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3 years ago

Find the area of the polygon

Mathematics

1 answer:

kobusy [5.1K]3 years ago

7 0

Answer: 192

Step-by-step explanation:

You multiply 6 x 16 x 2

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List the following elements in proper set notation. Place the elements in numerical order within the set. 0, 1, 123, 4, 34

forsale [732]

Answer:

{0, 1, 4, 34, 123}

Step-by-step explanation:

{0, 1, 4, 34, 123}

8 0

3 years ago

Abed says he has written a system of two linear equations that has an infinite number of solutions. One of the equations of the

LenKa [72]

Answer:

3x - y = 1

Step-by-step explanation:

This will be the same equation written in a different way'

The original equation is:

y = 3x - 1

0 = 3x - y - 1

3x - y = 1.

3 0

3 years ago

20 POINTS!! ASAP, PLS SHOW WORK TYY

Sergeeva-Olga [200]

Answer:

$\sin(\theta)=-\sqrt5/5\text{ and } \csc(\theta)=-\sqrt5\\\cos(\theta)=2\sqrt5/5\text{ and } \sec(\theta)=\sqrt5/2\\\tan(\theta)=-1/2\text{ and } \cot(\theta)=-2$

Step-by-step explanation:

First, let's determine which quadrant our angle θ lies in.

Remember ASTC, where:

Everything is positive in QI,

Only sine (and cosecant) is positive in QII,

Only tangent (and cotangent) is positive in QIII,

And only cosine (and secant) is positive in QIV.

Since our tangent is negative, and our cosine is positive, this means that our θ <em>must</em> be in QIV.

In QIV, sine is negative, tangent is negative, and cosine is positive.

With that, let's figure out the remaining trig ratios.

We know that:

$\tan(\theta)=-1/2$

Remember that tangent is the ratio of the opposite side to the adjacent side.

Let's figure out our hypotenuse using the Pythagorean Theorem:

$a^2+b^2=c^2$

Substitute 1 for a and 2 for b (we can ignore the negative since we're squaring anyways). This yields:

$(1)^2+(2)^2=c^2$

Square:

$1+4=c^2$

Add:

$c^2=5$

Take the square root:

$c=\sqrt{5}$

So, our square root is √5.

So, our three sides are: Opposite=1, Adjacent=2, and Hypotenuse=√5.

Sine and Cosecant:

Remember that:

$\sin(\theta)=opp/hyp$

Substitute 1 for the opposite and √5 for the hypotenuse. This yields:

$\sin(\theta)=1/\sqrt5$

Rationalize:

$\sin(\theta)=\sqrt5/5$

And since our angle is in QIV, we add a negative:

$\sin(\theta)=-\sqrt5/5$

Cosecant is simply the reciprocal of sine. So:

$\csc(\theta)=-\sqrt5$

Cosine and Secant:

Remember that:

$\cos(\theta)=adj/hyp$

Substitute 2 for the adjacent and √5 for the hypotenuse. This yields:

$\cos(\theta)=2/\sqrt5$

Rationalize:

$\cos(\theta)=2\sqrt5/5$

Since our angle is in QIV, cosine stays positive.

Secant is the reciprocal of cosine. So:

$\sec(\theta)=\sqrt5/2$

Tangent and Cotangent:

We were given that:

$\tan(\theta)=-1/2$

To find cotangent, flip:

$\cot(\theta)=-2$

And we're done!

7 0

3 years ago

A soccer team won 11 games last year. This year they won 13 games. What was the percent increase in the number of games won?

Anna007 [38]

Answer:

18.1818181818%

Step-by-step explanation:

5 0

3 years ago

I need help solving this because I don't know how to solve this

Contact [7]

The answer would be 10. You would get it by multiplying 50 by 0.2. Hope I helped!

5 0

4 years ago

Find the area of the polygon​

Find the area of the polygon