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An improved conversation emotion detection using hybrid f-nn classifier

Vichare, Abhishek A.Varma, Satishkumar L.
Indonesian Journal of Electrical Engineering and Computer Science (Sinta 1)Vol. 40 No. 1 (2025)1 Oktober 2025
DOI10.11591/ijeecs.v40.i1.pp490-498

Abstrak

Emotion recognition from text is a crucial task in natural language processing (NLP) with applications in sentiment analysis, human-computer interaction, and psychological research. In this study, we present a novel approach for text-based emotion recognition using a modified firefly algorithm (MFA). The firefly algorithm is a swarm intelligence method inspired by the bioluminescent communication of fireflies, and it is known for its simplicity and efficiency in optimization tasks. In this paper MFAbased model is evaluated on the international survey on emotion antecedents and reactions (ISEAR) dataset, which includes text entries categorized by various emotions. Experimental results indicate that our approach achieved promising outcomes. Specifically, the proposed method, which combines the firefly algorithm with a multilayer perceptron (MLP), attained an accuracy of 92.07%, surpassing most other approaches reported in the literature.

Kata Kunci

Computer engineeringNLPEmotion recognitionFirefly algorithmMachine LearningNLPSwarm intelligence

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An improved conversation emotion detection using hybrid f-nn classifier | Indonesian Journal of Electrical Engineering and Computer Science | Publiora