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Design of 4D X-ray tomography experiments for reconstruction using regularized iterative algorithms

机译:使用正则迭代算法重建4D X射线断层摄影实验的设计

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4D X-ray computed tomography (4D-XCT) is widely used to perform non-destructive characterization of time varying physical processes in various materials. The conventional approach to improving temporal resolution in 4D-XCT involves the development of expensive and complex instrumentation that acquire data faster with reduced noise. It is customary to acquire data with many tomographic views at a high signal to noise ratio. Instead, temporal resolution can be improved using regularized iterative algorithms that are less sensitive to noise and limited views. These algorithms benefit from optimization of other parameters such as the view sampling strategy while improving temporal resolution by reducing the total number of views or the detector exposure time. This paper presents the design principles of 4D-XCT experiments when using regularized iterative algorithms derived using the framework of model-based reconstruction. A strategy for performing 4D-XCT experiments is presented that allows for improving the temporal resolution by progressively reducing the number of views or the detector exposure time. Theoretical analysis of the effect of the data acquisition parameters on the detector signal to noise ratio, spatial reconstruction resolution, and temporal reconstruction resolution is also presented in this paper.
机译:4D X射线计算机断层扫描(4D-XCT)被广泛用于对各种材料中的时变物理过程进行非破坏性表征。在4D-XCT中提高时间分辨率的常规方法涉及开发昂贵且复杂的仪器,该仪器可在减少噪声的情况下更快地获取数据。通常以高信噪比获取具有许多层析成像视图的数据。取而代之的是,可以使用对噪声和受限视图不那么敏感的正则化迭代算法来改善时间分辨率。这些算法受益于其他参数(例如视图采样策略)的优化,同时通过减少视图总数或检测器曝光时间来提高时间分辨率。本文介绍了使用基于模型的重构框架导出的正则迭代算法时4D-XCT实验的设计原理。提出了执行4D-XCT实验的策略,该策略允许通过逐渐减少视图数量或检测器曝光时间来提高时间分辨率。本文还对数据采集参数对探测器信噪比,空间重构分辨率和时间重构分辨率的影响进行了理论分析。

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