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			244 lines
		
	
	
		
			6.1 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
		
		
			
		
	
	
			244 lines
		
	
	
		
			6.1 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
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								/* Boost test/add.cpp
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								 * test with symbolic operations if the addition algorithm is correct
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								 *
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								 * Copyright 2002-2003 Guillaume Melquiond
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								 *
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								 * Distributed under the Boost Software License, Version 1.0.
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								 * (See accompanying file LICENSE_1_0.txt or
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								 * copy at http://www.boost.org/LICENSE_1_0.txt)
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								 */
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								#include <boost/numeric/interval/interval.hpp>
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								#include <boost/numeric/interval/arith.hpp>
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								#include <boost/numeric/interval/rounding.hpp>
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								#include <boost/numeric/interval/rounded_arith.hpp>
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								#include <boost/numeric/interval/utility.hpp>
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								#include <boost/numeric/interval/policies.hpp>
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								#include <boost/test/minimal.hpp>
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								#include "bugs.hpp"
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								typedef enum { EXPR_VAR, EXPR_NEG, EXPR_UP, EXPR_DOWN, EXPR_ADD, EXPR_SUB } e_type;
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								struct expr;
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								struct pexpr {
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								  expr *ptr;
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								  expr* operator->() { return ptr; }
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								  pexpr(expr *p = NULL): ptr(p) { }
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								};
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								struct expr {
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								  e_type type;
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								  int var;
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								  pexpr e;
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								  pexpr e1, e2;
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								};
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								pexpr var(int v) {
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								  pexpr e = new expr;
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								  e->type = EXPR_VAR;
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								  e->var = v;
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								  return e;
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								}
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								pexpr operator+(pexpr, pexpr);
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								pexpr operator-(pexpr, pexpr);
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								pexpr operator-(pexpr);
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								pexpr operator+(pexpr a, pexpr b) {
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								  if (a->type == EXPR_NEG) return b - a->e;
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								  if (b->type == EXPR_NEG) return a - b->e;
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								  if (a->type == EXPR_VAR && b->type == EXPR_VAR && a->var > b->var) return b + a;
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								  pexpr c = new expr;
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								  c->type = EXPR_ADD;
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								  c->e1 = a;
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								  c->e2 = b;
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								  return c;
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								}
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								pexpr operator-(pexpr a, pexpr b) {
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								  if (b->type == EXPR_NEG) return a + b->e;
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								  pexpr c = new expr;
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								  c->type = EXPR_SUB;
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								  c->e1 = a;
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								  c->e2 = b;
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								  return c;
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								}
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								pexpr down(pexpr a) {
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								  pexpr e = new expr;
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								  e->type = EXPR_DOWN;
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								  e->e = a;
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								  return e;
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								}
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								pexpr up(pexpr a) {
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								  pexpr e = new expr;
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								  e->type = EXPR_UP;
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								  e->e = a;
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								  return e;
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								}
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								pexpr operator-(pexpr a) {
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								  if (a->type == EXPR_NEG) return a->e;
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								  if (a->type == EXPR_UP) return down(-a->e);
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								  if (a->type == EXPR_DOWN) return up(-a->e);
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								  if (a->type == EXPR_SUB) return a->e2 - a->e1;
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								  if (a->type == EXPR_ADD) return -a->e1 - a->e2;
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								  pexpr e = new expr;
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								  e->type = EXPR_NEG;
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								  e->e = a;
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								  return e;
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								}
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								bool operator==(pexpr a, pexpr b) {
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								  if (a->type != b->type) return false;
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								  if (a->type == EXPR_VAR) return a->var == b->var;
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								  if (a->type == EXPR_DOWN || a->type == EXPR_UP || a->type == EXPR_NEG)
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								    return a->e == b->e;
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								  return a->e1 == b->e1 && a->e2 == b->e2;
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								}
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								bool operator<=(pexpr, pexpr) { return true; }
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								namespace boost {
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								namespace numeric {
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								namespace interval_lib {
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								template<>
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								struct rounding_control<pexpr> {
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								  typedef enum { RND_U, RND_M, RND_D } rounding_mode;
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								  static rounding_mode mode;
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								  rounding_control() { mode = RND_M; }
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								  void get_rounding_mode(rounding_mode& m) { m = mode; }
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								  void set_rounding_mode(rounding_mode m)  { mode = m; }
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								  void upward()   { mode = RND_U; }
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								  void downward() { mode = RND_D; }
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								  pexpr force_rounding(pexpr a) {
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								    switch (mode) {
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								    case RND_U: return up(a);
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								    case RND_D: return down(a);
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								    default: throw "Unset rounding mode";
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								    }
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								  }
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								};
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								rounding_control<pexpr>::rounding_mode rounding_control<pexpr>::mode = RND_M;
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								} // namespace interval_lib
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								} // namespace numeric
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								} // namespace boost
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								template<class I>
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								bool test_neg() {
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								  I a(var(0), var(1));
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								  return equal(-a, I(-var(1), -var(0)));
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								}
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								template<class I>
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								bool test_add() {
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								  I a(var(0), var(1)), b(var(2), var(3));
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								  return equal(a + b, I(down(var(0) + var(2)), up(var(1) + var(3))));
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								}
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								template<class I>
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								bool test_add1() {
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								  I a(var(0), var(1));
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								  return equal(a + var(2), I(down(var(0) + var(2)), up(var(1) + var(2))));
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								}
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								template<class I>
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								bool test_add2() {
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								  I a(var(0), var(1));
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								  return equal(var(2) + a, I(down(var(0) + var(2)), up(var(1) + var(2))));
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								}
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								template<class I>
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								bool test_sub() {
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								  I a(var(0), var(1)), b(var(2), var(3));
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								  return equal(a - b, I(down(var(0) - var(3)), up(var(1) - var(2))));
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								}
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								template<class I>
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								bool test_sub1() {
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								  I a(var(0), var(1));
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								  return equal(a - var(2), I(down(var(0) - var(2)), up(var(1) - var(2))));
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								}
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								template<class I>
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								bool test_sub2() {
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								  I a(var(0), var(1));
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								  return equal(var(2) - a, I(down(var(2) - var(1)), up(var(2) - var(0))));
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								}
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								template<class I>
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								bool test_addeq() {
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								  I a(var(0), var(1)), b(var(2), var(3));
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								  return equal(a += b, I(down(var(0) + var(2)), up(var(1) + var(3))));
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								}
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								template<class I>
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								bool test_addeq1() {
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								  I a(var(0), var(1));
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								  return equal(a += var(2), I(down(var(0) + var(2)), up(var(1) + var(2))));
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								}
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								template<class I>
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								bool test_subeq() {
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								  I a(var(0), var(1)), b(var(2), var(3));
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								  return equal(a -= b, I(down(var(0) - var(3)), up(var(1) - var(2))));
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								}
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								template<class I>
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								bool test_subeq1() {
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								  I a(var(0), var(1));
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								  return equal(a -= var(2), I(down(var(0) - var(2)), up(var(1) - var(2))));
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								}
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								struct my_checking
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								{
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								  static pexpr pos_inf() { throw; }
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								  static pexpr neg_inf() { throw; }
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								  static pexpr nan() { throw; }
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								  static bool is_nan(const pexpr&) { return false; }
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								  static pexpr empty_lower() { throw; }
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								  static pexpr empty_upper() { throw; }
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								  static bool is_empty(const pexpr&, const pexpr&) { return false; }
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								};
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								template<class Rounding>
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								struct my_interval {
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								private:
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								  typedef boost::numeric::interval_lib::save_state<Rounding> my_rounding;
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								  typedef boost::numeric::interval_lib::policies<my_rounding, my_checking> my_policies;
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								public:
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								  typedef boost::numeric::interval<pexpr, my_policies> type;
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								};
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								int test_main(int, char *[]) {
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								  typedef my_interval<boost::numeric::interval_lib::rounded_arith_std<pexpr> >::type I1;
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								  typedef my_interval<boost::numeric::interval_lib::rounded_arith_opp<pexpr> >::type I2;
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								  BOOST_CHECK((test_neg<I1>()));
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								  BOOST_CHECK((test_neg<I2>()));
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								  BOOST_CHECK((test_add<I1>()));
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								  BOOST_CHECK((test_add<I2>()));
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								  BOOST_CHECK((test_add1<I1>()));
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								  BOOST_CHECK((test_add1<I2>()));
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								  BOOST_CHECK((test_add2<I1>()));
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								  BOOST_CHECK((test_add2<I2>()));
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								  BOOST_CHECK((test_sub<I1>()));
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								  BOOST_CHECK((test_sub<I2>()));
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								  BOOST_CHECK((test_sub1<I1>()));
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								  BOOST_CHECK((test_sub1<I2>()));
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								  BOOST_CHECK((test_sub2<I1>()));
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								  BOOST_CHECK((test_sub2<I2>()));
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								  BOOST_CHECK((test_addeq<I1>()));
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								  BOOST_CHECK((test_addeq<I2>()));
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								  BOOST_CHECK((test_addeq1<I1>()));
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								  BOOST_CHECK((test_addeq1<I2>()));
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								  BOOST_CHECK((test_subeq<I1>()));
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								  BOOST_CHECK((test_subeq<I2>()));
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								  BOOST_CHECK((test_subeq1<I1>()));
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								  BOOST_CHECK((test_subeq1<I2>()));
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								  return 0;
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								}
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