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灵活意图:一种主动推理理论。

Flexible intentions: An Active Inference theory.

作者信息

Priorelli Matteo, Stoianov Ivilin Peev

机构信息

Institute of Cognitive Sciences and Technologies (ISTC), National Research Council of Italy (CNR), Padua, Italy.

出版信息

Front Comput Neurosci. 2023 Mar 20;17:1128694. doi: 10.3389/fncom.2023.1128694. eCollection 2023.

DOI:10.3389/fncom.2023.1128694
PMID:37021085
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10067605/
Abstract

We present a normative computational theory of how the brain may support visually-guided goal-directed actions in dynamically changing environments. It extends the Active Inference theory of cortical processing according to which the brain maintains beliefs over the environmental state, and motor control signals try to fulfill the corresponding sensory predictions. We propose that the neural circuitry in the Posterior Parietal Cortex (PPC) compute flexible intentions-or motor plans from a belief over targets-to dynamically generate goal-directed actions, and we develop a computational formalization of this process. A proof-of-concept agent embodying visual and proprioceptive sensors and an actuated upper limb was tested on target-reaching tasks. The agent behaved correctly under various conditions, including static and dynamic targets, different sensory feedbacks, sensory precisions, intention gains, and movement policies; limit conditions were individuated, too. Active Inference driven by dynamic and flexible intentions can thus support goal-directed behavior in constantly changing environments, and the PPC might putatively host its core intention mechanism. More broadly, the study provides a normative computational basis for research on goal-directed behavior in end-to-end settings and further advances mechanistic theories of active biological systems.

摘要

我们提出了一种规范性计算理论,阐述大脑如何在动态变化的环境中支持视觉引导的目标导向行动。该理论扩展了皮质处理的主动推理理论,即大脑维持对环境状态的信念,而运动控制信号试图实现相应的感官预测。我们认为,后顶叶皮质(PPC)中的神经回路根据对目标的信念计算灵活的意图或运动计划,以动态生成目标导向行动,并且我们对这一过程进行了计算形式化。一个体现视觉和本体感觉传感器以及一个可驱动上肢的概念验证智能体在伸手够物任务中进行了测试。该智能体在各种条件下表现正确,包括静态和动态目标、不同的感官反馈、感官精度、意图增益和运动策略;极限条件也已确定。由动态和灵活意图驱动的主动推理因此可以在不断变化的环境中支持目标导向行为,并且PPC可能是其核心意图机制的所在之处。更广泛地说,该研究为端到端环境中目标导向行为的研究提供了规范性计算基础,并进一步推进了主动生物系统的机制理论。

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