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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Exploiting the relationships among several binary classifiers via data transformation
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Exploiting the relationships among several binary classifiers via data transformation

机译:通过数据转换利用几个二进制分类器之间的关系

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摘要

The structural resemblance among several existing classifiers has motivated us to investigate their underlying relationships. By exploring into the mapping solutions of these classifiers, we found that they can be linked by simple feature data scaling. In other words, the key to these relationships lies upon how the replica of feature data are being scaled. This finding leads us directly to an exploration of novel classifiers beyond existing settings. Based on an extensive empirical evaluation, we show that the proposed formulation facilitates a tuning capability beyond existing settings for classifier generalization.
机译:现有几个分类器之间的结构相似性促使我们研究它们之间的潜在关系。通过研究这些分类器的映射解决方案,我们发现它们可以通过简单的特征数据缩放进行链接。换句话说,这些关系的关键在于如何缩放要素数据的副本。这一发现使我们直接探索了超越现有设置的新型分类器。基于广泛的经验评估,我们表明,提出的公式可促进分类器泛化的现有设置以外的调整能力。

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