Application of Data-Mining Techniques on Predictive Analysis

Journal Title: International Research Journal of Applied and Basic Sciences - Year 2013, Vol 4, Issue 12

Abstract

This paper compares five different predictive data-mining techniques on some data sets. The characteristics of these data are few predictor variables, many predictor variables, highly collinear variables, very redundant variables and presence of outliers. First, these data are preprocessed and prepared. In the first step after, preprocessing data, we must select a minimal number of variables that can completely predict the response variable. Different data-mining techniques is used in this research including: multiple linear regression MLR, principal component regression (PCR), an unsupervised technique based on the principal component analysis; ridge regression, the Partial Least Squares (PLS), and the Nonlinear Partial Least Squares (NLPLS). Each technique has different methods of usage; these different methods were used on each data set first and the best method in each technique was noted and used for global comparison with other techniques for the same data set.

Authors and Affiliations

Mohammad Reza pourmir *| Computer Engineering Department, Faculty of Engineering, Zabol University, Zabol, Iran, mohammadrezapourmir@yahoo.com, Ahmad Kazemi| Centeral Department Of Sistan&Balochestan Telecommunication Co., Zahedan, Iran

Keywords

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  • EP ID EP5831
  • DOI -
  • Views 325
  • Downloads 8

How To Cite

Mohammad Reza pourmir *, Ahmad Kazemi (2013). Application of Data-Mining Techniques on Predictive Analysis. International Research Journal of Applied and Basic Sciences, 4(12), 3850-3862. https://europub.co.uk/articles/-A-5831