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After a long break,I am back to C but getting confused even on some simple issues. So one is here.

Here is the simple code :

 #include<stdio.h>

 int main() {

    char str1[]="hello";
    char str2[]="hello";

    if(str1==str2)
            printf("equal");  
    else
            printf("unequal");
} 

Output: unequal

but when I tried this one ,it worked

  char *str1="hello";
  char *str2="hello";

Output equal

Please if anyone can provide a detailed explanation for it. Can someone tell me what exactly does C99 standard say about the situation ???

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possible duplicate of Why is "a" != "a" in C? –  Tim Cooper Jan 12 '12 at 18:11
    
@TimCooper thanx that was the post I was actually looking for but I could not find it out..thats really very helpful –  Udit Gupta Jan 12 '12 at 18:28
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7 Answers

up vote 4 down vote accepted

When you do == with pointers (which is what str1 and str2 are in both cases1) all you are doing is comparing the two addresses to see if they are the same. When you do

char str1[]="hello";
char str2[]="hello";

You are creating two arrays on the stack that hold "hello". They are certainly at different memory locations, so str1 == str2 is false. This is like

char str1[6];
str1[0] = 'h';
str1[1] = 'e';
str1[2] = 'l';
str1[3] = 'l';
str1[4] = 'o';
str1[5] = '\0'; 

// and the same thing for str2

When you do

char *str1="hello";
char *str2="hello";

You are creating two pointers to the global data "hello". The compiler, seeing that these string literals are the same and cannot be modified, will make the pointers point to the same address in memory, and str1 == str2 is true.

To compare the content of two char*s, use strcmp:

// strcmp returns 0 if the two strings are equal
if (strcmp(str1, str2) == 0)
    printf("Equal");
else
    printf("Not equal");

This is roughly the equivalent of

char *a, *b;

// go through both strings, stopping when we reach a NULL in either string or
// if the corresponding characters in the strings don't match up
for (a = str1, b = str2; *a != '\0' && *b != '\0'; ++a, ++b)
    if (*a != *b)
        break;

// print Equal if both *a and *b are the NULL terminator in
// both strings (i.e. we advanced a and b to the end of both
// strings with the loop)
if (*a == '\0' && *b == '\0')
     printf("Equal");
else
     printf("Not equal");


1 In the char* version, this is true. In the char[] version, str1 and str2 are really arrays, not pointers, however when used in str1 == str2, they decay to pointers to the first elements of the arrays, so they are the equivalent of pointers in that scenario.

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thanx man ... It was a nice and detailed description.It really helped and I hope will help other begineers too ...thanx a lot –  Udit Gupta Jan 12 '12 at 18:30
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You're comparing the pointers to the strings and not the strings themselves, but since they are two different strings, they are not "==" equal.

If you're comparing strings in C, you'll need to use strcmp(str1, str2) a'la

if(strcmp(str1, str2) == 0) {

A word of caution; if you had declared the strings as char* instead of char[], some compilers would actually show your comparison as equal, as the compiler realizes the two strings are equal and collapse them into one. That means, they'd both point to the same string, and the pointer comparison would be true.

Been bitten by that once, never again, darn VAX compiler... :)

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Strings (char pointers) in C must be compared with strcmp() or one of its sister functions.

Neither should rightly work (i.e. you should always use strcmp() when comparing strings), but the reason the latter one probably worked was is that in the second example, you have a single string in memory (probably), which is "hello", and both str1 and str2 end up pointing to it, as an optimization.

The first one, however, actually requires two separate character arrays to be created, so they aren't the same pointer.

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Because he is comparing the pointers in his case and not the strings. –  Rob Jan 12 '12 at 18:11
    
Thanx for the answer but I know that, I am interested in what exactly is going on here ?? –  Udit Gupta Jan 12 '12 at 18:12
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You aren't comparing the arrays, you are comparing the pointers to the data. In the first case, when you declare char[] you get two different arrays at two addresses, so they are no equal. In the second case, you get a constant array, so both pointers can get set the same address since the array is const can not be changed.

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The issue is that when you use

*str1 = "hello"; *str2 = "hello";

The compiler may be optimizing this to use a single memory space and therefor str1 and str2 both would point to the same memory space. However, when utilizing the array notation, the compiler is most likely creating two arrays in memory and therefor the pointers are pointing to different memory locations.

when using ==, it checks for equality of the pointers, not of the strings.

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In your first case you are comparing the pointers to the strings which, of course, are at two different positions and won't be equal. In the second case, you are comparing the two characters pointed to at the beginning of the string which are both 'h' and, of course, equal.

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By the way, the second one can also be unequal. Being equal on most platforms are possible of compiler optimization, because these two hello strings do not necessarily have to be stored in the same static memory space.

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