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wu :: forums    riddles    putnam exam (pure math) (Moderators: Grimbal, SMQ, william wu, towr, Eigenray, Icarus)    Automorphism group of a directed graph. « Previous topic | Next topic » Pages: 1  Reply Notify of replies Send Topic Print    Author  Topic: Automorphism group of a directed graph.  (Read 880 times) Obob Senior Riddler     Gender: Posts: 489 Automorphism group of a directed graph.   « on: Dec 19th, 2006, 2:02pm » Quote Modify A tournament on n vertices is some orientation of the edges of the complete graph on n vertices.  So for any two vertices v and w, exactly one of v->w or w->v holds (we write v->w to mean there is a directed edge from v to w).  An automorphism of a directed graph is a bijection of the vertices which preserves the oriented edges.   Prove that the automorphism group of a tournament is solvable. IP Logged Eigenray wu::riddles Moderator Uberpuzzler     Gender: Posts: 1948 Re: Automorphism group of a directed graph.   « Reply #1 on: Dec 19th, 2006, 3:40pm » Quote Modify With or without Feit-Thompson? IP Logged Obob Senior Riddler     Gender: Posts: 489 Re: Automorphism group of a directed graph.   « Reply #2 on: Dec 19th, 2006, 7:30pm » Quote Modify That's a good question, Eigenray.  So good, in fact, that I invite you to answer it yourself. « Last Edit: Dec 19th, 2006, 7:32pm by Obob » IP Logged flamingdragon Uberpuzzler     Gender: Posts: 671 Re: Automorphism group of a directed graph.   « Reply #3 on: Dec 19th, 2006, 10:06pm » Quote Modify lol, thats a great statement, I think I should start quoting it.   Giving no credit to you of course.   IP Logged "The fool doth think he is wise, yet the wise man knoweth himself to be a fool" "He who commands the past, commands the future. He who commands the future, commands the past." ecoist Senior Riddler     Gender: Posts: 405 Re: Automorphism group of a directed graph.   « Reply #4 on: Dec 20th, 2006, 9:28am » Quote Modify My opinion is worth what you are paying for it, but I suspect there is no "high school" solution.  For, given any group G of odd order, there are tournaments T (with both even and odd numbers of vertices) whose automorphism group contains G. « Last Edit: Dec 20th, 2006, 9:51am by ecoist » IP Logged Obob Senior Riddler     Gender: Posts: 489 Re: Automorphism group of a directed graph.   « Reply #5 on: Dec 20th, 2006, 1:55pm » Quote Modify Exactly, ecoist.  So, this statement and the Feit-Thompson theorem are EQUIVALENT. IP Logged Pietro K.C. Full Member     Gender: Posts: 213 Re: Automorphism group of a directed graph.   « Reply #6 on: Jan 30th, 2007, 3:47pm » Quote Modify Just to clarify, is this the expected solution? I make liberal use of Feit-Thompson, which alas, despite some promising false starts, I have been unable to prove in the last couple of days.   I claim that the automorphism group G of any tournament T has odd order.   Suppose G has even order. Then there is an f in G of order 2 (Sylow). That is, f != id and f^2 = id.   Since f != 1, there must be a vextex u of T which f moves. Let f(u) = v. Then f(v) = u. But this reverses the direction of the arrow between u and v, which is incompatible with the definition of graph automorphism.   Therefore G has odd order, and is solvable by F-T. IP Logged "I always wondered about the meaning of life. So I looked it up in the dictionary under 'L' and there it was --- the meaning of life. It was not what I expected." (Dogbert) Obob Senior Riddler     Gender: Posts: 489 Re: Automorphism group of a directed graph.   « Reply #7 on: Jan 30th, 2007, 4:23pm » Quote Modify Yes, that is correct Pietro.  The interesting thing is that Feit-Thompson is essentially necessary for the proof. IP Logged Icarus wu::riddles Moderator Uberpuzzler Boldly going where even angels fear to tread.     Gender: Posts: 4863 Re: Automorphism group of a directed graph.   « Reply #8 on: Jan 30th, 2007, 7:20pm » Quote Modify Of course, since Feit-Thompson is a theorem, every  other theorem is equivalent to it. You can prove this without using Feit-Thompson, but essentially you do this by building the proof of Feit-Thompson inside your own proof.     As a side-point, beyond Eigenray's initial post, hiding the text is fairly pointless. Everyone who reads that far down is going to be highlighting any hidden text. « Last Edit: Jan 30th, 2007, 7:22pm by Icarus » IP Logged "Pi goes on and on and on ... And e is just as cursed. I wonder: Which is larger When their digits are reversed? " - Anonymous Pages: 1  Reply Notify of replies Send Topic Print Forum Jump: ----------------------------- riddles -----------------------------  - easy   - medium   - hard   - what am i   - what happened   - microsoft   - cs => putnam exam (pure math)   - suggestions, help, and FAQ   - general problem-solving / chatting / whatever ----------------------------- general -----------------------------  - guestbook   - truth   - complex analysis   - wanted   - psychology   - chinese « Previous topic | Next topic »

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