What is the roots of the equation x² 7x 10?

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Answer 1

Answer:

-5 and -2

Step-by-step explanation:


Related Questions

. Consider a configuration model with degree distribution Pk = Ckak, where a and C are positive constants and a < 1. (a) Calculate the value of the constant C as a function of a. (b) Calculate the mean degree of the network. (c) Calculate the mean-square degree of the network. (d) Hence, or otherwise, find the value of a that marks the phase transition between the region in which the network has a giant component and the region in which it does not. Does the giant component exist for larger or smaller values than this? You may find the following sums useful in performing the calculations: kak =- a T 12, a + a2 kok - a + 4a2 +03 19 (1-a2' (1-a3 (1-a4 k=0 k=0 k=0

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(a) The value of the constant C is calculated as C = 1 / (∑k=1 to ∞(ak)).

(b) The mean degree of the network is given by the expression μ = ∑k=1 to ∞(kPk).

(a) To calculate the constant C, we need to determine the value of the sum ∑k=1 to ∞(ak). Using the provided expression, we find C = 1 / (∑k=1 to ∞(ak)).

(b) The mean degree of the network is calculated by multiplying each degree k by its corresponding probability Pk and summing up these values for all possible degrees. The expression for the mean degree is μ = ∑k=1 to ∞(kPk).

(c) The mean-square degree of the network is calculated similarly to the mean degree, but with the square of each degree. The expression for the mean-square degree is μ2 = ∑k=1 to ∞(k^2Pk).

(d) The phase transition between the region with a giant component and the region without occurs when the giant component emerges. This happens when the value of a is such that the equation 1 - aμ = 0 is satisfied. Solving this equation for a will give us the value that marks the transition. The giant component exists for values of a smaller than this critical value.

Note: The provided sums (∑k=0 to ∞(ak), ∑k=0 to ∞(a^2k), ∑k=0 to ∞(a^3k), ∑k=0 to ∞(a^4k)) may be helpful in performing the calculations involved in the expressions for C, μ, and μ2

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a cylinder/piston contains 1 kg propane gas at 100 kpa, 300 k. the gas is compressed reversibly to a pressure of 800 kpa. calculate the work required if the process is adiabatic.

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The work required to compress the 1 kg propane gas adiabatically from 100 kPa to 800 kPa is -325.3 kJ.

In this case, we have a cylinder/piston containing 1 kg of propane gas, so we can use the mass of propane to calculate the number of moles of gas. The molar mass of propane is approximately 44 g/mol, so the number of moles of propane is:

n = m/M = 1000 g / 44 g/mol = 22.73 mol

We can also use the given initial pressure and temperature to find the initial volume of the gas.

Therefore, we can rearrange the ideal gas law to solve for the initial volume:

V = nRT/P = (22.73 mol)(8.31 J/(mol*K))(300 K)/(100 kPa) = 6.83 m³

Now, let's consider the work done on the gas during the compression process.

We can use the first law of thermodynamics to relate the change in internal energy to the initial and final states of the gas:

ΔU = Q - W

where ΔU is the change in internal energy, Q is the heat transferred to the gas, and W is the work done on the gas.

Since the process is adiabatic, Q = 0. Therefore, we can simplify the equation to:

ΔU = -W

The change in internal energy can be related to the pressure and volume of the gas using the adiabatic equation:

[tex]PV^{\gamma}[/tex] = constant

where γ is the ratio of specific heats, which is approximately 1.3 for propane. Since the process is reversible, we can use the adiabatic equation to find the final temperature of the gas:

[tex]T_f = T_i (P_f/P_i)^{(\gamma -1)/\gamma}[/tex] = (300 K)(800 kPa/100 kPa)[tex]^{(1.3-1)/1.3}[/tex] = 680.8 K

Now we can use the adiabatic equation and the initial and final temperatures to find the work done on the gas:

W = [tex](\gamma/(\gamma -1))P_i(V_f - V_i)[/tex]= (1.3/(1.3-1))(100 kPa)(V - 6.83 m³)

We can solve for V by rearranging the adiabatic equation:

[tex]V_f = V_i(P_i/P_f)^{1/\gamma}[/tex] = 6.83 m³ (100 kPa/800 kPa)[tex]^{1/1.3}[/tex] = 1.84 m³

Substituting into the expression for work, we get:

W = (1.3/(1.3-1))(100 kPa)(1.84 m³ - 6.83 m³) = -325.3 kJ

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Use Part 1 of the Fundamental Theorem of Calculus to find the derivative of the function. g(s) = 2 s (t - t9)6 dt g'(s) =

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The derivative of the function g(s) is:

g'(s) = 2 ∫(t - t^9)^6 (1 - 9t^8)^(-1) dt

To apply Part 1 of the Fundamental Theorem of Calculus, we need to first express the function as an integral with a variable upper limit of integration.

We can do this by letting u = t - t^9, so du/dt = 1 - 9t^8. Solving for dt, we get dt = du / (1 - 9t^8).

Substituting this into the integral, we have:

g(s) = 2s ∫(t - t^9)^6 dt

= 2s ∫u^6 (1 - 9t^8)^(-1) du

Now we can differentiate g(s) with respect to s using the chain rule and Part 1 of the Fundamental Theorem of Calculus:

g'(s) = d/ds [2s ∫u^6 (1 - 9t^8)^(-1) du]

= 2 ∫u^6 (1 - 9t^8)^(-1) du

Note that since the integral is with respect to u, we can treat (1 - 9t^8)^(-1) as a constant with respect to u, so we can pull it out of the integral.

Taking the derivative of the integral with respect to s just leaves us with the constant factor of 2.

Therefore, the derivative of the function g(s) is:

g'(s) = 2 ∫(t - t^9)^6 (1 - 9t^8)^(-1) dt

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use linear approximation to estimate f(2.85) given that f(3)=2 and f'(3)=6

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Using linear approximation, we estimate that f(2.85) is approximately equal to 1.1.

Using linear approximation, we can estimate the value of a function near a known point by using the tangent line at that point.

The equation of the tangent line at x = 3 is given by:

y - f(3) = f'(3)(x - 3)

Plugging in f(3) = 2 and f'(3) = 6, we get:

y - 2 = 6(x - 3)

Simplifying, we get:

y = 6x - 16

To estimate f(2.85), we plug in x = 2.85 into the equation for the tangent line:

f(2.85) ≈ 6(2.85) - 16

f(2.85) ≈ 1.1

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Linear approximation is a method used to estimate a function value based on its linear equation. In this case, we can use the linear equation of the tangent line at x=3 to approximate f(2.85). Using the point-slope formula, we have:
y - 2 = 6(x - 3)

Simplifying this equation, we get:

y = 6x - 16

Now, substituting x=2.85 in this equation, we get:

f(2.85) ≈ 6(2.85) - 16 = -2.9

Therefore, the estimated value of f(2.85) using linear approximation is -2.9. It is important to note that this method gives an approximation and may not be completely accurate, but it is useful in situations where an estimate is needed quickly and easily.
Hi! To use linear approximation to estimate f(2.85), we'll apply the formula: L(x) = f(a) + f'(a)(x-a), where L(x) is the linear approximation, f(a) is the function value at a, f'(a) is the derivative at a, and x is the input value.

Here, we have a = 3, f(a) = f(3) = 2, f'(a) = f'(3) = 6, and x = 2.85.

Step 1: L(x) = f(a) + f'(a)(x-a)
Step 2: L(2.85) = 2 + 6(2.85-3)
Step 3: L(2.85) = 2 + 6(-0.15)
Step 4: L(2.85) = 2 - 0.9

The linear approximation to estimate f(2.85) is L(2.85) = 1.1.

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Compute the linear correlation coefficient between the two variables and determine whether a linear relation exists. Round to three decimal places. A manager wishes to determine whether there is a relationship between the number of years her sales representatives have been with the company and their average monthly sales. The table shows the years of service for each of her sales representatives and their average monthly sales (in thousands of dollars). r = 0.717; a linear relation exists r = 0.632; a linear relation exists r= 0.632; no linear relation exists r= 0.717; no linear relation exists

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The linear correlation coefficient between the number of years of service and average monthly sales is r = 0.717, indicating that a linear relation exists between these variables.

The linear correlation coefficient, denoted as r, measures the strength and direction of the linear relationship between two variables. It ranges between -1 and 1, where a value close to 1 indicates a strong positive linear relationship, a value close to -1 indicates a strong negative linear relationship, and a value close to 0 indicates a weak or no linear relationship.

In this case, the given correlation coefficient is r = 0.717, which is moderately close to 1. This indicates a positive linear relationship between the number of years of service and average monthly sales. The positive sign indicates that as the number of years of service increases, the average monthly sales tend to increase as well.

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use green’s theorem to evaluate z c xy2 dx x dy, where c is the unit circle oriented positively

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The line integral of F over the unit circle C is zero:

∮C F · dr = ∬D curl(F) · dA = 0

Hence, the answer is zero.

To use Green's theorem to evaluate the line integral of the given function around the unit circle, we need to first find its equivalent double integral over the region enclosed by the circle.

Green's theorem relates the line integral of a vector field over a closed curve to the double integral of the curl of the same vector field over the region enclosed by the curve.

Let's consider the vector field [tex]F = (0, 0, xy^2).[/tex]

Its curl is given by:

curl(F) = (∂Q/∂x - ∂P/∂y) i + (∂P/∂x + ∂Q/∂y) j + (∂R/∂x - ∂Q/∂y) k

= (0 - 0) i + (0 + 0) j + (0 - 2xy) k

= -2xy k

Here, P = 0, Q = 0, and[tex]R = xy^2[/tex] are the components of the vector field F.

Now, we can apply Green's theorem to evaluate the line integral of F over the unit circle C:

∮C F · dr = ∬D curl(F) · dA

where D is the region enclosed by the unit circle C and dA is the area element in the xy-plane.

Since the unit circle is given by[tex]x^2 + y^2 = 1,[/tex]  we can use polar coordinates to evaluate the double integral:

∬D curl(F) · dA = ∬D (-[tex]2r^3[/tex] sin θ cos θ) r dr dθ

= -2 ∫[0,2π] ∫[0,1] [tex]r^4[/tex]sin θ cos θ dr dθ

= 0 (since the integrand is odd in sin θ).

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which of the following is correct? the larger the level of significance, the more likely you are to fail to reject the null hypothesis. the level of significance is the maximum risk we are willing to take in committing a type ii error. for a given level of significance, if the sample size increases, the probability of committing a type i error will remain the same. for a given level of significance, if the sample size increases, the probability of committing a type ii error will increase.

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Answer:

Step-by-step explanation:

Find the surface area of the triangular prism



Triangle sections: A BH\2



Rectangle sections: A = LW

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To find the surface area of a triangular prism, you need to find the area of the triangular bases and add them to the areas of the rectangular sides.

Surface area of the triangular prism can be found out using the following steps:

Find the area of the triangle which is A, by the following formula.

A = 1/2 × b × hA

= 1/2 × 4 × 5A

= 10m²

Find the perimeter of the base (P) which can be calculated by adding the three sides of the triangle.

P = a + b + cP = 3 + 4 + 5P = 12m

Now find the area of each rectangle which can be calculated by multiplying the adjacent sides.A = LW = 5 × 3 = 15m²

Since there are two rectangles, multiply the area by 2.2 × 15 = 30m²Add the areas of the triangle and rectangles to get the surface area of the triangular prism:

Surface area = A + 2 × LW = 10 + 30 = 40m²

Therefore, the surface area of the given triangular prism is 40m².

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you are the operations manager for an airline and you are considering a higher fare level for passengers in aisle seats. how many randomly selected air passengers must you survey assume that you want ot be 90% confident that the sample percentage is within 3.5 percentage points of the true population percentage

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Rounding up to the nearest whole number, you would need to survey approximately 753 randomly selected air passengers to be 90% confident that the sample percentage is within 3.5 percentage points of the true population percentage.

To determine the sample size needed for estimating a population percentage with a specified margin of error and confidence level, we can use the formula for sample size calculation for proportions. The formula is:

n = (Z^2 * p * (1-p)) / E^2

Where:

n is the required sample size,

Z is the Z-score corresponding to the desired confidence level (for a 90% confidence level, Z ≈ 1.645),

p is the estimated population proportion (since we don't have an estimate, we can use 0.5 for maximum sample size),

E is the desired margin of error (in decimal form).

In this case, the desired margin of error is 3.5 percentage points, which is 0.035 in decimal form.

Plugging in the values, we have:

n = (1.645^2 * 0.5 * (1-0.5)) / 0.035^2

Calculating this expression gives us:

n ≈ 752.93

Rounding up to the nearest whole number, you would need to survey approximately 753 randomly selected air passengers to be 90% confident that the sample percentage is within 3.5 percentage points of the true population percentage.

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A zoo had 2000 visitors on Tuesday. On Wednesday, the head count was increased by 10%.

How many visitors were in the zoo by the end of Wednesday?

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There were 2200 visitors in the zoo by the end of Wednesday.

Step 1: Start with the given information that there were 2000 visitors in the zoo on Tuesday.

Step 2: Calculate the increase in visitor count on Wednesday by finding 10% of the Tuesday's count.

10% of 2000 = (10/100) * 2000 = 200

Step 3: Add the increase to the Tuesday count to find the total number of visitors by the end of Wednesday.

2000 + 200 = 2200

Therefore, by the end of Wednesday, there were 2200 visitors in the zoo.

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use a known maclaurin series to obtain a maclaurin series for the given function. f(x) = xe3x f(x) = [infinity] n = 0 find the associated radius of convergence, r.

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To find the Maclaurin series for f(x) = xe3x, we can start by taking the derivative of the function:

f'(x) = (3x + 1)e3x

Taking the derivative again, we get:

f''(x) = (9x + 6)e3x

And one more time:

f'''(x) = (27x + 18)e3x

We can see a pattern emerging here, where the nth derivative of f(x) is of the form:

f^(n)(x) = (3^n x + p_n)e3x

where p_n is a constant that depends on n. Using this pattern, we can write out the Maclaurin series for f(x):

f(x) = f(0) + f'(0)x + f''(0)x^2/2! + f'''(0)x^3/3! + ... + f^(n)(0)x^n/n! + ...

Plugging in the values we found for the derivatives at x=0, we get:

f(x) = 0 + (3x + 1)x + (9x + 6)x^2/2! + (27x + 18)x^3/3! + ... + (3^n x + p_n)x^n/n! + ...

Simplifying this expression, we get:

f(x) = x(1 + 3x + 9x^2/2! + 27x^3/3! + ... + 3^n x^n/n! + ...)

This is the Maclaurin series for f(x) = xe3x. To find the radius of convergence, we can use the ratio test:

lim |a_n+1/a_n| = lim |3x(n+1)/(n+1)! / 3x/n!|
= lim |3/(n+1)| |x| -> 0 as n -> infinity

So the radius of convergence is infinity, which means that the series converges for all values of x.

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Find three angles, two positive and one negative, that are coterminal with the given angle: 5π/9.

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So, -7π/9, -19π/9, and -31π/9 are three negative angles coterminal with 5π/9.

To find angles coterminal with 5π/9, we need to add or subtract a multiple of 2π until we reach another angle with the same terminal side.

To find a positive coterminal angle, we can add 2π (one full revolution) repeatedly until we get an angle between 0 and 2π:

5π/9 + 2π = 19π/9

19π/9 - 2π = 11π/9

11π/9 - 2π = 3π/9 = π/3

So, 19π/9, 11π/9, and π/3 are three positive angles coterminal with 5π/9.

To find a negative coterminal angle, we can subtract 2π (one full revolution) repeatedly until we get an angle between -2π and 0:

5π/9 - 2π = -7π/9

-7π/9 - 2π = -19π/9

-19π/9 - 2π = -31π/9

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Find the second Taylor polynomial P2(x) for the function f (x) = ex cos x about x0 = 0.
a. Use P2(0.5) to approximate f (0.5). Find an upper bound for error |f (0.5) − P2(0.5)| using the error formula, and compare it to the actual error.
b. Find a bound for the error |f (x) − P2(x)| in using P2(x) to approximate f (x) on the interval [0, 1].
c. Approximate d. Find an upper bound for the error in (c) using and compare the bound to the actual error.

Answers

a) An upper bound for error |f (0.5) − P2(0.5)| using the error formula is 0.0208

b) On the interval [0, 1], we have |R2(x)| <= (e/6) √10 x³

c) The maximum value of |f(x) - P2(x)| on the interval [0, 1] occurs at x = π/2, and is approximately 0.1586.

a. As per the given polynomial, to approximate f(0.5) using P2(x), we simply plug in x = 0.5 into P2(x):

P2(0.5) = 1 + 0.5 - (1/2)(0.5)^2 = 1.375

To find an upper bound for the error |f(0.5) - P2(0.5)|, we can use the error formula:

|f(0.5) - P2(0.5)| <= M|x-0|³ / 3!

where M is an upper bound for the third derivative of f(x) on the interval [0, 0.5].

Taking the third derivative of f(x), we get:

f'''(x) = ex (-3cos x + sin x)

To find an upper bound for f'''(x) on [0, 0.5], we can take its absolute value and plug in x = 0.5:

|f'''(0.5)| = e⁰°⁵(3/4) < 4

Therefore, we have:

|f(0.5) - P2(0.5)| <= (4/6)(0.5)³ = 0.0208

b. For n = 2, we have:

R2(x) = (1/3!)[f'''(c)]x³

To find an upper bound for |R2(x)| on the interval [0, 1], we need to find an upper bound for |f'''(c)|.

Taking the absolute value of the third derivative of f(x), we get:

|f'''(x)| = eˣ |3cos x - sin x|

Since the maximum value of |3cos x - sin x| is √10, which occurs at x = π/4, we have:

|f'''(x)| <= eˣ √10

Therefore, on the interval [0, 1], we have:

|R2(x)| <= (e/6) √10 x³

c. To approximate the maximum value of |f(x) - P2(x)| on the interval [0, 1], we need to find the maximum value of the function R2(x) on this interval.

To do this, we can take the derivative of R2(x) and set it equal to zero:

R2'(x) = 2eˣ (cos x - 2sin x) x² = 0

Solving for x, we get x = 0, π/6, or π/2.

We can now evaluate R2(x) at these critical points and at the endpoints of the interval:

R2(0) = 0

R2(π/6) = (e/6) √10 (π/6)³ ≈ 0.0107

R2(π/2) = (e/48) √10 π³ ≈ 0.1586

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Find the answer for

VU=

SU=

TV=

SW=

Show work please




Answers

The lengths in the square are VU = 15, SU = 15√2, TV = 15√2 and SW = (15√2)/2

How to determine the lengths in the square

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

The square (see attachment)

The side length of the square is

Length = 15

So, we have

VU = 15

For the diagonal, we have

TV = VU * √2

So, we have

TV = 15 * √2

Evaluate

TV = 15√2

This also means that

SU = 15√2

This is because

SU = TV

Lastly, we have

SW = SU/2

So, we have

SW = (15√2)/2

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Determine all the singular points of the given differential equation. (t2-t-6)x"' + (t+2)x' – (t-3)x= 0 Select the correct choice below and, if necessary, fill in the answer box to complete your choice. A. The singular point(s) is/are t = (Use a comma to separate answers as needed.) OB. The singular points are allts and t= (Use a comma to separate answers as needed.) C. The singular points are all t? and t= (Use a comma to separate answers as needed.) D. The singular points are all t> O E. The singular points are all ts OF. There are no singular points.

Answers

The singular points of the given differential equation: (t² - t - 6)x"' + (t+2)x' – (t-3)x= 0 is  t = -2,3 . So the correct answer is option A. The singular point(s) is/are t = -2,3.  Singular points refer to the values of the independent variable where the solution of the differential equation becomes singular.

To find the singular points of the given differential equation, we need to first write it in standard form:
(t²- t - 6)x"' + (t + 2)x' – (t - 3)x= 0
Dividing both sides by t² - t - 6, we get:
x"' + (t + 2) / (t²- t - 6)x' – (t - 3) / (t²- t - 6)x = 0

Now we can see that the coefficients of x" and x' are both functions of t, and so the equation is not in the standard form for identifying singular points. However, we can use the fact that singular points are locations where the coefficients of x" and x' become infinite or undefined.

The denominator of the coefficient of x' is t²- t - 6, which has roots at t = -2 and t=3. These are potential singular points. To check if they are indeed singular points, we need to check the behavior of the coefficients near these points.

Near t=-2, we have:
(t + 2) / (t²- t - 6) = (t + 2) / [(t + 2)(t - 3)] = 1 / (t - 3)
This expression becomes infinite as t approaches -2 from the left, so -2 is a singular point.

Near t=3, we have:
(t + 2) / (t²- t - 6) = (t + 2) / [(t - 3)(t + 2)] = 1 / (t - 3)
This expression becomes infinite as t approaches 3 from the right, so 3 is also a singular point.

Therefore, the singular points of the given differential equation are t=-2 and t=3. The correct answer is A. The singular point(s) is/are t = -2,3.

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if z is a standard normal variable, find the probability that z lies between −2.41 and 0. round to four decimal places.

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The probability that z lies between -2.41 and 0 is approximately 0.9911.

What is the probability of z falling within a specific range?

To find the probability that a standard normal variable, z, falls within a specific range, we can use the standard normal distribution table or a statistical calculator.

In this case, we want to find the probability that z lies between -2.41 and 0. By referencing the standard normal distribution table or using a calculator, we can determine the area under the curve corresponding to this range. The resulting value represents the probability of z falling within that range.

Approximately 0.9911 is the probability that z lies between -2.41 and 0 when rounded to four decimal places. This means that there is a high likelihood (approximately 99.11%) that a randomly chosen value of z from a standard normal distribution falls within this range.

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let k(x)=f(x)g(x)h(x). if f(−2)=−5,f′(−2)=9,g(−2)=−7,g′(−2)=8,h(−2)=3, and h′(−2)=−10 what is k′(−2)?

Answers

The value of k'(-2) = 41

Using the product rule, k′(−2)=f(−2)g′(−2)h(−2)+f(−2)g(−2)h′(−2)+f′(−2)g(−2)h(−2). Substituting the given values, we get k′(−2)=(-5)(8)(3)+(-5)(-7)(-10)+(9)(-7)(3)= -120+350-189= 41.

The product rule states that the derivative of the product of two or more functions is the sum of the product of the first function and the derivative of the second function with the product of the second function and the derivative of the first function.

Using this rule, we can find the derivative of k(x) with respect to x. We are given the values of f(−2), f′(−2), g(−2), g′(−2), h(−2), and h′(−2). Substituting these values in the product rule, we can calculate k′(−2). Therefore, the derivative of the function k(x) at x=-2 is equal to 41.

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The __________ is a hypothesis-testing procedure used when a sample mean is being compared to a known population mean and the population variance is unknown.a. ANOVAb. t test for a single samplec. t test for multiple samplesd. Z test

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The correct answer is "b. t-test for a single sample". This hypothesis-testing procedure is used to determine whether a sample mean is significantly different from a known population mean when the population variance is unknown.

The correct answer is "b. t-test for a single sample". This hypothesis-testing procedure is used to determine whether a sample mean is significantly different from a known population mean when the population variance is unknown. The t-test for a single sample is a statistical test that compares the sample mean to a hypothetical population mean, using the t-distribution. It helps researchers determine whether the sample mean is a reliable estimate of the population mean, or whether the difference between the two means is due to chance.

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someone help pls, don’t understand that well

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Answer:

yes

Step-by-step explanation:

Choose the best answer.

Answers

Answer:[tex]\sqrt{3}[/tex]/2

Step-by-step explanation:

Substitute the value of the variable into the expression and simplify.

Juan and Rajani are both driving along the same highway in two different cars to a stadium in a distant city. At noon, Juan is 260 miles away from the stadium and Rajani is 380 miles away from the stadium. Juan is driving along the highway at a speed of 30 miles per hour and Rajani is driving at speed of 50 miles per hour. Let � J represent Juan's distance, in miles, away from the stadium � t hours after noon. Let � R represent Rajani's distance, in miles, away from the stadium � t hours after noon. Graph each function and determine the interval of hours, � , t, for which Juan is closer to the stadium than Rajani.

Answers

The interval of hours for which Juan is closer to the stadium than Rajani is t < 6, which means within the first 6 hours after noon.

To graph the functions representing Juan's and Rajani's distances from the stadium, we can use the equations:

J(t) = 260 - 30t (Juan's distance from the stadium)

R(t) = 380 - 50t (Rajani's distance from the stadium)

The functions represent the distance remaining (in miles) as a function of time (in hours) afternoon.

To determine the interval of hours for which Juan is closer to the stadium than Rajani, we need to find the values of t where J(t) < R(t).

Let's solve the inequality:

260 - 30t < 380 - 50t

-30t + 50t < 380 - 260

20t < 120

t < 6

Thus, the inequality shows that for t < 6, Juan is closer to the stadium than Rajani.

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approximate the integral below using a left riemann sum, using a partition having 20 subintervals of the same length. round your answer to the nearest hundredth. ∫1√ 1+ cos x +dx 0 =?

Answers

The approximate value of the integral using a left Riemann sum with 20 subintervals is 1.18.

To approximate the integral using a left Riemann sum, we divide the interval [0, 1] into 20 equal subintervals. The width of each subinterval is given by Δx = (b - a) / n, where a = 0, b = 1, and n = 20. In this case, Δx = (1 - 0) / 20 = 0.05.

Using the left Riemann sum, we evaluate the function at the left endpoint of each subinterval and multiply it by the width of the subinterval. The sum of these values gives us the approximation of the integral.

For each subinterval, we evaluate the function at the left endpoint, which is x = iΔx, where i represents the subinterval index. So, we evaluate the function at x = 0, 0.05, 0.1, 0.15, and so on, up to x = 1.

Approximating the integral using the left Riemann sum with 20 subintervals, we get the sum of the values obtained at each subinterval multiplied by the width of each subinterval. After calculating the sum, we round the result to the nearest hundredth.

Therefore, the approximate value of the integral ∫(0 to 1) √(1 + cos(x)) dx using a left Riemann sum with 20 subintervals is 1.18.

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Use the laws of logarithms to combine the expression. 1 2 log2(7) − 2 log2(3)

Answers

Therefore, The combined expression using the laws of logarithms is:
log2((√7)/9)

To combine these expressions, we can use the properties of logarithms that state:
log a(b) + log a(c) = log a(bc)  and  log a(b) - log a(c) = log a(b/c)
Using these properties, we can rewrite the expression as:
log2(7^1/2) - log2(3^2)
Simplifying further, we get:
log2(√7) - log2(9)
Using the second property, we can combine the logarithms to get:
log2(√7/9)
log2(√7/9)
1/2 * log2(7) - 2 * log2(3)
We can use the properties of logarithms to simplify this expression. We'll use the power rule and the subtraction rule of logarithms.
Power rule: logb(x^n) = n * logb(x)
Subtraction rule: logb(x) - logb(y) = logb(x/y)
Step 1: Apply the power rule.
(1/2 * log2(7)) - (2 * log2(3)) = log2(7^(1/2)) - log2(3^2)
Step 2: Simplify the exponents.
log2(√7) - log2(9)
Step 3: Apply the subtraction rule.
log2((√7)/9)


Therefore, The combined expression using the laws of logarithms is:
log2((√7)/9)

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Find the values of x, y and z that correspond to the critical point of the function f(x,y) 4x2 + 7x + 6y + 2y?: Enter your answer as a number (like 5, -3, 2.2) or as a calculation (like 5/3, 2^3, 5+4). c= za

Answers

The values of x, y and z that correspond to the critical point of the function f(x,y) 4x2 + 7x + 6y + 2y are  (-7/8, -3/2).

To find the values of x, y, and z that correspond to the critical point of the function f(x, y) = 4x^2 + 7x + 6y + 2y^2, we need to find the partial derivatives with respect to x and y, and then solve for when these partial derivatives are equal to 0.

Step 1: Find the partial derivatives
∂f/∂x = 8x + 7
∂f/∂y = 6 + 4y

Step 2: Set the partial derivatives equal to 0 and solve for x and y
8x + 7 = 0 => x = -7/8
6 + 4y = 0 => y = -3/2

Now, we need to find the value of z using the given equation c = za. Since we do not have any information about c, we cannot determine the value of z. However, we now know the critical point coordinates for the function are (-7/8, -3/2).

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draw the shear diagram for the beam. assume that m0=200lb⋅ft, and l=20ft.

Answers

The shear diagram for the beam with m0 = 200 lb-ft and l = 20 ft can be represented as a piecewise linear function with two segments: a downward linear segment from x = 0 to x = 20, and a constant segment at -200 lb from x = 20 onwards.

How does the shear vary along the beam?

The shear diagram provides a visual representation of how the shear force varies along the length of the beam. In this case, we are given that the beam has a fixed moment at the left end (m0 = 200 lb-ft) and a length of 20 ft (l = 20 ft).

Starting from the left end of the beam (x = 0), we observe a downward linear segment in the shear diagram. This segment represents a gradual decrease in shear force from the fixed moment until it reaches the right end of the beam at x = 20 ft.

At x = 20 ft, we encounter a change in behavior. The shear force remains constant at -200 lb, indicating that the beam experiences a continuous downward shear force of 200 lb from this point onwards.

By plotting the shear diagram, engineers and analysts can gain insights into the distribution of shear forces along the beam, which is crucial for understanding the structural behavior and designing appropriate supports and reinforcements.

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Matthew has 3. 5 pounds of clay to make ceramic objects. He needs 1/2 of a pound of clay to make one bowl. A. How many bowls can Matthew make with his clay

Answers

Matthew can make a total of 7 bowls with the 3.5 pounds of clay he has.

To find the number of bowls Matthew can make, we need to divide the total amount of clay he has by the amount of clay needed to make one bowl. Matthew has 3.5 pounds of clay, and he needs 1/2 of a pound to make one bowl. To divide these two values, we can write the division equation as:

3.5 pounds ÷ 1/2 pound per bowl

To simplify this division, we can multiply the numerator and denominator by the reciprocal of 1/2, which is 2/1. This gives us:

3.5 pounds ÷ 1/2 pound per bowl × 2/1

Multiplying across, we get:

3.5 pounds × 2 ÷ 1 ÷ 1/2 pound per bowl

Simplifying further, we have:

7 pounds ÷ 1/2 pound per bowl

Now, to divide by a fraction, we multiply by its reciprocal. So we can rewrite the division equation as:

7 pounds × 2/1 bowl per 1/2 pound

Multiplying across, we get:

7 pounds × 2 ÷ 1 ÷ 1/2 pound

Simplifying gives us:

14 bowls ÷ 1/2 pound

Dividing by 1/2 is the same as multiplying by its reciprocal, which is 2/1. So we have:

14 bowls × 2/1

Multiplying across, we find:

28 bowls

Therefore, Matthew can make a total of 28 bowls with the 3.5 pounds of clay he has.

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A spinner is divided into five sections, labeled A, B, C, D, and E. Devon spins the spinner 50 times and records the results in the table.



Use the results to predict each of the following outcomes for 1,000 trials.



The pointer will land on B about ______ times.



Please enter ONLY a number. Do not include any words in your answer. Immersive Reader


(1 Point)

Answers

The predicted number of times the pointer will land on section B in 1,000 trials can be determined by calculating the relative frequency of B based on the recorded results of 50 spins.

To find the relative frequency, we divide the number of times the spinner landed on B by the total number of spins. In this case, let's assume that the spinner landed on section B, say, 10 times out of the 50 recorded spins.

To predict the number of times the pointer will land on B in 1,000 trials, we can use the ratio of the number of spins for B in 50 trials to the total number of spins in 1,000 trials.

Thus, the predicted number of times the pointer will land on section B in 1,000 trials would be:

Predicted number of times on B = (Number of times on B in 50 trials / Total number of spins in 50 trials) * Total number of spins in 1,000 trials

Let's assume the spinner landed on B 10 times in the 50 recorded spins. The calculation would be:

Predicted number of times on B = (10 / 50) * 1,000 = 200

Therefore, the predicted number of times the pointer will land on section B in 1,000 trials is 200.

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Determine whether the random variable described is discrete or continuous. The number of pets a randomly chosen family may have. The random variable described is

Answers

The random variable described is discrete, as the number of pets a family can have can only take on whole number values.

It cannot take on non-integer values such as 2.5 pets or 3.7 pets. The possible values for this random variable are 0, 1, 2, 3, and so on, up to some maximum number of pets that a family might have.

Since the number of pets can only take on a countable number of possible values, this is a discrete random variable.

In contrast, a continuous random variable can take on any value within a range, such as the height or weight of a person, which can vary continuously.

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find the general power series solution of the differential equation y 00 3y 0 = 0, expanded at t0 = 0.

Answers

Therefore, the general power series solution of the differential equation y'' + 3y' = 0, expanded at t0 = 0, is: y(t) = c_0 + c_1 t - (3/2) c_1 t^2 + (9/8) c_1 t^3 - (15/48) c_1 t^4 + ... + (-1)^n (3/(n+2)) c_(n+1) t^(n+2) + ... where c_0 and c_1 are arbitrary constants.

To find the power series solution of the given differential equation, we assume that the solution can be expressed as a power series:

y(t) = ∑(n=0 to ∞) c_n t^n

where c_n is the nth coefficient to be determined.

Taking first and second derivatives of y(t) with respect to t, we get:

y'(t) = ∑(n=1 to ∞) n c_n t^(n-1)

y''(t) = ∑(n=2 to ∞) n(n-1) c_n t^(n-2)

Substituting these expressions into the differential equation, we get:

∑(n=2 to ∞) n(n-1) c_n t^(n-2) + 3∑(n=1 to ∞) n c_n t^(n-1) = 0

Shifting the index of the first summation to start from n=0, we get:

∑(n=0 to ∞) (n+2)(n+1) c_(n+2) t^n + 3∑(n=0 to ∞) (n+1) c_(n+1) t^n = 0

We can simplify this expression by setting the coefficients of each power of t to zero:

(n+2)(n+1) c_(n+2) + 3(n+1) c_(n+1) = 0, for n ≥ 0

Simplifying this expression further, we get:

c_(n+2) = -(3/((n+2)(n+1))) c_(n+1), for n ≥ 0

This gives us a recursive formula for the coefficients c_n in terms of c_0 and c_1:

c_(n+2) = -(3/(n+2)) c_(n+1), for n ≥ 0

c_0 and c_1 are arbitrary constants.

To find the power series solution expanded at t0 = 0, we need to set c_0 = y(0) and c_1 = y'(0) and solve for the remaining coefficients using the recursive formula.

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use green’s theorem in order to compute the line integral i c (3cos x 6y 2 ) dx (sin(5y ) 16x 3 ) dy where c is the boundary of the square [0, 1] × [0, 1] traversed in the counterclockwise way.

Answers

The line integral is: ∫_c F · dr = ∬_D (curl F) · dA = -70/3.

To apply Green's theorem, we need to find the curl of the vector field:

curl F = (∂Q/∂x - ∂P/∂y) = (-16x^2 - 6, 0, 5)

where F = (P, Q) = (3cos(x) - 6y^2, sin(5y) + 16x^3).

Now, we can apply Green's theorem to evaluate the line integral over the boundary of the square:

∫_c F · dr = ∬_D (curl F) · dA

where D is the region enclosed by the square [0, 1] × [0, 1].

Since the curl of F has only an x and z component, we can simplify the double integral by integrating with respect to y first:

∬_D (curl F) · dA = ∫_0^1 ∫_0^1 (-16x^2 - 6) dy dx

= ∫_0^1 (-16x^2 - 6) dx

= (-16/3) - 6

= -70/3

Therefore, the line integral is:

∫_c F · dr = ∬_D (curl F) · dA = -70/3.

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