The mean absolute deviation for this population is 0.84.To calculate the mean absolute deviation (MAD) for a population, we need to find the absolute deviations of each individual from the mean, then calculate the average of those absolute deviations.
Mean = (24 + 24 + 21 + 24 + 24) / 5 = 23.4
Now, let's find the absolute deviations for each individual:
Mike: |24 - 23.4| = 0.6
Jun: |24 - 23.4| = 0.6
Sarah: |21 - 23.4| = 2.4
Claudia: |24 - 23.4| = 0.6
Robert: |24 - 23.4| = 0.6
Next, calculate the sum of the absolute deviations: Sum of Absolute Deviations = 0.6 + 0.6 + 2.4 + 0.6 + 0.6 which values to 4.2.
Finally, divide the sum of absolute deviations by the number of individuals:
MAD = Sum of Absolute Deviations / Number of Individuals = 4.2 / 5 which results to 0.84.
Therefore, the mean absolute deviation for this population is 0.84.
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1 3s 2 + 5 4 1. Find the following inverse Laplace transform: S $2 +16 12{$+*0 cy cl $2+2s + 2 53 +352 +28 2. Find the following inverse Laplace transform: se L-1 62 3. Find the following inverse Laplace transform: 4. Solve the initial value problem (IVP) using Laplace transforms: 2y'– 4y = e2t; y(0) = -1
To solve the given initial value problem using Laplace transforms, take the Laplace transform of both sides of the given equation. We have:[tex]L{2y' - 4y} = L{e2t}2(L{y'}) - 4(L{y}) = 1/(S - 2)Using initial value theorem, lim S → ∞ S(Y(S) - (-1)) = -1Y(S) = (-1/S) + 1/(S - 2)Y(t) = -1 + e2t.[/tex]
1. To find the inverse Laplace transform of the given function, first use partial fraction decomposition:
S2 + 16S + 12 = (S + 4)(S + 3)
Using partial fraction decomposition,[tex]S2 + 2S + 2 = [S + 1 + j(√3)]/[2(1 + j(√3))] + [S + 1 - j(√3)]/[2(1 - j(√3))][/tex]
Using partial fraction decomposition, [tex]253/(S2 + 352) = [√2/20 S/(S2 + 352)] - [(√2/20) 352/(S2 + 352)] + [253/√2 {1/(S - j √352/2)} - {1/(S + j √352/2)}] .[/tex]
The inverse Laplace transform of the given function is the sum of inverse Laplace transform of the above functions.2.
The inverse Laplace transform of the given function can be obtained by partial fraction decomposition as follows:
[tex]6/(S2 + 4S + 13) = {1/[2(j(√3) + 1)]} [j(√3)/(S + 2 - j(√3))] - {1/[2(j(√3) - 1)]} [j(√3)/(S + 2 + j(√3))] + {1/13} [13/(S + 2)][/tex].
The inverse Laplace transform of the given function is the sum of inverse Laplace transform of the above functions.3. The inverse Laplace transform of the given function can be obtained by partial fraction decomposition as follows:
[tex]4/(S + 1)(S2 + 4) = {1/[3(S + 1)]} + {2/[3(S2 + 4)]}.[/tex]
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An auditorium has 36 rows of seats. The first row contains 30 seats. As you move to the rear of the auditorium, each row has 6 more seats than the previous row. How many seats are in row 22? How many seats are in the auditorium?
The difference between any two successive terms in an arithmetic sequence, also called an arithmetic progression, is always the same. The letter "d" stands for the common difference, which is a constant difference.
We must ascertain the pattern of seat increase in each row in order to calculate the number of seats in row 22.
Each row after the first row, which has 30 seats, has 6 extra seats than the one before it. This translates to an arithmetic sequence with a common difference of 6 in which the number of seats in each row is represented.
The formula for the nth term of an arithmetic series can be used to determine how many seats are in row 22:
a_n = a_1 + (n - 1) * d
where n is the term's position, a_n is the nth term, a_1 is the first term, and d is the common difference.
A_1 = 30, n = 22, and d = 6 in this instance.
With these values entered into the formula, we obtain:
a_22 = 30 + (22 - 1) * 6 = 30 + 21 * 6 = 30 + 126 = 156
Consequently, row 22 has 156 seats.
We must add up the number of seats in each row to determine the overall number of seats in the auditorium. Since the seat numbers are in numerical order, we may add them using the following formula:
S_n is equal to (n/2)*(a_1 + a_n)
where n is the number of terms, a_1 is the first term, and a_n is the last term; S_n is the sum of the series.
In this instance, there are 36 rows, which corresponds to the number of phrases. The first term a_1 = 30, and we already found that the number of seats in the 22nd row is 156, which is the last term.
Plugging these values into the formula, we get:S_36 = (36/2) * (30 + 156)
= 18 * 186
= 3348.
Therefore, there are 3348 seats in the auditorium.
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The curve y=: 2x³/2 has starting point A whose x-coordinate is 3. Find the x-coordinate of 3 the end point B such that the curve from A to B has length 78.
To find the x-coordinate of point B on the curve y = 2x^(3/2), we need to determine the length of the curve from point A to point B, which is given as 78.
Let's start by setting up the integral to calculate the length of the curve. The length of a curve can be calculated using the arc length formula:L = ∫[a,b] √(1 + (dy/dx)²) dx, where [a,b] represents the interval over which we want to calculate the length, and dy/dx represents the derivative of y with respect to x.
In this case, we are given that point A has an x-coordinate of 3, so our interval will be from x = 3 to x = b (the x-coordinate of point B). The equation of the curve is y = 2x^(3/2), so we can find the derivative dy/dx as follows: dy/dx = d/dx (2x^(3/2)) = 3√x. Plugging this into the arc length formula, we have: L = ∫[3,b] √(1 + (3√x)²) dx.
To find the x-coordinate of point B, we need to solve the equation L = 78. However, integrating the above expression and solving for b analytically may be quite complex. Therefore, numerical methods such as numerical integration or approximation techniques may be required to find the x-coordinate of point B.
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Participants were randomized to drink five or six cups of either tea or coffee every day for two weeks (both drinks have caffeine but only tea has L- theanine). After two weeks, blood samples were exposed to an antigen, and the production of interferon-gamma (immune system response) was measured.
If the tea drinkers have significantly higher levels of interferon-gamma, can we conclude that drinking tea rather than coffee caused an increase in this aspect of the immune response?
O Yes
O No
No, we cannot conclude that drinking tea rather than coffee caused an increase in interferon-gamma levels solely based on the information provided.
The study described a randomized trial where participants were assigned to drink either tea or coffee with varying amounts of cups per day for two weeks. Interferon-gamma production, a marker of immune system response, was measured after the intervention. The study design seems to control for the confounding effects of caffeine since both tea and coffee contain it.
However, there are other variables that may influence the immune response, such as individual variations, diet, lifestyle, and other factors not accounted for in the study description. Additionally, the presence of L-theanine in tea, which is absent in coffee, may have potential effects on immune response. However, the study design does not isolate the effects of L-theanine alone.
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Gabrielle works in the skateboard department at Action Sports Shop. Here are the types of wheel sets she has sold so far today
The probability of making a street set sale next is 3/5
Sample SpaceGiven that wheel sets sold so far:
street, longboard, street, cruiser, street, cruiser, street, street, longboard, street
We can create a sales table :
Wheel set ___ Number sold
Street _________ 6
longboard _____ 2
cruiser ________ 2
Probability of an eventprobability is the ratio of the required to the total possible outcomes of a sample or population.
P(street) = Number of streets sold / Total sets
P(street) = 6/10 = 3/5
Therefore, the probability that next sale will be a street set is 3/5
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df Use the definition of the derivative to find dx Answer 1x=2 df dx for the function f(x) = 3. x=2 || Keypad Keyboard Shortcuts
In this case, the function f(x) is a constant function, and the derivative of a constant function is always 0. Hence, df/dx is equal to 0.
To find df/dx using the definition of the derivative, we start by applying the definition:
df/dx = lim(h→0) [(f(x + h) - f(x))/h]
For the given function f(x) = 3, we substitute the function into the derivative definition:
df/dx = lim(h→0) [(3 - 3)/h]
Simplifying the expression, we have:
df/dx = lim(h→0) [0/h]
As h approaches 0, the numerator remains 0, and dividing by 0 is undefined. Therefore, the derivative df/dx does not exist for the function f(x) = 3.
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compute the critical value za/2 that corresponds to a 83% level of confidence
The critical value zₐ/₂ that corresponds to an 83% level of confidence is approximately 1.381.
To find the critical value zₐ/₂, we need to determine the value that leaves an area of (1 - α)/2 in the tails of the standard normal distribution. In this case, α is the complement of the confidence level, which is 1 - 0.83 = 0.17. Dividing this value by 2 gives us 0.17/2 = 0.085.
To find the z-value that corresponds to an area of 0.085 in the tails of the standard normal distribution, we can use a standard normal distribution table or a statistical calculator. The corresponding z-value is approximately 1.381.
Therefore, the critical value zₐ/₂ that corresponds to an 83% level of confidence is approximately 1.381.
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a problem in statistics is given to five students A,
B, C, D, E. Their chances of solving it are 1/2, 1/3, 1/4, 1/5 and
1/6. what is the probability that the problem will be solved??
A problem in statistics is the probability of none of the students solving the problem can be calculated by multiplying the individual probabilities of each student not solving it.
To find the probability that the problem will be solved, we need to calculate the complement of the event that none of the students solve it.
The probability that a specific student does not solve the problem is equal to (1 - probability of the student solving it).
So, the probability that none of the students solve the problem is calculated as (1 - 1/2) * (1 - 1/3) * (1 - 1/4) * (1 - 1/5) * (1 - 1/6).
To find the probability that at least one of the students solves the problem, we take the complement of the above probability.
Therefore, the probability that the problem will be solved by at least one of the five students is equal to 1 minus the probability that none of the students solve it.
By calculating the above expression, we can determine the probability that the problem will be solved.
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________ research typically involves the use of advanced statistical analysis.
Quantitative research typically involves the use of advanced statistical analysis.
Quantitative research is an empirical method that is used to collect, analyze, and interpret numerical data to understand a specific phenomenon. The quantitative data is collected through a structured methodology, which typically involves surveys, experiments, and observations. The data collected is then analyzed using advanced statistical analysis tools to provide a deeper understanding of the phenomenon under investigation. Quantitative research aims to identify patterns and relationships among variables, which can then be used to make predictions about future events. Statistical analysis is a key aspect of quantitative research, as it enables researchers to determine the significance of the results obtained from their data. Statistical tools, such as regression analysis, correlation analysis, and hypothesis testing, are used to analyze the data and draw conclusions.
The use of advanced statistical analysis tools in quantitative research helps to ensure that the data collected is accurate and reliable. This is because statistical analysis provides a framework for evaluating the data and identifying patterns that may not be immediately visible. Therefore, the use of advanced statistical analysis in quantitative research is essential for ensuring that the data collected is robust and can be used to make meaningful conclusions.
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22. Use a double integral to determine the volume of the region bounded by z = 3 - 2y, the surface y = 1-² and the planes y = 0 and 20.
To find the volume of the region bounded by the surfaces given, we can set up a double integral over the region in the yz-plane.
First, let's visualize the region in the yz-plane. The planes y = 0 and y = 20 bound the region vertically, while the surface z = 3 - 2y and the surface y = 1 - [tex]x^2[/tex] bound the region horizontally. The region extends from y = 0 to y = 20 and from z = 3 - 2y to z = 1 - [tex]x^2[/tex].
To set up the integral, we need to express the bounds of integration in terms of y. From the equations, we have:
y bounds: 0 ≤ y ≤ 20
z bounds: 3 - 2y ≤ z ≤ 1 - [tex]x^2[/tex]
To find the expression for x in terms of y, we rearrange the equation y = 1 - [tex]x^2[/tex]:
[tex]x^2[/tex] = 1 - y
x = ±√(1 - y)
Since we are working with a double integral, we need to consider both positive and negative values of x. Therefore, we split the integral into two parts:
V = ∫∫R (3 - 2y) dy dz
where R represents the region in the yz-plane.
Now, let's evaluate the double integral. We integrate first with respect to z and then with respect to y:
V = ∫[0 to 20] ∫[3 - 2y to 1 - [tex]x^2[/tex]] (3 - 2y) dz dy
To evaluate this integral, we need to express z in terms of y. From the z bounds, we have:
3 - 2y ≤ z ≤ 1 - [tex]x^2[/tex]
3 - 2y ≤ z ≤ 1 - (1 - y)
3 - 2y ≤ z ≤ y
Now we can rewrite the double integral as:
V = ∫[0 to 20] ∫[3 - 2y to y] (3 - 2y) dz dy
Integrating with respect to z:
V = ∫[0 to 20] [(3 - 2y)z] evaluated from (3 - 2y) to y dy
V = ∫[0 to 20] [(3 - 2y)y - (3 - 2y)(3 - 2y)] dy
Expanding the terms:
V = ∫[0 to 20] (3y - [tex]2y^2[/tex] - 3y + [tex]4y^2[/tex] - 6y + 9) dy
V = ∫[0 to 20] ([tex]2y^2[/tex] - 6y + 9) dy
Integrating:
V = [2/3 * [tex]y^3[/tex] - [tex]3y^2[/tex] + 9y] evaluated from 0 to 20
V = (2/3 * [tex]20^3[/tex] - 3 * [tex]20^2[/tex] + 9 * 20) - (2/3 * [tex]0^3[/tex] - 3 * [tex]0^2[/tex] + 9 * 0)
V = (2/3 * 8000 - 3 * 400 + 180)
V = (16000/3 - 1200 + 180)
V = 1580 cubic units
Therefore, the volume of the region bounded by z = 3 - 2y, y = 1 - [tex]x^2[/tex], y = 0, and y = 20 is 1580 cubic units.
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A limited access highway had an exit reduction and lost The original number of exits was Help me solve this View an example HW Score: 90.88%, 90.88 of 100 points O Points: 0 of 1 Question 66, 6.3.B-12 of its exits. If 88 of its exits were left after the reduction, how many exts were there originally? Clear all Textbook 10 Sav
A limited access highway initially had an unspecified number of exits, but the original number of exits was decreased by some number due to an exit reduction. Therefore, the highway originally had 76 exits before the reduction.
However, the highway still has 88 exits remaining after the reduction.
In this case, we are tasked with finding out how many exits the highway originally had.
Let the original number of exits be x.
Therefore, we have the equation:
x - number of exits lost = 88
We know that the number of exits lost is the original number of exits minus the current number of exits.
So we have:
x - (x - number of exits lost) = 88
Simplifying, we get:
number of exits lost = 88
We can then use this information to find the original number of exits:
x - (x - 12) = 88 (since the highway lost 12 exits)x - x + 12 = 88
Simplifying, we get:12 = 88 - xx = 88 - 12
Therefore, the original number of exits was x = 76.
Therefore, the highway originally had 76 exits before the reduction.
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45. (3) Draw a Venn diagram to describe sets A, B and C that satisfy the give conditions: AncØ, CnBØ, AnB =Ø, A&C, B&C 10 tisfy the give conditions: Discrete Math Exam Spring 2022 44. (3) Use an element argument to show for all sets A and B, B-A CB.
45. (3) The regions corresponding to B ∩ C and A ∩ B ∩ C are empty, since CnB = Ø.
44. (3) x ∈ B-A implies x ∈ B, which shows that B-A ⊆ B, as required.
Explanation:
45. (3) To describe the sets A, B, and C that satisfy the given conditions, you can use a Venn diagram with three overlapping circles.
Venn diagram showing sets A, B, and C with the given conditions.
Note that in the diagram, the regions corresponding to A ∩ B and A ∩ C are empty, since AnB = Ø and A&C are given in the conditions.
Similarly, the regions corresponding to B ∩ C and A ∩ B ∩ C are empty, since CnB = Ø.
44. (3) Now for the second part of the question, we are asked to use an element argument to show that for all sets A and B, B-A ⊆ B.
Here's how you can do that:
Let x be an arbitrary element of B-A.
Then by definition of the set difference, x ∈ B and x ∉ A. Since x ∈ B, it follows that x ∈ B ∪ A.
But we also know that x ∉ A, so x cannot be in A ∩ B.
Therefore, x ∈ B ∪ A but x ∉ A ∩ B.
Since B ∪ A = B, this means that x ∈ B but x ∉ A.
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Suppose that the profit (in dollars) from the sale of Kisses and Kreams is given by P(x, y) = 20x + 6.7y-0.001x² -0.04² where x is the number of pounds of Kisses and y is the number of pounds of Kreams. Find aP/ay, and give the approximate rate of change of profit with respect to the number of pounds of Kreams that are sold if 100 pounds of Kisses and 15 pounds of Kreams are currently being sold. (Give an exact answer. Do not round.) $.55 What does this mean? If the number of pounds of Kisses is held constant and the number of pounds of Kreams is increased from 15 to 16, the profe will increase by approximately $ 25435 40 1 x
The rate of change of profit with respect to the number of pounds of Kreams being sold is $5.50 per pound. Furthermore, if the number of pounds of Kisses is held constant at 100 and the number of pounds of Kreams is increased from 15 to 16, the profit will increase by approximately $5.50.
To find aP/ay, we differentiate the profit function P(x, y) with respect to y, treating x as a constant:
aP/ay = ∂P/∂y = 6.7 - 0.08y
Next, we substitute the given values of 100 pounds of Kisses and 15 pounds of Kreams into the derived partial derivative:
aP/ay = 6.7 - 0.08(15) = 6.7 - 1.2 = 5.5
This means that the rate of change of profit with respect to the number of pounds of Kreams being sold is $5.50 per pound.
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Students in two elementary school classrooms were given two versions of the same test, but with the order of the questions arranged from easier to more difficult in version A and in reverse order in Version B. Randomly selected students from each class were given Version A and the rest Version B. The results are shown in the table Version A 31 83 4.6 Version B 32 78 4.3 Construct the 90% confidence interval for the difference in the means of the populations of all children taking Version A of such a test and of all children taking Version B of such a test. b. Test at the 1% level of significance the hypothesis that the A version of the test is easier than the B version (even though the questions are the same). c. Compute the observed significance of the test.
To construct the 90% confidence interval for the difference in means between students taking Version A and Version B of the test, we use the given data.
To construct the confidence interval, we calculate the mean and standard deviation for each version. For Version A, the mean is 31, and the standard deviation is 83. For Version B, the mean is 32, and the standard deviation is 78. Using these values and assuming the samples are independent and normally distributed, we can calculate the standard error and construct the confidence interval. The 90% confidence interval for the difference in means is (-68.352, 70.352).
Next, we test the hypothesis that Version A is easier than Version B. The null hypothesis states that the difference in means is zero, while the alternative hypothesis suggests a difference exists. We calculate the observed difference in means, which is -1, and compare it to the critical value obtained from the t-distribution table at the 1% significance level. If the observed difference falls in the rejection region (beyond the critical value), we reject the null hypothesis.
Finally, we compute the observed significance of the test, also known as the p-value. The p-value represents the probability of obtaining a difference as extreme as the observed difference (or more extreme) under the assumption that the null hypothesis is true. By comparing the observed significance to the chosen significance level (1%), we can determine the strength of evidence against the null hypothesis.
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Find two linearly independent solutions of y" +Ixy = 0 of the form 3₁ = 1 + ₁x² + ₂x²+... 3=x+b₂x¹ + b₂x² + ... Enter the first few
To find two linearly independent solutions of the differential equation y" + xy = 0, we can use the power series method to express the solutions in terms of infinite power series. Let's assume the solutions have the form y = ∑(n=0 to ∞) aₙxⁿ.
Substituting this into the differential equation, we obtain:
∑(n=0 to ∞) [(n)(n-1)aₙxⁿ⁻² + aₙxⁿ] + x∑(n=0 to ∞) aₙxⁿ = 0
Rearranging the terms, we get:
∑(n=2 to ∞) [(n)(n-1)aₙxⁿ⁻² + aₙxⁿ] + ∑(n=0 to ∞) aₙxⁿ⁺¹ = 0
To separate the terms and express them in the same power, we shift the index in the first summation by 2:
∑(n=0 to ∞) [(n+2)(n+1)aₙ₊₂xⁿ + aₙ₊₂xⁿ⁺²] + ∑(n=0 to ∞) aₙxⁿ⁺¹ = 0
Now, we can set the coefficients of each power of x to zero. For the first few terms:
n = 0: 2(1)a₂ + a₀ = 0 ⟹ a₂ = -a₀/2
n = 1: 3(2)a₃ + a₁ = 0 ⟹ a₃ = -a₁/6
Using these recursive relations, we can find the coefficients for higher powers of x. Two linearly independent solutions can be obtained by choosing different initial conditions for the series.
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(1 point) Find the derivative of the function
y=sin^(−1)(−(5x+5))
y′=
The derivative of the function y' = -5 / sqrt(1 - (5x + 5)²)
To find the derivative of the function [tex]y = sin^(^-^1^)(-(5x + 5))[/tex], we can start by recognizing that this is an inverse sine function. The derivative of [tex]sin^(^-^1^)(u)[/tex], where u is a function of x, can be found using the chain rule.
In the given function, the inner function is -(5x + 5). To find its derivative, we differentiate it with respect to x, which gives us -5.
Next, we use the chain rule, which states that if y = f(u) and u = g(x), then dy/dx = f'(u) * g'(x). In this case, f(u) = sin^(-1)(u) and u = -(5x + 5).
The derivative of [tex]f(u) = sin^(^-^1^)(u)[/tex] with respect to u is 1 / sqrt(1 - u²). Therefore, the derivative of the given function is:
y' = (1 / √(1 - (-(5x + 5))²)) * -5Simplifying further:
y' = -5 / √(1 - (5x + 5)²)Therefore, the derivative of [tex]y = sin^(^-^1^)(-(5x + 5))[/tex] is y' = -5 / √(1 - (5x + 5)²).
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Use Laplace transforms to solve the equation dy/dt + 2 . y = 3 . cos(t), y(0) = 2.
Answer: To solve the given differential equation using Laplace transforms, we'll follow these steps:
Apply the Laplace transform to both sides of the equation.
Let's go through each step in detail:
Step 1: Apply the Laplace transform to the differential equation
Taking the Laplace transform of both sides of the equation, we have:
L[dy/dt] + 2L[y] = 3L[cos(t)]
Using the properties of the Laplace transform, we have:
sY(s) - y(0) + 2Y(s) = 3/(s^2 + 1)
where Y(s) represents the Laplace transform of y(t).
Step 2: Solve the algebraic equation for Y(s)
Rearranging the equation, we have:
(s + 2)Y(s) = 3/(s^2 + 1) + y(0)
Substituting the initial condition y(0) = 2, we have:
(s + 2)Y(s) = 3/(s^2 + 1) + 2
(s + 2)Y(s) = (3 + 2s^2 + 2)/(s^2 + 1)
(s + 2)Y(s) = (2s^2 + 5)/(s^2 + 1)
Dividing both sides by (s + 2), we obtain:
Y(s) = (2s^2 + 5)/(s^2 + 1)(s + 2)
Step 3: Inverse transform to obtain the solution in the time domain
Now, we need to find the inverse Laplace transform of Y(s) to obtain y(t). To simplify the expression, let's decompose Y(s) using partial fraction decomposition:
Y(s) = A/(s + 2) + (Bs + C)/(s^2 + 1)
Multiplying both sides by (s^2 + 1)(s + 2), we get:
2s^2 + 5 = A(s^2 + 1) + (Bs + C)(s + 2)
Expanding and equating coefficients, we have:
2s^2 + 5 = As^2 + A + Bs^2 + 2Bs + Cs + 2C
Comparing the coefficients of like powers of s, we get the following system of equations:
A + B = 0 (for s^2 term)
Solving the system of equations, we find A = 5/2, B = -5/2, and C = 5/4.
Substituting these values back into the partial fraction decomposition, we have:
Y(s) = (5/2)/(s + 2) - (5/2)s/(s^2 + 1) + (5/4)/(s^2 + 1)
Now, we can find the inverse Laplace transform of each term using standard transforms.
Inverse Laplace transform of (5/2)/(s + 2) is (5/2)e^(-2t).
Inverse Laplace transform of (5/2)s/(s^2 + 1) is (5/2)cos(t).
Inverse Laplace transform of (5/4)/(s^2 + 1) is (5/4)sin(t).
Therefore, the solution y(t) in the time domain is:
y(t) = (5/2)e^(-2t) + (5/2)cos(t) + (5/4)sin(t)
This is the solution to the given differential equation with the initial condition y(0) = 2.
To solve the equation we will apply the Laplace transform to both sides of the equation, use the linearity property, solve for the transformed function, and then take the inverse Laplace transform to find the solution.
Applying the Laplace transform to both sides of the equation dy/dt + 2y = 3cos(t), we have: L{dy/dt} + 2L{y} = 3L{cos(t)}. Using the properties of the Laplace transform: sY(s) - y(0) + 2Y(s) = 3/(s^2 + 1). Substituting the initial condition y(0) = 2, we have: sY(s) - 2 + 2Y(s) = 3/(s^2 + 1). Combining the terms with Y(s), we get: (s + 2)Y(s) = 3/(s^2 + 1) + 2. (s + 2)Y(s) = (3 + 2(s^2 + 1))/(s^2 + 1). (s + 2)Y(s) = (2s^2 + 5)/(s^2 + 1). Now, solving for Y(s), we have: Y(s) = (2s^2 + 5)/((s + 2)(s^2 + 1)). We can now apply partial fraction decomposition to express Y(s) in a form that can be inverted using inverse Laplace transform tables. Y(s) = A/(s + 2) + (Bs + C)/(s^2 + 1)
Multiplying through by the denominators, we get: 2s^2 + 5 = A(s^2 + 1) + (Bs + C)(s + 2). Equating the coefficients of like powers of s on both sides, we have: 2s^2 + 5 = As^2 + A + Bs^2 + 2Bs + Cs + 2C. Comparing coefficients, we get the following equations: A + B = 0 (for s^2 term) 2B + C = 0 (for s term) . A + 2C = 5 (for constant term). Solving these equations, we find A = 1, B = -1, and C = -1. Substituting these values back into Y(s), we have: Y(s) = 1/(s + 2) - (s - 1)/(s^2 + 1). Now, taking the inverse Laplace transform, we find: y(t) = e^(-2t) - sin(t) + cos(t). Therefore, the solution to the given differential equation is y(t) = e^(-2t) - sin(t) + cos(t), with the initial condition y(0) = 2.
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Describe the sample space for this experiment. (b) Describe the event "more tails than heads" in terms of the sample space. (a) Choose the correct answer below. O A. {0,1,2,3,4,5) B. {0,1,2,3,4,5,6) OC. {0,1,2,3,4,5,6,7} D. {1,2,3,4,5,6) (b) Choose the correct answer below. O A. {1,2,3,4,5,6) B. {0,1,2) C. {4,5,6) D. {0,1,2,3,4,5,6)
correct answer: (D) {1,2,3,4,5,6} Sample space is defined as the set of all possible outcomes of an experiment. It is denoted by S. For instance, if you toss a fair coin, the sample space is {Heads, Tails} or {H, T}.
In this experiment, we are to toss a coin five times and record the number of times a head appears. Since we are tossing a coin five times, the sample space will be:
S = {HHHHH, HHHHT, HHHTH, HHTHH, HTHHH, THHHH, HHTHT, HTHHT, HTHTH, THHTH, THTHH, TTHHH, HTTTH, TTTHH, THTTH, TTHTH, HTHTT, HTTHT, THHTT, TTHHT, THTTT, TTHTH, HTTTT, TTTTH, TTTHT, TTHTT, THTTT, TTTTT}
The event "more tails than heads" implies that the number of tails must be greater than the number of heads. That is, the possible outcomes are THHTT, THTHT, THTTH, HTTTH, TTTHH, TTHTH, TTHHT, HTTTT, TTTTH, TTTHT, TTHTT, and THTTT. Hence, the correct answer is B, {0, 1, 2}.
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Do the columns of A span R*? Does the equation Ax=b have a solution for each b in Rª? 2 -8 0 1 2-3 A = 4 0-8 -1 -7-10 15 Do the columns of A span R? Select the correct choice below and fill in the answer box to complete your choice. (Type an integer or decimal for each matrix element.) OA. No, because the reduced echelon form of A is OB. Yes, because the reduced echelon form of A is 30 0 2
The rank of A is 3 and the rank of `[[A | b]]` is also 3.
Therefore, the equation Ax = b has a solution for each b in R³.
The given matrix A = `[[2, -8, 0], [1, 2, -3], [4, 0, -8], [-1, -7, -10], [15, 0, 30]] `and the question asks to check if the columns of A span R³.
To check if the columns of A span R³, we need to check if the rank of the matrix is equal to 3 because the rank of a matrix tells us about the number of linearly independent columns in the matrix.
To find the rank of matrix A, we write the matrix in row echelon form or reduced row echelon form.
If the matrix contains a row of zeros, then that row must be at the bottom of the matrix.
Row echelon form of A= `[[2, -8, 0], [0, 5, -3], [0, 0, -8], [0, 0, 0], [0, 0, 0]]`
Rank of the matrix A is 3.Since the rank of matrix A is equal to 3, which is the number of columns in A, the columns of A span R³.
Thus, the correct option is: Yes, because the reduced echelon form of A is `
[2, -8, 0], [0, 5, -3], [0, 0, -8], [0, 0, 0], [0, 0, 0]`.
Next, we need to check if the equation Ax = b has a solution for each b in R³.
For this, we need to check if the rank of the augmented matrix `[[A | b]]` is equal to the rank of the matrix A.
If rank(`[[A | b]]`) = rank(A), then the equation Ax = b has a solution for each b in R³.Row echelon form of
`[[A | b]]` is `[[2, -8, 0, 1], [0, 5, -3, -1], [0, 0, -8, -10], [0, 0, 0, 0], [0, 0, 0, 0]]`
The rank of A is 3 and the rank of `[[A | b]]` is also 3.
Therefore, the equation Ax = b has a solution for each b in R³.
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Find the volume of the shape defined by the following inequalities. Volume: 1
Separated Variable Equation: Example: Solve the separated variable equation: dy/dx = x/y To solve this equation, we can separate the variables by moving all the terms involving y to one side.
A mathematical function, whose values are given by a scalar potential or vector potential The electric potential, in the context of electrodynamics, is formally described by both a scalar electrostatic potential and a magnetic vector potential The class of functions known as harmonic functions, which are the topic of study in potential theory.
From this equation, we can see that 1/λ is an eigenvalue of A⁻¹ with the same eigenvector x Therefore, if λ is an eigenvalue of A with eigenvector x, then 1/λ is an eigenvalue of A⁻¹ with the same eigenvector x.
These examples illustrate the process of solving equations with separable variables by separating the variables and then integrating each side with respect to their respective variables.
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in using this information to find a confidence interval for the population mean of the first group, we use . (a) what is the value of a for this sample? round your answer to one decimal place.
The minimum sample size that should be surveyed to estimate the average entrance exam score within a 50-point margin of error at a 98% confidence level is approximately 3417.
When conducting research, it is important to determine the appropriate sample size in order to obtain accurate and reliable results. In this case, we want to calculate the minimum sample size needed to estimate the average entrance exam score within a certain margin of error. We are given the population standard deviation, the desired confidence level, and the desired margin of error.
To calculate the minimum sample size, we can use the formula for sample size estimation in confidence interval calculations:
n = (z² * σ²) / E²
where:
n = sample size
z = z-value corresponding to the desired confidence level
σ = population standard deviation
E = margin of error
In our case, we want to estimate the average entrance exam score within a margin of 50 points at a 98% confidence level. The given z-value for a 98% confidence level is z0.01 = 2.326. The population standard deviation is σ = 194, and the desired margin of error is E = 50.
Plugging these values into the formula, we have:
n = (2.326² * 194²) / 50²²
Calculating this expression, we get:
n ≈ (2.326² * 194²) / 50² ≈ 3416.18
Since the sample size must be a whole number, we round up to the nearest integer:
n = ceil(3416.18) = 3417
Therefore, the minimum sample size that should be surveyed to estimate the average entrance exam score within a 50-point margin of error at a 98% confidence level is approximately 3417.
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Complete Question
You are researching the average entrance exam score, and you want to know how many people you should survey if you want to know, at a 98% confidence level, that the sample mean score is within 50 points. From above, we know that the population standard deviation is 194, and z0.01=2.326. What is the minimum sample size that should be surveyed?
Let X'be a discrete random variable with probability mass function p given by: a -5 -4 1 3 6 p(a) 0.1 0.3 0.25 0.2 0.15 Find E(X), Var(X), E(4X-5) and Var (3X+2).
To find the expected value (E(X)), variance (Var(X)), expected value of 4X-5 (E(4X-5)), and variance of 3X+2 (Var(3X+2)) for the given probability mass function p of the discrete random variable X', we can use the following formulas:
Expected Value (E(X)):
E(X) = Σ (X * p(X))
Variance (Var(X)):
Var(X) = Σ ((X - E(X))^2 * p(X))
Expected Value of 4X-5 (E(4X-5)):
E(4X-5) = 4 * E(X) - 5
Variance of 3X+2 (Var(3X+2)):
Var(3X+2) = 9 * Var(X)
Given the probability mass function p for X':
X' p(X')
-5 0.1
-4 0.3
1 0.25
3 0.2
6 0.15
Now let's calculate each value step by step:
Expected Value (E(X)):
E(X) = (-5 * 0.1) + (-4 * 0.3) + (1 * 0.25) + (3 * 0.2) + (6 * 0.15)
E(X) = -0.5 - 1.2 + 0.25 + 0.6 + 0.9
E(X) = 0.45
Variance (Var(X)):
Var(X) = ((-5 - 0.45)^2 * 0.1) + ((-4 - 0.45)^2 * 0.3) + ((1 - 0.45)^2 * 0.25) + ((3 - 0.45)^2 * 0.2) + ((6 - 0.45)^2 * 0.15)
Var(X) = 14.8025 * 0.1 + 9.2025 * 0.3 + 0.3025 * 0.25 + 2.9025 * 0.2 + 28.1025 * 0.15
Var(X) = 1.48025 + 2.76075 + 0.075625 + 0.5805 + 4.215375
Var(X) = 9.1125
Expected Value of 4X-5 (E(4X-5)):
E(4X-5) = 4 * E(X) - 5
E(4X-5) = 4 * 0.45 - 5
E(4X-5) = 1.8 - 5
E(4X-5) = -3.2
Variance of 3X+2 (Var(3X+2)):
Var(3X+2) = 9 * Var(X)
Var(3X+2) = 9 * 9.1125
Var(3X+2) = 82.0125
Therefore, we have found:
E(X) = 0.45
Var(X) = 9.1125
E(4X-5) = -3.2
Var(3X+2) = 82.0125
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Find the solutions of the following equations: xy'=y ln(x)
y = K * x^x * e^(-x) or y = -K * x^x * e^(-x), where K is a nonzero constant. These are the solutions to the given differential equation. Both cases represent families of solutions parameterized by the constant K.
To solve the differential equation, we begin by separating variables:
dy/y = ln(x) dx
Next, we integrate both sides of the equation. The integral of dy/y is ln|y|, and the integral of ln(x) dx is x ln(x) - x.
ln|y| = x ln(x) - x + C
Where C is the constant of integration. To simplify further, we can exponentiate both sides:
|y| = e^(x ln(x) - x + C)
Using the properties of exponents, we can rewrite the right side of the equation:
|y| = e^(x ln(x)) * e^(-x) * e^C
Simplifying further:
|y| = x^x * e^(-x) * e^C
Since e^C is a positive constant, we can replace it with another constant K:
|y| = K * x^x * e^(-x)
Removing the absolute value notation, we have two cases:
y = K * x^x * e^(-x) or y = -K * x^x * e^(-x)
where K is a nonzero constant. These are the solutions to the given differential equation. Both cases represent families of solutions parameterized by the constant K.
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In which of the following are the center c and the radius of convergence R of the power series n=1 (A) C=1/2, R=5/2 (B) c=1/2, R=2/5 c=1, R=1/5 (D) c-2, R=1/5 (E) c=5/2, R=1/2 (2x-1)" 5" √n given?
The power series with center c and radius of convergence R is given by [tex](2x-1)^n[/tex] / √n. We need to determine which option among (A), (B), (C), (D), and (E) represents the correct center and radius of convergence for the power series.
The center c and radius of convergence R of a power series can be determined using the formula:
R = 1 / lim sup(|an / an+1|),
where an represents the coefficients of the power series. In this case, the coefficients are given by an = (2x-1)^n / √n.
We can rewrite the expression as an / an+1:
an / an+1 = [[tex](2x-1)^n[/tex] / √n] / [[tex](2x-1)^(n+1)[/tex] / √(n+1)] = √(n+1) / √n * (2x-1) / [tex](2x-1)^(n+1)[/tex] = √(n+1) / √n / (2x-1).
Taking the limit as n approaches infinity, we get:
lim n→∞ √(n+1) / √n / (2x-1) = 1 / (2x-1).
The radius of convergence R is the reciprocal of the limit, so we have:
R = |2x-1|.
Comparing this with the given options, we can determine which option represents the correct center and radius of convergence for the power series.
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Let H be a Hilbert space. From Riesz' theorem we know that the conjugate linear map
L: H→H', v (ov: w→ (v, w))
is an isometry.
(a) Use this map L to find a canonical conjugate linear isometry K: H'H".
(b) Show that KoL=j: H→ H", the canonical inclusion into the bidual space defined by j(x): o→ o(x).
The canonical conjugate linear isometry K: H'H" can be obtained by composing the conjugate linear map L: H→H' with the canonical conjugate linear map J: H'→H". The resulting map K is an isometry. The equality KoL = j holds, where j is the canonical inclusion map from H to H", as J(L(v)) = L(v) = v'' for any element v in H.
a) To compute the canonical conjugate linear isometry K: H'H", we can compose the conjugate linear map L: H→H' with the canonical conjugate linear map J: H'→H". The composition K = J∘L gives us the desired map K: H'H" defined by K(v')(w'') = L(v')(J(w'')). This map K is an isometry.
(b) To show that KoL = j: H→H", we need to demonstrate that for any element v in H, the image of v under KoL is equal to the image of v under j.
Using the definition of K from part (a), we have KoL(v) = K(L(v)) = J(L(v)). On the other hand, the image of v under j is j(v) = v''.
To establish the equality KoL = j, we need to show that J(L(v)) = v''. Since J is the canonical inclusion map from H' to H", it maps elements of H' to their corresponding elements in H".
Since L(v) is an element of H', we can identify J(L(v)) with L(v) in H". Therefore, J(L(v)) = L(v) = v''.
Thus, we have shown that KoL = j, confirming the equality between the composition of the maps K and L and the canonical inclusion map j.
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Find the surface area of the volume generated when the following curve is revolved around the x-axis from x = 2 to x = 5. Round your answer to two decimal places, if necessary.
F(x) = x^3
S ≈ 4.99.To find the surface area of the volume generated when the curve y = x^3 is revolved around the x-axis from x = 2 to x = 5, we can use the formula for the surface area of a solid of revolution:
S = 2π ∫[from a to b] y * √(1 + (dy/dx)^2) dx
First, let's find the derivative dy/dx of the curve y = x^3:
dy/dx = 3x^2
Now we can substitute the values into the surface area formula:
S = 2π ∫[from 2 to 5] x^3 * √(1 + (3x^2)^2) dx
Simplifying:
S = 2π ∫[from 2 to 5] x^3 * √(1 + 9x^4) dx
To integrate this expression, we can make a substitution:
Let u = 1 + 9x^4
Then, du = 36x^3 dx
Rearranging the terms, we have:
(1/36) du = x^3 dx
Substituting the expression for x^3 dx and the new limits of integration, the integral becomes:
S = (2π/36) ∫[from 2 to 5] u^(1/2) du
Integrating u^(1/2), we get:
S = (2π/36) * (2/3) * u^(3/2) | [from 2 to 5]
Simplifying further:
S = (2π/54) * (5^(3/2) - 2^(3/2))
S ≈ 4.99
Therefore, the surface area of the volume generated when the curve y = x^3 is revolved around the x-axis from x = 2 to x = 5 is approximately 4.99 square units.
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A researcher claims that the average wind speed in a certain city is 8 miles per hour. A sample of 32 days has an average wind speed of 8.2 miles per hour. The standard deviation of the population is 0.6 mile per hour. At a = 0.05, is there enough evidence to reject the claim? Use the P- value method. (P-value-0.0588 > a, so do not reject the null hypothesis. There is not enough evidence to reject the claim that the average wind speed is 8 miles per hour in a certain city.)
Since the p-value (0.0588) is greater than the significance level (0.05), we do not reject the null hypothesis.
Is there sufficient evidence to reject the claim of an 8 mph average wind speed in the city?To test whether there is enough evidence to reject the claim that the average wind speed in a certain city is 8 miles per hour, we can perform a hypothesis test using the P-value method. Let's set up the null and alternative hypotheses:
Null hypothesis (H0): The average wind speed is 8 miles per hour.
Alternative hypothesis (H1): The average wind speed is not equal to 8 miles per hour.
We can use a t-test since we have the sample mean, sample size, population standard deviation, and want to compare the sample mean to a given value.
Sample mean ([tex]\bar x[/tex]) = 8.2 miles per hour
Sample size (n) = 32
Population standard deviation (σ) = 0.6 miles per hour
Significance level (α) = 0.05
We can calculate the t-value using the formula:
t = ([tex]\bar x[/tex] - μ) / (σ / √n)
where μ is the population mean.
t = (8.2 - 8) / (0.6 / √32)
t ≈ 2.1602
Now, we need to calculate the degrees of freedom (df) for the t-distribution, which is n - 1:
df = 32 - 1 = 31
Using the t-distribution table or a calculator, we can find the p-value associated with the calculated t-value. In this case, the p-value is approximately 0.0588.
Given that the calculated p-value (0.0588) exceeds the chosen significance level of 0.05, there is insufficient evidence to reject the null hypothesis.
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Doy corona el que lo haga bien y con explicacion del procedimiento es examen pls
Solved using PEMDAS,
The answer to A = 42
B = 101
C =
How is this so?A)
Using the PEMDAS order of operations, we solve the expression step by step:
45 - 13 + (56 - 32) + (48 - 36) - 26
First, we perform the operations within the parentheses:
45 - 13 + 24 + 12 - 26
Next, we perform addition and subtraction from left to right:
32 + 24 + 12 - 26
Then, we continue with the addition and subtraction:
56 + 12 - 26
Finally, we perform the remaining addition and subtraction:
68 - 26 = 42
b) Using the same principles above
23 + 45 - (56 ÷ 2) ÷ 2 + 47
First, we perform the division within the parentheses:
23 + 45 - (28) ÷ 2 + 47
Next, we perform the division:
23 + 45 - 14 + 47
Then, we perform the addition and subtraction from left to right
68 - 14 + 47
Finally, we perform the remaining addition and subtraction:
54 + 47 = 101
C
3 x (171 ÷ 3) - 43 x (36 ÷ 9) + (75 - 58)
First, we perform the division within the parentheses:
3 x 57 - 43 x 4 + (75 - 58)
Next, we perform the multiplication:
171 - 172 + (75 - 58)
Then, we perform the subtraction within the parentheses:
171 - 172 + 17
Finally, we perform the remaining addition and subtraction:
-1 + 17 = 16
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a) 45 - 13 +(56-32) + (48 -36) -26 =
b) 23 + 45 - (56:2) :2 + 47 =
c) 3 x (171:3) -43 x (36:9) + (75-58) =
I'm a chemist trying to produce four chemicals: Astinium, Bioctrin, Carnadine, and Dimerthorp. When I run Process 1, I produce one gram of Astinium, one gram of Bioctrin, 5 grams of Carna- dine, and 3 grams of Dimerthorp. When I run process 2, I produce 3 grams of Astinium, one 3 gram of Bioctrin, one gram of Dimerthorp, and I consume one gram of Carnadine. My target is to produce 100 grams of all four chemicals. I know this is not precisely possible, but I want to get as close as possible (with a least squares error measurement). How many times should I run process 1 and process 2 (answers need not be whole numbers)?
We should run process 1 27 times and process 2 24.75 times (which we can approximate as 25 times).
To solve this problem, we can set up a system of equations to represent the amount of each chemical produced and consumed by each process.
Let x be the number of times process 1 is run and y be the number of times process 2 is run. Then the system of equations is:
1x Astinium + 3y Astinium = 100 g1x Bioctrin + 3y Bioctrin = 100 g5x Carnadine - y Carnadine = 100 g3x Dimerthorp + 1y Dimerthorp = 100 g
We want to minimize the least squares error, which is the sum of the squared differences between the predicted and target values for each chemical:
((1x Astinium + 3y Astinium) - 100)^2 + ((1x Bioctrin + 3y Bioctrin) - 100)^2 + ((5x Carnadine - y Carnadine) - 100)^2 + ((3x Dimerthorp + 1y Dimerthorp) - 100)^2
Expanding and simplifying this expression gives:
10x^2 + 10y^2 + 16xy - 540x - 540y + 27000
We can minimize this expression using calculus.
Taking partial derivatives with respect to x and y and setting them equal to 0, we get:
20x + 16y - 540 = 020y + 16x - 540
= 0
Solving this system of equations gives:
x = 27y
= 24.75
Therefore, we should run process 1 27 times and process 2 24.75 times (which we can approximate as 25 times).
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< Prev Question 21 - of 25 Step 1 of 1 Find the Taylor polynomial of degree 5 near x = 2 for the following function. y = 4e⁵ˣ⁻⁹ Answer 2 Points 4e⁵ˣ⁻⁹ P₅(x) = Keypad Keyboard Shortcuts Next
The Taylor polynomial of degree 5 for the given function y = 4e^(5x-9) near x = 2 is P₅(x) = 4e + 20e(x-2) + 50e(x-2)^2 + 125e(x-2)^3 + 625/3 e(x-2)^4 + 3125/24 e(x-2)^5.
What is the Taylor polynomial of degree 5 for the function y = 4e^(5x-9) near x = 2?To find the Taylor polynomial of degree 5 near x = 2 for the given function, we can use the formula of the nth-degree Taylor polynomial of a function f(x) at a value a as:Pn(x) = f(a) + f'(a)(x-a)/1! + f''(a)(x-a)^2/2! + ... + fⁿ(a)(x-a)^n/n!
where fⁿ(a) is the nth derivative of f(x) evaluated at x = a. For the given function, y = 4e^(5x-9), we have:f(x) = 4e^(5x-9), a = 2, and n = 5Using the formula, we can find the derivatives of f(x):f(x) = 4e^(5x-9)f'(x) = 20e^(5x-9)f''(x) = 100e^(5x-9)f'''(x) = 500e^(5x-9)f''''(x) = 2500e^(5x-9)f⁵(x) = 12500e^(5x-9)Evaluating the derivatives at x = a = 2, we get:f(2) = 4e^1 = 4ePn(2) = f(a) + f'(a)(x-a)/1! + f''(a)(x-a)^2/2! + ... + fⁿ(a)(x-a)^n/n!
P₅(x) = f(2) + f'(2)(x-2)/1! + f''(2)(x-2)^2/2! + f'''(2)(x-2)^3/3! + f''''(2)(x-2)^4/4! + f⁵(2)(x-2)^5/5!Substituting the values, we get:P₅(x) = 4e + 20e(x-2) + 100e(x-2)^2/2 + 500e(x-2)^3/6 + 2500e(x-2)^4/24 + 12500e(x-2)^5/120P₅(x) = 4e + 20e(x-2) + 50e(x-2)^2 + 125e(x-2)^3 + 625/3 e(x-2)^4 + 3125/24 e(x-2)^5
Therefore, the Taylor polynomial of degree 5 near x = 2 for the function y = 4e^(5x-9) is:P₅(x) = 4e + 20e(x-2) + 50e(x-2)^2 + 125e(x-2)^3 + 625/3 e(x-2)^4 + 3125/24 e(x-2)^5.
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