April 2017
Intermediate to advanced
320 pages
7h 46m
English
Reinforcement Learning (RL) aims to create systems that will learn and, at the same time, adapt to changes in the environment in which they are located, using a reward that is assigned to each action performed.
Software systems that process information in this way are called intelligent agents.
These agents decide to take an action based on the following:
To change the system state and maximize its long term rewards, and agent selects the action to be performed by continuously monitoring its environment.
To obtain a large reward and, therefore, optimize the Reinforcement Learning procedure, the agent must prefer actions that, in the past, have produced ...
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