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I am learning operator overloading. "out" is being used instead of "cout" when overloading "<<" operator. I don't understand why.

  ostream &operator<<( ostream &out, const IntList &L ) {
    out << "[ ";
    for (int k=0; k< L.numItems; k++) {
    out << L.Items[k] << ' ';
    }
   out << ']';
}

I want to ask differences between cout and out and what happens if I use cout instead of out. Thanks for answers.

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Because cout is already the name of another object? –  Kaz Dragon Oct 18 '12 at 16:00
5  
Where is your return out ? Did you miss it out while posting it here ?? –  DumbCoder Oct 18 '12 at 16:01
2  
I suggest you replace out with wibble and see what happens. You see the name doesn't matter. –  john Oct 18 '12 at 16:05
    
@user1559792 You have received many great answers. Any reason why you don't accept any? –  jogojapan Oct 26 '12 at 6:43

4 Answers 4

What you are looking at is a overloaded "stream insertion" operator, allowing some custom class to be written to an ostream object using the typical cout << myObject syntax.

The variable in this case is called out because that's the name they've given to the ostream object being passed into the function, which may be any output stream, whether it's cout or an fstream or a stringstream. It's just a variable name, and they could have called it blah and written:

ostream &operator<<( ostream &blah, const IntList &L ) {
   blah << "[ ";
   // ...
}

Typically you choose a variable name which is descriptive, and out as a name for an output stream is pretty descriptive.

cout would be an especially bad variable name, as it is strongly associated with std::cout, used for writing specifically to the standard output stream. This code doesn't write specificially to standard output, it writes to any ostream object via the << operator so they've chosen a more generic name for their ostream argument.

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1  
I call mine foo. –  Wug Oct 18 '12 at 15:59
2  
There is also an element of convention to this, in that it is an output stream, but not necessarily cout. –  ssube Oct 18 '12 at 15:59

I want to ask differences between cout and out and what happens if I use cout instead of out. Thanks for answers.

In this case, an ostream& (out) is a parameter passed to the function. This allows the operator<< to work on any ostream.

cout is a specific ostream instance - the standard output stream. If they used cout here, you wouldn't be able to use the << operator on cerr (the standard error stream) or any other ostream. If you replaced the out with cout in the body, any time you used this on a different ostream, it'd be written to cout. (Of course, if you changed the parameter to be named cout, that wouldn't happen - but it would be very misleading to anybody looking at this code, as people would expect that the code writes to the standard output stream, not to the stream being passed in.)

In general, you only would want to use cout as a name if you are specifically referring to std::cout - the standard output stream, as using it in other contexts would be very confusing.

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"If they used cout here, you wouldn't be able to use the << operator on cerr" - that's not actually true... cout - used as the parameter name - would not clash with ::std::cout, but it would certainly be misleading. –  Tony D Oct 18 '12 at 16:01
    
@TonyD Yeah - I tried to add something to that effect (was writing when you posted that) because I realized it wasn't clear. –  Reed Copsey Oct 18 '12 at 16:02
    
@TonyD I was trying to suggest if you left the parameter name the same, but used cout in the method body. –  Reed Copsey Oct 18 '12 at 16:02
    
fair enough - that would be a pretty awful thing to debug! Cheers –  Tony D Oct 18 '12 at 16:03
1  
This business of using cout in the body of the function is another reason why using namespace std; is an accident waiting to happen. As soon as any of your chosen variable names can be typoed as a standard name that you've brought into scope, there's a risk that your typos will compile. Use out for the variable and std::cout for STDOUT, I say :-) –  Steve Jessop Oct 18 '12 at 16:18

out is the name of the ostream object passed to the overloaded operator (inside the implementation of the operator).

The overloaded operator allows you to write code like this

IntList i;
cout<<i;

or

cerr<<i;

In the implementation if you substituted out with cout, then the second call

cerr<<i;

would print to standard output whereas it should have printed to standard error.

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The critical thing here is really the types in the function signature: as long as it's a freestanding function with two parameters - one of type std::ostream& and the other able to be matched by the value to be streamed, then the function body will be invoked. It should return a reference to the stream to allow chaining (as in if (cout << firstIntList << secondIntList)).

The actual parameter names are whatever you feel like, as long as they're not reserved words. I tend to use "os", as in output-stream.

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"os" is too long a name. I tend to use ostream & o. –  user93353 Oct 18 '12 at 16:18
    
@user93353: yeah, good point - I'll just update all my code ;-P –  Tony D Oct 18 '12 at 16:23

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