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Learning to Reweight Examples for Robust Deep Learning

Learning to Reweight Examples for Robust Deep Learning

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objective towards an online approximation that can fit into any regular supervised training. We give a practical implementation suitable for any deep network type and provide theoretical guarantees under mild conditions that our algorithm has a convergence rate of O(1= 2). Note that this is the same as that of stochastic gradient descent (SGD ...

  Learning, Approximation, Derating

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