PELEASE HELP!!/PORFAVOR AYUDA!! 50 POINTS!!/50 PUNTOS!!

(a) What is the value of x?.Show ALL of your work!

(b) What is the measure of angle B? Show ALL your work.​

PELEASE HELP!!/PORFAVOR AYUDA!! 50 POINTS!!/50 PUNTOS!! (a) What Is The Value Of X?.Show ALL Of Your

Answers

Answer 1

Answer is

Step-by-step explanation:


Related Questions

what is the value of new_list? my_list = [1, 2, 3, 4] new_list = [i**2 for i in my_list] group of answer choices [2, 4, 6, 8] [1, 2, 3, 4] [1, 2, 3, 4, 1, 2, 3, 4] [1, 4, 9, 16]

Answers

The value of new_list is [1, 4, 9, 16].

The code given creates a new list called new_list by using a list comprehension to iterate over the values in my_list and squaring each value using the exponent operator (**).

This means that the first value in my_list (which is 1) is squared to 1, the second value (which is 2) is squared to 4, the third value (which is 3) is squared to 9, and the fourth value (which is 4) is squared to 16.

These squared values are then added to the new_list one by one, resulting in the final value of [1, 4, 9, 16].

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what growth model is appropriate for the amount of pollutants in the lake has been increasing by 4 milligrams per liter each year

Answers

The appropriate growth model for the number of pollutants in the lake that is increasing by a fixed amount each year is the linear growth model, but it's important to consider other growth models depending on the specific circumstances.

The appropriate growth model for the amount of pollutants in the lake that is increasing by a fixed amount each year is the linear growth model.

In a linear growth model, the amount of pollutants in the lake increases at a constant rate each year, which is represented by a straight line on a graph. The slope of the line represents the rate of increase, which in this case is 4 milligrams per liter each year. The equation for a linear growth model is y = mx + b, where y is the number of pollutants in the lake, x is the number of years, m is the slope, and b is the starting value.

Assuming that there were pollutants in the lake at the beginning of the observation period, we can use the linear growth model to estimate the amount of pollutants in the lake at any point in time. For example, if we know that the lake had 10 milligrams of pollutants per liter at the start of the observation period, we can use the equation y = 4x + 10 to estimate the amount of pollutants in the lake after x number of years.

It's important to note that linear growth models assume a constant rate of increase over time, which may not always hold true in real-world scenarios. Other growth models, such as exponential or logistic growth, may be more appropriate depending on the specific circumstances.

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6. Given the right triangle JKL, identify the locations of sides j. k, and I in relation to angle L in terms of opposite, adjacent, and hypotenuse.

Picture Below

Answers

Answer:

k is the hypotenuse,

l is the opposite

j is the adjacent

Step-by-step explanation:

assuming L is theta

find the taylor polynomial of degree 4 for the function g(x) = x^2 ln x about the center a = 1.

Answers

The Taylor polynomial of degree 4 for g(x) = x^2 ln x about the center a = 1 is (x - 1) + (3/2)(x - 1)^2 + (1/3)(x - 1)^3 - (1/6)(x - 1)^4.

How to find the Taylor polynomial of degree 4 for the function g(x) = x^2 ln x about the center a = 1?

To find the Taylor polynomial of degree 4 for the function g(x) = x^2 ln x about the center a = 1, we first need to find the first four derivatives of g(x):

g(x) = x^2 ln x

g'(x) = 2x ln x + x

g''(x) = 2ln x + 3

g'''(x) = 2/x

g''''(x) = -4/x^3

Next, we evaluate these derivatives at x = 1 to find the coefficients of the Taylor polynomial:

g(1) = 1^2 ln 1 = 0

g'(1) = 2(1) ln 1 + 1 = 1

g''(1) = 2ln 1 + 3 = 3

g'''(1) = 2/1 = 2

g''''(1) = -4/1^3 = -4

Using these coefficients, we can write the Taylor polynomial of degree 4 for g(x) about a = 1:

P4(x) = g(1) + g'(1)(x - 1) + (g''(1)/2!)(x - 1)^2 + (g'''(1)/3!)(x - 1)^3 + (g''''(1)/4!)(x - 1)^4

P4(x) = 0 + 1(x - 1) + (3/2)(x - 1)^2 + (2/6)(x - 1)^3 - (4/24)(x - 1)^4

Simplifying and combining like terms, we get:

P4(x) = (x - 1) + (3/2)(x - 1)^2 + (1/3)(x - 1)^3 - (1/6)(x - 1)^4

Therefore, the Taylor polynomial of degree 4 for g(x) = x^2 ln x about the center a = 1 is (x - 1) + (3/2)(x - 1)^2 + (1/3)(x - 1)^3 - (1/6)(x - 1)^4.

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find the distance between the points with polar coordinates (2, /3) and (6, 2/3)

Answers

The distance between the points with polar coordinates (2, π/3) and (6, 2π/3) is 2√13 units.

Let's convert the polar coordinates to Cartesian coordinates to find the distance between the points.

For the first point, we have:

x = r cos(θ) = 2 cos(π/3) = 1

y = r sin(θ) = 2 sin(π/3) = √3

So the first point has Cartesian coordinates (1, √3).

For the second point, we have:

x = r cos(θ) = 6 cos(2π/3) = -3

y = r sin(θ) = 6 sin(2π/3) = 3√3

So the second point has Cartesian coordinates (-3, 3√3).

Using the distance formula, we can find the distance between the two points:

d = √[(x2 - x1)^2 + (y2 - y1)^2]

= √[(-3 - 1)^2 + (3√3 - √3)^2]

= √[16 + 36]

= √52

= 2√13

Therefore, the distance between the points with polar coordinates (2, π/3) and (6, 2π/3) is 2√13 units.

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if cos(θ)=−1517, and θ is in quadrant ii, then what is sin(θ2)? give an exact answer, using radicals as needed. rationalize the denominator and simplify your answer completely

Answers

Since cos(θ) = -15/17 and θ is in quadrant II, we know that sin(θ) is positive. We can use the identity sin²(θ) + cos²(θ) = 1 to find sin(θ):

sin²(θ) = 1 - cos²(θ) = 1 - (-15/17)² = 1 - 225/289 = 64/289

sin(θ) = √(64/289) = 8/17

Now we can use the half-angle formula for sine to find sin(θ/2):

sin(θ/2) = ±√[(1 - cos(θ))/2]

Since θ is in quadrant II, we know that θ/2 is in quadrant I, so sin(θ/2) is positive. Therefore, we can take the positive square root:

sin(θ/2) = √[(1 - cos(θ))/2] = √[(1 + 15/17)/2] = √(16/17) = 4/√17

To simplify this expression completely, we can multiply the numerator and denominator by √17:

sin(θ/2) = (4/√17) * (√17/√17) = 4√17/17

So the exact value of sin(θ/2) is 4√17/17.

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HELP ASAPPPPPPPPPPPPPPPPPPPPP

Answers

it’s d! hope this helps! :)

______________ occurs during economic expansions when demand for goods and services is greater than supply. a. Administrative inflation b. Speculative inflation c. Cost-push inflation d. Demand-pull inflation

Answers

The answer to your question is d. Demand-pull inflation. This type of inflation occurs during economic expansions when a high demand for goods and services exceeds the supply.

This leads to an increase in prices as consumers compete for limited resources. Demand-pull inflation is typically caused by factors such as a growing economy, low unemployment rates, and increased consumer spending. One example of demand-pull inflation is the housing market boom that occurred in the early 2000s. As more people sought to buy homes, the demand for housing increased while the supply remained relatively constant. This led to a rise in housing prices, making it more difficult for first-time homebuyers to afford homes. Demand-pull inflation can have both positive and negative effects on the economy. On one hand, it can signal a healthy and growing economy. On the other hand, if it is left unchecked, it can lead to higher prices and reduced purchasing power for consumers. As a result, governments and central banks may take action to control inflation through measures such as raising interest rates or reducing government spending.

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2
During peak visiting time,
Arches National Park earns
$115,200 in entrance fees and
reservations. That's 3,600 times
the sum of $30 and v, the fee for a
private vehicle. Write and solve an
equation to find v.

Answers

The fee for a private vehicle at Arches National Park during peak visiting time is $2.

Let's assume that v represents the fee for a private vehicle in dollars. According to the given information, the total earnings during peak visiting time at Arches National Park is $115,200. This amount is 3,600 times the sum of $30 and v.

To express this situation as an equation, we can set up the following equation:

115,200 = 3,600 * (30 + v)

We multiply the sum of $30 and v by 3,600 because the total earnings are 3,600 times that value. Solving this equation will give us the value of v, the fee for a private vehicle.

To solve the equation, we start by dividing both sides by 3,600:

115,200 / 3,600 = 30 + v

This simplifies to:

32 = 30 + v

Next, we subtract 30 from both sides to isolate v:

32 - 30 = v

2 = v

Therefore, the fee for a private vehicle at Arches National Park during peak visiting time is $2.

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the mayor of a town believes that more than 72% of the residents favor annexation of a new community. is there sufficient evidence at the 0.02 level to support the mayor's claim? state the null and alternative hypotheses for the above scenario.

Answers

The hypothesis test or draw a conclusion about the sufficiency of evidence. comparing it to a critical value or obtaining a p-value. However, without specific data or sample information

In order to determine if there is sufficient evidence to support the mayor's claim, we need to set up the null and alternative hypotheses and conduct a hypothesis test.

Null hypothesis (H0): The proportion of residents favoring annexation is equal to or less than 72%.

Alternative hypothesis (H1): The proportion of residents favoring annexation is greater than 72%.

To test these hypotheses, we can use a one-sample proportion test. Let's denote p as the true proportion of residents favoring annexation in the population.

Given that the mayor believes more than 72% of the residents favor annexation, the alternative hypothesis is one-sided and can be stated as follows:

H0: p ≤ 0.72

H1: p > 0.72

To determine if there is sufficient evidence to support the mayor's claim, we would need to collect a sample from the town's residents and conduct a hypothesis test, using statistical methods such as calculating a test statistic (e.g., z-test) and comparing it to a critical value or obtaining a p-value. However, without specific data or sample information, we cannot perform the hypothesis test or draw a conclusion about the sufficiency of evidence.

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find the derivative, r'(t), of the vector function. r(t) = at cos(5t)i b sin4(t)j c cos3(t)k

Answers

r'(t) = -5a sin(5t)i + 4b cos(4t)j - 3c sin(3t)k

Thus, we have:

r'(t) = (a(-sin(5t)) + 5acos(5t))i + (b(4cos(4t)))j + (c(-3sin(3t)))k

Simplifying further, we get:

r'(t) = [-5a sin(5t) + a cos(5t)]i + [4b cos(4t)]j + [-3c sin(3t)]k

This is the derivative of the vector function r(t), denoted by r'(t), with respect to the independent variable t. The resulting vector is tangent to the curve described by the vector function r(t) at each point on the curve. It tells us the rate of change of the position vector with respect to time and can be used to find the velocity, acceleration, and other important properties of the curve.

To find the derivative, r'(t), of the vector function r(t) = at cos(5t)i + b sin(4t)j + c cos(3t)k, we need to differentiate each component of the vector function with respect to t.

The derivative of the first component (at cos(5t)i) with respect to t is:
r1'(t) = a(-5 sin(5t)i)

The derivative of the second component (b sin(4t)j) with respect to t is:
r2'(t) = b(4 cos(4t)j)

The derivative of the third component (c cos(3t)k) with respect to t is:
r3'(t) = c(-3 sin(3t)k)

Now, combine these derivatives to form the overall derivative r'(t):
r'(t) = -5a sin(5t)i + 4b cos(4t)j - 3c sin(3t)k

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can sb help me with this question

Answers

Answer:

-18

Step-by-step explanation:

in considering whether to produce a single product, the associated direct materials and direct labor costs would probably a. irrelevant qualitative factors b. relevant qualitative factors c. relevant quantitative factors d. irrelevant quantitative factors

Answers

Option c, relevant quantitative factors, is the correct answer.

Direct materials and direct labor costs are factors that directly affect the production of a single product. They are important in determining the cost of producing the product and, therefore, are relevant quantitative factors that need to be considered when making a decision about whether to produce a product.

Qualitative factors, on the other hand, are non-monetary considerations such as market demand, competition, technological advancements, and environmental concerns, which may also impact the decision to produce a product, but are not directly related to the cost of production.

Therefore, in considering whether to produce a single product, both qualitative and quantitative factors need to be taken into account. However, direct materials and direct labor costs are relevant quantitative factors that are important in making an informed decision about the profitability of the product.

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{y=1/2(one half)x-6
{2x+3y=45

Answers

The system of equations solved by the elimination method gives x = 18 and y = 3

Solving the system of equations

From the question, we have the following parameters that can be used in our computation:

y = 1/2x - 6

2x + 3y = 45

Multiply (1) by 4

So, we have

4y = 2x - 24

2x + 3y = 45

Add the equations

So, we have the following representation

7y = 21

Divide the equations

y = 3

Recall that

y = 1/2x - 6

So, we have

3 = 1/2x - 6

This gives

1/2x = 9

Divide

x = 18

Hence, the solutions are x = 18 and y = 3

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Complete question

Solve the following system of equations

y = 1/2x - 6

2x + 3y = 45

find r'(t), r(t0), and r'(t0) for the given value of t0. r(t) = (1 t)i t3j, t0 = 1

Answers

Here, Derevative: r'(t) = i + 3t^2j, r(t0) = i + j, and r'(t0) = i + 3j.

For the given function r(t) = (1 t)i + t^3j and t0 = 1, we can find r'(t), r(t0), and r'(t0) as follows:

r'(t) = i + 3t^2j

r(t0) = (1 1)i + 1^3j = i + j

r'(t0) = i + 3(1)^2j = i + 3j

We are given a vector-valued function r(t) = (1 t)i + t^3j, and a value of t0 = 1. To find r'(t), we need to take the derivative of each component of the function separately.

Taking the derivative of the first component, we get:

d/dt (1 t) = 0 1 = i

Taking the derivative of the second component, we get:

d/dt (t^3) = 3t^2 = 3t^2j

Therefore, r'(t) = i + 3t^2j.

To find r(t0), we substitute t0 = 1 into the function. This gives us:

r(1) = (1 1)i + 1^3j = i + j

Finally, to find r'(t0), we substitute t0 = 1 into r'(t) that we found earlier:

r'(1) = i + 3(1)^2j = i + 3j

Therefore, r'(t) = i + 3t^2j, r(t0) = i + j, and r'(t0) = i + 3j.

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a researcher wishes to survey student opinions on a proposed increase in fees at her university. she decides to select a sample for telephone interviewing by selecting every 20th name in the student directory. what is this type of sampling called?

Answers

The type of sampling described in the scenario is known as systematic sampling.

Systematic sampling involves selecting elements from a population in a systematic and predetermined manner. In this case, the researcher is selecting every 20th name from the student directory to form her sample. This method of sampling is relatively simple to execute and can be less time-consuming compared to other methods such as random sampling. However, it is important to ensure that the selected interval does not coincide with any underlying patterns in the population that may bias the results.

Overall, systematic sampling can be a useful method for obtaining a representative sample from a large population, but it is important to consider the potential limitations and biases associated with this approach.

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Question 4(Multiple Choice Worth 2 points)
(Two-Column Tables MC)

A teacher gives pens and pencils to elementary students at an equal rate.


Pencils Pens
18 72
29 A
35 140
B 168


Determine the missing value for the letter B.
38
42
63
70

Answers

To determine the missing value for the letter B, we need to consider that the teacher gives pens and pencils to elementary students at an equal rate. This means that the ratio of pencils to pens should be the same in each row of the table.

We can set up a proportion to solve for the missing value:

pencils/pens = pencils/pens

Using the values in the table, we get:

18/72 = 35/140

Simplifying each side, we get:

0.25 = 0.25

This is true, so we can use the same proportion to solve for the missing value:

29/B = 35/140

Cross-multiplying, we get:

35B = 4060

Dividing both sides by 35, we get:

B = 116

Therefore, the missing value for the letter B is 116, and the answer is not listed among the options.

Micah places a mirror on the ground 24 feet from the base of a tree. He walks backwards until he can see the top of the tree in the middle of the mirror. At that point, Micah’w eyes are 6 feet above the ground and he is 9 feet from the image in the mirror. What is the height of the tree?

Answers

The height of the tree is approximately 8 feet. So the answer is option 3.

We can see that we have two similar triangles: the triangle formed by the tree, the ground, and Micah's eyes, and the triangle formed by the tree, the mirror, and the image of the tree in the mirror.

Let's use the first triangle to find the height of Micah's eyes above the base of the tree:

tan(theta) = opposite / adjacent

tan(theta) = (height of Micah's eyes - height of tree) / 24

tan(theta) = (6 - height of tree) / 24

We can solve for height of tree:

6 - height of tree = 24 tan(theta)

height of tree = 6 - 24 tan(theta)

Now let's use the second triangle to relate the height of the tree to the distance to the image in the mirror:

height of tree / 9 = (height of tree + height of mirror) / 24

We know that the height of the mirror is negligible compared to the height of the tree, so we can simplify:

height of tree / 9 ≈ height of tree / 24

We can solve for height of tree:

height of tree / 9 ≈ height of tree / 24

height of tree ≈ (height of tree / 9) × 24

height of tree ≈ 8

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we draw 6 cards from a deck of 52 playing cards simultaneously. a. how many possible outcomes of getting 6 different face values are there?

Answers

The possible outcomes of getting 6 different face values out of 52 playing cards is equal to 5,271,552.

Total number of cards in a deck of cards = 52

Number of cards draw = 6

To determine the number of possible outcomes of getting 6 different face values.

when drawing 6 cards from a deck of 52 playing cards.

There are 13 different face values in a deck of cards .

Choose 6 of these face values and then choose one card of each of the chosen face values.

The order in which we choose the face values or the order in which we choose the cards of each face value does not matter.

To choose 6 face values out of 13, use the combination formula,

C(13, 6) = 13! / (6! × (13-6)!)

           = 13! / (6! × 7!)

           = 1716

Once chosen the 6 face values, choose one card of each face value.

There are 4 cards of each face value in a deck of cards.

Since choosing one card of each face value,

choose 4 cards for the first face value,

3 cards for the second face value since already chosen one card of that face value.

2 cards for the third face value since we have already chosen two cards of that face value and so on.

The total number of possible outcomes of getting 6 different face values is.

C(13, 6) × (4×3×2×1)(4×2 ×2 ×2×2× 2)

= 1716 × 24 × 128

= 5,271,552

Therefore, there are 5,271,552 possible outcomes of getting 6 different face values when drawing 6 cards from a deck of 52 playing cards simultaneously.

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Simplify: 7 5/8 + 1 1/6

Answers

Answer:

8 19/24

Step-by-step explanation:

[tex]7 \frac{5}{8} + 1 \frac{1}{6}[/tex]

Find the LCM of the fractions. This would be 24.

Multiply the numerator and denominator of 7 5/8 by 3.

Multiply the numerator and denominator of  1 1/6 by 4

[tex]7\frac{15}{24} + 1 \frac{4}{24} = 8\frac{19}{24}[/tex]

Suppose we want to choose a value of x within 4 units of 14. [This means a value of z that is less than 4 units away from 14.] a. Think about some values of x that meet this constraint

Answers

So if we want to choose a value of x within 4 units of 14, that means our constraint is |x-14| ≤ 4. This is because the distance between x and 14 cannot exceed 4 units.

Some values of x that meet this constraint could be:
- x = 10, since |10-14| = 4, which is within our constraint
- x = 13, since |13-14| = 1, which is within our constraint
- x = 18, since |18-14| = 4, which is within our constraint

However, some values of x that do not meet this constraint would be:
- x = 5, since |5-14| = 9, which exceeds our constraint
- x = 20, since |20-14| = 6, which exceeds our constraint

In summary, the values of x that meet the constraint |x-14| ≤ 4 are those that have a distance of 4 or less units from 14.
To choose a value of x within 4 units of 14, we need to find values that are less than 4 units away from 14. This constraint can be expressed mathematically as follows:

14 - 4 < x < 14 + 4

Which simplifies to:

10 < x < 18

Some values of x that meet this constraint include 11, 12, 13, 15, 16, and 17. These values are within the given range and are less than 4 units away from 14.

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find the 3 × 3 matrix that that rotates a point in r 2 60 degrees about the point (6, 8) (using homogeneous coordinates).

Answers

The  3x3 matrix that rotates a point in R2 60 degrees about the point (6,8) using homogeneous coordinates is:

```
| 1/2  -sqrt(3)/2  6 - 6/2*sqrt(3)|
|sqrt(3)/2   1/2    8 - 6sqrt(3)/2|
|  0        0       1      |
```

To rotate a point in R2 by 60 degrees about the point (6,8), we can use homogeneous coordinates and a 3x3 transformation matrix. The transformation matrix can be constructed as follows:

1. Translate the point (6,8) to the origin by subtracting (6,8) from the point.
2. Rotate the point by 60 degrees counterclockwise around the origin.
3. Translate the point back to its original position by adding (6,8) to the rotated point.

Step 1: Translation matrix

To translate the point (6,8) to the origin, we need to subtract (6,8) from the point. This can be done using the following translation matrix:

```
T = |1  0  -6|
   |0  1  -8|
   |0  0   1|
```

Step 2: Rotation matrix

To rotate the point by 60 degrees, we need to use the following rotation matrix:

```
R = |cos(60)  -sin(60)  0|
   |sin(60)   cos(60)  0|
   |   0         0     1|
```

Note that we are using radians for the angle in the cosine and sine functions, so cos(60) = 1/2 and sin(60) = sqrt(3)/2.

Step 3: Translation matrix

To translate the point back to its original position, we need to add (6,8) to the rotated point. This can be done using the following translation matrix:

```
T' = |1  0   6|
    |0  1   8|
    |0  0   1|
```

Combining the matrices

To combine the matrices, we can multiply them in the following order: T' * R * T. This gives us the final transformation matrix:

```
M = | 1/2  -sqrt(3)/2  6 - 6/2*sqrt(3)|
   |sqrt(3)/2   1/2    8 - 6sqrt(3)/2|
   |  0        0       1      |
```

Therefore, the 3x3 matrix that rotates a point in R2 60 degrees about the point (6,8) using homogeneous coordinates is:

```
| 1/2  -sqrt(3)/2  6 - 6/2*sqrt(3)|
|sqrt(3)/2   1/2    8 - 6sqrt(3)/2|
|  0        0       1      |
```

Note that the matrix has been simplified to express the trigonometric functions in terms of radicals.

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Suppose y=c1cos(kx)+c2sin(kx) where k>0 is a constant, and c1 and c2 are arbitrary constants. Find the following. Enter c1 as c1 and c2 as c2. a. dy/dx= b. d^2y/dx^2= c. Rewrite your answer to the previous part in terms of y. d. Use your previous answers to find a non-zero solution to d^2y/dx^2=−25y. Enter your answer as an equation y=f(x) and give as general a solution as you can, including any constants c1 and c2 .

Answers

The general solution to d^2y/dx^2 = -25y is:

y = c1cos(5x) + c2sin(5x), where c1 and c2 are arbitrary constants.

a. To find the derivative of y = c1cos(kx) + c2sin(kx) with respect to x, we apply the chain rule:

dy/dx = -c1ksin(kx) + c2kcos(kx)

b. Taking the derivative of the expression obtained in part (a) with respect to x, we have:

d^2y/dx^2 = -c1k^2cos(kx) - c2k^2sin(kx)

c. In terms of y, we can rewrite the answer from part (b) as:

d^2y/dx^2 = -k^2y

d. The differential equation d^2y/dx^2 = -25y is in the same form as the equation from part (c). By comparing the two equations, we can see that k^2 = 25, which implies k = ±5.

For k = 5, the general solution is:

y = c1cos(5x) + c2sin(5x)

For k = -5, the general solution is:

y = c1cos(-5x) + c2sin(-5x) = c1cos(5x) - c2sin(5x)

Combining the two solutions, the general solution to d^2y/dx^2 = -25y is:

y = c1cos(5x) + c2sin(5x), where c1 and c2 are arbitrary constants.

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find the inverse of 51 mod 99.

Answers

The inverse of 51 modulo 99 is 49.

Determine the inverse?

To find the inverse of 51 modulo 99, we need to find a number x such that (51 * x) % 99 = 1, where % represents the modulo operation.

One way to find the inverse is to use the extended Euclidean algorithm. However, in this case, we can observe that 51 * 49 = 2499, which is one more than a multiple of 99 (2499 = 99 * 25 + 24).

then, (51 * 49) % 99 = 24 % 99 = 24, which is equal to 1 modulo 99. Hence, the inverse of 51 modulo 99 is 49.

Therefore, the inverse of 51 modulo 99 is 49 because when 51 is multiplied by 49 and then taken modulo 99, the result is 1.

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Find the volume of the solid. Round your final answer to the nearest whole number if necessary.

Answers

Answer:

  2120 ft³

Step-by-step explanation:

You want the volume of a hexagonal pyramid with side length 12 ft and height 17 ft.

Base area

The area of the base is given by the formula ...

  A = (3/2)√3·s² . . . . where s is the side length

  A = (3/2)√3·(12 ft)² = 216√3 ft²

Volume

The volume of a pyramid is given by the formula ...

  V = 1/3Bh

where B is the area of the base, and h is the height.

The volume of this pyramid is ...

  V = 1/3(216√3 ft²)(17 ft) ≈ 2120 ft³

The volume of the solid is about 2120 cubic feet.

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for any normally distributed random variable with mean μ and standard deviation σ, the proportion of the observations that fall outside the interval [μ − σ, μ σ] is the closest to ______.

Answers

Approximately 31%. This is because the interval [μ − σ, μ + σ] encompasses approximately 68% of the observations in a normal distribution, leaving approximately 32% of the observations outside of this interval.

However, since the question specifies the interval [μ − σ, μ σ], which only covers half of the distance of [μ − σ, μ + σ], we can estimate that approximately half of the remaining 32% of observations will fall outside this interval, resulting in a proportion of approximately 16%. Adding this to the 68% within the interval gives us a total of approximately 84% of observations falling within two standard deviations of the mean. Therefore, the proportion of mean observations that fall outside the interval [μ − σ, μ σ] would be closest to 16%.

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6) Find the value of the missing values.
1
5
139°
6
72.5%
3
a) mz1 =
b) m2 =
c) mz3 =
d) m24 =
e) m25 =
f) m26 =

Answers

(a) The value of m∠1 in the intersecting chords is 31.5⁰.

(b) The value of m∠2 in the intersecting chords is 139⁰.

(c) The value of m∠3 in the intersecting chords is 41⁰.

(d) The value of m∠4 in the intersecting chords is 93⁰.

(e) The value of m∠5 in the intersecting chords is 69.5⁰.

(f) The value of m∠6 in the intersecting chords is 69.5⁰.

What is the value of the missing angles?

The value of the missing angles is calculated by applying intersecting chord theorem, which states that the angle at tangent is half of the arc angle of the two intersecting chords.

The measure of angle 1 is calculated as follows;

arc angle opposite 72.5⁰ = 2 x 72.5⁰ = 145⁰

missing arc angle = 360 - ( 145⁰ + 139)

missing arc angle = 76⁰

m∠1 = ¹/₂ ( 139 - 76) (exterior angle of intersecting secants)

m∠1 = ¹/₂ (63) = 31.5⁰

The measure of angle 5 is calculated as;

m∠5 = ¹/₂ (139⁰)

m∠5 = 69.5⁰ (interior angle of intersecting secants)

The measure of angle 2 is calculated as;

m∠2 = 2 x m∠5 (angle at center is twice angle at circumference)

m∠2 = 2 x 69.5 = 139⁰

The measure of angle 6 is calculated as;

m∠6 = ¹/₂ (139⁰)

m∠6 = 69.5⁰ (interior angle of intersecting secants)

The measure of angle 3 is calculated as follows;

m∠3 = ¹/₂ ( (360 - 139) - 139) (exterior angle of intersecting secants)

m∠3 = ¹/₂ (221 - 139)

m∠3 = 41⁰

The measure of angle 4 is calculated as follows;

θ = 180 - (72.5 + m∠6)

= 180 - (72.5 + 69.5)

= 180 - 142

= 38

Each base angle of angle 2 = ¹/₂ (180 - 139) = 20.5⁰

= 38 - 20.5⁰

= 17.5⁰

m∠4 = 180 - (17.5⁰ + m∠5) (sum of angles in a triangle)

m∠4 = 180 - (17.5 + 69.5)

m∠4 = 93⁰

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Leo stands
2
3
4
feet tall. Zippy stands 1 foot 1 inch tall. Use what you have learned about fractions to calculate how much taller Leo is as compared to Zippy

Answers

Zippy is 20 inches shorter than Leo.

To calculate how much taller Leo is compared to Zippy, we need to convert their heights to a common unit of measurement.

Leo stands 2 3/4 feet tall, which is equivalent to 2.75 x 12 = 33 inches (since 1 foot = 12 inches).

Zippy stands 1 foot 1 inch tall, which is equivalent to 1 x 12 + 1 = 13 inches (since 1 foot = 12 inches and 1 inch = 1/12 foot).

To find the difference in their heights, we subtract Zippy's height from Leo's height:

33 inches - 13 inches = 20 inches

Therefore, Leo is 20 inches taller than Zippy.

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y=-2
4x-3y=18
systems of equations with substitution

Answers

Answer:

x = 3, y = -2

Step-by-step explanation:

Substitute Y = -2 into the second equation:

4x - 3(-2) = 18

Simplify and solve for x:

4x + 6 = 18

4x = 12

x = 3

Now substitute x=3 into the first equation to solve for y:

Y = -2

Therefore, the solution to the system of equations is:

x = 3, y = -2

Write the equation of one line that is perpendicular to and one line that is parallel to y = 7x + 9.

Answers

Answer:

please see answers below

Step-by-step explanation:

in y = 7x + 9, the slope is 7 (the value with x after it is the slope).

to find a parallel line, we must use this slope value. we can pick any reasonable number for the y-intercept (the 9 in our equation).

so a parallel line could be y = 7x + 6.

the slope of a perpendicular line is given by -1/slope

= -1/7.

again, we can pick our own y-intercept.

y = -(1/7)x - 4 is the equation of one line perpendicular to y = 7x + 9

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