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神经机器人作为通往神经行为学和可解释人工智能的一种手段。

Neurorobots as a Means Toward Neuroethology and Explainable AI.

作者信息

Chen Kexin, Hwu Tiffany, Kashyap Hirak J, Krichmar Jeffrey L, Stewart Kenneth, Xing Jinwei, Zou Xinyun

机构信息

Department of Cognitive Sciences, University of California, Irvine, Irvine, CA, United States.

HRL Laboratories (formerly Hughes Research Laboratory), LLC, Malibu, CA, United States.

出版信息

Front Neurorobot. 2020 Oct 19;14:570308. doi: 10.3389/fnbot.2020.570308. eCollection 2020.

Abstract

Understanding why deep neural networks and machine learning algorithms act as they do is a difficult endeavor. Neuroscientists are faced with similar problems. One way biologists address this issue is by closely observing behavior while recording neurons or manipulating brain circuits. This has been called neuroethology. In a similar way, neurorobotics can be used to explain how neural network activity leads to behavior. In real world settings, neurorobots have been shown to perform behaviors analogous to animals. Moreover, a neuroroboticist has total control over the network, and by analyzing different neural groups or studying the effect of network perturbations (e.g., simulated lesions), they may be able to explain how the robot's behavior arises from artificial brain activity. In this paper, we review neurorobot experiments by focusing on how the robot's behavior leads to a qualitative and quantitative explanation of neural activity, and vice versa, that is, how neural activity leads to behavior. We suggest that using neurorobots as a form of computational neuroethology can be a powerful methodology for understanding neuroscience, as well as for artificial intelligence and machine learning.

摘要

理解深度神经网络和机器学习算法为何如此运行是一项艰巨的任务。神经科学家也面临类似问题。生物学家解决这个问题的一种方法是在记录神经元或操纵脑回路的同时密切观察行为。这被称为神经行为学。以类似的方式,神经机器人学可用于解释神经网络活动如何导致行为。在现实世界中,神经机器人已被证明能表现出与动物类似的行为。此外,神经机器人学家对网络有完全控制权,通过分析不同的神经群体或研究网络扰动(如模拟损伤)的影响,他们或许能够解释机器人的行为是如何从人工大脑活动中产生的。在本文中,我们通过关注机器人行为如何导致对神经活动的定性和定量解释,反之亦然,即神经活动如何导致行为,来回顾神经机器人实验。我们认为,将神经机器人作为一种计算神经行为学形式,可以成为理解神经科学以及人工智能和机器学习的有力方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f48/7604467/7abf47e033c0/fnbot-14-570308-g0001.jpg

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