PGGC: phase-gradient Gray code with temporal pattern sharing for 3D measurement

Temporal phase unwrapping commonly projects phase-shifted fringes and auxiliary codewords separately, which increases the acquisition burden in dynamic fringe projection profilometry. We propose phase-gradient Gray code (PGGC), which represents four Gray-code bits through controlled reversals of phase-gradient polarity. Successive exchanges of orthogonal sine and cosine fringe pairs form a 12-pattern cyclic sequence, from which five overlapping demodulation groups recover one reference phase and four Gray-code-bearing wrapped phases. Distance-adaptive gradient voting, half-period connectivity, and stable-region voting are then used to decode and refine the fringe orders before phase-polarity restoration and reference-consistency correction. The phase-shifting patterns thereby support both wrapped-phase retrieval and fringe-order decoding without a separate intensity-codeword sequence. In the low-reflectivity experiment, PGGC achieved a fringe-order disagreement rate of 0.118% relative to complementary Gray code (CGC), the lowest among the non-reference methods tested. Static and high-spatial-frequency experiments further demonstrated the reconstruction procedure, and continuous acquisition was evaluated with a model rotating at approximately 4 rpm. At 120 projected patterns/s, each 12-pattern cycle yields five temporally shared phase outputs, corresponding to an average of 50 phase maps/s. Reference-consistency correction supports this reconstruction under limited intra-cycle physical phase variation.

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Publication Details

Journal
Optics Express
Published
2026-09-30
DOI
https://doi.org/10.1364/oe.614434
Primary Topic
Optical measurement and interference techniques
Type
article
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PGGC: phase-gradient Gray code with temporal pattern sharing for 3D measurement

Haitao Wu, Yiping Cao, Yingying Wan, Zhijie Wang et al.
Optics Express
Optical measurement and interference techniques
article

PGGC: phase-gradient Gray code with temporal pattern sharing for 3D measurement

Haitao Wu, Yiping Cao, Yingying Wan, Zhijie Wang, Jinlong Li, Yu Zhang
article en

Abstract

Temporal phase unwrapping commonly projects phase-shifted fringes and auxiliary codewords separately, which increases the acquisition burden in dynamic fringe projection profilometry. We propose phase-gradient Gray code (PGGC), which represents four Gray-code bits through controlled reversals of phase-gradient polarity. Successive exchanges of orthogonal sine and cosine fringe pairs form a 12-pattern cyclic sequence, from which five overlapping demodulation groups recover one reference phase and four Gray-code-bearing wrapped phases. Distance-adaptive gradient voting, half-period connectivity, and stable-region voting are then used to decode and refine the fringe orders before phase-polarity restoration and reference-consistency correction. The phase-shifting patterns thereby support both wrapped-phase retrieval and fringe-order decoding without a separate intensity-codeword sequence. In the low-reflectivity experiment, PGGC achieved a fringe-order disagreement rate of 0.118% relative to complementary Gray code (CGC), the lowest among the non-reference methods tested. Static and high-spatial-frequency experiments further demonstrated the reconstruction procedure, and continuous acquisition was evaluated with a model rotating at approximately 4 rpm. At 120 projected patterns/s, each 12-pattern cycle yields five temporally shared phase outputs, corresponding to an average of 50 phase maps/s. Reference-consistency correction supports this reconstruction under limited intra-cycle physical phase variation.

Optics ExpressVol. 34(20)
Sichuan University (CN), Southwest Jiaotong University (CN)
Openalex Percentile: Top 15%
Optical measurement and interference techniques
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