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Towards Computational Models of the Visual Aesthetic Appeal of Consumer Videos

机译:迈向消费者视频视觉美学吸引力的计算模型

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In this paper, we tackle the problem of characterizing the aesthetic appeal of consumer videos and automatically classifying them into high or low aesthetic appeal. First, we conduct a controlled user study to collect ratings on the aesthetic value of 160 consumer videos. Next, we propose and evaluate a set of low level features that are combined in a hierarchical way in order to model the aesthetic appeal of consumer videos, After selecting the 7 most discriminative features, we successfully classify aesthetically appealing vs. aesthetically unappealing videos with a 73% classification accuracy using a support vector machine.
机译:在本文中,我们解决了表征消费者视频的美学吸引力的问题,并自动将它们分类为高或低审美吸引力。首先,我们进行受控用户学习,收集160个消费者视频的审美价值的评级。接下来,我们提出并评估了一系列以分层方式组合的低级功能,以便在选择7个最辨别的功能之后模拟消费者视频的美学吸引力,我们成功地分类了美学上吸引人的对象与美学上没有吸引力的视频使用支持向量机73%的分类精度。

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