使用单眼深度线索建模立体3D显著性

Iana Iatsun, M. Larabi, C. Fernandez-Maloigne
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引用次数: 6

摘要

显著性是人类视觉感知的重要特征之一。目前,它被广泛用于感知优化图像处理算法。对于二维图像已经提出了几种模型,但对于三维图像的尝试很少。本文提出了一种基于二维显著性特征和单目线索深度的立体三维显著性模型。一方面,通过观察到2D和3D注意图之间的相似性,2D显著性特征的使用在心理物理学上是合理的。另一方面,3D感知很大程度上是基于单目线索。使用最先进的程序验证我们的模型,包括Kullback-Leibler散度(KLD),曲线下面积(AUC)和相关系数(CC),与注意图相比显示出非常好的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Using monocular depth cues for modeling stereoscopic 3D saliency
Saliency is one of the most important features in human visual perception. It is widely used nowadays for perceptually optimizing image processing algorithms. Several models have been proposed for 2D images and only few attempts can be observed for 3D ones. In this paper, we propose a stereoscopic 3D saliency model relying on 2D saliency features jointly with depth obtained from monocular cues. On the one hand, the use of 2D saliency features is justified psychophysically by the similarity observed between 2D and 3D attention maps. On the other hand, 3D perception is significantly based on monocular cues. The validation of our model using state-of-the-art procedures including Kullback-Leibler divergence (KLD), area under the curve (AUC) and correlation coefficient (CC) in comparison with attention maps showed very good performance.
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