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Evolution of Integrated Causal Structures in Animats Exposed to Environments of Increasing Complexity

机译:复杂性日益增加的环境中动画中整体因果结构的演变

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摘要

Natural selection favors the evolution of brains that can capture fitness-relevant features of the environment's causal structure. We investigated the evolution of small, adaptive logic-gate networks (“animats”) in task environments where falling blocks of different sizes have to be caught or avoided in a ‘Tetris-like’ game. Solving these tasks requires the integration of sensor inputs and memory. Evolved networks were evaluated using measures of information integration, including the number of evolved concepts and the total amount of integrated conceptual information. The results show that, over the course of the animats' adaptation, i) the number of concepts grows; ii) integrated conceptual information increases; iii) this increase depends on the complexity of the environment, especially on the requirement for sequential memory. These results suggest that the need to capture the causal structure of a rich environment, given limited sensors and internal mechanisms, is an important driving force for organisms to develop highly integrated networks (“brains”) with many concepts, leading to an increase in their internal complexity.
机译:自然选择有利于大脑的进化,可以捕捉环境因果结构中与健身相关的特征。我们研究了任务环境中小型,自适应逻辑门网络(“ animats”)的演变,在这种环境中,必须在“类似俄罗斯方块”的游戏中捕获或避免不同大小的下降块。解决这些任务需要集成传感器输入和内存。使用信息集成的方法对演进的网络进行了评估,其中包括演进的概念的数量和集成的概念信息的总量。结果表明,在动画的适应过程中,i)概念的数量在增加; ii)综合概念信息的增加; iii)这种增加取决于环境的复杂性,尤其是对顺序存储的要求。这些结果表明,在传感器和内部机制有限的情况下,需要捕获丰富环境的因果结构,是生物发展具有许多概念的高度集成网络(“大脑”)的重要驱动力,导致它们的数量增加内部复杂性。

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