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Robotic and neuronal simulation of the hippocampus and rat navigation.

机译:海马和大鼠导航的机器人和神经元模拟。

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摘要

The properties of hippocampal place cells are reviewed, with particular attention to the nature of the internal and external signals that support their firing. A neuronal simulation of the firing of place cells in open-field environments of varying shape is presented. This simulation is coupled with an existing model of how place-cell firing can be used to drive navigation, and is tested by implementation as a miniature mobile robot. The sensors on the robot provide visual, odometric and short-range proximity data, which are combined to estimate the distance of the walls of the enclosure from the robot and the robot's current heading direction. These inputs drive the hippocampal simulation, in which the robot's location is represented as the firing of place cells. If a goal location is encountered, learning occurs in connections from the concurrently active place cells to a set of 'goal cells', which guide subsequent navigation, allowing the robot to return to an unmarked location. The system shows good agreement with actual place-cell firing, and makes predictions regarding the firing of cells in the subiculum, the effect of blocking long-term synaptic changes, and the locus of search of rats after deformation of their environment.
机译:综述了海马体细胞的特性,特别注意支持其发射的内部和外部信号的性质。提出了在形状变化的开放视野环境中放置细胞点火的神经元模拟。该模拟与现有模型有关如何使用位置单元发射来驱动导航相结合,并通过实现为微型移动机器人进行了测试。机器人上的传感器提供视觉,里程和近距离数据,这些数据组合在一起可以估算出外壳壁距机器人的距离以及机器人当前的前进方向。这些输入驱动海马仿真,在该仿真中,机器人的位置被表示为位置细胞的发射。如果遇到目标位置,则会在从同时活动的位置单元格到一组“目标单元格”的连接中进行学习,从而指导后续导航,从而使机器人可以返回未标记的位置。该系统与实际的位置细胞放电显示出良好的一致性,并且可以预测下丘脑中的细胞放电,阻止长期突触变化的作用以及环境变形后大鼠的搜寻位置。

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