1 #ifndef __LINUX_PWM_H 2 #define __LINUX_PWM_H 3 4 #include <linux/err.h> 5 #include <linux/mutex.h> 6 #include <linux/of.h> 7 8 struct pwm_capture; 9 struct seq_file; 10 11 struct pwm_chip; 12 13 /** 14 * enum pwm_polarity - polarity of a PWM signal 15 * @PWM_POLARITY_NORMAL: a high signal for the duration of the duty- 16 * cycle, followed by a low signal for the remainder of the pulse 17 * period 18 * @PWM_POLARITY_INVERSED: a low signal for the duration of the duty- 19 * cycle, followed by a high signal for the remainder of the pulse 20 * period 21 */ 22 enum pwm_polarity { 23 PWM_POLARITY_NORMAL, 24 PWM_POLARITY_INVERSED, 25 }; 26 27 /** 28 * struct pwm_args - board-dependent PWM arguments 29 * @period: reference period 30 * @polarity: reference polarity 31 * 32 * This structure describes board-dependent arguments attached to a PWM 33 * device. These arguments are usually retrieved from the PWM lookup table or 34 * device tree. 35 * 36 * Do not confuse this with the PWM state: PWM arguments represent the initial 37 * configuration that users want to use on this PWM device rather than the 38 * current PWM hardware state. 39 */ 40 struct pwm_args { 41 unsigned int period; 42 enum pwm_polarity polarity; 43 }; 44 45 enum { 46 PWMF_REQUESTED = 1 << 0, 47 PWMF_EXPORTED = 1 << 1, 48 }; 49 50 /* 51 * struct pwm_state - state of a PWM channel 52 * @period: PWM period (in nanoseconds) 53 * @duty_cycle: PWM duty cycle (in nanoseconds) 54 * @polarity: PWM polarity 55 * @enabled: PWM enabled status 56 */ 57 struct pwm_state { 58 unsigned int period; 59 unsigned int duty_cycle; 60 enum pwm_polarity polarity; 61 bool enabled; 62 }; 63 64 /** 65 * struct pwm_device - PWM channel object 66 * @label: name of the PWM device 67 * @flags: flags associated with the PWM device 68 * @hwpwm: per-chip relative index of the PWM device 69 * @pwm: global index of the PWM device 70 * @chip: PWM chip providing this PWM device 71 * @chip_data: chip-private data associated with the PWM device 72 * @args: PWM arguments 73 * @state: curent PWM channel state 74 */ 75 struct pwm_device { 76 const char *label; 77 unsigned long flags; 78 unsigned int hwpwm; 79 unsigned int pwm; 80 struct pwm_chip *chip; 81 void *chip_data; 82 83 struct pwm_args args; 84 struct pwm_state state; 85 }; 86 87 /** 88 * pwm_get_state() - retrieve the current PWM state 89 * @pwm: PWM device 90 * @state: state to fill with the current PWM state 91 */ 92 static inline void pwm_get_state(const struct pwm_device *pwm, 93 struct pwm_state *state) 94 { 95 *state = pwm->state; 96 } 97 98 static inline bool pwm_is_enabled(const struct pwm_device *pwm) 99 { 100 struct pwm_state state; 101 102 pwm_get_state(pwm, &state); 103 104 return state.enabled; 105 } 106 107 static inline void pwm_set_period(struct pwm_device *pwm, unsigned int period) 108 { 109 if (pwm) 110 pwm->state.period = period; 111 } 112 113 static inline unsigned int pwm_get_period(const struct pwm_device *pwm) 114 { 115 struct pwm_state state; 116 117 pwm_get_state(pwm, &state); 118 119 return state.period; 120 } 121 122 static inline void pwm_set_duty_cycle(struct pwm_device *pwm, unsigned int duty) 123 { 124 if (pwm) 125 pwm->state.duty_cycle = duty; 126 } 127 128 static inline unsigned int pwm_get_duty_cycle(const struct pwm_device *pwm) 129 { 130 struct pwm_state state; 131 132 pwm_get_state(pwm, &state); 133 134 return state.duty_cycle; 135 } 136 137 static inline enum pwm_polarity pwm_get_polarity(const struct pwm_device *pwm) 138 { 139 struct pwm_state state; 140 141 pwm_get_state(pwm, &state); 142 143 return state.polarity; 144 } 145 146 static inline void pwm_get_args(const struct pwm_device *pwm, 147 struct pwm_args *args) 148 { 149 *args = pwm->args; 150 } 151 152 /** 153 * pwm_init_state() - prepare a new state to be applied with pwm_apply_state() 154 * @pwm: PWM device 155 * @state: state to fill with the prepared PWM state 156 * 157 * This functions prepares a state that can later be tweaked and applied 158 * to the PWM device with pwm_apply_state(). This is a convenient function 159 * that first retrieves the current PWM state and the replaces the period 160 * and polarity fields with the reference values defined in pwm->args. 161 * Once the function returns, you can adjust the ->enabled and ->duty_cycle 162 * fields according to your needs before calling pwm_apply_state(). 163 * 164 * ->duty_cycle is initially set to zero to avoid cases where the current 165 * ->duty_cycle value exceed the pwm_args->period one, which would trigger 166 * an error if the user calls pwm_apply_state() without adjusting ->duty_cycle 167 * first. 168 */ 169 static inline void pwm_init_state(const struct pwm_device *pwm, 170 struct pwm_state *state) 171 { 172 struct pwm_args args; 173 174 /* First get the current state. */ 175 pwm_get_state(pwm, state); 176 177 /* Then fill it with the reference config */ 178 pwm_get_args(pwm, &args); 179 180 state->period = args.period; 181 state->polarity = args.polarity; 182 state->duty_cycle = 0; 183 } 184 185 /** 186 * pwm_get_relative_duty_cycle() - Get a relative duty cycle value 187 * @state: PWM state to extract the duty cycle from 188 * @scale: target scale of the relative duty cycle 189 * 190 * This functions converts the absolute duty cycle stored in @state (expressed 191 * in nanosecond) into a value relative to the period. 192 * 193 * For example if you want to get the duty_cycle expressed in percent, call: 194 * 195 * pwm_get_state(pwm, &state); 196 * duty = pwm_get_relative_duty_cycle(&state, 100); 197 */ 198 static inline unsigned int 199 pwm_get_relative_duty_cycle(const struct pwm_state *state, unsigned int scale) 200 { 201 if (!state->period) 202 return 0; 203 204 return DIV_ROUND_CLOSEST_ULL((u64)state->duty_cycle * scale, 205 state->period); 206 } 207 208 /** 209 * pwm_set_relative_duty_cycle() - Set a relative duty cycle value 210 * @state: PWM state to fill 211 * @duty_cycle: relative duty cycle value 212 * @scale: scale in which @duty_cycle is expressed 213 * 214 * This functions converts a relative into an absolute duty cycle (expressed 215 * in nanoseconds), and puts the result in state->duty_cycle. 216 * 217 * For example if you want to configure a 50% duty cycle, call: 218 * 219 * pwm_init_state(pwm, &state); 220 * pwm_set_relative_duty_cycle(&state, 50, 100); 221 * pwm_apply_state(pwm, &state); 222 * 223 * This functions returns -EINVAL if @duty_cycle and/or @scale are 224 * inconsistent (@scale == 0 or @duty_cycle > @scale). 225 */ 226 static inline int 227 pwm_set_relative_duty_cycle(struct pwm_state *state, unsigned int duty_cycle, 228 unsigned int scale) 229 { 230 if (!scale || duty_cycle > scale) 231 return -EINVAL; 232 233 state->duty_cycle = DIV_ROUND_CLOSEST_ULL((u64)duty_cycle * 234 state->period, 235 scale); 236 237 return 0; 238 } 239 240 /** 241 * struct pwm_ops - PWM controller operations 242 * @request: optional hook for requesting a PWM 243 * @free: optional hook for freeing a PWM 244 * @config: configure duty cycles and period length for this PWM 245 * @set_polarity: configure the polarity of this PWM 246 * @capture: capture and report PWM signal 247 * @enable: enable PWM output toggling 248 * @disable: disable PWM output toggling 249 * @apply: atomically apply a new PWM config. The state argument 250 * should be adjusted with the real hardware config (if the 251 * approximate the period or duty_cycle value, state should 252 * reflect it) 253 * @get_state: get the current PWM state. This function is only 254 * called once per PWM device when the PWM chip is 255 * registered. 256 * @dbg_show: optional routine to show contents in debugfs 257 * @owner: helps prevent removal of modules exporting active PWMs 258 */ 259 struct pwm_ops { 260 int (*request)(struct pwm_chip *chip, struct pwm_device *pwm); 261 void (*free)(struct pwm_chip *chip, struct pwm_device *pwm); 262 int (*config)(struct pwm_chip *chip, struct pwm_device *pwm, 263 int duty_ns, int period_ns); 264 int (*set_polarity)(struct pwm_chip *chip, struct pwm_device *pwm, 265 enum pwm_polarity polarity); 266 int (*capture)(struct pwm_chip *chip, struct pwm_device *pwm, 267 struct pwm_capture *result, unsigned long timeout); 268 int (*enable)(struct pwm_chip *chip, struct pwm_device *pwm); 269 void (*disable)(struct pwm_chip *chip, struct pwm_device *pwm); 270 int (*apply)(struct pwm_chip *chip, struct pwm_device *pwm, 271 struct pwm_state *state); 272 void (*get_state)(struct pwm_chip *chip, struct pwm_device *pwm, 273 struct pwm_state *state); 274 #ifdef CONFIG_DEBUG_FS 275 void (*dbg_show)(struct pwm_chip *chip, struct seq_file *s); 276 #endif 277 struct module *owner; 278 }; 279 280 /** 281 * struct pwm_chip - abstract a PWM controller 282 * @dev: device providing the PWMs 283 * @list: list node for internal use 284 * @ops: callbacks for this PWM controller 285 * @base: number of first PWM controlled by this chip 286 * @npwm: number of PWMs controlled by this chip 287 * @pwms: array of PWM devices allocated by the framework 288 * @of_xlate: request a PWM device given a device tree PWM specifier 289 * @of_pwm_n_cells: number of cells expected in the device tree PWM specifier 290 * @can_sleep: must be true if the .config(), .enable() or .disable() 291 * operations may sleep 292 */ 293 struct pwm_chip { 294 struct device *dev; 295 struct list_head list; 296 const struct pwm_ops *ops; 297 int base; 298 unsigned int npwm; 299 300 struct pwm_device *pwms; 301 302 struct pwm_device * (*of_xlate)(struct pwm_chip *pc, 303 const struct of_phandle_args *args); 304 unsigned int of_pwm_n_cells; 305 bool can_sleep; 306 }; 307 308 /** 309 * struct pwm_capture - PWM capture data 310 * @period: period of the PWM signal (in nanoseconds) 311 * @duty_cycle: duty cycle of the PWM signal (in nanoseconds) 312 */ 313 struct pwm_capture { 314 unsigned int period; 315 unsigned int duty_cycle; 316 }; 317 318 #if IS_ENABLED(CONFIG_PWM) 319 /* PWM user APIs */ 320 struct pwm_device *pwm_request(int pwm_id, const char *label); 321 void pwm_free(struct pwm_device *pwm); 322 int pwm_apply_state(struct pwm_device *pwm, struct pwm_state *state); 323 int pwm_adjust_config(struct pwm_device *pwm); 324 325 /** 326 * pwm_config() - change a PWM device configuration 327 * @pwm: PWM device 328 * @duty_ns: "on" time (in nanoseconds) 329 * @period_ns: duration (in nanoseconds) of one cycle 330 * 331 * Returns: 0 on success or a negative error code on failure. 332 */ 333 static inline int pwm_config(struct pwm_device *pwm, int duty_ns, 334 int period_ns) 335 { 336 struct pwm_state state; 337 338 if (!pwm) 339 return -EINVAL; 340 341 if (duty_ns < 0 || period_ns < 0) 342 return -EINVAL; 343 344 pwm_get_state(pwm, &state); 345 if (state.duty_cycle == duty_ns && state.period == period_ns) 346 return 0; 347 348 state.duty_cycle = duty_ns; 349 state.period = period_ns; 350 return pwm_apply_state(pwm, &state); 351 } 352 353 /** 354 * pwm_set_polarity() - configure the polarity of a PWM signal 355 * @pwm: PWM device 356 * @polarity: new polarity of the PWM signal 357 * 358 * Note that the polarity cannot be configured while the PWM device is 359 * enabled. 360 * 361 * Returns: 0 on success or a negative error code on failure. 362 */ 363 static inline int pwm_set_polarity(struct pwm_device *pwm, 364 enum pwm_polarity polarity) 365 { 366 struct pwm_state state; 367 368 if (!pwm) 369 return -EINVAL; 370 371 pwm_get_state(pwm, &state); 372 if (state.polarity == polarity) 373 return 0; 374 375 /* 376 * Changing the polarity of a running PWM without adjusting the 377 * dutycycle/period value is a bit risky (can introduce glitches). 378 * Return -EBUSY in this case. 379 * Note that this is allowed when using pwm_apply_state() because 380 * the user specifies all the parameters. 381 */ 382 if (state.enabled) 383 return -EBUSY; 384 385 state.polarity = polarity; 386 return pwm_apply_state(pwm, &state); 387 } 388 389 /** 390 * pwm_enable() - start a PWM output toggling 391 * @pwm: PWM device 392 * 393 * Returns: 0 on success or a negative error code on failure. 394 */ 395 static inline int pwm_enable(struct pwm_device *pwm) 396 { 397 struct pwm_state state; 398 399 if (!pwm) 400 return -EINVAL; 401 402 pwm_get_state(pwm, &state); 403 if (state.enabled) 404 return 0; 405 406 state.enabled = true; 407 return pwm_apply_state(pwm, &state); 408 } 409 410 /** 411 * pwm_disable() - stop a PWM output toggling 412 * @pwm: PWM device 413 */ 414 static inline void pwm_disable(struct pwm_device *pwm) 415 { 416 struct pwm_state state; 417 418 if (!pwm) 419 return; 420 421 pwm_get_state(pwm, &state); 422 if (!state.enabled) 423 return; 424 425 state.enabled = false; 426 pwm_apply_state(pwm, &state); 427 } 428 429 /* PWM provider APIs */ 430 int pwm_capture(struct pwm_device *pwm, struct pwm_capture *result, 431 unsigned long timeout); 432 int pwm_set_chip_data(struct pwm_device *pwm, void *data); 433 void *pwm_get_chip_data(struct pwm_device *pwm); 434 435 int pwmchip_add_with_polarity(struct pwm_chip *chip, 436 enum pwm_polarity polarity); 437 int pwmchip_add(struct pwm_chip *chip); 438 int pwmchip_remove(struct pwm_chip *chip); 439 struct pwm_device *pwm_request_from_chip(struct pwm_chip *chip, 440 unsigned int index, 441 const char *label); 442 443 struct pwm_device *of_pwm_xlate_with_flags(struct pwm_chip *pc, 444 const struct of_phandle_args *args); 445 446 struct pwm_device *pwm_get(struct device *dev, const char *con_id); 447 struct pwm_device *of_pwm_get(struct device_node *np, const char *con_id); 448 void pwm_put(struct pwm_device *pwm); 449 450 struct pwm_device *devm_pwm_get(struct device *dev, const char *con_id); 451 struct pwm_device *devm_of_pwm_get(struct device *dev, struct device_node *np, 452 const char *con_id); 453 void devm_pwm_put(struct device *dev, struct pwm_device *pwm); 454 455 bool pwm_can_sleep(struct pwm_device *pwm); 456 #else 457 static inline struct pwm_device *pwm_request(int pwm_id, const char *label) 458 { 459 return ERR_PTR(-ENODEV); 460 } 461 462 static inline void pwm_free(struct pwm_device *pwm) 463 { 464 } 465 466 static inline int pwm_apply_state(struct pwm_device *pwm, 467 const struct pwm_state *state) 468 { 469 return -ENOTSUPP; 470 } 471 472 static inline int pwm_adjust_config(struct pwm_device *pwm) 473 { 474 return -ENOTSUPP; 475 } 476 477 static inline int pwm_config(struct pwm_device *pwm, int duty_ns, 478 int period_ns) 479 { 480 return -EINVAL; 481 } 482 483 static inline int pwm_capture(struct pwm_device *pwm, 484 struct pwm_capture *result, 485 unsigned long timeout) 486 { 487 return -EINVAL; 488 } 489 490 static inline int pwm_set_polarity(struct pwm_device *pwm, 491 enum pwm_polarity polarity) 492 { 493 return -ENOTSUPP; 494 } 495 496 static inline int pwm_enable(struct pwm_device *pwm) 497 { 498 return -EINVAL; 499 } 500 501 static inline void pwm_disable(struct pwm_device *pwm) 502 { 503 } 504 505 static inline int pwm_set_chip_data(struct pwm_device *pwm, void *data) 506 { 507 return -EINVAL; 508 } 509 510 static inline void *pwm_get_chip_data(struct pwm_device *pwm) 511 { 512 return NULL; 513 } 514 515 static inline int pwmchip_add(struct pwm_chip *chip) 516 { 517 return -EINVAL; 518 } 519 520 static inline int pwmchip_add_inversed(struct pwm_chip *chip) 521 { 522 return -EINVAL; 523 } 524 525 static inline int pwmchip_remove(struct pwm_chip *chip) 526 { 527 return -EINVAL; 528 } 529 530 static inline struct pwm_device *pwm_request_from_chip(struct pwm_chip *chip, 531 unsigned int index, 532 const char *label) 533 { 534 return ERR_PTR(-ENODEV); 535 } 536 537 static inline struct pwm_device *pwm_get(struct device *dev, 538 const char *consumer) 539 { 540 return ERR_PTR(-ENODEV); 541 } 542 543 static inline struct pwm_device *of_pwm_get(struct device_node *np, 544 const char *con_id) 545 { 546 return ERR_PTR(-ENODEV); 547 } 548 549 static inline void pwm_put(struct pwm_device *pwm) 550 { 551 } 552 553 static inline struct pwm_device *devm_pwm_get(struct device *dev, 554 const char *consumer) 555 { 556 return ERR_PTR(-ENODEV); 557 } 558 559 static inline struct pwm_device *devm_of_pwm_get(struct device *dev, 560 struct device_node *np, 561 const char *con_id) 562 { 563 return ERR_PTR(-ENODEV); 564 } 565 566 static inline void devm_pwm_put(struct device *dev, struct pwm_device *pwm) 567 { 568 } 569 570 static inline bool pwm_can_sleep(struct pwm_device *pwm) 571 { 572 return false; 573 } 574 #endif 575 576 static inline void pwm_apply_args(struct pwm_device *pwm) 577 { 578 struct pwm_state state = { }; 579 580 /* 581 * PWM users calling pwm_apply_args() expect to have a fresh config 582 * where the polarity and period are set according to pwm_args info. 583 * The problem is, polarity can only be changed when the PWM is 584 * disabled. 585 * 586 * PWM drivers supporting hardware readout may declare the PWM device 587 * as enabled, and prevent polarity setting, which changes from the 588 * existing behavior, where all PWM devices are declared as disabled 589 * at startup (even if they are actually enabled), thus authorizing 590 * polarity setting. 591 * 592 * To fulfill this requirement, we apply a new state which disables 593 * the PWM device and set the reference period and polarity config. 594 * 595 * Note that PWM users requiring a smooth handover between the 596 * bootloader and the kernel (like critical regulators controlled by 597 * PWM devices) will have to switch to the atomic API and avoid calling 598 * pwm_apply_args(). 599 */ 600 601 state.enabled = false; 602 state.polarity = pwm->args.polarity; 603 state.period = pwm->args.period; 604 605 pwm_apply_state(pwm, &state); 606 } 607 608 struct pwm_lookup { 609 struct list_head list; 610 const char *provider; 611 unsigned int index; 612 const char *dev_id; 613 const char *con_id; 614 unsigned int period; 615 enum pwm_polarity polarity; 616 }; 617 618 #define PWM_LOOKUP(_provider, _index, _dev_id, _con_id, _period, _polarity) \ 619 { \ 620 .provider = _provider, \ 621 .index = _index, \ 622 .dev_id = _dev_id, \ 623 .con_id = _con_id, \ 624 .period = _period, \ 625 .polarity = _polarity \ 626 } 627 628 #if IS_ENABLED(CONFIG_PWM) 629 void pwm_add_table(struct pwm_lookup *table, size_t num); 630 void pwm_remove_table(struct pwm_lookup *table, size_t num); 631 #else 632 static inline void pwm_add_table(struct pwm_lookup *table, size_t num) 633 { 634 } 635 636 static inline void pwm_remove_table(struct pwm_lookup *table, size_t num) 637 { 638 } 639 #endif 640 641 #ifdef CONFIG_PWM_SYSFS 642 void pwmchip_sysfs_export(struct pwm_chip *chip); 643 void pwmchip_sysfs_unexport(struct pwm_chip *chip); 644 void pwmchip_sysfs_unexport_children(struct pwm_chip *chip); 645 #else 646 static inline void pwmchip_sysfs_export(struct pwm_chip *chip) 647 { 648 } 649 650 static inline void pwmchip_sysfs_unexport(struct pwm_chip *chip) 651 { 652 } 653 654 static inline void pwmchip_sysfs_unexport_children(struct pwm_chip *chip) 655 { 656 } 657 #endif /* CONFIG_PWM_SYSFS */ 658 659 #endif /* __LINUX_PWM_H */ 660