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Using the Grey Wolf Aquila Synergistic Algorithm for Design Problems in Structural Engineering.
Megha Varshney1, Pravesh Kumar1, Musrrat Ali2
1Rajkiya Engineering College, Dr. APJ Abdul Kalam Kalam Technical University, Bijnor 246725, India.
This study enhances the Aquila Optimizer (AO) by integrating Grey Wolf Optimizer (GWO) strategies and quasi-opposition-based learning (QOBL). The hybrid approach improves exploration and noise robustness for complex optimization problems.
Area of Science:
- Computational Intelligence
- Optimization Algorithms
- Metaheuristic Computing
Background:
- The Aquila Optimizer (AO) is effective but can have limited exploration.
- Existing metaheuristic algorithms may struggle with noisy objective functions.
Purpose of the Study:
- To enhance the exploration capability and noise robustness of the Aquila Optimizer (AO).
- To develop a hybrid optimization algorithm by integrating Grey Wolf Optimizer (GWO) and quasi-opposition-based learning (QOBL) with AO.
Main Methods:
- A hybrid approach combining AO with GWO's alpha position for search guidance.
- Application of quasi-opposition-based learning (QOBL) in each phase of the AO algorithm.
- Benchmarking the proposed hybrid algorithm on 23 standard test functions and CEC2017 test functions.
Main Results:
- The hybrid AO-GWO-QOBL algorithm demonstrated superior performance compared to other metaheuristic algorithms.
- The enhanced algorithm showed excellent efficacy on benchmark and engineering problems.
- The integration of GWO improved AO's robustness to noisy objective functions.
Conclusions:
- The proposed hybrid optimization technique effectively addresses the exploration limitations of the AO algorithm.
- The integration of GWO and QOBL significantly improves the performance and robustness of the Aquila Optimizer.
- The enhanced algorithm is suitable for solving complex engineering problems with uncertain search spaces.
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