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Meta-algorithm to Choose a Good On-Line Prediction (Short Paper)

机译:元算法选择良好的在线预测(短文)

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Numerous problems require an on-line treatment. The variation of the problem instance makes it harder to solve: an algorithm used may be very efficient for a long period but suddenly its performance deteriorates due to a change in the environment. It could be judicious to switch to another algorithm in order to adapt to the environment changes. In this paper, we focus on the prediction on-the-fly. We have several on-line prediction algorithms at our disposal, each of them may have a different behaviour than the others depending on the situation. First, we address a meta-algorithm named SEA developed for experts algorithms. Next, we propose a modified version of it to improve its performance in the context of the on-line prediction. We confirm the efficiency gain we obtained through this modification in experimental manner.
机译:许多问题需要在线治疗。问题实例的变化使得难以解决:使用的算法可能非常高效,但由于环境的变化,其性能突然恶化。它可能是明智的,切换到另一种算法,以便适应环境变化。在本文中,我们专注于即时预测。我们在我们的处置有几种在线预测算法,每个人可能具有比其他方式不同的行为。首先,我们地址为专家算法开发的名为Sea的元算法。接下来,我们提出了一种修改版本,可以在线预测的上下文中提高其性能。我们以实验方式确认通过该修改获得的效率增益。

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