In a study conducted from 1960 to 1980 it was found that the annual rainfall in a particular area was normally distributed with a mean of 850 mm and a standard deviation of 100 mm. You believe that the annual rainfall has increased over time and that the average is now over 950 mm. You look at the rainfall records for the last 10 years and find that the mean for the sample is 910 mm with a standard deviation of 92 mm. You assume that the annual rainfall is still normally distributed and that the standard deviation has not changed. You do a hypothesis test, using a 5% level of significance, to confirm your beliefs about the annual average rainfall. For the hypothesis test that you perform, what is the value of the test statistic?

Answers

Answer 1

The value of the test statistic for the hypothesis test is -1.96.

To perform a hypothesis test, we need to calculate the test statistic. In this case, since we are comparing the sample mean (910 mm) to the hypothesized population mean (950 mm), we use a one-sample z-test.

The formula for the test statistic in a one-sample z-test is:

Test Statistic (z) = (sample mean - hypothesized mean) / (standard deviation / √sample size)

Plugging in the given values, we have:

Test Statistic (z) = (910 - 950) / (100 / √10) ≈ -1.96

Since we are conducting a hypothesis test at a 5% level of significance, the critical value for a two-tailed test is ±1.96 (assuming a standard normal distribution). Since our test statistic falls within the range of -1.96 to 1.96, we do not reject the null hypothesis.

Therefore, the value of the test statistic for this hypothesis test is -1.96. This indicates that the sample mean of 910 mm is approximately 1.96 standard deviations below the hypothesized population mean of 950 mm.

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Related Questions

A dentist wants a small mirror that, when 2.80 cm from a tooth, will produce a 5.0× upright image. What must its radius of curvature be? Follow the sign conventions.

Answers

To create a 5.0× upright image of a tooth when the mirror is 2.80 cm away from it, the radius of curvature of the mirror must be 2.33 cm.

In optics, the relationship between the object distance (o), the image distance (i), and the radius of curvature (R) for a mirror is given by the mirror formula:
1/f = 1/o + 1/i
where f is the focal length of the mirror. For a spherical mirror, the focal length is half the radius of curvature (f = R/2).
In this case, the mirror is placed 2.80 cm away from the tooth, so the object distance (o) is -2.80 cm (negative because it is on the same side as the incident light). The desired image distance (i) is 5.0 times the object distance, so i = 5.0 * (-2.80 cm) = -14.0 cm.
Using the mirror formula, we can solve for the radius of curvature (R):
1/(R/2) = 1/(-2.80 cm) + 1/(-14.0 cm)
Simplifying the equation, we find:
1/R = -1/2.80 cm - 1/14.0 cm
1/R = -0.3571 cm⁻¹ - 0.0714 cm⁻¹
1/R = -0.4285 cm⁻¹
R ≈ 2.33 cmcm
Therefore, the radius of curvature of the mirror must be approximately 2.33 cm to produce a 5.0× upright image of the tooth when the mirror is placed 2.80 cm away from it.

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5 12 ,B 5. 6. 7 AB= AC = ZA= ZB= ZB= 7. When a hockey player is 35 feet from the goal line, he shoots the puck directly at the goal. The angle of elevation at which the puck leaves the ice is 7º. The

Answers

The  angle of elevation at which the puck leaves the ice is 7º.When a hockey player is 35 feet from the goal line, he shoots the puck directly at the goal.From the diagram,AB = AC (Goal Line)

ZA = ZB (The path of the hockey puck)

So,AB = AC

= Z

A = Z

B = 7

Let O be the position of the hockey player.OA = 35Let P be the position of the puck.

The angle of elevation is 7º

From the diagram,We can use the tangent function to find the height of the hockey puck.

Tan 7º = ZP / OZ

P = Tan 7º x OZ

P = Tan 7º x 35

P ≈ 4.23

Therefore, the height of the hockey puck when it crosses the goal line is approximately 4.23 feet.

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Which of the following is the definition of the definite integral of a function f(x) on the interval [a, b]? f(x) dx lim Σ f(x)Δx n10 i=1 n L. os sos ºss f(x) dx = = lim Σ f(Δx)x no i=1 f(x) dx = lim n00 3 f(x)ax i=1

Answers

The correct definition of the definite integral of a function f(x) on the interval [a, b] is:

∫[a, b] f(x) dx

The symbol "∫" represents the integral, and "[a, b]" indicates the interval of integration.

The integral of a function represents the signed area between the curve of the function and the x-axis over the given interval. It measures the accumulation of the function values over that interval.

Out of the options provided:

f(x) dx = lim Σ f(x)Δx (n approaches infinity) is the definition of the Riemann sum, which is an approximation of the definite integral using rectangles.

f(x) dx = lim Σ f(Δx)x (n approaches infinity) is not a valid representation of the definite integral.

f(x) dx = lim n→0 Σ f(x)Δx (i approaches 1) is not a valid representation of the definite integral.

Therefore, the correct answer is: f(x) dx.

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will the bond interest expense reported in 2021 be the same as, greater than, or less than the amount that would be reported if the straight-line method of amortization were used?

Answers

The bond interest expense reported in 2021 will be less than the amount that would be reported if the straight-line method of amortization were used.

The straight-line method of amortization is an accounting method that assigns an equal amount of bond discount or premium to each interest period over the life of the bond. In contrast, the effective interest rate method calculates the interest expense based on the market rate of interest at the time of issuance. In general, the effective interest rate method results in a lower interest expense in the earlier years of the bond's life and a higher interest expense in the later years compared to the straight-line method.

Therefore, if the effective interest rate method is used to amortize bond discount or premium, the bond interest expense reported in 2021 will be less than the amount that would be reported if the straight-line method of amortization were used. The difference in interest expense between the two methods will decrease as the bond approaches maturity and the discount or premium is fully amortized. This is because the effective interest rate method approaches the straight-line method as the bond gets closer to maturity.

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Assuming a large training data set, the out of bag error
estimates from a bagging technique can be a proxy for which
metric?
a.
Training Error
b.
Cross Validation Error
c.
None of the a

Answers

b. Cross Validation Error The out-of-bag (OOB) error estimates from a bagging technique can serve as a proxy for the cross-validation error.

Bagging is a resampling technique where multiple models are trained on different subsets of the training data, and the OOB error is calculated by evaluating each model on the data points that were not included in its training set. The OOB error provides an estimate of the model's performance on unseen data and can be used as a substitute for the cross-validation error. Cross-validation is a widely used technique for assessing the generalization performance of a model by partitioning the data into multiple subsets and iteratively training and evaluating the model on different combinations of these subsets. While the OOB error is not an exact replacement for cross-validation, it can provide a reasonable estimate of the model's performance and help in model selection and evaluation when a large training dataset is available.

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Use the ratio table to solve the percent problem. What percent is 32 out of 80? 4% 32% 40% 80%)
a.(Use the grid to create a model to solve the percent problem. 21 is 70% of what number? Enter your answer in the box.)
b..(Use the grid to create a model to solve the percent problem. What is 30% of 70? 9 12 19 21)
c.(Use the ratio table to solve the percent problem. Part Whole ? 90 20 100 What is 20% of 90? Enter your answer in the box.)
d.(In each box, 40% of the total candies are lemon flavored. In a box of 35 candies, how many are lemon flavored? Enter the missing value in the box to complete the ratio table. Part Whole 35 40 100)

Answers

a. To find what number 21 is 70% of, we can set up the equation: 70% of x = 21. To solve for x, we divide both sides of the equation by 70% (or 0.70):

x = 21 / 0.70

x ≈ 30

Therefore, 21 is 70% of 30.

b. To find 30% of 70, we can set up the equation: 30% of 70 = x. To solve for x, we multiply 30% (or 0.30) by 70:

x = 0.30 * 70

x = 21

Therefore, 30% of 70 is 21.

c. To find 20% of 90, we can set up the equation: 20% of 90 = x. To solve for x, we multiply 20% (or 0.20) by 90:

x = 0.20 * 90

x = 18

Therefore, 20% of 90 is 18.

d. In the ratio table, we are given that 40% of the total candies are lemon flavored. We need to find the number of candies that are lemon flavored in a box of 35 candies.

To find the number of lemon-flavored candies, we multiply 40% (or 0.40) by the total number of candies:

Number of lemon-flavored candies = 0.40 * 35

Number of lemon-flavored candies = 14

Therefore, in a box of 35 candies, 14 are lemon flavored.

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Study mode Preference A survey was conducted to ask students about their preferred mode of study. Suppose 80 first years and 120 senior students participated in the study. 140 of the respondents preferre = full-time while the rest preferred distance. Of the group preferring distance, 20 were first years and 40 were senior students. Required: a) Construct a cross tabulation and use it to determine the following marginal probabilities: i. Probability that a respondent is a first year student ii. Probability that a respondent is a senior student Probability that a respondent preferred the full-time mode A marginal probability is the probability of a single event occurring iv. Probability that a respondent preferred the distance study mode only i.e. P(A)

Answers

The probability that a respondent preferred the distance study mode only is (c) / total number of students= 20/220= 0.09.

80 first-year students and 120 senior students participated in a survey regarding students' preferred method of study. 140 respondents preferred full-time employment, while the remaining respondents preferred distance. There were 40 senior students and 20 first-year students in the distance preference group.

Developing a cross-classification table for the information gave in the question;PreferenceFirst Year StudentsSenior StudentsTotalFull-Time Students80 (a)40 (b)120Distance Students20 (c)80 (d)100Total100120220a) Likelihood that a respondent is a first-year understudy = all out number of first-year understudies/complete number of students= 100/220= 0.45b) Likelihood that a respondent is a senior understudy = all out number of senior understudies/all out number of students= 120/220= 0.55c) Likelihood that a respondent favored the full-time mode = all out number of understudies leaning toward full-time/all out number of students= 140/220= 0.64d) Likelihood that a respondent favored the distance concentrate on mode = all out number of understudies inclining toward distance/all out number of students= 80/220= 0.36

Thus, the peripheral probabilities are determined as follows: Likelihood that a respondent is a first-year understudy = 0.45 Probability that a respondent is a senior understudy = 0.55 Probability that a respondent favored the full-time mode = 0.64 Probability that a respondent favored the distance concentrate on mode = 0.36 (P(A))Therefore, the likelihood that a respondent favored the distance concentrate on mode just is (c)/all out number of students= 20/220= 0.09.

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In Mosquito Canyon the monthly demand for x cans of Mosquito Repellent is related to its price p (in dollars) where p = 60 e ¹-0.003125x a. If the cans sold for a penny each, what number of cans woul

Answers

The number of cans that would be sold if they were sold for a penny each is 1474.56 cans.

Given data:

The relation between monthly demand (x) and the price (p) of mosquito repellent cans is p = 60 e ¹⁻⁰.⁰⁰³¹²⁵x.

The cost of a mosquito repellent can is 1 cent. We have to find the number of cans sold.

Solution: The cost of 1 mosquito repellent can is 1 cent = 0.01 dollars.

The relation between x and p is p = 60 e ¹⁻⁰.⁰⁰³¹²⁵x

Let's plug p = 0.01 in the above equation0.01 = 60 e ¹⁻⁰.⁰⁰³¹²⁵x

Taking the natural logarithm of both sides ln(0.01) = ln(60) + (1 - 0.003125x)ln(e)

ln(0.01) = ln(60) + (1 - 0.003125x) ln(2.718)

ln(0.01) = ln(60) + (1 - 0.003125x) × 1

ln(0.01) - ln(60) = 1 - 0.003125x0.003125x

= 4.6052x

= 1474.56 cans

Thus, the number of cans that would be sold if they were sold for a penny each is 1474.56 cans.

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what type of integrand suggests using integration by substitution?

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Integration by substitution is one of the most useful techniques of integration that is used to solve integrals.

We use integration by substitution when the integrand suggests using it. Whenever there is a complicated expression inside a function or an exponential function in the integrand, we can use the integration by substitution technique to simplify the expression. The method of substitution is used to change the variable in the integrand so that the expression becomes easier to solve.

It is useful for integrals in which the integrand contains an algebraic expression, a logarithmic expression, a trigonometric function, an exponential function, or a combination of these types of functions.In other words, whenever we encounter a function that appears to be a composite function, i.e., a function inside another function, the use of substitution is suggested.

For example, integrands of the form ∫f(g(x))g′(x)dx suggest using the substitution technique. The goal is to replace a complicated expression with a simpler one so that the integral can be evaluated more easily. Substitution can also be used to simplify complex functions into more manageable ones.

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Let J5 = {0, 1, 2, 3, 4}, and define a function F: J5 → J5 as follows: For each x ∈ J5, F(x) = (x3 + 2x + 4) mod 5. Find the following:
a. F(0)
b. F(1)
c. F(2)
d. F(3)
e. F(4)

Answers

The values of F(x) for each x ∈ J5 are F(0) = 4, F(1) = 2, F(2) = 1, F(3) = 2, and F(4) = 1

How did we get the values?

To find the values of the function F(x) for each element in J5, substitute each value of x into the function F(x) = (x^3 + 2x + 4) mod 5. Below are the results:

a. F(0)

F(0) = (0³ + 2(0) + 4) mod 5

= (0 + 0 + 4) mod 5

= 4 mod 5

= 4

b. F(1)

F(1) = (1³ + 2(1) + 4) mod 5

= (1 + 2 + 4) mod 5

= 7 mod 5

= 2

c. F(2)

F(2) = (2³ + 2(2) + 4) mod 5

= (8 + 4 + 4) mod 5

= 16 mod 5

= 1

d. F(3)

F(3) = (3³ + 2(3) + 4) mod 5

= (27 + 6 + 4) mod 5

= 37 mod 5

= 2

e. F(4)

F(4) = (4³ + 2(4) + 4) mod 5

= (64 + 8 + 4) mod 5

= 76 mod 5

= 1

Therefore, the values of F(x) for each x ∈ J5 are:

F(0) = 4

F(1) = 2

F(2) = 1

F(3) = 2

F(4) = 1

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determine if the following statement is true or false. a basis for a vector space vv is a set ss of vectors that spans vv.

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The given statement is partially true as well as partially false. The correct statement would be "A basis for a vector space V is a set S of vectors that both spans V and is linearly independent."

A basis for a vector space V is a set of vectors that both spans V and is linearly independent, and the minimum number of vectors in any basis for V is called the dimension of V. A basis is a subset of vectors that are linearly independent and can be used to represent the entire vector space by linearly combining them. The concept of a basis is fundamental to the study of linear algebra since it is used to define the properties of dimension, rank, and kernel for linear maps, in addition to being a useful tool in geometry, calculus, and physics.

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The discrete random variable X is the number of students that show up for Professor Smith's office hours on Monday afternoons. The table below shows the probability distribution for X. What is the probability that at least 1 student comes to office hours on any given Monday?
X 0 1 2 3 Total
P(X) .40 .30 .20 .10 1.00

Answers

The probability that at least 1 student comes to office hours on any given Monday will be calculated as follows:P(X≥1)=P(X=1) + P(X=2) + P(X=3)P(X=1) + P(X=2) + P(X=3) = 0.30 + 0.20 + 0.10 = 0.60

Therefore, the probability that at least 1 student comes to office hours on any given Monday is 0.60.Since the given table shows the probability distribution for the discrete random variable X, it can be said that the random variable X is discrete because its values are whole numbers (0, 1, 2, 3) and it is a probability distribution because the sum of the probabilities for each value of X equals 1.

The probability that at least 1 student comes to office hours on any given Monday is 0.60 which means that the probability that no students show up is 0.40.

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What signs are cos(-80°) and tan(-80°)?
a) cos(-80°) > 0 and tan(-80°) < 0
b) They are both positive.
c) cos(-80°) < 0 and tan(-80°) > 0
d) They are both negative.

Answers

The signs of cos(-80°) and tan(-80°) are given below:a) cos(-80°) > 0 and tan(-80°) < 0Therefore, the correct option is (a) cos(-80°) > 0 and tan(-80°) < 0.

What is cosine?

Cosine is a math concept that represents the ratio of the length of the adjacent side to the hypotenuse side in a right-angle triangle. It's often abbreviated as cos. Cosine can be used to calculate the sides and angles of a right-angle triangle, as well as other geometric figures.

What is tangent?

Tangent is a mathematical term used to describe the ratio of the opposite side to the adjacent side of a right-angle triangle. It is abbreviated as tan. It's a ratio of the length of the opposite leg of a right-angle triangle to the length of the adjacent leg.

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Let L be a linear transformation mapping R3 into R2 defined by L(x)=x1​ b1​+(x2​+x3​)b2​ for each x∈R3, where b1​=(11​),b2​=(−11​)

Answers

The linear transformation L maps a vector x = (x1, x2, x3) in R3 to a vector in R2 using the following formula:

L(x) = x1 * b1 + (x2 + x3) * b2

Here, b1 = (1, 1) and b2 = (-1, 1) are the basis vectors in R2.

To apply the transformation, we substitute the values of x1, x2, and x3 into the formula. Let's denote the resulting vector in R2 as (y1, y2):

L(x) = (y1, y2)

We can calculate the values of y1 and y2 as follows:

y1 = x1 * 1 + (x2 + x3) * (-1) = x1 - x2 - x3

y2 = x1 * 1 + (x2 + x3) * 1 = x1 + x2 + x3

So, the linear transformation L maps a vector x = (x1, x2, x3) to a vector (y1, y2) where y1 = x1 - x2 - x3 and y2 = x1 + x2 + x3.

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Suppose that an unfair weighted coin has a probability of 0.6 of getting heads when
the coin is flipped. Assuming that the coin is flipped ten times and that successive
coin flips are independent of one another, what is the probability that the number
of heads is within one standard deviation of the mean?

Answers

The answer is 0.6659 or 66.59%

To find the probability that the number of heads is within one standard deviation of the mean, we need to calculate the mean and standard deviation of the binomial distribution.

The mean (μ) of a binomial distribution is given by n * p, where n is the number of trials and p is the probability of success (getting a head in this case). In this case, n = 10 (number of coin flips) and p = 0.6.

μ = n * p = 10 * 0.6 = 6

The standard deviation (σ) of a binomial distribution is given by sqrt(n * p * (1 - p)). Let's calculate the standard deviation:

σ = sqrt(n * p * (1 - p))
= sqrt(10 * 0.6 * (1 - 0.6))
= sqrt(10 * 0.6 * 0.4)
= sqrt(2.4 * 0.4)
= sqrt(0.96)
≈ 0.9798

Now, we need to calculate the range within one standard deviation of the mean. The lower bound will be μ - σ, and the upper bound will be μ + σ.

Lower bound = 6 - 0.9798 ≈ 5.0202
Upper bound = 6 + 0.9798 ≈ 6.9798

To find the probability that the number of heads is within one standard deviation of the mean, we calculate the cumulative probability of getting 5, 6, or 7 heads. We can use the binomial cumulative distribution function or a calculator that provides binomial probabilities.

P(5 ≤ X ≤ 7) = P(X = 5) + P(X = 6) + P(X = 7)

Using the binomial cumulative distribution function or a calculator, we can find the probabilities associated with each value:

P(X = 5) ≈ 0.2007
P(X = 6) ≈ 0.2508
P(X = 7) ≈ 0.2144

Now, let's sum up these probabilities:

P(5 ≤ X ≤ 7) ≈ 0.2007 + 0.2508 + 0.2144
≈ 0.6659

Therefore, the probability that the number of heads is within one standard deviation of the mean is approximately 0.6659, or 66.59%.

You are told that a normally distributed random variable has a
standard deviation of 3.25 and 97.5% of the values are above 25.
What is the value of the mean? Please give your answer to two
decimal pl

Answers

The value of the mean, rounded to two decimal places, is approximately 18.63.

To find the value of the mean given the standard deviation and the percentage of values above a certain threshold, we can use the z-score and the standard normal distribution table.

First, we calculate the z-score corresponding to the 97.5th percentile (since 97.5% of values are above 25). From the standard normal distribution table, the z-score corresponding to the 97.5th percentile is approximately 1.96.

The z-score formula is given by:

z = (x - mean) / standard deviation

Rearranging the formula, we can solve for the mean:

mean = x - (z * standard deviation)

Substituting the given values into the formula, we get:

mean = 25 - (1.96 * 3.25)

Calculating the expression, we find:

mean ≈ 25 - 6.37 ≈ 18.63

Therefore, the value of the mean, rounded to two decimal places, is approximately 18.63.

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Suppose we wish to test H0: μ ≤ 47 versus H1: μ > 47. What
will result if we conclude that the mean is not greater than 47
when its true value is really greater than 47?
We have made a Ty

Answers

if we conclude that the mean is not greater than 47 when its true value is really greater than 47, we have made a Type II error, failing to reject the null hypothesis despite the alternative hypothesis being true.

If we conclude that the mean is not greater than 47 (reject H1) when its true value is actually greater than 47, we have made a Type II error.

In hypothesis testing, a Type II error occurs when we fail to reject the null hypothesis (H0) even though the alternative hypothesis (H1) is true. It means that we fail to recognize a significant difference or effect that actually exists.

In this specific scenario, the null hypothesis states that the population mean (μ) is less than or equal to 47 (H0: μ ≤ 47), while the alternative hypothesis suggests that the q mean is greater than 47 (H1: μ > 47).

If we incorrectly fail to reject H0 and conclude that the mean is not greater than 47, it implies that we do not find sufficient evidence to support the claim that the mean is greater than 47. However, in reality, the true mean is indeed greater than 47.

This Type II error can occur due to factors such as a small sample size, insufficient statistical power, or a weak effect size. It means that we missed the opportunity to correctly detect and reject the null hypothesis when it was false.

It is important to consider the potential consequences of making a Type II error. For example, in a medical study, failing to detect the effectiveness of a new treatment (when it actually is effective) could lead to patients not receiving a beneficial treatment.

In summary, if we conclude that the mean is not greater than 47 when its true value is really greater than 47, we have made a Type II error, failing to reject the null hypothesis despite the alternative hypothesis being true.

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Suppose a government department would like to investigate the relationship between the cost of heating a home during the month of February in the Northeast and the home's square footage. The accompanying data set shows a random sample of 10 homes. Construct a 90% confidence interval to estimate the average cost in February to heat a Northeast home that is 2,500 square feet Click the icon to view the data table_ Determine the upper and lower limits of the confidence interval: UCL = $ LCL = $ (Round to two decimal places as needed:) Heating Square Heating Cost (S) Footage Cost (S) 340 2,430 460 300 2,410 330 310 2,040 390 250 2,230 340 310 2,350 380 Square Footage 2,630 2,210 3,120 2,540 2,940 Print Done

Answers

The 90% confidence interval for the average cost in February to heat a Northeast home that is 2,500 square feet is approximately $326.62 to $363.38.

To construct a 90% confidence interval to estimate the average cost in February to heat a Northeast home that is 2,500 square feet, we can use the following formula:

CI = x-bar ± (t * (s / √n))

Where:

CI = Confidence Interval

x-bar = Sample mean

t = t-score for the desired confidence level and degrees of freedom

s = Sample standard deviation

n = Sample size

From the data provided, we can calculate the necessary values:

Sample mean (x-bar) = (340 + 300 + 310 + 250 + 310 + 460 + 330 + 390 + 340) / 10 = 345.0

Sample standard deviation (s) = √[(∑(x - x-bar)²) / (n - 1)] = √[(6608.0) / (10 - 1)] ≈ 28.04

Sample size (n) = 10

Degrees of freedom (df) = n - 1 = 10 - 1 = 9

Next, we need to find the t-score for a 90% confidence level with 9 degrees of freedom.

Consulting a t-table or using software, the t-score is approximately 1.833.

Now, we can calculate the confidence interval:

CI = 345.0 ± (1.833 * (28.04 / √10))

CI = 345.0 ± (1.833 * (28.04 / √10))

CI = 345.0 ± 18.38

CI = (326.62, 363.38)

≈ $326.62 to $363.38.

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(d) How would you characterize the largest 5% of all concentration values? (i.c. if P(x>k)=5%, find k.) A normal variable X has an unknown mean and standard deviation =2. If the probability that X exc

Answers

The largest 5% of all concentration values can be characterized by finding the value of k, such that P(X > k) = 0.05. A normal variable X has an unknown mean and standard deviation = 2.

If the probability that X exceeds k is 0.05,find k.

Solution:  The probability density function of a normal variable X with an unknown mean μ and a standard deviation

σ = 2 is given by:

[tex]$$f(x) = \frac{1}{\sigma \sqrt{2 \pi}} \cdot e^{-\frac{(x-\mu)^2}{2 \sigma^2}}$$[/tex]

We can use the standard normal distribution tables to find the value of k such that P(X > k) = 0.05.

Since the standard deviation is 2,

we need to standardize X using the formula:

[tex]$$Z = \frac{X - \mu}{\sigma}$$So, we have:$$P(X > k) = P\left(Z > \frac{k - \mu}{\sigma}\right) = 0.05$$[/tex]

Using the standard normal distribution tables, we find that the value of z such that P(Z > z) = 0.05 is z = 1.645.

Substituting the values of σ = 2 and z = 1.645, we get:

[tex]$$\frac{k - \mu}{2} = 1.645$$$$k - \mu = 3.29$$[/tex]

Since we do not know the value of μ, we cannot find the exact value of k. However, we can say that the largest 5% of all concentration values is characterized by values of X that are 3.29 standard deviations above the mean (whatever the mean may be).

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Characteristics of the Sample Mean Sampling Distribution of the Mean Exercise Suppose a researcher wants to learn more about the mean attention span of individuals in some hypothetical population. The researcher cites that the attention span (the time in minutes attending to some task) in this population is normally distributed with the following characteristics: 20±36 (μ±o). Based on the parameters given in this example, answer the following questions: 1. What is the population mean (µ)? 2. What is the population variance (o)? 3. Sketch the distribution of this population. Make sure you draw the shape of the distribution and include the mean plus and minus three standard deviations. Now say this researcher takes a sample of four individuals (n=4) from this population to test whether the mean attention span in this population is really 20 min attending to some task. 4. What is the mean of the sampling distribution for samples of size 4 from this population? Note: The mean of the sampling distribution is μ. Answer: 5. What is the standard error for this sampling distribution? Note: The standard error of the sampling distribution is Answer: 6. Based on your calculations for the mean and standard error, sketch the sampling distribution of the mean taken from this population. Make sure you draw the shape of the distribution and include the mean plus and minus three standard errors. 7. If a researcher takes one sample of size 4 (n=4) from this population, what is the probability that he or she computes a sample mean of at least 23 (M-23) min? Note: You must compute the z transformation for sampling distributions, and then refer to the unit normal table to find the answer. Answer:

Answers

The population mean (µ) is as 20. The population variance (σ^2) is given as 36.

Sketch of the distribution: The distribution is normal, with the mean (20) at the center. We can draw a bell-shaped curve, with the mean plus and minus three standard deviations (mean ± 3σ) indicating the range that covers approximately 99.7% of the data.

The mean of the sampling distribution for samples of size 4 from this population is still µ, which is 20 in this case.

The standard error for this sampling distribution (SE) can be calculated using the formula SE = σ/√n, where σ is the population standard deviation and n is the sample size. In this case, the standard deviation (σ) is the square root of the population variance, so σ = √36 = 6. Therefore, the standard error is SE = 6/√4 = 6/2 = 3.

Sketch of the sampling distribution: Similar to the population distribution, the sampling distribution of the mean will be normal with the same mean (20) but with a smaller spread. We can draw a bell-shaped curve centered at the mean, and the range of mean ± three standard errors (mean ± 3SE) covers approximately 99.7% of the sample means.

To compute the probability of obtaining a sample mean of at least 23 (M ≥ 23), we need to calculate the z-score using the formula z = (X - µ)/SE, where X is the value of interest, µ is the population mean, and SE is the standard error. In this case, X = 23, µ = 20, and SE = 3.

Calculating the z-score: z = (23 - 20)/3 = 1.

To find the probability associated with a z-score of 1 or greater, we can refer to the unit normal table. The area under the normal curve to the right of z = 1 represents the probability of obtaining a sample mean of at least 23.

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In order to test a new drug for adverse reactions, the drug was administered to 1,000 tests subjects with the following results: 60 subjects reported that their only adverse reaction was a loss of appetite, 90 subjects reported that their only adverse reaction was a loss of sleep, and 80 subjects reported no adverse reactions at all. If this drug is released for general use, what is the probability that a person using the drug will Suffer a loss of appetite

Answers

The probability that a person using the drug will suffer a loss of appetite is 0.06 or 6%.

To calculate this probability, we use the formula:

Probability = Number of subjects who reported a loss of appetite / Total number of subjects who participated in the test.

In this case, the number of test subjects who reported that their only adverse reaction was a loss of appetite is 60, and the total number of subjects who participated in the test is 1000.

Using the formula, we can calculate the probability as follows:

Probability of loss of appetite = 60 / 1000 = 0.06

Therefore, the probability that a person using the drug will suffer a loss of appetite is 0.06 or 6%.

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find the slope of the tangent line to the polar curve at r = sin(4theta).

Answers

The slope of the tangent line to the polar curve at

`r = sin(4θ)` is:

`dy/dx = (dy/dθ)/(dx/dθ)`

at `r = sin(4θ)`= `(4cos(4θ)sin(θ) + sin(4θ)cos(θ)) / (4cos(4θ)cos(θ) - sin(4θ)sin(θ))`

To find the slope of the tangent line to the polar curve at

`r = sin(4θ)`,

we can use the polar differentiation formula, which is:

`dy/dx = (dy/dθ)/(dx/dθ)`

For a polar curve given by

`r = f(θ)`,

we can find

`(dy/dθ)` and `(dx/dθ)`

using the following formulas:

`(dy/dθ) = f'(θ)sin(θ) + f(θ)cos(θ)` and `(dx/dθ) = f'(θ)cos(θ) - f(θ)sin(θ)`

where `f'(θ)` represents the derivative of `f(θ)` with respect to `θ`.

For the given curve,

`r = sin(4θ)`,

we have

`f(θ) = sin(4θ)`.

So, we first need to find `f'(θ)` as follows:

`f'(θ) = d/dθ(sin(4θ)) = 4cos(4θ)`

Now, we can substitute

`f(θ)` and `f'(θ)` in the above formulas to get

`(dy/dθ)` and `(dx/dθ)`

:

`(dy/dθ) = f'(θ)sin(θ) + f(θ)cos(θ)``  = 4cos(4θ)sin(θ) + sin(4θ)cos(θ)`

and

`(dx/dθ) = f'(θ)cos(θ) - f(θ)sin(θ)``  = 4cos(4θ)cos(θ) - sin(4θ)sin(θ)

Now, we can find the slope of the tangent line using the polar differentiation formula:

`dy/dx = (dy/dθ)/(dx/dθ)`

at

`r = sin(4θ)`

So, the slope of the tangent line to the polar curve at

`r = sin(4θ)` is:

`dy/dx = (dy/dθ)/(dx/dθ)`

at `r = sin(4θ)`= `(4cos(4θ)sin(θ) + sin(4θ)cos(θ)) / (4cos(4θ)cos(θ) - sin(4θ)sin(θ))`

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for the equation t=sin^-1(a), state which letter represents the angle and which letter represents the value fo the trigonometric function.

Answers

The value of the trigonometric function sin a is given by a and has a domain of -1 to 1. The value of a is calculated by sin⁻¹(a), and the output is given in radians.

The letter "a" represents the value of the trigonometric function (sin a), and the letter "t" represents the angle in radians in the equation t = sin⁻¹(a).

The inverse sine function is known as the arcsine function. It is a mathematical function that allows you to calculate the angle measure of a right triangle based on the ratio of the side lengths. The ratio of the length of the side opposite to the angle to the length of the hypotenuse is a, the value of the sine function.

In mathematical terms, this is stated as sin a = opposite / hypotenuse.

The output of the arcsine function is an angle value that ranges from -π/2 to π/2.

The value of the trigonometric function sin a is given by a and has a domain of -1 to 1. The value of a is calculated by sin⁻¹(a), and the output is given in radians.

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Points: 0 of 1 Save The probability of a randomly selected adult in one country being infected with a certain virus is 0.004. In tests for the virus, blood samples from 17 people are combined. What is

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The probability that the combined sample tests positive for the virus is 0.068 or 6.8%. It is not unlikely for such a combined sample to test positive for the virus.

To calculate the probability that the combined sample tests positive for the virus, we can use the concept of the complement rule.

The probability that none of the 17 people have the virus can be calculated by taking the complement of the probability that at least one person has the virus.

The probability that an individual does not have the virus is 1 minus the probability that they do have it, which is 1 - 0.004 = 0.996.

Therefore, the probability that none of the 17 people have the virus is:

P(none have the virus) = (0.996)^17 ≈ 0.932

Now, using the complement rule, the probability that at least one person has the virus is:

P(at least one has the virus) = 1 - P(none have the virus) ≈ 1 - 0.932 ≈ 0.068

Therefore, the probability that the combined sample tests positive for the virus is 0.068 or 6.8%.

Since the probability is not extremely low, it is not unlikely for such a combined sample to test positive for the virus. However, it is still relatively low, indicating that the chances of at least one person in the sample having the virus are not very high.

The question should be:

The probability of a randomly selected adult in one country being infected with a certain virus is 0.004. In tests for the virus, blood samples from 17 people are combined. What is the probability that the combined sample tests positive for the virus. Is it unlikely for such a combined sample to test positive? Note that the combined sample tests positive if at least one person has the virus.

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2. (a. Two power functions are given. Simplify both functions.
f(x) = 5x³.x²
g(x) = (2x)S
(b) Which function grows faster? Explain how you know.
11/1
Both power functions from part a are graphed to the right. Label
each function on the graph. Explain how you know which is which.
19

Answers

Part a:

f(x) = 5x^3 * x^2 = 5x^5

g(x) = (2x)^8 = 2^8 * x^8 = 256x^8

Part b: Function g(x) grows faster. This is because it has a higher exponent (8 vs 5). The higher the exponent, the faster a power function grows.

Part c: Graph explanation:

The steeper curve is g(x) because it has the higher exponent. As a power function's exponent increases, its slope gets steeper.

Therefore, the gentler curve is f(x), which has the lower exponent of 5.

So in summary:

a) The simplified power functions are:

f(x) = 5x^5

g(x) = 256x^8

b) Function g(x) grows faster due to its higher exponent of 8 compared to f(x)'s exponent of 5.

c) On the graph:

The steeper curve is g(x), which has the higher exponent.

The gentler curve is f(x), which has the lower exponent.

Hope this explanation makes sense! Let me know if you have any other questions.

k-Nearest Neighbours with k=1 and Euclidean metric is performed
on a two-dimensional dataset. The training data is X_train =
[[1,1], [8,3], [2,6], [9,4], [7,2]]; Y = [0, 1, 2, 1, 3]. The test
data is

Answers

k-Nearest Neighbours is a machine learning algorithm that is used for both classification and regression tasks. In this algorithm, the k nearest data points to the target point are selected based on a similarity measure.

The output is then determined based on the majority class of the k nearest neighbours. If k=1, then the closest point to the target point is selected.The Euclidean metric is a distance metric that is used to measure the distance between two points. It is the most commonly used distance metric and is calculated as the square root of the sum of the squared differences between the coordinates of two points.

In the case of a two-dimensional dataset, the Euclidean distance between two points is calculated as:distance Now, let's perform k-Nearest Neighbours with k=1 and Euclidean metric on the given dataset.using k-Nearest Neighbours with k=1 and Euclidean metric. First, we need to calculate the distances between the test data point and all the training data points.

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Module 4: HW - Finding t and P vals (Try 2)
For questions 1-2:
Suppose we desire to perform the following two-sided
hypothesis test on the mean of a population (the variance is not
known):
H0: μ = μ
Question 1 Find ta/2n-1 for a confidence level of a= 0.10 -0.889 -0.560 -0.448 -0.028 0.662 1.796 2.590 4.080 4.919 6.964
Question 2 1 pts Suppose we have computed (from data) a test statistic to 1.1

Answers

The ta/2n-1 for a confidence level of a = 0.10 is 1.796.

The t-distribution is a mathematical function used in statistical inference to determine confidence intervals and test hypotheses. The student t-distribution, often referred to as the t-distribution, is a standard probability distribution that resembles the normal distribution.

T-distribution varies according to the degrees of freedom, which is calculated as (n-1). The value of ta/2n-1 is used for computing the t-distribution confidence intervals. It represents the percentage of the total area under the t-distribution curve beyond ta/2n-1.

The value of ta/2n-1 varies depending on the significance level of the distribution. When the significance level is lower, the value of ta/2n-1 increases, indicating a more conservative confidence interval, and vice versa. In this problem, we need to find ta/2n-1 for a confidence level of a = 0.10. From the t-distribution table, ta/2n-1 for a=0.10 is 1.796. Therefore, we can conclude that ta/2n-1 for a confidence level of a = 0.10 is 1.796.

ta/2n-1 for a confidence level of a= 0.10 is 1.796.

Question 2: Suppose we have computed (from data) a test statistic to 1.1.The P-value of the test statistic is greater than 0.05. Since the P-value is greater than the alpha level, which is 0.05, we fail to reject the null hypothesis. In other words, we do not have enough evidence to reject the claim that the mean of a population is equal to the hypothesized mean. Therefore, we can conclude that there is no significant difference between the mean of the population and the hypothesized mean.

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The random variables X and Y have the following joint probability distribution: Y p(x,y) -2 0 2 -2 0.1 0.1 0.15 X 0 0.1 0.15 0.05 2 0.15 0.15 0.05 The covariance between X and Y is: Number 4

Answers

The covariance between X and Y is 1.56. The expected values of X and Y and then use the following formula:

Cov(X, Y) = E[(X - E(X))(Y - E(Y))]

To calculate the covariance between random variables X and Y, we need to find the expected values of X and Y and then use the following formula:

Cov(X, Y) = E[(X - E(X))(Y - E(Y))]

Let's calculate the expected values first:

E(X) = (0)(0.1) + (0.1)(0.15) + (0.15)(0.05) + (2)(0.15) + (0.15)(0.05) = 0.05 + 0.015 + 0.0075 + 0.3 + 0.0075 = 0.38

E(Y) = (-2)(0.1) + (0)(0.1) + (2)(0.15) + (-2)(0.15) + (0)(0.15) = -0.2 + 0 + 0.3 - 0.3 + 0 = 0

Now we can calculate the covariance using the formula:

Cov(X, Y) = E[(X - E(X))(Y - E(Y))] = (0 - 0.38)(-2 - 0) + (0.1 - 0.38)(0 - 0) + (0.15 - 0.38)(2 - 0) + (0.05 - 0.38)(-2 - 0) + (2 - 0.38)(0 - 0) = (-0.38)(-2) + (-0.28)(0) + (-0.23)(2) + (-0.33)(-2) + (1.62)(0) = 0.76 + 0 + (-0.46) + 0.66 + 0 = 1.56

Therefore, the covariance between X and Y is 1.56.

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The following data are the semester tuition charges ($000) for a sample of private colleges in various regions of the United States. At the 0.05 significance level, can we conclude there is a difference in the mean tuition rates for the various regions? C=3, n=28, SSA=85.264, SSW=35.95. The value of Fα, c-1, n-c

2.04

1.45

1.98.

3.39

Answers

The calculated F-value (7.492) is greater than the critical value of F (3.39), we reject the null hypothesis and conclude that there is evidence of a difference in the mean tuition rates for the various regions at the 0.05 significance level.

To test whether there is a difference in the mean tuition rates for the various regions, we can use a one-way ANOVA (analysis of variance) test.

The null hypothesis is that the population means for all regions are equal, and the alternative hypothesis is that at least one population mean is different from the others.

We can calculate the test statistic F as follows:

F = (SSA / (C - 1)) / (SSW / (n - C))

where SSA is the sum of squares between groups, SSW is the sum of squares within groups, C is the number of groups (in this case, C = 3), and n is the total sample size.

Using the given values:

C = 3

n = 28

SSA = 85.264

SSW = 35.95

Degrees of freedom between groups = C - 1 = 2

Degrees of freedom within groups = n - C = 25

The critical value of Fα, C-1, n-C at the 0.05 significance level is obtained from an F-distribution table or calculator and is equal to 3.39.

Now, we can compute the test statistic F:

F = (SSA / (C - 1)) / (SSW / (n - C))

= (85.264 / 2) / (35.95 / 25)

= 7.492

Since the calculated F-value (7.492) is greater than the critical value of F (3.39), we reject the null hypothesis and conclude that there is evidence of a difference in the mean tuition rates for the various regions at the 0.05 significance level.

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find the coordinate vector [x]b of the vector x relative to the given basis b.

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The coordinate vector [x]b of the vector x = (5,6) relative to the given basis b = {(1,2),(3,4)} is (-3/2, 1/2).

The coordinate vector [x]b of the vector x relative to the given basis b can be found using the formula [x]b = A^(-1)x, where A is the matrix whose columns are the basis vectors expressed in the standard basis. The vector x is expressed in the standard basis.

To understand in better way let us take an example where we have a basis b = {(1,2),(3,4)} and a vector x = (5,6) that we want to express in the basis b.

First, we need to form the matrix A whose columns are the basis vectors in the standard basis. So, we have A = [1 3; 2 4]. Now, we need to find the inverse of A, which is A^(-1) = [-2 3; 1 -1]/2.

Next, we need to multiply A^(-1) with the vector x to obtain the coordinate vector [x]b. So, we have [x]b = A^(-1)x = [-2 3; 1 -1]/2 * (5,6) = (-3/2, 1/2). Therefore, the coordinate vector [x]b of the vector x = (5,6) relative to the given basis b = {(1,2),(3,4)} is (-3/2, 1/2).

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Other Questions
On 1 January 20X5, Scott Ltd gained control of Hagen Ltd by acquiring 70% of its shares for $350 000. At this date, Hagen had share capital of $320 000 and retained profits of $40 000. All assets and liabilities of Hagen were recorded at their fair values. Below is an extract of financial information of both entities as at 31 December 20X6, the end of the current financial year (FY20X6): Scott Ltd Hagen Ltd Net profit 240 000 79 000 Retained profits (opening) 150 000 65 000 Profit available 390 000 144 000 less Dividend paid 120 000 50 000 Retained profits (ending) 270 000 94 000 Share capital 450 000 320 000 Owners equity 720 000 414 000 Additional information: The partial goodwill method is used. Hagen paid dividends in FY20X6. During FY20X6, Scott sold inventories to Hagen for $19 000. The inventories originally cost Scott $9 000. 60% of the inventories were sold by Hagen to external parties as at 31 December 20X6. Hagen sold a vehicle to Scott on 1 January 20X6 for $69 000. The vehicle originally cost Hagen $100 000 and had a zero residual value. Hagen depreciated the vehicle at the rate of 20% p.a. using the straight-line method. The vehicle was 2 years old at the time of the intragroup sale. The vehicles residual value and useful life were not affected by the sale. Scott depreciates the vehicle also using the straight-line method. Required: a) Prepare all the necessary consolidation journal entries at 31 December 20X6. b) Which intragroup transactions did the parent entity (Scott) make a profit from? Do you need to deduct the amount from the subsidiary (Hagen)'s equity before calculating the NCI share of its equity? c) Which intragroup transactions did the subsidiary (Hagen) make a profit from? Do you need to deduct the amount from the subsidiary (Hagen)'s equity before calculating the NCI share of its equity? d) Calculate the NCI allocation for the following equity items of Hagen for the year ended 31 December 20X6. Show workings. 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