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Reinforcing inspiration for technology acceptance: Improving memory and software training results through neuro-physiological performance

机译:增强技术接受的灵感:通过神经生理性能改善记忆和软件培训结果

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This paper investigates the phenomenon of reinforcing inspiration for technology acceptance by improving memory and software training results Neuro-physiological performance. Monitoring of cortisol levels provided feedback for a decision support system that measured errors and elapsed time for training tasks completed by end-users of a health care application. The training success was measured utilizing statistics, SEM and a Fuzzy approach. The predictive model was implemented by comparing the regression, fuzzy logic and SEM results. Data collected from 338 health care workers were used to test a proposed model that inspiration, memory, and inspirational memory affect end user intention to adopt a digitized patient record software application. Structural equation modeling showed that, as expected, inspiration affected the individual behavior of the end users. Inspiration had an interactive impact through memory on collective acceptance of the technology, thereby affecting subsequent evaluations and behavior. The proposed model was nomologically validated through the use of a portable platform loaded with software for the electronic collection of operational-level health care data. Embedded metrics measured participants' memory as operationalized by task completion time, number of errors, and completeness of the data. In order to triangulate the results, salivary cortisol levels collected from 74 health care workers were used to measure whether inspiration improves memory and affects end user intention to adopt the application through reduced errors and decreased completion times. This paper contributes to the literature by introducing inspiration as a key driver that improves memory to affect end user intention to use digitized patient record technology.
机译:本文研究了通过改善记忆和软件训练结果的神经生理性能来增强技术接受灵感的现象。皮质醇水平的监测为决策支持系统提供了反馈,该决策支持系统测量了错误和经过的时间,以完成由医疗保健应用的最终用户完成的培训任务。培训的成功是通过统计,SEM和模糊方法来衡量的。通过比较回归,模糊逻辑和SEM结果,实现了预测模型。从338名医护人员那里收集的数据用于测试提议的模型,该模型启发,记忆和灵感记忆影响最终用户采用数字化患者记录软件应用程序的意图。结构方程建模表明,正如预期的那样,灵感影响了最终用户的个人行为。灵感通过记忆对技术的集体接受产生了互动影响,从而影响了随后的评估和行为。通过使用装有软件的便携式平台对所收集的电子数据进行操作级别的医疗数据的收集,从理论上验证了该模型的有效性。嵌入式指标通过任务完成时间,错误数量和数据完整性来衡量参与者的记忆。为了对结果进行三角测量,使用了从74位医护人员那里收集的唾液皮质醇水平来衡量灵感是否能改善记忆力,并通过减少错误和减少完成时间来影响最终用户采用该应用程序的意图。本文通过引入灵感作为关键驱动器来为文献做出贡献,该驱动器可以改善内存以影响最终用户使用数字化患者记录技术的意图。

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