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I have written a custom string class. I want to use STL set with it. I have overloaded operator < But still its giving me problem

error C2678: binary '=' : no operator found which takes a left-hand operand of type 'const     String' (or there is no acceptable conversion)
1>    could be 'String &String::operator =(const String &)'
1>           'String &String::operator =(const char *)'
1>          'String &String::operator =(const wchar_t *)'
1>          while trying to match the argument list '(const String, const String)'

I guess, It is asking for overloaded operator= (const String , const String)

But its impossible to create such an overloaded function

My String class is this

String ();
String (const char * pStr);
String (const long int pData);
String (const double  pData);
String (const int pData);
String (const wchar_t * pStr);
//Copy Constructors
String (const String& rhs);
String (const String& rhs, const int pStartIndex, const int pNumChar);

//Overloaded Operators
String & operator= (const String & rhs);
String & operator= (const char * rhs);

String & operator= (const wchar_t * rhs);
String   operator+ (const String& rhs);
//String &  operator+= (const char ch);
String & operator+= (const String& rhs);
friend bool operator== (const String& lhs, const String& rhs);

friend bool operator< (const String& lhs, const String& rhs) {

    return strcmp(lhs.vStr, rhs.vStr);
}

friend ostream& operator<< (ostream& ostr, String& rhs);

char & operator[] (int pIndex);
char   operator[] (int pIndex) const;

const char * String::Buffer () const;
wchar_t * GetTChar();

int String::GetLength () const;

~String ();
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Please add some minimal, but complete, code that demonstrates the problem. The actual problem that you are having could be unrelated to what you think it is. –  Mankarse Sep 19 '11 at 8:52
    
My first guess is that you are trying to make a set<String const> rather than a set<String>, but it is hard to tell without having more information. –  Mankarse Sep 19 '11 at 8:53
    
No i am using set<String> var; , no i am not trying to print the String –  Sumit Jain Sep 19 '11 at 8:56
    
The error is probably a red herring. Can you show us your String class? (And explain why you're not using std::string) –  Lightness Races in Orbit Sep 19 '11 at 8:56
    
We are using custom String class because we were told to do so –  Sumit Jain Sep 19 '11 at 8:58

2 Answers 2

"no operator found which takes a left-hand operand of type 'const String'"

it seem you have an expression like

a=b;

where both a and b are const String.

You cannot assign to a const (although the compiler looks desperately seeking for an implementation of such an assignment)

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yes thats what i cannot understand, its impossible to create opeartor= with two constant arguments –  Sumit Jain Sep 19 '11 at 9:04
    
@Sumit: You are most likely misusing std::set somewhere which causes the compiler to require such an impossible overload, e.g trying to assign to a value in set. The String class itself may be OK. –  visitor Sep 19 '11 at 9:44
    
@Sumit: yes, you cannot create that operator, but the compiler is somewhere required to use it. The problem is not String, but something you did with it. –  Emilio Garavaglia Sep 19 '11 at 12:27

OK, well I can only answer the question you've posed with the information you've given, and the answer is that this works for me.

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