In this question, we are given two problems. The first problem involves finding the shortest distance between a given line and a plane. The line is represented by parametric equations, and the plane is represented by an equation.
a) To find the shortest distance between the line and the plane, we can use the formula for the distance between a point and a plane. We need to find a point on the line that lies on the plane, and then calculate the distance between that point and the line. The calculation process will be explained in more detail.
b) In part (i), we are given that the skydiver reaches a terminal velocity of 60 m/s after a long time. We can use this information to determine the constant k in the differential equation. In part (ii), we need to solve the given differential equation with the initial condition v(0) = 0 using the value of k found in part (i). We can use separation of variables and integration to find the solution. In part (iii), we are asked to sketch the solution for a time interval of t = 20. We can use the solution obtained in part (ii) to plot the graph of velocity versus time.
In the explanation paragraph, we will provide step-by-step calculations and explanations for each part of the problem, including finding the distance between the line and the plane and solving the differential equation for the skydiver's motion.
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There are n lines that are not parallel with each other on a plane. There are no 3 lines intersecting at a point. If they intersect 171 times, find n.
To find the value of n, the number of lines that are not parallel and intersect 171 times on a plane, we can use the formula for the total number of intersections among n lines,
Let's assume that there are n lines on the plane that are not parallel and no three lines intersect at a point. The total number of intersections among these lines can be calculated using the formula (n * (n - 1)) / 2. This formula counts the number of intersections between each pair of lines without considering repetitions or the order of intersections.
We are given that the total number of intersections is 171. Therefore, we can set up the equation:
(n * (n - 1)) / 2 = 171
To find the value of n, we can multiply both sides of the equation by 2 and rearrange it:
n * (n - 1) = 342
Expanding the equation further:
n² - n - 342 = 0
Now we have a quadratic equation. We can solve it by factoring, using the quadratic formula, or by completing the square. By factoring or using the quadratic formula, we can find the two possible values for n that satisfy the equation.
After finding the solutions for n, we need to check if the values make sense in the context of the problem. Since n represents the number of lines, it should be a positive integer. Therefore, we select the positive integer solution that satisfies the conditions of the problem.
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√√== da x+√2x+3 Which of the following integrals is used in evaluating appropriate u-substitution? °/-1-3) 5) du 0/(-3-6-1) de °/-3--²-1) du 7) /(1+3) du after making an
We are given an expression ∫√(√(x+√2x+3)) dx, and we need to determine which of the given integrals involves appropriate u-substitution.
In order to simplify the given expression and make it easier to integrate, we can use u-substitution. The general idea of u-substitution is to replace a complicated expression within the integral with a simpler variable, denoted as u.
Looking at the given options, we need to choose an integral that involves the appropriate form for u-substitution. The form typically used in u-substitution is ∫f(g(x))g'(x) dx, where g'(x) is the derivative of g(x) and appears within f(g(x)).
Among the given options, option 7) ∫(1+3) du involves the appropriate form for u-substitution. We can rewrite the original expression as ∫√(√(x+√2x+3)) dx = ∫(1+3) du. By substituting u = √(x+√2x+3), we can simplify the integral and evaluate it using u-substitution.
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Which of the following are parameterizations of the entire plane x + y + z = 1? Select all that apply. Puu) = (u, v, 1 - u - u), - 0,0 SU < 2x
The following are the parameterizations of the entire plane x + y + z = 1:
Pu(u,v) = (u, v, 1 - u - v) - 0 ≤ u ≤ 1, 0 ≤ v ≤ 1Pv(v,w) = (1 - v - w, v, w) - 0 ≤ v ≤ 1, 0 ≤ w ≤ 1
Pw(w,u) = (u, 1 - w - u, w) - 0 ≤ w ≤ 1, 0 ≤ u ≤ 1
Therefore, the simple answer is: Parameterizations of the entire plane x + y + z = 1 are:
Pu(u,v) = (u, v, 1 - u - v),
Pv(v,w) = (1 - v - w, v, w) and Pw(w,u) = (u, 1 - w - u, w).
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Does someone mind helping me with this? Thank you!
Answer: x=5
Step-by-step explanation:
You can never get a negative under the square root so you start to get real number from 0 onward
Set under the root =0 to find where x real begins
x-5=0
x=5
At x=5 that's when real outputs begin
For what values of x does the graph of f (x) have a horizontal tangent? (Round the answers to three decimal places.) f(x) = 4x³ + 7x² + 2x + 8
Therefore, the values of x for which the graph of f(x) has a horizontal tangent are approximately x = -0.167 and x = -1.
To find the values of x for which the graph of f(x) = 4x³ + 7x² + 2x + 8 has a horizontal tangent, we need to find where the derivative of f(x) equals zero. The derivative of f(x) can be found by differentiating each term:
f'(x) = 12x² + 14x + 2
Now, we can set f'(x) equal to zero and solve for x:
12x² + 14x + 2 = 0
To solve this quadratic equation, we can use the quadratic formula:
x = (-b ± √(b² - 4ac)) / (2a)
Plugging in the values of a = 12, b = 14, and c = 2, we get:
x = (-(14) ± √((14)² - 4(12)(2))) / (2(12))
x = (-14 ± √(196 - 96)) / 24
x = (-14 ± √100) / 24
x = (-14 ± 10) / 24
Simplifying further, we have two solutions:
x₁ = (-14 + 10) / 24
= -4/24
= -1/6
≈ -0.167
x₂ = (-14 - 10) / 24
= -24/24
= -1
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Let f: A B be a function and R be an equivalence relation on B. Define a relation S on A by T₁Sx₂ if f(x₁) Rf(x₂). Show that S is an equivalence relation.
Let f: A → B be a function and R be an equivalence relation on B. The relation S on A is defined as T₁Sx₂ if f(x₁) R f(x₂). We need to show that S is an equivalence relation.
To show that S is an equivalence relation, we need to demonstrate that it satisfies three properties: reflexivity, symmetry, and transitivity. Reflexivity: For any element x in A, we need to show that x S x. Since R is an equivalence relation on B, we know that f(x) R f(x) for any x in A. Therefore, x S x, and S is reflexive.
Symmetry: For any elements x₁ and x₂ in A, if x₁ S x₂, then we need to show that x₂ S x₁. If x₁ S x₂, it means that f(x₁) R f(x₂). Since R is symmetric, f(x₂) R f(x₁). Therefore, x₂ S x₁, and S is symmetric.
Transitivity: For any elements x₁, x₂, and x₃ in A, if x₁ S x₂ and x₂ S x₃, then we need to show that x₁ S x₃. If x₁ S x₂, it means that f(x₁) R f(x₂), and if x₂ S x₃, it means that f(x₂) R f(x₃). Since R is transitive, f(x₁) R f(x₃). Therefore, x₁ S x₃, and S is transitive.
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Exercises curvature at the given point. S: find the 19. r(t) = (c-2t, 21, 4), 1 = 0 20. r(t) = (2, sin xt, In t), t = 1 21. r(t) = (t, sin 2t, 3t), t = 0 22. r(t) = (t. 1² +1 -1, 1), t = 0 In exercises 7-14, find the unit tangent vector to the curve at the indicated points. 7. r(t) = (31, 2). t=0, r=-1, r= 1 {A 8. r(t) = (2t³, √t), t= 1,t = 2, t = 3 9. r(t) = (3 cost, 2 sin t), t=0,t==₁t={A 10. r(t)= (4 sin 1, 2 cos t). t= -₁1 = 0, 1 = ग 11. r(t) = (3r, cos 2r, sin 2r), t=0, 1 =-.1 = {A 12. r (t) = (t cost, t sint, 4t), t= -2,t=0,t = 13. r(t) = (e2t cost, et sin t). 1 = 0, 1 = 1,t=k {A 14. r(t) = (t - sint, 1 - cost), t = 0,t = 7,t = k D4
To find the curvature at the given point, first, find the unit tangent vector to the curve at the given point as follows:r(t) = (c-2t, 21, 4); at t = 1, r(1) = (c - 2(1), 21, 4) = (c - 2, 21, 4)r'(t) = (-2, 0, 0)T; at t = 1, r'(1) = (-2, 0, 0)Tr'(1) = (-2, 0, 0); ||r'(1)|| = sqrt((-2)^2 + 0^2 + 0^2) = 2r'(1) = (-2/2, 0/2, 0/2) = (-1, 0, 0)
The curvature κ is defined by κ = ||r''(t)||/||r'(t)||^3, where r''(t) is the second derivative of the position vector, r(t), and ||v|| denotes the magnitude of a vector v.
20. r(t) = (2, sin xt, In t); at t = 1, r(1) = (2, sin x, 0)r'(t) = (0, x cos x, 1/t)T; at t = 1, r'(1) = (0, x cos x, 1)Tr'(1) = (0, cos x, 1); ||r'(1)|| = sqrt(0^2 + cos^2 x + 1^2) = sqrt(1 + cos^2 x)
The curvature κ is defined by κ = ||r''(t)||/||r'(t)||^3, where r''(t) is the second derivative of the position vector, r(t), and ||v|| denotes the magnitude of a vector v.
Summary:r(t) = (c-2t, 21, 4); at t = 1, the curvature is given by κ = 1/2r(t) = (2, sin xt, In t); at t = 1, the curvature is given by κ = (1 + sin^2 x)^(1/2)/(1 + cos^2 x)^(3/2).
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F is a field, B is a finitely generated F-algebra and m⊂B is a maximal ideal. prove that B/m is a field.
B/m is a field.This completes the proof of the theorem.
Let F be a field, B be a finitely generated F-algebra and m ⊂ B be a maximal ideal.
Now, we need to prove that B/m is a field.What is an F-algebra?
An F-algebra is a commutative ring R equipped with an F-linear map F → R.
If F is a subfield of a larger field K, then R may also be viewed as a K-vector space, and the F-algebra structure endows R with the structure of a K-algebra (F is contained in K).
Moreover, if the algebra is finitely generated, we may choose the generators to be algebraic over F and the algebra is then said to be of finite type over F.
The theorem that relates to the given question is:"If B is a finitely generated F-algebra, then the set of maximal ideals of B is nonempty."
Proof of B/m is a field:Let B/m be the quotient field.
Consider a non-zero element r + m of B/m such that r ∉ m.
We will prove that r + m is invertible.
It is enough to show that r + m generates B/m as an F-algebra.
Now, since B is a finitely generated F-algebra, we know that there exist elements x1, x2, ..., xn such that B is generated by {x1 + m, x2 + m, ..., xn + m}.
Since r ∉ m, we may choose coefficients a1, a2, ..., an ∈ F such that a1r + a2x1 + a3x2 + ... + anxn = 1.
Hence, r + m is invertible in B/m. Therefore, B/m is a field.This completes the proof of the theorem.
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A cut of an undirected graph G= (V,E) is a partition of its vertex set into two non-empty sets A, and B. An edge crosses the cut (A,B) if it has one endpoint in each of A and B. Assume G has pairwise distinct positive real-valued edge costs. Prove that if an edge is the cheapest edge crossing a cut (A,B), then e belongs to every minimal nice tree of G.
Return your solutions until 23:59 of June 3, 2022.
The cheapest edge crossing a cut (A,B) belongs to every minimal nice tree of a pairwise distinct positive real-valued edge cost undirected graph G= (V,E).ProofLet T be a minimal nice tree of G and let e be the cheapest edge crossing a cut (A,B).
If e is not in T, then T + e contains a cycle. This cycle contains at least one edge f which also crosses the cut (A,B). Therefore, there are two paths between the endpoints of f in T. Let P be the path in T that includes f, and let Q be the other path in T. The sub-path of P from one endpoint of f to the other endpoint of f together with the sub-path of Q from the other endpoint of f to one endpoint of f forms a cycle in T, contradicting T being a tree. Thus, e must be in T.The idea is that if you remove the cheapest edge crossing the cut, then there are two connected components of the graph. If you consider any minimal nice tree for the original graph, then in order to connect the two components, you need to add the cheapest edge. This proves that the cheapest edge is a part of every minimal nice tree of the graph.
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The high blood pressure of an obese individual can be modelled by the function p()-40 sin 3x + 160, where p(1) represents the blood pressure, in millimetres of mercury (mmHg), and is the time, in seconds. Determine the maximum and minimum blood pressure, in the time interval 0 SIS 0.75, and the time(s) when they occur.
Therefore, the maximum blood pressure of 200 mmHg occurs at approximately 0.524 seconds, and the minimum blood pressure of 120 mmHg occurs at approximately 1.571 seconds within the time interval 0 ≤ t ≤ 0.75.
To find the maximum and minimum values of the blood pressure function p(t), we need to examine the behavior of the sinusoidal term, -40sin(3t), within the given time interval. The function is a sine wave with an amplitude of 40 and a period of 2π/3. This means that the maximum value occurs at the peak of the sine wave (amplitude + offset), and the minimum value occurs at the trough (amplitude - offset).
The maximum blood pressure corresponds to the peak of the sine wave, which is 40 + 160 = 200 mmHg. To find the time at which this occurs, we set the argument of the sine function, 3t, equal to π/2 (since the peak of the sine wave is π/2 radians). Solving for t gives t = (π/2) / 3 = π/6 ≈ 0.524 seconds.
Similarly, the minimum blood pressure corresponds to the trough of the sine wave, which is -40 + 160 = 120 mmHg. Setting the argument of the sine function equal to 3π/2 (the trough of the sine wave), we find t = (3π/2) / 3 = π/2 ≈ 1.571 seconds.
Therefore, the maximum blood pressure of 200 mmHg occurs at approximately 0.524 seconds, and the minimum blood pressure of 120 mmHg occurs at approximately 1.571 seconds within the time interval 0 ≤ t ≤ 0.75.
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The three given equations describe three different lines. Make a sketch and find the area bounded by the lines. Y 12122²2 +2 (x>0), x = 0, y = 4 (x > 0). =
To find the area bounded by the given lines, we need to sketch the lines and identify the region enclosed by them. The area is bounded by the curve y = (1/2)x² + 2 (for x > 0), the y-axis (x = 0), and the line y = 4 (for x > 0).the area bounded by the given lines is 16/3 square units.
First, let's sketch the lines. The line y = (1/2)x² + 2 represents a parabolic curve opening upward with the vertex at (0, 2). The line x = 0 represents the y-axis, and the line y = 4 is a horizontal line passing through the point (0, 4).
To find the area bounded by these lines, we need to determine the x-values at which the parabolic curve intersects the horizontal line y = 4. We can set (1/2)x² + 2 = 4 and solve for x:
(1/2)x² = 2
x² = 4
x = ±2
Since we are considering x > 0, the intersection point is (2, 4). Thus, the area is bounded by the curve y = (1/2)x² + 2, the y-axis, and the line y = 4, within the range of x > 0.
To calculate the area, we integrate the function (1/2)x² + 2 with respect to x, from x = 0 to x = 2:
∫[(1/2)x² + 2] dx = [(1/6)x³ + 2x] from 0 to 2
= [(1/6)(2)³ + 2(2)] - [(1/6)(0)³ + 2(0)]
= (8/6 + 4) - 0
= (4/3 + 4)
= 16/3
Therefore, the area bounded by the given lines is 16/3 square units.
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Problem situation:
Anna is at the movie theater and has $35
to spend.
She spends $9.50
on a ticket and wants to buy some snacks. Each snack costs $3.50.
How many snacks, x
, can Anna buy?
Inequality that represents this situation:
9.50+3.50x≤35
Anna can buy a maximum of 7 snacks with $35.
To determine how many snacks Anna can buy, we can set up an inequality based on the amount of money she has. Let's denote the number of snacks as x.
The cost of a ticket is $9.50, and each snack costs $3.50. Anna's total spending should be less than or equal to $35, which can be represented by the inequality:
9.50 + 3.50x ≤ 35
In this inequality, 9.50 represents the cost of the ticket, 3.50x represents the cost of x snacks, and 35 represents the total amount of money Anna has to spend.
To find the maximum number of snacks Anna can buy, we need to solve the inequality for x. Here's how we can do that:
Subtract 9.50 from both sides of the inequality:
3.50x ≤ 35 - 9.50
3.50x ≤ 25.50
Divide both sides of the inequality by 3.50:
x ≤ 25.50 / 3.50
Calculating the division:
x ≤ 7.2857
Since we can't have a fraction of a snack, we round down to the nearest whole number:
x ≤ 7
Therefore, Anna can buy a maximum of 7 snacks with $35.
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Consider a plane which passes through the points (3, 2, 5), (0, -2, 2) and (1, 3, 1). a) Determine a vector equation for the plane. b) Determine parametric equations for the plane. c) Determine the Cartesian equation of this plane.
a) The vector equation:r = (3, 2, 5) + t(-19, 4, 11)
b) The parametric equations of the plane x = 3 - 19t, y = 2 + 4t , z = 5 + 11t
c) the Cartesian equation of the plane is:
-19x + 4y + 11z = 6
To find the vector equation, parametric equations, and Cartesian equation of the plane passing through the given points, let's proceed step by step:
a) Vector Equation of the Plane:
To find a vector equation, we need a point on the plane and the normal vector to the plane. We can find the normal vector by taking the cross product of two vectors in the plane.
Let's take the vectors v and w formed by the points (3, 2, 5) and (0, -2, 2), respectively:
v = (3, 2, 5) - (0, -2, 2) = (3, 4, 3)
w = (1, 3, 1) - (0, -2, 2) = (1, 5, -1)
Now, we can find the normal vector n by taking the cross product of v and w:
n = v × w = (3, 4, 3) × (1, 5, -1)
Using the cross product formula:
n = (4(-1) - 5(3), 3(1) - 1(-1), 3(5) - 4(1))
= (-19, 4, 11)
Let's take the point (3, 2, 5) as a reference point on the plane. Now we can write the vector equation:
r = (3, 2, 5) + t(-19, 4, 11)
b) Parametric Equations of the Plane:
The parametric equations of the plane can be obtained by separating the components of the vector equation:
x = 3 - 19t
y = 2 + 4t
z = 5 + 11t
c) Cartesian Equation of the Plane:
To find the Cartesian equation, we need to express the equation in terms of x, y, and z without using any parameters.
Using the point-normal form of the equation of a plane, the equation becomes:
-19x + 4y + 11z = -19(3) + 4(2) + 11(5)
-19x + 4y + 11z = -57 + 8 + 55
-19x + 4y + 11z = 6
Therefore, the Cartesian equation of the plane is:
-19x + 4y + 11z = 6
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Find the absolute maximum and minimum values of f on the set D. f(x, y) = x² + 7y² - 2x - 14y + 1, D={(x, y) |0 ≤ x ≤ 2,0 ≤ y ≤ 3 {(x, absolute maximum value absolute minimum value
Therefore, the absolute maximum value of f on D is 1, and the absolute minimum value is -128.
To find the absolute maximum and minimum values of the function f(x, y) = x² + 7y² - 2x - 14y + 1 on the set D = {(x, y) | 0 ≤ x ≤ 2, 0 ≤ y ≤ 3}, we need to evaluate the function at its critical points and endpoints within the set.
Step 1: Find the critical points:
To find the critical points, we need to find the partial derivatives of f(x, y) with respect to x and y, and set them equal to zero:
∂f/∂x = 2x - 2
= 0,
∂f/∂y = 14y - 14
= 0.
Solving these equations, we find x = 1 and y = 1 as the critical point (1, 1).
Step 2: Evaluate f(x, y) at the critical point and endpoints:
Evaluate f(x, y) at the critical point (1, 1):
f(1, 1) = (1)² + 7(1)² - 2(1) - 14(1) + 1 = 1 + 7 - 2 - 14 + 1 = -6.
Evaluate f(x, y) at the endpoints of D:
f(0, 0) = (0)² + 7(0)² - 2(0) - 14(0) + 1
= 1.
f(0, 3) = (0)² + 7(3)² - 2(0) - 14(3) + 1
= -128.
f(2, 0) = (2)² + 7(0)² - 2(2) - 14(0) + 1
= -1.
f(2, 3) = (2)² + 7(3)² - 2(2) - 14(3) + 1
= -76.
Step 3: Compare the function values:
The maximum and minimum values will be the largest and smallest values among the function values at the critical point and endpoints. In this case, the maximum value is 1 (at (0, 0)) and the minimum value is -128 (at (0, 3)).
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In which choice is y a nonlinear function of x?
A 5 4
x y = +
B y x = + 10
C 3 2 4
x y x + = −
D 2 5 3 y x
The choice where y is a nonlinear function of x is option C: x y x + = −.
In this equation, the relationship between x and y is not a simple direct proportion or linear function. The presence of the exponent on x indicates a nonlinear relationship.
As x increases or decreases, the effect on y is not constant or proportional. Instead, it involves a more complex operation, in this case, the squaring of x and then subtracting it. This results in a curved relationship between x and y, which is characteristic of a nonlinear function.
Nonlinear functions can have various shapes and patterns, including curves, exponential growth or decay, or periodic behavior.
These functions do not exhibit a constant rate of change and cannot be represented by a straight line on a graph.
In contrast, linear functions have a constant rate of change and can be represented by a straight line.
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A rivet is to be inserted into a hole. If the standard deviation of hole diameter exceeds 0.01 millimeters, there is an unacceptably high probability that the rivet will not fit. Therefore, a random sample of n = 15 parts is selected, and the hole diameter is measured. The sample standard deviation of the hole diameter measurements is s = 0.008 millimeters. (a)- (2 marks) Is there strong evidence to indicate that the standard deviation of hole diameter is greater than 0.01 millimeters? Use a = 0.01. State any necessary assumptions about the underlying distribution of the data. (b)- (1 marks) Place limits on the P-value for this test. (c)- (2 marks) How many samples must be taken to be 80% certain that an estimate of the process standard deviation is within 0.0125 of the true standard deviation above?
(a) To test if the standard deviation of the hole diameter is greater than 0.01 millimeters, a hypothesis test is conducted with a significance level of 0.01, assuming certain distributional assumptions. (b) The P-value for this test will have limits based on the outcome, indicating the strength of evidence against the null hypothesis. (c) The required sample size to be 80% certain that the estimate of the process standard deviation is within 0.0125 of the true standard deviation above can be calculated using a confidence interval formula.
(a) To test if the standard deviation of the hole diameter is greater than 0.01 millimeters, a hypothesis test can be performed. The null hypothesis, denoted as H0, assumes that the standard deviation is equal to or less than 0.01 millimeters. The alternative hypothesis, denoted as Ha, assumes that the standard deviation is greater than 0.01 millimeters. Assumptions about the underlying distribution of the data are necessary, such as assuming the data follows a normal distribution.
(b) The P-value represents the probability of observing a sample statistic as extreme as the one obtained if the null hypothesis is true. In this case, the P-value will determine the strength of evidence against the null hypothesis. If the P-value is less than or equal to the significance level (0.01 in this case), the null hypothesis can be rejected in favor of the alternative hypothesis.
(c) To determine the number of samples needed to be 80% certain that an estimate of the process standard deviation is within 0.0125 of the true standard deviation above, a confidence interval can be used.
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A is a 2 x 2 matrix and 2(A + I) = I. Enter det (A + I). (b) A is a 4 x 4 matrix and -3 A +41 = 0. Enter det (A + I). (c) A is a 3 x 3 matrix and A2 +6 A-71-0. If det (A +31)>0, enter det (A+31).
Calculate the determinant of (A + I) using formulas for different-sized matrices A. I calculates a 2 x 2 matrix's determinant. 4x4 determinants are -3A + 41 = 0. Finally, if det(A + 31) > 0, the determinant of a 3 x 3 matrix is A^2 + 6A - 71 = 0.
(a) For a 2 x 2 matrix, the equation 2(A + I) = I can be rewritten as 2A + 2I = I. Subtracting 2I from both sides yields 2A = I - 2I, which simplifies to 2A = -I. Dividing by 2 gives A = -0.5I. The determinant of A is given by det(A) = (-0.5)^2 = 0.25. Since A is a 2 x 2 matrix and A + I = -0.5I + I = 0.5I, the determinant of (A + I) is det(A + I) = (0.5)^2 = 0.25.
(b) For a 4 x 4 matrix, the equation -3A + 41 = 0 implies that A = (1/3) * 41. The determinant of A can be found by evaluating det(A) = (1/3)^4 * 41^4 = 41^4 / 81. Now, for (A + I), we can substitute the value of A to get (1/3) * 41 + I = (41 + 3I) / 3. Since A is a 4 x 4 matrix, the determinant of (A + I) is det(A + I) = (41 + 3)^4 / 81.
(c) For a 3 x 3 matrix, the equation A^2 + 6A - 71 = 0 does not directly provide the determinant of A or (A + 31). However, if we assume that det(A + 31) > 0, it implies that (A + 31) is invertible, which means det(A + 31) ≠ 0. Since det(A + 31) ≠ 0, it follows that the equation A^2 + 6A - 71 = 0 does not have any repeated eigenvalues. Therefore, we can conclude that if det(A + 31) > 0, then det(A + 3
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Consider f(x)=x²+x-6 on [1,3] A.) Set up the integral(s) that would be used to find the area bounded by f and the x-axis. B.) Using your answer above, show all work using the Fundamental Theorem of Calculus to find th area of the region bounded by f and the x-axis.
the function f(x) = x² + x - 6 and the x-axis on the interval [1, 3]. Part A requires setting up the integral(s) to calculate the area, while Part B involves using the Fundamental Theorem of Calculus to evaluate the integral and find the area.
Part A requires setting up the integral(s) to find the area bounded by the function f(x) = x² + x - 6 and the x-axis on the interval [1, 3]. The area can be calculated by integrating the absolute value of the function f(x) over the given interval.
In Part B, the Fundamental Theorem of Calculus is utilized to evaluate the integral and find the area of the region bounded by f and the x-axis. The first step is finding the antiderivative of the function f(x), which yields F(x) = (1/3)x³ + (1/2)x² - 6x. Then, the definite integral is calculated by subtracting the value of the antiderivative at the lower limit (F(1)) from the value at the upper limit (F(3)). This provides the area enclosed by f and the x-axis on the interval [1, 3].
By employing the Fundamental Theorem of Calculus, the specific integral(s) can be evaluated to find the exact area of the region bounded by f(x) and the x-axis.
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Sketch and describe the plane 12y - 48z = 0.
The equation of the plane is 12y - 48z = 0. It is a vertical plane parallel to the x-axis and intersects the y-z plane at y = 0 and z = 0. The plane extends infinitely in the x-direction and has a constant value of x.
The equation 12y - 48z = 0 can be rewritten as y - 4z = 0 by dividing both sides by 12. This equation represents a plane in three-dimensional space. To sketch the plane, we can start by considering points that satisfy the equation.
When y = 0 and z = 0, the equation is satisfied, giving us a point (0, 0, 0) on the plane. We can also choose other values for y and z to find additional points. For example, when y = 4 and z = 1, the equation is still satisfied, giving us another point (4, 4, 1) on the plane.
Since the coefficient of x is zero, the value of x can be any real number. This means the plane extends infinitely in the x-direction. The plane is parallel to the x-axis and intersects the y-z plane at y = 0 and z = 0, forming a line on the y-z plane.
In summary, the plane defined by the equation 12y - 48z = 0 is a vertical plane parallel to the x-axis. It intersects the y-z plane at y = 0 and z = 0, and extends infinitely in the x-direction, maintaining a constant value of x.
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You can retry this question below Use your graphing calculator to solve the equation graphically for all real solutions 2³ +0.82²- 21.35 - 21.15 = 0 Solutions = -4.03290694 X Make sure your answers are accurate to at least two decimals Question Help: Message instructor Post to forum Submit Question
Therefore, the solution to the equation 2³ + 0.82² - 21.35 - 21.15 = 0 is x ≈ -4.03.
To solve the equation graphically, let's plot the equation y = 2x³ + 0.82x² - 21.35x - 21.15 and find the x-coordinate of the points where the graph intersects the x-axis.
The equation to be graphed is: y = 2x³ + 0.82x² - 21.35x - 21.15
Using a graphing calculator or software, we can plot this equation and find the x-intercepts or solutions to the equation.
The graph shows that there is one real solution, where the graph intersects the x-axis.
The approximate value of the solution is x ≈ -4.03, accurate to two decimal places.
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Find the distance in between the point P(0, 1, - 2) and the point Q(-2,-1, 1).
Step-by-step explanation: To find the distance between two points in three-dimensional space, we can use the distance formula. The distance between two points P(x1, y1, z1) and Q(x2, y2, z2) is given by:
d = sqrt((x2 - x1)^2 + (y2 - y1)^2 + (z2 - z1)^2)
In this case, the coordinates of point P are (0, 1, -2), and the coordinates of point Q are (-2, -1, 1). Plugging these values into the formula, we get:
d = sqrt((-2 - 0)^2 + (-1 - 1)^2 + (1 - (-2))^2)
= sqrt((-2)^2 + (-2)^2 + (3)^2)
= sqrt(4 + 4 + 9)
= sqrt(17)
Therefore, the distance between point P(0, 1, -2) and point Q(-2, -1, 1) is sqrt(17), which is approximately 4.123 units.
. |√3²=4 dx Hint: You may do trigonomoteric substitution
Actually, the statement √3² = 4 is not correct. The square root of 3 squared (√3²) is equal to 3, not 4.
The square root (√) of a number is a mathematical operation that gives you the value which, when multiplied by itself, equals the original number. In this case, the number is 3 squared, which is 3 multiplied by itself.
When we take the square root of 3², we are essentially finding the value that, when squared, gives us 3². Since 3² is equal to 9, we need to find the value that, when squared, equals 9. The positive square root of 9 is 3, which means √9 = 3.
Therefore, √3² is equal to the positive square root of 9, which is 3. It is essential to recognize that the square root operation results in the principal square root, which is the positive value. In this case, there is no need for trigonometric substitution as the calculation involves a simple square root.
Using trigonometric substitution is not necessary in this case since it involves a simple square root calculation. The square root of 3 squared is equal to the absolute value of 3, which is 3.
Therefore, √3² = 3, not 4.
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Find the ratios of products A, B, and C using a closed model. ABC 0.1 0.1 0.2 0.4 0.8 0.3 C 0.5 0.1 0.5 The ratio A:B:C is 0 (Simplify your answer.) ABC V
the ratio A:B:C is not defined (or 0).
To find the ratios of products A, B, and C using a closed model, we need to divide the coefficients of A, B, and C in each equation by their respective coefficients in the C equation. Let's denote the ratios as rA, rB, and rC.
From the given equations:
A + B + C = 0.1
A + 2B + C = 0.4
2A + B + C = 0.8
Dividing the coefficients of A, B, and C in the first equation by the coefficient of C:
A/C + B/C + 1 = 0.1/C
(A + B + C)/C = 0.1/C
rA + rB + 1 = 0.1/C
Similarly, dividing the coefficients in the second and third equations by the coefficient of C, we get:
rA + 2rB + 1 = 0.4/C
2rA + rB + 1 = 0.8/C
We can solve these three equations simultaneously to find the ratios rA, rB, and rC:
rA + rB + 1 = 0.1/C ...(1)
rA + 2rB + 1 = 0.4/C ...(2)
2rA + rB + 1 = 0.8/C ...(3)
Subtracting equation (1) from equation (2), we get:
rB = 0.3/C ...(4)
Subtracting equation (1) from equation (3), we get:
rA = 0.2/C ...(5)
Substituting equations (4) and (5) back into equation (1), we have:
0.2/C + 0.3/C + 1 = 0.1/C
Simplifying the left-hand side:
0.5/C + 1 = 0.1/C
Multiplying through by C:
0.5 + C = 0.1
Subtracting 0.5 from both sides:
C = -0.4
Since C cannot be negative, we can conclude that there is no valid solution for the ratios A:B:C using the given set of equations.
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Rewrite the equation with the variables separated. + √y=e¹ √ÿ dr dy = = (e* - 1) dx √9 = et dx = (e² + 1) dx vy O √ydy=(e + 1) dx O dy √9-1 dy
We have to separate the variables of the given equation +√y=e^(1/2)ÿThe separated variables of the given equation +√y=e^(1/2)ÿ is as follows:√ydy=(e^(1/2) - 1) dx.
We have to find the separated variables of the given equation.
The given equation is +√y=e^(1/2)ÿ.
We have to separate the variables of the given equation +√y=e^(1/2)ÿ.
To separate the variables of the given equation +√y=e^(1/2)ÿ, we have to move the term containing the variable y to one side of the equation and the term containing the variable x to the other side of the equation.
the separated variables of the given equation +√y=e^(1/2)ÿ is √ydy=(e^(1/2) - 1) dx.The separated variables of the given equation +√y=e^(1/2)ÿ are y and x.
The summary of the given problem is to find the separated variables of the given equation +√y=e^(1/2)ÿ, where we have to move the term containing the variable y to one side of the equation and the term containing the variable x to the other side of the equation. The separated variables of the given equation +√y=e^(1/2)ÿ is √ydy=(e^(1/2) - 1) dx.
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Select The Correct Answer For Each Question 1. Consider The Graph G Of A Function F : D --> R, With D A Subset Of R^2. How Many Coordinates Does A Point Have On The Graph? . Option 1 *A Coordinate . Ootion 2 *Two Coordinates . Option 3 *Three Coordinates. 2. Consider The Graph G Of A Function F : D --≫ R, With D A Subset Of R^2. What Is The Most
Select the correct answer for each question
1. Consider the graph G of a function f : D --> R, with D a subset of R^2. How many coordinates does a point have on the graph?
.
Option 1 *A coordinate
.
Ootion 2 *Two coordinates
.
Option 3 *Three coordinates.
2. Consider the graph G of a function f : D --> R, with D a subset of R^2. What is the most accurate way to represent the coordinates of a point on the graph?
.
Option 1 * (0, 0, 0) * (X and Z)
.
Option 2 * (a, b, f(a, b)).
.
Option 3 * (f_1 (a, b), f_2 (a, b), f_3 (a, b))
.
3. Consider the graph G of a function f : D --> R, with D a subset of R^2. Since each point in G can be viewed as (a, b, f(a, b)) to which set does (a,b) belong?
.
Option 1 *R
.
Option 2 *D
.
Option 3 *R^3
.
4. Consider the graph G of a function f : D --> R, with D a subset of R^2. Since each point in G can be viewed as (a, b, f(a, b)), with (a,b) in D, what would be a parameterization of G as a surface?
.
Option 1 *Q(a, b) = (a, b, f(a, b)), with Q defined on D
.
Option 2 *Q(a, b) = (a, b, c), with Q defined on D
.
Option 3 *Q(a, b) = (f_1(a, b), f_2(a, b), f_3(a, b)), with Q defined on D
5. Consider the graph G of a function f : D --> R, with D a subset of R^2.
Taking as parameterization of the surface G a Q : D --> R^3 given by Q(a, b) = (a, b, f(a, b)), what are the tangent vectors T_a and T_b?
.
Option 1* T_a = (1, 0, f_a) and T_b = (0, 1, f_b), where f_a and f_b represent the partial derivative of f with respect to a and b
.
Option2* T_a = (f1_a, f2_a, f3_a) and T_b = (f1_b, f2_b, f3_b), where the subscripts _a and _b represent the partial derivatives of the components of f with respect to a and b
.
Option 3*T_a = (1, 0, a) and T_b = (0, 1, b)
1. Option 2 *Two coordinates
2. Option 2 * (a, b, f(a, b))
3. Option 2 *D
4. Option 1 *Q(a, b) = (a, b, f(a, b)), with Q defined on D
5. Option 1 * T_a = (1, 0, f_a) and T_b = (0, 1, f_b), where f_a and f_b represent the partial derivative of f with respect to a and b
The correct answer is Option 2: Two coordinates. A point on the graph of a function in the Cartesian plane, which is represented by G ⊆ R², has two coordinates: an x-coordinate and a y-coordinate. These coordinates represent the input values from the domain D and the corresponding output values from the range R.
The most accurate way to represent the coordinates of a point on the graph is Option 2: (a, b, f(a, b)). Here, (a, b) represents the coordinates of the point in the domain D, and f(a, b) represents the corresponding output value in the range R. The third coordinate, f(a, b), indicates the value of the function at that point.
Since each point on the graph can be represented as (a, b, f(a, b)), where (a, b) belongs to the domain D, the correct answer is Option 2: D. The coordinates (a, b) are taken from the domain subset D, which is a subset of R².
A parameterization of the graph G as a surface can be given by Option 1: Q(a, b) = (a, b, f(a, b)), with Q defined on D. Here, Q(a, b) represents a point on the surface, where (a, b) are the input coordinates from the domain D, and f(a, b) represents the corresponding output value. This parameterization maps points from the domain D to points on the surface G.
The tangent vectors T_a and T_b for the parameterization Q(a, b) = (a, b, f(a, b)) are given by Option 1: T_a = (1, 0, f_a) and T_b = (0, 1, f_b), where f_a and f_b represent the partial derivatives of the function f with respect to a and b, respectively. These tangent vectors represent the direction and rate of change along the surface at each point (a, b).
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Determine the point t* at which the integral function 2π f(t) (3+ sin(s))ds -2)² defined for 0
Simplifying the equation and solving for [tex]\(\frac{d}{dt} \left(2\pi f(t) \int_{0}^{t} (3+\sin(s))ds - 2\right)\)[/tex],
we can find the critical points. t = arcsin(7 - 2√7)
To find the point t* where the integral function reaches its maximum or minimum, we need to find the critical points of the function. The critical points occur when the derivative of the function with respect to t is equal to zero or is undefined.
Differentiating the integral function with respect to t, we get:
[tex]\[\frac{d}{dt} \left(2\pi f(t) \int_{0}^{t} (3+\sin(s))ds - 2\right)^2\][/tex]
To find the extremum, we need to solve the Euler-Lagrange equation for I(t). The Euler-Lagrange equation is given by:
d/dt (dL/df') - dL/df = 0
where L is the Lagrangian, defined as:
L = f(t) (3 + sin(s)) - 2)²
and f' represents the derivative of f(t) with respect to t.
Let's differentiate L with respect to f(t) and f'(t):
dL/df = (3 + sin(s)) - 2)²
dL/df' = 0 (since f' does not appear in the Lagrangian)
Now, let's substitute these derivatives into the Euler-Lagrange equation:
d/dt (dL/df') - dL/df = 0
d/dt (0) - (3 + sin(s)) - 2)² = 0
(3 + sin(t)) - 2)² = 0
Expanding the square and simplifying:
(3 + sin(t))² - 4(3 + sin(t)) + 4 = 0
9 - 6sin(t) - sin²(t) - 12 - 8sin(t) + 4 + 4 = 0
sin²(t) - 14sin(t) - 21 = 0
This is a quadratic equation in sin(t). Solving for sin(t) using the quadratic formula:
sin(t) = (-(-14) ± √((-14)² - 4(-1)(-21))) / (2(-1))
sin(t) = (14 ± √(196 - 84)) / 2
sin(t) = (14 ± √112) / 2
sin(t) = (14 ± 4√7) / 2
sin(t) = 7 ± 2√7
Since the range of the sine function is [-1, 1], sin(t) cannot equal 7 + 2√7, so we can only have:
sin(t) = 7 - 2√7
To find the corresponding value of t, we take the inverse sine:
t = arcsin(7 - 2√7)
Please note that the exact value of t* depends on the specific function f(t) and cannot be determined without further information about f(t). The above solution provides the expression for t* based on the given integral function.
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please answer all parts
Find the tangent plane of f(x,y)= e^x-y at the point (2,2,1)
Find the linearization of f(x,y)=square root (xy) at the point (1,4)
Find the differential of z= square root (x^2+3y^2)
Let k(t)=f(g(t),h(t)), where f is differentiable, g(2)=4, g'(2)=-3, h(2)=5, h'(2)=6, fx(4,5)=2, fy(4,5)=8. Find k'(2).
Use a tree diagram to find the chain rule. Assume that all functions are differentiable. w=f(x,y,z), where x=x(u,v), y=y(u,v), z=z(u,v).\\
1. The tangent plane of the function f(x, y) = e^x - y at the point (2, 2, 1) is given by the equation z = 4x + 2y - 7.
2. The linearization of the function f(x, y) = √(xy) at the point (1, 4) is represented by the equation z = 5 + 3(x - 1) - (y - 4)/8.
3. The differential of the function z = √(x^2 + 3y^2) is given by dz = (2x dx + 6y dy) / (2√(x^2 + 3y^2)).
4. Given k(t) = f(g(t), h(t)), where f is differentiable, g(2) = 4, g'(2) = -3, h(2) = 5, h'(2) = 6, fx(4, 5) = 2, and fy(4, 5) = 8, the value of k'(2) is k'(2) = (2 * -3 * 4) + (8 * 6 * 5) = 228.
1. To find the tangent plane of f(x, y) = e^x - y at the point (2, 2, 1), we first compute the partial derivatives: fx = e^x and fy = -1. Evaluating these at (2, 2) gives fx(2, 2) = e^2 and fy(2, 2) = -1. Using the point-normal form of a plane equation, we obtain z = f(2, 2) + fx(2, 2)(x - 2) + fy(2, 2)(y - 2), which simplifies to z = 4x + 2y - 7.
2. To find the linearization of f(x, y) = √(xy) at the point (1, 4), we first compute the partial derivatives: fx = √(y/ x) / 2√(xy) and fy = √(x/ y) / 2√(xy). Evaluating these at (1, 4) gives fx(1, 4) = 1/4 and fy(1, 4) = 1/8. The linearization is given by z = f(1, 4) + fx(1, 4)(x - 1) + fy(1, 4)(y - 4), which simplifies to z = 5 + 3(x - 1) - (y - 4)/8.
3. To find the differential of z = √(x^2 + 3y^2), we differentiate the expression with respect to x and y, treating them as independent variables. Applying the chain rule, dz = (∂z/∂x)dx + (∂z/∂y)dy. Simplifying this expression using the partial derivatives of z, we get dz = (2x dx + 6y dy) / (2√(x^2 + 3y^2)).
4. To find k'(2) for k(t) = f(g(t), h(t)), we use the chain rule. The chain rule states that if z = f(x, y) and x = g(t), y = h(t), then dz/dt = (∂f/∂x)(∂g/
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Find parametric equations for the tangent line to the curve with the given parametric equations at the specified point. r(t)=(√² +5, In (²+1), t) point (3, In 5, 2)
The correct equations represent the parametric equations of the tangent line to the curve at the specified point:
x = 3 + (2/3)s
y = ln(5) + (3/2)s
z = 2 + s
where s is a parameter that represents points along the tangent line.
To find the parametric equations for the tangent line to the curve at the specified point, we need to find the derivative of the parametric equations and evaluate it at the given point.
The given parametric equations are:
x(t) = √[tex](t^2 + 5)[/tex]
y(t) = ln[tex](t^2 + 1)[/tex]
z(t) = t
To find the derivatives, we differentiate each equation with respect to t:
dx/dt = (1/2) * [tex](t^2 + 5)^(-1/2)[/tex] * 2t = t / √[tex](t^2 + 5)[/tex]
dy/dt = (2t) / [tex](t^2 + 1)[/tex]
dz/dt = 1
Now, let's evaluate these derivatives at t = 2, which is the given point:
dx/dt = 2 / √([tex]2^2[/tex]+ 5) = 2 / √9 = 2/3
dy/dt = (2 * 2) / ([tex]2^2[/tex]+ 1) = 4 / 5
dz/dt = 1
So, the direction vector of the tangent line at t = 2 is (2/3, 4/5, 1).
Now, we have the direction vector and a point on the line (3, ln(5), 2). We can use the point-normal form of the equation of a line to find the parametric equations:
x - x₀ y - y₀ z - z₀
────── = ────── = ──────
a b c
where (x, y, z) are the coordinates of a point on the line, (x₀, y₀, z₀) are the coordinates of the given point, and (a, b, c) are the components of the direction vector.
Plugging in the values, we get:
x - 3 y - ln(5) z - 2
────── = ───────── = ──────
2/3 4/5 1
Now, we can solve these equations to express x, y, and z in terms of a parameter, let's call it 's':
(x - 3) / (2/3) = (y - ln(5)) / (4/5) = (z - 2)
Simplifying, we get:
(x - 3) / (2/3) = (y - ln(5)) / (4/5)
(x - 3) / (2/3) = (y - ln(5)) / (4/5) = (z - 2)
Cross-multiplying and simplifying, we obtain:
3(x - 3) = 2(y - ln(5))
4(y - ln(5)) = 5(z - 2)
These equations represent the parametric equations of the tangent line to the curve at the specified point:
x = 3 + (2/3)s
y = ln(5) + (3/2)s
z = 2 + s
where s is a parameter that represents points along the tangent line.
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Let C be the boundary of the region bounded by the curves y = z², z = 2, and the z-axis. Use Green's Theorem to evaluate the line integral fre re" dz + x dy = f(xe, z). dr
The value of the given line integral is 0. Hence, the detail ans is zero.
Let C be the boundary of the region bounded by the curves y = z², z = 2, and the z-axis.
Using Green's Theorem, the line integral fre re" dz + x dy = f(xe, z). dr is to be evaluated.
To use Green's Theorem to evaluate the line integral, we need to compute the curl of the given vector field.
The given vector field is: $F(x, y, z) = (0, x, 1)$
Here, the curl of F(x, y, z) can be found as shown below: $curl F = \left(\frac{\partial N}{\partial y} - \frac{\partial M}{\partial z}, \frac{\partial P}{\partial z} - \frac{\partial N}{\partial x}, \frac{\partial M}{\partial x} - \frac{\partial P}{\partial y}\right)$where F(x, y, z) = (M(x, y, z), N(x, y, z), P(x, y, z))Here, M(x, y, z) = 0, N(x, y, z) = x and P(x, y, z) = 1.$\
therefore curl F = \left(0-0, 0-0, \frac{\partial M}{\partial x} - \frac{\partial P}{\partial y}\right)$$\implies curl
F = \left(0, 0, -1\right)$
Let C be the boundary of the region bounded by the curves y = z², z = 2, and the z-axis.
Using Green's Theorem, the line integral can be written as: $∫_C F.dr = ∫∫_S (curl F).ds$
Here, (curl F) = -1 and the surface S is the region bounded by the curves y = z², z = 2, and the z-axis.
Since the given vector field F is a constant vector field, the line integral over the closed curve is zero.
Hence, the value of the given line integral is 0. Hence, the detail ans is zero.
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Given the following functions, find each: f(x)= x² + 2x - 35 g(x) = x + 7 (f+g)(x) = (f- g)(x) = (f.g)(x) = (2)) = Preview Preview Preview Preview
The given functions are f(x) = x² + 2x - 35, g(x) = x + 7. The sum of f(x) and g(x), (f+g)(x), is 2x² + 4x - 28. The difference of f(x) and g(x), (f-g)(x), is x² + x - 42. The product of f(x) and g(x), (f.g)(x), is x³ + 9x² + 14x - 245.
To find the sum of two functions, (f+g)(x), we add the corresponding terms of the functions. Adding f(x) = x² + 2x - 35 and g(x) = x + 7, we get (f+g)(x) = (x² + x²) + (2x + x) + (-35 + 7) = 2x² + 4x - 28.
To find the difference of two functions, (f-g)(x), we subtract the corresponding terms of the functions. Subtracting g(x) from f(x), we get (f-g)(x) = (x² - x²) + (2x - x) + (-35 - 7) = x² + x - 42.
To find the product of two functions, (f.g)(x), we multiply the functions term by term. Multiplying f(x) and g(x), we get (f.g)(x) = (x²)(x) + (2x)(x) + (-35)(x) + (x²)(7) + (2x)(7) + (-35)(7) = x³ + 9x² + 14x - 245.
Finally, (f+g)(x) = 2x² + 4x - 28, (f-g)(x) = x² + x - 42, and (f.g)(x) = x³ + 9x² + 14x - 245.
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