Adherent point - Misplaced Pages

(Redirected from Point of closure) Point that belongs to the closure of some given subset of a topological space

In mathematics, an adherent point (also closure point or point of closure or contact point) of a subset $A$ of a topological space $X,$ is a point $x$ in $X$ such that every neighbourhood of $x$ (or equivalently, every open neighborhood of $x$ ) contains at least one point of $A.$ A point $x\in X$ is an adherent point for $A$ if and only if $x$ is in the closure of $A,$ thus

x\in \operatorname {Cl} _{X}A

if and only if for all open subsets

U\subseteq X,

x\in U{\text{ then }}U\cap A\neq \varnothing .

This definition differs from that of a limit point of a set, in that for a limit point it is required that every neighborhood of $x$ contains at least one point of $A$ different from $x.$ Thus every limit point is an adherent point, but the converse is not true. An adherent point of $A$ is either a limit point of $A$ or an element of $A$ (or both). An adherent point which is not a limit point is an isolated point.

Intuitively, having an open set $A$ defined as the area within (but not including) some boundary, the adherent points of $A$ are those of $A$ including the boundary.

Examples and sufficient conditions

If $S$ is a non-empty subset of $\mathbb {R}$ which is bounded above, then the supremum $\sup S$ is adherent to $S.$ In the interval $(a,b],$ $a$ is an adherent point that is not in the interval, with usual topology of $\mathbb {R} .$

A subset $S$ of a metric space $M$ contains all of its adherent points if and only if $S$ is (sequentially) closed in $M.$

Adherent points and subspaces

Suppose $x\in X$ and $S\subseteq X\subseteq Y,$ where $X$ is a topological subspace of $Y$ (that is, $X$ is endowed with the subspace topology induced on it by $Y$ ). Then $x$ is an adherent point of $S$ in $X$ if and only if $x$ is an adherent point of $S$ in $Y.$

Proof
By assumption, $S\subseteq X\subseteq Y$ and $x\in X.$ Assuming that $x\in \operatorname {Cl} _{X}S,$ let $V$ be a neighborhood of $x$ in $Y$ so that $x\in \operatorname {Cl} _{Y}S$ will follow once it is shown that $V\cap S\neq \varnothing .$ The set $U:=V\cap X$ is a neighborhood of $x$ in $X$ (by definition of the subspace topology) so that $x\in \operatorname {Cl} _{X}S$ implies that $\varnothing \neq U\cap S.$ Thus $\varnothing \neq U\cap S=(V\cap X)\cap S\subseteq V\cap S,$ as desired. For the converse, assume that $x\in \operatorname {Cl} _{Y}S$ and let $U$ be a neighborhood of $x$ in $X$ so that $x\in \operatorname {Cl} _{X}S$ will follow once it is shown that $U\cap S\neq \varnothing .$ By definition of the subspace topology, there exists a neighborhood $V$ of $x$ in $Y$ such that $U=V\cap X.$ Now $x\in \operatorname {Cl} _{Y}S$ implies that $\varnothing \neq V\cap S.$ From $S\subseteq X$ it follows that $S=X\cap S$ and so $\varnothing \neq V\cap S=V\cap (X\cap S)=(V\cap X)\cap S=U\cap S,$ as desired. $\blacksquare$

Proof

By assumption, $S\subseteq X\subseteq Y$ and $x\in X.$ Assuming that $x\in \operatorname {Cl} _{X}S,$ let $V$ be a neighborhood of $x$ in $Y$ so that $x\in \operatorname {Cl} _{Y}S$ will follow once it is shown that $V\cap S\neq \varnothing .$ The set $U:=V\cap X$ is a neighborhood of $x$ in $X$ (by definition of the subspace topology) so that $x\in \operatorname {Cl} _{X}S$ implies that $\varnothing \neq U\cap S.$ Thus $\varnothing \neq U\cap S=(V\cap X)\cap S\subseteq V\cap S,$ as desired. For the converse, assume that $x\in \operatorname {Cl} _{Y}S$ and let $U$ be a neighborhood of $x$ in $X$ so that $x\in \operatorname {Cl} _{X}S$ will follow once it is shown that $U\cap S\neq \varnothing .$ By definition of the subspace topology, there exists a neighborhood $V$ of $x$ in $Y$ such that $U=V\cap X.$ Now $x\in \operatorname {Cl} _{Y}S$ implies that $\varnothing \neq V\cap S.$ From $S\subseteq X$ it follows that $S=X\cap S$ and so $\varnothing \neq V\cap S=V\cap (X\cap S)=(V\cap X)\cap S=U\cap S,$ as desired. $\blacksquare$

Consequently, $x$ is an adherent point of $S$ in $X$ if and only if this is true of $x$ in every (or alternatively, in some) topological superspace of $X.$

Adherent points and sequences

If $S$ is a subset of a topological space then the limit of a convergent sequence in $S$ does not necessarily belong to $S,$ however it is always an adherent point of $S.$ Let $\left(x_{n}\right)_{n\in \mathbb {N} }$ be such a sequence and let $x$ be its limit. Then by definition of limit, for all neighbourhoods $U$ of $x$ there exists $n\in \mathbb {N}$ such that $x_{n}\in U$ for all $n\geq N.$ In particular, $x_{N}\in U$ and also $x_{N}\in S,$ so $x$ is an adherent point of $S.$ In contrast to the previous example, the limit of a convergent sequence in $S$ is not necessarily a limit point of $S$ ; for example consider $S=\{0\}$ as a subset of $\mathbb {R} .$ Then the only sequence in $S$ is the constant sequence $0,0,\ldots$ whose limit is $0,$ but $0$ is not a limit point of $S;$ it is only an adherent point of $S.$

Notes

Citations

Steen, p. 5; Lipschutz, p. 69; Adamson, p. 15.

References

Adamson, Iain T., A General Topology Workbook, Birkhäuser Boston; 1st edition (November 29, 1995). ISBN 978-0-8176-3844-3.
Apostol, Tom M., Mathematical Analysis, Addison Wesley Longman; second edition (1974). ISBN 0-201-00288-4
Lipschutz, Seymour; Schaum's Outline of General Topology, McGraw-Hill; 1st edition (June 1, 1968). ISBN 0-07-037988-2.
L.A. Steen, J.A.Seebach, Jr., Counterexamples in topology, (1970) Holt, Rinehart and Winston, Inc..
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Category:

General topology