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Coordinate Descent Based Hierarchical Interactive Lasso Penalized Logistic Regression and Its Application to Classification Problems

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  • Jin-Jia Wang
  • Yang Lu

Abstract

We present the hierarchical interactive lasso penalized logistic regression using the coordinate descent algorithm based on the hierarchy theory and variables interactions. We define the interaction model based on the geometric algebra and hierarchical constraint conditions and then use the coordinate descent algorithm to solve for the coefficients of the hierarchical interactive lasso model. We provide the results of some experiments based on UCI datasets, Madelon datasets from NIPS2003, and daily activities of the elder. The experimental results show that the variable interactions and hierarchy contribute significantly to the classification. The hierarchical interactive lasso has the advantages of the lasso and interactive lasso.

Suggested Citation

  • Jin-Jia Wang & Yang Lu, 2014. "Coordinate Descent Based Hierarchical Interactive Lasso Penalized Logistic Regression and Its Application to Classification Problems," Mathematical Problems in Engineering, Hindawi, vol. 2014, pages 1-11, December.
  • Handle: RePEc:hin:jnlmpe:430201
    DOI: 10.1155/2014/430201
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