Let f(x)=(x-7)2(x-2)7(x-2)7,x∈ [2,7] . The value of θ ∈ (2,7) such that f(θ )=0 is equal to

Question

Let f(x)=(x-7)2(x-2)7(x-2)7,x∈ [2,7] . The value of θ ∈ (2,7) such that f(θ )=0 is equal to (A)  (49/4)  (B)  (53/9)  (C)  (53/7)  (D)  (49/9)

Tardigrade Admin · Accepted Answer

Given, f(x)=(x-7)2(x-2)7 ⇒ f(θ )=(θ -7)2(θ -2)7 ⇒ f(θ )=2(θ -7)(θ -2)7+7(θ -2)6(θ -7)2 Put f(θ )=0 ⇒ (θ -7)(θ -2)6[2(θ -2)+7(θ -7)]=0 ⇒ 9θ =53⇒ θ =(53/9)

Q. Let $f (x) = (x - 7)^{2} (x - 2)^{7} (x - 2)^{7}, x \in [2, 7]$ . The value of $θ \in (2, 7)$ such that $f (θ) = 0$ is equal to

$\frac{49}{4}$

$\frac{53}{9}$

$\frac{53}{7}$

$\frac{49}{9}$

$\frac{45}{7}$

Q. Let f(x)=(x−7)2(x−2)7(x−2)7,x∈[2,7] . The value of θ∈(2,7) such that f(θ)=0 is equal to

449​

953​

753​

949​

745​