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Characterization and Modelling of the Spatially- and Spectrally-Varying Point-Spread Function in Hyperspectral Imaging Systems for Computational Correction of Axial Optical Aberrations

机译:高光谱成像系统中空间和光谱变化的点扩展函数的表征和建模,用于轴向像差的计算校正

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摘要

Spatial resolution of hyperspectral imaging systems can vary significantly due to axial optical aberrations that originate from wavelength-induced index-of-refraction variations of the imaging optics. For systems that have a broad spectral range, the spatial resolution will vary significantly both with respect to the acquisition wavelength and with respect to the spatial position within each spectral image. Variations of the spatial resolution can be effectively characterized as part of the calibration procedure by a local image-based estimation of the point-spread function (PSF) of the hyperspectral imaging system. The estimated PSF can then be used in the image deconvolution methods to improve the spatial resolution of the spectral images. We estimated the PSFs from the spectral images of a line grid geometric caliber. From individual line segments of the line grid, the PSF was obtained by a non-parametric estimation procedure that used an orthogonal series representation of the PSF. By using the non-parametric estimation procedure, the PSFs were estimated at different spatial positions and at different wavelengths. The variations of the spatial resolution were characterized by the radius and the full-width half-maximum of each PSF and by the modulation transfer function, computed from images of USAF1951 resolution target. The estimation and characterization of the PSFs and the image deconvolution based spatial resolution enhancement were tested on images obtained by a hyperspectral imaging system with an acousto-optic tunable filter in the visible spectral range. The results demonstrate that the spatial resolution of the acquired spectral images can be significantly improved using the estimated PSFs and image deconvolution methods.
机译:高光谱成像系统的空间分辨率可能会由于轴向光学像差而发生显着变化,而轴向光学像差是由成像光学器件的波长引起的折射率变化引起的。对于具有较宽光谱范围的系统,空间分辨率将相对于采集波长和相对于每个光谱图像内的空间位置发生明显变化。通过基于局部图像的高光谱成像系统的点扩展函数(PSF)的估计,可以有效地将空间分辨率的变化表征为校准过程的一部分。然后,可以在图像反卷积方法中使用估计的PSF,以提高光谱图像的空间分辨率。我们从线栅几何口径的光谱图像估计了PSF。从线网格的各个线段中,通过使用PSF的正交序列表示的非参数估计过程获得PSF。通过使用非参数估计程序,可以在不同的空间位置和不同的波长下估计PSF。空间分辨率的变化以每个PSF的半径和半峰全宽以及通过USAF1951分辨率目标图像计算出的调制传递函数为特征。在由高光谱成像系统在可见光谱范围内使用声光可调滤光片对高光谱成像系统获得的图像上,测试了PSF的估计和表征以及基于图像反卷积的空间分辨率增强。结果表明,使用估计的PSF和图像反卷积方法可以显着提高所采集光谱图像的空间分辨率。

著录项

  • 来源
    《Design and quality for biomedical technologies V》|2012年|p.82150R.1-82150R.9|共9页
  • 会议地点 San Francisco CA(US)
  • 作者单位

    Faculty of Electrical Engineering, Laboratory of Imaging Technologies, University of Ljubljana, Trzaska 25, 1000 Ljubljana, Slovenia;

    Faculty of Electrical Engineering, Laboratory of Imaging Technologies, University of Ljubljana, Trzaska 25, 1000 Ljubljana, Slovenia;

    Faculty of Electrical Engineering, Laboratory of Imaging Technologies, University of Ljubljana, Trzaska 25, 1000 Ljubljana, Slovenia,Sensum Computer Vision Systems, Tehnoloski park 21, 1000 Ljubljana, Slovenia;

    Faculty of Electrical Engineering, Laboratory of Imaging Technologies, University of Ljubljana, Trzaska 25, 1000 Ljubljana, Slovenia,Sensum Computer Vision Systems, Tehnoloski park 21, 1000 Ljubljana, Slovenia;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 医用物理学;
  • 关键词

    hyperspectral imaging; optical aberration; calibration; point-spread function; deconvolution;

    机译:高光谱成像光学像差校准;点扩展功能;去卷积;

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