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Thomas G. Dietterich
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Benchmarking Neural Network Robustness to Common Corruptions and Surface Variations
2018 · arXiv (Cornell University)
In this paper we establish rigorous benchmarks for image classifier robustness. Our first benchmark, ImageNet-C, standardizes and expands the corruption robustness topic, while showing which classifiers are preferable in safety-critical applications. Unlike recent robustness research, …