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Morteza Noshad

5 accepted papers

2025

Universal Training of Neural Networks to Achieve Bayes Optimal Classification Accuracy

ICASSP 2025accepted

This work invokes the notion of f-divergence to introduce a novel upper bound on the Bayes error rate of a general classification task. We show that the proposed bound can be computed by sampling from the output of a parameterized model. Using this practical interpretation, we introduce the Bayes op…

Cited by 0SourceScholar
2017

Information theoretic structure learning with confidence

ICASSP 2017accepted

Information theoretic measures (e.g. the Kullback Liebler divergence and Shannon mutual information) have been used for exploring possibly nonlinear multivariate dependencies in high dimension. If these dependencies are assumed to follow a Markov factor graph model, this exploration process is calle…

Cited by 0SourceScholar