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A Model Development Pipeline for Crohn's Disease Severity Assessment from Magnetic Resonance Images

机译:从磁共振图像评估克罗恩病严重性的模型开发管道

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Crohn's Disease affects the intestinal tract of a patient and can have varying severity which influences treatment strategy. The clinical severity score CDEIS (Crohn's Disease Endoscopic Index of severity) ranges from 0 to 44 and is measured by endoscopy. In this paper we investigate the potential of non-invasive magnetic resonance imaging to assess this severity, together with the underlying question which features are most relevant for this estimation task. We propose a new general and modular pipeline that uses machine learning techniques to quantify disease severity from MR images and show its value on Crohn's Disease severity assessment on 30 patients scored by 4 medical experts. With the pipeline, we can obtain a magnetic resonance imaging score which outperforms two existing reference scores MaRIA and AIS.
机译:克罗恩氏病会影响患者的肠道,严重程度可能会有所不同,从而影响治疗策略。临床严重程度评分CDEIS(克罗恩病内窥镜严重程度指数)的范围是0到44,并通过内窥镜检查来衡量。在本文中,我们研究了非侵入性磁共振成像评估这种严重性的潜力,以及潜在的问题,即哪些功能与该估计任务最相关。我们提出了一条新的通用模块化流水线,该流水线使用机器学习技术从MR图像量化疾病严重程度,并在4位医学专家对30位患者的克罗恩病严重度评估中显示其价值。通过管道,我们可以获得比两个现有参考评分MaRIA和AIS更高的磁共振成像评分。

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