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Array a of ints contains the digits of a number. For this example I'll insert random numbers but the code must work for any set of numbers. I have to add together the ints in the array and then store the last digit in that sum into a variable called checksum.

In this example, 3 + 5 + 7 = 15 so checksum would = 5. Here's my code so far. How would I go about calculating the checksum?

int[] a = { 3, 5, 7 }; 

int checksum = 0;
int i = 0;

while ( i < a.length )
    {
        checksum += a[i];
        i++;
    }

checksum = ???????;
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Are you looking for this? stackoverflow.com/questions/2609315/… –  irrelephant Oct 26 '12 at 2:04

1 Answer 1

Simply use the modulus operator. checksum %= 10

This basically means, set checksum to the remainder of checksum/10 which happens to be the last digit.

Edit:

Just to offer another suggestion, your while loop is really better suited to be a for-each loop, just try:

for(int i : a){
    checksum += i;
}

Read it as "Forint i in a". IMHO this is slightly more understandable and you avoid some typing.

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don`t you mean checksum %= a.length ? –  ılǝ Oct 26 '12 at 2:07
    
@ile No, check the example given above, he wants the last digit. –  jozefg Oct 26 '12 at 2:09
    
Sorry, I confused checksum with average value. However, I still think your answer is wrong. If the values were 1, 3, 7 , %= will return 1, whereas it should be 3, if I understood correctly - "store the last number in that sum into a variable called checksum" –  ılǝ Oct 26 '12 at 2:16
    
3 + 5 + 7 = 15 so checksum would = 5 3+5+7= 15, the last digit of which is 5, or 15%10. –  jozefg Oct 26 '12 at 2:20
    
The question states: "the code must work for any set of numbers." –  ılǝ Oct 26 '12 at 2:24

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