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I am trying with matlab to segment images with Chan vese Active contours .I found a function that it says that gives the curvature of the phi but is not the classic with derivatives but another one that gives me better results .I can not understand if it is wrong.This is the code .

function curvature=get_curvature(phi)
dx=( shiftR(phi)-shiftL(phi))/2;
dy=( shiftU(phi)-shiftD(phi))/2 ;
dxplus=shiftR(phi)-phi ;
dyplus=shiftU(phi)-phi ;
dxminus=phi-shiftL(phi);
dyminus=phi-shiftD(phi);
dxplusy =(shiftU(shiftR(phi))-shiftU(shiftL(phi)))/2;
dyplusx =(shiftR(shiftU(phi))-shiftR(shiftD(phi)))/2 ;
dxminusy=(shiftD(shiftR(phi))-shiftD(shiftL(phi)))/2 ;
dyminusx=(shiftL(shiftU(phi))-shiftL(shiftD(phi)))/2 ;
nplusx = dxplus./sqrt(eps+(dxplus.^2 )+((dyplusx+dy)/2).^2 );
nplusy = dyplus./sqrt(eps+(dyplus.^2 )+((dxplusy+dx)/2).^2 ) ;
nminusx= dxminus./sqrt(eps+(dxminus.^2)+((dyminusx+dy)/2).^2);
nminusy= dyminus./sqrt(eps+(dyminus.^2)+((dxminusy+dx)/2 ).^2);
curvature=((nplusx-nminusx)+( nplusy-nminusy )/ 2 ) ;


function shift =shiftD(M)
shift=shiftR(M')';

function shift =shiftL(M)
shift=[M(:,2:size(M,2)) M(:,size(M,2))];


function shift=shiftR(M)
shift=[M(:,1) M(:,1:size(M,2)-1)];

function shift=shiftU(M)
shift=shiftL(M');

Please help me .Thanks

share|improve this question
    
No one can help me –  kwstas_211 Jan 12 '12 at 21:01
    
This is just finite differences isn't it? –  mathematical.coffee Jan 13 '12 at 0:51
    
Is finite differences but i do not know if they give the curvature –  kwstas_211 Jan 13 '12 at 8:00
    
anuone know what is this? –  kwstas_211 Jan 13 '12 at 12:20
    
no one any idea –  kwstas_211 Jan 13 '12 at 15:12

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