SEMANTIC ROLE LABELING FOR GENERATING TEMPLATE OF INDONESIAN NEWS SENTENCES

News templates have been widely used in automatic news generation. Indrayani and Khodra (2018) has generated Indonesian news automatically with manually defined templates. However, automated generation of Indonesian news sentences template had never been done before. Semantic Role Labeling (SRL)...

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Main Author: Edria Devina, Irene
Format: Final Project
Language:Indonesia
Online Access:https://digilib.itb.ac.id/gdl/view/40102
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Institution: Institut Teknologi Bandung
Language: Indonesia
id id-itb.:40102
spelling id-itb.:401022019-07-01T08:33:54ZSEMANTIC ROLE LABELING FOR GENERATING TEMPLATE OF INDONESIAN NEWS SENTENCES Edria Devina, Irene Indonesia Final Project automatic template generation, semantic role labeling, highway connection, dropout, hard constraints. INSTITUT TEKNOLOGI BANDUNG https://digilib.itb.ac.id/gdl/view/40102 News templates have been widely used in automatic news generation. Indrayani and Khodra (2018) has generated Indonesian news automatically with manually defined templates. However, automated generation of Indonesian news sentences template had never been done before. Semantic Role Labeling (SRL) is a process of giving label to a word or phrase in a sentence according to its semantic role based on the sentence’s predicate. In this final project, a system for automatic template generation using SRL will be built. A dataset for Indonesian semantic role labeling does not exist publicly, so collecting Indonesian sentences and manually labeling them based on PropBank (Martha and Palmer, 2005) will be done. The SRL model is built based on the research by He et al. (2017). This final project will use BiLSTM with highway connection, dropout, recurrent dropout, and hard constraints to get the best configuration. The result from SRL will be saved as a template and the difference between automatically generated template and manually generated template will be analyzed. The best configuration, 2 layer BiLSTM with dropout, recurrent dropout, and hard constraints, managed to get F1 score of 0.92 for token level and 0.84 for sentence level. The automatically generated templates also possess similar quality with manually generated templates. text
institution Institut Teknologi Bandung
building Institut Teknologi Bandung Library
continent Asia
country Indonesia
Indonesia
content_provider Institut Teknologi Bandung
collection Digital ITB
language Indonesia
description News templates have been widely used in automatic news generation. Indrayani and Khodra (2018) has generated Indonesian news automatically with manually defined templates. However, automated generation of Indonesian news sentences template had never been done before. Semantic Role Labeling (SRL) is a process of giving label to a word or phrase in a sentence according to its semantic role based on the sentence’s predicate. In this final project, a system for automatic template generation using SRL will be built. A dataset for Indonesian semantic role labeling does not exist publicly, so collecting Indonesian sentences and manually labeling them based on PropBank (Martha and Palmer, 2005) will be done. The SRL model is built based on the research by He et al. (2017). This final project will use BiLSTM with highway connection, dropout, recurrent dropout, and hard constraints to get the best configuration. The result from SRL will be saved as a template and the difference between automatically generated template and manually generated template will be analyzed. The best configuration, 2 layer BiLSTM with dropout, recurrent dropout, and hard constraints, managed to get F1 score of 0.92 for token level and 0.84 for sentence level. The automatically generated templates also possess similar quality with manually generated templates.
format Final Project
author Edria Devina, Irene
spellingShingle Edria Devina, Irene
SEMANTIC ROLE LABELING FOR GENERATING TEMPLATE OF INDONESIAN NEWS SENTENCES
author_facet Edria Devina, Irene
author_sort Edria Devina, Irene
title SEMANTIC ROLE LABELING FOR GENERATING TEMPLATE OF INDONESIAN NEWS SENTENCES
title_short SEMANTIC ROLE LABELING FOR GENERATING TEMPLATE OF INDONESIAN NEWS SENTENCES
title_full SEMANTIC ROLE LABELING FOR GENERATING TEMPLATE OF INDONESIAN NEWS SENTENCES
title_fullStr SEMANTIC ROLE LABELING FOR GENERATING TEMPLATE OF INDONESIAN NEWS SENTENCES
title_full_unstemmed SEMANTIC ROLE LABELING FOR GENERATING TEMPLATE OF INDONESIAN NEWS SENTENCES
title_sort semantic role labeling for generating template of indonesian news sentences
url https://digilib.itb.ac.id/gdl/view/40102
_version_ 1821997988338204672