Prediction of three-dimensional coordinate measurement of space points based on BP neural network

Xiaohong Lu, Yongquan Wang, Jie Li, Yang Zhou
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引用次数: 1

Abstract

In order to improve the measurement accuracy of three-dimensional coordinate measurement system based on dual-PSD, this paper proposes a three-dimensional coordinate measurement method based on back propagation (BP) neural network considering the high ability of the neural network to deal with the complex nonlinear mapping problem. This method can describe the mapping relationship between three-dimensional coordinates of space points in the world coordinate system and coordinates of light spots on dual-PSD well. Levenberg-Marquardt learning algorithm is used to train the network, and then trained BP neural network model is used to predict three-dimensional coordinates of space points. Experimental results show that the average measurement error of space points obtained by the method is low. It proves that the built BP neural network model can be used to predict three-dimensional coordinates of space points. [Submitted 9 July 2018; Accepted 30 October 2018]
基于BP神经网络的空间点三维坐标测量预测
为了提高基于双psd的三维坐标测量系统的测量精度,考虑到神经网络处理复杂非线性映射问题的能力强,提出了一种基于BP神经网络的三维坐标测量方法。该方法可以很好地描述世界坐标系中空间点的三维坐标与双psd上光斑坐标的映射关系。采用Levenberg-Marquardt学习算法对网络进行训练,然后利用训练好的BP神经网络模型预测空间点的三维坐标。实验结果表明,该方法获得的空间点平均测量误差较低。实验证明,所建立的BP神经网络模型可以用于空间点的三维坐标预测。[2018年7月9日提交;接受2018年10月30日]
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