beslenmenin spor üzerindeki etgisi​

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Answer 1

Answer:

enerji dengesi korunur. Dayanıklılık ve performans yüksektir.Sporda oluşan kas ağrıları minimizedir ve doğru beslenme ile egzersizde yaşanılan kas yıkımı

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Solve the differential equation
dR/dx=a(R2+16)
Assume a is a non-zero constant, and use C for any constant of integration that you may have in your answer.
R = ?

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The general solution to the given differential equation is:

R = 4tan[arctan(R/8) + (C - 4ln2)/4]

To solve the given differential equation:

dR/dx = a(R^2 + 16)

We can separate the variables R and x by dividing both sides by (R^2 + 16):

1 / (R^2 + 16) dR/dx = a

Integrating both sides with respect to x, we get:

∫ 1 / (R^2 + 16) dR = ∫ a dx

We can evaluate the left integral using the substitution u = R/4:

1/4 ∫ 1 / (u^2 + 1) du = arctan(u/2) + C1

where C1 is a constant of integration.

Substituting back for u and simplifying, we have:

1/4 ∫ 1 / (R^2 / 16 + 1) dR = arctan(R/8) + C1

Multiplying both sides by 4, we get:

∫ 1 / (R^2 / 16 + 1) dR = 4arctan(R/8) + C

where C = 4C1 is a constant of integration.

To evaluate the integral on the left, we can use the substitution v = R/4:

∫ 1 / (v^2 + 1) dv = ln|v| + C2

where C2 is another constant of integration.

Substituting back for v and simplifying, we have:

∫ 1 / (R^2 / 16 + 1) dR = 4ln|R/4| + C

Combining this with our earlier result, we have:

4ln|R/4| + C = 4arctan(R/8) + C

Solving for R, we get:

R = 4tan[arctan(R/8) + (C - 4ln2)/4]

where C is the constant of integration.

Therefore, the general solution to the given differential equation is:

R = 4tan[arctan(R/8) + (C - 4ln2)/4]

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To solve this differential equation, we can separate the variables and integrate both sides: dR/(R^2+16) = a dx To integrate the left-hand side, we can use partial fractions: 1/(R^2+16) = (1/16) [1/(R+4) - 1/(R-4)] So the equation becomes:
(1/16) [1/(R+4) - 1/(R-4)] dR = a dx

Integrating both sides gives:

(1/16) ln(|R+4|) - (1/16) ln(|R-4|) = ax + C

where C is the constant of integration. We can simplify this expression by combining the logarithms and taking the exponential of both sides:

| (R+4)/(R-4) | = e^(16a x + C)

Since a is non-zero, we know that e^(16a x + C) is always positive. Therefore, we can remove the absolute value bars:

(R+4)/(R-4) = e^(16a x + C)

Multiplying both sides by (R-4) gives:

R+4 = e^(16a x + C) (R-4)

Expanding the right-hand side gives:

R+4 = e^(16a x + C) R - 4 e^(16a x + C)

Bringing all the R terms to one side gives:

R - e^(16a x + C) R = -4 - 4 e^(16a x + C)

Factorizing R gives:

R (1 - e^(16a x + C)) = -4 (1 + e^(16a x + C))

Dividing both sides by (1 - e^(16a x + C)) gives the solution:

R = 4 (e^(16a x + C) - 1) / (e^(16a x + C) + 1)

This is the general solution to the differential equation. The constant C can be determined by using an initial condition or boundary condition.
Hello! I'd be happy to help you solve the differential equation. We are given the differential equation:

dR/dx = a(R^2 + 16)

To solve this, we will follow these steps:

Step 1: Separate variables
We need to separate the variables R and x. We do this by dividing both sides by (R^2 + 16):

(1 / (R^2 + 16)) dR = a dx

Step 2: Integrate both sides
Now, we will integrate both sides with respect to their respective variables:

∫ (1 / (R^2 + 16)) dR = ∫ a dx

Step 3: Perform the integration
We will use the arctangent integration formula for the left side:

(1/4) * arctan(R/4) = ax + C

Step 4: Solve for R
To find R in terms of x, we first multiply both sides by 4:

arctan(R/4) = 4ax + 4C

Next, take the tangent of both sides:

tan(arctan(R/4)) = tan(4ax + 4C)

R/4 = tan(4ax + 4C)

Finally, multiply both sides by 4 to isolate R:

R = 4 * tan(4ax + 4C)

So, the solution to the differential equation is:

R = 4 * tan(4ax + 4C)

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Trevor made an investment of 4,250. 00 22 years ago. Given that the investment yields 2. 7% simple interest annually, how big is his investment worth now?

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Trevor's investment of $4,250.00, made 22 years ago with a simple interest rate of 2.7% annually, would be worth approximately $7,450.85 today.

To calculate the value of Trevor's investment now, we can use the formula for simple interest: A = P(1 + rt), where A is the final amount, P is the principal (initial investment), r is the interest rate, and t is the time in years.

Given that Trevor's investment was $4,250.00 and the interest rate is 2.7% annually, we can plug these values into the formula:

A = 4,250.00(1 + 0.027 * 22)

Calculating this expression, we find:

A ≈ 4,250.00(1 + 0.594)

A ≈ 4,250.00 * 1.594

A ≈ 6,767.50

Therefore, Trevor's investment would be worth approximately $6,767.50 after 22 years with simple interest.

It's important to note that the exact value may differ slightly due to rounding and the specific method of interest calculation used.

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List price: $41.93; Sale price: $35.94

Wholesale price: $62.55; List price: $76.45

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In the first set, the discount amount is $5.99 and the discount percentage is approximately 14.29%. In the second set, the markup amount is $13.90 and the markup percentage is approximately 22.22%.

First set:

List price: $41.93

Sale price: $35.94

To calculate the discount amount, we subtract the sale price from the list price:

Discount = List price - Sale price = $41.93 - $35.94 = $5.99

Now, let's calculate the discount percentage:

Discount percentage = (Discount / List price) * 100 = ($5.99 / $41.93) * 100 ≈ 14.29%

Therefore, in the first set, the discount amount is $5.99 and the discount percentage is approximately 14.29%.

Second set:

Wholesale price: $62.55

List price: $76.45

To calculate the markup amount, we subtract the wholesale price from the list price:

Markup = List price - Wholesale price = $76.45 - $62.55 = $13.90

Now, let's calculate the markup percentage:

Markup percentage = (Markup / Wholesale price) * 100 = ($13.90 / $62.55) * 100 ≈ 22.22%

Therefore, in the second set, the markup amount is $13.90 and the markup percentage is approximately 22.22%.

Please note that the discount percentage represents the decrease in price from the list price, while the markup percentage represents the increase in price from the wholesale price.

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Compare 2/3 and 5/2 by comparison of rational numbers

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Hence,5/2 is greater than 2/3. Therefore, we can say that 2/3 < 5/2.Comparison of rational numbers: When we compare rational numbers, we find out which one is greater, smaller, or whether they are equal. The following are the steps for comparing rational numbers:

To compare 2/3 and 5/2, we need to convert them into like fractions.

We know that any rational number can be written in the form of p/q where p and q are integers and q ≠ 0.Now, we have to compare 2/3 and 5/2 by comparing rational numbers.

The first step is to make the denominators of both fractions the same so that we can compare them. To do this, we need to find the least common multiple (LCM) of 3 and 2.LCM of 3 and 2 is 6. To get the denominator of 2/3 as 6, we multiply both numerator and denominator by 2; and to get the denominator of 5/2 as 6, we multiply both numerator and denominator by 3.We get 2/3 = 4/6 and 5/2 = 15/6.

Now, we can compare these fractions easily. We know that if the numerator of a fraction is greater than the numerator of another fraction, then the fraction with the greater numerator is greater. If the numerators are equal, then the fraction with the lesser denominator is greater.

Hence,5/2 is greater than 2/3. Therefore, we can say that 2/3 < 5/2.Comparison of rational numbers: When we compare rational numbers, we find out which one is greater, smaller, or whether they are equal. The following are the steps for comparing rational numbers:

Step 1: Convert the fractions into like fractions by finding their least common multiple (LCM)

Step 2: Compare the numerators.

Step 3: If the numerators are equal, then compare the denominators.

Step 4: If the denominators are equal, then the two fractions are equal.

Step 5: If the numerators and denominators are not equal, then the greater numerator fraction is greater, and the lesser numerator fraction is smaller.

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write the sum in sigma notation. 3 − 3x 3x2 − 3x3 · · · (−1)n3xn

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Hi! I'd be happy to help you write the sum in sigma notation. Given the sum: 3 - 3x + 3x^2 - 3x^3 + , + (-1)^n * 3x^n, the sigma notation would be:

Σ[(-1)^k * 3x^k] from k=0 to n

Here's a step-by-step explanation:

1. Identify the pattern in the sum: It alternates between positive and negative terms, and each term has a power of x multiplied by 3.
2. Assign the variable k for the index of summation.
3. Determine the range of k: The sum starts with k=0 and goes up to k=n.
4. Represent the alternating sign using (-1)^k.
5. Combine all components to form the sigma notation: Σ[(-1)^k * 3x^k] from k=0 to n.

The sum can be written in sigma notation as:

[tex]$\displaystyle\sum_{n=1}^\infty (-1)^n 3x^n$[/tex]

How to write sum in sigma notation?

The given series is:

[tex]3 - 3x + 3x^2 - 3x^3 + ...[/tex]

To write it in sigma notation, we first notice that the terms alternate in sign, and each term is a power of x multiplied by a constant (-3). We can write the general term of the series as:

[tex](-1)^n * 3 * x^n[/tex]

where n is the index of the term, starting from n = 0 for the first term.

Using sigma notation, we can express the sum of the series as:

[tex]$\displaystyle\sum_{n=1}^\infty (-1)^n 3x^n$[/tex]

where the summation is over all values of n starting from n = 0.

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Find h(x, y) = g(f(x, y)). g(t) = t + Vt, f(x, y) = 7x + 4y – 28 h(x, y) = Find the set on which h is continuous. OD = {(x, y) | y 22x - 7} Oh is continuous on R2 OD = {(x, y) |(x, y) + ( )} OD = {(x, y) |(x, y) + (0, 0); OD = {(x,y) y 2 - 2x + 7}

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The set on which h(x,y) is such that:

y ≤ (22/7)x - 7 and [tex]9x^2 + 16y^2 + 38xy \geq 231[/tex]

How to find the set on which h(x, y) and h is continuous?

First, we can compute f(x,y) = 7x + 4y - 28, and then substitute into g(t) to get:

g(f(x,y)) = f(x,y) + Vf(x,y) = (7x + 4y - 28) + V(7x + 4y - 28)

Expanding the expression inside the square root, we get:

[tex]g(f(x,y)) = (8x + 5y - 28) + V(57x^2 + 56xy + 16y^2 - 784)[/tex]

To find the set on which h(x,y) is continuous, we need to determine the set on which the expression inside the square root is non-negative. This set is defined by the inequality:

[tex]57x^2 + 56xy + 16y^2 - 784 \geq 0[/tex]

To simplify this expression, we can diagonalize the quadratic form using a change of variables. We set:

u = x + 2y

v = x - y

Then, the inequality becomes:

[tex]9u^2 + 7v^2 - 784 \geq 0[/tex]

This is the inequality of an elliptical region in the u-v plane centered at the origin. Its boundary is given by the equation:

[tex]9u^2 + 7v^2 - 784 = 0[/tex]

Therefore, the set on which h(x,y) is continuous is the set of points (x,y) such that:

y ≤ (22/7)x - 7

and

[tex]9(x+2y)^2 + 7(x-y)^2 \geq 784[/tex]

or equivalently:

[tex]9x^2 + 16y^2 + 38xy \geq 231[/tex]

This is the region below the line y = (22/7)x - 7, outside of the elliptical region defined by [tex]9x^2 + 16y^2 + 38xy = 231.[/tex]

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For the curve given by r(t) = <1/3t3, 1/2t2, t> find the following:
a) unit tangent vector T
b) principle unit normal vector N
c) curvature K

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a) The unit tangent vector T is given by T(t) = r'(t) / ||r'(t)||, where r'(t) is the derivative of r(t) with respect to t.

b) The principal unit normal vector N is given by N(t) = T'(t) / ||T'(t)||, where T'(t) is the derivative of T(t) with respect to t.

c) The curvature K is given by K(t) = ||T'(t)|| / ||r'(t)||.

a) To find the unit tangent vector T, we first need to find the derivative of r(t).

Taking the derivative of each component of r(t), we have r'(t) = <t^2, t, 1>. To obtain the unit tangent vector T, we divide r'(t) by its magnitude ||r'(t)||. The magnitude of r'(t) is given by ||r'(t)|| = sqrt(t^4 + t^2 + 1).

Therefore, T(t) = r'(t) / ||r'(t)|| = <t^2, t, 1> / sqrt(t^4 + t^2 + 1).

b) To find the principal unit normal vector N, we need to find the derivative of T(t).

Taking the derivative of each component of T(t), we have T'(t) = <2t, 1, 0>. Dividing T'(t) by its magnitude ||T'(t)|| gives us the principal unit normal vector N.

The magnitude of T'(t) is given by ||T'(t)|| = sqrt(4t^2 + 1).

Therefore, N(t) = T'(t) / ||T'(t)|| = <2t, 1, 0> / sqrt(4t^2 + 1).

c) To find the curvature K, we need to calculate the magnitude of the derivative of the unit tangent vector T divided by the magnitude of the derivative of r(t).

The magnitude of T'(t) is ||T'(t)|| = sqrt(4t^2 + 1), and the magnitude of r'(t) is ||r'(t)|| = sqrt(t^4 + t^2 + 1).

Therefore, the curvature K(t) = ||T'(t)|| / ||r'(t)|| = sqrt(4t^2 + 1) / sqrt(t^4 + t^2 + 1).

In summary, the unit tangent vector T is <t^2, t, 1> / sqrt(t^4 + t^2 + 1), the principal unit normal vector N is <2t, 1, 0> / sqrt(4t^2 + 1), and the curvature K is sqrt(4t^2 + 1) / sqrt(t^4 + t^2 + 1).

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What is the length of segment GH? Round your answer to the nearest hundredth.
A. 4.70 units
B. 6.24 units
C. 8.54 units
D. 11.00 units

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The correct option is C, the length of the segment is 8.54 units.

How to find the length of the segment GH?

Remember that the length of a segment whose endpoints are (x₁, y₁) and (x₂, y₂) is given by:

L =  √( (x₂ - x₁)² + (y₂ - y₁)²)

Here the endpoints are (-1, 5) and (2, -3), then the length is:

L =   √( (-1 - 2)² + (5 + 3)²)

L = 8.54 units.

So the correct option is C.

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How many terms of the Taylor series for tan side of the equation ?=48 tan 10-62 x would you have to use to evaluate each term on the right 1 _+ 18 +32tan-1 20ta 9 with an error of magnitude less than You would have to use terms.

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Answer: We can use the Taylor series expansion of the tangent function to approximate the value of tan(48°) as follows:

tan(48°) = tan(π/4 + 11°)

= tan(π/4) + tan'(π/4) * 11° + (1/2)tan''(π/4) * (11°)^2 + ...

= 1 + (1/2) * 11° + (1/2)(-1/3) * (11°)^3 + ...

= 1 + (11/2)° - (1331/2)(1/3!)(π/180)^2 * (11)^3 + ...

where we have used the fact that tan(π/4) = 1, and that the derivative of the tangent function is sec^2(x).

To find the error in this approximation, we can use the remainder term of the Taylor series, which is given by:

Rn(x) = (1/n!) * f^(n+1)(c) * (x-a)^(n+1)

where f(x) is the function being approximated, a is the center of the expansion, n is the degree of the Taylor polynomial used for the approximation, and c is some value between x and a.

In this case, we have:

f(x) = tan(x)

a = π/4

x = 11°

n = 3

To ensure that the error is less than 0.0001, we need to find the minimum value of c between π/4 and 11° such that the remainder term R3(c) is less than 0.0001. We can do this by finding an upper bound for the absolute value of the fourth derivative of the tangent function on the interval [π/4, 11°]:

|f^(4)(x)| = |24sec^4(x)tan(x) + 8sec^2(x)| ≤ 24 * 1^4 * tan(π/4) + 8 * 1^2 = 32

So, we have:

|R3(c)| = (1/4!) * |f^(4)(c)| * (11° - π/4)^4 ≤ (1/4!) * 32 * (11° - π/4)^4 ≈ 0.000034

Since this is already less than 0.0001, we only need to use the first three terms of the Taylor series expansion to approximate tan(48°) with an error of magnitude less than 0.0001.

You would have to use 4 terms of the Taylor series to evaluate each term on the right with an error of magnitude less than 1.

The given expression is: 48tan(10) - 62x.

The Taylor series for tan(x) is given by:

tan(x) = x + (1/3)x^3 + (2/15)x^5 + (17/315)x^7 + ...

To find how many terms we need to use to ensure an error of magnitude less than 1, we can compare the absolute value of each term with 1.

1. For the first term,           |x| < 1.
2. For the second term,    |(1/3)x^3| < 1.
3. For the third term,         |(2/15)x^5| < 1.
4. For the fourth term,       |(17/315)x^7| < 1.

We need to find the smallest term number that satisfies the condition. In this case, it's the fourth term. Therefore, you would have to use 4 terms of the Taylor series to evaluate each term on the right with an error of magnitude less than 1.

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a political candidate has asked you to conduct a poll to determine what percentage of people support her. state the value of z that you will use in your computation

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To compute the percentage of people who support the political candidate, we would need to conduct a survey and collect data. Once we have collected the data, we can use statistical methods to estimate the percentage of people who support the candidate and calculate a margin of error.

To calculate the margin of error, we would typically use the standard error of the sample proportion, which is calculated as:

SE = sqrt[(p_hat * (1 - p_hat)) / n]

where p_hat is the sample proportion, and n is the sample size.

To calculate the z-score for a given confidence level, we would use the standard normal distribution and the appropriate confidence level. For example, for a 95% confidence level, we would use a z-score of 1.96.

However, since we do not have any data to work with, we cannot determine the value of z to use in the computation. We would need to conduct a survey and collect data before we can calculate any statistical measures.

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1. [10 pts] Let G be a graph with n ≥ 3 vertices that has a clique of size n − 2 but no cliques of size n − 1. Prove that G has two distinct independent sets of size 2.

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In graph theory, a clique is a subset of vertices where every pair of distinct vertices is connected by an edge, and an independent set is a set of vertices where no two vertices are connected by an edge. We have shown that G has two distinct independent sets of size 2.

Given that G is a graph with n ≥ 3 vertices, having a clique of size n-2 and no cliques of size n-1, we need to prove that G has two distinct independent sets of size 2. Consider the clique of size n-2 in G. Let's call this clique C. Since the graph has no cliques of size n-1, the remaining two vertices (let's call them u and v) cannot both be connected to every vertex in C. If they were, we would have a clique of size n-1, which contradicts the given condition. Now, let's analyze the connection between u and v to the vertices in C. Without loss of generality, assume that u is connected to at least one vertex in C, and let's call this vertex w. Since v cannot form a clique of size n-1, it must not be connected to w. Therefore, {v, w} forms an independent set of size 2. Similarly, if v is connected to at least one vertex in C (let's call this vertex x), then u must not be connected to x. This implies that {u, x} forms another independent set of size 2, distinct from the previous one.

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Use the skein relation of the bracket polynomial order to show that the Jones polynomials of the three links in Figure 6.13 are related through the equation: t^-V(L_+) - tV(L_-) + (t^-1/2 - t^1/2)V(L_0) = 0 This was the original skein relation that Vaughan Jones recognized to hold for the Jones polynomial.

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The skein relation is a powerful tool in the study of knot theory, and it provides a useful relationship between the Jones polynomials of different links. The skein relation is defined as follows:

V(L_+) - V(L_-) = (t^(1/2) - t^(-1/2))V(L_0)

where V(L_+), V(L_-), and V(L_0) are the Jones polynomials of three links, L_+, L_-, and L_0, respectively. In order to show that the Jones polynomials of the three links in Figure 6.13 are related through the equation:

t^(-V(L_+)) - t^(V(L_-)) + (t^(-1/2) - t^(1/2))V(L_0) = 0

we can start by using the skein relation on each term individually. Let's consider each term one by one.

Applying the skein relation to the first term, we have:

V(L_+) = (t^(1/2) - t^(-1/2))V(L_0) + V(L_-)

Next, let's apply the skein relation to the second term:

V(L_-) = (t^(-1/2) - t^(1/2))V(L_0) + V(L_+)

Now, we can substitute the values of V(L_+) and V(L_-) into the equation and simplify:

t^(-V(L_+)) - t^(V(L_-)) + (t^(-1/2) - t^(1/2))V(L_0) = t^(-(t^(1/2) - t^(-1/2))V(L_0) - V(L_-)) - t^((t^(-1/2) - t^(1/2))V(L_0) + V(L_+)) + (t^(-1/2) - t^(1/2))V(L_0)

Using the properties of exponents, we can simplify the equation further:

= (t^(-t^(1/2)V(L_0)) * t^(-t^(-1/2)V(L_-)) - t^(t^(-1/2)V(L_0)) * t^(t^(1/2)V(L_+))) + (t^(-1/2)V(L_0) - t^(1/2)V(L_0))

By combining the terms, we get:

= t^(-t^(1/2)V(L_0) - t^(-1/2)V(L_-)) - t^(t^(-1/2)V(L_0) + t^(1/2)V(L_+)) + t^(-1/2)V(L_0) - t^(1/2)V(L_0)

Now, let's rearrange the terms:

= t^(-t^(1/2)V(L_0) - t^(-1/2)V(L_-) - 1/2)V(L_0) - t^(t^(-1/2)V(L_0) + t^(1/2)V(L_+) - 1/2)V(L_0)

We can see that the two terms involving t^(1/2) and t^(-1/2) cancel each other out:

= t^(-t^(1/2)V(L_0) - t^(-1/2)V(L_-) - 1/2)V(L_0) - t^(t^(-1/2)V(L_0) + t^(1/2)V(L_+) - 1/2)V(L

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Consider the optimization problem minimize fo(x1,2) subject to 2x1 2 1 i+3221 Make a sketch of the feasible set. For each of the following objective functions, give the optimal set and the optimal value. (a) fo(x1,T2) = z1 + x2 . (b) fo(x1,x2)=-zi (c) fo(x1,x2-x1. (d) fo(x1,x2)=max(띠,T2).

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(a) The optimal set for the objective function fo(x1, x2) = x1 + x2 is the boundary of the feasible set  (b) The optimal set for the objective function fo(x1, x2) = -z1 is the point (x1, x2) where z1 is maximized  (c) The optimal set for the objective function fo(x1, x2) = x2 - x1 is the line x2 = x1  (d) The optimal set for the objective function fo(x1, x2) = max(z1, x2) depends on the specific values of z1 and x2.

(a) The objective function fo(x1, x2) = x1 + x2 represents a linear function that increases as both x1 and x2 increase. The optimal set for this objective function is the boundary of the feasible set, which includes the points where the constraints are binding. The optimal value is the minimum value of the objective function on the boundary.

(b) The objective function fo(x1, x2) = -z1 represents a function that is maximized when z1 is minimized. The optimal set for this objective function is the point (x1, x2) where z1 is maximized. The optimal value is the maximum value of z1.

(c) The objective function fo(x1, x2) = x2 - x1 represents a linear function with a slope of 1. The optimal set for this objective function is the line x2 = x1, which represents all points where the difference between x2 and x1 is minimized. The optimal value is the minimum value on that line.

(d) The objective function fo(x1, x2) = max(z1, x2) takes the maximum value between z1 and x2. The optimal set for this objective function depends on the specific values of z1 and x2. The optimal value is the maximum of z1 and x2, whichever is larger.

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suppose the random variable x has moment-generating function mx(t) = e µt 1−(σt) 2 for |t| < 1 σ . find the mean and variance of x

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Thus, the mean of X is µ and the variance of X is 2σ^2.

The moment-generating function of a random variable X is defined as mx(t) = E(e^tx), where E denotes the expected value.

In this case, the moment-generating function of X is given by mx(t) = e^(µt) / (1 - (σt)^2), for |t| < 1/σ.

To find the mean and variance of X, we need to differentiate the moment-generating function twice and evaluate it at t=0.

First, we differentiate mx(t) once with respect to t:

mx'(t) = µe^(µt) / (1 - (σt)^2)^2 + 2σ^2te^(µt) / (1 - (σt)^2)^2

Next, we differentiate mx(t) twice with respect to t:

mx''(t) = µ^2 e^(µt) / (1 - (σt)^2)^2 + 2σ^2 e^(µt) / (1 - (σt)^2)^2 + 4σ^4 t^2 e^(µt) / (1 - (σt)^2)^3 - 4σ^2 t e^(µt) / (1 - (σt)^2)^3

Evaluating these derivatives at t=0, we get:

mx'(0) = µ

mx''(0) = µ^2 + 2σ^2

Therefore, the mean of X is given by E(X) = mx'(0) = µ, and the variance of X is given by Var(X) = mx''(0) - (mx'(0))^2 = µ^2 + 2σ^2 - µ^2 = 2σ^2.

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T/F let l be a cfl, m a regular language, and w a string. then the problem of determining w ∈ l ∩ m is solvable

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False.  let l be a cfl, m a regular language, and w a string. then the problem of determining w ∈ l ∩ m is solvable

The problem of determining whether a string w belongs to the intersection of a context-free language (CFL) and a regular language is not solvable in general. The intersection of a CFL and a regular language may result in a language that is not decidable or recognizable.

While membership testing for a regular language is decidable and can be solved algorithmically, membership testing for a CFL is not decidable in general. Therefore, determining whether a string belongs to the intersection of a CFL and a regular language is not guaranteed to be solvable.

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I need help solving this problem. Please help with the solutions and provide an order.

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Answer: For the first equation, the answer is #5. For the second equation, the answer is #10, for the third equation, the answer is #2, and for the fourth equation, the answer is #1.

Step-by-step explanation:

In order to find the Y-intercept for functions, you need to plug in x=0.

For the first equation, you have[tex]f(x)= -(x+2)^2 +1\\[/tex]. Plug in 0 for all the x values. You get [tex]-(0+2)^2 +1[/tex]. Solve that and you're left with -3 as your y-int. Therefore, the answer will be (0, -3) AKA #5.

Follow these steps for the rest of the problems, I'm not writing the step by steps for the rest because they are very similar.

1. plug in 0 for the x values

2. simplify equation till you have one value

3. That value you just found is the y- int.

4. substitute that value for y in this: (0,y)

Hope that helped! if you need further help, I can add another answer for the rest of the equations.

PLEASE ANSWER THIS FAST 2. If the owners bring in $1,125 on weekdays, $1,275 on weekends, and $1,625 on holidays, how much do they charge for a gallon of each type of ice cream? Your strategy should include solving a system using inverse matrices.

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They charge $3.50 for a gallon of ice cream on weekdays, $4.50 for a gallon on weekends, and $4.00 for a gallon on holidays.

Let x, y, and z be the prices of a gallon of ice cream on weekdays, weekends, and holidays, respectively. Then we have the following system of equations:

5x + 5y + 5z = 1125 (since they bring in $1,125 on weekdays)

2x + 3y + 2z = 1275 (since they bring in $1,275 on weekends)

x + y + z = 1625 (since they bring in $1,625 on holidays)

We can write this system in matrix form as AX = B, where

[tex]A=\left[\begin{array}{ccc}5&5&5\\2&3&2\\1&1&1\end{array}\right][/tex]

X = [x; y; z]

B = [1125; 1275; 1625]

To solve for X, we need to find the inverse of A and multiply both sides by it:

A⁻¹AX = A⁻¹B

IX = A⁻¹B

X = A⁻¹B

Using a calculator, we can find that A⁻¹ is:

[tex]A^{-1}=\left[\begin{array}{ccc}1/5&-2/15&1/15\\-2/5&7/15&-1/15\\3/10&-1/30&-1/30\end{array}\right][/tex]

Multiplying A⁻¹ by B gives us:

A⁻¹B = [x; y; z] = [3.50; 4.50; 4.00]

Therefore, they charge $3.50 for a gallon of ice cream on weekdays, $4.50 for a gallon on weekends, and $4.00 for a gallon on holidays.

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4. section 7.4; problem 6: which test should be used here? a. one sample z-test for means b. one sample t-test for means

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If the population standard deviation is unknown or the sample size is small, we should use the one-sample t-test for means.

To determine which test to use for problem 6 in section 7.4, we need to consider the type of data we have and the characteristics of the population we are trying to make inferences about.

If we know the population standard deviation and the sample size is large (n > 30), we can use the one-sample z-test for means. This test assumes that the population is normally distributed.

If we do not know the population standard deviation or the sample size is small (n < 30), we should use the one-sample t-test for means. This test assumes that the population is normally distributed or that the sample size is large enough to invoke the central limit theorem.

Without additional information about the problem, it is not clear which test to use. If the population standard deviation is known and the sample size is large enough, we can use the one-sample z-test for means. If the population standard deviation is unknown or the sample size is small, we should use the one-sample t-test for means.

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let → v = ⟨ − 4 , 3 ⟩ . sketch the following: → v , − 3 → v , and 1 2 → v . (a) Sketch the vectors → v , → w , → v − → w, and 2→ v + →w . (b) Find a unit vector in the direction of →v .

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(a) The vector that starts at the origin, moves 2 units to the left, and 2 units down and then the vector that starts at the origin, moves 6 units to the left, and 8 units up.

(b) A vector pointing in the same direction as →v, but with a magnitude of 1. This is known as a unit vector.

Given the vector →v = ⟨-4,3⟩, we can sketch it on a coordinate plane by starting at the origin (0,0) and moving -4 units to the left (since the x-component is negative) and 3 units up (since the y-component is positive). This gives us a vector pointing in the direction of the upper left quadrant.

To sketch -3→v, we can simply multiply each component of →v by -3, resulting in the vector ⟨12,-9⟩. This vector will point in the same direction as →v but will be three times as long.

To sketch 1/2→v, we can multiply each component of →v by 1/2, resulting in the vector ⟨-2,3/2⟩. This vector will be half the length of →v and will point in the same direction.

To sketch the vectors →w, →v-→w, and 2→v+→w, we need to be given →w. Without this information, we cannot sketch these vectors. However, we can discuss how to manipulate vectors algebraically.

To add two vectors, we simply add their corresponding components.

→v+→w = ⟨-4,3⟩+⟨2,-5⟩ = ⟨-2,-2⟩.

This gives us the vector that starts at the origin, moves 2 units to the left, and 2 units down.

To subtract two vectors, we subtract their corresponding components.  →v-→w = ⟨-4,3⟩-⟨2,-5⟩ = ⟨-6,8⟩.

This gives us the vector that starts at the origin, moves 6 units to the left, and 8 units up.

To find a unit vector in the direction of →v, we first need to find the magnitude of →v, which is given by the formula

=> ||→v|| = √((-4)²+(3)²) = √(16+9) = √25 = 5

Then, we can find the unit vector by dividing each component of →v by its magnitude: →u = →v/||→v|| = ⟨-4/5,3/5⟩.

This gives us a vector pointing in the same direction as →v, but with a magnitude of 1. This is known as a unit vector.

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Consider a certain 2 × 2 linear system x, Ax, where A is a matrix of real numbers. Suppose ALL of its solutions reach a limit as t →-oo. Then the critical point (0,0) cannot be (a) a saddle point. (b) an improper node. (c) unstable (d) a spiral point.

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the answer is (a) a saddle point, (b) an improper node, and (c) an unstable node. The critical point (0,0) can be a stable node or a stable spiral point.

If all solutions of the 2 × 2 linear system x, Ax approach a limit as t → -∞, then the critical point (0,0) must be stable.

The critical point can be classified based on the eigenvalues of the matrix A. If the eigenvalues are real and have opposite signs, then the critical point is a saddle point. If the eigenvalues are real and have the same sign, then the critical point is a node, which can be either stable or unstable depending on the sign of the eigenvalues. If the eigenvalues are complex conjugates, then the critical point is a spiral point, which can also be either stable or unstable depending on the real part of the eigenvalues.

However, if all solutions of the system approach a limit as t → -∞, then the eigenvalues of A must have negative real parts. Otherwise, the solution would diverge as t → -∞. This means that the critical point (0,0) is either a stable node or a stable spiral point, but cannot be a saddle point, an improper node, or an unstable node.

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The Union Bank of Switzerland (UBS) produces regular reports on the prices and earnings in major cities throughout the world. Included in this report are the prices of basic commodities, reported in minutes of labor, including 1 kg of rice, a 1 kg loaf of bread, and a Big Mac, for 54 major cities around the world. An analyst is interested in understanding how prices have changed since the global financial crisis in 2007–2008. To do this, they wish to use the price of a Big Mac in 2003 to predict the price of a Big Mac in 2009.
Reference: Ref 10-4
The response variable is the:
a- name of the city
b- year
c- price of Big Mac in 2003
d- Price of Big Mac in 2009

Answers

This comparison can help identify trends, changes in Purchasing power, and potential correlations between the two variables. Furthermore, this analysis can provide valuable insights into the resilience and recovery of various economies in the aftermath of the crisis.

The Union Bank of Switzerland (UBS) conducts research on the prices and earnings in major cities worldwide, providing valuable data on the cost of living. This includes the prices of basic commodities such as 1 kg of rice, a 1 kg loaf of bread, and a Big Mac, measured in minutes of labor across 54 major cities. This information can be useful for analysts to study economic trends and changes in purchasing power.
In the context of the global financial crisis that occurred in 2007-2008, an analyst is interested in understanding how the prices have evolved since then. To achieve this, they intend to use the price of a Big Mac in 2003 (variable "c") to predict the price of a Big Mac in 2009 (variable "d").
By comparing the prices of Big Macs in 2003 and 2009, the analyst can analyze the impact of the financial crisis on the cost of living in different cities. This comparison can help identify trends, changes in purchasing power, and potential correlations between the two variables. Furthermore, this analysis can provide valuable insights into the resilience and recovery of various economies in the aftermath of the crisis.

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The Union Bank of Switzerland (UBS) produces regular reports on global prices and earnings in major cities. These reports include information on basic commodities such as rice, bread, and Big Macs. An analyst is interested in understanding how the prices of Big Macs have changed since the global financial crisis in 2007-2008.

To do this, they plan to use the price of a Big Mac in 2003 to predict the price in 2009. This approach is known as a predictive model, which involves using past data to forecast future outcomes. By analyzing the changes in the price of a Big Mac over time, the analyst can gain insight into how the financial crisis impacted global commodity prices.
The analyst can use the Union Bank of Switzerland's (UBS) reports on commodity prices to investigate the change in Big Mac prices between 2003 and 2009, in relation to the global financial crisis. To do this, they should gather data on the price of a Big Mac (c) in 2003 for each of the 54 major cities, and compare it to the price of a Big Mac (d) in 2009. By analyzing the relationship between these two variables (c and d), the analyst can identify trends and patterns, allowing them to understand how the financial crisis impacted Big Mac prices across different cities in Switzerland and globally.

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convert 1010 from excess eight representation to its equivalent base ten binary form:

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The base ten binary form of 1010 in excess eight representation is 10.

What is the equivalent base ten binary form of 1010 in excess eight representation?

To convert 1010 from excess eight representation to its equivalent base ten binary form, we need to subtract the bias value, which in this case is 8, from the given number.

Starting with 1010, we subtract 8 from it:

1010 - 8 = 1002

The resulting number, 1002, represents the base ten binary form equivalent of 1010 in excess eight representation.

It consists of the digits 1 and 0, which correspond to the binary place values of 2 and 1, respectively.

In excess eight representation, the bias value is added to the actual value to obtain the final representation.

Therefore, by subtracting the bias, we convert it back to its base ten binary form.

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The ellipse can be drawn with parametric equations. Assume the curve is traced clockwise as the parameter increases. If x = 2 cos(t) then y =

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When x = 2 cos(t), the parametric equation for y in this ellipse is y = -b sin(t), assuming the curve is traced clockwise as the parameter increases.

To find the parametric equation for y in an ellipse where x = 2 cos(t) and the curve is traced clockwise as the parameter increases, you can follow these steps:

1. Remember that the general parametric equations for an ellipse with a horizontal semi-major axis of length "a" and a vertical semi-minor axis of length "b" are x = a cos(t) and y = b sin(t).

2. In your case, you are given x = 2 cos(t), so the horizontal semi-major axis length "a" is 2.

3. Since the curve is traced clockwise as the parameter increases, we need to use a negative sign for the sine function to achieve the clockwise direction.

4. Therefore, the parametric equation for y in this ellipse is y = -b sin(t), where "b" is the length of the vertical semi-minor axis.

So, when x = 2 cos(t), the parametric equation for y in this ellipse is y = -b sin(t), assuming the curve is traced clockwise as the parameter increases. Keep in mind that you'll need to determine the value of "b" based on the specific ellipse you're working with.

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evaluate the expression under the given conditions. tan(2); cos() = 7 25 , in quadrant i

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The required answer is the value of tan(2) is approximately -2352/3669.

To evaluate the expression under the given conditions, we will first determine the value of sin() using the Pythagorean identity and then use the double-angle formula for tan(2).
A Quadrant is circular sector of equal one quarter of a circle ,or  a half semicircle. A sector of two-dimensional cartesian  coordinate system.  The Pythagorean identity, are useful expression involving the function need to simplified.


Given: cos() = 7/25, and is in Quadrant I.
Step 1: Find sin()
Since we are in Quadrant I, sin() is positive. Using the Pythagorean identity, sin^2() + cos^2() = 1, we can find sin().
sin^2() + (7/25)^2 = 1
sin^2() = 1 - (49/625)
sin^2() = (576/625)
sin() = √(576/625) = 24/25

we  are called the Pythagorean identity is  Pythagorean trigonometric identity, is expression A to B .

The same value for all variables within certain range. Angle is double or multiply by 2 so we called double- angle.

Step 2: Find tan(2) using the double-angle formula
The double-angle formula for tangent is: tan(2) = (2 * tan()) / (1 - tan^2())
First, we find tan():
tan() = sin() / cos() = (24/25) / (7/25) = 24/7
Now, use the formula for tan(2):
tan(2) = (2 * (24/7)) / (1 - (24/7)^2)
tan(2) = (48/7) / (1 - 576/49)
tan(2) = (48/7) / ((49 - 576) / 49)
tan(2) = (48/7) * (49 / (-527))
tan(2) = (-2352 / 3669)
So, under the given conditions, the value of tan(2) is approximately -2352/3669.

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what type of quadrilateral is PQRS i: 3.2.2.The value of× if PS=15 units 3.2.3 The coordinates of T, the midpoint of PS PORS. - The value of y. The coordinates of W, a point on SP such that PQRW is 3.2.5 P(x:-9) S(10; 3)​

Answers

The type of quadrilateral PQRS is a trapezium. A trapezium is a quadrilateral with one pair of parallel sides. In this case, the parallel sides are PQ and SR.

How to explain the information

To find the value of x, we can use the distance formula. The distance formula states that the distance between two points is equal to the square root of the difference of their x-coordinates squared plus the difference of their y-coordinates squared.

In this case, we have the following:

PQ = √((x - 10)² + ((-9) - 3)²

We are given that PS = 15 units, so we can set the above equation equal to 15 and solve for x.

15 = √((x - 10)² + ((-9) - 3)²)

225 = (x - 10)² + 144

225 = x² - 20x + 100 + 144

(x - 15)(x - 5) = 0

Therefore, x = 15 or x = 5.

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sketch the region bounded by the curves 2x2 y=202x2 y=20 and x4−y=4x4−y=4, then find the area of the region.

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The area of the region bounded by the curves is approximately 72.75 square units.

What is parabola?

A parabola is the portion of a right circular cone cut by a plane perpendicular to the cone's generator. It is a locus of a point that moves such that the separation between it and a fixed point (focus) or fixed line (directrix) is the same.

To sketch the region bounded by the curves 2x² - y = 20 and x⁴ - y = 4, we can begin by graphing each equation separately.

First, the equation 2x² - y = 20 can be rearranged to solve for y:

y = 2x² - 20

This is a downward-facing parabola that opens towards the vertex at (0, -20).

Next, the equation x⁴ - y = 4 can be rearranged to solve for y:

y = x⁴ - 4

This is an upward-facing parabola that opens towards the vertex at (0, -4).

To find the intersection points of the two curves, we can set the right-hand sides of the equations equal to each other:

2x² - y = 20

x⁴ - y = 4

Substituting y from the second equation into the first equation, we get:

2x² - (x⁴ - 4) = 20

Simplifying and rearranging, we get:

x⁴ - 2x² - 24 = 0

Factoring, we get:

(x² - 4)(x² + 6) = 0

This gives us four solutions:

x = ±2 and x = ±√6

Substituting these values of x into either of the original equations, we can find the corresponding y-values:

When x = 2, y = 4

When x = -2, y = 36

When x = √6, y = 2(6)² - 20 = 32

When x = -√6, y = 2(6)² - 20 = 32

So the intersection points are (2, 4), (-2, 36), (√6, 32), and (-√6, 32).

To sketch the region bounded by the curves, we can plot the two curves and shade the area between them:

The area of this region can be found by integrating the difference between the two curves with respect to x:

A = ∫[√6, 2] [(x⁴ - 4) - (2x² - 20)] dx

Simplifying, we get:

A = ∫[√6, 2] (x⁴ - 2x² + 16) dx

Integrating term by term, we get:

A = [x⁵/5 - 2x³/3 + 16x]√6 to 2

Evaluating this expression, we get:

A ≈ 72.75

So, the area of the region bounded by the curves is approximately 72.75 square units.

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Gasoline is pouring into a vertical cylindrical tank of radius 3 feet. When the depth of the gasoline is 4 feet, the depth is increasing at 0.2 ft/sec at that instant?

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The volume of gasoline in the tank is increasing at a rate of 1.8π cubic feet per second when the depth of the gasoline is 4 feet and the depth is increasing at a rate of 0.2 ft/sec.

We first need to calculate the volume of the tank. Since it is a vertical cylindrical tank, we can use the formula V = πr^2h, where V is the volume, r is the radius, and h is the height or depth of the gasoline.

So, the volume of the tank is V = π(3^2)h = 9πh cubic feet.

Next, we need to find the rate at which the volume of gasoline is increasing.

This can be done by using the formula dV/dt = πr^2dh/dt, where dV/dt is the rate of change of volume, and dh/dt is the rate of change of depth or height.

We know that dh/dt = 0.2 ft/sec when h = 4 ft. So, we can plug in these values and solve for dV/dt.
dV/dt = π(3^2)(0.2) = 1.8π cubic feet per second.

Therefore, the volume of gasoline in the tank is increasing at a rate of 1.8π cubic feet per second when the depth of the gasoline is 4 feet and the depth is increasing at a rate of 0.2 ft/sec.

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I went to the store with $30. I spent 1/10 of it. How much money did I spend?

A-$3.00
B-$10.00
C-$3.50
D-$2.00

Answers

Answer:

$3.00

Step-by-step explanation:

$30 x (1/10) = $3.00

[Just another way to think about this - - - you spent $1 out of every $10. You had $30, which is 3 $10's. So For each $10, you spent $1, so for $30, you spent $3.00.]

determine whether the series converges or diverges. if it is convergent, find the sum. (if the quantity diverges, enter diverges.)5 1 15 125 $$ correct: your answer is correct.

Answers

To determine whether the series converges or diverges, we can use the ratio test. the sum of the series is 25/4.



The ratio test states that if the limit of the absolute value of the ratio of the (n+1)th term to the nth term as n approaches infinity is less than 1, then the series converges. If it is greater than 1, the series diverges. If it is equal to 1, the test is inconclusive.

Let's apply the ratio test to this series:

lim (n->∞) |(n+1)^5 / n^5| = lim (n->∞) |(1 + 1/n)^5|

Using L'Hopital's rule, we can evaluate this limit as follows:

lim (n->∞) |(1 + 1/n)^5| = lim (n->∞) (5/n^2) / [(1 + 1/n)^5 * ln(1 + 1/n)]

= lim (n->∞) (5/n^2) / [1 + 5/n + O(1/n^2)]

= 0

Since the limit is less than 1, the series converges. To find the sum, we can use the formula for a geometric series:

S = a/(1-r)

where a is the first term and r is the common ratio.

In this case, a = 5 and r = 1/5, so

S = 5/(1 - 1/5) = 25/4

Therefore, the sum of the series is 25/4.

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Evaluate the following logical expressions for all combinations of variables. (a) F1 = A + B + C (b) F2 (B) (C) (c) F3 = A +B +C (d) F4 = ABC (e) Fs ABC+(B+C)

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There seems to be an incomplete question as there are missing logical expressions for (b), (c), and (e). Could you please provide the missing information?

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To convert 345 milliliters to liters, which proportion should you use? What is the value of i 20+11-1i-i True/False: there exists a single technique for designing algorithms; we can solve all the computational problems with that single technique. In the space below, write MATLAB code that defines a variable avedogsperyear that contains the average number of dogs born each year. Consider the following reaction: 2NO2(g) N2O4(g) You may want to reference (Pages 832 - 836) Section 19.7 while completing this problem. Using the following data, calculate G at 298 K. G(NO2(g)) = 51.84 kJ/mol , G(N2O4(g)) = 98.28 kJ/mol . Express the free energy in kilojoules to two decimal places. G G = kJ You put k keys into a hash table with m hash buckets. We assume that the hash function is good enough that youcan treat the destination of each key as independently uniformly random. What is the probability that there are nocollisions at all, i.e., that all keys end up in different positions of the array? Show your work as you derive your answer. The most serious blow to Lyndon Johnson's Vietnam policy was the ___ ___ of 1968. What is the best strategy when dealing with a hostile audience?A. Stress points on which you and your listeners disagree.B. Ignore the hostility.C. Acknowledge the listeners' negative feelings.D. Make listeners feel maligned rather than respected. state_diagram : process(clk, reset) begin if reset = '1' then y the major reason for the juvenile court's ________ is that it has traditionally focused not on the act committed by the juvenile, but on the whole child. pick all appropriate answers that make the statement true. the series [infinity] (2n)! (n!)2 n=0 For the following sequential circuit: Assume that new values of the inputs X and Y become available on the trailing edge of the clock. Assume the D Flip-Flops are trailing edge triggered. Assume all D Flip-Flops are initialized to 0. Assume the OR gate has a propagation delay of 1.5ns, the AND gates a delay of 2.0ns, and the inverters have a delay of 1.0ns. Assume the set-up time for each of the D Flip-Flops (Tsetup) is 1.0 ns Assume the propagation delay for the D Flip-Flops (Clk Q ) is 0.75 ns Assume that OUT2 needs to be in a stable state before the trailing edge of a clock cycle Find an expression for the next state of the output OUT1* in terms the inputs A and B and the present states of the outputs OUT1 and OUT2 Find an expression for the next state of the output OUT2* in terms the inputs A and B and the present states of the outputs OUT1 and OUT2 Complete the state table for this circuit. What is the maximum logic delay (Tlogic) in this circuit? Under what conditions does this maximum logic delay occur? What is the minimum clock period that this circuit can tolerate without risking an incorrect or metastable state? What is the maximum clock frequency that this circuit can tolerate without risking an incorrect or metastable state? What is the maximum hold time associated with D Flip-Flop to guarantee that the circuit does not enter into an incorrect or metastable state? 8. What is the 2-part naming system used to givean organism its scientific name?a. Binomial Naming Systemb. Dinomial Naming Systemc. Binomial Nomenclature when a process requests pages, linux loads them into memory. when the kernel needs the memory space, the pages are released using a most recently used (mru) algorithm. T/F the yoga sage patanjali is believed to have assembled a collection of yoga theories and practices known as the 8 yoga ____. Fit a quadratic polynomial to the data points (0,27), (1,0),(2,0),(3,0), using least squares. Sketch the solution. Light falls on a pair of slits 0.00177 cm apart.The slits are 88.5 cm from the screen.Thefirst-order bright line is 1.76 cm from thecentral bright line.What is the wavelength of the light you can chew through very tough objects with your incisors because they exert a large force on the small area of a pointed tooth. what pressure in pa can you create by exerting a force of 390 n with your tooth on an area of 1.14 mm2? T/F: global competition has put more power in the hands of the seller. Theorem: For any real number x, if 0 < x 0 Which facts are assumed and which facts are proven in a proof by contrapositive of the theorem? (a) Assumed: 0 < x and x < 3 Proven: 15 - 8x + x2 > 0 (b) Assumed: 0 < x or x 0 (c) Assumed: 15 - 8x + x2 < 0 Proven: 0 < x and x > 3 (d) Assumed: 15 - 8x + x2 < 0 Proven: x < 0 or x > 3