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首页> 外文期刊>IEEE Transactions on Nuclear Science >Activity and Attenuation Reconstruction for Positron Emission Tomography Using Emission Data Only Via Maximum Likelihood and Iterative Data Refinement
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Activity and Attenuation Reconstruction for Positron Emission Tomography Using Emission Data Only Via Maximum Likelihood and Iterative Data Refinement

机译:仅通过最大似然和迭代数据细化使用发射数据的正电子发射层析成像的活动和衰减重建

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摘要

Emission computed tomography reconstruction requires compensation for photon attenuation. The usual way to do this is by performing a transmission scan to reconstruct the attenuation map. An important improvement could be achieved if it is possible to retrieve the attenuation map directly from the activity data. Several approaches have been suggested before to do this by using iterative methods for solving Maximum Likelihood (ML) problems (or Penalized Maximum Likelihood, MAP) that take into account the Poisson nature of the noise. One of the main drawbacks has been that these methods tend to retrieve solutions that generate an undesired `crosstalk' between the attenuation and the activity maps. In this paper, we present a new approach that consists of a combination of a minorizing function algorithm applied to the likelihood function plus the application of an appropriate decreasing multiplicative factor and iterative data refinement. We compare this new approach with previous ones and our simulations show very encouraging results as far as solving the `crosstalk' problem is concerned
机译:发射计算机断层扫描重建需要补偿光子衰减。通常的方法是执行传输扫描以重建衰减图。如果可以直接从活动数据中检索衰减图,则可以实现重要的改进。以前已经提出了几种方法来解决此问题,这些方法通过使用迭代方法来解决最大似然(ML)问题(或惩罚最大似然,MAP),该方法考虑了噪声的泊松性质。主要缺点之一是这些方法趋于检索在衰减和活动图之间产生不希望的“串扰”的解决方案。在本文中,我们提出了一种新方法,该方法包括将应用于似然函数的小化函数算法与适当的递减乘法因子和迭代数据细化的应用相结合。我们将这种新方法与以前的方法进行了比较,我们的仿真结果显示出非常令人鼓舞的结果,就解决“串扰”问题而言

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