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Please have a look at the following code

#include <iostream>

using namespace std;

int main()
{
    int a = 5;

    int *aPtr1 = &a;
    int *aPtr2 = aPtr1;
    int *aPtr3 = aPtr2;

    cout << "'a' value: " << a << endl;
    cout << "'aPtr1' value: " << *aPtr1 << endl;
    cout << "'aPtr2' value: " << *aPtr2 << endl;
    cout << "'aPtr2' value from 'aPtr3': " << **aPtr3 << endl;
}

In here, at the last line, I am trying to get the 'aPtr2' value from 'aPtr3'. In other words, this is my attempt to find the 'Pointer Before'. But it gives me the error

PointerTest.cpp:16: error: invalid type argument of `unary *'

How can I make this OK? Please help!

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1  
aPtr3 isn't a pointer to a pointer... you can't dereference it twice. –  hmbl9r Oct 30 '12 at 17:47
    
confusing program... –  SparKot Oct 30 '12 at 17:48

2 Answers 2

up vote 3 down vote accepted

aPtr3 is equal to aPtr2. And aPtr2 is the adress of a. When writing *aPtr3, you already access the value pointed by the adress it contains (ie, the adress of a).

If you wanted to use this syntax, you should have had

int **aPtr3 = &aPtr2;
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Thanks :) I really appreciate it :) –  MIT_Love Nov 28 '12 at 5:27

**aPtr3 evokes Undefined Behavior. aPtr3 isn't a pointer-to-pointer-to-int; it is a pointer-to-int. Fix the code by simply doing:

<< *aPtr3 << endl

Your code evoked Undefined Behavior because **aPtr3 boils down to *5.

share|improve this answer
    
Thanks a lot for the reply. I really appreciate it :) +1 from me –  MIT_Love Nov 28 '12 at 5:28

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