How to fix error about interp1?

12 Mzo. 2017
2 Respuestas
Respuesta aceptada
Actualizado a las 13 Mzo. 2017
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0 votos

Hello,
I have some data and i want to run this code:
xi = [85];
yi = interp1(y,x,xi)
but I have this error:
Error using griddedInterpolant
The grid vectors are not strictly monotonic increasing.
Error in interp1 (line 183)
F = griddedInterpolant(X,V,method);
Error in Q4 (line 19)
yi = interp1(y,x,xi)
How can I fix it?

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 Respuesta aceptada

Star Strider
Star Strider el 12 de Mzo. de 2017
Editada: Star Strider el 12 de Mzo. de 2017

0 votos

One way (without seeing your data, so this is a guess on my part):
y85 = find(y <= 85, 1, 'last');
yi = interp1(y(y85-1:y85+1),x(y85-1:y85+1),xi, 'linear','extrap');
That is how I would do it. This assumes there is only 1 where ‘y’ is approximately 85.
Note This is obviously UNTESTED CODE. It should work, if there is one ‘y’ near 85.
EDIT Added the 'extrap' option to make my approach more robust.

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Ghazal Hnr
Ghazal Hnr el 12 de Mzo. de 2017
Editada: Ghazal Hnr el 12 de Mzo. de 2017
There is only one where y is 85.
I use your code but i still have error:
Index exceeds matrix dimensions.
Error in Q4 (line 20)
yi = interp1(y(y85-1:y85+1),x(y85-1:y85+1),xi, 'linear','extrap')
Star Strider
Star Strider el 12 de Mzo. de 2017
Editada: Star Strider el 12 de Mzo. de 2017
Without your data, I cannot tell.
Try this:
yi = interp1(y(y85-1:y85),x(y85-1:y85),xi, 'linear','extrap')
or this:
yi = interp1(y(y85:y85+1),x(y85:y85+1),xi, 'linear','extrap')
One of them should work.
Also, be certain you are interpolating the correct value. If you want the value of ‘y’ at ‘x=85’, do this instead:
yi = interp1(x, y, xi, 'linear','extrap')
You may have misinterpreted the documation for interp1.
Ghazal Hnr
Ghazal Hnr el 13 de Mzo. de 2017
thanks my problem solved
Star Strider
Star Strider el 13 de Mzo. de 2017
My pleasure.

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John D'Errico
John D'Errico el 12 de Mzo. de 2017

0 votos

The fix is easy. Don't use interp1 to interpolate data that is not strictly monotone in the independent variable.
After all, how can interp1 know which value to predict on a function that is apparently multi-valued? For example, consider points around the perimeter of acircle. For any given x, there are TWO solutions. Interp1 requires a single valued function for any given x.

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Preguntada:

Ghazal Hnr
Ghazal Hnr
el 12 de Mzo. de 2017

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Star Strider
Star Strider
el 13 de Mzo. de 2017

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