R = {(10, 20), (20, 30), (30, 10)} is one non-empty relation on set A that satisfies all three conditions.
One non-empty relation on set A that satisfies all three conditions (not reflexive, not transitive, and antisymmetric) is:
R = {(10, 20), (20, 30), (30, 10)}
Explanation:
1. Not Reflexive: A relation is reflexive if every element of the set is related to itself. In this case, the relation R does not include any pairs where an element is related to itself, such as (10, 10), (20, 20), or (30, 30). Therefore, it is not reflexive.
2. Not Transitive: A relation is transitive if whenever (a, b) and (b, c) are in the relation, then (a, c) must also be in the relation. In this case, the relation R includes (10, 20) and (20, 30), but it does not include (10, 30). Therefore, it is not transitive.
3. Antisymmetric: A relation is antisymmetric if for any distinct elements (a, b) and (b, a) in the relation, it implies that a = b. In this case, the relation R includes (10, 20) and (20, 10), but it does not satisfy a = b since 10 ≠ 20. Therefore, it is antisymmetric.
By selecting this specific relation R, we meet all three conditions simultaneously: not reflexive, not transitive, and antisymmetric.
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A chi-square test for goodness of fit is used with a sample of n
= 30 subjects to determine preferences among 3 different kinds of
exercise. The df value is 2.
True or False
The degrees of freedom are equal to the number of categories minus 1. As a result, df = 3-1 = 2. Hence, the given statement is true, and the df value is 2.
The statement "A chi-square test for goodness of fit is used with a sample of n = 30 subjects to determine preferences among 3 different kinds of exercise. The df value is 2." is a true statement.
What is chi-square test?
The chi-square goodness of fit test is a statistical hypothesis test that is used to evaluate whether a set of observed data follows a specific probability distribution or not. A chi-square test for goodness of fit compares an observed frequency distribution with an expected frequency distribution.
What is the meaning of df value in the chi-square test?
df (degree of freedom) represents the number of observations in the data that can vary without changing the overall outcome or conclusion of the test. It is determined by subtracting one from the number of categories being analyzed.
Let us apply the given values to the chi-square test: In the chi-square goodness of fit test, the expected frequency of each category is the same. Therefore, there will be only one expected frequency value for each category. We have three categories here.
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A chi-square test for goodness of fit is used with a sample of n= 30 subjects to determine preferences among 3 different kinds of exercise and df value is 2. The given statement is True.
It is a statistical hypothesis test that determines if there is a significant difference between the observed and expected frequencies in one or more categories of a contingency table.
The chi-square test of goodness of fit is used to determine how well the sample data fits a distribution or a specific theoretical probability.
The df value specifies the degrees of freedom that is calculated by subtracting one from the number of classes in the data.
To summarize, a chi-square test for goodness of fit is used with a sample of n= 30 subjects to determine preferences among 3 different kinds of exercise.
The df value is 2 is a true statement.
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group of people were asked if they had run a red light in the last year. 281 responded "yes", and 280 responded "no". Find the probability that if a person is chosen at random, they have run a red light in the last year. Give your answer as a fraction or decimal accurate to at least 3 decimal places.
The probability that if a person is chosen at random, they have run a red light in the last year is 281/561, which is approximately 0.500.
To calculate this probability, we divide the number of people who responded "yes" (281) by the total number of respondents (281 + 280 = 561). This gives us 281/561.
This means that out of the total respondents, about 50% of them have admitted to running a red light in the last year.
It's important to note that this calculation assumes that the respondents were chosen randomly and that their responses are accurate. The given probability represents the likelihood based on the responses provided by the group of people surveyed.
Overall, the probability of a person chosen at random having run a red light in the last year is approximately 0.500 in decimal or 281/561(Fraction).
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The curves r1(t) = 2t, t2, t3 and r2(t) = sin t, sin 4t, 3t intersect at the origin. Find their angle of intersection, θ, correct to the nearest degree.
The angle of intersection, θ, between the curves r1(t) = 2t, t^2, t^3 and r2(t) = sin(t), sin(4t), 3t at the origin is approximately 90 degrees.
The tangent vector of r1(t) at the origin is given by:
r1'(t) = (2, 0, 0)
The tangent vector of r2(t) at the origin is given by:
r2'(t) = (cos(t), 4cos(4t), 3)
Evaluating these tangent vectors at t = 0, we have:
r1'(0) = (2, 0, 0)
r2'(0) = (1, 4, 3)
The dot product of these vectors is given by:
r1'(0) · r2'(0) = (2 * 1) + (0 * 4) + (0 * 3) = 2
The angle between two vectors is given by the formula:
cos(θ) = (r1'(0) · r2'(0)) / (|r1'(0)| * |r2'(0)|)
Substituting the values, we have:
cos(θ) = 2 / (|r1'(0)| * |r2'(0)|)
To find the magnitude of the tangent vectors, we calculate:
|r1'(0)| = sqrt(2^2 + 0^2 + 0^2) = sqrt(4) = 2
|r2'(0)| = sqrt(1^2 + 4^2 + 3^2) = sqrt(26)
Substituting these values, we have:
cos(θ) = 2 / (2 * sqrt(26))
Simplifying further, we find:
cos(θ) = 1 / sqrt(26)
Taking the inverse cosine, we find the angle θ:
θ = acos(1 / sqrt(26))
Evaluating this expression, we find:
θ ≈ 90 degrees
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You are a male who has a high school diploma. You plan to attend college and earn a bachelor's degree. When you graduate from college, you get a job paying $40,780. 00/yr. How much is the difference in your yearly median income from obtaining a bachelor's degree? How does your pay once you graduate compare on a monthly basis to the median income degree level you obtained?
The median income for a person with a high school diploma is $35,256 per year, whereas the median income for a person with a bachelor's degree is $59,124 per year.
That implies that obtaining a bachelor's degree boosts your yearly median income by $23,868. By dividing that number by 12 months, you can determine how much extra money you can expect to make on a monthly basis after obtaining a bachelor's degree.
$23,868 ÷ 12 months = $1,989
Thus, you can expect to earn an additional $1,989 per month after obtaining a bachelor's degree, based on the median income data.
If your starting salary upon graduation is $40,780, which is less than the median income for someone with a bachelor's degree, it may be difficult to pay back student loans and cover other living expenses.
However, the potential for future raises and higher earning potential with a bachelor's degree may be worthwhile for some people, depending on their career goals and other factors.
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Atempt 5 of Unlimited View question in a popup 32 Section Exercise Work Hours for College Faculty The average full-time faculty member in a post-secondary degree granting institution works an average of 53 hours per week. Round intermediate calculations and final answers to two decimal places as needed. Part 1 of 2 E (a) If we assume the standard deviation is 2.7 hours, then no more than 25% of faculty members work more than 58.4 hours a week Part: 1/2 oli Part 2 of 2 (b) If we assume a bell-shaped distribution of faculty members work more than 58.4 hours a week X
Assuming a standard deviation of 2.7 hours, the question asks us to determine the percentage of faculty members who work more than 58.4 hours per week. In part (a), the answer is that no more than 25% of faculty members work more than 58.4 hours. In part (b), we consider a bell-shaped distribution and explore the concept of a Z-score to understand the percentage of faculty members working more than 58.4 hours.
(a) To determine the percentage of faculty members working more than 58.4 hours, we need to calculate the Z-score for 58.4 using the formula Z = (X - μ) / σ, where X is the value (58.4), μ is the mean (53), and σ is the standard deviation (2.7). With the Z-score, we can use a standard normal distribution table or a calculator to find the corresponding percentage. If the calculated percentage is less than or equal to 25%, then no more than 25% of faculty members work more than 58.4 hours. (b) Assuming a bell-shaped distribution, we can use the Z-score concept to determine the percentage of faculty members working more than 58.4 hours. The Z-score measures the number of standard deviations a value is from the mean. By calculating the Z-score for 58.4, we can use the standard normal distribution table or a calculator to find the percentage of faculty members with a Z-score greater than the one corresponding to 58.4. This percentage represents the proportion of faculty members working more than 58.4 hours in a bell-shaped distribution. In summary, assuming a standard deviation of 2.7 hours, no more than 25% of faculty members work more than 58.4 hours per week. Considering a bell-shaped distribution, we can further determine the percentage of faculty members working more than 58.4 hours by calculating the Z-score and referring to the standard normal distribution table or using a calculator.
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(a) z = -1.18 for a left tail test for a mean Round your answer to three decimal places. p-value = i eTextbook and Media Hint (b) z = 4.17 for a right tail test for a proportion Round your answer to three decimal places. p-value = i e Textbook and Media Hint (c) z=-1.53 for a two-tailed test for a difference in means Round your answer to three decimal places. p-value = i
1) he p-an incentive for this left tail test is roughly 0.119.2) the p-an incentive for this right tail test is roughly 0.(3)the two-tailed test's p-value is approximately 0.126.
(a) For a left tail test for a mean with z = - 1.18, we can find the p-esteem by looking into the relating region under the standard ordinary bend.
Using statistical software or a standard normal distribution table, we can determine that the area to the left of z = -1.18 is approximately 0.119.
Hence, the p-an incentive for this left tail test is roughly 0.119.
(b) For a right tail test for an extent with z = 4.17, we can find the p-esteem by tracking down the region to one side of z = 4.17 under the standard ordinary bend.
Using statistical software or a standard normal distribution table, we discover that the area to the right of z = 4.17 is very close to zero.
Hence, the p-an incentive for this right tail test is roughly 0.
(c) For a two-followed test for a distinction in implies with z = - 1.53, we really want to track down the area in the two tails of the standard typical bend.
Utilizing a standard typical dissemination table or a measurable programming, we track down that the region to one side of z = - 1.53 is roughly 0.063. The area to the right of z = 1.53 is also approximately 0.063, as it is a symmetric distribution.
To find the p-an incentive for the two-followed test, we aggregate the areas of the two tails: The p-value is 0.126, or 2 x 0.063.
As a result, the two-tailed test's p-value is approximately 0.126.
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6. A sphere-shaped globe is packaged in the regular hexagonal prism-shaped box shown. The area of the base is 260 square inches. Find the volume of the box.
7. The globe has a diameter of 16 inches. What volume of packing material is needed to fill the space in the box not taken up by the globe? Round your answer to the nearest cubic inch
The Volume of packing material needed to fill the space in the box not taken up by the globe is 21,256.33 cubic inches.
6. A sphere-shaped globe is packaged in the regular hexagonal prism-shaped box shown. The area of the base is 260 square inches.
Find the volume of the box.The base of the regular hexagonal prism is a hexagon that is divided into 6 equal equilateral triangles with each triangle having a height of x and the base as 18.
The area of each equilateral triangle is equal to area of regular hexagon divided by 6.Area of the base=260 sq inArea of each equilateral triangle=(1/6) * 260= 43.33 sq in
Let's use Pythagorean Theorem to find the height of the equilateral triangle.x² = 18² - (18/2)²x² = 18² - 9²x² = 225x = 15 inTherefore,
the volume of the box is given byV = BhB = area of base = 260 cu inh = height of box = 6x = 6(15) = 90 inVolume of the box = V = Bh = 260(90) = 23,400 cubic inches
7. The globe has a diameter of 16 inches. What volume of packing material is needed to fill the space in the box not taken up by the globe? Round your answer to the nearest cubic inch r be the radius of the sphere-shaped globe with diameter 16, then r = 8 inches. We have to find the volume of the space in the box not taken up by the globe which is given by the difference in volume of the box and the volume of the sphere-shaped globe.
The volume of the sphere-shaped globe is given by 4/3πr³ and the volume of the packing material is given by the difference of the volume of the box and the volume of the sphere-shaped globe.
Volume of the sphere-shaped globe=4/3 * π * 8³=2143.67 cubic inchesVolume of the packing material= Volume of the box-Volume of the sphere-shaped globe= 23,400 - 2143.67 = 21,256.33 cubic inches
Hence, the volume of packing material needed to fill the space in the box not taken up by the globe is 21,256.33 cubic inches.
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The approximation of I = scos (x2 + 2) dx using simple Simpson's rule is: -1.579234 0.54869 O This option O This option -0.93669 -0.65314
The approximation of I using the simple Simpson's rule is approximately values -0.3255s.
To approximate the integral I = ∫(scos(x² + 2) dx) using the simple Simpson's rule, to divide the interval of integration into an even number of subintervals and apply the Simpson's rule formula.
The interval of integration into n subintervals. Then the width of each subinterval, h, is given by:
h = (b - a) / n
The interval limits are not provided the interval is from a = -1 to b = 1.
Using the simple Simpson's rule formula, the approximation
I = (h / 3) × [f(a) + 4f(a + h) + f(b)]
calculate the approximation using n = 2 (which gives us three subintervals: -1 to -0.5, -0.5 to 0, and 0 to 1).
First, calculate h:
h = (1 - (-1)) / 2
h = 2 / 2
h = 1
evaluate the function at the interval limits and the midpoint of each subinterval:
f(-1) = s ×cos((-1)²+ 2) = s ×cos(1) =s × 0.5403
f(-0.5) = s ×cos((-0.5)² + 2) = s × cos(2.25) = s × -0.2752
f(0) = s × cos(0² + 2) = s ×cos(2) = s ×-0.4161
f(0.5) = s × cos((0.5)² + 2) = s × cos(2.25) = s ×-0.2752
f(1) = s ×cos(1² + 2) = s × cos(3) = s × -0.9899
substitute these values into the Simpson's rule formula:
I = (1 / 3) ×[s × 0.5403 + 4 × s ×-0.2752 + s × -0.4161]
I = (1 / 3) × [0.5403 - 1.1008 - 0.4161]
I = (1 / 3) × [-0.9766]
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An $85,000 investment earned a 3.9% rate of simple interest from December 1, 2019, to May 30, 2020. How much interest was earned? (Do not round intermediate calculations and round your final answer to 2 decimal places.)
The simple interest earned on the stated amount for 6 months is around $1675.5.
The earned simple interest can be calculated using the formula -
S.I. = P×R×T/100
Time period = 6 months
Time period = 6/12
Time period = 1/2 years
Using the formula to find the interest earned -
S.I. = (85000 × 3.9 × 1)/(100 × 2)
Performing multiplication in both numerator and denominator
S.I. = 3,31,500/200
Performing division on Right Hand Side of the equation
S.I. = $1657.5
The numbers are divisible and hence won't generate answer round to 2 decimal places.
Hence, the interest earned is $1675.5.
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determine whether each set of numbers can be measures of the sides of a triangle. if so, classify the triangle as acute, obtuse, or right. justify your answer. 10, 11
The set of numbers {10, 11} can be the measures of the sides of a triangle.
To determine whether each set of numbers can be the measure of the sides of a triangle or not, we need to apply the triangle inequality theorem.
The theorem states that the sum of the lengths of any two sides of a triangle must be greater than the length of the third side.
If we consider 10, 11 as the measures of the sides of a triangle, then the sum of any two sides must be greater than the third side.
The possible cases are 10 + 11 > x, where x is the third side.=> x < 21
This implies that the third side must be less than 21 to form a triangle.
Since there are infinitely many possible values of the third side, it can be any value between 1 and 20 inclusive.
Thus, we can classify the triangle based on the length of the longest side as follows:
If the third side is less than 10, the triangle is acute.
If the third side is equal to 10, the triangle is right-angled.
If the third side is greater than 10 and less than 11, the triangle is obtuse.
Therefore, the set of numbers {10, 11} can be the measures of the sides of a triangle.
The triangle can be classified as obtuse with the given measures of sides.
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Assume that a sample is used to estimate a population mean μμ. Find the margin of error M.E. that corresponds to a sample of size 7 with a mean of 25.1 and a standard deviation of 12.2 at a confidence level of 99.8%.
Report ME accurate to one decimal place because the sample statistics are presented with this accuracy.
M.E. =
Answer should be obtained without any preliminary rounding. However, the critical value may be rounded to 3 decimal places.
The margin of error is given as follows:
M = 24.024.
What is a t-distribution confidence interval?The t-distribution is used when the standard deviation for the population is not known, and the bounds of the confidence interval are given according to the equation presented as follows:
[tex]\overline{x} \pm t\frac{s}{\sqrt{n}}[/tex]
The variables of the equation are listed as follows:
[tex]\overline{x}[/tex] is the sample mean.t is the critical value.n is the sample size.s is the standard deviation for the sample.The margin of error is given as follows:
[tex]M = t\frac{s}{\sqrt{n}}[/tex]
The critical value, using a t-distribution calculator, for a two-tailed 99.8% confidence interval, with 7 - 1 = 6 df, is t = 5.21.
The parameters for this problem are given as follows:
s = 12.2, n = 7.
Hence the margin of error is given as follows:
[tex]M = t\frac{s}{\sqrt{n}}[/tex]
[tex]M = 5.21 \times \frac{12.2}{\sqrt{7}}[/tex]
M = 24.024.
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Find an equation of the line containing the point (2, -1) that is perpendicular to the line y=+*+1. Oy = -2 Oy = - 2:+3 Oy = = -2 Y = -2.5 + 1
An equation of the line containing the point (2, -1) that is perpendicular to the line y=+*+1. Oy = -2 Oy = - 2:+3 Oy = = -2 Y = -2.5 + 1 is y = (1/3)x - 2/3 - 1.
To find the equation of a line perpendicular to y = -3x + 1 and passing through the point (2, -1), we need to determine the slope of the perpendicular line. The given line has a slope of -3, so the perpendicular line will have a slope that is the negative reciprocal of -3, which is 1/3.
Using the point-slope form of a line, we can write the equation as:
y - y1 = m(x - x1),
where (x1, y1) is the given point and m is the slope. Substituting the values, we have:
y - (-1) = (1/3)(x - 2).
Simplifying the equation, we get:
y + 1 = (1/3)x - 2/3.
Finally, rearranging the terms, the equation of the line perpendicular to y = -3x + 1 and passing through the point (2, -1) is:
y = (1/3)x - 2/3 - 1.
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For S=S2, find explicit formulas for length(Cr(p)) and Area(Cr(p)) and verify Proposition 5.30 and Exercise 5.34.
Proposition 5.30 : At every point p of a regular surface S, the third-order Taylor polynomial of r length(Cr(p)) at r=0 is length(Cr(p))
Exercise 5.34 : With Cr(p) defined as in Definition 5.29, prove that where Area(Cr(p)) denotes the enclosed area.
Definition 5.29 : The distance circle of radius r>0 about a point p in a regular surface S is Cr(p) = {q ∈ S | d(p, q) = r}.
The required answer is Area(Cr(p)) is equal to the area of this circle, which is πr2, as required. Therefore, Exercise 5.34 holds for S=S2.
Explanation:
Let S be a regular surface. Using the definition provided, Cr(p) = {q ∈ S | d(p, q) = r}. For S = S2, find explicit formulas for length(Cr(p)) and Area(Cr(p)) and verify Proposition 5.30 and Exercise 5.34.
Let S=S2 be the unit sphere in R3 and p be any point on S2. Then Cr(p) denotes the distance circle of radius r>0 about p. It is known that Cr(p) is a circle with radius r and center q, where q is the unique point on S2 that is equidistant from p and q. The length of a circle with radius r is 2πr and area is πr2.
From the definition of Cr(p), d(p, q) = r for every q in Cr(p). Therefore, the distance between any two points q and r on Cr(p) is 2r sin(θ/2) where θ is the angle between the vectors pq and pr.Using this, we can write down an explicit formula for the length of Cr(p). Let σ : [0, 2π] → S2 be the parametrization given byσ(θ) = (cos θ, sin θ, 0)The circle Cr(p) can be obtained by rotating σ about the z-axis by an angle φ and then translating by p.
Thus, we get the parametrization for Cr(p) as follows: f(θ) = p + r(cos (θ + φ), sin (θ + φ), 0)Therefore, the length of Cr(p) is given by L(Cr(p)) = ∫0^2π ||f'(θ)|| dθ ||f'(θ)|| = r is the constant function 1 for S2, and the Taylor series of this function of r is given byΣn≥0 (r−1)n n!
The proposition says that this series converges to the length of the circle, which is 2πr. That is, the third-order Taylor polynomial of the function L(Cr(p)) at r=0 is given by: Σn=0^3 2π(r−1)n n! = 2π + 0r + 0r2 + 0r3, which is the length of Cr(p).Therefore, the proposition holds for S=S2.
In Exercise 5.34, we need to prove that Area(Cr(p)) = 2πr for S=S2. Let q be any point on Cr(p), and let O be the center of S2. Then q, p, and O lie in a common plane. Since q is equidistant from p and O, the line segment connecting q to O is perpendicular to the plane.
In particular, the projection of q onto the plane is the midpoint of the segment joining p and O.
Therefore, we have a bijection between Cr(p) and the set of all points on the plane that are equidistant from p and O (namely, the circle with radius r centered at the midpoint of the segment joining p and O).Thus, Area(Cr(p)) is equal to the area of this circle, which is πr2, as required. Therefore, Exercise 5.34 holds for S=S2.
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If the n×n matrix A is invertible, then the reduced row echelon form of A is the
n×n identity matrix. True or false ? Explain.
False. The reduced row echelon form of an invertible n×n matrix A is not always the n×n identity matrix.
The reduced row echelon form of a matrix is obtained by performing a sequence of row operations to transform the matrix into a specific form. These operations include row swaps, scaling rows, and adding multiples of rows to other rows.
When an n×n matrix A is invertible, it means that it has an inverse matrix A^-1 such that AA^-1 = A^-1A = I, where I is the n×n identity matrix. In other words, A and A^-1 are inverses of each other.
While the reduced row echelon form of A may have some properties that resemble the identity matrix, it is not guaranteed to be the exact same as the identity matrix. The row operations performed to obtain the reduced row echelon form may introduce additional non-zero entries or alter the diagonal entries of the matrix.
Therefore, the statement that the reduced row echelon form of an invertible n×n matrix A is the n×n identity matrix is false.
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The histogram to the right represents the sepal widths (mm) of
a sample of irises. Based on the histogram, what is the number of
irises in the sample?
The number of rises in the histogram in the sample is 60
How to determine the number of rises in the histogramFrom the question, we have the following parameters that can be used in our computation:
The histogram (see attachment)
The number of rises in the histogram is the sum of the frequencies or lengths of the bars of the histogram
So, we have
Rise = 2 + 3 + 27 + 18 + 10
Evaluate
Rise = 60
Hence, the number of rises in the histogram is 60
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Show that the set S = {n/2^n} n∈N is not compact by finding a covering of S with open sets that has no finite sub-cover.
To show that the set S = {n/2^n : n ∈ N} is not compact, we need to find a covering of S with open sets that has no finite subcover. In other words, we need to demonstrate that there is no finite collection of open sets that covers the set S.
Let's construct a covering of S:
For each natural number n, consider the open interval (a_n, b_n), where a_n = n/(2^n) - ε and b_n = n/(2^n) + ε, for some small positive value ε. Notice that each open interval contains a single point from S.
Now, let's consider the collection of open intervals {(a_n, b_n)} for all natural numbers n. This collection covers the set S because for each point x ∈ S, there exists an open interval (a_n, b_n) that contains x.
However, this covering does not have a finite subcover. To see why, consider any finite subset of the collection. Let's say we select a subset of intervals up to a certain index k. Now, consider the point x = (k+1)/(2^(k+1)). This point is in S but is not covered by any interval in the finite subcover, as it lies beyond the indices included in the subcover.
Therefore, we have shown that the set S = {n/2^n : n ∈ N} is not compact, as there exists a covering with open sets that has no finite subcover.
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A consumer survey was conducted to examine patterns in ownership of tablet computers, cellular telephones, and Blu-ray players. The following data were obtained: 313 people had tablet computers, 236 had cell phones, 265 had Blu-ray players, 69 had all three, 62 had none, 98 had cell phones and Blu-ray players, 57 had cell phones but no computers or Blu-ray players, and 102 had computers and Blu-ray players but no cell phones. (Round your answers to one decimal place.)
(a) What percent of the people surveyed owned a cell phone?
_________X %
(b) What percent of the people surveyed owned only a cell phone?
___________%
(a) Percentage of people who owned a cell phone ≈ 28.97%
(b) Percentage of people who owned only a cell phone ≈ 7.00% (rounded to one decimal place)
To solve this problem, we'll use a Venn diagram to visualize the data. Let's assign the following labels to the regions:
A: Tablet Computers
B: Cell Phones
C: Blu-ray Players
Given information:
313 people had tablet computers (A)
236 had cell phones (B)
265 had Blu-ray players (C)
69 had all three (A ∩ B ∩ C)
62 had none (complement of (A ∪ B ∪ C))
98 had cell phones and Blu-ray players (B ∩ C)
57 had cell phones but no computers or Blu-ray players (B - (A ∪ C))
102 had computers and Blu-ray players but no cell phones (A ∩ C - B)
Now let's calculate the missing values and solve the problem.
(a) What percent of the people surveyed owned a cell phone?
To find the percentage of people who owned a cell phone, we need to calculate the total number of people surveyed.
Total number surveyed = (A ∪ B ∪ C) + None = (313 + 236 + 265) + 62
Total number surveyed = 814
Percentage of people who owned a cell phone = (Number of people with cell phones / Total number surveyed) × 100
Percentage of people who owned a cell phone = (236 / 814) × 100
Percentage of people who owned a cell phone ≈ 28.97%
(b) What percent of the people surveyed owned only a cell phone?
To find the percentage of people who owned only a cell phone, we need to calculate the number of people in the region B - (A ∪ C).
Number of people with only a cell phone = 57
Percentage of people who owned only a cell phone = (Number of people with only a cell phone / Total number surveyed)×100
Percentage of people who owned only a cell phone = (57 / 814)× 100
Percentage of people who owned only a cell phone ≈ 7.00% (rounded to one decimal place)
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An event can be considered unusual if the probability of it happening is less than 0.025. That is there is less than 2.5% chance that the event will happen. A typical adult has an average IQ score of 105 with a standard deviation of а 20. Suppose you select 35 adults and find their mean (average) IQ. Let it be X. By Central Limit theorem the sampling distribution of X follows Normal distribution
1. Mean of X is______ 2.
2. Standard deviation of X is _______ Round to 2 decimals.
Use the mean and SD entered for next 2 sub-questions.
3. In the sample of 35 adults, the probability (chance) that the mean IQ is between 100 and 110 is _______ .Round to 2 decimals
1. Mean of X is 105.
2. Standard deviation of X is 3.38.
3. The probability that the mean IQ is between 100 and 110 is 0.87.
How does the average IQ score of a sample of 35 adults compare to the general population?The mean of X, the average IQ score of the sample of 35 adults, is 105, which is the same as the average IQ score of a typical adult. The standard deviation of X, representing the variability in IQ scores within the sample, is calculated to be 3.38.
When we consider the probability that the mean IQ falls between 100 and 110, we can use the Central Limit Theorem to approximate the sampling distribution of X as a normal distribution. By calculating the z-scores for the lower and upper bounds, we find that the probability is 0.87, or 87%.
This means that there is a high likelihood, approximately 87%, that the mean IQ of a sample of 35 adults will fall between 100 and 110. It suggests that the average IQ of the sample is likely to be representative of the general population's average IQ.
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Suppose that X and Y have joint mass function as shown in the table below. (Here, X takes on possible values in the set {−2, 1, 3}, Y takes on values in the set {−2, 0, 2, 3.1}.)
X\Y -2 0 2 3.1
-2 0.02 0.04 0.06 0.08
1 0.03 0.06 0.09 0.12
3 0.05 0.10 0.15 0.20
(a). (6 points) Compute P(|X2 − Y | < 5).
(b). (6 points) Find the marginal mass function of X (explicitly) and plot it.
(c). (6 points) Compute Var(X2 − Y ) and Cov(X,Y ).
(d). (2 points) Are X and Y independent? (Why or why not?)
(a) [tex]P(|X^2 - Y| < 5)[/tex] = 0.02 + 0.06 + 0.20 + 0.23 = 0.51. (b) The marginal mass function of X is: P(X = -2) = 0.20, P(X = 1) = 0.30, P(X = 3) = 0.50.
(c) E([tex]X^2 - Y[/tex]) = ΣxΣy ([tex]x^2 - y[/tex]) P(X = x, Y = y). (d) X & Y are independent.
(a) To compute [tex]P(|X^2 - Y| < 5)[/tex] we need to find the probability of all the joint mass function values for which the absolute difference between [tex]X^2[/tex] and Y is less than 5.
[tex]P(|X^2 - Y| < 5) [/tex][tex]= P((X^2 - Y) < 5) - P((X^2 - Y) < -5)[/tex]
= [tex]P(X^2 - Y = -2) + P(X^2 - Y = 1) + P(X^2 - Y = 3) + P(X^2 - Y = 0)[/tex]
From the table, we can see that:
[tex]P(X^2 - Y = -2) = 0.02[/tex]
[tex]P(X^2 - Y = 1) = 0.06[/tex]
[tex]P(X^2 - Y = 3) = 0.20[/tex]
[tex]P(X^2 - Y = 0) = P(X^2 = Y)[/tex]
= 0.04 + 0.09 + 0.10 = 0.23
[tex]P(|X^2 - Y| < 5)[/tex] = 0.02 + 0.06 + 0.20 + 0.23 = 0.51
(b) To find the marginal mass function of X,
we sum the joint mass function values for each value of X.
P(X = -2) = 0.02 + 0.04 + 0.06 + 0.08 = 0.20
P(X = 1) = 0.03 + 0.06 + 0.09 + 0.12 = 0.30
P(X = 3) = 0.05 + 0.10 + 0.15 + 0.20 = 0.50
(c) To compute [tex]Var(X^2 - Y)[/tex]
we first calculate [tex]E(X^2 - Y)[/tex] and
[tex]E((X^2 - Y)^2)[/tex][tex]=E(X^2 - Y)[/tex]
= ΣxΣy [tex](x^2 - y)[/tex]
P(X = x, Y = y)
[tex]= (-2)^2(0.02) + (-2)^2(0.04) + (-2)^2(0.06) + (-2)^2(0.08) + 1^2(0.03) + 1^2(0.06) + 1^2(0.09) + 1^2(0.12) + 3^2(0.05) + 3^2(0.10) + 3^2(0.15) + 3^2(0.20)[/tex]
= 1.13
[tex]E((X^2 - Y)^2) [/tex] = ΣxΣy [tex](x^2 - y)^2[/tex]
P(X = x, Y = y)[tex]= (-2)^4(0.02) + (-2)^4(0.04) + (-2)^4(0.06) + (-2)^4(0.08) + 1^4(0.03) + 1^4(0.06) + 1^4(0.09) + 1^4(0.12) + 3^4(0.05) + 3^4(0.10) + 3^4(0.15) +[/tex]
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Find the best least squares fit by a line to the points (-2, 1), (2, -3), (0,0), (-4, 7).
The best least squares fit by a line to the points (-2, 1), (2, -3), (0,0), (-4, 7) is y = -1.3x + 0.1.
The least-squares method is a data analysis method for modeling the relationship between a dependent variable and one or more independent variables. In other words, it is used to identify the line that provides the best fit for a set of data points.
To find the best least squares fit by a line to the points (-2, 1), (2, -3), (0,0), (-4, 7), we will follow these steps:
Step 1: Write down the formula for the equation of the line
We can write the equation of a line in slope-intercept form as y = mx + b, where m is the slope of the line, and b is the y-intercept.
Step 2: Calculate the slope of the line
We can calculate the slope of the line using the following formula: $$m=\frac{\sum_{i=1}^{n} (x_i - \bar{x}) (y_i - \bar{y})}{\sum_{i=1}^{n} (x_i - \bar{x})^2}$$
where x and y are the coordinates of the data points, and n is the number of data points.
The bar notation represents the mean value of the variable.
Step 3: Calculate the y-intercept of the line
We can calculate the y-intercept of the line using the following formula: $$b=\bar{y} - m\bar{x}$$
Step 4: Write down the equation of the line
Now that we have calculated the slope and y-intercept of the line, we can write down the equation of the line in slope-intercept form.
Therefore, the equation of the line that best fits the given data points is: $$y=-1.3x+0.1$$
Therefore, the best least squares fit by a line to the points (-2, 1), (2, -3), (0,0), (-4, 7) is y = -1.3x + 0.1.
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Suppose that a store offers gift certificates in denominations
of 20 dollars and 35 dollars. Determine the possible total amounts
you can form using these gift certificates. Prove your answer using
st
By strong induction, we have shown that all positive integers greater than or equal to 50 can be expressed as the sum of 25-dollar and 40-dollar denominations
To determine the possible total amounts that can be formed using gift certificates of denominations 25 dollars and 40 dollars, we can use strong induction to systematically analyze all possible combinations.
Claim: All positive integers greater than or equal to 50 can be expressed as the sum of 25-dollar and 40-dollar denominations.
Base Cases
For the base cases, we need to show that the claim holds for the first two positive integers greater than or equal to 50, which are 50 and 51.
- For 50, we can express it as 25 + 25, using two 25-dollar denominations.
- For 51, we can express it as 25 + 25 + 1, using two 25-dollar denominations and one 1-dollar denomination.
Both 50 and 51 can be formed using the given denominations.
Inductive Step
Assume that the claim holds for all positive integers up to and including 'k', where 'k' is a positive integer greater than or equal to 51. We want to prove that it also holds for 'k + 1'.
Let's consider 'k + 1'. There are two cases to consider:
- If 'k + 1' is divisible by 25, we can express it as 'k + 1 = k + 25 - 24', where 'k' can be formed using the denominations according to our inductive assumption, and we add a 25-dollar denomination and subtract a 24-dollar denomination. This shows that 'k + 1' can be expressed using the given denominations.
- If 'k + 1' is not divisible by 25, we can express it as 'k + 1 = k + 40 - 39', where 'k' can be formed using the denominations according to our inductive assumption, and we add a 40-dollar denomination and subtract a 39-dollar denomination. This also shows that 'k + 1' can be expressed using the given denominations.
In both cases, we have shown that 'k + 1' can be expressed using the 25-dollar and 40-dollar denominations.
By strong induction, we have shown that all positive integers greater than or equal to 50 can be expressed as the sum of 25-dollar and 40-dollar denominations. Therefore, these are the possible total amounts that can be formed using the gift certificates.
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Given question is incomplete, the complete question is below
Suppose that a store offers gift certificates in denominations of 25 dollars and 40 dollars. Determine the possible total amounts that you can form using these gift certificates. Prove your answer using strong induction.
For the line segment joining A (7.-1) and B(-5.-6): a. Determine the length of the line segment as an exact solution. [3] b. Determine the midpoint of the line segment. [2] 2. A circle centered at the origin and passes through the point P (9.-13). a. Determine the radius. [2] b. State the equation of the given circle. [1] 3. A see-saw has its pivot (center) at M (3.-4) and one end at A (-1,8). Find the coordinates of the other end. [4] 4. Determine the equation of the right bisector of the line segment joining C(-9, 3) and D (5.-1). [4] Communication (6 marks] Use worksheet for answers. Attach with question paper. 1. Explain why the shortest distance from a point to a line is always the perpendicular distance. Use a diagram to help with your explanation. [3] 2. Describe one key difference and one key similarity between a median line and the altitude line of a triangle. [3] Application [14 marks] Use worksheet for answers, Attach with question paper 1. A musician decides to attach a microphone to her guitar at a right angle to her strings. If the top string has endpoints (1.6) and (3.4) and the microphone is located at (5. 4), what is the shortest distance from the microphone to the string of the guitar? Clearly show your work/steps. [8] Graph on separate papers 2. Classify the type of triangle (scalene, isosceles or equilateral) for a triangle with vertices A (2.5). B (-2.6) and C (-2.-4). Show your work. [7] Graph on separate papers. Thinking [14 marks] Use worksheet for answers. Attach with question paper 1. Simra is at her house, located at (5,25). Georgia is at her house, located at v5.-2V5). Their school is located on the way joining their houses and equidistant to both of them. Determine a location with positive integer coordinates (ordered pair with positive integer coordinates) for their third friend, Bindy, who also wants to live the same distance from the school as her friends. Justify your work. [7]Graph on separate papers 2. Two vertices of an isosceles triangle ABC are A(-5. 4) and B(3.8). The third vertex is on the x-axis. Find the possible coordinates of the third vertex. Justify your answer and show your work.
For the line segment joining A (7.-1) and B(-5.-6):
a. The length of the line segment is given by the formula AB = √[(x₂ - x₁)² + (y₂ - y₁)²] which is equal to √[(7 - (-5))² + (-1 - (-6))²] = √[(12)² + (5)²] = √(144 + 25) = √169 = 13. [3]
b. The midpoint of the line segment is given by the formula M[(x₁ + x₂)/2, (y₁ + y₂)/2] which is equal to M[(7 + (-5))/2, (-1 + (-6))/2] = M[1, -7/2]. [2]The shortest distance from a point to a line is always the perpendicular distance because the shortest distance occurs when the point and line are perpendicular. This can be shown with a diagram by drawing a line perpendicular to the given line and passing through the given point.
The distance from the given point to the intersection of the two lines is the shortest distance. [3]One key difference between a median line and an altitude line of a triangle is that a median line connects a vertex to the midpoint of the opposite side, while an altitude line connects a vertex to the opposite side at a right angle. One key similarity is that both types of lines can be used to find important measurements of a triangle, such as the length of sides and the area. [3]For the circle centered at the origin and passing through the point P (9,-13):a. The radius of the circle is equal to the distance from the center to the given point, which is equal to √(9² + (-13)²) = √(169 + 81) = √250. [2]b. The equation of the circle is given by the formula (x - h)² + (y - k)² = r², where (h,k) is the center and r is the radius. Substituting the given values, we get (x - 0)² + (y - 0)² = (√250)², which simplifies to x² + y² = 250. [1]The coordinates of the other end of the see-saw with its pivot at M(3,-4) and one end at A(-1,8) are given by the formula (2h - x₁, 2k - y₁), where (h,k) is the center and (x₁,y₁) is one end. Substituting the given values, we get (2(3) - (-1), 2(-4) - 8) = (7, -16). [4]The equation of the right bisector of the line segment joining C(-9,3) and D(5,-1) can be found by first finding the midpoint, which is M[(-9 + 5)/2, (3 - 1)/2] = M[-2, 1]. The slope of the line segment is m = (-1 - 3)/(5 - (-9)) = -1/2, so the slope of the right bisector is the negative reciprocal of -1/2, which is 2. Using the point-slope form y - y₁ = m(x - x₁) and the midpoint M, we get y - 1 = 2(x + 2), which simplifies to y = 2x + 5. [4]
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A marketing research company is trying to determine which of two soft drinks college students prefer. A random sample of n college students produced the following 99% confidence interval for the proportion of college students who prefer drink A: (0.413, 0.519). What margin of error E was used to construct this confidence interval? Round your answer to three decimal places
The margin of error used to construct this confidence interval is approximately 0.053, rounded to three decimal places.
To find the margin of error (E) used to construct the confidence interval, we can use the formula:
E = (upper limit of the confidence interval - lower limit of the confidence interval) / 2
In this case, the upper limit of the confidence interval is 0.519, and the lower limit of the confidence interval is 0.413.
Plugging in these values, we get:
E = (0.519 - 0.413) / 2
= 0.106 / 2
≈ 0.053
Therefore, the margin of error used to construct this confidence interval is approximately 0.053, rounded to three decimal places.
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Which of the following statements is true? O The standard deviation of the sampling distribution of x for samples of size 16 is smaller than the standard deviation of the population. The standard deviation of the sampling distribution of x for samples of size 16 is larger than the standard deviation of the population. The mean of the population distribution is smaller than the mean of the sampling distribution of x for samples of size 16. The mean of the sampling distribution of x gets closer to the mean of population distribution as the sample size gets closer to the population size.
The True statement is (d) The mean of "sampling-distribution" of x gets closer to mean of "population-distribution" as "sample-size" gets closer to "population-size", because of the Central Limit Theorem.
Option (a) and Option (b) are incorrect statements regarding the standard deviation. The standard deviation of the sampling distribution of x for samples of size 16 is not necessarily smaller or larger than the standard deviation of the population. It depends on the characteristics of the population and the sampling method used.
Option (c) is also an incorrect statement, because mean of population distribution is not necessarily smaller than mean of sampling distribution of x for samples of size 16. Also it depends on characteristics of population and sampling method.
Option (d) is a true statement. As sample-size increases and approaches population-size, the mean of the sampling distribution of x becomes closer to the mean of the population distribution.
This is known as the Central Limit Theorem, which states that as the sample-size increases, the sampling-distribution of sample-mean approaches normal-distribution centered around population-mean.
Therefore, the correct option is (d).
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The given question is incomplete, the complete question is
Which of the following statements is true?
(a) The standard deviation of sampling distribution of x for samples of size 16 is smaller than the standard deviation of the population.
(b) The standard deviation of sampling distribution of x for samples of size 16 is larger than the standard deviation of the population.
(c) The mean of population distribution is smaller than the mean of the sampling distribution of x for samples of size 16.
(d) The mean of sampling distribution of x gets closer to the mean of population distribution as the sample size gets closer to the population size.
Please use an appropriate formula for calculations.
1. Find the number of positive three-digit integers that are multiples of 7.
2. Find the probability that a randomly chosen positive three-digit integer is a mul-
tiple of 7.
Given problem, To find:1. The number of positive three-digit integers that are multiples of 7.2. The probability that a randomly chosen positive three-digit integer is a multiple of 7.
Solution:1. To find the number of positive three-digit integers that are multiples of 7:We need to find the largest 3-digit multiple of 7 and the smallest 3-digit multiple of 7. Largest 3-digit multiple of 7 is 994 and the smallest 3-digit multiple of 7 is 105. Multiples of 7 can be obtained by adding 7 to the previous number.
Largest 3-digit multiple of 7 = 994. Smallest 3-digit multiple of 7 = 105. Let's subtract both the above numbers to get the total number of positive three-digit integers that are multiples of 7.994 - 105 = 889.
Hence, there are 889 positive three-digit integers that are multiples of 7.2. To find the probability that a randomly chosen positive three-digit integer is a multiple of 7: Total number of three-digit integers = 999 - 100 + 1 = 900. Number of positive three-digit integers that are multiples of 7 = 889. We need to find the probability that a randomly chosen positive three-digit integer is a multiple of 7. P(positive three-digit integer is a multiple of 7) = number of positive three-digit integers that are multiples of 7/ total number of three-digit integers⇒ P(positive three-digit integer is a multiple of 7) = 889/900⇒ P(positive three-digit integer is a multiple of 7) = 0.987. Hence, the probability that a randomly chosen positive three-digit integer is a multiple of 7 is 0.987.
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Second order ODEs with constant coefficients
Find the general solution of the following ODE:
ý" +2ý = 2xe^-x
The general solution of the given ODE is: y(x) = yh(x) + yp(x) = c1cos(√2x) + c2sin(√2x) + (4/5)x + (8/25)x[tex]e^{-x}[/tex] where c1 and c2 are constants.
The given ODE is y" +2y = 2x[tex]e^{-x}[/tex]
Step 1: We find the auxiliary equation as r² + 2 = 0.r² = -2r = ±√2i
Therefore, the general solution of the homogeneous equation is ýh(x) = c1cos(√2x) + c2sin(√2x)
Step 2: Next, we need to find a particular solution.
Using the method of undetermined coefficients, we assume that the particular solution has the form:ýp(x) = Ax + Bx[tex]e^{-x}[/tex], where A and B are constants to be determined.
yp'(x) = A - B[tex]e^{-x}[/tex] - Bx[tex]e^{-x}[/tex]
yp"(x) = -B[tex]e^{-x}[/tex] + Bx[tex]e^{-x}[/tex]
The ODE becomes: -B[tex]e^{-x}[/tex] + Bx[tex]e^{-x}[/tex] + 2Ax + 2Bx[tex]e^{-x}[/tex] = 2x[tex]e^{-x}[/tex]
Grouping the like terms, we get: (2B - A)[tex]e^{-x}[/tex] + (2Ax - B)[tex]e^{-x}[/tex] = 2x[tex]e^{-x}[/tex]
Comparing the coefficients of x[tex]e^{-x}[/tex], we get: 2A - B = 2 …(1)
Comparing the coefficients of [tex]e^{-x}[/tex], we get: 2B - A = 0 …(2)
Solving the two equations simultaneously, we get: A = 4/5, B = 8/25
Therefore, the particular solution is: yp(x) = (4/5)x + (8/25)x[tex]e^{-x}[/tex]
Step 3: Thus, the general solution of the given ODE is:
y(x) = yh(x) + yp(x) = c1cos(√2x) + c2sin(√2x) + (4/5)x + (8/25)x[tex]e^{-x}[/tex]
where c1 and c2 are constants.
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Determine whether the graph can represent a normal curve. If it cannot explain why. Select one: O A and B are both true. OB: The graph cannot represent a normal density function because a normal density curve should approach but not reach the horizontal axis as x increases and decreases without bound. The graph can represent a normal density function. O A: The graph cannot represent a normal density function because it is bimodal.
The graph cannot represent a normal density function because a normal density curve should approach but not reach the horizontal axis as x increases and decreases without bound.
Can the graph be considered a normal curve?The graph in question cannot be considered a normal curve due to the fact that it does not adhere to the characteristics of a normal density function. In order to be classified as a normal curve, the density function should approach but not reach the horizontal axis as x increases and decreases without bound.
A normal density function, often referred to as a normal curve or a bell curve, is a symmetric probability distribution characterized by a smooth, unimodal shape. The curve is defined by a specific mathematical formula that ensures certain properties are met. One such property is that as x approaches positive or negative infinity, the curve should asymptotically approach but never touch the horizontal axis. This means that the tails of the curve extend indefinitely without actually reaching the x-axis.
In the case of the given graph, it does not satisfy this requirement. The graph appears to intersect the x-axis, indicating that the curve reaches a value of zero at certain points. This violates the fundamental property of a normal curve, as it should approach but not touch the x-axis as x increases and decreases without bound.
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Let q ∈ C and let r > 0 be a positive real number. Describe, in at most two sentences, why the solution set to |z − q| = r is a circle.
The solution set of |z − q| = r represents a circle because the equation is the equation of a circle.
The set of complex numbers z whose distance from q is equal to r is represented by the equation |z - q| = r. Geometrically, this equation describes the locus of points in the complex plane that are at a fixed distance r from the complex number q.
The outright worth or modulus of a complicated number addresses its separation from the beginning. By setting the distance between z and q to r, we can define a circle with a radius of r and a center at q.
With the solution set to |z - q| = r, all complex numbers that satisfy this equation are located on the circle's circumference. A circle of radius r with its center at q in the complex plane is formed by any point z that satisfies the equation. A circle is the result of setting the solution to |z - q| = r.
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Describe the region in the Cartesian plane that satisfies the inequality 2x - 3y > 12
The given inequality is 2x - 3y > 12. Let us find the region in the Cartesian plane that satisfies the inequality. We need to find the points that lie above the line represented by the equation 2x - 3y = 12, which means the points that do not lie on the line. Let us graph the line 2x - 3y = 12 by finding the intercepts and plotting them.2x - 3y = 12When x = 0,2(0) - 3y = 12-3y = 12y = -4When y = 0,2x - 3(0) = 12x = 6
The intercepts are (0, -4) and (6, 0).Plotting the intercepts and drawing the line through them, we get the line as: Graph of 2x - 3y = 12The region satisfying the inequality 2x - 3y > 12 is the region above the line 2x - 3y = 12 and does not include the line. The boundary line is dashed, since it is not part of the solution set.
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Suppose that has a uniform distribution on the interval
[−2,2]. Find Cov(, ^2). Show whether or not these random
variables are independent.
The range of Y is limited to the interval [0, 4] because X is uniformly distributed on the interval [-2, 2]. Therefore, E[Y] = k * 16/3 must be in the range [0, 4].
To find the covariance between two random variables X and Y, we can use the following formula:
Cov(X, Y) = E[(X - E[X])(Y - E[Y])]
However, since you have not specified the random variables X and Y in your question, I will assume that X is uniformly distributed on the interval [-2, 2] and Y is the square of X [tex](Y = X^2).[/tex]
Let's calculate the covariance using the formula:
Cov(X, Y) = E[(X - E[X])(Y - E[Y])]
First, we need to find the expected values E[X] and E[Y]:
E[X] = (a + b) / 2 (for a uniform distribution)
E[X] = (-2 + 2) / 2
E[X] = 0
E[Y] = E[X^2]
Since X is uniformly distributed on the interval [-2, 2], the probability density function (pdf) of X is constant within that interval and zero outside of it. Therefore, we can write:
E[Y] = ∫([tex]x^2[/tex]* f(x)) dx (from -2 to 2)
Since the pdf f(x) is constant within the interval [-2, 2], we can simplify the integration:
E[Y] = ∫[tex](x^2[/tex]* k) dx (from -2 to 2)
Where k is the constant value of the pdf.
E[Y] = k * ∫([tex]x^2)[/tex] dx (from -2 to 2)
E[Y] = k * [(1/3) * [tex]x^3[/tex]] (from -2 to 2)
E[Y] = k * [(1/3) *[tex](2^3 - (-2)^3)][/tex]
E[Y] = k * (1/3) * (8 + 8)
E[Y] = k * (1/3) * 16
E[Y] = k * 16/3
Since Y = [tex]X^2,[/tex] we know that the values of Y are always non-negative. Therefore, the expected value E[Y] is greater than or equal to zero. However, the range of Y is limited to the interval [0, 4] because X is uniformly distributed on the interval [-2, 2]. Therefore, E[Y] = k * 16/3 must be in the range [0, 4].
Now we can calculate the covariance:
Cov(X, Y) = E[(X - E[X])(Y - E[Y])]
Cov(X, Y) = E[X * (X^2 - E[Y])]
Substituting the values we calculated:
Cov(X, Y) = E[X * (X^2 - k * 16/3)]
Since X is uniformly distributed on the interval [-2, 2], we can use the expected value formula for continuous random variables:
Cov(X, Y) = ∫(x * (x^2 - k * 16/3) * f(x)) dx (from -2 to 2)
Again, since the pdf f(x) is constant within the interval [-2, 2], we can simplify the integration:
Cov(X, Y) = ∫(x * (x^2 - k * 16/3) * k) dx (from -2 to 2)
Cov(X, Y) = k * ∫(x * (x^2 - 16/3)) dx (from -2 to 2)
Evaluating this integral:
Cov(X, Y) = k [tex]* [((1/4) * x^4 - (16/9) * x^2)] (from -2 to 2)[/tex]
Cov(X, Y) = k *[tex][((1/4) * (2^4) - (16/9) * (2^2)) - ((1/4) * (-2)^4 - (16/9) * (-2)^2)][/tex]
Cov(X, Y) = [tex]k * [(1/4) * (16) - (16/9) * (4) - (1/4) * (16) + (16/9) * (4)][/tex]
Cov(X, Y) = k * [4 - (64/9) - 4 + (64/9)]
Cov(X, Y) = k * [128/9 - 128/9]
Cov(X, Y) = k * 0
Cov(X, Y) = 0
Therefore, the covariance between X and Y is zero. This means that X and Y are uncorrelated, but it does not necessarily imply that they are independent. To determine independence, we would need to check if the joint probability distribution of X and Y factorizes into the product of their individual marginal distributions, which is not provided in the given information.
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