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Online Algorithms for Rent-or-Buy with Expert Advice

机译:在线算法出租或购买专家建议

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摘要

We study the use of predictions by multiple experts (such as machine learning algorithms) to improve the performance of online algorithms. In particular, we consider the classical rent-or-buy problem (also called ski rental), and obtain algorithms that provably improve their performance over the adversarial scenario by using these predictions. We also prove matching lower bounds to show that our algorithms are the best possible, and perform experiments to empirically validate their performance in practice.
机译:我们研究了多个专家(如机器学习算法)的预测来改善在线算法的性能。特别是,我们考虑古典租金或购买问题(也称为滑雪租赁),并通过使用这些预测,获取可从对抗对策方案上的算法提高其性能的算法。我们还证明了匹配的下限,以表明我们的算法是最佳的,并且执行实验以在实践中经验验证其性能。

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