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I am trying to learn about pointers in C, and don't understand why the unary * operator was appended to the end of the word "node" in the following code snippet:

struct node* CopyList(struct node* head) {
    /* code here */
}

From my understanding of pointers, one can create a pointer with a statement like

int *pointerName;

and assign a "pointee" to it with a statement like

pointerName = malloc(sizeof(int));

and then dereference the pointer with a statement like

*pointerName = 4;

which will store the integer value 4 in the 4 bytes of memory (pointee location) which is "pointed to" by the pointerName pointer.

WITH THAT BEING SAID, what does it mean when the * is appended to the end of a word, as it is with

struct node*

???

Thanks in advance!

http://cslibrary.stanford.edu/103/

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2  
It's the return type of the function: It returns a pointer to struct node. –  Maroun Maroun Jul 17 '13 at 11:21
    
It returns a pointer to a struct node. It is not a dereference operator there. –  hetepeperfan Jul 17 '13 at 11:23
2  
There is no "unary operator" involved. Please find a good C textbook. –  Kerrek SB Jul 17 '13 at 11:23
    
@KerrekSB The unary operator * is used when dereferencing a pointer. It may not be called such when used to initialize a pointer, but he is not so far off the mark. –  Hydronium Jul 17 '13 at 13:29
    
@Hydronium: The * in the first line is not an operator. You couldn't be further off the mark if you were Samuel Clemens's jilted lover. –  Kerrek SB Jul 17 '13 at 13:32

5 Answers 5

You can use '*' either with type or with function name/variable name.
But it is suggested to use it with return type while declaring methods, like shown below

    struct node* CopyList(struct node* head) {
     /* code here */
    }

when declaring pointers of a type use * with the variable name. like shown below,

    int *ptr;

Declaring in that way increases readability.

For example consider this case,

    int* a,b,c;

The above statement is appearing like declaring three pointer variables of base type integer, actually we know that it's equals to

    int *a;
    int b,c;

Keeping the * operator near the data type is causing the confusion here, So following the other way increases readability, but it is not wrong to use * in either way.

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The location of the * ignores the whitespace between the base type and the variable name. That is:

int* foo; // foo is pointer-to-int
int *bar; // bar is also pointer-to-int

In both cases, the type of the variable is "pointer-to-int"; "pointer-to-int" is a valid type.

Armed with that information, you can see that struct node* is a type, that type being "pointer-to-node-structure". Finally, therefore, the whole line

struct node* CopyList(struct node* head)

means "CopyList is a function taking a pointer-to-struct node (called head) and returning a pointer-to-struct node"

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I prefer to put the * as in the second example to indicate that the pointer is bar, so when you have int *p_bar, bar; you'll not be confused who's pointer and who's not. –  Maroun Maroun Jul 17 '13 at 11:26
    
I think about what is the object that I really care about. I'd use the first style if "foo" is the thing I care about (foo is a pointer to an int, or perhaps a pointer to a whole array of ints). I would use the second style if "*bar" is the thing I care about (*bar is an int). –  gnasher729 Mar 22 at 14:56

node* means that the following function/variable/structure has type 'pointer to type node'.

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struct node* CopyList

To understand better you should read it from right to left. Which says CopyList is a function returning a pointer to node.

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int *pointerName; is the same as int * pointerName; or int* pointerName;. The data type is int* in all those cases. So struct node* is just a pointer to struct node.

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