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Bio-Inspired Artificial Intelligence with Natural Language Processing Based on Deceptive Content Detection in Social
Amani Abdulrahman Albraikan1, Mohammed Maray2, Faiz Abdullah Alotaibi3
1Department of Information Systems, College of Computer and Information Sciences, Princess Nourah Bint Abdulrahman University, P.O. Box 84428, Riyadh 11671, Saudi Arabia.
This study introduces a new method, BAINLP-DCD, for detecting fake news on social media using advanced AI. The technique achieved high accuracy, improving deceptive content detection.
Area of Science:
- Artificial Intelligence
- Natural Language Processing
- Machine Learning
Background:
- Fake news detection on social media is a growing concern.
- Existing Machine Learning (ML) and Deep Learning (DL) models are widely used.
- There is a need for improved techniques to identify deceptive content.
Purpose of the Study:
- To propose a novel Bio-inspired Artificial Intelligence with Natural Language Processing Deceptive Content Detection (BAINLP-DCD) technique.
- To enhance the accuracy of fake news detection in social networking environments.
Main Methods:
- The BAINLP-DCD technique employs data preprocessing for data transformation.
- A Multi-Head Self-attention Bi-directional Long Short-Term Memory (MHS-BiLSTM) model is utilized for deceptive content detection.
- The African Vulture Optimization Algorithm (AVOA) optimizes the hyperparameters of the MHS-BiLSTM model.
Main Results:
- The BAINLP-DCD technique demonstrated enhanced performance in detecting fake news.
- Maximum accuracy of 92.19% was achieved on the BuzzFeed dataset.
- Maximum accuracy of 92.56% was achieved on the PolitiFact dataset.
Conclusions:
- The proposed BAINLP-DCD technique effectively detects deceptive content on social media.
- The integration of bio-inspired algorithms and DL models shows promise for fake news detection.
- The study highlights the potential of BAINLP-DCD for improving social media information integrity.
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