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Published December 21, 2022 | public
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A Note on Zeroth-Order Optimization on the Simplex

Abstract

We construct a zeroth-order gradient estimator for a smooth function defined on the probability simplex. The proposed estimator queries the simplex only. We prove that projected gradient descent and the exponential weights algorithm, when run with this estimator instead of exact gradients, converge at a O(T^(-1/4)}) rate.

Additional details

Created:
August 20, 2023
Modified:
October 24, 2023