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Fast Fourier Transform01:10

Fast Fourier Transform

310
The Fast Fourier Transform (FFT) is a computational algorithm designed to compute the Discrete Fourier Transform (DFT) efficiently. By breaking down the calculations into smaller, manageable sections, the FFT significantly reduces the computational complexity involved. Direct computation of an N-point DFT requires N2 complex multiplications, whereas the FFT algorithm needs only (N/2)log⁡2N multiplications, offering a much faster performance.
The computational efficiency of the FFT becomes...
310
Reconstruction of Signal using Interpolation01:10

Reconstruction of Signal using Interpolation

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Signal processing techniques are essential for accurately converting continuous signals to digital formats and vice versa. When a continuous signal is sampled with a period T, the resulting sampled signal exhibits replicas of the original spectrum in the frequency domain, spaced at intervals equal to the sampling frequency. To handle this sampled signal, a zero-order hold method can be applied, which creates a piecewise constant signal by retaining each sample's value until the next...
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Upsampling01:22

Upsampling

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Managing signal sampling rates is essential in digital signal processing to maintain signal integrity. A decimated signal, characterized by a reduced frequency range due to its lower sampling rate, can be upsampled by inserting zeros between each sample. This upsampling process expands the original spectrum and introduces repeated spectral replicas at intervals dictated by the new Nyquist frequency. To refine this zero-inserted sequence, it is passed through a lowpass filter with a cutoff...
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NMR Spectrometers: Radiofrequency Pulses and Pulse Sequences01:17

NMR Spectrometers: Radiofrequency Pulses and Pulse Sequences

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A pulse is a short burst of radio waves distributed over a range of frequencies that simultaneously excites all the nuclei in the sample. Upon passing a radio frequency pulse along the x-axis, the nuclei absorb energy corresponding to their Larmor frequencies and achieve resonance. This shifts the net magnetization vector from the z-axis toward the transverse plane. This angle of rotation of the magnetization vector, or the flip angle, is proportional to the duration and intensity of the pulse.
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Aliasing01:18

Aliasing

133
Accurate signal sampling and reconstruction are crucial in various signal-processing applications. A time-domain signal's spectrum can be revealed using its Fourier transform. When this signal is sampled at a specific frequency, it results in multiple scaled replicas of the original spectrum in the frequency domain. The spacing of these replicas is determined by the sampling frequency.
If the sampling frequency is below the Nyquist rate, these replicas overlap, preventing the original...
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Rectangular and Triangular Pulse Function01:19

Rectangular and Triangular Pulse Function

674
The unit rectangular pulse function is mathematically represented by a rectangular function centered at the origin with a height of one unit. This function is defined by two parameters: T, which specifies the center location of the pulse along the time axis, and τ, which determines the pulse duration.
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,
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Related Experiment Video

Updated: Jun 26, 2025

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Hardware Acceleration of Digital Pulse Shape Analysis Using FPGAs.

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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.

Keywords:
FPGAJESD204BMicroTCAXilinx HLSdigital pulse shape Analysishardware acceleration

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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.