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For example,

gcc compiles this ok...

char s[7] = "abc";

But it gives the error "incompatible types in assignment" with...

char s[7];
s = "abc";

What is the difference?

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2 Answers 2

up vote 7 down vote accepted

The first one is an initialization; it means "declare an array of 7 char on the stack, and fill the first 3 elements with 'a', 'b', 'c', and the remaining elements with '\0'".

In the second one, you're not initializing the array to anything. You're then trying to assign to the array, which is never valid. Something like this would "work":

const char *s;
s = "abc";

But the meaning would be slightly different (s is now a pointer, not an array). In most situations, the difference is minimal. But there are several important caveats, for instance you cannot modify the contents. Also, sizeof(s) would given you the size of a pointer, whereas in your original code, it would have given you 7 (the size of the array).

Recommended reading is this: http://c-faq.com/charstring/index.html.

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2  
Also note that in the first case, the remaining three entries are also initialised to '\0'; this can be quite useful. –  Keith Jan 28 '11 at 0:05
    
@Keith: Yes, I'll add that to the answer... –  Oli Charlesworth Jan 28 '11 at 0:07
1  
I would not call the difference "minimal". Underestimating the difference between a pointer and an array is one of the most common and dangerous mistakes C newbies make. –  R.. Jan 28 '11 at 0:11
1  
@R..: Yes and no. I agree that it's a fundamental point to understand. But it's very rare that I actually write code where the difference matters. –  Oli Charlesworth Jan 28 '11 at 0:13

assigment is not equal initialization.

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I guess what I'm asking is if I declare s as above, will the compiler have s remain on the stack and copy the characters in the string literal into it? Or will it work some other sort of magic? –  Johnston Jan 28 '11 at 0:06

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