利用人工智能进行驻地招聘:能否实现整体评审的梦想?

A. S. John, S. Kavic
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摘要

目的:本研究的目的是探讨人工智能(AI)的原理,特别是自然语言处理(NLP),是否可以应用于普通外科住院医师申请人的个人陈述,以获得对候选人的有价值的见解,并促进更全面的评估。方法:采用人工智能技术对2021/22年申请普外科住院医师职位的申请人(n = 1792)的个人陈述进行分析。比较组从一个单一学术中心的普通人群和当前普通外科住院医生(n = 64)的个人陈述的文件数据库中抽取。这项研究是与一家领先的语言心理学和自然语言处理组织合作进行的。结果:应征者表现出高度自信(P < 0.0001)、信任(P < 0.0001)、压力倾向(P < 0.0001)和冲动(P < 0.0001)的语言型人格。与一般申请人群体相比,当前居民的情感意识(P < 0.001)和组织能力(P < 0.001)显著提高,自信(P < 0.001)和受权力驱动的程度(P < 0.001)显著降低。结论:自然语言处理技术可用于评估普外科住院医师申请人个人陈述内容的独特特征。此外,与普通申请人相比,成功获得单一学术课程入学资格的候选人表现出不同的语言个性和动力。将这些人工智能原则纳入住院医师选择过程,可以促进对候选人进行更全面的评估。
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Leveraging artificial intelligence for resident recruitment: can the dream of holistic review be realized?
Aim: The purpose of this study was to investigate if principles of Artificial Intelligence (AI), specifically Natural Language Processing (NLP), could be applied to the personal statements of general surgery residency applicants in order to gain valuable insight into the candidates and facilitate a more comprehensive assessment. Methods: The personal statements from individuals applying for a general surgery residency position during the 2021/22 application cycle (n = 1792) were analyzed using AI technology. Comparison groups were drawn from a database of documents from the general population and the personal statements of current general surgery residents (n = 64) at a single academic center. The study was conducted in collaboration with a leading language psychology and natural language processing organization. Results: Applicants exhibited a language-based personality that was highly self-assured (P < 0.0001) and trusting (P < 0.0001), and less stress-prone (P < 0.0001) and impulsive (P < 0.0001) than that of the general population. Compared to the general applicant pool, current residents were significantly more emotionally aware (P < 0.001) and organized (P < 0.001) and less self-assured (P < 0.001) and less driven by power (P < 0.001). Conclusion: Natural language processing technology can be utilized to assess the unique characteristics of general surgery resident applicants based on the content of their personal statements. In addition, candidates who successfully gain admission to a single academic program display different language-based personalities and drives compared to the general applicant pool. Incorporating these principles of artificial intelligence into the residency selection process could facilitate a more holistic evaluation of candidates.
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