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Beyond Shot Retrieval: Searching for Broadcast News Items Using Language Models of Concepts

机译:超越拍摄检索:使用语言模型搜索广播新闻项目

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Current video search systems commonly return video shots as results. We believe that users may better relate to longer, semantic video units and propose a retrieval framework for news story items, which consist of multiple shots. The framework is divided into two parts: (1) A concept based language model which ranks news items with known occurrences of semantic concepts by the probability that an important concept is produced from the concept distribution of the news item and (2) a probabilistic model of the uncertain presence, or risk, of these concepts. In this paper we use a method to evaluate the performance of story retrieval, based on the TRECVID shot-based retrieval groundtruth. Our experiments on the TRECVID 2005 collection show a significant performance improvement against four standard methods.
机译:当前视频搜索系统通常将视频拍摄作为结果返回。我们相信用户可能更好地与更长,语义视频单位和提出了多次镜头的新闻故事项目的检索框架。该框架分为两个部分:(1)基于概念的语言模型,其通过从新闻项目的概念分布产生的重要概念和(2)概率模型的概率排列具有已知出现语义概念的新闻项目这些概念的不确定存在或风险。在本文中,我们使用一种方法来评估故事检索的性能,基于基于TRECVID拍摄的检索Tounttruth。我们对Trecvid 2005系列的实验表明,针对四种标准方法显着改进。

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