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I was looking at one of the implementation of String class and noticed the following overloaded == operator.

String f = "something";
String g = "somethingelse";
if (f == g)
    cout << "Strings are equal." << endl;

bool operator==(String sString)
{
    return strcmp(operator const char*(), (const char*)sString) == 0; 
}

I understood most of the part except operator const char*() what exactly its been used for? I have very basic knowledge of operator overloading , can someone please throw some more light on this?

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I think operator const char*() is an explicitly called (const char *) operator on 'this' pointer. –  vahancho Sep 9 '13 at 8:09
    
Do you mean CString, String (what is that? CLI stuff?) or std::string? –  doctorlove Sep 9 '13 at 8:12
    
Its some custom String implementation in c++, other than the default implementation of string class. –  rrs120486 Sep 9 '13 at 9:07

4 Answers 4

up vote 6 down vote accepted

It is an explicit call to the operator const char*() member function. This code would do the same:

return strcmp(static_cast<const char*>(*this), (const char*)sString) == 0;

But there are more than one thing wrong with that code:

  1. it should not use C-cast, but C++-casts (e.g. static_cast) for the right argument
  2. operator== should be a free function, not a member function
  3. A string class should normally not have an operator const char*
  4. If the String class is implemented reasonably, the operator== should take both parameters as const references
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+1 For anyone that wonders about the warrant for #3, see this question –  WhozCraig Sep 9 '13 at 8:12
    
Also, using two different means of achieving the same thing. Whatever means chosen for the first argument (and explicitly calling operator char const*() is probably the least intuitive and idiomatic) should be used for the second argument as well. (As to whether static_cast or a C style cast, this is largely a question of style. In this case, anyway.) –  James Kanze Sep 9 '13 at 8:22
    
@James of course it is a question of style. As is the choice of explicit operator calling ;) –  Arne Mertz Sep 9 '13 at 9:11
    
All styles are equal. But some are more equal than others:-). I've never seen code which used the explicit call of a conversion operator; in fact, the explicit call of an operator in general seems limited to forwarding functions (e.g. the postfix operator++( int ) might call operator++().) There are also conventions where there is a strong underlying technical argument: casts between pointer types should always use C++ casts, for example. On the other hand, most programmers I've seen prefer (double)someInt to static_cast<double>( someInt ). –  James Kanze Sep 9 '13 at 9:19
    
What's wrong with operator== being a member function besides lack of commutative property? –  icepack Sep 9 '13 at 16:38

operator const char*() is the old-style C casting: just like you can cast an integer to float by (float)int_var, you can cast to const char* as (const char*)string_var. Here it cast a String to const char *

If you're familiar with the STL std::string, then this operator const char*() is doing basically the same job as .c_str() there.

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This is an explicit call to the cast-to-const char* operator which is overloaded by your String implementation.

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This operator will cast it's own String to const char* and call strcmp.

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