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2018 | OriginalPaper | Chapter

Learning Game by Profit Sharing Using Convolutional Neural Network

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Abstract

In this paper, Profit Sharing using convolutional neural network is realized. In the proposed method, action value in Profit Sharing is learned by convolutional neural network. This is a method that learns the value function of Profit Sharing instead of the value function of Q Learning used in the Deep Q-Network. By changing to an error function based on the value function of Profit Sharing which can acquire probabilistic policy in a shorter time, the proposed method is able to learn in a shorter time than the conventional Deep Q-Network. Computer experiments were carried out on Asterix of Atari 2600, and the proposed method was compared with the conventional Deep Q-Network. As a result, we confirmed that the proposed method can learn from the earlier stage than Deep Q-Network and can obtain higher score finally.

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Metadata
Title
Learning Game by Profit Sharing Using Convolutional Neural Network
Authors
Nobuaki Hasuike
Yuko Osana
Copyright Year
2018
DOI
https://doi.org/10.1007/978-3-030-01418-6_5

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