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A Fly-Inspired Mushroom Bodies Model for Sensory-Motor Control Through Sequence and Subsequence Learning

机译:通过序列和子序列学习的飞行灵感蘑菇体模型,用于感觉运动控制。

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摘要

Classification and sequence learning are relevant capabilities used by living beings to extract complex information from the environment for behavioral control. The insect world is full of examples where the presentation time of specific stimuli shapes the behavioral response. On the basis of previously developed neural models, inspired by Drosophila melanogaster, a new architecture for classification and sequence learning is here presented under the perspective of the Neural Reuse theory. Classification of relevant input stimuli is performed through resonant neurons, activated by the complex dynamics generated in a lattice of recurrent spiking neurons modeling the insect Mushroom Bodies neuropile. The network devoted to context formation is able to reconstruct the learned sequence and also to trace the subsequences present in the provided input. A sensitivity analysis to parameter variation and noise is reported. Experiments on a roving robot are reported to show the capabilities of the architecture used as a neural controller.
机译:分类和序列学习是生物用于从环境中提取复杂信息以进行行为控制的相关功能。昆虫世界到处都是例子,其中特定刺激的出现时间决定了行为反应。在果蝇黑腹果蝇启发下,在先前开发的神经模型的基础上,本文以神经重用理论为视角,提出了一种用于分类和序列学习的新架构。相关输入刺激的分类是通过共振神经元进行的,共振神经元由模拟昆虫蘑菇体神经堆的递归尖峰神经元的晶格中产生的复杂动力学激活。专门用于上下文形成的网络能够重建学习到的序列,并且还可以跟踪提供的输入中存在的子序列。报告了对参数变化和噪声的敏感性分析。据报道,在粗纱机器人上进行的实验表明了该结构用作神经控制器的功能。

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