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Multi-Hierarchical Modeling of Driving Behavior Using Dynamics-Based Mode Segmentation

机译:基于基于动力学的模式分割的驾驶行为的多层次建模

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This paper presents a new hierarchical mode segmentation of the observed driving behavioral data based on the multi-level abstraction of the underlying dynamics. By synthesizing the ideas of a feature vector definition revealing the dynamical characteristics and an unsupervised clustering technique, the hierarchical mode segmentation is achieved. The identified mode can be regarded as a kind of symbol in the abstract model of the behavior. Second, the grammatical inference technique is introduced to develop the context-dependent grammar of the behavior, i.e., the symbolic dynamics of the human behavior. In addition, the behavior prediction based on the obtained symbolic model is performed. The proposed framework enables us to make a bridge between the signal space and the symbolic space in the understanding of the human behavior.
机译:本文基于基础动力学的多层次抽象,提出了一种新的分层模式对观察到的驾驶行为数据进行细分。通过综合揭示动态特性的特征向量定义和无监督聚类技术,可以实现分层模式分割。所识别的模式可以视为行为抽象模型中的一种符号。其次,引入了语法推理技术来发展行为的上下文相关语法,即人类行为的符号动力学。另外,基于所获得的符号模型进行行为预测。所提出的框架使我们能够在理解人类行为的过程中在信号空间和符号空间之间架起一座桥梁。

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