An ultra-compact shortwave infrared hyperspectral imaging system

被引:1
作者
Giblin, Jay [1 ]
Chatterjee, Rusha [1 ]
Chase, Michael [1 ]
Ascenzi, Michael [1 ]
Rameau, Jonathan [1 ]
Dupuis, Julia R. [1 ]
Martin, Jacob A. [2 ]
Meola, Joseph [2 ]
机构
[1] Phys Sci Inc, 20 New England Business Ctr, Andover, MA 01810 USA
[2] Air Force Res Lab, 2241 Av Circle, Wright Patterson AFB, OH USA
来源
ALGORITHMS, TECHNOLOGIES, AND APPLICATIONS FOR MULTISPECTRAL AND HYPERSPECTRAL IMAGING XXVIII | 2022年 / 12094卷
关键词
Hyperspectral Imaging; Shortwave Infrared; Full Motion Video;
D O I
10.1117/12.2618318
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Physical Sciences Inc. has developed an ultra-compact shortwave infrared (SWIR) staring mode hyperspectral imaging (HSI) sensor with an additional visible full motion video (FMV) capability. The innovative HSI design implements a programmable micro-electromechanical system entrance slit that breaks the interdependence between vehicle speed, frame rate, and spatial resolution of conventional push-broom systems and enables staring-mode operation without cooperative motion of the host vehicle or aircraft. The FMV and HSI components fit within 1000 cm(3), weigh a total of 2.1 lbs., and draw 15 W of power. The sensor mechanical design is compatible with gimbal-based deployment allowing for easy integration into ground vehicles or aircrafts. The FMV is capable of achieving NIRS-6 imagery over a 6 degrees x6 degrees field-of-view (FOV) at a 1500 ft. standoff. The SWIR HSI covers a spectral range of 900-1605 nm with a 15 nm spectral resolution, and interrogates a 5 degrees x5 degrees FOV per 1.6 s with a 2.18 mrad instantaneous FOV (1 m ground sample distance at 1500 ft.). A series of outdoor tests at standoffs up to 300 ft. have been conducted that demonstrate the payload's capability to acquire HSI information. The payload has direct utility towards diverse remote sensing applications such as vegetation monitoring, geological mapping, surveillance, etc. The data product utility is demonstrated through the spectral identification of materials (e.g. foam and cloth) placed in the sensor's FOV.
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页数:12
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