Normal Hausdorff space: Difference between revisions
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===Stronger properties=== | ===Stronger properties=== | ||
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! property !! quick description !! proof of implication !! proof of strictness (reverse implication failure) !! intermediate notions | |||
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| [[Weaker than::Compact Hausdorff space]] || a [[compact space]] that is also [[Hausdorff space|Hausdorff]] || [[compact Hausdorff implies normal]] || [[normal not implies compact]] || {{intermediate notions short|normal space|compact Hausdorff space}} | |||
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| [[Weaker than::Hereditarily normal space]] || every subspace is a [[normal space]] under the [[subspace topology]] || || [[normality is not hereditary]] || {{intermediate notions short|normal space|hereditarily normal space}} | |||
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| [[Weaker than::Paracompact Hausdorff space]] || a [[paracompact space]] that is also [[Hausdorff space|Hausdorff]] || [[paracompact Hausdorff implies normal]] || [[normal not implies paracompact]] || {{intermediate notions short|normal space|paracompact Hausdorff space}} | |||
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| [[Weaker than::Regular Lindelof space]] || both a [[regular space]] and a [[Lindelof space]] || [[regular Lindelof implies normal]] || [[normal not implies Lindelof]] || {{intermediate notions short|normal space|regular Lindelof space}} | |||
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| [[Weaker than::Perfectly normal space]] || every [[closed subset]] is a [[G-delta subset]] || [[perfectly normal implies normal]] || [[normal not implies perfectly normal]] || {{intermediate notions short|normal space|perfectly normal space}} | |||
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| [[Weaker than::Metrizable space]] || can be given the structure of a [[metric space]] with the same topology || [[metrizable implies normal]] || [[normal not implies metrizable]] || {{intermediate notions short|normal space|metrizable space}} | |||
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| [[Weaker than::CW-space]] || the underlying topological space of a [[CW-complex]] || [[CW implies normal]] || [[normal not implies CW]] || {{intermediate notions short|normal space|CW-space}} | |||
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| [[Weaker than::Linearly orderable space]] || obtained using the order topology for some linear ordering || [[linearly orderable implies normal]] || [[normal not implies linearly orderable]] || {{intermediate notions short|normal space|linearly orderable space}} | |||
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| [[Weaker than::Collectionwise normal space]] || || || || || | |||
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| [[Weaker than::Monotonically normal space]] || || || || || | |||
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===Weaker properties=== | ===Weaker properties=== | ||
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! property !! quick description !! proof of implication !! proof of strictness (reverse implication failure) !! intermediate notions | |||
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| [[Stronger than::Completely regular space]] (also called <math>T_{3.5}</math>) || continuous function taking 0 at point, 1 at disjoint closed set || [[normal implies completely regular]] || [[completely regular not implies normal]] || {{intermediate notions short|completely regular space|normal space}} | |||
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| [[Stronger than::Regular space]] (also called <math>T_3</math>) || open subsets separating point and disjoint closed subset || [[normal implies regular]] || [[regular not implies normal]] || {{intermediate notions short|regular space|normal space}} | |||
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| [[Stronger than::Hausdorff space]] || open subsets separating distinct points || (via regular) || (via regular) || {{intermediate notions short|Hausdorff space|normal space}} | |||
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| [[Stronger than::T1 space]] || every point is closed || by definition || (via Hausdorff, regular) || {{intermediate notions short|T1 space|normal space}} | |||
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| [[Stronger than::Kolmogorov space]] (also called <math>T_0</math>) || for any two points, open subset containing one and not the other || by definition || || {{intermediate notions short|Kolmogorov space|normal space}} | |||
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==Metaproperties== | ==Metaproperties== | ||
Revision as of 19:44, 23 October 2009
This article is about a basic definition in topology.
VIEW: Definitions built on this | Facts about this | Survey articles about this
View a complete list of basic definitions in topology
This article defines a property of topological space that is pivotal (viz important) among currently studied properties of topological spaces
In the T family (properties of topological spaces related to separation axioms), this is called: T4
For survey articles related to this, refer: Category:Survey articles related to normality
Definition
Symbol-free definition
A topological space is said to be normal if it satisfies the following equivalent conditions:
- All points in it are closed sets, and given any two disjoint closed subsets in the topological space, there are disjoint open sets containing them.
- All points in it are closed sets, and given any two disjoint closed subsets, there is a continuous function taking the value at one closed set and 1 at the other
- All points are closed, and every point-finite open cover possesses a shrinking.
Some versions of the definition omit the condition that points are closed subsets. This is a different, and weaker, notion, and is covered here as normal-minus-Hausdorff space.
Definition with symbols
A topological space is said to be normal if it satisfies the following equivalent conditions:
- For all , the set is closed, and for any two closed subsets , there exist open subsets such that , and .
- For all , the set is closed, and for any two closed subsets , there exists a continuous map such that and .
- For all , the set is closed, and for any point-finite open cover of , there exists a shrinking : the form an open cover and .
Some versions of the definition omit the condition that points are closed subsets. This is a different, and weaker, notion, and is covered here as normal-minus-Hausdorff space.
Equivalence of definitions
The direction (2) implies (1) is easy: if there is a continuous function such that and , then we can take the open sets and .
The direction (1) implies (2) follows from Urysohn's lemma.
Relation with other properties
This property is a pivotal (important) member of its property space. Its variations, opposites, and other properties related to it and defined using it are often studied
Stronger properties
Weaker properties
| property | quick description | proof of implication | proof of strictness (reverse implication failure) | intermediate notions |
|---|---|---|---|---|
| Completely regular space (also called ) | continuous function taking 0 at point, 1 at disjoint closed set | normal implies completely regular | completely regular not implies normal | |FULL LIST, MORE INFO |
| Regular space (also called ) | open subsets separating point and disjoint closed subset | normal implies regular | regular not implies normal | Completely regular space|FULL LIST, MORE INFO |
| Hausdorff space | open subsets separating distinct points | (via regular) | (via regular) | Completely regular space|FULL LIST, MORE INFO |
| T1 space | every point is closed | by definition | (via Hausdorff, regular) | Completely regular space|FULL LIST, MORE INFO |
| Kolmogorov space (also called ) | for any two points, open subset containing one and not the other | by definition | |FULL LIST, MORE INFO |
Metaproperties
Products
NO: This property of topological spaces is not a product-closed property of topological spaces: a product of topological spaces, each satisfying the property, when equipped with the product topology, does not necessarily satisfy the property.
View other properties that are not product-closed
A direct product of normal spaces need not be normal. For full proof, refer: Normality is not product-closed
Weak hereditariness
This property of topological spaces is weakly hereditary or closed subspace-closed; in other words, any closed subset (equipped with the subspace topology) of a space with the property, also has the property.
View all weakly hereditary properties of topological spaces | View all subspace-hereditary properties of topological spaces
Any subspace of a normal space need not be normal. However, any closed subset of a normal space is normal, under the subspace topology. Further information: Normality is weakly hereditary
Facts
- Any connected normal space having at least two points (and more generally, any connected Urysohn space having at least two points) is uncountable. For full proof, refer: connected Urysohn implies uncountable
Effect of property operators
The subspace operator
Applying the subspace operator to this property gives: completely regular space
A topological space can be realized as a subspace of a normal space iff it is completely regular. Necessity follows from the fact that normal spaces are completely regular, and any subspace of a completely regular space is completely regular. Sufficiency follows from the Stone-Cech compactification.
The hereditarily operator
Applying the hereditarily operator to this property gives: hereditarily normal space
A topological space in which every subspace is normal is termed hereditarily normal (some people call it completely normal). Note that metrizable spaces are hereditarily normal.
The locally operator
Applying the locally operator to this property gives: locally normal space
References
Textbook references
- Topology (2nd edition) by James R. MunkresMore info, Page 195,Chapter 4, Section 31 (formal definition, along with definition of regular space)
- Lecture Notes on Elementary Topology and Geometry (Undergraduate Texts in Mathematics) by I. M. Singer and J. A. ThorpeMore info, Page 28 (formal definition)