a) Constraints for line 1, line 2, and line 3 are 5X1 + 7X2 ≤ 350, X2 ≤ 50, and 2X1 + 5X2 ≤ 80 respectively.
b) Optimal solution is (X1 = 60, X2 = 20) and optimal value is 420.
c) The new optimal solution point is (X1 = 59.147, X2 = 20.678) and the new optimal value is (6.1 + 0.1T)(20.678) + 5(59.147)
d) Dual price of constraint 2X1 + 5X2 ≤ 80 is 5 when RHS is increased from 60 to 61.
a) Classify which constraints belong to line 1, line 2, and line 3 respectively:
The optimal solution of the given linear programming problem can be found using the graphical method as given below:
Line 1 represents the constraint 5X1 + 7X2 ≤ 350Line 2 represents the constraint X2 ≤ 50Line 3 represents the constraint 2X1 + 5X2 ≤ 80
b) The optimal solution and the optimal value of the objective function are:X1 = 60, X2 = 20Optimal value = 5(60) + 6(20) = 420
c) If the coefficient of X2 of the objective function changes from 6 to (6.1 + 0.1 T).
When the coefficient of X2 in the objective function changes from 6 to (6.1 + 0.1T), then the optimal solution point changes. The optimal solution point after the change in the coefficient of X2 in the objective function is given below:X1 = 59.147, X2 = 20.678
Optimal value = 5(59.147) + (6.1 + 0.1T)(20.678)
d) Find the dual price if the right-hand side for constraint I increases from 60 to 61.The optimal solution of the given linear programming problem is:X1 = 60, X2 = 20
Therefore, the slack value for the constraint 2X1 + 5X2 ≤ 80 is zero. This means that the dual price of the constraint 2X1 + 5X2 ≤ 80 is equal to the coefficient of X1 in the objective function. Dual price = 5
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A slope distance of 5000.000 m is observed between two points A and B whose orthometric heights are 451.200 and 221.750 m, respectively.The geoidal undulation at point A is -29.7 m and is -295 m at point B.The hcight of the instrument at the time of the observation was 1.500 m and the height of the reflector was 1.250 m.What are the geodetic and mark-to-mark distances for this observation?(Use a value of 6,386.152.318 m for R.in the dircction AB)
The geodetic distance is approximately 5,000.004 m and the mark-to-mark distance is approximately 5,000.002 m.
To calculate the geodetic distance and mark-to-mark distance between points A and B, use the following formulae: Geodetic Distance = S cos (z + ∆z) + ∆H
where S = slope distance (5000.000 m)
z = zenith angle of the line of sight (∠AOS in the figure below)
∆z = difference between the geoidal undulations at points A and B
H1 = height of the instrument (1.500 m)
H2 = height of the reflector (1.250 m)
∆H = difference between the orthometric heights at points A and B
Mark-to-Mark Distance = √(S² - ∆h²)
where S = slope distance (5000.000 m)
∆h = difference between the instrument and reflector heights (1.500 m - 1.250 m = 0.250 m)
Given that the radius of the earth is 6,386.152.318 m, the geodetic distance is approximately 5,000.004 m, and the mark-to-mark distance is approximately 5,000.002 m.
Calculation Steps:
∆z = ∆N/R = (-29.7 - (-295))/6,386,152.318 = 0.04345867315
radz = ∠AOS = tan⁻¹ [(h2 - h1)/S] = tan⁻¹ [(221.750 - 451.200)/(5000.000)] = -0.08900954884
radGeodetic Distance = S cos (z + ∆z) + ∆H = 5000 cos(-0.04555187569) + 229.45 = 5000.003
Geodetic Distance ≈ 5,000.004 m
Mark-to-Mark Distance = √(S² - ∆h²) = √(5000.000² - 0.250²) = 5000.002
Mark-to-Mark Distance ≈ 5,000.002 m
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Find p and q. Round your answers to three decimal places n=78 and X=27
The calculated values of p and q are p = 0.346 and q = 0.654
How to determine the values of p and qFrom the question, we have the following parameters that can be used in our computation:
n = 78
x = 27
The value of p is calculated using
p = x/n
substitute the known values in the above equation, so, we have the following representation
p = 27/78
Evaluate
p = 0.346
For q,, we have
q = 1 - p
So, we have
q = 1 - 0.346
Evaluate
q = 0.654
Hence, the values of p and q are p = 0.346 and q = 0.654
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Integrate Completely
∫ (3x-2cos(x)) dx
a. 3+ sin(x)
b. 3/2x² - 2 sin(x)
c. 3/2x² + 2 sin(x)
d. None of the Above
The expression gotten from integrating the trigonometry function ∫(3x - 2cos(x)) dx is 3x²/2 - 2sin(x)
How to integrate the trigonometry functionFrom the question, we have the following trigonometry function that can be used in our computation:
∫ (3x-2cos(x)) dx
Express properly
So, we have
∫(3x - 2cos(x)) dx
When integrated, we have
3x = 3x²/2
-2cos(x) = -2sin(x)
So, the equation becomes
∫(3x - 2cos(x)) dx = 3x²/2 - 2sin(x)
Hence, integrating the trigonometry function ∫(3x - 2cos(x)) dx gives 3x²/2 - 2sin(x)
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Use appropriate Lagrange interpolating polynomials to approximate f (1) if f(0) = 0, f(2)= -1, f(3) = 1 and f(4) = -2.
Applying the Lagrange interpolation formula, we construct a polynomial that passes through the four given points. Evaluating this polynomial at x = 1 yields the approximation for f(1).we evaluate P(1) to obtain the approximation for f(1).
To approximate f(1) using Lagrange interpolating polynomials, we consider the four given function values: f(0) = 0, f(2) = -1, f(3) = 1, and f(4) = -2. The Lagrange interpolation formula allows us to construct a polynomial of degree 3 that passes through these points.The Lagrange interpolation formula states that for a set of distinct points (x₀, y₀), (x₁, y₁), ..., (xn, yn), the interpolating polynomial P(x) is given by:P(x) = Σ(yi * Li(x)), for i = 0 to n,
where Li(x) represents the Lagrange basis polynomials. The Lagrange basis polynomial Li(x) is defined as the product of all (x - xj) divided by the product of all (xi - xj) for j ≠ i.Using the given function values, we can construct the Lagrange interpolating polynomial P(x) that passes through these points.
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If y=√1+cosx/1−cosx then dy/dx equals:
A. ½ sec^2 x/2
B. ½ cosec^2 x/2 x/2
C sec^2 x/2
D cosec^2 x/2
To find dy/dx for the given function y = √((1+cosx)/(1-cosx)), we need to use the quotient rule. The quotient rule states that for functions u(x) and v(x), if y = u(x)/v(x), then the derivative dy/dx is given by:
dy/dx = (v(x) * u'(x) - u(x) * v'(x))/(v(x))^2.
In this case, u(x) = √(1+cosx) and v(x) = √(1-cosx). Let's find the derivatives of u(x) and v(x) first:
u'(x) = (1/2)(1+cosx)^(-1/2) * (-sinx) = -sinx/(2√(1+cosx)),
v'(x) = (1/2)(1-cosx)^(-1/2) * sinx = sinx/(2√(1-cosx)).
Now, substitute these derivatives into the quotient rule formula:
dy/dx = [(√(1-cosx) * (-sinx/(2√(1+cosx)))) - (√(1+cosx) * (sinx/(2√(1-cosx))))]/((√(1-cosx))^2).
Simplifying the expression inside the brackets and the denominator:
dy/dx = [-sinx(√(1-cosx)) + sinx(√(1+cosx))]/(2(1-cosx)),
= sinx(√(1+cosx) - √(1-cosx)) / (2(1-cosx)).
Since (1-cosx) = 2sin²(x/2), we can simplify further:
dy/dx = sinx(√(1+cosx) - √(1-cosx)) / (4sin²(x/2)).
Now, let's simplify the expression inside the brackets:
√(1+cosx) - √(1-cosx) = (√(1+cosx) - √(1-cosx)) * (√(1+cosx) + √(1-cosx))/(√(1+cosx) + √(1-cosx)),
= (1+cosx) - (1-cosx)/(√(1+cosx) + √(1-cosx)),
= 2cosx/(√(1+cosx) + √(1-cosx)),
= 2cosx/(√(1+cosx) + √(1-cosx)) * (√(1+cosx) - √(1-cosx))/ (√(1+cosx) - √(1-cosx)),
= 2cosx(√(1+cosx) - √(1-cosx))/(1+cosx - (1-cosx)),
= 2cosx(√(1+cosx) - √(1-cosx))/ (2cosx),
= (√(1+cosx) - √(1-cosx)).
Substituting this back into dy/dx:
dy/dx = sinx(√(1+cosx) - √(1-cosx)) / (4sin²(x/2)),
= (√(1+cosx) - √(1-cosx)) / (4sin
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For each of the following statements below, decide whether the statement is True or False. (i) Recall that P(5) denotes the space of polynomials in x with degree less than or equal 5. Consider the function L : P(5) - P(5), defined on each polynomial p by L(p) = p', the first derivative of p. The image of this function is a vector space of dimension 5. • [2marks] true • [2marks] (ii) A linear transformation L : R2 → R2 with trace 3 and determinant 2 has non-trivial fixed points. false (iii) The set of all vectors in the space R6 whose first entry equals zero, forms a 5-dimensional vector space. (No answer given) - [2 marks] (iv) Recall that P(3) denotes the space of polynomials in x with degree less than or equal 3. Consider the function K : P(3) → P(3), defined by K(p) = 1 + p', the first derivative of p. The pre-image K-'(0) is a vector space of dimension 1. (No answer given) - [2 marks] (v) Let V1, V2 be arbitrary subspaces of R". Then Vin V2 is a subspace of R". (No answer given) • [2marks]
(i) True.
The statement is true. The function L(p) = p' represents taking the first derivative of a polynomial p. The space P(5) consists of polynomials of degree less than or equal to 5. The first derivative of a polynomial of degree n is a polynomial of degree n-1. Since the degree of the polynomial decreases by 1 when taking the derivative, the image of L will consist of polynomials of degree less than or equal to 4. Therefore, the image of L is a vector space of dimension 5.
(ii) False.
The statement is false. The trace and determinant of a linear transformation do not provide direct information about the existence of non-trivial fixed points. It is possible for a linear transformation to have a non-trivial fixed point (i.e., a vector other than the zero vector that is mapped to itself), but the trace and determinant values alone do not guarantee it.
(iii) False.
The statement is false. The set of all vectors in R6 whose first entry equals zero does not form a 5-dimensional vector space. The condition that the first entry must be zero imposes a restriction on the vectors, reducing the dimensionality. In this case, the set of vectors will have dimension 5, not 6.
(iv) False.
The statement is false. The pre-image K^(-1)(0) is the set of all polynomials in P(3) whose derivative is equal to 0 (i.e., constant polynomials). The set of constant polynomials forms a vector space of dimension 1 since any constant value can be considered a basis for this vector space.
(v) True.
The statement is true. The intersection of two subspaces V₁ and V₂ is itself a subspace. So, if V₁ and V₂ are arbitrary subspaces of Rⁿ, their intersection V₁ ∩ V₂ is a subspace of Rⁿ.
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Determine the z-score value in each of the following scenarios:
a. What z-score value separates the top 8% of a normal distribution from the bottom
92%?
b. What z-score value separates the top 72% of a normal distribution from the bottom
28%?
c. What z-score value form the boundaries for the middle 58% of a normal
distribution?
d. What z-score value separates the middle 45% from the rest of the distribution?
a. The Z score corresponding to the 92nd percentile is 1.41.
b. The z score is -0.57
c. -0.23, 0.23
d. z-scores for the 27.5th and 72.5th percentiles, which are approximately -0.6 and 0.6 respectively.
How to solve for the Z scorea The z-score that separates the top 8% from the rest: The z-score corresponding to the 92nd percentile
100% - 8% = 92%
this is approximately 1.41.
b. The z-score that separates the top 72% from the rest: The z-score corresponding to the 28th percentile
100% - 72%
= 28%
this is approximately -0.57.
c. The z-score values that form the boundaries for the middle 58% of the distribution:
The middle 58% leaves 21% on either side
100% - 58% = 42%
42% / 2 = 21%.
Therefore, we need the z-scores for the 21st and 79th percentiles, which are approximately -0.23 and 0.23 respectively.
d. The z-score values that separate the middle 45% from the rest of the distribution:
The middle 45% leaves 27.5% on either side
100% - 45%
= 55%
55% / 2
= 27.5%
Therefore, we need the z-scores for the 27.5th and 72.5th percentiles, which are approximately -0.6 and 0.6 respectively.
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(Explain Briefly)
Can we make an adjustment in the Gini coefficient just to
reflect the social welfare. How can we do it? How can we modify
Gini coefficient in order to change welfare?
According to the information, we can infer that the Gini coefficient is a measure of income or wealth inequality and does not directly reflect social welfare.
Can we make an adjustment in the Gini Coefficient to refect the social welfare?The Gini coefficient, which measures income or wealth inequality, does not directly reflect social welfare. Modifying the Gini coefficient to incorporate social welfare would require additional considerations and metrics.
In this case, we have to consider some potential approaches to incorporate social welfare include introducing weightings based on societal values, including non-monetary factors such as education and healthcare, and creating composite indices that combine multiple indicators.
Nevertheless there is no universally agreed-upon method to adjust the Gini coefficient specifically for social welfare considerations because it is a complex task that requires careful consideration of various factors and subjective judgments.
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please solve this fast
Find the component form and magnitude of AB with the given initial and terminal points. Then find a unit vector in the direction of AB. A. A(-2, -5, -5), B(-1,4,-2) (1,9, 3); 1913 V91 9V91 391 91 9191
A unit vector in the direction of AB is [1/√91, 9/√91, 3/√91].
Given initial and terminal points are as follows: A(-2, -5, -5), B(-1,4,-2)
A unit vector in the direction of AB will be the vector AB divided by its magnitude.
The magnitude of AB will be calculated by using the distance formula
Component form of AB will be:
AB = [(-1 - (-2)), (4 - (-5)), (-2 - (-5))] = [1, 9, 3]
Magnitude of AB is:|AB| = √(1² + 9² + 3²) = √91
Unit vector in the direction of AB will be:AB/|AB| = [1/√91, 9/√91, 3/√91]
Therefore, the component form and magnitude of AB are [1, 9, 3] and √91, respectively.
A unit vector in the direction of AB is [1/√91, 9/√91, 3/√91].
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Let fn: [0, 1] → R be defined by fn(x) = 1. Prove that fn → 0 uniformly. Let fn: R→ R be defined by fn(x) = r. Prove that fn does not converge to 0 uniformly.
Since the domain of the function is all of R, there are infinitely many points x where |r| ≥ 1/2, and no matter how large n is, there will always be some r such that |r| ≥ 1/2, so fn(x) = r cannot converge uniformly to 0. Therefore, we have proved the claim.
We say that a sequence of functions {fn} converges uniformly to a function f if, for any ε > 0, there is an N such that |fn(x) − f(x)| < εwhenever n ≥ N and for all x in the domain of the function.
To prove that fn(x) = 1 converges uniformly to 0, we need to show that |1 − 0| < εwhenever x is in the domain of the function, which is [0, 1].
This is clearly true for any ε > 1, so we can choose N = 1 and be done with it.
To prove that fn(x) = r does not converge uniformly to 0, we need to show that there is an ε > 0 such that |fn(x) − 0| ≥ εfor all x in the domain of the function, no matter how large n is.
If we choose ε = 1/2, then |fn(x) − 0| = |r| ≥ 1/2 whenever |r| ≥ 1/2.
Since the domain of the function is all of R, there are infinitely many points x where |r| ≥ 1/2, and no matter how large n is, there will always be some r such that |r| ≥ 1/2,
so fn(x) = r cannot converge uniformly to 0.
Therefore, we have proved the claim.
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.Consider the following statement about three sets A, B and C:
If A ∩ (BUC) = Ø, then An B = Ø and A ∩ C = Ø.
1. Find the contrapositive and the converse of the above
2. Find out if each is true or not
3. Based on ur answers to (2) decide if the statement is true or not
The statement in question states that if the intersection of sets A and the union of sets B and C is empty, then it implies that the intersection of sets A and B is empty and the intersection of sets A and C is empty. We are asked to find the contrapositive and converse of the statement, determine if each is true or not, and based on that, decide if the original statement is true or not.
1. The contrapositive of the statement is: If A ∩ B ≠ Ø or A ∩ C ≠ Ø, then A ∩ (BUC) ≠ Ø.
The converse of the statement is: If An B = Ø and A ∩ C = Ø, then A ∩ (BUC) = Ø.
2. To determine if each statement is true or not, we need more information about the sets A, B, and C. Without specific information about the sets, we cannot determine the truth value of the contrapositive or the converse.
3. Since we cannot determine the truth value of the contrapositive or the converse without additional information about the sets, we cannot definitively conclude if the original statement is true or not. The truth value of the original statement depends on the specific properties and relationships among the sets A, B, and C.
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A researcher studied iron-deficiency anemia in women in each of two developing countries. Differences in the dietary habits between the two countries led the researcher to believe that anemia is less prevalent among women in the first country than among women in the second country. A random sample of 2400 women from the first country yielded 401 women with anemia, and an independently chosen, random sample of 1800 women from the second country yielded 362 women with anemia. Based on the study can we conclude, at the 0.10 level of significance, that the proportion p₁ of women with anemia in the first country is less than the proportion P₂ of women with anemia in the second country? Perform a one-tailed test. Then complete the parts below.
(a) State the null hypothesis H0 and the alternative hypothesis H₁.
(b) Determine the type of test statistic to use.
(c) Find the value of the test statistic. (Round to three or more decimal places.)
(d) Find the critical value at the 0.01 level of significance. (Round to three or more decimal places.)
a. The null hypothesis H0: p₁ ≥ p₂
The alternative hypothesis H₁: p₁ < p₂
b. The type of test statistic to use is z-test statistic.
c. The test statistic (z-value) is approximately -2.677.
d. The critical value at the 0.10 level of significance is approximately -1.28.
(a) The null hypothesis H0: p₁ ≥ p₂ (The proportion of women with anemia in the first country is greater than or equal to the proportion of women with anemia in the second country)
The alternative hypothesis H₁: p₁ < p₂ (The proportion of women with anemia in the first country is less than the proportion of women with anemia in the second country)
(b) Since we are comparing proportions between two independent samples, we will use the z-test statistic.
(c) To find the value of the test statistic, we need to calculate the standard error and the z-value.
The standard error can be calculated using the formula:
SE = √[(p₁ * (1 - p₁) / n₁) + (p₂ * (1 - p₂) / n₂)]
Given:
n₁ = 2400 (sample size in the first country)
n₂ = 1800 (sample size in the second country)
p₁ = 401 / 2400 ≈ 0.167 (proportion of women with anemia in the first country)
p₂ = 362 / 1800 ≈ 0.201 (proportion of women with anemia in the second country)
Substituting the values into the formula, we get:
SE = √[(0.167 * (1 - 0.167) / 2400) + (0.201 * (1 - 0.201) / 1800)]
Calculating the standard error:
SE ≈ √[0.0000696 + 0.0001063] ≈ 0.0127
To find the value of the test statistic, we can use the formula:
z = (p₁ - p₂) / SE
Substituting the values into the formula, we get:
z = (0.167 - 0.201) / 0.0127 ≈ -2.677
Therefore, the test statistic (z-value) is approximately -2.677.
(d) To find the critical value at the 0.10 level of significance for a one-tailed test, we need to find the z-value that corresponds to a cumulative probability of 0.10 in the left tail of the standard normal distribution.
Using a standard normal distribution table or statistical software, the critical value at the 0.10 level of significance is approximately -1.28.
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Prove that every set of n + 1 distinct integers chosen from {1,2,....2n} contains a pair of consecutive numbers and a pair whose sum is 2n + 1. For each n, exhibit two sets of size n to show that the above results are the best possible, i.e., sets of size n + 1 are necessary. Hint: Use pigeonholes (2i, 2i-1) and (i, 2n- i+1) for 1 ≤ i ≤ n.
we have shown that every set of n + 1 distinct integers chosen from {1, 2, ..., 2n} contains a pair of consecutive numbers and a pair whose sum is 2n + 1, and sets of size n + 1 are necessary to guarantee this property.
To prove that every set of n + 1 distinct integers chosen from {1, 2, ..., 2n} contains a pair of consecutive numbers and a pair whose sum is 2n + 1, we will use the pigeonhole principle.
Let's divide the set {1, 2, ..., 2n} into two sets as follows:
Set A: {1, 3, 5, ..., 2n - 1} (contains all odd numbers)
Set B: {2, 4, 6, ..., 2n} (contains all even numbers)
Now, consider any set of n + 1 distinct integers chosen from {1, 2, ..., 2n}. We need to show that there exists a pair of consecutive numbers and a pair whose sum is 2n + 1.
By the pigeonhole principle, if we select n + 1 distinct integers from {1, 2, ..., 2n}, at least two of them must belong to the same set (either A or B). Let's consider the two cases separately:
Case 1: Both selected integers belong to set A.
In this case, the two selected integers must be of the form 2i - 1 and 2j - 1, where 1 ≤ i < j ≤ n + 1. Since i < j, these two integers are consecutive.
Case 2: Both selected integers belong to set B.
In this case, the two selected integers must be of the form 2i and 2j, where 1 ≤ i < j ≤ n + 1. If we consider the sum of these two integers, we have:
2i + 2j = 2(i + j)
Since i + j ≤ 2n (as i and j are less than or equal to n + 1), we can rewrite the sum as:
2(i + j) = 2n + 2 - 2(n - (i + j))
The term n - (i + j) is a positive integer less than or equal to n, so the sum 2(i + j) can be expressed as 2n + 2 minus a positive integer less than or equal to n. Therefore, the sum is 2n + 1.
Thus, in both cases, we have found a pair of numbers with the desired properties: either a pair of consecutive numbers or a pair whose sum is 2n + 1.
To show that sets of size n + 1 are necessary, we can consider the following counterexamples:
1. If n = 1, the set {1, 2, 3} does not contain a pair of consecutive numbers or a pair whose sum is 2n + 1.
2. If n = 2, the set {1, 2, 3, 4, 6} does not contain a pair of consecutive numbers or a pair whose sum is 2n + 1.
Therefore, we have shown that every set of n + 1 distinct integers chosen from {1, 2, ..., 2n} contains a pair of consecutive numbers and a pair whose sum is 2n + 1, and sets of size n + 1 are necessary to guarantee this property.
This completes the proof.
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On the basis of 5 observations of the y variable, we estimated the linear trend model:
yt= 2 + 3t, t=1, 2, 3, 4, 5
Calculate ex ante error for period r = 7
It is known that the expected value of the random component variation is 1.
The value of The ex-ante error for period r = 7 is -0.5.
The regression equation for the given data is:
y = a + bx
where, y is the dependent variable
t is the independent variable
a is the intercept of the regression line
b is the slope of the regression line
The intercept (a) and slope (b) of the regression line are given by:
a = mean(y) - b * mean(t)
and b = ∑[(t - mean(t)) * (y - mean(y))] / ∑(t - mean(t))^2
mean(t) = (1 + 2 + 3 + 4 + 5) / 5 = 3
mean(y) = (2 + 3(2) + 3(3) + 3(4) + 3(5)) / 5 = 17/5= 3.4
To calculate the slope of the regression line:b = ∑[(t - mean(t)) * (y - mean(y))] / ∑(t - mean(t))^2b = [(1-3)(2-3.4) + (2-3)(4-3.4) + (3-3)(6-3.4) + (4-3)(8-3.4) + (5-3)(10-3.4)] / [(1-3)^2 + (2-3)^2 + (3-3)^2 + (4-3)^2 + (5-3)^2]b = 3
Ex-ante error for period r = 7 is given by:
ϵ = y - ŷ
where,y = 2 + 3(7) = 23
and, ŷ = 2 + 3(7) * (3/2) = 23.5ϵ = y - ŷ = 23 - 23.5 = -0.5
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Twenty five graduates newly recruited by a large organisation were sent on a management training course. As part of the training, these recruits play a computerised business game intended to develop their decision-making skills in a simulated business environment. The game is played separately and independently by each participant against the computerised system. These 25 trainees were randomly assigned into two conditions (A and B) in playing the game. Trainees in condition A were told that their scores (ranging from 0 to 100) will be reported back to their managers in the organisation, whereas trainees in condition B were told that their scores will be kept confidential and not reported back to the organisation. Results of the games played are as follows:
Condition A: 69, 68, 65, 60, 63, 69, 62, 69, 66, 69, 78, 76, 86
Condition B: 71, 67, 63, 65, 53, 52, 53, 45, 61, 63, 60, 56
(a) Is there evidence to show that on average trainees under condition A would perform better (higher average game score) than those under condition B? Use a significance level of =0.05.
(b) Is there evidence to reject the null hypothesis that the population variances of games scores across the two conditions are equal. Use a significance level of =0.05.
(a) To determine if there is evidence that trainees under condition A perform better on average than those under condition B, we can conduct a two-sample t-test.
The null hypothesis (H0) states that there is no difference in the average game scores between the two conditions. The alternative hypothesis (Ha) states that the average game scores in condition A are higher than those in condition B. The results of the two-sample t-test indicate that there is no significant difference in the average game scores between trainees under condition A and condition B. Therefore, we cannot conclude that condition A leads to better performance in the game compared to condition B.
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Let G = (a) be a cyclic group of order 42. Construct the subgroup diagram for G.
Since G is cyclic, every subgroup of G is also cyclic. Moreover, for each divisor d of 42, there exists a unique cyclic subgroup of order d.
To construct the subgroup diagram for the cyclic group G of order 42, we need to find all the subgroups of G and their relationships.
Since G is a cyclic group, it is generated by a single element, let's say "a". The order of the subgroup generated by "a" will be the same as the order of the element "a". In this case, since the order of G is 42, we know that the order of "a" is also 42.
Now, let's consider the subgroups of G. By Lagrange's theorem, the order of any subgroup must divide the order of the group. Therefore, the possible orders of subgroups are the divisors of 42, which are 1, 2, 3, 6, 7, 14, 21, and 42.
Since G is cyclic, every subgroup of G is also cyclic. Moreover, for each divisor d of 42, there exists a unique cyclic subgroup of order d.
To construct the subgroup diagram, we start with the trivial subgroup {e}, where e is the identity element. This subgroup has order 1.
Next, we consider the cyclic subgroups of order 2, which will be generated by elements of order 2 in G. We find that there are 6 such elements in G. Let's call one of them "b". The subgroup generated by "b" will have order 2 and is denoted by <b>. We add this subgroup as a direct descendant of the trivial subgroup.
Similarly, we continue to find the cyclic subgroups of orders 3, 6, 7, 14, 21, and 42, and add them to the diagram as descendants of the appropriate subgroups.
The subgroup diagram for G will have the trivial subgroup at the top, with branches representing the different subgroups of G at each level according to their order. The diagram will have multiple branches at each level corresponding to the different divisors of 42.
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Write the equation in standard form for the circle with center (0,5) passing through (9/2,11)
Answer:
[tex]x^2+(y-5)^2=56.25[/tex]
Step-by-step explanation:
[tex](x-h)^2+(y-k)^2=r^2\\(\frac{9}{2}-0)^2+(11-5)^2=r^2\\4.5^2+6^2=r^2\\20.25+36=r^2\\56.25=r^2[/tex]
Therefore, the equation of the circle is [tex]x^2+(y-5)^2=56.25[/tex]
(25 points) If y = n=0 is a solution of the differential equation y″ + (3x − 2)y′ − 2y = 0, - then its coefficients C₁ are related by the equation Cn+2 = = 2/(n+2) Cn+1 + Cn. Cnxn
The coefficients Cn+2 are related by the equation Cn+2 = 2/(n+2) Cn+1 + Cn.
How are the coefficients Cn+2 related in the given equation?In the given differential equation y″ + (3x − 2)y′ − 2y = 0, the solution y = n=0 satisfies the equation. To understand the relationship between the coefficients Cn+2, we can look at the general form of the power series solution for y. Assuming y can be expressed as a power series y = ∑(n=0)^(∞) Cn xⁿ, we substitute it into the differential equation.
After performing the necessary differentiations and substitutions, we obtain a recurrence relation for the coefficients Cn. The relation is given by Cn+2 = 2/(n+2) Cn+1 + Cn. This means that each coefficient Cn+2 can be determined based on the previous two coefficients Cn+1 and Cn.
To delve deeper into the topic, it would be helpful to study power series solutions of differential equations. This mathematical technique allows us to represent functions as an infinite sum of terms, each with a coefficient.
By substituting this series into a differential equation and equating the coefficients of corresponding powers of x, we can find relationships between the coefficients. The recurrence relation obtained in this case reflects the pattern in which the coefficients are related to each other.
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Find the unit tangent vector for the parameterized curve. r(t) = 3t,2, ,2/t). for t≥ 1 1 Select the correct answer below and, if necessary, fill in the answer boxes within your choice. O A. T (t) = (1.11 (Type exact answers, using radicals as needed.) OB. Since r' (t) = 0, there is no tangent vector.
The unit tangent vector for the parameterized curve [tex]\(r(t) = (3t, 2, \frac{2}{t})\)[/tex] for [tex]\(t \geq 1\)[/tex] is given by [tex]\(\mathbf{T}(t) = \left(\frac{3}{\sqrt{13t^2 + 4}}, 0, \frac{2}{t\sqrt{13t^2 + 4}}\right)\).[/tex]
The unit tangent vector represents the direction in which a curve is moving at each point. To find it, we need to compute the derivative of (r(t)) with respect to t, which gives us [tex]\(r'(t) = (3, 0, -\frac{2}{t^2})\)[/tex]. Next, we calculate the magnitude of r'(t) using the formula [tex]\(\lVert \mathbf{v} \rVert = \sqrt{v_1^2 + v_2^2 + v_3^2}\)[/tex], where[tex]\(\mathbf{v}\) is a vector. In this case, \(\lVert r'(t) \rVert = \sqrt{9 + \frac{4}{t^4}}\)[/tex].
Finally, we divide \r'(t) by its magnitude to obtain the unit tangent vector: [tex]\(\mathbf{T}(t) = \frac{r'(t)}{\lVert r'(t) \rVert} = \left(\frac{3}{\sqrt{13t^2 + 4}}[/tex], 0, [tex]\frac{2}{t\sqrt{13t^2 + 4}}\right)\)[/tex].
This vector represents the direction of the curve at each point t on the curve.
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a certain group of test subjects had pulse rates with a mean of 79.4 bpm and a standard deviation of 11.2 bpm. Use the range rule of thumb for identifying significant values to identify the limits separated values that are significantly low or significantly high. Is a pulse rate of 51.8 bpm is significantly low or significantly high?
significantly low values are (answer) beats per minute or lower
significantly high values are (answer) beats per minute or higher
is a pulse rate of 51.8 bpm significantly low or significantly high?
a. significantly low, because it is more than two state or deviations blow the mean
b. significantly high, because it is more than two standard deviations of the mean
c. neither, because it is within two standard deviations of the mean
d. It is impossible to determine with the information given
A pulse rate of 51.8 bpm is significantly low, because it is more than two standard deviations below the mean
How to Determine the Pulse Rate?To decide in case a pulse rate of 51.8 bpm is altogether low or essentially high, we are able utilize the extend run the show of thumb. Agreeing to the extend run the show of thumb, values that are more than two standard deviations absent from the cruel can be considered altogether moo or altogether tall.
Given that the cruel beat rate is 79.4 bpm and the standard deviation is 11.2 bpm, we will calculate the limits for altogether moo and altogether tall values:
Altogether low values: cruel - (2 * standard deviation)
Altogether tall values: cruel + (2 * standard deviation)
Essentially moo values: 79.4 - (2 * 11.2) = 57 bpm
Altogether tall values: 79.4 + (2 * 11.2) = 101.8 bpm
Since the beat rate of 51.8 bpm is lower than the essentially low value of 57 bpm, it can be considered altogether low.
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Given the following sets, find the set A U(Bn C). U = {1, 2, 3, . . ., 9) } A = {2, 3, 4, 8} B = {3, 4, 8} C = {1, 2, 3, 4, 7}
Therefore, the set A U (Bn C) is {2, 3, 4, 8}.
To find the set A U (Bn C), we first need to find the intersection of sets B and C, denoted as Bn C. Then, we can take the union of set A with the intersection Bn C.
First, let's find the intersection Bn C by identifying the elements that are common to both sets B and C:
Bn C = {3, 4}
Next, we can take the union of set A with the intersection Bn C. The union of sets combines all the elements from both sets while removing any duplicates:
A U (Bn C) = {2, 3, 4, 8} U {3, 4}
= {2, 3, 4, 8}
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Let x (t) = t - sin(t) and y(t) = 1 cos(t) All answers should be decimals rounded to 2 decimal places. At t = 5 x(t) = 5.9589 y(t) = = 0.7164 dz = 0.7164 dt dy = -0.9589 O dt dy tangent slope dx speed m E -1.33849✓ o 0.55 CYCLOID
The given parametric equations represent a cycloid. At t = 5, the corresponding values are x(t) = 5.96 and y(t) = 0.72. The rate of change of z with respect to t, dz/dt, is approximately -0.2426. The slope of the tangent line at t = 5 is approximately -1.3390, and the speed at t = 5 is approximately 1.1791.
The parametric equations given are x(t) = t - sin(t) and y(t) = 1 - cos(t). These equations define the position of a point on a cycloid curve.
At t = 5, plugging the value into the equations, we find that x(5) ≈ 5.96 and y(5) ≈ 0.72.
To find dz/dt, we differentiate the equation z(t) = y(t) + x(t) with respect to t. This gives us dz/dt = dy/dt + dx/dt. Evaluating the derivatives at t = 5, we find dx/dt ≈ 0.7163 and dy/dt ≈ -0.9589. Thus, dz/dt ≈ -0.2426.
The slope of the tangent line is given by dy/dt divided by dx/dt. At t = 5, the slope is approximately -0.9589 / 0.7163 ≈ -1.3390.
The speed is the magnitude of the velocity vector, which can be calculated using the formula speed = sqrt((dx/dt)² + (dy/dt)²). At t = 5, the speed is approximately sqrt(0.7163² + (-0.9589)²) ≈ 1.1791.
Overall, the given parametric equations represent a cycloid, and the calculations provide information about the curve's position, rate of change, slope of the tangent line, and speed at t = 5.
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Suppose we are conducting a x² goodness-of-fit test for a nominal variable with 4 categories. The test statistic x² = 6.432 and a = .05. The critical value is [Select] so we [ Select] ✓the null hy
Suppose that you are conducting an x² goodness-of-fit test for a nominal variable with four categories. The test statistic x² is equal to 6.432, and a is equal to .05. The question asks us to fill in the blanks, and we are given the following:Critical value for a = .05 and three degrees of freedom is 7.815.
We will accept the null hypothesis if the test statistic is less than or equal to the critical value. We will reject the null hypothesis if the test statistic is greater than the critical value. Because the test statistic x² of 6.432 is less than the critical value of 7.815, we can accept the null hypothesis. That is, there is insufficient evidence to reject the null hypothesis that the observed frequencies match the expected frequencies for the four categories.
We will reject the null hypothesis if the test statistic is greater than the critical value. Because the test statistic x² of 6.432 is less than the critical value of 7.815, we can accept the null hypothesis. That is, there is insufficient evidence to reject the null hypothesis that the observed frequencies match the expected frequencies for the four categories.
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Let f(x,y) be a joint probability density, that is, f(x,y) dxdy is the probability that X lies between x and x + dx and Y lies between y and y + dy. If X and Y are independent, then
If X and Y are independent, show that the mean and variance of their sum is equal to the sum of the means and variances, respectively, of X and Y; that is, show that if W= X+Y, then
if X and Y are independent random variables, the mean of their sum (W = X + Y) is equal to the sum of their individual means (E[W] = E[X] + E[Y]), and the variance of their sum is equal to the sum of their individual variances (Var(W) = Var(X) + Var(Y)).
To show that the mean and variance of the sum of independent random variables X and Y are equal to the sum of the means and variances of X and Y, respectively, we can use the properties of expectation and variance.
Let W = X + Y be the sum of X and Y.
Mean:
The mean of a random variable can be expressed as the expected value.
E[W] = E[X + Y]
Since X and Y are independent, we can use the property that the expected value of the sum of independent random variables is equal to the sum of their individual expected values.
E[W] = E[X] + E[Y]
Therefore, the mean of W is equal to the sum of the means of X and Y.
Variance:
The variance of a random variable can be expressed as Var(W) = E[(W - E[W])^2].
Var(W) = Var(X + Y)
Since X and Y are independent, the covariance term in the variance expression becomes zero.
Var(W) = Var(X) + Var(Y)
Therefore, the variance of W is equal to the sum of the variances of X and Y.
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Use the simplex algorithm to solve
Max z = 2x₁ + 3x2 x
Subject to
x₁ + 2x₂ ≤ 6
2x₁ + x₂ ≤ 8
x1, x₂ ≥ 0
Simplex algorithm is a type of linear programming technique, which is used for optimization problems that require decision-making. The simplex algorithm works through a linear program in a table format.
It starts with an initial feasible solution and iteratively improves the solution at each step until the solution is optimal. This algorithm is used to solve optimization problems that have constraints. The constraints can be expressed as inequalities or equalities in the form of linear equations. The given problem can be solved using the simplex algorithm, Max z = 2x₁ + 3x2Subject tox₁ + 2x₂ ≤ 62x₁ + x₂ ≤ 8x₁, x₂ ≥ 0The given constraints can be expressed as inequalities in the form of linear equations, x₁ + 2x₂ + s₁ = 62x₁ + x₂ + s₂ = 8Where s₁ and s₂ are the slack variables.
The initial simplex table can be formed as follows by considering all the variables and slack variables.x1x2s1s2Value00+6+8=2x₁+3x₂-2-3zThe pivot element for the first iteration is 2, which is present in the column for x1 and the row for the first constraint. Now the value of x₁ can be calculated by dividing the value in the column s₁ by the pivot element, and the value of s₁ can be calculated by dividing the value in the column x₁ by the pivot element.
The new simplex table can be represented as follows:x1x2s1s2Value00+6+8=2x₁+3x₂-2-3zx₁1x2-s12=2s₂-23z-8The next pivot element is 3, which is present in the column x2 and the row for the second constraint. Now the value of x₂ can be calculated by dividing the value in the column s₂ by the pivot element, and the value of s₂ can be calculated by dividing the value in the column x₂ by the pivot element.
The new simplex table can be represented as follows:x1x2s1s2Value32+31=2s₁+x₁/3s₂-8/3z/3The optimal solution is x₁=2, x₂=3, and z=13. The objective function value is 13.The above is the step by step solution for the given problem by using the simplex algorithm.
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x2 - 2x (using calculus) *3-3x2+4 5) Sketch on graph paper below f (x) Domain Y intercept Inc/dec x intercept or estimate Min or max Inflection point Find HA and VA
The domain of the function is all real numbers. The function is decreasing from x = -∞ to x = -1 and increasing from x = -1 to x = +∞. The horizontal asymptote is y = 3, and the vertical asymptotes are x = (-1 + √6)/3 and x = (-1 - √6)/3. There are no inflection points of the function.
Given expression is [tex]x² - 2x[/tex] (using calculus)
* 3 - 3x² + 4 = 1 - 3x² - 6x
Differentiating w.r.t x, we get
f'(x) = -6x - 6
Let's find the critical points:
f'(x) = -6x - 6 = 0
=> -6x = 6
=> x = -1
Thus, we have one critical point x = -1
To check whether the critical point is a maximum or minimum, let's take the second derivative f''(x) = -6f''(-1)
= -6
Thus, the critical point at x = -1 is a maximum point
Let's find the x-intercepts by solving f(x) = 0 for x1 - 3x² - 6x + 4 = 0
Solving this quadratic equation, we get roots as
x = (-(-6) ± √((6)² - 4(1)(4)))/2(1)
=> x = (-(-6) ± √(32))/2
=> x = -3 ± √8
The x-intercepts are -3 + √8 and -3 - √8
Let's find the y-intercept by substituting x = 0 in the function f(x)
f(0) = 1 - 0 - 0 = 1
Thus, the y-intercept is 1
The domain of the function is all real numbers. The function is decreasing from x = -∞ to x = -1 and increasing from x = -1 to x = +∞
Let's find the horizontal asymptote of the function
Since the degree of the numerator and denominator are equal, the horizontal asymptote is given by the ratio of the leading coefficients a/b = -3/(-1) = 3
Thus, the horizontal asymptote is y = 3
Let's find the vertical asymptotes of the function
To find the vertical asymptotes, let's equate the denominator to zero1 - 3x² - 6x = 0
Solving this quadratic equation, we get roots as
x = (-(-6) ± √((6)² - 4(3)(1)))/2(3)
=> x = (-(-6) ± √24)/6
=> x = (-1 ± √6)/3
The vertical asymptotes are x = (-1 + √6)/3 and x = (-1 - √6)/3
Let's find the inflection points of the function
f''(x) = -6f''(x)
= 0
=> No inflection points
Thus, we don't have any inflection points
Sketching the graph of the function, we get the following:
graph of f(x)
Solution on graph paper: From the above calculations, we can see that the critical point of the function is x = -1, which is a maximum point. The x-intercepts are -3 + √8 and -3 - √8, and the y-intercept is 1.
The domain of the function is all real numbers.
The function is decreasing from x = -∞ to x = -1 and
increasing from x = -1 to x = +∞.
The horizontal asymptote is y = 3,
and the vertical asymptotes are x = (-1 + √6)/3 and x = (-1 - √6)/3.
There are no inflection points of the function.
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A statistical analysis of 1,000 long-distance telephone calls made by a company indicates that the length of these calls is normally distributed, with a mean of 230 seconds and a standard deviation of 40 seconds. Complete parts (a) through (d).
a. What is the probability that a call lasted less than 180seconds?
b. What is the probability that a call lasted between 180 and 310 seconds?
c. What is the probability that a call lasted more than 310seconds
d. What is the length of a call if only 10% of all calls areshorter
a) The probability that a call lasted less than 180 seconds is 0.1056.
b) The probability that a call lasted between 180 and 310 seconds is 0.8716.
c) The probability that a call lasted more than 310 seconds is 0.0228
d) The length of a call if only 10% of all calls are shorter is 178.736 seconds.
What are the probabilities?a. First, calculate the z-score:
z = (x - μ) / σ
z = (180 - 230) / 40
z = -50 / 40
z = -1.25
Using a calculator, the corresponding probability of a z-score of -1.25 is approximately 0.1056.
b. First, calculate the z-scores:
z1 = (180 - 230) / 40 = -1.25
z2 = (310 - 230) / 40 = 2
Using a calculator, the probabilities associated with these z-scores are:
P(z < -1.25) ≈ 0.1056
P(z < 2) ≈ 0.9772
To find the probability between 180 and 310 seconds, we subtract the two probabilities:
P(180 < x < 310) = P(z < 2) - P(z < -1.25)
P(180 < x < 310) ≈ 0.9772 - 0.1056
P(180 < x < 310) ≈ 0.8716
c. First, calculate the z-score:
z = (310 - 230) / 40 = 2
Using a calculator, the probability associated with a z-score of 2 is:
P(z > 2) ≈ 1 - P(z < 2)
P(z > 2) ≈ 1 - 0.9772
P(z > 2) ≈ 0.0228
d. Find the z-score for the 10th percentile (0.10):
z = invNorm(0.10) ≈ -1.2816
The z-score formula is used to find the length of the call:
x = μ + z * σ
x = 230 + (-1.2816) * 40
x ≈ 230 - 51.264
x ≈ 178.736
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Let g(x) = 3x² - 2. (a) Find the average rate of change from 3 to 1. (b) Find an equation of the secant line containing (-3. g(-3)) and (1, g(1)).
(a) The average rate of change of g(x) from 3 to 1 is -8.
(b) The equation of the secant line containing (-3, g(-3)) and (1, g(1)) is y = -2x + 1.
(a) To find the average rate of change of g(x) from 3 to 1, we need to calculate the difference in the function values and divide it by the difference in the input values.
g(3) = 3(3)² - 2 = 27 - 2 = 25
g(1) = 3(1)² - 2 = 3 - 2 = 1
The difference in the function values is 25 - 1 = 24, and the difference in the input values is 3 - 1 = 2. Dividing the difference in function values by the difference in input values gives us 24/2 = -12. Therefore, the average rate of change of g(x) from 3 to 1 is -12.
(b) To find the equation of the secant line containing (-3, g(-3)) and (1, g(1)), we need to calculate the slope and use the point-slope form of a linear equation. The slope of the secant line is given by the difference in the function values divided by the difference in the input values.
g(-3) = 3(-3)² - 2 = 27 - 2 = 25
g(1) = 3(1)² - 2 = 3 - 2 = 1
The difference in the function values is 25 - 1 = 24, and the difference in the input values is 1 - (-3) = 4. Dividing the difference in function values by the difference in input values gives us 24/4 = 6. Therefore, the slope of the secant line is 6.
Using the point-slope form of a linear equation, where (x₁, y₁) = (-3, g(-3)) and (x₂, y₂) = (1, g(1)), we can substitute the values into the equation:
y - y₁ = m(x - x₁)
y - g(-3) = 6(x - (-3))
y - 25 = 6(x + 3)
y - 25 = 6x + 18
y = 6x + 18 + 25
y = 6x + 43
Therefore, the equation of the secant line containing (-3, g(-3)) and (1, g(1)) is y = 6x + 43.
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What is the study of "proxemics"? Why is it important for understanding how we communicate?
The study of proxemics is important for communication. The study of proxemics is the way in which people use space to communicate. The term proxemics was coined by anthropologist Edward T. Hall. The study of proxemics is important for understanding how we communicate because it helps us to understand how people use space and distance to convey meaning.When people communicate, they use different forms of communication to convey their messages. These forms of communication include verbal and nonverbal communication.
Proxemics refers to the use of space to communicate. It is the study of how people use distance, posture, and other nonverbal cues to communicate.
Proxemics is important for understanding how we communicate because it helps us to understand how people use space and distance to convey meaning.
For example, when people stand close to one another, they may be conveying intimacy or aggression. When people stand far apart from one another, they may be conveying respect or distrust.
Proxemics can also help us to understand how people use space in different cultures. Different cultures have different rules about personal space, and these rules can affect how people communicate with one another.
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3. Write the system of equations in Aữ = b form. 2x - 3y = 1 x-z=0 x+y+z = 5 4. Find the inverse of matrix A from question
The inverse of matrix A is:
[tex][\left[\begin{matrix}1.5&2.5&-1\\-2.5&-4.5&2\\-0.5&-0.5&1\end{matrix}\right]\][/tex]
The augmented matrix of the system of equations is:
[tex]| 2 -3 0 1 || 1 0 -1 0 || 1 1 1 5 |[/tex]
Now, we are going to use elementary row operations to solve this system of equations.
First, let's multiply R1 by 1/2 to get a leading 1 in R1.
[tex]| 1 -3/2 0 1/2 || 1 0 -1 0 || 1 1 1 5 |[/tex]
Next, we want to use R1 to get zeros under the leading 1 in R1.
[tex]| 1 -3/2 0 1/2 || 0 3/2 -1/2 -1/2 || 0 3/2 1/2 9/2 |[/tex]
Now, we want to use elementary row operations to get zeros in the third row of the matrix.
[tex]| 1 -3/2 0 1/2 || 0 3/2 -1/2 -1/2 || 0 0 1 5 |[/tex]
We will back substitute to get values for y and x.
[tex]| 1 -3/2 0 1/2 || 0 1 0 2 || 0 0 1 5 |x = -2y + 1z = 5[/tex]
Now, let's write the system of equations in Aữ = b form:[tex]2x - 3y + 0z = 1x + 0y - z = 0x + y + z = 5\[A\] = \[\left[\begin{matrix}2&-3&0\\1&0&-1\\1&1&1\end{matrix}\right]\]\[u\] = \[\left[\begin{matrix}x\\y\\z\end{matrix}\right]\]\[b\] = \[\left[\begin{matrix}1\\0\\5\end{matrix}\right]\][/tex]
Find the inverse of matrix A from the question.
[tex]| 2 -3 0 || 1 0 -1 || 1 1 1 |[/tex]
Now, we will use elementary row operations to get an identity matrix on the left side of the matrix.
[tex]| 1 0 0 || 13/2 1 0 || 3/2 5 -2 || -5/2 0 1 |[/tex]
The inverse of matrix A is:
[tex][\left[\begin{matrix}1.5&2.5&-1\\-2.5&-4.5&2\\-0.5&-0.5&1\end{matrix}\right]\][/tex]
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