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Perceptual color descriptor based on spatial distribution: A top-down approach

机译:基于空间分布的感知颜色描述符:自顶向下方法

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摘要

Color features are the key-elements widely used in content-analysis and retrieval. However, most of them show severe limitations and drawbacks due to their inefficiency of modeling the human visual system with respect to color perception. Moreover, they cannot characterize all the properties of the color composition in a visual scenery. In this paper we present a perceptual color feature, which describes all major properties of prominent colors both in spatial and color domains. In accordance with the well-known Gestalt law, we adopt a global, top-down approach in order to model (see) the whole color composition before its parts and in this way we can avoid the problems of pixel-based approaches. In color domain the dominant colors are extracted along with their global properties and quad-tree decomposition partitions the image so as to characterize the spatial color distribution (SCD). We propose two efficient SCD descriptors; the proximity histograms, which distill the histogram of inter-color distances and the proximity grids, which cumulate the spatial co-occurrence of colors in a 2D grid. Both approaches are configurable and provide means of modeling SCD in a scalar and directional way. Combination of the extracted global and spatial properties forms the final descriptor, which is unbiased and robust to non-perceivable color elements in both spatial and color domains. Finally a penalty-trio model fuses all color properties in a similarity distance computation during retrieval. Experimental results approve the superiority of the proposed technique against powerful global and spatial color descriptors.
机译:颜色特征是内容分析和检索中广泛使用的关键元素。然而,由于它们在色彩感知方面对人类视觉系统的建模效率低下,因此它们中的大多数都显示出严重的局限性和缺陷。而且,它们不能表征视觉场景中颜色组合物的所有特性。在本文中,我们提出了一种感知色特征,它描述了空间和色域中突出色的所有主要特性。根据著名的格式塔定律,我们采用全局的,自上而下的方法来对整个颜色组成部分进行建模(参见),从而可以避免基于像素的方法的问题。在颜色域中,主要颜色与它们的全局属性一起被提取,并且四叉树分解对图像进行分区,以表征空间颜色分布(SCD)。我们提出两个有效的SCD描述符;邻近直方图,它提取了颜色间距离和邻近格的直方图,从而累积了二维网格中颜色的空间共现。两种方法都是可配置的,并提供了以标量和定向方式对SCD建模的方法。提取的全局和空间属性的组合形成最终的描述符,该描述符对空间和颜色域中的不可感知颜色元素均无偏见且鲁棒。最后,惩罚三元组模型在检索期间将相似性距离计算中的所有颜色属性融合在一起。实验结果证明了所提出的技术对强大的全局和空间颜色描述符的优越性。

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