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An Iowa Gambling Task-based experiment applied to robots: A Study on Long-term Decision Making

机译:基于IOWA赌博任务的实验适用于机器人:长期决策研究

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Designing a robot’s decision-making process is challenging because it is still not completely understood even in humans. However, it is a fundamental process in the search for autonomous agents. When making decisions, we consider the short and long-term consequences of our actions, but some impairments prevent some people from seeing in the long run. Using as an inspiration an experiment carried out with humans in which decision-making is evaluated under the uncertainty of premises and results, rewards, and punishments, we created an equivalent robotics experiment. To model our agent’s state, we use a set of drives. Our agent’s goal is to reduce the distance between its homeostasis state and its needs. We trained a simulated robot with reinforcement learning, showing that long-term assessment agents can survive longer while satisfying other needs.
机译:设计机器人的决策过程是具有挑战性的,因为即使在人类中仍然没有完全理解。 但是,它是寻求自治代理的基本过程。 在做出决定时,我们考虑了我们行动的短期和长期后果,但有些损害阻碍了一些人从长远来看。 用作灵感,通过人类进行的实验,其中在房屋的不确定性和结果,奖励和惩罚下进行决策,我们创建了一个等效的机器人实验。 要模拟我们的代理状态,我们使用一组驱动器。 我们的代理人的目标是减少其稳态状态与其需求之间的距离。 我们培训了一个具有强化学习的模拟机器人,表明长期评估代理可以在满足其他需求的同时生存更长时间。

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