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Private Data Analytics on Biomedical Sensing Data via Distributed Computation

机译:通过分布式计算对生物医学传感数据进行私有数据分析

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Advances in biomedical sensors and mobile communication technologies have fostered the rapid growth of mobile health (mHealth) applications in the past years. Users generate a high volume of biomedical data during health monitoring, which can be used by the mHealth server for training predictive models for disease diagnosis and treatment. However, the biomedical sensing data raise serious privacy concerns because they reveal sensitive information such as health status and lifestyles of the sensed subjects. This paper proposes and experimentally studies a scheme that keeps the training samples private while enabling accurate construction of predictive models. We specifically consider logistic regression models which are widely used for predicting dichotomous outcomes in healthcare, and decompose the logistic regression problem into small subproblems over two types of distributed sensing data, i.e., horizontally partitioned data and vertically partitioned data. The subproblems are solved using individual private data, and thus mHealth users can keep their private data locally and only upload (encrypted) intermediate results to the mHealth server for model training. Experimental results based on real datasets show that our scheme is highly efficient and scalable to a large number of mHealth users.
机译:在过去的几年中,生物医学传感器和移动通信技术的进步促进了移动健康(mHealth)应用的快速增长。用户在健康监控期间会生成大量的生物医学数据,mHealth服务器可将其用于训练疾病诊断和治疗的预测模型。然而,生物医学感测数据引起严重的隐私问题,因为它们揭示了敏感信息,例如被感测对象的健康状况和生活方式。本文提出并通过实验研究了一种方案,该方案可以使训练样本保持私有,同时能够准确构建预测模型。我们特别考虑了广泛用于预测医疗保健二分结果的逻辑回归模型,并将逻辑回归问题分解为两种类型的分布式传感数据(即水平划分的数据和垂直划分的数据)的小子问题。子问题使用单独的私有数据解决,因此mHealth用户可以将其私有数据保留在本地,并且仅将中间结果上传(加密)到mHealth服务器以进行模型训练。基于真实数据集的实验结果表明,我们的方案高效且可扩展到大量mHealth用户。

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