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Ok I understand the concept of pointers to pointers. But I don't know why this doesn't work.

void function(int **x) 
{
    *x = 10;
}

I keep getting the error: a value of type "int" cannot be assigned to an entity of type "int*"

What am I doing wrong or what am I not understanding about pointers to pointers?

omg x_x I was confusing C with C++.

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14  
When you said I understand the concept of pointers to pointers, what exactly do you mean? –  Richard J. Ross III Aug 31 '12 at 19:02
3  
It needs to be **x = 10;. –  Paul R Aug 31 '12 at 19:02
3  
Why are you trying to assign the value 10 to a pointer? What's at the tenth address in memory that's so fascinating? –  Mooing Duck Aug 31 '12 at 19:03
2  
@MooingDuck that elusive tenth address. I think it contains the keys to google! –  Richard J. Ross III Aug 31 '12 at 19:04
    
@MooingDuck Perhaps the idea is to find out. –  Daniel Fischer Aug 31 '12 at 19:05

4 Answers 4

x is a pointer to a pointer so you have to dereference it twice to get to the actual object. E.g. **x = 10;

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Ok I understand the concept of pointers to pointers.

Nah...

*x is an int*, so you can't assign an int to it.

The concept of pointers-to-pointers comes from C, where references aren't available. It allows reference semantics - i.e. you can change the original pointer.

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2  
You can assign an int to a pointer, integers are convertible into pointers. 99.999% of the time, you shouldn't, of course. –  Daniel Fischer Aug 31 '12 at 19:04
    
Yea I was looking into pointers-to-pointers on the internet and ran into some C examples. I thought they were interchangeable. –  user1583115 Aug 31 '12 at 19:07
    
@DanielFischer is the cast implicit? (that's what I mean). And AFAIK, you can assign anything to anything :) –  Luchian Grigore Aug 31 '12 at 19:07
2  
@LuchianGrigore In C (which the question originally was tagged as), most compilers will warn but compile without cast (I'm not sure whether they'd be allowed to reject the program without cast). In C++, you need an explicit cast of course. –  Daniel Fischer Aug 31 '12 at 19:11
2  
@LuchianGrigore No, empty structs aren't allowed by the standard, they're a gcc extension. –  Daniel Fischer Aug 31 '12 at 19:16

In short, you need to dereference twice. A dereference returns the thing a pointer is ponting to, so:

int   n     = 10;   //here's an int called n
int*  pInt  = &n;   //pInt points to n (an int)
int** ppInt = &pInt //ppInt points to pInt (a pointer)

cout << ppInt;      //the memory address of the pointer pInt (since ppInt is pointing to it)
cout << *ppInt;     //the content of what ppInt is pointing to (another memory address, since ppInt is pointing to another pointer
cout << *pInt;      //the content of what pInt is pointing to (10)
cout << **ppInt;    //the content of what the content of ppInt is pointing to (10)
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x is pointing to a type of int *, not int. You either want to do static int i = 10; *x = &i or **x = 10.

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6  
You cannot take the address of a constant like that. –  Richard J. Ross III Aug 31 '12 at 19:02
2  
Certainly not &10. Constants have no address. –  Daniel Fischer Aug 31 '12 at 19:02
    
@RichardJ.RossIII, in this case you're right, but it would be OK if it were const int. –  Mark Ransom Aug 31 '12 at 19:03
3  
@MarkRansom no, it would not be OK. I think you need to take a pointer primer, mate :) –  Richard J. Ross III Aug 31 '12 at 19:04
2  
@MarkRansom there is. The thing is that constants are also just constants in the resulting assembly/machine code. They're hardcoded. They're not in the RAM. –  user529758 Aug 31 '12 at 19:10

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