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The recognition of moving human body posture based on combined neural network

机译:基于神经网络的人体姿势识别

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A new method based on combined neural network is presented for the recognition of moving human body posture. The silhouette feature, skeleton feature and moment invariant feature of human body posture are firstly extracted, and every feature vector is inputted into their own neural network classifiers, then the outputs of all the classifiers are fused together with the Dempster-Shafer theory to form a combined neural network, so that a more powerful classifier with high recognition rate can be built. The experimental results show that the proposed method is more accurate than single neural network classifier for the recognition of moving human body posture.
机译:提出了一种基于组合神经网络的新方法,用于识别移动人体姿势。首先提取人体姿势的轮廓特征,骨架特征和时刻不变特征,每个特征向量都被输入到自己的神经网络分类器中,然后所有分类器的输出与Dempster-Shafer理论一起融合,以形成a组合神经网络,使得可以构建具有高识别率高的更强大的分类器。实验结果表明,该方法比单一神经网络分类器更准确,用于识别移动人体姿势。

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