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THE ADVICEPTRON: GIVING ADVICE TO THE PERCEPTRON

机译:建议:向Perceptron提供建议

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We propose a novel approach for incorporating prior knowledge into the perceptron. The goal is to update the hypothesis taking into account both label feedback and prior knowledge, in the form of soft polyhedral advice, so as to make increasingly accurate predictions on subsequent rounds. Advice helps speed up and bias learning so that good generalization can be obtained with less data. The updates to the hypothesis use a hybrid loss that takes into account the margins of both the hypothesis and advice on the current point. Analysis of the algorithm via mistake bounds and experimental results demonstrate that advice can speed up learning.
机译:我们提出了一种将事先知识纳入Perceptron的新方法。目标是通过软化多面体建议的形式,以考虑标签反馈和先验知识的标志,以便在随后的回合方面进行越来越准确的预测。建议有助于加速和偏置学习,以便使用更少的数据获得良好的泛化。假设的更新使用混合损失,以考虑到当前点的假设和建议的边缘。通过错误界限分析算法和实验结果表明,建议可以加速学习。

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