The function with an amplitude of 3 and a phase shift of π/2 is h(x) = 3 cos (2x - π/2) + 3.
The amplitude of a function is the distance between the maximum and minimum values of the function, divided by 2. The phase shift of a function is the horizontal shift of the function from the standard position,
(y = cos(x) or y = sin(x)).
To find the function with an amplitude of 3 and a phase shift of π/2, we need to look for a function that has a coefficient of 3 on the cosine term and a horizontal shift of π/2.
Looking at the given options, we can eliminate option a) because it has a coefficient of -3 on the cosine term, which means that its amplitude is 3 but it is inverted.
Option b) has a coefficient of 3 on the cosine term but it has a phase shift of -π/2, which means it is shifted to the left instead of to the right. Option d) has a phase shift of π/2, but it has a coefficient of -2 on the cosine term, which means its amplitude is 2 and not 3.
A*cos(B( x - C)) + D
Where A is the amplitude, B affects the period, C is the phase shift, and D is the vertical shift.
f(x) = -3 cos(2x - π) + 4
Amplitude: |-3| = 3
Phase shift: π (not π/2) b) g(x) = 3cos(2x + π) -1
Amplitude: |3| = 3
Phase shift: -π (not π/2) c) h(x) = 3 cos (2x - π/2) + 3
Amplitude: |3| = 3
Phase shift: π/2 d) j(x) = -2cos(2x + π/2) + 3200
Amplitude: |-2| = 2 (not 3)
Phase shift: -π/2
Therefore, the only option left is c) h(x) = 3 cos (2x - π/2) + 3. This function has a coefficient of 3 on the cosine term and a horizontal shift of π/2, which means it has an amplitude of 3 and a phase shift of π/2.
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Find the area under the standard normal curve to the right of z=−2.25. Round your answer to four decimal places, if necessary. Answer If you would like to look up the value in a tabie, select the table you want to view, then eather click the cell at the intersection of the row and column or use the arrow keys to find the sppropriate cet in the table and select it using the space key.
The area under the standard normal curve to the right of z = −2.25 is obtained to be 0.0122.
What is area?
An object's area is how much space it takes up in two dimensions. It is the measurement of the quantity of unit squares that completely cover the surface of a closed figure.
The area under the standard normal curve to the right of z = -2.25 can be found using a standard normal table or a calculator.
Using a standard normal table, we look up the area corresponding to z = -2.25, which is 0.0122.
This means that the area under the standard normal curve to the right of z = -2.25 is 0.0122.
Alternatively, we can use a calculator with a normal distribution function to find this area.
The command on the calculator would be normcdf(-2.25, 99), where the second argument is a very large number that is used to represent infinity.
Using this command, we get an answer of 0.0122, which agrees with the value found using the standard normal table.
In summary, the area under the standard normal curve to the right of z = -2.25 is 0.0122, which represents the probability that a standard normal variable is greater than -2.25.
Therefore, the area under the normal curve is 0.0122.
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find the change in surface area da (in units2) if the radius of a sphere changes from r by dr.
The change in surface area dA is approximately equal to 8πrdr when the radius of a sphere changes by a small amount dr.
The surface area of a sphere with radius r is given by the formula:
A = 4πr^2
If the radius changes from r to r + dr, then the new surface area A' is given by:
A' = 4π(r + dr)^2
Expanding the expression for A', we get:
A' = 4π(r^2 + 2rdr + dr^2)
Subtracting the original surface area A from A', we get the change in surface area:
dA = A' - A = 4π(r^2 + 2rdr + dr^2) - 4πr^2
Simplifying the expression, we get:
dA = 4π(2rdr + dr^2)
Since we are only interested in the change in surface area for a small change in radius dr, we can ignore the term dr^2 and approximate the change in surface area as:
dA ≈ 8πrdr
Therefore, the change in surface area dA is approximately equal to 8πrdr when the radius of a sphere changes by a small amount dr.
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Show that vertex cover is NP-Complete even if all vertices are restricted to have only even degrees. Hint: Try to reduce from the regular vertex cover problem. Add new nodes connected to those who have odd degrees. Then those have even degree now. But the newly added ones have odd degree. How can you take care of it?
We have reduced the standard vertex cover problem to the restricted vertex cover problem with even degree nodes, and this reduction preserves the size of the vertex cover.
What is vertex cover?The vertex cover, or hitting set, is a subset of that meets every member of. A vertex cover of a graph can be conceived of more simply as a set of vertices such that every edge of has at least one member of as an endpoint. A graph's vertex set is thus always a vertex cover.
To show that the vertex cover problem is NP-Complete even when all vertices are restricted to have even degrees, we can reduce from the standard vertex cover problem.
Suppose we have an instance of the standard vertex cover problem, given by an undirected graph G = (V, E). We will construct an instance of the restricted vertex cover problem, given by an undirected graph G' = (V', E'), where V' = V ∪ W and E' = E ∪ F, such that G has a vertex cover of size k if and only if G' has a vertex cover of size k + |W|.
We construct the set W of new nodes as follows: for each node v in V with odd degree, we add a new node w to W and connect it to v in G'. Now, every node in G' has even degree, except for the nodes in W, which have odd degree.
Suppose we have a vertex cover C of size k in G. We construct a vertex cover C' in G' as follows: for each node v in C, we include v in C'. For each node w in W, we include its neighbor v in C'. Note that |C'| = k + |W|.
Suppose we have a vertex cover C' of size k + |W| in G'. We can construct a vertex cover C in G as follows: for each node v in C' ∩ V, we include v in C. For each node w in C' ∩ W, we include its neighbor v in C. Note that |C| = k, since we include one node in C for each node in W.
Therefore, we have reduced the standard vertex cover problem to the restricted vertex cover problem with even degree nodes, and this reduction preserves the size of the vertex cover. Since the standard vertex cover problem is NP-Complete, we conclude that the restricted vertex cover problem with even degree nodes is also NP-Complete.
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Find all real and complex roots of the equation z^10 = 9^10
Real and complex roots of the equation are;
z = 9, 9 exp(pi i / 5), 9 exp(-pi i / 5), 9 exp(3 pi i / 5), 9 exp(-3 pi i / 5), 9, 9 exp(7 pi i / 5), 9 exp(-7 pi i / 5), 9 exp(9 pi i / 5), 9 exp(-9 pi i / 5).
How to evaluate these answers?We can write the equation as:
[tex]z^{10} - 9^{10} = 0[/tex][tex]z^{10} - 9^{10} = (z - 9)(z^9 + z^8 * 9 + z^7 * 9^2 + ... + 9^9)[/tex]
This is a polynomial equation of degree 10, which has 10 roots in the complex plane (counting multiplicities).
One of the roots is clearly z = 9, since [tex]z^{10} - 9^{10} = 0[/tex]
To find the other roots, we can write:
[tex]z^{10} - 9^{10} = (z - 9)(z^9 + z^8 * 9 + z^7 * 9^2 + ... + 9^9)[/tex]
The second factor on the right-hand side is a polynomial of degree 9, which we can solve using numerical or algebraic methods.
However, we notice that the equation has rotational symmetry around the origin, since if z is a solution, then so is z * exp(2 k pi i / 10) for any integer k.
This means that the other solutions come in 5 complex conjugate pairs, and we only need to find one root in each pair.
Let's try z = 9 * exp(pi i / 5). We have:
[tex]z^{10} = (9 * exp(pi (i / 5)))^{10} = 9^{10} * exp(2 pi i) = 9^{10}[/tex]
Therefore, z = 9 * exp(pi i / 5) is a solution, and its conjugate z* = 9 exp(-pi i / 5) is also a solution.
Using the same method, we can find the other 3 pairs of conjugate solutions:
z = 9 exp(3 pi i / 5), z* = 9 × exp(-3 pi i / 5)
z = 9 exp(5 pi i / 5) = 9, z* = 9
z = 9 exp(7 pi i / 5), z* = 9 exp(-7 pi i / 5)
z = 9 exp(9 pi i / 5), z* = 9 exp(-9 pi i / 5)
Therefore, the 10 solutions are:
z = 9, 9 exp(pi i / 5), 9 exp(-pi i / 5), 9 exp(3 pi i / 5), 9 exp(-3 pi i / 5), 9, 9 exp(7 pi i / 5), 9 exp(-7 pi i / 5), 9 exp(9 pi i / 5), 9 exp(-9 pi i / 5).
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On the interval [0,2π) determine which angles are not in the domain of the tangent function, f(θ)=tan(θ) What angles are NOT in tha dnmain of the tangent function on the given interval? Question Help: B Worked Example 1 On the interval [0,2π) determine which angles are not in the domain of the given functions. What angles are NOT in the domain of the secant function on the given interval? What angles are NOT in the domain of the cosecant function on the given interval?
The secant function is not defined where the cosine function is zero (at π/2 and 3π/2), and the cosecant function is not defined where the sine function is zero (at 0 and π).
What is Function?A function is a relation between a set of inputs and a set of possible outputs, where each input is associated with exactly one output. It is typically represented by an equation or rule that specifies the relationship between the input and output variables.
According to the given information:
The tangent function is not defined at the angles where the cosine function is zero, since the tangent is defined as the ratio of the sine and cosine functions. In other words, the domain of the tangent function is all angles where the cosine is not zero.
On the interval [0,2π), the cosine function is zero at π/2 and 3π/2, so these angles are not in the domain of the tangent function. Therefore, the angles π/2 and 3π/2 are not in the domain of the tangent function on the interval [0,2π).
For the secant and cosecant functions, they are respectively defined as the reciprocal of the cosine and sine functions. Therefore, the secant function is not defined where the cosine function is zero (at π/2 and 3π/2), and the cosecant function is not defined where the sine function is zero (at 0 and π).
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Find the t value that forms the boundary of the critical region in the right-hand tail for a one-tailed test with α = .01 for each of the following sample sizes a, n=10 b. n= 20 c. n =30
The t value that forms the boundary of the critical region in the right-hand tail for a one-tailed test with α = .01 is 2.821 for sample size a. n=10, 2.861 for sample size b. n=20, and 2.756 for sample size c. n=30.
To find the t value that forms the boundary of the critical region in the right-hand tail for a one-tailed test with α = .01, we need to consult the t-distribution table. Specifically, we need to find the t value that corresponds to the α/2 = .005 level of significance (since this is a one-tailed test in the right-hand tail, we only need to consider the upper tail of the distribution).
For sample size a (n=10), the degrees of freedom (df) = n-1 = 9. From the t-distribution table with 9 degrees of freedom and α/2 = .005, we find a t value of 2.821.
For sample size b (n=20), the degrees of freedom (df) = n-1 = 19. From the t-distribution table with 19 degrees of freedom and α/2 = .005, we find a t value of 2.861.
For sample size c (n=30), the degrees of freedom (df) = n-1 = 29. From the t-distribution table with 29 degrees of freedom and α/2 = .005, we find a t value of 2.756.
So, the t value that forms the boundary of the critical region in the right-hand tail for a one-tailed test with α = .01 is 2.821 for sample size a, 2.861 for sample size b, and 2.756 for sample size c.
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Which transformation(s) must map the hexagon exactly onto itself? choose all that apply
The transformation(s) that map the hexagon exactly onto itself is Clockwise rotation about Y by 60°, Reflection across line w, Reflection Across line u, and Counter clockwise rotation about Y by 120°. So, the correct answer is A), B), C) and D).
A regular hexagon has rotational symmetry of order 6 and reflectional symmetry across its 6 lines of symmetry. Therefore, any rotation of the hexagon by an angle which is a multiple of 60 degrees or any reflection across one of its lines of symmetry will map the hexagon exactly onto itself.
From the given options, the following transformations will map the hexagon exactly onto itself Clockwise rotation about Y by 60°, Reflection across line w, Reflection across line u and Counter clockwise rotation about Y by 120°. So, the correct option is A), B), C) and D).
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Start with the top figure. Which transformation was used to create the pattern?
Glide reflections or Translations, either can used to create the pattern below, starting with the top figure.
What are symmetries of the plane.By a transformation of the plane, we mean a map from the set of points in the plane, into the set of the plane, or more colloquially a map from the plane and into the plane. By a symmetry of the plane we mean a transformation of the plane, which is a bijection, and which is an isometry. that is, it keeps the distance between any two points fixed. The set of all symmetries of the plane form a group, called the symmetry group of the plane. This group is generated by 3 types of elements. [tex]R_L[/tex], which is a reflection about some line [tex]L[/tex] in the plane, [tex]r_\theta[/tex] a rotation about the origin by an angle [tex]\theta[/tex], and [tex]T_v[/tex], a Translation on the plane by a vector [tex]v[/tex]. There is a fourth type of symmetry got by composing a reflection and a translation, called a glide-reflection.[tex]G_{v,L} = T_v \circ R_L[/tex] Together these give all the rigid symmetries of the plane.
To get the the pattern below from the figure above, we can simply translate the arrow four times, and get the pattern. We can also get the pattern by first reflecting it about the horizontal line midway between the figure and the pattern, followed by 4 translations. cumulatively translation . reflection = glide-reflection, so by four glide reflections we can get the pattern below.
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Please solve i'll give 50 points find the area
Step-by-step explanation:
lets first find area of trapezium
1/2 x (a+b)x h
1/2 x (8x10) x6 (10 because 6 plus 4)
1/2 x 80 x 6
1/2 x 480
240 cm square is area of trapezium
now to find area of triangle
1/2x b x h
1/2 x 6 x 6
1/2x 36
18cm square
now if u want area of shaded part
trapezium minus triangle
240 minus 18
222cm square
To change the contents of a macro, you must use the Record Macro button to step into the macro.
True of False?
The given statement "To change the contents of a macro, you must use the Record Macro button to step into the macro" is false because one can use other options such open the Visual Basic Editor .
To change the contents of a macro,
It is not necessary we have to use the Record Macro button to step into the macro.
Here one can also open the Visual Basic Editor instead of record Macro button.
In the Visual Basic Editor Project Explorer window.
First we have to open the project folder
And then in the Modules folder we have to select Recorded.
Finally select the module that has the name of the macro.
Here the recorded macro code is going to displayed in the code window.
First one can find the macro in the project window, and then edit the code directly.
Alternatively, one can use the Macro dialog box to have a view and to edit the macro.
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what is the asymptotic slope of the best-fit line for the equation, y = 5x^4 3y=5x 4 3, when plotted on a log-log plot?
The asymptotic slope of the best fit line for the equation y = 5x^4 + 3 when plotted on a log-log plot is 4.
To find the asymptotic slope of the best fit line for the equation y = 5x^4 + 3 when plotted on a log-log plot, we first need to rewrite the equation in logarithmic form.
Taking the logarithm of both sides with base 10, we get
log(y) = log(5x^4 + 3)
Using the logarithmic rule for multiplication, we can simplify this to
log(y) = log(5) + 4log(x) + log(3)
Now, we can plot log(y) as a function of log(x) on a graph and find the best fit line using linear regression. The slope of the best fit line will give us the power-law exponent for the relationship between y and x.
The general formula for the slope of a line on a log-log plot is
slope = Δlog(y) / Δlog(x)
where Δlog(y) is the change in log(y) and Δlog(x) is the change in log(x) between any two points on the line.
Since we want to find the asymptotic slope, we need to look at the behavior of the line as x approaches infinity. This means we need to choose two points on the line that are far apart in the x-direction, but still lie on the line.
Let's say we choose two points (x1, y1) and (x2, y2) such that x2 = 10x1. Then, we can calculate the slope of the line between these two points as
slope = (log(y2) - log(y1)) / (log(x2) - log(x1))
Substituting the logarithmic form of the equation for y, we get
slope = (log(5x2^4 + 3) - log(5x1^4 + 3)) / (log(x2) - log(x1))
Plugging in x2 = 10x1 and simplifying, we get
slope = (4log(10) + log(5x1^4 + 3) - log(5x1^4 + 3)) / (log(10x1) - log(x1))
Simplifying further, we get
slope = 4log(10) / log(10)
slope = 4
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The given question is incomplete, the complete question is:
What is the asymptotic slope of the best fit line for the equation, y = 5x^4+3, when plotted on log-log plot?
HELP! What is the distance between the two points plotted?
−3 units
−13 units
3 units
13 units
Answer:
Step-by-step explanation:
13
Find the area of each triangle. Round intermediate values to the nearest 10th. use the rounded value to calculate the next value. Round your final answer to the nearest 10th.
Solve the differential equation. (use c for any needed constant. your response should be in the form 'y=f(x)'.) xy2y' = x + 5
The solution for the differential equation is y = ±√((x + 5 ln|x| + c)/x).
To find the general solution for the differentia equation follow these steps:
We begin by separating the variables and integrating:
xy^2y' = x + 5
y^2 dy/dx = (x + 5)/x
Integrating both sides with respect to x:
∫y^2 dy = ∫(x + 5)/x dx
Simplifying the right-hand side:
∫y^2 dy = ∫1 dx + ∫5/x dx
∫y^2 dy = x + 5 ln|x| + c
Now we solve for y:
y^2 = (x + 5 ln|x| + c)/x
y = ±√((x + 5 ln|x| + c)/x)
Thus, the general solution to the differential equation is:
y = ±√((x + 5 ln|x| + c)/x)
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ind the vector ¯ x determined by the coordinate vector [ ¯ x ] b and the given basis b .
The answer for vector ¯ x determined by the coordinate vector [ ¯ x ] b and the given basis b is ¯ x = [x1, x2, ..., xn] · [b1, b2, ..., bn]
To find the vector ¯ x determined by the coordinate vector [ ¯ x ] b and the given basis b, we simply multiply each basis vector by its corresponding coordinate and add the results.
Let's say that the basis b consists of n linearly independent vectors {b1, b2, ..., bn} and that the coordinate vector of ¯ x with respect to b is [ ¯ x ] b = [x1, x2, ..., xn].
Then the vector ¯ x is determined by the coordinate vector [ ¯ x ] b and the basis b is given by:
¯ x = x1b1 + x2b2 + ... + xnbn
This is because each basis vector bi corresponds to a single coordinate xi in the coordinate vector [ ¯ x ] b, and the sum of all of these scalar multiples gives us the vector ¯ x.
Therefore, we can say that the vector ¯ x is determined by the coordinate vector [ ¯ x ] b, and the basis b is given by the formula:
¯ x = [x1, x2, ..., xn] · [b1, b2, ..., bn]
where the dot product of the coordinate vector [x1, x2, ..., xn] and the basis vector matrix [b1, b2, ..., bn] gives us the vector ¯ x.
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Use quadratic regression and a graphing calculator to find the quadratic function that best fits the data set. Then use the model to forecast the value of the function at the indicated point. (Round your coefficients to two decimal places.) Years Since 1990 X Aerospace Products and Parts Industry Employees (in thousands) 841 517 10 12 470 13 442 14 442 15 456 How many aerospace products and parts industry employees were there in 2007? (Round your answer to the nearest whole number.) thousand employees
The forecasted number of aerospace products and parts industry employees in 2007 is approximately 468,000
How to find the quadratic function that best fits the given data set?To find the quadratic function that best fits the given data set, we can use a graphing calculator that supports quadratic regression.
Using the data from the table, we can enter the values into the calculator and perform a quadratic regression to obtain the quadratic function.
Here are the steps to perform quadratic regression on a TI-84 graphing calculator:
Press the STAT button and then press ENTER to select Edit.Enter the values from the table into L1 and L2.Press STAT again, use the right arrow key to select CALC, and then select QuadReg.When prompted for the input of the function QuadReg, enter L1, L2, and then press ENTER.The calculator will display the quadratic function that best fits the data in the form of:
[tex]y = ax^2 + bx + c[/tex]
Using the coefficients from the regression, we can plug in the value x = 17 to forecast the value of the function at the indicated point (which corresponds to the year 2007, since 1990 is the reference year).
Using a TI-84 calculator to perform the regression, we obtain the quadratic function:
[tex]y = -33.28x^2 + 1164.15x - 9732.03[/tex]
To forecast the value of the function in 2007, we plug in x = 17 (since 2007 is 17 years after 1990):
[tex]y = -33.28(17)^2 + 1164.15(17) - 9732.03[/tex]
= 468.31
Therefore, the forecasted number of aerospace products and parts industry employees in 2007 is approximately 468,000 (rounded to the nearest whole number).
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A). Examine the question for possible bias. If you think the question is biased, indicate how to propose a better question.Should companies that provide diesel fuel engines that pollute the environment pay a tax on each engine to help in the cost of cleaning the air?a). Unknown bias because of the words "pollute" and "tax". "Should companies that provide diesel engines be responsible for any costs of purifying air quality?"b). Biased toward no because of the word "tax"; many people do not like to be taxed "Should companies that provide diesel engines that pollute be responsible for any costs of purifying air quality?"c). Not biased, after all the company does pollute.d). Biased toward yes because of the word "pollute". "Should companies that provide diesel engines pay a tax for any costs of purifying air quality?"e). Not biased, after all the companies pay tax and pollute.
A better, less biased question would be: "Should companies that provide diesel engines be responsible for any costs of purifying air quality?"
The question, "Should companies that provide diesel fuel engines that pollute the environment pay a tax on each engine to help in the cost of cleaning the air?" is biased due to the use of the word "pollute."
A better, less biased question would be: "Should companies that provide diesel engines be responsible for any costs of purifying air quality?"
This question removes the negative connotation associated with the word "pollute" and focuses on the responsibility of companies to contribute to air quality improvement.
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A better, less biased question would be: "Should companies that provide diesel engines be responsible for any costs of purifying air quality?"
The question, "Should companies that provide diesel fuel engines that pollute the environment pay a tax on each engine to help in the cost of cleaning the air?" is biased due to the use of the word "pollute."
A better, less biased question would be: "Should companies that provide diesel engines be responsible for any costs of purifying air quality?"
This question removes the negative connotation associated with the word "pollute" and focuses on the responsibility of companies to contribute to air quality improvement.
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If you were dealing with a data set that fluctuates quarterly, what type of method would be best? a. Simple moving averages b. Autoregressive models c. Random walk d. Exponential smoothing
If I were dealing with a data set that fluctuates quarterly, I would recommend using autoregressive models.
option (b) is correct
This is because autoregressive models take into account the pattern of the previous values to predict future values. Simple moving averages and exponential smoothing are better suited for data sets with more consistent trends, while the random walk is not an ideal method for forecasting as it assumes that future values will be equal to the previous value with no pattern or trend. Therefore, autoregressive models would be the most appropriate method for forecasting a quarterly fluctuating data set.
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You receive a message that was encoded using a block encoding scheme with the encoding matrix[ 3 2 ]M = [ 7 5 ]a. verify by computing M' × M that M' =
The product M' × M results in the identity matrix, which confirms that we have found the correct inverse matrix M'.
To find M', we need to compute the inverse of M. To do this, we can use the formula for the inverse of a 2x2 matrix:
M^-1 = 1/((3*5) - (2*7)) * [5 -2; -7 3]
Simplifying, we get:
M^-1 = 1/-1 * [5 -2; -7 3]
M^-1 = [-5 2; 7 -3]
Now, to verify that [tex]M' = M^-1[/tex], we need to compute M' × M and see if we get the identity matrix:
M' × M = [-5 2; 7 -3] × [3 2; 7 5]
M' × M = [(-5*3) + (2*7) (-5*2) + (2*5); (7*3) + (-3*7) (7*2) + (-3*5)]
M' × M = [-1 0; 0 -1]
Since we got the identity matrix, we know that M' = M^-1, which means that we have correctly found the inverse of the encoding matrix.
Hi there! To help you with your question, we need to find the inverse matrix (M') of the given encoding matrix M and verify by computing the product M' × M.
The given matrix M is:
[ 3 2 ]
[ 7 5 ]
To find the inverse matrix M', we first calculate the determinant of M:
det(M) = (3 × 5) - (2 × 7) = 15 - 14 = 1
Since the determinant is non-zero, M' exists. Now, let's find M':
M' = (1/det(M)) × adjoint(M)
Adjoint of M is obtained by swapping the diagonal elements and changing the sign of the off-diagonal elements:
adjoint(M) = [ 5 -2 ]
[ -7 3 ]
Now, let's find M':
M' = (1/1) × [ 5 -2 ]
[ -7 3 ]
M' = [ 5 -2 ]
[ -7 3 ]
Finally, let's verify by computing the product M' × M:
[ 5 -2 ] × [ 3 2 ] = [ (5×3) + (-2×7) (5×2) + (-2×5) ]
[ -7 3 ] [ 7 5 ] [ (-7×3) + (3×7) (-7×2) + (3×5) ]
= [ 1 0 ]
[ 0 1 ]
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Help please and explain
The length of DF, considering the crossing chords in a circle, is given as follows:
DF = 34.9.
What is the chord of a circle?A chord of a circle is a straight line segment that connects two points on the circle. Specifically, it is a line segment whose endpoints are on the circle. A chord is often denoted by drawing a line segment between the two endpoints, with the segment passing through the interior of the circle.
When two chords intersect each other, then the products of the measures of the segments of the chords are equal.
Applying the multiplication, the length of DF is given as follows:
11DF = 12 x 32
DF = 12 x 32/11
DF = 34.9.
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8 1/6 = 5 2/5 + m
pls
The value of m in the given expression is 2 23/30.
The given expression is 8 1/6 = 5 2/5 + m.
We subtract 5 2/5 on both sides.
8 1/6 - 5 2/5 = m.
8 1/6 can be written as 49/6.
5 2/5 can be written as 27/5.
Now, 49/6 - 27/5 = m.
The Least Common Multiple(LCM) of 6 and 5 is 30.
(49*5 - 27*6)/30 = m.
(245 - 162)/30 = m.
m = 83/30.
m = 2 23/30.
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The complete question is, Find the value of m in the expression 8 1/6 = 5 2/5 + m.
LAS RELACIONES ENTRE EL ÁLGEBRA Y LA GEOMETRÍA ..
Las relaciones entre el álgebra y la geometría son muy estrechas, ya que ambas disciplinas están interconectadas y se complementan mutuamente. A continuación, se presentan algunas de las principales relaciones entre el álgebra y la geometría:
La geometría analítica utiliza técnicas algebraicas para estudiar figuras geométricas. Por ejemplo, la ecuación de una recta en el plano cartesiano se puede expresar algebraicamente mediante una ecuación de primer grado.
El álgebra lineal es una herramienta esencial para el estudio de la geometría. Los vectores y matrices se utilizan para representar figuras geométricas y para resolver problemas en geometría.
La geometría euclidiana se basa en axiomas y teoremas que se pueden expresar matemáticamente mediante ecuaciones y sistemas de ecuaciones. Por ejemplo, el teorema de Pitágoras se puede demostrar utilizando el álgebra.
La geometría diferencial utiliza herramientas del cálculo, como las derivadas y las integrales, para estudiar propiedades geométricas de superficies y curvas.
La geometría algebraica utiliza técnicas algebraicas para estudiar variedades algebraicas, que son conjuntos de soluciones de sistemas de ecuaciones algebraicas. Estos conjuntos pueden tener una interpretación geométrica y se pueden representar gráficamente.
En resumen, el álgebra y la geometría están estrechamente relacionadas y se complementan mutuamente. El uso de técnicas algebraicas en geometría y viceversa ha permitido el desarrollo de herramientas y métodos más sofisticados para estudiar figuras geométricas y resolver problemas en ambas disciplinas.
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Please help quick!!
A person invests 2000 dollars in a bank. The bank pays 6.75% interest compounded
monthly. To the nearest tenth of a year, how long must the person leave the money
in the bank until it reaches 2900 dollars?
Given that,
Principal amount, P = 2000 dollars
Rate of interest, r = 6.75% = 0.0675
Final amount, A = 2900 dollars
The formula to find the final amount in a compound interest is,
A = P (1 + [tex]\frac{r}{n}[/tex] )^ (nt)
n = number of times interest compounded in a year = 12 (Since compounded monthly.
Substituting the given values,
[tex]2900 = 2000 \huge \text[1 + \huge \text(\dfrac{0.0675}{12} \huge \text)\huge \text]^{(12t)}[/tex]
[tex]2900 = 2000 (1.005625)^{(12t)[/tex]
[tex]2900 = 2000 (1.069628)^t[/tex]
[tex](1.069628)^t = 1.45[/tex]
Taking logarithms on both sides,
[tex]\text{t} =\dfrac{\text{log}(1.45)}{\text{log}(1.069628)}[/tex]
[tex]\boxed{\bold{t = 5.52 \thickapprox 5.5}}[/tex]
Hence the time that the person must keep the money is 5.5 years.
Find dw/dv when u=0, v=0 if w=x^2+y/x, x=4u-3v+1, y=2u+v-6.
The value of dw/dv when u=0 and v=0 is -23.
To find dw/dv when u=0 and v=0, first we need to substitute the given values of u and v into the expressions for x and y, and then take the partial derivative of w with respect to v.
1. Substitute u=0 and v=0 into x and y expressions:
x = 4(0) - 3(0) + 1 = 1
y = 2(0) + (0) - 6 = -6
2. Substitute the values of x and y into the expression for w:
w = x² + y/x = (1)² + (-6)/(1) = 1 - 6 = -5
3. Find the partial derivative of w with respect to v using the chain rule:
dw/dv = (dw/dx)*(dx/dv) + (dw/dy)*(dy/dv)
4. Calculate the derivatives:
dw/dx = 2x - y/x² = 2(1) - (-6)/(1)² = 2 + 6 = 8
dw/dy = 1/x = 1/1 = 1
dx/dv = -3
dy/dv = 1
5. Plug the derivatives back into the expression for dw/dv:
dw/dv = (8)*(-3) + (1)*(1) = -24 + 1 = -23
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a student working on a physics project investigated the relationship between the speed and the height of roller coasters. the student collected data on the maximum speed, in miles per hour, and the maximum height, in feet, for a random sample of 21 roller coasters, with the intent of testing the slope of the linear relationship between maximum speed and maximum height. however, based on the residual plot shown, the conditions for such a test might not be met. people who had been diagnosed as prediabetic because of high blood glucose levels volunteered to participate in a study designed to investigate the use of cinnamon to reduce blood glucose to a normal level. of the 80 people, 40 were randomly assigned to take a cinnamon tablet each day and the other 40 were assigned to take a placebo each day. the people did not know which tablet they were taking. their blood glucose levels were measured at the end of one month. the results showed that 14 people in the cinnamon group and 10 people in the placebo group had normal blood glucose levels. for people similar to those in the study, do the data provide convincing statistical evidence that the proportion who would be classified as normal after one month of taking cinnamon is greater than the proportion who would be classified as normal after one month of not taking cinnamon?
Yes, the data provides convincing statistical evidence that the proportion who would be classified as normal after one month of taking cinnamon is greater than the proportion who would be classified as normal after one month of not taking cinnamon.
To test this hypothesis, a two-proportion z-test can be used to compare the proportions of individuals with normal blood glucose levels in the cinnamon group and placebo group. Using the given data, the test statistic is calculated to be 1.78 with a p-value of 0.038.
Since the p-value is less than the significance level of 0.05, we can reject the null hypothesis and conclude that there is a significant difference between the proportions of individuals with normal blood glucose levels in the cinnamon and placebo groups. Therefore, the data provides convincing evidence that cinnamon can reduce blood glucose levels and increase the proportion of individuals with normal blood glucose levels.
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Which system of equation cannot be directly solved by applying the elimination method?
Any system of equations where the coefficients of one of the variables are equal or where one of the equations is a multiple of the other equation.
We have,
A system of equations cannot be directly solved by applying the elimination method if the coefficients of one of the variables are equal or if one of the equations is a multiple of the other equation.
In this case,
We would not be able to eliminate one of the variables using addition or subtraction, which is the basis of the elimination method.
For example, consider the system of equations:
2x + 3y = 7
4x + 6y = 14
Both of these equations have coefficients that are multiples of 2 and 3, so we cannot eliminate one of the variables using addition or subtraction.
To solve this system, we would need to use another method such as substitution.
Therefore,
Any system of equations where the coefficients of one of the variables are equal or where one of the equations is a multiple of the other equation.
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Let the discrete random variables Y1 and Y2 have the joint probability function:
p(y1, y2) = 1/3, for (y1, y2) = (−1, 0), (0, 1), (1, 0).
Find Cov(Y1, Y2).
*Find p1(−1)p2(0)
Cov(Y1, Y2) = 0; p1(−1)p2(0) = 1/3, where Y1 and Y2 have the joint probability function.
To find the covariance of Y1 and Y2, we need to first find their means:
E(Y1) = (-1)(1/3) + (0)(1/3) + (1)(1/3) = 0
E(Y2) = (0)(1/3) + (1)(1/3) + (0)(1/3) = 1/3
Using the definition of covariance, we have:
Cov(Y1, Y2) = E(Y1Y2) - E(Y1)E(Y2)
To find E(Y1Y2), we use the joint probability function:
E(Y1Y2) = (-1)(0)(1/3) + (0)(1)(1/3) + (1)(0)(1/3) = 0
Therefore, we have:
Cov(Y1, Y2) = E(Y1Y2) - E(Y1)E(Y2) = 0 - (0)(1/3) = 0
To find p1(-1)p2(0), we simply evaluate the joint probability function at (Y1, Y2) = (-1, 0):
p(-1, 0) = 1/3
Therefore, we have:
p1(-1)p2(0) = (1/3)(1) = 1/3
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Find the value of x 79 55 110 x
Answer:
158
Step-by-step explanation:
There is a pattern.
77 - 55 = 24
110 - 79 = 31
Which has no pattern.
But when you subtract by 55
110 - 55 = 55
Then you multiply 70 with 2
70 x 2 = 158
Hope this helps!
What number game is the first to be lost on one throw (e.g., 2, 3, or 12)?
The first number game to be lost on one throw is craaps, with the losing numbers being 2, 3, or 12.
In craaps, a dice game, the first roll is called the "come-out roll." If a player rolls a 7 or 11, they win instantly. However, if they roll a 2, 3, or 12, they lose immediately, and this is called "craapping out." These losing numbers are also referred to as "craaps."
If any other number is rolled, it becomes the "point" and the player must roll the same number again before rolling a 7 to win.
The game continues until the player rolls the point number or a 7, at which point the game ends, and a new round begins. The objective is to predict the outcome of the dice roll and bet accordingly, with different betting options available to the players.
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let x have an exponential distribution with a mean θ of 15. find probability that x is more than 12.
The probability that x is more than 12 is approximately 0.5134.
How to find probability that x is more than 12?The exponential distribution with mean θ has the probability density function:
f(x) = (1/θ) * exp(-x/θ)
where x ≥ 0.
To find the probability that x is more than 12, we need to integrate the probability density function from 12 to infinity:
P(X > 12) = ∫[12,∞] f(x) dx
= ∫[12,∞] (1/θ) * exp(-x/θ) dx
= [tex][-exp(-x/\theta)]_{[12,\infty]}[/tex]
=[tex]-lim_{[t\rightarrow\infty]} exp(-t/\theta) + exp(-12/\theta)[/tex]
= exp(-12/θ)
where we have used the property that the exponential function approaches zero as its argument approaches negative infinity.
Substituting the given value of θ = 15, we get:
P(X > 12) = exp(-12/15)
≈ 0.5134
Therefore, the probability that x is more than 12 is approximately 0.5134.
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