Online Prediction with Limited Selectivity
Licheng Liu, Mingda Qiao
摘要
Selective prediction [Dru13, QV19] models the scenario where a forecaster freely decides on the prediction window that their forecast spans. Many data statistics can be predicted to a non-trivial error rate without any distributional assumptions or expert advice, yet these results rely on that the forecaster may predict at any time. We introduce a model of Prediction with Limited Selectivity (PLS) where the forecaster can start the prediction only on a subset of the time horizon. We study the optimal prediction error both on an instance-by-instance basis and via an average-case analysis. We introduce a complexity measure that gives instance-dependent bounds on the optimal error. For a randomly-generated PLS instance, these bounds match with high probability.
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- Adversarial Resilience in Sequential Prediction via AbstentionSurbhi Goel, Steve Hanneke, Shay Moran, Abhishek ShettyNeurIPS 2023 · 被引用 17 次
- Online Selective Classification with Limited FeedbackAditya Gangrade, Anil Kag, Ashok Cutkosky, Venkatesh SaligramaNeurIPS 2021 · 被引用 12 次
- Bandits with Abstention under Expert AdviceStephen Pasteris, Alberto Rumi, Maximilian Thiessen, Shota Saito 等NeurIPS 2024 · 被引用 4 次
- Worst-Case Analysis for Randomly Collected DataJustin Y. Chen, Gregory Valiant, Paul ValiantNeurIPS 2020 · 被引用 4 次
- Faster Algorithms and Constant Lower Bounds for the Worst-Case Expected ErrorJonah Brown-CohenNeurIPS 2021 · 被引用 1 次
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