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divisible = 0;
low = input('Start Value: ');
high = input('End Value: ');
divisor = input('Divisor: ');
mask = mod([low:high],divisor);

  for index = low:high
     if mask(index) == 0
        divisible = divisible + 1;
     end
  end

The idea is to count the number of times there is no remainder.

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3 Answers 3

Here is a one line solution:

%#Set the inputs
LB = 3;
UB = 28;
Divisor = 3;

%#A one-line solution
Count = sum(mod((LB:UB)', Divisor) == 0);
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try this line instead of the loop

 divisible = sum(mask(low:high)==0);
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1  
+1 for same as mine and posted at the same time :-) –  Colin T Bowers Nov 5 '12 at 1:46
1  
+1 for you too my friend... –  natan Nov 5 '12 at 1:47
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First, your routine will give you an error whenever low > 1 because mask will start at 1 and have high - low + 1 elements (and when asking for mask(high) you will get and error).

Second, you almost got the answer yourself:

mask = mod([low:high],divisor);

will be a vector that contains 0 that indicate that the corresponding value is divisible by the divisor. If you do mask == 0 you will get a vector of 1 and 0 (true or false).

The next step is to add all these 1 and 0:

sum(mask==0)

and so you elliminate the for...end loop

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