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Could someone please help me:) I am stick and I am not sure what to do ​

Could someone please help me:) I am stick and I am not sure what to do ​-example-1
User Furkan Ayhan
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1 Answer

10 votes
10 votes

Answer:

Part 5.1.1:


\displaystyle \cos 2A = (7)/(8)

Part 5.1.2:


\displaystyle \cos A = (√(15))/(4)

Explanation:

We are given that:


\displaystyle \sin 2A = (√(15))/(8)

Part 5.1.1

Recall that:


\displaystyle \sin^2 \theta + \cos^2 \theta = 1

Let θ = 2A. Hence:


\displaystyle \sin ^2 2A + \cos ^2 2A = 1

Square the original equation:


\displaystyle \sin^2 2A = (15)/(64)

Hence:


\displaystyle \left((15)/(64)\right) + \cos ^2 2A = 1

Subtract:


\displaystyle \cos ^2 2A = (49)/(64)

Take the square root of both sides:


\displaystyle \cos 2A = \pm\sqrt{(49)/(64)}

Since 0° ≤ 2A ≤ 90°, cos(2A) must be positive. Hence:


\displaystyle \cos 2A = (7)/(8)

Part 5.1.2

Recall that:


\displaystyle \begin{aligned} \cos 2\theta &= \cos^2 \theta - \sin^2 \theta \\ &= 1- 2\sin^2\theta \\ &= 2\cos^2\theta - 1\end{aligned}

We can use the third form. Substitute:


\displaystyle \left((7)/(8)\right) = 2\cos^2 A - 1

Solve for cosine:


\displaystyle \begin{aligned} (15)/(8) &= 2\cos^2 A\\ \\ \cos^2 A &= (15)/(16) \\ \\ \cos A& = \pm\sqrt{(15)/(16)} \\ \\ \Rightarrow \cos A &= (√(15))/(4)\end{aligned}

In conclusion:


\displaystyle \cos A = (√(15))/(4)

(Note that since 0° ≤ 2A ≤ 90°, 0° ≤ A ≤ 45°. Hence, cos(A) must be positive.)

User Dimitris Maragkos
by
2.8k points