In abstract algebra, an endomorphism is a homomorphism from a mathematical object to itself.[1] More generally in category theory, an endomorphism is a morphism from an object in some category to itself.[2] An endomorphism that is also an isomorphism is an automorphism. For example, an endomorphism of a vector space V is a linear map f: V → V, and an endomorphism of a group G is a group homomorphism f: G → G.

Orthogonal projection onto a line, m, is a linear operator on the plane. This is an example of an endomorphism that is not an automorphism.

In general, we can talk about endomorphisms in any category. In the category of sets, endomorphisms are functions from a set S to itself.

In any category, the composition of any two endomorphisms of X is again an endomorphism of X. It follows that the set of all endomorphisms of X forms a monoid, the full transformation monoid, and denoted End(X) (or EndC(X) to emphasize the category C).[citation needed]

Automorphisms

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An invertible endomorphism of X is called an automorphism. The set of all automorphisms is a subset of End(X) with a group structure, called the automorphism group of X and denoted Aut(X). In the following diagram, the arrows denote implication:

Automorphism Isomorphism
Endomorphism (Homo)morphism

Endomorphism rings

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Any two endomorphisms of an abelian group, A, can be added together by the rule (f + g)(a) = f(a) + g(a). Under this addition, and with multiplication being defined as function composition, the endomorphisms of an abelian group form a ring (the endomorphism ring). For example, the set of endomorphisms of is the ring of all n × n matrices with integer entries. The endomorphisms of a vector space or module also form a ring, as do the endomorphisms of any object in a preadditive category. The endomorphisms of a nonabelian group generate an algebraic structure known as a near-ring. Every ring with one is the endomorphism ring of its regular module, and so is a subring of an endomorphism ring of an abelian group;[3] however there are rings that are not the endomorphism ring of any abelian group.

Operator theory

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In any concrete category, especially for vector spaces, endomorphisms are maps from a set into itself, and may be interpreted as unary operators on that set, acting on the elements, and allowing the notion of element orbits to be defined, etc.

Depending on the additional structure defined for the category at hand (topology, metric, ...), such operators can have properties like continuity, boundedness, and so on. More details should be found in the article about operator theory.

Endofunctions

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An endofunction is a function whose domain is equal to its codomain. A homomorphic endofunction is an endomorphism.

Let S be an arbitrary set. Among endofunctions on S one finds permutations of S and constant functions associating to every x in S the same element c in S. Every permutation of S has the codomain equal to its domain and is bijective and invertible. If S has more than one element, a constant function on S has an image that is a proper subset of its codomain, and thus is not bijective (and hence not invertible). The function associating to each natural number n the floor of n/2 has its image equal to its codomain and is not invertible.

Finite endofunctions are equivalent to directed pseudoforests. For sets of size n there are nn endofunctions on the set.

Particular examples of bijective endofunctions are the involutions; i.e., the functions coinciding with their inverses.

See also

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Notes

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  1. ^ Lang. Algebra. p. 10.
  2. ^ Lang. Algebra. p. 54.
  3. ^ Jacobson (2009), p. 162, Theorem 3.2.

References

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📚 Artikel Terkait di Wikipedia

Transformation (function)

n, there are nn transformations and (n+1)n partial transformations. Endofunction Coordinate transformation Data transformation (statistics) Geometric

Domain of a function

injection and surjection Codomain Domain decomposition Effective domain Endofunction Image (mathematics) Lipschitz domain Naive set theory Range of a function

Codomain

codomain. Bijection – One-to-one correspondence Morphism § Codomain Endofunction – Function with the same domain and codomain Bourbaki 1970, p. 76 Bourbaki

Cycle detection

in this value sequence is 6, 3, 1. Let S be any finite set, f be any endofunction from S to itself, and x0 be any element of S. For any i > 0, let xi =

Transformation semigroup

the transformation monoid of the minimal automaton of the language. Endofunction Semiautomaton Krohn–Rhodes theory Symmetric inverse semigroup Biordered

Signed-digit representation

{D}}\rightarrow \mathbb {Z} } as defined above, let us define an integer endofunction T : Z → Z {\displaystyle T:\mathbb {Z} \rightarrow \mathbb {Z} } as the

Pseudoforest

directed pseudoforests is instead (n − 1)n. Directed pseudoforests and endofunctions are in some sense mathematically equivalent. Any function ƒ from a set