nLab regular monomorphism

Redirected from "regular monics".
Contents

Context

Category theory

Higher category theory

higher category theory

Basic concepts

Basic theorems

Applications

Models

Morphisms

Functors

Universal constructions

Extra properties and structure

1-categorical presentations

Contents

Idea

A monomorphism is regular if it behaves like an embedding.

The universal factorization through an embedding is the image.

Definition

Definition

A regular monomorphism is a morphism f:cdf : c \to d in some category which occurs as the equalizer of some pair of parallel morphisms ded \stackrel{\to}{\to} e, i.e. for which a limit diagram of the form

cfde c \stackrel{f}{\to} d \stackrel{\longrightarrow}{\longrightarrow} e

exists.

From the defining universal property of the limit it follows directly that a regular monomorphism is in particular a monomorphism.

The dual concept is that of a regular epimorphism.

Remark

Beware that (CassidyHebertKelly) use ‘regular monomorphism’ in a more general way: for them, a regular monomorphism is by definition the joint equalizer of an arbitrary family of parallel pairs of morphisms with common domain. This concept is sometimes called strict monomorphism, dual to the more commonly used strict epimorphism.

Properties

Relation to effective monomorphisms

Definition

A monomorphism i:ABi: A \to B is an effective monomorphism if it is the equalizer of its cokernel pair: if the pushout

A i B i i 1 B i 2 B+ AB\array{ A & \stackrel{i}{\to} & B \\ i \downarrow & & \downarrow i_1 \\ B & \underset{i_2}{\to} & B +_A B }

exists and ii is the equalizer of the pair of coprojections i 1,i 2:BB+ ABi_1, i_2: B \stackrel{\to}{\to} B +_A B. Obviously effective monomorphisms are regular.

Proposition

In a category with equalizers and cokernel pairs, the class of regular monomorphism coincides with that of effective monomorphism (def. ).

Proof

It is clear that every effective monomorphism is regular, we need to show the converse.

Suppose i:ABi \colon A \to B is the equalizer of a pair of morphisms f,g:BCf, g: B \to C, and with notation as in def. , let j:EBj: E \to B be the equalizer of the pair of coprojections i 1,i 2i_1, i_2. Since fi=gif \circ i = g \circ i, there exists a unique map ϕ:B+ ABC\phi: B +_A B \to C such that ϕi 1=f\phi \circ i_1 = f and ϕi 2=g\phi \circ i_2 = g. Then, since

fj=ϕi 1j=ϕi 2j=gjf j = \phi i_1 j = \phi i_2 j = g j

and since i:ABi: A \to B is the equalizer of the pair (f,g)(f, g), there is a unique map k:EAk: E \to A such that j=ikj = i k. Since i 1i=i 2ii_1 i = i_2 i, there is a unique map l:AEl: A \to E such that i=jli = j l. The maps kk, ll are mutually inverse.

Examples

Proposition

(regular monomorphisms of topological spaces)

In the category Top of topological space,

  1. the monomorphisms are the those continuous functions which are injective functions;

  2. the regular monomorphisms are the topological embeddings (that is, the injective continuous functions whose sources have the topologies induced from their targets); these are in fact all of the extremal monomorphisms.

Proof

Regarding the first statement: an injective continuous function f:XYf \colon X \to Y clearly has the cancellation property that defines monomorphisms: for parallel continuous functions g 1,g 2:ZXg_1,g_2 \colon Z \to X: if fg 1=fg 1f \circ g_1 = f \circ g_1, then g 1=g 2g_1 = g_2 because continuous functions are equal precisely if their underlying functions of sets are equal. Conversely, if ff has the cancellation property, then testing on points g 1,g 2:*Xg_1, g_2 \colon \ast \to X gives that ff is injective.

Regarding the second statement: from the construction of equalizers in Top (this example) we have that these are topological subspace inclusions.

Conversely, let i:XYi \colon X \to Y be a topological subspace embedding. We need to show that this is the equalizer of some pair of parallel morphisms.

To that end, form the cokernel pair (i 1,i 2)(i_1, i_2) by taking the pushout of ii against itself (in the category of sets, and using the quotient topology on a disjoint union space). By prop. , the equalizer of that pair is the set-theoretic equalizer of that pair of functions endowed with the subspace topology. Since monomorphisms in Set are regular, we get the function ii back and (again by this example) it is equipped with the subspace topology.

Proposition

In Grp, the monics are (up to isomorphism) the inclusions of subgroups, and every monomorphism is regular.

In contrast, the normal monomorphisms (where one of the morphisms ded \to e is required to be the zero morphism) are the inclusions of normal subgroups.

Proof

The elementary proof we give follows exercise 7H of (AdamekHerrlichStrecker). It is however nonconstructive (because it contains if-then-else lines); for a constructive proof, see here.

Let KHK \hookrightarrow H be a subgroup. We need to define another group GG and group homomorphisms f 1,f 2:HGf_1, f_2 : H \to G such that

K={hH|f 1(h)=f 2(h)}. K = \{h \in H | f_1(h) = f_2(h)\} \,.

To that end, let

X:=H/K{K^}:={hK|hH}{K^} X := H/K \coprod \{\hat K\} := \{ h K | h \in H \} \coprod \{\hat K\}

be the set of cosets together with one more element K^\hat K.

Let then

G=Aut Set(X) G = Aut_{Set}(X)

be the permutation group on XX.

Define ρG\rho \in G to be the permutation that exchanges the coset eKe K with the extra element K^\hat K and is the identity on all other elements.

Finally define group homomorphism f 1,f 2:HGf_1,f_2 : H \to G by

f 1(h):x{hhK ifx=hK K^ ifx=K^ f_1(h) : x \mapsto \left\{ \array{ h h' K & if x = h' K \\ \hat K & if x = \hat K } \right.

and

f 2(h)=ρf 1(h)ρ 1. f_2(h) = \rho \circ f_1(h) \circ \rho^{-1} \,.

It is clear that these maps are indeed group homomorphisms.

So for hHh \in H we have that

f 1(h):K^K^, f_1(h) : \hat K \mapsto \hat K \,,

and

f 1(h):eKhK f_1(h) : e K \mapsto h K

and

f 2(h):K^eKhK{K^ ifhK hK otherwise. f_2(h) : \hat K \mapsto e K \mapsto h K \mapsto \left\{ \array{ \hat K & if h \in K \\ h K & otherwise } \right. \,.
f 2(h):eKK^K^eK. f_2(h) : e K \mapsto \hat K \mapsto \hat K \mapsto e K \,.

So we have f 1(h)=f 2(h)f_1(h) = f_2(h) precisely if hKh \in K.

In an (,1)(\infty,1)-category

In the context of higher category theory the ordinary limit diagram cfdec \stackrel{f}{\to} d \stackrel{\to}{\to} e may be thought of as the beginning of a homotopy limit diagram over a cosimplicial diagram

cfd 0d 1d 2. c \stackrel{f}{\to} d_0 \stackrel{\to}{\to} d_1 \stackrel{\to}{\stackrel{\to}{\to}} d_2 \cdots \,.

Accordingly, it is not unreasonable to define a regular monomorphism in an (∞,1)-category, to be a morphism which is the limit in a quasi-category of a cosimplicial diagram.

In practice this is of particular relevance for the \infty-version of regular epimorphisms: with the analogous definition as described there, a morphism f:cdf : c \to d is a regular epimorphism in an (∞,1)-category CC if for all objects eCe \in C the induced morphism f *:C(d,e)C(c,e)f^* : C(d,e) \to C(c,e) is a regular monomorphism in ∞Grpd (for instance modeled by a homotopy limit over a cosimplicial diagram in SSet).

Warning. The same warning as at regular epimorphism applies: with this definition of regular monomorphism in an (∞,1)-category these may fail to satisfy various definitions of plain monomorphisms that one might think of.

  • regular epimorphism (containing more results which of course have duals that could be added here)

References

Textbook accounts:

See also:

  • C. Cassidy, M. Hébert, Max Kelly, Reflective subcategories, localizations, and factorization systems, J. Austral. Math Soc. (Series A) 38 (1985), 287–329 (doi:10.1017/S1446788700023624)

Last revised on October 19, 2023 at 15:19:30. See the history of this page for a list of all contributions to it.