1. The concentration of pollutant, \( \mathrm{c} \) (in \( \mathrm{kg} \) per cubic meter), in the pond at \( \mathrm{t} \) minutes is modelled by \[ c(t)=\frac{27 t}{10000+3 t} \] ( 5 marks) a. To the nearest hundredths, what is the concentration at 1 day? b. To the nearest hundredth of an hour, when does the concentration reach a level of 2 kg/m
3
? c. What happens to the concentration as the time increases?

Answers

Answer 1

a. the concentration at 1 day is approximately 0.93 kg/m.

b. the concentration reaches a level of 2 kg/m at approximately 15.87 hours.

c. the concentration approaches a maximum value of 9 kg/m as t approaches infinity.

a. To find the concentration at 1 day, we need to convert 1 day to minutes.

There are 24 hours in a day, and 60 minutes in an hour. Therefore, 1 day = 24 × 60 = 1440 minutes.

Now we can substitute t = 1440 in the given equation and find the concentration at 1 day.

[tex]\[ c(1440)=\frac{27\times1440}{10000+3\times1440}=0.932 \[/tex]

b. We need to find the time at which the concentration reaches 2 kg/m. We can set the given equation equal to 2 and solve for t.

[tex]2=\frac{27 t}{10000+3 t}[/tex]

20000+6t=27t

21t=20000

t = 952.38 minutes

c. As time increases, the denominator of the given equation (10000+3t) also increases. we can conclude that the concentration decreases. However, the concentration approaches a maximum value of 9 kg/m as t approaches infinity.

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Related Questions

Find the volume of the solid generated by revolving the region about the given line. The region in the second quadrant bounded above by the curve y = 4 - x², below by the x-axis, and on the right by the y-axis, about the line x = 1 56 л 32 π O 256 15 О 8л T

Answers

The region in the second quadrant is bounded above by the curve y = 4 - x², below by the x-axis, and on the right by the y-axis. We need to find the volume of the solid generated by revolving this region about the line x = 1.

In order to do this, we will use the method of cylindrical shells. The formula for the volume generated by revolving a region bounded by y = f(x), y = 0,

x = a,

and x = b about the line

x = c is given by:

$$V=2\pi \int_a^c x\cdot f(x)dx$$ In this case, the bounds are

a = 0 and

b = 2. The axis of rotation is

x = 1. We need to express

y = 4 - x² in terms of x, so that we can integrate with respect to x.

$$y = 4 - x² \Rightarrow

x² + y = 4 \Rightarrow

x² = 4 - y$$$$\Rightarrow

x = \sqrt{4 - y}$$ Thus, the volume is given by:

$$V = 2\pi \int_0^2 (1-x)(4-x^2)dx$$$$

= 2\pi \left[\int_0^2 (4x-x^3)dx - \int_0^2 x(4-x^2)dx\right]$$$$

Thus, the volume of the solid generated by revolving the region about the line x = 1 is 0. We need to find the volume of the solid generated by revolving this region about the line x = 1.

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Rita is making a box from a 2 ft by Sit piece of plywood. The box does not need a top, so only five pleces

are needed. Calculate the volume of the two designs she drew.

5ft

2x

2 ft

5-2x

5 ft

1

2 ft

1

1. 5

15

1

1

The volume of the first box is

The volume of the second box is

Answers

The volume of the second box is (100 - 40x) ft^3. To calculate the volume of each box, we need to multiply the dimensions of the box together.

First Box:

The dimensions of the first box are 5 ft, 2x ft, and 2 ft. Since the box does not have a top, we can assume the height is 2 ft.

Volume of the first box = Length * Width * Height

= 5 ft * 2x ft * 2 ft

= 20x ft^3

Therefore, the volume of the first box is 20x ft^3.

Second Box:

The dimensions of the second box are 5 ft, (5-2x) ft, and 2 ft. Again, assuming the height is 2 ft.

Volume of the second box = Length * Width * Height

= 5 ft * (5-2x) ft * 2 ft

= 20 ft * (5-2x) ft^2

= 100 - 40x ft^3

Therefore, the volume of the second box is (100 - 40x) ft^3.

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The life expectancy for females in a certain country born during 1980 - 1985 was approximately 79.4 years. This grew to 80 years during 1985 - 1990 and to 80.4 years during 1990 - 1995. Construct a model for this data by finding a quadratic equation whose graph passes through the points (0,79.4). (5,80), and (10,80.4). Use this model to estimate the life expectancy for females born between 1995 and 2000 and for those born between 2000 and 2005.
Let x be the number of years since 1980 and y be the life expectancy for a person born between (1980 +x) and (1980 + x+ 5). Find a quadratic equation whose graph passes through the points (0,79.4). (5,80), and (10,80.4).
y = __x^2 + __x +__
(Type an expression using × as the variable. Use integers or decimals for any numbers in the expression. Do not factor.)
According to the model, the life expectancy of a female born between 1995 and 2000 in this country is __ years.
(Round to the nearest tenth as needed.)
According to the model, the life expectancy of a female born between 2000 and 2005 in this country is __ years.
(Round to the nearest tenth as needed.)

Answers

The quadratic equation that models the data is [tex]\(y = 0.04x^2 - 0.1x + 79.4\)[/tex]. According to this equation, the life expectancy of females born between 1995 and 2000 is approximately 80.3 years, and for those born between 2000 and 2005, it is approximately 80.5 years.

To find the quadratic equation, we can use the given data points and substitute the values into the equation [tex]\(y = ax^2 + bx + c\)[/tex]. Plugging in the point (0, 79.4), we get [tex]\(79.4 = a(0)^2 + b(0) + c\)[/tex], which simplifies to [tex]\(c = 79.4\)[/tex].

Next, plugging in the point (5, 80), we have [tex]\(80 = a(5)^2 + b(5) + 79.4\)[/tex], which simplifies to [tex]\(25a + 5b = 0.6\)[/tex] (equation 1).

Finally, substituting the point (10, 80.4), we get [tex]\(80.4 = a(10)^2 + b(10) + 79.4\)[/tex], which simplifies to [tex]\(100a + 10b = 1\)[/tex] (equation 2).

We now have a system of linear equations with two unknowns (a and b). Solving equations 1 and 2 simultaneously, we find [tex]\(a = 0.04\)[/tex] and [tex]\(b = -0.1\)[/tex].

Substituting these values back into the equation [tex]\(y = ax^2 + bx + c\)[/tex], we obtain the quadratic equation [tex]\(y = 0.04x^2 - 0.1x + 79.4\)[/tex].

To estimate the life expectancy of females born between 1995 and 2000, we substitute x = 15 into the equation: [tex]\(y = 0.04(15)^2 - 0.1(15) + 79.4\)[/tex], which gives us approximately 80.3 years.

Similarly, for females born between 2000 and 2005, we substitute [tex]\(x = 20\)[/tex] into the equation: [tex]\(y = 0.04(20)^2 - 0.1(20) + 79.4\)[/tex], which gives us approximately 80.5 years.

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The mean starting salary for nurses is 67,694 dollars nationally. The standard deviation is approximately 10,333 dollars. Assume that the starting salary is normally distributed. Round the probabilities to four decimal places. It is possible with rounding for a probability to be 0.0000. a) State the random variable. Select an answer b) Find the probability that a randomly selected nurse has a starting salary of 76985.5 dollars or more. c) Find the probability that a randomly selected nurse has a starting salary of 93079.9 dollars or less. d) Find the probability that a randomly selected nurse has a starting salary between 76985.5 and 93079.9 dollars.

Answers

The mean starting salary for nurses is 67,694 dollars, and the standard deviation is approximately 10,333 dollars.

a)The random variable here is the starting salary for nurses, which is normally distributed with a mean of 67,694 dollars and a standard deviation of approximately 10,333 dollars.
b) To find the probability that a randomly selected nurse has a starting salary of 76985.5 dollars or more, we need to find the z-score first and then look up the probability in the standard normal table. The z-score is calculated as:
z = (X - μ) / σ
z = (76985.5 - 67694) / 10333
z = 0.8959
Looking up the probability for a z-score of 0.8959 in the standard normal table, we get:
P(Z > 0.8959) = 0.1852
Therefore, the probability that a randomly selected nurse has a starting salary of 76985.5 dollars or more is 0.1852.
c) To find the probability that a randomly selected nurse has a starting salary of 93079.9 dollars or less, we again need to find the z-score and look up the probability in the standard normal table. The z-score is calculated as:
z = (X - μ) / σ
z = (93079.9 - 67694) / 10333
z = 2.4707
Looking up the probability for a z-score of 2.4707 in the standard normal table, we get:
P(Z < 2.4707) = 0.9937
Therefore, the probability that a randomly selected nurse has a starting salary of 93079.9 dollars or less is 0.9937.
d) To find the probability that a randomly selected nurse has a starting salary between 76985.5 and 93079.9 dollars, we need to find the z-scores for both values and then find the probability between those z-scores in the standard normal table. The z-scores are:
z1 = (76985.5 - 67694) / 10333 = 0.8959
z2 = (93079.9 - 67694) / 10333 = 2.4707
Using the standard normal table, we can find the probability between these z-scores as:
P(0.8959 < Z < 2.4707) = P(Z < 2.4707) - P(Z < 0.8959)
= 0.9937 - 0.1852
= 0.8085
Therefore, the probability that a randomly selected nurse has a starting salary between 76985.5 and 93079.9 dollars is 0.8085.
The mean starting salary for nurses is 67,694 dollars, and the standard deviation is approximately 10,333 dollars. By calculating the z-scores for different salary values and looking up the probabilities in the standard normal table, we can find the probabilities for different events, such as a nurse having a starting salary of 76985.5 dollars or more, a nurse having a starting salary of 93079.9 dollars or less, and a nurse having a starting salary between 76985.5 and 93079.9 dollars. All probabilities are rounded to four decimal places.

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Consider the following. u = (3,-4), v = (6,4) (a) Find u. v. U V = X (b) Find the angle between u and v to the nearest degree. 0 = O

Answers

The u.v product of two vectors is the scalar obtained by multiplying corresponding components of two vectors and then adding the products. We can write that as follows:

[tex]U . V = (3 * 6) + (-4 * 4)U . V = 18 - 16U . V = 2[/tex]

The magnitude of a vector is given by:(magnitude of [tex]u) = √(3² + (-4)²) = √(9 + 16) = √25 = 5(magnitude of v) = √(6² + 4²) = √(36 + 16) = √52b)[/tex]

To determine the angle between u and v, we can use the formula that relates the dot product of two vectors to the cosine of the angle between them.

cos(θ) = (u . v) / (magnitude of u)(magnitude of [tex]v)cos(θ) = (2) / (5)(√52)cos(θ) = 0.3722222222θ = cos-1(0.3722222222)θ = 68.13° (rounded to the nearest degree)[/tex]

Therefore, the angle between u and v to the nearest degree is 68°.

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b) (4 x 104) + (7 x 10³) + (3 x 10¹)​

Answers

The answer is 7,446 because (4 x 104) = 416. (7 x 10³) = 7,000. (3 x 10¹) = 30. 416 + 7,000 + 30 will equal 7,446

A company is comparing the sales levels of salespeople (salespeople) men and women. A sample of 72 observations was selected from the sales force population men with a standard deviation of the population (35×1), and with a sample average of 221. A sample of 81 observations was selected from the female salespeople population with the standard deviation of the population (35×2) and with the sample average is 112. The company wants to conduct hypothesis testing using a significance level of 3%, where the company wants to know if there is a difference in the average value of sales sold by the male agent and the female agent in the company?
d) Calculate its statistical test value!
e) What was your decision?

Answers

The statistical test value was found to be approximately 12.39. By comparing this value with the critical value from the t-distribution table, and considering the degrees of freedom calculated to be approximately 138.41, the company can make a decision.

The decision would depend on whether the absolute value of the calculated test value exceeds the critical value. If it does, the company would reject the null hypothesis, indicating that there is a significant difference in the average sales between male and female agents.



To determine if there is a difference in the average value of sales sold by male and female agents in the company, the company conducted hypothesis testing with a significance level of 3%.

d) The statistical test value can be calculated using the formula for the test statistic for two independent samples. The formula is given as:

t = (X_bar₁ - X_bar₂) / √((s₁²/n₁) + (s₂²/n₂))

where X_bar₁ and X_bar₂ are the sample means, s₁ and s₂ are the standard deviations, and n₁ and n₂ are the sample sizes for the male and female salespeople, respectively.

Substituting the given values into the formula:

X_bar₁ = 221, X_bar₂ = 112, s₁ = 35×1 = 35, s₂ = 35×2 = 70, n₁ = 72, n₂ = 81

t = (221 - 112) / √((35²/72) + (70²/81))

t = 109 / √(1225/72 + 4900/81)

t = 109 / √(1225/72 + 4900/81)

t ≈ 109 / √(17.01 + 60.49)

t ≈ 109 / √77.50

t ≈ 109 / 8.80

t ≈ 12.39

Therefore, the statistical test value is approximately 12.39.

e) To make a decision, we compare the calculated test value with the critical value from the t-distribution table. The degrees of freedom for this test can be calculated using the formula:

df = (s₁²/n₁ + s₂²/n₂)² / [(s₁²/n₁)² / (n₁ - 1) + (s₂²/n₂)² / (n₂ - 1)]

Substituting the given values into the formula:

df = (35²/72 + 70²/81)² / [(35²/72)² / (72 - 1) + (70²/81)² / (81 - 1)]

df ≈ (17.01 + 60.49)² / [(17.01)² / 71 + (60.49)² / 80]

df ≈ 77.50² / [0.068 + 43.28]

df ≈ 6002.50 / 43.35

df ≈ 138.41

Using a significance level of 3% and the degrees of freedom, we can find the critical value from the t-distribution table. If the absolute value of the calculated test value exceeds the critical value, we reject the null hypothesis. Otherwise, we fail to reject the null hypothesis.

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Use fundamental identities to find the values of the trigonometric functions for the given conditions.
sin theta = − 12
13
and sec theta > 0
sin theta = cos theta = tan theta = csc theta = sec theta = cot theta =

Answers

Using fundamental identities we found the trigonometric functions for the given conditions.

Given, `[tex]sin theta[/tex]= -12/13 and sec theta > 0`To find:

Trigonometric functions for the given conditions. `sin theta, cos theta, tan theta, csc theta, sec theta, cot theta.`

We have, `sin theta = -12/13 and sec theta > 0`Now, using the Pythagorean identity,

we have, `sin^2 theta + cos^2 theta = 1`

putting the value of `sin theta` in above equation,

we get;`(-12/13)^2 + cos^2 theta = 1`or `144/169 + cos^2 theta = 1`or `cos^2 theta = 1 - 144/169`or `cos^2 theta = 25/169`Taking square root on both sides, we get;`

cos theta = sqrt(25/169)`As, `sec theta > 0`and `sec theta = 1/cos theta`, we get;`1/cos theta > 0`=>`cos theta > 0` (as cos theta is positive in first and fourth quadrant)

Now, `

tan theta = sin theta/cos theta = (-12/13)/(5/13) = -12/5`For `csc theta`, `csc theta = 1/sin theta = -13/12`For `sec theta`, `sec theta = 1/cos theta = 13/5`For `cot theta`, `cot theta = 1/tan theta = -5/12`Hence, `sin theta = -12/13, cos theta = 5/13, tan theta = -12/5, csc theta = -13/12, sec theta = 13/5 and cot theta = -5/12

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Identify The Open Intervals On Which The Graph Of The Function Is Increasing Or Decreasing. Assume That The Graph Extend

Answers

To determine the open intervals on which the graph of a function is increasing or decreasing, we need to analyze the behavior of its derivative.

If the derivative of the function is positive on an interval, it means the function is increasing on that interval. If the derivative is negative, the function is decreasing.

To identify these intervals, we need the actual function or its derivative. If you provide the function or its derivative, I can help determine the open intervals of increasing or decreasing.

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Problem. 4 Let \( f(x)=\frac{4}{x+1}+3 \). Part. a Evaluate \( f(2) \) and simplify. Part. \( \mathbf{b} \quad \) What is the domain of \( f(x) \) ?

Answers

The function is \( f(x)=\frac{4}{x+1}+3 \). To evaluate the value of \( f(2) \) and find the domain of the function we can use the following approach. Part. a To find the value of f(2), substitute x=2 in the function.

Thus, the required value of f(2) is 7/3.Part. \( \math bf{b} \quad \) To find the domain of the function, we need to identify the values of x for which the function f(x) is defined.

The function f(x) is defined for all the values of x except for those values of x which make the denominator 0.So, the domain of f(x) is all the real numbers except -1. Therefore, the domain of f(x) is \( \text{all real numbers except -1} \). Part a The value of \(f(2) = \frac{7}{3}\).Part b The domain of the function is all real numbers except -1.

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Suppose u and v are functions of x that are differentiable at x=0 and that u(0)=−5, u ′
(0)=4,v(0)=2, and v ′
(0)=−1. Find the values of the following derivatives at x=0. a. dx
d

(uv) b. dx
d

( v
u

) c. dx
d

( u
v

) d. dx
d

(−9v−7u) The curve y=ax 2
+bx+c passes through the point (1,6) and is tangent to the line y=5x at the origin. Find a,b, and c : a=b=b=

Answers

Answer:

Step-by-step explanation:

b

g(x)dx=2 and ∫ a

c

g(x)dx=8∫ a

b

g(x)dx Compute ∫ b

c

g(x)dx

If \( f(x)=\int_{0}^{x}\left(t^{3}+3 t^{2}+6\right) d t \), then \( f^{\prime \prime}(2)=? \). Round your answer to two decimal points

Answers

f''(2)` of the given function is 48 using First Fundamental Theorem of Calculus

Given function is `[tex]f(x) =\int_0^x (t^3 + 3t^2+ 6) dt[/tex]`

To find `f''(2)` of the given function, differentiate the given function `f(x)` with respect to `x`  first using the `First Fundamental Theorem of Calculus` which states that

if `f(x) = ∫(a to x) f(t) dt`, then `f'(x) = f(x)`.

By applying the above theorem, differentiate `f(x)` with respect to `x`, we get `f'(x)`.

Differentiating `f(x)` gives:

[tex]f(x) =\int_0^x (t^3 + 3t^2+ 6) dt[/tex]`

[tex]f'(x) = (d/dx) \int_0^x) (t^3 + 3t^2 + 6) dt[/tex]`

We can differentiate the given function using the `Leibniz Integral Rule`.

Using this rule, if `f(x) = ∫[a(x) to b(x)] g(x,t) dt`,

then `f'(x) = g(x, b(x)) * b'(x) - g(x, a(x)) * a'(x) + ∫[a(x) to b(x)] (∂/∂x) g(x,t) dt`

Therefore, applying this rule to the above function:

[tex]f(x) =\int _0 ^ x (t^3+ 3t^2 + 6) dt[/tex]

∴ [tex]f'(x) = [x^3 + 3x^2 + 6] * (d/dx) x - [0^3+ 3*0^2 + 6] * (d/dx) 0 + \int_0^ x[(d/dx) (t^3+ 3t^2 + 6)] dt[/tex]

∴ [tex]f'(x) = [x^3 + 3x^2 + 6] - 0 + \int_0 ^x[3t^2 + 6t] dt[/tex]

∴ [tex]f'(x) = x^3 + 3x^2 + 6 + [t^3 + 3t^2][/tex]from 0 to x

∴ [tex]f'(x) = x^3 + 3x^2 + 6 + x^3 + 3x^2[/tex]

∴ [tex]f'(x) = 2x^3 + 6x^2 + 6[/tex]

Now, differentiate `f'(x)` to get `f''(x)`.

[tex]f'(x) = 2x^3 + 6x^2 + 6[/tex]

∴ [tex]f''(x) = (d/dx) (2x^3 + 6x^2 + 6)[/tex]

∴ [tex]f''(x) = 6x^2 + 12x[/tex]

Therefore, `f''(2)` is

[tex]f''(2) = 6(2)^2+ 12(2)[/tex]

[tex]f''(2) = 24 + 24[/tex]

[tex]f''(2) = 48[/tex]

Therefore, `[tex]f''(2) = 48[/tex]`

.Hence, the solution is 48.

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The quality-control manager at a light emitting diode (LED) factory needs to determine whether the mean life of a large shipment of LEDS is equal to 50,000 hours. The population standard deviation is 500 hours. A random sample of 64 LEDs indicates a sample mean life of 49,875 hours. At the 0.05 level of significance, is there evidence that the mean life is different from 50,000 hours? a. Formulate the null and alternative hypotheses. b. Compute the value of the test statistic. c. What is the p-value? d. At alpha =0.05, what is your conclusion? e. Construct a 95% confidence interval for the population mean life of the LEDs. Does it support your conclusion?

Answers

a. The hypotheses are: (H₀): Mean life of LEDs = 50,000 hours; (H₁): Mean life of LEDs ≠ 50,000 hours. b. test statistic = -2  c. The p-value ≈ 0.0485. d. There is evidence to suggest the mean life of the LEDs is different from 50,000 hours. e. The conclusion is supported.

How to Formulate Null and Alternative Hypotheses?

a. Null Hypothesis (H₀): The mean life of the LEDs is equal to 50,000 hours.

Alternative Hypothesis (H₁): The mean life of the LEDs is different from 50,000 hours..

b. The test statistic is computed as follows:

We would apply the formula for a one-sample t-test which is given as:

t = (sample mean - population mean) / (sample standard deviation / sqrt(sample size))

We are given the following:

Sample mean = 49,875 hours

Population mean (μ) = 50,000 hours

Population standard deviation (σ) = 500 hours

Sample size (n) = 64

Plug in the values into the formula for the test statistic.

t = (49,875 - 50,000) / (500 / √64)

t = -125 / (500 / 8)

t = -125 / 62.5

t = -2

Therefore, the value of the test statistic is -2.

c. Compare the test statistic (-2) to the appropriate t-distribution with (n-1) degrees of freedom. Since the sample size is 64, then degrees of freedom is 63.

Using a t-table or statistical software, we can find the p-value associated with a two-tailed test. Assuming a significance level (alpha) of 0.05, the p-value turns out to be approximately 0.0485.

d. At alpha = 0.05, our conclusion would be as follows:

The p-value (0.0485) < significance level (0.05), therefore, we would reject the null hypothesis. There is evidence to suggest that the mean life of the LEDs is different from 50,000 hours.

e. To construct the confidence interval, we use the formula:

CI = mean ± (t_critical * (σ / √n))

Using a confidence level of 95%, the critical value for a two-tailed test with 63 degrees of freedom is approximately 1.997.

Plugging in the values, we have:

CI = 49,875 ± (1.997 * (500 / √64))

CI = 49,875 ± (1.997 * 62.5)

CI = 49,875 ± 124.75

The 95% confidence interval for the population mean life of the LEDs is (49,750.25, 50,000.75).

The constructed confidence interval does not contain the hypothesized value of 50,000 hours, supporting the conclusion from the hypothesis test that the mean life is different from 50,000 hours.

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the table shows how much time people spent exercising yesterday
A) what is a modal class of time spent exercising?
B) in which class does median lie?

Answers

A) The modal class of time spent exercising is 10 < x ≤ 20, with a frequency of 23.

B) The median lies in the 20 < x ≤ 30 class, based on the cumulative frequency analysis.

A) To determine the modal class, we need to identify the class with the highest frequency. Looking at the provided frequency distribution table, we can see that the class with the highest frequency is the 10 < x ≤ 20 category, which has a frequency of 23. Therefore, the modal class of time spent exercising is 10 < x ≤ 20.

B) To find the class in which the median lies, we need to calculate the cumulative frequency. The median is the middle value of the dataset, and it corresponds to the class where the cumulative frequency is closest to half the total frequency.

Calculating the cumulative frequency:

0 ≤ x ≤ 10: 8

10 < x ≤ 20: 8 + 23 = 31

20 < x ≤ 30: 31 + 11 = 42

30 < x ≤ 40: 42 + 9 = 51

40 < x ≤ 50: 51 + 13 = 64

50 < x ≤ 60: 64 + 15 = 79

The total frequency is 79. The class with the cumulative frequency closest to half of 79 (which is 39.5) is the 20 < x ≤ 30 class. Therefore, the median lies in the 20 < x ≤ 30 class.

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For the last five years, Naveed has made deposits of $355.75 at the end of every six months eaming interest at 6.7% compounded semi- annually. If he
leaves the accumulated balance in the account for another 10 ears at 4.2% compounded quarterly, what will be the final balance in Naveeds account

Answers

The final balance in Naveed's account after 10 years is $4167.55.

Calculation of the final balance in Naveed's account after 10 years based on the given information:

Calculation of Naveed's balance for the first 5 years:Rate of interest, R = 6.7% = 0.067 (compounded semi-annually)

Time, n = 5 years = 10 half-yearly periods

Principal, P = $355.75 (deposited at the end of every six months)

We know that the formula for amount after n years compounded semi-annually is given by;

A = P(1 + R/2)²ⁿ

Where,

A = Amount

P = Principal

R = Rate of Interest

n = Time (in half-yearly periods)

The amount for 5 years is;

A = P(1 + R/2)²ⁿ = $355.75(1 + 0.067/2)¹⁰≈ $2445.60

This is the principal for the next 10 years.

Calculation of the balance for the next 10 years;

Rate of interest, r = 4.2% = 0.042 (compounded quarterly)

Time, t = 10 years = 40 quarterly periods

Principal, P = $2445.60 (Principal after the first 5 years)

We know that the formula for amount after n years compounded quarterly is given by;A = P(1 + r/4)⁴ⁿ

The amount for 10 years is;

A = P(1 + r/4)⁴ⁿ = $2445.60(1 + 0.042/4)⁴⁰)≈ $4167.55

Thus, the final balance in Naveed's account after 10 years is $4167.55.

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6- A solid circular shaft of 25 cm diameter is to be replaced by a hollow shaft, the ratio of the external to internal diameters being 2 to 1. Find the size of the hollow shaft if the maximum shearing stress is to be the same as for the solid shaft.

Answers

The size of the hollow shaft can vary, as long as the ratio of the external to internal diameters remains 2 to 1.

To find the size of the hollow shaft, we can start by considering the solid shaft. The diameter of the solid shaft is given as 25 cm.

Next, we need to determine the external and internal diameters of the hollow shaft. The ratio of the external to internal diameters is given as 2 to 1. Let's denote the internal diameter as "d" and the external diameter as "2d".

The shearing stress is the same for both the solid and hollow shafts. This means that we can equate the shearing stress formulas for both cases.

For the solid shaft, the shearing stress formula is given by:
τ = 16T / (π * d^3)

Where τ is the shearing stress and T is the torque applied to the shaft.

For the hollow shaft, the shearing stress formula is given by:
τ = 16T / (π * (2d^3 - d^3))

Since we want the shearing stress to be the same for both shafts, we can equate the two formulas:

16T / (π * d^3) = 16T / (π * (2d^3 - d^3))

Simplifying this equation, we get:
1 / d^3 = 1 / (2d^3 - d^3)

1 / d^3 = 1 / d^3

This equation is satisfied for any value of d, as both sides are equal.

Therefore, the size of the hollow shaft can vary, as long as the ratio of the external to internal diameters remains 2 to 1.

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I am stuck at this question
Find 2/3 of 6/11

Answers

Answer:

3 goes into 3 one time, and 3 goes into 6 two times.

2/3 × 6/11 = 2/11

This pie chart is split into equal sections. It
shows the results from a survey of 48 students
about their favourite subject.
How many students said their favourite subject
was maths?
Favourite subject
Key
Maths
English
Biology

Answers

In a pie chart, each section represents a proportion or percentage of the whole

To determine how many students said their favorite subject was math from the given pie chart, we need additional information such as the percentage or angle measure of the math section. Without specific values for each subject, we cannot accurately determine the number of students who chose math as their favorite subject.

To find the number of students who said math was their favorite subject, we would need to know the percentage or angle measure associated with the math section.

In this case, we know that the pie chart represents the results from a survey of 48 students about their favorite subject.

However, without information on the actual sizes of the slices or the percentages, we cannot determine the number of students who chose math as their favorite subject.

For example, if the math section in the pie chart represents 30% of the whole, we can calculate the number of students by multiplying the percentage by the total number of students surveyed (48):

Number of math students = 30% * 48 = 0.3 * 48 = 14.4

However, without the specific information about the math section, we cannot provide an exact number.

Please provide the necessary data, such as percentages or angle measures for each subject, to determine the number of students who chose math as their favorite subject accurately

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what is the solution to this equation?4x+2(x+6)=36

Answers

Solving:
4x+2(x+6)=36
4x+2x+12=36
6x+12-12=36-12
6x/6=24/6
X=4
Checking:
4(4)+2(4+6)=36
16+2(10)=36
16+20=36
36=36

Find the product z₁z2 and the quotient 1. Express your answers in polar form. (Express 8 in radians.) Z₂ Z₁Z2 = 2₁ = 3(cos+ i sin 2₁ 22 Need Help? H Submit Answer X 1²), 22 = 4(cos 4+ Read

Answers

Given that, [tex]Z₁=3(cos2 + i sin2), Z₂=2(cos4 + i sin4)[/tex]We need to find the product Z₁Z₂ and quotient Z₁/Z₂.To find the product of two complex numbers, we multiply their moduli and add their arguments.

Hence,[tex]Z₁Z₂=3.2[cos(2+4) + i sin(2+4)] = 6(cos6 + i sin6)[/tex]

To find the quotient of two complex numbers, we divide their moduli and subtract their arguments.

Hence,[tex]Z₁/Z₂=3/2[cos(2-4) + i sin(2-4)] = 3/2(cos(-2) + i sin(-2))[/tex]

Now, we need to express these answers in polar form. We know that the polar form of a complex number is given by,

Z=r(cosθ + i sinθ) where r is the modulus of the complex number and θ is its argument.

In polar form, [tex]Z₁=3(cos2 + i sin2) = 3(cos(8π/4) + i sin(8π/4)) (since 2 radians = 8π/4 radians)[/tex]

Hence, [tex]Z₁ = 3(cos(8π/4) + i sin(8π/4)) = 3(cosπ/4 + i sinπ/4)In polar form, Z₂=2(cos4 + i sin4) = 2(cos(16π/4) + i sin(16π/4)) (since 4 radians = 16π/4 radians)[/tex]

Hence, [tex]Z₂=2(cos(16π/4) + i sin(16π/4)) = 2(cosπ/2 + i sinπ/2)[/tex]

Now, in polar form, we can express the product and quotient of these complex numbers as,[tex]Z₁Z₂=6(cos6 + i sin6) = 6(cos(24π/4) + i sin(24π/4)) (since 6 radians = 24π/4 radians)[/tex]

Hence, [tex]Z₁Z₂=6(cos(24π/4) + i sin(24π/4)) = 6(cos3π/2 + i sin3π/2)Z₁/Z₂=3/2(cos(-2) + i sin(-2)) = 3/2(cos(2π-2) + i sin(2π-2)) (since negative angles are same as adding 2π to them)[/tex]

Hence, [tex]Z₁/Z₂=3/2(cos(2π-2) + i sin(2π-2)) = 3/2(cos2 + i sin2)[/tex]

Therefore, the product of Z₁Z₂ in polar form is [tex]6(cos3π/2 + i sin3π/2)[/tex] and the quotient of Z₁/Z₂ in polar form is [tex]3/2(cos2 + i sin2).[/tex]

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An article suggested that yield strength (ksi) for A36 grade steel is normally distributed with mu u = 43 and sigma = 4.5. What is the probability that yield strength is at most 40? Greater than 59? (Round your answers to four decimal places.) at most 40 greater than 59 What yield strength value separates the strongest 75% from the others?

Answers

Given: Mu = u = 43 Sigma = σ = 4.5.A36 grade steel is normally distributed, hence the distribution is normal distribution. The formula to calculate the standard normal distribution of the variable x is:

Z = (x-μ)/σWe need to calculate the probability that yield strength is at most 40. i.e. P(x ≤ 40)Z = (x-μ)/σ

= (40-43)/4.5= -0.666667P(x ≤ 40) = P(Z ≤ -0.666667)

= 0.2525 (rounded up to four decimal places).

Thus, the probability that yield strength is at most 40 is 0.2525.

We need to calculate the probability that yield strength is greater than 59. i.e. P(x > 59)Z

= (x-μ)/σ = (59-43)/4.5

= 3.55556P(x > 59)

= P(Z > 3.55556) = 0.0002 (rounded up to four decimal places).

Thus, the probability that yield strength is greater than 59 is 0.0002.

Now, we need to calculate the yield strength value that separates the strongest 75% from the others.

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For the function f(x)=−2∣x−3∣+2, describe the transformations (shifting, compress and/or reflecting) of the basic function. Graph the basic function f(x)=∣x∣. Then graph th function f(x)=−2∣x−3∣+2. Find the domain and the range of the given function. Transformations: Shifting Compressing or stretching Reflecting Graph of basic function f(x)=∣x∣ Graph of given function f(x)=−2∣x−3∣+2 Domain of f(x)=−2∣x−3∣+2 Range of f(x)=−2∣x−3∣+2

Answers

The function f(x) = -2|x - 3| + 2 involves a horizontal shift of 3 units to the right, a vertical reflection, and a downward stretch. Its domain is all real numbers, and its range is all real numbers less than or equal to 2.

The function f(x) = -2|x - 3| + 2 is a transformation of the basic absolute value function f(x) = |x|. Let's analyze the transformations and then graph both functions.Transformations:

1. Shifting: The function f(x) = -2|x - 3| + 2 involves a horizontal shift of the absolute value function f(x) = |x|. The term (x - 3) inside the absolute value causes a shift of 3 units to the right.

2. Reflecting: The negative sign in front of the absolute value function reflects the graph across the x-axis. It causes the function to be reflected vertically.

3. Compressing or stretching: There is no compression or stretching factor present in this particular function.

Graph of the basic function f(x) = |x|:

The graph of the basic function f(x) = |x| is a V-shaped graph that passes through the origin (0, 0). It has symmetry with respect to the y-axis.Graph of the given function f(x) = -2|x - 3| + 2:

To graph the given function, we start with the basic absolute value function f(x) = |x| and apply the transformations: a horizontal shift of 3 units to the right and a vertical reflection. The negative coefficient (-2) affects the amplitude, making the graph steeper.

Domain of f(x) = -2|x - 3| + 2:

The domain of the given function is all real numbers since there are no restrictions on the input values of x.

Range of f(x) = -2|x - 3| + 2:

The range of the given function is the set of all real numbers less than or equal to 2, as the vertical reflection and the coefficient (-2) cause the graph to be reflected and stretched downward.

Note: Without specific constraints on the values of x, the domain and range of the given function follow the typical domain and range of absolute value functions.

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How much should Dylan have in a savings account that is earning 2.75% compounded semi-annually, if she plans to withdraw $2,150 from this account at the end of every six months for 11 years?

Answers

Dylan should have approximately $40,276.73 in her savings account that is earning 2.75% compounded semi-annually if she plans to withdraw $2,150 from this account at the end of every six months for 11 years.

To calculate the amount Dylan should have in her savings account, we can use the formula for compound interest:

A = P(1 + r/n)^(nt)

Where:

A is the final amount

P is the principal amount (initial deposit)

r is the annual interest rate (in decimal form)

n is the number of times interest is compounded per year

t is the number of years

In this case, the principal amount is what we need to find. The annual interest rate is 2.75%, which is equivalent to 0.0275 as a decimal. Since interest is compounded semi-annually, n = 2 (twice a year), and t is 11 years.

We need to calculate the principal amount (P) using the formula and the given parameters. Rearranging the formula, we have:

P = A / (1 + r/n)^(nt)

Substituting the known values, we get:

P = ($2,150) / (1 + 0.0275/2)^(2 * 11)

Calculating this expression yields approximately $40,276.73. Therefore, Dylan should have around $40,276.73 in her savings account to accommodate her planned withdrawals over the 11-year period.

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Solve the trigonometric equation in degrees. Check your quadrants and mode.

Answers

Step-by-step explanation:

To solve the equation 9 + 3 * cos(θ) = 7, we can start by isolating the cosine term:3 * cos(θ) = 7 - 9 3 * cos(θ) = -2Now, to find the value of θ, we need to consider the given condition that tan(θ) > 0. The tangent function is positive in the first and third quadrants of the unit circle. Since the cosine function is negative in the second and third quadrants, we can conclude that θ lies in the third quadrant.In the third quadrant, cos(θ) is negative. Therefore, to satisfy the equation 3 * cos(θ) = -2, we can take the cosine inverse (arccos) of both sides:θ = arccos(-2/3)Since θ lies in the third quadrant, the value of θ will be between 180 and 270 degrees (or between π and 3π/2 radians).

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The probability of making more than three sales. 1) 1-BINOM.DIST(3, 6,0.30,1) 2) 1- BINOM.DIST(4, 6, 0.30, 1) 3) 1-BINOM.DIST(3, 6, 0.30, 0) 4) none of these

Answers

The binomial distribution is used to model the number of successes in a fixed number of independent Bernoulli trials, where each trial has the same probability of success. Correct option is 1).

The correct expression to calculate the probability of making more than three sales depends on the specific conditions of the problem. However, based on the given options:

1-BINOM.DIST(3, 6, 0.30, 1): This calculates the probability of getting three or fewer sales out of six trials with a success probability of 0.30. Subtracting this value from 1 gives the probability of making more than three sales.

1- BINOM.DIST(4, 6, 0.30, 1): This calculates the probability of getting four or fewer sales out of six trials with a success probability of 0.30. Subtracting this value from 1 gives the probability of making more than four sales.

1-BINOM.DIST(3, 6, 0.30, 0): This calculates the probability of getting three or fewer sales out of six trials with a success probability of 0.30. Subtracting this value from 1 gives the probability of making more than three sales, but the fourth argument being 0 instead of 1 suggests a different interpretation.

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Based on Basics of HMA Mix, in a mixture, too lead to shoving distress. This distress is sometimes called and usually happens in road

Answers

Excessive fine aggregate content raises the possibility of a reduction in shear strength, which causes shoving distress in the mixture.

In a mixture, an excess amount of fine aggregate could lead to shoving distress. Shoving distress, also referred to as stripping, typically occurs in roadways.

Shoving distress is described as the uprooting of the HMA mix from the surface of the pavement due to horizontal shearing stresses from traffic that exceeds the pavement's strength. Stripping is caused by the loss of bonding between asphalt and aggregate in HMA mixes.

It occurs when the water is present at the asphalt and aggregate interface, which is related to the mineralogical properties of the aggregate.

The fine aggregate acts as a lubricant for the mixture by decreasing the effective asphalt content in the mix.

As a result, excessive fine aggregate content raises the possibility of a reduction in shear strength, which causes shoving distress in the mixture.

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derive all t6 basis functions. b) what is a polynomial degree of the t6 basis functions? c) list properties of t6 basis functions. d) how many degrees of freedom does t6 finite element have?

Answers

The T6 basis functions are a set of 6 polynomial functions of degree 3 that are used in finite element analysis. They are complete, orthogonal, and normalized. The T6 finite element has 6 degrees of freedom.

The T6 basis functions are defined as follows:

T_0(x) = 1

T_1(x) = 3x - 2

T_2(x) = 3x^2 - 5x + 1

T_3(x) = -3x^3 + 7x^2 - 3x + 1

T_4(x) = x^3 - 2x^2 + x

T_5(x) = -x^3 + x^2

The polynomial degree of the T6 basis functions is 3, which means that they can represent any polynomial function of degree up to 3.

The T6 basis functions have a number of properties that make them useful for finite element analysis. These properties include:

Completeness: The T6 basis functions can represent any polynomial function of degree up to 3. This means that they can be used to approximate any function that can be represented by a polynomial of degree 3 or less.

Orthogonality: The T6 basis functions are orthogonal, which means that they are linearly independent and their integrals over the domain are zero. This property makes it easier to solve finite element problems using the Galerkin method.

Normalization: The T6 basis functions are normalized, which means that their integrals over the domain are equal to 1. This property ensures that the T6 basis functions have a unit norm, which is important for some finite element methods.

The T6 finite element has 6 degrees of freedom because there are 6 T6 basis functions, and each basis function has one degree of freedom. The degrees of freedom are the values of the function that are represented by the T6 basis functions.

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spilled from a ruptured tanker spreads in a circle whose area increases at a constant rate of 6 mi^2/hr. How rapidly is radius of the spill increasing when the area is 4 mi^2?

Answers

Radius of the spill is increasing at the rate of (6/π²) miles/hour.

Given data: Spilled from a ruptured tanker spreads in a circle whose area increases at a constant rate of 6 mi^2/hr. Area of the circle at any instant can be given by A = πr²

Differentiating with respect to time to find the rate of increase of area and radius at any instant dA/dt = 2πr * dr/dt (Chain rule)

We are given that dA/dt = 6 (Given)

A = 4 miles² (Given) We need to find dr/dt when A = 4 miles²6 = 2πr * dr/dt Putting A = 4 in the above equation6 = 2πr * dr/dt dr/dt = 3/πr

When A = 4, A = πr²4 = πr²r = √(4/π) = (2/√π) miles dr/dt = 3/π * (2/√π)=      (6/π²) miles/hour

Radius of the spill is increasing at the rate of (6/π²) miles/hour.

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Find the volume of a solid obtained by rotating the region enclosed by the graphs of y=e^−x,y=1−e^−x, and x=0 about y=4 (Use symbolic notation and fractions where needed.)

Answers

The volume of a solid obtained by rotating the region enclosed by the graphs of y=e^−x,y=1−e^−x, and x=0 about y=4 is ∫[0, ln(2)] 2π(3 + e^(-x))(1 - 2e^(-x)) dx.

To find the volume of the solid obtained by rotating the region enclosed by the graphs of y = e^(-x), y = 1 - e^(-x), and x = 0 about the line y = 4, we can use the method of cylindrical shells.

First, let's find the limits of integration for x. Since the graphs intersect at y = 1, we can solve the equations e^(-x) = 1 - e^(-x) to find the x-values where the curves intersect. Rearranging the equation, we have 2e^(-x) = 1, which gives e^(-x) = 1/2. Taking the natural logarithm of both sides, we get -x = ln(1/2), and solving for x, we have x = -ln(1/2) = ln(2).

The volume of each cylindrical shell can be given by the formula V = 2πrhΔx, where r represents the radius, h represents the height, and Δx represents the width of the shell. In this case, the radius is given by the distance between the line y = 4 and the curve y = 1 - e^(-x), which is 4 - (1 - e^(-x)) = 3 + e^(-x). The height is given by the difference in y-values between the curves y = e^(-x) and y = 1 - e^(-x), which is (1 - e^(-x)) - e^(-x) = 1 - 2e^(-x). The width of each shell is Δx.

Integrating with respect to x from x = 0 to x = ln(2), we have:

V = ∫[0, ln(2)] 2π(3 + e^(-x))(1 - 2e^(-x)) dx.

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(a) What are the possible values of the random variable X that counts the number of heads when a fair coin is áipped three times? (b) Calculate the probabilities P(X = t) for t in the value set. (c) Find the expectation of (i) X (ii) X^2 (d) What is the variance of X?

Answers

(a) The random variable X represents the number of heads obtained when a fair coin is flipped three times. The possible values of X range from 0 (no heads) to 3 (three heads).

(b) To calculate the probabilities P(X = t) for each value t in the value set, we can use the binomial probability formula. For example, P(X = 0) represents the probability of getting no heads, P(X = 1) represents the probability of getting one head, and so on, up to P(X = 3) for three heads. By plugging the appropriate values into the formula, we can determine the probabilities for each value of X.

(c) To find the expectation of X, denoted as E(X), we multiply each value of X by its corresponding probability and sum them up. Similarly, to find the expectation of X^2, denoted as E(X^2), we square each value of X, multiply it by its probability, and sum them up.

(d) The variance of X, denoted as Var(X), is calculated by subtracting the square of the expectation of X from the expectation of X^2. In other words, Var(X) = E(X^2) - (E(X))^2. By substituting the values we found in parts (c)(i) and (c)(ii), we can determine the variance of X.

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