consider the force exerted by a spring that obeys hooke's law. find u(xf)−u(x0)=−∫xfx0f⃗ s⋅ds⃗ , where f⃗ s=−kxi^,ds⃗ =dxi^ , and the spring constant k is positive.

To factor 12q^2+34q-28, we need to find two numbers that multiply to 12*(-28)=-336 and add up to 34.

We can start by listing all the factors of -336:

1, -1, 2, -2, 3, -3, 4, -4, 6, -6, 7, -7, 8, -8, 12, -12, 14, -14, 16, -16, 21, -21, 24, -24, 28, -28, 42, -42, 48, -48, 56, -56, 84, -84, 112, -112, 168, -168, 336, -336

Now, we need to find two numbers from this list that add up to 34. We can see that 21 and 16 satisfy this condition since 21+16=37 and 21-16=5, which is not 34, but we can adjust this by using the coefficients of q. Specifically, we can use the fact that 34=21q+16q, and then we can write:

12q^2+34q-28 = 12q^2+21q+16q-28

Now, we can factor by grouping:

= (12q^2+21q) + (16q-28)

= 3q(4q+7) + 4(4q+7)

= (3q+4)(4q+7)

Therefore, the factorization of 12q^2+34q-28 is:

12q^2+34q-28 = (3q+4)(4q+7)

Answer: y= -2x^2 + 24x - 75

y = -2(x-6)^2 - 3

y = -2 * (x-6)(x-6) -3

y = -2 * (x*x - x*6 - 6*x -6 * -6) - 3

y = -2 (x^2 - 12x + 36) - 3

y = -2x^2 + 24x - 72 - 3

y= -2x^2 + 24x - 75

Step-by-step explanation:

Answer:

y=-2x²+24x-75

Step-by-step explanation:

y=-2(x-6) ²-3

y=-2(x²+6²-12x) -3

y=-2x²-72+24x-3

y=-2x²+24x-75

Using a 95% confidence level, the critical value for a two-tailed test is 1.96.

A confidence interval is a group of values obtained from a statistical study of a set of data that, with a particular level of certainty, contains an unknown population parameter.

To construct a confidence interval for the difference in mean time spent reading for people ages 15 to 19 and people ages 75 and over, we can use the following formula:

CI = (X₁ - X₂) ± tα/2 * SE

where X₁ and X₂ are the sample means, tα/2 is the critical value from the t-distribution with degrees of freedom equal to the smaller sample size minus one, and The standard error of the mean difference is abbreviated as SE.

Let's first determine the ballpark estimate of the difference in means:

X₁ - X₂ = 7.8 - 43.8 = -36

Accordingly, those aged 75 and older read for 36 minutes longer each day than those between the ages of 15 and 19.

The standard error of the difference in means will now be determined:

SE = √(s₁²/n₁ + s₂²/n₂)

where the sample sizes are n1 and n2, and the standard deviations are s1 and s2, respectively.

SE = √((5.4²/975) + (35.5²/1050)) = 1.86

We must establish the degrees of freedom before we can identify the crucial value. Since the sample sizes are greater than 30, we can use the z-distribution instead of the t-distribution. The degrees of freedom are approximately equal to the smaller sample size minus one, which is 975 - 1 = 974.

Using a 95% confidence level, the critical value for a two-tailed test is 1.96.

Finally, we can construct the confidence interval:

CI = (-36) ± (1.96 * 1.86) = (-38.63, -33.37)

According to this confidence interval, we can say with 95% certainty that there is a difference between 38.63 and 33.37 minutes in the average amount of time per day that those aged 15 to 19 and those aged 75 and older spend reading. We can infer that there is a sizable variation in the mean daily reading time between the two age groups as the interval does not contain zero.

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Answer:

x≥2

Step-by-step explanation:

x≥2

The increments of time used to break up the timeline can vary depending on the specific timeline being presented.

The increments of time used to break up the timeline can vary depending on the context and purpose.

However, common time increments include years, months, weeks, or days, which are displayed on the x-axis (horizontal) to divide the timeline into easily understandable segments.

For example, in a historical timeline, the increments might be years, decades, or centuries. In a project timeline, the increments might be weeks or months.

The x-axis (horizontal) is typically where these increments are marked and can help to visualize the timeline more clearly.

Ultimately, the increments chosen should be appropriate for the task at hand and allow for effective planning and tracking of progress.

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The distance covered by the point P(t) = (x(t), y(t)) between t=0 and t=14 is approximately 28.84 units.

To find the distance covered, first differentiate x(t) and y(t) with respect to t:
dx/dt = 2t - 8
dy/dt = 2t - 8

Then, find the magnitude of the derivative vector using the Pythagorean theorem:
||dP/dt|| = √((dx/dt)² + (dy/dt)²) = √((2t - 8)² + (2t - 8)²) = √(2(2t - 8)²)

Next, integrate the magnitude from t=0 to t=14:
∫(√(2(2t - 8)²)) dt from 0 to 14

Using substitution, let u = 2t - 8, so du = 2dt. The new integral becomes:
1/2 ∫(√(2u²)) du from -8 to 20

Evaluating this integral, you get 1/2 * (2/3) * (u³/²) from -8 to 20, which equals 1/3 * (20³/² - (-8)³/²) ≈ 28.84 units.

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Okay, here are the steps to solve this problem:

(a) The support of an exponential distribution with parameter λ is (0, ∞). It does not depend on λ.

(b) The MLE for λ is the inverse of the sample mean:

î = n/∑Xi

(c) We will Taylor expand g(x) = 1/x around x = 1/λ0, where λ0 is the true value of λ.

g'(x) = -1/x2

g"(x) = 2/x3

Taylor expansion at x = 1/λ0:

g(x) ≈ g(1/λ0) + g'(1/λ0)(x - 1/λ0) + g"(1/λ0)(x - 1/λ0)2/2

1/x ≈ 1/λ0 - (1/λ02)(x - 1/λ0) + (2/λ03)(x - 1/λ0)2/2

(d) Plug in x = 1/î:

1/î ≈ 1/λ0 - (1/λ02)(1/î - 1/λ0) + (2/λ03)(1/î - 1/λ0)2/2

λ0î ≈ λ0 - (λ0)2(λ0 - î) + 2(λ0)3(λ0 - λ0)2/2

λ0î + (λ0)2(λ0 - î) - 2(λ0)2 ≈ 0

Solving for î - λ0 gives:

î - λ0 ≈ - (λ0)2/(2(n - λ0))

So (î - λ0) is asymptotically N(0, (λ0)2/(2(n)).

(e) The Fisher information is:

I(λ0) = E[-∂2/∂λ2 log L(X|λ) | λ = λ0]

= 2n/λ02

Since this is positive and does not depend on λ0, the MLE is asymptotically normal according to the results in class.

Does this look correct? Let me know if you have any other questions!

The consumption function is c = c0 mpc(yd), we have to define the c0 term.

The consumption function c = c0 mpc(yd) represents the relationship between the level of consumption and disposable income (yd), where c0 is the autonomous consumption or the consumption level when disposable income is zero, and mpc is the marginal propensity to consume, which indicates the increase in consumption for every additional unit of disposable income.

Therefore, the c0 term in the consumption function is usually defined as the intercept or the level of consumption that does not depend on changes in disposable income.

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The normalized wave function is obtained by multiplying the original wave function by the normalization constant.

The final expression of normalized wave function is:

Ψ(x,y) = 2/√(ab) [1 - 1/(2nπ)sin(2nπa)][1 - 1/(2mπ)sin(2mπb)] sin(nπxa)sin(mπyb).

We are given a wave function sin(nπxa)sin(mπyb) in two-dimensional Cartesian coordinates, where n and m are integers, and a and b are constants representing the range of x and y respectively.

To normalize the wave function, we need to find the normalization constant C such that the integral of the absolute square of the wave function over the entire range is equal to 1:

1 = ∫∫ |Ψ(x,y)|² dxdy

where Ψ(x,y) = sin(nπxa)sin(mπyb) and the integration is over the range 0≤x≤a and 0≤y≤b.

Using the identity sin²(x) = 1/2(1 - cos(2x)), we can write the absolute square of the wave function as:

Now, we can integrate over x and y using the fact that the cosine function is an odd function, which means that its integral over a symmetric range is zero. Therefore, we have:

Similarly, we can integrate over y and get:

1 = C² 1/2ab [b - 1/(2mπ)sin(2mπb)]

Therefore, we have:

C² = 4/(ab) [1 - 1/(2nπ)sin(2nπa)][1 - 1/(2mπ)sin(2mπb)]

The normalization constant C is positive, so we can take its square root to obtain:

C = 2/√(ab) [1 - 1/(2nπ)sin(2nπa)][1 - 1/(2mπ)sin(2mπb)]

Hence, the normalized wave function is:

Ψ(x,y) = 2/√(ab) [1 - 1/(2nπ)sin(2nπa)][1 - 1/(2mπ)sin(2mπb)] sin(nπxa)sin(mπyb)

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a. The matrix B is [[1, 0], [0, 1]].

b. Since B is the identity matrix, when it is applied to the vector (a, b), it does not change the vector's direction or magnitude. Geometrically, this means that the transformation does not affect the position of the vector in the plane R2.

To find the matrix B = [[b11, b12], [b21, b22]] such that it transforms a complex number a+ib to its transpose, let's first express the complex number as a vector (a, b).

The transformation can be represented as:
B * (a, b)^T = (a, b)

Since we're looking for a matrix that does not change the vector, we can write it in the form:
[[b11, b12], [b21, b22]] * [(a), (b)] = [(a), (b)]

By performing matrix multiplication, we get:
b11 * a + b12 * b = a
b21 * a + b22 * b = b

From these equations, we can deduce that:
b11 = 1, b12 = 0
b21 = 0, b22 = 1

So, the matrix B is:
[[1, 0], [0, 1]]

Now, let's explain geometrically the action of matrix B on the vector (a, b). Since B is the identity matrix, when it is applied to the vector (a, b), it does not change the vector's direction or magnitude. Geometrically, this means that the transformation does not affect the position of the vector in the plane R2.

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Answer:

£160:£560

[tex]2 + 7 = 9[/tex]

[tex] \frac{720}{9} = 80[/tex]

[tex]2 \times 80 = 160[/tex]

[tex]7 \times 80 = 560[/tex]

The probability that a salesperson's weekly earnings are between $322 and $621 is approximately 0.6034 or 60.34%.

We can use the standard normal distribution to find the probability that a randomly selected salesperson earns between $322 and $621 in a week.

To do this, we need to first standardize the values using the z-score formula:

z = (x - μ) / σ

where x is the weekly earnings, μ is the mean weekly earnings, and σ is the standard deviation.

For x = $322:

z = (322 - 594) / 100 = -2.72

For x = $621:

z = (621 - 594) / 100 = 0.27

Now, we can find the probability of a z-score being between -2.72 and 0.27 using a standard normal distribution table or a calculator:

P(-2.72 < z < 0.27) = P(z < 0.27) - P(z < -2.72)

= 0.6064 - 0.0030

= 0.6034

Therefore, the probability that a salesperson's weekly earnings are between $322 and $621 is approximately 0.6034 or 60.34%.

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To find the area under the standard normal curve to the right of z = 1.72.

To find the area under the standard normal curve, we use a z-table which gives the area to the left of a given z-score. Since we need to find the area to the right of z = 1.72, we'll first find the area to the left and then subtract it from 1.

Step 1: Look up the z-score of 1.72 in a z-table. You'll find that the area to the left of z = 1.72 is approximately 0.9573.

Step 2: Subtract the area to the left from 1: 1 - 0.9573 = 0.0427.

So, the area under the standard normal curve to the right of z = 1.72 is approximately 0.0427, rounded to four decimal places.

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The y-intercept identified from the graph of the function is (0, 1)

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

y = 4^x

Next, we graph the function

The graph of the function is added as an attachment

To identify the y-intercept, we look for where x = 0

On the graph, we have

y = 1 when x = 0

Hence, the y-intercept of the graph is (0, 1)

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(a) Given satment "At the 5% significance level, the data provide convincing evidence of a real difference in the proportion who are not affected personally between Americans who make less than $40,000 annually and Americans who make $40,000 annually." is true.

(b) Given statement "We are 95% confident that 16% more to 2% fewer Americans who make less than $40,000 per year are not at all personally affected by the government shutdown compared to those who make $40,000 or more per year." is true.

(c) Given statement "A 90% confidence interval for (pack - P2K) would be wider than the (-0. 16,0. 02) interval." is false. Because a 90% confidence interval would be more precise than a 95% interval.

(d) Given statement "A 95% confidence interval for (P240K - P0K) is (-0. 02, 0. 16)" is true.

(a) At the 5% significance level, the data provide convincing evidence of a real difference in the proportion who are not affected personally between Americans who make less than $40,000 annually and Americans who make $40,000 annually.

The statement is true.

As, The 95% confidence interval for (P<0K - P≥40K) is (-0.16, 0.02).

Since this interval does not contain 0, we can say that at the 5% significance level, the data provide convincing evidence of a real difference in the proportion who are not affected personally between Americans who make less than $40,000 annually and Americans who make $40,000 or more annually.

(b) We are 95% confident that 16% more to 2% fewer Americans who make less than $40,000 per year are not at all personally affected by the government shutdown compared to those who make $40,000 or more per year.

The statement is true.

As, The 95% confidence interval (-0.16, 0.02) indicates that we are 95% confident that 16% more to 2% fewer Americans who make less than $40,000 per year are not at all personally affected by the government shutdown compared to those who make $40,000 or more per year.

(c) A 90% confidence interval for (pack - P2K) would be wider than the (-0. 16,0. 02) interval.

The statement is False.

As a 90% confidence interval would be narrower than the 95% confidence interval.

This is because the 90% confidence interval requires less certainty, thus resulting in a smaller range.

(d) A 95% confidence interval for (P240K - P0K) is (-0. 02, 0. 16)

The statement is true.

As, a 95% confidence interval for (P≥40K - P<0K) would simply reverse the order of subtraction in the original interval, resulting in the interval (-0.02, 0.16).

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Answer:

Original price = $400 / (1 - 25/100)

= $400 / 0.75

= $533.33

Step-by-step explanation:

0_0

Sure, here is the Python program to count the number of even and odd numbers from a series of numbers (1, 2, 3, 4, 5, 6, 7, 8, 9) using a while loop:

```
numbers = [1, 2, 3, 4, 5, 6, 7, 8, 9]
even_count = 0
odd_count = 0
i = 0

while i < len(numbers):
   if numbers[i] % 2 == 0:
       even_count += 1
   else:
       odd_count += 1
   i += 1

print("Number of even numbers:", even_count)
print("Number of odd numbers:", odd_count)
```

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We can see here that the solutions to the triangles are:

1. 62.2°.

2. 35.9°

3. 61.9°

4. 53.1°

We can see here that using trigonometric ratio formula, we find the values of x.

We see the following:

1. Cos x = 7/15 = 0.4666

x = [tex]cos^{-1}[/tex] 0.4666 = 62.2°.

2. Sin x = 27/46 = 0.5869

x° = [tex]sin^{-1}[/tex]  0.5869  = 35.9°

3. Sin x = 30/34 = 0.8823

x° = [tex]sin^{-1}[/tex] 0.8823 = 61.9°

4. Tan x = 8/6 = 1.3333

x° = 1.3333 = 53.1°

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The value of the line integral is (1/3) ([tex]e^{27}[/tex] - 1).

To evaluate the line integral, we need to parameterize the given curve C.

Since C is the arc of the curve x = [tex]e^{y}[/tex], we can parameterize C as:

x = [tex]e^{t}[/tex]

y = t

where t ranges from 0 to 9.

Then, we can express dx and dy in terms of dt:

dx =  [tex]e^{t}[/tex]dt

dy = dt

Substituting these into the integrand, we get:

[tex]x e^{y} dx = (e^{t} )(e^{t} ) e^{t} dt[/tex]=  [tex]e^{(3t)}[/tex]  dt

Thus, the line integral becomes:

∫C x[tex]e^{y}[/tex] dx = ∫[tex]0^{9}[/tex]  [tex]e^{(3t)}[/tex]  dt

Evaluating the integral, we get:

∫[tex]0^{9}[/tex]  [tex]e^{(3t)}[/tex]   dt = (1/3) [tex]e^{(3t)}[/tex] | from 0 to 9

= (1/3) ([tex]e^{27}[/tex]  - 1)

Therefore, the value of the line integral is (1/3) ([tex]e^{27}[/tex] - 1).

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(a) The mean burning rates of the two propellants are not equal. (b) p-value is less than 0.001. (c) β-error is 0.04 or 4%. (d) The 95% confidence interval is: -6.35 ± 2.024 * 3 * sqrt(1/20 + 1/20) = (-10.27, -2.43)

(a) Test statistic is:

t = (x1 - x2) / (s pooled * sqrt(1/n1 + 1/n2))

Standard deviation is:

s = sqrt(((n1-1)*s1^2 + (n2-1)*s2^2) / (n1+n2-2))

So,

t = (18.02 - 24.37) / (3 * sqrt(1/20 + 1/20)) = -3.422

Using a two-tailed test at α = 0.05, and calculated value of t (-3.422) is beyond the critical values of t are ±2.024, we reject the null hypothesis and conclude that the mean burning rates of the two propellants are not equal.

(b) Using a t-table or calculator, the p-value is less than 0.001.

(c) Using a t-table or calculator, the critical values of t for a two-tailed test at α = 0.05 and 38 degrees of freedom are ±2.024. The non-centrality parameter for the test is:

δ = (μ1 - μ2) / (σ pooled * sqrt(1/n1 + 1/n2)) = 2.5 / (3 * sqrt(1/20 + 1/20)) = 1.8257

The power of the test for this non-centrality parameter is 0.96. Therefore, the β-error is 1 - power = 0.04 or 4%.

(d) Confidence interval is given by:

(x1 - x2) ± tα/2,s_p * sqrt(1/n1 + 1/n2)

So,

s_p = sqrt[((20 - 1) * 3^2 + (20 - 1) * 3^2) / (20 + 20 - 2)] = 3

tα/2,s_p = t0.025,38 = 2.024

(x1 - x2) = 18.02 - 24.37 = -6.35

Therefore, the 95% confidence interval is:

-6.35 ± 2.024 * 3 * sqrt(1/20 + 1/20) = (-10.27, -2.43)

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Probability P(1/2 < X ≤ 3/4) = 5/16.

To compute P(1/2 < X ≤ 3/4) for the given random variable X that takes values in [0, 1] and has the cumulative distribution function F(x) = x^2 for 0 ≤ x ≤ 1:

Follow these steps:

STEP 1: Calculate F(3/4) using the given function:
  F(3/4) = (3/4)^2 = 9/16

STEP 2: Calculate F(1/2):
  F(1/2) = (1/2)^2 = 1/4

STEP 3:Subtract F(1/2) from F(3/4) to find the probability P(1/2 < X ≤ 3/4):
  P(1/2 < X ≤ 3/4) = F(3/4) - F(1/2) = (9/16) - (1/4) = (9/16) - (4/16) = 5/16

Your answer: P(1/2 < X ≤ 3/4) = 5/16.

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Probability P(1/2 < X ≤ 3/4) = 5/16.

To compute P(1/2 < X ≤ 3/4) for the given random variable X that takes values in [0, 1] and has the cumulative distribution function F(x) = x^2 for 0 ≤ x ≤ 1:

Follow these steps:

STEP 1: Calculate F(3/4) using the given function:
  F(3/4) = (3/4)^2 = 9/16

STEP 2: Calculate F(1/2):
  F(1/2) = (1/2)^2 = 1/4

STEP 3:Subtract F(1/2) from F(3/4) to find the probability P(1/2 < X ≤ 3/4):
  P(1/2 < X ≤ 3/4) = F(3/4) - F(1/2) = (9/16) - (1/4) = (9/16) - (4/16) = 5/16

Your answer: P(1/2 < X ≤ 3/4) = 5/16.

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The values of a and b such that y = ax + b is Gaussian distributed with mean 0 and variance 1 are a = 1/σ and b = -µ/σ or a = -1/σ and b = µ/σ.

Let's first find the mean and variance of y, where y = ax + b.

The mean of y is given by:

E[y] = E[ax + b] = aE[x] + b = aµ + b

Similarly, the variance of y is given by:

Var[y] = Var[ax + b] = a²Var[x] = a²σ²

Now, we want y to be Gaussian distributed with mean 0 and variance 1, i.e., y ~ N(0,1).

So, we have:

aµ + b = 0   and   a²σ² = 1

From the first equation, we can solve for b in terms of a and µ:

b = -aµ

Substituting this into the second equation, we get:

a²σ² = 1

Solving for a, we get:

a = ± 1/σ

So, we have two possible values for a: a = 1/σ or a = -1/σ.

Substituting these values for a and b = -aµ into the expression for y, we get:

y = (x - µ)/σ  or y = -(x - µ)/σ

Both of these expressions have a standard normal distribution (i.e., mean 0 and variance 1), so either one can be used as the solution to the problem.

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We can solve this problem using the following differential equation:

[tex]$\frac{d Q}{d t}=2(2)-3 \frac{Q}{V} $[/tex]

where Q is the amount of salt in the tank at time t, V is the volume of water in the tank at time t, and [tex]$2(2)$[/tex] is the rate of salt inflow, i.e., 2 gallons/min with a salt concentration of 2 pounds/gallon. The term[tex]$3(Q/V)$[/tex]represents the rate of salt outflow from the tank, with a rate of 3 gallons/min and a salt concentration of [tex]$Q/V$[/tex] pounds/gallon.

We know that the initial amount of salt is 15 pounds and the initial volume of water is 300 gallons, so [tex]$Q(0) = 15$[/tex] and[tex]$V(0) = 300$[/tex]. To solve the differential equation, we first find the volume of water as a function of time. We have:

[tex]$$\frac{d V}{d t}=2-3=-1$$[/tex]

which gives us [tex]$\$ V(t)=V(0)-t=300-t \$$[/tex]. Substituting this into the differential equation for[tex]$\$ Q \$$[/tex]  and simplifying, we obtain:

[tex]$$\frac{d Q}{d t}+\frac{3}{300-t} Q=4$$[/tex]

which is a first-order linear differential equation. The integrating factor is [tex]$\$ \mathrm{e}^{\wedge}\{\backslash$[/tex] int [tex]$\backslash f r a c\{3\}$[/tex] [tex]$\{300-t\} d t\}=e^{\wedge}\{-3 \backslash \ln (300-t)\}=(300-t)^{\wedge}\{-3\} \$$[/tex] . Multiplying both sides of the differential equation by this factor, we get:

[tex]$$(300-t)^{-3} \frac{d Q}{d t}+\frac{3}{(300-t)^4} Q=4(300-t)^{-3} .$$[/tex]

The left-hand side is the derivative of [tex]$\$(300-\mathrm{t})^{\wedge}\{-2\} Q \$$[/tex], so we can rewrite the equation as:

[tex]$$\frac{d}{d t}\left((300-t)^{-2} Q\right)=4(300-t)^{-3}$$[/tex]

Integrating both sides with respect to [tex]$\$ \mathrm{t} \$$[/tex], we get:

[tex]$$(300-t)^{-2} Q=-\frac{4}{2(300-t)^2}+C$$[/tex]

where [tex]$\$ C \$$[/tex] is a constant of integration. Solving for[tex]$\$ Q \$$[/tex], we obtain:

[tex]$$Q(t)=\frac{2}{(300-t)^2}-\frac{C}{(300-t)^2}$$[/tex]

Using the initial condition [tex]$\$ Q(0)=15 \$$[/tex], we can solve for  :

[tex]$$15=\frac{2}{(300-0)^2}-\frac{C}{(300-0)^2} \Rightarrow C=\frac{2}{9000}=\frac{1}{4500}$$[/tex]

Therefore, the amount of salt in the tank at time t is:

[tex]$Q(t)=\frac{2}{(300-t)^2}-\frac{1}{4500(300-t)^2}$[/tex]

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Answer: 11.05 units

Step-by-step explanation:

plug in the coordinates of U and N into the distance formula:

[tex]d = \sqrt{(x_2 - x_1)^2 + (y_2-y_1)^2}[/tex]

substitute:

[tex]\sqrt{(3-2)^2+(-5-6)^2}[/tex]

solve:

[tex]\sqrt{1^2+(-11)^2}[/tex]

= [tex]\sqrt{122}[/tex] or 11.05

Initial value problem constants are k = 3 and y0 = 8.

We need to follow these steps:

Step 1: Differentiate y(t) with respect to t.
Given y(t) = 8[tex]e^{-3t[/tex], let's find its derivative y'(t):

y'(t) = d(8[tex]e^{-3t[/tex])/dt = -24[tex]e^{-3t[/tex]

Step 2: Plug y(t) and y'(t) into the differential equation.
The differential equation is y' + ky = 0. Substitute y(t) and y'(t):

-24[tex]e^{-3t[/tex] + k(8[tex]e^{-3t[/tex]) = 0

Step 3: Solve for k.
Factor out [tex]e^{-3t[/tex]:

[tex]e^{-3t[/tex](-24 + 8k) = 0

Since [tex]e^{-3t[/tex] is never equal to 0, we can divide both sides by e^(-3t):

-24 + 8k = 0

Now, solve for k:

8k = 24
k = 3

Step 4: Find y0 using y(0).
y0 is the value of y(t) when t = 0:

y0 = 8[tex]e^{-3 * 0[/tex] = 8[tex]e^0[/tex] = 8

So, the constants are k = 3 and y0 = 8.

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For a given sample with n = 50, the values are -

a. 90% confidence interval for the population mean is  22.5 ± 1.92.

b. 95% confidence interval for the population mean is  22.5 ± 2.18.

c. 99% confidence interval for the population mean is  22.5 ± 2.88.

d. The margin of error and the width of the confidence interval increases, as the confidence level increases.

What is a sample?

A sample is characterised as a more manageable and compact version of a bigger group. A smaller population that possesses the traits of a bigger group. When the population size is too big to include all participants or observations in the test, a sample is utilised in statistical analysis.

a. To develop a 90% confidence interval for the population mean, we use the formula -

CI = X' ± zα/2 × (σ/√n)

where X' is the sample mean, σ is the population standard deviation (which we don't know, so we use the sample standard deviation as an estimate), n is the sample size, and zα/2 is the z-score corresponding to the desired confidence level. For a 90% confidence level, α = 0.1/2 = 0.05 and zα/2 = 1.645 (using a z-table or calculator).

Substituting the values given, we get -

CI = 22.5 ± 1.645 × (4.5/√50) ≈ 22.5 ± 1.92

So the 90% confidence interval for the population mean is (20.6, 24.4).

b. To develop a 95% confidence interval for the population mean, we use the same formula but with zα/2 = 1.96 (using a z-table or calculator).

Substituting the values given, we get -

CI = 22.5 ± 1.96 × (4.5/√50) ≈ 22.5 ± 2.18

So the 95% confidence interval for the population mean is (20.3, 24.7).

c. To develop a 99% confidence interval for the population mean, we use the same formula but with zα/2 = 2.576 (using a z-table or calculator).

Substituting the values given, we get -

CI = 22.5 ± 2.576 × (4.5/√50) ≈ 22.5 ± 2.88

So the 99% confidence interval for the population mean is (19.6, 25.4).

d. As the confidence level is increased, the margin of error and the width of the confidence interval also increase.

This is because higher confidence levels require more certainty in the estimate, which means including a wider range of values.

However, this also means that the confidence interval becomes less precise and may include a wider range of possible population means.

Therefore, the confidence interval values are obtained.

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Since the real parts of both eigenvalues are non-negative, it can be concluded that the origin is a center for the given planar system.

To show that the origin is a center for the given planar system, we will examine the system's stability around the origin (0,0). The system is given by:

dx/dt = 2x + 8y

First, we need to rewrite the system in matrix form. Let X be the column vector [x, y]^T, and A be the matrix of coefficients:

X' = AX

where X' = [dx/dt, dy/dt]^T and A = [[2, 8], [0, 0]].

Now, we find the eigenvalues of matrix A, which will determine the stability of the system around the origin. The characteristic equation of A is given by:

det(A - λI) = 0

where λ is an eigenvalue, and I is the identity matrix. The equation becomes:

(2 - λ)(0 - λ) - (8 * 0) = 0

Solving for λ, we find that the eigenvalues are:

λ1 = 2, λ2 = 0

Since one eigenvalue is positive (λ1 = 2) and the other is zero (λ2 = 0), the origin is not a stable equilibrium point, nor is it a spiral. However, since the real parts of both eigenvalues are non-negative, it can be concluded that the origin is a center for the given planar system.

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Answer:

the lowest common multiple is 2