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Learning from PhotoShop Operation Videos: The PSOV Dataset

机译:从PhotoShop操作视频中学习:PSOV数据集

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In this paper, we present the PhotoShop Operation Video (PSOV) dataset, a large-scale, densely annotated video database designed for the development of software intelligence. The PSOV dataset consists of 564 densely-annotated videos for Photoshop operations, covering more than 500 commonly used commands in the Photoshop software. Videos in this dataset are obtained from YouTube, manually watched and annotated precisely to seconds by experts. There are more than 74 h of videos with 29,204 labeled commands. To the best of our knowledge, the PSOV dataset is the first large-scale software operation video database with high-resolution frames and dense annotations. We believe that this dataset can help advance the development of intelligent software, and has extensive application aspects. In this paper, we describe the dataset construction procedure, data attributes, proposed tasks and their corresponding evaluation metrics. To demonstrate that the PSOV dataset has sufficient data and labeling for data-driven methods, we develop a deep learning based algorithm for the command classification task. We also carry out experiments and analysis with the proposed method to encourage better understanding and usage of the PSOV dataset.
机译:在本文中,我们介绍了PhotoShop运营视频(PSOV)数据集,这是一个大规模的,带有密集注释的视频数据库,旨在开发软件智能。 PSOV数据集包含564个用于Photoshop操作的带批注的视频,涵盖了Photoshop软件中的500多个常用命令。此数据集中的视频是从YouTube获得的,由专家手动观看并精确注释到秒。超过74小时的视频带有29,204个带标签的命令。据我们所知,PSOV数据集是第一个具有高分辨率帧和密集注释的大规模软件操作视频数据库。我们相信,该数据集可以帮助推进智能软件的开发,并具有广泛的应用方面。在本文中,我们描述了数据集的构建过程,数据属性,建议的任务及其相应的评估指标。为了证明PSOV数据集具有足够的数据和用于数据驱动方法的标签,我们针对命令分类任务开发了一种基于深度学习的算法。我们还使用提出的方法进行实验和分析,以鼓励更好地理解和使用PSOV数据集。

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