CE = CD + DE and DF = EF + DE by.

The constant A is equal to 4.903. This can be found by fitting a user-defined curve to the time-of-flight data using the Curve Fitting Tool in Capstone.

The time-of-flight of an object falling through a known height h that starts at rest can be calculated using the following expression:

t = √(2h/g)

where g is the acceleration due to gravity (9.8 m/s²).

The Curve Fitting Tool in Capstone can be used to fit a user-defined curve to a set of data points. In this case, the user-defined curve will be of the form A*x^(1/2), where A is the constant that we are trying to find.

To fit a user-defined curve to the time-of-flight data, follow these steps:

Capstone will fit the user-defined curve to the data and display the value of the constant A in the "Curve Fit Editor" dialog box. In this case, the value of A is equal to 4.903.

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Answer:

See below

Step-by-step explanation:

An easy example of an inequality where you need to flip the sign to be true is something like [tex]-2x > 4[/tex]. By dividing both sides by -2 to isolate x and get [tex]x < -2[/tex], you would need to also flip the sign to make the inequality true.

One that wouldn't need to be reversed is [tex]2x > 4[/tex]. You can just divide both sides by 2 to get [tex]x > 2[/tex] and there's no flipping the sign since you are not multiplying or dividing by a negative.

The coordinates of X that partitions XY in the ratio 5 to 4 include the following: X (-1.6, -7).

In this scenario, line ratio would be used to determine the coordinates of the point X on the directed line segment AB that partitions the segment into a ratio of 5 to 4.

In Mathematics and Geometry, line ratio can be used to determine the coordinates of X and this is modeled by this mathematical equation:

M(x, y) = [(mx₂ + nx₁)/(m + n)],  [(my₂ + ny₁)/(m + n)]

By substituting the given parameters into the formula for line ratio, we have;

M(x, y) = [(5(2) + 4(-6))/(5 + 4)],  [(5(-11) + 4(-2))/(5 + 4)]

M(x, y) = [(10 - 24)/(9)],  [(-55 - 8)/9]

M(x, y) = [-14/9],  [(-63)/9]

M(x, y) = (-1.6, -7)

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Missing information:

The question is incomplete and the complete question is shown in the attached picture.

Coupon STRIPS can be created from the given T-bond by removing the coupon payments from the bond and selling them as individual securities. Let's calculate how many coupon STRIPS can be created from this T-bond.

The bond has a 5% coupon, which means it will pay $5 million in interest every year. Over a period of 29 years, the total interest payments would be $5 million x 29 years = $145 million.

The par value of the bond is $100 million. After deducting the interest payments of $145 million, the remaining principal value is $100 million - $145 million = -$45 million.

Since there is a negative principal value, we cannot create any principal STRIPS from this bond. However, we can create coupon STRIPS equal to the number of coupon payments that will be made over the remaining life of the bond.

Therefore, we can create 29 coupon STRIPS of $5 million each from this T-bond. These coupon STRIPS will be sold separately and will not include the principal repayment of the bond.

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The expression given can be expressed in it's splest term as 5 : 3

Given the expression :

To simplify to it's lowest term , divide both values by 44

Hence, we have :

At this point, none of the values can be divide further by a common factor.

Hence, the expression would be 5:3

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The magnitude of the force required to prevent the car from rolling down the hill is 1578.88 Newton.

In accordance with Newton's Second Law of Motion, the force acting on this car is equal to the horizontal component of the force (Fx) that is parallel to the slope:

Fx = mgcosθ

Fx = Fcosθ

Where:

Note: 3500 lbs to kg = 3500/2.205 = 1587.573 kg

By substituting the given parameters into the formula for the horizontal component of the force (Fx), we have;

Fx = 1587.573cos(6)

Fx = 1578.88 Newton.

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The magnitude of the force required to prevent the car from rolling down the hill is approximately 367.01 lbs.

To find the magnitude of the force required to prevent the car from rolling down the inclined hill, we can analyze the forces acting on the car.

The weight of the car acts vertically downward with a magnitude of 3500 lbs. We can decompose this weight into two components: one perpendicular to the incline and one parallel to the incline.

The component perpendicular to the incline can be calculated as W_perpendicular = 3500 * cos(6°).

The component parallel to the incline represents the force that tends to make the car roll down the hill. To prevent this, an equal and opposite force is required, which is the force we need to find.

Since we are ignoring friction, the force required to prevent rolling is equal to the parallel component of the weight: F_required = 3500 * sin(6°).

Calculating this value gives:

F_required = 3500 * sin(6°) ≈ 367.01 lbs (rounded to 2 decimal places).

Therefore, the magnitude of the force required to prevent the car from rolling down the hill is approximately 367.01 lbs.

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There are approximately 0.4594 acres in 2.0 hectares.

We need to use the conversion factor between hectares and acres.

Given:

[tex]1 hectare = 1[/tex] × [tex]10^4 m^2[/tex]

[tex]1 acre = 4.356[/tex] × [tex]10^4 ft[/tex]

To find the number of acres in 2.0 hectares, we can set up the following conversion:

[tex]2.0 hectares * (1[/tex] × [tex]10^4 m^2 / 1 hectare) * (1 acre / 4.356[/tex] × [tex]10^4 ft)[/tex]

Simplifying the units:

[tex]2.0 * (1[/tex] × [tex]10^4 m^2) * (1 acre / 4.356[/tex] ×[tex]10^4 ft)[/tex]

Now, we can perform the calculation:

[tex]2.0 * (1[/tex] × [tex]10^4) * (1 /[/tex][tex]4.356[/tex] ×[tex]10^4)[/tex]

= 2.0 * 1 / 4.356

= 0.4594

Therefore, there are approximately 0.4594 acres in 2.0 hectares.

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Example 1: y = x⁴ – x³ + x² – x + 1. Example 2: y = x⁴ + 6x² + 25.These polynomials have non-zero coefficients for the terms x³ and x², which means they cannot be expressed in the required form.

Quartic polynomials of the form y = a(x – h)⁴ + k cannot represent all quartic functions. Some quartic polynomials cannot be written in this form, for various reasons, including the presence of the term x³.Here are two examples of quartic polynomials that cannot be written in the form y = a(x – h)⁴ + k:

Example 1: y = x⁴ – x³ + x² – x + 1

This quartic polynomial does not have the same form as y = a(x – h)⁴ + k. It contains a term x³, which is not present in the given form. As a result, it cannot be written in the form y = a(x – h)⁴ + k.

Example 2: y = x⁴ + 6x² + 25

This quartic polynomial also does not have the same form as y = a(x – h)⁴ + k. It does not contain any linear or cubic terms, but it does have a quadratic term 6x². This means that it cannot be written in the form y = a(x – h)⁴ + k.Therefore, some quartic polynomials cannot be expressed in the form of y = a(x-h)⁴+k, as mentioned earlier. Two such examples are as follows:Example 1: y = x⁴ – x³ + x² – x + 1

Example 2: y = x⁴ + 6x² + 25

These polynomials have non-zero coefficients for the terms x³ and x², which means they cannot be expressed in the required form. These are the simplest examples of such polynomials; there may be more complicated ones as well, but the concept is the same.

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The distance between the pair of parallel lines with the equations y = (1/2)x + 7/2 and y = (1/2)x + 1 is 1.67 units.

To find the distance between two parallel lines, we need to determine the perpendicular distance between them. Since the slopes of the given lines are equal (both lines have a slope of 1/2), they are parallel.

To calculate the distance, we can take any point on one line and find its perpendicular distance to the other line. Let's choose a convenient point on the first line, y = (1/2)x + 7/2. When x = 0, y = 7/2, so we have the point (0, 7/2).

Now, we'll use the formula for the perpendicular distance from a point (x₁, y₁) to a line Ax + By + C = 0:

Distance = |Ax₁ + By₁ + C| / √(A² + B²)

For the line y = (1/2)x + 1, the equation can be rewritten as (1/2)x - y + 1 = 0. Substituting the values from our point (0, 7/2) into the formula, we get:

Distance = |(1/2)(0) - (7/2) + 1| / √((1/2)² + (-1)²)

        = |-(7/2) + 1| / √(1/4 + 1)

        = |-5/2| / √(5/4 + 1)

        = 5/2 / √(9/4)

        = 5/2 / (3/2)

        = 5/2 * 2/3

        = 5/3

        = 1 2/3

        = 1.67 units (approx.)

Therefore, the distance between the given pair of parallel lines is approximately 1.67 units.

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The sum of the first 10 terms of the arithmetic series is 45.

To find the sum of the first 10 terms of an arithmetic series, we can use the formula for the sum of an arithmetic series:

Sn = (n/2) * (a1 + an)

where Sn represents the sum of the first n terms, a1 is the first term, and an is the nth term.

Given that the first term (a1) is -1 and the 10th term (an) is 10, we can substitute these values into the formula to find the sum of the first 10 terms:

S10 = (10/2) * (-1 + 10)

= 5 * 9

= 45

Therefore, the sum of the first 10 terms of the arithmetic series is 45.

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The first three nonzero terms in the Taylor polynomial approximation for the given initial value problem are: 1 - t^2/8 + t^4/128.

Given the initial value problem: x′′ + 8tx = 0; x(0) = 1, x′(0) = 0. To find the first three nonzero terms in the Taylor polynomial approximation, we follow these steps:

Step 1: Find x(t) and x′(t) using the integrating factor.

We start with the differential equation x′′ + 8tx = 0. Taking the integrating factor as I.F = e^∫8t dt = e^4t, we multiply it on both sides of the equation to get e^4tx′′ + 8te^4tx = 0. This simplifies to e^4tx′′ + d/dt(e^4tx') = 0.

Integrating both sides gives us ∫ e^4tx′′ dt + ∫ d/dt(e^4tx') dt = c1. Now, we have e^4tx' = c2. Differentiating both sides with respect to t, we get 4e^4tx' + e^4tx′′ = 0. Substituting the value of e^4tx′′ in the previous equation, we have -4e^4tx' + d/dt(e^4tx') = 0.

Simplifying further, we get -4x′ + x″ = 0, which leads to x(t) = c3e^(4t) + c4.

Step 2: Determine the values of c3 and c4 using the initial conditions.

Using the initial conditions x(0) = 1 and x′(0) = 0, we can substitute these values into the expression for x(t). This gives us c3 = 1 and c4 = -1/4.

Step 3: Write the Taylor polynomial approximation.

The Taylor approximation to three nonzero terms is x(t) = 1 - t^2/8 + t^4/128 + ...

Therefore, the starting value problem's Taylor polynomial approximation's first three nonzero terms are: 1 - t^2/8 + t^4/128.

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Report on Commonalities Among Three Chosen Regions

For this assignment, three regions of the world have been selected to identify commonalities among them. The chosen regions are North America, Europe, and East Asia. Through internet research, several commonalities have been identified that are shared among these regions. Below are five commonalities found:

Economic Development:

All three regions, North America, Europe, and East Asia, are characterized by significant economic development. They are home to some of the world's largest economies, such as the United States, Germany, China, and Japan. These regions exhibit high levels of industrialization, technological advancement, and trade activities. Their economies contribute significantly to global GDP and are major players in international commerce.

Technological Advancement:

Another commonality among these regions is their emphasis on technological advancement. They are known for their innovation, research and development, and technological infrastructure. Companies and industries in these regions are at the forefront of technological advancements in fields such as information technology, automotive manufacturing, aerospace, pharmaceuticals, and more.

Cultural Diversity:

North America, Europe, and East Asia are culturally diverse regions, with a rich tapestry of different ethnicities, languages, and traditions. Immigration and historical influences have contributed to the diversity seen in these regions. Each region has a unique blend of cultural practices, cuisines, art, music, and literature. This diversity creates vibrant multicultural societies and fosters an environment of cultural exchange and appreciation.

Democratic Governance:

A commonality shared among these regions is the prevalence of democratic governance systems. Many countries within these regions have democratic political systems, where citizens have the right to participate in the political process, elect representatives, and enjoy individual freedoms and rights. The principles of democracy, rule of law, and respect for human rights are important pillars in these regions.

Education and Research Excellence:

North America, Europe, and East Asia are known for their strong education systems and institutions of higher learning. These regions are home to prestigious universities, research centers, and educational initiatives that promote academic excellence. They attract students and scholars from around the world, offering a wide range of educational opportunities and contributing to advancements in various fields of study.

In conclusion, the regions of North America, Europe, and East Asia share several commonalities. These include economic development, technological advancement, cultural diversity, democratic governance, and education and research excellence. Despite their geographical and historical differences, these regions exhibit similar traits that contribute to their global significance and influence.

Answer:

For this assignment, three regions of the world have been selected to identify commonalities among them. The chosen regions are North America, Europe, and East Asia. Through internet research, several commonalities have been identified that are shared among these regions. Below are five commonalities found:

Economic Development:

All three regions, North America, Europe, and East Asia, are characterized by significant economic development. They are home to some of the world's largest economies, such as the United States, Germany, China, and Japan. These regions exhibit high levels of industrialization, technological advancement, and trade activities. Their economies contribute significantly to global GDP and are major players in international commerce.

Technological Advancement:

Another commonality among these regions is their emphasis on technological advancement. They are known for their innovation, research and development, and technological infrastructure. Companies and industries in these regions are at the forefront of technological advancements in fields such as information technology, automotive manufacturing, aerospace, pharmaceuticals, and more.

Cultural Diversity:

North America, Europe, and East Asia are culturally diverse regions, with a rich tapestry of different ethnicities, languages, and traditions. Immigration and historical influences have contributed to the diversity seen in these regions. Each region has a unique blend of cultural practices, cuisines, art, music, and literature. This diversity creates vibrant multicultural societies and fosters an environment of cultural exchange and appreciation.

Democratic Governance:

A commonality shared among these regions is the prevalence of democratic governance systems. Many countries within these regions have democratic political systems, where citizens have the right to participate in the political process, elect representatives, and enjoy individual freedoms and rights. The principles of democracy, rule of law, and respect for human rights are important pillars in these regions.

Education and Research Excellence:

North America, Europe, and East Asia are known for their strong education systems and institutions of higher learning. These regions are home to prestigious universities, research centers, and educational initiatives that promote academic excellence. They attract students and scholars from around the world, offering a wide range of educational opportunities and contributing to advancements in various fields of study.

In conclusion, the regions of North America, Europe, and East Asia share several commonalities. These include economic development, technological advancement, cultural diversity, democratic governance, and education and research excellence. Despite their geographical and historical differences, these regions exhibit similar traits that contribute to their global significance and influence.

The expression sinθ secθ tanθ simplifies to [tex]tan^{2\theta[/tex], which represents the square of the tangent of angle θ.

To simplify the expression sinθ secθ tanθ, we can use trigonometric identities. Recall the following trigonometric identities:

secθ = 1/cosθ

tanθ = sinθ/cosθ

Substituting these identities into the expression, we have:

sinθ secθ tanθ = sinθ * (1/cosθ) * (sinθ/cosθ)

Now, let's simplify further:

sinθ * (1/cosθ) * (sinθ/cosθ) = (sinθ * sinθ) / (cosθ * cosθ)

Using the identity[tex]sin^{2\theta} + cos^{2\theta} = 1[/tex], we can rewrite the expression as:

(sinθ * sinθ) / (cosθ * cosθ) = [tex]\frac { sin^{2\theta} } { cos^{2\theta} }[/tex]

Finally, using the quotient identity for tangent tanθ = sinθ / cosθ, we can further simplify the expression:

[tex]\frac { sin^{2\theta} } { cos^{2\theta} }[/tex] = [tex](sin\theta / cos\theta)^2[/tex] = [tex]tan^{2\theta[/tex]

Therefore, the simplified expression is [tex]tan^{2\theta[/tex].

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a. The truck rental cost when you drive 85 miles is  $85.7.

b. The number of miles driven when the cost is $65.96 is 0.42x.

a. To find the truck rental cost when driving 85 miles, we can substitute the value of x into the given function.

f(x) = 0.42x + 50

Substituting x = 85:

f(85) = 0.42(85) + 50

= 35.7 + 50

= 85.7

Therefore, the truck rental cost when driving 85 miles is $85.70.

b. To determine the number of miles driven when the cost is $65.96, we can set up an equation using the given function.

f(x) = 0.42x + 50

Substituting f(x) = 65.96:

65.96 = 0.42x + 50

Subtracting 50 from both sides:

65.96 - 50 = 0.42x

15.96 = 0.42x

To isolate x, we divide both sides by 0.42:

15.96 / 0.42 = x

38 = x

Therefore, the number of miles driven when the cost is $65.96 is 38 miles.

In summary, when driving 85 miles, the truck rental cost is $85.70, and when the cost is $65.96, the number of miles driven is 38 miles.

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- Fixed cost: $4000, Marginal cost per item: $2.8, Price: $4

To identify the fixed cost, marginal cost per item, and the price at which the item is sold, we can analyze the given functions.

1. Fixed cost:
The fixed cost refers to the cost that remains constant regardless of the quantity produced or sold. In this case, the fixed cost is represented by the constant term in the total cost function. Looking at the equation C = 4000 + 2.8q, we can see that the fixed cost is $4000.

2. Marginal cost per item:
The marginal cost per item represents the additional cost incurred when producing or selling one more item. To find the marginal cost per item, we need to calculate the derivative of the total cost function with respect to the quantity (q).

Differentiating the total cost function C = 4000 + 2.8q with respect to q, we get:
dC/dq = 2.8

Therefore, the marginal cost per item is $2.8.

3. Price:
The price at which the item is sold is represented by the revenue per item. Looking at the revenue function R = 4q, we can see that the price at which the item is sold is $4.

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To find the area of triangle ΔABC, we can use the formula for the area of a triangle given its side lengths, also known as Heron's formula. Heron's formula states that the area (A) of a triangle with side lengths a, b, and c is:

A = [tex]\sqrt{(s(s-a)(s-b)(s-c))}[/tex]

where s is the semi perimeter of the triangle, calculated as:

s = (a + b + c)/2

In this case, we have the side lengths b = 12, a = 9, and c = 15.2, and we know that ∠C = 68°.

s = (9 + 12 + 15.2)/2 = 36.2/2 = 18.1

Using Heron's formula, we can calculate the area:

A = [tex]\sqrt{(18.1(18.1-9)(18.1-12)(18.1-15.2))}[/tex]

A ≈ 49.9

Therefore, the area of triangle ΔABC, rounded to the nearest tenth, is approximately 49.9 square units.

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Statement                                  | Reason

----------------------------------------------------------

1. ΔQTS ≅ ΔXWZ                           | Given

2. TR bisects ∠QTS                       | Given

3. WY bisects ∠XWZ                       | Given

4. ∠QTS ≅ ∠XWZ                           | Corresponding parts of congruent triangles are congruent (CPCTC)

5. ∠QTR ≅ ∠XWY                           | Angle bisectors divide angles into congruent angles

6. ΔQTR ≅ ΔXWY                           | Angle-Angle (AA) criterion for triangle congruence

7. TR ≅ WY                                | Corresponding parts of congruent triangles are congruent (CPCTC)

8. TR/WY = QT/XW                          | Division property of equality

In the given statement, it is stated that triangle QTS is congruent to triangle XWZ (ΔQTS ≅ ΔXWZ).

The given information also states that TR is an angle bisector of angle QTS, and step 3 states that WY is an angle bisector of angle XWZ.

Based on the congruence of triangles QTS and XWZ (ΔQTS ≅ ΔXWZ), we can conclude that the corresponding angles in these triangles are congruent. Therefore, ∠QTS ≅ ∠XWZ.

Because TR is an angle bisector of ∠QTS and WY is an angle bisector of ∠XWZ, they divide the respective angles into congruent angles. Thus, ∠QTR ≅ ∠XWY.

Using the Angle-Angle (AA) criterion for triangle congruence, we can conclude that triangles QTR and XWY are congruent (ΔQTR ≅ ΔXWY).

By the Corresponding Parts of Congruent Triangles are Congruent (CPCTC) property, we know that corresponding sides of congruent triangles are congruent. Therefore, TR ≅ WY.

Finally, using the Division Property of Equality, we can divide both sides of the equation TR ≅ WY by the corresponding sides QT and XW to obtain the desired result, TR/WY = QT/XW.

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Answer:

Radius is [tex]r\approx4.622\,\text{ft}[/tex]

Step-by-step explanation:

[tex]V=\pi r^2h\\34=\pi r^2(5)\\\frac{34}{5\pi}=r^2\\r=\sqrt{\frac{34}{5\pi}}\\r\approx4.622\,\text{ft}[/tex]

The average angular speed of the hand is ω = 1800 / t rad/s and 103140 / t degrees/s and the average linear speed of the hand is 5D / t m/s.  The answers to A and B are not the same as they refer to different quantities with different units and different values.

A) To find the average angular speed of the hand, we need to use the formula:

angular speed (ω) = (angular displacement (θ) /time taken(t))

= 5 × 360 / t

Here, t is the time for 5 rotations

So, average angular speed of the hand is ω = 1800 / trad/s

To convert this into degrees/s, we can use the conversion:

1 rad/s = 57.3 degrees/s

Therefore, ω in degrees/s = (ω in rad/s) × 57.3

= (1800 / t) × 57.3

= 103140 / t degrees/s

B) To find the average linear speed of the hand, we need to use the formula:linear speed (v) = distance (d) /time taken(t)

Here, the distance of the hand is the length of the arm.

Distance from shoulder to middle of hand = D

Similarly, the time taken to complete 5 rotations is t

Thus, the total distance covered by the hand in 5 rotations is D × 5

Therefore, average linear speed of the hand = (D × 5) / t

= 5D / t

= 5 × distance of hand / time for 5 rotations

C) No, the answers to A and B are not the same. This is because angular speed and linear speed are different quantities. Angular speed refers to the rate of change of angular displacement with respect to time whereas linear speed refers to the rate of change of linear displacement with respect to time. Therefore, they have different units and different values.

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Answer:

For two triangles to be similar, their corresponding angles must be equal. Triangle 1 has angles measuring 26°, 53°, and an unknown angle. Triangle 2 has angles measuring 26°, a°, and an unknown angle.

To determine the value of a that would refute Frank's claim, we need to find a value for which the unknown angles in both triangles are equal.

In triangle 1, the sum of the angles is 180°, so the third angle can be found by subtracting the sum of the known angles from 180°:

Third angle of triangle 1 = 180° - (26° + 53°) = 180° - 79° = 101°.

For triangle 2 to be similar to triangle 1, the unknown angle in triangle 2 must be equal to 101°. Therefore, the value of a that would refuse Frank's claim is a = 101°.

Step-by-step explanation:

Answer:

101

Step-by-step explanation:

In Δ1, let the third angle be x

⇒ x + 26 + 53 = 180

⇒ x = 180 - 26 - 53

⇒ x = 101°

∴ the angles in Δ1 are 26°, 53° and 101°

In Δ2, if the angle a = 101° then the third angle will be :

180 - 101 - 26 = 53°

∴ the angles in Δ2 are 26°, 53° and 101°, the same as Δ1

So, if a = 101° then the triangles will be similar

Answer:

Step-by-step explanation:

perpendicular bisector AB is dividing the line segment XY at a right angle into exact two equal parts,

therefore,

ΔABY ≅ ΔABX

also we can prove the perpendicular bisector property with the help of SAS congruency,

as both sides and the corresponding angles are congruent thus, we can say that B is equidistant from X and Y

therefore,

ΔABY ≅ ΔABX

Answer:The interior angle of a polygon is given by

The exterior angle of a polygon is given by

where n is the number of sides of the polygon

The statement

The interior of a regular polygon is 5 times the exterior angle is written as

Solve the equation

That's

Since the denominators are the same we can equate the numerators

That's

180n - 360 = 1800

180n = 1800 + 360

180n = 2160

Divide both sides by 180

n = 12

I).

The interior angle of the polygon is

The answer is

150°

II.

Interior angle + exterior angle = 180

From the question

Interior angle = 150°

So the exterior angle is

Exterior angle = 180 - 150

We have the answer as

30°

III.

The polygon has 12 sides

IV.

The name of the polygon is

Dodecagon

Step-by-step explanation:

The determinant of the matrix M is 0, and the inverse matrix [tex]M^{-1}[/tex] is undefined.

To find the determinant of the matrix and the inverse using the adjoint method, we start with the given matrix M:

[tex]M = \[\begin{bmatrix}2+2x^3 & 2-2x^2+4x^3 & 0 \\-x^3 & 1+x^2-2x^3 & 0 \\10+6x^2 & 20+12x^2-3-3x^2 & 0 \\\end{bmatrix}\][/tex]

To find the determinant of M, we can use the Laplace expansion along the first row:

[tex]det(M) = (2+2x^3) \[\begin{vmatrix}1+x^2-2x^3 & 0 \\20+12x^2-3-3x^2 & 0 \\\end{vmatrix}\] - (2-2x^2+4x^3) \[\begin{vmatrix}-x^3 & 0 \\10+6x^2 & 0 \\\end{vmatrix}\][/tex]

[tex]det(M) = (2+2x^3)(0) - (2-2x^2+4x^3)(0) = 0[/tex]

Therefore, the determinant of M is 0.

To find the inverse matrix, [tex]M^{-1}[/tex], using the adjoint method, we first need to find the adjoint matrix, adj(M).

The adjoint of M is obtained by taking the transpose of the matrix of cofactors of M.

[tex]adj(M) = \[\begin{bmatrix}C_{11} & C_{21} & C_{31} \\C_{12} & C_{22} & C_{32} \\C_{13} & C_{23} & C_{33} \\\end{bmatrix}\][/tex]

Where [tex]C_{ij}[/tex] represents the cofactor of the element [tex]a_{ij}[/tex] in M.

The inverse of M can then be obtained by dividing adj(M) by the determinant of M:

[tex]M^{-1} = \(\frac{1}{det(M)}\) adj(M)[/tex]

Since det(M) is 0, the inverse of M does not exist.

Therefore, [tex]M^{-1}[/tex] is undefined.

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The probability of getting all four questions correct is 1/16.

To determine the probability of getting all four questions correct, we need to consider the number of favorable outcomes (getting all answers correct) and the total number of possible outcomes.

For each multiple-choice question, there are 4 answer choices, and only 1 is correct. Thus, the probability of getting both multiple-choice questions correct is (1/4) * (1/4) = 1/16.

For true or false questions, there are 2 possible answers (true or false) for each question. The probability of getting both true or false questions correct is (1/2) * (1/2) = 1/4.

To find the overall probability of getting all four questions correct, we multiply the probabilities of each type of question: (1/16) * (1/4) = 1/64.

Therefore, the probability of getting all four questions correct is 1/64.

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With offer 1, you would make $78,216, while with offer 2, you would make $70,354.04. Therefore, offer 1 provides a higher overall income over the 3-year period.

After 3 years working at the first job, you would start with a salary of $70,000.

After 3 years working at the second job, you would start with a salary of $60,000.

Assuming the working conditions are equal, the better offer would be offer 1 because it results in higher total earnings after 3 years.

With offer 1, you would make $78,216, while with offer 2, you would make $70,354.04. Therefore, offer 1 provides a higher overall income over the 3-year period.

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a) The graph originates at the origin( 0, 0) and spirals in exterior as θ increases. b) The graph have two loops centered at the origin. c) The graph is a cardioid. d) The  graph has bigger loop at origin and the innner loop inside it.. e) The graph is helical that starts at the point( 1, 0) and moves in inward direction towards the origin.

a) The function with polar equals is given by dy = θ/( 4π) with 0< θ< 4.

We've to find the crossroad points with θ = 0 and θ = π/ 2,

When θ = 0

dy = 0/( 4π) = 0

therefore, when θ = 0, the function intersects the origin( 0, 0).

Now, θ = π/ 2

dy = ( π/ 2)/( 4π) = 1/( 8)

thus, when θ = π/ 2, the polar function intersects the y- axis at( 0,1/8).

b) The polar function is given by r = sin( 2θ).

We've to find the corners with θ = 0 and θ = π/ 2,

When θ = 0

r = sin( 2 * 0) = sin( 0) = 0

thus, when θ = 0, the polar function intersects the origin( 0, 0).

Now, θ = π/ 2

r = sin( 2 *( π/ 2)) = sin( π) = 0

thus, when θ = π/ 2, the polar function also intersects the origin( 0, 0).

c) The polar function is given by r = 1 cos( θ).

To find the corners with θ = 0 and θ = π/ 2,

At θ = 0

r = 1 cos( 0) = 1 1 = 2

thus, when θ = 0, the polar function intersects thex-axis at( 2, 0).

At θ = π/ 2

r = 1 cos( π/ 2) = 1 0 = 1

thus, when θ = π/ 2, the polar function intersects the circle centered at( 0, 0) with compass 1 at( 1, π/ 2).

d) The polar function is given by r = 1- cos( 2θ).

To find the corners with θ = 0 and θ = π/ 2

At θ = 0

r = 1- cos( 2 * 0) = 1- cos( 0) = 0

thus, when θ = 0, the polar function intersects the origin( 0, 0).

At θ = π/ 2

r = 1- cos( 2 *( π/ 2)) = 1- cos( π) = 2

therefore, when θ = π/ 2, the polar function intersects the loop centered at( 0, 0) with compass 2 at( 2, π/ 2).

e) The polar function is given by r = 1- 2sin( θ).

To find the point of intersection with θ = 0 and θ = π/ 2,

When θ = 0

r = 1- 2sin( 0) = 1- 2( 0) = 1

thus, when θ = 0, the polar function intersects the circle centered at( 0, 0) with compass 1 at( 1, 0).

When θ = π/ 2

r = 1- 2sin( π/ 2) = 1- 2( 1) = -1

thus, when θ = π/ 2, the polar function intersects the negative y-axis at( 0,-1).

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The correct question is given below-

Sketch graphs of the following polar functions. Give the coordinates of intersections with theta = 0 and theta = π/2. a.dy = theta/4pi. with 0 < 0 < 4. b.r =sin(2theta) c.r=1+costheta d) r = 1- cos(2theta) e) r = 1- 2 sin(theta)

Answer:

A - the table represents a nonlinear function because the graph does not show a constant rate of change

Step-by-step explanation:

you can tell this is true, because the y value does not increase by the same amount every time

Answer: a. 3a^2 + 3

Step-by-step explanation: Use -a instead of x. -a * -a is a^2. Therefore the answer is positive which can only be choice a.

Both statements

1. If a > 0, then a > 0.

2. If a < 0, then a - 1 < 0.

have been proven by using the properties of an ordered field.

To prove the statements:

1. If a > 0, then a > 0.

2. If a < 0, then a - 1 < 0.

We will use the properties of an ordered field F.

Assume a > 0.

Since F is an ordered field, it satisfies the property of closure under addition.

Thus, adding 0 to both sides of the inequality a > 0, we get a + 0 > 0 + 0, which simplifies to a > 0.

Therefore, if a > 0, then a > 0.

Assume a < 0.

Since F is an ordered field, it satisfies the property of closure under addition and multiplication.

We know that 1 > 0 in an ordered field.

Subtracting 1 from both sides of the inequality a < 0, we get a - 1 < 0 - 1, which simplifies to a - 1 < -1.

Since -1 < 0, and the ordering of F is preserved under addition, we have a - 1 < 0.

Therefore, if a < 0, then a - 1 < 0.

In both cases, we have shown that the given statements hold true using the properties of an ordered field. Hence, the proof is complete.

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