000 04681nas a2200493 a 4500
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008 161121s2012 th uu m rtt 0| a1eng d
035 _a.b12174531
099 9 _aAIT Diss. no.CS-12-05
100 1 _aBukhari, Faisal
245 1 0 _aAutomatic radial distortion estimation from a single image
260 _aPathum Thani, Thailand :
_bAsian Institute of Technology,
_c2012
300 _a1 online resource (73 p.) :
_bill.
490 1 _aDissertation ;
_vno. CS-12-05
500 _aA dissertation submitted in partial fulfillment of the requirements for the degree of Doctor of Philosophy in Computer Science, School of Engineering and Technology
502 _aThesis (Ph.D.) - Asian Institute of Technology, 2012
520 _aMany computer vision algorithms rely on the assumptions of the pinhole camera model, butlens distortion with off-the-shelf cameras is usually significant enough to violate this as-sumption. Many methods for radial distortion estimation have been proposed, but they allhave limitations. Robust automatic radial distortion estimation from a single natural imagewould be extremely useful for many applications, particularly those in human-made envi-ronments containing abundant lines. For example, it could be used in place of an extensivecalibration procedure to get a mobile robot or quadrotor experiment up and running quicklyin an indoor environment.In this dissertation we propose a new and fully automatic method for radial distortion esti-mation based on the plumb-line approach.First, the method works from a single image and does not require a special calibration pattern.It is based on Fitzgibbon{u2019}s division model.Second, we devise a new algorithm for robust estimation of circular arcs.Third, we design and implement a new algorithm for robust estimation of lens distortionparameters based on the estimated circular arcs.Fourth, we perform an extensive empirical study of the method on synthetic images. Wedevelop our own data set for synthetic images under different levels of lambda and distortioncenter.Fifth, we perform a comparative statistical analysis of how different circle fitting methodscontribute to accurate distortion parameter estimation.Sixth, we provide qualitative results on a wide variety of challenging real images. Theexperiments demonstrate the method{u2019}s ability to accurately identify distortion parametersand remove distortion from images. Seventh, we perform a direct comparison of our methodwith that of Alvarez et al. (Alvarez, Gomez, & Sendra, 2009), the only researchers who haveprovided a publicly accessible implementation of their method, on synthetic images.Finally, we provide the source code based on OpenCV (Bradski, 2000) online1for re-searchers interested in evaluating or extending our procedure.
650 0 _aComputer vision
650 0 _aImage processing
700 1 _aDailey, Mathew N.,
_eChairperson
700 1 _aAfzulpurkar, Nitin V.,
_eExamination Committee
700 1 _aDuboz, Raphael,
_eExamination Committee
710 2 _aHigher Education Commission (HEC), Pakistan,
_eScholarship Donor
710 2 _aAsian Institute of Technology Fellowship,
_eScholarship Donor
810 2 _aAsian Institute of Technology.
_tDissertation ;
_vno. CS-12-05
856 _3Full-Text
_uhttp://203.159.5.9/ait-thesis/detail.php?q=B00292
907 _a.b12174531
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_cm
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998 _b0
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962 _a000:001:PDF:b1217453:002824:0:0:0:0:0:0
_tAbstract-AIT Diss. no.CS-12-05
_vn
945 _lmnait
945 _lmnait
945 _lmnarc
945 _lmnarc
945 _lmnarc
942 _c20
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