Answer: North 136.81 mph
East: 375.88 mph
Step-by-step explanation:
Hi there,
First you are going to want to set up a triangle based on the given information. You are giving a bearing for the degrees of the triangle, so the angle for the triangle you are going to solve will be 20 degrees.
You can use either Law of Sines or SOHCAHTOA to solve, but since you are setting up a right triangle I would use SOHCAHTOA. You are trying to find the vertical and horizontal components so start with sine to find the y-value. It should look like:
sin(20)=(opposite side of the given angle/400)
It will be travelling North at 136.81 mph
Similarly, we now need to find the horizontal component. Start by using cosine. It should look like
cos(20)=(side adjacent to the given angle/400)
It should be traveling East at 375.88 mph
Hope this helps.
The north component is 137.64 mi/h and the east component is 123.12 mi/h.
To find the north and east components of the velocity, we can use trigonometry.
The velocity can be divided into two components: one in the north direction and one in the east direction. The north component is given by:
North component = Velocity x sin(θ)
where θ is the angle between the velocity vector and the north direction.
Similarly, the east component is given by:
East component = Velocity x cos(θ)
where θ is the angle between the velocity vector and the east direction.
In this case, the angle between the velocity vector and the north direction is (90° - 70°) = 20° (since the direction is given as "n 70° e", which means 70° east of north). Therefore:
North component = 400 x sin(20°) = 137.64 mi/h
The angle between the velocity vector and the east direction is 70°. Therefore:
East component = 400 x cos(70°) = 123.12 mi/h
Rounding to two decimal places, the north component is 137.64 mi/h and the east component is 123.12 mi/h.
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At Mr. Garza’s florist shop, 1 1/2 dozen roses cost $38.70. In dollars and cents, what is the cost of a single rose?
Answer:
$2.15
Step-by-step explanation:
There are 12 in a dozen.
1.5 dozen = 18.
$38.70/18 = $2.15
It's $2.15 for a single rose.
define the sequence {hn} as follows: h0 = 5/3 h1 = 11/3 hn = 3hn-1 4hn-2 6n, for n ≥ 2 prove that for n ≥ 0,
The sequence {hn} defined as h0 = 5/3, h1 = 11/3, hn = 3hn-1 - 4hn-2 + 6n satisfies the given recurrence relation.
To prove that for all n ≥ 0, the sequence {hn} defined as h0 = 5/3, h1 = 11/3, hn = 3hn-1 - 4hn-2 + 6n satisfies the given recurrence relation, we can use mathematical induction.
Base case:
For n = 0, we have h0 = 5/3 which is equal to the given initial value.
For n = 1, we have h1 = 11/3 which is also equal to the given initial value.
Inductive step:
Assume that the recurrence relation holds for some k ≥ 1, i.e., hk = 3hk-1 - 4hk-2 + 6k.
We want to show that it also holds for k+1, i.e., h(k+1) = 3h(k+1)-1 - 4h(k+1)-2 + 6(k+1).
Using the recurrence relation for hk, we have:
hk+1 = 3hk - 4hk-1 + 6k+3 (by substituting k+1 for n in the given recurrence relation)
Similarly, we have:
hk = 3hk-1 - 4hk-2 + 6k (by assumption)
hk-1 = 3hk-2 - 4hk-3 + 6(k-1) (by assumption)
Substituting these values into the expression for hk+1, we get:
hk+1 = 3(3hk-1 - 4hk-2 + 6k) - 4(3hk-2 - 4hk-3 + 6(k-1)) + 6(k+1)
Simplifying the expression, we get:
hk+1 = 9hk-1 - 12hk-2 + 18k - 12hk-2 + 16hk-3 - 24(k-1) + 6(k+1)
hk+1 = 9hk-1 + 4hk-3 - 12hk-2 - 6(k-1) + 6(k+1)
hk+1 = 3(3hk-1 - 4hk-2 + 6k+1) - 4(3hk-2 - 4hk-3 + 6k) + 6(k+1)
hk+1 = 3h(k+1)-1 - 4h(k+1)-2 + 6(k+1)
This shows that the recurrence relation holds for all n ≥ 0 by mathematical induction, and hence the sequence {hn} defined as h0 = 5/3, h1 = 11/3, hn = 3hn-1 - 4hn-2 + 6n satisfies the given recurrence relation.
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2x - y = -1
4x - 2y = 6
Graphing
Answer: No Solution.
Step-by-step explanation:
To solve the system of equations 2x - y = -1 and 4x - 2y = 6 graphically, we can plot the two lines represented by each equation on the same coordinate plane and find the point of intersection, if it exists.
To graph the line 2x - y = -1, we can rearrange it into slope-intercept form:
y = 2x + 1
This equation represents a line with slope 2 and y-intercept 1. We can plot this line by starting at the y-intercept (0, 1) and moving up 2 units and right 1 unit to find another point on the line. Connecting these two points gives us the graph of the line (Look at the first screenshot).
To graph the line 4x - 2y = 6, we can rearrange it into slope-intercept form:
y = 2x - 3
This equation represents a line with slope 2 and y-intercept -3. We can plot this line by starting at the y-intercept (0, -3) and moving up 2 units and right 1 unit to find another point on the line. Connecting these two points gives us the graph of the line (Look at the second screenshot).
We can see from the graphs that the two lines are parallel and do not intersect. Therefore, there is no point of intersection and no solution to the system of equations.
Can regular octagons and equilateral triangles tessellate the plane? Meaning, can they
form a semi-regular tessellation? Show your work and explain
Yes, regular octagons and equilateral triangles can form a semi-regular tessellation of the plane.
A tessellation is a repeating pattern of shapes that covers a plane without any gaps or overlaps. In a semi-regular tessellation, multiple regular polygons are used to create the pattern.
For regular octagons and equilateral triangles to form a semi-regular tessellation, they must satisfy two conditions:
Vertex Condition: The same polygons meet at each vertex.
Edge Condition: The same polygons meet along each edge.
Let's examine these conditions for regular octagons and equilateral triangles:
Regular Octagon:
Each vertex of an octagon meets three other octagons.
Each edge of an octagon meets two other octagons.
Equilateral Triangle:
Each vertex of a triangle meets six other triangles.
Each edge of a triangle meets three other triangles.
The vertex condition is satisfied because each vertex of an octagon meets three equilateral triangles, and each vertex of an equilateral triangle meets three octagons.
The edge condition is satisfied because each edge of an octagon meets two equilateral triangles, and each edge of an equilateral triangle meets three octagons.
Therefore, regular octagons and equilateral triangles can form a semi-regular tessellation of the plane.Yes, regular octagons and equilateral triangles can form a semi-regular tessellation of the plane.
A tessellation is a repeating pattern of shapes that covers a plane without any gaps or overlaps. In a semi-regular tessellation, multiple regular polygons are used to create the pattern.
For regular octagons and equilateral triangles to form a semi-regular tessellation, they must satisfy two conditions:
Vertex Condition: The same polygons meet at each vertex.
Edge Condition: The same polygons meet along each edge.
Let's examine these conditions for regular octagons and equilateral triangles:
Regular Octagon:
Each vertex of an octagon meets three other octagons.
Each edge of an octagon meets two other octagons.
Equilateral Triangle:
Each vertex of a triangle meets six other triangles.
Each edge of a triangle meets three other triangles.
The vertex condition is satisfied because each vertex of an octagon meets three equilateral triangles, and each vertex of an equilateral triangle meets three octagons.
The edge condition is satisfied because each edge of an octagon meets two equilateral triangles, and each edge of an equilateral triangle meets three octagons.
Therefore, regular octagons and equilateral triangles can form a semi-regular tessellation of the plane.
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Solve the following linear system graphically.
Y= -3x + 10
Answer: -0.3
Step-by-step explanation:
Each student separately carried out a different number of experiments. Here are their results:
● Student 1: In 4 experiments, they picked a green marble 1 time.
● Student 2: In 12 experiments, they picked a green marble 5 times.
● Student 3: In 9 experiments, they picked a green marble 3 times.
Estimate the probability of getting a green marble from this bag. Write your answer as a fraction.
The estimated probability of getting a green marble from this bag is 9/25.
The probability of getting a green marble from this bag.
We'll use the information provided on each student's results to calculate the probability.
Student 1: Picked a green marble 1 time in 4 experiments.
Student 2: Picked a green marble 5 times in 12 experiments.
Student 3: Picked a green marble 3 times in 9 experiments.
To estimate the probability, we'll add the number of successful green marble picks (1 + 5 + 3 = 9) and divide it by the total number of experiments (4 + 12 + 9 = 25).
Probability of getting a green marble = (Number of successful picks) / (Total number of experiments) = 9 / 25.
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Evaluate // / Vx2+ y2 dV, where E is the region that lies inside the cylinder x2 + y2 = 16 and between the planes z =-4 and z = 6
The value of the integral is 640V. we integrate with respect to r:
∫0^4 10Vr^2 r dr = (10/4)(4^4)V = 640V
To evaluate the integral of Vx^2 + y^2 dV over the given region E, we can use cylindrical coordinates since the region lies inside a cylinder.
First, we need to determine the limits of integration for each variable. For z, the limits are -4 to 6, since the region is between the planes z=-4 and z=6. For the cylindrical coordinates, we know that x^2 + y^2 = r^2, so the cylinder can be represented by r = 4. Therefore, the limits for r are 0 to 4, and the limits for theta are 0 to 2π.
Substituting in the cylindrical coordinates into the integral, we get:
∫∫∫E Vr^2 r dz dθ dr
= ∫0^2π ∫0^4 ∫-4^6 Vr^2 r dz dr dθ
Since the integral does not depend on theta or z, we can evaluate them first. The integral with respect to z gives:
∫-4^6 Vr^2 r dz = 10Vr^2 r
Next, we integrate with respect to r:
∫0^4 10Vr^2 r dr = (10/4)(4^4)V
= 640V
Therefore, the value of the integral is 640V.
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Suppose that you are at the base of a hill and see a sign that reads "Elevation 2500 Feet." The road y the hill to the top, which is 3 horizontal miles from the base. At the top, you see a sign that reads "Ele the growth rate in your elevation with respect to horizontal distance as you drive up the road?
The growth rate in elevation with respect to horizontal distance as you drive up the road is approximately 0.315 feet of elevation gained for every 1 foot of horizontal distance traveled.
Based on the information given, we know that the elevation at the base of the hill is 0 feet and the elevation at the top is 5000 feet (as the sign reads "Elevation 2500 feet" at the base and "Elevation 7500 feet" at the top). The horizontal distance from the base to the top is 3 miles.
To find the growth rate in elevation with respect to horizontal distance as you drive up the road, we can use the formula:
growth rate = change in elevation / horizontal distance
In this case, the change in elevation is 5000 feet (from 0 feet at the base to 5000 feet at the top), and the horizontal distance is 3 miles.
We need to convert the units to be consistent, so let's convert 3 miles to feet:
3 miles = 3 x 5280 feet = 15,840 feet
Now we can plug in the values and solve for the growth rate:
growth rate = 5000 feet / 15,840 feet = 0.315
So the growth rate in elevation with respect to horizontal distance as you drive up the road is approximately 0.315 feet of elevation gained for every 1 foot of horizontal distance traveled.
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Suppose that you're interested in the effect of class attendance on student performance: performance = Bo + Bi attendance + B2ACT + B3GPA + u a. Let distance be the distance from the students' living quarters to the lecture hall. Assume distance and u are uncorrelated. What additional assumptions are required for distance to be an IV for attendance? b. Consider the following, in which the model is expanded to include the interaction between GPA and attendance: performance = Bo + Biattendance + B2ACT + B3GPA + BAGPA * attendance +u If attendance is correlated with u, then, in general, so is GPA*attendance. What might be a good IV for GPA*attendance?
a. distance should not directly affect the performance variable. b. A valid IV can be a challenging task and requires careful consideration of the underlying causal mechanisms and potential confounding factors.
a. In order for distance to be an instrumental variable (IV) for attendance, it must be (i) correlated with attendance, and (ii) uncorrelated with the error term (u) in the attendance equation. Additionally, distance should not directly affect the performance variable.
b. If attendance is correlated with the error term (u) in the attendance equation, then the interaction term between GPA and attendance will also be correlated with u. A possible IV for the interaction term could be a measure of how easily accessible the lecture notes are to the students. If there is a system in place that allows students to access lecture notes online or through a library, then students with lower attendance may still have access to the material covered in the lectures and may perform better if they have good GPA. Thus, this variable may be a good IV for the GPA*attendance term. However, it should be noted that finding a valid IV can be a challenging task and requires careful consideration of the underlying causal mechanisms and potential confounding factors.
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expand f(x)=4x^2-39x 98 as a power series around 5
The power series expansion of f(x) = 4x^2 - 39x + 98 around 5 is f(x) ≈ 3 + (x-5) + 4(x-5)^2.
To expand f(x)=4x^2-39x+98 as a power series around 5, we need to use the formula for a power series:
f(x) = ∑(n=0 to infinity) [f^(n)(a)/n!] * (x-a)^n
where f^(n)(a) represents the nth derivative of f(x) evaluated at x=a. In this case, a=5.
To find the derivatives of f(x), we can use the power rule and the constant multiple rule:
f'(x) = 8x - 39
f''(x) = 8
f'''(x) = 0
f''''(x) = 0
...
Notice that the derivatives beyond the second derivative are all zero. This is because f(x) is a quadratic function, so all higher-order derivatives are zero.
Now we can plug these derivatives into the formula for the power series:
f(x) = f(5) + f'(5)*(x-5) + (f''(5)/2!)*(x-5)^2 + ...
f(5) = 4(5)^2 - 39(5) + 98 = -23
f'(5) = 8(5) - 39 = 1
f''(5) = 8
So the power series expansion of f(x) around x=5 is:
f(x) = -23 + (x-5) + 4/2!*(x-5)^2 + 0*(x-5)^3 + 0*(x-5)^4 + ...
Simplifying this expression, we get:
f(x) = -23 + (x-5) + 2(x-5)^2 + ...
And that's the power series expansion of f(x) around x=5!
Hi! To expand the function f(x) = 4x^2 - 39x + 98 as a power series around 5, we will use the Taylor series expansion formula:
f(x) = f(a) + f'(a)(x-a) + (f''(a)/2!)(x-a)^2 + ...
where a = 5. First, let's find the derivatives of f(x):
f(x) = 4x^2 - 39x + 98
f'(x) = 8x - 39
f''(x) = 8
Now, we'll evaluate the derivatives at a = 5:
f(5) = 4(5)^2 - 39(5) + 98 = 100 - 195 + 98 = 3
f'(5) = 8(5) - 39 = 40 - 39 = 1
f''(5) = 8
Finally, we'll plug these values into the Taylor series expansion formula:
f(x) ≈ 3 + 1(x-5) + (8/2!)(x-5)^2
f(x) ≈ 3 + (x-5) + 4(x-5)^2
So, the power series expansion of f(x) = 4x^2 - 39x + 98 around 5 is f(x) ≈ 3 + (x-5) + 4(x-5)^2.
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by the central limit theorem, the sampling distribution of (x1-x2) is. a. approximately normal for small samplesb. approximately skewed for large samplesc. approximately normal for large samplesd. approximately a t-distrubution for large samples
The correct answer is (c) approximately normal for large samples.
The central limit theorem states that as the sample size increases, the sampling distribution of the sample mean approaches a normal distribution, regardless of the shape of the population distribution. In the case of the difference of two sample means (x1 - x2), the central limit theorem still applies, and the distribution becomes approximately normal as the sample size (n) increases. Therefore, for large sample sizes, the sampling distribution of (x1 - x2) can be approximated by a normal distribution, and the properties of the normal distribution can be used to make statistical inferences about the population mean difference.
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Which geometric term describes ∠TAG ? in math
Answer:
angle
Step-by-step explanation:
since there is a < sign, that makes it an angle. I'm not sure if that is the whole problem, or if It is missing a picture. Hope this helps!
sketch several levels of f(x,y) = e^x y
To sketch several levels of the function \(f(x, y) = e^x y\), we can plot contour lines corresponding to different function values. Each contour line represents points in the xy-plane where the function takes a constant value.
Here is a sketch showing contour lines for various levels of \(f(x, y) = e^x y\):
```
| _______________
| _/ |
| _/ |
| / \
| | |
| | |
| | |
| \ /
| \ /
| \______/
|
+--------------------------------
```
Each contour line corresponds to a different level of \(f(x, y)\). The lines get closer together as we move away from the origin, indicating an exponential growth pattern.
Please note that the sketch is a rough representation and may not accurately reflect the precise shape and spacing of the contour lines.
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Use the definition of the derivative to calculate the derivative of f)x)=7/(x+6)
Hello !
Answer:
[tex]\Large \boxed{\sf f'(x)=-\frac{7}{(x+6)^2} }[/tex]
Step-by-step explanation:
Let's remember !
The derivate of [tex]\sf \frac{u(x)}{v(x)}[/tex] is [tex]\sf \frac{u'(x)v(x)-u(x)v'(x)}{v(x)}^2[/tex]The derivate of [tex]\sf \lambda x[/tex] if [tex]\lambda[/tex] (where [tex]\lambda[/tex] is a real number)The derivate of [tex]k[/tex] is 0 (where k is a constant)Given : [tex]\sf f(x) = \frac{7}{x+6}[/tex]
We have :
[tex]\sf u(x) =7[/tex][tex]\sf v(x)=x+6[/tex]Let's derivate u and v with the previous formulas:
[tex]\sf u'(x)=0[/tex][tex]\sf v'(x)=1[/tex]Now we can apply the first formula !
[tex]\sf f'(x)=\frac{0\times(x+6)-7\times1}{(x+6)^2} \\\boxed{\sf f'(x)=-\frac{7}{(x+6)^2} }[/tex]
Have a nice day ;)
what is the probability x bar is between 91 and 92.5
Therefore, the probability that x bar is between 91 and 92.5 is approximately 1.
To find the probability that the sample mean x bar is between 91 and 92.5, we need to use the central limit theorem and assume that the sample mean follows a normal distribution with mean μ = 91.7 and standard deviation σ/√n = 0.5/√25 = 0.1.
Then, we can use a standard normal distribution with mean 0 and standard deviation 1 to find the probability:
P(91 ≤ x bar ≤ 92.5) = P[(91 - 91.7)/(0.1) ≤ (x bar - 91.7)/(0.1) ≤ (92.5 - 91.7)/(0.1)]
= P[-7 ≤ Z ≤ 8] where Z is a standard normal random variable.
Using a standard normal table or a calculator, we can find that the probability is approximately 1, since the range -7 ≤ Z ≤ 8 covers almost the entire area under the standard normal distribution.
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sorry to dissapoint yall BUT THIS IS DUE IN 5 MIN TnT
The value of x in the equation is -3.
The given equation is 4 = (3x+17)/2
We have to find the value of x
Apply cross multiplication
4×2 = 3x+17
8=3x+17
Subtract 17 from both sides
8-17=3x
-9=3x
Divide both sides by 3
x=-3
Hence, the value of x in the equation is -3.
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Foam play structure
directions: read the scenario and answer the questions on separate
paper.
at a daycare, kiran sees children playing with this foam play toy.
10 in
20 in
2 in
10 in
5 in
20 in
20 in
8 in
5 in
2 in
26 in
The lengths of the various foam pieces are represented here in inches according to the supplied specs. The following information is provided on a separate sheet of paper, which can be used to answer the questions that are there: 10 in, 20 in, 2 in, 10 in, 5 in, 20 in, 20 in, 8 in, 5 in, 2 in, and 26 in.
The provided measurements suggest that the foam play toy is made up of a number of different foam pieces, each of which has a different length.
One would need to conduct an analysis of the provided measures and give careful consideration to the particular questions that are being asked in order to answer the questions on the separate paper. Because the questions themselves are not included in the information that is provided, it is required to evaluate the prompts that are on the separate page and respond to them in the appropriate manner.
The lengths of the foam pieces can be determined by using the specified measures, which can also be used to answer any queries regarding the arrangement of the foam pieces, the overall length, or any other special inquiries that are mentioned in the https://brainly.com/question/28170201.
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A bookshelf has 24 books, which include 10 books that are graphic novels and 11 books that contain animal characters. Of these books, 7 are graphic novels that contain animal characters.
What is the probability that a book contains animal characters given that it is a graphic novel?
10/7
11/24
7/24
7/10
The answer is 7/10 given that a book contains animal characters given that it is a graphic Nove. We have 24 books, of which 10 are graphic novels and 11 have animal characters.
Seven of them are graphic novels with animal characters. What we are looking for is the probability of an animal character being present, given that the book is a graphic novel. We can use the Bayes theorem to calculate this. Bayes' Theorem: [tex]P(A|B) = P(B|A)P(A) / P(B)P[/tex](Animal Characters| Graphic Novel) = P(Graphic Novel| Animal Characters)P(Animal Characters) / P(Graphic Novel)By looking at the question, P(Animal Characters) = 11/24,
P(Graphic Novel| Animal Characters) = 7/11, and P(Graphic Novel) = 10/24.P(Animal Characters| Graphic Novel) [tex]= (7/11) (11/24) / (10/24)P[/tex](Animal Characters| Graphic Novel) = 7/10The probability that a book contains animal characters given that it is a graphic novel is 7/10.
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how many integers between 400 and 851 inclusive are divisible by four?
To find the number of integers between 400 and 851 inclusive that are divisible by four, we need to determine the number of multiples of four in that range. The first multiple of four in the range is 400, and the last multiple of four is 848. To find how many multiples of four there are, we can subtract the two numbers and divide by four, then add one (because we need to include the first multiple).
- First multiple of four in the range: 400
- Last multiple of four in the range: 848
- Difference between the two: 848 - 400 = 448
- Divide by four: 448 ÷ 4 = 112
- Add one: 112 + 1 = 113
Therefore, there are 113 integers between 400 and 851 inclusive that are divisible by four.
There are 113 integers between 400 and 851 inclusive that are divisible by four.
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•A family of 5 went to a matinee movie on a Saturday afternoon. The movie ticket prices were the same for each person.
•The family spent a combined $25 at the concession stand on drinks and popcorn.
•Altogether, the family spent $57.50 at the movies.
Write an equation using x below.
On a Saturday afternoon, a family of five went to see a matinée movie. Everyone paid the same price for their movie tickets. The equation will be 57.50 = 5x + 25 and the value of x is $6.50.
Let the price of one movie ticket be x,
So if there are 5 members and the ticket price is same for all, the total price for 5 movie tickets = Price of one ticket × 5
= x × 5
= 5x
Money spent on drinks = $25
ow, the total money spent is $57.50
Total money spent = money spent on movie tickets + money spent on drinks
So, the equation will be:
57.50 = 5x + 25
Now, on solving the equation:
5x = 57.50 - 25
5x = 32.50
x = 32.50 / 5
x = 6.50
Hence, the price of one ticket is $6.50 and the equation for this question is 57.50 = 5x + 25.
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a quadratic function f is given. f(x) = x2 − 12x 24 (a) express f in standard form f(x) =
(b) Sketch a graph of f.
The x-intercepts are approximately 0.54 and 11.46. Since the coefficient of x^2 is positive, the graph opens upwards. Combining all of this information, we can sketch a graph of f(x) that looks like a "U" shape with vertex at (6, -12) and x-intercepts at approximately 0.54 and 11.46.
(a) To express f(x) in standard form, we need to complete the square. First, we can factor out the coefficient of x^2 to get:
f(x) = x^2 - 12x + 24
Next, we add and subtract (12/2)^2 = 36 to the expression inside the parentheses to get:
f(x) = (x^2 - 12x + 36) - 36 + 24
The expression inside the parentheses can be rewritten as (x - 6)^2, so we have:
f(x) = (x - 6)^2 - 12
Therefore, the standard form of the quadratic function f(x) is f(x) = (x - 6)^2 - 12.
(b) To sketch a graph of f, we can first identify the vertex as (6, -12) from the standard form. This is the lowest point on the graph since the coefficient of x^2 is positive. We can also find the x-intercepts by setting f(x) = 0:
(x - 6)^2 - 12 = 0
(x - 6)^2 = 12
x - 6 = ±√12
x = 6 ± 2√3.
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Two dice are rolled. Assume that all outcomes are equally likely. What is the probability that the sum of the numbers on the two dice is greater than 4? (a) 30/36 (b) 26/36 (c) 6/36 (d) 10/36
The correct answer is (a) i.e. the probability that the sum of the numbers on the two dice is greater than 4 is 30/36.
To find the probability that the sum of the numbers on two dice is greater than 4, we need to determine the number of favorable outcomes and divide it by the total number of possible outcomes.
We can start by listing all the possible outcomes when rolling two dice:
1-1, 1-2, 1-3, 1-4, 1-5, 1-6
2-1, 2-2, 2-3, 2-4, 2-5, 2-6
3-1, 3-2, 3-3, 3-4, 3-5, 3-6
4-1, 4-2, 4-3, 4-4, 4-5, 4-6
5-1, 5-2, 5-3, 5-4, 5-5, 5-6
6-1, 6-2, 6-3, 6-4, 6-5, 6-6
Out of these 36 possible outcomes, the outcomes where the sum is greater than 4 are:
1-4, 1-5, 1-6
2-3, 2-4, 2-5, 2-6
3-2, 3-3, 3-4, 3-5, 3-6
4-1, 4-2, 4-3, 4-4, 4-5, 4-6
5-1, 5-2, 5-3, 5-4, 5-5, 5-6
6-1, 6-2, 6-3, 6-4, 6-5, 6-6
There are 30 favorable outcomes. Therefore, the probability that the sum of the numbers on the two dice is greater than 4 is 30/36.
So the correct answer is (a) 30/36.
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give me at least two answers first to help get 70 and it needs to be good with an explanation with it that person gets 5 more
Answer:
A, B, and D
Step-by-step explanation:
5. How many meters of fencing will be
needed to enclose this dog pen?
4 m
175 cm
Answer:
700
Step-by-step explanation:
4(175)=700
This Continuity Editing/Cutting device is used in Classical Hollywood Cinema: match on action O True False
True, This Continuity Editing/Cutting device is used in Classical Hollywood Cinema.
Match on action is a common continuity editing/cutting technique used in Classical Hollywood Cinema, where the editor cuts from one shot to another while maintaining visual continuity between the two shots by showing the continuation of an action or movement from one shot to the next. This helps to create a smooth and seamless flow of action on screen and maintains the illusion of reality for the viewer.
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When unwrapped, the lateral surface area of cone A is a sector with central angle 6 radians and radius pi. What is the length of the radius of cone A
The length of the radius of cone A. is [tex]\frac{\pi}{6}[/tex].
The lateral surface area of cone A is a sector with central angle 6 radians and radius π.
We can use the formula for sector area to find the lateral surface area of the cone.
Area of sector = θ/2π×π²
where θ is the central angle and π is the radius.
Area of cone’s lateral surface area (L) =θ/2π×2πr=rθ.
So, r = L/θ = π/6 (when L=π and θ=6 radians).
The length of the radius of cone A is π/6 which is approximately 0.524.
Therefore, the length of the radius of cone A is [tex]\frac{\pi}{6}[/tex], when unwrapped, given that the lateral surface area of cone A is a sector with central angle 6 radians and radius pi.
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Consider a wind tunnel contraction with a contraction ratio c. Two parallel streams of air enter the contraction, the first one with speed U₁ and density p, and the second one with speed U₁ + AU₁ and density p + Ap, where |AU₁| << U₁. Determine the density difference Ap required for the flow at the exit of the contraction to have uniform velocity.
The density difference required for the flow at the exit of the contraction to have uniform velocity is simply -ρ₁.
Assuming steady, incompressible, and inviscid flow, the continuity equation states that the mass flow rate must be conserved, i.e.,
ρ₁A₁U₁ = ρ₂A₂U₂
where ρ₁ and ρ₂ are the densities of the two streams, A₁ and A₂ are the cross-sectional areas of the two streams, U₁ and U₂ are the velocities of the two streams, respectively.
Since the flow at the exit of the contraction has uniform velocity, we can set U₂ = U₁. Also, since the two streams are parallel, we can assume that A₁ = A₂ = A. Therefore, the continuity equation becomes:
ρ₁U₁ = ρ₂U₂ = ρ₂U₁
Now, we can express the density of the second stream in terms of the density of the first stream and the density difference:
ρ₂ = ρ₁ + Ap
Substituting this into the continuity equation, we get:
ρ₁U₁ = (ρ₁ + Ap)U₁
Simplifying this equation, we obtain:
Ap = -ρ₁(U₁/U₁ - 1) = -ρ₁
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How to calculate taxable income including pension contributions
Then, describe the steps involved in calculating taxable income including pension contributions, and provide examples to illustrate how these calculations work.
Finally, you can conclude by emphasizing the importance of proper tax planning and compliance to avoid penalties and other legal issues.
When calculating taxable income, you need to include pension contributions.
Here's how to calculate taxable income including pension contributions:
Step 1: Add up your income for the year, including all sources such as salary, bonuses, rental income, and investment income.
Step 2: Subtract your allowable deductions such as mortgage interest, charitable contributions, and state taxes.
Step 3: Subtract your personal exemptions, which are based on the number of dependents you have.
Step 4: Subtract your pension contributions from your income. These contributions reduce your taxable income, so the higher your contributions, the lower your taxable income.
Step 5: The result of these calculations is your taxable income. You can use this figure to determine how much tax you owe.
Then, describe the steps involved in calculating taxable income including pension contributions, and provide examples to illustrate how these calculations work.
Finally, you can conclude by emphasizing the importance of proper tax planning and compliance to avoid penalties and other legal issues.
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use a maclaurin series derived in this section to obtain the maclaurin series for the given functions. enter the first 3 non-zero terms only. f(x)=cos(7x4)= ... f(x)=sin(−πx = f(x) = tan^-1 (4x) f(x) = x^4 e^-x/2. =
The first 3 non-zero terms only [tex]x^4 e^{-x/2} = x^4.[/tex]
We can use the Maclaurin series for the trigonometric functions and exponential function to obtain the Maclaurin series for the given functions.
Here are the solutions:
[tex]f(x) = cos(7x^4)[/tex]
The Maclaurin series for cosine is:
[tex]cos(x) = 1 - x^2/2! + x^4/4! - x^6/6! + ...[/tex]
Substituting 7x^4 for x, we get:
[tex]cos(7x^4) = 1 - (7x^4)^2/2! + (7x^4)^4/4! - (7x^4)^6/6! + .....[/tex]
Simplifying, we get:
[tex]cos(7x^4) = 1 - 49x^8/2! + 2401x^16/4! - 117649x^24/6! + ...[/tex]
The first three non-zero terms are:
[tex]cos(7x^4) ≈ 1 - 24.5x^8 + 168.1x^16 - 2042.5x^24 + ...[/tex]
f(x) = sin(-πx)
The Maclaurin series for sine is:
[tex]sin(x) = x - x^3/3! + x^5/5! - x^7/7! + ...[/tex]
Substituting -πx for x, we get:
[tex]sin(-\pi x) = -\pi x + (-\pi x)^3/3! - (-\pi x)^5/5! + (-\pi x)^7/7! -......[/tex]
Simplifying, we get:
[tex]sin(-\pix) = -\pi x + \pi ^3 x^3/3! - \pi^5 x^5/5! + \pi^7 x^7/7! - ...[/tex]
The first three non-zero terms are:
[tex]sin(-\pi x) \approx -\pi x + 5.17\pi ^3 x^3 - 10.8\pi ^5 x^5 + 14.7\pi ^7 x^7 - ...[/tex]
[tex]f(x) = tan^-1(4x)[/tex]
The Maclaurin series for the arctangent function is:
[tex]tan^-1(x) = x - x^3/3 + x^5/5 - x^7/7 + ...[/tex]
Substituting 4x for x, we get:
[tex]tan^-1(4x) = 4x - (4x)^3/3 + (4x)^5/5 - (4x)^7/7 + .....[/tex]
Simplifying, we get:
[tex]tan^-1(4x) = 4x - 64x^3/3 + 1024x^5/5 - 16384x^7/7 + ...[/tex]
The first three non-zero terms are:
[tex]tan^-1(4x) \approx 4x - 21.33x^3 + 163.84x^5 - 1866.28x^7 + ...[/tex]
[tex]f(x) = x^4 e^{-x/2}[/tex]
The Maclaurin series for the exponential function is:
[tex]e^x = 1 + x + x^2/2! + x^3/3! + ...[/tex]
Substituting -x/2 for x and multiplying by[tex]x^4[/tex], we get:
[tex]x^4 e^{-x/2} = x^4 (1 - x/2 + x^2/2! - x^3/3! + ...)[/tex]
Expanding the product, we get:
[tex]x^4 e^{-x/2} = x^4.[/tex]
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find the period of the following functions. g ( x ) = cos ( x 4 )
The period of the following functions. g ( x ) = cos ( x 4 ) is that it doesn't have any.
To find the period of the function g(x) = cos(x^4), we need to find the smallest positive value of p such that g(x + p) = g(x) for all values of x. That is, we need to find the most minor p such that cos((x + p)^4) = cos(x^4) for all values of x.
Using the identity cos(a + b) = cos(a)cos(b) - sin(a)sin(b), we can expand the left-hand side of the equation:
cos((x + p)^4) = cos(x^4 + 4px^3 + 6p^2x^2 + 4p^3x + p^4)
= cos(x^4)cos(4px^3) - sin(x^4)sin(4px^3)cos(6p^2x^2)
=cos(x^4)sin(4px^3)sin(6p^2x^2) - sin(x^4)cos(4px^3)cos(6p^2x^2) + cos(x^4)cos(4px^3)sin(6p^2x^2)
Since we want this to be equal to cos(x^4), the terms involving sin(x^4) and sin(4px^3)cos(6p^2x^2) must be zero, which means that sin(x^4) = 0 and sin(4px^3)cos(6p^2x^2) = 0 for all values of x. This implies that x^4 is a multiple of π (i.e., x is an integer multiple of π^(1/4)), and 4px^3 and 6p^2x^2 are integer multiples of π, respectively.Let's consider the second condition first. Since x is an integer multiple of π^(1/4), we have: 4px^3 = (4pπ^(3/4))x^3
For this to be an integer multiple of π, we must have p = q/π^(3/4), where q is an integer. Substituting this value of p into the second condition, we get 4qx^3 = rπ
where r is an integer. This implies that x is a multiple of π, which contradicts our assumption that x is an integer multiple of π^(1/4). Therefore, there is no value of p for which g(x + p) = g(x) for all values of x.
In other words, the function g(x) = cos(x^4) does not have a period.
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