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MRI India Journals Vol. 15 No. 1S (2026): Special Issue on Cognition, Human and Artificial Intelligence

Deep-Fake Image Detection Using Machine Learning Techniques: A Comprehensive Review

Authors

  • Manish R. Tiwari Research Scholar, Computer Engineering Department SSBT’s College of Engineering and Technology, Jalgaon, India
  • Sandip S. Patil Associate Professor, Computer Engineering Department, SSBT’s College of Engineering and Technology, Jalgaon, India

DOI:

https://doi.org/10.65521/ijaece.v15i1S.1350

Keywords:

Deepfake Detection Generative Adversarial Networks Diffusion Models Convolutional Neural Networks Cross-Dataset Generalization

Abstract

The rapid development of deep generative models like Generative Adversarial Networks (GANs) and Diffusion Models has made visual synthetic images such as deep-fake very realistic, representing a possible threat to digital trust, privacy and national security. This survey offers an overview of machine learning (ML) based methods for deep-fake image detection, including classical ML classifiers, convolution neural network (CNN) architectures attention mechanisms, multimodal systems, and hybrid feature fusion models. The paper analyses commonly-used datasets, performance evaluation criteria and the most recent state-of-arts on benchmarks such as Celeb-DF, FaceForensics++ and DeepFake Detection Challenge (DFDC). A comparison of the two approaches would discuss the advantages and drawbacks as well as generalisability issues with ML to unknown manipulations. Finally, the review points to important open challenges such as cross-dataset generalization, explainability analysis, adversarial susceptibility and multimodel deep-fake attacks-and draws future research directions to make trustful detection deep-fake systems.

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Published

2026-01-19

How to Cite

Tiwari, M. R., & Patil, S. S. (2026). Deep-Fake Image Detection Using Machine Learning Techniques: A Comprehensive Review. International Journal on Advanced Electrical and Computer Engineering, 15(1S), 137–145. https://doi.org/10.65521/ijaece.v15i1S.1350

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