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Dokumenttyp:
Masterarbeit
Autor(en):
Julian Suk
eMail-Adresse:
j.suk@gmx.de
Titel:
Application of second-order optimisation for large-scale deep learning
Abstract:
Deep neural networks have become some of the most prominent models in machine learning due to their flexibility and therefore, their broad applicability. The training of large-scale deep neural networks requires vast computational resources. Stochastic gra- dient descent methods still enjoy great popularity but Hessian-based optimisation tech- niques are on the rise. While computing the second derivative of the loss function is still computationally expensive, a possibly much faster converg...     »
Aufgabensteller:
Hans-Joachim Bungartz
Betreuer:
Severin Reiz
Jahr:
2020
Quartal:
2. Quartal
Jahr / Monat:
2020-05
Monat:
May
Seiten/Umfang:
99
Sprache:
en
Hochschule / Universität:
TUM
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