Please use this identifier to cite or link to this item: http://drsr.daiict.ac.in//handle/123456789/1021
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dc.contributor.advisorMajumder, Prasenjit
dc.contributor.authorPrajapati, Raj B.
dc.date.accessioned2022-05-06T18:25:05Z
dc.date.available2023-02-24T18:25:05Z
dc.date.issued2021
dc.identifier.citationPrajapati, Raj B. (2021). Development of Neural Machine Translation Systems for Indian Languages. Dhirubhai Ambani Institute of Information and Communication Technology. viii, 26 p. (Acc.No: T00956)
dc.identifier.urihttp://drsr.daiict.ac.in//handle/123456789/1021
dc.description.abstractMachine Translation has became a very promising field with the recent advent of Neural Machine Translation (NMT) systems.A lot of work has been done in a small span of time, starting from bilingual models to complex multilingual models which can incorporate many languages at once. Building NMT systems for Indian languages is not an easy task and we often have to embed linguistic information to make it more robust and effective.The literature survey enlists different neural machine translation approaches as well as some research done on direct speech to speech translation. However, in the recent years the standard practices in NMT which are supervised in nature have not been upto mark so semi-supervised and unsupervised efforts have also been in existence. In this report we have compiled all the efforts and experiments done so far to develop neural machine translation systems for Indian languages and related components , starting from baseline modelling to use of feature injections , applying transfer learning, use of language models
dc.subjectNeural Machine Translation
dc.subjectTransformer
dc.subjectAttention Mechanisms
dc.subjectData Sparsity
dc.subjectLanguage embeddings
dc.subjectSentence embeddings
dc.subjectTransfer learning
dc.subjectSubword modelling
dc.subjectLanguage Modelling
dc.classification.ddc418.954 PRA
dc.titleDevelopment of Neural Machine Translation Systems for Indian Languages
dc.typeDissertation
dc.degreeM. Tech
dc.student.id201911029
dc.accession.numberT00956
Appears in Collections:M Tech Dissertations

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