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I am trying to do something like this:

#include <iostream>
#include <random>

typedef int Integer;

#if sizeof(Integer) <= 4
    typedef std::mt19937     Engine;
#else
    typedef std::mt19937_64  Engine;
#endif

int main()
{
    std::cout << sizeof(Integer) << std::endl;
    return 0;
}

but I get this error:

error: missing binary operator before token "("

How can I correctly make the conditional typedef?

share|improve this question
23  
The preprocessor doesn't know anything about sizeof, or other C++ constructs. It certainly doesn't know about things you created yourself with typedef, as that hasn't even been parsed yet. – Lightness Races in Orbit Jul 25 '13 at 9:44
2  
You could use enable_if or conditional to conditionally define typedefs, but you can't use preprocessor for that. – Bartek Banachewicz Jul 25 '13 at 9:44
1  
@LightnessRacesinOrbit: Preprocessing and compilation are integrated in GCC, so it is not only not certain that the software processing code does not know about user-created type definitions but known to be false in the case of GCC. The reason sizeof cannot work in a preprocessor conditions is because the language is defined that way, not because of how an implementation works. – Eric Postpischil Aug 28 '13 at 15:16
    
@EricPostpischil: The language is defined such that preprocessing occurs in an earlier translation phase. Your story about how GCC could theoretically figure it out is not relevant, for the exact reason you stated: it's an implementation detail. – Lightness Races in Orbit Aug 28 '13 at 15:23
1  
@LightnessRacesinOrbit: The translation phases define syntax and semantics, not order of processing. Per C++ 2011 (N3092) 2.2 [lex.phases] note 11, “Implementations must behave as if these separate phases occur, although in practice different phases might be folded together.” My point about GCC is relevant because it demonstrates that your claim that this is how an implementation works is wrong. In other words, your comment claims that a particular method of implementation prevents this. But it is not implementation that prevents this (we could do it); it is the language definition. – Eric Postpischil Aug 28 '13 at 15:35
up vote 116 down vote accepted

Use the std::conditional meta-function from C++11.

#include <type_traits>  //include this

typedef std::conditional<sizeof(int) <= 4,
                         std::mt19937,
                         std::mt19937_64>::type Engine;

Note that if the type which you use in sizeof is a template parameter, say T, then you have to use typename as:

typedef typename std::conditional<sizeof(T) <= 4, // T is template parameter
                                  std::mt19937,
                                  std::mt19937_64>::type Engine;

Or make Engine depend on T as:

template<typename T>
using Engine = typename std::conditional<sizeof(T) <= 4, 
                                         std::mt19937,
                                         std::mt19937_64>::type;

That is flexible, because now you can use it as:

Engine<int>  engine1;
Engine<long> engine2;
Engine<T>    engine3; // where T could be template parameter!
share|improve this answer
1  
Thank you! This works too! – Martin Drozdik Jul 25 '13 at 9:47
2  
+1: Excellent work. – Lightness Races in Orbit Jul 25 '13 at 10:17
2  
+1 Minor nitpick: Checking for sizeof(int) <= 4 is perhaps not a very portable way since on a 64-bit Windows machine, GCC (MinGW) x64 compiler gives sizeof(int) = sizeof(long) = 4. A better way would be sizeof(void*) <= 4. – legends2k Jul 25 '13 at 13:12
    
@legends2k: You mean Engine<void*> engine4;? ;-) – Nawaz Jul 25 '13 at 13:32
2  
@Nawaz: Of course not :) I meant std::conditional<sizeof(void*) <= 4, std::mt19937, std::mt19937_64> in the first code snippet. – legends2k Jul 25 '13 at 13:50

Using std::conditional you can do it like so:

using Engine = std::conditional<sizeof(int) <= 4, 
                               std::mt19937, 
                               std::mt19937_64
                               >::type;

If you want to do a typedef, you can do that too.

typedef std::conditional<sizeof(int) <= 4, 
                         std::mt19937, 
                         std::mt19937_64
                         >::type Engine
share|improve this answer
    
There's no need for typename here – gx_ Jul 25 '13 at 9:46
    
Thank you! This works! – Martin Drozdik Jul 25 '13 at 9:47
    
@gx_ Yeah, used to putting it there from working with templates, not concrete types. – Rapptz Jul 25 '13 at 9:47
2  
You'll get a +1 when you indent your code properly! :) – Lightness Races in Orbit Jul 25 '13 at 10:17
1  
@LightnessRacesinOrbit Well, I fixed it a little. – Rapptz Jul 25 '13 at 10:23

If you don't have C++11 available (although it appears you do if you're planning to use std::mt19937), then you can implement the same thing without C++11 support using the Boost Metaprogramming Library (MPL). Here is a compilable example:

#include <boost/mpl/if.hpp>
#include <iostream>
#include <typeinfo>

namespace mpl = boost::mpl;

struct foo { };
struct bar { };

int main()
{
    typedef mpl::if_c<sizeof(int) <= 4, foo, bar>::type Engine;

    Engine a;
    std::cout << typeid(a).name() << std::endl;
}

This prints the mangled name of foo on my system, as an int is 4 bytes here.

share|improve this answer
1  
Why don't you use if_c instead? It would be must easier to write (and understand) : mpl::if_c<sizeof(int)<=4, foo, bar>::type. Isn't it? – Nawaz Jul 25 '13 at 17:12
1  
@Nawaz: Indeed, that is better in a number of ways. I had forgotten about mpl::if_c. I updated the example to use that approach instead. – Jason R Jul 25 '13 at 17:52

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