Suppose in a right triangle, cos(t)=3/4. How do you find: cot(t)?

Question

Suppose in a right triangle, cos(t)=3/4. How do you find: cot(t)?

1 Answer

Impact of this question

4249 views around the world

You can reuse this answer
Creative Commons License

Answer 1 · 2018-06-20T15:03:01

$cot (t) = \frac{3}{\sqrt{7}}$ $cot(t)=3/sqrt(7)$

Explanation:

Starting from the fundamental equation

${sin}^{2} (t) + {cos}^{2} (t) = 1$ $sin^2(t)+cos^2(t) = 1$

we can deduce

$sin (t) = \pm \sqrt{1 - {cos}^{2} (t)}$ $sin(t) = \pm\sqrt(1-cos^2(t)$

So, in our case,

$sin (t) = \pm \sqrt{1 - \frac{9}{16}} = \pm \sqrt{\frac{7}{16}}$ $sin(t) = \pm\sqrt(1-9/16) =\pm\sqrt(7/16)$

Actually, we have $sin (t) = \sqrt{\frac{7}{16}} = \frac{\sqrt{7}}{4}$ $sin(t) =\sqrt(7/16) = sqrt(7)/4$

In fact, since $t$ $t$ is an an angle of a right triangle, it must be acute: the inner angles of a triangle sum to $π$ $pi$ , but since one angle is right, the other two must sum to $\frac{π}{2}$ $pi/2$ , and thus they are acute.

An acute angle lies in the first quadrant, where both sine and cosine are positive, hence the choice of the sign.

Now that we know both sine and cosine, we can compute the cotangent by its definition:

$cot(t) = cos(t)/sin(t) = (3/4)/(sqrt(7)/4) = 3/cancel(4) * cancel(4)/sqrt(7) = 3/sqrt(7)$

Science

Math

Humanities

... and beyond

Suppose in a right triangle, cos(t)=3/4. How do you find: cot(t)?

1 Answer

Explanation:

Related questions

Impact of this question