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Improved Whale Optimization Algorithm and Its Application to UCAV Path Planning Problem

机译:改进鲸鱼优化算法及其在UCAV路径规划问题的应用

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This study proposes an improved whale optimization algorithm (WOA), termed improved WOA, by proposing a new judgment criterion for selecting the process of encircling prey or searching for prey in the WOA. The new judgment criterion is a self-tuning parameter that is based on the quality of agent's fitness instead of a random value used in the original WOA. The agent with higher fitness, i.e., superior agent, updates its position towards the best agent found so far. On the contrary, the agent with lower fitness, i.e., inferior agent, updates its position toward a reference agent which is selected randomly from the population. The performance of the proposed WOA is examined by testing six benchmark functions on low, medium, and high dimensions. Furthermore, the proposed WOA is applied to the path planning of unmanned combat aerial vehicle (UCAV). The computed results of flight path and optimal cost obtained using the improved WOA will be compared with those obtained using the original WOA.
机译:本研究提出了一种改进的鲸鲸优化算法(WOA),通过提出新的判断标准来选择用于选择环绕猎物的过程或搜索WOA中的猎物的过程。新的判断标准是一种自我调整参数,基于代理的健身质量而不是原始WOA中使用的随机值。适合较高的代理,即优质代理,更新其迄今为止发现的最佳代理的地位。相反,具有较低的健身剂的试剂,即劣质剂,更新其朝向从群体中随机选择的参考剂的位置。通过在低,培养基和高维上测试六个基准功能来检查所提出的WOA的性能。此外,所提出的WOA应用于无人战斗机(UCAV)的路径规划。将与使用原始WOA获得的那些进行比较使用改进的WOA获得的飞行路径和最佳成本的计算结果。

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