Neural detection of spheres in images for lighting calibration

Laurent Fainsin, J. Mélou, L. Calvet, A. Carlier, Jean-Denis Durou
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Abstract

Accurate detection of spheres in images holds significant value for photometric 3D vision techniques such as photometric stereo.1 These techniques require precise calibration of lighting, and sphere detection can help in the calibration process. Our proposed approach involves training neural networks to automatically detect spheres of three different material classes: matte, shiny and chrome. We get fast and accurate segmentation of spheres in images, outperforming manual segmentation in terms of speed while maintaining comparable accuracy.
用于光照校正的图像中球体的神经检测
图像中球体的准确检测对于光度立体等光度三维视觉技术具有重要价值这些技术需要精确校准照明,球体检测可以在校准过程中提供帮助。我们提出的方法包括训练神经网络来自动检测三种不同材质的球体:哑光、闪亮和镀铬。我们可以快速准确地分割图像中的球体,在速度上优于人工分割,同时保持相当的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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