Interp1 returns NaN for a value

Question

Matthew Hunt am 8 Okt. 2019

1
Verknüpfen

Direkter Link zu dieser Frage

https://de.mathworks.com/matlabcentral/answers/484181-interp1-returns-nan-for-a-value

Bearbeitet: Stephen23 am 21 Nov. 2023

I have some data (x,f(x)) where 0<=x<=1 and I have N points. I wish to obtain f for an inteverval [a,b] which is well within the limits of 0 and 1, and on my end point, I get a NaN so some reason. I think my data set goes up from 0.001 to 0.999, and the set I want values for goes between 0.05 and 0.96. There is no extrapolation required.

What's going on exactly?

9 Kommentare
7 ältere Kommentare anzeigen7 ältere Kommentare ausblenden

Michael Demkowicz am 21 Nov. 2023

interpdata.mat

I've run into the same problem: interp1 returns a NaN at the endpoint of the interpolation range. I'm attaching the data to demonstrate the problem. I see NaN when I load the data and run the following commands:

nirrhor=interp1(irr,irrhor,r);

nirrhor(length(r))

Stephen23 am 21 Nov. 2023

Bearbeitet: Stephen23 am 21 Nov. 2023

In MATLAB Online öffnen

interpdata.mat

"I've run into the same problem: interp1 returns a NaN at the endpoint of the interpolation range. I'm attaching the data to demonstrate the problem. I see NaN when I load the data and run the following commands"

Lets take a look:

S = load('interpdata.mat')
S = struct with fields:
       irr: [10001×1 double]
    irrhor: [10001×1 double]
         r: [0 5.1557e-04 0.0010 0.0015 0.0021 0.0026 0.0031 0.0036 0.0041 0.0046 0.0052 0.0057 0.0062 0.0067 0.0072 0.0077 0.0082 0.0088 0.0093 0.0098 0.0103 0.0108 0.0113 … ] (1×11923 double)
V = interp1(S.irr,S.irrhor,S.r)
V = 1×11923
   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058   -0.0058
X = find(isnan(V))
X = 11923
fprintf('%.42f %.42f\n', S.r([1,X]), S.irr([1,end])) % requested; supplied
0.000000000000000000000000000000000000000000 6.146600000000000285638179775560274720191956
0.000000000000000000000000000000000000000000 6.146599999999999397459760075435042381286621

The last value you requested clearly lies outside the domain of your data. It is unclear what the problem is, everything seems to be working exactly as documented and expected.

Melden Sie sich an, um zu kommentieren.

Melden Sie sich an, um diese Frage zu beantworten.

Answer 1

Star Strider am 8 Okt. 2019

1
Verknüpfen

Direkter Link zu dieser Antwort

https://de.mathworks.com/matlabcentral/answers/484181-interp1-returns-nan-for-a-value#answer_395330

You could have NaN values in your data. If so, first use the fillmissing function (R2016b and later reseases), then interp1.

2 Kommentare
Keine anzeigenKeine ausblenden

Matthew Hunt am 8 Okt. 2019

I checked and there are no problems with the data. There are some non-unique points which I removed but that shouldn't matter.

Star Strider am 8 Okt. 2019

If you are not extrapolating (that should only produce NaN values for the extrapolated values if you do not include a method designation and the 'extrap' argument), and there are no NaN values anywhere in your data, and we can’t see your data to test it, this will likely remain unsolved.

Melden Sie sich an, um zu kommentieren.

Answer 2

Chris B am 27 Aug. 2022

0
Verknüpfen

Direkter Link zu dieser Antwort

https://de.mathworks.com/matlabcentral/answers/484181-interp1-returns-nan-for-a-value#answer_1035635

Verschoben: Image Analyst am 27 Aug. 2022

In MATLAB Online öffnen

I ran into an issue where my start and endpoints were NaN. Turns out I was defining my x and xquery values differently. For example, try this code:

x=[500:2:1100]*10^-1; 
xq=[500*10^-1 :2*10^-1: 1100*10^-1];  
x==xq

x ~= xq because you are comparing floats in this case. Change 10^-1 to 10^1 and you'll get x==xq. So if you're getting NaNs, try making your x and xquery both integers and then dividing to get floats afterward.