five

TBAD The 早餐准备相关的10个动作数据集

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帕依提提2024-03-04 收录
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A common problem in computer vision is the applicability of the algorithms developed on the meticulously controlled datasets on real world problems, such as unscripted, uncontrolled videos with natural lighting, view points and environments. With the advancements in the feature descriptors and generative methods in action recognition, a need for comprehensive datasets that reflect the variability of real world recognition scenarios has emerged. This dataset comprises of 10 actions related to breakfast preparation, performed by 52 different individuals in 18 different kitchens. The dataset is to-date one of the largest fully annotated datasets available. One of the main motivations for the proposed recording setup “in the wild” as opposed to a single controlled lab environment is for the dataset to more closely reflect real-world conditions as it pertains to the monitoring and analysis of daily activities. Cooking activities included the preparation of: The benchmark and database are described in the following article. We request that authors cite this paper in publications describing work carried out with this system and/or the video database. H. Kuehne, A. B. Arslan and T. Serre. The Language of Actions: Recovering the Syntax and Semantics of Goal-Directed Human Activities. CVPR, 2014. PDF Bibtex H. Kuehne, J. Gall and T. Serre. An end-to-end generative framework for video segmentation and recognition. WACV, 2016. PDF Bibtex Project Website
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