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Profit-Maximizing Stochastic Control for Mobile Crowd Sensing Platforms

机译:移动人群感应平台的利润最大化随机控制

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摘要

In this paper, we consider the crucial problem of maximizing the profit of a crowd sensing platform which receives sensing requests from various subscribers and completes the requests by leveraging sensing time of participating smartphones. The profit of the platform is defined as the total charges of sensing requests minus the payments to smartphones. It is highly challenging to obtain the maximal profit for the platform, because of stochastic arrivals of sensing requests, dynamic participation of smartphones, and high complexity of optimally allocating requests to smartphones. In response to the challenges, we propose an optimal online control framework which can efficiently utilize the limited sensing time on each smartphone. Based on the stochastic Lyapunov optimization techniques combined with the idea of weight perturbation, our control framework makes crucial online control decisions, such as sensing requests admission and dispatching control, sensing time purchasing control and sensing time allocation control, without requiring any future knowledge about request arrivals. Rigorous mathematical analysis and comprehensive simulation results show that our control framework can achieve a time averaged profit that is arbitrarily close to the optimum, while still maintaining strong system stability.
机译:在本文中,我们考虑了一个关键问题,即最大化一个人群感应平台的利润,该平台可以接收来自各个订户的感应请求,并利用参与的智能手机的感应时间来完成这些请求。该平台的利润定义为传感请求的总费用减去对智能手机的付款。由于感应请求的随机到达,智能手机的动态参与以及将请求分配给智能手机的复杂性很高,因此要获得该平台的最大利润非常具有挑战性。为了应对这些挑战,我们提出了一种最佳的在线控制框架,该框架可以有效利用每个智能手机上有限的感应时间。基于随机Lyapunov优化技术并结合重量扰动的思想,我们的控制框架做出了关键的在线控制决策,例如感知请求接纳和调度控制,感知时间购买控制和感知时间分配控制,而无需任何关于请求的未来知识到达。严格的数学分析和全面的仿真结果表明,我们的控制框架可以实现平均接近最佳时间的平均时间利润,同时仍保持强大的系统稳定性。

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