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Coincidence Time Correction (CTC) method for TOF-PET scanners with correction to account for misalignment of calibration phantom

机译:适用于TOF-PET扫描仪的重合时间校正(CTC)方法,并进行校正以解决校准体模的未对准问题

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The Coincidence Time Correction (CTC) calibration of PET scanners is required to detect coincident events and reduce random events. CTC is usually performed using a centrally located radioactive source. High timing resolution TOF PET scanners are sensitive to deviation of the reference source from the scanner's central line. We have developed an iterative CTC algorithm that corrects on a Line of Response (LOR) basis for shift of the reference source. CTC values are calculated in an iterative process performed on a single data set (no need for multiple acquisitions). The CTC value for every crystal is gradually adjusted at every iteration “i” by a ΔCTCi. The final CTC value is the sum of adjustments from all iterations. For faster convergence we have separated a low-frequency component of ΔCTC, due mostly to differences in cable lengths, and a high-frequency component, due to the crystal's individual delays. This separation of components improved convergence by requiring one half of the iterations required without component separation. We showed that a shift of 20mm of the reference source, representing up to a 130ps timing shift, is properly corrected by the algorithm.
机译:需要使用PET扫描仪的重合时间校正(CTC)校准来检测重合事件并减少随机事件。 CTC通常使用位于中心的放射源进行。高定时分辨率的TOF PET扫描仪对参考源与扫描仪中心线的偏差很敏感。我们开发了一种迭代CTC算法,该算法可在响应线(LOR)的基础上对参考源的偏移进行校正。 CTC值是在对单个数据集执行的迭代过程中计算的(无需多次采集)。每个晶体的CTC值在每次迭代“ i”时都通过ΔCTCi进行逐步调整。最终的CTC值是所有迭代的调整值之和。为了更快地收敛,我们分离了ΔCTC的低频分量(主要是由于电缆长度的差异)和高频分量(由于晶体的各个延迟)所致。组件之间的这种分离通过要求进行一半迭代而无需组件分离,从而提高了收敛性。我们表明,通过算法可以正确地校正参考源的20mm偏移,代表高达130ps的定时偏移。

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