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首页> 外文期刊>Annals of the American Thoracic Society >Enhanced Artificial Bee Colony with Novel Search Strategy and Dynamic Parameter
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Enhanced Artificial Bee Colony with Novel Search Strategy and Dynamic Parameter

机译:具有新颖的搜索策略和动态参数的增强的人为蜜蜂殖民地

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摘要

There is only one guiding solution in the search equation of Gaussian bare-bones artificial bee colony algorithm (ABC-BB), which is easy to result in the problem of premature convergence and trapping into the local minimum. In order to enhance the capability of escaping from local minimum without loss of the exploitation ability of ABC-BB, a new triangle search strategy is proposed. The candidate solution is generated among the triangle area formed by current solution, global best solution and any randomly selected elite solution to avoid the premature convergence problem. Moreover, the probability of crossover is controlled dynamically according to the successful search experience, which can enable ABC-BB to adapt all kinds of optimization problems with different landscapes. The experimental results on a set of 23 benchmark functions and two classic real-world engineering optimization problems show that the proposed algorithm is significantly better than ABC-BB as well as several recently-developed state-of-the-art evolution algorithms.
机译:高斯裸BONES人造群菌落算法(ABC-BB)的搜索方程只有一个指导解决方案,这易于导致过早收敛和捕获到局部最小值的问题。为了增强从局部最低逃逸的能力而不会损失ABC-BB的开发能力,提出了一种新的三角形搜索策略。候选解决方案是由当前解决方案,全局最佳解决方案和任何随机选择的精英解决方案形成的三角形区域,以避免过早收敛问题。此外,交叉的概率是根据成功搜索体验动态控制的,这可以使ABC-BB能够通过不同的景观来调整各种优化问题。在一组23个基准函数和两个经典实际工程优化问题上的实验结果表明,所提出的算法明显优于ABC-BB以及最近开发的最新的现有演进算法。

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