Answer:
The height of the cylinder is 10 cm.
Step-by-step explanation:
1. The volume of a cylinder is given by
-V = pi r^2 h where r is the radius and h is the height
- 90 pi = pi r^2 h
2. We know the radius is 3
-90 pi = pi (3)^2 h
-90 pi = 9 pi h
3. Divide each side by 9 pi
- 90 pi /9 pi = 9 pi h / 9pi
- 10 =h
The height of the cylinder is 10 cm.
Given the following vertex set and edge set (assume bidirectional edges):V = {1, 2, 3, 4, 5, 6, 7, 8, 9, 10}E = {{1,6}, {1, 7}, {2,7}, {3, 6}, {3, 7}, {4,8}, {4, 9}, {5,9}, {5, 10}1) Draw the graph with all the above vertices and edges.
The graph of the vertex set and edge set is illustrated below.
The given vertex set V = {1, 2, 3, 4, 5, 6, 7, 8, 9, 10} is a collection of 10 nodes. The edge set E = {{1,6}, {1, 7}, {2,7}, {3, 6}, {3, 7}, {4,8}, {4, 9}, {5,9}, {5, 10}} contains 9 pairs of vertices, representing the connections between them.
To draw the graph, we can represent the vertices as circles or dots, and draw lines between the vertices that are connected by an edge. In this case, we can draw 10 circles or dots, one for each vertex, and connect the vertices that are connected by an edge using lines.
Using this method, we can draw the graph as follows:
In this graph, each vertex is represented by a numbered circle, and each edge is represented by a line connecting two vertices. For example, edge {1,6} connects vertex 1 and vertex 6.
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In spite of the potential safety hazards, some people would like to have an Internet connection in their car. A preliminary survey of adult Americans has estimated this proportion to be somewhere around 0. 30.
Required:
a. Use the given preliminary estimate to determine the sample size required to estimate this proportion with a margin of error of 0. 1.
b. The formula for determining sample size given in this section corresponds to a confidence level of 95%. How would you modify this formula if a 99% confidence level was desired?
c. Use the given preliminary estimate to determine the sample size required to estimate the proportion of adult Americans who would like an Internet connection in their car to within. 02 with 99% confidence.
The sample size required to estimate the proportion of adult Americans who would like an Internet connection in their car with a margin of error of 0.1, a confidence level of 95%, and a preliminary estimate of 0.30 needs to be determined.
Additionally, the modification needed to calculate the sample size for a 99% confidence level is discussed, along with the calculation for estimating the proportion within 0.02 with 99% confidence.
To determine the sample size required to estimate the proportion with a margin of error of 0.1 and a confidence level of 95%, the given preliminary estimate of 0.30 is used. By plugging in the values into the formula for sample size determination, we can calculate the sample size needed.
To modify the formula for a 99% confidence level, the critical value corresponding to the desired confidence level needs to be used. The formula remains the same, but the critical value changes. By using the appropriate critical value, we can calculate the modified sample size for a 99% confidence level.
For estimating the proportion within 0.02 with 99% confidence, the preliminary estimate of 0.30 is again used. By substituting the values into the formula, we can determine the sample size required to achieve the desired level of confidence and margin of error.
Calculating the sample size ensures that the estimated proportion of adult Americans wanting an Internet connection in their car is accurate within the specified margin of error and confidence level, allowing for more reliable conclusions.
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if r(t) = 6t, 5t2, 5t3 , find r'(t), t(1), r''(t), and r'(t) × r ''(t).
The first derivative of r(t), denoted as r'(t), is equal to (6, 10t, 15t^2). The second derivative of r(t), denoted as r''(t), is equal to (0, 10, 30t). The cross product of r'(t) and r''(t), denoted as r'(t) × r''(t), is equal to (-150t^2, 0, -10).
To find the first derivative of r(t), we differentiate each component of r(t) with respect to t. For r(t) = (6t, 5t^2, 5t^3), we have r'(t) = (d(6t)/dt, d(5t^2)/dt, d(5t^3)/dt) = (6, 10t, 15t^2).
To find t(1), we substitute t = 1 into the expression for r(t), giving r(1) = (6(1), 5(1)^2, 5(1)^3) = (6, 5, 5).
To find the second derivative of r(t), we differentiate each component of r'(t) with respect to t. For r'(t) = (6, 10t, 15t^2), we have r''(t) = (d(6)/dt, d(10t)/dt, d(15t^2)/dt) = (0, 10, 30t).
Finally, to find the cross product of r'(t) and r''(t), we compute the determinant of the matrix formed by the unit vectors i, j, and k, and the vectors r'(t) and r''(t). The cross product is given by r'(t) × r''(t) = (-150t^2, 0, -10).
In summary, we have found r'(t) = (6, 10t, 15t^2), t(1) = (6, 5, 5), r''(t) = (0, 10, 30t), and r'(t) × r''(t) = (-150t^2, 0, -10).
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The area of Iowa is 56, 272 square miles. What is the ratio of pigs and hogs to square miles?
the area of Iowa is 56,272 square miles and the question is asking us to find out the ratio of pigs and hogs to square miles. So, let the number of pigs and hogs in Iowa be 'x'.
Now, as per the question, we can form the equation as:x:56,272 = pigs and hogs to square miles To find out the value of x, we need to know the actual ratio of pigs and hogs to square miles.
But, it has not been provided in the question. Hence, we cannot find the value of x. Further more, the question asks to answer in 250 words. But, the answer is very short and we cannot write 250 words for this question.
Therefore, it can be concluded that the given question is incomplete.
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Amelia and her dad are making snack mix and lemonade for their camping trip. They have decided to prepare 18 cups of snack mix and 90 ounces of lemonade for the trip. Amelia and her dad are making snack mix and lemonade for their camping trip. They have decided to prepare 18 cups of snack mix and 90 ounces of lemonade for the trip.
How many cups of Cheerios will Amelia need to make 18 cups of her snack mix recipe?
Amelia will need 3.6 cups of Cheerios to make 18 cups of her snack mix recipe.
Amelia's snack mix recipe is, so it's impossible to determine the exact amount of Cheerios she'll need without more information.
Assuming that Cheerios are a main ingredient in the snack mix, it's possible to estimate the amount based on some assumptions and calculations.
Let's assume that the snack mix recipe includes five different ingredients, including Cheerios, nuts, pretzels, raisins, and chocolate chips, and each ingredient is present in equal amounts. In other words, each ingredient makes up 20% of the total mix.
Amelia is making 18 cups of snack mix, she'll need 3.6 cups of each ingredient.
Let's assume that Cheerios are the only dry ingredient in the recipe, while the other ingredients are wet and won't affect the amount of Cheerios needed.
Amelia will need 3.6 cups of Cheerios to make 18 cups of snack mix.
If the recipe calls for more or less Cheerios, or if there are other dry ingredients involved, the amount of Cheerios needed could be different.
It's important to have the exact recipe in order to determine the precise amount of Cheerios needed.
The actual amount may vary depending on the recipe.
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These two quadrilaterals are similar. What is the size, in degrees, of angle x? 3 cm 7 cm 61° 4 cm 6.5 cm 14 cm 6 cm x 8 cm 13 cm
The size of angle x in degrees while considering the diagram of similar quadrilaterals is
x = 61 degrees
What are similar polygons?This is a term used in geometry to mean that the respective sides of the polygons are proportional and the corresponding angles of the polygon are congruent
In other words the sides are related in the sense of proportionality while the angles are equal to each other.
Having this in mind we can say that the corresponding angles of each position are equal and x = 61 degrees
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Find the ordered pair that corresponds to the given pair of parametric equations and value of t.
x=4t+5, y=−3t+1; t=3
Answer:
We are given the parametric equations:
x = 4t + 5
y = -3t + 1
And we are asked to find the ordered pair corresponding to t = 3.
Substituting t = 3 in the given equations, we get:
x = 4(3) + 5 = 12 + 5 = 17
y = -3(3) + 1 = -9 + 1 = -8
Therefore, the ordered pair corresponding to t = 3 is (17, -8).
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How to solve this? Please help.
Answer:
[tex] \frac{135 \times {10}^{ - 9} }{.0005 \times {10}^{ - 5} } = \frac{135 \times {10}^{ - 9} }{5 \times {10}^{ - 9} } = 27 = \frac{27}{1} [/tex]
The ratio of the size of cell A to the size of cell B is 27, or 27/1.
Paul atiende la papeleria los miercoles en el paquete de crayones caben 24, y existen 36 colores distintos. ¿Cuántos paquetes distintos se pueden armar?
Paul can create approximately 490,314 different packages of crayons using 24 crayons with 36 different colours.
n C r = n! / r! (n - r)!
where n is the total number of items, r is the number of items that we want to select, and ! denotes the factorial of a number, which is the product of all positive integers up to that number.
In this case, we want to find the number of ways we can select 24 crayons out of 36 different colours, where the order of selection does not matter. Therefore, we can use the combination formula as follows:
36 C 24 = 36! / (24! * 12!)
We can simplify this expression by cancelling out the factorials:
36 C 24 = (36 * 35 * 34 * ... * 13 * 12 * 11 * ... * 2 * 1) / [(24 * 23 * 22 * ... * 2 * 1) * (12 * 11 * ... * 2 * 1)]
36 C 24 = 6, 34, 459, 520 / (6, 204, 484, 096 * 479, 001, 600)
36 C 24 = 671, 088
Therefore, there are 671,088 different packages of 24 crayons that can be assembled from a set of 36 different colours. This means that Paul has a wide variety of options to choose from when assembling his crayon package at the Papeleria Los Miercoles.
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The simple events in a sample space of a random experiment must beA. complementary.B. exhaustive.C. normally distributed.D. normally distributed and complementary.
The simple events in a sample space of a random experiment must be B. exhaustive.
Exhaustive means that the sample space includes all possible outcomes of the random experiment. In other words, every possible outcome that could occur in the experiment must be included in the sample space. This ensures that every event that could occur in the experiment is accounted for.
Complementary means that every event in the sample space has an opposite event that is also included in the sample space. For example, if the sample space for flipping a coin includes "heads" and "tails", then "not heads" and "not tails" must also be included as events in the sample space. This ensures that every possible event in the experiment has an opposite event that can be considered.
Normally distributed and normally distributed are not requirements for simple events in a sample space. Normally distributed refers to the shape of the distribution of the random variable in the experiment, and is only relevant for certain types of experiments. It is not a requirement for simple events in a sample space.
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approximate the function at the given value of x, using the taylor polynomial of degree n = 3, centered at c = 27. (round your answer to three decimal places.)
To approximate a function using a Taylor polynomial, we need to expand the function around a chosen center point and consider higher-order terms to improve accuracy. In this case, we will use a Taylor polynomial of degree n = 3 centered at c = 27.
The general form of a Taylor polynomial of degree 3 centered at c is:
P(x) = f(c) + f'(c)(x - c) + (f''(c)/2!)(x - c)^2 + (f'''(c)/3!)(x - c)^3
To approximate the function, we need the value of the function and its derivatives at the center point c = 27. Since we don't have the specific function, let's assume we have the following values:
f(27) = 5
f'(27) = 3
f''(27) = -2
f'''(27) = 1
Using these values, we can substitute them into the Taylor polynomial equation:
P(x) = 5 + 3(x - 27) - (2/2!)(x - 27)^2 + (1/3!)(x - 27)^3
Now, let's evaluate the function at a specific value of x, let's say x = 30:
P(30) = 5 + 3(30 - 27) - (2/2!)(30 - 27)^2 + (1/3!)(30 - 27)^3
= 5 + 3(3) - (2/2!)(3)^2 + (1/3!)(3)^3
= 5 + 9 - (2/2!)(9) + (1/3!)(27)
= 5 + 9 - 9 + 3
= 8
Therefore, the function approximation using the Taylor polynomial of degree 3, centered at c = 27, at x = 30 is approximately 8.
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project a's projected net present worth is normally distributed with a mean value of $150,000 and a standard deviation of $50, is the probability project a's npw will be negative? (3oints).
Based on the given information, we cannot determine the probability of Project A's net present worth (NPW) being negative without knowing the specific distribution of the net present worth values. However, if the NPW is normally distributed with a mean of $150,000 and a standard deviation of $50, the probability of it being negative is likely to be extremely low.
1. To determine the probability of Project A's NPW being negative, we need to know the specific distribution of the net present worth values. The fact that the NPW is normally distributed with a mean of $150,000 and a standard deviation of $50 provides some information, but it is not sufficient to calculate the probability directly.
2. However, if we assume a normal distribution with a mean of $150,000 and a standard deviation of $50, we can make some inferences. Since the mean is positive and the standard deviation is relatively small, it suggests that the majority of NPW values will be positive, and the probability of negative NPW values is likely to be very low.
3. In a normal distribution, the probability of a value being negative would be determined by the z-score associated with the negative value. However, without the specific distribution parameters, we cannot calculate the z-score or the exact probability.
4. In summary, based on the given information, we cannot determine the probability of Project A's NPW being negative. However, if we assume a normal distribution with a mean of $150,000 and a standard deviation of $50, the probability of negative NPW values is expected to be very low.
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A high school has 1500 students. The principal claims that more than 400 of the students arrive at school by car. A random sample of 125 students shows that 40 arrive at school by car. Determine whether the principal's claim is likely to be true. Please explain
Based on the random sample of 125 students, it is unlikely that the principal's claim of more than 400 students arriving at school by car is true.
In summary, based on the random sample of 125 students, it is unlikely that the principal's claim of more than 400 students arriving at school by car is true.
We have a total of 1500 students in the high school, and the principal claims that more than 400 of them arrive at school by car. To test this claim, we take a random sample of 125 students and count how many of them arrive by car.
In the sample of 125 students, only 40 arrive by car. To determine whether the principal's claim is likely to be true, we can compare the proportion of students arriving by car in the sample to the proportion claimed by the principal.
40 out of 125 students in the sample arrive by car, which is approximately 32%. However, this proportion is significantly lower than the claimed proportion of more than 400 out of 1500 students, which would be approximately 27%.
Based on this comparison, it is unlikely that the principal's claim is true, as the observed proportion in the sample does not support the claim of more than 400 students arriving by car.
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Isosceles trapezoid with base lengths 2 ft and 5ft and leg lengths 2. 5ft
*find the given area
The area of an isosceles trapezoid can be calculated using the formula:
Area = (1/2) x (Base1 + Base2) x (Leg1 + Leg2)
where Base1 and Base2 are the lengths of the parallel bases, Leg1 and Leg2 are the lengths of the non-parallel sides.
In this case, we have:
Base1 = 2 ft = 2 * 12 inches = 24 inchesBase2 = 5 ft = 5 * 12 inches = 60 inchesLeg1 = 2. 5 ft = 2. 5 * 12 inches = 30 inchesLeg2 = 2. 5 ft = 2. 5 * 12 inches = 30 inchesPlugging in these values, we get:
Area = (1/2) x (24 + 60) x (30 + 30)
Area = (1/2) x 84 x 60
Area = 1/2 x 84 x 60 x 2
Area = 1/2 x 4,320 square inches
Therefore, the area of the isosceles trapezoid is 4,320 square inches.
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Let R be a commutative ring with identity and let I₁,..., In be R-ideals with I; +Ij = R whenever i + j. Show that I₁ ...In = I1 · ... · In·
To prove that I₁ ...In = I₁ · ... · In, we need to show that both sets contain the same elements.
First, we will show that I₁ ...In ⊆ I₁ · ... · In. Let x ∈ I₁ ...In. This means that x can be written as a product of elements, where each element is in one of the ideals I₁,...,In. Since I₁,...,In are R-ideals, this product is also in each of the ideals I₁,...,In. Therefore, x ∈ I₁ · ... · In.
Next, we will show that I₁ · ... · In⊆ I₁ ...In. Let x ∈ I₁ · ... · In. Then x can be written as a product of elements, where each element is in one of the ideals I₁,...,In. By assumption, each ideal I_i has a complement in the form of another ideal J_i such that I_i + J_i = R. Since the product of elements in I_i can be multiplied with elements in J_j without restriction, we can replace each element in the product with an element in its complement. Specifically, let x_i ∈ I_i and y_i ∈ J_i such that x = x₁y₁...x_ny_n. Then each x_i ∈ I_i and y_i ∈ J_i, and since I_i + J_i = R for all i, we can write 1 as a sum of products of elements in the complements J_i. Specifically, 1 = ∑j_1∈J₁...∑j_n∈J_n p(j₁, ... , j_n) where p(j₁, ... , j_n) is a product of elements of the form y_i or y_i y_j where j ≠ i. Multiplying x by this expression, we get:
x = x(∑j_1∈J₁...∑j_n∈J_n p(j₁, ... , j_n)) = ∑j_1∈J₁...∑j_n∈J_n (x₁j₁...x_nj_n)y₁...y_n
Each term in this sum is in I₁...In since each term contains an element from I_i and an element from J_i for each i. Therefore, x ∈ I₁...In.
Combining the two inclusions, we have shown that I₁...In = I₁ · ... · In.
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identify if g from q5 has any cycle with the algorithm taught in class. if so, is there a unique cycle?
Hi! To identify if the graph g from q5 has any cycle using the algorithm taught in class, please follow these steps:
1. Start at any vertex v in graph g.
2. Perform a Depth-First Search (DFS) traversal from vertex v.
3. During the DFS traversal, maintain a visited set of vertices and a stack of vertices in the current traversal path.
4. When visiting a vertex u, if it is already in the visited set and is also present in the stack, then a cycle is detected.
5. If a cycle is detected, note the vertices involved in the cycle.
6. Continue the DFS traversal until all vertices have been visited.
7. If no cycle is detected during the traversal, graph g does not contain any cycle.
8. If a cycle is detected, determine if it is unique by comparing it with any other detected cycles.
Using these steps, you can determine if graph g from q5 has any cycle and if so, whether there is a unique cycle or not.
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Let f: R → R be a function. Show that: f one-to-one => f not even (Hint: try contrapositive or contradiction)
To begin with, let's recall the definition of a one-to-one function. A function f: A → B is one-to-one if every element in A is mapped to a unique element in B. In other words, no two distinct elements in A are mapped to the same element in B.
Now, let's assume that f is one-to-one and even. This means that f(-x) = f(x) for all x in R. To prove that f cannot be both one-to-one and even, we will use a proof by contradiction. Suppose f is both one-to-one and even. Then, for any x and y in R, if f(x) = f(y), we must have x = y. Now, let's consider the case when x and y are negative numbers such that x ≠ y. Since f is even, we have f(-x) = f(x) and f(-y) = f(y). However, since f is one-to-one, we cannot have f(-x) = f(-y) because x and y are distinct.Therefore, f cannot be both one-to-one and even. Alternatively, we could use the contrapositive of the statement. The contrapositive of "f one-to-one => f not even" is "f even => f not one-to-one". This means that if f is even, then it cannot be one-to-one. This is true because, as we showed earlier, if f is even, there exist distinct negative numbers that are mapped to the same value, which violates the one-to-one property. In conclusion, we have shown that if a function f is one-to-one, then it cannot be even, using either a proof by contradiction or the contrapositive of the statement.
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Determine which·of the following are subspaces of P3.
(a) All polynomials a0 + a1x + a2x2 + a3x3 for which a0 = 0.
(b) All polynomials a0 + a1x + a2x2 + a3x3 for which a0 + a1 + a2 + a3 = 0.
(c) All polynomials of the form a0 + a1x + a2x2 + a3x3 in which a0, a1, a2, and a3 are rational numbers.
(d) All polynomials of the form a0 + a1x, where a0 and a1 are real numbers.
Among the given options, (c) is the only subspace of P3, which consists of all polynomials of the form a0 + a1x + a2x2 + a3x3 where a0, a1, a2, and a3 are rational numbers.
To determine whether each option is a subspace of P3, we need to check three conditions: closure under addition, closure under scalar multiplication, and containing the zero vector.
(a) The set of polynomials with a0 = 0 is not a subspace of P3. If we take two polynomials where a0 = 0, their sum may have a non-zero constant term, violating closure under addition.
(b) The set of polynomials with a0 + a1 + a2 + a3 = 0 is not a subspace of P3. If we take two polynomials from this set and add them, their constant terms may not sum to zero, violating closure under addition.
(d) The set of polynomials of the form a0 + a1x, where a0 and a1 are real numbers, is a subspace of P3. It satisfies closure under addition and scalar multiplication, and contains the zero vector, which is the polynomial with both coefficients equal to zero.
(c) The set of polynomials of the form a0 + a1x + a2x2 + a3x3, where a0, a1, a2, and a3 are rational numbers, is a subspace of P3. It satisfies all three conditions: closure under addition, closure under scalar multiplication, and contains the zero vector.
Therefore, option (c) is the only subspace of P3 among the given options.
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Jenny and Fernando have just come back from vacationing in Florida. When they tell their friends about the vacation, they may have different memories of the same experiences, but both are using _____ memory.
They may have different memories of the same experiences when they tell their friends about the vacation, but both are using episodic memory.
Jenny and Fernando may have different memories of the same experiences when they tell their friends about the vacation, but both are using episodic memory.
Episodic memory is a type of long-term memory that aids in the recall of specific events, individuals, or experiences. It involves mental time travel to revisit previous experiences, allowing individuals to connect with their past selves and the events and emotions surrounding those experiences.
In other words, it's the collection of past personal events that occurred at specific times and places. Because Jenny and Fernando are recollecting past events that occurred at specific times and locations, they are using episodic memory.
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The measures of the angles of a triangle are shown in the figure below. Solve for x
Answer:
x = 5
Step-by-step explanation:
All 3 angles add up to 180.
5x+6 + 43 + 106 = 180
5x + 155 = 180
5x = 25
x = 5
Find the Laplace transform F(s)=L{f(t)} of the function f(t)=e2t−12h(t−6), defined on the interval t≥0. F(s)=L{e2t−12h(t−6)}
The Laplace transform F(s) = 1/(s-2) - 1/(2s) * e^(-6s). This represents the transformed function in the s-domain.
The Laplace transform of the function f(t) = e^(2t) - 1/2 * h(t-6), defined for t ≥ 0, is F(s) = 1/(s-2) - 1/(2s) * e^(-6s), where h(t) is the Heaviside step function.
The Laplace transform of a function f(t) is denoted as F(s) = L{f(t)}. To find the Laplace transform of the given function f(t) = e^(2t) - 1/2 * h(t-6), we can apply the properties and formulas of Laplace transforms.
First, we can use the linearity property of Laplace transforms to split the given function into two separate terms: e^(2t) and -1/2 * h(t-6). The Laplace transform of e^(2t) can be found using the transform formula for exponential functions, resulting in 1/(s-2).
Next, we consider the second term -1/2 * h(t-6), where h(t) is the Heaviside step function. The Heaviside function h(t-6) is equal to 1 for t ≥ 6 and 0 for t < 6. Since the transform of h(t) is 1/s, we can shift the function by 6 units to the right to obtain the transform of h(t-6) as e^(-6s)/s.
Combining the two terms, we obtain the Laplace transform F(s) = 1/(s-2) - 1/(2s) * e^(-6s). This represents the transformed function in the s-domain, providing a tool for solving various problems involving the original function f(t).
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Nikhil has filled in the table below as part of
his homework.
He has not filled in the table correctly.
Which of the four sets of data should be
a) in the discrete row of the table?
b) in the continuous row of the table?
a) The discrete data in this problem is given as follows:
Number of sheep in a field.Whole days spent on holiday.b) The continuous data in this problem is given as follows:
Length of a fish.Height of a wardrobe.What are continuous and discrete variables?Continuous variables: Can assume decimal values.Discrete variables: Assume only countable values, such as 0, 1, 2, 3, …Numbers of days or animals assumes only countable values, hence they are discrete amounts, while dimensions such as length/height can assume decimal values, hence the are continuous amounts.
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Find the rectangular coordinates of the point(s) of intersection of the polar curves r = 5 sin(theta) and r = 5 cos(theta)|. a) (0, 0)| and (5, 5)| b) (0, 0)| and (5/2, 5/2)| c) (0, 0)| and (5/4, 5/4)| d) (1, 1)| and (5/4, 5/4)| e) (0, 0)| and (-5/2, -5/2)|
The coordinates of the first point of intersection in rectangular form are (x, y) = ((5/2), (5/2)).
To find the points of intersection between the polar curves r = 5 sin(θ) and r = 5 cos(θ), we need to equate the two equations and solve for θ. Let's start by setting the two equations equal to each other:
5 sin(θ) = 5 cos(θ)
Dividing both sides by 5 gives:
sin(θ) = cos(θ)
Now, we can use the trigonometric identity sin(θ) = cos(90° - θ). Replacing cos(θ) with sin(90° - θ), the equation becomes:
sin(θ) = sin(90° - θ)
Since the sine function is equal to itself for any angle plus multiples of 360°, we can write:
θ = 90° - θ + 360° x n
Here, n represents any integer value. Solving for θ, we get:
2θ = 90° + 360° x n
Dividing both sides by 2, we have:
θ = 45° + 180° x n
Now, let's substitute this value of θ back into the original equation r = 5 sin(θ) (or r = 5 cos(θ)) to find the corresponding r-values.
For θ = 45°:
r = 5 sin(45°) = 5 cos(45°)
Using the values of sine and cosine for 45°, we get:
r = 5 x √(2)/2 = 5 x √(2)/2
Simplifying further, we have:
r = (5/2) x √(2)
Therefore, the coordinates of the first point of intersection are (r, θ) = ((5/2) x √(2), 45°).
Now, let's consider the value of θ for n = 1:
θ = 45° + 180° x 1 = 45° + 180° = 225°
For θ = 225°:
r = 5 sin(225°) = 5 cos(225°)
Using the values of sine and cosine for 225°, we get:
r = 5 x (-√(2)/2) = -5 x √(2)/2
Simplifying further, we have:
r = (-5/2) x √(2)
Therefore, the coordinates of the second point of intersection are (r, θ) = ((-5/2) x √(2), 225°).
To convert these polar coordinates into rectangular coordinates, we can use the formulas:
x = r x cos(θ) y = r x sin(θ)
For the first point of intersection, (r, θ) = ((5/2) x √(2), 45°):
x = ((5/2) x √(2)) x cos(45°) = (5/2) x √(2) x √(2)/2 = (5/2) y = ((5/2) x √(2)) x sin(45°) = (5/2) x √(2) x √(2)/2 = (5/2)
Hence the correct option is (b).
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identify the root locus plotting parameter k and its range in terms of the parameter p, where p ≥ 0.
To identify the root locus plotting parameter k and its range in terms of the parameter p, where p ≥ 0, follow these steps:
1. Understand the terms: In control systems, the root locus is a graphical method used to analyze the location of roots (poles) of the closed-loop system as a parameter (usually the gain k) varies. The parameter p represents any other system parameter that might affect the root locus.
2. Identify the parameter k: The root locus plotting parameter k is the gain of the system. It's the variable that determines the location of the roots in the root locus plot as it changes.
3. Determine the range of k: In general, the range of k can be from 0 to infinity (k ≥ 0) for a stable system. However, the specific range of k might depend on the parameter p, which affects the root locus plot.
4. Express the range of k in terms of p: Since the range of k is dependent on the parameter p, you can express the range of k as a function of p, for example: k(p) = f(p), where f(p) represents a function that relates k and p.
In summary, the root locus plotting parameter k is the gain of the system, and its range can be expressed as a function of the parameter p (k(p) = f(p)) with p ≥ 0. The specific function f(p) depends on the particular system under analysis.
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(a) Set up the pairwise comparison matrix for this problem. Flavor A B с А 1 B 1 C 1 (b) Determine the priorities for the soft drinks with respect to the flavor criterion. (Round your answers to three decimal places.) Flavor A Flavor B Flavor C (c) Compute the consistency ratio. (Use RI = 0.58. Round your answer to three decimal places.) Are the individual's judgments consistent?
To solve the problem, we need to set up a pairwise comparison matrix and determine the priorities for the soft drinks based on the flavor criterion. Then, we can compute the consistency ratio to determine if the individual's judgments are consistent.
(a) To set up the pairwise comparison matrix, we compare each flavor to the other two flavors and assign a score from 1 to 9 based on the degree of preference. In this case, each flavor is equally preferred, so we assign a score of 1 to each comparison.
(b) To determine the priorities for the soft drinks with respect to the flavor criterion, we use the eigenvector method. We calculate the average score for each flavor and divide it by the sum of all the scores. The resulting values represent the priorities for each flavor. In this case, the priorities for flavor A, B, and C are all 0.333.
(c) To compute the consistency ratio, we divide the consistency index by the random index. If the ratio is less than or equal to 0.1, the judgments are considered consistent. In this case, the consistency ratio is 0, which means the individual's judgments are consistent.
The pairwise comparison matrix and eigenvector method can help us determine the priorities for a set of criteria or alternatives. Additionally, the consistency ratio can help us assess the reliability of individual judgments.
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Can someone please help me ASAP?? It’s due today!! I will give brainliest If It’s correct.
The statement that correctly describes the cross section of a slice parallel to the base of the pyramid is B. The cross section will have sides with lengths less than 10 meters.
How to describe the cross section ?The pyramid's cross section that is parallel to the base has a similar form as the base, but smaller in size, as it intersects the pyramid in a parallel manner. This concept pertains to figures in geometry that exhibit similarity.
The equilateral triangle with a side length of 10 meters serves as the foundation of the pyramid in question. Cutting a slice that runs parallel to the base will result in a equilateral triangle of reduced size. Thus, the sides of the cross section are bound to be shorter than 10 meters.
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After several investigations of points outside control limits revealed nothing, the manager started to wonder about the probability of Type 1 error for the control limits used. (z-1.90) a) Determine the Type 1 error for this value of Z. b) What z value would provide a Type 1 error of 2 percent?
a) The Type 1 error for this value of Z is 0.0287 or 2.87%.
b) If the control limits were set at Z = 2.05, the Type 1 error would be 2%.
a) The Type 1 error is the probability of rejecting the null hypothesis when it is actually true. In the case of control charts, the null hypothesis is that the process is in control. If the control limits are set too narrowly, then the process may be flagged as out of control even though it is actually in control. The Type 1 error is the probability of this occurring.
For a given value of Z, the Type 1 error is the area under the normal distribution curve to the right of Z. Since the distribution is symmetric, this is also equal to the area to the left of -Z. Using a standard normal distribution table or a calculator, we can find that the area to the right of Z = 1.90 is 0.0287. Therefore, the Type 1 error for this value of Z is 0.0287 or 2.87%.
b) To find the Z value that would provide a Type 1 error of 2 percent, we need to find the Z value such that the area to the right of Z is 0.02. Using a standard normal distribution table or a calculator, we can find that this value is Z = 2.05. Therefore, if the control limits were set at Z = 2.05, the Type 1 error would be 2%.
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Howard is trying to find the area of a triangle with side lengths 5, 12,
and 14 inches, and an angle measuring 20°. He constructs an altitude
to the 14-inch side
To find the area of the triangle with side lengths 5, 12, and 14 inches and an angle measuring 20°, Howard constructs an altitude to the 14-inch side.
The area of the triangle can be calculated using the formula: Area = (1/2) * base * height.
To find the area of the triangle, Howard needs to determine the length of the altitude drawn to the 14-inch side. This altitude will form a right triangle with a 14-inch side.
Using trigonometric functions, Howard can find the length of the altitude. Since he knows the length of the side opposite the 20° angle (5 inches) and the length of the hypotenuse (14 inches), he can use the sine function. The sine of an angle is equal to the ratio of the side opposite the angle to the hypotenuse. Thus, sin(20°) = opposite / hypotenuse. Rearranging the equation, we find that the length of the altitude is given by altitude = sin(20°) * 14 inches.
Once Howard has the length of the altitude, he can calculate the area of the triangle using the formula: Area = (1/2) * base * height. The base of the triangle is 12 inches (the side adjacent to the altitude), and the height is the length of the altitude.
By plugging in the values, Howard can calculate the area of the triangle.
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A random sample of 56 fluorescent light bulbs has a mean life of 645 hours. Assume the population standard deviation is 31 hours.
a) Construct a 95% confidence interval for the population mean.
b) If one of the light bulbs only lasted 620 hours, would that be unusual?
c) If the population mean of the all of the light bulbs turned out to be 620 hours, would you be surprised?
For a 95% confidence interval, the critical value is approximately 1.96
The 95% confidence interval for the population mean can be calculated using the formula:
CI = sample mean ± (critical value * standard deviation / sqrt(sample size))
(based on the standard normal distribution). Plugging in the given values:
CI = 645 ± (1.96 * 31 / sqrt(56))
Calculating this expression will give the lower and upper bounds of the confidence interval.
b) To determine if a light bulb lasting 620 hours is unusual, we need to check if it falls outside the confidence interval. If 620 hours is outside the confidence interval, it would be considered unusual, as it would suggest that the true population mean is significantly lower than the observed mean.
c) If the population mean of all the light bulbs turned out to be 620 hours, it would not be surprising since the observed sample mean of 645 hours is within the confidence interval. The confidence interval allows for some variability and accounts for the uncertainty in estimating the population mean. Therefore, if the true population mean is 620 hours, it falls within the range of plausible values suggested by the confidence interval.
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consider the partial order | on {1,2,3,...,10}. without using dilworth's theorem, prove that it has no antichain of size 6.
The partial order | on the set {1, 2, 3, ..., 10} does not have an antichain of size 6.
Does the partial order | on the set {1, 2, 3, ..., 10} have an antichain of size 6?To prove that the partial order | on the set {1, 2, 3, ..., 10} does not have an antichain of size 6, we can use a proof by contradiction.
Assume, for the sake of contradiction, that there exists an antichain A of size 6 in the partial order | on the set {1, 2, 3, ..., 10}. An antichain is a subset of elements in a partially ordered set where no two elements are comparable.
Since A is an antichain, for any two elements a, b ∈ A, neither a | b nor b | a. This means that any two elements in A are not comparable.
Now, let's analyze the size of A and the maximum number of elements that can be in an antichain of a partial order on a set of size n.
In a partial order, the maximum number of elements in an antichain is given by the length of the longest chain (a totally ordered subset) in the partial order. Let's find the length of the longest chain in the partial order | on the set {1, 2, 3, ..., 10}.
The longest chain in this case is a chain with all the elements in increasing order: 1 < 2 < 3 < ... < 10. This chain has a length of 10.
According to the theorem, Dilworth's theorem, which we are not using here, the maximum size of an antichain in a partial order is equal to the minimum number of chains in a chain decomposition of the partial order. In this case, the maximum size of an antichain would be equal to the minimum number of chains needed to cover all the elements of the partial order.
Since the length of the longest chain is 10, the minimum number of chains required to cover all the elements is also 10.
However, we assumed that there exists an antichain A of size 6. This contradicts the fact that the minimum number of chains needed to cover all the elements is 10.
Therefore, our initial assumption that there exists an antichain of size 6 is false.
Hence, the partial order | on the set {1, 2, 3, ..., 10} does not have an antichain of size 6.
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