mirror of
https://github.com/gillham/logic_analyzer.git
synced 2026-05-02 08:35:21 +03:00
Add 2MHz and 4MHz sample rate support.
Use unrolled loops to sample at 2MHz & 4MHz rates. Based on some testing by Bob Davis (http://bobdavis321.blogspot.com) The maximum with a 16MHz clock is 5.3333MHz (3 cycles per sample) but sampling at that rate isn't very accurate. Accuracy is pretty good at 2MHz & 4MHz.
This commit is contained in:
2
README
2
README
@@ -54,5 +54,5 @@ Please try it out and report back.
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This master branch now supports Arduino 1.0 only.
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This master branch now supports Arduino 1.0 only.
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Checkout branch logic_analyzer_v0_5 for Arduino 22 support.
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Checkout branch logic_analyzer_v0_5 for Arduino 22 support.
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Release: v0.10 July 22, 2013.
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Release: v0.11 August 3, 2013.
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@@ -63,7 +63,7 @@
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* To use this with the original or alternative SUMP clients,
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* To use this with the original or alternative SUMP clients,
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* use these settings:
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* use these settings:
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*
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*
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* Sampling rate: 1MHz (or lower)
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* Sampling rate: 4MHz (or lower)
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* Channel Groups: 0 (zero) only
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* Channel Groups: 0 (zero) only
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* Recording Size:
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* Recording Size:
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* ATmega168: 532 (or lower)
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* ATmega168: 532 (or lower)
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@@ -78,7 +78,7 @@
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* until after the trigger fires.
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* until after the trigger fires.
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* Please try it out and report back.
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* Please try it out and report back.
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*
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*
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* Release: v0.10 July 22, 2013.
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* Release: v0.11 August 3, 2013.
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*
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*
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*/
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*/
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@@ -246,6 +246,31 @@ void setup()
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pinMode(ledPin, OUTPUT);
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pinMode(ledPin, OUTPUT);
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#endif
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#endif
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#endif /* Mega */
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#endif /* Mega */
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#if 0
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/*
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* This sets up timer2 at 100KHz to toggle a pin. This is useful
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* for debugging as it gives an internally precise signal source.
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* This doesn't work on the Arduino Mega. Use on the Uno or older.
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* We're using the same clock source for the timer & our sampling.
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*/
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/* Set OC2A (digital pin 11) to output so we can toggle it. */
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pinMode(11, OUTPUT);
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/* reset timer to zero */
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TCNT2 = 0;
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TCCR2A = 0;
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TCCR2B = 0;
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OCR2A = 0;
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/* Set CTC mode and toggle on compare. */
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TCCR2A = _BV (COM2A0) | _BV (WGM21);
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/* 79 = 100KHz, 15 = 500KHz, 7 = 1MHz */
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OCR2A = 79;
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TCCR2B = _BV (CS20);
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#endif
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}
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}
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void loop()
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void loop()
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@@ -283,7 +308,16 @@ void loop()
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* so in that case (delayTime == 1 and triggers enabled) use
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* so in that case (delayTime == 1 and triggers enabled) use
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* captureMicro() instead of triggerMicro().
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* captureMicro() instead of triggerMicro().
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*/
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*/
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if (useMicro) {
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if (divider == 24) {
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/* 4.0MHz */
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captureInline4mhz();
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}
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else if (divider == 49) {
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/* 2.0MHz */
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captureInline2mhz();
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}
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else if (useMicro) {
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if (trigger && (delayTime != 1)) {
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if (trigger && (delayTime != 1)) {
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triggerMicro();
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triggerMicro();
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}
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}
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@@ -457,7 +491,7 @@ void getCmd() {
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*/
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*/
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void captureMicro() {
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void captureMicro() {
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int i;
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unsigned int i;
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/*
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/*
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* basic trigger, wait until all trigger conditions are met on port.
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* basic trigger, wait until all trigger conditions are met on port.
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@@ -571,7 +605,7 @@ void captureMicro() {
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* this basic functionality.
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* this basic functionality.
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*/
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*/
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void captureMilli() {
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void captureMilli() {
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int i = 0;
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unsigned int i = 0;
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if(rleEnabled) {
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if(rleEnabled) {
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/*
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/*
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@@ -637,7 +671,7 @@ void captureMilli() {
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*
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*
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*/
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*/
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void triggerMicro() {
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void triggerMicro() {
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int i = 0;
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unsigned int i = 0;
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logicIndex = 0;
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logicIndex = 0;
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triggerIndex = 0;
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triggerIndex = 0;
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@@ -869,7 +903,7 @@ void get_metadata() {
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Serial.write('0');
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Serial.write('0');
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Serial.write('.');
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Serial.write('.');
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Serial.write('1');
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Serial.write('1');
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Serial.write('0');
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Serial.write('1');
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Serial.write((uint8_t)0x00);
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Serial.write((uint8_t)0x00);
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/* sample memory */
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/* sample memory */
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@@ -890,12 +924,12 @@ void get_metadata() {
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Serial.write((uint8_t)0x14);
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Serial.write((uint8_t)0x14);
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#endif /* Mega */
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#endif /* Mega */
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/* sample rate (1MHz) */
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/* sample rate (4MHz) */
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Serial.write((uint8_t)0x23);
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Serial.write((uint8_t)0x23);
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Serial.write((uint8_t)0x00);
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Serial.write((uint8_t)0x00);
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Serial.write((uint8_t)0x0F);
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Serial.write((uint8_t)0x3D);
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Serial.write((uint8_t)0x42);
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Serial.write((uint8_t)0x09);
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Serial.write((uint8_t)0x40);
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Serial.write((uint8_t)0x00);
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/* number of probes (6 by default on Arduino, 8 on Mega) */
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/* number of probes (6 by default on Arduino, 8 on Mega) */
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Serial.write((uint8_t)0x40);
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Serial.write((uint8_t)0x40);
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@@ -991,3 +1025,5 @@ void debugdump() {
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14455
logic_analyzer_inline_2mhz.ino
Normal file
14455
logic_analyzer_inline_2mhz.ino
Normal file
File diff suppressed because it is too large
Load Diff
14455
logic_analyzer_inline_4mhz.ino
Normal file
14455
logic_analyzer_inline_4mhz.ino
Normal file
File diff suppressed because it is too large
Load Diff
@@ -11,7 +11,7 @@ device.clockspeed = 16000000
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# Whether or not double-data-rate is supported by the device (also known as the "demux"-mode).
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# Whether or not double-data-rate is supported by the device (also known as the "demux"-mode).
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device.supports_ddr = false
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device.supports_ddr = false
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# Supported sample rates in Hertz, separated by comma's
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# Supported sample rates in Hertz, separated by comma's
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device.samplerates = 10, 20, 50, 100, 200, 500, 1000, 2000, 5000, 10000, 20000, 50000, 100000, 200000, 500000, 1000000
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device.samplerates = 10, 20, 50, 100, 200, 500, 1000, 2000, 5000, 10000, 20000, 50000, 100000, 200000, 500000, 1000000, 2000000, 4000000
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# What capture clocks are supported
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# What capture clocks are supported
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device.captureclock = INTERNAL
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device.captureclock = INTERNAL
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# The supported capture sizes, in bytes
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# The supported capture sizes, in bytes
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@@ -11,7 +11,7 @@ device.clockspeed = 16000000
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# Whether or not double-data-rate is supported by the device (also known as the "demux"-mode).
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# Whether or not double-data-rate is supported by the device (also known as the "demux"-mode).
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device.supports_ddr = false
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device.supports_ddr = false
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# Supported sample rates in Hertz, separated by comma's
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# Supported sample rates in Hertz, separated by comma's
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device.samplerates = 10, 20, 50, 100, 200, 500, 1000, 2000, 5000, 10000, 20000, 50000, 100000, 200000, 500000, 1000000
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device.samplerates = 10, 20, 50, 100, 200, 500, 1000, 2000, 5000, 10000, 20000, 50000, 100000, 200000, 500000, 1000000, 2000000, 4000000
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# What capture clocks are supported
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# What capture clocks are supported
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device.captureclock = INTERNAL
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device.captureclock = INTERNAL
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# The supported capture sizes, in bytes
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# The supported capture sizes, in bytes
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