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Pretty much I am trying to do 1/2 + 2/3 +...+ 18/19 + 19/20 in C and here's my code:

Version 1:

int main(){
    double i,j,sum;

    for(i=1,j=2,sum=0; i<=19 && j<=20; i++, j++)
        sum+=i/j;
    printf("%f\n",sum);

    return 0;
}

Version 1 output: 16.402260

version 2:

int main(){
    double i,j,sum;

    for(i=1,j=2,sum=0; i<=19 && j<=20; sum+=i/j, i++, j++)
        printf("%f\n",sum);

    return 0;
}

Version 2 output:

0.000000
0.500000
1.166667
1.916667
2.716667
3.550000
4.407143
5.282143
6.171032
7.071032
7.980123
8.896789
9.819866
10.748438
11.681771
12.619271
13.560447
14.504892
15.452260

Version 3:

int main(){
    double i,j,sum;

    for(i=1,j=2,sum=0; i<=19 && j<=20; sum+=i/j, i++, j++)
        ;
    printf("%f\n",sum);

    return 0;
}

version 3 output:

16.402260

I am confused as to why version 1 & 3 works where as version 2 does not, since version 2 and version 3 are very similar except for that fact that version 3's for loop contains and empty body where as version 2 does not.

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5 Answers 5

up vote 4 down vote accepted

It's due to the way how the compiler translates the for loop:

 for (i=1, j=2, sum=0; i <= 19 && j <= 20; i++, j++) { /* code */ }

i.e.

 for (/* init */; /* condition */; /* increment*/) { /* code */ }

... is executed as ...

i=1, j=2, sum = 0; /* init */
while (i <= 19 && j <= 20) { /* condition */
  /* code */

  i++, j++;  /* increment */
}

So in version two, sum in printf doesn't have the latest value yet:

i=1, j=2, sum = 0; /* init */
while (i <= 19 && j <= 20) { /* condition */
  /* code */

  sum += i/j, i++, j++; /* increment */
}

... because sum is part of the increment.

Cheers!

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Oh okay, got it. Thanks Trinimon! =D By the way, your explanation was awesome!! –  Wobblester May 17 '13 at 18:39

You're forgetting brackets.

for(i=1,j=2,sum=0; i<=19 && j<=20; i++, j++){
    sum+=i/j;
    printf("%f\n",sum);
}

In C/C++, you can have a two-line for loop (or a two-line if statement), like so:

for()
  line to execute

And it is interpreted by the compiler as

for()
{
    line to execute
}

However, this:

for()
line to execute
another line to execute

Will be seen by the compiler like this:

for()
{
line to execute
}
another line to execute
share|improve this answer

Case 1:

for(i=1,j=2,sum=0; i<=19 && j<=20; i++, j++)
        sum+=i/j;
        printf("%f\n",sum);

is being interpreted as

for(i=1,j=2,sum=0; i<=19 && j<=20; i++, j++)
        sum+=i/j;
printf("%f\n",sum);

by the compiler. - printf executes only once

Case 3:

 for(i=1,j=2,sum=0; i<=19 && j<=20; sum+=i/j, i++, j++)
   ;
 printf("%f\n",sum);

printf executes after the whole loops has executed.

If you want the same result in case 2:

for(i=1,j=2,sum=0; i<=19 && j<=20; sum+=i/j, i++, j++)
    ; /*let the loop complete, and then printf*/
    printf("%f\n",sum);
share|improve this answer
    
Thanks for you edit to my question and for your answer! =D –  Wobblester May 17 '13 at 18:44

In version 2 you are printing the output and n-1 rather that n.

You need to print 'sum' after the loop has finished.

int main() {
  double i,j,sum;

  for(i=1,j=2,sum=0; i<=19 && j<=20; sum+=i/j, i++, j++) printf("%f\n",sum);

  printf("%f\n",sum);

  return 0;
}
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1  
Thanks for your help –  Wobblester May 17 '13 at 18:43

The code

    sum += i/j

is being executed after the last printf.

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