distributivity in po-groups

Let $G$ be a po-group and $A$ be a set of elements of $G$ . Denote the supremum of elements of $A$ , if it exists, by $\bigvee A$ . Similarly, denote the infimum of elements of $A$ , if it exists, by $\bigwedge A$ . Furthermore, let $A^{-1}=\{a^{-1}\mid a\in A\}$ , and for any $g\in G$ , let $gA=\{ga\mid a\in A\}$ and $Ag=\{ag\mid a\in A\}$ .

1.

If $\bigvee A$ exists, so do $\bigvee gA$ and $\bigvee Ag$ .
2.

If 1. is true, then $g\bigvee A=\bigvee gA=\bigvee Ag$ .
3.

$\bigvee A$ exists iff $\bigwedge A^{-1}$ exists; when this is the case, $\bigwedge A^{-1}=(\bigvee A)^{-1}$ .
4.

If $\bigwedge A$ exists, so do $\bigwedge gA$ , and $\bigwedge Ag$ .
5.

If 4. is true, then $g\bigwedge A=\bigwedge gA=\bigwedge Ag$ .
6.

If 1. is true and $A=\{a,b\}$ , then $a\wedge b$ exists and is equal to $a(a\vee b)^{-1}b$ .

Proof.

Suppose $\bigvee A$ exists.

•

(1. and 2.) Clearly, for each $a\in A$ , $a\leq\bigvee A$ , so that $ga\leq g\bigvee A$ , and therefore elements of $g A$ are bounded from above by $g\bigvee A$ . To show that $g\bigvee A$ is the least upper bound of elements of $g A$ , suppose $b$ is the upper bound of elements of $g A$ , that is, $ga\leq b$ for all $a\in A$ , this means that $a\leq g^{-1}b$ for all $a\in A$ . Since $\bigvee A$ is the least upper bound of the $a$ ’s, $\bigvee A\leq g^{-1}b$ , so that $g\bigvee A\leq b$ . This shows that $g\bigvee A$ is the supremum of elements of $g A$ ; in other words, $g\bigvee A=\bigvee gA$ . Similarly, $\bigvee Ag$ exists and $g\bigvee A=\bigvee Ag$ as well.
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(3.) Write $c=\bigvee A$ . Then $a\leq c$ for each $a\in A$ . This means $c^{-1}\leq a^{-1}$ . If $b\leq a^{-1}$ for all $a\in A$ , then $a\leq b^{-1}$ for all $a\in A$ , so that $c\leq b^{-1}$ , or $b\leq c^{-1}$ . This shows that $c^{-1}$ is the greatest lower bound of elements of $A^{-1}$ , or $(\bigvee A)^{-1}=\bigwedge A^{-1}$ . The converse is proved likewise.
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(4. and 5.) This is just the dual of 1. and 2., so the proof is omitted.
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(6.) If $A=\{a,b\}$ , then $aA^{-1}b=A$ , and the existence of $\bigwedge A$ is the same as the existence of $\bigwedge(aA^{-1}b)$ , which is the same as the existence of $a(\bigwedge A^{-1})b$ by 4 and 5 above. Since $\bigvee A$ exists, so does $\bigwedge A^{-1}$ , and hence $a(\bigwedge A^{-1})b$ , by 3 above. Also by 3, we have the equality $a(\bigwedge A^{-1})b=a(\bigvee A)^{-1}b$ . Putting everything together, we have the result: $a\wedge b=a(a\vee b)^{-1}b$ .

This completes the proof. ∎

Remark. From the above result, we see that group multiplication distributes over arbitrary joins and meets, if these joins and meets exist.

One can use this result to prove the following: every Dedekind complete po-group is an Archimedean po-group.

Proof.

Suppose $a^{n}\leq b$ for all integers $n$ . Let $A=\{a^{n}\mid n\in\mathbb{Z}\}$ . Then $A$ is bounded from above by $b$ so has least upper bound $\bigvee A$ . Then $a\bigvee A=\bigvee aA=\bigvee A$ , since $aA=A$ . As a result, multiplying both sides by $(\bigvee A)^{-1}$ , we get $a=e$ . ∎

Remark. The above is a generalization of a famous property of the real numbers: $\mathbb{R}$ has the Archimedean property.

Title	distributivity in po-groups
Canonical name	DistributivityInPogroups
Date of creation	2013-03-22 17:05:12
Last modified on	2013-03-22 17:05:12
Owner	CWoo (3771)
Last modified by	CWoo (3771)
Numerical id	6
Author	CWoo (3771)
Entry type	Definition
Classification	msc 06F05
Classification	msc 06F20
Classification	msc 06F15
Classification	msc 20F60