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  2. 3-sphere - Wikipedia

    en.wikipedia.org/wiki/3-sphere

    Direct projection of 3-sphere into 3D space and covered with surface grid, showing structure as stack of 3D spheres (2-spheres) In mathematics, a hypersphere or 3-sphere is a 4-dimensional analogue of a sphere, and is the 3-dimensional n-sphere. In 4-dimensional Euclidean space, it is the set of points equidistant from a fixed central point.

  3. Exotic sphere - Wikipedia

    en.wikipedia.org/wiki/Exotic_sphere

    One of the first examples of an exotic sphere found by Milnor (1956, section 3) was the following. Let B 4 {\displaystyle B^{4}} be the unit ball in R 4 {\displaystyle \mathbb {R} ^{4}} , and let S 3 {\displaystyle S^{3}} be its boundary —a 3-sphere which we identify with the group of unit quaternions .

  4. Mean curvature flow - Wikipedia

    en.wikipedia.org/wiki/Mean_curvature_flow

    For surfaces of dimension two or more this is a theorem of Gerhard Huisken; [5] for the one-dimensional curve-shortening flow it is the Gage–Hamilton–Grayson theorem. However, there exist embedded surfaces of two or more dimensions other than the sphere that stay self-similar as they contract to a point under the mean-curvature flow ...

  5. Spherical geometry - Wikipedia

    en.wikipedia.org/wiki/Spherical_geometry

    In the extrinsic 3-dimensional picture, a great circle is the intersection of the sphere with any plane through the center. In the intrinsic approach, a great circle is a geodesic; a shortest path between any two of its points provided they are close enough. Or, in the (also intrinsic) axiomatic approach analogous to Euclid's axioms of plane ...

  6. n-sphere - Wikipedia

    en.wikipedia.org/wiki/N-sphere

    In mathematics, an n-sphere or hypersphere is an ⁠ ⁠-dimensional generalization of the ⁠ ⁠-dimensional circle and ⁠ ⁠-dimensional sphere to any non-negative integer ⁠ ⁠. The circle is considered 1-dimensional, and the sphere 2-dimensional, because the surfaces themselves are 1- and 2-dimensional respectively, not because they ...

  7. Hopf fibration - Wikipedia

    en.wikipedia.org/wiki/Hopf_fibration

    Technically, Hopf found a many-to-one continuous function (or "map") from the 3-sphere onto the 2-sphere such that each distinct point of the 2-sphere is mapped from a distinct great circle of the 3-sphere . [1] Thus the 3-sphere is composed of fibers, where each fiber is a circle — one for each point of the 2-sphere.

  8. Spherical 3-manifold - Wikipedia

    en.wikipedia.org/wiki/Spherical_3-manifold

    The lens space L(1,0) is the 3-sphere, and the lens space L(2,1) is 3 dimensional real projective space. Lens spaces can be represented as Seifert fiber spaces in many ways, usually as fiber spaces over the 2-sphere with at most two exceptional fibers, though the lens space with fundamental group of order 4 also has a representation as a ...

  9. Quaternions and spatial rotation - Wikipedia

    en.wikipedia.org/wiki/Quaternions_and_spatial...

    p ↦ q p for q = ⁠ 1 + i + j + k / 2 ⁠ on the unit 3-sphere. Note this one-sided (namely, left) multiplication yields a 60° rotation of quaternions. The length of is √ 3, the half angle is ⁠ π / 3 ⁠ (60°) with cosine ⁠ 1 / 2 ⁠, (cos 60° = 0.5) and sine ⁠ √ 3 / 2 ⁠, (sin 60° ≈ 0.866). We are therefore dealing with a ...

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