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Anomaly Detection and Artifact Recovery in PET Attenuation-Correction Images Using the Likelihood Function

机译:异常检测和神器恢复在pET衰减校正图像使用似然函数

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摘要

In dual modality PET/CT, CT data are used to generate the attenuation correction applied in the reconstruction of the PET emission image. This requires converting the CT image into a 511-keV attenuation map. Algorithms for making this transformation require assumptions about the makeup of material within the patient. Anomalous material such as contrast agent administered to enhance the CT scan confounds conversion algorithms and has been observed to result in inaccuracies, i.e., inconsistencies with the true 511-keV attenuation present at the time of the PET emission scan. These attenuation artifacts carry through to the final attenuation-corrected PET emission image and can resemble diseased tissue. We propose an approach to correcting this problem that employs the attenuation information carried by the PET emission data. A likelihood-based algorithm for identifying and correcting of contrast is presented and tested. The algorithm exploits the fact that contrast artifacts manifest as too-high attenuation values in an otherwise high quality attenuation image. In a separate study, the performance of the loglikelihood as an objective-function component of a detection/correction algorithm, independent of any particular algorithm was mapped out for several imaging scenarios as a function of statistical noise. Both the full algorithm and the loglikelihood performed well in studies with simulated data. Additional studies including those with patient data are required to fully understand their capabilities.
机译:在双模式PET / CT中,CT数据用于生成在PET发射图像的重建中应用的衰减校正。这需要将CT图像转换为511keV衰减图。进行此转换的算法需要假设患者体内的物质构成。为增强CT扫描而使用的诸如造影剂之类的异常材料会混淆转换算法,并已观察到会导致不准确,即与PET发射扫描时出现的真实511-keV衰减不一致。这些衰减伪影会延续到最终的衰减校正的PET发射图像,并且可能类似于患病的组织。我们提出一种纠正此问题的方法,该方法采用了PET发射数据携带的衰减信息。提出并测试了一种用于识别和校正对比度的基于似然度的算法。该算法利用了这样的事实,即对比度伪像在否则为高质量的衰减图像中表现为过高的衰减值。在一项单独的研究中,对数似然性作为检测/校正算法的目标函数组件的性能,独立于任何特定算法,已针对几种成像场景规划了统计噪声的函数。完整算法和对数似然性在模拟数据研究中均表现良好。为了充分了解其功能,还需要进行其他研究,包括具有患者数据的研究。

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  • 年(卷),期 -1(7),1
  • 年度 -1
  • 页码 2237380
  • 总页数 29
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