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Teaser image to Rank-based support vector machines for highly imbalanced data using nominated samples

Colloquium

Rank-Based Support Vector Machines for Highly Imbalanced Data Using Nominated Samples

Mohammad Jafari Jozani, University of Manitoba, Winnipeg, Canada

   21.06.2023

   4:15 pm - 5:45 pm

   LMU Department of Statistics and via zoom

The talk proposes a novel approach, MaxNS, that tackles highly imbalanced binary classification using expert opinions and rank information. Biasing training samples towards the minority class, it employs rank-based Hinge and Logistic loss functions.


Related

Link to Causal Inference Based on Machine Learning for Complex Longitudinal Exposures

Colloquium  •  12.11.2025  •  LMU Department of Statistics and via zoom

Causal Inference Based on Machine Learning for Complex Longitudinal Exposures

12.11.25, 4:15-5:45 pm: Iván Diaz and Herb Sussman from the New York University.


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