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Analysing a quality-of-life survey by using a coclustering model for ordinal data and some dynamic implications

机译:通过使用序数数据的共聚模型分析生活质量调查和一些动态含义

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摘要

The data set that motivated this work is a psychological survey on women affected by a breast tumour. Patients replied at different stages of their treatment to questionnaires with answers on an ordinal scale. The questions relate to aspects of their life referred to as 'dimensions'. To assist psychologists in analysing the results, it is useful to highlight the structure of the data set. The clustering method achieves this by creating groups of individuals that are depicted by a representative of the group. From a psychological position, it is also useful to observe how questions may be clustered. The simultaneous clustering of both patients and questions is called 'coclustering'. However, placing questions in the same group when they are not related to the same dimension does not make sense from a psychological perspective. Therefore, constrained coclustering was performed to prevent questions of different dimensions from being placed in the same column cluster. The evolution of coclusters over time was then investigated. The method uses a constrained latent block model embedding a probability distribution for ordinal data. Parameter estimation relies on a stochastic expectation-maximization algorithm associated with a Gibbs sampler, and the integrated completed likelihood-Bayesian information criterion is used to select the number of coclusters.
机译:激发这项工作的数据集是对受乳腺肿瘤影响的妇女的心理调查。患者在治疗的不同阶段回复了问卷,并按顺序进行了回答。这些问题涉及他们生活中被称为“维度”的各个方面。为了帮助心理学家分析结果,突出显示数据集的结构很有用。聚类方法通过创建由该组代表描绘的个人组来实现此目的。从心理角度来看,观察问题如何聚集也很有用。患者和问题的同时聚类称为“聚类”。但是,从心理学的角度来看,将问题与相同维度无关时放在同一组中是没有意义的。因此,执行约束共聚以防止将不同维度的问题放置在同一列集群中。然后研究了团簇随时间的演变。该方法使用嵌入有序数据的概率分布的约束潜在块模型。参数估计依赖于与Gibbs采样器关联的随机期望最大化算法,并且使用集成的完整似然贝叶斯信息准则来选择coclusters的数量。

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