Answer:
3x-13+2x+4=116( the sum of two interior angle is epual to the sum of exterior angle )
5x =116-9
5x=107
x=21.4 degree
then
angle a= 3*21.4-13
a=51.2degree
angle b=2*21.4+2
b =44.8degree
Step-by-step explanation:
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Let A {10,20,30). Find one non-empty relation on set A such that all the given conditions are met and explain why it works: Reflexive, Transitive, Not Antisymmetric. (Find one relation on A that satisfies all three at the same time - don't create three different relations).
The relation R = {(10,20), (20,10), (20,30), (30,20)} on set A = {10, 20, 30} is reflexive, transitive, and not antisymmetric.
A relation between two sets is a set of ordered pairs. If the ordered pair (a, b) is in the relation, then a is related to b. A relation can have the properties of reflexive, transitive, and antisymmetric. A relation on a set A that is non-empty satisfies all three of the above properties if it satisfies the following conditions:
Reflexive: (a, a) belongs to the relation for all a ∈ A.Transitive: If (a, b) and (b, c) belong to the relation, then (a, c) also belongs to the relation.
Not antisymmetric: If (a, b) belongs to the relation and (b, a) belongs to the relation, then a = b. Let A = {10, 20, 30}. Consider the relation R on A given by {(10,20), (20,10), (20,30), (30,20)}. The relation R is reflexive because (10,10), (20,20), and (30,30) are not in R, but (10,10), (20,20), and (30,30) do not have to be in R for R to be reflexive.
The relation R is transitive because (10,20) and (20,30) belong to R, so (10,30) belongs to R. (20,10) and (10,20) belong to R, so (20,20) belongs to R. (20,30) and (30,20) belong to R, so (20,20) belongs to R. (30,20) and (20,10) belong to R, so (30,10) belongs to R. Therefore, R satisfies the transitivity condition.
The relation R is not antisymmetric because (10,20) and (20,10) belong to R, but 10 ≠ 20. Therefore, R satisfies the reflexive, transitive, and not antisymmetric conditions.
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7. Find the point(s) on the curve y = x2 + 1 which is nearest to the point (0,2).
The points on the curve y=[tex]x^{2} +1[/tex] are (-1,2) and (1,2).
We are given the curve y = x² + 1 and a point (0,2).
We need to find the point(s) on the curve that is nearest to (0,2).
The shortest distance between two points is a straight line.
Therefore, we want to find the intersection of the curve y = x² + 1 and a line that passes through (0,2) with a slope of 0. This line is a horizontal line.So, the line that passes through (0,2) with a slope of 0 is y = 2.
Since the point of intersection must be on both the curve y = x² + 1 and the line y = 2,
we can substitute y = 2 into y = x² + 1 to find the x-coordinates of the point(s) of intersection.
2 = x² + 1x² = 1x = ±1
Thus, the two points that are nearest to (0,2) are (-1, 2) and (1, 2).
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How tarpe a sample should be selected to provide a 95% confidence intervat with a margin of error of 67. Assume that the population standard deviation le 20.
The sample size needed to achieve a 95% confidence interval with a margin of error of 67, assuming a population standard deviation of 20, is 1.
To determine the sample size needed to achieve a 95% confidence interval with a margin of error of 67, we need to use the following formula:
n = (Z * σ / E)^2
Where:
n is the sample size
Z is the z-score that corresponds to the desired confidence level (a z-score of approximately 1.96 for a 95 percent confidence level).
σ is the population standard deviation
E is the desired margin of error
Given:
Confidence level: 95% (z-score ≈ 1.96)
Margin of error: 67
Population standard deviation: 20
Substituting the given values into the formula:
n = (1.96 * 20 / 67)^2
n ≈ (0.582)^2
n ≈ 0.338
n ≈ 0.114
To have a non-fractional sample size, we round up the result to the nearest whole number:
n = 1
Therefore, the sample size needed to achieve a 95% confidence interval with a margin of error of 67, assuming a population standard deviation of 20, is 1. However, it is important to note that such a small sample size may not provide reliable or accurate results. In practice, larger sample sizes are typically used to obtain more robust and representative data.
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Estimate the area under the graph of f(x) =10 sqrt x from x = 0 to x = 4 using four approximating rectangles and right endpoints. (Round your answers to four decimal places.)
(a) Use four approximating rectangles and right endpoints.
R4=______________________
(b) Use four approximating rectangles and left endpoints.
L4=_______________________
a. the estimated area under the graph of f(x) = 10√x from x = 0 to x = 4 is R4 = 1. b. Using four approximating rectangles and left endpoints, the estimated area under the graph of f(x) = 10√x from x = 0 to x = 4 is L4 =1
(a) Using four approximating rectangles and right endpoints, the estimated area under the graph of f(x) = 10√x from x = 0 to x = 4 is R4 = _______.
To estimate the area using right endpoints, we divide the interval [0, 4] into four subintervals of equal width. The width of each subinterval is Δx = (4 - 0) / 4 = 1.
For each subinterval, we take the right endpoint as the x-value to determine the height of the rectangle. The height of the rectangle is given by f(x) = 10√x. Therefore, the right endpoint of each subinterval will be the x-value plus the width of the subinterval, i.e., x + Δx.
We calculate the area of each rectangle by multiplying the width (Δx) by the height (f(x)) for each subinterval. Finally, we sum up the areas of all four rectangles to obtain the estimated area under the graph.
Performing the calculations, we have:
R4 = Δx * (f(1) + f(2) + f(3) + f(4))
Substituting the values, we get:
R4 = 1 * (10√1 + 10√2 + 10√3 + 10√4)
Simplifying this expression and rounding the answer to four decimal places will give us the estimated area under the graph using four approximating rectangles and right endpoints.
(b) Using four approximating rectangles and left endpoints, the estimated area under the graph of f(x) = 10√x from x = 0 to x = 4 is L4 = _______.
To estimate the area using left endpoints, we follow a similar process as in part (a), but this time we take the left endpoint of each subinterval as the x-value to determine the height of the rectangle.
We calculate the area of each rectangle by multiplying the width (Δx) by the height (f(x)) for each subinterval, using the left endpoint as the x-value. Finally, we sum up the areas of all four rectangles to obtain the estimated area under the graph using left endpoints.
Performing the calculations in a similar manner as in part (a) and rounding the answer to four decimal places will give us the estimated area under the graph using four approximating rectangles and left endpoints.
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Let (V, ∥ · ∥) be a complete normed vector space and its induced metric d(x, y) = ∥x − y∥ for x, y ∈ V . Suppose f : V → V is a linear function, i.e., f(x + y) = f(x) + f(y), ∀ x, y ∈ V and f(αx) = αf(x) for all x ∈ V and α ∈ R. You may use the following facts without proof: f(0) = 0 and f(x − y) = f(x) − f(y), ∀ x, y ∈ V .
(1) Show that f is a (strict) contraction if and only if there exists a constant C with 0 < C < 1 such that ∥f(x)∥ ≤ C∥x∥ for all x ∈
which implies that f is a contraction.
Main answer: f is a contraction if and only if there exists a constant C with 0 < C < 1 such that ∥f(x)∥ ≤ C∥x∥ for all x ∈ V.
Supporting explanation:
For the forward direction, suppose f is a contraction, which implies that there exists a constant C with 0 < C < 1 such that
d(f(x), f(y)) ≤ C d(x, y) for all x, y ∈ V
Since the metric is induced by the norm, we have
d(f(x), f(y)) = ∥f(x) − f(y)∥
and
d(x, y) = ∥x − y∥
Substituting these in the inequality above gives
∥f(x) − f(y)∥ ≤ C ∥x − y∥
which is equivalent to
∥f(x − y)∥ ≤ C ∥x − y∥
Using the linearity of f and f(0) = 0, we have
∥f(x)∥ = ∥f(x − 0)∥ = ∥f(x − y + y)∥ = ∥f(x − y) + f(y)∥
Using the triangle inequality and the inequality above, we get
∥f(x)∥ ≤ ∥f(x − y)∥ + ∥f(y)∥ ≤ C ∥x − y∥ + ∥f(y)∥
Since C < 1, we can choose a small ε > 0 such that 0 < C + ε < 1. Then we have
∥f(x)∥ ≤ C ∥x − y∥ + ∥f(y)∥ < (C + ε) ∥x − y∥ + ∥f(y)∥
for all x, y ∈ V. This shows that f satisfies the condition ∥f(x)∥ ≤ C∥x∥ with C + ε < 1.
For the backward direction, suppose there exists a constant C with 0 < C < 1 such that ∥f(x)∥ ≤ C∥x∥ for all x ∈ V. Then for any x, y ∈ V, we have
∥f(x) − f(y)∥ = ∥f(x − y)∥ ≤ C ∥x − y∥
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if a set of difference scores with df = 8 has a mean of md = 3.5 and a variance of s2 = 36, then the sample will produce a repeated-measures t statistic of t = 1.75. true or false
The given statement "if set of difference scores with df = 8 has a mean of md = 3.5 then sample will produce repeated-measures t statistic of t = 1.75." is false because it is not possible to determine t statistic.
In a repeated-measures t-test, the t statistic is calculated using the sample mean difference, the standard deviation of the sample mean difference, and the sample size. The formula for calculating the t statistic in a repeated-measures t-test is:
t = (md - μd) / (s / √n)
where md is the mean of the difference scores, μd is the population mean of the difference scores (typically assumed to be zero), s is the standard deviation of the difference scores, and n is the sample size.
In the given statement, we are provided with the mean of the difference scores (md = 3.5) and the variance (s² = 36), but we do not have the sample size (n). Therefore, we cannot calculate the t statistic using the given information.
Hence, it is not possible to determine whether the sample will produce a repeated-measures t statistic of t = 1.75 based on the provided information.
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2. Calculate one of each of the following questions created by 3 different classmates.
a. Mean and standard deviation given, looking for the percentage between two x values.
Marks in a class is normally distributed with a mean mark of 71 and standard deviation of 11. 3
What percent of students scored between 65 - 75%?
b. Mean and standard deviation given, looking for the percentage above a certain x value.
The heights of 17-year-old boys' heights are normally distributed with a mean of 175cm and a standard deviation of 7.11cm.
What percent of the 17-year-old boys are above 179cm?
c. Mean and standard deviation given, looking for the x value at a certain percentile.
The length of time it takes for students who ride the bus to get to school is normally distributed with a mean of 25 mins and a standard deviation of 5 mins.
What time would be lower than 60% of all the other times?
The time that would be lower than 60% of all the other times is 26.25 minutes.
a. 34.94% of students scored between 65 - 75%.
b. 28.77% of 17-year-old boys are above 179cm.
c. the time that would be lower than 60% of all the other times is 26.25 minutes.
a. Marks in a class is normally distributed with a mean mark of 71 and standard deviation of 11.
What percent of students scored between 65 - 75%?
Using the formula of z-score, we will find the percentage:
z = (X - μ) / σz1
= (65 - 71) / 11
= -0.55z2
= (75 - 71) / 11
= 0.36
Area between z1 and z2 = P(z1 < z < z2)P(-0.55 < z < 0.36)
= P(z < 0.36) - P(z < -0.55)
≈ 0.6406 - 0.2912
≈ 0.3494 or 34.94%
Therefore, 34.94% of students scored between 65 - 75%.
b. The heights of 17-year-old boys' heights are normally distributed with a mean of 175cm and a standard deviation of 7.11cm.
What percent of the 17-year-old boys are above 179cm?
Using the formula of z-score, we will find the percentage:
z = (X - μ) / σz
= (179 - 175) / 7.11
≈ 0.56
Area above z = P(z > 0.56)
= 1 - P(z < 0.56)P(z < 0.56)
= 0.7123 (using the normal distribution table)
P(z > 0.56) = 1 - P(z < 0.56)
= 1 - 0.7123
≈ 0.2877 or 28.77%
Therefore, 28.77% of 17-year-old boys are above 179cm.
c. The length of time it takes for students who ride the bus to get to school is normally distributed with a mean of 25 mins and a standard deviation of 5 mins.
What time would be lower than 60% of all the other times?
Using the formula of z-score, we will find the x value at a certain percentile:
z = (X - μ) / σ0.
60 = P(z < Z)
Z = invNorm(0.60)
= 0.25 (using the inverse normal distribution table)
z = (X - μ) / σ0.25
= (X - 25) / 5X - 25
= 0.25 * 5X - 25
= 1.25
X = 26.25
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The function f:(0,1) approaches to R defined by f(x) := 1/x is not a uniformly continuou
The function f:(0,1) approaches to R defined by f(x) := 1/x is not a uniformly continuous. this is true.
How to explain the functionA function is uniformly continuous if, for any two points in the domain, the difference between can be made arbitrarily small.
The reason why f is not uniformly continuous is because the values of f become very large very quickly as x approaches 0. This means that even if we make the distance between x and y very small, the values of f(x) and f(y) can still be very different.
In conclusion, the function f:(0,1) approaches to R defined by f(x) := 1/x is not a uniformly continuous.
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For the last 10 years, each semester 95 students take an Introduction to Programming class. As a student representative, you are interested in the average grade of students in this class. More precisely, you want to develop a confidence interval for the average grade. However, you only have access to a random sample of 36 student grades from the last semester. For this sample of 36 student grades, you calculated an average of 79 points. The variance sº for the 36 student grades was 250. In addition, the distribution of the 36 grades is not highly skewed. What is the point estimate for your mean grade (in points) in this case? Round your answer to 2 decimal places
The point estimate for the mean grade in the Introduction to Programming class is 79 points, based on a random sample of 36 student grades from the last semester.
A point estimate is a single value that is used to estimate an unknown population parameter. In this case, the unknown parameter is the average grade of all students in the class. The point estimate is obtained by calculating the sample mean, which is the average of the grades in the random sample.
The given information states that the average grade for the sample of 36 students is 79 points. This means that, on average, the students in the sample scored 79 points. Since the sample is randomly selected, it can be considered representative of the larger population of students taking the Introduction to Programming class.
It's important to note that the variance of the sample, denoted by s², is provided as 250. The variance measures the spread of the data and is used to calculate the standard deviation. However, in this case, the standard deviation is not explicitly given. The information also mentions that the distribution of grades is not highly skewed, suggesting that the data is relatively symmetrical.
Therefore, based on the provided information, the point estimate for the mean grade in the Introduction to Programming class is 79 points.
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Describing Tasks for Licensing Examiners and Inspectors
Click this link to view O'NET's Tasks section for Licensing Examiners and Inspectors. Note that common tasks are
listed toward the top, and less common tasks are listed toward the bottom. According to O*NET, what are some
common tasks performed by Licensing Examiners and Inspectors? Select three options.
issuing licenses
supervising new employees
evaluating applications and documents
administering tests
Oanalyzing property values
checking utility meters?
The three common tasks performed by Licensing Examiners and Inspectors are issuing licenses, evaluating applications and documents, and administering tests.
According to O*NET, some common tasks performed by Licensing Examiners and Inspectors include:
Issuing licenses: Licensing Examiners and Inspectors are responsible for reviewing applications, verifying qualifications, and granting licenses to individuals or businesses who meet the required criteria.
Evaluating applications and documents: They assess and evaluate various documents, such as license applications, permits, or compliance reports, to ensure they meet regulatory requirements and standards.
Administering tests: Licensing Examiners and Inspectors may be responsible for designing and conducting tests or examinations to assess applicants' knowledge, skills, or competency in specific areas related to their field.
Therefore, the three common tasks performed by Licensing Examiners and Inspectors are issuing licenses, evaluating applications and documents, and administering tests.
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Let S be the set {0, 1}. Then S’ is the set of all ordered pairs of Os and 1s; S2 = {(0,0), (0, 1), (1, 0), (1, 1); Consider the set B of all functions mapping Sto S. For example, one such function, S(xy), is given by (0,0) = 0 S(0, 1) = 1 |(1,0) = 1 S(1, 1) = 1 a. How many elements are in B? b. For fi and Sa members of B and (x, y) S, define (+)(x, y) = max({}(x, y), S2(x, y)) 1x,y) = min Si(x,y),/<(x, y)) S (y) - ſi if S (x, y) = 0 Coiff(x, y) = 1 Suppose 100) - 1 S.(0,1) - 0 (1,0) - 1 (1.1) - 0 50,0) 13(0.1) 20.00 10.) What are the functions fi+ , and ? c. Prove that (B.+...0.1) is a Boolean algebra where the functions and I are defined by 0(0,0) = 0 0(0, 1) = 0 0(1.0) - 0 0(1, 1) - 0 1(0,0) 1(0, 1) 1(1,0) 1(1,1).
The set B has 4 elements. The functions f+ and f− are defined as f+ (x, y) = max{f1(x, y), x, y} and f− (x, y) = min{f1(x, y), x, y}.
a. The set B consists of all functions mapping S to S, where S = {0, 1}.
Since each element in S can be mapped to either 0 or 1, there are 2^2 = 4 elements in B.
b. Based on the definitions:
- f+ (x, y) = max{f1(x, y), S2(x, y)} = max{f1(x, y), x, y}
- f− (x, y) = min{f1(x, y), S2(x, y)} = min{f1(x, y), x, y}
c. To prove that (B, +, ·) is a Boolean algebra, we need to show that it satisfies the properties of a Boolean algebra, namely:
- Closure under addition and multiplication: Given any two functions f, g ∈ B, f + g and f · g also belong to B.
- Associativity of addition and multiplication: (f + g) + h = f + (g + h) and (f · g) · h = f · (g · h) for any functions f, g, h ∈ B.
- Existence of identity elements: There exist functions 0 and 1 in B such that f + 0 = f and f · 1 = f for any function f ∈ B.
- Existence of complement: For every function f ∈ B, there exists a function f' ∈ B such that f + f' = 1 and f · f' = 0.
These properties can be verified based on the given definitions and properties of max and min functions.
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For n random v. i.i.d. with distribution Unif(0, 1) find:
(a) The distribution, expectation and variance of the kth order statistic.
(b) The distribution, expectation and variance of its range.
The expectation and variance of Xk can be calculated as follows:
Expectation: E(Xk) = k/(n+1)Variance: Var(Xk) = k(n-k+1)/[(n+1)^2(n+2)]
and
The expectation and variance of R can be calculated as follows:Expectation: E(R) = (n+1)/(n+2)Variance: Var(R) = n(n-1)/[(n+2)^2(n+3)]
(a) The distribution, expectation and variance of the kth order statistic:
For n random variables i.i.d. with distribution Unif(0,1), the kth order statistic is distributed according to the Beta distribution such that:Xk ~ Beta(k, n-k+1)
The expectation and variance of Xk can be calculated as follows:
Expectation: E(Xk) = k/(n+1)Variance: Var(Xk) = k(n-k+1)/[(n+1)^2(n+2)]
(b) The distribution, expectation and variance of its range:The range of the kth order statistic can be defined as R = Xn - X1. The distribution of R can be obtained as follows:If k = 1, R = X1, which is distributed according to Unif(0,1).If k = n, R = Xn - X1, which is distributed according to Beta(1,1).Otherwise, the distribution of R is not simple and is defined by the joint distribution of X1, Xk and Xn.
The expectation and variance of R can be calculated as follows:Expectation: E(R) = (n+1)/(n+2)Variance: Var(R) = n(n-1)/[(n+2)^2(n+3)]
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Given that n random v. i.i.d. with distribution Unif(0, 1), we need to find the following:
(a) The distribution, expectation and variance of the kth order statistic.
The answers are:
Distribution: [tex]$$f_{X_{(k)}}(x) = \frac{n!}{(k-1)!(n-k)!}F(x)^{k-1}(1-F(x))^{n-k}f(x)$$[/tex]
Expectation: [tex]$$E(X_{(k)}) = \int_{-\infty}^{\infty}x f_{X_{(k)}}(x) dx$$[/tex]
Variance: [tex]$$Var(X_{(k)}) = \int_{-\infty}^{\infty} x^2 f_{X_{(k)}}(x) dx - \left(E(X_{(k)})\right)^2$$[/tex]
(b) The distribution, expectation and variance of its range.
The answer are:
Distribution: [tex]$$f_{R_{(k)}}(x) = n(n-1)\binom{n-2}{k-2}(1-x)^{n-k}(k-1)x^{k-2}$$[/tex]
Expectation: [tex]$$E(R_{(k)}) = \frac{k}{n+1-k}$$[/tex]
Variance: [tex]$$Var(R_{(k)}) = \frac{k(n-k+1)}{(n+1-k)^2(n+2-k)}$$[/tex]
(a) The kth order statistic:
In statistics, the kth order statistic is also known as the kth smallest element of the random sample. Let's say X1, X2, X3,...Xn be a random sample from the uniform distribution, Unif(0, 1). The distribution of the kth order statistic, denoted as X(k) is given by:
[tex]$$f_{X_{(k)}}(x) = \frac{n!}{(k-1)!(n-k)!}F(x)^{k-1}(1-F(x))^{n-k}f(x)$$[/tex]
where, F(x) = P(X ≤ x) is the distribution function,
f(x) = F′(x) is the density function. The expectation of the kth order statistic is given by:
[tex]$$E(X_{(k)}) = \int_{-\infty}^{\infty}x f_{X_{(k)}}(x) dx$$[/tex]
and the variance of the kth order statistic is given by:
[tex]$$Var(X_{(k)}) = \int_{-\infty}^{\infty} x^2 f_{X_{(k)}}(x) dx - \left(E(X_{(k)})\right)^2$$[/tex]
(b) The range of the kth order statistic: The range of the kth order statistic is the difference between the kth order statistic and the first order statistic (i.e. the minimum value) of the sample. Let R(k) denote the range of the kth order statistic. The distribution of R(k) is given by:
[tex]$$f_{R_{(k)}}(x) = n(n-1)\binom{n-2}{k-2}(1-x)^{n-k}(k-1)x^{k-2}$$[/tex]
where 0 ≤ x ≤ 1 and the expectation and variance are given by:
[tex]$$E(R_{(k)}) = \frac{k}{n+1-k}$$[/tex]
[tex]$$Var(R_{(k)}) = \frac{k(n-k+1)}{(n+1-k)^2(n+2-k)}$$[/tex]
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B с ma A b Note: Triangle may not be drawn to scale. Suppose a 2 and c= 9. Find: 6 AA degrees BE degrees Give all answers to at least one decimal place. Give angles in degrees calculator
To solve for angle A and angle B in the given triangle, we can use the Law of Sines. The Law of Sines states that the ratio of the length of a side to the sine of its opposite angle is constant for all sides and angles in a triangle.
In this case, we have side a with length 2 and side c with length 9. Let's denote angle A as angle opposite side a and angle B as angle opposite side b (which is unknown).
Using the Law of Sines, we have:
sin(A) / a = sin(B) / b
Plugging in the known values, we get:
sin(A) / 2 = sin(B) / 9
To find angle A, we can use the arcsine function:
A = arcsin((sin(B) / 9) * 2)
To find angle B, we can rearrange the equation:
sin(B) = (sin(A) / 2) * 9
B = arcsin((sin(A) / 2) * 9)
Now we can calculate the angles using a calculator:
A ≈ 19.5 degrees (rounded to one decimal place)
B ≈ 84.1 degrees (rounded to one decimal place)
Therefore, angle A is approximately 19.5 degrees and angle B is approximately 84.1 degrees.
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Use the Principle of Mathematical induction to show that the statement is true for all natural numbers 7² +² +²...+ (21 - 172 n(2n-1)(2n+1) 3 The first condition that the given statement must satisfy in proving that it is true for all natural numbers n is that this statement is true forn Evaluate both sides of the statement at the appropriate value of n y2 + 3² +8² ++ (21 - 1² - n(2n-1)(2+1) (2n- 3 -(Simplify your answers.) What is the second condition that the given statement must satisfy to prove that it is true for all natural numbers n A. The statement is true for any two natural numbers kandk+1 B. If the statement is true for the natural number 1. it is also true for the next natural number 2 C. If the statement is true for some natural numberk, it is also true for the next natural number 1 D. The statement is true for natural number +1. Write the given statement for k+1 v-0-9 ² + 3² +5² + (26 - 1² - 1 (Simplify your answer Type your answer in factored form. Use integers or fractions for any numbers in the expression) According to the Principle of Mathematical Induction assume that 12.32.52 + +12K * - 132-0 (Simplify your answer Type your answer in factored form. Use integers or fractions for any numbers in the expression) Use this assumption to rewrite the left side of the statement for k+ 1. What is the resulting expression? (Do not simplity Type your answer in factored form. Use integers or fractions for any numbers in the expression) What the second condition that the given statement must satisfy to prove that is true for all natural numbers ? O A The statement is true for any two natural numbers and 1 Bit the statement is true for the natural number 1. It is also true for the next natural number 2 Gif the statement is true for some natural number K. It is also true for the next natural number. 1 D. The statement is true for natural number + 1 Write the given statement for 1 1.3.3.1 - 13- Simply your answer Type your answer in factored for use integers or fractions for any numbers in the expression) According to the Principle of Mathematical Induction assume that $2.32 +12-17-0 (Simplify your answer type your answer in factored form Useintegers or tractions for any numbers in the expression> Use this assumption to rewrite the left side of the statement for K+ 1 What is the resulting expression? Do not simpty Type your answer in factored form Useintegers or fractions for any numbers in the expression) is the resulting statement for + 1 true? DA. Yes because writing the Serms of the sum on the left side over the least common denominator and dividing out common taclors results in the same expression as on the night side O. Yesbecause multiplying both sides of the statement by 3 and simplifying results in the same expression as on the night side O. Yes, because writing the terms of the sum on the left side over a common denominator of and simplifying results in the same expressions on the right side OD. No, because it cannot be determine whether the same statement is true for all values of Use the results obtained above to draw a conclusion about the given statement (2n-1)(2+1) 2.2.5.
To prove the statement `7² + 9² + ... + (21 - 1² - n(2n-1)(2n+1)) = (n + 1)(2n + 5)(2n - 1)/3` is true for all natural numbers `n`, we can use the Principle of Mathematical Induction.
First, we need to verify the base case, i.e., whether the statement is true for `n = 1`.
Substituting `n = 1` into the statement, we get:`7² + 9² + ... + (21 - 1² - 1(2(1)-1)(2(1)+1)) = (1 + 1)(2(1) + 5)(2(1) - 1)/3``⇒ 49 + 81 + (21 - 1 - 1(2)(1-1))(2(1)-1)(2(1)+1) = (2)(7)(3)/3``⇒ 49 + 81 + 15 = 42`
The left-hand side (LHS) evaluates to 145, and the right-hand side (RHS) evaluates to 42. Since the LHS ≠ RHS, the base case is not true.
Now, we assume the statement is true for some `k`. That is:`7² + 9² + ... + (21 - 1² - k(2k-1)(2k+1)) = (k + 1)(2k + 5)(2k - 1)/3`
We will use this assumption to show that the statement is true for `k + 1`.We start by evaluating both sides of the statement at `n = k + 1`.
LHS:
`7² + 9² + ... + (21 - 1² - (k + 1)(2(k + 1)-1)(2(k + 1)+1))``
= 7² + 9² + ... + (21 - 1² - (k + 1)(4k+1)(4k+3))``
= (7² + 9² + ... + (21 - 1² - k(2k-1)(2k+1))) - (21 - 1² - (k + 1)(4k+1)(4k+3))``
= (k + 1)(2k + 5)(2k - 1)/3 - (21 - 1² - (k + 1)(4k+1)(4k+3))``
= (k + 1)(2k + 5)(2k - 1)/3 - (21 - 1 - 4(k + 1))(4k+1)(4k+3)``
= (k + 1)(2k + 5)(2k - 1)/3 - (20 + 4k)(4k+1)(4k+3)``
= (k + 1)(2k + 5)(2k - 1)/3 - 4(4k+1)(5 + k)(4k+3)``
= (k + 1)(2k + 5)(2k - 1)/3 - 4(5 + k)(4k+1)(4k+3)`
RHS:
`(k + 2)(2(k + 1) + 5)(2(k + 1) - 1)/3``
= (k + 2)(2k + 7)(2k + 1)/3``
= [(k + 1) + 1](2k + 7)(2k + 1)/3``
= (k + 1)(2k + 7)(2k + 1)/3 + (2k + 7)(2k + 1)/3``
= (k + 1)(2k + 5)(2k - 1)/3 - 4(5 + k)(4k+1)(4k+3) + (2k + 7)(2k + 1)/3`
After simplifying, we obtain that LHS = RHS. Therefore, the statement is true for `n = k + 1`.
Since the statement satisfies both conditions of the Principle of Mathematical Induction, the statement is true for all natural numbers `n`.
Thus, we have proved that `7² + 9² + ... + (21 - 1² - n(2n-1)(2n+1)) = (n + 1)(2n + 5)(2n - 1)/3` for all natural numbers `n`.
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Suppose that a company wishes to predict sales volume based on the amount of advertising expenditures. The sales manager thinks that sales volume and advertising expenditures are modeled according to the following linear equation. Both sales volume and advertising expenditures are in thousands of dollars.
Estimated Sales Volume=49.07+0.49(Advertising Expenditures)
If the company has a target sales volume of $125,000, how much should the sales manager allocate for advertising in the budget? Round your answer to the nearest dollar.
The estimate should be used with caution and regularly evaluated for accuracy.
To achieve a target sales volume of $125,000, the sales manager should allocate $255,000 (rounded to the nearest dollar) for advertising in the budget based on the linear equation that estimates sales volume as a function of advertising expenditures.
The equation provided is Estimated Sales Volume = 49.07 + 0.49(Advertising Expenditures), where both sales volume and advertising expenditures are in thousands of dollars. Substituting the target sales volume of $125,000 into the equation and solving for advertising expenditures yields $255,000. This means that the sales manager will need to invest $255,000 in advertising expenses to generate the desired level of sales. It is important to note that the linear equation assumes a constant slope of 0.49, which may not hold true for all levels of advertising expenditures.
Therefore, the estimate should be used with caution and regularly evaluated for accuracy.
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Determine the median, quartile 1, quartile 2 and the interquartile range for the following set
of data. Then, draw the box and whisker plot.
88 56 72 67 59 48 81 62 90 75 75 43 71 64 78 84
The median of the given set is 71, and the interquartile range is 22.
To find the median, arrange the data in ascending order: 43, 48, 56, 59, 62, 64, 67, 71, 72, 75, 75, 78, 81, 84, 88, 90. Since the number of data points is even, the median is the average of the middle two values, which in this case is 71.
Quartile 1 (Q1) is the median of the lower half of the data, which is the average of the middle two values in the first half: 56 and 59. So, Q1 = (56 + 59) / 2 = 57.5.
Quartile 3 (Q3) is the median of the upper half of the data, which is the average of the middle two values in the second half: 81 and 84. So, Q3 = (81 + 84) / 2 = 82.5.
The interquartile range (IQR) is the difference between Q3 and Q1: IQR = Q3 - Q1 = 82.5 - 57.5 = 25.
To draw the box and whisker plot, we start by drawing a number line and marking the minimum value (43) and the maximum value (90). Then, we draw a box from Q1 to Q3 (57.5 to 82.5) and a line inside the box to represent the median (71). Finally, we draw "whiskers" extending from the box to the minimum and maximum values.
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The number of new cars sold by "Ma's New Car Factory" in a financial year can be approximated by a normal distribution with a mean of 125,000 cars and a standard deviation of 35,000 cars.
Part A
In order to recover all costs associated with manufacture they need to sell 100,000 cars. What is the probability that "Ma's New Car Factory" will do better than just covering their costs if the sales are distributed as expected? Give your answer to two decimal places in the form x.xx.
Answer: Answer
Part B
What is the number of cars sales that the company has a only a 10% chance of achieving next year? Give you answer as a whole number.
The probability that "Ma's New Car Factory" will do better than just covering their costs if the sales are distributed as expected is 0.76
The number of car sales that the company has a only a 10% chance of achieving next year is 169800 cars.
Part A
The probability that "Ma's New Car Factory" will do better than just covering their costs if the sales are distributed as expected is given by the z-score.
z = (x - μ) / σHere, x = 100000, μ = 125000 and σ = 35000.
Substituting these values, we get
z = (100000 - 125000) / 35000 = -0.71
Using the standard normal distribution table, the probability of getting a z-score less than -0.71 is 0.2389.
Therefore, the probability that "Ma's New Car Factory" will do better than just covering their costs if the sales are distributed as expected is 0.76 (rounded to two decimal places).
Answer: 0.76
Part B
We need to find the number of car sales that the company has a only a 10% chance of achieving next year.
In other words, we need to find the value of x such that
P(x < X) = 0.10where X is the random variable representing the number of new cars sold next year.
We can use the standard normal distribution table to find the corresponding z-score. From the table,
P(Z < 1.28) = 0.8997
This means that P(Z > 1.28) = 0.1003Using the z-score formula,
z = (x - μ) / σ
Substituting the values, we get
1.28 = (x - 125000) / 35000
Multiplying both sides by 35000, we get
x - 125000 = 1.28 × 35000 = 44800x = 169800 cars (rounded to the nearest whole number)
Therefore, the number of car sales that the company has a only a 10% chance of achieving next year is 169800 cars. Answer: 169800
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Use the following sample to estimate a population mean μμ.
51.3
59.5
58.1
57.1
55.3
61
Assuming the population is normally distributed, find the 99.9% confidence interval about the population mean. Enter your answer as an open-interval (i.e., parentheses) accurate to two decimal places.
99.9% C.I. =
The 99.9% confidence interval about the population mean is given as follows:
(47.6, 66.6).
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 critical value, using a t-distribution calculator, for a two-tailed 99.9% confidence interval, with 6 - 1 = 5 df, is t = 6.86.
The parameters are given as follows:
[tex]\overline{x} = 57.1, s = 3.4, n = 6[/tex]
The lower bound is given as follows:
[tex]57.1 - 6.86 \times \frac{3.4}{\sqrt{6}} = 47.6[/tex]
The upper bound is given as follows:
[tex]57.1 + 6.86 \times \frac{3.4}{\sqrt{6}} = 66.6[/tex]
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Solve the linear system x1 + 2x2 = -1 , 3x1 + 4x2 = -1 via Cramer's rule if possible.
The solution of the given linear system is:
x1 = 1
x2 = -2
The linear system of equations are:
x1 + 2x2 = -1 ... (1)
3x1 + 4x2 = -1 ... (2)
We can use Cramer's rule to solve the above linear system. The solution is obtained by dividing the determinant of the matrix obtained by substituting the constant terms into the coefficient matrix, Ax, and the determinant of the coefficient matrix. The value of x1 can be determined by replacing the first column of the coefficient matrix with the constant matrix and dividing the resulting determinant by the determinant of the coefficient matrix.
Similarly, we can determine x2 by replacing the second column of the coefficient matrix with the constant matrix and dividing the resulting determinant by the determinant of the coefficient matrix.
The determinant of the coefficient matrix, A is:
|A| = (1 * 4) - (2 * 3) = -2
The determinant of the matrix obtained by substituting the constant terms into the coefficient matrix, Ax is:
|Ax| = (-1 * 4) - (-1 * 2) = -2
The determinant of the matrix obtained by substituting the constant terms into the coefficient matrix, Ay is:
|Ay| = (1 * -1) - (-1 * 3) = 4
Therefore, the value of x1 is obtained by dividing the determinant of Ax by the determinant of A. Hence,
x1 = (-2)/(-2) = 1
Similarly, the value of x2 is obtained by dividing the determinant of Ay by the determinant of A. Hence,
x2 = 4/(-2) = -2
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In a one tail test for the population mean if the null hypothesis is not rejected when alternative hypothesis is true then :
In a one-tail test for the population mean, if the null hypothesis is not rejected when the alternative hypothesis is true, it indicates a Type II error. This means that the test fails to detect a significant difference when one truly exists in the population mean.
In statistical hypothesis testing, a Type II error occurs when the null hypothesis is not rejected, despite it being false or the alternative hypothesis being true. In the context of a one-tail test for the population mean, the null hypothesis assumes that there is no significant difference between the sample mean and the hypothesized population mean.
If the null hypothesis is not rejected when the alternative hypothesis is true, it implies that the test fails to detect a significant difference in the population mean. This could occur due to various reasons, such as a small sample size or a weak effect size. It is important to minimize the chances of Type II errors by ensuring an adequate sample size and conducting power analyses to detect meaningful differences.
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Create a hypothetical study that would use the following statistical test:
a) paired-sample t-test?
b) independent one-way ANOVA?
c) Chi Square test?
A paired-sample t-test is used to compare the means of two related groups. For example, you could use a paired-sample t-test to compare the weight of a group of people before and after they start a new diet.
How to explain the informationAn independent one-way ANOVA is used to compare the means of three or more independent groups. For example, you could use an independent one-way ANOVA to compare the test scores of a group of students who took different versions of the same test.
A chi square test is used to compare the observed frequencies of a categorical variable to the expected frequencies.
Chi Square test can be used for a study to compare the number of people who voted for each candidate in an election to the number of people who were registered to vote.
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Determine all solutions of the given equation. Express your answer(s) using radian measure.
2 tan2 x + sec2 x - 2 = 0 Ox= 1/3 + πk, where k is any integer 0x = π/6 + πk, where k is any integer x = 2n/3 + k, where k is any integer Ox= 5/6 + nk, where k is any integer
The equation 2tan^2(x) + sec^2(x) - 2 = 0 has solutions x = (1/3 + πk), x = (π/6 + πk), x = (2n/3 + k), and x = (5/6 + nk), where k is any integer and n is any integer multiple of 3.
To determine the solutions of the equation 2tan^2(x) + sec^2(x) - 2 = 0, we can use trigonometric identities to simplify and find the values of x. Firstly, we rewrite tan^2(x) in terms of sec^2(x) using the identity tan^2(x) = sec^2(x) - 1. Substituting this identity into the equation, we get:
2(sec^2(x) - 1) + sec^2(x) - 2 = 0
3sec^2(x) - 4 = 0
Simplifying further, we have sec^2(x) = 4/3. Taking the square root of both sides, we obtain sec(x) = ±√(4/3).
Using the definition of sec(x) as 1/cos(x), we find that cos(x) = ±√(3/4). This implies that x is an angle where the cosine is equal to ±√(3/4).
From the unit circle, we know that the cosine of π/6, π/3, 5π/6, and 7π/6 is √(3/4). Hence, we have x = π/6 + πk and x = 5π/6 + πk as solutions.
Since sec(x) is positive, we also have x = 1/3 + πk and x = 2/3 + πk as solutions.
Furthermore, x = 2n/3 + k, where n is any integer multiple of 3, and x = 5/6 + nk, where k is any integer, are additional solutions to the equation.
These solutions cover all possible values of x that satisfy the given equation, expressed in radian measure.
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Give a big-O estimate for the number of operations, where an operation is an addition or a multiplication, used in this segment of an algorithm (ignoring comparisons used to test the conditions in the while loop). i := 1; t := 0; while i ≤ n; t := t + i; i := 2i.
There are several ways to determine that an angle is a right angle, which means it measures exactly 90 degrees. Here are three different methods to identify a right angle:
Using a protractor: One of the most common and accurate ways to determine if an angle is a right angle is by using a protractor. Place the protractor on the angle in question, aligning the base of the protractor with one side of the angle. Then, check the scale on the protractor and verify that the angle measures exactly 90 degrees.
Using a carpenter's square or a set square: A carpenter's square or a set square is a right-angled tool with two arms at a 90-degree angle. To determine if an angle is right, place one arm of the square along one side of the angle and the other arm along the other side. If the third side of the angle aligns perfectly with the square's edge, it confirms that the angle is a right angle.
Observing perpendicular lines: Another way to identify a right angle is by examining the relationship between lines. In a Euclidean plane, if two lines intersect and the adjacent angles formed are equal and measure 90 degrees each, it indicates the presence of a right angle. This method is particularly useful when dealing with geometric shapes or structures where perpendicular lines are evident, such as squares or rectangles. These methods provide different approaches to determine whether an angle is a right angle, allowing for flexibility and confirmation through various measurement tools or geometric relationships.
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Distinguish between the following: (a) Well-conditioned system and Ill-conditioned system. [3 marks) (b) Consistent system and Inconsistent system [3 marks] (c) Bisection and Newton Raphson method of solving non-linear equations.
(a) Well-conditioned system and ill-conditioned system:
In numerical analysis, a well-conditioned system refers to a problem where small changes in the input yield small changes in the output. It means that the problem is stable and the solution is relatively insensitive to perturbations.
On the other hand, an ill-conditioned system is one in which small changes in the input result in large changes in the output. These problems are unstable and sensitive to perturbations, making it challenging to obtain accurate solutions.
(b) Consistent system and inconsistent system:
In the context of linear equations, a consistent system refers to a set of equations that has at least one solution. It means that the system of equations is solvable, and there exists a combination of values that satisfies all the equations simultaneously.
An inconsistent system, on the other hand, has no solutions. It means that the system of equations cannot be satisfied simultaneously, indicating a contradiction or an incompatible set of equations.
(c) Bisection method and Newton-Raphson method of solving non-linear equations:
The bisection method is a numerical algorithm used to find the root or solution of a non-linear equation. It works by repeatedly dividing the interval containing the root and narrowing it down until the root is approximated within a desired tolerance. The bisection method is simple, reliable, and guaranteed to converge, but it usually requires more iterations to reach the solution compared to other methods.
The Newton-Raphson method, also known as the Newton's method, is an iterative method for finding the root of a non-linear equation. It utilizes the derivative of the function to approximate the root. It starts with an initial guess and successively refines the approximation by linearizing the function at each step. The Newton-Raphson method often converges faster than the bisection method but requires the availability of the derivative, which may not always be feasible or computationally efficient.
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According to a recent study, 72% of all students at Cabrillo are in favor of eliminating the algebra requirement for the general education package. In a random sample of 100 students, what is the probability that more than 80% of the students feel this way? Note that in this situation, we may assume the sampling distribution of p is approximately normal. Find the mean of the sampling distribution of p, p = Find the standard deviation of the sampling distribution of p, op Round to the nearest thousandths (3 decimal places) P(more than 80% of students are in favor) = Round to the nearest thousandths (3 decimal places) The area this probability represents is (choose: right/left/two) tailed.
The probability that more than 80% of the students are in favor is 0.036.
The area this probability represents is a right-tailed area.
What is the mean and standard deviation?Assuming that the sampling distribution of p is approximately normal.
Given:
The proportion of students in favor of eliminating the algebra requirement (p) = 0.72
Sample size (n) = 100
To find the probability that more than 80% of the students feel this way, we need to calculate the cumulative probability of p being more significant than 0.80.
First, let's find the mean (μ) of the sampling distribution of p:
μ = p = 0.72
Next, let's find the standard deviation (σ) of the sampling distribution of p:
σ = sqrt[(p * (1 - p)) / n]
= sqrt[(0.72 * (1 - 0.72)) / 100]
≈ 0.044
Now, we can use the normal distribution with mean μ and standard deviation σ to calculate the probability.
P(more than 80% of students are in favor) = 1 - P(p ≤ 0.80)
= 1 - P((p - μ) / σ ≤ (0.80 - μ) / σ)
= 1 - P(Z ≤ (0.80 - 0.72) / 0.044)
= 1 - P(Z ≤ 1.818)
Using a calculator, P(Z ≤ 1.818) ≈ 0.964.
Therefore,
P(more than 80% of students are in favor) ≈ 1 - 0.964 or 0.036
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Which partial quotients could be added to find 777 - 21? ~ 30 and 3 ® 30 and 7 40 and 3 0 40 and 10
The partial quotients that could be added to find 777 - 21 are 30 and 7.
To find the partial quotients that could be added to find 777 - 21, we can perform long division.
_____
21 | 777
We start by dividing 777 by 21:
The first partial quotient is 30.
Multiply 30 by 21, which gives 630.
Subtract 630 from 777, resulting in 147.
Bring down the next digit (7) and append it to 147.
Divide 147 by 21, yielding a partial quotient of 7.
Multiply 7 by 21, which gives 147.
Subtract 147 from 147, resulting in 0.
Therefore, the partial quotients that could be added to find 777 - 21 are 30 and 7.
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A data set o model. Complete parts a through c below. f5 observations for Concession Sales per person (S) at a theater and Minutes before the movie begins results in the following estimated regression Sales 44+0.240 Minutes a A 90% prediction interval for a concessions customer 10 minutes before the movie starts is answer below. $5.88,$7.72 Explain how to interpret this interval. Choose the c A. 90% of all customers spend between $5.88 and $7.72 at the concession stand. B. There is a 90% chance that the mean amount spent by customers at the C. concession stand 10 minutes before the movie starts is between $5.88 and $7 90% of the 5 observed customers 10 minutes before the movie starts can be expected to spend between $5.88 and $7.72 at the concession stand. D. 90% of customers 1 O minutes before the movie starts can be expected to spend between $5.88 and $7.72 at the concession stand.
The correct answer is C. 90% of the 5 observed customers 10 minutes before the movie starts can be expected to spend between $5.88 and $7.72 at the concession stand.
To interpret the 90% prediction interval of $5.88 to $7.72 for a concessions customer 10 minutes before the movie starts, we can choose the appropriate interpretation from the given options.
The correct interpretation is
C. 90% of the 5 observed customers 10 minutes before the movie starts can be expected to spend between $5.88 and $7.72 at the concession stand.
In this context, a 90% prediction interval means that if we were to take a random sample of customers who arrive 10 minutes before the movie starts, we can expect that 90% of the time, the sales per person at the concession stand would fall within the interval of $5.88 to $7.72.
Since the given regression model is based on observed data, the prediction interval provides an estimate of the range in which the sales per person for future customers are likely to fall. The interval is constructed in such a way that it captures the expected variation in sales based on the regression model.
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The P-FIT model examines the interrelations between the parietal lobe, located , and the frontal lobe, located ___________.
The P-FIT (Parieto-Frontal Integration Theory) model is a neuroscientific framework that focuses on understanding the interconnections and functional interactions between two key brain regions: the parietal lobe and the frontal lobe.
The parietal lobe is located in the posterior part of the brain, positioned towards the top and back. It plays a crucial role in processing sensory information, spatial awareness, attention, and perception. The parietal lobe integrates sensory inputs from various modalities and helps in constructing a coherent representation of the external world.
Overall, the P-FIT model provides a framework for understanding the interplay between the parietal and frontal lobes and highlights their collaborative role in supporting higher-order cognitive functions.
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Simplify as far as possible. Please include the working in your answer, step by step.
[tex] \frac{9 {x}^{2} - 4 }{15 {x}^{2} - 13x + 2} [/tex]
[tex] \mathfrak{ \huge{SOLUTION}}[/tex]
[tex] \rm \implies \dfrac{9x - 4}{15 {x}^{2} - 13x + 2} [/tex]
[tex] \rm \implies = \dfrac{(3x {)}^{2} - {2}^{2} }{ {15x}^{2} 10 - 3x + 2} [/tex]
[tex] \rm{ \implies \dfrac{(3x + 2)(3x - 2)}{(5x - 1)(3x - 2)} }[/tex]
[tex]\boxed{ \rm{ \dfrac{3 x + 2}{5x - 1} }}[/tex]
[tex] \mathfrak{ \huge{ANSWER:}}[/tex]
[tex]\qquad \bm{ \dfrac{3 x + 2}{5x - 1} } \qquad[/tex]
[tex] \\ [/tex]
[tex] \quad \tt{ \green{~Brainly-Philippines}} \quad[/tex]
[tex]\downarrow[/tex]
A police department released the numbers of calls for the different days of the week during the month of October, as shown in the table to the right. Use a
0.01
significance level to test the claim that the different days of the week have the same frequencies of police calls. What is the fundamental error with this analysis?
Day
Sun
Mon
Tues
Wed
Thurs
Fri
Sat
Frequency
153
209
221
249
178
210
234what is the test statistic
what is the p value
determine the null and alternative hypotheses
what is the conclusion for this hypothesis
To test the claim that the different days of the week have the same frequencies of police calls, we can use a chi-squared goodness-of-fit test.
This test compares the observed frequencies with the expected frequencies under the assumption of equal frequencies for all days of the week.
To find the test statistic, we first calculate the expected frequencies by dividing the total number of calls (1454) equally among the seven days of the week.
The expected frequency for each day is approximately 1454/7 ≈ 207.7.
Next, we calculate the chi-squared statistic by summing the squared differences between the observed and expected frequencies, divided by the expected frequencies. The formula is:
χ² = Σ [(O - E)² / E]
Performing the calculations, we obtain a chi-squared statistic of approximately 11.56.
To find the p-value associated with this test statistic, we consult a chi-squared distribution table or use statistical software. With six degrees of freedom (seven days minus one), the p-value is found to be greater than 0.01, indicating that the data does not provide sufficient evidence to reject the null hypothesis.
The null hypothesis (H₀) states that the frequencies of police calls for each day of the week are the same. The alternative hypothesis (H₁) suggests that the frequencies differ across the days of the week.
Based on the test results and the significance level of 0.01, we fail to reject the null hypothesis. This means that there is not enough evidence to conclude that the frequencies of police calls significantly differ across the days of the week.
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