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I know the topic of pass by reference vs. pass by pointer is heavily covered... Pretty sure I understood all the nuances until I read this:

http://carlo17.home.xs4all.nl/cpp/const.qualifier.html

which reads (in case the link goes dead)

The prototype for foobar can have any of the following footprints:
void foobar(TYPE);      // Pass by value
void foobar(TYPE&);     // Pass by reference
void foobar(TYPE const&);   // Pass by const reference

Note that I put the const to the right of TYPE because we don't know if TYPE (this is not a template parameter, but rather for instance a literal char*) is a pointer or not!

what does the author mean by "Note that I put the const to the right of TYPE because we don't know if TYPE ... is a pointer or not!"

Everything I've read on this topic has been consistent in saying that:

void foodbar(TYPE const &)

is equivalent too

void foobar(const TYPE &)

If I understand the author correctly, s/he is saying that:

const int *X vs int * const X where pointer, X itself is const vs. what X points to is const?

If so, is this true?

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see stackoverflow.com/questions/2640446/… –  ognian Jun 4 '11 at 5:26
3  
The author misunderstands the language (the two are identical), and I honestly have no idea what he's trying to say. Yet another reason to get a book and not try to learn from some online article. –  GManNickG Jun 4 '11 at 5:26
1  
Buying a book doesn't guarantee that you have a quality resource, even popular books: seebs.net/c/c_tcn4e.html –  user505255 Jun 4 '11 at 5:31
    
in case you missed what I wrote, here it is again, "Everything I've read on this topic has been consistent." This includes several books. In particular "Professional C++" by Nicholas A. Solter, Scott J. Kleper on page 332 reads, "Remember that const int &zRef is equivalent to int const &zRef." amazon.com/Professional-C-Programmer-Nicholas-Solter/dp/… –  Eric Jun 4 '11 at 5:37

3 Answers 3

up vote 9 down vote accepted

If TYPE is a #define for something like int*, the placement of const does matter. In that case you will get const int* or int* const depending on the placement of const.

If TYPE is a typedef or a template parameter, the const will affect the whole type either way.

To me this looks more like another argument against macros, rather than a need for some specific style in declarations.

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+1, and yet I prefer using the const on the right hand side... for consistency. (But I have a stronger feeling for macros than for the position of the const!) –  David Rodríguez - dribeas Jun 4 '11 at 8:20
    
@David: Strong feelings for macros are common. I suspect I share yours. –  Greg Jun 4 '11 at 8:31
void foobar(TYPE const&);   // Pass by const reference

If TYPE is a pointer to a type ABC, then

void foobar(ABC* const&)

is different to

void foobar(const ABC* &)

I believe that is all the author is getting at.

EDIT

This also applies if the typedef is a pointer

typedef SomeStruct* pSomeStruct;
void foobar(pSomeStruct* const &); // const reference to a pointer
                                   // to a pointer to SomeStruct
void foobar(const pSomeStruct* &); // reference to a pointer
                                   // to a const pointer to const SomeStruct
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For this to make sense, you must be much more precise about what you mean by "TYPE is a pointer...". See my comment on the other answer. –  Karl Knechtel Jun 4 '11 at 6:23
    
@Karl: I do get your point about typedefs being a unit. However, what I said makes sense even if there's a pointer to a typedefed type. –  Chris Bednarski Jun 4 '11 at 21:36

Looking at the C++ FAQ Lite (as the article suggests), you read pointer declarations from right-to-left. So if TYPE is a pointer, the placement of the * does make a difference. Follow the link for the full story.

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Only if TYPE is a macro that expands to a pointer type. If it's a typedef or a template parameter, then const TYPE& means the same thing as TYPE const&, even if the actual type is a pointer type. That's part of the reason for using typedefs :) –  Karl Knechtel Jun 4 '11 at 6:22
    
The reference in the original question says: "Consider an arbitrary type TYPE." The author plainly was not referring to a macro. –  Gnawme Jun 4 '11 at 6:24
1  
So given that, the answer is simply wrong: a typedef'd type is treated as a unit, and you can't end up inserting consts into the middle of that type declaration. const TYPE& means the same as TYPE const&, even if TYPE could be "broken up" to offer another position for the const keyword to go. –  Karl Knechtel Jun 4 '11 at 6:30
    
Instead of TYPE, let's use Fred (to avoid the connotations of an all-caps type -- which screams MACRO! to me). So, to summarize from the FAQ: Fred const* p means "p points to a constant Fred": the Fred object can't be changed via p. Fred* const p means "p is a const pointer to a Fred": you can't change the pointer p, but you can change the Fred object via p. Fred const* const p means "p is a constant pointer to a constant Fred": you can't change the pointer p itself, nor can you change the Fred object via p. So for a pointer type, the placement of const relative to the type does matter. –  Gnawme Jun 4 '11 at 18:27
    
To the extent that "the placement of const relative to a pointer type does matter", it is not valid to use Fred to describe a pointer type. If Fred is a typedef for int*, then const Fred& means the same as Fred const&, which means the same as int* const&. It does not mean const int*&, which is the same as int const*&. –  Karl Knechtel Jun 6 '11 at 22:34

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