返回
Phase optimization algorithm for 3D particle localization with large axial depth
DOI:10.1364/OL.446947.png)
摘要
En 中文
We propose an optimization algorithm based on Fresnel approximation (FA) imaging to optimize an extended-axial-depth point spread function (PSF) for 3D particle localization. The transfer function efficiency of the PSF is improved by repeatedly imposing constraints in the object plane, the spatial domain, and the Fourier domain. During the iterative calculation, the effective photon number or Cramer-Rao lower bound is used as the termination condition of the iteration. The algorithm allows flexible adjustment of the peak intensity ratio of the two main lobes. Moreover, the transfer function efficiency can be balanced by increasing the weight of the modulation function of the expected PSF at each axial position. The twin-Airy (TA) PSF optimized by the FA optimization algorithm does not require complex post-processing, whereas post-processing is an essential step for the unoptimized TA-PSF. The optimization algorithm is significant for extended-axial-depth PSFs used for 3D particle localization, as it improves localization precision and temporal resolution. (C) 2021 Optica Publishing Group
Keyword:
PUPIL FUNCTIONS
MICROSCOPY
TRACKING
期刊
IF:
3.3
论文数:
4.0W
被引数:
7.6W
机构
引用论文
High precision wavefront control in point spread function engineering for single emitter localization
OPTICS EXPRESS
IF3.3
Three dimensional multi-molecule tracking in thick samples with extended depth-of-field
OPTICS EXPRESS
IF3.3
Measurement-based estimation of global pupil functions in 3D localization microscopy
OPTICS EXPRESS
IF3.3
Precise 3D particle localization over large axial ranges using secondary astigmatism
OPTICS LETTERS
IF3.3

