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Three-Dimensional Reconstruction Method for Machined Surface Topography Based on Gray Gradient Constraints

机译:基于灰度梯度约束的加工表面形貌三维重建方法

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In the modern engineering field, recovering the machined surface topography is important for studying mechanical product function and surface characteristics by using the shape from shading (SFS)-based reconstruction method. However, due to the limitations of many constraints and oversmoothing, the existing SFS-based reconstruction methods are not suitable for machined surface topography. This paper presents a new three-dimensional (3D) reconstruction method of machined surface topography. By combining the basic principle of SFS and the analytic method, the analytic model of a surface gradient is established using the gray gradient as a constraint condition. By efficiently solving the effect of quantization errors and ambiguity of the gray scale on reconstruction accuracy using a wavelet denoising algorithm and image processing technology, the reconstruction algorithm is implemented for machined surface topography. Experimental results on synthetic images and machined surface topography images show that the proposed algorithm can accurately and efficiently recover the 3D shape of machined surface topography.
机译:在现代工程领域中,恢复加工的表面形貌对于通过使用基于阴影(SFS)的形状的重建方法来研究机械产品功能和表面特性非常重要。但是,由于许多约束条件和平滑度的限制,现有的基于SFS的重建方法不适用于机加工表面形貌。本文提出了一种新的机加工表面形貌的三维(3D)重建方法。结合SFS的基本原理和解析方法,以灰色梯度为约束条件,建立了表面梯度的解析模型。通过使用小波去噪算法和图像处理技术有效地解决量化误差和灰度模糊度对重建精度的影响,实现了用于加工表面形貌的重建算法。在合成图像和机加工表面形貌图像上的实验结果表明,该算法可以准确有效地恢复机加工表面形貌的3D形状。

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