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I came across this question:

#include<stdio.h>
int main()
{
 char str[25]="Catch me, if u can!";
 printf("%s\n",&str+2);
 return 0;
}

Can anyone explain me the meaning of &str+2? How does this work?

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&str returns a pointer of type char (*)[25]. That means, the size of the memory pointed to by this pointer will be sizeof(str), i. e. 25. According to normal pointer arithmetic, adding 2 to this value will result in a pointer of type char (*)[25] that will point 25 bytes past the end of the str array. Printing it is most probably undefined behavior.

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1  
@H2CO3: We cannot state whether the program invokes undefined behavior after the first invocation of undefined behavior, since it is undefined what happens after the first invocation. :-) – Eric Postpischil Nov 30 '12 at 18:58
1  
@möter: There are two levels on which to answer this question. On the practical implementation level, printing will read the memory, and the memory might not be mapped, and a trap may occur. Or, the memory may be filled with non-null characters, so the printf will go on printing an enormous number of characters, until a null is reached or a trap occurs. It is even possible for a C implementation to get some fault merely calculating &str+2, although this does not occur in common implementations. On the C standard level, the standard explicitly states this is undefined behavior. – Eric Postpischil Nov 30 '12 at 19:00
1  
@möter xkcd.com/138 – user529758 Nov 30 '12 at 19:04
1  
@Amitd yes, it can. It's not guaranteed to do so (actually, on my machine, it prints some random chars and exits successfully), but it most likely will. – user529758 Nov 30 '12 at 19:22
1  
@Amitd: It can, and it will in some situations. If you change char str[25]=… to char str[2500]=…, or another large value, you are likely to get a segmentation fault, as the pointed-to address will be outside the stack. 25 is likely small enough to merely point to a different place within the stack. – Eric Postpischil Nov 30 '12 at 19:24

str is an expression that has type “array of 25 char”. In most contexts, an array is automatically converted to a pointer to its first element. Thus, in str+2, str is converted to a pointer to the first char in the array, and, when 2 is added, the result is a pointer to the third char in the array.

However, according to C 2011 6.3.2.1 3, when an expression of array type is the operand of sizeof, _Alignof, the unary & operator, or is a string literal used to initialize an array, this automatic conversion does not occur. Thus, in &str+2, str is not converted to a pointer; it remains an array of 25 char. Then &str is a pointer to an array of 25 char. When 2 is added to this, the result is, conceptually, a pointer to the third element of an array of arrays of 25 char.

However, pointer arithmetic is only defined inside an array, up to a fictional element at the end of the array. (Additionally, for the purposes of pointer arithmetic, single objects are treated as an array with one element.) Since we have only one array of 25 char and not an array of arrays of 25 char, there is no third element to point to, and &str+2 is undefined.

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First of all, what you are doing there will result in undefined behaviour at best.

str is a symbol which relates to the memory address on your stack where the string starts. &str is invalid on a stack symbol and using that will result in undefined behaviour. What you probably wanted is str + 2 which is a pointer to the 3rd byte in the string, thus

printf("%s\n",str+2);

will print "tch me, if u can!\n"

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2  
"&str is invalid on a stack symbol" - it isn't. (Oh, and I didn't downvote this one, to be clear.) – user529758 Nov 30 '12 at 18:40
3  
There is nothing wrong with taking the address of an object with automatic storage duration (such as objects on the stack) or with using that address during the object’s lifetime. – Eric Postpischil Nov 30 '12 at 18:41
    
Right. The only real problem with pointers to auto objects occurs when the object is destroyed (or, rather, when you leave the scope where the object was defined); then the pointer points at FSM-knows-what. As long as you don't let such a pointer exist outside that scope (for example, by returning it or storing it somewhere non-auto), you're fine. – cHao Nov 30 '12 at 19:07

When you define your array:

char str[25] = "Catch me, if you can!";

What you're getting is 25 bytes of spaced reserved on the stack with the following put in it:

@Address                                                                @Address 
0xbfa7fc13                                                             0xbfa7fc2C
 |                                                                          | 
 V                                                                          V
[C][a][t][c][h][ ][m][e][,][ ][i][f][ ][y][o][u][ ][c][a][n][!][\0][\0][\0][\0]

Looking at the address of str:

printf("%#x, %#x\n", str, &str);

You're going to see 0xbfa7fc13, 0xbfa7fc13. Same value, because the array starts at it's address. When you add 2 to str you'll be pointing further down the string:

0xbfa7fc13 + 2 = 
    0xbfa7fc15
        |
        V
       [t][c][h][ ][m][e][,][ ][i][f][ ][y][o][u][ ][c][a][n][!][\0][\0][\0][\0]

So printing:

printf("%s\n", str+2);

Will just dump the string a little further down. However if you add 2 to the address of str, then it will automagiclly * that for you by the size of whatever you're adding:

&str + 2 ==> &str + 2 * sizeof(str) ==> &str + 50 ==> 0xbfa7fc45

As you can see that address is way past where your array is on the stack, so printing:

printf("%s\n",&str+2);

Will just spit out whatever garbage is 50 bytes past your array until a '\0' is found, if you're lucky. It's undefined behavior, so it can do pretty much anything.

share|improve this answer
    
Will probably just spit out garbage. It could also segfault. Or trigger some other error. Hell, as far as the standard specifies, it could order a dozen pizzas on your credit card if it wanted. – cHao Nov 30 '12 at 19:25
    
@cHao - That's UB for ya... maybe I'll give it a try, I could go for some pizza... – Mike Nov 30 '12 at 19:28

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