Section 5.5 (B) - Substitution and Transcendental Functions Example 7: Studying Net Change in Carbon-14 114 Assume the function y t/5730 models the rate of change of the amount (in grams) of carbon-14 (with respect to time) remaining in a sample taken from medieval shroud t years after the shroud was created. Determine the net change in the amount carbon-14 remaining in the sample between 500 years and 700 years after the shroud was created. 700 't U 700 5730 1500 11216 t = df= clt 5730 700 5730 = 50 50 yldt = 'ench? (+) 4/5730 2 U (500) = 5730 57

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Answer 1

The net change in the amount of carbon-14 remaining in the sample between 500 years and 700 years after the shroud was created is approximately 20.93 grams.

To determine the net change in the amount of carbon-14 remaining in the sample between 500 years and 700 years after the shroud was created, we need to calculate the definite integral of the function that models the rate of change of carbon-14.

The function given is y(t) = t/5730, where t represents the time in years. This function represents the rate of change of the amount of carbon-14 remaining in the sample.

To find the net change, we integrate the function y(t) over the interval from 500 to 700:

Net change = ∫[500, 700] y(t) dt

Using the antiderivative of y(t) = t/5730, which is (1/2) * (t^2)/5730, we can evaluate the definite integral:

Net change = [(1/2) * (t^2)/5730] evaluated from 500 to 700

= (1/2) * [(700^2)/5730 - (500^2)/5730]

= (1/2) * [490000/5730 - 250000/5730]

= (1/2) * (240000/5730)

= 120000/5730

≈ 20.93 grams

Therefore, the net change in the amount of carbon-14 remaining in the sample between 500 years and 700 years after the shroud was created is approximately 20.93 grams.

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Related Questions

6. Find the volume of the sphere below
where r = 5.
5 in

Answers

Answer:

523.33 in³

-----------------------

Use the equation for volume:

V = (4/3)πr³

Substitute 5 for r and 3.14 for π, then calculate:

V = (4/3)(3.14)(5³) V = 523.33 in³

The volume of the sphere when r is 5.5 inches, is 696.90 in³.

We know that the formula to calculate the volume of the sphere is as follows:

V = (4/3)πr³.......(i)

Where V⇒ Volume of sphere

r⇒ Radius of the sphere to its outer circumference

Now, as per the question:

The radius of sphere, R = 5.5 inches

Putting the values in equation (i),

V=(4/3)π(5.5)³

V=696.90 in³

Thus, the volume of the sphere having 5.5 inches radius will be 696.90 in³.

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Explain why S is not a basis for M2,2 -{S:3:) OS is linearly dependent Os does not span Mx x OS is linearly dependent and does not span My.

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The set S is not a basis for M2,2 because it is linearly dependent, does not span M2,2, and fails to satisfy the conditions necessary for a set to be a basis.

For a set to be a basis for a vector space, it must satisfy two conditions: linear independence and spanning the vector space. In this case, S fails to meet both criteria.

Firstly, S is linearly dependent. This means that there exist non-zero scalars such that a linear combination of the vectors in S equals the zero vector. In other words, there is a non-trivial solution to the equation c1S1 + c2S2 + c3S3 = 0, where c1, c2, and c3 are not all zero. This violates the condition of linear independence, which requires that the only solution to the equation is the trivial solution.

Secondly, S does not span M2,2. This means that there exist matrices in M2,2 that cannot be expressed as linear combinations of the vectors in S. This implies that S does not cover the entire vector space.

Since S is linearly dependent and does not span M2,2, it cannot form a basis for M2,2.

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The solution of ( xsech?x?dx is: 2 I) 0.76159 II) 0.38079 tanh xº III) ) a Only II. b.Onlyl. c Only III. d. None e. Il y III.

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The solution to the integral ∫xsech²x dx is:x tanh x - ln|cosh x| + c.

to solve the integral ∫xsech²x dx, we can use integration by parts.

let's use the formula for integration by parts: ∫u dv = uv - ∫v du.

let u = x and dv = sech²x dx.taking the derivatives, we have du = dx and v = tanh x.

applying the integration by parts formula, we get:

∫xsech²x dx = x(tanh x) - ∫tanh x dx.

the integral of tanh x can be found by using the identity tanh x = sinh x / cosh x:∫tanh x dx = ∫(sinh x / cosh x) dx.

using substitution, let w = cosh x, then dw = sinh x dx.

the integral becomes:∫(1/w) dw = ln|w| + c.

substituting back w = cosh x, we have:

ln|cosh x| + c. none of the provided options (a, b, c, d, e) matches the correct solution.

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Given f(x)=x²-x, use the first principles definition to find f'(5).

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We are asked to find the derivative of the function f(x) = x^2 - x at the point x = 5 using the first principles definition of the derivative.

The derivative of a function represents the rate at which the function is changing at a given point. By using the first principles definition of the derivative, we can find the derivative of f(x) = x^2 - x.

The first principles definition states that the derivative of a function f(x) is given by the limit of the difference quotient as h approaches 0:

f'(x) = lim (h->0) [f(x + h) - f(x)] / h.

To find f'(5), we substitute x = 5 into the difference quotient:

f'(5) = lim (h->0) [f(5 + h) - f(5)] / h.

Now, we evaluate the difference quotient:

f(5 + h) = (5 + h)^2 - (5 + h) = 25 + 10h + h^2 - 5 - h = 20 + 9h + h^2.

f(5) = 5^2 - 5 = 25 - 5 = 20.

Substituting these values into the difference quotient:

f'(5) = lim (h->0) [(20 + 9h + h^2) - 20] / h

= lim (h->0) (9h + h^2) / h

= lim (h->0) (9 + h)

= 9.

Therefore, f'(5) = 9.

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A school psychologist is interested in the efficiency of administration for a new intelligence test for children. In the past, the Wechsler Intelligence Scale for Children (WISC) was used. Thirty sixth-grade children are given the new test to see whether the old intelligence test or the new intelligence test is easier to administer. Is this a nondirectional or directional hypothesis? How do you know?

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To determine whether the hypothesis is nondirectional or directional in the study comparing the efficiency of administering a new intelligence test for children with the Wechsler Intelligence Scale for Children (WISC), we need to consider the nature of the hypothesis being tested.

In this scenario, the psychologist is comparing the efficiency of administration between the old intelligence test (WISC) and the new intelligence test. To determine if one test is easier to administer than the other, the hypothesis being tested would likely be directional. A directional hypothesis, also known as a one-tailed hypothesis, predicts the direction of the difference or relationship between variables.

For example, the directional hypothesis could be formulated as follows:

"H₁: The new intelligence test is easier to administer than the old intelligence test."

The researcher is specifically interested in determining if the new test is easier, suggesting a specific direction for the difference in efficiency between the two tests.

On the other hand, if the researcher was simply interested in comparing the efficiency of the two tests without predicting a specific direction, the hypothesis would be nondirectional or two-tailed.

In conclusion, based on the information provided, it is likely that the hypothesis in this study is directional, as the researcher is investigating whether the new intelligence test is easier to administer than the old test, indicating a specific direction for the expected difference in efficiency.

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What is the Interaction effect in an Independent Factorial Design?
a. The combined effect of two or more predictor variables on an outcome variable.
b. The effect of one predictor variable on an outcome variable.
c. The combined effect of two or more predictor variables on more than one outcome variable
d. The combined effect of the errors of two or more predictor variables on an outcome variable

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The interaction effect in an independent factorial design refers to the combined effect of two or more predictor variables on an outcome variable, where the impact is not simply additive but rather influenced by the interaction between the predictor variables.

In an independent factorial design, the interaction effect refers to the combined effect of two or more predictor variables on an outcome variable. This means that the impact of the predictor variables on the outcome variable is not simply additive, but rather there is a synergistic or interactive effect when these variables are considered together.

In more detail, option (a) correctly describes the interaction effect in an independent factorial design. It is important to note that the interaction effect is not the same as the main effect, which refers to the effect of each individual predictor variable on the outcome variable separately. Instead, the interaction effect explores how the combination of predictor variables influences the outcome variable differently than what would be expected based on the individual effects alone.

When there is an interaction effect, the relationship between the predictor variables and the outcome variable depends on the levels of the other predictors. In other words, the effect of one predictor variable on the outcome variable is not constant across all levels of the other predictors. This interaction can be visualized through interaction plots or by conducting statistical analyses such as analysis of variance (ANOVA) with factorial designs.

In summary, the interaction effect in an independent factorial design refers to the combined effect of two or more predictor variables on an outcome variable, where the impact is not simply additive but rather influenced by the interaction between the predictor variables.

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how many ways can you give 15 (identical) apples to your 6 favourite mathematics lecturers (without any restrictions)?

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You can distribute 15 identical apples to 6 lecturers using the "stars and bars" method. The answer is the combination C(15+6-1, 6-1) = C(20,5) = 15,504 ways.

To solve this problem, we use the "stars and bars" method, which helps in counting the number of ways to distribute identical objects among distinct groups. We represent the apples as stars (*) and place 5 "bars" (|) among them to divide them into 6 sections for each lecturer. For example, **|***|*||***|**** represents giving 2 apples to the first lecturer, 3 to the second, 1 to the third, 0 to the fourth, 3 to the fifth, and 4 to the sixth. We need to arrange 15 stars and 5 bars in total, which is 20 elements. So, the answer is the combination C(20,5) = 20! / (5! * 15!) = 15,504 ways.

Using the stars and bars method, there are 15,504 ways to distribute 15 identical apples to your 6 favorite mathematics lecturers without any restrictions.

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In the following exercises, find the Maclaurin series of each function.
203. ((1)=2
205. /(x) = sin(VR) (x > 0).

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The Maclaurin series for sin(sqrt(x)) is f(x) = x^(1/2) - x^(3/2)/6 + x^(5/2)/120 - x^(7/2)/5040 + ... 203. To find the Maclaurin series of (1+x)^2, we can use the binomial theorem:

(1+x)^2 = 1 + 2x + x^2



So the Maclaurin series for (1+x)^2 is:

f(x) = 1 + 2x + x^2 + ...

205. To find the Maclaurin series of sin(sqrt(x)), we can use the Maclaurin series for sin(x):

sin(x) = x - x^3/3! + x^5/5! - x^7/7! + ...

And substitute sqrt(x) for x:

sin(sqrt(x)) = sqrt(x) - (sqrt(x))^3/3! + (sqrt(x))^5/5! - (sqrt(x))^7/7! + ...

Simplifying:

sin(sqrt(x)) = sqrt(x) - x^(3/2)/6 + x^(5/2)/120 - x^(7/2)/5040 + ...

So the Maclaurin series for sin(sqrt(x)) is:

f(x) = x^(1/2) - x^(3/2)/6 + x^(5/2)/120 - x^(7/2)/5040 + ...

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1. Let f(x, y, z) = xyz + x+y+z+1. Find the gradient vf and divergence div(vf), and then calculate curl(vf) at point (1,1,1).

Answers

The curl of vf is zero at every point in space, including the point (1, 1, 1).

To find the gradient vector field (vf) and divergence (div) of the function f(x, y, z) = xyz + x + y + z + 1, we first need to compute the partial derivatives of f with respect to each variable.

Partial derivative with respect to x:

∂f/∂x = yz + 1

Partial derivative with respect to y:

∂f/∂y = xz + 1

Partial derivative with respect to z:

∂f/∂z = xy + 1

Now we can construct the gradient vector field vf = (∂f/∂x, ∂f/∂y, ∂f/∂z):

vf(x, y, z) = (yz + 1, xz + 1, xy + 1)

To calculate the divergence of vf, we need to compute the sum of the partial derivatives of each component:

div(vf) = ∂(yz + 1)/∂x + ∂(xz + 1)/∂y + ∂(xy + 1)/∂z

= z + z + y + x + 1

= 2z + x + y + 1

To find the curl of vf, we need to compute the determinant of the following matrix:

css

Copy code

      i          j          k

∂/∂x (yz + 1) (xz + 1) (xy + 1)

∂/∂y (yz + 1) (xz + 1) (xy + 1)

∂/∂z (yz + 1) (xz + 1) (xy + 1)

Expanding the determinant, we have:

curl(vf) = (∂(xy + 1)/∂y - ∂(xz + 1)/∂z)i - (∂(yz + 1)/∂x - ∂(xy + 1)/∂z)j + (∂(yz + 1)/∂x - ∂(xz + 1)/∂y)k

= (x - x) i - (z - z) j + (y - y) k

= 0

Therefore, (1, 1, 1) is  the curl of vf is zero at every point in space.

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4. D²y + 4Dy = x³ 5. D²y + 4Dy + 4y = e-³ 6. D²y +9y=8sin2x 7. D²y + 4y = 3cos3x

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The given list consists of four second-order linear ordinary differential equations (ODEs) where the first, third, and fourth equations are linear homogenous and the second equation is non-linear homogenous.

The first equation, [tex]D^{2} y + 4Dy = x^{3}[/tex], represents a linear homogeneous ODE with constant coefficients. It can be solved by finding the complementary function using the characteristic equation and then determining the particular integral using a suitable method, such as the variation of parameters.

The second equation, [tex]D^2y + 4Dy + 4y = e^{-3}[/tex], is a linear non-homogeneous ODE with constant coefficients. It can be solved by finding the complementary function using the characteristic equation and determining the particular integral using the method of undetermined coefficients or variation of parameters.

The third equation, [tex]D^{2} y + 9y = 8sin(2x)[/tex], is a linear homogeneous ODE with constant coefficients. It can be solved using the characteristic equation, and the general solution can be obtained by finding the roots of the characteristic equation and applying the appropriate trigonometric functions.

The fourth equation, [tex]D^2y + 4y = 3cos(3x)[/tex], is a linear homogeneous ODE with constant coefficients. It can be solved using the characteristic equation, and the general solution can be obtained by finding the roots of the characteristic equation and applying the appropriate trigonometric functions.

In each case, the specific solution will depend on the initial or boundary conditions, if provided.

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(1 point) Take the Laplace transform of the following initial value problem and solve for Y(s) = ({y(t)} y" + 4y' +13y = {, t, 0

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Inverse laplace transform of Y(s) is:  [tex]y(t) = [(t/3)e^(-2t) + (1/3)cos(3t)] u(t)[/tex] for the differential equation.

The given differential equation is y'' + 4y' + 13y = 0, with initial conditions y(0) = 0 and y'(0) = t.

In mathematics and engineering, the Laplace transform is an integral transform that is used to solve differential equations and examine dynamic systems. In order to represent the frequency domain, it transforms a function of time into a function of the complex variable s. An exponential term, e(-st), multiplied by the function's integral yields the Laplace transform, where s is a complex number.

To solve the initial value problem, first we have to take the Laplace transform of the differential equation and the initial conditions. Laplace transform of y'' is given as [tex]s^2Y(s) - sy(0) - y'(0)[/tex]

Laplace transform of y' is given as sY(s) - y(0)

We get: Laplace transform of y'' + 4 Laplace transform of y' + 13Laplace transform of y = Laplace transform of (0)

We get: [tex]s^2Y(s) - st - 1 + 4(sY(s) - 0) + 13Y(s) = 0=>\\\\ s^2Y(s) + 4sY(s) + 13Y(s) = st + 1Y(s)(s^2 + 4s + 13) = \\\\st + 1Y(s) = (st + 1) / (s^2 + 4s + 13)[/tex]

Now we need to take the inverse Laplace transform of Y(s) to get the solution of the initial value problem. For that, we need to factorize the denominator as [tex]s^2 + 4s + 13 = (s + 2)^2 + 9[/tex]

By partial fraction method, we can write the equation asY(s) = [tex](st + 1) / (s^2 + 4s + 13) = \\(st + 1) / [(s + 2)^2 + 9]=\\ [(t/3)(s + 2) + (1/3)] / [(s + 2)^2 + 9][/tex]

Taking inverse Laplace transform of Y(s), we get: [tex]y(t) = [(t/3)e^(-2t) + (1/3)cos(3t)][/tex] u(t)Where u(t) is the unit step function.


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solve with a good explanation in the solution
points Save Question 16 Given Wy)-- a) 7.000) is equal to b)/(0,0) is equal to c) Using the linear approximation Lux) of 7.) at point(0,0), an approximate value of is equal to

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Given the function Wy) and points a) 7.000) is equal to b)/(0,0) is equal to c). Using the linear approximation Lux) of 7.000) at point (0,0), an approximate value of is equal to.

To solve the given problem, let us first find the linear approximation of the function Wy) at point (0,0):We know that:Linear approximation of a function f(x) at point x=a is given by:f(x) ≈ f(a) + f'(a)(x-a)Here, the point (0,0) is given. So, x=0 and y=0.Now, we need to find f(a) and f'(a) at x=a=0.f(x) = 7.000)Therefore, f(0) = 7.000)The slope of the tangent to the curve y = f(x) at x=a is given by:f'(a) = f'(0)Now, we need to find f'(x) to get f'(0).So, we differentiate f(x) = 7.000) with respect to x, to get:f'(x) = 0 [as the derivative of a constant is zero]Therefore, f'(0) = 0.Now, putting these values in the linear approximation formula:f(x) ≈ f(0) + f'(0)(x-0)f(x) ≈ 7.000) + 0(x-0)f(x) ≈ 7.000)Therefore, the approximate value of f(x) at (0,0) is 7.000).Hence, the correct option is d) 7.000.

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Evaluate the integral by interpreting it in terms of areas. L' -x) dx -6

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The integral ∫(L, -x) dx can be evaluated by interpreting it in terms of areas. The result of this integral is -6.

To evaluate the integral ∫(L, -x) dx, we can interpret it as finding the signed area under the curve y = f(x) between the limits L and -x on the x-axis.

Since the integral is given as ∫(L, -x) dx, we integrate with respect to x, from L to -x.

The result of -6 indicates that the signed area under the curve y = f(x) between the limits L and -x is equal to -6.

In the context of areas, the negative sign indicates that the area is below the x-axis, representing a region with a negative area. The magnitude of 6 represents the absolute value of the area.

Therefore, the integral ∫(L, -x) dx, when interpreted in terms of areas, yields a signed area of -6 between the limits L and -x on the x-axis.

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HELPPPPP

During lockdown Dr. Jack reckoned that the number of people getting sick in his town was decreasing 40% every week. If 3000 people were sick in the first week and 1800 people in the second week (3000x0. 60=1800) then how many people would have become sick in total over an indefinite period of time?

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The total number of people who would have become sick in total over an indefinite period of time is 7500.

Dr. Jack reckoned that the number of people getting sick in his town was decreasing by 40% every week. If 3000 people were sick in the first week and 1800 people in the second week, the number of people getting sick each week is decreasing by 40%.

The number of sick people is decreasing by 40% every week. Suppose x is the number of people getting sick in the first week.x = 3000

The number of people getting sick in the second week is 1800. 60% of x = 1800

Therefore,0.6x = 1800x = 1800/0.6x = 3000The number of sick people getting each week is decreasing by 40%. Therefore, number of people who got sick in the third week is:

3000 x 0.6 = 1800

Similarly, the number of people getting sick in the fourth week is:1800*0.6 = 1080.

The number of people getting sick each week is decreasing by 40%. Therefore, the total number of people who got sick in all the weeks = 3000 + 1800 + 1080 + .........

The series of total sick people over time can be modeled by the following geometric sequence: a = 3000r = 0.6

Therefore, the sum of an infinite geometric sequence is given by the formula: S = a / (1 - r)S = 3000 / (1 - 0.6)S = 7500

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solve the equation for solutions in the interval 0<= x < 2(pi
symbol). round approximate solutions to the nearest ten-thousandth
2 sin x = (square root) 3

Answers

The equation 2sin(x) = √3 can be solved to find the solutions in the interval 0 <= x < 2π. There are two solutions: x = π/3 and x = 2π/3.

To solve the equation 2sin(x) = √3, we can isolate the sin(x) term by dividing both sides by 2:

sin(x) = (√3)/2

In the interval 0 <= x < 2π, the values of sin(x) are positive in the first and second quadrants. The value (√3)/2 corresponds to the y-coordinate of the points on the unit circle where the angle is π/3 and 2π/3.

Therefore, the solutions to the equation are x = π/3 and x = 2π/3, which fall within the specified interval.

Note: In the unit circle, the y-coordinate of a point represents the value of sin(x), and the x-coordinate represents the value of cos(x). By knowing the value (√3)/2, we can determine the angles where sin(x) takes that value.

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We want to find the area of the region of the plane bounded by the curves y = 2³ and y = 9x. a): Find the three intersection points of these two curves: (1,91), (2,92) and (3,93) with 1 < x2 < *3. 21

Answers

The three intersection points of the curves y = 2³ and y = 9x within the interval 1 < x < 3 are (1, 91), (2, 92), and (3, 93).

To find the intersection points of the curves y = 2³ and y = 9x, we need to set the equations equal to each other and solve for x. Setting 2³ equal to 9x, we get 8 = 9x. Solving for x, we find x = 8/9. However, this value of x is outside the interval 1 < x < 3, so we discard it.

Next, we set the equations y = 2³ and y = 9x equal to each other again and solve for x within the given interval. Substituting 2³ for y, we have 8 = 9x. Solving for x, we find x = 8/9. However, this value is outside the interval 1 < x < 3, so we discard it as well.

Finally, we substitute 3 for y in the equation y = 9x and solve for x. We have 3 = 9x, which gives x = 1/3. Since 1/3 falls within the interval 1 < x < 3, it is one of the intersection points.

Therefore, the three intersection points of the curves y = 2³ and y = 9x within the interval 1 < x < 3 are (1, 91), (2, 92), and (3, 93).

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On the most recent district-wide math exam, a random sample of students earned the following scores: 95,45,37,82,90,100,91,78, 67,84, 85, 85,82,91, 93, 92,76,84, 100,59,92,77,68,88 - What is the mean score, rounded to the nearest hundredth?
- What is the median score?

Answers

The mean score of the random sample of students on the math exam is approximately ,The mean score, rounded to the nearest hundredth, is 82.83. The median score is 84.

To find the mean score, we add up all the scores and divide the sum by the total number of scores. Adding up the given scores, we get a sum of 1862. Dividing this sum by the total number of scores, which is 23, we find that the mean score is approximately 81.04348. Rounding this to the nearest hundredth, the mean score is 82.83.

To find the median score, we arrange the scores in ascending order and find the middle value. In this case, there are 23 scores, so the middle value is the 12th score when the scores are arranged in ascending order. After sorting the scores, we find that the 12th score is 84. Therefore, the median score is 84.

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Evaluate JS [./ox + (x - 2y + z) ds . S: z = 3 - x, 0 < x

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To evaluate the expression [tex]$\int \frac{{dx}}{{\sqrt{x^2 + (x - 2y + 3 - x)^2}}}$[/tex], we can simplify the expression first. The integral can be written as [tex]$\int \frac{{dx}}{{\sqrt{x^2 + (-2y + 3)^2}}}$[/tex] since [tex]$x - x$[/tex] cancels out. Simplifying further, we have [tex]$\int \frac{{dx}}{{\sqrt{x^2 + 4y^2 - 12y + 9}}}$[/tex].

Now, let's evaluate this integral. We can rewrite the expression as [tex]$\int \frac{{dx}}{{\sqrt{(x - 0)^2 + (2y - 3)^2}}}$[/tex]. This resembles the form of the integral of [tex]$\frac{{dx}}{{\sqrt{a^2 + x^2}}}$[/tex], which is [tex]$\ln|x + \sqrt{a^2 + x^2}| + C$[/tex]. In our case, [tex]$a = 2y - 3$[/tex], so the integral evaluates to [tex]$\ln|x + \sqrt{x^2 + (2y - 3)^2}| + C$[/tex]. Therefore, the evaluation of the given expression is [tex]$\ln|x + \sqrt{x^2 + (2y - 3)^2}| + C$[/tex], where C is the constant of integration.

In summary, the evaluation of the given expression is [tex]$\ln|x + \sqrt{x^2 + (2y - 3)^2}| + C$[/tex]. This expression represents the antiderivative of the original function, which can be used to find the definite integral or evaluate the expression for specific values of x and y. The natural logarithm arises due to the integration of the square root function.

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Use the Comparison Test to determine whether the series is convergent or divergent. If it is convergent, inputconvergentand state reason on your work. If it is divergent, inputdivergentand state reason on your work. co 2 + sinn n n=1 Show all work on your paper for full credit and upload later, or receive 1 point maximum for no procedure to support your work and answer!

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To determine the convergence or divergence of the series ∑ (2 + sin(n))/n from n = 1 to infinity, we can use the Comparison Test.

First, let's consider the series ∑ 2/n. This is a p-series with p = 1, and we know that a p-series converges if p > 1 and diverges if p ≤ 1. In this case, p = 1, so the series ∑ 2/n diverges.

Next, we compare the given series ∑ (2 + sin(n))/n with the divergent series ∑ 2/n. Since 2 + sin(n) is always greater than or equal to 2, we can say that (2 + sin(n))/n ≥ 2/n for all n. By the Comparison Test, if ∑ 2/n diverges, then ∑ (2 + sin(n))/n also diverges. Therefore, the series ∑ (2 + sin(n))/n is divergent.

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A volume is described as follows: 1. the base is the region bounded by y y = 2.9x2 + 0.4 and x = 2. every cross section perpendicular to the x-axis is a square. €2.92 = 1; Find the volume of this ob

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The volume of the given oblique cylinder is approximately equal to 14.86.

The given region is bounded by the curve y = 2.9x² + 0.4 and the line x = 2.

The shape of each cross-section is a square. We need to find the volume of the given solid.

Let's represent the given region graphically; Volume of the solid can be obtained using the integral of the area of cross-section perpendicular to x-axis. Each cross-section is a square, therefore its area is given by side².

We need to find the length of each side of a square cross-section in terms of x, then the integral of this expression will give us the volume of the solid.

Since each cross-section is a square, the length of the side of a square cross-section perpendicular to the x-axis is same as the length of the side of a square cross-section perpendicular to the y-axis.

Hence the length of each side of the square cross-section is given by the distance between the curve and the line. Therefore; length of side = 2.9x² + 0.4 - 2 = 2.9x² - 1.6

Now, we will integrate the expression of the area of cross-section along the given limits to get the volume of the solid;[tex]$$\begin{aligned} \text{Volume of the solid} &= \int_{0}^{2} length^2 dx\\ &= \int_{0}^{2} (2.9x^2 - 1.6)^2 dx\\ &= \int_{0}^{2} (8.41x^4 - 9.28x^2 + 2.56) dx\\ &= \left[\frac{8.41}{5}x^5 - \frac{9.28}{3}x^3 + 2.56x\right]_0^2\\ &= \frac{8.41}{5}(32) - \frac{9.28}{3}(8) + 2.56(2)\\ &= \boxed{14.86} \end{aligned}$$[/tex]

Hence, the volume of the given oblique cylinder is approximately equal to 14.86.

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Given quadrilateral ABCD is a rhombus, find x and m

Answers

The value of x is 5

The measure of m<ADB is 28 degrees

How to determine the value

From the information given, we have that the figure is a rhombus

Note that the interior angles of a rhombus are equivalent to 90 degrees

Then, we can that;

<ABD and <DBC are complementary angles

Also, we can see that the diagonal divide the angles into equal parts.

equate the angles, we have;

6x - 2 = 4x + 8

collect the like terms

6x - 4x = 10

2x = 10

Divide the values by the coefficient, we have;

x = 5

Now, substitute the value, we have;

m< ADB = 4x + 8 = 4(5) + 8 = 20 + 88 = 28 degrees

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Find the indicated derivative and simplify. 7x-2 y' for y= x + 4x y'=0

Answers

The indicated derivative of 7x - 2y' with respect to x is 7.

To find the derivative of y with respect to x, we can use the product rule and the constant rule. Let's calculate it step by step.

Given:

y = x + 4xy' ... (1)

y' = 0 ... (2)

From equation (2), we know that y' = 0. We can substitute this value into equation (1) to simplify it further.

y = x + 4x(0)

y = x + 0

y = x

Now, we need to find the derivative of y with respect to x, which is dy/dx.

dy/dx = d(x)/dx

= 1

Therefore, the derivative of y with respect to x is 1.

Now, let's find the derivative of 7x - 2y' with respect to x.

d(7x - 2y')/dx = d(7x)/dx - d(2y')/dx

Since y' = 0, d(2y')/dx = 0.

d(7x - 2y')/dx = d(7x)/dx - d(2y')/dx

= 7 - 0

= 7

So, the derivative of 7x - 2y' with respect to x is 7.

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jill needs $50 000 for a round-the-world holiday in 3 years time. How much does Jill need to invest at 7% pa compounded yearly to achieve this goal?

Answers

Jill needs to invest approximately $40,816.33 at a 7% annual interest rate compounded yearly to achieve her goal of $50,000 for a round-the-world holiday in 3 years.

To solve this problem

We can use the formula for compound interest:

A = P(1 + r/n)^(nt)

Where

A is equal to the $50,000 future value that Jill hopes to acquire.P is the principle sum, which represents Jill's necessary initial investment.(7% or 0.07) is the annual interest rate.n is equal to how many times the interest is compounded annually (in this case, once).T equals the duration in years (3)

We can rearrange the formula to solve for P:

P = A / (1 + r/n)^(nt)

Now we can substitute the given values into the formula and calculate:

P = 50000 / (1 + 0.07/1)^(1*3)

P = 50000 / (1 + 0.07)^3

P = 50000 / (1.07)^3

P = 50000 / 1.2250431

P ≈ $40,816.33

Therefore, Jill needs to invest approximately $40,816.33 at a 7% annual interest rate compounded yearly to achieve her goal of $50,000 for a round-the-world holiday in 3 years.

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Simplify the expression [tex](\frac{64x^{12} }{125x^{3} } )^{\frac{1}{3} }[/tex] . Assume all variables are positive

Answers

To simplify the expression [tex]\left(\frac{64x^{12}}{125x^{3}}\right)^{\frac{1}{3}}[/tex], we can start by simplifying the numerator and denominator separately.

In the numerator, we have [tex]64x^{12}[/tex]. We can rewrite 64 as [tex]4^3[/tex] and [tex]x^{12}[/tex] as [tex](x^3)^4[/tex]. So, the numerator becomes [tex]4^3 \cdot (x^3)^4[/tex].

In the denominator, we have [tex]125x^{3}[/tex]. We can rewrite 125 as [tex]5^3[/tex] and [tex]x^{3}[/tex] as [tex](x^3)^1[/tex]. So, the denominator becomes [tex]5^3 \cdot (x^3)^1[/tex].

Now, let's simplify the expression inside the parentheses: [tex]4^3 \cdot (x^3)^4 \div (5^3 \cdot (x^3)^1)[/tex].

Simplifying each part further, we have:

[tex]4^3 = 64[/tex],

[tex](x^3)^4 = x^{12}[/tex],

[tex]5^3 = 125[/tex], and

[tex](x^3)^1 = x^3[/tex].

Now the expression becomes:

[tex]\frac{64x^{12}}{125x^3}[/tex].

To simplify further, we can cancel out the common factors in the numerator and denominator. Both 64 and 125 have a common factor of 5, and x^12 and x^3 have a common factor of x^3. Canceling these common factors, we get:

[tex]\frac{64x^{12}}{125x^3} = \frac{8}{5} \cdot \frac{x^{12}}{x^3} = \frac{8}{5}x^{12-3} = \frac{8}{5}x^9[/tex].

Therefore, the simplified expression is [tex]\frac{8}{5}x^9[/tex].

[tex]\huge{\mathcal{\colorbox{black}{\textcolor{lime}{\textsf{I hope this helps !}}}}}[/tex]

♥️ [tex]\large{\textcolor{red}{\underline{\texttt{SUMIT ROY (:}}}}[/tex]

Given f(x, y) = y ln(5x – 3y), find = fx(x, y) = = fy(x, y) =

Answers

the partial derivative fy(x, y) is:

fy(x, y) = ln(5x – 3y) + y * (1/(5x – 3y)) * (-3) = ln(5x – 3y) - 3y/(5x – 3y)

To summarize: fx(x, y) = 5y/(5x – 3y)

fy(x, y) = ln(5x – 3y) - 3y/(5x – 3y)

To find the partial derivatives of the function f(x, y) = y ln(5x – 3y), we differentiate with respect to x and y separately.

The partial derivative with respect to x, denoted as ∂f/∂x or fx(x, y), is obtained by treating y as a constant and differentiating the function with respect to x:

fx(x, y) = ∂f/∂x = y * d/dx(ln(5x – 3y))

To differentiate ln(5x – 3y) with respect to x, we can use the chain rule:

d/dx(ln(5x – 3y)) = (1/(5x – 3y)) * d/dx(5x – 3y) = (1/(5x – 3y)) * 5

Therefore, the partial derivative fx(x, y) is:

fx(x, y) = y * (1/(5x – 3y)) * 5 = 5y/(5x – 3y)

Now, let's find the partial derivative with respect to y, denoted as ∂f/∂y or fy(x, y), by treating x as a constant and differentiating the function with respect to y:

fy(x, y) = ∂f/∂y = ln(5x – 3y) + y * d/dy(ln(5x – 3y))

To differentiate ln(5x – 3y) with respect to y, we again use the chain rule:

d/dy(ln(5x – 3y)) = (1/(5x – 3y)) * d/dy(5x – 3y) = (1/(5x – 3y)) * (-3)

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Problem 1. Differentiate the following functions: a. (6 points) In(sec(x) + tan(c)) b. (6 points) e In :) + sin(x) tan(2x) Problem 2. (8 points) Differentiate the following function using logarithmic

Answers

a. The derivative of f(x) = in(sec(x) + tan(c)) is f'(x) = sec(x) * tan(x), b. The derivative of g(x) = e(ln(x)) + sin(x) * tan(2x) is g'(x) = 1 + cos(x) * tan(2x) + 2sin(x) * sec2(2x).

a. Given function: f(x) = in(sec(x) + tan(c))

Using the chain rule, we differentiate the function as follows:

f'(x) = (1/u) * u', where u = sec(x) + tan(c)

Differentiating u with respect to x:

u' = sec(x) * tan(x)

b. Given function: g(x) = e^(ln(x)) + sin(x) * tan(2x)

Using logarithmic differentiation, we start by taking the natural logarithm of both sides:

ln(g(x)) = ln(e^(ln(x)) + sin(x) * tan(2x))

Simplifying the right side using logarithmic properties:

ln(g(x)) = ln(x) + ln(sin(x) * tan(2x))

Now, we differentiate both sides with respect to x:

Differentiating ln(g(x))

(1/g(x)) * g'(x)

Differentiating ln(x):

(1/x)

Differentiating ln(sin(x) * tan(2x)):

(1/sin(x)) * cos(x) + (1/tan(2x)) * sec^2(2x)

Substituting g(x) = e^(ln(x)):

(1/g(x)) * g'(x) = (1/x) + (1/sin(x)) * cos(x) + (1/tan(2x)) * sec^2(2x)

Rearranging the equation and simplifying, we get:

g'(x) = g(x) * [(1/x) + (1/sin(x)) * cos(x) + (1/tan(2x)) * sec^2(2x)]

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15. Compute Siva- – 3} (x - 3)² dr - either by means of a trigonometric substitution or by observing that the integral gives half the area of a circle of radius 2.

Answers

The value of the integral ∫(Sqrt[9 - (x - 3)^2]) dx can be computed by recognizing that it represents half the area of a circle with radius 2.

Thus, the result is equal to half the area of the circle, which is πr²/2 = π(2²)/2 = 2π.

By observing that the integral represents half the area of a circle with radius 2, we can use the formula for the area of a circle (πr²) to calculate the result. Plugging in the value for the radius (r = 2), we obtain the result of 2π.

Let's start by making the trigonometric substitution x - 3 = 2sin(θ). This substitution maps the interval (-∞, ∞) to (-π/2, π/2) and transforms the integrand as follows:

(x - 3)² = (2sin(θ))² = 4sin²(θ).

Next, we'll express dr in terms of dθ. Since x - 3 = 2sin(θ), we can differentiate both sides with respect to r to find:

1 = 2cos(θ) dθ/dr.

Rearranging the equation, we have:

dθ/dr = 1 / (2cos(θ)).

Now we can substitute these expressions into the integral:

∫[Siva-3} (x - 3)²] dr = ∫[Siva-3} 4sin²(θ) (1 / (2cos(θ))) dθ.

Simplifying, we get:

∫[Siva-3} 2sin²(θ) / cos(θ) dθ.

Using the trigonometric identity sin²(θ) = (1 - cos(2θ)) / 2, we can rewrite the integrand as:

∫[Siva-3} [(1 - cos(2θ)) / 2cos(θ)] dθ.

Now, we have separated the integral into two terms:

∫[Siva-3} (1/2cos(θ) - cos(2θ)/2cos(θ)) dθ.

Simplifying further, we get:

(1/2) ∫[Siva-3} (1/cos(θ)) dθ - (1/2) ∫[Siva-3} (cos(2θ)/cos(θ)) dθ.

The first term, (1/2) ∫[Siva-3} (1/cos(θ)) dθ, can be evaluated as the natural logarithm of the absolute value of the secant function:

(1/2) ln|sec(θ)| + C1,

where C1 is the constant of integration.

For the second term, (1/2) ∫[Siva-3} (cos(2θ)/cos(θ)) dθ, we can simplify it using the double-angle identity for cosine: cos(2θ) = 2cos²(θ) - 1. Thus, the integral becomes:

(1/2) ∫[Siva-3} [(2cos²(θ) - 1)/cos(θ)] dθ.

Expanding the integral, we have:

(1/2) ∫[Siva-3} (2cos(θ) - 1/cos(θ)) dθ.

The integral of 2cos(θ) with respect to θ is sin(θ), and the integral of 1/cos(θ) can be evaluated as the natural logarithm of the absolute value of the secant function:

(1/2) [sin(θ) - ln|sec(θ)|] + C2,

where C2 is another constant of integration.

Therefore, the complete solution to the integral is:

(1/2) ln|sec(θ)| + (1/2) [sin(θ) - ln|sec(θ)|] + C.

Simplifying, we get:

(1/2) sin(θ) + C,

where C is the

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The rectangular prism below has a total surface area of 158 in2. Use the net below to determine the missing dimension, x.

Answers

The value of x is 8 in

What is surface area of prism?

A prism is a solid shape that is bound on all its sides by plane faces.

Surface area is the amount of space covering the outside of a three-dimensional shape.

The surface area of the prism is expressed as;

SA = 2B +ph

where h is the height of the prism and B is the base area and p is the perimeter of the base.

In the diagram above the shows that the area of each segt has been placed in it. Then,

The area of the last box is 24in²

area of the box = l× w

w = 3 in

l = x

24 = 3x

x = 24/3

x = 8 in.

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Decide if n=1 (-1)" Vn converges absolutely, conditionally or diverges. Show a clear and logical argument.

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Without knowing the convergence behavior of the series ∑|Vn|, we cannot definitively determine whether the series ∑((-1)^n * Vn) converges absolutely, conditionally, or diverges.

To determine if the series ∑((-1)^n * Vn) converges absolutely, conditionally, or diverges, we need to analyze the behavior of the individual terms and the overall series.

First, let's examine the terms: (-1)^n and Vn. The term (-1)^n alternates between -1 and 1 as n increases, while Vn represents a sequence of real numbers.

Next, we consider the absolute value of each term: |(-1)^n * Vn| = |(-1)^n| * |Vn| = |Vn|.

Now, if the series ∑|Vn| converges, it implies that the series ∑((-1)^n * Vn) converges absolutely. On the other hand, if ∑|Vn| diverges, we need to examine the behavior of the series ∑((-1)^n * Vn) further to determine if it converges conditionally or diverges.

Therefore, the convergence of the series ∑((-1)^n * Vn) is dependent on the convergence of the series ∑|Vn|. If ∑|Vn| converges, the series ∑((-1)^n * Vn) converges absolutely. If ∑|Vn| diverges, we cannot determine the convergence of ∑((-1)^n * Vn) without additional information.

In conclusion, without knowing the convergence behavior of the series ∑|Vn|, we cannot definitively determine whether the series ∑((-1)^n * Vn) converges absolutely, conditionally, or diverges.

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Use the transformation u=>x=y,v=x+4y to evaluate the gwen integral for the region R bounded by the lines y=-26•2. y=-3+3, y=-x and y=-x-2 +9xy + 4y) dx dy R S| (279xy4y?) dx dy=D R (Simplify your answer)

Answers

The

integral

becomes:

[tex]\int\limits^a_b {\frac{D -279(u - v)(u - 2v)^4(u - 2v)}{4} dudv}[/tex], where the limits of

integration

for u are [tex]\frac{1232}{525}[/tex] to 1 and the

limits for v are ([tex]\frac{x1864}{525}[/tex]) to ([tex]\frac{15u-12}{9}[/tex].

To evaluate the given integral using the transformation u = x + y and v = x + 4y, we need to find the

Jacobian

of the transformation and express the region R in terms of u and v.

Let's find the Jacobian first:

J = ∂(x, y) / ∂(u, v)

To do this, we need to find the

partial derivatives

of x and y with respect to u and v.

From u = x + y, we can express x in terms of u and v:

x = u - v

Similarly, from v = x + 4y, we can express y in terms of u and v:

v = x + 4y

v = (u - v) + 4y

v = u + 4y - v

2v = u + 4y

y = (u - 2v) / 4

Now, let's find the partial derivatives:

∂x/∂u = 1

∂x/∂v = -1

∂y/∂u = 1/4

∂y/∂v = -1/2

The Jacobian is given by:

J = (∂x/∂u * ∂y/∂v) - (∂y/∂u * ∂x/∂v)

J = (1 * (-1/2)) - (1/4 * (-1))

J = -1/2 + 1/4

J = -1/4

Now, let's express the region R in terms of u and v.

The lines that bound the region R in the xy-plane are:

y = -26x

y = -3x + 3

y = -x

y = -x - 2 + 9xy + 4y

We can rewrite these equations in terms of u and v using the

inverse transformation

:

x = u - v

y = (u - 2v) / 4

Substituting these values in the equations of the lines, we get:

(u - 2v) / 4 = -26(u - v)

(u - 2v) / 4 = -3(u - v) + 3

(u - 2v) / 4 = -(u - v)

(u - 2v) / 4 = -(u - v) - 2 + 9(u - 2v) + 4(u - 2v)

Simplifying these equations, we have:

u - 2v = -104(u - v)

u - 2v = -12(u - v) + 12

u - 2v = -u + v

u - 2v = -u + v - 2 + 9u - 18v + 4u - 8v

Further simplifying, we get:

104(u - v) = -u + v

12(u - v) = -u + v - 12

2u - 3v = -2u - 6v + 2u - 10v

Simplifying the above equations, we find:

105u - 103v = 0

15u - 9v = 12

v = (15u - 12) / 9

Now, let's evaluate the integral:

[tex]\int\limits^a_b {\int\limits^a_b {R 279xy^4y} \, dx dy} =\int\limits^a_b {\int\limits^a_b {D f(u,v) |J|} \, du dv}[/tex]

Substituting the values of x and y in terms of u and v in the integrand, we have:

[tex]279(u - v)(u - 2v)^4(u - 2v) |J|[/tex]

Since J = -1/4, we can simplify the expression:

[tex]-279(u - v)(u - 2v)^4(u - 2v) / 4[/tex]

The region D in the uv-plane is determined by the equations:

105u - 103v = 0

15u - 9v = 12

Solving these equations, we find the limits of integration for u and v:

u = (1232/525)

v = (1864/525)

Therefore, the integral becomes:

[tex]\int\limits^a_b {\frac{D -279(u - v)(u - 2v)^4(u - 2v)}{4} dudv}[/tex], where the

limits

of integration for u are (1232/525) to 1 and the limits for v are (1864/525) to (15u - 12) / 9.

Please note that further simplification of the integral expression may be possible depending on the specific requirements of your problem.

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