IMAGE MOTION COMPENSATION - THE VEXCEL APPROACH

被引:1
作者
Dohr, Stefan [1 ]
Muick, Marc [1 ]
Schachinger, Bernhard [1 ]
Gruber, Michael [1 ]
机构
[1] Vexcel Imaging GmbH, Anzengrubergasse 8, A-8010 Graz, Austria
来源
XXIV ISPRS CONGRESS CONGRESS IMAGING TODAY, FORESEEING TOMORROW, COMMISSION I | 2022年 / 43-B1卷
关键词
Photogrammetry; Motion Compensation; Airborne Mapping; Airborne Surveying;
D O I
10.5194/isprs-archives-XLIII-B1-2022-333-2022
中图分类号
P9 [自然地理学];
学科分类号
0705 ; 070501 ;
摘要
Motion compensation in general and forward motion compensation in particular was an important milestone in aerial imaging when presented for film-based camera systems in the late 90(ts) of the last century. It focused on the forward motion compensation to enhance the image quality when flight speed and image scale produce such motion blur even at short exposure time. Another development and milestone in aerial photogrammetry, the active mount, contributed as well to reduce motion blur. When digital aerial cameras replaced the film-based camera systems in the first decade of the 21st century, forward motion compensation (FMC) could be implemented as an electronic feature of the CCD sensors, namely the time delayed integration (TDI) feature, which worked fine and did not require a mechanical component. Not all cameras could make use of that but large format frame cameras like DMC and UltraCam were able to compensate forward motion blur exploiting this feature of the electronic sensor component. Since CMOS sensors were replacing the CCD sensor component of digital aerial cameras there was a need to implement the FMC mechanism by another solution. One approach was based on a mechanical device able to move the sensor along the flight path of the aircraft like it was the approach for film cameras. At that time Vexcel Imaging decided to develop a more versatile solution based on software and without any additional mechanical part in the camera body. This solution was designed to not only compensate for a uniform compensation to the forward motion but also for angular motion blur and for different scales in one and the same image. This is especially important for the oblique viewing direction of a camera when foreground and background of an oblique scene show different scales in one and the same image. The need to compensate for motion blur is evident when large scale aerial imaging is required, and best image quality is expected. Motion blur is caused from the speed of the aircraft over ground, the image scale, and an angular component - the angular motion blur - caused from turbulences if they exist. The magnitude of the forward motion blur can be estimated when multiplying aircraft speed and image scale and exposure time (e.g. speed over ground 75 m/sec, scale 1/10000 and exposure time 0,001 seconds leads to 0,0075 mm or 7,5 mu m in the image). Different image scales result in different magnitude of motion blur. This is evident for oblique camera systems.
引用
收藏
页码:333 / 338
页数:6
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[41]   On macroblock partition for motion compensation [J].
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2006 IEEE INTERNATIONAL CONFERENCE ON IMAGE PROCESSING, ICIP 2006, PROCEEDINGS, 2006, :1697-+
[42]   MOTION COMPENSATION AND MULTIRESOLUTION CODING [J].
CAFFORIO, C ;
GUARAGNELLA, C ;
BELLIFEMINE, F ;
CHIMIENTI, A ;
PICCO, R .
SIGNAL PROCESSING-IMAGE COMMUNICATION, 1994, 6 (02) :123-142
[43]   HYBRID CODERS WITH MOTION COMPENSATION [J].
CHEN, CF ;
PANG, KK .
MULTIDIMENSIONAL SYSTEMS AND SIGNAL PROCESSING, 1992, 3 (2-3) :241-266
[44]   An intelligent motion compensation algorithm [J].
Yfantis, EA ;
Jeon, JA ;
Sylakou, AED ;
Bourbakis, N .
INTELLIGENT SYSTEMS, 1997, :75-78
[45]   Transforms for the Motion Compensation Residual [J].
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[46]   Motion compensation approach for wide-swath missile-borne SAR imagery [J].
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[47]   A New Approach to Airborne High Resolution SAR Motion Compensation for Large Trajectory Deviations [J].
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CHINESE JOURNAL OF ELECTRONICS, 2012, 21 (04) :764-769
[48]   Removal of motion uncertainty and quantization noise in motion compensation [J].
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[49]   ISAR imaging motion compensation in nonuniform rectilinear motion [J].
Meng, J .
ELECTRONICS LETTERS, 1997, 33 (02) :164-165
[50]   A bidirectional motion compensation LSI with a compact motion estimator [J].
Hayashi, N ;
Kitsuki, T ;
Tamitani, I ;
Honma, H ;
Ooi, Y ;
Miyazaki, T ;
Oobuchi, K .
IEICE TRANSACTIONS ON ELECTRONICS, 1995, E78C (12) :1682-1690