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Talk:Napoleon's problem

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The solution is the neatest that I have seen, but the proof needs cleaning.

!. Use the same diagram. Then H is the midpoint of BB'. Let AB = b.

Circles centers D,D' radius b, meet at A and X.


By similar Right triangles AHB, ABA'. AH/b = b/AA'. b²/AH = AA = 2r. b²/AC = r.

AD = AB = b. By similar isosceles triangles AXD, ADC. AX/AD = AD/AC. AX =b²/AC = r.

QED.

I am pleased that no proof is given that b > r/2

Bparslow (talk) 18:25, 8 January 2008 (UTC)[reply]

Usual notation for right triangle (A, B, C) means that B instead A´, C & C´ instead B & B´ as well as
x = OA = OC instead a should be taken leading up to well known relations:


77.238.204.217 (talk) 09:51, 18 October 2008 (UTC)Stap[reply]


The proof is difficult to follow because points on the proof sketch don't match up with points on the problem sketch above. For example, C on the top diagram is where the green lines cross, but on the bottom diagram, C is the sought-for centre of circle (and I think where the green lines cross is now O). Similarly D and D' don't feature on the bottom diagram (or have they been re-labelled B and B'?). I would correct this but right now I haven't been able to figure out exactly which points are which and I don't want to get it wrong :-( 91.106.135.3 (talk) 19:23, 20 September 2009 (UTC)[reply]