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Find BC round to the nearest tenth

asked May 9, 2021 55.0k views

5 votes

Find BC round to the nearest tenth

Find BC round to the nearest tenth-example-1

Mathematics
high-school

Lucas Moeskops asked

by Lucas Moeskops

3.9k points

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1 Answer

5 votes

Answer:

6.7

Explanation:

Here, we can apply cosine law,
$c^2=a^2+b^2-2abcos\theta$

We the plug in values:
(CB)^2+6^2+5^2-2*6*5*cos74

and solve that CB is around 6.7

SMA answered May 12, 2021

by SMA

4.3k points

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