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I have made an test where it have appeared something like this:

char* trim(char* strr, char* str1) {
  char* s = strr;
  while(*str1 == 32) str1++;
  while( (*str1 != 32) && (*str1 != 0) )
        *s++ = *str1++;
  *s = 0;
  return strr;
  }

int main(void) {
  char str[20] = "???";
  char str1[20] ="    bcd  \0";

  printf("(%s)\n(%s)\n", str, trim(str, str1));
  return(0);
}

The question was: What the above code will print and why? I got a clue on the output and why but I would like to hear from more experienced people on the subject.

At a first glance it looks like it will print:

(???)
(bcd)

but in reality the output produced is:

(bcd)
(bcd)
share|improve this question
    
aren't you overwriting str? –  Jaynathan Leung Apr 9 '13 at 23:50
    
@JaynathanLeung This function was not done bye me I just copy and past. –  dreamcrash Apr 9 '13 at 23:51
    
well str is being overwritten by trim, since trim is an argument and run before printf. –  Jaynathan Leung Apr 9 '13 at 23:52
1  
I just wanna know where you threw in the parens =P –  WhozCraig Apr 10 '13 at 0:02

3 Answers 3

up vote 2 down vote accepted

[Edit: removed previous answer, which @Nigel Harper was nice enough to be polite in pointing out was complete nonsense.]

The arguments to printf (all the arguments) are evaluated in some unspecified order before execution of printf itself begins. Therefore, by the time printf starts executing, both str and (importantly) trim(str, str1) have been evaluated.

Since the trim(str, str1) modifies the memory that str points at, by the time printf itself is executing, the memory pointed at by str will have been modified to contain the bcd (and obviously, the pointer returned from trim(str, str1) will as well).

Therefore, regardless of the order in which the two arguments are evaluated, both outputs will be bcd.

share|improve this answer
    
Interesting, I thought that the printf argument would be evaluated first than print out. –  dreamcrash Apr 9 '13 at 23:52
    
I don't think order of evaluation is relevant. All evaluation does is yield the pointer value - it doesn't look into the string, that only happens within printf. What is important is that trim will definitely be called first, so printf can only ever see the changed content of str, not the original. –  Nigel Harper Apr 10 '13 at 0:02
    
I preferred the answer after the edition, since it was similar to my answer at the time of the test :) –  dreamcrash Apr 10 '13 at 0:11

You are overwriting into strr within the function which is str in your call. Since it is being passed by reference, the change is reflected back into the calling function. printf will get the evaluated copy of str (same in both arguments).

share|improve this answer

The last argument is evaluated first and pushed to the stack first. But the order of evaluating the arguments is not definite.

I crated a simple code:

#include <stdio.h>

char *go(char *s) { *s = '0'; return s; }

int main() {
    char str[] = "xyz", str1[] = "abc";
    printf("(%s)(%s)\n", str, go(str));
    printf("(%s)(%s)\n", go(str1), str1);
}

Output:

(0yz)(0yz)
(0bc)(0bc)

You can analyse the assembly output with this gcc command line:

gcc -c -g -Wa,-a,-ad x.c >x.lst

If You add -O2 the order is the same, but the go() function become inlined.

Hmmm... I have learned something again! Thanks for it!

share|improve this answer
    
I just change the order of the arguments and the same happen –  dreamcrash Apr 9 '13 at 23:57
    
You and Jeff are right! The order of the arguments on the stack is definite. The last is pushed first. But the order of evaluating the arguments is not definite! I modify my answer! –  TrueY Apr 10 '13 at 7:59
    
Np, thanks you for replying. –  dreamcrash Apr 10 '13 at 12:36

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