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工作时间之外:利用大规模寻呼数据监测住院医师工作量

Beyond duty hours: leveraging large-scale paging data to monitor resident workload.

作者信息

Kaushal Amit, Katznelson Laurence, Harrington Robert A

机构信息

1Department of Medicine, Veterans Affairs Palo Alto Health Care System, Palo Alto, CA 94304 USA.

2Department of Neurosurgery, Stanford School of Medicine, Stanford University, Stanford, CA 94305 USA.

出版信息

NPJ Digit Med. 2019 Sep 9;2:87. doi: 10.1038/s41746-019-0165-2. eCollection 2019.

Abstract

Monitoring and managing resident workload is a cornerstone of policy in graduate medical education, and the duty hours metric is the backbone of current regulations. While the duty hours metric measures hours worked, it does not capture differences in intensity of work completed during those hours, which may independently contribute to fatigue and burnout. Few such metrics exist. Digital data streams generated during the usual course of hospital operations can serve as a novel source of insight into workload intensity by providing high-resolution, minute-by-minute data at the individual level; however, study and use of these data streams for workload monitoring has been limited to date. Paging data is one such data stream. In this work, we analyze over 500,000 pages-two full years of pages in an academic internal medicine residency program-to characterize paging patterns among housestaff. We demonstrate technical feasibility, validity, and utility of paging burden as a metric to provide insight into resident workload beyond duty hours alone, and illustrate a general framework for evaluation and incorporation of novel digital data streams into resident workload monitoring.

摘要

监测和管理住院医师工作量是毕业后医学教育政策的基石,而值班时长指标是现行规定的核心。虽然值班时长指标衡量的是工作时间,但它并未体现出这些时间内完成的工作强度差异,而这种差异可能会独立导致疲劳和职业倦怠。此类指标很少。医院日常运营过程中产生的数字数据流可以通过在个体层面提供高分辨率的逐分钟数据,成为洞察工作量强度的新来源;然而,迄今为止,对这些数据流进行研究并用于工作量监测的情况仍然有限。传呼数据就是这样一种数据流。在这项研究中,我们分析了超过50万次传呼记录(一个学术内科住院医师培训项目整整两年的传呼记录),以描述住院医师的传呼模式。我们证明了传呼负担作为一种指标,用于洞察住院医师超出值班时间之外的工作量的技术可行性、有效性和实用性,并阐述了一个将新型数字数据流评估和纳入住院医师工作量监测的总体框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a178/6733865/a03129c133ed/41746_2019_165_Fig1_HTML.jpg

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