Difference between revisions of "The real numbers"
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===[[Axiomatic construction of the real numbers]]=== | ===[[Axiomatic construction of the real numbers]]=== | ||
{{:Axiomatic construction of the real numbers/Definition}} | {{:Axiomatic construction of the real numbers/Definition}} | ||
+ | =={{M|\mathbb{R} }} is an example of:== | ||
+ | * [[Vector space]] | ||
+ | * [[Field]] ({{M|\implies\ \ldots\implies}} [[ring]]) | ||
+ | * [[Complete metric space]] ({{M|\implies}} [[topological space]]) | ||
+ | ** With the metric of [[absolute value]] | ||
+ | {{Todo|Flesh out}} | ||
+ | ==Properties== | ||
+ | {{Collapsible box|title= | ||
+ | * The [[axiom of completeness]] - a badly named property that isn't really an [[axiom]]. | ||
+ | |content={{:Axiom of completeness/Statement}}}} | ||
==Notes== | ==Notes== | ||
<references group="Note"/> | <references group="Note"/> |
Revision as of 13:44, 2 June 2016
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The real numbers | |
R |
Contents
[hide]Definition
Cantor's construction of the real numbers
The set of real numbers, R, is the quotient space, C/∼ where:[1]
- C - the set of all Cauchy sequences in Q - the quotients
- ∼ - the usual equivalence of Cauchy sequences
We further claim:
- that the familiar operations of addition, multiplication and division are well defined and
- by associating x∈Q with the sequence (xn)∞n=1⊆Q where ∀n∈N[xn:=x] we can embed Q in R:=C/∼
Axiomatic construction of the real numbers
Axiomatic construction of the real numbers/Definition
R is an example of:
- Vector space
- Field (⟹ …⟹ ring)
- Complete metric space (⟹ topological space)
- With the metric of absolute value
TODO: Flesh out