The solution to the system of equations is x = 0 and y = 3, obtained through Gaussian elimination.
How to solve the system of equations using inverse matrices and Gaussian elimination?To solve the system of equations using inverse matrices, we can represent the system in matrix form as AX = B, where A is the coefficient matrix, X is the column vector of variables, and B is the column vector of constants.
The given system of equations:
2x + y = -2 ...(1)
x + 2y = 2 ...(2)
In matrix form:
| 2 1 | | x | | -2 |
| 1 2 | x | y | = | 2 |
Let's calculate the inverse of the coefficient matrix A:
| 2 1 |
| 1 2 |
To find the inverse, we can use the formula:
[tex]A^(^-^1^)[/tex] = (1 / (ad - bc)) * | d -b |
| -c a |
For matrix A:
a = 2, b = 1, c = 1, d = 2
Determinant (ad - bc) = (2 * 2) - (1 * 1) = 3
So, [tex]A^(^-^1^)[/tex] = (1 / 3) * | 2 -1 |
| -1 2 |
Now, let's calculate the product of [tex]A^(^-^1^)[/tex] and B to find X:
| 2 -1 | | -2 |
| -1 2 | x | 2 |
| (2 * -2) + (-1 * 2) |
| (-1 * -2) + (2 * 2) |
| -4 - 2 |
| 2 + 4 |
| -6 |
| 6 |
So, the solution to the system of equations using inverse matrices is:
x = -6/6 = -1
y = 6/6 = 1
To solve the system of equations using Gaussian elimination, let's rewrite the system in augmented matrix form:
| 2 1 | -2 |
| 1 2 | 2 |
First, we'll perform row operations to eliminate the x-coefficient in the second row:
R2 = R2 - (1/2) * R1
| 2 1 | -2 |
| 0 1 | 3 |
Next, we'll perform row operations to eliminate the y-coefficient in the first row:
R1 = R1 - R2
| 2 0 | -5 |
| 0 1 | 3 |
Now, we have an upper triangular matrix. We can back-substitute to find the values of x and y.
From the second row, we have:
y = 3
Substituting this value into the first row, we have:
2x - 5 = -5
2x = 0
x = 0
So, the solution to the system of equations using Gaussian elimination is:
x = 0
y = 3
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Let X1,...,Xn be a random sample from the Exp(0). For the following (0)
a. 7(0) = 0.
b. t(0)) = 1/0, 1) Find the MLE. 1/0,
2) Obtain the asymptotic distribution of MLE of (a and b).
For the given scenario, where X 1, ..., X n is a random sample from the exponential distribution with parameter (0): a. The MLE (Maximum Likelihood Estimator) of (0) is 1 / X, where X is the sample mean.
a. The MLE of (0) is obtained by maximizing the likelihood function based on the observed data. In the case of the exponential distribution, the likelihood function is given by L((0); x 1, ..., x n) = (0)^n * exp(-(0) * ∑x i), where x i are the observed data points. Taking the logarithm of the likelihood function, we get the log-likelihood function: log L((0); x 1, ..., x n) = n * log(0) - (0) * ∑x i. To find the MLE, we differentiate the log-likelihood function with respect to (0), set it equal to zero, and solve for (0). In this case, the MLE is 1 /X, where X is the sample mean.
b. The asymptotic distribution of the MLE can be obtained using the Central Limit Theorem, which states that the distribution of the MLE approaches a normal distribution as the sample size increases. For the exponential distribution, the MLE of (0) follows a normal distribution with mean (0) and variance (0)^2 / n, where n is the sample size. This means that as the sample size increases, the MLE becomes more normally distributed with a mean close to the true parameter value and a smaller variance.
Therefore, the MLE of (0) is 1/X, and its asymptotic distribution follows a normal distribution with mean (0) and variance (0)^2/ n.
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The space X is compact if and only if for every collection A of subsets of X sat- isfying the finite intersection condition, the intersection n A is nonempty. AA
The space X is compact if and only if for every collection A of subsets of X satisfying the finite intersection condition, the intersection ∩ A is nonempty is the equivalent statement of the definition of compactness of a topological space.
This is sometimes referred to as the intersection property.A more detailed and long answer would be as follows:Definition: A topological space X is compact if every open cover of X contains a finite subcover.If X is a compact space and A is a collection of closed sets with the finite intersection property, then ⋂ A ≠ ∅.Proof: Suppose X is a compact space and A is a collection of closed sets with the finite intersection property. Suppose, to the contrary, that ⋂ A = ∅. Then X\⋂ A is an open cover of X. Since X is compact, there exists a finite subcover of X\⋂ A. That is, there exist finitely many closed sets C1,...,Cn in A such that C1∩...∩Cn ⊇ ⋂ A, which contradicts the fact that ⋂ A = ∅.
Conversely, suppose that for every collection A of closed sets with the finite intersection property, ⋂ A ≠ ∅. Suppose, to the contrary, that X has an open cover {Uα}α∈J with no finite subcover. Then define Aj = ⋂{Uα | α∈I,|I|≤j}, the intersection over all subfamilies of {Uα} of size at most j. Since {Uα} has no finite subcover, A1 ≠ X. Furthermore, for all j≥1, Aj is closed and Aj ⊆ Aj+1 (this follows from the fact that finite intersections of open sets are open). By assumption, ⋂ Aj ≠ ∅. Let x∈⋂ Aj. Then x∈Uα for some α∈J, and there exists j such that x∈Aj. But then x∈Uα′ for all α′∈J with α′≠α, and hence {Uα′}α′∈J is a finite subcover of {Uα}α∈J, which is a contradiction. Hence {Uα}α∈J has a finite subcover, and X is compact.
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Let A be an m × n matrix. Show that Rank(A T A) = Rank(A).
The statement to be proven is that the rank of the matrix A^TA is equal to the rank of the matrix A. In other words, the column rank of A^TA is equal to the column rank of A. This property holds true for any matrix A.
To prove this statement, we can use the fact that the column space of A^TA is the same as the column space of A. The column space represents the set of all linear combinations of the columns of a matrix. By taking the transpose of both sides of the equation A^TAx = 0, where x is a vector, we have the equation Ax = 0. This implies that the null space of A^TA is the same as the null space of A. Since the null space of a matrix is orthogonal to its column space, it follows that the column space of A^TA is orthogonal to the null space of A. Therefore, any vector in the column space of A^TA that is not in the null space of A must also be in the column space of A. This shows that the column rank of A^TA is equal to the column rank of A.
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A rectangle is drawn as follows: Its base lies on the x-axis, with its bottom vertices at the points (-x, 0) and (x, 0) and its top vertices on the circle with center at the origin and radius 5. Find a formula in terms of x for:
(a) the area of the rectangle
(b) the perimeter of the rectangle
The area of the rectangle is given by the formula A = 2x√(25 - x^2), and the perimeter is given by the formula P = 2(10 + x).
To find the area of the rectangle, we need to determine the length and width of the rectangle. The base of the rectangle lies on the x-axis, so its length is given by the distance between the points (-x, 0) and (x, 0), which is 2x. The width of the rectangle is the distance between the x-axis and the circle centered at the origin with a radius of 5. Using the Pythagorean theorem, we can find the width by subtracting the y-coordinate of the circle's center from the radius: √(5^2 - 0^2) = √25 = 5. Thus, the area of the rectangle is A = length × width = 2x × 5 = 10x.
To find the perimeter of the rectangle, we add up the lengths of all four sides. The length of the two vertical sides is 2x, and the length of the two horizontal sides is the distance between the x-axis and the points (-x, 0) and (x, 0), which is x. Therefore, the perimeter is P = 2(vertical side length + horizontal side length) = 2(2x + x) = 2(3x) = 6x. Simplifying further, we get P = 2(3x) = 6x.
In summary, the area of the rectangle is given by A = 10x, and the perimeter is given by P = 6x.
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A moving conveyor is built to rise 1 m for each 7 m of horizontal change. (a) Find the slope of the conveyor. 1 1/7 (b) Suppose the conveyor runs between two floors in a factory. Find the length of the conveyor if the vertical distance between floors is 8 meters. (Round your answer to three decimal places.) X 2 m Need Help? Read It
(a) The slope of the conveyor is defined as the ratio of the vertical change to the horizontal change. In this case, for each 7 meters of horizontal change, the conveyor rises by 1 meter. Therefore, the slope is 1/7.
(b) To find the length of the conveyor, we can use the Pythagorean theorem. The length of the conveyor is the hypotenuse of a right triangle, where the horizontal change is 7 meters and the vertical change is 8 meters.
Using the Pythagorean theorem:
Length^2 = (Horizontal change)^2 + (Vertical change)^2
Length^2 = 7^2 + 8^2
Length^2 = 49 + 64
Length^2 = 113
Taking the square root of both sides:
Length = √113
Rounding to three decimal places:
Length ≈ 10.630 meters
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For a T-mobile store, we are continiously monitoring customer arrivals. Let X be the time that the first customer arrive. The expected arrival time of the first customer is 10 minutes. To calculate the probability P[X = 10). Which of the following should be used? = a) X ~ Geomtric (0.090) b)X Exponential (0.1) c)X ~ Pascal (10,0.1) d) X Poisson (10) M
To calculate the probability P[X = 10), b) X Exponential (0.1) will be used to get appropriate result.
The probability distribution that describes the time required to perform a continuous, memoryless, exponentially distributed process is called the Exponential Distribution. It's a continuous probability distribution used to measure the amount of time between events. Exponential distributions are widely used in the fields of economics, social sciences, and engineering. The probability of a single success during a particular length of time is the exponential distribution. The distribution is commonly used to model the amount of time elapsed between events in a Poisson process. Poisson processes, such as traffic flow, radioactive decay, and phone calls received by a call center, are the most common use of exponential distribution. Example: Suppose the time between the arrival of customers in a store follows an exponential distribution with a mean of 5 minutes.
Calculate the probability of the following:
(a) What is the probability that the next customer will arrive in less than 3 minutes?
Here, µ=5 minutes and x=3 minutes.
The formula for Exponential distribution is;
P (X < x) = 1 – e^(-λx)
Where, λ is the rate parameter.
λ = 1/ µλ = 1/ 5 = 0.2
Now,
P (X < 3) = 1 – e^(-λx)
P (X < 3) = 1 – e^(-0.2 × 3)
P (X < 3) = 0.259
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Suppose studies indicate that fully grown lobster's weight is normally distributed with a mean weight of 18.2 oz and a standard deviation of 3.1 oz. Assume the following questions all pertain to fully grown lobster that follow this distribution a) If we catch a random lobster, what is the probability it weighs less than 17 ox? b) If fishermen were to randomly catch 70 lobster, what is the probability the average weight of those 70 lobster would be within 0.1 oz of the mean weight? c) How heavy would a lobster need to be to be in the top 0.1% of lobsters in terms of weight? e) Please state clearly what the central limit theorem tells us in general (please don't include anything about raccoons in your answer, speak in general terms
The central limit theorem states that, regardless of the shape of the population distribution, the sampling distribution of the sample mean approaches a normal distribution as the sample size increases, enabling us to make reliable inferences about the population mean based on sample means.
a) The probability that a random lobster weighs less than 17 oz can be found by calculating the cumulative probability using the normal distribution with the given mean and standard deviation.
b) The probability that the average weight of 70 randomly caught lobsters is within 0.1 oz of the mean weight can be calculated using the sampling distribution of the sample mean, which follows a normal distribution with the same mean as the population and a standard deviation equal to the population standard deviation divided by the square root of the sample size.
c) To find the weight at which a lobster would be in the top 0.1% of lobsters, we need to calculate the z-score corresponding to the desired percentile and then use the z-score formula to find the corresponding weight.
d) The central limit theorem states that, regardless of the shape of the population distribution, the sampling distribution of the sample mean approaches a normal distribution as the sample size increases. This allows us to make inferences about the population mean based on the sample mean.
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consider the truss shown in (figure 1). suppose that f1 = 7 kn , f2 = 8 kn and f3 = 9 kn .
The truss experiences a net force of 6 kN in compression.
What is the resultant force acting on the truss?Consider the truss, where f1 = 7 kN, f2 = 8 kN, and f3 = 9 kN. To determine the resultant force acting on the truss, we need to analyze the forces in each member. The truss is in equilibrium, meaning that the sum of all the forces acting on it must equal zero. By resolving the forces in the horizontal and vertical directions, we can determine the net force acting on the truss.
By adding the horizontal forces, we have f1 - f3 = 7 kN - 9 kN = -2 kN. Similarly, adding the vertical forces, we have f2 = 8 kN. Since the truss is in equilibrium, the net vertical force must be zero, which implies that the truss experiences a net force of 6 kN in compression. This means that the truss is being pushed together with a force of 6 kN.
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Suppose a function is defined by f(x, y) = x4 - 32x2² +y4 - 18y². Find the maximum and minimum value of the function if it exists. Justify your answer.
The function [tex]f(x, y) = x^4 - 32x^2 + y^4 - 18y^2[/tex] represents a two-variable polynomial. It does not have a maximum or minimum value. It has saddle points at the critical points and diverges towards infinity as x and y approach positive or negative infinity.
The function [tex]f(x, y) = x^4 - 32x^2 + y^4 - 18y^2[/tex] represents a two-variable polynomial. To find the maximum and minimum values of the function, we can analyze its critical points and behavior at the boundaries.
First, we need to find the critical points by taking the partial derivatives of f with respect to x and y and setting them equal to zero. Taking the derivatives, we get:
[tex]\frac{\partial f}{\partial x}= 4x^3 - 64x = 0[/tex]
[tex]\frac{\partial f}{\partial y}= 4x^3 - 36y = 0[/tex]
By solving these equations, we find critical points at (0, 0), (2, 0), and (-2, 0) for x, and at (0, 0), (0, 3), and (0, -3) for y.
Next, we evaluate the function at these critical points and the boundaries of the domain. Since there are no explicit boundaries given, we assume the function is defined for all real values of x and y.
After analyzing the function values at the critical points and boundaries, we find that the function does not have a global maximum or minimum. Instead, it has saddle points at the critical points and diverges towards infinity as x and y approach positive or negative infinity.
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5. Find power series solution for the ODE about x = 0 in the form of y=x_nx" =0 (x² − 4)y" + 3xy' + y = 0 Write clean, and clear. Show steps of calculations.
the coefficients cn iteratively, we obtain the power series solution for the given ODE about x = 0 in the form of y(x) = ∑(n=0 to ∞) cnx^n.
To find a power series solution for the given ordinary differential equation (ODE) about x = 0, we can assume a power series of the form y(x) = ∑(n=0 to ∞) cnx^n.
First, we differentiate y(x) to find y' and y'' as follows:
y' = ∑(n=0 to ∞) ncnx^(n-1),
y'' = ∑(n=0 to ∞) n(n-1)cnx^(n-2).
Substituting y(x), y', and y'' into the ODE, we have:
(x² - 4)∑(n=0 to ∞) n(n-1)cnx^(n-2) + 3x∑(n=0 to ∞) ncnx^(n-1) + ∑(n=0 to ∞) cnx^n = 0.
Next, we rearrange the terms and collect coefficients of the same powers of x:
∑(n=0 to ∞) [n(n-1)cnx^n-2 - 4n(n-1)cnx^n-2 + 3n cnx^n] + ∑(n=0 to ∞) cnx^n = 0.
Simplifying further, we get:
∑(n=0 to ∞) [(n(n-1) - 4n(n-1) + 3n)cnx^n-2 + cnx^n] = 0.
Equating the coefficients of the same powers of x to zero, we can solve for the coefficients cn. The initial conditions for y(0) and y'(0) can be used to determine the values of c0 and c1.
By solving for the coefficients cn iteratively, we obtain the power series solution for the given ODE about x = 0 in the form of y(x) = ∑(n=0 to ∞) cnx^n.
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A food-processing firm has 8 brands of seasoning agents from which it wishes to prepare a gift package containing 5 seasoning agents. How many combinations of seasoning agents are available? (4 marks)
A sales person has 9 products to display in a trade fair but he can display only 4 at a time, how many displays can he make if the order in which he displays is important? (4 marks)
A radio repairer notes that the time he spends on his job has an exponential distribution with a mean of 20 minutes. He follows the first come first serve principle. The arrival time of clients takes a Poisson distribution with an average rate of 10 clients every 4 hours.
Determine the arrival rate λ value and service rate μ value to be used (4 marks)
How long will it take the client waiting in the queue (4 marks)
Determine the client’s average waiting time in the system (4 marks)
Compute the probability that the system is idle; P (idle) (4 marks)
In the given problem, there are multiple scenarios related to combinations, permutations, and queuing theory.
1. The number of combinations of seasoning agents can be calculated using the formula for combinations: C(n, r) = n! / (r!(n-r)!). In this case, selecting 5 out of 8 brands gives C(8, 5) = 8! / (5!(8-5)!) = 56 combinations.
2. The number of displays the salesperson can make when the order of display is important can be calculated using the formula for permutations: P(n, r) = n! / (n-r)!. In this case, selecting 4 out of 9 products gives P(9, 4) = 9! / (9-4)! = 9! / 5! = 9 * 8 * 7 * 6 = 3,024 displays.
3. To determine the arrival rate (λ) and service rate (μ), we need to convert the given time parameters. The arrival rate λ can be calculated by dividing the average rate of 10 clients every 4 hours by the time duration in hours. Therefore, λ = 10 clients / 4 hours = 2.5 clients per hour. The service rate μ can be calculated by taking the reciprocal of the mean service time, which is 1/20 minutes = 3 clients per hour.
4. The time a client waits in the queue can be calculated using Little's Law, which states that the average number of customers in a system (L) is equal to the arrival rate (λ) multiplied by the average waiting time (W). Since the average number of customers in the system is not provided, this part cannot be answered.
5. The average waiting time for a client in the entire system can be calculated using Little's Law. Assuming a stable system, the average number of customers in the system (L) is equal to the arrival rate (λ) multiplied by the average waiting time in the system (W). Therefore, W = L / λ. Since the average number of customers in the system is not provided, this part cannot be answered.
6. The probability that the system is idle (P(idle)) can be calculated using the formula P(idle) = 1 - (λ / μ). Substituting the values, P(idle) = 1 - (2.5 clients per hour / 3 clients per hour) = 1 - 0.8333 = 0.1667, or approximately 16.67%.
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Find the function that is finally graphed after the following transformations are applied to the graph of y= x in the order listed. (1) Reflect about the x-axis (2) Shift up 6 units (3) Shift right 2 units Enter your answer in the answer box
The function y = x undergoes three transformations: reflection about the x-axis, shift up 6 units, and shift right 2 units. The resulting function is y = -(x - 2) + 6.
Reflection about the x-axis: This transforms the graph by changing the sign of the y-values. So, y = x becomes y = -x.
Shift up 6 units: This translates the graph vertically by adding a constant value to the y-coordinates. The original y = -x is shifted up by 6 units, resulting in y = -x + 6.
Shift right 2 units: This translates the graph horizontally by subtracting a constant value from the x-coordinates. The previous function y = -x + 6 is shifted to the right by 2 units, resulting in y = -(x - 2) + 6.
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Platinum Electric recently embarked on a massive training campaign to improve its operations. The average time to repair a failure on their main machine has improved by over 40%. On average, it now takes 5 hours to repair the company’s key machine. Assume that repair time is exponentially distributed.
Calculate the chance that the next repair duration will be between 3 hours and 7 hours.
The chance that the next repair duration will be between 3 hours and 7 hours is approximately 0.3022, or 30.22%.
To calculate the probability that the next repair duration will be between 3 hours and 7 hours, we can use the exponential distribution formula. The exponential distribution is defined by a single parameter, λ (lambda), which represents the average rate of occurrence.
In this case, the average repair time after the training campaign is 5 hours. We can calculate the rate parameter λ using the formula λ = 1 / average repair time.
λ = 1 / 5 = 0.2
Now, we need to calculate the cumulative distribution function (CDF) values for the lower and upper bounds of the repair duration.
CDF_lower = 1 - e^(-λ×lower bound)
= 1 - [tex]e^{-0.2*3}[/tex]
≈ 1 - [tex]e^{-0.6}[/tex]
≈ 1 - 0.5488
≈ 0.4512
CDF_upper = 1 - e^(-λ × upper bound)
= 1 - [tex]e^{-0.2*7}[/tex]
≈ 1 - [tex]e^{-1.4}[/tex]
≈ 1 - 0.2466
≈ 0.7534
Finally, we can calculate the probability that the next repair duration will be between 3 hours and 7 hours by subtracting the lower CDF value from the upper CDF value.
Probability = CDF_upper - CDF_lower
= 0.7534 - 0.4512
≈ 0.3022
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a service engineer mends washing machines. in a typical week, five machines will break down. this situation can be modeled by poisson distribution. calculate the probability that in a week three machines break down
The probability that three machines break down in a week is 0.1403
How to calculate the probability that in a week three machines break downFrom the question, we have the following parameters that can be used in our computation:
Mean, λ = 5
Also, we understand that the situation can be modeled by poisson distribution
To calculate the probability that three machines break down in a week, we use
[tex]P(x = k) = \frac{e^{-\lambda} * \lambda^k}{k!}[/tex]
Where
k = 3
So, we have
[tex]P(x = 3) = \frac{e^{-5} * 5^3}{3!}[/tex]
Evaluate
P(x = 3) = 0.1403
Hence, the probability is 0.1403
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Researchers presented young children (aged 5 to 8 years) with a choice between two toy characters who were offering stickers. One character was described as mean, and the other was described as nice. The mean character offered two stickers, and the nice character offered one sticker. Researchers wanted to investigate whether infants would tend to select the nice character over the mean character, despite receiving fewer stickers. They found that 16 of the 20 children in the study selected the nice character.
1. What values would you enter for the inputs for a simulation analysis of this study?
Consider the following graph of simulation results:
1800
1200
600
0
2 4 6 8 10 12 14 16 18
Number of heads
2. Based on this graph, which of the following is closest to the p-value?
3. Based on this simulation analysis, does the study provides strong evidence that children have a genuine preference for the nice character with one sticker rather than the mean character with two stickers? Why?
The following graph pertains to the same simulation results, this time displaying the distribution of the proportion of heads:
Based on the simulation analysis, the p-value is approximately 0.05. This suggests that there is a moderate level of evidence to support the claim that children have a genuine preference for the nice character with one sticker rather than the mean character with two stickers.
In the given graph, the x-axis represents the number of heads, and the y-axis represents the frequency of occurrence. The graph shows a distribution with a peak around 16 heads, indicating that the majority of children selected the nice character. The distribution then gradually decreases as the number of heads deviates from the peak.
To determine the p-value, we need to calculate the probability of observing a result as extreme as or more extreme than the observed outcome, assuming there is no real preference between the characters. In this case, the p-value can be estimated by calculating the proportion of simulated outcomes that are equal to or greater than the observed outcome. From the graph, we can see that the observed outcome of 16 heads falls within the tail of the distribution.
The p-value is a measure of statistical significance. Typically, a p-value of 0.05 or lower is considered statistically significant, indicating that the observed outcome is unlikely to have occurred by chance. In this simulation analysis, the p-value is approximately 0.05, suggesting a moderate level of evidence to support the claim that children have a genuine preference for the nice character with one sticker.
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Diagonalize the following matrix. 10 0 0 2 10 0 0 0 12 Select the correct choice below and, if necessary, fill in the answer box to complete your choice. O A. 2 0 0 For P = D = 0 10 0 0 0 12 (Type an
The given matrix A = [10 0 0; 2 10 0; 0 0 12] can be diagonalized as A = PDP^(-1), where D is the diagonal matrix [10 0 0; 0 10 0; 0 0 12] and P is the matrix [0 1; 1 1; 0 0].
To diagonalize the given matrix, we need to find a diagonal matrix D and an invertible matrix P such that [tex]A = PDP^{(-1)[/tex], where A is the given matrix.
The given matrix is:
A = [10 0 0; 2 10 0; 0 0 12]
To diagonalize A, we need to find the eigenvalues and eigenvectors of A.
First, let's find the eigenvalues:
|A - λI| = 0, where λ is the eigenvalue and I is the identity matrix.
Setting up the determinant equation:
|10-λ 0 0; 2 10-λ 0; 0 0 12-λ| = 0
Expanding the determinant:
(10-λ)((10-λ)(12-λ)) - 2(0) = 0
[tex](10-λ)(120 - 22λ + λ^2) = 0[/tex]
[tex]λ(120 - 22λ + λ^2) - 10(120 - 22λ + λ^2) = 0[/tex]
[tex]λ^3 - 32λ^2 + 120λ - 1200 = 0[/tex]
Factoring the equation:
[tex](λ-10)(λ^2-22λ+120) = 0[/tex]
Solving the quadratic equation:
(λ-10)(λ-10)(λ-12) = 0
From this, we find the eigenvalues:
λ₁ = 10 (with multiplicity 2)
λ₂ = 12
Now, let's find the eigenvectors associated with each eigenvalue.
For λ₁ = 10:
(A - 10I)v₁ = 0
Substituting the eigenvalue and solving the system of equations:
(10-10)x + 0y + 0z = 0
2x + (10-10)y + 0z = 0
0x + 0y + (12-10)z = 0
Simplifying the equations:
0x + 0y + 0z = 0
2x + 0y + 0z = 0
0x + 0y + 2z = 0
We obtain x = 0, y = any value, and z = 0.
Therefore, the eigenvector associated with λ₁ = 10 is v₁ = [0; 1; 0].
For λ₂ = 12:
(A - 12I)v₂= 0
Substituting the eigenvalue and solving the system of equations:
(-2)x + 0y + 0z = 0
2x + (-2)y + 0z = 0
0x + 0y + (0)z = 0
Simplifying the equations:
-2x + 0y + 0z = 0
2x - 2y + 0z = 0
0x + 0y + 0z = 0
We obtain x = y, and z can be any value.
Therefore, the eigenvector associated with λ₂ = 12 is v₂ = [1; 1; 0].
Now, we can construct the matrix P using the eigenvectors v1 and v2 as columns:
P = [v₁ v₂]
= [0 1; 1 1; 0 0]
And construct the diagonal matrix D using the eigenvalues:
D = diag([λ₁ λ₁ λ₂])
= diag([10 10 12])
= [10 0 0; 0 10 0; 0 0 12]
Therefore, the diagonalized form of the given matrix A is:
[tex]A = PDP^{(-1)[/tex]
= [0 1; 1 1; 0 0] * [10 0 0; 0 10 0; 0 0 12] * [1 -1; -1 0]
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Find all the local maxima, local minima, and saddle points of the function. f(x,y) = 15x² - 2x³ + 3y² + 6xy
The local maxima, local minima, and saddle points of the function f(x, y) = 15x² - 2x³ + 3y² + 6xy are: Local minimum: (0, 0) , Saddle point: (4, -4)
To find the local maxima, local minima, and saddle points of the function f(x, y) = 15x² - 2x³ + 3y² + 6xy, we need to determine the critical points and then analyze the second derivative test. Let's start by finding the partial derivatives with respect to x and y:
∂f/∂x = 30x - 6x² + 6y
∂f/∂y = 6y + 6x
To find the critical points, we need to solve the system of equations formed by setting both partial derivatives equal to zero:
∂f/∂x = 30x - 6x² + 6y = 0
∂f/∂y = 6y + 6x = 0
From the second equation, we have y = -x. Substituting this into the first equation, we get:
30x - 6x² + 6(-x) = 0
30x - 6x² - 6x = 0
6x(5 - x - 1) = 0
6x(4 - x) = 0
So, either 6x = 0 (x = 0) or 4 - x = 0 (x = 4).
Now, let's find the corresponding y-values for these critical points:
For x = 0, y = -x = 0.
For x = 4, y = -x = -4.
Therefore, we have two critical points: (0, 0) and (4, -4).
To analyze these points, we'll use the second derivative test. The second-order partial derivatives are:
∂²f/∂x² = 30 - 12x
∂²f/∂y² = 6
∂²f/∂x∂y = 6
Now, let's evaluate the second derivatives at the critical points:
At (0, 0):
∂²f/∂x² = 30 - 12(0) = 30
∂²f/∂y² = 6
∂²f/∂x∂y = 6
The discriminant D = (∂²f/∂x²)(∂²f/∂y²) - (∂²f/∂x∂y)² = (30)(6) - (6)² = 180 - 36 = 144.
Since D > 0 and (∂²f/∂x²) > 0, the point (0, 0) is a local minimum.
At (4, -4):
∂²f/∂x² = 30 - 12(4) = 30 - 48 = -18
∂²f/∂y² = 6
∂²f/∂x∂y = 6
The discriminant D = (∂²f/∂x²)(∂²f/∂y²) - (∂²f/∂x∂y)² = (-18)(6) - (6)² = -108 - 36 = -144.
Since D < 0, the point (4, -4) is a saddle point.
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find the local maximum and local minimum values of f using both the first and second derivative tests. f(x) = 6 9x2 − 6x3
Step-by-step explanation:
By setting the first derivative = 0 , you will find the 'x' values of the local minimums and maximums
138 x - 18x^2 = 0
x(138-18x) = 0 shows min/max at 0 and 7.67
To find if these points are a min or a max take the SECOND derivative
138 - 36x sub in the values 0 and 7.67
if the result is NEGATIVE, that point is a local MAX
if the result is POSITVE , that point is a local MIN
For 0 : 138 - 36(0) = 138 POSITIVE, so this point is a MIN
the value is found by subbing in 0 into the original equation
69(0)^2 - 6(0)^3 = 0 local MIN point is (0,0)
SImilarly for 7.67 :
138 - 36 ( 7.67) = -138 negative result means this is a MAX
y-value is 69 ( 7.67)^2 - 6 (7.67)^3 = 1351.9
local MAX point is (7.67, 1351.9)
The local maximum value of the function is f(23)=22167, and the local minimum value of the function is f(0)=0.
The given function is [tex]$f(x)=69x^2-6x^3$[/tex]
The first derivative is;[tex]$$f'(x)=138x-18x^2$$[/tex]
The second derivative is;[tex]$$f''(x)=138-36x$$[/tex]
Using the first derivative test:
To find critical points, equate f'(x) to zero.
[tex]$$138x-18x^2=0$$[/tex]
Factor out 6x.
6x(23-x)=0
Solve for x.
We get x=0
and x=23.
For x=0, f''(x)=138$
which is positive.
So, f(x) has a local minimum at x=0.
For x=23, f''(x)=-30 which is negative.
So, f(x) has a local maximum at x=23.
Using the second derivative test:
For x=0, f''(0)=138 which is positive.
So, f(x) has a local minimum at x=0.
For x=23,
f''(23)=-30 which is negative.
So, f(x) has a local maximum at x=23.
Therefore, the local maximum value of the function is f(23)=22167, and the local minimum value of the function is f(0)=0.
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2. a matrix and a vector are given. Show that the vector is an eigenvector of the ma- trix and determine the corresponding eigenvalue. -9-8 7 6 -5 -6 -6 10
The given matrix is [−9−8 76−5−6−6 10] and the vector is [−2 1].We need to prove that the vector is an eigenvector of the matrix and determine the corresponding eigenvalue.
Let λ be the eigenvalue corresponding to the eigenvector x= [x1 x2].
For a square matrix A and scalar λ,
if Ax = λx has a non-zero solution x, then x is called the eigenvector of A and λ is called the eigenvalue associated with x.Let's compute Ax = λx and check if the given vector is an eigenvector of the matrix or not.
−9 −8 7 6 −5 −6 −6 10 [−2 1] = λ [−2 1]
Now we have,
[tex]−18 + 8 = −10λ1 − 8 = −9λ9 − 6 = 7λ6 + 5 = 6λ5 − 6 = −5λ−12 − 6 = −6λ−12 + 10 = −6λ[−10 9 7 6 −5 −6 4] [−2 1] = 0[/tex]
As we can see, the product of the matrix and the given vector is equal to the scalar multiple of the given vector with λ=-2.
Hence the given vector is an eigenvector of the matrix with eigenvalue λ=-2.
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System of ODEs. Consider the system of differential equations dc = x + 4y dt dy dt - 20 - 9 (i) Write the system (2) in a matrix form. (ii) Find a vector solution by eigenvalues/eigenvectors. (iii) Use the vector solution, write the solutions x(t) and y(t).
Answer: The solution of the given system of differential equations is given by
[tex]x(t)=4C1e^(-2 - √5t/2) + 4C2e^(-2 + √5t/2) y(t)\\ = (-2 - √5x)C1e^(-2 - √5t/2) + (-2 + √5x)C2e^(-2 + √5t/2).[/tex]
Step-by-step explanation:
Given differential equation
dc/dt = x + 4y... (1)
dy/dt = -20 - 9... (2)
We need to find the solution of the given system of differential equations.
(i) The given system of differential equations can be written in matrix form as:
dc/dt dy/dt = 1 4 x -9
The given matrix is
A= [1, 4; x, -9]
(ii) Using eigenvalues and eigenvectors, the vector solution of the given system of differential equations is given as:
The determinant of the matrix A is:
det(A) = 1 × (-9) - 4x
= -9 - 4x
The characteristic equation of the matrix A is:
|A - λI| = 0
⇒ [tex]\[\begin{vmatrix}1-\lambda&4\\x&-9-\lambda\end{vmatrix}\] = 0[/tex]
⇒ (1 - λ)(-9 - λ) - 4x = 0
⇒ λ² + 8λ + (4x - 9) = 0
Using quadratic formula, we get:
λ1 = -4 - √(16 - 4(4x - 9))/2
= -4 - √(16 - 16x + 36)/2
= -4 - √(20 - 16x)/2
= -2 - √5 + √5x/2
λ2 = -4 + √(16 - 4(4x - 9))/2
= -4 + √(16 - 16x + 36)/2
= -4 + √(20 - 16x)/2
= -2 + √5 - √5x/2
The corresponding eigenvectors are: Eigenvector for λ1:
[4, -2 - √5x]T
Eigenvector for λ2: [4, -2 + √5x]T
Hence, the general solution of the given system of differential equations is given by:
c(t) = [tex]C1[4, -2 - √5x]T e^(-2 - √5t/2) + C2[4, -2 + √5x]T e^(-2 + √5t/2)[/tex]where C1 and C2 are constants.
(iii) Using the above vector solution, the solutions of the given system of differential equations are:
x(t) = 4C1e^(-2 - √5t/2) + 4C2e^(-2 + √5t/2)
y(t) = (-2 - √5x)C1e^(-2 - √5t/2) + (-2 + √5x)C2e^(-2 + √5t/2)
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Let z = 10t², y = 9t6 - 2t². d'y Determine as a function of t, then find the concavity to the parametric curve at t = 5. d²y dz² d²y dr² d²y -3t+18 dx² (6) -3 XO 3. 4.2². .t - At t= 5, the parametric curve has a relative minimum. a relative maximum. neither a maximum nor minimum. not enough information to determine if the curve has an extrema. € anat) [at] наз
The problem involves finding the derivative and concavity of a parametric curve defined by the equations z = 10t² and y = 9t⁶ - 2t². The first derivative dy/dt is determined, and the second derivative d²y/dt² is calculated. The value of d²y/dt² at t = 5 is found to be 67496, indicating that the curve has a concave upward shape at that point and a relative minimum.
The problem provides parametric equations for the variables z and y in terms of the parameter t. To find the derivative dy/dt, each term in the equation for y is differentiated with respect to t. The resulting expression is 54t^5 - 4t.
Next, the second derivative d²y/dt² is computed by differentiating dy/dt with respect to t. The expression simplifies to 270t^4 - 4.
To determine the concavity of the parametric curve at t = 5, the value of d²y/dt² is evaluated by substituting t = 5 into the expression. The calculation yields a value of 67496, which is positive. A positive value indicates that the curve is concave upward or has a "U" shape at t = 5.
Based on the concavity analysis, it can be concluded that the parametric curve has a relative minimum at t = 5.
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2. Consider the matrix (a) (2 pts) Find a basis for Col A. (b) (2 pts) Find a basis for Nul A. A [102 1 202 3 006-3
By considering matrix the basis vectors for Col A and Nul A are:
(a) The basis for Col A is { [1 0 0], [0 1 0] }.
(b) The basis for Nul A is { [1 -101 1 0 0], [0 -1 0 1 0], [0 -2 0 0 1] }.
What are the basis vectors for Col A and Nul A?In linear algebra, the column space (Col A) of a matrix refers to the span of its column vectors. To find a basis vectors, we look for linearly independent vectors that span the space. By performing row reduction on the given matrix, we can determine that the basis for Col A is composed of the first two standard basis vectors, [1 0 0] and [0 1 0]. These vectors represent the independent columns in the original matrix.
Moving on to the null space (Nul A), it represents the set of all vectors that, when multiplied by the matrix, result in the zero vector. To find a basis for the null space, we can solve the homogeneous equation A * x = 0, where x is a vector of variables. By performing row reduction and expressing the solutions parametrically, we obtain the basis for Nul A as {[1 -101 1 0 0], [0 -1 0 1 0], [0 -2 0 0 1]}. These vectors represent the linear combinations of variables that yield the zero vector.
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Let R = Z[x] and let P = {f element of R | f(0) is an even
integer}. Show that P is a prime ideal of R.
The set P is a prime ideal of R, where R = Z[x].
How can it be shown that P is a prime ideal of R?To prove that P is a prime ideal of R = Z[x], we need to demonstrate two properties: (1) P is an ideal of R, and (2) P is a prime ideal, meaning that if the product of two elements is in P, then at least one of the elements must be in P.
To establish property (1), we note that P is closed under addition and scalar multiplication. If f and g are elements of P, their sum f + g will also have an even integer value at zero, satisfying the definition of P. Similarly, multiplying an element f in P by any element in R will result in a polynomial that evaluates to an even integer at zero.
For property (2), suppose f and g are elements of R such that their product fg is in P. This means that the polynomial fg evaluates to an even integer at zero. Since the product of two integers is even if and only if at least one of the integers is even, either f or g must evaluate to an even integer at zero, and thus, it belongs to P.
Therefore, we have shown that P is an ideal and a prime ideal of R = Z[x].
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point(s) possible Find (a) v x w. (b) w x v, and (c) vxv for the two given vectors. v=i+k, w = 31+2j +2k (a) vxw=ai+bj+ck where a= 0 6= = and c= (Type exact values, in simplified form, using fractions
(a) The cross product of vectors v and w, denoted as v x w, is equal to -i - j - 5k.
(b) The cross product of vectors w and v, denoted as w x v, is equal to i - 2j - k.
(c) The cross product of vector v with itself, denoted as v x v, is equal to -j - k.
(a) To find v x w, we can use the cross product formula:
v x w = |i j k |
|1 0 1 |
|3 1 2 |
Expanding the determinant, we have:
v x w = (0 * 2 - 1 * 1) i - (1 * 2 - 3 * 1) j + (1 * 1 - 3 * 2) k
= -1 i - 1 j - 5 k
Therefore, v x w = -i - j - 5k.
(b) To find w x v, we can use the same cross product formula:
w x v = |i j k |
|3 1 2 |
|1 0 1 |
Expanding the determinant, we have:
w x v = (1 * 1 - 0 * 2) i - (3 * 1 - 1 * 1) j + (3 * 0 - 1 * 1) k
= 1 i - 2 j - 1 k
Therefore, w x v = i - 2j - k.
(c) To find v x v, we can use the cross product formula:
v x v = |i j k |
|1 0 1 |
|1 0 1 |
Expanding the determinant, we have:
v x v = (0 * 1 - 1 * 0) i - (1 * 1 - 1 * 0) j + (1 * 0 - 1 * 1) k
= 0 i - 1 j - 1 k
Therefore, v x v = -j - k.
So, the answers are:
(a) v x w = -i - j - 5k
(b) w x v = i - 2j - k
(c) v x v = -j - k.
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f θ = 3phi/4 find the exact value of each expression below , (a) cos 2θ-(b) cos (-θ) (c) cos?^2θ-0
The exact value of each expression is
(a) cos 2θ = 0
(b) cos (-θ) = (-1/√2)
(c) cos²θ = 1/2
What are the trigonometric functions?
Trigonometric functions, often known as circular functions, are simple functions of a triangle's angle. These trig functions define the relationship between the angles and sides of a triangle.
Here, we have
Given:
f(θ) = 3π/4
We have to find the exact value of each expression.
(a) cos 2θ
we have to find the exact value, so we put the θ = 3π/4 and we get
= cos 2θ
= cos 2(3π/4)
After solving this term we get
= cos (3π/2)
From the trigonometric table, we find the value of cos (3π/2) and we get
= cos (3π/2)
= 0
(b) cos (-θ)
we have to find the exact value, so we put the θ = 3π/4 and we get
= cos (-θ)
= cos (-3π/4)
After solving this term we get
= cos (3π/4)
From the trigonometric table, we find the value of cos (3π/2) and we get
= cos (3π/4)
= -1/√2
(c) cos²θ
we have to find the exact value, so we put the θ = 3π/4 and we get
= cos²θ
= cos²(3π/4)
After solving this term we get
= cos² (3π/4)
From the trigonometric table, we find the value of cos (3π/2) and we get
= (-1/√2)²
= 1/2
Hence, the exact value of each expression is
(a) cos 2θ = 0
(b) cos (-θ) = (-1/√2)
(c) cos²θ = 1/2
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Find an equation of the plane passing through the three points given P = (5, 6, 6), Q = (6, 10, 16), R = (14, 12, 7) (Use symbolic notation and fractions where needed. Give you answer in the form ax + by + cz = d.)
To find an equation of the plane passing through the three given points P, Q, and R, we can use the concept of cross products. By finding the vectors formed by two sides of the plane, we can calculate the normal vector, which will provide the coefficients of the equation of the plane in the form ax + by + cz = d.
Let's start by finding two vectors in the plane. We can take vectors formed by the points P and Q, and P and R, respectively. The vector formed by P and Q is given by v1 = Q - P = (6 - 5, 10 - 6, 16 - 6) = (1, 4, 10). The vector formed by P and R is given by v2 = R - P = (14 - 5, 12 - 6, 7 - 6) = (9, 6, 1).
Next, we calculate the cross product of v1 and v2 to obtain the normal vector of the plane. The cross product is given by n = v1 × v2 = (4*1 - 10*6, 10*9 - 1*1, 1*6 - 4*9) = (-56, 89, -30).
Now that we have the normal vector, we can write the equation of the plane using the point-normal form. Substituting the values from P into the equation, we have -56(x - 5) + 89(y - 6) - 30(z - 6) = 0. Simplifying further, we get -56x + 280 + 89y - 534 - 30z + 180 = 0. Combining like terms, we obtain -56x + 89y - 30z = 74.
Therefore, the equation of the plane passing through the points P, Q, and R is -56x + 89y - 30z = 74.
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The relation R = {(2,1),(3,1),(3,2),(4,1),(4,2),(4,3)} on the
set A = {1,2,3,4} is antisymmetric
O True
False
The relation is antisymmetric is True.
We are given that relation R = {(2,1),(3,1),(3,2),(4,1),(4,2),(4,3)} on the set A = {1,2,3,4} is antisymmetric.
Antisymmetric relation is a concept in the study of binary relations.
A binary relation R on a set A is said to be antisymmetric if, for all a and b in A, if R(a, b) and R(b, a), then a = b. Otherwise, the relation is non-antisymmetric.
Now let us prove that the given relation is antisymmetric;
We can see that there are no pairs of the form (b,a) where there exists (a,b). So, there is no case where R(a,b) and R(b,a) holds true.
Hence, a=b holds true for all a,b∈A.
Therefore, R is antisymmetric relation.
So, the given statement is True. Hence, option (a) is correct.
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A population has an equal proportion of males and females. That is, when randomly selecting one individual, the probability that the individual is male (M) is 1/2 and the probability that the individual is female (F) is 1/2. There are only two outcomes when an individual is selected: {M, F). What is this collection of all possible outcomes called?
A. the sample space
B. the population
C. the distribution D. a census
The collection of all possible outcomes is called the sample space. This collection can be defined as the set of all possible outcomes of a random experiment or a statistical trial. In a population of males and females with an equal proportion of each, there are only two possible outcomes: male or female.
The sample space consists of two possible outcomes: {M, F}.A sample space is always essential when defining probability in any given situation. When we want to calculate the probability of an event happening, we need to consider all possible outcomes.
By doing so, we can determine the number of outcomes that meet the given criteria compared to the total number of possible outcomes. In the case of the population in question, if we wanted to calculate the probability of selecting a male or female, we would take the number of males or females divided by the total number of individuals.
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Get an education: In 2012 the General Social Survey asked 848 adults how many years of education they had.The sample mean was 8.47 years with a standard deviation of 8.99 years.
(a) Construct an 80% confidence interval for the mean number of years of education. Round the answers to
at least two decimal places.
(b) Data collected in an earlier study suggest that the mean 2000 in was 6.93 years. A sociologist believes than the mean in 2012 is the same. Does the confidence interval contradict this claim? Explain.
(a) To construct an 80% confidence interval for the mean number of years of education, we can use the formula:
Confidence Interval = sample mean ± (critical value * standard error)
First, we need to calculate the standard error, which is given by the formula:
Standard Error = standard deviation / √(sample size)
Given:
Sample mean () = 8.47 years
Standard deviation (σ) = 8.99 years
Sample size (n) = 848
Standard Error = 8.99 / √848 ≈ 0.3084
Next, we need to find the critical value for an 80% confidence level. Since the sample size is large (n > 30), we can use the Z-distribution. The critical value for an 80% confidence level is approximately 1.282.
Now, we can calculate the confidence interval:
Confidence Interval = 8.47 ± (1.282 * 0.3084)
Confidence Interval ≈ (8.15, 8.79)
Therefore, the 80% confidence interval for the mean number of years of education is approximately 8.15 to 8.79 years.
(b) The confidence interval does not necessarily contradict the claim that the mean in 2012 is the same as in 2000. The confidence interval represents a range of plausible values for the true population mean based on the sample data. Since the confidence interval (8.15, 8.79) includes the value of 6.93 (the mean in 2000), it is possible that the true mean in 2012 is the same as in 2000. However, we can say with 80% confidence that the mean in 2012 falls within the given confidence interval.
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Find an equation of the tangent plane to the given surface at the specified point. z = 3(x - l)^2 + 2(y + 3)^2 + 7, (4, 1, 66) Recall that the equation of the plane tangent to z = f(x, y) at a point (a, b, c) is given by z = c c = f_x (a b) (x - a) + f_y (a b) (y - b b). For z = f(x, y) = 3(x - 1)^2 + 2(y + 3)^2 + 7, we have f_x(x, y) = and f_y(x, y) =
The equation of the tangent plane to the given surface at the specified point is 18x + 16y - 34.
Given: z = 3(x - 1)² + 2(y + 3)² + 7
We have to find the equation of the tangent plane to the given surface at the specified point.
We have a formula to find the equation of the plane tangent to z = f(x, y) at a point (a, b, c) as shown below:
z = c + [tex]f_x[/tex](a, b) (x - a) + [tex]f_y[/tex] (a, b) (y - b)
Here, we need to find [tex]f_x[/tex] (a, b) and [tex]f_y[/tex] (a, b).
Differentiating z = 3(x - 1)² + 2(y + 3)² + 7 partially with respect to x, we get:
∂z/∂x = 6(x - 1)
Differentiating z = 3(x - 1)² + 2(y + 3)² + 7 partially with respect to y, we get:
∂z/∂y = 4(y + 3)
Therefore, at point (4, 1), we have a = 4,
b = 1,
c = 66,
[tex]f_x[/tex] (a, b) = ∂z/∂x
= 6(4 - 1)
= 18
and [tex]f_y[/tex] (a, b) = ∂z/∂y
= 4(1 + 3)
= 16
Now substituting these values in the plane equation, we get:
z = 66 + 18(x - 4) + 16(y - 1)
Simplifying the above equation, we get the equation of the tangent plane as shown below:
z = 18x + 16y - 34
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