6 October 2017 Deviation correction method for close-range photometric stereo with nonuniform illumination
Author Affiliations +
Abstract
Classical photometric stereo requires uniform collimated light, but point light sources are usually employed in practical setups. This introduces errors to the recovered surface shape. We found that when the light sources are evenly placed around the object with the same slant angle, the main component of the errors is the low-frequency deformation, which can be approximately described by a quadratic function. We proposed a postprocessing method to correct the deviation caused by the nonuniform illumination. The method refines the surface shape with prior information from calibration using a flat plane or the object itself. And we further introduce an optimization scheme to improve the reconstruction accuracy when the three-dimensional information of some locations is available. Experiments were conducted using surfaces captured with our device and those from a public dataset. The results demonstrate the effectiveness of the proposed approach.
© 2017 Society of Photo-Optical Instrumentation Engineers (SPIE) 0091-3286/2017/$25.00 © 2017 SPIE
Hao Fan, Lin Qi, Nan Wang, Junyu Dong, Yijun Chen, and Hui Yu "Deviation correction method for close-range photometric stereo with nonuniform illumination," Optical Engineering 56(10), 103102 (6 October 2017). https://doi.org/10.1117/1.OE.56.10.103102
Received: 8 May 2017; Accepted: 13 September 2017; Published: 6 October 2017
Lens.org Logo
CITATIONS
Cited by 18 scholarly publications.
Advertisement
Advertisement
RIGHTS & PERMISSIONS
Get copyright permission  Get copyright permission on Copyright Marketplace
KEYWORDS
Light sources

Cameras

Picosecond phenomena

Signal attenuation

Light sources and illumination

Calibration

Optical engineering

RELATED CONTENT

Calibration of an intensity ratio system for 3D imaging
Proceedings of SPIE (March 07 1989)
Performance evaluation of a vision dimension metrology system
Proceedings of SPIE (September 01 1991)

Back to Top