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A multi-objective evolutionary algorithm for the deployment and power assignment problem in wireless sensor networks

机译:无线传感器网络中部署和功率分配问题的多目标进化算法

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A Wireless Sensor Network (WSN) design often requires the decision of optimal locations (deployment) and transmit power levels (power assignment) of the sensors to be deployed in an area of interest. Few attempts have been made on optimizing both decision variables for maximizing the network coverage and lifetime objectives, even though, most of the latter studies consider the two objectives individually. This paper defines the multiobjective Deployment and Power Assignment Problem (DPAP). Using the Multi-Objective Evolutionary Algorithm based on Decomposition (MOEA/D), the DPAP is decomposed into a set of scalar subproblems that are classified based on their objective preference and tackled in parallel by using neighborhood information and problem-specific evolutionary operators, in a single run. The proposed operators adapt to the requirements and objective preferences of each subproblem dynamically during the evolution, resulting in significant improvements on the overall performance of MOEA/D. Simulation results have shown the superiority of the problem-specific MOEA/D against the NSGA-II in several network instances, providing a diverse set of high quality network designs to facilitate the decision maker's choice.
机译:无线传感器网络(WSN)设计通常需要确定要部署在感兴趣区域中的传感器的最佳位置(部署)和发射功率水平(功率分配)。尽管优化了两个决策变量以最大化网络覆盖范围和生命周期目标,但很少有尝试,尽管后者的大多数研究都单独考虑了这两个目标。本文定义了多目标部署和电源分配问题(DPAP)。使用基于分解的多目标进化算法(MOEA / D),将DPAP分解为一组标量子问题,这些子问题根据其目标偏好进行分类,并通过使用邻域信息和特定于问题的进化算子并行解决。单次运行。拟议的运营商在发展过程中动态地适应每个子问题的要求和客观偏好,从而显着提高了MOEA / D的整体性能。仿真结果表明,在多个网络实例中,针对特定问题的MOEA / D相对于NSGA-II具有优越性,可提供多种高质量的网络设计,以方便决策者的选择。

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