Merge pull request #2 from sparkfun/release_candidate
v2.0.1 : Adding time pulse examples
This commit is contained in:
+120
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/*
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Time Pulse Parameters - Bullet Time (https://en.wikipedia.org/wiki/Bullet_time)
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By: Paul Clark (PaulZC)
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Date: January 13th, 2021
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License: MIT. See license file for more information but you can
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basically do whatever you want with this code.
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This example shows how to change the time pulse parameters and configure the TIMEPULSE (PPS)
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pin to produce a pulse once per second but with an adjustable delay. You could use this to
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trigger multiple cameras and replicate the "bullet time" effect.
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The SparkFun GPS-RTK-SMA Breakout - ZED-F9P (Qwiic) (https://www.sparkfun.com/products/16481)
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has solder pads which will let you connect an SMA connector to the TIMEPULSE signal. Need an
|
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accurate timelapse camera shutter signal? This is the product for you!
|
||||||
|
|
||||||
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Feel like supporting open source hardware?
|
||||||
|
Buy a board from SparkFun!
|
||||||
|
ZED-F9P RTK2: https://www.sparkfun.com/products/15136
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||||||
|
NEO-M8P RTK: https://www.sparkfun.com/products/15005
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||||||
|
SAM-M8Q: https://www.sparkfun.com/products/15106
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Hardware Connections:
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Plug a Qwiic cable into the GNSS and a BlackBoard
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If you don't have a platform with a Qwiic connection use the SparkFun Qwiic Breadboard Jumper (https://www.sparkfun.com/products/14425)
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Open the serial monitor at 115200 baud to see the output
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*/
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#include <Wire.h> //Needed for I2C to GNSS
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#include "SparkFun_u-blox_GNSS_Arduino_Library.h" //http://librarymanager/All#SparkFun_u-blox_GNSS
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SFE_UBLOX_GNSS myGNSS;
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void setup()
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{
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Serial.begin(115200);
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while (!Serial)
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; //Wait for user to open terminal
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Serial.println(F("SparkFun u-blox Example"));
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Wire.begin();
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//myGNSS.enableDebugging(); // Uncomment this line to enable debug messages
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if (myGNSS.begin() == false) //Connect to the u-blox module using Wire port
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{
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Serial.println(F("u-blox GNSS not detected at default I2C address. Please check wiring. Freezing."));
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while (1)
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;
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}
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myGNSS.setI2COutput(COM_TYPE_UBX); //Set the I2C port to output UBX only (turn off NMEA noise)
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// Create storage for the time pulse parameters
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UBX_CFG_TP5_data_t timePulseParameters;
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// Get the time pulse parameters
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if (myGNSS.getTimePulseParameters(&timePulseParameters) == false)
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{
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Serial.println(F("getTimePulseParameters failed! Freezing..."));
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while (1) ; // Do nothing more
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}
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// Print the CFG TP5 version
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Serial.print(F("UBX_CFG_TP5 version: "));
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Serial.println(timePulseParameters.version);
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timePulseParameters.tpIdx = 0; // Select the TIMEPULSE pin
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//timePulseParameters.tpIdx = 1; // Or we could select the TIMEPULSE2 pin instead, if the module has one
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// We can configure the time pulse pin to produce a defined frequency or period
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// Here is how to set the period:
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// Let's say that we want our pulse-per-second to be as accurate as possible. So, let's tell the module
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// to generate no signal while it is _locking_ to GNSS time. We want the signal to start only when the module is
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// _locked_ to GNSS time.
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timePulseParameters.freqPeriod = 0; // Set the frequency/period to zero
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timePulseParameters.pulseLenRatio = 0; // Set the pulse ratio to zero
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// When the module is _locked_ to GNSS time, make it generate a 0.1 second pulse once per second
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timePulseParameters.freqPeriodLock = 1000000; // Set the period to 1,000,000 us
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timePulseParameters.pulseLenRatioLock = 100000; // Set the pulse length to 0.1s (100,000 us)
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timePulseParameters.flags.bits.polarity = 1; // Set the polarity to "1" (high for 0.1s, low for 0.9s, rising edge at top of second)
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// We can use userConfigDelay to delay the pulse for each camera. The delay needs to be negative for this example.
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// We can delay the pulse by +/- 2^31 nanoseconds (+/- 2.147 seconds)
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//timePulseParameters.userConfigDelay = 0; // Camera 1: delay the pulse by 0ns
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//timePulseParameters.userConfigDelay = -100000000; // Camera 2: delay the pulse by 0.1s (100,000,000 ns)
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//timePulseParameters.userConfigDelay = -200000000; // Camera 3: delay the pulse by 0.2s (200,000,000 ns)
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timePulseParameters.userConfigDelay = -300000000; // Camera 4: delay the pulse by 0.3s (300,000,000 ns)
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//timePulseParameters.userConfigDelay = -400000000; // Camera 5: delay the pulse by 0.4s (400,000,000 ns)
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//timePulseParameters.userConfigDelay = -500000000; // Camera 6: delay the pulse by 0.5s (500,000,000 ns)
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//timePulseParameters.userConfigDelay = -600000000; // Camera 7: delay the pulse by 0.6s (600,000,000 ns)
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//timePulseParameters.userConfigDelay = -700000000; // Camera 8: delay the pulse by 0.7s (700,000,000 ns)
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//timePulseParameters.userConfigDelay = -800000000; // Camera 9: delay the pulse by 0.8s (800,000,000 ns)
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//timePulseParameters.userConfigDelay = -900000000; // Camera 10: delay the pulse by 0.9s (900,000,000 ns)
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timePulseParameters.flags.bits.active = 1; // Make sure the active flag is set to enable the time pulse. (Set to 0 to disable.)
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timePulseParameters.flags.bits.lockedOtherSet = 1; // Tell the module to use freqPeriod while locking and freqPeriodLock when locked to GNSS time
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timePulseParameters.flags.bits.isFreq = 0; // Tell the module that we want to set the period (not the frequency)
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timePulseParameters.flags.bits.isLength = 1; // Tell the module that pulseLenRatio is a length (in us) - not a duty cycle
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// Now set the time pulse parameters
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if (myGNSS.setTimePulseParameters(&timePulseParameters) == false)
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{
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Serial.println(F("setTimePulseParameters failed!"));
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}
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else
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{
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Serial.println(F("Success!"));
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}
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// Finally, save the time pulse parameters in battery-backed memory so the pulse will automatically restart at power on
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myGNSS.saveConfigSelective(VAL_CFG_SUBSEC_NAVCONF); // Save the configuration
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}
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void loop()
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{
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// Nothing to do here
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}
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+101
@@ -0,0 +1,101 @@
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/*
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Time Pulse Parameters - Frequency
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By: Paul Clark (PaulZC)
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Date: January 13th, 2021
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|
|
||||||
|
License: MIT. See license file for more information but you can
|
||||||
|
basically do whatever you want with this code.
|
||||||
|
|
||||||
|
This example shows how to change the time pulse parameters and configure the TIMEPULSE (PPS)
|
||||||
|
pin to produce a 1kHz squarewave
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||||||
|
|
||||||
|
The SparkFun GPS-RTK-SMA Breakout - ZED-F9P (Qwiic) (https://www.sparkfun.com/products/16481)
|
||||||
|
has solder pads which will let you connect an SMA connector to the TIMEPULSE signal. Need an
|
||||||
|
accurate frequency or clock source for your latest project? This is the product for you!
|
||||||
|
|
||||||
|
Feel like supporting open source hardware?
|
||||||
|
Buy a board from SparkFun!
|
||||||
|
ZED-F9P RTK2: https://www.sparkfun.com/products/15136
|
||||||
|
NEO-M8P RTK: https://www.sparkfun.com/products/15005
|
||||||
|
SAM-M8Q: https://www.sparkfun.com/products/15106
|
||||||
|
|
||||||
|
Hardware Connections:
|
||||||
|
Plug a Qwiic cable into the GNSS and a BlackBoard
|
||||||
|
If you don't have a platform with a Qwiic connection use the SparkFun Qwiic Breadboard Jumper (https://www.sparkfun.com/products/14425)
|
||||||
|
Open the serial monitor at 115200 baud to see the output
|
||||||
|
*/
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#include <Wire.h> //Needed for I2C to GNSS
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#include "SparkFun_u-blox_GNSS_Arduino_Library.h" //http://librarymanager/All#SparkFun_u-blox_GNSS
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SFE_UBLOX_GNSS myGNSS;
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void setup()
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{
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Serial.begin(115200);
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while (!Serial)
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; //Wait for user to open terminal
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Serial.println(F("SparkFun u-blox Example"));
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Wire.begin();
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//myGNSS.enableDebugging(); // Uncomment this line to enable debug messages
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if (myGNSS.begin() == false) //Connect to the u-blox module using Wire port
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{
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Serial.println(F("u-blox GNSS not detected at default I2C address. Please check wiring. Freezing."));
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while (1)
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;
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}
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myGNSS.setI2COutput(COM_TYPE_UBX); //Set the I2C port to output UBX only (turn off NMEA noise)
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// Create storage for the time pulse parameters
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UBX_CFG_TP5_data_t timePulseParameters;
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// Get the time pulse parameters
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if (myGNSS.getTimePulseParameters(&timePulseParameters) == false)
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{
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Serial.println(F("getTimePulseParameters failed! Freezing..."));
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while (1) ; // Do nothing more
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}
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// Print the CFG TP5 version
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Serial.print(F("UBX_CFG_TP5 version: "));
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Serial.println(timePulseParameters.version);
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timePulseParameters.tpIdx = 0; // Select the TIMEPULSE pin
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//timePulseParameters.tpIdx = 1; // Or we could select the TIMEPULSE2 pin instead, if the module has one
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||||||
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// We can configure the time pulse pin to produce a defined frequency or period
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||||||
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// Here is how to set the frequency:
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||||||
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// While the module is _locking_ to GNSS time, make it generate 2kHz
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timePulseParameters.freqPeriod = 2000; // Set the frequency/period to 2000Hz
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timePulseParameters.pulseLenRatio = 0x55555555; // Set the pulse ratio to 1/3 * 2^32 to produce 33:67 mark:space
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// When the module is _locked_ to GNSS time, make it generate 1kHz
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timePulseParameters.freqPeriodLock = 1000; // Set the frequency/period to 1000Hz
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timePulseParameters.pulseLenRatioLock = 0x80000000; // Set the pulse ratio to 1/2 * 2^32 to produce 50:50 mark:space
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timePulseParameters.flags.bits.active = 1; // Make sure the active flag is set to enable the time pulse. (Set to 0 to disable.)
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timePulseParameters.flags.bits.lockedOtherSet = 1; // Tell the module to use freqPeriod while locking and freqPeriodLock when locked to GNSS time
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timePulseParameters.flags.bits.isFreq = 1; // Tell the module that we want to set the frequency (not the period)
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timePulseParameters.flags.bits.isLength = 0; // Tell the module that pulseLenRatio is a ratio / duty cycle (* 2^-32) - not a length (in us)
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timePulseParameters.flags.bits.polarity = 1; // Tell the module that we want the rising edge at the top of second. (Set to 0 for falling edge.)
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// Now set the time pulse parameters
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if (myGNSS.setTimePulseParameters(&timePulseParameters) == false)
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{
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Serial.println(F("setTimePulseParameters failed!"));
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}
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else
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{
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Serial.println(F("Success!"));
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}
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}
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void loop()
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{
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// Nothing to do here
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}
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+108
@@ -0,0 +1,108 @@
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/*
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Time Pulse Parameters - Period
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||||||
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By: Paul Clark (PaulZC)
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||||||
|
Date: January 13th, 2021
|
||||||
|
|
||||||
|
License: MIT. See license file for more information but you can
|
||||||
|
basically do whatever you want with this code.
|
||||||
|
|
||||||
|
This example shows how to change the time pulse parameters and configure the TIMEPULSE (PPS)
|
||||||
|
pin to produce a 1 second pulse every 30 seconds. What's really cool is that if you run this
|
||||||
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example on two GNSS boards, the pulses are precisely synchronised!
|
||||||
|
|
||||||
|
The SparkFun GPS-RTK-SMA Breakout - ZED-F9P (Qwiic) (https://www.sparkfun.com/products/16481)
|
||||||
|
has solder pads which will let you connect an SMA connector to the TIMEPULSE signal. Need an
|
||||||
|
accurate timelapse camera shutter signal? This is the product for you!
|
||||||
|
|
||||||
|
Feel like supporting open source hardware?
|
||||||
|
Buy a board from SparkFun!
|
||||||
|
ZED-F9P RTK2: https://www.sparkfun.com/products/15136
|
||||||
|
NEO-M8P RTK: https://www.sparkfun.com/products/15005
|
||||||
|
SAM-M8Q: https://www.sparkfun.com/products/15106
|
||||||
|
|
||||||
|
Hardware Connections:
|
||||||
|
Plug a Qwiic cable into the GNSS and a BlackBoard
|
||||||
|
If you don't have a platform with a Qwiic connection use the SparkFun Qwiic Breadboard Jumper (https://www.sparkfun.com/products/14425)
|
||||||
|
Open the serial monitor at 115200 baud to see the output
|
||||||
|
*/
|
||||||
|
|
||||||
|
#include <Wire.h> //Needed for I2C to GNSS
|
||||||
|
|
||||||
|
#include "SparkFun_u-blox_GNSS_Arduino_Library.h" //http://librarymanager/All#SparkFun_u-blox_GNSS
|
||||||
|
SFE_UBLOX_GNSS myGNSS;
|
||||||
|
|
||||||
|
void setup()
|
||||||
|
{
|
||||||
|
Serial.begin(115200);
|
||||||
|
while (!Serial)
|
||||||
|
; //Wait for user to open terminal
|
||||||
|
Serial.println(F("SparkFun u-blox Example"));
|
||||||
|
|
||||||
|
Wire.begin();
|
||||||
|
|
||||||
|
//myGNSS.enableDebugging(); // Uncomment this line to enable debug messages
|
||||||
|
|
||||||
|
if (myGNSS.begin() == false) //Connect to the u-blox module using Wire port
|
||||||
|
{
|
||||||
|
Serial.println(F("u-blox GNSS not detected at default I2C address. Please check wiring. Freezing."));
|
||||||
|
while (1)
|
||||||
|
;
|
||||||
|
}
|
||||||
|
|
||||||
|
myGNSS.setI2COutput(COM_TYPE_UBX); //Set the I2C port to output UBX only (turn off NMEA noise)
|
||||||
|
|
||||||
|
// Create storage for the time pulse parameters
|
||||||
|
UBX_CFG_TP5_data_t timePulseParameters;
|
||||||
|
|
||||||
|
// Get the time pulse parameters
|
||||||
|
if (myGNSS.getTimePulseParameters(&timePulseParameters) == false)
|
||||||
|
{
|
||||||
|
Serial.println(F("getTimePulseParameters failed! Freezing..."));
|
||||||
|
while (1) ; // Do nothing more
|
||||||
|
}
|
||||||
|
|
||||||
|
// Print the CFG TP5 version
|
||||||
|
Serial.print(F("UBX_CFG_TP5 version: "));
|
||||||
|
Serial.println(timePulseParameters.version);
|
||||||
|
|
||||||
|
timePulseParameters.tpIdx = 0; // Select the TIMEPULSE pin
|
||||||
|
//timePulseParameters.tpIdx = 1; // Or we could select the TIMEPULSE2 pin instead, if the module has one
|
||||||
|
|
||||||
|
// We can configure the time pulse pin to produce a defined frequency or period
|
||||||
|
// Here is how to set the period:
|
||||||
|
|
||||||
|
// Let's say that we want our 1 pulse every 30 seconds to be as accurate as possible. So, let's tell the module
|
||||||
|
// to generate no signal while it is _locking_ to GNSS time. We want the signal to start only when the module is
|
||||||
|
// _locked_ to GNSS time.
|
||||||
|
timePulseParameters.freqPeriod = 0; // Set the frequency/period to zero
|
||||||
|
timePulseParameters.pulseLenRatio = 0; // Set the pulse ratio to zero
|
||||||
|
|
||||||
|
// When the module is _locked_ to GNSS time, make it generate a 1 second pulse every 30 seconds
|
||||||
|
// (Although the period can be a maximum of 2^32 microseconds (over one hour), the upper limit appears to be around 33 seconds)
|
||||||
|
timePulseParameters.freqPeriodLock = 30000000; // Set the period to 30,000,000 us
|
||||||
|
timePulseParameters.pulseLenRatioLock = 1000000; // Set the pulse length to 1,000,000 us
|
||||||
|
|
||||||
|
timePulseParameters.flags.bits.active = 1; // Make sure the active flag is set to enable the time pulse. (Set to 0 to disable.)
|
||||||
|
timePulseParameters.flags.bits.lockedOtherSet = 1; // Tell the module to use freqPeriod while locking and freqPeriodLock when locked to GNSS time
|
||||||
|
timePulseParameters.flags.bits.isFreq = 0; // Tell the module that we want to set the period (not the frequency)
|
||||||
|
timePulseParameters.flags.bits.isLength = 1; // Tell the module that pulseLenRatio is a length (in us) - not a duty cycle
|
||||||
|
timePulseParameters.flags.bits.polarity = 1; // Tell the module that we want the rising edge at the top of second. (Set to 0 for falling edge.)
|
||||||
|
|
||||||
|
// Now set the time pulse parameters
|
||||||
|
if (myGNSS.setTimePulseParameters(&timePulseParameters) == false)
|
||||||
|
{
|
||||||
|
Serial.println(F("setTimePulseParameters failed!"));
|
||||||
|
}
|
||||||
|
else
|
||||||
|
{
|
||||||
|
Serial.println(F("Success!"));
|
||||||
|
}
|
||||||
|
|
||||||
|
// Finally, save the time pulse parameters in battery-backed memory so the pulse will automatically restart at power on
|
||||||
|
myGNSS.saveConfigSelective(VAL_CFG_SUBSEC_NAVCONF); // Save the configuration
|
||||||
|
}
|
||||||
|
|
||||||
|
void loop()
|
||||||
|
{
|
||||||
|
// Nothing to do here
|
||||||
|
}
|
||||||
+1
-1
@@ -1,5 +1,5 @@
|
|||||||
name=SparkFun u-blox GNSS Arduino Library
|
name=SparkFun u-blox GNSS Arduino Library
|
||||||
version=2.0.0
|
version=2.0.1
|
||||||
author=SparkFun Electronics <techsupport@sparkfun.com>
|
author=SparkFun Electronics <techsupport@sparkfun.com>
|
||||||
maintainer=SparkFun Electronics <sparkfun.com>
|
maintainer=SparkFun Electronics <sparkfun.com>
|
||||||
sentence=Library for I2C and Serial Communication with u-blox modules
|
sentence=Library for I2C and Serial Communication with u-blox modules
|
||||||
|
|||||||
@@ -4252,6 +4252,81 @@ boolean SFE_UBLOX_GNSS::resetIMUalignment(uint16_t maxWait)
|
|||||||
return (sendCommand(&packetCfg, maxWait, true) == SFE_UBLOX_STATUS_DATA_SENT); // We are only expecting an ACK
|
return (sendCommand(&packetCfg, maxWait, true) == SFE_UBLOX_STATUS_DATA_SENT); // We are only expecting an ACK
|
||||||
}
|
}
|
||||||
|
|
||||||
|
//Get the time pulse parameters using UBX_CFG_TP5
|
||||||
|
boolean SFE_UBLOX_GNSS::getTimePulseParameters(UBX_CFG_TP5_data_t *data, uint16_t maxWait)
|
||||||
|
{
|
||||||
|
if (data == NULL) // Check if the user forgot to include the data pointer
|
||||||
|
return (false); // Bail
|
||||||
|
|
||||||
|
packetCfg.cls = UBX_CLASS_CFG;
|
||||||
|
packetCfg.id = UBX_CFG_TP5;
|
||||||
|
packetCfg.len = 0;
|
||||||
|
packetCfg.startingSpot = 0;
|
||||||
|
|
||||||
|
if (sendCommand(&packetCfg, maxWait) != SFE_UBLOX_STATUS_DATA_RECEIVED) // We are expecting data and an ACK
|
||||||
|
return (false);
|
||||||
|
|
||||||
|
// Extract the data
|
||||||
|
data->tpIdx = extractByte(&packetCfg, 0);
|
||||||
|
data->version = extractByte(&packetCfg, 1);
|
||||||
|
data->antCableDelay = extractSignedInt(&packetCfg, 4);
|
||||||
|
data->rfGroupDelay = extractSignedInt(&packetCfg, 6);
|
||||||
|
data->freqPeriod = extractLong(&packetCfg, 8);
|
||||||
|
data->freqPeriodLock = extractLong(&packetCfg, 12);
|
||||||
|
data->pulseLenRatio = extractLong(&packetCfg, 16);
|
||||||
|
data->pulseLenRatioLock = extractLong(&packetCfg, 20);
|
||||||
|
data->userConfigDelay = extractSignedLong(&packetCfg, 24);
|
||||||
|
data->flags.all = extractLong(&packetCfg, 28);
|
||||||
|
|
||||||
|
return(true);
|
||||||
|
}
|
||||||
|
|
||||||
|
//Set the time pulse parameters using UBX_CFG_TP5
|
||||||
|
boolean SFE_UBLOX_GNSS::setTimePulseParameters(UBX_CFG_TP5_data_t *data, uint16_t maxWait)
|
||||||
|
{
|
||||||
|
if (data == NULL) // Check if the user forgot to include the data pointer
|
||||||
|
return (false); // Bail
|
||||||
|
|
||||||
|
packetCfg.cls = UBX_CLASS_CFG;
|
||||||
|
packetCfg.id = UBX_CFG_TP5;
|
||||||
|
packetCfg.len = UBX_CFG_TP5_LEN;
|
||||||
|
packetCfg.startingSpot = 0;
|
||||||
|
|
||||||
|
// Insert the data
|
||||||
|
payloadCfg[0] = data->tpIdx;
|
||||||
|
payloadCfg[1] = data->version;
|
||||||
|
payloadCfg[4] = data->antCableDelay & 0xFF; // Little Endian
|
||||||
|
payloadCfg[5] = data->antCableDelay >> 8;
|
||||||
|
payloadCfg[6] = data->rfGroupDelay & 0xFF; // Little Endian
|
||||||
|
payloadCfg[7] = data->rfGroupDelay >> 8;
|
||||||
|
payloadCfg[8] = data->freqPeriod & 0xFF; // Little Endian
|
||||||
|
payloadCfg[9] = (data->freqPeriod >> 8) & 0xFF;
|
||||||
|
payloadCfg[10] = (data->freqPeriod >> 16) & 0xFF;
|
||||||
|
payloadCfg[11] = (data->freqPeriod >> 24) & 0xFF;
|
||||||
|
payloadCfg[12] = data->freqPeriodLock & 0xFF; // Little Endian
|
||||||
|
payloadCfg[13] = (data->freqPeriodLock >> 8) & 0xFF;
|
||||||
|
payloadCfg[14] = (data->freqPeriodLock >> 16) & 0xFF;
|
||||||
|
payloadCfg[15] = (data->freqPeriodLock >> 24) & 0xFF;
|
||||||
|
payloadCfg[16] = data->pulseLenRatio & 0xFF; // Little Endian
|
||||||
|
payloadCfg[17] = (data->pulseLenRatio >> 8) & 0xFF;
|
||||||
|
payloadCfg[18] = (data->pulseLenRatio >> 16) & 0xFF;
|
||||||
|
payloadCfg[19] = (data->pulseLenRatio >> 24) & 0xFF;
|
||||||
|
payloadCfg[20] = data->pulseLenRatioLock & 0xFF; // Little Endian
|
||||||
|
payloadCfg[21] = (data->pulseLenRatioLock >> 8) & 0xFF;
|
||||||
|
payloadCfg[22] = (data->pulseLenRatioLock >> 16) & 0xFF;
|
||||||
|
payloadCfg[23] = (data->pulseLenRatioLock >> 24) & 0xFF;
|
||||||
|
payloadCfg[24] = data->userConfigDelay & 0xFF; // Little Endian
|
||||||
|
payloadCfg[25] = (data->userConfigDelay >> 8) & 0xFF;
|
||||||
|
payloadCfg[26] = (data->userConfigDelay >> 16) & 0xFF;
|
||||||
|
payloadCfg[27] = (data->userConfigDelay >> 24) & 0xFF;
|
||||||
|
payloadCfg[28] = data->flags.all & 0xFF; // Little Endian
|
||||||
|
payloadCfg[29] = (data->flags.all >> 8) & 0xFF;
|
||||||
|
payloadCfg[30] = (data->flags.all >> 16) & 0xFF;
|
||||||
|
payloadCfg[31] = (data->flags.all >> 24) & 0xFF;
|
||||||
|
|
||||||
|
return (sendCommand(&packetCfg, maxWait) == SFE_UBLOX_STATUS_DATA_SENT); // We are only expecting an ACK
|
||||||
|
}
|
||||||
|
|
||||||
// CONFIGURATION INTERFACE (protocol v27 and above)
|
// CONFIGURATION INTERFACE (protocol v27 and above)
|
||||||
|
|
||||||
//Form 32-bit key from group/id/size
|
//Form 32-bit key from group/id/size
|
||||||
|
|||||||
@@ -645,6 +645,10 @@ public:
|
|||||||
//Reset ESF automatic IMU-mount alignment
|
//Reset ESF automatic IMU-mount alignment
|
||||||
boolean resetIMUalignment(uint16_t maxWait = defaultMaxWait);
|
boolean resetIMUalignment(uint16_t maxWait = defaultMaxWait);
|
||||||
|
|
||||||
|
//Configure Time Pulse Parameters
|
||||||
|
boolean getTimePulseParameters(UBX_CFG_TP5_data_t *data = NULL, uint16_t maxWait = defaultMaxWait); // Get the time pulse parameters using UBX_CFG_TP5
|
||||||
|
boolean setTimePulseParameters(UBX_CFG_TP5_data_t *data = NULL, uint16_t maxWait = defaultMaxWait); // Set the time pulse parameters using UBX_CFG_TP5
|
||||||
|
|
||||||
//General configuration (used only on protocol v27 and higher - ie, ZED-F9P)
|
//General configuration (used only on protocol v27 and higher - ie, ZED-F9P)
|
||||||
|
|
||||||
//It is probably safe to assume that users of the ZED-F9P will be using I2C / Qwiic.
|
//It is probably safe to assume that users of the ZED-F9P will be using I2C / Qwiic.
|
||||||
|
|||||||
@@ -1789,4 +1789,39 @@ typedef struct
|
|||||||
UBX_HNR_INS_data_t *callbackData;
|
UBX_HNR_INS_data_t *callbackData;
|
||||||
} UBX_HNR_INS_t;
|
} UBX_HNR_INS_t;
|
||||||
|
|
||||||
|
// UBX-CFG-TP5 (0x06 0x31): Time pulse parameters
|
||||||
|
const uint16_t UBX_CFG_TP5_LEN = 32;
|
||||||
|
|
||||||
|
typedef struct
|
||||||
|
{
|
||||||
|
uint8_t tpIdx; // Time pulse selection (0 = TIMEPULSE, 1 = TIMEPULSE2)
|
||||||
|
uint8_t version; // Message version (0x01 for this version)
|
||||||
|
uint8_t reserved1[2];
|
||||||
|
int16_t antCableDelay; // Antenna cable delay: ns
|
||||||
|
int16_t rfGroupDelay; // RF group delay: ns
|
||||||
|
uint32_t freqPeriod; // Frequency or period time, depending on setting of bit 'isFreq': Hz_or_us
|
||||||
|
uint32_t freqPeriodLock; // Frequency or period time when locked to GNSS time, only used if 'lockedOtherSet' is set: Hz_or_us
|
||||||
|
uint32_t pulseLenRatio; // Pulse length or duty cycle, depending on 'isLength': us_or_2^-32
|
||||||
|
uint32_t pulseLenRatioLock; // Pulse length or duty cycle when locked to GNSS time, only used if 'lockedOtherSet' is set: us_or_2^-32
|
||||||
|
int32_t userConfigDelay; // User-configurable time pulse delay: ns
|
||||||
|
union
|
||||||
|
{
|
||||||
|
uint32_t all;
|
||||||
|
struct
|
||||||
|
{
|
||||||
|
uint32_t active : 1; // If set enable time pulse; if pin assigned to another function, other function takes precedence.
|
||||||
|
uint32_t lockGnssFreq : 1; // If set, synchronize time pulse to GNSS as soon as GNSS time is valid. If not set, or before GNSS time is valid, use local clock.
|
||||||
|
uint32_t lockedOtherSet : 1; // If set the receiver switches between the timepulse settings given by 'freqPeriodLocked' & 'pulseLenLocked' and those given by 'freqPeriod' & 'pulseLen'.
|
||||||
|
uint32_t isFreq : 1; // If set 'freqPeriodLock' and 'freqPeriod' are interpreted as frequency, otherwise interpreted as period.
|
||||||
|
uint32_t isLength : 1; // If set 'pulseLenRatioLock' and 'pulseLenRatio' interpreted as pulse length, otherwise interpreted as duty cycle.
|
||||||
|
uint32_t alignToTow : 1; // Align pulse to top of second (period time must be integer fraction of 1s). Also set 'lockGnssFreq' to use this feature.
|
||||||
|
uint32_t polarity : 1; // Pulse polarity: 0: falling edge at top of second; 1: rising edge at top of second
|
||||||
|
uint32_t gridUtcGnss : 4; // Timegrid to use: 0: UTC; 1: GPS; 2: GLONASS; 3: BeiDou; 4: Galileo
|
||||||
|
uint32_t syncMode : 3; // Sync Manager lock mode to use:
|
||||||
|
// 0: switch to 'freqPeriodLock' and 'pulseLenRatioLock' as soon as Sync Manager has an accurate time, never switch back to 'freqPeriod' and 'pulseLenRatio'
|
||||||
|
// 1: switch to 'freqPeriodLock' and 'pulseLenRatioLock' as soon as Sync Manager has an accurate time, and switch back to 'freqPeriod' and 'pulseLenRatio' as soon as time gets inaccurate
|
||||||
|
} bits;
|
||||||
|
} flags;
|
||||||
|
} UBX_CFG_TP5_data_t;
|
||||||
|
|
||||||
#endif
|
#endif
|
||||||
|
|||||||
Reference in New Issue
Block a user