If secθ+tanθ=1 then one root of equation a(b−c)x2+b(c−a)x+c(a−b)=0 is
A
tanθ
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B
secθ
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C
sinθ
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D
none of these
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Solution
The correct option is Bsecθ secθ+tanθ=1.......(1)
We have that sec2θ−tan2θ=1 secθ−tanθ=1........(2)
from (1) and (2) Secθ=1 a(b−c)x2+b(c−a)x+c(a−b)=0 abx(x−1)−ac(x2−1)+bc(x−1)=0 x=1=secθ