基于原子动作模板的偏序规划人类行为建模

Kristina Yordanova
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引用次数: 10

摘要

在智能环境中帮助用户的一个问题是基于当前状态检测他们的长期意图。解决这个问题的一种方法是使用人类行为模型,如html和PDDL。目前,这些模型大多基于具体的领域或场景,这使得它们很难或不可能适应其他用例。为了克服这一缺点,本文介绍了一种使用偏序规划来生成用户行为模型的方法。此外,它通过引入原子操作模板,对来自不同领域的活动有效,提出了人类活动的泛化。为了说明该方法,对老年护理领域的一个场景进行了建模。总的来说,本文提供了一种有效的通用方法来建模人类行为,可以嵌入到意图推理工作流中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modelling Human Behaviour Using Partial Order Planning Based on Atomic Action Templates
A problem in assisting users in intelligent environments is the detection of their long term intentions based on the current state. One approach to solving this problem is the employment of human behaviour models, such as CTML and PDDL. At present, most of these models are based on concrete domains or scenarios which makes them difficult or impossible to adapt for other use cases. To overcome this drawback, this paper introduces an approach that uses partial order planning for generating a user behaviour model. Furthermore, it proposes a generalization of human activities by introducing atomic action templates valid for activities from various domains. To illustrate the approach, a scenario from the elderly care domain is modelled. Overall, the paper provides an effective general approach for modelling human behaviour which can be embedded in the intention inference workflow.
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