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Labelled as homework because this was a question on a midterm I wrote that I don't understand the answer to. I was asked to explain the purpose of each const in the following statement:

const char const * const GetName() const { return m_name; };

So, what is the explanation for each of these consts?

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3  
The code was probably different, as what you posted is incorrect. It was most probably something in the line of class X { const char * const getName() const { return m_name; } ... –  David Rodríguez - dribeas Dec 2 '09 at 20:03
    
Wait, did you write the midterm? –  tster Dec 2 '09 at 20:03
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The double const in const char const is valid in C99, but it's not valid in C++. Only one const allowed, but which one you remove doesn't matter. –  Johannes Schaub - litb Dec 2 '09 at 20:05
    
@Sorry, typo. yes const goes before the function. I wrote the midterm months ago. –  4501 Dec 2 '09 at 20:06
1  
@tster: "writing a test" is how Canadians (and probably British and several other nationalities) refer to what Americans say as "taking a test". It doesn't mean the same thing to them as "creating the test", so 4501 isn't saying that they created this test and don't understand the question. –  David Stone Apr 21 '12 at 18:22

8 Answers 8

up vote 5 down vote accepted

Take them from the right. The one before the ; tells the client this is a design level const i.e. it does not alter the state of the object. (Think of this as a read-only method.)

Okay, now the return value:

const char const *const

This is a constant pointer to okay ... here we go boom! You have an extra const -- a syntax error. The following are equivalent: const T or T const. If you take out a const you get a constant pointer to a constant characters. Does that help?

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To clarify, the T in your example is the char, not the char*. So putting it together: const char *const is equivalent to char const * const. –  Marcin Dec 2 '09 at 20:15
    
This flat out wouldn't work? My prof is a sneaky man, apparently.. –  4501 Dec 2 '09 at 20:16
    
constant pointer to a constant characeterS or character? –  4501 Dec 2 '09 at 20:18
    
@4501: No. Try this out in a conforming compiler. –  dirkgently Dec 2 '09 at 20:18
    
It points to both a constant character and constant characterS. The difference is only made relevant by context since you can get any address in memory by indexing that pointer. –  Dan Olson Dec 2 '09 at 20:25

You have one more const than is syntactically allowed, that code would not compile. Remove the "const" after "char" and before the "*". Also, the last const must come before the function body. It helps to read things like this from right to left.

const char * const GetName() const { return m_name; };

You have a const function (i.e., the function does not alter the state of the class.), which returns a const pointer to a const char.

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The last const should also be moved before the method body, and to be precise it cannot be a function, but rather a method. –  David Rodríguez - dribeas Dec 2 '09 at 20:05
    
@dribeas, that's a function. Methods do not exist in C++. –  Johannes Schaub - litb Dec 2 '09 at 20:06
    
Yes, you are right about the body, but not about the method vs function statement. –  Ed S. Dec 2 '09 at 20:06
    
Downvoted? Why? –  Ed S. Dec 2 '09 at 20:07
    
It should compile fine. Did u check? –  Drakosha Dec 2 '09 at 20:07

(1)const char (2)const * (3)const GetName() { return m_name; } (4)const;

  1. The contents of char array is const. This is good when you return pointer of the object member. Since you give pointer to your member for 3rd party, you want to prevent it to be changed from outside.
  2. This form is not used frequently and essentially same as (1)
  3. Our pointer to char array is const, so you can not change where the pointer points too.
  4. it qualifies the GetName() intself, meaning that the method thus not change the class it applied too. Thus it can be called for const object of this type only. This form typically used as GetName(...) const.

As already mentioned in another answers the trick to "remember" it it read from right to left:

  • const T * - pointer to const T
  • T * const - const pointer to T
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1  
Incorrect: (1) and (2) are equivalent. That is, const T and T const are the same. On the other hand T const * and T * const are different, one marks the T as constant, the other marks the pointer as constant. –  David Rodríguez - dribeas Dec 2 '09 at 20:07
    
Upps, you are right, corrected –  dimba Dec 2 '09 at 20:10

Edit: Looks like I incorrectly pasted the code into Comeau, or it was edited in the original answer to be correct. In either case I'm preserving the answer below as if the code were incorrect.

Comeau online compiler gives these results:

"ComeauTest.c", line 4: error: type qualifier specified more than once
const char const * const GetName() { return m_name; } const; ^

"ComeauTest.c", line 4: warning: type qualifier on return type is meaningless const char const * const GetName() { return m_name; } const; ^

"ComeauTest.c", line 4: error: declaration does not declare anything const char const * const GetName() { return m_name; } const;

What this means is that your statement is malformed.

const char const * const GetName() { return m_name; } const;

The first and second consts mean the same thing. You can't specify the same qualifier more than once so one of these would have to be removed for the code to compile. Both of these consts specify that the values pointed to by the pointer returned by GetName cannot be modified, making code like this invalid:

const char* name = c.GetName();
name[0] = 'a';

The third const specifies that the pointer returned by GetName() itself cannot be modified, but as Comeau points out, this doesn't accomplish anything on a return value because the return value is a copy of the pointer rather than the pointer itself, and can be assigned to a non-const pointer.

The fourth const is misplaced, it should be between GetName and the function body like this:

const char* GetName() const { return m.name; }

This const specifies that no members of the class will be modified during the execution of GetName. Assuming that GetName a member of the class Person, this code would be allowed:

const Person& p;
p.GetName();

Without this const, the above code would fail.

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+1 for pointing out the meaninglessness of making the returned pointer unmodifiable. GCC also warns about it (code still won't compile if you treat warnings as errors :) ). It is important to know what these consts mean, but a function's return type seems to be a rather unfortunate choice for demonstration. –  UncleBens Dec 2 '09 at 23:24

It is possible that you missed "*" symbol before second const keyword.

const char * const * const GetName() const { return m_name; };

So it means that the function returns constant pointer to constant pointer to constant character.

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last const:

  • Function does not change the privates of the class

one after last const:

  • It's a constant pointer (i.e. the place it points to is constant)

second const:

  • The function returns a const char (i.e. the content of the char is constant)

First:

  • No idea?

So to be complete: The function returns a constant pointer (always same location) to a constant char(always same content) and the function does not modify the state of the class.

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A const method cannot change ANY members of the class, nor call any non-const methods. –  quamrana Dec 2 '09 at 20:04
    
@quamrana: A const method can change data members that are static or mutable. –  Jerry Coffin Dec 2 '09 at 20:15
    
@Jerry: You're right. Let me re-phrase: A const method cannot change any public, protected or private members unless they are static or mutable. –  quamrana Dec 2 '09 at 21:25

const(1) char const(2) * const GetName() { return m_name; } const(3);

const char * const result = aaa.GetNAme();

3 - const method, not allowed to change members nor call any non-const methods.

1 - does not allow to modify inside the pointer, i.e. *result = ..

2 - does not allow to move the pointer, i.e. result = NULL

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Given:

const char const * const GetName() const { return m_name; };

The first and second const are equivalent, but only one of them is allowed -- i.e. you can put const before or after the type (char in this case) but only one or the other, not both. Either, however, says that the characters pointed to by the pointer cannot be written to.

The const after the '*' means the pointer returned by the function cannot itself be modified. This is rarely seen on a return type -- what you're returning is a value, which can't be modified in any case (it's normally just assigned to some variable). This can, however, be meaningful in other contexts.

The third const is only allowed on a member function. It says that when this function is called, the this pointer that's received will be a T const * const rather than a T * const, so the member function can only modify static or mutable members of the object, and if it invokes other member functions, they must be const as well. There is, however, a caveat, that it can also cast away the const'ness, in which case it can modify what it sees fit (with the further caveat that if the object was originally defined as const, rather than just having a const pointer to a normal (non-const) object, the results will be undefined).

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