->bdRingLenTx[j] * sizeof(struct qe_bd)), 0,
  2132. length - ug_info->bdRingLenTx[j] * sizeof(struct qe_bd));
  2133. }
  2134. /* Allocate Rx bds */
  2135. for (j = 0; j < ug_info->numQueuesRx; j++) {
  2136. length = ug_info->bdRingLenRx[j] * sizeof(struct qe_bd);
  2137. if (uf_info->bd_mem_part == MEM_PART_SYSTEM) {
  2138. u32 align = 4;
  2139. if (UCC_GETH_RX_BD_RING_ALIGNMENT > 4)
  2140. align = UCC_GETH_RX_BD_RING_ALIGNMENT;
  2141. ugeth->rx_bd_ring_offset[j] =
  2142. (u32) kmalloc((u32) (length + align), GFP_KERNEL);
  2143. if (ugeth->rx_bd_ring_offset[j] != 0)
  2144. ugeth->p_rx_bd_ring[j] =
  2145. (u8 __iomem *)((ugeth->rx_bd_ring_offset[j] +
  2146. align) & ~(align - 1));
  2147. } else if (uf_info->bd_mem_part == MEM_PART_MURAM) {
  2148. ugeth->rx_bd_ring_offset[j] =
  2149. qe_muram_alloc(length,
  2150. UCC_GETH_RX_BD_RING_ALIGNMENT);
  2151. if (!IS_ERR_VALUE(ugeth->rx_bd_ring_offset[j]))
  2152. ugeth->p_rx_bd_ring[j] =
  2153. (u8 __iomem *) qe_muram_addr(ugeth->
  2154. rx_bd_ring_offset[j]);
  2155. }
  2156. if (!ugeth->p_rx_bd_ring[j]) {
  2157. if (netif_msg_ifup(ugeth))
  2158. ugeth_err
  2159. ("%s: Can not allocate memory for Rx bd rings.",
  2160. __func__);
  2161. return -ENOMEM;
  2162. }
  2163. }
  2164. /* Init Tx bds */
  2165. for (j = 0; j < ug_info->numQueuesTx; j++) {
  2166. /* Setup the skbuff rings */
  2167. ugeth->tx_skbuff[j] = kmalloc(sizeof(struct sk_buff *) *
  2168. ugeth->ug_info->bdRingLenTx[j],
  2169. GFP_KERNEL);
  2170. if (ugeth->tx_skbuff[j] == NULL) {
  2171. if (netif_msg_ifup(ugeth))
  2172. ugeth_err("%s: Could not allocate tx_skbuff",
  2173. __func__);
  2174. return -ENOMEM;
  2175. }
  2176. for (i = 0; i < ugeth->ug_info->bdRingLenTx[j]; i++)
  2177. ugeth->tx_skbuff[j][i] = NULL;
  2178. ugeth->skb_curtx[j] = ugeth->skb_dirtytx[j] = 0;
  2179. bd = ugeth->confBd[j] = ugeth->txBd[j] = ugeth->p_tx_bd_ring[j];
  2180. for (i = 0; i < ug_info->bdRingLenTx[j]; i++) {
  2181. /* clear bd buffer */
  2182. out_be32(&((struct qe_bd __iomem *)bd)->buf, 0);
  2183. /* set bd status and length */
  2184. out_be32((u32 __iomem *)bd, 0);
  2185. bd += sizeof(struct qe_bd);
  2186. }
  2187. bd -= sizeof(struct qe_bd);
  2188. /* set bd status and length */
  2189. out_be32((u32 __iomem *)bd, T_W); /* for last BD set Wrap bit */
  2190. }
  2191. /* Init Rx bds */
  2192. for (j = 0; j < ug_info->numQueuesRx; j++) {
  2193. /* Setup the skbuff rings */
  2194. ugeth->rx_skbuff[j] = kmalloc(sizeof(struct sk_buff *) *
  2195. ugeth->ug_info->bdRingLenRx[j],
  2196. GFP_KERNEL);
  2197. if (ugeth->rx_skbuff[j] == NULL) {
  2198. if (netif_msg_ifup(ugeth))
  2199. ugeth_err("%s: Could not allocate rx_skbuff",
  2200. __func__);
  2201. return -ENOMEM;
  2202. }
  2203. for (i = 0; i < ugeth->ug_info->bdRingLenRx[j]; i++)
  2204. ugeth->rx_skbuff[j][i] = NULL;
  2205. ugeth->skb_currx[j] = 0;
  2206. bd = ugeth->rxBd[j] = ugeth->p_rx_bd_ring[j];
  2207. for (i = 0; i < ug_info->bdRingLenRx[j]; i++) {
  2208. /* set bd status and length */
  2209. out_be32((u32 __iomem *)bd, R_I);
  2210. /* clear bd buffer */
  2211. out_be32(&((struct qe_bd __iomem *)bd)->buf, 0);
  2212. bd += sizeof(struct qe_bd);
  2213. }
  2214. bd -= sizeof(struct qe_bd);
  2215. /* set bd status and length */
  2216. out_be32((u32 __iomem *)bd, R_W); /* for last BD set Wrap bit */
  2217. }
  2218. /*
  2219. * Global PRAM
  2220. */
  2221. /* Tx global PRAM */
  2222. /* Allocate global tx parameter RAM page */
  2223. ugeth->tx_glbl_pram_offset =
  2224. qe_muram_alloc(sizeof(struct ucc_geth_tx_global_pram),
  2225. UCC_GETH_TX_GLOBAL_PRAM_ALIGNMENT);
  2226. if (IS_ERR_VALUE(ugeth->tx_glbl_pram_offset)) {
  2227. if (netif_msg_ifup(ugeth))
  2228. ugeth_err
  2229. ("%s: Can not allocate DPRAM memory for p_tx_glbl_pram.",
  2230. __func__);
  2231. return -ENOMEM;
  2232. }
  2233. ugeth->p_tx_glbl_pram =
  2234. (struct ucc_geth_tx_global_pram __iomem *) qe_muram_addr(ugeth->
  2235. tx_glbl_pram_offset);
  2236. /* Zero out p_tx_glbl_pram */
  2237. memset_io((void __iomem *)ugeth->p_tx_glbl_pram, 0, sizeof(struct ucc_geth_tx_global_pram));
  2238. /* Fill global PRAM */
  2239. /* TQPTR */
  2240. /* Size varies with number of Tx threads */
  2241. ugeth->thread_dat_tx_offset =
  2242. qe_muram_alloc(numThreadsTxNumerical *
  2243. sizeof(struct ucc_geth_thread_data_tx) +
  2244. 32 * (numThreadsTxNumerical == 1),
  2245. UCC_GETH_THREAD_DATA_ALIGNMENT);
  2246. if (IS_ERR_VALUE(ugeth->thread_dat_tx_offset)) {
  2247. if (netif_msg_ifup(ugeth))
  2248. ugeth_err
  2249. ("%s: Can not allocate DPRAM memory for p_thread_data_tx.",
  2250. __func__);
  2251. return -ENOMEM;
  2252. }
  2253. ugeth->p_thread_data_tx =
  2254. (struct ucc_geth_thread_data_tx __iomem *) qe_muram_addr(ugeth->
  2255. thread_dat_tx_offset);
  2256. out_be32(&ugeth->p_tx_glbl_pram->tqptr, ugeth->thread_dat_tx_offset);
  2257. /* vtagtable */
  2258. for (i = 0; i < UCC_GETH_TX_VTAG_TABLE_ENTRY_MAX; i++)
  2259. out_be32(&ugeth->p_tx_glbl_pram->vtagtable[i],
  2260. ug_info->vtagtable[i]);
  2261. /* iphoffset */
  2262. for (i = 0; i < TX_IP_OFFSET_ENTRY_MAX; i++)
  2263. out_8(&ugeth->p_tx_glbl_pram->iphoffset[i],
  2264. ug_info->iphoffset[i]);
  2265. /* SQPTR */
  2266. /* Size varies with number of Tx queues */
  2267. ugeth->send_q_mem_reg_offset =
  2268. qe_muram_alloc(ug_info->numQueuesTx *
  2269. sizeof(struct ucc_geth_send_queue_qd),
  2270. UCC_GETH_SEND_QUEUE_QUEUE_DESCRIPTOR_ALIGNMENT);
  2271. if (IS_ERR_VALUE(ugeth->send_q_mem_reg_offset)) {
  2272. if (netif_msg_ifup(ugeth))
  2273. ugeth_err
  2274. ("%s: Can not allocate DPRAM memory for p_send_q_mem_reg.",
  2275. __func__);
  2276. return -ENOMEM;
  2277. }
  2278. ugeth->p_send_q_mem_reg =
  2279. (struct ucc_geth_send_queue_mem_region __iomem *) qe_muram_addr(ugeth->
  2280. send_q_mem_reg_offset);
  2281. out_be32(&ugeth->p_tx_glbl_pram->sqptr, ugeth->send_q_mem_reg_offset);
  2282. /* Setup the table */
  2283. /* Assume BD rings are already established */
  2284. for (i = 0; i < ug_info->numQueuesTx; i++) {
  2285. endOfRing =
  2286. ugeth->p_tx_bd_ring[i] + (ug_info->bdRingLenTx[i] -
  2287. 1) * sizeof(struct qe_bd);
  2288. if (ugeth->ug_info->uf_info.bd_mem_part == MEM_PART_SYSTEM) {
  2289. out_be32(&ugeth->p_send_q_mem_reg->sqqd[i].bd_ring_base,
  2290. (u32) virt_to_phys(ugeth->p_tx_bd_ring[i]));
  2291. out_be32(&ugeth->p_send_q_mem_reg->sqqd[i].
  2292. last_bd_completed_address,
  2293. (u32) virt_to_phys(endOfRing));
  2294. } else if (ugeth->ug_info->uf_info.bd_mem_part ==
  2295. MEM_PART_MURAM) {
  2296. out_be32(&ugeth->p_send_q_mem_reg->sqqd[i].bd_ring_base,
  2297. (u32) immrbar_virt_to_phys(ugeth->
  2298. p_tx_bd_ring[i]));
  2299. out_be32(&ugeth->p_send_q_mem_reg->sqqd[i].
  2300. last_bd_completed_address,
  2301. (u32) immrbar_virt_to_phys(endOfRing));
  2302. }
  2303. }
  2304. /* schedulerbasepointer */
  2305. if (ug_info->numQueuesTx > 1) {
  2306. /* scheduler exists only if more than 1 tx queue */
  2307. ugeth->scheduler_offset =
  2308. qe_muram_alloc(sizeof(struct ucc_geth_scheduler),
  2309. UCC_GETH_SCHEDULER_ALIGNMENT);
  2310. if (IS_ERR_VALUE(ugeth->scheduler_offset)) {
  2311. if (netif_msg_ifup(ugeth))
  2312. ugeth_err
  2313. ("%s: Can not allocate DPRAM memory for p_scheduler.",
  2314. __func__);
  2315. return -ENOMEM;
  2316. }
  2317. ugeth->p_scheduler =
  2318. (struct ucc_geth_scheduler __iomem *) qe_muram_addr(ugeth->
  2319. scheduler_offset);
  2320. out_be32(&ugeth->p_tx_glbl_pram->schedulerbasepointer,
  2321. ugeth->scheduler_offset);
  2322. /* Zero out p_scheduler */
  2323. memset_io((void __iomem *)ugeth->p_scheduler, 0, sizeof(struct ucc_geth_scheduler));
  2324. /* Set values in scheduler */
  2325. out_be32(&ugeth->p_scheduler->mblinterval,
  2326. ug_info->mblinterval);
  2327. out_be16(&ugeth->p_scheduler->nortsrbytetime,
  2328. ug_info->nortsrbytetime);
  2329. out_8(&ugeth->p_scheduler->fracsiz, ug_info->fracsiz);
  2330. out_8(&ugeth->p_scheduler->strictpriorityq,
  2331. ug_info->strictpriorityq);
  2332. out_8(&ugeth->p_scheduler->txasap, ug_info->txasap);
  2333. out_8(&ugeth->p_scheduler->extrabw, ug_info->extrabw);
  2334. for (i = 0; i < NUM_TX_QUEUES; i++)
  2335. out_8(&ugeth->p_scheduler->weightfactor[i],
  2336. ug_info->weightfactor[i]);
  2337. /* Set pointers to cpucount registers in scheduler */
  2338. ugeth->p_cpucount[0] = &(ugeth->p_scheduler->cpucount0);
  2339. ugeth->p_cpucount[1] = &(ugeth->p_scheduler->cpucount1);
  2340. ugeth->p_cpucount[2] = &(ugeth->p_scheduler->cpucount2);
  2341. ugeth->p_cpucount[3] = &(ugeth->p_scheduler->cpucount3);
  2342. ugeth->p_cpucount[4] = &(ugeth->p_scheduler->cpucount4);
  2343. ugeth->p_cpucount[5] = &(ugeth->p_scheduler->cpucount5);
  2344. ugeth->p_cpucount[6] = &(ugeth->p_scheduler->cpucount6);
  2345. ugeth->p_cpucount[7] = &(ugeth->p_scheduler->cpucount7);
  2346. }
  2347. /* schedulerbasepointer */
  2348. /* TxRMON_PTR (statistics) */
  2349. if (ug_info->
  2350. statisticsMode & UCC_GETH_STATISTICS_GATHERING_MODE_FIRMWARE_TX) {
  2351. ugeth->tx_fw_statistics_pram_offset =
  2352. qe_muram_alloc(sizeof
  2353. (struct ucc_geth_tx_firmware_statistics_pram),
  2354. UCC_GETH_TX_STATISTICS_ALIGNMENT);
  2355. if (IS_ERR_VALUE(ugeth->tx_fw_statistics_pram_offset)) {
  2356. if (netif_msg_ifup(ugeth))
  2357. ugeth_err
  2358. ("%s: Can not allocate DPRAM memory for"
  2359. " p_tx_fw_statistics_pram.",
  2360. __func__);
  2361. return -ENOMEM;
  2362. }
  2363. ugeth->p_tx_fw_statistics_pram =
  2364. (struct ucc_geth_tx_firmware_statistics_pram __iomem *)
  2365. qe_muram_addr(ugeth->tx_fw_statistics_pram_offset);
  2366. /* Zero out p_tx_fw_statistics_pram */
  2367. memset_io((void __iomem *)ugeth->p_tx_fw_statistics_pram,
  2368. 0, sizeof(struct ucc_geth_tx_firmware_statistics_pram));
  2369. }
  2370. /* temoder */
  2371. /* Already has speed set */
  2372. if (ug_info->numQueuesTx > 1)
  2373. temoder |= TEMODER_SCHEDULER_ENABLE;
  2374. if (ug_info->ipCheckSumGenerate)
  2375. temoder |= TEMODER_IP_CHECKSUM_GENERATE;
  2376. temoder |= ((ug_info->numQueuesTx - 1) << TEMODER_NUM_OF_QUEUES_SHIFT);
  2377. out_be16(&ugeth->p_tx_glbl_pram->temoder, temoder);
  2378. test = in_be16(&ugeth->p_tx_glbl_pram->temoder);
  2379. /* Function code register value to be used later */
  2380. function_code = UCC_BMR_BO_BE | UCC_BMR_GBL;
  2381. /* Required for QE */
  2382. /* function code register */
  2383. out_be32(&ugeth->p_tx_glbl_pram->tstate, ((u32) function_code) << 24);
  2384. /* Rx global PRAM */
  2385. /* Allocate global rx parameter RAM page */
  2386. ugeth->rx_glbl_pram_offset =
  2387. qe_muram_alloc(sizeof(struct ucc_geth_rx_global_pram),
  2388. UCC_GETH_RX_GLOBAL_PRAM_ALIGNMENT);
  2389. if (IS_ERR_VALUE(ugeth->rx_glbl_pram_offset)) {
  2390. if (netif_msg_ifup(ugeth))
  2391. ugeth_err
  2392. ("%s: Can not allocate DPRAM memory for p_rx_glbl_pram.",
  2393. __func__);
  2394. return -ENOMEM;
  2395. }
  2396. ugeth->p_rx_glbl_pram =
  2397. (struct ucc_geth_rx_global_pram __iomem *) qe_muram_addr(ugeth->
  2398. rx_glbl_pram_offset);
  2399. /* Zero out p_rx_glbl_pram */
  2400. memset_io((void __iomem *)ugeth->p_rx_glbl_pram, 0, sizeof(struct ucc_geth_rx_global_pram));
  2401. /* Fill global PRAM */
  2402. /* RQPTR */
  2403. /* Size varies with number of Rx threads */
  2404. ugeth->thread_dat_rx_offset =
  2405. qe_muram_alloc(numThreadsRxNumerical *
  2406. sizeof(struct ucc_geth_thread_data_rx),
  2407. UCC_GETH_THREAD_DATA_ALIGNMENT);
  2408. if (IS_ERR_VALUE(ugeth->thread_dat_rx_offset)) {
  2409. if (netif_msg_ifup(ugeth))
  2410. ugeth_err
  2411. ("%s: Can not allocate DPRAM memory for p_thread_data_rx.",
  2412. __func__);
  2413. return -ENOMEM;
  2414. }
  2415. ugeth->p_thread_data_rx =
  2416. (struct ucc_geth_thread_data_rx __iomem *) qe_muram_addr(ugeth->
  2417. thread_dat_rx_offset);
  2418. out_be32(&ugeth->p_rx_glbl_pram->rqptr, ugeth->thread_dat_rx_offset);
  2419. /* typeorlen */
  2420. out_be16(&ugeth->p_rx_glbl_pram->typeorlen, ug_info->typeorlen);
  2421. /* rxrmonbaseptr (statistics) */
  2422. if (ug_info->
  2423. statisticsMode & UCC_GETH_STATISTICS_GATHERING_MODE_FIRMWARE_RX) {
  2424. ugeth->rx_fw_statistics_pram_offset =
  2425. qe_muram_alloc(sizeof
  2426. (struct ucc_geth_rx_firmware_statistics_pram),
  2427. UCC_GETH_RX_STATISTICS_ALIGNMENT);
  2428. if (IS_ERR_VALUE(ugeth->rx_fw_statistics_pram_offset)) {
  2429. if (netif_msg_ifup(ugeth))
  2430. ugeth_err
  2431. ("%s: Can not allocate DPRAM memory for"
  2432. " p_rx_fw_statistics_pram.", __func__);
  2433. return -ENOMEM;
  2434. }
  2435. ugeth->p_rx_fw_statistics_pram =
  2436. (struct ucc_geth_rx_firmware_statistics_pram __iomem *)
  2437. qe_muram_addr(ugeth->rx_fw_statistics_pram_offset);
  2438. /* Zero out p_rx_fw_statistics_pram */
  2439. memset_io((void __iomem *)ugeth->p_rx_fw_statistics_pram, 0,
  2440. sizeof(struct ucc_geth_rx_firmware_statistics_pram));
  2441. }
  2442. /* intCoalescingPtr */
  2443. /* Size varies with number of Rx queues */
  2444. ugeth->rx_irq_coalescing_tbl_offset =
  2445. qe_muram_alloc(ug_info->numQueuesRx *
  2446. sizeof(struct ucc_geth_rx_interrupt_coalescing_entry)
  2447. + 4, UCC_GETH_RX_INTERRUPT_COALESCING_ALIGNMENT);
  2448. if (IS_ERR_VALUE(ugeth->rx_irq_coalescing_tbl_offset)) {
  2449. if (netif_msg_ifup(ugeth))
  2450. ugeth_err
  2451. ("%s: Can not allocate DPRAM memory for"
  2452. " p_rx_irq_coalescing_tbl.", __func__);
  2453. return -ENOMEM;
  2454. }
  2455. ugeth->p_rx_irq_coalescing_tbl =
  2456. (struct ucc_geth_rx_interrupt_coalescing_table __iomem *)
  2457. qe_muram_addr(ugeth->rx_irq_coalescing_tbl_offset);
  2458. out_be32(&ugeth->p_rx_glbl_pram->intcoalescingptr,
  2459. ugeth->rx_irq_coalescing_tbl_offset);
  2460. /* Fill interrupt coalescing table */
  2461. for (i = 0; i < ug_info->numQueuesRx; i++) {
  2462. out_be32(&ugeth->p_rx_irq_coalescing_tbl->coalescingentry[i].
  2463. interruptcoalescingmaxvalue,
  2464. ug_info->interruptcoalescingmaxvalue[i]);
  2465. out_be32(&ugeth->p_rx_irq_coalescing_tbl->coalescingentry[i].
  2466. interruptcoalescingcounter,
  2467. ug_info->interruptcoalescingmaxvalue[i]);
  2468. }
  2469. /* MRBLR */
  2470. init_max_rx_buff_len(uf_info->max_rx_buf_length,
  2471. &ugeth->p_rx_glbl_pram->mrblr);
  2472. /* MFLR */
  2473. out_be16(&ugeth->p_rx_glbl_pram->mflr, ug_info->maxFrameLength);
  2474. /* MINFLR */
  2475. init_min_frame_len(ug_info->minFrameLength,
  2476. &ugeth->p_rx_glbl_pram->minflr,
  2477. &ugeth->p_rx_glbl_pram->mrblr);
  2478. /* MAXD1 */
  2479. out_be16(&ugeth->p_rx_glbl_pram->maxd1, ug_info->maxD1Length);
  2480. /* MAXD2 */
  2481. out_be16(&ugeth->p_rx_glbl_pram->maxd2, ug_info->maxD2Length);
  2482. /* l2qt */
  2483. l2qt = 0;
  2484. for (i = 0; i < UCC_GETH_VLAN_PRIORITY_MAX; i++)
  2485. l2qt |= (ug_info->l2qt[i] << (28 - 4 * i));
  2486. out_be32(&ugeth->p_rx_glbl_pram->l2qt, l2qt);
  2487. /* l3qt */
  2488. for (j = 0; j < UCC_GETH_IP_PRIORITY_MAX; j += 8) {
  2489. l3qt = 0;
  2490. for (i = 0; i < 8; i++)
  2491. l3qt |= (ug_info->l3qt[j + i] << (28 - 4 * i));
  2492. out_be32(&ugeth->p_rx_glbl_pram->l3qt[j/8], l3qt);
  2493. }
  2494. /* vlantype */
  2495. out_be16(&ugeth->p_rx_glbl_pram->vlantype, ug_info->vlantype);
  2496. /* vlantci */
  2497. out_be16(&ugeth->p_rx_glbl_pram->vlantci, ug_info->vlantci);
  2498. /* ecamptr */
  2499. out_be32(&ugeth->p_rx_glbl_pram->ecamptr, ug_info->ecamptr);
  2500. /* RBDQPTR */
  2501. /* Size varies with number of Rx queues */
  2502. ugeth->rx_bd_qs_tbl_offset =
  2503. qe_muram_alloc(ug_info->numQueuesRx *
  2504. (sizeof(struct ucc_geth_rx_bd_queues_entry) +
  2505. sizeof(struct ucc_geth_rx_prefetched_bds)),
  2506. UCC_GETH_RX_BD_QUEUES_ALIGNMENT);
  2507. if (IS_ERR_VALUE(ugeth->rx_bd_qs_tbl_offset)) {
  2508. if (netif_msg_ifup(ugeth))
  2509. ugeth_err
  2510. ("%s: Can not allocate DPRAM memory for p_rx_bd_qs_tbl.",
  2511. __func__);
  2512. return -ENOMEM;
  2513. }
  2514. ugeth->p_rx_bd_qs_tbl =
  2515. (struct ucc_geth_rx_bd_queues_entry __iomem *) qe_muram_addr(ugeth->
  2516. rx_bd_qs_tbl_offset);
  2517. out_be32(&ugeth->p_rx_glbl_pram->rbdqptr, ugeth->rx_bd_qs_tbl_offset);
  2518. /* Zero out p_rx_bd_qs_tbl */
  2519. memset_io((void __iomem *)ugeth->p_rx_bd_qs_tbl,
  2520. 0,
  2521. ug_info->numQueuesRx * (sizeof(struct ucc_geth_rx_bd_queues_entry) +
  2522. sizeof(struct ucc_geth_rx_prefetched_bds)));
  2523. /* Setup the table */
  2524. /* Assume BD rings are already established */
  2525. for (i = 0; i < ug_info->numQueuesRx; i++) {
  2526. if (ugeth->ug_info->uf_info.bd_mem_part == MEM_PART_SYSTEM) {
  2527. out_be32(&ugeth->p_rx_bd_qs_tbl[i].externalbdbaseptr,
  2528. (u32) virt_to_phys(ugeth->p_rx_bd_ring[i]));
  2529. } else if (ugeth->ug_info->uf_info.bd_mem_part ==
  2530. MEM_PART_MURAM) {
  2531. out_be32(&ugeth->p_rx_bd_qs_tbl[i].externalbdbaseptr,
  2532. (u32) immrbar_virt_to_phys(ugeth->
  2533. p_rx_bd_ring[i]));
  2534. }
  2535. /* rest of fields handled by QE */
  2536. }
  2537. /* remoder */
  2538. /* Already has speed set */
  2539. if (ugeth->rx_extended_features)
  2540. remoder |= REMODER_RX_EXTENDED_FEATURES;
  2541. if (ug_info->rxExtendedFiltering)
  2542. remoder |= REMODER_RX_EXTENDED_FILTERING;
  2543. if (ug_info->dynamicMaxFrameLength)
  2544. remoder |= REMODER_DYNAMIC_MAX_FRAME_LENGTH;
  2545. if (ug_info->dynamicMinFrameLength)
  2546. remoder |= REMODER_DYNAMIC_MIN_FRAME_LENGTH;
  2547. remoder |=
  2548. ug_info->vlanOperationTagged << REMODER_VLAN_OPERATION_TAGGED_SHIFT;
  2549. remoder |=
  2550. ug_info->
  2551. vlanOperationNonTagged << REMODER_VLAN_OPERATION_NON_TAGGED_SHIFT;
  2552. remoder |= ug_info->rxQoSMode << REMODER_RX_QOS_MODE_SHIFT;
  2553. remoder |= ((ug_info->numQueuesRx - 1) << REMODER_NUM_OF_QUEUES_SHIFT);
  2554. if (ug_info->ipCheckSumCheck)
  2555. remoder |= REMODER_IP_CHECKSUM_CHECK;
  2556. if (ug_info->ipAddressAlignment)
  2557. remoder |= REMODER_IP_ADDRESS_ALIGNMENT;
  2558. out_be32(&ugeth->p_rx_glbl_pram->remoder, remoder);
  2559. /* Note that this function must be called */
  2560. /* ONLY AFTER p_tx_fw_statistics_pram */
  2561. /* andp_UccGethRxFirmwareStatisticsPram are allocated ! */
  2562. init_firmware_statistics_gathering_mode((ug_info->
  2563. statisticsMode &
  2564. UCC_GETH_STATISTICS_GATHERING_MODE_FIRMWARE_TX),
  2565. (ug_info->statisticsMode &
  2566. UCC_GETH_STATISTICS_GATHERING_MODE_FIRMWARE_RX),
  2567. &ugeth->p_tx_glbl_pram->txrmonbaseptr,
  2568. ugeth->tx_fw_statistics_pram_offset,
  2569. &ugeth->p_rx_glbl_pram->rxrmonbaseptr,
  2570. ugeth->rx_fw_statistics_pram_offset,
  2571. &ugeth->p_tx_glbl_pram->temoder,
  2572. &ugeth->p_rx_glbl_pram->remoder);
  2573. /* function code register */
  2574. out_8(&ugeth->p_rx_glbl_pram->rstate, function_code);
  2575. /* initialize extended filtering */
  2576. if (ug_info->rxExtendedFiltering) {
  2577. if (!ug_info->extendedFilteringChainPointer) {
  2578. if (netif_msg_ifup(ugeth))
  2579. ugeth_err("%s: Null Extended Filtering Chain Pointer.",
  2580. __func__);
  2581. return -EINVAL;
  2582. }
  2583. /* Allocate memory for extended filtering Mode Global
  2584. Parameters */
  2585. ugeth->exf_glbl_param_offset =
  2586. qe_muram_alloc(sizeof(struct ucc_geth_exf_global_pram),
  2587. UCC_GETH_RX_EXTENDED_FILTERING_GLOBAL_PARAMETERS_ALIGNMENT);
  2588. if (IS_ERR_VALUE(ugeth->exf_glbl_param_offset)) {
  2589. if (netif_msg_ifup(ugeth))
  2590. ugeth_err
  2591. ("%s: Can not allocate DPRAM memory for"
  2592. " p_exf_glbl_param.", __func__);
  2593. return -ENOMEM;
  2594. }
  2595. ugeth->p_exf_glbl_param =
  2596. (struct ucc_geth_exf_global_pram __iomem *) qe_muram_addr(ugeth->
  2597. exf_glbl_param_offset);
  2598. out_be32(&ugeth->p_rx_glbl_pram->exfGlobalParam,
  2599. ugeth->exf_glbl_param_offset);
  2600. out_be32(&ugeth->p_exf_glbl_param->l2pcdptr,
  2601. (u32) ug_info->extendedFilteringChainPointer);
  2602. } else { /* initialize 82xx style address filtering */
  2603. /* Init individual address recognition registers to disabled */
  2604. for (j = 0; j < NUM_OF_PADDRS; j++)
  2605. ugeth_82xx_filtering_clear_addr_in_paddr(ugeth, (u8) j);
  2606. p_82xx_addr_filt =
  2607. (struct ucc_geth_82xx_address_filtering_pram __iomem *) ugeth->
  2608. p_rx_glbl_pram->addressfiltering;
  2609. ugeth_82xx_filtering_clear_all_addr_in_hash(ugeth,
  2610. ENET_ADDR_TYPE_GROUP);
  2611. ugeth_82xx_filtering_clear_all_addr_in_hash(ugeth,
  2612. ENET_ADDR_TYPE_INDIVIDUAL);
  2613. }
  2614. /*
  2615. * Initialize UCC at QE level
  2616. */
  2617. command = QE_INIT_TX_RX;
  2618. /* Allocate shadow InitEnet command parameter structure.
  2619. * This is needed because after the InitEnet command is executed,
  2620. * the structure in DPRAM is released, because DPRAM is a premium
  2621. * resource.
  2622. * This shadow structure keeps a copy of what was done so that the
  2623. * allocated resources can be released when the channel is freed.
  2624. */
  2625. if (!(ugeth->p_init_enet_param_shadow =
  2626. kmalloc(sizeof(struct ucc_geth_init_pram), GFP_KERNEL))) {
  2627. if (netif_msg_ifup(ugeth))
  2628. ugeth_err
  2629. ("%s: Can not allocate memory for"
  2630. " p_UccInitEnetParamShadows.", __func__);
  2631. return -ENOMEM;
  2632. }
  2633. /* Zero out *p_init_enet_param_shadow */
  2634. memset((char *)ugeth->p_init_enet_param_shadow,
  2635. 0, sizeof(struct ucc_geth_init_pram));
  2636. /* Fill shadow InitEnet command parameter structure */
  2637. ugeth->p_init_enet_param_shadow->resinit1 =
  2638. ENET_INIT_PARAM_MAGIC_RES_INIT1;
  2639. ugeth->p_init_enet_param_shadow->resinit2 =
  2640. ENET_INIT_PARAM_MAGIC_RES_INIT2;
  2641. ugeth->p_init_enet_param_shadow->resinit3 =
  2642. ENET_INIT_PARAM_MAGIC_RES_INIT3;
  2643. ugeth->p_init_enet_param_shadow->resinit4 =
  2644. ENET_INIT_PARAM_MAGIC_RES_INIT4;
  2645. ugeth->p_init_enet_param_shadow->resinit5 =
  2646. ENET_INIT_PARAM_MAGIC_RES_INIT5;
  2647. ugeth->p_init_enet_param_shadow->rgftgfrxglobal |=
  2648. ((u32) ug_info->numThreadsRx) << ENET_INIT_PARAM_RGF_SHIFT;
  2649. ugeth->p_init_enet_param_shadow->rgftgfrxglobal |=
  2650. ((u32) ug_info->numThreadsTx) << ENET_INIT_PARAM_TGF_SHIFT;
  2651. ugeth->p_init_enet_param_shadow->rgftgfrxglobal |=
  2652. ugeth->rx_glbl_pram_offset | ug_info->riscRx;
  2653. if ((ug_info->largestexternallookupkeysize !=
  2654. QE_FLTR_LARGEST_EXTERNAL_TABLE_LOOKUP_KEY_SIZE_NONE) &&
  2655. (ug_info->largestexternallookupkeysize !=
  2656. QE_FLTR_LARGEST_EXTERNAL_TABLE_LOOKUP_KEY_SIZE_8_BYTES) &&
  2657. (ug_info->largestexternallookupkeysize !=
  2658. QE_FLTR_LARGEST_EXTERNAL_TABLE_LOOKUP_KEY_SIZE_16_BYTES)) {
  2659. if (netif_msg_ifup(ugeth))
  2660. ugeth_err("%s: Invalid largest External Lookup Key Size.",
  2661. __func__);
  2662. return -EINVAL;
  2663. }
  2664. ugeth->p_init_enet_param_shadow->largestexternallookupkeysize =
  2665. ug_info->largestexternallookupkeysize;
  2666. size = sizeof(struct ucc_geth_thread_rx_pram);
  2667. if (ug_info->rxExtendedFiltering) {
  2668. size += THREAD_RX_PRAM_ADDITIONAL_FOR_EXTENDED_FILTERING;
  2669. if (ug_info->largestexternallookupkeysize ==
  2670. QE_FLTR_TABLE_LOOKUP_KEY_SIZE_8_BYTES)
  2671. size +=
  2672. THREAD_RX_PRAM_ADDITIONAL_FOR_EXTENDED_FILTERING_8;
  2673. if (ug_info->largestexternallookupkeysize ==
  2674. QE_FLTR_TABLE_LOOKUP_KEY_SIZE_16_BYTES)
  2675. size +=
  2676. THREAD_RX_PRAM_ADDITIONAL_FOR_EXTENDED_FILTERING_16;
  2677. }
  2678. if ((ret_val = fill_init_enet_entries(ugeth, &(ugeth->
  2679. p_init_enet_param_shadow->rxthread[0]),
  2680. (u8) (numThreadsRxNumerical + 1)
  2681. /* Rx needs one extra for terminator */
  2682. , size, UCC_GETH_THREAD_RX_PRAM_ALIGNMENT,
  2683. ug_info->riscRx, 1)) != 0) {
  2684. if (netif_msg_ifup(ugeth))
  2685. ugeth_err("%s: Can not fill p_init_enet_param_shadow.",
  2686. __func__);
  2687. return ret_val;
  2688. }
  2689. ugeth->p_init_enet_param_shadow->txglobal =
  2690. ugeth->tx_glbl_pram_offset | ug_info->riscTx;
  2691. if ((ret_val =
  2692. fill_init_enet_entries(ugeth,
  2693. &(ugeth->p_init_enet_param_shadow->
  2694. txthread[0]), numThreadsTxNumerical,
  2695. sizeof(struct ucc_geth_thread_tx_pram),
  2696. UCC_GETH_THREAD_TX_PRAM_ALIGNMENT,
  2697. ug_info->riscTx, 0)) != 0) {
  2698. if (netif_msg_ifup(ugeth))
  2699. ugeth_err("%s: Can not fill p_init_enet_param_shadow.",
  2700. __func__);
  2701. return ret_val;
  2702. }
  2703. /* Load Rx bds with buffers */
  2704. for (i = 0; i < ug_info->numQueuesRx; i++) {
  2705. if ((ret_val = rx_bd_buffer_set(ugeth, (u8) i)) != 0) {
  2706. if (netif_msg_ifup(ugeth))
  2707. ugeth_err("%s: Can not fill Rx bds with buffers.",
  2708. __func__);
  2709. return ret_val;
  2710. }
  2711. }
  2712. /* Allocate InitEnet command parameter structure */
  2713. init_enet_pram_offset = qe_muram_alloc(sizeof(struct ucc_geth_init_pram), 4);
  2714. if (IS_ERR_VALUE(init_enet_pram_offset)) {
  2715. if (netif_msg_ifup(ugeth))
  2716. ugeth_err
  2717. ("%s: Can not allocate DPRAM memory for p_init_enet_pram.",
  2718. __func__);
  2719. return -ENOMEM;
  2720. }
  2721. p_init_enet_pram =
  2722. (struct ucc_geth_init_pram __iomem *) qe_muram_addr(init_enet_pram_offset);
  2723. /* Copy shadow InitEnet command parameter structure into PRAM */
  2724. out_8(&p_init_enet_pram->resinit1,
  2725. ugeth->p_init_enet_param_shadow->resinit1);
  2726. out_8(&p_init_enet_pram->resinit2,
  2727. ugeth->p_init_enet_param_shadow->resinit2);
  2728. out_8(&p_init_enet_pram->resinit3,
  2729. ugeth->p_init_enet_param_shadow->resinit3);
  2730. out_8(&p_init_enet_pram->resinit4,
  2731. ugeth->p_init_enet_param_shadow->resinit4);
  2732. out_be16(&p_init_enet_pram->resinit5,
  2733. ugeth->p_init_enet_param_shadow->resinit5);
  2734. out_8(&p_init_enet_pram->largestexternallookupkeysize,
  2735. ugeth->p_init_enet_param_shadow->largestexternallookupkeysize);
  2736. out_be32(&p_init_enet_pram->rgftgfrxglobal,
  2737. ugeth->p_init_enet_param_shadow->rgftgfrxglobal);
  2738. for (i = 0; i < ENET_INIT_PARAM_MAX_ENTRIES_RX; i++)
  2739. out_be32(&p_init_enet_pram->rxthread[i],
  2740. ugeth->p_init_enet_param_shadow->rxthread[i]);
  2741. out_be32(&p_init_enet_pram->txglobal,
  2742. ugeth->p_init_enet_param_shadow->txglobal);
  2743. for (i = 0; i < ENET_INIT_PARAM_MAX_ENTRIES_TX; i++)
  2744. out_be32(&p_init_enet_pram->txthread[i],
  2745. ugeth->p_init_enet_param_shadow->txthread[i]);
  2746. /* Issue QE command */
  2747. cecr_subblock =
  2748. ucc_fast_get_qe_cr_subblock(ugeth->ug_info->uf_info.ucc_num);
  2749. qe_issue_cmd(command, cecr_subblock, QE_CR_PROTOCOL_ETHERNET,
  2750. init_enet_pram_offset);
  2751. /* Free InitEnet command parameter */
  2752. qe_muram_free(init_enet_pram_offset);
  2753. return 0;
  2754. }
  2755. /* This is called by the kernel when a frame is ready for transmission. */
  2756. /* It is pointed to by the dev->hard_start_xmit function pointer */
  2757. static int ucc_geth_start_xmit(struct sk_buff *skb, struct net_device *dev)
  2758. {
  2759. struct ucc_geth_private *ugeth = netdev_priv(dev);
  2760. #ifdef CONFIG_UGETH_TX_ON_DEMAND
  2761. struct ucc_fast_private *uccf;
  2762. #endif
  2763. u8 __iomem *bd; /* BD pointer */
  2764. u32 bd_status;
  2765. u8 txQ = 0;
  2766. unsigned long flags;
  2767. ugeth_vdbg("%s: IN", __func__);
  2768. spin_lock_irqsave(&ugeth->lock, flags);
  2769. dev->stats.tx_bytes += skb->len;
  2770. /* Start from the next BD that should be filled */
  2771. bd = ugeth->txBd[txQ];
  2772. bd_status = in_be32((u32 __iomem *)bd);
  2773. /* Save the skb pointer so we can free it later */
  2774. ugeth->tx_skbuff[txQ][ugeth->skb_curtx[txQ]] = skb;
  2775. /* Update the current skb pointer (wrapping if this was the last) */
  2776. ugeth->skb_curtx[txQ] =
  2777. (ugeth->skb_curtx[txQ] +
  2778. 1) & TX_RING_MOD_MASK(ugeth->ug_info->bdRingLenTx[txQ]);
  2779. /* set up the buffer descriptor */
  2780. out_be32(&((struct qe_bd __iomem *)bd)->buf,
  2781. dma_map_single(ugeth->dev, skb->data,
  2782. skb->len, DMA_TO_DEVICE));
  2783. /* printk(KERN_DEBUG"skb->data is 0x%x\n",skb->data); */
  2784. bd_status = (bd_status & T_W) | T_R | T_I | T_L | skb->len;
  2785. /* set bd status and length */
  2786. out_be32((u32 __iomem *)bd, bd_status);
  2787. dev->trans_start = jiffies;
  2788. /* Move to next BD in the ring */
  2789. if (!(bd_status & T_W))
  2790. bd += sizeof(struct qe_bd);
  2791. else
  2792. bd = ugeth->p_tx_bd_ring[txQ];
  2793. /* If the next BD still needs to be cleaned up, then the bds
  2794. are full. We need to tell the kernel to stop sending us stuff. */
  2795. if (bd == ugeth->confBd[txQ]) {
  2796. if (!netif_queue_stopped(dev))
  2797. netif_stop_queue(dev);
  2798. }
  2799. ugeth->txBd[txQ] = bd;
  2800. if (ugeth->p_scheduler) {
  2801. ugeth->cpucount[txQ]++;
  2802. /* Indicate to QE that there are more Tx bds ready for
  2803. transmission */
  2804. /* This is done by writing a running counter of the bd
  2805. count to the scheduler PRAM. */
  2806. out_be16(ugeth->p_cpucount[txQ], ugeth->cpucount[txQ]);
  2807. }
  2808. #ifdef CONFIG_UGETH_TX_ON_DEMAND
  2809. uccf = ugeth->uccf;
  2810. out_be16(uccf->p_utodr, UCC_FAST_TOD);
  2811. #endif
  2812. spin_unlock_irqrestore(&ugeth->lock, flags);
  2813. return NETDEV_TX_OK;
  2814. }
  2815. static int ucc_geth_rx(struct ucc_geth_private *ugeth, u8 rxQ, int rx_work_limit)
  2816. {
  2817. struct sk_buff *skb;
  2818. u8 __iomem *bd;
  2819. u16 length, howmany = 0;
  2820. u32 bd_status;
  2821. u8 *bdBuffer;
  2822. struct net_device *dev;
  2823. ugeth_vdbg("%s: IN", __func__);
  2824. dev = ugeth->ndev;
  2825. /* collect received buffers */
  2826. bd = ugeth->rxBd[rxQ];
  2827. bd_status = in_be32((u32 __iomem *)bd);
  2828. /* while there are received buffers and BD is full (~R_E) */
  2829. while (!((bd_status & (R_E)) || (--rx_work_limit < 0))) {
  2830. bdBuffer = (u8 *) in_be32(&((struct qe_bd __iomem *)bd)->buf);
  2831. length = (u16) ((bd_status & BD_LENGTH_MASK) - 4);
  2832. skb = ugeth->rx_skbuff[rxQ][ugeth->skb_currx[rxQ]];
  2833. /* determine whether buffer is first, last, first and last
  2834. (single buffer frame) or middle (not first and not last) */
  2835. if (!skb ||
  2836. (!(bd_status & (R_F | R_L))) ||
  2837. (bd_status & R_ERRORS_FATAL)) {
  2838. if (netif_msg_rx_err(ugeth))
  2839. ugeth_err("%s, %d: ERROR!!! skb - 0x%08x",
  2840. __func__, __LINE__, (u32) skb);
  2841. if (skb) {
  2842. skb->data = skb->head + NET_SKB_PAD;
  2843. __skb_queue_head(&ugeth->rx_recycle, skb);
  2844. }
  2845. ugeth->rx_skbuff[rxQ][ugeth->skb_currx[rxQ]] = NULL;
  2846. dev->stats.rx_dropped++;
  2847. } else {
  2848. dev->stats.rx_packets++;
  2849. howmany++;
  2850. /* Prep the skb for the packet */
  2851. skb_put(skb, length);
  2852. /* Tell the skb what kind of packet this is */
  2853. skb->protocol = eth_type_trans(skb, ugeth->ndev);
  2854. dev->stats.rx_bytes += length;
  2855. /* Send the packet up the stack */
  2856. netif_receive_skb(skb);
  2857. }
  2858. skb = get_new_skb(ugeth, bd);
  2859. if (!skb) {
  2860. if (netif_msg_rx_err(ugeth))
  2861. ugeth_warn("%s: No Rx Data Buffer", __func__);
  2862. dev->stats.rx_dropped++;
  2863. break;
  2864. }
  2865. ugeth->rx_skbuff[rxQ][ugeth->skb_currx[rxQ]] = skb;
  2866. /* update to point at the next skb */
  2867. ugeth->skb_currx[rxQ] =
  2868. (ugeth->skb_currx[rxQ] +
  2869. 1) & RX_RING_MOD_MASK(ugeth->ug_info->bdRingLenRx[rxQ]);
  2870. if (bd_status & R_W)
  2871. bd = ugeth->p_rx_bd_ring[rxQ];
  2872. else
  2873. bd += sizeof(struct qe_bd);
  2874. bd_status = in_be32((u32 __iomem *)bd);
  2875. }
  2876. ugeth->rxBd[rxQ] = bd;
  2877. return howmany;
  2878. }
  2879. static int ucc_geth_tx(struct net_device *dev, u8 txQ)
  2880. {
  2881. /* Start from the next BD that should be filled */
  2882. struct ucc_geth_private *ugeth = netdev_priv(dev);
  2883. u8 __iomem *bd; /* BD pointer */
  2884. u32 bd_status;
  2885. bd = ugeth->confBd[txQ];
  2886. bd_status = in_be32((u32 __iomem *)bd);
  2887. /* Normal processing. */
  2888. while ((bd_status & T_R) == 0) {
  2889. struct sk_buff *skb;
  2890. /* BD contains already transmitted buffer. */
  2891. /* Handle the transmitted buffer and release */
  2892. /* the BD to be used with the current frame */
  2893. skb = ugeth->tx_skbuff[txQ][ugeth->skb_dirtytx[txQ]];
  2894. if (!skb)
  2895. break;
  2896. dev->stats.tx_packets++;
  2897. if (skb_queue_len(&ugeth->rx_recycle) < RX_BD_RING_LEN &&
  2898. skb_recycle_check(skb,
  2899. ugeth->ug_info->uf_info.max_rx_buf_length +
  2900. UCC_GETH_RX_DATA_BUF_ALIGNMENT))
  2901. __skb_queue_head(&ugeth->rx_recycle, skb);
  2902. else
  2903. dev_kfree_skb(skb);
  2904. ugeth->tx_skbuff[txQ][ugeth->skb_dirtytx[txQ]] = NULL;
  2905. ugeth->skb_dirtytx[txQ] =
  2906. (ugeth->skb_dirtytx[txQ] +
  2907. 1) & TX_RING_MOD_MASK(ugeth->ug_info->bdRingLenTx[txQ]);
  2908. /* We freed a buffer, so now we can restart transmission */
  2909. if (netif_queue_stopped(dev))
  2910. netif_wake_queue(dev);
  2911. /* Advance the confirmation BD pointer */
  2912. if (!(bd_status & T_W))
  2913. bd += sizeof(struct qe_bd);
  2914. else
  2915. bd = ugeth->p_tx_bd_ring[txQ];
  2916. bd_status = in_be32((u32 __iomem *)bd);
  2917. }
  2918. ugeth->confBd[txQ] = bd;
  2919. return 0;
  2920. }
  2921. static int ucc_geth_poll(struct napi_struct *napi, int budget)
  2922. {
  2923. struct ucc_geth_private *ugeth = container_of(napi, struct ucc_geth_private, napi);
  2924. struct ucc_geth_info *ug_info;
  2925. int howmany, i;
  2926. ug_info = ugeth->ug_info;
  2927. /* Tx event processing */
  2928. spin_lock(&ugeth->lock);
  2929. for (i = 0; i < ug_info->numQueuesTx; i++)
  2930. ucc_geth_tx(ugeth->ndev, i);
  2931. spin_unlock(&ugeth->lock);
  2932. howmany = 0;
  2933. for (i = 0; i < ug_info->numQueuesRx; i++)
  2934. howmany += ucc_geth_rx(ugeth, i, budget - howmany);
  2935. if (howmany < budget) {
  2936. napi_complete(napi);
  2937. setbits32(ugeth->uccf->p_uccm, UCCE_RX_EVENTS | UCCE_TX_EVENTS);
  2938. }
  2939. return howmany;
  2940. }
  2941. static irqreturn_t ucc_geth_irq_handler(int irq, void *info)
  2942. {
  2943. struct net_device *dev = info;
  2944. struct ucc_geth_private *ugeth = netdev_priv(dev);
  2945. struct ucc_fast_private *uccf;
  2946. struct ucc_geth_info *ug_info;
  2947. register u32 ucce;
  2948. register u32 uccm;
  2949. ugeth_vdbg("%s: IN", __func__);
  2950. uccf = ugeth->uccf;
  2951. ug_info = ugeth->ug_info;
  2952. /* read and clear events */
  2953. ucce = (u32) in_be32(uccf->p_ucce);
  2954. uccm = (u32) in_be32(uccf->p_uccm);
  2955. ucce &= uccm;
  2956. out_be32(uccf->p_ucce, ucce);
  2957. /* check for receive events that require processing */
  2958. if (ucce & (UCCE_RX_EVENTS | UCCE_TX_EVENTS)) {
  2959. if (napi_schedule_prep(&ugeth->napi)) {
  2960. uccm &= ~(UCCE_RX_EVENTS | UCCE_TX_EVENTS);
  2961. out_be32(uccf->p_uccm, uccm);
  2962. __napi_schedule(&ugeth->napi);
  2963. }
  2964. }
  2965. /* Errors and other events */
  2966. if (ucce & UCCE_OTHER) {
  2967. if (ucce & UCC_GETH_UCCE_BSY)
  2968. dev->stats.rx_errors++;
  2969. if (ucce & UCC_GETH_UCCE_TXE)
  2970. dev->stats.tx_errors++;
  2971. }
  2972. return IRQ_HANDLED;
  2973. }
  2974. #ifdef CONFIG_NET_POLL_CONTROLLER
  2975. /*
  2976. * Polling 'interrupt' - used by things like netconsole to send skbs
  2977. * without having to re-enable interrupts. It's not called while
  2978. * the interrupt routine is executing.
  2979. */
  2980. static void ucc_netpoll(struct net_device *dev)
  2981. {
  2982. struct ucc_geth_private *ugeth = netdev_priv(dev);
  2983. int irq = ugeth->ug_info->uf_info.irq;
  2984. disable_irq(irq);
  2985. ucc_geth_irq_handler(irq, dev);
  2986. enable_irq(irq);
  2987. }
  2988. #endif /* CONFIG_NET_POLL_CONTROLLER */
  2989. static int ucc_geth_set_mac_addr(struct net_device *dev, void *p)
  2990. {
  2991. struct ucc_geth_private *ugeth = netdev_priv(dev);
  2992. struct sockaddr *addr = p;
  2993. if (!is_valid_ether_addr(addr->sa_data))
  2994. return -EADDRNOTAVAIL;
  2995. memcpy(dev->dev_addr, addr->sa_data, dev->addr_len);
  2996. /*
  2997. * If device is not running, we will set mac addr register
  2998. * when opening the device.
  2999. */
  3000. if (!netif_running(dev))
  3001. return 0;
  3002. spin_lock_irq(&ugeth->lock);
  3003. init_mac_station_addr_regs(dev->dev_addr[0],
  3004. dev->dev_addr[1],
  3005. dev->dev_addr[2],
  3006. dev->dev_addr[3],
  3007. dev->dev_addr[4],
  3008. dev->dev_addr[5],
  3009. &ugeth->ug_regs->macstnaddr1,
  3010. &ugeth->ug_regs->macstnaddr2);
  3011. spin_unlock_irq(&ugeth->lock);
  3012. return 0;
  3013. }
  3014. static int ucc_geth_init_mac(struct ucc_geth_private *ugeth)
  3015. {
  3016. struct net_device *dev = ugeth->ndev;
  3017. int err;
  3018. err = ucc_struct_init(ugeth);
  3019. if (err) {
  3020. if (netif_msg_ifup(ugeth))
  3021. ugeth_err("%s: Cannot configure internal struct, "
  3022. "aborting.", dev->name);
  3023. goto err;
  3024. }
  3025. err = ucc_geth_startup(ugeth);
  3026. if (err) {
  3027. if (netif_msg_ifup(ugeth))
  3028. ugeth_err("%s: Cannot configure net device, aborting.",
  3029. dev->name);
  3030. goto err;
  3031. }
  3032. err = adjust_enet_interface(ugeth);
  3033. if (err) {
  3034. if (netif_msg_ifup(ugeth))
  3035. ugeth_err("%s: Cannot configure net device, aborting.",
  3036. dev->name);
  3037. goto err;
  3038. }
  3039. /* Set MACSTNADDR1, MACSTNADDR2 */
  3040. /* For more details see the hardware spec. */
  3041. init_mac_station_addr_regs(dev->dev_addr[0],
  3042. dev->dev_addr[1],
  3043. dev->dev_addr[2],
  3044. dev->dev_addr[3],
  3045. dev->dev_addr[4],
  3046. dev->dev_addr[5],
  3047. &ugeth->ug_regs->macstnaddr1,
  3048. &ugeth->ug_regs->macstnaddr2);
  3049. err = ugeth_enable(ugeth, COMM_DIR_RX_AND_TX);
  3050. if (err) {
  3051. if (netif_msg_ifup(ugeth))
  3052. ugeth_err("%s: Cannot enable net device, aborting.", dev->name);
  3053. goto err;
  3054. }
  3055. return 0;
  3056. err:
  3057. ucc_geth_stop(ugeth);
  3058. return err;
  3059. }
  3060. /* Called when something needs to use the ethernet device */
  3061. /* Returns 0 for success. */
  3062. static int ucc_geth_open(struct net_device *dev)
  3063. {
  3064. struct ucc_geth_private *ugeth = netdev_priv(dev);
  3065. int err;
  3066. ugeth_vdbg("%s: IN", __func__);
  3067. /* Test station address */
  3068. if (dev->dev_addr[0] & ENET_GROUP_ADDR) {
  3069. if (netif_msg_ifup(ugeth))
  3070. ugeth_err("%s: Multicast address used for station "
  3071. "address - is this what you wanted?",
  3072. __func__);
  3073. return -EINVAL;
  3074. }
  3075. err = init_phy(dev);
  3076. if (err) {
  3077. if (netif_msg_ifup(ugeth))
  3078. ugeth_err("%s: Cannot initialize PHY, aborting.",
  3079. dev->name);
  3080. return err;
  3081. }
  3082. err = ucc_geth_init_mac(ugeth);
  3083. if (err) {
  3084. if (netif_msg_ifup(ugeth))
  3085. ugeth_err("%s: Cannot initialize MAC, aborting.",
  3086. dev->name);
  3087. goto err;
  3088. }
  3089. err = request_irq(ugeth->ug_info->uf_info.irq, ucc_geth_irq_handler,
  3090. 0, "UCC Geth", dev);
  3091. if (err) {
  3092. if (netif_msg_ifup(ugeth))
  3093. ugeth_err("%s: Cannot get IRQ for net device, aborting.",
  3094. dev->name);
  3095. goto err;
  3096. }
  3097. phy_start(ugeth->phydev);
  3098. napi_enable(&ugeth->napi);
  3099. netif_start_queue(dev);
  3100. device_set_wakeup_capable(&dev->dev,
  3101. qe_alive_during_sleep() || ugeth->phydev->irq);
  3102. device_set_wakeup_enable(&dev->dev, ugeth->wol_en);
  3103. return err;
  3104. err:
  3105. ucc_geth_stop(ugeth);
  3106. return err;
  3107. }
  3108. /* Stops the kernel queue, and halts the controller */
  3109. static int ucc_geth_close(struct net_device *dev)
  3110. {
  3111. struct ucc_geth_private *ugeth = netdev_priv(dev);
  3112. ugeth_vdbg("%s: IN", __func__);
  3113. napi_disable(&ugeth->napi);
  3114. ucc_geth_stop(ugeth);
  3115. free_irq(ugeth->ug_info->uf_info.irq, ugeth->ndev);
  3116. netif_stop_queue(dev);
  3117. return 0;
  3118. }
  3119. /* Reopen device. This will reset the MAC and PHY. */
  3120. static void ucc_geth_timeout_work(struct work_struct *work)
  3121. {
  3122. struct ucc_geth_private *ugeth;
  3123. struct net_device *dev;
  3124. ugeth = container_of(work, struct ucc_geth_private, timeout_work);
  3125. dev = ugeth->ndev;
  3126. ugeth_vdbg("%s: IN", __func__);
  3127. dev->stats.tx_errors++;
  3128. ugeth_dump_regs(ugeth);
  3129. if (dev->flags & IFF_UP) {
  3130. /*
  3131. * Must reset MAC *and* PHY. This is done by reopening
  3132. * the device.
  3133. */
  3134. ucc_geth_close(dev);
  3135. ucc_geth_open(dev);
  3136. }
  3137. netif_tx_schedule_all(dev);
  3138. }
  3139. /*
  3140. * ucc_geth_timeout gets called when a packet has not been
  3141. * transmitted after a set amount of time.
  3142. */
  3143. static void ucc_geth_timeout(struct net_device *dev)
  3144. {
  3145. struct ucc_geth_private *ugeth = netdev_priv(dev);
  3146. netif_carrier_off(dev);
  3147. schedule_work(&ugeth->timeout_work);
  3148. }
  3149. #ifdef CONFIG_PM
  3150. static int ucc_geth_suspend(struct of_device *ofdev, pm_message_t state)
  3151. {
  3152. struct net_device *ndev = dev_get_drvdata(&ofdev->dev);
  3153. struct ucc_geth_private *ugeth = netdev_priv(ndev);
  3154. if (!netif_running(ndev))
  3155. return 0;
  3156. netif_device_detach(ndev);
  3157. napi_disable(&ugeth->napi);
  3158. /*
  3159. * Disable the controller, otherwise we'll wakeup on any network
  3160. * activity.
  3161. */
  3162. ugeth_disable(ugeth, COMM_DIR_RX_AND_TX);
  3163. if (ugeth->wol_en & WAKE_MAGIC) {
  3164. setbits32(ugeth->uccf->p_uccm, UCC_GETH_UCCE_MPD);
  3165. setbits32(&ugeth->ug_regs->maccfg2, MACCFG2_MPE);
  3166. ucc_fast_enable(ugeth->uccf, COMM_DIR_RX_AND_TX);
  3167. } else if (!(ugeth->wol_en & WAKE_PHY)) {
  3168. phy_stop(ugeth->phydev);
  3169. }
  3170. return 0;
  3171. }
  3172. static int ucc_geth_resume(struct of_device *ofdev)
  3173. {
  3174. struct net_device *ndev = dev_get_drvdata(&ofdev->dev);
  3175. struct ucc_geth_private *ugeth = netdev_priv(ndev);
  3176. int err;
  3177. if (!netif_running(ndev))
  3178. return 0;
  3179. if (qe_alive_during_sleep()) {
  3180. if (ugeth->wol_en & WAKE_MAGIC) {
  3181. ucc_fast_disable(ugeth->uccf, COMM_DIR_RX_AND_TX);
  3182. clrbits32(&ugeth->ug_regs->maccfg2, MACCFG2_MPE);
  3183. clrbits32(ugeth->uccf->p_uccm, UCC_GETH_UCCE_MPD);
  3184. }
  3185. ugeth_enable(ugeth, COMM_DIR_RX_AND_TX);
  3186. } else {
  3187. /*
  3188. * Full reinitialization is required if QE shuts down
  3189. * during sleep.
  3190. */
  3191. ucc_geth_memclean(ugeth);
  3192. err = ucc_geth_init_mac(ugeth);
  3193. if (err) {
  3194. ugeth_err("%s: Cannot initialize MAC, aborting.",
  3195. ndev->name);
  3196. return err;
  3197. }
  3198. }
  3199. ugeth->oldlink = 0;
  3200. ugeth->oldspeed = 0;
  3201. ugeth->oldduplex = -1;
  3202. phy_stop(ugeth->phydev);
  3203. phy_start(ugeth->phydev);
  3204. napi_enable(&ugeth->napi);
  3205. netif_device_attach(ndev);
  3206. return 0;
  3207. }
  3208. #else
  3209. #define ucc_geth_suspend NULL
  3210. #define ucc_geth_resume NULL
  3211. #endif
  3212. static phy_interface_t to_phy_interface(const char *phy_connection_type)
  3213. {
  3214. if (strcasecmp(phy_connection_type, "mii") == 0)
  3215. return PHY_INTERFACE_MODE_MII;
  3216. if (strcasecmp(phy_connection_type, "gmii") == 0)
  3217. return PHY_INTERFACE_MODE_GMII;
  3218. if (strcasecmp(phy_connection_type, "tbi") == 0)
  3219. return PHY_INTERFACE_MODE_TBI;
  3220. if (strcasecmp(phy_connection_type, "rmii") == 0)
  3221. return PHY_INTERFACE_MODE_RMII;
  3222. if (strcasecmp(phy_connection_type, "rgmii") == 0)
  3223. return PHY_INTERFACE_MODE_RGMII;
  3224. if (strcasecmp(phy_connection_type, "rgmii-id") == 0)
  3225. return PHY_INTERFACE_MODE_RGMII_ID;
  3226. if (strcasecmp(phy_connection_type, "rgmii-txid") == 0)
  3227. return PHY_INTERFACE_MODE_RGMII_TXID;
  3228. if (strcasecmp(phy_connection_type, "rgmii-rxid") == 0)
  3229. return PHY_INTERFACE_MODE_RGMII_RXID;
  3230. if (strcasecmp(phy_connection_type, "rtbi") == 0)
  3231. return PHY_INTERFACE_MODE_RTBI;
  3232. if (strcasecmp(phy_connection_type, "sgmii") == 0)
  3233. return PHY_INTERFACE_MODE_SGMII;
  3234. return PHY_INTERFACE_MODE_MII;
  3235. }
  3236. static const struct net_device_ops ucc_geth_netdev_ops = {
  3237. .ndo_open = ucc_geth_open,
  3238. .ndo_stop = ucc_geth_close,
  3239. .ndo_start_xmit = ucc_geth_start_xmit,
  3240. .ndo_validate_addr = eth_validate_addr,
  3241. .ndo_set_mac_address = ucc_geth_set_mac_addr,
  3242. .ndo_change_mtu = eth_change_mtu,
  3243. .ndo_set_multicast_list = ucc_geth_set_multi,
  3244. .ndo_tx_timeout = ucc_geth_timeout,
  3245. #ifdef CONFIG_NET_POLL_CONTROLLER
  3246. .ndo_poll_controller = ucc_netpoll,
  3247. #endif
  3248. };
  3249. static int ucc_geth_probe(struct of_device* ofdev, const struct of_device_id *match)
  3250. {
  3251. struct device *device = &ofdev->dev;
  3252. struct device_node *np = ofdev->node;
  3253. struct net_device *dev = NULL;
  3254. struct ucc_geth_private *ugeth = NULL;
  3255. struct ucc_geth_info *ug_info;
  3256. struct resource res;
  3257. int err, ucc_num, max_speed = 0;
  3258. const unsigned int *prop;
  3259. const char *sprop;
  3260. const void *mac_addr;
  3261. phy_interface_t phy_interface;
  3262. static const int enet_to_speed[] = {
  3263. SPEED_10, SPEED_10, SPEED_10,
  3264. SPEED_100, SPEED_100, SPEED_100,
  3265. SPEED_1000, SPEED_1000, SPEED_1000, SPEED_1000,
  3266. };
  3267. static const phy_interface_t enet_to_phy_interface[] = {
  3268. PHY_INTERFACE_MODE_MII, PHY_INTERFACE_MODE_RMII,
  3269. PHY_INTERFACE_MODE_RGMII, PHY_INTERFACE_MODE_MII,
  3270. PHY_INTERFACE_MODE_RMII, PHY_INTERFACE_MODE_RGMII,
  3271. PHY_INTERFACE_MODE_GMII, PHY_INTERFACE_MODE_RGMII,
  3272. PHY_INTERFACE_MODE_TBI, PHY_INTERFACE_MODE_RTBI,
  3273. PHY_INTERFACE_MODE_SGMII,
  3274. };
  3275. ugeth_vdbg("%s: IN", __func__);
  3276. prop = of_get_property(np, "cell-index", NULL);
  3277. if (!prop) {
  3278. prop = of_get_property(np, "device-id", NULL);
  3279. if (!prop)
  3280. return -ENODEV;
  3281. }
  3282. ucc_num = *prop - 1;
  3283. if ((ucc_num < 0) || (ucc_num > 7))
  3284. return -ENODEV;
  3285. ug_info = &ugeth_info[ucc_num];
  3286. if (ug_info == NULL) {
  3287. if (netif_msg_probe(&debug))
  3288. ugeth_err("%s: [%d] Missing additional data!",
  3289. __func__, ucc_num);
  3290. return -ENODEV;
  3291. }
  3292. ug_info->uf_info.ucc_num = ucc_num;
  3293. sprop = of_get_property(np, "rx-clock-name", NULL);
  3294. if (sprop) {
  3295. ug_info->uf_info.rx_clock = qe_clock_source(sprop);
  3296. if ((ug_info->uf_info.rx_clock < QE_CLK_NONE) ||
  3297. (ug_info->uf_info.rx_clock > QE_CLK24)) {
  3298. printk(KERN_ERR
  3299. "ucc_geth: invalid rx-clock-name property\n");
  3300. return -EINVAL;
  3301. }
  3302. } else {
  3303. prop = of_get_property(np, "rx-clock", NULL);
  3304. if (!prop) {
  3305. /* If both rx-clock-name and rx-clock are missing,
  3306. we want to tell people to use rx-clock-name. */
  3307. printk(KERN_ERR
  3308. "ucc_geth: missing rx-clock-name property\n");
  3309. return -EINVAL;
  3310. }
  3311. if ((*prop < QE_CLK_NONE) || (*prop > QE_CLK24)) {
  3312. printk(KERN_ERR
  3313. "ucc_geth: invalid rx-clock propperty\n");
  3314. return -EINVAL;
  3315. }
  3316. ug_info->uf_info.rx_clock = *prop;
  3317. }
  3318. sprop = of_get_property(np, "tx-clock-name", NULL);
  3319. if (sprop) {
  3320. ug_info->uf_info.tx_clock = qe_clock_source(sprop);
  3321. if ((ug_info->uf_info.tx_clock < QE_CLK_NONE) ||
  3322. (ug_info->uf_info.tx_clock > QE_CLK24)) {
  3323. printk(KERN_ERR
  3324. "ucc_geth: invalid tx-clock-name property\n");
  3325. return -EINVAL;
  3326. }
  3327. } else {
  3328. prop = of_get_property(np, "tx-clock", NULL);
  3329. if (!prop) {
  3330. printk(KERN_ERR
  3331. "ucc_geth: missing tx-clock-name property\n");
  3332. return -EINVAL;
  3333. }
  3334. if ((*prop < QE_CLK_NONE) || (*prop > QE_CLK24)) {
  3335. printk(KERN_ERR
  3336. "ucc_geth: invalid tx-clock property\n");
  3337. return -EINVAL;
  3338. }
  3339. ug_info->uf_info.tx_clock = *prop;
  3340. }
  3341. err = of_address_to_resource(np, 0, &res);
  3342. if (err)
  3343. return -EINVAL;
  3344. ug_info->uf_info.regs = res.start;
  3345. ug_info->uf_info.irq = irq_of_parse_and_map(np, 0);
  3346. ug_info->phy_node = of_parse_phandle(np, "phy-handle", 0);
  3347. /* Find the TBI PHY node. If it's not there, we don't support SGMII */
  3348. ug_info->tbi_node = of_parse_phandle(np, "tbi-handle", 0);
  3349. /* get the phy interface type, or default to MII */
  3350. prop = of_get_property(np, "phy-connection-type", NULL);
  3351. if (!prop) {
  3352. /* handle interface property present in old trees */
  3353. prop = of_get_property(ug_info->phy_node, "interface", NULL);
  3354. if (prop != NULL) {
  3355. phy_interface = enet_to_phy_interface[*prop];
  3356. max_speed = enet_to_speed[*prop];
  3357. } else
  3358. phy_interface = PHY_INTERFACE_MODE_MII;
  3359. } else {
  3360. phy_interface = to_phy_interface((const char *)prop);
  3361. }
  3362. /* get speed, or derive from PHY interface */
  3363. if (max_speed == 0)
  3364. switch (phy_interface) {
  3365. case PHY_INTERFACE_MODE_GMII:
  3366. case PHY_INTERFACE_MODE_RGMII:
  3367. case PHY_INTERFACE_MODE_RGMII_ID:
  3368. case PHY_INTERFACE_MODE_RGMII_RXID:
  3369. case PHY_INTERFACE_MODE_RGMII_TXID:
  3370. case PHY_INTERFACE_MODE_TBI:
  3371. case PHY_INTERFACE_MODE_RTBI:
  3372. case PHY_INTERFACE_MODE_SGMII:
  3373. max_speed = SPEED_1000;
  3374. break;
  3375. default:
  3376. max_speed = SPEED_100;
  3377. break;
  3378. }
  3379. if (max_speed == SPEED_1000) {
  3380. /* configure muram FIFOs for gigabit operation */
  3381. ug_info->uf_info.urfs = UCC_GETH_URFS_GIGA_INIT;
  3382. ug_info->uf_info.urfet = UCC_GETH_URFET_GIGA_INIT;
  3383. ug_info->uf_info.urfset = UCC_GETH_URFSET_GIGA_INIT;
  3384. ug_info->uf_info.utfs = UCC_GETH_UTFS_GIGA_INIT;
  3385. ug_info->uf_info.utfet = UCC_GETH_UTFET_GIGA_INIT;
  3386. ug_info->uf_info.utftt = UCC_GETH_UTFTT_GIGA_INIT;
  3387. ug_info->numThreadsTx = UCC_GETH_NUM_OF_THREADS_4;
  3388. /* If QE's snum number is 46 which means we need to support
  3389. * 4 UECs at 1000Base-T simultaneously, we need to allocate
  3390. * more Threads to Rx.
  3391. */
  3392. if (qe_get_num_of_snums() == 46)
  3393. ug_info->numThreadsRx = UCC_GETH_NUM_OF_THREADS_6;
  3394. else
  3395. ug_info->numThreadsRx = UCC_GETH_NUM_OF_THREADS_4;
  3396. }
  3397. if (netif_msg_probe(&debug))
  3398. printk(KERN_INFO "ucc_geth: UCC%1d at 0x%8x (irq = %d) \n",
  3399. ug_info->uf_info.ucc_num + 1, ug_info->uf_info.regs,
  3400. ug_info->uf_info.irq);
  3401. /* Create an ethernet device instance */
  3402. dev = alloc_etherdev(sizeof(*ugeth));
  3403. if (dev == NULL)
  3404. return -ENOMEM;
  3405. ugeth = netdev_priv(dev);
  3406. spin_lock_init(&ugeth->lock);
  3407. /* Create CQs for hash tables */
  3408. INIT_LIST_HEAD(&ugeth->group_hash_q);
  3409. INIT_LIST_HEAD(&ugeth->ind_hash_q);
  3410. dev_set_drvdata(device, dev);
  3411. /* Set the dev->base_addr to the gfar reg region */
  3412. dev->base_addr = (unsigned long)(ug_info->uf_info.regs);
  3413. SET_NETDEV_DEV(dev, device);
  3414. /* Fill in the dev structure */
  3415. uec_set_ethtool_ops(dev);
  3416. dev->netdev_ops = &ucc_geth_netdev_ops;
  3417. dev->watchdog_timeo = TX_TIMEOUT;
  3418. INIT_WORK(&ugeth->timeout_work, ucc_geth_timeout_work);
  3419. netif_napi_add(dev, &ugeth->napi, ucc_geth_poll, 64);
  3420. dev->mtu = 1500;
  3421. ugeth->msg_enable = netif_msg_init(debug.msg_enable, UGETH_MSG_DEFAULT);
  3422. ugeth->phy_interface = phy_interface;
  3423. ugeth->max_speed = max_speed;
  3424. err = register_netdev(dev);
  3425. if (err) {
  3426. if (netif_msg_probe(ugeth))
  3427. ugeth_err("%s: Cannot register net device, aborting.",
  3428. dev->name);
  3429. free_netdev(dev);
  3430. return err;
  3431. }
  3432. mac_addr = of_get_mac_address(np);
  3433. if (mac_addr)
  3434. memcpy(dev->dev_addr, mac_addr, 6);
  3435. ugeth->ug_info = ug_info;
  3436. ugeth->dev = device;
  3437. ugeth->ndev = dev;
  3438. ugeth->node = np;
  3439. return 0;
  3440. }
  3441. static int ucc_geth_remove(struct of_device* ofdev)
  3442. {
  3443. struct device *device = &ofdev->dev;
  3444. struct net_device *dev = dev_get_drvdata(device);
  3445. struct ucc_geth_private *ugeth = netdev_priv(dev);
  3446. unregister_netdev(dev);
  3447. free_netdev(dev);
  3448. ucc_geth_memclean(ugeth);
  3449. dev_set_drvdata(device, NULL);
  3450. return 0;
  3451. }
  3452. static struct of_device_id ucc_geth_match[] = {
  3453. {
  3454. .type = "network",
  3455. .compatible = "ucc_geth",
  3456. },
  3457. {},
  3458. };
  3459. MODULE_DEVICE_TABLE(of, ucc_geth_match);
  3460. static struct of_platform_driver ucc_geth_driver = {
  3461. .name = DRV_NAME,
  3462. .match_table = ucc_geth_match,
  3463. .probe = ucc_geth_probe,
  3464. .remove = ucc_geth_remove,
  3465. .suspend = ucc_geth_suspend,
  3466. .resume = ucc_geth_resume,
  3467. };
  3468. static int __init ucc_geth_init(void)
  3469. {
  3470. int i, ret;
  3471. if (netif_msg_drv(&debug))
  3472. printk(KERN_INFO "ucc_geth: " DRV_DESC "\n");
  3473. for (i = 0; i < 8; i++)
  3474. memcpy(&(ugeth_info[i]), &ugeth_primary_info,
  3475. sizeof(ugeth_primary_info));
  3476. ret = of_register_platform_driver(&ucc_geth_driver);
  3477. return ret;
  3478. }
  3479. static void __exit ucc_geth_exit(void)
  3480. {
  3481. of_unregister_platform_driver(&ucc_geth_driver);
  3482. }
  3483. module_init(ucc_geth_init);
  3484. module_exit(ucc_geth_exit);
  3485. MODULE_AUTHOR("Freescale Semiconductor, Inc");
  3486. MODULE_DESCRIPTION(DRV_DESC);
  3487. MODULE_VERSION(DRV_VERSION);
  3488. MODULE_LICENSE("GPL");