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CANopenNode/stack/PIC24H_dsPIC33F/CO_driver.h

443 lines
17 KiB
C

/*
* CAN module object for Microchip dsPIC33 or PIC24 microcontroller.
*
* @file CO_driver.h
* @author Janez Paternoster
* @author Péter Rózsahegyi
* @copyright 2004 - 2013 Janez Paternoster
*
* This file is part of CANopenNode, an opensource CANopen Stack.
* Project home page is <http://canopennode.sourceforge.net>.
* For more information on CANopen see <http://www.can-cia.org/>.
*
* CANopenNode is free software: you can redistribute it and/or modify
* it under the terms of the GNU Lesser General Public License as published by
* the Free Software Foundation, either version 2.1 of the License, or
* (at your option) any later version.
*
* This program is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU Lesser General Public License for more details.
*
* You should have received a copy of the GNU Lesser General Public License
* along with this program. If not, see <http://www.gnu.org/licenses/>.
*/
#ifndef CO_DRIVER_H
#define CO_DRIVER_H
/* For documentation see file drvTemplate/CO_driver.h */
#if defined(__dsPIC33F__) || defined(__PIC24H__)
#include <p33fxxxx.h> /* processor header file */
#elif defined(__dsPIC33E__) || defined(__PIC24E__)
#include <p33exxxx.h> /* processor header file */
#endif
#include <stddef.h> /* for 'NULL' */
#include <stdint.h> /* for 'int8_t' to 'uint64_t' */
#ifdef __HAS_EDS__
#define EDS_PTR __eds__
#else
#define EDS_PTR
#endif
/* CAN module base address */
#define ADDR_CAN1 ((uint16_t)&C1CTRL1)
#define ADDR_CAN2 ((uint16_t)&C2CTRL1)
#define ADDR_DMA0 ((uint16_t)&DMA0CON)
#define ADDR_DMA1 ((uint16_t)&DMA1CON)
#define ADDR_DMA2 ((uint16_t)&DMA2CON)
#define ADDR_DMA3 ((uint16_t)&DMA3CON)
#define ADDR_DMA4 ((uint16_t)&DMA4CON)
#define ADDR_DMA5 ((uint16_t)&DMA5CON)
#define ADDR_DMA6 ((uint16_t)&DMA6CON)
#define ADDR_DMA7 ((uint16_t)&DMA7CON)
/* Critical sections */
#define CO_LOCK_CAN_SEND() asm volatile ("disi #0x3FFF")
#define CO_UNLOCK_CAN_SEND() asm volatile ("disi #0x0000")
#define CO_LOCK_EMCY() asm volatile ("disi #0x3FFF")
#define CO_UNLOCK_EMCY() asm volatile ("disi #0x0000")
#define CO_LOCK_OD() asm volatile ("disi #0x3FFF")
#define CO_UNLOCK_OD() asm volatile ("disi #0x0000")
/* Data types */
/* int8_t to uint64_t are defined in stdint.h */
typedef unsigned char bool_t;
typedef float float32_t;
typedef long double float64_t;
typedef char char_t;
typedef unsigned char oChar_t;
typedef unsigned char domain_t;
/* CAN bit rates
*
* CAN bit rates are initializers for array of eight CO_CANbitRateData_t
* objects.
*
* Macros are not used by driver itself, they may be used by application with
* combination with object CO_CANbitRateData_t.
* Application must declare following global variable depending on CO_FCY used:
* const CO_CANbitRateData_t CO_CANbitRateData[8] = {CO_CANbitRateDataInitializers};
*
* There are initializers for eight objects, which corresponds to following
* CAN bit rates (in kbps): 10, 20, 50, 125, 250, 500, 800, 1000.
*
* CO_FCY is internal instruction cycle clock frequency in kHz units. See
* dsPIC33F documentation for more information on FCY.
*
* Possible values for FCY are (in three groups):
* - Optimal CAN bit timing on all Baud Rates: 8000, 12000, 16000, 24000.
* - Not so optimal CAN bit timing on all Baud Rates: 4000, 32000.
* - not all CANopen Baud Rates possible: 2000, 3000, 5000, 6000, 10000,
* 20000, 40000.
*
* IMPORTANT: For FCY<=12000 there is unresolved bug; CANCKS configuration
* bit on ECAN does not work, so some baudrates are not possible.
*/
#ifdef CO_FCY
/* Macros, which divides K into (SJW + PROP + PhSeg1 + PhSeg2) */
#define TQ_x_4 1, 1, 1, 1
#define TQ_x_5 1, 1, 2, 1
#define TQ_x_6 1, 1, 3, 1
#define TQ_x_8 1, 2, 3, 2
#define TQ_x_9 1, 2, 4, 2
#define TQ_x_10 1, 3, 4, 2
#define TQ_x_12 1, 3, 6, 2
#define TQ_x_14 1, 4, 7, 2
#define TQ_x_15 1, 4, 8, 2 /* good timing */
#define TQ_x_16 1, 5, 8, 2 /* good timing */
#define TQ_x_17 1, 6, 8, 2 /* good timing */
#define TQ_x_18 1, 7, 8, 2 /* good timing */
#define TQ_x_19 1, 8, 8, 2 /* good timing */
#define TQ_x_20 1, 8, 8, 3 /* good timing */
#define TQ_x_21 1, 8, 8, 4
#define TQ_x_25 1, 8, 8, 8
#if CO_FCY == 2000
#define CO_CANbitRateDataInitializers \
{1, 5, TQ_x_20}, /*CAN=10kbps*/ \
{2, 5, TQ_x_20}, /*CAN=20kbps*/ \
{1, 1, TQ_x_20}, /*CAN=50kbps*/ \
{2, 1, TQ_x_16}, /*CAN=125kbps*/ \
{2, 1, TQ_x_8 }, /*CAN=250kbps*/ \
{2, 1, TQ_x_4 }, /*CAN=500kbps*/ \
{2, 1, TQ_x_4 }, /*Not possible*/ \
{2, 1, TQ_x_4 } /*Not possible*/
#elif CO_FCY == 3000
#define CO_CANbitRateDataInitializers \
{2, 15, TQ_x_20}, /*CAN=10kbps*/ \
{1, 5, TQ_x_15}, /*CAN=20kbps*/ \
{1, 2, TQ_x_15}, /*CAN=50kbps*/ \
{1, 1, TQ_x_12}, /*CAN=125kbps*/ \
{2, 1, TQ_x_12}, /*CAN=250kbps*/ \
{2, 1, TQ_x_6 }, /*CAN=500kbps*/ \
{2, 1, TQ_x_6 }, /*Not possible*/ \
{2, 1, TQ_x_6 } /*Not possible*/
#elif CO_FCY == 4000
#define CO_CANbitRateDataInitializers \
{2, 25, TQ_x_16}, /*CAN=10kbps*/ \
{1, 5, TQ_x_20}, /*CAN=20kbps*/ \
{2, 5, TQ_x_16}, /*CAN=50kbps*/ \
{1, 1, TQ_x_16}, /*CAN=125kbps*/ \
{2, 1, TQ_x_16}, /*CAN=250kbps*/ \
{2, 1, TQ_x_8 }, /*CAN=500kbps*/ \
{2, 1, TQ_x_5 }, /*CAN=800kbps*/ \
{2, 1, TQ_x_4 } /*CAN=1000kbps*/
#elif CO_FCY == 5000
#define CO_CANbitRateDataInitializers \
{2, 25, TQ_x_20}, /*CAN=10kbps*/ \
{1, 5, TQ_x_25}, /*CAN=20kbps*/ \
{2, 5, TQ_x_20}, /*CAN=50kbps*/ \
{1, 1, TQ_x_20}, /*CAN=125kbps*/ \
{2, 1, TQ_x_20}, /*CAN=250kbps*/ \
{2, 1, TQ_x_10}, /*CAN=500kbps*/ \
{2, 1, TQ_x_10}, /*Not possible*/ \
{2, 1, TQ_x_5 } /*CAN=1000kbps*/
#elif CO_FCY == 6000
#define CO_CANbitRateDataInitializers \
{1, 20, TQ_x_15}, /*CAN=10kbps*/ \
{1, 10, TQ_x_15}, /*CAN=20kbps*/ \
{1, 4, TQ_x_15}, /*CAN=50kbps*/ \
{2, 3, TQ_x_16}, /*CAN=125kbps*/ \
{1, 1, TQ_x_12}, /*CAN=250kbps*/ \
{2, 1, TQ_x_12}, /*CAN=500kbps*/ \
{2, 1, TQ_x_12}, /*Not possible*/ \
{2, 1, TQ_x_6 } /*CAN=1000kbps*/
#elif CO_FCY == 8000
#define CO_CANbitRateDataInitializers \
{1, 25, TQ_x_16}, /*CAN=10kbps*/ \
{2, 25, TQ_x_16}, /*CAN=20kbps*/ \
{1, 5, TQ_x_16}, /*CAN=50kbps*/ \
{1, 2, TQ_x_16}, /*CAN=125kbps*/ \
{1, 1, TQ_x_16}, /*CAN=250kbps*/ \
{2, 1, TQ_x_16}, /*CAN=500kbps*/ \
{2, 1, TQ_x_10}, /*CAN=800kbps*/ \
{2, 1, TQ_x_8 } /*CAN=1000kbps*/
#elif CO_FCY == 10000
#define CO_CANbitRateDataInitializers \
{1, 25, TQ_x_20}, /*CAN=10kbps*/ \
{2, 25, TQ_x_20}, /*CAN=20kbps*/ \
{1, 5, TQ_x_20}, /*CAN=50kbps*/ \
{2, 5, TQ_x_16}, /*CAN=125kbps*/ \
{1, 1, TQ_x_20}, /*CAN=250kbps*/ \
{2, 1, TQ_x_20}, /*CAN=500kbps*/ \
{2, 1, TQ_x_20}, /*Not possible*/ \
{2, 1, TQ_x_10} /*CAN=1000kbps*/
#elif CO_FCY == 12000
#define CO_CANbitRateDataInitializers \
{2, 63, TQ_x_19}, /*CAN=10kbps*/ \
{1, 20, TQ_x_15}, /*CAN=20kbps*/ \
{2, 15, TQ_x_16}, /*CAN=50kbps*/ \
{1, 3, TQ_x_16}, /*CAN=125kbps*/ \
{2, 3, TQ_x_16}, /*CAN=250kbps*/ \
{1, 1, TQ_x_12}, /*CAN=500kbps*/ \
{2, 1, TQ_x_15}, /*CAN=800kbps*/ \
{2, 1, TQ_x_12} /*CAN=1000kbps*/
#elif CO_FCY == 16000
#define CO_CANbitRateDataInitializers \
{1, 50, TQ_x_16}, /*CAN=10kbps*/ \
{1, 25, TQ_x_16}, /*CAN=20kbps*/ \
{1, 10, TQ_x_16}, /*CAN=50kbps*/ \
{1, 4, TQ_x_16}, /*CAN=125kbps*/ \
{1, 2, TQ_x_16}, /*CAN=250kbps*/ \
{1, 1, TQ_x_16}, /*CAN=500kbps*/ \
{1, 1, TQ_x_10}, /*CAN=800kbps*/ \
{1, 1, TQ_x_8 } /*CAN=1000kbps*/
#elif CO_FCY == 20000
#define CO_CANbitRateDataInitializers \
{1, 50, TQ_x_20}, /*CAN=10kbps*/ \
{1, 25, TQ_x_20}, /*CAN=20kbps*/ \
{1, 10, TQ_x_20}, /*CAN=50kbps*/ \
{1, 5, TQ_x_16}, /*CAN=125kbps*/ \
{1, 2, TQ_x_20}, /*CAN=250kbps*/ \
{1, 1, TQ_x_20}, /*CAN=500kbps*/ \
{1, 1, TQ_x_20}, /*Not possible*/ \
{1, 1, TQ_x_10} /*CAN=1000kbps*/
#elif CO_FCY == 24000
#define CO_CANbitRateDataInitializers \
{1, 63, TQ_x_19}, /*CAN=10kbps*/ \
{1, 40, TQ_x_15}, /*CAN=20kbps*/ \
{1, 15, TQ_x_16}, /*CAN=50kbps*/ \
{1, 6, TQ_x_16}, /*CAN=125kbps*/ \
{1, 3, TQ_x_16}, /*CAN=250kbps*/ \
{1, 2, TQ_x_12}, /*CAN=500kbps*/ \
{1, 1, TQ_x_15}, /*CAN=800kbps*/ \
{1, 1, TQ_x_12} /*CAN=1000kbps*/
#elif CO_FCY == 32000
#define CO_CANbitRateDataInitializers \
{1, 64, TQ_x_25}, /*CAN=10kbps*/ \
{1, 50, TQ_x_16}, /*CAN=20kbps*/ \
{1, 20, TQ_x_16}, /*CAN=50kbps*/ \
{1, 8, TQ_x_16}, /*CAN=125kbps*/ \
{1, 4, TQ_x_16}, /*CAN=250kbps*/ \
{1, 2, TQ_x_16}, /*CAN=500kbps*/ \
{1, 2, TQ_x_10}, /*CAN=800kbps*/ \
{1, 1, TQ_x_16} /*CAN=1000kbps*/
#elif CO_FCY == 40000
#define CO_CANbitRateDataInitializers \
{1, 50, TQ_x_20}, /*Not possible*/ \
{1, 50, TQ_x_20}, /*CAN=20kbps*/ \
{1, 25, TQ_x_16}, /*CAN=50kbps*/ \
{1, 10, TQ_x_16}, /*CAN=125kbps*/ \
{1, 5, TQ_x_16}, /*CAN=250kbps*/ \
{1, 2, TQ_x_20}, /*CAN=500kbps*/ \
{1, 1, TQ_x_25}, /*CAN=800kbps*/ \
{1, 1, TQ_x_20} /*CAN=1000kbps*/
#else
#error define_CO_FCY CO_FCY not supported
#endif
#endif
/* Structure contains timing coefficients for CAN module.
*
* CAN baud rate is calculated from following equations:
* FCAN = FCY * Scale - Input frequency to CAN module (MAX 40MHz for dsPIC33F and PIC24H)
* TQ = 2 * BRP / FCAN - Time Quanta
* BaudRate = 1 / (TQ * K) - Can bus Baud Rate
* K = SJW + PROP + PhSeg1 + PhSeg2 - Number of Time Quantas
*/
typedef struct{
uint8_t scale; /* (1 or 2) Scales FCY clock - dsPIC33F and PIC24H specific */
uint8_t BRP; /* (1...64) Baud Rate Prescaler */
uint8_t SJW; /* (1...4) SJW time */
uint8_t PROP; /* (1...8) PROP time */
uint8_t phSeg1; /* (1...8) Phase Segment 1 time */
uint8_t phSeg2; /* (1...8) Phase Segment 2 time */
}CO_CANbitRateData_t;
/* Return values */
typedef enum{
CO_ERROR_NO = 0,
CO_ERROR_ILLEGAL_ARGUMENT = -1,
CO_ERROR_OUT_OF_MEMORY = -2,
CO_ERROR_TIMEOUT = -3,
CO_ERROR_ILLEGAL_BAUDRATE = -4,
CO_ERROR_RX_OVERFLOW = -5,
CO_ERROR_RX_PDO_OVERFLOW = -6,
CO_ERROR_RX_MSG_LENGTH = -7,
CO_ERROR_RX_PDO_LENGTH = -8,
CO_ERROR_TX_OVERFLOW = -9,
CO_ERROR_TX_PDO_WINDOW = -10,
CO_ERROR_TX_UNCONFIGURED = -11,
CO_ERROR_PARAMETERS = -12,
CO_ERROR_DATA_CORRUPT = -13,
CO_ERROR_CRC = -14
}CO_ReturnError_t;
/* CAN receive message structure as aligned in CAN module.
* In dsPIC33F and PIC24H this structure is used for both: transmitting and
* receiving to and from CAN module. (Object is ownded by CAN module).
*/
typedef struct{
uint16_t ident; /* Standard Identifier as aligned in CAN module. 16 bits:
'UUUSSSSS SSSSSSRE' (U: unused; S: SID; R=SRR; E=IDE). */
uint16_t extIdent; /* Extended identifier, not used here */
uint16_t DLC :4; /* Data length code (bits 0...3) */
uint16_t DLCrest :12; /* Not used here (bits 4..15) */
uint8_t data[8]; /* 8 data bytes */
uint8_t dummy; /* Not used */
uint8_t FILHIT; /* Filter hit */
}CO_CANrxMsg_t;
/* Received message object */
typedef struct{
uint16_t ident;
uint16_t mask;
void *object;
void (*pFunct)(void *object, const CO_CANrxMsg_t *message);
}CO_CANrx_t;
/* Transmit message object. */
typedef struct{
uint16_t ident; /* Standard Identifier as aligned in CAN module. 16 bits:
'SSSSSUUU SSSSSSRE' (U: unused; S: SID; R=SRR; E=IDE). */
uint8_t DLC;
uint8_t data[8];
volatile bool_t bufferFull;
volatile bool_t syncFlag;
}CO_CANtx_t;
/* CAN module object. */
typedef struct{
uint16_t CANbaseAddress;
EDS_PTR CO_CANrxMsg_t *CANmsgBuff; /* dsPIC33F specific: CAN message buffer for CAN module */
uint8_t CANmsgBuffSize; /* dsPIC33F specific: Size of the above buffer */
CO_CANrx_t *rxArray;
uint16_t rxSize;
CO_CANtx_t *txArray;
uint16_t txSize;
volatile bool_t useCANrxFilters;
volatile bool_t bufferInhibitFlag;
volatile bool_t firstCANtxMessage;
volatile uint16_t CANtxCount;
uint32_t errOld;
void *em;
}CO_CANmodule_t;
/* Endianes */
#define CO_LITTLE_ENDIAN
/* Request CAN configuration or normal mode */
void CO_CANsetConfigurationMode(uint16_t CANbaseAddress);
void CO_CANsetNormalMode(uint16_t CANbaseAddress);
/* Initialize CAN module object.
*
* @param DMArxBaseAddress dsPIC33F specific: Base address for registers for
* DMA reception. See Peripheral addresses.
* @param DMAtxBaseAddress dsPIC33F specific: Base address for registers for
* DMA transmission. See Peripheral addresses.
* @param CANmsgBuff dsPIC33F specific: Pointer to CAN message buffer defined in DMA RAM.
* @param CANmsgBuffSize dsPIC33F specific: Size of above buffer.
* @param CANmsgBuffDMAoffset dsPIC33F specific: DMA offset of the above buffer.
*/
CO_ReturnError_t CO_CANmodule_init(
CO_CANmodule_t *CANmodule,
uint16_t CANbaseAddress,
uint16_t DMArxBaseAddress,
uint16_t DMAtxBaseAddress,
EDS_PTR CO_CANrxMsg_t *CANmsgBuff,
uint8_t CANmsgBuffSize,
uint16_t CANmsgBuffDMAoffset,
#ifdef __HAS_EDS__
uint16_t CANmsgBuffDMApage,
#endif
CO_CANrx_t rxArray[],
uint16_t rxSize,
CO_CANtx_t txArray[],
uint16_t txSize,
uint16_t CANbitRate);
/* Switch off CANmodule. */
void CO_CANmodule_disable(CO_CANmodule_t *CANmodule);
/* Read CAN identifier */
uint16_t CO_CANrxMsg_readIdent(const CO_CANrxMsg_t *rxMsg);
/* Configure CAN message receive buffer. */
CO_ReturnError_t CO_CANrxBufferInit(
CO_CANmodule_t *CANmodule,
uint16_t index,
uint16_t ident,
uint16_t mask,
bool_t rtr,
void *object,
void (*pFunct)(void *object, const CO_CANrxMsg_t *message));
/* Configure CAN message transmit buffer. */
CO_CANtx_t *CO_CANtxBufferInit(
CO_CANmodule_t *CANmodule,
uint16_t index,
uint16_t ident,
bool_t rtr,
uint8_t noOfBytes,
bool_t syncFlag);
/* Send CAN message. */
CO_ReturnError_t CO_CANsend(CO_CANmodule_t *CANmodule, CO_CANtx_t *buffer);
/* Clear all synchronous TPDOs from CAN module transmit buffers. */
void CO_CANclearPendingSyncPDOs(CO_CANmodule_t *CANmodule);
/* Verify all errors of CAN module. */
void CO_CANverifyErrors(CO_CANmodule_t *CANmodule);
/* CAN interrupt receives and transmits CAN messages.
*
* Function must be called directly from _C1Interrupt or _C2Interrupt with
* high priority.
*/
void CO_CANinterrupt(CO_CANmodule_t *CANmodule);
#endif