This paper considers the classifications produced by application of the single linkage, complete linkage, group average and Ward clustering methods to the Keen and Cranfield document test collections. Experiments were carried out to study the structure of the hierarchies produced by the different methods, the extent to which the methods distort the input similarity matrices during the generation of a classification, and the retrieval effectiveness obtainable in cluster based retrieval. The results would suggest that the single linkage method, which has been used extensively in previous work on document clustering, is not the most effective procedure of those tested, although it should be emphasized that the experiments have used only small document test collections.
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1 March 1984
Review Article|
March 01 1984
HIERARCHIC AGGLOMERATIVE CLUSTERING METHODS FOR AUTOMATIC DOCUMENT CLASSIFICATION
ALAN GRIFFITHS;
ALAN GRIFFITHS
Department of Information Studies, University of Sheffield, Western Bank, Sheffield S10 2TN, UK
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LESLEY A. ROBINSON;
LESLEY A. ROBINSON
Department of Information Studies, University of Sheffield, Western Bank, Sheffield S10 2TN, UK
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PETER WILLETT
PETER WILLETT
Department of Information Studies, University of Sheffield, Western Bank, Sheffield S10 2TN, UK
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Publisher: Emerald Publishing
Online ISSN: 1758-7379
Print ISSN: 0022-0418
© MCB UP Limited
1984
Journal of Documentation (1984) 40 (3): 175–205.
Citation
GRIFFITHS A, ROBINSON LA, WILLETT P (1984), "HIERARCHIC AGGLOMERATIVE CLUSTERING METHODS FOR AUTOMATIC DOCUMENT CLASSIFICATION". Journal of Documentation, Vol. 40 No. 3 pp. 175–205, doi: https://doi.org/10.1108/eb026764
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