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Flexible couplings: diffusing neuromodulators and adaptive robotics

机译:灵活的耦合:扩散神经调节器和自适应机器人

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摘要

Recent years have seen the discovery of freely diffusing gaseous neurotransmitters, such as nitric oxide (NO), in biological nervous systems. A type of artificial neural network (ANN) inspired by such gaseous signaling, the GasNet, has previously been shown to be more evolvable than traditional ANNs when used as an artificial nervous system in an evolutionary robotics setting, where evolvability means consistent speed to very good solutions¿here, appropriate sensorimotor behavior-generating systems. We present two new versions of the GasNet, which take further inspiration from the properties of neuronal gaseous signaling. The plexus model is inspired by the extraordinary NO-producing cortical plexus structure of neural fibers and the properties of the diffusing NO signal it generates. The receptor model is inspired by the mediating action of neurotransmitter receptors. Both models are shown to significantly further improve evolvability. We describe a series of analyses suggesting that the reasons for the increase in evolvability are related to the flexible loose coupling of distinct signaling mechanisms, one ¿chemical¿ and one ¿electrical.¿
机译:近年来,已经发现在生物神经系统中自由扩散气态神经递质(如一氧化氮(NO))的发现。以前已经证明,受此类气体信号启发的一种人工神经网络(GasNet)在进化机器人环境中用作人工神经系统时,比传统的人工神经网络具有更大的进化能力。解决方案在这里,适当的感觉运动行为生成系统。我们介绍了GasNet的两个新版本,它们从神经元气体信号传递的特性中获得了进一步的启发。神经丛模型的灵感来自于神经纤维异常产生NO的皮质神经丛结构及其所产生的NO扩散信号的特性。受体模型受到神经递质受体介导作用的启发。两种模型均显示出可显着进一步改善可进化性。我们描述了一系列分析,这些分析表明,可进化性增加的原因与不同信号机制(一个“化学”和一个“电”)的灵活松散耦合有关。

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