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Enabling Trusted and Privacy-Preserving Healthcare Services in Social Media Health Networks

机译:在社交媒体健康网络中启用受信任的隐私保护医疗服务

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Social Media Health Networks provide a promising paradigm to attract patients to share and communicate their personal health status with other online patients, and consult healthcare services from online caregivers with social networks. Social Media Health Networks transform healthcare services from time-consuming offline hospital-centered paradigm to the convenient and efficient online paradigm through Internet, which can expand the traditional healthcare services and shorten the information gap between patients and caregivers. However, how to build the trust between patients and caregivers raises a challenging issue due to the openness of the social networks; meanwhile, the personal privacy may be disclosed when sharing personal health information with other patients and caregivers. In this paper, we propose a personalized and trusted healthcare service approach to enable trusted and privacy-preserving healthcare services in social media health networks, which can improve the trustiness between patients and caregivers through authentic ratings toward caregivers and guarantee the patients' privacy. Specifically, we employ the collaborative filtering model to seek appropriate personalized caregivers, bloom filter to extract and map the personal healthcare symptoms, and inner product to compute the similarity between patients for finding patients with similar health symptoms in a privacy-preserving way. Meanwhile, to guarantee authentic ratings and reviews toward caregivers, we develop a sybil attack detection scheme to find patients' fake ratings and reviews using different pseudonyms. Security analysis shows that our proposed approach can preserve the privacy of patients and prevent sybil attacks. Performance evaluation demonstrates that our approach can achieve prominent performance improvement, in terms of personalized caregivers finding and sybil attack resistance.
机译:社交媒体健康网络提供了一种有希望的范例,可以吸引患者与其他在线患者共享和交流其个人健康状况,并通过社交网络咨询在线护理人员的医疗服务。社交媒体健康网络通过互联网将医疗服务从耗时的离线医院中心范例转变为便捷高效的在线范例,可以扩展传统的医疗服务并缩短患者与护理人员之间的信息鸿沟。然而,由于社交网络的开放性,如何建立患者与护理人员之间的信任提出了一个具有挑战性的问题。同时,与其他患者和护理人员共享个人健康信息时,可能会泄露个人隐私。在本文中,我们提出了一种个性化和可信任的医疗服务方法,以在社交媒体健康网络中启用可信任的和保护隐私的医疗服务,该服务可以通过对看护者的真实评分提高患者和看护者之间的信任度,并确保患者的隐私。具体来说,我们采用协作过滤模型来寻找合适的个性化看护者,使用bloom过滤器来提取和映射个人医疗保健症状,并使用内部产品来计算患者之间的相似度,从而以隐私保护的方式找到具有相似健康症状的患者。同时,为了保证对看护人的真实评价和评价,我们开发了一种sybil攻击检测方案,以使用不同的假名查找患者的虚假评价和评价。安全分析表明,我们提出的方法可以保护患者的隐私并防止sybil攻击。绩效评估表明,就个性化看护者发现和抵御sybil攻击而言,我们的方法可以显着提高绩效。

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