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首页> 外文期刊>Journal of Science and Technology Policy Management >ANN model for users' perception on IOT based smart healthcare monitoring devices and its impact with the effect of COVID 19
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ANN model for users' perception on IOT based smart healthcare monitoring devices and its impact with the effect of COVID 19

机译:ANN模型用户的基于物联网的智能感知医疗监控设备及其影响COVID 19的效果

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Purpose COVID-19 was indeed a global epidemic that revolutionized the way of life, especially health-care services. The way health care will be delivered will undergo a dramatic change in the future. The aim is to analyse the increasing usage of health care systems along with digital technology and IoT especially during pandemic. Design Methodology Approach This research paper deals with users' perception and their recommendation status of IoT-based smart health-care monitoring devices based on their perception, experience and level of importance to enhance the quality of life. An effective artificial neural networking (ANN)-based predictive model is designed to classify the user's perception of usage of IoT-based smart health-care monitoring wearables based on their experience and knowledge. Findings The model developed has 96.7% accuracy. Among the various predictors chosen as inputs for the model, the findings indicate that self-comfort and trusted data from the device are of high priority. The present study focused only on some common factors derived from previous studies. Research Limitations Implications Although the performance of the proposed system was noticed to be good, the size of the sample is also limited to a few responses. Implications for future research and practices are discussed. Originality Value This is a novel study that aims to develop an ANN model on analyzing the user's perception of IoT-based smart health-care wearables with the effect of COVID-19 pandemic. This paper elaborates on the ongoing efforts to restart the health-care services for survivability in the new normal situations.
机译:目的COVID-19的确是一个全球流行彻底改变了生活方式,尤其是医疗保健服务。交付将会经历一个戏剧性的变化的未来。使用的卫生保健系统和数字技术和物联网特别是在大流行。设计方法研究论文的方法处理用户的感知和他们的建议IoT-based聪明的地位基于他们的医疗监控设备知觉、经验和水平的重要性提高生活的质量。人工神经网络(ANN)的预测模型设计进行分类用户使用IoT-based智能的看法医疗监控基于他们的衣物经验和知识。发达国家有96.7%的准确率。预测模型作为输入,选择研究结果表明,自我安慰和信任高优先级的数据从设备。本研究只关注一些常见的因素来自先前的研究。尽管性能限制的影响提出了系统的注意到是好,样本的大小也是有限的响应。实践进行了讨论。是一种新型的研究,旨在开发一个安模型在分析用户的感知IoT-based智能医疗的衣物COVID-19大流行的影响。阐述了持续的努力重新启动为生存能力在新的医疗服务正常的情况下。

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