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Trialstreamer: a living, automatically updated database of clinical trial reports

Trialstreamer: a living, automatically updated database of clinical trial reports

来源:medRxiv_logomedRxiv
英文摘要

ABSTRACT ObjectiveRandomized controlled trials (RCTs) are the gold standard method for evaluating whether a treatment works in healthcare, but can be difficult to find and make use of. We describe the development and evaluation of a system to automatically find and categorize all new RCT reports. Materials and MethodsTrialstreamer, continuously monitors PubMed and the WHO International Clinical Trials Registry Platform (ICTRP), looking for new RCTs in humans using a validated classifier. We combine machine learning and rule-based methods to extract information from the RCT abstracts, including free-text descriptions of trial populations, interventions and outcomes (the ‘PICO’) and map these snippets to normalised MeSH vocabulary terms. We additionally identify sample sizes, predict the risk of bias, and extract text conveying key findings. We store all extracted data in a database which we make freely available for download, and via a search portal, which allows users to enter structured clinical queries. Results are ranked automatically to prioritize larger and higher-quality studies. ResultsAs of May 2020, we have indexed 669,895 publications of RCTs, of which 18,485 were published in the first four months of 2020 (144/day). We additionally include 303,319 trial registrations from ICTRP. The median trial sample size in the RCTs was 66. ConclusionsWe present an automated system for finding and categorising RCTs. This yields a novel resource: A database of structured information automatically extracted for all published RCTs in humans. We make daily updates of this database available on our website (https://trialstreamer.robotreviewer.net).

Nye Benjamin、Marshall Rachel、Nenkova Ani、Wallace Byron C、Maclean Rory、Noel-Storr Anna、Soboczenski Frank、Kuiper Jo?l、Marshall Iain J、Thomas James

Khoury College of Computer Sciences, Northeastern UniversityCochrane Editorial UnitComputer and Information Science, University of PennsylvaniaKhoury College of Computer Sciences, Northeastern UniversitySchool of Population Health and Environmental Sciences, King?ˉs College LondonCochrane Dementia group, University of OxfordSchool of Population Health and Environmental Sciences, King?ˉs College LondonVortext SystemsSchool of Population Health and Environmental Sciences, King?ˉs College LondonEPPI-Centre, UCL

10.1101/2020.05.15.20103044

医学研究方法自动化技术、自动化技术设备计算技术、计算机技术

Nye Benjamin,Marshall Rachel,Nenkova Ani,Wallace Byron C,Maclean Rory,Noel-Storr Anna,Soboczenski Frank,Kuiper Jo?l,Marshall Iain J,Thomas James.Trialstreamer: a living, automatically updated database of clinical trial reports[EB/OL].(2025-03-28)[2025-05-02].https://www.medrxiv.org/content/10.1101/2020.05.15.20103044.点此复制

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