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首页> 外文期刊>International Journal of Intelligent Systems and Applications >Hierarchical Clustering Algorithm based on Attribute Dependency for Attention Deficit Hyperactive Disorder
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Hierarchical Clustering Algorithm based on Attribute Dependency for Attention Deficit Hyperactive Disorder

机译:基于属性相关性的注意力缺陷多动障碍分层聚类算法

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摘要

Attention Deficit Hyperactive Disorder (ADHD) is a disruptive neurobehavioral disorder characterized by abnormal behavioral patterns in attention, perusing activity, acting impulsively and combined types. It is predominant among school going children and it is tricky to differentiate between an active and an ADHD child. Misdiagnosis and undiagnosed cases are very common. Behavior patterns are identified by the mentors in the academic environment who lack skills in screening those kids. Hence an unsupervised learning algorithm can cluster the behavioral patterns of children at school for diagnosis of ADHD. In this paper, we propose a hierarchical clustering algorithm to partition the dataset based on attribute dependency (HCAD). HCAD forms clusters of data based on the high dependent attributes and their equivalence relation. It is capable of handling large volumes of data with reasonably faster clustering than most of the existing algorithms. It can work on both labeled and unlabelled data sets. Experimental results reveal that this algorithm has higher accuracy in comparison to other algorithms. HCAD achieves 97% of cluster purity in diagnosing ADHD. Empirical analysis of application of HCAD on different data sets from UCI repository is provided.
机译:注意缺陷多动障碍(ADHD)是一种破坏性神经行为障碍,其特征在于注意力,活动,冲动和组合类型的异常行为模式。它在上学的儿童中占主导地位,并且区分活跃儿童和多动症儿童很难。误诊和未确诊病例很常见。行为模式由学术环境中缺乏筛选这些孩子技能的指导者确定。因此,无监督学习算法可以聚类儿童在学校的行为模式,以诊断多动症。在本文中,我们提出了一种基于属性依赖(HCAD)的分层聚类算法对数据集进行分区。 HCAD基于高依赖性属性及其等效关系形成数据集群。与大多数现有算法相比,它能够以相当快的群集处理大量数据。它可以在标记和未标记的数据集上工作。实验结果表明,与其他算法相比,该算法具有更高的精度。在诊断多动症时,HCAD可达到97%的簇纯度。提供了对HCAD在UCI存储库中不同数据集上应用的实证分析。

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