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Making progress with the automation of systematic reviews: principles of the International Collaboration for the Automation of Systematic Reviews (ICASR)

机译:在系统审核自动化方面取得进步:系统审核自动化国际合作组织(ICASR)的原则

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Systematic reviews (SR) are vital to health care, but have become complicated and time-consuming, due to the rapid expansion of evidence to be synthesised. Fortunately, many tasks of systematic reviews have the potential to be automated or may be assisted by automation. Recent advances in natural language processing, text mining and machine learning have produced new algorithms that can accurately mimic human endeavour in systematic review activity, faster and more cheaply. Automation tools need to be able to work together, to exchange data and results. Therefore, we initiated the International Collaboration for the Automation of Systematic Reviews (ICASR), to successfully put all the parts of automation of systematic review production together. The first meeting was held in Vienna in October 2015. We established a set of principles to enable tools to be developed and integrated into toolkits. This paper sets out the principles devised at that meeting, which cover the need for improvement in efficiency of SR tasks, automation across the spectrum of SR tasks, continuous improvement, adherence to high quality standards, flexibility of use and combining components, the need for a collaboration and varied skills, the desire for open source, shared code and evaluation, and a requirement for replicability through rigorous and open evaluation. Automation has a great potential to improve the speed of systematic reviews. Considerable work is already being done on many of the steps involved in a review. The ‘Vienna Principles’ set out in this paper aim to guide a more coordinated effort which will allow the integration of work by separate teams and build on the experience, code and evaluations done by the many teams working across the globe.
机译:系统评价(SR)对医疗保健至关重要,但由于要综合的证据迅速扩展,因此变得复杂且耗时。幸运的是,系统评价的许多任务都有可能被自动化,或者可以由自动化来辅助。自然语言处理,文本挖掘和机器学习方面的最新进展产生了新算法,该算法可以准确地模仿人类在系统评价活动中的努力,而且速度更快且成本更低。自动化工具需要能够协同工作,以交换数据和结果。因此,我们发起了系统评价自动化国际合作组织(ICASR),以成功地将系统评价生产自动化的所有部分整合在一起。第一次会议于2015年10月在维也纳举行。我们制定了一套原则,以使工具能够开发并集成到工具箱中。本文阐述了在这次会议上设计的原则,其中包括以下方面的需求:提高SR任务的效率,跨SR任务的自动化,持续改进,遵守高质量标准,使用和组合组件的灵活性,协作和各种技能,对开源,共享代码和评估的渴望,以及对严格和开放评估的可复制性的要求。自动化具有极大的潜力来提高系统评价的速度。审查中涉及的许多步骤已经进行了大量工作。本文提出的“维也纳原则”旨在指导更加协调的工作,这将使各个团队的工作得以整合,并在全球范围内众多团队所做的经验,代码和评估的基础上进行。

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