I have a reed, I know not its length. I broke from it one cubit, and it fit 60 times along the length of my field. I restored to the reed what I had broken off, and it fit 30 times along the width of my field. The area of my field is 525 square nindas. What was the original length of the reed?

The value of k'(-2) = 41

Using the product rule, k′(−2)=f(−2)g′(−2)h(−2)+f(−2)g(−2)h′(−2)+f′(−2)g(−2)h(−2). Substituting the given values, we get k′(−2)=(-5)(8)(3)+(-5)(-7)(-10)+(9)(-7)(3)= -120+350-189= 41.

The product rule states that the derivative of the product of two or more functions is the sum of the product of the first function and the derivative of the second function with the product of the second function and the derivative of the first function.

Using this rule, we can find the derivative of k(x) with respect to x. We are given the values of f(−2), f′(−2), g(−2), g′(−2), h(−2), and h′(−2). Substituting these values in the product rule, we can calculate k′(−2). Therefore, the derivative of the function k(x) at x=-2 is equal to 41.

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The statement "Bash is inherently incapable of floating-point arithmetic, which is why external utilities are utilized." is true.

Bash, as a shell scripting language, primarily deals with integer arithmetic and string manipulation. It does not have built-in support for floating-point arithmetic, making it difficult to perform calculations with decimal numbers. To overcome this limitation, external utilities like 'bc' (Basic Calculator) or 'awk' are often used.

These utilities provide a more versatile way to perform mathematical operations involving floating-point numbers. By utilizing these external tools, Bash scripts can be enhanced to include more complex calculations and data manipulation, expanding their capabilities beyond simple integer operations.

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The statement ''the q test is a mathematically simpler but more limited test for outliers than is the grubbs test'' is correct becauae the Q test is a simpler but less powerful test for detecting outliers compared to the Grubbs test.

The Q test and Grubbs test are statistical tests used to detect outliers in a dataset. The Q test is a simpler method that involves calculating the range of the data and comparing the distance of the suspected outlier from the mean to the range.

If the distance is greater than a certain critical value (Qcrit), the data point is considered an outlier. The Grubbs test, on the other hand, is a more powerful method that involves calculating the Z-score of the suspected outlier and comparing it to a critical value (Gcrit) based on the size of the dataset.

If the Z-score is greater than Gcrit, the data point is considered an outlier. While the Q test is easier to calculate, it is less powerful and may miss some outliers that the Grubbs test would detect.

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The expression for sin(θ + ϕ), we get sin(θ + ϕ) = (-15 - 8sqrt(24))/85 under the conditions.

Using the trigonometric identity sin(a+b) = sin(a)cos(b) + cos(a)sin(b), we have:

sin(θ + ϕ) = sin(θ)cos(ϕ) + cos(θ)sin(ϕ)

We are given that sin(θ) = 15/17 with θ in Quadrant I, so we can use the Pythagorean identity to find cos(θ):

cos(θ) = sqrt(1 - sin^2(θ)) = sqrt(1 - (15/17)^2) = 8/17

We are also given that cos(ϕ) = -5/5 with ϕ in Quadrant II, so we can use the Pythagorean identity again to find sin(ϕ):

sin(ϕ) = -sqrt(1 - cos^2(ϕ)) = -sqrt(1 - (5/5)^2) = -sqrt(24)/5

Substituting these values into the expression for sin(θ + ϕ), we get:

sin(θ + ϕ) = (15/17)(-5/5) + (8/17)(-sqrt(24)/5) = (-15 - 8sqrt(24))/85

Therefore, sin(θ + ϕ) = (-15 - 8sqrt(24))/85 under the given conditions.

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The transformation that will map the trapezoid onto itself is: a reflection across the line x = -1

The coordinates of the given trapezoid in the attached file are:

A = (-3, 3)

B = (1, 3)

C = (3, -3)

D = (-5, -3)

The transformation rule for a reflection across the line x = -1 is expressed as: (x, y) → (-x - 2, y)

Thus, new coordinates are:

A' = (1, 3)

B' = (-3, 3)

C' = (-5, -3)

D' = (3, -3)

Comparing the coordinates of the trapezoid before and after the transformation, we have:

A = (-3, 3) = B' = (-3, 3)

B = (1, 3) = A' = (1, 3)

C = (3, -3) = D' = (3, -3)

D = (-5, -3) = C' = (-5, -3)\

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Therefore, In summary, the CDF of Y is Fy(y) = Fx(y/a) and the PDF of Y is fy(y) = (1/a) * fx(y/a).

To find the CDF of Y, we use the definition:
Fy(y) = P(Y ≤ y) = P(aX ≤ y) = P(X ≤ y/a) = Fx(y/a)
To find the PDF of Y, we take the derivative of the CDF:
fy(y) = d/dy Fy(y) = d/dy Fx(y/a) = fx(y/a)/a
So the CDF of Y is Fy(y) = Fx(y/a) and the PDF of Y is fy(y) = fx(y/a)/a.

To compute the CDF and PDF of Y in terms of Fx and fx, follow these steps:
1. CDF of Y: We need to find Fy(y) which is the probability that Y is less than or equal to y, or P(Y ≤ y). Since Y = aX, we have P(aX ≤ y) or P(X ≤ y/a).
2. Using the definition of CDF, we can now write Fy(y) = Fx(y/a).
3. PDF of Y: To find fy(y), we need to differentiate Fy(y) with respect to y.
4. Using the chain rule, we get fy(y) = dFy(y)/dy = dFx(y/a) * d(y/a)/dy.
5. Notice that d(y/a)/dy = 1/a, therefore fy(y) = (1/a) * fx(y/a).

Therefore, In summary, the CDF of Y is Fy(y) = Fx(y/a) and the PDF of Y is fy(y) = (1/a) * fx(y/a).

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The power series expansion of f(x) is:

f(x) = 2 - (10/11)x + (130/363)x^2 - (12870/1331)x^3 + ... (for |x/11| < 1)

We can use the binomial series to expand the function f(x) = 2(1-x/11)^(2/3) as a power series:

f(x) = 2(1-x/11)^(2/3)

= 2(1 + (-x/11))^(2/3)

= 2 ∑_(n=0)^(∞) (2/3)_n (-x/11)^n (where (a)_n denotes the Pochhammer symbol)

Using the Pochhammer symbol, we can rewrite the coefficients as:

(2/3)_n = (2/3) (5/3) (8/3) ... ((3n+2)/3)

Substituting this into the power series, we get:

f(x) = 2 ∑_(n=0)^(∞) (2/3) (5/3) (8/3) ... ((3n+2)/3) (-x/11)^n

Simplifying this expression, we can write:

f(x) = 2 ∑_(n=0)^(∞) (-1)^n (2/3) (5/3) (8/3) ... ((3n+2)/3) (x/11)^n

Therefore, the power series expansion of f(x) is:

f(x) = 2 - (10/11)x + (130/363)x^2 - (12870/1331)x^3 + ... (for |x/11| < 1)

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Tracy works at North College as a math teacher. She will be paid $900 for each credit hour she teaches. During the course of her first year of teaching, she would teach a total of 50 credit hours.

The college expects her to work a minimum of 170 days (and less and her salary would be reduced) and 8 hours each day. Her gross monthly income is $12,150.

The total number of hours Tracy works is given by;

Total number of hours Tracy works = Number of days she works in a year x Number of hours per day.

Number of days she works in a year = 170Number of hours per day = 8.

Total number of hours Tracy works = 170 × 8

= 1360.

Each credit hour Tracy teaches is paid for $900.

Therefore, for all the credit hours she teaches in a year, she will be paid for $900 × 50 = $45,000.In order to get Tracy's monthly gross income, we need to divide the total amount of money Tracy will be paid in a year by 12 months.$45,000 ÷ 12 = $3750.

Then, we can calculate the gross monthly income of Tracy by adding her salary per month and her total hourly work salary. The total hourly work salary is equal to the product of the total number of hours Tracy works and the amount she is paid per hour which is $900. Therefore, her monthly gross income will be:$3750 + ($900 × 1360) = $12,150. Answer: $12,150.

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To calculate the total number of ways in which the committee of 3 women and 2 men can be formed from a pool of 11 women and 7 men, we can use the combination formula. The combination formula is C(n, r) = n! / (r! * (n-r)!) where n is the total number of items and r is the number of items to choose.

First, we'll calculate the number of ways to select 3 women from a pool of 11 women:
C(11, 3) = 11! / (3! * (11-3)!)
C(11, 3) = 11! / (3! * 8!)
C(11, 3) = 165

Next, we'll calculate the number of ways to select 2 men from a pool of 7 men:
C(7, 2) = 7! / (2! * (7-2)!)
C(7, 2) = 7! / (2! * 5!)
C(7, 2) = 21

Now, to find the total number of ways in which the committee can be formed, we'll multiply the number of ways to choose women and the number of ways to choose men:
Total number of ways = 165 (ways to choose women) * 21 (ways to choose men)
Total number of ways = 3,465

Therefore, the total number of ways in which the committee can be formed is 3,465 (Option A).

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The number is 7800.

Counting is the process of expressing the number of elements or objects that are given.

Counting numbers include natural numbers which can be counted and which are always positive.

Counting is essential in day-to-day life because we need to count the number of hours, the days, money, and so on.

Numbers can be counted and written in words like one, two, three, four, and so on. They can be counted in order and backward too. Sometimes, we use skip counting, reverse counting, counting by 2s, counting by 5s, and many more.

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The Riemann zeta-function is defined for all complex numbers x with real part greater than 1, that is, the domain of ζ is {x ∈ C : Re(x) > 1}.

However, the zeta function can be analytically extended to a meromorphic function on the whole complex plane except for a simple pole at x = 1, where it has a limit of infinity.

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Answer: 6,-6,7,-8,9,-10

Step-by-step explanation:

The ball takes 3.75 seconds to come back to the ground. The time it takes for the ball to reach the ground can be determined by finding the value of t when y = 0 in the equation y = -[tex]16t^2[/tex] + 60t.

By substituting y = 0 into the equation and factoring out t, we get t(-16t + 60) = 0. This equation is satisfied when either t = 0 or -16t + 60 = 0. The first solution, t = 0, represents the initial time when the ball is thrown, so we can disregard it. Solving -16t + 60 = 0, we find t = 3.75. Therefore, it takes the ball 3.75 seconds to come back to the ground.

To find the time it takes for the ball to reach the ground, we set the equation of the height, y, equal to zero since the height of the ball at ground level is zero. We have:

-[tex]16t^2[/tex] + 60t = 0

We can factor out t from this equation:

t(-16t + 60) = 0

Since we're interested in finding the time it takes for the ball to reach the ground, we can disregard the solution t = 0, which corresponds to the initial time when the ball is thrown.

Solving -16t + 60 = 0, we find t = 3.75. Therefore, it takes the ball 3.75 seconds to come back to the ground.

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To make the expression a perfect square, the missing value should be the square of half the coefficient of the linear term.

The given expression is x^2 + 2x + blank. To make this expression a perfect square, we need to find the missing value that completes the square. A perfect square trinomial can be written in the form (x + a)^2, where a is a constant.

To determine the missing value, we look at the coefficient of the linear term, which is 2x. Half of this coefficient is 1, so we square 1 to get 1^2 = 1. Therefore, the missing value that makes the expression a perfect square is 1.

By adding 1 to the given expression, we get:

x^2 + 2x + 1

Now, we can rewrite this expression as the square of a binomial:

(x + 1)^2

This expression is a perfect square since it can be factored into the square of (x + 1). Thus, the value needed to make the given expression a perfect square is 1, which completes the square and transforms the original expression into a perfect square trinomial.

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We can be 95% confident that the person's fat gain would be between 0.13 and 3.44 kg.

So, the correct answer is option 2.

Based on the Minitab output, when an overfed adult burns an additional 500 NEA (non-exercise activity) calories (x* = 500), we can be 95% confident that the person's fat gain (y) would be between 0.13 and 3.44 kg.

This range is the confidence interval for the predicted fat gain and indicates that there is a 95% probability that the true fat gain value lies within this interval.

In this case, option 2 (0.13 and 3.44 kg) is the correct answer.

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We have shown that if f: R -> R is a differentiable Lipschitz continuous function, then f(0) is a bounded function.

As f is a Lipschitz continuous function, there exists a constant L such that:

|f(x) - f(y)| <= L|x-y| for all x, y in R.

Since f is differentiable, it follows from the mean value theorem that for any x in R, there exists a point c between 0 and x such that:

f(x) - f(0) = xf'(c)

Taking the absolute value of both sides of this equation and using the Lipschitz continuity of f, we obtain:

|f(x) - f(0)| = |xf'(c)| <= L|x-0| = L|x|

Therefore, we have shown that for any x in R, |f(x) - f(0)| <= L|x|. This implies that f(0) is a bounded function, since for any fixed value of L, there exists a constant M = L|x| such that |f(0)| <= M for all x in R.

In conclusion, we have shown that if f: R -> R is a differentiable Lipschitz continuous function, then f(0) is a bounded function.

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Marilyn sold approximately 28 raffle tickets this week, representing a 75% increase from the previous week's sales.

To find out how many tickets Marilyn sold this week, we first need to determine the 75% increase from last week's sales. Since Marilyn sold 16 tickets last week, we can calculate the increase by multiplying 16 by 0.75 (75% expressed as a decimal). The result is 12, indicating that Marilyn's ticket sales increased by 12 tickets.

To determine the total number of tickets sold this week, we add the increase of 12 to last week's sales of 16 tickets. This gives us a total of 28 tickets sold this week. Therefore, Marilyn sold approximately 28 raffle tickets this week, representing a 75% increase from the previous week's sales of 16 tickets.

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The limit of (tanx - secx) as x approaches pi/2 from the left is equal to -1.

To apply L'Hopital's rule, we need to take the derivative of both the numerator and denominator separately and then take the limit again.

We have:

lim x->pi/2- (tanx - secx)

= lim x->pi/2- [(sinx/cosx) - (1/cosx)]

= lim x->pi/2- [(sinx - cosx)/cosx]

Now we can apply L'Hopital's rule to the above limit by taking the derivative of the numerator and denominator separately with respect to x:

= lim x->pi/2- [(cosx + sinx)/(-sinx)]

= lim x->pi/2- [cosx/sinx - 1]

Now, we can directly evaluate this limit by substituting pi/2 for x:

= lim x->pi/2- [cosx/sinx - 1]

= (0/1) - 1 = -1

Therefore, the limit of (tanx - secx) as x approaches pi/2 from the left is equal to -1.

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Two news websites have opened their memberships to the public, and their growth rates between Day 10 and Day 20 are compared to determine which website will have more members after 50 days.

To calculate the average rate of change for each website, we need to determine the difference in the number of members between Day 10 and Day 20 and divide it by the number of days in that period. Let's say Website A had 200 members on Day 10 and 500 members on Day 20, while Website B had 300 members on Day 10 and 600 members on Day 20.

For Website A, the rate of change is (500 - 200) / 10 = 30 members per day.

For Website B, the rate of change is (600 - 300) / 10 = 30 members per day.

Both websites have the same average rate of change, indicating that they are growing at the same pace during this period. To predict the number of members after 50 days, we can assume that the average rate of change will remain constant. Thus, after 50 days, Website A would have an estimated 200 + (30 * 50) = 1,700 members, and Website B would have an estimated 300 + (30 * 50) = 1,800 members.

Based on this calculation, Website B is projected to have more members after 50 days. However, it's important to note that this analysis assumes a constant growth rate, which might not necessarily hold true in the long run. Other factors such as website popularity, marketing efforts, and user retention can also influence the final number of members.

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To sketch the region enclosed by the given curves, we need to first plot each of the curves and then identify the boundaries of the region.The first curve, y = 3/x, is a hyperbola with branches in the first and third quadrants. It passes through the point (1,3) and approaches the x- and y-axes as x and y approach infinity.

The second curve, y = 12x, is a straight line that passes through the origin and has a positive slope.The third curve, y = 1/12 x, is also a straight line that passes through the origin but has a smaller slope than the second curve.To find the boundaries of the region, we need to find the points of intersection of the curves. The first two curves intersect at (1,12), while the first and third curves intersect at (12,1). Therefore, the region is bounded by the x-axis, the two straight lines y = 12x and y = 1/12 x, and the curve y = 3/x between x = 1 and x = 12.To sketch the region, we can shade the area enclosed by these boundaries. The region is a trapezoidal shape with the vertices at (0,0), (1,12), (12,1), and (0,0). The curve y = 3/x forms the top boundary of the region, while the straight lines y = 12x and y = 1/12 x form the slanted sides of the trapezoid.In summary, the region enclosed by the given curves is a trapezoid bounded by the x-axis, the two straight lines y = 12x and y = 1/12 x, and the curve y = 3/x between x = 1 and x = 12.

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By contradiction, we will prove that at least 6 of the home games in an NHL hockey season must happen on the same day of the week.

To show by contradiction that at least 6 of the home games must happen on the same day of the week, let's assume the opposite - that each home game happens on a different day of the week.

This means that there are 7 days of the week, and each home game happens on a different day. Therefore, after the first 7 home games, each day of the week has been used once.

For the next home game, there are 6 remaining days of the week to choose from. But since we assumed that each home game happens on a different day of the week, we cannot choose the day of the week that was already used for the first home game.

Thus, we have 6 remaining days to choose from for the second home game. For the third home game, we can't choose the day of the week that was used for the first or second home game, so we have 5 remaining days to choose from.

Continuing in this way, we see that for the 8th home game, we only have 2 remaining days of the week to choose from, and for the 9th home game, there is only 1 remaining day of the week that hasn't been used yet.

This means that by the 9th home game, we will have used up all 7 days of the week. But we still have 32 more home games to play! This is a contradiction, since we assumed that each home game happens on a different day of the week.

Therefore, our assumption must be false, and there must be at least 6 home games that happen on the same day of the week.

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The area inside the ellipse is 8π. The area of the interior of the curve is 3π.

a) Using Green's theorem, we can compute the area inside the ellipse using the line integral around the boundary of the ellipse. Let C be the boundary of the ellipse. Then, by Green's theorem, the area inside the ellipse is given by A = (1/2) ∫(x dy - y dx) over C. Parameterizing the ellipse as x = 2 cos(t), y = 4 sin(t), where t varies from 0 to 2π, we have dx/dt = -2 sin(t) and dy/dt = 4 cos(t). Substituting these into the formula for the line integral and simplifying, we get A = 8π, so the area inside the ellipse is 8π.

b) To find a parametrization of the curve x^(2/3) + y^(2/3) = 4^(2/3), we can use x = 4 cos^3(t) and y = 4 sin^3(t), where t varies from 0 to 2π. Differentiating these expressions with respect to t, we get dx/dt = -12 sin^2(t) cos(t) and dy/dt = 12 sin(t) cos^2(t). Substituting these into the formula for the line integral, we get A = (3/2) ∫(sin^2(t) + cos^2(t)) dt = (3/2) ∫ dt = (3/2) * 2π = 3π, so the area of the interior of the curve is 3π.

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To create a sphere, a cross-section would need to be revolved around the y-axis line (y = 1). Given the circle on a coordinate plane with the center at (0,0) and a radius of 2, the equation of the circle is x² + y² = 4.

This circle is perpendicular to the x-axis and the y-axis. A cross-section of this circle would be a semi-circle with its diameter as the x-axis. If this semi-circle is revolved around the y-axis, it would create a sphere of radius 2. The y-axis line (y = 1) passes through the center of the semi-circle and is perpendicular to the diameter of the semi-circle (which lies along the x-axis).

Therefore, this semi-circle needs to be revolved around the y-axis line (y = 1) to create a sphere.Hence, a cross-section would need to be revolved around the y-axis line (y = 1) to create a sphere.

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The equation of the plane passing through the given points is 3x+3z=3.

To find the equation of the plane passing through three non-collinear points, we first need to find two vectors lying on the plane. Let's take two vectors PQ and PR, which are given by:

PQ = Q - P = (2-3, 2-2, 5-2) = (-1, 0, 3)

PR = R - P = (-5-3, 2-2, 2-2) = (-8, 0, 0)

Next, we take the cross product of these vectors to get the normal vector to the plane:

N = PQ x PR = (0, 24, 0)

Now we can use the point-normal form of the equation of a plane, which is given by:

N · (r - P) = 0

where N is the normal vector to the plane, r is a point on the plane, and P is any known point on the plane. Plugging in the values, we get:

(0, 24, 0) · (x-3, y-2, z-2) = 0

Simplifying this, we get:

24y - 72 = 0

y - 3 = 0

Thus, the equation of the plane in scalar form is:

3x + 3z = 3

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The volume under the elliptic paraboloid [tex]z = 3x^2 + 6y^2[/tex] and over the rectangle R = [-4, 4] x [-1, 1] is 256/3 cubic units.

To calculate the volume under the elliptic paraboloid z = 3x^2 + 6y^2 and over the rectangle R = [-4, 4] x [-1, 1], we need to integrate the height of the paraboloid over the rectangle. That is, we need to evaluate the integral:

[tex]V =\int\limits\int\limitsR (3x^2 + 6y^2) dA[/tex]

where dA = dxdy is the area element.

We can evaluate this integral using iterated integrals as follows:

V = ∫[-1,1] ∫ [tex][-4,4] (3x^2 + 6y^2)[/tex] dxdy

= ∫[-1,1] [ [tex](x^3 + 2y^2x)[/tex] from x=-4 to x=4] dy

= ∫[-1,1] (128 + 16[tex]y^2[/tex]) dy

= [128y + (16/3)[tex]y^3[/tex]] from y=-1 to y=1

= 256/3

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A baker purchased 14 lb of wheat flour and 11 lb of rye flour for a total cost of 13.75 dollars. A second purchase, at the same prices, included 12 lb of wheat flour and 13 lb of rye flour.

The cost of the second purchase was 13.75 dollars. We need to find the cost per pound of wheat flour and of the rye flour. Let x and y be the cost per pound of wheat flour and rye flour, respectively. According to the given conditions, we have the following system of equations:14x + 11y = 13.75 (1)12x + 13y = 13.75 (2)Using elimination method, we can find the value of x and y as follows:

Multiplying equation (1) by 13 and equation (2) by 11, we get:182x + 143y = 178.75 (3)132x + 143y = 151.25 (4)Subtracting equation (4) from equation (3), we get:50x = - 27.5=> x = - 27.5/50= - 0.55 centsTherefore, the cost per pound of wheat flour is 55 cents.

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Converting to Cartesian coordinates is one way to find alternate descriptions for (r,0) (-1,π) in polar coordinates.

Here,

When looking for alternate descriptions for the polar coordinates (r,0) (-1,π), converting them to Cartesian coordinates is one way to do it.

However, a better method is to remember the steps to graph a point in polar coordinates.

If r is greater than zero, start along the positive z-axis, and if r is less than zero, start along the negative z-axis.

Then, rotate counterclockwise if θ is greater than zero, and rotate clockwise if θ is less than zero.

By following these steps, alternate descriptions for (r,0) (-1,π) in polar coordinates can be determined without having to convert them to Cartesian coordinates.

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Let's use x to represent the number of adoptions during the first week. In this problem  there were 10 more adoptions during the second week than during the first week. This means that the number of adoptions during the second week was x + 10.

During the third week, there were twice as many adoptions as during the first week. This means that the number of adoptions during the third week was 2x.

We are given that the total number of adoptions during the three weeks was at least 50. This means that the sum of the number of adoptions during the three weeks is greater than or equal to 50. We can write this as x + (x + 10) + 2x ≥ 50

Simplifying this inequality, we get:

4x + 10 ≥ 50

4x ≥ 40

x ≥ 10

Therefore, the possible values of x, the number of adoptions from the animal rescue group during the first week, are all numbers greater than or equal to 10. We can represent this as x ≥ 10

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The area of the new rectangle when each dimension of the rectangle is dilated by a scale factor of 1/3 is 10 sq. in.

The length of the original rectangle = 6 inch

The width of the original rectangle = is 15 inch

The length of a rectangle when it is dilated by scale 1/3 = 6/3 = 2 in

The width of the rectangle when it is dilated by scale 1/3 = 15/3 = 5 in

The area of the new rectangle formed = L × B

The area of the new rectangle formed = 2 × 5

The area of the new rectangle formed = 10 sq. in.

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The required area is approximately 39.36 square units.

The given polar curves are r = 18cos(θ) and r = 9cos(θ). We are interested in finding the area of the region that is bounded by these curves and the rays θ = 0 and θ = π/4.

First, we need to find the points of intersection between these two curves.

Setting 18cos(θ) = 9cos(θ), we get cos(θ) = 1/2. Solving for θ, we get θ = π/3 and θ = 5π/3.

The curve r = 18cos(θ) is the outer curve, and r = 9cos(θ) is the inner curve. Therefore, the area of the region bounded by the curves and the rays can be expressed as:

A = (1/2)∫(π/4)^0 [18cos(θ)]^2 dθ - (1/2)∫(π/4)^0 [9cos(θ)]^2 dθ

Simplifying this expression, we get:

A = (1/2)∫(π/4)^0 81cos^2(θ) dθ

Using the trigonometric identity cos^2(θ) = (1/2)(1 + cos(2θ)), we can rewrite this as:

A = (1/2)∫(π/4)^0 [81/2(1 + cos(2θ))] dθ

Evaluating this integral, we get:

A = (81/4) θ + (1/2)sin(2θ)^0

Plugging in the limits of integration and simplifying, we get:

A = (81/4) [(π/4) + (1/2)sin(π/2) - 0]

Therefore, the area of the region bounded by the curves and the rays is:

A = (81/4) [(π/4) + 1]

A = 81π/16 + 81/4

A = 81(π + 4)/16

A ≈ 39.36 square units.

Hence, the required area is approximately 39.36 square units.

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