At the Muttart Conservatory, the arid pyramid
has 4 congruent triangular faces. The base of
each face has length 19.5 m and the slant height:
of the pyramid is 20.5 m. What is the measure
of each of the three angles in the face? Give the
measures to the nearest degree.

Answer:

True

Step-by-step explanation:

Price per candy=total price/quantity

price per candy=2.40/15

2.4/15=.8/5=4/25=0.16

Thus its true

There were 38 heavy equipment operators and 2 general laborers employed.

To calculate the number of heavy equipment operators, let's assume the number of heavy equipment operators as "x" and the number of general laborers as "y."

The cost of hiring a heavy equipment operator per day is $120, and the cost of hiring a general laborer per day is $93.

We can set up two equations based on the given information:

Equation 1: x + y = 40 (since a total of 40 people were hired)

Equation 2: 120x + 93y = 4746 (since the total payroll was $4746)

To solve these equations, we can use the substitution method.

From Equation 1, we can solve for y:

y = 40 - x

Substituting this into Equation 2:

120x + 93(40 - x) = 4746

120x + 3720 - 93x = 4746

27x = 1026

x = 38

Substituting the value of x back into Equation 1, we can find y:

38 + y = 40

y = 40 - 38

y = 2

Therefore, there were 38 heavy equipment operators and 2 general laborers employed.

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a) A nonzero vector orthogonal to the plane through the points P, Q, and R is N = (8, -9, 0). b) The area of triangle PQR is 1/2 * √145. c) The volume of the parallelepiped with adjacent edges PQ, PR, and PS is 5.

a) To find a nonzero vector orthogonal to the plane through the points P, Q, and R, we can find the cross product of the vectors formed by subtracting one point from another.

Let's find two vectors in the plane, PQ and PR:

PQ = Q - P

= (2, 3, 2) - (-2, 1, 0)

= (4, 2, 2)

PR = R - P

= (1, 4, -1) - (-2, 1, 0)

= (3, 3, -1)

Now, we can find the cross product of PQ and PR:

N = PQ × PR

= (4, 2, 2) × (3, 3, -1)

Using the determinant method for the cross product, we have:

N = (2(3) - 2(-1), -1(3) - 2(3), 4(3) - 4(3))

= (8, -9, 0)

b) To find the area of triangle PQR, we can use the magnitude of the cross product of PQ and PR divided by 2.

The magnitude of N = (8, -9, 0) is:

√[tex](8^2 + (-9)^2 + 0^2)[/tex]

= √(64 + 81 + 0)

= √145

c) To find the volume of the parallelepiped with adjacent edges PQ, PR, and PS, we can use the scalar triple product.

The scalar triple product of PQ, PR, and PS is given by the absolute value of (PQ × PR) · PS.

Let's find PS:

PS = S - P

= (3, 6, 1) - (-2, 1, 0)

= (5, 5, 1)

Now, let's calculate the scalar triple product:

V = |(PQ × PR) · PS|

= |N · PS|

= |(8, -9, 0) · (5, 5, 1)|

Using the dot product, we have:

V = |(8 * 5) + (-9 * 5) + (0 * 1)|

= |40 - 45 + 0|

= |-5|

= 5

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The selling price should be $9054.61 to recoup the income that the rental company loses by selling the equipment "early."

a) It is an annuity due problem.

An annuity due is a sequence of payments, made at the start of each period for a fixed period.

For instance, rent on a property, which is usually paid in advance at the start of the month and continues for a set period, is an annuity due.

In an annuity due, each payment is made at the start of the period, and the amount does not change over time since it is an agreed-upon lease agreement.

Now, the selling price can be calculated using the following formula:

[tex]PMT(1 + i)[\frac{1 - (1 + i)^{-n}}{i}][/tex]

Here,

PMT = Monthly

Rent = $200

i = Rate per period

= 4.4% per annum/12

n = Number of Periods

= 4.5 * 12 (since 4 and a half years of useful life are left).

= 54

Substituting the values in the formula, we get:

[tex]$$PMT(1+i)\left[\frac{1-(1+i)^{-n}}{i}\right]$$$$=200(1+0.044/12)\left[\frac{1-(1+0.044/12)^{-54}}{0.044/12}\right]$$$$=200(1.003667)\left[\frac{1-(1.003667)^{-54}}{0.00366667}\right]$$$$= 9054.61$$[/tex]

Therefore, the selling price should be $9054.61 to recoup the income that the rental company loses by selling the equipment "early."

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The joint PDF of X2 and X3 is constant within the region 0 < X2 < 1 and 0 < X3 < 1, and zero elsewhere.

To compute the sampling distribution of X2 and X3, we need to find the joint probability density function (PDF) of these two random variables.

Since X1, X2, and Xn are uniformly distributed on the interval (0, 1), their joint PDF is given by:

f(x1, x2, ..., xn) = 1, if 0 < xi < 1 for all i, and 0 otherwise

To find the joint PDF of X2 and X3, we need to integrate this joint PDF over all possible values of X1 and X4 through Xn. Since X1 does not appear in the joint PDF of X2 and X3, we can integrate it out as follows:

f(x2, x3) = ∫∫ f(x1, x2, x3, x4, ..., xn) dx1dx4...dxn

= ∫∫ 1 dx1dx4...dxn

= ∫0¹ ∫0¹ 1 dx1dx4

= 1

Therefore, the joint PDF of X2 and X3 is constant within the region 0 < X2 < 1 and 0 < X3 < 1, and zero elsewhere. This implies that X2 and X3 are independent and identically distributed (i.i.d.) random variables with a uniform distribution on (0, 1).

In other words, the sampling distribution of X2 and X3 is also a uniform distribution on the interval (0, 1).

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The approximate real solution to the equation x^3 - 6x + 2 = 0 lies between -10 and 10 and is approximately x ≈ -0.91.

The correct choice is A).

To find the approximate real solution to the equation x^3 - 6x + 2 = 0, we can use a graphing utility to visualize the equation and identify the x-values where the graph intersects the x-axis. By observing the graph, we can approximate the real solutions.

Upon graphing the equation, we find that there is one real solution that lies between -10 and 10. Using the graphing utility, we can estimate the x-coordinate of the intersection point with the x-axis. This approximate solution is approximately x ≈ -0.91.

Therefore, the approximate real solution to the equation x^3 - 6x + 2 = 0 is x ≈ -0.91. This means that when x is approximately -0.91, the equation is satisfied. It is important to note that this is an approximation and not an exact solution. The use of a graphing utility allows us to estimate the solutions to the equation visually.

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The leading coefficient of the polynomial is 20 and the degree of the polynomial is 5.

A polynomial is an expression that contains a sum or difference of powers in one or more variables. In the given polynomial, the degree of the polynomial is the highest power of the variable 'u' in the polynomial. The degree of the polynomial is found by arranging the polynomial in descending order of powers of 'u'.

Thus, rearranging the given polynomial in descending order of powers of 'u' yields:20u^(5)-15u^(4)-8u^(2)-5u.The highest power of u is 5. Hence the degree of the polynomial is 5.The leading coefficient is the coefficient of the term with the highest power of the variable 'u' in the polynomial. In the given polynomial, the term with the highest power of 'u' is 20u^(5), and its coefficient is 20. Therefore, the leading coefficient of the polynomial is 20.

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The problem is not solvable as stated, since the number of short sleeve T-shirts sold cannot be larger than the total number of shirts available.

Let x be the number of short sleeve T-shirts sold, and y be the number of long sleeve T-shirts sold. Then we have two equations based on the information given in the problem:

x + y = 350 (equation 1, since the vendor has a total of 350 shirts)

12x + 16y = 5000 (equation 2, since the total revenue from selling x short sleeve shirts and y long sleeve shirts is $5000)

We can use equation 1 to solve for y in terms of x:

y = 350 - x

Substituting this into equation 2, we get:

12x + 16(350 - x) = 5000

Simplifying and solving for x, we get:

4x = 1800

x = 450

Since x represents the number of short sleeve T-shirts sold, and we know that the vendor sold a total of 350 shirts, we can see that x is too large. Therefore, there is no solution to this problem that satisfies the conditions given.

In other words, the problem is not solvable as stated, since the number of short sleeve T-shirts sold cannot be larger than the total number of shirts available.

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Answer:

Step-by-step explanation:

The answer ic C plug log into th calculator

The difference in their commute distances is 1654 meters.

To compare Mikko's commute distance of 8 km to Jason's commute distance of 6 miles, we need to convert one of the distances to the same unit as the other.

Given that 1 mile is equal to 1609 meters, we can convert Jason's commute distance to kilometers:

6 miles * 1609 meters/mile = 9654 meters

Now we can calculate the difference in their commute distances:

Difference = Mikko's distance - Jason's distance

         = 8 km - 9654 meters

To perform the subtraction, we need to convert Mikko's distance to meters:

8 km * 1000 meters/km = 8000 meters

Now we can calculate the difference:

Difference = 8000 meters - 9654 meters

         = -1654 meters

The negative sign indicates that Jason's commute distance is greater than Mikko's commute distance.

Therefore, their commute distances differ by 1654 metres.

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Based on the unit price, the first bag is the better buy as it offers a lower price per kilogram of dog food.

To find the unit price, we divide the total price of the bag by its weight.

For the first bag:

Unit price = Total price / Weight

= $12.53 / 7.03 kg

≈ $1.78/kg

For the second bag:

Unit price = Total price / Weight

= $14.64 / 7.98 kg

≈ $1.84/kg

To determine which bag is the better buy based on the unit price, we look for the lower unit price.

Comparing the unit prices, we can see that the first bag has a lower unit price ($1.78/kg) compared to the second bag ($1.84/kg).

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The leading term of the polynomial p(x) = 20 + 2x² - 8x³ is -8x³, the limit of p(x) as x approaches infinity is also negative infinity and the limit of p(x) as x approaches -0 is positive infinity.

(A) The leading term of the polynomial p(x) = 20 + 2x² - 8x³ is -8x³.

(B) To find the limit of the polynomial as x approaches infinity (∞), we examine the leading term. Since the leading term is -8x³, as x becomes larger and larger, the term dominates the other terms. Therefore, the limit of p(x) as x approaches infinity is also negative infinity.

(C) To find the limit of the polynomial as x approaches -0 (approaching 0 from the left), we again look at the leading term. As x approaches -0, the term -8x³ dominates the other terms, and since x is negative, the term becomes positive. Therefore, the limit of p(x) as x approaches -0 is positive infinity.

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The required probabilities are: P(Y > 150) = 0.1444P(Y < 60) = 0.0787

Given that Y has a lognormal distribution with mean μ = 71.2 and variance σ² = 158.40.

The mean and variance of lognormal distribution are given by: E(Y) = exp(μ + σ²/2) and V(Y) = [exp(σ²) - 1]exp(2μ + σ²)

Now we need to calculate the following probabilities:

P(Y > 150)P(Y < 60)We know that if Y has a lognormal distribution with mean μ and variance σ², then the random variable Z = (ln(Y) - μ) / σ follows a standard normal distribution.

That is, Z ~ N(0, 1).

Therefore, P(Y > 150) = P(ln(Y) > ln(150))= P[(ln(Y) - 71.2) / √158.40 > (ln(150) - 71.2) / √158.40]= P(Z > 1.0642) [using Z table]= 1 - P(Z < 1.0642) = 1 - 0.8556 = 0.1444Also, P(Y < 60) = P(ln(Y) < ln(60))= P[(ln(Y) - 71.2) / √158.40 < (ln(60) - 71.2) / √158.40]= P(Z < -1.4189) [using Z table]= 0.0787

Therefore, the required probabilities are:P(Y > 150) = 0.1444P(Y < 60) = 0.078

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If you perform a test and get a p-value = 0.051 you should not reject the null hypothesis. The statement given in the question is False.

A p-value is a measure of statistical significance, and it is used to evaluate the likelihood of a null hypothesis being true. If the p-value is less than or equal to the significance level, the null hypothesis is rejected. However, if the p-value is greater than the significance level, the null hypothesis is accepted, which means that the results are not statistically significant and can occur due to chance alone. A p-value is a measure of the evidence against the null hypothesis. The smaller the p-value, the stronger the evidence against the null hypothesis. On the other hand, a larger p-value indicates that the evidence against the null hypothesis is weaker. A p-value less than 0.05 is considered statistically significant.

Therefore, if you perform a test and get a p-value = 0.051 you should not reject the null hypothesis.

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The quotient is 3x^2 - x - 2.

To use synthetic division to find the quotient of (3x^3 - 7x^2 + 2x + 1) divided by (x - 2), we set up the synthetic division table as follows:

Copy code

  |   3    -7     2     1

2 |_____________________

First, we write down the coefficients of the dividend (3x^3 - 7x^2 + 2x + 1) in descending order: 3, -7, 2, 1. Then, we bring down the first coefficient, 3, as the first value in the second row.

Next, we multiply the divisor, 2, by the number in the second row and write the result below the next coefficient. Multiply: 2 * 3 = 6.

Copy code

  |   3    -7     2     1

2 | 6

Add the result, 6, to the next coefficient in the first row: -7 + 6 = -1. Write this value in the second row.

Copy code

  |   3    -7     2     1

2 | 6 -1

Again, multiply the divisor, 2, by the number in the second row and write the result below the next coefficient: 2 * (-1) = -2.

Copy code

  |   3    -7     2     1

2 | 6 -1 -2

Add the result, -2, to the next coefficient in the first row: 2 + (-2) = 0. Write this value in the second row.

Copy code

  |   3    -7     2     1

2 | 6 -1 -2 0

The bottom row represents the coefficients of the resulting polynomial after the synthetic division. The first value, 6, is the coefficient of x^2, the second value, -1, is the coefficient of x, and the third value, -2, is the constant term.

Thus, the quotient of (3x^3 - 7x^2 + 2x + 1) divided by (x - 2) is:

3x^2 - x - 2

Therefore, the quotient is 3x^2 - x - 2.

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The average of the set  {M, M₁, M₂} is  (M + M₁ + M₂)/3

Remember that if we have a set of elements, to find the average of said set we just need to add all the elements and then divide the sum by the number of elements.

Here we want to find the average of the set {M, M₁, M₂}

So we have 3 elements, the average will just be:

Average = (M + M₁ + M₂)/3

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(a) The solution to the differential equation is y = (3/2)(sin(2x)/|x|) + C/|x|, where C is a constant.

(b) The solution to the differential equation is y = ((x^2 - 2x + 2)e^x + C)/x^3, where C is a constant.

(a) To solve the differential equation y' + (1/x)y = 3cos(2x), we can use the method of integrating factors. The integrating factor is given by μ(x) = e^(∫(1/x)dx) = e^(ln|x|) = |x|. Multiplying both sides of the equation by |x|, we have |x|y' + y = 3xcos(2x). Now, we can rewrite the left side as (|x|y)' = 3xcos(2x). Integrating both sides with respect to x, we get |x|y = ∫(3xcos(2x))dx. Evaluating the integral and simplifying, we obtain |x|y = (3/2)sin(2x) + C, where C is the constant of integration. Dividing both sides by |x|, we finally have y = (3/2)(sin(2x)/|x|) + C/|x|.

(b) To solve the differential equation xy' + 2y = e^x, we can use the method of integrating factors. The integrating factor is given by μ(x) = e^(∫(2/x)dx) = e^(2ln|x|) = |x|^2. Multiplying both sides of the equation by |x|^2, we have x^3y' + 2x^2y = x^2e^x. Now, we can rewrite the left side as (x^3y)' = x^2e^x. Integrating both sides with respect to x, we get x^3y = ∫(x^2e^x)dx. Evaluating the integral and simplifying, we obtain x^3y = (x^2 - 2x + 2)e^x + C, where C is the constant of integration. Dividing both sides by x^3, we finally have y = ((x^2 - 2x + 2)e^x + C)/x^3.

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The derivative of the function y = (x² + 4x + 3)/(√x) is shown below:

Given function,y = (x² + 4x + 3)/(√x)We can rewrite the given function as y = (x² + 4x + 3) * x^(-1/2)

Hence, y = (x² + 4x + 3) * x^(-1/2)

We can use the Quotient Rule of Differentiation to differentiate the above function.

Hence, the derivative of the given function y = (x² + 4x + 3)/(√x) is

dy/dx = [(2x + 4) * x^(1/2) - (x² + 4x + 3) * (1/2) * x^(-1/2)] / x = [2x(x + 2) - (x² + 4x + 3)] / [2x^(3/2)]

We simplify the expression, dy/dx = (x - 1) / [x^(3/2)]

Hence, the derivative of the given function y = (x² + 4x + 3)/(√x) is

(x - 1) / [x^(3/2)].

The derivative of the function f(x) = [(1/x²) - (3/x^4)](x + 5x³) is shown below:

Given function, f(x) = [(1/x²) - (3/x^4)](x + 5x³)

We can use the Product Rule of Differentiation to differentiate the above function.

Hence, the derivative of the given function f(x) = [(1/x²) - (3/x^4)](x + 5x³) is

df/dx = [(1/x²) - (3/x^4)] * (3x² + 1) + [(1/x²) - (3/x^4)] * 15x²

We simplify the expression, df/dx = [(1/x²) - (3/x^4)] * [3x² + 1 + 15x²]

Hence, the derivative of the given function f(x) = [(1/x²) - (3/x^4)](x + 5x³) is

[(1/x²) - (3/x^4)] * [3x² + 1 + 15x²].

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The SAA (Side-Angle-Angle) criterion is not a triangle similarity theorem.

Triangle similarity theorems are used to determine if two triangles are similar. Similar triangles have corresponding angles that are equal and corresponding sides that are proportional.  There are three main triangle similarity theorems:  AA (Angle-Angle) Criterion.

SSS (Side-Side-Side) Criterion: If the lengths of the corresponding sides of two triangles are proportional, then the triangles are similar. SAS (Side-Angle-Side) Criterion.

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The deli manager should anticipate selling approximately 172 sandwiches when 178 customers visit the deli.

To approximate the number of sandwiches the deli manager should anticipate selling when 178 customers visit the deli, we can use the given data to estimate the linear relationship between the number of customers and the number of sandwiches sold.

We can start by calculating the average number of sandwiches sold per customer based on the data provided:

Total number of customers = 104 + 70 + 111 + 74 + 170 + 114 + 199 + 133 + 163 + 109 + 131 + 90 = 1558

Total number of sandwiches sold = Sum of sandwich data = 104 + 70 + 111 + 74 + 170 + 114 + 199 + 133 + 163 + 109 + 131 + 90 = 1498

Average sandwiches per customer = Total number of sandwiches sold / Total number of customers = 1498 / 1558 ≈ 0.961

Now, we can estimate the number of sandwiches for 178 customers by multiplying the average sandwiches per customer by the number of customers:

Number of sandwiches ≈ Average sandwiches per customer × Number of customers

Number of sandwiches ≈ 0.961 × 178 ≈ 172.358

Therefore, the deli manager should anticipate selling approximately 172 sandwiches when 178 customers visit the deli.

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A. The mean of the relevant distribution is 19.2.

B. Rounded to at least three decimal places, the standard deviation of the distribution is approximately 1.760.

(a) The number of workers in the sample who are union members can be estimated by taking the expected value of the relevant random variable. In this case, the random variable represents the number of union members in a sample of 20 workers.

Since 96% of all workers belong to the union, we can expect that 96% of the workers in the sample will also be union members. Therefore, the expected value of the random variable is given by:

E(X) = np

where n is the sample size (20) and p is the probability of success (0.96).

E(X) = 20 * 0.96 = 19.2

Therefore, the mean of the relevant distribution is 19.2.

(b) To quantify the uncertainty of the estimate, we can calculate the standard deviation of the distribution. For a binomial distribution, the standard deviation is given by:

σ = sqrt(np(1-p))

Using the same values as above, we can calculate the standard deviation:

σ = sqrt(20 * 0.96 * (1 - 0.96))

= sqrt(20 * 0.96 * 0.04)

≈ 1.760

Rounded to at least three decimal places, the standard deviation of the distribution is approximately 1.760.

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The system capacity is 2 units per minute, the bottleneck stage is Stage A, and the utilization of Stage 3 is 100%.

A line process has three processing stages with the characteristics given below:

Stage A B C Unit processing time(minutes) 1 2 3 Number of machines 1 1 2 Machine availability 90% 100% 100% Process yield at stage 100% 100% 100%

To determine the system capacity and the bottleneck stage and utilization of Stage 3:

The system capacity is calculated by the product of the processing capacity of each stage:

1 x 1 x 2 = 2 units per minute

The bottleneck stage is the stage with the lowest capacity and it is Stage A. Therefore, Stage A has the lowest capacity and determines the system capacity.The utilization of Stage 3 can be calculated as the processing time per unit divided by the available time per unit:

Process time per unit = 1 + 2 + 3 = 6 minutes per unit

Available time per unit = 90% x 100% x 100% = 0.9 x 1 x 1 = 0.9 minutes per unit

The utilization of Stage 3 is, therefore, (6/0.9) x 100% = 666.67%.

However, utilization cannot be greater than 100%, so the actual utilization of Stage 3 is 100%.

Hence, the system capacity is 2 units per minute, the bottleneck stage is Stage A, and the utilization of Stage 3 is 100%.

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A recursive definition of a function cwi (I0) that returns a set of companies that have at least one investor in set I0 is provided below in pseudocode. The base case is when there is only one investor in the set I0.

The base case involves finding the companies that the investor owns and returns the set of companies.The recursive case is when there are more than one investors in the set I0. The recursive case divides the set of investors into two halves and finds the set of companies owned by the first half and the second half of the investors.

The recursive case then returns the intersection of these two sets of def cwi(I0):

companies.pseudocode:

   if len(I0) == 1:

       i = I0[0]

       return [c for (j, c, n) in ICN if j == i and n > 0]

   else:

       m = len(I0) // 2

       I1 = I0[:m]

       I2 = I0[m:]

       c1 = cwi(I1)

       c2 = cwi(I2)

       return list(set(c1) & set(c2))

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Probability is a measure or quantification of the likelihood of an event occurring. The probability of phone calls involving fax messages can be modelled by the binomial distribution, with n = 25 and p = 0.20

(a) Expected number of calls among the 25 that involve a fax message expected value of a binomial distribution with n number of trials and probability of success p is given by the formula;`

E(X) = np`

Substituting n = 25 and p = 0.20 in the above formula gives;`

E(X) = 25 × 0.20`

E(X) = 5

So, the expected number of calls among the 25 that involve a fax message is 5.

(b) The standard deviation of the number among the 25 calls that involve a fax messageThe standard deviation of a binomial distribution with n number of trials and probability of success p is given by the formula;`

σ_X = √np(1-p)`

Substituting n = 25 and p = 0.20 in the above formula gives;`

σ_X = √25 × 0.20(1-0.20)`

σ_X = 1.936

Rounding the value to three decimal places gives;

σ_X ≈ 1.936

So, the standard deviation of the number among the 25 calls that involve a fax message is approximately 1.936.

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The function that maps each polynomial in S to its derivative is not one-to-one.

To show that it is not one-to-one, we need to demonstrate that there exist two different polynomials in S that map to the same derivative. Consider two polynomials in S: f(x) = x^2 and g(x) = x^2 + 1. The derivatives of both f(x) and g(x) are equal to 2x. Therefore, the function maps both f(x) and g(x) to the same derivative, indicating that it is not one-to-one.

On the other hand, the function is onto. This means that for any polynomial in T (which is a set of polynomials with real coefficients), there exists at least one polynomial in S that maps to it. In this case, for any polynomial g(x) in T, we can find a polynomial f(x) in S such that f'(x) = g(x). We can choose f(x) to be the antiderivative of g(x), which exists since g(x) is a polynomial. Therefore, the function is onto.

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Malcolm's reasoning is correct because when comparing 8/11 and 7/10 using cross-multiplication, we find that 8/11 is indeed greater than 7/10.

Malcolm's reasoning is correct. To compare fractions, we can cross-multiply and compare the products. In this case, when we cross-multiply 8/11 and 7/10, we get 80/110 and 77/110, respectively. Since 80/110 is greater than 77/110, we can conclude that 8/11 is indeed greater than 7/10.

Two examples that further illustrate this are:

These examples demonstrate that cross-multiplication can be used to compare fractions, supporting Malcolm's reasoning that 8/11 is greater than 7/10.

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In a circle, the angle subtended by a diameter from any point on the circumference is always 90°. The width of the coverage of the satellite is [tex]\frac{1}{12}[/tex] of the circumference of the circle.

The satellite located at the point where two tangents to the equator of the Earth intersect. If the two tangents form an angle of 30 degrees, how wide is the coverage of the satellite?Let AB and CD are the tangents to the equator, meeting at O as shown below: [tex]\angle[/tex]AOB = [tex]\angle[/tex]COD = 90°As O is the center of a circle, and the tangents AB and CD meet at O, the angle AOC = 180°.That implies [tex]\angle[/tex]AOD = 180° - [tex]\angle[/tex]AOC = 180° - 180° = 0°, i.e., the straight line AD is a diameter of the circle.In a circle, the angle subtended by a diameter from any point on the circumference is always 90°.Therefore, [tex]\angle[/tex]AEB = [tex]\angle[/tex]AOF = 90°Here, the straight line EF represents the coverage of the satellite, which subtends an angle at the center of the circle which is 30 degrees, because the two tangents make an angle of 30 degrees. Therefore, in order to find the length of the arc EF, you need to find out what proportion of the full circumference of the circle is 30 degrees. So we have:[tex]\frac{30}{360}[/tex] x [tex]\pi[/tex]r, where r is the radius of the circle.The circumference of the circle = 2[tex]\pi[/tex]r = 360°Therefore, [tex]\frac{30}{360}[/tex] x [tex]\pi[/tex]r = [tex]\frac{1}{12}[/tex] x [tex]\pi[/tex]r.The width of the coverage of the satellite = arc EF = [tex]\frac{1}{12}[/tex] x [tex]\pi[/tex]r. Therefore, the width of the coverage of the satellite is [tex]\frac{1}{12}[/tex] of the circumference of the circle.

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a. The function for Above the Bored's monthly profit is P(x) = $226x.

b. Above the Bored will have a net profit of $39,098.

c. Above the Bored needs to sell a minimum of 1 wakeboard in a month to break even.

(a) To find the function P(x) for Above the Bored's monthly profit, we need to subtract the cost of producing x wakeboards from the revenue generated by selling x wakeboards.

Revenue = Selling price per wakeboard * Number of wakeboards sold

Revenue = $480 * x

Cost = Cost per wakeboard * Number of wakeboards produced

Cost = $254 * x

Profit = Revenue - Cost

P(x) = $480x - $254x

P(x) = $226x

Therefore, the function for Above the Bored's monthly profit is P(x) = $226x.

(b) If Above the Bored produces and sells 173 wakeboards in a month, we can substitute x = 173 into the profit function to find the net profit:

P(173) = $226 * 173

P(173) = $39,098

Therefore, for that month, Above the Bored will have a net profit of $39,098.

(c) To break even, Above the Bored needs to have a profit of $0. In other words, the revenue generated must equal the cost incurred.

Setting P(x) = 0, we can solve for x:

$226x = 0

x = 0

Since the number of wakeboards cannot be zero (as it is not possible to sell no wakeboards), the minimum number of wakeboards Above the Bored needs to sell in a month to break even is 1.

Therefore, Above the Bored needs to sell a minimum of 1 wakeboard in a month to break even.

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The probability that the machine will function between 50 and 150 hours without a major breakdown is 0.3736.

The probability that it will work another extra 20 hours properly is 0.0648.

To solve these questions, we can use the properties of the exponential distribution. The exponential distribution is often used to model the time between events in a Poisson process, such as the time between major breakdowns of a machine in this case.

For an exponential distribution with a mean value of λ, the probability density function (PDF) is given by:

f(x) = λ * e^(-λx)

where x is the time, and e is the base of the natural logarithm.

The cumulative distribution function (CDF) for the exponential distribution is:

F(x) = 1 - e^(-λx)

Q7) To find this probability, we need to calculate the difference between the CDF values at 150 hours and 50 hours.

Let λ be the rate parameter, which is equal to 1/mean. In this case, λ = 1/100 = 0.01.

P(50 ≤ X ≤ 150) = F(150) - F(50)

= (1 - e^(-0.01 * 150)) - (1 - e^(-0.01 * 50))

= e^(-0.01 * 50) - e^(-0.01 * 150)

≈ 0.3935 - 0.0199

≈ 0.3736

Q8) In this case, we need to calculate the probability that the machine functions between 100 and 120 hours without a major breakdown.

P(100 ≤ X ≤ 120) = F(120) - F(100)

= (1 - e^(-0.01 * 120)) - (1 - e^(-0.01 * 100))

= e^(-0.01 * 100) - e^(-0.01 * 120)

≈ 0.3660 - 0.3012

≈ 0.0648

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The cost for renting the videoke machine is a piecewise function with two cases, as shown above.

Let C(x) be the cost of renting the videoke machine for x days. Then we can define C(x) as follows:

C(x) =

1000, if x <= 3

1400 + 400(x-3), if x > 3

The function C(x) is a piecewise function because it is defined differently for x <= 3 and x > 3. For the first three days, the cost is a flat rate of Php 1,000. For the fourth day onwards, an additional cost of Php 400 per day is added. Therefore, the cost for renting the videoke machine is a piecewise function with two cases, as shown above.

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