In mathematics, a pseudometric space is a generalization of a metric space in which the distance between two distinct points can be zero. Pseudometric spaces were introduced by Đuro Kurepa[1][2] in 1934. In the same way as every normed space is a metric space, every seminormed space is a pseudometric space. Because of this analogy, the term semimetric space (which has a different meaning in topology) is sometimes used as a synonym, especially in functional analysis.

When a topology is generated using a family of pseudometrics, the space is called a gauge space.

Definition

edit

A pseudometric space is a set together with a non-negative real-valued function called a pseudometric, such that for every

  1. Symmetry:
  2. Subadditivity/Triangle inequality:

Unlike a metric space, points in a pseudometric space need not be distinguishable; that is, one may have for distinct values

It worth while noting that Symmetry and classical Triangle inequality can be replaced with single modified Triangle one: . This inequality combines symmetry and classical Triangle inequality.

Examples

edit

Any metric space is a pseudometric space. Pseudometrics arise naturally in functional analysis. Consider the space of real-valued functions together with a special point This point then induces a pseudometric on the space of functions, given by for

A seminorm induces the pseudometric . This is a convex function of an affine function of (in particular, a translation), and therefore convex in . (Likewise for .)

Conversely, a homogeneous, translation-invariant pseudometric induces a seminorm.

Pseudometrics also arise in the theory of hyperbolic complex manifolds: see Kobayashi metric.

Every measure space can be viewed as a complete pseudometric space by defining for all where the triangle denotes symmetric difference.

If is a function and d2 is a pseudometric on X2, then gives a pseudometric on X1. If d2 is a metric and f is injective, then d1 is a metric.

Topology

edit

The pseudometric topology is the topology generated by the open balls which form a basis for the topology.[3] A topological space is said to be a pseudometrizable space[4] if the space can be given a pseudometric such that the pseudometric topology coincides with the given topology on the space.

The difference between pseudometrics and metrics is entirely topological. That is, a pseudometric is a metric if and only if the topology it generates is T0 (that is, distinct points are topologically distinguishable).

The definitions of Cauchy sequences and metric completion for metric spaces carry over to pseudometric spaces unchanged.[5] The notion of a continuous function is also largely unchanged when applied to a pseudometric space.

Metric identification

edit

The vanishing of the pseudometric induces an equivalence relation, called the metric identification, that converts the pseudometric space into a full-fledged metric space. This is done by defining if . Let be the quotient space of by this equivalence relation and define This is well defined because for any we have that and so and vice versa. Then is a metric on and is a well-defined metric space, called the metric space induced by the pseudometric space .[6][7]

The metric identification preserves the induced topologies. That is, a subset is open (or closed) in if and only if is open (or closed) in and is saturated. The topological identification is the Kolmogorov quotient.

An example of this construction is the completion of a metric space by its Cauchy sequences.

Properties

edit
  • In a pseudometric space, the set of all points (say, X) which are of distance 0 relative to another set Y in the space is the closure of Y, or cl(Y) = X.[8]

See also

edit

Notes

edit
  1. ^ Kurepa, Đuro (1934). "Tableaux ramifiés d'ensembles, espaces pseudodistaciés". C. R. Acad. Sci. Paris. 198 (1934): 1563–1565.
  2. ^ Collatz, Lothar (1966). Functional Analysis and Numerical Mathematics. New York, San Francisco, London: Academic Press. p. 51.
  3. ^ "Pseudometric topology". PlanetMath.
  4. ^ Willard, p. 23
  5. ^ Cain, George (Summer 2000). "Chapter 7: Complete pseudometric spaces" (PDF). Retrieved 7 October 2020.{{cite web}}: CS1 maint: deprecated archival service (link)
  6. ^ Howes, Norman R. (1995). Modern Analysis and Topology. New York, NY: Springer. p. 27. ISBN 0-387-97986-7. Retrieved 10 September 2012. Let be a pseudo-metric space and define an equivalence relation in by if . Let be the quotient space and the canonical projection that maps each point of onto the equivalence class that contains it. Define the metric in by for each pair . It is easily shown that is indeed a metric and defines the quotient topology on .
  7. ^ Simon, Barry (2015). A comprehensive course in analysis. Providence, Rhode Island: American Mathematical Society. ISBN 978-1470410995.
  8. ^ Kelley, John L. (2017). General Topology. Dover Books on Mathematics. Mineola: Dover Publications. p. 120. ISBN 978-0-486-81544-2.

References

edit

📚 Artikel Terkait di Wikipedia

Complete metric space

limit exists because the real numbers are complete.) This is only a pseudometric, not yet a metric, since two different Cauchy sequences may have the

Complete topological vector space

x=y.} Thus every metric space is a pseudometric space and a pseudometric space ( X , p ) {\displaystyle (X,p)} is a metric space if and only if p {\displaystyle

Metrizable topological vector space

pseudometrizable) topological vector space (TVS) is a TVS whose topology is induced by a metric (resp. pseudometric). An LM-space is an inductive limit of a sequence

Metric space

From a categorical point of view, the extended pseudometric spaces and the extended pseudoquasimetric spaces, along with their corresponding nonexpansive

Pseudometric

non-degenerate, smooth, symmetric tensor field of arbitrary signature Pseudometric space, a generalization of a metric that does not necessarily distinguish

Baire category theorem

topological space is a Baire space. More generally, every complete pseudometric space is a Baire space. (BCT2) Every locally compact Hausdorff space is a Baire

Normed vector space

\|\mathbf {u} -\mathbf {v} \|.} This turns the seminormed space into a pseudometric space (notice this is weaker than a metric) and allows the definition

Glossary of general topology

A space is pseudocompact if every real-valued continuous function on the space is bounded. Pseudometric See Pseudometric space. Pseudometric space A pseudometric