Assume that 80% of all homes have cable TV.If 10 homes are randomly selected find the probability that exactly 7 of them have cable TV P(X=7)=

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Answer 1

The probability that exactly 7 out of 10 randomly selected homes have cable TV is approximately 0.2007.

To find the probability that exactly 7 out of 10 randomly selected homes have cable TV, we can use the binomial probability formula.

The binomial probability formula is given by:

P(X = k) = C(n, k) * p^k * (1 - p)^(n - k)

Where:

P(X = k) is the probability of getting exactly k successes (homes with cable TV),

n is the number of trials (number of homes selected),

p is the probability of success (probability that a randomly selected home has cable TV), and

C(n, k) is the binomial coefficient, which represents the number of ways to choose k successes from n trials.

In this case, n = 10 (10 homes selected), p = 0.8 (probability that a randomly selected home has cable TV), and we want to find P(X = 7) (probability that exactly 7 homes have cable TV).

Using the formula, we can calculate P(X = 7) as follows:

P(X = 7) = C(10, 7) * 0.8^7 * (1 - 0.8)^(10 - 7)

C(10, 7) = 10! / (7! * (10 - 7)!) = 10! / (7! * 3!) = (10 * 9 * 8) / (3 * 2 * 1) = 120

P(X = 7) = 120 * 0.8^7 * 0.2^3

P(X = 7) = 120 * 0.2097152 * 0.008

P(X = 7) ≈ 0.2007

Therefore, the probability that exactly 7 out of 10 randomly selected homes have cable TV is approximately 0.2007.

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Related Questions

Suppose x and y are positive real numbers. If x < y, then x^2 < y^2. Prove the statement using the method of direct proof.

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Given that x and y are positive real numbers and x < y, we have to prove that x² < y² by direct proof. Method of direct proof Let P and Q are statements. To prove P → Q by the direct proof, we assume that P is true. Then we use only logic and the given information to prove that Q is true. It is also called a proof by deduction. Now, let's begin the proof. Assume that x < y, where x and y are positive real numbers. Squaring both sides, we get$x^2 < y^2$Therefore, it is proved that x² < y² by direct proof.

Hence, we have proved that if x < y, then x² < y² using the method of direct proof.

To prove the statement "If x < y, then x² < y²" using a direct proof, we will assume the premise that x < y and then show that x² < y².

Let's proceed with the direct proof:

Assumption: x < y

To prove: x² < y²

Proof:

Since x < y, we can multiply both sides of the inequality by x and y, respectively, without changing the inequality direction because both x and y are positive:

x * x < x * y (multiplying both sides by x)

y * x < y * y (multiplying both sides by y)

Simplifying the inequalities:

x² < xy

yx < y²

Since x < y, we know that xy < y² because multiplying a smaller number by y will result in a smaller product than multiplying y by itself.

Combining the two inequalities:

x² < xy < y²

Therefore, x² < y²

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\Use the chain rule to find the partial derivatives w = xy + yz + zx, x = rcose, y = rsine, z = r0,- , when r = 2,0 = = aw aw ar' de Q3(c). A rectangular box without a lid to be made from 12m² of cardboard. Find the maximum volume of such a box.

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To find the maximum volume of a rectangular box made from 12m² of cardboard, we need to maximize the volume function subject to the constraint that the surface area is equal to 12m².

Let's denote the length, width, and height of the box as x, y, and z, respectively. The volume of the box is given by V = xyz. According to the given information, the surface area of the box is 12m², which gives us the constraint equation 2xy + 2xz + 2yz = 12. To find the maximum volume, we can use the method of Lagrange multipliers. We define the Lagrangian function L(x, y, z, λ) as the volume function V minus the constraint equation multiplied by a Lagrange multiplier λ:

L(x, y, z, λ) = xyz - λ(2xy + 2xz + 2yz - 12)

Next, we need to find the partial derivatives of L with respect to x, y, z, and λ, and set them equal to zero to find the critical points.

∂L/∂x = yz - 2λy - 2λz = 0

∂L/∂y = xz - 2λx - 2λz = 0

∂L/∂z = xy - 2λx - 2λy = 0

∂L/∂λ = 2xy + 2xz + 2yz - 12 = 0

Solving this system of equations will give us the critical points. From there, we can determine which point(s) correspond to the maximum volume. Once we find the critical points, we substitute their values into the volume function V = xyz to calculate the corresponding volumes. The largest volume among these points will be the maximum volume of the box. By comparing the volumes obtained at the critical points, we can determine the maximum volume of the rectangular box that can be made from 12m² of cardboard.

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e) A recent survey indicates that 7% of all motor bikes manufactured at Baloyi factory have defective lights. A certain company from Polokwane buys ten motor bikes from this factory. What is the probability that at least two bikes have defective lights?

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Answer:

The probability that at least two motorbikes out of the ten have defective lights is 0.1445.

Step-by-step explanation:

According to the survey, the probability of a motorbike having defective lights is 7 %. which can be expressed as 0.07.

The probability that at least two bikes have defective lights is the probability can be from two, three, four, ... up to ten defective bikes. the sum of these probabilities is the probability of at least two defective bikes.

P(X ≥ 2) = P(X = 2) + P(X = 3) + P(X = 4) + ... + P(X = 10)

By using the binomial probability formula we can calculate P(X = k):

P(X = k) = C(n, k) * p^k * (1 - p)^(n - k)

Where :

n = number of bikes = 10k = number of bikes with defective lightsp = probability of a bike having defective lightsc(n, k) = combination = n! / (k! * (n-k)!)

calculation:

P(X ≥ 2) = P(X = 2) + P(X = 3) + P(X = 4) + ... + P(X = 10)

P(X ≥ 2) = 1 - P(X = 0) - P(X = 1)

P(X ≥ 2) = 1 - C(10, 0) * p^0 * (1 - p)^(10 - 0) - C(10, 1) * p^1 * (1 - p)^(10 - 1)

P(X ≥ 2) = 1 - (1 - p)^10 - 10 * p * (1 - p)^9

P(X ≥ 2) = 1 - (1 - 0.07)^10 - 10 * 0.07 * (1 - 0.07)^9

P(X ≥ 2) = 0.1445

Therefore the probability that at least two motorbikes out of the ten have defective lights is 0.1455.

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Line Integrals over Plane Curves 19. Evaluate fex ds, where C is a. the straight-line segment x = 1, y = 1/2, from (0, 0) to (4,2). b. the parabolic curve x = 1, y = 1², from (0, 0) to (2, 4).

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In the given problem, we are required to evaluate the line integral ∫(C) fex ds, where f(x, y) = ex and C represents a curve in the xy-plane. We need to evaluate the integral for two different cases: (a) for the straight-line segment from (0, 0) to (4, 2) and (b) for the parabolic curve from (0, 0) to (2, 4).

(a) For the straight-line segment, we have x = 1 and y = 1/2. The parameterization of the curve can be written as x(t) = t and y(t) = t/2, where t varies from 0 to 4. Using this parameterization, we can express ds in terms of dt as ds = √(dx/dt² + dy/dt²) dt = √(1² + (1/2)²) dt = √(5)/2 dt. Therefore, the line integral becomes ∫(C) fex ds = ∫(0 to 4) ([tex]e^t[/tex])(√(5)/2) dt. This integral can be evaluated using standard techniques of integration.

(b) For the parabolic curve, we have x = 1 and y = t². The parameterization of the curve can be written as x(t) = 1 and y(t) = t², where t varies from 0 to 2. Using this parameterization, we can express ds in terms of dt as ds = √(dx/dt² + dy/dt²) dt = √(0² + (2t)²) dt = 2t dt. Therefore, the line integral becomes ∫(C) fex ds = ∫(0 to 2) (e)(2t) dt. Again, this integral can be evaluated using standard integration techniques.

In summary, to evaluate the line integral ∫(C) fex ds for the given curves, we need to parameterize the curves and express ds in terms of the parameter. Then we can substitute these expressions into the line integral formula and evaluate the resulting integral using integration techniques.

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The graph of a polynomial function is shown, State the interval(s) on which is increasing and the interval(s) on which is decreasing. (Enter your answers using interval notation)
increasing____
decreasing____

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In the graph of a polynomial function shown below, it is required to determine the interval(s) on which it is increasing and the interval(s) on which it is decreasing. Polynomial Function Graph The solution can be found by determining the turning points of the polynomial function.

Turning points are points where the polynomial changes direction. This means that if we can determine the x-values of these turning points, we can identify the intervals of increasing and decreasing of the polynomial function.

The turning points of the polynomial function can be found by identifying the roots of its derivative. The roots of the derivative indicate the values of x where the function changes from increasing to decreasing or decreasing to increasing.

Thus, we differentiate the polynomial function to obtain its derivative.

f(x) = 2x³ - 3x² - 12x + 20

Differentiating both sides with respect to x gives;

f'(x) = 6x² - 6x - 12

Setting f'(x) equal to zero and solving for x yields: 6x² - 6x - 12 = 0

Factoring out 6 from the expression on the left gives;

6(x² - x - 2) = 0

Factorizing x² - x - 2 gives;

(x - 2)(x + 1) = 0

The roots of the equation are;`

[tex]x - 2 = 0 or x + 1 = 0[/tex]

Thus, the roots of the derivative are [tex]`x = 2` and `x = -1`[/tex]. Therefore, the polynomial function has two turning points at [tex]x = 2 and x = -1.[/tex] 

The intervals of increasing and decreasing of the polynomial function can now be identified as shown below;*Interval of Decrease: [tex]`(-∞, -1) ∪ (2, ∞)[/tex]`*Interval of Increase:[tex]`(-1, 2)`[/tex]

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Write the system of linear equations in the form Ax = b and solve this matrix equation for x. -2x1 3x2 -11 6x1 + X2 H -39 CHCE =

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The given system of linear equations is as follows:-2x1 + 3x2 = -11   (Equation 1)6x1 + x2 = -39  (Equation 2)To write the above system of linear equations in the form Ax = b.

we can represent it as given below:

A = [ -2 3 ; 6 1 ]

x = [ x1 ; x2 ]

b = [ -11 ; -39 ]

Therefore, Ax = b becomes [ -2 3 ; 6 1 ] [ x1 ; x2 ] = [ -11 ; -39 ]Now, to solve this matrix equation, we need to find the inverse of matrix A. Let A^-1 be the inverse of matrix A, then we can write x = A^-1 b

So, first we find the determinant of matrix A using the formula: Determinant of

A = (ad - bc)

where, a = -2, b = 3, c = 6 and d = 1.So, Determinant of A = (-2)(1) - (3)(6) = -20

As the determinant is not equal to zero, the inverse of matrix A exists. Now, we find the inverse of matrix A using the formula: A^-1 = (1/Determinant of A) [ d -b ; -c a ]where, a = -2, b = 3, c = 6 and d = 1.So, A^-1 = (1/-20) [ 1 -3 ; -6 -2 ]= [ -1/20 3/20 ; 3/10 1/10 ]

Now, we can find the solution to the given system of linear equations as follows:

x = A^-1 b= [ -1/20 3/20 ; 3/10 1/10 ] [ -11 ; -39 ]

= [ 2 ; -5 ]

Therefore, the solution to the given system of linear equations isx1 = 2 and x2 = -5.

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let , be vectors in given by a) find a vector with the following properties: for any linear transformation which satisfies we must have . enter the vector in the form

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If the result is zero, then we need to choose another vector and repeat the process. Therefore, we choose any non-zero vector and apply T to it.

Given, vectors , are given as:
We need to find a vector such that for any linear transformation T satisfying we must have , i.e.,
Here, is the null space of the linear transformation T.
Let us first find the basis for the null space of T.

Let be the matrix representing the linear transformation T with respect to the standard basis.

Since the columns of A represent the images of the standard basis vectors under T, the null space of A is precisely the space of all linear combinations of the vectors that map to zero.

Therefore, we can find a basis for the null space of A by computing the reduced row echelon form of A and looking for the special solutions of the corresponding homogeneous system.
Now, we need to find a vector which is not in the null space of T.

This can be done by taking any non-zero vector and applying T to it. If the result is non-zero, then we have found our vector.

If the result is zero, then we need to choose another vector and repeat the process.
Therefore, we choose any non-zero vector and apply T to it.

Let . Then,
Since this is non-zero, we have found our vector. Therefore, we can take  as our vector.

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Show that v; = (1, -3,2), V2 = (1,0,-1) and vz = (1, 2, -4) span R and express v = (9,8,7) as a linear combination of {v, 12, 1; }

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Yes, the vectors v1 = (1, -3, 2), v2 = (1, 0, -1), and v3 = (1, 2, -4) span R. Vector v = (9, 8, 7) can be expressed as a linear combination of v1, v2, and v3.

To show that the vectors v1, v2, and v3 span R, we need to demonstrate that any vector in R can be expressed as a linear combination of these vectors.

Let's consider an arbitrary vector in R, v = (a, b, c). We want to find coefficients x, y, and z such that:

x*v1 + y*v2 + z*v3 = (a, b, c)

We can rewrite this equation as a system of linear equations:

x + y + z = a

-3x + 2z = b

2x - y - 4z = c

To solve this system, we can write the augmented matrix and perform row operations:

[1  1  1 | a]

[-3 0  2 | b]

[2 -1 -4 | c]

By performing row operations, we can reduce this matrix to echelon form:

[1  1  1 | a]

[0  3  5 | b + 3a]

[0  0  9 | 4a - b - 2c]

Since the matrix is in echelon form, we can see that the system is consistent, and we have three variables (x, y, z) and three equations, satisfying the condition for a solution.

Therefore, v1, v2, and v3 span R.

Now, to express the vector v = (9, 8, 7) as a linear combination of v1, v2, and v3, we need to find the coefficients x, y, and z that satisfy the equation:

x*v1 + y*v2 + z*v3 = (9, 8, 7)

We can rewrite this equation as:

x + y + z = 9

-3x + 2z = 8

2x - y - 4z = 7

By solving this system of linear equations, we can find the values of x, y, and z that satisfy the equation. The solution to this system will give us the coefficients required to express v as a linear combination of v1, v2, and v3.

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Let X be a continuous random variable with the probabilty density function; f(x) = kx 0

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To determine the value of the constant k in the probability density function (PDF) f(x) = kx^2, we need to integrate the PDF over its entire range and set the result equal to 1, as the total area under the PDF must equal 1 for a valid probability distribution.

The given PDF is defined as:

f(x) = kx^2, 0 < x < 1

To find k, we integrate the PDF over its range:

∫[0,1] kx^2 dx = 1

Using the power rule for integration, we have:

k∫[0,1] x^2 dx = 1

Integrating x^2 with respect to x gives:

k * (x^3/3) | [0,1] = 1

Plugging in the limits of integration, we have:

k * (1^3/3 - 0^3/3) = 1

Simplifying, we get:

k/3 = 1

Therefore, k = 3.

Hence, the value of the constant k in the PDF f(x) = kx^2 is k = 3.

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Which of the following statements is true? Los enlaces sencillos se forman compartiendo dos electrones Single bonds are made by sharing two electrons. Un enlace covalente se forma a través de la transferencia de electrones de un átomo a otro. A covalent bond is formed through the transfer of electrons from one atom to another. No es posible que dos átomos compartan más de dos electrones, formando enlaces multiples. It is not possible for two atoms to share more than two electrons, in a multiple bond. Un par de electrones involucrados en un enlace covalente a veces se conocen como "pares solitarios A pair of electrons involved in a covalent bond are sometimes referred to as "lone pairs."

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The statement "Single bonds are made by sharing two electrons" is true.

In a covalent bond, atoms share electrons to achieve a stable electron configuration. A single bond is formed when two atoms share a pair of electrons. This means that each atom contributes one electron to the shared pair, resulting in a total of two electrons being shared between the atoms.

The statement "A covalent bond is formed through the transfer of electrons from one atom to another" is false. In a covalent bond, there is no transfer of electrons between atoms. Instead, the electrons are shared.

The statement "It is not possible for two atoms to share more than two electrons, in a multiple bond" is also false. In a multiple bond, such as a double or triple bond, atoms can share more than two electrons. In a double bond, two pairs of electrons are shared (four electrons in total), and in a triple bond, three pairs of electrons are shared (six electrons in total).

The statement "A pair of electrons involved in a covalent bond are sometimes referred to as 'lone pairs'" is true. In a covalent bond, there are two types of electron pairs: bonding pairs, which are involved in the formation of the bond, and lone pairs, which are not involved in bonding and are localized on one atom. These lone pairs play a role in the shape and properties of molecules.

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(25 pts) (a) (10 pts) Find the symmetric group G about the vertices 1, 2, 3, 4, 5, 6 of the regular hexagon (6 sided polygon) by listing its all members in cycle notations. (b) (5 pts) Find out the cycle index of the group G by (a). (c) (5 pts) Find the pattern inventory of the G-invariant vertex colorings of the hexagon by three colors Blue, Green and Red. (d) (5 pts) Given 10 distinct colors. Find the number of G-invariant vertex colorings of the hexagon by the 10 colors.

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We must take into account all conceivable permutations of the vertex in order to identify the symmetric group G about the vertices of the regular hexagon. Let's assign the numbers 1, 2, 3, 4, 5, and 6 to the hexagon's vertices.

(a) In cycle notation, the members of the symmetric group G are as follows:

G = {(1), (1 2), (1 3), (1 4), (1 5), (1 6), (2 3), (2 4), (2 5), (2 6), (3 4), (3 5), (3 6), (4 5), (4 6), (5 6), (1 2 3), (1 2 4), (1 2 5), (1 2 6), (1 3 4), (1 3 5), (1 3 6), (1 4 5), (1 4 6), (1 5 6), (2 3 4), (2 3 5), (2 3 6), (2 4 5), (2 4 6), (2 5 6), (3 4 5), (3 4 6), (3 5 6), (4 5 6), (1 2 3 4),  (1 2 3 5), (1 2 3 6), (1 2 4 5), (1 2 4 6), (1 2 5 6), (1 3 4 5), (1 3 4 6), (1 3 5 6), (1 4 5 6), (2 3 4 5), (2 3 4 6), (2 3 5 6), (2 4 5 6), (3 4 5 6), (1 2 3 4 5), (1 2 3 4 6), (1 2 3 5 6), (1 2 4 5 6), (1 3 4 5 6), (2 3 4 5 6), (1 2 3 4 5 6)}

(b) In order to determine group G's cycle index, we must count the number of permutations that belong to that group and have a particular cycle structure.

Z(G) = (1/|G|) * (ci * a1k1 * a2k2 *... * ankn) is the formula for the cycle index of G, Where |G| denotes the group's order, ci denotes the number of permutations in the group with cycle type i, and a1, a2,..., a denote indeterminates that stand in for the colours.

In order to get the cycle index, we count the permutations in G that contain each cycle type:

c₁ = 1 (identity permutation)

c₂ = 15 (permutations with 2-cycle)

c₃ = 20 (permutations with 3-cycle)

c₄ = 15 (permutations with 4-cycle)

c₆ = 1 (permutations with 6-cycle). Using these counts, we can write the cycle index as:

Z(G) = (1/60) * (a₁⁶ + 15 * a₂³ + 20 * a₃² + 15 * a₄ + a

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In Exercises 17-18, use the method of Example 6 to compute the matrix A¹0 0 17. A = 0 3
2 -1
18. A = 1 0
-1 2

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The method of Example 6 is the diagonalization of a matrix. For diagonalization of a matrix, we need to find the eigenvalues and eigenvectors of the matrix.

Once we have the eigenvalues and eigenvectors, we can construct the diagonal matrix from the eigenvalues and the matrix of eigenvectors. Then, we can write the matrix as the product of the matrix of eigenvectors, diagonal matrix, and the inverse of the matrix of eigenvectors. Exercise 17Let A = 0 3 2 -1

To find the eigenvalues of A, we need to solve the characteristic equation

|A - λI| = 0So,

we have |0 - λ 3 2 -1 - λ| = 0 ⇒ λ² + λ - 6 = 0

On solving this quadratic equation,

we get λ₁ = 2 and λ₂ = -3

Now, we need to find the eigenvectors of A corresponding to these eigenvalues.

For λ = 2, we get(A - 2I)X

= 0⇒(0-2 3 2-2)X = 0⇒-2x₁ + 3x₂

= 0 and 2x₁ - 2x₂ = 0Or, x₁ = (3/2)x₂ Let x₂

= 2, then x₁ = 3

Now, the eigenvector corresponding to

λ = 2 is[3 2]TFor

λ = -3, we get(A + 3I)X = 0⇒(0+3 3 2+3)X

= 0⇒3x₁ + 3x₂ = 0 and 3x₁ + 5x₂ = 0Or,

x₁ = -x₂ Let x₂ = 1, then x₁ = -1Now, the eigenvector corresponding to λ = -3 is[-1 1]T So, we have D = 2 0 0 -3andP = 3 -1 2 1

Diagonalizing the matrix A, we get A = PDP⁻¹A = 3 -1 2 1 0 3 2 -1 = 1/6 [9 -3] [-2 6] [2 2] [-1 -1] [3 0] [-2 -2]Multiplying A and [1 0 0; 0 0 1; 0 1 0], we getA¹0 0 17 = 1/6 [9 -3] [-2 6] [2 2] [-1 -1] [3 0] [-2 -2] × [1 0 0; 0 0 1; 0 1 0] = 1/6 [9 0 3] [-2 0 2] [2 17 2] [-1 0 -1] [3 0 -2] [-2 0 -2]

Therefore, A¹0 0 17 = 1/6 [9 0 3] [-2 0 2] [2 17 2] [-1 0 -1] [3 0 -2] [-2 0 -2]Exercise 18Let A = 1 0 -1 2To find the eigenvalues of A, we need to solve the characteristic equation |A - λI| = 0So, we have |1 - λ 0 -1 2 - λ| = 0 ⇒ (1 - λ)(2 - λ) = 0⇒ λ₁ = 1 and λ₂ = 2.

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4. (20) In two jars (jar-1, jar-2) containing black and white balls, the probability of drawing a white ball from jar-1 is equal to drawing a black ball from jar-2. The balls are drawn according to the following rules: • The balls are drawn without replacement (i.e. the ball drawn is put back to the jar). • If a black ball is drawn, the next ball is drawn from the other jar. Else the next ball is drawn from the same jar. If an is the probability of having nth draw from jar-1 (a) (10) Prove that an+1 equals drawing a black ball from jar-2 (b) (10) If the first ball is drawn from jar-1, what is the probability of drawing 1000th ball from jar-1?

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(a) an+1 = probability of drawing a black ball from jar-2 (b) The probability of drawing the 1000th ball from jar-1, given that the first ball was drawn from jar-1, is the same as the probability of drawing a white ball from jar-1.

How to calculate probabilities in ball-drawing scenario?

(a) To prove that an+1 equals drawing a black ball from jar-2, we can analyze the different possibilities for the nth draw:

1. If the nth draw is from jar-1 and a white ball is drawn, then an+1 will be equal to an (drawing from jar-1 again).

2. If the nth draw is from jar-1 and a black ball is drawn, then an+1 will be equal to the probability of drawing a black ball from jar-2 (since the next draw will be from jar-2).

3. If the nth draw is from jar-2 and a white ball is drawn, then an+1 will be equal to the probability of drawing a white ball from jar-1 (since the next draw will be from jar-1).

4. If the nth draw is from jar-2 and a black ball is drawn, then an+1 will be equal to an (drawing from jar-2 again).

Based on these possibilities, it can be concluded that an+1 equals drawing a black ball from jar-2.

(b) If the first ball is drawn from jar-1, the probability of drawing the 1000th ball from jar-1 can be calculated as the product of probabilities for each draw. Since the balls are drawn with replacement (put back after each draw), the probability of drawing a ball from jar-1 remains the same for each draw. Therefore, the probability of drawing the 1000th ball from jar-1 is the same as the probability of drawing the first ball from jar-1, which is given as the probability of drawing a white ball from jar-1.

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show that the vectors ⟨1,2,1⟩,⟨1,3,1⟩,⟨1,4,1⟩ do not span r3 by giving a vector not in their span

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It is not possible to find a vector in R3 that cannot be written as a linear combination of ⟨1,2,1⟩,⟨1,3,1⟩, and ⟨1,4,1⟩.

It is required to show that the vectors ⟨1,2,1⟩,⟨1,3,1⟩,⟨1,4,1⟩ do not span R3 by providing a vector that is not in their span. Here is a long answer of 200 words:The given vectors are ⟨1,2,1⟩,⟨1,3,1⟩, and ⟨1,4,1⟩, and it is required to prove that they do not span R3.

The span of vectors is the set of all linear combinations of these vectors, which can be written as the following:Span {⟨1,2,1⟩, ⟨1,3,1⟩, ⟨1,4,1⟩} = {a ⟨1,2,1⟩ + b ⟨1,3,1⟩ + c ⟨1,4,1⟩ | a, b, c ∈ R}where R represents real numbers.To show that the given vectors do not span R3, we need to find a vector in R3 that cannot be written as a linear combination of ⟨1,2,1⟩,⟨1,3,1⟩, and ⟨1,4,1⟩.Suppose the vector ⟨1,0,0⟩, which is a three-dimensional vector, is not in the span of the given vectors.

Now, we need to prove it.Let the vector ⟨1,0,0⟩ be the linear combination of ⟨1,2,1⟩,⟨1,3,1⟩, and ⟨1,4,1⟩.⟨1,0,0⟩ = a⟨1,2,1⟩ + b⟨1,3,1⟩ + c⟨1,4,1⟩Taking dot products of the above equation with each of the given vectors, we get,⟨⟨1,0,0⟩, ⟨1,2,1⟩⟩ = a⟨⟨1,2,1⟩, ⟨1,2,1⟩⟩ + b⟨⟨1,3,1⟩, ⟨1,2,1⟩⟩ + c⟨⟨1,4,1⟩, ⟨1,2,1⟩⟩⟨⟨1,0,0⟩, ⟨1,2,1⟩⟩ = a(6) + b(8) + c(10)1 = 6a + 8b + 10c

Similarly,⟨⟨1,0,0⟩, ⟨1,3,1⟩⟩ = 7a + 9b + 11c⟨⟨1,0,0⟩, ⟨1,4,1⟩⟩ = 8a + 11b + 14cNow, we have three equations and three unknowns.

Solving these equations simultaneously, we geta = 1/2, b = -1/2, and c = 0

The vector ⟨1,0,0⟩ can be expressed as a linear combination of ⟨1,2,1⟩ and ⟨1,3,1⟩, which implies that it is not possible to find a vector in R3 that cannot be written as a linear combination of ⟨1,2,1⟩,⟨1,3,1⟩, and ⟨1,4,1⟩.

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Please take your time and answer both questions. Thank
you!
3. List the possible rational zeros of f. Then determine all the real zeros of f. f(x) = 15x³ - 26x² + 13x - 2 4. Solve for x: log x + log (x + 3)

Answers

The possible rational zeros of f are ±1/3, ±2/3, ±1/5, ±2/5, ±1/15, and ±2/15. The real zeros of f are x = 1/3 and x = 2/5.

To find the possible rational zeros of f, we use the Rational Root Theorem. According to the theorem, the possible rational zeros are of the form p/q, where p is a factor of the constant term (-2) and q is a factor of the leading coefficient (15). The factors of -2 are ±1 and ±2, while the factors of 15 are ±1, ±3, ±5, and ±15. Combining these factors, we get the possible rational zeros ±1/3, ±2/3, ±1/5, ±2/5, ±1/15, and ±2/15.

To determine the real zeros of f, we need to solve the equation f(x) = 0. One way to do this is by factoring. However, in this case, factoring the cubic equation may not be straightforward. Alternatively, we can use numerical methods such as graphing or the Newton-Raphson method. Using graphing or a graphing calculator, we can observe that the function crosses the x-axis at approximately x = 1/3 and x = 2/5. These are the real zeros of f.

In summary, the possible rational zeros of f are ±1/3, ±2/3, ±1/5, ±2/5, ±1/15, and ±2/15. After evaluating the function or graphing it, we find that the real zeros of f are x = 1/3 and x = 2/5. These values satisfy the equation f(x) = 0. Therefore, the solution to the equation log x + log (x + 3) is x = 1/3 and x = 2/5.

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The answer above is NOT correct. -2 1 0 0 (1 point) Let A = [24] and C [88] 6 -3 0 0 Find a non-zero 2 x 2 matrix B such that AB = C. 6 6 B 3 3 b Hint: Let B perform the matrix multiplication AB, and then find a, b, c, and d. 3 C d Preview My Answers Submit Answers Your score was recorded KP PENGAN

Answers

To find a non-zero 2x2 matrix B such that AB = C, we can use the given matrices A and C and solve for the elements of B.

Given matrices are A = [24] and C = [88] and matrix B is non-zero and 2x2. Let matrix B be [a b; c d].So, AB = [[tex]24a+6b,24b+6d[/tex]; [tex]-3a[/tex],[tex]-3b[/tex]].Given C = [88 6; 3 3]. Then, the matrix multiplication AB = C implies that: [tex]24a+6b = 88[/tex]; [tex]24b+6d = 6[/tex];[tex]-3a = 3[/tex]; [tex]-3b = 3[/tex].

Solving these equations gives the values of a, b, c, and d.  From the first two equations, we get a = 5 and b = -5. Substituting these values in the last two equations, we get [tex]c = 1[/tex] and [tex]d = -1[/tex]. Therefore, the required matrix B is [5 -5; 1 -1].

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find a power series representation for the function. (give your power series representation centered at x = 0.) f(x)=1/(3 x)

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The power series representation for the function is [tex]f(x) = \sum\limits^{\infty}_{0} {(-\frac x3)^n}[/tex]

How to find the power series for the function

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

f(x) = 1/(3 + x)

Rewrite the function as

[tex]f(x) = \frac{1}{3(1 + \frac x3)}[/tex]

Expand

[tex]f(x) = \frac{1}{3(1 - - \frac x3)}[/tex]

So, we have

[tex]f(x) = \frac{1}{3} * \frac{1}{(1 - (-\frac x3)}[/tex]

The power series centered at x = 0 can be calculated using

[tex]f(x) = \sum\limits^{\infty}_{0} {r^n}[/tex]

In this case

r = -x/3 i.e. the expression in bracket

So, we have

[tex]f(x) = \sum\limits^{\infty}_{0} {(-\frac x3)^n}[/tex]

Hence, the power series for the function is [tex]f(x) = \sum\limits^{\infty}_{0} {(-\frac x3)^n}[/tex]

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Question

Find a power series representation for the function. (give your power series representation centered at x = 0

f(x) = 1/(3 + x)

find the standardized test statistic estimate, z, to test the hypothesis that p1 > p2. use 0.01. the sample statistics listed below are from independent samples.
sample statistics: n1 = 100, x1 = 38, and n2 = 140, x2 = 50 a.0.638 b.0.362 c.2.116 d.1.324 100, 38, and 140, 50

Answers

Therefore, the standardized test statistic estimate (z) is approximately 0.323. None of the given answer choices (a. 0.638, b. 0.362, c. 2.116, d. 1.324) match the calculated value.

To find the standardized test statistic estimate (z) to test the hypothesis that p₁ > p₂, we can use the following formula:

z = (p₁ - p₂) / √(p * (1 - p) * (1/n₁ + 1/n₂))

where:

p₁ = x₁ / n₁  (proportion in sample 1)

p₂= x₂/ n₂(proportion in sample 2)

n₁ = sample size of sample 1

n₂ = sample size of sample 2

Given:

n₁   = 100, x₁  = 38

n₂ = 140, n₂ = 50

First, we need to calculate p1 and p2:

p₁ = 38 / 100

= 0.38

p₂ = 50 / 140

= 0.3571 (approximately)

Next, we can calculate the standardized test statistic estimate (z):

z = (0.38 - 0.3571) / √( (0.38 * 0.62) * (1/100 + 1/140) )

z = 0.0229 / √(0.2368 * (0.0142 + 0.0071))

z = 0.0229 / √(0.2368 * 0.0213)

z = 0.0229 / √(0.00503504)

z ≈ 0.0229 / 0.07096

z ≈ 0.323

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Find the net outward flux of the vector field F = (z, y, x) across the boundary of the tetrahedron in the first octant formed by the surface S:z = 6-x-3y and the coordinate planes, x = 0, y = 0,2 = 0. Use the Divergence Theorem to avoid multiple surface integrals. Include a sketch

Answers

The net outward flux of the vector field F = (z, y, x) across the boundary of the tetrahedron in the first octant is equal to 15.6 units.

To calculate the net outward flux using the Divergence Theorem, we need to find the divergence of the vector field F. The divergence of F is given by div(F) = ∂x/∂x + ∂y/∂y + ∂z/∂z = 1 + 1 + 1 = 3.

The Divergence Theorem states that the net outward flux across the boundary of a closed surface is equal to the triple integral of the divergence of the vector field over the volume enclosed by the surface. In this case, the surface S is formed by the equation z = 6 - x - 3y and the coordinate planes.

We can set up the triple integral as follows:

∫∫∫ div(F) dV = ∫∫∫ 3 dV

Integrating over the volume of the tetrahedron in the first octant, with limits 0 ≤ x ≤ 2, 0 ≤ y ≤ (2 - x)/3, and 0 ≤ z ≤ 6 - x - 3y, we can evaluate the triple integral. The result is 15.6, which represents the net outward flux of the vector field across the boundary of the tetrahedron in the first octant.

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A rental car company charges $40 plus 15 cents per each mile driven. Part1. Which of the following could be used to model the total cost of the rental where m represents the miles driven. OC=1.5m + 40 OC= 0.15m + 40 OC= 15m + 40 Part 2. The total cost of driving 225 miles is, 10 9 8 7 6 5 4 3 2 Member of People ILI 16-20 21-25 28-30 31-33 A frisbee-golf club recorded the ages of its members and used the results to construct this histogram. Find the number of members 30 years of age or younger

Answers

The total cost of driving 225 miles is $73.75. The given histogram is as follows: From the histogram, we can see that the number of members 30 years of age or younger is 12. Therefore, the correct answer is 12.

A rental car company charges $40 plus 15 cents per mile driven.

Part 1. Which of the following could be used to model the total cost of the rental where m represents the miles driven?OC=0.15m + 40

The given information tells us that a rental car company charges $40 plus 15 cents per mile driven. Here, m represents the miles driven.

Thus, the option that could be used to model the total cost of the rental where m represents the miles driven is:

OC = 0.15m + 40.

Part 2. The total cost of driving 225 miles isOC = 0.15m + 40  (given)

Now, we have to find the cost of driving 225 miles.

Thus, we have to put the value of m = 225 in the above equation.OC = 0.15m + 40OC = 0.15 × 225 + 40OC = 33.75 + 40OC = $73.75

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Use the information below to find the probability that a flight arrives on time given that it departed on time.

The probability that an airplane flight departs on time is 0.890

The probability that a flight arrives on time is 0.87

The probability that a flight departs and arrives on time is 0.83

The probability that a flight arrives on time given that it departed on time is.......

Answers

Therefore, the probability that a flight arrives on time given that it departed on time is approximately 0.932.

To find the probability that a flight arrives on time given that it departed on time, we can use the formula for conditional probability:

P(Arrival on time | Departure on time) = P(Arrival on time and Departure on time) / P(Departure on time)

From the given information, we have:

P(Arrival on time and Departure on time) = 0.83

P(Departure on time) = 0.890

Plugging these values into the formula, we get:

P(Arrival on time | Departure on time) = 0.83 / 0.890 ≈ 0.932

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Please solve for JL. Only need answer, not work.

Answers

Step-by-step explanation:

Hi

Please mark brainliest ❣️

The answer is 21.4009

Since you don't need workings

Which of the following statements is true about arithmetic sequence?
A. a sequence having a common ratio
C. a sequence having a common difference
B. a sequence which is always finite
D. a sequence which is always infinite

Answers

The correct statement about an arithmetic sequence is:

C. a sequence having a common difference

What is an arithmetric sequence

An arithmetic sequence is a sequence of numbers in which the difference between any two consecutive terms is constant. This constant difference is often referred to as the "common difference." For example, in the arithmetic sequence 2, 5, 8, 11, 14, the common difference is 3, as each term is obtained by adding 3 to the previous term.

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Identify the sampling technique used: Random, Stratified, Cluster, System- atic, or Convenience: Chosen at random 250 rual and 250 urban persons age 65 or older from Florida are asked about their health and experience with prescription drugs.

Answers

The sampling technique used in this scenario is stratified sampling. Stratified sampling involves dividing the population into different subgroups or strata based on certain characteristics and then randomly selecting samples from each stratum.

In this case, the population of older individuals in Florida is divided into two strata: rural and urban. From each stratum, 250 individuals are randomly selected to participate in the survey about their health and experience with prescription drugs. The sampling technique employed in this study is stratified sampling. The population of older individuals in Florida is categorized into two strata: rural and urban. From each stratum, a random sample of 250 individuals is chosen.

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The famous identity:
cos(x) = 1/sec(x)
can be tweaked to produce the following identity/ies
a) 1 = cos(x) sec(x)
b) 0 = cos(x) sec(x) - 1
c) sec(x) cos(x) = 1
d) 0 = 1 - cos(x) sec(x)
e) cos(5θ) = 1/sec(5θ)
f) sec(x) = 1/cos(x)
(g) none of these

Answers

Option b) 0 = cos(x) sec(x) - 1 is the identity produced by tweaking the famous identity cos(x) = 1/sec(x)

The remaining options are not identities produced by tweaking cos(x) = 1/sec(x).

The given famous identity: cos(x) = 1/sec(x) can be rearranged to produce the identity 0 = cos(x) sec(x) - 1 by subtracting 1/sec(x) from both sides of the equation.

Therefore, The correct answer is option b) 0 = cos(x) sec(x) -1

The remaining options a), c), d), e), f), and g) are not identities produced by tweaking cos(x) = 1/sec(x).

Option a) is obtained by multiplying both sides of the given identity by sec(x).

Option c) is obtained by multiplying both sides of the given identity by cos(x).

Option d) is obtained by subtracting cos(x)/sec(x) from both sides of the given identity.

Option e) is a completely different identity that cannot be obtained from cos(x) = 1/sec(x) through tweaking.

Option f) is obtained by taking the reciprocal of both sides of the given identity.

None of the remaining options a), c), d), e), and f) is the correct identity produced by tweaking cos(x) = 1/sec(x).

Therefore, the correct answer is option b) 0 = cos(x) sec(x) - 1.

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Use the method of Lagrange multipliers to find the maximum and minimum of f(x,y) = 5xy subject to x² + y² = 162. Select the correct choice below and, if necessary, fill in the answer boxes to complete your choice. O A. The maximum value is .... It occurs at the point(s) given by the ordered pair(s) ..... (Use a comma to separate answers as needed.) O B. The function does not have a maximum. Select the correct choice below and, if necessary, fill in the answer boxes to complete your choice. O A. The minimum value is .... It occurs at the point(s) given by the ordered pair(s) .... (Use a comma to separate answers as needed.) O B. The function does not have a minimum.

Answers

Using the method of Lagrange multipliers, the maximum value is 405. It occurs at the points given by the ordered pairs (9√2, 9√2) and (-9√2, -9√2). The minimum value is 162 at the points (±9√2) and (±9√2). Therefore, the correct choice is option A.

Given function is f(x,y) = 5xy, and x² + y² = 162. Now, we will use the method of Lagrange multipliers to find the maximum and minimum of f(x,y) = 5xy subject to x² + y² = 162.

The function f(x,y) = 5xy is to be optimized subject to a constraint x² + y² = 162. The method of Lagrange multipliers consists of the following steps. Let F(x, y, λ) = 5xy - λ(x² + y² - 162), then we find the gradient vectors of the function F, which are:∇F(x, y, λ) = [∂F/∂x, ∂F/∂y, ∂F/∂λ] = [5y - 2λx, 5x - 2λy, -x² - y² + 162].

Next, we equate each of the gradient vectors to the zero vector. i.e., ∇F(x, y, λ) = 0.Therefore, we have; 5y - 2λx = 0, 5x - 2λy = 0 and -x² - y² + 162 = 0.

From the first equation, we have λ = 5y/2x. We will substitute this value of λ into the second equation to get 5x - 2(5y/2x)y = 0. This simplifies to 5x - 5y = 0, and we have x = y. Next, we will substitute x = y into the equation x² + y² = 162. This will give us;2x² = 162. Therefore, x = ±9√2. And since x = y, then y = ±9√2.

Then, we will substitute these values of x and y into the function f(x,y) = 5xy to get the corresponding function values. f(9√2, 9√2) = 405, f(-9√2, -9√2) = 405, f(9√2, -9√2) = -405 and f(-9√2, 9√2) = -405.

The maximum value is 405. It occurs at the points given by the ordered pairs (9√2, 9√2) and (-9√2, -9√2).Therefore, the correct choice is option A. The maximum value is 405. It occurs at the points given by the ordered pairs (9√2, 9√2) and (-9√2, -9√2).

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( ) 2) if the sum of concurrent forces is zero, the sum of moments of these forces is also zero

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The statement is true, "if the sum of concurrent forces is zero, the sum of moments of these forces is also zero". Explanation: The given statement is true because the sum of concurrent forces, when added together, would result in zero since they would be moving in opposite directions.

It is important to understand that concurrent forces are those forces that act upon a single point and result in motion in a different direction from each of the forces acting on their own. The sum of moments of these forces would also be zero as the forces would be in balance.In physics, forces are actions exerted on a body which changes its state of rest or motion. The term moments refer to the amount of force that acts on an object at a certain distance from the point of rotation. When it comes to studying forces, there are two types of forces namely:Non-concurrent forces: These are forces that do not meet at a single point but instead act at different points. If the sum of non-concurrent forces is zero, the sum of moments of these forces will not be zero.Concurrent forces: These are forces that meet at a single point and are acting in different directions. If the sum of concurrent forces is zero, the sum of moments of these forces will also be zero.

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The given statement that states that if the sum of concurrent forces is zero, the sum of moments of these forces is also zero is true.

In this statement, there are three terms: sum, moments, and concurrent.The sum of forces can be defined as the addition of all forces present in a system.

Concurrent forces are those forces that act on the same point in a system. The sum of forces can be determined by finding the resultant force of the concurrent forces that are acting on a body or a system.

Resultant force is a single force that has the same effect as all of the concurrent forces acting together.The moment of a force can be defined as the turning effect of the force on a point or system. The moment is calculated by multiplying the magnitude of the force by the perpendicular distance from the point to the line of action of the force.

If the sum of concurrent forces is zero, it means that the resultant force is zero, and there is no movement or acceleration in the system. When the sum of concurrent forces is zero, then it can be deduced that there is no unbalanced force that can produce motion in the system.

If there is no unbalanced force present in a system, then the sum of moments of these forces will also be zero. This is because there will be no turning effect of the force on a point or system. When there is no turning effect, there will be no moment of force produced on the system, and the sum of moments will be zero.

Therefore, the given statement is true.

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Let r be a primitive root of the odd prime p. Prove the following:

If p = 3 (mod4), then -r has order (p - 1)/2 modulo p.

Answers

Let r be a primitive root of the odd prime p.

Then, r has order (p - 1) modulo p.

This indicates that $r^{p-1} \equiv 1\pmod{p}$.

Therefore, $r^{(p-1)/2} \equiv -1\pmod{p}$.

Also, we can write that $(p-1)/2$ is an odd integer.

As p is 3 (mod 4), we can say that $(p-1)/2$ is an odd integer.

For example, when p = 7, (p-1)/2 = 3.

Let's consider $(-r)^{(p-1)/2} \equiv (-1)^{(p-1)/2} \cdot r^{(p-1)/2} \pmod{p}$;

as we know, $(p-1)/2$ is odd, we can say that $(-1)^{(p-1)/2} = -1$.

Therefore, $(-r)^{(p-1)/2} \equiv -1 \cdot r^{(p-1)/2} \equiv -1 \cdot (-1) = 1 \pmod{p}$.

This shows that the order of $(-r)^{(p-1)/2}$ modulo p is (p-1)/2.

As $(-r)^{(p-1)/2}$ has order (p-1)/2 modulo p, then -r has order (p-1)/2 modulo p.

This completes the proof.

The word "modulus" has not been used in the solution as it is a technical term in number theory and it was not necessary for this proof.

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Let F(x, y, z)= y²z³ + x³z.
a. Find the gradient of F at the point P(1, -1, 2).
b. Find the directional derivative of F at the point P(1,-1, 2) in the direction of the vector v=i-2j +3 k.
c. Find the maximum rate of change of F at P(1, -1, 2) and the direction in which it occurs.

Answers

a. The gradient of F at the point P(1, -1, 2) is

∇F(1, -1, 2) [tex]= (3z, 2yz^3, 3y^2z^2 + x^3).[/tex]

b. The directional derivative of F at the point P(1, -1, 2) in the direction of the vector v = i - 2j + 3k is[tex]D_vF(1, -1, 2) = -4.[/tex]

c. The maximum rate of change of F at P(1, -1, 2) occurs in the direction of the gradient vector ∇F(1, -1, 2) = (6, -4, 3).

a. The gradient of a function F(x, y, z) is given by ∇F = (∂F/∂x, ∂F/∂y, ∂F/∂z).

Taking the partial derivatives of F(x, y, z) = y²z³ + x³z, we have ∂F/∂x = 3x²z, ∂F/∂y = 2yz³, and ∂F/∂z = 3y²z² + x³.

Evaluating these partial derivatives at P(1, -1, 2), we obtain ∇F(1, -1, 2) = (3(2), 2(-1)(2)³, 3(-1)²(2)² + 1³) = (6, -16, -6 + 1) = (6, -16, -5).

b. The directional derivative of F in the direction of a vector v = ai + bj + ck is given by [tex]D_vF[/tex] = ∇F · v, where ∇F is the gradient of F and · denotes the dot product.

Substituting the values, we have [tex]D_vF[/tex](1, -1, 2) = (6, -16, -5) · (1, -2, 3) = 6(1) + (-16)(-2) + (-5)(3) = -4.

c. The maximum rate of change of F at a point occurs in the direction of the gradient vector. Thus, at P(1, -1, 2), the maximum rate of change of F occurs in the direction of the gradient ∇F(1, -1, 2) = (6, -16, -5).

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Solve the system. Give answers as (x, y, z)
6x-3y-5z= -21
12x+3y-4z= 12
-24x + 3y + 1z = -9

Answers

Therefore, the solution of the system is (x, y, z) = (-5/3, -10.067, -2.8).

(x, y, z) = (-5/3, -10.067, -2.8).

The given system of linear equations is 6x - 3y - 5z = -21, 12x + 3y - 4z = 12 and -24x + 3y + z = -9.

To solve the system, we'll use elimination method to find the values of x, y, and z:1.

Multiply the first equation by 2:6x - 3y - 5z = -2112x - 6y - 10z = -42

Adding both equations will eliminate y and z:18x = -30x = -30/18x = -5/32.

Substituting the value of x in the first and third equation will eliminate y:-24(-5/3) + 3y + z = -9-40 + 3y + z = -9

→ 3y + z = 31 ... (i)6(-5/3) - 3y - 5z = -21-10 + 3y + 5z = 21

→ 3y + 5z = 31 ... (ii)From (i) and (ii), we have:

3y + z = 31 ... (i)

3y + 5z = 31 ... (ii)

Multiplying (i) by -5 and adding to (ii) will eliminate

y:3y + z = 31 ... (i)-15y - 5z = -155z = -14z = 14/-5z = -2.8

Substituting z = -2.8 and x = -5/3 in the second equation will give y:-24(-5/3) + 3y - 2.8 = -9 40 + 3y - 2.8 = -9 3y = -30.2y = -10.067

Therefore, the solution of the system is (x, y, z) = (-5/3, -10.067, -2.8).

(x, y, z) = (-5/3, -10.067, -2.8).

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