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September 20, 2025INTERANTIONAL JOURNAL OF SCIENTIFIC RESEARCH IN ENGINEERING AND MANAGEMENT0 citationsOpen Access

Fake News Detection using NLP and Deep Learning

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PTPallavi Devendra TawdePGPraful Gupta

Key Points

  • Deep learning models improve the classification of news articles as real or fake, enhancing accuracy.
  • Experimental results showed that these models, such as LSTM and CNN, outperform traditional machine learning methods.
  • NLP combined with deep learning techniques captures linguistic patterns and semantic meanings effectively.
  • The research contributes to developing reliable digital information ecosystems by combating misinformation.

Abstract

Abstract The rapid growth of online news and social media platforms has led to an increased spread of misinformation and fake news, posing significant social, political, and economic challenges. Traditional manual fact-checking approaches are insufficient to handle the vast amount of digital content generated daily. To address this, Natural Language Processing (NLP) combined with deep learning techniques provides an automated and effective solution for detecting fake news. This study explores various deep learning models, such as Long Short-Term Memory (LSTM) and Convolutional Neural Networks (CNN), to classify news articles as real or fake. Using text preprocessing, feature extraction, and contextual embeddings, the proposed models aim to capture linguistic patterns, semantic meaning, and contextual dependencies within news content. Experimental results on benchmark datasets demonstrate that deep learning methods achieve superior accuracy and robustness compared to traditional machine learning approaches. This work highlights the potential of NLP-driven deep learning systems in combating misinformation, thereby contributing to the development of reliable and trustworthy digital information ecosystems. Keywords: Natural Language Processing, Deep Learning, LSTM, CNN, Machine Learning.

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Cite This Study

Tawde et al. (2025) studied this question.

synapsesocial.com/papers/68d469c131b076d99fa664f0https://doi.org/10.55041/ijsrem52699
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