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Artificial Intelligence Model of Drive-Through Vaccination Simulation

机译:通过疫苗接种模拟的人工智能模型

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摘要

Planning for mass vaccination against SARS-Cov-2 is ongoing in many countries considering that vaccine will be available for the general public in the near future. Rapid mass vaccination while a pandemic is ongoing requires the use of traditional and new temporary vaccination clinics. Use of drive-through has been suggested as one of the possible effective temporary mass vaccinations among other methods. In this study, we present a machine learning model that has been developed based on a big dataset derived from 125K runs of a drive-through mass vaccination simulation tool. The results show that the model is able to reasonably well predict the key outputs of the simulation tool. Therefore, the model has been turned to an online application that can help mass vaccination planners to assess the outcomes of different types of drive-through mass vaccination facilities much faster.
机译:考虑到疫苗在不久的将来,许多国家的大规模疫苗接种计划在许多国家正在进行。快速大规模疫苗接种,而大流行是持续的,需要使用传统和新的临时疫苗接种诊所。已经建议使用驱动器作为其他方法中可能有效的临时质量疫苗接种之一。在本研究中,我们介绍了一种机器学习模型,该模型已经基于导出的125K运行的驱动器质量疫苗接种仿真工具的大数据集进行开发。结果表明,该模型能够合理地预测仿真工具的关键输出。因此,该模型已转向一个在线申请,可以帮助大规模疫规划者评估不同类型的驱动器通过疫苗接种设施的结果。

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