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首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. Section A, Accelerators, Spectrometers, Detectors and Associated Equipment >Real-time digital signal-processor implementation of self-calibrating pulse-shape discriminator for high-purity germanium
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Real-time digital signal-processor implementation of self-calibrating pulse-shape discriminator for high-purity germanium

机译:高纯锗自校准脉冲形鉴别器的实时数字信号处理器实现

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Pulse-shape analysis of the ionization signals from germanium gamma-ray spectrometers is a method for obtaining information that can characterize an event beyond just the total energy deposited in the crystal. However, as typically employed, this method is data-intensive requiring the digitization, transfer, and recording of electronic signals from the spectrometer. A hardware realization of a real-time digital signal processor for implementing a parametric pulse shape analysis is presented. Specifically, a previously developed method for distinguishing between single-site and multi-site gamma-ray interactions is demonstrated in an on-line digital signal processor, compared with the original off-line pulse-shape analysis routine, and shown to have no significant difference. Reduction of the amount of the recorded information per event is shown to translate into higher duty-cycle data-acquisition rates while retaining the benefits of additional event characterization from pulse-shape analysis.
机译:来自锗γ射线光谱仪的电离信号的脉冲形状分析是一种获取信息的方法,该信息不仅可以表征晶体中沉积的总能量,还可以表征事件。然而,如通常采用的那样,该方法是数据密集型的,需要数字化,传输和记录来自光谱仪的电子信号。提出了用于实现参数脉冲形状分析的实时数字信号处理器的硬件实现。具体而言,与原始的离线脉冲形状分析例程相比,在线数字信号处理器中演示了一种用于区分单站点和多站点伽马射线相互作用的先前开发的方法,并且该方法没有明显的意义。区别。减少每个事件的已记录信息量被证明可以转化为更高的占空比数据采集速率,同时保留了脉冲形状分析带来的其他事件表征的优势。

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