4.16 Unit Test: Right Triangle Trigonometry - Part 1What is the value of x?0404/24720845°08V2

asked Jun 27, 2023 144k views

3 votes

by Jakee

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5 votes

we have that

$\sin (45^o)=\frac{4\sqrt[]{2}}{x}$

by opposite side divided by the hypotenuse

Remember that

$\sin (45^o)=\frac{\sqrt[]{2}}{2}$

substitute

$\frac{\sqrt[]{2}}{2}=\frac{4\sqrt[]{2}}{x}$

solve for x

$x=\frac{8\sqrt[]{2}}{\sqrt[]{2}}$

simplify

TheiNaD answered Jul 3, 2023

5.7k points

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