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Principles of Data Mining

Author: Hand David J.  

Publisher: Adis International

ISSN: 0114-5916

Source: Drug Safety, Vol.30, Iss.7, 2007-01, pp. : 621-622

Disclaimer: Any content in publications that violate the sovereignty, the constitution or regulations of the PRC is not accepted or approved by CNPIEC.

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Abstract

Data mining is the discovery of interesting, unexpected or valuable structures in large datasets. As such, it has two rather different aspects. One of these concerns large-scale, `global' structures, and the aim is to model the shapes, or features of the shapes, of distributions. The other concerns small-scale, `local' structures, and the aim is to detect these anomalies and decide if they are real or chance occurrences. In the context of signal detection in the pharmaceutical sector, most interest lies in the second of the above two aspects; however, signal detection occurs relative to an assumed background model, therefore, some discussion of the first aspect is also necessary. This paper gives a lightning overview of data mining and its relation to statistics, with particular emphasis on tools for the detection of adverse drug reactions.