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Context-aware reinforcement learning-based mobile cloud computing for telemonitoring

机译:关于遥测的上下文感知强化学习的移动云计算

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Mobile cloud computing (MCC) has been extensively studied to provide pervasive healthcare services in a more affordable manner. Through offloading computation-intensive tasks from mobile to cloud, a significant portion of energy can be saved to extend the mobile battery life, which is critical to maintaining continuous and uninterrupted healthcare services. However, given the ever-changing clinical severity, personal demands, and environmental conditions, it is essential to explore context-aware approach capable of dynamically determining the optimal task offloading strategies and algorithmic settings, with the goal of achieving a balanced trade-off among energy efficiency, diagnostic accuracy, and processing latency. To this aim, we propose a model-free reinforcement learning based task scheduling approach to adapt to the changing requirements.
机译:移动云计算(MCC)已被广泛研究以更实惠的方式提供普遍的医疗保健服务。通过从移动到云中卸载计算密集型任务,可以节省大量的能量以扩展移动电池寿命,这对于维持连续和不间断的医疗保健服务至关重要。然而,鉴于不断变化的临床严重程度,个人需求和环境条件,探讨能够动态确定最佳任务卸载策略和算法设置的背景感知方法是必不可少的,这是实现平衡权衡的目标能效,诊断准确性和处理延迟。为此目的,我们提出了一种基于模型的加强学习的任务调度方法来适应不断变化的要求。

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