Summarization of personal photologs using multidimensional content and context

Pinaki Sinha, S. Mehrotra, R. Jain
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引用次数: 68

Abstract

In this paper, we propose a framework for generation of representative subset summaries from large personal photo collections. These summaries will help in effective sharing and browsing of the personal photos. We define three salient properties: quality, diversity and coverage that an informative summary should satisfy. We propose methods to compute these properties using multidimensional content and context data. The objective of summarization is modeled as an optimization of these properties, given the size constraints. We also propose metrics which will evaluate the photo summaries based on their representation of the larger corpus and the ability to satisfy user's information needs. We use a dataset of 40K personal photos collected by crawling photo sharing and storage sites of sixteen users. Our experiments show that the summarization algorithm works better than the baseline algorithms.
使用多维内容和上下文的个人照片摘要
在本文中,我们提出了一个从大型个人照片集生成代表性子集摘要的框架。这些摘要将有助于有效地分享和浏览个人照片。我们定义了三个显著的属性:质量,多样性和覆盖范围,信息摘要应该满足。我们提出了使用多维内容和上下文数据来计算这些属性的方法。摘要的目标是在给定大小约束的情况下对这些属性进行优化。我们还提出了基于照片摘要对更大语料库的表示和满足用户信息需求的能力来评估照片摘要的指标。我们使用了一个40K个人照片的数据集,这些照片是通过抓取16个用户的照片共享和存储网站收集的。实验结果表明,摘要算法比基线算法效果更好。
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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