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exp function is returning zeros

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sbei arafet
sbei arafet el 27 de Abr. de 2016
Comentada: sbei arafet el 27 de Abr. de 2016
Hi,
i am trying to compute a normal function for all pixels on the image ,
m = mean(I(:));
segma = std (I(:));
fb1=(exp(-abs((I(i)-m).^2)./2.*segma.^2))% Feature based1
fb2=(exp(-abs((I(j)-m).^2)./2.*segma.^2))% Feature based 2
it returns zeros,am i clculating the mean and the std in wrong way !!
Thanks

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Respuestas (3)

Steven Lord
Steven Lord el 27 de Abr. de 2016
Using Symbolic Math Toolbox, we can see what exp(-850) and exp(-950) would be, displayed to 20 digits.
>> vpa(exp(sym([-850; -950])), 20)
ans =
7.0744125465834323713e-370
2.6317352159005409842e-413
The smallest positive double precision number is not quite that small.
>> eps(0)
ans =
4.9407e-324
Star Strider
Star Strider el 27 de Abr. de 2016
Assuming that ‘I’ is single or double, and not uint8 (that would throw an error for std), the most likely possibility is that the exp argument is very large.
  2 comentarios
sbei arafet
sbei arafet el 27 de Abr. de 2016
I=double(dicomread('C:\Users\USER\Desktop\DDN250454 - 0815_002\Unnamed\WB MAC PSF ON - 8265\IM-0001-0001-0001.dcm'))./255;
yes it is, the arguments are in the range of -950 and -850
Star Strider
Star Strider el 27 de Abr. de 2016
On my computer, the realmin function returns 2.225073858507201e-308, corresponding to exp(-708.396418532264). The exponential function of any value less than -708.396418532264 will return zero. (Even the Symbolic Math Toolbox with its extended resolution returns zero.)

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Torsten
Torsten el 27 de Abr. de 2016
Editada: Torsten el 27 de Abr. de 2016
fb1=exp(-(I(i)-m).^2./(2.*segma.^2))% Feature based1
fb2=exp(-(I(j)-m).^2./(2.*segma.^2))% Feature based 2
By the way: "segma" is "sigma".
Best wishes
Torsten.

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