Let f:R arrow R be a periodic function such that f(T + x)=1+([1 - 3 f (x) + 3 (f (x))2 - (f (x))3])(1/3) where T is a fixed positive number, then period of f(x) is

Question

Let f:R arrow R be a periodic function such that f(T + x)=1+([1 - 3 f (x) + 3 (f (x))2 - (f (x))3])(1/3) where T is a fixed positive number, then period of f(x) is (A) T (B) 2T (C) 3T (D) None of these

Tardigrade Admin · Accepted Answer

Given: f(T + x)=1+([(1 - f (x))3])(1/3) =1+ (1 - f (x)) ⇒ f(T + x)+f(x)=2 ... (1) ⇒ f(2 T + x)+f(T + x)=2 ... (2) Subtracting (1) from (2) f(2 T + x)-f(x)=0 f(2 T + x)-f(x)=0 Also, T is positive therefore period of f(x)=2T

Q. Let $f : R \to R$ be a periodic function such that $f (T + x) = 1 + ([1 - 3 f (x) + 3 (f (x))^{2} - (f (x))^{3}])^{\frac{1}{3}}$

where $T$ is a fixed positive number, then period of $f (x)$ is

$T$

$2 T$

$3 T$

None of these

Q. Let f:R→R be a periodic function such that f(T+x)=1+([1−3f(x)+3(f(x))2−(f(x))3])31​ where T is a fixed positive number, then period of f(x) is

T

2T

3T

None of these

Given : f(T+x)=1+([(1−f(x))3])31​ =1+(1−f(x)) ⇒f(T+x)+f(x)=2 ... (1) ⇒f(2T+x)+f(T+x)=2 ... (2) Subtracting (1) from (2) f(2T+x)−f(x)=0 f(2T+x)−f(x)=0 Also, T is positive therefore period of f(x)=2T

Q. Let $f : R \to R$ be a periodic function such that $f (T + x) = 1 + ([1 - 3 f (x) + 3 (f (x))^{2} - (f (x))^{3}])^{\frac{1}{3}}$

where $T$ is a fixed positive number, then period of $f (x)$ is

$T$

$2 T$

$3 T$