首页> 外文会议>Fourteenth Annual Neural Information Processing Systems (NIPS) Conference, 14th, Nov 27-Dec 2, 2000, Colorado >Place Cells and Spatial Navigation based on 2d Visual Feature Extraction, Path Integration, and Reinforcement Learning
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Place Cells and Spatial Navigation based on 2d Visual Feature Extraction, Path Integration, and Reinforcement Learning

机译:基于二维视觉特征提取,路径整合和强化学习的位置单元和空间导航

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We model hippocampal place cells and head-direction cells by combining allothetic (visual) and idiothetic (proprioceptive) stimuli. Visual input, provided by a video camera on a miniature robot, is preprocessed by a set of Gabor filters on 31 nodes of a log-polar retinotopic graph. Unsu-pervised Hebbian learning is employed to incrementally build a population of localized overlapping place fields. Place cells serve as basis functions for reinforcement learning. Experimental results for goal-oriented navigation of a mobile robot are presented.
机译:我们通过组合等速(视觉)刺激和白速(本体感受)刺激,对海马体细胞和头部方向细胞进行建模。微型机器人上的摄像机提供的视觉输入由对数极视视网膜图的31个节点上的一组Gabor滤波器进行预处理。使用未经监督的Hebbian学习来逐步构建局部重叠的场所场。位置单元充当强化学习的基础功能。提出了针对目标的移动机器人导航实验结果。

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