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I don't know if it's possible but I want to do stuff like

int someval = 1;
if({1,2,3,4}_v.contains(someval ))

but when I try to define literal as:

std::vector<int> operator"" _v ( std::initializer_list<int> t )
{
    return std::vector<int> (t);
}

to accept initializer list of ints I get

 error: 'std::vector<int> operator"" _v(std::initializer_list<int> t)' has invalid argument list

Is there a way to do this? What I really want is to finally be rid of stuff like

if(value == 1 || value ==2 || value == 3 ...

Having to write stuff like this is really annoying, because you'd expect syntax to be

if value in (value1, value2 ...) 

or something similar.

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Out of interest, why v? Presumably as it stands for "vector"? –  Lightness Races in Orbit Jan 16 '13 at 21:52
    
Yup, can be anything. I just want to have shorter if notation for multiple cases –  Zeks Jan 16 '13 at 21:52

3 Answers 3

up vote 4 down vote accepted

you'd expect syntax to be

if value in (value1, value2 ...) 

or something similar.

If you're willing to add one extra character, try this syntax:

#include <algorithm>
#include <iostream>
#include <array>

template <typename T0, typename T1, std::size_t N>
bool operator *(const T0& lhs, const std::array<T1, N>& rhs) {
  return std::find(begin(rhs), end(rhs), lhs) != end(rhs);
}

template<class T0, class...T> std::array<T0, 1+sizeof...(T)> in(T0 arg0, T...args) {
  return {{arg0, args...}};
}

int main () {
  if( 2 *in(1,2,3) ) { std::cout << "Hello\n"; }
  if( 4 *in(5,6,7,8) ) { std::cout << "Goodbye\n"; }
}
share|improve this answer
    
Whoa, now that's creative use of new stuff :) –  Zeks Jan 17 '13 at 8:46
    
On a side note - what did you read to gain such deep understanding of this stuff? I can't wrap it in my head enough to start using it. When I carefully read the code - it makes sense, but I can't bring myself in a state of mind to actually start writing things like that. –  Zeks Mar 3 '13 at 20:57
    
For general knowledge, I've been reading and writing C (and later C++) for 30 years. For templates specifically, StackOverflow, the C++ standard, and Google (in that order). –  Robᵩ Mar 4 '13 at 2:06
    
If someone is a custom syntax freak, which is probably not that good, they can #define in *in_impl ;) –  cubuspl42 May 8 '13 at 17:12
    
Nah, the original answer works just fine. :) No need to #define anything. Been using this past few months –  Zeks Aug 4 '13 at 17:35

How about this:

#include <initializer_list>

template <typename T>
bool contains(std::initializer_list<T> const & il, T const & x)
{
    for (auto const & z : il) { if (z == x) return true; }
    return false;
}

Usage:

bool b = contains({1, 2, 3}, 5);  // false
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1  
Personally, I would just use std::find, rather than the loop. –  Dave S Jan 16 '13 at 22:08
    
Yes, this notation is the closest we can get it seems. Still too much braces but much easier to read than what is usually used. –  Zeks Jan 16 '13 at 23:05

§13.5.8/3 says:

The declaration of a literal operator shall have a parameter-declaration-clause equivalent to one of the following:

const char*
unsigned long long int
long double
char
wchar_t
char16_t
char32_t
const char*, std::size_t
const wchar_t*, std::size_t
const char16_t*, std::size_t
const char32_t*, std::size_t

So it looks like you can't have a parameter of initializer_list type.

I can only think of the obvious as an alternative; if you don't mind typing a little more you can do something like

std::vector<int> v(std::initializer_list<int> l) {
    return { l };
}

int someval = 1;
if(v({1,2,3,4}).contains(someval))

Alternatively you could get wacky and write an operator overload for initializer_list (haven't tested though):

bool operator<=(std::intializer_list<int> l, int value) {
    return std::find(std::begin(l), std::end(l), value) != std::end(l);
}

And

if ({1, 2, 3, 4} <= 3)

should work...

Actually nevermind, it doesn't. You'll have to go with a normal function.

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Bummer :( and I so hoped taht c++11 could allow a replacement for if( val == 1 || val == 2 ||...) –  Zeks Jan 16 '13 at 21:56
    
Okay but what is the solution?! I can't think of anything better than tokenizing "1,2,3,4" –  Lightness Races in Orbit Jan 16 '13 at 21:57
    
Also, what the heck is that text doing under §13.5! I would have expected it under §2.14.8, myself. –  Lightness Races in Orbit Jan 16 '13 at 21:58
    
@LightnessRacesinOrbit well the question was is there a way to do the literal syntax, and the answer is no, but I'll add some alternative if I can think of a good one. –  Seth Carnegie Jan 16 '13 at 21:59
1  
Kerrek's post from below seems to be the shortest and most natural notation for the task then. –  Zeks Jan 16 '13 at 22:44

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