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Generation of Syntax Parser on South Indian Language using Bottom-Up Parsing Technique and PCFG

Publish Year: 1402
Type: Journal paper
Language: English
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JR_JITM-15-5_002

Index date: 23 October 2022

Generation of Syntax Parser on South Indian Language using Bottom-Up Parsing Technique and PCFG abstract

In our research, we provide a statistical syntax parsing method experimented on Kannada texts, which is an official language of Karnataka, India. The dataset is downloaded from TDIL website. Using the Cocke-Younger-Kasami (CYK) parsing technique, we generated Kannada Treebank dataset from 1000 annotated sentences in the first stage. The Treebank generated in this stage contains 1000 syntactically structured sentences and it is used as input to train the syntax parser model in the second stage. We have adopted Probabilistic Context Free Grammar (PCFG) while training the parser model and extracting the Chmosky Normal Form (CNF) grammar from a Treebank dataset. The developed syntax parser model is tested on 150 raw Kannada sentences. It outputs with the most likely parse tree for each sentence and this is verified with golden Treebank. The syntax parser model generated 74.2% precision, 79.4% recall, and 75.3% F1-score respectively. The similar technique may be adopted for other low resource languages.

Generation of Syntax Parser on South Indian Language using Bottom-Up Parsing Technique and PCFG Keywords:

Generation of Syntax Parser on South Indian Language using Bottom-Up Parsing Technique and PCFG authors

Shree

Research Scholar, Visvesvaraya Technological University, Belagavi, Karnataka, Assistant Professor, BNMIT, Bengaluru, Karnataka.

B. R.

Associate Professor, Department of Information Science and Engineering, BMSCE, Bengaluru, Karnataka.

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