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Sparse Learning with Non-convex Penalty in Multi-classification
2021
Journal of Data Science
Multi-classification is commonly encountered in data science practice, and it has broad applications in many areas such as biology, medicine, and engineering. Variable selection in multiclass problems is much more challenging than in binary classification or regression problems. In addition to estimating multiple discriminant functions for separating different classes, we need to decide which variables are important for each individual discriminant function as well as for the whole set of
doi:10.6339/20-jds1000
fatcat:k6hao3whivajbgznswcs3oqc44