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KUUKKELI-TV: ONLINE CONTENT-BASED SERVICES AND APPLICATIONS FOR BROADCAST TV WITH LONG-TERM USER EXPERIMENTS

机译:Kuukkeli-TV:具有长期用户实验的广播电视的在线基于内容的服务和应用

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摘要

Online TV services have facilitated time-shifted TV viewing. Accordingly, new service concepts are needed to improve access to relevant information in the broadcast TV content. In this paper we introduce a system that indexes TV broadcast in near real-time from seven free-to-air television channels. Our system uses machine learning and data mining techniques to extract descriptive novelty word summaries and picture highlights automatically from TV program subtitles and uses them to provide non-linear content-based access to relevant TV content fragments in novel end-user services and applications. First end-user service allows browsing of recent time shifted TV content using time and program genre metaphors with extracted program summaries. Second end-user service provides free-text search of archival and time shifted TV content. Additionally, the system allows content-based recommendation of similar TV content from the database of 180 000 indexed programs. Recommendations are used in the end-user services and Mobile EPG Guide application. Over 5 000 user sessions have been collected to study how users adopt our content-based access metaphors to examine interesting TV content. User logs revealed that the proposed content-based access techniques were more popular in TV program search and browsing activities than conventional techniques based on program title and description metadata.
机译:在线电视服务有助于时移电视景。因此,需要新的服务概念来改善广播电视内容中的相关信息的访问。在本文中,我们介绍了一种系统,该系统从七个自由电视频道近乎实时索引电视广播。我们的系统使用机器学习和数据挖掘技术来从电视节目字幕自动提取描述性新颖的单词摘要和图片亮点,并使用它们为新颖的最终用户服务和应用程序提供基于非线性内容的基于相关的电视内容片段的访问。第一个最终用户服务允许使用随着提取的程序摘要使用时间和程序类型隐喻浏览近期移动电视内容。第二个最终用户服务提供归档和时间移动电视内容的自由文本搜索。此外,该系统允许从180 000个索引程序的数据库中基于内容的类似电视内容的推荐。建议用于最终用户服务和移动EPG指南应用程序。收集了超过5 000个用户会话,以研究用户如何采用基于内容的访问隐喻来检查有趣的电视内容。用户日志揭示了基于PROP节目搜索和浏览活动的基于内容的访问技术比基于程序标题和描述元数据的传统技术更受欢迎。

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