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An improved objective evaluation measure for border detection in dermoscopy images.

机译:一种改进的客观评估方法,用于在皮肤镜检查图像中进行边界检测。

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摘要

BACKGROUND: Dermoscopy is one of the major imaging modalities used in the diagnosis of melanoma and other pigmented skin lesions. Owing to the difficulty and subjectivity of human interpretation, dermoscopy image analysis has become an important research area. One of the most important steps in dermoscopy image analysis is the automated detection of lesion borders. Although numerous methods have been developed for the detection of lesion borders, very few studies were comprehensive in the evaluation of their results. METHODS: In this paper, we evaluate five recent border detection methods on a set of 90 dermoscopy images using three sets of dermatologist-drawn borders as the ground truth. In contrast to previous work, we utilize an objective measure, the normalized probabilistic rand index, which takes into account the variations in the ground-truth images. CONCLUSION: The results demonstrate that the differences between four of the evaluated border detection methods are in fact smaller than those predicted by the commonly used exclusive-OR measure.
机译:背景:皮肤镜检查是用于诊断黑素瘤和其他色素性皮肤病变的主要影像学方法之一。由于人类解释的难度和主观性,皮肤镜图像分析已成为重要的研究领域。皮肤镜图像分析中最重要的步骤之一是自动检测病变边界。尽管已经开发了许多方法来检测病灶边界,但是很少有研究能够全面评估其结果。方法:在本文中,我们使用三组皮肤科医生绘制的边界作为基本事实,对一组90幅皮肤镜检查图像评估了五种最新的边界检测方法。与以前的工作相比,我们利用客观指标,即归一化概率兰德指数,该指数考虑了真实图像的变化。结论:结果表明,四种评估的边界检测方法之间的差异实际上小于常用的异或测量所预测的差异。

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