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Authors:
Triebold, Philipp; Moll, Maximilian; Enkler, Hans-Georg; Pickl, Stefan
Document type:
Konferenzbeitrag / Conference Paper
Title:
From shogi and chess to reinforcement learning: A study of NNUEs in more general settings
Collection editors:
Voigt, Guido; Fliedner, Malte; Haase, Knut; Brüggemann, Wolfgang; Hoberg, Kai; Meissner, Joern
Title of conference publication:
Operations Research Proceedings 2023
Subtitle of conference publication:
Selected Papers of the Annual International Conference of the German Operations Research Society (GOR), Germany, August 29 - September 1, 2023
Series title:
Lecture Notes in Operations Research (LNOR)
Conference title:
International Conference of the German Operations Research Society (2023, Hamburg)
Venue:
Hamburg
Year of conference:
2023
Date of conference beginning:
29.08.2023
Date of conference ending:
01.09.2023
Place of publication:
Cham
Publisher:
Springer Nature Switzerland
Year:
2025
Pages from - to:
567-572
Language:
Englisch
Abstract:
The continued development of evaluation functions for use in chess and shogi engines resulted in the development of Efficiently Updatable Neural Networks in 2018 by Yu Nasu. These utilise the full potential of modern processors foregoing the need for specialised hardware and thus decreasing cost and energy consumption. There are three central optimisations, leveraging the sparsity and redundancy in the encoding, lowering the bit width and pivoting all calculations to integers, and lastly using a...     »
ISBN:
978-3-031-58405-3
ISSN:
2731-0418
DOI:
10.1007/978-3-031-58405-3_72
URL:
https://doi.org/10.1007/978-3-031-58405-3_72
Department:
Fakultät für Informatik
Institute:
INF 1 - Institut für Theoretische Informatik, Mathematik und Operations Research
Chair:
Brattka, Vasco
Open Access yes or no?:
Nein / No
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