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Bofan Wang

1 accepted papers

2026

Adaptive gradient descent on Riemannian manifolds and its applications to Gaussian variational inference

ICLR 2026poster

We propose RAdaGD, a novel family of adaptive gradient descent methods on general Riemannian manifolds. RAdaGD adapts the step size parameter without line search, and includes instances that achieve a non-ergodic convergence guarantee, $f(x_k) - f(x_\star) \le \mathcal{O}(1/k)$, under local geodesic…

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