find a degree 3 polynomial with real coefficients having zeros 5 5 and 2 i 2i and a lead coefficient of 1

Answers

Answer 1

This polynomial has the desired zeros and lead coefficient of 1.

In order to find a degree 3 polynomial with real coefficients having zeros 5, 5 and 2i with a lead coefficient of 1, lets use the following steps.

Step 1:

Since the polynomial has real coefficients, the complex zeros must occur in conjugate pairs. So, if 2i is a zero, then -2i must also be a zero.

Step 2:

Writing out the polynomial using the zeros. Since 5 and 5 are both zeros, we can write (x-5)(x-5) = (x-5)².

Using the conjugate pair rule, we know that (x-2i)(x+2i) = x² + 4.

Step 3:

Multiplying the expressions found in step 2 to obtain the final degree 3 polynomial with real coefficients.

This gives us the polynomial

(x-5)²(x² + 4)

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Related Questions

A data set lists weights (lb) of plastic discarded by households. The highest weight is 5.33 lb, the mean of all of the weights is x = 2.191 lb, and the standard deviation of the weights is s = 1.205

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The highest weight of plastic discarded by households is 5.33 lb.From the available information, we can conclude that the highest weight of plastic discarded by households is  the mean  5.33 lb.

The highest weight in the given data set is directly provided as 5.33 lb. To calculate the mean and standard deviation, we need the complete data set, but it is not provided. However, we can still discuss the significance of the mean and standard deviation in the context of the given information.

The mean (x) is a measure of central tendency and represents the average weight of plastic discarded by households. In this case, the mean is given as x = 2.191 lb.

The standard deviation (s) is a measure of the dispersion or spread of the data points around the mean. It provides information about how much the weights vary from the average. In this case, the standard deviation is given as s = 1.205.

From the available information, we can conclude that the highest weight of plastic discarded by households is 5.33 lb. The mean weight is 2.191 lb, indicating the average weight of plastic in the dataset. The standard deviation of 1.205 suggests that the weights vary around the mean, providing insight into the spread or dispersion of the data.

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Data on salaries in the public school system are published annually by a teachers' association. The mean annual salary of (public) classroom teachers is $58.2 thousand. Assume a standard deviation of $8.8 thousand. Complete parts (a) through (e) below. 3. Determine the sampling distribution of the sample mean for samples of size 64 . The mean of the sample mean is μx​=$ (Type an integer or a decimal. Do not round.) The standard deviation of the sample mean is σx˙​=$ (Type an integer or a decimat. Do not round.) b. Determine the sampling distribution of the sample mean for samples of size 256 . Data on salaries in the public school system are published annually by a teachers' association. The mean annual salary of (public) classroom teachers is $58.2 thousand. Assume a standard deviation of $8.8 thousand. Complete parts (a) through (e) below. b. Determine the sampling distribution of the sample mean for samples of size 256 . The mean of the sample mean is μ−​=$ (Type an integer or a decimal. Do not round.) The standard deviation of the sample mean is σxˉ​=$ (Type an integer or a decimk. Do not round.) c. Do you need to assume that classroom teacher salaries are normally distributed to answer parts (a) and (b)? Explain your answer. Data on salaries in the public school system are published annually by a teachers' association. The mean annual salary of (public) classroom c. Do you need to assume that classroom teacher salaries are normally distributed to answer parts (a) and (b)? Explain your answer. A. Yes, because x is only nomally distributed if x is normally distributed. B. Yes, because the sample sizes are not sufficiently large so that x will be approximately normally distributed, regardless of the distribution of x. C. No, because If x is normally distributed, then x must be normally distributed D. No, because the sample sizes are sufficiently large so that xˉ will be approximately normally distributed, regardiess of the distribution

Answers

μx​ = $58.2 thousand, σx​ = $1.1 thousand | b. μ−​ = $58.2 thousand, σxˉ​ = $0.55 thousand | c. D. No, because the sample sizes are sufficiently large so that the sample means will be approximately normally distributed, regardless of the distribution of the population.

What is the sampling distribution of the sample mean for samples of size 64 and 256, given a mean annual salary of $58.2 thousand and a standard deviation of $8.8 thousand in the public school system?

The sampling distribution of the sample mean for samples of size 64 has a mean of μx = $58.2 thousand and a standard deviation of σx = $8.8 thousand.

The sampling distribution of the sample mean for samples of size 256 has a mean of μx = $58.2 thousand and a standard deviation of σx = $8.8 thousand.

No, it is not necessary to assume that classroom teacher salaries are normally distributed to answer parts (a) and (b).

The Central Limit Theorem states that as the sample size increases, the sampling distribution of the sample mean approaches a normal distribution, regardless of the distribution of the population.

Therefore, the sample means will be approximately normally distributed even if the population distribution is not normal.

The correct answer is: D. No, because the sample sizes are sufficiently large so that the sample means will be approximately normally distributed, regardless of the distribution of the population.

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Find the production level at which the marginal cost function starts to increase. C(q)=0.001q^(3)-0.66q^(2)+426q+25,000

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The production level at which the marginal cost function starts to increase are as follows :

Given the cost function:

[tex]\[ C(q) = 0.001q^3 - 0.66q^2 + 426q + 25,000 \][/tex]

To find the production level at which the marginal cost function starts to increase, we need to find the critical points of the marginal cost function. The marginal cost function is the derivative of the cost function:

[tex]\[ C'(q) = 0.003q^2 - 1.32q + 426 \][/tex]

To determine the production level at which the marginal cost function starts to increase, we need to find the critical points of the marginal cost function. These points occur where the derivative is equal to zero or undefined.

Setting the derivative equal to zero and solving for [tex]\( q \):[/tex]

[tex]\[ 0.003q^2 - 1.32q + 426 = 0 \][/tex]

Using the quadratic formula:

[tex]\[ q = \frac{{-b \pm \sqrt{{b^2 - 4ac}}}}{{2a}} \][/tex]

Plugging in the values [tex]\( a = 0.003 \), \( b = -1.32 \), and \( c = 426 \)[/tex] into the formula:

[tex]\[ q = \frac{{-(-1.32) \pm \sqrt{{(-1.32)^2 - 4(0.003)(426)}}}}{{2(0.003)}} \][/tex]

Simplifying:

[tex]\[ q = \frac{{1.32 \pm \sqrt{{1.7424 - 5.112}}}}{{0.006}} \][/tex]

[tex]\[ q = \frac{{1.32 \pm \sqrt{{-3.3696}}}}{{0.006}} \][/tex]

Since the discriminant [tex](\(-3.3696\))[/tex] is negative, the quadratic equation has no real solutions. Therefore, there are no critical points for the marginal cost function.

This means that the marginal cost function does not change its behavior, and it doesn't start to increase or decrease. It remains constant throughout the entire production level.

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The mean for the normal hemoglobin control is 14.0 mg/dL. The standard deviation is 0.15 with an acceptable control range of +/-2 standard deviations (SD). What are the acceptable limits of the control? Please select the single best answer 13.8-14.2 13.4 14.6 13.6-14.4 13.7-14.3

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The acceptable limits of the control is 13.7-14.3.Hemoglobin (Hb) is a red, iron-rich protein that allows red blood cells to transport oxygen throughout the body. Hemoglobin is responsible for the characteristic red color of blood and is responsible for the exchange of oxygen and carbon dioxide in the lungs.

The standard deviation (SD) is a statistical measure of the dispersion of a set of data values relative to its mean. A low standard deviation indicates that the data points are near to the mean, whereas a high standard deviation indicates that the data points are far from the mean. The standard deviation is expressed in the same units as the data points themselves. In the given problem, the mean for the normal hemoglobin control is 14.0 mg/dL and the standard deviation is 0.15. Since the acceptable control range is +/-2 standard deviations (SD), we can calculate the acceptable limits of control using the given formula below: Lower limit = Mean - 2(SD)Upper limit = Mean + 2(SD)Substitute the given values in the formula. Lower limit = 14 - 2(0.15)Upper limit = 14 + 2(0.15)Lower limit = 13.7Upper limit = 14.3Therefore, the acceptable limits of control are 13.7-14.3.Answer: 13.7-14.3

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The number line below is correctly represented by which of the following intervals?
Number line: (-2, 6]
a) (-2, 6]
b) {x | -2 < x ≤ 6}
c) (-[infinity], -2] ⋃ (6, [infinity])
d) {x | x < -2 or x ≥ 6}

Answers

The number line (-2, 6] is correctly represented by option a) (-2, 6].

Option a) (-2, 6] denotes an open interval, which means that it includes all real numbers greater than -2 and less than or equal to 6. The square bracket on the right side indicates that the endpoint 6 is included in the interval.

Option b) {x | -2 < x ≤ 6} represents a closed interval, which means that it includes all real numbers greater than -2 and less than or equal to 6. However, it uses set notation instead of interval notation.

Option c) (-∞, -2] ⋃ (6, ∞) represents a union of two intervals. The first interval (-∞, -2] includes all real numbers less than or equal to -2, and the second interval (6, ∞) includes all real numbers greater than 6. This option does not correctly represent the given number line.

Option d) {x | x < -2 or x ≥ 6} represents the set of all real numbers that are less than -2 or greater than or equal to 6. This option does not correctly represent the given number line.

Therefore, the correct representation for the number line (-2, 6] is option a) (-2, 6].

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Exercise 5.1: When a survey calls residential telephone numbers at random, 80% of calls fail to reach a live person. A random dialling machine makes 15 calls. a) Determine the mean and the standard de

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Therefore, the mean is 3 and the standard deviation is 1.55 when a random dialling machine makes 15 calls to reach a live person.

Given: When a survey calls residential telephone numbers at random, 80% of calls fail to reach a live person. A random  dialling machine makes 15 calls.

Mean: The average of data or number is known as mean. Example: To calculate the mean of 4, 5, 6, 7, 8. Add all the numbers.4+5+6+7+8=30Now divide the sum by the number of terms.30/5=6Hence, the mean of 4, 5, 6, 7, 8 is 6.

Standard Deviation: Standard deviation is a measure of the amount of variation or dispersion of a set of values. Example: The standard deviation of 4, 5, 6, 7, 8 can be calculated as follows:

First, calculate the mean:(4+5+6+7+8)/5 = 6. Then, subtract the mean from each data value: 4-6 = -2, 5-6 = -1, 6-6 = 0, 7-6 = 1, 8-6 = 2.

Next, square each of these differences: (-2)² = 4, (-1)² = 1, 0² = 0, 1² = 1, 2² = 4. Find the mean of these squared differences: (4+1+0+1+4)/5 = 2.

Finally, take the square root of the result: √2 ≈ 1.41Therefore, the standard deviation of 4, 5, 6, 7, 8 is approximately 1.41.

a) Determine the mean and the standard deviation of the number of calls to reach a live person when a random dialling  machine makes 15 calls. The number of calls to reach a live person out of 15 calls= 15 - (15 * 0.8) = 15 - 12= 3 calls The mean of the number of calls to reach a live person = 3

The formula to find the standard deviation is: Standard Deviation = sqrt(npq) Where n= number of trials, p= probability of success, and q= probability of failure P = 0.2 (probability of reaching a person)Q = 1-0.2 = 0.8 (probability of not reaching a person) N = 15∴ Standard Deviation = sqrt(npq) = sqrt(15*0.2*0.8)=sqrt(2.4)=1.55

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The mean will be 3 and the standard deviation will be 1.56.

a) Determining the mean and the standard deviation.

Given that, p = 0.80 (probability of a call failing to reach a live person)

q = 0.20 (probability of a call reaching a live person)

n = 15 (number of calls made)

To determine the mean, we use the formula,

μ = np

μ = 15 × 0.2

μ = 3

Hence, the mean of the number of calls that reach a live person is 3.

To determine the standard deviation, we use the formula,

σ = √npq

σ = √15 × 0.8 × 0.2

σ = 1.56

Hence, the standard deviation of the number of calls that reach a live person is 1.56. Therefore, the mean of the number of calls that reach a live person is 3 and the standard deviation is 1.56.

Conclusion:   In this question, we were required to determine the mean and the standard deviation of the number of calls that reach a live person when a survey calls residential telephone numbers at random. We determined the mean to be 3 and the standard deviation to be 1.56.

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Find the equation for the tangent plane and the normal line at the point P0(1,2,3) on the surface 3x^2 +y^2+z^2=20

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The equation for the tangent plane and the normal line at the point P0 (1, 2, 3) on the surface 3x² +y²+z² = 20 are given by 6x + 4y + 6z – 34 = 0 and (x – 1)/6 = (y – 2)/4 = (z – 3)/6, respectively.

The given equation is 3x² + y² + z² = 20. We need to find the equation of tangent plane and normal line at the point P0 (1, 2, 3).Steps to find the equation for the tangent plane and normal line at the point P0(1,2,3) on the surface 3x² +y²+z²=20We are given the surface equation,3x² + y² + z² = 20.

Therefore, ∂f/∂x = 6x, ∂f/∂y = 2y, ∂f/∂z = 2z.We can now find the equation of tangent plane and normal line at the point P0 (1, 2, 3).We can find the gradient of the surface equation as follows:grad f = (6x, 2y, 2z)At the point P0 (1, 2, 3), grad f = (6, 4, 6).This gradient is normal to the tangent plane at point P0 (1, 2, 3).

So, the equation of tangent plane at point P0 (1, 2, 3) is given by:6(x – 1) + 4(y – 2) + 6(z – 3) = 0Simplifying, we get,6x + 4y + 6z – 34 = 0So, the equation of tangent plane at point P0 (1, 2, 3) is 6x + 4y + 6z – 34 = 0.To find the equation of normal line at point P0 (1, 2, 3), we know that it will pass through this point and is perpendicular to the tangent plane.Therefore, the equation of the normal line at point P0 (1, 2, 3) is: (x – 1)/6 = (y – 2)/4 = (z – 3)/6. This is the required equation for the normal line at point P0 (1, 2, 3).

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The long-distance calls made by the employees of a company are normally distributed with a mean of 6.3 minutes and a standard deviation of 2.2 minutes. Find the probability that a call: Enter your answers in decimal form rounded to 4 decimal places (i.e. 0.0003 instead of 0.03%). (a) Lasts between 5 and 10 minutes? (b) Lasts more than 7 minutes. (c) Lasts less than 4 minutes.

Answers

The probability that a call lasts less than 4 minutes is 0.1474.

Given, Mean = μ = 6.3 minutes

Standard deviation = σ = 2.2 minutes

Using z-score formula, z = (X - μ) / σ(a) To find P(5 < X < 10), we have to calculate z1 and z2 respectively, z1 = (5 - 6.3) / 2.2 = -0.59z2 = (10 - 6.3) / 2.2 = 1.68

Now, we can find the probability, P(5 < X < 10) = P(-0.59 < z < 1.68)P(-0.59 < z < 1.68) = Φ(1.68) - Φ(-0.59)  ≈ 0.833 - 0.2778 = 0.5552

Therefore, the probability that a call lasts between 5 and 10 minutes is 0.5552.

(b) To find P(X > 7), we have to calculate the z-score first,z = (X - μ) / σz = (7 - 6.3) / 2.2 = 0.32

Now, we can find the probability, P(X > 7) = P(z > 0.32) = 1 - Φ(0.32)≈ 1 - 0.6255 = 0.3745

Therefore, the probability that a call lasts more than 7 minutes is 0.3745.

(c) To find P(X < 4), we have to calculate the z-score first,z = (X - μ) / σz = (4 - 6.3) / 2.2 = -1.05Now, we can find the probability, P(X < 4) = P(z < -1.05) = Φ(-1.05)≈ 0.1474

Therefore, the probability that a call lasts less than 4 minutes is 0.1474.

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Question 10 of 12 < > Two sides and an angle are given. Determine whether a triangle (or two) exist, and if so, solve the triangle(s). b 500, c330.y-37 How many triangles exist? Round your answers to

Answers

There are no other possible triangles since the sum of two angles in a triangle must always be less than 180°. Hence, there is only 1 triangle that exists, and the answer is 1.

The given sides and angle are b = 500, c = 330, and y-37.

Let's consider the given diagram below.

From the given diagram, we can write;

sin(y-37) = 330/500

sin(y-37) = 0.66

y - 37 = sin^(-1)(0.66)y - 37

= 42.69°

Now, we can use the Law of Sines to determine the possible triangles:

Triangle 1, Using the Law of Sines:

(500)/sin(y) = (330)/sin(42.69)

Solving for y, we get;

y = sin^(-1)((sin(42.69)*500)/330)y

= 61.31°

Therefore, the first triangle has angles of 42.69°, 61.31°, and 76°.

Triangle 2

There are no other possible triangles since the sum of two angles in a triangle must always be less than 180°. Hence, there is only 1 triangle that exists, and the answer is 1.

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The manager of a bank with 50,000 customers commissions a survey
to gauge customer views on internet banking, which would incur
lower bank fees. In the survey, 28% of the 350 customers say they
are in

Answers

The manager of a bank with 50,000 customers commissions a survey to gauge customer views on internet banking, which would incur lower bank fees.

The proportion of interest in internet banking is calculated using the following formula:28% = (interested customers/total customers) x 10028/100 = interested customers/350

Therefore, interested customers = (28/100) x 350

interested customers = 98

Approximately 98 customers expressed their interest in switching to internet banking that would lower their bank fees.

Therefore, the manager can estimate that around 98 customers will consider changing to internet banking that incurs lower bank fees. As there are 50,000 customers in total, the proportion of those who would switch is 98/50,000.

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What is the vertex of g(x) = –3x^2 + 18x + 2?
a. (3, –25)
b. (–3, –25)
c. (3, 29)
d. (–3, 29)

Answers

The vertex of the quadratic function [tex]g(x) = –3x^2 + 18x + 2[/tex]is (c) (3, 29).

Is the vertex of the function [tex]g(x) = –3x^2 + 18x + 2[/tex] located at (3, 29)?

To find the vertex of a quadratic function in the form of [tex]g(x) = ax^2 + bx + c,[/tex]  you can use the formula x = -b / (2a) to find the x-coordinate of the vertex.

Once you have the x-coordinate, you can substitute it back into the equation to find the corresponding y-coordinate.

For the function [tex]g(x) = -3x^2 + 18x + 2,[/tex] we have a = -3, b = 18, and c = 2. Using the formula, we can calculate the x-coordinate of the vertex:

x = -b / (2a)

  = -18 / (2*(-3))

  = -18 / (-6)

  = 3

Now, substituting x = 3 back into the equation to find the y-coordinate:

[tex]g(3) = -3(3)^2 + 18(3) + 2[/tex]

    = -27 + 54 + 2

    = 29

Therefore, the vertex of the function [tex]g(x) = -3x^2 + 18x + 2 is (3, 29).[/tex]

The correct answer is c. (3, 29).

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The regression line relating verbal SAT scores and college GPA for the data exhibited in Figure 3.12 is
a. Estimate the average GPA for those with verbal SAT scores of 600.
b. Explain what the slope of 0.00362 represents in terms of the relationship between GPA and SAT.
c. For two students whose verbal SAT scores differ by 100 points, what is the estimated difference in college GPAs?
d. Explain whether the intercept has any useful interpretation in the relationship between GPA and verbal SAT score. Keep in mind that the lowest possible verbal SAT score is 200.

Answers

(a) The GPA for those with verbal SAT scores of 600 is: 3.097

(b) The slope of 0.00362 represents the average change in the college GPA that is associated with a one-unit increase in the verbal SAT score

a. Estimate the average GPA for those with verbal SAT scores of 600.

The regression line relating verbal SAT scores and college GPA for the data exhibited in Figure 3.12 is y = 0.275 + 0.00362x.

The GPA for those with verbal SAT scores of 600 is:

y = 0.275 + 0.00362(600)

= 3.097

b. Explain what the slope of 0.00362 represents in terms of the relationship between GPA and SAT.

The slope of 0.00362 represents the average change in the college GPA that is associated with a one-unit increase in the verbal SAT score

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This is the question. Below is the answer. The first line is
rather confusing. Please explain why that is. Why is it x2 instead
of x1.
How were the A_i"s chosen and why is there no contribution from
A
4.20 X₁ and X₂ are independent n(0, o²) random variables. (a) Find the joint distribution of Y₁ and Y2, where Y₁ = X² + X² and Y₂ = X₁ √vi (b) Show that Y₁ and Y₂ are independent,

Answers

The joint distribution of Y1 and Y2 is: P (Y1 ≤ y1, Y2 ≤ y2) = (1/2^(3/2)πσ^2V) ∫ [0 to y1/2] x ^ (1/2) exp (-x/2β) dx. Since, their joint distribution factorizes, Y1 and Y2 are independent.

To find the joint distribution of Y1 and Y2, we will first evaluate the expressions for Y1 and Y2. We have:

Y1 = X1² + X2²Y2 = X1√(V),

where X1 and X2 are independent N (0, σ^2) random variables.

Hence, we can write the joint distribution of Y1 and Y2 as:

P (Y1 ≤ y1, Y2 ≤ y2) = P [X1² + X2² ≤ y1, X1√(V) ≤ y2].

Now, we can express this in terms of X1 and X2 by using the transformation method. This involves computing the Jacobian, which is given by:

|J| = 2x2√(V).

After applying the transformation, we get:

P (Y1 ≤ y1, Y2 ≤ y2) = ∫∫ [f (x1, x2) |J|] dx1 dx2,

where f (x1, x2) is the joint probability density function of X1 and X2.

Since X1 and X2 are independent, we have:

f (x1, x2) = f (x1) * f (x2) = [1/(2πσ²)] exp (-x1²/2σ²) x [1/(2πσ²)] exp (-x2²/2σ²).

Therefore, the joint probability density function of Y1 and Y2 is:

P (Y1 ≤ y1, Y2 ≤ y2) = ∫∫[(1/4π²σ⁴) exp (-(x1²+x2²)/2σ²) x2√(V)] dx1dx2.

The integral can be simplified by making use of polar coordinates. We get:

P (Y1 ≤ y1, Y2 ≤ y2) = (1/4π²σ⁴) ∫ [0 to 2π] ∫ [0 to ∞] exp(-r²/2σ²) r√(V) drdθ.

Integrating over θ, we get:

P (Y1 ≤ y1, Y2 ≤ y2) = (1/2πσ⁴) ∫ [0 to ∞] exp(-r²/2σ²) r√(V) dr.

Integrating by parts, we get:

P (Y1 ≤ y1, Y2 ≤ y2) = (1/2σ⁴) ∫ [0 to ∞] exp(-r²/2σ²) (r²/2) V-1/2 dr.

This is a gamma distribution with parameters α = 1/2 and β = 1/2σ^2V. Therefore, the joint distribution of Y1 and Y2 is:

P (Y1 ≤ y1, Y2 ≤ y2) = (1/2^(3/2)πσ^2V) ∫ [0 to y1/2] x ^ (1/2) exp (-x/2β) dx.

To show that Y1 and Y2 are independent, we need to compute their marginal distributions and demonstrate that their joint distribution factorizes. This is a normal distribution with mean 0 and variance V. Hence, the joint distribution of Y1 and Y2 factorizes as:

P (Y1 ≤ y1, Y2 ≤ y2) = P (Y1 ≤ y1) * P (Y2 ≤ y2).

Therefore, Y1 and Y2 are independent.

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the intercept is the change in y for a change in x of one unit. T/F

Answers

The statement "the intercept is the change in y for a change in x of one unit" is False.

The statement "the intercept is the change in y for a change in x of one unit" is false.

The intercept refers to the point where a straight line crosses the y-axis on a graph.

It is the point at which the value of x equals zero.

The y-intercept, also known as the vertical intercept, is the point where the value of x is zero.

In other words, the y-intercept is the point where the line intersects the y-axis, and its x-coordinate is zero.

It's important to note that the y-intercept is a single point on a graph, and it does not represent a change in y or x.

Therefore, the intercept is not the change in y for a change in x of one unit.

To summarize, the statement "the intercept is the change in y for a change in x of one unit" is False.

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find the area enclosed by the x-axis and the curve x = 2 et, y = t − t2.

Answers

The given equation is x = 2et, y = t − t2. We have to find the area enclosed by the x-axis and the curve.

Let's begin solving this step-by-step:Step 1: We have [tex]x = 2et, y = t − t2[/tex]to obtain the limits of t.

For that, we equate y to zero:t - t² = 0t (1 - t) = 0Therefore, t = 0 and t = 1.Step 2: We are given that x = 2et. Therefore, we obtain x in terms of t by substituting for e:

We know that[tex]e = 2.71828182846x = 2*2.71828182846t = 5.43656365692tStep 3[/tex]:

The area enclosed between the curve and the x-axis is given by the integ[tex][tex]t - t² = 0t (1 - t) = 0Therefore, t = 0 and t = 1.Step 2:[/tex]ral:∫(0 to 1) (x dt)[/tex]Now, substituting the value of x obtained in step 2, we have:

∫(0 to 1) (5.43656365692t dt)Solving this integral, we get:Area = 2.71828 sq. unitsThis is how we calculate the area enclosed by the x-axis and the curve [tex]x = 2 et, y = t − t2.[/tex]

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Please solve it
quickly!
4. What is the SSE in the following ANOVA table? [2pts] d.f. Sum of squares Treatments 5 Error 84 Mean squares 10 F-statistic 3.24

Answers

SSE = s²e = 84 Hence, the SSE in the ANOVA table is 84.

Given that the following ANOVA table has the values below:d.f.

Sum of squares Treatments 5 Error 84 Mean squares 10 F-statistic 3.24

We are to find the SSE in the ANOVA table.

SSE (sum of squared error) is the measure of the variation in the sample that is not explained by the regression model.

SSE is an estimate of the variance that is still present when the regression model has been applied to the data.

Let SSE = s²e,

Then,s²e = MSE x dfe,

where MSE is the mean squared error, and dfe is the degrees of freedom for error.Solving for SSE;s²e = MSE x dfe84 = 10 x 8.4

Therefore, SSE = s²e = 84 Hence, the SSE in the ANOVA table is 84.

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10) Find the product 5(cos 40° + i sin 40°) and 8 (cos 95° + i sin 95°). Write your answer in rectangular form.

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We may multiply the magnitudes and add the angles to determine the product of the complex numbers 5 (cos 40° + i sin 40°) and 8 (cos 95° + i sin 95°).

The magnitudes are first multiplied: 5 x 8 = 40.

The angles are then added: 40° + 95° = 135°.

As a result, the product can be expressed as 40(cos 135° + i sin 135°) in polar form.

We can apply the following trigonometric identities to transform this into rectangular form:Sin() = sin(135°) = 2/2 cos() = cos(135°) = -2/2

Therefore, the rectangle product is 40 * (- 2/2 + i 2/2).

To further simplify, we have: -202 + 20i2.

In rectangular form, the complex numbers 5 (cos 40° + i sin 40°) and 8 (cos 95° + i sin 95°) are therefore multiplied by each other to provide -202 + 20i2.

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The rectangular coordinates of a point are given. Find polar coordinates for the point (5,573)

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The polar coordinates corresponding to the rectangular coordinates (5, 573) are approximately (573.05, 90°).

Explanation:

Given rectangular coordinates of the point are (5, 573) and we need to find the polar coordinates.

Let us first recall the definition of rectangular and polar coordinates.

Definitions:

Rectangular coordinates: A rectangular coordinate system is a two-dimensional coordinate system that locates points on the plane by reference to two perpendicular axes. The coordinates of a point P are written as (x, y), where x is the horizontal distance from the origin to P, and y is the vertical distance from the origin to P.

Polar coordinates: A polar coordinate system is a two-dimensional coordinate system that locates points on the plane by reference to a distance from a fixed point and an angle from a fixed axis. Polar coordinates are written as (r, θ), where r is the distance from the origin to P, and θ is the angle formed by the positive x-axis and the line segment from the origin to P.

Now we can find the polar coordinates of the point (5, 573) as follows:

Let's first find r using the formula

r = √(x² + y²)

r = √(5² + 573²)

r = √(25 + 328329)

r = √328354 ≈ 573.05

Now, we will find θ using the formula

θ = tan⁻¹(y / x)

θ = tan⁻¹(573 / 5)

θ = 89.9595° ≈ 90°

Therefore, the polar coordinates of the point (5, 573) are approximately (573.05, 90°).

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A simple random sample of front-seat occupants involved in car crashes is obtained. Among 2756 occupants not wearing seat belts, 27 were killed. Among 7612 occupants wearing seat belts. 17 were killed. Use a 0.05 significance level to test the claim that seat belts are effective in reducing fatalities. Complete parts (a) through (c) below. Identify the P-value P-value = 0 (Round to three decimal places as needed.) What is the conclusion based on the hypothesis test? reject the null hypothesis. There is sufficient evidence to support the claim that The P-value is less than the significance level of a = 0.05, so the fatality rate is higher for those not wearing seat belts. b. Test the claim by constructing an appropriate confidence interval. The appropriate confidence interval is < (P₁-P₂) < (Round to three decimal places as needed.) What is the conclusion based on the confidence interval? Because the confidence interval limits include Because the confidence interval limits values, it appears that the fatality rate is c. What do the results suggest about the effectiveness of seat belts? H More Next 0, it appears that the two fatality rates are for those not wearing seat belts √i Vi 1,

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The results suggest that the effectiveness of seat belts in reducing fatalities is statistically significant and it is concluded that seat belts are effective in reducing fatalities.

Given data A simple random sample of front-seat occupants involved in car crashes is obtained. Among 2756 occupants not wearing seat belts, 27 were killed. Among 7612 occupants wearing seat belts. 17 were killed.Null and alternative hypothesisThe null hypothesis is H0:

The fatality rates are equal for both occupants with seat belts and occupants without seat belts.The alternative hypothesis is H1: The fatality rates are not equal for both occupants with seat belts and occupants without seat belts.

Test statisticThe test statistic used for hypothesis testing is the z-test. The formula for the z-test statistic is given as;

z=[tex](p1-p2)\sqrt(p(1-p)*(1/n1 + 1/n2))[/tex]

Where p1 and p2 are the sample proportions, p is the pooled proportion, n1 and n2 are the sample sizes of occupants with and without seat belts respectively.

z=[tex](17/7612 - 27/2756)\sqrt(((17+27)/(7612+2756))*(1-((17+27)/(7612+2756)))*(1/7612 + 1/2756))[/tex]

= -4.02

Since the sample size is greater than 30, the z-distribution can be used.

The p-value for a 2-tailed test is given as P(z>4.02) + P(z<-4.02) = 0.00006

ConclusionThe P-value is less than the significance level of a=0.05, so the fatality rate is higher for those not wearing seat belts. Hence the null hypothesis is rejected and it is concluded that seat belts are effective in reducing fatalities.Confidence IntervalThe confidence interval can be calculated as;

[tex](p1-p2) \pm zα/2 * \sqrt(p1(1-p1)/n1 + p2(1-p2)/n2)[/tex] = (0.007, 0.023)

ConclusionThe confidence interval limits do not include zero, hence it appears that the fatality rate is different for occupants wearing seat belts and those who do not wear seat belts.

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find f. f '(t) = sec(t)(sec(t) tan(t)), − 2 < t < 2 , f 4 = −7

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This problem can be solved with integration. The first step is to integrate f '(t) dt. We use the integration formula for this purpose.The function f(t) has been found using the differential equation f'(t) = sec(t)(sec(t) tan(t))

f '(t) = sec(t)(sec(t) tan(t))

Integral calculus is used to find f(t) since it deals with derivatives.

Let's solve it.

f '(t) = sec(t)(sec(t) tan(t)) f(t) = ∫f '(t) dt

Using the integration formula,

f(t) = ∫ sec^2(t)dt = tan(t) + C [where C is the constant of integration]

f(t) = tan(t) + C

Now we have f(4) = -7. To find the value of C, we'll use

f(4) = -7=tan(4) + C7 = 1.1578 + C C = -7 - 1.1578 = -8.1578

Thus, the function

f(t) = tan(t) - 8.1578.

Therefore,The function f(t) has been found using the differential equation f'(t) = sec(t)(sec(t) tan(t))

In conclusion,f '(t) = sec(t)(sec(t) tan(t)) has been solved using integration. The value of the constant of integration, C, was found using the value of f(4) = -7. The function f(t) = tan(t) - 8.1578 is the solution to the differential equation.

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In a regression analysis involving 30 observations, the following estimated regression equation was obtained. ŷ 17.6 +3.8x12.3x2 + 7.6x3 +2.7x4 For this estimated regression equation SST = 1805 and S

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The regression equation obtained is ŷ = 17.6 + 3.8x₁ + 2.3x₂ + 7.6x₃ + 2.7x₄.In this problem, SST (Total Sum of Squares) is known which is 1805 and SE (Standard Error) is not known and hence we cannot find the value of R² or R (Correlation Coefficient)

Given that the regression equation obtained is ŷ = 17.6 + 3.8x₁ + 2.3x₂ + 7.6x₃ + 2.7x₄.In the above equation, ŷ is the dependent variable and x₁, x₂, x₃, x₄ are the independent variables. The given regression equation is in the standard form which is y = β₀ + β₁x₁ + β₂x₂ + β₃x₃ + β₄x₄.

The equation is then solved to get the values of the coefficients β₀, β₁, β₂, β₃, and β₄.In this problem, SST (Total Sum of Squares) is known which is 1805 and SE (Standard Error) is not known and hence we cannot find the value of R² or R (Correlation Coefficient).The regression equation is used to find the predicted value of the dependent variable y (ŷ) for any given value of the independent variable x₁, x₂, x₃, and x₄.

The regression equation is a mathematical representation of the relationship between the dependent variable and the independent variable. The regression analysis helps to find the best fit line or curve that represents the data in the best possible way.

he regression equation obTtained is ŷ = 17.6 + 3.8x₁ + 2.3x₂ + 7.6x₃ + 2.7x₄. SST (Total Sum of Squares) is known which is 1805 and SE (Standard Error) is not known. The regression equation is used to find the predicted value of the dependent variable y (ŷ) for any given value of the independent variable x₁, x₂, x₃, and x₄. The regression analysis helps to find the best fit line or curve that represents the data in the best possible way.

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In an analysis of variance where the total sample size for the experiment is nTand the number of populations is k, the mean square due to error is SSE/(k-1). 0 SSTR/k

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The ANOVA method is very useful when conducting research involving multiple groups or populations, as it allows researchers to test for significant differences in the means of multiple populations in a single test.

Analysis of variance is an extremely popular approach for examining the significance of population variations. It's used to estimate the population variance of two or more groups by comparing the variance between the groups to the variance within them.

ANOVA (analysis of variance) is a statistical method for determining whether or not there is a significant difference between the means of two or more groups. The total sample size in the experiment is nT, and there are k populations. The mean square due to error is SSE/(k-1), while the mean square due to treatment is SSTR/k.

The F-statistic, which is used to test the null hypothesis that there is no difference between the means of the populations, is calculated by dividing the mean square due to treatment by the mean square due to error. If the F-statistic is high, it suggests that there is a significant difference between the means of the populations, and the null hypothesis should be rejected.

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Question 11 < > For a confidence level of 98% with a sample size of 18, find the critical t value. Add Work > Next Question

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The critical t-value is 2.898.

Given data:

The confidence level = 98%Sample size = 18Formula used: T-distribution formula is given as;$$t=\frac{x-\mu}{s/\sqrt{n}}$$ Where,x = the sample meanµ = the population means = the sample standard deviation n = sample size.

Calculation: Degree of freedom = n - 1 = 18 - 1 = 17 The significance level (α) = 1 - 0.98 = 0.02 From the T-distribution table, the critical t-value for the degree of freedom of 17 and a significance level of 0.02 is 2.898. Adding these values to the above formula, we get;$$t=\frac{x-\mu}{s/\sqrt{n}}$$$$2.898=\frac{x-\mu}{s/\sqrt{18}}$$

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.evaluate the given integral by changing to polar coordinates:
(assume the integral sign is this μ)
μμR (2x - y) dA, where R is the region in the first quardrant enclosed by the circle x^2 + y^2 = 4 and the lines x =0 and y =x

Answers

The given integral by changing to polar coordinates becomes 4sinθ.

Now, if we're going to be converting an integral in Cartesian coordinates into an integral in polar coordinates we are going to have to make sure that we have also converted all the

x and y into polar coordinates as well. To do this we will need to remember the following conversion formulas,

x=rcosθ, y=rsinθ

x²+y²=r²

We are now ready to write down a formula for the double integral in terms of polar coordinates.

∫∫Df(x, y)dA= [tex]\int\limits^\beta_\alpha {} \, \int\limits^{h1(\theta)}_{h2(\theta)} {f(cos\theta, rsin\theta)} \, rdxrd\theta[/tex]

Consider the integral

∫∫R(2x-y)dAR : x²+y²=4, x=0, y=x

We have the polar coordinate as follows

x=rcosθ, y=rsinθ

⇒x²+y²=r² x=0

⇒cosθ=0

⇒θ = π/2 y=x

⇒cosθ=sinθ

⇒tanθ=1

⇒θ=π/4

We can use this to get the limits of integration for r and θ as follows

0≤r<2

π/4≤θ≤π/2

Therefore, the integral become as follows

∫∫R(2x-y)dA = [tex]\int\limits^{\frac{\pi }{4} }_ {{\frac{\pi }{2} }} \,\int\limits^2_0 {2rcos\theta-rsin\theta} \, drd\theta[/tex]

= [tex]\int\limits^{\frac{\pi }{4} }_ {{\frac{\pi }{2} }} \,[-\frac{1}{2} r^2sin\theta+r^2cos\theta]^2_0[/tex]

= [tex]\int\limits^{\frac{\pi }{4} }_ {{\frac{\pi }{2} }} \,[4cos(\theta)-2sin(\theta))d\theta=[4sin(\theta)[/tex]

Therefore, the given integral by changing to polar coordinates becomes 4sinθ.

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"Your question is incomplete, probably the complete question/missing part is:"

Find ∫∫R(2x-y)dA, where R is the region in the first quadrant enclosed by the circle x²+y²=4, and the lines x=0 and y=x. Solve the double integral in polar form (drdθ) showing work and provide a graphical illustration.

Please label A-I for the solutions and
answers thank you!
a. Fit the model by the method of least squares. Answer in 4 decimal places. b. Determine whether there is any association between the number of minutes worked out in a thread mill machine and the hea

Answers

r is near +1, there is areas of strength for a connection between's the quantity of minutes worked out and the pulse. Consequently, r = 0.8836 is the correlation coefficient. This suggests that as the number of minutes worked out increases, so does the heart rate

The data given in the request is about the connection between the amount of minutes worked out in a treadmill machine and the beat (beats every second) for 10 unmistakable people. A straightforward linear regression model can be used to predict the heart rate as the dependent variable, and least squares can be used to fit the worked-out number of minutes as the independent variable.

The amount of squared contrasts between the anticipated and real upsides of the reliant variable are limited utilizing this methodology. y = mx + c is the condition for the line, where y is the reliant variable (pulse), x is the free factor (number of worked-out minutes), m is the incline of the line (relapse coefficient), and y is the y-block. The values of m and c can be found using the following formulas: With the given data, the following calculations are made: m = (nxy - xy)/(nx2 - (x)2) c = (y - mx)/n, where n is the quantity of perceptions, xy is the amount of results of x and y, x and y are the amount of x and y, separately, and x2 is the amount of squares of x.

The line's condition is y = 4.7663x + 53.2999b.) The relationship between the number of minutes worked out and the heart rate can be determined using the correlation coefficient (r). The formula for r is: r = (nxy - xy)/sqrt[(nx2 - (x)2)(ny2 - (y)2)] The accompanying computations are made with the given information: Since r is near +1, there is areas of strength for a connection between's the quantity of minutes worked out and the pulse. Consequently, r = 0.8836 is the correlation coefficient. This suggests that as the number of minutes worked out increases, so does the heart rate.

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rena wrote all integers from 1 to 12 how many digits did she write

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Rena wrote all integers from 1 to 12. How many digits did she write?Rena wrote all the integers from 1 to 12. To find out the number of digits she wrote, we will need to count the number of digits she wrote between 1 and 12 inclusive.

In between 1 and 12, we have the following numbers:{1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12}The integers from 1 to 9 are single-digit numbers, so Rena wrote 9 digits to represent these integers. For integers from 10 to 12, Rena wrote 2 digits each. So the number of digits Rena wrote is:9 + 2(3) = 9 + 6 = 15Therefore, Rena wrote 15 digits.More than 120 words:We can also apply the formula to find the number of digits required to write an integer n. The formula is given by 1+ floor(log10(n)).

Therefore, to find the number of digits Rena wrote, we can calculate the number of digits required to write each of the integers from 1 to 12 and then add them up. Let's see how this works:1 has one digit2 has one digit3 has one digit4 has one digit5 has one digit6 has one digit7 has one digit8 has one digit9 has one digit10 has two digits11 has two digits12 has two digitsUsing the formula above, we can calculate the number of digits Rena wrote as:1 + 1 + 1 + 1 + 1 + 1 + 1 + 1 + 2 + 2 + 2= 15Therefore, Rena wrote 15 digits.

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Water is pumped into a cylindrical tank, standing vertically, at a decreasing rate given at time t minutes by r(t) = 100 - 6t ft^3/min for 0 lessthanorequalto t lessthanorequalto 8. The tank has a radius of 6 feet, and it is empty when t = 0. Find the depth of water in the tank at t = 3. The water is feet deep after 3 minutes of pumping.

Answers

To find the depth of water in the tank at t = 3 minutes, we need to calculate the volume of water that has been pumped into the tank by that time.

The rate at which water is pumped into the tank is given by r(t) = 100 - 6t ft^3/min.

To find the volume of water pumped into the tank from t = 0 to t = 3, we integrate the rate function over the interval [0, 3]:

V = ∫[0, 3] (100 - 6t) dt

V = [100t - 3t^2/2] evaluated from 0 to 3

V = (100(3) - 3(3)^2/2) - (100(0) - 3(0)^2/2)

V = (300 - 27/2) - 0

V = 300 - 13.5

V = 286.5 ft^3

The volume of water pumped into the tank after 3 minutes is 286.5 ft^3.

To find the depth of water in the tank, we need to divide this volume by the cross-sectional area of the tank.

The tank has a radius of 6 feet, so its cross-sectional area is given by:

A = πr^2

A = π(6)^2

A = 36π ft^2

Now, we can find the depth of water:

depth = V / A

depth = 286.5 / (36π)

depth ≈ 2.53 ft

Therefore, the depth of water in the tank at t = 3 minutes is approximately 2.53 feet.

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Comment on each of the following statements: (a) (2 points) "If V~ U(-1,0) and W~ U(-1, 1), then V2 and W2 follow the same distribution." (b) (2 points) "The mean, mode and median are all the same for

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Statement (a) is false and Statement (b) is true.

The given random variables V and W follow two different uniform distributions: V ~ U(-1, 0) and W ~ U(-1, 1), and they are independent.

The probability density function of a uniform distribution is given by f(x) = 1 / (b-a) for a ≤ x ≤ b.

The mean of V and W is (a+b)/2, and their variance is (b-a)^2 / 12.

To compute the mean and variance of V^2 and W^2, we find that the mean of V^2 is (b^2 + a^2)/2, and the mean of W^2 is (b^2 + a^2)/2. The variance of V^2 is (b-a)^2 / 12 + ((b+a)/2)^2, and the variance of W^2 is (b-a)^2 / 12 + ((b+a)/2)^2. Thus, V^2 and W^2 have the same distribution as their respective random variables V and W.

When a distribution is symmetrical, the mean, mode, and median are the same. This holds true for various symmetric distributions, such as the normal distribution. Therefore, the statement is true.

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determine whether the series converges or diverges. [infinity] n 5n3 2 n = 1

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Since this ratio does not approach to a number less than 1 as n approaches to infinity, it diverges. So, we can conclude that the given series diverges.

The given series is as follows:

[infinity] n 5n3 2 n = 1

Now, to find out whether the given series converges or diverges we will use the ratio test which states that if the absolute value of the ratio of the (n+1) th term to nth term of the series is less than 1, then the series converges, otherwise it diverges.

So, let's apply the ratio test to the given series to determine its convergence or divergence.

The ratio of the (n+1) th term to nth term of the given series is given as follows:

|a(n+1)/a(n)|= |5(n+1)^3/(2(n+1)) ÷ 5n^3/(2n)|

= |5(n+1)^3/5n^3| × |2n/(2(n+1))|

= [(n+1)/n]^3 × [1/(1+1/n)]=>|a(n+1)/a(n)|

= [(n+1)/n]^3 × [1/(1+1/n)]

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Show that if G is a connected graph and every vertex has even degree, gr(v) = 2k and v is the only cut-vertex of G, then G-v has k connected components.

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G - v has k connected components.

Given that G is a connected graph and every vertex has even degree, gr(v) = 2k and v is the only cut-vertex of G, then we need to show that G - v has k connected components.

In order to show that G - v has k connected components, we will make use of the following theorem.

Theorem: Let G be a graph. Then G has a cut-vertex if and only if there exists u ∈ V(G) such that at least two components of G - u are not connected by a path containing u.Proof: If G has a cut-vertex v, then v divides G into two components G1 and G2.

Let u be any vertex in G1. Then G - u is disconnected, since there is no path connecting G1 and G2 which does not pass through v.On the other hand, if there exists u ∈ V(G) such that at least two components of G - u are not connected by a path containing u, then G has a cut-vertex.

To see this, let G1 and G2 be two components of G - u that are not connected by a path containing u.

Then v = u is a cut-vertex of G, since v separates G into G1 and G2, and every path between G1 and G2 must contain v.Now, let us apply this theorem to the given graph G.

Since v is the only cut vertex of G, every vertex in G - v must belong to the same component of G - v.

If there were more than one component of G - v, then v would not be the only cut-vertex of G.

Therefore, G - v has only one component.

Since every vertex in G has even degree, we can apply the handshaking lemma to conclude that the number of vertices in G is even.

Therefore, the number of vertices in G - v is odd. Let k be the number of vertices in G - v.

Then k is odd and every vertex in G - v has even degree.

Therefore, G - v is a connected graph with k vertices, and every vertex has an even degree. By the same argument, every connected graph with k vertices and every vertex having an even degree is isomorphic to G - v.

Therefore, G - v has k connected components.

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