Can a Countable Intersection of Infinitesimal Balls be Bounded Away from 0?

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Discussion Overview

The discussion revolves around the properties of a countable intersection of open sets, specifically intervals of infinitesimal radius centered at 0. Participants are exploring whether such an intersection can be bounded away from 0, and the implications of countable saturation in this context.

Discussion Character

  • Exploratory
  • Technical explanation
  • Conceptual clarification
  • Debate/contested
  • Mathematical reasoning

Main Points Raised

  • One participant questions if the countable intersection of decreasing nested open sets (infinitesimal balls) about 0 is bounded away from 0, expressing difficulty in proving this.
  • Another participant asserts that every countable set is bounded, prompting a discussion about the implications for the intersection of bounded open balls.
  • There is a clarification that while the set of integers is bounded in the context of *R, the set of hyperintegers is unbounded.
  • A participant introduces the concept of countable saturation, suggesting that a decreasing sequence of nonempty internal sets must remain nonempty, but expresses concern about showing the intersection contains more than one element.
  • One participant proposes a method to construct a new sequence by removing an element, arguing that if the intersection has only one element, this leads to a contradiction.
  • Another participant shares their experience using ultrafilters and diagonalization to approach the problem, indicating that the reasoning feels unintuitive.
  • There is a request for clarification on the concept of saturation, with one participant explaining it in the context of their problem.

Areas of Agreement / Disagreement

Participants express differing views on the nature of countable sets and their boundedness, with some agreeing on the properties of *R while others remain uncertain. The discussion includes multiple competing perspectives on the implications of saturation and the nature of the intersection.

Contextual Notes

Limitations include the dependence on definitions of boundedness in *R and the nuances of saturation, which are not fully resolved in the discussion.

jem05
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hello everyone,

i have this (decreasing) nested sequence of open sets (intervals of infinitesimal radius) about 0.
i just want to know if the intersection of the sets described above is still bounded away from 0.
that is, is it true that the countable intersection of such balls with infinitesimal radius will not be just the singleton.
i failed to prove that, with saturation, and i researched, there was sth with *R having uncountable cofinality, (every countable set is bounded)
i just need help understanding this.
thank you.
 
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every countable set is bounded

Really? Z, Q?

Each of your open balls are bounded, so wouldn't the intersection be bounded? I admit I know nothing of nsa, but I don't precisely see the question.
 
Z is a bounded subset of *R -- any positive transfinite element would be an upper bound. Of course, *Z is unbounded.


If you know countable sets are bounded, then just invert the radius of your intervals.
 
yeah sure, once i make my peace with ever countable set is bounded. but is that sth known about *R or because it seems vague to me.
 
I'm not familiar with the acronym 'sth'.
 
sorry, i meant sth :something
 
I'm more familiar with the direct construction via ultra-powers -- after choosing well-behaved representatives, I'm pretty sure you can use a diagonal argument to construct an upper-bound on any increasing countable sequence.

I guess you understand things in terms of saturation? I forget precisely what that means, could you briefly describe it?
 
ok thanks i should try this out.
countable saturation says that a decreasing sequence of nonempty internal sets is always non empty. my problem is showing my sequence isn't only non empty, it must have more tha one element.
 
jem05 said:
ok thanks i should try this out.
countable saturation says that a decreasing sequence of nonempty internal sets is always non empty. my problem is showing my sequence isn't only non empty, it must have more tha one element.

Ah! This one's easy. Suppose that it does only have one element. Construct a new sequence where you've removed that element from all of your sets!
 
  • #10
ok, i used the ultrafilter way, and a sort of diagonalization, it's very un-intiutive though, not that pretty,...
anyway, thanks a lot, hurkyl
so as for the countable saturation method, let's say we have a nested decreasing sequence of intervals (ai,bi)
if intersection is {xo} take the intervals (ai, xo)
by the same reasoning, their intersection is nonempty, so the point of their intersection must also be in the intersection of the previous intervals (ai,bi).
am i correct?

if anyone is interseted in the other proof concerning the ultrafiletrs, let me know, i will post it.
 

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