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An algorithm for evaluating inter- and intra-observer variability of boundary delineation providing local information about deviation for anisotropic image data

机译:一种评估边界描绘间的识别和帧内观测器内的算法,提供关于各向异性图像数据的偏差的本地信息

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Quality assessment of segmentation algorithms is not a simple task. A comparison between a manual outline of an expert and segmentation results, widely used in most cases, appears to be insufficient. Taking into account the lack of reproducibility of the outlines made by experts, it is necessary to thoroughly analyze both inter- and intra-observer variability. To meet these requirements, the article proposes a new evaluation method for inter- and intra-observer variability of boundary delineation. The algorithm is based on three-dimensional signed Euclidean Distance Transformation. It allows to provide local information (for each point of the outline) about manual outlines deviation. The algorithm manages anisotropic image data such as magnetic resonance (MR) or computed tomography (CT) images. It can also be used for complex, non-convex structures. In addition, a method of selection the most reliable outline is proposed. The effectiveness of the proposed approach is assessed by examining the boundary deviation of anatomical structures in CT data. Finally, a quantitative analysis of the manual outlines in various schemes for a kidney and a femur are presented.
机译:分段算法的质量评估不是一个简单的任务。在大多数情况下广泛使用的专家和细分结果的手动轮廓之间的比较似乎不足。考虑到专家概述的纲要缺乏可重复性,有必要彻底分析观察者内部和内部内部变异性。为满足这些要求,本文提出了一种新的评估方法,用于界限描绘的跨界界和观察者内部变异性。该算法基于三维符号欧几里德距离变换。它允许提供关于手动概述偏差的本地信息(对于轮廓的每个点)。该算法管理诸如磁共振(MR)或计算机断层扫描(CT)图像的各向异性图像数据。它也可用于复杂的非凸结构。此外,提出了一种选择最可靠的轮廓的方法。通过检查CT数据中解剖结构的边界偏差来评估所提出的方法的有效性。最后,提出了对肾脏和股骨的各种方案中的手动轮廓的定量分析。

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