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my effort to understand pointers better, I wrote this code:

int *a = 17;

printf("%d", a+3);

It compiled fine under c using gcc-4.3.4: http://ideone.com/abotd

And yet it failed to compile with c++: http://ideone.com/IdGHy

I would like to know why.

Also, the output, as you can see from the first link is 29. I pseudo-understand what's happening: sizeof(int) is 4, and when I wrote a+3 instead of adding 3 to 17, 3*4 is being added.

Still, I would appreciate if someone can explain it more eloquently.

Thanks!

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up vote 5 down vote accepted

For C++ version try this:

int *a = (int *)17;
printf("%d", a + 3);

And yes your explanation is correct...

This is called pointer arithmetic and works the way you said. Note however that the code you are using here where you assign a constant value to a pointer to an int is rarely done in real life. The pointer value usually comes from some kind of memory allocation functions e.g malloc in C or new in C++ (although new isn't a function).

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This is close to the answer I seek. What I'm not sure I understand is how can it be treated both as a pointer for pointer arithmetic and as an int for deriving the '17' value. – Lost_DM Nov 26 '11 at 21:48
    
This is one of the features of the C/C++ languages. Yes, 17 is an int literal but in C, the compiler automatically casts it to an int * while in C++, you have to manually cast it. I hope this is what you were asking. – mtahmed Nov 26 '11 at 21:50
2  
I think you don't really understand the meaning of "dereference"...dereference means when you get the value stored at a location pointed to by a pointer e.g. int b = *a assuming that a was of type int *, then *a is what we call dereference-ing. So I think your understanding is correct except for the part where you call "casting, dereferencing. So Step 1 is: The compiler sees a` that is int * and understand that it should cast it by itself (in c++ I have to do it myself) - so this is how I get the '17' part. – mtahmed Nov 26 '11 at 22:07
1  
"dereference-ing" meaning taking a pointer and looking at the actual value that it points to, right? And a is a pointer to an int, right? And we got the value that it points to which is 17, right? Then why do you say that it is casting and not dereferencing? Also, when you say that the compiler casted a of type int * by itself, what did it cast it to? – Lost_DM Nov 26 '11 at 22:18
3  
17 is just a location in the memory. When you say int *a = 17, it means you just want to have a pointer which you call a to an int which is in location '17' in the memory. You don't know what is in that location. Could be nothing at call...could be something being used by the OS (very likely). But in actuality, 17 is an int literal so C++ complains that you are trying to convert an int to an int * but C is fine with it because it know that you are trying to point to the location 17 in memory. Get it? – mtahmed Nov 26 '11 at 22:30

It's not correct C++ code.

int * a = 17;

This is invalid. You can't implicitly convert an int to a pointer. You could cast it, but I wouldn't do it if I were you.

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1  
To cast it: int *a = (int*)17. Just don't try to modify a or your application will crash. – druciferre Nov 26 '11 at 21:41
3  
@druciferre You mean modify *a... – mtahmed Nov 26 '11 at 21:52
    
@mtahmed, good catch – druciferre Nov 26 '11 at 21:56

You want something like:

int foo = 17;
int* a = &foo;
printf("%d\n", (*a) + 3);

The code you posted attempts to set the pointer to an address at 17, which is probably not a valid address, and even if it were you'd need to cast from the int to a pointer (int* a = (int*)17;). You then add to that address, and output the address that's three int sizes above it. I really don't think that's what you want.

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