整合统计和视觉分析方法用于识别与健康相关的调查数据的机器人
Annie T Chen1, Midori Komi2, Sierrah Bessler3
1Department of Biomedical Informatics and Medical Education, University of Washington School of Medicine, 850 Republican St., Box 358047, Seattle, WA 98195, United States.
Journal of biomedical informatics
|July 7, 2023
概括
本研究引入了一种视觉分析方法,用于从在线调查中识别和删除可疑数据,从而提高健康研究的数据质量. 该方法有效地减少了COVID-19问卷数据中的噪音和偏差.
科学领域:
- 信息学和数据科学 信息学和数据科学
- 生物医学信息学 生物医学信息学
- 医疗信息学 医疗信息学
背景情况:
- 越来越多的人担心在线信息的质量,包括在问卷答复中来自机器人的可疑数据.
- 数据质量在健康和生物医学研究中至关重要,需要强大的方法来识别和删除不可靠的数据.
- 在线招聘方法可以引入数据质量挑战,影响研究完整性.
结论:
- 提出了数据质量评估的框架,重点关注可疑数据的识别和删除.
- 分析了可疑数据对数据集表示和研究结果的潜在后果.
- 为在线研究中实施可靠的数据质量评估提供了实际建议.
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