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Markov random field segmentation for industrial computed tomography with metal artefacts

机译:Markov随机田间与金属艺术术的工业计算断层扫描的分割

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X-ray Computed Tomography (XCT) has become an important tool for industrial measurement and quality control through its ability to measure internal structures and volumetric defects. Segmentation of constituent materials in the volume acquired through XCT is one of the most critical factors that influence its robustness and repeatability. Highly attenuating materials such as steel can introduce artefacts in CT images that adversely affect the segmentation process, and results in large errors during quantification. This paper presents a Markov Random Field (MRF) segmentation method as a suitable approach for industrial samples with metal artefacts. The advantages of employing the MRF segmentation method are shown in comparison with Otsu thresholding on CT data from two industrial objects.
机译:X射线计算机断层扫描(XCT)已成为工业测量和质量控制的重要工具,通过其测量内部结构和体积缺陷。 通过XCT获得的体积中的组成材料的分割是影响其鲁棒性和可重复性的最关键因素之一。 诸如钢的高度衰减材料可以在CT图像中引入伪影,对分割过程产生不利影响,并且在量化期间导致大的误差。 本文呈现了马尔可夫随机场(MRF)分段方法,作为具有金属伪成物的工业样品的合适方法。 与来自两个工业物体的CT数据上的OTSU阈值相比,示出了采用MRF分段方法的优点。

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