JOURNAL ARTICLE

Decoding sarcasm: unveiling nuances in newspaper headlines

D. SumaM. Raviraja HollaD. M.

Year: 2024 Journal:   International Journal of Power Electronics and Drive Systems/International Journal of Electrical and Computer Engineering Vol: 14 (3)Pages: 3011-3011   Publisher: Institute of Advanced Engineering and Science (IAES)

Abstract

This study navigates the intricate landscape of sarcasm detection within the condensed confines of newspaper titles, addressing the nuanced challenge of decoding layered meanings. Leveraging natural language processing (NLP) techniques, we explore the efficacy of various machine learning models—linear regression, support vector machines (SVM), random forest, na¨ıve Bayes multinomial, and gaussian na¨ıve Bayes—tailored for sarcasm detection. Our investigation aims to provide insights into sarcasm within the succinct framework of newspaper titles, offering a comparative analysis of the selected models. We highlight the varied strengths and weaknesses of these models. Random forest exhibits superior performance, achieving a remarkable 94% accuracy in accurately identifying sarcasm in text. It is closely trailed by SVM with 90% accuracy and logistic regression with 83% accuracy.

Keywords:
Sarcasm Support vector machine Artificial intelligence Multinomial logistic regression Random forest Computer science Natural language processing Newspaper Naive Bayes classifier Machine learning Decoding methods Bayes' theorem Psychology Linguistics Bayesian probability Irony Sociology Algorithm

Metrics

3
Cited By
1.92
FWCI (Field Weighted Citation Impact)
27
Refs
0.81
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Sentiment Analysis and Opinion Mining
Physical Sciences →  Computer Science →  Artificial Intelligence
Advanced Text Analysis Techniques
Physical Sciences →  Computer Science →  Artificial Intelligence
Topic Modeling
Physical Sciences →  Computer Science →  Artificial Intelligence

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