Interactive retrieval of video using pre-computed shot-shot similarities

L. Boldareva, D. Hiemstra
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Abstract

A probabilistic framework for content-based interactive video retrieval is described. The developed indexing of video fragments originates from the probability of the user's positive judgment about key-frames of video shots. Initial estimates of the probabilities are obtained from low-level feature representation. Only statistically significant estimates are picked out, the rest are replaced by an appropriate constant allowing efficient access at search time without loss of search quality and leading to improvement in most experiments. With time, these probability estimates are updated from the relevance judgment of users performing searches, resulting in further substantial increases in mean average precision.
使用预先计算的镜头相似度的视频交互式检索
描述了一种基于内容的交互式视频检索的概率框架。视频片段索引的发展源于用户对视频关键帧的积极判断的概率。概率的初始估计是从低级特征表示中获得的。只有统计上有意义的估计被挑选出来,其余的被一个适当的常数取代,允许在搜索时有效访问,而不会损失搜索质量,并导致大多数实验的改进。随着时间的推移,这些概率估计会根据用户执行搜索的相关性判断进行更新,从而进一步大幅提高平均精度。
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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