期刊文献+

Piecewise spectrally band-pass for compressive coded aperture spectral imaging

Piecewise spectrally band-pass for compressive coded aperture spectral imaging
在线阅读 下载PDF
导出
摘要 Coded aperture snapshot spectral imaging(CASSI) has been discussed in recent years. It has the remarkable advantages of high optical throughput, snapshot imaging, etc. The entire spatial-spectral data-cube can be reconstructed with just a single two-dimensional(2D) compressive sensing measurement. On the other hand, for less spectrally sparse scenes,the insufficiency of sparse sampling and aliasing in spatial-spectral images reduce the accuracy of reconstructed threedimensional(3D) spectral cube. To solve this problem, this paper extends the improved CASSI. A band-pass filter array is mounted on the coded mask, and then the first image plane is divided into some continuous spectral sub-band areas. The entire 3D spectral cube could be captured by the relative movement between the object and the instrument. The principle analysis and imaging simulation are presented. Compared with peak signal-to-noise ratio(PSNR) and the information entropy of the reconstructed images at different numbers of spectral sub-band areas, the reconstructed 3D spectral cube reveals an observable improvement in the reconstruction fidelity, with an increase in the number of the sub-bands and a simultaneous decrease in the number of spectral channels of each sub-band. Coded aperture snapshot spectral imaging(CASSI) has been discussed in recent years. It has the remarkable advantages of high optical throughput, snapshot imaging, etc. The entire spatial-spectral data-cube can be reconstructed with just a single two-dimensional(2D) compressive sensing measurement. On the other hand, for less spectrally sparse scenes,the insufficiency of sparse sampling and aliasing in spatial-spectral images reduce the accuracy of reconstructed threedimensional(3D) spectral cube. To solve this problem, this paper extends the improved CASSI. A band-pass filter array is mounted on the coded mask, and then the first image plane is divided into some continuous spectral sub-band areas. The entire 3D spectral cube could be captured by the relative movement between the object and the instrument. The principle analysis and imaging simulation are presented. Compared with peak signal-to-noise ratio(PSNR) and the information entropy of the reconstructed images at different numbers of spectral sub-band areas, the reconstructed 3D spectral cube reveals an observable improvement in the reconstruction fidelity, with an increase in the number of the sub-bands and a simultaneous decrease in the number of spectral channels of each sub-band.
出处 《Chinese Physics B》 SCIE EI CAS CSCD 2015年第8期248-253,共6页 中国物理B(英文版)
基金 supported by the National Natural Science Foundation for Distinguished Young Scholars of China(Grant No.61225024) the National High Technology Research and Development Program of China(Grant No.2011AA7012022)
关键词 coded aperture spectral imaging compressive sensing information reconstruction coded aperture,spectral imaging,compressive sensing,information reconstruction
  • 相关文献

参考文献27

  • 1Arguello H,Arce G R. J Opt.Soc.Am.A . 2011
  • 2Kim, Seung-Jean,Koh, Kwangmoo,Lustig, Michael,Boyd, Stephen,Gorinevsky, Dimitry.An interior-point method for large-scale ? 1 -regularized least squares. IEEE Journal on Selected Topics in Signal Processing . 2007
  • 3Candes, Emmanuel J.,Wakin, Michael B.An introduction to compressive sampling: A sensing/sampling paradigm that goes against the common knowledge in data acquisition. IEEE Signal Processing Magazine . 2008
  • 4Wagadarikar Ashwin,John Renu,Willett Rebecca,Brady David.Single disperser design for coded aperture snapshot spectral imaging. Applied Optics . 2008
  • 5David L. Donoho.Compressed sensing. IEEE Transactions on Information Theory . 2006
  • 6Clark R N,King T V V,Klejwa M,et al.High spectral resolution reflectance spectroscopy of minerals. Chinese Journal of Geophysics . 1990
  • 7Arguello H,Rueda H,Wu Y H,Prather D W,Arce G R. Applied Optics . 2013
  • 8Cande’’s E J. C.R.Math.Acad.Sci.Paris . 2008
  • 9Ning F L,He B J,Wei J. Acta Physica Sinica . 2013
  • 10Arce G R,Brady D J,Carin L,Arguello H,Kittle D S. IEEE Signal Process.Mag . 2014

二级参考文献38

共引文献68

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部