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Towards Fully Automatic Image Segmentation Evaluation

机译:走向全自动图像分割评估

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摘要

Spatial region (image) segmentation is a fundamental step for many computer vision applications. Although many methods have been proposed, less work has been done in developing suitable evaluation methodologies for comparing different approaches. The main problem of general purpose segmentation evaluation is the dilemma between objectivity and generality. Recently, figure ground segmentation evaluation has been proposed to solve this problem by defining an unambiguous ground truth using the most salient foreground object. Although the annotation of a single foreground object is less complex than the annotation of all regions within an image, it is still quite time consuming, especially for videos. A novel framework incorporating background subtraction for automatic ground truth generation and different foreground evaluation measures is proposed, that allows to effectively and efficiently evaluate the performance of image segmentation approaches. The experiments show that the objective measures are comparable to the subjective assessment and that there is only a slight difference between manually annotated and automatically generated ground truth.
机译:空间区域(图像)分割是许多计算机视觉应用程序的基本步骤。尽管已经提出了许多方法,但是在开发用于比较不同方法的合适评估方法方面所做的工作很少。通用细分评估的主要问题是客观性与普遍性之间的困境。近来,已经提出了图形地面分割评估来通过使用最显着的前景对象定义明确的地面真相来解决该问题。尽管单个前景对象的注释不如图像中所有区域的注释复杂,但是它仍然非常耗时,尤其是对于视频而言。提出了一种新颖的框架,该框架结合了用于自动地面真相生成的背景减法和不同的前景评估措施,从而可以有效,高效地评估图像分割方法的性能。实验表明,客观度量与主观评估具有可比性,并且手动注释和自动生成的基本事实之间仅存在微小差异。

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