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gatewayTransportSend
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165
lib/MySensors/hal/architecture/Linux/MyHwLinuxGeneric.cpp
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165
lib/MySensors/hal/architecture/Linux/MyHwLinuxGeneric.cpp
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/*
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* The MySensors Arduino library handles the wireless radio link and protocol
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* between your home built sensors/actuators and HA controller of choice.
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* The sensors forms a self healing radio network with optional repeaters. Each
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* repeater and gateway builds a routing tables in EEPROM which keeps track of the
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* network topology allowing messages to be routed to nodes.
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*
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* Created by Henrik Ekblad <henrik.ekblad@mysensors.org>
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* Copyright (C) 2013-2019 Sensnology AB
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* Full contributor list: https://github.com/mysensors/MySensors/graphs/contributors
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*
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* Documentation: http://www.mysensors.org
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* Support Forum: http://forum.mysensors.org
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*
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* This program is free software; you can redistribute it and/or
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* modify it under the terms of the GNU General Public License
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* version 2 as published by the Free Software Foundation.
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*/
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#include "MyHwLinuxGeneric.h"
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static SoftEeprom eeprom;
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static FILE *randomFp = NULL;
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bool hwInit(void)
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{
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MY_SERIALDEVICE.begin(MY_BAUD_RATE);
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#ifdef MY_GATEWAY_SERIAL
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#ifdef MY_LINUX_SERIAL_GROUPNAME
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if (!MY_SERIALDEVICE.setGroupPerm(MY_LINUX_SERIAL_GROUPNAME)) {
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logError("Unable to change permission for serial port device.\n");
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exit(1);
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}
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#endif
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#endif
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if (eeprom.init(conf.eeprom_file, conf.eeprom_size) != 0) {
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exit(1);
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}
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return true;
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}
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void hwReadConfigBlock(void *buf, void *addr, size_t length)
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{
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eeprom.readBlock(buf, addr, length);
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}
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void hwWriteConfigBlock(void *buf, void *addr, size_t length)
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{
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eeprom.writeBlock(buf, addr, length);
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}
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uint8_t hwReadConfig(const int addr)
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{
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return eeprom.readByte(addr);
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}
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void hwWriteConfig(const int addr, uint8_t value)
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{
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eeprom.writeByte(addr, value);
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}
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void hwRandomNumberInit(void)
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{
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uint32_t seed=0;
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if (randomFp != NULL) {
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fclose(randomFp);
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}
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if (!(randomFp = fopen("/dev/urandom", "r"))) {
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logError("Cannot open '/dev/urandom'.\n");
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exit(2);
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}
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while (hwGetentropy(&seed, sizeof(seed)) != sizeof(seed));
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randomSeed(seed);
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}
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ssize_t hwGetentropy(void *__buffer, size_t __length)
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{
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return(fread(__buffer, 1, __length, randomFp));
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}
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uint32_t hwMillis(void)
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{
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return millis();
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}
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bool hwUniqueID(unique_id_t *uniqueID)
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{
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// not implemented yet
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(void)uniqueID;
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return false;
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}
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// Not supported!
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int8_t hwSleep(uint32_t ms)
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{
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(void)ms;
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return MY_SLEEP_NOT_POSSIBLE;
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}
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// Not supported!
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int8_t hwSleep(const uint8_t interrupt, const uint8_t mode, uint32_t ms)
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{
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(void)interrupt;
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(void)mode;
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(void)ms;
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return MY_SLEEP_NOT_POSSIBLE;
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}
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// Not supported!
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int8_t hwSleep(const uint8_t interrupt1, const uint8_t mode1, const uint8_t interrupt2,
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const uint8_t mode2,
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uint32_t ms)
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{
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(void)interrupt1;
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(void)mode1;
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(void)interrupt2;
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(void)mode2;
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(void)ms;
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return MY_SLEEP_NOT_POSSIBLE;
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}
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uint16_t hwCPUVoltage(void)
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{
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// TODO: Not supported!
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return FUNCTION_NOT_SUPPORTED;
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}
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uint16_t hwCPUFrequency(void)
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{
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// TODO: Not supported!
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return FUNCTION_NOT_SUPPORTED;
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}
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int8_t hwCPUTemperature(void)
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{
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return -127; // not implemented yet
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}
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uint16_t hwFreeMem(void)
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{
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// TODO: Not supported!
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return FUNCTION_NOT_SUPPORTED;
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}
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void hwDigitalWrite(uint8_t pin, uint8_t value)
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{
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digitalWrite(pin, value);
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}
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int hwDigitalRead(uint8_t pin)
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{
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return digitalRead(pin);
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}
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void hwPinMode(uint8_t pin, uint8_t mode)
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{
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pinMode(pin, mode);
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}
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