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I have a function which returns address as following

struct node *create_node(int data)
{
        struct node *temp;
        temp = (struct node *)malloc(sizeof(struct node));
        temp->data=data;
        temp->next=NULL;
        printf("create node temp->data=%d\n",temp->data);
        return temp;
}

where struct node is

struct node {
        int data;
        struct node *next;
};

How can I see in printf("") the address stored in temp?

UPDATE
If I check the adressed in gdb the addresses are coming in hex number format i.e. 0x602010 where as same address in printf("%p",temp) is coming in a different number which is different from what I saw in gdb print command.

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1 Answer 1

up vote 16 down vote accepted

Use the pointer address format specifier %p:

printf("Address: %p\n", (void *)temp);
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4  
+1: For overzealous (pedanticly correct) compilers, cast the pointer to void*: printf("%p", (void*)temp) –  pmg Jun 20 '11 at 10:14
    
Why not just print the address of the thing, like printf("0x%08X", &temp);? –  aroth Jun 20 '11 at 10:16
2  
@aroth: you have no guarantee unsigned and struct node** have the same representation: your snippet fails terribly on 64-bit machines for instance –  pmg Jun 20 '11 at 10:17
    
@pmg: I think your first comment re casting to void * only applies to C++ ? In C you can pass any pointer type to a function which expects a void *, no ? –  Paul R Jun 20 '11 at 10:22
    
@Paul: printf is a function accepting a variable number of arguments. There is "no prototype" for the parameters after the first. The compiler cannot enforce the value to be of the correct type and the programmer must do it manually. I don't know about C++. –  pmg Jun 20 '11 at 10:32

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