Full and faithful functors #
We define typeclasses Full and Faithful, decorating functors. These typeclasses
carry no data. However, we also introduce a structure Functor.FullyFaithful which
contains the data of the inverse map (F.obj X ⟶ F.obj Y) ⟶ (X ⟶ Y) of the
map induced on morphisms by a functor F.
Main definitions and results #
- Use
F.map_injectiveto retrieve the fact thatF.mapis injective when[Faithful F]. - Similarly,
F.map_surjectivestates thatF.mapis surjective when[Full F]. - Use
F.preimageto obtain preimages of morphisms when[Full F]. - We prove some basic "cancellation" lemmas for full and/or faithful functors, as well as a
construction for "dividing" a functor by a faithful functor, see
Faithful.div.
See CategoryTheory.Equivalence.of_fullyFaithful_ess_surj for the fact that a functor is an
equivalence if and only if it is fully faithful and essentially surjective.
A functor F : C ⥤ D is full if for each X Y : C, F.map is surjective.
- map_surjective {X Y : C} : Function.Surjective F.map
Instances
A functor F : C ⥤ D is faithful if for each X Y : C, F.map is injective.
- map_injective {X Y : C} : Function.Injective F.map
F.mapis injective for eachX Y : C.
Instances
The choice of a preimage of a morphism under a full functor.
Instances For
If F : C ⥤ D is fully faithful, every isomorphism F.obj X ≅ F.obj Y has a preimage.
Equations
Instances For
Structure containing the data of inverse map (F.obj X ⟶ F.obj Y) ⟶ (X ⟶ Y) of F.map
in order to express that F is a fully faithful functor.
The inverse map
(F.obj X ⟶ F.obj Y) ⟶ (X ⟶ Y)ofF.map.
Instances For
A FullyFaithful structure can be obtained from the assumption the F is both
full and faithful.
Equations
- CategoryTheory.Functor.FullyFaithful.ofFullyFaithful F = { preimage := fun {X Y : C} => F.preimage, map_preimage := ⋯, preimage_map := ⋯ }
Instances For
The identity functor is fully faithful.
Equations
- One or more equations did not get rendered due to their size.
Instances For
The equivalence (X ⟶ Y) ≃ (F.obj X ⟶ F.obj Y) given by h : F.FullyFaithful.
Instances For
The unique isomorphism X ≅ Y which induces an isomorphism F.obj X ≅ F.obj Y
when hF : F.FullyFaithful.
Equations
Instances For
The equivalence (X ≅ Y) ≃ (F.obj X ≅ F.obj Y) given by h : F.FullyFaithful.
Equations
Instances For
Fully faithful functors are stable by composition.
Equations
Instances For
If F ⋙ G is fully faithful and G is faithful, then F is fully faithful.
Equations
Instances For
If the image of a morphism under a fully faithful functor in an isomorphism, then the original morphisms is also an isomorphism.
If F is full, and naturally isomorphic to some F', then F' is also full.
“Divide” a functor by a faithful functor.
Equations
- CategoryTheory.Functor.Faithful.div F G obj h_obj map h_map = { obj := obj, map := map, map_id := ⋯, map_comp := ⋯ }
Instances For
If F ⋙ G is full and G is faithful, then F is full.
If F ⋙ G is full and G is faithful, then F is full.
Given a natural isomorphism between F ⋙ H and G ⋙ H for a fully faithful functor H, we
can 'cancel' it to give a natural iso between F and G.
Equations
- CategoryTheory.Functor.fullyFaithfulCancelRight H comp_iso = CategoryTheory.NatIso.ofComponents (fun (X : C) => H.preimageIso (comp_iso.app X)) ⋯