English

Deep neural networks for efficient phase demodulation in wavelength shifting interferometry

Image and Video Processing 2020-08-26 v1 Signal Processing Optics

Abstract

Analytical phase demodulation algorithms in optical interferometry typically fail to reach the theoretical sensitivity limit set by the Cram\'er-Rao bound (CRB). We show that deep neural networks (DNNs) can perform efficient phase demodulation by achieving or exceeding the CRB by significant margins when trained with new information that is not utilized by conventional algorithms, such as noise statistics and parameter constraints. As an example, we developed and applied DNNs to wavelength shifting interferometry. When trained with noise statistics, the DNNs outperform the conventional algorithm in terms of phase sensitivity and achieve the traditional three parameter CRB. Further, by incorporating parameter constraints into the training sets, they can exceed the traditional CRB. For well confined parameters, the phase sensitivity of the DNNs can even approach a fundamental limit we refer to as the single parameter CRB. Such sensitivity improvement can translate into significant increase in single-to-noise ratio without hardware modification, or be used to relax hardware requirements.

Keywords

Cite

@article{arxiv.2005.10606,
  title  = {Deep neural networks for efficient phase demodulation in wavelength shifting interferometry},
  author = {Jacob Black and Shichao Chen and Joseph G. Thomas and Yizheng Zhu},
  journal= {arXiv preprint arXiv:2005.10606},
  year   = {2020}
}

Comments

10 pages, 10 figures

R2 v1 2026-06-23T15:42:51.791Z