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基于混合神经网络算法的物联网可穿戴传感器跆拳道运动图像识别模型

Taekwondo motion image recognition model based on hybrid neural network algorithm for wearable sensor of Internet of Things.

作者信息

Lu Xiaotong

机构信息

Physical Education Institute, Yongin University, Yongin, 17092, South Korea.

出版信息

Sci Rep. 2023 Aug 11;13(1):13097. doi: 10.1038/s41598-023-40169-7.

Abstract

Conventional IoT wearable sensor Taekwondo motion image recognition model mainly uses Anchor fixed proportion whole body target anchor frame to extract recognition features, which is vulnerable to dynamic noise, resulting in low displacement recognition rate of motion image. Therefore, a new IoT wearable sensor Taekwondo motion image recognition model needs to be designed based on hybrid neural network algorithm. That is, the wearable sensor Taekwondo motion image features are extracted, and the hybrid neural network algorithm is used to generate the optimization model of the wearable sensor Taekwondo motion image recognition of the Internet of Things, so as to achieve effective recognition of Taekwondo motion images. The experimental results show that the designed wearable sensor of the Internet of Things based on the hybrid neural network algorithm has a high recognition rate of the motion image displacement of the Taekwondo motion image recognition model, which proves that the designed Taekwondo motion image recognition model has good recognition effect, reliability, and certain application value, and has made certain contributions to optimizing the Taekwondo movement.

摘要

传统的物联网可穿戴传感器跆拳道运动图像识别模型主要采用固定比例的全身目标锚框来提取识别特征,易受动态噪声影响,导致运动图像位移识别率较低。因此,需要基于混合神经网络算法设计一种新的物联网可穿戴传感器跆拳道运动图像识别模型。即提取可穿戴传感器跆拳道运动图像特征,利用混合神经网络算法生成物联网可穿戴传感器跆拳道运动图像识别的优化模型,以实现对跆拳道运动图像的有效识别。实验结果表明,基于混合神经网络算法设计的物联网可穿戴传感器对跆拳道运动图像识别模型的运动图像位移具有较高的识别率,证明所设计的跆拳道运动图像识别模型具有良好的识别效果、可靠性和一定的应用价值,为优化跆拳道动作做出了一定贡献。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0ccd/10421950/23b754e8bb8c/41598_2023_40169_Fig1_HTML.jpg

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