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If I have the following c++ code:

class foo{
public:
    explicit foo(int i){};
};
void f(const foo &o){
}

And then I call

f(foo(1));

Is foo(1) constructor call or function-style cast?

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Can't you only call constructors that way when declaring variables? –  millimoose Nov 27 '11 at 23:30
    
@Inerdial: not sure I understand you. Can you elaborate a bit? Thanks. –  Qiang Li Nov 27 '11 at 23:33
2  
@Inerdial: No, you can call constructors like that too. –  Oli Charlesworth Nov 27 '11 at 23:38
    
@QiangLi: I was asking if it's at all possible to call constructors without new as an expression, not as a variable declaration statement. (That said it's more of a vague guess which is why it's a comment not an answer.) –  millimoose Nov 27 '11 at 23:40
    
@Inerdial: it tends to get a bit vague when java/pythonists start guessing about C++ language features. Please post helpful comments when you're pretty certain you're contributing. –  sehe Nov 27 '11 at 23:53
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3 Answers 3

They are the same thing.

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you mean I can consider them as either case? –  Qiang Li Nov 27 '11 at 23:38
3  
LOL at <!---------> (I had to see how you managed that) +1 –  sehe Nov 27 '11 at 23:54
    
@sehe: sorry about my English. What did you imply? –  Qiang Li Nov 28 '11 at 2:14
    
@QiangLi : that was at @OliCarlesworth :) –  sehe Nov 28 '11 at 2:15
    
(Edit the answer to see what it means... answers need to be padded to a certain length, so Oli used a HTML comment to do it. This is going in my bag of tricks) –  Steven Lu Dec 31 '13 at 23:32
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It's a function-style cast that results in a constructor call, so both.

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I thought only one is suffice. Then making a temporary copy to feed into the function is the next step thing. my question is only worrying about the code foo(1) part. –  Qiang Li Nov 27 '11 at 23:39
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5.2.3 Explicit type conversion (functional notation)

1 A simple-type-specifier (7.1.6.2) or typename-specifier (14.6) followed by a parenthesized expression-list constructs a value of the specified type given the expression list. If the expression list is a single expression, the type conversion expression is equivalent (in definedness, and if defined in meaning) to the corresponding cast expression (5.4). ...

Your code creates a temporary, using the constructor you have with the argument's value 1, and binds it to a const reference. The temporary's lifetime ends at the end of the statement where it was created.

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