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Sequence Modeling with Recurrent Neural Network

thesis
posted on 2020-02-04, 03:53 authored by HUNG QUAN TRAN
Sequence modeling is a fundamental problem in Natural Language Processing (NLP) due to the sequential nature of language. With advances in Recurrent Neural Networks, this family of models has become the state-of-the-art for many sequence mapping tasks. In this thesis, we examine the effectiveness of this family of models for several classes of problems in NLP.

History

Campus location

Australia

Principal supervisor

Ingrid Zukerman

Additional supervisor 1

Gholamreza Haffari

Year of Award

2020

Department, School or Centre

Information Technology (Monash University Clayton)

Course

Doctor of Philosophy

Degree Type

DOCTORATE

Faculty

Faculty of Information Technology

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