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.

Whey we cannot Convert pointer to a character ->TO-> a reference to a pointer to a constant character

I am interested in knowing the reason of syntax error when we call foo_ptr. When foo_char is allowed why not foo_ptr.
[Update 1.] I would be happy in knowing the reason that foo_char() is working, why foo_ptr() is not working .. What happens when pointer come in the picture.

[Update 2.] Didnt work in Dev C++ compiler version 4.9.9.2 too ..

//code
//OS : Win XP
//Env: VC++ 2008 

//NOT ALLOWED
void foo_ptr(const char * & ptr) //reference to a pointer to a constant character         
{         
        return;         
}        


//allowed        
void foo_char(const char & p_Char) //reference to a constant character        
{         
        return;        
}        

int main()        
{        
        char ch = 'd';        
        char *ptr =  "anu";        

        foo_char(ch);         
        foo_ptr(ptr); //NOT ALLOWED syntax error, vc++, 2008        

        return 0;        
}        
share|improve this question
    
Maybe the parser is wrong, try foo_ptr((const char *)& ptr. –  RedX Oct 21 '11 at 14:36
1  
Everything compiled fine on VC2010. Maybe a fixed bug? –  atoMerz Oct 21 '11 at 14:43
    
@RedX : Thanks for the inputs, void foo_ptr((const char * )& ptr) gave error C2065 : undeclared identified –  anubhav16 Oct 21 '11 at 15:19
    
@AtoMerZ: May be.. That sounds more reasonable.. Thanks for the inputs. –  anubhav16 Oct 21 '11 at 15:20
    
@AtoMerZ: Didnt work in Dev C++ compiler version 4.9.9.2 too .. by the way .. –  anubhav16 Oct 21 '11 at 16:58
add comment

3 Answers

Suppose you had

void foo_ptr(const char * & ptr)
{         
    ptr = "readonlystring";
}        

You now call it as

    char *ptr;
    foo_ptr(ptr);
    *ptr = 0;

Suppose no error were raised. You are writing to a read-only string, violating the type system without any casts.

This is basically the CV version of How come a pointer to a derived class cannot be passed to a function expecting a reference to a pointer to the base class?.

share|improve this answer
    
Good point. But you can do that with typedef char* CHARPTR anyway already. –  Eric Z Oct 21 '11 at 15:03
1  
Not sure what you mean. Changing char *ptr to CHARPTR ptr would still raise an error. –  Raymond Chen Oct 21 '11 at 15:04
    
What's the error? Replacing char* w/ typedef in OP's code should compile successfully. –  Eric Z Oct 21 '11 at 15:09
2  
Oh, you mean replacing it in foo_ptr. That's because const char *& is not the same as const CHARPTR&. The former is a reference to a pointer to a const char. The latter is a const reference to a pointer to a char. So it's a different function. –  Raymond Chen Oct 21 '11 at 15:20
1  
@user976141, then what you really need is char * const & or const char * const &. –  Eric Z Oct 21 '11 at 15:35
show 10 more comments

Revised with more examples: Raymond Chen provides the correct answer. By passing a non const pointer (char *) as reference parameter of a const pointer (foo_ptr(const char * &param)) you risk returning a const pointer type (const char *) and the compiler won't allow you to do that.

Here's Raymond Chen's example of that, but I tried to explain how things would go wrong if it compiled by adding additional comments and code:

void foo_ptr(const char * & ptr)
{         
    //Valid assignment, and the char * is now pointing to a const
    //array of "readonlystring"
    ptr = "readonlystring";
}   

...
//inside main
char *ptr = malloc(10*sizeof(char));
//See you can edit ptr, it's not const.
ptr[0] = 'a';
ptr[1] = 'b';
//this should not compile, but lets assume it did..
foo_ptr(ptr);
//Oh no, now ptr[0] is 'r' inside of constant memory,
//but now since ptr isn't declared const here I can overwrite it!
//But luckily most (all?) compilers actually fail to compile this code.
ptr[0] = 'b';

But if you change your parameter so you can't affect the value that the pointer points to then the compiler will let you past in a non-const because there is no chance a const valued pointer is returned.

By placing the keyword const AFTER the * in your parameter deceleration you do just that. That means change:

void foo_ptr(const char * & ptr)

to

void foo_ptr(const char * const & ptr)

and your compiler will be happy.

Now you would not be able to do something like ptr = "readonlystring" in the above example because that would never compile now. Based on your question that should be OK because you would not be able to do the assignment to a const char & in your original example.

share|improve this answer
    
Eric and @James : Thank you so much guys. To me, this sounds better than any other answered here [at least to my understaning]. I am novice and It would be really helpful if a bit detail in explaination with example(s) can be added here to help us understand this completely. (or any source/link would also work equally). .... I gave a lot of thought esp on the line "....const array pointer you risk returning a const pointer type".. but couldnt feel satisfied.. Thanks a lot for the time and effort. –  anubhav16 Oct 21 '11 at 21:26
    
I revised the answer with some more code and explanation. Hopefully the snippets I added to explain the line that confused you will help. –  James Oct 21 '11 at 21:56
    
Great.. I now.. understood. Thanks a lot :). I appreciate the efforts and time you spent. Many thanks again. –  anubhav16 Oct 22 '11 at 5:52
    
[Update 3.] My doubt is resolved. I am satisfied. Thanks to every one for their time and efforts in helping me. Esp. I would like to thank Raymond(who was right but I did not understand his point at the first time), Eric Z(Who added more values) and finally James who explained Eric's point with detailed example. Thanks a lot guys. James- Thanks for closing this post (at least from my side.). –  anubhav16 Oct 22 '11 at 6:06
1  
Hmm, I'm not sure why I thought it was Eric I was quoting, it was Raymond Chen –  James Oct 23 '11 at 15:43
add comment

You should never assign a string literal to a non-const char pointer, as you do here:

 char *ptr =  "anu";        

Change the above to correct code:

 const char *ptr =  "anu";        

...and I think you'll find your problems are solved.

share|improve this answer
7  
But that doesn't answer his question. –  Nawaz Oct 21 '11 at 14:37
    
thanks for the time, but Yeah, that didnt answer my question. If 'const' had been the only concern , how did it work for foo_char ? –  anubhav16 Oct 21 '11 at 15:25
add comment

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.