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Consider the following code:

class Test
{
public:
   //1
   int kon1() const;

   //2
   const int kon2();

   //3
   static int kon3();
};

As far as I know, the difference between function 1 and 2 is that :

  1. Function 1 says that the function will not be able to change any data member's value
  2. Function 2 says that it will return a const int

(If I have wrong understanding, please correct me)

My question is : As we can see there, if we want to make a function to be const function, the const keyword is placed behind. But why in function 3, the static function, the static keyword is placed in front?

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2  
Because that's how the language is defined? (Specifically, this is inherited from C.) –  Oliver Charlesworth Apr 3 at 6:05
    
Function 1 says that none of variables or rather state of object shouldn't change but it can change state for mutable variables. –  Ardel Apr 3 at 6:07
1  
Your code answers your own question - it can't be at the front or you couldn't tell the difference between a const function returning int and a non-const function returning const int. The choices really can seem pretty arbitrary though... e.g. virtual is in front while override is after.... –  Tony D Apr 3 at 6:08
    
@OliCharlesworth I do know that format is defined, but I am just not so satisfied by that answer –  William Apr 3 at 6:13
    
@TonyD Thanks for clarifying my understanding, but I am asking the difference between function 1 2 3, as bold in my question :) –  William Apr 3 at 6:15

5 Answers 5

up vote 2 down vote accepted

For const member functions must have the const keyword afterwards to avoid ambiguity with the return type.

For static, virtual and other keywords having a dramatic effect on how the function works, it's desirable to list it first so it's easier to see in the class definition. For example, we can quickly scan through a list of member functions and spot all the static functions, or all the virtual ones - aiding our understanding of the overall use of the function.

Marking a member function const (or e.g. an override) is a less crucial distinction - if you have a non-const object you can invoke functions whether they're const or not, the appropriate const-ness is often obvious to the reading developer as they absorb the function return type and identifier, and in some corporate/project coding standards mutating functions are grouped above const-accessors, or const and non-const versions of the same member function are side by side to emphasise their similarities - then the differet const-ness stands out more.

All these factors combine to make the actual choices in C++ optimal for development, but you're right in observing that they're a bit inconsistent.

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thanks for the great explanation :D –  William Apr 4 at 5:43

You are mixing two concepts i.e. Storage Class with Storage Type.

C++ have following kind of storage classes

auto, register, static, extern & mutable

And following kind of storage type (based on what u can do with on storage)

read only (can be initialized ) --> this is const

read and write --> this is non const.

So when u define a variable/function u have tell in advance what kind of storage type u want to associate. Thats why u put static as first keyword in ur code.

Hope this helps.

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The keyword static does not modify the variable's type. It modifies the memory address in which it will be located. It is used identically for function-type variables, and for data-type variables:

static int n;     // data
static int n ();  // function

The keyword const does modify the variable's type. For function-type variables, this keyword has two possible meanings:

  1. modify the function's return value as type const:

    const int n (); // function can be invoked from non-const objects only, and returns a const value

  2. modify how this function may be invoked

    int n () const; // function can be invoked const and non-const objects alike, and returns a non-const value`

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In the second point " function can be invoked only from const objects". Think this can be confusing or my concept is not clear. I think it can be invoked from an object which was not declared const. Only it will act as a const object because no member variable can be modified inside that function except mutable variables. –  Tahlil Apr 3 at 6:44
    
I edited my answer and corrected it. Thanks –  Gil Elad Apr 3 at 6:52
    
It doesn't "modify the memory address". When used in a function, it modifies the lifetime of the object. When used outside of a function, it modifies the visibility of the object or function. –  Matt McNabb Apr 3 at 8:51
 int kon1() const;

This function is readonly function intended to work on const data only.

   const int kon2();

This function can work on modifiable object but it returns type is readonly and caller can not modify this.

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int kon1() const this one cannot change anyvalue of any variable in the class.

const int kon2() no idea.

static int kon3() this function has a lot to offer. at first it is placed in a defined place in a memory and can be used without creating an instance of the class. and all the instances of class test have only one instance of this function.

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Returning by const value is usually meant to exclude the possibility of using returned value as an lvalue. Your static definition is correct related to variables (which are placed in a specific memory location to be a single instance for all objects of related class), but functions be it kon1 or kon2 are in single instance anyway in memory, just they need an object to be called for. –  MojaveWastelander Apr 3 at 6:13
    
thanks. i too am learning c++ so it was very helpful from your side –  Naveed Apr 3 at 6:37
    
Functions don't have instances –  Matt McNabb Apr 3 at 8:52

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