Controller Area Network library for NUCLEO boards equipped with CAN peripheral.

Dependents:   Nucleo-Courtois CANBLE CANnucleo_Hello3 Nucleo_Serialprintf ... more

Controller Area Network library for the NUCLEO and DISCOVERY boards equipped with CAN peripheral


Information

Because CAN support has been finally implemented into the mbed library also for the ST boards there is no need to use the CANnucleo library anymore (however you may if you want). The CAN_Hello example is trying to demonstrate the mbed built-in CAN API with NUCLEO boards.


Provides CAN support for the following boards:

with the following features:

  • Easy to use. Delete the mbed library from your project and import the latest mbed-dev and CANnucleo libraries. In the mbed-dev library open the device.h file associated with the selected target board and add #undef DEVICE_CAN as follows:

device.h

#ifndef MBED_DEVICE_H
#define MBED_DEVICE_H

//=======================================
#define DEVICE_ID_LENGTH       24

#undef DEVICE_CAN

#include "objects.h"

#endif

See the CANnucleo_Hello demo for more details.

  • Automatic recovery from bus-off state can be enabled/disabled in the constructor (defaults to ENABLE).
  • Up to 14 filters (0 - 13) are available for the application to set up for message filtering performed by hardware.
    For more details see below or have a look at the comments in CANnucleo.cpp.
  • One CAN channel per NUCLEO board is supported. The CAN peripheral can be connected either to pins PA_11, PA_12 (Receiver, Transmitter) or to pins PB_8, PB_9 (Receiver, Transmitter). This is configured when creating a CAN instance.
  • Simplifies adding/getting data to/from a CAN message by using the << (append) and the >> (extract) operators.

Import programCANnucleo_Hello

Using CAN bus with NUCLEO boards (Demo for the CANnucleo library).



Filtering performed by the built-in CAN controller without disturbing the CPU

CANnucleo supports only mask mode and 32-bit filter scale. Identifier list mode filtering and 16-bit filter scale are not supported. There are 14 filters available (0 - 13) for the application to set up. Each filter is a 32-bit filter defined by a filter ID and a filter mask. If no filter is set up then no CAN message is accepted! That's why filter #0 is set up in the constructor to accept all CAN messages by default. On reception of a message it is compared with filter #0. If there is a match, the message is accepted and stored. If there is no match, the incoming identifier is then compared with the next filter. If the received identifier does not match any of the identifiers configured in the filters, the message is discarded by hardware without disturbing the software.

CAN filter function - designed to setup a CAN filter

int CAN::filter(unsigned int id, unsigned int mask, CANFormat format, int handle)

Parameters

id - 'Filter ID' defines the bit values to be compared with the corresponding received bits.

Mapping of 32-bits (4-bytes) :

STID[10:3]STID[2:0] EXID[17:13]EXID[12:5]EXID[4:0] IDE RTR 0
  • STID - Stardard Identifier bits
  • EXID - Extended Identifier bits
  • [x:y]- bit range
  • IDE - Identifier Extension bit (0 -> Standard Identifier, 1 -> Extended Identifier)
  • RTR - Remote Transmission Request bit (0 -> Remote Transmission Request, 1 -> Standard message)

mask - 'Filter mask' defines which bits of the 'Filter ID' are compared with the received bits and which are disregarded.
Mapping of 32-bits (4-bytes) :

STID[10:3]STID[2:0] EXID[17:13]EXID[12:5]EXID[4:0] IDE RTR 0
  • STID - Stardard Identifier bits
  • EXID - Extended Identifier bits
  • [x:y]- bit range
  • IDE - Identifier Extension bit
  • RTR - Remote Transmission Request bit
  • 1 -> bit is considered
  • 0 -> bit is disregarded

format - This parameter must be CANAny
handle - Selects the filter. This parameter must be a number between 0 and 13.
retval - 0 - successful, 1 - error, 2 - busy, 3 - time out

Example of filter set up and filtering

Let's assume we would like to accept only messages with standard identifier 0x207:

STID[15:0] = 0x207 = 00000010 00000111


We map the STID to filter ID by shifting the bits adequately:

Filter ID = STID << (16 + (15 - 10)) = STID << 21 = 01000000 11100000 00000000 00000000


To compare only the bits representing STID we set the filter mask appropriately:

Filter mask = 11111111 11100000 00000000 00000100 = 0xFFE00004
              |||||||| |||                    |
              -------- ---                    |
                  |     |                     |
           STID[10:3]  STID[2:0]             IDE


Recall that filter #0 has been set up in the constructor to accept all CAN messages by default. So we have to reconfigure it. If we were set up filter #1 here then filter #0 would accept all the messages and no message would reach filter #1!
To reconfigure (set up) filter #0 we call:

can.filter(0x207 << 21, 0xFFE00004, CANAny, 0);


            Only these bits of 'Filter id' (set to 1 here in 'Filter mask') are compared 
            with the corresponding bits of received message (the others are disregarded)
                                |
                 ---------------------------------
                 |||||||| |||                    |
   Filter mask = 11111111 11100000 00000000 00000100 (= 0xFFE00004)
   Filter id   = 01000000 11100000 00000000 00000000 (= 0x40E00000)
                 |||||||| |||                    |
                 ---------------------------------
                                |
            To accept the message the values of these bits must match.
            Otherwise the message is passed to the next filter or
            discarded if this was the last active filter.
                                |
                 ---------------------------------
                 |||||||| |||                    |
   Received id = 01000000 11100000 00000000 00000010 (= 0x40E00002)
                             ||||| |||||||| ||||| ||
                             -----------------------
                                         |
                          These bits (set to 0 in 'Filter mask') are disregarded (masked).
                          They can have arbitrary values.


NOTE: For the meaning of individual bits see the mapping of 32-bits explained above.

We can use the filter function to setup more (up to 14) CAN filters for example as follows:

can.filter(0x207 << 21, 0xFFE00004, CANAny, 0);    // filter #0
can.filter(0x251 << 21, 0xFFE00004, CANAny, 1);    // filter #1
can.filter(0x304 << 21, 0xFFE00004, CANAny, 2);    // filter #2
...
Committer:
hudakz
Date:
Tue Dec 22 18:19:16 2015 +0000
Revision:
11:439f3a34c42e
Parent:
10:227a455d0f9f
Child:
12:c45310ff2233
Support for NUCLEO-F303RE added.

Who changed what in which revision?

UserRevisionLine numberNew contents of line
hudakz 0:e29bc8e0dddd 1 /*
hudakz 5:b53e5ee15315 2 ******************************************************************************
hudakz 5:b53e5ee15315 3 * @file can_api.c
hudakz 5:b53e5ee15315 4 * @author Zoltan Hudak
hudakz 5:b53e5ee15315 5 * @version
hudakz 5:b53e5ee15315 6 * @date 04-August-2015
hudakz 5:b53e5ee15315 7 * @brief CAN api for NUCLEO-F103RB platform
hudakz 5:b53e5ee15315 8 ******************************************************************************
hudakz 5:b53e5ee15315 9 * @attention
hudakz 5:b53e5ee15315 10 *
hudakz 5:b53e5ee15315 11 * <h2><center>&copy; COPYRIGHT(c) 2015 Zoltan Hudak <hudakz@inbox.com>
hudakz 5:b53e5ee15315 12 *
hudakz 5:b53e5ee15315 13 * All rights reserved.
hudakz 0:e29bc8e0dddd 14
hudakz 0:e29bc8e0dddd 15 This program is free software: you can redistribute it and/or modify
hudakz 0:e29bc8e0dddd 16 it under the terms of the GNU General Public License as published by
hudakz 0:e29bc8e0dddd 17 the Free Software Foundation, either version 3 of the License, or
hudakz 0:e29bc8e0dddd 18 (at your option) any later version.
hudakz 0:e29bc8e0dddd 19
hudakz 0:e29bc8e0dddd 20 This program is distributed in the hope that it will be useful,
hudakz 0:e29bc8e0dddd 21 but WITHOUT ANY WARRANTY; without even the implied warranty of
hudakz 0:e29bc8e0dddd 22 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
hudakz 0:e29bc8e0dddd 23 GNU General Public License for more details.
hudakz 0:e29bc8e0dddd 24
hudakz 0:e29bc8e0dddd 25 You should have received a copy of the GNU General Public License
hudakz 0:e29bc8e0dddd 26 along with this program. If not, see <http://www.gnu.org/licenses/>.
hudakz 0:e29bc8e0dddd 27 */
hudakz 11:439f3a34c42e 28 #if defined(TARGET_NUCLEO_F103RB)
hudakz 11:439f3a34c42e 29 #include "stm32f1xx_hal.h"
hudakz 11:439f3a34c42e 30 #elif defined(TARGET_NUCLEO_F303RE)
hudakz 11:439f3a34c42e 31 #include "stm32f3xx_hal.h"
hudakz 11:439f3a34c42e 32 #endif
hudakz 0:e29bc8e0dddd 33 #include "can_api.h"
hudakz 0:e29bc8e0dddd 34 #include "can_helper.h"
hudakz 0:e29bc8e0dddd 35 #include "pinmap.h"
hudakz 0:e29bc8e0dddd 36
hudakz 0:e29bc8e0dddd 37 extern void (*rxCompleteCallback) (void);
hudakz 0:e29bc8e0dddd 38 extern CAN_HandleTypeDef _canHandle;
hudakz 0:e29bc8e0dddd 39
hudakz 0:e29bc8e0dddd 40 /**
hudakz 0:e29bc8e0dddd 41 * @brief
hudakz 0:e29bc8e0dddd 42 * @note
hudakz 0:e29bc8e0dddd 43 * @param
hudakz 0:e29bc8e0dddd 44 * @retval
hudakz 0:e29bc8e0dddd 45 */
hudakz 6:c5a40d5fd9f1 46 void can_init(can_t* obj, PinName rd, PinName td, FunctionalState abom) {
hudakz 6:c5a40d5fd9f1 47 initCAN(obj, rd, td, abom);
hudakz 0:e29bc8e0dddd 48 can_filter(obj, 0, 0, CANAny, 0);
hudakz 0:e29bc8e0dddd 49 }
hudakz 0:e29bc8e0dddd 50
hudakz 0:e29bc8e0dddd 51 /**
hudakz 0:e29bc8e0dddd 52 * @brief
hudakz 0:e29bc8e0dddd 53 * @note
hudakz 0:e29bc8e0dddd 54 * @param
hudakz 0:e29bc8e0dddd 55 * @retval
hudakz 0:e29bc8e0dddd 56 */
hudakz 0:e29bc8e0dddd 57 void can_free(can_t* obj) {
hudakz 0:e29bc8e0dddd 58 HAL_CAN_MspDeInit(obj);
hudakz 0:e29bc8e0dddd 59 }
hudakz 0:e29bc8e0dddd 60
hudakz 0:e29bc8e0dddd 61 /**
hudakz 0:e29bc8e0dddd 62 * @brief
hudakz 0:e29bc8e0dddd 63 * @note
hudakz 0:e29bc8e0dddd 64 * @param
hudakz 0:e29bc8e0dddd 65 * @retval
hudakz 0:e29bc8e0dddd 66 */
hudakz 0:e29bc8e0dddd 67 int can_frequency(can_t* obj, int hz) {
hudakz 11:439f3a34c42e 68 #if defined(TARGET_NUCLEO_F103RB)
hudakz 0:e29bc8e0dddd 69 HAL_NVIC_DisableIRQ(USB_LP_CAN1_RX0_IRQn);
hudakz 11:439f3a34c42e 70 #elif defined(TARGET_NUCLEO_F303RB)
hudakz 11:439f3a34c42e 71 HAL_NVIC_DisableIRQ(CAN_RX1_IRQn);
hudakz 11:439f3a34c42e 72 #endif
hudakz 0:e29bc8e0dddd 73
hudakz 5:b53e5ee15315 74 // APB1 peripheral clock = 36000000Hz
hudakz 0:e29bc8e0dddd 75
hudakz 0:e29bc8e0dddd 76 switch(hz) {
hudakz 0:e29bc8e0dddd 77 case 1000000:
hudakz 0:e29bc8e0dddd 78 // 1000kbps bit rate
hudakz 0:e29bc8e0dddd 79 _canHandle.Init.Prescaler = 3; // number of time quanta = 36000000/3/1000000 = 12
hudakz 0:e29bc8e0dddd 80 _canHandle.Init.SJW = CAN_SJW_1TQ;
hudakz 0:e29bc8e0dddd 81 _canHandle.Init.BS1 = CAN_BS1_8TQ; // sample point at: (1 + 8) / 12 * 100 = 75%
hudakz 0:e29bc8e0dddd 82 _canHandle.Init.BS2 = CAN_BS2_3TQ;
hudakz 0:e29bc8e0dddd 83 break;
hudakz 0:e29bc8e0dddd 84
hudakz 0:e29bc8e0dddd 85 case 500000:
hudakz 0:e29bc8e0dddd 86 // 500kbps bit rate
hudakz 0:e29bc8e0dddd 87 _canHandle.Init.Prescaler = 6; // number of time quanta = 36000000/6/500000 = 12
hudakz 0:e29bc8e0dddd 88 _canHandle.Init.SJW = CAN_SJW_1TQ;
hudakz 0:e29bc8e0dddd 89 _canHandle.Init.BS1 = CAN_BS1_8TQ; // sample point at: (1 + 8) / 12 * 100 = 75%
hudakz 0:e29bc8e0dddd 90 _canHandle.Init.BS2 = CAN_BS2_3TQ;
hudakz 0:e29bc8e0dddd 91 break;
hudakz 0:e29bc8e0dddd 92
hudakz 0:e29bc8e0dddd 93 case 250000:
hudakz 0:e29bc8e0dddd 94 // 250kbps
hudakz 0:e29bc8e0dddd 95 _canHandle.Init.Prescaler = 9; // number of time quanta = 36000000/9/250000 = 16
hudakz 0:e29bc8e0dddd 96 _canHandle.Init.SJW = CAN_SJW_1TQ;
hudakz 0:e29bc8e0dddd 97 _canHandle.Init.BS1 = CAN_BS1_11TQ; // sample point at: (1 + 11) / 16 * 100 = 75%
hudakz 0:e29bc8e0dddd 98 _canHandle.Init.BS2 = CAN_BS2_4TQ;
hudakz 0:e29bc8e0dddd 99 break;
hudakz 0:e29bc8e0dddd 100
hudakz 0:e29bc8e0dddd 101 case 125000:
hudakz 0:e29bc8e0dddd 102 // 125kbps
hudakz 0:e29bc8e0dddd 103 _canHandle.Init.Prescaler = 18; // number of time quanta = 36000000/18/125000 = 16
hudakz 0:e29bc8e0dddd 104 _canHandle.Init.SJW = CAN_SJW_1TQ;
hudakz 0:e29bc8e0dddd 105 _canHandle.Init.BS1 = CAN_BS1_11TQ; // sample point at: (1 + 11) / 16 * 100 = 75%
hudakz 0:e29bc8e0dddd 106 _canHandle.Init.BS2 = CAN_BS2_4TQ;
hudakz 0:e29bc8e0dddd 107 break;
hudakz 0:e29bc8e0dddd 108
hudakz 0:e29bc8e0dddd 109 default:
hudakz 0:e29bc8e0dddd 110 // 125kbps (default)
hudakz 5:b53e5ee15315 111 #if DEBUG
hudakz 0:e29bc8e0dddd 112 printf("Unknown frequency specified!\r\n");
hudakz 0:e29bc8e0dddd 113 printf("Using default 125kbps\r\n");
hudakz 5:b53e5ee15315 114 #endif
hudakz 0:e29bc8e0dddd 115 _canHandle.Init.Prescaler = 18; // number of time quanta = 36000000/18/125000 = 16
hudakz 0:e29bc8e0dddd 116 _canHandle.Init.SJW = CAN_SJW_1TQ;
hudakz 0:e29bc8e0dddd 117 _canHandle.Init.BS1 = CAN_BS1_11TQ; // sample point at: (1 + 11) / 16 * 100 = 75%
hudakz 0:e29bc8e0dddd 118 _canHandle.Init.BS2 = CAN_BS2_4TQ;
hudakz 0:e29bc8e0dddd 119 }
hudakz 0:e29bc8e0dddd 120
hudakz 0:e29bc8e0dddd 121 HAL_CAN_Init(&_canHandle);
hudakz 11:439f3a34c42e 122 #if defined(TARGET_NUCLEO_F103RB)
hudakz 11:439f3a34c42e 123 HAL_NVIC_EnableIRQ(USB_LP_CAN1_RX0_IRQn);
hudakz 11:439f3a34c42e 124 #elif defined(TARGET_NUCLEO_F303RB)
hudakz 11:439f3a34c42e 125 HAL_NVIC_EnableIRQ(CAN_RX1_IRQn);
hudakz 11:439f3a34c42e 126 #endif
hudakz 11:439f3a34c42e 127
hudakz 5:b53e5ee15315 128 return 1;
hudakz 0:e29bc8e0dddd 129 }
hudakz 0:e29bc8e0dddd 130
hudakz 0:e29bc8e0dddd 131 /**
hudakz 0:e29bc8e0dddd 132 * @brief
hudakz 0:e29bc8e0dddd 133 * @note
hudakz 0:e29bc8e0dddd 134 * @param
hudakz 0:e29bc8e0dddd 135 * @retval
hudakz 0:e29bc8e0dddd 136 */
hudakz 0:e29bc8e0dddd 137 void can_irq_init(can_t* obj, can_irq_handler handler, uint32_t id) {
hudakz 0:e29bc8e0dddd 138 if(HAL_CAN_Receive_IT(&_canHandle, CAN_FIFO0) != HAL_OK) {
hudakz 5:b53e5ee15315 139 #ifdef DEBUG
hudakz 0:e29bc8e0dddd 140 printf("CAN reception initialization error\r\n");
hudakz 5:b53e5ee15315 141 #endif
hudakz 0:e29bc8e0dddd 142 }
hudakz 0:e29bc8e0dddd 143 }
hudakz 0:e29bc8e0dddd 144
hudakz 0:e29bc8e0dddd 145 /**
hudakz 0:e29bc8e0dddd 146 * @brief
hudakz 0:e29bc8e0dddd 147 * @note
hudakz 0:e29bc8e0dddd 148 * @param
hudakz 0:e29bc8e0dddd 149 * @retval
hudakz 0:e29bc8e0dddd 150 */
hudakz 0:e29bc8e0dddd 151 void can_irq_free(can_t* obj) {
hudakz 11:439f3a34c42e 152 rxCompleteCallback = 0;
hudakz 0:e29bc8e0dddd 153 }
hudakz 0:e29bc8e0dddd 154
hudakz 0:e29bc8e0dddd 155 /**
hudakz 0:e29bc8e0dddd 156 * @brief
hudakz 0:e29bc8e0dddd 157 * @note
hudakz 0:e29bc8e0dddd 158 * @param
hudakz 0:e29bc8e0dddd 159 * @retval
hudakz 0:e29bc8e0dddd 160 */
hudakz 0:e29bc8e0dddd 161 void can_irq_set(void (*fptr) (void)) {
hudakz 0:e29bc8e0dddd 162 rxCompleteCallback = fptr;
hudakz 0:e29bc8e0dddd 163 }
hudakz 0:e29bc8e0dddd 164
hudakz 0:e29bc8e0dddd 165 /**
hudakz 0:e29bc8e0dddd 166 * @brief
hudakz 0:e29bc8e0dddd 167 * @note
hudakz 0:e29bc8e0dddd 168 * @param
hudakz 0:e29bc8e0dddd 169 * @retval
hudakz 0:e29bc8e0dddd 170 */
hudakz 0:e29bc8e0dddd 171 int can_write(can_t* obj, CAN_Message msg, int cc) {
hudakz 0:e29bc8e0dddd 172 int i = 0;
hudakz 0:e29bc8e0dddd 173
hudakz 0:e29bc8e0dddd 174 if(msg.format == CANStandard) {
hudakz 0:e29bc8e0dddd 175 _canHandle.pTxMsg->StdId = msg.id;
hudakz 0:e29bc8e0dddd 176 _canHandle.pTxMsg->ExtId = 0x00;
hudakz 0:e29bc8e0dddd 177 }
hudakz 0:e29bc8e0dddd 178 else {
hudakz 0:e29bc8e0dddd 179 _canHandle.pTxMsg->StdId = 0x00;
hudakz 0:e29bc8e0dddd 180 _canHandle.pTxMsg->ExtId = msg.id;
hudakz 0:e29bc8e0dddd 181 }
hudakz 0:e29bc8e0dddd 182
hudakz 0:e29bc8e0dddd 183 _canHandle.pTxMsg->RTR = msg.type == CANData ? CAN_RTR_DATA : CAN_RTR_REMOTE;
hudakz 0:e29bc8e0dddd 184 _canHandle.pTxMsg->IDE = msg.format == CANStandard ? CAN_ID_STD : CAN_ID_EXT;
hudakz 0:e29bc8e0dddd 185 _canHandle.pTxMsg->DLC = msg.len;
hudakz 0:e29bc8e0dddd 186
hudakz 0:e29bc8e0dddd 187 for(i = 0; i < msg.len; i++)
hudakz 0:e29bc8e0dddd 188 _canHandle.pTxMsg->Data[i] = msg.data[i];
hudakz 0:e29bc8e0dddd 189
hudakz 0:e29bc8e0dddd 190 if(HAL_CAN_Transmit(&_canHandle, 10) != HAL_OK) {
hudakz 5:b53e5ee15315 191 #ifdef DEBUG
hudakz 0:e29bc8e0dddd 192 printf("Transmission error\r\n");
hudakz 5:b53e5ee15315 193 #endif
hudakz 5:b53e5ee15315 194 return 0;
hudakz 0:e29bc8e0dddd 195 }
hudakz 5:b53e5ee15315 196 else
hudakz 5:b53e5ee15315 197 return 1;
hudakz 0:e29bc8e0dddd 198 }
hudakz 0:e29bc8e0dddd 199
hudakz 0:e29bc8e0dddd 200 /**
hudakz 0:e29bc8e0dddd 201 * @brief
hudakz 0:e29bc8e0dddd 202 * @note
hudakz 0:e29bc8e0dddd 203 * @param
hudakz 0:e29bc8e0dddd 204 * @retval
hudakz 0:e29bc8e0dddd 205 */
hudakz 0:e29bc8e0dddd 206 int can_read(can_t* obj, CAN_Message* msg, int handle) {
hudakz 10:227a455d0f9f 207 int i;
hudakz 0:e29bc8e0dddd 208 msg->id = _canHandle.pRxMsg->IDE == CAN_ID_STD ? _canHandle.pRxMsg->StdId : _canHandle.pRxMsg->ExtId;
hudakz 0:e29bc8e0dddd 209 msg->type = _canHandle.pRxMsg->RTR == CAN_RTR_DATA ? CANData : CANRemote;
hudakz 0:e29bc8e0dddd 210 msg->format = _canHandle.pRxMsg->IDE == CAN_ID_STD ? CANStandard : CANExtended;
hudakz 0:e29bc8e0dddd 211 msg->len = _canHandle.pRxMsg->DLC;
hudakz 10:227a455d0f9f 212 for(i = 0; i < msg->len; i++)
hudakz 0:e29bc8e0dddd 213 msg->data[i] = _canHandle.pRxMsg->Data[i];
hudakz 5:b53e5ee15315 214
hudakz 5:b53e5ee15315 215 return msg->len;
hudakz 0:e29bc8e0dddd 216 }
hudakz 0:e29bc8e0dddd 217
hudakz 0:e29bc8e0dddd 218 /**
hudakz 0:e29bc8e0dddd 219 * @brief
hudakz 0:e29bc8e0dddd 220 * @note
hudakz 0:e29bc8e0dddd 221 * @param
hudakz 0:e29bc8e0dddd 222 * @retval
hudakz 0:e29bc8e0dddd 223 */
hudakz 0:e29bc8e0dddd 224 int can_mode(can_t* obj, CanMode mode) {
hudakz 0:e29bc8e0dddd 225 switch(mode) {
hudakz 0:e29bc8e0dddd 226 case MODE_RESET:
hudakz 0:e29bc8e0dddd 227 return HAL_ERROR;
hudakz 0:e29bc8e0dddd 228
hudakz 0:e29bc8e0dddd 229 case MODE_NORMAL:
hudakz 0:e29bc8e0dddd 230 _canHandle.Init.Mode = CAN_MODE_NORMAL;
hudakz 0:e29bc8e0dddd 231 break;
hudakz 0:e29bc8e0dddd 232
hudakz 0:e29bc8e0dddd 233 case MODE_SILENT:
hudakz 0:e29bc8e0dddd 234 _canHandle.Init.Mode = CAN_MODE_SILENT;
hudakz 0:e29bc8e0dddd 235 break;
hudakz 0:e29bc8e0dddd 236
hudakz 0:e29bc8e0dddd 237 case MODE_TEST_GLOBAL:
hudakz 0:e29bc8e0dddd 238 _canHandle.Init.Mode = CAN_MODE_LOOPBACK;
hudakz 0:e29bc8e0dddd 239 break;
hudakz 0:e29bc8e0dddd 240
hudakz 0:e29bc8e0dddd 241 case MODE_TEST_LOCAL:
hudakz 0:e29bc8e0dddd 242 _canHandle.Init.Mode = CAN_MODE_LOOPBACK;
hudakz 0:e29bc8e0dddd 243 break;
hudakz 0:e29bc8e0dddd 244
hudakz 0:e29bc8e0dddd 245 case MODE_TEST_SILENT:
hudakz 0:e29bc8e0dddd 246 _canHandle.Init.Mode = CAN_MODE_SILENT_LOOPBACK;
hudakz 0:e29bc8e0dddd 247 break;
hudakz 0:e29bc8e0dddd 248 }
hudakz 0:e29bc8e0dddd 249
hudakz 3:0fae6b54a2ee 250 return HAL_CAN_Init(&_canHandle);
hudakz 0:e29bc8e0dddd 251 }
hudakz 0:e29bc8e0dddd 252
hudakz 0:e29bc8e0dddd 253 /**
hudakz 0:e29bc8e0dddd 254 * @brief
hudakz 0:e29bc8e0dddd 255 * @note
hudakz 0:e29bc8e0dddd 256 * @param
hudakz 0:e29bc8e0dddd 257 * @retval
hudakz 0:e29bc8e0dddd 258 */
hudakz 0:e29bc8e0dddd 259 int can_filter(can_t* obj, uint32_t id, uint32_t mask, CANFormat format /*=CANAny*/, int32_t handle /*=0*/ ) {
hudakz 0:e29bc8e0dddd 260 CAN_FilterConfTypeDef sFilterConfig;
hudakz 0:e29bc8e0dddd 261
hudakz 8:5c90d6b9a382 262 sFilterConfig.FilterNumber = handle; // Specifies the filter number (must be a number between 0 and 13 at 32-bit filter scale)
hudakz 0:e29bc8e0dddd 263 sFilterConfig.FilterMode = CAN_FILTERMODE_IDMASK;
hudakz 0:e29bc8e0dddd 264 sFilterConfig.FilterScale = CAN_FILTERSCALE_32BIT;
hudakz 0:e29bc8e0dddd 265 sFilterConfig.FilterIdHigh = (((id) >> 16) & 0xFFFF);
hudakz 0:e29bc8e0dddd 266 sFilterConfig.FilterIdLow = ((id) & 0xFFFF);
hudakz 0:e29bc8e0dddd 267 sFilterConfig.FilterMaskIdHigh = (((mask) >> 16) & 0xFFFF);
hudakz 0:e29bc8e0dddd 268 sFilterConfig.FilterMaskIdLow = ((mask) & 0xFFFF);
hudakz 0:e29bc8e0dddd 269 sFilterConfig.FilterFIFOAssignment = 0;
hudakz 0:e29bc8e0dddd 270 sFilterConfig.FilterActivation = ENABLE;
hudakz 8:5c90d6b9a382 271 sFilterConfig.BankNumber = 0; // Selects the start bank filter
hudakz 8:5c90d6b9a382 272 return HAL_CAN_ConfigFilter(&_canHandle, &sFilterConfig);
hudakz 0:e29bc8e0dddd 273 }
hudakz 0:e29bc8e0dddd 274
hudakz 0:e29bc8e0dddd 275 /**
hudakz 0:e29bc8e0dddd 276 * @brief
hudakz 0:e29bc8e0dddd 277 * @note
hudakz 0:e29bc8e0dddd 278 * @param
hudakz 0:e29bc8e0dddd 279 * @retval
hudakz 0:e29bc8e0dddd 280 */
hudakz 0:e29bc8e0dddd 281 void can_reset(can_t* obj) {
hudakz 0:e29bc8e0dddd 282 __HAL_CAN_RESET_HANDLE_STATE(&_canHandle);
hudakz 0:e29bc8e0dddd 283 }
hudakz 0:e29bc8e0dddd 284
hudakz 0:e29bc8e0dddd 285 /**
hudakz 0:e29bc8e0dddd 286 * @brief
hudakz 0:e29bc8e0dddd 287 * @note
hudakz 0:e29bc8e0dddd 288 * @param
hudakz 0:e29bc8e0dddd 289 * @retval
hudakz 0:e29bc8e0dddd 290 */
hudakz 0:e29bc8e0dddd 291 unsigned char can_rderror(can_t* obj) {
hudakz 0:e29bc8e0dddd 292 return HAL_CAN_GetError(&_canHandle);
hudakz 0:e29bc8e0dddd 293 }
hudakz 0:e29bc8e0dddd 294
hudakz 0:e29bc8e0dddd 295 /**
hudakz 0:e29bc8e0dddd 296 * @brief
hudakz 0:e29bc8e0dddd 297 * @note
hudakz 0:e29bc8e0dddd 298 * @param
hudakz 0:e29bc8e0dddd 299 * @retval
hudakz 0:e29bc8e0dddd 300 */
hudakz 0:e29bc8e0dddd 301 unsigned char can_tderror(can_t* obj) {
hudakz 0:e29bc8e0dddd 302 return HAL_CAN_GetError(&_canHandle);
hudakz 0:e29bc8e0dddd 303 }
hudakz 0:e29bc8e0dddd 304
hudakz 0:e29bc8e0dddd 305 /**
hudakz 0:e29bc8e0dddd 306 * @brief
hudakz 0:e29bc8e0dddd 307 * @note
hudakz 0:e29bc8e0dddd 308 * @param
hudakz 0:e29bc8e0dddd 309 * @retval
hudakz 0:e29bc8e0dddd 310 */
hudakz 0:e29bc8e0dddd 311 void can_monitor(can_t* obj, int silent) {
hudakz 0:e29bc8e0dddd 312
hudakz 0:e29bc8e0dddd 313 // not implemented
hudakz 0:e29bc8e0dddd 314 }
hudakz 1:eb04f7f0478d 315
hudakz 5:b53e5ee15315 316
hudakz 6:c5a40d5fd9f1 317
hudakz 11:439f3a34c42e 318