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20180711_Determination of the optimal parameters in regression models for the prediction...

 

 

1. Title

Determination of the optimal parameters in regression models for the prediction of chlorophyll-a: A case study of the Yeongsan Reservoir, Korea

 

 

2. Summary

  • Chl-a is used as the main dependent variable because of its simple, direct, and reasonable indicator for measuring phytoplankton biomass
  • The existence of correlation among explanatory variables (“collinearity”), causes the poor accuracy of prediction model
  • Main Topic
    • The backward stepwise method of MLR is useful for solving the collinearity problem?
    • Can PCR be used as an alternative approach for resolving the collinearity problem?
    • What is the best regression model with the least uncertainty?

 

3. Application

  • Complexity and noise in the original data were removed by PCR
  • F-overall-number of explanatory variables (RFN) curve, the proposed methodology selected four regression models as a basis(candidates) for further comparison of expanded uncertainties. 

 

 

4. Contact

Sung Ho Shin (Ph.D. program)

Environmental Systems Engineering Lab.

School of Earth Sciences and Environmental Engineering

Gwangju Institute of Science and Technology

1 Oryong-dong Buk-gu Gwangju, 500-712, Korea

 Phone : +82-10-6634-8614

E-mail : hogili89@gist.ac.kr

 

 

 

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