Cluster-based Collection Selection for Information Retrieval - Bertold Van Voorst - 图书 - LAP LAMBERT Academic Publishing - 9783844318852 - 2011年3月11日
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Cluster-based Collection Selection for Information Retrieval

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元 320
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远程仓调货

预计送达时间 年6月29日 - 年7月9日
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The focus of this research is collection selection for distributed information retrieval. The collection descriptions that are necessary for selecting the most relevant collections are often created from information gathered by random sampling. Collection selection based on an incomplete index constructed by using random sampling instead of a full index leads to inferior results. We propose to use collection clustering to compensate for the incompleteness of the indexes. When collection clustering is used we do not only select the collections that are considered relevant based on their collection descriptions, but also collections that have similar content in their indexes. We describe a new clustering algorithm that allows us to specify the sizes of the produced clusters instead of the number of clusters. Our experiments show that that collection clustering can indeed improve the performance of distributed information retrieval systems that use random sampling. There is not much difference in retrieval performance between our clustering algorithm and the well-known k-means algorithm. We suggest to use the algorithm we proposed because it is more scalable.

介质类型 图书     Paperback Book   (平装胶订图书)
已发行 2011年3月11日
ISBN13 9783844318852
出版商 LAP LAMBERT Academic Publishing
页数 84
商品尺寸 226 × 5 × 150 mm   ·   143 g
语言 德语