Related Concept Videos
Fast Fourier Transform
The computational efficiency of the FFT becomes...
Reconstruction of Signal using Interpolation
Upsampling
NMR Spectrometers: Radiofrequency Pulses and Pulse Sequences
Aliasing
If the sampling frequency is below the Nyquist rate, these replicas overlap, preventing the original...
Rectangular and Triangular Pulse Function
For example, consider a rectangular pulse with a 5V amplitude, a 3-second duration, and centered at t=2 seconds. This pulse can be expressed using the rectangular function, written as,
You might also read
Related Articles
Articles linked to this work by shared authors, journal, and citation graph.
Damage Localization in Composite Plates Using Wavelet Transform and 2-D Convolutional Neural Networks.
[Drug interactions and adverse events induced by drugs used in an intensive care unit].
Related Experiment Video
Updated: Jun 26, 2025

Studying Cavitation Enhanced Therapy
Published on: April 9, 2021
Hardware Acceleration of Digital Pulse Shape Analysis Using FPGAs.
César González1, Mariano Ruiz1, Antonio Carpeño1
1Instrumentation and Applied Acoustic Research Group, Universidad Politécnica de Madrid, 28031 Madrid, Spain.
A new hardware system enables real-time digital pulse shape analysis (DPSA) for BC501A liquid scintillators, crucial for fast neutron detection in nuclear physics. This system achieves high-speed, accurate signal analysis with low latency.
Area of Science:
- Nuclear Physics
- Instrumentation
- Embedded Systems
Background:
- BC501A liquid scintillators are vital for fast neutron detection in nuclear physics.
- Real-time analysis of scintillator signals is essential for accurate measurements.
- Existing methods may face limitations in speed and accuracy for complex signal processing.
Purpose of the Study:
- To develop and implement a hardware-based digital pulse shape analysis (DPSA) system for BC501A sensors.
- To achieve real-time signal processing with high accuracy and low latency.
- To demonstrate the feasibility of integrating DPSA algorithms into an embedded FPGA system.
Main Methods:
- Implementation of DPSA algorithm on a Xilinx ZYNQ Ultrascale-MP SoC within a MicroTCA system.
- Utilizing a JESD204B interface for high-speed Analog-to-Digital Converters (ADCs).
- Employing Hardware Description Language (HDL) for physical/datalink layers and High-Level Synthesis (HLS) for transport/application layers.
Main Results:
- Achieved a mean analysis time of less than 100 µs per signal.
- FPGA resource utilization was approximately 50% of the most used resources.
- The system successfully interfaced with a 1 GS/s ADC for accurate calculations.
Conclusions:
- The developed embedded system provides a high-performance solution for real-time DPSA.
- The hardware implementation offers accurate signal parameter extraction with low latency.
- This approach enhances capabilities for fast neutron detection and nuclear physics research.

