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SCI-Expanded JCR Q1 Özgün Makale Scopus
Hybridization of the Snake Optimizer and Particle Swarm Optimization for continuous optimization problems
Engineering Science and Technology, an International Journal 2025 Cilt 67
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67
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Özet
The Snake Optimizer (SO), despite its reasonable performance in a variety of continuous optimization problems, struggles by inefficient exploration, stagnation in local optima, and a slow convergence. To improve exploration, accelerate convergence, and avoid local optima, the velocity vector of Particle Swarm Optimization (PSO) was integrated into the Snake Optimizer (SO), resulting in the proposal of the Snake Optimizer Particle Swarm Optimization (SO-PSO) metaheuristic method. To evaluate the applicability of the proposed SO-PSO method, it was evaluated on continuous numerical problems (CEC-2017) and seven real-world engineering problems, benchmarking its performance against contemporary metaheuristic algorithms, including WOA, PSO, GWO, EO, LSHADE, and SO. A comparative analysis of six metaheuristics and SO-PSO was conducted on 30 shifted and rotated benchmark problems across dimensions and population sizes of 30, 50, and 100, as well as seven engineering challenges with population sizes of 30, 50, and 100, each evaluated over 30 independent runs. According to the Friedman ranking results from 270 experimental tests on CEC17 functions, SO-PSO, WOA, PSO, GWO, EO, LSHADE, and SO achieved rankings of 1.62, 6.5, 5.91, 4.18, 1.98, 4.53, and 3.28, respectively. Regarding the results of the engineering functions, SO-PSO, WOA, PSO, GWO, EO, LSHADE, and SO achieved rankings of 1.82, 6.19, 3.95, 4, 3.38, 4.34, and 4.33, respectively. Besides, the proposed SO-PSO shows statistically significant difference from other methods in 96.42 % and 93.65 % of experimental tests obtained from Wilcoxon's signed-rank test in CEC17 functions and engineering problems, respectively. Consequently, SO-PSO demonstrated superior performance over other metaheuristics based on experimental and statistical test results.
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Belge Türü
Kaynak: ENGINEERING SCIENCE AND TECHNOLOGY-AN INTERNATIONAL JOURNAL-JESTECH
Anahtar Kelimeler (WoS)

Havuzumuzdaki Atıflar 0

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Scimago Dergi Bilgisi Otomatik ISSN Eşleştirmesi 2025 yılı verileri
Engineering Science and Technology, an International Journal
Q1
SJR Quartile
0,957
SJR Skoru
104
H-Index
🔓
Açık Erişim
Kategoriler: Civil and Structural Engineering (Q1) · Computer Networks and Communications (Q1) · Electronic, Optical and Magnetic Materials (Q1) · Fluid Flow and Transfer Processes (Q1) · Hardware and Architecture (Q1) · Mechanical Engineering (Q1) · Metals and Alloys (Q1) · Biomaterials (Q2)
Alanlar: Chemical Engineering · Computer Science · Engineering · Materials Science
Ülke: Netherlands · Elsevier B.V.
Bu bilgiler makale yılına göre Scimago veritabanından ISSN eşleştirmesiyle otomatik getirilmektedir. Dergi sıralama verileri Scimago'nun ilgili yılı baz alınmaktadır.

Anahtar Kelimeler

WoS | Bir kelimeye tıklayıp ilgili kaynaktaki yayınları görün.

Makale Bilgileri

Dergi Engineering Science and Technology, an International Journal
ISSN 2215-0986
Yıl 2025 / 7. ay
Cilt / Sayı 67
Makale Türü Özgün Makale
Hakemlik Hakemli
Endeks SCI-Expanded
JCR Quartile Q1
Teşvik Puanı 10,80 · YÖKSİS Akademik Teşvik
Yayın Dili Türkçe
Kapsam Uluslararası
Toplam Yazar 3 kişi
Erişim Türü Basılı+Elektronik
Alan Mühendislik Temel Alanı Bilgisayar Bilimleri ve Mühendisliği Yapay Zeka

YÖKSİS Yazar Kaydı

Yazar Adı PEKTAŞ ABDÜLKADİR,HACIBEYOĞLU MEHMET,İNAN ONUR
YÖKSİS ID 8672722

Metrikler

Scopus Atıf 7
Havuz Atıfları 0
JCR Quartile Q1
Teşvik Puanı 10,80
Yazar Sayısı 3