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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Bagging Constraint Score for feature selection with pairwise constraints
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Bagging Constraint Score for feature selection with pairwise constraints

机译:带成对约束的特征选择的袋装约束得分

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摘要

Constraint Score is a recently proposed method for feature selection by using pairwise constraints which specify whether a pair of instances belongs to the same class or not. It has been shown that the Constraint Score, with only a small amount of pairwise constraints, achieves comparable performance to those fully supervised feature selection methods such as Fisher Score. However, one major disadvantage of the Constraint Score is that its performance is dependent on a good selection on the composition and cardinality of constraint set, which is very challenging in practice. In this work, we address the problem by importing Bagging into Constraint Score and a new method called Bagging Constraint Score (BCS) is proposed. Instead of seeking one appropriate constraint set for single Constraint Score, in BCS we perform multiple Constraint Score, each of which uses a bootstrapped subset of original given constraint set. Diversity analysis on individuals of ensemble shows that resampling pairwise constraints is helpful for simultaneously improving accuracy and diversity of individuals. We conduct extensive experiments on a series of high-dimensional datasets from UCI repository and gene databases, and the experimental results validate the effectiveness of the proposed method.
机译:约束评分是最近提出的一种通过使用成对约束来选择特征的方法,该成对约束指定一对实例是否属于同一类。结果表明,仅具有少量成对约束的约束得分与那些完全受监督的特征选择方法(如Fisher得分)相比,具有可比的性能。但是,约束评分的一个主要缺点是其性能取决于对约束集的组成和基数的良好选择,这在实践中非常具有挑战性。在这项工作中,我们通过将Bagging导入约束分数来解决该问题,并提出了一种称为Bagging约束分数(BCS)的新方法。在BCS中,我们没有为单个约束分数寻找一个合适的约束集合,而是执行多个约束分数,每个约束分数都使用原始给定约束集合的自举子集。对合奏个体的多样性分析表明,对成对约束进行重采样有助于同时提高个体的准确性和多样性。我们对UCI资料库和基因数据库中的一系列高维数据集进行了广泛的实验,实验结果验证了该方法的有效性。

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