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Yongdai Kim

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Posterior concentrations of fully-connected Bayesian neural networks with general priors on the weights

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Mar 21, 2024
Insung Kong, Yongdai Kim

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Enhancing Adversarial Robustness in Low-Label Regime via Adaptively Weighted Regularization and Knowledge Distillation

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Aug 08, 2023
Dongyoon Yang, Insung Kong, Yongdai Kim

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Improving Performance of Semi-Supervised Learning by Adversarial Attacks

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Aug 08, 2023
Dongyoon Yang, Kunwoong Kim, Yongdai Kim

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A Bayesian sparse factor model with adaptive posterior concentration

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May 29, 2023
Ilsang Ohn, Lizhen Lin, Yongdai Kim

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Masked Bayesian Neural Networks : Theoretical Guarantee and its Posterior Inference

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May 24, 2023
Insung Kong, Dongyoon Yang, Jongjin Lee, Ilsang Ohn, Gyuseung Baek, Yongdai Kim

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Covariate balancing using the integral probability metric for causal inference

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May 23, 2023
Insung Kong, Yuha Park, Joonhyuk Jung, Kwonsang Lee, Yongdai Kim

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Within-group fairness: A guidance for more sound between-group fairness

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Jan 20, 2023
Sara Kim, Kyusang Yu, Yongdai Kim

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ODIM: an efficient method to detect outliers via inlier-memorization effect of deep generative models

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Jan 11, 2023
Dongha Kim, Jaesung Hwang, Jongjin Lee, Kunwoong Kim, Yongdai Kim

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Adaptive Regularization for Adversarial Training

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Jun 07, 2022
Dongyoon Yang, Insung Kong, Yongdai Kim

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Masked Bayesian Neural Networks : Computation and Optimality

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Jun 02, 2022
Insung Kong, Dongyoon Yang, Jongjin Lee, Ilsang Ohn, Yongdai Kim

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