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Brendon G. Anderson

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Mixing Classifiers to Alleviate the Accuracy-Robustness Trade-Off

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Nov 26, 2023
Yatong Bai, Brendon G. Anderson, Somayeh Sojoudi

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Tight Certified Robustness via Min-Max Representations of ReLU Neural Networks

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Oct 07, 2023
Brendon G. Anderson, Samuel Pfrommer, Somayeh Sojoudi

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Projected Randomized Smoothing for Certified Adversarial Robustness

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Sep 25, 2023
Samuel Pfrommer, Brendon G. Anderson, Somayeh Sojoudi

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Asymmetric Certified Robustness via Feature-Convex Neural Networks

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Feb 03, 2023
Samuel Pfrommer, Brendon G. Anderson, Julien Piet, Somayeh Sojoudi

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Improving the Accuracy-Robustness Trade-off of Classifiers via Adaptive Smoothing

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Jan 29, 2023
Yatong Bai, Brendon G. Anderson, Aerin Kim, Somayeh Sojoudi

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An Overview and Prospective Outlook on Robust Training and Certification of Machine Learning Models

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Aug 15, 2022
Brendon G. Anderson, Tanmay Gautam, Somayeh Sojoudi

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Node-Variant Graph Filters in Graph Neural Networks

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May 31, 2021
Fernando Gama, Brendon G. Anderson, Somayeh Sojoudi

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Partition-Based Convex Relaxations for Certifying the Robustness of ReLU Neural Networks

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Jan 22, 2021
Brendon G. Anderson, Ziye Ma, Jingqi Li, Somayeh Sojoudi

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Certifying Neural Network Robustness to Random Input Noise from Samples

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Oct 15, 2020
Brendon G. Anderson, Somayeh Sojoudi

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Data-Driven Assessment of Deep Neural Networks with Random Input Uncertainty

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Oct 02, 2020
Brendon G. Anderson, Somayeh Sojoudi

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