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Theory-driven or Process-driven Prediction? : Epistemological Challenges of Big Data Analytics

机译:理论驱动还是过程驱动的预测? :大数据分析的认识论挑战

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摘要

Most scientists are accustomed to make predictions based on consolidated and accepted theories pertaining to the domain of prediction. However, nowadays big data analytics (BDA) is able to deliver predictions based on executing a sequence of data processing while seemingly abstaining from being theoretically informed about the subject matter. This paper discusses how to deal with the shift from theory-driven to process-driven prediction through analyzing the BDA steps and identifying the epistemological challenges and various needs of theoretically informing BDA throughout data acquisition, preprocessing, analysis, and interpretation. We suggest a theory-driven guidance for the BDA process including acquisition, pre-processing, analytics and interpretation. That is, we propose—in association with these BDA process steps—a lightweight theory-driven approach in order to safeguard the analytics process from epistemological pitfalls. This study may serve as a guideline for researchers and practitioners to consider while conducting future big data analytics.
机译:大多数科学家习惯于根据与预测领域相关的公认理论进行预测。但是,如今,大数据分析(BDA)能够基于执行一系列数据处理来提供预测,而似乎在理论上不了解该主题。本文讨论了如何通过分析BDA步骤并确定在数据采集,预处理,分析和解释过程中从理论上告知BDA的认识论挑战和各种需求,来应对从理论驱动的预测向过程驱动的预测的转变。我们建议对BDA流程进行理论驱动的指导,包括获取,预处理,分析和解释。也就是说,我们结合这些BDA流程步骤,提出了一种轻量级理论驱动的方法,以保护分析过程免受认识论陷阱的影响。这项研究可以作为研究人员和从业人员在进行未来大数据分析时考虑的指南。

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