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Collection and fuzzy estimation of truth labels in glial tumour segmentation studies

机译:胶质瘤分割研究中真标的收集和模糊估计

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摘要

In this work, we propose a novel behavioural comparison strategy specifically oriented to accuracy assessment in MRI glial tumour segmentation studies. A salient aspect of the proposed strategy is the use of the fuzzy set framework in modelling visual inspection and interpretation processes. In particular, a reference estimation strategy based on fuzzy connectedness principles is designed to merge individual labels and produce a common segmentation. The estimation is based exclusively on highly reliable partial information provided by experts. Interaction is then drastically limited compared with a complete manual tracing, leaving the estimation of the complete segmentation to the fuzzy connectedness method. A set of experiments was conceived and conducted to evaluate the contribution of the solutions proposed in the process of truth label collection and reference data estimation. A comparison analysis was also developed to see whether our method could constitute a worthy alternative to well-known and state-of-the-art solutions.
机译:在这项工作中,我们提出了一种新的行为比较策略,专门针对MRI神经胶质肿瘤分割研究中的准确性评估。所提出策略的一个显着方面是在建模视觉检查和解释过程中使用模糊集框架。特别是,设计了一种基于模糊连通性原理的参考估计策略,以合并各个标签并产生共同的分割。估算完全基于专家提供的高度可靠的部分信息。与完整的手动跟踪相比,交互受到了极大的限制,将完整分段的估计留给了模糊连通性方法。构思并进行了一组实验,以评估在真相标签收集和参考数据估计过程中提出的解决方案的贡献。还进行了比较分析,以查看我们的方法是否可以代替著名的和最新的解决方案。

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