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首页> 外文期刊>BMJ Open >Real-world evidence for postgraduate students and professionals in healthcare: protocol for the design of a blended massive open online course
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Real-world evidence for postgraduate students and professionals in healthcare: protocol for the design of a blended massive open online course

机译:研究生和医疗保健专业人士的真实证据:大规模在线混合课程设计协议

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Introduction There is an increased need for improving data science skills of healthcare professionals. Massive open online courses (MOOCs) provide the opportunity to train professionals in a sustainable and cost-effective way. We present a protocol for the design and development of a blended MOOC on real-world evidence (RWE) aimed at improving RWE data science skills. The primary objective is to provide the opportunity to understand the fundamentals of RWE data science and to implement methods for analysing RWD. The blended format of MOOC will combine the expertise of healthcare professionals joining the course online with the on-campus students. We expect learners to take skills taught in MOOC and use them to seek new employment or to explore entpreneurship activities in these domains.Methods and analysis The proposed MOOC will be developed through a blended format using the Analysis, Design, Development, Implementation and Evaluation instructional design model and following the connectivist–heutagogical learning theories (as a hybrid MOOC). The target learners will include postgraduate students and professionals working in the health-related roles with interest in data science. An evaluation of MOOC will be performed to assess MOOCs success in meeting its intended outcomes and to improve future iterations of the course.Ethics and dissemination The education course design protocol was approved by EIT Health (grant 18654) as part of the EIT Health CAMPUS Deferred Call for Innovative Education 2018. Results will be published in a peer-reviewed journal.
机译:简介越来越需要提高医疗保健专业人员的数据科学技能。大规模的在线公开课程(MOOC)提供了以可持续且具有成本效益的方式培训专业人员的机会。我们提出了一种基于现实世界证据(RWE)的混合MOOC设计和开发协议,旨在提高RWE数据科学技能。主要目的是提供机会了解RWE数据科学的基础知识,并实施分析RWD的方法。 MOOC的混合格式将结合在线参加课程的医疗保健专业人员和在校学生的专业知识。我们希望学习者采用MOOC教授的技能,并利用它们寻求新的就业机会或探索这些领域的创业活动。方法和分析拟议的MOOC将通过使用``分析,设计,开发,实施和评估''指导的混合格式来开发设计模型,并遵循连接主义-语法学习理论(作为混合式MOOC)。目标学习者将包括从事与健康相关的工作且对数据科学感兴趣的研究生和专业人员。将对MOOC进行评估,以评估MOOC在实现预期结果方面的成功并改善课程的未来迭代。道德与传播教育课程设计协议已由EIT Health(授权18654)批准为EIT Health CAMPUS Deferred的一部分。呼吁创新教育2018。结果将发表在同行评审的期刊上。

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