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Composite Description Based on Salient Contours and Color Information for CBIR Tasks

机译:基于显着轮廓和颜色信息的CBIR任务组合描述

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摘要

This paper introduces a novel image descriptor for content-based image retrieval tasks that integrates contour and color information into a compact vector. Loosely inspired by the human visual system and its mechanisms in efficiently identifying visual saliency, operations are performed on a fixed lattice of discrete positions by a set of edge detecting kernels that calculate region derivatives at different scales and orientation. The description method utilizes a weighted edge histogram where bins are populated on the premise of whether the regions contain edges belonging to the salient contours, while the discriminative power is further enhanced by integrating regional quantized color information. The proposed technique is both efficient and adaptive to the specifics of each depiction, while it does not need any training data to adjust parameters. An experimental evaluation conducted on seven benchmarking datasets against 13 well known global descriptors along with SIFT, SURF implementations (both in VLAD and BOVW), highlight the effectiveness and efficiency of the proposed descriptor.
机译:本文介绍了一种新颖的图像描述符,用于基于内容的图像检索任务,该任务将轮廓和颜色信息集成到紧凑的向量中。受到人类视觉系统及其有效识别视觉显着性机制的宽松启发,通过一组边缘检测内核对离散位置的固定晶格执行操作,该边缘检测内核计算了不同比例和方向的区域导数。该描述方法利用加权边缘直方图,其中在区域是否包含属于显着轮廓的边缘的前提下填充箱,而通过合并区域量化的颜色信息来进一步增强判别力。所提出的技术既有效又适应于每个描述的细节,同时它不需要任何训练数据即可调整参数。针对13个著名的全局描述符以及SIFT,SURF实现(在VLAD和BOVW中)对七个基准数据集进行的实验评估,突出了所提出描述符的有效性和效率。

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