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引用次数: 4

摘要

本文回顾了关于明确地解决归纳偏置选择的系统的文献,并介绍了一个将归纳偏置选择作为状态空间搜索的模型,该模型在一个以偏置为状态的试验台系统中实例化,并使用偏置变换算子从一个状态移动到另一个状态。测试平台允许系统开发人员通过添加适当的操作符来处理偏置空间中的不同维度和偏置选择的不同策略。在这个试验台上开发了爬坡系统,作为一种基于手动偏置选择策略的偏置选择策略;系统的性能在来自UCI存储库的几个域和一个合成域上进行测量。最后,对系统性能进行了实验总结。
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ClimBS: searching the bias space
The literature on systems that address the selection of inductive bias explicitly is reviewed and a model of inductive bias selection as state space search, which is instantiated in a testbed system with biases as states and bias transformation operators used to move from state to state, is introduced. The testbed allows a system developer to address different dimensions in the bias space and different policies for bias selection by adding the appropriate operators. The ClimBS system has been developed in this testbed as one policy for bias selection modeled after manual bias selection strategies; the system's performance is measured on several domains from the UCI repository and on a synthetic domain. A summary of experiments designed to analyze empirically the system's performance is provided.<>
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