A child wants to fill up a box with snow he can only carry the box if it weighs under 30 pounds the dimensions of the box are 30in by 24 inches by 24 inches each cubic inch of snow weighs .004 pounds if the child fills the box entirely with snow will he be able to carry the box?

A Child Wants To Fill Up A Box With Snow He Can Only Carry The Box If It Weighs Under 30 Pounds The Dimensions

Answers

Answer 1

Answer:

As a rule of thumb, snow weighs approximately 20 pounds per cubic foot, or 1.25 pounds per inch of depth. Depending on moisture content, snow can weigh from 1 pound per cubic foot to over 21 pounds per cubic foot. NOTE: Any ice build-up on the roof would need to be added to this formula.

Step-by-step explanation:


Related Questions

Find the Difference quotient f(x+h)-f(x)/h, where h does not equal zero for the function below f(x)=x^2-5 Simplify the answer as much as possible Thank you

Answers

Main Answer:The difference quotient for the function f(x) = x^2 - 5 is 2x + h.

Supporting Question and Answer:

How do we calculate the difference quotient for a given function?

To calculate the difference quotient for a function, we need to evaluate the expression (f(x + h) - f(x)) / h, where f(x) represents the given function and h is a non-zero value.

Body of the Solution:To find the difference quotient for the function f(x) = x^2 - 5, we need to evaluate the expression (f(x + h) - f(x)) / h.

First, let's find f(x + h):

f(x + h) = (x + h)^2 - 5

= x^2 + 2hx + h^2 - 5.

Now, let's subtract f(x) from f(x + h):

f(x + h) - f(x) = (x^2 + 2hx + h^2 - 5) - (x^2 - 5)

= x^2 + 2hx + h^2 - 5 - x^2 + 5

= 2hx + h^2.

Finally, divide the result by h: (f(x + h) - f(x)) / h = (2hx + h^2) / h = 2x + h.

Final Answer: So, the simplified difference quotient for the function f(x) = x^2 - 5 is 2x + h.

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The difference quotient for the function f(x) = x^2 - 5 is 2x + h.

How do we calculate the difference quotient for a given function?

To calculate the difference quotient for a function, we need to evaluate the expression (f(x + h) - f(x)) / h, where f(x) represents the given function and h is a non-zero value.

To find the difference quotient for the function f(x) = x^2 - 5, we need to evaluate the expression (f(x + h) - f(x)) / h.

First, let's find f(x + h):

f(x + h) = (x + h)^2 - 5

= x^2 + 2hx + h^2 - 5.

Now, let's subtract f(x) from f(x + h):

f(x + h) - f(x) = (x^2 + 2hx + h^2 - 5) - (x^2 - 5)

= x^2 + 2hx + h^2 - 5 - x^2 + 5

= 2hx + h^2.

Finally, divide the result by h: (f(x + h) - f(x)) / h = (2hx + h^2) / h = 2x + h.

So, the simplified difference quotient for the function f(x) = x^2 - 5 is 2x + h.

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Let μ be the population mean of excess weight amongst Australians. The hypotheses for the required test are

(a) H0 : μ > 10 against HA : μ = 10

(b) H0 : μ > 10 against HA : μ ≤ 10

(c) H0 : μ = 10 against HA : μ > 10

(d) H0 : μ = 10 against HA : μ ≠ 10

(e) none of these

Answers

The correct hypothesis test for this scenario is (b) H0 : μ > 10 against HA : μ ≤ 10.

The null hypothesis (H0) is the hypothesis that is being tested, which is that the population mean of excess weight amongst Australians is greater than 10. The alternative hypothesis (HA) is the hypothesis that we are trying to determine if there is evidence to support, which is that the population mean is less than or equal to 10.

Option (a) H0 : μ > 10 against HA : μ = 10 is incorrect because the alternative hypothesis assumes a specific value for the population mean, which is not the case here. We are trying to determine if the population mean is less than or equal to a certain value, not if it is equal to a specific value.

Option (c) H0 : μ = 10 against HA : μ > 10 is incorrect because the null hypothesis assumes a specific value for the population mean, which is not the case here. We are trying to determine if the population mean is greater than a certain value, not if it is equal to a specific value.

Option (d) H0 : μ = 10 against HA : μ ≠ 10 is incorrect because the alternative hypothesis assumes a two-tailed test, which means we are trying to determine if the population mean is either greater than or less than the specified value. However, in this scenario, we are only interested in determining if the population mean is less than or equal to the specified value.

Option (e) none of these is also incorrect because as discussed above, option (b) is the correct hypothesis test for this scenario.

In summary, option (b) H0 : μ > 10 against HA : μ ≤ 10 is the correct hypothesis test for determining if there is evidence to support the claim that the population mean of excess weight amongst Australians is less than or equal to 10.

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A={ multiples of 3 between 10 and 20}. B={Even numbers between 10 and 20}. I. AnB

ii. AuB

Answers

A U B = {10, 12, 14, 15, 16, 18, 20}.Thus, the required solutions are:

i. A ∩ B = {12, 18}

ii. A U B = {10, 12, 14, 15, 16, 18, 20}.

Given A={multiples of 3 between 10 and 20} and B={even numbers between 10 and 20}, we need to find the following :i. A ∩ B (intersection of A and B)ii. A U B (union of A and B)

i. A ∩ B (intersection of A and B)The multiples of 3 between 10 and 20 are 12, 15 and 18.The even numbers between 10 and 20 are 10, 12, 14, 16, 18 and 20Therefore, the intersection of A and B is {12, 18}.Therefore, A ∩ B = {12, 18}

ii. A U B (union of A and B).The multiples of 3 between 10 and 20 are 12, 15 and 18.The even numbers between 10 and 20 are 10, 12, 14, 16, 18 and 20Therefore, the union of A and B is {10, 12, 14, 15, 16, 18, 20}.

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The college of business was interested in comparing the attendance for three different class times for a business statistics class. The data follow. Day Monday Tuesday Wednesday Thursday Friday 8:00 a.m. Class 25 30 32 32 35 9:30 a.m. Class 30 32 35 40 33 11:00 a.m. Class 25 30 40 39 30 What are the block and treatment degrees of freedom? Multiple Choice a. 5 and 3b. 3 and 15 c. 4 and 2 d. 5 and 5

Answers

The block degrees of freedom are 2 and the treatment degrees of freedom are 2. Therefore, the correct answer is c. 4 and 2. The college of business is comparing the attendance for three different class times (8:00 a.m., 9:30 a.m., and 11:00 a.m.) across five days (Monday to Friday).

In this case, the class times represent treatments, and the days represent blocks.
To calculate the degrees of freedom for treatments and blocks, you can use the following formulas:
- Treatment degrees of freedom = (number of treatments - 1)
- Block degrees of freedom = (number of blocks - 1)
Applying these formulas:
- Treatment degrees of freedom = (3 - 1) = 2
- Block degrees of freedom = (5 - 1) = 4
Therefore, the correct answer is c. 4 and 2 (4 block degrees of freedom and 2 treatment degrees of freedom).

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A six-lane freeway (three lanes in each direction) has regular weekday users and currently operates at maximum LOS C conditions. The lanes are 11 ft wide, the right-side shoulder is 4 ft wide, and there are two ramps within three miles upstream of the segment midpoint and one ramp within three miles downstream of the segment midpoint. The highway is on rolling terrain with 10% large trucks and buses (no recreational vehicles), and the peak-hour factor is 0. 90. Determine the hourly volume for these conditions

Answers

Given that the freeway has six lanes and three lanes in each direction.

Let's determine the available roadway width, available roadway capacity, and lane width respectively.

We know that there are three lanes in each direction, so the available lanes = [tex]3 × 2 = 6[/tex]lanes.

In addition, the right-side shoulder is 4 feet wide and so we have: [tex]6 × 11 + 4 = 70[/tex] feet available roadway width (with no median).

The available roadway capacity for the six-lane freeway is 1800 passenger car units per hour per lane (pcu/h/lane).

To find out the hourly volume for these conditions, we must find the equivalent passenger car unit (pcu) for trucks and buses since there are 10% of large trucks and buses.

To find the pcu equivalent of the heavy vehicles, we use the following formula: 1 bus or large truck is equivalent to 3 passenger cars (pcu).

Therefore, we have: 0.10 × 3 = 0.3 pcu (for each heavy vehicle)The total pcu/h/lane is given by [tex]0.90 × 1800 = 1620 pcu/h/lane (since the peak-hour factor is 0.90)6 lanes × 1620 pcu/h/lane = 9720 pcu/hAt LOS C, the average speed is about 45 to 50 miles per hour.[/tex]

Thus, the hourly volume for these conditions is 9720 passenger car units (pcu) per hour.

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Consider a paint-drying situation in which drying time for a test specimen is normally distributed with σ = 8. The hypotheses H0: μ = 74 and Ha: μ < 74 are to be tested using a random sample of n = 25 observations.
(a) How many standard deviations (of X) below the null value is x = 72.3? (Round your answer to two decimal places.)
(b) If x = 72.3, what is the conclusion using α = 0.004?
Calculate the test statistic and determine the P-value. (Round your test statistic to two decimal places and your P-value to four decimal places.)
(c) For the test procedure with α = 0.004, what is β(70)? (Round your answer to four decimal places.)
(d) If the test procedure with α = 0.004 is used, what n is necessary to ensure that β(70) = 0.01? (Round your answer up to the next whole number.)

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In a paint-drying situation with a null hypothesis H0: μ = 74 and an alternative hypothesis Ha: μ < 74, a random sample of n = 25 observations is taken. The standard deviation σ is given as 8. We need to determine (a) how many standard deviations below the null value x = 72.3 is, (b) the conclusion using α = 0.004, (c) the value of β(70) for α = 0.004, and (d) the required sample size to ensure β(70) = 0.01.

(a) To find the number of standard deviations below the null value x = 72.3, we calculate z = (x - μ) / σ. Plugging in the values, we have z = (72.3 - 74) / 8, which gives us z = -0.2125.

(b) To determine the conclusion using α = 0.004, we calculate the test statistic z = (x - μ) / (σ / √n) and compare it to the critical value. The critical value for α = 0.004 in a left-tailed test can be obtained using a standard normal distribution table. If the calculated test statistic is less than the critical value, we reject the null hypothesis; otherwise, we fail to reject the null hypothesis.

(c) To find β(70) for α = 0.004, we need additional information such as the population mean under the alternative hypothesis or the effect size. Without this information, we cannot directly calculate β(70).

(d) To determine the required sample size to ensure β(70) = 0.01, we would need the information mentioned above, such as the population mean under the alternative hypothesis or the effect size. Without this information, we cannot determine the necessary sample size to achieve the desired value of β(70).

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The distance from Elliot's house to his friend's house is 3 miles. Elliot rode is bike to his friend's house and then walked back home. Elliot averages 4 miles per hour faster when riding his bike than walking. The total amount of time it took Elliot to reach his friends house and then travel back home was two hours. Which equation would be used to find Elliot's walking speed?

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Elliot's walking speed was 1 mile/hour.

Elliot's walking speed can be found with the help of the given information.Distance between Elliot's house and friend's house = 3 milesTime taken to reach the friend's house + time taken to return home = 2 hours

Time taken to reach friend's house when riding = Distance/Speed

Time taken to return home when walking = Distance/Speed + 4

Let's assume Elliot's walking speed as x miles/hour.

Distance traveled while riding the bike is equal to distance traveled while walking. Therefore, using the formula for distance,

Distance = Speed × Time

We have,D/S(walking) = D/S(biking)D/x = D/(x + 4)

On cross-multiplying, we get, x(x + 4) = 3x

On solving the above equation, we get

,x² + 4x = 3x⇒ x² + x = 0⇒ x(x + 1) = 0⇒ x = 0 or x = -1

Elliot's walking speed cannot be negative or zero. Therefore, Elliot's walking speed was 1 mile/hour.

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given the following grid and values in a diffusion simulation. calculate the value of the cell ma as x as the average of the von neumann neighorhood. round your answer to the nearest integ 633 4x9 281

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The value of cell ma as x can be calculated by averaging the values of the four neighboring cells of x in the von Neumann neighborhood. The von Neumann neighborhood includes the cells directly above, below, to the left, and to the right of x. Therefore, the values of these four cells are 633, 4, 9, and 281. The average of these values is (633+4+9+281)/4 = 231.75, which when rounded to the nearest integer becomes 232. Thus, the value of cell ma as x is 232.

In a diffusion simulation, the von Neumann neighborhood of a cell refers to the four neighboring cells directly above, below, to the left, and to the right of that cell. The value of a cell in the von Neumann neighborhood is an important factor in determining the behavior of the diffusion process. To calculate the value of cell ma as x, we need to average the values of the four neighboring cells of x in the von Neumann neighborhood.

The value of cell ma as x in the given grid and values is 232, which is obtained by averaging the values of the four neighboring cells of x in the von Neumann neighborhood. This calculation is important for understanding the behavior of the diffusion process and can help in predicting the future values of the cells in the grid.

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use the divergence theorem to calculate the flux of f xyz= (xy-z^2)i x^3 sqrt(z) j

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To calculate the flux of the vector field F = (xyz)i + x^3sqrt(z)j through a closed surface, we can use the divergence theorem. The divergence theorem states that the flux of a vector field through a closed surface is equal to the volume integral of the divergence of the vector field over the region enclosed by the surface. Answer : Φ = ∭V (div F) dV

Let's denote the closed surface as S and the region enclosed by S as V. The flux Φ of F through S is given by:

Φ = ∬S F · dS

Using the divergence theorem, we can rewrite this as:

Φ = ∭V (div F) dV

where div F represents the divergence of F.

Now, let's calculate the divergence of F:

div F = ∂(xyz)/∂x + ∂(x^3sqrt(z))/∂y + ∂(x^3sqrt(z))/∂z

Taking the partial derivatives:

∂(xyz)/∂x = yz

∂(x^3sqrt(z))/∂y = 0

∂(x^3sqrt(z))/∂z = 3x^3/(2sqrt(z))

Therefore, the divergence of F is:

div F = yz + 3x^3/(2sqrt(z))

Finally, we can calculate the flux Φ using the divergence theorem:

Φ = ∭V (div F) dV

Evaluate the triple integral over the volume V, and you will have the flux of the vector field F through the closed surface S.

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Find the Third Order Fourier approximation of f. Let f = 1 for π/2 < x < π and 3π/2 < x < 2π and f = 0 for 0 < x < π/2 and π < x < 3π/2.

Answers

The third-order Fourier approximation of the function f is:

f₃(x) = (-2/1) * sin(x) + (2/2) * sin(2

For the third-order Fourier approximation of the function f, we can use the Fourier series expansion.

The Fourier series represents a periodic function as an infinite sum of sine and cosine functions.

In this case, we have a piecewise function defined on the interval (0, 2π), so we will find the Fourier series for one period of the function and extend it periodically.

The general form of the Fourier series for a periodic function f(x) with period 2π is given by:

f(x) = a₀/2 + Σ[aₙ*cos(nx) + bₙ*sin(nx)], n=1 to ∞

where a₀, aₙ, and bₙ are the Fourier coefficients.

To find the Fourier coefficients, we need to calculate the following integrals:

a₀ = (1/π) * ∫[0,2π] f(x) dx

aₙ = (1/π) * ∫[0,2π] f(x) * cos(nx) dx

bₙ = (1/π) * ∫[0,2π] f(x) * sin(nx) dx

Let's calculate the Fourier coefficients step by step:

First, let's find a₀:

a₀ = (1/π) * ∫[0,2π] f(x) dx

   = (1/π) * [∫[π/2,π] 1 dx + ∫[3π/2,2π] 1 dx + ∫[0,π/2] 0 dx + ∫[π,3π/2] 0 dx]

   = (1/π) * [π/2 - π/2 + π - π]

   = 0

Next, let's find aₙ:

aₙ = (1/π) * ∫[0,2π] f(x) * cos(nx) dx

   = (1/π) * [∫[π/2,π] 1 * cos(nx) dx + ∫[3π/2,2π] 1 * cos(nx) dx + ∫[0,π/2] 0 * cos(nx) dx + ∫[π,3π/2] 0 * cos(nx) dx]

   = 0

Similarly, bₙ is given by:

bₙ = (1/π) * ∫[0,2π] f(x) * sin(nx) dx

   = (1/π) * [∫[π/2,π] 1 * sin(nx) dx + ∫[3π/2,2π] 1 * sin(nx) dx + ∫[0,π/2] 0 * sin(nx) dx + ∫[π,3π/2] 0 * sin(nx) dx]

   = 2/n * [cos(πn/2) - cos(3πn/2)]

   = (-1)^n * (2/n)

Now, let's write the third-order Fourier approximation using the Fourier coefficients:

f₃(x) = a₀/2 + Σ[aₙ*cos(nx) + bₙ*sin(nx)], n=1 to 3

Since a₀ = 0, the approximation simplifies to:

f₃(x) = Σ[(-1)^n * (2/n) * sin(nx)], n=1 to 3

Therefore, the third-order Fourier approximation of the function f is:

f₃(x) = (-2/1) * sin(x) + (2/2) * sin(2

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determine whether the improper integral diverges or converges. f [infinity]/0 1/e^2x e^-2x dx converges diverges

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The integral converges to a finite value of1/4. Thus, we can conclude that the improper integral ∫ from 0 to ∞ of( 1/ e( 2x)) e(- 2x) dx converges.

To determine whether the indecorous integral ∫ from 0 to ∞ of( 1/ e( 2x)) e(- 2x) dx converges or diverges, we can simplify the integrand by multiplying the terms together

( 1/ e( 2x)) e(- 2x) = 1/ e( 2x 2x) = 1/ e( 4x)

Now, we can estimate the integral as follows

∫ from 0 to ∞ of( 1/ e( 2x)) e(- 2x) dx = ∫ from 0 to ∞ of 1/ e( 4x) dx

Using the formula for the integral of a geometric series, we get

∫ from 0 to ∞ of 1/ e( 4x) dx = ( 1/( 4e( 4x))) from 0 to ∞ = ( 1/( 4e( 4( ∞))))-( 1/( 4e( 4( 0))))

Since e( ∞) is horizonless, the first term in the below expression goes to zero, and the alternate term evaluates to1/4.

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The given improper integral is ∫∞₀ e^-2x dx/ e^2x. Using the limit comparison test, we can compare it with the integral ∫∞₀ e^-2x dx. Here, the limit of the quotient of the two integrals as x approaches infinity is 1.

Thus, the two integrals behave similarly. As we know that the integral ∫∞₀ e^-2x dx converges, the given integral also converges. Therefore, the answer is "converges." It is important to note that improper integrals can either converge or diverge, and it is necessary to apply the appropriate tests to determine their convergence or divergence. To determine whether the improper integral converges or diverges, let's first rewrite the integral and evaluate it. The integral is: ∫₀^(∞) (1/e^(2x)) * e^(-2x) dx Combine the exponential terms: ∫₀^(∞) e^(-2x + 2x) dx Which simplifies to: ∫₀^(∞) 1 dx Now let's evaluate the integral: ∫₀^(∞) 1 dx = [x]₀^(∞) = (∞ - 0) Since the result is infinity, the improper integral diverges.

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The second factor that will result in 20x+10y when the two factors are multiplied

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To determine the second factor that will result in 20x+10y when the two factors are multiplied, we will have to find the greatest common factor (GCF) of the two numbers, then divide each term by that GCF.

Then, we will write the result as a product of two factors. To find the GCF of 20x and 10y, we will have to find the greatest number that divides both 20x and 10y evenly. We can start by factoring out the greatest common factor of the coefficients 20 and 10 which is 10.10(2x + y)We see that 2x + y is the second factor that will result in 20x+10y when the two factors are multiplied. This is because, when we multiply the two factors together, we get:[tex]10(2x + y) = 20x + 10y[/tex] So, the second factor that will result in 20x+10y when the two factors are multiplied is 2x + y.

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14. A student compared the language skills and mental development of two groups of 24-month-old children. One group consisted of children identified as talkative, and the other group consisted of children identified as quiet. The scores for the two groups on a test that measured language skills are shown in the table below. 70 70 65 85 85 80 90 90 60 Talkative. 75 Quiet 80 75 70 65 90 90 75 85 75 80 Assuming that it is reasonable to regard the groups as simple random samples and that the other conditions for inference are met, what statistical test should be used to determine if there is a significant difference in the average test score of talkative and quiet children at the age of 24 months? aire denc B) A chi-square test of independence. D) A two-sample t-test for means 20 A) A chi-square goodness of fit test C) A matched-pairs t-test for means E) A linear regression t-test

Answers

The appropriate statistical test to determine if there is a significant difference in the average test score of talkative and quiet children at the age of 24 months is D) A two-sample t-test for means.

Is there a significant difference in the average test score of talkative and quiet children at the age of 24 months?

The two-sample t-test for means is used when comparing the means of two independent groups. In this case, we have two groups of children: the talkative group and the quiet group.

We want to determine if there is a significant difference in the average test scores between these two groups.

The t-test allows us to compare the means of the two groups and determine if the observed difference in scores is statistically significant or due to random chance. It takes into account the sample sizes, means, and variances of the two groups.

Given that the groups are regarded as simple random samples and the other conditions for inference are met, the two-sample t-test for means is the appropriate statistical test to evaluate if there is a significant difference in the average test scores of talkative and quiet children at the age of 24 months.

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A spinner with three equal size sections labeled red, green, and yellow is
spun once. Then a coin is tossed, and one of two cards labeled with a 1 or
a 2 is selected. What is the probability of spinning yellow, tossing heads,
and selecting the number 2?

Answers

The probability of spinning yellow, tossing heads, and selecting the number 2 is approximately 0.083325 or 8.33%.

To find the probability of spinning yellow, tossing heads, and selecting the number 2, we need to calculate the individual probabilities of each event and then multiply them together.

Given:

Spinner with three equal size sections (red, green, yellow)

Coin toss with two outcomes (heads, tails)

Two cards labeled with 1 and 2

Firstly calculate the probability of spinning yellow:

Since the spinner has three equal size sections, the probability of spinning yellow is 1/3 or 0.3333.

Secondly calculate the probability of tossing heads:

Since the coin has two possible outcomes, the probability of tossing heads is 1/2 or 0.5.

Thirdly calculate the probability of selecting the number 2:

Since there are two cards labeled with 1 and 2, the probability of selecting the number 2 is 1/2 or 0.5.

Lastly multiply the probabilities together:

To find the probability of all three events occurring, we multiply the individual probabilities:

Probability = (Probability of spinning yellow) * (Probability of tossing heads) * (Probability of selecting the number 2)

Probability = 0.3333 * 0.5 * 0.5

Probability = 0.083325

Therefore, the probability of spinning yellow, tossing heads, and selecting the number 2 is approximately 0.083325 or 8.33%.

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(1. 08).


6. A bank account balance, in dollars, is modeled by the equation f(t) = 1,000.


where t is time measured in years.


About how many years will it take for the account balance to double? Explain or Show


how you know.

Answers

The bank account balance, in dollars, is modeled by the equation f(t) = 1,000. We want to find out about how many years it will take for the account balance to double. We can solve this problem by using the formula for compound interest.

Here is the step-by-step solution:Given, the equation for the bank account balance:f(t) = 1,000To find when the account balance will double, we need to find t such that f(t) = 2,000 (double of 1,000).

That is, we need to solve the following equation for t:1,000 * (1 + r/100)^t

= 2,000

Where r is the interest rate (unknown) and t is the time (unknown).

Divide both sides of the equation by 1,000:(1 + r/100)^t = 2/1= 2

Take the logarithm of both sides of the equation:ln[(1 + r/100)^t] = ln 2Using the property of logarithms, we can bring the exponent t to the front:

tlnt(1 + r/100) = ln 2

Using the division property of logarithms, we can move lnt to the right side of the equation:t = ln 2 / ln(1 + r/100)

We can use the approximation ln(1 + x) ≈ x for small x.

Here x = r/100, which is the interest rate in decimal form. Since r is typically between 1 and 20, we can use the approximation for small values of r/100.

Hence:ln(1 + r/100) ≈ r/100For example,

when r = 10, r/100

= 0.1 and

ln(1.1) ≈ 0.1.

This approximation becomes more accurate as r/100 becomes smaller.Using this approximation,

we get:t ≈ ln 2 / (r/100)

= 100 ln 2 / r

Plug in r = 10 to check the formula

:t ≈ 100 ln 2 / 10

≈ 69.3 years

Therefore, about 69 years (rounded to the nearest year) will be needed for the account balance to double.

Answer: It will take approximately 69 years for the account balance to double.

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solve the equation -3(-7-x)=1/2(x+2)

Answers

Sure, let's solve the equation step by step:

- First, simplify both sides by multiplying -3 to the expression within the parentheses on the left side:

-3(-7-x) = 21 + 3x

The equation then becomes:

21 + 3x = 1/2(x+2)

- Next, distribute 1/2 to the expression within the parentheses on the right side:

21 + 3x = 1/2 x + 1

- To eliminate the fraction, we can multiply everything by 2:

42 + 6x = x + 2

- Now we can solve for x by bringing all x terms to one side and all constants to the other side:

6x - x = 2 - 42

5x = -40

x = -8

Therefore, the solution to the equation -3(-7-x)=1/2(x+2) is x = -8.

A particle moves along a line so that its velocity at time t is v(t) = t^2 - t - 6 (measured in meters per second). (a) Find the displacement of the particle during 1 lessthanorequalto t lessthanorequalto 9. (b) Find the distance traveled during this time period. SOLUTION By this equation, the displacement is s(9) - s(1) = integral_1^9 v(t) dt = integral_1^9 (t^2 - t - 6) dt = [t^3/7 - t^2/2 - 6t]_1^9 = 154.67 This means that the particle moved approximately 154.67 meters to the right. Note that v(t) = t^2 - t - 6 = (t - 3)(t + 2) and so v(t) lessthanorequalto 0 on the interval [1, 3] and v(t) greaterthanorequalto V 0 on [3, 9]. Thus, from this equation, the distance traveled is integral_1^9 |v(t)| dt = integral_1^3 [-v(t)] dt + integral_3^9 v(t) dt = integral_1^3 (-t^2 + t + 6) dt + integral_3^9 (t^2 - t - 6) dt = [______]_1^3 + [______]_3^9 = ______

Answers

The displacement of the particle during 1 ≤ t ≤ 9 is approximately 154.67 meters to the right, while the total distance traveled is 305.33 meters.

To find the distance traveled during 1 ≤ t ≤ 9, we split the integral into two parts based on when the velocity is positive and negative. We have:

∫1^3 |v(t)| dt = ∫1^3 -(t^2 - t - 6) dt = [-t^3/3 + t^2/2 + 6t]1^3 = 6

∫3^9 |v(t)| dt = ∫3^9 (t^2 - t - 6) dt = [t^3/3 - t^2/2 - 6t]3^9 = 299.33

Therefore, the total distance traveled is 6 + 299.33 = 305.33 meters.
Hence the displacement of the particle during 1 ≤ t ≤ 9 is approximately 154.67 meters to the right, while the total distance traveled is 305.33 meters.

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reverse the order of integration in the integral ∫2 0 ∫1 x/2 f(x,y) dydx, but make no attempt to evaluate either integral.∫

Answers

The new limits of integration are:

0 ≤ y ≤ 1

0 ≤ x ≤ 2y

To reverse the order of integration in the integral

∫2 0 ∫1 x/2 f(x,y) dydx

we first need to sketch the region of integration. The limits of integration suggest that the region is a triangle with vertices at (1,0), (2,0), and (1,1).

Thus, we can write the limits of integration as:

1 ≤ y ≤ x/2

0 ≤ x ≤ 2

To reverse the order of integration, we need to integrate with respect to x first. Therefore, we can write:

∫2 0 ∫1 x/2 f(x,y) dydx = ∫1 0 ∫2y 0 f(x,y) dxdy

In the new integral, the limits of integration suggest that we are integrating over a trapezoidal region with vertices at (0,0), (1,0), (2,1), and (0,2).

Thus, the new limits of integration are:

0 ≤ y ≤ 1

0 ≤ x ≤ 2y

Note that the limits of integration for x have changed from x = 1 to x = 2y since we are now integrating with respect to x.

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Chocolate bars are on sale for the prices shown in this stem-and-leaf plot.

Cost of a Chocolate Bar (in cents) at Several Different Stores

Stem Leaf

7 7

8 5 5 7 8 9

9 3 3 3

10 0 5

Answers

The second stem-and-leaf combination of 8-5 indicates that the cost of chocolate bars is 85 cents. Similarly, the third stem-and-leaf combination of 8-5 indicates that the cost of chocolate bars is 85 cents. The fourth stem-and-leaf combination of 8-7 indicates that the cost of chocolate bars is 87 cents. The last stem-and-leaf combination of 8-9 indicates that the cost of chocolate bars is 89 cents.

Chocolate bars are on sale for the prices shown in the given stem-and-leaf plot. Cost of a Chocolate Bar (in cents) at Several Different Stores.

Stem Leaf

7 7

8 5 5 7 8 9

9 3 3 3

10 0 5

There are four stores at which the cost of chocolate bars is displayed. Their costs are indicated in cents, and they are categorized in the given stem-and-leaf plot. In a stem-and-leaf plot, the digits in the stem section correspond to the tens place of the data.

The digits in the leaf section correspond to the units place of the data.

To interpret the data, look for patterns in the leaves associated with each stem.

For example, the first stem-and-leaf combination of 7-7 indicates that the cost of chocolate bars is 77 cents.

The second stem-and-leaf combination of 8-5 indicates that the cost of chocolate bars is 85 cents.

Similarly, the third stem-and-leaf combination of 8-5 indicates that the cost of chocolate bars is 85 cents.

The fourth stem-and-leaf combination of 8-7 indicates that the cost of chocolate bars is 87 cents.

The last stem-and-leaf combination of 8-9 indicates that the cost of chocolate bars is 89 cents.

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(b) what conclusion can be drawn about lim n → [infinity] xn n! ?

Answers

To draw a conclusion about the limit of xn/n! in this case, we would need additional information or a specific expression for xn.

To draw a conclusion about the limit of xn/n! as n approaches infinity, we need to examine the behavior of the sequence {xn/n!} as n gets larger.

If the sequence {xn/n!} converges to a specific value as n approaches infinity, we can conclude that the limit exists. However, if the sequence diverges or oscillates as n increases, the limit does not exist.

Without knowing the specific values of xn, it is difficult to determine the behavior of the sequence. Different values of xn could result in different outcomes for the limit.

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Given the following classification confusion matrix, what is the overall error rate?
Classification Confusion Matrix
Predicted Class
Actual Class 1 0
1 224 85
0 28 3,258
0.033 0.0298 0.0314 0.025

Answers

The overall error rate of the following classification confusion matrix is 0.0314.

To calculate the overall error rate using the given classification confusion matrix, you can follow these steps:

STEP 1. Find the total number of predictions:
  Sum of all elements in the matrix = 224 + 85 + 28 + 3,258 = 3,595

STEP 2. Determine the number of incorrect predictions:
  Incorrect predictions are the off-diagonal elements, i.e., False Positives (FP) and False Negatives (FN) = 85 + 28 = 113

STEP 3. Calculate the overall error rate:
  Error rate = (Incorrect predictions) / (Total predictions) = 113 / 3,595 = 0.0314

So, the overall error rate is 0.0314 of the given confusion matrix.

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Let g(t)=t^4 ct^2 dg(t)=t 4 ct 2 d, where c and d are real constants. what can we say about the critical points of g?

Answers

Answer: The critical points of g(t) occur at t = ±sqrt(-d/2) if d < 0. If d ≥ 0, then dg(t)/dt is always greater than or equal to zero, so g(t) has no critical points.

Step-by-step explanation:

To find the critical points of g(t), we need to find the values of t where the derivative dg(t)/dt is equal to zero or does not exist.

Using the given information, we have:

dg(t)/dt = 4ct^3 + 2dct

Setting this equal to zero, we get:

4ct^3 + 2dct = 0

Dividing both sides by 2ct, we get:

2t^2 + d = 0

Solving for t, we get:

t = ±sqrt(-d/2)

Therefore, the critical points of g(t) occur at t = ±sqrt(-d/2) if d < 0. If d ≥ 0, then dg(t)/dt is always greater than or equal to zero, so g(t) has no critical points.

Note that we also need to assume that c is nonzero, since if c = 0, then dg(t)/dt = 0 for all values of t and g(t) is not differentiable.

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the question is in the picture

Answers

$167,925 is the total value of the plumber's liabilities

To find the total value of the plumber's liabilities

we need to add up the amounts of the mortgage, credit card balance, and kitchen renovation loan.

Total liabilities = Mortgage + Credit card balance + Kitchen renovation loan

Total liabilities = $149,367 + $6,283 + $12,275

Total liabilities = $167,925

so the total value of the plumber's liabilities is $167,925.

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Can you explain why cans of regular Coke would weigh more than cans of Diet​ Coke?
A.
Cans of regular Coke probably weigh more than cans of Diet Coke due to the extra metal present in a regular Coke can but not a Diet Coke can.
B.
Cans of regular Coke probably weigh more than cans of Diet Coke due to Diet Coke cans being only half as large as regular Coke cans.
C.
Cans of regular Coke probably weigh more than cans of Diet Coke due to the sugar present in regular Coke but not Diet Coke.
D.
There is no reason why they would have different weights.

Answers

Cans of regular Coke probably weigh more than cans of Diet Coke due to the extra metal present in a regular Coke can but not a Diet Coke can. The correct answer is A.

Regular Coke contains sugar, which means that it has a higher density than Diet Coke, which uses artificial sweeteners. However, the difference in density alone would not account for a noticeable difference in weight between the two types of cans.

The primary reason that cans of regular Coke weigh more than cans of Diet Coke is that regular Coke cans are made of thicker metal than Diet Coke cans. This is because regular Coke contains acids that can corrode the metal over time, and the thicker metal helps prevent this from happening. Diet Coke, on the other hand, does not contain these acids, so the cans can be made with thinner metal.

Therefore, due to the extra metal present in regular Coke cans but not in Diet Coke cans, cans of regular Coke would weigh more than cans of Diet Coke.

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Graph the points on the coordinate plane.

M(−212, −3), N(−1.5, 3.5), P(−312, 34), Q(0.5, −3.5), R(234, −112)
Use the Point Tool to plot the points.

Keyboard Instructions
Initial graph state
The horizontal axis goes from -4.5 to 4.5 with ticks spaced every 1 unit(s).
The vertical axis goes from -4.5 to 4.5 with ticks spaced every 1 unit(s).
Skip to navigation

Answers

The graph along the coordinate plane is attached below

What is graph of the points on the coordinate plane?

To find the graph of the points along the coordinate plane, we simply need to use a graphing calculator to plot the points M - N, N - P, P - Q, Q - R and R - M.

These individual points in this coordinates cannot form a quadrilateral on the plane.

The total perimeter or distance of the plane cannot be calculated by simply adding up all the points along the line.

However, these lines seem not to intersect at any point as they travel across the plane in different directions.

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The answer to the question

Answers

The sample space is completed on the image presented at the end of the answer.

What is a sample space?

A sample space is a set that contains all possible outcomes in the context of an experiment.

Hence, at the first node, we have that she can choose the two roads, that is, road 1 and road 2.

Then, at the final nodes, for each road, she has three options, which are walk, bike and scooter.

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A sociologist claims the probability that a person picked at random in Grant Park in Chicago is visiting the area is 0.44. You want to test to see if the proportion different from this value.
To test the hypothesis that the proportion is different from the given value, a random sample of 15 people is collected.
• If the number of people in the sample that are visiting the area is anywhere from 6 to 9 (inclusive) , we will not reject the null hypothesis that p = 0.44.
• Otherwise, we will conclude that p 0.44.Round all answers to 4 decimals.1. Calculate a = P(Type I Error) assuming that p = 0.44. Use the Binomial Distribution.
2. Calculate B = P(Type II Error) for the alternative p = 0.31. Use the Binomial Distribution.
3. Find the power of the test for the alternative p = 0.31. Use the Binomial Distribution.

Answers

1. The probability of making a Type I error is 0.1118.

To calculate the probability of Type I error, we need to assume that the null hypothesis is true.

In this case, the null hypothesis is that the proportion of people visiting Grant Park is 0.44.

Therefore, we can use a binomial distribution with n = 15 and p = 0.44 to calculate the probability of observing a sample proportion outside of the acceptance region (6 to 9).

The probability of observing 0 to 5 people visiting the area is:

P(X ≤ 5) = Σ P(X = k), k=0 to 5

= binom.cdf(5, 15, 0.44)

= 0.0566

The probability of observing 10 to 15 people visiting the area is:

P(X ≥ 10) = Σ P(X = k), k=10 to 15

= 1 - binom.cdf(9, 15, 0.44)

= 0.0552

The probability of observing a sample proportion outside of the acceptance region is:

a = P(Type I Error) = P(X ≤ 5 or X ≥ 10)

= P(X ≤ 5) + P(X ≥ 10)

= 0.0566 + 0.0552

= 0.1118

Therefore, the probability of making a Type I error is 0.1118.

2.The probability of making a Type II error is 0.5144.

To calculate the probability of Type II error, we need to assume that the alternative hypothesis is true. In this case, the alternative hypothesis is that the proportion of people visiting Grant Park is 0.31.

Therefore, we can use a binomial distribution with n = 15 and p = 0.31 to calculate the probability of observing a sample proportion within the acceptance region (6 to 9).

The probability of observing 6 to 9 people visiting the area is:

P(6 ≤ X ≤ 9) = Σ P(X = k), k=6 to 9

= binom.cdf(9, 15, 0.31) - binom.cdf(5, 15, 0.31)

= 0.5144

The probability of observing a sample proportion within the acceptance region is:

B = P(Type II Error) = P(6 ≤ X ≤ 9)

= 0.5144

Therefore, the probability of making a Type II error is 0.5144.

3. The power of the test is 0.4856.

The power of the test is the probability of rejecting the null hypothesis when the alternative hypothesis is true. In this case, the alternative hypothesis is that the proportion of people visiting Grant Park is 0.31.

Therefore, we can use a binomial distribution with n = 15 and p = 0.31 to calculate the probability of observing a sample proportion outside of the acceptance region (6 to 9).

The probability of observing 0 to 5 people or 10 to 15 people visiting the area is:

P(X ≤ 5 or X ≥ 10) = P(X ≤ 5) + P(X ≥ 10)

= binom.cdf(5, 15, 0.31) + (1 - binom.cdf(9, 15, 0.31))

= 0.0201

The power of the test is:

Power = 1 - P(Type II Error)

= 1 - P(6 ≤ X ≤ 9)

= 1 - 0.5144

= 0.4856

Therefore, the power of the test is 0.4856.

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Homework:homework 6: chapter 6question 1, 6.1.21part 1 of 7hw score: 0%, 0 of 100 points points: 0 of 50question content area toppart 1a telephone counseling service for adolescents tested whether the length of calls would be affected by a special telephone system that had a better sound quality. over the past several​ years, the lengths of telephone calls​ (in minutes) were normally distributed with and . the service arranged to have the special phone system loaned to them for one day. on that​ day, the mean length of the calls they received was minutes. test whether the length of calls has changed using the​ 5% significance level. complete parts​ (a) through​ (d).

Answers

Answer:a) Null hypothesis: µ = 12.7Alternative hypothesis: µ ≠ 12.7b) Level of significance = 0.05c) z-score = (x - µ) / (σ / √n)z-score = (15.2 - 12.7) / (4.2 / √1)z-score = 0.5952d) Decision rule:If the p-value is less than or equal to the level of significance, reject the null hypothesis. Otherwise, fail to reject the null hypothesis.The p-value associated with a z-score of 0.5952 is 0.5513. Since the p-value is greater than the level of significance, we fail to reject the null hypothesis.

a) State the null and alternative hypotheses in terms of a population parameter. (6 pts)The null hypothesis is that the mean length of telephone calls on the special phone system is equal to the mean length of telephone calls on the regular phone system. The alternative hypothesis is that the mean length of telephone calls on the special phone system is not equal to the mean length of telephone calls on the regular phone system.b) State the level of significance. (2 pts)The level of significance is 5% or 0.05.c) Identify the test statistic. (4 pts)The test statistic is the z-score.d) State the decision rule. (5 pts)If the p-value is less than or equal to the level of significance, reject the null hypothesis. Otherwise, fail to reject the null hypothesis.

Suppose a telephone counseling service for adolescents tested whether the length of calls would be affected by a special telephone system that had better sound quality. Over the past several years, the lengths of telephone calls (in minutes) were normally distributed with µ = 12.7 and σ = 4.2. On that day, the mean length of calls they received was 15.2 minutes. Test whether the length of calls has changed using the 5% significance level.

Complete parts (a) through (d).a) State the null and alternative hypotheses in terms of a population parameter. (6 pts)b) State the level of significance. (2 pts)c) Identify the test statistic. (4 pts)d) State the decision rule. (5 pts)Answer:a) Null hypothesis: µ = 12.7Alternative hypothesis: µ ≠ 12.7b) Level of significance = 0.05c) z-score = (x - µ) / (σ / √n)z-score = (15.2 - 12.7) / (4.2 / √1)z-score = 0.5952d) Decision rule:If the p-value is less than or equal to the level of significance, reject the null hypothesis. Otherwise, fail to reject the null hypothesis.

The p-value associated with a z-score of 0.5952 is 0.5513. Since the p-value is greater than the level of significance, we fail to reject the null hypothesis.Therefore, there is not enough evidence to suggest that the length of calls has changed at the 5% significance level.

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Solve the equation x + x² = 132 using a trial and improvement method. You MUST show all your working. ​

Answers

Step-by-step explanation:

since it is a quadratic equation, we know it must have 2 solutions.

132 is a bit larger than 10².

so, let's try x = 10 :

10 + 10² = 132

10 + 100 = 132

110 = 132

not correct, but close.

the real solution must be a bit larger than x = 10.

we know, that 12² = 144. that is already too large (as the sum with x must be only 132).

so, let's try x = 11

11 + 11² = 132

11 + 121 = 132

132 = 132

correct !

so, x = 11 is one solution.

for the second solution, it is very often that it has the opposite sign to the first solution, but its absolute value is relatively close to the first solution.

so, when thinking negative values, x² has to go higher than 132, so that x (with its negative value) can bring it back down to 132.

what we just thought about +12 might have some merit for -12.

let's try x = -12 :

-12 + (-12)² = 132

-12 + 144 = 132

132 = 132

correct !

so, x = -12 is the second solution.

summary :

x = 11

x = -12

are the 2 solutions.

(a) Derive the mean stock price in the Cox-Ross-Rubinstein model using MGF method. (b) What is the mean and variance of a stock's price after 8 time periods with initial price S, = $100 and parameters u =1.01, d =0.99, and p=0.51?
(c) Refer to (b), approximate the probability that the stock's price will be up at least 30% after 1000 time periods.

Answers

(a) To derive the mean stock price in the Cox-Ross-Rubinstein model  using MGF method, we need to find the moment-generating function of ln(S_n), where S_n is the stock price at time n. By applying the MGF method, we can derive the mean stock price as S_0 * (u^k * d^(n-k)), where S_0 is the initial stock price, u is the up factor, d is the down factor, k is the number of up movements, and n is the total number of time periods.
(b) Using the Cox-Ross-Rubinstein model with given parameters, the mean stock price after 8 time periods is $100 * (1.01^4 * 0.99^4) = $100.61, and the variance is ($100^2) * ((1.01^4 * 0.99^4) - (1.01*0.99)^2) = $7.76.
(c) To approximate the probability that the stock's price will be up at least 30% after 1000 time periods, we need to use the normal distribution with mean and variance derived from part (b) and the central limit theorem. The probability can be approximated as P(Z > (ln(1.3) - ln(1.0061))/(sqrt(0.0776/1000))) where Z is the standard normal variable.


(a) In the Cox-Ross-Rubinstein model, the stock price S_n at time n is given by S_n = S_0 * u^k * d^(n-k), where S_0 is the initial stock price, u is the up factor, d is the down factor, k is the number of up movements, and n is the total number of time periods. To derive the mean stock price using the MGF method, we need to find the moment-generating function of ln(S_n). By applying the MGF method, we can derive the mean stock price as S_0 * (u^k * d^(n-k)).
(b) The mean and variance of the stock price after 8 time periods can be derived from the Cox-Ross-Rubinstein model with given parameters. The mean is obtained by multiplying the initial stock price by the probability of going up and down to the fourth power. The variance is obtained by multiplying the initial stock price squared by the difference between the fourth power of the probability of going up and down and the square of the product of the probabilities.
(c) To approximate the probability that the stock's price will be up at least 30% after 1000 time periods, we need to use the normal distribution with mean and variance derived from part (b) and the central limit theorem. We first transform the problem to a standard normal variable, then use the standard normal table or calculator to obtain the probability.

The Cox-Ross-Rubinstein model provides a useful framework for pricing options and predicting stock prices. By applying the MGF method, we can derive the mean stock price in the model. Using the mean and variance, we can approximate the probability of certain events, such as the stock's price going up by a certain percentage after a certain number of time periods. The model assumes that the stock price follows a binomial distribution, which may not always be accurate, but it provides a good approximation in many cases.

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The Cox-Ross-Rubinstein (CRR) model is a discrete-time model for valuing options. It assumes that the stock price can only move up or down by a certain factor at each time step. The mean stock price can be derived using the Moment Generating Function (MGF) method.

Let's consider a stock price S that can take two values, S_u and S_d, at each time step with probabilities p and q, respectively, where p + q = 1. We assume that the stock price can move up by a factor u, where u > 1, or down by a factor d, where 0 < d < 1.

The MGF of the stock price at time t is given by:

M(t) = E[e^{tS}]

To find the mean stock price, we differentiate the MGF with respect to t and evaluate it at t = 0:

M'(0) = E[S]

We can express the stock price at time t as:

S(t) = S_0 * u^k * d^(n-k)

where S_0 is the initial stock price, n is the total number of time steps, and k is the number of up-moves at time t.

The probability of k up-moves at time t is given by the binomial distribution:

P(k) = (n choose k) * p^k * q^(n-k)

Using this expression for S(t), we can write the MGF as:

M(t) = E[e^{tS}] = ∑_{k=0}^n (n choose k) * p^k * q^(n-k) * e^{tS_0 * u^k * d^(n-k)}

To evaluate the MGF at t = 0, we need to take the derivative with respect to t:

M'(t) = E[S * e^{tS}] = S_0 * ∑_{k=0}^n (n choose k) * p^k * q^(n-k) * u^k * d^(n-k) * e^{tS_0 * u^k * d^(n-k)}

Setting t = 0 and simplifying, we get:

M'(0) = E[S] = S_0 * ∑_{k=0}^n (n choose k) * p^k * q^(n-k) * u^k * d^(n-k)

The mean stock price in the CRR model is therefore given by:

E[S] = S_0 * ∑_{k=0}^n (n choose k) * p^k * q^(n-k) * u^k * d^(n-k)

This formula can be used to calculate the mean stock price at any time t in the CRR model.

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