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20 Commits
Author SHA1 Message Date
jlehmann d0a173a54a 20200604 2020-06-04 20:16:01 +02:00
jlehmann a8fe52fa0e reduce timeout again to 300sec, but sleep 10sec after timeout 2020-06-03 17:05:46 +02:00
jlehmann eb4da9d637 add debugging info, bug fix 2020-06-03 16:04:47 +02:00
jlehmann a4c0c71e54 README: patch arduino-lmic to use SF10 2020-06-03 10:37:26 +02:00
jlehmann fcfc596506 increase timeout from 300 to 900 seconds 2020-06-03 08:56:10 +02:00
jlehmann 59ce7ee44d 20200602 2020-06-02 21:21:05 +02:00
jlehmann f8909fc353 print LMIC.opmode before sleep 2020-06-01 19:31:36 +02:00
jlehmann ab86c843b1 cancel transactions at timeout 2020-06-01 19:04:39 +02:00
jlehmann 6d3053d8ad try to make it more stable... 2020-06-01 12:57:54 +02:00
jlehmann 85b0f6db06 refactor 2020-05-30 20:11:19 +02:00
jlehmann 0c5c673e5e add delay, see https://github.com/mcci-catena/arduino-lmic/issues/547 2020-05-30 18:01:13 +02:00
jlehmann e30a8293ac do not try a second time to use SendBuffer at failure 2020-05-29 17:12:20 +02:00
jlehmann 174f8b360f refactor a bit 2020-05-29 16:16:12 +02:00
jlehmann d0389af061 try second time if first try fails (SendBuffer) 2020-05-28 20:08:21 +02:00
jlehmann 7c8a52cafe tune code 2020-05-28 13:27:19 +02:00
jlehmann b71e0c0f0c make it more stable 2020-05-27 15:10:40 +02:00
jlehmann d2e4b81416 remove unused variable 2020-05-27 10:20:45 +02:00
jlehmann de0fef6971 some more tuning 2020-05-25 18:07:56 +02:00
jlehmann 1ce266ab22 remove timestamps in debug messages, debug nau7802 i2c connection 2020-05-23 18:13:08 +02:00
jlehmann 775eafc74f revised version 20200522 2020-05-22 14:52:09 +02:00
5 changed files with 237 additions and 371 deletions
+19
View File
@@ -31,5 +31,24 @@ Das sind die verwendeten Libraries [1]:
| https://github.com/mcci-catena/SHT1x.git | be7042c | Tue, 20 Sep 2011 13:56:23 +1000 |
Patch arduino-lmic, so initial SF10 is used initially:
`
[joerg@cinnamon src]$ git diff
diff --git a/src/lmic/lmic_bandplan_eu868.h b/src/lmic/lmic_bandplan_eu868.h
index efff7d5..74efb37 100644
--- a/src/lmic/lmic_bandplan_eu868.h
+++ b/src/lmic/lmic_bandplan_eu868.h
@@ -61,7 +61,7 @@ LMICeu868_isValidBeacon1(const uint8_t *d) {
#undef LMICbandplan_isFSK
#define LMICbandplan_isFSK() (/* RX datarate */LMIC.dndr == EU868_DR_FSK)
-#define LMICbandplan_getInitialDrJoin() (EU868_DR_SF7)
+#define LMICbandplan_getInitialDrJoin() (EU868_DR_SF10)
void LMICeu868_setBcnRxParams(void);
#define LMICbandplan_setBcnRxParams() LMICeu868_setBcnRxParams()
`
`[1]:
[joerg@cinnamon libraries]$ for i in Adafruit_BME280_Library Adafruit_Sensor arduino-lmic arduino-lorawan Catena-Arduino-Platform Catena-mcciadk MCCI_FRAM_I2C Q2-HX711-Arduino-Library SparkFun_Qwiic_Scale_NAU7802_Arduino_Library OneWire SHT1x ; do cd $i; echo "| $(git remote -v |grep fetch |awk '{print $2}' |tr '\n' ' ') | $(git log --pretty=format:'%h | %cD ' -n 1) |" ; cd ..; done`
+128 -308
View File
@@ -143,17 +143,10 @@ bool fFlash;
bool fUsbPower;
// have we printed the sleep info?
bool g_fPrintedSleeping = false;
// the job that's used to synchronize us with the LMIC code
static osjob_t iterationJob;
static osjob_t sendJob;
// the cycle time to use
unsigned gTxCycle;
// remaining before we reset to default
unsigned gTxCycleCount;
void setup(void)
{
gCatena.begin();
@@ -170,7 +163,7 @@ void setup(void)
void setup_platform(void)
{
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - setup_platform\n", millis());
gCatena.SafePrintf("Setup_platform\n");
}
/* add our application-specific commands */
@@ -181,12 +174,12 @@ void setup_platform(void)
// read config_data from fram...
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - Reading Calibration Config from FRAM...\n", millis());
gCatena.SafePrintf("Reading Calibration Config from FRAM...\n");
}
gCatena.getFram()->getField(cFramStorage::kAppConf, (uint8_t *)&config_data, sizeof(config_data));
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - setup_platform, this is the configuration\n", millis());
gCatena.SafePrintf("Setup_platform, this is the configuration\n");
gCatena.SafePrintf("cal_w1_0: %d\n", config_data.cal_w1_0);
gCatena.SafePrintf("cal_w2_0: %d\n", config_data.cal_w2_0);
gCatena.SafePrintf("cal_w1_factor: %d.%03d\n", (int)config_data.cal_w1_factor, (int)abs(config_data.cal_w1_factor * 1000) % 1000);
@@ -253,7 +246,6 @@ void setup_platform(void)
}
gLoRaWAN.SetReceiveBufferBufferCb(receiveMessage);
setTxCycleTime(CATCFG_T_CYCLE_INITIAL, CATCFG_INTERVAL_COUNT_INITIAL);
gCatena.registerObject(&gLoRaWAN);
/* find the platform */
@@ -286,7 +278,7 @@ void setup_platform(void)
void setup_bme280(void)
{
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - setup_bme280\n", millis());
gCatena.SafePrintf("Setup_bme280\n");
}
if (gBME280.begin(BME280_ADDRESS, Adafruit_BME280::OPERATING_MODE::Sleep)) {
@@ -301,7 +293,7 @@ void setup_bme280(void)
bool setup_scales(void)
{
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - setup_scales\n", millis());
gCatena.SafePrintf("Setup_scales\n");
}
bool res;
@@ -311,7 +303,7 @@ bool setup_scales(void)
PowerupScale();
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - setup_scale done\n", millis());
gCatena.SafePrintf("Setup_scale done\n");
}
return res;
@@ -320,14 +312,14 @@ bool setup_scales(void)
void setup_flash(void)
{
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - setup_flash\n", millis());
gCatena.SafePrintf("setup_flash\n");
}
if (gFlash.begin(&gSPI2, Catena::PIN_SPI2_FLASH_SS)) {
fFlash = true;
gFlash.powerDown();
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - FLASH found, but power down\n", millis());
gCatena.SafePrintf("FLASH found, but power down\n");
}
}
else {
@@ -335,7 +327,7 @@ void setup_flash(void)
gFlash.end();
gSPI2.end();
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - No FLASH found: check hardware\n", millis());
gCatena.SafePrintf("FLASH found: check hardware\n");
}
}
}
@@ -343,25 +335,28 @@ void setup_flash(void)
void setup_uplink(void)
{
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - setup_uplink\n", millis());
gCatena.SafePrintf("setup_uplink\n");
}
LMIC_setClockError(1 * 65536 / 100);
// explicitly enable LinkCheckMode
gLoRaWAN.SetLinkCheckMode(true);
/* figure out when to reboot */
gRebootMs = (CATCFG_T_REBOOT + os_getRndU2() - 32768) * 1000;
// Do an unjoin, so every reboot will trigger a join
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - do an unjoin...\n", millis());
gCatena.SafePrintf("do an unjoin...\n");
}
LMIC_unjoin();
/* trigger a join by sending the first packet */
if (!(gCatena.GetOperatingFlags() & static_cast<uint32_t>(gCatena.OPERATING_FLAGS::fManufacturingTest))) {
if (!gLoRaWAN.IsProvisioned())
gCatena.SafePrintf("%010d - LoRaWAN not provisioned yet. Use the commands to set it up.\n");
gCatena.SafePrintf("LoRaWAN not provisioned yet. Use the commands to set it up.\n");
else {
if (config_data.debug_level > 1) {
gLed.Set(LedPattern::Joining);
@@ -422,7 +417,7 @@ void ClearLoraData(void)
void ShowLORAData(bool firstTime)
{
gCatena.SafePrintf("%010d - ShowLORAData\n", millis());
gCatena.SafePrintf("ShowLORAData\n");
if (firstTime) {
@@ -503,7 +498,7 @@ uint8_t GetVBatValue(int millivolts)
void DoDeepSleep(uint32_t sleep_time)
{
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - DoDeepSleep, now going to deep sleep\n", millis());
gCatena.SafePrintf("DoDeepSleep, now going to deep sleep\n");
}
// Prepare Deep Sleep
@@ -520,7 +515,7 @@ void DoDeepSleep(uint32_t sleep_time)
deepSleepRecovery();
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - done with deep sleep\n", millis());
gCatena.SafePrintf("done with deep sleep\n");
}
}
@@ -534,7 +529,7 @@ void ReadSensors(SENSOR_data &sensor_data) {
int vbat_mv = (int)(gCatena.ReadVbat() * 1000.0f);
res.vbat = GetVBatValue(vbat_mv);
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - vBat: %d mV\n", millis(), vbat_mv);
gCatena.SafePrintf("vBat: %d mV\n", vbat_mv);
}
// Read Scales
@@ -542,36 +537,36 @@ void ReadSensors(SENSOR_data &sensor_data) {
w2_0_real = config_data.cal_w2_0;
if (setup_scales()) {
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - LoadCell is ready.\n", millis());
gCatena.SafePrintf("LoadCell is ready.\n");
}
if (config_data.cal_w1_0 != NOT_ATTACHED) {
res.weight1 = (int32_t)ReadScale('A');
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - Load_cell 1 weight1_current: %ld\n", millis(), res.weight1);
gCatena.SafePrintf("Load_cell 1 weight1_current: %ld\n", res.weight1);
}
} else {
res.weight1 = 0;
w1_0_real = 0;
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - Load_cell 1 is disabled\n", millis());
gCatena.SafePrintf("Load_cell 1 is disabled\n");
}
}
if (config_data.cal_w2_0 != NOT_ATTACHED) {
res.weight2 = (int32_t)ReadScale('B');
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - Load_cell 2 weight2_current: %ld\n", millis(), res.weight2);
gCatena.SafePrintf("Load_cell 2 weight2_current: %ld\n", res.weight2);
}
} else {
res.weight2 = 0;
w2_0_real = 0;
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - Load_cell 2 is disabled\n", millis());
gCatena.SafePrintf("Load_cell 2 is disabled\n");
}
}
}
else {
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - LoadCell not ready.\n", millis());
gCatena.SafePrintf("LoadCell not ready.\n");
}
}
@@ -604,8 +599,7 @@ void ReadSensors(SENSOR_data &sensor_data) {
// humidity is one byte, where 0 == 0/256 and 0xFF == 255/256.
if (config_data.debug_level > 0) {
gCatena.SafePrintf(
"%010d - BME280: T: %d P: %d RH: %d\n",
millis(),
"BME280: T: %d P: %d RH: %d\n",
(int)m.Temperature,
(int)m.Pressure,
(int)m.Humidity);
@@ -614,7 +608,7 @@ void ReadSensors(SENSOR_data &sensor_data) {
res.humidity = (uint8_t)m.Humidity;
res.pressure = (uint8_t)((m.Pressure / 100) - PRESSURE_OFFSET);
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - pressure_current: %d\n", millis(), res.pressure);
gCatena.SafePrintf("pressure_current: %d\n", res.pressure);
}
}
@@ -635,7 +629,7 @@ void StartNewIteration() {
// vBus
float vBus = gCatena.ReadVbus();
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - vBus: %d mV\n", millis(), (int)(vBus * 1000.0f));
gCatena.SafePrintf("vBus: %d mV\n", (int)(vBus * 1000.0f));
}
fUsbPower = (vBus > 4.3) ? true : false;
@@ -678,10 +672,10 @@ void StartNewIteration() {
// we send data the first time the system is started, when the array is full
// or when the weight has fallen more than threshold or the first measurement is
// more than one hour old (which should not happen :-) )
if ( (next_package_is_init_package) || (my_position >= MAX_VALUES_TO_SEND) || ((last_sensor_reading.weight - current_sensor_reading.weight) > SEND_DIFF_THRESHOLD_5GRAMS) || ((millis() - timer_pos0) > 3600000)) {
if ( (next_package_is_init_package) || (my_position >= MAX_VALUES_TO_SEND) || (abs(last_sensor_reading.weight - current_sensor_reading.weight) > SEND_DIFF_THRESHOLD_5GRAMS) || ((millis() - timer_pos0) > 3600000)) {
lora_data.offset_last_reading = (uint8_t)((millis() - timer_pos0) / 1000 / 60);
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - startSendingUplink(), my_position: %d, iteration: %d, package_counter: %d\n", millis(), my_position, iteration, package_counter);
gCatena.SafePrintf("startSendingUplink(), my_position: %d, iteration: %d, package_counter: %d\n", my_position, iteration, package_counter);
}
// the first <INIT_PACKETS> packets are "Init-Packets" or each INIT_PACKAGE_INTERVAL ...
startSendingUplink(next_package_is_init_package);
@@ -691,19 +685,35 @@ void StartNewIteration() {
gLed.Set(LedPattern::TwoShort);
}
// Loop while sending is in progress, timeout just in case after 300 seconds
// Loop sending is in progress, timeout just in case after 300 seconds
long start_time = millis();
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - waiting while send is in progress\n", millis());
gCatena.SafePrintf("waiting while send is in progress\n");
}
while (send_in_progress && ((millis() - start_time) < 300000))
{
gCatena.poll();
yield();
}
// handle timeout...
if (send_in_progress) {
if (config_data.debug_level > 0) {
gCatena.SafePrintf("looks like we timed out waiting for sending to finish...\n", wait_time);
}
LMIC_clrTxData();
// we sleep 10 seconds...
start_time = millis();
while ((millis() - start_time) < 10000)
{
gCatena.poll();
yield();
}
send_in_progress = false;
}
wait_time = (uint32_t)((millis() - start_time) / 1000);
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - end waiting, wait time was %d seconds\n", millis(), wait_time);
gCatena.SafePrintf("end waiting, wait time was %d seconds\n", wait_time);
}
}
@@ -720,17 +730,17 @@ void StartNewIteration() {
sleep_time_sec = 5;
}
// for the first <INIT_PACKETS> iterations, we set the sleep time to 10 seconds only...
// for the first <INIT_PACKETS> iterations, we set the sleep time to 120 seconds only...
if (iteration <= INIT_PACKETS) {
sleep_time_sec = 10;
sleep_time_sec = 120;
}
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - now going to sleep for %d seconds...\n", millis(), sleep_time_sec);
gCatena.SafePrintf("now going to sleep for %d seconds...\n", sleep_time_sec);
if (fUsbPower) {
gCatena.SafePrintf("%010d - USB Power is on\n", millis());
gCatena.SafePrintf("USB Power is on\n");
} else {
gCatena.SafePrintf("%010d - USB Power is off\n", millis());
gCatena.SafePrintf("USB Power is off\n");
}
//Serial.flush();
if (config_data.debug_level > 1) {
@@ -738,26 +748,39 @@ void StartNewIteration() {
}
}
// if we need to periodically reboot, we can do it now...
if (uint32_t(millis()) > gRebootMs) {
// time to reboot
if (config_data.debug_level > 0) {
gCatena.SafePrintf("Reached threshold to reboot...\n");
Serial.flush();
}
NVIC_SystemReset();
}
if (config_data.debug_level > 0) {
gCatena.SafePrintf("LMIC.opmode just before Sleeping: %#x\n", LMIC.opmode);
gCatena.SafePrintf("LMIC.globalDutyRate: %d, LMIC.globalDutyAvail: %d\n", LMIC.globalDutyRate, LMIC.globalDutyAvail );
}
if (!fUsbPower) {
DoDeepSleep(sleep_time_sec);
if (! stop_iterations) {
StartNewIteration();
}
//os_setTimedCallback(
// &iterationJob,
// os_getTime() + sec2osticks(2),
// startNewIterationCb);
}
else {
if (! stop_iterations) {
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - light sleep; os_setTimedCallback for startNewIterationCb in %d...seconds\n", millis(), sleep_time_sec);
gCatena.SafePrintf("light sleep; os_setTimedCallback for startNewIterationCb in %d...seconds\n", sleep_time_sec);
}
os_setTimedCallback(
&iterationJob,
os_getTime() + sec2osticks(sleep_time_sec),
startNewIterationCb);
}
}
}
void startSendingUplink(bool firstTime)
@@ -786,16 +809,35 @@ void startSendingUplink(bool firstTime)
if (firstTime) {
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - SendBuffer firstTime\n", millis());
gCatena.SafePrintf("SendBuffer firstTime\n");
}
gLoRaWAN.SendBuffer((uint8_t*)&lora_data_first, sizeof(LORA_data_first), sendBufferDoneCb, NULL, fConfirmed, kUplinkPort);
if (gLoRaWAN.SendBuffer((uint8_t*)&lora_data_first, sizeof(LORA_data_first), sendBufferDoneCb, NULL, fConfirmed, kUplinkPort)) {
package_counter++;
if (config_data.debug_level > 0) {
gCatena.SafePrintf("LMIC.opmode just after SendBuffer (successful): %#x\n", LMIC.opmode);
gCatena.SafePrintf("LMIC.globalDutyRate: %d, LMIC.globalDutyAvail: %d\n", LMIC.globalDutyRate, LMIC.globalDutyAvail );
}
}
else {
gCatena.SafePrintf("LMIC.opmode just before SendBuffer (failed): %#x\n", LMIC.opmode);
gCatena.SafePrintf("LMIC.globalDutyRate: %d, LMIC.globalDutyAvail: %d\n", LMIC.globalDutyRate, LMIC.globalDutyAvail );
}
} else {
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - SendBuffer not firstTime\n", millis());
gCatena.SafePrintf("LMIC.opmode just before SendBuffer: %#x\n", LMIC.opmode);
gCatena.SafePrintf("LMIC.globalDutyRate: %d, LMIC.globalDutyAvail: %d\n", LMIC.globalDutyRate, LMIC.globalDutyAvail );
gCatena.SafePrintf("SendBuffer not firstTime\n");
}
gLoRaWAN.SendBuffer((uint8_t*)&lora_data, sizeof(LORA_data), sendBufferDoneCb, NULL, fConfirmed, kUplinkPort);
if (gLoRaWAN.SendBuffer((uint8_t*)&lora_data, sizeof(LORA_data), sendBufferDoneCb, NULL, fConfirmed, kUplinkPort)) {
package_counter++;
if (config_data.debug_level > 0) {
gCatena.SafePrintf("LMIC.opmode just after SendBuffer (successful): %#x\n", LMIC.opmode);
gCatena.SafePrintf("LMIC.globalDutyRate: %d, LMIC.globalDutyAvail: %d\n", LMIC.globalDutyRate, LMIC.globalDutyAvail );
}
} else {
gCatena.SafePrintf("LMIC.opmode just before SendBuffer (failed): %#x\n", LMIC.opmode);
gCatena.SafePrintf("LMIC.globalDutyRate: %d, LMIC.globalDutyAvail: %d\n", LMIC.globalDutyRate, LMIC.globalDutyAvail );
}
}
ClearLoraData();
@@ -809,6 +851,7 @@ static void sendBufferDoneCb(
if (config_data.debug_level > 1) {
gLed.Set(LedPattern::Settling);
gCatena.SafePrintf("LMIC.opmode in sendBufferDoneCb: %#x\n", LMIC.opmode);
}
pFn = settleDoneCb;
@@ -823,7 +866,7 @@ static void sendBufferDoneCb(
gLoRaWAN.Shutdown();
}
else if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - send buffer failed\n", millis());
gCatena.SafePrintf("send buffer failed, LMIC.opmode: %#x\n", LMIC.opmode);
}
}
@@ -847,183 +890,62 @@ static void txNotProvisionedCb(
}
}
static void settleDoneCb(
osjob_t* pSendJob)
{
const bool fDeepSleep = checkDeepSleep();
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - settleDoneCb\n", millis());
}
if (config_data.debug_level > 2) {
// Terry vv
gCatena.SafePrintf("LMIC.rxDelay: %i\n", LMIC.rxDelay);
gCatena.SafePrintf("LMIC.dn2Dr: %i\n", LMIC.dn2Dr);
gCatena.SafePrintf("LMIC.dn2Freq: %i\n", LMIC.dn2Freq);
gCatena.SafePrintf("LMIC.rx1DrOffset: %i\n", LMIC.rx1DrOffset);
gCatena.SafePrintf("LMIC.adrAckReq: %i\n", LMIC.adrAckReq);
gCatena.SafePrintf("LMIC.adrEnabled: %i\n", LMIC.adrEnabled);
// Terry ^^
}
if (uint32_t(millis()) > gRebootMs) {
// time to reboot
NVIC_SystemReset();
}
if (! g_fPrintedSleeping)
doSleepAlert(fDeepSleep);
/* count what we're up to */
updateSleepCounters();
if (fDeepSleep)
doDeepSleep(pSendJob);
else
doLightSleep(pSendJob);
}
bool checkDeepSleep(void)
{
bool const fDeepSleepTest = gCatena.GetOperatingFlags() &
static_cast<uint32_t>(gCatena.OPERATING_FLAGS::fDeepSleepTest);
bool fDeepSleep;
if (fDeepSleepTest)
{
fDeepSleep = true;
}
#ifdef USBCON
else if (Serial.dtr())
{
fDeepSleep = false;
}
#endif
else if (gCatena.GetOperatingFlags() &
static_cast<uint32_t>(gCatena.OPERATING_FLAGS::fDisableDeepSleep))
{
fDeepSleep = false;
}
else if ((gCatena.GetOperatingFlags() &
static_cast<uint32_t>(gCatena.OPERATING_FLAGS::fUnattended)) != 0)
{
fDeepSleep = true;
}
else
{
fDeepSleep = false;
}
return fDeepSleep;
return !fUsbPower;
}
void doSleepAlert(const bool fDeepSleep)
{
g_fPrintedSleeping = true;
if (fDeepSleep)
{
bool const fDeepSleepTest = gCatena.GetOperatingFlags() &
static_cast<uint32_t>(gCatena.OPERATING_FLAGS::fDeepSleepTest);
const uint32_t deepSleepDelay = fDeepSleepTest ? 10 : 30;
if (config_data.debug_level > 2) {
gCatena.SafePrintf("using deep sleep in %u secs"
#ifdef USBCON
" (USB will disconnect while asleep)"
#endif
": ",
deepSleepDelay
);
}
// sleep and print
if (config_data.debug_level > 1) {
gLed.Set(LedPattern::TwoShort);
if (config_data.debug_level > 0) {
gCatena.SafePrintf("We wait until is is safe to go to sleep...\n");
}
for (auto n = deepSleepDelay; n > 0; --n)
{
uint32_t tNow = millis();
while (uint32_t(millis() - tNow) < 1000)
for (int i = 0; i <= 15; i++) {
long prevPrint = millis();
while (os_queryTimeCriticalJobs(ms2osticks(2000)) != 0)
{
gCatena.poll();
yield();
}
if (config_data.debug_level > 2) {
gCatena.SafePrintf(".");
if (millis() - prevPrint > 1000) {
prevPrint = millis();
if (config_data.debug_level > 0) {
gCatena.SafePrintf("LMIC.opmode: %#x in loop %d\n", LMIC.opmode, i);
}
}
if (config_data.debug_level > 2) {
gCatena.SafePrintf("\nStarting deep sleep.\n");
}
uint32_t tNow = millis();
while (uint32_t(millis() - tNow) < 100)
{
gCatena.poll();
yield();
}
}
else if (config_data.debug_level > 2) {
gCatena.SafePrintf("using light sleep\n");
}
}
void updateSleepCounters(void)
{
// update the sleep parameters
if (gTxCycleCount > 1)
{
// values greater than one are decremented and ultimately reset to default.
--gTxCycleCount;
}
else if (gTxCycleCount == 1)
{
// it's now one (otherwise we couldn't be here.)
if (config_data.debug_level > 2) {
gCatena.SafePrintf("resetting tx cycle to default: %u\n", CATCFG_T_CYCLE);
}
gTxCycleCount = 0;
gTxCycle = CATCFG_T_CYCLE;
}
else
{
// it's zero. Leave it alone.
}
}
void doDeepSleep(osjob_t *pJob)
{
bool const fDeepSleepTest = gCatena.GetOperatingFlags() &
static_cast<uint32_t>(gCatena.OPERATING_FLAGS::fDeepSleepTest);
uint32_t const sleepInterval = CATCFG_GetInterval(
fDeepSleepTest ? CATCFG_T_CYCLE_TEST : gTxCycle
);
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - doDeepSleep, sleepInterval: %d...\n", millis(), sleepInterval);
gCatena.SafePrintf("Now it is safe to go to sleep\n");
}
/* ok... now it's time for a deep sleep */
gLed.Set(LedPattern::Off);
deepSleepPrepare();
}
/* sleep */
gCatena.Sleep(sleepInterval);
static void settleDoneCb(
osjob_t* pSendJob)
{
if (config_data.debug_level > 0) {
gCatena.SafePrintf("settleDoneCb - we are at the end of the callback chain!\n");
}
/* recover from sleep */
deepSleepRecovery();
const bool fDeepSleep = checkDeepSleep();
/* and now... we're awake again. trigger another measurement */
sleepDoneCb(pJob);
if (uint32_t(millis()) > gRebootMs)
{
// time to reboot
NVIC_SystemReset();
}
doSleepAlert(fDeepSleep);
send_in_progress = false;
}
void deepSleepPrepare(void)
{
Serial.end();
Wire.endTransmission(true);
Wire.end();
SPI.end();
if (fFlash)
@@ -1039,58 +961,11 @@ void deepSleepRecovery(void)
gSPI2.begin();
}
void doLightSleep(osjob_t *pJob)
{
uint32_t interval = sec2osticks(CATCFG_GetInterval(gTxCycle));
if (config_data.debug_level > 1) {
gLed.Set(LedPattern::Sleeping);
gCatena.SafePrintf("%010d - doLightSleep\n", millis());
}
if (gCatena.GetOperatingFlags() &
static_cast<uint32_t>(gCatena.OPERATING_FLAGS::fQuickLightSleep))
{
interval = 1;
}
os_setTimedCallback(
&iterationJob,
os_getTime() + interval,
sleepDoneCb
);
}
static void sleepDoneCb(osjob_t* pJob)
{
if (config_data.debug_level > 1) {
gLed.Set(LedPattern::WarmingUp);
}
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - sleepDoneCb\n", millis());
}
os_setTimedCallback(
pJob,
os_getTime() + sec2osticks(CATCFG_T_WARMUP),
warmupDoneCb);
}
static void warmupDoneCb(osjob_t* pJob)
{
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - warmupDoneCb\n", millis());
}
send_in_progress = false;
}
static void startNewIterationCb(osjob_t* pJob)
{
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - startNewIterationCb\n", millis());
gCatena.SafePrintf("startNewIterationCb\n");
}
if (! stop_iterations) {
@@ -1100,8 +975,6 @@ static void startNewIterationCb(osjob_t* pJob)
static void receiveMessage(void *pContext, uint8_t port, const uint8_t *pMessage, size_t nMessage)
{
unsigned txCycle;
unsigned txCount;
long cal_w1_0;
long cal_w2_0;
@@ -1113,10 +986,8 @@ static void receiveMessage(void *pContext, uint8_t port, const uint8_t *pMessage
float fval;
} u;
SENSOR_data temp_sensor_data;
if (config_data.debug_level > 0) {
gCatena.SafePrintf("%010d - receiveMessage was called!!!\n", millis());
gCatena.SafePrintf("receiveMessage was called!!!\n");
}
if (config_data.debug_level > 2) {
@@ -1219,59 +1090,8 @@ static void receiveMessage(void *pContext, uint8_t port, const uint8_t *pMessage
}
}
if (port == 0)
{
return;
}
else if (! (port == 1 && 2 <= nMessage && nMessage <= 3))
{
if (config_data.debug_level > 0) {
gCatena.SafePrintf("invalid message port(%02x)/length(%x)\n",
port, nMessage
);
}
return;
}
txCycle = (pMessage[0] << 8) | pMessage[1];
if (txCycle < CATCFG_T_MIN || txCycle > CATCFG_T_MAX)
{
if (config_data.debug_level > 0) {
gCatena.SafePrintf("tx cycle time out of range: %u\n", txCycle);
}
return;
}
// byte [2], if present, is the repeat count.
// explicitly sending zero causes it to stick.
txCount = CATCFG_INTERVAL_COUNT;
if (nMessage >= 3)
{
txCount = pMessage[2];
}
setTxCycleTime(txCycle, txCount);
}
void setTxCycleTime(unsigned txCycle, unsigned txCount)
{
if (txCount > 0) {
if (config_data.debug_level > 0) {
gCatena.SafePrintf("message cycle time %u seconds for %u messages\n", txCycle, txCount);
}
}
else if (config_data.debug_level > 0) {
gCatena.SafePrintf("message cycle time %u seconds indefinitely\n", txCycle);
}
gTxCycle = txCycle;
gTxCycleCount = txCount;
}
/* process "application hello" -- args are ignored */
// argv[0] is "hello"
// argv[1..argc-1] are the (ignored) arguments
+2 -2
View File
@@ -56,7 +56,7 @@ enum {
|
\****************************************************************************/
static const int32_t fwVersion = 20200522;
static const int32_t fwVersion = 20200604;
static const byte INIT_PACKAGE_INTERVAL = 100; // send an init package every 100 packages;
static const byte MAX_VALUES_TO_SEND = 8;
@@ -64,7 +64,7 @@ static const byte MAX_VALUES_TO_SEND = 8;
static const uint8_t LORA_DATA_VERSION = 1;
static const uint8_t LORA_DATA_VERSION_FIRST_PACKAGE = 128;
static const uint32_t PRESSURE_OFFSET = 825;
static const uint16_t SEND_DIFF_THRESHOLD_5GRAMS = 10; // when weight value drops by 50g, then send data
static const uint16_t SEND_DIFF_THRESHOLD_5GRAMS = 20; // when weight changes by 100g, then send data
static const long NOT_ATTACHED = -2147483648;
static const byte INIT_PACKETS = 5;
+4 -4
View File
@@ -20,7 +20,7 @@ bool SetupScales(byte dbg_level)
{
debug_level = dbg_level;
if (debug_level > 0) {
gCatena.SafePrintf("%010d - setup_scales\n", millis());
gCatena.SafePrintf("setup_scales\n");
}
bool res;
@@ -30,7 +30,7 @@ bool SetupScales(byte dbg_level)
pinMode(D10, OUTPUT);
if (debug_level > 0) {
gCatena.SafePrintf("%010d - setup_scale done\n", millis());
gCatena.SafePrintf("setup_scale done\n");
}
return res;
@@ -52,7 +52,7 @@ long ReadScale(char channel)
long readings[num_scale_readings]; // create arry to hold readings
if (debug_level > 0) {
gCatena.SafePrintf("%010d - my_read_average, measurements:\n", millis());
gCatena.SafePrintf("my_read_average, measurements:\n");
}
for (int i = 0; i < num_scale_readings; i++) {
@@ -89,6 +89,6 @@ void PowerupScale()
delay(400);
if (debug_level > 0) {
gCatena.SafePrintf("%010d - setup_scale done\n", millis());
gCatena.SafePrintf("setup_scale done\n");
}
}
+74 -47
View File
@@ -1,3 +1,5 @@
#pragma once
#include <Wire.h>
#ifndef _HELPER_H_
@@ -7,52 +9,67 @@
#include "SparkFun_Qwiic_Scale_NAU7802_Arduino_Library.h"
#define SAMPLES 5
#define IGNORE_READINGS 5
NAU7802 myScale; //Create instance of the NAU7802 class
byte debug_level;
byte interruptPin = A0;
//byte interruptPin = A0;
void SetScalesDebugLevel(byte dbg_level)
{
debug_level = dbg_level;
}
bool InitializeScales()
{
bool result;
result = myScale.reset(); //Reset all registers
result &= myScale.powerUp(); //Power on analog and digital sections of the scale
result &= myScale.setIntPolarityHigh();
result &= myScale.setLDO(NAU7802_LDO_3V3); //Set LDO to 3.3V
result &= myScale.setGain(NAU7802_GAIN_128); //Set gain to 128
result &= myScale.setSampleRate(NAU7802_SPS_40); //Set samples per second to 40
result &= myScale.setRegister(NAU7802_ADC, 0x30); //Turn off CLK_CHP. From 9.1 power on sequencing.
result &= myScale.clearBit(NAU7802_PGA_PWR_PGA_CAP_EN, NAU7802_PGA_PWR);
//result &= myScale.setRegister(NAU7802_OTP_B1, 0x30);
//result &= myScale.setRegister(NAU7802_PGA, NAU7802_PGA_OUT_EN | NAU7802_PGA_CHP_DIS);
result &= myScale.calibrateAFE(); //Re-cal analog front end when we change gain, sample rate, or channel
return result;
}
bool SetupScales(byte dbg_level)
{
debug_level = dbg_level;
if (debug_level > 0) {
gCatena.SafePrintf("%010d - SetupScales start\n", millis());
gCatena.SafePrintf("SetupScales start\n");
}
pinMode(interruptPin, INPUT);
Wire.begin();
// pinMode(interruptPin, INPUT);
if (!myScale.begin())
if (!myScale.begin(Wire, false))
{
gCatena.SafePrintf("Scale not detected. Please check wiring. Freezing...\n");
return false;
}
gCatena.SafePrintf("Scale detected!\n");
myScale.setIntPolarityHigh();
myScale.clearBit(NAU7802_PGA_PWR_PGA_CAP_EN, NAU7802_PGA_PWR);
myScale.setSampleRate(NAU7802_SPS_80);
myScale.setLDO(NAU7802_LDO_3V3);
bool result = InitializeScales();
if (debug_level > 0) {
gCatena.SafePrintf("%010d - SetupScales done\n", millis());
gCatena.SafePrintf("SetupScales done, result: %d\n", result);
}
return true;
return result;
}
long ReadScale(char channel)
{
long res;
if (debug_level > 0) {
gCatena.SafePrintf("%010d - ReadScale Start\n", millis());
gCatena.SafePrintf("ReadScale Start, Channel %c\n", channel);
}
uint8_t channelNumber;
@@ -63,42 +80,44 @@ long ReadScale(char channel)
}
long startTime = millis();
myScale.setChannel(channelNumber);
myScale.calibrateAFE();
bool calibrate_success = myScale.calibrateAFE();
if (! calibrate_success) {
if (debug_level > 0) {
gCatena.SafePrintf("Error: Calibration not successful!\n");
}
}
long res;
long dummy;
int const ignore_readings = IGNORE_READINGS; // number of first <n> readings to ignore
if (myScale.available()) {
long dummy = myScale.getReading();
}
int const num_scale_readings = SAMPLES; // number of instantaneous scale readings to calculate the median
for (int i = 0; i < ignore_readings; i++) {
while (digitalRead(interruptPin) == LOW) {
if ((millis() - startTime) > 60000) {
if (debug_level > 0) {
gCatena.SafePrintf("Timeout while reading scale (dummy values)...\n");
}
return 0;
}
delay(1);
}
dummy = myScale.getReading();
}
// we use the median, not the average, see https://community.particle.io/t/boron-gpio-provides-less-current-than-electrons-gpio/46647/13
startTime = millis();
long readings[num_scale_readings]; // create arry to hold readings
for (int i = 0; i < num_scale_readings; i++) {
while (digitalRead(interruptPin) == LOW) {
//while(! myScale.available()) {
// we set a timeout of 60 seconds for the measurement...
if ((millis() - startTime) > 60000) {
//while (digitalRead(interruptPin) == LOW) {
long mytimer = millis();
while (! myScale.available()) {
// we set a timeout of 10 seconds for the measurement...
if ((millis() - mytimer) > 10000) {
// Timeout reading scale...
Wire.endTransmission(true);
if (debug_level > 0) {
gCatena.SafePrintf("Timeout while reading scale...\n");
}
return 0;
break;
}
delay(1);
}
readings[i] = myScale.getReading(); // fill the array with instantaneous readings from the scale
long reading;
if (myScale.available()) {
reading = myScale.getReading();
readings[i] = reading;
}
if (debug_level > 0) {
gCatena.SafePrintf("Reading: %d\n", reading);
}
delay(10);
}
long duration = millis() - startTime;
@@ -110,13 +129,23 @@ long ReadScale(char channel)
sdev = stddev(readings, num_scale_readings);
float sdev_proc;
sdev_proc = 100 * (sdev / float(res));
gCatena.SafePrintf("Measurements: [");
for (int i = 0; i < num_scale_readings; i++) {
gCatena.SafePrintf("%d", readings[i]);
if (i < (SAMPLES - 1)) {
gCatena.SafePrintf(",");
}
}
gCatena.SafePrintf("]\n");
gCatena.SafePrintf("Standard Deviation: %d.%03d\n", (int)sdev, (int)abs(sdev * 1000) % 1000);
gCatena.SafePrintf("Standard Deviation / Median (Percent): %d.%03d\n", (int)sdev_proc, (int)abs(sdev_proc * 1000) % 1000);
gCatena.SafePrintf("Duration (ms): %d\n", duration);
}
if (debug_level > 0) {
gCatena.SafePrintf("%010d - ReadScale Done\n", millis());
gCatena.SafePrintf("ReadScale Done\n");
}
return res;
@@ -125,25 +154,23 @@ long ReadScale(char channel)
void PowerdownScale()
{
if (debug_level > 0) {
gCatena.SafePrintf("%010d - PowerdownScale Start\n", millis());
gCatena.SafePrintf("PowerdownScale Start\n");
}
myScale.powerDown();
if (debug_level > 0) {
gCatena.SafePrintf("%010d - PowerdownScale Done\n", millis());
gCatena.SafePrintf("PowerdownScale Done\n");
}
}
void PowerupScale()
{
if (debug_level > 0) {
gCatena.SafePrintf("%010d - PowerupScale Start\n", millis());
gCatena.SafePrintf("PowerupScale Start\n");
}
myScale.powerUp(); //Power up scale. This scale takes ~600ms to boot and take reading.
// we wait 100 ms to give it time to stabilze
delay(100);
InitializeScales();
if (debug_level > 0) {
gCatena.SafePrintf("%010d - PowerupScale Done\n", millis());
gCatena.SafePrintf("PowerupScale Done\n");
}
}