You need to test, we're here to help.

You need to test, we're here to help.
Showing posts with label glitch. Show all posts
Showing posts with label glitch. Show all posts

01 November 2021

Finding Intermittent Events

Figure 1: Statistics for 1261 Width measurements taken over 97 acquisitions on the Measure table. Width statistics can help determine the set up of a Glitch SmartTrigger.
Figure 1: Statistics for 1261 Width measurements
taken over 97 acquisitions on the Measure table.
Width statistics can help determine the set up
of a Glitch SmartTrigger.
Glitches, dropouts, runts, aperiodicity, missed cycles, slow edges—whatever you call them, they are irregular waveform elements that can wreak havoc with you circuit operation. Because they do not occur with regularity, they can be hard to find and correlate with whatever synchronous events may be causing them. How can you use your oscilloscope to easily find intermittent events where they occur? The answer is by judicious application of the oscilloscope’s measurement statistics and SmartTriggers®.

12 April 2021

How to Use Measurement Statistics to Set Up Triggers

Figure 1.  Histogram of the different pulse widths occurring in a pulse-width modulated rectangular pulse train.
Figure 1.  Histogram of the different pulse widths occurring
in a pulse-width modulated rectangular pulse train.
Triggering is an essential element in all modern digital oscilloscopes.  The trigger synchronizes the oscilloscope’s data acquisition with a user-specified event on the signal, be that an edge, threshold crossing or a specific signal characteristic. Teledyne LeCroy Smart Triggers can trigger oscilloscope acquisitions based on properties such as a period, width, low signal amplitude, slew rate or signal loss. These trigger types are ideal for capturing transient events like glitches, but they require knowing at least a range of possible values for the trigger to detect.

Intermittent transient events and glitches are among the most frustrating problems to detect and solve. This is especially true if you have no idea about the nature of the transient. However, you can use the oscilloscope’s measurement tools to help locate these bothersome transients, then use that information to set up your trigger to capture them when they occur. Here’s how.

08 July 2015

Using Persistence Mode and Exclusion Trigger

Figure 1: By using exclusion triggering, the oscilloscope is prevented from triggering on the normal signal shape. The trigger is set to capture only pulses with widths different by at least 15 μs from the typical 325 μs.
Figure 1: By using exclusion triggering, the oscilloscope
is prevented from triggering on the normal signal shape.
The trigger is set to capture only pulses with widths
different by at least 15 μs from the typical 325 μs.
Any piano player is well acquainted with the right-most pedal on their pianos, known as the sustain or open pedal. Pressing that pedal while playing will lift all of the instrument's dampers away from the strings, allowing them to ring freely until their vibration dies out or the pedal is released.

On a digital oscilloscope, the persistence display mode is a little like the sustain pedal on a piano. When persistence display is selected, the oscilloscope will trigger, display the signal trace, then trigger again and add another trace to the display, and so on.

07 May 2015

Using Histograms (Part IV)

Figure 1: A histogram of delay between traces C1 and C2 with an unknown event occuring 2.5 ns outside of expected range
Figure 1: A histogram of delay between traces C1 and C2
with an unknown event occuring 2.5 ns outside of
expected range
In previous posts on the topic of histograms, we've considered examples of how looking at signals in the statistical domain in addition to the time and frequency domains can be a great aid in pinning down the root cause of problems. But what about going in the other direction? Suppose you spot something unusual in a histogram and want to examine the waveform?

10 September 2013

Don't Just Trigger, But Trigger Smart

The runt pulse and non-monotonic edge anomalies in this signal are not apparent with a simple edge trigger.
Figure 1: The runt pulse and non-monotonic edge anomalies
in this signal are not apparent with a simple edge trigger.
In an earlier post, we looked at some of the basics of oscilloscope triggering and noted that there are two broad classes of triggers: simple triggers that sense particular characteristics of the input signal (transition edges, pulse widths, and so on), and more complex triggers that let you zero in on more specific attributes of the signal based on timing and amplitude parameters.