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基于改进的排球超级联赛算法和鲸鱼优化算法的多级阈值图像分割

Multilevel thresholding image segmentation based on improved volleyball premier league algorithm using whale optimization algorithm.

作者信息

Abd Elaziz Mohamed, Nabil Neggaz, Moghdani Reza, Ewees Ahmed A, Cuevas Erik, Lu Songfeng

机构信息

Department of Mathematics, Faculty of Science, Zagazig University, Zagazig, Egypt.

Faculté des mathématiques et informatique - Département d'Informatique- Laboratoire SIMPA, Université des Sciences et de la Technologie d'Oran Mohammed Boudiaf, USTO-MB, BP 1505, El M'naouer, 31000 Oran, Algeria.

出版信息

Multimed Tools Appl. 2021;80(8):12435-12468. doi: 10.1007/s11042-020-10313-w. Epub 2021 Jan 11.

Abstract

Multilevel thresholding image segmentation has received considerable attention in several image processing applications. However, the process of determining the optimal threshold values (as the preprocessing step) is time-consuming when traditional methods are used. Although these limitations can be addressed by applying metaheuristic methods, such approaches may be idle with a local solution. This study proposed an alternative multilevel thresholding image segmentation method called VPLWOA, which is an improved version of the volleyball premier league (VPL) algorithm using the whale optimization algorithm (WOA). In VPLWOA, the WOA is used as a local search system to improve the learning phase of the VPL algorithm. A set of experimental series is performed using two different image datasets to assess the performance of the VPLWOA in determining the values that may be optimal threshold, and the performance of this algorithm is compared with other approaches. Experimental results show that the proposed VPLWOA outperforms the other approaches in terms of several performance measures, such as signal-to-noise ratio and structural similarity index.

摘要

多阈值图像分割在多个图像处理应用中受到了广泛关注。然而,当使用传统方法时,确定最优阈值(作为预处理步骤)的过程非常耗时。虽然可以通过应用元启发式方法来解决这些局限性,但此类方法可能会陷入局部解。本研究提出了一种名为VPLWOA的多阈值图像分割方法,它是使用鲸鱼优化算法(WOA)对排球超级联赛(VPL)算法的改进版本。在VPLWOA中,WOA被用作局部搜索系统,以改进VPL算法的学习阶段。使用两个不同的图像数据集进行了一系列实验,以评估VPLWOA在确定可能的最优阈值方面的性能,并将该算法的性能与其他方法进行比较。实验结果表明,所提出的VPLWOA在诸如信噪比和结构相似性指数等几个性能指标方面优于其他方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3eff/7797715/b153006cb93b/11042_2020_10313_Fig1_HTML.jpg

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