1 // SPDX-License-Identifier: GPL-2.0+ 2 /* 3 * Driver core for serial ports 4 * 5 * Based on drivers/char/serial.c, by Linus Torvalds, Theodore Ts'o. 6 * 7 * Copyright 1999 ARM Limited 8 * Copyright (C) 2000-2001 Deep Blue Solutions Ltd. 9 */ 10 #include <linux/module.h> 11 #include <linux/tty.h> 12 #include <linux/tty_flip.h> 13 #include <linux/slab.h> 14 #include <linux/sched/signal.h> 15 #include <linux/init.h> 16 #include <linux/console.h> 17 #include <linux/gpio/consumer.h> 18 #include <linux/kernel.h> 19 #include <linux/of.h> 20 #include <linux/pm_runtime.h> 21 #include <linux/proc_fs.h> 22 #include <linux/seq_file.h> 23 #include <linux/device.h> 24 #include <linux/serial.h> /* for serial_state and serial_icounter_struct */ 25 #include <linux/serial_core.h> 26 #include <linux/sysrq.h> 27 #include <linux/delay.h> 28 #include <linux/mutex.h> 29 #include <linux/math64.h> 30 #include <linux/security.h> 31 32 #include <linux/irq.h> 33 #include <linux/uaccess.h> 34 35 #include "serial_base.h" 36 37 /* 38 * This is used to lock changes in serial line configuration. 39 */ 40 static DEFINE_MUTEX(port_mutex); 41 42 /* 43 * lockdep: port->lock is initialized in two places, but we 44 * want only one lock-class: 45 */ 46 static struct lock_class_key port_lock_key; 47 48 #define HIGH_BITS_OFFSET ((sizeof(long)-sizeof(int))*8) 49 50 /* 51 * Max time with active RTS before/after data is sent. 52 */ 53 #define RS485_MAX_RTS_DELAY 100 /* msecs */ 54 55 static void uart_change_pm(struct uart_state *state, 56 enum uart_pm_state pm_state); 57 58 static void uart_port_shutdown(struct tty_port *port); 59 60 static int uart_dcd_enabled(struct uart_port *uport) 61 { 62 return !!(uport->status & UPSTAT_DCD_ENABLE); 63 } 64 65 static inline struct uart_port *uart_port_ref(struct uart_state *state) 66 { 67 if (atomic_add_unless(&state->refcount, 1, 0)) 68 return state->uart_port; 69 return NULL; 70 } 71 72 static inline void uart_port_deref(struct uart_port *uport) 73 { 74 if (atomic_dec_and_test(&uport->state->refcount)) 75 wake_up(&uport->state->remove_wait); 76 } 77 78 static inline struct uart_port *uart_port_ref_lock(struct uart_state *state, unsigned long *flags) 79 { 80 struct uart_port *uport = uart_port_ref(state); 81 82 if (uport) 83 uart_port_lock_irqsave(uport, flags); 84 85 return uport; 86 } 87 88 static inline void uart_port_unlock_deref(struct uart_port *uport, unsigned long flags) 89 { 90 if (uport) { 91 uart_port_unlock_irqrestore(uport, flags); 92 uart_port_deref(uport); 93 } 94 } 95 96 static inline struct uart_port *uart_port_check(struct uart_state *state) 97 { 98 lockdep_assert_held(&state->port.mutex); 99 return state->uart_port; 100 } 101 102 /** 103 * uart_write_wakeup - schedule write processing 104 * @port: port to be processed 105 * 106 * This routine is used by the interrupt handler to schedule processing in the 107 * software interrupt portion of the driver. A driver is expected to call this 108 * function when the number of characters in the transmit buffer have dropped 109 * below a threshold. 110 * 111 * Locking: @port->lock should be held 112 */ 113 void uart_write_wakeup(struct uart_port *port) 114 { 115 struct uart_state *state = port->state; 116 /* 117 * This means you called this function _after_ the port was 118 * closed. No cookie for you. 119 */ 120 BUG_ON(!state); 121 tty_port_tty_wakeup(&state->port); 122 } 123 EXPORT_SYMBOL(uart_write_wakeup); 124 125 static void uart_stop(struct tty_struct *tty) 126 { 127 struct uart_state *state = tty->driver_data; 128 struct uart_port *port; 129 unsigned long flags; 130 131 port = uart_port_ref_lock(state, &flags); 132 if (port) 133 port->ops->stop_tx(port); 134 uart_port_unlock_deref(port, flags); 135 } 136 137 static void __uart_start(struct uart_state *state) 138 { 139 struct uart_port *port = state->uart_port; 140 struct serial_port_device *port_dev; 141 int err; 142 143 if (!port || port->flags & UPF_DEAD || uart_tx_stopped(port)) 144 return; 145 146 port_dev = port->port_dev; 147 148 /* Increment the runtime PM usage count for the active check below */ 149 err = pm_runtime_get(&port_dev->dev); 150 if (err < 0 && err != -EINPROGRESS) { 151 pm_runtime_put_noidle(&port_dev->dev); 152 return; 153 } 154 155 /* 156 * Start TX if enabled, and kick runtime PM. If the device is not 157 * enabled, serial_port_runtime_resume() calls start_tx() again 158 * after enabling the device. 159 */ 160 if (!pm_runtime_enabled(port->dev) || pm_runtime_active(&port_dev->dev)) 161 port->ops->start_tx(port); 162 pm_runtime_mark_last_busy(&port_dev->dev); 163 pm_runtime_put_autosuspend(&port_dev->dev); 164 } 165 166 static void uart_start(struct tty_struct *tty) 167 { 168 struct uart_state *state = tty->driver_data; 169 struct uart_port *port; 170 unsigned long flags; 171 172 port = uart_port_ref_lock(state, &flags); 173 __uart_start(state); 174 uart_port_unlock_deref(port, flags); 175 } 176 177 static void 178 uart_update_mctrl(struct uart_port *port, unsigned int set, unsigned int clear) 179 { 180 unsigned int old; 181 182 guard(uart_port_lock_irqsave)(port); 183 old = port->mctrl; 184 port->mctrl = (old & ~clear) | set; 185 if (old != port->mctrl && !(port->rs485.flags & SER_RS485_ENABLED)) 186 port->ops->set_mctrl(port, port->mctrl); 187 } 188 189 #define uart_set_mctrl(port, set) uart_update_mctrl(port, set, 0) 190 #define uart_clear_mctrl(port, clear) uart_update_mctrl(port, 0, clear) 191 192 static void uart_port_dtr_rts(struct uart_port *uport, bool active) 193 { 194 if (active) 195 uart_set_mctrl(uport, TIOCM_DTR | TIOCM_RTS); 196 else 197 uart_clear_mctrl(uport, TIOCM_DTR | TIOCM_RTS); 198 } 199 200 /* Caller holds port mutex */ 201 static void uart_change_line_settings(struct tty_struct *tty, struct uart_state *state, 202 const struct ktermios *old_termios) 203 { 204 struct uart_port *uport = uart_port_check(state); 205 struct ktermios *termios; 206 bool old_hw_stopped; 207 208 /* 209 * If we have no tty, termios, or the port does not exist, 210 * then we can't set the parameters for this port. 211 */ 212 if (!tty || uport->type == PORT_UNKNOWN) 213 return; 214 215 termios = &tty->termios; 216 uport->ops->set_termios(uport, termios, old_termios); 217 218 /* 219 * Set modem status enables based on termios cflag 220 */ 221 guard(uart_port_lock_irq)(uport); 222 if (termios->c_cflag & CRTSCTS) 223 uport->status |= UPSTAT_CTS_ENABLE; 224 else 225 uport->status &= ~UPSTAT_CTS_ENABLE; 226 227 if (termios->c_cflag & CLOCAL) 228 uport->status &= ~UPSTAT_DCD_ENABLE; 229 else 230 uport->status |= UPSTAT_DCD_ENABLE; 231 232 /* reset sw-assisted CTS flow control based on (possibly) new mode */ 233 old_hw_stopped = uport->hw_stopped; 234 uport->hw_stopped = uart_softcts_mode(uport) && 235 !(uport->ops->get_mctrl(uport) & TIOCM_CTS); 236 if (uport->hw_stopped != old_hw_stopped) { 237 if (!old_hw_stopped) 238 uport->ops->stop_tx(uport); 239 else 240 __uart_start(state); 241 } 242 } 243 244 static int uart_alloc_xmit_buf(struct tty_port *port) 245 { 246 struct uart_state *state = container_of(port, struct uart_state, port); 247 struct uart_port *uport; 248 unsigned long flags; 249 unsigned long page; 250 251 /* 252 * Initialise and allocate the transmit and temporary 253 * buffer. 254 */ 255 page = get_zeroed_page(GFP_KERNEL); 256 if (!page) 257 return -ENOMEM; 258 259 uport = uart_port_ref_lock(state, &flags); 260 if (!state->port.xmit_buf) { 261 state->port.xmit_buf = (unsigned char *)page; 262 kfifo_init(&state->port.xmit_fifo, state->port.xmit_buf, 263 PAGE_SIZE); 264 uart_port_unlock_deref(uport, flags); 265 } else { 266 uart_port_unlock_deref(uport, flags); 267 /* 268 * Do not free() the page under the port lock, see 269 * uart_free_xmit_buf(). 270 */ 271 free_page(page); 272 } 273 274 return 0; 275 } 276 277 static void uart_free_xmit_buf(struct tty_port *port) 278 { 279 struct uart_state *state = container_of(port, struct uart_state, port); 280 struct uart_port *uport; 281 unsigned long flags; 282 char *xmit_buf; 283 284 /* 285 * Do not free() the transmit buffer page under the port lock since 286 * this can create various circular locking scenarios. For instance, 287 * console driver may need to allocate/free a debug object, which 288 * can end up in printk() recursion. 289 */ 290 uport = uart_port_ref_lock(state, &flags); 291 xmit_buf = port->xmit_buf; 292 port->xmit_buf = NULL; 293 INIT_KFIFO(port->xmit_fifo); 294 uart_port_unlock_deref(uport, flags); 295 296 free_page((unsigned long)xmit_buf); 297 } 298 299 /* 300 * Startup the port. This will be called once per open. All calls 301 * will be serialised by the per-port mutex. 302 */ 303 static int uart_port_startup(struct tty_struct *tty, struct uart_state *state, 304 bool init_hw) 305 { 306 struct uart_port *uport = uart_port_check(state); 307 int retval; 308 309 if (uport->type == PORT_UNKNOWN) 310 return 1; 311 312 /* 313 * Make sure the device is in D0 state. 314 */ 315 uart_change_pm(state, UART_PM_STATE_ON); 316 317 retval = uart_alloc_xmit_buf(&state->port); 318 if (retval) 319 return retval; 320 321 retval = uport->ops->startup(uport); 322 if (retval == 0) { 323 if (uart_console(uport) && uport->cons->cflag) { 324 tty->termios.c_cflag = uport->cons->cflag; 325 tty->termios.c_ispeed = uport->cons->ispeed; 326 tty->termios.c_ospeed = uport->cons->ospeed; 327 uport->cons->cflag = 0; 328 uport->cons->ispeed = 0; 329 uport->cons->ospeed = 0; 330 } 331 /* 332 * Initialise the hardware port settings. 333 */ 334 uart_change_line_settings(tty, state, NULL); 335 336 /* 337 * Setup the RTS and DTR signals once the 338 * port is open and ready to respond. 339 */ 340 if (init_hw && C_BAUD(tty)) 341 uart_port_dtr_rts(uport, true); 342 } 343 344 /* 345 * This is to allow setserial on this port. People may want to set 346 * port/irq/type and then reconfigure the port properly if it failed 347 * now. 348 */ 349 if (retval && capable(CAP_SYS_ADMIN)) 350 return 1; 351 352 return retval; 353 } 354 355 static int uart_startup(struct tty_struct *tty, struct uart_state *state, 356 bool init_hw) 357 { 358 struct tty_port *port = &state->port; 359 struct uart_port *uport; 360 int retval; 361 362 if (tty_port_initialized(port)) 363 goto out_base_port_startup; 364 365 retval = uart_port_startup(tty, state, init_hw); 366 if (retval) { 367 set_bit(TTY_IO_ERROR, &tty->flags); 368 return retval; 369 } 370 371 out_base_port_startup: 372 uport = uart_port_check(state); 373 if (!uport) 374 return -EIO; 375 376 serial_base_port_startup(uport); 377 378 return 0; 379 } 380 381 /* 382 * This routine will shutdown a serial port; interrupts are disabled, and 383 * DTR is dropped if the hangup on close termio flag is on. Calls to 384 * uart_shutdown are serialised by the per-port semaphore. 385 * 386 * uport == NULL if uart_port has already been removed 387 */ 388 static void uart_shutdown(struct tty_struct *tty, struct uart_state *state) 389 { 390 struct uart_port *uport = uart_port_check(state); 391 struct tty_port *port = &state->port; 392 393 /* 394 * Set the TTY IO error marker 395 */ 396 if (tty) 397 set_bit(TTY_IO_ERROR, &tty->flags); 398 399 if (uport) 400 serial_base_port_shutdown(uport); 401 402 if (tty_port_initialized(port)) { 403 tty_port_set_initialized(port, false); 404 405 /* 406 * Turn off DTR and RTS early. 407 */ 408 if (uport) { 409 if (uart_console(uport) && tty) { 410 uport->cons->cflag = tty->termios.c_cflag; 411 uport->cons->ispeed = tty->termios.c_ispeed; 412 uport->cons->ospeed = tty->termios.c_ospeed; 413 } 414 415 if (!tty || C_HUPCL(tty)) 416 uart_port_dtr_rts(uport, false); 417 } 418 419 uart_port_shutdown(port); 420 } 421 422 /* 423 * It's possible for shutdown to be called after suspend if we get 424 * a DCD drop (hangup) at just the right time. Clear suspended bit so 425 * we don't try to resume a port that has been shutdown. 426 */ 427 tty_port_set_suspended(port, false); 428 429 uart_free_xmit_buf(port); 430 } 431 432 /** 433 * uart_update_timeout - update per-port frame timing information 434 * @port: uart_port structure describing the port 435 * @cflag: termios cflag value 436 * @baud: speed of the port 437 * 438 * Set the @port frame timing information from which the FIFO timeout value is 439 * derived. The @cflag value should reflect the actual hardware settings as 440 * number of bits, parity, stop bits and baud rate is taken into account here. 441 * 442 * Locking: caller is expected to take @port->lock 443 */ 444 void 445 uart_update_timeout(struct uart_port *port, unsigned int cflag, 446 unsigned int baud) 447 { 448 u64 temp = tty_get_frame_size(cflag); 449 450 temp *= NSEC_PER_SEC; 451 port->frame_time = (unsigned int)DIV64_U64_ROUND_UP(temp, baud); 452 } 453 EXPORT_SYMBOL(uart_update_timeout); 454 455 /** 456 * uart_get_baud_rate - return baud rate for a particular port 457 * @port: uart_port structure describing the port in question. 458 * @termios: desired termios settings 459 * @old: old termios (or %NULL) 460 * @min: minimum acceptable baud rate 461 * @max: maximum acceptable baud rate 462 * 463 * Decode the termios structure into a numeric baud rate, taking account of the 464 * magic 38400 baud rate (with spd_* flags), and mapping the %B0 rate to 9600 465 * baud or min argument, whichever is greater. 466 * 467 * If the new baud rate is invalid, try the @old termios setting. If it's still 468 * invalid, clip to the nearest chip supported rate. 469 * 470 * The @termios structure is updated to reflect the baud rate we're actually 471 * going to be using. Don't do this for the case where B0 is requested ("hang 472 * up"). 473 * 474 * Locking: caller dependent 475 */ 476 unsigned int 477 uart_get_baud_rate(struct uart_port *port, struct ktermios *termios, 478 const struct ktermios *old, unsigned int min, unsigned int max) 479 { 480 unsigned int try; 481 unsigned int baud; 482 unsigned int altbaud; 483 upf_t flags = port->flags & UPF_SPD_MASK; 484 485 switch (flags) { 486 case UPF_SPD_HI: 487 altbaud = 57600; 488 break; 489 case UPF_SPD_VHI: 490 altbaud = 115200; 491 break; 492 case UPF_SPD_SHI: 493 altbaud = 230400; 494 break; 495 case UPF_SPD_WARP: 496 altbaud = 460800; 497 break; 498 default: 499 altbaud = 38400; 500 break; 501 } 502 503 for (try = 0; try < 2; try++) { 504 baud = tty_termios_baud_rate(termios); 505 506 /* 507 * The spd_hi, spd_vhi, spd_shi, spd_warp kludge... 508 * Die! Die! Die! 509 */ 510 if (try == 0 && baud == 38400) 511 baud = altbaud; 512 513 /* 514 * Special case: B0 rate. 515 */ 516 if (baud == 0) 517 return max(min, 9600); 518 519 if (baud >= min && baud <= max) 520 return baud; 521 522 /* 523 * If the range cannot be met then try again with 524 * the old baud rate if possible. 525 */ 526 termios->c_cflag &= ~CBAUD; 527 if (old) { 528 baud = tty_termios_baud_rate(old); 529 tty_termios_encode_baud_rate(termios, baud, baud); 530 old = NULL; 531 continue; 532 } 533 534 /* 535 * As a last resort, if the range cannot be met then clip to 536 * the nearest chip supported rate. 537 */ 538 if (baud <= min) 539 baud = min + 1; 540 else 541 baud = max - 1; 542 543 tty_termios_encode_baud_rate(termios, baud, baud); 544 } 545 546 /* Should never happen */ 547 WARN_ON(1); 548 return 0; 549 } 550 EXPORT_SYMBOL(uart_get_baud_rate); 551 552 /** 553 * uart_get_divisor - return uart clock divisor 554 * @port: uart_port structure describing the port 555 * @baud: desired baud rate 556 * 557 * Calculate the divisor (baud_base / baud) for the specified @baud, 558 * appropriately rounded. 559 * 560 * If 38400 baud and custom divisor is selected, return the custom divisor 561 * instead. 562 * 563 * Locking: caller dependent 564 */ 565 unsigned int 566 uart_get_divisor(struct uart_port *port, unsigned int baud) 567 { 568 unsigned int quot; 569 570 /* 571 * Old custom speed handling. 572 */ 573 if (baud == 38400 && (port->flags & UPF_SPD_MASK) == UPF_SPD_CUST) 574 quot = port->custom_divisor; 575 else 576 quot = DIV_ROUND_CLOSEST(port->uartclk, 16 * baud); 577 578 return quot; 579 } 580 EXPORT_SYMBOL(uart_get_divisor); 581 582 static int uart_put_char(struct tty_struct *tty, u8 c) 583 { 584 struct uart_state *state = tty->driver_data; 585 struct uart_port *port; 586 unsigned long flags; 587 int ret = 0; 588 589 port = uart_port_ref_lock(state, &flags); 590 if (!state->port.xmit_buf) { 591 uart_port_unlock_deref(port, flags); 592 return 0; 593 } 594 595 if (port) 596 ret = kfifo_put(&state->port.xmit_fifo, c); 597 uart_port_unlock_deref(port, flags); 598 return ret; 599 } 600 601 static void uart_flush_chars(struct tty_struct *tty) 602 { 603 uart_start(tty); 604 } 605 606 static ssize_t uart_write(struct tty_struct *tty, const u8 *buf, size_t count) 607 { 608 struct uart_state *state = tty->driver_data; 609 struct uart_port *port; 610 unsigned long flags; 611 int ret = 0; 612 613 /* 614 * This means you called this function _after_ the port was 615 * closed. No cookie for you. 616 */ 617 if (WARN_ON(!state)) 618 return -EL3HLT; 619 620 port = uart_port_ref_lock(state, &flags); 621 if (!state->port.xmit_buf) { 622 uart_port_unlock_deref(port, flags); 623 return 0; 624 } 625 626 if (port) 627 ret = kfifo_in(&state->port.xmit_fifo, buf, count); 628 629 __uart_start(state); 630 uart_port_unlock_deref(port, flags); 631 return ret; 632 } 633 634 static unsigned int uart_write_room(struct tty_struct *tty) 635 { 636 struct uart_state *state = tty->driver_data; 637 struct uart_port *port; 638 unsigned long flags; 639 unsigned int ret; 640 641 port = uart_port_ref_lock(state, &flags); 642 if (!state->port.xmit_buf) 643 ret = 0; 644 else 645 ret = kfifo_avail(&state->port.xmit_fifo); 646 uart_port_unlock_deref(port, flags); 647 return ret; 648 } 649 650 static unsigned int uart_chars_in_buffer(struct tty_struct *tty) 651 { 652 struct uart_state *state = tty->driver_data; 653 struct uart_port *port; 654 unsigned long flags; 655 unsigned int ret; 656 657 port = uart_port_ref_lock(state, &flags); 658 ret = kfifo_len(&state->port.xmit_fifo); 659 uart_port_unlock_deref(port, flags); 660 return ret; 661 } 662 663 static void uart_flush_buffer(struct tty_struct *tty) 664 { 665 struct uart_state *state = tty->driver_data; 666 struct uart_port *port; 667 unsigned long flags; 668 669 /* 670 * This means you called this function _after_ the port was 671 * closed. No cookie for you. 672 */ 673 if (WARN_ON(!state)) 674 return; 675 676 pr_debug("uart_flush_buffer(%d) called\n", tty->index); 677 678 port = uart_port_ref_lock(state, &flags); 679 if (!port) 680 return; 681 kfifo_reset(&state->port.xmit_fifo); 682 if (port->ops->flush_buffer) 683 port->ops->flush_buffer(port); 684 uart_port_unlock_deref(port, flags); 685 tty_port_tty_wakeup(&state->port); 686 } 687 688 /* 689 * This function performs low-level write of high-priority XON/XOFF 690 * character and accounting for it. 691 * 692 * Requires uart_port to implement .serial_out(). 693 */ 694 void uart_xchar_out(struct uart_port *uport, int offset) 695 { 696 serial_port_out(uport, offset, uport->x_char); 697 uport->icount.tx++; 698 uport->x_char = 0; 699 } 700 EXPORT_SYMBOL_GPL(uart_xchar_out); 701 702 /* 703 * This function is used to send a high-priority XON/XOFF character to 704 * the device 705 */ 706 static void uart_send_xchar(struct tty_struct *tty, u8 ch) 707 { 708 struct uart_state *state = tty->driver_data; 709 struct uart_port *port; 710 711 port = uart_port_ref(state); 712 if (!port) 713 return; 714 715 if (port->ops->send_xchar) 716 port->ops->send_xchar(port, ch); 717 else { 718 guard(uart_port_lock_irqsave)(port); 719 port->x_char = ch; 720 if (ch) 721 port->ops->start_tx(port); 722 } 723 uart_port_deref(port); 724 } 725 726 static void uart_throttle(struct tty_struct *tty) 727 { 728 struct uart_state *state = tty->driver_data; 729 upstat_t mask = UPSTAT_SYNC_FIFO; 730 struct uart_port *port; 731 732 port = uart_port_ref(state); 733 if (!port) 734 return; 735 736 if (I_IXOFF(tty)) 737 mask |= UPSTAT_AUTOXOFF; 738 if (C_CRTSCTS(tty)) 739 mask |= UPSTAT_AUTORTS; 740 741 if (port->status & mask) { 742 port->ops->throttle(port); 743 mask &= ~port->status; 744 } 745 746 if (mask & UPSTAT_AUTORTS) 747 uart_clear_mctrl(port, TIOCM_RTS); 748 749 if (mask & UPSTAT_AUTOXOFF) 750 uart_send_xchar(tty, STOP_CHAR(tty)); 751 752 uart_port_deref(port); 753 } 754 755 static void uart_unthrottle(struct tty_struct *tty) 756 { 757 struct uart_state *state = tty->driver_data; 758 upstat_t mask = UPSTAT_SYNC_FIFO; 759 struct uart_port *port; 760 761 port = uart_port_ref(state); 762 if (!port) 763 return; 764 765 if (I_IXOFF(tty)) 766 mask |= UPSTAT_AUTOXOFF; 767 if (C_CRTSCTS(tty)) 768 mask |= UPSTAT_AUTORTS; 769 770 if (port->status & mask) { 771 port->ops->unthrottle(port); 772 mask &= ~port->status; 773 } 774 775 if (mask & UPSTAT_AUTORTS) 776 uart_set_mctrl(port, TIOCM_RTS); 777 778 if (mask & UPSTAT_AUTOXOFF) 779 uart_send_xchar(tty, START_CHAR(tty)); 780 781 uart_port_deref(port); 782 } 783 784 static int uart_get_info(struct tty_port *port, struct serial_struct *retinfo) 785 { 786 struct uart_state *state = container_of(port, struct uart_state, port); 787 struct uart_port *uport; 788 789 /* Initialize structure in case we error out later to prevent any stack info leakage. */ 790 *retinfo = (struct serial_struct){}; 791 792 /* 793 * Ensure the state we copy is consistent and no hardware changes 794 * occur as we go 795 */ 796 guard(mutex)(&port->mutex); 797 uport = uart_port_check(state); 798 if (!uport) 799 return -ENODEV; 800 801 retinfo->type = uport->type; 802 retinfo->line = uport->line; 803 retinfo->port = uport->iobase; 804 if (HIGH_BITS_OFFSET) 805 retinfo->port_high = (long) uport->iobase >> HIGH_BITS_OFFSET; 806 retinfo->irq = uport->irq; 807 retinfo->flags = (__force int)uport->flags; 808 retinfo->xmit_fifo_size = uport->fifosize; 809 retinfo->baud_base = uport->uartclk / 16; 810 retinfo->close_delay = jiffies_to_msecs(port->close_delay) / 10; 811 retinfo->closing_wait = port->closing_wait == ASYNC_CLOSING_WAIT_NONE ? 812 ASYNC_CLOSING_WAIT_NONE : 813 jiffies_to_msecs(port->closing_wait) / 10; 814 retinfo->custom_divisor = uport->custom_divisor; 815 retinfo->hub6 = uport->hub6; 816 retinfo->io_type = uport->iotype; 817 retinfo->iomem_reg_shift = uport->regshift; 818 retinfo->iomem_base = (void *)(unsigned long)uport->mapbase; 819 820 return 0; 821 } 822 823 static int uart_get_info_user(struct tty_struct *tty, 824 struct serial_struct *ss) 825 { 826 struct uart_state *state = tty->driver_data; 827 struct tty_port *port = &state->port; 828 829 return uart_get_info(port, ss) < 0 ? -EIO : 0; 830 } 831 832 static int uart_change_port(struct uart_port *uport, 833 const struct serial_struct *new_info, 834 unsigned long new_port) 835 { 836 unsigned long old_iobase, old_mapbase; 837 unsigned int old_type, old_iotype, old_hub6, old_shift; 838 int retval; 839 840 old_iobase = uport->iobase; 841 old_mapbase = uport->mapbase; 842 old_type = uport->type; 843 old_hub6 = uport->hub6; 844 old_iotype = uport->iotype; 845 old_shift = uport->regshift; 846 847 if (old_type != PORT_UNKNOWN && uport->ops->release_port) 848 uport->ops->release_port(uport); 849 850 uport->iobase = new_port; 851 uport->type = new_info->type; 852 uport->hub6 = new_info->hub6; 853 uport->iotype = new_info->io_type; 854 uport->regshift = new_info->iomem_reg_shift; 855 uport->mapbase = (unsigned long)new_info->iomem_base; 856 857 if (uport->type == PORT_UNKNOWN || !uport->ops->request_port) 858 return 0; 859 860 retval = uport->ops->request_port(uport); 861 if (retval == 0) 862 return 0; /* succeeded => done */ 863 864 /* 865 * If we fail to request resources for the new port, try to restore the 866 * old settings. 867 */ 868 uport->iobase = old_iobase; 869 uport->type = old_type; 870 uport->hub6 = old_hub6; 871 uport->iotype = old_iotype; 872 uport->regshift = old_shift; 873 uport->mapbase = old_mapbase; 874 875 if (old_type == PORT_UNKNOWN) 876 return retval; 877 878 retval = uport->ops->request_port(uport); 879 /* If we failed to restore the old settings, we fail like this. */ 880 if (retval) 881 uport->type = PORT_UNKNOWN; 882 883 /* We failed anyway. */ 884 return -EBUSY; 885 } 886 887 static int uart_set_info(struct tty_struct *tty, struct tty_port *port, 888 struct uart_state *state, 889 struct serial_struct *new_info) 890 { 891 struct uart_port *uport = uart_port_check(state); 892 unsigned long new_port; 893 unsigned int old_custom_divisor, close_delay, closing_wait; 894 bool change_irq, change_port; 895 upf_t old_flags, new_flags; 896 int retval; 897 898 if (!uport) 899 return -EIO; 900 901 new_port = new_info->port; 902 if (HIGH_BITS_OFFSET) 903 new_port += (unsigned long) new_info->port_high << HIGH_BITS_OFFSET; 904 905 new_info->irq = irq_canonicalize(new_info->irq); 906 close_delay = msecs_to_jiffies(new_info->close_delay * 10); 907 closing_wait = new_info->closing_wait == ASYNC_CLOSING_WAIT_NONE ? 908 ASYNC_CLOSING_WAIT_NONE : 909 msecs_to_jiffies(new_info->closing_wait * 10); 910 911 912 change_irq = !(uport->flags & UPF_FIXED_PORT) 913 && new_info->irq != uport->irq; 914 915 /* 916 * Since changing the 'type' of the port changes its resource 917 * allocations, we should treat type changes the same as 918 * IO port changes. 919 */ 920 change_port = !(uport->flags & UPF_FIXED_PORT) 921 && (new_port != uport->iobase || 922 (unsigned long)new_info->iomem_base != uport->mapbase || 923 new_info->hub6 != uport->hub6 || 924 new_info->io_type != uport->iotype || 925 new_info->iomem_reg_shift != uport->regshift || 926 new_info->type != uport->type); 927 928 old_flags = uport->flags; 929 new_flags = (__force upf_t)new_info->flags; 930 old_custom_divisor = uport->custom_divisor; 931 932 if (!(uport->flags & UPF_FIXED_PORT)) { 933 unsigned int uartclk = new_info->baud_base * 16; 934 /* check needs to be done here before other settings made */ 935 if (uartclk == 0) 936 return -EINVAL; 937 } 938 if (!capable(CAP_SYS_ADMIN)) { 939 if (change_irq || change_port || 940 (new_info->baud_base != uport->uartclk / 16) || 941 (close_delay != port->close_delay) || 942 (closing_wait != port->closing_wait) || 943 (new_info->xmit_fifo_size && 944 new_info->xmit_fifo_size != uport->fifosize) || 945 (((new_flags ^ old_flags) & ~UPF_USR_MASK) != 0)) 946 return -EPERM; 947 uport->flags = ((uport->flags & ~UPF_USR_MASK) | 948 (new_flags & UPF_USR_MASK)); 949 uport->custom_divisor = new_info->custom_divisor; 950 goto check_and_exit; 951 } 952 953 if (change_irq || change_port) { 954 retval = security_locked_down(LOCKDOWN_TIOCSSERIAL); 955 if (retval) 956 return retval; 957 } 958 959 /* Ask the low level driver to verify the settings. */ 960 if (uport->ops->verify_port) { 961 retval = uport->ops->verify_port(uport, new_info); 962 if (retval) 963 return retval; 964 } 965 966 if ((new_info->irq >= irq_get_nr_irqs()) || (new_info->irq < 0) || 967 (new_info->baud_base < 9600)) 968 return -EINVAL; 969 970 if (change_port || change_irq) { 971 /* Make sure that we are the sole user of this port. */ 972 if (tty_port_users(port) > 1) 973 return -EBUSY; 974 975 /* 976 * We need to shutdown the serial port at the old 977 * port/type/irq combination. 978 */ 979 uart_shutdown(tty, state); 980 } 981 982 if (change_port) { 983 retval = uart_change_port(uport, new_info, new_port); 984 if (retval) 985 return retval; 986 } 987 988 if (change_irq) 989 uport->irq = new_info->irq; 990 if (!(uport->flags & UPF_FIXED_PORT)) 991 uport->uartclk = new_info->baud_base * 16; 992 uport->flags = (uport->flags & ~UPF_CHANGE_MASK) | 993 (new_flags & UPF_CHANGE_MASK); 994 uport->custom_divisor = new_info->custom_divisor; 995 port->close_delay = close_delay; 996 port->closing_wait = closing_wait; 997 if (new_info->xmit_fifo_size) 998 uport->fifosize = new_info->xmit_fifo_size; 999 1000 check_and_exit: 1001 if (uport->type == PORT_UNKNOWN) 1002 return 0; 1003 1004 if (tty_port_initialized(port)) { 1005 if (((old_flags ^ uport->flags) & UPF_SPD_MASK) || 1006 old_custom_divisor != uport->custom_divisor) { 1007 /* 1008 * If they're setting up a custom divisor or speed, 1009 * instead of clearing it, then bitch about it. 1010 */ 1011 if (uport->flags & UPF_SPD_MASK) { 1012 dev_notice_ratelimited(uport->dev, 1013 "%s sets custom speed on %s. This is deprecated.\n", 1014 current->comm, 1015 tty_name(port->tty)); 1016 } 1017 uart_change_line_settings(tty, state, NULL); 1018 } 1019 1020 return 0; 1021 } 1022 1023 retval = uart_startup(tty, state, true); 1024 if (retval < 0) 1025 return retval; 1026 if (retval == 0) 1027 tty_port_set_initialized(port, true); 1028 1029 return 0; 1030 } 1031 1032 static int uart_set_info_user(struct tty_struct *tty, struct serial_struct *ss) 1033 { 1034 struct uart_state *state = tty->driver_data; 1035 struct tty_port *port = &state->port; 1036 1037 guard(rwsem_write)(&tty->termios_rwsem); 1038 /* 1039 * This semaphore protects port->count. It is also 1040 * very useful to prevent opens. Also, take the 1041 * port configuration semaphore to make sure that a 1042 * module insertion/removal doesn't change anything 1043 * under us. 1044 */ 1045 guard(mutex)(&port->mutex); 1046 return uart_set_info(tty, port, state, ss); 1047 } 1048 1049 /** 1050 * uart_get_lsr_info - get line status register info 1051 * @tty: tty associated with the UART 1052 * @state: UART being queried 1053 * @value: returned modem value 1054 */ 1055 static int uart_get_lsr_info(struct tty_struct *tty, 1056 struct uart_state *state, unsigned int __user *value) 1057 { 1058 struct uart_port *uport = uart_port_check(state); 1059 unsigned int result; 1060 1061 result = uport->ops->tx_empty(uport); 1062 1063 /* 1064 * If we're about to load something into the transmit 1065 * register, we'll pretend the transmitter isn't empty to 1066 * avoid a race condition (depending on when the transmit 1067 * interrupt happens). 1068 */ 1069 if (uport->x_char || 1070 (!kfifo_is_empty(&state->port.xmit_fifo) && 1071 !uart_tx_stopped(uport))) 1072 result &= ~TIOCSER_TEMT; 1073 1074 return put_user(result, value); 1075 } 1076 1077 static int uart_tiocmget(struct tty_struct *tty) 1078 { 1079 struct uart_state *state = tty->driver_data; 1080 struct tty_port *port = &state->port; 1081 struct uart_port *uport; 1082 1083 guard(mutex)(&port->mutex); 1084 1085 uport = uart_port_check(state); 1086 if (!uport || tty_io_error(tty)) 1087 return -EIO; 1088 1089 guard(uart_port_lock_irq)(uport); 1090 1091 return uport->mctrl | uport->ops->get_mctrl(uport); 1092 } 1093 1094 static int 1095 uart_tiocmset(struct tty_struct *tty, unsigned int set, unsigned int clear) 1096 { 1097 struct uart_state *state = tty->driver_data; 1098 struct tty_port *port = &state->port; 1099 struct uart_port *uport; 1100 1101 guard(mutex)(&port->mutex); 1102 1103 uport = uart_port_check(state); 1104 if (!uport || tty_io_error(tty)) 1105 return -EIO; 1106 1107 uart_update_mctrl(uport, set, clear); 1108 1109 return 0; 1110 } 1111 1112 static int uart_break_ctl(struct tty_struct *tty, int break_state) 1113 { 1114 struct uart_state *state = tty->driver_data; 1115 struct tty_port *port = &state->port; 1116 struct uart_port *uport; 1117 1118 guard(mutex)(&port->mutex); 1119 1120 uport = uart_port_check(state); 1121 if (!uport) 1122 return -EIO; 1123 1124 if (uport->type != PORT_UNKNOWN && uport->ops->break_ctl) 1125 uport->ops->break_ctl(uport, break_state); 1126 1127 return 0; 1128 } 1129 1130 static int uart_do_autoconfig(struct tty_struct *tty, struct uart_state *state) 1131 { 1132 struct tty_port *port = &state->port; 1133 struct uart_port *uport; 1134 int flags, ret; 1135 1136 if (!capable(CAP_SYS_ADMIN)) 1137 return -EPERM; 1138 1139 /* 1140 * Take the per-port semaphore. This prevents count from 1141 * changing, and hence any extra opens of the port while 1142 * we're auto-configuring. 1143 */ 1144 scoped_cond_guard(mutex_intr, return -ERESTARTSYS, &port->mutex) { 1145 uport = uart_port_check(state); 1146 if (!uport) 1147 return -EIO; 1148 1149 if (tty_port_users(port) != 1) 1150 return -EBUSY; 1151 1152 uart_shutdown(tty, state); 1153 1154 /* 1155 * If we already have a port type configured, 1156 * we must release its resources. 1157 */ 1158 if (uport->type != PORT_UNKNOWN && uport->ops->release_port) 1159 uport->ops->release_port(uport); 1160 1161 flags = UART_CONFIG_TYPE; 1162 if (uport->flags & UPF_AUTO_IRQ) 1163 flags |= UART_CONFIG_IRQ; 1164 1165 /* 1166 * This will claim the ports resources if 1167 * a port is found. 1168 */ 1169 uport->ops->config_port(uport, flags); 1170 1171 ret = uart_startup(tty, state, true); 1172 if (ret < 0) 1173 return ret; 1174 if (ret > 0) 1175 return 0; 1176 1177 tty_port_set_initialized(port, true); 1178 } 1179 1180 return 0; 1181 } 1182 1183 static void uart_enable_ms(struct uart_port *uport) 1184 { 1185 /* 1186 * Force modem status interrupts on 1187 */ 1188 if (uport->ops->enable_ms) 1189 uport->ops->enable_ms(uport); 1190 } 1191 1192 /* 1193 * Wait for any of the 4 modem inputs (DCD,RI,DSR,CTS) to change 1194 * - mask passed in arg for lines of interest 1195 * (use |'ed TIOCM_RNG/DSR/CD/CTS for masking) 1196 * Caller should use TIOCGICOUNT to see which one it was 1197 * 1198 * FIXME: This wants extracting into a common all driver implementation 1199 * of TIOCMWAIT using tty_port. 1200 */ 1201 static int uart_wait_modem_status(struct uart_state *state, unsigned long arg) 1202 { 1203 struct uart_port *uport; 1204 struct tty_port *port = &state->port; 1205 DECLARE_WAITQUEUE(wait, current); 1206 struct uart_icount cprev, cnow; 1207 int ret; 1208 1209 /* 1210 * note the counters on entry 1211 */ 1212 uport = uart_port_ref(state); 1213 if (!uport) 1214 return -EIO; 1215 scoped_guard(uart_port_lock_irq, uport) { 1216 memcpy(&cprev, &uport->icount, sizeof(struct uart_icount)); 1217 uart_enable_ms(uport); 1218 } 1219 1220 add_wait_queue(&port->delta_msr_wait, &wait); 1221 for (;;) { 1222 scoped_guard(uart_port_lock_irq, uport) 1223 memcpy(&cnow, &uport->icount, sizeof(struct uart_icount)); 1224 1225 set_current_state(TASK_INTERRUPTIBLE); 1226 1227 if (((arg & TIOCM_RNG) && (cnow.rng != cprev.rng)) || 1228 ((arg & TIOCM_DSR) && (cnow.dsr != cprev.dsr)) || 1229 ((arg & TIOCM_CD) && (cnow.dcd != cprev.dcd)) || 1230 ((arg & TIOCM_CTS) && (cnow.cts != cprev.cts))) { 1231 ret = 0; 1232 break; 1233 } 1234 1235 schedule(); 1236 1237 /* see if a signal did it */ 1238 if (signal_pending(current)) { 1239 ret = -ERESTARTSYS; 1240 break; 1241 } 1242 1243 cprev = cnow; 1244 } 1245 __set_current_state(TASK_RUNNING); 1246 remove_wait_queue(&port->delta_msr_wait, &wait); 1247 uart_port_deref(uport); 1248 1249 return ret; 1250 } 1251 1252 /* 1253 * Get counter of input serial line interrupts (DCD,RI,DSR,CTS) 1254 * Return: write counters to the user passed counter struct 1255 * NB: both 1->0 and 0->1 transitions are counted except for 1256 * RI where only 0->1 is counted. 1257 */ 1258 static int uart_get_icount(struct tty_struct *tty, 1259 struct serial_icounter_struct *icount) 1260 { 1261 struct uart_state *state = tty->driver_data; 1262 struct uart_icount cnow; 1263 struct uart_port *uport; 1264 unsigned long flags; 1265 1266 uport = uart_port_ref_lock(state, &flags); 1267 if (!uport) 1268 return -EIO; 1269 memcpy(&cnow, &uport->icount, sizeof(struct uart_icount)); 1270 uart_port_unlock_deref(uport, flags); 1271 1272 icount->cts = cnow.cts; 1273 icount->dsr = cnow.dsr; 1274 icount->rng = cnow.rng; 1275 icount->dcd = cnow.dcd; 1276 icount->rx = cnow.rx; 1277 icount->tx = cnow.tx; 1278 icount->frame = cnow.frame; 1279 icount->overrun = cnow.overrun; 1280 icount->parity = cnow.parity; 1281 icount->brk = cnow.brk; 1282 icount->buf_overrun = cnow.buf_overrun; 1283 1284 return 0; 1285 } 1286 1287 #define SER_RS485_LEGACY_FLAGS (SER_RS485_ENABLED | SER_RS485_RTS_ON_SEND | \ 1288 SER_RS485_RTS_AFTER_SEND | SER_RS485_RX_DURING_TX | \ 1289 SER_RS485_TERMINATE_BUS) 1290 1291 static int uart_check_rs485_flags(struct uart_port *port, struct serial_rs485 *rs485) 1292 { 1293 u32 flags = rs485->flags; 1294 1295 /* Don't return -EINVAL for unsupported legacy flags */ 1296 flags &= ~SER_RS485_LEGACY_FLAGS; 1297 1298 /* 1299 * For any bit outside of the legacy ones that is not supported by 1300 * the driver, return -EINVAL. 1301 */ 1302 if (flags & ~port->rs485_supported.flags) 1303 return -EINVAL; 1304 1305 /* Asking for address w/o addressing mode? */ 1306 if (!(rs485->flags & SER_RS485_ADDRB) && 1307 (rs485->flags & (SER_RS485_ADDR_RECV|SER_RS485_ADDR_DEST))) 1308 return -EINVAL; 1309 1310 /* Address given but not enabled? */ 1311 if (!(rs485->flags & SER_RS485_ADDR_RECV) && rs485->addr_recv) 1312 return -EINVAL; 1313 if (!(rs485->flags & SER_RS485_ADDR_DEST) && rs485->addr_dest) 1314 return -EINVAL; 1315 1316 return 0; 1317 } 1318 1319 static void uart_sanitize_serial_rs485_delays(struct uart_port *port, 1320 struct serial_rs485 *rs485) 1321 { 1322 if (!port->rs485_supported.delay_rts_before_send) { 1323 if (rs485->delay_rts_before_send) { 1324 dev_warn_ratelimited(port->dev, 1325 "%s (%u): RTS delay before sending not supported\n", 1326 port->name, port->line); 1327 } 1328 rs485->delay_rts_before_send = 0; 1329 } else if (rs485->delay_rts_before_send > RS485_MAX_RTS_DELAY) { 1330 rs485->delay_rts_before_send = RS485_MAX_RTS_DELAY; 1331 dev_warn_ratelimited(port->dev, 1332 "%s (%u): RTS delay before sending clamped to %u ms\n", 1333 port->name, port->line, rs485->delay_rts_before_send); 1334 } 1335 1336 if (!port->rs485_supported.delay_rts_after_send) { 1337 if (rs485->delay_rts_after_send) { 1338 dev_warn_ratelimited(port->dev, 1339 "%s (%u): RTS delay after sending not supported\n", 1340 port->name, port->line); 1341 } 1342 rs485->delay_rts_after_send = 0; 1343 } else if (rs485->delay_rts_after_send > RS485_MAX_RTS_DELAY) { 1344 rs485->delay_rts_after_send = RS485_MAX_RTS_DELAY; 1345 dev_warn_ratelimited(port->dev, 1346 "%s (%u): RTS delay after sending clamped to %u ms\n", 1347 port->name, port->line, rs485->delay_rts_after_send); 1348 } 1349 } 1350 1351 static void uart_sanitize_serial_rs485(struct uart_port *port, struct serial_rs485 *rs485) 1352 { 1353 u32 supported_flags = port->rs485_supported.flags; 1354 1355 if (!(rs485->flags & SER_RS485_ENABLED)) { 1356 memset(rs485, 0, sizeof(*rs485)); 1357 return; 1358 } 1359 1360 /* Clear other RS485 flags but SER_RS485_TERMINATE_BUS and return if enabling RS422 */ 1361 if (rs485->flags & SER_RS485_MODE_RS422) { 1362 rs485->flags &= (SER_RS485_ENABLED | SER_RS485_MODE_RS422 | SER_RS485_TERMINATE_BUS); 1363 return; 1364 } 1365 1366 rs485->flags &= supported_flags; 1367 1368 /* Pick sane settings if the user hasn't */ 1369 if (!(rs485->flags & SER_RS485_RTS_ON_SEND) == 1370 !(rs485->flags & SER_RS485_RTS_AFTER_SEND)) { 1371 if (supported_flags & SER_RS485_RTS_ON_SEND) { 1372 rs485->flags |= SER_RS485_RTS_ON_SEND; 1373 rs485->flags &= ~SER_RS485_RTS_AFTER_SEND; 1374 1375 dev_warn_ratelimited(port->dev, 1376 "%s (%u): invalid RTS setting, using RTS_ON_SEND instead\n", 1377 port->name, port->line); 1378 } else { 1379 rs485->flags |= SER_RS485_RTS_AFTER_SEND; 1380 rs485->flags &= ~SER_RS485_RTS_ON_SEND; 1381 1382 dev_warn_ratelimited(port->dev, 1383 "%s (%u): invalid RTS setting, using RTS_AFTER_SEND instead\n", 1384 port->name, port->line); 1385 } 1386 } 1387 1388 uart_sanitize_serial_rs485_delays(port, rs485); 1389 1390 /* Return clean padding area to userspace */ 1391 memset(rs485->padding0, 0, sizeof(rs485->padding0)); 1392 memset(rs485->padding1, 0, sizeof(rs485->padding1)); 1393 } 1394 1395 static void uart_set_rs485_termination(struct uart_port *port, 1396 const struct serial_rs485 *rs485) 1397 { 1398 if (!(rs485->flags & SER_RS485_ENABLED)) 1399 return; 1400 1401 gpiod_set_value_cansleep(port->rs485_term_gpio, 1402 !!(rs485->flags & SER_RS485_TERMINATE_BUS)); 1403 } 1404 1405 static void uart_set_rs485_rx_during_tx(struct uart_port *port, 1406 const struct serial_rs485 *rs485) 1407 { 1408 if (!(rs485->flags & SER_RS485_ENABLED)) 1409 return; 1410 1411 gpiod_set_value_cansleep(port->rs485_rx_during_tx_gpio, 1412 !!(rs485->flags & SER_RS485_RX_DURING_TX)); 1413 } 1414 1415 static int uart_rs485_config(struct uart_port *port) 1416 { 1417 struct serial_rs485 *rs485 = &port->rs485; 1418 int ret; 1419 1420 if (!(rs485->flags & SER_RS485_ENABLED)) 1421 return 0; 1422 1423 uart_sanitize_serial_rs485(port, rs485); 1424 uart_set_rs485_termination(port, rs485); 1425 uart_set_rs485_rx_during_tx(port, rs485); 1426 1427 scoped_guard(uart_port_lock_irqsave, port) 1428 ret = port->rs485_config(port, NULL, rs485); 1429 if (ret) { 1430 memset(rs485, 0, sizeof(*rs485)); 1431 /* unset GPIOs */ 1432 gpiod_set_value_cansleep(port->rs485_term_gpio, 0); 1433 gpiod_set_value_cansleep(port->rs485_rx_during_tx_gpio, 0); 1434 } 1435 1436 return ret; 1437 } 1438 1439 static int uart_get_rs485_config(struct uart_port *port, 1440 struct serial_rs485 __user *rs485) 1441 { 1442 struct serial_rs485 aux; 1443 1444 scoped_guard(uart_port_lock_irqsave, port) 1445 aux = port->rs485; 1446 1447 if (copy_to_user(rs485, &aux, sizeof(aux))) 1448 return -EFAULT; 1449 1450 return 0; 1451 } 1452 1453 static int uart_set_rs485_config(struct tty_struct *tty, struct uart_port *port, 1454 struct serial_rs485 __user *rs485_user) 1455 { 1456 struct serial_rs485 rs485; 1457 int ret; 1458 1459 if (!(port->rs485_supported.flags & SER_RS485_ENABLED)) 1460 return -ENOTTY; 1461 1462 if (copy_from_user(&rs485, rs485_user, sizeof(*rs485_user))) 1463 return -EFAULT; 1464 1465 ret = uart_check_rs485_flags(port, &rs485); 1466 if (ret) 1467 return ret; 1468 uart_sanitize_serial_rs485(port, &rs485); 1469 uart_set_rs485_termination(port, &rs485); 1470 uart_set_rs485_rx_during_tx(port, &rs485); 1471 1472 scoped_guard(uart_port_lock_irqsave, port) { 1473 ret = port->rs485_config(port, &tty->termios, &rs485); 1474 if (!ret) { 1475 port->rs485 = rs485; 1476 1477 /* Reset RTS and other mctrl lines when disabling RS485 */ 1478 if (!(rs485.flags & SER_RS485_ENABLED)) 1479 port->ops->set_mctrl(port, port->mctrl); 1480 } 1481 } 1482 if (ret) { 1483 /* restore old GPIO settings */ 1484 gpiod_set_value_cansleep(port->rs485_term_gpio, 1485 !!(port->rs485.flags & SER_RS485_TERMINATE_BUS)); 1486 gpiod_set_value_cansleep(port->rs485_rx_during_tx_gpio, 1487 !!(port->rs485.flags & SER_RS485_RX_DURING_TX)); 1488 return ret; 1489 } 1490 1491 if (copy_to_user(rs485_user, &port->rs485, sizeof(port->rs485))) 1492 return -EFAULT; 1493 1494 return 0; 1495 } 1496 1497 static int uart_get_iso7816_config(struct uart_port *port, 1498 struct serial_iso7816 __user *iso7816) 1499 { 1500 struct serial_iso7816 aux; 1501 1502 if (!port->iso7816_config) 1503 return -ENOTTY; 1504 1505 scoped_guard(uart_port_lock_irqsave, port) 1506 aux = port->iso7816; 1507 1508 if (copy_to_user(iso7816, &aux, sizeof(aux))) 1509 return -EFAULT; 1510 1511 return 0; 1512 } 1513 1514 static int uart_set_iso7816_config(struct uart_port *port, 1515 struct serial_iso7816 __user *iso7816_user) 1516 { 1517 struct serial_iso7816 iso7816; 1518 int i; 1519 1520 if (!port->iso7816_config) 1521 return -ENOTTY; 1522 1523 if (copy_from_user(&iso7816, iso7816_user, sizeof(*iso7816_user))) 1524 return -EFAULT; 1525 1526 /* 1527 * There are 5 words reserved for future use. Check that userspace 1528 * doesn't put stuff in there to prevent breakages in the future. 1529 */ 1530 for (i = 0; i < ARRAY_SIZE(iso7816.reserved); i++) 1531 if (iso7816.reserved[i]) 1532 return -EINVAL; 1533 1534 scoped_guard(uart_port_lock_irqsave, port) { 1535 int ret = port->iso7816_config(port, &iso7816); 1536 if (ret) 1537 return ret; 1538 } 1539 1540 if (copy_to_user(iso7816_user, &port->iso7816, sizeof(port->iso7816))) 1541 return -EFAULT; 1542 1543 return 0; 1544 } 1545 1546 /* 1547 * Called via sys_ioctl. We can use spin_lock_irq() here. 1548 */ 1549 static int 1550 uart_ioctl(struct tty_struct *tty, unsigned int cmd, unsigned long arg) 1551 { 1552 struct uart_state *state = tty->driver_data; 1553 struct tty_port *port = &state->port; 1554 struct uart_port *uport; 1555 void __user *uarg = (void __user *)arg; 1556 int ret = -ENOIOCTLCMD; 1557 1558 /* This ioctl doesn't rely on the hardware to be present. */ 1559 if (cmd == TIOCSERCONFIG) { 1560 guard(rwsem_write)(&tty->termios_rwsem); 1561 return uart_do_autoconfig(tty, state); 1562 } 1563 1564 if (tty_io_error(tty)) 1565 return -EIO; 1566 1567 /* This should only be used when the hardware is present. */ 1568 if (cmd == TIOCMIWAIT) 1569 return uart_wait_modem_status(state, arg); 1570 1571 /* rs485_config requires more locking than others */ 1572 if (cmd == TIOCSRS485) 1573 down_write(&tty->termios_rwsem); 1574 1575 scoped_guard(mutex, &port->mutex) { 1576 uport = uart_port_check(state); 1577 1578 if (!uport || tty_io_error(tty)) { 1579 ret = -EIO; 1580 break; 1581 } 1582 1583 /* 1584 * All these rely on hardware being present and need to be 1585 * protected against the tty being hung up. 1586 */ 1587 1588 switch (cmd) { 1589 case TIOCSERGETLSR: /* Get line status register */ 1590 ret = uart_get_lsr_info(tty, state, uarg); 1591 break; 1592 1593 case TIOCGRS485: 1594 ret = uart_get_rs485_config(uport, uarg); 1595 break; 1596 1597 case TIOCSRS485: 1598 ret = uart_set_rs485_config(tty, uport, uarg); 1599 break; 1600 1601 case TIOCSISO7816: 1602 ret = uart_set_iso7816_config(state->uart_port, uarg); 1603 break; 1604 1605 case TIOCGISO7816: 1606 ret = uart_get_iso7816_config(state->uart_port, uarg); 1607 break; 1608 default: 1609 if (uport->ops->ioctl) 1610 ret = uport->ops->ioctl(uport, cmd, arg); 1611 break; 1612 } 1613 } 1614 1615 if (cmd == TIOCSRS485) 1616 up_write(&tty->termios_rwsem); 1617 1618 return ret; 1619 } 1620 1621 static void uart_set_ldisc(struct tty_struct *tty) 1622 { 1623 struct uart_state *state = tty->driver_data; 1624 struct uart_port *uport; 1625 struct tty_port *port = &state->port; 1626 1627 if (!tty_port_initialized(port)) 1628 return; 1629 1630 guard(mutex)(&state->port.mutex); 1631 uport = uart_port_check(state); 1632 if (uport && uport->ops->set_ldisc) 1633 uport->ops->set_ldisc(uport, &tty->termios); 1634 } 1635 1636 static void uart_set_termios(struct tty_struct *tty, 1637 const struct ktermios *old_termios) 1638 { 1639 struct uart_state *state = tty->driver_data; 1640 struct uart_port *uport; 1641 unsigned int cflag = tty->termios.c_cflag; 1642 unsigned int iflag_mask = IGNBRK|BRKINT|IGNPAR|PARMRK|INPCK; 1643 bool sw_changed = false; 1644 1645 guard(mutex)(&state->port.mutex); 1646 1647 uport = uart_port_check(state); 1648 if (!uport) 1649 return; 1650 1651 /* 1652 * Drivers doing software flow control also need to know 1653 * about changes to these input settings. 1654 */ 1655 if (uport->flags & UPF_SOFT_FLOW) { 1656 iflag_mask |= IXANY|IXON|IXOFF; 1657 sw_changed = 1658 tty->termios.c_cc[VSTART] != old_termios->c_cc[VSTART] || 1659 tty->termios.c_cc[VSTOP] != old_termios->c_cc[VSTOP]; 1660 } 1661 1662 /* 1663 * These are the bits that are used to setup various 1664 * flags in the low level driver. We can ignore the Bfoo 1665 * bits in c_cflag; c_[io]speed will always be set 1666 * appropriately by set_termios() in tty_ioctl.c 1667 */ 1668 if ((cflag ^ old_termios->c_cflag) == 0 && 1669 tty->termios.c_ospeed == old_termios->c_ospeed && 1670 tty->termios.c_ispeed == old_termios->c_ispeed && 1671 ((tty->termios.c_iflag ^ old_termios->c_iflag) & iflag_mask) == 0 && 1672 !sw_changed) 1673 return; 1674 1675 uart_change_line_settings(tty, state, old_termios); 1676 /* reload cflag from termios; port driver may have overridden flags */ 1677 cflag = tty->termios.c_cflag; 1678 1679 /* Handle transition to B0 status */ 1680 if (((old_termios->c_cflag & CBAUD) != B0) && ((cflag & CBAUD) == B0)) 1681 uart_clear_mctrl(uport, TIOCM_RTS | TIOCM_DTR); 1682 /* Handle transition away from B0 status */ 1683 else if (((old_termios->c_cflag & CBAUD) == B0) && ((cflag & CBAUD) != B0)) { 1684 unsigned int mask = TIOCM_DTR; 1685 1686 if (!(cflag & CRTSCTS) || !tty_throttled(tty)) 1687 mask |= TIOCM_RTS; 1688 uart_set_mctrl(uport, mask); 1689 } 1690 } 1691 1692 /* 1693 * Calls to uart_close() are serialised via the tty_lock in 1694 * drivers/tty/tty_io.c:tty_release() 1695 * drivers/tty/tty_io.c:do_tty_hangup() 1696 */ 1697 static void uart_close(struct tty_struct *tty, struct file *filp) 1698 { 1699 struct uart_state *state = tty->driver_data; 1700 1701 if (!state) { 1702 struct uart_driver *drv = tty->driver->driver_state; 1703 struct tty_port *port; 1704 1705 state = drv->state + tty->index; 1706 port = &state->port; 1707 guard(spinlock_irq)(&port->lock); 1708 --port->count; 1709 return; 1710 } 1711 1712 pr_debug("uart_close(%d) called\n", tty->index); 1713 1714 tty_port_close(tty->port, tty, filp); 1715 } 1716 1717 static void uart_tty_port_shutdown(struct tty_port *port) 1718 { 1719 struct uart_state *state = container_of(port, struct uart_state, port); 1720 struct uart_port *uport = uart_port_check(state); 1721 1722 /* 1723 * At this point, we stop accepting input. To do this, we 1724 * disable the receive line status interrupts. 1725 */ 1726 if (WARN(!uport, "detached port still initialized!\n")) 1727 return; 1728 1729 scoped_guard(uart_port_lock_irq, uport) 1730 uport->ops->stop_rx(uport); 1731 1732 serial_base_port_shutdown(uport); 1733 uart_port_shutdown(port); 1734 1735 /* 1736 * It's possible for shutdown to be called after suspend if we get 1737 * a DCD drop (hangup) at just the right time. Clear suspended bit so 1738 * we don't try to resume a port that has been shutdown. 1739 */ 1740 tty_port_set_suspended(port, false); 1741 1742 uart_free_xmit_buf(port); 1743 1744 uart_change_pm(state, UART_PM_STATE_OFF); 1745 } 1746 1747 static void uart_wait_until_sent(struct tty_struct *tty, int timeout) 1748 { 1749 struct uart_state *state = tty->driver_data; 1750 struct uart_port *port; 1751 unsigned long char_time, expire, fifo_timeout; 1752 1753 port = uart_port_ref(state); 1754 if (!port) 1755 return; 1756 1757 if (port->type == PORT_UNKNOWN || port->fifosize == 0) { 1758 uart_port_deref(port); 1759 return; 1760 } 1761 1762 /* 1763 * Set the check interval to be 1/5 of the estimated time to 1764 * send a single character, and make it at least 1. The check 1765 * interval should also be less than the timeout. 1766 * 1767 * Note: we have to use pretty tight timings here to satisfy 1768 * the NIST-PCTS. 1769 */ 1770 char_time = max(nsecs_to_jiffies(port->frame_time / 5), 1UL); 1771 1772 if (timeout && timeout < char_time) 1773 char_time = timeout; 1774 1775 if (!uart_cts_enabled(port)) { 1776 /* 1777 * If the transmitter hasn't cleared in twice the approximate 1778 * amount of time to send the entire FIFO, it probably won't 1779 * ever clear. This assumes the UART isn't doing flow 1780 * control, which is currently the case. Hence, if it ever 1781 * takes longer than FIFO timeout, this is probably due to a 1782 * UART bug of some kind. So, we clamp the timeout parameter at 1783 * 2 * FIFO timeout. 1784 */ 1785 fifo_timeout = uart_fifo_timeout(port); 1786 if (timeout == 0 || timeout > 2 * fifo_timeout) 1787 timeout = 2 * fifo_timeout; 1788 } 1789 1790 expire = jiffies + timeout; 1791 1792 pr_debug("uart_wait_until_sent(%u), jiffies=%lu, expire=%lu...\n", 1793 port->line, jiffies, expire); 1794 1795 /* 1796 * Check whether the transmitter is empty every 'char_time'. 1797 * 'timeout' / 'expire' give us the maximum amount of time 1798 * we wait. 1799 */ 1800 while (!port->ops->tx_empty(port)) { 1801 msleep_interruptible(jiffies_to_msecs(char_time)); 1802 if (signal_pending(current)) 1803 break; 1804 if (timeout && time_after(jiffies, expire)) 1805 break; 1806 } 1807 uart_port_deref(port); 1808 } 1809 1810 /* 1811 * Calls to uart_hangup() are serialised by the tty_lock in 1812 * drivers/tty/tty_io.c:do_tty_hangup() 1813 * This runs from a workqueue and can sleep for a _short_ time only. 1814 */ 1815 static void uart_hangup(struct tty_struct *tty) 1816 { 1817 struct uart_state *state = tty->driver_data; 1818 struct tty_port *port = &state->port; 1819 struct uart_port *uport; 1820 1821 pr_debug("uart_hangup(%d)\n", tty->index); 1822 1823 guard(mutex)(&port->mutex); 1824 uport = uart_port_check(state); 1825 WARN(!uport, "hangup of detached port!\n"); 1826 1827 if (tty_port_active(port)) { 1828 uart_flush_buffer(tty); 1829 uart_shutdown(tty, state); 1830 scoped_guard(spinlock_irqsave, &port->lock) 1831 port->count = 0; 1832 tty_port_set_active(port, false); 1833 tty_port_tty_set(port, NULL); 1834 if (uport && !uart_console(uport)) 1835 uart_change_pm(state, UART_PM_STATE_OFF); 1836 wake_up_interruptible(&port->open_wait); 1837 wake_up_interruptible(&port->delta_msr_wait); 1838 } 1839 } 1840 1841 /* uport == NULL if uart_port has already been removed */ 1842 static void uart_port_shutdown(struct tty_port *port) 1843 { 1844 struct uart_state *state = container_of(port, struct uart_state, port); 1845 struct uart_port *uport = uart_port_check(state); 1846 1847 /* 1848 * clear delta_msr_wait queue to avoid mem leaks: we may free 1849 * the irq here so the queue might never be woken up. Note 1850 * that we won't end up waiting on delta_msr_wait again since 1851 * any outstanding file descriptors should be pointing at 1852 * hung_up_tty_fops now. 1853 */ 1854 wake_up_interruptible(&port->delta_msr_wait); 1855 1856 if (uport) { 1857 /* Free the IRQ and disable the port. */ 1858 uport->ops->shutdown(uport); 1859 1860 /* Ensure that the IRQ handler isn't running on another CPU. */ 1861 synchronize_irq(uport->irq); 1862 } 1863 } 1864 1865 static bool uart_carrier_raised(struct tty_port *port) 1866 { 1867 struct uart_state *state = container_of(port, struct uart_state, port); 1868 struct uart_port *uport; 1869 unsigned long flags; 1870 int mctrl; 1871 1872 uport = uart_port_ref_lock(state, &flags); 1873 /* 1874 * Should never observe uport == NULL since checks for hangup should 1875 * abort the tty_port_block_til_ready() loop before checking for carrier 1876 * raised -- but report carrier raised if it does anyway so open will 1877 * continue and not sleep 1878 */ 1879 if (WARN_ON(!uport)) 1880 return true; 1881 uart_enable_ms(uport); 1882 mctrl = uport->ops->get_mctrl(uport); 1883 uart_port_unlock_deref(uport, flags); 1884 1885 return mctrl & TIOCM_CAR; 1886 } 1887 1888 static void uart_dtr_rts(struct tty_port *port, bool active) 1889 { 1890 struct uart_state *state = container_of(port, struct uart_state, port); 1891 struct uart_port *uport; 1892 1893 uport = uart_port_ref(state); 1894 if (!uport) 1895 return; 1896 uart_port_dtr_rts(uport, active); 1897 uart_port_deref(uport); 1898 } 1899 1900 static int uart_install(struct tty_driver *driver, struct tty_struct *tty) 1901 { 1902 struct uart_driver *drv = driver->driver_state; 1903 struct uart_state *state = drv->state + tty->index; 1904 1905 tty->driver_data = state; 1906 1907 return tty_standard_install(driver, tty); 1908 } 1909 1910 /* 1911 * Calls to uart_open are serialised by the tty_lock in 1912 * drivers/tty/tty_io.c:tty_open() 1913 * Note that if this fails, then uart_close() _will_ be called. 1914 * 1915 * In time, we want to scrap the "opening nonpresent ports" 1916 * behaviour and implement an alternative way for setserial 1917 * to set base addresses/ports/types. This will allow us to 1918 * get rid of a certain amount of extra tests. 1919 */ 1920 static int uart_open(struct tty_struct *tty, struct file *filp) 1921 { 1922 struct uart_state *state = tty->driver_data; 1923 int retval; 1924 1925 retval = tty_port_open(&state->port, tty, filp); 1926 if (retval > 0) 1927 retval = 0; 1928 1929 return retval; 1930 } 1931 1932 static int uart_port_activate(struct tty_port *port, struct tty_struct *tty) 1933 { 1934 struct uart_state *state = container_of(port, struct uart_state, port); 1935 struct uart_port *uport; 1936 int ret; 1937 1938 uport = uart_port_check(state); 1939 if (!uport || uport->flags & UPF_DEAD) 1940 return -ENXIO; 1941 1942 /* 1943 * Start up the serial port. 1944 */ 1945 ret = uart_startup(tty, state, false); 1946 if (ret > 0) 1947 tty_port_set_active(port, true); 1948 1949 return ret; 1950 } 1951 1952 static const char *uart_type(struct uart_port *port) 1953 { 1954 const char *str = NULL; 1955 1956 if (port->ops->type) 1957 str = port->ops->type(port); 1958 1959 if (!str) 1960 str = "unknown"; 1961 1962 return str; 1963 } 1964 1965 #ifdef CONFIG_PROC_FS 1966 1967 static void uart_line_info(struct seq_file *m, struct uart_state *state) 1968 { 1969 struct tty_port *port = &state->port; 1970 enum uart_pm_state pm_state; 1971 struct uart_port *uport; 1972 char stat_buf[32]; 1973 unsigned int status; 1974 int mmio; 1975 1976 guard(mutex)(&port->mutex); 1977 1978 uport = uart_port_check(state); 1979 if (!uport) 1980 return; 1981 1982 mmio = uport->iotype >= UPIO_MEM; 1983 seq_printf(m, "%u: uart:%s %s%08llX irq:%u", 1984 uport->line, uart_type(uport), 1985 mmio ? "mmio:0x" : "port:", 1986 mmio ? (unsigned long long)uport->mapbase 1987 : (unsigned long long)uport->iobase, 1988 uport->irq); 1989 1990 if (uport->type == PORT_UNKNOWN) { 1991 seq_putc(m, '\n'); 1992 return; 1993 } 1994 1995 if (capable(CAP_SYS_ADMIN)) { 1996 pm_state = state->pm_state; 1997 if (pm_state != UART_PM_STATE_ON) 1998 uart_change_pm(state, UART_PM_STATE_ON); 1999 scoped_guard(uart_port_lock_irq, uport) 2000 status = uport->ops->get_mctrl(uport); 2001 if (pm_state != UART_PM_STATE_ON) 2002 uart_change_pm(state, pm_state); 2003 2004 seq_printf(m, " tx:%u rx:%u", 2005 uport->icount.tx, uport->icount.rx); 2006 if (uport->icount.frame) 2007 seq_printf(m, " fe:%u", uport->icount.frame); 2008 if (uport->icount.parity) 2009 seq_printf(m, " pe:%u", uport->icount.parity); 2010 if (uport->icount.brk) 2011 seq_printf(m, " brk:%u", uport->icount.brk); 2012 if (uport->icount.overrun) 2013 seq_printf(m, " oe:%u", uport->icount.overrun); 2014 if (uport->icount.buf_overrun) 2015 seq_printf(m, " bo:%u", uport->icount.buf_overrun); 2016 2017 #define INFOBIT(bit, str) \ 2018 if (uport->mctrl & (bit)) \ 2019 strncat(stat_buf, (str), sizeof(stat_buf) - \ 2020 strlen(stat_buf) - 2) 2021 #define STATBIT(bit, str) \ 2022 if (status & (bit)) \ 2023 strncat(stat_buf, (str), sizeof(stat_buf) - \ 2024 strlen(stat_buf) - 2) 2025 2026 stat_buf[0] = '\0'; 2027 stat_buf[1] = '\0'; 2028 INFOBIT(TIOCM_RTS, "|RTS"); 2029 STATBIT(TIOCM_CTS, "|CTS"); 2030 INFOBIT(TIOCM_DTR, "|DTR"); 2031 STATBIT(TIOCM_DSR, "|DSR"); 2032 STATBIT(TIOCM_CAR, "|CD"); 2033 STATBIT(TIOCM_RNG, "|RI"); 2034 if (stat_buf[0]) 2035 stat_buf[0] = ' '; 2036 2037 seq_puts(m, stat_buf); 2038 } 2039 seq_putc(m, '\n'); 2040 #undef STATBIT 2041 #undef INFOBIT 2042 } 2043 2044 static int uart_proc_show(struct seq_file *m, void *v) 2045 { 2046 struct tty_driver *ttydrv = m->private; 2047 struct uart_driver *drv = ttydrv->driver_state; 2048 int i; 2049 2050 seq_printf(m, "serinfo:1.0 driver%s%s revision:%s\n", "", "", ""); 2051 for (i = 0; i < drv->nr; i++) 2052 uart_line_info(m, drv->state + i); 2053 return 0; 2054 } 2055 #endif 2056 2057 static void uart_port_spin_lock_init(struct uart_port *port) 2058 { 2059 spin_lock_init(&port->lock); 2060 lockdep_set_class(&port->lock, &port_lock_key); 2061 } 2062 2063 #if defined(CONFIG_SERIAL_CORE_CONSOLE) || defined(CONFIG_CONSOLE_POLL) 2064 /** 2065 * uart_console_write - write a console message to a serial port 2066 * @port: the port to write the message 2067 * @s: array of characters 2068 * @count: number of characters in string to write 2069 * @putchar: function to write character to port 2070 */ 2071 void uart_console_write(struct uart_port *port, const char *s, 2072 unsigned int count, 2073 void (*putchar)(struct uart_port *, unsigned char)) 2074 { 2075 unsigned int i; 2076 2077 for (i = 0; i < count; i++, s++) { 2078 if (*s == '\n') 2079 putchar(port, '\r'); 2080 putchar(port, *s); 2081 } 2082 } 2083 EXPORT_SYMBOL_GPL(uart_console_write); 2084 2085 /** 2086 * uart_parse_earlycon - Parse earlycon options 2087 * @p: ptr to 2nd field (ie., just beyond '<name>,') 2088 * @iotype: ptr for decoded iotype (out) 2089 * @addr: ptr for decoded mapbase/iobase (out) 2090 * @options: ptr for <options> field; %NULL if not present (out) 2091 * 2092 * Decodes earlycon kernel command line parameters of the form: 2093 * * earlycon=<name>,io|mmio|mmio16|mmio32|mmio32be|mmio32native,<addr>,<options> 2094 * * console=<name>,io|mmio|mmio16|mmio32|mmio32be|mmio32native,<addr>,<options> 2095 * 2096 * The optional form: 2097 * * earlycon=<name>,0x<addr>,<options> 2098 * * console=<name>,0x<addr>,<options> 2099 * 2100 * is also accepted; the returned @iotype will be %UPIO_MEM. 2101 * 2102 * Returns: 0 on success or -%EINVAL on failure 2103 */ 2104 int uart_parse_earlycon(char *p, enum uart_iotype *iotype, 2105 resource_size_t *addr, char **options) 2106 { 2107 if (strncmp(p, "mmio,", 5) == 0) { 2108 *iotype = UPIO_MEM; 2109 p += 5; 2110 } else if (strncmp(p, "mmio16,", 7) == 0) { 2111 *iotype = UPIO_MEM16; 2112 p += 7; 2113 } else if (strncmp(p, "mmio32,", 7) == 0) { 2114 *iotype = UPIO_MEM32; 2115 p += 7; 2116 } else if (strncmp(p, "mmio32be,", 9) == 0) { 2117 *iotype = UPIO_MEM32BE; 2118 p += 9; 2119 } else if (strncmp(p, "mmio32native,", 13) == 0) { 2120 *iotype = IS_ENABLED(CONFIG_CPU_BIG_ENDIAN) ? 2121 UPIO_MEM32BE : UPIO_MEM32; 2122 p += 13; 2123 } else if (strncmp(p, "io,", 3) == 0) { 2124 *iotype = UPIO_PORT; 2125 p += 3; 2126 } else if (strncmp(p, "0x", 2) == 0) { 2127 *iotype = UPIO_MEM; 2128 } else { 2129 return -EINVAL; 2130 } 2131 2132 /* 2133 * Before you replace it with kstrtoull(), think about options separator 2134 * (',') it will not tolerate 2135 */ 2136 *addr = simple_strtoull(p, NULL, 0); 2137 p = strchr(p, ','); 2138 if (p) 2139 p++; 2140 2141 *options = p; 2142 return 0; 2143 } 2144 EXPORT_SYMBOL_GPL(uart_parse_earlycon); 2145 2146 /** 2147 * uart_parse_options - Parse serial port baud/parity/bits/flow control. 2148 * @options: pointer to option string 2149 * @baud: pointer to an 'int' variable for the baud rate. 2150 * @parity: pointer to an 'int' variable for the parity. 2151 * @bits: pointer to an 'int' variable for the number of data bits. 2152 * @flow: pointer to an 'int' variable for the flow control character. 2153 * 2154 * uart_parse_options() decodes a string containing the serial console 2155 * options. The format of the string is <baud><parity><bits><flow>, 2156 * eg: 115200n8r 2157 */ 2158 void 2159 uart_parse_options(const char *options, int *baud, int *parity, 2160 int *bits, int *flow) 2161 { 2162 const char *s = options; 2163 2164 *baud = simple_strtoul(s, NULL, 10); 2165 while (*s >= '0' && *s <= '9') 2166 s++; 2167 if (*s) 2168 *parity = *s++; 2169 if (*s) 2170 *bits = *s++ - '0'; 2171 if (*s) 2172 *flow = *s; 2173 } 2174 EXPORT_SYMBOL_GPL(uart_parse_options); 2175 2176 /** 2177 * uart_set_options - setup the serial console parameters 2178 * @port: pointer to the serial ports uart_port structure 2179 * @co: console pointer 2180 * @baud: baud rate 2181 * @parity: parity character - 'n' (none), 'o' (odd), 'e' (even) 2182 * @bits: number of data bits 2183 * @flow: flow control character - 'r' (rts) 2184 * 2185 * Locking: Caller must hold console_list_lock in order to serialize 2186 * early initialization of the serial-console lock. 2187 */ 2188 int 2189 uart_set_options(struct uart_port *port, struct console *co, 2190 int baud, int parity, int bits, int flow) 2191 { 2192 struct ktermios termios; 2193 static struct ktermios dummy; 2194 2195 /* 2196 * Ensure that the serial-console lock is initialised early. 2197 * 2198 * Note that the console-registered check is needed because 2199 * kgdboc can call uart_set_options() for an already registered 2200 * console via tty_find_polling_driver() and uart_poll_init(). 2201 */ 2202 if (!uart_console_registered_locked(port) && !port->console_reinit) 2203 uart_port_spin_lock_init(port); 2204 2205 memset(&termios, 0, sizeof(struct ktermios)); 2206 2207 termios.c_cflag |= CREAD | HUPCL | CLOCAL; 2208 tty_termios_encode_baud_rate(&termios, baud, baud); 2209 2210 if (bits == 7) 2211 termios.c_cflag |= CS7; 2212 else 2213 termios.c_cflag |= CS8; 2214 2215 switch (parity) { 2216 case 'o': case 'O': 2217 termios.c_cflag |= PARODD; 2218 fallthrough; 2219 case 'e': case 'E': 2220 termios.c_cflag |= PARENB; 2221 break; 2222 } 2223 2224 if (flow == 'r') 2225 termios.c_cflag |= CRTSCTS; 2226 2227 /* 2228 * some uarts on other side don't support no flow control. 2229 * So we set * DTR in host uart to make them happy 2230 */ 2231 port->mctrl |= TIOCM_DTR; 2232 2233 port->ops->set_termios(port, &termios, &dummy); 2234 2235 /* 2236 * If console hardware flow control was specified and is supported, 2237 * the related policy UPSTAT_CTS_ENABLE must be set to allow console 2238 * drivers to identify if CTS should be used for polling. 2239 */ 2240 if (flow == 'r' && (termios.c_cflag & CRTSCTS)) { 2241 /* Synchronize @status RMW update against the console. */ 2242 guard(uart_port_lock_irqsave)(port); 2243 port->status |= UPSTAT_CTS_ENABLE; 2244 } 2245 2246 /* 2247 * Allow the setting of the UART parameters with a NULL console 2248 * too: 2249 */ 2250 if (co) { 2251 co->cflag = termios.c_cflag; 2252 co->ispeed = termios.c_ispeed; 2253 co->ospeed = termios.c_ospeed; 2254 } 2255 2256 return 0; 2257 } 2258 EXPORT_SYMBOL_GPL(uart_set_options); 2259 #endif /* CONFIG_SERIAL_CORE_CONSOLE */ 2260 2261 /** 2262 * uart_change_pm - set power state of the port 2263 * 2264 * @state: port descriptor 2265 * @pm_state: new state 2266 * 2267 * Locking: port->mutex has to be held 2268 */ 2269 static void uart_change_pm(struct uart_state *state, 2270 enum uart_pm_state pm_state) 2271 { 2272 struct uart_port *port = uart_port_check(state); 2273 2274 if (state->pm_state != pm_state) { 2275 if (port && port->ops->pm) 2276 port->ops->pm(port, pm_state, state->pm_state); 2277 state->pm_state = pm_state; 2278 } 2279 } 2280 2281 struct uart_match { 2282 struct uart_port *port; 2283 struct uart_driver *driver; 2284 }; 2285 2286 static int serial_match_port(struct device *dev, const void *data) 2287 { 2288 const struct uart_match *match = data; 2289 struct tty_driver *tty_drv = match->driver->tty_driver; 2290 dev_t devt = MKDEV(tty_drv->major, tty_drv->minor_start) + 2291 match->port->line; 2292 2293 return dev->devt == devt; /* Actually, only one tty per port */ 2294 } 2295 2296 int uart_suspend_port(struct uart_driver *drv, struct uart_port *uport) 2297 { 2298 struct uart_state *state = drv->state + uport->line; 2299 struct tty_port *port = &state->port; 2300 struct device *tty_dev; 2301 struct uart_match match = {uport, drv}; 2302 2303 guard(mutex)(&port->mutex); 2304 2305 tty_dev = device_find_child(&uport->port_dev->dev, &match, serial_match_port); 2306 if (tty_dev && device_may_wakeup(tty_dev)) { 2307 enable_irq_wake(uport->irq); 2308 put_device(tty_dev); 2309 return 0; 2310 } 2311 put_device(tty_dev); 2312 2313 /* 2314 * Nothing to do if the console is not suspending 2315 * except stop_rx to prevent any asynchronous data 2316 * over RX line. However ensure that we will be 2317 * able to Re-start_rx later. 2318 */ 2319 if (!console_suspend_enabled && uart_console(uport)) { 2320 if (uport->ops->start_rx) { 2321 guard(uart_port_lock_irq)(uport); 2322 uport->ops->stop_rx(uport); 2323 } 2324 device_set_awake_path(uport->dev); 2325 return 0; 2326 } 2327 2328 uport->suspended = 1; 2329 2330 if (tty_port_initialized(port)) { 2331 const struct uart_ops *ops = uport->ops; 2332 int tries; 2333 unsigned int mctrl; 2334 2335 tty_port_set_suspended(port, true); 2336 tty_port_set_initialized(port, false); 2337 2338 scoped_guard(uart_port_lock_irq, uport) { 2339 ops->stop_tx(uport); 2340 if (!(uport->rs485.flags & SER_RS485_ENABLED)) 2341 ops->set_mctrl(uport, 0); 2342 /* save mctrl so it can be restored on resume */ 2343 mctrl = uport->mctrl; 2344 uport->mctrl = 0; 2345 ops->stop_rx(uport); 2346 } 2347 2348 /* 2349 * Wait for the transmitter to empty. 2350 */ 2351 for (tries = 3; !ops->tx_empty(uport) && tries; tries--) 2352 msleep(10); 2353 if (!tries) 2354 dev_err(uport->dev, "%s: Unable to drain transmitter\n", 2355 uport->name); 2356 2357 ops->shutdown(uport); 2358 uport->mctrl = mctrl; 2359 } 2360 2361 /* 2362 * Suspend the console device before suspending the port. 2363 */ 2364 if (uart_console(uport)) 2365 console_suspend(uport->cons); 2366 2367 uart_change_pm(state, UART_PM_STATE_OFF); 2368 2369 return 0; 2370 } 2371 EXPORT_SYMBOL(uart_suspend_port); 2372 2373 int uart_resume_port(struct uart_driver *drv, struct uart_port *uport) 2374 { 2375 struct uart_state *state = drv->state + uport->line; 2376 struct tty_port *port = &state->port; 2377 struct device *tty_dev; 2378 struct uart_match match = {uport, drv}; 2379 struct ktermios termios; 2380 2381 guard(mutex)(&port->mutex); 2382 2383 tty_dev = device_find_child(&uport->port_dev->dev, &match, serial_match_port); 2384 if (!uport->suspended && device_may_wakeup(tty_dev)) { 2385 if (irqd_is_wakeup_set(irq_get_irq_data((uport->irq)))) 2386 disable_irq_wake(uport->irq); 2387 put_device(tty_dev); 2388 return 0; 2389 } 2390 put_device(tty_dev); 2391 uport->suspended = 0; 2392 2393 /* 2394 * Re-enable the console device after suspending. 2395 */ 2396 if (uart_console(uport)) { 2397 /* 2398 * First try to use the console cflag setting. 2399 */ 2400 memset(&termios, 0, sizeof(struct ktermios)); 2401 termios.c_cflag = uport->cons->cflag; 2402 termios.c_ispeed = uport->cons->ispeed; 2403 termios.c_ospeed = uport->cons->ospeed; 2404 2405 /* 2406 * If that's unset, use the tty termios setting. 2407 */ 2408 if (port->tty && termios.c_cflag == 0) 2409 termios = port->tty->termios; 2410 2411 if (console_suspend_enabled) 2412 uart_change_pm(state, UART_PM_STATE_ON); 2413 uport->ops->set_termios(uport, &termios, NULL); 2414 if (!console_suspend_enabled && uport->ops->start_rx) { 2415 guard(uart_port_lock_irq)(uport); 2416 uport->ops->start_rx(uport); 2417 } 2418 if (console_suspend_enabled) 2419 console_resume(uport->cons); 2420 } 2421 2422 if (tty_port_suspended(port)) { 2423 const struct uart_ops *ops = uport->ops; 2424 int ret; 2425 2426 uart_change_pm(state, UART_PM_STATE_ON); 2427 scoped_guard(uart_port_lock_irq, uport) 2428 if (!(uport->rs485.flags & SER_RS485_ENABLED)) 2429 ops->set_mctrl(uport, 0); 2430 if (console_suspend_enabled || !uart_console(uport)) { 2431 /* Protected by port mutex for now */ 2432 struct tty_struct *tty = port->tty; 2433 2434 ret = ops->startup(uport); 2435 if (ret == 0) { 2436 if (tty) 2437 uart_change_line_settings(tty, state, NULL); 2438 uart_rs485_config(uport); 2439 scoped_guard(uart_port_lock_irq, uport) { 2440 if (!(uport->rs485.flags & SER_RS485_ENABLED)) 2441 ops->set_mctrl(uport, uport->mctrl); 2442 ops->start_tx(uport); 2443 } 2444 tty_port_set_initialized(port, true); 2445 } else { 2446 /* 2447 * Failed to resume - maybe hardware went away? 2448 * Clear the "initialized" flag so we won't try 2449 * to call the low level drivers shutdown method. 2450 */ 2451 uart_shutdown(tty, state); 2452 } 2453 } 2454 2455 tty_port_set_suspended(port, false); 2456 } 2457 2458 return 0; 2459 } 2460 EXPORT_SYMBOL(uart_resume_port); 2461 2462 static inline void 2463 uart_report_port(struct uart_driver *drv, struct uart_port *port) 2464 { 2465 char address[64]; 2466 2467 switch (port->iotype) { 2468 case UPIO_PORT: 2469 snprintf(address, sizeof(address), "I/O 0x%lx", port->iobase); 2470 break; 2471 case UPIO_HUB6: 2472 snprintf(address, sizeof(address), 2473 "I/O 0x%lx offset 0x%x", port->iobase, port->hub6); 2474 break; 2475 case UPIO_MEM: 2476 case UPIO_MEM16: 2477 case UPIO_MEM32: 2478 case UPIO_MEM32BE: 2479 case UPIO_AU: 2480 case UPIO_TSI: 2481 snprintf(address, sizeof(address), 2482 "MMIO 0x%llx", (unsigned long long)port->mapbase); 2483 break; 2484 default: 2485 strscpy(address, "*unknown*", sizeof(address)); 2486 break; 2487 } 2488 2489 pr_info("%s%s%s at %s (irq = %u, base_baud = %u) is a %s\n", 2490 port->dev ? dev_name(port->dev) : "", 2491 port->dev ? ": " : "", 2492 port->name, 2493 address, port->irq, port->uartclk / 16, uart_type(port)); 2494 2495 /* The magic multiplier feature is a bit obscure, so report it too. */ 2496 if (port->flags & UPF_MAGIC_MULTIPLIER) 2497 pr_info("%s%s%s extra baud rates supported: %u, %u", 2498 port->dev ? dev_name(port->dev) : "", 2499 port->dev ? ": " : "", 2500 port->name, 2501 port->uartclk / 8, port->uartclk / 4); 2502 } 2503 2504 static void 2505 uart_configure_port(struct uart_driver *drv, struct uart_state *state, 2506 struct uart_port *port) 2507 { 2508 unsigned int flags; 2509 2510 /* 2511 * If there isn't a port here, don't do anything further. 2512 */ 2513 if (!port->iobase && !port->mapbase && !port->membase) 2514 return; 2515 2516 /* 2517 * Now do the auto configuration stuff. Note that config_port 2518 * is expected to claim the resources and map the port for us. 2519 */ 2520 flags = 0; 2521 if (port->flags & UPF_AUTO_IRQ) 2522 flags |= UART_CONFIG_IRQ; 2523 if (port->flags & UPF_BOOT_AUTOCONF) { 2524 if (!(port->flags & UPF_FIXED_TYPE)) { 2525 port->type = PORT_UNKNOWN; 2526 flags |= UART_CONFIG_TYPE; 2527 } 2528 /* Synchronize with possible boot console. */ 2529 if (uart_console(port)) 2530 console_lock(); 2531 port->ops->config_port(port, flags); 2532 if (uart_console(port)) 2533 console_unlock(); 2534 } 2535 2536 if (port->type != PORT_UNKNOWN) { 2537 uart_report_port(drv, port); 2538 2539 /* Synchronize with possible boot console. */ 2540 if (uart_console(port)) 2541 console_lock(); 2542 2543 /* Power up port for set_mctrl() */ 2544 uart_change_pm(state, UART_PM_STATE_ON); 2545 2546 /* 2547 * Ensure that the modem control lines are de-activated. 2548 * keep the DTR setting that is set in uart_set_options() 2549 * We probably don't need a spinlock around this, but 2550 */ 2551 scoped_guard(uart_port_lock_irqsave, port) { 2552 unsigned int mask = TIOCM_DTR; 2553 2554 /* Console hardware flow control polls CTS. */ 2555 if (uart_console_hwflow_active(port)) 2556 mask |= TIOCM_RTS; 2557 2558 port->mctrl &= mask; 2559 2560 if (!(port->rs485.flags & SER_RS485_ENABLED)) 2561 port->ops->set_mctrl(port, port->mctrl); 2562 } 2563 2564 uart_rs485_config(port); 2565 2566 if (uart_console(port)) 2567 console_unlock(); 2568 2569 /* 2570 * If this driver supports console, and it hasn't been 2571 * successfully registered yet, try to re-register it. 2572 * It may be that the port was not available. 2573 */ 2574 if (port->cons && !console_is_registered(port->cons)) 2575 register_console(port->cons); 2576 2577 /* 2578 * Power down all ports by default, except the 2579 * console if we have one. 2580 */ 2581 if (!uart_console(port)) 2582 uart_change_pm(state, UART_PM_STATE_OFF); 2583 } 2584 } 2585 2586 #ifdef CONFIG_CONSOLE_POLL 2587 2588 static int uart_poll_init(struct tty_driver *driver, int line, char *options) 2589 { 2590 struct uart_driver *drv = driver->driver_state; 2591 struct uart_state *state = drv->state + line; 2592 enum uart_pm_state pm_state; 2593 struct tty_port *tport; 2594 struct uart_port *port; 2595 int baud = 9600; 2596 int bits = 8; 2597 int parity = 'n'; 2598 int flow = 'n'; 2599 int ret = 0; 2600 2601 tport = &state->port; 2602 2603 guard(mutex)(&tport->mutex); 2604 2605 port = uart_port_check(state); 2606 if (!port || port->type == PORT_UNKNOWN || 2607 !(port->ops->poll_get_char && port->ops->poll_put_char)) 2608 return -1; 2609 2610 pm_state = state->pm_state; 2611 uart_change_pm(state, UART_PM_STATE_ON); 2612 2613 if (port->ops->poll_init) { 2614 /* 2615 * We don't set initialized as we only initialized the hw, 2616 * e.g. state->xmit is still uninitialized. 2617 */ 2618 if (!tty_port_initialized(tport)) 2619 ret = port->ops->poll_init(port); 2620 } 2621 2622 if (!ret && options) { 2623 uart_parse_options(options, &baud, &parity, &bits, &flow); 2624 console_list_lock(); 2625 ret = uart_set_options(port, NULL, baud, parity, bits, flow); 2626 console_list_unlock(); 2627 } 2628 2629 if (ret) 2630 uart_change_pm(state, pm_state); 2631 2632 return ret; 2633 } 2634 2635 static int uart_poll_get_char(struct tty_driver *driver, int line) 2636 { 2637 struct uart_driver *drv = driver->driver_state; 2638 struct uart_state *state = drv->state + line; 2639 struct uart_port *port; 2640 int ret = -1; 2641 2642 port = uart_port_ref(state); 2643 if (port) { 2644 ret = port->ops->poll_get_char(port); 2645 uart_port_deref(port); 2646 } 2647 2648 return ret; 2649 } 2650 2651 static void uart_poll_put_char(struct tty_driver *driver, int line, char ch) 2652 { 2653 struct uart_driver *drv = driver->driver_state; 2654 struct uart_state *state = drv->state + line; 2655 struct uart_port *port; 2656 2657 port = uart_port_ref(state); 2658 if (!port) 2659 return; 2660 2661 if (ch == '\n') 2662 port->ops->poll_put_char(port, '\r'); 2663 port->ops->poll_put_char(port, ch); 2664 uart_port_deref(port); 2665 } 2666 #endif 2667 2668 static const struct tty_operations uart_ops = { 2669 .install = uart_install, 2670 .open = uart_open, 2671 .close = uart_close, 2672 .write = uart_write, 2673 .put_char = uart_put_char, 2674 .flush_chars = uart_flush_chars, 2675 .write_room = uart_write_room, 2676 .chars_in_buffer= uart_chars_in_buffer, 2677 .flush_buffer = uart_flush_buffer, 2678 .ioctl = uart_ioctl, 2679 .throttle = uart_throttle, 2680 .unthrottle = uart_unthrottle, 2681 .send_xchar = uart_send_xchar, 2682 .set_termios = uart_set_termios, 2683 .set_ldisc = uart_set_ldisc, 2684 .stop = uart_stop, 2685 .start = uart_start, 2686 .hangup = uart_hangup, 2687 .break_ctl = uart_break_ctl, 2688 .wait_until_sent= uart_wait_until_sent, 2689 #ifdef CONFIG_PROC_FS 2690 .proc_show = uart_proc_show, 2691 #endif 2692 .tiocmget = uart_tiocmget, 2693 .tiocmset = uart_tiocmset, 2694 .set_serial = uart_set_info_user, 2695 .get_serial = uart_get_info_user, 2696 .get_icount = uart_get_icount, 2697 #ifdef CONFIG_CONSOLE_POLL 2698 .poll_init = uart_poll_init, 2699 .poll_get_char = uart_poll_get_char, 2700 .poll_put_char = uart_poll_put_char, 2701 #endif 2702 }; 2703 2704 static const struct tty_port_operations uart_port_ops = { 2705 .carrier_raised = uart_carrier_raised, 2706 .dtr_rts = uart_dtr_rts, 2707 .activate = uart_port_activate, 2708 .shutdown = uart_tty_port_shutdown, 2709 }; 2710 2711 /** 2712 * uart_register_driver - register a driver with the uart core layer 2713 * @drv: low level driver structure 2714 * 2715 * Register a uart driver with the core driver. We in turn register with the 2716 * tty layer, and initialise the core driver per-port state. 2717 * 2718 * We have a proc file in /proc/tty/driver which is named after the normal 2719 * driver. 2720 * 2721 * @drv->port should be %NULL, and the per-port structures should be registered 2722 * using uart_add_one_port() after this call has succeeded. 2723 * 2724 * Locking: none, Interrupts: enabled 2725 */ 2726 int uart_register_driver(struct uart_driver *drv) 2727 { 2728 struct tty_driver *normal; 2729 int i, retval = -ENOMEM; 2730 2731 BUG_ON(drv->state); 2732 2733 /* 2734 * Maybe we should be using a slab cache for this, especially if 2735 * we have a large number of ports to handle. 2736 */ 2737 drv->state = kzalloc_objs(struct uart_state, drv->nr); 2738 if (!drv->state) 2739 goto out; 2740 2741 normal = tty_alloc_driver(drv->nr, TTY_DRIVER_REAL_RAW | 2742 TTY_DRIVER_DYNAMIC_DEV); 2743 if (IS_ERR(normal)) { 2744 retval = PTR_ERR(normal); 2745 goto out_kfree; 2746 } 2747 2748 drv->tty_driver = normal; 2749 2750 normal->driver_name = drv->driver_name; 2751 normal->name = drv->dev_name; 2752 normal->major = drv->major; 2753 normal->minor_start = drv->minor; 2754 normal->type = TTY_DRIVER_TYPE_SERIAL; 2755 normal->subtype = SERIAL_TYPE_NORMAL; 2756 normal->init_termios = tty_std_termios; 2757 normal->init_termios.c_cflag = B9600 | CS8 | CREAD | HUPCL | CLOCAL; 2758 normal->init_termios.c_ispeed = normal->init_termios.c_ospeed = 9600; 2759 normal->driver_state = drv; 2760 tty_set_operations(normal, &uart_ops); 2761 2762 /* 2763 * Initialise the UART state(s). 2764 */ 2765 for (i = 0; i < drv->nr; i++) { 2766 struct uart_state *state = drv->state + i; 2767 struct tty_port *port = &state->port; 2768 2769 tty_port_init(port); 2770 port->ops = &uart_port_ops; 2771 } 2772 2773 retval = tty_register_driver(normal); 2774 if (retval >= 0) 2775 return retval; 2776 2777 for (i = 0; i < drv->nr; i++) 2778 tty_port_destroy(&drv->state[i].port); 2779 tty_driver_kref_put(normal); 2780 out_kfree: 2781 kfree(drv->state); 2782 out: 2783 return retval; 2784 } 2785 EXPORT_SYMBOL(uart_register_driver); 2786 2787 /** 2788 * uart_unregister_driver - remove a driver from the uart core layer 2789 * @drv: low level driver structure 2790 * 2791 * Remove all references to a driver from the core driver. The low level 2792 * driver must have removed all its ports via the uart_remove_one_port() if it 2793 * registered them with uart_add_one_port(). (I.e. @drv->port is %NULL.) 2794 * 2795 * Locking: none, Interrupts: enabled 2796 */ 2797 void uart_unregister_driver(struct uart_driver *drv) 2798 { 2799 struct tty_driver *p = drv->tty_driver; 2800 unsigned int i; 2801 2802 tty_unregister_driver(p); 2803 tty_driver_kref_put(p); 2804 for (i = 0; i < drv->nr; i++) 2805 tty_port_destroy(&drv->state[i].port); 2806 kfree(drv->state); 2807 drv->state = NULL; 2808 drv->tty_driver = NULL; 2809 } 2810 EXPORT_SYMBOL(uart_unregister_driver); 2811 2812 struct tty_driver *uart_console_device(struct console *co, int *index) 2813 { 2814 struct uart_driver *p = co->data; 2815 *index = co->index; 2816 return p->tty_driver; 2817 } 2818 EXPORT_SYMBOL_GPL(uart_console_device); 2819 2820 static ssize_t uartclk_show(struct device *dev, 2821 struct device_attribute *attr, char *buf) 2822 { 2823 struct serial_struct tmp; 2824 struct tty_port *port = dev_get_drvdata(dev); 2825 2826 uart_get_info(port, &tmp); 2827 return sprintf(buf, "%d\n", tmp.baud_base * 16); 2828 } 2829 2830 static ssize_t type_show(struct device *dev, 2831 struct device_attribute *attr, char *buf) 2832 { 2833 struct serial_struct tmp; 2834 struct tty_port *port = dev_get_drvdata(dev); 2835 2836 uart_get_info(port, &tmp); 2837 return sprintf(buf, "%d\n", tmp.type); 2838 } 2839 2840 static ssize_t line_show(struct device *dev, 2841 struct device_attribute *attr, char *buf) 2842 { 2843 struct serial_struct tmp; 2844 struct tty_port *port = dev_get_drvdata(dev); 2845 2846 uart_get_info(port, &tmp); 2847 return sprintf(buf, "%d\n", tmp.line); 2848 } 2849 2850 static ssize_t port_show(struct device *dev, 2851 struct device_attribute *attr, char *buf) 2852 { 2853 struct serial_struct tmp; 2854 struct tty_port *port = dev_get_drvdata(dev); 2855 unsigned long ioaddr; 2856 2857 uart_get_info(port, &tmp); 2858 ioaddr = tmp.port; 2859 if (HIGH_BITS_OFFSET) 2860 ioaddr |= (unsigned long)tmp.port_high << HIGH_BITS_OFFSET; 2861 return sprintf(buf, "0x%lX\n", ioaddr); 2862 } 2863 2864 static ssize_t irq_show(struct device *dev, 2865 struct device_attribute *attr, char *buf) 2866 { 2867 struct serial_struct tmp; 2868 struct tty_port *port = dev_get_drvdata(dev); 2869 2870 uart_get_info(port, &tmp); 2871 return sprintf(buf, "%d\n", tmp.irq); 2872 } 2873 2874 static ssize_t flags_show(struct device *dev, 2875 struct device_attribute *attr, char *buf) 2876 { 2877 struct serial_struct tmp; 2878 struct tty_port *port = dev_get_drvdata(dev); 2879 2880 uart_get_info(port, &tmp); 2881 return sprintf(buf, "0x%X\n", tmp.flags); 2882 } 2883 2884 static ssize_t xmit_fifo_size_show(struct device *dev, 2885 struct device_attribute *attr, char *buf) 2886 { 2887 struct serial_struct tmp; 2888 struct tty_port *port = dev_get_drvdata(dev); 2889 2890 uart_get_info(port, &tmp); 2891 return sprintf(buf, "%d\n", tmp.xmit_fifo_size); 2892 } 2893 2894 static ssize_t close_delay_show(struct device *dev, 2895 struct device_attribute *attr, char *buf) 2896 { 2897 struct serial_struct tmp; 2898 struct tty_port *port = dev_get_drvdata(dev); 2899 2900 uart_get_info(port, &tmp); 2901 return sprintf(buf, "%u\n", tmp.close_delay); 2902 } 2903 2904 static ssize_t closing_wait_show(struct device *dev, 2905 struct device_attribute *attr, char *buf) 2906 { 2907 struct serial_struct tmp; 2908 struct tty_port *port = dev_get_drvdata(dev); 2909 2910 uart_get_info(port, &tmp); 2911 return sprintf(buf, "%u\n", tmp.closing_wait); 2912 } 2913 2914 static ssize_t custom_divisor_show(struct device *dev, 2915 struct device_attribute *attr, char *buf) 2916 { 2917 struct serial_struct tmp; 2918 struct tty_port *port = dev_get_drvdata(dev); 2919 2920 uart_get_info(port, &tmp); 2921 return sprintf(buf, "%d\n", tmp.custom_divisor); 2922 } 2923 2924 static ssize_t io_type_show(struct device *dev, 2925 struct device_attribute *attr, char *buf) 2926 { 2927 struct serial_struct tmp; 2928 struct tty_port *port = dev_get_drvdata(dev); 2929 2930 uart_get_info(port, &tmp); 2931 return sprintf(buf, "%u\n", tmp.io_type); 2932 } 2933 2934 static ssize_t iomem_base_show(struct device *dev, 2935 struct device_attribute *attr, char *buf) 2936 { 2937 struct serial_struct tmp; 2938 struct tty_port *port = dev_get_drvdata(dev); 2939 2940 uart_get_info(port, &tmp); 2941 return sprintf(buf, "0x%lX\n", (unsigned long)tmp.iomem_base); 2942 } 2943 2944 static ssize_t iomem_reg_shift_show(struct device *dev, 2945 struct device_attribute *attr, char *buf) 2946 { 2947 struct serial_struct tmp; 2948 struct tty_port *port = dev_get_drvdata(dev); 2949 2950 uart_get_info(port, &tmp); 2951 return sprintf(buf, "%u\n", tmp.iomem_reg_shift); 2952 } 2953 2954 static ssize_t console_show(struct device *dev, 2955 struct device_attribute *attr, char *buf) 2956 { 2957 struct tty_port *port = dev_get_drvdata(dev); 2958 struct uart_state *state = container_of(port, struct uart_state, port); 2959 struct uart_port *uport; 2960 bool console = false; 2961 2962 scoped_guard(mutex, &port->mutex) { 2963 uport = uart_port_check(state); 2964 if (uport) 2965 console = uart_console_registered(uport); 2966 } 2967 2968 return sprintf(buf, "%c\n", console ? 'Y' : 'N'); 2969 } 2970 2971 static ssize_t console_store(struct device *dev, 2972 struct device_attribute *attr, const char *buf, size_t count) 2973 { 2974 struct tty_port *port = dev_get_drvdata(dev); 2975 struct uart_state *state = container_of(port, struct uart_state, port); 2976 struct uart_port *uport; 2977 bool oldconsole, newconsole; 2978 int ret; 2979 2980 ret = kstrtobool(buf, &newconsole); 2981 if (ret) 2982 return ret; 2983 2984 guard(mutex)(&port->mutex); 2985 uport = uart_port_check(state); 2986 if (!uport) 2987 return -ENXIO; 2988 2989 oldconsole = uart_console_registered(uport); 2990 if (oldconsole && !newconsole) { 2991 ret = unregister_console(uport->cons); 2992 if (ret < 0) 2993 return ret; 2994 } else if (!oldconsole && newconsole) { 2995 if (!uart_console(uport)) 2996 return -ENOENT; 2997 2998 uport->console_reinit = 1; 2999 register_console(uport->cons); 3000 } 3001 3002 return count; 3003 } 3004 3005 static DEVICE_ATTR_RO(uartclk); 3006 static DEVICE_ATTR_RO(type); 3007 static DEVICE_ATTR_RO(line); 3008 static DEVICE_ATTR_RO(port); 3009 static DEVICE_ATTR_RO(irq); 3010 static DEVICE_ATTR_RO(flags); 3011 static DEVICE_ATTR_RO(xmit_fifo_size); 3012 static DEVICE_ATTR_RO(close_delay); 3013 static DEVICE_ATTR_RO(closing_wait); 3014 static DEVICE_ATTR_RO(custom_divisor); 3015 static DEVICE_ATTR_RO(io_type); 3016 static DEVICE_ATTR_RO(iomem_base); 3017 static DEVICE_ATTR_RO(iomem_reg_shift); 3018 static DEVICE_ATTR_RW(console); 3019 3020 static struct attribute *tty_dev_attrs[] = { 3021 &dev_attr_uartclk.attr, 3022 &dev_attr_type.attr, 3023 &dev_attr_line.attr, 3024 &dev_attr_port.attr, 3025 &dev_attr_irq.attr, 3026 &dev_attr_flags.attr, 3027 &dev_attr_xmit_fifo_size.attr, 3028 &dev_attr_close_delay.attr, 3029 &dev_attr_closing_wait.attr, 3030 &dev_attr_custom_divisor.attr, 3031 &dev_attr_io_type.attr, 3032 &dev_attr_iomem_base.attr, 3033 &dev_attr_iomem_reg_shift.attr, 3034 &dev_attr_console.attr, 3035 NULL 3036 }; 3037 3038 static const struct attribute_group tty_dev_attr_group = { 3039 .attrs = tty_dev_attrs, 3040 }; 3041 3042 /** 3043 * serial_core_add_one_port - attach a driver-defined port structure 3044 * @drv: pointer to the uart low level driver structure for this port 3045 * @uport: uart port structure to use for this port. 3046 * 3047 * Context: task context, might sleep 3048 * 3049 * This allows the driver @drv to register its own uart_port structure with the 3050 * core driver. The main purpose is to allow the low level uart drivers to 3051 * expand uart_port, rather than having yet more levels of structures. 3052 * Caller must hold port_mutex. 3053 */ 3054 static int serial_core_add_one_port(struct uart_driver *drv, struct uart_port *uport) 3055 { 3056 struct uart_state *state; 3057 struct tty_port *port; 3058 struct device *tty_dev; 3059 int num_groups; 3060 3061 if (uport->line >= drv->nr) 3062 return -EINVAL; 3063 3064 state = drv->state + uport->line; 3065 port = &state->port; 3066 3067 guard(mutex)(&port->mutex); 3068 if (state->uart_port) 3069 return -EINVAL; 3070 3071 /* Link the port to the driver state table and vice versa */ 3072 atomic_set(&state->refcount, 1); 3073 init_waitqueue_head(&state->remove_wait); 3074 state->uart_port = uport; 3075 uport->state = state; 3076 3077 /* 3078 * If this port is in use as a console then the spinlock is already 3079 * initialised. 3080 */ 3081 if (!uart_console_registered(uport)) 3082 uart_port_spin_lock_init(uport); 3083 3084 state->pm_state = UART_PM_STATE_UNDEFINED; 3085 uart_port_set_cons(uport, drv->cons); 3086 uport->minor = drv->tty_driver->minor_start + uport->line; 3087 uport->name = kasprintf(GFP_KERNEL, "%s%u", drv->dev_name, 3088 drv->tty_driver->name_base + uport->line); 3089 if (!uport->name) 3090 return -ENOMEM; 3091 3092 if (uport->cons && uport->dev) 3093 of_console_check(uport->dev->of_node, uport->cons->name, uport->line); 3094 3095 /* 3096 * TTY port has to be linked with the driver before register_console() 3097 * in uart_configure_port(), because user-space could open the console 3098 * immediately after. 3099 */ 3100 tty_port_link_device(port, drv->tty_driver, uport->line); 3101 uart_configure_port(drv, state, uport); 3102 3103 port->console = uart_console(uport); 3104 3105 num_groups = 2; 3106 if (uport->attr_group) 3107 num_groups++; 3108 3109 uport->tty_groups = kzalloc_objs(*uport->tty_groups, num_groups); 3110 if (!uport->tty_groups) 3111 return -ENOMEM; 3112 3113 uport->tty_groups[0] = &tty_dev_attr_group; 3114 if (uport->attr_group) 3115 uport->tty_groups[1] = uport->attr_group; 3116 3117 /* Ensure serdev drivers can call serdev_device_open() right away */ 3118 uport->flags &= ~UPF_DEAD; 3119 3120 /* 3121 * Register the port whether it's detected or not. This allows 3122 * setserial to be used to alter this port's parameters. 3123 */ 3124 tty_dev = tty_port_register_device_attr_serdev(port, drv->tty_driver, 3125 uport->line, uport->dev, &uport->port_dev->dev, port, 3126 uport->tty_groups); 3127 if (!IS_ERR(tty_dev)) { 3128 device_set_wakeup_capable(tty_dev, 1); 3129 } else { 3130 uport->flags |= UPF_DEAD; 3131 dev_err(uport->dev, "Cannot register tty device on line %u\n", 3132 uport->line); 3133 } 3134 3135 return 0; 3136 } 3137 3138 /** 3139 * serial_core_remove_one_port - detach a driver defined port structure 3140 * @drv: pointer to the uart low level driver structure for this port 3141 * @uport: uart port structure for this port 3142 * 3143 * Context: task context, might sleep 3144 * 3145 * This unhooks (and hangs up) the specified port structure from the core 3146 * driver. No further calls will be made to the low-level code for this port. 3147 * Caller must hold port_mutex. 3148 */ 3149 static void serial_core_remove_one_port(struct uart_driver *drv, 3150 struct uart_port *uport) 3151 { 3152 struct uart_state *state = drv->state + uport->line; 3153 struct tty_port *port = &state->port; 3154 struct uart_port *uart_port; 3155 3156 scoped_guard(mutex, &port->mutex) { 3157 uart_port = uart_port_check(state); 3158 if (uart_port != uport) 3159 dev_alert(uport->dev, "Removing wrong port: %p != %p\n", uart_port, uport); 3160 3161 if (!uart_port) 3162 return; 3163 } 3164 3165 /* 3166 * Remove the devices from the tty layer 3167 */ 3168 tty_port_unregister_device(port, drv->tty_driver, uport->line); 3169 3170 tty_port_tty_vhangup(port); 3171 3172 /* 3173 * If the port is used as a console, unregister it 3174 */ 3175 if (uart_console(uport)) 3176 unregister_console(uport->cons); 3177 3178 /* 3179 * Free the port IO and memory resources, if any. 3180 */ 3181 if (uport->type != PORT_UNKNOWN && uport->ops->release_port) 3182 uport->ops->release_port(uport); 3183 kfree(uport->tty_groups); 3184 kfree(uport->name); 3185 3186 /* 3187 * Indicate that there isn't a port here anymore. 3188 */ 3189 uport->type = PORT_UNKNOWN; 3190 uport->port_dev = NULL; 3191 3192 guard(mutex)(&port->mutex); 3193 WARN_ON(atomic_dec_return(&state->refcount) < 0); 3194 wait_event(state->remove_wait, !atomic_read(&state->refcount)); 3195 state->uart_port = NULL; 3196 } 3197 3198 /** 3199 * uart_match_port - are the two ports equivalent? 3200 * @port1: first port 3201 * @port2: second port 3202 * 3203 * This utility function can be used to determine whether two uart_port 3204 * structures describe the same port. 3205 */ 3206 bool uart_match_port(const struct uart_port *port1, 3207 const struct uart_port *port2) 3208 { 3209 if (port1->iotype != port2->iotype) 3210 return false; 3211 3212 switch (port1->iotype) { 3213 case UPIO_PORT: 3214 return port1->iobase == port2->iobase; 3215 case UPIO_HUB6: 3216 return port1->iobase == port2->iobase && 3217 port1->hub6 == port2->hub6; 3218 case UPIO_MEM: 3219 case UPIO_MEM16: 3220 case UPIO_MEM32: 3221 case UPIO_MEM32BE: 3222 case UPIO_AU: 3223 case UPIO_TSI: 3224 return port1->mapbase == port2->mapbase; 3225 default: 3226 return false; 3227 } 3228 } 3229 EXPORT_SYMBOL(uart_match_port); 3230 3231 static struct serial_ctrl_device * 3232 serial_core_get_ctrl_dev(struct serial_port_device *port_dev) 3233 { 3234 struct device *dev = &port_dev->dev; 3235 3236 return to_serial_base_ctrl_device(dev->parent); 3237 } 3238 3239 /* 3240 * Find a registered serial core controller device if one exists. Returns 3241 * the first device matching the ctrl_id. Caller must hold port_mutex. 3242 */ 3243 static struct serial_ctrl_device *serial_core_ctrl_find(struct uart_driver *drv, 3244 struct device *phys_dev, 3245 int ctrl_id) 3246 { 3247 struct uart_state *state; 3248 int i; 3249 3250 lockdep_assert_held(&port_mutex); 3251 3252 for (i = 0; i < drv->nr; i++) { 3253 state = drv->state + i; 3254 if (!state->uart_port || !state->uart_port->port_dev) 3255 continue; 3256 3257 if (state->uart_port->dev == phys_dev && 3258 state->uart_port->ctrl_id == ctrl_id) 3259 return serial_core_get_ctrl_dev(state->uart_port->port_dev); 3260 } 3261 3262 return NULL; 3263 } 3264 3265 static struct serial_ctrl_device *serial_core_ctrl_device_add(struct uart_port *port) 3266 { 3267 return serial_base_ctrl_add(port, port->dev); 3268 } 3269 3270 static int serial_core_port_device_add(struct serial_ctrl_device *ctrl_dev, 3271 struct uart_port *port) 3272 { 3273 struct serial_port_device *port_dev; 3274 3275 port_dev = serial_base_port_add(port, ctrl_dev); 3276 if (IS_ERR(port_dev)) 3277 return PTR_ERR(port_dev); 3278 3279 port->port_dev = port_dev; 3280 3281 return 0; 3282 } 3283 3284 /* 3285 * Initialize a serial core port device, and a controller device if needed. 3286 */ 3287 int serial_core_register_port(struct uart_driver *drv, struct uart_port *port) 3288 { 3289 struct serial_ctrl_device *ctrl_dev, *new_ctrl_dev = NULL; 3290 int ret; 3291 3292 guard(mutex)(&port_mutex); 3293 3294 /* 3295 * Prevent serial_port_runtime_resume() from trying to use the port 3296 * until serial_core_add_one_port() has completed 3297 */ 3298 port->flags |= UPF_DEAD; 3299 3300 /* Inititalize a serial core controller device if needed */ 3301 ctrl_dev = serial_core_ctrl_find(drv, port->dev, port->ctrl_id); 3302 if (!ctrl_dev) { 3303 new_ctrl_dev = serial_core_ctrl_device_add(port); 3304 if (IS_ERR(new_ctrl_dev)) 3305 return PTR_ERR(new_ctrl_dev); 3306 ctrl_dev = new_ctrl_dev; 3307 } 3308 3309 /* 3310 * Initialize a serial core port device. Tag the port dead to prevent 3311 * serial_port_runtime_resume() trying to do anything until port has 3312 * been registered. It gets cleared by serial_core_add_one_port(). 3313 */ 3314 ret = serial_core_port_device_add(ctrl_dev, port); 3315 if (ret) 3316 goto err_unregister_ctrl_dev; 3317 3318 ret = serial_base_match_and_update_preferred_console(drv, port); 3319 if (ret) 3320 goto err_unregister_port_dev; 3321 3322 ret = serial_core_add_one_port(drv, port); 3323 if (ret) 3324 goto err_unregister_port_dev; 3325 3326 return 0; 3327 3328 err_unregister_port_dev: 3329 serial_base_port_device_remove(port->port_dev); 3330 3331 err_unregister_ctrl_dev: 3332 serial_base_ctrl_device_remove(new_ctrl_dev); 3333 3334 return ret; 3335 } 3336 3337 /* 3338 * Removes a serial core port device, and the related serial core controller 3339 * device if the last instance. 3340 */ 3341 void serial_core_unregister_port(struct uart_driver *drv, struct uart_port *port) 3342 { 3343 struct device *phys_dev = port->dev; 3344 struct serial_port_device *port_dev = port->port_dev; 3345 struct serial_ctrl_device *ctrl_dev = serial_core_get_ctrl_dev(port_dev); 3346 int ctrl_id = port->ctrl_id; 3347 3348 guard(mutex)(&port_mutex); 3349 3350 port->flags |= UPF_DEAD; 3351 3352 serial_core_remove_one_port(drv, port); 3353 3354 /* Note that struct uart_port *port is no longer valid at this point */ 3355 serial_base_port_device_remove(port_dev); 3356 3357 /* Drop the serial core controller device if no ports are using it */ 3358 if (!serial_core_ctrl_find(drv, phys_dev, ctrl_id)) 3359 serial_base_ctrl_device_remove(ctrl_dev); 3360 } 3361 3362 /** 3363 * uart_handle_dcd_change - handle a change of carrier detect state 3364 * @uport: uart_port structure for the open port 3365 * @active: new carrier detect status 3366 * 3367 * Caller must hold uport->lock. 3368 */ 3369 void uart_handle_dcd_change(struct uart_port *uport, bool active) 3370 { 3371 struct tty_port *port = &uport->state->port; 3372 struct tty_struct *tty = port->tty; 3373 struct tty_ldisc *ld; 3374 3375 lockdep_assert_held_once(&uport->lock); 3376 3377 if (tty) { 3378 ld = tty_ldisc_ref(tty); 3379 if (ld) { 3380 if (ld->ops->dcd_change) 3381 ld->ops->dcd_change(tty, active); 3382 tty_ldisc_deref(ld); 3383 } 3384 } 3385 3386 uport->icount.dcd++; 3387 3388 if (uart_dcd_enabled(uport)) { 3389 if (active) 3390 wake_up_interruptible(&port->open_wait); 3391 else if (tty) 3392 tty_hangup(tty); 3393 } 3394 } 3395 EXPORT_SYMBOL_GPL(uart_handle_dcd_change); 3396 3397 /** 3398 * uart_handle_cts_change - handle a change of clear-to-send state 3399 * @uport: uart_port structure for the open port 3400 * @active: new clear-to-send status 3401 * 3402 * Caller must hold uport->lock. 3403 */ 3404 void uart_handle_cts_change(struct uart_port *uport, bool active) 3405 { 3406 lockdep_assert_held_once(&uport->lock); 3407 3408 uport->icount.cts++; 3409 3410 if (uart_softcts_mode(uport)) { 3411 if (uport->hw_stopped) { 3412 if (active) { 3413 uport->hw_stopped = false; 3414 uport->ops->start_tx(uport); 3415 uart_write_wakeup(uport); 3416 } 3417 } else { 3418 if (!active) { 3419 uport->hw_stopped = true; 3420 uport->ops->stop_tx(uport); 3421 } 3422 } 3423 3424 } 3425 } 3426 EXPORT_SYMBOL_GPL(uart_handle_cts_change); 3427 3428 /** 3429 * uart_insert_char - push a char to the uart layer 3430 * 3431 * User is responsible to call tty_flip_buffer_push when they are done with 3432 * insertion. 3433 * 3434 * @port: corresponding port 3435 * @status: state of the serial port RX buffer (LSR for 8250) 3436 * @overrun: mask of overrun bits in @status 3437 * @ch: character to push 3438 * @flag: flag for the character (see TTY_NORMAL and friends) 3439 */ 3440 void uart_insert_char(struct uart_port *port, unsigned int status, 3441 unsigned int overrun, u8 ch, u8 flag) 3442 { 3443 struct tty_port *tport = &port->state->port; 3444 3445 if ((status & port->ignore_status_mask & ~overrun) == 0) 3446 if (tty_insert_flip_char(tport, ch, flag) == 0) 3447 ++port->icount.buf_overrun; 3448 3449 /* 3450 * Overrun is special. Since it's reported immediately, 3451 * it doesn't affect the current character. 3452 */ 3453 if (status & ~port->ignore_status_mask & overrun) 3454 if (tty_insert_flip_char(tport, 0, TTY_OVERRUN) == 0) 3455 ++port->icount.buf_overrun; 3456 } 3457 EXPORT_SYMBOL_GPL(uart_insert_char); 3458 3459 #ifdef CONFIG_MAGIC_SYSRQ_SERIAL 3460 static const u8 sysrq_toggle_seq[] = CONFIG_MAGIC_SYSRQ_SERIAL_SEQUENCE; 3461 3462 static void uart_sysrq_on(struct work_struct *w) 3463 { 3464 int sysrq_toggle_seq_len = strlen(sysrq_toggle_seq); 3465 3466 sysrq_toggle_support(1); 3467 pr_info("SysRq is enabled by magic sequence '%*pE' on serial\n", 3468 sysrq_toggle_seq_len, sysrq_toggle_seq); 3469 } 3470 static DECLARE_WORK(sysrq_enable_work, uart_sysrq_on); 3471 3472 /** 3473 * uart_try_toggle_sysrq - Enables SysRq from serial line 3474 * @port: uart_port structure where char(s) after BREAK met 3475 * @ch: new character in the sequence after received BREAK 3476 * 3477 * Enables magic SysRq when the required sequence is met on port 3478 * (see CONFIG_MAGIC_SYSRQ_SERIAL_SEQUENCE). 3479 * 3480 * Returns: %false if @ch is out of enabling sequence and should be 3481 * handled some other way, %true if @ch was consumed. 3482 */ 3483 bool uart_try_toggle_sysrq(struct uart_port *port, u8 ch) 3484 { 3485 int sysrq_toggle_seq_len = strlen(sysrq_toggle_seq); 3486 3487 if (!sysrq_toggle_seq_len) 3488 return false; 3489 3490 BUILD_BUG_ON(ARRAY_SIZE(sysrq_toggle_seq) >= U8_MAX); 3491 if (sysrq_toggle_seq[port->sysrq_seq] != ch) { 3492 port->sysrq_seq = 0; 3493 return false; 3494 } 3495 3496 if (++port->sysrq_seq < sysrq_toggle_seq_len) { 3497 port->sysrq = jiffies + SYSRQ_TIMEOUT; 3498 return true; 3499 } 3500 3501 schedule_work(&sysrq_enable_work); 3502 3503 port->sysrq = 0; 3504 return true; 3505 } 3506 EXPORT_SYMBOL_GPL(uart_try_toggle_sysrq); 3507 #endif 3508 3509 /** 3510 * uart_get_rs485_mode() - retrieve rs485 properties for given uart 3511 * @port: uart device's target port 3512 * 3513 * This function implements the device tree binding described in 3514 * Documentation/devicetree/bindings/serial/rs485.yaml. 3515 */ 3516 int uart_get_rs485_mode(struct uart_port *port) 3517 { 3518 struct serial_rs485 *rs485conf = &port->rs485; 3519 struct device *dev = port->dev; 3520 enum gpiod_flags dflags; 3521 struct gpio_desc *desc; 3522 u32 rs485_delay[2]; 3523 int ret; 3524 3525 if (!(port->rs485_supported.flags & SER_RS485_ENABLED)) 3526 return 0; 3527 3528 /* 3529 * Retrieve properties only if a firmware node exists. If no firmware 3530 * node exists, then don't touch rs485 config and keep initial rs485 3531 * properties set by driver. 3532 */ 3533 if (!dev_fwnode(dev)) 3534 return 0; 3535 3536 ret = device_property_read_u32_array(dev, "rs485-rts-delay", 3537 rs485_delay, 2); 3538 if (!ret) { 3539 rs485conf->delay_rts_before_send = rs485_delay[0]; 3540 rs485conf->delay_rts_after_send = rs485_delay[1]; 3541 } else { 3542 rs485conf->delay_rts_before_send = 0; 3543 rs485conf->delay_rts_after_send = 0; 3544 } 3545 3546 uart_sanitize_serial_rs485_delays(port, rs485conf); 3547 3548 /* 3549 * Clear full-duplex and enabled flags, set RTS polarity to active high 3550 * to get to a defined state with the following properties: 3551 */ 3552 rs485conf->flags &= ~(SER_RS485_RX_DURING_TX | SER_RS485_ENABLED | 3553 SER_RS485_TERMINATE_BUS | 3554 SER_RS485_RTS_AFTER_SEND); 3555 rs485conf->flags |= SER_RS485_RTS_ON_SEND; 3556 3557 if (device_property_read_bool(dev, "rs485-rx-during-tx")) 3558 rs485conf->flags |= SER_RS485_RX_DURING_TX; 3559 3560 if (device_property_read_bool(dev, "linux,rs485-enabled-at-boot-time")) 3561 rs485conf->flags |= SER_RS485_ENABLED; 3562 3563 if (device_property_read_bool(dev, "rs485-rts-active-low")) { 3564 rs485conf->flags &= ~SER_RS485_RTS_ON_SEND; 3565 rs485conf->flags |= SER_RS485_RTS_AFTER_SEND; 3566 } 3567 3568 /* 3569 * Disabling termination by default is the safe choice: Else if many 3570 * bus participants enable it, no communication is possible at all. 3571 * Works fine for short cables and users may enable for longer cables. 3572 */ 3573 desc = devm_gpiod_get_optional(dev, "rs485-term", GPIOD_OUT_LOW); 3574 if (IS_ERR(desc)) 3575 return dev_err_probe(dev, PTR_ERR(desc), "Cannot get rs485-term-gpios\n"); 3576 port->rs485_term_gpio = desc; 3577 if (port->rs485_term_gpio) 3578 port->rs485_supported.flags |= SER_RS485_TERMINATE_BUS; 3579 3580 dflags = (rs485conf->flags & SER_RS485_RX_DURING_TX) ? 3581 GPIOD_OUT_HIGH : GPIOD_OUT_LOW; 3582 desc = devm_gpiod_get_optional(dev, "rs485-rx-during-tx", dflags); 3583 if (IS_ERR(desc)) 3584 return dev_err_probe(dev, PTR_ERR(desc), "Cannot get rs485-rx-during-tx-gpios\n"); 3585 port->rs485_rx_during_tx_gpio = desc; 3586 if (port->rs485_rx_during_tx_gpio) 3587 port->rs485_supported.flags |= SER_RS485_RX_DURING_TX; 3588 3589 return 0; 3590 } 3591 EXPORT_SYMBOL_GPL(uart_get_rs485_mode); 3592 3593 /* Compile-time assertions for serial_rs485 layout */ 3594 static_assert(offsetof(struct serial_rs485, padding) == 3595 (offsetof(struct serial_rs485, delay_rts_after_send) + sizeof(__u32))); 3596 static_assert(offsetof(struct serial_rs485, padding1) == 3597 offsetof(struct serial_rs485, padding[1])); 3598 static_assert((offsetof(struct serial_rs485, padding[4]) + sizeof(__u32)) == 3599 sizeof(struct serial_rs485)); 3600 3601 MODULE_DESCRIPTION("Serial driver core"); 3602 MODULE_LICENSE("GPL"); 3603