1 /* SPDX-License-Identifier: GPL-2.0 */ 2 /****************************************************************************/ 3 4 /* 5 * fec.h -- Fast Ethernet Controller for Motorola ColdFire SoC 6 * processors. 7 * 8 * (C) Copyright 2000-2005, Greg Ungerer (gerg@snapgear.com) 9 * (C) Copyright 2000-2001, Lineo (www.lineo.com) 10 */ 11 12 /****************************************************************************/ 13 #ifndef FEC_H 14 #define FEC_H 15 /****************************************************************************/ 16 17 #include <linux/clocksource.h> 18 #include <linux/net_tstamp.h> 19 #include <linux/pm_qos.h> 20 #include <linux/ptp_clock_kernel.h> 21 #include <linux/timecounter.h> 22 #include <dt-bindings/firmware/imx/rsrc.h> 23 #include <linux/firmware/imx/sci.h> 24 25 #if defined(CONFIG_M523x) || defined(CONFIG_M527x) || defined(CONFIG_M528x) || \ 26 defined(CONFIG_M520x) || defined(CONFIG_M532x) || defined(CONFIG_ARM) || \ 27 defined(CONFIG_ARM64) || defined(CONFIG_COMPILE_TEST) 28 /* 29 * Just figures, Motorola would have to change the offsets for 30 * registers in the same peripheral device on different models 31 * of the ColdFire! 32 */ 33 #define FEC_IEVENT 0x004 /* Interrupt event reg */ 34 #define FEC_IMASK 0x008 /* Interrupt mask reg */ 35 #define FEC_R_DES_ACTIVE_0 0x010 /* Receive descriptor reg */ 36 #define FEC_X_DES_ACTIVE_0 0x014 /* Transmit descriptor reg */ 37 #define FEC_ECNTRL 0x024 /* Ethernet control reg */ 38 #define FEC_MII_DATA 0x040 /* MII manage frame reg */ 39 #define FEC_MII_SPEED 0x044 /* MII speed control reg */ 40 #define FEC_MIB_CTRLSTAT 0x064 /* MIB control/status reg */ 41 #define FEC_R_CNTRL 0x084 /* Receive control reg */ 42 #define FEC_X_CNTRL 0x0c4 /* Transmit Control reg */ 43 #define FEC_ADDR_LOW 0x0e4 /* Low 32bits MAC address */ 44 #define FEC_ADDR_HIGH 0x0e8 /* High 16bits MAC address */ 45 #define FEC_OPD 0x0ec /* Opcode + Pause duration */ 46 #define FEC_TXIC0 0x0f0 /* Tx Interrupt Coalescing for ring 0 */ 47 #define FEC_TXIC1 0x0f4 /* Tx Interrupt Coalescing for ring 1 */ 48 #define FEC_TXIC2 0x0f8 /* Tx Interrupt Coalescing for ring 2 */ 49 #define FEC_RXIC0 0x100 /* Rx Interrupt Coalescing for ring 0 */ 50 #define FEC_RXIC1 0x104 /* Rx Interrupt Coalescing for ring 1 */ 51 #define FEC_RXIC2 0x108 /* Rx Interrupt Coalescing for ring 2 */ 52 #define FEC_HASH_TABLE_HIGH 0x118 /* High 32bits hash table */ 53 #define FEC_HASH_TABLE_LOW 0x11c /* Low 32bits hash table */ 54 #define FEC_GRP_HASH_TABLE_HIGH 0x120 /* High 32bits hash table */ 55 #define FEC_GRP_HASH_TABLE_LOW 0x124 /* Low 32bits hash table */ 56 #define FEC_X_WMRK 0x144 /* FIFO transmit water mark */ 57 #define FEC_R_BOUND 0x14c /* FIFO receive bound reg */ 58 #define FEC_R_FSTART 0x150 /* FIFO receive start reg */ 59 #define FEC_R_DES_START_1 0x160 /* Receive descriptor ring 1 */ 60 #define FEC_X_DES_START_1 0x164 /* Transmit descriptor ring 1 */ 61 #define FEC_R_BUFF_SIZE_1 0x168 /* Maximum receive buff ring1 size */ 62 #define FEC_R_DES_START_2 0x16c /* Receive descriptor ring 2 */ 63 #define FEC_X_DES_START_2 0x170 /* Transmit descriptor ring 2 */ 64 #define FEC_R_BUFF_SIZE_2 0x174 /* Maximum receive buff ring2 size */ 65 #define FEC_R_DES_START_0 0x180 /* Receive descriptor ring */ 66 #define FEC_X_DES_START_0 0x184 /* Transmit descriptor ring */ 67 #define FEC_R_BUFF_SIZE_0 0x188 /* Maximum receive buff size */ 68 #define FEC_R_FIFO_RSFL 0x190 /* Receive FIFO section full threshold */ 69 #define FEC_R_FIFO_RSEM 0x194 /* Receive FIFO section empty threshold */ 70 #define FEC_R_FIFO_RAEM 0x198 /* Receive FIFO almost empty threshold */ 71 #define FEC_R_FIFO_RAFL 0x19c /* Receive FIFO almost full threshold */ 72 #define FEC_FTRL 0x1b0 /* Frame truncation receive length*/ 73 #define FEC_RACC 0x1c4 /* Receive Accelerator function */ 74 #define FEC_RCMR_1 0x1c8 /* Receive classification match ring 1 */ 75 #define FEC_RCMR_2 0x1cc /* Receive classification match ring 2 */ 76 #define FEC_DMA_CFG_1 0x1d8 /* DMA class configuration for ring 1 */ 77 #define FEC_DMA_CFG_2 0x1dc /* DMA class Configuration for ring 2 */ 78 #define FEC_R_DES_ACTIVE_1 0x1e0 /* Rx descriptor active for ring 1 */ 79 #define FEC_X_DES_ACTIVE_1 0x1e4 /* Tx descriptor active for ring 1 */ 80 #define FEC_R_DES_ACTIVE_2 0x1e8 /* Rx descriptor active for ring 2 */ 81 #define FEC_X_DES_ACTIVE_2 0x1ec /* Tx descriptor active for ring 2 */ 82 #define FEC_QOS_SCHEME 0x1f0 /* Set multi queues Qos scheme */ 83 #define FEC_LPI_SLEEP 0x1f4 /* Set IEEE802.3az LPI Sleep Ts time */ 84 #define FEC_LPI_WAKE 0x1f8 /* Set IEEE802.3az LPI Wake Tw time */ 85 #define FEC_MIIGSK_CFGR 0x300 /* MIIGSK Configuration reg */ 86 #define FEC_MIIGSK_ENR 0x308 /* MIIGSK Enable reg */ 87 88 #define BM_MIIGSK_CFGR_MII 0x00 89 #define BM_MIIGSK_CFGR_RMII 0x01 90 #define BM_MIIGSK_CFGR_FRCONT_10M 0x40 91 92 #define RMON_T_DROP 0x200 /* Count of frames not cntd correctly */ 93 #define RMON_T_PACKETS 0x204 /* RMON TX packet count */ 94 #define RMON_T_BC_PKT 0x208 /* RMON TX broadcast pkts */ 95 #define RMON_T_MC_PKT 0x20c /* RMON TX multicast pkts */ 96 #define RMON_T_CRC_ALIGN 0x210 /* RMON TX pkts with CRC align err */ 97 #define RMON_T_UNDERSIZE 0x214 /* RMON TX pkts < 64 bytes, good CRC */ 98 #define RMON_T_OVERSIZE 0x218 /* RMON TX pkts > MAX_FL bytes good CRC */ 99 #define RMON_T_FRAG 0x21c /* RMON TX pkts < 64 bytes, bad CRC */ 100 #define RMON_T_JAB 0x220 /* RMON TX pkts > MAX_FL bytes, bad CRC */ 101 #define RMON_T_COL 0x224 /* RMON TX collision count */ 102 #define RMON_T_P64 0x228 /* RMON TX 64 byte pkts */ 103 #define RMON_T_P65TO127 0x22c /* RMON TX 65 to 127 byte pkts */ 104 #define RMON_T_P128TO255 0x230 /* RMON TX 128 to 255 byte pkts */ 105 #define RMON_T_P256TO511 0x234 /* RMON TX 256 to 511 byte pkts */ 106 #define RMON_T_P512TO1023 0x238 /* RMON TX 512 to 1023 byte pkts */ 107 #define RMON_T_P1024TO2047 0x23c /* RMON TX 1024 to 2047 byte pkts */ 108 #define RMON_T_P_GTE2048 0x240 /* RMON TX pkts > 2048 bytes */ 109 #define RMON_T_OCTETS 0x244 /* RMON TX octets */ 110 #define IEEE_T_DROP 0x248 /* Count of frames not counted crtly */ 111 #define IEEE_T_FRAME_OK 0x24c /* Frames tx'd OK */ 112 #define IEEE_T_1COL 0x250 /* Frames tx'd with single collision */ 113 #define IEEE_T_MCOL 0x254 /* Frames tx'd with multiple collision */ 114 #define IEEE_T_DEF 0x258 /* Frames tx'd after deferral delay */ 115 #define IEEE_T_LCOL 0x25c /* Frames tx'd with late collision */ 116 #define IEEE_T_EXCOL 0x260 /* Frames tx'd with excesv collisions */ 117 #define IEEE_T_MACERR 0x264 /* Frames tx'd with TX FIFO underrun */ 118 #define IEEE_T_CSERR 0x268 /* Frames tx'd with carrier sense err */ 119 #define IEEE_T_SQE 0x26c /* Frames tx'd with SQE err */ 120 #define IEEE_T_FDXFC 0x270 /* Flow control pause frames tx'd */ 121 #define IEEE_T_OCTETS_OK 0x274 /* Octet count for frames tx'd w/o err */ 122 #define RMON_R_PACKETS 0x284 /* RMON RX packet count */ 123 #define RMON_R_BC_PKT 0x288 /* RMON RX broadcast pkts */ 124 #define RMON_R_MC_PKT 0x28c /* RMON RX multicast pkts */ 125 #define RMON_R_CRC_ALIGN 0x290 /* RMON RX pkts with CRC alignment err */ 126 #define RMON_R_UNDERSIZE 0x294 /* RMON RX pkts < 64 bytes, good CRC */ 127 #define RMON_R_OVERSIZE 0x298 /* RMON RX pkts > MAX_FL bytes good CRC */ 128 #define RMON_R_FRAG 0x29c /* RMON RX pkts < 64 bytes, bad CRC */ 129 #define RMON_R_JAB 0x2a0 /* RMON RX pkts > MAX_FL bytes, bad CRC */ 130 #define RMON_R_RESVD_O 0x2a4 /* Reserved */ 131 #define RMON_R_P64 0x2a8 /* RMON RX 64 byte pkts */ 132 #define RMON_R_P65TO127 0x2ac /* RMON RX 65 to 127 byte pkts */ 133 #define RMON_R_P128TO255 0x2b0 /* RMON RX 128 to 255 byte pkts */ 134 #define RMON_R_P256TO511 0x2b4 /* RMON RX 256 to 511 byte pkts */ 135 #define RMON_R_P512TO1023 0x2b8 /* RMON RX 512 to 1023 byte pkts */ 136 #define RMON_R_P1024TO2047 0x2bc /* RMON RX 1024 to 2047 byte pkts */ 137 #define RMON_R_P_GTE2048 0x2c0 /* RMON RX pkts > 2048 bytes */ 138 #define RMON_R_OCTETS 0x2c4 /* RMON RX octets */ 139 #define IEEE_R_DROP 0x2c8 /* Count frames not counted correctly */ 140 #define IEEE_R_FRAME_OK 0x2cc /* Frames rx'd OK */ 141 #define IEEE_R_CRC 0x2d0 /* Frames rx'd with CRC err */ 142 #define IEEE_R_ALIGN 0x2d4 /* Frames rx'd with alignment err */ 143 #define IEEE_R_MACERR 0x2d8 /* Receive FIFO overflow count */ 144 #define IEEE_R_FDXFC 0x2dc /* Flow control pause frames rx'd */ 145 #define IEEE_R_OCTETS_OK 0x2e0 /* Octet cnt for frames rx'd w/o err */ 146 147 #else 148 149 #define FEC_ECNTRL 0x000 /* Ethernet control reg */ 150 #define FEC_IEVENT 0x004 /* Interrupt even reg */ 151 #define FEC_IMASK 0x008 /* Interrupt mask reg */ 152 #define FEC_IVEC 0x00c /* Interrupt vec status reg */ 153 #define FEC_R_DES_ACTIVE_0 0x010 /* Receive descriptor reg */ 154 #define FEC_R_DES_ACTIVE_1 FEC_R_DES_ACTIVE_0 155 #define FEC_R_DES_ACTIVE_2 FEC_R_DES_ACTIVE_0 156 #define FEC_X_DES_ACTIVE_0 0x014 /* Transmit descriptor reg */ 157 #define FEC_X_DES_ACTIVE_1 FEC_X_DES_ACTIVE_0 158 #define FEC_X_DES_ACTIVE_2 FEC_X_DES_ACTIVE_0 159 #define FEC_MII_DATA 0x040 /* MII manage frame reg */ 160 #define FEC_MII_SPEED 0x044 /* MII speed control reg */ 161 #define FEC_R_BOUND 0x08c /* FIFO receive bound reg */ 162 #define FEC_R_FSTART 0x090 /* FIFO receive start reg */ 163 #define FEC_X_WMRK 0x0a4 /* FIFO transmit water mark */ 164 #define FEC_X_FSTART 0x0ac /* FIFO transmit start reg */ 165 #define FEC_R_CNTRL 0x104 /* Receive control reg */ 166 #define FEC_MAX_FRM_LEN 0x108 /* Maximum frame length reg */ 167 #define FEC_X_CNTRL 0x144 /* Transmit Control reg */ 168 #define FEC_ADDR_LOW 0x3c0 /* Low 32bits MAC address */ 169 #define FEC_ADDR_HIGH 0x3c4 /* High 16bits MAC address */ 170 #define FEC_GRP_HASH_TABLE_HIGH 0x3c8 /* High 32bits hash table */ 171 #define FEC_GRP_HASH_TABLE_LOW 0x3cc /* Low 32bits hash table */ 172 #define FEC_R_DES_START_0 0x3d0 /* Receive descriptor ring */ 173 #define FEC_R_DES_START_1 FEC_R_DES_START_0 174 #define FEC_R_DES_START_2 FEC_R_DES_START_0 175 #define FEC_X_DES_START_0 0x3d4 /* Transmit descriptor ring */ 176 #define FEC_X_DES_START_1 FEC_X_DES_START_0 177 #define FEC_X_DES_START_2 FEC_X_DES_START_0 178 #define FEC_R_BUFF_SIZE_0 0x3d8 /* Maximum receive buff size */ 179 #define FEC_R_BUFF_SIZE_1 FEC_R_BUFF_SIZE_0 180 #define FEC_R_BUFF_SIZE_2 FEC_R_BUFF_SIZE_0 181 #define FEC_FIFO_RAM 0x400 /* FIFO RAM buffer */ 182 /* Not existed in real chip 183 * Just for pass build. 184 */ 185 #define FEC_RCMR_1 0xfff 186 #define FEC_RCMR_2 0xfff 187 #define FEC_DMA_CFG_1 0xfff 188 #define FEC_DMA_CFG_2 0xfff 189 #define FEC_TXIC0 0xfff 190 #define FEC_TXIC1 0xfff 191 #define FEC_TXIC2 0xfff 192 #define FEC_RXIC0 0xfff 193 #define FEC_RXIC1 0xfff 194 #define FEC_RXIC2 0xfff 195 #define FEC_LPI_SLEEP 0xfff 196 #define FEC_LPI_WAKE 0xfff 197 #endif /* CONFIG_M5272 */ 198 199 200 /* 201 * Define the buffer descriptor structure. 202 * 203 * Evidently, ARM SoCs have the FEC block generated in a 204 * little endian mode so adjust endianness accordingly. 205 */ 206 #if defined(CONFIG_ARM) || defined(CONFIG_ARM64) 207 #define fec32_to_cpu le32_to_cpu 208 #define fec16_to_cpu le16_to_cpu 209 #define cpu_to_fec32 cpu_to_le32 210 #define cpu_to_fec16 cpu_to_le16 211 #define __fec32 __le32 212 #define __fec16 __le16 213 214 struct bufdesc { 215 __fec16 cbd_datlen; /* Data length */ 216 __fec16 cbd_sc; /* Control and status info */ 217 __fec32 cbd_bufaddr; /* Buffer address */ 218 }; 219 #else 220 #define fec32_to_cpu be32_to_cpu 221 #define fec16_to_cpu be16_to_cpu 222 #define cpu_to_fec32 cpu_to_be32 223 #define cpu_to_fec16 cpu_to_be16 224 #define __fec32 __be32 225 #define __fec16 __be16 226 227 struct bufdesc { 228 __fec16 cbd_sc; /* Control and status info */ 229 __fec16 cbd_datlen; /* Data length */ 230 __fec32 cbd_bufaddr; /* Buffer address */ 231 }; 232 #endif 233 234 struct bufdesc_ex { 235 struct bufdesc desc; 236 __fec32 cbd_esc; 237 __fec32 cbd_prot; 238 __fec32 cbd_bdu; 239 __fec32 ts; 240 __fec16 res0[4]; 241 }; 242 243 /* 244 * The following definitions courtesy of commproc.h, which where 245 * Copyright (c) 1997 Dan Malek (dmalek@jlc.net). 246 */ 247 #define BD_SC_EMPTY ((ushort)0x8000) /* Receive is empty */ 248 #define BD_SC_READY ((ushort)0x8000) /* Transmit is ready */ 249 #define BD_SC_WRAP ((ushort)0x2000) /* Last buffer descriptor */ 250 #define BD_SC_INTRPT ((ushort)0x1000) /* Interrupt on change */ 251 #define BD_SC_CM ((ushort)0x0200) /* Continuous mode */ 252 #define BD_SC_ID ((ushort)0x0100) /* Rec'd too many idles */ 253 #define BD_SC_P ((ushort)0x0100) /* xmt preamble */ 254 #define BD_SC_BR ((ushort)0x0020) /* Break received */ 255 #define BD_SC_FR ((ushort)0x0010) /* Framing error */ 256 #define BD_SC_PR ((ushort)0x0008) /* Parity error */ 257 #define BD_SC_OV ((ushort)0x0002) /* Overrun */ 258 #define BD_SC_CD ((ushort)0x0001) /* ?? */ 259 260 /* Buffer descriptor control/status used by Ethernet receive. 261 */ 262 #define BD_ENET_RX_EMPTY ((ushort)0x8000) 263 #define BD_ENET_RX_WRAP ((ushort)0x2000) 264 #define BD_ENET_RX_INTR ((ushort)0x1000) 265 #define BD_ENET_RX_LAST ((ushort)0x0800) 266 #define BD_ENET_RX_FIRST ((ushort)0x0400) 267 #define BD_ENET_RX_MISS ((ushort)0x0100) 268 #define BD_ENET_RX_LG ((ushort)0x0020) 269 #define BD_ENET_RX_NO ((ushort)0x0010) 270 #define BD_ENET_RX_SH ((ushort)0x0008) 271 #define BD_ENET_RX_CR ((ushort)0x0004) 272 #define BD_ENET_RX_OV ((ushort)0x0002) 273 #define BD_ENET_RX_CL ((ushort)0x0001) 274 #define BD_ENET_RX_STATS ((ushort)0x013f) /* All status bits */ 275 276 /* Enhanced buffer descriptor control/status used by Ethernet receive */ 277 #define BD_ENET_RX_VLAN 0x00000004 278 279 /* Buffer descriptor control/status used by Ethernet transmit. 280 */ 281 #define BD_ENET_TX_READY ((ushort)0x8000) 282 #define BD_ENET_TX_PAD ((ushort)0x4000) 283 #define BD_ENET_TX_WRAP ((ushort)0x2000) 284 #define BD_ENET_TX_INTR ((ushort)0x1000) 285 #define BD_ENET_TX_LAST ((ushort)0x0800) 286 #define BD_ENET_TX_TC ((ushort)0x0400) 287 #define BD_ENET_TX_DEF ((ushort)0x0200) 288 #define BD_ENET_TX_HB ((ushort)0x0100) 289 #define BD_ENET_TX_LC ((ushort)0x0080) 290 #define BD_ENET_TX_RL ((ushort)0x0040) 291 #define BD_ENET_TX_RCMASK ((ushort)0x003c) 292 #define BD_ENET_TX_UN ((ushort)0x0002) 293 #define BD_ENET_TX_CSL ((ushort)0x0001) 294 #define BD_ENET_TX_STATS ((ushort)0x0fff) /* All status bits */ 295 296 /* enhanced buffer descriptor control/status used by Ethernet transmit */ 297 #define BD_ENET_TX_INT 0x40000000 298 #define BD_ENET_TX_TS 0x20000000 299 #define BD_ENET_TX_PINS 0x10000000 300 #define BD_ENET_TX_IINS 0x08000000 301 302 303 /* This device has up to three irqs on some platforms */ 304 #define FEC_IRQ_NUM 3 305 306 /* Maximum number of queues supported 307 * ENET with AVB IP can support up to 3 independent tx queues and rx queues. 308 * User can point the queue number that is less than or equal to 3. 309 */ 310 #define FEC_ENET_MAX_TX_QS 3 311 #define FEC_ENET_MAX_RX_QS 3 312 313 #define FEC_R_DES_START(X) (((X) == 1) ? FEC_R_DES_START_1 : \ 314 (((X) == 2) ? \ 315 FEC_R_DES_START_2 : FEC_R_DES_START_0)) 316 #define FEC_X_DES_START(X) (((X) == 1) ? FEC_X_DES_START_1 : \ 317 (((X) == 2) ? \ 318 FEC_X_DES_START_2 : FEC_X_DES_START_0)) 319 #define FEC_R_BUFF_SIZE(X) (((X) == 1) ? FEC_R_BUFF_SIZE_1 : \ 320 (((X) == 2) ? \ 321 FEC_R_BUFF_SIZE_2 : FEC_R_BUFF_SIZE_0)) 322 323 #define FEC_DMA_CFG(X) (((X) == 2) ? FEC_DMA_CFG_2 : FEC_DMA_CFG_1) 324 325 #define DMA_CLASS_EN (1 << 16) 326 #define FEC_RCMR(X) (((X) == 2) ? FEC_RCMR_2 : FEC_RCMR_1) 327 #define IDLE_SLOPE_MASK 0xffff 328 #define IDLE_SLOPE_1 0x200 /* BW fraction: 0.5 */ 329 #define IDLE_SLOPE_2 0x200 /* BW fraction: 0.5 */ 330 #define IDLE_SLOPE(X) (((X) == 1) ? \ 331 (IDLE_SLOPE_1 & IDLE_SLOPE_MASK) : \ 332 (IDLE_SLOPE_2 & IDLE_SLOPE_MASK)) 333 #define RCMR_MATCHEN (0x1 << 16) 334 #define RCMR_CMP_CFG(v, n) (((v) & 0x7) << (n << 2)) 335 #define RCMR_CMP_1 (RCMR_CMP_CFG(0, 0) | RCMR_CMP_CFG(1, 1) | \ 336 RCMR_CMP_CFG(2, 2) | RCMR_CMP_CFG(3, 3)) 337 #define RCMR_CMP_2 (RCMR_CMP_CFG(4, 0) | RCMR_CMP_CFG(5, 1) | \ 338 RCMR_CMP_CFG(6, 2) | RCMR_CMP_CFG(7, 3)) 339 #define RCMR_CMP(X) (((X) == 1) ? RCMR_CMP_1 : RCMR_CMP_2) 340 #define FEC_TX_BD_FTYPE(X) (((X) & 0xf) << 20) 341 342 /* The number of Tx and Rx buffers. These are allocated from the page 343 * pool. The code may assume these are power of two, so it it best 344 * to keep them that size. 345 * We don't need to allocate pages for the transmitter. We just use 346 * the skbuffer directly. 347 */ 348 349 #define FEC_ENET_RX_PAGES 256 350 #define FEC_ENET_RX_FRSIZE 2048 351 #define FEC_ENET_RX_FRPPG (PAGE_SIZE / FEC_ENET_RX_FRSIZE) 352 #define RX_RING_SIZE (FEC_ENET_RX_FRPPG * FEC_ENET_RX_PAGES) 353 #define FEC_ENET_TX_FRSIZE 2048 354 #define FEC_ENET_TX_FRPPG (PAGE_SIZE / FEC_ENET_TX_FRSIZE) 355 #define TX_RING_SIZE 512 /* Must be power of two */ 356 #define TX_RING_MOD_MASK 511 /* for this to work */ 357 358 #define BD_ENET_RX_INT 0x00800000 359 #define BD_ENET_RX_PTP ((ushort)0x0400) 360 #define BD_ENET_RX_ICE 0x00000020 361 #define BD_ENET_RX_PCR 0x00000010 362 #define FLAG_RX_CSUM_ENABLED (BD_ENET_RX_ICE | BD_ENET_RX_PCR) 363 #define FLAG_RX_CSUM_ERROR (BD_ENET_RX_ICE | BD_ENET_RX_PCR) 364 365 /* Interrupt events/masks. */ 366 #define FEC_ENET_HBERR ((uint)0x80000000) /* Heartbeat error */ 367 #define FEC_ENET_BABR ((uint)0x40000000) /* Babbling receiver */ 368 #define FEC_ENET_BABT ((uint)0x20000000) /* Babbling transmitter */ 369 #define FEC_ENET_GRA ((uint)0x10000000) /* Graceful stop complete */ 370 #define FEC_ENET_TXF_0 ((uint)0x08000000) /* Full frame transmitted */ 371 #define FEC_ENET_TXF_1 ((uint)0x00000008) /* Full frame transmitted */ 372 #define FEC_ENET_TXF_2 ((uint)0x00000080) /* Full frame transmitted */ 373 #define FEC_ENET_TXB ((uint)0x04000000) /* A buffer was transmitted */ 374 #define FEC_ENET_RXF_0 ((uint)0x02000000) /* Full frame received */ 375 #define FEC_ENET_RXF_1 ((uint)0x00000002) /* Full frame received */ 376 #define FEC_ENET_RXF_2 ((uint)0x00000020) /* Full frame received */ 377 #define FEC_ENET_RXB ((uint)0x01000000) /* A buffer was received */ 378 #define FEC_ENET_MII ((uint)0x00800000) /* MII interrupt */ 379 #define FEC_ENET_EBERR ((uint)0x00400000) /* SDMA bus error */ 380 #define FEC_ENET_WAKEUP ((uint)0x00020000) /* Wakeup request */ 381 #define FEC_ENET_TXF (FEC_ENET_TXF_0 | FEC_ENET_TXF_1 | FEC_ENET_TXF_2) 382 #define FEC_ENET_RXF (FEC_ENET_RXF_0 | FEC_ENET_RXF_1 | FEC_ENET_RXF_2) 383 #define FEC_ENET_RXF_GET(X) (((X) == 0) ? FEC_ENET_RXF_0 : \ 384 (((X) == 1) ? FEC_ENET_RXF_1 : \ 385 FEC_ENET_RXF_2)) 386 #define FEC_ENET_TS_AVAIL ((uint)0x00010000) 387 #define FEC_ENET_TS_TIMER ((uint)0x00008000) 388 389 #define FEC_DEFAULT_IMASK (FEC_ENET_TXF | FEC_ENET_RXF) 390 #define FEC_RX_DISABLED_IMASK (FEC_DEFAULT_IMASK & (~FEC_ENET_RXF)) 391 392 #define FEC_ENET_TXC_DLY ((uint)0x00010000) 393 #define FEC_ENET_RXC_DLY ((uint)0x00020000) 394 395 /* ENET interrupt coalescing macro define */ 396 #define FEC_ITR_CLK_SEL (0x1 << 30) 397 #define FEC_ITR_EN (0x1 << 31) 398 #define FEC_ITR_ICFT(X) (((X) & 0xff) << 20) 399 #define FEC_ITR_ICTT(X) ((X) & 0xffff) 400 #define FEC_ITR_ICFT_DEFAULT 200 /* Set 200 frame count threshold */ 401 #define FEC_ITR_ICTT_DEFAULT 1000 /* Set 1000us timer threshold */ 402 403 #define FEC_VLAN_TAG_LEN 0x04 404 #define FEC_ETHTYPE_LEN 0x02 405 406 /* Controller is ENET-MAC */ 407 #define FEC_QUIRK_ENET_MAC (1 << 0) 408 /* Controller needs driver to swap frame */ 409 #define FEC_QUIRK_SWAP_FRAME (1 << 1) 410 /* Controller uses gasket */ 411 #define FEC_QUIRK_USE_GASKET (1 << 2) 412 /* Controller has GBIT support */ 413 #define FEC_QUIRK_HAS_GBIT (1 << 3) 414 /* Controller has extend desc buffer */ 415 #define FEC_QUIRK_HAS_BUFDESC_EX (1 << 4) 416 /* Controller has hardware checksum support */ 417 #define FEC_QUIRK_HAS_CSUM (1 << 5) 418 /* Controller has hardware vlan support */ 419 #define FEC_QUIRK_HAS_VLAN (1 << 6) 420 /* ENET IP errata ERR006358 421 * 422 * If the ready bit in the transmit buffer descriptor (TxBD[R]) is previously 423 * detected as not set during a prior frame transmission, then the 424 * ENET_TDAR[TDAR] bit is cleared at a later time, even if additional TxBDs 425 * were added to the ring and the ENET_TDAR[TDAR] bit is set. This results in 426 * frames not being transmitted until there is a 0-to-1 transition on 427 * ENET_TDAR[TDAR]. 428 */ 429 #define FEC_QUIRK_ERR006358 (1 << 7) 430 /* ENET IP hw AVB 431 * 432 * i.MX6SX ENET IP add Audio Video Bridging (AVB) feature support. 433 * - Two class indicators on receive with configurable priority 434 * - Two class indicators and line speed timer on transmit allowing 435 * implementation class credit based shapers externally 436 * - Additional DMA registers provisioned to allow managing up to 3 437 * independent rings 438 */ 439 #define FEC_QUIRK_HAS_AVB (1 << 8) 440 /* There is a TDAR race condition for mutliQ when the software sets TDAR 441 * and the UDMA clears TDAR simultaneously or in a small window (2-4 cycles). 442 * This will cause the udma_tx and udma_tx_arbiter state machines to hang. 443 * The issue exist at i.MX6SX enet IP. 444 */ 445 #define FEC_QUIRK_ERR007885 (1 << 9) 446 /* ENET Block Guide/ Chapter for the iMX6SX (PELE) address one issue: 447 * After set ENET_ATCR[Capture], there need some time cycles before the counter 448 * value is capture in the register clock domain. 449 * The wait-time-cycles is at least 6 clock cycles of the slower clock between 450 * the register clock and the 1588 clock. The 1588 ts_clk is fixed to 25Mhz, 451 * register clock is 66Mhz, so the wait-time-cycles must be greater than 240ns 452 * (40ns * 6). 453 */ 454 #define FEC_QUIRK_BUG_CAPTURE (1 << 10) 455 /* Controller has only one MDIO bus */ 456 #define FEC_QUIRK_SINGLE_MDIO (1 << 11) 457 /* Controller supports RACC register */ 458 #define FEC_QUIRK_HAS_RACC (1 << 12) 459 /* Controller supports interrupt coalesc */ 460 #define FEC_QUIRK_HAS_COALESCE (1 << 13) 461 /* Interrupt doesn't wake CPU from deep idle */ 462 #define FEC_QUIRK_ERR006687 (1 << 14) 463 /* The MIB counters should be cleared and enabled during 464 * initialisation. 465 */ 466 #define FEC_QUIRK_MIB_CLEAR (1 << 15) 467 /* Only i.MX25/i.MX27/i.MX28 controller supports FRBR,FRSR registers, 468 * those FIFO receive registers are resolved in other platforms. 469 */ 470 #define FEC_QUIRK_HAS_FRREG (1 << 16) 471 472 /* Some FEC hardware blocks need the MMFR cleared at setup time to avoid 473 * the generation of an MII event. This must be avoided in the older 474 * FEC blocks where it will stop MII events being generated. 475 */ 476 #define FEC_QUIRK_CLEAR_SETUP_MII (1 << 17) 477 478 /* Some link partners do not tolerate the momentary reset of the REF_CLK 479 * frequency when the RNCTL register is cleared by hardware reset. 480 */ 481 #define FEC_QUIRK_NO_HARD_RESET (1 << 18) 482 483 /* i.MX6SX ENET IP supports multiple queues (3 queues), use this quirk to 484 * represents this ENET IP. 485 */ 486 #define FEC_QUIRK_HAS_MULTI_QUEUES (1 << 19) 487 488 /* i.MX8MQ ENET IP version add new feature to support IEEE 802.3az EEE 489 * standard. For the transmission, MAC supply two user registers to set 490 * Sleep (TS) and Wake (TW) time. 491 */ 492 #define FEC_QUIRK_HAS_EEE (1 << 20) 493 494 /* i.MX8QM ENET IP version add new feture to generate delayed TXC/RXC 495 * as an alternative option to make sure it works well with various PHYs. 496 * For the implementation of delayed clock, ENET takes synchronized 250MHz 497 * clocks to generate 2ns delay. 498 */ 499 #define FEC_QUIRK_DELAYED_CLKS_SUPPORT (1 << 21) 500 501 /* i.MX8MQ SoC integration mix wakeup interrupt signal into "int2" interrupt line. */ 502 #define FEC_QUIRK_WAKEUP_FROM_INT2 (1 << 22) 503 504 /* i.MX6Q adds pm_qos support */ 505 #define FEC_QUIRK_HAS_PMQOS BIT(23) 506 507 struct bufdesc_prop { 508 int qid; 509 /* Address of Rx and Tx buffers */ 510 struct bufdesc *base; 511 struct bufdesc *last; 512 struct bufdesc *cur; 513 void __iomem *reg_desc_active; 514 dma_addr_t dma; 515 unsigned short ring_size; 516 unsigned char dsize; 517 unsigned char dsize_log2; 518 }; 519 520 struct fec_enet_priv_tx_q { 521 struct bufdesc_prop bd; 522 unsigned char *tx_bounce[TX_RING_SIZE]; 523 struct sk_buff *tx_skbuff[TX_RING_SIZE]; 524 525 unsigned short tx_stop_threshold; 526 unsigned short tx_wake_threshold; 527 528 struct bufdesc *dirty_tx; 529 char *tso_hdrs; 530 dma_addr_t tso_hdrs_dma; 531 }; 532 533 struct fec_enet_priv_rx_q { 534 struct bufdesc_prop bd; 535 struct sk_buff *rx_skbuff[RX_RING_SIZE]; 536 }; 537 538 struct fec_stop_mode_gpr { 539 struct regmap *gpr; 540 u8 reg; 541 u8 bit; 542 }; 543 544 /* The FEC buffer descriptors track the ring buffers. The rx_bd_base and 545 * tx_bd_base always point to the base of the buffer descriptors. The 546 * cur_rx and cur_tx point to the currently available buffer. 547 * The dirty_tx tracks the current buffer that is being sent by the 548 * controller. The cur_tx and dirty_tx are equal under both completely 549 * empty and completely full conditions. The empty/ready indicator in 550 * the buffer descriptor determines the actual condition. 551 */ 552 struct fec_enet_private { 553 /* Hardware registers of the FEC device */ 554 void __iomem *hwp; 555 556 struct net_device *netdev; 557 558 struct clk *clk_ipg; 559 struct clk *clk_ahb; 560 struct clk *clk_ref; 561 struct clk *clk_enet_out; 562 struct clk *clk_ptp; 563 struct clk *clk_2x_txclk; 564 565 bool ptp_clk_on; 566 unsigned int num_tx_queues; 567 unsigned int num_rx_queues; 568 569 /* The saved address of a sent-in-place packet/buffer, for skfree(). */ 570 struct fec_enet_priv_tx_q *tx_queue[FEC_ENET_MAX_TX_QS]; 571 struct fec_enet_priv_rx_q *rx_queue[FEC_ENET_MAX_RX_QS]; 572 573 unsigned int total_tx_ring_size; 574 unsigned int total_rx_ring_size; 575 576 struct platform_device *pdev; 577 578 int dev_id; 579 580 /* Phylib and MDIO interface */ 581 struct mii_bus *mii_bus; 582 uint phy_speed; 583 phy_interface_t phy_interface; 584 struct device_node *phy_node; 585 bool rgmii_txc_dly; 586 bool rgmii_rxc_dly; 587 bool rpm_active; 588 int link; 589 int full_duplex; 590 int speed; 591 int irq[FEC_IRQ_NUM]; 592 bool bufdesc_ex; 593 int pause_flag; 594 int wol_flag; 595 int wake_irq; 596 u32 quirks; 597 598 struct napi_struct napi; 599 int csum_flags; 600 601 struct work_struct tx_timeout_work; 602 603 struct ptp_clock *ptp_clock; 604 struct ptp_clock_info ptp_caps; 605 unsigned long last_overflow_check; 606 spinlock_t tmreg_lock; 607 struct cyclecounter cc; 608 struct timecounter tc; 609 int rx_hwtstamp_filter; 610 u32 base_incval; 611 u32 cycle_speed; 612 int hwts_rx_en; 613 int hwts_tx_en; 614 struct delayed_work time_keep; 615 struct regulator *reg_phy; 616 struct fec_stop_mode_gpr stop_gpr; 617 struct pm_qos_request pm_qos_req; 618 619 unsigned int tx_align; 620 unsigned int rx_align; 621 622 /* hw interrupt coalesce */ 623 unsigned int rx_pkts_itr; 624 unsigned int rx_time_itr; 625 unsigned int tx_pkts_itr; 626 unsigned int tx_time_itr; 627 unsigned int itr_clk_rate; 628 629 /* tx lpi eee mode */ 630 struct ethtool_eee eee; 631 unsigned int clk_ref_rate; 632 633 u32 rx_copybreak; 634 635 /* ptp clock period in ns*/ 636 unsigned int ptp_inc; 637 638 /* pps */ 639 int pps_channel; 640 unsigned int reload_period; 641 int pps_enable; 642 unsigned int next_counter; 643 644 struct { 645 struct timespec64 ts_phc; 646 u64 ns_sys; 647 u32 at_corr; 648 u8 at_inc_corr; 649 } ptp_saved_state; 650 651 struct imx_sc_ipc *ipc_handle; 652 653 u64 ethtool_stats[]; 654 }; 655 656 void fec_ptp_init(struct platform_device *pdev, int irq_idx); 657 void fec_ptp_stop(struct platform_device *pdev); 658 void fec_ptp_start_cyclecounter(struct net_device *ndev); 659 void fec_ptp_disable_hwts(struct net_device *ndev); 660 int fec_ptp_set(struct net_device *ndev, struct ifreq *ifr); 661 int fec_ptp_get(struct net_device *ndev, struct ifreq *ifr); 662 663 void fec_ptp_save_state(struct fec_enet_private *fep); 664 int fec_ptp_restore_state(struct fec_enet_private *fep); 665 666 /****************************************************************************/ 667 #endif /* FEC_H */ 668