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Development of Temporal Context-based Feature Abstractions for Enabling Monitoring and Managing of Interventions

机译:开发基于时间的基于上下文的特征抽象,用于启用监视和管理干预措施

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Disease self-management programs and intervention/care plan monitoring are often unable to systematically leverage patient-generated information, especially those requiring interpretation of the temporal contexts of the measurement. While existing techniques help in capturing and storing the relevant data, their ability to determine appropriate metrics most sensitive to that individual is limited or non-existent. This is attributable to the lack of unifying models for enabling such interpretations and the non-trivial process required to generate meaningful feature abstractions to support individualized prognosis. To address these issues, a data-driven approach designed to identify the right abstractions for key features relevant to personalization and monitoring of care is discussed.
机译:疾病自我管理计划和干预/护理计划监测往往无法系统地利用患者产生的信息,尤其是需要解释测量的时间背景的信息。虽然现有技术有助于捕获和存储相关数据,但它们确定对该个体最敏感的适当度量的能力是有限的或不存在的。这归因于缺乏统一模型,用于实现这种解释和生成有意义的特征抽象所需的非琐碎过程,以支持个体化预后。为了解决这些问题,讨论了一种数据驱动方法,旨在识别与个人化和监控相关的关键特征的正确抽象。

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