O(ab) when o(a) and o(b) are relatively prime

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Discussion Overview

The discussion revolves around proving that if the orders of elements a and b in a group are relatively prime and they commute, then the order of the product ab is equal to the product of their orders. Participants explore various approaches and mathematical concepts related to group theory, particularly focusing on the implications of Lagrange's theorem and the properties of cyclic groups.

Discussion Character

  • Technical explanation
  • Mathematical reasoning
  • Debate/contested

Main Points Raised

  • Chen seeks guidance on proving that o(ab) = o(a)o(b) under the conditions that o(a) and o(b) are relatively prime and ab = ba.
  • Some participants suggest showing that o(ab) ≥ o(a)o(b) as a potential approach.
  • There is a discussion about the application of Lagrange's theorem, with some participants questioning its relevance to the orders of elements rather than groups.
  • One participant proposes defining specific groups to utilize Lagrange's theorem but expresses uncertainty about the effectiveness of this approach.
  • Another participant suggests examining the group generated by ab and the implications of elements being in that group.
  • A method involving the relationship between powers of a and b and their orders is proposed, leading to a conclusion about the divisibility of o(ab).
  • Chen expresses gratitude for the assistance received and shifts the topic to groups of infinite order where every element has finite order, mentioning roots of unity as an example.
  • A participant responds with a construction involving finite groups and infinite sequences, suggesting a broader class of examples.

Areas of Agreement / Disagreement

Participants do not reach a consensus on the best approach to prove the main claim, with multiple competing views and methods discussed throughout the thread.

Contextual Notes

Some participants note that the chapter containing the original problem precedes discussions on Lagrange's theorem and cyclic groups, implying that a solution may exist without relying on these concepts.

Chen
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Hi,

I am trying to prove that if o(a) and o(b) are relatively prime, and ab = ba, then o(ab) = o(a)o(b). I'd appreciate it if someone could give me a nudge in the right direction because I've spent almost 2 days on this now and I got nowhere. Which is rather annoying considering this is the first exercice in the chapter and the rest I did without a problem, so there must be something simple here that I'm missing. :mad:

I already know that if (m, n) = 1 and m|k and n|k then mn|k. I think I can use this to prove what I need, if I can only show that o(a)|o(ab) and o(b)|o(ab). (Because I've already shown that o(ab)|o(a)o(b), so proving o(a)o(b)|o(ab) will be enough.)

Thanks!
Chen
 
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What's o(x)? The order of x in the group of interest?

I think a better approach would be to show o(ab) >= o(a) o(b)


(P.S. I no longer think this approach is better!)
 
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Yes. Any idea how I could go about showing that? :smile:
 
o(a) | o(ab) sounds like Lagrange's theroem!

As for o(ab) >= o(a) o(b), for some reason the division theorem springs to mind.
 
I thought Lagrange's theorem deals with orders of groups, not orders of elements... :confused:
 
It does. That's called a hint. :smile:
 
Sorry, I still don't get it. Which groups do you think should I define, to make use of Lagrange's theroem?

I tried defining H = <ab>, Ka = <a> and Kb = <b>. But then H is a subgroup of KaKb and the only thing I can learn from that is that the order of H (which is o(ab)) divides the order of KaKb (which is o(a)o(b)) - but I already know this...
 
And by the way, this chapter of questions comes before the chapter on Lagrange's theroem and even before the chapter on cyclic groups - so I think there's a way to solve this problem without making use of either of those.
 
Look at the group generated by ab, if a is in it, then you are done, or if yuou can show a^r is in it where r is some number coprime to o(a)...
 
  • #10
If you don't like that method, then how about this (which is essentially the same):

suppose that r is a positive integer and a^rb^r=e, then a^r=b^s, for some positive s (ko(b)-r for some multiple of o(b)). If we raise both sides to the power o(b), then a^(ro(b))=e from which it follows that o(a) divides r as o(a) and o(b) are coprime, and hence o(ab), by symmetry o(b) divides o(ab) and we are done.
 
  • #11
Thanks Matt, that did it. I took k=o(ab), then a^k=b^-k, raised to the power of o(b) etc.

By the way, while we're on the subject, can you guys think of any groups of infinite order, in which every element is of finite order? The only one I found was the group of all roots of unity in the complex with regular multiplication. Are there any more? (well I guess there are a lot more...)
 
  • #12
Take your favorite finite group, and take the group of all infinite sequences whose elements are in that group. (pointwise multiplication)
 

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