In hyperbolic geometry, an ideal point, omega point[1] or point at infinity is a well-defined point outside the hyperbolic plane or space.
Given a line l and a point P not on l, right- and left-limiting parallels to l through Pconverge to l at ideal points.
Unlike the projective case, ideal points form a boundary, not a submanifold. So, these lines do not intersect at an ideal point and such points, although well-defined, do not belong to the hyperbolic space itself.
The interior angles of an ideal triangle are all zero.
Any ideal triangle has an infinite perimeter.
Any ideal triangle has area where K is the (always negative) curvature of the plane.[4]
Ideal quadrilaterals
if all vertices of a quadrilateral are ideal points, the quadrilateral is an ideal quadrilateral.
While all ideal triangles are congruent, not all convex ideal quadrilaterals are. They can vary from each other, for instance, in the angle at which their two diagonals cross each other. Nevertheless all convex ideal quadrilaterals have certain properties in common:
The interior angles of a convex ideal quadrilateral are all zero.
Any convex ideal quadrilateral has an infinite perimeter.
Any convex ideal quadrilateral has area where K is the (always negative) curvature of the plane.
Ideal square
The ideal quadrilateral where the two diagonals are perpendicular to each other form an ideal square.
An ideal n-gon can be subdivided into (n − 2) ideal triangles, with area (n − 2) times the area of an ideal triangle.
Representations in models of hyperbolic geometry
In the Klein disk model and the Poincaré disk model of the hyperbolic plane the ideal points are on the unit circle (hyperbolic plane) or unit sphere (higher dimensions) which is the unreachable boundary of the hyperbolic plane.
When projecting the same hyperbolic line to the Klein disk model and the Poincaré disk model both lines go through the same two ideal points (the ideal points in both models are on the same spot).
Klein disk model
Given two distinct points p and q in the open unit disk the unique straight line connecting them intersects the unit circle in two ideal points, a and b, labeled so that the points are, in order, a, p, q, b so that |aq| > |ap| and |pb| > |qb|. Then the hyperbolic distance between p and q is expressed as
Poincaré disk model
Given two distinct points p and q in the open unit disk then the unique circle arc orthogonal to the boundary connecting them intersects the unit circle in two ideal points, a and b, labeled so that the points are, in order, a, p, q, b so that |aq| > |ap| and |pb| > |qb|. Then the hyperbolic distance between p and q is expressed as
Where the distances are measured along the (straight line) segments aq, ap, pb and qb.
Poincaré half-plane model
In the Poincaré half-plane model the ideal points are the points on the boundary axis. There is also another ideal point that is not represented in the half-plane model (but rays parallel to the positive y-axis approach it).