Pileup attenuation for spectroscopic signals using a sparse reconstruction

M. Lopatin, N. Moskovitch, T. Trigano, Y. Sepulcre
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引用次数: 1

Abstract

In the field of Gamma spectroscopy, the energy spectrum is a histogram of particle energies which is of interest in order to identify an unknown radioactive source. These energies are typically computed as the integral of electrical pulses generated the interaction of Gamma photons with a known semiconductor detector. Due to the finite resolution of the detector, close electrical pulses tend to overlap; this phenomenon, known by the practitioner as pileup effect, yields a severe distortion of the energy spectrum. We present in this contribution a method for pileup attenuation, in order to correct the main distortions caused by the pileup effect. This method can be decomposed in two steps. First, we compute a sparse representation of the signal by means of LASSO in order to estimate the arrival times of each individual electrical pulse and the radioactive source activity. The second step consists in estimating the pulse individual energies by means of another iteration of LASSO, with a smaller value of its sparsity parameter, and plug the obtained values into a standard nonparametric kernel estimator to obtain a corrected energy spectrum. We illustrate the performances of the suggested approach on signals stemming from a High Purity Germanium detector, with a medium activity.
利用稀疏重建的光谱信号的堆积衰减
在伽马能谱学领域,能谱是粒子能量的直方图,它对识别未知的放射源很有意义。这些能量通常计算为伽马光子与已知半导体探测器相互作用产生的电脉冲的积分。由于探测器的分辨率有限,接近的电脉冲往往重叠;这种现象,被从业者称为堆积效应,产生了能量谱的严重扭曲。为了纠正堆积效应引起的主要畸变,本文提出了一种堆积衰减方法。该方法可分为两步。首先,我们通过LASSO计算信号的稀疏表示,以估计每个单独的电脉冲的到达时间和放射源的活度。第二步是通过LASSO的另一次迭代估计脉冲个体能量,其稀疏度参数值较小,并将得到的值代入标准非参数核估计器中,得到校正后的能谱。我们举例说明了所建议的方法对来自中等活度的高纯锗探测器的信号的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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