Modelling and Compensating Measurement Errors Caused by Scattering in Time-Of-Flight Cameras

被引:10
|
作者
Kavli, Tom [1 ]
Kirkhus, Trine [1 ]
Thielemann, Jens T. [1 ]
Jagielski, Borys
机构
[1] SINTEF, ICT, Pb 124 Blindern, N-0314 Oslo, Norway
来源
TWO- AND THREE-DIMENSIONAL METHODS FOR INSPECTION AND METROLOGY VI | 2008年 / 7066卷
关键词
Time of flight camera; range imaging; optical scattering; empirical determination of Point Spread Function;
D O I
10.1117/12.791019
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Recently, Range Imaging (RIM) cameras have become available that capture high resolution range images at video rate. Such cameras measure the distance from the scene for each pixel independently based upon a measured time of flight (TOF). Some cameras, such as the SwissRanger(TM) SR-3000, measure the TOF based on the phase shift of reflected light from a modulated light source. Such cameras are shown to be susceptible to severe distortions in the measured range due to light scattering within the lens and camera. Earlier work induced using a simplified Gaussian point spread function and inverse filtering to compensate for such distortions. In this work a method is proposed for how to identify and use generally shaped empirical models for the point spread function to get a more accurate compensation. The otherwise difficult inverse problem is solved by using the forward model iteratively, according to well established procedures from image restoration. Each iteration is done as a sequential process, starting with the brightest parts of the image and then moving sequentially to the least bright parts, with each step subtracting the estimated effects from the measurements. This approach gives a faster and more reliable compensation convergence. An average reduction of the error by more than 60% is demonstrated on real images. The computation load corresponds to one or two convolutions of the measured complex image with a real filter of the same size as the image.
引用
收藏
页数:10
相关论文
共 50 条
  • [1] Modelling and Compensating Internal Light Scattering in Time of Flight Range Cameras
    Karel, Wilfried
    Ghuffar, Sajid
    Pfeifer, Norbert
    PHOTOGRAMMETRIC RECORD, 2012, 27 (138): : 155 - 174
  • [2] QUANTIFYING THE DISTORTION OF DISTANCE OBSERVATIONS CAUSED BY SCATTERING IN TIME-OF-FLIGHT RANGE CAMERAS
    Karel, W.
    Ghuffar, S.
    Pfeifer, N.
    PROCEEDINGS OF THE ISPRS COMMISSION V MID-TERM SYMPOSIUM CLOSE RANGE IMAGE MEASUREMENT TECHNIQUES, 2010, 38 : 316 - 321
  • [3] Model based scattering correction in time-of-flight cameras
    Schaefer, Henrik
    Lenzen, Frank
    Garbe, Christoph S.
    OPTICS EXPRESS, 2014, 22 (24): : 29835 - 29846
  • [4] Depth Errors Analysis and Correction for Time-of-Flight (ToF) Cameras
    He, Ying
    Liang, Bin
    Zou, Yu
    He, Jin
    Yang, Jun
    SENSORS, 2017, 17 (01)
  • [5] Environmental effects on measurement uncertainties of time-of-flight cameras
    Guoemundsson, Sigurjn Arni
    Aanaes, Henrik
    Larsen, Rasmus
    ISSCS 2007: INTERNATIONAL SYMPOSIUM ON SIGNALS, CIRCUITS AND SYSTEMS, VOLS 1 AND 2, 2007, : 113 - +
  • [6] Statistical analysis of signal measurement in time-of-flight cameras
    Mufti, Faisal
    Mahony, Robert
    ISPRS JOURNAL OF PHOTOGRAMMETRY AND REMOTE SENSING, 2011, 66 (05) : 720 - 731
  • [7] Time-of-flight range cameras
    Yasutomi K.
    Kawahito S.
    1600, Inst. of Image Information and Television Engineers (70): : 880 - 885
  • [8] Assessment and Improvement of Distance Measurement Accuracy for Time-of-Flight Cameras
    Frangez, Valens
    Salido-Monzu, David
    Wieser, Andreas
    IEEE Transactions on Instrumentation and Measurement, 2022, 71
  • [9] Assessment and Improvement of Distance Measurement Accuracy for Time-of-Flight Cameras
    Frangez, Valens
    Salido-Monzu, David
    Wieser, Andreas
    IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2022, 71
  • [10] Random Errors in Determining the Range of Time-of-Flight Cameras and Their Effect on the Accuracy of Measurements
    V. A. Grishin
    Optoelectronics, Instrumentation and Data Processing, 2024, 60 (6) : 752 - 759