Javascript required
Skip to content Skip to sidebar Skip to footer

Find All Solutions 2sin 2x Sinx

6 Answers 6

$\begingroup$

HINT: solve the equation $$\sin(x)(2\sin(x)-1)=0$$

answered May 30 '15 at 19:34

$\endgroup$

1

  • $\begingroup$ I use this way to solve this Q , but I forget to change the 1 sign .. It will be : sin(x)= 0 or 2sin(x) = 1 --> sin(x) = 1/2 thank you $\endgroup$

    May 30 '15 at 20:15

$\begingroup$

You have $2 \sin^2 x - \sin x =0$ or $\sin x ( 2 \sin x -1) =0$, so $\sin x = 0$ or $2 \sin x -1 = 0$.

$\sin x =0$ implies $x = \pi k$ for integer $k$.

$2 \sin x - 1 =0 $ means $\sin x = \frac{1}{2}$ which has solutions between $0, 2pi$ as $\pi/6$ and $5 \pi/6$. Since $\sin$ is $2 \pi$ periodic, you get $\pi/6 + 2 \pi k$ and $5 \pi/6 + 2 \pi k$ for integer $k$.

answered May 30 '15 at 19:36

$\endgroup$

1

  • $\begingroup$ nice work (+1). $\endgroup$

    May 30 '15 at 19:38

$\begingroup$

We have solutions to $2y^2-y=0$ as $$y = \frac{1 \pm \sqrt{1-0}}{4} \implies y = 0,\frac{1}{2}$$ With each pass around the unit circle we know $y = \sin(x)$ takes the value $0$ twice, and the value $\frac{1}{2}$ twice. Can you see why your teacher is correct now?

answered May 30 '15 at 19:38

$\endgroup$

2

  • $\begingroup$ yas :$ , when i do this Q , I solved sin x = - 1/2 and 0 .. but now I know where my mistake is .. thank you $\endgroup$

    May 30 '15 at 20:10

  • $\begingroup$ @Narjes You should solve $\sin x = $ *positive* $1/2$ $\endgroup$

    May 30 '15 at 20:18

$\begingroup$

We have $$2\sin^2 x-\sin x=0 $$ $$\implies \sin x(2\sin x-1)=0$$ We have $$\sin x=0 \implies \color{blue}{x=n\pi}$$ Where, $n$ is any integer & $$2\sin x-1=0 $$$$\implies \sin x=\frac{1}{2}=\sin\frac{\pi}{6} \implies \color{blue}{x=2n\pi+\frac{\pi}{6}}\quad \text{&} \quad \color{blue}{x=2n\pi+\frac{5\pi}{6}}$$ Now, writing the complete solution for $x$, we have $$\color{blue}{x\in \{n\pi\}\cup \{2n\pi+\frac{\pi}{6} \}\cup\{2n\pi+\frac{5\pi}{6}\}}$$ Where, $n$ is any integer

answered May 30 '15 at 19:55

$\endgroup$

$\begingroup$

Check your solution:

$$\sin\left(\frac{11\pi}6\right)=\sin\left(\frac{7\pi}6\right)=-\frac12\to2\frac14+\frac12\color{red}{=0}.$$

And the Teacher's solution:

$$\sin\left(\frac{\pi}6\right)=\sin\left(\frac{5\pi}6\right)=\frac12\to2\frac14-\frac12\color{green}{=0}.$$

answered May 30 '15 at 19:56

$\endgroup$

$\begingroup$

Hint: $$2\sin^2x-\sin x = 0 \implies \color{red}{2}\sin^2x + \color{blue}{(-1)}\sin x + \color{green}{0} = 0,$$ so we have $$\sin x = \frac{-\color{blue}{(-1)}\pm \sqrt{\color{blue}{(-1)}^2 - 4\cdot \color{red}{2}\cdot\color{green}{0}}}{2\cdot \color{red}{2}} = \frac{1 \pm 1}{4} = \begin{cases}\frac{1}{2} \\ 0\end{cases}.$$

See when $\sin x = 1/2$ or $0$ and consider all possible values.

answered May 30 '15 at 19:36

$\endgroup$

3

  • $\begingroup$ it is damn crazy to use quadratic formula to find the roots of $2x^2 - x = x(2x-1) = 0.$ $\endgroup$

    May 30 '15 at 19:37

  • $\begingroup$ It was the first thing that came to mind. Well, I AM crazy, so... $\endgroup$

    May 30 '15 at 19:38

  • $\begingroup$ It is not forbidden to post the second thing that comes to one's mind. $\endgroup$

    May 31 '15 at 9:05

Not the answer you're looking for? Browse other questions tagged algebra-precalculus trigonometry quadratics or ask your own question.

Find All Solutions 2sin 2x Sinx

Source: https://math.stackexchange.com/questions/1305661/find-all-solutions-exactly-for-2-sin2-x-sin-x-0