Da-peng TIAN, Xiao-peng SHAO. New emerging technologies in airborne optical imaging and measurement[J]. Optics and precision engineering, 2020, 28(6): 1221-1225.
DOI:
Da-peng TIAN, Xiao-peng SHAO. New emerging technologies in airborne optical imaging and measurement[J]. Optics and precision engineering, 2020, 28(6): 1221-1225. DOI: 10.3788/OPE.20202806.1221.
New emerging technologies in airborne optical imaging and measurement
Airborne optical imaging and measurement technology has prominent advantages such as high timeliness
low cost
high resolution and easy interpretation. It has been widely applied as an indispensable optical remote sensing method. Due to the influence of aviation flight
in order to obtain clearer optical images and more accurate measurement
the problems should be solved such as aerodynamic
vibration
temperature and pressure changing under the constraints of limited volume
weight and power consumption. To meet the demand of new technologies
new methods and new theories in this field
a special issue of airborne imaging and measurement was organized. A number of excellent research results were introduced in the fields of precision optics
precision mechanics
precision control and image processing. It promotes the further development of relative research from the perspective of theoretical guidance and engineering reference value.
LIU F, LIU J W, SHAO X P. Design of high integration and miniaturization concentric multi-scale optical system[J]. Opt. Precision Eng ., 2020, 28(6):1275-1282. (in Chinese)
ZHANG H W, DING Y L, MA Y J, et al .. Design of infrared dual-band/dual-FOV imaging early warning system[J]. Opt. Precision Eng ., 2020, 28(6):1283-1294. (in Chinese)
WANG W J, HUANG J, YUAN G F, et al .. Modeling and application analysis of operating range of Air-Based Infrared System[J]. Opt. Precision Eng ., 2020, 28(6):1295-1302. (in Chinese)
ZHANG CH, WU X, XIE J. A new model of infrared polarization characteristics on sea surface[J]. Opt. Precision Eng ., 2020, 28(6):1303-1313. (in Chinese)
CHEN Y, PAN Y Q, LIU B C, et al .. Linear phase error suppression technique based on Window Fourier Transform[J]. Opt. Precision Eng ., 2020, 28(6):1314-1322. (in Chinese)
GAO Z D, GAO H X, ZHU Y Y, et al .. Research and comparison between different snapshot spectral imaging technologies[J]. Opt. Precision Eng ., 2020, 28(6):1323-1343. (in Chinese)
LIU W Y, XU Y L, SHI L, et al .. The Influence of aviation low temperature on the auto-collimating focusing system[J]. Opt. Precision Eng ., 2020, 28(6):1226-1235. (in Chinese)
LIU X J, DING Y L, LI F, et al .. Theoretical analysis and verification of Ronchi grating auto-collimated focusing for aerial remote camera[J]. Opt. Precision Eng ., 2020, 28(6):1236-1244. (in Chinese)
SHI L, XU Y S, TIAN D P, et al .. Design and test of an aviation stable platform by cable drive[J]. Opt. Precision Eng ., 2020, 28(6):1245-1253. (in Chinese)
LI J, HUANG H T, XIU J H, et al .. Effect and Compensation of Overlap influenced by Flight Parameter of Oblique Aerial Camera[J]. Opt. Precision Eng ., 2020, 28(6):1254-1264. (in Chinese)
LI B, DING Y L, XIU J H, et al .. System error corrected ground target geo-location method for long distance aviation imaging with large inclination Angle[J]. Opt. Precision Eng ., 2020, 28(6):1265-1274. (in Chinese)
WANG ZH SH, TIAN D P, SHI L, et al .. Equivalent strapdown inertial stability control of photoelectric platform considering the influences of mounting base[J]. Opt. Precision Eng ., 2020, 28(6):1344-1352. (in Chinese)
WU SH B, SU X Q, WANG K D. High precision speed control for the turntable of the circumferential scanning imaging system[J]. Opt. Precision Eng ., 2020, 28(6):1353-1364. (in Chinese)
YANG P, YANG X L, XIU J H, et al .. Reduced-order active disturbance rejection control of fast steering mirror driven by VCA[J]. Opt. Precision Eng ., 2020, 28(6):1365-1374. (in Chinese)
GU Y, LIU J, SHEN H H, et al .. Infrared dim-small target detection based on an improved multiscale fractal feature[J]. Opt. Precision Eng ., 2020, 28(6):1375-1386. (in Chinese)
HAN H N, QIAN F, LÜ J W, et al .. Aerial image dehazing using improved dark channel prior[J]. Opt. Precision Eng ., 2020, 28(6):1387-1394. (in Chinese)
ZHAO H G, WANG P, DONG CH, et al .. Ship detection based on the multi-scale visual saliency model[J]. Opt. Precision Eng ., 2020, 28(6):1395-1403. (in Chinese)