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dc.contributor.advisorLydia, Maya Silvi
dc.contributor.advisorMuchtar, Muhammad Anggia
dc.contributor.authorAtika, Syarifah
dc.date.accessioned2024-09-09T08:27:31Z
dc.date.available2024-09-09T08:27:31Z
dc.date.issued2024
dc.identifier.urihttps://repositori.usu.ac.id/handle/123456789/96986
dc.description.abstractUlos is an important cultural heritage of North Sumatra that should be preserved. This can be accomplished by making knowledge about Ulos easily accessible to users. An approach that can be utilized in this case is the use of chatbots. There are several terms in the culture of Ulos that have similar meanings, but they have different terminologies, which often causes confusion for those who wish to learn more about Ulos. In order to address this issue, the chatbot must be able to identify user intents effectively. This study employs a BERT pre-trained model for intent classification of the Ulos information chatbot that was developed in RASA Framework. As a result of this research, the chatbot was tested with RASA Test and end to end testing. a chatbot is able to predict and answer user questions correctly with an accuracy of 96%. The chatbot was also evaluated for its ability to predict the user's intent through RASA’s test_stories test and answer it with an accuracy of 79.34%. For the end to end testing result, the chatbot’s accuracy reach 81,5% for identify user’s intent and reach 80.9% F1 score.en_US
dc.language.isoiden_US
dc.publisherUniversitas Sumatera Utaraen_US
dc.subjectUlosen_US
dc.subjectChatboten_US
dc.subjectIntent Classificationen_US
dc.subjectBERTen_US
dc.subjectRASA Frameworken_US
dc.subjectSDGsen_US
dc.titleKlasifikasi Intent pada Chatbot Pembelajaran Tenun Ulos dengan Menggunakan RASA Framework dan BERT Language Modelen_US
dc.title.alternativeIntent Classification Analysis for Ulos Weaving Learning Chatbot with RASA Framework and BERT Language Modelen_US
dc.typeThesisen_US
dc.identifier.nimNIM227056008
dc.identifier.nidnNIDN0027017403
dc.identifier.nidnNIDN0010018006
dc.identifier.kodeprodiKODEPRODI49302#Sains Data dan Kecerdasan Buatan
dc.description.pages88 Pagesen_US
dc.description.typeTesis Magisteren_US


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