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  2. File:Plane-line intersection.svg - Wikipedia

    en.wikipedia.org/wiki/File:Plane-line...

    File:Plane-line intersection.svg. Add languages. Page contents not supported in other languages. ... Diagram demonstrating the three types of plane/line intersections:

  3. Intersection (geometry) - Wikipedia

    en.wikipedia.org/wiki/Intersection_(geometry)

    The intersection points are: (−0.8587, 0.7374, −0.6332), (0.8587, 0.7374, 0.6332). A line–sphere intersection is a simple special case. Like the case of a line and a plane, the intersection of a curve and a surface in general position consists of discrete points, but a curve may be partly or totally contained in a surface.

  4. Line–plane intersection - Wikipedia

    en.wikipedia.org/wiki/Line–plane_intersection

    The three possible plane-line relationships in three dimensions. (Shown in each case is only a portion of the plane, which extends infinitely far.) In analytic geometry, the intersection of a line and a plane in three-dimensional space can be the empty set, a point, or a line. It is the entire line if that line is embedded in the plane, and is ...

  5. Desargues configuration - Wikipedia

    en.wikipedia.org/wiki/Desargues_configuration

    Although it may be embedded in two dimensions, the Desargues configuration has a very simple construction in three dimensions: for any configuration of five planes in general position in Euclidean space, the ten points where three planes meet and the ten lines formed by the intersection of two of the planes together form an instance of the configuration. [2]

  6. Intersection curve - Wikipedia

    en.wikipedia.org/wiki/Intersection_curve

    The analytic determination of the intersection curve of two surfaces is easy only in simple cases; for example: a) the intersection of two planes, b) plane section of a quadric (sphere, cylinder, cone, etc.), c) intersection of two quadrics in special cases. For the general case, literature provides algorithms, in order to calculate points of ...

  7. Plane–plane intersection - Wikipedia

    en.wikipedia.org/wiki/Planeplane_intersection

    This is found by noticing that the line must be perpendicular to both plane normals, and so parallel to their cross product (this cross product is zero if and only if the planes are parallel, and are therefore non-intersecting or entirely coincident).

  8. Incidence geometry - Wikipedia

    en.wikipedia.org/wiki/Incidence_geometry

    The order of a finite projective plane is n = k – 1, that is, one less than the number of points on a line. All known projective planes have orders that are prime powers. A projective plane of order n is an ((n 2 + n + 1) n + 1) configuration. The smallest projective plane has order two and is known as the Fano plane.

  9. Monge's theorem - Wikipedia

    en.wikipedia.org/wiki/Monge's_theorem

    The three apex points always define a plane in three dimensions, and all three centers of similarity must lie in the plane containing the circular bases. Hence, the three centers must lie on the intersection of the two planes, which must be a line in three dimensions. [2] Monge's theorem can also be proved by using Desargues' theorem.