用于临床决策支持和紧急呼叫系统的隐私保护医疗系统

A. Alabdulkarim, Mznah Al-Rodhaan, Yuan Tian
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引用次数: 2

摘要

医疗保健中心始终致力于为患者提供最优质的医疗保健服务,并赢得他们的满意。技术在实现这些目标方面发挥了重要作用,例如临床决策支持系统和移动卫生社会网络。这些系统提高了护理服务的质量,加快了准确的诊断过程,并允许护理人员分别通过使用WBS远程监测患者。然而,这些系统的准确性和效率依赖于患者的健康信息,这些信息必须不可避免地在网络上共享,从而使他们面临网络攻击。因此,应该采用隐私保护服务来保护患者的隐私。在这项工作中,我们提出了一个隐私保护医疗系统,该系统由两个子系统组成。第一个是保护隐私的临床决策支持系统。第二个子系统是保护隐私的移动健康社交网络(MHSN)。前者基于决策树分类器,在不公开患者记录的情况下诊断新症状。而后者将允许医生通过WBS远程监测患者的当前状况;因此,在发现遇险情况时,立即发送帮助。该社交网络将症状相似的患者联系在一起,还可以在患者等待救护车到来时向附近路过的人寻求帮助。我们的模式有望改善医疗服务,同时保护患者的隐私。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Privacy-Preserving Healthcare System for Clinical Decision-Support and Emergency Call Systems
Healthcare centers always aim to deliver the best quality healthcare services to patients and earn their satisfaction. Technology has played a major role in achieving these goals, such as clinical decision-support systems and mobile health social networks. These systems have improved the quality of care services by speeding-up the diagnosis process with accuracy, and allowing caregivers to monitor patients remotely through the use of WBS, respectively. However, these systems’ accuracy and efficiency are dependent on patients’ health information, which must be inevitably shared over the network, thus exposing them to cyber-attacks. Therefore, privacy-preserving services are ought to be employed to protect patients’ privacy. In this work, we proposed a privacy-preserving healthcare system, which is composed of two subsystems. The first is a privacy-preserving clinical decision-support system. The second subsystem is a privacy-preserving Mobile Health Social Network (MHSN). The former was based on decision tree classifier that is used to diagnose patients with new symptoms without disclosing patients’ records. Whereas the latter would allow physicians to monitor patients’ current condition remotely through WBS; thus sending help immediately in case of a distress situation detected. The social network, which connects patients of similar symptoms together, would also provide the service of seeking help of near-by passing people while the patient is waiting for an ambulance to arrive. Our model is expected to improve healthcare services while protecting patients’ privacy.
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