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A robust cloud registration method based on redundant data reduction using backpropagation neural network and shift window.

Meiting Xin,Bing Li,2 Authors,Xiang Wei

2018 · DOI: 10.1063/1.4996628
Review of Scientific Instruments · 10 Citations

TLDR

A robust coarse-to-fine registration method based on the backpropagation (BP) neural network and shift window technology and reweighted iterative closest point algorithm that improves the computational efficiency without loss of accuracy.

Abstract

A robust coarse-to-fine registration method based on the backpropagation (BP) neural network and shift window technology is proposed in this study. Specifically, there are three steps: coarse alignment between the model data and measured data, data simplification based on the BP neural network and point reservation in the contour region of point clouds, and fine registration with the reweighted iterative closest point algorithm. In the process of rough alignment, the initial rotation matrix and the translation vector between the two datasets are obtained. After performing subsequent simplification operations, the number of points can be reduced greatly. Therefore, the time and space complexity of the accurate registration can be significantly reduced. The experimental results show that the proposed method improves the computational efficiency without loss of accuracy.

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