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TrendsSummary: a platform for retrieving and summarizing trendy multimedia contents

机译:TrendsSummary:检索和汇总时尚多媒体内容的平台

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With the flood and popularity of various multimedia contents on the Internet, searching for appropriate contents and representing them effectively has become an essential part for user satisfaction. So far, many contents recommendation systems have been proposed for this purpose. A popular approach is to select hot or popular contents for recommendation using some popularity metric. Recently, various social network services (SNSs) such as Facebook and Twitter have become a widespread social phenomenon owing to the smartphone boom. Considering the popularity and user participation, SNS can be a good source for finding social interests or trends. In this study, we propose a platform called TrendsSummary for retrieving trendy multimedia contents and summarizing them. To identify trendy multimedia contents, we select candidate keywords from raw data collected from Twitter using a syntactic feature-based filtering method. Then, we merge various keyword variants based on several heuristics. Next, we select trend keywords and their related keywords from the merged candidate keywords based on term frequency and expand them semantically by referencing portal sites such as Wikipedia and Google. Based on the expanded trend keywords, we collect four types of relevant multimedia contents-TV programs, videos, news articles, and images-from various websites. The most appropriate media type for the trend keywords is determined based on a naive Bayes classifier. After classification, appropriate contents are selected from among the contents of the selected media type. Finally, both trend keywords and their related multimedia contents are displayed for effective browsing. We implemented a prototype system and experimentally demonstrated that our scheme provides satisfactory results.
机译:随着各种多媒体内容在Internet上的泛滥和流行,寻找合适的内容并有效地表示它们已成为用户满意度的重要组成部分。迄今为止,已经为此目的提出了许多内容推荐系统。一种流行的方法是使用某些流行度指标选择热门或流行的内容进行推荐。近年来,由于智能手机的兴起,诸如Facebook和Twitter之类的各种社交网络服务(SNS)已成为一种广泛的社交现象。考虑到受欢迎程度和用户参与度,SNS可以成为查找社会兴趣或趋势的好来源。在这项研究中,我们提出了一个名为TrendsSummary的平台,用于检索流行的多媒体内容并进行汇总。为了识别时尚的多媒体内容,我们使用基于句法特征的过滤方法从Twitter收集的原始数据中选择候选关键字。然后,我们基于几种启发式方法合并各种关键字变体。接下来,我们根据术语频率从合并的候选关键字中选择趋势关键字及其相关关键字,并通过引用门户网站(如Wikipedia和Google)在语义上进行扩展。基于扩展的趋势关键字,我们从各个网站收集了四种类型的相关多媒体内容:电视节目,视频,新闻文章和图像。根据朴素的贝叶斯分类器确定趋势关键字的最合适媒体类型。分类后,从所选媒体类型的内容中选择适当的内容。最后,趋势关键字及其相关的多媒体内容都将显示出来,以进行有效浏览。我们实施了原型系统,并通过实验证明了我们的方案可提供令人满意的结果。

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