2014 IMO Problems/Problem 4: Difference between revisions
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We have angles BQA = APC = NQC = BPM. We also have AQ = QN, AP = PM. Because the triangles ABP and ACQ are similar, we have EC/EN = BF/FM, so triangles BFM and NEC are similar. So the angles CBM and ANC, BCN and AMB are equal and we are done. | We have angles BQA = APC = NQC = BPM. We also have AQ = QN, AP = PM. Because the triangles ABP and ACQ are similar, we have EC/EN = BF/FM, so triangles BFM and NEC are similar. So the angles CBM and ANC, BCN and AMB are equal and we are done. | ||
==Solution 2== | |||
Let <math>L</math> be the midpoint of <math>BC</math>. Easy angle chasing gives <math>\angle{AQP} = \angle{APQ} = \angle{BAC}</math>. Because <math>P</math> is the midpoint of <math>AM</math>, the cotangent rule applied on triangle <math>MBA</math> gives us | |||
<cmath>\cot \angle{MBC} - \cot \angle{ABC} = 2\cot \angle{BAC}.</cmath> | |||
Hence, by the cotangent rule on <math>ABC</math>, we have | |||
<cmath>\cot \angle{BAL} = 2\cot \angle{BAC} + \cot \angle{ABC} = \cot \angle{MBC}.</cmath> | |||
Because the period of cotangent is <math>180^\circ</math>, we have <math>\angle{BAL} = \angle{MBC}.</math> | |||
Similarly, we have <math>\angle{LAC} = \angle{NCB}.</math> Hence, if <math>BM</math> and <math>CN</math> intersect at <math>Z</math>, then <math>\angle{BZC} = 180^\circ - \angle{BAC}</math> by the Angle Sum in a Triangle Theorem. Hence, <math>BACZ</math> is cyclic, which is equivalent to the desired result. | |||
{{alternate solutions}} | {{alternate solutions}} | ||
Revision as of 23:14, 7 February 2015
Problem
Points 
and 
lie on side 
of acute-angled 
so that 
and 
. Points 
and 
lie on lines 
and 
, respectively, such that is the midpoint of 
, and is the midpoint of 
. Prove that lines 
and 
intersect on the circumcircle of .
Solution
Sorry guys I'm new to AOPS so I don't know how to insert equations and stuff. Please help if you can. Thanks.
We are trying to prove that the intersection of BM and CN, call it point D, is on the circumcircle of triangle ABC. In other words, we are trying to prove angle BAC plus angle BDC is 180 degrees. Let the intersection of BM and AN be point E, and the intersection of AM and CN be point F. Let us assume (angle BDC) + (angle BAC) = 180. If angle BDC plus angle BAC is 180, then angle BAC should be equal to angles BDN and CDM. We can quickly prove that the triangles ABC, APB, and AQC are similar, so angles BAC = AQC = APB. We also see that angles AQC = BQN = APB = CPF. Also because angles BEQ and NED, MFD and CFP are equal, the triangles BEQ and NED, MDF and FCP must be two pairs of similar triangles. Therefore we must prove angles CBM and ANC, AMB and BCN are equal. We have angles BQA = APC = NQC = BPM. We also have AQ = QN, AP = PM. Because the triangles ABP and ACQ are similar, we have EC/EN = BF/FM, so triangles BFM and NEC are similar. So the angles CBM and ANC, BCN and AMB are equal and we are done.
Solution 2
Let 
be the midpoint of . Easy angle chasing gives 
. Because is the midpoint of , the cotangent rule applied on triangle 
gives us
![\[\cot \angle{MBC} - \cot \angle{ABC} = 2\cot \angle{BAC}.\]](http://latex.artofproblemsolving.com/a/2/d/a2d82e1c793f7c10a0086997058dd6fa02f75301.png)
Hence, by the cotangent rule on 
, we have
![\[\cot \angle{BAL} = 2\cot \angle{BAC} + \cot \angle{ABC} = \cot \angle{MBC}.\]](http://latex.artofproblemsolving.com/3/0/6/3061caebca31690aff303b6026ec4d2f01b1717c.png)
Because the period of cotangent is 
, we have 
Similarly, we have 
Hence, if and intersect at 
, then 
by the Angle Sum in a Triangle Theorem. Hence, 
is cyclic, which is equivalent to the desired result.
Alternate solutions are always welcome. If you have a different, elegant solution to this problem, please add it to this page.
See Also
| 2014 IMO (Problems) • Resources | ||
| Preceded by Problem 3 |
1 • 2 • 3 • 4 • 5 • 6 | Followed by Problem 5 |
| All IMO Problems and Solutions | ||
