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I have a netCDF file with precipitation based on climate model output at a 1/16 degree resolution. In addition, I have particular points (lat/lon) of interest and I want to pull the data from the grid cell containing that specific lat/lon. So far, I have code in place that can do this one desired lat/long at a time. How can I make this work for ~20 unique lat/long points (say, from a spreadsheet) and output a file for each one (with the filename as the ID # for each location of interest)?

Here is what I have so far:

Read netCDF data and writing data to CSV, using a particular LAT/LON:

clear all, clc
ncdisp('Extraction_pr.nc');

Specify data directory:

filename=('Extraction_pr.nc');

Specify variables to read:

pr=ncread(filename,'pr');  %name of netCDF file; 'pr' is the precip variable 
time=ncread(filename,'time');
lon=ncread(filename,'lon');  
lat=ncread(filename,'lat');  

Find lat and long closest to point entered:

location_lat = knnsearch(lat,32.733);
location_lon = knnsearch(lon,-107.65);
pr1=pr(location_lon,location_lat, 1:end, 1);

pr11=squeeze(pr1);
pr111=pr11';

[years,months,days] = datevec(double(time)+datenum('1900-01-01'));
timeA=datevec(double(time)+datenum('1900-01-01'));

pr2=cat(2,years,months,days, pr11);
dlmwrite('pr_ID_64.csv', pr2) ;

This is an example of the output I get from the code:

1950    1   1   5.4268
1950    1   2   4.1988
1950    1   3   0
1950    1   4   0
1950    1   5   0
1950    1   6   0
1950    1   7   0
1950    1   8   0
1950    1   9   0
1950    1   10  0
1950    1   11  0.045451
1950    1   12  1.1241
1950    1   13  0
1950    1   14  0
1950    1   15  0
1950    1   16  0
1950    1   17  0
1950    1   18  0
1950    1   19  3.3355
1950    1   20  0.0078715
1950    1   21  0.31236
1950    1   22  0
1950    1   23  0
1950    1   24  0
1950    1   25  0
1950    1   26  0
1950    1   27  0
1950    1   28  0.025075
1950    1   29  0.60354
1950    1   30  0
1950    1   31  0
1950    2   1   0
1950    2   2   0
1950    2   3   0
1950    2   4   0.12936
1950    2   5   0
1950    2   6   7.4807
1950    2   7   1.0308
1950    2   8   0.14395
1950    2   9   0
1950    2   10  0
1950    2   11  0
1950    2   12  0
1950    2   13  0
1950    2   14  0
1950    2   15  0
1950    2   16  0
1950    2   17  0
1950    2   18  0
1950    2   19  0
1950    2   20  0
1950    2   21  0
1950    2   22  0
1950    2   23  0
1950    2   24  0
1950    2   25  0
1950    2   26  0
1950    2   27  0.68446
1950    2   28  0
1950    3   1   0
1950    3   2   0
1950    3   3   0
1950    3   4   0
1950    3   5   0.086653
1950    3   6   2.9108
1950    3   7   0
1950    3   8   0
1950    3   9   0
1950    3   10  0
1950    3   11  0
1950    3   12  0
1950    3   13  0
1950    3   14  0
1950    3   15  0
1950    3   16  0.06279
1950    3   17  0.043666
1950    3   18  0
1950    3   19  0
1950    3   20  0
1950    3   21  0
1950    3   22  0
1950    3   23  0
1950    3   24  0
1950    3   25  0.6046
1950    3   26  0.46395
1950    3   27  0
1950    3   28  0
1950    3   29  0
1950    3   30  0
1950    3   31  0
1950    4   1   0
1950    4   2   0
1950    4   3   0
1950    4   4   0.89828
1950    4   5   1.1072
1950    4   6   0
1950    4   7   0
1950    4   8   0
1950    4   9   0
1950    4   10  0
1950    4   11  0
1950    4   12  0
1950    4   13  0
1950    4   14  0
1950    4   15  0
1950    4   16  0
1950    4   17  0.87425
1950    4   18  1.7517
1950    4   19  0.96005
1950    4   20  3.729
1950    4   21  0.10016
1950    4   22  0
1950    4   23  0
1950    4   24  0
1950    4   25  0
1950    4   26  0
1950    4   27  0
1950    4   28  0
1950    4   29  0
1950    4   30  0

Any help or suggestions are greatly appreciated!

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