of the 43 people at a basketball team party, 30 of them play basketball, 15 are under six feet tall, and 9 do not play basketball and are six feet or taller. Determine the number of people at the party who play basketball and are under six feet tall,|Bn Ul, where B represents the set of people at the party who play basketball and U represents the set of people at the party who are under six feet tall, |B∩U] = _______
What is the probability that a randomly chosen party-goer plays basketball and is under six feet tall, P(BU)? Express the result with precision to three decimal places. P( B∩U) =______

Answers

Answer 1

The number of people at the party who play basketball and are under six feet tall, |B∩U] = 31 . The probability that a randomly chosen party-goer plays basketball and is under six feet tall, P(BU) = 0.732 .

Using the formula: |B∩U| = |B| + |U| - |B∪U|

where, |B| = 30 and |U| = 15 .

|B∪U| = |B| + |U| - |B∩U| + |(not B)∩(not U)|

where, |(not B)∩(not U)| = 9

|B∪U| = 30 + 15 - |B∩U| + 9

|B∪U| = 54 - |B∩U|

So, |B∩U| = 30 + 15 - |B∪U|

|B∪U| = 30 + 15 - |B∩U| + 9

|B∩U| = 36 - |B∪U|

Substituting |B∪U| into the earlier equation:

|B∩U| = 30 + 15 - (36 - |B∪U|)

|B∩U| = 9 + |B∪U|

Using the equation above:

|B∪U| = |B| + |U| - |B∩U| + |(not B)∩(not U)|

Substituting this into the earlier equation:

|B∩U| = 9 + (54 - |B∩U|)

2|B∩U| = 63

|B∩U| = 31.5

Therefore, the number of people at the party who play basketball and are under six feet tall, |B∩U|, is approximately 31.

To find the probability, P(B∩U),

P(B∩U) = |B∩U|/|S|

where |S| is the size of the sample space = 43

Substituting the value of |B∩U|:

P(B∩U) = 31.5/43

P(B∩U) ≈ 0.732

Therefore, the probability that a randomly chosen party-goer plays basketball and is under six feet tall, P(B∩U), is 0.732.

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Related Questions

The mean pulse rate (in beats per minute) of adult males is equal to 68.9 bpm. For a random sample of 140 adult males, the mean pulse rate is 69.5 bpm and the standard deviation is 11.1 bpm. Complete parts (a) and (b). a. Express the original claim in symbolic form. b. Identify the null and alternative hypothesis.

Answers

The original claim in symbolic form is μ = 68.9 bpm, and the null and alternative hypotheses are H0: μ = 68.9 bpm and Ha: μ ≠ 68.9 bpm.

Let's break it down step by step.

a. Express the original claim in symbolic form:
The original claim is that the mean pulse rate of adult males is equal to 68.9 bpm. We can represent this claim using the following symbols:
μ = 68.9 bpm

b. Identify the null and alternative hypothesis:
The null hypothesis (H0) is the statement that the mean pulse rate of adult males is equal to the claimed value. The alternative hypothesis (Ha) is the statement that the mean pulse rate is different from the claimed value. In this case, the hypotheses can be written as:

H0: μ = 68.9 bpm
Ha: μ ≠ 68.9 bpm

To summarize, the original claim in symbolic form is μ = 68.9 bpm, and the null and alternative hypotheses are H0: μ = 68.9 bpm and Ha: μ ≠ 68.9 bpm.

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Use proof by contradiction using the upper central series to
show that any finite p-group is nilpotent. That is, suppose that a group G, such that is not
nilpotent. Then show that

Answers

Our assumption that there exists a finite p-group G that is not nilpotent is false, and hence any finite p-group is nilpotent.

Suppose that there exists a finite p-group G that is not nilpotent. This means that there exists a non-trivial normal subgroup N of G such that N is not contained in the center of G.

Let Z(G) denote the center of G. Then, by definition, Z(G) is a normal subgroup of G, and we have Z(G) ⊆ N ⊊ G.

Consider the upper central series of G:

Z(G) ⊆ Z2(G) ⊆ Z3(G) ⊆ ⋯ ⊆ Zk(G) ⊆ ⋯,

where Zk(G) is the k-th term of the series, defined as the subgroup of G such that Zk(G)/Zk-1(G) is the center of G/Zk-1(G) for k ≥ 2, and Z1(G) = Z(G).

Since G is a finite p-group, the upper central series eventually stabilizes at some finite term, say Zm(G), where Zm(G) = G. That is, for some integer m, we have Zm(G) = G and Zm-1(G) ≠ G.

Now, since N is not contained in Z(G), we have N ∩ Z(G) ≠ Z(G). Thus, there exists an element g ∈ N ∩ Zm-1(G) such that g ∉ Z(G). Note that g commutes with all elements in Zm-1(G) by definition.

Since G is a p-group, the center Z(G) is non-trivial, and hence contains a non-trivial cyclic subgroup generated by some element z. Since z is in the center, it commutes with g. Consider the subgroup generated by g and z, denoted by H = ⟨g, z⟩.

Since g ∈ Zm-1(G) and Zm-1(G)/Z(G) is the center of G/Z(G), it follows that H/Z(G) is a cyclic subgroup of G/Z(G), and hence H is contained in Zk(G) for some k ≤ m.

Since Z(G) is a normal subgroup of G, it follows that H is a normal subgroup of G, and hence H is contained in Zk(G), which is a contradiction since g is not in the center of G. Therefore, our assumption that there exists a finite p-group G that is not nilpotent is false, and hence any finite p-group is nilpotent.

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Alonzo is $120 in debt. He makes $15 per hour. He wants to have at least $75 left over after he has paid off his debt. Write and solve an inequality to represent this situation, using x to represent the number of hours Alonzo must work to achieve his goal.

Answers

The  inequality equation is 15x - 120 ≥ 75.

The number of hours Alonzo must work to achieve his goal is 13 hours.

What is the number of hours Alonzo must work?

From the given question, let x = the number of hours Alonzo must work to achieve his goal.

Our inequality equation becomes the following;

15x - 120 ≥ 75

Now solve for x;

15x ≥ 75 + 120

15x ≥ 195

x ≥ 195/15

x ≥ 13

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The current that flows through an electrical circuit is inversely proportional to the resistance of that circuit. When the resistance R is 200 ohms, the current I is 1. 2 amperes. Find the current when the resistance is 90 ohms. (Include units in your answer. More information. Round your answer to one decimal place. )

I =

Answers

When current is inversely proportional to the resistance in a circuit, the current when the resistance is 90 ohms is equals to 0.540 Ampere.

In an electrical circuit, the current is inversely proportional to the resistance.

Resistance = 200 ohms

Current = 1.2 ampere

If resistance is 90 ohms then we have to determine the value of current. According to condition, I = kR ,

where, I --> current

k --> constant of Proportionality

R--> resistance

Now, the proportionality constant, k = I/R

=> k = 1.2/200

=> k = 0.006

So, value of current when resistance R = 90 ohms, for this plug in above equation,

=> I = 0.006 × 90

= 0.540

Hence, required value is 0.540 ampere.

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20 divided into 6298729

Answers

0.00000318 is the correct answer,

20 divided by that number equals 0.00000318

1. Change the ‘Conf level’ back to 95% but now increase the population standard deviation (σ) to 5 and run samples, then to 20 and run samples. Conceptually, why are intervals longer when the standard deviation is large?
2. Change the population mean (µ) to 1 and run samples, then change the mean to 0.2 and run samples. Does changing the population mean influence the length of the confidence interval? Why or why not?

Answers

In summary, changing the population mean affects the position or location of the confidence interval but does not directly impact its length. The length of the confidence interval is primarily influenced by the standard deviation and the sample size.

When the population standard deviation (σ) is large, confidence intervals tend to be wider or longer. This is due to the nature of how confidence intervals are constructed and the relationship between standard deviation and precision.

Conceptually, a confidence interval is a range of values that is likely to contain the true population parameter with a certain level of confidence. The width of the confidence interval depends on various factors, including the sample size, the variability of the data, and the desired level of confidence.

When the standard deviation is large, it indicates that the data points are spread out over a wider range. This high variability in the data means that individual sample observations can differ significantly from the population mean. As a result, to capture a larger range of possible values for the population mean within the confidence interval, the interval needs to be wider.

Mathematically, the width of a confidence interval is proportional to the standard deviation (σ) divided by the square root of the sample size (n). When σ is larger, the numerator of this ratio increases, causing the width of the interval to increase. On the other hand, as the sample size increases, the denominator of the ratio increases, leading to a narrower interval.

In summary, when the standard deviation is large, the data points are more spread out, and there is more uncertainty in estimating the true population mean. To account for this higher variability and capture a wider range of possible values, confidence intervals need to be wider or longer. On the other hand, when the standard deviation is small, the data points are more clustered around the mean, resulting in a narrower interval and higher precision in estimating the population mean.

2. Yes, changing the population mean (µ) does influence the length of the confidence interval.

The length of a confidence interval is determined by various factors, including the standard deviation (σ), the sample size (n), and the level of confidence. However, the population mean (µ) itself does not directly impact the length of the confidence interval.

The population mean affects the point estimate of the sample mean, which is used to calculate the center or midpoint of the confidence interval. A higher population mean would lead to a higher sample mean, resulting in a shift of the confidence interval along the number line. However, the length of the interval is primarily determined by the standard deviation and the sample size.

When the population mean is changed, the location of the confidence interval shifts, but the width or length of the interval remains relatively unchanged if the standard deviation and sample size remain the same. This is because the standard deviation reflects the variability of the data, which determines how spread out the observations are around the mean.

In summary, changing the population mean affects the position or location of the confidence interval but does not directly impact its length. The length of the confidence interval is primarily influenced by the standard deviation and the sample size.

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this time u get brainleist

Answers

Answer: 206

360 (full circle/angle) - 64 = 296

296 - 42 = 254

254 - 48 = 206

x = 206*  GUYS THE ANSWER IS 206 not 360

A rectangle has a width of 14 and a length of 22 find the area

Answers

Answer:

308

Step-by-step explanation:

The area of a rectangle is the length multiplied by the width.

14 x 22 = 308

Hope this helps!

there are two boxes one box contains 6 red and 3 yellow balls. the other box contains 2 blue, and 3 green marbles. if one ball from each box is randomly drawn, what is the probability that a red and blue ball will be drawn?

Answers

Answer:

[tex]\frac{2}{15}[/tex]

Step-by-step explanation:

1. There are 9 balls in total in the first box, and 6 red balls in there so we would represent this as [tex]\frac{6}{9}[/tex] and that can be simplified to [tex]\frac{1}{3}[/tex] .

2. There are 5 balls in total in the second box, and 2 blue balls in there, so we would represent this as [tex]\frac{2}{5}[/tex] . This can't be simplified, so we leave it like that.

3. Because it's a consecutive event we multiply the probabilities, which gives us [tex]\frac{2}{15}[/tex] . This can't be simplified, and that gives us our answer.

Which vehicles are worth less than $3,000 a decade after purchasing new? Select all that apply.
Coupe: $15,435 MSRP, depreciates at an average rate of 14% per year
Wagon: $19,285 MSRP, depreciates at an average rate of 17% per year
Convertible: $20,599 MSRP, depreciates at an average rate of 18% per year
Sport: $26,875 MSRP, depreciates at an average rate of 19% per year
Crossover: $31,500 MSRP, depreciates at an average rate of 22% per year

Answers

The vehicles that are worth less than $3,000 a decade after purchasing new are the Wagon, Convertible, and Sport.

Depreciation calculation

To determine which vehicles are worth less than $3,000 a decade after purchasing new, we can use the following formula:

Final Value = MSRP * (1 - Depreciation Rate)^10

For each vehicle, let's calculate the final value after 10 years and see if it's less than $3,000:

Coupe: Final Value = $15,435 x (1 - 0.14)^10 = $3,426.53 (greater than $3,000)Wagon: Final Value = $19,285 x (1 - 0.17)^10 = $2,822.35 (less than $3,000)Convertible: Final Value = $20,599 x (1 - 0.18)^10 = $2,686.11 (less than $3,000)Sport: Final Value = $26,875 x (1 - 0.19)^10 = $2,343.04 (less than $3,000)Crossover: Final Value = $31,500 x (1 - 0.22)^10 = $1,835.10 (less than $3,000)

Therefore, the vehicles that are worth less than $3,000 a decade after purchasing new are the Wagon, Convertible, and Sport.

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2. Supposed the prevalence of Sudden infant death syndrome (SIDS) is 0.01%. At a local Maternity hospital 3 of the 100 newborn infants died of SIDS following birth. a. What is the probability of 3 dying of SIDS in this situation? b. In this situation would you find it alarming that this many died or would this be expected. Why or why not? (write 1-3 sentences explaining

Answers

The probability of 3 dying of SIDS in this situation is approximately 0.000227. The number of SIDS cases in this hospital is significantly higher than the expected rate.

a. The probability of 3 infants dying of SIDS in this situation can be calculated using the binomial probability formula:
P(X=k) = C(n,k) * p^k * (1-p)^(n-k)
Where:
P(X=k) is the probability of k successes (SIDS cases) in n trials (infants),
C(n,k) is the number of combinations of n items taken k at a time,
p is the probability of SIDS (0.0001),
n = 100 infants,
k = 3 SIDS cases.
P(3 SIDS cases in 100 infants) = C(100,3) * (0.0001)^3 * (1-0.0001)^(100-3)
After calculating, the probability is approximately 0.000227.

b. In this situation, it is alarming that many infants died of SIDS, as the probability of 3 deaths in 100 infants is very low (0.000227), much lower than the prevalence of 0.01%. This indicates that the number of SIDS cases in this hospital is significantly higher than the expected rate.

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Choose five other iterated integrals that are equal to the given iterated integral. 7 0 7 y y 2 2 y
∫ ∫ ∫ f(x, y, z) dz dx dy 0 y 0
∫ ___ ∫ ___ ∫ ___ f(x,y,z) dz dy dx
∫ ___ ∫ ___ ∫ ___ f(x,y,z) dx dz dy
∫ ___ ∫ ___ ∫ ___ f(x,y,z) dx dy dz
∫ ___ ∫ ___ ∫ ___ f(x,y,z) dy dz dx
∫ ___ ∫ ___ ∫ ___ f(x,y,z) dy dx dz

Answers

Five other iterated integrals that are equal to the given iterated integral are:

∫₀⁷ ∫y²₂ ∫₀ʸ f(x, y, z) dx dz dy

∫₀⁷ ∫₀ʸ ∫y²₂ f(x, y, z) dx dz dy

∫y²₂ ∫₀⁷ ∫₀ʸ f(x, y, z) dx dy dz

∫y²₂ ∫₀ʸ ∫₀⁷ f(x, y, z) dx dy dz

∫₀ʸ ∫y²₂ ∫₀⁷ f(x, y, z) dz dx dy

To find the five other iterated integrals that are equal to the given iterated integral, we need to rearrange the order of integration. We can do this by changing the order of the limits of integration and writing the integral with respect to a different variable first.

The original integral is:

∫₀⁷ ∫y²₂ ∫₀ʸ f(x, y, z) dz dx dy

Now, we can change the order of integration in the following ways:

∫₀⁷ ∫y²₂ ∫₀ʸ f(x, y, z) dx dz dy

∫₀⁷ ∫₀ʸ ∫y²₂ f(x, y, z) dx dz dy

∫y²₂ ∫₀⁷ ∫₀ʸ f(x, y, z) dx dy dz

∫y²₂ ∫₀ʸ ∫₀⁷ f(x, y, z) dx dy dz

∫₀ʸ ∫y²₂ ∫₀⁷ f(x, y, z) dz dx dy

Each of these integrals has the same value as the original integral, but with a different order of integration. It is important to note that changing the order of integration can sometimes make the integral easier to evaluate, especially if the integrand has certain symmetries.

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Select all the expressions that equal 4 x 10^6

Answers

There are multiple expressions that equal 4 x 10^6, but here are some possible options: Note that all of these expressions simplify to [tex]4 * 10^6.[/tex]

A group of words coupled with the operations +, -, x, or form an expression, such as 4 x 3 or 5 x 2 3 x y + 17. A statement with an equals sign, such as 4 b 2 = 6, asserts that two expressions are equal in value and is known as an equation. Monomial Expression is one of the three primary categories of algebraic expressions.

Binary Expression. Expression of a polynomial.

Expressions:

4,000,000

[tex]40 * 10^5\\400 * 10^4\\0.4 * 10^7\\0.04 * 10^8[/tex]

Note that all of these expressions simplify to [tex]4 * 10^6[/tex].

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Whats the Area and Perimeter of this triangle

Answers

Answer: Perimeter: 60ft Area: 150ft^2

Step-by-step explanation:

Since the area of a triangle is equal to the (base*height)/2, you can take the values of each and turn it into an equation like this:

[tex]\frac{25\cdot12}{2}[/tex]

This comes out to be 150ft^2.

Next is the perimeter, which is all of the side lengths of a shape added together.

15+20 is equal to 35, then when you add 25 to it, you get 60.

This means the perimeter is 60 and the area is 150ft^2

select yes if the relation is a function and no if the relation is not a function. { ( 0 , - 1 ) , ( 2 , - 2 ) , ( 1 , 3 ) , ( 0 , 4 ) } math models quiz 2

Answers

No, the relation is not a function because there are two ordered pairs with the same first element (0), but different second elements (-1 and 4). In order for a relation to be a function, each input (first element) must correspond to only one output (second element).

To determine if the relation is a function in the context of math and models, we must check if each input (x-value) has a unique output (y-value).

The given relation is { (0, -1), (2, -2), (1, 3), (0, 4) }.

Notice that input 0 has two different outputs, -1 and 4, which means it does not satisfy the condition for being a function.

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What mass do the pre-1982 pennies contribute?

Answers

The pre-1982 pennies contribute a mass of 24.8 grams to the sample.

We have,

The total number of pennies in the sample is 8 + 12 = 20, and the pre-1982 pennies account for 40% of the sample,

This means,

0.4 x 20 = 8 pre-1982 pennies in the sample.

To find the mass contributed by the pre-1982 pennies, we can use the average mass of pre-1982 pennies, which is 3.1 grams:

Mass contributed by pre-1982 pennies

= 8 x 3.1 grams

= 24.8 grams

Therefore,

The pre-1982 pennies contribute a mass of 24.8 grams to the sample.

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y²+4y-7 evaluate the expression when y=7​

Answers

The expression: y²+4y-7 when evaluated will give us 70.

Understanding quadratic equation

Quadratic Equation is a polynomial equation of the second degree, which means that the highest power of the variable (usually x) is 2. It has the general form:

ax² + bx + c = 0

where a, b, and c are constants.

Note that a can never be zero otherwise it will turn to linear equation.

From the question given above:

y²+4y-7 when y = 7

y²+4y-7 = 0

7²+4(7)-7 = 0

= 49+28-7

= 70

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Question 8 Type numbers in the boxes According to a Pew Research Center study, in May 2011, 38% of all American adults had a smart phone (one which the user can use to read email and surf the Internet). A 10 points communications professor at a university believes this percentage is higher among community college students. She selects 442 community college students at random and finds that 193 of them have a smart phone. Then in testing the hypotheses: H0: P = 0.38 versus Ha:p > 0:38, what is the test statistic? z=_____ (Please round your answer to two decimal places.)

Answers

The test statistic is z = 1.75.

To find the test statistic, we first need to calculate the sample proportion. The sample proportion is calculated by dividing the number of community college students with a smartphone (193) by the total sample size (442):
p-hat =[tex]= \frac{193}{442} = 0.436[/tex]

Next, we need to calculate the standard error of the proportion, which is given by:
SE = [tex]\sqrt{\frac{(p-hat)(1 - p-hat)}{n}}[/tex]
SE = [tex]\sqrt{\frac{(0.436)(1 - 0.436)}{442}}[/tex]
SE = 0.032

Finally, we can calculate the test statistic (z-score) using the formula:
z = [tex]\frac{[p-hat-(p)] }{SE}[/tex]
z = [tex]\frac{[0.436-(0.38)] }{0.0032}[/tex]
z = 1.75

Rounding to two decimal places, the test statistic is z = 1.75.

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28-32. Estimating errors in partial sums For each of the following convergent alternating series, evaluate the nth partial sum for the given value ofn. Then use Theorem 10. 18 to find an upper bound for the error S-Sn in using the nth partial sum Sn to estimate the value of the series S n=3 k-1 1 THEOREM 10. 18 Remainder in Alternating Series Let -1a be a convergent aiternating series with terms that are nonincreasing in magnitude. Let R-S-S, be the remainder in approximating the k-1 33-38. Remainders in alternating series Determine how mamy tems of the following convergent series must be summed to be sure that the remainder is less than 104 i magnitude Although you do not need it, the exact value of the series is ghven tn each case 34. - e k-0 k!

Answers

Theorem 10.18 states that the remainder R-Sn is bounded by the absolute value of the next term in the series, which is also the absolute value of the (n+1)th term. To determine how many terms of a given convergent series must be summed to ensure that the remainder is less than

[tex]10 { }^{ - 4} [/tex]in magnitude.

We are given an alternating series, and we need to estimate the error in using the nth partial sum to approximate the sum of the series. This is a useful tool for estimating the error in approximating the sum of a series.

To apply Theorem 10.18, we need to evaluate the nth partial sum for the given value of n and find the absolute value of the (n+1)th term. We can use these values to estimate the error in approximating the sum of the series.

This is a common question in numerical analysis and involves estimating the error in approximating the sum of a series and then choosing the number of terms needed to achieve a desired level of accuracy.

These problems involve using techniques from calculus and numerical analysis to estimate errors in approximating the sums of series. These concepts are important in many areas of mathematics and science, including statistics, physics, and engineering.

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a researcher wants to know if the vitamins will increase the average weight of a cow. she randomly selects 2 cows from each of 19 different breeds of cows. for each breed one cow gets the vitamin, and one cow does not. assume cow weights are normally distributed. given the data below, calculate a 96% confidence interval for the difference in the averages between cows on the vitamins and cows not on the vitamins.

Answers

Therefore, we can say with 96% confidence that the true difference in the averages between cows on the vitamins and cows not on the vitamins is between −2.82 and 105.40 pounds. Since the interval includes 0, we cannot conclude that the vitamins have a significant effect on the weight of the cows.

To calculate the confidence interval for the difference in the averages between cows on the vitamins and cows not on the vitamins, we need to calculate the mean and standard deviation for each group and then use the formula for a confidence interval for the difference between two means.

Let's denote the weight of the cows on vitamins as X1 and the weight of the cows not on vitamins as X2.

From the data, we can calculate the following:

- For cows on vitamins: mean = 1254.5 pounds, standard deviation = 146.27 pounds
- For cows not on vitamins: mean = 1203.21 pounds, standard deviation = 150.44 pounds

To calculate the confidence interval, we can use the following formula:

CI = (X1 - X2) ± t(alpha/2, df) * sqrt((s1^2/n1) + (s2^2/n2))

where X1 and X2 are the means of the two groups, s1 and s2 are the standard deviations of the two groups, n1 and n2 are the sample sizes for the two groups, df is the degrees of freedom (df = n1 + n2 - 2), t(alpha/2, df) is the t-value from the t-distribution with alpha/2 and df degrees of freedom.

For a 96% confidence interval, alpha = 0.04 and t(alpha/2, df) = 2.120. Plugging in the values, we get:

CI = (1254.5 - 1203.21) ± 2.120 * sqrt((146.27^2/19) + (150.44^2/19))
CI = 51.29 ± 54.11
CI = (−2.82, 105.40)

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Two random samples are selected from two independent populations. A summary of the samples sizes, sample means, and sample standard deviations is given below: n1=43,n2=40,x¯1=57.5,x¯2=72.6,s1=5.8s2=11 Find a 95.5% confidence interval for the difference μ1−μ2 of the means, assuming equal population variances. Confidence Interval = Confidence Interval =

Answers

With 95.5% confidence that the true difference between the means of the two populations falls within the interval (-19.052, -11.148)

To find the confidence interval for the difference of the means, we can use the formula:

[tex]Confidence Interval = (X1 - X2) ±\frac{ta}{2} , df \sqrt{\frac{(s1)^{2} }{n1} + \frac{(s2)^{2} }{n2}  }[/tex]

where x1 and x2 are the sample means, s1 and s2 are the sample standard deviations, n1 and n2 are the sample sizes, and tα/2,df is the t-score from the t-distribution table with (n1 + n2 - 2) degrees of freedom and a confidence level of 95.5%.

Plugging in the given values, we get:

[tex]Confidence Interval =  (57.5 - 72.6) ± t0.022,81 \sqrt{\frac{(5.8)^{2} }{43} + \frac{(11)^{2} }{40} }[/tex]
[tex]Confidence Interval = -15.1 ± 2.539  (1.553)[/tex]
Confidence Interval = -15.1 ± 3.952
Confidence Interval = (-19.052, -11.148)

Therefore, we can say with 95.5% confidence that the true difference between the means of the two populations falls within the interval (-19.052, -11.148).

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Exercise 3.4 Use circulation rules introduced thus far to reduce each of the following words for orientable compact surfaces to a normal form word m7 for some nonnegative integer m. (a) abcb^-1dc^-1d^-1a^-1 (b) aba^-1 - cdb^-1 -c^-1d^-!

Answers

We have reduced the given word to the normal form word [tex]$a^2$[/tex], with [tex]$m=1$[/tex].

(a) We can use the following circulation rules to simplify the given word:

Rule 1: [tex]$aa^{-1}$[/tex] and [tex]$a^{-1}a$[/tex] can be replaced with the empty word.

Rule 2: [tex]$aa$[/tex] and [tex]$bb$[/tex] can be replaced with [tex]$a^2$[/tex] and [tex]$b^2$[/tex], respectively.

Rule 3: If a subword [tex]$aba^{-1}$[/tex] or [tex]$bab^{-1}$[/tex] appears, it can be replaced with [tex]$a^{-1}b^{-1}ab$[/tex] or [tex]$b^{-1}a^{-1}ba$[/tex], respectively.

Using these rules, we can simplify the given word as follows:

[tex]$a b c b^{-1} d c^{-1} d^{-1} a^{-1} & =a \cdot b \cdot c \cdot b^{-1} \cdot d \cdot c^{-1} \cdot d^{-1} \cdot a^{-1} \\$ =a \cdot b \cdot b^{-1} \cdot d \cdot c^{-1} \cdot c \cdot d^{-1} \cdot a^{-1} \\$ =a \cdot d \cdot d^{-1} \cdot a^{-1} \\$ =a^2$[/tex]

So we have reduced the given word to the normal form word [tex]$a^2$[/tex], with [tex]$m=1$[/tex].

(b) Using the same circulation rules, we can simplify the given word as follows:

[tex]$a b a^{-1}-c d b^{-1}-c^{-1} d^{-1} & =a \cdot b \cdot a^{-1}-c \cdot d \cdot b^{-1}-c^{-1} \cdot d^{-1} \\$ =a^2-c \cdot d \cdot b^{-1}-c^{-1} \cdot d^{-1} \\$ =a^2-c \cdot d \cdot b^{-1}-c \cdot d^{-1} \cdot c^{-1} \\$ =a^2-\left(c d^{-1}\right) \cdot\left(c^{-1} b\right) \\$ =a^2-\left(c d b^{-1}\right)^{-1} \\$ =a^2-\left(b d c^{-1}\right)^{-1} \\$ =a^2$[/tex]

So we have reduced the given word to the normal form word [tex]$a^2$[/tex], with [tex]$m=1$[/tex].

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Find the area of the figure

Answers

Answer: 240

Step-by-step explanation: i look it up and it says 240

i hope this helps

Verify the gradients for logistic loss to make sure your understanding of the calculation of gradients is correct: a / aw1:-0.0222. a/aw2 :0.2239, a/ab, :-0.0374. question 8
If we are training the model with the squared loss
n
1/n Σi=₁ (wTx₁ + b − yi) ² :
1) What is the squared loss given the current hyperplane?
Question 9
2) What is the gradient with respect to the first component of the weight
vector (a/aw1)?
Question 10
3) What is the gradient with respect to the bias (a/ab)?

Answers

For the logistic loss function, the gradients are given by:
a/aw1 = -(1/n) Σi=₁ xi1(yi - σ(wTxi + b))
a/aw2 = -(1/n) Σi=₁ xi2(yi - σ(wTxi + b))
a/ab = -(1/n) Σi=₁ (yi - σ(wTxi + b))
where σ is the sigmoid function.

Using the squared loss function given by
1/n Σi=₁ (wTx₁ + b − yi) ²,
we can calculate the squared loss for the current hyperplane by plugging in the values of w and b for the given hyperplane, and computing the average loss over all the training examples.

The gradient with respect to the first component of the weight vector (a/aw1) is given by:
a/aw1 = (2/n) Σi=₁ xi1(wTxi + b - yi)

The gradient with respect to the bias (a/ab) is given by:
a/ab = (2/n) Σi=₁ (wTxi + b - yi)


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La diferencia de dos números más 80 unidades es igual al cuádruple del número menor, menos 60 unidades. Hallar los dos números, si el mayor es el triple del menor

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So the difference among smaller number is 70 and the larger number is 210.

One of the most crucial operations in algebra, which is achieved by removing two integers, produces difference in mathematics. It reveals how much one number deviates from another. To determine how many numbers are between the two supplied numbers is the goal of determining the difference in arithmetic.  

The product of the sine of the primary angle and the cosine of the second angle less the product of the cosine of the first degree and the sine of the second angle is the sine of the difference of two angles, according to the difference formula for sines.

Let the smaller number be x. Then the larger number is 3x.

According to the problem, we have:

3x - x + 80 = 4x - 60

Simplifying and solving for x:

2x + 80 = 4x - 60

140 = 2x

x = 70

So the smaller number is 70 and the larger number is 3x = 3(70) = 210.

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Correct Question:

The difference of two numbers plus 80 units is equal to four times the smaller number minus 60 units. Find the two numbers if the larger is three times the smaller.

A coiled spring with coils that are closely spaced then widely then closely then widely then closely, ending with a yellow line labeled 1 second.
What is the frequency of this wave?

1
2
3
4

Answers

The frequency of this wave is 1 s⁻¹.

Since, We know that;

Frequency describes the number of waves that pass a fixed place in a given amount of time.

Given that;

A coiled spring with coils that are closely spaced then widely then closely then widely then closely, ending with a yellow line labeled 1 second.

We know that -

Frequency = 1 / Time period

f = 1/T

f = 1/1

f = 1 s⁻¹

Therefore, the frequency of this wave is 1 s⁻¹.

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I need answers badly.

Answers

There is 75% of getting at least two tiles of vowels

Fits, less than two of the tiles are vowels

= 11 + 39

= 50

Now, at least two of tiles are vowels

= 200 - 50/ 200

= 150/200

= 0.75 x 100

= 75%

There is 75% of getting at least two tiles of vowels

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A boat is heading towards a lighthouse, where Tyee is watching from a vertical distance of 115 feet above the water. Tyee measures an angle of depression to the boat at point AA to be 15^{\circ}

. At some later time, Tyee takes another measurement and finds the angle of depression to the boat (now at point BB) to be 50^{\circ}

. Find the distance from point AA to point BB. Round your answer to the nearest foot if necessary.

Answers

The distance form point A to point B is 333 feet.

What is an angle of depression?

An angle of depression is the measure of an angle formed when an object is viewed below the horizontal plane by an observer.

In the given question, let the distance from point A to the base of the lighthouse be represented by x, and that of B to the base of the lighthouse as y.

So that to determine x, we have;

Tan θ = opposite/ adjacent

Tan 15 = 115/ x

x = 115/ 0.2680

  = 429.1045

x = 429.1045 feet

To determine y, we have;

Tan θ = opposite/ adjacent

Tan 50 = 115/ y

y = 115/ 1.1918

  = 96.492y

y =  96.4927 feet

The distance from point A to point B = x - y

                             = 429.1045 - 96.4927

                             = 332.6118

The distance from point A to point B is 333 feet.

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in which hundredth interval of the number line does √(84) lie?

Answers

The hundredth interval of the number line in which √(84) is between 9.16 and 9.17

What is a numberline?

A number line consists of a line marked with numbers at regular intervals that can be used for arithmetic calculations.

The hundredths interval n the number line in which √(84) can be located is found as follows;

√(84) = 2·√(21) ≈ 9.165

A hundredth is a value expressed to two decimal places, therefore, the hundredth on the number line in which the value 9.165 is located are the values larger than 0.16 but less than 0.17.

Therefore √(84) lies in between 9.16 and 9.17 on the number line

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Give the reason(s) for each step needed to show that the following argument is valid.[p ∩ (p → q) ∩ (s ∪ r) ∩ (r → ¬p)] → (s ∪ t)1. p2. p→q3. q4. r → ~p5. q → ~r6. ~r7. s ∪ r8. s9. ∴ s ∪ t

Answers

The given argument is valid.

To show that the following argument is valid, we will use the given terms and follow a step-by-step explanation.

Argument: [p ∩ (p → q) ∩ (s ∪ r) ∩ (r → ¬p)] → (s ∪ t)

Steps:

1. p (Premise)
2. p → q (Premise)
3. q (From 1 and 2 using Modus Ponens: If p is true and p → q is true, then q is true)
4. r → ~p (Premise)
5. q → ~r (From 1 and 4 using the Contrapositive: If p is true and r → ~p is true, then q → ~r is true)
6. ~r (From 3 and 5 using Modus Ponens: If q is true and q → ~r is true, then ~r is true)
7. s ∪ r (Premise)
8. s (From 6 and 7 using Disjunction Elimination: If ~r is true and s ∪ r is true, then s is true)
9. ∴ s ∪ t (From 8 using Disjunction Introduction: If s is true, then s ∪ t is true)

By following these steps, we have shown that the given argument is valid.

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