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Extreme Situations Prediction by MultidimenSional Heterogeneous Time Series Using Logical Decision Functions

By Svetlana Nedel’ko

Abstract

* The work is supported by RFBR, grant 04-01-00858-aA method for prediction of multidimensional heterogeneous time series using logical decision functions is suggested. The method implements simultaneous prediction of several goal variables. It uses deciding function construction algorithm that performs directed search of some variable space partitioning in class of logical deciding functions. To estimate a deciding function quality the realization of informativity criterion for conditional distribution in goal variables' space is offered. As an indicator of extreme states, an occurrence a transition with small probability is suggested

Topics: Multidimensional Heterogeneous Time Series Analysis, Data Mining, Pattern Recognition, Classification, Statistical Robustness, Deciding Functions
Publisher: Institute of Information Theories and Applications FOI ITHEA
Year: 2006
OAI identifier: oai:sci-gems.math.bas.bg:10525/759
Journal:

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