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Hierarchical Representations of Behavior for Efficient Creative Search

机译:高效创意搜索行为的分层表示

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We present a computational framework in which to explore the generation of creative behavior in artificial systems. In particular, we adopt an evolutionary perspective of human creative processes and outline the essential components of a creative system this view entails. These components are implemented in a hierarchical reinforcement learning framework and the creative potential of the system is demonstrated in a simple artificial domain. The results presented here lend support to our conviction that creative thought and behavior are generated through the interaction of a sufficiently sophisticated variation mechanism and a comparably sophisticated selection mechanism.
机译:我们展示了一种计算框架,在该计算框架中探讨了人工系统中的创造性行为的产生。特别是,我们采用了人类创意过程的进化视角,概述了创意体系的基本组成部分,这一观点需要。这些组件在分层加强学习框架中实现,并且在简单的人造领域中证明了系统的创造潜力。这里提出的结果为我们的信念提供了支持,通过足够复杂的变化机制的相互作用和相对复杂的选择机制来产生创造性思想和行为。

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