用于图像检索的仿射不变显著补丁描述子

F. Isikdogan, A. A. Salah
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引用次数: 1

摘要

图像描述是计算机视觉中基于匹配的任务的重要组成部分。描述符的大小对于大型数据集的检索任务变得更加重要。在本文中,我们提出了一种紧凑、鲁棒的图像描述算法,该算法包括三个主要阶段:显著斑块提取、斑块上同心椭圆轨迹上的仿射不变特征计算和全局特征合并。我们评估了算法在基于区域的图像检索和图像重用检测方面的性能,这是图像检索的一个特例。本文提出了一种新的合成图像重用数据集,该数据集是通过系统变换在不同背景图像上叠加对象而生成的。结果表明,所提出的描述符对该问题是有效的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Affine invariant salient patch descriptors for image retrieval
Image description constitutes a major part of matching-based tasks in computer vision. The size of descriptors becomes more important for retrieval tasks in large datasets. In this paper, we propose a compact and robust image description algorithm for image retrieval, which consists of three main stages: salient patch extraction, affine invariant feature computation over concentric elliptical tracks on the patch, and global feature incorporation. We evaluate the performance of our algorithm for region-based image retrieval and image reuse detection, a special case of image retrieval. We present a novel synthetic image reuse dataset, which is generated by superimposing objects on different background images with systematic transformations. Our results show that the proposed descriptor is effective for this problem.
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