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Convergence Analysis of the ProbAbilistic Gradient Estimator Algorithm for Weakly Convex Finite-Sum Optimization
arXiv Math
CC BY
이 매체는 공공·자유 라이선스로 본문을 직접 표시합니다.Abstract
The ProbAbilistic Gradient Estimator algorithm (PAGE), a stochastic algorithm introduced by Li et al. in 2021, was designed to find stationary points for the average of smooth nonconvex functions.
In this work, we study PAGE within the broad framework of $\tau$-weakly convex functions, providing a continuous interpolation between the general nonconvex $L$-smooth regime ($\tau=L$) and the convex regime ($\tau=0$).
We establish new convergence rates for PAGE, showing that its complexity improves as $\tau$ decreases.
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