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The following code snippet is meant to try and extract an integer from a string using a stringstream object and detect whether integer extraction was successful or not. The stringstream class inherits the >> operator to return a reference to an istream instance. How does failed integer extraction lead to myStream being equal to 0 while its str member is still strInput?

stringstream myStream(strInput);
if (myStream >> num){//successfull integer extraction}
else{//unsuccessfull integer extraction
cout<<myStream<<endl;
cout<<myStream.str().c_str()<<endl;}
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2 Answers 2

up vote 4 down vote accepted

There is an operator bool() or operator void*() for stream, which returns (something like) !fail() - or in case of void * a NULL when it failed. So, if the stream hasn't failed, it's fine. The operator >> returns a reference to the stream object, so the compiler says "Hmm, can't compare a stream object to truth, let's see if we can make a bool, or void * from it, yes we can, so let's use that.

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Yep! Specifically, it's for std::basic_ios. See operator void* and operator bool here. en.cppreference.com/w/cpp/io/basic_ios –  Drew Dormann Feb 10 '13 at 23:58
    
I assume the same goes for the first cout statement as it displays 0 when the integer extraction fails. The compiler tries to make it a bool or void* in order for cout to be able to display it. –  Junk Mvg Feb 11 '13 at 0:27
    
Yes, that will be doing something similar at least. –  Mats Petersson Feb 11 '13 at 0:29
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The answer is in the operator that converts std::ios to void* (replaced with an operator to convert basic_ios to a bool in C++11):

A stream object derived from ios can be casted to a pointer. This pointer is a null pointer if either one of the error flags (failbit or badbit) is set, otherwise it is a non-zero pointer.

This operator gets called when your stream is used in an if, while, or for condition. There is also a unary ! operator for the cases when you need to write

if (!(myStream >> num)) {
    ...
}
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+1, but one should note that afaik, this is pre-C++11, even though nearly all compiler still implement it as void* even in C++11-mode. For strict C++11 (which mandates explicit operator bool() ), Mats' answer is correct. –  us2012 Feb 10 '13 at 23:57
    
@us2012 Done. Thanks! –  dasblinkenlight Feb 11 '13 at 0:01
    
Many thanks for all your assistance –  Junk Mvg Feb 11 '13 at 6:07
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