Resolvability is open subspace-closed: Difference between revisions

Latest revision as of 04:34, 30 January 2014

This article gives the statement, and possibly proof, of a topological space property (i.e., resolvable space) satisfying a topological space metaproperty (i.e., open subspace-closed property of topological spaces)
View all topological space metaproperty satisfactions | View all topological space metaproperty dissatisfactions
Get more facts about resolvable space |Get facts that use property satisfaction of resolvable space | Get facts that use property satisfaction of resolvable space|Get more facts about open subspace-closed property of topological spaces

Statement

Suppose $X$ is a resolvable space and $U$ is an open subset of $X$ . Then, $U$ is a resolvable space with the subspace topology.

Facts used

Intersection of dense subset with open subset is dense in the open subset

Proof

Given: A topological space $X$ with disjoint dense subsets $C$ and $D$ . An open subset $U$ of $X$ .

To prove: $U$ has two disjoint dense subsets.

Proof:

Step no.	Assertion/construction	Facts used	Given data used	Previous steps used	Explanation
1	$C \cap U$ and $D \cap U$ are both dense in $U$ .	Fact (1)	$C, D$ dense in $X$ $U$ open in $X$		given-fact direct
2	$C \cap U$ and $D \cap U$ are disjoint.		$C, D$ are disjoint		basic set theory!
3	$C \cap U$ and $D \cap U$ are the desired disjoint dense subsets in $U$			Steps (1), (2)	Step-combination direct

@@ Line 2: / Line 2: @@
 property = resolvable space|
 metaproperty = open subspace-closed property of topological spaces}}
+[[Difficulty level::1| ]]
 ==Statement==