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Energy-Efficient Transmission With Data Sharing in Participatory Sensing Systems

机译:参与式传感系统中具有数据共享的节能传输

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In a participatory sensing system, data sensed from smartphone users are shared with the general public who requests data through submitting tasks. When multiple tasks request the data from a mobile user, the mobile user can make a transmission schedule to achieve the balance between the amount of data transmitted and energy consumption. Intuitively, reducing the amount of data transmitted by making use of data sharing between the tasks can save the energy consumption. However, due to the convexity of rate-power function for rate-adaptive transmitting devices, a schedule purely minimizing the amount of data transmitted may not always be the optimal one minimizing the energy consumption. Thus, there exists a tradeoff between the amount of data transmitted and energy consumption. This paper formulates the problem as a bi-objective optimization problem to simultaneously minimize the amount of data transmitted and the energy consumption. Two task models are studied, first-in-first-out (FIFO) task model and arbitrary deadline (AD) task model, respectively. We first provide optimal algorithms for the off-line case. We then study the online case where requests arrive dynamically without prior information. For FIFO tasks, we develop an online algorithm that is O(ln L)-competitive with respect to both the amount of data transmitted and energy consumption, where L is the longest length of the time duration of the tasks. For AD tasks, we devise an online algorithm that is O(ln2 L)-competitive with respect to both the amount of data transmitted and energy consumption. Our simulation results validate the efficiency of our online algorithms.
机译:在参与式感应系统中,从智能手机用户感应到的数据与通过提交任务请求数据的公众共享。当多个任务从移动用户请求数据时,移动用户可以制定传输计划以实现传输的数据量与能耗之间的平衡。直观地讲,通过利用任务之间的数据共享来减少传输的数据量可以节省能耗。然而,由于速率自适应发送设备的速率功率函数的凸性,纯粹使发送数据量最小化的调度可能并不总是使能量消耗最小化的最佳方案。因此,在传输的数据量和能量消耗之间存在折衷。本文将该问题表述为一个双目标优化问题,以同时最小化所传输的数据量和能耗。研究了两种任务模型,分别是先进先出(FIFO)任务模型和任意期限(AD)任务模型。我们首先为离线情况提供最佳算法。然后,我们研究在线情况,其中请求在没有事先信息的情况下动态到达。对于FIFO任务,我们开发了一种在线算法,该算法在传输的数据量和能耗方面都具有O(ln L)的竞争力,其中L是任务持续时间的最长长度。对于AD任务,我们设计了一种在线算法,该算法在传输的数据量和能耗方面均具有O(ln2 L)竞争性。我们的仿真结果验证了我们在线算法的效率。

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