fbpx
Wikipedia

Natural transformation

In category theory, a branch of mathematics, a natural transformation provides a way of transforming one functor into another while respecting the internal structure (i.e., the composition of morphisms) of the categories involved. Hence, a natural transformation can be considered to be a "morphism of functors". Informally, the notion of a natural transformation states that a particular map between functors can be done consistently over an entire category.

Indeed, this intuition can be formalized to define so-called functor categories. Natural transformations are, after categories and functors, one of the most fundamental notions of category theory and consequently appear in the majority of its applications.

Definition Edit

If   and   are functors between the categories   and  , then a natural transformation   from   to   is a family of morphisms that satisfies two requirements.

  1. The natural transformation must associate, to every object   in  , a morphism   between objects of  . The morphism   is called the component of   at  .
  2. Components must be such that for every morphism   in   we have:
 

The last equation can conveniently be expressed by the commutative diagram

 
This is the commutative diagram which is part of the definition of a natural transformation between two functors.

If both   and   are contravariant, the vertical arrows in the right diagram are reversed. If   is a natural transformation from   to  , we also write   or  . This is also expressed by saying the family of morphisms   is natural in  .

If, for every object   in  , the morphism   is an isomorphism in  , then   is said to be a natural isomorphism (or sometimes natural equivalence or isomorphism of functors). Two functors   and   are called naturally isomorphic or simply isomorphic if there exists a natural isomorphism from   to  .

An infranatural transformation   from   to   is simply a family of morphisms  , for all   in  . Thus a natural transformation is an infranatural transformation for which   for every morphism  . The naturalizer of  , nat , is the largest subcategory of   containing all the objects of   on which   restricts to a natural transformation.

Examples Edit

Opposite group Edit

Statements such as

"Every group is naturally isomorphic to its opposite group"

abound in modern mathematics. We will now give the precise meaning of this statement as well as its proof. Consider the category   of all groups with group homomorphisms as morphisms. If   is a group, we define its opposite group   as follows:   is the same set as  , and the operation   is defined by  . All multiplications in   are thus "turned around". Forming the opposite group becomes a (covariant) functor from   to   if we define   for any group homomorphism  . Note that   is indeed a group homomorphism from   to  :

 

The content of the above statement is:

"The identity functor   is naturally isomorphic to the opposite functor  "

To prove this, we need to provide isomorphisms   for every group  , such that the above diagram commutes. Set  . The formulas   and   show that   is a group homomorphism with inverse  . To prove the naturality, we start with a group homomorphism   and show  , i.e.   for all   in  . This is true since   and every group homomorphism has the property  .

Abelianization Edit

Given a group  , we can define its abelianization    . Let   denote the projection map onto the cosets of  . This homomorphism is "natural in  ", i.e., it defines a natural transformation, which we now check. Let   be a group. For any homomorphism  , we have that   is contained in the kernel of  , because any homomorphism into an abelian group kills the commutator subgroup. Then   factors through   as   for the unique homomorphism  . This makes   a functor and   a natural transformation, but not a natural isomorphism, from the identity functor to  .

Hurewicz homomorphism Edit

Functors and natural transformations abound in algebraic topology, with the Hurewicz homomorphisms serving as examples. For any pointed topological space   and positive integer   there exists a group homomorphism

 

from the  -th homotopy group of   to the  -th homology group of  . Both   and   are functors from the category Top* of pointed topological spaces to the category Grp of groups, and   is a natural transformation from   to  .

Determinant Edit

Given commutative rings   and   with a ring homomorphism  , the respective groups of invertible   matrices   and   inherit a homomorphism which we denote by  , obtained by applying   to each matrix entry. Similarly,   restricts to a group homomorphism  , where   denotes the group of units of  . In fact,   and   are functors from the category of commutative rings   to  . The determinant on the group  , denoted by  , is a group homomorphism

 

which is natural in  : because the determinant is defined by the same formula for every ring,   holds. This makes the determinant a natural transformation from   to  .

Double dual of a vector space Edit

Given an endofunctor, that is, a functor   that maps a category to that same category, then there is a natural transformation   from the identity functor to that functor, with components  .

For example, if   is a field, then for every vector space   over   we have a "natural" injective linear map   from the vector space into its double dual. These maps are "natural" in the following sense: the double dual operation is a functor, and the maps are the components of a natural transformation from the identity functor to the double dual functor.

Finite calculus Edit

For every abelian group  , the set   of functions from the integers to the underlying set of   forms an abelian group   under pointwise addition. (Here   is the standard forgetful functor  .) Given an   morphism  , the map   given by left composing   with the elements of the former is itself a homomorphism of abelian groups; in this way we obtain a functor  . The finite difference operator   taking each function   to   is a map from   to itself, and the collection   of such maps gives a natural transformation  .

Tensor-hom adjunction Edit

Consider the category   of abelian groups and group homomorphisms. For all abelian groups  ,   and   we have a group isomorphism

 .

These isomorphisms are "natural" in the sense that they define a natural transformation between the two involved functors  . (Here "op" is the opposite category of  , not to be confused with the trivial opposite group functor on   !)

This is formally the tensor-hom adjunction, and is an archetypal example of a pair of adjoint functors. Natural transformations arise frequently in conjunction with adjoint functors, and indeed, adjoint functors are defined by a certain natural isomorphism. Additionally, every pair of adjoint functors comes equipped with two natural transformations (generally not isomorphisms) called the unit and counit.

Unnatural isomorphism Edit

The notion of a natural transformation is categorical, and states (informally) that a particular map between functors can be done consistently over an entire category. Informally, a particular map (esp. an isomorphism) between individual objects (not entire categories) is referred to as a "natural isomorphism", meaning implicitly that it is actually defined on the entire category, and defines a natural transformation of functors; formalizing this intuition was a motivating factor in the development of category theory. Conversely, a particular map between particular objects may be called an unnatural isomorphism (or "this isomorphism is not natural") if the map cannot be extended to a natural transformation on the entire category. Given an object   a functor   (taking for simplicity the first functor to be the identity) and an isomorphism   proof of unnaturality is most easily shown by giving an automorphism   that does not commute with this isomorphism (so  ). More strongly, if one wishes to prove that   and   are not naturally isomorphic, without reference to a particular isomorphism, this requires showing that for any isomorphism  , there is some   with which it does not commute; in some cases a single automorphism   works for all candidate isomorphisms   while in other cases one must show how to construct a different   for each isomorphism. The maps of the category play a crucial role – any infranatural transform is natural if the only maps are the identity map, for instance.

This is similar (but more categorical) to concepts in group theory or module theory, where a given decomposition of an object into a direct sum is "not natural", or rather "not unique", as automorphisms exist that do not preserve the direct sum decomposition – see Structure theorem for finitely generated modules over a principal ideal domain § Uniqueness for example.

Some authors distinguish notationally, using   for a natural isomorphism and   for an unnatural isomorphism, reserving   for equality (usually equality of maps).

Example: fundamental group of torus Edit

As an example of the distinction between the functorial statement and individual objects, consider homotopy groups of a product space, specifically the fundamental group of the torus.

The homotopy groups of a product space are naturally the product of the homotopy groups of the components,   with the isomorphism given by projection onto the two factors, fundamentally because maps into a product space are exactly products of maps into the components – this is a functorial statement.

However, the torus (which is abstractly a product of two circles) has fundamental group isomorphic to  , but the splitting   is not natural. Note the use of  ,  , and  :[a]

 

This abstract isomorphism with a product is not natural, as some isomorphisms of   do not preserve the product: the self-homeomorphism of   (thought of as the quotient space  ) given by   (geometrically a Dehn twist about one of the generating curves) acts as this matrix on   (it's in the general linear group   of invertible integer matrices), which does not preserve the decomposition as a product because it is not diagonal. However, if one is given the torus as a product   – equivalently, given a decomposition of the space – then the splitting of the group follows from the general statement earlier. In categorical terms, the relevant category (preserving the structure of a product space) is "maps of product spaces, namely a pair of maps between the respective components".

Naturality is a categorical notion, and requires being very precise about exactly what data is given – the torus as a space that happens to be a product (in the category of spaces and continuous maps) is different from the torus presented as a product (in the category of products of two spaces and continuous maps between the respective components).

Example: dual of a finite-dimensional vector space Edit

Every finite-dimensional vector space is isomorphic to its dual space, but there may be many different isomorphisms between the two spaces. There is in general no natural isomorphism between a finite-dimensional vector space and its dual space.[1] However, related categories (with additional structure and restrictions on the maps) do have a natural isomorphism, as described below.

The dual space of a finite-dimensional vector space is again a finite-dimensional vector space of the same dimension, and these are thus isomorphic, since dimension is the only invariant of finite-dimensional vector spaces over a given field. However, in the absence of additional constraints (such as a requirement that maps preserve the chosen basis), the map from a space to its dual is not unique, and thus such an isomorphism requires a choice, and is "not natural". On the category of finite-dimensional vector spaces and linear maps, one can define an infranatural isomorphism from vector spaces to their dual by choosing an isomorphism for each space (say, by choosing a basis for every vector space and taking the corresponding isomorphism), but this will not define a natural transformation. Intuitively this is because it required a choice, rigorously because any such choice of isomorphisms will not commute with, say, the zero map; see (Mac Lane & Birkhoff 1999, §VI.4) for detailed discussion.

Starting from finite-dimensional vector spaces (as objects) and the identity and dual functors, one can define a natural isomorphism, but this requires first adding additional structure, then restricting the maps from "all linear maps" to "linear maps that respect this structure". Explicitly, for each vector space, require that it comes with the data of an isomorphism to its dual,  . In other words, take as objects vector spaces with a nondegenerate bilinear form  . This defines an infranatural isomorphism (isomorphism for each object). One then restricts the maps to only those maps   that commute with the isomorphisms:   or in other words, preserve the bilinear form:  . (These maps define the naturalizer of the isomorphisms.) The resulting category, with objects finite-dimensional vector spaces with a nondegenerate bilinear form, and maps linear transforms that respect the bilinear form, by construction has a natural isomorphism from the identity to the dual (each space has an isomorphism to its dual, and the maps in the category are required to commute). Viewed in this light, this construction (add transforms for each object, restrict maps to commute with these) is completely general, and does not depend on any particular properties of vector spaces.

In this category (finite-dimensional vector spaces with a nondegenerate bilinear form, maps linear transforms that respect the bilinear form), the dual of a map between vector spaces can be identified as a transpose. Often for reasons of geometric interest this is specialized to a subcategory, by requiring that the nondegenerate bilinear forms have additional properties, such as being symmetric (orthogonal matrices), symmetric and positive definite (inner product space), symmetric sesquilinear (Hermitian spaces), skew-symmetric and totally isotropic (symplectic vector space), etc. – in all these categories a vector space is naturally identified with its dual, by the nondegenerate bilinear form.

Operations with natural transformations Edit

 
Horizontal and vertical composition of natural transformations

Vertical composition Edit

If   and   are natural transformations between functors  , then we can compose them to get a natural transformation  . This is done componentwise:

 .
 

This vertical composition of natural transformations is associative and has an identity, and allows one to consider the collection of all functors   itself as a category (see below under Functor categories). The identity natural transformation   on functor   has components  .[2]

For  ,  .

Horizontal composition Edit

If   is a natural transformation between functors   and   is a natural transformation between functors  , then the composition of functors allows a composition of natural transformations   with components

 .

By using whiskering (see below), we can write

 ,

hence

 .
 

This horizontal composition of natural transformations is also associative with identity. This identity is the identity natural transformation on the identity functor, i.e., the natural transformation that associate to each object its identity morphism: for object   in category  ,  .

For   with  ,  .

As identity functors   and   are functors, the identity for horizontal composition is also the identity for vertical composition, but not vice versa.[3]

Whiskering Edit

Whiskering is an external binary operation between a functor and a natural transformation.[4][5]

If   is a natural transformation between functors  , and   is another functor, then we can form the natural transformation   by defining

 .

If on the other hand   is a functor, the natural transformation   is defined by

 .

It's also an horizontal composition where one of the natural transformations is the identity natural transformation:

  and  .

Note that   (resp.  ) is generally not the left (resp. right) identity of horizontal composition   (  and   in general), except if   (resp.  ) is the identity functor of the category   (resp.  ).

Interchange law Edit

The two operations are related by an identity which exchanges vertical composition with horizontal composition: if we have four natural transformations   as shown on the image to the right, then the following identity holds:

 .

Vertical and horizontal compositions are also linked through identity natural transformations:

for   and  ,  .[6]

As whiskering is horizontal composition with an identity, the interchange law gives immediately the compact formulas of horizontal composition of   and   without having to analyze components and the commutative diagram:

 .

Functor categories Edit

If   is any category and   is a small category, we can form the functor category   having as objects all functors from   to   and as morphisms the natural transformations between those functors. This forms a category since for any functor   there is an identity natural transformation   (which assigns to every object   the identity morphism on  ) and the composition of two natural transformations (the "vertical composition" above) is again a natural transformation.

The isomorphisms in   are precisely the natural isomorphisms. That is, a natural transformation   is a natural isomorphism if and only if there exists a natural transformation   such that   and  .

The functor category   is especially useful if   arises from a directed graph. For instance, if   is the category of the directed graph • → •, then   has as objects the morphisms of  , and a morphism between   and   in   is a pair of morphisms   and   in   such that the "square commutes", i.e.  .

More generally, one can build the 2-category   whose

  • 0-cells (objects) are the small categories,
  • 1-cells (arrows) between two objects   and   are the functors from   to  ,
  • 2-cells between two 1-cells (functors)   and   are the natural transformations from   to  .

The horizontal and vertical compositions are the compositions between natural transformations described previously. A functor category   is then simply a hom-category in this category (smallness issues aside).

More examples Edit

Every limit and colimit provides an example for a simple natural transformation, as a cone amounts to a natural transformation with the diagonal functor as domain. Indeed, if limits and colimits are defined directly in terms of their universal property, they are universal morphisms in a functor category.

Yoneda lemma Edit

If   is an object of a locally small category  , then the assignment   defines a covariant functor  . This functor is called representable (more generally, a representable functor is any functor naturally isomorphic to this functor for an appropriate choice of  ). The natural transformations from a representable functor to an arbitrary functor   are completely known and easy to describe; this is the content of the Yoneda lemma.

Historical notes Edit

Saunders Mac Lane, one of the founders of category theory, is said to have remarked, "I didn't invent categories to study functors; I invented them to study natural transformations."[7] Just as the study of groups is not complete without a study of homomorphisms, so the study of categories is not complete without the study of functors. The reason for Mac Lane's comment is that the study of functors is itself not complete without the study of natural transformations.

The context of Mac Lane's remark was the axiomatic theory of homology. Different ways of constructing homology could be shown to coincide: for example in the case of a simplicial complex the groups defined directly would be isomorphic to those of the singular theory. What cannot easily be expressed without the language of natural transformations is how homology groups are compatible with morphisms between objects, and how two equivalent homology theories not only have the same homology groups, but also the same morphisms between those groups.

See also Edit

Notes Edit

  1. ^ Zn could be defined as the n-fold product of Z, or as the product of Zn − 1 and Z, which are subtly different sets (though they can be naturally identified, which would be notated as ≅). Here we've fixed a definition, and in any case they coincide for n = 2.

References Edit

  1. ^ (Mac Lane & Birkhoff 1999, §VI.4)
  2. ^ "Identity natural transformation in nLab".
  3. ^ "Natural Transformations". 7 April 2015.
  4. ^ "Definition:Whiskering - ProofWiki".
  5. ^ "Whiskering in nLab".
  6. ^ https://arxiv.org/pdf/1612.09375v1.pdf, p. 38
  7. ^ (Mac Lane 1998, §I.4)

External links Edit

  • nLab, a wiki project on mathematics, physics and philosophy with emphasis on the n-categorical point of view
  • André Joyal, CatLab, a wiki project dedicated to the exposition of categorical mathematics
  • Hillman, Chris (2001). "A Categorical Primer". CiteSeerX 10.1.1.24.3264: {{cite web}}: Missing or empty |url= (help) formal introduction to category theory.
  • J. Adamek, H. Herrlich, G. Strecker, Abstract and Concrete Categories-The Joy of Cats
  • Stanford Encyclopedia of Philosophy: "Category Theory"—by Jean-Pierre Marquis. Extensive bibliography.
  • List of academic conferences on category theory
  • Baez, John, 1996,"The Tale of n-categories." An informal introduction to higher categories.
  • WildCats is a category theory package for Mathematica. Manipulation and visualization of objects, morphisms, categories, functors, natural transformations, universal properties.
  • The catsters, a YouTube channel about category theory.
  • Video archive of recorded talks relevant to categories, logic and the foundations of physics.
  • which generates examples of categorical constructions in the category of finite sets.

natural, transformation, natural, operation, redirects, here, natural, natural, product, ordinals, ordinal, arithmetic, natural, operations, this, article, about, natural, transformations, category, theory, natural, competence, bacteria, take, foreign, transfo. Natural operation redirects here For the natural sum and natural product on ordinals see Ordinal arithmetic Natural operations This article is about natural transformations in category theory For the natural competence of bacteria to take up foreign DNA see Transformation genetics For other uses see Transformation mathematics disambiguation In category theory a branch of mathematics a natural transformation provides a way of transforming one functor into another while respecting the internal structure i e the composition of morphisms of the categories involved Hence a natural transformation can be considered to be a morphism of functors Informally the notion of a natural transformation states that a particular map between functors can be done consistently over an entire category Indeed this intuition can be formalized to define so called functor categories Natural transformations are after categories and functors one of the most fundamental notions of category theory and consequently appear in the majority of its applications Contents 1 Definition 2 Examples 2 1 Opposite group 2 2 Abelianization 2 3 Hurewicz homomorphism 2 4 Determinant 2 5 Double dual of a vector space 2 6 Finite calculus 2 7 Tensor hom adjunction 3 Unnatural isomorphism 3 1 Example fundamental group of torus 3 2 Example dual of a finite dimensional vector space 4 Operations with natural transformations 4 1 Vertical composition 4 2 Horizontal composition 4 3 Whiskering 4 4 Interchange law 5 Functor categories 5 1 More examples 6 Yoneda lemma 7 Historical notes 8 See also 9 Notes 10 References 11 External linksDefinition EditIf F displaystyle F and G displaystyle G are functors between the categories C displaystyle C and D displaystyle D then a natural transformation h displaystyle eta from F displaystyle F to G displaystyle G is a family of morphisms that satisfies two requirements The natural transformation must associate to every object X displaystyle X in C displaystyle C a morphism h X F X G X displaystyle eta X F X to G X between objects of D displaystyle D The morphism h X displaystyle eta X is called the component of h displaystyle eta at X displaystyle X Components must be such that for every morphism f X Y displaystyle f X to Y in C displaystyle C we have h Y F f G f h X displaystyle eta Y circ F f G f circ eta X dd dd The last equation can conveniently be expressed by the commutative diagram This is the commutative diagram which is part of the definition of a natural transformation between two functors If both F displaystyle F and G displaystyle G are contravariant the vertical arrows in the right diagram are reversed If h displaystyle eta is a natural transformation from F displaystyle F to G displaystyle G we also write h F G displaystyle eta F to G or h F G displaystyle eta F Rightarrow G This is also expressed by saying the family of morphisms h X F X G X displaystyle eta X F X to G X is natural in X displaystyle X If for every object X displaystyle X in C displaystyle C the morphism h X displaystyle eta X is an isomorphism in D displaystyle D then h displaystyle eta is said to be a natural isomorphism or sometimes natural equivalence or isomorphism of functors Two functors F displaystyle F and G displaystyle G are called naturally isomorphic or simply isomorphic if there exists a natural isomorphism from F displaystyle F to G displaystyle G An infranatural transformation h displaystyle eta from F displaystyle F to G displaystyle G is simply a family of morphisms h X F X G X displaystyle eta X F X to G X for all X displaystyle X in C displaystyle C Thus a natural transformation is an infranatural transformation for which h Y F f G f h X displaystyle eta Y circ F f G f circ eta X for every morphism f X Y displaystyle f X to Y The naturalizer of h displaystyle eta nat h displaystyle eta is the largest subcategory of C displaystyle C containing all the objects of C displaystyle C on which h displaystyle eta restricts to a natural transformation Examples EditOpposite group Edit Further information Opposite group Statements such as Every group is naturally isomorphic to its opposite group abound in modern mathematics We will now give the precise meaning of this statement as well as its proof Consider the category Grp displaystyle textbf Grp of all groups with group homomorphisms as morphisms If G displaystyle G is a group we define its opposite group G op op displaystyle G text op text op as follows G op displaystyle G text op is the same set as G displaystyle G and the operation op displaystyle text op is defined by a op b b a displaystyle a text op b b a All multiplications in G op displaystyle G text op are thus turned around Forming the opposite group becomes a covariant functor from Grp displaystyle textbf Grp to Grp displaystyle textbf Grp if we define f op f displaystyle f text op f for any group homomorphism f G H displaystyle f G to H Note that f op displaystyle f text op is indeed a group homomorphism from G op displaystyle G text op to H op displaystyle H text op f op a op b f b a f b f a f op a op f op b displaystyle f text op a text op b f b a f b f a f text op a text op f text op b The content of the above statement is The identity functor Id Grp Grp Grp displaystyle text Id textbf Grp textbf Grp to textbf Grp is naturally isomorphic to the opposite functor op Grp Grp displaystyle text op textbf Grp to textbf Grp To prove this we need to provide isomorphisms h G G G op displaystyle eta G G to G text op for every group G displaystyle G such that the above diagram commutes Set h G a a 1 displaystyle eta G a a 1 The formulas a b 1 b 1 a 1 a 1 op b 1 displaystyle a b 1 b 1 a 1 a 1 text op b 1 and a 1 1 a displaystyle a 1 1 a show that h G displaystyle eta G is a group homomorphism with inverse h G op displaystyle eta G text op To prove the naturality we start with a group homomorphism f G H displaystyle f G to H and show h H f f op h G displaystyle eta H circ f f text op circ eta G i e f a 1 f op a 1 displaystyle f a 1 f text op a 1 for all a displaystyle a in G displaystyle G This is true since f op f displaystyle f text op f and every group homomorphism has the property f a 1 f a 1 displaystyle f a 1 f a 1 Abelianization Edit Given a group G displaystyle G we can define its abelianization G ab G displaystyle G text ab G G G displaystyle G G Let p G G G ab displaystyle pi G G to G text ab denote the projection map onto the cosets of G G displaystyle G G This homomorphism is natural in G displaystyle G i e it defines a natural transformation which we now check Let H displaystyle H be a group For any homomorphism f G H displaystyle f G to H we have that G G displaystyle G G is contained in the kernel of p H f displaystyle pi H circ f because any homomorphism into an abelian group kills the commutator subgroup Then p H f displaystyle pi H circ f factors through G ab displaystyle G text ab as f ab p G p H f displaystyle f text ab circ pi G pi H circ f for the unique homomorphism f ab G ab H ab displaystyle f text ab G text ab to H text ab This makes ab Grp Grp displaystyle text ab textbf Grp to textbf Grp a functor and p displaystyle pi a natural transformation but not a natural isomorphism from the identity functor to ab displaystyle text ab Hurewicz homomorphism Edit Functors and natural transformations abound in algebraic topology with the Hurewicz homomorphisms serving as examples For any pointed topological space X x displaystyle X x and positive integer n displaystyle n there exists a group homomorphism h n p n X x H n X displaystyle h n colon pi n X x to H n X from the n displaystyle n th homotopy group of X x displaystyle X x to the n displaystyle n th homology group of X displaystyle X Both p n displaystyle pi n and H n displaystyle H n are functors from the category Top of pointed topological spaces to the category Grp of groups and h n displaystyle h n is a natural transformation from p n displaystyle pi n to H n displaystyle H n Determinant Edit See also Determinant Square matrices over commutative rings Given commutative rings R displaystyle R and S displaystyle S with a ring homomorphism f R S displaystyle f R to S the respective groups of invertible n n displaystyle n times n matrices GL n R displaystyle text GL n R and GL n S displaystyle text GL n S inherit a homomorphism which we denote by GL n f displaystyle text GL n f obtained by applying f displaystyle f to each matrix entry Similarly f displaystyle f restricts to a group homomorphism f R S displaystyle f R to S where R displaystyle R denotes the group of units of R displaystyle R In fact GL n displaystyle text GL n and displaystyle are functors from the category of commutative rings CRing displaystyle textbf CRing to Grp displaystyle textbf Grp The determinant on the group GL n R displaystyle text GL n R denoted by det R displaystyle text det R is a group homomorphism det R GL n R R displaystyle mbox det R colon mbox GL n R to R which is natural in R displaystyle R because the determinant is defined by the same formula for every ring f det R det S GL n f displaystyle f circ text det R text det S circ text GL n f holds This makes the determinant a natural transformation from GL n displaystyle text GL n to displaystyle Double dual of a vector space Edit Given an endofunctor that is a functor F displaystyle F that maps a category to that same category then there is a natural transformation a displaystyle alpha from the identity functor to that functor with components a C F C displaystyle alpha C F C For example if K displaystyle K is a field then for every vector space V displaystyle V over K displaystyle K we have a natural injective linear map V V displaystyle V to V from the vector space into its double dual These maps are natural in the following sense the double dual operation is a functor and the maps are the components of a natural transformation from the identity functor to the double dual functor Finite calculus Edit For every abelian group G displaystyle G the set Hom Set Z U G displaystyle text Hom textbf Set mathbb Z U G of functions from the integers to the underlying set of G displaystyle G forms an abelian group V Z G displaystyle V mathbb Z G under pointwise addition Here U displaystyle U is the standard forgetful functor U Ab Set displaystyle U textbf Ab to textbf Set Given an Ab displaystyle textbf Ab morphism f G G displaystyle varphi G to G the map V Z f V Z G V Z G displaystyle V mathbb Z varphi V mathbb Z G to V mathbb Z G given by left composing f displaystyle varphi with the elements of the former is itself a homomorphism of abelian groups in this way we obtain a functor V Z Ab Ab displaystyle V mathbb Z textbf Ab to textbf Ab The finite difference operator D G displaystyle Delta G taking each function f Z U G displaystyle f mathbb Z to U G to D f n f n 1 f n displaystyle Delta f n mapsto f n 1 f n is a map from V Z G displaystyle V mathbb Z G to itself and the collection D displaystyle Delta of such maps gives a natural transformation D V Z V Z displaystyle Delta V mathbb Z to V mathbb Z Tensor hom adjunction Edit Further information Tensor hom adjunction and Adjoint functors Consider the category Ab displaystyle textbf Ab of abelian groups and group homomorphisms For all abelian groups X displaystyle X Y displaystyle Y and Z displaystyle Z we have a group isomorphism Hom X Y Z Hom X Hom Y Z displaystyle text Hom X otimes Y Z to text Hom X text Hom Y Z These isomorphisms are natural in the sense that they define a natural transformation between the two involved functors Ab op Ab op Ab Ab displaystyle textbf Ab text op times textbf Ab text op times textbf Ab to textbf Ab Here op is the opposite category of Ab displaystyle textbf Ab not to be confused with the trivial opposite group functor on Ab displaystyle textbf Ab This is formally the tensor hom adjunction and is an archetypal example of a pair of adjoint functors Natural transformations arise frequently in conjunction with adjoint functors and indeed adjoint functors are defined by a certain natural isomorphism Additionally every pair of adjoint functors comes equipped with two natural transformations generally not isomorphisms called the unit and counit Unnatural isomorphism EditSee also Canonical map The notion of a natural transformation is categorical and states informally that a particular map between functors can be done consistently over an entire category Informally a particular map esp an isomorphism between individual objects not entire categories is referred to as a natural isomorphism meaning implicitly that it is actually defined on the entire category and defines a natural transformation of functors formalizing this intuition was a motivating factor in the development of category theory Conversely a particular map between particular objects may be called an unnatural isomorphism or this isomorphism is not natural if the map cannot be extended to a natural transformation on the entire category Given an object X displaystyle X a functor G displaystyle G taking for simplicity the first functor to be the identity and an isomorphism h X G X displaystyle eta colon X to G X proof of unnaturality is most easily shown by giving an automorphism A X X displaystyle A colon X to X that does not commute with this isomorphism so h A G A h displaystyle eta circ A neq G A circ eta More strongly if one wishes to prove that X displaystyle X and G X displaystyle G X are not naturally isomorphic without reference to a particular isomorphism this requires showing that for any isomorphism h displaystyle eta there is some A displaystyle A with which it does not commute in some cases a single automorphism A displaystyle A works for all candidate isomorphisms h displaystyle eta while in other cases one must show how to construct a different A h displaystyle A eta for each isomorphism The maps of the category play a crucial role any infranatural transform is natural if the only maps are the identity map for instance This is similar but more categorical to concepts in group theory or module theory where a given decomposition of an object into a direct sum is not natural or rather not unique as automorphisms exist that do not preserve the direct sum decomposition see Structure theorem for finitely generated modules over a principal ideal domain Uniqueness for example Some authors distinguish notationally using displaystyle cong for a natural isomorphism and displaystyle approx for an unnatural isomorphism reserving displaystyle for equality usually equality of maps Example fundamental group of torus Edit As an example of the distinction between the functorial statement and individual objects consider homotopy groups of a product space specifically the fundamental group of the torus The homotopy groups of a product space are naturally the product of the homotopy groups of the components p n X x 0 Y y 0 p n X x 0 p n Y y 0 displaystyle pi n X x 0 times Y y 0 cong pi n X x 0 times pi n Y y 0 with the isomorphism given by projection onto the two factors fundamentally because maps into a product space are exactly products of maps into the components this is a functorial statement However the torus which is abstractly a product of two circles has fundamental group isomorphic to Z 2 displaystyle Z 2 but the splitting p 1 T t 0 Z Z displaystyle pi 1 T t 0 approx mathbf Z times mathbf Z is not natural Note the use of displaystyle approx displaystyle cong and displaystyle a p 1 T t 0 p 1 S 1 x 0 p 1 S 1 y 0 Z Z Z 2 displaystyle pi 1 T t 0 approx pi 1 S 1 x 0 times pi 1 S 1 y 0 cong mathbf Z times mathbf Z mathbf Z 2 This abstract isomorphism with a product is not natural as some isomorphisms of T displaystyle T do not preserve the product the self homeomorphism of T displaystyle T thought of as the quotient space R 2 Z 2 displaystyle R 2 mathbb Z 2 given by 1 1 0 1 displaystyle left begin smallmatrix 1 amp 1 0 amp 1 end smallmatrix right geometrically a Dehn twist about one of the generating curves acts as this matrix on Z 2 displaystyle mathbb Z 2 it s in the general linear group GL Z 2 displaystyle text GL mathbb Z 2 of invertible integer matrices which does not preserve the decomposition as a product because it is not diagonal However if one is given the torus as a product T t 0 S 1 x 0 S 1 y 0 displaystyle T t 0 S 1 x 0 times S 1 y 0 equivalently given a decomposition of the space then the splitting of the group follows from the general statement earlier In categorical terms the relevant category preserving the structure of a product space is maps of product spaces namely a pair of maps between the respective components Naturality is a categorical notion and requires being very precise about exactly what data is given the torus as a space that happens to be a product in the category of spaces and continuous maps is different from the torus presented as a product in the category of products of two spaces and continuous maps between the respective components Example dual of a finite dimensional vector space Edit Every finite dimensional vector space is isomorphic to its dual space but there may be many different isomorphisms between the two spaces There is in general no natural isomorphism between a finite dimensional vector space and its dual space 1 However related categories with additional structure and restrictions on the maps do have a natural isomorphism as described below The dual space of a finite dimensional vector space is again a finite dimensional vector space of the same dimension and these are thus isomorphic since dimension is the only invariant of finite dimensional vector spaces over a given field However in the absence of additional constraints such as a requirement that maps preserve the chosen basis the map from a space to its dual is not unique and thus such an isomorphism requires a choice and is not natural On the category of finite dimensional vector spaces and linear maps one can define an infranatural isomorphism from vector spaces to their dual by choosing an isomorphism for each space say by choosing a basis for every vector space and taking the corresponding isomorphism but this will not define a natural transformation Intuitively this is because it required a choice rigorously because any such choice of isomorphisms will not commute with say the zero map see Mac Lane amp Birkhoff 1999 VI 4 for detailed discussion Starting from finite dimensional vector spaces as objects and the identity and dual functors one can define a natural isomorphism but this requires first adding additional structure then restricting the maps from all linear maps to linear maps that respect this structure Explicitly for each vector space require that it comes with the data of an isomorphism to its dual h V V V displaystyle eta V colon V to V In other words take as objects vector spaces with a nondegenerate bilinear form b V V V K displaystyle b V colon V times V to K This defines an infranatural isomorphism isomorphism for each object One then restricts the maps to only those maps T V U displaystyle T colon V to U that commute with the isomorphisms T h U T v h V v displaystyle T eta U T v eta V v or in other words preserve the bilinear form b U T v T w b V v w displaystyle b U T v T w b V v w These maps define the naturalizer of the isomorphisms The resulting category with objects finite dimensional vector spaces with a nondegenerate bilinear form and maps linear transforms that respect the bilinear form by construction has a natural isomorphism from the identity to the dual each space has an isomorphism to its dual and the maps in the category are required to commute Viewed in this light this construction add transforms for each object restrict maps to commute with these is completely general and does not depend on any particular properties of vector spaces In this category finite dimensional vector spaces with a nondegenerate bilinear form maps linear transforms that respect the bilinear form the dual of a map between vector spaces can be identified as a transpose Often for reasons of geometric interest this is specialized to a subcategory by requiring that the nondegenerate bilinear forms have additional properties such as being symmetric orthogonal matrices symmetric and positive definite inner product space symmetric sesquilinear Hermitian spaces skew symmetric and totally isotropic symplectic vector space etc in all these categories a vector space is naturally identified with its dual by the nondegenerate bilinear form Operations with natural transformations Edit Horizontal and vertical composition of natural transformationsVertical composition Edit If h F G displaystyle eta F Rightarrow G and ϵ G H displaystyle epsilon G Rightarrow H are natural transformations between functors F G H C D displaystyle F G H C to D then we can compose them to get a natural transformation ϵ h F H displaystyle epsilon circ eta F Rightarrow H This is done componentwise ϵ h X ϵ X h X displaystyle epsilon circ eta X epsilon X circ eta X This vertical composition of natural transformations is associative and has an identity and allows one to consider the collection of all functors C D displaystyle C to D itself as a category see below under Functor categories The identity natural transformation i d F displaystyle mathrm id F on functor F displaystyle F has components i d F X i d F X displaystyle mathrm id F X mathrm id F X 2 For h F G displaystyle eta F Rightarrow G i d G h h h i d F displaystyle mathrm id G circ eta eta eta circ mathrm id F Horizontal composition Edit If h F G displaystyle eta F Rightarrow G is a natural transformation between functors F G C D displaystyle F G C to D and ϵ J K displaystyle epsilon J Rightarrow K is a natural transformation between functors J K D E displaystyle J K D to E then the composition of functors allows a composition of natural transformations ϵ h J F K G displaystyle epsilon eta J circ F Rightarrow K circ G with components ϵ h X ϵ G X J h X K h X ϵ F X displaystyle epsilon eta X epsilon G X circ J eta X K eta X circ epsilon F X By using whiskering see below we can write ϵ h X ϵ G X J h X K h X ϵ F X displaystyle epsilon eta X epsilon G X circ J eta X K eta X circ epsilon F X hence ϵ h ϵ G J h K h ϵ F displaystyle epsilon eta epsilon G circ J eta K eta circ epsilon F This horizontal composition of natural transformations is also associative with identity This identity is the identity natural transformation on the identity functor i e the natural transformation that associate to each object its identity morphism for object X displaystyle X in category C displaystyle C i d i d C X i d i d C X i d X displaystyle mathrm id mathrm id C X mathrm id mathrm id C X mathrm id X For h F G displaystyle eta F Rightarrow G with F G C D displaystyle F G C to D i d i d D h h h i d i d C displaystyle mathrm id mathrm id D eta eta eta mathrm id mathrm id C As identity functors i d C displaystyle mathrm id C and i d D displaystyle mathrm id D are functors the identity for horizontal composition is also the identity for vertical composition but not vice versa 3 Whiskering Edit Whiskering is an external binary operation between a functor and a natural transformation 4 5 If h F G displaystyle eta F Rightarrow G is a natural transformation between functors F G C D displaystyle F G C to D and H D E displaystyle H D to E is another functor then we can form the natural transformation H h H F H G displaystyle H eta H circ F Rightarrow H circ G by defining H h X H h X displaystyle H eta X H eta X If on the other hand K B C displaystyle K B to C is a functor the natural transformation h K F K G K displaystyle eta K F circ K Rightarrow G circ K is defined by h K X h K X displaystyle eta K X eta K X It s also an horizontal composition where one of the natural transformations is the identity natural transformation H h i d H h displaystyle H eta mathrm id H eta and h K h i d K displaystyle eta K eta mathrm id K Note that i d H displaystyle mathrm id H resp i d K displaystyle mathrm id K is generally not the left resp right identity of horizontal composition displaystyle H h h displaystyle H eta neq eta and h K h displaystyle eta K neq eta in general except if H displaystyle H resp K displaystyle K is the identity functor of the category D displaystyle D resp C displaystyle C Interchange law Edit The two operations are related by an identity which exchanges vertical composition with horizontal composition if we have four natural transformations a a b b displaystyle alpha alpha beta beta as shown on the image to the right then the following identity holds b a b a b b a a displaystyle beta circ alpha beta circ alpha beta beta circ alpha alpha Vertical and horizontal compositions are also linked through identity natural transformations for F C D displaystyle F C to D and G D E displaystyle G D to E i d G i d F i d G F displaystyle mathrm id G mathrm id F mathrm id G circ F 6 As whiskering is horizontal composition with an identity the interchange law gives immediately the compact formulas of horizontal composition of h F G displaystyle eta F Rightarrow G and ϵ J K displaystyle epsilon J Rightarrow K without having to analyze components and the commutative diagram ϵ h ϵ i d J i d G h ϵ i d G i d J h ϵ G J h i d K ϵ h i d F i d K h ϵ i d F K h ϵ F displaystyle begin aligned epsilon eta amp epsilon circ mathrm id J mathrm id G circ eta epsilon mathrm id G circ mathrm id J eta epsilon G circ J eta amp mathrm id K circ epsilon eta circ mathrm id F mathrm id K eta circ epsilon mathrm id F K eta circ epsilon F end aligned Functor categories EditMain article Functor category If C displaystyle C is any category and I displaystyle I is a small category we can form the functor category C I displaystyle C I having as objects all functors from I displaystyle I to C displaystyle C and as morphisms the natural transformations between those functors This forms a category since for any functor F displaystyle F there is an identity natural transformation 1 F F F displaystyle 1 F F to F which assigns to every object X displaystyle X the identity morphism on F X displaystyle F X and the composition of two natural transformations the vertical composition above is again a natural transformation The isomorphisms in C I displaystyle C I are precisely the natural isomorphisms That is a natural transformation h F G displaystyle eta F to G is a natural isomorphism if and only if there exists a natural transformation ϵ G F displaystyle epsilon G to F such that h ϵ 1 G displaystyle eta epsilon 1 G and ϵ h 1 F displaystyle epsilon eta 1 F The functor category C I displaystyle C I is especially useful if I displaystyle I arises from a directed graph For instance if I displaystyle I is the category of the directed graph then C I displaystyle C I has as objects the morphisms of C displaystyle C and a morphism between ϕ U V displaystyle phi U to V and ps X Y displaystyle psi X to Y in C I displaystyle C I is a pair of morphisms f U X displaystyle f U to X and g V Y displaystyle g V to Y in C displaystyle C such that the square commutes i e ps f g ϕ displaystyle psi circ f g circ phi More generally one can build the 2 category Cat displaystyle textbf Cat whose 0 cells objects are the small categories 1 cells arrows between two objects C displaystyle C and D displaystyle D are the functors from C displaystyle C to D displaystyle D 2 cells between two 1 cells functors F C D displaystyle F C to D and G C D displaystyle G C to D are the natural transformations from F displaystyle F to G displaystyle G The horizontal and vertical compositions are the compositions between natural transformations described previously A functor category C I displaystyle C I is then simply a hom category in this category smallness issues aside More examples Edit Every limit and colimit provides an example for a simple natural transformation as a cone amounts to a natural transformation with the diagonal functor as domain Indeed if limits and colimits are defined directly in terms of their universal property they are universal morphisms in a functor category Yoneda lemma EditMain article Yoneda lemma If X displaystyle X is an object of a locally small category C displaystyle C then the assignment Y Hom C X Y displaystyle Y mapsto text Hom C X Y defines a covariant functor F X C Set displaystyle F X C to textbf Set This functor is called representable more generally a representable functor is any functor naturally isomorphic to this functor for an appropriate choice of X displaystyle X The natural transformations from a representable functor to an arbitrary functor F C Set displaystyle F C to textbf Set are completely known and easy to describe this is the content of the Yoneda lemma Historical notes EditSaunders Mac Lane one of the founders of category theory is said to have remarked I didn t invent categories to study functors I invented them to study natural transformations 7 Just as the study of groups is not complete without a study of homomorphisms so the study of categories is not complete without the study of functors The reason for Mac Lane s comment is that the study of functors is itself not complete without the study of natural transformations The context of Mac Lane s remark was the axiomatic theory of homology Different ways of constructing homology could be shown to coincide for example in the case of a simplicial complex the groups defined directly would be isomorphic to those of the singular theory What cannot easily be expressed without the language of natural transformations is how homology groups are compatible with morphisms between objects and how two equivalent homology theories not only have the same homology groups but also the same morphisms between those groups See also Edit Mathematics portalExtranatural transformation Universal property Higher category theoryNotes Edit Zn could be defined as the n fold product of Z or as the product of Zn 1 and Z which are subtly different sets though they can be naturally identified which would be notated as Here we ve fixed a definition and in any case they coincide for n 2 References Edit Mac Lane amp Birkhoff 1999 VI 4 Identity natural transformation in nLab Natural Transformations 7 April 2015 Definition Whiskering ProofWiki Whiskering in nLab https arxiv org pdf 1612 09375v1 pdf p 38 Mac Lane 1998 I 4 Mac Lane Saunders 1998 Categories for the Working Mathematician Graduate Texts in Mathematics 5 2nd ed Springer Verlag p 16 ISBN 0 387 98403 8 Mac Lane Saunders Birkhoff Garrett 1999 Algebra 3rd ed AMS Chelsea Publishing ISBN 0 8218 1646 2 Awodey Steve 2010 Category theory Oxford New York Oxford University Press p 156 ISBN 978 0199237180 Lane Saunders 1992 Sheaves in geometry and logic a first introduction to topos theory New York Springer Verlag p 13 ISBN 0387977104 External links EditnLab a wiki project on mathematics physics and philosophy with emphasis on the n categorical point of view Andre Joyal CatLab a wiki project dedicated to the exposition of categorical mathematics Hillman Chris 2001 A Categorical Primer CiteSeerX 10 1 1 24 3264 a href Template Cite web html title Template Cite web cite web a Missing or empty url help formal introduction to category theory J Adamek H Herrlich G Strecker Abstract and Concrete Categories The Joy of Cats Stanford Encyclopedia of Philosophy Category Theory by Jean Pierre Marquis Extensive bibliography List of academic conferences on category theory Baez John 1996 The Tale of n categories An informal introduction to higher categories WildCats is a category theory package for Mathematica Manipulation and visualization of objects morphisms categories functors natural transformations universal properties The catsters a YouTube channel about category theory Video archive of recorded talks relevant to categories logic and the foundations of physics Interactive Web page which generates examples of categorical constructions in the category of finite sets Retrieved from https en wikipedia org w index php title Natural transformation amp oldid 1151499233, wikipedia, wiki, book, books, library,

article

, read, download, free, free download, mp3, video, mp4, 3gp, jpg, jpeg, gif, png, picture, music, song, movie, book, game, games.