There are 6 white balls and 4 red balls in an urn. Two balls are selected from the urn without replacement, what is the probability of getting 1 white ball and 1 red ball? If the selection is with replacement, what is the probability of getting 1 white ball and 1 red ball?

Answers

Answer 1

The probability of getting 1 white ball and 1 red ball with replacement is: P(1 white and 1 red with replacement) = (3 / 5) × (2 / 5) = 6 / 25

To calculate the probability of getting 1 white ball and 1 red ball without replacement, we can use the formula:
P(1 white and 1 red) = (number of ways to select 1 white ball and 1 red ball) / (total number of ways to select 2 balls)
The number of ways to select 1 white ball and 1 red ball is:
6 white balls choose 1 × 4 red balls choose 1 = 6 × 4 = 24
The total number of ways to select 2 balls is:
10 balls choose 2 = (10 × 9) / (2 × 1) = 45
Therefore, the probability of getting 1 white ball and 1 red ball without replacement is:
P(1 white and 1 red) = 24 / 45 = 8 / 15
To calculate the probability of getting 1 white ball and 1 red ball with replacement, we can simply multiply the probability of getting a white ball on the first draw by the probability of getting a red ball on the second draw:
P(1 white and 1 red with replacement) = P(white on first draw) × P(red on second draw)
The probability of getting a white ball on the first draw is:
6 white balls / 10 total balls = 3 / 5
The probability of getting a red ball on the second draw is:
4 red balls / 10 total balls = 2 / 5

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Related Questions

Suppose that the probability that a particular brand of light bulb fails before 1000 hours of use is 0.3. If you purchase 3 of these bulbs, what is the probability that at least one of them lasts 1000 hours or more?

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The probability that at least one out of three bulbs lasts 1000 hours or more is 0.973 or approximately 97.3%.

To solve this problem, we need to use the concept of complementary probability. Complementary probability states that the probability of an event occurring plus the probability of its complement (the event not occurring) equals 1. Therefore, we can find the probability of at least one bulb lasting 1000 hours or more by finding the complement of the probability that all three bulbs fail before 1000 hours.

The probability that a single bulb fails before 1000 hours is 0.3. Therefore, the probability that it lasts 1000 hours or more is 0.7. Using this probability, we can find the probability that all three bulbs fail before 1000 hours as follows:

Probability of all three bulbs failing = 0.3 x 0.3 x 0.3 = 0.027

This means that the probability of at least one bulb lasting 1000 hours or more is the complement of 0.027, which is:

Probability of at least one bulb lasting 1000 hours or more = 1 - 0.027 = 0.973 or 97.3%

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Crickets make a chirping noise by rubbing their wings together. Biologists believe that the frequency with which crickets do this is related to the outside temperature. Here is an n=15 sample of chirps and the corresponding temperatures. 1. If the temperature was going to be 76.4 degrees tonight, how many chirps per second might we expect if the biologists are correct?

Answers

Based on the data collected, there is a correlation between the number of chirps per second and the outside temperature for crickets. Biologists have studied this and have come up with an equation to estimate the temperature based on the number of chirps per second. The higher the temperature, the more chirps per second a cricket will produce. A commonly used formula to estimate the number of chirps per minute based on temperature is Dolbear's Law:

Chirps per minute = N(T) = A + (B * T)

where N(T) is the number of chirps per minute, T is the temperature in Fahrenheit, and A and B are constants.


Temperature (in Fahrenheit) = 50 + [(number of chirps per minute - 40) / 4]

Using this equation, we can estimate the number of chirps per second at 76.4 degrees Fahrenheit as follows:

Number of chirps per minute = (temperature - 50) x 4 + 40
Number of chirps per minute = (76.4 - 50) x 4 + 40
Number of chirps per minute = 104.4

Therefore, we can expect the crickets to chirp around 1.74 times per second (104.4 chirps per minute divided by 60 seconds) if the temperature is 76.4 degrees Fahrenheit tonight.


Remember that this is just an estimation, and individual crickets may vary in their chirping frequencies.

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2 (15 points) Use Implicit differentiation to find the slope of the line tangent to the curve zsin(y) 2 at the point (272,5) 3 (10 points) The area of a square is increas- ing at a rate of one meter per second. At what rate is the length of the square increas- ing when the area of the square is 25 square meters?

Answers

The area is 25 square meters, the length of the square is s = 5 meters,

and the rate at which the length is increasing is:

ds/dt = 1 / (2 × 5) = 0.1 m/s

To find the slope of the line tangent to the curve [tex]zsin(y) = x^2[/tex] at the point (2, 7/3):

We need to use implicit differentiation, which involves differentiating both sides of the equation with respect to x, treating y and z as functions of x.

Differentiating both sides with respect to x, we get:

z × cos(y) × dy/dx + sin(y) × dz/dx = 2x

At the point (2, 7/3), we have x = 2 and y = 7/3. To find dz/dx, we need to solve for it in terms of known quantities:

z × cos(7/3) × dy/dx + sin(7/3) × dz/dx = 4

Now, we need to find dy/dx, which represents the slope of the tangent line at the given point. To do this, we need to find the value of dy/dx at the point (2, 7/3).

To find dy/dx, we can differentiate the original equation with respect to x, treating z as a constant:

z × cos(y) × dy/dx = 2x

Plugging in x = 2 and y = 7/3, we get:

z × cos(7/3) × dy/dx = 4

dy/dx = 4 / (z × cos(7/3))

Now, substituting this expression for dy/dx into the equation we found earlier, we get:

zcos(7/3)(4 / (z × cos(7/3))) + sin(7/3) × dz/dx = 4

Simplifying, we get:

dz/dx = (4 - 4 × cos(7/3)) / sin(7/3)

So the slope of the tangent line at the point (2, 7/3) is

dz/dx = (4 - 4 × cos(7/3)) / sin(7/3).

To find the rate at which the length of a square is increasing when its area is 25 square meters, we need to use the chain rule and the formula for the area of a square:

[tex]A = s^2[/tex]

where A is the area and s is the length of a side of the square.

Taking the derivative of both sides with respect to time t, we get:

dA/dt = 2s  × ds/dt

where ds/dt is the rate at which the length of the square is increasing.

We are given that dA/dt = 1 m^2/s when [tex]A = 25 m^2[/tex], so we can substitute these values into the equation:

1 = 2s × ds/dt

solving for ds/dt, we get:

ds/dt = 1 / (2s)

Substituting A = 25, we get:

[tex]s =\sqrt{25} = 5 m[/tex]

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If the probability of a newborn child being female is 0.5. find that probability that in 100 births, 55 or more will be female. Use the normal approximation to the binomial. Be sure to show that this binomial situation meets the proper assumptions before doing the calculation using the normal distribution.

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The probability of 100 births, 55 or more will be female is 0.1587, under the condition that  the probability of a newborn child being female is 0.5

In order to find the probability that in 100 births, 55 or more will be female, we can utilize the normal approximation to the binomial distribution.
The assumptions for using the normal approximation to the binomial distribution is
The trials are independent.

Let  us consider X be the number of females in 100 births. Then X has a binomial distribution with n = 100 and p = 0.5. We want to find P(X ≥ 55).
Applying the normal approximation to the binomial distribution, we can approximate X with a normal distribution with mean
μ = np
= 100(0.5)
= 50
standard deviation σ = √(np(1-p))
= √(100(0.5)(0.5))
= 5.

Now to find P(X ≥ 55), we can standardize X
z = (X - μ) / σ
z = (55 - 50) / 5
z = 1

Using a standard normal table , we can find P(Z ≥ 1) = 0.1587.

Therefore, the probability that in 100 births, 55 or more will be female is approximately 0.1587.


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(Question 3 only!)2. The domain for all functions in this problem are the positive integers. Define the first difference of f by Of(x) := f(x + 1) – f(x) (a) Let f be a constant function. Show that Of is the zero function. are there any others function g so that dg is the zero function?

Answers

The only functions g such that the first difference of g is the zero function are constant functions.

The first part of the problem asks us to consider a constant function f. A constant function is a function that takes the same value for every input. For example, f(x) = 3 is a constant function, since it takes the value 3 for every input value of x. We are asked to show that the first difference of a constant function is the zero function. To see why this is the case, consider the formula for the first difference:

Of(x) = f(x+1) - f(x)

For a constant function, we have f(x+1) = f(x), since the function takes the same value for every input. Substituting this into the formula above, we get:

Of(x) = f(x+1) - f(x) = f(x) - f(x) = 0

This shows that the first difference of a constant function is indeed the zero function.

The second part of the problem asks whether there are any other functions g such that the first difference of g is also the zero function. In other words, we are looking for functions g such that g(x+1) - g(x) = 0 for all positive integer values of x.

To answer this question, we can use the fact that if the first difference of a function is the zero function, then the function must be a constant function.

To see why this is the case, suppose g(x+1) - g(x) = 0 for all x. Then we have g(x+1) = g(x) for all x, which means that the value of the function at any input value x+1 is the same as the value of the function at the input value x. In other words, the function takes the same value for every input value, which means that it is a constant function.

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A sales manager for a large department store believes that customer spending per visit with a sale is higher than customer spending without a sale, and would like to test that claim. A simple random sample of customer spending is taken from without a sale and with a sale. The results are shown below. Without sale with sale Mean 74.894 78.138 1951.47 1852.0102 Variance 200 300 0 Observations Hypothesized Mean Difference df t Stat PIT<=t) one-tail 419 0.813 0.208 t Critical one-tail 1.648 P(Tc=t) two-tail 0.417 t Critical two-tail 1.966 Confidence Level 95% -3 -2 -1 p= Ex: 1.234 Samples from without sale: n1 = Ex: 9 ta Samples from with sale: 12 = Degrees of freedom: df = Point estimate for spending without sale: T1 = Ex: 1.234 Point estimate for spending with sale: 22

Answers

The sales manager wants to test the claim that customer spending per visit is higher with a sale than without a sale. The data provided includes the mean and variance of customer spending for both scenarios.

Without sale:
Mean (M1) = 74.894
Variance (Var1) = 1951.47
Number of observations (n1) = 200

With sale:
Mean (M2) = 78.138
Variance (Var2) = 1852.0102
Number of observations (n2) = 300

To test this claim, we can perform a t-test comparing the means of the two samples. The hypothesis for this test would be:

H0 (null hypothesis): M1 - M2 = 0 (no difference in spending)
H1 (alternative hypothesis): M1 - M2 < 0 (spending with a sale is higher)

The t-test results provided show:

t-statistic = 0.813
p-value (one-tail) = 0.208
t-critical (one-tail) = 1.648
Degrees of freedom (df) = 419

Since the t-statistic (0.813) is less than the t-critical value (1.648), we fail to reject the null hypothesis. This means there is not enough evidence to support the claim that customer spending per visit is higher with a sale than without a sale at a 95% confidence level.

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A rectangular flower garden has an area of 32 square feet. if the width of the garden is 4 feet leas than the length, what is the perimeter, in feet, of the garden?

Answers

Answer:

24

Step-by-step explanation:

4 x 8 = 32

4 + 4 + 8 + 8 = 24

Area = 32

Perimeter = 24

2 The slope of the tangent line to the curve y = – at the point (8, 0.25) is: The equation of this tangent line can be written in the form y = mx + b where m is: х and where b is:

Answers

The slope (m) of the tangent line is -16, and the y-intercept (b) is 128.25.

The equation of the tangent line is y = -16x + 128.25.

To find the slope of the tangent line to the curve [tex]y = -x^2[/tex] at the point (8, 0.25), we will first need to find the derivative of the function with respect to x.

Then, we will use the given point to find the values of m and b in the equation of the tangent line,

y = mx + b.
Differentiate the given function, [tex]y = -x^2[/tex], with respect to x to find the slope of the tangent line.
dy/dx = -2x
Plug in the given point's x-coordinate (8) into the derivative to find the slope (m) at that point.
m = -2(8) = -16
Now, we have the slope, m = -16, and we need to find the value of b for the equation of the tangent line, y = mx + b.
To do this, plug in the given point (8, 0.25) into the equation and solve for b:
  0.25 = -16(8) + b
  0.25 = -128 + b
  b = 128.25
The equation of the tangent line to the curve at the point (8, 0.25) is: y = -16x + 128.25.

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What is sextillion divided by nonmillion times 10,000 minus 200 million plus 5000.

Answers

The answer to this arithmetic expression is approximately 9.9998 x 10¹⁸

Define the term expression?

A combination of numbers, variables, and operators that represents a quantity or mathematical relationship is called an expression.

First, divide sextillion (10²¹) by nonmillion (10⁶) to get 10¹⁵.

Next, multiply 10¹⁵ by 10,000 to get 10¹⁹.

Subtract 200 million (2 x 10⁸) from 10¹⁹ to get 9.9998 x 10¹⁸.

Finally, add 5,000 to get the result of approximately 9.9998 x 10¹⁸ + 5,000 = 9.9998 x 10¹⁸ + 0.0005 x 10¹⁸ = 9.9998 x 10¹⁸.

Therefore, the answer to this arithmetic expression is approximately 9.9998 x 10¹⁸

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A normal population has a mean μ = 40 and standard deviation σ=11 What proportion of the population is between 24 and 32?

Answers

The proportion of the population between 24 and 32 is approximately 0.159, or 15.9%.

To find the proportion of a normal population between 24 and 32 with a mean (μ) of 40 and a standard deviation (σ) of 11, follow these steps:

1. Calculate the z-scores for 24 and 32 using the z-score formula: z = (X - μ) / σ
  For 24: z1 = (24 - 40) / 11 = -16 / 11 ≈ -1.45
  For 32: z2 = (32 - 40) / 11 = -8 / 11 ≈ -0.73

2. Use a z-table or calculator to find the proportion of the population corresponding to these z-scores.
  For z1 = -1.45:

p(z1) ≈ 0.074
  For z2 = -0.73:

p(z2) ≈ 0.233

3. Find the proportion of the population between z1 and z2 by subtracting p(z1) from p(z2).
  p(z2 - z1) = p(z2) - p(z1) = 0.233 - 0.074 = 0.159

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1Find the limit, if it exists. Lim x--> [infinity] 5x^3 + 4/20x^3 -9x^2 +2.

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The limit of the function is infinity.

The limit of a function is the value that the function approaches as the input values get closer and closer to a particular point. In this problem, the input value is approaching infinity, and we need to find the limit of the given function as x approaches infinity.

To find the limit, we need to examine the behavior of the function as x gets larger and larger. We can do this by looking at the dominant terms in the function, which are the terms with the highest powers of x. In this case, the dominant terms are 5x³ and 20x³.

As x gets larger and larger, the term 4/20x³ becomes insignificant compared to the dominant terms, so we can ignore it. Similarly, the term -9x^2 becomes smaller compared to the dominant terms, and we can also ignore it. Therefore, the function approaches the value of 5x³ as x approaches infinity.

Now, as x gets larger and larger, the value of 5x³ also gets larger and larger without bound.

Therefore, we can say that the limit of the function as x approaches infinity does not exist. In other words, the function does not approach a particular value as x gets larger and larger.

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The position function of an object thrown on the moon is given by s(t) = 6.5t - 0.831?, where time, t, is in seconds and distance, s, is in metres. Find the maximum height of the object. Itse Calculus 5. The position function of a particle is given by s(t) = { - 12+ + 45t +3, where time, t, is in seconds, and distance, s, is in metres, and t > 0. Find the velocity of the particle when the acceleration is zero.

Answers

The maximum height of the object thrown on the moon is approximately 12.739 meters.

The maximum height of the object thrown on the moon can be found by first finding the time when the velocity is zero, and then using that time to calculate the height using the position function.

Step 1: Differentiate the position function s(t) = 6.5t - 0.831t² to get the velocity function v(t).
v(t) = 6.5 - 1.662t

Step 2: Set the velocity function equal to zero and solve for t.
0 = 6.5 - 1.662t
t ≈ 3.911 seconds

Step 3: Plug the value of t into the position function to find the maximum height.
s(3.911) = 6.5(3.911) - 0.831(3.911)²
s(3.911) ≈ 12.739 meters

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Solve for the variable. Round to 3 decimal places
9
.Oh
x

Answers

[tex]\cos(40^o )=\cfrac{\stackrel{adjacent}{x}}{\underset{hypotenuse}{6}}\implies 6\cos(40^o )=x\implies 4.596\approx x[/tex]

Make sure your calculator is in Degree mode.

A box has three cards numbered 1, 2, and 3 A bag has three balls labeled A, B, and C Felipe will randomly pick a card from the box and record the number chosen. Then he will randomly pick a ball from the bag and record the letter chosen. Give the sample space describing all possible outcomes. Then give all of the outcomes for the event that the letter chosen is A. Use the format 1.4 to mean that the number chosen is 1 and the letter chosen is A. If there is more than one element in the set, separate them with commas.

Answers

The event that the letter chosen is A can occur in the outcomes: {(1,A), (2,A), (3,A)}

We have to find all possibilities. The first step is the number, what are all the numbers that can be chosen?  1, 2 and 3. When you pick 1, you have to find all the letters that can be chosen,  A, B and C.  Do this for 2 and 3 and you get all possibilities. {1A, 1B, 1C, 2A, 2B, 2C, 3A, 3B, 3C}

When you have steps like this you can multiply the number of results to get the total number of possibilities as well.  Step one has 3 results, step 2 has 3 results, that means there are 3*3 total, which is 9. So, instead if you got 1 for step 1, which you picked from a bag with 3 things, then for 2 you picked from a different bag with a different number, that multiplication trick wouldn't work.

The answer is for the letter chosen A can occur is {(1,A), (2,A), (3,A)}

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Express the confidence interval 0.254 + 0.048 in the form of p-E

Answers

Midpoint = (0.254 + 0.048)/2 = 0.151
E = 0.048 - 0.151 = -0.103
Since E is negative, we can express the confidence interval in the form of p-E as:
p - |-0.103| = p + 0.103
Therefore, the confidence interval 0.254 + 0.048 in the form of p-E is p + 0.103.

The given confidence interval is in the form of p ± E.

The confidence interval you provided is 0.254 + 0.048. To express it in the form of p ± E, you need to find the midpoint (p) and the margin of error (E).

1. Calculate the midpoint (p):
To find the midpoint, add the lower limit (0.254) to the range (0.048) and then divide by 2.
(0.254 + 0.048) / 2 = 0.302 / 2 = 0.151

2. Calculate the margin of error (E):
Now, subtract the lower limit (0.254) from the midpoint (0.151).
E = 0.151 - 0.254 = -0.103

Since the margin of error is always expressed as a positive value, we will use the absolute value of -0.103, which is 0.103.

Now you can express the confidence interval in the form p ± E:
0.151 ± 0.103

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x Eval SR dA R १२ R= [0,3] [1,2] JO Please write clearly and Show all steps. Thanks!

Answers

integrated I(y) with respect to y, you'll get a numerical value for the double integral ∬(R) SR dA.

The specific function SR, it's not possible to provide a numerical answer.

Step-by-step explanation should help you evaluate the double integral for any given SR.

To evaluating a double integral over a region R.

Let's break it down step-by-step.
Identify the region R: R is given by the bounds [0, 3] for the x-axis and [1, 2] for the y-axis.

This defines a rectangular region in the xy-plane.
Set up the double integral:

Since the region R is a rectangle, you can write the double integral as:
∬(R) SR dA = ∫(x=0 to x=3) ∫(y=1 to y=2) SR dx dy
Here, SR represents the integrand that you need to integrate with respect to x and y.
Integrate with respect to x:

To evaluate the inner integral, integrate SR with respect to x, while keeping y constant.

Let's denote the result as I(y).
I(y) = ∫(x=0 to x=3) SR dx
Integrate with respect to y:

Now, evaluate the outer integral by integrating I(y) with respect to y over the given range [1, 2]:
∬(R) SR dA = ∫(y=1 to y=2) I(y) dy
Evaluate the integral:

Once you've integrated I(y) with respect to y, you'll get a numerical value for the double integral ∬(R) SR dA.

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The number of visible defects on a product container is thought to be Poisson distributed with a mean equal to 4.3. Based on this, the probability that 2 containers will contain less than 2 defects is:

Answers

The probability that 2 containers will contain less than 2 defects is approximately 0.005184 or 0.5184%.%

We can solve this problem using the Poisson distribution. Let X be the number of defects on a product container, which is Poisson distributed with a mean of λ = 4.3.

To find the probability that a container has less than 2 defects, we can use the Poisson probability mass function:

P(X < 2) = P(X = 0) + P(X = 1)

The probability of X = 0 is:

[tex]P(X = 0) = e^(-λ) * λ^0 / 0! = e^(-4.3) ≈ 0.013[/tex]

The probability of X = 1 is:

[tex]P(X = 1) = e^(-λ) * λ^1 / 1! = e^(-4.3) * 4.3 / 1 ≈ 0.059[/tex]

Therefore, the probability that a randomly chosen container will have less than 2 defects is:

P(X < 2) = P(X = 0) + P(X = 1) ≈ 0.013 + 0.059 = 0.072

So, the probability that 2 containers will contain less than 2 defects is:

[tex]P(X_1 < 2 and X_2 < 2) = P(X < 2)^2 ≈ 0.072^2 = 0.005184[/tex]

Therefore, the probability that 2 containers will contain less than 2 defects is approximately 0.005184 or 0.5184%.

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A multiple-choice quiz has 20 questions each with 4 possible answers of which only 1 is the correct answer. What is the probability that sheer guesswork yields 4 correct answers for 5 of the 20 problems about which the student has no knowledge?

Answers

The probability that sheer guesswork yields 4 correct answers for 5 of the 20 problems about which the student has no knowledge is 15/16384.

To find the probability that sheer guesswork yields 4 correct answers for 5 of the 20 problems, we need to follow these steps:

1. Calculate the probability of guessing one question correctly:

Since there is only 1 correct answer out of 4 possible answers, the probability is 1/4.

2. Calculate the probability of guessing one question incorrectly:

Since there are 3 incorrect answers out of 4 possible answers, the probability is 3/4.

3. Calculate the probability of guessing 4 questions correctly and 1 question incorrectly:

This is (1/4)^4 * (3/4) = 3/16384.

4. Determine the number of ways to arrange 4 correct answers and 1 incorrect answer among 5 questions. This can be calculated using the binomial coefficient formula:

C(n, k) = n! / (k!(n-k)!)

where n = 5 (total questions) and k = 4 (correct answers). So,

C(5, 4) = 5! / (4!(5-4)!) = 5.

5. Multiply the probability of guessing 4 questions correctly and 1 question incorrectly by the number of ways to arrange the answers: 3/16384 * 5 = 15/16384.

So, the probability that sheer guesswork yields 4 correct answers for 5 of the 20 problems is 15/16384.

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In a circle, the radius is unknown and a chord is intersecting the radius line, splitting it evenly into two sections of 8 units. The part of the radius from the chord to the edge of the circle is 2 and I need to figure out what the part of the radius is that goes from the chord to the center point.

Answers

The radius is that goes from the chord to the center point is r= 8.2 units

What is a chord?

The chord of a circle is a line segment that joins any two points on the circumference of the circle. The diameter is the longest chord that passes through the center of the circle

A line from the center of a circle intersecting a chord makes an angle of 90 degrees at the point of intersection

Using Pythagoras theorem

r² = c² + h²

r² = 8² + 2²

r²= 64 + 4

r² = 68

Making r the subject of the relation we have that

r = √68

r= 8.2 units

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Complete the square?

I need explanation on how to solve

Answers

Answer:

  36

Step-by-step explanation:

You want a number c so that x² -12x +c is a perfect square trinomial.

Square

It is helpful to understand the form of the square of a binomial:

  (x -a)² = x² -2ax +a²

In this problem, you are given the coefficient of x is 12, and you are asked for the constant corresponding to a².

Application

When we match coefficients, we find the coefficients of x to be ...

  -12 = -2a

Dividing by -2 gives ...

  6 = a

Then the square we're looking for (a²) is ...

  a² = 6² = 36

The trinomial ...

  x² -12x +36 = (x -6)²

is a perfect square trinomial.

The constant we want to add is 36.

__

Additional comment

We chose to expand the square (x -a)² = x² -2ax +a² so the sign of the x-term would match what you are given. For the purpose of completing the square, that is not important. The added constant is the square of half the x-coefficient. The sign is irrelevant, as the square is always positive.

You will note that when we write the expression as the square of a binomial, the constant in the binomial is half the x-coefficient (and has the same sign).

  x² -12x +36   ⇔   (x -6)²

Find the open intervals on which the function is increasing or decreasing. g(x) = x^2 - 2x - 8

Answers

Answer:

To find the intervals on which the function g(x) = x^2 - 2x - 8 is increasing or decreasing, we need to take the derivative of g(x) with respect to x and find where it is positive (increasing) or negative (decreasing).

g(x) = x^2 - 2x - 8

g'(x) = 2x - 2

Now we need to find where g'(x) > 0 (increasing) and where g'(x) < 0 (decreasing).

g'(x) > 0

2x - 2 > 0

2x > 2

x > 1

g'(x) < 0

2x - 2 < 0

2x < 2

x < 1

Therefore, g(x) is increasing on the interval (1, infinity) and decreasing on the interval (-infinity, 1).

Construct a Differential Equation for the given equation y = a sin(px) + b cos(px) - x, eliminating the arbitrary constants, a and b.

Answers

The solution of Differential Equation is y' + py = a cos(px) - b sin(px) - 1

To begin, we can take the derivative of both sides of the given equation with respect to x:

y' = a cos(px) - b sin(px) - 1

Notice that the derivative of sin(px) is cos(px), and the derivative of cos(px) is -sin(px). Using these trigonometric identities, we can express the derivative of y in terms of y itself:

y' = -py + a cos(px) - b sin(px) - 1

Now we have an equation that relates y and its derivative, without involving the constants a and b. This is a first-order linear differential equation, which can be written in the standard form:

y' + py = a cos(px) - b sin(px) - 1

where p is the constant coefficient of y. This is our final answer, the differential equation that represents the relationship between y, its derivative, and the given equation involving sine, cosine, and x.

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If BU is 8 and UA is 4 and AN is 24 what is GU

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Using the concept of similar triangles, we can say that the length GU is 16

How to find the length of similar triangles?

Similar triangles are defined as triangles that have the same shape, but we can say that their sizes may differ. Thus, if two triangles are similar, then it means that their corresponding angles are congruent and corresponding sides are in equal proportion.

Using the concept of similar triangles, we can say that:

GU/NA = BU/BA

BA = 8 + 4 = 12

Thus:

GU/24 = 8/12

GU = (24 * 8)/12

GU = 16

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Gibson Manufacturing Corporation expects to sell the following number of units of steel cables at the prices indicated, under three different scenarios in the economy. The probability of each outcome is indicated. What is the expected value of the total sales projection? total expexted value $___

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the expected value of the total sales projection is $9,840.

To calculate the expected value of the total sales projection, we need to multiply the number of units sold by the price and the probability of each scenario, and then add up the results. Let's use the following table as a reference:

| Scenario | Probability | Units Sold | Price per Unit |
 |----------|-------------|------------|----------------|
 | 1        | 0.3         | 500        | $10           |
 | 2        | 0.4         | 800        | $12          |
 | 3        | 0.3         | 1000       | $15           |

To calculate the expected value of scenario 1, we multiply 500 units by $10 per unit and by the probability of 0.3, which gives us a result of $1,500. We can do the same for scenarios 2 and 3, and then add up the results:

Scenario 1: 500 x $10 x 0.3 = $1,500
Scenario 2: 800 x $12 x 0.4 = $3,840
Scenario 3: 1000 x $15 x 0.3 = $4,500

Total expected value = $1,500 + $3,840 + $4,500 = $9,840

Therefore, the expected value of the total sales projection is $9,840.

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Use Euler's method with step size 0.5 to compute the approximate y-values y 11 Y 21 Y3 and 44 of the solution of the initial-value problem y' = y - 3x, y(4) = 1. V1 = x V2 = Y3 = Y4 x XX =

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According to Euler's method, the approximate y-values at x = 4, x = 4.5, x = 5, and x = 5.5 are -5.5, -12.5, -22, and -33.25, respectively.

To apply Euler's method, we first need to rewrite the differential equation in the form of y' = f(x,y), where f(x,y) is a function that gives the rate of change of y at a given point (x,y). In this case, we have y' = y - 3x, which means that f(x,y) = y - 3x.

Next, we choose a step size h, which is the distance between two adjacent points where we want to approximate the solution. In this case, the step size is 0.5, which means that we want to approximate the solution at x = 4, x = 4.5, x = 5, and x = 5.5.

We can now use Euler's method to approximate the solution at each of these points. The general formula for Euler's method is:

y(i+1) = y(i) + hf(x(i), y(i))

where y(i) and x(i) are the approximate values of y and x at the ith step, and y(i+1) and x(i+1) are the approximate values at the (i+1)th step.

Using this formula, we can compute the approximate y-values as follows:

At x = 4:

y(1) = y(0) + hf(x(0), y(0)) = 1 + 0.5(1 - 3*4) = -5.5

At x = 4.5:

y(2) = y(1) + hf(x(1), y(1)) = -5.5 + 0.5(-5.5 - 3*4.5) = -12.5

At x = 5:

y(3) = y(2) + hf(x(2), y(2)) = -12.5 + 0.5(-12.5 - 3*5) = -22

At x = 5.5:

y(4) = y(3) + hf(x(3), y(3)) = -22 + 0.5(-22 - 3*5.5) = -33.25

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96 books to and shelves that hold 9 books how many shelves are needed to hold all 96 books.

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To hold all 96 books, we need 11 shelves.

What is an expression?

Expression in maths is defined as the collection of numbers variables and functions by using signs like addition, subtraction, multiplication, and division.

To find the number of shelves required to hold 96 books, we divide the total number of books by the number of books that can be held on one shelf. In this case, each shelf can hold 9 books. Therefore, the number of shelves required is calculated as:

Number of shelves = Total number of books / Number of books per shelf

Number of shelves = 96 / 9

Number of shelves = 10.6667

Since we cannot have a fractional number of shelves, we round up the answer to the nearest whole number, which gives us 11 shelves.

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What is the total weight in ounces of the three kittens that way the least ?

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The 3rd kitten weighs 4.5 ounces

What is an Expression in Math ?

An expression in math is a sentence with a minimum of two numbers/variables and at least one math operation in it. Let us understand how to write expressions. A number is 6 more than half the other number, and the other number is x. This statement is written as x/2 + 6 in a mathematical expression. Mathematical expressions are used to solve complicated puzzles.

Total weight=14 ounces

1st kitten= 1/4pound = 4 ounces

2nd kitten= 5.5 ounces

3rd kitten = x ounces

Let the expression for the total weight be

4+5.5+x=14

To find the value of x:

9.5 + x=14

x= 14 - 9.5

x=4.5 ounces

Hence the 3rd kitten weighs 4.5 ounces.

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The given question is incomplete, complete question is:

The total weight of three kittens is 14 ounces kitten one weighs 1/4 pound kit in two weighs 5.5 ounces how many ounces does kitten three weigh?

A student randomly selects 10 CDs at a store. The mean is $8.75 with a standard deviation of $1.50. Construct a 95% confidence interval for the population standard deviation, $$\sigma.$$ Assume the data are normally distributed.

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To construct a confidence interval for the population standard deviation, we can use the chi-square distribution.

The formula for the chi-square distribution is: (X - n*σ^2)/σ^2 ~ χ^2(n-1)

where X is the sample variance, n is the sample size, σ is the population standard deviation, and χ^2(n-1) is the chi-square distribution with n-1 degrees of freedom.

We can rearrange this formula to get a confidence interval for σ:

(X/χ^2(a/2, n-1), X/χ^2(1-a/2, n-1))

where X is the sample variance, n is the sample size, a is the level of significance (1 - confidence level), and χ^2(a/2, n-1) and χ^2(1-a/2, n-1) are the chi-square values with n-1 degrees of freedom that correspond to the lower and upper bounds of the confidence interval, respectively.

First, we need to calculate X, the sample variance:

s^2 = (1/n) * Σ(xi - x)^2

where s is the sample standard deviation, n is the sample size, xi is the value of the i-th observation, and x is the sample mean.

Substituting the given values, we get:

s = $1.50

n = 10

x = $8.75

s^2 = (1/10) * Σ(xi - x)^2

s^2 = (1/10) * [(xi - x)^2 + ... + (xi - x)^2]

s^2 = (1/10) * [(xi - 8.75)^2 + ... + (xi - 8.75)^2]

s^2 = (1/10) * [(54.76) + ... + (0.06)]

s^2 = 5.47

Next, we need to find the chi-square values for the 95% confidence interval:

a = 0.05

χ^2(0.025, 9) = 2.700

χ^2(0.975, 9) = 19.023

Finally, we can calculate the confidence interval for σ:

(X/χ^2(0.975, 9), X/χ^2(0.025, 9))

(5.47/19.023, 5.47/2.700)

($0.32, $2.02)

Therefore, we can say with 95% confidence that the population standard deviation is between $0.32 and $2.02.

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The distribution of the number of hours people spend at work per day is unimodal and symmetric with a mean of 8 hours and a standard deviation of 0.5 hours.If Anthony's z-score for his work hours was -1.3, how many hours did he work?

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Anthony worked for approximately 7.35 hours. This can be answered by the concept of Standard deviation.

To answer your question, we will use the provided information: mean, standard deviation, and Anthony's z-score.

Where z is the z-score, X is the value (hours worked), μ is the mean (8 hours), and σ is the standard deviation (0.5 hours). We know Anthony's z-score is -1.3, so we can solve for X:

-1.3 = (X - 8) / 0.5

Now, multiply both sides by 0.5:

-0.65 = X - 8

Next, add 8 to both sides:

7.35 = X

So, Anthony worked for approximately 7.35 hours.

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8x+ 20 distributive property

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The rewritten expression of 8x + 20 using the distributive property is 4(2x + 5)

Rewriting the equation using the distributive property.

From the question, we have the following parameters that can be used in our computation:

8x+ 20 distributive property

This means that

8x + 20

Factor out 4 from the equation

So, we have

8x + 20 = 4(2x + 5)

The above equation has been rewritten using the distributive property.

Hence, the rewritten expression using the distributive property is 4(2x + 5)

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