Semantic-based traffic video retrieval using activity pattern analysis

Dan Xie, Weiming Hu, T. Tan, Junyi Peng
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引用次数: 13

Abstract

A semantic based retrieval framework for traffic video sequences is proposed. In order to estimate the low-level motion data, a cluster tracking algorithm is developed. A novel hierarchical self-organizing map is applied to learn the activity patterns. By using activity pattern analysis and semantic concepts assignment, a set of activity models is generated, which is used as the indexing key for accessing video clips and individual vehicles in the semantic level. The proposed retrieval framework supports various queries including query by keywords, query by sketch and multiple object queries.
基于语义的活动模式分析交通视频检索
提出了一种基于语义的交通视频序列检索框架。为了估计低阶运动数据,提出了一种聚类跟踪算法。采用一种新颖的分层自组织映射来学习活动模式。通过活动模式分析和语义概念赋值,生成一组活动模型,并将其作为语义层访问视频片段和单个车辆的索引键。提出的检索框架支持多种查询,包括关键字查询、草图查询和多对象查询。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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