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Goal-Directed Behavior under Variational Predictive Coding: Dynamic organization of Visual Attention and Working Memory

机译:变分预测编码下的目标定向行为:可视注意力组织和工作记忆

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Mental simulation is a critical cognitive function for goal-directed behavior because it is essential for assessing actions and their consequences. When a self-generated or externally specified goal is given, a sequence of actions that is most likely to attain that goal is selected among other candidates via mental simulation. Therefore, better mental simulation leads to better goal-directed action planning. However, developing a mental simulation model is challenging because it requires knowledge of self and the environment. The current paper studies how adequate goal-directed action plans of robots can be mentally generated by dynamically organizing top-down visual attention and visual working memory. For this purpose, we propose a neural network model based on variational Bayes predictive coding, where goal-directed action planning is formulated by Bayesian inference of latent intentional space. Our experimental results showed that cognitively meaningful competencies, such as autonomous top-down attention to the robot end effector (its hand) as well as dynamic organization of occlusion-free visual working memory, emerged. Furthermore, our analysis of comparative experiments indicated that the introduction of visual working memory and the inference mechanism using variational Bayes predictive coding significantly improved the performance in planning adequate goal-directed actions.
机译:精神仿真是针对目标定向行为的关键认知功能,因为它对于评估行为和后果至关重要。当给出自我生成或外部指定的目标时,通过精神模拟在其他候选者中选择了一系列最有可能获得该目标的动作。因此,更好的精神模拟导致更好的目标导向行动规划。然而,发展精神模拟模型是挑战性的,因为它需要对自我和环境的了解。目前的论文研究了通过动态组织自上而下的视觉注意和视觉工作记忆,可以精神上产生机器人的足够的目标定向行动计划。为此目的,我们提出了一种基于变分贝叶斯预测编码的神经网络模型,其中由潜在故意空间的贝叶斯推断制定了目标定向的动作规划。我们的实验结果表明,具有认知的有意义的能力,例如对机器人末端效应器(其手)的自主预倒调,以及出现的无遮挡视觉工作记忆的动态组织。此外,我们对比较实验的分析表明,使用变分贝内斯预测编码引入了视觉工作记忆和推理机制,显着提高了规划适当目标导向行动的性能。

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