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Computational Model for Reward-Based Generation and Maintenance of Motivation

机译:基于奖励的动机产生和维持的计算模型

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In this paper, a computational model for the motivation process is presented that takes into account the reward pathway for motivation generation and associative learning for maintaining motivation through Hebbian learning approach. The reward prediction error is used to keep motivation maintained. These aspects are backed by recent neuroscientific models and literature. Simulation experiments have been performed by creating scenarios for student learning through rewards and controlling their motivation through regulation. Mathematical analysis is provided to verify the dynamic properties of the model.
机译:本文介绍了动机过程的计算模型,考虑了通过Hebbian学习方法维持动机的动机发电和关联学习的奖励途径。奖励预测误差用于保持动力维护。最近的神经科学模型和文学支持这些方面。通过创建学生学习的情景,通过奖励和通过监管控制其动机来进行模拟实验。提供数学分析以验证模型的动态属性。

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