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@@ -552,101 +552,101 @@
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{
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public:
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typedef LpBase::Expr Expr;
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typedef Expr::Key Key;
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typedef Expr::Value Value;
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protected:
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Expr _expr;
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Value _lb,_ub;
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public:
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///\e
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Constr() : _expr(), _lb(NaN), _ub(NaN) {}
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///\e
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Constr(Value lb, const Expr &e, Value ub) :
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_expr(e), _lb(lb), _ub(ub) {}
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Constr(const Expr &e) :
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_expr(e), _lb(NaN), _ub(NaN) {}
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///\e
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void clear()
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{
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_expr.clear();
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_lb=_ub=NaN;
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}
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///Reference to the linear expression
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Expr &expr() { return _expr; }
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///Cont reference to the linear expression
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const Expr &expr() const { return _expr; }
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///Reference to the lower bound.
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///\return
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///- \ref INF "INF": the constraint is lower unbounded.
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///- \ref NaN "NaN": lower bound has not been set.
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///- finite number: the lower bound
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Value &lowerBound() { return _lb; }
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///The const version of \ref lowerBound()
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const Value &lowerBound() const { return _lb; }
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///Reference to the upper bound.
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///\return
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///- \ref INF "INF": the constraint is upper unbounded.
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///- \ref NaN "NaN": upper bound has not been set.
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///- finite number: the upper bound
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Value &upperBound() { return _ub; }
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///The const version of \ref upperBound()
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const Value &upperBound() const { return _ub; }
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///Is the constraint lower bounded?
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bool lowerBounded() const {
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return _lb != -INF && !isnan(_lb);
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return _lb != -INF && !isNaN(_lb);
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}
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///Is the constraint upper bounded?
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bool upperBounded() const {
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return _ub != INF && !isnan(_ub);
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return _ub != INF && !isNaN(_ub);
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}
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};
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///Linear expression of rows
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///This data structure represents a column of the matrix,
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///thas is it strores a linear expression of the dual variables
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///(\ref Row "Row"s).
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///
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///There are several ways to access and modify the contents of this
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///container.
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///\code
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///e[v]=5;
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///e[v]+=12;
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///e.erase(v);
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///\endcode
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///or you can also iterate through its elements.
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///\code
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///double s=0;
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///for(LpBase::DualExpr::ConstCoeffIt i(e);i!=INVALID;++i)
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/// s+=*i;
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///\endcode
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///(This code computes the sum of all coefficients).
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///- Numbers (<tt>double</tt>'s)
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///and variables (\ref Row "Row"s) directly convert to an
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///\ref DualExpr and the usual linear operations are defined, so
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///\code
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///v+w
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///2*v-3.12*(v-w/2)
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///v*2.1+(3*v+(v*12+w)*3)/2
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///\endcode
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///are valid \ref DualExpr dual expressions.
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///The usual assignment operations are also defined.
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///\code
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///e=v+w;
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///e+=2*v-3.12*(v-w/2);
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///e*=3.4;
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///e/=5;
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///\endcode
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///
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///\sa Expr
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class DualExpr {
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friend class LpBase;
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public:
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/// The key type of the expression
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typedef LpBase::Row Key;
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/// The value type of the expression
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@@ -1621,133 +1621,133 @@
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return LpBase::Constr(0, e - f, LpBase::INF);
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}
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///Create constraint
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///\relates LpBase::Constr
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///
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inline LpBase::Constr operator>=(const LpBase::Value &e,
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const LpBase::Expr &f) {
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return LpBase::Constr(LpBase::NaN, f, e);
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}
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///Create constraint
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///\relates LpBase::Constr
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///
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inline LpBase::Constr operator>=(const LpBase::Expr &e,
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const LpBase::Value &f) {
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return LpBase::Constr(f, e, LpBase::INF);
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}
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///Create constraint
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///\relates LpBase::Constr
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///
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inline LpBase::Constr operator==(const LpBase::Expr &e,
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const LpBase::Value &f) {
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return LpBase::Constr(f, e, f);
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}
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///Create constraint
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///\relates LpBase::Constr
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///
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inline LpBase::Constr operator==(const LpBase::Expr &e,
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const LpBase::Expr &f) {
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return LpBase::Constr(0, f - e, 0);
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}
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///Create constraint
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///\relates LpBase::Constr
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///
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inline LpBase::Constr operator<=(const LpBase::Value &n,
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const LpBase::Constr &c) {
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LpBase::Constr tmp(c);
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LEMON_ASSERT(isnan(tmp.lowerBound()), "Wrong LP constraint");
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LEMON_ASSERT(isNaN(tmp.lowerBound()), "Wrong LP constraint");
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tmp.lowerBound()=n;
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return tmp;
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}
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///Create constraint
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///\relates LpBase::Constr
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///
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inline LpBase::Constr operator<=(const LpBase::Constr &c,
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const LpBase::Value &n)
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{
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LpBase::Constr tmp(c);
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LEMON_ASSERT(isnan(tmp.upperBound()), "Wrong LP constraint");
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LEMON_ASSERT(isNaN(tmp.upperBound()), "Wrong LP constraint");
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tmp.upperBound()=n;
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return tmp;
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}
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///Create constraint
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///\relates LpBase::Constr
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///
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inline LpBase::Constr operator>=(const LpBase::Value &n,
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const LpBase::Constr &c) {
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LpBase::Constr tmp(c);
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LEMON_ASSERT(isnan(tmp.upperBound()), "Wrong LP constraint");
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LEMON_ASSERT(isNaN(tmp.upperBound()), "Wrong LP constraint");
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tmp.upperBound()=n;
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return tmp;
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}
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///Create constraint
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///\relates LpBase::Constr
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///
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inline LpBase::Constr operator>=(const LpBase::Constr &c,
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const LpBase::Value &n)
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{
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LpBase::Constr tmp(c);
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LEMON_ASSERT(isnan(tmp.lowerBound()), "Wrong LP constraint");
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LEMON_ASSERT(isNaN(tmp.lowerBound()), "Wrong LP constraint");
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tmp.lowerBound()=n;
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return tmp;
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}
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///Addition
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///\relates LpBase::DualExpr
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///
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inline LpBase::DualExpr operator+(const LpBase::DualExpr &a,
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const LpBase::DualExpr &b) {
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LpBase::DualExpr tmp(a);
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tmp+=b;
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return tmp;
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}
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///Substraction
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///\relates LpBase::DualExpr
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///
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inline LpBase::DualExpr operator-(const LpBase::DualExpr &a,
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const LpBase::DualExpr &b) {
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LpBase::DualExpr tmp(a);
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tmp-=b;
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return tmp;
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}
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///Multiply with constant
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///\relates LpBase::DualExpr
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///
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inline LpBase::DualExpr operator*(const LpBase::DualExpr &a,
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const LpBase::Value &b) {
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LpBase::DualExpr tmp(a);
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tmp*=b;
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return tmp;
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}
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///Multiply with constant
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///\relates LpBase::DualExpr
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///
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inline LpBase::DualExpr operator*(const LpBase::Value &a,
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const LpBase::DualExpr &b) {
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LpBase::DualExpr tmp(b);
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tmp*=a;
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return tmp;
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}
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///Divide with constant
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///\relates LpBase::DualExpr
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