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Heguang Lin
Heguang Lin
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Promises and Pitfalls of Threshold-based Auto-labeling
H Vishwakarma, H Lin, F Sala, R Korlakai Vinayak
Advances in Neural Information Processing Systems 36, 2024
22024
Good data from bad models: Foundations of threshold-based auto-labeling
H Vishwakarma, H Lin, F Sala, RK Vinayak
arXiv preprint arXiv:2211.12620, 2022
12022
Taming False Positives in Out-of-Distribution Detection with Human Feedback
H Vishwakarma, H Lin, RK Vinayak
International Conference on Artificial Intelligence and Statistics, 1486-1494, 2024
2024
Understanding Threshold-based Auto-labeling: The Good, the Bad, and the Terra Incognita
H Vishwakarma, H Lin, F Sala, R Vinayak
NeurIPS 2023 Workshop on Adaptive Experimental Design and Active Learning in …, 2023
2023
Human-in-the-Loop Out-of-Distribution Detection with False Positive Rate Control
H Vishwakarma, H Lin, R Vinayak
NeurIPS 2023 Workshop on Adaptive Experimental Design and Active Learning in …, 2023
2023
Geometry of the Minimum Volume Confidence Sets
H Lin, M Li, D Pimentel-Alarcón, ML Malloy
2022 IEEE International Symposium on Information Theory (ISIT), 3180-3185, 2022
2022
Adaptive Out-of-Distribution Detection with Human-in-the-Loop
H Lin, H Vishwakarma, RK Vinayak
Workshop on Human-Machine Collaboration and Teaming, International …, 2022
2022
Machine Learning for Glucose Prediction to Identify Diabetes-related Metabolic Pathways
G Agarwal, C Frink, B Hu, Z Hu, E Kim, H Lin
ProjectX Undergraduate Machine Learning Research Competition, 2021
2021
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