The value of the `lambda` if the lines `(2+3y+4)+lambda(6x-y+12)=0` are
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(i) Given equation of the line is `(2x+3y+4)+lambda(6x-y+12)=0" (i)"` If line is parallel to Y-axis i.e., it is perpendicular to X-axis. Slope = m = `tan90^(@) = infty` From line (i), `x(2+6lambda)+y(3-lambda)+4+12lambda=0` and slope `=(-2+6lambda)/(3-lambda)` `rArr (-2-6lambda)/(3-lambda)=infty` `rArr (-2-6lambda)/(3-lambda)=(1)/(0)rArrlambda=3` (ii) if the line (i) is perpendicular to the line `7x+y-4=0` or `y=-7x+4` `:' (-(2+6lambda))/(3-lambda)(-7)=-1` `rArr 14+42lambda=-3+lambda` `rArr 41lambda=-17` `rArr lambda=-(17)/(41)` (iii) If the line (i) passes through the point (1,2). Then, `(2+6+4)+lambda(6-2+12)=0` `rArr 12+16lambda=0rArrlambda=-(3)/(4)` (iv) If the line is parallel to X-axis the slope =0 Then, `(-(2+6lambda))/(3-lambda)=0` `rArr -(2+6lambda)=0rArrlambda=-(1)/(3)` So, the correct matches are (i) `to` (d), (ii) `to` (c ), (iii) `to` (a), (iv) `to` (b).
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