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Versatile Model for Activity Recognition: Sequencelet Corpus Model

机译:活动识别的多功能模型:Sequencelet语料库模型

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In this paper, we propose a Sequencelet Corpus Model (SCM) that is quite versatile for human activity recognition in video. A 'sequencelet', a sequence of actional words, is automatically learned using a data mining approach without any prior knowledge about activity structure and describes a representative partial structure of an activity. We model an activity as a combination of sequencelets in the 'sequencelet corpus' that is a set of learned sequencelets. The SCM does not depend on the type of low-level feature as well as can perform various activity recognition tasks. We evaluate our model on the UT-Interaction dataset and the ActivityNet dataset for activity classification from both fully- and partially-observed video, untrimmed video classification and measuring semantic similarity between activities. The SCM achieved state-of-theart results in activity classification even though the activity is partially observed and promising results in untrimmed video classification, Moreover, by constructing the hierarchy of activities from the similarity computed using the SCM, we demonstrate that the SCM can be used a metric for measuring semantic similarity between activities; these results indicate that the SCM has potential to be an all-around activityrecognition model.
机译:在本文中,我们提出了一种序列组语料库模型(SCM),对于视频中的人类活动识别非常多样化。使用数据挖掘方法自动学习一个“Sequencelet”,一系列一组致动词,没有关于活动结构的任何先验知识,并描述了活动的代表性部分结构。我们将活动模拟作为“Sequencelet语料库”中的记录单元的组合,即是一组学位的记录序列。 SCM不依赖于低级功能的类型,也可以执行各种活动识别任务。我们在UT-Interaction DataSet和ActivityNet数据集中评估我们的模型,用于从完全和部分观察到的视频,未经限制的视频分类和测量活动之间的语义相似性。 SCM实现了最终的活动分类,即使部分观察到的活动和有希望在未经监测的视频分类中导致的导致,通过构建使用SCM计算的相似性的活动层次,我们证明了SCM可以是使用度量来测量活动之间的语义相似性;这些结果表明,SCM有可能成为全面的活动认知模型。

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