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Semisupervised Clustering by Iterative Partition and Regression with Neuroscience Applications

机译:通过神经科学应用程序的迭代分配和回归进行半监督聚类

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摘要

Regression clustering is a mixture of unsupervised and supervised statistical learning and data mining method which is found in a wide range of applications including artificial intelligence and neuroscience. It performs unsupervised learning when it clusters the data according to their respective unobserved regression hyperplanes. The method also performs supervised learning when it fits regression hyperplanes to the corresponding data clusters. Applying regression clustering in practice requires means of determining the underlying number of clusters in the data, finding the cluster label of each data point, and estimating the regression coefficients of the model. In this paper, we review the estimation and selection issues in regression clustering with regard to the least squares and robust statistical methods. We also provide a model selection based technique to determine the number of regression clusters underlying the data. We further develop a computing procedure for regression clustering estimation and selection. Finally, simulation studies are presented for assessing the procedure, together with analyzing a real data set on RGB cell marking in neuroscience to illustrate and interpret the method.
机译:回归聚类是无监督的和有监督的统计学习与数据挖掘方法的混合,可在包括人工智能和神经科学在内的广泛应用中找到。当它根据数据各自的未观察到的回归超平面对数据进行聚类时,它将执行无监督学习。当该方法将回归超平面拟合到相应的数据集群时,它还会执行监督学习。在实践中应用回归聚类需要以下方法:确定数据中聚类的基础数量,找到每个数据点的聚类标签以及估算模型的回归系数。在本文中,我们回顾了最小二乘和稳健统计方法在回归聚类中的估计和选择问题。我们还提供了一种基于模型选择的技术来确定数据背后的回归簇的数量。我们进一步开发了用于回归聚类估计和选择的计算程序。最后,提供了用于评估程序的仿真研究,并分析了神经科学中有关RGB细胞标记的真实数据集,以说明和解释该方法。

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