基于blazepose和st -递归神经网络的危险动作识别系统

Zhengyi Ma, Hao Zhang, Yingshuo Feng, Chenyang Yang, Jiaying Zhu, Yaming Niu
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引用次数: 0

摘要

本文主要通过Blazepose算法和st-gru网络对驾驶员危险驾驶行为进行识别和分类,保证驾驶员在驾驶过程中安全驾驶,时刻保证驾驶员的安全。Blazepose是一种轻量级的人体姿态估计模型,采用blazepsoe方法代替人体骨骼关键点的openpose方法,提高了速度,减小了模型尺寸。st-gru网络是基于人体骨骼关键点的最佳动作识别模型之一,在模型大小、准确率和召回值等方面都优于目前大多数动作识别模型。因此,本项目使用st-gru网络对提取的人体骨骼关键点进行分类。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hazardous action recognition system based on blazepose and ST-recurrent neural network
This paper focuses on the recognition and classification of driver's dangerous driving actions through Blazepose algorithm and st-gru network to ensure that drivers can drive safely during the driving process and keep drivers safe at all times. blazepose is a lightweight human posture estimation model using blazepsoe method to replace the openpose method in human skeletal keypoints to improve the speed and reduce the model size. The st-gru network is one of the best action recognition models based on human skeletal keypoints, which is better than most of the current action recognition models in terms of model size, accuracy and recall value. Therefore, this project uses the st-gru network to classify the extracted human skeletal keypoint.
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