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An Automated Tagging Approach to Improve Search and Retrieval in a Radio Archive

机译:一种自动标记方法,可改善无线电档案中的搜索和检索

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Although a manual process guarantees accurate tagging of archive material, it is very time-consuming. Hence, not all media content in a big broadcast archive can be annotated sufficiently. A more automated tagging process could reduce the amount of unannotated content. This paper describes how speech technology is applied to archived content of one year of the Flemish Radio and Television Network's Radio 1 Dutch news to address the issue described. Different options are discussed and an automated approach is suggested. Techniques such as speech recognition, keyword spotting, and keyword extraction are combined to generate automatic annotations. A search engine prototype was implemented to assess the findability of the radio content. Results from the prototype show that the proposed automated approach can improve annotation and search efficiency significantly while still maintaining high precision. The results and lessons learned and presented are not only valuable to archivists, but to other professional users such as journalists and even end users.
机译:尽管手动过程可以保证对存档材料进行准确的标记,但是这非常耗时。因此,并非可以充分注释大型广播档案中的所有媒体内容。更加自动化的标记过程可以减少未注释内容的数量。本文介绍了语音技术如何应用​​于佛兰德广播电视网的Radio 1 Dutch新闻的一年的存档内容,以解决上述问题。讨论了不同的选项,并提出了一种自动方法。诸如语音识别,关键字发现和关键字提取之类的技术被组合以生成自动注释。实施了搜索引擎原型以评估无线电内容的可发现性。原型的结果表明,提出的自动方法可以在保持高精度的同时显着提高注释和搜索效率。获得和展示的结果和教训不仅对档案管理员有价值,而且对其他专业用户(例如记者,甚至最终用户)也很有价值。

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