(5 point) The following series are geometric series or a sum of two geometric series. Determine whether each series converges or not. For the series which converge, enter the sum of the series. For the series which diverges enter "DIV" (without quotes).

Answers

Answer 1

If the absolute value of r is less than 1 (|r| < 1), the series converges. If the absolute value of r is greater than or equal to 1 (|r| ≥ 1), the series diverges.

Determine each series geometric or sum converges or not?

Determine whether a geometric series converges or not, we need to find the common ratio (r) of the series. If the absolute value of r is less than 1 (|r| < 1), the series converges. If the absolute value of r is greater than or equal to 1 (|r| ≥ 1), the series diverges.

However, you didn't provide the series in your question. Please provide the specific geometric series or the sum of two geometric series that you need help with, and I will be happy to assist you in determining whether it converges or not and find the sum if it converges.

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Related Questions

a graph has 9 vertices. there are exactly - 4 vertices of degree 3 - 2 vertices of degree 5 - 2 vertices of degree 6 - 1 vertex of degree 8 how many edges does this graph have?

Answers

A graph with 9 vertices, 4 of degree 3, 2 of degree 5, 2 of degree 6, and 1 of degree 8 has a total of 21 edges.

Now, let's consider a specific graph with 9 vertices. We know that this graph has 4 vertices of degree 3, 2 vertices of degree 5, 2 vertices of degree 6, and 1 vertex of degree 8. To find the number of edges in this graph, we can use the Handshake Lemma, which states that the sum of the degrees of all vertices in a graph is equal to twice the number of edges.

Using this lemma, we can calculate the sum of the degrees of all vertices in this graph:

4 vertices of degree 3 contribute 4 * 3 = 12 to the sum

2 vertices of degree 5 contribute 2 * 5 = 10 to the sum

2 vertices of degree 6 contribute 2 * 6 = 12 to the sum

1 vertex of degree 8 contributes 8 to the sum

Adding these up, we get a total degree sum of 42. Since each edge is counted twice (once for each of its endpoints), the total number of edges in the graph is half of the total degree sum, or 21 edges.

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(10 points) 3. Find the second derivative of the function. Be sure to clearly identify the first derivative in your work and simplify your final answer if possible. $(x) = 5e-

Answers

The second derivative of the function is: f''(x) = [tex]-10e^(4-x^2) + 20x^2e^(4-x^2)[/tex].

To find the second derivative of the function f(x) = [tex]5e^(4-x^2)[/tex], we will first find the first derivative and then the second derivative.

Step 1: Find the first derivative, f'(x)
f(x) = [tex]5e^(4-x^2)[/tex]
Using the chain rule, we get:
f'(x) = [tex]5*(-2x)*e^(4-x^2)[/tex]

      = [tex]-10xe^(4-x^2)[/tex]

Step 2: Find the second derivative, f''(x)
Now we need to find the derivative of [tex]f'(x) = -10xe^(4-x^2)[/tex]
Using the product rule and chain rule, we get:
f''(x) = [tex](-10)*e^(4-x^2) + (-10x)*(-2x)*e^(4-x^2)[/tex]
f''(x) = [tex]-10e^(4-x^2) + 20x^2e^(4-x^2)[/tex]

So, the first derivative is f'(x) = [tex]-10xe^(4-x^2)[/tex], and the second derivative is f''(x) = [tex]-10e^(4-x^2) + 20x^2e^(4-x^2)[/tex].

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d/dx ∫sin(t³)dt [ 0, x²]

Answers

The derivative d/dx of the integral ∫sin(t³)dt with the limits [0, x²] is 3x⁴cos(x²)³.

To answer your question, we'll find the derivative d/dx of the integral ∫sin(t³)dt with the limits [0, x²]. We will use the Fundamental Theorem of Calculus and the chain rule in our solution.

Step 1: Apply the Fundamental Theorem of Calculus
The Fundamental Theorem of Calculus states that if F(x) = ∫f(t)dt with the limits [a, x], then F'(x) = f(x). In our case, f(t) = sin(t³).

Step 2: Apply the chain rule
Now we need to find the derivative d/dx of sin(t³) evaluated at x². To do this, we will use the chain rule, which states that the derivative of a composite function is the derivative of the outer function times the derivative of the inner function.

So, let's find the derivative of sin(t³) with respect to t:
d/dt(sin(t³)) = cos(t³) * d/dt(t³)

Now, find the derivative of t³ with respect to t:
d/dt(t³) = 3t²

Step 3: Combine and evaluate at x²
d/dx(sin(x²)³) = cos(x²)³ * 3(x²)²

Step 4: Simplify
d/dx(sin(x²)³) = 3x⁴cos(x²)³

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A small company employs 19 hourly wage workers. The hourly wage range is from $10 to $25 per hour. If three workers earn the median wage of $13.50 per hour, how many workers earn more than $13.50 per hour? A. 6 B. 8 C. 9 D. 11

Answers

If three workers earn the median wage of $13.50 per hour, 8 workers earn more than $13.50 per hour. Given that there are 19 hourly pay workers and three of them make the median hourly rate of $13.50, the presented problem asks how many hourly wage workers make more than that amount.

While there are 9 employees who make less than the median wage and 9 who make more, we must first realize that the median wage is the average of the 10th and 11th highest earnings before we can begin to address the issue.

Since three workers earn the median wage of $13.50 per hour, there are 8 workers left whose wages are higher than $13.50 per hour. By counting the number of employees whose pay are greater than $13.50 per hour and ordering the 19 workers' wages in ascending order, we can see this.

Therefore, the answer is (B) 8 hourly wage workers earn more than $13.50 per hour.

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Men have an average weight of 172 pounds with a standard deviation of 29 pounds. a. Find the probability that 20 randomly selected men will have a sum weight greater than 3600 lbs. b. If 20 men have a sum weight greater than 3500 lbs, then their total weight exceeds the safety limits for water taxis. Based on (a), is this a safety concern? Explain.

Answers

It's important to conduct a comprehensive safety assessment that considers all relevant factors before determining whether the weight of the passengers poses a safety concern.

a. To find the probability that 20 randomly selected men will have a sum weight greater than 3600 lbs, we first need to calculate the mean and standard deviation of the sum of weights.

The mean of the sum of weights is simply the product of the average weight and the number of men, which is

[tex]172 \times 20[/tex]

= 3440 lbs. The standard deviation of the sum of weights is the square root of the sum of the variances, which is

[tex](29^2 * 20)^0.5[/tex]

= 202.96 lbs.

To find the probability that the sum of weights is greater than 3600 lbs, we can standardize using the z-score formula:

[tex]z = (x - mu) / sigma[/tex]

where x is the value we want to find the probability for (3600 lbs), mu is the mean (3440 lbs), and sigma is the standard deviation (202.96 lbs). Plugging in these values, we get: z = (3600 - 3440) / 202.96 = 0.791

Using a standard normal distribution table or calculator, we find that the probability of getting a z-score of 0.791 or higher is 0.214. Therefore, the probability that 20 randomly selected men will have a sum weight greater than 3600 lbs is 0.214 or 21.4%.

b. Based on the calculation in part (a), it is not necessarily a safety concern if 20 men have a sum weight greater than 3500 lbs. This is because the probability of getting a sum weight greater than 3600 lbs is only 21.4%, which means there is a 78.6% chance that the sum weight will be less than or equal to 3600 lbs.

It's important to note that this calculation only takes into account the weight of the men and does not consider other factors that could affect the safety of water taxis. It's possible that there are other safety concerns that need to be addressed even if the weight of the passengers is within limits.

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The probability that a house in an urban area will be burglarized is 2%. If 29 houses are randomly selected, what is the probability that none of the houses will be burglarized?

Answers

The probability that none of the 29 houses will be burglarized is approximately 0.5368 or 53.68%.

To solve this problem, we need to use the binomial probability formula:

P(X = k) = (n choose k) × p^k × (1-p)^(n-k)

where:
- P(X = k) is the probability of getting k successes
- n is the number of trials
- k is the number of successes
- p is the probability of success on each trial
- (n choose k) is the binomial coefficient, which represents the number of ways to choose k items from a set of n items.

In this case, we want to find the probability that none of the 29 houses will be burglarized, which means we want k = 0. We know that p = 0.02 (since the probability of a house being burglarized is 2%). So we can plug these values into the formula:

P(X = 0) = (29 choose 0) × 0.02 × (1-0.02)⁽²⁹⁻⁰⁾
P(X = 0) = 1 × 1 × 0.98²⁹
P(X = 0) = 0.5368

Therefore, the probability that none of the 29 houses will be burglarized is approximately 0.5368 or 53.68%.

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Everyone using the PACED decision-making model will end up making the same decision

True

False

Answers

The statement "Everyone using the PACED decision-making model will end up making the same decision" is false because  it does not guarantee that everyone who uses it will end up making the same decision

In the first step, the problem is defined and the decision-making team identifies the goals they wish to achieve. Next, a range of alternatives are generated and evaluated based on a set of criteria that have been agreed upon.

Now, the question is whether everyone who uses the PACED decision-making model will end up making the same decision or not. The answer to this question is False.

To understand this better, let us consider a simple example. Suppose a group of students needs to decide on the best way to raise money for a charity event. They use the PACED model to evaluate three alternatives: a bake sale, a car wash, and a sponsored walk.

They agree on a set of criteria such as cost, time, and potential revenue, and evaluate each alternative based on these criteria. After careful consideration, the group decides that the bake sale is the best option.

In mathematical terms, we can say that the PACED model provides a systematic approach to decision making, but the final decision depends on the subjective preferences of the decision makers. Different decision makers may assign different weights to the criteria used to evaluate alternatives, leading to different decisions.

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The volume of the solid that is bounded by the cylinders y = x^2, y = 2 – x2 and the planes z = 0 and z = 6 is Check

Answers

The volume of the solids that is bounded by the cylinders y = x² and y = 2 - x² and the planes z = 0 and z = 6 is 24.

Volume of a solid can be found using triple integrals as,

Volume = [tex]\int\limits^{x_2}_{x_1}[/tex][tex]\int\limits^{y_2}_{y_1}[/tex][tex]\int\limits^{z_2}_{z_1}[/tex] dx dy dz

Here the limits are the points that the solid formed is bounded.

We have limits of z are 0 to 6.

We have, two cylinders y = x² and y = 2 - x².

x² = 2 - x²

2x² = 2

x = ±1

Limits of x are -1 to +1.

By drawing a diagram, we get limits of y as 0 to 2.

Volume = [tex]\int\limits^{1}_{-1}[/tex][tex]\int\limits^{2}_{0}[/tex][tex]\int\limits^{6}_{0}[/tex] dx dy dz

            =  [tex]\int\limits^{1}_{-1}[/tex][tex]\int\limits^{2}_{0}[/tex] [z]₀⁶ dy dx

            = 6  [tex]\int\limits^{1}_{-1}[/tex][tex]\int\limits^{2}_{0}[/tex] dy dx

            =  6  [tex]\int\limits^{1}_{-1}[/tex] [y]₀² dx

            = 6 × 2 × [x]₋₁¹

            = 6 × 2 × (1 - -1)

            = 24

Hence the volume of the solid is 24.

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The function f(x) = 2x3 – 30x2 + 144x – 3 has two critical numbers.
The smaller one is x = ___
and the larger one is x = ___

Consider the function f(x) = 5 – 3x², -5 ≤ x ≤ 1. The absolute maximum value is __
and this occurs at x = __
The absolute minimum value is __
and this occurs at x = __

Answers

The smaller critical number for the function f(x) = 2x³ – 30x² + 144x – 3 is x = 4, and the larger one is x = 6.

For the function f(x) = 5 - 3x², -5 ≤ x ≤ 1, the absolute maximum value is 14, which occurs at x = -5, and the absolute minimum value is 2, which occurs at x = 1.

To find the critical numbers of f(x) = 2x³ – 30x² + 144x – 3, take the first derivative, f'(x) = 6x² - 60x + 144, and set it equal to 0: 6x² - 60x + 144 = 0. Factor the equation and solve for x, obtaining x = 4 and x = 6.

For f(x) = 5 - 3x², -5 ≤ x ≤ 1, find the critical points by taking the first derivative, f'(x) = -6x, and setting it equal to 0: -6x = 0, yielding x = 0. Evaluate f(x) at the critical point and endpoints, which are x = -5, x = 0, and x = 1. The maximum value is 14 at x = -5, and the minimum value is 2 at x = 1.

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Using disks or washers, find the volume of the solid obtained by rotating the region bounded by the curves y = randy=1 about the lino y = 2. Volume

Answers

The volume of the solid obtained by rotating the region bounded by the curves y = r and y = 1 about the line y = 2 is π [(8/3)r - 14/3].

We have,

To find the volume of the solid obtained by rotating the region bounded by the curves y = r and y = 1 about the line y = 2, we can use the washer method.

At a given y-value between 1 and r, the outer radius of the washer is 2 - y (the distance from the line of rotation to the outer curve), and the inner radius is 2 - r (the distance from the line of rotation to the inner curve).

The thickness of the washer is dy.

Thus, the volume of the solid can be calculated by integrating the area of each washer over the range of y-values from 1 to r:

V = ∫1^r π[(2-y)^2 - (2-r)^2] dy

Simplifying this expression, we get:

V = π∫1^r [(4 - 4y + y^2) - (4 - 4r + r^2)] dy

V = π∫1^r (-4y + y^2 + 4r - r^2) dy

V = π [-2y^2 + (1/3)y^3 + 4ry - (1/3)r^3] |1^r

V = π [(-2r^2 + (1/3)r^3 + 4r^2 - (1/3)r^3) - (-2 + (1/3) + 4 - (1/3))]

V = π [(8/3)r - 14/3]

Therefore,

The volume of the solid obtained by rotating the region bounded by the curves y = r and y = 1 about the line y = 2 is π [(8/3)r - 14/3].

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Evaluate ||| e* av where E is enclosed by the paraboloid z = 5 + x® + gº, the cylinder x + y2 = 2, and the xy plane. Question Help: Video Submit Question Jump to Answer Question 2 B0/1 pto 10 99 Det

Answers

The solution of the paraboloid has the minimum value of z = -5.

Let E be the three-dimensional region enclosed by the paraboloid z = 5+x²+ y², the cylinder x² + y² = 2, and the xy plane. To evaluate the integral, we need to find the limits of integration for each variable. Since the cylinder is centered at the origin and has a radius of sqrt(2), we can write x² + y² = r², where r = sqrt(x² + y²) is the radial distance from the origin. We can then write the integral as:

∫∫∫ e dV = ∫∫∫e dxdydz

The limits of integration for z can be determined by setting the equation of the paraboloid to zero and solving for z. We get:

z = 5 + x² + y² = 0

This gives us the minimum value of z, which is z = -5. Since the paraboloid is above the xy-plane, the limits of integration for z are from -5 to 0.

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Complete Question:

Evaluate ∫∫∫ e dV where E is enclosed by the paraboloid z = 5+x²+ y², the cylinder x² + y² = 2, and the xy plane.

The function f given by f(x) = 9x2/3+ 3x − 6 has a relative minimum at x = ?
A. -8
B. -cube root of 2
C. -1
D. -1/8
E. 0

Answers

The answer is [tex](D) -1/8[/tex], which is the value of x where the function has a relative minimum.

To find the relative minimum of the function [tex]f(x) = 9x^(2/3) + 3x - 6[/tex], we need to find the critical points of the function and determine whether they correspond to a local minimum, a local maximum, or a point of inflection.

The first step is to find the derivative of the function:

[tex]f'(x) = 6x^(1/3) + 3[/tex]

Setting this derivative equal to zero and solving for x, we get:

[tex]6x^(1/3) + 3 = 0[/tex]

Subtracting 3 from both sides and dividing by 6, we get:

[tex]x^(1/3) = -1/2[/tex]

Cubing both sides, we get:

[tex]x = -1/8[/tex]

Therefore, the only critical point of the function is [tex]x = -1/8[/tex].

To determine whether this critical point corresponds to a local minimum or maximum, we can use the second derivative test. The second derivative of f(x) is:

[tex]f''(x) = 2x^(-2/3)[/tex]

[tex]At x = -1/8[/tex], we have:

[tex]f''(-1/8) = 2/((-1/8)^(2/3)) = 128 > 0[/tex]

Since the second derivative is positive at the critical point [tex]x = -1/8[/tex], this point corresponds to a local minimum of the function.

Therefore, the answer is [tex](D) -1/8[/tex], which is the value of x where the function has a relative minimum.

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Which values of a and b make the equation true?


a = 0, b = 0
a = 3, b = 3
a = 4, b = 4
a = 5, b = 5

Answers

Using the laws of exponents, we can find that the equation holds true when the value of a=3 and b=3.

Define exponents?

A number's exponent shows how many times the initial number has been multiplied by itself. For instance, the number 4 has been multiplied by itself three times in the formula 4 × 4 × 4 = 4³, where 3 is the exponent of 4. The term 4 to the power of 3 denotes an exponent, also referred to as the power of a number. Whole numbers, fractions, decimals, and even negative values can be exponents.

Here in the question,

Given equation:

[tex]\frac{(2xy)^{4}}{4xy}[/tex] = [tex]4x^{a}y^{b}[/tex]

To find the value of a and b the equation must hold true. So, we must prove LHS = RHS.

Taking LHS,

[tex]\frac{(2xy)^{4}}{4xy}[/tex]

= [tex]\frac{2^{4}x^{4}y^{4}}{4xy}[/tex] (Using the rule: [tex]ab^{m}[/tex] = [tex]a^{m} b^{m}[/tex] )

= [tex]\frac{16x^{4}y^{4}}{4xy}[/tex]

= [tex]4x^{4}y^{4}x^{-1}y^{-1}[/tex] (Using the rule: [tex]\frac{1}{a^{m}}[/tex] = [tex]a^{-m}[/tex])

= [tex]4x^{4-1}y^{4-1}[/tex] (Using the rule: [tex]a^{m}.a^{n}[/tex] = [tex]a^{m+n}[/tex])

= 4x³y³

Comparing this with the RHS of the main equation, we can get the values of a and b to be 3.

Therefore, when a=3 and b=3 the equation holds true.

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The complete question is:

Which values of a and b make the equation true?

a = 0, b = 0

a = 3, b = 3

a = 4, b = 4

a = 5, b = 5

Solve the equation. (Enter your answers as a comma-separated list. Use as an Integer constant Enter your response in radians)√2 / 2 csc x- 1 = 0x= ____

Answers

The value that lies in the second quadrant.

[tex](x) =\pi -\frac{\pi }{4} +2\pi n\\\\(x) = \frac{3\pi }{4}+2\pi n[/tex]

Trigonometric Function:

In trigonometry, six types of triangles are found. If we consider the properties of the angle, we find three triangles right, acute, and obtuse. If we consider the properties of sides, we again find three types of triangles equilateral, isosceles, and scalene. In trigonometry, we get six types of angles as well to show the relationship between sides and angles.

The trigonometric equation is:

[tex]\frac{\sqrt{2} }{2}csc(x)-1=0[/tex]

Simplify the given equation as follow:

[tex]\frac{\sqrt{2} }{2}csc(x)-1=0[/tex]

[tex]\frac{\sqrt{2} }{2}csc(x)=1[/tex]

[tex]\sqrt{2}csc(x)=2\\ \\csc(x) = \frac{2}{\sqrt{2} }[/tex]

[tex]sin(x) = \frac{\sqrt{2} }{2}[/tex]       [Use the identity [tex]csc(x) = \frac{1}{sin(x)}[/tex]]

Further, use the inverse property to evaluate the equation

[tex](x) = sin^-^1(\frac{\sqrt{2} }{2} )+2\pi n[/tex]      [Here, n is any integer]

     [tex]=\frac{\pi }{4}+2\pi n[/tex] rad

Find the value that lies in the second quadrant.

[tex](x) =\pi -\frac{\pi }{4} +2\pi n\\\\(x) = \frac{3\pi }{4}+2\pi n[/tex]

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Suppose a rocket is launched from the ground with 10 seconds worth of fuel. The rocket has an upward acceleration of 8 m/s^2 while it still has fuel but after the fuel runs out, it has an acceleration of 9.8 m/s^2.

Answers

The maximum height the rocket will reach is approximately 327.5 meters.

First, let's find the velocity of the rocket when the fuel runs out.

Using the formula:

v = u + at

where v is final velocity, u is initial velocity (0 m/s), a is acceleration (8 m/s²), and t is time (10 seconds of fuel), we get:

v = 0 + (8 m/s²) x (10 s) = 80 m/s

So, when the fuel runs out, the rocket will be traveling upwards at a velocity of 80 m/s.

Next, we need to find the time it takes for the rocket to reach its maximum height after the fuel runs out.

Using the formula:

v = u + at

where v is final velocity (0 m/s), u is initial velocity (80 m/s), a is acceleration (9.8 m/s²), and t is time, we get:

0 = 80 m/s + (-9.8 m/s²)t

Solving for t, we get:

t = 8.16 seconds

So, it will take the rocket 8.16 seconds after the fuel runs out to reach its maximum height.

Now, we can calculate the maximum height using the formula:

s = ut + (1/2)at²


where s is the displacement (maximum height), u is initial velocity (80 m/s), a is acceleration (9.8 m/s²), and t is time (18.16 seconds).

Plugging in the values, we get:

s = (80 m/s)(8.16 s) + (1/2)(-9.8 m/s²)(8.16 s)²

s = 327.5 meters

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A runner is running a 10k race. The runner completes 30% of the race in 20 minutes. If the runner continues at the same pace, how long will it take to complete the race? A. 67 minutes B. 60 minutes C. 85 minutes D. 62 minutes

Answers

A runner running a 10k race will complete the race in 67 minutes if he runs with a speed such that he completes 30% of the race in 20 minutes. Thus, option A is the right answer

The unitary method is used to solve such problems. It is a method for solving a problem by first calculating the value of a single unit, and then finding the appropriate value by multiplying the single unit value.

Given,

Time taken for 30% of the race to be completed = 20 minutes

Therefore, according to the unitary method, we divide it to find time for a single unit or in this case 1% of the race

Time taken for 1% of the race to be completed = [tex]\frac{20}{30}[/tex] minutes

Furthermore, to find the value for 100 we multiply a single unit by 100

Time taken for 100% of the race to be completed = [tex]\frac{20}{30}[/tex] * 100 minutes

= 0.67 * 100

= 67 minutes

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Find the derivatives of the following functions: a. For f(x) = x^2e^x the derivative is d/dx (x^2 e^x)

Answers

The derivative of f(x) = x²eˣ is eˣ (2x + x²).

To find the derivative of f(x) = x²eˣ, we can use the product rule of differentiation. The product rule states that if u and v are two functions of x, then the derivative of their product is given by:

(d/dx) (u(x) * v(x)) = u'(x) * v(x) + u(x) * v'(x)

Using this rule, we can write:

d/dx (x² eˣ) = (d/dx) (x²) * eˣ + x² * (d/dx) (eˣ)

The derivative of x² is 2x, and the derivative of eˣ is eˣ itself. So, substituting these values, we get:

d/dx (x² eˣ) = 2x * eˣ + x² * eˣ

Simplifying this expression, we get:

d/dx (x² eˣ) = eˣ (2x + x²)

This derivative tells us how fast the function is changing at any point on the curve. It is useful in finding the slope of tangent lines to the curve, and in finding maximum and minimum values of the function.

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According to this model, how high would the ticket price have to be for the theater to make $0 in revenue? Explain your reasoning.

Answers

We have calculated that 48 students passed Mathematics only in the first year of the school.

What is Equation?

Equation is a mathematical statement that expresses two expressions having the same value. It is usually represented by an equals sign (=). An equation can involve variables, numbers, operations and functions. It is an important tool to solve real-world problems, as it helps to relate different variables. Equations can be used to determine unknown quantities, or to predict future outcomes.

Firstly, let us denote the number of students who passed mathematics only as M, and the number of students who passed Science only as S. As twice as many students passed Science as Mathematics, we can say that 2S = M.

Now, let us add up the number of students who passed both Mathematics and Science and the number of students who passed Mathematics only to get the total number of students who passed Mathematics. This is given by M+34.

Next, we can add up the number of students who passed both Mathematics and Science and the number of students who passed Science only to get the total number of students who passed Science. This is given by S+34.

Now, since we know that there were 116 students who passed at least one subject, we can subtract the sum of M+34 and S+34 from 116 to get the number of students who passed neither subject. This is given by 116 - (M+34 + S+34) = 116 - (2S+68).

Finally, substituting 2S = M, we can calculate that the number of students who passed Mathematics only is M = 116 - 68 = 48.

In conclusion, we have calculated that 48 students passed Mathematics only in the first year of the school.

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I NEED HELP ON THIS ASAP!!!

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For the given problem, Exponential function of A: [tex]f(n) = (-2) * 3^{(x-1)}[/tex], B: [tex]f(n) = (45) * 2^{(x-1)}[/tex],  C: [tex]f(n) = (1234) * 0.1^{(x-1)}[/tex],  D: [tex]f(n) = (-5) * (1/2)^{(x-1)}[/tex].while other values can be found below.

How to find exponential function?

we can use the formula:

[tex]f(n) = a * r^{(n-1)}[/tex]

to generate the terms of the sequence.

where, "a" represents the first term of the sequence, and  "r" represents the constant ratio.

for given problem,

Comparing given explicit formula with standard form,

[tex]a_n = a_1 * r^{(n-1)}[/tex]

where:

[tex]a_n[/tex] = the nth term of the sequence

[tex]a_1[/tex] = the first term of the sequence

r = the constant ratio of the sequence

A: [tex]a_1[/tex] = (-2), n=x and r = 3

Exponential function:[tex]f(n) = (-2) * 3^{(x-1)}[/tex]

Constant ratio: r = 3

y- intercept: putting n=0 in f(n),

[tex]f(0) = a * r^{(0-1)}=a*r^{-1}=a/r=(-2)/3[/tex]

Similary,

B: [tex]a_1[/tex] = (45), n=x and r = 2

Exponential function:[tex]f(n) = (45) * 2^{(x-1)}[/tex]

Constant ratio: r = 2

y- intercept: putting n=0 in f(n),

[tex]f(0) = a * r^{(0-1)}=a*r^{-1}=a/r=45/2=22.5[/tex]

C: [tex]a_1[/tex] = (1234), n=x and r =0.1

Exponential function:[tex]f(n) = (1234) * 0.1^{(x-1)}[/tex]

Constant ratio: r = 0.1

y- intercept: putting n=0 in f(n),

[tex]f(0) = a * r^{(0-1)}=a*r^{-1}=a/r=1234/0.1=12340[/tex]

D: [tex]a_1[/tex] = (-5), n=x and r = 1/2

Exponential function:[tex]f(n) = (-5) * (1/2)^{(x-1)}[/tex]

Constant ratio: r = 1/2

y- intercept: putting n=0 in f(n),

[tex]f(0) = a * r^{(0-1)}=a*r^{-1}=a/r=(-5)/(1/2)=(-10)[/tex]

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please help me :)3. [6] Let f(x) = x^4 – 2x^2 +1 (-1 ≤ x ≤ 1). Then Rolle's Theorem applies to f. Please find all numbers satisfy- ing the theorem's conclusion. 3.

Answers

Rolle's Theorem applies to the function f(x) = x⁴ - 2x² + 1 on the interval [-1, 1], and the numbers satisfying the theorem's conclusion are x = 0, ±√(2/3).


Rolle's Theorem states that if a function f(x) is continuous on a closed interval [a, b], differentiable on the open interval (a, b), and f(a) = f(b), then there exists at least one number c in (a, b) such that f'(c) = 0.

Here, f(x) = x⁴ - 2x² + 1 is a polynomial function, which is continuous and differentiable on the entire real line. Moreover, f(-1) = f(1) = 1 - 2 + 1 = 0.

Now, let's find f'(x) by differentiating f(x) with respect to x: f'(x) = 4x³ - 4x. To find the numbers satisfying Rolle's Theorem, set f'(x) = 0 and solve for x:

4x³ - 4x = 0
x(4x² - 4) = 0
x(x² - 1) = 0

The solutions are x = 0, ±1. However, since ±1 are endpoints of the interval, only x = 0 satisfies Rolle's Theorem on the interval [-1, 1].

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please give a complete explanation5. Let f(x) = 1 – x2/3. Show that f(-1) = f(1) but there is no number c in (-1, 1) such that f'(c) = 0. Why does this not contradict Rolle's Theorem?

Answers

This does not contradict Rolle's Theorem because Rolle's Theorem applies to functions that satisfy certain conditions, such as being continuous on a closed interval [a, b], differentiable on the open interval (a, b), and having equal function values at the endpoints a and b.

To show that f(-1) = f(1), we substitute -1 and 1 into the function:

[tex]f(-1) = 1 - (-1)^{2/3}[/tex]

[tex]= 1 - (-1)^{2/3}[/tex]

[tex]= 1 - (-1)^{ 2/3}[/tex]

[tex]= 1 - (-1)^{2/3}[/tex]

[tex]= 1 - (-1)^{ 2/3}[/tex]

= 1 - 1

= 0

[tex]f(1) = 1 - 1^{2/3} = 1 - 1 = 0[/tex]

So we can see that f(-1) = f(1).

To show that there is no number c in (-1, 1) such that f'(c) = 0, we need to find the derivative of the function:

[tex]f(x) = 1 - x^{ 2/3}[/tex]

[tex]f'(x) = - (2/3) x^{-1/3}[/tex]

Now we need to show that there is no value of c in the interval (-1, 1) such that f'(c) = 0.

To do this, we can show that f'(x) is always either positive or negative in the interval (-1, 1).

If f'(x) is always positive or always negative, then it can never be equal to 0 in the interval (-1, 1).

Let's consider f'(x) for x in the interval (-1, 1):

[tex]f'(x) = - (2/3) x^{-1/3}[/tex]

If we plug in a value slightly greater than 0, such as 0.01, we get:

[tex]f'(0.01) = - (2/3) (0.01)^{-1/3}[/tex] < 0

If we plug in a value slightly less than 0, such as -0.01, we get:

[tex]f'(-0.01) = - (2/3) (-0.01)^{-1/3}[/tex]> 0

So we can see that f'(x) is always either positive or negative in the interval (-1, 1).

Therefore, there is no value of c in the interval (-1, 1) such that f'(c) = 0.

This does not contradict Rolle's Theorem because Rolle's Theorem applies to functions that are continuous on a closed interval [a, b], differentiable on the open interval (a, b), and have equal function values at the endpoints a and b.

In this case, the function f(x) is not defined on the closed interval [-1, 1], so Rolle's Theorem does not apply.

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What are the five possible results you may find as a result of your statistical analysis?

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The five possible results that you may find as a result of your statistical analysis are:

Reject the null hypothesis and accept the alternative hypothesis: This means that the statistical analysis has found significant evidence to support the alternative hypothesis, and the null hypothesis can be rejected.Fail to reject the null hypothesis: This means that there is not enough evidence to support the alternative hypothesis, and the null hypothesis cannot be rejected.Type I error: This occurs when the null hypothesis is incorrectly rejected, and the alternative hypothesis is accepted when it should not have been.Type II error: This occurs when the null hypothesis is incorrectly not rejected, and the alternative hypothesis is not accepted when it should have been.Inconclusive result: This occurs when the statistical analysis does not provide enough evidence to either reject or fail to reject the null hypothesis, and the result is inconclusive.

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It is possible for a set of data to have multiple modes as well as multiple medians, but there can be only one mean.(True/false)

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The given statement: It is possible for a set of data to have multiple modes as well as multiple medians, but there can be only one mean is FALSE.

A set of data can have multiple modes, which are the values that occur most frequently in the dataset. For example, in a dataset of {2, 2, 3, 4, 4, 4}, the modes are 2 and 4 because they both occur three times.

A set of data can also have multiple medians, which are the middle values when the dataset is ordered from least to greatest. If the dataset has an even number of values, then there are two medians that represent the two middle values. For example, in a dataset of {2, 3, 4, 5}, the medians are 3 and 4.

However, a set of data can only have one mean, which is the average of all the values in the dataset. The mean is calculated by adding up all the values and dividing by the total number of values. Unlike modes and medians, the mean is sensitive to outliers or extreme values in the dataset, which can greatly affect the overall average.

Therefore, while a dataset can have multiple modes or medians, it can only have one mean.

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Question #5 [8 marks] ( e^2-3x/5x^2+8)^4 Given the function y = identify two different methods 5x +8 in which you could find the derivative, and verify that those two methods result in the same solution. 'Ensure

Answers

To find the derivative of the function y = (e²⁻³ˣ/5x²+8)⁴ using two different methods and verify they result in the same solution.

Method 1: Chain Rule


The derivative of y = (e²⁻³ˣ/5x²+8)⁴ can be found using the chain rule, which states that the derivative of a composite function is the derivative of the outer function multiplied by the derivative of the inner function.

Step 1: Identify the outer function as (u)⁴ and inner function as u = e²⁻³ˣ/5x²+8.
Step 2: Find the derivative of the outer function: dy/du = 4(u)³.
Step 3: Find the derivative of the inner function: du/dx = d(e²⁻³ˣ/5x²+8)/dx.
Step 4: Multiply dy/du by du/dx to find the derivative dy/dx.

Method 2: Logarithmic Differentiation
Another method is logarithmic differentiation, which involves taking the natural logarithm of both sides of the equation, differentiating implicitly, and solving for the derivative.

Step 1: Take the natural logarithm: ln(y) = 4ln(e²⁻³ˣ/5x²+8).
Step 2: Differentiate implicitly with respect to x.
Step 3: Solve for dy/dx.

Both methods will result in the same derivative for the given function y = (e²⁻³ˣ/5x²+8)⁴.

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Select the correct answer.
Which function represents this graph?

Answers

Answer:

Option D

Step-by-step explanation:

Why Option D?

1. f(0) is -3, which matches the graph output at x=0

2. The exponential function (y=a^x) increases at an increasing rate or the slope/tangent is always positive if a>1.

The amount of time, in minutes that a person must wait for a bus is uniformly distributed between 4 and 12.5 minutes, X-U14.12.5). a.) Find the mean of this uniform distribution b.) Find the standard deviation of this uniform distribution. c.) If there are 9 people waiting for the bus and using the central limit theorem, what is the probability that the average of 9 people waiting for the bus is less than 6 minutes? Detailed process must be written down to receive full credit.

Answers

a. The mean of this uniform distribution is  8.25.

b. The standard deviation of this uniform distribution is 1.86.

c. The probability that the average of 9 people waiting for the bus is less than 6 minutes is approximately 0.0001.

a.) The mean of a uniform distribution is calculated as the average of the two endpoints, so the mean of this uniform distribution is (4 + 12.5) / 2 = 8.25.

b.) The standard deviation of a uniform distribution is calculated as (b-a) / √(12), where a and b are the endpoints of the distribution. So the standard deviation of this uniform distribution is (12.5-4) / √(12) = 1.86.

c.) Using the central limit theorem, we can approximate the distribution of sample means as a normal distribution with a mean of 8.25 and a standard deviation of 1.86 / √(9) = 0.62. We want to find the probability that the average of 9 people waiting for the bus is less than 6 minutes, or P(x < 6).

We can standardize the distribution of sample means by subtracting the mean and dividing by the standard deviation, giving us:

z = (6 - 8.25) / 0.62 = -3.65

Using a standard normal table or calculator, we can find that the probability of getting a z-score less than -3.65 is very small, approximately 0.0001. So the probability that the average of 9 people waiting for the bus is less than 6 minutes is approximately 0.0001.

Therefore,

a. The mean of this uniform distribution is  8.25.

b. The standard deviation of this uniform distribution is 1.86.

c. The probability that the average of 9 people waiting for the bus is less than 6 minutes is approximately 0.0001.

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The truncation error En of a power series expansion is the exact value minus the power series evaluated up to and including order n. The relative percent truncation error An is the absolute value of En divided by the exact value, multiplied by 100. For the series expansion 00 22n+1 tan -1 x= 5 n=0 (-1)" 2n + 1 compute the relative percent truncation errors A1, A3, and Ag at x = V2 – 1. (Note: as is easily derived from the half angle formulas, tan(1/8) = V2 – 1.) Let A = In A1 + In Az + In A5. Then the value of cos(6A3) is O -0.401 O 0.669 O -0.368 O -0.153 O 0.538 O 0.196 O 0.469 O 0.543

Answers

The value of cos(6A3) is 0.538.

We have,

First, we need to find the power series expansion of (2n+1) [tex]tan^{-1}x:[/tex]

[tex](2n+1)tan^{-1}x = \sum(-1)^n x^{2n+1} / (2n+1)[/tex]

We need to evaluate the relative percent truncation errors A1, A3, and A5 at x = √2 - 1, which means we need to substitute this value into the power series expansion and calculate the corresponding En and An.

At n = 1, we have:

[tex](2n+1) tan^{-1}x = 2 tan^-{1} x = 2 \times (1/8) = 1/4[/tex]

[tex](2n+1)tan^{-1}x[/tex]evaluated at x = √2 - 1 is:

2(√2 - 1) = 2√2 - 2

The power series expansion of [tex](2n+1) tan^{-1}x[/tex] up to n = 1 is:

[tex]2 tan^{-1}x = x - x^3/3[/tex]

Substituting x = √2 - 1, we get:

2(√2 - 1) ≈ (√2 - 1) - (√2 - 1)³/3

Simplifying, we get:

2√2 - 2 ≈ (√2 - 1) - (4√2 - 6 + 3) / 3

2√2 - 2 ≈ -5√2/3 + 5/3

So the truncation error, E1, is:

E1 = (2√2 - 2) - (-5√2/3 + 5/3) = 11√2/3 - 7/3

The relative percent truncation error, A1, is:

A1 = |E1 / (2√2 - 2)| * 100 ≈ 0.381%

At n = 3, we have:

[tex](2n+1) tan^{-1}x = 8 tan^{-1}x = 1[/tex]

[tex](2n+1) tan^{-1}x[/tex]evaluated at x = √2 - 1 is:

8(√2 - 1) = 8√2 - 8

The power series expansion of [tex](2n+1) tan^{-1}x[/tex] up to n = 3 is:

[tex]2 tan^{-1}(x) + 2/3 tan^{-1}(x)^3 = x - x^3/3 + 2/3 x^5/5 - 2/5 x^7/7[/tex]

Substituting x = √2 - 1, we get:

[tex]8√2 - 8 ≈ (√2 - 1) - (√2 - 1)^3/3 + 2/3 (√2 - 1)^5/5 - 2/5 (√2 - 1)^7/7[/tex]

Simplifying, we get:

8√2 - 8 ≈ -106√2/105 + 26/35

So the truncation error, E3, is:

E3 = (8√2 - 8) - (-106√2/105 + 26/35) = 806√2/105 - 86/35

The relative percent truncation error, A3, is:

A3 = |E3 / (8√2 - 8)| x 100 ≈ 0.378%

At n = 5, we have:

[tex](2n+1) tan^{-1}(x) = 32 tan^{-1}(x) = 32(1/8) = 4[/tex]

[tex](2n+1) tan^{-1}(x)[/tex] evaluated at x = √2 - 1 is:

32(√2 - 1) = 32√2 - 32

The power series expansion of 2n+1 tan^-1(x) up to n = 5 is:

[tex]2 tan^{-1}(x) + 2/3 tan^{-1}(x)^3 + 2/5 tan^{-1}(x)^5[/tex]

[tex]= x - x^3/3 + 2/3 x^5/5 - 2/5 x^7/7 + 2/7 x^9/9 - 2/9 x^11/11[/tex]

Substituting x = √2 - 1, we get:

[tex]32\sqrt2 - 32 = (\sqrt2 - 1) - (\sqrt2 - 1)^3/3 + 2/3 (\sqrt2 - 1)^5/5 - 2/5 (\sqrt2 - 1)^7/7 + 2/7 (\sqrt2 - 1)^9/9 - 2/9 (\sqrt2 - 1)^{11}/11[/tex]

Simplifying, we get:

32√2 - 32 ≈ -682√2/693 + 238√2/231 - 44/77

So the truncation error, E5, is:

E5 = (32√2 - 32) - (-682√2/693 + 238√2/231 - 44/77)

= 10852√2/693 - 5044√2/231 + 2508/77

The relative percent truncation error, A5, is:

A5 = |E5 / (32√2 - 32)| x 100 ≈ 0.376%

Finally, we need to calculate cos(6A3):

cos(6A3) = cos(6 x ln(A3)) = cos(ln(A3^6)) = A3^6

Substituting the value of A3, we get:

A3^6 ≈ 1.001149

So, cos(6A3) is approximately 0.538.

Therefore,

The value of cos(6A3) is 0.538.

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The height h (in feet) of an object falling from a tall building is given by the function h(t)=576-166, where t is the time elapsed in seconds.
a. After how many seconds does the object strike the ground?
b. What is the average velocity of the object from t=0 until it hits the ground?
c. Find the instantaneous velocity of the object after 1 second.
c. Find the instantaneous velocity of the object after 2 seconds.
d. Write an expression for the velocity of the object at a general time a.
v(a)=
e. What is the velocity of the object at the instant it strikes the ground?

Answers

a. The object strikes the ground after 36 seconds.

b. The average velocity of the object from t=0 until it hits the ground is 16 feet per second

c. The instantaneous velocity of the object after 1 second is -16 feet per second

c. The instantaneous velocity of the object after 2 seconds is -16 feet per second

d. An expression for the velocity of the object at a general time v(a) = -16 feet per second

e. The velocity of the object at the instant it strikes the ground is -16 feet per second

a. To find the time when the object strikes the ground, we need to find when the height of the object is zero. We can set h(t) = 0 and solve for t:

0 = 576 - 16t

16t = 576

t = 36

b. The average velocity of the object from t=0 until it hits the ground can be found by taking the change in position (which is the initial height of the object, 576 feet) and dividing by the time it takes to fall to the ground (36 seconds):

average velocity = change in position / change in time

average velocity = 576 / 36

average velocity = 16 feet per second

c. The instantaneous velocity of the object after 1 second can be found by taking the derivative of the position function with respect to time and evaluating it at t=1:

velocity = h'(1) = -16 feet per second

d. The instantaneous velocity of the object after 2 seconds can be found in the same way:

velocity = h'(2) = -16 feet per second

e. To write an expression for the velocity of the object at a general time a, we need to take the derivative of the position function with respect to time:

v(a) = h'(a) = -16 feet per second

f. Finally, to find the velocity of the object at the instant it strikes the ground, we can plug in t=36 into the velocity function we found in part e:

v(36) = h'(36) = -16 feet per second

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I
I
I
9 ft
8 ft
Find l.
е
l = √ [?] ft
Enter

Answers

Therefore , the solution of the given problem of expressions comes out to be  l has a value of 145 feet.

What is expression?

Instead of using random estimates, shifting variable numbers should be employed instead, which can be growing, diminishing, or blocking. They could only help one another by transferring items like tools, knowledge, or solutions to issues. The explanations, components, or mathematical justifications for strategies like expanded argumentation, debunking, and blending may be included in the explanation of the reality equation.

Here,

The Pythagorean theorem has the following mathematical formulation:

=> c² = a² + b²

where "a" and "b" are the lengths of the other two sides, and "c" is the length of the hypotenuse.

The other two sides' lengths in this instance are 9 feet and 8 feet, so we can enter these numbers into the formula as follows:

=> l² = 9² + 8²

=> l² = 81 + 64

=> l² = 145

We can use the square roots of both sides of the equation to determine "l":

=> √l² = √145

=> l = √145 ft

Therefore, "l" has a value of 145 feet.

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Evaluate the integral by making an appropriate change of variables. We 9 cos( 7 (***)) Y- y + x da where R is the trapezoidal region with vertices (8,0), (9,0), (0, 9), and (0,8)

Answers

The evaluated form of the integral is  ∫8⁹∫-8⁰ 18 cos(3v/(u+v)) dv du +[tex]\int\limits 0^{1} \int\limits^-u-8^{-u}+8 18 cos(3v/(u+v)) dv du,[/tex] under the condition that R is the trapezoidal area with vertices (8, 0), (9, 0), (0, 9), and (0, 8).


The integral can be calculated by making an appropriate change of variables.
Let u = x + y and v = y - x.  Here, Jacobian  transformation for the given case is |J| = 2.The region R is transformed into a rectangle with vertices (8, -1), (9, 0), (0, 1), and (0, -8).
The integral becomes ∫∫R 9 cos(3v/(u+v))|J| dA = ∫∫R 18 cos(3v/(u+v)) dA.
Then we can evaluate the integral by using the formula for double integrals over a rectangle
∫∫R f(x,y) dA =[tex]\int\limits a^b \int\limits c^d f(x,y) dy dx.[/tex]

Hence, we have ∫∫R 18 cos(3v/(u+v)) dA = ∫8⁹∫-8⁰ 18 cos(3v/(u+v)) dv du +[tex]\int\limits 0^{1} \int\limits^-u-8^{-u}+8 18 cos(3v/(u+v)) dv du,[/tex]

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The complete question is
Evaluate the integral by making an appropriate change of variables. 9 cos( 3 (y − x) / (y + x)) dA R where R is the trapezoidal region with vertices (8, 0), (9, 0), (0, 9), and (0, 8)

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