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In
mathematics Mathematics is a field of study that discovers and organizes methods, Mathematical theory, theories and theorems that are developed and Mathematical proof, proved for the needs of empirical sciences and mathematics itself. There are many ar ...
, a field is algebraically closed if every non-constant polynomial in (the univariate
polynomial ring In mathematics, especially in the field of algebra, a polynomial ring or polynomial algebra is a ring formed from the set of polynomials in one or more indeterminates (traditionally also called variables) with coefficients in another ring, ...
with coefficients in ) has a
root In vascular plants, the roots are the plant organ, organs of a plant that are modified to provide anchorage for the plant and take in water and nutrients into the plant body, which allows plants to grow taller and faster. They are most often bel ...
in . In other words, a field is algebraically closed if the
fundamental theorem of algebra The fundamental theorem of algebra, also called d'Alembert's theorem or the d'Alembert–Gauss theorem, states that every non-constant polynomial, constant single-variable polynomial with Complex number, complex coefficients has at least one comp ...
holds for it. Every field K is contained in an algebraically closed field C, and the roots in C of the polynomials with coefficients in K form an algebraically closed field called an
algebraic closure In mathematics, particularly abstract algebra, an algebraic closure of a field ''K'' is an algebraic extension of ''K'' that is algebraically closed. It is one of many closures in mathematics. Using Zorn's lemmaMcCarthy (1991) p.21Kaplansky ...
of K. Given two algebraic closures of K there are isomorphisms between them that fix the elements of K. Algebraically closed fields appear in the following chain of class inclusions:


Examples

As an example, the field of
real number In mathematics, a real number is a number that can be used to measure a continuous one- dimensional quantity such as a duration or temperature. Here, ''continuous'' means that pairs of values can have arbitrarily small differences. Every re ...
s is not algebraically closed, because the polynomial equation x^2+1=0 has no solution in real numbers, even though all its coefficients (1 and 0) are real. The same argument proves that no subfield of the real field is algebraically closed; in particular, the field of
rational number In mathematics, a rational number is a number that can be expressed as the quotient or fraction of two integers, a numerator and a non-zero denominator . For example, is a rational number, as is every integer (for example, The set of all ...
s is not algebraically closed. By contrast, the
fundamental theorem of algebra The fundamental theorem of algebra, also called d'Alembert's theorem or the d'Alembert–Gauss theorem, states that every non-constant polynomial, constant single-variable polynomial with Complex number, complex coefficients has at least one comp ...
states that the field of
complex number In mathematics, a complex number is an element of a number system that extends the real numbers with a specific element denoted , called the imaginary unit and satisfying the equation i^= -1; every complex number can be expressed in the for ...
s is algebraically closed. Another example of an algebraically closed field is the field of (complex)
algebraic number In mathematics, an algebraic number is a number that is a root of a function, root of a non-zero polynomial in one variable with integer (or, equivalently, Rational number, rational) coefficients. For example, the golden ratio (1 + \sqrt)/2 is ...
s. No
finite field In mathematics, a finite field or Galois field (so-named in honor of Évariste Galois) is a field (mathematics), field that contains a finite number of Element (mathematics), elements. As with any field, a finite field is a Set (mathematics), s ...
''F'' is algebraically closed, because if ''a''1, ''a''2, ..., ''an'' are the elements of ''F'', then the polynomial (''x'' − ''a''1)(''x'' − ''a''2) ⋯ (''x'' − ''a''''n'') + 1 has no zero in ''F''. However, the union of all finite fields of a fixed characteristic ''p'' (''p'' prime) is an algebraically closed field, which is, in fact, the
algebraic closure In mathematics, particularly abstract algebra, an algebraic closure of a field ''K'' is an algebraic extension of ''K'' that is algebraically closed. It is one of many closures in mathematics. Using Zorn's lemmaMcCarthy (1991) p.21Kaplansky ...
of the field \mathbb F_p with ''p'' elements. The field \mathbb(x) of rational functions with complex coefficients is not closed; for example, the polynomial y^2 - x has roots \pm\sqrt, which are not elements of \mathbb(x).


Equivalent properties

Given a field ''F'', the assertion "''F'' is algebraically closed" is equivalent to other assertions:


The only irreducible polynomials are those of degree one

The field ''F'' is algebraically closed if and only if the only
irreducible polynomial In mathematics, an irreducible polynomial is, roughly speaking, a polynomial that cannot be factored into the product of two non-constant polynomials. The property of irreducibility depends on the nature of the coefficients that are accepted f ...
s in the
polynomial ring In mathematics, especially in the field of algebra, a polynomial ring or polynomial algebra is a ring formed from the set of polynomials in one or more indeterminates (traditionally also called variables) with coefficients in another ring, ...
''F'' 'x''are those of degree one. The assertion "the polynomials of degree one are irreducible" is trivially true for any field. If ''F'' is algebraically closed and ''p''(''x'') is an irreducible polynomial of ''F'' 'x'' then it has some root ''a'' and therefore ''p''(''x'') is a multiple of . Since ''p''(''x'') is irreducible, this means that , for some . On the other hand, if ''F'' is not algebraically closed, then there is some non-constant polynomial ''p''(''x'') in ''F'' 'x''without roots in ''F''. Let ''q''(''x'') be some irreducible factor of ''p''(''x''). Since ''p''(''x'') has no roots in ''F'', ''q''(''x'') also has no roots in ''F''. Therefore, ''q''(''x'') has degree greater than one, since every first degree polynomial has one root in ''F''.


Every polynomial is a product of first degree polynomials

The field ''F'' is algebraically closed if and only if every polynomial ''p''(''x'') of degree ''n'' ≥ 1, with
coefficient In mathematics, a coefficient is a Factor (arithmetic), multiplicative factor involved in some Summand, term of a polynomial, a series (mathematics), series, or any other type of expression (mathematics), expression. It may be a Dimensionless qu ...
s in ''F'', splits into linear factors. In other words, there are elements ''k'', ''x''1, ''x''2, ..., ''xn'' of the field ''F'' such that ''p''(''x'') = ''k''(''x'' − ''x''1)(''x'' − ''x''2) ⋯ (''x'' − ''xn''). If ''F'' has this property, then clearly every non-constant polynomial in ''F'' 'x''has some root in ''F''; in other words, ''F'' is algebraically closed. On the other hand, that the property stated here holds for ''F'' if ''F'' is algebraically closed follows from the previous property together with the fact that, for any field ''K'', any polynomial in ''K'' 'x''can be written as a product of irreducible polynomials.


Polynomials of prime degree have roots

If every polynomial over ''F'' of prime degree has a root in ''F'', then every non-constant polynomial has a root in ''F''. It follows that a field is algebraically closed if and only if every polynomial over ''F'' of prime degree has a root in ''F''.


The field has no proper algebraic extension

The field ''F'' is algebraically closed if and only if it has no proper algebraic extension. If ''F'' has no proper algebraic extension, let ''p''(''x'') be some irreducible polynomial in ''F'' 'x'' Then the
quotient In arithmetic, a quotient (from 'how many times', pronounced ) is a quantity produced by the division of two numbers. The quotient has widespread use throughout mathematics. It has two definitions: either the integer part of a division (in th ...
of ''F'' 'x''modulo the ideal generated by ''p''(''x'') is an algebraic extension of ''F'' whose degree is equal to the degree of ''p''(''x''). Since it is not a proper extension, its degree is 1 and therefore the degree of ''p''(''x'') is 1. On the other hand, if ''F'' has some proper algebraic extension ''K'', then the minimal polynomial of an element in ''K'' \ ''F'' is irreducible and its degree is greater than 1.


The field has no proper finite extension

The field ''F'' is algebraically closed if and only if it has no proper finite extension because if, within the previous proof, the term "algebraic extension" is replaced by the term "finite extension", then the proof is still valid. (Finite extensions are necessarily algebraic.)


Every endomorphism of ''Fn'' has some eigenvector

The field ''F'' is algebraically closed if and only if, for each natural number ''n'', every
linear map In mathematics, and more specifically in linear algebra, a linear map (also called a linear mapping, linear transformation, vector space homomorphism, or in some contexts linear function) is a mapping V \to W between two vector spaces that p ...
from ''Fn'' into itself has some
eigenvector In linear algebra, an eigenvector ( ) or characteristic vector is a vector that has its direction unchanged (or reversed) by a given linear transformation. More precisely, an eigenvector \mathbf v of a linear transformation T is scaled by ...
. An
endomorphism In mathematics, an endomorphism is a morphism from a mathematical object to itself. An endomorphism that is also an isomorphism is an automorphism. For example, an endomorphism of a vector space is a linear map , and an endomorphism of a g ...
of ''Fn'' has an eigenvector if and only if its
characteristic polynomial In linear algebra, the characteristic polynomial of a square matrix is a polynomial which is invariant under matrix similarity and has the eigenvalues as roots. It has the determinant and the trace of the matrix among its coefficients. The ...
has some root. Therefore, when ''F'' is algebraically closed, every endomorphism of ''Fn'' has some eigenvector. On the other hand, if every endomorphism of ''Fn'' has an eigenvector, let ''p''(''x'') be an element of ''F'' 'x'' Dividing by its leading coefficient, we get another polynomial ''q''(''x'') which has roots if and only if ''p''(''x'') has roots. But if , then ''q''(''x'') is the characteristic polynomial of the ''n×n'' companion matrix :\begin 0 & 0 & \cdots & 0 & -a_0\\ 1 & 0 & \cdots & 0 & -a_1\\ 0 & 1 & \cdots & 0 & -a_2\\ \vdots & \vdots & \ddots & \vdots & \vdots\\ 0 & 0 & \cdots & 1 & -a_ \end.


Decomposition of rational expressions

The field ''F'' is algebraically closed if and only if every
rational function In mathematics, a rational function is any function that can be defined by a rational fraction, which is an algebraic fraction such that both the numerator and the denominator are polynomials. The coefficients of the polynomials need not be ...
in one variable ''x'', with coefficients in ''F'', can be written as the sum of a polynomial function with rational functions of the form ''a''/(''x'' − ''b'')''n'', where ''n'' is a natural number, and ''a'' and ''b'' are elements of ''F''. If ''F'' is algebraically closed then, since the irreducible polynomials in ''F'' 'x''are all of degree 1, the property stated above holds by the theorem on partial fraction decomposition. On the other hand, suppose that the property stated above holds for the field ''F''. Let ''p''(''x'') be an irreducible element in ''F'' 'x'' Then the rational function 1/''p'' can be written as the sum of a polynomial function ''q'' with rational functions of the form ''a''/(''x'' – ''b'')''n''. Therefore, the rational expression :\frac1-q(x)=\frac can be written as a quotient of two polynomials in which the denominator is a product of first degree polynomials. Since ''p''(''x'') is irreducible, it must divide this product and, therefore, it must also be a first degree polynomial.


Relatively prime polynomials and roots

For any field ''F'', if two polynomials are
relatively prime In number theory, two integers and are coprime, relatively prime or mutually prime if the only positive integer that is a divisor of both of them is 1. Consequently, any prime number that divides does not divide , and vice versa. This is equiv ...
then they do not have a common root, for if was a common root, then ''p''(''x'') and ''q''(''x'') would both be multiples of and therefore they would not be relatively prime. The fields for which the reverse implication holds (that is, the fields such that whenever two polynomials have no common root then they are relatively prime) are precisely the algebraically closed fields. If the field ''F'' is algebraically closed, let ''p''(''x'') and ''q''(''x'') be two polynomials which are not relatively prime and let ''r''(''x'') be their
greatest common divisor In mathematics, the greatest common divisor (GCD), also known as greatest common factor (GCF), of two or more integers, which are not all zero, is the largest positive integer that divides each of the integers. For two integers , , the greatest co ...
. Then, since ''r''(''x'') is not constant, it will have some root ''a'', which will be then a common root of ''p''(''x'') and ''q''(''x''). If ''F'' is not algebraically closed, let ''p''(''x'') be a polynomial whose degree is at least 1 without roots. Then ''p''(''x'') and ''p''(''x'') are not relatively prime, but they have no common roots (since none of them has roots).


Other properties

If ''F'' is an algebraically closed field and ''n'' is a natural number, then ''F'' contains all ''n''th roots of unity, because these are (by definition) the ''n'' (not necessarily distinct) zeroes of the polynomial ''xn'' − 1. A field extension that is contained in an extension generated by the roots of unity is a ''cyclotomic extension'', and the extension of a field generated by all roots of unity is sometimes called its ''cyclotomic closure''. Thus algebraically closed fields are cyclotomically closed. The converse is not true. Even assuming that every polynomial of the form ''xn'' − ''a'' splits into linear factors is not enough to assure that the field is algebraically closed. If a proposition which can be expressed in the language of
first-order logic First-order logic, also called predicate logic, predicate calculus, or quantificational logic, is a collection of formal systems used in mathematics, philosophy, linguistics, and computer science. First-order logic uses quantified variables over ...
is true for an algebraically closed field, then it is true for every algebraically closed field with the same characteristic. Furthermore, if such a proposition is valid for an algebraically closed field with characteristic 0, then not only is it valid for all other algebraically closed fields with characteristic 0, but there is some natural number ''N'' such that the proposition is valid for every algebraically closed field with characteristic ''p'' when ''p'' > ''N''. Every field ''F'' has some extension which is algebraically closed. Such an extension is called an algebraically closed extension. Among all such extensions there is one and only one ( up to isomorphism, but not unique isomorphism) which is an algebraic extension of ''F'';See Lang's ''Algebra'', §VII.2 or van der Waerden's ''Algebra I'', §10.1. it is called the
algebraic closure In mathematics, particularly abstract algebra, an algebraic closure of a field ''K'' is an algebraic extension of ''K'' that is algebraically closed. It is one of many closures in mathematics. Using Zorn's lemmaMcCarthy (1991) p.21Kaplansky ...
of ''F''. The theory of algebraically closed fields has
quantifier elimination Quantifier elimination is a concept of simplification used in mathematical logic, model theory, and theoretical computer science. Informally, a quantified statement "\exists x such that ..." can be viewed as a question "When is there an x such ...
.


Notes


References

* * * * {{DEFAULTSORT:Algebraically Closed Field Field (mathematics)