Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
#include <stdio.h>
#include <stdlib.h>


struct integer2{
    int* valuePtr;
    struct integer2* next;
};
typedef struct integer2* intpointer2;


int main() {

    int value2 = 5;
    int* dpointer = &value2;
    intpointer2 intPtr2 = (intpointer2)malloc(sizeof(struct integer2));
    //intPtr2->valuePtr = (int*)malloc(sizeof(int));

    printf("Version1\n");
    intPtr2->valuePtr = value2; //dereference
    printf("intPtr2->valuePtr address %p\n",&intPtr2->valuePtr);
    printf("intPtr2->valuePtr value: %d\n", intPtr2->valuePtr);
    //print 5
    printf("--------------------------------------------\n");

    printf("Version2\n");
    intPtr2->valuePtr = &value2;
    printf("intPtr2->valuePtr address %p\n",&intPtr2->valuePtr);
    printf("intPtr2->valuePtr value: %d\n", intPtr2->valuePtr);
    printf("intPtr2->valuePtr value: %d\n", (*intPtr2).valuePtr);
    //print 1834136
    printf("--------------------------------------------\n");

    return 0;
}

Hi, i have a question about pointer & dereference

In version#1, when I put intPtr2->valuePtr = value2; I can print the value of 5

But in version#2, when I put intPtr2->valuePtr = &value2; I print a weird output like 1834136

isn't valuePtr a pointer? I store the address of value2 should be not problem. and in version#1, I only store the int, but I can print the value of 5. I have no idea about this @@a

and one more question, what is the 1834136? it is an unsigned digits?

thank

share|improve this question
1  
%d is not the correct format specifier for a pointer. –  chris Apr 7 '13 at 4:21
    
no, I am trying to print the value of 5 in version2, but it isn't allow to do that. –  Rex Rau Apr 7 '13 at 4:25
    
In that case, you need to dereference it to get the value it's pointing to. –  chris Apr 7 '13 at 4:27
    
Your assignment of the value 5 to a the pointer member intPtr2->valuePtr is not correct. I'm fairly confident you wanted an address stored there; not a literal integral value. Your first printf() is printing the address of a pointer, not the address in the pointer. –  WhozCraig Apr 7 '13 at 5:19

1 Answer 1

up vote 1 down vote accepted

You should use version 2. But:

printf("intPtr2->valuePtr address %p\n",&intPtr2->valuePtr);
printf("intPtr2->valuePtr value: %d\n", intPtr2->valuePtr);

The first line should be:

printf("intPtr2->valuePtr address %p\n",intPtr2->valuePtr);

Since valuePtr is already a pointer as you said, otherwise you're giving it the address of the pointer, which is not what you want. I'm pretty sure you want the address the pointer points to.

The second line should be:

printf("intPtr2->valuePtr value: %d\n", *intPtr2->valuePtr);

Since intPtr2->valuePtr is the pointer itself, but you still have to dereference it to get the actual int. Doing (*intPtr2).valuePtr is exactly what intPtr2->valuePtr does, -> is short-hand for that syntax, so you'd still be left with the valuePtr pointer and would still have to dereference it.

Example: http://ideone.com/Fh8wwr

share|improve this answer
    
hmmm,ok... I have a another question on the first line, &inPtr->valuePtr is the address of valuePtr? and intPtr->valuePtr is the address of intPtr? –  Rex Rau Apr 7 '13 at 6:20
    
&inPtr->valuePtr is the address of valuePtr and intPtr->valuePtr is the pointer to (in your case returns the address of) value2, since that's what you set it to point to. –  Jorge Israel Peña Apr 7 '13 at 6:35
    
ok, thank you :D –  Rex Rau Apr 7 '13 at 7:27

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.