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The Particle Swarm Differential Evolution Algorithm for Ecological Sensor Network Coverage Optimization

机译:用于生态传感器网络覆盖率优化的粒子群差分进化算法

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摘要

The problem of coverage optimization is the challengingly important and key part in the research and application of ecology sensor network related with the ecological monitoring of Poyang Lake. A modified differential evolution algorithm (PSI-DE) combined with particle swarm intelligence is proposed to solve the coverage optimization problem. First, an improved version of the mutation rule combined with self-cognitive and social-cognitive items is introduced. Then, the influence on the coverage optimization performance of the PSI-DE algorithm brought by the five factors - namely, population size, number of iterations, sensing radius size, raster size, and number of nodes - is discussed and analyzed. The statistical results about the best coverage rate, average coverage rate, worst coverage rate, and variance are respectively obtained through a lot of simulation experiments. A series of the coverage rate curves, the line chart, and the node layout are drawn in this paper, and finally, the figures and the statistical results are proven to confirm each other.
机译:覆盖优化问题是Po阳湖生态监测相关生态传感器网络研究和应用中具有挑战性的重要组成部分。提出了一种结合粒子群智能的改进差分进化算法(PSI-DE),解决了覆盖优化问题。首先,介绍了结合自我认知和社会认知项目的变异规则的改进版本。然后,讨论并分析了人口大小,迭代次数,感测半径大小,栅格大小和节点数五个因素对PSI-DE算法覆盖优化性能的影响。通过大量的仿真实验分别获得了最佳覆盖率,平均覆盖率,最差覆盖率和方差的统计结果。绘制了一系列的覆盖率曲线,折线图和节点布局,最后,这些数字和统计结果相互证实。

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