Given A = sin2 θ + cos4 θ , then for all real values of θ

Question

Given A = sin2 θ + cos4 θ , then for all real values of θ (A) 1 le A le 2 (B) (3/4)1 le A le 1 (C) (13/16)1 le A le 1 (D) (3/4)1 le A le (13/16)

Tardigrade Admin · Accepted Answer

Given, A = sin2 θ + (1 - sin2 θ)2 ⇒ A=sin4 θ -sin2 θ +1 ⇒ A= Bigg(sin2 θ-(1/2) Bigg)2+(3/4) ⇒ 0 le Bigg(sin2 θ-(1/2) Bigg)2 le (1/4) [∵ 0 le sin2 θ le 1] ∴ (3/4) le A le 1

Q. $G i v e n A = s i n^{2} θ + co s^{4} θ, t h e n f or a ll re a l v a l u eso f θ$

$1 \leq A \leq 2$

$\frac{3}{4} 1 \leq A \leq 1$

$\frac{13}{16} 1 \leq A \leq 1$

$\frac{3}{4} 1 \leq A \leq \frac{13}{16}$

Q. GivenA=sin2θ+cos4θ,thenforallrealvaluesofθ

1≤A≤2

43​1≤A≤1

1613​1≤A≤1

43​1≤A≤1613​

Given,A=sin2θ+(1−sin2θ)2 ⇒A=sin4θ−sin2θ+1 ⇒A=(sin2θ−21​)2+43​ ⇒0≤(sin2θ−21​)2≤41​[∵0≤sin2θ≤1] ∴43​≤A≤1

Q. $G i v e n A = s i n^{2} θ + co s^{4} θ, t h e n f or a ll re a l v a l u eso f θ$

$1 \leq A \leq 2$

$\frac{3}{4} 1 \leq A \leq 1$

$\frac{13}{16} 1 \leq A \leq 1$

$\frac{3}{4} 1 \leq A \leq \frac{13}{16}$