![]() |
| Figure 1: Multi-grid display "layers" multiple measurement tools to find hidden glitch. |
You need to test, we're here to help.
29 March 2021
How to "Layer" Measurement Tools
22 March 2021
TDME Primer: Automated Timing Measurements of USB-C Protocols
| Figure 1: Interleaved decoding of USB-PD and DP-AUX signals. |
The USB-C connector packs many protocols onto one, small pin set, and maintaining signal and power integrity is a compliance challenge. Besides high-speed data delivery, USB-PD (power delivery) provides flexible power distribution, while auxiliary sideband signals, like DisplayPort™, transport video. Troubleshooting these capabilities requires the ability to measure timing between serial data packets, as well as between data packets and analog signals.
For example, DisplayPort over USB-C (DPoC) in alternate mode (alt-mode) can manifest as an interoperability failure if there is a timing issue between alt-mode initiation and the start of DP-AUX.
15 March 2021
The Important Difference Between ProtoSync™ and CrossSync™ PHY
![]() |
| Figure 1: CrossSync PHY captures everything from physical through protocol layers at once. |
ProtoSync is an option for Teledyne LeCroy oscilloscopes with bandwidths that support high-speed serial data analysis. We’ve released ProtoSync options for PCIe, USB, SAS/SATA and Fibre Channel. ProtoSync links the same Protocol Analysis Suite software that is used with our protocol analyzers to the oscilloscope application, so that you can see physical layer decodings in the familiar PETracer and BITracer views right next to the decoded analog waveform.
CrossSync PHY differs from ProtoSync in the three, significant ways:
08 March 2021
TDME Primer: Serial Trigger and Sequence Mode Sampling
![]() |
| Figure 1: Sequence mode sampling packs multiple acquisitions into memory with very little “dead time” between them. |
The real power of sequence mode becomes evident when you combine it with intelligent triggers, such as the serial data triggers delivered with TDME options.
01 March 2021
TDME Primer: Selecting Sample Rate for Serial Bus Analysis
![]() |
| Figure 1. Sample rate of only four sample points per bit decodes correctly and lengthens serial bus acquisition. |
Given the wide range of protocols supported, you might be curious about how to best choose the oscilloscope sampling rate for a given standard when acquiring serial data signals. The optimal sample rate is determined by three principal factors:
1) the bandwidth of the signal being digitized by the oscilloscope’s analog-to-digital converter (ADC);
2) the desired duration of the acquisition;
3) what you are going to do with the acquisition.
22 February 2021
Don't Attach Multiple Probes to the Same Place at the Same Time!
| Figure 1. Response of two different probes to an upper-side gate drive measurement. |
You are probably aware that all measuring instruments, including oscilloscopes, are subject to conditions of observability. As we discussed in a recent post on The Impact of the Interconnect, the very act of connecting the oscilloscope to the circuit with a particular probe affects the measurement in a particular way. Probes affect the circuit by applying additional resistance and capacitance loads in parallel with the circuit at the test point. Moreover, the probes themselves limit the fidelity of the measurement due to limits of bandwidth, slew rate and common mode response. So, it is always a good idea when making a measurement to compare how different probes/interconnects will affect the measurement…but don’t try to do it all at once.
15 February 2021
Don't Probe HV with Single-ended Passive Probes!
![]() |
| Figure 1. A simple 120 Vrms switch-mode power supply has a +/- 170 V peak and a 340 V pk-pk, difficult for most single-ended passive probes to ground safely. |
The high-impedance passive probes distributed with oscilloscopes of every major brand are sturdy, reliable and accurate within their specification limits, but they’re not intended for all applications. This is especially true when measuring switch-mode power devices or other (relatively) high-voltage systems. These applications require probes that are both rated for their high voltage levels and isolated from ground as a reference voltage.
High-impedance passive probes generally have maximum voltage limits of about 500 V and are ground referenced—meaning, one side of the probe is connected physically to earth ground through the oscilloscope. If you’re measuring a single-phase 120 V line input to a power supply or inverter, you should be careful when connecting the probe ground to power neutral, which may not always be at ground level. Using a differential probe, which is not ground referenced, eliminates this concern.




