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A Robust Formulation for Efficient Application Offloading to Clouds

机译:一种强大的配方,用于卸载到云的有效应用程序

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Application offloading to clouds is the key enabler for compute-intensive applications running on mobile devices. An offloading algorithm employs estimated averages of the execution and communication costs of application modules to decide on a modules subset to be offloaded with the objective of minimizing a certain metric (e.g., execution time or energy). This decision is highly affected by the inherent uncertainty arising from the estimated cost averages due to natural fluctuations or measurement inaccuracies. In this article, we propose a novel offloading scheme that takes into consideration these uncertainties. The proposed work first formulates the offloading problem as a tractable robust optimization one where the uncertainty in $k$ cost parameters is incorporated by allowing these parameters to fluctuate within intervals specified from profiling the application and the network. We then show that this problem can be transformed into $k+1$ binary linear programs that are solved while preserving the complexity of the original problem. In contrast to existing approaches, the performance of the obtained decision is guaranteed as long as the behavior of the uncertain parameters remains within the given intervals. Performance evaluation results using a face detection and synthetically generated applications with a large number of modules demonstrate the robustness of the obtained offloading decisions.
机译:应用程序卸载到云端是移动设备上运行的计算密集型应用程序的关键启用程序。卸载算法采用应用程序模块的执行和通信成本的估计平均值,以确定要卸载的模块子集,其目的是最小化特定度量(例如,执行时间或能量)。该决定受到由于自然波动或测量不准确而从估计的成本平均值引起的固有不确定性的影响。在本文中,我们提出了一种新的卸载方案,需要考虑这些不确定性。拟议的工作首先将卸载问题作为一个易于优化的卸载问题,其中一个不确定性<内联公式> $ k $ 通过允许这些参数在分析应用程序和网络指定的间隔内波动,并入成本参数。然后我们表明这个问题可以转化为 $ k + 1 $ 在保留原始问题的复杂性的同时解决的二进制线性程序。与现有方法相比,只要不确定参数的行为保持在给定间隔内,就可以获得所获得的决定的性能。使用具有大量模块的面部检测和合成产生的应用的性能评估结果展示了所获得的卸载决策的稳健性。

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