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Alessandro Rozza

1 accepted papers

2017

Making Deep Neural Networks Robust to Label Noise: A Loss Correction Approach

CVPR 2017oral

We present a theoretically grounded approach to train deep neural networks, including recurrent networks, subject to class-dependent label noise. We propose two procedures for loss correction that are agnostic to both application domain and network architecture. They simply amount to at most a matri…

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