Stripe artifact elimination based on nonsubsampled contourlet transform for light sheet fluorescence microscopy

X Liang, Y Zang, D Dong, L Zhang… - Journal of …, 2016 - spiedigitallibrary.org
Journal of Biomedical Optics, 2016spiedigitallibrary.org
Stripe artifacts, caused by high-absorption or high-scattering structures in the illumination
light path, are a common drawback in both unidirectional and multidirectional light sheet
fluorescence microscopy (LSFM), significantly deteriorating image quality. To circumvent this
problem, we present an effective multidirectional stripe remover (MDSR) method based on
nonsubsampled contourlet transform (NSCT), which can be used for both unidirectional and
multidirectional LSFM. In MDSR, a fast Fourier transform (FFT) filter is designed in the NSCT …
Abstract
Stripe artifacts, caused by high-absorption or high-scattering structures in the illumination light path, are a common drawback in both unidirectional and multidirectional light sheet fluorescence microscopy (LSFM), significantly deteriorating image quality. To circumvent this problem, we present an effective multidirectional stripe remover (MDSR) method based on nonsubsampled contourlet transform (NSCT), which can be used for both unidirectional and multidirectional LSFM. In MDSR, a fast Fourier transform (FFT) filter is designed in the NSCT domain to shrink the stripe components and eliminate the noise. Benefiting from the properties of being multiscale and multidirectional, MDSR succeeds in eliminating stripe artifacts in both unidirectional and multidirectional LSFM. To validate the method, MDSR has been tested on images from a custom-made unidirectional LSFM system and a commercial multidirectional LSFM system, clearly demonstrating that MDSR effectively removes most of the stripe artifacts. Moreover, we performed a comparative experiment with the variational stationary noise remover and the wavelet-FFT methods and quantitatively analyzed the results with a peak signal-to-noise ratio, showing an improved noise removal when using the MDSR method.
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