Journal of Data and Information Science (Dec 2019)

Identification of Sarcasm in Textual Data: A Comparative Study

  • Mehndiratta Pulkit,
  • Soni Devpriya

DOI
https://doi.org/10.2478/jdis-2019-0021
Journal volume & issue
Vol. 4, no. 4
pp. 56 – 83

Abstract

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Ever increasing penetration of the Internet in our lives has led to an enormous amount of multimedia content generation on the internet. Textual data contributes a major share towards data generated on the world wide web. Understanding people’s sentiment is an important aspect of natural language processing, but this opinion can be biased and incorrect, if people use sarcasm while commenting, posting status updates or reviewing any product or a movie. Thus, it is of utmost importance to detect sarcasm correctly and make a correct prediction about the people’s intentions.

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