Difference between revisions of "Operator inverse"

Latest revision as of 10:40, 23 November 2007

Suppose we have a binary operation $G$ on a set $S$ , $G:S\times S \to S$ , and suppose this operation has an identity $e$ , so that for every $g\in S$ we have $G(e, g) = G(g, e) = g$ . An inverse to $\mathbf g$ under this operation is an element $h \in S$ such that $G(h, g) = G(g, h) = e$ .

Thus, informally, operating by $g$ is the "opposite" of operating by $g$ -inverse.

If our operation is not commutative, we can talk separately about left inverses and right inverses. A left inverse of $g$ would be some $h$ such that $G(h, g) = e$ , while a right inverse would be some $h$ such that $G(g, h) = e$ .

Uniqueness (under appropriate conditions)

If the operation $G$ is associative and an element has both a right and left inverse, these two inverses are equal.

Proof

Let $g$ be the element with left inverse $h$ and right inverse $h'$ , so $G(h, g) = G(g, h') = e$ . Then $G(G(h, g), h') = G(e, h') = h'$ , by the properties of $e$ . But by associativity, $G(G(h, g), h') = G(h, G(g, h')) = G(h, e) = h$ , so we do indeed have $h = h'$ .

Corollary

If the operation $G$ is associative, inverses are unique.

@@ Line 1: / Line 1: @@
-Suppose we have a [[binary operation]] G on a set S, <math>G:S\times S \to S</math>, and suppose this operation has an [[identity]] e, so that for every <math>g\in S</math> we have <math>G(e, g) = G(g, e) = g</math>.  An '''inverse to g''' under this operation is an element <math>h \in S</math> such that <math>G(h, g) = G(g, h) = e</math>.
+Suppose we have a [[binary operation]] <math>G</math> on a set <math>S</math>, <math>G:S\times S \to S</math>, and suppose this operation has an [[identity]] <math>e</math>, so that for every <math>g\in S</math> we have <math>G(e, g) = G(g, e) = g</math>.  An '''inverse to''' <math>\mathbf g</math> under this operation is an element <math>h \in S</math> such that <math>G(h, g) = G(g, h) = e</math>.
+Thus, informally, operating by <math>g</math> is the "opposite" of operating by <math>g</math>-inverse.
+If our operation is not [[commutative]], we can talk separately about ''left inverses'' and ''right inverses''.  A left inverse of <math>g</math> would be some <math>h</math> such that <math>G(h, g) = e</math>, while a right inverse would be some <math>h</math> such that <math>G(g, h) = e</math>.
-If our operation is not [[commutative]], we can talk separately about ''left inverses'' and ''right inverses''.  A left inverse of g would be some h such that <math>G(h, g) = e</math> while a right inverse would be some h such that <math>G(g, h) = e</math>.
 ==Uniqueness (under appropriate conditions)==
-If the operation G is [[associative]] and an element has both a right and left inverse, these two inverses are equal.
+If the operation <math>G</math> is [[associative]] and an element has both a right and left inverse, these two inverses are equal.
 ===Proof===
-Let g be the element with left inverse h and right inverse h', so <math>G(h, g) = G(g, h') = e</math>.  Then <math>G(G(h, g), h') = G(e, h') = h'</math>, by the properties of e.  But by associativity, <math>\displaystyle G(G(h, g), h') = G(h, G(g, h')) = G(h, e) = h</math>, so we do indeed have <math>h = h'</math>.
+Let <math>g</math> be the element with left inverse <math>h</math> and right inverse <math>h'</math>, so <math>G(h, g) = G(g, h') = e</math>.  Then <math>G(G(h, g), h') = G(e, h') = h'</math>, by the properties of <math>e</math>.  But by associativity, <math>G(G(h, g), h') = G(h, G(g, h')) = G(h, e) = h</math>, so we do indeed have <math>h = h'</math>.
 ===Corollary===
-If the operation G is associative, inverses are unique.
+If the operation <math>G</math> is associative, inverses are unique.
+[[Category:Abstract algebra]]
+[[Category:Definition]]

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Difference between revisions of "Operator inverse"

Latest revision as of 10:40, 23 November 2007

Uniqueness (under appropriate conditions)

Proof

Corollary