Exploring Advanced Techniques for Sentiment Analysis and Emotion Detection in Social Media Networks

Trideb Dhar, Shreya V. Mishra, Jacintha Menezes, Nilamadhab Mishra, Ahmed Hussein Alkhayyat · 2024

Sentiment analysis and emotion identification in social media face big hurdles due to the informal and complicated language used there. Current approaches frequently suffer from problems including language, ambiguity, and sarcasm. In order to overcome these difficulties, this work presents the BERT + Fine-Tuned Classifier model, which makes use of BERT's sophisticated contextual knowledge. Preprocessing data, domain-specific tailoring, and real-time deployment are all part of the method, which aims to increase the precision and flexibility of social media text analysis. This solution gives a better framework for getting around the drawbacks of conventional techniques and gives a more efficient way to analyze sentiment and emotions in social media settings.

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