关于知识结构与潜在类模型关系的注解

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
A. Ünlü
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引用次数: 13

摘要

Schrepp(2005)指出并建立了知识空间理论(KST)与潜在类分析(LCA)之间的联系,提出了一种从数据构建知识结构的方法。生成候选知识结构,将其视为受限潜在类模型并拟合到数据中,并使用BIC从候选知识结构中进行选择。本文添加了关于KST和LCA之间关系的附加信息。它给出了文献和概率模型的更全面的概述,是在KST和LCA的接口。还比较了KST和LCA在各自领域应用的参数估计和模型测试方法。本文最后概述了与KST相关的出版物,讨论了概述的联系,并对KST与其他潜在变量建模方法的联系可能引起的未来研究提出了进一步的评论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Note on the Connection Between Knowledge Structures and Latent Class Models
Schrepp (2005) points out and builds upon the connection between knowledge space theory (KST) and latent class analysis (LCA) to propose a method for constructing knowledge structures from data. Candidate knowledge structures are generated, they are considered as restricted latent class models and fitted to the data, and the BIC is used to choose among them. This article adds additional information about the relationship between KST and LCA. It gives a more comprehensive overview of the literature and the probabilistic models that are at the interface of KST and LCA. KST and LCA are also compared with regard to parameter estimation and model testing methodologies applied in their fields. This article concludes with an overview of KST-related publications addressing the outlined connection and presents further remarks about possible future research arising from a connection of KST to other latent variable modeling approaches.
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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