首页> 外文会议>Iberian Conference on Pattern Recognition and Image Analysis(IbPRIA 2007) pt.1; 20070606-08; Girona(ES) >Automatic Learning of Conceptual Knowledge in Image Sequences for Human Behavior Interpretation
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Automatic Learning of Conceptual Knowledge in Image Sequences for Human Behavior Interpretation

机译:用于人类行为解释的图像序列中概念知识的自动学习

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摘要

This work describes an approach for the interpretation and explanation of human behavior in image sequences, within the context of a Cognitive Vision System. The information source is the geometrical data obtained by applying tracking algorithms to an image sequence, which is used to generate conceptual data. The spatial characteristics of the scene are automatically extracted from the resuling tracking trajectories obtained during a training period. Interpretation is achieved by means of a rule-based inference engine called Fuzzy Metric Temporal Horn Logic and a behavior modeling tool called Situation Graph Tree. These tools are used to generate conceptual descriptions which semantically describe observed behaviors.
机译:这项工作描述了一种在认知视觉系统的背景下解释和解释图像序列中人类行为的方法。信息源是通过将跟踪算法应用于图像序列而获得的几何数据,该图像序列用于生成概念数据。从训练期间获得的跟踪跟踪轨迹中自动提取场景的空间特征。解释是通过称为“模糊度量时间角逻辑”的基于规则的推理引擎和称为“状况图树”的行为建模工具来实现的。这些工具用于生成概念描述,这些描述在语义上描述了观察到的行为。

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