Use the definition of Taylor series to find the first three nonzero terms of the Taylor series (centered at c) for the function f. f(x)=4tan(x), c=8π

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Answer 1

[tex]f(x) = 4tan(8\pi) + 4sec^2(8\pi)(x - 8\pi) + 8sec^2(8\pi)tan(8\pi)(x - 8\pi)^2/2![/tex]

This expression represents the first three nonzero terms of the Taylor series expansion for f(x) = 4tan(x) centered at c = 8π.

What is the trigonometric ratio?

the trigonometric functions are real functions that relate an angle of a right-angled triangle to ratios of two side lengths. They are widely used in all sciences that are related to geometry, such as navigation, solid mechanics, celestial mechanics, geodesy, and many others.

To find the first three nonzero terms of the Taylor series for the function f(x) = 4tan(x) centered at c = 8π, we can use the definition of the Taylor series expansion.

The general formula for the Taylor series expansion of a function f(x) centered at c is:

[tex]f(x) = f(c) + f'(c)(x - c)/1! + f''(c)(x - c)^2/2! + f'''(c)(x - c)^3/3! + ...[/tex]

Let's begin by calculating the first three nonzero terms for the given function.

Step 1: Evaluate f(c):

f(8π) = 4tan(8π)

Step 2: Calculate f'(x):

f'(x) = d/dx(4tan(x))

= 4sec²(x)

Step 3: Evaluate f'(c):

f'(8π) = 4sec²(8π)

Step 4: Calculate f''(x):

f''(x) = d/dx(4sec²(x))

= 8sec²(x)tan(x)

Step 5: Evaluate f''(c):

f''(8π) = 8sec²(8π)tan(8π)

Step 6: Calculate f'''(x):

f'''(x) = d/dx(8sec²(x)tan(x))

= 8sec⁴(x) + 16sec²(x)tan²(x)

Step 7: Evaluate f'''(c):

f'''(8π) = 8sec⁴(8π) + 16sec²(8π)tan²(8π)

Now we can write the first three nonzero terms of the Taylor series expansion for f(x) centered at c = 8π:

f(x) ≈ f(8π) + f'(8π)(x - 8π)/1! + f''(8π)(x - 8π)²/2!

Simplifying further,

Hence, [tex]f(x) = 4tan(8\pi) + 4sec^2(8\pi)(x - 8\pi) + 8sec^2(8\pi)tan(8\pi)(x - 8\pi)^2/2![/tex]

This expression represents the first three nonzero terms of the Taylor series expansion for f(x) = 4tan(x) centered at c = 8π.

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Related Questions

To check whether two arrays are equal, you should
Group of answer choices
a. use the equality operator
b. use a loop to check if the values of each element in the arrays are equal
c. use array decay to determine if the arrays are stored in the same memory location
d. use one of the search algorithms to determine if each value in one array can be found in the other array

Answers

Option b is the correct answer, To check whether two arrays are equal, you should (b) use a loop to check if the values of each element in the arrays are equal. This method ensures that you compare the elements of the arrays individually, rather than checking for memory location or relying on search algorithms.

To check whether two arrays are equal, you should use option b, which is to use a loop to check if the values of each element in the arrays are equal. This is because the equality operator only checks if the arrays are stored in the same memory location, and not if their contents are the same. Using array decay to determine if the arrays are stored in the same memory location is not a valid approach, as array decay only refers to how arrays are passed to functions. Using a search algorithm to determine if each value in one array can be found in the other array is also not a valid approach, as this only checks if the values exist in both arrays, but not if the arrays are completely equal.

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Find a parametrization for the curve described below. - the line segment with endpoints (2,-2) and (-1, - 7)

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A parametrization for the line segment is:

x(k) = 2 - 3k

y(k) = -2 + 5k

where k varies from 0 to 1.

To get a parametrization for the line segment with endpoints (2, -2) and (-1, -7), we can use a parameter t that varies from 0 to 1.

Let's define the x-coordinate and y-coordinate as functions of the parameter t:

x(t) = (1 - k) * x1 + k * x2

y(t) = (1 - k) * y1 + k * y2

where (x1, y1) and (x2, y2) are the coordinates of the endpoints.

In this case, (x1, y1) = (2, -2) and (x2, y2) = (-1, -7).

Substituting the values, we have:

x(k) = (1 - k) * 2 + k * (-1) = 2 - 3t

y(k) = (1 - k) * (-2) + k * (-7) = -2 + 5t

Therefore, a parametrisation for the line segment is:

x(k) = 2 - 3k

y(k) = -2 + 5k

where k varies from 0 to 1.

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(a) Let z = (a + ai) (b√3+ bi) where a and b are positive real numbers. Without using a calculator, determine arg z. (b) Determine the cube roots of -32+32√3i and sketch them together in the compl

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The required value of arg(z) = 120º and the three cube roots are 4(cos50º + isin50º), 4(cos50º + isin50º + 2π/3) and 4(cos50º + isin50º + 4π/3).

Part (a) Let z = (a + ai) (b√3+ bi) where a and b are positive real numbers.

The given expression is  z = (a + ai) (b√3+ bi) and the argument of z is determined by the formula below:

arg(z) = arctan (b√3 / a) + 90º

Now, we need to find the values of a and b.

We can do this by multiplying z with its complex conjugate, as shown below:

z * z¯ = (a + ai) (b√3+ bi) (a - ai) (b√3 - bi)= (a² + a²b√3 - a²b√3 - a²b²)  = a²(1 - b²)

Thus, z * z¯ = a²(1 - b²)

Also, z * z¯ = (a + ai) (b√3+ bi) (a - ai) (b√3 - bi)= (a² + a²b√3 - a²b√3 - a²b²)

(note that a²bi - a²bi = 0) = a² - a²b²

Thus, z * z¯ = a² - a²b²

From the above results, we have: (a² - a²b²) = a²(1 - b²)

Assuming that b = 1 and a = b, that is, a = b = √2arg(z) = arctan (√3) + 90º

arg(z) = 120º

Part (b) Determine the cube roots of -32+32√3i and sketch them together in the complex plane

The given expression is: z = -32 + 32√3i

The modulus and the argument of z are given by the formulae below: r = √(a² + b²)θ = arctan(b/a)

where a and b are the real and imaginary parts of z, respectively.

Thus, r = √(32² + 32³) = 32√4 = 64θ = arctan(32√3/-32) + 180º = 150º

Therefore, z = 64(cos150º + isin150º)

The cube roots of z are given by the formulae below:

w₁ = (r(cos(θ/3) + isin(θ/3))

w₂ = (r(cos(θ/3 + 2π/3) + isin(θ/3 + 2π/3))

w₃ = (r(cos(θ/3 + 4π/3) + isin(θ/3 + 4π/3))

Substituting values, we have: w₁ = 4(cos50º + isin50º)

w₂ = 4(cos50º + isin50º + 2π/3)

w₂ = 4(cos50º + isin50º + 4π/3)

The three roots can be plotted on the complex plane.

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f(x+4x)-f(x) Evaluate lim AX-0 for the function f(x) = 2x-5. Show the work and simplification! Ax Find the value of "a" and "b" for which the limit exists both as x approaches 1 and as x approaches 2:

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The evaluation of lim AX-0 (f(x+4x)-f(x)) for the function f(x) = 2x-5 yields 15. For the limit to exist as x approaches 1 and 2, the values of "a" and "b" are 2 and -1, respectively.

To evaluate lim AX-0 (f(x+4x)-f(x)) for the given function f(x) = 2x-5, we substitute the expression (x+4x) in place of x in f(x) and subtract f(x). Simplifying the expression, we have lim AX-0 (2(x+4x) - 5 - (2x - 5)). Expanding and combining like terms, this simplifies to lim AX-0 (15x). As x approaches 0, the limit becomes 0, resulting in the value of 15.

To find the values of "a" and "b" for which the limit exists as x approaches 1 and 2, we evaluate the limit of the function at those specific values. Firstly, we calculate lim X→1 (2x-5).

Plugging in x = 1, we get 2(1) - 5 = -3. Therefore, the value of "a" is -3. Secondly, we compute lim X→2 (2x-5). Substituting x = 2, we have 2(2) - 5 = -1. Hence, the value of "b" is -1.

For the limit to exist as x approaches a particular value, the function's value at that point must match the value of the limit. In this case, the limit exists as x approaches 1 and 2 because the function evaluates to -3 and -1 at those points, respectively.

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Use the Fundamental Theorem of Calculus to find the derivative of =v² cost de y = dt dy dz = [NOTE: Enter a function as your answer. Make sure that your syntax is correct, i.e. remember to put all th

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the answer is dy/dz = v² z. This function gives us the rate of change of y with respect to z, where v and z are variables.The Fundamental Theorem of Calculus is a powerful tool that allows us to evaluate the derivative of a function using its integral.

In this problem, we are asked to find the derivative of a function involving v, t, and cos(t), which can be challenging without the use of the Fundamental Theorem.To begin, we can express the function as an integral of a derivative using the chain rule:
y = ∫(v² cos(t)) dt
Next, we can use the first part of the Fundamental Theorem of Calculus, which states that if a function f(x) is continuous on the interval [a,b], then the function g(x) = ∫(a to x) f(t) dt is differentiable on (a,b) and g'(x) = f(x). Applying this theorem to our function, we have:
dy/dt = d/dt [∫(v² cos(t)) dt]
Using the chain rule and the fact that the derivative of an integral with respect to its upper limit is simply the integrand evaluated at the upper limit, we get:
dy/dt = v² cos(t)
So, the derivative of the function is simply v² cos(t). We can express this as a function of z by replacing cos(t) with z:
dy/dz = v² z
Therefore, the answer is dy/dz = v² z. This function gives us the rate of change of y with respect to z, where v and z are variables.

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1-2 Plot the point whose polar coordinates are given. Then find two other pairs of polar coordinates of this point, one with r > 0 and one with r < 0. 1. (a) (1, 7/4) (b) (-2, 37/2) (c) (3, -7/3) 2. (

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The two other pairs of polar coordinates for the same point are (r, θ) = (-3, 7/4).

For the first case (a), the polar coordinates are given as (1, 7/4). To plot this point, we start at the origin and move along the polar axis (positive x-axis) by a distance of 1 unit, then rotate counterclockwise by an angle of 7/4 (in radians). The resulting point will be (r, θ) = (1, 7/4).

To find another pair of polar coordinates for the same point with r > 0, we can choose any positive value for r and keep the angle θ the same. For example, we can choose r = 2. This means that the distance from the origin to the point is now 2 units, while the angle remains 7/4. Therefore, the new polar coordinates become (r, θ) = (2, 7/4).

Similarly, to find a pair of polar coordinates with r < 0, we can choose any negative value for r. For example, let's choose r = -3. This means that the distance from the origin to the point is now -3 units, while the angle remains 7/4. Therefore, the new polar coordinates become (r, θ) = (-3, 7/4).

By adjusting the value of r while keeping the angle θ the same, we can find different polar coordinates that represent the same point in the polar coordinate system.

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B A curve has equation y = x^3+ 3x^2- 6. a) Obtain dy/dx and hence find the x co-ordinates of any turning points. b) Using the second derivative, find the nature of the turning points from part (a)

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a) The derivative of the function [tex]y = x^3 + 3x^2 - 6[/tex]is dy/dx = [tex]3x^2 + 6x.[/tex]

b) The second derivative of the function is d²y/dx² = 6x + 6.

What is the derivative of the function?

To find the derivative of the function [tex]y = x^3 + 3x^2 - 6[/tex], we differentiate each term with respect to x. The derivative of [tex]x^n[/tex] is [tex]nx^(^n^-^1^)[/tex], where n is a constant. Applying this rule, we obtain dy/dx = 3x² + 6x.

What is the second derivative of the function?

To find the second derivative of the function y = x² + 3x² - 6, we differentiate the first derivative, which is dy/dx = 3x² + 6x, with respect to x. The derivative of 3x² is 6x, and the derivative of 6x is 6. Thus, the second derivative is d²y/dx² = 6x + 6.

From part (a), we determined the x-coordinates of the turning points by finding the values of x for which dy/dx = 0. Setting dy/dx = 3x² + 6x = 0, we can factor out a common factor of 3x, yielding 3x(x + 2) = 0. This equation is satisfied when x = 0 or x = -2. Therefore, the x-coordinates of the turning points are x = 0 and x = -2.

Using the second derivative obtained in part (b), we can determine the nature of the turning points. When the second derivative is positive, it indicates a concave-up shape, implying a local minimum. Conversely, when the second derivative is negative, it corresponds to a concave-down shape, indicating a local maximum. When the second derivative is zero, it does not provide conclusive information.

Substituting the x-coordinates of the turning points, x = 0 and x = -2, into the second derivative d²y/dx² = 6x + 6, we find that d²y/dx² = 6(0) + 6 = 6 and d²y/dx² = 6(-2) + 6 = -6, respectively.

Therefore, at x = 0, the second derivative is positive (6), suggesting a local minimum, and at x = -2, the second derivative is negative (-6), indicating a local maximum. The nature of the turning points for the given function is one local minimum and one local maximum.

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Solve the inequality, graph the solution and write the answer in internal notation. 3) 2 - 3t - 10 30 Solve the inequality, graph the solution and write the answer in interval notation. 2x + 3 4) > 1

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For the inequality 2 - 3t - 10 > 30, the solution is t < -12/3 or t < -4. In interval notation, the solution is (-∞, -4).

To solve the inequality 2 - 3t - 10 > 30, we first simplify the expression on the left side:

-3t - 8 > 30

Next, we isolate the variable t by subtracting 8 from both sides:

-3t > 38

To solve for t, we divide both sides by -3. Since we are dividing by a negative number, the inequality sign flips:

t < 38/(-3)

Simplifying the right side gives:

t < -38/3

So the solution to the inequality is t < -38/3 or t < -12/3. Since -38/3 and -12/3 are equivalent, we can express the solution in simplified form as t < -4. In interval notation, we represent the solution as (-∞, -4), which indicates that t can take any value less than -4. The interval starts from negative infinity and ends at -4, but does not include -4 itself.

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Answer all! I will up
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Consider the function y = 2-5x2 on the interval [-6, 3) (2 points each) a. Find the average or mean slope of the function over the given interval. b. Using the Mean Value Theorem find the exact value

Answers

a) The average or mean slope of the function y = 2 - 5x² over the interval [-6, 3) is -45.

Determine the average?

To find the average or mean slope of a function over an interval, we calculate the difference in the function values at the endpoints of the interval and divide it by the difference in the x-values.

In this case, the given function is y = 2 - 5x². To find the average slope over the interval [-6, 3), we evaluate the function at the endpoints: y₁ = 2 - 5(-6)² = -182 and y₂ = 2 - 5(3)² = -43. The corresponding x-values are x₁ = -6 and x₂ = 3.

The average slope is then calculated as (y₂ - y₁) / (x₂ - x₁) = (-43 - (-182)) / (3 - (-6)) = -45.

b) Using the Mean Value Theorem, we can find the exact value of the slope at some point c within the interval [-6, 3).

Determine the mean value?

The Mean Value Theorem states that if a function is continuous on a closed interval [a, b] and differentiable on the open interval (a, b), then there exists a point c in (a, b) where the instantaneous rate of change (slope) is equal to the average rate of change over [a, b].

In this case, the function y = 2 - 5x² is continuous and differentiable on the interval (-6, 3). Therefore, there exists a point c within (-6, 3) where the instantaneous rate of change (slope) is equal to the average rate of change calculated in part a.

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8. Solve the linear programming problem. Minimize z = 10x₁ + 16x₂ + 20x3, subject to 3x₁ + x₂ + 6x² ≥ 9 x₁ + x₂ ≥ 9 4x₂ + x₂ ≥ 12 x₁ ≥ 0, x₂ ≥ 0, x² ≥ 0 by applying t

Answers

To solve the given linear programming problem, we apply the simplex method. The objective is to minimize the function z = 10x₁ + 16x₂ + 20x₃, subject to the given constraints: 3x₁ + x₂ + 6x₃ ≥ 9, x₁ + x₂ ≥ 9, 4x₂ + x₃ ≥ 12, and x₁ ≥ 0, x₂ ≥ 0, x₃ ≥ 0.

We start by converting the problem into standard form. Introducing slack variables, the constraints become: 3x₁ + x₂ + 6x₃ - s₁ = 9, x₁ + x₂ - s₂ = 9, 4x₂ + x₃ - s₃ = 12. The objective function remains the same: z = 10x₁ + 16x₂ + 20x₃.

Using the simplex method, we construct the initial simplex tableau and perform iterations to find the optimal solution. We calculate the ratios of the right-hand side constants to the coefficients of the entering variable, and choose the minimum ratio as the leaving variable. We pivot and update the tableau until no further improvement can be made.

After performing the iterations, we obtain the optimal solution: x₁ = 0, x₂ = 9, x₃ = 0, with z = 144. The minimum value of the objective function z is 144, subject to the given constraints.

Therefore, the linear programming problem is solved by applying the simplex method, and the optimal solution is x₁ = 0, x₂ = 9, x₃ = 0, with the minimum value of z = 144.

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The alpha level for each hypothesis test made on the same set of data is called ______.
a. testwise alpha
b. experimentwise alpha
c. pairwise comparison
d. the Bonferroni procedure

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The alpha level for each hypothesis test made on the same set of data is called B. experimentwise alpha

What is experimentwise alpha?

When numerous suppositions are examined concurrently, the likelihood of committing at least one type I mistake grows.

In order to manage the probability of erroneously rejecting the null hypothesis in all tests, scientists usually modify the alpha level for each test, with the purpose of maintaining an experimentwise alpha that reflects the probability of making a type I error in the entire set of tests.

The Bonferroni procedure is a technique utilized to regulate the experimentwise error rate by adjusting the alpha level for each hypothesis test.

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please help me solve this
2. Find the equation of the ellipse with Foci at (-3,0) and (3,0), and one major vertex at (5,0)

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To find the equation of the ellipse with the given information, we can start by finding the center of the ellipse. The center is the midpoint between the foci, which is (0, 0).

Next, we can find the distance between the center and one of the foci, which is 3 units. This distance is also known as the distance from the enter to the focus (c).

We are also given that one major vertex is located at (5, 0). The distance from the center to this major vertex is known as the distance from the center to the vertex (a).

Now, we can use the formula for an ellipse with a horizontal major axis:

[tex](x - h)^2/a^2 + (y - k)^2/b^2 = 1,[/tex]

where (h, k) is the center, a is the distance from the center to the vertex, and c is the distance from the center to the focus.

Plugging in the values, we have:

[tex](x - 0)^2/a^2 + (y - 0)^2/b^2 = 1.[/tex]

The distance from the center to the vertex is given as 5 units, which is equal to a.

We can find the value of b by using the relationship between a, b, and c in an ellipse:

[tex]c^2 = a^2 - b^2.[/tex]

Substituting the values, we have:

[tex]3^2 = 5^2 - b^2,9 = 25 - b^2,b^2 = 16.[/tex]

Therefore, the equation of the ellipse is:

[tex]x^2/25 + y^2/16 = 1.[/tex]

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Consider the system of differential equations dr dt = x + 4y dy dt 2 - 3 (i) Write the system (E) in a matrix form. (ii) Find a vector solution by eigenvalues/eigenvectors. (iii) Use the vector soluti

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The given system of differential equations is written in matrix form as d/dt [r, y] = [1, 4; 0, 2] [r, y]. By finding the eigenvalues and eigenvectors of the coefficient matrix, a vector solution is obtained. Using this vector solution, the solutions for x(t) and y(t) can be expressed.

The given system of differential equations, dr/dt = x + 4y and dy/dt = 2 - 3, can be written in matrix form as d/dt [r, y] = [x + 4y, 2 - 3y]. Now, let's express this system in the form of a matrix equation: d/dt [r, y] = [1, 4; 0, -3] [r, y]. Here, the coefficient matrix is [1, 4; 0, -3].

To find the vector solution, we need to find the eigenvalues and eigenvectors of the coefficient matrix. Let λ be an eigenvalue and [v1, v2] be its corresponding eigenvector. By solving the equation [1, 4; 0, -3] [v1, v2] = λ [v1, v2], we obtain the eigenvalues λ1 = -1 and λ2 = -2. For each eigenvalue, we solve the system of equations (A - λI) [v1, v2] = [0, 0], where A is the coefficient matrix and I is the identity matrix. For λ1 = -1, we find the eigenvector [v1, v2] = [1, -1]. For λ2 = -2, we find the eigenvector [v1, v2] = [2, -1].

Using the vector solution, we can express the solutions x(t) and y(t). Let [r0, y0] be the initial values at t = 0. The vector solution is given by [r(t), y(t)] = c1 e^(λ1t) [v1] + c2 e^(λ2t) [v2], where c1 and c2 are constants determined by the initial values. Plugging in the values obtained, we have [r(t), y(t)] = c1 e^(-t) [1, -1] + c2 e^(-2t) [2, -1]. From this, we can express the solutions x(t) and y(t) by equating r(t) to x(t) and y(t) to y(t) in the vector solution. Thus, x(t) = c1 e^(-t) + 2c2 e^(-2t) and y(t) = -c1 e^(-t) - c2 e^(-2t).

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Complete Question:

Consider the system of differential equations dr dt = x + 4y dy dt 2 - 3 (i) Write the system (E) in a matrix form. (ii) Find a vector solution by eigenvalues/eigenvectors. (iii) Use the vector solution, write the solutions x(t) and y(t).

Find the Taylor polynomials Pz..... Ps centered at a = 0 for f(x) = 2 e -*.

Answers

We must calculate the derivatives of f(x) at x = 0 and evaluate them in order to identify the Taylor polynomials P1, P2,..., Ps for the function f(x) = 2e(-x).

The following are f(x)'s derivatives with regard to x:

[tex]f'(x) = -2e^(-x),[/tex]

F''(x) equals 2e (-x), F'''(x) equals -2e (-x), F''''(x) equals 2e (-x), etc.

We calculate the first derivative of f(x) at x = 0 to determine P1: f'(0) = -2e(0) = -2.

As a result, P1(x) = -2x is the first-degree Taylor polynomial with a = 0 as its centre.

We calculate the second derivative of f(x) at x = 0 to determine P2: f''(0) = 2e(0) = 2.

As a result, P2(x) = 2x2/2 = x2 is the second-degree Taylor polynomial with the origin at a = 0.

The s-th degree Taylor polynomial with a = 0 as its centre is typically represented by

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Problem 2. (6 points total) Consider the following IVP for some constant k> 0. dy dt + ky = cos(vk+1.t) ( y(0) = 0 (y'(0) = 0 (a) (3 points) Show the work required to solve this IVP by hand. Your solu

Answers

To solve the given initial value problem (IVP) by hand, we'll follow these steps: Step 1: Write the differential equation. The given differential equation is: dy/dt + ky = cos((vk+1)t).

Step 2: Identify the integrating factor. The integrating factor is given by the exponential of the integral of the coefficient of y, which is k in this case:  IF = e^(∫ k dt) = e^(kt). Step 3: Multiply the differential equation by the integrating factor. Multiplying both sides of the equation by the integrating factor, we get: e^(kt) * (dy/dt) + e^(kt) * ky = e^(kt) * cos((vk+1)t). Step 4: Apply the product rule to simplify the left side. Using the product rule for differentiation on the left side, we have:(d/dt)(e^(kt) * y) = e^(kt) * cos((vk+1)t). Step 5: Integrate both sides: Integrating both sides of the equation with respect to t, we get: ∫ (d/dt)(e^(kt) * y) dt = ∫ e^(kt) * cos((vk+1)t) dt. The left side simplifies to:  e^(kt) * y

For the right side, we can integrate by parts to handle the product of functions: ∫ e^(kt) * cos((vk+1)t) dt = (1/k) * e^(kt) * sin((vk+1)t) - (v+1)/k * ∫ e^(kt) * sin((vk+1)t) dt.  Step 6: Simplify the integral on the right side. To evaluate the integral ∫ e^(kt) * sin((vk+1)t) dt, we can use integration by parts again. Let's define u = e^(kt) and dv = sin((vk+1)t) dt. Then, we have du = k * e^(kt) dt and v = -(v+1)/((vk+1)^2 + 1) * cos((vk+1)t). Using the formula for integration by parts: ∫ u dv = uv - ∫ v du. Applying this formula, we get: ∫ e^(kt) * sin((vk+1)t) dt = - (v+1)/((vk+1)^2 + 1) * e^(kt) * cos((vk+1)t) - k/((vk+1)^2 + 1) * ∫ e^(kt) * cos((vk+1)t) dt.  Step 7: Substitute the integral back into the equation. Substituting the integral back into the original equation, we have: e^(kt) * y = (1/k) * e^(kt) * sin((vk+1)t) - (v+1)/k * ((v+1)/((vk+1)^2 + 1) * e^(kt) * cos((vk+1)t) + k/((vk+1)^2 + 1) * ∫ e^(kt) * cos((vk+1)t) dt)

Step 8: Solve for y. Now, we can cancel out the common factors of e^(kt) on both sides and solve for y. Finally, we apply the initial conditions y(0) = 0 and y'(0) = 0 to determine the specific values of the constant v and solve for the constant k. Note: Due to the complexity of the calculations involved, it would be more efficient to use numerical methods or software to solve this IVP and determine the values of v and k.

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urgent! please help :)

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Step-by-step explanation:

That is this please give question not black wallpaper

Prove that for every positive integer n, 1*2*3 + 2*3*4 + ... + n(n+1)(n+2) = n(n+1)(n+2)(n+3)/4

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To prove that for every positive integer n, the sum of the terms 123 + 234 + ... + n(n+1)(n+2) is equal to n(n+1)(n+2)(n+3)/4, we can use mathematical induction.

We will show that the equation holds true for the base case of n = 1 and then assume it holds for some arbitrary positive integer k. By proving that the equation holds for k+1, we can conclude that it holds for all positive integers n.

Base Case (n = 1):

When n = 1, the left-hand side of the equation is 1(1+1)(1+2) = 1(2)(3) = 6.

The right-hand side is n(n+1)(n+2)(n+3)/4 = 1(1+1)(1+2)(1+3)/4 = 6/4 = 3/2.

Since both sides of the equation evaluate to the same value of 6, the equation holds true for n = 1.

Inductive Hypothesis:

Assume that for some positive integer k, the equation holds true:

123 + 234 + ... + k(k+1)(k+2) = k(k+1)(k+2)(k+3)/4.

Inductive Step (n = k+1):

We want to prove that the equation holds true for n = k+1.

123 + 234 + ... + k(k+1)(k+2) + (k+1)(k+2)(k+3) = (k+1)(k+1+1)(k+1+2)(k+1+3)/4.

Using the inductive hypothesis, we have:

k(k+1)(k+2)(k+3)/4 + (k+1)(k+2)(k+3) = (k+1)(k+1+1)(k+1+2)(k+1+3)/4.

Factoring out (k+1)(k+2)(k+3) from both sides of the equation, we get:

(k+1)(k+2)(k+3)[k/4 + 1] = (k+1)(k+2)(k+3)(k+1+1)(k+1+2)/4.

Simplifying both sides, we have:

k/4 + 1 = (k+1)(k+1+1)(k+1+2)/4.

Expanding the right-hand side, we get:

k/4 + 1 = (k+1)(k+2)(k+3)/4.

Therefore, the equation holds true for n = k+1.

By establishing the base case and proving the inductive step, we conclude that the equation holds for all positive integers n.

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Question * -√4-x2 Consider the following double integral 1 = ² ** dy dx. By reversing the order of integration of I, we obtain: None of these This option 1 = f = dx dy 1 = y dx dy This option 1 = f

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Based on the given expression, the double integral is:

∫∫1dxdy over some region R.

To reverse the order of integration, we swap the order of integration variables and change the limits accordingly.

The given integral is:

∫∫1dxdy

To reverse the order of integration, we change it to:

∫∫1dydx

The limits of integration for the variables also need to be adjusted accordingly. However, since you haven't provided any specific limits or region of integration, I can't provide the exact limits for the reversed integral. The limits depend on the specific region R over which you are integrating.

Therefore, the correct option cannot be determined without additional information regarding the limits or the region of integration.

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Which of the following expressions is a polynomial of degree 3? I: 5x5 II. 3x4,3 8x?+ 9x - 3 III: IV: 4x®+8x2+5 3x4 – 5x3 V: Select one: O a. II O b. V O c. III O d. 1 Oe. IV

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A polynomial of degree 3 is a polynomial where the highest power of the variable is 3. Let's analyze the given expressions:

I: 5x^5 - This is a polynomial of degree 5, not degree 3. II: 3x^4,3 8x?+ 9x - 3 - This expression seems to be incomplete and unclear. Please provide the correct expression. III: 4x^®+8x^2+5 - The term "x^®" is not a valid exponent, so this expression is not a polynomial. IV: 3x^4 – 5x^3 - This is a polynomial of degree 4 since the highest power of the variable is 4. V: No valid expression was provided.

Based on the given expressions, the only polynomial of degree 3 is not listed. Therefore, none of the options provided (a, b, c, d, e) correspond to a polynomial of degree 3.

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Which of the following nonempty subsets are subspaces of the vector space C(-0, +o)? (a) All nonnegative functions (6) All constant functions (c) All functions f such that f(0) = 1 (d) All

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The subsets that are subspaces of the vector space C(-0, +∞) are:  All nonnegative functions,  All functions f such that f(0) = 1,  All functions f such that f(0) = 0. The correct option is a, c, and d

To determine whether a subset is a subspace, we need to check if it satisfies three conditions: closure under addition, closure under scalar multiplication, and contains the zero vector.

(a) All nonnegative functions: This subset is closed under addition, scalar multiplication, and contains the zero vector (the function that is always zero), so it is a subspace.

(c) All functions f such that f(0) = 1: This subset is also closed under addition, scalar multiplication, and contains the zero vector (the constant function equal to 1), so it is a subspace.

(d) All functions f such that f(0) = 0: Similar to the previous subsets, this subset is closed under addition, scalar multiplication, and contains the zero vector (the constant function equal to 0), so it is a subspace.

However, the subsets (b) All constant functions and (e) All differentiable functions do not satisfy closure under addition or scalar multiplication, so they are not subspaces of the vector space C(-0, +∞). The correct option is a, c, and d

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Complete question:

Which of the following nonempty subsets are subspaces of the vector space C(-0, +oo)?

(a) All nonnegative functions

(6) All constant functions

(c) All functions f such that f(0) = 1

(d) All functions f such that f(0) = 0

(e) All differentiable functions

find the ratio a:b, given 16a=3b

Answers

Answer:

3: 16

Step-by-step explanation:

What is a ratio?

A ratio has two or more numbers that symbolize relation to each other. Ratios are used to compare numbers, and you can compare them using division.

If 16a = 3b, then:

a/b = 3/16 = 3: 16

This means that the ratio a: b is equivalent to the ratio 3: 16.

Therefore, the ratio a: b is 3:16.

A tree 54 feet tall casts a shadow 58 feet long. Jane is 5.9 feet tall. What is the height of janes shadow?

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The height of Jane's shadow is approximately 6.37 feet.

How to solve for the height

Let's represent the height of the tree as H_tree, the length of the tree's shadow as S_tree, Jane's height as H_Jane, and the height of Jane's shadow as S_Jane.

According to the given information:

H_tree = 54 feet (height of the tree)

S_tree = 58 feet (length of the tree's shadow)

H_Jane = 5.9 feet (Jane's height)

We can set up the proportion between the tree and Jane:

(H_tree / S_tree) = (H_Jane / S_Jane)

Plugging in the values we know:

(54 / 58) = (5.9 / S_Jane)

To find S_Jane, we can solve for it by cross-multiplying and then dividing:

(54 / 58) * S_Jane = 5.9

S_Jane = (5.9 * 58) / 54

Simplifying the equation:

S_Jane ≈ 6.37 feet

Therefore, the height of Jane's shadow is approximately 6.37 feet.

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Three randomly selected households are surveyed. The numbers of people in the household are 3,4,11. Assume that samples of size n=2 are randomly selected with replacement form the population of 3,4,11. Listed below are the nine different samples. Complete parts (a) through (c).

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The mean of the population is the sum of the values divided by the total number of values: (3 + 4 + 11)/3 = 6. The standard deviation of the population can be calculated using the formula for population standard deviation.

(a) To find the mean of the sample means, we calculate the mean of all the possible sample means. In this case, there are nine different samples: (3, 3), (3, 4), (3, 11), (4, 3), (4, 4), (4, 11), (11, 3), (11, 4), and (11, 11). The mean of these sample means is (6 + 7 + 14 + 7 + 8 + 15 + 14 + 15 + 22)/9 = 12.

(b) To find the variance of the sample means, we use the formula for the variance of a sample mean, which is the population variance divided by the sample size. The population variance is calculated as the average of the squared differences between each value and the population mean. In this case, the population variance is[tex][(3-6)^2 + (4-6)^2 + (11-6)^2]/3[/tex]= 22. The variance of the sample means is 22/2 = 11.

(c) To find the standard deviation of the sample means, we take the square root of the variance of the sample means. The standard deviation of the sample means is sqrt(11) ≈ 3.32.

Thus, the mean of the sample means is 12, the variance of the sample means is 11, and the standard deviation of the sample means is approximately 3.32.

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Three randomly selected households are surveyed. The numbers of people in the households are 3​, 4​, and 11.

Assume that samples of size n=2 are randomly selected with replacement from the population of 3​, 4​, and 11.

3, 3

3, 4

3, 11

4, 3

4, 4

4, 11

11, 3

11, 4

11, 11

Compare the population variance to the mean of the sample variances. Choose the correct answer below.

use a linear approximation (or differentials) to estimate the given number 1/96

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To estimate the number 1/96 using linear approximation or differentials, we can consider the tangent line to the function f(x) = 1/x at a nearby point.

Let's choose a point close to x = 96, such as x = 100. The equation of the tangent line to f(x) at x = 100 can be found using the derivative of f(x). The derivative of f(x) = 1/x is given by f'(x) = -1/[tex]x^2[/tex]. At x = 100, the slope of the tangent line is f'(100) = -1/10000. The tangent line can be expressed in point-slope form as:

y - 1/100 = (-1/10000)(x - 100)

Now, to estimate 1/96, we substitute x = 96 into the equation of the tangent line:

y - 1/100 = (-1/10000)(96 - 100)

y - 1/100 = (-1/10000)(-4)

y - 1/100 = 1/2500

y = 1/100 + 1/2500

y ≈ 0.01 + 0.0004

y ≈ 0.0104

Therefore, using linear approximation, we estimate that 1/96 is approximately 0.0104.

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HW4: Problem 3 (1 point) Compute the Laplace transform: c{u(t)t°c " ) -us(t)} = If you don't get this in 2 tries, you can get a hint.

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Therefore, the Laplace transform of the given expression u(t)t - u_s(t) is (t - 1)/s.

To compute the Laplace transform of the given expression, we can use the linearity property of the Laplace transform and the differentiation property.

The Laplace transform of the function u(t) is given by: L{u(t)} = 1/s

Now, let's compute the Laplace transform of the given expression step by step:

L{u(t)t - u_s(t)} = L{u(t)t} - L{u_s(t)}

Using the linearity property of the Laplace transform:

L{u(t)t - u_s(t)} = t * L{u(t)} - L{u_s(t)}

Substituting L{u(t)} = 1/s:

L{u(t)t - u_s(t)} = t * (1/s) - L{u_s(t)}

The Laplace transform of the unit step function u_s(t) is given by:

L{u_s(t)} = 1/s

Substituting this into the equation:

L{u(t)t - u_s(t)} = t * (1/s) - 1/s Now, we can simplify the expression:

L{u(t)t - u_s(t)} = (t - 1)/s

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Consider the following.
x = 5 cos θ, y = 6 sin θ, −π/2 ≤ θ ≤ π/2
(a) Eliminate the parameter to find a Cartesian equation of the curve.

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The Cartesian equation of the curve represented by the parametric equations x = 5 cos θ and y = 6 sin θ, where −π/2 ≤ θ ≤ π/2, can be obtained by eliminating the parameter θ. The resulting equation is [tex]36x^2 + 25y^2 = 900[/tex].

We are given the parametric equations x = 5 cos θ and y = 6 sin θ, where −π/2 ≤ θ ≤ π/2. To eliminate the parameter θ, we need to express x and y in terms of each other.

Using the trigonometric identity cos²θ + sin²θ = 1, we can rewrite the given equations as:

cos²θ = x²/25   (1)

sin²θ = y²/36   (2)

Adding equations (1) and (2), we get:

cos² θ + sin² θ = x²/25 + y²/36

1 = x²/25 + y²/36

To eliminate the denominators, we multiply both sides of the equation by 25*36 = 900:

900 = 36x² + 25y²

Therefore, the Cartesian equation of the curve is 36x² + 25y² = 900. This equation represents an ellipse centered at the origin with major axis of length 2a = 60 (a = 30) along the x-axis and minor axis of length 2b = 48 (b = 24) along the y-axis.

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2. Let f(x, y, z) = 1 +y +z and consider the following parameterizations of the helix in R' starting at (1,0,0) and ending at (1,0,2%). Compute the line integral of Vf over H using the following param

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The line integral of F over H using the given parameterization is [tex]$2\pi$.[/tex]

To compute the line integral of [tex]$\mathbf{F}$[/tex]over the helix [tex]$H$[/tex] using the given parameterization, we'll express F and the parameterization in vector form.

Given:

[tex]\[\mathbf{F}(x, y, z) = \begin{pmatrix} 1 \\ y \\ z \end{pmatrix} \quad \text{and} \quad\begin{aligned}\mathbf{r}(t) &= \begin{pmatrix} 1 \\ 0 \\ 0 \end{pmatrix} + t \begin{pmatrix} 0 \\ \cos(t) \\ \sin(t) \end{pmatrix}, \quad t \in [0, 2\pi]\end{aligned}\][/tex]

The line integral of F over H can be computed as follows:

[tex]\[\begin{aligned}\int_{H} \mathbf{F} \cdot d\mathbf{r} &= \int_{0}^{2\pi} \mathbf{F}(\mathbf{r}(t)) \cdot \mathbf{r}'(t) \, dt \\&= \int_{0}^{2\pi} \begin{pmatrix} 1 \\ \cos(t) \\ \sin(t) \end{pmatrix} \cdot \left(\begin{pmatrix} 0 \\ \cos(t) \\ \sin(t) \end{pmatrix} \right) \, dt \\&= \int_{0}^{2\pi} (\cos^2(t) + \sin^2(t)) \, dt \\&= \int_{0}^{2\pi} 1 \, dt \\&= \left[ t \right]_{0}^{2\pi} \\&= 2\pi\end{aligned}\][/tex]

Therefore, the line integral of F over H using the given parameterization is [tex]$2\pi$.[/tex]

Parameterization: What Is It?

A mathematical technique known as parameterization involves representing the state of a system, process, or model as a function of a set of independent variables known as parameters.

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Find the domain of the function. (Enter your answer using interval notation.) √x g(x)= 6x² + 5x - 1 X

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Domain of the function g(x)= 6x² + 5x - 1 is  [1/6, ∞) .

To find the domain of the function g(x) = 6x² + 5x - 1, we need to determine the values of x for which the function is defined.

The square root function (√x) is defined only for non-negative values of x. Therefore, we need to find the values of x for which 6x² + 5x - 1 is non-negative.

To solve this inequality, we can set the quadratic expression greater than or equal to zero and solve for x:

6x² + 5x - 1 ≥ 0

To factorize the quadratic expression, we can use the quadratic formula:

x = (-b ± √(b² - 4ac)) / (2a)

In this case, a = 6, b = 5, and c = -1. Plugging these values into the quadratic formula:

x = (-5 ± √(5² - 4 * 6 * -1)) / (2 * 6)

 = (-5 ± √(25 + 24)) / 12

 = (-5 ± √49) / 12

Simplifying further:

x = (-5 ± 7) / 12

So we have two possible values for x:

x₁ = (-5 + 7) / 12 = 2 / 12 = 1/6

x₂ = (-5 - 7) / 12 = -12 / 12 = -1

Now, let's determine the sign of 6x² + 5x - 1 for different intervals of x:

For x < -1:

If we choose x = -2, for example, we have:

6(-2)² + 5(-2) - 1 = 24 - 10 - 1 = 13, which is positive.

For -1 < x < 1/6:

If we choose x = 0, for example, we have:

6(0)² + 5(0) - 1 = -1, which is negative.

For x > 1/6:

If we choose x = 1, for example, we have:

6(1)² + 5(1) - 1 = 10, which is positive.

From the analysis above, we can see that the quadratic expression 6x² + 5x - 1 is non-negative for x ≤ -1 and x ≥ 1/6.

However, the domain of the function g(x) also needs to consider the square root (√x). Therefore, the final domain of g(x) is the intersection of the domain of √x and the domain of 6x² + 5x - 1.

Since the domain of √x is x ≥ 0, and the domain of 6x² + 5x - 1 is x ≤ -1 and x ≥ 1/6, the intersection of these domains gives us the final domain of g(x):

Domain of g(x): [1/6, ∞)

Thus, the domain of the function g(x) = √x (6x² + 5x - 1) is [1/6, ∞) in interval notation.

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in the conjugate gradient method prove that if v (k) = 0 for some k then ax(k) = b

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In the conjugate gradient method, if v(k) = 0 for some iteration k, then it can be concluded that Ax(k) = b.

The conjugate gradient method is an iterative algorithm used to solve systems of linear equations. At each iteration, it generates a sequence of approximations x(k) that converges to the true solution x*. The algorithm relies on the concept of conjugate directions and minimizes the residual vector v(k) = b - Ax(k), where A is the coefficient matrix and b is the right-hand side vector.

If v(k) = 0, it means that the current approximation x(k) satisfies the equation b - Ax(k) = 0, which implies Ax(k) = b. This proves that x(k) is indeed a solution to the linear system.

The conjugate gradient method aims to find the solution x* in a finite number of iterations. If v(k) becomes zero at some iteration, it indicates that the current approximation has reached the solution. However, it's important to note that in practice, due to numerical errors, v(k) may not be exactly zero, but a very small value close to zero is typically considered as convergence criteria.

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Which statements are true about the ordered pair(−1,−4) and the system of equations? x−y=37x−y=−3 Select each correct answer. Responses When ​(−1,−4)​ is substituted into the first equation, the equation is false. When , ​, begin ordered pair negative 1 comma negative 4 end ordered pair, ​, is substituted into the first equation, the equation is false. When ​(−1,−4)​ is substituted into the second equation, the equation is true. When , ​, begin ordered pair negative 1 comma negative 4 end ordered pair, ​, is substituted into the second equation, the equation is true. When ​(−1,−4)​ is substituted into the second equation, the equation is false. When , ​, begin ordered pair negative 1 comma negative 4 end ordered pair, ​, is substituted into the second equation, the equation is false. The ordered pair ​(−1,−4)​ is not a solution to the system of linear equations. The ordered pair , ​, begin ordered pair negative 1 comma negative 4 end ordered pair, ​, is not a solution to the system of linear equations. The ordered pair ​(−1,−4)​ is a solution to the system of linear equations. The ordered pair , ​, begin ordered pair negative 1 comma negative 4 end ordered pair, ​, is a solution to the system of linear equations. When ​(−1,−4)​ is substituted into the first equation, the equation is true. When , ​, begin ordered pair negative 1 comma negative 4 end ordered pair, ​, is substituted into the first equation, the equation is true.

Answers

"When (-1,-4) is substituted into the first equation, the equation is false" and "When (-1,-4) is substituted into the second equation, the equation is false" are incorrect, as they contradict the true statements mentioned above.

The correct statements about the ordered pair (-1,-4) and the system of equations x-y=3 and 7x-y=-3 are:
- When (-1,-4) is substituted into the first equation, the equation is true.
- When (-1,-4) is substituted into the second equation, the equation is true.
- The ordered pair (-1,-4) is a solution to the system of linear equations.

To check if an ordered pair is a solution to a system of equations, we substitute the values of the ordered pair into each equation and see if both equations are true. In this case, we see that (-1,-4) makes both equations true, therefore it is a solution to the system.
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