JOURNAL ARTICLE

A Sense Annotated Corpus for All-Words Urdu Word Sense Disambiguation

Ali SaeedRao Muhammad Adeel NawabMark StevensonPaul Rayson

Year: 2019 Journal:   ACM Transactions on Asian and Low-Resource Language Information Processing Vol: 18 (4)Pages: 1-14   Publisher: Association for Computing Machinery

Abstract

Word Sense Disambiguation (WSD) aims to automatically predict the correct sense of a word used in a given context. All human languages exhibit word sense ambiguity, and resolving this ambiguity can be difficult. Standard benchmark resources are required to develop, compare, and evaluate WSD techniques. These are available for many languages, but not for Urdu, despite this being a language with more than 300 million speakers and large volumes of text available digitally. To fill this gap, this study proposes a novel benchmark corpus for the Urdu All-Words WSD task. The corpus contains 5,042 words of Urdu running text in which all ambiguous words (856 instances) are manually tagged with senses from the Urdu Lughat dictionary. A range of baseline WSD models based on n -gram are applied to the corpus, and the best performance (accuracy of 57.71%) is achieved using word 4-gram. The corpus is freely available to the research community to encourage further WSD research in Urdu.

Keywords:
Urdu Computer science Natural language processing Ambiguity Artificial intelligence Word (group theory) Benchmark (surveying) Word-sense disambiguation Context (archaeology) Task (project management) SemEval Linguistics WordNet

Metrics

19
Cited By
1.54
FWCI (Field Weighted Citation Impact)
68
Refs
0.86
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Natural Language Processing Techniques
Physical Sciences →  Computer Science →  Artificial Intelligence
Topic Modeling
Physical Sciences →  Computer Science →  Artificial Intelligence
Speech and dialogue systems
Physical Sciences →  Computer Science →  Artificial Intelligence

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