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Risk Management Framework to Improve Associated Risk of Information Exchange Between Users of Health Information Systems in Resource-Constrained Hospitals

机译:风险管理框架,提高资源受限医院卫生信息系统用户之间的信息交流风险

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Information exchange, privacy and security in the healthcare sector is a problem of greater significance. Healthcare Information frameworks capture, store, handle and transmit information identified with the health of the patient. However, risk management in a hospital is complex, as it includes assessing, identifying and averting risks in essentially each area of the healthcare system. In this paper, Octave Allegro based Deep Learning algorithm for a risk management framework to improve the associated risk of information exchange between users of health information systems in resource-constrained hospitals has been proposed. The experimental results show that the proposed algorithm OADLA has potential benefits for patients, organizations, health care providers, and the public during secure information exchange. The proposed Octave Allegro based Deep Learning algorithm which has higher performance when compared with existing Fuzzy based Healthcare Risk Management (FHRM).
机译:信息交流,保健部门的隐私和安全性是一个更重要的问题。医疗保健信息框架捕获,存储,处理和传输与患者健康识别的信息。然而,医院的风险管理是复杂的,因为它包括评估,识别和避免基本上的医疗保健系统的每个领域。本文提出了一种基于八度Allegro的风险管理框架的深度学习算法,以提高资源受限医院的健康信息系统用户之间的相关信息交流风险。实验结果表明,该算法OADLA对患者,组织,医疗保健提供者和公众在安全信息交换期间具有潜在的益处。基于八度Allegro的建议八度Allegro与现有的基于模糊的医疗风险管理(FHRM)相比具有更高的性能。

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