1 | %'px': transform fields from physical coordinates (phys) to image (px) coordinates
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2 |
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3 | % OUTPUT:
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4 | % DataOut: structure of modified data (transforms DataIn)
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5 | % DataOut.CoordType='px': labels image coordinates
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6 | % DataOut.CoordUnit= 'px' : units of output coordinates
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7 | % DataOut.X and .Y arrays of image coordinates X, Y
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8 | % DataOut.U, .V velocity in pixel displacement on the image (unit=px), if velocity exists as input
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9 | %
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10 | %INPUT:
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11 | % DataIn: structure of possible input data (like UvData) or cell of structures (several fields):
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12 | % DataIn.CoordType='phys': allows transform to px, else no transform (DataOut=DataIn)
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13 | % DataIn.X and .Y arrays of physical coordinates X, Y
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14 | % DataIn.Z corresponding array of Z coordinates (=0 by default)
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15 | % DataIn.U, V corresponding array of velocity components
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16 | % DataIn.W corresponding array of the third velocity component in 3D case
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17 | % DataIn.dt: time interval of the image pair used for velocity measurement (NEEDED TO GET OUTPUT RESULT))
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18 | % DataIn.A, AX, AY : image or scalar input -> EMPTY CORRESPONDING OUTPUT (A REVOIR)
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19 | % Other fields in DataIn: copied to DataOut without modification
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20 | % Calib: structure containing the substructure Calib.GeometryCalib with the calibration parameters
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21 | %
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22 | % call the function px_XYZ (case of images) for pointwise coordinate transforms
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23 |
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24 | function [DataOut,DataOut_1]=px(Data,CalibData,Data_1,CalibData_1)%DataIn,Calib)
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25 | % A FAIRE: 1- verifier si DataIn est une 'field structure'(.ListVarName'):
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26 | % chercher ListVarAttribute, for each field (cell of variables):
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27 | % .CoordType: 'phys' or 'px' (default==px, no transform)
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28 | % .scale_factor: =dt (to transform displacement into velocity) default=1
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29 | % .covariance: 'scalar', 'coord', 'D_i': covariant (like velocity), 'D^i': contravariant (like gradient), 'D^jD_i' (like strain tensor)
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30 | % (default='coord' if .Role='coord_x,_y...,
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31 | % 'D_i' if '.Role='vector_x,...',
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32 | % 'scalar', else (thenno change except scale factor)
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33 | if ~(exist('CalibData','var') && isfield(CalibData,'GeometryCalib'))
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34 | DataOut=Data;
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35 | else
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36 | DataOut=px_1(Data,CalibData.GeometryCalib);
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37 | end
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38 | if isfield(DataOut,'Z')
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39 | DataOut=rmfield(DataOut,'Z');
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40 | end
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41 | if exist('Data_1','var')% if there is a second input field, it is also transformed
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42 | if ~(exist('CalibData_1','var') && isfield(CalibData_1,'GeometryCalib'))
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43 | DataOut_1=Data_1;
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44 | else
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45 | DataOut_1=px_1(Data_1,CalibData_1.GeometryCalib);
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46 | end
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47 | if isfield(DataOut_1,'Z')
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48 | DataOut_1=rmfield(DataOut_1,'Z');
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49 | end
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50 | else % no second input field then empty second output field
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51 | DataOut_1=[];
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52 | end
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53 |
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54 |
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55 | %------------------------------------------------
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56 | function DataOut=px_1(Data,Calib)
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57 | DataOut=Data;%default
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58 |
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59 | %Act only if .CoordType=phys, and Calib defined
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60 | if isfield(Data,'CoordType')&& isequal(Data.CoordType,'phys')&& ~isempty(Calib)
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61 | DataOut.CoordType='px'; %put flag for pixel coordinates
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62 | DataOut.CoordUnit='px';
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63 | %transform of X,Y coordinates
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64 | if isfield(Data,'Z')&&~isempty(Data.Z)
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65 | Z=Data.Z;
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66 | else
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67 | Z=0;
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68 | end
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69 | if isfield(Data,'X') & isfield(Data,'Y')
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70 | [DataOut.X,DataOut.Y]=px_XYZ(Calib,Data.X,Data.Y,Z);
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71 | if isfield(Data,'U')&isfield(Data,'V')& isfield(Data,'dt')& ~isequal(Data.dt,0)
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72 | Data.U=Data.U*Data.dt;
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73 | Data.V=Data.V*Data.dt;
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74 | if isfield(Data,'W')
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75 | W=Data.W*Data.dt;
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76 | else
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77 | W=0;
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78 | end
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79 | [XOut_1,YOut_1]=px_XYZ(Calib,Data.X-Data.U/2,Data.Y-Data.V/2,Z-W/2);
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80 | [XOut_2,YOut_2]=px_XYZ(Calib,Data.X+Data.U/2,Data.Y+Data.V/2,Z+W/2);
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81 | DataOut.U=XOut_2-XOut_1;
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82 | DataOut.V=YOut_2-YOut_1;
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83 | end
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84 | end
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85 | %transform of an image
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86 | if isfield(Data,'A')&isfield(Data,'AX')&~isempty(Data.AX) & isfield(Data,'AY')&...
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87 | isfield(Data,'AY')&~isempty(Data.AY)&length(Data.A)>1
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88 | % if isfield(Data,'Field')&isequal(Data.Field,'images')
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89 | %NO TRANSFORM FROM phys to px for images
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90 | DataOut.A=[];%
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91 | end
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92 | end
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93 |
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94 | %'px_XYZ': transform phys coordinates to image coordinates (px)
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95 | %
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96 | % OUPUT:
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97 | % X,Y: array of coordinates in the image cooresponding to the input physical positions
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98 | % (origin at lower leftcorner, unit=pixel)
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99 |
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100 | % INPUT:
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101 | % Calib: structure containing the calibration parameters (read from the ImaDoc .xml file)
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102 | % Xphys, Yphys: array of x,y physical coordinates
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103 | % [Zphys]: corresponding array of z physical coordinates (0 by default)
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104 |
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105 | %
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106 | % function [X,Y]=px_XYZ(Calib,Xphys,Yphys,Zphys)
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107 | % X=[];%default
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108 | % Y=[];
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109 | % % if exist('Z','var')& isequal(Z,round(Z))& Z>0 & isfield(Calib,'PlanePos')&length(Calib.PlanePos)>=Z
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110 | % % Zindex=Z;
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111 | % % planepos=Calib.PlanePos{Zindex};
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112 | % % zphys=planepos(3);%A GENERALISER CAS AVEC ANGLE
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113 | % % else
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114 | % % zphys=0;
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115 | % % end
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116 | % if ~exist('Zphys','var')
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117 | % Zphys=0;
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118 | % end
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119 | %
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120 | % %%%%%%%%%%%%%
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121 | % if isfield(Calib,'R')
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122 | % R=(Calib.R)';
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123 | % xc=R(1)*Xphys+R(2)*Yphys+R(3)*Zphys+Calib.Tx;
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124 | % yc=R(4)*Xphys+R(5)*Yphys+R(6)*Zphys+Calib.Ty;
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125 | % zc=R(7)*Xphys+R(8)*Yphys+R(9)*Zphys+Calib.Tz;
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126 | % %undistorted image coordinates
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127 | % Xu=Calib.f*xc./zc;
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128 | % Yu=Calib.f*yc./zc;
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129 | % %distorted image coordinates
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130 | % distortion=(Calib.kappa1)*(Xu.*Xu+Yu.*Yu)+1; %A REVOIR
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131 | % % distortion=1;
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132 | % Xd=Xu./distortion;
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133 | % Yd=Yu./distortion;
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134 | % %pixel coordinates
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135 | % X=Xd*Calib.sx/Calib.dpx+Calib.Cx;
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136 | % Y=Yd/Calib.dpy+Calib.Cy;
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137 | %
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138 | % elseif isfield(Calib,'Pxcmx')&isfield(Calib,'Pxcmy')%old calib
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139 | % X=Xphys*Calib.Pxcmx;
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140 | % Y=Yphys*Calib.Pxcmy;
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141 | % end
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142 |
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143 |
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