Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

Have a look here: In the following code, what would be the type of b?

struct A {
    A (int i) {}

struct B {
    B (A a) {}

int main () {
    int i = 1;
    B b(A(i)); // what would be the type of b
    return 0;

I'll appreciate it if anybody could explain to me thoroughly why would such syntax exist :)


share|improve this question

3 Answers 3

up vote 7 down vote accepted

One of C's warts (and C++ inherits it (and makes it worse)) is that there is no special syntax for introducing a declaration. This means declarations often look like executable code. Another example:

A * a;

Is this multiplying A by a, or is it declaring something? In order to make sense of this line you have to know that A is the name of a type.

The basic rule in C++ is that if something can be parsed as a declaration, it is. In this instance it leads to a strange and surprising result. Function declarations look a lot like function calls, and in particular the ( after the A can be thought of in a couple of ways.

You can get around this in this example with extra parenthesis that remove the compiler's ability to parse the code as a declaration.

B b((A(i)));

In C this isn't ambiguous because there is no function style of constructor call because there are no constructors. A is either the name of a type, or it's the name of a function. It can't be both.

share|improve this answer
I believe you could also do: B b = B(A(i)); – Bill Sep 4 '09 at 15:51
Yes, that would also work, is easier to understand and less ugly. :-) – Omnifarious Sep 4 '09 at 15:55
... but means a different thing - B b = B(...) requires B to have a copy constructor (even though the compiler can optimize the call to it away, it is still required to check), while B b(...) does not require it. – Pavel Minaev Sep 4 '09 at 16:51

It is a local function declaration according to C++ Standard 8.2/1. You could use implicit form of constructor to avoid this or the following:

B b(A(i)); // is equal to B b( A i );

// ---

// to declare variable of type B write:
B b = A(i);
// explicit form if you want:
B b( static_cast<A>(A(i)) );
// or
B b( (A)i );

C++ Standard 8.2/1:

The ambiguity arising from the similarity between a function-style cast and a declaration mentioned in 6.8 can also occur in the context of a declaration. In that context, the choice is between a function declaration with a redundant set of parentheses around a parameter name and an object declaration with a function-style cast as the initializer. Just as for the ambiguities mentioned in 6.8, the resolution is to consider any con- struct that could possibly be a declaration a declaration.

share|improve this answer
B b(A(i));

is equivalent to

B b(A i);

- the parenthesis around the argument name are optional -, which is equivalent to

B b(A);

- the parameter name is optional in function declarations. Hence it is a function declaration.

Typically you run into it with

X x();

- not default constructor as expected -, but there are more complicated cases when using temporaries all the way, e.g

vector<int> v(istream_iterator<int>(cin), istream_iterator<int>());
share|improve this answer
Unexpectedly, it turned into a good argument against using namespace :) – Pavel Minaev Sep 4 '09 at 16:53
Unfortunately it goes deeper than that. If cin had been std::cin then GCC determines that this line indeed constructs a vector object, whereas VC++ (2005) complains that std::cin cannot appear as parameter name. – UncleBens Sep 4 '09 at 17:20
@UncleBens, Unfortunately, GCC is wrong with that and VC++ is correct. See my defect report to clang: – ᐅ Johannes Schaub - litb ᐊ Sep 4 '09 at 21:06

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.