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| | ===Solution=== | | ===Solution=== |
| − | WLOG, let the circle be the unit circle centered at the origin, A=(1,0) P=(1-a,b), Q=(1-a,-b), where (1-a)^2+b^2=1. Let angle <XAB=A, which is an acute angle, tanA=t, then X=(1-a,at).
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| − | Angle <BOS=2A, S=(-cos2A,sin2A).
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| − | Let M=(u,v), then T=(2u+cos2A, 2v-sin2A)
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| − | The condition TX perpendicular to AX yields (2v-sin2A-at)/(2u+cos2A+a-1)=cotA. (E1)
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| − | Use identities (cosA)^2=1/(1+t^2), cos2A=2(cosA)^2-1= 2/(1+t^2) -1, sin2A=2sinAcosA=2t^2/(1+t^2), we obtain 2vt-at^2=2u+a. (E1')
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| − | The condition that T is on the circle yields (2u+cos2A)^2+ (2v-sin2A)^2=1, namely vsin2A-ucos2A=u^2+v^2. (E2)
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| − | M is the mid-point on the hypotenuse of triangle STX, hence MS=MX, yielding (u+cos2A)^2+(v-sin2A)^2=(u+a-1)^2+(v-at)^2. (E3)
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| − | Expand (E3), using (E2) to replace 2(vsin2A-ucos2A) with 2(u^2+v^2), and using (E1') to replace a(-2vt+at^2) with -a(2u+a), and we obtain
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| − | u^2-u-a+v^2=0, namely (u-1/2)^2+v^2=a+1/4, which is a circle centered at (1/2,0) with radius r=sqrt(a+1/4).
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Revision as of 19:15, 13 May 2015
is inscribed in circle 
with 
and 
. Let 
be a variable point on segment 
. Line 
meets 
(other than 
). Point 
lies on arc 
of 
is perpendicular to 
. Let 
denote the midpoint of chord 
. As 
