Quantum Algorithm for Online Exp-concave Optimization
Jianhao He, Chengchang Liu, Xutong Liu, Lvzhou Li, John C. S. Lui
2024年份
4被引次数
3顶会引用
摘要
We explore whether quantum advantages can be found for the zeroth-order feedback online exp-concave optimization problem, which is also known as bandit exp-concave optimization with multi-point feedback. We present quantum online quasi-Newton methods to tackle the problem and show that there exists quantum advantages for such problems. Our method approximates the Hessian by quantum estimated inexact gradient and can achieve regret with queries at each round, where is the dimension of the decision set and is the total decision rounds. Such regret improves the optimal classical algorithm by a factor of .
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引用它的顶会 Paper3
- Quantum Algorithms for Non-smooth Non-convex OptimizationChengchang Liu, Chaowen Guan, Jianhao He, John C. S. LuiNeurIPS 2024 · 被引用 10 次
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- Quantum Algorithms for Finite-horizon Markov Decision ProcessesBin Luo, Yuwen Huang, Jonathan Allcock, Xiaojun Lin 等ICML 2025
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