evaluate the definite integral. 2 e 1/x3 x4 dx

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Answer 1

The definite integral 2e⁽¹/ˣ³⁾ x⁴ dx, we first need to find the antiderivative of the integrand. We can do this by using substitution. Let u = 1/x³,

then du/dx = -3/x⁴ , or dx = -du/(3x⁴ .) Substituting this expression for dx and simplifying, we get:

∫ 2e⁽¹/ˣ³⁾ x⁴  dx = ∫ -2e^u du = -2e^u + C

Substituting back in for u, we get:

-2e⁽¹/ˣ³⁾ + C

To evaluate the definite integral, we need to plug in the limits of integration, which are not given in the question. Without knowing the limits of integration, we cannot provide a specific numerical answer.

The definite integral is represented as ∫[a, b] f(x) dx, where a and b are the lower and upper limits of integration, respectively. Can you please provide the limits of integration for the given function: 2 * 2e⁽¹/ˣ³⁾ * x⁴ dx.

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Related Questions

you+have+$400,000+saved+for+retirement.+your+account+earns+4%+interest.+how+much+will+you+be+able+to+pull+out+each+month,+if+you+want+to+be+able+to+take+withdrawals+for+20+years?

Answers

You will be able to pull out approximately $2,358.21 per month for 20 years.

To calculate the monthly withdrawal amount, we can use the formula for calculating the future value of an ordinary annuity. The formula is:

A = P * (1 - (1 + r)^(-n)) / r

Where:

A = future value (amount to be withdrawn each month)

P = present value (initial savings)

r = interest rate per period (4% per year, so 4%/12 = 0.3333% per month)

n = number of periods (20 years, so 20 * 12 = 240 months)

Plugging in the values:

A = 400,000 * (1 - (1 + 0.003333)^(-240)) / 0.003333

Calculating this equation gives us approximately A = $2,358.21 per month. This means you will be able to withdraw around $2,358.21 each month for a period of 20 years while maintaining your savings.

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Find the radius of convergence and interval of convergence of the series. xn + 7 9n! Step 1 We will use the Ratio Test to determine the radius of convergence. We have an + 1 9(n + 1)! n +7 lim lim an 9n! n! xn + 8 9(n + 1)! lim n! Step 2 Simplifying, we get х lim (9n + 9) (9n + 8)( 9n + 7)(9n + 6) (9n + 5)(9n + 4)(9n + 3) (9n + 2) (9n + 1) Submit Skip (you cannot come back)

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The radius of convergence is 9, and the interval of convergence is (-9, 9).

To find the radius of convergence, we use the Ratio Test, which states that if lim |an+1/an| = L, then the series converges absolutely if L < 1, diverges if L > 1, and the test is inconclusive if L = 1. Here, we have an = xn + 7/9n!, so an+1 = xn+1 + 7/9(n+1)!. Taking the limit of the ratio, we get:

lim |an+1/an| = lim |(xn+1 + 7/9(n+1)!)/(xn + 7/9n!)|

= lim |(xn+1 + 7/9n+1)/(xn + 7/9n) * 9n/9n+1|

= lim |(xn+1 + 7/9n+1)/(xn + 7/9n)| * lim |9n/9n+1|

= |x| * lim |(9n+1)/(9n+8)| as the other terms cancel out.

Taking the limit of the last expression, we get lim |(9n+1)/(9n+8)| = 1/9, which is less than 1.

Therefore, the series converges absolutely for |x| < 9, which gives the radius of convergence as 9. To find the interval of convergence, we check the endpoints x = ±9. At x = 9, the series becomes Σ(1/n!), which is the convergent series for e. At x = -9, the series becomes Σ(-1)^n(1/n!), which is the convergent series for -e.

Therefore, the interval of convergence is (-9, 9).

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What is the area of the figure?




A figure consists of a right triangle and 2 rectangles. The right triangle has legs 3 and 4 centimeters long and hypotemuse 5 centimeters long. One rectangle is 3 centimeters long and 4 centimeters wide. The other rectangle is 1. 5 centimeters long and 4 centimeters wide.



12 cm2


24 cm2


28 cm2


42 cm2


PLEASE HELP LOL :)

Answers

The area of the figure consisting of a right triangle and two rectangles is 24 cm², not 28 cm².

To calculate the area, we need to find the individual areas of the right triangle and the two rectangles, and then sum them up.

The right triangle has a base of 3 cm and a height of 4 cm. Therefore, its area is (1/2) * base * height = (1/2) * 3 cm * 4 cm = 6 cm².

The first rectangle has a length of 3 cm and a width of 4 cm. Its area is length * width = 3 cm * 4 cm = 12 cm².

The second rectangle has a length of 1.5 cm and a width of 4 cm. Its area is length * width = 1.5 cm * 4 cm = 6 cm².

Adding up the areas of the right triangle and the two rectangles, we get 6 cm² + 12 cm² + 6 cm² = 24 cm².

Therefore, the correct answer is 24 cm².

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use properties of the indefinite integral to express the following integral in terms of simpler integrals: ∫(7x2−6x−8xcos(x))dx

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The given indefinite integral is ∫(7[tex]x^{2}[/tex] - 6x - 8xcos(x))dx = (7/3)[tex]x^{3}[/tex] - 3[tex]x^{2}[/tex] + 8xsin(x) + 8cos(x) + C

We can use the linearity property of integration to split the given integral into three separate integrals:

∫(7[tex]x^{2}[/tex])dx - ∫(6x)dx - ∫(8xcos(x))dx

Using the power rule of integration, we can find that:

∫(7[tex]x^{2}[/tex])dx = (7/3)[tex]x^{3}[/tex] + C1

Similarly, using the power rule again, we can find that:

∫(6x)dx = 3[tex]x^{2}[/tex] + C2

To evaluate the last integral, we can use integration by parts. Let u = 8x and dv = cos(x)dx.

Then, du/dx = 8 and v = sin(x). Using the integration by parts formula, we get:

∫(8xcos(x))dx = uv - ∫vdu/dx dx

= 8xsin(x) - ∫8sin(x)dx

= 8xsin(x) + 8cos(x) + C3

Putting all the integrals together, we get:

∫(7[tex]x^{2}[/tex] - 6x - 8xcos(x))dx = (7/3)[tex]x^{3}[/tex] - 3[tex]x^{2}[/tex] + 8xsin(x) + 8cos(x) + C

where C = C1 + C2 + C3 is the constant of integration.

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Dimitri played outside for a total of 2 and 3-fourths hours on Saturday and Sunday. He played outside for 1 and 1-sixth hours on Saturday. How many hours did Dimitri play outside on Sunday?

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Dimitri played outside for 1 and 7/12 hours on Sunday.

To find the number of hours that Dimitri played outside on Sunday, we need to subtract the time he spent outside on Saturday from the total time he played outside over the weekend.

Total time outside = 2 and 3/4 hours

Time outside on Saturday = 1 and 1/6 hours

To subtract fractions with unlike denominators, we need to find a common denominator:

3/4 = 9/12

1/6 = 2/12

2 and 3/4 = 11/4

So we can rewrite the problem as:

11/4 - 1 and 2/12 = ?

To subtract mixed numbers, we first need to convert them to improper fractions:

1 and 2/12 = 14/12

Now we can subtract:

11/4 - 14/12 = (33/12) - (14/12) = 19/12

Therefore, Dimitri played outside for 1 and 7/12 hours on Sunday.

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(1 point) find the solution to the linear system of differential equations {x′y′==−12x−30y3x 7y satisfying the initial conditions x(0)=26 and y(0)=−8.

Answers

The solution to the system of differential equations is: [tex]y(t) = -8 e^{(7t)}[/tex]

We are given the system of differential equations:

[tex]x' = -12x - 30y^3[/tex]

y' = 7y

To solve this system, we can use the method of elimination. First, we eliminate x from the first equation by differentiating both sides with respect to t:

[tex]x'' = -12x' - 30y^{3y'[/tex]

Substituting the expression for y' from the second equation, we get:

[tex]x'' = -12x' - 210y^4[/tex]

Now we have a second-order differential equation for x. To solve this equation, we first find the characteristic equation:

[tex]r^2 + 12r + 210 = 0[/tex]

Using the quadratic formula, we get:

[tex]r = (-12 + \sqrt{(12^2 - 41210))} / (2\times 1) = -6 + 9i[/tex]

Therefore, the general solution for x is:

[tex]x(t) = c1 e^{(-6t)} cos(9t) + c2 e^{(-6t)} sin(9t)[/tex]

To find the values of c1 and c2, we use the initial condition x(0) = 26:

c1 = x(0) / cos(0) = 26

Next, we need to find x'(0) to determine c2. Differentiating the expression for x(t), we get:

[tex]x'(t) = -6c1 e^{(-6t)} cos(9t) - 9c1 e^{(-6t)} sin(9t) + c2 e^{(-6t)} cos(9t) - 6c2 e^{(-6t) }sin(9t)[/tex]

Evaluating this expression at t=0 and using the initial condition [tex]x'(0) = -1226 - 30(-8)^3[/tex], we get:

-6c1 + c2 = -2088

Therefore, c2 = -2088 + 6c1 = -2088 + 6(26) = -1952

Now we can write the solution for x as:

[tex]x(t) = 26 e^{(-6t)} cos(9t) - 1952 e^{(-6t)} sin(9t)[/tex]

To find the solution for y, we use the second equation:

[tex]y(t) = c3 e^{(7t)[/tex]

Using the initial condition y(0) = -8, we get:

c3 = y(0) = -8

Therefore, the solution to the system of differential equations is:

[tex]x(t) = 26 e^{(-6t)} cos(9t) - 1952 e^{(-6t)} sin(9t)\\y(t) = -8 e^{(7t)}[/tex]

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Simplify the expression below:
√243x^9 y^16

A. 3x^4y^8√27x
B. 3x^3y^4√27
C. 9x^3y^4√3
D. 9x^4y^8√3x
E. 9x^3y^8√3

Answers

Answer: D. 9x^4y^8√3x

Step-by-step explanation:

We can simplify the expression as follows:

√243x^9 y^16 = √(81*3) * x^4 * x^5 * y^8 * y^8

Using the rule of exponents (a^m * a^n = a^(m+n)):

√(81*3) * x^4 * x^5 * y^8 * y^8 = 9xy^8 * x^4√3

Therefore, the simplified expression is:

D. 9x^4y^8√3x

two people are randomly selected from a group of 5 men and 5 women. the random variable x is the number of men selected. find the probability distribution for x. (see example 8.)

Answers

Answer:

There is a 35/138 chance that the first is a woman and the second is a man.

Step-by-step explanation:

Simply put, probability is the likelihood that something will occur. When we don't know how an event will turn out, we can discuss the likelihood or likelihood of several outcomes. Statistics is the study of events that follow a probability distribution.

The probability distribution for X is:

X P(X)

0 1/9

1 1/2

2 1/9

Since there are 5 men and 5 women in the group, the total number of ways to select 2 people is 10C2 = 45.

Let X be the number of men selected. We can calculate the probability of each possible value of X using combinations.

P(X=0) = 5C2 / 10C2 = 1/9

P(X=1) = (5C1 x 5C1) / 10C2 = 1/2

P(X=2) = 5C2 / 10C2 = 1/9

Note that the sum of probabilities for all possible values of X is equal to 1, as it should be for a probability distribution.

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Dr. Macmillan has designed a test to measure mathematical ability in college graduates. In order to establish a norm against which individual scores may be interpreted and compared, she is currently administering the test to a large representative sample of college graduates. Dr. Macmillan is in the process of: a. Establishing the test's representativeness. B. Standardizing the test. C. Establishing the test's reliability. D. Establishing the test's validity

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Dr. Macmillan is in the process of standardizing the test.

In the given scenario, Dr. Macmillan designed a test to measure mathematical ability in college graduates. She is administering the test to a large representative sample of college graduates to establish a norm against which individual scores may be interpreted and compared. Dr. Macmillan is in the process of standardizing the test.

Standardizing the test is an essential process as it aims to make sure that the test is fair and consistent. The test should have standardized methods of administration and scoring, and a standard set of test questions. It is to ensure that the score obtained is an accurate representation of the person's abilities.

Standardizing the test is a crucial aspect of creating an assessment. It is a method to maintain uniformity and reliability in the test process. The purpose of standardizing a test is to ensure that the test is fair and consistent. A standardized test provides a standard set of test questions, standardized methods of administration and scoring. It makes sure that the score obtained is an accurate representation of the person's abilities and is comparable across different testing groups.

In this scenario, Dr. Macmillan is administering the test to a large representative sample of college graduates to establish a norm. Standardizing the test will help Dr. Macmillan to develop a reliable and valid test. It will help to control various factors that can influence the test scores. By standardizing the test, Dr. Macmillan will be able to ensure that all test-takers receive the same instructions and have an equal opportunity to perform on the test.

Standardizing a test is a complex process and takes a lot of time and effort. It is important to take care of various factors like test administration, test scoring, and item analysis. A well-standardized test is necessary for achieving the intended test objectives. It will help to ensure that the test scores are accurate, and the results obtained are dependable.

Dr. Macmillan is in the process of standardizing the test. Standardizing the test will ensure that the test is fair, consistent, and reliable. It will help to control various factors that can influence the test scores. A well-standardized test is necessary for achieving the intended test objectives. It will help to ensure that the test scores are accurate, and the results obtained are dependable.

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Find a closed form expression for how many different types of towers of height n are possible, that can be made by vertically stacking short and tall blocks, when all short blocks have height 1 and come in two different colors {Shortblue, Shortred}, while all tall blocks have height 2 and come in 3 different colors {Tallgreen, Tallyellow, Tallpink}? For example, note that there are two possible towers of height n = 1 because we can only use one of the short blocks, and there are 2 x 2 +3 = 7 possible towers of height n = 2 because we can either stack two short blocks (4 possibilities) or use one tall block (3 possibilities). Hint: Let the number of different possible towers of height n be y[n]. We have y[n] = 0 for n < 0, y[1] = 2, y[2] = 7, and y[n] = 2y[n- 1] +3y[n– 2] (erplain why) for n > 2. Set up a difference equation valid for all n by including a suitable input t[n], and use z-transforms to solve it to find y[n] in closed form.

Answers

The closed form expression for the number of different possible towers of height n is:

y[n] = [⅔ + (⅔) x cos(n x pi/4) + (⅔) x sin(n x pi/4)] x 2ⁿ

How did we get this expression?

First, define y[n] as the number of different possible towers of height n. As given in the problem statement, y[1] = 2 and y[2] = 7. Below are the recursive relation for y[n]:

- to form a tower of height n, one can either stack a short block on top of a tower of height n-1 or stack a tall block on top of a tower of height n-2.

- if one stacks a short block on top of a tower of height n-1, then there are two possibilities for the color of the short block. This gives 2 x y[n-1] possible towers.

- if one stack a tall block on top of a tower of height n-2, then there are three possibilities for the color of the tall block. This gives 3x y[n-2] possible towers.

- Therefore, y[n] = 2 x y [n-1] + 3 x y[n-2] for n > 2.

Now, define a new sequence t[n] as thus:

- t[n] = 1 for n = 1 or n = 2

- t[n] = 0 for n < 1

Use t[n] to rewrite the recursive relation for y[n] as:

y[n] - 2 x y[n-1] - 3 x y[n-2] = 0

Take the z-transform of both sides of this equation to obtain:

Y(z) - 2z⁻¹ × Y(z) - 3z⁻² × Y(z) = y[0] + y[1] × z⁻¹

Substituting y[0] = 1, y[1] = 2, and simplifying, we get:

Y(z) = (2z⁻¹ + 1)/(z² - 2z + 3)

Now, use partial fraction decomposition to write Y(z) in the form:

Y(z) = A/(z - (1 + i)) + B/(z - (1 - i)) + C/(z - 2)

where i = √(2)i/2.

Multiplying both sides by the denominator and equating the numerators, we get:

2z⁻¹ + 1 = A(z - (1 - i))(z - 2) + B(z - (1 + i))(z - 2) + C(z - (1 + i))(z - (1 - i))

Setting z = 0, z = 1 + i, and z = 1 - i, we can solve for A, B, and C to get:

A = (2 + 2i)/3, B = (2 - 2i)/3, C = 2/3

Therefore, we have:

Y(z) = (2 + 2i)/(3 × (z - (1 + i))) + (2 - 2i)/(3 × (z - (1 - i))) + 2/(3 × (z - 2))

Now, we can use the formula for the inverse z-transform of a rational function to obtain the closed form expression for y[n]:

y[n] = [2/3 + (2/3) × cos(n × pi/4) + (2/3) × sin(n × pi/4)] × 2ⁿ

Therefore, the closed form expression for the number of different possible towers of height n is:

y[n] = [2/3 + (2/3) × cos(n × pi/4) + (2/3) × sin(n × pi/4)] × 2ⁿ

This is the solution to the problem. It can be verified that this expression satisfies the initial conditions y[1] = 2 and y[2] = 7, and the recursive relation y[n] = 2 × y[n-1] + 3 × y[n-2] for n > 2.

The expression can also be simplified as:

y[n] = (4/3) × 2ⁿ + (2/3) × cos(n × pi/4)

This form makes it clear that the growth rate of y[n] is dominated by the exponential term 2ⁿ, and the cosine term only contributes a small periodic variation.

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solve the initial value problem ′ − 3 = 10 − 4 sin(2( − 4)) 4() with (0) = 5.

Answers

The solution of the non-homogeneous equation to the initial value problem is:

y = 3t + 3 + 2 cos(2t)

We are given the initial value problem:

y' - 3 = 10 - 4 sin(2t)

y(0) = 5

To solve this, we can start by finding the general solution of the homogeneous equation y' - 3 = 0:

y' - 3 = 0

y' = 3

Integrating both sides with respect to t gives:

y = 3t + C

where C is the constant of integration.

Now, to find a particular solution to the non-homogeneous equation, we can use the method of undetermined coefficients. Since the right-hand side of the equation is a sinusoidal function, we can assume a particular solution of the form:

y_p = A sin(2t) + B cos(2t)

Taking the derivative of this, we get:

y'_p = 2A cos(2t) - 2B sin(2t)

Substituting y_p and y'_p into the original equation, we get:

2A cos(2t) - 2B sin(2t) - 3 = 10 - 4 sin(2t)

Matching the coefficients of sin(2t) and cos(2t) on both sides, we get:

-2B = -4 => B = 2

2A = 0 => A = 0

So, our particular solution is:

y_p = 2 cos(2t)

Therefore, the general solution of the non-homogeneous equation is:

y = y_h + y_p = 3t + C + 2 cos(2t)

To find the value of C, we can use the initial condition y(0) = 5:

y(0) = 3(0) + C + 2 cos(2(0)) = 5

C + 2 = 5

C = 3

Thus, the solution to the initial value problem is:

y = 3t + 3 + 2 cos(2t)

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find the future value, using the future value formula and a calculator. (round your answer to the nearest cent.) $119,900 at 5.5ompounded continuously for 30 years

Answers

The future value of the investment is approximately $623,983.93 when rounded to the nearest cent.

The future value can be calculated using the formula:
FV = Pe^(rt)
Where:
P = Principal amount = $119,900
e = Euler's number = 2.71828
r = Annual interest rate = 5.5%
t = Time period in years = 30
So, FV = 119,900 x e^(0.055 x 30) = $695,098.51
Using a calculator, you can enter:
- PV (present value) = -119900
- I/Y (annual interest rate) = 5.5
- N (number of years) = 30
- Compounding = Continuous (or CPT for TI calculators)
The future value will be displayed as $695,098.51.
So, the future value of the investment is approximately $623,983.93 when rounded to the nearest cent.

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Find the equation of the line shown. 4 3 2 4 -3-2-191 3 X​

Answers

The equation of the line that passes through the points (0, -1) and (1, 1) is y = 2x - 1.

What is the equation of line of the graph?

The formula for equation of line is expressed as;

y = mx + b

Where m is slope and b is y-intercept.

The graph runs through the points  (0, -1) and (1, 1).

First, we determine the slope:

m = (y₂ - y₁) / (x₂ - x₁)

m = ( 1 - (-1) ) / ( 1 - 0 )

m = ( 1 + 1 ) / 1

m = 2

Next, plug the slope m = 2 and point ( 0, -1) into the point slope form and solve for y.

y - y₁ = m( x - x₁ )

y - (-1) = 2( x - 0 )

Solve for y

y + 1 = 2x

Subtract 1 from both sides

y + 1 - 1 = 2x - 1

y = 2x - 1

Therefore, the equation of the line is y = 2x - 1.

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Let Y1, ...,Yn be a random sample with common mean y and common variance o2. Use the CLT to write an expression approximating the CDF P(Y < x) in terms of ui, o2 and n, and the standard normal CDF FZ().

Answers

An expression approximating the CDF P(Y < x) in terms of ui, o2 and n, and the standard normal CDF FZ is FZ((x - y)/(o/sqrt(n))).

By the Central Limit Theorem (CLT), we know that the sample mean Ybar = (Y1 + ... + Yn)/n has a normal distribution with mean y and variance o2/n as n approaches infinity.

Let Z = (Ybar - y)/(o/sqrt(n)) be the standardized version of Ybar. Then, using the standard normal CDF FZ, we have:

P(Y < x) = P(Ybar < x)

= P((Ybar - y)/(o/sqrt(n)) < (x - y)/(o/sqrt(n)))

= P(Z < (x - y)/(o/sqrt(n)))

≈ FZ((x - y)/(o/sqrt(n)))

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Use Exercise 18 and Corollary 1 to show that if is an integer greater than then $\left(\begin{array}{c}{n} \\ {\ln / 2 \rfloor}\end{array}\right) \geq 2^{n} …

Answers

Using Exercise 18 and Corollary 1, we can show that if n is an integer greater than or equal to 0, then:

$\left(\begin{array}{c}{n} \ {\left\lfloor n / 2 \right\rfloor}\end{array}\right) \geq 2^{n}.$

Exercise 18 states that for any nonnegative integer n, the binomial coefficient

$\left(\begin{array}{c}{n} \ {k}\end{array}\right)$

is a nondecreasing function of k for k in the range 0 to n/2.

Corollary 1 states that for any nonnegative integer n, the sum of the binomial coefficients

$\left(\begin{array}{c}{n} \ {0}\end{array}\right), \left(\begin{array}{c}{n} \ {1}\end{array}\right), \left(\begin{array}{c}{n} \ {2}\end{array}\right), \ldots, \left(\begin{array}{c}{n} \ {n}\end{array}\right)$

is equal to 2^n.

Now, let's consider the expression

$\left(\begin{array}{c}{n} \ {\left\lfloor n / 2 \right\rfloor}\end{array}\right)$

This binomial coefficient represents the number of ways to choose $\left\lfloor n / 2 \right\rfloor$ elements from a set of n elements.

According to Exercise 18, this binomial coefficient is nondecreasing as we vary the value of $\left\lfloor n / 2 \right\rfloor$. Since $\left\lfloor n / 2 \right\rfloor$ ranges from 0 to n/2, the largest value it can take is n/2 when n is an even number. Therefore, we have

$\left(\begin{array}{c}{n} \ {\left\lfloor n / 2 \right\rfloor}\end{array}\right) \geq \left(\begin{array}{c}{n} \ {n/2}\end{array}\right)$

Now, according to Corollary 1, the sum of all binomial coefficients

$\left(\begin{array}{c}{n} \ {0}\end{array}\right), \left(\begin{array}{c}{n} \ {1}\end{array}\right), \left(\begin{array}{c}{n} \ {2}\end{array}\right), \ldots, \left(\begin{array}{c}{n} \ {n}\end{array}\right)$

is equal to 2^n. Since $\left(\begin{array}{c}{n} \ {n/2}\end{array}\right)$ is one of the terms in this sum, we have

$\left(\begin{array}{c}{n} \ {n/2}\end{array}\right) \leq 2^n$

Combining the inequalities, we have

$\left(\begin{array}{c}{n} \ {\left\lfloor n / 2 \right\rfloor}\end{array}\right) \geq \left(\begin{array}{c}{n} \ {n/2}\end{array}\right) \leq 2^n$

Therefore,

$\left(\begin{array}{c}{n} \ {\left\lfloor n / 2 \right\rfloor}\end{array}\right) \geq 2^n$

This inequality shows that the binomial coefficient is greater than or equal to 2^n when n is an integer greater than or equal to 0.

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Ms. Redmon gave her theater students an assignment to memorize a dramatic monologue to present to the rest of the class. The graph shows the times, rounded to the nearest half minute, of the first 10 monologues presented

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Ms. Redmon gave her theater students an assignment to memorize a dramatic monologue to present to the rest of the class. The graph shows the times, rounded to the nearest half minute, of the first 10 monologues presented.

The assignment requires the students to memorize a dramatic monologue to present to the rest of the class. Based on the graph, the content loaded for the first ten presentations can be determined. The graph contains the timings of the first 10 monologues presented. From the graph, the lowest time recorded was 2 minutes while the highest was 3 minutes and 30 seconds.

The graph showed that the first student took the longest time while the sixth student took the shortest time to present. Ms. Redmon asked the students to memorize a dramatic monologue, with a requirement of 130 words. It is, therefore, possible for the students to finish the presentation within the allotted time by managing the word count in their dramatic monologue.

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A waiter earns tips that has a mean of 7.5 dollars and a standard deviation of 2 dollars. Assume that he collects 100 tips in one week, and each tip is given independently. a. Find the expected total amount of his tips. Express your answer accurate to the three decimal places. b. Find the standard deviation for the total amount of this tips. Express your answer accurate to the three decimal places. c. Find the approximate probability that the total amount of this tips exceeds 720 dollars. d. Express your answer accurate to three decimal places.

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To find the probability of exceeding 720, we subtract this value from 1:

Probability = 1 - 0.0668 = 0.9332.

What is Z-score?

The Z-score, also known as the standard score, is a measure of how many standard deviations an individual data point is from the mean of a distribution. It is calculated by subtracting the mean from the data point and dividing the result by the standard deviation. The Z-score allows for the comparison of data points from different distributions and helps determine the relative position of a data point within a distribution.

To solve this problem, we'll use the properties of the mean and standard deviation of a random variable. Let's go through each part step by step:

a. Expected total amount of tips:

The expected value of a random variable is equal to the mean. Since each tip is given independently, the expected total amount of tips is simply the product of the mean and the number of tips:

Expected total amount = Mean * Number of tips = 7.5 * 100 = 750 dollars.

b. Standard deviation for the total amount of tips:

When the random variables are independent, the standard deviation of their sum is the square root of the sum of their variances. Since each tip has a standard deviation of 2 dollars, the standard deviation for the total amount of tips is:

Standard deviation = Square root of (Variance * Number of tips)

Variance = Standard deviation squared = 2^2 = 4

Standard deviation = Square root of (4 * 100) = Square root of 400 = 20 dollars.

c. Probability that the total amount of tips exceeds 720 dollars:

To find this probability, we need to standardize the total amount using the mean and standard deviation, and then find the area under the standard normal distribution curve. Let's calculate the z-score first:

Z = (X - Mean) / Standard deviation

Z = (720 - 750) / 20 = -30 / 20 = -1.5

Using a standard normal distribution table or a calculator, we can find the area to the left of -1.5 (since we want the probability of exceeding 720). This area is approximately 0.0668.

To find the probability of exceeding 720, we subtract this value from 1:

Probability = 1 - 0.0668 = 0.9332.

d. The approximate probability that the total amount of tips exceeds 720 dollars is 0.933.

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Let F=(5xy, 8y2) be a vector field in the plane, and C the path y=6x2 joining (0,0) to (1,6) in the plane. Evaluate F. dr Does the integral in part(A) depend on the joining (0, 0) to (1, 6)? (y/n)

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The line integral is independent of the choice of path, it does not depend on the specific joining of (0, 0) to (1, 6). Hence, the answer is "n" (no).

To evaluate the line integral of F.dr along the path C, we need to parameterize the curve C as a vector function of t.

Since the curve is given by y = 6x^2, we can parameterize it as r(t) = (t, 6t^2) for 0 ≤ t ≤ 1.

Then dr = (1, 12t)dt and we have:

F.(dr) = (5xy, 8y^2).(1, 12t)dt = (5t(6t^2), 8(6t^2)^2).(1, 12t)dt = (30t^3, 288t^2)dt

Integrating from t = 0 to t = 1, we get:

∫(F.dr) = ∫(0 to 1) (30t^3, 288t^2)dt = (7.5, 96)

So the line integral of F.dr along the path C is (7.5, 96).

Since the line integral is independent of the choice of path, it does not depend on the specific joining of (0, 0) to (1, 6). Hence, the answer is "n" (no).

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(1 point) evaluate the integral and check your answer by differentiating. ∫[sec(x) cos(x)2cos(x)]dx∫[sec(x) cos(x)2cos(x)]dx

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The Evaluated integral is - (cos(x)^3/3) + C

To evaluate the given integral ∫[sec(x) cos(x)^2cos(x)]dx, we can use the u-substitution method. Let's make the substitution:

u = cos(x)

Taking the derivative of u with respect to x gives:

du/dx = -sin(x)

Rearranging the equation, we have:

dx = -du/sin(x)

Substituting u = cos(x) and dx = -du/sin(x) into the integral, we get:

∫[sec(x) cos(x)^2cos(x)]dx = ∫sec(x) u^2

The sin(x) term in the denominator cancels out with sec(x) in the numerator, giving:

∫u^2

Integrating, we get:

∫[u^2] du = - (u^3/3) + C

Now, substitute back u = cos(x) to obtain the final result:

(cos(x)^3/3) + C

To check our answer, we can differentiate the obtained result:

d/dx [- (cos(x)^3/3)] = sin(x)(cos(x)^2)

Which is the same as the integrand in the original integral, confirming the correctness of our answer.

Therefore, the evaluated integral is - (cos(x)^3/3) + C

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Substituting back u = sin(x), we get: (1/2) sin^(-1)(sin(x)) + C = (1/2) x + C

We can start by applying the substitution u = sin(x) and du = cos(x) dx, which transforms the integral into:

∫[sec(x) cos(x)2cos(x)]dx = ∫[1/cos(x) cos(x)2cos(x)]dx = ∫[cos(x)]dx

Then, using u = sin(x), we have:

∫[cos(x)]dx = ∫[√(1-u^2)]du = (1/2) sin^(-1)(u) + C

To check our answer, we can differentiate (1/2) x + C and see if we get the integrand:

d/dx[(1/2) x + C] = 1/2 cos(x)

Now, using the identity sec^2(x) = 1 + tan^2(x), we can also rewrite the integrand as:

cos(x)2cos(x)/sec(x) = 2cos^2(x)/[1 + tan^2(x)] = 2(1/cos^2(x))/[1 + tan^2(x)] = 2/cos^2(x)

Using this alternate form of the integrand, we can also evaluate the integral by using the substitution u = tan(x), which leads to:

∫[2/cos^2(x)]dx = ∫[2(1 + u^2)]du = 2u + (2/3)u^3 + C = 2tan(x) + (2/3)tan^3(x) + C

Again, we can check our answer by differentiating:

d/dx[2tan(x) + (2/3)tan^3(x) + C] = 2sec^2(x) + 2tan^2(x) sec^2(x) = 2cos^2(x)/cos^4(x) = 2/cos^2(x)

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2HI(aq) K2SO3(s)→Express your answer as a balanced chemical equation. identify all of the phases in your answer.

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Answer:

The balanced chemical equation for the reaction of aqueous hydroiodic acid and solid potassium sulfite is:

2HI(aq) + K2SO3(s) → KI(aq) + KHSO3(aq)

where (aq) represents aqueous solution and (s) represents solid.

Note: This reaction can also produce a small amount of sulfur dioxide gas (SO2), but it is not included in the balanced equation as it is a minor product.

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A radar gun was used to record the speed of a runner during the first 5 seconds of a race (see table). Use Simpson's rule to estimate the distance the runner covered during those 5 seconds.t(s) 0 0.5 1 1.5 2 2.5 3 3.5 4 4.5 5v(m/s) 0 2.25 4.7 4.9 5.8 7.95 8.9 10.3 10.75 10.85 10.85

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Simpson's rule, the estimated distance the runner covered during the first 5 seconds of the race is approximately 17.9625 meters

To estimate the distance the runner covered during the first 5 seconds of the race using Simpson's rule, we need to use the given data points and apply the formula for Simpson's rule:

Distance ≈ h/3 * [f(x0) + 4f(x1) + 2f(x2) + 4f(x3) + ... + 2f(xn-2) + 4f(xn-1) + f(xn)]

where h is the step size (time interval) between consecutive data points and f(xi) represents the velocity at each time point.

Given the data points:

t(s): 0, 0.5, 1, 1.5, 2, 2.5, 3, 3.5, 4, 4.5, 5

v(m/s): 0, 2.25, 4.7, 4.9, 5.8, 7.95, 8.9, 10.3, 10.75, 10.85, 10.85

The step size (h) is 0.5 seconds, and we have 11 data points.

Using Simpson's rule, we can calculate the distance as follows:

Distance ≈ (0.5/3) * [0 + 4(2.25) + 2(4.7) + 4(4.9) + 2(5.8) + 4(7.95) + 2(8.9) + 4(10.3) + 2(10.75) + 4(10.85) + 10.85]

Distance ≈ (0.5/3) * [0 + 9 + 9.4 + 19.6 + 11.6 + 31.8 + 17.8 + 41.2 + 21.5 + 43.4 + 10.85]

Distance ≈ (0.5/3) * 215.55

Distance ≈ 17.9625 meters

Therefore, using Simpson's rule, the estimated distance the runner covered during the first 5 seconds of the race is approximately 17.9625 meters

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To estimate the distance the runner covered during the first 5 seconds of the race using Simpson's rule, we first need to calculate the area under the curve of the velocity vs. time graph.

Simpson's rule involves approximating the area using quadratic polynomials, which means we need to split the interval [0,5] into subintervals of equal width. In this case, we have 10 data points, so we can split the interval into 5 subintervals of width 1. We then apply Simpson's rule to each subinterval and sum up the results to get the total estimated area. Once we have the estimated area, we can multiply it by the runner's average speed during the first 5 seconds (which we can calculate by taking the mean of the velocity data) to get the estimated distance covered.
To estimate the distance using Simpson's Rule, follow these steps:

1. Divide the time interval into even subintervals: 0, 0.5, 1, ..., 5 (10 subintervals, h = 0.5).
2. Apply Simpson's Rule formula: (h/3) * (f(a) + 4∑(odd intervals) + 2∑(even intervals) + f(b)).
3. Plug in given velocities for f(a), f(b), and at each subinterval.
4. Calculate the sum: (0.5/3) * (0 + 4*(2.25+4.9+7.95+10.3+10.85) + 2*(4.7+5.8+8.9+10.75) + 10.85).
5. Solve the equation: (0.5/3) * (135.4) ≈ 11.283 m.

The runner covered approximately 11.283 meters during the first 5 seconds of the race.

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You can do one of the following for extra credit: redo an assignment, redo a quiz, complete a project, or do corrections for a quiz. How many ways can you eam extra credit?

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The total number of ways to earn extra credit is n + m + p + q.

There are four options given for earning extra credit: redoing an assignment, redoing a quiz, completing a project, or doing corrections for a quiz. To determine the number of ways you can earn extra credit, we can consider each option individually and count the possibilities.

Redoing an assignment: If there are 'n' assignments available to redo, you have 'n' ways to earn extra credit by choosing one of them.

Redoing a quiz: If there are 'm' quizzes available to redo, you have 'm' ways to earn extra credit by choosing one of them.

Completing a project: If there are 'p' projects available to complete, you have 'p' ways to earn extra credit by choosing one of them.

Doing corrections for a quiz: If there are 'q' quizzes available for corrections, you have 'q' ways to earn extra credit by choosing one of them.

To find the total number of ways to earn extra credit, we can sum up the possibilities for each option:

Total ways = (Number of ways to redo an assignment) + (Number of ways to redo a quiz) + (Number of ways to complete a project) + (Number of ways to do corrections for a quiz)

Total ways = n + m + p + q

Therefore, the total number of ways to earn extra credit is n + m + p + q.

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An arithmetic sequence k starts 4, 13,. Explain how you would calculate the value of the 5,000th term

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The value of the 5000th term is 44995.

Given, an arithmetic sequence k starts 4, 13, and we are required to calculate the value of the 5,000th term. Arithmetic sequence: An arithmetic sequence is a sequence in which each term is equal to the previous term plus a constant value, known as the common difference, denoted by d.

Formula: The nth term in an arithmetic sequence is given by the formula: `an=a1+(n-1)d`Here,a1 = 4,  d = 13 - 4 = 9We need to find the 5000th term, so n = 5000.Therefore, the value of the 5000th term, an is given by:an = a1 + (n - 1)d= 4 + (5000 - 1)9= 4 + 44991= 44995

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Six measurements were made of the mineral content (in percent) of spinach, with the following results. It is reasonable to assume that the population is approximately normal. 19.1, 20.1, 20.8, 20.7 , 20.5, 19.3 Find the lower bound of the 95% confidence interval for the true mineral content. Round to three decimal places (for example: 20.015). Write only a number as your answer.

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The lower bound of the 95% confidence interval for the true mineral content is 19.45 percent.

How to calculate the value

First, we need to calculate the sample mean:

= (19.1 + 20.1 + 20.8 + 20.7 + 20.5 + 19.3)/6 = 20.0

Next, we need to calculate the standard deviation:

s = ✓((19.1 - 20)² + (20.1 - 20)² + (20.8 - 20)² + (20.7 - 20)² + (20.5 - 20)² + (19.3 - 20)²)/(6 - 1)] = 0.68

Then, we can calculate the standard error:

SE = s/✓(n) = 0.68/✓(6) = 0.28

The critical value corresponding to a 95% confidence level and a two-tailed test is 1.96 (using a z-table or calculator).

Now we can calculate the lower bound of the 95% confidence interval:

Lower bound = 20.0 - (1.96)*(0.28) = 19.45

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let f be a field and let a, b e f, with a =f o. prove that the equation ax = b has a unique solution x in f

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There exists a unique solution to the equation ax = b in f.

Since a is non-zero in the field f, there exists a unique multiplicative inverse for a in f, which we denote by [tex]a^{(-1).[/tex]

Now, suppose that there are two solutions to the equation ax = b, say x and y. Then we have:

ax = b

ay = b

Subtracting the second equation from the first, we get:

ax - ay = b - b

a(x - y) = 0

Since a is non-zero, it follows that x - y = 0, i.e., x = y. Therefore, there can be at most one solution to the equation ax = b.

To show that there exists a solution, we can simply divide both sides of the equation ax = b by a to obtain:

[tex]x = a^{(-1)b[/tex]

Since [tex]a^{(-1)[/tex]exists in f, so does x. Therefore, there exists a unique solution to the equation ax = b in f.

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Square root of 100000000,99999999,647463,354544,5468843,633374347 and 145777533334556644346

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The square root following 145,777,533,334,556,644,346 would be exactly 12073836728.0064 non-rounded.

The question concluding the first number, may not be calculated within square root. Typing errors, or unproper spelling/grammar should be addressed. Glad to help!

Consider a PDF of a continuous random variable X, f(x) = 1/8 for 0 ≤ x ≤ 8. Q. Find P( x = 7)

Answers

P(6.5 ≤ x ≤ 7.5) is 1/8 since the PDF is uniform. Continuous random variables are probability distribution functions that take real values on an infinite number of intervals. For a continuous random variable, the probability of getting a single value is zero.

It is calculated by integrating the PDF of the variable over the corresponding interval. The probability of getting a single value for a continuous random variable is zero because there are infinite values that the variable can take. Therefore, P(x = 7) cannot be calculated. Instead, we can find P(6.5 ≤ x ≤ 7.5), the probability of getting a value between 6.5 and 7.5.
Given that the PDF of a continuous random variable X is f(x) = 1/8 for 0 ≤ x ≤ 8. To find P(x = 7), we need to calculate the probability of getting a single value for the continuous random variable X, which is impossible. Hence, we cannot calculate P(x = 7).
Instead, we can find P(6.5 ≤ x ≤ 7.5), the probability of getting a value between 6.5 and 7.5.
P(6.5 ≤ x ≤ 7.5) = ∫f(x) dx from 6.5 to 7.5
P(6.5 ≤ x ≤ 7.5) = ∫(1/8) dx from 6.5 to 7.5
P(6.5 ≤ x ≤ 7.5) = (1/8) ∫dx from 6.5 to 7.5
P(6.5 ≤ x ≤ 7.5) = (1/8) [7.5 - 6.5]
P(6.5 ≤ x ≤ 7.5) = (1/8) [1]
P(6.5 ≤ x ≤ 7.5) = 1/8
Therefore, P(6.5 ≤ x ≤ 7.5) = 1/8.
The PDF is uniform, so f(x) is constant over the interval [0, 8]. The PDF equals 0 outside the interval [0, 8]. Since the PDF integrates to 1 over its support, f(x) = 1/8 for 0 ≤ x ≤ 8. The cumulative distribution function (CDF) is given by:
F(x) = ∫f(x) dx from 0 to x
= (1/8) ∫dx from 0 to x
= (1/8) (x - 0)
= x/8
Using this CDF, we can calculate the probability that X lies between any two values a and b as:
P(a ≤ X ≤ b) = F(b) - F(a)
Therefore, we can find P(6.5 ≤ x ≤ 7.5) as:
P(6.5 ≤ x ≤ 7.5) = F(7.5) - F(6.5)
= (7.5/8) - (6.5/8)
= 1/8
We cannot calculate P(x = 7) since it represents the probability of getting a single value for the continuous random variable X. Instead, we can find P(6.5 ≤ x ≤ 7.5), the probability of getting a value between 6.5 and 7.5. Using the CDF, we can calculate P(6.5 ≤ x ≤ 7.5) as 1/8 since the PDF is uniform.

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Need help graphing on this question and than to determine how many seconds it will take for the object to reach the ground???

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Step-by-step explanation:

Here is the graph with the pertinent points labeled.   X axis is time   Y axis is height ...... you should be able to answer the rest of the questions with this....

$7 -Dollars $1.25- Quarters ¢35- Nickels ¢50- Dimes ¢8- Penny=

Answers

Answer:

$9.18

Step-by-step explanation:

To calculate the total value in dollars and cents, we need to convert the values of quarters, nickels, dimes, and pennies to dollars.

$1.25 can be expressed as 125 cents (since there are 100 cents in a dollar).

¢35 can be expressed as $0.35.

¢50 can be expressed as $0.50.

¢8 can be expressed as $0.08.

Adding up the values:

$7 (dollars) + $1.25 (quarters) + $0.35 (nickels) + $0.50 (dimes) + $0.08 (penny) = $9.18.

Therefore, the total value is $9.18.

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In a class of 28 pupils,13 have pencils,9 have erasers and 9 have neither pencil nor erasers. How many pupils have both pencils and erasers

Answers

15 pupils have both pencils and erasers.

Let's determine the number of pupils that have both pencils and erasers.

The number of pupils who have only pencils can be calculated using the following formula:

P = (Total number of pupils with pencils) - (Number of pupils with both pencils and erasers)

Similarly, the number of pupils who have only erasers can be calculated using the following formula:

E = (Total number of pupils with erasers) - (Number of pupils with both pencils and erasers)

Here, Total number of pupils = 28

Number of pupils with neither pencil nor erasers = 9

Therefore,

Number of pupils with both pencils and erasers = Total number of pupils - (Number of pupils with only pencils + Number of pupils with only erasers + Number of pupils with neither pencils nor erasers)

Number of pupils with both pencils and erasers

= 28 - (13 + 9 - 9)

= 28 - 13

= 15

Therefore, 15 pupils have both pencils and erasers.

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