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If in C++ I have a class longUnderstandableName. For that class I have a header file containing its method declaration. In the source file for the class, I have to write longUnderstandableName::MethodA, longUnderstandableName::MethodB and so on, everywhere.

Can I somehow make use of namespaces or something else so I can just write MethodA and MethodB, in the class source file, and only there?

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4 Answers 4

typedef longUnderstandableName sn;

Then you can define the methods as

void sn::MethodA() {}
void sn::MethodB() {}

and use them as

sn::MethodA();
sn::MethodB();

This only works if longUnderstandableName is the name of a class. It works even if the class is deeply embedded in some other namespace.

If longUnderstandableName is the name of a namespace, then in the namespace (or source file) where you want to use the methods, you can write

using namespace longUnderstandableName;

and then call methods like

MethodA();
MethodB();

You should be careful not to use a using namespace foo; in header files, because then it pollutes every .cpp file that we #include the header file into, however using a using namespace foo; at the top of a .cpp file is definitely allowed and encouraged.

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Does it really work? I mean typedef is a lifesaver to make abbrreviations, but declarations usually tend to need the original names. Have you used this approach? –  Basilevs Nov 1 '10 at 8:50
    
@Basilevs: Declarations don't need the original names. A typedef doesn't "create a new type" that's different from the old one -- it just creates a new name that refers to the same old type. People use this approach all the time to translate something like std::map<std::string,std::string>::iterator into something shorter. (And std::map<std::string,std::string>::iterator already usually is a typedef for some class that's an implementation detail in the STL. –  Ken Bloom Nov 1 '10 at 13:49
    
But that is not declaration of iterator. What you quoted is a usage of type iterator declared elsewhere. –  Basilevs Nov 1 '10 at 14:06
    
@Baslievs: it's common to see someone typedef std::map<std::string,std::string>::iterator MapIt so that they can refer to the MapIt type in loops and save some typing. It also used to be common in C to see someone typedef Foo* FooPtr, though I don't know why people thought this typedef was useful. –  Ken Bloom Nov 1 '10 at 14:16
2  
@Basilevs was asking if the typedef could be used when defining member functions, not when using them, which was (I think) the original question. In other words, is the following code correct typedef longUnderstandableName sn; void sn::MethodA() {}? (Apparently, it is.) –  Luc Touraille Apr 5 '13 at 7:31

I'm not sure I'd recommend it, but you could use a macro like:

#define sn LongUnderstandableName

void sn::MethodA(parameters) { ... }
int sn::MethodB(parameters) { ... }

and so on. One of the bad points of macros is that they don't respect scope, but in this case, the scope you (apparently) want is the source file, which happens to correspond (pretty closely) with the scope of a macro.

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1  
+1, it's a fast solution, but I would not recommend it either. It's a recipe for disaster. –  Stefano Borini Oct 31 '10 at 22:58
1  
Yes -- I'd be much more likely to define it as a macro in the editor, so I only have to type the short name, and it's automatically expanded to the real one -- but nobody else has to be aware of that. –  Jerry Coffin Oct 31 '10 at 23:04
    
You could use a typedef instead. –  Ken Bloom Oct 31 '10 at 23:13
    
-1 to make typedef answer better :) –  Basilevs Nov 1 '10 at 8:48
    
While you could use typedef instead, and there are times/situations where typedef provides a real advantage, this does not seem to be one of them. For this situation, typedef is an equivalent answer, not a better one. –  Jerry Coffin Nov 1 '10 at 15:09

Inside the methods of the classes, you can use the name without qualification, anyway: just drop the longUnderstandableName:: prefix.

In functions inside the class source file that are not methods, I suggest to introduce file-scope static inline functions, like so:

inline type MethodA(type param){
    return longUnderstandableName::MethodA(param);
}

Then you can call MethodA unqualified; due to the inline nature, this likely won't cost any runtime overhead.

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Yes, but this forces you to define the method inside the header, which is inefficient because it forces recompilation of all clients whenever the class changes. –  Billy ONeal Oct 31 '10 at 23:09
1  
No, it doesn't force you to do that. In fact, you shouldn't define the method in the header, but at the top of the class source file - else the shortcut would be globally available, which the OP doesn't want to happen. –  Martin v. Löwis Oct 31 '10 at 23:20
    
Works only for static members. –  Basilevs Nov 1 '10 at 14:08
    
@Basilevs: Sure, but the OP apparently is talking about static members, anyway, since for instances, he wouldn't normally need to type the class name at all in order to call a method. –  Martin v. Löwis Nov 1 '10 at 16:59

Well, yes, once you understand namespaces.

Instead of naming your class MyBonnieLiesOverTheOcean, instead set up the following:

namespace My { namespace Bonnie { namespace LiesOverThe {
   class Ocean { ... };
} } }

Now, when defining your methods, you put the same namespaces around the whole file, and you write:

Ocean::SomeMethod() ...

When using the class from outside all the namespaces, it's:

My::Bonnie::LiesOverThe::Ocean

If you need to reference a lot of things from some other namespace in some source file, you can use the 'use' directive to ditch the prefixes.

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That's a nice idea but it must suck to type all those :: :) –  Stefano Borini Oct 31 '10 at 22:57
    
Well, that's why we have 'use'. –  bmargulies Oct 31 '10 at 22:57
    
Ah ok, yes. You can say use My::Bonnie::LiesOverThe; and then work on the last nesting level –  Stefano Borini Oct 31 '10 at 22:59
    
And if you really want to, you could do namespace mbl = My::Bonnie::LiesOverThe; in some source files and reference the class as mbl::Ocean. –  JAB May 6 '14 at 14:17

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