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An enhanced adaptive butterfly optimization algorithm rigorously verified on engineering problems and implemented to ISAR image motion compensation

机译:一种增强的自适应蝴蝶优化算法在工程问题上严格验证,实现了ISAR图像运动补偿

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摘要

Purpose This study aims to evolve an enhanced butterfly optimization algorithm (BOA) with respect to convergence and accuracy performance for numerous benchmark functions, rigorous constrained engineering design problems and an inverse synthetic aperture radar (ISAR) image motion compensation. Design/methodology/approach Adaptive BOA (ABOA) is thus developed by incorporating spatial dispersal strategy to the global search and inserting the fittest solution to the local search, and hence its exploration and exploitation abilities are improved. Findings The accuracy and convergence performance of ABOA are well verified via exhaustive comparisons with BOA and its existing variants such as improved BOA (IBOA), modified BOA (MBOA) and BOA with Levy flight (BOAL) in terms of various precise metrics through 15 classical and 12 conference on evolutionary computation (CEC)-2017 benchmark functions. ABOA has outstanding accuracy and stability performance better than BOA, IBOA, MBOA and BOAL for most of the benchmarks. The design optimization performance of ABOA is also evaluated for three constrained engineering problems such as welded beam design, spring design and gear train design and the results are compared with those of BOA, MBOA and BOA with chaos. ABOA, therefore, optimizes engineering designs with the most optimal variables. Furthermore, a validation is performed through translational motion compensation (TMC) of the ISAR image for an aircraft, which includes blurriness. In TMC, the motion parameters such as velocity and acceleration of target are optimally predicted by the optimization algorithms. The TMC results are elaborately compared with BOA, IBOA, MBOA and BOAL between each other in view of images, motion parameter and numerical image measuring metrics. Originality/value The outperforming results reflect the optimization and design successes of ABOA which is enhanced by establishing better global and local search abilities over BOA and its existing variants.
机译:目的本研究旨在为许多基准函数的收敛性和准确性性能,严格的约束工程设计问题和逆合成孔径雷达(ISAR)图像运动补偿而发展增强的蝶形优化算法(BOA)。因此,通过将空间分散策略纳入全球搜索并将最合适的解决方案插入本地搜索,因此改进了设计/方法/方法自适应BOA(ABOA),因此改善了其勘探和开发能力。调查结果ABOA的准确性和收敛性能通过与蟒蛇及其现有的变体进行详尽的比较验证,如改进的蟒蛇(IBOA),改进的BOA(MBOA)和蟒蛇,在各种精确度量通过15古典方面的征收飞行(Boal) 12次进化计算会议(CEC)-2017基准函数。由于大多数基准,ABOA优于蟒蛇,IBOA,MBOA和BOAL具有出色的准确性和稳定性。 ABOA的设计优化性能也评估了三个受限的工程问题,如焊接梁设计,弹簧设计和齿轮系设计,并将结果与​​蟒蛇,MBOA和BOA的混乱进行比较。因此,ABOA优化了具有最佳变量的工程设计。此外,通过用于飞机的ISAR图像的平移运动补偿(TMC)来执行验证,该飞机包括模糊。在TMC中,通过优化算法最佳地预测诸如目标的速度和加速度的运动参数。考虑到图像,运动参数和数值图像测量度量,彼此之间的BOA,IBOA,MBOA和BOAL进行详细地进行了TMC结果。原创性/价值优于优异的结果反映了ABOA的优化和设计成功,通过建立更好的全球和本地搜索能力以及其现有的变体而增强。

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