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A Narrative Analysis on Deep Learning in IoT based Medical Big Data Analysis with Future Perspectives

机译:基于物联网的医学大数据分析中的深度学习叙事分析及未来展望

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The analysis of health-specific parameters and IoT based health monitoring system become a very challenging research scope to merge them with big data handling capability. This paper proposes an idea describing the possible ways to monitor and analyze health conditions collaborating IoT based medical big data through deep learning algorithm. The recent research trend regarding the concerning field often utilizes the conventional machine learning based algorithms those are not suitable for IoT based big medical data because of their manual feature extraction and less accuracy. On this contrary, this paper widely reviews the different research works regarding the big data handling in deep machine learning approaches and their proposals for health monitoring, applicability on IoT based system, accuracy, and suitability regarding big data analysis. Eventually, this paper focuses on deep learning based IoT system for health monitoring tools and contributes to providing relevant results to the different remote doctors in the area of IoT architecture to ensure propzer knowledge about critical patients. It is an approach to synchronize them in a platform that could be a potential solution for the upcoming researchers to implement a sustainable online based health monitoring system with big data accessing capability. In addition, this research will be effective for medical experts to ensure appropriate healthcare facilities to the mass people in the future.
机译:将特定于健康的参数和基于IoT的健康监控系统进行分析成为将它们与大数据处理能力合并的一个非常具有挑战性的研究范围。本文提出了一种想法,该想法描述了通过深度学习算法来监视和分析健康状况的可能方法,以协作基于IoT的医疗大数据。有关该领域的最新研究趋势经常利用基于传统的基于机器学习的算法,这些算法由于其手动特征提取和准确性较低而不适用于基于IoT的大医学数据。相反,本文广泛回顾了有关深度机器学习方法中的大数据处理的不同研究工作,以及它们关于健康监控,基于物联网的系统的适用性,准确性以及大数据分析的适用性的建议。最终,本文将重点放在基于深度学习的物联网系统(用于健康监控工具)上,并致力于为物联网架构领域的不同远程医生提供相关结果,以确保对重症患者的了解。这是一种在平台上同步它们的方法,这可能是即将到来的研究人员实施具有大数据访问能力的可持续的基于在线的健康监测系统的潜在解决方案。此外,这项研究对于医学专家在将来确保为大众提供适当的医疗保健设施方面将是有效的。

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