let e be an algebraic extension of a field f. if r is a ring and f ⊆ r ⊆ e show that r must be a field.
If e is an algebraic extension of a field f and r is a ring with [tex]f\subseteq r\subseteq e$,[/tex] then r must be a field.
we have [tex]a^{-1} = -\frac{1}{c_0}(a^{n-1} + c_{n-1}a^{n-2} + \cdots + c_1)$,[/tex] and all of the terms on the right-hand side of this equation belong to $r$.
Therefore, [tex]$a^{-1}\in r$[/tex], and we have shown that r is a field.
Since e is an algebraic extension of f, every element [tex]$x\in e$[/tex] satisfies some non-zero polynomial with coefficients in [tex]$f$[/tex], say [tex]$f(x)=0$[/tex] for some non-zero polynomial[tex]$f(t) \in f[t]$.[/tex]
Now, suppose [tex]$r$[/tex] is a subring of [tex]$e$[/tex] containing f.
To show that r is a field, it suffices to show that every non-zero element of r has a multiplicative inverse in r.
Let [tex]$a\in r$[/tex] be a non-zero element.
Since [tex]$a\in e$[/tex] , there exists a non-zero polynomial [tex]$f(t)\in f[t]$[/tex] such that [tex]f(a)=0$.[/tex]
Let n be the degree of f(t), so that [tex]f(t) = t^n + c_{n-1}t^{n-1} + \cdots + c_1 t + c_0$ for some $c_i\in f$, $0\leq i\leq n-1$.[/tex]
Then, we have [tex]a^{-1} = -\frac{1}{c_0}(a^{n-1} + c_{n-1}a^{n-2} + \cdots + c_1)$,[/tex] and all of the terms on the right-hand side of this equation belong to r.
Therefore, [tex]$a^{-1}\in r$[/tex], and we have shown that r is a field.
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consider the system of equations dxdt=x(1−x4−y) dydt=y(1−y5−x), taking (x,y)>0.
The given system of equations is a set of differential equations, where the variables x and y are functions of time t. The equations can be interpreted as describing the rate of change of x and y with respect to time, based on their current values.
To solve this system of equations, we can use techniques such as separation of variables or substitution. However, finding an analytical solution may not be possible in all cases. The condition (x,y)>0 means that both x and y are positive, which restricts the possible solutions of the system. In general, the behavior of the system depends on the initial conditions, i.e., the values of x and y at a given time t=0. Depending on the initial values, the system may have equilibrium points, periodic solutions, or chaotic behavior. Finding the exact behavior of the system requires numerical methods or graphical analysis. For example, we can use software tools such as MATLAB or Wolfram Mathematica to plot the trajectories of the system and study their properties.
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find a matrix b such that b2 3b = 4a.
The matrix b can be expressed as:
b = (-3 + sqrt(9 + 16a)) / 2 * I + (-3 - sqrt(9 + 16a)) / 2 * (1/3) * (3b)
To solve for matrix b, we can use algebraic manipulation. Starting with the given equation:
b^2 3b = 4a
We can rearrange the terms to isolate b on one side:
b^2 3b - 4a = 0
Now we have a quadratic equation in b. We can solve for b by using the quadratic formula:
b = (-3 ± sqrt(3^2 - 4(1)(-4a))) / (2(1))
b = (-3 ± sqrt(9 + 16a)) / 2
We end up with two possible values of b:
b = (-3 + sqrt(9 + 16a)) / 2
b = (-3 - sqrt(9 + 16a)) / 2
Therefore, the matrix b can be expressed as:
b = (-3 + sqrt(9 + 16a)) / 2 * I + (-3 - sqrt(9 + 16a)) / 2 * (1/3) * (3b)
where I is the identity matrix and 3b is the matrix on the right-hand side of the original equation.
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Are these two ratios equivalent by using cross products: 6/7 and 24/27
please help fast
Answer:
The two ratios are not equivalent
Step-by-step explanation:
If two ratios a/b and a/c are the same and we cross multiply, the left side should equal the right side
In other words if a/b = c/d
a x d = b x c
So if 6/7 = 24/27,
6 x 27 = 7 x 24
6 x 27 = 162
7 x 24 = 168
Since 162 ≠ 168 the two ratios are not equal
.Evaluate the line integral ∫C F⋅dr where F= 〈−4sinx, 4cosy, 10xz〉 and C is the path given by r(t)=(2t3,−3t2,3t) for 0 ≤ t ≤ 1
∫C F⋅dr = ...........
The value of the line integral ∫C F⋅dr = 1.193.
To evaluate the line integral ∫C F⋅dr, we first need to calculate F⋅dr, where F= 〈−4sinx, 4cosy, 10xz〉 and dr is the differential of the vector function r(t)= (2t^3,-3t^2,3t) for 0 ≤ t ≤ 1.
We have dr= 〈6t^2,-6t,3〉dt.
Thus, F⋅dr= 〈−4sinx, 4cosy, 10xz〉⋅ 〈6t^2,-6t,3〉dt
= (-24t^2sin(2t^3))dt + (-24t^3cos(3t))dt + (30t^3x)dt
Now we integrate this expression over the limits 0 to 1 to get the value of the line integral:
∫C F⋅dr = ∫0^1 (-24t^2sin(2t^3))dt + ∫0^1 (-24t^3cos(3t))dt + ∫0^1 (30t^3x)dt
The first two integrals can be evaluated using substitution, while the third integral can be directly integrated.
After performing the integration, we get:
∫C F⋅dr = 2/3 - 1/9 + 3/5 = 1.193
Therefore, the value of the line integral ∫C F⋅dr is 1.193.
In conclusion, we evaluated the line integral by calculating the dot product of the vector function F and the differential of the given path r(t), and then integrating the resulting expression over the given limits.
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The probability that aaron goes to the gym on saturday is 0. 8
If aaron goes to the gym on saturday the probability that he will go on sunday is 0. 3
If aaron does not go to the gym on saturday the chance of him going on sunday is 0. 9
calculate the probability that aaron goes to the gym on exactly one of these 2 days
The probability that Aaron goes to the gym on exactly one of the two days (Saturday or Sunday) is 0.74.
To calculate the probability, we can consider the two possible scenarios: (1) Aaron goes to the gym on Saturday and doesn't go on Sunday, and (2) Aaron doesn't go to the gym on Saturday but goes on Sunday.
In scenario (1), the probability that Aaron goes to the gym on Saturday is given as 0.8. The probability that he doesn't go on Sunday, given that he went on Saturday, is 1 - 0.3 = 0.7. Therefore, the probability of scenario (1) is 0.8 * 0.7 = 0.56.
In scenario (2), the probability that Aaron doesn't go to the gym on Saturday is 1 - 0.8 = 0.2. The probability that he goes on Sunday, given that he didn't go on Saturday, is 0.9. Therefore, the probability of scenario (2) is 0.2 * 0.9 = 0.18.
To find the overall probability, we sum the probabilities of the two scenarios: 0.56 + 0.18 = 0.74. Therefore, the probability that Aaron goes to the gym on exactly one of the two days is 0.74.
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(§7.6) solve the following ivp with the laplace transform. y′′ − 6y′ + 9y = e^3t u (t −3) { y(0) = 0 y′(0) = 0
Therefore, the solution of the given IVP using Laplace transform is: y(t) = -e^(3t) + t e^(3t) + (t^2/2) e^(3t) u(t-3)
Taking the Laplace transform of both sides of the differential equation, we have:
L[y''(t)] - 6L[y'(t)] + 9L[y(t)] = L[e^(3t)u(t-3)]
Using the derivative property of the Laplace transform, we have:
s^2 Y(s) - s y(0) - y'(0) - 6[s Y(s) - y(0)] + 9Y(s) = e^(3t) / (s - 3)
Substituting y(0) = 0 and y'(0) = 0, we get:
s^2 Y(s) - 6s Y(s) + 9Y(s) = e^(3t) / (s - 3)
Simplifying, we get:
Y(s) = [e^(3t) / (s - 3)] / (s - 3)^2
Using partial fraction decomposition, we can write:
Y(s) = -1/(s-3) + 1/(s-3)^2 + 1/(s-3)^3
Taking the inverse Laplace transform of both sides, we get:
y(t) = -e^(3t) + t e^(3t) + (t^2/2) e^(3t) u(t-3)
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Suppose X has an exponential distribution with parameter λ=1. Let Y=e^−X.Find the probability density function of Y.
The probability density function of Y is f_Y(y) = 1, for y ∈ (0, 1).
Given that X has an exponential distribution with λ=1.
Let X be a random variable with an exponential distribution characterized by parameter λ=1. This implies that the probability density function of X is given by:
f_X(x) = λ * e^(-λx) = e^(-x), for x ≥ 0.
Now, we are asked to find the probability density function of Y, where Y = e^(-X). To do this, we'll use the transformation technique. First, we find the inverse transformation X = g(Y) by solving for X:
X = -ln(Y)
Next, we compute the derivative of g(Y) with respect to Y:
dg(Y)/dY = -1/Y
Now, we can use the transformation technique formula to find the pdf of Y:
f_Y(y) = f_X(g(y)) * |dg(y)/dy| = e^(-(-ln(y))) * |-1/y|
Simplifying this expression, we get:
f_Y(y) = y * (1/y) = 1, for y in the range (0, 1).
So, the probability density function of Y is f_Y(y) = 1, for y ∈ (0, 1).
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PLS HELP RLLY WUICKLY ILL GIEV BRAINLY
Solve and show your work for each question.
(a) What is 0.36 expressed as a fraction in simplest form?
(b) What is 0.36 expressed as a fraction in simplest form?
(c) What is 0.36 expressed as a fraction in simplest form?
a) 0.bar(36) expressed as a fraction in simplest form is 4/11. b) 0.3bar(6) expressed as a fraction in simplest form is 0.4. c) 0.36 expressed as a fraction in simplest form is 9/25.
Answer to tne aforementioned questions(a) To express 0.bar(36) as a fraction in simplest form, we can use the concept of repeating decimals. Let x = 0.bar(36). Multiplying x by 100 gives:
100x = 36.bar(36)
Subtracting the original equation from the multiplied equation eliminates the repeating part:
100x - x = 36.bar(36) - 0.bar(36)
99x = 36
x = 36/99
We can simplify this fraction by dividing both the numerator and denominator by their greatest common divisor, which is 9:
x = (36/9) / (99/9) = 4/11
Therefore, 0.bar(36) expressed as a fraction in simplest form is 4/11.
(b) o express 0.3bar(6) as a fraction in simplest form, let's call it x. Multiplying x by 10 gives:
10x = 3.6bar(6)
Subtracting the original equation from the multiplied equation eliminates the repeating part:
10x - x = 3.6bar(6) - 0.3bar(6)
9x = 3.6
x = 3.6/9
x = 0.4
Therefore, 0.3bar(6) expressed as a fraction in simplest form is 0.4.
(c) To express 0.36 as a fraction in simplest form, we can write it as 36/100 and simplify it. Both the numerator and denominator have a common factor of 4, so we can divide both by 4:
36/100 = 9/25
Therefore, 0.36 expressed as a fraction in simplest form is 9/25.
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Referring to the "Market Returns" file, complete a regression equation using IBM as the Dependent Variable, and the S&P 500 as the Independent Variable. Approximately what percentage of the return for IBM is explained by the returns of the S&P? Approximately 25% Approximately 30% Approximately 22% Approximately 86%
The regression equation using IBM as the dependent variable and the S&P 500 as the independent variable can be used
to determine the percentage of the return for IBM that is explained by the returns of the S&P 500.
However, without access to the "Market Returns" file or the specific regression analysis results, it is not possible to determine the exact percentage.
The percentage of return for IBM explained by the returns of the S&P 500, also known as the coefficient of determination (R-squared), can range from 0% to 100%.
R-squared represents the proportion of the variance in the dependent variable (IBM) that is predictable from the independent variable (S&P 500).
A higher R-squared value indicates a stronger relationship between the variables and a higher percentage of the return for IBM being explained by the returns of the S&P 500. Without the regression analysis results, we cannot provide an accurate estimate of the percentage in this case.
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Tides The length of time between consecutive high tides is 12 hours and 25 minutes. According to the National Oceanic and Atmospheric Administration, on Saturday, March 28, 2015, in Charleston, South Carolina, high tide occurred at 2:12 am (2.2 hours) and low tide occurred at 8:18 am (8.3 hours). Water heights are measured as the amounts above or below the mean lower low water. The height of the water at high tide was 5.27 feet, and the height of the water at low tide was 0.87 foot.(a) Approximately when will the next high tide occur? (b) Find a sinusoidal function of the form y = A sin(wx – ) + B that models the data.
Answer:
Step-by-step explanation:
(a) The length of time between consecutive high tides is 12 hours and 25 minutes. Therefore, the next high tide will occur 12 hours and 25 minutes after the previous one, which was at 2:12 am.
2:12 am + 12 hours and 25 minutes = 2:37 pm
So, the next high tide will occur at approximately 2:37 pm.
(b) To find a sinusoidal function that models the data, we need to determine the amplitude, period, phase shift, and vertical shift of the function.
Amplitude:
The height of the water at high tide was 5.27 feet, and the height of the water at low tide was 0.87 foot. Therefore, the amplitude of the function is:
A = (5.27 - 0.87) / 2 = 2.2 feet
Period:
The length of time between consecutive high tides is 12 hours and 25 minutes, which is the period of the function:
P = 12 hours + 25 minutes/60 minutes = 12.42 hours
Frequency:
The frequency of the function is the reciprocal of the period:
w = 2π / P = 2π / 12.42 ≈ 0.506
Phase Shift:
The function reaches its maximum (high tide) when x is equal to the phase shift. On Saturday, March 28, 2015, high tide occurred at 2:12 am, which is 2.2 hours after midnight. Therefore, the phase shift is:
θ = -2.2
Vertical Shift:
The function is measured with respect to the mean lower low water. The height of the water at low tide was 0.87 foot, which is the vertical shift of the function:
B = 0.87
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consider the differential equation xy''-xy' y=0. the indicial equation is r(r-1)=0. the recurrence relation is a series solution corresponding to the inndicial root r=0 is
The series solution for the differential equation xy'' - xy'y = 0, corresponding to the indicial root r = 0, is y(x) = a₀ + a₁x + a₂x² + a₃x³ + ...
To find the series solution corresponding to the indicial root r = 0 for the differential equation xy'' - xy'y = 0, we can use the method of Frobenius.
The indicial equation is given by r(r - 1) = 0, which has roots r = 0 and r = 1. We will focus on the root r = 0.
For the root r = 0, we assume a series solution of the form:
y(x) = Σ(aₙxⁿ)
Substituting this series into the differential equation, we can find the recurrence relation for the coefficients aₙ.
First, we differentiate y(x) with respect to x:
y'(x) = Σ(aₙn xⁿ⁻¹)
Next, we differentiate y'(x) with respect to x:
y''(x) = Σ(aₙn(n - 1) xⁿ⁻²)
Substituting these expressions into the differential equation, we get:
x(Σ(aₙn(n - 1) xⁿ⁻²)) - x(Σ(aₙn xⁿ⁻¹))(Σ(aₙxⁿ)) = 0
Expanding and reorganizing terms, we obtain:
Σ(aₙn(n - 1) xⁿ) - Σ(aₙn(n - 1) xⁿ) - Σ(aₙn xⁿ⁺¹) = 0
Simplifying, we have:
Σ(aₙn(n - 1) xⁿ) - Σ(aₙn(n - 1) xⁿ) - Σ(aₙn xⁿ⁺¹) = 0
Since this equation holds for all values of x, each term must vanish separately. Therefore, we can write the recurrence relation as:
aₙ(n(n - 1) - n(n - 1)) - aₙ₊₁ = 0
Simplifying, we get:
aₙ₊₁ = aₙ / (n(n - 1))
This recurrence relation allows us to compute the coefficients aₙ in terms of a₀.
Hence, the series solution for the differential equation xy'' - xy'y = 0, corresponding to the indicial root r = 0, is given by:
y(x) = a₀ + a₁x + a₂x² + a₃x³ + ...
where the coefficients aₙ can be determined using the recurrence relation aₙ₊₁ = aₙ / (n(n - 1)) with the initial condition a₀.
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In order for a satellite to move in a stable
circular orbit of radius 6761 km at a constant
speed, its centripetal acceleration must be
inversely proportional to the square of the
radius r of the orbit. What is the speed of the satellite?
Find the time required to complete one orbit.
Answer in units of h.
The universal gravitational constant is
6. 67259 × 10^−11 N · m2/kg2 and the mass of
the earth is 5. 98 × 10^24 kg. Answer in units of m/s
The required answers are the speed of the satellite is `7842.6 m/s` and the time required to complete one orbit is `1.52 hours`.
Given that a satellite moves in a stable circular orbit of radius r = 6761 km and at constant speed.
And its centripetal acceleration is inversely proportional to the square of the radius r of the orbit. We need to find the speed of the satellite and the time required to complete one orbit.
Speed of the satellite:
We know that centripetal acceleration is given by the formula
`a=V²/r`
Where,a = centripetal accelerationV = Speed of the satellite,r = Radius of the orbit
The acceleration due to gravity `g` at an altitude `h` above the surface of Earth is given by the formula `
g = GM/(R+h)²`,
where `M` is the mass of the Earth, `G` is the gravitational constant, and `R` is the radius of the Earth.
Here, `h = 6761 km` (Radius of the orbit) Since `h` is much smaller than the radius of the Earth, we can assume that `R+h ≈ R`, where `R = 6371 km` (Radius of the Earth)
Then, `g = GM/R²`
Substituting the values,
`g = 6.67259 × 10^-11 × 5.98 × 10^24 / (6371 × 10^3)²``g = 9.81 m/s²`
Therefore, centripetal acceleration `a = g` at an altitude `h` above the surface of Earth.
Substituting the values,
`a = 9.81 m/s²` and `r = 6761 km = 6761000 m`
We have `a = V²/r` ⇒ `V = √ar`
Substituting the values,`V = √(9.81 × 6761000)`
⇒ `V ≈ 7842.6 m/s`
Therefore, the speed of the satellite is `7842.6 m/s`.
Time taken to complete one orbit:We know that time period `T` of a satellite is given by the formula
`T = 2πr/V`
Substituting the values,`
T = 2 × π × 6761000 / 7842.6`
⇒ `T ≈ 5464.9 s`
Therefore, the time required to complete one orbit is `5464.9 seconds` or `1.52 hours` (approx).
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6. Find the HCF and LCM of: (b) (a) 4(a²-4), 6(a²-a-2) and 12(a² + 3a-10) 2x²-3xy-2y², 6x² + xy - y² and 3x² - 7xy + 2y² (c) a(c + a)-b(b + c), b(a + b)-c(c + a) and c(b + c)-a(a + b) (d) p² +q²+2pq-1, q²-p² + 2q + 1 and p² - q² + 2p + 1 (e) 6x²-5x-4, 8x² + 2x - 15 and 12x²-43x +35
The HCF is (a-2) and the LCM is 288(a+2)(a+1)(a+5) of 4(a²-4), 6(a²-a-2) and 12(a² + 3a-10)
To find the highest common factor (HCF) and least common multiple (LCM) of the given expressions, let's factorize each expression first:
4(a²-4) = 4(a+2)(a-2)
6(a²-a-2) = 6(a-2)(a+1)
12(a²+3a-10) = 12(a+5)(a-2)
The common factors among these expressions are (a-2). So the HCF is (a-2).
To find the LCM, we multiply all the distinct factors from the factorizations:
LCM = 4 × 6 × 12 × (a+2)(a+1)(a+5) = 288(a+2)(a+1)(a+5)
Therefore, the HCF is (a-2) and the LCM is 288(a+2)(a+1)(a+5).
Let's factorize each expression:
a(c + a) - b(b + c) = a² + ac - b² - bc
b(a + b) - c(c + a) = ab + b² - c² - ac
c(b + c) - a(a + b) = cb + c² - a² - ab
The common factors among these expressions are (a+b+c). So the HCF is (a+b+c).
To find the LCM, we multiply all the distinct factors from the factorizations:
LCM = (a+b+c)(a² + ac - b² - bc)(ab + b² - c² - ac)
Therefore, the HCF is (a+b+c) and the LCM is (a+b+c)(a² + ac - b² - bc)(ab + b² - c² - ac).
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Please Help!!! Geometry
The correct statement for step 4 is,
⇒ If two lines are parallel and cut by a transversal , the corresponding angles have same measure,
Since, An angle is a combination of two rays (half-lines) with a common endpoint. The latter is known as the vertex of the angle and the rays as the sides, sometimes as the legs and sometimes the arms of the angle.
We have to given that;
Line p and q are parallel lines.
Since, All the steps for prove angle 3 and 5 are supplementary angle are shown in figure.
We know that;
When two lines are parallel and cut by a transversal , the corresponding angles have same measure.
Hence, By figure we get;
⇒ m ∠3 = m ∠7
Therefore, For step 4 statement is,
If two lines are parallel and cut by a transversal , the corresponding angles have same measure.
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Find the flux of the vector field F across the surface S in the indicated direction.
F = x 4y i - z k; S is portion of the cone z = 3 square root of x^2+y^2
between z = 0 and z = 3; direction is outward
a) 2π
b) - 2π
c) - 6π
d) - 1
The flux of the vector field F = x^4y i - zk across the surface S, which is a portion of the cone z = 3√(x^2 + y^2) between z = 0 and z = 3, in the outward direction, is 2π.
To calculate the flux of the vector field F across the surface S, we need to evaluate the surface integral of the dot product between F and the outward-pointing normal vector of S.
The surface S represents a portion of a cone, bounded between z = 0 and z = 3. The equation z = 3√(x^2 + y^2) describes the shape of the cone.
To find the normal vector of S, we can take the gradient of the function z = 3√(x^2 + y^2). The gradient is given by
(∂z/∂x)i + (∂z/∂y)j - k, where (∂z/∂x) and (∂z/∂y) represent the partial derivatives of z with respect to x and y, respectively.
Evaluating these partial derivatives, we get the normal vector as
(3x√(x^2 + y^2)/√(x^2 + y^2))i + (3y√(x^2 + y^2)/√(x^2 + y^2))j - k = 3xi + 3yj - k.
The dot product of F = x^4y i - zk and the normal vector 3xi + 3yj - k is given by (x^4y)(3x) + (-1)(-1) = 3x^5y + 1.
Now, to calculate the flux, we integrate this dot product over the surface S. Since S is a portion of the cone, we can use cylindrical coordinates for the integration. After evaluating the integral, we find that the flux is equal to 2π.
Therefore, the correct answer is a) 2π.
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The diagonals of parallelogram PQRS intersect at Z. Select all the statements that must be true.
A
QZ = SZ
В. Qs
RP
C. ZQZR = ZQZP
D. ZQRP = ZSRP
E ZQZP = ZRZS
The statements that must be true are A, C, and E.
The correct statements that must be true for the diagonals of parallelogram PQRS that intersect at Z are given below:A. QZ = SZBecause the diagonals of a parallelogram bisect each other, therefore QZ = SZB. QsRPThis is not necessarily true because PQRS is a parallelogram and not necessarily a rhombus.C. ZQZR = ZQZPThis statement is true because PQRS is a parallelogram.D. ZQRP = ZSRPThis is not necessarily true because PQRS is a parallelogram and nnecessarily a kite.E. ZQZP = ZRZSThis statement is true because PQRS is a parallelogram.Therefore, the statements that must be true are A, C, and E.
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what are the solutions of the quadratic equation 2x^2-16x+32=0
Answer: x=4
Step-by-step explanation:
0=2x²-16x+32 >Take out GCF
0=2(x²-8x+16) >Find 2 numbers that multiple to last term, +16,
but add to middle term, -8
-4 and -4 multiply to +16 and add to -8
put -4 and -4 into factored form
0=2(x-4)(x-4) >Divide both sides by 2
0=(x-4)(x-4) >Normally you would set both parenthesis to 0
but they are the same so set the x-4=0
x-4=0
x=4
10. Are the triangles congruent? If so, how would you justify your
conclusion?
A. ALMK AJKM by AAS
B. ALMK
AJKM by ASA
C. ALMK
AJKM by SAS
D. ALMK AJKM by SSS
E. The triangles are not congruent.
Answer:
ima say B
Step-by-step explanation:
show that q(sqrt(2)) is isomorphic to q /(x^2-2)
[tex]$\mathbb{Q}(\sqrt{2})$[/tex] is isomorphic to [tex]$\mathbb{Q}[x] /(x^2-2)$[/tex], as desired.
What is the equivalent expression?
Equivalent expressions are expressions that perform the same function despite their appearance. If two algebraic expressions are equivalent, they have the same value when we use the same variable value.
Show that [tex]$\mathbb{Q}(\sqrt{2})$[/tex] is isomorphic to [tex]$\mathbb{Q}[x] /(x^2-2)$[/tex] :
We define a function [tex]$\phi[/tex] : [tex]\mathbb{Q}[x] \to \mathbb{Q}(\sqrt{2})$[/tex] by [tex]$\phi(f(x)) = f(\sqrt{2})$[/tex].
This function is clearly a homomorphism since it preserves addition and multiplication.
Furthermore, we see that [tex]$\phi(x^2-2) = (\sqrt{2})^2-2 = 0$[/tex],
so the kernel of [tex]$\phi[/tex] contains the ideal generated by [tex]$x^2-2$[/tex].
By the first isomorphism theorem, there exists an isomorphism [tex]$\operator{deg}(r) < \operator{deg}(x^2-2) = 2$[/tex][tex]$\tilde{\phi} : \mathbb{Q}[x] /(x^2-2) \to[/tex][tex]\operator{im}(\phi)$.[/tex]
It remains to show that [tex]$\tilde{\phi}$[/tex] is surjective. Let [tex]$a+b\sqrt{2} \in \mathbb{Q}(\sqrt{2})$[/tex] be an arbitrary element. Since [tex]$\mathbb{Q}[x]$[/tex] is a polynomial ring, we can apply the division algorithm to find [tex]$q(x),r(x) \in \mathbb{Q}[x]$[/tex] such that [tex]$a+b\sqrt{2} = q(\sqrt{2}) + r(\sqrt{2})$[/tex] where [tex]$\operator{deg}(r) < \operator{deg}(x^2-2) = 2[/tex].
But then [tex]$r(\sqrt{2}) = a+b\sqrt{2} - q(\sqrt{2}) \in \operator{im}(\phi)[/tex], so [tex]$\tilde{\phi}$[/tex] is surjective.
Therefore, [tex]$\mathbb{Q}(\sqrt{2})$[/tex] is isomorphic to [tex]$\mathbb{Q}[x] /(x^2-2)$[/tex], as desired.
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Simplify the following question
(√3+ √2)²
Answer:
[tex]5+2\sqrt6[/tex]
Step-by-step explanation:
[tex](\sqrt3+\sqrt2)^2\\\\=(\sqrt3)^2+2.\sqrt3.\sqrt2+(\sqrt2)^2 \\\\=3+2.\sqrt{3(2)}+2\ \ \ \ \ \ \ \ \ \ \ \ (\sqrt{a}.\sqrt b=\sqrt{ab},\ \mathrm{if}\ a,b\ge 0)\\=5+2\sqrt6[/tex]
Use the signed-rank test to test at the 0.05 level of significance whether the weight-reducing diet is effective (a) based on Table 20 at the end of the book; (b) based on the normal approximation of the Wilcoxon test statistic.
Thus, If the z-score is less than -1.96 or greater than 1.96, reject the null hypothesis, concluding that the diet is effective in reducing weight.
To address your question using the signed-rank test at the 0.05 level of significance, I'll provide a concise explanation that covers the key aspects without going over 200 words.
(a) Based on Table 20:
1. Calculate the differences in weight for each individual before and after the diet.
2. Rank the absolute values of these differences, ignoring the sign.
3. Sum the ranks of the positive and negative differences separately (i.e., T+ and T-).
4. Determine the smaller of the two sums (T) and compare it to the critical value found in Table 20 (for your specific sample size) at the 0.05 level of significance.
If T is smaller than or equal to the critical value, reject the null hypothesis, concluding that the diet is effective in reducing weight.
(b) Based on the normal approximation of the Wilcoxon test statistic:
1. Follow steps 1-3 from part (a) to calculate T.
2. Calculate the mean (μ) and standard deviation (σ) of the sum of ranks for your sample size using the appropriate formulas.
3. Calculate the z-score using the formula: z = (T - μ) / σ.
4. Compare the z-score to the critical z-value at the 0.05 level of significance (typically ±1.96 for a two-tailed test).
If the z-score is less than -1.96 or greater than 1.96, reject the null hypothesis, concluding that the diet is effective in reducing weight.
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random samples of size and equals 500 were selected from a binomial population with p equals .1 . Check to make sure that it is appropriate to use the normal distribution to approximate the sampling distribution of p. Then use this result to find the probabilities in Exercises a-c.
a. ^
p
>
0.12
.
b. ^
p
<
0.10
.
c. ^
p
lies within 0.02
of p
.
a) The probability that ^p > 0.12 is 0.1711.
b) The probability that ^p < 0.10 is 0.5.
c) The probability that the sample proportion ^p lies within 0.02 of p is 0.6247.
a. We want to find the probability that the sample proportion ^p is greater than 0.12. We can standardize the sample proportion using the formula z = (^p - p) / √(pq/n), which gives us
=> z = (0.12 - 0.1) / 0.02099 = 0.954.
We can then use a standard normal distribution calculator to find the probability that Z > 0.954, which is approximately 0.1711.
b. We want to find the probability that the sample proportion ^p is less than 0.10. Again, we can standardize using the formula z = (^p - p) / √(pq/n), which gives us
=> z = (0.10 - 0.1) / 0.02099 = 0.
We can then find the probability that Z < 0 using a standard normal distribution table or calculator, which is approximately 0.5.
c. We want to find the probability that the sample proportion ^p lies within 0.02 of p. This means we want to find P(0.08 < ^p < 0.12).
We can standardize both values using the formula z = (^p - p) / sqrt(pq/n), which gives us
=> z = (0.08 - 0.1) / 0.02099 = -0.954
and
=> z = (0.12 - 0.1) / 0.02099 = 0.954.
We can then find the probability that -0.954 < Z < 0.954 using a standard normal distribution calculator, which is approximately 0.6247.
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Complete Question:
Random samples of size and equals 500 were selected from a binomial population with p equals 1 .
Check to make sure that it is appropriate to use the normal distribution to approximate the sampling distribution of p.
Then use this result to find the probabilities in Exercises a-c.
a. ^p > 0.12.
b. ^p < 0.10.
c. ^p lies within 0.02 of p.
If there is a package of 3 books that cost 3. 29 how much does each book cost
We need to divide the total cost by the number of books in the package. Each book costs approximately $1.10.
To find out how much each book costs, we can use the concept of unit rate. Unit rate is a ratio of two quantities, where the denominator is always one. In this case, we want to find the cost of one book, so we need to divide the total cost by the number of books in the package.
Let x be the cost of one book. Then we have:
3x = 3.29
To solve for x, we can divide both sides by 3:
x = 3.29/3
x ≈ 1.10
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Angelina orders lipsticks from an online makeup website. Each lipstick costs $7. 50. A one-time shipping fee is $3. 25 is added to the cost of the order. The total cost of Angelina’s order before tax is $87. 75. How many lipsticks did she order? Label your variable. Write and solve and algebraic equation. Write your answer in a complete sentence based on the context of the problem. (Please someone smart answer!)
Angelina ordered 10 lipsticks from the online makeup website. The total cost of Angelina’s order before tax is $87. 75. We are asked to determine the total number of lipsticks she ordered.
Let's denote the number of lipsticks Angelina ordered as 'x'. Each lipstick costs $7.50, so the cost of 'x' lipsticks is 7.50x. Additionally, a one-time shipping fee of $3.25 is added to the total cost. Therefore, the total cost of Angelina's order before tax can be expressed as:
Total cost = Cost of lipsticks + Shipping fee
87.75 = 7.50x + 3.25
To find the value of 'x', we need to solve the equation. Rearranging the equation, we have:
7.50x = 87.75 - 3.25
7.50x = 84.50
x = 84.50 / 7.50
x = 11.27
Since the number of lipsticks cannot be a fraction, we can round down to the nearest whole number. Therefore, Angelina ordered 10 lipsticks from the online makeup website.
In conclusion, Angelina ordered 10 lipsticks based on the given information and the solution to the algebraic equation.
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Function 1 11 is defined by the equation y = − 2 x + 10 y=−2x+10y, equals, minus, 2, x, plus, 10. Function 2 22 is defined by the following table. X xx y yy 0 00 10 1010 2 22 5 55 4 44 0 00 6 66 − 5 −5minus, 5 Which function has a greater y yy-intercept?
The equation for function 1 is y = -2x + 10 and the y-intercept is 10. The y-intercept is the point at which the graph of the equation crosses the y-axis, where x = 0.
The table shows the values for function 2: 0, 2, 4, and 6 as input and 10, 5, 0, and -5 as the corresponding output values. In other words, when x = 0, the output value is 10. Therefore, the y-intercept for function 2 is 10.
Since the y-intercept of function 2 is 10, and the y-intercept of function 1 is 10, we can conclude that both functions have the same y-intercept of 10.Therefore, neither function has a greater y-intercept than the other. They both have the same y-intercept value of 10.
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The minute hand on a backwards clock rotates 0.1 radius lengths per second counter-clockwise. Assume that the position of the minute hand is at the 15-minute mark a.What is the measure of the angle of rotation after t seconds? ∅= 0.1t Preview
b. Define a function g that relates the minute hand's vertical distance above the center of the clock (in radius lengths) as a function of the number of seconds elapsed. Preview syntax error: this is not an equation c.How long in seconds) does it take for the minute hand to complete a full rotation? Preview d. What is the period of the function g? Preview
The function g repeats every 20 seconds.
a. The measure of the angle of rotation after t seconds can be found using the formula:
∅ = 0.1t
Since the minute hand rotates 0.1 radius lengths per second counter-clockwise, the angle of rotation in radians can be found by multiplying the rate of rotation (0.1) by the time elapsed (t).
Therefore, the angle of rotation after t seconds is equal to 0.1t radians.
b. To define a function g that relates the minute hand's vertical distance above the center of the clock (in radius lengths) as a function of the number of seconds elapsed, we need to consider the geometry of the clock.
The minute hand is a straight line that extends from the center of the clock to the outer edge, and it rotates around the center point.
Let's assume that the radius of the clock is 1 unit. At the 15-minute mark, the minute hand is located at a distance of 0.25 units above the center of the clock (since the minute hand is at the 3 o'clock position, which is one-quarter of the way around the clock).
As the minute hand rotates, its vertical distance above the center point changes.
We can use trigonometry to find the vertical distance above the center point as a function of the angle of rotation. Let θ be the angle of rotation in radians.
Then, the vertical distance above the center point is given by:
g(θ) = sin(θ)
Since the angle of rotation is related to the time elapsed by the formula ∅ = 0.1t, we can also express g as a function of time:
g(t) = sin(0.1t)
c. To find how long it takes for the minute hand to complete a full rotation, we need to find the time it takes for the angle of rotation to reach 2π radians.
Using the formula from part (a), we have:
2π = 0.1t
Solving for t, we get:
t = 20π
Therefore, it takes 20π seconds (approximately 62.8 seconds) for the minute hand to complete a full rotation.
d. The period of the function g is the time it takes for the function to repeat itself. Since the sine function has a period of 2π, the period of the function g is:
T = 2π/0.1
T = 20 seconds
Therefore, the function g repeats every 20 seconds.
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use the ratio test to determine whether the series is convergent or divergent. [infinity] k = 1 6ke−k identify ak. evaluate the following limit. lim k → [infinity] ak 1 ak since lim k → [infinity] ak 1 ak ? 1,
The series converges because the limit of the ratio test is < 1.
To determine if the series is convergent or divergent using the ratio test, you first need to identify a_k, which is the general term of the series. In this case, a_k = 6k [tex]e^-^k[/tex] . Then, evaluate the limit lim (k→∞) (a_(k+1) / a_k). If the limit is < 1, the series converges; if it's > 1, it diverges.
We have a_k = 6k [tex]e^-^k[/tex]. Apply the ratio test by finding lim (k→∞) (a_(k+1) / a_k) = lim (k→∞) [(6(k+1)[tex]e^-^(^k^+^1^)[/tex]))/(6k [tex]e^-^k[/tex])]. Simplify to get lim (k→∞) ((k+1)/k * e⁻¹). As k approaches infinity, the ratio approaches e⁻¹, which is < 1. Therefore, the series converges.
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20 POINTS! PLEASE HELP
There is a stack of 10 cards, each given a different number from 1 to 10. Suppose we select a card randomly from the stack, replace it, and then randomly select another card. What is the probability that the first card is an odd number and the second card is less than 4? Write your answer as a fraction in the simplest form
The probability of selecting an odd number on the first draw and a number less than 4 on the second draw is 3/20.
To solve this problem, we need to consider the probability of each event separately and then multiply them together to get the probability of both events happening together.
First, let's consider the probability of selecting an odd number on the first draw. There are five odd numbers (1, 3, 5, 7, 9) out of ten total cards, so the probability of selecting an odd number on the first draw is 5/10 or 1/2.
Next, let's consider the probability of selecting a number less than 4 on the second draw. There are three such cards (1, 2, 3) out of ten remaining cards (since we replaced the first card), so the probability of selecting a number less than 4 on the second draw is 3/10.
To find the probability of both events happening together (i.e. selecting an odd number on the first draw and a number less than 4 on the second draw), we multiply the probabilities of each event:
P(odd number on first draw) * P(number less than 4 on second draw) = (1/2) * (3/10) = 3/20
Therefore, the probability of selecting an odd number on the first draw and a number less than 4 on the second draw is 3/20.
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compute the (sample) variance and standard deviation of the data sample. (round your answers to two decimal places.) −9, 9, 9, 9, 0, 6 variance standard deviation
The sample variance is 52.80, and the standard deviation is approximately 7.27.
To compute the sample variance and standard deviation of the data sample (-9, 9, 9, 9, 0, 6), follow these steps:
1. Calculate the mean (average) of the data set: (-9 + 9 + 9 + 9 + 0 + 6) / 6 = 24 / 6 = 4
2. Subtract the mean from each data point and square the result: [(-9-4)², (9-4)², (9-4)², (9-4)², (0-4)², (6-4)²] = [169, 25, 25, 25, 16, 4]
3. Sum the squared differences: 169 + 25 + 25 + 25 + 16 + 4 = 264
4. Divide the sum by (n-1) for the sample variance, where n is the number of data points: 264 / (6-1) = 264 / 5 = 52.8
5. Take the square root of the variance for the standard deviation: √52.8 ≈ 7.27
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