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Q.52 GR0568

Posted: Wed Sep 10, 2008 12:04 pm
by amateur
Hi Folks,

Can anyone help with Q. 52 GR058. For reference, the question is:

Q. If "A" is a subset of the real line "R", and "A" contains each rational number, which of the following must be true?

A. If "A" is open, then "A" = "R"
B. If "A" is closed, then "A" = "R"
C. If "A" is uncountable, then "A" = "R"
D. If "A" is uncountable, then "A" is open
E. If "A" is countable, then "A" is closed.

Thanks,

Posted: Wed Sep 10, 2008 2:33 pm
by lime
Solve it by elimination.

A. NO. Counterexample, A=(-inf,sqrt(2)) union (sqrt(2),+inf).
B. YES. But leave it for a while.
C. NO. Counterexample, A=Q union [0,1].
D. NO. Previous counterexample also works here. In this case A is neither open, nor closed.
E. NO. Counterexample A=Q, which is countable but not closed.

Therefore we got the answer.
Notice that we could get it immediately, if remembered that closed set contains all its limit points. For Q the set of its limit points is R.

Posted: Wed Sep 10, 2008 8:09 pm
by Nameless
A" contains each rational number,
I am confused b/c of this ?
what does it means? :D

Posted: Wed Sep 10, 2008 8:10 pm
by amateur
Thanks for your reply, but

- my understanding was that since the set "A" contains each rational number, it must at least be equal to Q or more. Can we deduce from the wording of the question that "A" may contain elements that are not in Q? Can you give a counterexample to option A. for a set which contains all elements in Q (and maybe more).

- Secondly, could you explain choice B.

Thanks again.
Amateur.

Posted: Thu Sep 11, 2008 1:53 am
by lime
my understanding was that since the set "A" contains each rational number, it must at least be equal to Q or more.
Correct.
Can we deduce from the wording of the question that "A" may contain elements that are not in Q?
Correct.
Can you give a counterexample to option A. for a set which contains all elements in Q (and maybe more).
I just did it in the previous post, didn't I?
Secondly, could you explain choice B.
The set of all limit points of Q is R. In order to have all its limit points A must be R.

Re: Q.52 GR0568

Posted: Fri Nov 06, 2009 3:38 pm
by jayre
Sorry to pull up this old thread, but I'm just slightly confused about the answer. I understand why all the incorrect choices are incorrect, but I did not think that R was closed.

Re: Q.52 GR0568

Posted: Fri Nov 06, 2009 3:42 pm
by joey
jayre wrote:Sorry to pull up this old thread, but I'm just slightly confused about the answer. I understand why all the incorrect choices are incorrect, but I did not think that R was closed.
It has to be! The empty set is always open, so its complement must be closed.

Additionally, R must contain all its limit points, as it's the whole space.