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Applying graphical oracles to evaluate image segmentation results

机译:应用图形预言机评估图像分割结果

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Abstract Segmentation plays an important role in the pattern recognition and image processing areas. Several techniques have been proposed aiming at solving generic issues or particular applications. Traditionally, these techniques have been evaluated by using the Overlap measure, which verifies the coincident and non-coincident areas between the image resulting from a segmentation process and an image considered correct. Albeit widely, this type of measure does not allow flexibility in the assessment process. We here propose an approach to evaluate segmentation techniques using concepts from content-based image retrieval and considering a methodology for testing generic programs with graphical outputs, named graphic oracle. Our approach was applied to evaluate the segmentation of mammographic images, and the results indicate a performance compatible with the traditional measure with more flexibility and precision. Thus, our approach provides a contribution to allow a more flexible segmentation assessment, according to image characteristics and application objectives.
机译:摘要分割在模式识别和图像处理领域起着重要作用。已经提出了几种旨在解决通用问题或特定应用的技术。传统上,这些技术是通过使用“重叠”度量进行评估的,该度量可验证由分割过程产生的图像与被认为正确的图像之间的重合和非重合区域。尽管广泛,但这种类型的措施并不能使评估过程具有灵活性。我们在这里提出一种使用基于内容的图像检索中的概念评估分割技术的方法,并考虑一种用于测试带有图形输出的通用程序的方法,该方法称为图形预言。我们的方法被用于评估乳腺X线摄影图像的分割,结果表明该性能与传统方法兼容,具有更大的灵活性和精度。因此,根据图像特征和应用目标,我们的方法可以做出更灵活的分割评估。

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