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.

Can anyone please explain the difference between:

const char& operator[] const

and

char& operator[]

in C++? Is it true that the second one is duplicating the string? and why?

share|improve this question
add comment

5 Answers

up vote 2 down vote accepted

They both return references to the internal member of the string.

The first method is defined as a const method (the last const) and as such promises not to change any members. To make sure you can;t change the internal member via the returned reference this is also const.

  const char& operator[](int i) const
//                              ^^^^^ this means the method will not change the state
//                                    of the string.

//^^^^^^^^^^^  This means the object returned refers to an internal member of
//             the object. To make sure you can't change the state of the string
//             it is a constant reference.

This allows you to read members from the string:

std::string const  st("Plop is here");

char x  = st[2];          // Valid to read gets 'o'
st[1]   = 'o';            // Will fail to compile.

For the second version it say we return a reference to an internal member. Neither promise that the object will not be altered. So you can alter the string via the reference.

   char& operator[](int i)
// ^^^^^  Returns a reference to an internal member.

std::string mu("Hi there Pan");

char y = mu[1];           // Valid to read gets 'i'
mu[9]  ='M';              // Valid to modify the object.
std::cout << mu << "\n";  // Prints Hi there Man

Is it true that the second one is duplicating the string? and why?

No. Because it does not.

share|improve this answer
add comment

No, the second returns a non-constant reference to a single character in a string, so you can actually use it to alter the string itself (the string object is not duplicated at all, but its contents are possibly modified).

std::string s = "Hell";
s[0] = 'B';

// s is "Bell" now

Given this sample, char& operator[] can of course be used to access a single character without modifying it, such as in std::cout<< s[0];.

However, the const overload is needed because you cannot call non-const member functions on const objects. Take this:

const std::string s = "Hell";
// ok, s is const, we cannot change it - but we still expect it to be accessible
std::cout << s[0];

// this, however, won't work, cannot modify a const char&
// s[0] = 'B';

Generally, the compiler will pick the const overload only when being called on a const object, otherwise it will always prefer to use the non-const method.

share|improve this answer
add comment

The issue is with const-correctness. Allowing read-only access in a const string and allowing writable access in a mutable string require two methods.

The const char& operator[] const accessor is necessary if you want to access a character from a const std::string. The char& operator[] accessor is necessary to modify a character in a std::string.

share|improve this answer
    
+1, The issue is with const-correctness If you let it, C++ provides some powerful aids that keep you and others from shooting yourself in your foot (or even higher). –  David Hammen Sep 24 '11 at 20:51
add comment

The second one does not need to duplicate (copy) the string. It just returns a reference to a character which is modifiable. The first one returns a non-modifiable reference, because it has to: the function itself is const, meaning it can't mutate the state of the string.

Now, if you have copy-on-write strings (an optimization employed sometimes), then getting a non-const reference to a piece of the string may imply copying (because the reference implies writing). This may or may not be happening on your particular platform (which you didn't specify).

share|improve this answer
    
I'm not 100% sure, but I thought that copy-on-write implementations are effectively disallowed now that both operator[] must have constant time complexity? –  Charles Bailey Sep 24 '11 at 17:56
    
That may or may not be, but just because they are not supported by the standard doesn't mean people don't implement them. :) –  John Zwinck Sep 24 '11 at 18:30
    
@Charles: I don't believe COW is disallowed in 03, just in 11. But nobody still used it for standard library implementations, so the distinction is a minor one. –  Dennis Zickefoose Sep 24 '11 at 18:57
    
@DennisZickefoose: Just for clarification, I was talking about C++11. After all, C++03 has now been withdrawn. –  Charles Bailey Sep 24 '11 at 19:25
add comment

Some Basics :

With operator[] you can both edit value in a container/memory and read value.
With const char& operator[] const you are only allowed to read value. Eg.

std::string ss("text");
char a = ss[1];

with char& operator[] you can edit the value. Eg

ss[1] = 'A';

share|improve this answer
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.