If ef(x) =(10 +x/10 -x), x∈(-10, 10) and f(x) =kf((200x/100 +x2)) then k =

Question

If ef(x) =(10 +x/10 -x), x∈(-10, 10) and f(x) =kf((200x/100 +x2)) then k = (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

ef(x) =(10 +x/10 -x), x∈(-10, 10) ⇒ f(x) =log((10 +x/10 -x)) ⇒ f((200x/100 +x2)) = log [(10+(200x/100 +x2)/10-(200x)100 +x2)] =log [(10(10 +x)2/10(10 -x)2)] = 2 log((10 +x/10-x)) = 2f(x) ∴ f(x) =(1/2)f((200x/100 +x2)) ⇒ k=(1/2) = 0.5

Q. If ef(x)=10−x10+x​,x∈(−10,10) and f(x)=kf(100+x2200x​) then k=

ef(x)=10−x10+x​,x∈(−10,10) ⇒f(x)=log(10−x10+x​) ⇒f(100+x2200x​)=log[10−100+x2200x​10+100+x2200x​​] =log[10(10−x)210(10+x)2​]=2 log(10−x10+x​)=2f(x) ∴f(x)=21​f(100+x2200x​) ⇒k=21​=0.5

Q. If $e^{f (x)} = \frac{10 + x}{10 - x}, x \in (- 10, 10)$ and $f (x) = k f (\frac{200 x}{100 + x ^{2}})$ then $k =$