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A neural network model for development of reaching and pointing based on the interaction of forward and inverse transformations

机译:基于正反变换交互作用的到达和指向发展神经网络模型

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摘要

Pointing is one of the communicative actions that infants acquire during their first year of life. Based on a hypothesis that early pointing is triggered by emergent reaching behavior toward objects placed at out‐of‐reach distances, we proposed a neural network model that acquires reaching without explicit representation of ‘targets’. The proposed model controls a two‐joint arm in a horizontal plane, and it learns a loop of internal forward and inverse transformations; the former predicts the visual feedback of hand position and the latter generates motor commands from the visual input through random generation of the motor commands. In the proposed model, the motor output and visual input were represented by broadly tuned neural units. Even though explicit ‘targets’ were not presented during learning, the simulation successfully generated reaching toward visually presented objects at within‐reach and out‐of‐reach distances.
机译:指点是婴儿在生命的第一年中所获得的一种交流行为。基于这样一种假设,即早期指向是由对超出距离的对象的紧急到达行为触发的,我们提出了一种神经网络模型,该模型无需明确表示“目标”即可获得到达。所提出的模型控制水平面上的两关节臂,并且学习内部正向和反向变换的循环;前者预测手位置的视觉反馈,而后者则通过随机产生运动命令从视觉输入中产生运动命令。在提出的模型中,电机输出和视觉输入由广泛调谐的神经单元表示。即使在学习过程中未显示明确的“目标”,该模拟也成功生成了到达范围内和范围外的可视对象的范围。

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