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% counting the number of transitions from state 0 to 1,
% rain is an array of size 545.
    count1=0;
    n=numel(rain);
    for k=1:n-1,
        if (rain(k)<=0) & (10<rain(k+1)<20),
            count1=count1+1;
        end
    end
    display(count1)
    display(n)
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1 Answer 1

up vote 2 down vote accepted
sum(rain(2:end) > 10 & rain(2:end) < 20 & rain(1:end-1) = 0)

rain(1:end-1): Get all the rain data bar the last element rain(2:end): Get all the rain data bar the first element. The reason for this is to shift the data one element forward so that it's easy to search for a previous value of zero. (i.e. previous values are now in the same position as the values you want to check the limits for)

rain > 10 will return a logical vector with 1s where it is greater than 10 and 0s otherwise. Calling sum on this just adds up all the 1s so it proxies for counting them.

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Thanks, this worked. Can u please elaborate your code a bit? Why did you use 2:end as bounds and what does sum function return? –  Dipankar Choudhary Apr 8 '14 at 15:46
    
@DipankarChoudhary no problem, check my edit. This is best understood by executing each part of it separately in the command line on a subset of rain leaving off the semicolons so you can see what each part does. –  Dan Apr 8 '14 at 15:53

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