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DeepQ learning in Atari Games

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Trabalho de conclusão de curso - Rafael Galdeano Barsotti (269.8Kb)
Date
2018-11
Author
Barsotti, Rafael Galdeano
Advisor
Souza, Renato Rocha
Metadata
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Abstract
The aim of this paper is to develop an AI agent with self-learning capabilities that is able to play classical Atari console games without human intervention and achieve next to human level performance. In order to achieve our goal we will use the OpenAI Gym library that will provide us with a simulated atari game enviorment where we are able to collect important information regarding the agent and it's enviorment. Initially our AI agent is expected to randomly explore the enviorment through the use of Monte Carlo Tree Search and build a Q-Table that will allow us to train a neural network to generalize past experiences and help the agent take the best possible acation given the current state of the game.
URI
https://hdl.handle.net/10438/27858
Collections
  • FGV EMAp - Trabalhos de Conclusão de Curso [45]
Knowledge Areas
Matemática
Subject
Aprendizado do compurador
Jogos por computador
Redes neurais (Computação)
Keyword
Atari Games
DeepQ
Learning

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