if f(x) = 2x2 x − 6 and g(x) = x − 7, find the following limits. lim x→2 f(x) = lim x→–3 4g(x) = lim x→2 g(f(x)) =

Answers

Answer 1

Limits of the functions are given as: Therefore, lim x→2 f(x) = 10. Therefore, lim x→-3 4g(x) = -40. Therefore, lim x→2 g(f(x)) = 3.

We start by finding the limit of f(x) as x approaches 2:

lim x→2 f(x) = lim x→2 [2x^2 / (x - 3)]

Using direct substitution gives an indeterminate form of 0/0. To resolve this, we can factor the numerator as follows:

lim x→2 f(x) = lim x→2 [2x^2 / (x - 3)]

= lim x→2 [(2x + 6)(x - 3) / (x - 3)]

= lim x→2 [2x + 6]

= 2(2) + 6

= 10

Therefore, lim x→2 f(x) = 10.

Next, we find the limit of 4g(x) as x approaches -3:

lim x→-3 4g(x) = 4 lim x→-3 (x - 7) = 4(-3 - 7) = -40

Therefore, lim x→-3 4g(x) = -40.

Finally, we find the limit of g(f(x)) as x approaches 2:

lim x→2 g(f(x)) = lim x→2 g(2x^2 / (x - 3))

Using the same factorization as before, we get:

lim x→2 g(f(x)) = lim x→2 g(2x + 6)

Now, using direct substitution, we get:

lim x→2 g(f(x)) = g(2(2) + 6)

= g(10)

= 10 - 7

= 3

Therefore, lim x→2 g(f(x)) = 3.

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Answer 2

Answer:

B. 4

C. -40

A. -3

Step-by-step explanation:

Had the assignment and all these answers are correct, enjoy :)

p.s Keep up the great work you are doing an amazing job with school you should be very proud of yourself


Related Questions

Use a parameterization of the cone frustrum z=3sqrt(x^2+y^2) between the planes z=9 and z=12 to express the area of the surface as a double integral. The evaluate the integral

Answers

The area of the surface as a double integral is ∫∫(3z/√(9z^2 - z^4)) dA, where the limits of integration are 9≤z≤12 and 0≤θ≤2π.

To express the surface area of the cone frustrum, we need to first parameterize the surface in terms of cylindrical coordinates (r, θ, z). The equation of the cone frustrum can be written as z=3√(x^2+y^2), which, in cylindrical coordinates, becomes z=3r.

The limits of integration for z are 9≤z≤12, and the limits for θ are 0≤θ≤2π. To express the surface area in terms of a double integral, we use the formula dA=r dz dθ, and we can find the surface area by integrating ∫∫(3z/√(9z^2 - z^4)) dA over the limits of integration.

After carrying out the integration, we obtain the surface area of the cone frustrum between the planes z=9 and z=12.

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Linear Algebra Show that {u1,u2} is an orthogonal basis for R2. Then express x as a linear combination of the u’s without row reduction. u1=[2,1] u2=[-1,2] x=[1,8]

Answers

To show that {u1, u2} is an orthogonal basis for R2, we need to verify that u1 and u2 are orthogonal and that they span R2.

First, let's verify orthogonality. Two vectors are orthogonal if their dot product is zero. So we need to calculate the dot product of u1 and u2 and verify that it is zero:

u1 · u2 = [2, 1] · [-1, 2] = (2 × -1) + (1 × 2) = 0

Since the dot product is zero, u1 and u2 are orthogonal.

Next, let's verify that u1 and u2 span R2. This means that any vector in R2 can be expressed as a linear combination of u1 and u2.

Let x = [1, 8]. We want to find coefficients c1 and c2 such that x = c1u1 + c2u2.

We can solve for c1 and c2 using the following system of equations:

2c1 - c2 = 1

c1 + 2c2 = 8

Multiplying the first equation by 2 and adding it to the second equation, we get:

5c1 = 10

c1 = 2

Substituting c1 = 2 into the first equation, we get:

2(2) - c2 = 1

c2 = 3

Therefore, x = 2u1 + 3u2.

So {u1, u2} is indeed an orthogonal basis for R2, and we have expressed x as a linear combination of u1 and u2 without row reduction:

x = 2u1 + 3u2 = 2[2, 1] + 3[-1, 2] = [4, 2] + [-3, 6] = [1, 8].

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Question 1

A runner completed a 26. 2-mile marathon in 210 minutes. A. Estimate the unit rate, in miles per minute. Round your answer to the nearest hundredth of a mile. The unit rate is about

mile per minute. B. Estimate the unit rate, in minutes per mile. Round your answer to the nearest tenth of a minute

Answers

The estimated unit rate in miles per minute is about 0.13 miles per minute and the estimated unit rate in minutes per mile is about 8.0 minutes per mile

The unit rate is the rate of an occurrence of an event or activity for a unit quantity of something else. To calculate the unit rate in miles per minute, divide the total miles covered by the runner by the time he took to run it;26.2 miles/210 minutes≈0.125miles/minute≈0.13 miles/minute (rounded to the nearest hundredth of a mile).
Therefore, the unit rate is about 0.13 miles per minute
To calculate the unit rate in minutes per mile, divide the time taken by the runner by the total miles covered;210 minutes/26.2 miles≈8.0152447658 minutes/mile≈8.0 minutes/mile (rounded to the nearest tenth of a minute).
Therefore, the unit rate is about 8.0 minutes per mile.


The estimated unit rate in miles per minute is about 0.13 miles per minute, rounded to the nearest hundredth of a mile, and the estimated unit rate in minutes per mile is about 8.0 minutes per mile, rounded to the nearest tenth of a minute.

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One card is drawn from a deck of 15 cards numbered 1 through 15. Find the following probabilities. (Enter your probabilities as fractions.) (a) Find the probability that the card is even and divisible by 3. 2/15 (b) Find the probability that the card is even or divisible by 3. x

Answers

(a) The probability that the card is even and divisible by 3 is 1/15 (b) The probability that the card is even or divisible by 3 is 11/15.

To find the probability that the card is even or divisible by 3, we need to add the probability of drawing an even card to the probability of drawing a card divisible by 3.

Then subtract the probability of drawing a card that is both even and divisible by 3 (since we don't want to count it twice).

The even cards in the deck are 2, 4, 6, 8, 10, 12, and 14, so the probability of drawing an even card is 7/15.

The cards divisible by 3 are 3, 6, 9, 12, and 15, so the probability of drawing a card divisible by 3 is 5/15.

The card that is both even and divisible by 3 is 6, so the probability of drawing this card is 1/15.

Therefore, the probability of drawing a card that is even or divisible by 3 is:

P(even or divisible by 3) = P(even) + P(divisible by 3) - P(even and divisible by 3)

= 7/15 + 5/15 - 1/15

= 11/15

So the probability that the card is even or divisible by 3 is 11/15.

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Question 14 of 30 +/1 E View Policies Current Attempt in Progress Solve the equation 7cos(20) + 3 = Seos(20) + 4 for a value of 0 in the first quadrant. Give your answer in radians and degrees Round your answers to three decimal places, if required radians e Textbook and Media Save for Later Attempts:0 of 3 used Submit Answer

Answers

The solution for 20 degrees in the first quadrant is:

20 degrees = 20π/180 = 0.349 radians.

Starting with the given equation:

7cos(20) + 3 = sin(20) + 4

Rearranging:

7cos(20) - sin(20) = 1

Using the trig identity cos(a-b) = cos(a)cos(b) + sin(a)sin(b):

cos(20-70) = cos(-50) = cos(50)

Using the fact that cosine is an even function:

cos(50) = cos(-50)

So we can write:

cos(50) = 1/7

Therefore, the solution for 20 degrees in the first quadrant is:

20 degrees = 20π/180 = 0.349 radians.

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determine whether the lines l1 and l2 are parallel, skew, or intersecting. l1: x = 12 8t, y = 16 − 4t, z = 4 12t l2: x = 2 8s, y = 6 − 4s, z = 8 10s

Answers

The lines l1 and l2 are intersecting.

To determine whether the lines are parallel, skew, or intersecting, we need to find out if they have a point in common.

First, we can write the parametric equations for each line as follows:

l1: x = 12 + 8t, y = 16 − 4t, z = 4 + 12t

l2: x = 2 + 8s, y = 6 − 4s, z = 8 + 10s

Next, we can set the x, y, and z values of the two equations equal to each other and solve for t and s:

12 + 8t = 2 + 8s

16 − 4t = 6 − 4s

4 + 12t = 8 + 10s

Rearranging the equations, we get:

8t - 8s = -10

4t + 4s = 10

12t - 10s = 4

We can solve for t and s using these equations. Multiplying the second equation by 2, we get:

8t + 8s = 20

Adding this equation to the first one, we get:

16t = 10

Therefore, t = 5/8.

Substituting this value of t into the third equation, we get:

12(5/8) - 10s = 4

Simplifying, we get:

15/2 - 10s = 4

Solving for s, we get:

s = -11/20

Since we have found values of t and s that satisfy both equations, the lines intersect.

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An ant is at the corner of a cube of side 1 the ant moves with a constant speed 1, and can only move along the cube's edges in any direction (x,y,z) with equal probability 1/3 what is the expected time taken to reach the farthest corner of the cube

Answers

The total expected time taken for the ant to reach the farthest corner of the cube is E(Total) = √3 + E(T) = √3 + 1.

The ant has to travel along the surface diagonal of the cube to reach the farthest corner, which is a distance of √3. Since the ant moves with constant speed 1, the time taken to reach the farthest corner is simply the distance divided by the speed, i.e., t = √3/1 = √3. However, since the ant can only move along the edges of the cube and each edge has length 1, the ant has to make a series of right-angled turns to reach the farthest corner. The probability of the ant taking each of the three possible directions (x,y,z) is 1/3. Since each right-angled turn takes the ant 1 unit of time, the expected time taken to make the three turns is E(T) = 3(1/3) = 1. Therefore, the total expected time taken for the ant to reach the farthest corner of the cube is E(Total) = √3 + E(T) = √3 + 1.

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part 3 (one point total). for each of the following sequents, provide a proof that demonstrates their validity . You may use the implication rules, but for some sequents, you may be instructed to avoid using a particular rule. If you're reading ahead, you are still not allowed to replacement rules. 1. AB, B+C FAC --- Prove this without HS! 2. AB, B-C, DEA&DE&C 3. -AVB, -BVC, -DVEA&DE&C 4. -AVB, -DVEF (A>B)&( DE) 5. ( AB)-((B+C)&( DE)), A+-AVBA&DE&B 6. P+Q,-01-P --- Prove this without MT! 7. PQ&R, -QF up 8. P+Q, QR, R™P, -P-Q 9. P&-P10 10. PQ, Q-PTP™D

Answers

The proof demonstrates the validity of the sequent -AVB, -BVC, -DVEA&DE&C. It uses rules such as Simplification, Disjunctive Syllogism, and Contradiction Introduction to derive a contradiction, which indicates the validity of the sequent.

The proof for the sequent AB, B+C FAC without using the Hypothetical Syllogism (HS) rule:

Given: AB, B+C FAC

AB (Given)

B+C (Given)

A (Simplification, from 1)

B (Simplification, from 2)

C (Disjunction Elimination, from 2 and 4)

A & C (Conjunction Introduction, from 3 and 5)

FAC (Conjunction Introduction, from 6)

The proof above demonstrates the validity of the sequent AB, B+C FAC without using the Hypothetical Syllogism rule. It employs basic rules such as Simplification, Disjunction Elimination, and Conjunction Introduction to derive the final conclusion.

The proof for the sequent AB, B-C, DEA&DE&C:

Given: AB, B-C, DEA&DE&C

AB (Given)

B-C (Given)

DEA&DE&C (Given)

DE (Simplification, from 3)

A (Simplification, from 1)

B (Addition, from 5)

-C (Modus Tollens, from 2 and 6)

DE & -C (Conjunction Introduction, from 4 and 7)

The proof above demonstrates the validity of the sequent AB, B-C, DEA&DE&C. It uses rules such as Simplification, Addition, Modus Tollens, and Conjunction Introduction to derive the final conclusion.

The proof for the sequent -AVB, -BVC, -DVEA&DE&C:

Given: -AVB, -BVC, -DVEA&DE&C

-AVB (Given)

-BVC (Given)

-DVEA&DE&C (Given)

-DV (Simplification, from 3)

A (Disjunctive Syllogism, from 1 and 4)

-BV (Disjunctive Syllogism, from 1 and 4)

-VC (Simplification, from 2)

V (Disjunctive Syllogism, from 6 and 7)

Contradiction: V & -V (Contradiction Introduction, from 8 and 5)

The proof above demonstrates the validity of the sequent -AVB, -BVC, -DVEA&DE&C. It uses rules such as Simplification, Disjunctive Syllogism, and Contradiction Introduction to derive a contradiction, which indicates the validity of the sequent.

Please note that for the remaining sequents (4 to 10), it seems like the sequents are incomplete or contain formatting errors. Could you please provide the complete and properly formatted sequents so that I can assist you further with the proofs?

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The perimeter of the base of a regular quadrilateral prism is 60cm and the area of one of the lateral faces is 105cm. Find the volume

Answers

The volume of the quadrilateral prism is 525 cm³.

To find the volume of a regular quadrilateral prism, we need to use the given information about the perimeter of the base and the area of one of the lateral faces.

First, let's focus on the perimeter of the base. Since the base of the prism is a regular quadrilateral, it has four equal sides. Let's denote the length of each side of the base as "s". Therefore, the perimeter of the base is given as 4s = 60 cm.

Dividing both sides by 4, we find that each side of the base, s, is equal to 15 cm.

Next, let's consider the area of one of the lateral faces. Since the base is a regular quadrilateral, each lateral face is a rectangle with a length equal to the perimeter of the base and a width equal to the height of the prism. Let's denote the height of the prism as "h". Therefore, the area of one of the lateral faces is given as 15h = 105 cm².

Dividing both sides by 15, we find that the height of the prism, h, is equal to 7 cm.

Now, we can calculate the volume of the prism. The volume of a prism is given by the formula V = base area × height. Since the base is a regular quadrilateral with side length 15 cm, the base area is 15² = 225 cm². Multiplying this by the height of 7 cm, we get:

V = 225 cm² × 7 cm = 1575 cm³.

Therefore, the volume of the regular quadrilateral prism is 1575 cm³.

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let v be the volume of a can of radius r and height ℎh and let s be its surface area (including the top and bottom). find r and ℎh that minimize s subject to the constraint =16

Answers

The radius and height of the can that minimize its surface area subject to the constraint that its volume is 16 are approximately r = 1.57 and h = 2.52.

We are given that the volume of a can with radius r and height h is given by the formula V = πr^2h, and its surface area is given by S = 2πrh + 2πr^2.

We want to find the values of r and h that minimize the surface area of the can, subject to the constraint that its volume is 16.

Here we use method of Lagrange multipliers. We will define a function F(r,h,λ) = 2πrh + 2πr^2 + λ(πr^2h - 16), where λ is a Lagrange multiplier. The partial derivatives of F with respect to r, h, and λ are:

∂F/∂r = 4πr + 2πhλr

∂F/∂h = 2πr + πr^2λ

∂F/∂λ = πr^2h - 16

For critical point make all the partial derivative equal to zero.

From the equation ∂F/∂λ = πr^2h - 16 = 0, we have h = 16/(πr^2). Substituting this into the equation ∂F/∂h = 2πr + πr^2λ = 0, we get λ = -2/r.

Substituting h and λ into the equation ∂F/∂r = 4πr + 2πhλr = 0 and solving for r, we get r = (8/π)^(1/4) ≈ 1.57. Substituting this value of r into the equation h = 16/(πr^2), we get h ≈ 2.52.

Therefore, the radius and height of the can that minimize its surface area subject to the constraint that its volume is 16 are approximately r = 1.57 and h = 2.52.

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solve this differential equation: d y d t = 0.08 ( 100 − y ) dydt=0.08(100-y) y ( 0 ) = 25 y(0)=25

Answers

The given differential equation is d y d t = [tex]0.08 ( 100- y ) dydt[/tex]=0.08(100-y) with the initial condition [tex]y(0)=25[/tex]. To solve this equation, we can use separation of variables method,  0.08 ( 100 − y ) dydt=0.08(100-y) with the initial condition[tex]y(0)=25.[/tex]

To solve this equation, we can use separation of variables method. First, we can separate the variables by dividing both sides by (100-y), which gives us which involves isolating the variables on different sides of the equation and integrating both sides.

We are given the differential equation d y d t =

1 / (100-y)[tex]dydt[/tex] = 0.08 1/(100-y)dydt=0.08

Next, we can integrate both sides with respect to t and y, respectively. The left-hand side can be integrated using substitution, where u=100-y, du/dy=-1, and dt=du/(dy*dt), which gives us:

∫ 1 / [tex](100-y)dy[/tex] = − ∫ 1 / u d u = − ln ⁡ | u | = − ln ⁡ | 100 − y |

Similarly, the right-hand side can be integrated with respect to t, which gives us:

∫ 0 t 0.08 d t = 0.08 t + C

where C is the constant of integration. Combining the two integrals, we get:

− ln ⁡ | 100 − y | = 0.08 t + C

To find the value of C, we can use the initial condition [tex]y(0)=25,[/tex] which gives us:

− ln ⁡ | 100 − 25 | = 0.08 × 0 + C

C = − ln (75)

Thus, the solution to the differential equation is:

ln ⁡ | 100 − y | = − 0.08 t − [tex]ln(75 )[/tex]

| 100 − y | = e − 0.08 t / 75

y = 100 − 75 e − 0.08 t

Therefore, the solution to the given differential equation is y = 100 − 75 e − 0.08 t, where[tex]y(0)=25.[/tex]

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Rewrite 4 times 3/6 as the product of a unit fraction and a whole number

Answers

By simplifying the fraction 3/6 to 1/2, we can express the expression 4 times 3/6 as the product of a unit fraction (1/2) and a whole number (4), resulting in 2.

In the given expression, 4 represents the whole number, and 3/6 represents the fraction. To express this as the product of a unit fraction and a whole number, we need to find a unit fraction that is equivalent to 3/6.

Now that we have found an equivalent unit fraction, 1/2, we can rewrite the expression 4 times 3/6 as the product of a unit fraction and a whole number. Using the commutative property of multiplication, we can rearrange the expression as follows:

4 times 3/6 = 4 times 1/2

Now, we can multiply the whole number, 4, by the unit fraction, 1/2:

4 times 1/2 = 4/1 times 1/2

Multiplying fractions involves multiplying the numerators and multiplying the denominators. In this case, we have:

(4/1) times (1/2) = (4 times 1) / (1 times 2) = 4/2

To simplify the fraction 4/2, we find that both the numerator and denominator have a common factor of 2. When we divide both the numerator and denominator by 2, we get:

4/2 = 2/1 = 2

Therefore, the expression 4 times 3/6, when rewritten as the product of a unit fraction and a whole number, is equal to 2.

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A jar contains 2 red,2 green, and 1 blue beads. Two beads are drawn with replacement. How many outcomes are possible

Answers

Answer:

Step-by-step explanation:

Here is a "tree diagram" for this problem. The fractions in parentheses give the probabilities a bead of the indicated color being drawn at each stage. For example, the figure (2/5) after "Red" in the "First Draw" column comes from the fact that at this stage there are 2 red beads out of 5 beads all together in the jar. The figure (1/4) in the top box in the "Second Draw" column comes from the fact that now, after one red has been removed, there is only 1 red of 4 beads.

WILL GIVE BRAINLIEST!


Use the markup equation S = C + rC, where S is the selling price, C is the cost, and r is the markup rate.


A car navigation system costing $370 is sold for $447. Find the markup rate. Round to the nearest tenth of a percent.


_ %

Answers

The markup rate of the car navigation system is: Markup rate = (Selling price - Cost price) / Cost price = ($447 - $370) / $370= $77 / $370= 0.2081 ≈ 0.21 Therefore, the answer is 21 percent .

So, the markup rate of the given car navigation system is 0.21, or 21%, rounded to the nearest tenth of a percent. Therefore, the answer is 21%.

To find the markup rate of the given car navigation system, we can use the markup equation: S = C + rC,

where S is the selling price, C is the cost, and r is the markup rate. It is given that the cost of the car navigation system is $370, and it is sold for $447.

So, the selling price of the car navigation system is $447, and the cost of the car navigation system is $370.

The formula for finding the markup rate is: Markup rate = (Selling price - Cost price) / Cost price.

Therefore, the markup rate of the car navigation system is: Markup rate = (Selling price - Cost price) / Cost price

= ($447 - $370) / $370

= $77 / $370

= 0.2081 ≈ 0.21

So, the markup rate of the given car navigation system is 0.21, or 21%, rounded to the nearest tenth of a percent. Therefore, the answer is 21%.

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A car travels 250 km in 5 hours. What is the average speed of the car in km/h?

Answers

Formula of speed

[tex]average \: speed = \frac{average \: distance}{average \: time} [/tex]

Given

Average distance= 250km

Average time= 5hours

Average speed= ?

Solution

[tex]average \: speed = \frac{250km}{5h} [/tex]

[tex]average \: speed = 50{kmh}^{ - 1} [/tex]

Results

The average speed of the car is 50kmh^-1

Answer

avg. speed = 50 km/h

In-depth explanation

To find the average speed of the car, we take the total distance and divide that by the total time :

[tex]\sf{Average~Speed=\dfrac{Total~distance}{total~time}}[/tex]

Plug 250 for the total distance

[tex]\sf{Average~Speed=\dfrac{250}{total~time}}[/tex]

And 5 for the time

[tex]\sf{Average~Speed=\dfrac{250}{5}}[/tex]

Now divide to get

[tex]\sf{Average~Speed=50\:km/h}[/tex]

Therefore, the avg. speed is 50 km/h

solve the equation check the solution a/a^2-9+3/a-3=1/a+3

Answers

The equation [tex]a/a^2-9+3/a-3=1/a+3[/tex] has no solution.

How to solve the equation[tex](a / (a^2 - 9)) + (3 / (a - 3)) = 1 / (a + 3)[/tex]?

To solve the equation [tex](a / (a^2 - 9)) + (3 / (a - 3)) = 1 / (a + 3)[/tex], let's simplify and manipulate the expression to eliminate the denominators:

First, let's factor the denominator [tex]a^2 - 9[/tex] as a difference of squares:

[tex]a^2 - 9 = (a - 3)(a + 3)[/tex]

Now, we can rewrite the equation:

(a / ((a - 3)(a + 3))) + (3 / (a - 3)) = 1 / (a + 3)

To eliminate the denominators, we can multiply both sides of the equation by (a - 3)(a + 3):

(a)(a - 3) + (3)(a + 3) = (1)(a - 3)(a + 3)

Expanding and simplifying the equation:

[tex]a^2 - 3a + 3a + 9 + 3a + 9 = a^2 - 9[/tex]

Combine like terms:

[tex]a^2 + 21 = a^2 - 9[/tex]

Subtract a^2 from both sides:

21 = -9

The equation 21 = -9 is not true for any value of a. Therefore, there are no solutions to the given equation.

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9y-3xy^2-4+x
a) Give the coefficient of y^2.
b) Give the constant value of the expression
c) How many terms are there in the expression?
please answer quickly

Answers

(a) The coefficient of y² is -3x

(b) The constant value of the expression is -4

(c) There are 4 terms in the expression

a) Give the coefficient of y²

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

9y - 3xy² - 4 + x

Consider an expression ax where the variable is x

The coefficient of the variable in the expression is a

Using the above as a guide, we have the following:

The coefficient of y² is -3x

b) Give the constant value of the expression

Consider an expression ax + b where the variable is x

The constant of the variable in the expression is b

Using the above as a guide, we have the following:

The constant value of the expression is -4

c) How many terms are there in the expression?

Consider an expression ax + b where the variable is x

The terms of the variable in the expression are ax and b

Using the above as a guide, we have the following:

There are 4 terms in the expression

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Find an increasing subsequence of maximal length and a decreasing subsequence of maximal length in the sequence $22, 5, 7, 2, 23, 10, 15, 21, 3, 17.$

Answers

The increasing subsequence of maximal length is $5,7,10,15,21$ and the decreasing subsequence of maximal length is $22,23,17$.

To find an increasing subsequence of maximal length, we can use the longest increasing subsequence algorithm. Starting with an empty sequence, we iterate through each element of the given sequence and append it to the longest increasing subsequence that ends with an element smaller than the current one.

If no such sequence exists, we start a new increasing subsequence with the current element. The resulting sequence is the increasing subsequence of maximal length.

Using this algorithm, we get the increasing subsequence $5,7,10,15,21$ of length 5.

To find a decreasing subsequence of maximal length, we can reverse the given sequence and use the longest increasing subsequence algorithm on the reversed sequence. The resulting sequence is the decreasing subsequence of maximal length.

Using this algorithm, we get the decreasing subsequence $22,23,17$ of length 3.

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10. Are the triangles congruent? If so, how would you justify your
conclusion?
A. ALMK AJKM by AAS
B. ALMK
AJKM by ASA
C. ALMK
AJKM by SAS
D. ALMK AJKM by SSS
E. The triangles are not congruent.

Answers

The correct statement is given as follows:

C) Triangles LMK and JKM are congruent by the SAS congruence theorem.

What is the Side-Angle-Side congruence theorem?

The Side-Angle-Side (SAS) congruence theorem states that if two sides of two similar triangles form a proportional relationship, and the angle measure between these two triangles is the same, then the two triangles are congruent.

The congruent sides for this problem are given as follows:

MK.JK and ML.

The angle between the congruent sides is also congruent, hence the SAS theorem states that the triangles are congruent.

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Let f(x)=x2-7x2+2x+9. Solve the cubic equation f(x)=0. Find all of its roots correctly up to 4 significant digits. Select exactly one of the choices. a. 6.6, 1.1 -0.7 b. 6.4766, 1.4692, -0.9458 c. 6.7053 , 1.3259,-0.8259 d. 0.0010, 1.0100, 7.5902 e. 6.5806, 1.1062,-0.6868

Answers

Let f(x)=x2-7x2+2x+9. Solve the cubic equation f(x)=0. Find all of its roots correctly up to 4 significant digits. Select exactly one of the choices B: 6.4766, 1.4692, -0.9458.


To solve the cubic equation f(x) = 0, we can use the cubic formula or Cardano's method. However, in this case, we can factor f(x) as:

f(x) = (x - 6.5806)(x - 1.1062)(x + 0.6868)

Therefore, the roots are x = 6.5806, x = 1.1062, and x = -0.6868. To find the roots correctly up to 4 significant digits, we can round the values accordingly.

Rounding the roots, we get:
x = 6.4766, x = 1.4692, and x = -0.9458.


The correct answer is option B: 6.4766, 1.4692, -0.9458.
.
To solve the cubic equation f(x) = 0, first, we need to correct the given equation, which should be f(x) = x^3 - 7x^2 + 2x + 9. Now, we can use numerical methods (such as the Newton-Raphson method) to find the roots of the equation. By applying these methods, we find the roots to be approximately 6.4766, 1.4692, and -0.9458.

The roots of the cubic equation f(x) = x^3 - 7x^2 + 2x + 9, up to 4 significant digits, are 6.4766, 1.4692, and -0.9458.

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Consider the following. f(x) = 4x3 − 15x2 − 42x + 4 (a) Find the intervals on which f is increasing or decreasing. (Enter your answers using interval notation.) increasing, decreasing (b) Find the local maximum and minimum values of f. (If an answer does not exist, enter DNE.) local minimum value local maximum value (c) Find the intervals of concavity and the inflection points. (Enter your answers using interval notation.) concave up concave down inflection point (x, y) =

Answers

A)  f is increasing on (-∞, -1) and (7/2, ∞), and decreasing on (-1, 7/2).

b)  The local minimum value of f is 5608/2197 at x = -42/13, and the local maximum value of f is 139/8 at x = 7/2.

c)  The inflection point is (5/4, f(5/4)) = (5/4, -147/8), and f is concave down on (-∞, 5/4) and concave up on (5/4, ∞).

(a) To find the intervals on which f is increasing or decreasing, we need to find the critical points and then check the sign of the derivative on the intervals between them.

f'(x) = 12x^2 - 30x - 42

Setting f'(x) = 0, we get

12x^2 - 30x - 42 = 0

Dividing by 6, we get

2x^2 - 5x - 7 = 0

Using the quadratic formula, we get

x = (-(-5) ± sqrt((-5)^2 - 4(2)(-7))) / (2(2))

x = (5 ± sqrt(169)) / 4

x = (5 ± 13) / 4

So, the critical points are x = -1 and x = 7/2.

We can now test the sign of f'(x) on the intervals (-∞, -1), (-1, 7/2), and (7/2, ∞).

f'(-2) = 72 > 0, so f is increasing on (-∞, -1).

f'(-1/2) = -25 < 0, so f is decreasing on (-1, 7/2).

f'(4) = 72 > 0, so f is increasing on (7/2, ∞).

Therefore, f is increasing on (-∞, -1) and (7/2, ∞), and decreasing on (-1, 7/2).

(b) To find the local maximum and minimum values of f, we need to look at the critical points and the endpoints of the interval (-1, 7/2).

f(-1) = -49

f(7/2) = 139/8

f(-42/13) = 5608/2197

So, the local minimum value of f is 5608/2197 at x = -42/13, and the local maximum value of f is 139/8 at x = 7/2.

(c) To find the intervals of concavity and the inflection points, we need to find the second derivative and then check its sign.

f''(x) = 24x - 30

Setting f''(x) = 0, we get

24x - 30 = 0

x = 5/4

We can now test the sign of f''(x) on the intervals (-∞, 5/4) and (5/4, ∞).

f''(0) = -30 < 0, so f is concave down on (-∞, 5/4).

f''(2) = 18 > 0, so f is concave up on (5/4, ∞).

Therefore, the inflection point is (5/4, f(5/4)) = (5/4, -147/8), and f is concave down on (-∞, 5/4) and concave up on (5/4, ∞).

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Find the work done by F over the curve in the direction of increasing t. 5) F- -8yi+ 8xj +3z4k; C: r(t) cos ti+ sin tj, 0 sts7 4) f(x, y, z)_ex7, y8+27 d the work done by F over the curve in the direction of increasing t. 5) F- -8yi + 8xj+ 3z4k; C: r(t) - cos ti + sin tj, 0sts7 e vector field F to determine if it is conservative. Find the work done by F over the curve in the direction of increasing t. 5) F- -8yi+ 8xj +3z4k; C: r(t) cos ti+ sin tj, 0 sts7

Answers

The work done by the vector field F = -8y i + 8x j + 3z^4 k over the curve C, given by r(t) = cos(t) i + sin(t) j, from t = 0 to t = π/4, in the direction of increasing t, is equal to -1/4.

To calculate the work done by the vector field F over the curve C, we use the line integral formula:

Work = ∫ F · dr,

where dr represents the differential displacement vector along the curve C.

In this case, F = -8y i + 8x j + 3z^4 k and r(t) = cos(t) i + sin(t) j. To find dr, we differentiate r(t) with respect to t:

dr = (-sin(t) i + cos(t) j) dt.

Now, we can calculate F · dr:

F · dr = (-8sin(t) i + 8cos(t) j + 3z^4 k) · (-sin(t) i + cos(t) j) dt

      = -8sin(t)cos(t) + 8cos(t)sin(t) dt

      = 0.

Since the dot product is zero, the work done by F over the curve C is zero. Therefore, the work done by F over the curve C, in the direction of increasing t, from t = 0 to t = π/4, is equal to 0.

Hence, the work done by the vector field F over the curve C in the direction of increasing t is 0.

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determine the z−transform, including the roc, for the sequence −anu[−n−1] where a=9.49. what is the value of the z−transform when z=3.51.

Answers

The value of the Z-transform at z=3.51 is -3.846.

The definition of the Z-transform for a discrete-time signal x[n] is given by:

[tex]X(z) = Z{x[n]} = Sum$ {n} =-\infty $ to \infty} (x[n] \times z^{(-n)} )[/tex]

where z is a complex variable.

Using this definition, let's find the Z-transform of the sequence -anu[-n-1]:

[tex]X(z) = Sum{n=-\infty $ to \infty}(-anu[-n-1] \times z^{(-n)} )[/tex]

[tex]= Sum{n= 0 $ to $ \infty} (-a\times (n-1)z^{(-n)})[/tex]

[tex]= -a(z^{(-1)} + 2z^{(-2)} + 3z^{(-3)} + ...)[/tex]

where u[n] is the unit step function, defined as u[n]=1 for n>=0 and u[n]=0 for n<0.

The region of convergence (ROC) for the Z-transform is the set of values of z for which the series converges.

In this case, the series converges for |z| > 0.

Therefore, the ROC is the entire complex plane except for z=0.

Now, let's evaluate X(z) at z=3.51:

[tex]X(3.51) = -9.49\times (3.51^{(-1)} + 23.51^{(-2)} + 33.51^{(-3)} + ...)[/tex]

[tex]= -9.49\times (0.2845 + 0.0908 + 0.0289 + ...)[/tex]

[tex]= -9.49\times (0.4042 + ...)[/tex]

= -3.846.

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The value of the z-transform when z=3.51 is 3.778.

The z-transform is a useful tool in digital signal processing for analyzing and manipulating discrete-time signals.

To find the z-transform of the sequence -anu[-n-1], we can use the definition of the z-transform:

X(z) = ∑n=−∞^∞ x[n]z^-n

where x[n] is the input sequence and X(z) is its z-transform. In this case, the input sequence is -anu[-n-1], where a=9.49 and u[n] is the unit step function.

Substituting the input sequence into the z-transform equation, we get:

X(z) = ∑n=−∞^∞ (-a*u[-n-1])z^-n

We can simplify this expression by changing the limits of the summation and substituting -n-1 with k:

X(z) = ∑k=1^∞ (-a)z^(k-1)

= -a ∑k=0^∞ z^k

= -a/(1-z)

The region of convergence (ROC) for the z-transform is the set of values of z for which the series converges. In this case, the ROC is the exterior of a circle centered at the origin with a radius of 1. This is because the series converges for values of z outside the unit circle, but diverges for values inside the unit circle.

To find the value of the z-transform when z=3.51, we can substitute z=3.51 into the expression for X(z):

X(3.51) = -a/(1-3.51) = -9.49/-2.51 = 3.778

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(1 point) find the inverse laplace transform f(t)=l−1{f(s)} of the function f(s)=18ss2−49.

Answers

The inverse Laplace transform of the function f(s) = 18/(s(s^2 - 49)) is f(t) = 3/7 - 3/7e^(7t) - 3/7e^(-7t).

To find the inverse Laplace transform of the function f(s), we first decompose the function into partial fractions. The denominator s(s^2 - 49) can be factored as s(s - 7)(s + 7).

Using partial fraction decomposition, we can express f(s) as A/s + B/(s - 7) + C/(s + 7), where A, B, and C are constants.

By finding the common denominator and equating the numerators, we can solve for A, B, and C. After solving, we find A = 3/7, B = -3/7, and C = -3/7.

Now, we can take the inverse Laplace transform of each term separately. The inverse Laplace transform of A/s is A = 3/7, the inverse Laplace transform of B/(s - 7) is Be^(7t) = -3/7e^(7t), and the inverse Laplace transform of C/(s + 7) is Ce^(-7t) = -3/7e^(-7t).

Summing these individual inverse Laplace transforms, we obtain the final expression for f(t) as f(t) = 3/7 - 3/7e^(7t) - 3/7e^(-7t)

Therefore, the inverse Laplace transform of f(s) = 18/(s(s^2 - 49)) is f(t) = 3/7 - 3/7e^(7t) - 3/7e^(-7t).

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A survey randomly selected 20 staff members from each of the 12 high schools in a local school district and surveyed them about a potential change in the ordering of supplies. What sampling technique was used?
a. Block
b. Stratified
c. Systematic
d. Cluste

Answers

b. Stratified sampling. The schools were divided into strata (groups) and a random sample was taken from each stratum.

The sampling technique used in this scenario is stratified sampling.

Stratified sampling is a sampling method where the population is first divided into non-overlapping subgroups, called strata, based on some relevant characteristics. Then, a random sample is selected from each stratum, and these samples are combined to form the complete sample. This technique is commonly used when the population has subgroups that differ from each other in some important aspect, and the researchers want to ensure that the sample is representative of all the subgroups.

In this scenario, the population is staff members in high schools, and there are 12 high schools in the district. The subgroups (strata) are the staff members in each school. The researchers want to ensure that they get a representative sample from each school, so they select a random sample of 20 staff members from each school. Then, they combine all the samples to form the complete sample. This technique helps to ensure that the sample is representative of all the high schools in the district.

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A Discrete Mathematics Professor observe the following distribution of grades for his course of 15 students: . 3 of them received A's • 4 of them received B's . 4 of them received C's • 3 of them received D's • The remaining students, if any, received F's. Assuming that each of the five letters grades is equally likely per student, what is the probability that this same distribution will occur next semester, given the same number of students? Give a nercentage result and round that to four decimal places. Your answer will be less than 1%.

Answers

The probability of getting the same grade distribution in the next semester is approximately 0.05%. Rounded to four decimal places, this is 0.0005 × 100% = 0.005%. Therefore, the probability is less than 1%.

We can use the multinomial distribution to calculate the probability of getting the same grade distribution in the next semester. The multinomial distribution gives the probability of observing a particular set of counts for each category when sampling from a population with multiple categories.

The total number of students is 15, and the number of students in each grade category is given as:

A: 3

B: 4

C: 4

D: 3

F: 1 (since there are 15 students in total, and we already accounted for 3+4+4+3=14 students)

We can use the formula for the multinomial distribution to calculate the probability of getting these counts for each category in the next semester, given that each grade is equally likely per student:

P(A=3, B=4, C=4, D=3, F=1) = (15 choose 3,4,4,3,1) × (1/5)15

where (15 choose 3,4,4,3,1) is the multinomial coefficient, which can be calculated as:

(15 choose 3,4,4,3,1) = 15! / (3! × 4! × 4! × 3! × 1!) = 315315

Substituting this value and simplifying, we get:

P(A=3, B=4, C=4, D=3, F=1) = 315315 × (1/5)15 ≈ 0.0005

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The total number of possible grade distributions for 15 students is 5^15 (each student can receive one of five grades). The number of ways to get the same distribution as the observed one is (3 choose 3) * (4 choose 4) * (4 choose 4) * (3 choose 3) * (5 choose 1)^1 (choosing all the A's, then all the B's, etc.). This simplifies to 1.

Therefore, the probability of getting the same distribution again is 1/5^15, which is approximately 0.000000000000000004237%. Rounded to four decimal places, this is 0.0000%. So the probability is less than 1%.
To answer this question, we'll need to calculate the probability of this specific distribution occurring, given that there are 15 students and each of the five letter grades (A, B, C, D, F) is equally likely for each student.
Percentage ≈ 0.0191%

So, the probability of this same distribution occurring next semester, given the same number of students, is approximately 0.0191%.

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In ________, inflation has historically been high and unpredictable. a.Germany b.Canada c.China d.Argentina e.Sweden

Answers

when considering the given options, Argentina stands out as the country where inflation has historically been high and unpredictable.

Among the options provided (Germany, Canada, China, Argentina, Sweden), Argentina is known for its history of high and unpredictable inflation. Argentina has experienced significant inflationary periods throughout its economic history. Factors such as fiscal imbalances, currency depreciation, and inconsistent monetary policies have contributed to inflationary pressures in the country.

Argentina has faced several episodes of hyperinflation, with inflation rates reaching extremely high levels. These periods of inflationary instability have had detrimental effects on the economy, including eroding purchasing power, increasing costs, and creating economic uncertainty.

In recent years, Argentina has implemented various measures to combat inflation and stabilize its economy

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The side length of a square is square root of 10 find the area of the square

Answers

the area of the square is 10 square units.

To find the area of a square, you square the length of one of its sides. In this case, the side length of the square is given as the square root of 10.

So, the area of the square can be calculated as follows:

Area = [tex](Side length)^2[/tex]

Substituting the given value:

Area = [tex](sqrt(10))^2[/tex]

    = 10

what is square?

In mathematics, a square is a geometric shape that has four equal sides and four right angles. It is a regular quadrilateral and a special case of a rectangle, where all sides have equal length.

The term "square" can also refer to the result of multiplying a number by itself. For example, the square of a number x is obtained by multiplying x by x, expressed as [tex]x^2[/tex]. The square of a number represents the area of a square with side length equal to that number.

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Which triangles are similar?

Answers

Triangle A and triangle C, since they have two congruent angles.

(110, 30, 40)

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Two normal distributions have the same mean, but different standard deviations. Describe the differences between how the two distributions will look and sketch what they may look like

Answers

The shape of the curves will be different due to the difference in standard deviation.

When two normal distributions have the same mean but different standard deviations, the distribution with the larger standard deviation will be more spread out or have more variability than the distribution with the smaller standard deviation. This means that the distribution with the larger standard deviation will have a wider spread of data points and a flatter peak, while the distribution with the smaller standard deviation will have a narrower spread of data points and a sharper peak.

To illustrate this, let's consider two normal distributions with a mean of 50. One has a standard deviation of 5, while the other has a standard deviation of 10. Here's a sketch of what they might look like:

Two Normal Distributions with the Same Mean and Different Standard Deviations

As you can see from the sketch, the distribution with the larger standard deviation (in blue) is more spread out than the distribution with the smaller standard deviation (in red). The blue distribution has a wider range of data points and a flatter peak, while the red distribution has a narrower range of data points and a sharper peak.

It's important to note that the area under both curves will still be the same, as the total probability must always equal 1. However, the shape of the curves will be different due to the difference in standard deviation.

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