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It seems to me that having a "function that always returns 5" is breaking or diluting the meaning of "calling a function". There must be a reason, or a need for this capability or it wouldn't be in C++11. Why is it there?

// preprocessor.
#define MEANING_OF_LIFE 42

// constants:
const int MeaningOfLife = 42;

// constexpr-function:
constexpr int MeaningOfLife () { return 42; }

It seems to me that if I wrote a function that return a literal value, and I came up to a code-review, someone would tell me, I should then, declare a constant value instead of writing return 5.

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11  
Can you do define a recursive function that returns a constexpr ? If so, I can see an usage. –  ereOn Jan 20 '11 at 14:24
4  
I believe that the question should state "why introduce a new keyword (!) if the compiler can deduce for itself whether a function can be evaluated in compile time or not". Having it "guaranteed by a keyword" sounds good, but I think I'd prefer to have it guaranteed whenever it's possible, without the need for a keyword. –  Kos Jan 20 '11 at 15:25
4  
@Kos : Somebody who is MORE conversant with C++ internals would probably prefer your question, but my question comes from a perspective of a person who has written C code before, but is not familiar with C++ 2011 keywords at all, nor C++ compiler implementation details. Being able to reason about compiler optimization and constant-expression-deduction is a subject for a more advanced-user question than this one. –  Warren P Oct 29 '12 at 14:33
1  
@Kos I was thinking along the same lines as you, and the answer I came up with was, without constexpr, how would you (easily) know that the compiler actually compile-time-evaluated the function for you? I suppose you could check the assembly output to see what it did, but it's easier to just tell the compiler that you require that optimization, and if for some reason it can't do that for you, it will give you a nice compile-error instead of silently failing to optimize where you expected it to optimize. –  Jeremy Friesner Jan 2 '13 at 5:34
    
@Kos: You could say the same thing about const. In fact, mandated intent is useful! Array dimensions are the canonical example. –  Lightness Races in Orbit Jun 4 '13 at 12:21

13 Answers 13

up vote 103 down vote accepted

Suppose it does something a little more complicated.

constexpr int MeaningOfLife ( int a, int b ) { return a * b; }

const int meaningOfLife = MeaningOfLife( 6, 7 );

Now you have something that can be evaluated down to a constant while maintaining good readability and allowing slightly more complex processing than just setting a constant to a number.

It basically provides a good aid to maintainability as it becomes more obvious what you are doing. Take max( a, b ) for example:

template< typename Type > constexpr Type max( Type a, Type b ) { return a < b ? b : a; }

Its a pretty simple choice there but it does mean that if you call max with constant values it is explicitly calculated at compile time and not at runtime.

Another good example would be a DegreesToRadians function. Everyone finds degrees easier to read than radians. While you may know that 180 degrees is in radians it is much clearer written as follows:

const float oneeighty = DegreesToRadians( 180.0f );

Lots of good info here:

http://www.informit.com/guides/content.aspx?g=cplusplus&seqNum=315

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4  
Excellent point with it telling the compiler to try and calculate the value at compile time. I'm curious why const doesn't provide this functionality when specific optimizations are specified? Or does it? –  TamusJRoyce Jan 20 '11 at 14:37
4  
@Tamus: Often it will but its not obliged to. constexpr obliges the compiler and will spit out an error if it can't. –  Goz Jan 20 '11 at 14:38
3  
I see it now. Sin(0.5) is another. This replaces C macros neatly. –  Warren P Jan 20 '11 at 21:19
4  
I can see this as a new interview question: Explain the differences between the const and constexpr keyword. –  Warren P Jan 20 '11 at 21:30
1  
As a way of documenting this point for myself I wrote similar code as above and again with the function being "const" rather than "constexpr". As I am using Clang3.3, -pedantic-errors and -std=c++11 I expected the latter would not compile. It compiled and ran as in the "constexpr" case. Do you suppose this is a clang extension or has there been a tweak to the C++11 spec since this post was answered? –  Arbalest Jul 24 '13 at 22:44

Take std::numeric_limits<T>::max(): for whatever reason, this is a method. constexpr would be beneficial here.

Another example: you want to declare a C-array (or a std::array) that is as big as another array. The way to do this at the moment is like so:

int x[10];
int y[sizeof x / sizeof x[0]];

But wouldn’t it be better to be able to write:

int y[size_of(x)];

Thanks to constexpr, you can:

template <typename T, size_t N>
constexpr size_t size_of(T (&)[N]) {
    return N;
}
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+1 for nice template usage, but it'd work exactly the same without constexpr, wouldn't it? –  Kos Jan 20 '11 at 15:26
9  
@Kos: No. It would return a runtime value. constexpr forces the complier to make the function return a compile-time value (if it can). –  deft_code Jan 20 '11 at 16:00
8  
@Kos: without the constexpr it cannot be used in an array size declaration, nor as a template argument, regardless of whether the result of the function call is a compile-time constant or not. These two are basically the only use-cases for constexpr but at least the template argument use-case is kind of important. –  Konrad Rudolph Jan 20 '11 at 16:11
1  
"for whatever reason, this is a method": The reason is that there are only compile time integers in C++03, but no other compile time types, so only a method can work for arbitrary types prior to C++11. –  phresnel Aug 6 '12 at 10:38
    
@phresnel I don’t understand that. You could just as well have a static const. It wouldn’t be a compile-time constant, but so what? The function also doesn’t return a compile-time constant, after all. –  Konrad Rudolph Aug 6 '12 at 12:00

constexpr functions are really nice and a great addition to c++. However, you are right in that most of the problems it solves can be inelegantly worked around with macros.

However, one of the uses of constexpr has no C++03 equivalent, typed constants.

// This is bad for obvious reasons.
#define ONE 1;

// This works most of the time but isn't fully typed.
enum { TWO = 2 };

// This doesn't compile
enum { pi = 3.1415f };

// This is a file local lvalue masquerading as a global
// rvalue.  It works most of the time.  But May subtly break
// with static initialization order issues, eg pi = 0 for some files.
static const float pi = 3.1415f;

// This is a true constant rvalue
constexpr float pi = 3.1415f;

// Haven't you always wanted to do this?
// constexpr std::string awesome = "oh yeah!!!";
// UPDATE: sadly std::string lacks a constexpr ctor

struct A
{
   static const int four = 4;
   static const int five = 5;
   constexpr int six = 6;
};

int main()
{
   &A::four; // linker error
   &A::six; // compiler error

   // EXTREMELY subtle linker error
   int i = rand()? A::four: A::five;
   // It not safe use static const class variables with the ternary operator!
}

//Adding this to any cpp file would fix the linker error.
//int A::four;
//int A::six;
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1  
Does the standard really define std::string to have a constexpr constructor? (It at least doesn't work with GCC 4.6, which otherwise supports constexpr.) –  wjl Jun 10 '11 at 17:41
2  
Could you please clarify that "EXTREMELY subtle linker error"? Or at least provide a pointer to a clarification? –  enobayram Jul 24 '13 at 14:34
5  
"This is bad for obvious reasons": the most obvious reason being the semicolon, right? –  TonyK Jul 28 '13 at 20:50
2  
The "EXTREMELY subtle linker error" has me completely puzzled. Neither four nor five are in scope. –  Steven Lu Aug 30 '13 at 23:30
2  
see also the new enum class type, it fixes some of the enum issues. –  ninMonkey Sep 5 '13 at 2:53

From what I've read, the need for constexpr comes from an issue in metaprogramming. Trait classes may have constants represented as functions, think: numeric_limits::max(). With constexpr, those types of functions can be used in metaprogramming, or as array bounds, etc etc.

Another example off of the top of my head would be that for class interfaces, you may want derived types define their own constants for some operation.

Edit:

After poking around on SO, it looks like others have come up with some examples of what might be possible with constexprs.

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"To be part of an interface you've got to be a function"? –  Daniel Earwicker Jan 20 '11 at 14:24
    
Now that I can see the usefulness of this, I'm a little more excited about C++ 0x. It seems a well thought out thing. I knew they must be. Those language standard uber-geeks seldom do random things. –  Warren P Jan 20 '11 at 21:24
    
I'm way more excited about lambdas, the threading model, initializer_list, rvalue references, variadic templates, the new bind overloads... there's quite a bit to look forward to. –  luke Jan 20 '11 at 23:29
    
Oh yeah, but I already understand lambdas/closures in several other languges. constexpr is more specifically useful in a compiler with a powerful compile-time expression evaluation system. C++ really has no peers in that domain. (that's a strong praise for C++11, IMHO) –  Warren P Nov 10 '11 at 16:17

From Stroustrup's speech at "Going Native 2012":

template<int M, int K, int S> struct Unit { // a unit in the MKS system
       enum { m=M, kg=K, s=S };
};

template<typename Unit> // a magnitude with a unit 
struct Value {
       double val;   // the magnitude 
       explicit Value(double d) : val(d) {} // construct a Value from a double 
};

using Speed = Value<Unit<1,0,-1>>;  // meters/second type
using Acceleration = Value<Unit<1,0,-2>>;  // meters/second/second type
using Second = Unit<0,0,1>;  // unit: sec
using Second2 = Unit<0,0,2>; // unit: second*second 

constexpr Value<Second> operator"" s(long double d)
   // a f-p literal suffixed by ‘s’
{
  return Value<Second> (d);  
}   

constexpr Value<Second2> operator"" s2(long double d)
  // a f-p literal  suffixed by ‘s2’ 
{
  return Value<Second2> (d); 
}

Speed sp1 = 100m/9.8s; // very fast for a human 
Speed sp2 = 100m/9.8s2; // error (m/s2 is acceleration)  
Speed sp3 = 100/9.8s; // error (speed is m/s and 100 has no unit) 
Acceleration acc = sp1/0.5s; // too fast for a human
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1  
This example can also be found in Stroustrup's paper Software Development for Infrastructure. –  Matthieu Poullet Jul 24 '13 at 7:29
    
clang-3.3: error: constexpr function's return type 'Value<Second>' is not a literal type –  Mitja Aug 26 '13 at 6:23
    
This is nice but who puts literals in code like this. Having your compiler "check your units" for you would make sense if you were writing an interactive calculator. –  bobobobo Dec 16 '13 at 4:02

There used to be a pattern with metaprogramming:

template<unsigned T>
struct Fact {
    enum Enum {
        VALUE = Fact<T-1>*T;
    };
};

template<>
struct Fact<1u> {
    enum Enum {
        VALUE = 1;
    };
};

// Fact<10>::VALUE is known be a compile-time constant

I believe constexpr was introduced to let you write such constructs without the need for templates and weird constructs with specialization, SFINAE and stuff - but exactly like you'd write a run-time function, but with the guarantee that the result will be determined in compile-time.

However, note that:

int fact(unsigned n) {
    if (n==1) return 1;
    return fact(n-1)*n;
}

int main() {
    return fact(10);
}

Compile this with g++ -O3 and you'll see that fact(10) is indeed evaulated at compile-time!

An VLA-aware compiler (so a C compiler in C99 mode or C++ compiler with C99 extensions) may even allow you to do:

int main() {
    int tab[fact(10)];
    int tab2[std::max(20,30)];
}

But that it's non-standard C++ at the moment - constexpr looks like a way to combat this (even without VLA, in the above case). And there's still the problem of the need to have "formal" constant expressions as template arguments.

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The fact function is not evaluated at compile-time. It needs to be constexpr and must have only one return statement. –  Sumant Jul 19 '11 at 17:08
1  
@Sumant: You are right that it doesn't have to be evaluated at compile-time, but it is! I was referring to what really happens in compilers. Compile it on recent GCC, see resulting asm and check for yourself if you don't believe me! –  Kos Jul 19 '11 at 18:50
    
Try to add std::array<int, fact(2)> and you'll see that fact() is not evaluated at compile-time. It's just the GCC optimizer doing a good job. –  user283145 Feb 15 '12 at 14:12
    
That's what I said... am I really that unclear? See the last paragraph –  Kos Feb 15 '12 at 18:46

Another use (not yet mentioned) is constexpr constructors. This allows creating compile time constants which don't have to be initialized during runtime.

const std::complex<double> meaning_of_imagination(0, 42); 

Pair that with user defined literals and you have full support for literal user defined classes.

3.14D + 42_i;
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It can enable some new optimisations. const traditionally is a hint for the type system, and cannot be used for optimisation (e.g. a const member function can const_cast and modify the object anyway, legally, so const cannot be trusted for optimisation).

constexpr means the expression really is constant, provided the inputs to the function are const. Consider:

class MyInterface {
public:
    int GetNumber() const = 0;
};

If this is exposed in some other module, the compiler can't trust that GetNumber() won't return different values each time it's called - even consecutively with no non-const calls in between - because const could have been cast away in the implementation. (Obviously any programmer who did this ought to be shot, but the language permits it, therefore the compiler must abide by the rules.)

Adding constexpr:

class MyInterface {
public:
    constexpr int GetNumber() const = 0;
};

The compiler can now apply an optimisation where the return value of GetNumber() is cached and eliminate additional calls to GetNumber(), because constexpr is a stronger guarantee that the return value won't change.

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Would such an optimization be done in VC++? GCC? –  Warren P Jan 20 '11 at 21:25
    
Actually const can be used in optimisation... It's undefined behaviour to modify a value defined const even after a const_cast IIRC. I'd expect it to be consistent for const member functions, but I'd need to check that with the standard. This would mean that the compiler can safely do optimisations there. –  Kos Jan 20 '11 at 23:27
1  
@Warren: it doesn't matter if the optimization is actually done, it's just allowed. @Kos: it's a little-known subtlety that if the original object was not declared const (int x vs. const int x), then it is safe to modify it by const_cast -ing away const on a pointer/reference to it. Otherwise, const_cast would always invoke undefined behavior, and be useless :) In this case, the compiler has no information about the const-ness of the original object, so it can't tell. –  AshleysBrain Jan 21 '11 at 1:59
    
@Kos I don't think const_cast is the only issue here. The const method is allowed to read and even modify a global variable. Conversely, someone from anpther thread could also modify the const object between the calls. –  enobayram Jul 24 '13 at 14:47
    
The "= 0" isn't valid here and should be removed. I'd do it myself, but I'm not sure that's in conformance with SO protocol. –  KnowItAllWannabe Jan 24 at 3:15

This paper will give you the best understanding on this from the owner!!!

http://www.stroustrup.com/sac10-constexpr.pdf

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Have just started switching over a project to c++11 and came across a perfectly good situation for constexpr which cleans up alternative methods of performing the same operation. The key point here is that you can only place the function into the array size declaration when it is declared constexpr. There are a number of situations where I can see this being very useful moving forward with the area of code that I am involved in.

constexpr size_t GetMaxIPV4StringLength()
{
    return ( sizeof( "255.255.255.255" ) );
}

void SomeIPFunction()
{
    char szIPAddress[ GetMaxIPV4StringLength() ];
    SomeIPGetFunction( szIPAddress );
}
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It's useful for something like

// constants:

const int MeaningOfLife = 42;

// constexpr-function:

constexpr int MeaningOfLife () { return 42; }

int some_arr[MeaningOfLife()];

Tie this in with a traits class or the like and it becomes quite useful.

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3  
In your example it offers zero advantage over a plain constant, so it doesn't really answer the question. –  jalf Jan 20 '11 at 14:48
    
This is a contrived example, imagine if MeaningOfLife() gets its value from somewhere else, say another function or a #define or series therof. You may not know what it returns, it may be library code. Other examples, imagine an immutable container that has a constexpr size() method. You can now do int arr[container.size()]; –  plivesey Jan 21 '11 at 11:49

Your basic example serves he same argument as that of constants themselves. Why use

static const int x = 5;
int arr[x];

over

int arr[5];

Because it's way more maintainable. Using constexpr is much, much faster to write and read than existing metaprogramming techniques.

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There must be a reason, or a need for this capability or it wouldn't be in C++0x. Why is it there?

Watch the video with Andrei Alexandrescu's answer to What's going on with constexpr? question at 36m55s during Ask Us Anything session at C++ and Beyond 2011. You will find one of best explanation possible, in my opinion: it is 4th programming language built in C++.

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