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1/** @file\r
2 SerialIo implementation for PCI or SIO UARTs.\r
3\r
9c0dc0b0 4Copyright (c) 2006 - 2016, Intel Corporation. All rights reserved.<BR>\r
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5This program and the accompanying materials\r
6are licensed and made available under the terms and conditions of the BSD License\r
7which accompanies this distribution. The full text of the license may be found at\r
8http://opensource.org/licenses/bsd-license.php\r
9\r
10THE PROGRAM IS DISTRIBUTED UNDER THE BSD LICENSE ON AN "AS IS" BASIS,\r
11WITHOUT WARRANTIES OR REPRESENTATIONS OF ANY KIND, EITHER EXPRESS OR IMPLIED.\r
12\r
13**/\r
14\r
15#include "Serial.h"\r
16\r
17/**\r
18 Skip the optional Controller device path node and return the\r
19 pointer to the next device path node.\r
20\r
21 @param DevicePath Pointer to the device path.\r
22 @param ContainsControllerNode Returns TRUE if the Controller device path exists.\r
23 @param ControllerNumber Returns the Controller Number if Controller device path exists.\r
24\r
25 @return Pointer to the next device path node.\r
26**/\r
27UART_DEVICE_PATH *\r
28SkipControllerDevicePathNode (\r
29 EFI_DEVICE_PATH_PROTOCOL *DevicePath,\r
30 BOOLEAN *ContainsControllerNode,\r
31 UINT32 *ControllerNumber\r
32 )\r
33{\r
34 if ((DevicePathType (DevicePath) == HARDWARE_DEVICE_PATH) &&\r
35 (DevicePathSubType (DevicePath) == HW_CONTROLLER_DP)\r
36 ) {\r
37 if (ContainsControllerNode != NULL) {\r
38 *ContainsControllerNode = TRUE;\r
39 }\r
40 if (ControllerNumber != NULL) {\r
41 *ControllerNumber = ((CONTROLLER_DEVICE_PATH *) DevicePath)->ControllerNumber;\r
42 }\r
43 DevicePath = NextDevicePathNode (DevicePath);\r
44 } else {\r
45 if (ContainsControllerNode != NULL) {\r
46 *ContainsControllerNode = FALSE;\r
47 }\r
48 }\r
49 return (UART_DEVICE_PATH *) DevicePath;\r
50}\r
51\r
52/**\r
53 Checks whether the UART parameters are valid and computes the Divisor.\r
54\r
55 @param ClockRate The clock rate of the serial device used to verify\r
56 the BaudRate. Do not verify the BaudRate if it's 0.\r
57 @param BaudRate The requested baudrate of the serial device.\r
58 @param DataBits Number of databits used in serial device.\r
59 @param Parity The type of parity used in serial device.\r
60 @param StopBits Number of stopbits used in serial device.\r
61 @param Divisor Return the divisor if ClockRate is not 0.\r
62 @param ActualBaudRate Return the actual supported baudrate without\r
63 exceeding BaudRate. NULL means baudrate degradation\r
64 is not allowed.\r
65 If the requested BaudRate is not supported, the routine\r
66 returns TRUE and the Actual Baud Rate when ActualBaudRate\r
67 is not NULL, returns FALSE when ActualBaudRate is NULL.\r
68\r
69 @retval TRUE The UART parameters are valid.\r
70 @retval FALSE The UART parameters are not valid.\r
71**/\r
72BOOLEAN\r
73VerifyUartParameters (\r
74 IN UINT32 ClockRate,\r
75 IN UINT64 BaudRate,\r
76 IN UINT8 DataBits,\r
77 IN EFI_PARITY_TYPE Parity,\r
78 IN EFI_STOP_BITS_TYPE StopBits,\r
79 OUT UINT64 *Divisor,\r
80 OUT UINT64 *ActualBaudRate\r
81 )\r
82{\r
83 UINT64 Remainder;\r
84 UINT32 ComputedBaudRate;\r
85 UINT64 ComputedDivisor;\r
86 UINT64 Percent;\r
87\r
88 if ((DataBits < 5) || (DataBits > 8) ||\r
89 (Parity < NoParity) || (Parity > SpaceParity) ||\r
90 (StopBits < OneStopBit) || (StopBits > TwoStopBits) ||\r
91 ((DataBits == 5) && (StopBits == TwoStopBits)) ||\r
92 ((DataBits >= 6) && (DataBits <= 8) && (StopBits == OneFiveStopBits))\r
93 ) {\r
94 return FALSE;\r
95 } \r
96\r
97 //\r
98 // Do not verify the baud rate if clock rate is unknown (0).\r
99 //\r
100 if (ClockRate == 0) {\r
101 return TRUE;\r
102 }\r
103\r
104 //\r
105 // Compute divisor use to program the baud rate using a round determination\r
106 // Divisor = ClockRate / 16 / BaudRate = ClockRate / (16 * BaudRate)\r
107 // = ClockRate / (BaudRate << 4)\r
108 //\r
109 ComputedDivisor = DivU64x64Remainder (ClockRate, LShiftU64 (BaudRate, 4), &Remainder);\r
110 //\r
111 // Round Divisor up by 1 if the Remainder is more than half (16 * BaudRate)\r
112 // BaudRate * 16 / 2 = BaudRate * 8 = (BaudRate << 3)\r
113 //\r
114 if (Remainder >= LShiftU64 (BaudRate, 3)) {\r
115 ComputedDivisor++;\r
116 }\r
117 //\r
118 // If the computed divisor is larger than the maximum value that can be programmed\r
119 // into the UART, then the requested baud rate can not be supported.\r
120 //\r
121 if (ComputedDivisor > MAX_UINT16) {\r
122 return FALSE;\r
123 }\r
124\r
125 //\r
126 // If the computed divisor is 0, then use a computed divisor of 1, which will select\r
127 // the maximum supported baud rate.\r
128 //\r
129 if (ComputedDivisor == 0) {\r
130 ComputedDivisor = 1;\r
131 }\r
132\r
133 //\r
134 // Actual baud rate that the serial port will be programmed for\r
135 // should be with in 4% of requested one.\r
136 //\r
137 ComputedBaudRate = ClockRate / ((UINT16) ComputedDivisor << 4);\r
138 if (ComputedBaudRate == 0) {\r
139 return FALSE;\r
140 }\r
141\r
142 Percent = DivU64x32 (MultU64x32 (BaudRate, 100), ComputedBaudRate);\r
143 DEBUG ((EFI_D_INFO, "ClockRate = %d\n", ClockRate));\r
144 DEBUG ((EFI_D_INFO, "Divisor = %ld\n", ComputedDivisor));\r
145 DEBUG ((EFI_D_INFO, "BaudRate/Actual (%ld/%d) = %d%%\n", BaudRate, ComputedBaudRate, Percent));\r
146\r
147 //\r
148 // If the requested BaudRate is not supported:\r
149 // Returns TRUE and the Actual Baud Rate when ActualBaudRate is not NULL;\r
150 // Returns FALSE when ActualBaudRate is NULL.\r
151 //\r
152 if ((Percent >= 96) && (Percent <= 104)) {\r
153 if (ActualBaudRate != NULL) {\r
154 *ActualBaudRate = BaudRate;\r
155 }\r
156 if (Divisor != NULL) {\r
157 *Divisor = ComputedDivisor;\r
158 }\r
159 return TRUE;\r
160 }\r
161 if (ComputedBaudRate < BaudRate) {\r
162 if (ActualBaudRate != NULL) {\r
163 *ActualBaudRate = ComputedBaudRate;\r
164 }\r
165 if (Divisor != NULL) {\r
166 *Divisor = ComputedDivisor;\r
167 }\r
168 return TRUE;\r
169 }\r
170\r
171 //\r
172 // ActualBaudRate is higher than requested baud rate and more than 4% \r
173 // higher than the requested value. Increment Divisor if it is less \r
174 // than MAX_UINT16 and computed baud rate with new divisor.\r
175 //\r
176 if (ComputedDivisor == MAX_UINT16) {\r
177 return FALSE;\r
178 }\r
179 ComputedDivisor++;\r
180 ComputedBaudRate = ClockRate / ((UINT16) ComputedDivisor << 4);\r
181 if (ComputedBaudRate == 0) {\r
182 return FALSE;\r
183 }\r
184\r
185 DEBUG ((EFI_D_INFO, "ClockRate = %d\n", ClockRate));\r
186 DEBUG ((EFI_D_INFO, "Divisor = %ld\n", ComputedDivisor));\r
187 DEBUG ((EFI_D_INFO, "BaudRate/Actual (%ld/%d) = %d%%\n", BaudRate, ComputedBaudRate, Percent));\r
188\r
189 if (ActualBaudRate != NULL) {\r
190 *ActualBaudRate = ComputedBaudRate;\r
191 }\r
192 if (Divisor != NULL) {\r
193 *Divisor = ComputedDivisor;\r
194 }\r
195 return TRUE;\r
196}\r
197\r
198/**\r
199 Detect whether specific FIFO is full or not.\r
200\r
201 @param Fifo A pointer to the Data Structure SERIAL_DEV_FIFO\r
202\r
203 @return whether specific FIFO is full or not\r
204**/\r
205BOOLEAN\r
206SerialFifoFull (\r
207 IN SERIAL_DEV_FIFO *Fifo\r
208 )\r
209{\r
210 return (BOOLEAN) (((Fifo->Tail + 1) % SERIAL_MAX_FIFO_SIZE) == Fifo->Head);\r
211}\r
212\r
213/**\r
214 Detect whether specific FIFO is empty or not.\r
215 \r
216 @param Fifo A pointer to the Data Structure SERIAL_DEV_FIFO\r
217\r
218 @return whether specific FIFO is empty or not\r
219**/\r
220BOOLEAN\r
221SerialFifoEmpty (\r
222 IN SERIAL_DEV_FIFO *Fifo\r
223 )\r
224\r
225{\r
226 return (BOOLEAN) (Fifo->Head == Fifo->Tail);\r
227}\r
228\r
229/**\r
230 Add data to specific FIFO.\r
231\r
232 @param Fifo A pointer to the Data Structure SERIAL_DEV_FIFO\r
233 @param Data the data added to FIFO\r
234\r
235 @retval EFI_SUCCESS Add data to specific FIFO successfully\r
236 @retval EFI_OUT_OF_RESOURCE Failed to add data because FIFO is already full\r
237**/\r
238EFI_STATUS\r
239SerialFifoAdd (\r
240 IN OUT SERIAL_DEV_FIFO *Fifo,\r
241 IN UINT8 Data\r
242 )\r
243{\r
244 //\r
245 // if FIFO full can not add data\r
246 //\r
247 if (SerialFifoFull (Fifo)) {\r
248 return EFI_OUT_OF_RESOURCES;\r
249 }\r
250 //\r
251 // FIFO is not full can add data\r
252 //\r
253 Fifo->Data[Fifo->Tail] = Data;\r
254 Fifo->Tail = (Fifo->Tail + 1) % SERIAL_MAX_FIFO_SIZE;\r
255 return EFI_SUCCESS;\r
256}\r
257\r
258/**\r
259 Remove data from specific FIFO.\r
260\r
261 @param Fifo A pointer to the Data Structure SERIAL_DEV_FIFO\r
262 @param Data the data removed from FIFO\r
263\r
264 @retval EFI_SUCCESS Remove data from specific FIFO successfully\r
265 @retval EFI_OUT_OF_RESOURCE Failed to remove data because FIFO is empty\r
266\r
267**/\r
268EFI_STATUS\r
269SerialFifoRemove (\r
270 IN OUT SERIAL_DEV_FIFO *Fifo,\r
271 OUT UINT8 *Data\r
272 )\r
273{\r
274 //\r
275 // if FIFO is empty, no data can remove\r
276 //\r
277 if (SerialFifoEmpty (Fifo)) {\r
278 return EFI_OUT_OF_RESOURCES;\r
279 }\r
280 //\r
281 // FIFO is not empty, can remove data\r
282 //\r
283 *Data = Fifo->Data[Fifo->Head];\r
284 Fifo->Head = (Fifo->Head + 1) % SERIAL_MAX_FIFO_SIZE;\r
285 return EFI_SUCCESS;\r
286}\r
287\r
288/**\r
2048c585 289 Reads and writes all available data.\r
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290\r
291 @param SerialDevice The device to transmit.\r
292\r
293 @retval EFI_SUCCESS Data was read/written successfully.\r
294 @retval EFI_OUT_OF_RESOURCE Failed because software receive FIFO is full. Note, when\r
295 this happens, pending writes are not done.\r
296\r
297**/\r
298EFI_STATUS\r
299SerialReceiveTransmit (\r
300 IN SERIAL_DEV *SerialDevice\r
301 )\r
302\r
303{\r
304 SERIAL_PORT_LSR Lsr;\r
305 UINT8 Data;\r
306 BOOLEAN ReceiveFifoFull;\r
307 SERIAL_PORT_MSR Msr;\r
308 SERIAL_PORT_MCR Mcr;\r
309 UINTN TimeOut;\r
310\r
311 Data = 0;\r
312\r
313 //\r
314 // Begin the read or write\r
315 //\r
316 if (SerialDevice->SoftwareLoopbackEnable) {\r
317 do {\r
318 ReceiveFifoFull = SerialFifoFull (&SerialDevice->Receive);\r
319 if (!SerialFifoEmpty (&SerialDevice->Transmit)) {\r
320 SerialFifoRemove (&SerialDevice->Transmit, &Data);\r
321 if (ReceiveFifoFull) {\r
322 return EFI_OUT_OF_RESOURCES;\r
323 }\r
324\r
325 SerialFifoAdd (&SerialDevice->Receive, Data);\r
326 }\r
327 } while (!SerialFifoEmpty (&SerialDevice->Transmit));\r
328 } else {\r
329 ReceiveFifoFull = SerialFifoFull (&SerialDevice->Receive);\r
330 //\r
331 // For full handshake flow control, tell the peer to send data\r
332 // if receive buffer is available.\r
333 //\r
334 if (SerialDevice->HardwareFlowControl &&\r
335 !FeaturePcdGet(PcdSerialUseHalfHandshake)&&\r
336 !ReceiveFifoFull\r
337 ) {\r
338 Mcr.Data = READ_MCR (SerialDevice);\r
339 Mcr.Bits.Rts = 1;\r
340 WRITE_MCR (SerialDevice, Mcr.Data);\r
341 }\r
342 do {\r
343 Lsr.Data = READ_LSR (SerialDevice);\r
344\r
345 //\r
346 // Flush incomming data to prevent a an overrun during a long write\r
347 //\r
348 if ((Lsr.Bits.Dr == 1) && !ReceiveFifoFull) {\r
349 ReceiveFifoFull = SerialFifoFull (&SerialDevice->Receive);\r
350 if (!ReceiveFifoFull) {\r
351 if (Lsr.Bits.FIFOe == 1 || Lsr.Bits.Oe == 1 || Lsr.Bits.Pe == 1 || Lsr.Bits.Fe == 1 || Lsr.Bits.Bi == 1) {\r
352 REPORT_STATUS_CODE_WITH_DEVICE_PATH (\r
353 EFI_ERROR_CODE,\r
354 EFI_P_EC_INPUT_ERROR | EFI_PERIPHERAL_SERIAL_PORT,\r
355 SerialDevice->DevicePath\r
356 );\r
357 if (Lsr.Bits.FIFOe == 1 || Lsr.Bits.Pe == 1|| Lsr.Bits.Fe == 1 || Lsr.Bits.Bi == 1) {\r
358 Data = READ_RBR (SerialDevice);\r
359 continue;\r
360 }\r
361 }\r
362\r
363 Data = READ_RBR (SerialDevice);\r
364\r
365 SerialFifoAdd (&SerialDevice->Receive, Data);\r
366 \r
367 //\r
368 // For full handshake flow control, if receive buffer full\r
369 // tell the peer to stop sending data.\r
370 //\r
371 if (SerialDevice->HardwareFlowControl &&\r
372 !FeaturePcdGet(PcdSerialUseHalfHandshake) &&\r
373 SerialFifoFull (&SerialDevice->Receive)\r
374 ) {\r
375 Mcr.Data = READ_MCR (SerialDevice);\r
376 Mcr.Bits.Rts = 0;\r
377 WRITE_MCR (SerialDevice, Mcr.Data);\r
378 }\r
379\r
380\r
381 continue;\r
382 } else {\r
383 REPORT_STATUS_CODE_WITH_DEVICE_PATH (\r
384 EFI_PROGRESS_CODE,\r
385 EFI_P_SERIAL_PORT_PC_CLEAR_BUFFER | EFI_PERIPHERAL_SERIAL_PORT,\r
386 SerialDevice->DevicePath\r
387 );\r
388 }\r
389 }\r
390 //\r
391 // Do the write\r
392 //\r
393 if (Lsr.Bits.Thre == 1 && !SerialFifoEmpty (&SerialDevice->Transmit)) {\r
394 //\r
395 // Make sure the transmit data will not be missed\r
396 //\r
397 if (SerialDevice->HardwareFlowControl) {\r
398 //\r
399 // For half handshake flow control assert RTS before sending.\r
400 //\r
401 if (FeaturePcdGet(PcdSerialUseHalfHandshake)) {\r
402 Mcr.Data = READ_MCR (SerialDevice);\r
403 Mcr.Bits.Rts= 0;\r
404 WRITE_MCR (SerialDevice, Mcr.Data);\r
405 }\r
406 //\r
407 // Wait for CTS\r
408 //\r
409 TimeOut = 0;\r
410 Msr.Data = READ_MSR (SerialDevice);\r
411 while ((Msr.Bits.Dcd == 1) && ((Msr.Bits.Cts == 0) ^ FeaturePcdGet(PcdSerialUseHalfHandshake))) {\r
412 gBS->Stall (TIMEOUT_STALL_INTERVAL);\r
413 TimeOut++;\r
414 if (TimeOut > 5) {\r
415 break;\r
416 }\r
417\r
418 Msr.Data = READ_MSR (SerialDevice);\r
419 }\r
420\r
421 if ((Msr.Bits.Dcd == 0) || ((Msr.Bits.Cts == 1) ^ FeaturePcdGet(PcdSerialUseHalfHandshake))) {\r
422 SerialFifoRemove (&SerialDevice->Transmit, &Data);\r
423 WRITE_THR (SerialDevice, Data);\r
424 }\r
425\r
426 //\r
427 // For half handshake flow control, tell DCE we are done.\r
428 //\r
429 if (FeaturePcdGet(PcdSerialUseHalfHandshake)) {\r
430 Mcr.Data = READ_MCR (SerialDevice);\r
431 Mcr.Bits.Rts = 1;\r
432 WRITE_MCR (SerialDevice, Mcr.Data);\r
433 }\r
434 } else {\r
435 SerialFifoRemove (&SerialDevice->Transmit, &Data);\r
436 WRITE_THR (SerialDevice, Data);\r
437 }\r
438 }\r
439 } while (Lsr.Bits.Thre == 1 && !SerialFifoEmpty (&SerialDevice->Transmit));\r
440 }\r
441\r
442 return EFI_SUCCESS;\r
443}\r
444\r
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445//\r
446// Interface Functions\r
447//\r
448/**\r
449 Reset serial device.\r
450\r
451 @param This Pointer to EFI_SERIAL_IO_PROTOCOL\r
452\r
453 @retval EFI_SUCCESS Reset successfully\r
454 @retval EFI_DEVICE_ERROR Failed to reset\r
455\r
456**/\r
457EFI_STATUS\r
458EFIAPI\r
459SerialReset (\r
460 IN EFI_SERIAL_IO_PROTOCOL *This\r
461 )\r
462{\r
463 EFI_STATUS Status;\r
464 SERIAL_DEV *SerialDevice;\r
465 SERIAL_PORT_LCR Lcr;\r
466 SERIAL_PORT_IER Ier;\r
467 SERIAL_PORT_MCR Mcr;\r
468 SERIAL_PORT_FCR Fcr;\r
469 EFI_TPL Tpl;\r
470 UINT32 Control;\r
471\r
472 SerialDevice = SERIAL_DEV_FROM_THIS (This);\r
473\r
474 //\r
475 // Report the status code reset the serial\r
476 //\r
477 REPORT_STATUS_CODE_WITH_DEVICE_PATH (\r
478 EFI_PROGRESS_CODE,\r
479 EFI_P_PC_RESET | EFI_PERIPHERAL_SERIAL_PORT,\r
480 SerialDevice->DevicePath\r
481 );\r
482\r
483 Tpl = gBS->RaiseTPL (TPL_NOTIFY);\r
484\r
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485 //\r
486 // Make sure DLAB is 0.\r
487 //\r
488 Lcr.Data = READ_LCR (SerialDevice);\r
489 Lcr.Bits.DLab = 0;\r
490 WRITE_LCR (SerialDevice, Lcr.Data);\r
491\r
492 //\r
493 // Turn off all interrupts\r
494 //\r
495 Ier.Data = READ_IER (SerialDevice);\r
496 Ier.Bits.Ravie = 0;\r
497 Ier.Bits.Theie = 0;\r
498 Ier.Bits.Rie = 0;\r
499 Ier.Bits.Mie = 0;\r
500 WRITE_IER (SerialDevice, Ier.Data);\r
501\r
502 //\r
503 // Reset the FIFO\r
504 //\r
505 Fcr.Data = 0;\r
506 Fcr.Bits.TrFIFOE = 0;\r
507 WRITE_FCR (SerialDevice, Fcr.Data);\r
508\r
509 //\r
510 // Turn off loopback and disable device interrupt.\r
511 //\r
512 Mcr.Data = READ_MCR (SerialDevice);\r
513 Mcr.Bits.Out1 = 0;\r
514 Mcr.Bits.Out2 = 0;\r
515 Mcr.Bits.Lme = 0;\r
516 WRITE_MCR (SerialDevice, Mcr.Data);\r
517\r
518 //\r
519 // Clear the scratch pad register\r
520 //\r
521 WRITE_SCR (SerialDevice, 0);\r
522\r
523 //\r
524 // Enable FIFO\r
525 //\r
526 Fcr.Bits.TrFIFOE = 1;\r
527 if (SerialDevice->ReceiveFifoDepth > 16) {\r
528 Fcr.Bits.TrFIFO64 = 1;\r
529 }\r
530 Fcr.Bits.ResetRF = 1;\r
531 Fcr.Bits.ResetTF = 1;\r
532 WRITE_FCR (SerialDevice, Fcr.Data);\r
533\r
534 //\r
535 // Go set the current attributes\r
536 //\r
537 Status = This->SetAttributes (\r
538 This,\r
539 This->Mode->BaudRate,\r
540 This->Mode->ReceiveFifoDepth,\r
541 This->Mode->Timeout,\r
542 (EFI_PARITY_TYPE) This->Mode->Parity,\r
543 (UINT8) This->Mode->DataBits,\r
544 (EFI_STOP_BITS_TYPE) This->Mode->StopBits\r
545 );\r
546\r
547 if (EFI_ERROR (Status)) {\r
548 gBS->RestoreTPL (Tpl);\r
549 return EFI_DEVICE_ERROR;\r
550 }\r
551 //\r
552 // Go set the current control bits\r
553 //\r
554 Control = 0;\r
555 if (SerialDevice->HardwareFlowControl) {\r
556 Control |= EFI_SERIAL_HARDWARE_FLOW_CONTROL_ENABLE;\r
557 }\r
558 if (SerialDevice->SoftwareLoopbackEnable) {\r
559 Control |= EFI_SERIAL_SOFTWARE_LOOPBACK_ENABLE;\r
560 }\r
561 Status = This->SetControl (\r
562 This,\r
563 Control\r
564 );\r
565\r
566 if (EFI_ERROR (Status)) {\r
567 gBS->RestoreTPL (Tpl);\r
568 return EFI_DEVICE_ERROR;\r
569 }\r
570\r
571 //\r
572 // Reset the software FIFO\r
573 //\r
574 SerialDevice->Receive.Head = SerialDevice->Receive.Tail = 0;\r
575 SerialDevice->Transmit.Head = SerialDevice->Transmit.Tail = 0;\r
576 gBS->RestoreTPL (Tpl);\r
577\r
578 //\r
579 // Device reset is complete\r
580 //\r
581 return EFI_SUCCESS;\r
582}\r
583\r
584/**\r
585 Set new attributes to a serial device.\r
586\r
587 @param This Pointer to EFI_SERIAL_IO_PROTOCOL\r
588 @param BaudRate The baudrate of the serial device\r
589 @param ReceiveFifoDepth The depth of receive FIFO buffer\r
590 @param Timeout The request timeout for a single char\r
591 @param Parity The type of parity used in serial device\r
592 @param DataBits Number of databits used in serial device\r
593 @param StopBits Number of stopbits used in serial device\r
594\r
595 @retval EFI_SUCCESS The new attributes were set\r
596 @retval EFI_INVALID_PARAMETERS One or more attributes have an unsupported value\r
597 @retval EFI_UNSUPPORTED Data Bits can not set to 5 or 6\r
598 @retval EFI_DEVICE_ERROR The serial device is not functioning correctly (no return)\r
599\r
600**/\r
601EFI_STATUS\r
602EFIAPI\r
603SerialSetAttributes (\r
604 IN EFI_SERIAL_IO_PROTOCOL *This,\r
605 IN UINT64 BaudRate,\r
606 IN UINT32 ReceiveFifoDepth,\r
607 IN UINT32 Timeout,\r
608 IN EFI_PARITY_TYPE Parity,\r
609 IN UINT8 DataBits,\r
610 IN EFI_STOP_BITS_TYPE StopBits\r
611 )\r
612{\r
613 EFI_STATUS Status;\r
614 SERIAL_DEV *SerialDevice;\r
615 UINT64 Divisor;\r
616 SERIAL_PORT_LCR Lcr;\r
617 UART_DEVICE_PATH *Uart;\r
618 EFI_TPL Tpl;\r
619\r
620 SerialDevice = SERIAL_DEV_FROM_THIS (This);\r
621\r
622 //\r
623 // Check for default settings and fill in actual values.\r
624 //\r
625 if (BaudRate == 0) {\r
626 BaudRate = PcdGet64 (PcdUartDefaultBaudRate);\r
627 }\r
628\r
629 if (ReceiveFifoDepth == 0) {\r
630 ReceiveFifoDepth = SerialDevice->ReceiveFifoDepth;\r
631 }\r
632\r
633 if (Timeout == 0) {\r
634 Timeout = SERIAL_PORT_DEFAULT_TIMEOUT;\r
635 }\r
636\r
637 if (Parity == DefaultParity) {\r
638 Parity = (EFI_PARITY_TYPE) PcdGet8 (PcdUartDefaultParity);\r
639 }\r
640\r
641 if (DataBits == 0) {\r
642 DataBits = PcdGet8 (PcdUartDefaultDataBits);\r
643 }\r
644\r
645 if (StopBits == DefaultStopBits) {\r
646 StopBits = (EFI_STOP_BITS_TYPE) PcdGet8 (PcdUartDefaultStopBits);\r
647 }\r
648\r
649 if (!VerifyUartParameters (SerialDevice->ClockRate, BaudRate, DataBits, Parity, StopBits, &Divisor, &BaudRate)) {\r
650 return EFI_INVALID_PARAMETER;\r
651 }\r
652\r
653 if ((ReceiveFifoDepth == 0) || (ReceiveFifoDepth > SerialDevice->ReceiveFifoDepth)) {\r
654 return EFI_INVALID_PARAMETER;\r
655 }\r
656\r
657 if ((Timeout < SERIAL_PORT_MIN_TIMEOUT) || (Timeout > SERIAL_PORT_MAX_TIMEOUT)) {\r
658 return EFI_INVALID_PARAMETER;\r
659 }\r
660\r
661 Tpl = gBS->RaiseTPL (TPL_NOTIFY);\r
662\r
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663 //\r
664 // Put serial port on Divisor Latch Mode\r
665 //\r
666 Lcr.Data = READ_LCR (SerialDevice);\r
667 Lcr.Bits.DLab = 1;\r
668 WRITE_LCR (SerialDevice, Lcr.Data);\r
669\r
670 //\r
671 // Write the divisor to the serial port\r
672 //\r
673 WRITE_DLL (SerialDevice, (UINT8) Divisor);\r
674 WRITE_DLM (SerialDevice, (UINT8) ((UINT16) Divisor >> 8));\r
675\r
676 //\r
677 // Put serial port back in normal mode and set remaining attributes.\r
678 //\r
679 Lcr.Bits.DLab = 0;\r
680\r
681 switch (Parity) {\r
682 case NoParity:\r
683 Lcr.Bits.ParEn = 0;\r
684 Lcr.Bits.EvenPar = 0;\r
685 Lcr.Bits.SticPar = 0;\r
686 break;\r
687\r
688 case EvenParity:\r
689 Lcr.Bits.ParEn = 1;\r
690 Lcr.Bits.EvenPar = 1;\r
691 Lcr.Bits.SticPar = 0;\r
692 break;\r
693\r
694 case OddParity:\r
695 Lcr.Bits.ParEn = 1;\r
696 Lcr.Bits.EvenPar = 0;\r
697 Lcr.Bits.SticPar = 0;\r
698 break;\r
699\r
700 case SpaceParity:\r
701 Lcr.Bits.ParEn = 1;\r
702 Lcr.Bits.EvenPar = 1;\r
703 Lcr.Bits.SticPar = 1;\r
704 break;\r
705\r
706 case MarkParity:\r
707 Lcr.Bits.ParEn = 1;\r
708 Lcr.Bits.EvenPar = 0;\r
709 Lcr.Bits.SticPar = 1;\r
710 break;\r
711\r
712 default:\r
713 break;\r
714 }\r
715\r
716 switch (StopBits) {\r
717 case OneStopBit:\r
718 Lcr.Bits.StopB = 0;\r
719 break;\r
720\r
721 case OneFiveStopBits:\r
722 case TwoStopBits:\r
723 Lcr.Bits.StopB = 1;\r
724 break;\r
725\r
726 default:\r
727 break;\r
728 }\r
729 //\r
730 // DataBits\r
731 //\r
732 Lcr.Bits.SerialDB = (UINT8) ((DataBits - 5) & 0x03);\r
733 WRITE_LCR (SerialDevice, Lcr.Data);\r
734\r
735 //\r
736 // Set the Serial I/O mode\r
737 //\r
738 This->Mode->BaudRate = BaudRate;\r
739 This->Mode->ReceiveFifoDepth = ReceiveFifoDepth;\r
740 This->Mode->Timeout = Timeout;\r
741 This->Mode->Parity = Parity;\r
742 This->Mode->DataBits = DataBits;\r
743 This->Mode->StopBits = StopBits;\r
744\r
745 //\r
746 // See if Device Path Node has actually changed\r
747 //\r
748 if (SerialDevice->UartDevicePath.BaudRate == BaudRate &&\r
749 SerialDevice->UartDevicePath.DataBits == DataBits &&\r
750 SerialDevice->UartDevicePath.Parity == Parity &&\r
751 SerialDevice->UartDevicePath.StopBits == StopBits\r
752 ) {\r
753 gBS->RestoreTPL (Tpl);\r
754 return EFI_SUCCESS;\r
755 }\r
756 //\r
757 // Update the device path\r
758 //\r
759 SerialDevice->UartDevicePath.BaudRate = BaudRate;\r
760 SerialDevice->UartDevicePath.DataBits = DataBits;\r
761 SerialDevice->UartDevicePath.Parity = (UINT8) Parity;\r
762 SerialDevice->UartDevicePath.StopBits = (UINT8) StopBits;\r
763\r
764 Status = EFI_SUCCESS;\r
765 if (SerialDevice->Handle != NULL) {\r
766\r
767 //\r
768 // Skip the optional Controller device path node\r
769 //\r
770 Uart = SkipControllerDevicePathNode (\r
771 (EFI_DEVICE_PATH_PROTOCOL *) (\r
772 (UINT8 *) SerialDevice->DevicePath + GetDevicePathSize (SerialDevice->ParentDevicePath) - END_DEVICE_PATH_LENGTH\r
773 ),\r
774 NULL,\r
775 NULL\r
776 );\r
777 CopyMem (Uart, &SerialDevice->UartDevicePath, sizeof (UART_DEVICE_PATH));\r
778 Status = gBS->ReinstallProtocolInterface (\r
779 SerialDevice->Handle,\r
780 &gEfiDevicePathProtocolGuid,\r
781 SerialDevice->DevicePath,\r
782 SerialDevice->DevicePath\r
783 );\r
784 }\r
785\r
786 gBS->RestoreTPL (Tpl);\r
787\r
788 return Status;\r
789}\r
790\r
791/**\r
792 Set Control Bits.\r
793\r
794 @param This Pointer to EFI_SERIAL_IO_PROTOCOL\r
795 @param Control Control bits that can be settable\r
796\r
797 @retval EFI_SUCCESS New Control bits were set successfully\r
798 @retval EFI_UNSUPPORTED The Control bits wanted to set are not supported\r
799\r
800**/\r
801EFI_STATUS\r
802EFIAPI\r
803SerialSetControl (\r
804 IN EFI_SERIAL_IO_PROTOCOL *This,\r
805 IN UINT32 Control\r
806 )\r
807{\r
808 SERIAL_DEV *SerialDevice;\r
809 SERIAL_PORT_MCR Mcr;\r
810 EFI_TPL Tpl;\r
811 UART_FLOW_CONTROL_DEVICE_PATH *FlowControl;\r
812 EFI_STATUS Status;\r
813\r
814 //\r
815 // The control bits that can be set are :\r
816 // EFI_SERIAL_DATA_TERMINAL_READY: 0x0001 // WO\r
817 // EFI_SERIAL_REQUEST_TO_SEND: 0x0002 // WO\r
818 // EFI_SERIAL_HARDWARE_LOOPBACK_ENABLE: 0x1000 // RW\r
819 // EFI_SERIAL_SOFTWARE_LOOPBACK_ENABLE: 0x2000 // RW\r
820 // EFI_SERIAL_HARDWARE_FLOW_CONTROL_ENABLE: 0x4000 // RW\r
821 //\r
822 SerialDevice = SERIAL_DEV_FROM_THIS (This);\r
823\r
824 //\r
825 // first determine the parameter is invalid\r
826 //\r
827 if ((Control & (~(EFI_SERIAL_REQUEST_TO_SEND | EFI_SERIAL_DATA_TERMINAL_READY |\r
828 EFI_SERIAL_HARDWARE_LOOPBACK_ENABLE | EFI_SERIAL_SOFTWARE_LOOPBACK_ENABLE |\r
829 EFI_SERIAL_HARDWARE_FLOW_CONTROL_ENABLE))) != 0) {\r
830 return EFI_UNSUPPORTED;\r
831 }\r
832\r
833 Tpl = gBS->RaiseTPL (TPL_NOTIFY);\r
834\r
835 Mcr.Data = READ_MCR (SerialDevice);\r
836 Mcr.Bits.DtrC = 0;\r
837 Mcr.Bits.Rts = 0;\r
838 Mcr.Bits.Lme = 0;\r
839 SerialDevice->SoftwareLoopbackEnable = FALSE;\r
840 SerialDevice->HardwareFlowControl = FALSE;\r
841\r
842 if ((Control & EFI_SERIAL_DATA_TERMINAL_READY) == EFI_SERIAL_DATA_TERMINAL_READY) {\r
843 Mcr.Bits.DtrC = 1;\r
844 }\r
845\r
846 if ((Control & EFI_SERIAL_REQUEST_TO_SEND) == EFI_SERIAL_REQUEST_TO_SEND) {\r
847 Mcr.Bits.Rts = 1;\r
848 }\r
849\r
850 if ((Control & EFI_SERIAL_HARDWARE_LOOPBACK_ENABLE) == EFI_SERIAL_HARDWARE_LOOPBACK_ENABLE) {\r
851 Mcr.Bits.Lme = 1;\r
852 }\r
853\r
854 if ((Control & EFI_SERIAL_HARDWARE_FLOW_CONTROL_ENABLE) == EFI_SERIAL_HARDWARE_FLOW_CONTROL_ENABLE) {\r
855 SerialDevice->HardwareFlowControl = TRUE;\r
856 }\r
857\r
858 WRITE_MCR (SerialDevice, Mcr.Data);\r
859\r
860 if ((Control & EFI_SERIAL_SOFTWARE_LOOPBACK_ENABLE) == EFI_SERIAL_SOFTWARE_LOOPBACK_ENABLE) {\r
861 SerialDevice->SoftwareLoopbackEnable = TRUE;\r
862 }\r
863\r
864 Status = EFI_SUCCESS;\r
865 if (SerialDevice->Handle != NULL) {\r
866 FlowControl = (UART_FLOW_CONTROL_DEVICE_PATH *) (\r
867 (UINTN) SerialDevice->DevicePath\r
868 + GetDevicePathSize (SerialDevice->ParentDevicePath)\r
869 - END_DEVICE_PATH_LENGTH\r
870 + sizeof (UART_DEVICE_PATH)\r
871 );\r
872 if (IsUartFlowControlDevicePathNode (FlowControl) &&\r
873 ((BOOLEAN) (ReadUnaligned32 (&FlowControl->FlowControlMap) == UART_FLOW_CONTROL_HARDWARE) != SerialDevice->HardwareFlowControl)) {\r
874 //\r
875 // Flow Control setting is changed, need to reinstall device path protocol\r
876 //\r
877 WriteUnaligned32 (&FlowControl->FlowControlMap, SerialDevice->HardwareFlowControl ? UART_FLOW_CONTROL_HARDWARE : 0);\r
878 Status = gBS->ReinstallProtocolInterface (\r
879 SerialDevice->Handle,\r
880 &gEfiDevicePathProtocolGuid,\r
881 SerialDevice->DevicePath,\r
882 SerialDevice->DevicePath\r
883 );\r
884 }\r
885 }\r
886\r
887 gBS->RestoreTPL (Tpl);\r
888\r
889 return Status;\r
890}\r
891\r
892/**\r
893 Get ControlBits.\r
894\r
895 @param This Pointer to EFI_SERIAL_IO_PROTOCOL\r
896 @param Control Control signals of the serial device\r
897\r
898 @retval EFI_SUCCESS Get Control signals successfully\r
899\r
900**/\r
901EFI_STATUS\r
902EFIAPI\r
903SerialGetControl (\r
904 IN EFI_SERIAL_IO_PROTOCOL *This,\r
905 OUT UINT32 *Control\r
906 )\r
907{\r
908 SERIAL_DEV *SerialDevice;\r
909 SERIAL_PORT_MSR Msr;\r
910 SERIAL_PORT_MCR Mcr;\r
911 EFI_TPL Tpl;\r
912\r
913 Tpl = gBS->RaiseTPL (TPL_NOTIFY);\r
914\r
915 SerialDevice = SERIAL_DEV_FROM_THIS (This);\r
916\r
917 *Control = 0;\r
918\r
919 //\r
920 // Read the Modem Status Register\r
921 //\r
922 Msr.Data = READ_MSR (SerialDevice);\r
923\r
924 if (Msr.Bits.Cts == 1) {\r
925 *Control |= EFI_SERIAL_CLEAR_TO_SEND;\r
926 }\r
927\r
928 if (Msr.Bits.Dsr == 1) {\r
929 *Control |= EFI_SERIAL_DATA_SET_READY;\r
930 }\r
931\r
932 if (Msr.Bits.Ri == 1) {\r
933 *Control |= EFI_SERIAL_RING_INDICATE;\r
934 }\r
935\r
936 if (Msr.Bits.Dcd == 1) {\r
937 *Control |= EFI_SERIAL_CARRIER_DETECT;\r
938 }\r
939 //\r
940 // Read the Modem Control Register\r
941 //\r
942 Mcr.Data = READ_MCR (SerialDevice);\r
943\r
944 if (Mcr.Bits.DtrC == 1) {\r
945 *Control |= EFI_SERIAL_DATA_TERMINAL_READY;\r
946 }\r
947\r
948 if (Mcr.Bits.Rts == 1) {\r
949 *Control |= EFI_SERIAL_REQUEST_TO_SEND;\r
950 }\r
951\r
952 if (Mcr.Bits.Lme == 1) {\r
953 *Control |= EFI_SERIAL_HARDWARE_LOOPBACK_ENABLE;\r
954 }\r
955\r
956 if (SerialDevice->HardwareFlowControl) {\r
957 *Control |= EFI_SERIAL_HARDWARE_FLOW_CONTROL_ENABLE;\r
958 }\r
959 //\r
960 // Update FIFO status\r
961 //\r
962 SerialReceiveTransmit (SerialDevice);\r
963\r
964 //\r
965 // See if the Transmit FIFO is empty\r
966 //\r
967 if (SerialFifoEmpty (&SerialDevice->Transmit)) {\r
968 *Control |= EFI_SERIAL_OUTPUT_BUFFER_EMPTY;\r
969 }\r
970\r
971 //\r
972 // See if the Receive FIFO is empty.\r
973 //\r
974 if (SerialFifoEmpty (&SerialDevice->Receive)) {\r
975 *Control |= EFI_SERIAL_INPUT_BUFFER_EMPTY;\r
976 }\r
977\r
978 if (SerialDevice->SoftwareLoopbackEnable) {\r
979 *Control |= EFI_SERIAL_SOFTWARE_LOOPBACK_ENABLE;\r
980 }\r
981\r
982 gBS->RestoreTPL (Tpl);\r
983\r
984 return EFI_SUCCESS;\r
985}\r
986\r
987/**\r
988 Write the specified number of bytes to serial device.\r
989\r
990 @param This Pointer to EFI_SERIAL_IO_PROTOCOL\r
991 @param BufferSize On input the size of Buffer, on output the amount of\r
992 data actually written\r
993 @param Buffer The buffer of data to write\r
994\r
995 @retval EFI_SUCCESS The data were written successfully\r
996 @retval EFI_DEVICE_ERROR The device reported an error\r
997 @retval EFI_TIMEOUT The write operation was stopped due to timeout\r
998\r
999**/\r
1000EFI_STATUS\r
1001EFIAPI\r
1002SerialWrite (\r
1003 IN EFI_SERIAL_IO_PROTOCOL *This,\r
1004 IN OUT UINTN *BufferSize,\r
1005 IN VOID *Buffer\r
1006 )\r
1007{\r
1008 SERIAL_DEV *SerialDevice;\r
1009 UINT8 *CharBuffer;\r
1010 UINT32 Index;\r
1011 UINTN Elapsed;\r
1012 UINTN ActualWrite;\r
1013 EFI_TPL Tpl;\r
1014 UINTN Timeout;\r
1015 UINTN BitsPerCharacter;\r
1016\r
1017 SerialDevice = SERIAL_DEV_FROM_THIS (This);\r
1018 Elapsed = 0;\r
1019 ActualWrite = 0;\r
1020\r
1021 if (*BufferSize == 0) {\r
1022 return EFI_SUCCESS;\r
1023 }\r
1024\r
1025 if (Buffer == NULL) {\r
1026 REPORT_STATUS_CODE_WITH_DEVICE_PATH (\r
1027 EFI_ERROR_CODE,\r
1028 EFI_P_EC_OUTPUT_ERROR | EFI_PERIPHERAL_SERIAL_PORT,\r
1029 SerialDevice->DevicePath\r
1030 );\r
1031\r
1032 return EFI_DEVICE_ERROR;\r
1033 }\r
1034\r
1035 Tpl = gBS->RaiseTPL (TPL_NOTIFY);\r
1036\r
1037 CharBuffer = (UINT8 *) Buffer;\r
1038\r
1039 //\r
1040 // Compute the number of bits in a single character. This is a start bit,\r
1041 // followed by the number of data bits, followed by the number of stop bits.\r
1042 // The number of stop bits is specified by an enumeration that includes\r
1043 // support for 1.5 stop bits. Treat 1.5 stop bits as 2 stop bits.\r
1044 //\r
1045 BitsPerCharacter =\r
1046 1 +\r
1047 This->Mode->DataBits +\r
1048 ((This->Mode->StopBits == TwoStopBits) ? 2 : This->Mode->StopBits);\r
1049\r
1050 //\r
1051 // Compute the timeout in microseconds to wait for a single byte to be\r
1052 // transmitted. The Mode structure contans a Timeout field that is the\r
1053 // maximum time to transmit or receive a character. However, many UARTs\r
1054 // have a FIFO for transmits, so the time required to add one new character\r
1055 // to the transmit FIFO may be the time required to flush a full FIFO. If\r
1056 // the Timeout in the Mode structure is smaller than the time required to\r
1057 // flush a full FIFO at the current baud rate, then use a timeout value that\r
1058 // is required to flush a full transmit FIFO.\r
1059 //\r
1060 Timeout = MAX (\r
1061 This->Mode->Timeout,\r
1062 (UINTN)DivU64x64Remainder (\r
1063 BitsPerCharacter * (SerialDevice->TransmitFifoDepth + 1) * 1000000,\r
1064 This->Mode->BaudRate,\r
1065 NULL\r
1066 )\r
1067 );\r
1068 \r
1069 for (Index = 0; Index < *BufferSize; Index++) {\r
1070 SerialFifoAdd (&SerialDevice->Transmit, CharBuffer[Index]);\r
1071\r
1072 while (SerialReceiveTransmit (SerialDevice) != EFI_SUCCESS || !SerialFifoEmpty (&SerialDevice->Transmit)) {\r
1073 //\r
1074 // Unsuccessful write so check if timeout has expired, if not,\r
1075 // stall for a bit, increment time elapsed, and try again\r
1076 //\r
1077 if (Elapsed >= Timeout) {\r
1078 *BufferSize = ActualWrite;\r
1079 gBS->RestoreTPL (Tpl);\r
1080 return EFI_TIMEOUT;\r
1081 }\r
1082\r
1083 gBS->Stall (TIMEOUT_STALL_INTERVAL);\r
1084\r
1085 Elapsed += TIMEOUT_STALL_INTERVAL;\r
1086 }\r
1087\r
1088 ActualWrite++;\r
1089 //\r
1090 // Successful write so reset timeout\r
1091 //\r
1092 Elapsed = 0;\r
1093 }\r
1094\r
1095 gBS->RestoreTPL (Tpl);\r
1096\r
1097 return EFI_SUCCESS;\r
1098}\r
1099\r
1100/**\r
1101 Read the specified number of bytes from serial device.\r
1102\r
1103 @param This Pointer to EFI_SERIAL_IO_PROTOCOL\r
1104 @param BufferSize On input the size of Buffer, on output the amount of\r
1105 data returned in buffer\r
1106 @param Buffer The buffer to return the data into\r
1107\r
1108 @retval EFI_SUCCESS The data were read successfully\r
1109 @retval EFI_DEVICE_ERROR The device reported an error\r
1110 @retval EFI_TIMEOUT The read operation was stopped due to timeout\r
1111\r
1112**/\r
1113EFI_STATUS\r
1114EFIAPI\r
1115SerialRead (\r
1116 IN EFI_SERIAL_IO_PROTOCOL *This,\r
1117 IN OUT UINTN *BufferSize,\r
1118 OUT VOID *Buffer\r
1119 )\r
1120{\r
1121 SERIAL_DEV *SerialDevice;\r
1122 UINT32 Index;\r
1123 UINT8 *CharBuffer;\r
1124 UINTN Elapsed;\r
1125 EFI_STATUS Status;\r
1126 EFI_TPL Tpl;\r
1127\r
1128 SerialDevice = SERIAL_DEV_FROM_THIS (This);\r
1129 Elapsed = 0;\r
1130\r
1131 if (*BufferSize == 0) {\r
1132 return EFI_SUCCESS;\r
1133 }\r
1134\r
1135 if (Buffer == NULL) {\r
1136 return EFI_DEVICE_ERROR;\r
1137 }\r
1138\r
1139 Tpl = gBS->RaiseTPL (TPL_NOTIFY);\r
1140\r
1141 Status = SerialReceiveTransmit (SerialDevice);\r
1142\r
1143 if (EFI_ERROR (Status)) {\r
1144 *BufferSize = 0;\r
1145\r
1146 REPORT_STATUS_CODE_WITH_DEVICE_PATH (\r
1147 EFI_ERROR_CODE,\r
1148 EFI_P_EC_INPUT_ERROR | EFI_PERIPHERAL_SERIAL_PORT,\r
1149 SerialDevice->DevicePath\r
1150 );\r
1151\r
1152 gBS->RestoreTPL (Tpl);\r
1153\r
1154 return EFI_DEVICE_ERROR;\r
1155 }\r
1156\r
1157 CharBuffer = (UINT8 *) Buffer;\r
1158 for (Index = 0; Index < *BufferSize; Index++) {\r
1159 while (SerialFifoRemove (&SerialDevice->Receive, &(CharBuffer[Index])) != EFI_SUCCESS) {\r
1160 //\r
1161 // Unsuccessful read so check if timeout has expired, if not,\r
1162 // stall for a bit, increment time elapsed, and try again\r
1163 // Need this time out to get conspliter to work.\r
1164 //\r
1165 if (Elapsed >= This->Mode->Timeout) {\r
1166 *BufferSize = Index;\r
1167 gBS->RestoreTPL (Tpl);\r
1168 return EFI_TIMEOUT;\r
1169 }\r
1170\r
1171 gBS->Stall (TIMEOUT_STALL_INTERVAL);\r
1172 Elapsed += TIMEOUT_STALL_INTERVAL;\r
1173\r
1174 Status = SerialReceiveTransmit (SerialDevice);\r
1175 if (Status == EFI_DEVICE_ERROR) {\r
1176 *BufferSize = Index;\r
1177 gBS->RestoreTPL (Tpl);\r
1178 return EFI_DEVICE_ERROR;\r
1179 }\r
1180 }\r
1181 //\r
1182 // Successful read so reset timeout\r
1183 //\r
1184 Elapsed = 0;\r
1185 }\r
1186\r
1187 SerialReceiveTransmit (SerialDevice);\r
1188\r
1189 gBS->RestoreTPL (Tpl);\r
1190\r
1191 return EFI_SUCCESS;\r
1192}\r
1193\r
1194/**\r
1195 Use scratchpad register to test if this serial port is present.\r
1196\r
1197 @param SerialDevice Pointer to serial device structure\r
1198\r
1199 @return if this serial port is present\r
1200**/\r
1201BOOLEAN\r
1202SerialPresent (\r
1203 IN SERIAL_DEV *SerialDevice\r
1204 )\r
1205\r
1206{\r
1207 UINT8 Temp;\r
1208 BOOLEAN Status;\r
1209\r
1210 Status = TRUE;\r
1211\r
1212 //\r
1213 // Save SCR reg\r
1214 //\r
1215 Temp = READ_SCR (SerialDevice);\r
1216 WRITE_SCR (SerialDevice, 0xAA);\r
1217\r
1218 if (READ_SCR (SerialDevice) != 0xAA) {\r
1219 Status = FALSE;\r
1220 }\r
1221\r
1222 WRITE_SCR (SerialDevice, 0x55);\r
1223\r
1224 if (READ_SCR (SerialDevice) != 0x55) {\r
1225 Status = FALSE;\r
1226 }\r
1227 //\r
1228 // Restore SCR\r
1229 //\r
1230 WRITE_SCR (SerialDevice, Temp);\r
1231 return Status;\r
1232}\r
1233\r
1234/**\r
1235 Read serial port.\r
1236\r
1237 @param SerialDev Pointer to serial device\r
1238 @param Offset Offset in register group\r
1239\r
1240 @return Data read from serial port\r
1241\r
1242**/\r
1243UINT8\r
1244SerialReadRegister (\r
1245 IN SERIAL_DEV *SerialDev,\r
1246 IN UINT32 Offset\r
1247 )\r
1248{\r
1249 UINT8 Data;\r
1250 EFI_STATUS Status;\r
1251\r
1252 if (SerialDev->PciDeviceInfo == NULL) {\r
1253 return IoRead8 ((UINTN) SerialDev->BaseAddress + Offset * SerialDev->RegisterStride);\r
1254 } else {\r
1255 if (SerialDev->MmioAccess) {\r
1256 Status = SerialDev->PciDeviceInfo->PciIo->Mem.Read (SerialDev->PciDeviceInfo->PciIo, EfiPciIoWidthUint8, EFI_PCI_IO_PASS_THROUGH_BAR,\r
1257 SerialDev->BaseAddress + Offset * SerialDev->RegisterStride, 1, &Data);\r
1258 } else {\r
1259 Status = SerialDev->PciDeviceInfo->PciIo->Io.Read (SerialDev->PciDeviceInfo->PciIo, EfiPciIoWidthUint8, EFI_PCI_IO_PASS_THROUGH_BAR,\r
1260 SerialDev->BaseAddress + Offset * SerialDev->RegisterStride, 1, &Data);\r
1261 }\r
1262 ASSERT_EFI_ERROR (Status);\r
1263 return Data;\r
1264 }\r
1265}\r
1266\r
1267/**\r
1268 Write serial port.\r
1269\r
1270 @param SerialDev Pointer to serial device\r
1271 @param Offset Offset in register group\r
1272 @param Data data which is to be written to some serial port register\r
1273**/\r
1274VOID\r
1275SerialWriteRegister (\r
1276 IN SERIAL_DEV *SerialDev,\r
1277 IN UINT32 Offset,\r
1278 IN UINT8 Data\r
1279 )\r
1280{\r
1281 EFI_STATUS Status;\r
1282\r
1283 if (SerialDev->PciDeviceInfo == NULL) {\r
1284 IoWrite8 ((UINTN) SerialDev->BaseAddress + Offset * SerialDev->RegisterStride, Data);\r
1285 } else {\r
1286 if (SerialDev->MmioAccess) {\r
1287 Status = SerialDev->PciDeviceInfo->PciIo->Mem.Write (SerialDev->PciDeviceInfo->PciIo, EfiPciIoWidthUint8, EFI_PCI_IO_PASS_THROUGH_BAR,\r
1288 SerialDev->BaseAddress + Offset * SerialDev->RegisterStride, 1, &Data);\r
1289 } else {\r
1290 Status = SerialDev->PciDeviceInfo->PciIo->Io.Write (SerialDev->PciDeviceInfo->PciIo, EfiPciIoWidthUint8, EFI_PCI_IO_PASS_THROUGH_BAR,\r
1291 SerialDev->BaseAddress + Offset * SerialDev->RegisterStride, 1, &Data);\r
1292 }\r
1293 ASSERT_EFI_ERROR (Status);\r
1294 }\r
1295}\r