Human Action prediction based on skeleton data

Qipeng Zhang, Tian Wang, Huai‐Ning Wu, Mingmin Li, Jianpeng Zhu, H. Snoussi
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引用次数: 2

Abstract

Human behavior prediction is an interdisciplinary research direction, involving image processing, computer vision, pattern recognition, machine learning, and artificial intelligence, which is one of the important research topics in the field of computer vision. This paper introduces a model for predicting human skeletal motion sequence, which is composed of LSTM main network and structured prediction layer. We have verified its performance on h3.6m dataset, and this structure has achieved good results in the short-term prediction of human motion.
基于骨骼数据的人类行为预测
人类行为预测是一个跨学科的研究方向,涉及图像处理、计算机视觉、模式识别、机器学习、人工智能等,是计算机视觉领域的重要研究课题之一。本文介绍了一种由LSTM主网络和结构化预测层组成的人体骨骼运动序列预测模型。我们在h3.6m数据集上验证了其性能,该结构在人体运动的短期预测中取得了很好的效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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