If log 2(9x-1+7)- log 2(3x-1+1)=2, then the sum of value(s) of x is equal to

Question

If log 2(9x-1+7)- log 2(3x-1+1)=2, then the sum of value(s) of x is equal to (A) 1 (B) 2 (C) 3 (D) 4

Tardigrade Admin · Accepted Answer

log 2((9x-1+7/3x-1+1))=2 ((3 x -1)2+7/3 x -1+1)=4 text Put 3 x -1= t t 2+7=4 t +4 ⇒ t 2-4 t +3=0 ⇒( t -1)( t -3)=0 t =1 ⇒ 3 x -1=1 ⇒ x -1=0 ⇒ x =1 t =3 ⇒ 3 x -1=3 ⇒ x -1=1 ⇒ x =2

Q. If log2​(9x−1+7)−log2​(3x−1+1)=2, then the sum of value(s) of x is equal to

1

2

3

4

log2​(3x−1+19x−1+7​)=2 3x−1+1(3x−1)2+7​=4 Put 3x−1=t t2+7=4t+4⇒t2−4t+3=0⇒(t−1)(t−3)=0 t=1⇒3x−1=1⇒x−1=0⇒x=1 t=3⇒3x−1=3⇒x−1=1⇒x=2

Q. If $lo g_{2} (9^{x - 1} + 7) - lo g_{2} (3^{x - 1} + 1) = 2$ , then the sum of value(s) of $x$ is equal to