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Look at this code snippet:

Size::Size(int iSetWidth, int iSetHeight)
:iWidth(iSetWidth),
iHeight(iSetHeight)
{
}

Supposedly, this means the same thing as:

Size::Size(int iSetWidth, int iSetHeight)
{
    iWidth=iSetWidth;
    iHeight=iSetHeight;
}

Why would you use the former or the latter? And what is the name of the former?

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3 Answers 3

up vote 17 down vote accepted

No, they don't mean exactly the same.

When a constructor is executed, before entering the code block (the code between the curly braces), it constructs all object data members. What you do in the initializers (the code after the colon and before the curly braces) is to specify which constructors to use for those members. If you don't specify a constructor for a specific data member, the default constructor will be used.

So, if you use the initialization list (first example), the right constructors will be used for each member and no additional code is necessary. If you don't, first the default constructor is used and then the code inside the curly braces is executed.

In summary:

  1. In your first example, each member is initialised using the appropriate constructor, probably the copy constructor.
  2. In your second example, each member is constructed using the default constructor, and then some additional code is executed to initialise it, probably the assignment operator.

EDIT: Sorry, forgot to answer your questions in the last line.

The name of the code between the colon and the curly braces is initialisation list.

If you know which is the right constructor for a variable or data member, by all means use it. This is the reason why most classes have different constructors instead of just a default constructor. So you are better off using the initialization list.

The initialisation list is almost never slower than the other technique, and can easily be faster. A well known rule when writing code is "don't optimize prematurely", but there is a not so well known counterpart: don't pessimize prematurely. If you have two options for writing a piece of code and one of them can be better than the other, but does not involve additional work or complexity, use it. In your example there is no difference, since you are using a built-in type (int). But if you were using classes, there would be a difference, so get used to the initialization list.

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1  
In addition to what Gorpik wrote (+1 from me for that, BTW): In languages such as Java and C#, where all variables are references, this doesn't matter, because member initialization is just an address assignment anyway. In C++, class data members are often genuine objects, that are initialized in-place, rather than references (pointers) initialized to refer to objects on the heap. For example, for a reasonable implementation of std::string, default-initialization followed by assignment might be significantly slower than initialization with the right data immediately. –  sbi Sep 2 '10 at 11:09
    
@sbi: Not all variables are references in C#. The language has value-types as well :) –  jalf Sep 2 '10 at 12:04
    
@jalf: I was deliberately simplifying things a bit. –  sbi Sep 2 '10 at 19:18

THe former is called initilazation lists. You can get plentyof articles for that.

The particular reasons for using intializer lists are given here http://www.learncpp.com/cpp-tutorial/101-constructor-initialization-lists/

You can refer Effective C++ to get full insight into intializer lists. Hope it is clear.

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2  
Like this. –  Péter Török Sep 2 '10 at 10:05
    
^^ very much this ^^ –  Philip Potter Sep 2 '10 at 10:07

BTW, Bjarne Stroustrup said in The C++ Programming Language that some efficiency may be gained with initialization list and he recommended us to use initialization list!

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1  
If you can provide a reference for that, you might get some upvotes –  Chris McCauley Aug 20 '12 at 12:55

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