Error message for extrapolation?

4 Ansichten (letzte 30 Tage)
Shayma Al Ali
Shayma Al Ali am 8 Dez. 2020
Beantwortet: Walter Roberson am 8 Dez. 2020
I keep getting an error message when using the interp1 function. For some background, I have 107 files that all have the same variables but different lengths. So I'm trying to extrapolate the variable in each file to have the same lengths.
The error message I keep getting:
Error using interp1>sanitycheckmethod (line 253)
Invalid interpolation method.
Error in interp1>parseinputs (line 376)
method = sanitycheckmethod(varargin{end});
Error in interp1 (line 78)
[method,extrapval,ndataarg,pp] = parseinputs(varargin{:});
Error in PhysOceanFinal (line 54)
zonal1.depths=interp1(zonal1.density,zonal1.depth,[zonal1.depth(end) depths(end),'linear','extrap']);
My code:
direc1=dir('*.mat');
%calculate northward geostrophic velocity using thermal wind relation
%calculate drho/dz by integrating the density
%First interpolate density into uniform depth values
%Use largest depth file as primary depth
load('zonal1_240.mat'); %use this files depth values
depths=zonal1.depth;
%use extrapolate function to get density profile
for i=1:length(direc1)
load(direc1(i).name);
if length(zonal1.depth)<length(depths)
zonal1.depths=interp1(zonal1.depth,zonal1.density,[zonal1.depth(end) depths(end),'linear','extrap']);
end
end

Melden Sie sich an, um diese Frage zu beantworten.

Antworten (1)

Walter Roberson
Walter Roberson am 8 Dez. 2020
zonal1.depths=interp1(zonal1.depth,zonal1.density,[zonal1.depth(end) depths(end),'linear','extrap']);
The] is in the wrong place, needs to be before ,'linear'

Kategorien

Mehr zu Numerical Integration and Differentiation finden Sie in Help Center und File Exchange

Tags

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by