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I'm still earning my C++ wings; My question is if I have a struct like so:

struct Height
{
    int feet;
    int inches;
};

And I then have some lines like so:

Height h = {5, 7};
Person p("John Doe", 42, "Blonde", "Blue", h);

I like the initialization of structs via curly braces, but I'd prefer the above be on one line, in an anonymous Height struct. How do I do this? My initial naive approach was:

Person p("John Doe", 42, "Blonde", "Blue", Height{5,7});

This didn't work though. Am I very far off the mark?

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3  
This may just be an example, but, it's probably better to store the Height as a single inches field. When you need feet you can convert that to feet; it's just far easier to deal with a single unit than to juggle multiple units, especially since as it is now you can have multiple values that are equal but do not have the same representation (e.g., {2, 3} and {1, 15}). –  James McNellis Oct 26 '10 at 4:57
1  
C++1x comes with uniform initialization syntax which would support something like this. It's quite likely that your compiler already supports it. –  sbi Oct 26 '10 at 5:15
1  
Instead of Height{5,7} in the Person constructor, specify (struct Height){5,7} (if you're passing by reference) (or &(struct Height){5,7} if you're passing a pointer). You're basically casting the initializer list to the desired type. It's a C99+ feature, but should be usable with C++ as well. –  Erhhung Jan 31 at 7:25

2 Answers 2

up vote 14 down vote accepted

You can't, at least not in present-day C++; the brace initialization is part of the initializer syntax and can't be used elsewhere.

You can add a constructor to Height:

struct Height
{
    Height(int f, int i) : feet(f), inches(i) { }
    int feet, inches;
};

This allows you to use:

Person p("John Doe", 42, "Blonde", "Blue", Height(5, 7));

Unfortunately, since Height is no longer an aggregate, you can no longer use the brace initialization. The constructor call initialization is just as easy, though:

Height h(5, 7);
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Neat. I didn't know structs could have constructors/initializer-lists. –  Ben Lakey Oct 26 '10 at 4:59
10  
@byte: A struct is exactly the same thing as a class. The only difference is that the base classes and members are by default public for a struct and private for a class. –  James McNellis Oct 26 '10 at 5:00

Standard C++ (C++98, C++03) doesn't support this.

g++ supports is a language extension, and I seem to recall that C++0x will support it. You'd have to check the syntax of the g++ language extension and/or possibly C++0x.

For currently standard C++, just name the Height instance, as you've already done, then use the name.

Cheers & hth.,

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Is it automatically provided, or do you have to define a constructor that accepts an initializer_list argument? –  Ben Voigt Oct 26 '10 at 5:08
    
@Ben: no, you don't have to define a constructor to get the C++0x syntax. much of the point/goal is to have a uniform syntax that works the same in most every situation. check out the Wikipedia link given by @sbi earlier. Or, if you want the details, the latest draft is available from the C++ committe pages, in PDF format. –  Cheers and hth. - Alf Oct 26 '10 at 5:32

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