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dc.contributor.advisorNababan, Erna Budhiarti
dc.contributor.advisorMawengkang, Herman
dc.contributor.authorMandasari, Atikah Rahayu
dc.date.accessioned2024-08-27T08:50:01Z
dc.date.available2024-08-27T08:50:01Z
dc.date.issued2024
dc.identifier.urihttps://repositori.usu.ac.id/handle/123456789/96201
dc.description.abstractAutomatic translation of regional languages into Indonesian is a complex challenge in the field of natural language processing (NLP). This research aims to improve the accuracy of the Long Short Term Memory (LSTM) model in translating Batak language to Indonesian by leveraging two popular word embedding techniques, FastText and Glove. LSTM is chosen for its capability in handling long and complex sequences of data. FastText is used to capture richer word representations by considering sub-word information, while Glove is employed to obtain more global word representations based on the context in large corpora. Experiments are conducted by combining embeddings from FastText and Glove into the LSTM architecture. Results show that this combination can improve translation accuracy compared to the individual use of embeddings. Evaluation is performed using the BLEU metric to measure translation quality. This research contributes to the development of more effective regional language translation systems and demonstrates the potential of combining embedding techniques in LSTM models for other NLP applications.en_US
dc.language.isoiden_US
dc.publisherUniversitas Sumatera Utaraen_US
dc.subjectLong Short Term Memoryen_US
dc.subjectFastTexten_US
dc.subjectGloveen_US
dc.subjectSDGsen_US
dc.titlePeningkatan Akurasi Long Short-Term Memory (LSTM) Menggunakan Fasttext dan Glove untuk Penerjemah Bahasa Batak-Indonesiaen_US
dc.title.alternativeImproving The Accuracy of Long Short Term Memory (LSTM) Using Fasttext and Glove for Batak - Indonesian Translatoren_US
dc.typeThesisen_US
dc.identifier.nimNIM207038042
dc.identifier.nidnNIDN0026106209
dc.identifier.nidnNIDN8859540017
dc.identifier.kodeprodiKODEPRODI55101#Teknik Informatika
dc.description.pages65 Pagesen_US
dc.description.typeTesis Magisteren_US


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