void QProjector<1>::project_to_subface (const Quadrature<0> &,
const unsigned int,
const unsigned int,
- vector<Point<1> > &)
+ std::vector<Point<1> > &)
{
Assert(false, ExcNotImplemented());
}
*/
virtual void
get_intermediate_points_on_line (const typename Triangulation<dim>::line_iterator &line,
- vector<Point<dim> > &points) const;
+ typename std::vector<Point<dim> > &points) const;
/**
* Return intermediate points
*/
virtual void
get_intermediate_points_on_quad (const typename Triangulation<dim>::quad_iterator &quad,
- vector<Point<dim> > &points) const;
+ typename std::vector<Point<dim> > &points) const;
/**
* Exception.
*/
virtual void
get_intermediate_points_on_line (const typename Triangulation<dim>::line_iterator &line,
- vector<Point<dim> > &points) const;
+ typename std::vector<Point<dim> > &points) const;
/**
* Gives @p{n=points.size()=m*m}
*/
virtual void
get_intermediate_points_on_quad (const typename Triangulation<dim>::quad_iterator &quad,
- vector<Point<dim> > &points) const;
+ typename std::vector<Point<dim> > &points) const;
};
reinit (m,n);
if (dim_range*dim_image != 0)
- copy (entries, entries+dim_image*dim_range, val);
+ std::copy (entries, entries+dim_image*dim_range, val);
};
unsigned int actual_width = width;
if (scientific)
{
- out.setf (ios::scientific, ios::floatfield);
+ out.setf (std::ios::scientific, std::ios::floatfield);
if (!width)
actual_width = precision+7;
} else {
- out.setf (ios::fixed, ios::floatfield);
+ out.setf (std::ios::fixed, std::ios::floatfield);
if (!width)
actual_width = precision+2;
}