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一种神经动力学模型生成面向对象动作的描述。

A Neural Dynamic Model Generates Descriptions of Object-Oriented Actions.

作者信息

Richter Mathis, Lins Jonas, Schöner Gregor

机构信息

Institut für Neuroinformatik, Ruhr-Universität Bochum.

出版信息

Top Cogn Sci. 2017 Jan;9(1):35-47. doi: 10.1111/tops.12240. Epub 2017 Jan 5.

Abstract

Describing actions entails that relations between objects are discovered. A pervasively neural account of this process requires that fundamental problems are solved: the neural pointer problem, the binding problem, and the problem of generating discrete processing steps from time-continuous neural processes. We present a prototypical solution to these problems in a neural dynamic model that comprises dynamic neural fields holding representations close to sensorimotor surfaces as well as dynamic neural nodes holding discrete, language-like representations. Making the connection between these two types of representations enables the model to describe actions as well as to perceptually ground movement phrases-all based on real visual input. We demonstrate how the dynamic neural processes autonomously generate the processing steps required to describe or ground object-oriented actions. By solving the fundamental problems of neural pointing, binding, and emergent discrete processing, the model may be a first but critical step toward a systematic neural processing account of higher cognition.

摘要

描述动作需要发现物体之间的关系。对这一过程进行全面的神经学解释需要解决一些基本问题:神经指针问题、绑定问题以及从时间连续的神经过程中生成离散处理步骤的问题。我们在一个神经动力学模型中提出了这些问题的一个典型解决方案,该模型包括保持接近感觉运动表面表征的动态神经场以及保持离散的、类似语言表征的动态神经节点。在这两种表征之间建立联系,使模型能够描述动作,并基于真实视觉输入在感知上为运动短语提供基础。我们展示了动态神经过程如何自主生成描述或为面向对象动作提供基础所需的处理步骤。通过解决神经指向、绑定和涌现离散处理的基本问题,该模型可能是朝着对高级认知进行系统神经处理解释迈出的关键的第一步。

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