The lines y=m1x ,y=m2xa n dy=m3x make eq...

The lines `y=m_1x ,y=m_2xa n dy=m_3x` make equal intercepts on the line `x+y=1.` Then `2(1+m_1)(1+m_3)=(1+m_2)(2+m_1+m_3)` `(1+m_1)(1+m_3)=(1+m_2)(1+m_1+m_3)` `(1+m_1)(1+m_2)=(1+m_3)(2+m_1+m_3)` `2(1+m_1)(1+m_3)=(1+m_2)(1+m_1+m_3)`

`2(1+m_(1))(1+m_(3)) = (1+m_(2))(2+m_(1)+m_(3))`

`(1+m_(1))(1+m_(3)) = (1+m_(2))(1+m_(1)+m_(3))`

`(1+m_(1))(1+m_(2)) = (1+m_(3))(2+m_(1)+m_(3))`

`2(1+m_(1))(1+m_(3)) = (1+m_(2))(1+m_(1)+m_(3))`

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The correct Answer is:

Solving the equations of the lines, we get
`A-=((1)/(1+m_(1)),(m_(1))/(1+m_(1))),C-=((1)/(1+m_(3)),(m_(3))/(1+m_(3)))`
If AB=BC, then the midpoint of AC lies on
`y=m_(2)x`
`"or "(m_(1)/(1+m1)+(m_(3))/(1+m3))/(2) = m_(2)[((1)/(1+m_(1))+(1)/(1+m_(3)))/(2)]`

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