If n is a positive integer, prove that (In x)" dx = (−1)ªn! If f(x) = sin(x³), find f(15) (0).

Answers

Answer 1

The first part of the question asks to prove that the integral of (ln x)^n dx, where n is a positive integer, is equal to (-1)^(n+1) * n!. The second part of the question asks to find f(15) when f(x) = sin(x^3).

To prove that the integral of (ln x)^n dx is equal to (-1)^(n+1) * n!, we can use integration by parts. Let u = (ln x)^n and dv = dx. By applying integration by parts repeatedly, we can derive a recursive formula that involves the integral of (ln x)^(n-1) dx. Using the initial condition of (ln x)^0 = 1, we can prove the result (-1)^(n+1) * n! for all positive integers n. To find f(15) when f(x) = sin(x^3), we substitute x = 15 into the function f(x) and evaluate sin(15^3).

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Related Questions

To test the hypothesis that the population standard deviation sigma-11.4, a sample size n-16 yields a sample standard deviation 10.135. Calculate the P-value and choose the correct conclusion. Your answer: O The P-value 0.310 is not significant and so does not strongly suggest that sigma-11.4. The P-value 0.310 is significant and so strongly suggests that sigma 11.4. The P-value 0.348 is not significant and so does not strongly suggest that sigma 11.4. O The P-value 0.348 is significant and so strongly suggests that sigma-11.4. The P-value 0.216 is not significant and so does not strongly suggest that sigma-11.4. O The P-value 0.216 is significant and so strongly suggests that sigma 11.4. The P-value 0.185 is not significant and so does not strongly suggest that sigma 11.4. O The P-value 0.185 is significant and so strongly suggests that sigma 11.4. The P-value 0.347 is not significant and so does not strongly suggest that sigma<11.4. The P-value 0.347 is significant and so strongly suggests that sigma<11.4.

Answers

To test the hypothesis about the population standard deviation, we need to perform a chi-square test.

The null hypothesis (H0) is that the population standard deviation (σ) is 11.4, and the alternative hypothesis (Ha) is that σ is not equal to 11.4.

Given a sample size of n = 16 and a sample standard deviation of s = 10.135, we can calculate the chi-square test statistic as follows:

χ^2 = (n - 1) * (s^2) / (σ^2)

= (16 - 1) * (10.135^2) / (11.4^2)

≈ 15.91

To find the p-value associated with this chi-square statistic, we need to determine the degrees of freedom. Since we are estimating the population standard deviation, the degrees of freedom are (n - 1) = 15.

Using a chi-square distribution table or a statistical software, we can find that the p-value associated with a chi-square statistic of 15.91 and 15 degrees of freedom is approximately 0.310.

Therefore, the correct answer is:

The p-value 0.310 is not significant and does not strongly suggest that σ is 11.4.

In conclusion, based on the p-value of 0.310, we do not have strong evidence to reject the null hypothesis that the population standard deviation is 11.4.

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differential geometry Q: Find out the type of curve : 1) 64² + 204 = 16x-4x² - 4x4-4 -2) Express the equation 2 = x² + xy² in Parametric form= 3) Find the length of the Spiral, If S x = acos (t), y = asin(t), z = bt, ost $25 ¿

Answers

The length of the given spiral is π/2 √(a² + b²).

1. Type of Curve: The given equation is 64² + 204 = 16x-4x² - 4x4-4 - 2.

To determine the type of curve, we first need to write it in standard form.

We can use the standard formula: Ax² + 2Bxy + Cy² + 2Dx + 2Ey + F = 0.

Upon rearranging the given equation, we get 4x⁴ - 16x³ + 16x² + 204 - 4096 = 0

=> 4(x² - 2x)² - 3892 = 0.

This can be simplified to (x² - 2x)² = 973, which is the standard equation of a conic section called Hyperbola.

Hence, the given curve is a hyperbola.

2. Parametric Form: The given equation is 2 = x² + xy². We need to write this equation in parametric form.

To do so, we can set x = t.

Thus, the equation becomes 2 = t² + ty².

We can further rearrange it as y² = 2/(t + y²).

Hence, we can express x and y in terms of a single parameter t as follows: x = t, y = √(2/(t + y²)).

This is the parametric form of the given equation.

3. Length of Spiral: The given equation is S: x = acos(t), y = asin(t), z = bt, for 0 ≤ t ≤ π/2.

We need to find the length of the spiral. The length of a curve in space is given by the formula:

`L = ∫√(dx/dt)² + (dy/dt)² + (dz/dt)²dt`.

Upon differentiating the given equations, we get dx/dt = -a sin(t), dy/dt = a cos(t), and dz/dt = b.

Upon substituting these values in the formula, we get:

L = ∫√[(-a sin(t))² + (a cos(t))² + b²] dt

=> L = ∫√(a² + b²) dt

=> L = √(a² + b²) ∫dt (from 0 to π/2)

=> L = π/2 √(a² + b²).

Therefore, the length of the given spiral is π/2 √(a² + b²).

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Find zw and zw. Leave your answers in polar form. z = 15(cos 24° + i sin 24°) w = 3(cos 10° i sin 10°) 13. (6 points) Raise the complex number to a power as indicated, and give your answer in standard a+bi form. [2(cos 5° + i sin 5°)] 14. (10 points) A ship at point A is sailing directly north. The navigator a lighthouse on some rocks at point R. The bearing from point A to the rocks is 24 degrees, as shown. The ship then sails 4.7 km north to point B. From point B, the bearing to the rocks is 57 degrees, as shown. Find the distance from B to R. R 570 B 4.7 km 24°

Answers

The polar form of the product zw is zw = 45(cos 34° + i sin 34°), and the polar form of the quotient zw is zw = 5(cos 14° + i sin 14°).

What are the polar forms of the products zw and zw?

To find the product of two complex numbers in polar form, we multiply their magnitudes and add their arguments.

To find the product zw, we multiply the magnitudes and add the arguments:

z = 15(cos 24° + i sin 24°)

w = 3(cos 10° + i sin 10°)

The magnitude of zw is the product of the magnitudes of z and w:

|zw| = |z| * |w| = 15 * 3 = 45

The argument of zw is the sum of the arguments of z and w:

arg(zw) = arg(z) + arg(w) = 24° + 10° = 34°

Therefore, zw = 45(cos 34° + i sin 34°) in polar form.

To find the quotient zw, we divide the magnitudes and subtract the arguments:

zw = |zw| * (cos arg(zw) + i sin arg(zw))

  = 45(cos 34° + i sin 34°)

Hence, zw = 45(cos 34° + i sin 34°) in polar form.

For the second part of the question:

Given:

Ship at point A sailing directly north.

Bearing from A to the rocks (point R) is 24 degrees.

Ship sails 4.7 km north to point B.

Bearing from B to the rocks is 57 degrees.

To find the distance from B to R, we can use the law of sines. Let d be the distance from B to R.

sin(57°) / d = sin(90° - 24°) / 4.7

Simplifying the equation, we have:

sin(57°) / d = cos(24°) / 4.7

Cross-multiplying, we get:

d = 4.7 * (sin(57°) / cos(24°))

Calculating the value, we find that d is approximately 6.31 km.

Therefore, the distance from B to R is approximately 6.31 km.

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The function f(x) = 2x³ H 30x² +962 +6 has one local minimum and one local maximum. Use a graph of the function to estimate these local extrema. This function has a local minimum at x = with output value: and a local maximum at x = with output value:

Answers

We have found the local maxima and minima of the function.

The given function is [tex]f(x) = 2x³ H 30x² + 962 + 6.[/tex]

Now, let's discuss how to estimate the local maxima and minima of the function.

Graphical representation of the given function:

Now, let's find the local minima and maxima of the function by observing the above graph from left to right:

Local minimum:

The point at which the function changes from decreasing to increasing is known as a local minimum.

Observe the graph from left to right, and we can see that the function changes from decreasing to increasing at around [tex]x = - 4.5[/tex].

Thus, the function has a local minimum at [tex]x = -4.5.[/tex]

Local maximum:

The point at which the function changes from increasing to decreasing is known as a local maximum.

Observe the graph from left to right, and we can see that the function changes from increasing to decreasing at around [tex]x = 2.2.[/tex]

Thus, the function has a local maximum at [tex]x = 2.2.[/tex]

Therefore, we have:

Local minimum:

The function has a local minimum at[tex]x = -4.5[/tex], with output value: [tex]f(-4.5) = -104.5[/tex]

Local maximum: The function has a local maximum at [tex]x = 2.2[/tex], with output value: [tex]f(2.2) = 1047.61[/tex]

Hence, we have found the local maxima and minima of the function.

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A researcher believes that 47.5% of people who grew up as the only child have an IQ score over 100. However, unknown to the researcher, this figure is actually 50%, which is the same as in the general population. To attempt to find evidence for the claim, the researcher is going to take a random sample of 400 people who grew up as the only child. Let ļ be the proportion of people in the sample with an IQ score above 100.

Answers

There is sufficient evidence to conclude that the population proportion is 50%.

What is the alternate hypothesis?

In a statistical inference experiment, the alternative hypothesis is a statement. It is opposed to the null hypothesis and is symbolized by Ha or H1. It is also possible to define it as an alternative to the null. An alternative theory is a proposition that a researcher is testing in hypothesis testing.

Here, we have

Given:

sample size, n =400

population proportion,p= 0.5

Significance level, α= 0.05

sample proportion

P = 0.475

Hypothesis test :

The null and alternative hypothesis is

H₀ : p = 0.5

Hₐ : p ≠ 0.5

Test statistic

Z = (P-p)/[tex]\sqrt{p(1-p)/n}[/tex]

Z = 0.475 - 0.5 /√(0.5(1-0.5 )/400

= -1.0

The test statistic is-1.0

P-value :

P-value =2P(Z > |Z|)

= 2 x P(z >|-1.0|)

= 0.3173

∴ P-value = 0.3173

since P-value is greater than the significance level,α = 0.05, we failed to reject the null hypothesis

Decision: fail to reject H₀

Hence,

There is sufficient evidence to conclude that the population proportion is 50%.

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Find and classify all critical points of the function f(x, y) = x³ + 2y¹ – In(x³y³)

Answers

To find and classify all critical points of the function f(x, y) = x³ + 2y - ln(x³y³), we need to calculate the partial derivatives with respect to x and y, set them equal to zero, and solve the resulting system of equations.

Then we analyze the critical points to determine their nature as local maxima, local minima, or saddle points.

To find the critical points, we calculate the partial derivatives:

∂f/∂x = 3x² - 3/x

∂f/∂y = 2 - 3/y

Setting both partial derivatives equal to zero, we have:

3x² - 3/x = 0 --> x³ = 1 --> x = 1

2 - 3/y = 0 --> y = 3/2

Thus, we have a critical point at (1, 3/2).

To classify the critical point, we calculate the second partial derivatives:

∂²f/∂x² = 6x + 3/x²

∂²f/∂y² = 3/y²

Evaluating the second partial derivatives at (1, 3/2), we get:

∂²f/∂x²(1, 3/2) = 6(1) + 3/(1)² = 9

∂²f/∂y²(1, 3/2) = 3/(3/2)² = 4

Since the second partial derivatives have different signs (9 is positive and 4 is positive), the critical point (1, 3/2) is a local minimum.

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A sculptor creates an arch in the shape of a parabola. When sketched onto a coordinate grid, the function f(x) = –2(x)(x – 8) represents the height of the arch, in inches, as a function of the distance from the left side of the arch, x. What is the height of the arch, measured 3 inches from the left side of the arch?

14 inches
15 inches
28 inches
30 inches

Answers

Answer: 30

Step-by-step explanation:

So the equation is f(3)=-2(3)(3-8)

-2*3=-6

-6(3-8)

-6(-5)

30

The height of the arch, measured 3 inches from the left side of the arch is 30 inches.

What is a parabola?

The path of a projectile under the influence of gravity follows a curve of this shape.

Given

A sculptor creates an arch in the shape of a parabola.

When sketched onto a coordinate grid, the function f(x) = –2(x)(x – 8) represents the height of the arch, in inches, as a function of the distance from the left side of the arch, x.

Therefore,

The height of the arch, measured 3 inches from the left side of the arch is:

[tex]\text{f(x)}\sf =-2\text{(x)}(\text{x}-\sf 8)[/tex]

[tex]\text{f(\sf 3)}\sf =-2\text{(\sf 3)}(\text{\sf 3}-\sf 8)[/tex]

[tex]\text{f(\sf -3)}\sf =\text{(\sf -6)}(\text{\sf -5})[/tex]

[tex]\text{f(\sf -3)}\sf =\sf 30[/tex]

Hence, the height of the arch, measured 3 inches from the left side of the arch is 30 inches.

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The histogram summarizes the grades out of 50 of all students who wrote a exam.
a. How many class intervals were used in the histogram?
b. How many students wrote exam?
c. What is the modal class?
(click to select)5 - 1010 - 1515 - 2020 - 2525 - 3030 - 3535 - 4040 - 4545 - 5050 - 55
d. What is the midpoint of the last class interval?
e. How many students scored between above 15 but no more than 20?
f. What percent of students scored above 40? %
g. What percent of students scored no more than 30? %
h. Is it possible to determine individual student grades from this histogram?
(click to select)YesNo

Answers

There are a total of 8 class intervals used in the histogram.

The number of students who wrote the exam is not given.

The modal class interval is 15 - 20. The midpoint of the last class interval is 52.5.9 students scored between above 15 but no more than 20.15% of students scored above 40.80% of students scored no more than 30.

It is not possible to determine individual student grades from this histogram.

The modal class interval is the interval with the highest frequency. The interval 15 - 20 has the highest frequency of 20.

Hence, the modal class interval is 15 - 20.

The last class interval is 45 - 50. The midpoint of this interval can be found by adding the upper limit and lower limit and dividing the sum by 2. Midpoint of 45 - 50 = (45 + 50) / 2 = 47.5.

Hence, the midpoint of the last class interval is 47.5.

e. The frequency of the class interval 15 - 20 is 20.

Hence, 20 students scored between 15 and 20. The frequency of the class interval 10 - 15 is 9. Hence, 9 students scored between 10 and 15. So, 9 students scored above 15 but no more than 20.

f. The frequency of the class interval 40 - 45 is 4. The frequency of the class interval 45 - 50 is 3.

Hence, 7 students scored above 40. Total number of students is not given.

So, the percentage of students scored above 40 cannot be calculated.

The frequency of the class interval 0 - 5 is 2. The frequency of the class interval 5 - 10 is 5.

The frequency of the class interval 10 - 15 is 9. The frequency of the class interval 15 - 20 is 20.

The frequency of the class interval 20 - 25 is 10. The frequency of the class interval 25 - 30 is 8. Hence, the number of students who scored no more than 30 is 2 + 5 + 9 + 20 + 10 + 8 = 54.The total number of students who took the exam is not given.

Hence, the percentage of students scored no more than 30 cannot be calculated.

h. No, it is not possible to determine individual student grades from this histogram. We can only find the frequency of students who scored marks within certain intervals.

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Use statistical tables to find the following values (i) fo.75, 6 15 = (ii) X²0.975, 12 = - (iii) t 0.9, 22 = - (iv) Z 0.025 = - (v) fo.05, 9, 10 = - (vi) k = when n = 15, tolerance level is 99% and confidence level is 95% assuming two-sided tolerance interval.

Answers

(i) F0.75,6,15: Use the F-distribution table to find the value of F for cumulative probability 0.75 and degrees of freedom 6 and 15.

(ii) X²0.975,12: Use the chi-square distribution table to find the value of chi-square for cumulative probability 0.975 and degrees of freedom 12.

(iii) t0.9,22: Use the t-distribution table to find the value of t for cumulative probability 0.9 and degrees of freedom 22.

(iv) Z0.025: Use the standard normal distribution table to find the value of Z for cumulative probability 0.025.

(v) F0.05,9,10: Use the F-distribution table to find the value of F for cumulative probability 0.05 and degrees of freedom 9 and 10.

(vi) k: Use a tolerance factor table or statistical software to find the value of k for a given sample size, tolerance level, and confidence level in a two-sided tolerance interval.

(i) To find the value of F0.75,6,15, we use the F-distribution table. The first number, 0.75, represents the cumulative probability, and the second and third numbers, 6 and 15, represent the degrees of freedom. In the F-distribution table, we locate the row corresponding to the numerator degrees of freedom (6) and the column corresponding to the denominator degrees of freedom (15). The intersection of this row and column gives us the value of F0.75,6,15.

(ii) To find the value of X²0.975,12, we use the chi-square distribution table. The number 0.975 represents the cumulative probability, and the number 12 represents the degrees of freedom. In the chi-square distribution table, we locate the row corresponding to the degrees of freedom (12) and the column that is closest to 0.975. The value at the intersection of this row and column gives us X²0.975,12.

(iii) To find the value of t0.9,22, we use the t-distribution table. The number 0.9 represents the cumulative probability, and the number 22 represents the degrees of freedom. In the t-distribution table, we locate the row corresponding to the degrees of freedom (22) and the column that is closest to 0.9. The value at the intersection of this row and column gives us t0.9,22.

(iv) To find the value of Z0.025, we use the standard normal distribution table. The number 0.025 represents the cumulative probability. In the standard normal distribution table, we locate the row corresponding to the desired cumulative probability (0.025) and find the value in the column labeled "Z". This value gives us Z0.025.

(v) To find the value of F0.05,9,10, we use the F-distribution table. The first number, 0.05, represents the cumulative probability, and the second and third numbers, 9 and 10, represent the degrees of freedom. Similar to (i), we locate the row corresponding to the numerator degrees of freedom (9) and the column corresponding to the denominator degrees of freedom (10) in the F-distribution table. The intersection of this row and column gives us F0.05,9,10.

(vi) To find the value of k when n = 15, the tolerance level is 99%, and the confidence level is 95% for a two-sided tolerance interval, we need to use a tolerance factor table or a statistical software package that provides tolerance factor calculations. The tolerance factor table will have rows for different confidence levels and columns for different tolerance levels. In this case, we look for the row corresponding to a confidence level of 95% and the column corresponding to a tolerance level of 99%. The value at the intersection of this row and column gives us the value of k.

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find the value of z such that 0.13 of the area lies to the left of z. round your answer to two decimal places.

Answers

The value of z such that 0.13 of the area lies to the left of z is z = (1.14). Rounding this to two decimal places gives us z = 1.14 (rounded to two decimal places).

A z-score (aka, a standard score) indicates how many standard deviations an element is from the mean.

A z-score can be calculated from the following formula: z = (X - μ) / σwhere:z = the z-scores = the value of the elementμ = the population meanσ = the standard deviation

Let z be the value such that 0.13 of the area lies to the left of z.

This means that 87% (100% - 13%) of the area lies to the right of z.

Using the standard normal distribution table, we find the z-score that corresponds to an area of 0.87.

We can also solve this using the inverse normal distribution function of a calculator or statistical software.

The z-score that corresponds to an area of 0.87 is 1.14.

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Compute the first derivative of the following functions:
(a) In(x^10)
(b) tan-¹(x²)
(c) sin^-1(4x)

Answers

The first derivative of sin^(-1)(4x) is 4 / √(1 - 16x^2).The first derivative of ln(x^10) is 10/x and first derivative of tan^(-1)(x^2) is 2x / (1 + x^4).

To compute the first derivative of the given functions, we can apply the chain rule and the derivative rules for logarithmic, inverse trigonometric, and trigonometric functions.

(a) For f(x) = ln(x^10):

Using the chain rule, we have:

f'(x) = (1/x^10) * (10x^9)

     = 10/x

Therefore, the first derivative of ln(x^10) is 10/x.

(b) For f(x) = tan^(-1)(x^2):

Using the chain rule, we have:

f'(x) = (1/(1 + x^4)) * (2x)

     = 2x / (1 + x^4)

Therefore, the first derivative of tan^(-1)(x^2) is 2x / (1 + x^4).

(c) For f(x) = sin^(-1)(4x):

Using the chain rule, we have:

f'(x) = (1 / √(1 - (4x)^2)) * (4)

     = 4 / √(1 - 16x^2)

Therefore, the first derivative of sin^(-1)(4x) is 4 / √(1 - 16x^2).

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Consider logistic difference equation xn + 1 = rxn( 1 - xn) = f(x), 0 < = xn< = 1. Show that expression f(f(x))-x = 0 can be factorized into rx- (1+r) x + 1+r/r) = 0 Show that x1 = 1 + r + {1 + r)(r - 3)/ 2r x2 = 1 + r - (1+ r)(r - 3)/2 rare a two-cycle solution to Eq. (1).

Answers

Main Answer: f(f(x))-x = 0 can be factorized into rx- (1+r) x + 1+r/r) = 0, and x1 = 1 + r + {1 + r)(r - 3)/ 2r, x2 = 1 + r - (1+ r)(r - 3)/2r are two-cycle solution to Eq. (1).

Supporting Explanation: Given that the logistic difference equation is xn + 1 = rxn( 1 - xn) = f(x), 0 < = xn< = 1. Therefore, f(x) = rxn(1-xn).So, f(f(x)) = rf(x)(1-f(x)) and x1, x2 are the two-cycle solution to Eq. (1).Therefore, f(x1) = x2 and f(x2) = x1.Using the quadratic formula, the factorization of f(f(x))-x = 0 can be found as:r(f(x))² - (r+1)(f(x)) + 1+r/r = 0Thus,f(f(x))-x = 0 can be factorized into rx- (1+r) x + (1+r)/r = 0.Now, we will solve for the two-cycle solution to Eq. (1) such that x1 = 1 + r + {1 + r)(r - 3)/ 2r and x2 = 1 + r - (1+ r)(r - 3)/2r.For x1:r(1+ r + {1 + r)(r - 3)/ 2r)(1 - (1 + r + {1 + r)(r - 3)/ 2r))= 1 + r + {1 + r)(r - 3)/ 2rFor x2:r(1+ r - (1+ r)(r - 3)/2r)(1 - (1+ r - (1+ r)(r - 3)/2r)) = 1 + r - (1+ r)(r - 3)/2rHence, x1 = 1 + r + {1 + r)(r - 3)/ 2r and x2 = 1 + r - (1+ r)(r - 3)/2r are the two-cycle solution to Eq. (1).

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A normal distribution has as mean 100 and as standard deviation 10. The P (X<70) = A. 0.4938 B. 0.00621 C. 0.00135 D.. 0.9938

Answers

To find the probability [tex]\( P(X < 70) \)[/tex] in a normal distribution with a mean of 100 and a standard deviation of 10, we can calculate the z-score and use the standard normal distribution table or a statistical software.

The z-score is calculated using the formula:

[tex]\[ z = \frac{{X - \mu}}{{\sigma}} \][/tex]

where [tex]\( X \)[/tex] is the value we are interested in (70 in this case), [tex]\( \mu \)[/tex] is the mean (100), and [tex]\( \sigma \)[/tex] is the standard deviation (10).

Substituting the values into the formula, we have:

[tex]\[ z = \frac{{70 - 100}}{{10}} \][/tex]

Simplifying the expression:

[tex]\[ z = \frac{{-30}}{{10}} \][/tex]

[tex]\[ z = -3 \][/tex]

Now, we can use the standard normal distribution table or a statistical software to find the corresponding probability. Looking up the z-score of -3 in the table or using software, we find that the probability [tex]\( P(Z < -3) \)[/tex] is approximately 0.00135.

Therefore, the correct answer is C. 0.00135.

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Gabrielle works in the skateboard department at Action Sports Shop. Here are the types of wheel sets she has sold so far today

Answers

The probability of making a street set sale next is 3/5

Sample Space

Given that wheel sets sold so far:

street, longboard, street, cruiser, street, cruiser, street, street, longboard, street

We can create a sales table :

Wheel set ___ Number sold

Street _________ 6

longboard _____ 2

cruiser ________ 2

Probability of an event

probability is the ratio of the required to the total possible outcomes of a sample or population.

P(street) = Number of streets sold / Total sets

P(street) = 6/10 = 3/5

Therefore, the probability that next sale will be a street set is 3/5

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A pack of 52 ordinary playing cards is thoroughly shufled and dealt in a row. Denote the order displayed by E. This procedure will be repeated using a second deck of cards. What is the probability that the order E is repeated? [Note: Use Stirling's approximation of n! to get a numerical result.] Two auxiliary decks are now used. Because the probability that a single deck matches the original deck is so rare, assume that only exactly the original order E. What is the probability of a match in this case. of ways that the two extra decks could show a single match with the original ordering and divide that by the total number of possible results obtained by using two decks.] one of the extra decks is required to match [Hint: count the number Repeat the second part of this problem using three auxiliary decks of cards. If one trillion planets each contain one trillion people, and each of these people have one trillion decks of cards each of which are dealt out one trillion times, what is the probability that the event E will be repeated? Has the event E ever happened before in all of human history?

Answers

The probability of having repeated order E using three auxiliary decks of cards is 7.1 x 10^-5 or 0.000071.

In this problem, we have to calculate the probability of having repeated order E after dealing a thoroughly shuffled pack of 52 ordinary playing cards. Here, Stirling's approximation of n! will be used to obtain numerical results. We have to calculate the probability of a match in case we use two or three auxiliary decks.Let's first calculate the probability of having the order E repeated using two auxiliary decks of cards.

Probability of repeated order E using two auxiliary decks of cardsLet P2 be the probability of having the order E repeated using two auxiliary decks of cards.To obtain the repeated order E, the auxiliary decks should show a single match with the original ordering.

Total number of possible results obtained by using two decks = 52 * 52 = 2704.The number of ways that the two extra decks could show a single match with the original ordering = 52.For each shuffle of the original pack, there are 51! possible orderings. So, for two shuffles, there are (51!)^2 possible orderings.

Using Stirling's approximation, we have:51! ≈ √(2π * 51) * (51/e)^51≈ 1.710^66Therefore, the probability P2 is:P2 = (52 * [(51!)^2]) / (2704 * 52)P2 = (52 * (1.710^66)^2) / (2704 * 52)P2 = (1.710^66)^2 / (52 * 52 * 52)P2 ≈ 0.02 = 2% (approximately)Thus, the probability of having repeated order E using two auxiliary decks of cards is 0.02 or 2%

Now, let's calculate the probability of having the order E repeated using three auxiliary decks of cards.Probability of repeated order E using three auxiliary decks of cardsLet P3 be the probability of having the order E repeated using three auxiliary decks of cards.

To obtain the repeated order E, the auxiliary decks should show a single match with the original ordering.Total number of possible results obtained by using three decks = 52 * 52 * 52 = 140,608.The number of ways that the three extra decks could show a single match with the original ordering = 52 * 51 = 2652.

For each shuffle of the original pack, there are 51! possible orderings. So, for three shuffles, there are (51!)^3 possible orderings.

Using Stirling's approximation, we have:51! ≈ √(2π * 51) * (51/e)^51≈ 1.710^66

Therefore, the probability

P3 is:P3 = (2652 * [(51!)^3]) / (140608 * 52 * 51)P3

= (2652 * (1.710^66)^3) / (140608 * 52 * 51)P3

= (1.710^66)^3 / (52 * 52 * 52 * 140608)P3

≈ 7.1 x 10^-5 or 0.000071.

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the following set of data is given 78, 79, 79, 79, 80, 82, 82, 85, 86, 88, 89, 92, 97. For this set of data find: a) The value of the median and the quartiles. b) The mean, mode and the standard deviation. c) Draw a suitably labelled box plot and determine the interquartile range. d) State if there is any type of skew

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a) Median: 82, Q1: 79, Q3: 88.5

b) Mean: 85.77, Mode: None, Standard Deviation: 5.64

c) Box Plot: Minimum: 78, Q1: 79, Median: 82, Q3: 88.5, Maximum: 97

d) Skewness: Positive skew

a) The value of the median and the quartiles:

First, let's arrange the data in ascending order: 78, 79, 79, 79, 80, 82, 82, 85, 86, 88, 89, 92, 97.

The median is the middle value of the data set. In this case, since the number of data points is odd (13), the median will be the value at the (13 + 1) / 2 = 7th position. So, the median is 82.

To find the quartiles, we divide the data set into four equal parts. The lower quartile (Q1) is the median of the lower half, and the upper quartile (Q3) is the median of the upper half.

Q1 = Median of the lower half = (79 + 79) / 2 = 79

Q3 = Median of the upper half = (88 + 89) / 2 = 88.5

b) The mean, mode, and the standard deviation:

The mean (average) is calculated by summing up all the values and dividing by the total count:

Mean = (78 + 79 + 79 + 79 + 80 + 82 + 82 + 85 + 86 + 88 + 89 + 92 + 97) / 13 = 85.77 (rounded to two decimal places)

The mode is the value(s) that appear most frequently in the data set. In this case, there is no mode since all the values occur only once.

The standard deviation measures the dispersion of the data points around the mean. To calculate the standard deviation, we need to calculate the variance first. The variance is the average of the squared differences between each data point and the mean.

Variance = [(78 - 85.77)² + (79 - 85.77)² + (79 - 85.77)² + (79 - 85.77)² + (80 - 85.77)² + (82 - 85.77)²+ (82 - 85.77)² + (85 - 85.77)²+ (86 - 85.77)² + (88 - 85.77)² + (89 - 85.77)² + (92 - 85.77)² + (97 - 85.77)²] / 13

= 31.81 (rounded to two decimal places)

Standard Deviation = √(Variance) = √(31.81) ≈ 5.64 (rounded to two decimal places)

c) Drawing a box plot and determining the interquartile range:

A box plot, also known as a box-and-whisker plot, displays the distribution of the data. It helps identify the median, quartiles, and any outliers.

The box plot consists of a rectangle (box) that represents the interquartile range (IQR) and "whiskers" that extend from the box to the minimum and maximum values that are not considered outliers. Outliers are typically represented as individual data points beyond the whiskers.

Here's a textual representation of the box plot for the given data:

Minimum: 78

Q1: 79

Median: 82

Q3: 88.5

Maximum: 97

d) Determining the skewness:

Skewness measures the asymmetry of the distribution. Positive skewness indicates a longer tail on the right side of the distribution, while negative skewness indicates a longer tail on the left side.

To determine the skewness, we can visually analyze the box plot. In this case, since the right whisker is longer than the left whisker, we can infer that the data has a positive skew, meaning it is skewed to the right.

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for a vector b = (1, −1, 2) and a plane p : x 3y 2z = 0 (a) compute a basis of p

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The answer of the given plane on vector is  basis of p is { (2, y, -1 - (3/2)y), (0, y, -3/2y) }.

Given, vector b = (1, −1, 2) and a plane p : x + 3y + 2z = 0

The plane p can be represented as (ax + by + cz = 0).

Comparing both the above expressions we get,

a = 1, b = 3, c = 2

Let’s find the basis for p.

To find the basis of p we need to find two linearly independent vectors lying on the plane p. Ax + By + Cz = 0

Solving for z, we get,

z = (-Ax - By) / CZ

= (-x - 3y) / 2Let x

= 2, then

z = (-2 - 3y) / 2z

= -1 - (3/2)y

Therefore the vector (2, y, -1 - (3/2)y) lies on the plane p.

Now, let x = 0, then z = (-3/2)y

Therefore the vector (0, y, -3/2y) lies on the plane p.

Therefore, basis of p is { (2, y, -1 - (3/2)y), (0, y, -3/2y) }.

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Morgan has completed the mathematical statements shown below. Which statements are true regarding these formulas? Select three options.

A = pi times r squared and C = 2 times pi times r. A = pi times r times r and C = pi times r times 2. A = (pi times r) times r and C = (pi times ) times 2.

Answers

Answer:

A=pi times r squared and C=pi times r times 2

2 1. A glassware company wants to manufacture water glasses with a shape obtained by rotating a 1 7 region R about the y-axis. The region R is bounded above by the curve y = +-«?, from below 8 2 by y = 16x4, and from the sides by 0 < x < 1. Assume each piece of glassware has constant density p. (a) Use the method of cylindrical shells to find how much water can a glass hold (in units cubed). (b) Use the method of cylindrical shells to find the mass of each water glass. (c) A water glass is only considered well-designed if its center of mass is at most one-third as tall as the glass itself. Is this glass well-designed? (Hints: You can use MATLAB to solve this section only. If you use MATLAB then please include the coding with your answer.] [3 + 3 + 6 = 12 marks]

Answers

The maximum amount of water a water glass can hold, obtained by rotating a region using the method of cylindrical shells, depends on the specific shape and dimensions of the region.

The maximum amount of water a water glass can hold, obtained by rotating a region using the method of cylindrical shells, depends on the specific shape and dimensions of the region?

The given problem involves finding the volume and mass of a water glass with a specific shape obtained by rotating a region about the y-axis. It also requires determining whether the glass is well-designed based on the center of mass.

To find the volume of the water glass using the method of cylindrical shells, we integrate the height of each shell multiplied by its circumference over the given region R.

To find the mass of each water glass, we multiply the volume obtained in part (a) by the constant density p.

To determine if the glass is well-designed, we need to compare the height of the center of mass to the height of the glass. This involves finding the center of mass of the glass and comparing it to one-third of the glass's height.

Note: The problem hints at using MATLAB for the calculation, so the student may be required to provide MATLAB code as part of their answer.

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A friend says, why would you find a 95% confidence interval when you have a 5% chance of being wrong? They go on to say they like their confidence intervals to have a confidence level of 99.99999%. Do you agree with them? Explain.

Answers

They prefer a confidence level of 99.99999%. However, it is important to understand the concept of confidence intervals and the trade-off between precision and certainty in statistical inference.

Confidence intervals provide a range of values within which a population parameter is likely to fall based on sample data. The commonly used 95% confidence level means that if we were to repeat the sampling process numerous times, approximately 95% of the resulting intervals would contain the true population parameter. This does not imply a 5% chance of being wrong in any given interval. Instead, it indicates that in the long run, we would expect 5% of intervals to not capture the true parameter.

The preference for a confidence level of 99.99999% reflects a desire for an extremely high level of certainty. While this may seem appealing, it is important to consider the practical implications. As the confidence level increases, the width of the confidence interval also increases. A 99.99999% confidence interval would be much wider than a 95% interval, resulting in a less precise estimate of the parameter. Moreover, obtaining such high levels of certainty often requires significantly larger sample sizes, making the analysis more time-consuming and costly.

In statistical inference, there is always a trade-off between precision and certainty. Higher confidence levels come at the expense of wider intervals and reduced precision. Therefore, the choice of confidence level depends on the specific requirements of the analysis and the acceptable balance between precision and certainty. While it is essential to consider the level of confidence carefully, opting for an excessively high confidence level may not always be the most practical or cost-effective approach.

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Solve the initial value problem below using the method of Laplace transforms.
y'' + 4y' - 12y = 0, y(0) = 2, y' (0) = 36

Answers

The solution to the initial value problem is y(t) = 5e^(-6t) + 4e^(2t).

The initial value problem y'' + 4y' - 12y = 0, y(0) = 2, y'(0) = 36 can be solved using the method of Laplace transforms.

We start by taking the Laplace transform of the given differential equation.

Using the linearity property of Laplace transforms and the derivative property, we have:

s²Y(s) - sy(0) - y'(0) + 4(sY(s) - y(0)) - 12Y(s) = 0,

where Y(s) represents the Laplace transform of y(t), y(0) is the initial value of y, and y'(0) is the initial value of the derivative of y.

Substituting the initial values y(0) = 2 and y'(0) = 36, we get:

s²Y(s) - 2s - 36 + 4sY(s) - 8 - 12Y(s) = 0.

Now, we can solve this equation for Y(s):

(s² + 4s - 12)Y(s) = 2s + 44.

Dividing both sides by (s² + 4s - 12), we obtain:

Y(s) = (2s + 44) / (s² + 4s - 12).

We can decompose the right-hand side using partial fractions:

Y(s) = A / (s + 6) + B / (s - 2).

Multiplying both sides by (s + 6)(s - 2), we have:

2s + 44 = A(s - 2) + B(s + 6).

Now, we equate the coefficients of s on both sides:

2 = -2A + B,

44 = -12A + 6B.

Solving these equations, we find A = 5 and B = 4.

Therefore, the Laplace transform of the solution y(t) is given by:

Y(s) = 5 / (s + 6) + 4 / (s - 2).

Finally, we take the inverse Laplace transform to obtain the solution y(t):

y(t) = 5e^(-6t) + 4e^(2t).

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Suppose g is a function which has continuous derivatives, and that g(7)=-3, g'(7)=-4, g'(7) = -4,g" (7) = 5. (a) What is the Taylor polynomial of degree 2 for g near 7?
P2(x)=
(b) What is the Taylor polynomial of degree 3 for g near 7?
P3(x)=
(c) Use the two polynomials that you found in parts (a) and (b) to approximate g(6.9).
With P2. g(6.9)
With Ps. 9(6.9)

Answers

The required values are:P2(x) = 5(x - 7)^2/2 - 4(x - 7) - 3P2(6.9)

= 0.015P3(x)

= 7(x - 7)^3/6 - 5(x - 7)^2/2 + 4(x - 7) - 3P3(6.9)

= -2.65.

Given that a function g has continuous derivatives, and g(7)=-3, g'(7)=-4, g'(7) = -4, g" (7) = 5.

(a) We have to find the Taylor polynomial of degree 2 for g near 7.

The Taylor series of a function g, centered at x = a is given by: Pn(x) = f(a) + (x - a)f'(a)/1! + (x - a)^2 f''(a)/2! + ... + (x - a)^n f^n(a)/n!

We have to find the Taylor polynomial of degree 2 for g near 7.

The polynomial of degree 2, P2(x) is given as:P2(x) = g(7) + g'(7)(x-7)/1! + g''(7)(x-7)^2/2!

Now, substituting the values of g(7), g'(7), and g''(7) in the equation of P2(x)P2(x) = -3 + (-4)(x-7) + (5)(x-7)^2/2P2(x)

= 5(x - 7)^2/2 - 4(x - 7) - 3

(b) We have to find the Taylor polynomial of degree 3 for g near 7.

The polynomial of degree 3, P3(x) is given as:

P3(x) = g(7) + g'(7)(x-7)/1! + g''(7)(x-7)^2/2! + g'''(7)(x-7)^3/3!

Now, substituting the values of g(7), g'(7), g''(7), and g'''(7) in the equation of P3(x), we get

P3(x) = -3 + (-4)(x-7) + (5)(x-7)^2/2 - (7/3)(x-7)^3P3(x)

= 7(x - 7)^3/6 - 5(x - 7)^2/2 + 4(x - 7) - 3(c)

We have to use the two polynomials found in (a) and (b) to approximate g(6.9).

With P2: We know that

P2(x) = 5(x - 7)^2/2 - 4(x - 7) - 3

Thus,

P2(6.9) = 5(6.9 - 7)^2/2 - 4(6.9 - 7) - 3

= 0.015 (approx)

With P3: We know that P3(x) = 7(x - 7)^3/6 - 5(x - 7)^2/2 + 4(x - 7) - 3

Thus, P3(6.9) = 7(6.9 - 7)^3/6 - 5(6.9 - 7)^2/2 + 4(6.9 - 7) - 3

= -2.65 (approx)

Hence, the required values are:P2(x) = 5(x - 7)^2/2 - 4(x - 7) - 3P2(6.9)

= 0.015P3(x)

= 7(x - 7)^3/6 - 5(x - 7)^2/2 + 4(x - 7) - 3P3(6.9)

= -2.65.

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11. 12X³-2X²+X -11 is divided by 3X+1, what is the restriction on the variable? Explain. [2-T/I]
3. A factor of x³ - 5x² - 8x + 12 is a. 1 b. 8 C. X-1 d. x-8

Answers

The restriction on the variable is that it cannot be equal to -1/3.

What limitation does the variable have in order to divide the expression successfully?

When dividing the polynomial 12X³ - 2X² + X - 11 by 3X + 1, we need to find the restriction on the variable. In polynomial division, a restriction occurs when the divisor becomes zero. To find this restriction, we set the divisor, 3X + 1, equal to zero and solve for X:

3X + 1 = 0

3X = -1

X = -1/3

Therefore, the restriction on the variable is that it cannot be equal to -1/3. If X were -1/3, the divisor would be zero, resulting in an undefined division operation. Thus, in order to successfully divide the given expression, X must be any value except -1/3.

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A bag contains 3 blue, 5 red, and 7 yellow marbles. A marble is chosen at random. Determine the theoretical probability expressed as a decimal rounded to the nearest hundredth. p(red)

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The theoretical probability of selecting a red marble from the bag is approximately 0.33.

To find the theoretical probability of selecting a red marble from the bag, we need to divide the number of favorable outcomes (number of red marbles) by the total number of possible outcomes (total number of marbles).

The bag contains a total of 3 blue + 5 red + 7 yellow = 15 marbles.

The number of red marbles is 5.

Therefore, the theoretical probability of selecting a red marble is:

p(red) = 5/15

Simplifying this fraction, we get:

p(red) = 1/3 ≈ 0.33 (rounded to the nearest hundredth)

So, the theoretical probability of selecting a red marble from the bag is approximately 0.33.

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suppose a is the matrix [2512−60−29] find c, d, and c−1 such that a=cdc−1. c= [ ] , d= [ 0 ] 0 , c−1= [ ] .

Answers

Matrix is[tex]a = [2512-60-29][/tex]. Now, we need to find c, d, and c−1 such that a=cdc−1. For this, we can use the concept of matrix multiplication.

In order to multiply two matrices A and B, the number of columns in A must be equal to the number of rows in B.

Therefore, we can separate the matrix a into two matrices c and d such that [tex]a=cdc-1[/tex] as follows: [tex]c = [ 2 1 - 1 2 ] , d = [ 5 0 0 -3 ][/tex]  and [tex]c^-1 = [ 2 1 1 2 ][/tex] .

To find c, d, and c−1 such that a=cdc−1, we can use the concept of matrix multiplication. In order to multiply two matrices A and B, the number of columns in A must be equal to the number of rows in B.

Therefore, we can separate the matrix a into two matrices c and d such that a=cdc−1 as follows: [tex]c = [ 2 1 -1 2 ][/tex], [tex]d = [ 5 0 0 - 3 ][/tex]  and [tex]c-1 = [ 2 1 1 2 ][/tex].

Thus, we can say that [tex]a = [2512-60-29][/tex]can be separated into [tex]c = [ 2 1 - 1 2 ] , d = [ 5 0 0 - 3 ][/tex]  and[tex]c-1 = [ 2 1 1 2 ][/tex] by using the matrix multiplication property. Therefore, the solution is obtained.

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insert 11, 44, 21, 55, 09, 23, 67, 29, 25, 89, 65, 43 into a b tree of order 4. (left/right biased tree will be given).

Answers

The final B-tree after inserting all the values is:

                  [29]

              /                 \

    [21]                     [43, 55, 67]

 /       |        |       |       \

To construct a B-tree of order 4 with the given values, we start with an empty tree and insert the values one by one. In a left-biased B-tree, we insert values from left to right, and in case of overflow, we split the node and promote the middle value to the parent.

Insert 11:

[11]

Insert 44:

[11, 44]

Insert 21:

[11, 21, 44]

Insert 55:

[21]

/

[11] [44, 55]

Insert 09:

[21]

/

[09, 11] [44] [55]

Insert 23:

[21]

/

[09, 11] [23] [44, 55]

Insert 67:

[21, 44]

/ |

[09, 11] [23] [55] [67]

Insert 29:

[21, 44]

/ |

[09, 11] [23, 29] [55] [67]

Insert 25:

[21, 29]

/ | |

[09, 11] [23] [25] [44] [55, 67]

Insert 89:

[21, 29, 55]

/ | | | |

[09, 11] [23] [25] [44] [67] [89]

Insert 65:

[29]

/

[21] [55, 67]

/ |

[09, 11] [23, 25] [44] [65, 89]

Insert 43:

[29]

/

[21] [43, 55, 67]

/ | |

[09, 11] [23, 25] [44] [65] [89]

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A sample consisting of four pieces of luggage was selected from among the luggage checked at an airline counter, yielding the following data on x = weight (in pounds).
X₁ = 33.8, X₂ = 27.2, X3 = 36.1, X₁4 = 30.1

Suppose that one more piece is selected and denote its weight by X5. Find all possible values of X5 such that X = sample median. (Enter your answers as a comma-separated list.)
X5 = _______

Answers

The value for X5 would probably be any value from 30.1 to 33.8 pounds as median = 31.95 pounds.

How to calculate the median of the given weight of the luggages?

The luggages with their different weights are given as follows:

X[tex]X_{1}[/tex]= 33.8

[tex]X_{2}[/tex] = 27.2

[tex]X_{3}[/tex]= 36.1

[tex]X_{4}[/tex]= 30.1

When arranged in ascending order:

27.2,30.1,33.8,36.

Since there is an even number of suitcases the median is now the average of the two middle numbers. This means that the middle numbers ForForasas 30.1 and 33.8 should be added together and divided by by two as follows:

[tex]Median=\frac{30.1+33.8}{2} \\ = \frac{63.9}{2}\\ =31.95[/tex]

For [tex]X_{5}[/tex] to be the median, it should be third in weight. this can vary from  30.1 to 33.8 pounds, or any value in between.

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(2) Find the exact length of a circular are determined by an angle of 195° if the radius of the circle is 24 cm. For full credit, your final answer must be in terms of the correct units.

Answers

The length of arc determined by an angle of 195° with a radius of 24 cm is 13π cm.

The length of the arc of a circle with radius r subtended by an angle θ (measured in radians) is given by the formula, L = θr. However, the angle θ must be expressed in radians before we use the formula.θ = 195°

We know that 360° = 2π radians or 1° = π/180 radians. Therefore, 195° = 195π/180 radians.Let r be the radius of circle and θ be the angle in radians.

Then the length L of the arc is given by L = θr.

Thus, we have L = (195π/180)×24 = 130π/3 cm.

To find the length of the arc, we need to use the formula L = θr.

Here, θ is the angle in radians and r is the radius of the circle. We are given that the angle is 195° and the radius is 24 cm.

We need to first convert the angle to radians.

We know that 360° = 2π radians. Hence, 195° = (195/360)×2π = (13/24)π radians.

Substituting the given values, we have L = (13/24)π × 24.

Simplifying, we get L = 13π cm or approximately 40.8 cm.

Therefore, the length of the arc determined by an angle of 195° with a radius of 24 cm is 13π cm.

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Find the characteristic polynomial, the eigenvalues, the vectors proper and, if possible, an invertible matrix P such that P^-1APbe diagonal, A=
1 - 1 4
3 2 - 1
2 1 - 1

Answers

Let A be the matrix. To find the characteristic polynomial, we need to find det(A-λI), where I is the identity matrix.The characteristic polynomial for matrix A is obtained by finding det(A - λI):

Now we have to find eigen values [tex]λ1 = -1λ2 = 1± 2√2[/tex] We can find eigenvectors corresponding to each eigenvalue: λ1 = -1 For λ1, we have the following matrix:This can be transformed to reduced row echelon form as follows:Therefore, the eigenvectors corresponding to λ1 are x1 = (-1, 3, 2) and x2 = (1, 0, 1).λ2 = 1 + 2√2 For λ2, we have the following matrix:This can be transformed to reduced row echelon form as follows:Therefore, the eigenvector corresponding to λ2 is x3 = (3 - 2√2, 1, 2).

Now we need to find P^-1 to make P^-1AP diagonal:Finally, the diagonal matrix is formed by finding P^-1AP.

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Question 4 (2 points) Use the discriminant to determine how many solutions the following quadratic equation has. -6x²-6=-7x-9

Answers

The answer to the given question is that the quadratic equation has 0 real solutions.

To determine how many solutions the following quadratic equation has using the discriminant,

                 we need to apply the following formula [tex]ax^2 + bx + c = 0[/tex]

                          Where a = -6, b = 7 and c = -3

Now, let's first find the discriminant using the formula: [tex]`b^2 - 4ac`[/tex]

So, [tex]`b^2 - 4ac = 7^2 - 4(-6)(-3)`\\= `49 - 72 \\= -23`[/tex]

The discriminant is negative.

When the discriminant is negative, the quadratic equation has no real solutions.

Hence, the quadratic equation: [tex]-6x^2 - 7x + 3 = 0[/tex] has no solution because the discriminant is negative.

Hence, the answer to the given question is that the quadratic equation has 0 real solutions.

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why must you allow digestion of the precipitate before filtration Construct a small sample with n = 5 of the independent variables X for i=1,...,5 and X2 for i = 1,...,5 so that the ordinary least squares (OLS) estimators for the regression coefficients of X, in the following two models, Y = Bo+BX1 + B X 2 + Ei where E; Mid N(0,02) and Y = 0 X +e; where ; id N(0,72), are the same. In other words, you need to make the values of the two estimators and 1 equal to each other for all possible dependent variable values Y,'s. why does trimming the top of a plant make the plant bushier? Given a 52-card deck, what is the probability of being dealt athree-card hand with exactly two 10s? Leave your answer as anunsimplified fraction. The direct materials budget shows the following: Units to be produced 2000 Direct materials pounds required for production 9000 Direct materials pounds to be purchased 9900 What are the direct materials per unit? O Cannot be determined from the data provided 0 4.50 pounds O 0.45 pounds O 4,95 pounds The direct materials budget shows the following Desired ending direct materials Direct materials required for production 28000 pounds 109000 pounds Beginning direct materials 15200 pounds The total quantity of direct materials to be purchased is 0 137000 pounds O 121800 pounds. 124200 pounds. 96200 pounds Diamond Root Factory normally wells its speciality boots for $25 a pai An offer to buy to boots for $10 per pa $30, and special stitching will add another $3 per pair to the cost Determine the differential income or less per pas of books from eing to the organization Should Dumond Boot Factory accept or reject the special offer? try an organization hosting a national event as Norfolk. The vantable cost per bost is In decision theory terminology, a course of action or astrategy that may be chosen by a decision maker is calleda. a payoff.b. an alternative.c. a state of nature.d. none of the above what is the predicted product of the reaction shown? naohch3 Give the numerical value of n corresponding to 5d. n = ... Discuss the advantage and disadvantage of Weber bureaucracy? Find a general solution of the following non-homogeneous ODE using MATLAB. i) xy"-4xy' +6y=42/x ii) ii) xy' +2y=9x Summer Co. Ltd has accounts receivable of $100,350 at 30 June. Credit terms are 2/10, n/30. At this date, Allowance for Doubtful Accounts has a credit balance of $1,234 prior to adjustment. The company uses the percentage-of-receivables basis for estimating uncollectible accounts. The Companys estimate of bad debts is shown below.Age of AccountsBalance, April 30Estimated Percentage Uncollectible1-30 days$68,0002.00%31-60 days22,3005.00%61-90 days5,50020.00%Over 90 days4,55050.00%Required:Determine the total estimated uncollectible at 30 June.Calculate the adjusted bad debt expense for the period. consider the reaction: y products the rate law was experimentally determined to be rate = k[y]2 because Price v. Calder, 770 S.E.2d 752, Ct. App., N.C. (2015)Please complete the IRAC Analysis for the above caseCase:Plaintiff:Defendant:Issue:Rules:Analysis:Conclusion: Find a linearization L(x, y, z) of f(x, y, z) = xy + 4z at (1, 1, 2). Problem 3. Consider a game between 3 friends (labeled as A, B, C). The players take turns (i.e., A BC ABC...) to flip a coin, which has probability p = (0, 1) to show head. If the outcome is tail, the player has to place 1 bitcoin to the pool (which initially has zero bitcoin). The game stops when someone tosses a head. He/she, which is the winner of this game, will then earn all the bitcoin in the pool. (a) Who (A, B, C) has the highest chance to win the game? What is the winning prob- ability? Does the answer depend on p? What happens if p 0? (b) Let Y be the amount of bitcoins in the pool in the last round (of which the winner will earn all). Find E[Y] and Var(Y). (c) Let Z be the net gain of Player A of this game (that is, the difference of the bitcoins he earns in this game (0 if he doesn't win), and the total bitcoins he placed in the previous rounds). Find E[Z]. (d) Repeat (b), (c) if the rule of placing bets is replaced by "the player has to place k bitcoins to the pool at k-th round we would associate the term inferential statistics with which task? Find the Laplace transform of 3.1.1. L{3+2t4t} 3.1.2. L{cosh3t} 3.1.3. L{3te-2t} [39] [5] [4] [5] Suppose that ||v ||=1 and ||w ||=15.Suppose also that, when drawn starting at the same point, v vand w w make an angle of 3pi/4 radians.(A.) Find ||w +v ||||w+v|| and Ivan Pedroso is a long jump athlete who wishes to qualify for the upcoming Summer Olympics. The olympic qualifying standard is 8.22 m in men's long jump, so a jump is considered as successful if it is equal to 8.22 m or more. Suppose that at each jump, Pedroso has a 0.05 chance of jumping successfully. Assume that all jumps are independent. For j = 1,2,3,...Let X; be the random variable that equals 1 if Pedroso jumps successfully at jth jump, and equals 0 otherwise. Let Y be the trial number where Pedroso jumps successfully for the first time, and let Z be the total number of successful jumps out of the first 250 trials. Which of the following is true? Select one or more: a. Y has a binomial distribution b. E(Z) = 20 c. P(Y=5) = (25) (0.05)5 (0.95) 20 d. X3 has a Bernoulli distribution e. E(Z) = 250E(X) f. Z has a geometric distribution g. E(Y) = 20 h. E(X5) = 0.25 i. X has a geometric distribution