Archimedean ordered vector space

In mathematics, specifically in order theory, a binary relation ${\displaystyle \le }$ on a vector space ${\displaystyle X}$ over the real or complex numbers is called Archimedean if for all ${\displaystyle x\in X,}$ whenever there exists some ${\displaystyle y\in X}$ such that ${\displaystyle nx\le y}$ for all positive integers ${\displaystyle n,}$ then necessarily ${\displaystyle x\le 0.}$ An Archimedean (pre)ordered vector space is a (pre)ordered vector space whose order is Archimedean.^[1] A preordered vector space ${\displaystyle X}$ is called almost Archimedean if for all ${\displaystyle x\in X,}$ whenever there exists a ${\displaystyle y\in X}$ such that ${\displaystyle -n^{-1}y\le x\le n^{-1}y}$ for all positive integers ${\displaystyle n,}$ then${\displaystyle x=0.}$^[2]

A preordered vector space ${\displaystyle (X,\le )}$ with an order unit ${\displaystyle u}$ is Archimedean preordered if and only if ${\displaystyle nx\le u}$ for all non-negative integers ${\displaystyle n}$ implies ${\displaystyle x\le 0.}$^[3]

Let ${\displaystyle X}$ be an ordered vector space over the reals that is finite-dimensional. Then the order of ${\displaystyle X}$ is Archimedean if and only if the positive cone of ${\displaystyle X}$ is closed for the unique topology under which ${\displaystyle X}$ is a Hausdorff TVS.^[4]

Suppose ${\displaystyle (X,\le )}$ is an ordered vector space over the reals with an order unit ${\displaystyle u}$ whose order is Archimedean and let ${\displaystyle U=[-u,u].}$ Then the Minkowski functional ${\displaystyle p_U}$ of ${\displaystyle U}$ (defined by ${\displaystyle p_U(x):=\inf \{r>0:x\in r[-u,u]\}}$) is a norm called the order unit norm. It satisfies ${\displaystyle p_U(u)=1}$ and the closed unit ball determined by ${\displaystyle p_U}$ is equal to ${\displaystyle [-u,u]}$ (that is, ${\displaystyle [-u,u]=\{x\in X:p_U(x)\le 1\}.}$^[3]

The space ${\displaystyle l_{\mathrm{\infty }}(S,\mathbb{ℝ})}$ of bounded real-valued maps on a set ${\displaystyle S}$ with the pointwise order is Archimedean ordered with an order unit ${\displaystyle u:=1}$ (that is, the function that is identically ${\displaystyle 1}$ on ${\displaystyle S}$). The order unit norm on ${\displaystyle l_{\mathrm{\infty }}(S,\mathbb{ℝ})}$ is identical to the usual sup norm: ${\displaystyle \Vert f\Vert :=\underset{}{\sup }|f(S)|.}$^[3]

Every order complete vector lattice is Archimedean ordered.^[5] A finite-dimensional vector lattice of dimension ${\displaystyle n}$ is Archimedean ordered if and only if it is isomorphic to ${\displaystyle {\mathbb{ℝ}}^n}$ with its canonical order.^[5] However, a totally ordered vector order of dimension ${\displaystyle >1}$ can not be Archimedean ordered.^[5] There exist ordered vector spaces that are almost Archimedean but not Archimedean.

The Euclidean space ${\displaystyle {\mathbb{ℝ}}^2}$ over the reals with the lexicographic order is not Archimedean ordered since ${\displaystyle r(0,1)\le (1,1)}$ for every ${\displaystyle r>0}$ but ${\displaystyle (0,1)\ne (0,0).}$^[3]

• Archimedean property – Mathematical property of algebraic structures
• Ordered vector space – Vector space with a partial order

• Narici, Lawrence; Beckenstein, Edward (2011). Topological Vector Spaces. Pure and applied mathematics (Second ed.). Boca Raton, FL: CRC Press. ISBN 978-1584888666. OCLC 144216834. 
• Schaefer, Helmut H.; Wolff, Manfred P. (1999). Topological Vector Spaces. GTM. 8 (Second ed.). New York, NY: Springer New York Imprint Springer. ISBN 978-1-4612-7155-0. OCLC 840278135. 

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