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Sensor Network Event Localization via Nonconvex Nonsmooth ADMM and Augmented Lagrangian Methods

机译:传感器网络事件本地化通过非凸不透射的非凸台和增强拉格朗日方法

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Event localization plays a fundamental role in many wireless-sensor network applications, such as environmental monitoring, homeland security, medical treatment, and health care, and it is essentially a nonconvex and nonsmooth problem. In this paper, we address such a problem in a completely decentralized way based on augmented Lagrangian methods and alternating direction method of multipliers (ADMM). A decentralized algorithm is proposed to solve the nonsmooth and nonconvex event localization problem directly, rather than using conventional convex relaxation techniques. The avoidance of convex relaxation is significant in that convex relaxation-based methods generally suffer from high computational complexity. The convergence properties are also evaluated and substantiated using numerical simulations, which show that the proposed algorithm achieves better localization accuracy than existing projection-based approaches when the target is within the convex hull of localization sensors. When the target is outside the convex hull, numerical simulations show that the proposed approach has a higher probability to converge to the target event location than existing projection-based approaches. Numerical simulation results show that our approach is also robust to network topology changes.
机译:事件定位在许多无线传感器网络应用中起着基本作用,例如环境监测,国土安全,医疗和医疗保健,它基本上是一个非凸起和非球形问题。在本文中,我们以完全分散的方式解决了这种问题,基于增强拉格朗日方法和乘法器(ADMM)的交替方向方法。提出了一种分散的算法,可以直接解决非光滑和非透露事件定位问题,而不是使用传统的凸松弛技术。避免凸弛豫是显着的,因为基于凸松弛的方法通常遭受高计算复杂性。使用数值模拟还评估和证实收敛性,这表明当目标在定位传感器的凸壳内时,所提出的算法比现有的基于投影的方法实现更好的定位精度。当目标在凸壳之外时,数值模拟表明,所提出的方法具有比基于投影的方法更高的概率,该方法会聚到目标事件位置。数值模拟结果表明,我们的方法对网络拓扑变化也很强大。

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