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A formalisation and prototype implementation of argumentation for statistical model selection

机译:统计模型选择的论证的形式化和原型实现

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The task of data collection is becoming routine in many disciplines and this results in increased availability of data. This routinely collected data provides a valuable opportunity for analysis with a view to support evidence based decision making. In order to confidently leverage the data in support of decision making the most appropriate statistical method needs to be selected, and this can be difficult for an end user not trained in statistics. This paper outlines an application of argumentation to support the analysis of clinical data, that uses Extended Argumentation Frameworks in order to reason with the meta-level arguments derived from preference contexts relevant to the data and the analysis objective of the end user. We outline a formalisation of the argument scheme for statistical model selection , its critical questions and the structure of the knowledge base required to support the instantiation of the arguments and meta-level arguments through the use of Z notation. This paper also describes the prototype implementation of argumentation for statistical model selection based on the Z specification outlined herein.
机译:数据收集的任务在许多学科中已成为日常工作,这导致数据可用性提高。这些常规收集的数据为分析提供了宝贵的机会,以支持基于证据的决策。为了放心地利用数据来支持决策,需要选择最合适的统计方法,这对于未经统计培训的最终用户可能很难。本文概述了支持临床数据分析的论证应用程序,该应用程序使用扩展论证框架,以便根据从与数据相关的偏好上下文和最终用户的分析目标得出的元级别论据进行推理。我们概述了用于统计模型选择的论证方案的形式化,其关键问题以及通过使用Z表示法支持论证和元级论证实例化所需的知识库结构。本文还介绍了基于此处概述的Z规范用于统计模型选择的论证的原型实现。

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