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Yesterday while I was coding in c , my friend asked me pointing to a variable is it pointer or a variable ? I stucked up for a while. I didnt find an aswer to it , I just have to go back and search it and tell him.But I was thinking is there any function to differentiate them. Can we differentiate a variable against a pointer variable

int a;
sizeof(a); \\ gives 2 bytes
int *a;
sizeof(a);  \\ gives 2 bytes
if we use sizeof() we get same answer and we cant say which is pointer
and which is a variable

Is there a way to find out a variable is a normal variable or a pointer?I mean can someone say that it is a pointer or a variable after looking at your variable that you have declared at the begginning and then going down 1000 lines of your code?

After the comment I wanted to say explicitly Its a 16 bit system architect.

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4  
Seriously? sizeof(int) = 2 bytes?!?!?!?! How old is that machine/compiler? –  Mysticial Sep 29 '11 at 7:02
1  
I was using turbo c 1989 borlando! –  niko Sep 29 '11 at 7:02
4  
@niko: in a history lesson? –  Blagovest Buyukliev Sep 29 '11 at 7:03
    
@Blagovest BuyuKliev what you mean? Pardon did not get ya ! –  niko Sep 29 '11 at 7:04
2  
@niko - Not so much. You're using an antique compiler. –  Brian Roach Sep 29 '11 at 7:07
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7 Answers 7

up vote 0 down vote accepted

If you'd like to be able to tell whether a variable is a pointer or not when you see it in the source code, but without going back to look at the declaration, a common approach is to indicate it in the way you name your variables. For example, you might put a 'p' at the beginning of the names of pointers:

int *pValue; /* starts with 'p' for 'pointer' */
int iOther;  /* 'i' for 'integer' */

...or even:

int *piSomething; /* 'pi' for 'Pointer to Integer' */

This makes it easy to tell the types when you see the variable in your code. Some people use quite a range of prefixes, to distinguish quite a range of types.

Try looking up "Hungarian notation" for examples.

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You beat me by about 10 seconds but only because I was going to add the URL to Wiki :) - en.wikipedia.org/wiki/Hungarian_notation –  tinman Sep 29 '11 at 7:40
    
what is this yar? what we were understanding & what niio was asking..!!! Dmitri +1 for understanding this question..otherwise we all know this answer –  Mr.32 Sep 29 '11 at 11:59
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First, the question "Is it a pointer or a variable" doesn't make much sense. A pointer variable is a variable, just as an integer variable, or an array variable, is a variable.

So the real question is whether something is a pointer or not.

No, there's no function that can tell you whether something is a pointer or not. And if you think about it, in a statically typed language like C, there can't be. Functions take arguments of certain specified types. You can't pass a variable to a function unless the type (pointer or otherwise) is correct in the first place.

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Although in C++, which has templates and function overloading, it's easy to write a function (well, set of functions) that returns true if the argument expression has pointer type and false otherwise. Just be careful to return false for arrays. C++ is a statically typed language like C, the difference is that it has a bunch of extra apparatus that C doesn't have. –  Steve Jessop Sep 29 '11 at 9:07
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You mean differentiate them at run time without seeing the code? No, you can't. Pointers are variables that hold memory address. You can't check it at run time. That means, there is no such function isPointer(n) that will return true/false based on parameter n.

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No, pointers are not integers. Pointers are pointers. They might be internally represented in a manner similar to integers -- but then all objects are. –  Keith Thompson Sep 29 '11 at 7:05
    
@Keith Thompson, what I meant is you can't say whether this is a normal int or int * by any method. Please correct me if that is wrong. –  taskinoor Sep 29 '11 at 7:07
    
You're right about that; the concept of pointers vs. integers is relevant at compile time, and there's no run-time way to distinguish between them. I merely disagree with your statement that "Pointers are integers ...". They aren't, any more than floating-point objects are integers (though they're made of bits). –  Keith Thompson Sep 29 '11 at 7:09
    
I agree that this is not a correct language. I have changed that. Thanks for pointing this. –  taskinoor Sep 29 '11 at 7:13
    
Better, thanks! –  Keith Thompson Sep 29 '11 at 7:20
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You can deduce the type from the use.

For example:

char* c;
...
c[0] = 'a';
*c = 'a';

Indexing and dereferencing would let you know it's a pointer to something (or it's an array if defined as char c[SOME_POSITIVE_NUMBER];). Also, things like memset(c,...), memcpy(c,...) will suggest that c is a pointer (array).

OTOH, you can't normally do with pointers most of arithmetic, so, if you see something like

x = c * 2;
y = 3 / c;
z = c << 1;
w = 1 & c;

then c is not a pointer (array).

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Three things:

  1. What platform are you using where sizeof(int) returns 2? Seriously
  2. Pointers are types. A pointer to an int is a type, just like an int is. The sizes of a type and a pointer to that type are sometimes equal but not directly related; for instance, a pointer to a double (on my machine, at least) has size 4 bytes while a double has size 8 bytes. sizeof() would be a very poor test, even if there was a situation where such a test would be appropriate (there isn't).
  3. C is a strictly typed language, and your question doesn't really make sense in that context. As the programmer, you know exactly what a is and you will use it as such.
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no , you can't. and what is the usage, as each time u run the code the pointer address will be different ?? however u can subtract two pointers and also can get the memory address value of any pointer.

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To understand this concept just take belows example

int main()
{
char a;
char *A;
int b;  
int *B;
long long int c;
long long int *C;
float d;
float *D;
printf("char varaible size is %d and char pointer size id %d \n",sizeof(a),sizeof(A));
printf("int varaible size is %d and int pointer size id %d \n",sizeof(b),sizeof(B));
printf("long long int varaible size is %d and long long int pointer size id %d\n",sizeof(b),sizeof(C));
printf("float varaible size is %d and float pointer size id %d \n",sizeof(d),sizeof(D));  
}

output of this program on my pc is

char varaible size is 1 and char pointer size id 4 
int varaible size is 4 and int pointer size id 4 
long long int varaible size is 4 and long long int pointer size id 4
float varaible size is 4 and float pointer size id 4

So now get anything ..??

pointer is just 32-bit variable(for 32 bit system) which store address of anything.

now just for shake of programmers we give its type. if this pointer point any int variable then its int pointer..if it points any character varaiable then its character pointer..

At any cost we can not check whether its a varaible or pointer.
because in one why there is nothing like pointer...!!! 
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