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first, I'm sorry for my poor English, it's not my first language.

It's my first time to study about pointers and I found somthing really weird.

The book I'm reading says * marker means a variable that the 'pa' indicates.

But when I try and initialize a pointer

int a;
int *pA =&a;

(they used *pA in this case) and then change it,

*pA=&a;

doesn't work, and

pA=&a;

works.

So my query is "is there any difference between initializing pointers and just substituting?"

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Welcome to SO. :) –  BobbyShaftoe Nov 11 '09 at 5:22
    
Ty, Think this place is awesome, people are kind and wise. Hope i can be like ya'll and then I can help others in need at the c field. –  Rhee Nov 11 '09 at 5:26
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4 Answers

up vote 2 down vote accepted
int a;

This allocates an integer on the stack

int* pA = &a;

This allocates an int pointer on the stack and sets its value to point to a. The '*' is part of the declaration.

*pA = &a;

In this case the '*' is an operator that says "look where pA points", which is to an int. You are then trying to set that int to the address of a, which is not allowed.

pA = &a;

Now this is the same as the second statement. It sets the value of pA to point to a.

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i'm also curious about when i'm allocating both a pointer and a variable. > int a, p1;<--like this and it works! make me think that '' is included to the pointer. –  Rhee Nov 11 '09 at 11:29
    
That's just shorthand for two separate declarations. The * is still part of the declaration (int *) of p1. I agree it's not completely intuitive, you just have to get used to it. In a declaration the * is part of the type. As an operator it has a different (but related) meaning. –  Jim Garrison Nov 11 '09 at 14:25
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When you create a pointer you use

int *pA;

Afterwards, using *pA means you're accessing the value pointed to by the pointer.

When you use &a you are using the Address-of Operator which returns the address of the memory location in which the data stored of the variable a (which is a integer) is stored.

So, the correct assignment is pA = &a since you're copying the address of a to pA which is supposed to hold addresses of memory locations.

But *pA represents the value in that memory location (an integer) so it is incorrect to assign an address to *pA - this is why the right syntax is pA = &a.

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Yeah, when you first declare a pointer, you can specify the memory address. Because you are declaring it as a pointer, you use the * operator. But everywhere else, the *pA means to take the value referenced by that pointer (not the actual address). It is a little odd but you get used to it.

So, you can do this:

int a; 
int *pA = &a;

and you can do this:

pA = &a;

But you cannot do:

*pA = &a;

Because that says, "make the value pointed by pA = to the value of a."

However, you can do this:

*pA = a;

And that is just how you set the value pointed to by pA. Hope this is somewhat clear.

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In C, "declaration mimics use".

When you declare a pointer to int

int *pa;

you can see that pa is a int * or that *pa is a int.

You can assign pointers to int to pa, or you can assign ints to *pa.
That's why, after the above declaration, the following statements "work".

*pa = 42;
pa = &a;

In the declaration itself, you can "transform" it to a definition by supplying an initialization value. The definition is for the object pa of type int*, not for *pa.

int *pa = &a; /* initialize pa, which takes a `int*` */
pa = &b;      /* change `pa` with a different `int*` */
*pa = 42;     /* change the value pointed to by `pa` */
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