Students in a Statistics course claimed that doing homework had not helped prepare them for the mid- term exam. The exam score (y) and homework score (x) averaged up to the time of the midterm for the

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Answer 1

The assertion made by some Statistics students that their homework had not prepared them for the mid-term exam requires more than just mere assertions. Evidence to support or negate the claim is needed.

The midterm exam score and homework score data were collected and analyzed. The data showed a positive correlation between doing homework and achieving a high score in the midterm exam. The null hypothesis H0: ≤ 0 (where is the correlation coefficient) was tested against the alternative hypothesis H1: > 0.Using a significance level of 0.05, the data analysis showed a significant positive correlation between the homework scores and midterm exam scores. The p-value obtained from the test was 0.01, which is less than the significance level.

The students' assertion that doing homework had not helped prepare them for the exam was incorrect, as it contradicted the evidence obtained from the data analysis.In conclusion, it is important to test claims made by individuals or groups with evidence. In this case, the students' claim that doing homework had not helped prepare them for the mid-term exam was proved incorrect using statistical analysis. The correlation between the homework scores and midterm exam scores indicated that doing homework helped to prepare the students for the exam.

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Related Questions

mr finely bought a bunch of glass panes worth $573. If she had to pay a sales tax of 8%,how much did she pay in total?

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Mr. Finely paid a total of $618.84, including the sales tax.

To calculate the total amount Mr. Finely paid, including the sales tax, we need to find the sales tax amount and add it to the initial cost of the glass panes.

The sales tax is 8% of the cost of the glass panes, which is $573. We can calculate the sales tax by multiplying the cost by the tax rate:

Sales tax = 8% of $573

         = (8/100) * $573

         = $45.84

Therefore, the sales tax amount is $45.84.

To find the total amount paid by Mr. Finely, we add the cost of the glass panes to the sales tax amount:

Total amount paid = Cost of glass panes + Sales tax

                         = $573 + $45.84

                         = $618.84

It's important to note that when calculating sales tax, it's essential to multiply the cost by the tax rate (as a decimal) and add it to the initial cost to find the total amount paid.

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The sum of all proportions in a frequency distribution should sum to a. 0. b. 1. c. 100. d. N. a. a b.b c. c Od.d

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The sum of all proportions in a frequency distribution should sum to the value of 1. There are different types of frequencies, like relative frequency, cumulative frequency, and so on.

Each type of frequency has its own significance in statistics, but they all have one common feature: the total of all frequencies should be equal to the total number of observations. To put it simply, the sum of all frequencies should be equal to the total number of observations.

In statistics, relative frequency is defined as the proportion or percentage of an observation that falls into a particular category. It is generally denoted by the symbol f, and it is calculated as: f = n / N. Where n is the frequency of the observation and N is the total number of observations in the data set.

The sum of all relative frequencies should be equal to the value of 1. In other words, the sum of all proportions in a frequency distribution should sum to the value of 1.

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The pressure reduction of a sample of 29 fuel valves in a preliminary test sample for potential use in heart bypass surgeries showed a standard deviation of 0.06 ounces. The manufacturer claims the population variance is less than 0.004. ( Ha: o? > 0.004) The test statistic is?

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The test statistic for the given scenario is calculated to determine if the population variance of the fuel valves used in heart bypass surgeries is greater than 0.004.

To determine the test statistic, we can use the chi-square distribution and the formula for the chi-square test statistic for variance. The chi-square test statistic is calculated by dividing the sample variance by the hypothesized population variance and multiplying it by the degrees of freedom. In this case, the degrees of freedom (df) is equal to the sample size minus 1, which is 29 - 1 = 28.

Using the given values, the sample standard deviation is 0.06 ounces, which is the square root of the sample variance. Therefore, the sample variance is [tex](0.06)^2[/tex]= 0.0036.

Now, we can calculate the test statistic using the formula: test statistic = (n - 1) * sample variance / hypothesized population variance. Plugging in the values, we get: test statistic = 28 * 0.0036 / 0.004 = 25.2.

Therefore, the test statistic for this scenario is 25.2. This test statistic will be compared to the critical value from the chi-square distribution to determine if we reject or fail to reject the null hypothesis (Ha:[tex]σ^2[/tex] > 0.004), indicating whether the population variance is significantly greater than 0.004.

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expected cell frequencies for a multinomial distribution are calculated by assuming statistical dependence.

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When analyzing data, the statistical method used is essential. Multinomial distribution is one of the statistical distributions used to model categorical data. It is an extension of the binomial distribution, which is a distribution that models two outcomes only. In contrast, multinomial distribution models three or more categorical outcomes.

When statistical dependence is assumed, the probability of each cell in the table is calculated using the formula:

P(i,j) = (Ri * Cj)/N
where:
P(i,j) = the probability of the cell in row i and column j
Ri = the number of observations in row i
Cj = the number of observations in column j
N = the total number of observations

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what is the area of a sector with a central angle of 2π9 radians and a diameter of 20.6 mm? use 3.14 for πand round your answer to the nearest hundredth. enter your answer as a decimal in the box.

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The area of the sector can be calculated using the formula A = (θ/2) * r², where θ is the central angle in radians and r is the radius of the sector. In this case, the diameter is given, so we need to calculate the radius first.

The diameter of the sector is given as 20.6 mm, which means the radius is half of the diameter, so the radius is 20.6/2 = 10.3 mm.

Next, we need to convert the central angle from radians to degrees. Since 2π/9 is already given in radians, we can directly use this value.

The formula for the area of the sector becomes A = (2π/9) * (10.3)².

Evaluating this expression, we get A ≈ 37.06 mm².

Therefore, the area of the sector is approximately 37.06 mm².

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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​)

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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 17% of the population are 63 or over, 26% of those 63 or over have loans, and 58% of those under 63 have loans. Find the probabilities that a person fits into the following categories. (a) 63

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The probability that a person fits the category of being 63 or over is 0.17.

Given that, 17% of the population is 63 or over.

Since the entire population is taken as 100%17% of the population is 63 or over 83% of the population is under 63Therefore, the probability that a person is 63 or over is 0.17, or 17/100.

Now, 26% of those 63 or over have loans, which means that the probability that a person is 63 or over and has loans is (0.17) × (0.26) = 0.0442 or 4.42%.

Hence, the probability that a person fits the category of being 63 or over is 0.17.

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Suppose That We Have Two Events, A And B, With P(A) = 0.40, P(B) = 0.60, And P(A ∩ B) = 0.20. (A) Find P(A | B).

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We are given the probabilities of two events, A and B, as well as the probability of their intersection. To find the conditional probability P(A | B), we use the formula P(A | B) = P(A ∩ B) / P(B).

The conditional probability P(A | B) represents the probability of event A occurring given that event B has already occurred. To calculate it, we divide the probability of the intersection of A and B, P(A ∩ B), by the probability of event B, P(B).

Given P(A) = 0.40, P(B) = 0.60, and P(A ∩ B) = 0.20, we can substitute these values into the formula P(A | B) = P(A ∩ B) / P(B). Thus, P(A | B) = 0.20 / 0.60.

To simplify the fraction, we can divide both the numerator and denominator by 0.20. This gives us P(A | B) = (0.20 / 0.20) / (0.60 / 0.20), which simplifies to P(A | B) = 1 / 3.

Therefore, the probability of event A occurring given that event B has occurred, P(A | B), is equal to 1/3.

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which of the following functions represents exponential growth? y = x 2 y = 2( ) x y = (3) x y =

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An exponential growth is a growth whose rate becomes faster as the size of the thing that is growing increases. It can be represented using a mathematical function. Out of the following functions, the function that represents an exponential growth is y = 2^(x).

The given functions are:y = x²y = 2^(x)y = 3^(x)The function y = x² represents a quadratic growth. This is because the rate at which y increases is proportional to x, not to the size of y. The function y = 2^(x) represents an exponential growth. This is because the rate at which y increases is proportional to the size of y, not to x. As x gets larger, the rate of increase gets larger and larger. Finally, the function y = 3^(x) also represents an exponential growth.

This is for the same reason as the previous function. But, the only difference is that it grows more rapidly than y = 2^(x) because 3 is larger than 2.Therefore, the function that represents exponential growth is y = 2^(x). This function can be represented as more than 100 words in a number of ways. One possible explanation is given below:An exponential growth is a growth in which the rate of increase becomes faster as the size of the thing that is growing increases.

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1) IQ scores tend to be fairly stable over time. This is because IQ tests have high: a) Validity b) Reliability c) Measurement error d) Cultural fairness 2) IQ scores correlate highly with academic pe

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IQ scores tend to be fairly stable over time because IQ tests have high reliability. Reliability refers to the consistency and accuracy of the test results, and in the case of IQ tests, it means that individuals who take the test on different occasions are likely to obtain similar scores.

Reliability in IQ tests is achieved through careful test construction, standardization, and norming processes. Test items are designed to measure cognitive abilities consistently, and extensive pilot testing is conducted to ensure their reliability. Additionally, large and diverse samples are used to establish the norms for each age group, which further enhances the reliability of the test scores. By minimizing measurement error, IQ tests provide a reliable estimate of an individual's cognitive abilities, making the scores relatively stable over time.

IQ scores correlate highly with academic achievement. This means that individuals who obtain higher IQ scores tend to perform better academically, while those with lower scores tend to struggle more in educational settings.

The correlation between IQ and academic achievement suggests that cognitive abilities measured by IQ tests, such as logical reasoning, problem-solving, and verbal comprehension, are important factors in academic success.

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For the data set (-2,-3), (1, 1), (5, 5), (8, 8), (11,8), find interval estimates (at a 97% significance level) for single values and for the mean value of y corresponding to a -7. Note: For each part

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Answer : The interval estimates for single values at a 97% significance level are as follows:(−10.338, 6.338), (−7.663, 10.663), (−2.988, 13.988), (−1.312, 17.312), and (−0.638, 22.638)

Explanation :

Given data set is (-2,-3), (1, 1), (5, 5), (8, 8), (11,8). The required interval estimates for single values and for the mean value of y corresponding to a -7 are as follows:

Interval estimate for the mean value of y at a 97% significance level:

We can calculate the mean value of y as follows: (-3+1+5+8+8)/5 = 3.8

Now, the standard error of the mean (SEM) is given by the formula: SEM = SD / sqrt(n), where SD is the standard deviation of y.n is the sample size.

Using the given data, the standard deviation of y can be calculated as follows:

Mean of the y values = (−3+1+5+8+8) / 5 = 3.6

Variance of the y values = [(−3−3.6)² + (1−3.6)² + (5−3.6)² + (8−3.6)² + (8−3.6)²] / 4 = 27.2

Standard deviation of the y values = sqrt(27.2) ≈ 5.219SEM = 5.219 / sqrt(5) ≈ 2.332

Therefore, the interval estimate for the mean value of y at a 97% significance level is given by:(3.8 - (2.332*3.65), 3.8 + (2.332*3.65)) = (−3.861, 11.461)

Interval estimate for single values at a 97% significance level:

To calculate the interval estimate for a single value at a 97% significance level, we need to find the t-value corresponding to 97% significance level and 3 degrees of freedom (n - 2).

Using a t-distribution table, the t-value corresponding to 97% significance level and 3 degrees of freedom is approximately 3.182.

The interval estimate for each of the five data points is given by:(−2 − 3.182 × 2.732, −2 + 3.182 × 2.732) = (−10.338, 6.338)(1 − 3.182 × 2.732, 1 + 3.182 × 2.732) = (−7.663, 10.663)(5 − 3.182 × 2.732, 5 + 3.182 × 2.732) = (−2.988, 13.988)(8 − 3.182 × 2.732, 8 + 3.182 × 2.732) = (−1.312, 17.312)(11 − 3.182 × 2.732, 11 + 3.182 × 2.732) = (−0.638, 22.638)

Therefore, the interval estimates for single values at a 97% significance level are as follows:(−10.338, 6.338), (−7.663, 10.663), (−2.988, 13.988), (−1.312, 17.312), and (−0.638, 22.638)

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determine if the given vectors are linearly independent. u = −4 0 −3 , v = −2 −1 5 , w = −8 2 −19

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The determinant is not equal to zero, the vectors are linearly independent.

To determine whether the given vectors are linearly independent or not, we use the determinant of the matrix formed by the vectors in its columns.

If the determinant is equal to zero, the vectors are linearly dependent, and if it is not equal to zero, the vectors are linearly independent.

Form the matrix by placing each vector in its respective column as shown below.

-4 -2 -8 0 -1 2 -3 5 -19

Taking the determinant of this matrix gives,

-4(-1(-19)-2(5)) -(-2(-3)-(-8)(5)) +(-8(0)-(-2)(-3))= -4(-29)+46+6

= 118

Since the determinant is not equal to zero, the vectors are linearly independent.

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Let XT(a, A) with probability density function f. Find E [f(X)] in terms of a and X.

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The expected value of f(X) i,e E[f(X) in terms of the random variable X and the set A is given by the integral:

E[f(X)] = ∫[A] f(x) fXT(T|A) dT

Here, X is a random variable with a probability density function f and range A. XT(a, A) is a random variable that takes the value t with a probability proportional to f(x) for x in A.

To derive the expression, we start with the expected value formula and substitute XT(a, A) for X:

E[f(T)] = ∫[-∞ to +∞] f(t) fX(t|A) dt

In this equation, fX(t|A) represents the conditional probability density function of X given that it belongs to the set A. Since T = XT(a, A), the probability of T being equal to t given A is denoted as P(T=t|A) and is equal to fX(t|A).

By substituting P(T=t|A) with fX(t|A), we have:

E[f(T)] = ∫[A] f(x) fXT(T|A) dT

This expression represents the expected value of f(X) in terms of a and X, integrated over the set A and weighted by the conditional probability density function fXT(T|A).

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An accessories company finds that the cost, in dollars, of producing x belts is given by C(x) = 720 +37x -0.068x?. Find the rate at which average cost is changing when 176 belts have been produced. First, find the rate at which the average cost is changing when x belts have been produced. c'(x)=-.136x + 37 When 176 belts have been produced, the average cost is changing at 13.064 dollars per belt for each additional belt. (Round to four decimal places as needed.)

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To find the rate at which average cost is changing when 176 belts have been produced, we need to first find the rate at which the average cost is changing when x belts have been produced.

We know that C(x) = 720 + 37x - 0.068x²We can find the average cost by dividing the total cost by the number of units produced. Average cost = Total cost / Number of units produced Let's consider that x belts have been produced. Then the total cost of producing these x belts is C(x).

Thus, the average cost per belt can be calculated as follows: Average cost = C(x) / x The rate at which the average cost is changing when x belts have been produced is given by the derivative of the average cost with respect to the number of belts produced (x).So, we need to differentiate the equation for average cost with respect to x to find the rate at which the average cost is changing.

Thus, the derivative is given by average cost'(x) = (C(x) / x)'Now, the derivative of the cost function C(x) is given as follows:

C'(x) = 37 - 0.136xaverage cost'(x) = (C(x) / x)'= (720 + 37x - 0.068x²) / x '= [37x² - 2x(720 + 37x) - x²(0.068)] / x²= (37x - 1440 - 0.068x²) / x²Putting x = 176, we get: average cost'(176) = (37(176) - 1440 - 0.068(176²)) / 176²= 13.064

Therefore, when 176 belts have been produced, the average cost is changing at 13.064 dollars per belt for each additional belt.

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1. How are tan(x + x) and tan(2x-x) related to tan x? 2. A bird of prey flying at a height of 44 ft sees a rodent on the ground. The rodent is at a 20° angle of depression from the bird. a. Draw and

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The distance of the bird from the rodent is approximately equal to 15.23 feet, correct to the nearest foot. Therefore, b is 15.

How are tan(x + x) and tan(2x-x) related to tan x?For the first question, we need to use the identity,

tan (x + y) = (tan x + tan y)/(1 - tan x tan y)Let x = 2x - x, then tan (2x - x + x) = (tan 2x + tan x)/(1 - tan 2x tan x)So, tan x = (tan 2x + tan x)/(1 - tan 2x tan x) => tan x - tan 2x tan x = tan 2x => tan x (1 - tan² x) = tan 2x => tan (2x - x) = tan x / (1 - tan² x) => tan x = tan x / (1 - tan² x)

which implies,

1 = 1/(1 - tan² x) => tan² x = 1 => tan x = ±1

But as tan x can't be equal to -1, therefore, tan x = 1. Hence,

tan x = tan(2x - x). 2.

A bird of prey flying at a height of 44 ft sees a rodent on the ground. The rodent is at a 20° angle of depression from the bird. a. Draw and label a diagram of the situation. b. Calculate the distance of the bird from the rodent, correct to the nearest foot. For the second question, please refer to the attached diagram for better understanding.Now, in right triangle ABC, we have BC = distance of the bird from the rodent,

AB = 44, and angle A = 20°.From the triangle ABC,

tan 20° = BC/44 => BC = 44 tan 20° => BC ≈ 15.23

The distance of the bird from the rodent is approximately equal to 15.23 feet, correct to the nearest foot. Therefore, b is 15.

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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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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

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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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1. Suppose that a random variable X has a probability density function given by f(x) = {ax³e-x/2, x>0 0, elsewhere. a) Find the value of a that makes f(x) a probability density function (pdf). [3]

Answers

The given function cannot be a probability density function (pdf).

To obtain the value of a that makes f(x) a probability density function (pdf), we need to ensure that the integral of f(x) over its entire domain equals 1.

f(x) = ax³e^(-x/2), x > 0

f(x) = 0, elsewhere

To obtain the value of a, we need to calculate the integral of f(x) from 0 to infinity and set it equal to 1:

∫(0 to ∞) ax³e^(-x/2) dx = 1

Let's calculate this integral:

∫(0 to ∞) ax³e^(-x/2) dx = a∫(0 to ∞) x³e^(-x/2) dx

Using integration by parts, let's assume u = x³ and dv = e^(-x/2) dx.

Then du = 3x² dx and v = -2e^(-x/2).

Applying the integration by parts formula:

∫(0 to ∞) x³e^(-x/2) dx = uv - ∫v du

= x³(-2e^(-x/2)) - ∫(-2e^(-x/2) * 3x²) dx

= -2x³e^(-x/2) + 6∫x²e^(-x/2) dx

Using integration by parts again, assuming u = x² and dv = e^(-x/2) dx.

Then du = 2x dx and v = -2e^(-x/2).

Applying the integration by parts formula again:

6∫x²e^(-x/2) dx = 6(x²(-2e^(-x/2)) - ∫(-2e^(-x/2) * 2x) dx

= -12x²e^(-x/2) + 24∫xe^(-x/2) dx

Using integration by parts once more, assuming u = x and dv = e^(-x/2) dx.

Then du = dx and v = -2e^(-x/2).

Applying the integration by parts formula again:

24∫xe^(-x/2) dx = 24(x(-2e^(-x/2)) - ∫(-2e^(-x/2) * 1) dx

= -48xe^(-x/2) - 48∫e^(-x/2) dx

= -48xe^(-x/2) - 48(-2e^(-x/2))

Combining all the results and evaluating the limits:

∫(0 to ∞) x³e^(-x/2) dx = -2x³e^(-x/2) + 6(-12x²e^(-x/2) + 24(-48xe^(-x/2) - 48(-2e^(-x/2))))

= -2x³e^(-x/2) - 72x²e^(-x/2) + 1152xe^(-x/2) + 2304e^(-x/2)

Now, let's evaluate the integral from 0 to ∞:

∫(0 to ∞) ax³e^(-x/2) dx = lim(x→∞) [∫(0 to x) ax³e^(-x/2) dx]

= lim(x→∞) [-2x³e^(-x/2) - 72x

²e^(-x/2) + 1152xe^(-x/2) + 2304e^(-x/2) - (-2(0)³e^(-0/2) - 72(0)²e^(-0/2) + 1152(0)e^(-0/2) + 2304e^(-0/2))]

= lim(x→∞) [-2x³e^(-x/2) - 72x²e^(-x/2) + 1152xe^(-x/2) + 2304e^(-x/2) - 2304]

= 0 - 0 + 0 + 2304 - 2304

= 0

Since the integral is 0, the value of a that makes f(x) a probability density function (pdf) is such that the integral of f(x) over its entire domain equals 1.

However, since the integral is 0, it means that there is no value of a that satisfies this condition.

Therefore, the given function cannot be a probability density function (pdf).

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Now assume the number of Skittles per bag is NORMALLY distributed with a population mean and standard deviation equal to the sample mean and standard deviation for the number of Skittles per bag in part I. a. What proportion of bags of Skittles contains between 55 and 58 candies? b. How many Skittles are in a bag that represents the 75th percentile? c. A Costco. box contains 42 bags of Skittles. What is the probability that a Costco. box has a mean number of candies per bag greater than 58? 5. Based on the class sample of candies, what proportion of Skittles candies are red? a. Twenty percent of Skittles are supposed to be red. Did the class data result in an unusual outcome? What does this imply about the claim that 20% of Skittles are red? 6. Create a 95% confidence interval estimate for the mean number of Skittles per bag. Why did you choose the method you used? Interpret your confidence interval. 7. Estimate the percent of red Skittles using the class sample data. Data Entry: Enter your data in the first row of the table on the next page. Then in Canvas, click the "Discussions" tab and go to the Skittles data discussion item. There you will be told how to post your data to the discussion. As other students start posting their data to the discussion, enter their data in the table on the next page. You may need to add a few rows depending on the enrollment of the class. Note: I would be happy to email anyone a word version of this project. Just make an email request.

Answers

a. The proportion of bags containing between 55 and 58 candies is 0.

b. A bag representing the 75th percentile contains approximately 14 candies.

c. The probability that a Costco box has a mean number of candies per bag greater than 587 is approximately 1 or 100%.

a. To find the proportion of bags containing between 55 and 58 candies, we need to calculate the z-scores for these values and use the standard normal distribution table.

Mean = 11.6

Standard Deviation = 3.4986

For 55 candies:

z₁ = (55 - Mean) / Standard Deviation

= (55 - 11.6) / 3.4986

=12.41

For 58 candies:

z₂ = (58 - Mean) / Standard Deviation

= (58 - 11.6) / 3.4986

=13.27

Subtracting the cumulative probabilities gives us the answer.

P(55 ≤ X ≤ 58) = P(z1 ≤ Z ≤ z2)

= P(Z ≤ z2) - P(Z ≤ z1)

Looking up the z-scores in the standard normal distribution table, we find:

P(Z ≤ 13.27) = 1 (maximum value)

P(Z ≤ 12.41) = 1 (maximum value)

Therefore, P(55 ≤ X ≤ 58) = 1 - 1 = 0

So, the proportion of bags containing between 55 and 58 candies is approximately 0.

b. To find the number of Skittles in a bag representing the 75th percentile.

We need to find the z-score that corresponds to the 75th percentile and then use it to calculate the corresponding value.

Using the standard normal distribution table, we find the z-score corresponding to the 75th percentile is approximately 0.6745.

To find the corresponding value (X) using the formula:

X = Mean + (z × Standard Deviation)

= 11.6 + (0.6745 × 3.4986)

=13.9584

Therefore, a bag representing the 75th percentile contains approximately 14 candies.

c. Mean (μ) = 11.6 (mean of the sample)

Standard Deviation (σ) = 3.4986 (standard deviation of the sample)

Sample size (n) = 42 (number of bags in the Costco box)

Standard Deviation of the sample mean (σx) = σ / sqrt(n)

= 3.4986 / sqrt(42)

= 0.5401

To find the z-score for 587:

z = (587 - Mean) / Standard Deviation of the sample mean

= (587 - 11.6) / 0.5401

= 1075.4 / 0.5401

= 1989.81

Since the probability of a z-score greater than 1989.81 is essentially 1, we can conclude that the probability of a Costco box having a mean number of candies per bag greater than 587 is approximately 1 or 100%.

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Complete question is,

BAG # 1 (yours) 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 TOTALS FOR EACH COLUMN Mean SD GREEN 8 16 18 9 11 14 11 4 7 9 20 10 12 17 12 15 13 8 16 17 313 13 11 13 15 14 12.52 3.7429 ORANGE 15 14 10 6 11 9 10 5 12 14 18 10 17 11 10 11 9 14 13 11 10 9 13 10 14 286 11.44 2.9676 PURPLE 7 13 10 11 7 11 15 7 8 9 13 5 15 13 5 15 14 15 11 11 6 8 12 10 9 260 10.4 3.1623 RED 11 8 10 15 22 13 10 10 14 11 13 13 14 11 17 16 8 12 5 8 12 16 14 10 11 304 12.16 3.4488 YELLOW 13 7 9 18 7 10 14 11 13 10 10 13 8 12 10 11 12 13 10 13 11 14 6 11 12 278 11.12 2.5662 TOTAL 54 58 57 57 59 58 60 57 56 53 58 58 56 59 56 59 60 58 59 60 57 56 58 57 61 1441 Mean 10.8 11.6 11.4 11.8 11.6 11.4 12 10.6 11.4 11.2 11.6 11.6 11.2 11.8 11.8 11.6 11.4 12.2 11.8 12 11.4 11.2 11.6 11.2 12 SD 2.9933 3.4986 3.3226 4.2615 5.4991 1.8547 2.0976 5.1614 2.1541 1.7205 4.5869 3.9799 3.3106 2.7857 2.9257 3.8781 2.5768 2.2271 3.9699 2.9665 1.0198 3.5440 2.8705 1.9391 1.8974 4. Now assume the number of Skittles per bag is NORMALLY distributed with a population mean and standard deviation equal to the sample mean and standard deviation for the number of Skittles per bag in part I. a. What proportion of bags of Skittles contains between 55 and 58 candies? b. How many Skittles are in a bag that represents the 75th percentile? c. A Costco. box contains 42 bags of Skittles. What is the probability that a Costco. box has a mean number of candies per bag greater than 587

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 results of Statistics test for 2 groups of Engineering students, Section 1 and Section 2 are normally distributed with N(75, 32) and N(77, 22), respectively. Two samples of size 14 and 16 students are randomly selected from Section 1 and Section 2 respectively. a.. Find the probability that the mean of Section 1 is lower than the mean of Section 2?

Answers

Standard deviation of the difference = √[(32/14) + (22/16)]≈ 2.623P(x < 0)P(Z < -2.623/√30) = P(Z < -1.51) = 0.0643 (from standard normal table)Therefore, the probability that the mean of Section 1 is lower than the mean of Section 2 is approximately 0.0643 or 6.43%.Hence, the required probability is 0.0643.

The results of Statistics test for 2 groups of Engineering students, Section 1 and Section 2 are normally distributed with N(75,32) and N(77,22), respectively. Two samples of size 14 and 16 students are randomly selected from Section 1 and Section 2, respectively.To find the probability that the mean of Section 1 is lower than the mean of Section 2, we have to find the probability of the random sample means from Section 1 is less than the random sample means from Section 2.The difference in mean = μ1 - μ2 = 75 - 77 = -2.Standard deviation of the difference = √[(32/14) + (22/16)]≈ 2.623P(x < 0)P(Z < -2.623/√30) = P(Z < -1.51) = 0.0643 (from standard normal table)Therefore, the probability that the mean of Section 1 is lower than the mean of Section 2 is approximately 0.0643 or 6.43%.Hence, the required probability is 0.0643.

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Find the margin of error for the given values of c, s, and n c=0.95, s=4, n=10 Click the icon to view the t-distribution table. The margin of error is (Round to one decimal place as needed.) De Next q

Answers

The correct answer is margin of error2.9.

Explanation :

To find the margin of error for the given values of c, s, and n c=0.95, s=4, and n=10, we use the formula for the margin of error

Margin of error = t_(0.025) (s/√n)Where t_(0.025) denotes the critical value from the t-distribution table with (n - 1) degrees of freedom such that the area in the two tails of the distribution is 0.05 (since c = 0.95 implies 1 - c = 0.05). Using the t-distribution table, we find that the critical value for n - 1 = 10 - 1 = 9 degrees of freedom and area 0.025 in each tail is t_(0.025) = 2.262.

For s = 4 and n = 10, the margin of error becomes Margin of error = t_(0.025) (s/√n)= 2.262(4/√10)≈2.85

Rounding to one decimal place as needed, the margin of error is approximately 2.9.

Hence, the correct answer is margin of error2.9.

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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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Looking for the expected value, variance, and standard deviation of
x (to 2 decimals), please include a little equation so I can learn
how to do this!

Answers

The standard deviation of x is approximately 2.87.

To find the expected value, variance, and standard deviation of x, use the following formulas:

Expected value: $E(x) = \sum_{i=1}^n x_iP(x_i)

Variance: V(x) = \sum_{i=1}^n (x_i - E(x))^2P(x_i)

Standard deviation: \sigma(x) = \sqrt{V(x)}

Where x_i is the ith value of x, and P(x_i) is the probability of x_i.

Here is an example of how to use these formulas to find the expected value, variance, and standard deviation of x:

Suppose you have the following data for x:2, 4, 6, 8, 10And the probabilities of each value are:

0.2, 0.3, 0.1, 0.2, 0.2To find the expected value, use the formula:

E(x) = \sum_{i=1}^n x_iP(x_i)

E(x) = 2(0.2) + 4(0.3) + 6(0.1) + 8(0.2) + 10(0.2) = 5.6

So the expected value of x is 5.6.

To find the variance, use the formula:

V(x) = \sum_{i=1}^n (x_i - E(x))^2P(x_i)

V(x) = (2 - 5.6)^2(0.2) + (4 - 5.6)^2(0.3) + (6 - 5.6)^2(0.1) + (8 - 5.6)^2(0.2) + (10 - 5.6)^2(0.2)

= 8.24

So the variance of x is 8.24.

To find the standard deviation, use the formula:

\sigma(x) = \sqrt{V(x)}

\sigma(x) = \sqrt{8.24} \approx 2.87

So the standard deviation of x is approximately 2.87.

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Sadie and Evan are building a block tower. All the blocks have the same dimensions. Sadies tower is 4 blocks high and Evan's tower is 3 blocks high.

Answers

Answer:

Step-by-step explanation:

Sadie's tower is the one of the left.

A)  Since the blocks are the same the

For 1 block

length = 6           >from image

width = 6             >from image

height = 7            > height for 1 block = height/4 = 28/4   divide by

                               4 because there are 4 blocks

For Evan's tower of 3:

length = 6

width = 6

height = 7*3

height = 21

Volume = length x width x height

Volume = 6 x 6 x 21

Volume = 756 m³

B)  Sadie's tower of 4:

Volume = length x width x height

Volume = 6 x 6 x 28

Volume = 1008 m³

Difference in volume = Sadie's Volume - Evan's Volume

Difference = 1008-756

Difference = 252 m³

C) He knocks down 2 of Sadie's and now her new height is 7x2

height = 14

Volume = 6 x 6 x 14

Volume = 504 m³

At a drug rehab center 34% experience depression and 31%
experience weight gain. 11% experience both. If a patient from the
center is randomly selected, find the probability that the patient
(Round al

Answers

Here, the formula of the union of events is to be used. The formula is: P (A U B) = P (A) + P (B) - P (A and B).

Given,34% experience depression and 31% experience weight gain.11% experience both.

The probability of experiencing depression and weight gain together is 11%.

So, the probability of experiencing depression or weight gain is:P (depression U weight gain) = P (depression) + P (weight gain) - P (depression and weight gain)P (depression U weight gain) = 0.34 + 0.31 - 0.11P (depression U weight gain) = 0.54

Therefore, the probability that a patient from the center is randomly selected and experienced depression or weight gain or both is 0.54.

Summary: In the given question, the probability of the union of events of "depression" and "weight gain" is to be found. The probability of experiencing depression or weight gain is found using the formula of the union of events. The probability of experiencing depression or weight gain or both is 0.54.

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Let X be the standard uniform random variable and let Y = 20X + 10. Then, Y~ Uniform(20, 30) Y is Triangular with a peak (mode) at 20 Y~ Uniform(0, 20) Y~ Uniform(10, 20) Y ~ Uniform(10, 30)

Answers

"Let X be the standard uniform random variable and let Y = 20X + 10. Then, Y~ Uniform(20, 30)." is True and the correct answer is :

D. Y ~ Uniform(10, 30).

X is a standard uniform random variable, this means that X has a range from 0 to 1, which can be expressed as:

X ~ Uniform(0, 1)

Then, using the formula for a linear transformation of a uniform random variable, we get:

Y = 20X + 10

Also, we know that the range of X is from 0 to 1. We can substitute this to get the range of Y:

When X = 0,

Y = 20(0) + 10

Y = 10

When X = 1,

Y = 20(1) + 10

Y = 30

Therefore, Y ~ Uniform(10, 30).

Thus, the correct option is (d).

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74% of all students at a college still need to take another math class. If 49 students are randomly selected, find the probability that Exactly 38 of them need to take another math class.

Answers

The probability that exactly 38 out of 49 randomly selected students need to take another math class is approximately 0.139, or 13.9%.

To solve this problem, we will use the binomial probability formula.

Given that 74% of all students still need to take another math class, we can assume that the probability of a randomly selected student needing to take another math class is 0.74.

We want to find the probability that exactly 38 out of 49 randomly selected students need to take another math class.

The binomial probability formula is given by:

[tex]P(X = k) = (n C k) \times p^k \times(1 - p)^{(n - k)[/tex]

Where:

P(X = k) is the probability of getting exactly k successes,

n is the total number of trials,

k is the number of successes we want,

p is the probability of success on a single trial,

(1 - p) is the probability of failure on a single trial,

and (n C k) is the number of combinations of n items taken k at a time.

Using the given values, we can plug them into the formula:

[tex]P(X = 38) = (49 C 38) \times (0.74)^38 \times (1 - 0.74)^{(49 - 38)[/tex]

Calculating the combination and exponentiation:

[tex]P(X = 38) = (49 C 38) \times (0.74)^{38} \times(0.26)^{11[/tex]

To calculate the combination, we can use the formula:

[tex](49 C 38) = 49! / (38! \times (49 - 38)!)[/tex]

Substituting the values and simplifying:

[tex]P(X = 38) = (49! / (38! \times 11!)) \times (0.74)^{38} \times (0.26)^{11[/tex]

Using a calculator or computer program to evaluate the expression, we find:

P(X = 38) ≈ 0.139

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given a population standard deviation of 6.8, what sample size is required to be 90onfident that the estimated mean has an error less than 0.02?

Answers

The formula for calculating the required sample size to estimate the population mean with a 90% confidence level is given by:

n = ((z_(α/2)×σ) / E)²Here, z_(α/2) is the z-value for the given level of confidence (90% in this case), σ is the population standard deviation (6.8 in this case), and E is the maximum error we can tolerate (0.02 in this case).

Substituting the given values in the formula, we get:

n = ((z_(α/2)×σ) / E)²n = ((1.645×6.8) / 0.02)²n = 1910.96

Rounding up to the nearest whole number, we get the required sample size to be 1911.

Therefore, a sample size of 1911 is required to estimate the population mean with a 90% confidence level and an error of less than 0.02.

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PLEASE HURRY!

Given: Point A is on the perpendicular bisector of BC.

Prove: AB ≅ AC

Your proof should contain statements, as well as, the reasons those statements are valid. It should also contain any necessary pictures.

Answers

Answer:

Given: Point A is on the perpendicular bisector of BC.

Prove: AB ≅ AC

Statement: Reason

In ΔABD and ΔACD,

BD = DC Definition of perpendicular bisector

∡ADB=∡ADC Being right angle

AD= AD Reflexive property

ΔADC≅ΔADB  SAS Congruence Theorem
AB ≅ AC The corresponding side of the congruent traingle are congruent or eqaual.

Hence Proved:

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The production cost per unit for each option along with the respective capacities is shown in the following table.ToolProduction typeCapacityUnit cost (Rs.)WrenchesRegularOvertimeSubcontracting5003005000250280300ChiselsRegularOvertimeSubcontracting6203005000210300420(Hint: Use variables: W, and C for the total number of wrenches and chisels supplied. 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