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my problem is that const string* p gives me an error. What is wrong with this? since I am not change the original value. const int& n = 0 works fine.

#include <iostream>
using namespace std;
class HasPtr
{
private:
    int num;
    string* sp;
public:
    //constructor
    HasPtr(const int& n = 0, const string* p = 0): num(n), sp(p) {}
    //copy-constructor
    HasPtr(const HasPtr& m): num(m.num), sp(m.sp) {}
    //assignment operator
    HasPtr& operator=(const HasPtr& m)
    {
        num = m.num;
        sp = m.sp;
        return *this;   
    }
    //destructor
    ~HasPtr() {}
};
int main ()
{
    return 0;
}

output Error is :

error: invalid conversion from ‘const std::string*’ to ‘std::string*’
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1  
Do you want to copy the string provided to the constructor or to keep a pointer to it? –  Matteo Italia Nov 21 '11 at 21:56
    
I want to initialize the sp , as you can see that using const int& n = 0 to initialize num works fine. but why I cannot use const string* p = 0 to initialize sp? –  ihm Nov 21 '11 at 21:57
    
Ok, but do you want to have a separate copy of the string private to your object or to actually keep a pointer to what was passed to your class? What's the objective of this class? –  Matteo Italia Nov 21 '11 at 21:58
2  
Are you sure you want to store a raw pointer to an std::string? Who owns this string object? –  Praetorian Nov 21 '11 at 21:59
    
whenever I do HasPtr var, I want var to be initialized to (0,0). also if I do HasPtr var(12, *ppp), I want it to have 12 and *ppp respectively –  ihm Nov 21 '11 at 22:00

3 Answers 3

up vote 4 down vote accepted

This is because your sp member is not const.

string* sp;

But your parameter p is a const. The result is that you are trying to assign a const pointer to a non-const pointer - hence the error.

To fix this, you need to declare sp const at as well.

const string* sp;
share|improve this answer
    
why const int& n = 0 works? num is not a const either. –  ihm Nov 21 '11 at 22:03
    
That's because nun is not a pointer. The parameter is being copied into num. (although it's passed by const reference into the constructor) –  Mysticial Nov 21 '11 at 22:04
    
gotcha, thanks. –  ihm Nov 21 '11 at 22:08
    
can I use a reference to a const pointer there and make it work? –  ihm Nov 21 '11 at 22:10
1  
No. I don't think that's what you want anyway. Basically, you have two options: 1) Make sp const. 2) Don't store a string pointer. Store a string and let it make a copy of the parameter. –  Mysticial Nov 21 '11 at 22:13
private:
    int num;
    string* sp;

sp is non-const, but p is:

const string* p = 0

The result is that this sp(p) is basically this:

string* sp = (const string*)0;

It's complaining because doing this would remove the string's const-ness.

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why const int& n = 0 works? –  ihm Nov 21 '11 at 22:04
2  
because num doesn't reference n, it copies n. It's allowed to copy from a constant. The correlating p parameter would be string * const. –  Mooing Duck Nov 21 '11 at 22:23

I think you got confused by the various meanings of const.

 const string*sp;

declares a pointer to a constant object, which only allows access to constant methods of class string.

 string*const sp;

declares a pointer to a string to be a constant member of the class, which you must initialise sp in the constructor and cannot change (except using const_cast<>).

 const int&num;

in the argument list means that the function promises not to alter the value of the integer referred to by num, but it can of course copy its value (as you did). The corresponding operation for the string pointer would have been

 HasPtr(string*const&p) : sp(p) { /* ... */ }

and would have been perfectly legal albeit rather unorthodox.

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