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Medical practitioner's adoption of intelligent clinical diagnostic decision support systems: A mixed-methods study

机译:医学生采用智能临床诊断决策支持系统:混合方法研究

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Artificial intelligence-based clinical diagnostic decision support systems promise transformational improvements in doctors' efficiency and accuracy. Nevertheless, low adoption rates suggest that this innovation could fail without adequate uptake. This study uses a mixed-methods approach to develop and test a model based on theories of Unified Theory of Acceptance and Use of Technology, status quo bias, and technology trust. The results show that performance expectancy, effort expectancy, social influence, initial trust, and resistance to change predict intention to use. Further, inertia, perceived threat, and risks (medico-legal and performance) determine resistance to change. Measures for alleviating resistance and improving adoption are proposed.
机译:基于人工智能的临床诊断决策支持系统承诺医生的效率和准确性的转型改进。 尽管如此,低采用率表明,这种创新可能会失败,没有足够的摄取。 本研究采用混合方法的方法来开发和测试基于统一接受和使用技术,现状偏见和技术信任的理论的模型。 结果表明,性能期望,努力期望,社会影响力,初始信任和抵抗变化预测预测使用。 此外,惯性,感知威胁和风险(Medico-Leath-Compled和Performance)决定了改变的抵抗力。 提出了缓解抵抗和改善采用的措施。

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