If f(x)= cos ( log x), then f(x) f(y)-(1/2)[f((x/y))+f(x y)] has the value :

Question

If f(x)= cos ( log x), then f(x) f(y)-(1/2)[f((x/y))+f(x y)] has the value : (A) -1 (B) (1/2) (C) -2 (D) zero

Tardigrade Admin · Accepted Answer

Given f(x)= cos ( log x) ∴ f(x) ⋅ f(y)-(1/2)[f((x/y))+f(x y)] = cos ( log x) ⋅ cos ( log y) -(1/2)[ cos log ((x/y))+ cos log (x y)] = cos ( log x) cos ( log y)-(1/2) ⋅ 2[ cos ( log x)× cos ( log y)] = cos ( log x) cos ( log y) =0 ∴ f(x) ⋅ f(y)-(1/2)[f((x/y))+f(x y)]=0

Q. If $f (x) = cos (lo g x)$ , then $f (x) f (y) - \frac{1}{2} [f (\frac{x}{y}) + f (x y)]$ has the value :

-1

$\frac{1}{2}$

$- 2$

zero

Q. If f(x)=cos(logx), then f(x)f(y)−21​[f(yx​)+f(xy)] has the value :

-1

21​

−2

zero

Given f(x)=cos(logx) ∴f(x)⋅f(y)−21​[f(yx​)+f(xy)] =cos(logx)⋅cos(logy) −21​[coslog(yx​)+coslog(xy)] =cos(logx)cos(logy)−21​⋅2[cos(logx)×cos(logy)] =cos(logx)cos(logy) =0 ∴f(x)⋅f(y)−21​[f(yx​)+f(xy)]=0

Q. If $f (x) = cos (lo g x)$ , then $f (x) f (y) - \frac{1}{2} [f (\frac{x}{y}) + f (x y)]$ has the value :

$\frac{1}{2}$

$- 2$