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Pulse Shape Discrimination Algorithms: Survey and Benchmark
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本文综述了辐射检测中脉冲形状识别(PSD)算法,包括统计和先验知识方法,并在两个标准化数据集上进行了基准测试,发现深度学习模型表现优异,并发布了开源工具箱和数据集。

arXiv:2508.02750v1 Announce Type: cross Abstract: This review presents a comprehensive survey and benchmark of pulse shape discrimination (PSD) algorithms for radiation detection, classifying nearly sixty methods into statistical (time-domain, frequency-domain, neural network-based) and prior-knowledge (machine learning, deep learning) paradigms. We implement and evaluate all algorithms on two standardized datasets: an unlabeled set from a 241Am-9Be source and a time-of-flight labeled set from a 238Pu-9Be source, using metrics including Figure of Merit (FOM), F1-score, ROC-AUC, and inter-method correlations. Our analysis reveals that deep learning models, particularly Multi-Layer Perceptrons (MLPs) and hybrid approaches combining statistical features with neural regression, often outperform traditional methods. We discuss architectural suitabilities, the limitations of FOM, alternative evaluation metrics, and performance across energy thresholds. Accompanying this work, we release an open-source toolbox in Python and MATLAB, along with the datasets, to promote reproducibility and advance PSD research.

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脉冲形状识别 辐射检测 深度学习 算法基准 开源工具
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