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Linear programming applied to separation detection in polytomous logistic regression
2021
Proceeding Series of the Brazilian Society of Computational and Applied Mathematics
unpublished
The Logistic Regression Model is widely used in Discriminant Analysis. However, parameter estimation is affected by the data configuration and may not be achieved when there is separation between the groups in the data set, which is a common problem in Discriminant Analysis. The use of linear programming to detect the separation between groups was proposed by [1], and a large number of linear programming approaches have been used to detect separate data in discriminant analysis. However, most
doi:10.5540/03.2021.008.01.0427
fatcat:jc2bgebgrffgxoz3jlvfz4f7ly