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[obm-l] problema de geometria e link de IMO's
Sauda,c~oes,
No email editado abaixo tem um problema de geometria,
sua fonte (um jornal de Hong Kong com o link) e uma
discussão de sua solução.
Se o Claudio (obrigado pelas demonstrações, muito claras)
não conhece, o jornal de HK traz muitos problemas tipo IMO.
[]'s
Luís
Dear all my friends:
The problem angles is from
Mathematical Excalibur
Vol 7 nº 3, problem 158
http://www.math.ust.hk/excalibur/v7_n3.pdf
Best regard
Ricardo
Vladimir Dubrovsky wrote: Dear Tuan, Ricardo, Kostas, Tarik, Francois and
Nikolaos
Somehow I missed some posts and found another solution to Tuan's question.
It seems to be shorter, so I decided to add it to the collection.
So we have point P on AD such that Angle BPD=Angle BAC=2Angle DPC.
Extend AD to meet the circumcircle of ABC at E; let CE=d, BE=e.
Then
BD:DC=area(ABE) :area(ACE) =ce/bd. (*)
Triangle PBE is similar to ABC; hence PE=be/a. (This is, actually,
Francois's similarity.)
Triangle CPF is similar to A'AB, where AA' is the bisector of A (this is
another similarity, but a transformational argument escapes me; maybe
Francois can shed light on it).
Hence PE= cd/BA' =(b+c)d/a.
It remains to equate the two expressions for PE and substitute the resulting
e/d=(b+c)/b into (*).
Notice that if we take triangle EBC as the initial one (instead of ABC),
then P will be on the *extension* of ED. The original relation between the
angles is violated, but it will remain the same if we think of angles as
oriented angles between lines rather than rays. So, in a certain way, this
answers Tarik's question: BD/DC = e(e-d)/dd.
Best regards,
Vladimir
============ ==
[QTB]
>>This fact is still true for any triangle ABC. In
>>this case, D divide BC by one simple ratio depending
>>on sides a, b, c. What is this ratio and how is the
>>proof for this general case?
>
[TA]
>Dear kostas,
>if the point P is on the extension of the line AD
>will your proof work there?
>Moon Bangladesh
>
[ND]
>We construct a point D on BC such that
>BD/DC = k =c(b+c)/bb
>The parallel from D to AC meets AB at E.
>The circumcircle EBC meets AC at F.
>The circumcircle EBD meets AD at P.
>It is easy to prove that DF is parallel to
>AA' the A_bisector
>from CA'=ac/(b+c) DC=a/(k+1) AE = c/(k+1)
>AE.AB = AF.AC and CF/CA = CD/CA'
>Hence the ratio is k. For b=c we get k=2
>as in Barosso's problem.
>
>The contruction of D is as follows:
>We construct the parallelogram BCAC1.
>The parallel from C to AA' meets AB at C2
>The reflection of A in B is the point C3.
>The circumcircle of C1C2C3 meets the line
>BC1 at C4. The line AC4 meets BC at the
>point we want D.
>
>Best regards
>Nikos Dergiades
[FR]
>Here another proof where I have tried to minimize the number of auxiliary
>points.
>
>Let f be the direct similarity of center B sending A to P and E = f(C).
>By hypothesis, A, P, E are on a same line.
>We have the following equalities between angles of lines:
>(CA, CB) = (EP, EB) (invariance of angles by a direct similarity)
>(EP, EB) = (EA, EB) (for A, B, P are on a same line)
>So (EA, EB) = (CA, CB) and points A, B, C, E are cocyclic (i.e on a same
>circle)
>
>Now as A is on the perpendicular bisector of segment BC, line EA is a
>bisector of angle > The other bisector is through the point D" harmonic
>conjugate of D wrt BC.
>But by assumption done on D (i.e BD = 2 DC), C is the middle of BD".
>
>Let F be the middle of segment BE. Then FC is parallel to ED"and hence
>perpendicular to line EDPA.
>Hence C and F are symmetric wrt this last line and we are done :
> >
>Un abrazo
>Francois
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