1 /* 2 * Copyright (C) 2015-2017 Netronome Systems, Inc. 3 * 4 * This software is dual licensed under the GNU General License Version 2, 5 * June 1991 as shown in the file COPYING in the top-level directory of this 6 * source tree or the BSD 2-Clause License provided below. You have the 7 * option to license this software under the complete terms of either license. 8 * 9 * The BSD 2-Clause License: 10 * 11 * Redistribution and use in source and binary forms, with or 12 * without modification, are permitted provided that the following 13 * conditions are met: 14 * 15 * 1. Redistributions of source code must retain the above 16 * copyright notice, this list of conditions and the following 17 * disclaimer. 18 * 19 * 2. Redistributions in binary form must reproduce the above 20 * copyright notice, this list of conditions and the following 21 * disclaimer in the documentation and/or other materials 22 * provided with the distribution. 23 * 24 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, 25 * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF 26 * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND 27 * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS 28 * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN 29 * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN 30 * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE 31 * SOFTWARE. 32 */ 33 34 /* 35 * nfp_net.h 36 * Declarations for Netronome network device driver. 37 * Authors: Jakub Kicinski <jakub.kicinski@netronome.com> 38 * Jason McMullan <jason.mcmullan@netronome.com> 39 * Rolf Neugebauer <rolf.neugebauer@netronome.com> 40 */ 41 42 #ifndef _NFP_NET_H_ 43 #define _NFP_NET_H_ 44 45 #include <linux/interrupt.h> 46 #include <linux/list.h> 47 #include <linux/netdevice.h> 48 #include <linux/pci.h> 49 #include <linux/io-64-nonatomic-hi-lo.h> 50 51 #include "nfp_net_ctrl.h" 52 53 #define nn_pr(nn, lvl, fmt, args...) \ 54 ({ \ 55 struct nfp_net *__nn = (nn); \ 56 \ 57 if (__nn->dp.netdev) \ 58 netdev_printk(lvl, __nn->dp.netdev, fmt, ## args); \ 59 else \ 60 dev_printk(lvl, __nn->dp.dev, "ctrl: " fmt, ## args); \ 61 }) 62 63 #define nn_err(nn, fmt, args...) nn_pr(nn, KERN_ERR, fmt, ## args) 64 #define nn_warn(nn, fmt, args...) nn_pr(nn, KERN_WARNING, fmt, ## args) 65 #define nn_info(nn, fmt, args...) nn_pr(nn, KERN_INFO, fmt, ## args) 66 #define nn_dbg(nn, fmt, args...) nn_pr(nn, KERN_DEBUG, fmt, ## args) 67 68 #define nn_dp_warn(dp, fmt, args...) \ 69 ({ \ 70 struct nfp_net_dp *__dp = (dp); \ 71 \ 72 if (unlikely(net_ratelimit())) { \ 73 if (__dp->netdev) \ 74 netdev_warn(__dp->netdev, fmt, ## args); \ 75 else \ 76 dev_warn(__dp->dev, fmt, ## args); \ 77 } \ 78 }) 79 80 /* Max time to wait for NFP to respond on updates (in seconds) */ 81 #define NFP_NET_POLL_TIMEOUT 5 82 83 /* Interval for reading offloaded filter stats */ 84 #define NFP_NET_STAT_POLL_IVL msecs_to_jiffies(100) 85 86 /* Bar allocation */ 87 #define NFP_NET_CTRL_BAR 0 88 #define NFP_NET_Q0_BAR 2 89 #define NFP_NET_Q1_BAR 4 /* OBSOLETE */ 90 91 /* Max bits in DMA address */ 92 #define NFP_NET_MAX_DMA_BITS 40 93 94 /* Default size for MTU and freelist buffer sizes */ 95 #define NFP_NET_DEFAULT_MTU 1500 96 97 /* Maximum number of bytes prepended to a packet */ 98 #define NFP_NET_MAX_PREPEND 64 99 100 /* Interrupt definitions */ 101 #define NFP_NET_NON_Q_VECTORS 2 102 #define NFP_NET_IRQ_LSC_IDX 0 103 #define NFP_NET_IRQ_EXN_IDX 1 104 #define NFP_NET_MIN_VNIC_IRQS (NFP_NET_NON_Q_VECTORS + 1) 105 106 /* Queue/Ring definitions */ 107 #define NFP_NET_MAX_TX_RINGS 64 /* Max. # of Tx rings per device */ 108 #define NFP_NET_MAX_RX_RINGS 64 /* Max. # of Rx rings per device */ 109 #define NFP_NET_MAX_R_VECS (NFP_NET_MAX_TX_RINGS > NFP_NET_MAX_RX_RINGS ? \ 110 NFP_NET_MAX_TX_RINGS : NFP_NET_MAX_RX_RINGS) 111 #define NFP_NET_MAX_IRQS (NFP_NET_NON_Q_VECTORS + NFP_NET_MAX_R_VECS) 112 113 #define NFP_NET_MIN_TX_DESCS 256 /* Min. # of Tx descs per ring */ 114 #define NFP_NET_MIN_RX_DESCS 256 /* Min. # of Rx descs per ring */ 115 #define NFP_NET_MAX_TX_DESCS (256 * 1024) /* Max. # of Tx descs per ring */ 116 #define NFP_NET_MAX_RX_DESCS (256 * 1024) /* Max. # of Rx descs per ring */ 117 118 #define NFP_NET_TX_DESCS_DEFAULT 4096 /* Default # of Tx descs per ring */ 119 #define NFP_NET_RX_DESCS_DEFAULT 4096 /* Default # of Rx descs per ring */ 120 121 #define NFP_NET_FL_BATCH 16 /* Add freelist in this Batch size */ 122 #define NFP_NET_XDP_MAX_COMPLETE 2048 /* XDP bufs to reclaim in NAPI poll */ 123 124 /* Offload definitions */ 125 #define NFP_NET_N_VXLAN_PORTS (NFP_NET_CFG_VXLAN_SZ / sizeof(__be16)) 126 127 #define NFP_NET_RX_BUF_HEADROOM (NET_SKB_PAD + NET_IP_ALIGN) 128 #define NFP_NET_RX_BUF_NON_DATA (NFP_NET_RX_BUF_HEADROOM + \ 129 SKB_DATA_ALIGN(sizeof(struct skb_shared_info))) 130 131 /* Forward declarations */ 132 struct nfp_cpp; 133 struct nfp_eth_table_port; 134 struct nfp_net; 135 struct nfp_net_r_vector; 136 struct nfp_port; 137 138 /* Convenience macro for wrapping descriptor index on ring size */ 139 #define D_IDX(ring, idx) ((idx) & ((ring)->cnt - 1)) 140 141 /* Convenience macro for writing dma address into RX/TX descriptors */ 142 #define nfp_desc_set_dma_addr(desc, dma_addr) \ 143 do { \ 144 __typeof(desc) __d = (desc); \ 145 dma_addr_t __addr = (dma_addr); \ 146 \ 147 __d->dma_addr_lo = cpu_to_le32(lower_32_bits(__addr)); \ 148 __d->dma_addr_hi = upper_32_bits(__addr) & 0xff; \ 149 } while (0) 150 151 /* TX descriptor format */ 152 153 #define PCIE_DESC_TX_EOP BIT(7) 154 #define PCIE_DESC_TX_OFFSET_MASK GENMASK(6, 0) 155 #define PCIE_DESC_TX_MSS_MASK GENMASK(13, 0) 156 157 /* Flags in the host TX descriptor */ 158 #define PCIE_DESC_TX_CSUM BIT(7) 159 #define PCIE_DESC_TX_IP4_CSUM BIT(6) 160 #define PCIE_DESC_TX_TCP_CSUM BIT(5) 161 #define PCIE_DESC_TX_UDP_CSUM BIT(4) 162 #define PCIE_DESC_TX_VLAN BIT(3) 163 #define PCIE_DESC_TX_LSO BIT(2) 164 #define PCIE_DESC_TX_ENCAP BIT(1) 165 #define PCIE_DESC_TX_O_IP4_CSUM BIT(0) 166 167 struct nfp_net_tx_desc { 168 union { 169 struct { 170 u8 dma_addr_hi; /* High bits of host buf address */ 171 __le16 dma_len; /* Length to DMA for this desc */ 172 u8 offset_eop; /* Offset in buf where pkt starts + 173 * highest bit is eop flag. 174 */ 175 __le32 dma_addr_lo; /* Low 32bit of host buf addr */ 176 177 __le16 mss; /* MSS to be used for LSO */ 178 u8 lso_hdrlen; /* LSO, TCP payload offset */ 179 u8 flags; /* TX Flags, see @PCIE_DESC_TX_* */ 180 union { 181 struct { 182 u8 l3_offset; /* L3 header offset */ 183 u8 l4_offset; /* L4 header offset */ 184 }; 185 __le16 vlan; /* VLAN tag to add if indicated */ 186 }; 187 __le16 data_len; /* Length of frame + meta data */ 188 } __packed; 189 __le32 vals[4]; 190 }; 191 }; 192 193 /** 194 * struct nfp_net_tx_buf - software TX buffer descriptor 195 * @skb: sk_buff associated with this buffer 196 * @dma_addr: DMA mapping address of the buffer 197 * @fidx: Fragment index (-1 for the head and [0..nr_frags-1] for frags) 198 * @pkt_cnt: Number of packets to be produced out of the skb associated 199 * with this buffer (valid only on the head's buffer). 200 * Will be 1 for all non-TSO packets. 201 * @real_len: Number of bytes which to be produced out of the skb (valid only 202 * on the head's buffer). Equal to skb->len for non-TSO packets. 203 */ 204 struct nfp_net_tx_buf { 205 union { 206 struct sk_buff *skb; 207 void *frag; 208 }; 209 dma_addr_t dma_addr; 210 short int fidx; 211 u16 pkt_cnt; 212 u32 real_len; 213 }; 214 215 /** 216 * struct nfp_net_tx_ring - TX ring structure 217 * @r_vec: Back pointer to ring vector structure 218 * @idx: Ring index from Linux's perspective 219 * @qcidx: Queue Controller Peripheral (QCP) queue index for the TX queue 220 * @qcp_q: Pointer to base of the QCP TX queue 221 * @cnt: Size of the queue in number of descriptors 222 * @wr_p: TX ring write pointer (free running) 223 * @rd_p: TX ring read pointer (free running) 224 * @qcp_rd_p: Local copy of QCP TX queue read pointer 225 * @wr_ptr_add: Accumulated number of buffers to add to QCP write pointer 226 * (used for .xmit_more delayed kick) 227 * @txbufs: Array of transmitted TX buffers, to free on transmit 228 * @txds: Virtual address of TX ring in host memory 229 * @dma: DMA address of the TX ring 230 * @size: Size, in bytes, of the TX ring (needed to free) 231 * @is_xdp: Is this a XDP TX ring? 232 */ 233 struct nfp_net_tx_ring { 234 struct nfp_net_r_vector *r_vec; 235 236 u32 idx; 237 int qcidx; 238 u8 __iomem *qcp_q; 239 240 u32 cnt; 241 u32 wr_p; 242 u32 rd_p; 243 u32 qcp_rd_p; 244 245 u32 wr_ptr_add; 246 247 struct nfp_net_tx_buf *txbufs; 248 struct nfp_net_tx_desc *txds; 249 250 dma_addr_t dma; 251 unsigned int size; 252 bool is_xdp; 253 } ____cacheline_aligned; 254 255 /* RX and freelist descriptor format */ 256 257 #define PCIE_DESC_RX_DD BIT(7) 258 #define PCIE_DESC_RX_META_LEN_MASK GENMASK(6, 0) 259 260 /* Flags in the RX descriptor */ 261 #define PCIE_DESC_RX_RSS cpu_to_le16(BIT(15)) 262 #define PCIE_DESC_RX_I_IP4_CSUM cpu_to_le16(BIT(14)) 263 #define PCIE_DESC_RX_I_IP4_CSUM_OK cpu_to_le16(BIT(13)) 264 #define PCIE_DESC_RX_I_TCP_CSUM cpu_to_le16(BIT(12)) 265 #define PCIE_DESC_RX_I_TCP_CSUM_OK cpu_to_le16(BIT(11)) 266 #define PCIE_DESC_RX_I_UDP_CSUM cpu_to_le16(BIT(10)) 267 #define PCIE_DESC_RX_I_UDP_CSUM_OK cpu_to_le16(BIT(9)) 268 #define PCIE_DESC_RX_BPF cpu_to_le16(BIT(8)) 269 #define PCIE_DESC_RX_EOP cpu_to_le16(BIT(7)) 270 #define PCIE_DESC_RX_IP4_CSUM cpu_to_le16(BIT(6)) 271 #define PCIE_DESC_RX_IP4_CSUM_OK cpu_to_le16(BIT(5)) 272 #define PCIE_DESC_RX_TCP_CSUM cpu_to_le16(BIT(4)) 273 #define PCIE_DESC_RX_TCP_CSUM_OK cpu_to_le16(BIT(3)) 274 #define PCIE_DESC_RX_UDP_CSUM cpu_to_le16(BIT(2)) 275 #define PCIE_DESC_RX_UDP_CSUM_OK cpu_to_le16(BIT(1)) 276 #define PCIE_DESC_RX_VLAN cpu_to_le16(BIT(0)) 277 278 #define PCIE_DESC_RX_CSUM_ALL (PCIE_DESC_RX_IP4_CSUM | \ 279 PCIE_DESC_RX_TCP_CSUM | \ 280 PCIE_DESC_RX_UDP_CSUM | \ 281 PCIE_DESC_RX_I_IP4_CSUM | \ 282 PCIE_DESC_RX_I_TCP_CSUM | \ 283 PCIE_DESC_RX_I_UDP_CSUM) 284 #define PCIE_DESC_RX_CSUM_OK_SHIFT 1 285 #define __PCIE_DESC_RX_CSUM_ALL le16_to_cpu(PCIE_DESC_RX_CSUM_ALL) 286 #define __PCIE_DESC_RX_CSUM_ALL_OK (__PCIE_DESC_RX_CSUM_ALL >> \ 287 PCIE_DESC_RX_CSUM_OK_SHIFT) 288 289 struct nfp_net_rx_desc { 290 union { 291 struct { 292 u8 dma_addr_hi; /* High bits of the buf address */ 293 __le16 reserved; /* Must be zero */ 294 u8 meta_len_dd; /* Must be zero */ 295 296 __le32 dma_addr_lo; /* Low bits of the buffer address */ 297 } __packed fld; 298 299 struct { 300 __le16 data_len; /* Length of the frame + meta data */ 301 u8 reserved; 302 u8 meta_len_dd; /* Length of meta data prepended + 303 * descriptor done flag. 304 */ 305 306 __le16 flags; /* RX flags. See @PCIE_DESC_RX_* */ 307 __le16 vlan; /* VLAN if stripped */ 308 } __packed rxd; 309 310 __le32 vals[2]; 311 }; 312 }; 313 314 #define NFP_NET_META_FIELD_MASK GENMASK(NFP_NET_META_FIELD_SIZE - 1, 0) 315 316 struct nfp_meta_parsed { 317 u8 hash_type; 318 u8 csum_type; 319 u32 hash; 320 u32 mark; 321 u32 portid; 322 __wsum csum; 323 }; 324 325 struct nfp_net_rx_hash { 326 __be32 hash_type; 327 __be32 hash; 328 }; 329 330 /** 331 * struct nfp_net_rx_buf - software RX buffer descriptor 332 * @frag: page fragment buffer 333 * @dma_addr: DMA mapping address of the buffer 334 */ 335 struct nfp_net_rx_buf { 336 void *frag; 337 dma_addr_t dma_addr; 338 }; 339 340 /** 341 * struct nfp_net_rx_ring - RX ring structure 342 * @r_vec: Back pointer to ring vector structure 343 * @cnt: Size of the queue in number of descriptors 344 * @wr_p: FL/RX ring write pointer (free running) 345 * @rd_p: FL/RX ring read pointer (free running) 346 * @idx: Ring index from Linux's perspective 347 * @fl_qcidx: Queue Controller Peripheral (QCP) queue index for the freelist 348 * @qcp_fl: Pointer to base of the QCP freelist queue 349 * @rxbufs: Array of transmitted FL/RX buffers 350 * @rxds: Virtual address of FL/RX ring in host memory 351 * @dma: DMA address of the FL/RX ring 352 * @size: Size, in bytes, of the FL/RX ring (needed to free) 353 */ 354 struct nfp_net_rx_ring { 355 struct nfp_net_r_vector *r_vec; 356 357 u32 cnt; 358 u32 wr_p; 359 u32 rd_p; 360 361 u32 idx; 362 363 int fl_qcidx; 364 u8 __iomem *qcp_fl; 365 366 struct nfp_net_rx_buf *rxbufs; 367 struct nfp_net_rx_desc *rxds; 368 369 dma_addr_t dma; 370 unsigned int size; 371 } ____cacheline_aligned; 372 373 /** 374 * struct nfp_net_r_vector - Per ring interrupt vector configuration 375 * @nfp_net: Backpointer to nfp_net structure 376 * @napi: NAPI structure for this ring vec 377 * @tx_ring: Pointer to TX ring 378 * @rx_ring: Pointer to RX ring 379 * @xdp_ring: Pointer to an extra TX ring for XDP 380 * @irq_entry: MSI-X table entry (use for talking to the device) 381 * @rx_sync: Seqlock for atomic updates of RX stats 382 * @rx_pkts: Number of received packets 383 * @rx_bytes: Number of received bytes 384 * @rx_drops: Number of packets dropped on RX due to lack of resources 385 * @hw_csum_rx_ok: Counter of packets where the HW checksum was OK 386 * @hw_csum_rx_inner_ok: Counter of packets where the inner HW checksum was OK 387 * @hw_csum_rx_error: Counter of packets with bad checksums 388 * @tx_sync: Seqlock for atomic updates of TX stats 389 * @tx_pkts: Number of Transmitted packets 390 * @tx_bytes: Number of Transmitted bytes 391 * @hw_csum_tx: Counter of packets with TX checksum offload requested 392 * @hw_csum_tx_inner: Counter of inner TX checksum offload requests 393 * @tx_gather: Counter of packets with Gather DMA 394 * @tx_lso: Counter of LSO packets sent 395 * @tx_errors: How many TX errors were encountered 396 * @tx_busy: How often was TX busy (no space)? 397 * @irq_vector: Interrupt vector number (use for talking to the OS) 398 * @handler: Interrupt handler for this ring vector 399 * @name: Name of the interrupt vector 400 * @affinity_mask: SMP affinity mask for this vector 401 * 402 * This structure ties RX and TX rings to interrupt vectors and a NAPI 403 * context. This currently only supports one RX and TX ring per 404 * interrupt vector but might be extended in the future to allow 405 * association of multiple rings per vector. 406 */ 407 struct nfp_net_r_vector { 408 struct nfp_net *nfp_net; 409 union { 410 struct napi_struct napi; 411 struct { 412 struct tasklet_struct tasklet; 413 struct sk_buff_head queue; 414 struct spinlock lock; 415 }; 416 }; 417 418 struct nfp_net_tx_ring *tx_ring; 419 struct nfp_net_rx_ring *rx_ring; 420 421 u16 irq_entry; 422 423 struct u64_stats_sync rx_sync; 424 u64 rx_pkts; 425 u64 rx_bytes; 426 u64 rx_drops; 427 u64 hw_csum_rx_ok; 428 u64 hw_csum_rx_inner_ok; 429 u64 hw_csum_rx_error; 430 431 struct nfp_net_tx_ring *xdp_ring; 432 433 struct u64_stats_sync tx_sync; 434 u64 tx_pkts; 435 u64 tx_bytes; 436 u64 hw_csum_tx; 437 u64 hw_csum_tx_inner; 438 u64 tx_gather; 439 u64 tx_lso; 440 u64 tx_errors; 441 u64 tx_busy; 442 443 u32 irq_vector; 444 irq_handler_t handler; 445 char name[IFNAMSIZ + 8]; 446 cpumask_t affinity_mask; 447 } ____cacheline_aligned; 448 449 /* Firmware version as it is written in the 32bit value in the BAR */ 450 struct nfp_net_fw_version { 451 u8 minor; 452 u8 major; 453 u8 class; 454 u8 resv; 455 } __packed; 456 457 static inline bool nfp_net_fw_ver_eq(struct nfp_net_fw_version *fw_ver, 458 u8 resv, u8 class, u8 major, u8 minor) 459 { 460 return fw_ver->resv == resv && 461 fw_ver->class == class && 462 fw_ver->major == major && 463 fw_ver->minor == minor; 464 } 465 466 struct nfp_stat_pair { 467 u64 pkts; 468 u64 bytes; 469 }; 470 471 /** 472 * struct nfp_net_dp - NFP network device datapath data structure 473 * @dev: Backpointer to struct device 474 * @netdev: Backpointer to net_device structure 475 * @is_vf: Is the driver attached to a VF? 476 * @bpf_offload_skip_sw: Offloaded BPF program will not be rerun by cls_bpf 477 * @bpf_offload_xdp: Offloaded BPF program is XDP 478 * @chained_metadata_format: Firemware will use new metadata format 479 * @rx_dma_dir: Mapping direction for RX buffers 480 * @rx_dma_off: Offset at which DMA packets (for XDP headroom) 481 * @rx_offset: Offset in the RX buffers where packet data starts 482 * @ctrl: Local copy of the control register/word. 483 * @fl_bufsz: Currently configured size of the freelist buffers 484 * @xdp_prog: Installed XDP program 485 * @tx_rings: Array of pre-allocated TX ring structures 486 * @rx_rings: Array of pre-allocated RX ring structures 487 * @ctrl_bar: Pointer to mapped control BAR 488 * 489 * @txd_cnt: Size of the TX ring in number of descriptors 490 * @rxd_cnt: Size of the RX ring in number of descriptors 491 * @num_r_vecs: Number of used ring vectors 492 * @num_tx_rings: Currently configured number of TX rings 493 * @num_stack_tx_rings: Number of TX rings used by the stack (not XDP) 494 * @num_rx_rings: Currently configured number of RX rings 495 * @mtu: Device MTU 496 */ 497 struct nfp_net_dp { 498 struct device *dev; 499 struct net_device *netdev; 500 501 u8 is_vf:1; 502 u8 bpf_offload_skip_sw:1; 503 u8 bpf_offload_xdp:1; 504 u8 chained_metadata_format:1; 505 506 u8 rx_dma_dir; 507 u8 rx_offset; 508 509 u32 rx_dma_off; 510 511 u32 ctrl; 512 u32 fl_bufsz; 513 514 struct bpf_prog *xdp_prog; 515 516 struct nfp_net_tx_ring *tx_rings; 517 struct nfp_net_rx_ring *rx_rings; 518 519 u8 __iomem *ctrl_bar; 520 521 /* Cold data follows */ 522 523 unsigned int txd_cnt; 524 unsigned int rxd_cnt; 525 526 unsigned int num_r_vecs; 527 528 unsigned int num_tx_rings; 529 unsigned int num_stack_tx_rings; 530 unsigned int num_rx_rings; 531 532 unsigned int mtu; 533 }; 534 535 /** 536 * struct nfp_net - NFP network device structure 537 * @dp: Datapath structure 538 * @fw_ver: Firmware version 539 * @cap: Capabilities advertised by the Firmware 540 * @max_mtu: Maximum support MTU advertised by the Firmware 541 * @rss_hfunc: RSS selected hash function 542 * @rss_cfg: RSS configuration 543 * @rss_key: RSS secret key 544 * @rss_itbl: RSS indirection table 545 * @xdp_flags: Flags with which XDP prog was loaded 546 * @xdp_prog: XDP prog (for ctrl path, both DRV and HW modes) 547 * @max_r_vecs: Number of allocated interrupt vectors for RX/TX 548 * @max_tx_rings: Maximum number of TX rings supported by the Firmware 549 * @max_rx_rings: Maximum number of RX rings supported by the Firmware 550 * @r_vecs: Pre-allocated array of ring vectors 551 * @irq_entries: Pre-allocated array of MSI-X entries 552 * @lsc_handler: Handler for Link State Change interrupt 553 * @lsc_name: Name for Link State Change interrupt 554 * @exn_handler: Handler for Exception interrupt 555 * @exn_name: Name for Exception interrupt 556 * @shared_handler: Handler for shared interrupts 557 * @shared_name: Name for shared interrupt 558 * @me_freq_mhz: ME clock_freq (MHz) 559 * @reconfig_lock: Protects HW reconfiguration request regs/machinery 560 * @reconfig_posted: Pending reconfig bits coming from async sources 561 * @reconfig_timer_active: Timer for reading reconfiguration results is pending 562 * @reconfig_sync_present: Some thread is performing synchronous reconfig 563 * @reconfig_timer: Timer for async reading of reconfig results 564 * @link_up: Is the link up? 565 * @link_status_lock: Protects @link_* and ensures atomicity with BAR reading 566 * @rx_coalesce_usecs: RX interrupt moderation usecs delay parameter 567 * @rx_coalesce_max_frames: RX interrupt moderation frame count parameter 568 * @tx_coalesce_usecs: TX interrupt moderation usecs delay parameter 569 * @tx_coalesce_max_frames: TX interrupt moderation frame count parameter 570 * @vxlan_ports: VXLAN ports for RX inner csum offload communicated to HW 571 * @vxlan_usecnt: IPv4/IPv6 VXLAN port use counts 572 * @qcp_cfg: Pointer to QCP queue used for configuration notification 573 * @tx_bar: Pointer to mapped TX queues 574 * @rx_bar: Pointer to mapped FL/RX queues 575 * @debugfs_dir: Device directory in debugfs 576 * @vnic_list: Entry on device vNIC list 577 * @pdev: Backpointer to PCI device 578 * @app: APP handle if available 579 * @port: Pointer to nfp_port structure if vNIC is a port 580 * @app_priv: APP private data for this vNIC 581 */ 582 struct nfp_net { 583 struct nfp_net_dp dp; 584 585 struct nfp_net_fw_version fw_ver; 586 587 u32 cap; 588 u32 max_mtu; 589 590 u8 rss_hfunc; 591 u32 rss_cfg; 592 u8 rss_key[NFP_NET_CFG_RSS_KEY_SZ]; 593 u8 rss_itbl[NFP_NET_CFG_RSS_ITBL_SZ]; 594 595 u32 xdp_flags; 596 struct bpf_prog *xdp_prog; 597 598 unsigned int max_tx_rings; 599 unsigned int max_rx_rings; 600 601 int stride_tx; 602 int stride_rx; 603 604 unsigned int max_r_vecs; 605 struct nfp_net_r_vector r_vecs[NFP_NET_MAX_R_VECS]; 606 struct msix_entry irq_entries[NFP_NET_MAX_IRQS]; 607 608 irq_handler_t lsc_handler; 609 char lsc_name[IFNAMSIZ + 8]; 610 611 irq_handler_t exn_handler; 612 char exn_name[IFNAMSIZ + 8]; 613 614 irq_handler_t shared_handler; 615 char shared_name[IFNAMSIZ + 8]; 616 617 u32 me_freq_mhz; 618 619 bool link_up; 620 spinlock_t link_status_lock; 621 622 spinlock_t reconfig_lock; 623 u32 reconfig_posted; 624 bool reconfig_timer_active; 625 bool reconfig_sync_present; 626 struct timer_list reconfig_timer; 627 628 u32 rx_coalesce_usecs; 629 u32 rx_coalesce_max_frames; 630 u32 tx_coalesce_usecs; 631 u32 tx_coalesce_max_frames; 632 633 __be16 vxlan_ports[NFP_NET_N_VXLAN_PORTS]; 634 u8 vxlan_usecnt[NFP_NET_N_VXLAN_PORTS]; 635 636 u8 __iomem *qcp_cfg; 637 638 u8 __iomem *tx_bar; 639 u8 __iomem *rx_bar; 640 641 struct dentry *debugfs_dir; 642 643 struct list_head vnic_list; 644 645 struct pci_dev *pdev; 646 struct nfp_app *app; 647 648 struct nfp_port *port; 649 650 void *app_priv; 651 }; 652 653 /* Functions to read/write from/to a BAR 654 * Performs any endian conversion necessary. 655 */ 656 static inline u16 nn_readb(struct nfp_net *nn, int off) 657 { 658 return readb(nn->dp.ctrl_bar + off); 659 } 660 661 static inline void nn_writeb(struct nfp_net *nn, int off, u8 val) 662 { 663 writeb(val, nn->dp.ctrl_bar + off); 664 } 665 666 static inline u16 nn_readw(struct nfp_net *nn, int off) 667 { 668 return readw(nn->dp.ctrl_bar + off); 669 } 670 671 static inline void nn_writew(struct nfp_net *nn, int off, u16 val) 672 { 673 writew(val, nn->dp.ctrl_bar + off); 674 } 675 676 static inline u32 nn_readl(struct nfp_net *nn, int off) 677 { 678 return readl(nn->dp.ctrl_bar + off); 679 } 680 681 static inline void nn_writel(struct nfp_net *nn, int off, u32 val) 682 { 683 writel(val, nn->dp.ctrl_bar + off); 684 } 685 686 static inline u64 nn_readq(struct nfp_net *nn, int off) 687 { 688 return readq(nn->dp.ctrl_bar + off); 689 } 690 691 static inline void nn_writeq(struct nfp_net *nn, int off, u64 val) 692 { 693 writeq(val, nn->dp.ctrl_bar + off); 694 } 695 696 /* Flush posted PCI writes by reading something without side effects */ 697 static inline void nn_pci_flush(struct nfp_net *nn) 698 { 699 nn_readl(nn, NFP_NET_CFG_VERSION); 700 } 701 702 /* Queue Controller Peripheral access functions and definitions. 703 * 704 * Some of the BARs of the NFP are mapped to portions of the Queue 705 * Controller Peripheral (QCP) address space on the NFP. A QCP queue 706 * has a read and a write pointer (as well as a size and flags, 707 * indicating overflow etc). The QCP offers a number of different 708 * operation on queue pointers, but here we only offer function to 709 * either add to a pointer or to read the pointer value. 710 */ 711 #define NFP_QCP_QUEUE_ADDR_SZ 0x800 712 #define NFP_QCP_QUEUE_AREA_SZ 0x80000 713 #define NFP_QCP_QUEUE_OFF(_x) ((_x) * NFP_QCP_QUEUE_ADDR_SZ) 714 #define NFP_QCP_QUEUE_ADD_RPTR 0x0000 715 #define NFP_QCP_QUEUE_ADD_WPTR 0x0004 716 #define NFP_QCP_QUEUE_STS_LO 0x0008 717 #define NFP_QCP_QUEUE_STS_LO_READPTR_mask 0x3ffff 718 #define NFP_QCP_QUEUE_STS_HI 0x000c 719 #define NFP_QCP_QUEUE_STS_HI_WRITEPTR_mask 0x3ffff 720 721 /* The offset of a QCP queues in the PCIe Target */ 722 #define NFP_PCIE_QUEUE(_q) (0x80000 + (NFP_QCP_QUEUE_ADDR_SZ * ((_q) & 0xff))) 723 724 /* nfp_qcp_ptr - Read or Write Pointer of a queue */ 725 enum nfp_qcp_ptr { 726 NFP_QCP_READ_PTR = 0, 727 NFP_QCP_WRITE_PTR 728 }; 729 730 /* There appear to be an *undocumented* upper limit on the value which 731 * one can add to a queue and that value is either 0x3f or 0x7f. We 732 * go with 0x3f as a conservative measure. 733 */ 734 #define NFP_QCP_MAX_ADD 0x3f 735 736 static inline void _nfp_qcp_ptr_add(u8 __iomem *q, 737 enum nfp_qcp_ptr ptr, u32 val) 738 { 739 u32 off; 740 741 if (ptr == NFP_QCP_READ_PTR) 742 off = NFP_QCP_QUEUE_ADD_RPTR; 743 else 744 off = NFP_QCP_QUEUE_ADD_WPTR; 745 746 while (val > NFP_QCP_MAX_ADD) { 747 writel(NFP_QCP_MAX_ADD, q + off); 748 val -= NFP_QCP_MAX_ADD; 749 } 750 751 writel(val, q + off); 752 } 753 754 /** 755 * nfp_qcp_rd_ptr_add() - Add the value to the read pointer of a queue 756 * 757 * @q: Base address for queue structure 758 * @val: Value to add to the queue pointer 759 * 760 * If @val is greater than @NFP_QCP_MAX_ADD multiple writes are performed. 761 */ 762 static inline void nfp_qcp_rd_ptr_add(u8 __iomem *q, u32 val) 763 { 764 _nfp_qcp_ptr_add(q, NFP_QCP_READ_PTR, val); 765 } 766 767 /** 768 * nfp_qcp_wr_ptr_add() - Add the value to the write pointer of a queue 769 * 770 * @q: Base address for queue structure 771 * @val: Value to add to the queue pointer 772 * 773 * If @val is greater than @NFP_QCP_MAX_ADD multiple writes are performed. 774 */ 775 static inline void nfp_qcp_wr_ptr_add(u8 __iomem *q, u32 val) 776 { 777 _nfp_qcp_ptr_add(q, NFP_QCP_WRITE_PTR, val); 778 } 779 780 static inline u32 _nfp_qcp_read(u8 __iomem *q, enum nfp_qcp_ptr ptr) 781 { 782 u32 off; 783 u32 val; 784 785 if (ptr == NFP_QCP_READ_PTR) 786 off = NFP_QCP_QUEUE_STS_LO; 787 else 788 off = NFP_QCP_QUEUE_STS_HI; 789 790 val = readl(q + off); 791 792 if (ptr == NFP_QCP_READ_PTR) 793 return val & NFP_QCP_QUEUE_STS_LO_READPTR_mask; 794 else 795 return val & NFP_QCP_QUEUE_STS_HI_WRITEPTR_mask; 796 } 797 798 /** 799 * nfp_qcp_rd_ptr_read() - Read the current read pointer value for a queue 800 * @q: Base address for queue structure 801 * 802 * Return: Value read. 803 */ 804 static inline u32 nfp_qcp_rd_ptr_read(u8 __iomem *q) 805 { 806 return _nfp_qcp_read(q, NFP_QCP_READ_PTR); 807 } 808 809 /** 810 * nfp_qcp_wr_ptr_read() - Read the current write pointer value for a queue 811 * @q: Base address for queue structure 812 * 813 * Return: Value read. 814 */ 815 static inline u32 nfp_qcp_wr_ptr_read(u8 __iomem *q) 816 { 817 return _nfp_qcp_read(q, NFP_QCP_WRITE_PTR); 818 } 819 820 static inline bool nfp_net_is_data_vnic(struct nfp_net *nn) 821 { 822 WARN_ON_ONCE(!nn->dp.netdev && nn->port); 823 return !!nn->dp.netdev; 824 } 825 826 static inline bool nfp_net_running(struct nfp_net *nn) 827 { 828 return nn->dp.ctrl & NFP_NET_CFG_CTRL_ENABLE; 829 } 830 831 static inline const char *nfp_net_name(struct nfp_net *nn) 832 { 833 return nn->dp.netdev ? nn->dp.netdev->name : "ctrl"; 834 } 835 836 /* Globals */ 837 extern const char nfp_driver_version[]; 838 839 extern const struct net_device_ops nfp_net_netdev_ops; 840 841 static inline bool nfp_netdev_is_nfp_net(struct net_device *netdev) 842 { 843 return netdev->netdev_ops == &nfp_net_netdev_ops; 844 } 845 846 /* Prototypes */ 847 void nfp_net_get_fw_version(struct nfp_net_fw_version *fw_ver, 848 void __iomem *ctrl_bar); 849 850 struct nfp_net * 851 nfp_net_alloc(struct pci_dev *pdev, bool needs_netdev, 852 unsigned int max_tx_rings, unsigned int max_rx_rings); 853 void nfp_net_free(struct nfp_net *nn); 854 855 int nfp_net_init(struct nfp_net *nn); 856 void nfp_net_clean(struct nfp_net *nn); 857 858 int nfp_ctrl_open(struct nfp_net *nn); 859 void nfp_ctrl_close(struct nfp_net *nn); 860 861 void nfp_net_set_ethtool_ops(struct net_device *netdev); 862 void nfp_net_info(struct nfp_net *nn); 863 int nfp_net_reconfig(struct nfp_net *nn, u32 update); 864 unsigned int nfp_net_rss_key_sz(struct nfp_net *nn); 865 void nfp_net_rss_write_itbl(struct nfp_net *nn); 866 void nfp_net_rss_write_key(struct nfp_net *nn); 867 void nfp_net_coalesce_write_cfg(struct nfp_net *nn); 868 869 unsigned int 870 nfp_net_irqs_alloc(struct pci_dev *pdev, struct msix_entry *irq_entries, 871 unsigned int min_irqs, unsigned int want_irqs); 872 void nfp_net_irqs_disable(struct pci_dev *pdev); 873 void 874 nfp_net_irqs_assign(struct nfp_net *nn, struct msix_entry *irq_entries, 875 unsigned int n); 876 877 struct nfp_net_dp *nfp_net_clone_dp(struct nfp_net *nn); 878 int nfp_net_ring_reconfig(struct nfp_net *nn, struct nfp_net_dp *new, 879 struct netlink_ext_ack *extack); 880 881 #ifdef CONFIG_NFP_DEBUG 882 void nfp_net_debugfs_create(void); 883 void nfp_net_debugfs_destroy(void); 884 struct dentry *nfp_net_debugfs_device_add(struct pci_dev *pdev); 885 void nfp_net_debugfs_vnic_add(struct nfp_net *nn, struct dentry *ddir, int id); 886 void nfp_net_debugfs_dir_clean(struct dentry **dir); 887 #else 888 static inline void nfp_net_debugfs_create(void) 889 { 890 } 891 892 static inline void nfp_net_debugfs_destroy(void) 893 { 894 } 895 896 static inline struct dentry *nfp_net_debugfs_device_add(struct pci_dev *pdev) 897 { 898 return NULL; 899 } 900 901 static inline void 902 nfp_net_debugfs_vnic_add(struct nfp_net *nn, struct dentry *ddir, int id) 903 { 904 } 905 906 static inline void nfp_net_debugfs_dir_clean(struct dentry **dir) 907 { 908 } 909 #endif /* CONFIG_NFP_DEBUG */ 910 911 #endif /* _NFP_NET_H_ */ 912