SWIR laser gated-viewing at Fraunhofer IOSB

被引:5
|
作者
Goehler, Benjamin [1 ]
Lutzmann, Peter [1 ]
机构
[1] Fraunhofer Inst Optron Syst Technol & Image Explo, Dept Optron, D-76275 Ettlingen, Germany
关键词
gated-viewing; range-gating; active imaging; short-wavelength infrared; RADAR; SKIN;
D O I
10.1117/12.2195932
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper reviews the work that has been done at Fraunhofer IOSB (and its predecessor institutes) in the past ten years in the area of laser gated-viewing (GV) in the short-wavelength infrared (SWIR) band. Experimental system demonstrators in various configurations have been built up in order to show the potential for different applications and to investigate specific topics. The wavelength of the pulsed illumination laser is around 1.57 mu m and lies in the invisible, retina-safe region allowing much higher pulse energies than for wavelengths in the visible or near-infrared band concerning eye safety. All systems built up, consist of gated Intevac LIVAR (R) cameras based on EBCCD/EBCMOS detectors sensitive in the SWIR band. This review comprises military and civilian applications in maritime and land domain - in particular vision enhancement in bad visibility, long-range applications, silhouette imaging, 3-D imaging by sliding gates and slope method, bi-static GV imaging and looking through windows. In addition, theoretical studies that were conducted - for example estimating 3-D accuracy or modelling range performance - are presented. Finally, an outlook for future work in the area of SWIR laser GV at Fraunhofer IOSB is given.
引用
收藏
页数:24
相关论文
共 50 条
  • [21] InGaAs-based SWIR photodetectors for night vision and gated viewing
    Rutz, F.
    Aidam, R.
    Baechle, A.
    Heussen, H.
    Bronner, W.
    Rehm, R.
    Benecke, M.
    Sieck, A.
    Brunner, S.
    Goehler, B.
    Lutzmann, P.
    [J]. ELECTRO-OPTICAL AND INFRARED SYSTEMS: TECHNOLOGY AND APPLICATIONS XV, 2018, 10795
  • [22] Extending the 3D range of a short-wave infrared laser gated-viewing system capable of correlated double sampling
    Goehler, Benjamin
    Lutzmann, Peter
    [J]. ELECTRO-OPTICAL REMOTE SENSING XII, 2018, 10796
  • [23] Super-resolution depth information from a short-wave infrared laser gated-viewing system by using correlated double sampling
    Goehler, Benjamin
    Lutzmann, Peter
    [J]. ELECTRO-OPTICAL REMOTE SENSING XI, 2017, 10434
  • [24] SWIR photodetector development at Fraunhofer IAF
    Rutz, F.
    Kleinow, P.
    Aidam, R.
    Heussen, H.
    Bronner, W.
    Sieck, A.
    Walther, M.
    [J]. IMAGE SENSING TECHNOLOGIES: MATERIALS, DEVICES, SYSTEMS, AND APPLICATIONS II, 2015, 9481
  • [25] Development of a novel low-cost NIR gated-viewing sensor for maritime search and rescue applications
    Peters, Enno
    Schmidt, Jendrik
    Juranyi, Zsofia
    Berger, Marco W.
    Scherbarth, Stefan
    Lehmann, Frank
    [J]. ELECTRO-OPTICAL REMOTE SENSING XIII, 2019, 11160
  • [26] Portable bi-λ SWIR/NIR gated viewing system for surveillance and security applications
    Christnacher, F.
    Bacher, E.
    Metzger, N.
    Schertzer, S.
    Lutz, Y.
    Poyet, J. -M.
    Laurenzis, M.
    [J]. ELECTRO-OPTICAL REMOTE SENSING XII, 2018, 10796
  • [27] Hardware-software System for Exploring the Possibility of Application of CCD Image Sensors as Part of Gated-Viewing Systems
    A. A. Golitsyn
    [J]. Optoelectronics, Instrumentation and Data Processing, 2019, 55 : 513 - 518
  • [28] Gated viewing laser imaging with compressive sensing
    Li, Li
    Wu, Lei
    Wang, Xingbin
    Dang, Ersheng
    [J]. APPLIED OPTICS, 2012, 51 (14) : 2706 - 2712
  • [29] Hardware-software System for Exploring the Possibility of Application of CCD Image Sensors as Part of Gated-Viewing Systems
    Golitsyn, A. A.
    [J]. OPTOELECTRONICS INSTRUMENTATION AND DATA PROCESSING, 2019, 55 (05) : 513 - 518
  • [30] Laser gated viewing at ISL for vision through smoke, active polarimetry, and 3D imaging in NIR and SWIR wavelength bands
    Laurenzis, Martin
    Christnacher, Frank
    [J]. ADVANCED OPTICAL TECHNOLOGIES, 2013, 2 (5-6) : 397 - 405