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I wrote some code like this:

#include<string>  
using namespace std;  
int main() {  
    string str;
    ...
    if(str=="test")    //valid????
        //do something
    ...
    return 0;
}

After re-reading the code later I was curious that how did the compiler give no errors?
Note: I already checked the reference and it looks like there should be some sort of type mismatch error (comparing string object with array of char)

edit: sorry for the = to == typo error. it is already fixed

edit 2: issues:

  • there aren't any of operator==(string,char*) or operator==(string,char[]) or similar operators defined in the reference(cppreference.com)
  • no conversion operator from char* or char[] to string
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1  
I don't see why no error either. I get an error when I try and compile the code. –  James Kanze Feb 25 '13 at 9:47

4 Answers 4

up vote 3 down vote accepted

As others have mentioned, the single = sign performs assignment, not comparison.

But the comparison operator is defined, like assignment, by operator overloading, one of the most essential features of C++.

The expression str = "test" is transformed into a function call str.operator= ("test"), and the expression str == "test" would be transformed into either str.operator== ("test"), or operator==(str,"test"), whichever one works.

Even if the overload function weren't defined for operands of std::string and char *, the compiler would still try to find function(s) to convert the arguments to types that did match such a function.

EDIT: Hah, std::string cannot be converted to bool so the if condition would still be an error. I assume this is an artifact of making a nice snippet for the question.

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the == operator is defined for operator==(string&,string&) but there's no conversion from char* to string or char[] to string or some sort of that –  Theemathas Chirananthavat Feb 25 '13 at 11:32
1  
@TheemathasChirananthavat The == operator is defined for (std::string const&, char const *), and the constructor std::string::string( char const * ) serves as a conversion function. –  Potatoswatter Feb 25 '13 at 13:56
    
thanks! I reviewed the conversion rules and found that the constructor will be implicitly called for conversion (that's new knowledge to me) BTW 'operator==(str::string const&, char const*)' isn't defined but the implicit conversion just solves the issue –  Theemathas Chirananthavat Feb 26 '13 at 7:46
if(str="test")  //it's an assignment not a comparison.

change it to if(str=="test")

 why no compile errors?

Because it's c++ not c. std::string has defined this == operator .

if(str="test")  //it's an error: because you can't convert string to boolean type. 
                  which is expected as condition.

error like :could not convert 's.std::basic_string<_CharT, _Traits, _Alloc>::operator=
<char, std::char_traits<char>, std::allocator<char> >(((const char*)"p"))' from 
'std::basic_string<char>' to 'bool' 
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But his code is if ( str = "test" ), which should give an error: there is no implicit conversion of std::string to anything which can be converted to bool. –  James Kanze Feb 25 '13 at 9:48
    
@JamesKanze Thanks . you are right. can't convert to bool. –  Arpit Feb 25 '13 at 9:53
    
that = to == was typo error: fixed –  Theemathas Chirananthavat Feb 25 '13 at 11:30

If you do this

if(str="test"){}

you assign "test" to str. As this is a valid operation, the assignment will return &str a reference to your object, so your if-condition will always be fulfilled. Of course, if str == 0 then it will give an error. So better do:

if(str == "test"){}

Thanks to James Kanze!

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1  
False. The assignment returns std::string&, which doesn't have an implicit conversion to bool (unless his compiler is completely broken). This is one of the reasons, in fact, why std::string doesn't have an implicit conversion to char const* either. –  James Kanze Feb 25 '13 at 9:49
    
@JamesKanze Yes, I will do my math better, thank you. –  bash.d Feb 25 '13 at 9:50
    
that was a typo error (already fixed) –  Theemathas Chirananthavat Feb 25 '13 at 11:33

As mentioned, it isn't compilation error due the operator overloading (ignoring the fact that you're not comparing but assigning). If you use any object without this operator then, yes, it will be a compilation error:

// Foo does not have comparision operator
struct Foo {};

// Bar have comparision operator
struct Bar
{
    // Next line is the operator overload.
    bool operator ==(const char *pstr) const { return true; };
};

// string have comparision operator
std::string Test("test");

if (Foo == "test")  // compilation error
if (Bar == "test")  // uses the Bar::operator ==
if (Test == "test") // uses the basic_string<char>::operator ==
{ /* do something */ }
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What if Foo defines operator char * () { return 0; }? ;) –  Potatoswatter Feb 25 '13 at 9:57
    
@Potatoswatter Or operator bool(), or operator void*() (as do the standard streams). –  James Kanze Feb 25 '13 at 10:00
    
I can't find any overloads for operator==(const string&,const char*) or operator==(const string&,const char*) or anything similar in the reference –  Theemathas Chirananthavat Feb 25 '13 at 11:34

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