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September 28, 2025Mathematics10 citationsOpen Access

LightFakeDetect: A Lightweight Model for Deepfake Detection in Videos That Focuses on Facial Regions

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SASarab AlMuhaidebHAHessa I. AlshayaLALaila Almutairi

Key Points

  • Achieved 98.2% accuracy on the Celeb-DF v2 dataset, indicating high performance in deepfake detection.
  • Utilized a combination of MobileNet, CBAM, and GRU for robust feature extraction and temporal analysis.
  • Evaluated on the Deepfake Detection Challenge and Celeb-DF v2 datasets, showing strong effectiveness and efficiency.
  • Highlights the need for lightweight models in scenarios where computational resources are limited.

Abstract

In recent years, the proliferation of forged videos, known as deepfakes, has escalated significantly, primarily due to advancements in technologies such as Generative Adversarial Networks (GANs), diffusion models, and Vision Language Models (VLMs). These deepfakes present substantial risks, threatening political stability, facilitating celebrity impersonation, and enabling tampering with evidence. As the sophistication of deepfake technology increases, detecting these manipulated videos becomes increasingly challenging. Most of the existing deepfake detection methods use Convolutional Neural Networks (CNNs), Recurrent Neural Networks (RNNs), or Vision Transformers (ViTs), achieving strong accuracy but exhibiting high computational demands. This highlights the need for a lightweight yet effective pipeline for real-time and resource-limited scenarios. This study introduces a lightweight deep learning model for deepfake detection in order to address this emerging threat. The model incorporates three integral components: MobileNet for feature extraction, a Convolutional Block Attention Module (CBAM) for feature enhancement, and a Gated Recurrent Unit (GRU) for temporal analysis. Additionally, a pre-trained Multi-Task Cascaded Convolutional Network (MTCNN) is utilized for face detection and cropping. The model is evaluated using the Deepfake Detection Challenge (DFDC) and Celeb-DF v2 datasets, demonstrating impressive performance, with 98.2% accuracy and a 99.0% F1-score on Celeb-DF v2 and 95.0% accuracy and a 97.2% F1-score on DFDC, achieving a commendable balance between simplicity and effectiveness.

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Cite This Study

AlMuhaideb et al. (2025) studied this question.

synapsesocial.com/papers/68d9052141e1c178a14f524chttps://doi.org/10.3390/math13193088
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