If 4x=16y=64z , then

Question

If 4x=16y=64z , then (A) x, y, z are in G.P. (B) x, y, z are in A.P (C) (1/x), (1/y), (1/z), are in G.P. (D) (1/x), (1/y), (1/z), are in A.P.

Tardigrade Admin · Accepted Answer

4x= 16y = 64z = K ⇒ 4= K(1/x): 16 = K(1/y), 64= K(1/z) ⇒ 4× 64 = K(1/x): K(1/z) = K(2/y) = K(1/x)+(1/z) ⇒ 256 = K(1/x) ⋅ K(1/z) = K(2/y) = K(1/x)+(1/z) ⇒ (2/y) = (1/x) +(1/z) ⇒ (1/x)⋅(1/y)⋅(1/z) are in A.P. (∵256=162 = K(2/y))

Q. If $4^{x} = 1 6^{y} = 6 4^{z}$ , then

x, y, z are in G.P.

x, y, z are in A.P

$\frac{1}{x}, \frac{1}{y}, \frac{1}{z},$ are in G.P.

$\frac{1}{x}, \frac{1}{y}, \frac{1}{z},$ are in A.P.

Q. If 4x=16y=64z , then

x, y, z are in G.P.

x, y, z are in A.P

x1​,y1​,z1​, are in G.P.

x1​,y1​,z1​, are in A.P.

4x=16y=64z=K ⇒4=Kx1​:16=Ky1​,64=Kz1​ ⇒4×64=Kx1​:Kz1​=Ky2​=Kx1​+z1​ ⇒256=Kx1​⋅Kz1​=Ky2​=Kx1​+z1​ ⇒y2​=x1​+z1​ ⇒x1​⋅y1​⋅z1​ are in A.P. (∵256=162=Ky2​)

Q. If $4^{x} = 1 6^{y} = 6 4^{z}$ , then

$\frac{1}{x}, \frac{1}{y}, \frac{1}{z},$ are in G.P.

$\frac{1}{x}, \frac{1}{y}, \frac{1}{z},$ are in A.P.