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An Intelligent Fusion Method of Sequential Images Based on Improved DSmT for Target Recognition

机译:基于改进DSmT的序列图像智能融合方法

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It is proposed that a sequential images object recognition method combining a BP neural network with the fast mass functions convergence algorithm based on DSmT. The revised Hu invariant moments are used as the image features. And the sequential images are fused in time domain in the view of information fusion. The basic belief assignment function is created by the initial recognition result from a BP neural network. It completes the decision-level fusion with the fast mass functions convergence algorithm based on DSmT. Simulation result shows that the proposed method can improve the accuracy significantly for three-dimensional aircraft images target recognition.
机译:提出了一种将BP神经网络与基于DSmT的快速质量函数收敛算法相结合的序列图像目标识别方法。修正后的Hu不变矩用作图像特征。并且,从信息融合的观点出发,在时域上融合顺序图像。基本信念分配函数由BP神经网络的初始识别结果创建。它利用基于DSmT的快速质量函数收敛算法完成了决策级融合。仿真结果表明,该方法可以显着提高三维飞机图像目标识别的精度。

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