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Modelling, synthesis and characterisation of occlusion in videos

机译:视频中遮挡的建模,合成和表征

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Occlusion is one of the most challenging problems in many video processing applications such as surveillance, gait recognition, activity recognition and so on. Attempts have been made to develop algorithms for handling occlusion and evaluate their performance on various datasets. However, these studies are subjective in nature and the datasets are hardly characterised in terms of the level of occlusion, thereby precluding any form of quantitative comparison of performance. This shows a compelling need to design an explicit, unambiguous and quantitative model, which should be able to objectively represent occlusion in a video. This study proposes an occlusion model based on the position and pose uncertainties of the moving subjects in a video. The proposed occlusion model is able to characterise the level of occlusion present in a video. It is also employed to synthetically generate occlusion for walking sequences, thus providing a direction for controlled dataset generation against which human identification algorithms can be tested. Given an input video with a subject moving without any occlusion, a particle swarm optimisation-based parameter estimation methodology is presented that generates the desired level of occlusion. The proposed approaches have been tested on the TUM-IITKGP and PETS2010 datasets. Finally, as an application, the occlusion model has been used to generate an occluded gait datasets and the performances of different gait recognition algorithms have been compared under varying levels of occlusion.
机译:遮挡是许多视频处理应用程序中最具挑战性的问题之一,例如监视,步态识别,活动识别等。已经尝试开发用于处理遮挡并评估其在各种数据集上的性能的算法。但是,这些研究本质上是主观的,并且很难根据遮挡水平来表征数据集,从而排除了任何形式的性能定量比较。这表明迫切需要设计一个明确,明确和定量的模型,该模型应能够客观地表示视频中的遮挡。这项研究提出了一种基于运动对象在视频中的位置和姿势不确定性的遮挡模型。提出的遮挡模型能够表征视频中出现的遮挡级别。它也可用于综合生成行走序列的遮挡,从而为受控数据集生成提供方向,可以针对此方向测试人类识别算法。给定输入视频,其中对象移动而没有任何遮挡,提出了一种基于粒子群优化的参数估计方法,该方法可生成所需的遮挡水平。建议的方法已经在TUM-IITKGP和PETS2010数据集上进行了测试。最后,作为一种应用,使用遮挡模型来生成遮挡的步态数据集,并比较了在不同遮挡水平下不同步态识别算法的性能。

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