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OWA Operators for the Fusion of Social Networks’ Comments with Audio-Visual Content

机译:OWA运营商将社交网络的评论与视听内容融合在一起

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摘要

Social networks' comments are rich sources of information that may be fused with audio-visual contents to improve emotional video retrieval systems. The rationale behind this fusion is that different sources can complement each other since they have different natures, formats, and origins. Although emotional information expressed in users' comments on the Web is in accordance with the emotional audio-visual content of videos, they are not synchronized. In order to address this problem, decision-level fusion is needed when such asynchronous modalities should be fused. In this article, a new decision-level fusion approach based on Ordered Weighted Averaging (OWA) operators is proposed. In this approach, emotion is first detected based on the audio, video, and users' comments and then, individual decisions are fused using the OWA method. The proposed method is evaluated on the music videos of the standard DEAP data set. The results of comparing the proposed method with average, product, sum, and Dempster-Shafer fusion methods show that the proposed OWA-based method outperforms other methods in different fusion settings.
机译:社交网络的评论是丰富的信息源,可以将其与视听内容融合以改善情感视频检索系统。这种融合的基本原理是,不同的来源具有不同的性质,格式和来源,因此可以相互补充。尽管用户在Web上的评论中表达的情感信息符合视频的情感视听内容,但它们并不同步。为了解决这个问题,当应该融合这种异步方式时,需要决策级融合。在本文中,提出了一种新的基于有序加权平均(OWA)运算符的决策级融合方法。在这种方法中,首先根据音频,视频和用户的评论检测情感,然后使用OWA方法融合个人决策。在标准DEAP数据集的音乐视频上对提出的方法进行了评估。将本方法与平均值,乘积,总和和Dempster-Shafer融合方法进行比较的结果表明,基于OWA的方法在不同融合环境下的性能优于其他方法。

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