ELECTROMAGNETISM, OPTICS, ACOUSTICS, HEAT TRANSFER, CLASSICAL MECHANICS, AND FLUID DYNAMICS |
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Active hyperspectral imaging with a supercontinuum laser source in the dark |
Zhongyuan Guo(郭中源)1, Yu Liu(刘煜)2, Xin Zheng(郑鑫)1, Ke Yin(殷科)1,3 |
State Key Laboratory of High Performance Computing, College of Computer, National University of Defense Technology, Changsha 401173, China;
2 College of Advanced Interdisciplinary Studies, National University of Defense Technology, Changsha 410073, China;
3 National Innovation Institute of Defense Technology, Academy of Military Sciences of the People's Liberation Army of China, Beijing 100071, China |
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Abstract An active hyperspectral imaging (HSI) system was built with a supercontinuum (SC) laser illuminator and a visible/near-infrared hyperspectral camera, which was used for object spectrum detection in the dark. It was demonstrated that the Gaussian-like distribution of the SC illuminator can still be used for accurate reflectance spectrum measurement once the illuminator was characterized in advance. The validity of active HSI results was demonstrated by comparison with passive results. Then, the active HSI system was used to acquire reflectance spectra of different objects in just one push-broom measurement successfully. With algorithms of principal component analysis clustering and unsupervised K-means spectral classification, this active HSI system with high spectral and spatial resolutions was demonstrated to be efficient and applicable for specific spectrum detections.
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Received: 19 September 2018
Revised: 02 January 2019
Accepted manuscript online:
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PACS:
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42.62.Fi
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(Laser spectroscopy)
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02.70.Hm
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(Spectral methods)
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42.81.Wg
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(Other fiber-optical devices)
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Fund: Project supported by the Opening Foundation of State Key Laboratory of High Performance Computing, China (Grant No. 201601-02), the Open Research Fund of Hunan Provincial Key Laboratory of High Energy Technology, China (Grant No. GNJGJS03), the Opening Foundation of State Key Laboratory of Laser Interaction with Matter, China (Grant No. SKLLIM1702), and the China Postdoctoral Innovation Science Foundation (Grant No. BX20180373). |
Corresponding Authors:
Ke Yin
E-mail: cqyinke@126.com
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Cite this article:
Zhongyuan Guo(郭中源), Yu Liu(刘煜), Xin Zheng(郑鑫), Ke Yin(殷科) Active hyperspectral imaging with a supercontinuum laser source in the dark 2019 Chin. Phys. B 28 034206
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[1] |
Lin Z, Wang R, Wang Y, Wang L, Lu C, Liu Y, Zhang Z and Zhu L 2018 Appl. Opt. 57 D69
|
[2] |
Nischan M L, Joseph R M, Libby J C and Kerekes J P 2003 Linc. Lab. J. 14 131
|
[3] |
Gronwall C, Steinvall O, Gohler B and Hamoir D 2016 Appl. Opt. 55 5292
|
[4] |
Steinvall O, Elmqvist M, Chevalier T and Gustafsson O 2013 Appl. Opt. 52 4763
|
[5] |
Odegard O, Mogstad A A, Johnsen G, Sorensen A J and Ludvigsen M 2018 Appl. Opt. 57 3214
|
[6] |
Lejot J, Delacourt C, Piégay H, Fournier T, Trémélo M L and Allemand P 2007 Earth Surf. Processes Landforms 32 1705
|
[7] |
Albert M, Teemu K R I, Tomi P, Scott B, Miika H and Toni L 2014 Opt. Express 22 7172
|
[8] |
Ou Y, Zhang B, Yin K, Xu Z, Chen S and Hou J 2018 Opt. Express 26 9822
|
[9] |
Skvortsov L A 2011 Quant Electron. 41 1051
|
[10] |
Wang Y B, Hou J, Chen Z L, Chen S P, Song R, Li Y, Yang W Q and Lu Q S 2011 Chin. Phys. Lett. 28 074208
|
[11] |
Chen H W, Jin A J, Chen S P, Hou J and Lu Q S 2013 Chin. Phys. B 22 084205
|
[12] |
Islam M N, Freeman M J, Peterson L M, Ke K, Ifarraguerri A, Bailey C, Baxley F, Wager M, Absi A, Leonard J, Baker H and Rucci M 2016 Appl. Opt. 55 1584
|
[13] |
Johnson B, Joseph R, Nischan M, AmyNewbury, Kerekes J, Barclay H, Willard B and Zayhowski J J 1999 Proc. SPIE 3710, Detection and Remediation Technologies for Mines and Minelike Targets IV August, 1999 Orlando, United States
|
[14] |
Kaasalainen S, Lindroos T and Hyyppa J 2007 IEEE Geosci. Remote Sens. Lett. 4 211
|
[15] |
Orchard D A, Turner A J, Michaille L and Ridley K R 2008 Proc. SPIE 7115 711506
|
[16] |
Hakala T, Suomalainen J, Kaasalainen S and Chen Y 2012 Opt. Express 20 7119
|
[17] |
Hwang J 2014 Appl. Opt. 53 6216
|
[18] |
Powers M A and Davis C C 2012 Appl. Opt. 51 1468
|
[19] |
Ji X L 2010 Acta Phys. Sin. 59 692 (in Chinese)
|
[20] |
Wang H, Wang X Z, Zeng A J and Yang K 2008 Acta Phys. Sin. 57 634 (in Chinese)
|
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