forked from boostorg/iterator
		
	changes elsewhere. boost/iterator and libs/iterator/test were updated from branch "simplify" [SVN r20905]
		
			
				
	
	
		
			247 lines
		
	
	
		
			6.2 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			247 lines
		
	
	
		
			6.2 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
//  (C) Copyright Jeremy Siek 2002. Permission to copy, use, modify,
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//  sell and distribute this software is granted provided this
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//  copyright notice appears in all copies. This software is provided
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//  "as is" without express or implied warranty, and with no claim as
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//  to its suitability for any purpose.
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//  Revision History
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//  22 Nov 2002 Thomas Witt
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//       Added interoperability check.
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//  28 Oct 2002   Jeremy Siek
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//       Updated for new iterator adaptors.
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//  08 Mar 2001   Jeremy Siek
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//       Moved test of transform iterator into its own file. It to
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//       to be in iterator_adaptor_test.cpp.
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#include <boost/config.hpp>
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#include <iostream>
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#include <algorithm>
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#include <boost/iterator/transform_iterator.hpp>
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#include <boost/iterator/iterator_concepts.hpp>
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#include <boost/iterator/new_iterator_tests.hpp>
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#include <boost/pending/iterator_tests.hpp>
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#include <boost/bind.hpp>
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#include <boost/concept_check.hpp>
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#ifdef BOOST_NO_TEMPLATE_PARTIAL_SPECIALIZATION
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namespace boost { namespace detail
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{
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  template<> struct function_object_result<int (*)(int)>
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  {
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      typedef int type;
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  };
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}}
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#endif
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struct mult_functor {
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  // Functors used with transform_iterator must be
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  // DefaultConstructible, as the transform_iterator must be
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  // DefaultConstructible to satisfy the requirements for
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  // TrivialIterator.
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  mult_functor() { }
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  mult_functor(int aa) : a(aa) { }
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  int operator()(int b) const { return a * b; }
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  int a;
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};
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struct adaptable_mult_functor 
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 : mult_functor
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{
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  typedef int result_type;
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  typedef int argument_type;
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  // Functors used with transform_iterator must be
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  // DefaultConstructible, as the transform_iterator must be
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  // DefaultConstructible to satisfy the requirements for
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  // TrivialIterator.
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  adaptable_mult_functor() { }
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  adaptable_mult_functor(int aa) : mult_functor(aa) { }
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};
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struct select_first
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{
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  typedef int& result_type;
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  int& operator()(std::pair<int, int>& p) const
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  {
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    return p.first;
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  }
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};
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struct select_second
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{
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  typedef int& result_type;
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  int& operator()(std::pair<int, int>& p) const
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  {
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    return p.second;
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  }
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};
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struct const_select_first
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{
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  typedef int const& result_type;
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  int const& operator()(std::pair<int, int>const& p) const
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  {
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    return p.first;
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  }
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};
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struct value_select_first
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{
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  typedef int result_type;
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  int operator()(std::pair<int, int>const& p) const
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  {
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    return p.first;
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  }
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};
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int mult_2(int arg)
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{
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  return arg*2;
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}
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int
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main()
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{
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  const int N = 10;
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  // Concept checks
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  {
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    typedef boost::transform_iterator<adaptable_mult_functor, int*>       iter_t;
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    typedef boost::transform_iterator<adaptable_mult_functor, int const*> c_iter_t;
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    boost::function_requires< boost_concepts::InteroperableConcept<iter_t, c_iter_t> >();
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  }
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  // Test transform_iterator
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  {
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    int x[N], y[N];
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    for (int k = 0; k < N; ++k)
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      x[k] = k;
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    std::copy(x, x + N, y);
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    for (int k2 = 0; k2 < N; ++k2)
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      x[k2] = x[k2] * 2;
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    typedef boost::transform_iterator<adaptable_mult_functor, int*> iter_t;
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    iter_t i(y, adaptable_mult_functor(2));
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    boost::input_iterator_test(i, x[0], x[1]);
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    boost::input_iterator_test(iter_t(&y[0], adaptable_mult_functor(2)), x[0], x[1]);
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    boost::random_access_readable_iterator_test(i, N, x);
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  }
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  // Test transform_iterator non adaptable functor
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  {
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    int x[N], y[N];
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    for (int k = 0; k < N; ++k)
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      x[k] = k;
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    std::copy(x, x + N, y);
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    for (int k2 = 0; k2 < N; ++k2)
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      x[k2] = x[k2] * 2;
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    typedef boost::transform_iterator<mult_functor, int*, int> iter_t;
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    iter_t i(y, mult_functor(2));
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    boost::input_iterator_test(i, x[0], x[1]);
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    boost::input_iterator_test(iter_t(&y[0], mult_functor(2)), x[0], x[1]);
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    boost::random_access_readable_iterator_test(i, N, x);
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  }
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  // Test transform_iterator default argument handling
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  {
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    {
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      typedef boost::transform_iterator<adaptable_mult_functor, int*, float> iter_t;
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      BOOST_STATIC_ASSERT((boost::is_same<iter_t::reference,  float>::value));
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      BOOST_STATIC_ASSERT((boost::is_same<iter_t::value_type, float>::value));
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    }
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    {
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      typedef boost::transform_iterator<adaptable_mult_functor, int*, boost::use_default, float> iter_t;
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      BOOST_STATIC_ASSERT((boost::is_same<iter_t::reference,  int>::value));
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      BOOST_STATIC_ASSERT((boost::is_same<iter_t::value_type, float>::value));
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    }
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    {
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      typedef boost::transform_iterator<adaptable_mult_functor, int*, float, double> iter_t;
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      BOOST_STATIC_ASSERT((boost::is_same<iter_t::reference,  float>::value));
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      BOOST_STATIC_ASSERT((boost::is_same<iter_t::value_type, double>::value));
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    }
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  }
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  // Test transform_iterator with function pointers
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  {
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    int x[N], y[N];
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    for (int k = 0; k < N; ++k)
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      x[k] = k;
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    std::copy(x, x + N, y);
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    for (int k2 = 0; k2 < N; ++k2)
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      x[k2] = x[k2] * 2;
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    boost::input_iterator_test(
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        boost::make_transform_iterator(y, mult_2), x[0], x[1]);
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    boost::input_iterator_test(
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        boost::make_transform_iterator(&y[0], mult_2), x[0], x[1]);
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    boost::random_access_readable_iterator_test(
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        boost::make_transform_iterator(y, mult_2), N, x);
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  }
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  // Test transform_iterator as projection iterator
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  {
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    typedef std::pair<int, int> pair_t;
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    int    x[N];
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    int    y[N];
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    pair_t values[N];
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    for(int i = 0; i < N; ++i) {
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      x[i]             = i;
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      y[i]             = N - (i + 1);
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    }
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    std::copy(
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        x
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      , x + N
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      , boost::make_transform_iterator((pair_t*)values, select_first())
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    );
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    std::copy(
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        y
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      , y + N
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      , boost::make_transform_iterator((pair_t*)values, select_second())
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    );
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    boost::random_access_readable_iterator_test(
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        boost::make_transform_iterator((pair_t*)values, value_select_first())
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      , N
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      , x
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    );
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    boost::random_access_readable_iterator_test(
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        boost::make_transform_iterator((pair_t*)values, const_select_first())
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      , N, x
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    );
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    boost::constant_lvalue_iterator_test(
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        boost::make_transform_iterator((pair_t*)values, const_select_first()), x[0]); 
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    boost::non_const_lvalue_iterator_test(
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        boost::make_transform_iterator((pair_t*)values, select_first()), x[0], 17); 
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  }
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  std::cout << "test successful " << std::endl;
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  return 0;
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}
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