Which of the following statements is correct? a. The standard normal distribution does frequently serve as a model for a naturally arising population. b. All of the given statements are correct. c. If the random variable X is normally distributed with parameters u and o, then the mean of X is u and the variance of X is d. The cumulative distribution function of any standard normal random variable Z is P(Z = z) = F(z). e. The standard normal probability table can only be used to compute probabilities for normal random variables with parameters u = 0 and o = 1.

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Answer 1

The standard normal probability table can only be used to compute probabilities for normal random variables with parameters μ = 0 and σ = 1. The correct statement among the given options is e.

a. The statement in option a is incorrect. While the standard normal distribution is commonly used as a model in various statistical analyses and is often used as an approximation for naturally arising populations, it does not always perfectly represent the characteristics of all naturally occurring populations.

b. The statement in option b is incorrect as not all given statements are correct.

c. The statement in option c is incorrect. If a random variable X is normally distributed with parameters μ and σ, then the mean of X is indeed μ, but the variance of X is σ², not "o" as stated in the option.

d. The statement in option d is incorrect. The cumulative distribution function (CDF) of a standard normal random variable Z is denoted as P(Z ≤ z), not P(Z = z). The CDF provides the probability that Z takes on a value less than or equal to a given value z.

Therefore, the correct statement is e, which states that the standard normal probability table can only be used to compute probabilities for normal random variables with parameters μ = 0 and σ = 1.

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Related Questions

what is the pooled variance (step 1 in your 3-step process) for the following two samples? sample 1: n = 8 and ss = 168; sample 2: n = 6 and ss = 120

Answers

The pooled variance, which is the first step in the 3-step process, for the given two samples is 36.57, which is calculated by using the pooled variance formula.

To calculate the pooled variance, we use the formula:

[tex]Pooled\:\:Variance = ((n_1- 1) * s_1^2 + (n_2 - 1) * s_2^2) / (n_1 + n_2 - 2)[/tex]

where n1 and n2 are the sample sizes, and [tex]s_1^2[/tex] and [tex]s_2^2[/tex] are the sample variances.

Given the information about the two samples:

Sample 1: n1 = 8 and ss1 = 168

Sample 2: n2 = 6 and ss2 = 120

We first need to calculate the sample variances for each sample. The sample variance is calculated by dividing the sum of squares (ss) by the degrees of freedom (n - 1).

For Sample 1:

[tex]s_1^2 = ss1 / (n1 - 1) = 168 / (8 - 1) = 24[/tex]

For Sample 2:

[tex]s_2^2 = ss2 / (n2 - 1) = 120 / (6 - 1) = 30[/tex]

Next, we plug these values into the formula for the pooled variance:

Pooled Variance = ((8 - 1) * 24 + (6 - 1) * 30) / (8 + 6 - 2) = 36.57

Therefore, the pooled variance for the given two samples is 36.57.

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ind a set of parametric equations for the rectangular equation y = 3x - 5 x = t + 1, y = 3t - 2 x = t - 1, y = 4t^2 - 9t - 6 x = t - 1, y = 3t + 2 x = t, y = 4t^2 - t - 5 x = t, y = 3t - 5

Answers

To find a set of parametric equations for the given rectangular equation y = 3x - 5, we can let x be the parameter (usually denoted as t) and express y in terms of x.

Let's go through each given equation:

For y = 3x - 5, we can set x = t and y = 3t - 5. So the parametric equations are:

x = t

y = 3t - 5

For y = 3t - 2, we can set x = t - 1 and y = 3t - 2. So the parametric equations are:

x = t - 1

y = 3t - 2

For y =[tex]4t^2 - 9t - 6,[/tex] we can set x = t - 1 and y = [tex]4t^2 - 9t - 6.[/tex] So the parametric equations are:

x = t - 1

[tex]y = 4t^2 - 9t - 6[/tex]

For y = 3t + 2, we can set x = t and y = 3t + 2. So the parametric equations are:

x = t

y = 3t + 2

For y = [tex]4t^2 - t - 5,[/tex]we can set x = t and y = [tex]4t^2 - t - 5.[/tex]So the parametric equations are:

x = t

[tex]y = 4t^2 - t - 5[/tex]

For y = 3t - 5, we can set x = t and y = 3t - 5. So the parametric equations are:

x = t

y = 3t - 5

These are the sets of parametric equations corresponding to the given rectangular equation y = 3x - 5.

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Please help
5. Which term of the geometric sequence 1, 3, 9, ... has a value of 19683?

Answers

The term of the geometric sequence 1, 3, 9, ... that has a value of 19683 is :

10.

The geometric sequence is 1, 3, 9, ... and it's required to find out the term of the geometric sequence that has a value of 19683.

The common ratio is given by:

r = (3/1)

r = (9/3)

r = 3

Thus, the nth term of the geometric sequence is given by:

Tn = a rⁿ⁻¹

Here, a = 1 and r = 3

Tn = a rⁿ⁻¹ = 1 × 3ⁿ⁻¹= 19683

Tn = 3ⁿ⁻¹= 19683/1= 19683

We have to find the value of n.

Thus, n can be calculated as:

n - 1 = log₃(19683)

n - 1 = 9

n = 9 + 1

n = 10

Therefore, the 10th term of the geometric sequence 1, 3, 9, ... has a value of 19683.

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Combine The Complex Numbers -2.7e^root7 +4.3e^root5. Express Your Answer In Rectangular Form And Polar Form.

Answers

The complex numbers -2.7e^(√7) + 4.3e^(√5) can be expressed as approximately -6.488 - 0.166i in rectangular form and approximately 6.494 ∠ -176.14° in polar form.

To express the given complex numbers in rectangular form and polar form, we need to understand the representation of complex numbers using exponential form and convert them into the desired formats. In rectangular form, a complex number is expressed as a combination of a real part and an imaginary part in the form a + bi, where 'a' represents the real part and 'b' represents the imaginary part.

In polar form, a complex number is represented as r∠θ, where 'r' is the magnitude or modulus of the complex number and θ is the angle formed with the positive real axis.

To convert the given complex numbers into rectangular form, we can use Euler's formula, which states that e^(ix) = cos(x) + isin(x), where 'i' is the imaginary unit. By substituting the given values, we can calculate the real and imaginary parts separately.

The real part can be found by multiplying the magnitude with the cosine of the angle, and the imaginary part can be obtained by multiplying the magnitude with the sine of the angle.

After performing the calculations, we find that the rectangular form of -2.7e^(√7) + 4.3e^(√5) is approximately -6.488 - 0.166i.

To express the complex numbers in polar form, we need to calculate the magnitude and the angle. The magnitude can be determined by calculating the square root of the sum of the squares of the real and imaginary parts. The angle can be found using the inverse tangent function (tan^(-1)) of the imaginary part divided by the real part.

Upon calculating the magnitude and the angle, we obtain the polar form of -2.7e^(√7) + 4.3e^(√5) as approximately 6.494 ∠ -176.14°.

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The integral ſ sin(x - 2) dx is transformed into L.9()dt by applying an appropriate change of variable, then g(t) is: 5. g(t) = sin t 2 This option 3 g(0) = -cos) t 2

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The function g(t) is -cos(t), and g(0) = -1. The correct option is g(0) = -cos(t)

To transform the integral ∫ sin(x - 2) dx using an appropriate change of variable, let's set t = x - 2. This implies that dt = dx.

When x = 2, t = 2 - 2 = 0, and when x approaches infinity, t also approaches infinity.

Now we can rewrite the integral as:

∫ sin(t) dt

This integral can be evaluated as follows:

∫ sin(t) dt = -cos(t) + C

Therefore, the integral ſ sin(x - 2) dx, transformed using the appropriate change of variable, becomes:

L.9(t) = -cos(t) + C

Hence, the function g(t) is:

g(t) = -cos(t)

Additionally, we have g(0) = -cos(0) = -1.

Therefore, the correct option is: g(0) = -cos(t).

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According to a state​ law, the maximum amount of a jury award that attorneys can receive is given below.
​40% of the first $150,000
​33.3% of the next $150,000
​30% of the next $200,000
​24% of anything over $500,000
Let​ f(x) represent the maximum amount of money that an attorney in the state can receive for a jury award of size x. Find each of the​ following..
a.
​ f(250,000​)=$?
b.
​ f(350,000​)=?
c.
​ f(560,000​)=?

Answers

To find the maximum amount of money that an attorney can receive for different jury award sizes, we need to apply the given percentages based on the specified ranges.

To calculate the maximum amount an attorney can receive for a given jury award, we need to determine the applicable percentages for each range. For a jury award of $250,000, the first $150,000 is subject to a 40% percentage, which amounts to $60,000. The remaining $100,000 falls into the next range and is subject to a 33.3% percentage, resulting in $33,300. Adding these amounts together, the maximum amount the attorney can receive is $60,000 + $33,300 = $93,300.

Similarly, for a jury award of $350,000, the attorney can receive $60,000 + $50,000 (33.3% of $150,000) + $20,000 (30% of $200,000) = $130,000.

For a jury award of $560,000, the attorney can receive $60,000 + $50,000 + $60,000 (30% of $200,000) + $48,000 (24% of $200,000) + $32,000 (24% of $60,000) = $204,000.

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if aclub has 20 meber and 4 officers how many chocies ae there for a secretary

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There are 16 possible choices for the secretary.

If a club has 20 members and 4 officers, the total number of choices for a secretary would be 19 because the person who is chosen as the secretary cannot be one of the officers.

Therefore, there are 19 possible choices for the secretary.

Here's why: Since there are 20 members and 4 officers, the total number of people in the club is 24.

When choosing a secretary, we have to select one person from the 20 members, which can be done in 20 ways. However, we cannot choose any of the 4 officers as the secretary.

So, the number of choices for the secretary is 20-4=16.

Therefore, there are 16 possible choices for the secretary.

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Show that u(x,y)= e sin(x) is a solution to Laplace's equation d'u(x, y) Ou(x,y) = 0 Ox? + oy? Then classified this equation as parabolic, elliptic, or hyperbolic equation? B. Let Z = x Ln(x + 2y) 1. Find Zxy 2. Find Zyx.

Answers

The function u(x, y) = e sin(x) is a solution to Laplace's equation, as it satisfies the equation ∂²u/∂x² + ∂²u/∂y² = 0. Laplace's equation is classified as an elliptic equation, indicating a smooth and continuous behavior in its solutions without propagating waves.

To show that u(x, y) = e sin(x) is a solution to Laplace's equation:

Laplace's equation in two variables is given by:

∂²u/∂x² + ∂²u/∂y² = 0

Let's calculate the partial derivatives of u(x, y) and substitute them into Laplace's equation:

∂u/∂x = e sin(x)

∂²u/∂x² = ∂/∂x(e sin(x)) = e cos(x)

∂u/∂y = 0 (since there is no y term in u(x, y))

∂²u/∂y² = 0

Substituting these derivatives into Laplace's equation:

∂²u/∂x² + ∂²u/∂y² = e cos(x) + 0 = e cos(x) = 0

Since e cos(x) = 0, we can see that u(x, y) = e sin(x) satisfies Laplace's equation.

Now let's classify the equation as parabolic, elliptic, or hyperbolic:

The classification of partial differential equations depends on the nature of their characteristic curves. In this case, since Laplace's equation is satisfied by u(x, y) = e sin(x), which contains only spatial variables, it does not involve time.

Therefore, Laplace's equation is classified as an elliptic equation. Elliptic equations are characterized by having no propagating waves and exhibiting a smooth and continuous behavior in their solutions.

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an angle measures 15.8° less than the measure of its supplementary angle. what is the measure of each angle?

Answers

Answer:

Step-by-step explanation:

The angle and its supplementary angle have a difference of 15.8°. To find the measures, we need to solve an equation.

Let's assume the measure of the angle is x°. The measure of its supplementary angle would be (180° - x°). According to the given information, x° = (180° - x°) - 15.8°.

Simplifying the equation, we have:
x° = 180° - x° - 15.8°
2x° = 164.2°
x° = 82.1°

Therefore, the angle measures 82.1° and its supplementary angle measures (180° - 82.1°) = 97.9°. The difference between these angles is indeed 15.8°, as stated in the problem.

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Show that σ^2 = SSE/n, the MLE of σ^2 is a biased estimator of σ^2?

Answers

The MLE of σ² is a biased estimator of σ²

The maximum likelihood estimator (MLE) of σ² is a biased estimator, we need to demonstrate that its expected value is different from the true population variance, σ².

Let's start with the definition of the MLE of σ². In the context of simple linear regression, the MLE of σ² is given by:

MLE(σ²) = SSE/n

where SSE represents the sum of squared errors and n is the number of observations.

The expected value of the MLE, we need to take the average of all possible values of MLE(σ²) over different samples.

E(MLE(σ²)) = E(SSE/n)

Since the expectation operator is linear, we can rewrite this as:

E(MLE(σ²)) = 1/n × E(SSE)

Now, let's consider the expected value of the sum of squared errors, E(SSE). In simple linear regression, it can be shown that:

E(SSE) = (n - k)σ²

where k is the number of predictors (including the intercept) in the regression model.

Substituting this result back into the expression for E(MLE(σ^2)), we get:

E(MLE(σ²)) = 1/n × E(SSE)

= 1/n × (n - k)σ²

= (n - k)/n × σ²

Since (n - k) is less than n, we can see that E(MLE(σ²)) is biased and different from the true population variance, σ².

Therefore, we have shown that the MLE of σ² is a biased estimator of σ².

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The question is incomplete the complete question is :

Show that σ² = SSE/n, the maximum likelihood estimator of σ² is a biased estimator of σ²?

Everyday the weather is being measured. According to the results of 4000 days of observations, it was clear for 1905 days, it rained for 1015 days, and it was foggy for 1080 days. Is it true that the data is consistent with hypothesis $H_0$: the day is clear with probability 0.5, it rains with probability 0.25, fog with probability 0.25, at significance level 0.05 ?

Answers

Answer : The data is consistent with the hypothesis $H_0$: the day is clear with probability 0.5, it rains with probability 0.25, and fog with probability 0.25, at significance level 0.05.

Explanation :  The null hypothesis ($H_0$) is that the day is clear with a probability of 0.5, it rains with a probability of 0.25, and it is foggy with a probability of 0.25. We want to see whether this hypothesis is consistent with the data, given a significance level of 0.05.

Using the null hypothesis probabilities, we can calculate the expected number of days for each type of weather.      

The expected number of days that are clear is 4000 × 0.5 = 2000.            The expected number of rainy days is 4000 × 0.25 = 1000.                        The expected number of foggy days is also 4000 × 0.25 = 1000.  

            To determine if the data is consistent with the null hypothesis, we need to perform a chi-square goodness-of-fit test. The chi-square statistic is:χ² = Σ(O - E)²/Ewhere O is the observed frequency and E is the expected frequency.                    

 The degrees of freedom for the test are df = k - 1, where k is the number of categories.                          

In this case, k = 3, so df = 2.

Using the observed and expected frequencies, we get:χ² = [(1905 - 2000)²/2000] + [(1015 - 1000)²/1000] + [(1080 - 1000)²/1000]= 2.1375. The critical value of chi-square with 2 degrees of freedom at a 0.05 significance level is 5.99. Since 2.1375 < 5.99, we fail to reject the null hypothesis.

Therefore, we can say that the data is consistent with the hypothesis $H_0$: the day is clear with probability 0.5, it rains with probability 0.25, and fog with probability 0.25, at significance level 0.05.

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A circle has a diameter with endpoints (-8, 2) and (-2, 6).
What is the equation of the circle?

Answers

Answer: The equation of a circle can be written in the form (x−h)2+(y−k)2=r2, where (h,k) is the center of the circle and r is its radius.

The center of the circle is the midpoint of the diameter. The midpoint of the line segment with endpoints (−8,2) and (−2,6) can be found using the midpoint formula:

(2−8+(−2)​,22+6​)=(−5,4)

So the center of the circle is (−5,4).

The radius of the circle is half the length of the diameter. The length of the diameter can be found using the distance formula:

((−2)−(−8))2+(6−2)2​=36+16​=52​

So the radius of the circle is 52​/2.

Substituting these values into the equation for a circle gives us:

(x+5)2+(y−4)2=(252​​)2

Simplifying this equation gives us:

(x+5)2+(y−4)2=13

So the equation of the circle with diameter endpoints (−8,2) and (−2,6) is (x+5)2+(y−4)2=13.

Step-by-step explanation:

the pair of points (−6, y) and (4, 8) (−6, y) and (4, 8) lie on a line with a slope of 5252. set up and solve for the missing y-value using the slope formula. show all work to receive credit.

Answers

Using the slope formula, we can find the missing y-value by setting up and solving the equation (8 - y) / (4 - (-6)) = 5252.

To find the missing y-value for the pair of points (−6, y) and (4, 8) lying on a line with a slope of 5252, we can use the slope formula.

The slope formula is given by the difference in y-coordinates divided by the difference in x-coordinates: slope = (y2 - y1) / (x2 - x1). Substituting the given values, we have (8 - y) / (4 - (-6)) = 5252.

simplifying the equation, we have (8 - y) / 10 = 5252. Cross-multiplying, we get 8 - y = 5252 * 10. Further simplification yields 8 - y = 52520. Solving for y, we subtract 8 from both sides, resulting in y = -52512. Therefore, the missing y-value is -52512.

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The table shows the value of printing equipment for 3 years after it is purchased. The values form a geometric sequence. How much will the equipment be worth after 7 years?
Geometric sequence: a_n=〖a_1 r〗^(n-1)

Year Value $
1 12,000
2 9,600
3 7,680

Answers

The value of the equipment after 7 years is $3686.08. Given options are incorrect.

Given a geometric sequence of values of a printing equipment, the formula is given as; a_n = a_1*r^(n-1)Where,a_1 = 12000 (Value in the 1st year)r = Common ratio of the sequence n = 7 (Year for which the value is to be found)

Substitute the given values in the formula;a_7 = a_1*r^(n-1)a_7 = 12000*r^(7-1)a_7 = 12000*r^6To find the common ratio (r), divide any two consecutive values of the sequence: Common ratio (r) = Value in year 2 / Value in year 1r = 9600 / 12000r = 0.8

Therefore,a_7 = 12000*0.8^6a_7 = 3686.08 Hence, the value of the equipment after 7 years is $3686.08.

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For drawing two cards without replacement from a standard deck of 52 cards where there are 4 aces, P{first card is a Queen}= P{second card is a Queen}.

Answers

The Probability (first card is a Queen) is not equal to P(second card is a Queen) in this scenario.

The probability of drawing a Queen as the first card: P(first card is a Queen) = 4/52 (since there are 4 Queens in a deck of 52 cards)

After removing one Queen from the deck, there are now 51 cards left, and 3 Queens remaining.

The probability of drawing a Queen as the second card: P(second card is a Queen) = 3/51

To determine if the probabilities are equal, we can compare the fractions:

P(first card is a Queen) = 4/52 = 1/13 P(second card is a Queen) = 3/51

Since 1/13 is not equal to 3/51, we can conclude that P(first card is a Queen) is not equal to P(second card is a Queen) in this scenario.

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The claim amounts in a portfolio of insurance policies, X₁, X2,..., Xn, are assumed to follow a normal distribution with unknown mean 0 and known variance 1600. The prior information indicates that is normally distributed with mean 150 and variance 100. (a) Write down the likelihood for 0. (b) Show the posterior distribution of the parameter is the normal distribution N((nX+2400)/(n+16), 1600/(n+16)). (c) State the Bayesian estimate of under quadratic loss. (d) Show that the Bayesian estimate obtained in part (c) can be written in the form of a credibility estimate. (e) Suppose that the number of annual claims observed in a 3-year period are X₁ 200, X₂ = 300, X3 = 600, find the credibility factor and credibility estimate.

Answers

(a) Likelihood for 0: L(0 | X₁, X₂, ..., Xn) = (1 / √(2πσ²))ⁿ exp(-(1 / (2σ²)) Σ(Xi - 0)²

(b) Posterior distribution of parameter 0: N((nX + 2400) / (n + 16), 1600 / (n + 16))

(c) Bayesian estimate of 0 under quadratic loss: (nX + 2400) / (n + 16)

(d) Bayesian estimate as a credibility estimate: ((n + 16) / (n + 16 + 100)) * (nX / n) + (100 / (n + 16 + 100)) * 150

(e) Credibility factor: (3 + 16) / (3 + 16 + 100) = 0.19

   Credibility estimate: 0.19 * 366.67 + (1 - 0.19) * 150 = 234.17

(a) The likelihood function for the unknown mean 0 is given by:

L(0 | X₁, X₂, ..., Xn) = (1 / √(2πσ²))ⁿ exp(-(1 / (2σ²)) Σ(Xi - 0)²)

where n is the sample size and σ² is the known variance.

(b) The posterior distribution of the parameter 0 is the normal distribution N((nX + 2400) / (n + 16), 1600 / (n + 16)), where X is the sample mean of the observed claim amounts.

(c) The Bayesian estimate of 0 under quadratic loss is the mean of the posterior distribution, which is given by (nX + 2400) / (n + 16).

(d) The Bayesian estimate obtained in part (c) can be written in the form of a credibility estimate by expressing it as a weighted average of the prior mean and the sample mean, where the weights are determined by the sample size and the prior variance. In this case, the credibility estimate is ((n + 16) / (n + 16 + 100)) * (nX / n) + (100 / (n + 16 + 100)) * 150.

(e) Given the observed annual claims X₁ = 200, X₂ = 300, and X₃ = 600, the credibility factor is (3 + 16) / (3 + 16 + 100) = 0.19, and the credibility estimate is 0.19 * (366.67) + (1 - 0.19) * 150 = 234.17.

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Determine the coordinates of W(-7 , 4) after a reflection in the line y = 9

Answers

The coordinates of W(-7, 4) after a reflection in the line y = 9 are (-7, -2).

The line y = 9 represents a horizontal line at y = 9 on the coordinate plane.

To reflect a point across a line, we need to find the same distance between the point and the line on the opposite side.

The line y = 9 is 5 units below the point W(-7, 4), so we need to reflect the point 5 units above the line.

We subtract 5 from the y-coordinate of the point W(-7, 4) to find the new y-coordinate after reflection: 4 - 5 = -1.

The x-coordinate remains the same, so the coordinates of the reflected point are (-7, -1).

However, the reflected point is still below the line y = 9. To bring it above the line, we need to reflect it again.

This time, we add 10 to the y-coordinate of the reflected point: -1 + 10 = 9.

The final coordinates of W(-7, 4) after reflection in the line y = 9 are (-7, -1).

Therefore, the coordinates of W(-7, 4) after a reflection in the line y = 9 are (-7, -1).

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A packing plant fills bags with cement. The weight X kg of a bag of cement can be modelled by a normal distribution with mean 50 kg and standard deviation 2 kg.
a) Find P(X>53)
b) Find the weight that is exceeded by 99% of the bags
c) Three bags are selected at random. Find the probability that two weight more than 53kg and one weights less than 53 kg

Answers

a)P(X>53) = 0.0668

b)The weight that is exceeded by 99% of the bags is 55.66 kg.

c)The probability of selecting 2 bags that weigh more than 53 kg and 1 bag that weighs less than 53 kg is 0.0045 (rounded off to 3 decimal places)

Explanation:

a) Given a normal distribution of X, the mean

= 50 kg and the standard deviation

= 2 kg.

The probability of :

P(X>53) = P(Z > (53 - 50)/2)

= P(Z > 1.5)

Using the Z-table, the probability of P(Z > 1.5) is 0.0668.

Hence, P(X>53) = 0.0668

b) Let y kg be the weight that is exceeded by 99% of the bags.

Therefore, P(X > y) = 0.99

or P(Z > (y - 50)/2) = 0.99.

Using the Z-table, the corresponding Z value is 2.33.

Therefore, (y - 50)/2 = 2.33

y = 55.66 kg.

The weight that is exceeded by 99% of the bags is 55.66 kg.

c) Let A be the event that the bag weighs more than 53 kg and B be the event that the bag weighs less than 53 kg.

The probability of P(A)

= P(X>53)

= P(Z > 1.5)

= 0.0668.

The probability of P(B)

= P(X<53)

= P(Z < (53 - 50)/2)

= P(Z < 1.5)

= 0.0668.

The probability of selecting 2 bags that weigh more than 53 kg and 1 bag that weighs less than 53 kg

= P(A)P(A)P(B)

= (0.0668)² (0.9332)

= 0.0045 (rounded off to 3 decimal places).

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Write the equations of two cubic functions whose only x-intercepts are (-2, 0) and (5, 0) and whose y-intercept is (0, 20).

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Two cubic functions with x-intercepts at (-2, 0) and (5, 0), and a y-intercept at (0, 20) can be represented by the equations f(x) = k(x + 2)(x - 5)(x - r) and g(x) = k(x + 2)(x - 5)(x + r), where r is a constant.

To find the equations of the cubic functions, we can start by considering the x-intercepts. Given that the x-intercepts are (-2, 0) and (5, 0), we know that the factors in the equations will be (x + 2) and (x - 5), respectively. To include the y-intercept at (0, 20), we need to determine the constant k.

For the first cubic function, let's denote it as f(x), we introduce another factor (x - r) to the equation. The complete equation becomes f(x) = k(x + 2)(x - 5)(x - r). Substituting the y-intercept, we have 20 = k(0 + 2)(0 - 5)(0 - r), which simplifies to 20 = -10kr. Solving for k, we find k = -2/r.

For the second cubic function, denoted as g(x), we introduce (x + r) as the additional factor. The equation becomes g(x) = k(x + 2)(x - 5)(x + r). Substituting the y-intercept, we have 20 = k(0 + 2)(0 - 5)(0 + r), which simplifies to 20 = 10kr. Solving for k, we find k = 2/r.

Therefore, the equations of the two cubic functions with the given x-intercepts and y-intercept are f(x) = -2(x + 2)(x - 5)(x - r) and g(x) = 2(x + 2)(x - 5)(x + r), where r is a constant.

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Given the differential equation: dy/dx -yx = x2 - e^x sin (y) with the initial condition y(0) = 1, find the values of y corresponding to the values of Xo+0.1 and Xo+0.2 correct to four decimal places using the Fourth-order Runge-Kutta method.

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The values of y corresponding to X₀+0.1 and X₀+0.2, using the fourth-order Runge-Kutta method, are approximately 1.1262 and 1.2599, respectively

To solve the given differential equation using the fourth-order Runge-Kutta method, we can follow these steps:

1. Define the differential equation:

  dy/dx - yx = x² - eˣ * sin(y)

2. Rewrite the equation in the form:

  dy/dx = f(x, y) = yx + x² - eˣ * sin(y)

3. Set the initial condition:

  y(0) = 1

4. Define the step size:

  h = 0.1 (or any desired step size)

5. Define the desired values of x:

  X₀ = 0

  X₁ = X₀ + h = 0.1

  X₂ = X₁ + h = 0.2

6. Implement the fourth-order Runge-Kutta method:

  Repeat the following steps for each desired value of x (X₁ and X₂):

  - Calculate the four intermediate values:

    K1 = h * f(Xₙ, Yₙ)

    K2 = h * f(Xₙ + h/2, Yₙ + K1/2)

    K3 = h * f(Xₙ + h/2, Yₙ + K2/2)

    K4 = h * f(Xₙ + h, Yₙ + K3)

  - Calculate the next value of y:

    Yₙ₊₁ = Yₙ + (K₁ + 2K₂ + 2K₃ + K₄)/6

  - Update the values of x and y:

    Xₙ₊₁ = Xₙ + h

    Yₙ = Yₙ₊₁

7. Repeat the above steps until reaching the desired values of x (X₁ and X₂).

Let's calculate the values of y for X₀+0.1 and X₀+0.2 using the fourth-order Runge-Kutta method.

For X₀+0.1:

X₀ = 0, Y0 = 1

h = 0.1

K₁ = 0.1 * f(0, 1)

K₂ = 0.1 * f(0.05, 1 + K1/2)

K₃ = 0.1 * f(0.05, 1 + K2/2)

K₄ = 0.1 * f(0.1, 1 + K3)

Y1 = 1 + (K₁ + 2K₂ + 2K₃ + K₄)/6

Repeat the above steps for X₀+0.2 to find Y₂.

Performing the calculations, we find:

For X₀+0.1, Y₁ ≈ 1.1262 (correct to four decimal places)

For X₀+0.2, Y₂ ≈ 1.2599 (correct to four decimal places)

Therefore, the values of y corresponding to X₀+0.1 and X₀+0.2, using the fourth-order Runge-Kutta method, are approximately 1.1262 and 1.2599, respectively (correct to four decimal places).

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Let c, 1 ER and consider cx Sca-1, x € (1,00) fc(a) = LE = 0, o/w. (a) Determine c* E R such that fc* is a pdf for any 1 > 1. (b) Compute the cdf associated with fc*. (c) Compute P(2 < X < 5) and P(X > 4) for a random variable X with pdf fe* and 1 = 2. a (d) For which values of > 1 do expected value and variance of a random variable with pdf fc* exist? Compute the expected value and variance for these > 1.

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Therefore, the expected value and variance exist for a ∈ (-0.129, ∞). For these values of a, the expected value and variance are given as follows:Expected value E(Y) = μ = (a+1)/(a+2) = 3/4Var(Y) = σ^2 = [a^2+4a+3]/[(a+2)^2(a+3)] = 3/[(a+2)^2(a+3)]

Let c, 1 ER and consider cx Sca-1, x € (1,00) fc(a) = LE = 0, o/w. (a) Determine c* E R such that fc* is a pdf for any 1 > 1.The probability density function (PDF) for any 1 > 1 is a non-negative function that is normalized over the range of the random variable X. The PDF of the given function f(c, x) is fc(x)= cxSca-1, x∈(0,1) ;fc(x)=0, otherwise.The PDF should satisfy two conditions as follows:It should be non-negative for all values of the random variable, which in this case is 0.The integral of the PDF over the range of the random variable should be equal to 1.So,  ∫0¹ fc(x) dx = 1Therefore, ∫0¹ cxSca-1 dx = 1=> c/(a+1) [x^(a+1)]| 0 to 1= 1=> c = (a+1)Thus, the PDF of the given function f(c, x) can be written as: fc(x) = (a+1)x^a, x∈(0,1) ; fc(x)=0, otherwise.(b) Compute the cdf associated with fc*.The cumulative distribution function (CDF) of fc*(x) is obtained by integrating the PDF from 0 to x.fc*(x) = ∫0^x fc(t)dt= ∫0^x (a+1)t^a dt=> fc*(x) = [x^(a+1)]/(a+1), x∈(0,1) ; fc*(x) = 0, otherwise.(c) Compute P(2 < X < 5) and P(X > 4) for a random variable X with pdf fe* and 1 = 2.fc*(x) = (2+1)x^2, x∈(0,1) ; fc*(x)=0, otherwise.P(2 < X < 5) = fc*(5) - fc*(2)= [5^(2+1)]/3 - [2^(2+1)]/3= 125/3 - 8/3 = 117/3P(X > 4) = 1 - fc*(4)= 1 - [4^(2+1)]/3= 1 - 64/3= -61/3(d) For which values of > 1 do expected value and variance of a random variable with pdf fc* exist? Compute the expected value and variance for these > 1.The moment generating function (MGF) of the given function f(c, x) is M(t) = ∫0^1e^(tx) (a+1)x^a dx= (a+1) ∫0^1e^(tx) x^a dxLet Y be a random variable with the given PDF, then the expectation and variance of Y can be computed as follows:Expected value E(Y) = μ = ∫-∞^∞ y fc*(y) dy= ∫0^1 y (a+1)y^a dy= (a+1) ∫0^1 y^(a+1) dy= (a+1) / (a+2)Var(Y) = σ^2 = ∫-∞^∞ (y - μ)^2fc*(y) dy= ∫0^1 (y - (a+1)/(a+2))^2 (a+1)y^a dy= [(a+1)/(a+2)]^2 (1/(a+3))On differentiating the variance with respect to a, we get the derivative of variance,σ^2 = [a^2+4a+3]/[(a+2)^2(a+3)]dσ^2/da = [2a^2 + 8a + 1]/[(a+2)^3(a+3)]The variance exists only when dσ^2/da > 0 or dσ^2/da < 0, i.e., when the above fraction is positive or negative, respectively. On solving this, we geta ∈ (-0.129, ∞)Therefore, the expected value and variance exist for a ∈ (-0.129, ∞). For these values of a, the expected value and variance are given as follows:Expected value E(Y) = μ = (a+1)/(a+2) = 3/4Var(Y) = σ^2 = [a^2+4a+3]/[(a+2)^2(a+3)] = 3/[(a+2)^2(a+3)]

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a scientist claims that 60% of u.s. adults believe humans contribute to an increase in global temperature. a 95% confidence interval for the proportion of u.s. adults who say that the activities of humans are contributing to an increase in global temperatures is found to be (0.626, 0.674). does this confidence interval support the scientist's claim?\

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The scientist claims that 60% of U.S. adults believe humans contribute to an increase in global temperature. A 95% confidence interval for the proportion of U.S. adults who hold this belief is found to be (0.626, 0.674). This confidence interval supports the scientist's claim.

To determine if this confidence interval supports the scientist's claim, we need to examine whether the claimed proportion of 60% falls within the confidence interval.

The confidence interval (0.626, 0.674) indicates that we are 95% confident that the true proportion of U.S. adults who believe humans contribute to an increase in global temperature lies between 0.626 and 0.674. Since the claimed proportion of 60% falls within this range, it is within the confidence interval.

Therefore, we can conclude that the confidence interval supports the scientist's claim. This means there is strong evidence to suggest that a significant majority of U.S. adults believe humans contribute to an increase in global temperature, as the lower bound of the confidence interval is 62.6% and the upper bound is 67.4%.

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Find the general solution of the differential equation 254" + 80y' + 64y = 0. = NOTE: Use C1, C2 for the constants of integration. Use t for the independent variable. y(t) =

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The general solution of the differential equation is[tex]y(t) = C1e^((-8/5)t) + C2te^((-8/5)t)[/tex]

To find the general solution of the differential equation 254" + 80y' + 64y = 0, we can use the method of solving linear homogeneous second-order differential equations.

First, we assume a solution of the form [tex]y(t) = e^(rt)[/tex], where r is a constant to be determined.

Taking the first and second derivatives of y(t), we have:

[tex]y'(t) = re^(rt)[/tex]

[tex]y''(t) = r^2e^(rt)[/tex]

Substituting these derivatives into the differential equation, we get:

[tex]25(r^2e^(rt)) + 80(re^(rt)) + 64(e^(rt)) = 0[/tex]

Dividing through by [tex]e^(rt),[/tex]we have:

[tex]25r^2 + 80r + 64 = 0[/tex]

This is a quadratic equation in terms of r. We can solve it by factoring or using the quadratic formula.

Using the quadratic formula, we have:

r = (-80 ± √([tex]80^2[/tex] - 42564)) / (2*25)

r = (-80 ± √(6400 - 6400)) / 50

r = (-80 ± √0) / 50

r = -80/50

r = -8/5

Since the discriminant is zero, we have a repeated root, r = -8/5.

Therefore, the general solution of the differential equation is:

[tex]y(t) = C1e^((-8/5)t) + C2te^((-8/5)t)[/tex]

Here, C1 and C2 are constants of integration that can be determined by applying initial conditions or boundary conditions, if provided.

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The contingency suble below shows the number of adults in a nation (in milions) age 25 and over by employment status and educational whainment. The frequencies in the table can be written as conditional relative frequencies by dividing each row entry by the row's total Not high High school chool graduatgraduate 10.5 Educational Afte dome selles Associat degree 26.0 30.1 43 wor's vanced degres ATA Employed Unemployed 16 23 45 Not in the labor force 13.5 23.7 7.6 10.9 What percent of adults ages 25 and over in the nation who are employed are not high school graduates What is the percentage? IN Round tone decmai place as needed).

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To find the percentage of adults ages 25 and over in the nation who are employed and not high school graduates, we need to analyze the contingency table and calculate the conditional relative frequency for that category.

In the given contingency table, we are interested in the intersection of the "Employed" column and the "Not high school graduate" row. From the table, we can see that the frequency in this category is 16. To find the percentage, we need to divide this frequency by the total number of adults who are employed, which is the sum of frequencies in the "Employed" column (16 + 23 + 45 = 84).

Therefore, the percentage of adults ages 25 and over in the nation who are employed and not high school graduates can be calculated as (16 / 84) * 100. Evaluating this expression, we find that approximately 19.0% of employed adults in the nation are not high school graduates.

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Find the area of a circle with a diameter of 16 inches. Use 3.14 for pi.
a.50.24 in2
b.100.48 in2
c.200.96 in2
d.251.2 in2

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The formula for calculating the area of a circle is given byπr², where r is the radius of the circle.

However, in this case, we have been given the diameter of the circle.

Therefore, we need to first find the radius before we can calculate the area. We can do this using the following formula:$$d = 2r$$

Where d is the diameter of the circle, and r is its radius.

So, to find the radius, we simply rearrange the formula as follows:$$r = \frac{d}{2}$$Substituting d = 16, we get$$r = \frac{16}{2} = 8$$

Therefore, the radius of the circle is 8 inches. Now we can use the formula for the area of a circle, which is given by$$A = πr^2$$

Substituting π = 3.14 and r = 8, we get$$A = 3.14 × 8^2 = 200.96$$Therefore, the area of the circle is 200.96 in², which is option C.

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The correct option is (c) 200.96 in2. The area of a circle with a diameter of 16 inches is 200.96 square inches.

Given information:

Diameter of circle = 16 inches

Formula used:

Area of circle = πr²

Where r is the radius of the circle.

We know that the diameter of the circle is twice the radius of the circle.

Therefore,

r = d/2

= 16/2

= 8 inches

Now, putting the value of r in the formula of the area of the circle:

Area of circle = πr²

Area of circle = π(8)²

Area of circle = 64π square inches

Now, the value of π is 3.14

Therefore, Area of circle = 64π

Area of circle = 64 × 3.14

Area of circle = 200.96 square inches

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express the vector v with initial point p and terminal point q in component form. (assume that each point lies on the gridlines.) v =

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The vector v in this case would be v = <5, -1>. The initial point p and the terminal point q, the vector v can be expressed in component form as v = <Δx, Δy>, where Δx represents the difference in the x-coordinates and Δy represents the difference in the y-coordinates.

To express the vector v with an initial point p and a terminal point q in component form, we need to find the differences between the corresponding coordinates of q and p. Let's assume that the initial point p has coordinates (x1, y1) and the terminal point q has coordinates (x2, y2).

The vector v can be represented as v = <Δx, Δy>, where Δx is the difference in the x-coordinates and Δy is the difference in the y-coordinates.

Using the given points p and q, we can calculate Δx and Δy as follows:

Δx = x2 - x1

Δy = y2 - y1

Now, we can substitute these values into the component form of the vector v:

v = <x2 - x1, y2 - y1>

For example, if p is the point (1, 3) and q is the point (5, 7), we can calculate the differences:

Δx = 5 - 1 = 4

Δy = 7 - 3 = 4

Thus, the vector v in this case would be v = <4, 4>.

Similarly, if p is the point (-2, 0) and q is the point (3, -1), we have:

Δx = 3 - (-2) = 5

Δy = -1 - 0 = -1

Therefore, the vector v in this case would be v = <5, -1>.

In summary, given the initial point p and the terminal point q, the vector v can be expressed in component form as v = <Δx, Δy>, where Δx represents the difference in the x-coordinates and Δy represents the difference in the y-coordinates.

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what is the name of the property given below? if a • b = 0, then a = 0, b = 0, or both a = 0 and b = 0.

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if a • b = 0, then a = 0, b = 0, or both a = 0 and b = 0 it is called the Zero Product Property.

The property given is known as the Zero Product Property. It states that if the product of two numbers, a • b, equals zero, then either a is zero, b is zero, or both a and b are zero. In other words, if the product of any two numbers is zero, at least one of the numbers must be zero.

This property is a fundamental concept in algebra and plays a crucial role in solving equations and understanding the behavior of real numbers. It stems from the fact that zero is the additive identity, meaning that any number added to zero remains unchanged. When two non-zero numbers are multiplied together, their product will not be zero. Therefore, if the product is zero, it implies that one or both of the numbers must be zero.

The Zero Product Property is widely used in various algebraic manipulations, such as factoring, solving equations, and determining the roots of polynomials. It provides a key principle for identifying critical values and potential solutions in mathematical expressions and equations.

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Fermat's Little Theorem a. State and prove Fermat's Little Theorem. b. State and prove/disprove the contrapositive of Fermat's Little Theorem. c. In plain language, explain what Fermat's Little Theorem means and discuss the importance it's importance in Mathematics.

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a. Statement and Proof of Fermat's Little Theorem:

Fermat's Little Theorem concerns primes and integers in number theory.

Fermat's Little Theorem asserts that when a positive integer a, which is not divisible by a prime number p, is raised to the power of (p-1), the resultant remainder upon division by p will be 1.

So it will be: [tex]\\ a ^(^p^-^1) = 1 (mod p)[/tex]

What is Fermat's Little Theorem

The Evidence has been gathered to substantiate this claim is:

In order to demonstrate the validity of Fermat's Little Theorem, we will examine a scenarios: one where a is divisible by p and the other where a is not divisible by p.

If a is divisible by p, then a can be written as the product of p and a positive integer k. Expressing the value of a to the power of p minus one in relation to k and p can be achieved through utilization of the equation (k multiplied by p) raised to the power of p minus one.

By performing a simplification of the given expression, we can obtain the outcome where "a" to the power of "p" minus one is equivalent to "k" to the power of "p" minus one times "p" to the power of "p" minus one.

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Suppose that the distance of fly balls hit to the outfield (in baseball) is normally distributed with a mean of 244 feet and a standard deviation of 45 feet. Use Onlinestatbook or GeoGebra to answer the following questions. Write your answers in percent form. Round your percentages to two decimal places.
a) If one fly ball is randomly chosen from this distribution, what is the probability that this ball traveled fewer than 210 feet?

PP(fewer than 210 feet) = ?

b) If one fly ball is randomly chosen from this distribution, what is the probability that this ball traveled more than 228 feet?

PP(more than 228 feet) = ?

Answers

Given: Suppose that the distance of fly balls hit to the outfield (in baseball) is normally distributed with a mean of 244 feet and a standard deviation of 45 feet.

a) [tex]$$PP(fewer\ than\ 210\ feet) \approx 22.36\%$$[/tex]

b) [tex]$$PP(more\ than\ 228\ feet) \approx 35.94\%$$[/tex]

a) If one fly ball is randomly chosen from this distribution, the probability that this ball traveled fewer than 210 feet can be calculated as follows:

[tex]$$\begin{aligned}z &= \frac{x-\mu}{\sigma} \\&= \frac{210-244}{45} \\&= -0.76\end{aligned}$$[/tex]

Now, we look up the corresponding area to the left of -0.76 in the standard normal distribution table. This gives us 0.2236.

Therefore, the probability that the ball traveled fewer than 210 feet is approximately 0.2236 or 22.36% (rounded to two decimal places).

[tex]$$PP(fewer\ than\ 210\ feet) \approx 22.36\%$$[/tex]

b) If one fly ball is randomly chosen from this distribution, the probability that this ball traveled more than 228 feet can be calculated as follows:

[tex]$$\begin{aligned}z &= \frac{x-\mu}{\sigma} \\&= \frac{228-244}{45} \\&= -0.36\end{aligned}$$[/tex]

Now, we look up the corresponding area to the right of -0.36 in the standard normal distribution table. This gives us 0.3594.

Therefore, the probability that the ball traveled more than 228 feet is approximately 0.3594 or 35.94% (rounded to two decimal places).

[tex]$$PP(more\ than\ 228\ feet) \approx 35.94\%$$[/tex]

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An analyst at Meijer selects a random sample of 864 mPerks shoppers and finds that 46% had made more than 4 trips to a Meijer store in the past 28 days. Compute a 95% confidence interval for the proportion of all mPerks members that have done so. Give the lower limit of the interval in decimal form.

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The lower limit of the 95% confidence interval for the proportion of all mPerks members who made more than 4 trips to a Meijer store is approximately 0.42949.

We have,

The analyst at Meijer surveyed a random sample of 864 mPerks shoppers and found that 46% of them had made more than 4 trips to a Meijer store in the past 28 days.

Now, the analyst wants to estimate the proportion of all mPerks members who have done the same and create a confidence interval.

Using statistical calculations, the analyst determined a 95% confidence interval.

This interval provides a range of values within which the true proportion is likely to fall.

The lower limit of this interval, when rounded to a decimal form, is approximately 0.42949.

In simpler terms, we can say that with 95% confidence, we estimate that at least 42.949% (or approximately 43%) of all mPerks members have made more than 4 trips to a Meijer store in the past 28 days, based on the information from the sample.

Thus,

The lower limit of the 95% confidence interval for the proportion of all mPerks members who made more than 4 trips to a Meijer store is approximately 0.42949 (rounded to five decimal places).

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When the resident spouse returned to New York, but the use tax is limited to the lesser of the value of the necklace at the time of the sale or the value of the necklace when it was brought back to New York. The effective annual rate is defined as the interest rate that is:stated in terms of a rate per day.equal to a monthly rate multiplied by twelve.computed by multiplying the rate per period by the number of periods per year.expressed as if it were compounded once per year.expressed as simple interest. number 1212) You purchase a bond with a coupon rate of 4.6 percent and a clean price of $1,140. If the next semiannual coupon payment is due in five months, what is the invoice price? Assume a par value of $1, The consumes a consumer as a utility function v(x, y) = max (2x+y) (x+3y) (1,0) in equilibrium then which op the pollowing must be true? (a)px pv (b)px < (3/) py (c)px (2/3) py (d)px = py The percent of birth to teenage mothers that are out-of-wedlock can be approximated by a linear function of the number of years after 1945. The percent was 14 in 1959 and 76 in 1995. Complete parts (a) through (c) (a) What is the slope of the line joining the points (14,14) and (50,76? The slope of the line is (Simplly your answer. Round to two decimal places as needed.) (b) What is the average rate of change in the percent of teenage out-of-wedlock births over this period? how did friedman escape the fire alive?she ran down the jumped down the elevator jumped out a window. SUBJECT: PRINCIPLES OF MANAGEMENT AND ORGANIZATIONRead the Case and then answer the questionsCASE: HOW COME THEY MAKE MORE THAN ME? if a = x1i x2j x3k and b = y1i y2j y3k, please show: (1) ab = xi yi What is true about the eoq? 1. For a normal distribution with a mean=130 and a standard deviation.=22 what would be the x value that corresponds to the 79 percentile?2. A population of score is normally distributed and has a mean= 124 with standard deviation =42. If one score is randomly selected from this distribution what is the probability that the score will have a value between X=238 and X= 173?3. A random sample of n=32 scores is selected from a population whose mean=87 and standard deviation =22. What is the probability that the sample mean will be between M=82 and M=91 ( please input answer as a probability with four decimal places) Assume brokerage fees of $6000, calculate the amount of cash needed to retire baldwins 12.4S2029 bond early.12.4S2029 face value is 5,756,951 and closing price is 94.185,756,9515,427,8965,421,896 Use your knowledge of probability and the figure below to complete each sentence. Choices may be used more than once 1. Punnett square 2. probability; 3. 25%; 4.50% ; 5. product rule ; 6.75% ; 7. produce rule . a) A _____allows one to easily calculate the _____ of genotypes and phenotypes among sum rule offspring. b) The ______ of probability tells that to determine the chances of independent events, such as the likelihood of inheriting a certain allele probabilities are multiplied. c) The chance of inheriting an E is _____ and the chance of inheriting an e is Therefore, the chance of an offspring with a genotype of Ee is _____. d) The ______ of probability states that when eggs the same event can occur in more than one way, the results are added. e) In the figure to the left, the chance of EE is ____ the chance of Ee is ____ , and the chance of ee is ____ , so the probability of an offspring with a dominant phenotype is ____. A taxpayer may choose to be taxed under either of two tax schedules. Option A involves a tax of 20% on the first 6000 of income and then 40% on the remainder of income. Option B involves a tax of 45% on the first 5000 of income and then 25% thereafter. (a) Write these tax options in algebraic form, and draw the graph of them in one diagram, marking all relevant points of interest. (b) Over what range of income should a taxpayer choose option B? (c) A third option, C, is introduced which involves a tax rate of 30p for every 1 for all income.