Use the Integral Test to determine whether the series is convergent or divergent. [infinity] n n2 + 2 n = 1 Evaluate the following integral. [infinity] 1 x x2 + 2 dx

Answers

Answer 1

To apply the Integral Test, we need to check if the function f(x) = x/(x^2 + 2) is positive, continuous, and decreasing for all x > 1. It is clear that f(x) is positive and continuous for x > 1.

To show that f(x) is decreasing, we can calculate its derivative:

f'(x) = (x^2 + 2 - 2x^2)/(x^2 + 2)^2 = (2 - x^2)/(x^2 + 2)^2

Since 2 - x^2 is negative for x > sqrt(2), we have f'(x) < 0 for x > sqrt(2).

Therefore, f(x) is decreasing for x > sqrt(2), and we can apply the Integral Test:

[integral from 1 to infinity] x/(x^2 + 2) dx = (1/2) [ln(x^2 + 2)] from 1 to infinity

As x approaches infinity, ln(x^2 + 2) grows without bound, so the integral diverges.

Therefore, the series ∑n=1 to infinity n/(n^2 + 2) also diverges.

To evaluate the second integral, we can use a substitution u = x^2 + 2, du/dx = 2x dx:

[integral from 1 to infinity] x/(x^2 + 2) dx = (1/2) [ln(x^2 + 2)] from 1 to infinity

= (1/2) [ln(infinity) - ln(3)]

= infinity

Therefore, the integral diverges.

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Related Questions

A furniture maker has a triangular piece of wood shaped like the one in the image. She wants to cut
the largest possible circular table top from this piece of wood. How can she draw the largest possible
circle on the wood? Explain the steps she needs to take.

Answers

To draw the largest possible circle on the triangular piece of wood, the furniture maker can follow these steps:

Place the triangular piece of wood on a flat surface, ensuring that it is stable and won't move during the drawing process.Take a straightedge ruler or any long, straight object that can reach across the entire width of the triangular piece. Position it along one of the sides of the triangle, making sure it is parallel to the base of the triangle.With the ruler in place, use a pencil or marker to draw a straight line along the ruler, extending it beyond the boundaries of the triangle. This line will be the diameter of the desired circle.Repeat steps 2 and 3 for the remaining two sides of the triangle, drawing two more lines that extend beyond the boundaries of the triangle.Now, you should have three extended lines that intersect at a single point within the triangular piece. This point is the center of the circle.Using a compass, place the needle at the intersection point of the extended lines and open the compass to a length that reaches one of the points on the triangle's boundary.Without changing the compass width, rotate the compass around the center point, ensuring that the pencil end of the compass stays in contact with the wood surface. This will create a perfect circle.Repeat step 7 for the other two points where the extended lines intersect with the triangle's boundary. The circles should overlap and create a single, largest possible circle that can fit within the triangular piece of wood.Once the circle is drawn, the furniture maker can use a saw or any other appropriate cutting tool to carefully cut along the outline of the circle, creating the largest possible circular table top from the triangular piece of wood.

By following these steps, the furniture maker can ensure that the circle is as large as possible and fits within the given triangular piece of wood.

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Which value of r indicates a stronger correlation than 0.40?
a)-.30
b)-.80
c)+.38
d)0

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The answer to this question is option b) -.80. The correlation coefficient (r) ranges from -1 to +1. The closer the value of r is to -1 or +1, the stronger the correlation between the two variables. A value of 0 indicates no correlation.

A correlation coefficient of 0.40 indicates a moderate positive correlation. Therefore, to find a stronger correlation than 0.40, we need to look for values of r closer to +1. Option b) -.80 is the only value listed that is closer to -1 than 0.40 is to +1, indicating a strong negative correlation.

t's important to note that correlation does not imply causation. A strong correlation between two variables does not necessarily mean that one causes the other. It is possible for two variables to be correlated due to a third variable that affects both. Additionally, correlation only measures linear relationships between variables and does not account for non-linear relationships.

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True or False? Contingency tables tabulate data according to two dimensions.

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The statement is True.

Contingency tables, also known as cross-tabulation or two-way tables, are used to tabulate data based on two dimensions or categorical variables.

The variables are usually displayed in rows and columns, allowing for the examination of the relationship between the variables and the frequency of their joint occurrences.

Contingency tables are commonly used in statistics and research to analyze and present data when studying the association or dependency between two categorical variables. Each cell in the table represents the count or frequency of cases falling into a particular combination of categories.

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Nikon is launching their new wireless transmitter, which implemented better send and receive technology. The signal is transmitted using the new model with probability 0.76 and using the old model with probability0.34. The chance of receiving a signal given using the new model transmitter is 80%; there is 77% chance of receiving a signal given using the old transmitter. What is the probability that a signal is received model transmitter? on new

Answers

The probability that a signal is received on a new model transmitter is approximately 0.6568 or 65.68%.

Nikon is launching its new wireless transmitter, which implemented better send and receive technology.

The signal is transmitted using the new model with probability 0.76 and using the old model with probability 0.34.

The probability of receiving a signal given using the new model transmitter is 80%.

On the other hand, the probability of receiving a signal given using the old transmitter is 77%.

The question is asking for the probability that a signal is received on a new model transmitter.

Then, the probability of A is P(A) = 0.76, and the probability of not A is P(not A) = 1 - P(A) = 1 - 0.76 = 0.24.

Let B be the event of receiving a signal, regardless of the transmitter model.

P(B) = P(B|A)P(A) + P (B|not A)P(not A) where P(B|A) is the probability of receiving a signal given using the new model transmitter,

which is 0.80, and P (B|not A) is the probability of receiving a signal given using the old model transmitter, which is 0.77.

Substituting the given values, we have: P(B) = 0.80(0.76) + 0.77(0.24) = 0.6568

Therefore, the probability that a signal is received on a new model transmitter is approximately 0.6568 or 65.68%.

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Please help giving 30 points please thank you

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The steps that are used to solve this system of equations by substitution include the following:

x - 2y = 11 → x = 2y + 11 -7(2y + 11) - 2y = -13-7(2y + 11) - 2y = -13-14y - 77 - 2y = -13-16y - 77 = -13-16y = 64y = -4x = 2(-4) + 11 → x = 3(3, -4)

How to solve the given system of equations?

In order to solve the given system of equations, we would apply the substitution method. Based on the information provided above, we have the following system of equations:

-7x - 2y = -13      .......equation 1.

x - 2y = 11         .......equation 2.

By making x the subject of formula in equation 2, we have the following:

x = 2y + 11            .......equation 3.

By using the substitution method to substitute equation 3 into equation 1, we have the following:

-7(2y + 11) - 2y = -13

-14y - 77 - 2y = -13

-16y - 77 = -13

-16y = -13 + 77

-16y = 64

y = -64/16

y = -4

Now, we can determine the value of x from equation 3;

x = 2y + 11

x = 2(-4) + 11

x = -8 + 11

x = 3

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all of the following are examples of discrete random variables except which of the following? number of tickets sold population of a city marital status time

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Discrete random variables are variables that can take on a finite or countable number of values. In other words, they can only take on certain specific values and not any value in between.

The examples provided in the question include the number of tickets sold, the population of a city, marital status, and time.
Out of these four examples, the only continuous random variable is time. This is because time is continuous and can take on an infinite number of values between any two given points. For instance, if we take a specific time such as 2 pm, there are an infinite number of possible values between 1:59 pm and 2:01 pm.
On the other hand, the number of tickets sold, population of a city, and marital status are all examples of discrete random variables. For instance, the number of tickets sold can only take on whole numbers, such as 1, 2, 3, and so on. Similarly, the population of a city can only take on a specific value, such as 100,000, 200,000, 500,000, and so on. Lastly, marital status can only take on a few specific values, such as single, married, divorced, or widowed.
In conclusion, time is the only continuous random variable in the given examples, while the other three are discrete random variables.

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supposed that we wanted to be 95% confident that the error in estimating the mean temperature is less than 2 degreees celcius. what sample size should be used?

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Rounding up to the nearest whole number, we need a sample size of 25 to achieve a 95% confidence level with a maximum error of 2 degrees Celsius in estimating the mean temperature.

To calculate the sample size needed to achieve a 95% confidence level with a maximum error of 2 degrees Celsius, we can use the formula:
n = (z * σ / E) ^ 2
Where:
- n is the sample size
- z is the z-score associated with the confidence level (in this case, 1.96 for 95%)
- σ is the standard deviation of the temperature data (if unknown, we can use a conservative estimate of 5 degrees Celsius).
- E is the maximum error we want to allow (in this case, 2 degrees Celsius)
Plugging in the values, we get:
n = (1.96 * 5 / 2) ^ 2
n = 24.01
Rounding up to the nearest whole number, we need a sample size of 25 to achieve a 95% confidence level with a maximum error of 2 degrees Celsius in estimating the mean temperature.

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An insurance company knows that in the entire population of millions of apartment owners, the mean annual loss from damage is µ = $130 and the standard deviation of the loss is a = $300. The distribution of losses is strongly right-skewed, i.e., most policies have $0 loss, but a few have large losses. If the company sells 10, 000 policies, can it safely base its rates on the assumption that its average loss will be no greater than $135? Find the probability that the average loss is no greater than $135 to make your argument.

Answers

A random variable is a variable whose value is based on how a random process or event turns out. It symbolizes a numerical value that may take on various interpretations depending on the underlying probability distribution.

Let X be the random variable denoting the annual losses suffered by apartment owners. We have to find the probability that the average loss of the company will be no greater than $135 given that the mean annual loss of X is

μ = $130 and

The standard deviation is σ = $300.

The sample size is n = 10000.

The distribution of the loss is strongly right-skewed. We can assume that the sample follows a normal distribution since the sample size is very large. The sampling distribution of the sample mean follows a normal distribution with mean μ and standard deviation

σ/√n.μ = $130,

σ = $300, and

n = 10000

Thus, the standard deviation of the sampling distribution is

σ/√n = 300/√10000 = 3.

The sample mean follows a normal distribution with a mean of $130 and a standard deviation of 3.

P(Z ≤ (135 - 130) / 3)P(Z ≤ 5/3) = P(Z ≤ 1.67).

Using a standard normal distribution table, we can find that

P(Z ≤ 1.67) = 0.9525

Therefore, the probability that the average loss is no greater than $135 is 0.9525. Since the probability is very high, the company can safely base its rates on the assumption that its average loss will be no greater than $135.

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Which of the following best describes the difference between Null Hypothesis 1 and Null Hypothesis 2? Null Hypothesis 1: H0: μ1 – μ2 = Δ0 Null Hypothesis 2: H0: μD = Δ0 Null Hypothesis 2 involves samples from two populations, one treatment;
Null hypothesis 1 involves a single sample from one population, two treatments. Null Hypothesis 1 involves samples from two populations, one treatment; Null hypothesis 2 involves a single sample from one population, two treatments.

Answers

The difference between Null Hypothesis 1 and Null Hypothesis 2 lies in the nature of the samples and treatments being compared. Null Hypothesis 1 (H0: μ1 – μ2 = Δ0) involves samples from two populations and one treatment. This hypothesis is used when comparing two separate populations or groups that have different treatments or interventions applied to them.

The goal is to determine if there is a significant difference between the means of the two populations.

On the other hand, Null Hypothesis 2 (H0: μD = Δ0) involves a single sample from one population but with two different treatments. This hypothesis is used when comparing the effects of two different treatments or interventions within the same population. The goal is to determine if there is a significant difference in the means of the paired observations or measurements taken before and after the treatments.

In summary, Null Hypothesis 1 compares two populations with different treatments, while Null Hypothesis 2 compares two treatments within the same population. The choice between these hypotheses depends on the specific research question and study design.

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Let AA be an n×nn×n matrix. We know the column space of AA, which we denote by C(A)C(A), is the set of non-zero vectors{b1→,b2→,...,bn→}{b1→,b2→,...,bn→} such that Ax→=b→Ax→=b→. And the nullspace, which we denote by N(A)N(A), is the set of non-zero vectors {x1→,x2→,...,xn−→}{x1→,x2→,...,xn→} such that Ax→=0Ax→=0. Can anyone tell me why C(A)C(A) isn't made of the x→x→'s from Ax→=b→Ax→=b→?

Answers

The column space C(A) is formed by all possible linear combinations of the columns of A, not all vectors in C(A) can be obtained as solutions to the equation Ax = b.

The column space of a matrix A, denoted by C(A), is the set of all possible linear combinations of the columns of A. In other words, C(A) consists of all vectors b that can be expressed as b = A*x, where x is a vector.

On the other hand, the solutions to the equation Ax = b form a specific subset of the column space. These solutions represent the vectors x that satisfy the equation Ax = b for a given b. In other words, they are the vectors that map to b under the linear transformation defined by A.

However, not all vectors in the column space C(A) can be obtained as solutions to the equation Ax = b for some b. This is because the equation Ax = b may not have a solution for certain vectors b. In fact, the existence of a solution depends on the properties of the matrix A and the vector b.

Therefore, while the column space C(A) is formed by all possible linear combinations of the columns of A, not all vectors in C(A) can be obtained as solutions to the equation Ax = b. The solutions to Ax = b form a subset of C(A) that satisfies the specific condition of mapping to the given vector b.

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The probability P(Z>1.28) is closest to: (a) −0.10
(b) 0.10
(c) 0.20
(d) 0.90

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Answer:

Step-by-step explanation:

The probability P(Z>1.28) represents the area under the standard normal distribution curve to the right of the z-score 1.28.

Using a standard normal distribution table or a calculator, we find that the area to the right of 1.28 is approximately 0.1003.

Therefore, the answer is closest to option (b) 0.10. there is a 10% chance of obtaining a value above 1.28 in a standard normal distribution.

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Which problem can be solved by finding 48 ÷ 8?

Answers

The problem that can be solved using is 48 ÷ 8 is (a) 6 * 8 = 48

Solving word problems

Given the equation below 48 ÷ 8

This equation can be translated to 48 divided by the value 8.

To interpret in a real life situation;

We can  say Bolu has 48 apples and wants to share among his friends, how much will each of each friend collect?

The number of apple each friend will have is the solution to the expression.

Hence:

48 ÷ 8 = 6

This shows that each of his friends will have 6 apples each.

So, option (a) is correct

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Complete question

Which problem can be solved by finding 48 ÷ 8?

6 * 8 = 48

6 + 8 = 48

48 eight times is 6

48 six times is 7

find the distance d(u, v) between u and v. u = [3,1,2] , v = [1,2,3]

Answers

he distance between u and v is sqrt(6), or approximately 2.45 units. To find the distance between two points in Euclidean space, we can use the distance formula:


d(u, v) = sqrt((u1 - v1)^2 + (u2 - v2)^2 + (u3 - v3)^2)
Using the values given for u and v, we can plug them into the formula and simplify:
d(u, v) = sqrt((3 - 1)^2 + (1 - 2)^2 + (2 - 3)^2)
d(u, v) = sqrt(4 + 1 + 1)
d(u, v) = sqrt(6)
Therefore, the distance between u and v is sqrt(6), or approximately 2.45 units.
The distance formula is a fundamental concept in mathematics that is used to find the distance between two points in Euclidean space. This formula can be extended to n-dimensional space as well. In this case, we are given two points, u and v, that are in three-dimensional space. By plugging these values into the formula, we can calculate the distance between them. It is important to note that the distance between two points is always positive and symmetric, meaning that d(u, v) = d(v, u). Additionally, the distance formula can be used to calculate the distance between any two points in space, whether they are in the same plane or in different planes. Overall, understanding the distance formula is crucial for many mathematical applications, such as geometry, physics, and computer science.

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for a random variable x with probability density given by f(x)=2αxe^−αx2 for x > 0 with α>0. compute, in detail, the expected value e[x].

Answers

For the given Rayleigh distribution with [tex]f(x)= 2axe^{-ax^{2} }[/tex] , the expected value is E[X] = sqrt(pi/(4a)), and the variance is Var[X] = (2 - π/(2a²)).

the Rayleigh distribution is characterized by a probability density function (PDF) of the form [tex]f(x)= 2axe^{-ax^{2} }[/tex], where a > 0. This distribution is used to model the magnitude of a two-dimensional vector whose components are independently and identically distributed Gaussian random variables.

For the Rayleigh distribution with the PDF [tex]f(x)= 2axe^{-ax^{2} }[/tex] , the expected value (mean) is E[X] = sqrt(pi/(4a)), and the variance is :

Var[X] = (2 - pi/2a²).

Now, let's explain the answer in detail. To find the expected value, we integrate the product of the random variable X and its PDF over the range of possible values:

[tex]E[x] = \int\limits {(0 to a)x* 2axe^{-ax^{2} }} \, dx[/tex]

By substituting u = -ax², du = -2ax dx, the integral becomes:

E[X] = ∫(0 to ∞) -ueⁿ du

Using integration by parts, we have:

E[X] = [-ueⁿ] - ∫(-eⁿ du)

= [tex][-xe^{-ax^{2}](0 to a) - \int\limits {0 to a}e^{-ax^{2} }\, dx }[/tex]

The first term evaluates to 0 at both limits. The second term can be rewritten as:

E[X] = ∫(0 to ∞) e⁻ᵃˣ² dx

= √(π/4a) (by evaluating the Gaussian integral)

Thus, the expected value of X is E[X] = sqrt(pi/(4a)).

Next, to find the variance, we use the formula Var[X] = E[X²] - (E[X])². First, we calculate E[X²]:

E[X²] = ∫(0 to ∞) x² * 2axe⁻ᵃˣ²) dx

= ∫(0 to ∞) -x * d(e^(-ax²))

= [-x * e^(-ax²)](0 to ∞) + ∫(0 to ∞) e⁽⁻ᵃˣ²⁾ dx

The first term evaluates to 0 at both limits. The second term is the same as the integral calculated for E[X]. Hence:

= √(π/4a)

Substituting the values into the variance formula:

Var[X] = E[X^2] - (E[X])^2

= (√(π/4a)) - (sqrt(pi/(4a)))²

= (2 - π/(2a²))

Thus, the variance of X is Var[X] = (2 - π/(2a^2)).

Therefore, for the given Rayleigh distribution with f(x) = 2axe⁽⁻ᵃˣ²⁾,

the expected value is E[X] = sqrt(pi/(4a)), and the variance is Var[X] = (2 - π/(2a²)).

Complete Question:

A random variable X has a Rayleigh distribution if its probability density is given by f(x) = 2oxe or for x > 0, where a > 0. Show that for this distribution 1. Al l vandle has a Rayleigh distribution if its probability density i f(x) = 2axe-ar' for I > 0, where a > 0. Show that for this distribution a) The expected value is b) The variance is o? = (1-5)

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evaluate the surface integral ∫∫s f(x,y,z) ds using a parametric description of the surface. f(x,y,z)=2x2 2y2, where s is the hemisphere x2 y2 z2=25, for z≥0

Answers

The integral using appropriate trigonometric identities and integration techniques. However, since the evaluation of this integral involves complex.

To evaluate the surface integral ∫∫s f(x,y,z) ds using a parametric description of the surface, we can express the surface S, which is the hemisphere x^2 + y^2 + z^2 = 25, for z ≥ 0, in terms of parametric equations. Let's use spherical coordinates to parameterize the surface.

In spherical coordinates, we have:

x = r sin(ϕ) cos(θ)

y = r sin(ϕ) sin(θ)

z = r cos(ϕ)

where r represents the radius (in this case, r = 5) and ϕ and θ are the spherical coordinates that define points on the surface S.

To cover the entire upper hemisphere, we can choose the parameter ranges as follows:

ϕ: 0 to π/2

θ: 0 to 2π

Now, we can calculate the surface integral ∫∫s f(x,y,z) ds using the parametric description of the surface.

f(x,y,z) = 2x^2 + 2y^2

First, let's calculate the surface area element ds in terms of ϕ and θ. The surface area element ds can be defined as the cross product of the partial derivatives of the position vector:

ds = |∂r/∂ϕ × ∂r/∂θ| dϕ dθ

where ∂r/∂ϕ and ∂r/∂θ are the partial derivatives of the position vector with respect to ϕ and θ, respectively.

∂r/∂ϕ = (sin(ϕ) cos(θ), sin(ϕ) sin(θ), cos(ϕ))

∂r/∂θ = (-r sin(ϕ) sin(θ), r sin(ϕ) cos(θ), 0)

Taking the cross product, we have:

∂r/∂ϕ × ∂r/∂θ = r^2 sin(ϕ) cos(ϕ) (-cos(θ), -sin(θ), sin(ϕ) cos(ϕ))

The magnitude of the cross product is:

|∂r/∂ϕ × ∂r/∂θ| = r^2 sin(ϕ) cos(ϕ)

Now, we can set up the surface integral:

∫∫s f(x,y,z) ds = ∫(ϕ: 0 to π/2) ∫(θ: 0 to 2π) (2(r sin(ϕ) cos(θ))^2 + 2(r sin(ϕ) sin(θ))^2) r^2 sin(ϕ) cos(ϕ) dϕ dθ

Simplifying this expression, we have:

∫∫s f(x,y,z) ds = 4 ∫(ϕ: 0 to π/2) ∫(θ: 0 to 2π) r^4 sin^3(ϕ) cos^2(ϕ) dϕ dθ

Since r is a constant (r = 5), we can factor it out of the integral:

∫∫s f(x,y,z) ds = 4 r^4 ∫(ϕ: 0 to π/2) ∫(θ: 0 to 2π) sin^3(ϕ) cos^2(ϕ) dϕ dθ

Now, we can evaluate the integral using appropriate trigonometric identities and integration techniques. However, since the evaluation of this integral involves complex.

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A system of equations is given
y=x^2-9
y=-2x-1
​What is one solution to the system of equations?

Answers

One solution to the system of equations in this problem is given as follows:

(2, -5).

How to solve the system of equations?

The system of equations for this problem is defined as follows:

y = x² - 9.y = -2x - 1.

The solution is obtained when the two functions have the same numeric value, as follows:

x² - 9 = -2x - 1

x² + 2x - 8 = 0.

(x + 4)(x - 2) = 0.

Hence one value of x is given as follows:

x - 2 = 0

x = 2.

Hence the value of y for the solution is given as follows:

y = -2(2) - 1

y = -5.

Hence the point is:

(2, -5).

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Two samples, each with n = 6 subjects, produce a pooled variance of 20. Based on this information, the estimated standard error for the sample mean difference would be _____. Explain your response. a-20/6 b-20/12 c-the square root of (20/6 + 20/6) d-the square root of (20/5 + 20/5)

Answers

The estimated standard error for the sample mean difference is the square root of 6.6667. The closest option provided is: c- the square root of (20/6 + 20/6)

The estimated standard error for the sample mean difference can be calculated using the formula:

Standard Error = sqrt[(s1^2/n1) + (s2^2/n2)]

Where:

s1^2: Variance of the first sample

n1: Sample size of the first sample

s2^2: Variance of the second sample

n2: Sample size of the second sample

In this case, both samples have the same sample size (n = 6) and the same pooled variance of 20. Therefore, the formula simplifies to:

Standard Error = sqrt[(20/6) + (20/6)]

Simplifying further, we get:

Standard Error = sqrt[(40/6)]

To find the exact value, we can simplify the expression further:

Standard Error = sqrt[6.6667]

Therefore, the estimated standard error for the sample mean difference is the square root of 6.6667.

The closest option provided is:

c- the square root of (20/6 + 20/6)

So, the correct answer is (c).

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Help! Will give brainliest for correct answer !

Answers

The solution of the given system of quadratic equation is,

⇒    x = -1.

The given system of quadratic equation is,

x² + y² = 25       ....(i)

(x-2)² + y² = 17  .....(ii)

Since we know that,

(a - b)² = a² + b² - 2ab

Now,

⇒ x² + 4 - 4x + y² = 17  ....(iii)

Now subtracting equation (i) from (iii) we get,

⇒ 4 - 4x = 8

Subtracting 4 both sides,

⇒ -4x = 8 - 4

⇒ -4x = 4

⇒    x = -1

Hence solution of this system be,

⇒    x = -1.

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I’ll mark brainly help fast I need this today

Answers

The graph / scatter plot is attached accordingly.

The equation for the above relationship is f(n) = 2/3m + 7/3
Note that it will take 14.5 minutes to put together 12 sandwiches.

What is the equation for the above table?

By examining the data points, we can calculate the slope (m) and y-intercept (b) using two data points, such as (1, 3) and (7, 7).

Using the formula for slope

m = (y2 - y1) / (x2 - x1)

m = (7 - 3) / (7 - 1)

m = 4 / 6

m = 2/3

Using the formula for y-intercept

b = y - mx

b = 3 - (2/3) * 1

b = 3 - 2/3

b = 9/3 - 2/3

b = 7/3

Therefore, the equation for the relationship in the table is:

Number of Sandwiches = (2/3) * Minutes + 7/3

f(n) = 2/3m + 7/3

Where n = Number of sandwiches

m = Minutes

To predict the amount of time it will take to assemble 12 sandwiches, we have

2/3m + 7/3 = 12

Simplify the above to get

2m + 7 = 36
2m = 36 - 7

m = 29/2

m = 14.5 minutes.

So it will take 14.5 minutes to assemble 12 Sandwiches.

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In the figure below, AD and BE are diameters of circle P.
What is the arc measure of minor arc CD in degrees?
O
B
(20k+4)
(33k - 9)°
E
D

Answers

The value of arc CD in degrees is 64°

What is arc angle relationship?

An arc is a smooth curve joining two endpoints. The total angle of a circumference of a circle is 360°.

The angle substended from the centre of a circle by two radii is the measure of the arc.

Therefore CD = 20k +4

and 33k -9 = 90

33k = 90+9

33k = 99

divide both sides by 33

k = 99/3

k = 3

Therefore ;

CD = 20k+4

= 20(3) +4

= 60 +4

CD = 64°

Therefore the measure of arc CD is 64°

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if the boundary is a non-navigable waterway, where is the boundary line situated?

Answers

If a boundary is described as a non-navigable waterway, it typically means that the boundary line is located along the edge or centerline of the waterway. In other words, the boundary line follows the course or path of the non-navigable waterway.

Non-navigable waterways are bodies of water that are not suitable for or intended for regular navigation by boats or vessels. They may include small streams, creeks, canals, ponds, or other bodies of water that are not deep or wide enough to accommodate large-scale navigation.

When determining boundaries that involve non-navigable waterways, the specific legal descriptions, survey data, or relevant documents should be consulted to ascertain the exact location and extent of the boundary line in relation to the waterway. Local laws, regulations, and jurisdictional considerations may also play a role in determining the precise positioning of the boundary line along the non-navigable waterway.

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If the boundary is a non-navigable waterway, the boundary line is usually situated at the center of the waterway.  

If the boundary is a non-navigable waterway, the boundary line is typically situated along the centerline or "thread" of the waterway. This means that the boundary line follows the middle of the watercourse, dividing the ownership between the properties on each side of the waterway.

This is also known as the "Thalweg" principle, where the boundary line is determined by the center of the main channel of the watercourse.

However, it's important to note that boundary lines for non-navigable waterways can vary depending on state and local laws.  It's best to consult with a licensed surveyor or land attorney for specific guidance on determining the boundary line for a non-navigable waterway.

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A standard die is rolled 4 times, within 4 trials, for a player to win, they must roll one double. Winning prizes are determined by which double they roll. roll double 1, prize is $2 roll double 2, prize is $4 roll double 3, prize is $6 roll double 4, prize is $8 roll double 5, prize is $10 roll double 6, prize is $12

Answers

The value of the probability is 0.0193

To create a probability distribution chart for the given information, we need to calculate the probability of rolling each double within four trials. Let's calculate the probabilities and create the chart:

| Double | Probability | Prize |

|--------|-------------|---------|

| 1       | P(1)         | $2    |

| 2      | P(2)        | $4    |

| 3      | P(3)        | $6    |

| 4      | P(4)        | $8    |

| 5      | P(5)        | $10   |

| 6      | P(6)        | $12   |

To calculate the probabilities, we need to consider the number of ways we can roll a double and divide it by the total number of possible outcomes.

In four trials, the total number of possible outcomes is 6⁴ since each trial has six possible outcomes (rolling a 1, 2, 3, 4, 5, or 6).

The number of ways to roll each double is 6 because there is only one combination that gives us a specific double (e.g., for double 1, we need to roll two 1s).

Now, let's calculate the probabilities:

P(1) = P(2) = P(3) = P(4) = P(5) = P(6) = (number of ways to roll double / total number of possible outcomes)

P(1) = P(2) = P(3) = P(4) = P(5) = P(6) = 6 / (6⁴)

Let's calculate the probabilities:

P(1) = P(2) = P(3) = P(4) = P(5) = P(6) = 6 / (6⁴) ≈ 0.0193

Now we can fill in the probability distribution chart:

| Double | Probability | Prize |

|--------|----------------|-------|

| 1       | 0.0193      | $2    |

| 2      | 0.0193      | $4    |

| 3      | 0.0193      | $6    |

| 4      | 0.0193      | $8    |

| 5      | 0.0193      | $10   |

| 6      | 0.0193      | $12   |

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Given question is incomplete, the complete question is below

A standard die is rolled 4 times. within 4 trials, for a player to win, they must roll one double. Winning prizes are determined by which double they roll.

roll double 1, prize is $2

roll double 2, prize is $4

roll double 3, prize is $6

roll double 4, prize is $8

roll double 5, prize is $10

roll double 6, prize is $12

create a probability distribution chart for the given information

Parralel lines cut by a transversal coloring activity. Please give explanation. Will give brainiest.

Answers

Step-by-step explanation:

Parallel lines cut by a transversal coloring activity is an activity that helps students understand the pattern of angles when parallel lines are cut by a transversal. The activity involves coloring the angles formed by the parallel lines and the transversal in different colors. This helps students identify the different types of angles formed and their relationships with each other.

Parallel lines cut by a transversal is a topic in geometry where students learn about the angles formed by a transversal line that intersects two parallel lines. To make the learning process fun and engaging, teachers may use a coloring activity where students color different angles based on their measurements.

The activity typically involves a worksheet with several parallel lines intersected by a transversal line. The students are asked to identify the angles formed by the transversal and the parallel lines, such as corresponding angles, alternate interior angles, alternate exterior angles, and consecutive interior angles. Each type of angle is assigned a specific color, and the students color the angles accordingly.

For example, corresponding angles may be colored red, alternate interior angles blue, alternate exterior angles green, and consecutive interior angles yellow. The students use a color key to determine which angles to color, and once they have correctly identified and colored all the angles, they should have a colorful and visually appealing worksheet.

This type of coloring activity helps students to engage with the material and reinforces their understanding of the geometry concepts. It also provides a fun and creative way to learn, making the learning process more enjoyable and memorable.

Find a recurrence relation for the amount of money in a savings account after n months a_n, if the interest rate is .5% interest per month and initially the account has $1000.

Answers

The recurrence relation for the amount of money in the savings account after n months is:

a_n = 1.005 * a_{n-1}.

To find a recurrence relation for the amount of money in a savings account after n months, we can use the formula for compound interest. Let's denote a_n as the amount of money in the account after n months.

Initially, the account has $1000, so we have a_0 = 1000.

Each month, the amount of money in the account increases by 0.5% (or 0.005) of the previous month's balance. Therefore, the recurrence relation can be written as:

a_n = a_{n-1} + 0.005 * a_{n-1},

where a_{n-1} represents the amount of money in the account in the previous month.

Simplifying the equation, we get:

a_n = (1 + 0.005) * a_{n-1}.

Therefore, the recurrence relation for the amount of money in the savings account after n months is:

a_n = 1.005 * a_{n-1}.

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How many rows appear in a truth table for each of these compound propositions? a) (q → ¬p) ∨ (¬p → ¬q)
b) (p ∨ ¬t) ∧ (p ∨ ¬s)
c) (p → r) ∨ (¬s → ¬t) ∨ (¬u → v)
d) (p ∧ r ∧ s) ∨ (q ∧ t) ∨ (r ∧ ¬t)

Answers

This compound proposition has six variables, p, q, r, s, t, and u. Each variable can take on two truth values. Hence, the truth table will have 2^6 = 64 rows.

In summary:

a) 4 rows

b) 8 rows

c) 32 rows

d) 64 rows

To determine the number of rows in a truth table for each of the given compound propositions, we need to count the number of possible combinations of truth values for the variables involved.

a) (q → ¬p) ∨ (¬p → ¬q):

This compound proposition has two variables, q and p. Each variable can take on two truth values (true or false). Therefore, the truth table will have 2^2 = 4 rows.

b) (p ∨ ¬t) ∧ (p ∨ ¬s):

This compound proposition has three variables, p, t, and s. Each variable can take on two truth values. Thus, the truth table will have 2^3 = 8 rows.

c) (p → r) ∨ (¬s → ¬t) ∨ (¬u → v):

This compound proposition has five variables, p, r, s, t, and u. Each variable can take on two truth values. Therefore, the truth table will have 2^5 = 32 rows.

d) (p ∧ r ∧ s) ∨ (q ∧ t) ∨ (r ∧ ¬t):

This compound proposition has six variables, p, q, r, s, t, and u. Each variable can take on two truth values. Hence, the truth table will have 2^6 = 64 rows.

In summary:

a) 4 rows

b) 8 rows

c) 32 rows

d) 64 rows

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In Example 5.4 and Exercise 5.5, we considered the joint density of Y1, the proportion of the capacity of the tank that is stocked at the beginning of the week, and Y2, the proportion of the capacity sold during the week, given by
a Find the marginal density function for Y2.
b For what values of y2 is the conditional density f (y1|y2) defined?
c What is the probability that more than half a tank is sold given that three-fourths of a tank is stocked?
Reference
Given here is the joint probability function associated with data obtained in a study of automobile accidents in which a child (under age 5 years) was in the car and at least one fatality occurred. Specifically, the study focused on whether or not the child survived and what type of seatbelt (if any) he or she used. Define

Answers

a) To find the marginal density function for Y2, you need to integrate the joint density function over the range of Y1. The marginal density function for Y2 represents the probability distribution of Y2, independent of Y1.

b) The conditional density function f(y1|y2) is defined for values of y2 where the joint density function is non-zero. In other words, it is defined for values of y2 that satisfy the given conditions of the joint density function.

c) To find the probability that more than half a tank is sold given that three-fourths of a tank is stocked, you need to evaluate the conditional probability P(Y2 > 0.5 | Y1 = 0.75). This can be done by integrating the joint density function over the range of Y2 greater than 0.5, given Y1 = 0.75.

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If add 2/3 to 1th/4 of a number you get 7/12 what is the number

Answers

Answer:

Solution is in the attached photo.

Step-by-step explanation:

This question tests on the concept of fractions.

find f(x) and g(x) so that the function can be described as y = f(g(x)). y = 9/sqrt 5x+5

Answers

To find f(x) and g(x) for the given function y = 9/sqrt(5x+5), we need to express y in the form y = f(g(x)).
Let's start by defining g(x) as the expression inside the square root, i.e., g(x) = 5x+5.
Next, we need to find f(x) such that f(g(x)) = y. To do this, we can simplify the given expression for y:
y = 9/sqrt(5x+5)
y * sqrt(5x+5) = 9

Squaring both sides:
(y * sqrt(5x+5))^2 = 9^2
5xy + 45y^2 + 45y - 81 = 0
Now we can solve for y in terms of g(x) (i.e., y = f(g(x))) using the quadratic formula:
y = (-45 ± sqrt(2025 - 4*5*g(x)*(-81))) / (2*5)
y = (-45 ± sqrt(2025 + 1620g(x))) / 10

So our final answer is:
f(x) = (-45 ± sqrt(2025 + 1620x)) / 10
g(x) = 5x+5
(Note: there are two possible values of f(x) because of the ± sign in the quadratic formula, but either one will work to give the original function y = 9/sqrt(5x+5) as y = f(g(x)).)

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.Problem 12. Let U be the subspace of R^5 defined by U = {(x1, x2, x3, x4, x5) ER: 2x1 = x2 and x3 = x5} (a) Find a basis of U. (b) Find a subspace W of R5 such that R5 = U W. (10 marks]

Answers

a) A basis for U is {(1/2, 1, 0, 0, 0), (0, 0, 1, 0, 1), (0, 0, 0, 1, 0)}

b) the subspace spanned by the standard basis vectors e₁ = (1, 0, 0, 0, 0), e₂ = (0, 1, 0, 0, 0), and e₄ = (0, 0, 0, 1, 0).

a) To find a basis of U, we need to find linearly independent vectors that span U. Let's rewrite the condition for U as follows: x₁ = 1/2 x₂ and x₅ = x₃. Then, we can write any vector in U as (1/2 x₂, x₂, x₃, x₄, x₃) = x₂(1/2, 1, 0, 0, 0) + x₃(0, 0, 1, 0, 1) + x₄(0, 0, 0, 1, 0). Thus, a basis for U is {(1/2, 1, 0, 0, 0), (0, 0, 1, 0, 1), (0, 0, 0, 1, 0)}.

b) To find a subspace W of R⁵ such that R⁵ = U ⊕ W, we need to find a subspace W such that every vector in R⁵ can be written as a sum of a vector in U and a vector in W, and the intersection of U and W is the zero vector.

We can let W be the subspace spanned by the standard basis vectors e₁ = (1, 0, 0, 0, 0), e₂ = (0, 1, 0, 0, 0), and e₄ = (0, 0, 0, 1, 0). It is clear that every vector in R⁵ can be written as a sum of a vector in U and a vector in W, since U and W together span R⁵.

Moreover, the intersection of U and W is {0}, since the only vector in U that has a non-zero entry in the e₂ or e₄ position is the zero vector. Therefore, R⁵ = U ⊕ W.

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Given question is incomplete, the complete question is below

Let U be the subspace of R⁵ defined by U = {(x₁, x₂, x₃, x₄, x₅) ∈ R⁵ : 2x₁ = x₂ and x₃ = x₅}. (a) Find a basis of U. (b) Find a subspace W of R⁵ such that R⁵= U⊕W.

A marine biologist claims that the mean length of mature female pink seaperch is different in fall and winter. A sample of 14 mature female pink seaperch collected in fall has a mean length of 113 millimeters and a standard deviation of 10 millimeters. A sample of 13mature female pink seaperch collected in winter has a mean length of 109 millimeters and a standard deviation of 11 millimeters. At alphaαequals=0.10 , can you support the marine biologist's claim? Assume the population variances are equal. Assume the samples are random and independent, and the populations are normally distributed. Complete parts (a) through (e) below.
(b) Find the critical value(s) and identify the rejection region(s)
(c) Find the standard test statistic

Answers

(A) sample of 13 mature female pink seaperch was collected in winter, with a mean length of 109 millimeters and a standard deviation of 11 millimeters.

(B)  The critical value(s) and rejection region(s) are determined based on the significance level of 0.10 and the degrees of freedom

(c) The standard test statistic, also known as the t-value, is calculated using the formula:

t = (mean₁ - mean₂) / sqrt[(s₁²/n₁) + (s₂²/n₂)]

In order to determine whether the mean length of mature female pink seaperch is different in fall and winter, a hypothesis test is conducted with a significance level (alpha) of 0.10. The marine biologist collected a sample of 14 mature female pink seaperch in fall, with a mean length of 113 millimeters and a standard deviation of 10 millimeters. Another sample of 13 mature female pink seaperch was collected in winter, with a mean length of 109 millimeters and a standard deviation of 11 millimeters.

To support or refute the biologist's claim, the following steps are taken:

(b) The critical value(s) and rejection region(s) are determined based on the significance level of 0.10 and the degrees of freedom. Since the sample sizes are relatively small and the population variances are assumed to be equal, the appropriate test statistic to use is the t-distribution. The critical values are obtained from the t-distribution table or a statistical software. The rejection region(s) correspond to the extreme values in the tails of the t-distribution.

(c) The standard test statistic, also known as the t-value, is calculated using the formula:

t = (mean₁ - mean₂) / sqrt[(s₁²/n₁) + (s₂²/n²)]

where mean₁ and mean₂ are the sample means, s₁ and s₂ are the sample standard deviations, and n₁ and n₂ are the sample sizes.

By plugging in the given values, the standard test statistic is calculated.

In order to reach a conclusion about the biologist's claim, the test statistic is compared to the critical value(s) obtained in step (b). If the test statistic falls in the rejection region, the null hypothesis (mean length is the same in fall and winter) is rejected, providing support for the biologist's claim. Conversely, if the test statistic falls outside the rejection region, there is not enough evidence to support the claim, and the null hypothesis cannot be rejected.

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