firewire.h (13889B)
1/* SPDX-License-Identifier: GPL-2.0 */ 2#ifndef _LINUX_FIREWIRE_H 3#define _LINUX_FIREWIRE_H 4 5#include <linux/completion.h> 6#include <linux/device.h> 7#include <linux/dma-mapping.h> 8#include <linux/kernel.h> 9#include <linux/kref.h> 10#include <linux/list.h> 11#include <linux/mutex.h> 12#include <linux/spinlock.h> 13#include <linux/sysfs.h> 14#include <linux/timer.h> 15#include <linux/types.h> 16#include <linux/workqueue.h> 17 18#include <linux/atomic.h> 19#include <asm/byteorder.h> 20 21#define CSR_REGISTER_BASE 0xfffff0000000ULL 22 23/* register offsets are relative to CSR_REGISTER_BASE */ 24#define CSR_STATE_CLEAR 0x0 25#define CSR_STATE_SET 0x4 26#define CSR_NODE_IDS 0x8 27#define CSR_RESET_START 0xc 28#define CSR_SPLIT_TIMEOUT_HI 0x18 29#define CSR_SPLIT_TIMEOUT_LO 0x1c 30#define CSR_CYCLE_TIME 0x200 31#define CSR_BUS_TIME 0x204 32#define CSR_BUSY_TIMEOUT 0x210 33#define CSR_PRIORITY_BUDGET 0x218 34#define CSR_BUS_MANAGER_ID 0x21c 35#define CSR_BANDWIDTH_AVAILABLE 0x220 36#define CSR_CHANNELS_AVAILABLE 0x224 37#define CSR_CHANNELS_AVAILABLE_HI 0x224 38#define CSR_CHANNELS_AVAILABLE_LO 0x228 39#define CSR_MAINT_UTILITY 0x230 40#define CSR_BROADCAST_CHANNEL 0x234 41#define CSR_CONFIG_ROM 0x400 42#define CSR_CONFIG_ROM_END 0x800 43#define CSR_OMPR 0x900 44#define CSR_OPCR(i) (0x904 + (i) * 4) 45#define CSR_IMPR 0x980 46#define CSR_IPCR(i) (0x984 + (i) * 4) 47#define CSR_FCP_COMMAND 0xB00 48#define CSR_FCP_RESPONSE 0xD00 49#define CSR_FCP_END 0xF00 50#define CSR_TOPOLOGY_MAP 0x1000 51#define CSR_TOPOLOGY_MAP_END 0x1400 52#define CSR_SPEED_MAP 0x2000 53#define CSR_SPEED_MAP_END 0x3000 54 55#define CSR_OFFSET 0x40 56#define CSR_LEAF 0x80 57#define CSR_DIRECTORY 0xc0 58 59#define CSR_DESCRIPTOR 0x01 60#define CSR_VENDOR 0x03 61#define CSR_HARDWARE_VERSION 0x04 62#define CSR_UNIT 0x11 63#define CSR_SPECIFIER_ID 0x12 64#define CSR_VERSION 0x13 65#define CSR_DEPENDENT_INFO 0x14 66#define CSR_MODEL 0x17 67#define CSR_DIRECTORY_ID 0x20 68 69struct fw_csr_iterator { 70 const u32 *p; 71 const u32 *end; 72}; 73 74void fw_csr_iterator_init(struct fw_csr_iterator *ci, const u32 *p); 75int fw_csr_iterator_next(struct fw_csr_iterator *ci, int *key, int *value); 76int fw_csr_string(const u32 *directory, int key, char *buf, size_t size); 77 78extern struct bus_type fw_bus_type; 79 80struct fw_card_driver; 81struct fw_node; 82 83struct fw_card { 84 const struct fw_card_driver *driver; 85 struct device *device; 86 struct kref kref; 87 struct completion done; 88 89 int node_id; 90 int generation; 91 int current_tlabel; 92 u64 tlabel_mask; 93 struct list_head transaction_list; 94 u64 reset_jiffies; 95 96 u32 split_timeout_hi; 97 u32 split_timeout_lo; 98 unsigned int split_timeout_cycles; 99 unsigned int split_timeout_jiffies; 100 101 unsigned long long guid; 102 unsigned max_receive; 103 int link_speed; 104 int config_rom_generation; 105 106 spinlock_t lock; /* Take this lock when handling the lists in 107 * this struct. */ 108 struct fw_node *local_node; 109 struct fw_node *root_node; 110 struct fw_node *irm_node; 111 u8 color; /* must be u8 to match the definition in struct fw_node */ 112 int gap_count; 113 bool beta_repeaters_present; 114 115 int index; 116 struct list_head link; 117 118 struct list_head phy_receiver_list; 119 120 struct delayed_work br_work; /* bus reset job */ 121 bool br_short; 122 123 struct delayed_work bm_work; /* bus manager job */ 124 int bm_retries; 125 int bm_generation; 126 int bm_node_id; 127 bool bm_abdicate; 128 129 bool priority_budget_implemented; /* controller feature */ 130 bool broadcast_channel_auto_allocated; /* controller feature */ 131 132 bool broadcast_channel_allocated; 133 u32 broadcast_channel; 134 __be32 topology_map[(CSR_TOPOLOGY_MAP_END - CSR_TOPOLOGY_MAP) / 4]; 135 136 __be32 maint_utility_register; 137}; 138 139static inline struct fw_card *fw_card_get(struct fw_card *card) 140{ 141 kref_get(&card->kref); 142 143 return card; 144} 145 146void fw_card_release(struct kref *kref); 147 148static inline void fw_card_put(struct fw_card *card) 149{ 150 kref_put(&card->kref, fw_card_release); 151} 152 153int fw_card_read_cycle_time(struct fw_card *card, u32 *cycle_time); 154 155struct fw_attribute_group { 156 struct attribute_group *groups[2]; 157 struct attribute_group group; 158 struct attribute *attrs[13]; 159}; 160 161enum fw_device_state { 162 FW_DEVICE_INITIALIZING, 163 FW_DEVICE_RUNNING, 164 FW_DEVICE_GONE, 165 FW_DEVICE_SHUTDOWN, 166}; 167 168/* 169 * Note, fw_device.generation always has to be read before fw_device.node_id. 170 * Use SMP memory barriers to ensure this. Otherwise requests will be sent 171 * to an outdated node_id if the generation was updated in the meantime due 172 * to a bus reset. 173 * 174 * Likewise, fw-core will take care to update .node_id before .generation so 175 * that whenever fw_device.generation is current WRT the actual bus generation, 176 * fw_device.node_id is guaranteed to be current too. 177 * 178 * The same applies to fw_device.card->node_id vs. fw_device.generation. 179 * 180 * fw_device.config_rom and fw_device.config_rom_length may be accessed during 181 * the lifetime of any fw_unit belonging to the fw_device, before device_del() 182 * was called on the last fw_unit. Alternatively, they may be accessed while 183 * holding fw_device_rwsem. 184 */ 185struct fw_device { 186 atomic_t state; 187 struct fw_node *node; 188 int node_id; 189 int generation; 190 unsigned max_speed; 191 struct fw_card *card; 192 struct device device; 193 194 struct mutex client_list_mutex; 195 struct list_head client_list; 196 197 const u32 *config_rom; 198 size_t config_rom_length; 199 int config_rom_retries; 200 unsigned is_local:1; 201 unsigned max_rec:4; 202 unsigned cmc:1; 203 unsigned irmc:1; 204 unsigned bc_implemented:2; 205 206 work_func_t workfn; 207 struct delayed_work work; 208 struct fw_attribute_group attribute_group; 209}; 210 211static inline struct fw_device *fw_device(struct device *dev) 212{ 213 return container_of(dev, struct fw_device, device); 214} 215 216static inline int fw_device_is_shutdown(struct fw_device *device) 217{ 218 return atomic_read(&device->state) == FW_DEVICE_SHUTDOWN; 219} 220 221int fw_device_enable_phys_dma(struct fw_device *device); 222 223/* 224 * fw_unit.directory must not be accessed after device_del(&fw_unit.device). 225 */ 226struct fw_unit { 227 struct device device; 228 const u32 *directory; 229 struct fw_attribute_group attribute_group; 230}; 231 232static inline struct fw_unit *fw_unit(struct device *dev) 233{ 234 return container_of(dev, struct fw_unit, device); 235} 236 237static inline struct fw_unit *fw_unit_get(struct fw_unit *unit) 238{ 239 get_device(&unit->device); 240 241 return unit; 242} 243 244static inline void fw_unit_put(struct fw_unit *unit) 245{ 246 put_device(&unit->device); 247} 248 249static inline struct fw_device *fw_parent_device(struct fw_unit *unit) 250{ 251 return fw_device(unit->device.parent); 252} 253 254struct ieee1394_device_id; 255 256struct fw_driver { 257 struct device_driver driver; 258 int (*probe)(struct fw_unit *unit, const struct ieee1394_device_id *id); 259 /* Called when the parent device sits through a bus reset. */ 260 void (*update)(struct fw_unit *unit); 261 void (*remove)(struct fw_unit *unit); 262 const struct ieee1394_device_id *id_table; 263}; 264 265struct fw_packet; 266struct fw_request; 267 268typedef void (*fw_packet_callback_t)(struct fw_packet *packet, 269 struct fw_card *card, int status); 270typedef void (*fw_transaction_callback_t)(struct fw_card *card, int rcode, 271 void *data, size_t length, 272 void *callback_data); 273/* 274 * This callback handles an inbound request subaction. It is called in 275 * RCU read-side context, therefore must not sleep. 276 * 277 * The callback should not initiate outbound request subactions directly. 278 * Otherwise there is a danger of recursion of inbound and outbound 279 * transactions from and to the local node. 280 * 281 * The callback is responsible that either fw_send_response() or kfree() 282 * is called on the @request, except for FCP registers for which the core 283 * takes care of that. 284 */ 285typedef void (*fw_address_callback_t)(struct fw_card *card, 286 struct fw_request *request, 287 int tcode, int destination, int source, 288 int generation, 289 unsigned long long offset, 290 void *data, size_t length, 291 void *callback_data); 292 293struct fw_packet { 294 int speed; 295 int generation; 296 u32 header[4]; 297 size_t header_length; 298 void *payload; 299 size_t payload_length; 300 dma_addr_t payload_bus; 301 bool payload_mapped; 302 u32 timestamp; 303 304 /* 305 * This callback is called when the packet transmission has completed. 306 * For successful transmission, the status code is the ack received 307 * from the destination. Otherwise it is one of the juju-specific 308 * rcodes: RCODE_SEND_ERROR, _CANCELLED, _BUSY, _GENERATION, _NO_ACK. 309 * The callback can be called from tasklet context and thus 310 * must never block. 311 */ 312 fw_packet_callback_t callback; 313 int ack; 314 struct list_head link; 315 void *driver_data; 316}; 317 318struct fw_transaction { 319 int node_id; /* The generation is implied; it is always the current. */ 320 int tlabel; 321 struct list_head link; 322 struct fw_card *card; 323 bool is_split_transaction; 324 struct timer_list split_timeout_timer; 325 326 struct fw_packet packet; 327 328 /* 329 * The data passed to the callback is valid only during the 330 * callback. 331 */ 332 fw_transaction_callback_t callback; 333 void *callback_data; 334}; 335 336struct fw_address_handler { 337 u64 offset; 338 u64 length; 339 fw_address_callback_t address_callback; 340 void *callback_data; 341 struct list_head link; 342}; 343 344struct fw_address_region { 345 u64 start; 346 u64 end; 347}; 348 349extern const struct fw_address_region fw_high_memory_region; 350 351int fw_core_add_address_handler(struct fw_address_handler *handler, 352 const struct fw_address_region *region); 353void fw_core_remove_address_handler(struct fw_address_handler *handler); 354void fw_send_response(struct fw_card *card, 355 struct fw_request *request, int rcode); 356int fw_get_request_speed(struct fw_request *request); 357u32 fw_request_get_timestamp(const struct fw_request *request); 358void fw_send_request(struct fw_card *card, struct fw_transaction *t, 359 int tcode, int destination_id, int generation, int speed, 360 unsigned long long offset, void *payload, size_t length, 361 fw_transaction_callback_t callback, void *callback_data); 362int fw_cancel_transaction(struct fw_card *card, 363 struct fw_transaction *transaction); 364int fw_run_transaction(struct fw_card *card, int tcode, int destination_id, 365 int generation, int speed, unsigned long long offset, 366 void *payload, size_t length); 367const char *fw_rcode_string(int rcode); 368 369static inline int fw_stream_packet_destination_id(int tag, int channel, int sy) 370{ 371 return tag << 14 | channel << 8 | sy; 372} 373 374void fw_schedule_bus_reset(struct fw_card *card, bool delayed, 375 bool short_reset); 376 377struct fw_descriptor { 378 struct list_head link; 379 size_t length; 380 u32 immediate; 381 u32 key; 382 const u32 *data; 383}; 384 385int fw_core_add_descriptor(struct fw_descriptor *desc); 386void fw_core_remove_descriptor(struct fw_descriptor *desc); 387 388/* 389 * The iso packet format allows for an immediate header/payload part 390 * stored in 'header' immediately after the packet info plus an 391 * indirect payload part that is pointer to by the 'payload' field. 392 * Applications can use one or the other or both to implement simple 393 * low-bandwidth streaming (e.g. audio) or more advanced 394 * scatter-gather streaming (e.g. assembling video frame automatically). 395 */ 396struct fw_iso_packet { 397 u16 payload_length; /* Length of indirect payload */ 398 u32 interrupt:1; /* Generate interrupt on this packet */ 399 u32 skip:1; /* tx: Set to not send packet at all */ 400 /* rx: Sync bit, wait for matching sy */ 401 u32 tag:2; /* tx: Tag in packet header */ 402 u32 sy:4; /* tx: Sy in packet header */ 403 u32 header_length:8; /* Length of immediate header */ 404 u32 header[0]; /* tx: Top of 1394 isoch. data_block */ 405}; 406 407#define FW_ISO_CONTEXT_TRANSMIT 0 408#define FW_ISO_CONTEXT_RECEIVE 1 409#define FW_ISO_CONTEXT_RECEIVE_MULTICHANNEL 2 410 411#define FW_ISO_CONTEXT_MATCH_TAG0 1 412#define FW_ISO_CONTEXT_MATCH_TAG1 2 413#define FW_ISO_CONTEXT_MATCH_TAG2 4 414#define FW_ISO_CONTEXT_MATCH_TAG3 8 415#define FW_ISO_CONTEXT_MATCH_ALL_TAGS 15 416 417/* 418 * An iso buffer is just a set of pages mapped for DMA in the 419 * specified direction. Since the pages are to be used for DMA, they 420 * are not mapped into the kernel virtual address space. We store the 421 * DMA address in the page private. The helper function 422 * fw_iso_buffer_map() will map the pages into a given vma. 423 */ 424struct fw_iso_buffer { 425 enum dma_data_direction direction; 426 struct page **pages; 427 int page_count; 428 int page_count_mapped; 429}; 430 431int fw_iso_buffer_init(struct fw_iso_buffer *buffer, struct fw_card *card, 432 int page_count, enum dma_data_direction direction); 433void fw_iso_buffer_destroy(struct fw_iso_buffer *buffer, struct fw_card *card); 434size_t fw_iso_buffer_lookup(struct fw_iso_buffer *buffer, dma_addr_t completed); 435 436struct fw_iso_context; 437typedef void (*fw_iso_callback_t)(struct fw_iso_context *context, 438 u32 cycle, size_t header_length, 439 void *header, void *data); 440typedef void (*fw_iso_mc_callback_t)(struct fw_iso_context *context, 441 dma_addr_t completed, void *data); 442 443union fw_iso_callback { 444 fw_iso_callback_t sc; 445 fw_iso_mc_callback_t mc; 446}; 447 448struct fw_iso_context { 449 struct fw_card *card; 450 int type; 451 int channel; 452 int speed; 453 bool drop_overflow_headers; 454 size_t header_size; 455 union fw_iso_callback callback; 456 void *callback_data; 457}; 458 459struct fw_iso_context *fw_iso_context_create(struct fw_card *card, 460 int type, int channel, int speed, size_t header_size, 461 fw_iso_callback_t callback, void *callback_data); 462int fw_iso_context_set_channels(struct fw_iso_context *ctx, u64 *channels); 463int fw_iso_context_queue(struct fw_iso_context *ctx, 464 struct fw_iso_packet *packet, 465 struct fw_iso_buffer *buffer, 466 unsigned long payload); 467void fw_iso_context_queue_flush(struct fw_iso_context *ctx); 468int fw_iso_context_flush_completions(struct fw_iso_context *ctx); 469int fw_iso_context_start(struct fw_iso_context *ctx, 470 int cycle, int sync, int tags); 471int fw_iso_context_stop(struct fw_iso_context *ctx); 472void fw_iso_context_destroy(struct fw_iso_context *ctx); 473void fw_iso_resource_manage(struct fw_card *card, int generation, 474 u64 channels_mask, int *channel, int *bandwidth, 475 bool allocate); 476 477extern struct workqueue_struct *fw_workqueue; 478 479#endif /* _LINUX_FIREWIRE_H */