Closeness is a basic concept in
topology
Topology (from the Greek language, Greek words , and ) is the branch of mathematics concerned with the properties of a Mathematical object, geometric object that are preserved under Continuous function, continuous Deformation theory, deformat ...
and related areas in
mathematics
Mathematics is a field of study that discovers and organizes methods, Mathematical theory, theories and theorems that are developed and Mathematical proof, proved for the needs of empirical sciences and mathematics itself. There are many ar ...
. Intuitively, we say two sets are close if they are arbitrarily near to each other. The concept can be defined naturally in a
metric space
In mathematics, a metric space is a Set (mathematics), set together with a notion of ''distance'' between its Element (mathematics), elements, usually called point (geometry), points. The distance is measured by a function (mathematics), functi ...
where a notion of distance between elements of the space is defined, but it can be generalized to
topological spaces where we have no concrete way to measure distances.
The
closure operator
In mathematics, a closure operator on a Set (mathematics), set ''S'' is a Function (mathematics), function \operatorname: \mathcal(S)\rightarrow \mathcal(S) from the power set of ''S'' to itself that satisfies the following conditions for all sets ...
''closes'' a given set by mapping it to a
closed set
In geometry, topology, and related branches of mathematics, a closed set is a Set (mathematics), set whose complement (set theory), complement is an open set. In a topological space, a closed set can be defined as a set which contains all its lim ...
which contains the original set and all points close to it. The concept of closeness is related to
limit point
In mathematics, a limit point, accumulation point, or cluster point of a set S in a topological space X is a point x that can be "approximated" by points of S in the sense that every neighbourhood of x contains a point of S other than x itself. A ...
.
Definition
Given a
metric space
In mathematics, a metric space is a Set (mathematics), set together with a notion of ''distance'' between its Element (mathematics), elements, usually called point (geometry), points. The distance is measured by a function (mathematics), functi ...
a point
is called close or near to a set
if
:
,
where the distance between a point and a set is defined as
:
where inf stands for
infimum
In mathematics, the infimum (abbreviated inf; : infima) of a subset S of a partially ordered set P is the greatest element in P that is less than or equal to each element of S, if such an element exists. If the infimum of S exists, it is unique ...
. Similarly a set
is called close to a set
if
:
where
:
.
Properties
*if a point
is close to a set
and a set
then
and
are close, but the
converse is not true.
*closeness between a point and a set is preserved by
continuous functions.
*closeness between two sets is preserved by
uniformly continuous functions.
Closeness relation between a point and a set
Let
be some set. A relation between the points of
and the subsets of
is a closeness relation if it satisfies the following conditions:
Let
and
be two subsets of
and
a point in
.
[Arkhangel'skii, A. V.; Pontryagin, L.S. General Topology I: Basic Concepts and Constructions, Dimension Theory. Encyclopaedia of Mathematical Sciences (Book 17), Springer 1990, p. 9.]
*If
then
is close to
.
*if
is close to
then
.
*if
is close to
and
then
is close to
.
*if
is close to
then
is close to
or
is close to
.
*if
is close to
and for every point
,
is close to
, then
is close to
.
Topological spaces have a closeness relationship built into them: defining a point
to be close to a subset
if and only if
is in the closure of
satisfies the above conditions. Likewise, given a set with a closeness relation, defining a point
to be in the closure of a subset
if and only if
is close to
satisfies the
Kuratowski closure axioms In topology and related branches of mathematics, the Kuratowski closure axioms are a set of axioms that can be used to define a topological structure on a Set (mathematics), set. They are equivalent to the more commonly used open set definition. The ...
. Thus, defining a closeness relation on a set is exactly equivalent to defining a topology on that set.
Closeness relation between two sets
Let
,
and
be sets.
*if
and
are close then
and
.
*if
and
are close then
and
are close.
*if
and
are close and
then
and
are close.
*if
and
are close then either
and
are close or
and
are close.
*if
then
and
are close.
Generalized definition
The closeness relation between a set and a point can be generalized to any topological space. Given a topological space and a point
,
is called close to a set
if
.
To define a closeness relation between two sets the topological structure is too weak and we have to use a
uniform structure
In the mathematical field of topology, a uniform space is a topological space, set with additional mathematical structure, structure that is used to define ''uniform property, uniform properties'', such as complete space, completeness, uniform con ...
. Given a
uniform space
In the mathematical field of topology, a uniform space is a topological space, set with additional mathematical structure, structure that is used to define ''uniform property, uniform properties'', such as complete space, completeness, uniform con ...
, sets
and
are called close to each other if they intersect all
entourages, that is, for any entourage
,
is non-empty.
See also
*
Topological space
In mathematics, a topological space is, roughly speaking, a Geometry, geometrical space in which Closeness (mathematics), closeness is defined but cannot necessarily be measured by a numeric Distance (mathematics), distance. More specifically, a to ...
*
Uniform space
In the mathematical field of topology, a uniform space is a topological space, set with additional mathematical structure, structure that is used to define ''uniform property, uniform properties'', such as complete space, completeness, uniform con ...
References
{{DEFAULTSORT:Closeness (Mathematics)
General topology