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I'm trying C++ pass-by-reference using this simple code:

#include <iostream>
int square(int &x)
{
return x*x;
}
int main()
{
std::cout<<"Square of 4 is: "<<square(4)<<std::endl;
return 0;
}

But, when I try to run it, I get the following:

enter image description here

UPDATE

I get the following error after modifying the code based on @Pablo Santa Cruz's answer (I just screen captured part of the error):

enter image description here

Why is that?

Thanks.

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3  
If possible, please copy and paste error messages into <pre> elements rather than posting screenshots. For one thing, some SO users (especially in the UK, and those on mobiles) pay by the MB. For another, we could then copy and paste the error & dissect it more readily. –  outis Jan 26 '11 at 19:39
    
@outis. Thanks for your note. Actually, I'm using Cygwin console, and I cannot find a way to copy the output. –  Simplicity Jan 26 '11 at 19:45
2  
@user588855, open window properties (in the Alt+Space menu) and enable mouse selection there. After that, just select the text with the mouse, then right click it and it will get into the clipboard. Also, the third reason to post text instead of screenshots is to allow Google to find it which is the main purpose of this place anyway. –  Sergey Tachenov Jan 26 '11 at 19:53
1  
@user...: the hard and only way to copy is this: 1. click on the icon in the top left corner of the console window, 2. Go to Edit->Select, 3. Select the text you want to copy, 4. press the enter key. The text will now be copied to the clipboard. Ctrl-v anywhere to paste! –  rubenvb Jan 26 '11 at 19:55
    
@sergey: is that possible for the Cygwin console? (and to keep that by default, even when you quit and reopen it?) –  rubenvb Jan 26 '11 at 19:55
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8 Answers 8

up vote 5 down vote accepted

You can't pass a constant (4) if you are expecting a reference.

You must pass a variable:

int n = 4;
square(n);

Having said that, you probably want something like this:

void square(int &x)
{
   x = x*x;
}

Not a function returning an int.

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When I do that I get the error shown in the UPDATE in my post. And, why don't I return a value and instead do void? Thanks –  Simplicity Jan 26 '11 at 19:29
1  
you can return a value. –  Pablo Santa Cruz Jan 26 '11 at 19:32
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You cannot pass temporaries to non-constant references.

Make square accept a const int &:

int square(const int &x)
{
    return x*x;
}
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This is where const references by default are nice. No constant problems ;). Only non-const your reference arguments when you will modify them in the function. –  rubenvb Jan 26 '11 at 19:53
1  
For small types as int it is even better to just pass by value. –  David Rodríguez - dribeas Jan 26 '11 at 22:16
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It's because of § 8.5.3 5 of C++03:

A reference to type “cv1 T1” is initialized by an expression of type “cv2 T2” as follows:
  • If the initializer expression
    • is an lvalue (but is not a bit-field), and “cv1 T1” is reference-compatible with “cv2 T2,” or
    • has a class type (i.e., T2 is a class type) and can be implicitly converted to an lvalue of type “cv3 T3,” where “cv1 T1” is reference-compatible with “cv3 T3” 92) (this conversion is selected by enumerating the applicable conversion functions (13.3.1.6) and choosing the best one through over- load resolution (13.3)),
    then the reference is bound directly to the initializer expression lvalue in the first case, and the reference is bound to the lvalue result of the conversion in the second case. In these cases the reference is said to bind directly to the initializer expression. [Note: the usual lvalue-to-rvalue (4.1), array-to-pointer (4.2), and function-to-pointer (4.3) standard conversions are not needed, and therefore are suppressed, when such direct bindings to lvalues are done. ]
  • Otherwise, the reference shall be to a non-volatile const type (i.e., cv1 shall be const).
    • If the initializer expression is an rvalue, with T2 a class type, and “cv1 T1” is reference-compatible with “cv2 T2,” the reference is bound in one of the following ways (the choice is implementation-defined.
      • The reference is bound to the object represented by the rvalue (see 3.10) or to a sub-object within that object.
      • A temporary of type “cv1 T2” [sic] is created, and a constructor is called to copy the entire rvalue object into the temporary. The reference is bound to the temporary or to a sub-object within the temporary.
    • Otherwise, a temporary of type “cv1 T1” is created and initialized from the initializer expression using the rules for a non-reference copy initialization (8.5). The reference is then bound to the temporary. If T1 is reference-related to T2, cv1 must be the same cv-qualification as, or greater cv- qualification than, cv2; otherwise, the program is ill-formed.

Above, "cv*" refers to the modifiers "const" and "volatile", and "T*" refer to type names. For example, const int (cv = "const", T = "int"), const volatile std::string (cv = "const volatile", T = "std::string"), char* (cv = "", T = "char*").

In short, rvalues are allowed to bind only to const references.

Update

If your square now returns void (code or it didn't happen), then the new error is because there is no operator<<(std::out&, void).

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What do you mean by temporaries? Thanks. –  Simplicity Jan 26 '11 at 19:38
    
outis. You are right. I shouldn't have inserted the function call in std::cout<<. Thanks –  Simplicity Jan 26 '11 at 19:44
    
I should have written "rvalue" (see update). In simple terms, an 'lvalue' is a 'real object' (i.e. it exists in memory & has an address), while an 'rvalue' is the result of an expression (it doesn't have an address; it's usually stored in a register or an instruction). No address, so it can't be referenced, since references are based on object addresses. See "rvalue" link in answer for more. There are a number of SO questions about lvalues & rvalues, and about const references, so also check this site. –  outis Jan 26 '11 at 19:46
    
Also, a web search for "c++ temporaries" should turn up better info than I could provide here. –  outis Jan 26 '11 at 20:29
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Compiler creates a temporary object for constant 4 which can not be passed to a function as a non-const reference. Create a int object in main and pass it to the function or take the function parameter by const-reference or by copy.

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The declaration

int square(int& x);

says that the function square may change its argument (although it doesn't really). So to call square(4) is ridiculous: the program needs to be ready to change the number 4.

As people have noted, you can either change the function to specify that it won't change its argument:

int square(const int& x); // pass reference to const type
// OR
int square(int x);        // pass by value

Or you can call your original square using a value that can be modified.

int square(int& x);
// ...
int num = 4;
square(num);
// now (as far as the compiler knows) num might no longer be 4!
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A reference must be an l-value-- basically, something you can see on the left side of an assignment statement.

So basically, you need to assign to a variable in main first. Then you can pass it into square.

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A reference aliases another variable. "4" is not a variable, and therefore your reference has nothing to alias. The compiler therefore complains.

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What you want is this:

#include <iostream>
int square(int x)
{
    return(x * x);
}
int main()
{
    std::cout << "Square of 4 is: "<< square(4) << std::endl;
    return 0;
}

Did you notice how I got rid of the & in int square(int &x)? The & means pass-by-reference. It takes a variable. The 4 in square(4) is a constant.

Using pass-by-reference, you can change the value of x:

void square2(int &x)
{
    x = x * x;
    return;
}

Now:

int x = 5;
square2(x);
// x == 25

Although, I don't think you want this. (Do you??) The first method is a lot better.

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