Let the formed triangle be ABC. Family of straight lines is AB+λAC→2x+3y−1+λ(x+2y−1)=0 It represents altitude through A So the given line passes through ortho centre and we get λ=−1 So the given line AO is x+y=0 AO is perpendicular to BC [Using the concept that if line L1 and L2 are at right angles to each other then m1×m2=−1 where m1 and m2 are slopes of L1 and L2 respectively ] (−1)×
−a
b
=−1 ∴a=−b BA+µBC=0 as it passes through (0,0) we get µ=−1 This line is perpendicular to AC ∴−