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To test this series for convergence n ✓no +7 n-1 00 1 You could use the Limit Comparison Test, comparing it to the series where p= NP n1 Completing the test, it shows the series: O Converges O Diver

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Answer 1

The given series can be tested for convergence using the Limit Comparison Test. By comparing it to a known convergent series, we can determine whether the given series converges or diverges.

To test the convergence of the given series, we can apply the Limit Comparison Test. This test involves comparing the given series with a known convergent or divergent series. In this case, let's consider a known convergent series with a general term denoted as "p". We will compare the given series with this convergent series.

By applying the Limit Comparison Test, we take the limit as n approaches infinity of the ratio between the terms of the given series and the terms of the convergent series. If this limit is a positive, finite value, then both series have the same behavior. If the limit is zero or infinite, then the behavior of the two series differs.

In the given series, the general term is represented as n. As we compare it with the convergent series, we find that the ratio between the terms is n/n+1. Taking the limit as n approaches infinity, we see that this ratio tends to 1. Since the limit is a positive, finite value, we can conclude that the given series converges.

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Related Questions

7. Differentiate (find the derivative). Please use correct notation. (5 pts each) 6 a) f(x) = (2x¹-7)³ ƒ(x) = (ln(xº + 1) )* ← look carefully at the parentheses! b) 6

Answers

The derivative of the function f(x) = (2x¹-7)³ is 6(2x¹ - 7)² and derivative of the function f(x) = (ln(xº + 1))* is 0.

a) To find the derivative of the function f(x) = (2x¹-7)³, we can apply the chain rule. Let's break it down step by step:

First, we identify the inner function g(x) = 2x¹ - 7 and the outer function h(x) = g(x)³.

Now, let's find the derivative of the inner function g(x):

g'(x) = d/dx (2x¹ - 7)

= 2(d/dx(x)) - 0 (since the derivative of a constant term is zero)

= 2(1)

= 2

Next, let's find the derivative of the outer function h(x) using the chain rule:

h'(x) = d/dx (g(x)³)

= 3g(x)² * g'(x)

= 3(2x¹ - 7)² * 2

Therefore, the derivative of f(x) = (2x¹-7)³ is:

f'(x) = h'(x)

= 3(2x¹ - 7)² * 2

= 6(2x¹ - 7)²

b) To find the derivative of the function f(x) = (ln(xº + 1))* (carefully observe the parentheses), we'll again use the chain rule. Let's break it down:

First, we identify the inner function g(x) = ln(xº + 1) and the outer function h(x) = g(x)*.

Now, let's find the derivative of the inner function g(x):

g'(x) = d/dx (ln(xº + 1))

= 1/(xº + 1) * d/dx(xº + 1)

= 1/(xº + 1) * 0 (since the derivative of a constant term is zero)

= 0

Next, let's find the derivative of the outer function h(x) using the chain rule:

h'(x) = d/dx (g(x)*)

= g(x) * g'(x)

= ln(xº + 1) * 0

= 0

Therefore, the derivative of f(x) = (ln(xº + 1))* is:

f'(x) = h'(x)

= 0

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Differentiate the function. 3 h(x) (45 – 3x3 +998 + ) h'(x) = x

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The function after differentiation is [tex]3 h(x)(1045 - 3x^3) h'(x) - 27x^2 h(x) h'(x) = dy/dx = x.[/tex]

We need to differentiate the function, which is 3 h(x) (45 – 3x3 +998 + ) h'(x) = x.

Functions can be of many different sorts, including linear, quadratic, exponential, trigonometric, and logarithmic. Input-output tables, graphs, and analytical formulas can all be used to define them graphically. Functions can be used to depict geometric shape alterations, define relationships between numbers, or model real-world events.

Let's first simplify the expression given below.3 h(x) (45 – 3x3 +998 + ) h'(x) = xWhen we simplify the above expression, we get;3 h(x) (1045 - 3x³) h'(x) = x

To differentiate the above expression, we use the product rule of differentiation; let f(x) = 3 h(x) and g(x) = [tex](1045 - 3x^3) h'(x)[/tex]

Now, f'(x) = 3h'(x) and [tex]g'(x) = -9x^2 h'(x)[/tex]

We apply the product rule of differentiation. Let's assume that [tex]y = f(x)g(x).dy/dx = f'(x)g(x) + f(x)g'(x)dy/dx = 3h'(x)(1045 - 3x³)h(x) + 3h(x)(-9x²h'(x))3h'(x)(1045 - 3x³)h(x) - 27x²h(x)h'(x)[/tex]

Now, the function after differentiation is [tex]3 h(x)(1045 - 3x^3) h'(x) - 27x^2 h(x) h'(x) = dy/dx = x.[/tex] This is the required solution.

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1. What are the 3 conditions for a function to be continuous at xa? 2. the below. Discuss the continuity of function defined by graph 3. Does the functionf(x) = { ***

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The three conditions for a function to be continuous at a point x=a are:

a) The function is defined at x=a.

b) The limit of the function as x approaches a exists.

c) The limit of the function as x approaches a is equal to the value of the function at x=a.

The continuity of a function can be analyzed by observing its graph. However, as the graph is not provided, a specific discussion about its continuity cannot be made without further information. It is necessary to examine the behavior of the function around the point in question and determine if the three conditions for continuity are satisfied.

The function f(x) = { *** is not defined in the question. In order to discuss its continuity, the function needs to be provided or described. Without the specific form of the function, it is impossible to analyze its continuity. Different functions can exhibit different behaviors with respect to continuity, so additional information is required to determine whether or not the function is continuous at a particular point or interval.

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True or False:
In a right triangle, if two acute angles are known, then the triangle can be solved.
A. False, because the missing side can be found using the Pythagorean Theorem, but the angles cannot be found.
B. True, because the missing side can be found using the complementary angle theorem.
C. False, because solving a right triangle requires knowing one of the acute angles A or B and a side, or else two sides.
D. True, because the missing side can be found using the Pythagorean Theorem and all the angles can be found using trigonometric functions.

Answers

C. False, because solving a right triangle requires knowing one of the acute angles A or B and a side, or else two sides.

In a right triangle, if one acute angle and a side are known, then the other acute angle and the remaining sides can be found using trigonometric functions or the Pythagorean Theorem.

A right triangle is a three-sided geometric figure having a right angle that is exactly 90 degrees. The intersection of the two shorter sides—known as the legs—and the longest side—known as the hypotenuse—opposite the right angle—creates this angle. A key idea in right triangles is the Pythagorean theorem, which states that the square of the hypotenuse is equal to the sum of the squares of the other two sides. Right triangles can have their unknown side lengths or angles calculated using this theorem. Right triangles are a crucial mathematical subject because of its numerous applications in geometry, trigonometry, and everyday life.

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In her geology class, Nora learned that quartz is found naturally in a variety of colors. Nora's teacher has a giant box of colorful quartz pieces that he and his students have collected over the years. Nora picks a piece of quartz out of the box, records the color, and places it back in the box. She does this 18 times and gets 3 purple, 2 yellow, 5 white, and 8 pink quartz pieces.

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Nora's 18-piece sample from the box of colorful quartz yielded 3 purple, 2 yellow, 5 white, and 8 pink pieces. The estimated relative frequencies indicate that pink quartz is the most common color in the box.

Nora's sample of 18 pieces of quartz from the box yielded the following results:

3 purple pieces

2 yellow pieces

5 white pieces

8 pink pieces

From this sample, we can calculate the relative frequencies of each color. The relative frequency is obtained by dividing the number of occurrences of a particular color by the total number of pieces in the sample. Let's calculate the relative frequencies for each color:

Purple: 3/18 = 1/6 ≈ 0.167 or 16.7%

Yellow: 2/18 = 1/9 ≈ 0.111 or 11.1%

White: 5/18 ≈ 0.278 or 27.8%

Pink: 8/18 ≈ 0.444 or 44.4%

These relative frequencies give us an estimate of the probabilities of selecting a quartz piece of each color from the box, assuming the sample is representative of the entire collection.

Based on the sample, we can infer that pink quartz appears to be the most common color, followed by white, purple, and yellow. However, we should note that this inference is based solely on the limited sample of 18 pieces and may not accurately reflect the overall distribution of colors in the entire box of quartz. To make more precise conclusions about the color distribution in the box, a larger and more representative sample would be necessary.

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f(x+h)-f(x) h occur frequently in calculus. Evaluate this limit for the given value of x and function f. *** Limits of the form lim h-0 f(x)=x², x= -8 The value of the limit is. (Simplify your answer

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The limit of the expression (f(x+h) - f(x))/h as h approaches 0, where f(x) = x² and x = -8, is 16.

In this problem, we are given the function f(x) = x² and the value x = -8. We need to evaluate the limit of the expression (f(x+h) - f(x))/h as h approaches 0.

To do this, we substitute the given values into the expression:

(f(x+h) - f(x))/h = (f(-8+h) - f(-8))/h

Next, we evaluate the function f(x) = x² at the given values:

f(-8) = (-8)² = 64

f(-8+h) = (-8+h)² = (h-8)² = h² - 16h + 64

Substituting these values back into the expression:

(f(-8+h) - f(-8))/h = (h² - 16h + 64 - 64)/h = (h² - 16h)/h = h - 16

Finally, we take the limit as h approaches 0:

lim h→0 (h - 16) = -16

Therefore, the value of the limit is -16.

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A loxodrome, or rhumb line, L, may be parametrized by longitude, 0: rhumb (0) = sech (t.0). cos (8) sin (0) sinh (t - 0) „]-[ cos (0) sech (t0) sin (0) sech (t.0) tanh(t.0) (1) where t > 0 is a fixed parameter to identify the rhumb line among others. a).Find the magnitude [4, §12.2], rhumb (0)|, of the vector rhumb (0): rhumb (0)| = (2) (b) Find the derivative [4, §13.2], rhumb' (0), of the vector rhumb (0): rhumb' (0) = (3) (c) Find the magnitude [4, §12.2] of the derivative, |rhumb' (0)|: rhumb' (0)| (4) (d) The parallel at latitude X may be parametrized with longitude, 0, by p (0) = cos (0) cos (X) sin (0) · cos(x) sin (X) (5) Find the derivative [4, §13.2], p' (0), of p (0): p' (0) (6) = (e) Find the angle [4, §12.3], denoted here by 3, between the tangent to the parallel, p' (0), and the tangent to the rhumb line, rhumb' (0). (f) Find the following integral [4, §6.7]: , sech (z) dz = (7) (g) Find the arc length [4, §13.3] of the rhumb line L from 0 = − [infinity] to 0 = [infinity]0: 1 ds = (8)

Answers

The given problem involves various calculations related to a loxodrome or rhumb line parametrized by longitude and latitude.

We need to find the magnitude of the vector, the derivative of the vector, the magnitude of the derivative, the derivative of a parallel at a given latitude, the angle between the tangents of the parallel and the rhumb line, and perform an integral and calculate the arc length of the rhumb line.

(a) To find the magnitude of the vector rhumb(θ), we need to calculate its norm or length.

(b) The derivative of the vector rhumb(θ) can be found by differentiating each component with respect to the parameter θ.

(c) To find the magnitude of the derivative |rhumb'(θ)|, we calculate the norm or length of the derivative vector.

(d) The derivative of the parallel p(θ) can be found by differentiating each component with respect to the parameter θ.

(e) The angle between the tangent to the parallel p'(θ) and the tangent to the rhumb line rhumb'(θ) can be calculated using the dot product and the magnitudes of the vectors.

(f) The given integral involving sech(z) can be evaluated using the appropriate integration techniques.

(g) The arc length of the rhumb line L can be calculated by integrating the magnitude of the derivative vector over the given limits.

Each calculation involves performing specific mathematical operations and applying the relevant formulas and techniques. The provided equations and steps can be used to solve the problem and obtain the desired results.

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Make up derivative questions which meet the following criteria. Then take the derivative. Do not simplify your answers 1. An equation which uses quotient rule involving a trig ratio and exponential (not base e) and the chain rule used exactly twice. 2. An equation which uses product ule involving a trig ratio and an exponential (base e permitted). The chain rule must be used for each of the trig ratio and exponential 3. An equation with a trio ratlo as both the outside and inside operation 4. An equation with a trig ratio as the inside operation, and the chain rule used exactly once 5. An equation with three terms the first term has basee, the second has an exponential base (note) and the last is a trigratio. Each of the terms should have a chain application,

Answers

The derivative questions that meet the given criteria:

1. [tex]f(x) = (sin(x) + e^{(2x)})/(cos(x) + e^{(3x)})[/tex]

2. [tex]g(x) = sin(x) * e^{(2x)}[/tex]

3.  [tex]h(x) = sin^2{(x)}[/tex]

4. i(x) = [tex]cos(e^{(x)})[/tex]

5.  [tex]j(x) = e^{x} + e^{(2x)} + sin(x)[/tex]

How to find an equation which uses quotient rule involving a trig ratio and exponential?

Here are derivative questions that meet the given criteria:

1. Find the derivative of [tex]f(x) = (sin(x) + e^{(2x)})/(cos(x) + e^{(3x)})[/tex]

1. f'(x) = [tex][(cos(x) + e^{(3x)})(sin(x) + e^{(2x)})' - (sin(x) + e^{(2x)})(cos(x) + e^{(3x)})']/(cos(x) + e^{(3x)})^2[/tex]

How to find an equation which uses product rule involving a trig ratio and an exponential?

2. Find the derivative of[tex]g(x) = sin(x) * e^{(2x)}[/tex]

g'(x) = [tex](sin(x) * e^{(2x)})' + (e^{(2x)} * sin(x))'[/tex]

How to find an equation with a trio ratio as both the outside and inside operation?

3. Find the derivative of [tex]h(x) = sin^2{(x)}[/tex]

[tex]h'(x) = (sin^2{(x)])'[/tex]

How to find an equation with a trig ratio as the inside operation, and the chain rule used exactly once?

4. Find the derivative of i(x) = [tex]cos(e^{(x)})[/tex]

[tex]i'(x) = (cos(e^{(x))})'[/tex]

How to find an equation with three terms the first term has base?

5. Find the derivative of [tex]j(x) = e^{x} + e^{(2x)} + sin(x)[/tex]

j'(x) =[tex](e^x + e^{(2x)} + sin(x))'[/tex]

[tex](e^x + e^{(2x)} + sin(x))'[/tex]

The answers provided above are the derivatives of the given functions based on the specified criteria, and they are not simplified.

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Suppose 3/₁ = t¹y₁ + 5y2 + sec(t), sin(t)y₁+ty2 - 2. Y₂ = This system of linear differential equations can be put in the form y' = P(t)y + g(t). Determine P(t) and g(t). P(t) = g(t) =

Answers

P(t) is the coefficient matrix A(t) and g(t) is the vector of additional terms G(t): P(t) = A(t) = [t⁴, 5; sin(t), t], and g(t) = G(t) = [sec(t), -2]. These expressions allow us to represent the system of differential equations in the desired form.

To determine P(t) and g(t) for the given system of linear differential equations, we need to express the system in the form y' = P(t)y + g(t).

Comparing the given system of equations:

y'₁ = t⁴y₁ + 5y₂ + sec(t),

y'₂ = sin(t)y₁ + ty₂ - 2.

We can write the system in matrix form as:

Y' = A(t)Y + G(t),

where Y = [y₁, y₂] is the column vector of the unknown functions, Y' = [y'₁, y'₂] is the derivative of Y, A(t) is the coefficient matrix, and G(t) is the vector of additional terms.

From the given equations, we can see that the coefficient matrix A(t) is:

A(t) = [t⁴, 5; sin(t), t].

And the vector of additional terms G(t) is:

G(t) = [sec(t), -2].

Therefore, P(t) is the coefficient matrix A(t) and g(t) is the vector of additional terms G(t):

P(t) = A(t) = [t⁴, 5; sin(t), t],

g(t) = G(t) = [sec(t), -2].

In conclusion, by comparing the given system of equations with the form y' = P(t)y + g(t), we can determine the coefficient matrix P(t) and the vector of additional terms g(t). These expressions allow us to represent the system of differential equations in the desired form.

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Complete Question:

Suppose y'₁ = t⁴y₁ + 5y₂ + sec(t), y'₂ = sin(t)y₁ + ty₂ - 2.

This system of linear differential equations can be put in the form y' = P(t)y + g(t). Determine P(t) and g(t).

Three students were given the following problem: f dx =, make out the actual question. However, we do know that Shannon's answer was sin? x + C, answer was – cos? x + C and Joe's answer was – sin x + C. Two of these students got the answer right. One got it wrong. What was the original question, and who got the answer wrong?

Answers

The original question was to find the antiderivative of f dx. Shannon's answer of [tex]$\sin{x}+C$[/tex] and Anne's answer of [tex]$-\cos{x}+C$[/tex] are both correct, while Joe's answer of [tex]$-\sin{x}+C$[/tex] is incorrect.

In calculus, finding the antiderivative or integral of a function involves determining a function whose derivative is equal to the given function. The integral is denoted by the symbol [tex]$\int$[/tex]. In this case, the question can be written as [tex]$\int f \, dx$[/tex].

Shannon correctly found the antiderivative by recognizing that the derivative of [tex]$\sin{x}$[/tex] is [tex]$-\cos{x}$[/tex]. Hence, her answer of [tex]$\sin{x}+C$[/tex] is correct, where C is the constant of integration. Anne also found the correct antiderivative by recognizing that the derivative of [tex]$-\cos{x}$[/tex] is [tex]$\sin{x}$[/tex]. Thus, her answer of [tex]$-\cos{x}+C$[/tex] is also correct.

On the other hand, Joe's answer of [tex]$-\sin{x}+C$[/tex] is incorrect. The derivative of [tex]$-\sin{x}$[/tex] is actually [tex]$-\cos{x}$[/tex], not [tex]$\sin{x}$[/tex]. Therefore, Joe got the answer wrong.

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Solve the non-linear Differential equation below. k0
and α are constants. Also Q and D constants. Boundary conditions
are x=0, T=Th and x=L, T=Tc. To solve, first apply u=dT/dx then
transfer variable

Answers

T = ∫(1/(k0 * e⁽⁻αT⁾)) dx.

This integral can be solved by suitable techniques, such as integration by substitution or integration of exponential functions.

To solve the given nonlinear differential equation, we can follow these steps:

Step 1: Apply the variable transformation u = dT/dx.

transforms the original equation from a second-order differential equation to a first-order differential equation.

Step 2: Substitute the variable transformation into the original equation to express it in terms of u.

Step 3: Solve the resulting first-order ordinary differential equation (ODE) for u(x).

Step 4: Integrate u(x) to obtain T(x).

Let's go through these steps in detail:

Step 1: Apply the variable transformation u = dT/dx. This implies that T = ∫u dx.

Step 2: Substitute the variable transformation into the original equation:

k0 * e⁽⁻αT⁾ * (d²T/dx²) + Q = D * (dT/dx)².

Now, express the equation in terms of u:

k0 * e⁽⁻αT⁾ * (d²T/dx²) = D * u² - Q.

Step 3: Solve the resulting first-order ODE for u(x):

k0 * e⁽⁻αT⁾ * du/dx = D * u² - Q.

Separate variables   and integrate:

∫(1/(D * u² - Q)) du = (k0 * e⁽⁻αT⁾) dx.

The integral on the left-hand side can be evaluated using partial fraction decomposition or other appropriate techniques.

Step 4: Integrate u(x) to obtain T(x):

By following these steps, you can solve the given nonlinear differential equation and find an expression for T(x) that satisfies the boundary conditions T(0) = Th and T(L) = Tc.

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Evaluate SIS 2 1 dV, where E lies between the spheres x2 + y2 + z2 25 and x2 + y2 + z2 = 49 in the first octant. x² + y² + z² = =

Answers

The value of the integral is 2π/3.

To evaluate the integral SIS 2 1 dV, where E lies between the spheres x² + y² + z² = 25 and x² + y² + z² = 49 in the first octant:

1. We first set up the integral in spherical coordinates. The volume element in spherical coordinates is given by dV = ρ²sin(φ)dρdθdφ, where ρ represents the radial distance, φ represents the polar angle, and θ represents the azimuthal angle.

2. Since we are interested in the first octant, the ranges of the variables are:

  - ρ: from 1 to √25 = 5

  - θ: from 0 to π/2

  - φ: from 0 to π/2

3. The integral becomes:

  ∫∫∫E dV = ∫₀^(π/2) ∫₀^(π/2) ∫₁⁵ ρ²sin(φ)dρdθdφ

4. Integrating with respect to ρ, θ, and φ in the given ranges, we obtain:

  ∫∫∫E dV = ∫₀^(π/2) ∫₀^(π/2) ∫₁⁵ ρ²sin(φ)dρdθdφ = 2π/3

Therefore, the value of the integral SIS 2 1 dV, where E lies between the spheres x² + y² + z² = 25 and x² + y² + z² = 49 in the first octant, is 2π/3.

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Miss Lucy has 2 cubic containers with sides 10 cm long as shown below she plans to fill both containers with smaller cubes each 1 cm long to demonstrate the concept of volume to her students
which amount best represents the number of smaller cubes needed to fill both containers?
A: 2000
B:60
C:20
D:200

Answers

The correct answer is A: 2000.

To determine the number of smaller cubes needed to fill both containers, we can calculate the total volume of the two containers and then divide it by the volume of each smaller cube.

Each container has sides measuring 10 cm, so the volume of each container is:

Volume of one container = 10 cm x 10 cm x 10 cm = 1000 cm³

Since Miss Lucy has two containers, the total volume of both containers is:

Total volume of both containers = 2 x 1000 cm³ = 2000 cm³

Now, we need to find the volume of each smaller cube.

Each smaller cube has sides measuring 1 cm, so the volume of each smaller cube is:

Volume of each smaller cube = 1 cm x 1 cm x 1 cm = 1 cm³

To find the number of smaller cubes needed to fill both containers, we divide the total volume of both containers by the volume of each smaller cube:

Number of smaller cubes = Total volume of both containers / Volume of each smaller cube

= 2000 cm³ / 1 cm³

= 2000

Therefore, the correct answer is A: 2000.

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2. DETAILS SCALCET9 6.2.013.EP. Consider the solid obtained by rotating the region bounded by the given curves about the specified line. y = x-1, y=0, x= 5; about the x-axis Set up an integral that ca

Answers

The integral to calculate the volume of the solid obtained by rotating the region bounded by[tex]y = x - 1, y = 0[/tex], and x = 5 about the x-axis can be set up as follows:

[tex]∫[0 to 5] π*(y^2) dx[/tex]

In this integral, [tex]π*(y^2)[/tex]represents the area of a circular disc at each value of x, and the integration is performed over the interval [0, 5] to cover the entire region of interest. The height (y) of the disc is given by the difference between the functions y = x - 1 and y = 0.

To find the volume of the solid, we need to integrate the areas of the circular discs formed by rotating the region bounded by the given curves around the x-axis. The differential volume element of each disc is a cylindrical shell with radius y and thickness dx.

Since we are rotating around the x-axis, the radius of each disc is given by y, which is the distance from the curve y = x - 1 to the x-axis. The area of each disc is given by [tex]π*(y^2).[/tex]

By integrating[tex]π*(y^2[/tex]) with respect to x over the interval [0, 5], we sum up the volumes of all the cylindrical shells to obtain the total volume of the solid. The integral calculates the volume slice by slice along the x-axis, adding up the contributions from each disc.

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The following function is negative on the given interval. f(x) = -4 - x?; [2,7] a. Sketch the function on the given interval. b. Approximate the net area bounded by the graph off and the x-axis on the

Answers

a. Function sketch on [2, 7]: Steps to graph f(x) = -4 - x on the interval [2,7]:

First, get the function's x- and y-intercepts: x-intercept:

f(x) = 0 => -4 - x = 0 => -4 (x-intercept (-4, 0))y-intercept:

x = 0, f(x) = -4 (0, -4)

Step 2:

Find the line's slope using the slope-intercept form:

y = f(x) - 4It slopes -1.

The line will fall from left to right.

Step 3:

Use the slope and intercept to get two more line points:

We can use our earlier x- and y-intercepts to find two more points.

Draw a line between these points using the slope.

Step 4:

Draw the line:

Connect the two locations with a downward-sloping line.

Function graph on [2, 7].

The graph of f(x) = -4 - x on [2,7] is shown below:  

b. Estimate the net area between the graph of f and the x-axis on [2, 7]:

The trapezoidal rule can estimate the area bounded by the function f(x) = -4 - x and the x-axis on the interval [2, 7].

The trapezoidal rule divides a curve into trapezoids and sums their areas to estimate its area.

Trapezoidal rule with n = 4 subintervals yields:

x = (7 - 2)/4 = 1.25A = x/2 [f(2) + 2f(3.25) + 2f(4.5) + 2f(5.75) + f(7)].

where f(x)=-4-x.

A = (1.25/2)[-6 - 2(-7.25) - 2(-8.5) - 2(-9.75) - 11]

A ≈ (0.625)(25)A ≈ 15.625

The net area between the graph of f and the x-axis on [2, 7] is 15.625 square units.

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A land parcel has topographic contour of an area can be mathematically
represented by the following equation:
2 = 0.5x4 + xIny + 2cosx For earthwork purpose, the landowner needs to know the contour
slope with respect to each independent variables of the contour.
Determine the slope equations.
(if)
Compute the contour slopes in x and y at the point (2, 3).

Answers

The contour slopes in x and y at the point (2, 3) are -17.065 and -0.667, respectively.

Contour lines or contour isolines are points on a contour map that display the surface elevation relative to a reference level.

To identify the contour slopes with regard to the independent variables of the contour, we'll need to determine the partial derivatives with respect to x and y.

The slope of a function is its derivative, which provides a measure of how steep the function is at a particular point.

Here's how to compute the slope of each independent variable of the contour:  

Partial derivative with respect to x:  2 = 0.5x4 + xlny + 2cosx

∂/∂x(2) = ∂/∂x(0.5x4 + xlny + 2cosx)

0 = 2x3 + ln(y)(1) - 2sin(x)(1)

0 = 2x3 + ln(y) - 2sin(x)

Slope equation for x:  ∂z/∂x = - (2x3 + ln(y) - 2sin(x))

Partial derivative with respect to y:  2 = 0.5x4 + xlny + 2cosx

∂/∂y(2) = ∂/∂y(0.5x4 + xlny + 2cosx)

0 = x(1/y)(1)

0 = x/y

Slope equation for y:  ∂z/∂y = - (x/y)

Compute the contour slopes in x and y at the point (2, 3):

To determine the contour slopes in x and y at the point (2, 3), substitute the values of x and y into the slope equations we derived earlier.

Slope equation for x:  ∂z/∂x = - (2x3 + ln(y) - 2sin(x))  

∂z/∂x = - (2(23) + ln(3) - 2sin(2))  

∂z/∂x = - (16 + 1.099 - 0.034)  

∂z/∂x = - 17.065

Slope equation for y:  ∂z/∂y = - (x/y)  

∂z/∂y = - (2/3)  

∂z/∂y = - 0.667

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find the limit, if it exists. (if an answer does not exist, enter dne.) lim x → [infinity] 5 cos(x)

Answers

As the value x approaches infinity, the function 5 cos(x), which can also be abbreviated as DNE, continues to grow without limit.

It is necessary to investigate the behaviour of the function as x gets increasingly larger in order to identify the limit of the 5 cos(x) expression as x approaches infinity. By doing this, we will be able to determine the extent of the limit. The value of the cosine function, which is symbolised by the symbol cos(x), fluctuates between -1 and 1 as x continues to increase without bound. This suggests that the values of 5 cos(x) will also swing between -5 and 5 as the function develops. This is the case since x approaches infinity as the function evolves.

The limit does not exist because the function does not attain a specific value but rather continues to fluctuate back and forth. This is the reason why the limit does not exist. To put it another way, there is no single value that can be defined as the limit of 5 cos(x), even as x becomes closer and closer to infinity. This is because 5 cos(x) is a function of the angle between x and itself. Take a look at the graph of the function; there, we can see that there are oscillations that occur at regular intervals. This can make it easier for us to picture what is taking place. As a consequence of this, the answer that was provided for the limit problem is "does not exist," which is abbreviated as "DNE."

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Sketch the region enclosed by the given curves and find the area of the repea. Styles Ayles Editing Create and Share Adobe POS Modelado y = r2 - 2x +1 and y=r+1

Answers

The required area of the region enclosed by the given curves is 2r²/3 + 4/3 square units.

Calculating the enclosed area between a curve and an axis (often the x-axis or y-axis) on a graph is known as the area of curves. calculating the definite integral of a function over a predetermined interval entails calculating the area of curves, which is a fundamental component of calculus. The area between the curve and the axis can be calculated by integrating the function with respect to the relevant variable within the specified interval.

The curves y = r2 - 2x +1 and y=r+1 enclose a region as shown below: Figure showing the enclosed region by curvesThe intersection points of these curves are found by equating the two equations:

r2 - 2x +1 = r + 1r2 - r - 2x = 0

Solving for x using quadratic formula: x = [-(r) ± sqrt(r2 + 8r)]/2

The region is symmetric with respect to y-axis. Therefore, to find the total area, we only need to find the area of one half and multiply it by 2.

A = 2∫(r + 1)dx + 2∫[(r2 - 2x + 1) - (r + 1)]dxA = [tex]2∫(r + 1)dx + 2∫(r2 - 2x)dx + 2∫dxA[/tex]= 2(x(r + 1)) + 2(-x2 + r2x + x) + 2x + C = 2r2/3 + 4/3

Therefore, the required area of the region enclosed by the given curves is 2r²/3 + 4/3 square units.


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find a vector equation for the line that passes through the points (– 5, 6, – 9) and (8, – 2, 4).

Answers

The vector equation for the line passing through the points (-5, 6, -9) and (8, -2, 4) is r = (-5, 6, -9) + t(13, -8, 13), where t is a parameter.

To find the vector equation for a line, we need a point on the line and a direction vector.

Given the two points (-5, 6, -9) and (8, -2, 4), we can use one of the points as the point on the line and find the direction vector by taking the difference between the two points.

Let's use (-5, 6, -9) as the point on the line.

The direction vector can be found by subtracting the coordinates of the first point from the coordinates of the second point:

Direction vector = (8, -2, 4) - (-5, 6, -9) = (8 + 5, -2 - 6, 4 + 9) = (13, -8, 13).

Now, we can write the vector equation of the line using the point (-5, 6, -9) and the direction vector (13, -8, 13):

r = (-5, 6, -9) + t(13, -8, 13),

where r is the position vector of any point on the line, and t is a parameter that can take any real value.

This equation represents all the points on the line passing through the given points. By varying the value of t, we can obtain different points on the line.

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Question 8(Multiple Choice Worth 10 points) 2. (07.01 MC) Select the general solution to x2 dx x2 dy 3+2y. ...31n|3+2y = In/x+|+0 11.11n|3 + 2y|=*+C II .+C = х O11 Both O Neither

Answers

The general solution to the given differential equation is (1/3) x³ + x²y - 3x - 2xy = C the correct answer is: C. Both

The given differential equation is:

x² dx + x² dy = 3 + 2y

To find the general solution integrate both sides of the equation with respect to their respective variables:

∫x² dx + ∫x² dy = ∫(3 + 2y) dx

Integrating each term:

(1/3) x³ + ∫x² dy = ∫(3 + 2y) dx

(1/3) x³ + x²y = 3x + 2xy + C

Simplifying the equation,

(1/3) x³ + x²y - 3x - 2xy = C

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Calculate the first four terms of the sequence an = n + (n + 1) + (n + 2) + ... + (5n), starting with n = 1.
a1 = ?
a2 = ?
a3 = ?
a4 = ?

Answers

a1 = 7 a2 = 14 a3 = 21 a4 = 28 The sequence is generated by adding consecutive terms starting from n up to 5n.

For the first term, a1, we substitute n = 1 and evaluate the expression, which gives us 7. Similarly, for the second term, a2, we substitute n = 2 and find that a2 is equal to 14.

Continuing this pattern, we find that a3 = 21 and a4 = 28.The sequence follows a pattern where each term is 7 times the value of n. This can be observed by rearranging the terms in the expression to [tex]n + (n + 1) + (n + 2) + ... + (5n) = 7n + (1 + 2 + ... + n).[/tex]The sum of the integers from 1 to n is given by the formula n(n+1)/2. Therefore, the general term of the sequence is given by [tex]an = 7n + (n(n+1)/2)[/tex], and by substituting different values of n, we obtain the first four terms as 7, 14, 21, and 28.

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find the area of the region covered by points on the lines, x/a + y/b =1
where the sum of any lines intercepts on the coordinate axes is fixed and equal to c

Answers

The area of the region covered by points on the lines x/a + y/b = 1, where the sum of intercepts on the coordinate axes is fixed at c, can be found by integrating a specific equation and considering all possible intercept values.

To find the area of the region covered by points on the lines x/a + y/b = 1, where the sum of any line's intercepts on the coordinate axes is fixed and equal to c, we can start by rewriting the equation in terms of the intercepts.

Let the x-intercept be denoted as x0 and the y-intercept as y0. The coordinates of the x-intercept are (x0, 0), and the coordinates of the y-intercept are (0, y0). Since the sum of these intercepts is fixed and equal to c, we have x0 + y0 = c.

Solving the equation x/a + y/b = 1 for y, we get y = b - (bx0)/a.

To find the area covered by the points on this line, we can integrate y with respect to x over the range from 0 to x0. Thus, the area A(x0) covered by this line is:

A(x0) = ∫[0, x0] (b - (bx)/a) dx.

Evaluating the integral, we have:

A(x0) = b * x0 - (b^2 * x0^2) / (2a).

To find the total area covered by all possible lines, we need to consider all possible x-intercepts (x0) that satisfy x0 + y0 = c. This means the range of x0 is from 0 to c, and for each x0, the corresponding y0 is c - x0.

The total area covered by the region is obtained by integrating A(x0) over the range from 0 to c:

Area = ∫[0, c] (b * x0 - (b^2 * x0^2) / (2a)) dx0.

Evaluating this integral will give you the area of the region covered by the points on the lines.

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8- Find the critical values and determine their nature (minimum or maximum) for 2x5 f(x): 5x³ 5 4 =

Answers

We are given the function f(x) = 5x^3 + 5x^4 and need to find the critical values and determine their nature (minimum or maximum). To find the critical values, we calculate the derivative of f(x), set it equal to zero, and solve for x. Next, we determine the nature of the critical points by analyzing the second derivative.

First, we find the derivative of f(x) with respect to x. Taking the derivative, we get f'(x) = 15x^2 + 20x^3.

Next, we set f'(x) equal to zero and solve for x to find the critical values. Setting 15x^2 + 20x^3 = 0, we can factor out x^2 to get x^2(15 + 20x) = 0. This equation is satisfied when x = 0 or when 15 + 20x = 0, which gives x = -15/20 or x = -3/4.

To determine the nature of the critical points, we calculate the second derivative f''(x) of the function. Taking the second derivative, we get f''(x) = 30x + 60x^2.

Substituting the critical values into the second derivative, we find that f''(0) = 0 and f''(-15/20) = -27, while f''(-3/4) = 12.

Based on the second derivative test, when f''(x) > 0, it indicates a minimum point, and when f''(x) < 0, it indicates a maximum point. In this case, since f''(-3/4) = 12 > 0, it corresponds to a local minimum.

Therefore, the critical value x = -3/4 corresponds to a local minimum for the function f(x) = 5x^3 + 5x^4.

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Let A be an n x n matrix such that A^2 = 0. Prove that if B is similar to A, then B
Let B be similar to A, B = P^-1 AP. Then we have the following.
B^2 = (P^-1 AP)^2

Answers

If matrix A satisfies [tex]A^2[/tex] = 0 and matrix B is similar to A, then [tex]B^2[/tex] = 0 because similar matrices have the same eigenvalues and eigenvectors.

The proof begins by considering a matrix B that is similar to matrix A, where B = [tex]P^{(-1)}AP[/tex]. The goal is to show that if [tex]A^2[/tex]= 0, then [tex]B^2[/tex] = 0 as well. To prove this, we can start by expanding [tex]B^2[/tex]:

[tex]B^2 = (P^{(-1)}AP)(P^{(-1)}AP)[/tex]

Using the associative property of matrix multiplication, we can rearrange the terms:

[tex]B^2 = P^{(-1)}A(PP^{(-1)}AP[/tex]

Since [tex]P^{(-1)}P[/tex] is equal to the identity matrix I, we have:

[tex]B^2 = P^{(-1)}AIA^{(-1)}AP[/tex]

Simplifying further, we get:

[tex]B^2 = P^{(-1)}AA^{(-1)}AP[/tex]

Since [tex]A^2[/tex] = 0, we can substitute it in the equation:

[tex]B^2 = P^{(-1)}0AP[/tex]

The zero matrix multiplied by any matrix is always the zero matrix:

[tex]B^2[/tex] = 0

Therefore, we have shown that if [tex]A^2[/tex] = 0, then [tex]B^2[/tex] = 0 for any matrix B that is similar to A.

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amanda is making a special gelatin dessert for the garden club meeting. she plans to fill a large flower-pot-shaped mold with 12 ounces of gelatin. she wants to use the rest of the gelatin to fill small daisy-shaped molds. each daisy-shaped mold holds 3 ounces, and the package of gelatin she bought makes 60 ounces in all. which equation can you use to find how many daisy-shaped molds, x, amanda can fill? wonderful!

Answers

Amanda can fill 16 daisy-shaped molds with the remaining gelatin.

To determine how many daisy-shaped molds Amanda can fill with the remaining gelatin, we can use the equation x = (60 - 12) / 3, where x represents the number of daisy-shaped molds.

Amanda plans to fill a large flower-pot-shaped mold with 12 ounces of gelatin, leaving her with the remaining amount to fill the daisy-shaped molds. The total amount of gelatin in the package she bought is 60 ounces. To find out how many daisy-shaped molds she can fill, we need to subtract the amount used for the large mold from the total amount of gelatin. Thus, (60 - 12) gives us the remaining gelatin available for the daisy-shaped molds, which is 48 ounces.

Since each daisy-shaped mold holds 3 ounces, we can divide the remaining gelatin by the capacity of each mold. Therefore, we divide 48 ounces by 3 ounces per mold, resulting in x = 16. This means that Amanda can fill 16 daisy-shaped molds with the remaining gelatin.

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urgent!!!!
need help solving 20,21
thank you
20. Find a value for k so that (2,7) and (k, 4) will be orthogonal. 21. Find a value for k so that (-3,5) and (2,k) will be orthogonal. a

Answers

20. There is no value of k that makes the points (2,7) and (k,4) orthogonal.

21. The value of k that makes the points (-3,5) and (2,k) orthogonal is k = 5.

20. To find a value for k such that the given pairs of points are orthogonal, we need to determine if the dot product of the vectors formed by the pairs of points is equal to zero.

Given points (2,7) and (k,4):

The vector between the two points is v = (k - 2, 4 - 7) = (k - 2, -3).

For the vectors to be orthogonal, their dot product should be zero:

(v1) dot (v2) = (k - 2) × 0 + (-3) × 1 = -3.

Since the dot product is equal to -3, we need to find a value of k that satisfies this equation. Setting -3 equal to zero, we have:

-3 = 0.

There is no value of k that satisfies this equation, which means that there is no value for k that makes the points (2,7) and (k,4) orthogonal.

Given points (-3,5) and (2,k):

The vector between the two points is v = (2 - (-3), k - 5) = (5, k - 5).

21. For the vectors to be orthogonal, their dot product should be zero:

(v1) dot (v2) = 5 × 0 + (k - 5) × 1 = k - 5.

To make the vectors orthogonal, we need the dot product to be zero. Therefore, we set k - 5 equal to zero:

k - 5 = 0.

Solving for k, we have:

k = 5.

The value of k that makes the points (-3,5) and (2,k) orthogonal is k = 5.

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Recall the concept of quantiles. Calculate the z-score of the following quantiles if the data is normally distributed and has a mean of 0 and a standard deviation of 1.
4th decile:
2nd decile
6th decile:
3rd quartile:
32nd percentile
88th percentile
60th percentile

Answers

The z-score of the 4th decile is between -0.67 and 0, the z-score of the 2nd decile is between 0 and 0.67, the z-score of the 6th decile is between 0 and 0.67.

Quantiles are values that split data into several equal parts.Quartiles are specific quantiles that divide data into four parts. Quartiles include three quantiles, which are the first quartile, median, and third quartile.

The first quartile divides data into two parts, with one-quarter of data below it and three-quarters of data above it. Median divides data into two parts, with 50% of data below it and 50% of data above it.

The third quartile divides data into two parts, with three-quarters of data below it and one-quarter of data above it. The z-score, also known as the standard score, measures the distance between the score and the mean of a distribution in standard deviation units. Z-score values are used to determine the area under the curve to the left or right of a score.

If the data is normally distributed with a mean of 0 and a standard deviation of 1, the z-score can be calculated using the formula,  z = (x-μ)/σ. where x is the raw score, μ is the mean, and σ is the standard deviation.

To calculate the z-score of the quantiles, follow these steps: 4th decile:

Since the first quartile is equal to the 25th percentile, the 4th decile is between the first quartile and the median.

Thus, the z-score of the 4th decile is between -0.67 and 0. 2nd decile:

Since the median is equal to the 50th percentile, the 2nd decile is between the first quartile and the median. Thus, the z-score of the 2nd decile is between 0 and 0.67.

6th decile: Since the third quartile is equal to the 75th percentile, the 6th decile is between the median and the third quartile. Thus, the z-score of the 6th decile is between 0 and 0.67.

3rd quartile: Since the third quartile is equal to the 75th percentile, the z-score of the third quartile is 0.67. 32nd percentile: The z-score of the 32nd percentile is -0.43.

88th percentile: The z-score of the 88th percentile is 1.25.

60th percentile: The z-score of the 60th percentile is 0.25.

Hence, the z-score of the 4th decile is between -0.67 and 0, the z-score of the 2nd decile is between 0 and 0.67, the z-score of the 6th decile is between 0 and 0.67, the z-score of the 3rd quartile is 0.67, the z-score of the 32nd percentile is -0.43, the z-score of the 88th percentile is 1.25, and the z-score of the 60th percentile is 0.25.

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Find the directions in which the function increases and decreases most rapidly at Po. Then find the derivatives of the function in these directions flX.7.2)*(x/y) - yz. Pol-41.-4) + The direction in w

Answers

there still seems to be typographical errors or inconsistencies in the provided function. The expression "[tex]flX.7.2)*(x/y) - yz. Pol-41.-4)[/tex]" is not clear and contains multiple typos.

Without a properly defined function, it is not possible to determine the directions of maximum increase and decrease or calculate the derivatives.

To assist you further, please provide the correct and complete function, ensuring that all variables, operators, and parentheses are accurately represented. This will allow me to analyze the function, identify critical points, and determine the directions of greatest increase and decrease, as well as calculate the derivatives in those directions.

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E Homework: 2.5 Participation For f(x) = 2x4 - 4x2 + 1 find the following. (A) f'(x) (B) The slope of the graph of fat x = 2 (C) The equation of the tangent line at x = 2 (D) The value(s) of x where t

Answers

(A) The derivative of f(x) = 2x^4 - 4x^2 + 1 is f'(x) = 8x^3 - 8x.

(B) The slope of the graph of f at x = 2 is 40.

(C) The equation of the tangent line at x = 2 is y = 36x - 63.

(D) The value(s) of x where f'(x) = 0 are x = 0 and x = 1.

(A) To find the derivative of f(x) = 2x^4 - 4x^2 + 1, we differentiate each term using the power rule. The derivative of 2x^4 is 8x^3, the derivative of -4x^2 is -8x, and the derivative of the constant term 1 is 0. Therefore, f'(x) = 8x^3 - 8x.

(B) The slope of the graph of f at a specific value of x can be found by evaluating f'(x) at that point. Substituting x = 2 into f'(x) gives f'(2) = 8(2)^3 - 8(2) = 40. Hence, the slope of the graph of f at x = 2 is 40.

(C) To find the equation of the tangent line at x = 2, we use the point-slope form of a line. Using the point (2, f(2)), we substitute x = 2 and evaluate f(2) = 2(2)^4 - 4(2)^2 + 1 = 33. Therefore, the equation of the tangent line is y - 33 = 40(x - 2), which simplifies to y = 40x - 63.

(D) To find the value(s) of x where f'(x) = 0, we set f'(x) equal to zero and solve the equation 8x^3 - 8x = 0. Factoring out 8x gives 8x(x^2 - 1) = 0. Thus, the values of x that satisfy f'(x) = 0 are x = 0 and x = ±1.

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The derivative of f(x) is the function f(x +h)-f(1) f'(x) = lim · (3 points) Find the formula for the derivative f'(x) of f(x) = (2x + 1) using the definition of derivative.

Answers

The formula for the derivative[tex]f'(x) of f(x) = (2x + 1)[/tex]can be found using the definition of the derivative.

The definition of the derivative states that f'(x) is equal to the limit as h approaches[tex]0 of (f(x + h) - f(x))/h.[/tex]

To find the derivative of[tex]f(x) = (2x + 1)[/tex], we substitute the function into the definition:

[tex]f'(x) = lim(h→0) [(2(x + h) + 1 - (2x + 1))/h][/tex]

Simplifying the expression inside the limit, we get:

[tex]f'(x) = lim(h→0) [2h/h][/tex]

Cancelling out h, we have:

[tex]f'(x) = lim(h→0) 2[/tex]

Since the limit does not depend on x, the derivative[tex]f'(x) of f(x) = (2x + 1)[/tex]is simply 2. Therefore, the formula for the derivative is [tex]f'(x) = 2.[/tex]

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