Use inverse trigonometric functions to solve the following equations. If there is more than one solution, enter all solutions as a comma-separated list (like "1, 3"). If an equation has no solutions, enter "DNE".solve tan ( θ ) = 1 tan(θ)=1 for θ θ (where 0 ≤ θ < 2 π 0≤θ< 2π).

Answer:

a) The answer should be less than 50%, because 0.33 is greater than the population proportion of 0.28 and because the sampling distribution is approximately Normal.

b) P(x ≥ 0.33) = 2.68% = 0.027 to 3 d.p

Step-by-step explanation:

a) The required probability is P(x ≥ 0.33)

The population proportion of people living in poverty has already been given as 0.28, So, whatever the standard deviation of the distribution of sample means is, the sample proportion of 0.33 is more than the population proportion, So, it gives a z-score that is greater than 0. The probability from the z-score of the mean (0) to the end of distribution is exactly 50%; So, a Probability that only covers from a particular positive z-score to the end of the distribution will definitely be less than 50%.

So, because 33% is more than population proportion of 28%, and the sampling distribution is approximately normal, the probability of 33% or more of the sample living in poverty is less than 50%.

b) P(x ≥ 0.33)

The sample mean = population mean

μₓ = μ = 0.28

Standard deviation of the distribution of sample means = √[p(1-p)/n] (this is possible due to the central limit theorem for n greater than 30)

σₓ = √[(0.28×0.72)/300] = 0.0259

We then normalize 0.33

The standardized score for any value is the value minus the mean then divided by the standard deviation.

z = (x - μ)/σ = (0.33 - 0.28)/0.0259 = 1.93

To determine the probability of 33% or more of the sample size is living in poverty.

P(x ≥ 0.33) = P(z ≥ 1.93)

We'll use data from the normal probability table for these probabilities

P(x ≥ 0.33) = P(z ≥ 1.93) = 1 - P(z < 1.93)

= 1 - 0.9732 = 0.0268 = 2.68%

It is indeed way less than 50%.

Hope this Helps!!!

The answer to whether the probability is greater than 50% or less than 50% is; less than 50% because 0.33 is greater than the population proportion

A) We want to determine the probability that 33​% or more of our sample will be living in poverty and this is expressed as P(x ≥ 0.33)

Population proportion is; p = 0.28.

Formula for z-score is;

z = (x' - μ)/σ

Since our sample proportion is greater than our population proportion, it means the z-score will be greater than 0

Finally, due to the fact that 33% is more than population proportion of 28%, and the sampling distribution is approximately normal, the probability of 33% or more of the sample living in poverty will definitely be less than 50%.

b) We want to now calculate the above probability;

P(x ≥ 0.33)

The sample mean will be equal to population mean as;

μₓ = μ = 0.28

Standard deviation of the distribution of sample means is;

σₓ = √(p(1 - p)/n)

σₓ = √((0.28×0.72)/300)

σₓ = 0.0259

Thus, z-score is;

z = (x - μ)/σ

z = (0.33 - 0.28)/0.0259

z = 1.93

Thus, the of 33% or more of the sample size is living in poverty is;

P(x ≥ 0.33) = P(z ≥ 1.93) = 1 - P(z < 1.93)

P(x ≥ 0.33) = 1 - 0.9732

P(x ≥ 0.33) = 0.0268

P(x ≥ 0.33) = 0.027

It is indeed way less than 50%.

Read more about normal distribution at; https://brainly.com/question/4079902

Answer:

Please find attached file for complete answer solution and explanation of same question

Step-by-step explanation:

Answer:

$374,484

Step-by-step explanation:

Amount payable as income tax = 0.39 X $255,600 = $99,684

The amount Marcus receives if he deferred income tax that year = $(274,800 + 99,684) = $374,484

Answer:

10⁵

Step-by-step explanation:

10×10×10×10×10

= 10⁵ or 100,000

We are not given the value of

Mount Everest

Elevation

h'(x)

So we are going to based our parameters needed to solve this question o assumptions. The main thing is to understand the process in solving this question.

So here is it!.

A climber on Mount Everest is 8000 meters from the start of his trail and at elevation  10000 meters above sea level. At (x) meters from the start, the elevation of the trail is h(x) meters above sea level. If  h' (x) = 0.5 for near , what is the approximate elevation another 8 meters along the trail

Answer:

10004 meters

Step-by-step explanation:

The rate of change of elevation, h' (x) = 0.5 near 8000 meters.

Thus; we can say that the elevation increases by 0.5 for each meter traveled at a given distance(x)

So, we need to determine the new elevation after 8 meters traveled from ( 8000 to 8008).Then the elevation change can now be written as:

=  (0.5 × 8)

= 4 meters.

And also the new elevation will be:

10000 + 4 meters

= 10004 meters

Answer:

E (13.755 ± 1.456)

Step-by-step explanation:

with 95% confidence interval and df=25

we can find t score on the t table : t*=2.06

(because the table has already provided us standard error , we DON'T have to calculate it by using  σsample=S/[tex]\sqrt{n}[/tex]) (standard error = standard deviation)

so the interval should be  13.755± 2.06(0.707)= 13.755± 1.456

The 95% confidence interval for [tex]\(\mu\)[/tex] is e. [tex]\(13.755 \pm 1.456\)[/tex], based on a sample mean of 13.755, standard error of 0.707, and 25 degrees of freedom.

To construct a 95% confidence interval for the mean [tex]\(\mu\)[/tex], we need to use the sample mean, the standard error, and the appropriate critical value for a t-distribution.

Given data:

- Sample mean [tex](\(\bar{x}\))[/tex]: 13.755

- Standard error (SE): 0.707

- Degrees of freedom (df): 25

For a 95% confidence interval with 25 degrees of freedom, we need the critical value [tex]\( t^* \).[/tex] We can find [tex]\( t^* \)[/tex] using a t-table or statistical software.

For 25 degrees of freedom, the critical value [tex]\( t^* \)[/tex] for a 95% confidence interval is approximately 2.064.

The formula for the confidence interval is:

[tex]\[\bar{x} \pm t^* \times \text{SE}\][/tex]

Substitute the values:

[tex]\[13.755 \pm 2.064 \times 0.707\][/tex]

Calculate the margin of error:

[tex]\[2.064 \times 0.707 \approx 1.459\][/tex]

Thus, the 95% confidence interval is:

[tex]\[13.755 \pm 1.459\][/tex]

So, the correct answer is:

e. [tex]\[\boxed{13.755 \pm 1.456}\][/tex]

Complete Question:

Answer:

The number of digits in a randomly selected row until a 1 is found.

Final answer:

The random variable describing 'The number of digits in a randomly selected row until a 1 is found' is geometric, as it fits the criteria of a geometric distribution, which includes the number of trials needed for the first success, with constant success probability and independent trials.

Explanation:

The student has asked which of the given random variables is geometric. Among the options provided, the one describing a geometric random variable is "The number of digits in a randomly selected row until a 1 is found." A geometric distribution is concerned with the number of Bernoulli trials required to get the first success. In this case, obtaining a '1' when randomly selecting digits can be considered a success, and all trials are independent with the probability of success (getting a '1') remaining constant with each trial.

Other options such as the number of 1s in a row of 50 random digits or the number of tails when a coin is tossed 60 times describe binomial random variables, where we are interested in the number of successes within a fixed number of trials, not the trial number of the first success.

Answer:

37.5 revolutions

Step-by-step explanation:

The average rotation speed for the first second and for the last two seconds is:

[tex]V_1 = \frac{0+500}{2}\\ V_1 = 250\ rpm[/tex]

For the next 3.0 seconds, the rotation speed is V = 500 rpm.

The total number of revolutions, converting rpm to rps, is given by:

[tex]n=\frac{1*V_1+3*V+2*V_1}{60}\\n=\frac{1*250+3*500*2*250}{60}\\n=37.5\ revolutions[/tex]

The DVD makes 37.5 revolutions.

Answer:

a.) 0.0822

b.) 1

c.) 0.3659

Step-by-step explanation:

Probability distribution formula is often denoted by :

P(X=r) = nCr × p^r × q^n-r

Where n = total number of samples

r = number of successful outcome of sample

p = probability of success

q = probability of failure.

If we take 4 samples,

3 of this 4 samples are successful

the success rate =S= 31% = 0.31

Failure rate = F= 0.69

a.) Then probability distribution of X becomes:

P(X=3) = 4C3 × 0.31³ × 0.69¹

P(X=3) = 0.0822 (4d.p),

b. Most likely value of X = expected value = np

= 4 × 0.31

= 1.24 ≈ 1

c.) probability that at least 2 out of the 4 have insurance = Probability that 2 have insurance) + probability that 3 have insurance + probability that 4 have insurance.

P(X=2) = 4C2 × 0.31² × 0.69² = 0.2745

P(X=3), as calculated earlier = 0.0822

P(X=4) = 4C4 × 0.31^4 × 0.69^0 = 0.0092

Total probability of having at least 2 out of those 4 insured = 0.2745 + 0.0822 + 0.0092 =0.3659.

Answer:

Correct option is D.

Step-by-step explanation:

Random sampling implies the selection of of values or individuals in a random pattern.

A stratified random sampling is a sampling method where:

In this case the it is provided that the population consists of 30 members, 10 under the age of 25 and 20 over the age of 25.

So the stratas are:

Now to a random sample of size 2 is selected from strata 1 and a random sample of size 4 is selected from strata 2.

This forms a stratified random sample.

Correct option is:

A population contains 10 members under the age of 25 and 20 members over the age of 25. The sample will include two people chosen at random under the age of 25 and four people chosen at random over 25.

Final answer:

The correct choice for a stratified random sample is selecting two people randomly under the age of 25 and four people randomly over 25, as it ensures that the sample is proportional and representative of the two age groups within the population.

Explanation:

To determine which option meets the requirements of a stratified random sample, let's first define it. A stratified random sample divides the population into separate groups, known as strata, and a random sample is taken from each group. The key point here is that the sample from each stratum is proportional to the size of the stratum within the whole population, ensuring the sample is representative.

Given the multiple-choice options provided:

This type of sampling accounts for the different proportions of the sub-groups (under and over 25) in the population, which is a key aspect of stratified sampling.

Answer:

So maximum when 46 of I grade and 16 of II grade are produced.

Max revenue = 2100

Step-by-step explanation:

Given that a plane delivers two types of cargo between two destinations

                     Crate I                       Crate II

Volume            9                                  9

Weight           187                               374

Revenue         30                                45

Let X be the no of crate I and y that of crate II

Then

[tex]9x+9y\leq 540\\187x+374y\leq 14212\\x\geq 2y[/tex]

Simplify these equations to get

[tex]x+y\leq 60\\x+2y\leq 76\\x\geq 2y[/tex]

Solving we get

[tex]y\leq 16\\x\leq 46 and x\geq 32\\32\leq x\leq 46[/tex]

REvenue = 30x+45y

The feasible region would have corner points as (60,0) or (32,16) or (46,16)

Revenue for (60,0) = 1800

                     (32,16) = 1680

                     (46,16)=2100

So maximum when 46 of I grade and 16 of II grade are produced.

Max revenue = 2100

To maximize revenue, we need to determine the number of crates of each cargo that should be shipped. The problem can be solved using linear programming techniques to find the optimal solution.

To maximize revenue, we need to determine the number of crates of each cargo that should be shipped. Let's assume the number of crates of cargo I is x and the number of crates of cargo II is y.

Based on the given information, the constraints for the problem are:

To find the maximum revenue, we need to maximize the objective function: Revenue = 30x + 45y.

The problem can be solved using linear programming techniques, such as graphical or simplex method, to find the optimal solution. However, since these methods require plotting and iterations, the detailed calculations are beyond the scope of this response. The optimal solution will provide the values of x and y, which can be used to determine the maximum revenue.

https://brainly.com/question/34408399

#SPJ3

Answer:

a) 0.8413

b) 30

c) A. The population is symmetrically distributed, such that the Central Limit Theorem will likely hold for samples of size 25.

d) 29.63

Step-by-step explanation:

To solve this question, we need to understand the normal probability distribution and the central limit theorem.

Normal probability distribution:

Problems of normally distributed samples are solved using the z-score formula.

In a set with mean [tex]\mu[/tex] and standard deviation [tex]\sigma[/tex], the zscore of a measure X is given by:

[tex]Z = \frac{X - \mu}{\sigma}[/tex]

The Z-score measures how many standard deviations the measure is from the mean. After finding the Z-score, we look at the z-score table and find the p-value associated with this z-score. This p-value is the probability that the value of the measure is smaller than X, that is, the percentile of X. Subtracting 1 by the pvalue, we get the probability that the value of the measure is greater than X.

Central limit theorem:

The Central Limit Theorem estabilishes that, for a normally distributed random variable X, with mean [tex]\mu[/tex] and standard deviation [tex]\sigma[/tex], the sample means with size n can be approximated to a normal distribution with mean [tex]\mu[/tex] and standard deviation [tex]s = \frac{\sigma}{\sqrt{n}}[/tex]

In this problem, we have that:

[tex]\mu = 29, \sigma = 5[/tex]

a. If you select a random sample of 25 full-time college students, what is the probability that the mean time spent on academic activities is at least 28 hours per week?

25 students, so [tex]n = 25, s = \frac{5}{\sqrt{25}} = 1[/tex]

This is 1 subtracted by the pvalue of Z when X = 28. So

[tex]Z = \frac{X - \mu}{\sigma}[/tex]

By the Central Limit Theorem

[tex]Z = \frac{X - \mu}{s}[/tex]

[tex]Z = \frac{28 - 29}{1}[/tex]

[tex]Z = -1[/tex]

[tex]Z = -1[/tex] has a pvalue of 0.1587

1 - 0.1587 = 0.8413

0.8413 is the answer.

b. If you select a random sample of 25 full-time college students, there is an 84 % chance that the sample mean is less than how many hours per week?

Value of X when Z has a pvalue of 0.84. So X when Z = 1.

[tex]Z = \frac{X - \mu}{s}[/tex]

[tex]1 = \frac{X - 29}{1}[/tex]

[tex]X - 29 = 1[/tex]

[tex]X = 30[/tex]

c. What assumption must you make in order to solve (a) and (b)? (choose between A through D)

Central limit theorem works if the population is normally distributed, or if the sample means are of size at least 30

So the correct answer is:

A. The population is symmetrically distributed, such that the Central Limit Theorem will likely hold for samples of size 25.

d. If you select a random sample of 64 full-time college students, there is an 84 % chance that the sample mean is less than how many hours per week?

Now we have n = 64, so [tex]s = \frac{5}{\sqrt{64}} = 0.63[/tex]

Value of X when Z has a pvalue of 0.84. So X when Z = 1.

[tex]Z = \frac{X - \mu}{s}[/tex]

[tex]0.63 = \frac{X - 29}{1}[/tex]

[tex]X - 29 = 0.63[/tex]

[tex]X = 29.63[/tex]

In this statistics problem related to full-time college students' time spent on academic activities, Z scores and the Central Limit Theorem are used to find probabilities and mean values for different sample sizes. Assumptions about the symmetry of population distribution are also discussed.

This question is about understanding and applying concepts of probability, sample means, and Central Limit Theorem in statistics.

a. The probability that the mean time is at least 28 hours can be found by calculating a Z score. The formula for Z score is (X - μ) ⸫ (σ ⸫ √n), where X is the value we are testing (28 hours in this case), μ is the population mean (29 hours), σ is the standard deviation (5 hours), and n is the sample size (25 students). After calculating the Z score, use a standard normal distribution table to find the probability.

b. To solve this, we will again use the Z score formula but in a different way. Use the given % chance and look up the corresponding Z score on a standard normal distribution table. Then use this Z score in the Z score formula to find the X value, which is the number of hours.

c. The assumption we have to make here is option A. For the Central Limit Theorem to hold, the population distribution does not have to be normal but it should be symmetric. Moreover, for sample sizes of 30 or greater, Central Limit Theorem holds regardless of the shape of the population distribution.

d. This is similar to part b but with a larger sample size (64 students). Use the same procedures to find the answer.

https://brainly.com/question/31538429

#SPJ3

Answer:

[tex]5314.4-1.675\frac{116.68}{\sqrt{52}}=5287.30[/tex]  

[tex]5314.4+1.675\frac{116.68}{\sqrt{52}}=5341.5[/tex]  

So on this case the 90% confidence interval would be given by (5287.3;5341.5)

And the best intrpretation is:

 5) We are 90% confident that the average number of plucks to failure for all 'high E' strings is between 5,287.3 and 5,341.5

Step-by-step explanation:

Previous concepts  

A confidence interval is "a range of values that’s likely to include a population value with a certain degree of confidence. It is often expressed a % whereby a population means lies between an upper and lower interval".  

The margin of error is the range of values below and above the sample statistic in a confidence interval.  

Normal distribution, is a "probability distribution that is symmetric about the mean, showing that data near the mean are more frequent in occurrence than data far from the mean".  

[tex]\bar X=5314.4[/tex] represent the sample mean  

[tex]\mu[/tex] population mean (variable of interest)  

[tex]s=116.68[/tex] represent the sample standard deviation  

n=52 represent the sample size  

90% confidence interval  

The confidence interval for the mean is given by the following formula:  

[tex]\bar X \pm t_{\alpha/2}\frac{s}{\sqrt{n}}[/tex] (1)  

The degrees of freedom are given by:

[tex] df = n-1= 52-1=51[/tex]

Since the Confidence is 0.90 or 90%, the value of [tex]\alpha=0.1[/tex] and [tex]\alpha/2 =0.05[/tex], and we can use excel, a calculator or a table to find the critical value. The excel command would be: "=-T.INV(0.05,51)".And we see that [tex]t_{\alpha/2}=1.675[/tex]  

Now we have everything in order to replace into formula (1):  

[tex]5314.4-1.675\frac{116.68}{\sqrt{52}}=5287.30[/tex]  

[tex]5314.4+1.675\frac{116.68}{\sqrt{52}}=5341.5[/tex]  

So on this case the 90% confidence interval would be given by (5287.3;5341.5)

And the best intrpretation is:

 5) We are 90% confident that the average number of plucks to failure for all 'high E' strings is between 5,287.3 and 5,341.5

Answer:

Total Allele: 100

BB = 100 ;  Bb = 40 ;  bb = 60

[tex]\rho = 0.6\\\delta = 0.4[/tex]

Step-by-step explanation:

There are two allele in each gene. Since we have 100 samples of butterfly genes, the total number of allele are 100 x 2 = 200.

For each species:

Dark Brown (BB) → 50 x 2 = 100 allele

Speckled (Bb) → 20 x 2 = 40 allele

White (bb) → 30 x 2 = 60 allele

So, if we let [tex]\rho[/tex] be the frequency of the B allele and [tex]\delta[/tex] be the frequency of the b alleles, then:

[tex]\rho = \frac{ ((50 \times 2) + 20)}{200} \\\ \\\rho = \frac{100+20}{200} = \frac{120}{200}\\\\\\rho = 0.6[/tex]

[tex]\delta = \frac{((30 x 2) + 20)}{200}\\\\\delta = \frac{60+20}{200} = \frac{80}{200}\\\\\delta = 0.4[/tex]

We want to get the allele frequencies for the coloration gene in the population of butterflies, we will get:

Assuming that the sample is a good representation of the butterfly population, the frequencies are just given by the quotient between the number of each type of butterflies and the total number of butterflies in the sample, times 100%.

There are 100 butterflies, 50 are dark brown, 20 are speckled, and 30 are white.

The frequency for BB (brown) is:

[tex]F_{BB} = (50/100)*100\% = 50\% [/tex]

The frequency for Bb (speckled) is:

 [tex]F_{Bb} = (20/100)*100\% = 20\%[/tex]

The frequency for bb (white) is:

[tex]F_{bb} = (30/100)*100\% = 30\%[/tex]

If you want to learn more about frequencies, you can read:

https://brainly.com/question/1809498

Answer:

The rate of study is 5 items per hour.

Step-by-step explanation:

Number of items a person can learn after t hours of instruction, w(t) is given by:

[tex]w(t)=15\sqrt[3]{t^{2}}[/tex]

We want to determine the rate of learning at any time t. The rate is the derivative of w(t) with respect to time.

[tex]\frac{dw(t)}{dt} =\frac{d}{dt} 15\sqrt[3]{t^{2}}[/tex]

[tex]\frac{dw(t)}{dt} =15\frac{d}{dt} {t^{2/3}}[/tex]

[tex]\frac{dw(t)}{dt} =15X\frac{2}{3} {t^{2/3-1}}[/tex]

[tex]\frac{dw(t)}{dt} =10 {t^{-\frac{1}{3} }}=\frac{10}{t^\frac{1}{3}}[/tex]

Therefore, the rate of learning at any time t

[tex]\frac{dw(t)}{dt} =\frac{10}{t^\frac{1}{3}}[/tex]

At the end of 8 hours, t=8

[tex]\frac{dw(t)}{dt} =\frac{10}{8^\frac{1}{3}}[/tex]

[tex]\frac{dw(t)}{dt} =\frac{10}{2}[/tex]=5

The rate of study is 5 items per hour.

Answer:

(35,0)

Step-by-step explanation:

Consider the diagram below, the starting point is given as A and the finish point given as C.

Using similar right-angle triangle, we have that:

[tex]\frac{|AM|}{|BM|}= \frac{|BM|}{|MC|}\\\frac{7}{14}= \frac{14}{x}\\7x=14 X 14\\x=196/7=28[/tex]

Therefore to find the point where Derek stops at C, we first determine the distance |AC|

|AC|=7+28=35

The Coordinates at C where Derek stops is (35,0)

Derek walks along a road described by the equation y = 2x. At the point (7,14), he turns right and walks perpendicularly to his original path until he reaches the x-axis. Upon reaching the x-axis, his stopping point is at (35,0).

When Derek reached the point (7,14), he turned right and started walking perpendicular to the original road. Given that this road is represented by the linear equation y = 2x, a perpendicular path would have a negative reciprocal slope. Therefore, the path he took after turning is represented by y = -1/2x + b. As he turned at the point (7, 14), substituting these coordinates into the equation provides b = 17.5. Since he stopped on the x-axis where y = 0, putting this into the equation gives x = 35. So, Derek stopped at (35,0).

https://brainly.com/question/34726936

#SPJ3

Answer:

The 99​% confidence interval for his expected proportion of the​ vote is (0.5516, 0.6336). Since the interval for the proportion is above 50%, he would be confident of winning based on the pool.

Step-by-step explanation:

In a sample with a number n of people surveyed with a probability of a success of [tex]\pi[/tex], and a confidence level of [tex]1-\alpha[/tex], we have the following confidence interval of proportions.

[tex]\pi \pm z\sqrt{\frac{\pi(1-\pi)}{n}}[/tex]

In which

z is the zscore that has a pvalue of [tex]1 - \frac{\alpha}{2}[/tex].

For this problem, we have that:

[tex]n = 950, p = \frac{563}{950} = 0.5926[/tex]

99% confidence level

So [tex]\alpha = 0.01[/tex], z is the value of Z that has a pvalue of [tex]1 - \frac{0.01}{2} = 0.995[/tex], so [tex]Z = 2.575[/tex].

The lower limit of this interval is:

[tex]\pi - z\sqrt{\frac{\pi(1-\pi)}{n}} = 0.5926 - 2.575\sqrt{\frac{0.5926*0.4074}{950}} = 0.5516[/tex]

The upper limit of this interval is:

[tex]\pi + z\sqrt{\frac{\pi(1-\pi)}{n}} = 0.5926 + 2.575\sqrt{\frac{0.5926*0.4074}{950}} = 0.6336[/tex]

The 99​% confidence interval for his expected proportion of the​ vote is (0.5516, 0.6336). Since the interval for the proportion is above 50%, he would be confident of winning based on the pool.

Answer:

number of square feet in the townhouse.

Step-by-step explanation:

When the relationship of two quantitative variables is assessed through plot then the scatter plot is made. Scatter plot shows relationship between two qualitative variables by showing dependent variable on y axis and independent variable on x axis.

When the relation between sale price of house and number of square feet in house is assessed then the sale price is dependent variable and square feet in house. Sale price is dependent variable because the price of house depends on the number of square feet of house. Thus, number of square feet in the town house will be plotted on the horizontal X-axis.    

Answer:

Step-by-step explanation:

Lets take 1000 output in total.

From these 1000 outputs, 700 are from F1 and 300 are from F2.

Defective from F1 is [tex]\frac{700\times3}{100} = 21[/tex] and defective from F2 is [tex]\frac{300\times2}{100} = 6[/tex].

a.

Total received part is 1000.

Total defectives are (21+6) = 27.

The probability of a received part being defective is [tex]\frac{27}{1000}[/tex].

b.

The probability of the randomly chosen defective part from F1 is [tex]\frac{21}{27} = \frac{7}{9}[/tex].

The probability that a received part is defective is 2.7%, while the probability that a randomly chosen defective part came from factory F1 is 77.78%.

To find the probability that a received part is defective, we need to consider the probabilities of receiving a defective part from each factory. Let's assume that the VCR manufacturer receives 100 parts. From factory F1, 70% of the parts are received, which means 70 parts. The probability of a part from F1 being defective is 3%, so the number of defective parts from F1 is 70 * (3/100) = 2.1. From factory F2, which accounts for the remaining 30% of the parts (30 parts), the probability of a part being defective is 2%, resulting in 30 * (2/100) = 0.6 defective parts. Therefore, the total number of defective parts is 2.1 + 0.6 = 2.7. Since there are 100 parts in total, the probability that a received part is defective is 2.7/100 = 0.027, or 2.7%.

To find the probability that a randomly chosen defective part came from factory F1, we can use the concept of conditional probability. The probability of a part coming from F1 given that it is defective can be found using the formula P(F1|Defective) = P(F1 and Defective) / P(Defective). We already know that P(F1 and Defective) = 2.1/100 and P(Defective) = 2.7/100. Substituting these values, we get P(F1|Defective) = (2.1/100) / (2.7/100) = 2.1/2.7 = 0.7778, or 77.78%.

Answer:

So, the probability is P=0.9953.

Step-by-step explanation:

We know  that a market research firm conducts telephone surveys with a 44% historical response rate.

We get that:

[tex]p=44\%=0.44=\mu_{\hat{x}}\\\\n=400\\\\\hat{p}=\frac{150}{400}=0.375\\\\[/tex]

We calculate the standar deviation:

[tex]\sigma_{\hat{p}}=\sqrt{\frac{0.44(1-0.44)}{400}}\\\\\sigma_{\hat{p}}=0.025[/tex]

So, we get

[tex]z=\frac{\hat{p}-\mu_{\hat{p}}}{\sigma{\hat{p}}}\\\\z=\frac{0.375-0.44}{0.025}}\\\\z=-2.6[/tex]

We use a probability table to calculate it

[tex]P(\hat{p}>0.375)=P(z>-2.6)=1-P(z<-2.6)=1-0.0047=0.9953[/tex]

So, the probability is P=0.9953.

To find the probability of at least 150 of 400 individuals responding given a 44% response rate, calculate the mean and standard deviation and then find the z-score for 150 responses. The probability of getting at least 150 responses is the area to the right of the z-score in the standard normal distribution.

The question asks for the probability that in a new sample of 400 telephone numbers, at least 150 individuals will respond, given a historical response rate of 44%. To determine this probability, we can approximate the binomial distribution to a normal distribution because the sample size is large (n=400).

First, we calculate the mean (μ) and the standard deviation (σ) for the number of responses. The mean is given by μ = np = 400 × 0.44 = 176. The standard deviation is σ = √(np(1-p)) = √(400 × 0.44 × 0.56) ≈ 9.92.

To calculate the probability of getting at least 150 responses, we would find the z-score for 150, which is z = (X - μ)/σ = (150 - 176)/9.92 ≈ -2.62. We then look up this z-score in a standard normal distribution table or use a calculator to determine the area to the right of this z-score, which represents the probability of getting more than 150 responses.

The question is related to market research and involves using statistical methods to calculate probabilities, which requires an understanding of binomial distributions and normal approximations.

https://brainly.com/question/32117953

#SPJ2

Answer:

The MOE for 80% confidence interval for μ is 5.59.

Step-by-step explanation:

The random variable X is defined as the number of square feet per house.

The random variable X is Normally distributed with mean μ and standard deviation σ = 137.

The margin of error for a (1 - α) % confidence interval for population mean is:

[tex]MOE=z_{\alpha /2}\times\frac{\sigma}{\sqrt{n}}[/tex]

Given:

n = 19

σ = 137

[tex]z_{\alpha /2}=z_{0.20/2}=z_{0.10}=1.282[/tex]

Compute MOE for 80% confidence interval for μ as follows:

[tex]MOE=1.282\times\frac{137}{\sqrt{19}}=1.282\times4.36=5.58952\approx5.59[/tex]

Thus, the MOE for 80% confidence interval for μ is 5.59.

Answer:

11/50

Step-by-step explanation:

39 of 50 states are under court order, so 11 of 50 states are not under court order.

Final answer:

The probability that a randomly selected state is not under a court order to alleviate overcrowding and poor conditions in its prisons is 11/50.

Explanation:

To find the probability that a randomly selected state is not currently under court order to alleviate overcrowding and poor conditions in one or more of their prisons, we can use the complement rule in probability. This rule states that the probability of an event not happening is equal to one minus the probability of the event happening. Given that 39 states are under such a court order, the probability that a state is under court order is 39/50. Therefore, the probability that a state is not under court order is 1 - (39/50).

Calculating this, we get:

P(Not under court order) = 1 - (39/50) = (50/50) - (39/50) = 11/50

The probability that a randomly selected state is not currently under a court order to alleviate overcrowding and poor conditions in its prisons is 11/50, when expressed as a reduced fraction.

Answer:

[tex]180.975 - 2.365\frac{143.042}{\sqrt{8}}=61.370[/tex]  

[tex]180.975 + 2.365\frac{143.042}{\sqrt{8}}=300.580[/tex]  

So on this case the 95% confidence interval would be given by (61.370;300.580)  

Step-by-step explanation:

Previous concepts

The margin of error is the range of values below and above the sample statistic in a confidence interval.  

Normal distribution, is a "probability distribution that is symmetric about the mean, showing that data near the mean are more frequent in occurrence than data far from the mean".

A confidence interval is "a range of values that’s likely to include a population value with a certain degree of confidence. It is often expressed a % whereby a population means lies between an upper and lower interval".

Solution to the problem

[tex]\bar X=180.975[/tex] represent the sample mean  

[tex]\mu[/tex] population mean (variable of interest)  

[tex]s=143.042[/tex] represent the sample standard deviation  

n=8 represent the sample size  

The confidence interval on this case is given by:

[tex]\bar X \pm t_{\alpha/2} \frac{s}{\sqrt{n}} [/tex]   (1)

We can find the degrees of freedom and we got:

[tex] df = n-1= 8-1=7[/tex]

The next step would be find the value of [tex]\t_{\alpha/2}[/tex], [tex]\alpha=1-0.95=0.05[/tex] and [tex]\alpha/2=0.025[/tex]  

Using the t table with df =7, excel or a calculator we see that:  

[tex]t_{\alpha/2}=2.365[/tex]

Since we have all the values we can replace:

[tex]180.975 - 2.365\frac{143.042}{\sqrt{8}}=61.370[/tex]  

[tex]180.975 + 2.365\frac{143.042}{\sqrt{8}}=300.580[/tex]  

So on this case the 95% confidence interval would be given by (61.370;300.580)  

Answer:

We need a sample size of at least 23 for a 99% confidence interval, with a tolerable interval width of 0.4.

We need a sample size of at least 9 for a 95% confidence interval with a tolerable width of 0.5,

Step-by-step explanation:

How large a sample size is required if want a 99% confidence interval, with a tolerable interval width of 0.4?

We have that to find our [tex]\alpha[/tex] level, that is the subtraction of 1 by the confidence interval divided by 2. So:

[tex]\alpha = \frac{1-0.99}{2} = 0.005[/tex]

Now, we have to find z in the Ztable as such z has a pvalue of [tex]1-\alpha[/tex].

So it is z with a pvalue of [tex]1-0.005 = 0.995[/tex], so [tex]z = 2.575[/tex]

Now, find the margin of error(width) as such

[tex]M = z*\frac{\sigma}{\sqrt{n}}[/tex]

In which [tex]\sigma[/tex] is the standard deviation of the population and n is the size of the sample.

For this item, we have:

[tex]M = 0.4, \sigma = 0.75[/tex]. So

[tex]M = z*\frac{\sigma}{\sqrt{n}}[/tex]

[tex]0.4 = 2.575*\frac{0.75}{\sqrt{n}}[/tex]

[tex]0.4\sqrt{n} = 1.93125[/tex]

[tex]\sqrt{n} = \frac{1.93125}{0.4}[/tex]

[tex]\sqrt{n} = 4.828125[/tex]

[tex]\sqrt{n}^{2} = (4.828125)^{2}[/tex]

[tex]n = 23[/tex]

We need a sample size of at least 23 for a 99% confidence interval, with a tolerable interval width of 0.4.

How large a sample would we need if were interested in a 95% confidence interval with a tolerable width of 0.5?

We have that to find our [tex]\alpha[/tex] level, that is the subtraction of 1 by the confidence interval divided by 2. So:

[tex]\alpha = \frac{1-0.95}{2} = 0.025[/tex]

Now, we have to find z in the Ztable as such z has a pvalue of [tex]1-\alpha[/tex].

So it is z with a pvalue of [tex]1-0.025 = 0.975[/tex], so [tex]z = 1.96[/tex]

Now, find the margin of error(width) as such

[tex]M = z*\frac{\sigma}{\sqrt{n}}[/tex]

In which [tex]\sigma[/tex] is the standard deviation of the population and n is the size of the sample.

For this item, we have:

[tex]M = 0.5, \sigma = 0.75[/tex]. So

[tex]M = z*\frac{\sigma}{\sqrt{n}}[/tex]

[tex]0.5 = 1.96*\frac{0.75}{\sqrt{n}}[/tex]

[tex]0.5\sqrt{n} = 1.47[/tex]

[tex]\sqrt{n} = \frac{1.47}{0.5}[/tex]

[tex]\sqrt{n} = 2.94[/tex]

[tex]\sqrt{n}^{2} = (2.94)^{2}[/tex]

[tex]n \cong 9[/tex]

We need a sample size of at least 9 for a 95% confidence interval with a tolerable width of 0.5,

Answer:

The sample mean is 13.

The sample variance is 0.2286.

The sample standard deviation is 0.4781.

Step-by-step explanation:

The sample is:

S = {12.6, 12.9, 13.4, 12.3, 13.6, 13.5, 12.6, 13.1}

The sample is of size n = 8.

The formula to compute the sample mean, sample variance and sample standard deviation are:

[tex]\bar x=\frac{1}{n} \sum x[/tex]

[tex]s^{2}=\frac{1}{n}\sum (x-\bar x)^{2} \\s=\sqrt{\frac{1}{n}\sum (x-\bar x)^{2} }\\[/tex]

Compute the sample mean as follows:

[tex]\bar x=\frac{1}{n} \sum x\\=\frac{1}{8}(12.6+ 12.9+ 13.4+ 12.3+ 13.6+ 13.5+ 12.6+ 13.1)\\=\frac{104}{8}\\ =13[/tex]

The sample mean is 13.

Compute the sample variance as follows:

[tex]s^{2}=\frac{1}{n-1}\sum (x-\bar x)^{2} \\=\frac{1}{8-1}[(12.6-13)^{2}+(12.9-13)^{2}+(13.4-13)^{2}+...+(13.1-13)^{2}] \\=\frac{1}{7}\times1.6\\=0.2286[/tex]

The sample variance is 0.2286.

Compute the sample standard deviation as follows:

[tex]s=\sqrt{s^{2}}\\=\sqrt{0.2286}\\=0.4781[/tex]

The sample standard deviation is 0.4781.

Answer:

The sample mean is 13.

The sample variance is 0.2286.

The sample standard deviation is 0.4781.

Step-by-step explanation:

Good luck

Answer:

The probability that a randomly selected survey participant didn't got the flew = 0.75

Step-by-step explanation:

Students got the flu during Winter 2013 = 12 %

Students got the flu during Winter 2014 = 18 %

Students got the flu during both years = 5 %

Students got the flu at least in one year = 12 + 18 - 5 = 25 %

Students didn't got the flew = 100 - 25 = 75 %

⇒ The probability that a randomly selected survey participant didn't got the flew =  [tex]\frac{75}{100}[/tex]

⇒ 0.75

This is the probability that a randomly selected survey participant didn't got the flew.

Answer:

Therefore, the probability is P=1/4.

Step-by-step explanation:

We know that a super has a key ring with 12 keys. He has forgotten which one opens the apartment he needs to enter.

We conclude that each key has an equal probability of opening an apartment. Since there are 12 keys, it follows that the probability for each key is equal,

p = 1/12.

We calculate the probability he is able to enter before reaching the 4th key. So he will try three keys by then. We get:

[tex]P=p+p+p\\\\P=\frac{1}{12}+\frac{1}{12}+\frac{1}{12}\\\\P=\frac{3}{12}\\\\P=\frac{1}{4}[/tex]

Therefore, the probability is P=1/4.

Answer:

In terms of size it is adequate . Sample isn't randomly selected

Step-by-step explanation:

In order for the sampling ot be adequate the sample size must be large enough which in this case it is. The samples must also be randomly selected. Here, the sample includes students from one course only. In order for the study to represent whole population that is college students, students from other courses must also be included. Junior as well as senior students must also be part of this study.

Answer:

So we conclude that the answer is under (B).

Step-by-step explanation:

We know that the penny is a fair coin; that is, the probability of heads is one-half and the probability of tails is one-half.

So when we throw a coin we have an equal chance of getting either a head or a tail.

So we conclude that the answer is under (B).

B) regardless of the number of flips, half will be heads and half tails.

Answer:

(a) [tex]p=100x-14[/tex]

(b) [tex]p=\$46[/tex]

Step-by-step explanation:

Linear Modeling

It consists of finding an equation of a line that fits the conditions of a certain situation in real life. We'll use a linear model for the cookies of the students.

(a) We know that we have a total of n=100 cookies. If sold for $0.10 each, they lose $4. We have an initial condition (x,p) = (0.10,-4), where x is the price of each cookie and p(x) is the net profit from selling all the cookies. The second conditions are that when then the price is $0.50 each, there is a positive profit of $36, which is a second point (0.5,36). That is enough to build the linear function, that can be found by

[tex]\displaystyle p-p_1=\frac{p_2-p_1}{x_2-x_1}(x-x_1)[/tex]

[tex]\displaystyle p+4=\frac{36+4}{0.5-0.1}(x-0.1)[/tex]

Reducing

[tex]p=100x-14[/tex]

(b) If the students sell the cookies for x=0.60 each, the profit will be

[tex]p=100(0.6)-14=46[/tex]

[tex]p=\$46[/tex]

It's a reasonable answer because we have found that increasing the price, the profit will increase also. The model doesn't have any restriction for the price

Answer:

[tex]P(X>10.983)=P(\frac{X-\mu}{\sigma}>\frac{10.983-\mu}{\sigma})=P(Z>\frac{10.983-10.5}{0.3})=P(z>1.61)[/tex]

And we can find this probability using the complement rule and with excel or the normal standard table:

[tex]P(z>1.61)=1-P(z<1.61)=1-0.946=0.054[/tex]

Step-by-step explanation:

Previous concepts

Normal distribution, is a "probability distribution that is symmetric about the mean, showing that data near the mean are more frequent in occurrence than data far from the mean".

The Z-score is "a numerical measurement used in statistics of a value's relationship to the mean (average) of a group of values, measured in terms of standard deviations from the mean".  

Solution to the problem

Let X the random variable that represent the weights of a population, and for this case we know the distribution for X is given by:

[tex]X \sim N(10.5,0.3)[/tex]  

Where [tex]\mu=10.5[/tex] and [tex]\sigma=0.3[/tex]

We are interested on this probability

[tex]P(X>10.983)[/tex]

And the best way to solve this problem is using the normal standard distribution and the z score given by:

[tex]z=\frac{x-\mu}{\sigma}[/tex]

If we apply this formula to our probability we got this:

[tex]P(X>10.983)=P(\frac{X-\mu}{\sigma}>\frac{10.983-\mu}{\sigma})=P(Z>\frac{10.983-10.5}{0.3})=P(z>1.61)[/tex]

And we can find this probability using the complement rule and with excel or the normal standard table:

[tex]P(z>1.61)=1-P(z<1.61)=1-0.946=0.054[/tex]