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为主动机器人感知的分层贝叶斯框架学习涌现行为。

Learning emergent behaviours for a hierarchical Bayesian framework for active robotic perception.

作者信息

Ferreira João Filipe, Tsiourti Christiana, Dias Jorge

机构信息

ISR, University of Coimbra, Coimbra, Portugal.

出版信息

Cogn Process. 2012 Aug;13 Suppl 1:S155-9. doi: 10.1007/s10339-012-0481-9.

Abstract

In this research work, we contribute with a behaviour learning process for a hierarchical Bayesian framework for multimodal active perception, devised to be emergent, scalable and adaptive. This framework is composed by models built upon a common spatial configuration for encoding perception and action that is naturally fitting for the integration of readings from multiple sensors, using a Bayesian approach devised in previous work. The proposed learning process is shown to reproduce goal-dependent human-like active perception behaviours by learning model parameters (referred to as "attentional sets") for different free-viewing and active search tasks. Learning was performed by presenting several 3D audiovisual virtual scenarios using a head-mounted display, while logging the spatial distribution of fixations of the subject (in 2D, on left and right images, and in 3D space), data which are consequently used as the training set for the framework. As a consequence, the hierarchical Bayesian framework adequately implements high-level behaviour resulting from low-level interaction of simpler building blocks by using the attentional sets learned for each task, and is able to change these attentional sets "on the fly," allowing the implementation of goal-dependent behaviours (i.e., top-down influences).

摘要

在这项研究工作中,我们为多模态主动感知的分层贝叶斯框架贡献了一种行为学习过程,该框架设计为具有涌现性、可扩展性和适应性。此框架由基于共同空间配置构建的模型组成,用于编码感知和动作,这种配置自然适合整合来自多个传感器的读数,采用先前工作中设计的贝叶斯方法。通过学习不同自由观看和主动搜索任务的模型参数(称为“注意力集”),所提出的学习过程被证明能够重现与目标相关的类人主动感知行为。学习是通过使用头戴式显示器呈现多个3D视听虚拟场景来进行的,同时记录受试者注视点的空间分布(二维的左右图像以及三维空间中),这些数据随后用作框架的训练集。因此,分层贝叶斯框架通过使用为每个任务学习的注意力集,充分实现了由更简单构建块的低级交互产生的高级行为,并且能够“即时”改变这些注意力集,从而实现与目标相关的行为(即自上而下的影响)。

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