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An energy-aware genetic algorithm for managing self-organized wireless sensor networks

机译:一种管理自组织无线传感器网络的能量感知遗传算法

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While the majority of the current Wireless Sensor Networks (WSNs) research has prioritized either the coverage of the monitored area or the energy efficiency of the network, it is clear that their relationship must be further studied in order to find optimal solutions that balance the two factors. Higher degrees of redundancy can be attained by increasing the number of active sensors monitoring a given area which results in better performance. However, this in turn increases the energy being consumed. In this paper, we focus on attaining a solution that considers several optimization parameters such as the percentage of coverage, quality of coverage and energy consumption. The problem is modeled using a bipartite graph and employs an evolutionary algorithm to handle the activation and deactivation of the sensors. An accelerated version of the algorithm is also presented; this algorithm attempts to cleverly mutate the string being considered after analyzing the desired output conditions and performs a calculated crossover depending on the fitness of the parent strings. This results in a quicker convergence and a considerable reduction in the search time for attaining the desired solutions.
机译:尽管当前的大多数无线传感器网络(WSN)研究都将受监控区域的覆盖范围或网络的能源效率作为优先事项,但很明显,必须进一步研究它们之间的关系,以找到平衡两者的最佳解决方案。因素。可以通过增加监视给定区域的有源传感器的数量来获得更高的冗余度,从而获得更好的性能。但是,这反过来又增加了能量消耗。在本文中,我们着重于获得一种解决方案,其中考虑了几个优化参数,例如覆盖率,覆盖质量和能耗。使用二部图对问题进行建模,并采用进化算法来处理传感器的激活和去激活。还提供了该算法的加速版本。该算法尝试在分析所需的输出条件后巧妙地对考虑中的字符串进行突变,并根据父字符串的适用性执行计算出的交叉。这导致更快的收敛,并显着减少了获得所需解决方案的搜索时间。

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