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While developing an application, I had the following problem. I wanted to return an empty std::list<string> when a given function pointer was null, or the result of that function otherwise. This is a simplified version of my code:

typedef std::list<std::string> (*ParamGenerator)();

std::list<std::string> foo() {
    /* ... */
    ParamGenerator generator = ...;
    if(generator)
        return generator();
    else
        return {};
}

However, I usually like to use the ternary (?:) operator in these cases, so I tried using it this way (as usual):

return generator ? generator() : {};

But got this error:

somefile.cpp:143:46: error: expected primary-expression before ‘{’ token
somefile.cpp:143:46: error: expected ‘;’ before ‘{’ token

Does this mean I can't use the ternary operator to return objects created using their constructor from an initializer_list? Is there any particular reason for that?

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1  
My advice would be: don't do this at all. Make it a generic algorithm that takes an iterator (whose type is a template parameter) so when you realize std::list was a bad choice, you can change to something else relatively painlessly. –  Jerry Coffin Apr 2 '12 at 19:46
    
@JerryCoffin I'll probably take that advice ;). I'd like to know if it is possible anyway(or why it isn't it case it can't be done). –  mfontanini Apr 2 '12 at 19:48
    
Okay, fair enough. It is an interesting question (for which I up-voted) even though I think the exact application probably isn't the best. –  Jerry Coffin Apr 2 '12 at 19:50
    
Actually, now that i think about it, i can't template this function. That function is actually an export from a shared object, so i need to know the return type during compilation. I agree that on a different context, a templated solution would be better. –  mfontanini Apr 2 '12 at 19:53

3 Answers 3

up vote 13 down vote accepted

Standard writes in 8.5.4.1: List-initialization

Note: List-initialization can be used

  • as the initializer in a variable definition (8.5)
  • as the initializer in a new expression (5.3.4)
  • in a return statement (6.6.3)
  • as a function argument (5.2.2)
  • as a subscript (5.2.1)
  • as an argument to a constructor invocation (8.5, 5.2.3)
  • as an initializer for a non-static data member (9.2)
  • in a mem-initializer (12.6.2)
  • on the right-hand side of an assignment (5.17)

Nothing of them is a ternary operator. The more minimalistic return 1?{}:{}; is invalid too, what you want is impossible.

Of course you can explicitly call the constructor std::list<std::string>{}, but I would recommend to write out the if-else-block as you already did.

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Great, that was the justification i was looking for. –  mfontanini Apr 2 '12 at 19:57

When you do {} the compiler has no knowledge of the type you are expecting, so it's just a meaningless expression that the compiler doesn't know what to do with. Both sides of the : are evaluated separately, and only then will the compiler complain if the types don't match. I would just do this:

return generator ? generator() : std::list<std::string>();
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If you really like the ternary operator, you can try something like this:

return generator ? generator() : decltype(generator()) { "default value", "generator was empry" };

it will work even if you change the return types later.

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