Clustering And Identifying Temporal Trends In Document Databases

ADL '00: Proceedings of the IEEE Advances in Digital Libraries 2000(2000)

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摘要
We introduce a simple and efficient method for clustering and identifying temporal trends in hyper-linked document databases. Our method cart scale to large datasets because it exploits the underlying regularity often found in hyper-linked document databases. Because of this scalability, we can use our method to study the temporal trends of individual clusters in a statistically meaningful manner As an example of our approach, we give a summary of the temporal trends found in a scientific literature database with thousands of documents.
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关键词
citation analysis,information resources,scientific information systems,hyper-linked document databases,large datasets,scientific literature database,temporal trend clustering,temporal trend identification,
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