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An integer division caused by the elements of an array returns 0, I'm supposed to store the % in the same array....

array[6][i]=array[5][i]/total;

This stores a 0... I thought it had something to do with the array being an integer array... so I did a cast...

array[6][i]=(int)(array[5][i]/total); 

Still stored 0... I read I had to convert them to floating points but the casting doesn't work... I tried this

array[6][i]=(int)((float)array[5][i]/(float)total); 

the array declaration

int arreglo[7][5]={{1,194,48,206,45},{2,180,20,320,16},{3,221,90,140,20},{4,432,50,821,14},{5,820,61,946,18},{0,0,0,0,0},{0,0,0,0,0}};

and the last one will store each percentaje

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2  
Can we see two things: 1. the array declaration, and 2. maybe some of the data you've put in it? –  Clinton Pierce Nov 7 '12 at 21:39
4  
If total is larger in absolute value than array[5][i], the quotient should be 0. –  Daniel Fischer Nov 7 '12 at 21:39
    
Maybe you forgot to multiply by 100%? –  Kylo Nov 7 '12 at 21:40
    
When you write "I'm supposed to store the % in the same array.", do you mean percent or remainder (modulo)? –  Daniel Fischer Nov 7 '12 at 21:41

2 Answers 2

This will always return 0.

If you are working with ints, and you divide by the total, the result will be <1 and truncated to 0 (as the result must be an integer).

You have to either use doubles (or floats) arrays, or scale the integers by a factor of eg 100 (not the total)

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This can also return 1. Also, make sure to mention that this truncates instead of rounding. –  user529758 Nov 7 '12 at 21:48
    
Yes, can return 1 in the limit case when the array is all empty with the exception of a single, non-zero element. –  thedayofcondor Nov 7 '12 at 21:50
    
Also when some elements cancel each other ie {-2,7,1,1} total =7 –  thedayofcondor Nov 7 '12 at 23:31

If you want a percentage, then what you're looking for is something like

array[6][i] = (int) (100 * ((float)array[5][i] / (float)total));
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