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cPSCLASS: A CONSTRUCTIVE PARTICLE SWARM CLASSIFIER

机译:cPSCLASS:一种构造性粒子群分类器

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摘要

The data classification task is one of the main tasks within the knowledge discovering from databases field. Its goal is to allow the correct classification of new objects (records from a database), unknown to the classifier, based upon the extraction of knowledge from objects whose classes are known a priori. The known data can be used to generate a classification model, or simply to infer the class of new objects from those whose classes are known. This paper presents a proposal for a classification algorithm, called Constructive Particle Swarm Classifier (cPSClass), which uses mechanisms from the Particles Swarm Clustering algorithm and Artificial Immune Systems to determine dynamically the number of prototypes from a database and use them to predict the correct class to which a new input object should belong. For performance evaluation the cPSClass was applied to several datasets from the literature and its performance was compared with that of its predecessor version, thenonconstructive Particle Swarm Classifier, and also to some classic algorithms from the literature.
机译:数据分类任务是从数据库领域发现知识的主要任务之一。其目标是基于从先验已知类别的对象中提取知识,从而对分类器未知的新对象(数据库中的记录)进行正确分类。已知数据可用于生成分类模型,或者简单地从已知类别的对象中推断出新对象的类别。本文提出了一种称为构造性粒子群分类器(cPSClass)的分类算法的建议,该算法使用粒子群聚类算法和人工免疫系统中的机制动态确定数据库中原型的数量,并使用它们来预测正确的类别新输入对象应属于的对象。为了进行性能评估,将cPSClass应用于文献中的多个数据集,并将其性能与其先前版本的非构造粒子群分类器以及文献中的一些经典算法进行了比较。

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