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Judul Metaheuristic Algorithms in Optimal Design of Engineering Problems / Knypi?ski, ?ukasz
Pengarang Knypi?ski, ?ukasz
Devarapalli, Ramesh
Kaminski, Marcin
Penerbitan Basel, Switzerland : MDPI - Multidisciplinary Digital Publishing Institute, 2025
Deskripsi Fisik 240 :ilus ;25 cm.
ISBN 978-3-7258-5076-1
Subjek ENGINEERING DESIGN—OPTIMIZATION
Catatan Metaheuristic algorithms are advanced optimization methods widely used to solve complex engineering design problems. They operate by iteratively searching the solution space, employing strategies inspired by natural or physical processes to balance exploration and exploitation. Common examples include genetic algorithms, particle swarm optimization, simulated annealing, and ant colony optimization. These algorithms are effective for large-scale, nonlinear, and non-convex problems, making them valuable in fields such as mechanical, civil, electrical, and aerospace engineering. Metaheuristics can efficiently find near-optimal solutions where traditional methods may fail or become computationally expensive. Their performance depends on factors like initial solution quality, algorithm selection, and parameter tuning. By integrating metaheuristics with domain-specific knowledge, engineers can optimize system designs to meet performance, cost, and operational constraints. As research progresses, metaheuristic algor
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Lokasi Akses Online https://mdpi-res.com/bookfiles/book/11762/Metaheuristic_Algorithms_in_Optimal_Design_of_Engineering_Problems.pdf?v=1770689565

 
No Barcode No. Panggil Akses Lokasi Ketersediaan
063626192 620.001 518 Kny m Baca Online Perpustakaan Pusat - Online Resources
Ebook
Tersedia
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300 # # $a 240 : $b ilus ; $c 25 cm.
505 # # $a Metaheuristic algorithms are advanced optimization methods widely used to solve complex engineering design problems. They operate by iteratively searching the solution space, employing strategies inspired by natural or physical processes to balance exploration and exploitation. Common examples include genetic algorithms, particle swarm optimization, simulated annealing, and ant colony optimization. These algorithms are effective for large-scale, nonlinear, and non-convex problems, making them valuable in fields such as mechanical, civil, electrical, and aerospace engineering. Metaheuristics can efficiently find near-optimal solutions where traditional methods may fail or become computationally expensive. Their performance depends on factors like initial solution quality, algorithm selection, and parameter tuning. By integrating metaheuristics with domain-specific knowledge, engineers can optimize system designs to meet performance, cost, and operational constraints. As research progresses, metaheuristic algorithms continue to expand their applicability and effectiveness in solving real-world engineering challenges.
650 # # $a ENGINEERING DESIGN—OPTIMIZATION
700 0 # $a Devarapalli, Ramesh
700 0 # $a Kaminski, Marcin
856 # # $a https://mdpi-res.com/bookfiles/book/11762/Metaheuristic_Algorithms_in_Optimal_Design_of_Engineering_Problems.pdf?v=1770689565
990 # # $a 063626192
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