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Robust Video Fingerprinting for Content-Based Video Identification

机译:强大的视频指纹识别技术,可用于基于内容的视频识别

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摘要

Video fingerprints are feature vectors that uniquely characterize one video clip from another. The goal of video fingerprinting is to identify a given video query in a database (DB) by measuring the distance between the query fingerprint and the fingerprints in the DB. The performance of a video fingerprinting system, which is usually measured in terms of pairwise independence and robustness, is directly related to the fingerprint that the system uses. In this paper, a novel video fingerprinting method based on the centroid of gradient orientations is proposed. The centroid of gradient orientations is chosen due to its pairwise independence and robustness against common video processing steps that include lossy compression, resizing, frame rate change, etc. A threshold used to reliably determine a fingerprint match is theoretically derived by modeling the proposed fingerprint as a stationary ergodic process, and the validity of the model is experimentally verified. The performance of the proposed fingerprint is experimentally evaluated and compared with that of other widely-used features. The experimental results show that the proposed fingerprint outperforms the considered features in the context of video fingerprinting.
机译:视频指纹是特征向量,可以将一个视频剪辑与另一个视频剪辑独特地加以表征。视频指纹识别的目的是通过测量查询指纹与数据库中指纹之间的距离来识别数据库(DB)中的给定视频查询。通常根据成对独立性和健壮性来衡量的视频指纹系统的性能与系统使用的指纹直接相关。提出了一种基于梯度方向质心的视频指纹新方法。选择梯度方向的质心是因为它具有成对的独立性和对常见视频处理步骤(包括有损压缩,调整大小,帧频变化等)的鲁棒性。理论上,通过将拟议指纹建模为平稳的遍历过程,并通过实验验证了模型的有效性。通过实验评估了所提出指纹的性能,并将其与其他广泛使用的功能进行了比较。实验结果表明,在视频指纹识别的背景下,所提出的指纹优于所考虑的特征。

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