Orrery: Difference between revisions

Revision as of 13:53, 19 December 2013

In abstract algebra, a non-zero non-unit element in an integral domain is said to be irreducible if it is not a product of two non-units.

Irreducible elements should not be confused with prime elements. (A non-zero non-unit element $a$ in a commutative ring $R$ is called prime if whenever $a|bc$ for some $b$ and $c$ in $R$ , then $a|b$ or $a|c$ .) In an integral domain, every prime element is irreducible,^[1] but the converse is not true in general. The converse is true for UFDs (or, more generally, GCD domains.)

Moreover, while an ideal generated by a prime element is a prime ideal, it is not true in general that an ideal generated by an irreducible element is an irreducible ideal. However, if $D$ is a GCD domain, and $x$ is an irreducible element of $D$ , then the ideal generated by $x$ is an irreducible ideal of $D$ .^[2]

Example

In the quadratic integer ring $\mathbf {Z} [{\sqrt {-5}}]$ , it can be shown using norm arguments that the number 3 is irreducible. However, it is not a prime in this ring since, for example,

3|\left(2+{\sqrt {-5}}\right)\left(2-{\sqrt {-5}}\right)=9

but $3$ does not divide either of the two factors.^[3]

References

43 year old Petroleum Engineer Harry from Deep River, usually spends time with hobbies and interests like renting movies, property developers in singapore new condominium and vehicle racing. Constantly enjoys going to destinations like Camino Real de Tierra Adentro.

Template:Abstract-algebra-stub

↑ Consider p a prime that is reducible: p=ab. Then p | ab => p | a or p | b. Say p | a => a = pc, then we have: p=ab=pcb => p(1-cb)=0. Because R is a integral domain we have: cb=1. So b is a unit and p is irreducible.
↑ http://planetmath.org/encyclopedia/IrreducibleIdeal.html
↑ William W. Adams and Larry Joel Goldstein (1976), Introduction to Number Theory, p. 250, Prentice-Hall, Inc., ISBN 0-13-491282-9

[1] Consider p a prime that is reducible: p=ab. Then p | ab => p | a or p | b. Say p | a => a = pc, then we have: p=ab=pcb => p(1-cb)=0. Because R is a integral domain we have: cb=1. So b is a unit and p is irreducible.

[2] ttp://planetmath.org/encyclopedia/IrreducibleIdeal.html

[3] William W. Adams and Larry Joel Goldstein (1976), Introduction to Number Theory, p. 250, Prentice-Hall, Inc., ISBN 0-13-491282-9

[1]

[2]

[3]

@@ Line 1: / Line 1: @@
-Adolph is what people call me and my wife doesn't be pleased at every. I work to be a payroll worker. It's not a common thing but things i like doing is to fish however [http://www.Thefreedictionary.com/i+don%27t i don't] obtain the time in recent years. Alabama has always been her family home. See what's new on his website here: http://wiki.triopsking.de/triopswiki/index.php?title=Benutzer:LeviKelsall<br><br>Check out my blog: [http://wiki.triopsking.de/triopswiki/index.php?title=Benutzer:LeviKelsall hanna montana songs]
+In [[abstract algebra]], a non-zero non-[[unit (ring theory)|unit]] element in an [[integral domain]] is said to be '''irreducible''' if it is not a product of two non-units.
+Irreducible elements should not be confused with [[prime element]]s. (A non-zero non-unit element <math>a</math> in a [[commutative ring]] <math>R</math> is called prime if whenever <math>a | bc</math> for some <math>b</math> and <math>c</math> in <math>R</math>, then <math>a|b</math> or <math>a|c</math>.) In an [[integral domain]], every prime element is irreducible,<ref>Consider p a prime that is reducible: p=ab. Then p | ab => p | a or p | b. Say p | a => a = pc, then we have: p=ab=pcb => p(1-cb)=0. Because R is a integral domain we have: cb=1. So b is a unit and p is irreducible.</ref> but the converse is not true in general. The converse ''is'' true for [[unique factorization domain|UFD]]s (or, more generally, [[GCD domain]]s.)
+Moreover, while an ideal generated by a prime element is a [[prime ideal]], it is not true in general that an ideal generated by an irreducible element is an [[irreducible ideal]].  However, if <math>D</math> is a GCD domain, and <math>x</math> is an irreducible element of <math>D</math>, then the ideal generated by <math>x</math> ''is'' an irreducible ideal of <math>D</math>.<ref>http://planetmath.org/encyclopedia/IrreducibleIdeal.html</ref>
+== Example ==
+In the [[quadratic integer ring]] <math>\mathbf{Z}[\sqrt{-5}]</math>, it can be shown using [[Field norm|norm]] arguments that the number 3 is irreducible. However, it is not a prime in this ring since, for example,
+:<math>3 | \left(2 + \sqrt{-5}\right)\left(2 - \sqrt{-5}\right)=9</math>
+but <math>3</math> does not divide either of the two factors.<ref>William W. Adams and Larry Joel Goldstein (1976), ''Introduction to Number Theory'', p. 250, Prentice-Hall, Inc., ISBN 0-13-491282-9</ref>
+== References ==
+{{reflist}}
+{{DEFAULTSORT:Irreducible Element}}
+[[Category:Ring theory]]
+{{Abstract-algebra-stub}}

Orrery: Difference between revisions

Revision as of 13:53, 19 December 2013

Example

References

Navigation menu

Search