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The design of decision trees in the framework of granular data and their application to software quality models

机译:粒度数据框架中决策树的设计及其在软件质量模型中的应用

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摘要

In this study, we discuss the role of fuzzy sets regarded as a comprehensive algorithmic vehicle supporting the design of decision trees. Fuzzy sets help convert continuous attributes into discrete landmarks -- fuzzy sets are afterwards exploited as the basic constricts in the optimization of a decision tree. The concept of fuzzy granulation realized via context-based clustering is aimed at the quantization (discretization) process. In contrast to so-called fuzzy decision trees, we enhance the development methodology of binary (Boolean) decision trees rather than generalizing them to the form of fuzzy constructs. Afterwards we solve the problem of quantifying complexity of software systems in the framework of decision trees. The advantages of this approach to quantitative software engineering are discussed in detail. Numerical examples are provided to illustrate the design methodology and provide a better insight into the algorithmic details as well as limitations of the decision trees approach.
机译:在这项研究中,我们讨论了模糊集的作用,模糊集被视为支持决策树设计的综合算法工具。模糊集有助于将连续的属性转换为离散的界标-之后,模糊集被用作决策树优化中的基本约束。通过基于上下文的聚类实现的模糊造粒概念旨在量化(离散化)过程。与所谓的模糊决策树相反,我们增强了二进制(布尔)决策树的开发方法,而不是将其概括为模糊构造的形式。之后我们解决了在决策树框架中量化软件系统复杂性的问题。详细讨论了这种方法用于定量软件工程的优势。提供了数值示例来说明设计方法,并提供对算法细节以及决策树方法的局限性的更好了解。

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