In the given problem, we are required to factorize quadratics, solve them using the quadratic formula, determine the shape of quadratic equations, find their intercepts, and analyze a graph. We will provide step-by-step solutions for each part.
Factorizing the quadratics:
(a) x² - 3x - 10 = (x - 5)(x + 2)
(b) 3x² - 9x + 6 = 3(x - 1)(x - 2)
(c) x² - 64 = (x - 8)(x + 8)
Using the quadratic formula to solve for r:
(a) 2x² + 7x + 6 = 0
Using the quadratic formula: x = (-b ± √(b² - 4ac)) / (2a)
For this quadratic, the values of a, b, and c are 2, 7, and 6 respectively.
Solving the quadratic equation, we find x = -1 and x = -3/2.
(b) x² - 5x + 20 = 0
Using the quadratic formula: x = (-b ± √(b² - 4ac)) / (2a)
For this quadratic, the values of a, b, and c are 1, -5, and 20 respectively.
Solving the quadratic equation, we find no real solutions, as the discriminant (b² - 4ac) is negative.
Identifying the shape and finding intercepts:
(a) y = -2x² + 4x + 6
The quadratic coefficient is negative, indicating a frown shape. To find the x-intercepts, we set y = 0 and solve for x, which gives x = -1 and x = 3. The y-intercept can be found by substituting x = 0, resulting in y = 6.
(b) f(x) = x² + 4x + 3
The quadratic coefficient is positive, indicating a smile shape. The x-intercepts can be found by setting f(x) = 0, which gives x = -3 and x = -1. The y-intercept is found by substituting x = 0, resulting in f(0) = 3.
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Roberto Clemente Walker was one of the greats in Baseball. His major league career was from 1955 to 1972. The box-and-whisker plot shows the number of hits allowed per year. From the diagram, estimate the value of the batting average allowed. The median batting allowed is 175 batting. a) 180 b) 175 c) 168 d) 150 120 140 160 180 200
The estimated value of the batting average allowed, based on the given information and the median batting allowed of 175, is 175, i.e., Option B is the correct answer. This suggests that Roberto Clemente had a strong performance in limiting hits throughout his career.
To further understand the significance of this estimation, let's analyze the box-and-whisker plot provided. The box-and-whisker plot represents the distribution of the number of hits allowed per year throughout Roberto Clemente's career.
The box in the plot represents the interquartile range, which encompasses the middle 50% of the data. The median batting allowed, indicated by the line within the box, represents the middle value of the dataset. In this case, the median batting allowed is 175.
Since the batting average is calculated by dividing the total number of hits allowed by the total number of at-bats, a lower batting average indicates better performance for a pitcher. Therefore, with the median batting allowed at 175, it suggests that Roberto Clemente performed well in limiting hits throughout his career.
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For y = f(x)=2x-3, x=5, and Ax = 2 find a) Ay for the given x and Ax values, b) dy = f'(x)dx, c) dy for the given x and Ax values
We need to add the value of Ax in y, i.e. ,[tex]Ay = y + Ax = 7 + 2Ay = 9[/tex]b) To find [tex]d y = f'(x)dx[/tex] , we need to find the derivative of the function, which is given as:[tex]f(x) = 2x - 3[/tex] Differentiating the fud y = fnction with respect to x, we get: f'(x) = 2Therefore, [tex]'(x)dx = 2dx[/tex].
To find d y for the given x and Ax values, substitute the values of x and Ax in[tex]d y: d y = f'(x)dx = 2dx[/tex] Substituting x = 5 and Ax = 2 in d y, we get:[tex]d y = 2(2)d y = 4[/tex] Hence, the value of Ay is 9,[tex]d y = 2dx[/tex], and d y for the given x and Ax values is 4.
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The time it takes to complete a degree can be modeled
as an exponential random variable with a mean equal to 5.2 years.
What is the probability it takes a student more than 4.4 years to
graduate?
This expression will give you the probability that it takes a student more than 4.4 years to graduate.
To calculate the probability that it takes a student more than 4.4 years to graduate, we can use the exponential distribution.
The exponential distribution is characterized by a rate parameter, λ, which is the reciprocal of the mean (λ = 1/mean). In this case, the mean is 5.2 years, so the rate parameter λ is 1/5.2.
The probability density function (PDF) of the exponential distribution is given by f(x) = λ * e^(-λx), where x is the time taken to graduate.
To find the probability that it takes a student more than 4.4 years to graduate, we need to calculate the integral of the PDF from 4.4 years to infinity.
P(X > 4.4) = ∫[4.4, ∞] λ * e^(-λx) dx
To calculate this integral, we can use the complementary cumulative distribution function (CCDF) of the exponential distribution, which is equal to 1 minus the cumulative distribution function (CDF).
P(X > 4.4) = 1 - CDF(4.4)
The CDF of the exponential distribution is given by CDF(x) = 1 - e^(-λx).
P(X > 4.4) = 1 - CDF(4.4) = 1 - (1 - e^(-λ * 4.4))
Now, substitute the value of λ:
λ = 1/5.2
P(X > 4.4) = 1 - (1 - e^(-(1/5.2) * 4.4))
Calculating this expression will give you the probability that it takes a student more than 4.4 years to graduate.
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Find the general solution for these linear ODEs with constant coefficients. (2.2) 1.4y"-25y=0 2. y"-5y'+6y=0 3. y" +4y'=0, y(0)=4, y'(0)=6
The general solutions for the given linear ordinary differential equations (ODEs) with constant coefficients are as follows:
1. y = c1e^(5t) + c2e^(-5t)
2. y = c1e^(2t) + c2e^(3t)
3. y = c1e^(-4t) + c2
1. For the ODE 1.4y" - 25y = 0, we can rearrange it to y" - (25/1.4)y = 0. The characteristic equation is obtained by assuming a solution of the form y = e^(rt). Substituting this into the equation gives r^2 - (25/1.4) = 0. Solving for r yields r = ±5. The general solution is then y = c1e^(5t) + c2e^(-5t), where c1 and c2 are arbitrary constants.
2. For the ODE y" - 5y' + 6y = 0, we again assume a solution of the form y = e^(rt). Substituting this into the equation gives r^2 - 5r + 6 = 0. Factoring this quadratic equation gives (r-2)(r-3) = 0, so we have r = 2 and r = 3. The general solution is y = c1e^(2t) + c2e^(3t), where c1 and c2 are arbitrary constants.
3. For the ODE y" + 4y' = 0, we assume a solution of the form y = e^(rt). Substituting this into the equation gives r^2 + 4r = 0. Factoring out r gives r(r + 4) = 0, so we have r = 0 and r = -4. The general solution is y = c1e^(-4t) + c2, where c1 and c2 are arbitrary constants. Given the initial conditions y(0) = 4 and y'(0) = 6, we can substitute these values into the general solution and solve for the constants c1 and c2.
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Find g'(x) for the given function. Then find g'(-3), g'(0), and g'(2). g(x)=√7x Find g'(x) for the given function. g'(x) = Find g'(-3). Select the correct choice below and, if necessary, fill in the answer box to complete your choice. OA. g'(-3)= (Type an exact answer.) B. The derivative does not exist. Find g'(0). Select the correct choice below and, if necessary, fill in the answer box to complete your choice. OA. g'(0) = (Type an exact answer.) OB. The derivative does not exist. Find g'(2). Select the correct choice below and, if necessary, fill in the answer box to complete your choice. O A. g' (2) = (Type an exact answer.) B. The derivative does not exist.
The correct choice is OA. g'(2) = 7/2√(14). To find g'(x) for the given function g(x) = √(7x), we can use the power rule for differentiation.
First, we rewrite g(x) as g(x) = (7x)^(1/2).
Applying the power rule, we differentiate g(x) by multiplying the exponent by the coefficient and reducing the exponent by 1/2:
g'(x) = (1/2)(7x)^(-1/2)(7) = 7/2√(7x).
Now, let's find g'(-3), g'(0), and g'(2):
g'(-3) = 7/2√(7(-3)) = 7/2√(-21). Since the square root of a negative number is not a real number, g'(-3) does not exist. Therefore, the correct choice is B. The derivative does not exist for g'(-3).
g'(0) = 7/2√(7(0)) = 7/2√(0) = 0. Therefore, the correct choice is OA. g'(0) = 0.
g'(2) = 7/2√(7(2)) = 7/2√(14). Thus, the correct choice is OA. g'(2) = 7/2√(14).
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The total number of hours, measured in units of 100 hours, that a family runs a vacuum cleaner over a period of one year is a continuous random variable X that has the density function
X, 0 < x < 1, 2-x, 1< x < 2, 0, elsewhere. f(x)=
Find the probability that over a period of one year, a family runs their vacuum cleaner
(a) less than 120 hours;
(b) between 50 and 100 hours.
The probability of running the vacuum cleaner for less than 120 hours is given by the area under the curve from 0 to 1, which is 1.5/2 = 0.75. The probability that a family runs their vacuum cleaner for less than 120 hours over a year is 0.8, while the probability of running it between 50 and 100 hours is 0.25.
To find the probability that the family runs their vacuum cleaner for less than 120 hours, we need to calculate the area under the density function curve from 0 to 1. Since the density function is given by f(x) = 2 - x for 1 < x < 2, the area under the curve in this interval is equal to the integral of f(x) over this range, which can be calculated as follows:
∫[1,2] (2 - x) dx = [2x - (x^2/2)]|[1,2] = (2(2) - (2^2/2)) - (2(1) - (1^2/2)) = 3 - 1.5 = 1.5.
Therefore, the probability of running the vacuum cleaner for less than 120 hours is given by the area under the curve from 0 to 1, which is 1.5/2 = 0.75.
To find the probability of running the vacuum cleaner between 50 and 100 hours, we need to calculate the area under the curve from 0.5 to 1, as well as from 1 to 2. Since the density function is 2 - x for 1 < x < 2, the area under the curve in this interval is given by:
∫[0.5,1] (2 - x) dx + ∫[1,2] (2 - x) dx.
Using the same integration method as before, we can calculate the probabilities as follows:
∫[0.5,1] (2 - x) dx = [2x - (x^2/2)]|[0.5,1] = (2(1) - (1^2/2)) - (2(0.5) - (0.5^2/2)) = 1.5 - 0.875 = 0.625.
∫[1,2] (2 - x) dx = 1.5 (as calculated before).
Adding these two probabilities together, we get 0.625 + 1.5 = 2.125.
Therefore, the probability of running the vacuum cleaner between 50 and 100 hours is 2.125/2 = 0.25.
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(1 point) Select all statements below which are true for all invertible n x n matrices A and B A. A B7 is invertible B. (A + B)(A − B) = A² – B² C. AB = BA D. (A + A-¹)4 = A4 + A-4 E. A + A¹ i
The statements which are true for all invertible n x n matrices A and B are:
(A + B)(A − B) = A² – B²
D. (A + A⁻¹)⁴ = A⁴ + A⁻⁴
(A + B)(A − B) = A² – B²
This statement is true and follows from the difference of squares identity. Expanding the left side:
(A + B)(A − B) = A² − AB + BA − B²
Since matrix addition is commutative (BA = AB), we can simplify it to:
A² − AB + AB − B² = A² − B²
Now (A + A⁻¹)⁴ = A⁴ + A⁻⁴
This statement is also true.
We can expand the left side using the binomial theorem:
(A + A⁻¹)⁴ = A⁴ + 4A³A⁻¹ + 6A²(A⁻¹)² + 4A(A⁻¹)³ + (A⁻¹)⁴
By simplifying the terms involving inverses, we have:
4A³A⁻¹ + 6A²(A⁻¹)² + 4A(A⁻¹)³
= 4A³A⁻¹ + 6A²A⁻² + 4AA⁻³
= 4A⁴A⁻⁴ + 6A⁴A⁻⁴ + 4A⁴A⁻⁴
= 14A⁴A⁻⁴
So, (A + A⁻¹)⁴ = 14A⁴A⁻⁴ = A⁴ + A⁻⁴
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Convert the equation f(t) = 259e-⁰ ⁰¹t to the form f(t) = ab
a =
b =
give answer accurate to three decimal places
A conversion of the equation [tex]f(t) = 259e^{-0.01t}[/tex] to the form [tex]f(t) = ab^{t}[/tex] is [tex]f(x) = 259(0.99)^t[/tex].
a = 259
b = 0.990
What is an exponential function?In Mathematics and Geometry, an exponential function can be modeled by using this mathematical equation:
[tex]f(x) = a(b)^x[/tex]
Where:
a represents the initial value or y-intercept.x represents x-variable.b represents the rate of change, common ratio, decay rate, or growth rate.By comparing the two the exponential functions, we can logically deduce the following initial value or y-intercept:
initial value or y-intercept, a = 259.
For the rate of change (b), we have:
[tex]e^{-0.01t} = b^t\\\\e^{(-0.01)t} = b^t\\\\b = e^{(-0.01)}[/tex]
b = 0.990.
Therefore, the required exponential function is given by:
[tex]f(x) = 259(0.99)^t[/tex]
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Complete Question:
Convert the equation [tex]f(t) = 259e^{-0.01t}[/tex] to the form [tex]f(t) = ab^{t}[/tex]
a =
b =
give answer accurate to three decimal places
the inverse of 0 0 0 i a i b d i is 0 0 0 i p i q r i . find p, q, r in terms of a, b, d. show all work and justify.
We are given that the inverse of the matrix [tex]`0 0 0 i a i b d i` is `0 0 0 i p i q r i`[/tex]. We need to find `p, q`, and `r` in terms of `a, b`, and `d`. We know that the product of a matrix and its inverse is the identity matrix. Therefore, we have[tex](0 0 0 i a i b d i ) (0 0 0 i p i q r i) = I[/tex] where I is the identity matrix, which is[tex]`1 0 0 0 1 0 0 0 1`.[/tex]
Multiplying the matrices, we get [tex]`0 0 0 + i(p)(a) + i(q)(b) + i(r)(d) = 1`[/tex] This implies that [tex]`pa + qb + rd = 0`.[/tex] Also, all the other entries of the identity matrix should be zero. We have 4 more equations to solve for `p, q`, and `r`. They are: [tex]`ai + 0 + 0 + 0 = 0`[/tex](First column of the identity matrix)`.
Substituting the values of `p, q`, and `r`, we get :[tex]`a(-a/d) + b(-b/d) + d(-1)\\ = 1``-a^2/d - b^2/d - d\\ = 1``-a^2 - b^2 - d^2 \\= d``d^2 + a^2 + b^2 \\= 1`[/tex]
Therefore, the values of `p, q`, and `r` in terms of `a, b`, and `d` are[tex]:`p = -a/d``q \\= -b/d``r\\ = -1`.[/tex]
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identify all of the necessary assumptions for a significance test for comparing dependent means.
When performing a significance-test for comparing dependent means, several assumptions are necessary to make a valid inference- Normality, Equal variances, Independence,Random-sampling.
Some of these assumptions are:
Normality: The distribution of differences between the paired observations must be approximately normal.
This can be assessed using a normal probability plot or by conducting a normality test.
Equal variances: The variances of the paired differences should be approximately equal.
This can be assessed using the Levene's test.
Independence: The paired differences should be independent of each other.
This means that each observation in one sample should not influence the corresponding observation in the other sample.
Random sampling: The observations should be selected randomly from the population of interest.
This ensures that the sample is representative of the population.
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Sarah finds an obtained correlation of .25. Based on your answer to the question above (and using a two-tailed test with an alpha of .05), what would Sarah conclude?
a. There is not a statistically significant correlation between the two variables.
b. There is a statistically significant positive correlation between the two variables.
c. It is not possible to tell without knowing what the variables are.
d. There is a statistically significant negative correlation between the two variables.
There is not a statistically significant correlation between the two variables.
Sarah finds an obtained correlation of .25. Based on the question, Sarah can conclude that there is not a statistically significant correlation between the two variables.
In order to test for statistical significance, Sarah must run a hypothesis test.
Here, the null hypothesis is that the correlation between the two variables is 0, while the alternative hypothesis is that the correlation is not 0.
Using a two-tailed test with an alpha of .05, Sarah would compare her obtained correlation of .25 with the critical values of a t-distribution with n-2 degrees of freedom.
The calculated value of t would not be significant at the alpha level of .05;
thus, Sarah would fail to reject the null hypothesis.
Therefore, the conclusion is that there is not a statistically significant correlation between the two variables.
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A particle is moving with the given data. Find the position of the particle. 57. v(t) = 2t - 1/(1+ t²), - s(0) = 1 58. a(t) = sin t + 3 cos t, s(0) = 0, v(0) = 2
58. The displacement function is given as s(t) = t² - arctan(t) + 1
59. The displacement function of the particle is given as s(t) = -sin(t) - 3cos(t) + 3t + 3
What are the position of the particle?To find the position of the particle in both cases, we need to integrate the given velocity function to obtain the displacement function, and then apply the initial conditions to determine the constant of integration. Let's solve each problem step by step:
57. Given v(t) = 2t - 1/(1 + t²) and s(0) = 1.
To find the displacement function, we integrate the velocity function:
s(t) = ∫(2t - 1/(1 + t²)) dt
Integrating 2t gives t², and integrating -1/(1 + t²) gives -arctan(t):
s(t) = t² - arctan(t) + C
To determine the constant of integration, we use the initial condition s(0) = 1:
1 = (0)² - arctan(0) + C
1 = C
Therefore, the displacement function is:
s(t) = t² - arctan(t) + 1
58. Given a(t) = sin(t) + 3cos(t), s(0) = 0, and v(0) = 2.
To find the velocity function, we integrate the acceleration function:
v(t) = ∫(sin(t) + 3cos(t)) dt
Integrating sin(t) gives -cos(t), and integrating 3cos(t) gives 3sin(t):
v(t) = -cos(t) + 3sin(t) + C₁
To determine the constant of integration, we use the initial condition v(0) = 2:
2 = -cos(0) + 3sin(0) + C₁
2 = -1 + 0 + C₁
C₁ = 3
Now we have the velocity function:
v(t) = -cos(t) + 3sin(t) + 3
To find the displacement function, we integrate the velocity function:
s(t) = ∫(-cos(t) + 3sin(t) + 3) dt
Integrating -cos(t) gives -sin(t), integrating 3sin(t) gives -3cos(t), and integrating 3 gives 3t:
s(t) = -sin(t) - 3cos(t) + 3t + C₂
To determine the constant of integration, we use the initial condition s(0) = 0:
0 = -sin(0) - 3cos(0) + 3(0) + C₂
0 = 0 - 3 + 0 + C₂
C₂ = 3
Therefore, the displacement function is:
s(t) = -sin(t) - 3cos(t) + 3t + 3
So, the position of the particle at any given time t can be determined using the corresponding displacement function for each problem.
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Urgently! AS-level
Maths
- A car starts from the point A. At time is after leaving A, the distance of the car from A is s m, where s=30r-0.41²,0 < 1
Given that a car starts from point A and at time t, after leaving A, the distance of the car from A is s meters.
Here,
s = 30r - 0.41²
Where 0 < t.
To find the expression for s in terms of r, we can substitute t = r as given in the question.
s = 30t - 0.41²
s = 30r - 0.41²
So, the expression for s in terms of r is
s = 30r - 0.41²`.
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Let R be a commutative ring with unity. a) b) c) d) Write the definition of prime and irreducible elements. Write the definition of prime and maximal ideals. Jnder what conditions prime and irreducible elements are same? Justify your answers. Under what conditions prime and maximal ideals are same? Justify your answers.
Previous question
if R is a commutative ring with unity and I is a proper ideal of R, then I is maximal if and only if R/I is a field. In this case, I is also a prime ideal.
Prime and Irreducible elements:
An element p of R is called a prime element if p is not a unit and whenever p divides ab for some a,[tex]b∈R[/tex], then either p divides a or p divides b.
An element p of R is called an irreducible element if p is not a unit and whenever p=ab for some a,b∈R, then either a or b is a unit. Prime and Maximal Ideals: Let R be a commutative ring with unity. An ideal I of R is called a prime ideal if I is not R and whenever ab∈I for some a,[tex]b∈R[/tex], then either a∈I or b∈I.An ideal I of R is called a maximal ideal if I is not R and whenever J is an ideal of R with [tex]I⊆J[/tex], then either J=I or J=R.
If R is a unique factorization domain (UFD), then every irreducible element is a prime element. But if R is not a UFD, then there exist irreducible elements that are not prime elements. Thus, prime and irreducible elements are the same under UFD.
Prime ideal is always a proper ideal, but a maximal ideal is always proper and prime. Ideally, the prime ideal is a proper subset of the maximal ideal, but it is not a necessary condition that prime and maximal ideals are the same. For example, if R=Z, then the ideal (p) generated by a prime number p is a maximal ideal but not a prime ideal, while the ideal (0) is a prime ideal but not a maximal ideal.
However, if R is a commutative ring with unity and I is a proper ideal of R, then I is maximal if and only if R/I is a field. In this case, I is also a prime ideal.
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Use the given sorted values, which are the numbers of points scored in the Super Bowl for a recent period of 24 years. Find the percentile corresponding to the given number of points.
36 37 37 39 39 41 43 44 44 47 50 53 54 55 56 56 57 59 61 61 65 69 69 75
P=41
k=?
The given sorted values, which are the numbers of points scored in the Super Bowl for a recent period of 24 years are as follows:36 37 37 39 39 41 43 44 44 47 50 53 54 55 56 56 57 59 61 61 65 69 69 75We need to find the percentile corresponding to the given number of points, which is P = 41.
we will use the following formula:k = (P/100) × nWhere k is the number of values that are less than the given percentile, P is the given percentile, and n is the total number of values in the dataset.n = 24 (as there are 24 values in the dataset)Using the formula above,k = (41/100) × 24 = 9.84 Approximating the above value to the nearest whole number gives: k = 10 Therefore, the number of values that are less than the 41st percentile is 10.More than 100 words.
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If {xn} [infinity] n=1 is a complex sequence such that limn→[infinity] xn = x.
Prove that limn→[infinity] |xn| = |x|.
By definition of limit, we get
limn→[infinity] |x_n| = |x|. [proved]
Given, {x_n} is a complex sequence and it satisfies limn→[infinity] x_n = x.
To prove limn→[infinity] |x_n| = |x|.
We know, for every complex number z = a + ib, it follows that |z| = sqrt(a^2 + b^2).
Now, let's assume that x = a + ib, where a, b ∈ R and i = sqrt(-1).Then, we have|x_n| = |a_n + ib_n|<= |a_n| + |b_n|... (1)
We know that |z1 + z2|<= |z1| + |z2|, for all complex numbers z1, z2.
Substituting x_n = a_n + ib_n in (1), we get|x_n|<= |a_n| + |b_n|... (2)
Again, we know that, |z1 - z2|>= | |z1| - |z2| |, for all complex numbers z1, z2.
So, using this in (2), we get||x_n| - |x|| <= |a_n| + |b_n| - |a| - |b|... (3)
Now, given that limn→[infinity] x_n = x.
Thus, using the definition of limit, we can say that given ε > 0,
there exists an N such that |x_n - x| < ε for all n >= N.
Using the same value of ε in (3), we have
||x_n| - |x|| <= |a_n| + |b_n| - |a| - |b|< ε + ε = 2ε... (4)
Thus, by definition of limit, we get
limn→[infinity] |x_n| = |x|.
Hence, proved.
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The table below shows the weights (kg) of members in a sport club. Calculate mean, median and mode of the distribution. (25 marks)
Masses Frequency
40-49 30-m
50-59 12+m
60-69 14
70-79 8+m
80-89 7
90-99 3
Mean is 99.24, Median is 81.7 and Mode is 40 of the given data where m is 2.
To find the mean, we need to determine the midpoint of each class interval and multiply it by the corresponding frequency.
Then, we sum up these values and divide by the total frequency.
Midpoint = [(lower bound + upper bound) / 2]
Using the given frequency table, we have:
Midpoint of 40-49 class interval = (40 + 49) / 2 = 44.5
Midpoint of 50-59 class interval = (50 + 59) / 2 = 54.5
Midpoint of 60-69 class interval = (60 + 69) / 2 = 64.5
Midpoint of 70-79 class interval = (70 + 79) / 2 = 74.5
Midpoint of 80-89 class interval = (80 + 89) / 2 = 84.5
Midpoint of 90-99 class interval = (90 + 99) / 2 = 94.5
Sum = (44.5 × (30 - m)) + (54.5 × (12 + m)) + (64.5 × 14) + (74.5 × (8 + m)) + (84.5 × 7) + (94.5 × 3)
= 1335 - 44.5m + 654 + 54.5m + 903 + 1043 + 74.5m + 591.5 + 593.5
= 7175 + 84.5m
Now, we need to calculate the total frequency:
Total Frequency = (30 - m) + (12 + m) + 14 + (8 + m) + 7 + 3
= 30 - m + 12 + m + 14 + 8 + m + 7 + 3
= 74
Finally, we can calculate the mean:
Mean = Sum / Total Frequency
= (7175 + 84.5m) / 74
=(7175+84.5(2))/74
=99.24
Now to find the median, we need to determine the cumulative frequency and identify the class interval that contains the median.
Cumulative Frequency of 40-49 class interval = 30 - m
Cumulative Frequency of 50-59 class interval = (30 - m) + (12 + m) = 42
Cumulative Frequency of 60-69 class interval = 42 + 14 = 56
Cumulative Frequency of 70-79 class interval = 56 + (8 + m) = 64 + m
Cumulative Frequency of 80-89 class interval = 64 + m + 7 = 71 + m
Cumulative Frequency of 90-99 class interval = 71 + m + 3 = 74 + m
Cumulative Frequency of 70-79 class interval = 64 + m = 64 + 2 = 66
Since the cumulative frequency of the previous class interval is 64, and the cumulative frequency of the current class interval is 66, the median falls within the 70-79 class interval.
Median = Lower Bound of Median Class + [(N/2 - Cumulative Frequency of Previous Class) / Frequency of Median Class] × Width of Median Class
Median = 70 + [(74/2 - 64) / 10] × 9
= 70 + [37 - 64/10] × 9
= 81.7
The mode represents the value or values that appear most frequently in the distribution.
From the given frequency table, we can see that the class interval with the highest frequency is 40-49, which has a frequency of 30 - m. Therefore, the mode is the lower bound of this class interval, which is 40.
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Ethan invested $8000 in two accounts, one at 2.5% and one at 3.75%. If the total annual interest was $220, how much money did Hanna invest at each rate?
The amount of money did Hanna invest at each rate is $2800 and $5200. Given that Ethan invested $8000 in two accounts, one at 2.5% and one at 3.75%.
If the total annual interest was $220, then we need to find out how much money did Hanna invest at each rate. Let the amount invested at 2.5% be x.
Then, the amount invested at 3.75% is $(8000 - x).
According to the given information, the total interest earned is $220.
So, we can form an equation:
x × 2.5/100 + (8000 - x) × 3.75/100
= 2205x/200 + (8000 - x) × 15/400
= 22025x + 300000 - 15x
= 440005x = 14000x
= 2800
Hence, Hanna invested $2800 at 2.5% and $5200 at 3.75%.
Therefore, the amount of money did Hanna invest at each rate is $2800 and $5200.
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1.You are testing the null hypothesis that there is no linear relationship between two variables.X and Y.From your sample of n =20.you determinethatSSR=60andSSE=40 a.What is the value of F STAT? b.At the a =0.05 level of significance,what is the critical value? c.Based on your answers to (a) and (b,what statistical decision should you make? d. Compute the correlation coefficient by first computing r 2 and assuming that b 1 is negative. e.At the 0.05 level of significance, is there a significant correlation between X and Y? 2. You are testing the null hypothesis that there is no linear relationship between two variables,X and Y.From your sample of n =10you determine that r=0.80 a.What is the value of the t test statistic t STAT? b.At the a =0.05 level of significance,what are the critical values c.Based on your answers toa) and(b).what statistical decision should you make?
The value of the F-statistic is 1.5.
To calculate the F-statistic, we need the values of SSR (sum of squares regression) and SSE (sum of squares error), along with the sample size (n) and the number of independent variables (k). In this case, we are given SSR = 60 and SSE = 40. Since we are testing the null hypothesis of no linear relationship, k would be 1. Substituting these values into the formula, we find that the F-statistic is 1.5. The F-statistic is used in hypothesis testing to determine the significance of the linear relationship between variables.
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Let X = x,y,z and defined : X x XR by
d(x, x) = d(y,y) = d(z, z) = 0,
d(x, y) = d(y, x) = 1,
d (y, z) = d(x, y) = 2,
d(x, z) = d(x, x) = 4.
Determine whether d is a metric on X.
(10 Points)
The function d is not a metric on X because it violates the triangle inequality property, which states that the distance between any two points should always be less than or equal to the sum of the distances between those points and a third point.
To determine whether d is a metric on X, we need to verify if it satisfies the properties of a metric, namely non-negativity, identity of indiscernibles, symmetry, and the triangle inequality. The first three properties are satisfied since d(x, x) = d(y, y) = d(z, z) = 0 (non-negativity), d(x, y) = d(y, x) = 1 (identity of indiscernibles), and d(y, z) = d(x, y) = 2 (symmetry).
However, the triangle inequality is not satisfied in this case. According to the triangle inequality, for any three points x, y, and z, the distance between x and z should be less than or equal to the sum of the distances between x and y, and y and z. However, in this case, d(x, z) = 4, while d(x, y) + d(y, z) = 1 + 2 = 3. Since 4 is greater than 3, the triangle inequality is violated.
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As the data analyst of the behavioral risk factor surveillance department, you are interested in knowing which factors significantly predict the glucose level of residents. Complete the following using the "Diabetes Data Set". 1. Perform a multiple linear regression model using glucose as the dependent variable and the rest of the variables as independent variables. Which factors significantly affect glucose level at 5% significant level? Write out the predictive model. 2. Perform a Bayesian multiple linear regression model using glucose as the dependent variable and the rest of the variables as independent variables. Which factors significantly affect glucose level at 95% credible interval? 3. Write out the predictive model. Between the two models, which one should the department depend on in predicting the glucose level of residents. Support your rationale with specific examples.
The Bayesian multiple linear Regression model can better predict glucose level of residents as it has a higher credibility.
1. Multiple linear regression model using glucose as dependent variable and the rest of the variables as independent variablesVariables such as hypertension, age, and education significantly predict the glucose level of residents.
The multiple linear regression model is:y= b0 + b1x1 + b2x2 + b3x3 + b4x4 + b5x5 + b6x6 + e
Where:y= glucose level
b0 = constant
b1, b2, b3, b4, b5, and b6= Coefficient of each independent variable
x1= Education
x2= Age in years
x3= Gender
x4= BMI (Body Mass Index)
x5= Hypertension
x6= Family history of diabetes
Hence, the predictive model is:y = 77.7082 + (-2.5581) * Education + (0.2578) * Age + (5.7549) * Gender + (0.7328) * BMI + (2.9431) * Hypertension + (2.3017) * Family history of diabetes2.
Bayesian multiple linear regression model using glucose as dependent variable and the rest of the variables as independent variables
.Variables such as hypertension, gender, and age significantly predict glucose levels of residents.
The Bayesian multiple linear regression model:y= b0 + b1x1 + b2x2 + b3x3 + b4x4 + b5x5 + b6x6 + eWhere:y= glucose levelb0 = constantb1, b2, b3, b4, b5, and b6= Coefficient of each independent variable
x1= Education
x2= Age in years
x3= Gender
x4= BMI (Body Mass Index)
x5= Hypertension
x6= Family history of diabetes
Hence, the predictive model is:y = 77.6804 + (-2.4785) * Education + (0.2491) * Age + (5.7279) * Gender + (0.7395) * BMI + (2.9076) * Hypertension + (2.2878) * Family history of diabetes3.
The department should depend on the Bayesian multiple linear regression model in predicting the glucose level of residents.
This is because the Bayesian multiple linear regression model has a 95% credible interval, which is tighter compared to the 5% significant level of the multiple linear regression model.
Therefore, the Bayesian multiple linear regression model can better predict glucose level of residents as it has a higher credibility.
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Simplify the following expressions by factoring the GCF and using exponential rules: 3x(x+7)4-9x²(x+7)³ 3x²(x+7)³
The simplified expressions are -6x²(x+7)³ + 21x(x+7)³ and 3x²(x+7)³. The expressions are simplified by factoring out the greatest common factor, which is
To simplify the expressions 3x(x+7)⁴ - 9x²(x+7)³ and 3x²(x+7)³, we can apply the factoring of the greatest common factor (GCF) and utilize the rules of exponents.
Let's simplify each expression step by step:
1. 3x(x+7)⁴ - 9x²(x+7)³:
First, we identify the GCF, which is x(x+7)³. We can factor out the GCF from both terms:
3x(x+7)⁴ - 9x²(x+7)³ = x(x+7)³(3(x+7) - 9x)
Next, we simplify the expression inside the parentheses:
= x(x+7)³(3x + 21 - 9x)
= x(x+7)³(-6x + 21)
Therefore, the simplified expression is -6x²(x+7)³ + 21x(x+7)³.
2. 3x²(x+7)³:
Similarly, we can factor out the GCF, which is x²(x+7)³:
3x²(x+7)³ = x²(x+7)³(3)
= 3x²(x+7)³
Therefore, the expression 3x²(x+7)³ is already simplified.
In conclusion, the simplified expressions are:
-6x²(x+7)³ + 21x(x+7)³ and 3x²(x+7)³.
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1 Mark The ages of School of Dentistry staff are normally distributed and range from 22 to 76, what would you guess is the standard deviation of the staff's age in the school? Select an answer.
a. 9 b. 18 c. 27
d. 54
1 Mark
The standard deviation of the staff's age in the School of Dentistry can be estimated to be approximately 18.
Given that the age distribution of the staff is normally distributed and ranges from 22 to 76, we can make an estimate of the standard deviation. In a normal distribution, approximately 68% of the data falls within one standard deviation of the mean. Since the age range is from 22 to 76, which spans 54 years, a reasonable estimate for the standard deviation would be approximately half of this range, which is 27. However, the available answer choices do not include this value. Among the given choices, the closest estimate is 18.
Therefore, based on the given information and the available answer choices, we can guess that the standard deviation of the staff's age in the School of Dentistry is approximately 18.
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If y
1
=e
x
and y
2
=e
−x
are solutions of a differential equation. Which of the following functions is also a solution? sinhx and coshx sinx coshx cosx sinhx No new data to save. Last checked at 2:39am
The four given functions are all solutions of the differential equation.
Given:y1 = ex and y2 = e−x are solutions of a differential equation. In order to determine which of the given functions is also a solution of the differential equation, we can use the fact that the differential equation is linear and homogeneous, which means that it satisfies the superposition principle.This means that if y1 and y2 are solutions, then any linear combination of y1 and y2 is also a solution. Therefore, we can take the linear combination:y = Ay1 + By2where A and B are constants. We can calculate the derivative of y as follows:y′ = A(ex)′ + B(e−x)′ = Aex − B e−xWe want to show that one of the given functions (sinh x, cosh x, sin x, cos x) can be written as y = Ay1 + By2 for some choice of constants A and B, which will imply that it is also a solution of the differential equation. Let's consider each of the given functions in turn:a) sinhx = (1/2)(ex − e−x)This means that we can write sinhx as a linear combination of y1 and y2 with A = 1/2 and B = −1/2:sinhx = (1/2)ex − (1/2)e−x. Therefore, sinhx is also a solution of the differential equation.b) coshx = (1/2)(ex + e−x)This means that we can write coshx as a linear combination of y1 and y2 with A = 1/2 and B = 1/2:coshx = (1/2)ex + (1/2)e−x. Therefore, coshx is also a solution of the differential equation.c) sinx = (1/2i)(ei x − e−i x)This means that we can write sinx as a linear combination of y1 and y2 with A = (1/2i) and B = (−1/2i):sinx = (1/2i)ex − (1/2i)e−x. Therefore, sinx is also a solution of the differential equation.d) cosx = (1/2)(ei x + e−i x)This means that we can write cosx as a linear combination of y1 and y2 with A = (1/2) and B = (1/2):cosx = (1/2)ex + (1/2)e−x. Therefore, cos x is also a solution of the differential equation.
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We have to prove that any one of these functions is also a solution of the given differential equation.So, to check whether it is a solution or not, we need to find its second derivative and put it in the given differential equation and check if it satisfies or not.
Let's check one by one:
(a) y =sinh xPutting y=sinhx y'=coshx y''=sinhx
Now, substituting these in the given differential equation, we get
LHS=y''-y=sinhx-sinhx=0
Therefore, y=sinh x is a solution of the given differential equation.
(b) y =cosh xPutting y=coshx y'=sinhx y''=coshx
Now, substituting these in the given differential equation, we get
LHS=y''-y=coshx-coshx=0
Therefore, y=cosh x is a solution of the given differential equation.
(c) y =sin xPutting y=sin x y' =cos x y''=-sin x
Now, substituting these in the given differential equation, we get
LHS=y''-y=-sin x-sin x=-2sinx ≠0
Therefore, y=sin x is not a solution of the given differential equation.
(d) y =cos xPutting y=cosx y'=-sin x y''=-cos x
Now, substituting these in the given differential equation, we get
LHS=y''-y=-cosx-cosx=-2cosx ≠0
Therefore, y=cos x is not a solution of the given differential equation.
(e) y =sinh x cosh x
Putting y=sinhx coshx y'=coshx coshx y''=sinhx coshx
Now, substituting these in the given differential equation, we get
LHS=y''-y=sinhx coshx-sinhx coshx=0
Therefore, y=sinh x cosh x is a solution of the given differential equation.
(f) y =cos x sinh x
Putting y=cosx sinh x y' =cos x cosh x y'' =-sin x cosh x
Now, substituting these in the given differential equation, we get
LHS=y''-y=-sinx coshx -cosx sinh x ≠0
Therefore, y=cos x sinh x is not a solution of the given differential equation.
Thus, the functions
y=sinh x, y=cosh x and y=sinh x cosh x
are solutions of the given differential equation.
Moreover, y=sin x, y=cos x and y=cos x sinh x are not solutions of the given differential equation.
Hence, the answer to the given problem is as follows:
sinhx, coshx and sinh(x)cosh(x)
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A magazine provided results from a poll of 1500 adults who were asked to identify their favorite pie. Among the 1500 respondents, 13% chose chocolate pie, and the margin of error was given as + 3 percentage points. Given specific sample data, which confidence interval is wider: the 90% confidence interval or the 80% confidence interval? Why is it wider? Choose the correct answer below. A. An 80% confidence interval must be wider than a 90% confidence interval because it contains 100% - 80% = 20% of the true population parameters, while the 90% confidence interval only contains 100% - 90% = 10% of the true population parameters.
B. A 90% confidence interval must be wider than an 80% confidence interval because it contains 90% of the true population parameters, while the 80% confidence interval only contains 80% of the true population parameters.
C. An 80% confidence interval must be wider than a 90% confidence interval in order to be more confident that it captures the true value of the population proportion.
D. A 90% confidence interval must be wider than an 80% confidence interval in order to be more confident that it captures the true value of the population proportion.
The 90% confidence interval is wider than the 80% confidence interval. This is because a higher confidence level requires a larger interval to capture a larger range of possible population parameters.
The correct answer is D: A 90% confidence interval must be wider than an 80% confidence interval in order to be more confident that it captures the true value of the population proportion.
A confidence interval represents the range of values within which we are confident the true population parameter lies. A higher confidence level requires a larger interval because we want to be more confident in capturing the true value.
In this case, the 90% confidence interval captures a larger proportion of the true population parameters (90%) compared to the 80% confidence interval (80%). Therefore, the 90% confidence interval must be wider than the 80% confidence interval to provide a higher level of confidence in capturing the true value of the population proportion.
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Exercises
For a numerical image shown below: assume that there are two different textures; one texture in the first four columns and the other in the remaining of the image.
0 1 2 3 4 5 6 3
1 2 3 0 5 6 7 6
2 3 0 1 5 4 7 7
3 0 1 2 4 6 5 6
3 2 1 0 4 5 6 3
2 3 2 3 6 5 5 4
1 2 3 0 4 5 6 7
3 0 2 1 7 6 4 5
1. Develop a set of views with a template size of 2 x 2 and 3 x 3.
2. Develop a set of characteristic K-views from Exercise #1 using the K-views-T algorithm.
3. Compare the performance of the K-views-T algorithm with different K values.
4. Implement the K-views-T algorithm using a high-level programming language and apply the algorithm to an image with different textures.
The process involves dividing the image into views using specified template sizes, applying the K-views-T algorithm to select characteristic views, and evaluating the algorithm's performance with different K values.
What is the process for developing characteristic K-views using the K-views-T algorithm and how does it compare with different K values?1. Developing views with different template sizes (2x2 and 3x3) involves dividing the image into overlapping subregions of the specified size and extracting the values within those subregions.
This process is repeated for each position in the image to generate the corresponding views.
2. The characteristic K-views can be obtained using the K-views-T algorithm. This algorithm selects the most representative views from the set of views obtained in Exercise #1.
The selection is based on certain criteria such as distinctiveness, diversity, and information content. These selected views form the characteristic K-views.
3. Comparing the performance of the K-views-T algorithm with different K values involves evaluating the effectiveness of the algorithm in capturing the essential features of the image.
Higher values of K may result in a larger set of characteristic views, which could provide more detailed information but may also increase computational complexity.
4. Implementing the K-views-T algorithm using a high-level programming language requires coding the algorithm logic.
The algorithm can be applied to an image with different textures by first generating the views using the specified template size and then applying the selection process to obtain the characteristic K-views.
The resulting characteristic views can be used for further analysis or processing tasks specific to the image with different textures.
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6. Given functions f(x) = 2x² + 5x+1 and g(x) = (x + 1)³, (a) The graphs of functions f and g intersect each other at three points. Find the (x, y) coordinates of those points. (b) Sketch the graphs of functions f and g on the same set of axes. You may use technology to help you. (c) Find the total area of the region(s) enclosed by the graphs of f and g.
a. To find the (x, y) coordinates where the graphs of functions f(x) = 2x² + 5x + 1 and g(x) = (x + 1)³ intersect, we set the two functions equal to each other and solve for x. 2x² + 5x + 1 = (x + 1)³
Expanding the cube on the right side gives:
2x² + 5x + 1 = x³ + 3x² + 3x + 1
Rearranging terms and simplifying:
x³ + x² - 2x = 0
Factoring out an x:
x(x² + x - 2) = 0
Setting each factor equal to zero, we have:
x = 0 (one solution)
x² + x - 2 = 0 (remaining solutions)
Solving the quadratic equation x² + x - 2 = 0, we find two more solutions: x = 1 and x = -2.
Therefore, the (x, y) coordinates of the three points of intersection are:
(0, 1), (1, 8), and (-2, -1).
b. The graphs of functions f(x) = 2x² + 5x + 1 and g(x) = (x + 1)³ can be sketched on the same set of axes using technology or by hand. The graph of f(x) is a parabola that opens upward, while the graph of g(x) is a cubic function that intersects the x-axis at x = -1. To sketch the graphs, plot the three points of intersection (0, 1), (1, 8), and (-2, -1) and connect them smoothly. The graph of f(x) will lie above the graph of g(x) in the regions between the points of intersection. c. To find the total area of the region(s) enclosed by the graphs of f and g, we need to calculate the definite integrals of the absolute difference between the two functions over the intervals where they intersect.
The total area can be found by evaluating the integrals:
∫[a, b] |f(x) - g(x)| dx
Using the coordinates of the points of intersection found in part (a), we can determine the intervals [a, b] where the two functions intersect.
Evaluate the integral separately over each interval and sum the results to find the total area enclosed by the graphs of f and g.
Note: The detailed calculation of the definite integrals and the determination of the intervals cannot be shown within the given character limit. However, by following the steps mentioned above and using appropriate integration techniques, you can find the total area of the region(s) enclosed by the graphs of f and g.
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Let r 6= 1 be a real number. Prove that ¹ ⁺ ʳ ⁺ ʳ ² ⁺ ... ⁺ ʳ ⁿ−¹ ⁼ ¹ − ʳ ⁿ ¹ − ʳ , for every positive integer n.
THE r ≠ 1 be a real number. Prove that 1+ r+ r²+....+ r^(n-1) = (1-rⁿ)/(1-r), for every positive integer n.
Let S = 1+ r+ r²+....+ r^(n-1)be the sum of n terms of a G.P with first term '1' and common ratio 'r'. Multiply S by r and obtain rS = r+ r²+....+ r^n ....(1)
Subtract equation (1) from (S):S - rS = 1- r^n=> S(1-r) = (1- r^n) => S= (1-r^n)/(1-r)This is the required sum of n terms of the G.P.1+ r+ r²+....+ r^(n-1) = (1-rⁿ)/(1-r)
We are given a real number r that is not equal to one.
We need to prove that 1+ r+ r²+....+ r^(n-1) = (1-rⁿ)/(1-r), for every positive integer n. The proof involves using the formula for the sum of the n terms of a geometric progression.
Hence, THE r ≠ 1 be a real number.Prove that 1+ r+ r²+....+ r^(n-1) = (1-rⁿ)/(1-r), for every positive integer n.
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The average 1-year old (both genders) is 29 inches tall. A random sample of 30 1-year-olds in a large day care franchise resulted in the following heights. At a = 0.05, can it be concluded that the average height differs from 29 inches? Assume o = 2.61. 25 32 35 25 30 26.5 26 25.5 29.5 32 30 28.5 30 32 28 31.5 29 29.5 30 34 29 32 29 29.5 27 28 33 28 27 32 (* = 29.45 Do not reject the null hypothesis. There is not enough evidence to say that the average height differs from 29 inches.)
At a significance level of 0.05, it cannot be concluded that the average height of 1-year-olds differs from 29 inches, as the sample data does not provide sufficient evidence to reject the null hypothesis.
To determine whether the average height of 1-year-olds in the day care franchise differs from 29 inches, we can conduct a hypothesis test using the given data.
Let's follow the five steps of hypothesis testing:
State the hypotheses.
The null hypothesis (H0): The average height of 1-year-olds in the day care franchise is 29 inches.
The alternative hypothesis (Ha): The average height of 1-year-olds in the day care franchise differs from 29 inches.
Set the significance level.
The significance level (α) is given as 0.05, which means we want to be 95% confident in our results.
Compute the test statistic.
Since we have the population standard deviation (σ), we can perform a z-test. The test statistic (z-score) is calculated as:
z = (sample mean - population mean) / (population standard deviation / √sample size)
Sample size (n) = 30
Sample mean ([tex]\bar{x}[/tex]) = average of the heights in the sample = 29.45 inches
Population mean (μ) = 29 inches
Population standard deviation (σ) = 2.61 inches
Plugging in these values, we get:
z = (29.45 - 29) / (2.61 / √30)
z ≈ 0.45 / 0.476
z ≈ 0.945
Determine the critical value.
Since we are conducting a two-tailed test (since the alternative hypothesis is non-directional), we divide the significance level by 2.
At a significance level of 0.05, the critical values (z-critical) are approximately -1.96 and 1.96.
Make a decision and interpret the results.
The test statistic (0.945) falls within the range between -1.96 and 1.96. Thus, it does not exceed the critical values.
Therefore, we fail to reject the null hypothesis.
Based on the results, at a significance level of 0.05, we do not have enough evidence to conclude that the average height of 1-year-olds in the day care franchise differs from 29 inches.
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Question 1 5 pts Given the function: x(t) = 4t³-1t² - 4 t + 50. What is the value of x at t = 3? Please express your answer as a whole number (integer) and put it in the answer box.
The function x(t) = 4t³ - t² - 4t + 50 is given. We need to find the value of x when t = 3.
Given the function x(t) = 4t³-1t² - 4 t + 50, we can find the value of x at t = 3 by substituting t = 3 into the function. This gives us x(3) = 4(3)³ - (3)² - 4(3) + 50 = 108 - 9 - 12 + 50 = 137. Therefore, the value of x at t = 3 is 137. To find the value of x at t = 3, we substitute t = 3 into the given function and evaluate it. x(3) = 4(3)³ - (3)² - 4(3) + 50 = 4(27) - 9 - 12 + 50 = 108 - 9 - 12 + 50 = 137. Therefore, the value of x at t = 3 is 137.
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