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Using decision tree modelling to support Peircian abduction in IS research: a systematic approach for generating and evaluating hypotheses for systematic theory development

机译:使用决策树建模来支持IS研究中Peircian绑架:一种用于生成和评估假设以进行系统理论发展的系统方法

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摘要

Since their early development, computers have had a profound impact on how we conduct modern scientific research. The disciplines of mathematics and operations research are perhaps the earliest to be dramatically transformed by information technology. However, over the years, computing technologies have provided many new opportunities for information processing, problem solving and knowledge creation. In this paper, we explore the potential of data mining tech-nology for providing support for systematic theory testing based on Peirce's theory of abduction. We propose a data mining approach to abducting and evaluating hypotheses based on Peirce's scientific method. We believe that this approach could assist scientist to more efficiently explore alternative hypotheses for existing theories. We demonstrate our approach with empirical observations collected using instruments from the well known user performance area of information systems research
机译:自从早期发展以来,计算机对我们进行现代科学研究的方式产生了深远的影响。数学和运筹学的学科也许是最早由信息技术极大地改变的学科。然而,多年来,计算技术为信息处理,问题解决和知识创造提供了许多新的机会。在本文中,我们探讨了数据挖掘技术在基于Peirce绑架理论的系统理论测试中提供支持的潜力。我们提出了一种基于Peirce科学方法的数据挖掘方法,用于绑架和评估假设。我们认为,这种方法可以帮助科学家更有效地探索现有理论的替代假设。我们使用从信息系统研究的著名用户性能领域收集的经验观察数据来证明我们的方法

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