Abstract
The process of finding the correct sense of a word in context is known as word sense disambiguation (WSD). In the field of natural language processing, WSD has become a growing research area. Over the decades, so many researchers have proposed the many approaches to WSD. A development of this field has created the significant impact on several Web-based applications such as information retrieval and information extraction. This paper contains the description of various approaches such as knowledge-based, supervised, unsupervised and semi-supervised. This paper also describes the various applications of WSD, such as information retrieval, machine translation, speech recognition, computational advertising, text processing, classification of documents and biometrics.
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Chandra, G., Dwivedi, S. K., Verma, S. B., & Dixit, M. (2024). A Systematic Analysis of Various Word Sense Disambiguation Approaches. Advances in Distributed Computing and Artificial Intelligence Journal, 13. https://doi.org/10.14201/adcaij.31602
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