Near-Optimal Quantum Algorithm for Minimizing the Maximal Loss
Hao Wang, Chenyi Zhang, Tongyang Li
摘要
The problem of minimizing the maximum of convex, Lipschitz functions plays significant roles in optimization and machine learning. It has a series of results, with the most recent one requiring queries to a first-order oracle to compute an -suboptimal point. On the other hand, quantum algorithms for optimization are rapidly advancing with speedups shown on many important optimization problems. In this paper, we conduct a systematic study for quantum algorithms and lower bounds for minimizing the maximum of convex, Lipschitz functions. On one hand, we develop quantum algorithms with an improved complexity bound of . On the other hand, we prove that quantum algorithms must take queries to a first order quantum oracle, showing that our dependence on is optimal up to poly-logarithmic factors.
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