Answer:
x = 37 mm
Step-by-step explanation:
using the Pythagorean theorem:
m² = 13² - 5² = 169 - 25 = 144
m = √144 = 12 mm
x² = 12² + 35² = 144 + 1225 = 1369
x = √1369 = 37 mm
Answer:
x=37.3
Step-by-step explanation:
Since we're looking for "x" we need to use "the Pythagorean theorem".
13mm will be our "A" and 35mm will be our "B" will "x" being the hypotenuse.
Since x is the hypotenuse, it needs to be a number greater than 13 and 35.
c=√(a² + b²)
Making it c=√(13² + 35²)
Making C=37.336 or 37.3
Therefore making, x=37.3
At my university 22% of the students enrolled are ‘mature'; that is, age 21 or over. a) If I take a random sample of 5 students from the enrolment register what is the probability that exactly two students are mature?6 (5 marks) b) If I take a random sample of 7 students from the enrolment register what is the probability that exactly two students are mature?
The probability of exactly two students being mature in a random sample of five students from the enrollment register can be calculated using the binomial probability formula. Since 22% of the students are mature, the probability of selecting a mature student is 0.22, and the probability of selecting a non-mature student is 0.78.
a) To calculate the probability of exactly two students being mature, we use the binomial probability formula:
P(exactly 2 mature students) = C(5, 2) * (0.22)^2 * (0.78)^3
To calculate C(5, 2), we use the combination formula:
C(n, r) = n! / (r!(n-r)!)
C(5, 2) = 5! / (2!(5-2)!)
= 5! / (2! 3!)
= (5 * 4 * 3!) / (2! * 3!)
= (5 * 4) / 2
= 20 / 2
= 10
Now we can substitute the values into the expression:
C(5, 2) * (0.22)^2 * (0.78)^3
= 10 * (0.22)^2 * (0.78)^3
= 10 * 0.0484 * 0.474552
= 0.22950176
Therefore, the probability that exactly two students are mature in Random sample of 5 is approximately 0.22950176
Where C(5, 2) represents the number of combinations of selecting 2 students out of 5. Evaluating this expression will give us the probability.
b) Similarly, for a random sample of seven students, we use the same formula:
P(exactly 2 mature students) = C(7, 2) * (0.22)^2 * (0.78)^5
To calculate C(7, 2), we use the combination formula:
C(n, r) = n! / (r!(n-r)!)
C(7, 2) = 7! / (2!(7-2)!)
= 7! / (2!5!)
= (7 * 6 * 5!) / (2! * 5!)
= (7 * 6) / 2
= 42 / 2
= 21
Now we can substitute the values into the expression:
C(7, 2) * (0.22)^2 * (0.78)^5
= 21 * (0.22)^2 * (0.78)^5
= 21 * 0.0484 * 0.2887
≈ 0.2927
Therefore, the probability that exactly two students are mature in a random sample of 7 is approximately 0.2927
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Let R be the region in the first quadrant bounded above by the parabola y = 4-x²and below by the line y = 1. Then the area of R is: None of these 6 units squared This option 2√3 units squared This option √3 units squared
The area of region R is √3 - 1 units squared.
How to calculate region R's area?To find the area of the region R bounded by the parabola y = 4 - x[tex]^2[/tex] and the line y = 1 in the first quadrant, we need to determine the points where these two curves intersect.
Setting y = 4 - x[tex]^2[/tex]equal to y = 1, we have:
4 - x[tex]^2[/tex] = 1
Rearranging the equation, we get:
x[tex]^2[/tex] = 3
Taking the square root of both sides, we have:
x = ±√3
Since we are considering the first quadrant, we take the positive square root: x = √3.
To calculate the area of R, we integrate the difference between the upper and lower functions with respect to x over the interval [0, √3].
Area = ∫[0,√3] (4 - x^2 - 1) dx
Simplifying the integrand:
Area = ∫[0,√3] (3 - x^2) dx
Integrating:
Area = [3x - (x^3)/3] evaluated from 0 to √3
Plugging in the limits:
Area = [(3√3 - (√3)^3)/3] - [(3(0) - (0^3))/3]
Area = [3√3 - 3]/3
Area = √3 - 1
Therefore, the area of region R is √3 - 1 units squared.
So the correct option is: √3 units squared.
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a. If the infinite curve y =e-3x, x ≥ 0, is rotatedabout the x-axis, find the area of the resulting surface.in sq. units
b. A group of engineers is building a parabolic satellite dishwhose shape will be formed by rotating the curve y =ax2 about the y-axis. If the dish isto have a 10 ft diameter and a maximumdepth of 4 ft, find the value ofa and the surface area of the dish.
a =
SA = ft2
a) The area of the surface obtained by rotating the curve y = e^(-3x) about the x-axis cannot be determined without limits of integration. b) The value of a in the parabolic satellite dish is 0.1, and the surface area is approx. 33.51 ft².
a) To find the area of the surface obtained by rotating the curve y = e^(-3x) about the x-axis, we need to know the limits of integration. Without the specified limits, we cannot calculate the exact surface area.
b) The equation of the parabolic satellite dish is y = ax^2. We are given that the dish has a 10 ft diameter, which means the maximum x-coordinate is 5 ft (half of the diameter). Additionally, the maximum depth of 4 ft corresponds to the minimum y-coordinate (-4 ft).
To find the value of a, we substitute the coordinates (5, -4) into the equation: -4 = a(5)^2. Solving for a, we get a = -4/25 = 0.1.
The surface area (SA) of the dish can be calculated using the formula: SA = 2π∫[a, b] x * √(1 + (dy/dx)^2) dx, where [a, b] represents the limits of integration. Since the dish is symmetric, we only need to calculate the surface area for one half of the parabola.
Plugging in the values, the surface area is approximately 33.51 ft².
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Let A be a 5 x 3 matrix. a) What is the maximum possible dimension of the row space of A? Justify your answer. b) If the solution space of the homogeneous linear system Ax = 0 has tone free variable, what is the dimension of the column space of A? Justify your answer. 11.10) Determine the dimension of, and a basis for the solution space of the homogeneous system X1 - 4x2 + 3x3 - X4 = 0 2x1- 8x2 + 6x3 -2x4 = 0
In a matrix, the row space represents the set of all possible linear combinations of its row vectors. Since A is a 5 x 3 matrix, it can have at most 3 linearly independent row vectors. The maximum possible dimension of the row space of A is 3.
a) The maximum possible dimension of the row space of matrix A is 3. The row space of a matrix is defined as the vector space spanned by its row vectors. Since A is a 5 x 3 matrix, it can have at most 3 linearly independent row vectors. Any additional row vectors would be linearly dependent on the previous ones. Therefore, the maximum possible dimension of the row space of A is 3.
b) If the solution space of the homogeneous linear system Ax = 0 has one free variable, then the dimension of the column space of A is equal to the number of columns in A minus the number of pivot columns. The pivot columns are the columns of A that correspond to the leading entries in the row echelon form of A.
Since A is a 5 x 3 matrix, it has 3 columns. If the homogeneous system Ax = 0 has one free variable, it means that there are two pivot columns, resulting in a dimension of the column space of A equal to 3 - 2 = 1. This means that the column space of A is one-dimensional and can be spanned by a single vector.
The maximum possible dimension of the row space of a 5 x 3 matrix A is 3. If the homogeneous linear system Ax = 0 has one free variable, the dimension of the column space of A is 1.
In a matrix, the row space represents the set of all possible linear combinations of its row vectors. Since A is a 5 x 3 matrix, it can have at most 3 linearly independent row vectors. Adding more row vectors would introduce redundancy and not increase the dimension of the row space beyond 3.
The dimension of the column space of a matrix is equal to the number of linearly independent columns. In the case of the homogeneous system Ax = 0, the column space represents the set of all possible linear combinations of the columns that result in the zero vector. If there is one free variable in the system, it means that there are two pivot columns, resulting in a dimension of the column space of 1.
To find the basis for the solution space of the homogeneous system given by the equations X1 - 4x2 + 3x3 - X4 = 0 and 2x1 - 8x2 + 6x3 - 2x4 = 0, we can put the augmented matrix [A | 0] in row echelon form and identify the pivot and free variables.
By performing row operations, we can transform the augmented matrix into row echelon form:
1 -4 3 -1 | 0
0 0 0 0 | 0
From the row echelon form, we can see that the first and third columns correspond to the pivot variables (X1 and X3), while the second and fourth columns correspond to the free variables (X2 and X4).
To find the basis for the solution space, we set the free variables to 1 and the pivot variables to zero, one at a time. By doing so, we obtain the following vectors:
For X2 = 1 and X4 = 0: [4, 1, 0, 0]
For X2 = 0 and X4 = 1: [-3, 0, 1, 1]
These two vectors form a basis for the solution space of the homogeneous system. The dimension of the solution space is 2, as we have two linearly independent vectors.
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Let m be a real number and M = a {(5 2).(2 6 )}. If M is a linearly dependent set of M2,2 then m=1 Om=4 m=6 None of the mentioned
The correct answer is: None of the mentioned.
We can start by calculating the matrix product of (5 2) and (2 6):
(5*2).(2*6) = (5*2 + 2*6) (5*6 + 2*2)
= (14 34)
We then multiply this result by a scalar "a" to get the matrix M:
M = a (14 34)
= (14a 34a)
Since M is a set of matrices in [tex]M_{2*2}[/tex], we can write it as a linear combination of the standard basis matrices:
M = x1 * (1 0) + x2 * (0 1) + x3 * (0 0) + x4 * (0 0)
+ x5 * (0 0) + x6 * (0 0) + x7 * (0 0) + x8 * (0 0)
where xi are scalars and the standard basis matrices are:
(1 0) (0 0) (0 1) (0 0)
(0 0) (1 0) (0 0) (0 1)
Since M is linearly dependent, there exist scalars not all zero such that:
x1 * (1 0) + x2 * (0 1) + x3 * (0 0) + x4 * (0 0)
x5 * (0 0) + x6 * (0 0) + x7 * (0 0) + x8 * (0 0) = 0
This implies that x1 = x2 = 0 and x3 = x4 = x5 = x6 = x7 = x8 = 0, since the standard basis matrices are linearly independent.
Therefore, the matrix M can only be linearly dependent if M = 0, which implies that a = 0 or (14a 34a) = (0 0). The first case gives us M = 0, which is linearly dependent. However, the second case leads to a = 0, which means that M = 0 and is also linearly dependent.
In conclusion, we have shown that M is always linearly dependent, regardless of the value of m. The correct answer is: None of the mentioned.
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what is the solution tolog7(x – 4) = log7(4x 5) ?x = –3x = –2x = –1x = 0there is no solution.
The solution to the equation log7(x – 4) = log7(4x + 5) is x = -3.
To find the solution to the equation log7(x – 4) = log7(4x + 5), we can use the property of logarithms that states that if log base a of b equals log base a of c, then b must equal c.
In this case, we have log7(x – 4) = log7(4x + 5). By applying the property mentioned above, we can conclude that (x – 4) must equal (4x + 5).
Now, let's solve for x:
x – 4 = 4x + 5
Rearranging the equation:
x - 4x = 5 + 4
-3x = 9
Dividing both sides by -3:
x = 9 / -3
x = -3
Therefore, the solution to the equation log7(x – 4) = log7(4x + 5) is x = -3.
The options you provided (-2, -1, and 0) are not solutions to the equation.
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The following data are for Maureen Retail Outlet Stores. The account balances (in thousands) are for 2017. EB (Click the icon to view the data.) Requirements 1. Compute (a) the cost of goods purchased and (b) the cost of goods sold. 2. Prepare the income statement for 2017
The cost of goods purchased is the sum of the beginning inventory and the cost of goods available for sale. (b) The cost of goods sold is the cost of goods available for sale minus the ending inventory.
To compute the cost of goods purchased, we need to add the beginning inventory to the purchases. In this case, the beginning inventory is given as $60,000 and the purchases are $380,000. Therefore, the cost of goods purchased is $440,000.
To calculate the cost of goods sold, we subtract the ending inventory from the cost of goods available for sale. The cost of goods available for sale is the sum of the beginning inventory and the purchases, which is $440,000. The ending inventory is given as $80,000. Therefore, the cost of goods sold is $360,000 ($440,000 - $80,000).
To prepare the income statement, we need to consider other relevant information such as sales revenue, operating expenses, and other income or expenses. Without the complete data, it is not possible to provide a detailed income statement for 2017. The income statement typically includes the following sections: sales revenue, cost of goods sold, gross profit, operating expenses, operating income, and net income.
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Given the initial value problem y = {v+t’e'. IS152, YO) = 0. t With exact solution y(t)=t? (e' – e). 1) Use Taylor's method of order two with h=0.1 to approximate the solution, and compare it with the actual values of y. (4 Marks) 2) Use the answers generated in part (1) and linear interpolation to approximate y at the following I. y(1.04) II. y(1.55) III. y(1.97)
The approximation of the solution using Taylor's method of order two with h = 0.1 is y(1.1) ≈ 0.005. The values of y(1.04) ≈ 0.0006, y(1.55) ≈ 0.0395, and y(1.97) ≈ 0.0163.
To approximate the solution using Taylor's method of order 2 with h = 0.1 and compare with the exact values of y, we can follow the steps below:
Step 1:
The second derivative of y with respect to t is given as follows:
y'' = [(2/t) y + t'² e^t]'
y''= [2y/t - (2/t²) y + 2t'e^t + t'² e^t]'
y''= [(2/t) - (2/t²)]y + [2e^t + 2t'e^t + 2t'e^t + 2t t'e^t]
y''= [(2/t) - (2/t²)]y + [4t'e^t + 2t t'e^t]
y''= [(2/t²) y + (4/t) y] + [4t'e^t + 2t t'e^t]
y''= (2/t²)[ty' + 2y] + 2t'e^t[2 + t]
Step 2:
Using Taylor's method of order two with h = 0.1, we can approximate the solution of the problem as follows:
y(t + h) = y(t) + hy'(t) + (h²/2) y''(t)
y(t + h)= y(t) + h[(2/t)y + t'² e^t] + (h²/2)[(2/t²) y + (4/t) y] + (h²/2) [4t'e^t + 2t t'e^t]
y(t + h)= y(t) + h(2/t)y + h t'² e^t + (h²/t²) y + (2h/t) y + (h²/2) [4t'e^t + 2t t'e^t]
y(t + h)= y(t) + [2h/t + (h²/t²)]y + h t'² e^t + (h²/2) [4t'e^t + 2t t'e^t]where,
y(1) = 0, t = 1, h = 0.1
y(1.1) = y(1) + [2(0.1)/1 + (0.1²/1²)](0) + 0.1 (2/1)(0) + (0.1²/2) [4(0) + 2(1)(0)]
y(1.1) = 0.005
The approximation of the solution using Taylor's method of order two with h = 0.1 is y(1.1) ≈ 0.005.
To find y(1.04), y(1.55), and y(1.97), we will use the linear interpolation method.
Step 3:
The values of y(1.1) and y(1) are used to find the value of y(1.04) as follows:
y(1.04) = y(1) + [(1.04 - 1)/(1.1 - 1)](y(1.1) - y(1))
y(1.04)= 0 + [(1.04 - 1)/(1.1 - 1)](0.005 - 0)
y(1.04)≈ 0.0006
Therefore, y(1.04) ≈ 0.0006.
Step 4:
The values of y(1.1) and y(1.55) are used to find the value of y(1.97) as follows:
y(1.55) = y(1) + [(1.55 - 1)/(1.1 - 1)](y(1.1) - y(1))
y(1.55)= 0 + [(1.55 - 1)/(1.1 - 1)](0.005 - 0)
y(1.55)≈ 0.0395
Similarly, y(1.97) = y(1.55) + [(1.97 - 1.55)/(1.1 - 1.55)](y(1.1) - y(1.55))
y(1.97) = 0.0395 + [(1.97 - 1.55)/(1.1 - 1.55)](0.005 - 0.0395)
y(1.97)≈ 0.0163
Therefore, y(1.04) ≈ 0.0006, y(1.55) ≈ 0.0395, and y(1.97) ≈ 0.0163.
The question should be:
Given the initial value problem y' = (2/t)y+t’²e^t. 1≤t≤2, y(1)=0,
With exact solution y(t)=t² (e^t – e).
1) Use Taylor's method of order two with h=0.1 to approximate the solution, and compare it with the actual values of y.
2) Use the answers generated in part (1) and linear interpolation to approximate y at the following
I. y(1.04)
II. y(1.55)
III. y(1.97)
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Suppose the grade distribution in our Math 256 class resembles a rectangular density curve, with the x values ranging from 0-4 on a GPA scale) and the height being equal for each GPA value. 1 pts What is the probability a student had a GPA between 1 and 2?
The probability that a student had a GPA between 1 and 2 in the Math 256 class, assuming a rectangular density curve with equal height for each GPA value, is 1.
Since the grade distribution is a rectangular density curve with equal height for each GPA value, the probability of a student having a GPA between 1 and 2 can be calculated as the area under the curve between these two points.
The width of the rectangle representing each GPA value is 1 (from 1 to 2), and the height is the same for each GPA value. Therefore, the probability can be calculated as the width multiplied by the height of the rectangle.
Since the height is equal for each GPA value, it cancels out when calculating the probability.
Therefore, the probability of a student having a GPA between 1 and 2 is simply the width of the interval, which is 2 - 1 = 1.
Thus, the probability a student had a GPA between 1 and 2 is 1.
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We have 38 subjects (people) for an experiment. We play music with lyrics for each of the 38 subjects. During the music, we have the subjects play a memorization game where they study a list of 25 common five-letter words for 90 seconds. Then, the students will write down as many of the words they can remember. We also have the same 38 subjects listen to music without lyrics while they study a separate list of 25 common five-letter words for 90 seconds, and write down as many as they remember. This is an example of: ____________
We also have the same 38 subjects listen to music without lyrics while they study a separate list of 25 common five-letter words for 90 seconds and write down as many as they remember. This is an example of: a controlled experiment.
A controlled experiment is an investigation that is carried out under highly controlled conditions in which the independent variable is manipulated. It entails the use of both control and experimental groups in order to determine the impact of the independent variable on the dependent variable. In addition, the objective of a controlled experiment is to remove any sources of bias or confounding variables that may impact the results. Controlled experiments involve randomization and the use of a control group. Subjects are randomly allocated to a control group or an experimental group in the randomization process. The control group serves as the baseline against which the results of the experimental group are compared.
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The tides in a harbor follow a 12-hour cycle. A Captain Highliner wants to take his ship out to catch some fish but needs 5 meters of water to clear a sandbar at the entrance to the harbor. At low tide, the depth of water over the bar is 2 meters and at high tide, the depth of water is 9 meters. Assume that it is currently low tide. a) When is the first time that Captain Highliner can leave the harbor? (2) b) How long does Captain Highliner have before the water over the bar is too shallow to return? (2) c) How quickly is the water rising/falling at each of these two times?
a) Captain Highliner can leave the harbor 12 hours before high tide.
b) The time duration Captain Highliner has before the water becomes too shallow is 12 hours.
c) At the first critical time, the water level rises by 3 meters in 12 hours, so the rate of change is 0.25 meters per hour.
At the second critical time, the water level falls by 3 meters in 12 hours, so the rate of change is 0.25 meters per hour.
The tides in a harbor follow a 12-hour cycle. The first time Captain Highliner can leave the harbor is when the water level reaches a depth of 5 meters over the sandbar. Captain Highliner has a certain time window to return before the water over the bar becomes too shallow.
We need to calculate time duration and the rate at which the water is rising or falling at these two critical times.
a) To determine the first time Captain Highliner can leave the harbor, we need to find when the water level reaches 5 meters over the sandbar.
Currently, the water level is 2 meters at low tide, and it follows a 12-hour cycle. The difference between the low tide depth and the desired depth is 5 - 2 = 3 meters.
Since it takes 12 hours for the tide to go from low to high, the water level increases by 3 meters in 12 hours. Therefore, Captain Highliner can leave the harbor 12 hours before high tide.
b) To calculate the time duration Captain Highliner has before the water becomes too shallow to return, we need to find when the water level will be 5 meters over the sandbar again.
From the previous calculation, we know that it takes 12 hours for the tide to go from low to high. Therefore, the time duration Captain Highliner has before the water becomes too shallow is 12 hours.
c) To determine the rate at which the water is rising or falling at these two critical times, we can calculate the average rate of change of the water level. The rate of change is given by the difference in water level divided by the time taken.
At the first critical time, the water level rises by 3 meters in 12 hours, so the rate of change is 3 meters / 12 hours = 0.25 meters per hour.
At the second critical time, the water level falls by 3 meters in 12 hours, so the rate of change is 3 meters / 12 hours = 0.25 meters per hour.
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Let f(t) be a T-periodic signal and let g(t) be the signal given by:
g(t) = 1/a ∫ f(u) du.
Here we assume that 0 < a
(a) Show that g(t) is T-periodic.
(b) Determine the Fourier coefficients of g(t).
(c) What can you tell about g(t) for the case that a = T?
Given that f(t) is a T-periodic signal and g(t) is the signal given by:g(t) = 1/a ∫ f(u) du.We assume that 0 < aNow let's look into the questions.
(a) Show that g(t) is T-periodic.
We need to show that the signal g(t) is T-periodic. The integral of the function f(t) from u = 0 to u = T is equal to the integral of the function f(t) from u = T to u = 2T. Hence, the signal g(t) has a period T. Therefore, g(t) is T-periodic.
(b) Determine the Fourier coefficients of g(t).
We can calculate the Fourier coefficients of the signal g(t) using the formula:
cn = (1/T) ∫ g(t) e^(-j2πnt/T) dt = (1/T) ∫ (1/a ∫ f(u) du) e^(-j2πnt/T) dt
cn = (1/aT) ∫∫ f(u) e^(-j2πnt/T) du dt
cn = (1/aT) ∫ f(u) ∫ e^(-j2πnt/T) dt du
cn = (1/aT) ∫ f(u) [Tδ(n)] du
cn = (1/a)δ(n) ∫ f(u) du
Here, we have used the property that ∫ e^(-j2πnt/T) dt = Tδ(n).
Hence, the Fourier coefficient of the signal g(t) is given by cn = (1/a)δ(n) ∫ f(u) du.
(c) What can you tell about g(t) for the case that a = T?
If a = T, then the signal g(t) becomes:
g(t) = 1/T ∫ f(u) du
The signal g(t) is the average value of the signal f(t) over one period T. If f(t) is periodic with a period of T, then the signal g(t) is a constant function.
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The degree of precision of a quadrature formula whose error term is h4/120 f(5)(E) is: 3 4 5 2
The degree of precision of a quadrature formula whose error term is [tex]h^4/120 f^(5)(E)[/tex] is 4.
In the error term [tex]h^4/120 f^(5)(E)[/tex], the [tex]h^4[/tex] term indicates the order of accuracy, and [tex]f^(5)(E)[/tex] represents the fifth derivative of the function.
Since the error term involves [tex]h^4[/tex], it means that the quadrature formula can exactly integrate polynomials of degree 4 or lower. Therefore, the degree of precision of the quadrature formula is 4.
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In the expression, (2 + 4) x 3 – 5, you should multiply the 3 and the 5 first. t or f
Answer:
False.
Step-by-step explanation:
According to the order of operations (also known as PEMDAS), you should perform the multiplication and division operations before addition and subtraction. Therefore, in the expression (2 + 4) x 3 - 5, you should first perform the multiplication operation between 3 and (2 + 4), and then subtract 5 from the result.
So, following the order of operations, we get:
[tex](2 + 4) \times 3 - 5 = 6 \times 3 - 5 = 18 - 5 = 13[/tex]
Therefore, the value of the expression is 13.
Find each of the following: 5+8 a. L 2-²1/15-² (S-1)(s+2)) (5) (5) b. £ 2s-3 s²+2s+ 5/
The value of 5+8 can be calculated as 13.
To evaluate the expression 5+8, we simply add the two numbers together. Adding 5 and 8 gives us the result of 13. The calculation can be written as:
5 + 8 = 13
There are no additional factors or variables in this expression, so the answer remains constant. Therefore, the value of 5+8 is 13.
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a set of five numbers has a median of 15, a range of 10, a mode of 12, and a mean of 16. what is the sum of the two greatest numbers in the set
The sum of the two greatest numbers in the set is 80 - (27 + smallest number in the set).
Given that the set of five numbers has a median of 15, a range of 10, a mode of 12, and a mean of 16.The median of the set is 15. So, the third number in the set is 15.
We know that the range of a set of numbers is the difference between the largest and smallest numbers in the set.
Here, the range of the set is 10, therefore the largest number in the set can be obtained as follows:
Largest number in the set = Median + Range/2 = 15 + 10/2= 20
We also know that the mode of the set is 12, so one of the five numbers in the set is 12.
Since the mean of the set is 16, we can find the sum of all 5 numbers by the following method:
Mean of the set = Sum of all 5 numbers/5
=> Sum of all 5 numbers = Mean of the set × 5
=> Sum of all 5 numbers = 16 × 5= 80
Now, we can find the sum of the two greatest numbers in the set by subtracting the smallest 3 numbers from the sum of all 5 numbers. We know that one of the five numbers in the set is 12 and the third number in the set is 15.
Therefore, the sum of the two greatest numbers in the set is obtained as follows:
Sum of the two greatest numbers in the set = Sum of all 5 numbers - Sum of smallest 3 numbers = 80 - (12 + 15 + smallest number in the set) = 80 - (27 + smallest number in the set).
Therefore, the sum of the two greatest numbers in the set is 80 - (27 + smallest number in the set).
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In a survey of 2453 adults in a recent year, 1468 say they have made a New Year's resolution Construct 90% and 95% confidence intervals for the population proportion Interpret the results and compare the width of the confidence interval CE of the confidence The 90% confidence intervall for the population proportion pin (D) (Round to the decimal places as needed) The 95% confidence interval for the population proportion pis (D (Round to the decimal places a meded) With the given confidence, it can be said that the of ads who say they live made a New Year Compare the width of the contidence intervals. Choose the corect answer below OA. The confidence intervallo wider OB. The 95% confidence intervw is widest OC. The contidence intervals are the same width D. The confidence intervals Carnot be compared.
(a) The confidence interval of 90% is 0.598 ± 0.014 ≈ (0.584, 0.614).
(b) The confidence interval of 95% is 0.598 ± 0.019 ≈ (0.582, 0.617)
(c) The proportion of adults who say they made a New Year resolution is between 0.584 and 0.614 with 90% confidence, and between 0.582 and 0.617 with 95% confidence.
(d) The 95% confidence interval is wider than the 90% confidence interval. So the answer is option B, the 95% confidence interval is wider.
To construct confidence intervals for population proportions, we can use the formula:
Confidence Interval = Sample Proportion ± Margin of Error
where the margin of error is determined by the desired confidence level and sample size.
Given:
Sample size (n) = 2453
Number of respondents who made a New Year's resolution (x) = 1468
1) The 90% confidence interval:
First, calculate the sample proportion ( p):
p = x / n = 1468 / 2453 ≈ 0.598
Margin of Error = Z * √(( p * (1 - p)) / n)
Using a Z-value for a 90% confidence level, which is approximately 1.645:
Margin of Error = 1.645 * √((0.598 * (1 - 0.598)) / 2453)) ≈ 0.016
Therefore the confidence interval of 90% is 0.598 ± 0.014 ≈ (0.584, 0.614)
2) The 95% confidence interval:
Using a Z-value for a 95% confidence level, which is approximately 1.96:
Margin of Error = 1.96 * √((0.598 * (1 - 0.598)) / 2453) ≈ 0.019
0.598 ± 0.019 ≈ (0.582, 0.617)
Therefore the confidence interval of 95% is 0.598 ± 0.019 ≈ (0.582, 0.617)
3) With the given confidence, it can be said that the proportion of adults who say they made a New Year resolution is between 0.584 and 0.612 with 90% confidence, and between 0.582 and 0.614 with 95% confidence.
4) The correct answer is (B) The 95% confidence interval is wider. The width of a confidence interval is determined by the margin of error, which is influenced by the desired confidence level. A higher confidence level requires a larger margin of error, resulting in a wider interval.
Therefore, the 95% confidence interval is wider than the 90% confidence interval.
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Complete Question:
In a survey of 2453 adults in a recent year, 1468 say they have made a New Year's resolution.
Construct 90% and 95% confidence intervals for the population proportion Interpret the results and compare the width of the confidence interval.
1) The 90% confidence interval for the population proportion p is _ (Round to the decimal places as needed)
2) The 95% confidence interval for the population proportion p is__ (Round to the decimal places a needed)
3) With the given confidence, it can be said that the of _ adults who say they made a New Year resolution is a __.
4) Compare the width of the confidence intervals.
Choose the correct answer below
A) The 90% confidence interval is wider
B) The 95% confidence interval is wider
C) The confidence intervals are the same width
D) The confidence intervals cannot be compared
Management suspects that some of the machines are in violation of accepted standards of the product, 20 machines are under suspicion but all cannot be inspectedl. Suppose that 3 of the machines are in violation. (i) What is the probability that inspection of machines finds no violation? (ii) What is the probability that plan above will find 2 violations?
The probability that inspection of machines finds no violation is 17/20 and the probability that plan above will find 2 violations is 190.
Management suspects that some of the machines are in violation of accepted standards of the product, 20 machines are under suspicion but all cannot be inspected. Suppose that 3 of the machines are in violation.The probability that inspection of machines finds no violation:
Let the probability of finding no violation be P(A)P(A) = Probability of finding no violation= 1- Probability of finding violationP(B) = Probability of finding a violation= 3/20P(A) = 1 - 3/20P(A) = 17/20The probability that the plan above will find 2 violations: Let the probability of finding two violations be P(C)We need to select two machines from 3 defective machines and 17 non-defective machines.P(C) = 20C2/3C2 × 17C0P(C) = 20 × 19/2 × 1 × 1P(C) = 190Therefore, the probability that inspection of machines finds no violation is 17/20 and the probability that plan above will find 2 violations is 190.
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Browning Investments manages a large portfolio of stocks and bonds. It has a total of $4,400,000 to invest. The investments are divided into three categories: International stocks return 15% on their investment, standard stocks return 12%, and bonds return 8%. The bonds are considered safer investments and the international stocks are considered quite risky. Therefore, the company desires to have three times as much invested in bonds as it does in international stocks. If the company returned $252,000 last year, how much does it have invested in each investment type?
Given that the total amount of money that Browning Investments has to invest is $4,400,000 and is divided into three categories: International stocks return 15% on their investment, standard stocks return 12%, and bonds return 8%.
Let's assume that the company has invested x dollars in international stocks.
Therefore, the investment in bonds is 3x dollars as it desires to have three times as much invested in bonds as it does in international stocks.
Since the total investment is $4,400,000, the amount invested in standard stocks is:$4,400,000 - x - 3x = $4,400,000 - 4xNow, the company earned $252,000 last year.
We know that the amount of return from International stocks is 15%, the return from standard stocks is 12%, and the return from bonds is 8%.Therefore, the return earned from International stocks is 0.15x, the return earned from standard stocks is 0.12($4,400,000 - 4x), and the return earned from bonds is 0.08(3x).The equation for total returns is:0.15x + 0.12($4,400,000 - 4x) + 0.08(3x) = $252,000Now, solve for x to find the amount invested in international stocks.0.15x + 0.12($4,400,000 - 4x) + 0.08(3x) = $252,0000.15x + $528,000 - 0.48x + 0.24x = $252,000-0.09x + $528,000 = $252,000-0.09x = -$276,000x = $3,066,667Therefore, the amount invested in international stocks is $3,066,667.The amount invested in bonds is 3x = $3,066,667 × 3 = $9,200,000And the amount invested in standard stocks is:$4,400,000 - x - 3x = $4,400,000 - $3,066,667 - $9,200,000 = -$7,866,667
Thus, it's impossible for the company to have invested a negative amount of money in standard stocks. Therefore, the answer is that the company did not invest anything in standard stocks.
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Browning Investments has approximately $400,000 invested in international stocks, $1,200,000 invested in bonds, and $2,800,000 invested in standard stocks.
Let x be the amount invested in international stocks.
Then the amount invested in bonds is 3x.
The remaining investment is the amount invested in standard stocks.
Thus, the sum of all investments is
[tex]x + 3x + Sx = $4,400,000[/tex],
where Sx is the amount invested in standard stocks.
Simplifying this equation gives
[tex]4x + Sx = $4,400,000[/tex].
Now we need to use the fact that the company returned $252,000 last year.
This means that their total return was equal to the sum of the returns on each investment type, which we can express as follows:
[tex]0.15x + 0.12Sx + 0.08(3x) = $252,000[/tex]
Simplifying this equation gives [tex]0.39x + 0.12Sx = $252,000[/tex]
Now we have two equations with two unknowns:
[tex]4x + Sx = $4,400,0000[/tex]
[tex]39x + 0.12Sx = $252,000[/tex]
Solving this system of equations by substitution or elimination, we get:
x ≈ $400,000 (amount invested in international stocks)
3x ≈ $1,200,000 (amount invested in bonds)
Sx ≈ $2,800,000 (amount invested in standard stocks)
Therefore, Browning Investments has approximately $400,000 invested in international stocks, $1,200,000 invested in bonds, and $2,800,000 invested in standard stocks.
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Find the relative maximum and minimum values of f(x,y) = 6x3 - y2 + 6xy + 2.
Answer:
(0,0) is a saddle point
(-1,-3) is a local maximum
Step-by-step explanation:
Find critical points
[tex]f(x,y)=6x^3-y^2+6xy+2\\\\\frac{\partial f}{\partial x}=18x^2+6y\rightarrow18x^2+6y=0\\\\\frac{\partial f}{\partial y}=-2y+6x\rightarrow6x-2y=0[/tex]
[tex]6x-2y=0\\3x=y[/tex]
[tex]18x^2+6y=0\\18x^2+6(3x)=0\\18x^2+18x=0\\x^2+x=0\\x(x+1)=0\\x=0,-1[/tex]
Therefore, the critical points are [tex](0,0)[/tex] and [tex](-1,-3)[/tex].
Determine value of Hessian Matrix at critical points
[tex]H=\bigr(\frac{\partial^2 f}{\partial x^2}\bigr)\bigr(\frac{\partial^2 f}{\partial y^2}\bigr)-\bigr(\frac{\partial^2 f}{\partial x \partial y}\bigr)^2\\\\H=(36x)(-2)-6^2\\\\H=-72x-36[/tex]
For (0,0):
[tex]H=-72(0)-36=-36 < 0[/tex], so (0,0) is a saddle point
For (-1,-3):
[tex]H=-72(-1)-36=72-36=36 > 0[/tex], so (-1,-3) is either a local maximum or minimum. Since [tex]\frac{\partial^2 f}{\partial x^2}=36x=36(-1)=-36 < 0[/tex], then (-1,-3) is a local maximum.
Calculate the trade discount (in $) and trade discount rate (as a %). Round your answer to the nearest tenth of a percent List Price Trade Discount Trade Discount Rate Net Price $2.89 $1 % $2.16
The trade discount is $0.73 and the trade discount rate is approximately 25.3%. These values represent the amount of discount given and the percentage by which the list price is reduced to arrive at the net price.
In this case, the list price is given as $2.89 and the net price is $2.16. To calculate the trade discount, we subtract the net price from the list price: Trade Discount = List Price - Net Price = $2.89 - $2.16 = $0.73.
To find the trade discount rate as a percentage, we divide the trade discount by the list price and multiply by 100: Trade Discount Rate = (Trade Discount / List Price) * 100. Substituting the values, we get Trade Discount Rate = ($0.73 / $2.89) * 100 ≈ 25.3%.
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In cell B7, find the score from the appropriate probability table to construct a 90% confidence interval. (hint use the T.INV.2T function). In cell B9, find the upper limit for the mean at the 90% confidence level, In cell B10, find the lower limit for the mean at the 90% confidence level. Based on the number in cell B9 and B10, we can be 90% confident of what? Just needing help with these formulas for excel
Shipment Time to Deliver (Days)
1 7.0
2 12.0
3 4.0
4 2.0
5 6.0
6 4.0
7 2.0
8 4.0
9 4.0
10 5.0
11 11.0
12 9.0
13 7.0
14 2.0
15 2.0
16 4.0
17 9.0
18 5.0
19 9.0
20 3.0
21 6.0
22 2.0
23 6.0
24 5.0
25 6.0
26 4.0
27 5.0
28 3.0
29 4.0
30 6.0
31 9.0
32 2.0
33 5.0
34 6.0
35 7.0
36 2.0
37 6.0
38 9.0
39 5.0
40 10.0
41 5.0
42 6.0
43 10.0
44 3.0
45 12.0
46 9.0
47 6.0
48 4.0
49 3.0
50 7.0
51 2.0
52 7.0
53 3.0
54 2.0
55 7.0
56 3.0
57 5.0
58 7.0
59 4.0
60 6.0
61 4.0
62 4.0
63 7.0
64 8.0
65 4.0
66 7.0
67 9.0
68 6.0
69 7.0
70 11.0
71 9.0
72 4.0
73 8.0
74 10.0
75 6.0
76 7.0
77 4.0
78 5.0
79 8.0
80 8.0
81 5.0
82 9.0
83 7.0
84 6.0
85 14.0
86 9.0
87 3.0
88 4.0
This formula calculates the lower limit for the mean at the 90% confidence level. It subtracts the product of the score (B7) and the standard error of the mean from the sample mean.
To find the score from the appropriate probability table to construct a 90% confidence interval, you can use the T.INV.2T function in Excel.
Assuming you want to calculate the confidence interval for the shipment time data provided, follow these steps:
1. In cell B7, enter the formula:
```
=T.INV.2T(1-0.1, COUNT(A2:A89)-1)
```
This formula calculates the score corresponding to a 90% confidence level using the T.INV.2T function. The first argument is `1-0.1` because we subtract the confidence level from 1 to get the significance level (0.1). The second argument is `COUNT(A2:A89)-1` to calculate the degrees of freedom, which is the count of data points minus 1.
2. In cell B9, enter the formula:
```
=AVERAGE(A2:A89) + (B7 * (STDEV(A2:A89)/SQRT(COUNT(A2:A89))))
```
This formula calculates the upper limit for the mean at the 90% confidence level. It adds the product of the score (B7) and the standard error of the mean to the sample mean. The standard error is calculated by dividing the standard deviation by the square root of the sample size.
3. In cell B10, enter the formula:
```
=AVERAGE(A2:A89) - (B7 * (STDEV(A2:A89)/SQRT(COUNT(A2:A89))))
```
This formula calculates the lower limit for the mean at the 90% confidence level. It subtracts the product of the score (B7) and the standard error of the mean from the sample mean.
Based on the values in cell B9 and B10, you can be 90% confident that the true mean shipment time falls within the calculated confidence interval.
Note: Make sure to adjust the cell references in the formulas based on the actual location of your data in the spreadsheet.
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Identify the term that completes the equation. AC^2 = (DC)(?)
BC
AD
BD
AB
Given AC² = (DC) We have to the term that completes the given equation is CD.
In order to complete the given equation, we must use the formula for the distance between two points in a coordinate plane.
The formula is: d = √(x₂ - x₁)² + (y₂ - y₁)²
Where x₁ and y₁ represent the coordinates of the first point and x₂ and y₂ represent the coordinates of the second point.
So, we can write the distance formula for the given line segment AD as AD = √[(D-C)² + A²]
To complete the equation AC² = (DC)(?),
we must use the Pythagorean theorem to find the value of AC.
According to the Pythagorean theorem, in a right triangle, the sum of the squares of the lengths of the legs is equal to the square of the length of the hypotenuse.
So, we can write:
AC² = AD² + CD²
Substituting the value of AD, we get:
AC² = [(D-C)² + A²] + CD²AC²
= (D-C)² + A² + CD²
So, the term that completes the equation is CD.
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The probability of event A is Pr(A)=1/3 The probability of the union of event A and event B, namely AUB, is Pr( A U B)=5/6 Suppose that event A and event B are independent. Pr(B) = [....]
Given: The probability of event A is Pr(A) = 1/3. The probability of the union of event A and event B, namely AUB, is Pr(AUB) = 5/6. Suppose that event A and event B are independent. The probability of event B is Pr(B) = 3/4.
To find Pr(B).
Explanation: We know that, Pr(A U B) = Pr(A) + Pr(B) - Pr(A ∩ B).
As events A and B are independent,
Pr(A ∩ B) = Pr(A) × Pr(B)
Pr(A U B) = Pr(A) + Pr(B) - Pr(A) × Pr(B)
Apply Pr(A) = 1/3 and Pr(AUB) = 5/6 in the above formula as shown below.
5/6 = 1/3 + Pr(B) - (1/3) × Pr(B)
5/6 - 1/3 = Pr(B) - (1/3) × Pr(B)
Pr(B) [1 - (1/3)] = (5/6) - (1/3) × (5/6)
Pr(B) [2/3] = (5/6) - (5/18)
Pr(B) = (5/6) × (9/10)
Pr(B) = 3/4
Hence, the probability of event B is Pr(B) = 3/4.
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Let 3 = 3+6i and w = a + bi where a, b e R. Without using a calculator, ka) determine and hence, b in terms of a such that is real; (4 marks) w (b) determine arg{2 - 9}.
(a) So, b = 0.
(b) arg(2 - 9i) ≈ arctan((-4.5)/1).
(a) To determine the value of b in terms of a such that w is real, we need to consider the imaginary part of w. Let's express w as w = a + bi.
Since w is real, the imaginary part of w, which is bi, must equal zero. Therefore, we have:
bi = 0
This implies that b = 0, since any number multiplied by zero is zero.
So, b = 0.
(b) To determine arg(2 - 9), we need to find the argument or angle of the complex number 2 - 9i.
First, let's express 2 - 9i in the form a + bi. In this case, a = 2 and b = -9.
The argument of a complex number can be found using the arctan function:
arg(a + bi) = arctan(b/a)
In our case, arg(2 - 9i) = arctan((-9)/2).
Without a calculator, we can approximate this angle using trigonometric identities. We can rewrite the fraction (-9)/2 as (-4.5)/1, which gives us a right triangle with opposite side -4.5 and adjacent side 1.
Using the trigonometric identity tan(theta) = opposite/adjacent, we can find the angle theta:
tan(theta) = (-4.5)/1
theta = arctan((-4.5)/1)
Therefore, arg(2 - 9i) ≈ arctan((-4.5)/1).
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for the following system, if you isolated x in the first equation to use the substitution method, what expression would you substitute into the second equation? −x 2y = −6 3x y = 8
If you isolated x in the first equation to use the substitution method, you would substitute the expression -6/(2y) into the second equation.
To use the substitution method, you first need to isolate x in one of the equations. In this case, we can isolate x in the first equation by adding 2y to both sides and then dividing both sides by -1. This gives us the expression x = (-6)/(2y).
We can then substitute this expression into the second equation. This gives us the equation 3 * ((-6)/(2y)) * y = 8.
Simplifying this equation, we get the equation -9y = 8. Dividing both sides of this equation by -9, we get the equation y = -8/9.
Therefore, the expression that you would substitute into the second equation is -6/(2y).
Here is a diagram of the solution:
[tex](-6)/(2y)[/tex]
3x + y = 8
x = [tex](-6)/(2y)[/tex]
-9y = 8
y = [tex]\frac{-8}{9}[/tex]
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(25 points) Find two linearly independent solutions of 2x²y" - xy' + (2x + 1)y=0, x > 0 of the form Y₁ = x¹(1+ a₁x + a₂x² + 3x³ +...) Y₂ = x¹(1+b₁x + b₂x² +b3x³ + ...) where r₁ > 2. Enter T1 = a1 = a₂ = a3 12 = b₁ = b₂ = b3 = =
The answer is T₁ = a₁ = a₂ = a₃ = -1/4, and T₂ = b₁ = b₂ = b₃ = 5/4.
The given differential equation is 2x²y" - xy' + (2x + 1)y=0. Find two linearly independent solutions of the given differential equation. The general solution of the differential equation is Y = c₁y₁(x) + c₂y₂(x), where y₁(x) and y₂(x) are the linearly independent solutions, and c₁ and c₂ are arbitrary constants.To find the two linearly independent solutions of the given differential equation of the form Y₁ = x¹(1+ a₁x + a₂x² + 3x³ +...) Y₂ = x¹(1+b₁x + b₂x² +b3x³ + ...), where r₁ > 2, we will use the method of Frobenius. On substituting y = x^r(∑_(n=0)^∞▒〖a_nx^n) 〗in the differential equation and equating the coefficients of the same powers of x, we get the recurrence relation given by a_(n+2) =(n-r+1)/(n+2)(2n-2r+3)a_(n+1) +[(n-r+1)(n-r+2)/(n+2)(n+1)]a_n, with a₀ and a₁ being arbitrary constants.The two linearly independent solutions for r₁ = 3/2 are given by Y₁ = x^(3/2)(1 - x/4 + 3x²/32 + ...), and Y₂ = x^(3/2)(1 + 5x/4 + 35x²/32 + ...).
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suppose we select one 2015 spotify user at random and record his or her age and wheather his or her favorite genre is pop. draw a tree diagrm to model this random process
Certainly! Here is a tree diagram that models the random process of selecting one 2015 Spotify user and recording their age and favorite genre (pop or non-pop).
User Selected
/ \
/ \
/ \
/ \
Age Recorded Genre Recorded
/ \ / \
/ \ / \
Pop Non-Pop Pop Non-Pop
In this tree diagram, the first branch represents the selection of a user, and the second branch represents the recording of their age. The third branch represents the recording of their favorite genre, with one branch for the genre being pop and another branch for the genre being non-pop.
This tree diagram illustrates the different possibilities and outcomes that can occur when selecting a 2015 Spotify user and recording their age and favorite genre.
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Justin writes the letters ILLINOIS on cars and then places the cards and a hat what is the probability of picking a N? Probability unit test part one
[tex]A[/tex] - picking the N
[tex]|\Omega|=8\\|A|=1\\\\P(A)=\dfrac{1}{8}=12.5\%[/tex]
What is probability of events?
Probability of an event is the measure of the likelihood that the event will occur. It is a number between 0 and 1, where 0 means the event will not occur and 1 means the event will occur.
[tex]\huge{\mathfrak{\colorbox{black}{\textcolor{lime}{I\:hope\:this\:helps\:!\:\:}}}}[/tex]
♥️ [tex]\large{\textcolor{red}{\underline{\mathcal{SUMIT\:\:ROY\:\:(:\:\:}}}}[/tex]
Probability is a measure of the likelihood or chance that a particular event will occur. It is a numerical value between 0 and 1, where 0 represents an impossible event and 1 represents a certain or guaranteed event.
In probability theory, the probability of event A is denoted as P(A) and is calculated by dividing the number of favorable outcomes for event A by the total number of possible outcomes in the sample space.
The probability formula is:
P(A) = Number of favorable outcomes / Total number of possible outcomes
Probability can also be expressed as a fraction, decimal, or percentage.
For example, if you have a standard six-sided die and you want to calculate the probability of rolling a 4, there is only one favorable outcome (rolling a 4) out of six possible outcomes (numbers 1 to 6). Therefore, the probability of hitting a 4 is 1/6 or approximately 0.1667 (16.67%).
Probability allows us to quantify uncertainty and make predictions based on the likelihood of different outcomes. It is a fundamental concept in various fields such as mathematics, statistics, physics, economics, and more.