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Perceptually Motivated Image Features Using Contours

机译:使用轮廓的感知动机图像功能

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Dong et al. examined the ability of 51 computational feature sets to estimate human perceptual texture similarity; however, none performed well for this task. While it is well-known that the human visual system is extremely adept at exploiting longer-range aperiodic (and periodic) “contour” characteristics in images, none of the investigated feature sets exploit higher order statistics (HOS) over larger image regions (>19×19 pixels). We, therefore, hypothesise that long-range HOS, in the form of contour data, are useful for perceptual texture similarity estimation. We present the results of a psychophysical experiment that shows that contour data are more important, than local image patches, or global second-order data, to human observers for this task. Inspired by this finding, we propose a set of perceptually motivated image features (PMIF) that encode the long-range HOS computed from spatial and angular distributions of contour segments. We use two perceptual texture similarity estimation tasks to compare PMIF against the 51 feature sets referred to above and four commonly used contour representations. This new feature set is also examined in the context of two additional tasks: sketch-based image retrieval and natural scene recognition. The results show that the proposed feature set performs better, or at least comparably to, all the other feature sets. We attribute this promising performance to the fact that the proposed feature set exploits both short-range and long-range HOS.
机译:董等。检查了51个计算特征集估计人类感知纹理相似度的能力;但是,没有一项能很好地完成此任务。众所周知,人类视觉系统非常善于利用图像中较长距离的非周期性(和周期性)“轮廓”特征,但没有一个研究的特征集可以利用较大图像区域上的高阶统计量(HOS)(> 19×19像素)。因此,我们假设以轮廓数据的形式存在的远距离HOS可用于感知纹理相似性估计。我们提供了一项心理物理实验的结果,该结果表明,对于执行此任务的人类观察者来说,轮廓数据比局部图像补丁或全局二阶数据更为重要。受到这一发现的启发,我们提出了一组感知动机的图像特征(PMIF),它们对从轮廓段的空间和角度分布计算出的远距离居屋进行编码。我们使用两个感知纹理相似性估计任务,将PMIF与上面提到的51个特征集和四个常用轮廓表示进行比较。还将在两项附加任务的上下文中检查此新功能集:基于草图的图像检索和自然场景识别。结果表明,提出的功能集表现得更好,或至少与所有其他功能集相比。我们将这种有前途的性能归因于以下事实:拟议的功能集同时利用了短距离和长距离HOS。

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