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Languages such as Java explicitly use the interface keyword to denote interfaces. Having used Java, the concept seems useful enough to me to justify a keyword to enforce the concept.

Of course one can use a pure virtual class and label it as an interface. However, this keyword seems to be so useful and differentiated from a pure virtual class as to be useful. Perhaps it is being included in C++ 0x?

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@Casualcoder,just for your information, for better or for worse interfaces will not be included in C++ 0x. However Microsoft's Managed C++ does have them –  Robert Gould Jan 26 '09 at 4:08
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You did not say why you find it useful :) –  Iraimbilanja Jan 26 '09 at 18:29
    
If you really think the concept needs a keyword, just put /* Interface */ on all of your abstract classes. Why should every useful concept have a reserved word in the language? –  David Thornley Jan 26 '09 at 18:46
    
@Iraimbilanja: This comment is too small to contain the usefullness of interfaces. :) –  casualcoder Jan 26 '09 at 23:23
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And Iraimbilanja didn't ask what's useful about interfaces in general, but what's useful about them, which can't be done by a pure virtual class in C++. :) –  jalf Jan 28 '09 at 0:08

8 Answers 8

up vote 2 down vote accepted

The early OO features of C++ have long been neglected because it has since moved in a more interesting direction as a multi-paradigm language. The major focus for over a decade now has been templates and their implications, particularly in the standard library. Yes, programs would be more readable with an interface keyword. They would also be easier to maintain if there were override and new modifiers for methods that have the same name as base class methods (a la C#). But these are not interesting problems to modern C++ users, nor to those who contribute to the language design. The OO features are adequate, but not great, and are hardly used in the "newer" (post 1992) parts of the standard library, which in some ways serves as a guide to good style.

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Because C++ allows multiple inheritance, and because an interface is an abstract class which has all of it's members also abstract/virtual, C++ does not need it - a class can simply "extend" multiple other classes, any of which may be purely virtual (abstract).

Java and C#, on the other hand do not permit MI, since the designers of those languages felt that MI creates more problems than it solves. But it is still necessary for an object to "be" many things (the OOP is-a relationship), so interfaces provide a mechanism which allows an object to be many things, without inheriting multiple implementations - keeping the baby, but throwing out the bathwater.

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It is definitelly not generally accepted that MI creates more problems than it solves. In fact, many OO languages support MI: CLOS, Eiffel, Python, OCaml, etc... –  Nemanja Trifunovic Jan 26 '09 at 18:27
    
+1 @Nemanja Trifunovic - also, some of these languages have explained possible problems that might arise when using MI and proposed correct and reliable solutions to them. –  Daniel Daranas Jan 26 '09 at 18:30
    
Nor does C++ MI cause more problems than it solves when used properly, like many C++ features. C++ was designed to be the Swiss Army chainsaw of languages. –  David Thornley Jan 26 '09 at 18:44
    
lol a Swiss Army chainsaw indeed :D –  Iraimbilanja Jan 26 '09 at 18:48
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@Nemanja Trifunovic: Software Monkey did not say MI creates more problems than it solves. He said, "the designers of [Java and C#] felt that MI creates more problems than it solves." Upvoting SM's answer. –  Stevens Miller Mar 15 '12 at 19:07

It's redundant, since interfaces are represented by having any class member be pure virtual (=0).

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If all class methods are not virtual, it is not an interface. –  casualcoder Jan 26 '09 at 2:58
    
@casualcoder: correct. And if all class methods are virtual, it's effectively an interface. That's exactly correct. –  S.Lott Jan 26 '09 at 3:02
    
@S. Lott: what are you saying is correct? casualcoder's comment, or this answer? This answer does not describe an interface, the way you and casualcoder are describing one. –  Kip Jan 26 '09 at 18:33
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-1, it's not any class member, it's all class members, so the answer's misleading. –  orip Jan 26 '09 at 18:55

Adding an "interface" keyword would add complexity to the implementation without adding any truly useful capability; it would duplicate existing functionality. As others have said, it's just a pure virtual class. Java and C# had to have 'interface' to get a piece of what C++ already had. Philosophically, C++ is designed to enable programmers to write good software, not to prevent programmers from writing bad software. In my experience, the hoopla against MI is way overblown. Idiots misused it, like they misuse everything, and instead of blaming the idiots for being idiots, people blamed the tool.

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Because interface is strictly weaker than MI.

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That it is a weaker statement is what differentiates it from a class with all pure virtual methods. The compiler can even enforce the interface paradigm if it had a keyword to do so. –  casualcoder Jan 26 '09 at 23:15
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It is the philosophy of the C++ compiler to not enforce paradigms. –  Joshua Jun 16 '10 at 3:38

Interface appears in languages which don't have multiple inheritance, to partially cover for that. C++ already has multiple inheritance, so it doesn't need it.

Also, not all languages need to be the same. C++ has its own design and history and has its strong points and its weaknesses, just like Java, C#, and whatever. It wouldn't be useful to try to make all languages equal.

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Here is a short article from DDJ that touches on the distinction between a class and an interface.

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Actually the "interface" OO concept is the operations that an object could perform.

So languages such as Ruby or Python also have "interfaces" although they don't need to declare them as in Java.

In Java, the interface OO concept is matched with this "interface" keyword used to declare that an object will respond to a certain contract ( a number of methods )

C++ has the concept too, and even every Java object that doesn't implement any interface.

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