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Data Reduction Algorithm for Machine Learningand Data Mining

机译:机器学习和数据挖掘的数据约简算法

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摘要

The paper proposes an approach to data reduction. The data reduction procedures are of vital importance to machine learning and data mining. To solve the data reduction problems the agent-based population learning algorithm was used. The proposed approach has been used to reduce the original dataset in two dimensions including selection of reference instances and removal of irrelevant attributes. To validate the approach the computational experiment has been carried out. Presentation and discussion of experiment results conclude the paper.
机译:本文提出了一种数据缩减方法。数据缩减程序对于机器学习和数据挖掘至关重要。为了解决数据约简问题,使用了基于代理的人口学习算法。所提出的方法已被用于在两个维度上减少原始数据集,包括选择参考实例和删除不相关的属性。为了验证该方法,已经进行了计算实验。实验结果的介绍和讨论结束了本文。

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