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Hybrid AHA-PLO Metaheuristic Feature Selection for Robust Deepfake Video Detection
by
Alkan, Mustafa
, Koçak, Aynur
in
Accuracy
/ Algorithms
/ Classification
/ Datasets
/ Deep learning
/ Deepfake
/ deepfake image detection
/ Feature selection
/ Foraging behavior
/ Heuristic
/ hybrid model
/ meta-heuristic optimization algorithms
/ Neural networks
/ Optimization algorithms
2025
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Hybrid AHA-PLO Metaheuristic Feature Selection for Robust Deepfake Video Detection
by
Alkan, Mustafa
, Koçak, Aynur
in
Accuracy
/ Algorithms
/ Classification
/ Datasets
/ Deep learning
/ Deepfake
/ deepfake image detection
/ Feature selection
/ Foraging behavior
/ Heuristic
/ hybrid model
/ meta-heuristic optimization algorithms
/ Neural networks
/ Optimization algorithms
2025
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Do you wish to request the book?
Hybrid AHA-PLO Metaheuristic Feature Selection for Robust Deepfake Video Detection
by
Alkan, Mustafa
, Koçak, Aynur
in
Accuracy
/ Algorithms
/ Classification
/ Datasets
/ Deep learning
/ Deepfake
/ deepfake image detection
/ Feature selection
/ Foraging behavior
/ Heuristic
/ hybrid model
/ meta-heuristic optimization algorithms
/ Neural networks
/ Optimization algorithms
2025
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Hybrid AHA-PLO Metaheuristic Feature Selection for Robust Deepfake Video Detection
Journal Article
Hybrid AHA-PLO Metaheuristic Feature Selection for Robust Deepfake Video Detection
2025
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Overview
The widespread use of deepfake technologies has increased the demand for accurate and effective detection methods. This study presents a novel deepfake detection framework that utilizes meta-heuristic feature selection to enhance classification performance. The performance of the Artificial Hummingbird Algorithm (AHA), Polar Lights Optimization (PLO), and their hybrid model, AHA-PLO, is investigated. The hybrid model aims to conduct a more effective search in the feature space by combining AHA’s global exploration ability with PLO’s local exploitation precision. Experimental evaluations conducted on two benchmark datasets, FaceForensics++ (FF++) and Celeb-DF (CDF), demonstrate that the proposed AHA-PLO model consistently outperforms its individual components, achieving state-of-the-art AUC scores of 99.36% on FF++ and 98.78% on CDF. These findings support the hybrid model’s potential as a robust and generalizable solution for deepfake video detection.
Publisher
MDPI AG
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