TY - GEN
T1 - Error analysis of rapid Stokes polarimetric imaging with circularly polarized illumination
AU - Long, Chenhui
AU - Li, Yanqiu
AU - Wu, Jiaxin
AU - Zhou, Guodong
N1 - Publisher Copyright:
© 2022 SPIE.
PY - 2022
Y1 - 2022
N2 - Depolarization and linear-retardance are the increasingly interesting polarization characteristics for disease diagnosis in clinic and scientific study. They can not only be obtained by Mueller polarimetry normally, but also the Stokes polarimetric imaging. Stokes polarimetric imaging with circularly polarized illumination can provide the main optical properties of tissues with a simpler device in a shorter time, which is much more attractive. Unfortunately, it is difficult to realize the standard circularly polarized illumination actually in experiments. In this paper, we establish a theoretical model to display the relationship between the nonstandard circularly polarized illumination and the accuracy of the measurement results. Compared to the measurement results by Mueller polarimetry, we found that the depolarizations measured are the same but retardances measured are not. And except the influence of the nonstandard circularly polarized illumination, the sample’s optical characteristics also affect the accuracy of the measured retardance. Additionally, we have conducted a comparative experiment between Mueller polarimetry and the Stokes polarimetric imaging to verify. According to the simulation and experiment, we have confirmed that Stokes polarimetric imaging has good performance in measuring most samples and broadband detection, but there is a large error for measuring strongly birefringent samples. Our work quantitatively analyzes the effect of nonstandard circularly polarized illumination on the accuracy of Stokes polarimetric imaging through theoretical derivation for the first time. It enriches the error theory of Stokes polarimetric imaging with circularly polarized illumination and lays a foundation for the improvement and application.
AB - Depolarization and linear-retardance are the increasingly interesting polarization characteristics for disease diagnosis in clinic and scientific study. They can not only be obtained by Mueller polarimetry normally, but also the Stokes polarimetric imaging. Stokes polarimetric imaging with circularly polarized illumination can provide the main optical properties of tissues with a simpler device in a shorter time, which is much more attractive. Unfortunately, it is difficult to realize the standard circularly polarized illumination actually in experiments. In this paper, we establish a theoretical model to display the relationship between the nonstandard circularly polarized illumination and the accuracy of the measurement results. Compared to the measurement results by Mueller polarimetry, we found that the depolarizations measured are the same but retardances measured are not. And except the influence of the nonstandard circularly polarized illumination, the sample’s optical characteristics also affect the accuracy of the measured retardance. Additionally, we have conducted a comparative experiment between Mueller polarimetry and the Stokes polarimetric imaging to verify. According to the simulation and experiment, we have confirmed that Stokes polarimetric imaging has good performance in measuring most samples and broadband detection, but there is a large error for measuring strongly birefringent samples. Our work quantitatively analyzes the effect of nonstandard circularly polarized illumination on the accuracy of Stokes polarimetric imaging through theoretical derivation for the first time. It enriches the error theory of Stokes polarimetric imaging with circularly polarized illumination and lays a foundation for the improvement and application.
KW - Stokes polarimetric imaging
KW - circularly polarized illumination
KW - error analysis
UR - http://www.scopus.com/inward/record.url?scp=85146718965&partnerID=8YFLogxK
U2 - 10.1117/12.2654796
DO - 10.1117/12.2654796
M3 - Conference contribution
AN - SCOPUS:85146718965
T3 - Proceedings of SPIE - The International Society for Optical Engineering
BT - Thirteenth International Conference on Information Optics and Photonics, CIOP 2022
A2 - Yang, Yue
PB - SPIE
T2 - 13th International Conference on Information Optics and Photonics, CIOP 2022
Y2 - 7 August 2022 through 10 August 2022
ER -