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用于稳定性推理的引力随机世界模型。

A stochastic world model on gravity for stability inference.

机构信息

Department of Psychological and Cognitive Sciences & Tsinghua Laboratory of Brain and Intelligence, Tsinghua University, Beijing, China.

出版信息

Elife. 2024 May 7;12:RP88953. doi: 10.7554/eLife.88953.

Abstract

The fact that objects without proper support will fall to the ground is not only a natural phenomenon, but also common sense in mind. Previous studies suggest that humans may infer objects' stability through a world model that performs mental simulations with a priori knowledge of gravity acting upon the objects. Here we measured participants' sensitivity to gravity to investigate how the world model works. We found that the world model on gravity was not a faithful replica of the physical laws, but instead encoded gravity's vertical direction as a Gaussian distribution. The world model with this stochastic feature fit nicely with participants' subjective sense of objects' stability and explained the illusion that taller objects are perceived as more likely to fall. Furthermore, a computational model with reinforcement learning revealed that the stochastic characteristic likely originated from experience-dependent comparisons between predictions formed by internal simulations and the realities observed in the external world, which illustrated the ecological advantage of stochastic representation in balancing accuracy and speed for efficient stability inference. The stochastic world model on gravity provides an example of how a priori knowledge of the physical world is implemented in mind that helps humans operate flexibly in open-ended environments.

摘要

无支撑物的物体会落向地面,这不仅是一种自然现象,也是人们的常识。先前的研究表明,人类可能通过一个世界模型来推断物体的稳定性,该模型利用有关重力作用于物体的先验知识进行心理模拟。在这里,我们测量了参与者对重力的敏感性,以研究世界模型的工作原理。我们发现,重力的世界模型并不是物理定律的忠实复制品,而是将重力的垂直方向编码为高斯分布。具有这种随机特征的世界模型与参与者对物体稳定性的主观感觉非常吻合,并解释了这样一种错觉,即较高的物体被认为更容易掉落。此外,具有强化学习的计算模型表明,这种随机特征可能源于内部模拟形成的预测与外部世界观察到的现实之间的经验依赖性比较,这说明了在平衡准确性和速度以实现高效稳定性推断方面,随机表示的生态优势。关于重力的随机世界模型为我们提供了一个范例,说明了人类如何在头脑中实现对物理世界的先验知识,从而帮助人类在开放环境中灵活地进行操作。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b70a/11076044/6ac938834db6/elife-88953-fig1.jpg

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