Function to fill an array given conditions.

13 Mär. 2019
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Hi All,
I am trying to write a function to fill an array given conditions. basiclly the user inputs two variables a max and min and given these
values it creates two new row vectors, ph and date, which is a subset of an orignal vector.
My code is given below -
function [datenew,phnew] = subsetdata(date, ph, pressure, min, max)
%create empty array
datenew=cell(1,5000);
phnew=cell(1,5000);
%loop through each point
for i=1:size(pressure)
%check condition
if (pressure(i,:)>=min & pressure(i,:)<max)
%fill array if condition met
datenew{i}=date(i);
phnew{i}=ph(i);
end
end
end

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Andrew Czeizler
Andrew Czeizler am 13 Mär. 2019
Bearbeitet: Andrew Czeizler am 13 Mär. 2019
date, ph and pressure are row vectors. we go through and check pressure againes max and min. Then if at that point its between the two values we take date and ph at that index and fill and new vector. Returning a new vector date and ph which meets the conditions.
Adam
Adam am 13 Mär. 2019
What is your question?
Also, never use min and max as variable names. These are function names in Matlab and by creating variables with those names you hide the respective functions and make them inaccessible to use.

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Adam
Adam am 13 Mär. 2019
Bearbeitet: Adam am 13 Mär. 2019

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validIdx = pressure >= minVal & pressure < maxVal;
datenew = date( validIdx );
phnew = ph( validIdx );
should do this for you without needing the loop and using logical indexing instead. I don't know why you are putting results in a cell array though. Never use a cell array when a numeric array will do the job.

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Andrew Czeizler
Andrew Czeizler am 13 Mär. 2019
Bearbeitet: Andrew Czeizler am 13 Mär. 2019
looking sharp!
Thank you :).
Will give it a try.
I was wondering, what should I use instead? nan()?
Best,
Andrew
Adam
Adam am 13 Mär. 2019
Ah, well, if you want to keep positions with NaNs inbetween then you will need to do it slightly different:
datenew = nan( size( date ) );
phnew = nan( size( date ) );
validIdx = pressure >= minVal & pressure < maxVal;
datenew( validIdx ) = date( validIdx );
phnew( validIdx ) = ph( validIdx );

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Andrew Czeizler
Andrew Czeizler am 13 Mär. 2019

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Hi Adam!
How would you define the numeric array. Im not sure of best practice here.
many thanks,

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Adam
Adam am 13 Mär. 2019
See my reply above.
Andrew Czeizler
Andrew Czeizler am 13 Mär. 2019
so you would use a nan numeric array and then fill it based on conditions?
many thanks,
best,
anAndrew
Adam
Adam am 13 Mär. 2019
If you want to retain the positions within the array then yes. You could use -1 if all true data should be positive, but NaN is more logical.

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Andrew Czeizler
Andrew Czeizler
am 13 Mär. 2019

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am 13 Mär. 2019

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