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Dokumenttyp:
Masterarbeit
Art der Studienarbeit:
Experimentell
Autor(en):
Yi-Han Hsieh
Titel:
Second Order training for Natural Language Processing using Newton-CG Optimizer
Abstract:
This thesis presents a second-order optimizer called Newton-CG to solve a Portuguese to English Neural Machine Translation (NMT) task on the most dominant NMT model, Transformer. We mainly focus on comparing the performance between Newton-CG and two popular first-order optimizers, Adam and Stochastic gradient descent(SGD). In our previous research, the Newton-CG has already gained speed-up and accuracy in image classification. Besides, Newton-CG has shown higher accuracy than other first-or...     »
Jahr:
2021
Quartal:
4. Quartal
Jahr / Monat:
2021-10
Monat:
Oct
Sprache:
en
Hochschule / Universität:
Technical University of Munich
Fakultät:
Fakultät für Informatik
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