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How far do you go with const? Do you just make functions const when necessary or do you go the whole hog and use it everywhere? For example, imagine a simple mutator that takes a single boolean parameter:

void SetValue(const bool b) { my_val_ = b; }

Is that const actually useful? Personally I opt to use it extensively, including parameters, but in this case I wonder if it's worthwhile?

I was also surprised to learn that you can omit const from parameters in a function declaration but can include it in the function definition, e.g.:

.h file

void func(int n, long l);

.cpp file

void func(const int n, const long l)

Is there a reason for this? It seems a little unusual to me.

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6  
I agree. :-) (With the question, not the last comment!) If a value shouldn't be changed in the body of the function, this can help stop silly == or = bugs, you should never put const in both,(if it's passed by value, you must otherwise) It's not serious enough to get into arguments about it though! –  Chris Huang-Leaver Apr 20 '09 at 14:24
9  
@selwyn: Even if you pass a const int to the function, though, it is going to be copied (since it's not a reference), and so the const-ness doesn't matter. –  jalf May 4 '09 at 23:20
1  
Same debate happening in this question: stackoverflow.com/questions/1554750/… –  Partial Nov 12 '09 at 15:34
3  
I realize this post is a couple years old, but as a new programmer, I was wondering this very question and I stumbled upon this conversation. In my opinion, if a function shouldn't change a value, whether its a reference or a copy of the value/object, it should be const. It's safer, it's self-documenting, and it's more debug friendly. Even for the simplest function, which has one statement, I still use const. –  user898058 Sep 19 '11 at 20:45
4  
Superfluous const is an API-cluttering eyesore, an annoying nag, a shallow and meaningless promise, an unnecessary hindrance, and occasionally leads to very dangerous mistakes. I explain why in my answer. –  Adisak Jun 14 '12 at 15:47

27 Answers 27

up vote 56 down vote accepted

The reason is that const for the parameter only applies locally within the function, since it is working on a copy of the data. This means the function signature is really the same anyways. It's probably bad style to do this a lot though.

I personally tend to not use const except for reference and pointer parameters. For copied objects it doesn't really matter, although it can be safer as it signals intent within the function. Its really a judgement call. I do tend to use const_iterator though when looping on something when I don't intend on modifying it, so I guess to each his own, as long as const correctness for reference types is rigorously maintained.

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19  
I can't agree with the 'bad style' part. Dropping const from function prototypes has the advantage that you don't need to alter the header file if you decide to drop const from implementation part later. –  Michał Górny Jan 9 '10 at 11:53

"const is pointless when the argument is passed by value since you will not be modifying the caller's object."

Wrong.

It's about self-documenting your code and your assumptions.

If your code has many people working on it and your functions are non-trivial then you should mark "const" any and everything that you can. When writing industrial-strength code, you should always assume that your coworkers are psychopaths trying to get you any way they can (especially since it's often yourself in the future).

Besides, as somebody mentioned earlier, it might help the compiler optimize things a bit (though it's a long shot).

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12  
Totally agree. It's all about communicating with people and restricting what could be done with a variable to what should be done. –  Len Holgate Sep 22 '08 at 21:08
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I've voted this one down. I think you dilute what you're trying to indicate with const when you apply it to simple pass by value arguments. –  tonylo Sep 23 '08 at 8:02
11  
I've voted this one up. Declaring the parameter 'const' adds semantic information to the parameter. They highlight what the original author of the code had intended and this will aid maintenance of the code as time goes by. –  Richard Corden Sep 23 '08 at 8:20
6  
@tonylo: you misunderstand. This is about marking a local variable as const inside a block of code (that happens to be a function). I would do the same for any local variable. It is orthogonal to having an API that is const-correct, which is indeed also important. –  rlerallut Sep 23 '08 at 8:50
20  
And it can catch bugs inside the function -- if you know that a parameter shouldn't be changed, then declaring it const means that the compiler will tell you if you accidently modify it. –  Adrian Oct 1 '08 at 1:03

The following two lines are functionally equivalent:

int foo (int a);
int foo (const int a);

Obviously you won't be able to modify a in the body of foo if it's defined the second way, but there's no difference from the outside.

Where const really comes in handy is with reference or pointer parameters:

int foo (const BigStruct &a);
int foo (const BigStruct *a);

What this says is that foo can take a large parameter, perhaps a data structure that's gigabytes in size, without copying it. Also, it says to the caller, "Foo won't* change the contents of that parameter." Passing a const reference also allows the compiler to make certain performance decisions.

*: Unless it casts away the const-ness, but that's another post.

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Sometimes (too often!) I have to untangle someone else's C++ code. And we all know that someone else's C++ code is a complete mess almost by definition :) So the first thing I do to decipher local data flow is put const in every variable definition until compiler starts barking. This means const-qualifying value arguments as well, because they are just fancy local variables initialized by caller.

Ah, I wish variables were const by default and mutable was required for non-const variables :)

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6  
+1: Great answer –  Partial Nov 12 '09 at 15:47

When I coded C++ for a living I consted everything I possibly could. Using const is a great way to help the compiler help you. For instance, const-ing your method return values can save you from typos such as:

foo() = 42

when you meant:

foo() == 42

If foo() is defined to return a non-const reference:

int& foo() { /* ... */ }

The compiler will happily let you assign a value to the anonymous temporary returned by the function call. Making it const:

const int& foo() { /* ... */ }

Eliminates this possibility.

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5  
With what compiler did that work? GCC gives an error while trying to compile foo() = 42: error: lvalue required as left operand of assignment –  gavrie Feb 9 '10 at 8:42
    
This is just incorrect. foo() = 42 is the same as 2 = 3, i.e. a compiler error. And returning a const is completely pointless. It doesn't do anything for a built-in type. –  Josh Sep 19 '11 at 4:14
2  
I've encountered this usage of const and I can tell you, in the end it produces way more hassle than benefits. Hint: const int foo() is of a different type than int foo(), which brings you into big trouble if you are using things like function pointers, signal/slot systems or boost::bind. –  Mephane Sep 23 '11 at 11:32
1  
Yes, you really can do foo() = 42. Code here: gist.github.com/1401793 –  Avdi Nov 28 '11 at 20:02
1  
I've corrected the code to include the reference return value. –  Avdi Nov 28 '11 at 20:05

const should have been the default in C++. Like this :

int i = 5 ; // i is a constant

var int i = 5 ; // i is a real variable
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6  
Exactly my thoughts. –  Constantin Oct 22 '08 at 8:43
15  
Compatibility with C is too important, at least for the people that design C++, to even consider this. –  Roger Pate Mar 16 '10 at 4:57
1  
Interesting, I had never thought of that. –  Dan Sep 18 '12 at 20:56

Extra Superfluous const are bad from an API stand-point:

Putting extra superfluous const's in your code for intrinsic type parameters passed by value clutters your API while making no meaningful promise to the caller or API user (it only hampers the implementation).

Too many 'const' in an API when not needed is like "crying wolf", eventually people will start ignoring 'const' because it's all over the place and means nothing most of the time.

The "reductio ad absurdum" argument to extra consts in API are good for these first two points would be is if more const parameters are good, then every argument that can have a const on it, SHOULD have a const on it. In fact, if it were truly that good, you'd want const to be the default for parameters and have a keyword like "mutable" only when you want to change the parameter.

So lets try putting in const whereever we can:

void mungerum(char * buffer, const char * mask, int count);

void mungerum(char * const buffer, const char * const mask, const int count);

Consider the line of code above. Not only is the declaration more cluttered and longer and harder to read but three of the four 'const' keywords can be safely ignored by the API user. However, the extra use of 'const' has made the second line potentially DANGEROUS!

Why?

A quick misread of the first parameter char * const buffer might make you think that it will not modify the memory in data buffer that is passed in -- however, this is not true! Superfluous 'const' can lead to dangerous and incorrect assumptions about your API when scanned or misread quickly.


Superfluous const are bad from a Code Implementation stand-point as well:

#if FLEXIBLE_IMPLEMENTATION
       #define SUPERFLUOUS_CONST
#else
       #define SUPERFLUOUS_CONST             const
#endif

void bytecopy(char * SUPERFLUOUS_CONST dest,
   const char *source, SUPERFLUOUS_CONST int count);

If FLEXIBLE_IMPLEMENTATION is not true, then the API is “promising” not to implement the function the first way below.

void bytecopy(char * SUPERFLUOUS_CONST dest,
   const char *source, SUPERFLUOUS_CONST int count)
{
       // Will break if !FLEXIBLE_IMPLEMENTATION
       while(count--)
       {
              *dest++=*source++;
       }
}

void bytecopy(char * SUPERFLUOUS_CONST dest,
   const char *source, SUPERFLUOUS_CONST int count)
{
       for(int i=0;i<count;i++)
       {
              dest[i]=source[i];
       }
}

That’s a very silly promise to make. Why should you make a promise that gives no benefit at all to your caller and only limits your implementation?

Both of these are perfectly valid implementations of the same function though so all you’ve done is tied one hand behind your back unnecessarily.

Furthermore, it’s a very shallow promise that is easily (and legally circumvented).

inline void bytecopyWrapped(char * dest,
   const char *source, int count)
{
       while(count--)
       {
              *dest++=*source++;
       }
}
void bytecopy(char * SUPERFLUOUS_CONST dest,
   const char *source,SUPERFLUOUS_CONST int count)
{
    bytecopyWrapped(dest, source, count);
}

Look, I implemented it that way anyhow even though I promised not to – just using a wrapper function. It’s like when the bad guy promises not to kill someone in a movie and orders his henchman to kill them instead.

Those superfluous const’s are worth no more than a promise from a movie bad-guy.


But the ability to lie gets even worse:

I have been enlightened that you can mismatch const in header (declaration) and code (definition) by using spurious const. The const-happy advocates claim this is a good thing since it lets you put const only in the definition.

// Example of const only in definition, not declaration
class foo { void test(int *pi); };
void foo::test(int * const pi) { }

However, the converse is true... you can put a spurious const only in the declaration and ignore it in the definition. This only makes superfluous const in an API more of a terrible thing and a horrible lie - see this example:

class foo
{
    void test(int * const pi);
};

void foo::test(int *pi) // Look, the const in the definition is so superfluous I can ignore it here
{
    pi++;  // I promised in my definition I wouldn't modify this
}

All the superfluous const actually does is make the implementer's code less readable by forcing him to use another local copy or a wrapper function when he wants to change the variable or pass the variable by non-const reference.

Look at this example. Which is more readable ? Is it obvious that the only reason for the extra variable in the second function is because some API designer through in a superfluous const ?

struct llist
{
    llist * next;
};

void walkllist(llist *plist)
{
    llist *pnext;
    while(plist)
    {
        pnext=plist->next;
        walk(plist);
        plist=pnext;    // This line wouldn't compile if plist was const
    }
}

void walkllist(llist * SUPERFLUOUS_CONST plist)
{
    llist * pnotconst=plist;
    llist *pnext;
    while(pnotconst)
    {
        pnext=pnotconst->next;
        walk(pnotconst);
        pnotconst=pnext;
    }
}

Hopefully we've learned something here. Superfluous const is an API-cluttering eyesore, an annoying nag, a shallow and meaningless promise, an unnecessary hindrance, and occasionally leads to very dangerous mistakes.

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1  
Why the downvotes? It's much more helpful if you leave a brief comment on a downvote. –  Adisak Feb 22 '13 at 23:26
    
The whole point of using const argument is to make the marked line fail (plist = pnext). It is a reasonable safety measure to keep function argument immutable. I do agree with your point that they are bad in function declarations (since they are superflous), but they can serve their purposes in the implementation block. –  touko Mar 4 '13 at 20:49
    
There is no reason to clutter your API to expose internal implementation details. Simple enough to make your implementation take parameters T parm_foo and assign immediately to a const &T foo=parm_foo and then use foo in the function -- you can enforce constantness of your parameters without unnecessary API clutter for your end users. –  Adisak Mar 5 '13 at 0:39
1  
@Adisak I don't see anything wrong with your answer, per se, but it seems from your comments that you are missing an important point. The function definition / implementation is not part of the API, which is only the function declaration. As you have said, declaring functions with const parameters is pointless and adds clutter. However users of the API may never need to see its implementation. Meanwhile the implementer may decided to const-qualify some of the parameters in the function definition ONLY for clarity, which is perfectly fine. –  jw013 Aug 15 '13 at 19:17
1  
@jw013 is correct, void foo(int) and void foo(const int) are the exact same function, not overloads. ideone.com/npN4W4 ideone.com/tZav9R The const here is only an implementation detail of the function body, and has no effect on overload resolution. Leave const out of the declaration, for a safer and neater API, but put const in to the definition, if you intend not to modify the copied value. –  Oktalist Feb 9 at 0:07

There is a good discussion on this topic in the old "Guru of the Week" articles on comp.lang.c++.moderated here.

The corresponding GOTW article is available on Herb Sutter's web site here.

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Herb Sutter is a really smart guy :-) Definitely worth the read and I agree with ALL of his points. –  Adisak Jun 14 '12 at 15:59
1  
Well good article but I disagree with him about the arguments. I make them const as well because they are like variables, and I never want anyone making any changes to my arguments. –  QBziZ Jul 3 '12 at 12:31

I use const on function parameters that are references (or pointers) which are only [in] data and will not be modified by the function. Meaning, when the purpose of using a reference is to avoid copying data and not to allow changing the passed parameter.

Putting const on the boolean b parameter in your example only puts a constraint on the implementation and doesn't contribute for the class's interface (although not changing parameters is usually advised).

The function signature for

void foo(int a);

and

void foo(const int a);

is the same, which explains your .c and .h

Asaf

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const is pointless when the argument is passed by value since you will not be modifying the caller's object.

const should be preferred when passing by reference, unless the purpose of the function is to modify the passed value.

Finally, a function which does not modify current object (this) can, and probably should be declared const. An example is below:

int SomeClass::GetValue() const {return m_internalValue;}

This is a promise to not modify the object to which this call is applied. In other words, you can call:

const SomeClass* pSomeClass;
pSomeClass->GetValue();

If the function was not const, this would result in a compiler warning.

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In the case you mention, it doesn't affect callers of your API, which is why it's not commonly done (and isn't necessary in the header). It only affects the implementation of your function.

It's not particularly a bad thing to do, but the benefits aren't that great given that it doesn't affect your API, and it adds typing, so it's not usually done.

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Ah, a tough one. On one side, a declaration is a contract and it really does not make sense to pass a const argument by value. On the other hand, if you look at the function implementation, you give the compiler more chances to optimize if you declare an argument constant.

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I do not use const for value-passed parametere. The caller does not care whether you modify the parameter or not, it's an implementation detail.

What is really important is to mark methods as const if they do not modify their instance. Do this as you go, because otherwise you might end up with either lots of const_cast<> or you might find that marking a method const requires changing a lot of code because it calls other methods which should have been marked const.

I also tend to mark local vars const if I do not need to modify them. I believe it makes the code easier to understand by making it easier to identify the "moving parts".

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Marking value parameters 'const' is definitely a subjective thing.

However I actually prefer to mark value parameters const, just like in your example.

void func(const int n, const long l) { /* ... */ }

The value to me is in clearly indicating that the function parameter values are never changed by the function. They will have the same value at the beginning as at the end. For me, it is part of keeping to a very functional programming sort of style.

For a short function, it's arguably a waste of time/space to have the 'const' there, since it's usually pretty obvious that the arguments aren't modified by the function.

However for a larger function, its a form of implementation documentation, and it is enforced by the compiler.

I can be sure if I make some computation with 'n' and 'l', I can refactor/move that computation without fear of getting a different result because I missed a place where one or both is changed.

Since it is an implementation detail, you don't need to declare the value parameters const in the header, just like you don't need to declare the function parameters with the same names as the implementation uses.

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If you use the ->* or .* operators, it's a must.

It prevents you from writing something like

void foo(Bar *p) { if (++p->*member > 0) { ... } }

which I almost did right now, and which probably doesn't do what you intend.

What I intended to say was

void foo(Bar *p) { if (++(p->*member) > 0) { ... } }

and if I had put a const in between Bar * and p, the compiler would have told me that.

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2  
I would immediately be checking a reference on operator precedence when I'm about to mix together that many operators (if I don't already know 100%), so IMO it's a non-issue. –  Mk12 Aug 26 '12 at 2:15

the thing to remember with const is that it is much easier to make things const from the start, than it is to try and put them in later.

Use const when you want something to be unchanged - its an added hint that describes what your function does and what to expect. I've seen many an C API that could do with some of them, especially ones that accept c-strings!

I'd be more inclined to omit the const keyword in the cpp file than the header, but as I tend to cut+paste them, they'd be kept in both places. I have no idea why the compiler allows that, I guess its a compiler thing. Best practice is definitely to put your const keyword in both files.

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Const parameter is useful only when the parameter is passed by reference i.e., either reference or pointer. When compiler sees a const parameter, it make sure that the variable used in the parameter is not modified within the body of the function. Why would anyone want to make a by-value parameter as constant? :-)

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If the parameter is passed by value (and is not a reference), usually there is not much difference whether the parameter is declared as const or not (unless it contains a reference member -- not a problem for built-in types). If the parameter is a reference or pointer, it is usually better to protect the referenced/pointed-to memory, not the pointer itself (I think you cannot make the reference itself const, not that it matters much as you cannot change the referee). It seems a good idea to protect everything you can as const. You can omit it without fear of making a mistake if the parameters are just PODs (including built-in types) and there is no chance of them changing further along the road (e.g. in your example the bool parameter).

I didn't know about the .h/.cpp file declaration difference, but it does make some sense. At the machine code level, nothing is "const", so if you declare a function (in the .h) as non-const, the code is the same as if you declare it as const (optimizations aside). However, it helps you to enlist the compiler that you will not change the value of the variable inside the implementation of the function (.ccp). It might come handy in the case when you're inheriting from an interface that allows change, but you don't need to change to parameter to achieve the required functionality.

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I tend to use const wherever possible. (Or other appropriate keyword for the target language.) I do this purely because it allows the compiler to make extra optimizations that it would not be able to make otherwise. Since I have no idea what these optimizations may be, I always do it, even where it seems silly.

For all I know, the compiler might very well see a const value parameter, and say, "Hey, this function isn't modifying it anyway, so I can pass by reference and save some clock cycles." I don't think it ever would do such a thing, since it changes the function signature, but it makes the point. Maybe it does some different stack manipulation or something... The point is, I don't know, but I do know trying to be smarter than the compiler only leads to me being shamed.

C++ has some extra baggage, with the idea of const-correctness, so it becomes even more important.

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I say const your value parameters.

Consider this buggy function:

bool isZero(int number)
{
  if (number = 0)  // whoops, should be number == 0
    return true;
  else
    return false;
}

If the number parameter was const, the compiler would stop and warn us of the bug.

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1  
another way is using if(0 == number) ... else ...; –  Johannes Schaub - litb Nov 14 '08 at 13:39
1  
that's just horrible though! –  Chris Huang-Leaver Apr 15 '09 at 12:17
3  
@ChrisHuang-Leaver Horrible it is not, if speak like Yoda you do : stackoverflow.com/a/2430307/210916 –  MPelletier Jan 17 '12 at 20:04

All the consts in your examples have no purpose. C++ is pass-by-value by default, so the function gets copies of those ints and booleans. Even if the function does modify them, the caller's copy is not affected.

So I'd avoid extra consts because

  • They're redudant
  • They clutter up the text
  • They prevent me from changing the passed in value in cases where it might be useful or efficient.
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On compiler optimizations: http://www.gotw.ca/gotw/081.htm

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This video should answer your question :)

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I use const were I can. Const for parameters means that they should not change their value. This is especially valuable when passing by reference. const for function declares that the function should not change the classes members.

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I wouldn't put const on parameters like that - everyone already knows that a boolean (as opposed to a boolean&) is constant, so adding it in will make people think "wait, what?" or even that you're passing the parameter by reference.

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3  
sometimes you'd want to pass an object by reference (for performance reasons) but not change it, so const is mandatory then. Keeping all such parameters - even bools - const would then be good practise, making your code easier to read. –  gbjbaanb Sep 22 '08 at 20:19

There's really no reason to make a value-parameter "const" as the function can only modify a copy of the variable anyway.

The reason to use "const" is if you're passing something bigger (e.g. a struct with lots of members) by reference, in which case it ensures that the function can't modify it; or rather, the compiler will complain if you try to modify it in the conventional way. It prevents it from being accidentally modified.

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As parameters are being passed by value,it doesnt make any difference if you specify const or not from the calling function's perspective.It basically does not make any sense to declare pass by value parameters as const.

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