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📄 ResearchAugust 19, 2026

Many Optimizers But Only One Training Path: Repeated Resampling for Adaptive Optimizer Selection

An optimizer is usually chosen before training a deep neural network and then kept fixed. Treating optimizer choice as a hyperparameter could boost performance, but it requires several complete training runs and discards all but the winner. Repeated Optimizer Resampling (ROR) instead searches during...

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Source

http://arxiv.org/abs/2608.18810v1