Replace percentage of data in a for loop
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Hello,
I'm hoping to find out how to replace a defined percentage of data? I'm currently using a for loop with an if statement and would like to add another component quantifying the percentage replaced.
This is my current code:
for i=1:53280
LULC1=data(i,21);
LCC=data(i,20);
if LULC1==12||LULC1==15
data(i,3)=16;
end
end
2 Kommentare
Geoff Hayes
am 6 Jun. 2017
Tracy - please clarify what you mean by how to replace a defined percentage of data. In your above code, is it a certain percentage of the elements of data that will be replaced? So once you reach that percentage then you can exit the for loop?
Antworten (1)
Walter Roberson
am 6 Jun. 2017
percent_to_replace = 17.3; %for example
row_matches = find( ismember(data(:,21), [12 15]) );
num_matches = length(row_matches);
num_to_replace = round(num_matches * percent_to_replace / 100);
which_to_replace = row_matches( randperm(num_matches, num_to_replace) );
data(which_to_replace, 3) = 16;
This uses the percentage as a fixed percentage to replace, that to within round-off, exactly that portion will be replaced. There is an alternative to that, which is to treat the percentage as a probability that any given one will be replaced.
percent_to_replace = 17.3; %for example
which_to_replace = ismember(data(:,21), [12 15]) & (rand(size(data,1),1) < percent_to_replace/100);
data(which_to_replace, 3) = 16;
This would replace the given percentage on average
2 Kommentare
Walter Roberson
am 14 Jun. 2017
The line
data(which_to_replace, 3) = 16;
does the replacement.
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