I'm getting a C++ compiler error which I'm not familiar with. Probably a really stupid mistake, but I can't quite put my finger on it.

Error:

test.cpp:27: error: member initializer expression list treated as compound expression
test.cpp:27: warning: left-hand operand of comma has no effect
test.cpp:27: error: invalid initialization of reference of type ‘const Bar&’ from expression of type ‘int’

Code:

  1 #include <iostream>
  2
  3 class Foo {
  4 public:
  5         Foo(float f) :
  6                 m_f(f)
  7         {}
  8
  9         float m_f;
 10 };
 11
 12 class Bar {
 13 public:
 14         Bar(const Foo& foo, int i) :
 15                 m_foo(foo),
 16                 m_i(i)
 17         {}
 18
 19         const Foo& m_foo;
 20         int m_i;
 21 };
 22
 23
 24 class Baz {
 25 public:
 26         Baz(const Foo& foo, int a) :
 27                 m_bar(foo, a)
 28         {}
 29
 30         const Bar& m_bar;
 31 };
 32
 33 int main(int argc, char *argv[]) {
 34         Foo a(3.14);
 35         Baz b(a, 5.0);
 36
 37         std::cout << b.m_bar.m_i << " " << b.m_bar.m_foo.m_f << std::endl;
 38
 39         return 0;
 40 }

Note: It looks like the compiler is evaluating the commas in line 27 like here: http://publib.boulder.ibm.com/infocenter/lnxpcomp/v8v101/index.jsp?topic=/com.ibm.xlcpp8l.doc/language/ref/co.htm

edit: Okay, I understand the problem as Alan explained it. Now, for extra imaginary points, can someone explain how the compiler (g++) came up with the error message it gave?

  • How did g++ come up with it's error message? No idea. Sun Studio gives this error line 27: Error: Too many initializers for m_bar. It's a little more informative. The short answer is that a lot of compilers error messages tend to be a little hard to read. – Glen May 18 '09 at 11:32
  • For the extra points: It came up with this error because the code is trying to construct a Bar with a constructor of (foo,a) . The error message is telling you the foo will be ignored and that it can't convert the int a into a Bar. I know this is an ancient question, but what you have marked as the answer is incorrect and misleading. I posted the code on how you would leave your declaration of m_bar alone and get this to compile. – Tod Feb 21 '14 at 7:17
up vote 15 down vote accepted

m_bar is a reference, so you can't construct one.

As others have noted, you can initialise references with the object it refers to, but you can't construct one like you're trying to do.

Change line 30 to

const Bar m_bar

and it'll compile / run properly.

m_bar is declared as a "const reference" and therefore can't be instantiated with the constructor you've supplied.

Consider making m_bar a member, or passing a pre-constructed Bar object to the constructor.

You can see the problem much more clearly in the following code:

struct B {
    B( int a, int x  ) {}
};

int main() {
    const B & b( 1, 2);
}

which produces the following errors with g++:

t.cpp: In function 'int main()':
t.cpp:6: error: initializer expression list treated as compound expression
t.cpp:6: error: invalid initialization of reference of type 'const B&' from expression of type int'

VC++ 6.0 gives the even more gnomic error:

 error C2059: syntax error : 'constant'

Simply put, you can't initialise references like that.

Although this question is old, for future readers I will point out that the item marked as answer is not correct. A reference can indeed be constructed.

In an initializer line the code m_bar(foo, a) is trying to use (foo,a) as a constructor for m_bar. The error tells you that foo will be ignored and you can't construct a Bar out of int a. The following correct syntax will compile error free:

m_bar (*new Bar(foo,a))
  • 1
    And how are you planning to memory-manage that? – Isaac Woods May 10 '15 at 12:13
  • The answer marked as correct is most certainly correct! While a reference can be constructed, it doesn't mean it should! (Though you're on the right track concerning the compiler message, I'll grant you that!) – Troyseph Aug 4 '15 at 14:36

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