Advancing Content-Based Retrieval Effectiveness with Cluster-Temporal Browsing in Multilingual Video Databases

Mika Rautiainen, T. Seppänen, T. Ojala
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引用次数: 7

Abstract

Interactive experiments on video retrieval systems need to address the problem of internal validity, i.e. how much the test users' experience affects the retrieval effectiveness. This paper compares the semantic retrieval performance of novice users and expert system developers. The test system utilizes cluster-temporal browsing, which combines chronological video structure and computation of similarities into single interface. Interactive experiments with eight test users were carried out in a database of ~80 hours of multilingual news video from TRECVID 2005 benchmark. A cluster-temporal browser was found to improve the retrieval effectiveness by 12% with novice system users. Expert users were able to achieve 18% better performance than the novice users. Additionally, manual search experiments demonstrated that search performance can be improved by 19-25% when a plain text search is supplemented with content-based features
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基于聚类时间浏览的多语种视频数据库基于内容的检索效率提升
视频检索系统的交互实验需要解决内部效度问题,即测试用户的体验对检索效果的影响程度。本文比较了新手和专家系统开发人员的语义检索性能。测试系统采用聚类时间浏览,将视频的时间结构和相似度计算结合到一个界面中。在TRECVID 2005基准的约80小时多语种新闻视频数据库中,与8个测试用户进行交互实验。发现集群时间浏览器对新手系统用户的检索效率提高了12%。专家用户的表现比新手用户好18%。此外,人工搜索实验表明,当纯文本搜索补充基于内容的特征时,搜索性能可以提高19-25%
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