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Bengali Named Entity Recognition

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dc.contributor.author Rifat, Md Jamiur Rahman
dc.contributor.author Abujar, Sheikh
dc.contributor.author Noori, Sheak Rashed Haider
dc.contributor.author Hossain, Syed Akhter
dc.date.accessioned 2022-01-20T07:02:57Z
dc.date.available 2022-01-20T07:02:57Z
dc.date.issued 2019-07-08
dc.identifier.uri http://dspace.daffodilvarsity.edu.bd:8080/handle/123456789/6837
dc.description.abstract Sequence labeling is a complex task in natural language processing where the data set used to be biased to a specific class mainly to “not named entity” class. Previously several machine learning approaches were harnessed for Bengali named entity recognition where additional information like Parts Of Speech (POS) tag, suffix value, optimal number of context words were required. This study aspires to give an overview of past methods on Bengali named entity task along with leveraging different neural networks on a new dataset at an easy way. A dataset consisting of 96697 tokens were annotated in the house where 67554 tokens were applied for training and 29143 words were for testing purposes. Then several deep learning methods were exploited where Bidirectional Gated Recurrent Unit (BGRU) came up victorious with f1 score 72.66%. The value may not be promising after comparing with other methods but different studies calculated the precision and recall value differently. Increasing the number of training data could raise the performance metrics along with other forms of word embedding. en_US
dc.language.iso en_US en_US
dc.publisher 2019 10th International Conference on Computing, Communication and Networking Technologies (ICCCNT), IEEE en_US
dc.subject NER en_US
dc.subject BLSTM en_US
dc.subject CNN en_US
dc.subject BGRU en_US
dc.subject Deep learning en_US
dc.title Bengali Named Entity Recognition en_US
dc.title.alternative a Survey with Deep Learning Benchmark en_US
dc.type Article en_US


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