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3 years ago

Is this a function? Yes or no?

Mathematics

2 answers:

Tasya [4]3 years ago

7 0

Answer:

no i dont think so

Step-by-step explanation:

Llana [10]3 years ago

3 0

Answer:

i dont hink so because most functions i see have the wave looking lines, but its possible :D

Step-by-step explanation:

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The perimeter of a regular quadrilateral is 12 inches. What is its area?<br><br> plz help !!!

Vadim26 [7]

The area would be 9 because the perimeter of the regular quadrilateral would be 3 and if you multiply 3 by 3 you have 9.

4 0

3 years ago

Which inequality represents the solutions to the inequality −5r+18≤2−3r?

Harlamova29_29 [7]

Answer:

2 step equation problems.

Step-by-step explanation:

So you need to replace -3 into that to add -18 on both sides and that gives you the negative number is -20 and then you add the -5r+-3r less than or equal to -20. Now, negative -5 +3 = -8 + -20 = -28. r=-28.

4 0

3 years ago

Divide. Write the quotient in lowest terms 2 1/2 divided by 2 2/3

MaRussiya [10]

Answer:

15/16.

Step-by-step explanation:

2 1/2 = 5/2 and 2 2/3 = 8/3 so we have:

5/2 / 8/3 Invert the 8.3 and multiply:

= 5/2 * 3/8

= 15/16.

7 0

3 years ago

Read 2 more answers

Please help!!! I need help!

GrogVix [38]

4x+5=8x-11 solve for X then plug back into 4x+5 for the measure of angle QST

8 0

4 years ago

Read 2 more answers

An engineer is going to redesign an ejection seat for an airplane. The seat was designed for pilots weighing between 150 lb and

charle [14.2K]

Answer:

A) 0.5737

B) 0.9884

Step-by-step explanation:

We are given that an engineer is going to redesign an ejection seat for an airplane. The new population of pilots has normally distributed weights with a mean of 160 lb and a standard deviation of 27.5 lb i.e.; $\mu$ = 160 lb and $\sigma$ = 27.5 lb

(A) We know that Z = $\frac{X - \mu}{\sigma}$ ~ N(0,1)

Let X = randomly selected pilot

If a pilot is randomly selected, the probability that his weight is between 150 lb and 201 lb = P(150 < X < 201)

P(150 < X < 201) = P(X < 201) - P(X <= 150)

P(X < 201) = P( $\frac{X - \mu}{\sigma}$ < $\frac{201 - 160}{27.5}$ ) = P(Z < 1.49) = 0.9319

P(X <= 150) = P( $\frac{X - \mu}{\sigma}$ < $\frac{150 - 160}{27.5}$ ) = P(Z < -0.3636) = P(Z > 0.3636) = 0.3582

Therefore, P(150 < X < 201) = 0.9319 - 0.3582 = 0.5737 .

(B) We know that for sampling mean distribution;

Z = $\frac{Xbar - \mu}{\frac{\sigma}{\sqrt{n} } }$ ~ N(0,1)

If 39 different pilots are randomly selected, the probability that their mean weight is between 150 lb and 201 lb is given by P(150 < X bar < 210);

P(150 < X bar < 210) = P(X bar < 201) - P(X bar <= 150)

P(X bar < 201) = P( $\frac{Xbar - \mu}{\frac{\sigma}{\sqrt{n} } }$ < $\frac{201 - 160}{\frac{27.5}{\sqrt{39} } }$ ) = P(Z < 9.311) = 1 - P(Z >= 9.311)

= 0.999995

P(X bar <= 150) = P( $\frac{Xbar - \mu}{\frac{\sigma}{\sqrt{n} } }$ < $\frac{150 - 160}{\frac{27.5}{\sqrt{39} } }$ ) = P(Z < -2.2709) = P(Z > 2.2709)

= 0.0116

Therefore, P(150 < X bar < 210) = 0.999995 - 0.0116 = 0.9884

C) If the tolerance level is very high to accommodate an individual pilot then it should be appropriate ton consider the large sample i.e. Part B probability is more relevant in that case.

8 0

3 years ago