The acute angle between the planes P1: 3x - 6y - 22z = 64 and P2: 2x + y - 22 = 5 can be found using the dot product of their normal vectors. The angle between the planes is the same as the angle between their normal vectors.
By finding the dot product of the normal vectors and using the formula for the dot product of two vectors, we can determine the cosine of the angle between the planes. Taking the inverse cosine of this value will give us the acute angle between the planes.
To find the acute angle between two planes, we need to determine the dot product of their normal vectors. The normal vector of a plane is the coefficients of x, y, and z in its equation.
For the first plane P1: 3x - 6y - 22z = 64, the normal vector is (3, -6, -22), and for the second plane P2: 2x + y - 22 = 5, the normal vector is (2, 1, 0).
Next, we calculate the dot product of the two normal vectors: (3, -6, -22) · (2, 1, 0) = 3 * 2 + (-6) * 1 + (-22) * 0 = 6 - 6 + 0 = 0.
Since the dot product is zero, it means that the planes are perpendicular to each other. The acute angle between perpendicular planes is 90 degrees.
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What is the measure of angle x? (1 point) A right angle is shown divided into two parts. The measure of one part of the right angle is 40 degrees. The measure of the other part is 2x. a 10 b 18 c 20 d 25
The measure of angle x is 25 degrees.
The correct answer is d) 25.
We have a right angle divided into two parts.
The measure of one part is 40 degrees, and the measure of the other part is 2x.
Let's set up an equation to solve for x:
40 + 2x = 90
We can subtract 40 from both sides of the equation:
2x = 90 - 40
2x = 50
Now, we divide both sides of the equation by 2 to isolate x:
x = 50 / 2
x = 25
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Evaluate the integral by completing the square and using the following formula. (Remember to use absolute values where appropriate. Use C for the constant of integration.) dx · 12² 121 ¹n ( | X = 2
The given integral can be evaluated using the technique of completing the square. By completing the square and applying the given formula, we can find the value of the integral when x = 2.
To evaluate the integral [tex]\int\{12^2 / (121 - x^2)^n } \, dx[/tex], where n = 1, and evaluate it at x = 2, we can use the technique of completing the square.
First, let's rewrite the denominator as a perfect square:
[tex](121 - x^2) = (11 + x)(11 - x)[/tex].
Next, we complete the square by factoring out the square of half the coefficient of x and adding the square to both sides of the equation. Here, the coefficient of x is 0, so we don't need to complete the square.
Using the given formula, we have:
[tex]\int\ { 12^2 / (121 - x^2)^n\, dx = (1/2) * (12^2) * arcsin(x/11) / (11^{2n-1}) + C.}[/tex]
Substituting x = 2 into the formula, we can find the value of the integral at x = 2.
However, please note that the given integral has a variable 'n,' and its value is not specified. To provide a specific numerical result, we would need the value of 'n.'
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For the function f(x,y)= 3ln(7y - 4x²), find the following: a) fx. b) fy 3. (5 pts each)
For the function f(x,y)= 3ln(7y - 4x²): (a) \(f_x(x, y) = \frac{{-24x}}{{7y - 4x^2}}\), (b) \(f_y(x, y) = \frac{{7}}{{7y - 4x^2}}\)
To find the partial derivatives of the function \(f(x, y) = 3\ln(7y - 4x^2)\), we differentiate with respect to each variable while treating the other variable as a constant.
(a) To find \(f_x\), the partial derivative of \(f\) with respect to \(x\), we differentiate \(f\) with respect to \(x\) while treating \(y\) as a constant:
\[f_x(x, y) = \frac{{\partial f}}{{\partial x}} = \frac{{\partial}}{{\partial x}}\left(3\ln(7y - 4x^2)\right)\]
Using the chain rule, we have:
\[f_x(x, y) = 3 \cdot \frac{{1}}{{7y - 4x^2}} \cdot \frac{{\partial}}{{\partial x}}(7y - 4x^2)\]
\[f_x(x, y) = \frac{{-24x}}{{7y - 4x^2}}\]
Therefore, \(f_x(x, y) = \frac{{-24x}}{{7y - 4x^2}}\).
(b) To find \(f_y\), the partial derivative of \(f\) with respect to \(y\), we differentiate \(f\) with respect to \(y\) while treating \(x\) as a constant:
\[f_y(x, y) = \frac{{\partial f}}{{\partial y}} = \frac{{\partial}}{{\partial y}}\left(3\ln(7y - 4x^2)\right)\]
Using the chain rule, we have:
\[f_y(x, y) = 3 \cdot \frac{{1}}{{7y - 4x^2}} \cdot \frac{{\partial}}{{\partial y}}(7y - 4x^2)\]
\[f_y(x, y) = \frac{{7}}{{7y - 4x^2}}\]
Therefore, \(f_y(x, y) = \frac{{7}}{{7y - 4x^2}}\).
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One third of the trees in an orchard are olive trees.
One-quarter of the trees are fig trees.
The others are 180 mixed fruit trees.
In the first week of the season the owner harvests one-third of the olive trees and one third of the fig trees. How many trees in the orchard still have to be harvested?
In the orchard, one-third of the trees are olive trees, which means the olive trees constitute 1/3 of the total trees. Similarly, one-quarter of the trees are fig trees, which means the fig trees constitute 1/4 of the total trees. The remaining trees are 180 mixed fruit trees. 7/36 of the total trees need to be harvested.
Let's assume there are a total of x trees in the orchard.
The number of olive trees is (1/3) * x.
The number of fig trees is (1/4) * x.
The number of mixed fruit trees is 180.
In the first week of the season, the owner harvests one-third of the olive trees, which is (1/3) * (1/3) * x = (1/9) * x olive trees.
Similarly, the owner harvests one-third of the fig trees, which is (1/3) * (1/4) * x = (1/12) * x fig trees.
The total number of trees that need to be harvested is the sum of the harvested olive trees and the harvested fig trees:
(1/9) * x + (1/12) * x = (4/36 + 3/36) * x = (7/36) * x.
Therefore, 7/36 of the total trees need to be harvested. To find the actual number of trees, we need to know the value of x.
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If X has an exponential (1) PDF, what is the PDF of W = X2? 5.9.1 Random variables X and Y have joint PDF fx,y(, y) = ce -(x²/8)–(42/18) What is the constant c? Are X and Y in- dependent? 6.4.1 Random variables X and Y have joint PDF fxy(x, y) = 6xy 0
The answer of 1. The probability density function (PDF) of [tex]W = X^2[/tex] when X has an exponential (1) PDF and 2. The X and Y are dependent random variables.
The PDF of [tex]W = X^2[/tex], where X has an exponential (1) distribution, is given by [tex]\lambda e^{(-\lambda \sqrt w)} * 1/(2w^{(1/2)})[/tex]. X and Y are dependent random variables based on their joint PDF.
1. If X has an exponential (1) probability density function (PDF), we can find the PDF of [tex]W = X^2[/tex] using the method of transformations.
Let's denote the PDF of X as fX(x). Since X has an exponential (1) distribution, its PDF is given by:
[tex]fX(x) = \lambda e^{(-\lambda x)}[/tex]
where λ = 1 in this case.
To find the PDF of [tex]W = X^2[/tex], we need to apply the transformation method. Let [tex]Y = g(X) = X^2[/tex]. The inverse transformation is given by X = h(Y) = √Y.
To find the PDF of W, we can use the formula:
fW(w) = fX(h(w)) * |dh(w)/dw|
Substituting the values:
fW(w) = fX(√w) * |d√w/dw|
Taking the derivative:
d√w/dw = 1/(2√w) = [tex]1/(2w^{(1/2)})[/tex]
Substituting back into the equation:
[tex]fW(w) = fX(\sqrt w) * 1/(2w^{(1/2)})[/tex]
Since fX(x) = [tex]\lambda e^{(-\lambda x)}[/tex], we have:
fW(w) = [tex]\lambda e^{(-\lambda x)}[/tex] [tex]* 1/(2w^{(1/2))}[/tex]
This is the probability density function (PDF) of [tex]W = X^2[/tex] when X has an exponential (1) PDF.
2. To find the constant c for the joint probability density function (PDF) fx,y(x, y) = [tex]ce^{(-(x^2/8) - (4y^2/18))[/tex], we need to satisfy the condition that the PDF integrates to 1 over the entire domain.
The condition for a PDF to integrate to 1 is:
∫∫ f(x, y) dx dy = 1
In this case, we have:
∫∫ [tex]ce^{(-(x^2/8) - (4y^2/18)) }dx dy = 1[/tex]
To find the constant c, we need to evaluate this integral. However, the limits of integration are not provided, so we cannot determine the exact value of c without the specific limits.
Regarding the independence of X and Y, we can determine it by checking if the joint PDF fx,y(x, y) can be factored into the product of individual PDFs for X and Y.
If fx,y(x, y) = fx(x) * fy(y), then X and Y are independent random variables.
However, based on the given joint PDF fx,y(x, y) = [tex]ce^{(-(x^2/8) - (4y^2/18))[/tex], we can see that it cannot be factored into separate functions of X and Y. Therefore, X and Y are dependent random variables.
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Relative to an origin O, the position vectors of the points A, B and C are given by
0A=i- j+2k, OB=-i+ j+k and OC = j+ 2k respectively. Let Il is the plane
containing O1 and OB.
(in)
Find a non-zero unit vector # which is perpendicular to the plane I.
(IV)
Find the orthogonal projection of OC onto n.
(v)
Find the orthogonal projection of OC on the plane I.
(i) OA and OB are orthogonal.
(ii) OA and OB are not independent.
(iii) a non-zero unit vector that is perpendicular to the plane is 3√2.
What are the position vectors?
A straight line with one end attached to a body and the other end attached to a moving point that is used to define the point's position relative to the body. The position vector will change in length, direction, or both length and direction as the point moves.
Here, we have
Given: A = i- j+2k, B = -i+ j+k and C = j+ 2k
(i) OA. OB = (i- j+2k). (-i + j + k)
= - 1 - 1 + 2 = 0
Hence, OA and OB are orthogonal.
(ii) OA = λOB
(i- j+2k) = λ(-i + j + k)
i - j + 2k = -λi + λj + λk
-λ = 1
λ = -1
OA ≠ OB
Hence, OA and OB are not independent.
(iii) OA × OB = [tex]\left|\begin{array}{ccc}i&j&k\\1&-1&2\\-1&1&1\end{array}\right|[/tex]
= i(-1-2) - j(1+2) + k(1-1)
= -3i - 3j + 0k
= |OA × OB| = [tex]\sqrt{9+9}[/tex] = 3√2
Hence, a non-zero unit vector # which is perpendicular to the plane is 3√2.
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Water is flowing into and out of two vats, Vat A and Vat B. The amount of water, in gallons, in Vat A at time t hours is given by a function Aft) and the amount in Vat B is given by B(t). The two vats contain the same amount of water at t=0. You have a formula for the rate of flow for Vat A and the amount in Vat B: Vat A rate of flow: A'(t)=-312+24t-21 Vat B amount: B(t)=-272 +16t+40 (a) Find all times at which the graph of A(t) has a horizontal tangent and determine whether each gives a local maximum or a local minimum of A(t). smaller t= 1 gives a local minimum larger t= 7 gives a local maximum (b) Let D(t)=B(t)-A(t). Determine all times at which D(t) has a horizontal tangent and determine whether each gives a local maximum or a local minimum. (Round your times to two digits after the decimal.) smaller t= 1.59 gives a local maximum larger t= 7.74 gives a local minimum (c) Use the fact that the vats contain the same amount of water at t=0 to find the formula for Aft), the amount in Vat A at time t. A(t) = -23 + 1272 – 21t+ 40 (d) At what time is the water level in Vat A rising most rapidly? t= 4 hours (e) What is the highest water level in Vat A during the interval from t=0 to t=10 hours? 7 X gallons (f) What is the highest rate at which water flows into Vat B during the interval from t=0 to t=10 hours? X gallons per hour 4 (g) How much water flows into Vat A during the interval from t=1 to t=8 hours? 98 gallons
The problem involves two vats, A and B, with water flowing in and out. The functions A(t) and B(t) represent the amount of water in each vat over time. By analyzing the rates of flow and the amounts in the vats, we can determine the times of horizontal tangents, the highest water level, and other related quantities.
To find times with horizontal tangents for A(t), we differentiate A(t) and set it equal to zero. Solving the equation yields t = 1 (local minimum) and t = 7 (local maximum). We calculate D(t) by subtracting A(t) from B(t). Taking the derivative of D(t) and finding its zeros, we get t = 1.59 (local maximum) and t = 7.74 (local minimum). Using the fact that A(0) = B(0), we determine the formula for A(t) as A(t) = -23 + 1272 – 21t + 40.
(d) To find the time when the water level in Vat A is rising most rapidly, we look for the maximum value of A'(t). This occurs at t = 4 hours.
The highest water level in Vat A between t = 0 and t = 10 hours can be found by evaluating A(t) at its local maximum. The result is 7X gallons. The highest rate at which water flows into Vat B during the given interval is determined by finding the maximum value of B'(t). The result is X gallons per hour.
The amount of water that flows into Vat A from t = 1 to t = 8 hours can be calculated by finding the definite integral of A'(t) over that interval. The result is 98 gallons.
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Points: 0 of 1 Save Find the linear and quadratic functions that best fit the data points (0,6.7). (1,6.5), (2,6.0), (3,5,8), and (4,5.9). Which of the two functions best fits the data? ank The linear
To find the linear and quadratic functions that best fit the given data points, we can use the method of least squares.
This method aims to minimize the sum of the squared differences between the observed y-values and the predicted y-values from the functions. Let's start with the linear function: Step 1: Set up the linear function. Assume the linear function is of the form y = mx + b, where m is the slope and b is the y-intercept. Step 2: Set up the equations. For each data point (x, y), we can set up an equation based on the linear function: 6.7 = m(0) + b. 6.5 = m(1) + b
6.0 = m(2) + b
5.8 = m(3) + b
5.9 = m(4) + b. Step 3: Solve the equations: We have five equations with two unknowns (m and b). We can use these equations to set up a system of linear equations and solve for m and b. However, this process can be time-consuming. Alternatively, we can use matrix methods or software to solve for the values of m and b.
Step 4: Obtain the linear function
Once we have the values of m and b, we can write the linear function that best fits the data. Now let's move on to the quadratic function: Step 1: Set up the quadratic function. Assume the quadratic function is of the form y = ax^2 + bx + c, where a, b, and c are coefficients. Step 2: Set up the equations. Similar to the linear function, we can set up equations for each data point: 6.7 = a(0^2) + b(0) + c
6.5 = a(1^2) + b(1) + c
6.0 = a(2^2) + b(2) + c
5.8 = a(3^2) + b(3) + c
5.9 = a(4^2) + b(4) + c. Step 3: Solve the equations
Again, we have five equations with three unknowns (a, b, and c). We can use matrix methods or software to solve for the values of a, b, and c. Step 4: Obtain the quadratic function. Once we have the values of a, b, and c, we can write the quadratic function that best fits the data. To determine which function (linear or quadratic) best fits the data, we need to compare the residuals (the differences between the observed y-values and the predicted y-values) for each function. The function with smaller residuals indicates a better fit to the data. If you provide the values of m and b for the linear function or a, b, and c for the quadratic function, I can help you calculate the predicted y-values and compare the residuals to determine which function best fits the data.
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Evaluate the following integral.
Evaluate the following integral. 5 X S[(x+y) dy dx ОО 5 X Jusay S[+y) (x + y) dy dx = OO (Simplify your answer.)
Evaluate the iterated integral. 7 3 y SS dy dx 10VX + y? 7 3 dy dx = 10VX + y?
The first integral can be evaluated by switching the order of integration and simplifying the resulting expression. The value of the first integral is 125. The value of the second integral is -240.
To evaluate the first integral, we can switch the order of integration by considering the limits of integration. The given integral is ∫∫(x+y) dy dx over the region Ω, where Ω represents the limits of integration. Let's denote the region as R: 0 ≤ y ≤ 5 and 0 ≤ x ≤ 5. We can rewrite the integral as ∫∫(x+y) dx dy over the region R.
Integrating with respect to x first, we have:
[tex]∫∫(x+y) dx dy = ∫(∫(x+y) dx) dy = ∫((1/2)x^2 + xy)∣₀₅ dy = ∫((1/2)5^2 + 5y) - (0 + 0) dy= ∫(12.5 + 5y) dy = (12.5y + (5/2)y^2)∣₀₅ = (12.5(5) + (5/2)(5^2)) - (12.5(0) + (5/2)(0^2))[/tex]
= 62.5 + 62.5 = 125.
Therefore, the value of the first integral is 125.
For the second integral, ∫∫∫7 3 y SS dy dx over the region defined as 10VX + y, we need to evaluate the inner integral first. Integrating with respect to y, we have:
[tex]∫∫∫7 3 y SS dy dx = ∫∫(∫7 3 y SS dy) dx = ∫∫((1/2)y^2 + Sy)∣₇₃ dx = ∫(1/2)(3^2 - 7^2) + S(3 - 7) dx[/tex]
= ∫(1/2)(-40) - 4 dx = -20x - 4x∣₀₁₀ = -20(10) - 4(10) - (-20(0) - 4(0)) = -200 - 40 = -240.
Hence, the value of the second integral is -240.
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Find the quotient and remainder using long division. x³ +3 x + 1 The quotient is x²-x X The remainder is +3 X
The quotient obtained by dividing x³ + 3x + 1 by x² - x is x² - x, and the remainder is 3x. The division process involves subtracting multiples of the divisor from the dividend until no further subtraction is possible.
To find the quotient and remainder, we perform long division as follows:
_________
x² - x | x³ + 3x + 1
x³ - x²
____________
4x² + 1
- 4x² + 4x
_____________
-3x + 1
After dividing the x³ term by x², we obtain x as the quotient. Then, we multiply x by x² - x to get x³ - x², which is subtracted from the original polynomial. This leaves us with the remainder 4x² + 1.
Next, we divide the remainder, 4x² + 1, by the divisor x² - x. Dividing 4x² by x² yields 4, and multiplying 4 by x² - x gives us 4x² - 4x. Subtracting this from the remainder leaves us with -3x + 1.
At this point, we can no longer perform further divisions. Therefore, the quotient is x² - x and the remainder is -3x + 1, which can also be written as 3x + 1.
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For a continuous nonnegative functionſ on all of R’, we can define the improper integral SSR2 / by the formula Shes = Lim Slot R- where DR is the closed disk of radius R > 0 centered at the origin. We will consider the function given by S(1,y) = -(2+), whose integral over all of R’ is ubiquitous in modern probability theory due to its connection with normal (probability) density functions. (a) For a fixed R > 0, express IR = SIDR as an iterated integral in polar coordinates. (b) Compute IR. (c) Compute S/R2 by computing limon IR. (Some work/explanation justifying your final numerical answer is required.)
It's important to note that this result depends on the specific function given in the problem. For other functions, the integral and limit may have different values or properties.
To answer your question, let's follow the steps outlined and work through each part. (a) To express IR = SIDR as an iterated integral in polar coordinates, we need to determine the appropriate limits of integration. In polar coordinates, the region DR corresponds to the interval [0, R] for the radial coordinate (r) and the interval [0, 2π] for the angular coordinate (θ).
The integral can be expressed as:
IR = ∬DR f(x, y) dA
Converting to polar coordinates, we have:
IR = ∫₀ˣR ∫₀ˣ2π f(r cos θ, r sin θ) r dθ dr
Using the function given as f(x, y) = -(2+), we substitute the polar coordinate expressions:
IR = ∫₀ˣR ∫₀ˣ2π -(2+r) r dθ dr
(b) Let's compute IR using the expression obtained in part (a). We can evaluate the integral step by step:
IR = ∫₀ˣR ∫₀ˣ2π -(2+r) r dθ dr
First, we integrate with respect to θ:
IR = ∫₀ˣR [-2r - r^2]₀ˣ2π dr
= ∫₀ˣR (-2r - r^2) dθ
Next, we integrate with respect to r:
IR = [-r^2/2 - (r^3)/3]₀ˣR
= -(R^2)/2 - (R^3)/3
Therefore, the value of IR is -(R^2)/2 - (R^3)/3.
(c) To compute S/R^2, we need to take the limit of IR as R approaches infinity. Let's compute this limit:
S/R^2 = limₐₚₚₓ→∞ IR
Substituting the expression for IR, we have:
S/R^2 = limₐₚₚₓ→∞ [-(R^2)/2 - (R^3)/3]
As R approaches infinity, both terms -(R^2)/2 and -(R^3)/3 approach negative infinity. Therefore, the limit is:
S/R^2 = -∞
This means that S/R^2 diverges to negative infinity as R approaches infinity.
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A 10 m ladder leans against the side of a building. If the top of the ladder begins to slide down the building at a rate of 3 m/sec, how fast is the bottom of the ladder sliding away from the building when the top of the ladder is 6 m off the ground?
The bottom of the ladder is sliding away from the building at a rate of (4/5) m/sec when the top of the ladder is 6 m off the ground.
Let's denote the distance between the bottom of the ladder and the building as x and the height of the top of the ladder above the ground as y. We are given that dy/dt = -3 m/sec (negative sign indicates that the top of the ladder is sliding down).
Using the Pythagorean theorem, we know that x^2 + y^2 = 10^2. Differentiating both sides of this equation with respect to time, we get:
2x(dx/dt) + 2y(dy/dt) = 0.
Since we are interested in finding dx/dt (the rate at which the bottom of the ladder is sliding away from the building), we can rearrange the equation to solve for it:
dx/dt = -(y/x)(dy/dt).
At the given moment when the top of the ladder is 6 m off the ground, we can substitute y = 6 and x = 8 (since the ladder has a length of 10 m and the bottom is unknown). Plugging these values into the equation, we have:
dx/dt = -(6/8)(-3) = (4/5) m/sec.
Therefore, the bottom of the ladder is sliding away from the building at a rate of (4/5) m/sec.
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A 500-pound boat sits on a ramp inclined at 45°. What is the
force required to keep the boat from rolling down the ramp?
Answer:
The force required to keep the boat from rolling down the ramp is approximately 353.55 pounds.
Step-by-step explanation:
To determine the force required to keep the boat from rolling down the ramp, we need to analyze the forces acting on the boat on the inclined ramp.
When an object is on an inclined plane, the weight of the object can be resolved into two components: one perpendicular to the plane (normal force) and one parallel to the plane (component that tries to make the object slide or roll down the ramp).
In this case, the weight of the boat is acting straight downward with a magnitude of 500 pounds. The ramp is inclined at 45 degrees.
The force required to keep the boat from rolling down the ramp is equal to the component of the weight vector that is parallel to the ramp, opposing the tendency of the boat to slide or roll down.
To calculate this force, we can find the parallel component of the weight vector using trigonometry. The parallel component can be determined by multiplying the weight by the cosine of the angle between the weight vector and the ramp.
The angle between the weight vector and the ramp is 45 degrees since the ramp is inclined at 45 degrees.
Force parallel = Weight * cosine(45°)
Force parallel = 500 pounds * cos(45°)
Using the value of cos(45°) = sqrt(2)/2 ≈ 0.707, we can calculate the force parallel:
Force parallel ≈ 500 pounds * 0.707 ≈ 353.55 pounds
Therefore, the force required to keep the boat from rolling down the ramp is approximately 353.55 pounds.
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Apply Jacobi's method to the given system. Take the zero vector as the initial approximation and work with four-significant-digit accuracy until two successive iterates agree within 0.001 in each variable. Compare your answer with the exact solution found using any direct method you like. (Round your answers to three decimal places.)
The solution of system of equations by Jacobi's method is,
x = 0.4209 ≅ 0.42
y = 0.9471 ≅ 0.95
The given system of equation is,
3.5x - 0.5y = 1
x - 1.5y = -1
Now apply Jacobi's method to solve this system,
From the above equations
xk+1 = (1/3.5) (1+0.5yk)
yk+1= (1/-1.5) (-1-xk)
Initial gauss (x,y)=(0,0)
Solution steps are
1st Approximation
x1 = (1/3.5) [1+0.5(0)] = 1/3.5 [1] =0.2857
y1 = (1/-1.5)[-1-(0)] = 1/-1.5 [-1] = 0.6667
2nd Approximation
x2 = (1/3.5) [1+0.5(0.6667)] = 1/3.5[1.3333] = 0.381
y2 = (1/-1.5)[-1-(0.2857)] = 1/-1.5 [-1.2857] = 0.8571
3rd Approximation
x3 = (1/3.5)[1+0.5(0.8571)] = (1/3.5)[1.4286] = 0.4082
y3 = (1/-1.5)[-1-(0.381)] = (1/-1.5) [-1.381] = 0.9206
4th Approximation
x4 = (1/3.5)[1+0.5(0.9206)] = 1/3.5[1.4603] = 0.4172
y4 = (1/-1.5)[-1-(0.4082)] = 0.9388
5th Approximation
x5 = (1/3.5)[1+0.5(0.9388)] = 0.4198
y5 = (1/-1.5)[-1-(0.4172)] = 0.9448
6th Approximation
x6 = (1/3.5)[1+0.5(0.9448)] = 0.4207
y6 = (1/-1.5)[-1-(0.4198)] = 0.9466
7th Approximation
x7 = (1/3.5)[1+0.5(0.9466)] = 0.4209
y7 = (1/-1.5)[-1-(0.4207)] = 0.9471
Solution By Gauss Jacobi Method.
x = 0.4209 ≅ 0.42
y = 0.9471 ≅ 0.95
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2. Find the volume of the solid obtained by rotating the region bounded by y=x-x? and y = 0 about the line x = 2. (6 pts.) X
the volume of the solid obtained by rotating the region bounded by y = x - x² and y = 0 about the line x = 2 is π/6 cubic units.
To find the volume of the solid obtained by rotating the region bounded by y = x - x² and y = 0 about the line x = 2, we can use the method of cylindrical shells.
The volume of a solid generated by rotating a region about a vertical line can be calculated using the formula:
V = ∫[a,b] 2πx * f(x) dx
In this case, the region is bounded by y = x - x² and y = 0. To determine the limits of integration, we need to find the x-values where these curves intersect.
Setting x - x² = 0, we have:
x - x² = 0
x(1 - x) = 0
So, x = 0 and x = 1 are the points of intersection.
The volume of the solid is then given by:
V = ∫[0,1] 2πx * (x - x²) dx
Let's evaluate this integral:
V = 2π ∫[0,1] (x² - x³) dx
= 2π [(x³/3) - (x⁴/4)] evaluated from 0 to 1
= 2π [(1/3) - (1/4) - (0 - 0)]
= 2π [(1/3) - (1/4)]
= 2π [(4/12) - (3/12)]
= 2π (1/12)
= π/6
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Water is drained from a swimming pool at a rate given by R(t) = 80 e -0.041 gal/hr. If the drain is left open indefinitely, how much water drains from the pool? Set up the integral needed to compute t
∫(0 to ∞) R(t) dt evaluating the integral for the drain to compute t we get 80 e -0.041 gal/hr
To compute the total amount of water drained from the pool when the drain is left open indefinitely, we need to set up an integral.
The rate at which water is drained from the pool is given by R(t) = 80e^(-0.041t) gallons per hour, where t represents time in hours. To find the total amount of water drained, we need to integrate the rate function over an indefinite time period.
The integral to compute the total amount of water drained is:
∫(0 to ∞) R(t) dt
Here, the lower limit of the integral is 0, as we start counting from the beginning, and the upper limit is infinity (∞) to represent an indefinite time period.
By evaluating this integral, we can find the total amount of water drained from the pool when the drain is left open indefinitely.
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Use the Divergence Theorem to find the flux of the vector field i = iy+ (2xy + 22) + k2yz and a unit cube at the origin + Select one: 2 3 4 None of them
w333The Divergence Theorem is a critical vector calculus result that is used to determine the flow of a vector field through a surface. A unit cube is a three-dimensional object with edges of length 1 unit. The divergence of a vector field describes how quickly the field's values are changing at a particular point in space.
It is represented by the operator div.According to the Divergence Theorem, the flux of a vector field through a surface is equal to the divergence of the field over the enclosed volume.Here's the solution to the given problem:Given that the vector field is,i = iy + (2xy + 22) + k2yzThe divergence of the vector field is:div(i) = (∂/∂x) . i + (∂/∂y) . j + (∂/∂z) . k(2xy + 22) + 0 + 2yz= 2xy + 2yz + 22Therefore, the flux of the vector field through the unit cube can be calculated as follows:flux = ∫∫S i.dS= ∫∫S i.n dSwhere S is the surface area, n is the normal unit vector, and i.n is the dot product of i and n. Since the unit cube is centered at the origin and is symmetric, the flux through each face is the same, and the sum of the flux through each face is zero. Hence, the flux through one face of the cube can be computed as follows:flux = ∫∫S i.n dS= ∫∫S i.n dS= ∫∫S i.y dxdz= ∫_0^1 ∫_0^1 y dydz= ∫_0^1 dz= 1Therefore, the flux of the vector field through the unit cube at the origin is 1. Therefore, the answer is 1.
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> Q2). Using the Integral Test, check the convergence of the given series by venifying the necessary conditions of integral test OP (Sin?7+n+ (03) na
Answer: By using the integral test we found that the given series is divergent.
Step-by-step explanation: To check the convergence of the series ∑(n=1 to ∞) [sin(7+n) + (0.3) / n], we can apply the Integral Test.
According to the Integral Test, if a function f(x) is positive, continuous, and decreasing on the interval [1, ∞), and if the series ∑(n=1 to ∞) f(n) converges or diverges, then the integral ∫(1 to ∞) f(x) dx also converges or diverges, respectively.
Let's analyze the given series step by step:
1. Consider the function f(x) = sin(7 + x) + (0.3) / x.
2. The function f(x) is positive for all x ≥ 1 since sin(7 + x) lies between -1 and 1, and (0.3) / x is positive for x ≥ 1.
3. The function f(x) is continuous on the interval [1, ∞) as it is a sum of continuous functions.
4. To check if f(x) is decreasing, we need to examine its derivative.
The derivative of f(x) with respect to x is given by:
f'(x) = cos(7 + x) - 0.3 / x^2.
Since the cosine function is bounded between -1 and 1, and x^2 is positive for x ≥ 1, we can conclude that f'(x) ≤ 0 for all x ≥ 1.
Therefore, f(x) is a decreasing function.
5. Now, we need to determine if the integral ∫(1 to ∞) f(x) dx converges or diverges.
∫(1 to ∞) f(x) dx = ∫(1 to ∞) [sin(7 + x) + (0.3) / x] dx
Applying integration by parts to the second term, (0.3) / x:
∫(1 to ∞) (0.3) / x dx = 0.3 * ln(x) |(1 to ∞)
Taking the limits:
lim as b→∞ [0.3 * ln(b)] - [0.3 * ln(1)]
lim as b→∞ [0.3 * ln(b)] - 0.3 * 0
lim as b→∞ [0.3 * ln(b)]
Since ln(b) approaches ∞ as b approaches ∞, this limit is ∞.
Therefore, the integral ∫(1 to ∞) f(x) dx diverges.
6. By the Integral Test, since the integral diverges, the series ∑(n=1 to ∞) [sin(7 + n) + (0.3) / n] also diverges.
Hence, the given series is divergent.
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First Order Equations. 1. (4 pts) Find the general solution of the given differential equation and use it to determine how solutions behave as t → 00. y' + y = 5 sin (21) 2. (3 pts) Solve the init
To find the general solution of the differential equation y' + y = 5sin(2t), we can solve it using the method of integrating factors.
The differential equation is in the form y' + p(t)y = q(t), where p(t) = 1 and q(t) = 5sin(2t).
First, we find the integrating factor, which is given by the exponential of the integral of p(t):
[tex]μ(t) = e^∫p(t) dtμ(t) = e^∫1 dtμ(t) = e^t[/tex]
Next, we multiply both sides of the differential equation by the integrating factor:
[tex]e^ty' + e^ty = 5e^tsin(2t)[/tex]Now, we can rewrite the left side of the equation as the derivative of the product of the integrating factor and the dependent variable y:
(d/dt)(e^ty) = 5e^tsin(2t)Integrating both sides with respect to t, we get:
[tex]e^ty = ∫(5e^tsin(2t)) dt[/tex]
To evaluate the integral on the right side, we can use integration by parts. Assuming u = sin(2t) and dv = e^t dt, we have du = 2cos(2t) dt and v = e^t.
The integral becomes:
[tex]e^ty = 5(e^tsin(2t)) - 2∫(e^tcos(2t)) dt[/tex]
Again, applying integration by parts to the remaining integral, assuming u = cos(2t) and dv = e^t dt, we have du = -2sin(2t) dt and v = e^t.The integral becomes:
[tex]e^ty = 5(e^tsin(2t)) - 2(e^tcos(2t)) + 4∫(e^tsin(2t)) dt[/tex]
Now, we have a new integral that is the same as the original one. We can substitute the value of e^ty back into the equation and solve for y:
[tex]y = 5sin(2t) - 2cos(2t) + 4∫(e^tsin(2t)) dt[/tex]This is the general solution of the given differential equation. To determine how solutions behave as t approaches infinity (t → ∞), we can analyze the behavior of the individual terms in the solution. The first two terms, 5sin(2t) and -2cos(2t), are periodic functions that oscillate between certain values. The last term, the integral, might require further analysis or approximation techniques to determine its behavior as t approaches infinity.The second part of the question is missing. Please provide the initial conditions or additional information to solve the initial value problem.
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State the average rate of change for the situation. Be sure to include units. Chris grew from 151 cm tall at age 12 to 180 cm tall at age 16. Chris grew (Simplify your a years. cm. cm/year. K
To find the average rate of change in height for Chris, we need to determine the change in height and the corresponding change in age.
Change in height = Final height - Initial height
= 180 cm - 151 cm
= 29 cm
Change in age = Final age - Initial age
= 16 years - 12 years
= 4 years
Average rate of change = Change in height / Change in age
= 29 cm / 4 years
= 7.25 cm/year
Therefore, the average rate of change for Chris's height is 7.25 cm/year.
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If f (u, v) = 5u²v – 3uv³, find f (1,2), fu (1,2), and fv (1, 2). a) f (1, 2) b) fu (1, 2) c) fv (1, 2)
a) f(1, 2) = -14 ,b) fu(1, 2) = -4 ,c) fv(1, 2) = -31 for the function f(u, v) = 5u²v – 3uv³
To find f(1, 2), fu(1, 2), and fv(1, 2) for the function f(u, v) = 5u²v – 3uv³, we need to evaluate the function and its partial derivatives at the given point (1, 2).
a) f(1, 2):
To find f(1, 2), substitute u = 1 and v = 2 into the function:
f(1, 2) = 5(1²)(2) - 3(1)(2³)
= 5(2) - 3(1)(8)
= 10 - 24
= -14
So, f(1, 2) = -14.
b) fu(1, 2):
To find fu(1, 2), we differentiate the function f(u, v) with respect to u while treating v as a constant:
fu(u, v) = d/dx (5u²v - 3uv³)
= 10uv - 3v³
Substitute u = 1 and v = 2 into the derivative:
fu(1, 2) = 10(1)(2) - 3(2)³
= 20 - 24
= -4
So, fu(1, 2) = -4.
c) fv(1, 2):
To find fv(1, 2), we differentiate the function f(u, v) with respect to v while treating u as a constant:
fv(u, v) = d/dx (5u²v - 3uv³)
= 5u² - 9uv²
Substitute u = 1 and v = 2 into the derivative:
fv(1, 2) = 5(1)² - 9(1)(2)²
= 5 - 9(4)
= 5 - 36
= -31
So, fv(1, 2) = -31.
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Sketch and label triangle ABC where A = 20°, B = 80°, c = 13 cm. Solve the triangle to find all missing measurements, rounding all results to the nearest whole number.
After solving the triangle we have the measurements as angles A = 20°, B = 80°, C = 80° and length of the sides as a ≈ 5 cm, b ≈ 13 cm, c = 13 cm
.
To sketch and solve triangle ABC, where A = 20°, B = 80°, and c = 13 cm, we start by drawing a triangle and labeling the given angle and side.
Sketching the Triangle:
Start by drawing a triangle. Label one of the angles as A (20°), another angle as B (80°), and the side opposite angle B as c (13 cm). Ensure the triangle is drawn to scale.
Solving the Triangle:
To find the missing measurements, we can use the Law of Sines and the fact that the sum of angles in a triangle is 180°.
a) Finding angle C:
Since the sum of angles in a triangle is 180°, we can find angle C:
C = 180° - A - B
C = 180° - 20° - 80°
C = 80°
b) Finding side a:
Using the Law of Sines:
a / sin(A) = c / sin(C)
a / sin(20°) = 13 / sin(80°)
a ≈ 5 cm (rounded to the nearest whole number)
c) Finding side b:
Using the Law of Sines:
b / sin(B) = c / sin(C)
b / sin(80°) = 13 / sin(80°)
b ≈ 13 cm (rounded to the nearest whole number)
Now we have the measurements of the triangle:
A = 20°, B = 80°, C = 80°
a ≈ 5 cm, b ≈ 13 cm, c = 13 cm
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= Homework: Section 7.5 Enhanced Assignment As Question 9, 7.5.19 Part 1 of 2 Find the least squares line and use it to estimate y for the indicated value of x. Next questic X 0.5 4 7.5 11 14.5 21.5 2
The least squares line is a linear regression line that best fits the given data points. It is used to estimate the value of y for a given value of x. In this question, we are asked to find the least squares line and use it to estimate y for x = 2.
To find the least squares line, we first calculate the slope and intercept using the least squares method. The slope (m) is given by the formula:
m = (n∑(xiyi) - (∑xi)(∑yi)) / (n∑(xi^2) - (∑xi)^2)
where n is the number of data points, xi and yi are the values of x and y, respectively. ∑xi represents the sum of all x values, and ∑(xiyi) represents the sum of the product of xi and yi.
Next, we calculate the intercept (b) using the formula:
b = (∑yi - m(∑xi)) / n
Once we have the slope and intercept, we can form the equation of the least squares line, which is of the form y = mx + b.
Using the given data points (x, y), we can substitute x = 2 into the equation and solve for y to estimate its value. The estimated value of y for x = 2 can be calculated by substituting x = 2 into the equation of the least squares line.
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Use the substitution u = x + 2 to evaluate the indefinite integral below. [2x(x + 2)^2x 3 dx Write the integrand in terms of u. (2x(x2 +2) ° dx- SO. du
The problem involves evaluating the indefinite integral [tex]∫2x(x + 2)^(2x+3) dx[/tex] using the substitution u = x + 2. The task is to express the integrand in terms of u and find the corresponding differential du.
To evaluate the integral using the substitution [tex]u = x + 2,[/tex]we need to express the integrand in terms of u and find the differential du. Let's start by applying the substitution: [tex]u = x + 2,[/tex]
Differentiating both sides of the equation with respect to x, we get: du = dx
Next, we express the integrand [tex]2x(x + 2)^(2x+3) dx[/tex] in terms of u. Substituting x + 2 for u in the expression, we have: [tex]2(u - 2)(u)^(2(u-2)+3) du[/tex]
Simplifying the expression, we have: [tex]2(u - 2)(u^2)^(2u-1) du[/tex]
Further simplification can be done if we expand the power of[tex]u^2: 2(u - 2)(u^4)^(u-1) du[/tex]
Now, we have expressed the integrand in terms of u and obtained the corresponding differential du. We can proceed to integrate this expression with respect to u to find the indefinite integral.
By evaluating the integral, we can obtain the result in terms of u.
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please do these 3 multiple
choice questions, no work or explanation is required just answers
are pwrfect fine, will leave a like for sure!
Question 17 (1 point) How many solutions are there to the system of equations 2x+9y-31 and -10x+6y=-2? infinity 3 01 0
Question 18 (1 point) Determine the value of k for which there is an infinite nu
Question 17: 1 solution; Question 18: k = 5; Question 19: Infinite solutions
Question 17: How many solutions are there to the system of equations 2x+9y=31 and -10x+6y=-2?
To determine the number of solutions, we can use various methods such as graphing, substitution, or elimination. In this case, we can use the method of elimination by multiplying the first equation by 10 and the second equation by 2 to eliminate the x terms. This gives us 20x + 90y = 310 and -20x + 12y = -4.
By adding the two equations together, we get 102y = 306, which simplifies to y = 3. Substituting this value of y back into either of the original equations, we find that x = 2.
Therefore, the system of equations has a unique solution, which means there is 1 solution.
Question 18: Determine the value of k for which there is an infinite number of solutions.
To determine the value of k, we need to look at the system of equations and analyze its coefficients. However, since the second equation is not provided, it is not possible to determine the value of k or whether there are infinite solutions. Additional information or equations are needed to solve this problem.
Question 19: How many solutions are there to the system of equations -3x + 4y = 12 and 9x - 12y = -36?
To determine the number of solutions, we can use the method of elimination. By multiplying the first equation by 3 and the second equation by -1, we can eliminate the x terms. This gives us -9x + 12y = -36 and -9x + 12y = 36.
Subtracting the two equations, we get 0 = 0. This means the two equations are dependent and represent the same line. Therefore, there are infinite solutions to this system of equations.
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(c) Verify that y = cos x is a solution to this differential equation. =
1. Consider the Differential Equation: -yy" + (y')2 = 1 = (a) The order of this equation is: (b) Decide whether this equation
The given differential equation is -yy" + (y')^2 = 1. The order of this equation is second order.
To verify whether y = cos(x) is a solution to this differential equation, we need to substitute y = cos(x) into the equation and check if it satisfies the equation.
The order of a differential equation is determined by the highest derivative present in the equation. In this case, the highest derivative is y", so the order of the equation is second order.
To verify if y = cos(x) is a solution to the differential equation, we substitute y = cos(x) into the equation:
-(cos(x))(cos''(x)) + (cos'(x))^2 = 1.
Taking the derivatives, we have:
cos'(x) = -sin(x) and cos''(x) = -cos(x).
Substituting these values into the equation, we get:
-(cos(x))(-cos(x)) + (-sin(x))^2 = 1.
Simplifying the equation, we have:
cos^2(x) + sin^2(x) = 1.
Since cos^2(x) + sin^2(x) = 1 is an identity, it is true for all values of x. Therefore, y = cos(x) is indeed a solution to the given differential equation.
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Alexis opens a money market account at Lone Star Bank. The account compounds interest continuously at a rate of 7. 85%. If she initially invests $5,000, how much money will be in her account after 12 years?
The amount of money that will be in Alexis 's account after 12 years, given the initial deposit would be $ 12, 821. 84.
How to find the amount the investment grew to?The formula for continuous compound interest is [tex]A = P * e^ {(rt)}[/tex]
In this case, P = $ 5, 000 , r = 7.85% or 0. 0785 ( as a decimal ), and t = 12 years.
The total amount after 12 years is therefore :
[tex]A = 5000 * e^ { (0.0785 * 12) }[/tex]
A = 5, 000 x [tex]e^ {(0.942)}[/tex]
[tex]e^ {(0.942)}[/tex] = 2. 56436843
A = 5, 000 x 2.56436843
= $ 12, 821. 84
In conclusion, after 12 years, Alexis will have about $ 12, 821. 84 in her money market account at Lone Star Bank.
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What is the particular solution to the differential equation
dy/dx=x^2(2y-3)^2 with the initial condition y(0)=-1?
The particular solution to the given differential equation dy/dx = x^2(2y-3)^2 with the initial condition y(0) = -1 can be found by separating variables and integrating.
To find the particular solution, we can separate variables and integrate both sides of the differential equation. Rearranging the equation, we have dy / (x^2(2y-3)^2) = dx.
To integrate the left side, we can use a substitution. Let u = 2y - 3, then du = 2dy, and the equation becomes (1/2) du / (x^2u^2).
Now, we can integrate both sides with respect to their respective variables. Integrating the left side gives us (1/2) ∫ du / u^2 = -(1 / (2u)).
For the right side, we integrate dx, which is simply x + C, where C is a constant of integration.
Putting the pieces together, we have -(1 / (2u)) = x + C.
Substituting back u = 2y - 3, we get -(1 / (2(2y - 3))) = x + C.
Simplifying, we have -1 / (4y - 6) = x + C.
Rearranging the equation to solve for y, we find 4y - 6 = -1 / (x + C).
Finally, solving for y, we have y = (3/2) - (1 / (2(x^3/3 + C))), where C is the constant of integration determined by the initial condition y(0) = -1.
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Determine whether the claim stated below represents the null hypothesis or the alternative hypothesis. If a hypothesis test is performed, how should you interpret a decision that (a) rejects the null hypothesis or (b) fails to reject the null hypothesis? A scientist claims that the mean incubation period for the eggs of a species of bird is at least 55 days. Does the claim represent the null hypothesis or the alternative hypothesis? Since the claim a _______statement of equality, it represents the ______hypothesis
Since the claim states that the mean incubation period is "at least" 55 days, it suggests that the scientist believes the mean incubation period is greater than or equal to 55 days. In hypothesis testing, this claim represents the alternative hypothesis (H1).
The null hypothesis (H0) would state the opposite, which is that the mean incubation period is less than 55 days.
Interpreting the decision in a hypothesis test:
a) If the null hypothesis is rejected, it means that there is sufficient evidence to support the alternative hypothesis. In this case, it would imply that there is evidence to conclude that the mean incubation period is indeed at least 55 days for the species of bird.
b) If the null hypothesis fails to be rejected, it means that there is not enough evidence to support the alternative hypothesis. However, it does not necessarily mean that the null hypothesis is true. It could indicate that the sample data does not provide enough evidence to make a conclusive statement about the mean incubation period.
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fF.d F.dr, where F(x,y)=xyi+yzj+zxk and C is the twisted cubic given by x=t,y=t²,z=t³,0 ≤ t ≤ 1 is C 26 27 30 0 0 0
The line integral ∫F · dr along the curve C is 9/10.
To evaluate the line integral ∫F · dr along the curve C, where F(x, y, z) = xyi + yzj + zxk and C is the twisted cubic given by x = t, y = t², z = t³ for 0 ≤ t ≤ 1, we need to parameterize the curve C and compute the dot product between F and the tangent vector dr.
The parameterization of C is:
r(t) = ti + t²j + t³k
To compute dr, we take the derivative of r(t) with respect to t:
dr = (dx/dt)i + (dy/dt)j + (dz/dt)k
dr = i + 2tj + 3t²k
Now we can compute the dot product between F and dr:
F · dr = (xy)(dx/dt) + (yz)(dy/dt) + (zx)(dz/dt)
F · dr = (t)(i) + (t²)(2t)(j) + (t)(t³)(3t²)(k)
F · dr = ti + 2t³j + 3t⁴k
To evaluate the line integral, we integrate F · dr with respect to t over the interval [0, 1]:
∫[0,1] F · dr = ∫[0,1] (ti + 2t³j + 3t⁴k) dt
Integrating each component separately:
∫[0,1] ti dt = (1/2)t² ∣[0,1] = (1/2)(1)² - (1/2)(0)² = 1/2
∫[0,1] 2t³j dt = (1/4)t⁴ ∣[0,1] = (1/4)(1)⁴ - (1/4)(0)⁴ = 1/4
∫[0,1] 3t⁴k dt = (1/5)t⁵ ∣[0,1] = (1/5)(1)⁵ - (1/5)(0)⁵ = 1/5
Adding the results together:
∫[0,1] F · dr = (1/2) + (1/4) + (1/5) = 5/10 + 2/10 + 2/10 = 9/10
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