论文标题

自主社会机器人的洗手动作检测系统

Handwashing Action Detection System for an Autonomous Social Robot

论文作者

Sasidharan, Sreejith, Prabha, Pranav, Pasupuleti, Devasena, Das, Anand M, Kapoor, Chaitanya, Manikutty, Gayathri, Pankajakshan, Praveen, Rao, Bhavani

论文摘要

由于手工卫生不当,幼儿患有传染性疾病(例如Covid-19)的风险增加。一个自主社会代理人在洗手并鼓励良好的洗手习惯的同时观察儿童,可以为洗手行为成为一种习惯提供机会。在本文中,我们提出了一个人类行动识别系统,该系统是社会机器人平台的视觉系统的一部分,以帮助儿童开发正确的洗手技术。具有通道空间注意双线性池(CSAB)框架的修改后的卷积神经网络(CNN)体系结构,具有VGG-16体系结构,因为骨干在增强数据集中训练和验证。修改后的体系结构概括了,即使在看不见的环境中,WHO规定的洗手步骤的精度也为90%。我们的发现表明,该方法可以识别视频中的微妙动作,并且可以用于社交机器人技术中的手势检测和分类。

Young children are at an increased risk of contracting contagious diseases such as COVID-19 due to improper hand hygiene. An autonomous social agent that observes children while handwashing and encourages good hand washing practices could provide an opportunity for handwashing behavior to become a habit. In this article, we present a human action recognition system, which is part of the vision system of a social robot platform, to assist children in developing a correct handwashing technique. A modified convolution neural network (CNN) architecture with Channel Spatial Attention Bilinear Pooling (CSAB) frame, with a VGG-16 architecture as the backbone is trained and validated on an augmented dataset. The modified architecture generalizes well with an accuracy of 90% for the WHO-prescribed handwashing steps even in an unseen environment. Our findings indicate that the approach can recognize even subtle hand movements in the video and can be used for gesture detection and classification in social robotics.

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