The number of values of x in [0,2π] which satisfy tanx+tan4x+tan7x=tanxtan4xtan7x is
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Solution
tanx+tan4x+tan7x=tanxtan4xtan7x (tanA+tanB+tanC=tanAtanBtanC)⇒tan(A+B+C)=0 ∴tan(x+4x+7x)=0 tan(12x)=0 ⇒12x=nπ,n∈Z ⇒x=nπ12,n∈Z Where x∈[0,2π] ∴x=0,π12,π6,π4,...,23π12,2π But tanx is not defined when x=π2,3π2 So, number of values of x is 23