Optical sectioning microscopy using two-frame structured illumination and Hilbert-Huang data processing

被引:0
作者
Trusiak, M. [1 ]
Patorski, K. [1 ]
Tkaczyk, T. [2 ]
机构
[1] Warsaw Univ Technol, Inst Micromech & Photon, 8 Sw A Boboli St, PL-02525 Warsaw, Poland
[2] Rice Univ, Dept Bioengn, Houston, TX 77005 USA
来源
19TH POLISH-SLOVAK-CZECH OPTICAL CONFERENCE ON WAVE AND QUANTUM ASPECTS OF CONTEMPORARY OPTICS | 2014年 / 9441卷
关键词
structured illumination microscopy; optical sectioning; fringe pattern analysis; fast and adaptive empirical mode decomposition; Hilbert transform; Hilbert-Huang processing; 2-DIMENSIONAL FRINGE PATTERNS; EMPIRICAL MODE DECOMPOSITION; NATURAL DEMODULATION; TRANSFORM; ALGORITHM; RESOLUTION; LIGHT; REAL;
D O I
10.1117/12.2176027
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
We propose a fast, simple and experimentally robust method for reconstructing background-rejected optically-sectioned microscopic images using two-shot structured illumination approach. Innovative data demodulation technique requires two grid-illumination images mutually phase shifted by pi (half a grid period) but precise phase displacement value is not critical. Upon subtraction of the two frames the input pattern with increased grid modulation is computed. The proposed demodulation procedure comprises: (1) two-dimensional data processing based on the enhanced, fast empirical mode decomposition (EFEMD) method for the object spatial frequency selection (noise reduction and bias term removal), and (2) calculating high contrast optically-sectioned image using the two-dimensional spiral Hilbert transform (HS). The proposed algorithm effectiveness is compared with the results obtained for the same input data using conventional structured-illumination (SIM) and HiLo microscopy methods. The input data were collected for studying highly scattering tissue samples in reflectance mode. In comparison with the conventional three-frame SIM technique we need one frame less and no stringent requirement on the exact phase-shift between recorded frames is imposed. The HiLo algorithm outcome is strongly dependent on the set of parameters chosen manually by the operator (cut-off frequencies for low-pass and high-pass filtering and. parameter value for optically-sectioned image reconstruction) whereas the proposed method is parameter-free. Moreover very short processing time required to efficiently demodulate the input pattern predestines proposed method for real-time in-vivo studies. Current implementation completes full processing in 0.25s using medium class PC (Inter i7 2,1 GHz processor and 8 GB RAM). Simple modification employed to extract only first two BIMFs with fixed filter window size results in reducing the computing time to 0.11s (8 frames/s).
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页数:12
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