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Interactions of spatial strategies producing generalization gradient and blocking: A computational approach

机译:产生广义梯度和分块的空间策略的相互作用:一种计算方法

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摘要

We present a computational model of spatial navigation comprising different learning mechanisms in mammals, i.e., associative, cognitive mapping and parallel systems. This model is able to reproduce a large number of experimental results in different variants of the Morris water maze task, including standard associative phenomena (spatial generalization gradient and blocking), as well as navigation based on cognitive mapping. Furthermore, we show that competitive and cooperative patterns between different navigation strategies in the model allow to explain previous apparently contradictory results supporting either associative or cognitive mechanisms for spatial learning. The key computational mechanism to reconcile experimental results showing different influences of distal and proximal cues on the behavior, different learning times, and different abilities of individuals to alternatively perform spatial and response strategies, relies in the dynamic coordination of navigation strategies, whose performance is evaluated online with a common currency through a modular approach. We provide a set of concrete experimental predictions to further test the computational model. Overall, this computational work sheds new light on inter-individual differences in navigation learning, and provides a formal and mechanistic approach to test various theories of spatial cognition in mammals.
机译:我们提出了一种空间导航的计算模型,该模型包括哺乳动物中的不同学习机制,即联想,认知映射和并行系统。该模型能够在莫里斯水迷宫任务的不同变体中复制大量实验结果,包括标准关联现象(空间泛化梯度和阻塞),以及基于认知映射的导航。此外,我们表明,模型中不同导航策略之间的竞争和合作模式可以解释先前明显矛盾的结果,从而支持空间学习的关联或认知机制。调和实验结果的关键计算机制显示出远端和近端提示对行为的不同影响,不同的学习时间以及个人交替执行空间和响应策略的不同能力,这取决于导航策略的动态协调,评估其性能通过模块化方法在线使用通用货币。我们提供了一组具体的实验预测,以进一步测试计算模型。总体而言,这项计算工作为导航学习中的个体差异提供了新的思路,并提供了一种正式的机制方法来测试哺乳动物的各种空间认知理论。

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