17 Commits
Author SHA1 Message Date
jlehmann 392232fed2 new CubeCell library version 2021-05-01 17:16:46 +02:00
jlehmann 58831dc9cb duplicate build flag 2021-04-30 14:45:03 +02:00
jlehmann 3db4cd6ca2 set XXX to wakeup if needed 2021-04-28 20:00:34 +02:00
jlehmann 9ad28bda51 calibrate and appkey commands 2021-04-28 19:53:11 +02:00
jlehmann 97992f9682 valid json for READ_SENSORS 2021-04-28 19:52:33 +02:00
jlehmann a6d5d045f1 fix bug with big difference 2021-04-28 07:21:39 +02:00
jlehmann 74bca8966b calculate appkey 2021-04-26 16:49:27 +02:00
jlehmann 1772cf6f7e updated Cubecell-Arduino 2021-04-26 16:13:13 +02:00
jlehmann cefc4473e5 change to arduino-cli, document build flags 2021-04-23 20:37:46 +02:00
jlehmann c88c1a68be Umstellung auf arduino-cli 2021-04-23 11:12:43 +02:00
jlehmann 1651aab05b included upload command in README 2021-04-09 14:02:53 +02:00
jlehmann 2cff8e78c8 updated heltec library 2021-04-09 13:41:16 +02:00
jlehmann 15d75f10fc rejoin after every powercycle, updated cubecell lib 2021-02-22 18:13:20 +01:00
jlehmann 4adaf33835 save OTAA config in config_data (flash) 2021-02-06 18:14:50 +01:00
jlehmann fe434b1918 new version as some libraries updated 2021-02-05 20:37:46 +01:00
jlehmann 67546aa925 not using supercaps but lipo 2021-02-05 20:24:09 +01:00
jlehmann 0aef4ac99a new provision program 2021-02-05 20:23:23 +01:00
6 changed files with 515 additions and 29 deletions
+3
View File
@@ -0,0 +1,3 @@
mini-beieli-provision-cubecell
appkey
calibrate
@@ -7,14 +7,21 @@
NAU7802 nau7802;
BME280 bme280;
//#define Vext GPIO6
/******************************************************************************/
/* Firmware Version */
/******************************************************************************/
static const int32_t fwVersion = 20210501;
/******************************************************************************/
/* LoraWAN Settings */
/******************************************************************************/
/* OTAA para*/
uint8_t devEui[] = { 0x00, 0x72, 0x4A, 0x61, 0xB5, 0xB6, 0x20, 0xBB };
uint8_t appEui[] = { 0x70, 0xB3, 0xD5, 0x7E, 0xD0, 0x02, 0xE5, 0xAB };
uint8_t appKey[] = { 0x55, 0x11, 0xF4, 0x55, 0x71, 0x81, 0xC0, 0xBC, 0x04, 0xA9, 0x16, 0x7F, 0x75, 0x8A, 0xEA, 0xB4 };
uint8_t devEui[8];
uint8_t appEui[8];
uint8_t appKey[16];
/* ABP para*/
uint8_t nwkSKey[] = { 0x15, 0xb1, 0xd0, 0xef, 0xa4, 0x63, 0xdf, 0xbe, 0x3d, 0x11, 0x18, 0x1e, 0x1e, 0xc7, 0xda, 0x85 };
@@ -140,7 +147,6 @@ float stddev(long samples[], int m) //calculate the stdandard deviation
/******************************************************************************/
/* Global Data Structures */
/******************************************************************************/
static const int32_t fwVersion = 20201020;
// send an init package every 100 packages;
static const byte INIT_PACKAGE_INTERVAL = 100;
@@ -161,11 +167,14 @@ typedef struct {
float cal_a_factor; // 4 Bytes, Kalibrationsfaktor Waegezelle 1
float cal_b_factor; // 4 Bytes, Kalibrationsfaktor Waegezelle 2
byte debug_level; // 0 => no debugging, no led, 1 => infos, no led, 2 => infos, 3 => error, 4 => highest level
uint8_t devEui[8]; // keep OTAA settings so that new fw-updates does not overwrite it
uint8_t appEui[8]; // dito
uint8_t appKey[16]; // dito
} __attribute__((packed)) CONFIG_data;
typedef struct {
uint8_t version; // Version of Packet Format (must be increased every time format changes...)
uint8_t vsupercap; // Spannung Supercap in mV / 20
uint8_t vbat; // Batteriespannung (0: <= 2510mV, 70: 3000mV, 170: 3700mV, 255: >= 4295mV [1 Einheit => 7mV])
int16_t temperature; // Temperatur (Startwert) in 1/10 Grad Celsius
uint8_t humidity; // Luftfeuchtigkeit in Prozent
uint8_t pressure; // Luftdruck in Hekto-Pascal (0 entspricht 825 hPa)
@@ -179,7 +188,7 @@ typedef struct {
typedef struct {
uint8_t version; // Version of Packet Format (must be increased every time format changes...)
int32_t fw_version; // Version of Firmware, Nummer entspricht YYYYMMDD
uint8_t vsupercap; // Spannung Supercap in mV / 20
uint8_t vbat; // Batteriespannung (0: <= 2510mV, 70: 3000mV, 170: 3700mV, 255: >= 4295mV [1 Einheit => 7mV])
int16_t temperature; // Temperatur in 1/10 Grad Celsius
uint8_t humidity; // Luftfeuchtigkeit in Prozent
uint8_t pressure; // Luftdruck in Hekto-Pascal (0 entspricht 825 hPa)
@@ -192,7 +201,7 @@ typedef struct {
} __attribute__((packed)) LORA_data_first;
typedef struct {
uint8_t vsupercap; // Spannung Supercap in mV / 20
uint8_t vbat; // Batteriespannung (0: <= 2510mV, 70: 3000mV, 170: 3700mV, 255: >= 4295mV [1 Einheit => 7mV])
int16_t temperature; // Temperatur in 1/10 Grad Celsius
uint8_t humidity; // Luftfeuchtigkeit in Prozent
uint8_t pressure; // Luftdruck in Hekto-Pascal (0 entspricht 825 hPa)
@@ -224,7 +233,7 @@ uint32_t gRebootMs;
void ClearLoraData(bool clearLastValues)
{
lora_data.version = LORA_DATA_VERSION;
lora_data.vsupercap = 0;
lora_data.vbat = 0;
lora_data.temperature = 0;
lora_data.humidity = 0;
lora_data.pressure = 0;
@@ -241,7 +250,7 @@ void ClearLoraData(bool clearLastValues)
lora_data_first.version = LORA_DATA_VERSION_FIRST_PACKAGE;
lora_data_first.fw_version = fwVersion;
lora_data_first.vsupercap = 0;
lora_data_first.vbat = 0;
lora_data_first.weight_a = 0;
lora_data_first.weight_b = 0;
lora_data_first.cal_a_0 = config_data.cal_a_0;
@@ -256,7 +265,7 @@ void ClearLoraData(bool clearLastValues)
// We initialize last_sensor_reading
if (clearLastValues) {
last_sensor_reading.vsupercap = 0;
last_sensor_reading.vbat = 0;
last_sensor_reading.weight_a = 0;
last_sensor_reading.weight_b = 0;
last_sensor_reading.weight = 0;
@@ -275,7 +284,7 @@ void ShowLORAData(bool firstTime)
Serial.printf("{\n");
Serial.printf(" \"version\": \"%d\",\n", lora_data_first.version);
Serial.printf(" \"fw_version\": \"%d\",\n", lora_data_first.fw_version);
Serial.printf(" \"vsupercap:\": \"%u\",\n", lora_data_first.vsupercap);
Serial.printf(" \"vbat:\": \"%u\",\n", lora_data_first.vbat);
Serial.printf(" \"humidity\": \"%u\",\n", lora_data_first.humidity);
Serial.printf(" \"pressure\": \"%u\",\n", lora_data_first.pressure);
Serial.printf(" \"weight_a\": \"%ld\",\n", lora_data_first.weight_a);
@@ -291,7 +300,7 @@ void ShowLORAData(bool firstTime)
Serial.printf("{\n");
Serial.printf(" \"version\": \"%d\",\n", lora_data.version);
Serial.printf(" \"vsupercap\": \"%u\",\n", lora_data.vsupercap);
Serial.printf(" \"vbat\": \"%u\",\n", lora_data.vbat);
Serial.printf(" \"temperature\": \"%u\",\n", lora_data.temperature);
Serial.printf(" \"humidity\": \"%u\",\n", lora_data.humidity);
Serial.printf(" \"pressure\": \"%u\",\n", lora_data.pressure);
@@ -534,12 +543,58 @@ void PowerupScale()
}
}
void CalculateWeight()
{
int32_t weight_current32;
int32_t weight_current32_a;
int32_t weight_current32_b;
bool plausible;
bool plausible_a;
bool plausible_b;
// Gewicht berechnen
weight_current32_a = (int32_t)((sensor_data.weight_a - config_data.cal_a_0) / config_data.cal_a_factor);
weight_current32_b = (int32_t)((sensor_data.weight_b - config_data.cal_b_0) / config_data.cal_b_factor);
weight_current32 = (int32_t)((weight_current32_a + weight_current32_b) / 5.0);
// we check if weights are plausible
plausible_a = (weight_current32_a > -10000) && (weight_current32_a < 150000);
plausible_b = (weight_current32_b > -10000) && (weight_current32_b < 150000);
plausible = (plausible_a && plausible_b);
if (weight_current32 < 0) {
if (plausible) {
weight_current32 = 0;
}
} else if (weight_current32 > UINT16_MAX) {
//weight_current32 = UINT16_MAX;
// we set the weight to 0, as such high values are not realistic and probably a sign for bad calibration...
weight_current32 = 0;
}
if (!plausible) {
weight_current32 = NOT_PLAUSIBLE_16;
//if (!plausible_a) {
// sensor_data.weight_a = NOT_PLAUSIBLE_32;
//}
//if (!plausible_b) {
// sensor_data.weight_b = NOT_PLAUSIBLE_32;
//}
}
sensor_data.weight = (uint16_t)weight_current32;
}
void ReadScales()
{
PowerupScale();
sensor_data.weight_a = ReadScale('A');
sensor_data.weight_b = ReadScale('B');
if (config_data.debug_level > 0) {
Serial.printf("Reading A, B: %d, %d\n", sensor_data.weight_a, sensor_data.weight_b);
}
PowerdownScale();
CalculateWeight();
}
/******************************************************************************/
@@ -600,6 +655,19 @@ bool checkUserAt(char *cmd, char *content)
return true;
}
if (strcmp(cmd, "SAVE_OTAA_CONFIG") == 0)
{
if (content[0] == '1')
{
memcpy(config_data.devEui, devEui, sizeof(devEui));
memcpy(config_data.appEui, appEui, sizeof(appEui));
memcpy(config_data.appKey, appKey, sizeof(appKey));
WriteConfigDataToFlash();
Serial.printf("saved OTAA configuration to flash\n");
}
return true;
}
if (strcmp(cmd, "READ_SENSORS") == 0)
{
if (content[0] == '?')
@@ -612,19 +680,19 @@ bool checkUserAt(char *cmd, char *content)
Serial.printf(" \"temperature\": \"%d\",\n", sensor_data.temperature);
Serial.printf(" \"humidity\": \"%d\",\n", sensor_data.humidity);
Serial.printf(" \"pressure\": \"%d\",\n", sensor_data.pressure);
Serial.printf(" \"vsupercap\": \"%d\",\n", sensor_data.vsupercap);
Serial.printf(" \"vbat\": \"%d\"\n", sensor_data.vbat);
Serial.printf("}\n");
}
return true;
}
if (strcmp(cmd, "SUPERCAP") == 0)
if (strcmp(cmd, "VBAT") == 0)
{
if (content[0] == '?')
{
uint16_t BatteryVoltage = getBatteryVoltage();
Serial.print("+SUPERCAP=");
Serial.print(BatteryVoltage);
uint16_t VBatVoltage = getBatteryVoltage();
Serial.print("+VBAT=");
Serial.print(VBatVoltage);
Serial.println();
}
return true;
@@ -708,6 +776,10 @@ void setup_platform(void)
// read config_data from flash...
ReadConfigDataFromFlash();
memcpy(devEui, config_data.devEui, sizeof(config_data.devEui));
memcpy(appEui, config_data.appEui, sizeof(config_data.appEui));
memcpy(appKey, config_data.appKey, sizeof(config_data.appKey));
if (config_data.debug_level > 0) {
Serial.printf("Setup_platform, this is the configuration\n");
Serial.printf("cal_a_0: %d\n", config_data.cal_a_0);
@@ -729,7 +801,7 @@ void AddSensorDataToLoraData()
iteration++;
next_package_is_init_package = ((iteration <= INIT_PACKETS) || ((package_counter % INIT_PACKAGE_INTERVAL) == 0));
if (next_package_is_init_package) {
lora_data_first.vsupercap = sensor_data.vsupercap;
lora_data_first.vbat = sensor_data.vbat;
lora_data_first.weight_a = sensor_data.weight_a;
lora_data_first.weight_b = sensor_data.weight_b;
lora_data_first.temperature = sensor_data.temperature;
@@ -739,7 +811,7 @@ void AddSensorDataToLoraData()
ShowLORAData(true);
}
} else {
lora_data.vsupercap = sensor_data.vsupercap;
lora_data.vbat = sensor_data.vbat;
if (my_position == 0) {
lora_data.temperature = sensor_data.temperature;
lora_data.weight_first = sensor_data.weight;
@@ -778,12 +850,14 @@ void AddSensorDataToLoraData()
timer_pos0 = millis();
}
my_position++;
last_sensor_reading = sensor_data;
}
bool TooBigWeightChange()
{
// on first position there cannot be a difference
if (my_position == 1) {
return false;
}
bool big_difference = (abs(last_sensor_reading.weight - sensor_data.weight) > SEND_DIFF_THRESHOLD_5GRAMS);
if (big_difference) {
lora_data.weight_last = sensor_data.weight;
@@ -796,6 +870,22 @@ bool TooBigWeightChange()
return big_difference;
}
uint8_t GetVBatValue(int millivolts)
{
uint8_t res;
if (millivolts <= 2510) {
res = 0;
} else if (millivolts >= 4295) {
res = 255;
} else {
res = (millivolts - 2510) / 7;
}
return res;
}
// returns true if data should be sent; read_only: when true, do not use as lora_data
bool ReadSensors(bool read_only)
{
@@ -811,7 +901,7 @@ bool ReadSensors(bool read_only)
disableVext();
uint16_t voltage = getBatteryVoltage();
sensor_data.vsupercap = (uint8_t)(voltage / 20);
sensor_data.vbat = GetVBatValue(voltage);
if (config_data.debug_level > 0) {
Serial.printf("Read ADC, %d Millivolts...\n", voltage);
}
@@ -819,6 +909,7 @@ bool ReadSensors(bool read_only)
if (!read_only) {
AddSensorDataToLoraData();
send_data = (TooBigWeightChange()) || (my_position >= MAX_VALUES_TO_SEND) || (iteration <= INIT_PACKETS) || (iteration % INIT_PACKAGE_INTERVAL == 0);
last_sensor_reading = sensor_data;
if (config_data.debug_level > 0) {
if (send_data) {
@@ -857,6 +948,9 @@ void loop()
{
case DEVICE_STATE_INIT:
{
#if(LORAWAN_DEVEUI_AUTO)
LoRaWAN.generateDeveuiByChipID();
#endif
#if(AT_SUPPORT)
getDevParam();
#endif
+47 -6
View File
@@ -20,10 +20,51 @@ Autor: Joerg Lehmann, nbit Informatik GmbH
Das sind die verwendeten Libraries [1]:
| URL | Commit | Commit Date |
| --- | ----- | ----------- |
| https://github.com/HelTecAutomation/ASR650x-Arduino.git | f468b40 | Sat, 10 Oct 2020 16:45:30 +0800 |
| https://github.com/sparkfun/SparkFun_Qwiic_Scale_NAU7802_Arduino_Library.git | 688f255 | Fri, 3 Jan 2020 12:35:22 -0700 |
| https://github.com/mcci-catena/Adafruit_BME280_Library.git | 3dafbe1 | Wed, 13 Dec 2017 13:56:30 -0500 |
| URL | Branch | Commit | Commit Date |
| --- | ------ | ----- | ----------- |
| https://github.com/HelTecAutomation/CubeCell-Arduino.git | 3333024 | Wed, 28 Apr 2021 18:15:24 +0800 |
| https://github.com/sparkfun/SparkFun_Qwiic_Scale_NAU7802_Arduino_Library.git | master | 688f255 | Fri, 3 Jan 2020 12:35:22 -0700 |
| https://github.com/sparkfun/SparkFun_BME280_Arduino_Library.git | master | 0b5eabf | Wed, 30 Dec 2020 20:44:27 -0700 |
[1]: Commit String: git log --pretty=format:'%h | %cD |' -n 1
`
[1]: echo "| $(git remote -v |grep fetch |awk '{print $2}' |tr '\n' ' ') | $(git log --pretty=format:'%h | %cD ' -n 1) |"
`
## Wir verwenden arduino-cli
Installation:
`
$ curl -fsSL https://raw.githubusercontent.com/arduino/arduino-cli/master/install.sh | BINDIR=~/bin sh
$ arduino-cli version
arduino-cli alpha Version: 0.18.1 Commit: b3cf8e19 Date: 2021-04-13T13:08:30Z
$ arduino-cli sketch new MiniBeieliNodeSketch
$ arduino-cli core update-index
$ arduino-cli board listall
$ arduino-cli core install CubeCell:CubeCell
$ arduino-cli core list
Compile:
$ arduino-cli compile --fqbn CubeCell:CubeCell:CubeCell-Board \
--build-property "build.band=REGION_EU868" \
--build-property "build.LORAWAN_CLASS=CLASS_A" \
--build-property "build.LORAWAN_DEVEUI_AUTO=0" \
--build-property "build.LORAWAN_NETMODE=true" \
--build-property "build.LORAWAN_ADR=true" \
--build-property "build.LORAWAN_UPLINKMODE=false" \
--build-property "build.LORAWAN_Net_Reserve=false" \
--build-property "build.LORAWAN_AT_SUPPORT=1" \
--build-property "build.RGB=0" \
--build-property "build.LORAWAN_DebugLevel=0" \
MiniBeieliNodeSketch
Output ist in /tmp/arduino-sketch-XXXXXXXXXXXXXXXXXXXXXXXXX und kann kopiert werden:
$ mkdir ~/arduino-builds-saved/20210501/
$ cp /tmp/arduino-sketch-0870BAA82DFEB3C4E076C8FBBDEB25B4/CubeCell_Board_REGION_EU868_RGB_0.cyacd ~/arduino-builds-saved/20210501/
Upload:
/home/joerg/Arduino/hardware/CubeCell/CubeCell/tools/CubeCellflash/CubeCellflash -serial /dev/ttyUSB0 /home/joerg/arduino-builds-saved/latest/CubeCell_Board_REGION_EU868_RGB_0.cyacd
`
+62
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@@ -0,0 +1,62 @@
package main
import (
"fmt"
"os"
"path/filepath"
)
func getAppKey(deveui string) string {
if len(deveui) == 16 {
appkey := fmt.Sprintf("%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c",
deveui[10],
deveui[3],
deveui[4],
deveui[7],
deveui[15],
deveui[9],
deveui[11],
deveui[2],
deveui[0],
deveui[8],
deveui[1],
deveui[6],
deveui[5],
deveui[12],
deveui[14],
deveui[13],
deveui[3],
deveui[6],
deveui[12],
deveui[7],
deveui[15],
deveui[1],
deveui[9],
deveui[11],
deveui[2],
deveui[10],
deveui[0],
deveui[8],
deveui[5],
deveui[14],
deveui[4],
deveui[13])
return appkey
} else {
fmt.Printf("devEui has wrong length: %s\n", deveui)
return ""
}
}
func main() {
if len(os.Args) != 2 {
fmt.Println("usage: " + filepath.Base(os.Args[0]) + " <DevEui>")
os.Exit(1)
}
devEui := os.Args[1]
appKey := getAppKey(devEui)
fmt.Printf("%s\n", appKey)
}
+152
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@@ -0,0 +1,152 @@
package main
import (
"bufio"
"encoding/json"
"fmt"
"github.com/tarm/serial"
"log"
"os"
"path/filepath"
"strconv"
"strings"
"time"
)
type SensorData struct {
WeightARaw string `json:"weight_a_raw"`
WeightBRaw string `json:"weight_b_raw"`
}
// returns last line of output
func sendCommand(p *serial.Port, command string) string {
fmt.Printf("%s\n", command)
var last_line string = ""
p.Flush()
_, err := p.Write([]byte(command))
if err != nil {
log.Fatal(err)
}
buf := make([]byte, 1024)
time.Sleep(500 * time.Millisecond)
n, _ := p.Read(buf)
if n > 0 {
last_line_arr := strings.Split(string(buf[:n]), "\n")
//fmt.Printf("AAA: %+q\n", last_line_arr)
last_line = last_line_arr[len(last_line_arr)-2]
fmt.Print(string(buf[:n]))
}
return last_line
}
// returns output
func sendCommandJSON(p *serial.Port, command string) string {
fmt.Printf("%s\n", command)
var res string = ""
p.Flush()
_, err := p.Write([]byte(command))
if err != nil {
log.Fatal(err)
}
buf := make([]byte, 1024)
time.Sleep(3000 * time.Millisecond)
n, _ := p.Read(buf)
if n > 0 {
res = string(buf[:n-1])
}
return res
}
func getDevEui(p *serial.Port) string {
var reply = sendCommand(p, "AT+ChipID=?")
//fmt.Printf("XXX%sYYY\n",reply)
if len(reply) >= 20 {
return "0000" + reply[8:20]
} else {
return ""
}
}
func ReadSensorData(p *serial.Port) SensorData {
var reply = sendCommandJSON(p, "AT+READ_SENSORS=?")
fmt.Printf("XXX%sYYY\n", reply)
var data SensorData
json.Unmarshal([]byte(reply), &data)
//fmt.Printf("%v \n", data)
//fmt.Printf("weight_a_raw: %s\n", data.WeightARaw)
//fmt.Printf("weight_b_raw: %s\n", data.WeightBRaw)
return data
}
func readSerial(p *serial.Port) {
p.Flush()
buf := make([]byte, 32)
time.Sleep(200 * time.Millisecond)
n, _ := p.Read(buf)
for n > 0 {
// ignoring error as EOF raises error on Linux
reply := string(buf[:n])
fmt.Print(reply)
n, _ = p.Read(buf)
}
}
func main() {
if len(os.Args) != 3 {
fmt.Println("usage: " + filepath.Base(os.Args[0]) + " <SerialDevice> <calibration_weight_in_gram>")
os.Exit(1)
}
serialdev := os.Args[1]
calWeightS := os.Args[2]
calWeight, _ := strconv.Atoi(calWeightS)
c := &serial.Config{Name: serialdev, Baud: 115200, ReadTimeout: time.Second * 1}
s, err := serial.OpenPort(c)
if err != nil {
log.Fatal("Problem mit Serial Interface")
}
sendCommand(s, "AT+XXX")
devEui := getDevEui(s)
reader := bufio.NewReader(os.Stdin)
if devEui != "" {
fmt.Println("Hit Return when no weight is on scale (neither on A not on B)")
reader.ReadString('\n')
sendCommand(s, "AT+XXX")
sensorData := ReadSensorData(s)
fmt.Printf("%v\n", sensorData)
a0, _ := strconv.Atoi(sensorData.WeightARaw)
b0, _ := strconv.Atoi(sensorData.WeightBRaw)
sendCommand(s, "AT+CAL_A_0="+sensorData.WeightARaw)
sendCommand(s, "AT+CAL_B_0="+sensorData.WeightBRaw)
fmt.Println("Put Weight on Scale A, then hit Return")
reader.ReadString('\n')
sendCommand(s, "AT+XXX")
sensorData = ReadSensorData(s)
aW, _ := strconv.Atoi(sensorData.WeightARaw)
fmt.Println("Put Weight on Scale B, then hit Return")
reader.ReadString('\n')
sendCommand(s, "AT+XXX")
sensorData = ReadSensorData(s)
bW, _ := strconv.Atoi(sensorData.WeightBRaw)
calA := float64(aW-a0) / float64(calWeight)
calB := float64(bW-b0) / float64(calWeight)
sendCommand(s, "AT+CAL_A_FACTOR="+fmt.Sprintf("%f", calA))
sendCommand(s, "AT+CAL_B_FACTOR="+fmt.Sprintf("%f", calB))
sendCommand(s, "AT+READ_CONFIG=?")
sendCommand(s, "AT+RESET=1")
readSerial(s)
} else {
log.Fatal("Could not get devEui (that is: ChipID)")
}
}
+134
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@@ -0,0 +1,134 @@
package main
import (
"fmt"
"github.com/tarm/serial"
"log"
"os"
"path/filepath"
"strings"
"time"
)
// returns last line of output
func sendCommand(p *serial.Port, command string) string {
fmt.Printf("%s\n", command)
var last_line string = ""
p.Flush()
_, err := p.Write([]byte(command))
if err != nil {
log.Fatal(err)
}
buf := make([]byte, 1024)
time.Sleep(500 * time.Millisecond)
n, _ := p.Read(buf)
if n > 0 {
last_line_arr := strings.Split(string(buf[:n]), "\n")
//fmt.Printf("AAA: %+q\n", last_line_arr)
last_line = last_line_arr[len(last_line_arr)-2]
fmt.Print(string(buf[:n]))
}
return last_line
}
func getDevEui(p *serial.Port) string {
var reply = sendCommand(p, "AT+ChipID=?")
//fmt.Printf("XXX%sYYY\n",reply)
if len(reply) >= 20 {
return "0000" + reply[8:20]
} else {
return ""
}
}
func readSerial(p *serial.Port) {
p.Flush()
buf := make([]byte, 32)
time.Sleep(200 * time.Millisecond)
n, _ := p.Read(buf)
for n > 0 {
// ignoring error as EOF raises error on Linux
reply := string(buf[:n])
fmt.Print(reply)
n, _ = p.Read(buf)
}
}
func getAppKey(deveui string) string {
if len(deveui) == 16 {
appkey := fmt.Sprintf("%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c%c",
deveui[10],
deveui[3],
deveui[4],
deveui[7],
deveui[15],
deveui[9],
deveui[11],
deveui[2],
deveui[0],
deveui[8],
deveui[1],
deveui[6],
deveui[5],
deveui[12],
deveui[14],
deveui[13],
deveui[3],
deveui[6],
deveui[12],
deveui[7],
deveui[15],
deveui[1],
deveui[9],
deveui[11],
deveui[2],
deveui[10],
deveui[0],
deveui[8],
deveui[5],
deveui[14],
deveui[4],
deveui[13])
fmt.Printf("calculated AppKey: %s\n", appkey)
return appkey
} else {
fmt.Printf("devEui has wrong length: %s\n", deveui)
return ""
}
}
func main() {
if len(os.Args) != 3 {
fmt.Println("usage: " + filepath.Base(os.Args[0]) + " <SerialDevice> <appEui>")
os.Exit(1)
}
serialdev := os.Args[1]
appEui := os.Args[2]
c := &serial.Config{Name: serialdev, Baud: 115200, ReadTimeout: time.Second * 1}
s, err := serial.OpenPort(c)
if err != nil {
log.Fatal("Problem mit Serial Interface")
}
sendCommand(s, "AT+XXX")
devEui := getDevEui(s)
appKey := getAppKey(devEui)
if devEui != "" {
sendCommand(s, "AT+DevEui="+devEui)
sendCommand(s, "AT+AppEui="+appEui)
sendCommand(s, "AT+AppKey="+appKey)
sendCommand(s, "AT+SAVE_OTAA_CONFIG=1")
sendCommand(s, "AT+RESET=1")
readSerial(s)
} else {
log.Fatal("Could not get devEui (that is: ChipID)")
}
}