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Distortion (optics)

In geometric optics, distortion is a deviation from rectilinear projection; a projection in which straight lines in a scene remain straight in an image. It is a form of optical aberration.

Radial distortion edit

 
Barrel
 
Pincushion
 
Mustache
Examples of radial distortions

Although distortion can be irregular or follow many patterns, the most commonly encountered distortions are radially symmetric, or approximately so, arising from the symmetry of a photographic lens. These radial distortions can usually be classified as either barrel distortions or pincushion distortions.[1]

Barrel distortion
In barrel distortion, image magnification decreases with distance from the optical axis. The apparent effect is that of an image which has been mapped around a sphere (or barrel). Fisheye lenses, which take hemispherical views, utilize this type of distortion as a way to map an infinitely wide object plane into a finite image area. In a zoom lens, barrel distortion appears in the middle of the lens's focal length range and is worst at the wide-angle end of the range.[2] Concave (minus) spherical lenses tend to have barrel distortion.
Pincushion distortion
In pincushion distortion, image magnification increases with the distance from the optical axis. The visible effect is that lines that do not go through the centre of the image are bowed inwards, towards the centre of the image, like a pincushion. Convex (plus) spherical lenses tend to have pincushion distortion.
Mustache distortion
A mixture of both types, sometimes referred to as mustache distortion (moustache distortion) or complex distortion, is less common but not rare. It starts out as barrel distortion close to the image center and gradually turns into pincushion distortion towards the image periphery, making horizontal lines in the top half of the frame look like a handlebar mustache.

Mathematically, barrel and pincushion distortion are quadratic, meaning they increase as the square of distance from the center. In mustache distortion the quartic (degree 4) term is significant: in the center, the degree 2 barrel distortion is dominant, while at the edge the degree 4 distortion in the pincushion direction dominates. Other distortions are in principle possible – pincushion in center and barrel at the edge, or higher order distortions (degree 6, degree 8) – but do not generally occur in practical lenses, and higher order distortions are small relative to the main barrel and pincushion effects.

Occurrence edit

 
Simulated animation of globe effect (right) compared with a simple pan (left)

In photography, distortion is particularly associated with zoom lenses, particularly large-range zooms, but may also be found in prime lenses, and depends on focal distance – for example, the Canon EF 50mm f/1.4 exhibits barrel distortion at extremely short focal distances. Barrel distortion may be found in wide-angle lenses, and is often seen at the wide-angle end of zoom lenses, while pincushion distortion is often seen in older or low-end telephoto lenses. Mustache distortion is observed particularly on the wide end of zooms, with certain retrofocus lenses, and more recently on large-range zooms such as the Nikon 18–200 mm.

A certain amount of pincushion distortion is often found with visual optical instruments, e.g., binoculars, where it serves to counteract the globe effect.

 
Radial distortions can be understood by their effect on concentric circles, as in an archery target.

In order to understand these distortions, it should be remembered that these are radial defects; the optical systems in question have rotational symmetry (omitting non-radial defects), so the didactically correct test image would be a set of concentric circles having even separation – like a shooter's target. It will then be observed that these common distortions actually imply a nonlinear radius mapping from the object to the image: What is seemingly pincushion distortion, is actually simply an exaggerated radius mapping for large radii in comparison with small radii. A graph showing radius transformations (from object to image) will be steeper in the upper (rightmost) end. Conversely, barrel distortion is actually a diminished radius mapping for large radii in comparison with small radii. A graph showing radius transformations (from object to image) will be less steep in the upper (rightmost) end.

Chromatic aberration edit

Radial distortion that depends on wavelength is called "lateral chromatic aberration" – "lateral" because radial, "chromatic" because dependent on color (wavelength). This can cause colored fringes in high-contrast areas in the outer parts of the image. This should not be confused with axial (longitudinal) chromatic aberration, which causes aberrations throughout the field, particularly purple fringing.

Origin of terms edit

The names for these distortions come from familiar objects which are visually similar.

Software correction edit

 
With uncorrected barrel distortion (at 26mm)
 
Barrel distortion corrected with software (this is the ENIAC computer)

Radial distortion, whilst primarily dominated by low-order radial components,[3] can be corrected using Brown's distortion model,[4] also known as the Brown–Conrady model based on earlier work by Conrady.[5] The Brown–Conrady model corrects both for radial distortion and for tangential distortion caused by physical elements in a lens not being perfectly aligned. The latter is also known as decentering distortion. See Zhang[6] for additional discussion of radial distortion. The Brown-Conrady distortion model is

 

where

  •   is the distorted image point as projected on image plane using specified lens;
  •   is the undistorted image point as projected by an ideal pinhole camera;
  •   is the distortion center;
  •   is the   radial distortion coefficient;
  •   is the   tangential distortion coefficient; and
  •   =  , the Euclidean distance between the distorted image point and the distortion center.[3]

Barrel distortion typically will have a negative term for   whereas pincushion distortion will have a positive value. Moustache distortion will have a non-monotonic radial geometric series where for some   the sequence will change sign.

To model radial distortion, the division model[7] typically provides a more accurate approximation than Brown-Conrady's even-order polynomial model,[8]

 

using the same parameters previously defined. For radial distortion, this division model is often preferred over the Brown–Conrady model, as it requires fewer terms to more accurately describe severe distortion.[8] Using this model, a single term is usually sufficient to model most cameras.[9]

Software can correct those distortions by warping the image with a reverse distortion. This involves determining which distorted pixel corresponds to each undistorted pixel, which is non-trivial due to the non-linearity of the distortion equation.[3] Lateral chromatic aberration (purple/green fringing) can be significantly reduced by applying such warping for red, green and blue separately.

Distorting or undistorting requires either both sets of coefficients or inverting the non-linear problem which, in general, lacks an analytical solution. Standard approaches such as approximating, locally linearizing and iterative solvers all apply. Which solver is preferable depends on the accuracy required and the computational resources available.

In addition to usually being sufficient to model most cameras, as mentioned, the single-term division model has an analytical solution to the reverse-distortion problem.[8] In this case, the distorted pixels are given by

 

where

  •   =  , the Euclidean distance between the undistorted image point and the undistortion/distortion center.

Calibrated edit

Calibrated systems work from a table of lens/camera transfer functions:

  • Adobe Photoshop Lightroom and Photoshop CS5 can correct complex distortion.
  • PTlens is a Photoshop plugin or standalone application which corrects complex distortion. It not only corrects for linear distortion, but also second degree and higher nonlinear components.[10]
  • Lensfun is a free to use database and library for correcting lens distortion.[11][12]
  • OpenCV is an open-source BSD-licensed library for computer vision (multi-language, multi-OS). It features a module for camera calibration.[13]
  • DxO's PhotoLab software can correct complex distortion, and takes into account the focus distance.
  • proDAD Defishr includes an Unwarp-tool and a Calibrator-tool. Due to the distortion of a checkerboard pattern, the necessary unwrap is calculated.
  • The Micro Four Thirds system cameras and lenses perform automatic distortion correction using correction parameters that are stored in each lens's firmware, and are applied automatically by the camera and raw converter software. The optics of most of these lenses feature substantially more distortion than their counterparts in systems that do not offer such automatic corrections, but the software-corrected final images show noticeably less distortion than competing designs.[14]

Manual edit

Manual systems allow manual adjustment of distortion parameters:

  • ImageMagick can correct several distortions; for example the fisheye distortion of the popular GoPro Hero3+ Silver camera can be corrected by the command[15]
convert distorted_image.jpg -distort barrel "0.06335 -0.18432 -0.13009" corrected_image.jpg
  • Photoshop CS2 and Photoshop Elements (from version 5) include a manual Lens Correction filter for simple (pincushion/barrel) distortion
  • Corel Paint Shop Pro Photo includes a manual Lens Distortion effect for simple (barrel, fisheye, fisheye spherical and pincushion) distortion.
  • GIMP includes manual lens distortion correction (from version 2.4).
  • PhotoPerfect has interactive functions for general pincushion adjustment, and for fringe (adjusting the size of the red, green and blue image parts).
  • Hugin can be used to correct distortion, though that is not its primary application.[16]

Besides these systems that address images, there are some that also adjust distortion parameters for videos:

  • FFMPEG using the "lenscorrection" video filter.[17]
  • Blender by using the node editor to insert a "Distort/Lens Distortion" node between the input and output nodes.

Related phenomena edit

Radial distortion is a failure of a lens to be rectilinear: a failure to image lines into lines. If a photograph is not taken straight-on then, even with a perfect rectilinear lens, rectangles will appear as trapezoids: lines are imaged as lines, but the angles between them are not preserved (tilt is not a conformal map). This effect can be controlled by using a perspective control lens, or corrected in post-processing.

Due to perspective, cameras image a cube as a square frustum (a truncated pyramid, with trapezoidal sides) – the far end is smaller than the near end. This creates perspective, and the rate at which this scaling happens (how quickly more distant objects shrink) creates a sense of a scene being deep or shallow. This cannot be changed or corrected by a simple transform of the resulting image, because it requires 3D information, namely the depth of objects in the scene. This effect is known as perspective distortion; the image itself is not distorted, but is perceived as distorted when viewed from a normal viewing distance.

Note that if the center of the image is closer than the edges (for example, a straight-on shot of a face), then barrel distortion and wide-angle distortion (taking the shot from close) both increase the size of the center, while pincushion distortion and telephoto distortion (taking the shot from far) both decrease the size of the center. However, radial distortion bends straight lines (out or in), while perspective distortion does not bend lines, and these are distinct phenomena. Fisheye lenses are wide-angle lenses with heavy barrel distortion and thus exhibit both these phenomena, so objects in the center of the image (if shot from a short distance) are particularly enlarged: even if the barrel distortion is corrected, the resulting image is still from a wide-angle lens, and will still have a wide-angle perspective.

See also edit

References edit

  1. ^ Paul van Walree. . Photographic optics. Archived from the original on 29 January 2009. Retrieved 2 February 2009.
  2. ^ "Tamron 18-270mm f/3.5-6.3 Di II VC PZD". Retrieved 20 March 2013.
  3. ^ a b c de Villiers, J. P.; Leuschner, F.W.; Geldenhuys, R. (17–19 November 2008). "Centi-pixel accurate real-time inverse distortion correction" (PDF). 2008 International Symposium on Optomechatronic Technologies. SPIE. doi:10.1117/12.804771.
  4. ^ Brown, Duane C. (May 1966). (PDF). Photogrammetric Engineering. 32 (3): 444–462. Archived from the original (PDF) on 12 March 2018.
  5. ^ Conrady, A. E. (1919). "Decentred Lens-Systems". Monthly Notices of the Royal Astronomical Society. 79 (5): 384–390. Bibcode:1919MNRAS..79..384C. doi:10.1093/mnras/79.5.384.
  6. ^ Zhang, Zhengyou (1998). A Flexible New Technique for Camera Calibration (PDF) (Technical report). Microsoft Research. MSR-TR-98-71.
  7. ^ Fitzgibbon, A. W. (2001). "Simultaneous linear estimation of multiple view geometry and lens distortion". Proceedings of the 2001 IEEE Computer Society Conference on Computer Vision and Pattern Recognition (CVPR). IEEE. doi:10.1109/CVPR.2001.990465.
  8. ^ a b c Bukhari, F.; Dailey, M. N. (2013). "Automatic Radial Distortion Estimation from a Single Image" (PDF). Journal of mathematical imaging and vision. Springer. doi:10.1007/s10851-012-0342-2.
  9. ^ Wang, J.; Shi, F.; Zhang, J.; Liu, Y. (2008). "A new calibration model of camera lens distortion". Pattern Recognition. Elsevier. doi:10.1016/j.patcog.2007.06.012.
  10. ^ "PTlens". Retrieved 2 January 2012.
  11. ^ "Lensfun". Retrieved 16 April 2022.
  12. ^ "lensfun – Rev 246 – /trunk/README". Archived from the original on 13 October 2013. Retrieved 13 October 2013.
  13. ^ "OpenCV". opencv.org/. Retrieved 22 January 2018.
  14. ^ Wiley, Carlisle. . Dpreview.com. Archived from the original on 7 July 2012. Retrieved 3 July 2013.
  15. ^ "ImageMagick v6 Examples -- Lens Corrections".
  16. ^ "Hugin tutorial – Simulating an architectural projection". Retrieved 9 September 2009.
  17. ^ "FFmpeg Filters Documentation".

External links edit

  • Lens distortion estimation and correction with source code and online demonstration
  • 3D modeling Lens distortion and camera field of view in CCTV design

distortion, optics, confused, with, spherical, aberration, loss, image, sharpness, that, result, from, spherical, lens, surfaces, geometric, optics, distortion, deviation, from, rectilinear, projection, projection, which, straight, lines, scene, remain, straig. Not to be confused with spherical aberration a loss of image sharpness that can result from spherical lens surfaces In geometric optics distortion is a deviation from rectilinear projection a projection in which straight lines in a scene remain straight in an image It is a form of optical aberration Contents 1 Radial distortion 1 1 Occurrence 1 2 Chromatic aberration 1 3 Origin of terms 2 Software correction 2 1 Calibrated 2 2 Manual 3 Related phenomena 4 See also 5 References 6 External linksRadial distortion edit nbsp Barrel nbsp Pincushion nbsp MustacheExamples of radial distortions Although distortion can be irregular or follow many patterns the most commonly encountered distortions are radially symmetric or approximately so arising from the symmetry of a photographic lens These radial distortions can usually be classified as either barrel distortions or pincushion distortions 1 Barrel distortion In barrel distortion image magnification decreases with distance from the optical axis The apparent effect is that of an image which has been mapped around a sphere or barrel Fisheye lenses which take hemispherical views utilize this type of distortion as a way to map an infinitely wide object plane into a finite image area In a zoom lens barrel distortion appears in the middle of the lens s focal length range and is worst at the wide angle end of the range 2 Concave minus spherical lenses tend to have barrel distortion Pincushion distortion In pincushion distortion image magnification increases with the distance from the optical axis The visible effect is that lines that do not go through the centre of the image are bowed inwards towards the centre of the image like a pincushion Convex plus spherical lenses tend to have pincushion distortion Mustache distortion A mixture of both types sometimes referred to as mustache distortion moustache distortion or complex distortion is less common but not rare It starts out as barrel distortion close to the image center and gradually turns into pincushion distortion towards the image periphery making horizontal lines in the top half of the frame look like a handlebar mustache Mathematically barrel and pincushion distortion are quadratic meaning they increase as the square of distance from the center In mustache distortion the quartic degree 4 term is significant in the center the degree 2 barrel distortion is dominant while at the edge the degree 4 distortion in the pincushion direction dominates Other distortions are in principle possible pincushion in center and barrel at the edge or higher order distortions degree 6 degree 8 but do not generally occur in practical lenses and higher order distortions are small relative to the main barrel and pincushion effects Occurrence edit nbsp Simulated animation of globe effect right compared with a simple pan left In photography distortion is particularly associated with zoom lenses particularly large range zooms but may also be found in prime lenses and depends on focal distance for example the Canon EF 50mm f 1 4 exhibits barrel distortion at extremely short focal distances Barrel distortion may be found in wide angle lenses and is often seen at the wide angle end of zoom lenses while pincushion distortion is often seen in older or low end telephoto lenses Mustache distortion is observed particularly on the wide end of zooms with certain retrofocus lenses and more recently on large range zooms such as the Nikon 18 200 mm A certain amount of pincushion distortion is often found with visual optical instruments e g binoculars where it serves to counteract the globe effect nbsp Radial distortions can be understood by their effect on concentric circles as in an archery target In order to understand these distortions it should be remembered that these are radial defects the optical systems in question have rotational symmetry omitting non radial defects so the didactically correct test image would be a set of concentric circles having even separation like a shooter s target It will then be observed that these common distortions actually imply a nonlinear radius mapping from the object to the image What is seemingly pincushion distortion is actually simply an exaggerated radius mapping for large radii in comparison with small radii A graph showing radius transformations from object to image will be steeper in the upper rightmost end Conversely barrel distortion is actually a diminished radius mapping for large radii in comparison with small radii A graph showing radius transformations from object to image will be less steep in the upper rightmost end Chromatic aberration edit Further information Chromatic aberration Radial distortion that depends on wavelength is called lateral chromatic aberration lateral because radial chromatic because dependent on color wavelength This can cause colored fringes in high contrast areas in the outer parts of the image This should not be confused with axial longitudinal chromatic aberration which causes aberrations throughout the field particularly purple fringing Origin of terms edit The names for these distortions come from familiar objects which are visually similar nbsp In barrel distortion straight lines bulge outwards at the center as in a barrel nbsp In pincushion distortion corners of squares form elongated points as in a cushion nbsp In mustache distortion horizontal lines bulge up in the center then bend the other way as they approach the edge of the frame if in the top of the frame as in curly handlebar mustaches Software correction editSee also Image rectification and Image stitching straightening nbsp With uncorrected barrel distortion at 26mm nbsp Barrel distortion corrected with software this is the ENIAC computer Radial distortion whilst primarily dominated by low order radial components 3 can be corrected using Brown s distortion model 4 also known as the Brown Conrady model based on earlier work by Conrady 5 The Brown Conrady model corrects both for radial distortion and for tangential distortion caused by physical elements in a lens not being perfectly aligned The latter is also known as decentering distortion See Zhang 6 for additional discussion of radial distortion The Brown Conrady distortion model isxu xd xd xc K1r2 K2r4 P1 r2 2 xd xc 2 2P2 xd xc yd yc 1 P3r2 P4r4 yu yd yd yc K1r2 K2r4 2P1 xd xc yd yc P2 r2 2 yd yc 2 1 P3r2 P4r4 displaystyle begin alignedat 3 x mathrm u x mathrm d amp x mathrm d x mathrm c K 1 r 2 K 2 r 4 cdots P 1 r 2 2 x mathrm d x mathrm c 2 amp 2P 2 x mathrm d x mathrm c y mathrm d y mathrm c 1 P 3 r 2 P 4 r 4 cdots y mathrm u y mathrm d amp y mathrm d y mathrm c K 1 r 2 K 2 r 4 cdots 2P 1 x mathrm d x mathrm c y mathrm d y mathrm c amp P 2 r 2 2 y mathrm d y mathrm c 2 1 P 3 r 2 P 4 r 4 cdots end alignedat nbsp where xd yd displaystyle x mathrm d y mathrm d nbsp is the distorted image point as projected on image plane using specified lens xu yu displaystyle x mathrm u y mathrm u nbsp is the undistorted image point as projected by an ideal pinhole camera xc yc displaystyle x mathrm c y mathrm c nbsp is the distortion center Kn displaystyle K n nbsp is the nth displaystyle n mathrm th nbsp radial distortion coefficient Pn displaystyle P n nbsp is the nth displaystyle n mathrm th nbsp tangential distortion coefficient and r displaystyle r nbsp xd xc 2 yd yc 2 displaystyle sqrt x mathrm d x mathrm c 2 y mathrm d y mathrm c 2 nbsp the Euclidean distance between the distorted image point and the distortion center 3 Barrel distortion typically will have a negative term for K1 displaystyle K 1 nbsp whereas pincushion distortion will have a positive value Moustache distortion will have a non monotonic radial geometric series where for some r displaystyle r nbsp the sequence will change sign To model radial distortion the division model 7 typically provides a more accurate approximation than Brown Conrady s even order polynomial model 8 xu xc xd xc1 K1r2 K2r4 yu yc yd yc1 K1r2 K2r4 displaystyle begin aligned x mathrm u amp x mathrm c frac x mathrm d x mathrm c 1 K 1 r 2 K 2 r 4 cdots y mathrm u amp y mathrm c frac y mathrm d y mathrm c 1 K 1 r 2 K 2 r 4 cdots end aligned nbsp using the same parameters previously defined For radial distortion this division model is often preferred over the Brown Conrady model as it requires fewer terms to more accurately describe severe distortion 8 Using this model a single term is usually sufficient to model most cameras 9 Software can correct those distortions by warping the image with a reverse distortion This involves determining which distorted pixel corresponds to each undistorted pixel which is non trivial due to the non linearity of the distortion equation 3 Lateral chromatic aberration purple green fringing can be significantly reduced by applying such warping for red green and blue separately Distorting or undistorting requires either both sets of coefficients or inverting the non linear problem which in general lacks an analytical solution Standard approaches such as approximating locally linearizing and iterative solvers all apply Which solver is preferable depends on the accuracy required and the computational resources available In addition to usually being sufficient to model most cameras as mentioned the single term division model has an analytical solution to the reverse distortion problem 8 In this case the distorted pixels are given byxd xc xu xc2K1ru2 1 1 4K1ru2 yd yc yu yc2K1ru2 1 1 4K1ru2 displaystyle begin aligned x mathrm d amp x mathrm c frac x mathrm u x mathrm c 2K 1 r u 2 1 sqrt 1 4K 1 r u 2 y mathrm d amp y mathrm c frac y mathrm u y mathrm c 2K 1 r u 2 1 sqrt 1 4K 1 r u 2 end aligned nbsp where ru displaystyle r u nbsp xu xc 2 yu yc 2 displaystyle sqrt x mathrm u x mathrm c 2 y mathrm u y mathrm c 2 nbsp the Euclidean distance between the undistorted image point and the undistortion distortion center Calibrated edit Calibrated systems work from a table of lens camera transfer functions Adobe Photoshop Lightroom and Photoshop CS5 can correct complex distortion PTlens is a Photoshop plugin or standalone application which corrects complex distortion It not only corrects for linear distortion but also second degree and higher nonlinear components 10 Lensfun is a free to use database and library for correcting lens distortion 11 12 OpenCV is an open source BSD licensed library for computer vision multi language multi OS It features a module for camera calibration 13 DxO s PhotoLab software can correct complex distortion and takes into account the focus distance proDAD Defishr includes an Unwarp tool and a Calibrator tool Due to the distortion of a checkerboard pattern the necessary unwrap is calculated The Micro Four Thirds system cameras and lenses perform automatic distortion correction using correction parameters that are stored in each lens s firmware and are applied automatically by the camera and raw converter software The optics of most of these lenses feature substantially more distortion than their counterparts in systems that do not offer such automatic corrections but the software corrected final images show noticeably less distortion than competing designs 14 Manual edit Manual systems allow manual adjustment of distortion parameters ImageMagick can correct several distortions for example the fisheye distortion of the popular GoPro Hero3 Silver camera can be corrected by the command 15 convert distorted image jpg distort barrel 0 06335 0 18432 0 13009 corrected image jpgPhotoshop CS2 and Photoshop Elements from version 5 include a manual Lens Correction filter for simple pincushion barrel distortion Corel Paint Shop Pro Photo includes a manual Lens Distortion effect for simple barrel fisheye fisheye spherical and pincushion distortion GIMP includes manual lens distortion correction from version 2 4 PhotoPerfect has interactive functions for general pincushion adjustment and for fringe adjusting the size of the red green and blue image parts Hugin can be used to correct distortion though that is not its primary application 16 Besides these systems that address images there are some that also adjust distortion parameters for videos FFMPEG using the lenscorrection video filter 17 Blender by using the node editor to insert a Distort Lens Distortion node between the input and output nodes Related phenomena editRadial distortion is a failure of a lens to be rectilinear a failure to image lines into lines If a photograph is not taken straight on then even with a perfect rectilinear lens rectangles will appear as trapezoids lines are imaged as lines but the angles between them are not preserved tilt is not a conformal map This effect can be controlled by using a perspective control lens or corrected in post processing Due to perspective cameras image a cube as a square frustum a truncated pyramid with trapezoidal sides the far end is smaller than the near end This creates perspective and the rate at which this scaling happens how quickly more distant objects shrink creates a sense of a scene being deep or shallow This cannot be changed or corrected by a simple transform of the resulting image because it requires 3D information namely the depth of objects in the scene This effect is known as perspective distortion the image itself is not distorted but is perceived as distorted when viewed from a normal viewing distance Note that if the center of the image is closer than the edges for example a straight on shot of a face then barrel distortion and wide angle distortion taking the shot from close both increase the size of the center while pincushion distortion and telephoto distortion taking the shot from far both decrease the size of the center However radial distortion bends straight lines out or in while perspective distortion does not bend lines and these are distinct phenomena Fisheye lenses are wide angle lenses with heavy barrel distortion and thus exhibit both these phenomena so objects in the center of the image if shot from a short distance are particularly enlarged even if the barrel distortion is corrected the resulting image is still from a wide angle lens and will still have a wide angle perspective See also editAnamorphosis Angle of view Cylindrical perspective Distortion Texture gradient Underwater vision VignettingReferences edit Paul van Walree Distortion Photographic optics Archived from the original on 29 January 2009 Retrieved 2 February 2009 Tamron 18 270mm f 3 5 6 3 Di II VC PZD Retrieved 20 March 2013 a b c de Villiers J P Leuschner F W Geldenhuys R 17 19 November 2008 Centi pixel accurate real time inverse distortion correction PDF 2008 International Symposium on Optomechatronic Technologies SPIE doi 10 1117 12 804771 Brown Duane C May 1966 Decentering distortion of lenses PDF Photogrammetric Engineering 32 3 444 462 Archived from the original PDF on 12 March 2018 Conrady A E 1919 Decentred Lens Systems Monthly Notices of the Royal Astronomical Society 79 5 384 390 Bibcode 1919MNRAS 79 384C doi 10 1093 mnras 79 5 384 Zhang Zhengyou 1998 A Flexible New Technique for Camera Calibration PDF Technical report Microsoft Research MSR TR 98 71 Fitzgibbon A W 2001 Simultaneous linear estimation of multiple view geometry and lens distortion Proceedings of the 2001 IEEE Computer Society Conference on Computer Vision and Pattern Recognition CVPR IEEE doi 10 1109 CVPR 2001 990465 a b c Bukhari F Dailey M N 2013 Automatic Radial Distortion Estimation from a Single Image PDF Journal of mathematical imaging and vision Springer doi 10 1007 s10851 012 0342 2 Wang J Shi F Zhang J Liu Y 2008 A new calibration model of camera lens distortion Pattern Recognition Elsevier doi 10 1016 j patcog 2007 06 012 PTlens Retrieved 2 January 2012 Lensfun Retrieved 16 April 2022 lensfun Rev 246 trunk README Archived from the original on 13 October 2013 Retrieved 13 October 2013 OpenCV opencv org Retrieved 22 January 2018 Wiley Carlisle Articles Digital Photography Review Dpreview com Archived from the original on 7 July 2012 Retrieved 3 July 2013 ImageMagick v6 Examples Lens Corrections Hugin tutorial Simulating an architectural projection Retrieved 9 September 2009 FFmpeg Filters Documentation External links edit nbsp Wikimedia Commons has media related to Distortion optics Lens distortion estimation and correction with source code and online demonstration 3D modeling Lens distortion and camera field of view in CCTV design Retrieved from https en wikipedia org w index php title Distortion optics amp oldid 1218075433, wikipedia, wiki, book, books, library,

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