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Preliminary results of an automatic channel fault detection system on a small animal APD-based digital PET scanner

机译:在基于APD的小型动物数字PET扫描仪上的自动通道故障检测系统的初步结果

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APD-based positron emission tomography scanners show enhanced imaging capabilities in terms of spatial resolution and contrast due to the one to one coupling and size of individual crystal-APD detectors. However, to ensure maximum performance, these PET scanners require proper calibration by qualified professionals, which can become a cumbersome task because of the large number of channels present. An intelligent system (IS) intends to alleviate this workload by enabling a diagnosis of the observational errors of the scanner. The IS can be broken down into four hierarchical blocks: parameter extraction, channel fault detection, prioritization and diagnosis. One of the main function of the IS consists of analyzing available channel data such as: normalization coincidence counts and single count rates, crystal identification classification data, energy histograms, APD bias and noise thresholds to establish the channel's health status that will be used to detect channel faults. This paper focuses on the first two blocks of the IS: parameter extraction and channel fault detection. The purpose of the parameter extraction block is to process available channel data into parameters that are subsequently used by the fault detection block to generate the channel's health status. To ensure extensibility, the channel fault detection block is divided into indicators representing different aspects of the PET scanner performance: sensitivity, timing, identification and energy. Some experiments on a LabPET scanner located at the Sherbrooke Molecular Imaging Center demonstrated an erroneous channel fault detection rate of 6% (with a 95% confidence interval (CI) of: [5, 6]) which is considered tolerable. Globally, the IS achieves a channel fault detection efficiency of 95% (CI: [92, 97]), which proves many faults can be detected automatically. Increased fault detection efficiency would be advantageous but, the achieved results would already benefit professionals in their maintenan- e task.
机译:基于APD的正电子发射断层扫描仪由于单个晶体APD检测器的一对一耦合和尺寸,在空间分辨率和对比度方面显示出增强的成像能力。但是,为了确保最佳性能,这些PET扫描仪需要由合格的专业人员进行适当的校准,由于存在大量通道,这可能成为繁琐的任务。智能系统(IS)旨在通过对扫描仪的观察误差进行诊断来减轻这种工作量。 IS可以分为四个层次块:参数提取,通道故障检测,优先级和诊断。 IS的主要功能之一是分析可用的通道数据,例如:归一化符合计数和单计数率,晶体识别分类数据,能量直方图,APD偏差和噪声阈值,以建立将用于检测通道的健康状态通道故障。本文着重于IS的前两个模块:参数提取和通道故障检测。参数提取模块的目的是将可用的通道数据处理为参数,故障检测模块随后将使用这些参数来生成通道的健康状态。为了确保可扩展性,通道故障检测模块被分为代表PET扫描仪性能不同方面的指示器:灵敏度,定时,识别和能量。位于Sherbrooke分子影像中心的LabPET扫描仪上的一些实验表明,错误的通道故障检测率为6%(95%置信区间(CI)为[5,6]),这被认为是可以容忍的。在全球范围内,IS的通道故障检测效率达到95%(CI:[92,97]),这证明了许多故障可以自动检测到。故障检测效率的提高将是有利的,但是所获得的结果将使专业人员在维护任务中受益。

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