Efficient Learning and Planning Within the Dyna Framework
Jing Peng; Williams, Ronald, J.; Jing Peng, Northeastern University; Williams, Ronald, J., Northeastern University
Журнал:
Adaptive Behavior
Дата:
1993
Аннотация:
Sutton's Dyna framework provides a novel and computationally appealing way to integrate learning, planning, and reacting in autonomous agents. Examined here is a class of strategies designed to enhance the learning and planning power of Dyna systems by increasing their computational efficiency. The benefit of using these strategies is demonstrated on some simple abstract learning tasks.
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