Space of path components: Difference between revisions
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==Definition== | ==Definition== | ||
===As a set and | ===As a set and pointed set=== | ||
Suppose <math>X</math> is a [[topological space]] (we sometimes take a [[based topological space]], but the basepoint turns out to be irrelevant). The ''' | Suppose <math>X</math> is a [[topological space]] (we sometimes take a [[based topological space]], but the basepoint turns out to be irrelevant). The '''set of path components''' of <math>X</math>, denoted <math>\pi_0(X)</math>, is defined as follows: | ||
* As a set, it is the set of [[path component]]s of <math>X</math>. In other words, it is the set of equivalence classes of <math>X</math> under the equivalence relation <math>x \sim y</math> iff there is a [[path]] from <math>x</math> to <math>y</math> in <math>X</math>. | * As a set, it is the set of [[path component]]s of <math>X</math>. In other words, it is the set of equivalence classes of <math>X</math> under the equivalence relation <math>x \sim y</math> iff there is a [[path]] from <math>x</math> to <math>y</math> in <math>X</math>. | ||
* As a [[topological space]], | * If <math>X</math> is nonempty and <math>x \in X</math>, then <math>\pi_0(X,x)</math>, as a ''pointed set'', is defined as the set <math>\pi_0(X)</math> with the chosen basepoint being the element of <math>\pi_0(X)</math> that is the path component of <math>x</math>. | ||
===As a topological space=== | |||
As a [[topological space]], the '''space of path components''' is obtained by taking the [[quotient topology]] of <math>X</math> under the equivalence relation <math>x \sim y</math> iff there is a path from <math>x</math> to <math>y</math> in <math>X</math>. | |||
For a [[locally path-connected space]], the space of path components is a [[discrete space]]. Thus, often, when dealing with such spaces, we ignore the topology. | For a [[locally path-connected space]], the space of path components is a [[discrete space]]. Thus, often, when dealing with such spaces, we ignore the topology. |
Revision as of 04:36, 31 December 2010
Definition
As a set and pointed set
Suppose is a topological space (we sometimes take a based topological space, but the basepoint turns out to be irrelevant). The set of path components of , denoted , is defined as follows:
- As a set, it is the set of path components of . In other words, it is the set of equivalence classes of under the equivalence relation iff there is a path from to in .
- If is nonempty and , then , as a pointed set, is defined as the set with the chosen basepoint being the element of that is the path component of .
As a topological space
As a topological space, the space of path components is obtained by taking the quotient topology of under the equivalence relation iff there is a path from to in .
For a locally path-connected space, the space of path components is a discrete space. Thus, often, when dealing with such spaces, we ignore the topology.
As a monoid
If is a topological group, topological monoid, or (most generally) a H-space, then naturally acquires the structure of a monoid (in fact, a topological monoid, but a discrete one if is locally path-connected). The structure is obtained by quotienting the original monoid (or H-space multiplication) by the equivalence relation of being path-connected.
In order to perform this quotienting, we need to justify that the relation of being in the same path component is a congruence for the original monoid (or H-space multiplication). This is indeed guaranteed by the continuity of multiplication: if and are in the same path component, and and are in the same path component, then and are in the same path component, because the paths can be multiplied pointwise.
Further, even if the original multiplication was not associative but only associative up to homotopy (making it an H-space), the new multiplication is strictly associative because any homotopy must descend to the identity map at the level of path components.