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UNBALANCED SAMPLE CLASSIFICATION METHOD AND APPARATUS

机译:不平衡样本分类方法和装置

摘要

The present disclosure provides an unbalanced sample classification method and an unbalanced sample classification apparatus. The method includes: obtaining unbalanced sample data; calculating a sample contribution rate based on the sample data and the characteristic data; filtering out a part of the sample data within a preset sample contribution threshold according to the sample contribution rate to determine as target sample data; and inputting the target sample data into a sample classification model to calculate a sample classification result through a classification algorithm. By using two variables of the characteristic value contribution rate and the characteristic contribution rate, the characteristics and samples with low contribution rate for classification are eliminated to effectively reducing the processing of unbalanced sample data, and a machine learning classification algorithm can be used on this basis to adopt the effective characteristics or samples to achieve efficient classification.
机译:本公开提供了一种不平衡的样本分类方法和不平衡样本分类装置。该方法包括:获得不平衡的样本数据;基于样本数据和特征数据计算示例贡献率;根据样品贡献率滤除预设样品贡献阈值内的样本数据的一部分以确定为目标样本数据;并将目标样本数据输入到样本分类模型中,以通过分类算法计算样本分类结果。通过使用特征值贡献率的两个变量和特征贡献率,消除了分类贡献率低的特性和样本,以有效地减少了不平衡样本数据的处理,并且可以在此基础上使用机器学习分类算法采用有效的特征或样品来实现有效的分类。

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