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3 years ago

15

You have a pool that measures 15 yards by 20 yards. You want to build a deck around all four sides of the pool, and you want to

increase the total area to 600 square yards. What is the width of the deck?

1 answer:

madam [21]3 years ago

5 0

<span>x = 1.75 yards. Hope this helps!! <3

</span>

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What is the unit rate of 2,8

djyliett [7]

The unit rate of 2,8 is .25

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3 years ago

The variance calculated on 34 scores is equal to 14.94. what is the standard deviation?

ElenaW [278]

Since, the variance calculated on 34 scores is equal to 14.94.

We have to determine the standard deviation.

Relationship between Variance and standard deviation is:

Standard deviation = $\sqrt(Variance)$

Substituting the value of Variance, to evaluate the standard deviation.

We get,

Standard deviation = $\sqrt(14.94)$

= 3.865

= 3.87

Therefore, the standard deviation is 3.87

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3 years ago

Fowle Marketing Research, Inc., bases charges to a client on the assumption that telephone surveys can be completed in a mean ti

ser-zykov [4K]

Answer:

a) Null hypothesis: $\mathbf{H_0 : \mu \leq 15}$

Alternative hypothesis: $\mathbf{H_1 = \mu > 15}$

b) the test statistics is : 2.15

c) The p-value is 0.0158

d) NO, there is evidence that the mean time of telephone survey is less than 15 and premium rate is not justified.

Step-by-step explanation:

The data in the Microsoft Excel are:

17;11;12;23;20;23;15;

16;23;22;18;23;25;14;

12;12;20;18;12;19;11;

11;20;21;11;18;14;13;

13;19; 16;10;22;18;23.

a) Formulate the null and alternative hypotheses for this application.

From the question, Fowle Marketing Research Inc. is taking base charge from a client on the given assumption that if the mean time of telephone survey is 15 minutes or less.

The null and alternative hypotheses are therefore as follows:

Null hypothesis: $\mathbf{H_0 : \mu \leq 15}$

The null hypothesis states that there is evidence that the mean time of telephone survey is less than 15 and premium rate is not justified.

Alternative hypothesis: $\mathbf{H_1 = \mu > 15}$

The alternative hypothesis states that there is evidence that the mean time of telephone survey exceeds 15 and premium rate is justified.

b) Compute the value of the test statistic.

Given that:

$\mu = 15$

$\sigma = 3.6$

n = 35

The sample mean $\bar x = \dfrac{ \sum x}{n}$ is;

$\bar x = \dfrac{ 17+11+12 ... 22+18+23}{35}$

$\bar x = 17$

Thus:

$z = \dfrac{ \bar x - \mu }{\dfrac{\sigma}{\sqrt{n}}}$

$z = \dfrac{ 17 - 15}{\dfrac{3.6}{\sqrt{15}}}$

$z = \dfrac{ 2}{0.9295}}$

$\mathbf{z =2.15}$

Thus; the test statistics is : 2.15

c) What is the p-value?

p-value = P(Z > 2.15)

p-value = 1 - P(Z ≤ 2.15)

From the standard normal table, the value of P(Z ≤ 2.15) is 0.9842

p-value = 1 - 0.9842

p-value = 0.0158

The p-value is 0.0158

d) At a = .01, what is your conclusion?

According to the rejection rule, if p-value is less than 0.01 then reject null hypothesis at ∝ = 0.01

Thus; p-value = 0.0158 > ∝ = 0.01

By the rejection rule, accept the null hypothesis.

Therefore, there is evidence that the mean time of telephone survey is less than 15 and premium rate is not justified.

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3 years ago

There is a 50% chance that you will go to a Baseball Game given that the weather is good. If there is a 60% chance that the weat

astraxan [27]

Answer:

d. 30%

Step-by-step explanation:

50/100 times 60/100 = 3000/10000 = 3/10 = 0.3 = 30%

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3 years ago

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What might weigh 20 kg?

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The heavy suitcase.

A small car would still weigh quite a lot, a tablet would weigh a lot less than that, and a watermelon is around 2kg (depends).

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3 years ago

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