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UWB 手势,一个使用脉冲雷达传感器获取的动态手势公共数据集。

UWB-gestures, a public dataset of dynamic hand gestures acquired using impulse radar sensors.

机构信息

Department of Electronic Engineering, Hanyang University, Seoul, South Korea.

出版信息

Sci Data. 2021 Apr 12;8(1):102. doi: 10.1038/s41597-021-00876-0.

Abstract

In the past few decades, deep learning algorithms have become more prevalent for signal detection and classification. To design machine learning algorithms, however, an adequate dataset is required. Motivated by the existence of several open-source camera-based hand gesture datasets, this descriptor presents UWB-Gestures, the first public dataset of twelve dynamic hand gestures acquired with ultra-wideband (UWB) impulse radars. The dataset contains a total of 9,600 samples gathered from eight different human volunteers. UWB-Gestures eliminates the need to employ UWB radar hardware to train and test the algorithm. Additionally, the dataset can provide a competitive environment for the research community to compare the accuracy of different hand gesture recognition (HGR) algorithms, enabling the provision of reproducible research results in the field of HGR through UWB radars. Three radars were placed at three different locations to acquire the data, and the respective data were saved independently for flexibility.

摘要

在过去的几十年中,深度学习算法在信号检测和分类方面变得越来越流行。然而,要设计机器学习算法,需要有足够的数据集。受几个基于开源相机的手势数据集的存在启发,本描述符提出了 UWB-Gestures,这是第一个使用超宽带 (UWB) 脉冲雷达采集的 12 个动态手势的公共数据集。该数据集总共包含从八个不同的人类志愿者中收集的 9600 个样本。UWB-Gestures 无需使用 UWB 雷达硬件即可训练和测试算法。此外,该数据集可以为研究社区提供一个有竞争力的环境,用于比较不同的手势识别 (HGR) 算法的准确性,从而通过 UWB 雷达在 HGR 领域提供可重复的研究结果。三个雷达被放置在三个不同的位置来采集数据,并且各自的数据为了灵活性而独立保存。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0c96/8041886/86eb2f259d2d/41597_2021_876_Fig1_HTML.jpg

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