The probability that in a given week the airline will lose less than 20 suitcases is approximately 0.8186 or 81.86%.
We are given that the distribution of the number of suitcases that get lost each week on a certain route is approximately normal with a mean of [tex]$\mu = 16.9$[/tex] and standard deviation of [tex]$\sigma = 3.3$[/tex]. We need to find the probability that in a given week the airline will lose less than 20 suitcases.
Let X be the number of suitcases lost in a week. Then we need to find P(X < 20).
Using the Z-score formula, we can standardize the variable X as:
[tex]Z=\frac{X-\mu}{\sigma}[/tex]
Substituting the given values, we get:
[tex]Z=\frac{20-16.9}{3.3}=0.91[/tex]
Now, we need to find the probability that Z is less than 0.91. We can use a standard normal distribution table or calculator to find this probability, which is approximately 0.8186.
Therefore, the probability that in a given week the airline will lose less than 20 suitcases is approximately 0.8186 or 81.86%.
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consider the two vectors a and b. you know the magnitudes of these vectors (1 m and 10 m respectively), but you do not know anything about their directions.
If we consider the two vectors a and b with known magnitudes of 1 m and 10 m respectively, but unknown directions, we can still perform some calculations with these vectors. However, without knowing their directions, we cannot determine the resultant vector of their addition or subtraction.
The direction of a vector is a crucial component in determining the overall effect of the vector. Therefore, to fully understand the impact of vectors a and b, we need to know their directions as well.
Based on the information given, you have two vectors: vector a with a magnitude of 1 m and vector b with a magnitude of 10 m. However, since the directions of these vectors are unknown, you cannot determine their specific position, direction, or any further information about their relationship to each other. To analyze or perform operations on these vectors, you would need additional information regarding their directions.
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Problem 4 * (15 pts): Salty "Game" You are given 100 cups of water, each labeled from 1 to 100. Unfortunately, one of those cups is actually really salty water! You will be given cups to drink in the order they are labeled. Afterwards, the cup is discarded and the process repeats. Once you drink the really salty water, this "game" stops.
i. What is the probability that the ith cup you are given has really salty water? Either show the work to calculate your probability or explain why that is the case? ii. Suppose you are to be given 47 cups. On average, will you end up drinking the really salty water? (Hint: Define X to be the number of cups of water you drink, including the really salty water that ends the "game".)
i.the probability that the ith cup you are given has really salty water is 1/(101-i).
ii.on average, you will end up drinking the really salty water when given 47 cups of water.
i. The probability that the ith cup you are given has really salty water depends on the total number of cups and the position of the salty cup. Since there is only one salty cup, the probability that the first cup is salty is 1/100. The probability that the second cup is salty is 1/99 since there are now only 99 cups remaining and still only one salty cup. Similarly, the probability that the ith cup is salty is 1/(101-i). Therefore, i
ii. Let X be the number of cups of water you drink, including the really salty water that ends the "game". Since the probability that the ith cup is salty is 1/(101-i), the expected value of X can be calculated as:
E(X) = 1/100 + 1/99 + 1/98 + ... + 1/55 + 48
where 48 is added because you are guaranteed to drink the really salty water on the 48th cup.
the expected value of X is approximately 49.19 cups. Therefore, on average, you will end up drinking the really salty water when given 47 cups of water.
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For each of the following research scenarios, decide whether the design uses a related sample. If the design uses a a sample, identify whether it uses matched subjects or repeated measures. Suzanne Thomas was interested in how alcoholics with social phobia compared to alcoholics without social phobia. She matched alcoholics without social phobia to those with social phobia on several variables, including age and gender. She then queried participants in each group about the seventy of their alcohol dependence. The design described Lorrin Koran has studied whether antidepressants are effective for treating kleptomania. Suppose that people with kleptomania typically score 72 on the Barratt Impulsiveness Scale. You want to see whether kleptomaniacs who are taking antidepressants score lower on the impulsiveness scale than the population average. The design described.........
The design described in the first scenario uses a related sample with matched subjects.
In the first scenario, Suzanne Thomas is interested in comparing alcoholics with social phobia to alcoholics without social phobia. She matches participants from both groups on several variables, such as age and gender, in order to create comparable groups. This indicates the use of matched subjects design, where participants in one group are matched with participants in another group based on certain criteria to create comparable groups for comparison. Suzanne Thomas then collects data on the severity of alcohol dependence from each group. Therefore, the design described in the first scenario uses a related sample with matched subjects.
In the second scenario, the design described does not involve the use of a related sample. It is mentioned that the researcher wants to compare kleptomaniacs who are taking antidepressants to the population average, without matching or pairing participants.
Therefore, the design in the second scenario does not involve the use of a related sample.
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The variable x represents the number of angelfish Carlos bought and the variable y represents the number of parrotfish he bought.
Carlos bought 405 tropical fish for a museum display. He bought 8 times as many parrotfish as angelfish.
How many of each type of fish did he buy?
Which system of equations models this problem?
The system of equations models this problem:
x + y = 405
y = 8x
The correct answer is an option (c)
Here, the variable x represents the number of angelfish Carlos bought and the variable y represents the number of parrotfish he bought.
Carlos bought 8 times as many parrotfish as angelfish.
From this statement we get an equation,
y = 8x
Carlos bought 405 tropical fish for a museum display.
This means that the total number of fish = 405
so, we get an equation,
x + y = 405
Therefore, the system of equations would be,
x + y = 405
y = 8x
The correct answer is an option (c)
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Let class A is a prerequisite for classes B and C; class D is a prerequisite for classes B and E; class C is a prerequisite for classes E and F. Assign 2-digit numbers to these classes such that these numbers considered as 2-dimensional vectors will be in a partial order relation determined by the component- wise s between these vectors.
To assign 2-digit numbers to these classes such that these numbers considered as 2-dimensional vectors will be in a partial order relation determined by the component-wise s between these vectors, we can follow the given steps.
1. Identify the classes and their prerequisites:
- Class A is a prerequisite for classes B and C
- Class D is a prerequisite for classes B and E
- Class C is a prerequisite for classes E and F
2. Draw a directed graph representing the prerequisites:
```
A -> B -> E -> F
\-> C -> E
D -----^
```
3. Assign numbers to the classes in such a way that the numbers assigned to prerequisite classes are smaller than those assigned to dependent classes. We can use the following numbering scheme:
- Class A: 10
- Class B: 20
- Class C: 30
- Class D: 40
- Class E: 50
- Class F: 60
4. Represent these numbers as 2-dimensional vectors with the first digit representing the horizontal component and the second digit representing the vertical component:
- Class A: (1,0)
- Class B: (2,0)
- Class C: (3,0)
- Class D: (4,0)
- Class E: (5,0)
- Class F: (6,0)
5. Check if these vectors are in a partial order relation determined by the component-wise ≤ between these vectors:
- (1,0) ≤ (2,0) since 1 ≤ 2
- (1,0) ≤ (3,0) since 1 ≤ 3
- (4,0) ≤ (2,0) since 4 ≤ 2
- (4,0) ≤ (5,0) since 4 ≤ 5
- (3,0) ≤ (5,0) since 3 ≤ 5
- (5,0) ≤ (6,0) since 5 ≤ 6
Therefore, the assignment of numbers to these classes and their representation as 2-dimensional vectors satisfy the partial order relation determined by the component-wise ≤ between these vectors.
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A website plans to purchase advertisements in a local newspaper. Their budget is $600, and they plan to run no more than 10 advertisements. An ad in the weekend edition is $75, and an ad in the weekday paper is $50.
Let x be equal to the number of weekend ads, and y be equal to the number of weekday ads. Excluding the boundary lines shown on the graph, place a point inside the region of the graph that satisfies the system.
Excluding the boundary lines shown on the graph, (4 , 6) is the required ordered pair inside the region of the graph satisfies the given system of linear equation.
The budget of a website to advertise in local newspaper is $600 , and they plan to run no more than 10 advertisements. An ad in the weekend edition is $75, and an ad in the weekday paper is $50.
Let x be equal to the number of weekend ads, and y be equal to the number of weekday ads.
We can compute the point inside the region of the graph that satisfies the system of linear equations that can be formed as,
75x + 50y = 600 ___(1)
x + y = 10 ___(2)
Solving the system of linear equations in (1) and (2) as,
From equation (2), x= 10- y
Substituting x in equation (1) with x= 10- y, we get,
75( 10- y )+ 50y = 600
⇒ 750 - 75y + 50y = 600
⇒ 25y = 150
⇒ y = 6
Thus, x = 10 - 6 = 4
Hence (x, y) = (4 , 6) inside the region of the graph satisfies the given system of equation.
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-4² +20 ÷ 5 what is the answer? Explain please!!!!!!
Answer: -12
Step-by-step explanation:
The brick border is 40 cm wide. What is the area of the brick border?
The area of the brick border is: 7.678 m²
What is the area of the composite figure?Using Pythagoras theorem, we can find the diameter of the circle as:
d = √(10² - 6²)
d = √64
d = 8 m
Since the width of the brick border is 40 cm, then converting to meters gives 0.4 m.
Area of semi circle with brick border = ¹/₂(π * (8.8/2)²) = 30.411 m²
Area of semi circle without brick border = ¹/₂(π * (8/2)²) = 25.133 m²
Area of circular part of border = 30.411 m² - 25.133 m²
= 5.278 m²
Area of rectangular part of border = 6 * 0.4 = 2.4 m²
Total area of border = 5.278 m² + 2.4 m²
= 7.678 m²
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Below is a list of the criteria that would prove the quadrilateral is a square
a) Opposite sides are parallel
b) 4 congruent sides
c) 4 right angles
Prove each of the criteria listed. Show all work.
The criteria prove that the quadrilateral is not a square
Selecting the criteria that would prove the quadrilateral is a squareFrom the question, we have the following parameters that can be used in our computation:
a) Opposite sides are parallelb) 4 congruent sidesc) 4 right anglesFor parallel opposite sides, we have
A = (-12, 5), B = (-7, 12), C = (5, 7) and D = (0, 0)
Calculate the slopes of opposite sides
So, we have
AD = (0 - 5)/(0 + 12) = -5/12
BC = (12 - 7)/(-7 - 5) = -5/12
AC = (7 - 5)/(5 + 12) = 2/17
BD = (12 - 0)/(-7 - 0) = -12/7
The sides AC and BD are not parallel
For the congruent sides, we have
AD = √[(0 - 5)² + (0 + 12)²] = 13
BC = √[(12 - 7)² + (-7 - 5)²] = 13
AC = √[(7 - 5)² + (5 + 12)²] = 17.11
BD = √[(12 - 0)² + (-7 + 0)²] = 13.89
The four sides are not parallel
For the right angles
The slopes calculated do not show that opposite sides have opposite reciprocals as their slopes
So, the four sides are not right angled
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‼️WILL MARK BRAINLIEST‼️
The theoretical probability that the coin will land tails up is 1/2 = 0.5 or 50%.
How to calculate a probability?A probability is calculated as the division of the desired number of outcomes by the total number of outcomes in the context of a problem/experiment.
In this problem, we have a fair coin, meaning that in any throw, the coin is equally as likely to land in one of the two outcomes, which are heads up or tails up.
Hence the probability is given as follows:
p = 1/2 = 0.5 = 50%.
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Which of the following is false (a) A chi-square distribution with k degrees of freedom is more right-skewed than a chi-square distribution with k + 1 degrees of freedom. (b) A chi-square distribution never takes negative vales (e) The degrees of freedom for a chisquare test are deter- (d) P(X'>10) İs greater when clf k + 1 than whet te) The area under a chi-square density curve is alk mined by the sample size df alwrv equal to
The false statement is (a) A chi-square distribution with k degrees of freedom is more right-skewed than a chi-square distribution with k + 1 degrees of freedom.
In fact, as the degrees of freedom increase, the chi-square distribution becomes more symmetric and approaches a normal distribution.
The other statements are true: (b) A chi-square distribution never takes negative values, (c) The degrees of freedom for a chi-square test are determined by the number of categories being compared minus one, (d) P(X'>10) is greater when the degrees of freedom are k + 1 than when they are k, and (e) The area under a chi-square density curve is always equal to 1 and is determined by the sample size and degrees of freedom.
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Random samples of 6 male students and 14 female students were asked how many hours a week they exercise with the following results: Males: Sample mean is 5.24 and sample standard deviation is 3.01. Females: Sample mean is 4.22 and sample standard deviation is 2.33. (a) Find a 95% confidence interval for true mean hours of exercise per week in each group. Males. ( ), ( ) Females.( ), ( )
A 95% confidence interval for the true mean hours of exercise per week is (2.08, 8.40) for males and (2.95, 5.49) for females
To find a 95% confidence interval for the true mean hours of exercise per week for each group, we will use the following formula:
[tex]Confidence interval = Sample mean± (t \frac{Sample standard deviation}{\sqrt{n} } )[/tex]
where t is the t-score based on the degrees of freedom and the desired confidence level (95%).
(a) Males:
1. Determine the t-score: For a 95% confidence interval and 6 - 1 = 5 degrees of freedom, the t-score is approximately 2.571.
2. Calculate the margin of error: [tex]2.571 (\frac{3.01}{\sqrt{6} }) = 3.16[/tex]
3. Find the confidence interval: 5.24 ± 3.16 = (2.08, 8.40)
Males: (2.08, 8.40)
(b) Females:
1. Determine the t-score: For a 95% confidence interval and 14 - 1 = 13 degrees of freedom, the t-score is approximately 2.160.
2. Calculate the margin of error: [tex]2.160 (\frac{2.33}{\sqrt{14} }) = 1.27[/tex]
3. Find the confidence interval: 4.22 ± 1.27 = (2.95, 5.49)
Females: (2.95, 5.49)
In conclusion, a 95% confidence interval for the true mean hours of exercise per week is (2.08, 8.40) for males and (2.95, 5.49) for females.
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Solve the differential equation using either Taylor or Frobenius
Series Solution."
(iii) (1-x2)y''-2xy'+2y=0
y(x) = a_0 (1 - x^2/3 + 2x^4/45 - 8x^6/315 + ...)
that the solution is only valid for |x| < 1, since the differential equation is singular at x = ±1.
We can solve the given differential equation using the Frobenius method, by assuming that the solution can be represented as a power series:
y(x) = ∑(n=0)^(∞) a_n x^n
Differentiating the series twice, we get:
y'(x) = ∑(n=1)^(∞) n a_n x^(n-1)
y''(x) = ∑(n=2)^(∞) n(n-1) a_n x^(n-2)
Substituting these into the differential equation, we get:
(1-x^2) ∑(n=2)^(∞) n(n-1) a_n x^(n-2) - 2x ∑(n=1)^(∞) n a_n x^(n-1) + 2 ∑(n=0)^(∞) a_n x^n = 0
Simplifying and shifting the indices, we get:
∑(n=0)^(∞) [(n+2)(n+1) a_{n+2} - 2n a_n + 2a_n] x^n = 0
This gives us the following recurrence relation for the coefficients:
(n+2)(n+1) a_{n+2} = 2n a_n - 2a_n
Simplifying further, we get:
a_{n+2} = - (2n/(n+2)(n+1)) a_n
Starting with n = 0, we can compute the coefficients a_n in terms of a_0:
a_2 = - 2/3 a_0
a_4 = 2/15 a_2 = - 4/45 a_0
a_6 = - 2/21 a_4 = 8/315 a_0
a_8 = 2/99 a_6 = - 16/3465 a_0
...
The general form of the solution is then:
y(x) = a_0 (1 - x^2/3 + 2x^4/45 - 8x^6/315 + ...)
that the solution is only valid for |x| < 1, since the differential equation is singular at x = ±1.
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The figure below shows a circle with center
�
X, diameter
�
�
‾
IL
, secants
�
�
↔
IR
and
�
�
↔
IP
, and tangent
�
�
↔
LU
. Which of the angles must be right angles? Select all that apply.
Based on the inscribed angle theorem and the tangent theorem, the angles that must be right angles are: ∠XLS, ∠LEG, ∠LTG, and ∠XLQ.
Since, The theorem states that an inscribed angle of a semicircle equals 90°.
And, According to the tangent theorem, a tangent is at right angle at the point of tangency with the radius.
Hence, Based on these theorems, the angles that must be right angles are:
∠XLS, ∠LEG, ∠LTG, and ∠XLQ.
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A serving of crackers has 1. 5 grams of fat. How many grams of fat are in 3. 85 servings
The approximately grams is 5.78 of fat in 3.85 servings of crackers. The nutritional information on food packages typically lists the amount of nutrients, including fat, in grams per serving.
We used grams in this calculation to measure the amount of fat in the serving of crackers and in the total number of servings.
To determine the grams of fat in 3.85 servings of a food item, you would need to know the amount of fat in one serving of that food and multiply it by 3.85.
For example, if one serving of the food contains 10 grams of fat, then the total amount of fat in 3.85 servings would be:
10 grams of fat/serving x 3.85 servings = 38.5 grams of fat
So, there would be 38.5 grams of fat in 3.85 servings of that food item. Please note that the actual amount of fat may vary depending on the specific food item and its nutritional content.
It's always best to refer to the nutrition label or consult a reliable source for accurate and up-to-date nutritional information
To calculate the total grams of fat in 3.85 servings of crackers, you can multiply the amount of fat in one serving by 3.85.
One serving of crackers has 1.5 grams of fat.
Total grams of fat in 3.85 servings of crackers = 1.5 grams of fat per serving x 3.85 servings
= 5.78 grams of fat.
Therefore, there are approximately 5.78 grams of fat in 3.85 servings of crackers.
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I need the answer in 30 mins or less!! 45 points!!!
Which point is Coplanar with points A and C?
1. A
2. B
3. C
4. D
Answer: B
Step-by-step explanation: Coplanar= in the same plane
Given a chord AB that is parallel to a chord CD, prove that if two chords of a circle are parallel, the two arcs between the chords are congruent.Prove that arc AC is congruent to arc BD.
To prove that arc AC is congruent to arc BD, we will follow these steps:
1. Draw a circle with center O, and draw chords AB and CD parallel to each other. Since, angles AOB and COD are congruent, their intercepted arcs must also have the same measure.
To prove that arc AC is congruent to arc BD, we need to use the fact that AB is parallel to CD.
First, we can draw a diagram of the circle with the chords AB and CD intersecting at a point E. Since AB is parallel to CD, we know that angle AEB is congruent to angle CED (corresponding angles).
Next, we can draw radii from the center of the circle to the endpoints of the chords, creating right triangles AOE and COF. Since the radii of a circle are congruent, we know that AO is congruent to CO and OE is congruent to OF.
Using these congruences and the fact that angle AOE is congruent to angle COF (both are right angles), we can apply the Side-Angle-Side (SAS) congruence theorem to triangle AOE and triangle COF. Therefore, we can conclude that triangle AOE is congruent to triangle COF.
Now, we can use the congruence of triangle AOE and triangle COF to show that arc AC is congruent to arc BD. Angle AOE is congruent to angle COF (by the congruence of the triangles) and arc AC is the measure of twice angle AOE while arc BD is the measure of twice angle COF. Therefore, we can conclude that arc AC is congruent to arc BD.
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(5) Solve the IVP dY dt - [] 70- = [3] [10 -1 5 8 Y, Y(0) =
The solution to the IVP is Y(t) = [ -5e^(4t) - 5e^(-t); 3e^(4t) - e^(-t)] with initial condition Y(0) = [5; 3].
To solve the IVP dY/dt - [3 10; -1 5] Y = [8; 0] with initial condition Y(0) = [5; 3], we can use the matrix exponential method.
First, we need to find the eigenvalues and eigenvectors of the matrix A = [3 10; -1 5]. We can do this by solving the characteristic equation det(A - λI) = 0, where I is the identity matrix and λ is the eigenvalue.
det(A - λI) = (3-λ)(5-λ) + 10 = λ^2 - 8λ + 25 = (λ-4)^2
So, the eigenvalue is λ = 4 with multiplicity 2. To find the eigenvectors, we need to solve (A - λI)x = 0 for each eigenvalue.
For λ = 4, we have
(A - λI)x = [3 10; -1 5 - 4] [x1; x2] = [0; 0]
which gives us the equation 3x1 + 10x2 = 0 and -x1 + x2 = 0. Solving these equations, we get x1 = -10/3 and x2 = 1. So, the eigenvector corresponding to λ = 4 is [ -10/3; 1].
Since we have repeated eigenvalues, we need to find the generalized eigenvector. We can do this by solving (A - λI)x = v, where v is any vector that is not an eigenvector.
Let v = [1; 0], then (A - 4I)x = [1; 0] gives us 3x1 + 10x2 = 1 and -x1 + x2 = 0. Solving these equations, we get x1 = -2/3 and x2 = 1/3. So, the generalized eigenvector corresponding to λ = 4 is [ -2/3; 1/3].
Now, we can form the matrix P = [ -10/3 -2/3; 1 1/3] and the diagonal matrix D = [4 1; 0 4], where the diagonal entries are the eigenvalues.
Using the formula Y(t) = e^(At) Y(0), we can write Y(t) as
Y(t) = P e^(Dt) P^(-1) Y(0)
= [ -10/3 -2/3; 1 1/3] [ e^(4t) 0; 0 e^(4t)] [ -1/2 1/2; 2 1] [5; 3]
= [ -5e^(4t) - 5e^(-t); 3e^(4t) - e^(-t)]
Therefore, the solution to the IVP is Y(t) = [ -5e^(4t) - 5e^(-t); 3e^(4t) - e^(-t)] with initial condition Y(0) = [5; 3].
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yesterday, eric had m baseball cards. today, he got 10 more. using m , write an expression for the total number of baseball cards he has now. as an equation
Answer:
m+10
Step-by-step explanation:
We know that yesterday, eric had m baseball cards. Thus, we can denote that the total number of baseball cards he had yesterday is m.
We know that he got 10 more today. Since he is receiving more, he is adding to his collection. Since he is getting more, we have to add 10 to how many baseball cards he used to have. He used to have m baseball cards, so today he has m+10 baseball cards.
This is the answer as we cannot combine 10 and m. Since m is a variable with no set value as of now, and 10 is a constant number that has no variable, they are not like terms and cannot be added. So the answer is m+10 baseball cards.
I hope this helped.
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a car's wheels are 24 in. in diameter. how far (in mi) will the car travel if its wheels revolve 10,000 times without slipping? (round your answer to two decimal places). incorrect: your answer is incorrect. mi
The car will travel approximately 11.829 if its wheels revolve 10,000 times without slipping.
First, we need to find the circumference of the wheel, which is given by the formula:
circumference = pi x diameter
where pi is approximately equal to 3.14.
So, the circumference of the wheel = 3.14 x 24 = 75.36 inches.
Next, we need to find the distance traveled by the car in one revolution of the wheel, which is equal to the circumference of the wheel.
Distance traveled by the car in one revolution of the wheel = 75.36 inches = 0.0011829 miles (1 inch = 0.000015783 miles).
Therefore, the distance traveled by the car in 10,000 revolutions of the wheel = 0.0011829 x 10,000 = 11.829 miles.
Rounding this answer to two decimal places, we get the final answer as approximately 11.829.
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A soccer dome shaped like a hemisphere has a volume of 450,000 m^3. What is the area of its field? Use 3. 14 for pi
As per the given values, the area of the hemisphere is 45065.41 m³
Volume = 450000 m³
Calculating the volume of the hemisphere -
Volume = 2/3 πr³
Substituting the values -
450,000 =2/3 x 3.14 x r³
Solving for r³
r³ = 450000 x 3/(2 x 3.14)
r³ = 214968.1
r = √214968.1
r = 59.9
Calculating the area of the hemisphere -
Area = 4πr²
Substituting the values -
Area = 4 x 3.14 x (59.9)²
= 12.56 x (59.9)²
= 45065.41
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Use the 240 values sorted in the frequency table to find the test statistic x².
A.236.000
B.6.500
C.0.698
D.541.625
Answer: B. 6.500
Step-by-step explanation: I just took the quiz.
The probability of an intersection of two events is computed using the
a. subtraction law
b. division law
c. multiplication law
d. addition law
The correct answer is (c) multiplication law. This law helps us calculate the probability of two independent events occurring together by simply multiplying their individual probabilities.
The probability of an intersection of two events is computed using the multiplication law. The multiplication law states that the probability of two independent events occurring together is the product of their individual probabilities. For example, if event A has a probability of 0.4 and event B has a probability of 0.3, then the probability of both events A and B occurring together is 0.4 x 0.3 = 0.12.
The probability of an intersection of two events is computed using the multiplication law. This law states that the probability of two independent events occurring simultaneously is equal to the product of their individual probabilities. Mathematically, it can be represented as:
P(A ∩ B) = P(A) × P(B)
Where P(A ∩ B) is the probability of the intersection of events A and B, P(A) is the probability of event A occurring, and P(B) is the probability of event B occurring. Remember that this law is only applicable if the events are independent, meaning that the occurrence of one event does not affect the probability of the other event. If the events are not independent, you would need to use conditional probability.
It is important to note that the multiplication law applies only when the two events are independent, meaning that the occurrence of one event does not affect the probability of the other event occurring. If the events are dependent, then the multiplication law cannot be used and the calculation becomes more complex.
In contrast, the addition law is used to compute the probability of the union of two events, meaning either one or the other event occurs or both events occur. The subtraction law and division law are not typically used for computing probabilities of intersections or unions, but instead are used in other probability calculations such as conditional probability or Bayes' theorem.
In summary, the correct answer is (c) multiplication law. This law helps us calculate the probability of two independent events occurring together by simply multiplying their individual probabilities.
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The temperature during a very cold day is recorded every 2 hours for 12 hours. The data are given in the table below.
Time (hours) 6 8 10 12 14 16 18
Temperature (℃) 3.88 6.48 9.37 10.42 8.79 4.96 0.69
Which polynomial models these data?
C(x) = 0.167x^3 + 2.76x^2 - 16.91x + 38.87
C(x) = 0.0034x^4 - 0.167x^3 + 2.76x^2 - 16.91x + 38.87
C(x) = 0.167x^3 + 2.76x^2 - 16.91x
C(x) = 0.0034x^4 - 0.167x^3 + 2.76x^2 - 16.91x
The polynomial that models the data is:
B. C(x) = 0.0034x^4 - 0.167x^3 + 2.76x^2 - 16.91x + 38.87
How to solveWith seven data points at our disposal, it is possible to utilize a polynomial of degree six, which can precisely represent the given data.
However, using a simpler model could be advantageous when applied to other datasets.
The provided information can be utilized to formulate a system of equations using a fourth-degree polynomial. The following data will serve as each equation:
• At x=6: the output value is 3.88,
• At x=8: the output value is 6.48,
• At x=10: the output value is 9.37
• At x=12: the output value is 10.42,
• At x=14: the output value is 8.79,
• At x=16: the output value is 4.96,
• At x=18: the output value is 0.69,
The problem's solution can be attained through utilizing matrix algebra.
a = 0.0034,
b = -0.167,
c = 2.76,
d = -16.91,
e = 38.87
This results in the following expression that represents the data:
C(x) = 0.0034x^4 - 0.167x^3 + 2.76x^2 - 16.91x + 38.87
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3 Given an initial guess Do the next approximation to the solution of 2-83-80 I=2-02 using Newton's method is SC1=30-7-260-1) Answer Ο Α True О В False
The multiple choice question is "Ο Α True", which means "Option A is true".
Recall that Newton's method involves the iterative formula:
x_(n+1) = x_n - f(x_n)/f'(x_n)
where f(x) is the function we want to solve for, and f'(x) is its derivative.
In this case, we have f(x) = 2x^3 - 83x^2 - 80x - 2.02 and f'(x) = 6x^2 - 166x - 80. So, using the initial guess of x_0 = 3, we have:
x_1 = x_0 - f(x_0)/f'(x_0)
= 3 - (2(3)^3 - 83(3)^2 - 80(3) - 2.02)/(6(3)^2 - 166(3) - 80)
= 2.838
Therefore, the next approximation to the solution using Newton's method with an initial guess of x_0 = 3 is x_1 = 2.838.
The answer to the multiple choice question is "Ο Α True", which means "Option A is true".
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please please please i’m i’m so much trouble for not having this done
define a please w/ explanation
Answer:
do this solve in calc (a+1)^2+(a+3)^2=(a+5)^2
Values are uniformly distributed between 193 and 244.
*(Round your answers to 3 decimal places, e.g. 0.253.)
**(Round your answer to 1 decimal place, e.g. 1.2.)
(a) What is the value of f(x) for this distribution?
(b) Determine the mean of this distribution:
(c) Determine the standard deviation of this distribution:
(d) Probability of (x > 227) =
(e) Probability of (202 <= x <= 219) =
(f) Probability of (x <= 222) =
a) The value of f(x) is 1/51, for 193 ≤ x ≤ 244
b) The mean is 218.5
c) σ = = 17.65
d) P(x > 227) = 0.333
e) P(202 ≤ x ≤ 219) = 0.333
f) P(x ≤ 222) = 0.569
We have,
a)
Since the distribution is uniform, the probability density function (PDF) is constant within the range [193, 244] and zero elsewhere.
The PDF is given by:
f(x) = 1 / (244 - 193) = 1/51, for 193 ≤ x ≤ 244
b)
The mean of a uniform distribution is the average of the minimum and maximum values, so we have:
mean = (193 + 244) / 2 = 218.5
c)
The standard deviation of a uniform distribution is given by:
σ = (b - a) / √12
where a and b are the minimum and maximum values, respectively. Substituting in the values given, we get:
σ = (244 - 193) / √12 = 17.65
d)
The probability of x > 227 is the area under the PDF to the right of x = 227. Since the PDF is constant, this is simply the proportion of the total range that lies to the right of 227:
P(x > 227) = (244 - 227) / (244 - 193) = 17 / 51 ≈ 0.333
e)
The probability of 202 ≤ x ≤ 219 is the area under the PDF between x = 202 and x = 219. This is:
P(202 ≤ x ≤ 219) = (219 - 202) / (244 - 193) = 17 / 51 ≈ 0.333
f)
The probability of x ≤ 222 is the area under the PDF to the left of x = 222. This is:
P(x ≤ 222) = (222 - 193) / (244 - 193) = 29 / 51 ≈ 0.569
Thus,
a) f(x) = 1/51, for 193 ≤ x ≤ 244
b) mean = 218.5
c) σ = = 17.65
d) P(x > 227) = 0.333
e) P(202 ≤ x ≤ 219) = 0.333
f) P(x ≤ 222) = 0.569
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determine the type of the function: f(x)=x⁵+x
odd or even
i need help quickly please
The simplified expression is (8x² - 7x - 4) / [(4x + 1)(x - 1)(4x - 1)].
We have,
To simplify the expression
2(x - 1) / (4x² - 3x - 1) + (x + 2) / (4x² + 7x - 2)
we need to find the least common denominator (LCD) of the two denominators:
(4x² - 3x - 1) and (4x² + 7x - 2).
To find the LCD, we need to factor in both denominators.
We can factor the first denominator as:
4x² - 3x - 1 = (4x + 1)(x - 1)
We can factor the second denominator by using the quadratic formula or by factoring by grouping:
4x² + 7x - 2 = (4x - 1)(x + 2)
Therefore, the LCD is the product of the factors of both denominators, with each factor appearing once at most:
LCD = (4x + 1)(x - 1)(4x - 1)(x + 2)
To get each fraction to have the same denominator, we need to multiply the numerator and denominator of the first fraction by (4x - 1) and the numerator and denominator of the second fraction by (x - 1):
2(x - 1)(4x - 1) / [(4x + 1)(x - 1)(4x - 1)] + (x + 2)(x - 1) / [(4x + 1)(x - 1)(4x - 1)]
Now that both fractions have the same denominator, we can add the numerators and simplify:
[2(x - 1)(4x - 1) + (x + 2)(x - 1)] / [(4x + 1)(x - 1)(4x - 1)]
Multiplying out the numerator and simplifying, we get:
[8x^2 - 7x - 4] / [(4x + 1)(x - 1)(4x - 1)]
Therefore,
The simplified expression is (8x² - 7x - 4) / [(4x + 1)(x - 1)(4x - 1)]
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Problem 1. Let (X,d) be a metric space. For any x ∈ X, show that x ∈ iso(X) (that is, x is an isolated point of X) if and only if {x} is open
in (X, d). (In (Y,d), a metric space, y is an isolated point of S if there exists an open ball around y which contains no other points of S.)
To show that x ∈ iso(X) if and only if {x} is open in (X, d)
We need to prove both directions: (1) if x ∈ iso(X), then {x} is open in (X, d) and (2) if {x} is open in (X, d), then x ∈ iso(X).
(1) If x ∈ iso(X), then x is an isolated point of X. By definition, this means there exists an open ball B(x, r) centered at x with radius r > 0 such that B(x, r) ∩ X = {x}. Now, consider the set {x}. To show that {x} is open in (X, d), we need to show that for each point x in {x}, there exists an open ball centered at x that is entirely contained in {x}. Since B(x, r) ∩ X = {x}, it follows that B(x, r) ⊆ {x}. Thus, {x} is open in (X, d).
(2) If {x} is open in (X, d), then for each point x in {x}, there exists an open ball B(x, r) centered at x with radius r > 0 such that B(x, r) ⊆ {x}. In other words, B(x, r) ∩ X = {x}. This means that no other points of X are in B(x, r), which is the definition of an isolated point. Therefore, x ∈ iso(X).
In conclusion, x ∈ iso(X) if and only if {x} is open in (X, d).
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