Proceedings of the Annual Conference of Biomedical Fuzzy Systems Association
Online ISSN : 2424-2586
Print ISSN : 1345-1510
ISSN-L : 1345-1510
26
Session ID : A-2-5
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A-2-5 Identification of time-series data with different behavior using the rough sets
Yoshiyuki MATSUMOTOJunzo Watada
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Abstract

Rough set theory was proposed by Z.Pawlak in 1982. This theory can mine knowledge granules through a decision rule from a database, a web base, a set and so on. The decision rule is used for data analysis as well. And we can apply the decision rule to reason, estimate, evaluate, or forecast an unknown object. In this paper, the rough set theory is used to analysis of time series data. Knowledge granules are minded from the data set of tick-wise price fluctuations. We Knowledge Acquisition If the data has changed greatly.

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© 2013 Biomedical Fuzzy Systems Association
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