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I have a lot of couts and so I would like to be able to make a function that can take just three arguments. The function would print them out to the screen just as cout does like this:

print( 5, " is a ", "number" );

// should do the same thing as

cout << 5 << " is a " << "number" << endl;

I'm not asking anyone to do it. I'm just looking for a way to be able to. But if you can provide the code that would be good as well. Does anyone have any advice? Thanks.

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3  
1) What have you tried, 2) how would the function be better thatn cout << ..., and 3) have you heard of templates? –  Beta Jul 16 '12 at 20:37

5 Answers 5

up vote 13 down vote accepted
template <typename T0, typename T1, typename T2>
void print(T0 const& t0, T1 const& t1, T2 const& t2)
{
    std::cout << t0 << t1 << t2 << std::endl;
}
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+1 for the pass by reference. –  robbrit Jul 16 '12 at 20:40
    
Scott Meyers (in Effective C++) recommends that you use pass by const ref for all types, except for builtin types (char, int, double, etc.), for iterators and for function objects (classes deriving from std::*_function). –  user195488 Jul 16 '12 at 20:43
    
What does the const& t0 do? Please explain in layman terms as I am not quite proficient in c++. –  0x499602D2 Jul 16 '12 at 20:45
1  
@David: It is a const-qualified reference. For more, I would recommend a good introductory C++ text. –  James McNellis Jul 16 '12 at 20:52
1  
@0A0D: Off the top of my head, I can't think of an "official" reference. See this question for a few reasons why const& (or && in C++11) is usually preferable. –  James McNellis Jul 16 '12 at 20:53

I would like to be able to make a function that can take just three arguments

Are you sure? C++11 affords us much more power than that.

void print()
{
    std::cout << std::endl;
}

template<typename T, typename... Args>
void print(const T & val, Args&&... args)
{
    std::cout << val;
    print(args...);
}
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I said I wanted just three arguments because I was afraid the examples given to me depicting functions that can take unlimited arguments would be too complex for me to grasp. Is this code supposed to work as-is? I ran it and it gave me the error: expected ',' or '...' before '&&' token' –  0x499602D2 Jul 16 '12 at 21:28
    
@David: What compiler are you using? –  Benjamin Lindley Jul 16 '12 at 21:29
    
I'm using the built-in compiler from CodeBlocks. –  0x499602D2 Jul 16 '12 at 21:29
    
I forgot to mention that I got a warning that said variadic templates only available with -std=c++0x or -std=gnu++0x I don't know what this means. –  0x499602D2 Jul 16 '12 at 21:33
    
@David: That's probably GCC, though I don't know which version. If you can figure out how to add the option "-std=c++0x" to the command line, then do that. If you have no idea what I'm talking about, then go on to the codeblocks forums, here, and see if they can help you. Ask them, "How do I set up codeblocks to work with C++11?", they should be able to help you. (Edit) By your other comment, I see you definitely have a GCC version that supports the option. You just need to figure out how to add it. –  Benjamin Lindley Jul 16 '12 at 21:35

You can do it with templates:

template<typename T, typename S, typename U>
print(T x, S y, U z)
{
    std::cout << x << y << z;
}

EDIT: If you're expecting to pass complex types (not just int or char *) you should follow James' answer and use const references.

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you could use macros... (if you want to do that, can be ugly sometimes)

#define PRINT(x,y,z) cout << (x) << (y) << (z) << endl;
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I like your answer because you don't have to use templates. :) –  0x499602D2 Jul 16 '12 at 20:40
    
What's wrong with templates? –  chris Jul 16 '12 at 20:41
    
It's more of a readability advantage in my opinion. And besides, you can pass various types into print. –  0x499602D2 Jul 16 '12 at 20:42
    
If you have to write that really often, it is much more convenient to use macros than templates. –  Misch Jul 16 '12 at 20:42
3  
@Misch: Or, with template type deduction, print("a","b",3) vs. print("a","b",3) –  Benjamin Lindley Jul 16 '12 at 21:06

If you are looking to simplify the specific task of printing three items, you can do it using a #define macro:

#define print(A,B,C) cout << (A) << (B) << (C) << endl

If you prefer a function-call syntax, consider using C-style output instead: printf is a "first-class member" of the C++ standard library, there is no reason to shy away from it when it makes sense in your specific application:

printf("%d %s %s\n", 5, "is a", "number");

The advantage of printf approach is that it is not limited to any specific number of arguments.

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print(a++, "is a", a++); is worse than unspecified, it is undefined, and it would be even if print was a function instead of a macro. But that's not the function/macro's fault, it is the fault of the caller. –  Benjamin Lindley Jul 16 '12 at 21:02
    
@BenjaminLindley You are correct on that, the reference is of no interest as far as this question is concerned. I edited the answer to remove it, thanks! –  dasblinkenlight Jul 16 '12 at 21:35

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