人机交流的多媒体手势数据集:获取、工具和识别结果

I. Rodomagoulakis, N. Kardaris, Vassilis Pitsikalis, A. Arvanitakis, P. Maragos
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引用次数: 4

摘要

受人机交互最新进展的激励,我们提出了一个新的数据集,一套工具来处理它,以及最先进的视觉手势和音频命令识别工作。数据集的收集采用了一个集成的注释和获取网络界面,方便了快速获取的实时事实。该数据集包括手势实例,其中受试者没有处于严格的设置位置,并且包含多个场景,不限于单个静态配置。我们还提供了一套有价值的工具,作为在机器人操作系统中获取视听数据的实用界面,一个最先进的学习管道来训练视觉手势和音频命令模型,以及一个在线手势识别系统。最后,我们对数据集进行了丰富的评估,提供了丰富而有见解的实验识别结果。
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A multimedia gesture dataset for human robot communication: Acquisition, tools and recognition results
Motivated by the recent advances in human-robot interaction we present a new dataset, a suite of tools to handle it and state-of-the-art work on visual gestures and audio commands recognition. The dataset has been collected with an integrated annotation and acquisition web-interface that facilitates on-the-way temporal ground-truths for fast acquisition. The dataset includes gesture instances in which the subjects are not in strict setup positions, and contains multiple scenarios, not restricted to a single static configuration. We accompany it by a valuable suite of tools as the practical interface to acquire audio-visual data in the robotic operating system, a state-of-the-art learning pipeline to train visual gesture and audio command models, and an online gesture recognition system. Finally, we include a rich evaluation of the dataset providing rich and insightfull experimental recognition results.
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