Gamma spectrum analysis is an important part of gamma-ray spectroscopy which has been widely used in nuclear engineering, environmental science and astrophysics. As the first step of gamma spectrum analysis, smoothing procedure is critical, since it determines the accuracy of afterwards procedures. Ideally, the smoothing procedure should reduce the statistical fluctuation while preserving characteristic peak information simultaneously. However, current widely-used linear smoothing methods are intrinsically non-adaptive and tend to remove weak peak, which may lose characteristic peak of important radionuclides. To solve the problem, an adaptive smoothing method was proposed to improve the accuracy of gamma spectrum analysis in this study. The proposed method assumes that gamma spectrum is a sparse signal that has meaningful peaks only at limited positions. Based on this assumption, the smoothing procedure is formulated as a nonlinear total variation based optimization problem. Solving this problem promotes the sparsity of gamma spectrum, and therefore reduces meaningless fluctuation, so that the spectrum is adaptively smoothed. The proposed method was applied to gamma spectrum obtained by a Monte Carlo experiment that simulated the ORTEC GEM3070 detector, and compared with traditional linear method. The results demonstrate that the proposed method can effectively reduce the statistical fluctuation of measured gamma spectrum while preserving weak peak much better than standard linear methods. With the proposed method, the accuracy of peak identification and peak calculation is significantly improved.
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2013 21st International Conference on Nuclear Engineering
July 29–August 2, 2013
Chengdu, China
Conference Sponsors:
- Nuclear Engineering Division
ISBN:
978-0-7918-5578-2
PROCEEDINGS PAPER
Improving the Accuracy of Gamma Spectrum Analysis by Total Variation Based Adaptive Smoothing Available to Purchase
Sheng Fang,
Sheng Fang
Tsinghua University, Beijing, China
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Liguo Zhang,
Liguo Zhang
Tsinghua University, Beijing, China
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Jiejuan Tong,
Jiejuan Tong
Tsinghua University, Beijing, China
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Jingyuan Qu
Jingyuan Qu
Tsinghua University, Beijing, China
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Sida Sun
Tsinghua University, Beijing, China
Sheng Fang
Tsinghua University, Beijing, China
Liguo Zhang
Tsinghua University, Beijing, China
Hong Li
Tsinghua University, Beijing, China
Jiejuan Tong
Tsinghua University, Beijing, China
Jingyuan Qu
Tsinghua University, Beijing, China
Paper No:
ICONE21-15781, V001T04A018; 5 pages
Published Online:
February 7, 2014
Citation
Sun, S, Fang, S, Zhang, L, Li, H, Tong, J, & Qu, J. "Improving the Accuracy of Gamma Spectrum Analysis by Total Variation Based Adaptive Smoothing." Proceedings of the 2013 21st International Conference on Nuclear Engineering. Volume 1: Plant Operations, Maintenance, Engineering, Modifications, Life Cycle and Balance of Plant; Nuclear Fuel and Materials; Radiation Protection and Nuclear Technology Applications. Chengdu, China. July 29–August 2, 2013. V001T04A018. ASME. https://doi.org/10.1115/ICONE21-15781
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