Content-based image descriptors for enhanced person annotation in personal digital photo archives

S. Cooray, N. O’Connor
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引用次数: 3

Abstract

In this paper we investigate the use of content-based image descriptors for enhancing the performance of person annotation in personal photo management applications. The descriptors examined are related to the context of person recognition through face and body-patch feature matching in personal digital photos. In order to identify the best performing content-based descriptors, we first study a number of colour and texture descriptors for body-patch matching and face recognition descriptors for face matching using a suitably chosen data set taken from typical personal photo collections. We then analyse the performance of three different fusion schemes to identify the best combination of colour, texture and face recognition descriptors. Finally, we apply those descriptors to the problem of person annotation and measure their performance using a test data set, which comprises 7 different real-life personal photo collections. The experimental results illustrate that combining body-patch feature matching with face recognition significantly improves the performance of person annotation. We further show that combining colour with texture leads to improved performance of body-patch matching. The content-based image descriptors identified in this paper show great potential for person annotation in personal photo management applications.
基于内容的图像描述符用于增强个人数字照片档案中的人物注释
在本文中,我们研究了使用基于内容的图像描述符来增强个人照片管理应用程序中人物注释的性能。所研究的描述符与通过个人数字照片中的面部和身体补丁特征匹配进行人物识别的背景有关。为了确定表现最好的基于内容的描述符,我们首先研究了一些用于身体补丁匹配的颜色和纹理描述符,以及用于人脸匹配的人脸识别描述符,使用从典型个人照片收集中适当选择的数据集。然后,我们分析了三种不同融合方案的性能,以确定颜色、纹理和人脸识别描述符的最佳组合。最后,我们将这些描述符应用于人物注释问题,并使用包含7个不同现实生活中的个人照片集的测试数据集来衡量它们的性能。实验结果表明,将人体贴片特征匹配与人脸识别相结合,显著提高了人脸标注的性能。我们进一步表明,将颜色与纹理相结合可以提高身体斑块匹配的性能。本文所确定的基于内容的图像描述符在个人照片管理应用中的人物注释方面显示出巨大的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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