Given the function g(x) = 6x^3 - 81x^2 + 360x, find the first derivative, g'(x).
g'(x) = ______
Notice that g'(x)=0 when = 4, that is, g'(4) = 0.
Now, we want to know whether there is a local minimum or local maximum at x = 4, so we will use the second derivative test.
Find the second derivative, g''(x).
g''(x) = _______
Evaluate g"(4).
g''(4) = _______
Based on the sign of this number, does this mean the graph of g(z) is concave up or concave down at z = 4?
At x=4 the graph of g(x) is ______
Based on the concavity of g(x) at x = 4, does this mean that there is a local minimum or local maximum at x = 4?
At x = 4 there is a local _____

Answers

Answer 1

At x = 4, the function g(x) has a local maximum.

The given function is g(x) = 6x^3 - 81x^2 + 360x.

To find the first derivative, g'(x), we differentiate the function with respect to x:

g'(x) = d/dx [6x^3 - 81x^2 + 360x]

g'(x) = 18x^2 - 162x + 360.

To find critical points, we set g'(x) equal to zero and solve for x:

18x^2 - 162x + 360 = 0.

Now, we want to check if x = 4 is a local minimum, local maximum, or neither. To do this, we use the second derivative test.

To find the second derivative, g''(x), we differentiate g'(x) with respect to x:

g''(x) = d/dx [18x^2 - 162x + 360]

g''(x) = 36x - 162.

Evaluate g''(4):

g''(4) = 36(4) - 162 = -54.

Based on the sign of g''(4), which is negative, the graph of g(x) is concave down at x = 4.

Since the second derivative is negative and the concavity is downward, this implies that at x = 4, there is a local maximum.

Therefore, at x = 4, the function g(x) has a local maximum.

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Related Questions

Q1:
For a given constraint [ Sum(s) ≤ v], discuss briefly these
three cases:
Convertible anti-monotone
Convertible monotone
Strongly convertible
------
Dear Experts,
I need only an unique answer p

Answers

Convertible anti-monotone: Adjusting values allowed, but decreasing violates the constraint. Convertible monotone: Adjusting values allowed, increasing satisfies the constraint. Strongly convertible: Adjusting values allowed, increasing and decreasing satisfy the constraint.

Convertible anti-monotone:

In the case of a convertible anti-monotone constraint, the sum of the values (s) must not exceed a given limit (v). "Convertible" means that it is possible to modify the values of s within certain bounds to satisfy the constraint.

"Anti-monotone" refers to a property where increasing the value of one element decreases the overall sum.

In this scenario, the constraint allows for flexibility in adjusting the individual values of s to stay within the given limit. However, as the values increase, the sum decreases.

Therefore, decreasing the value of any element would result in a larger sum, which violates the constraint.

Convertible monotone:

A convertible monotone constraint is similar to the convertible anti-monotone case, with the primary difference being the monotonicity property. In this case, increasing the value of an element also increases the overall sum.

The constraint still requires the sum of the values (s) to be less than or equal to a given limit (v).

The convertible property allows for adjustments to the values of s to satisfy the constraint, while the monotonicity property ensures that increasing the values of the elements increases the sum.

Decreasing the value of any element would result in a smaller sum, which would comply with the constraint.

Strongly convertible:

A strongly convertible constraint combines the properties of both convertibility and monotonicity.

It allows for adjustments to the values of s to satisfy the constraint, and increasing the value of an element increases the overall sum. The sum of the values (s) must still be less than or equal to a given limit (v).

With the strongly convertible constraint, there is flexibility to modify the values of s while ensuring that increasing the values of the elements increases the sum.

Decreasing the value of any element would lead to a smaller sum, which adheres to the constraint. This provides more options for satisfying the constraint compared to the previous two cases.

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can the number 2.0 can be written as 2/10

Answers

Yes it can be written like that.

Answer: yes it can

Step-by-step explanation: 2.0 is the same as 2/10

Felipe made 4 identical necklaces, each having beads and a pendant. The total cost of the beads and pendants for all 4 necklaces was $24. 40. If the beads cost a total of $11. 20, how much did each pendant cost?

Answers

Therefore, each pendant cost $13.20.

To find the cost of each pendant, we can subtract the cost of the beads from the total cost of the necklaces.

Total cost of the necklaces = $24.40

Cost of the beads = $11.20

Cost of each pendant = Total cost of the necklaces - Cost of the beads

= $24.40 - $11.20

= $13.20

Therefore, each pendant cost $13.20.

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The radius of the sphere is found to be 10 cm with a possible error of 0.02 cm. What is the relative error in computing the volume?

Answers

The relative error in computing the volume of the sphere, based on the given error in the radius, is 0.6%.

To calculate the relative error in computing the volume of a sphere, we need to consider the relative error in the radius and then propagate it through the volume formula.

Given that the radius of the sphere is 10 cm with a possible error of 0.02 cm, we can determine the relative error in the radius as follows:

Relative error in the radius = (Error in the radius) / (Actual radius)

= (0.02 cm) / (10 cm)

= 0.002

The relative error is 0.002 or 0.2%.

Now, let's calculate the relative error in the volume of the sphere using the formula for the volume of a sphere: V = (4/3)πr³.

Relative error in the volume = (Relative error in the radius) * (Exponent of the radius in the volume formula)

= 0.002 * 3

= 0.006

The relative error in the volume is 0.006 or 0.6%.

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Question Find the polar equation of a hyperbola weh eccentricity 3 , and directirc \( x=1 \). Provide your answer belowr

Answers

To find the polar equation of a hyperbola with eccentricity 3 and the directrix (x = 1), we can start by defining the standard polar equation for a hyperbola.

Like this :

[r = frac{ed}{1 - e\cos(theta)}]

where (r) is the distance from the origin, (e) is the eccentricity, (d) is the distance from the origin to the directrix, and \(\theta\) is the angle from the positive x-axis.

In this case, the eccentricity is given as 3 and the directrix is (x = 1). The distance from the origin to the directrix is the absolute value of 1, which is simply 1.

Substituting these values into the polar equation, we get:

[r = frac{3}{1 - 3\cos(theta)}]

Therefore, the polar equation of the hyperbola with eccentricity 3 and the directrix (x = 1) is \(r = frac{3}{1 - 3\cos(theta)}).

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Find the area (in square inches) of a regular octagon with an apothem of length a = 8.2 in. and each side of length s=6.8 in. Use the formula A=1​/2 aP.
_____in^2

Answers

The area of the given regular octagon is 222.848 square inches.

apothem of length a = 8.2 in.

sides of length s = 6.8 in.

The area of a regular octagon can be calculated using the formula:

A=1/2 aP

Where, a is the apothem and P is the perimeter of the octagon.

A regular octagon is an eight-sided polygon, where all sides are of equal length and the angles are of equal measure. It is divided into eight congruent triangles, and the area of each triangle can be found out to find the total area of the octagon.

Area of each triangle:

Area of the triangle = 1/2 × apothem × side

Apothem (a) = 8.2 in

Side (s) = 6.8 in

Area of the triangle = 1/2 × 8.2 × 6.8

Area of the triangle = 27.856 in²

Area of the octagon:

Total area of octagon = 8 × (Area of the triangle)

[As there are 8 congruent triangles in the octagon]

Total area of octagon = 8 × 27.856

Total area of octagon = 222.848 in²

Therefore, the area of the given regular octagon is 222.848 square inches.

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A sled is pulled along a path through snow by a rope. A 87.9-lb force is acting at an angle of 87.9∘ above the horizontal moves the sled 48.3ft. Find the work in foot pounds done by the force.

Answers

the work done by the force is 3974.7 foot pounds.

Force (F) = 87.9

lbAngle (θ) = 87.9°

Horizontal displacement (d) = 48.3 ftTo find: Work (W)

Formula to calculate work done by a force is:

W = Fdcosθ

Where,θ = 87.9°d = 48.3 ftF = 87.9 lb

We know that the angle is given in degrees,

so we need to convert it into radians because the unit of angle in the formula is radians.θ (radians) = (87.9° * π) / 180= 1.534 radian

Work done W = Fdcosθ= 87.9 * 48.3 * cos 1.534W = 3974.7 ft lb

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solve this question accurately pls. thank you
2) Integrate the following functions with respect to x, simplifying the answers, where possible: (i) 6x² +3Vx+ x 1 2 5 x .X (ii) sin - cos 2 x NI

Answers

1) 6x² +3Vx+ x 1 2 5 x= 2x³ + 2√x² + (2/3)x^(3/2) + C  (2)  The integral of sin(x) - cos(2x) = -cos(x) - (1/2)sin(2x) + C.

where C is the constant of integration

(i) To integrate the function 6x² + 3√x + x^(1/2) with respect to x, we can apply the power rule of integration. The power rule states that the integral of x^n with respect to x is (x^(n+1))/(n+1), where n is any real number except -1.

Let's integrate each term separately:

∫(6x² + 3√x + x^(1/2)) dx

= 6∫x² dx + 3∫√x dx + ∫x^(1/2) dx

= 6(x^(2+1))/(2+1) + 3(2/3)(x^(1/2+1))/(1/2+1) + (2/3)(x^(1/2+1))/(1/2+1) + C

= 2x³ + 2√x² + (2/3)x^(3/2) + C

where C is the constant of integration

(ii) sin(x) - cos(2x)The integral of sin(x) - cos(2x) is;∫(sin(x) - cos(2x)) dxWe know that the integral of sin(x) is -cos(x)Therefore, the integral of sin(x) - cos(2x) = -cos(x) - (1/2)sin(2x) + C.

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(a) Realize the function \( F=B^{\prime} C^{\prime}+A^{\prime} C^{\prime}+A^{\prime} B^{\prime} \) by (i) Basic gates, [6 Marks] (ii) NAND gates only, [6Marks] (iii) NOR gates only. [6 Marks] (b) Seve

Answers

The circuit consumes no static power when the inputs are steady at either 0 or 1.

a) Function F = B' C' + A' C' + A' B' can be realized using basic gates as follows:
Step 1: Obtain the complement of the inputs A, B, and C using NOT gates as shown below:
A' = NOT(A)
B' = NOT(B)
C' = NOT(C)
Step 2: Compute the product term B' C' using AND gate as shown below:
B' C' = B' . C'
Step 3: Compute the second product term A' C' using AND gate as shown below:
A' C' = A' . C'
Step 4: Compute the third product term A' B' using AND gate as shown below:
A' B' = A' . B'
Step 5: Compute the sum of the three product terms B' C' + A' C' + A' B' using OR gate as shown below:
F = B' C' + A' C' + A' B'
(i) Realization using basic gates:
(ii) Realization using only NAND gates:
F = (B'C')'(A'C')'(A'B')'
= ((B'C')' . (A'C') . (A'B')')'
= ((B+C) . (A+C') . (A+B))'
(iii) Realization using only NOR gates:
F = (B'C')'(A'C')'(A'B')'
= ((B+C)'+(A+C)'+(A+B)')'
b) In order to save power, CMOS gates are often used. A CMOS circuit for F = B' C' + A' C' + A' B' is shown below:
In this circuit, the P-type transistors act as switches that are controlled by logic 1 and the N-type transistors act as switches that are controlled by logic 0.

When any one of the inputs A, B, or C is 0, the corresponding N-type transistor switch is closed and the corresponding P-type transistor switch is open. When all the inputs A, B, and C are 1, all the N-type transistor switches are open and all the P-type transistor switches are closed. Thus, the circuit consumes no static power when the inputs are steady at either 0 or 1.

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Find the following for the given equation.
r(t)=8cos(t)i+8sin(t)j
(a) r′(t)= X.
(b) rn′′(t)= (
c) Find r′(t)⋅r′′(t).

Answers

(a) The derivative of the vector function r(t) = 8cos(t)i + 8sin(t)j is r'(t) = -8sin(t)i + 8cos(t)j. (b) The second derivative of the vector function r(t) = 8cos(t)i + 8sin(t)j is r''(t) = -8cos(t)i - 8sin(t)j. (c) The dot product of r'(t) and r''(t) is r'(t)⋅r''(t) = 64sin^2(t) + 64cos^2(t) = 64.

(a) To find the derivative of the vector function r(t) = 8cos(t)i + 8sin(t)j, we differentiate each component with respect to t:

r'(t) = d/dt (8cos(t)i) + d/dt (8sin(t)j)

= -8sin(t)i + 8cos(t)j

Therefore, r'(t) = -8sin(t)i + 8cos(t)j.

(b) To find the second derivative of r(t), we differentiate each component of r'(t) with respect to t:

r''(t) = d/dt (-8sin(t)i) + d/dt (8cos(t)j)

= -8cos(t)i - 8sin(t)j

So, r''(t) = -8cos(t)i - 8sin(t)j.

(c) To find r'(t)⋅r''(t), we take the dot product of r'(t) and r''(t):

r'(t)⋅r''(t) = (-8sin(t)i + 8cos(t)j)⋅(-8cos(t)i - 8sin(t)j)

= 64sin^2(t) + 64cos^2(t)

= 64

Hence, r'(t)⋅r''(t) = 64. The dot product of the first derivative r'(t) and the second derivative r''(t) is a constant value of 64.

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Find the length of the following curve.
x = (2t+5)^3/2/3, y = 2t + t^2/2 , 0 ≤ t ≤ 5

The length of the curve is ______(Simplify your answer.)

Answers

The length of the given curve can be determined using the arc length formula for parametric curves. The parametric equations of the curve are x = (2t+5)^(3/2)/3 and y = 2t + t^2/2, where t ranges from 0 to 5.

To find the length, we need to evaluate the integral of the square root of the sum of the squares of the derivatives of x and y with respect to t, integrated over the given range. The first step is to compute the derivatives of x and y with respect to t. Taking the derivatives, we get dx/dt = (2/3)(2t+5)^(1/2) and dy/dt = 2 + t. The next step is to find the integrand by calculating the square root of the sum of the squares of these derivatives. The integrand is √((dx/dt)^2 + (dy/dt)^2) = √(((2/3)(2t+5)^(1/2))^2 + (2+t)^2).

Finally, we integrate this expression over the range of t from 0 to 5. The integral can be evaluated using standard calculus techniques. Once the integration is complete, we will have the length of the curve. However, the procedure involves expanding and simplifying the integrand, applying appropriate algebraic manipulations, and integrating term by term. Once the integral is evaluated, the final result will give the length of the curve.

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Question 2: Recall the Fourier and inverse Fourier transforms:
+[infinity]
F(ω) = F[f(t)] = ∫ f(t)e^¯fwt dt
-[infinity]
+[infinity]
f(t)=F^-¹ [F(ω)]= 1/2π ∫ F(ωw)e^fwt dω
-[infinity]

and also recall Euler's expression: e^fθ = cos θ0 +j sin θ. Explain what type of symmetry we obtain in the Fourier transform F(ω) when f(t) is a real function. Justify your answer mathematically.

Answers

Without additional information, it is not possible to determine the specific value of (c) in this case.

To find the function (f(x)) and the number (c) such that

[tex]$\(\lim_{x\to 25}\frac{8x-40}{x-25} = f'(c)\),[/tex]

we can start by simplifying the expression inside the limit.

[tex]$\lim_{x\to 25}\frac{8x-40}{x-25} &= \lim_{x\to 25}\frac{8(x-5)}{x-25}\\[/tex]

[tex]$= \lim_{x\to 25}\frac{8(x-5)}{x-25}\cdot\frac{(x-25)}{(x-25)}\\[/tex]

[tex]$= \lim_{x\to 25}\frac{8(x-5)(x-25)}{(x-25)^2}\\[/tex]

[tex]$= \lim_{x\to 25}\frac{8(x-5)(x-25)}{(x-25)(x-25)}\\[/tex]

[tex]$= \lim_{x\to 25}\frac{8(x-5)}{(x-25)}[/tex]

Now, we can see that the limit expression simplifies to

[tex]$\(\lim_{x\to 25}8 = 8\)[/tex]

Therefore, (f'(c) = 8).

Since (f'(c) = 8), the function (f(x)) must be the antiderivative of 8, which is (f(x) = 8x + k), where (k) is a constant.

To find the value of (c), we need more information about the function \(f(x)) or the original limit expression. Without additional information, it is not possible to determine the specific value of (c) in this case.

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Suppose h(x)= x2(f(x))2 − xf(x).
Find h ' (4) given that f(4) = 10, f ' (4) = −4.
h ' (4) =

Answers

To find h'(4), we need to calculate the derivative of the function h(x) = [tex]x^2(f(x))^2[/tex] - x*f(x) and evaluate it at x = 4. Given that f(4) = 10 and f'(4) = -4, h'(4) is equal to 494.

The given function h(x) can be broken down into two parts: [tex]x^2(f(x))^2[/tex] and -x*f(x). To find the derivative of h(x), we need to apply the chain rule and product rule. Let's start by calculating the derivative of the first part.

Using the chain rule, we differentiate [tex]x^2(f(x))^2[/tex] with respect to x. The derivative of x^2 is 2x, and the derivative of (f(x))^2 with respect to x is 2f(x)f'(x) by the chain rule. Therefore, the derivative of [tex]x^2(f(x))^2[/tex] is [tex]2x(f(x))^2 + 2xf(x)f'(x)[/tex].

Next, we differentiate -x*f(x) using the product rule. The derivative of -x is -1, and the derivative of f(x) with respect to x is f'(x). Hence, the derivative of -x*f(x) is -f(x) - xf'(x).

Now, we can combine the derivatives of the two parts to find the derivative of h(x). Adding the derivatives obtained earlier, we get [tex]2x(f(x))^2 + 2xf(x)f'(x) - f(x) - xf'(x)[/tex].

To evaluate h'(4), we substitute x = 4 into the derivative expression. Plugging in the given values f(4) = 10 and f'(4) = -4, we have [tex]2(4)(10)^2[/tex] + 2(4)(10)(-4) - 10 - 4(4). Simplifying the expression, we find h'(4) = 840 - 320 - 10 - 16 = 494.

Therefore, h'(4) is equal to 494.

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Find all critical numbers of the function. f(x)=x2/3(x−1)2 0.25 0.5 0.75 Find the value of c that satisfies the Mean Value Theorem for the function f(x)=x4−x on the interval [0,2]. c=3√2​ The Mean Value Theorem doesn't apply because f(x)=x4−x is not differentiable on the interval's interior. c=7c=2​

Answers

Therefore, the value of c that satisfies the Mean Value Theorem for the function [tex]f(x) = x^4 - x[/tex] on the interval [0, 2] is c = ∛2.

To find the critical numbers of the function [tex]f(x) = x^(2/3)(x-1)^2[/tex], we need to determine the values of x where the derivative of f(x) is equal to zero or undefined.

First, let's find the derivative of f(x):

[tex]f'(x) = (2/3)x^(-1/3)(x-1)^2 + 2x^(2/3)(x-1)[/tex]

To find the critical numbers, we set f'(x) equal to zero and solve for x:

[tex](2/3)x^(-1/3)(x-1)^2 + 2x^(2/3)(x-1) = 0[/tex]

Simplifying the equation and factoring out common terms:

[tex](2/3)x^(-1/3)(x-1)(x-1) + 2x^(2/3)(x-1) = 0\\(2/3)x^(-1/3)(x-1)[(x-1) + 3x^(2/3)] = 0[/tex]

Now we have two factors: (x-1) = 0 and [tex][(x-1) + 3x^(2/3)] = 0[/tex]

From the first factor, we find x = 1.

For the second factor, we solve:

[tex](x-1) + 3x^(2/3) = 0\\x - 1 + 3x^(2/3) = 0[/tex]

Unfortunately, there is no algebraic solution for this equation. We can approximate the value of x using numerical methods or calculators. One possible solution is x ≈ 0.25.

So the critical numbers of the function [tex]f(x) = x^(2/3)(x-1)^2[/tex] are x = 1 and x ≈ 0.25.

As for the Mean Value Theorem, to find the value of c that satisfies the theorem for the function [tex]f(x) = x^4 - x[/tex] on the interval [0, 2], we need to verify two conditions:

f(x) is continuous on the closed interval [0, 2]: The function [tex]f(x) = x^4 - x[/tex] is a polynomial function, and polynomials are continuous for all real numbers.

f(x) is differentiable on the open interval (0, 2): The function [tex]f(x) = x^4 - x[/tex] is a polynomial, and polynomials are differentiable for all real numbers.

Since both conditions are satisfied, the Mean Value Theorem applies to the function f(x) on the interval [0, 2]. According to the Mean Value Theorem, there exists at least one value c in the open interval (0, 2) such that:

f'(c) = (f(2) - f(0))/(2 - 0)

To find c, we calculate the derivative of f(x):

[tex]f'(x) = 4x^3 - 1[/tex]

Substituting [tex]f(2) = 2^4 - 2 = 14[/tex] and f(0) = 0 into the equation, we have:

f'(c) = (14 - 0)/(2 - 0)

[tex]4c^3 - 1 = 14/2\\4c^3 - 1 = 7\\4c^3 = 8\\c^3 = 2[/tex]

c = ∛2

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If x denotes one of the sides of the rectangle, then the adjacent side must be _____
The perimeter of this rectangle is given by
P(x)= __________
We wish to minimize P(x). Note, not all values of x make sense in this problem: lengths of sides of rectangles must be positive we need no second condition on x.

At this point, you should graph the function if you can.

We next find P′(x) and set it equal to zero. Write

P’(x) = _________

Solving for x gives as x=±_______ We are interested only in x>0, so only the value x= ______ is of interest. Since interval (0,[infinity]), there are no more critical values, and there are no endpoints. Is there a local maximum, minimum, or neither
P′′(x)=_______

Answers

If x denotes one of the sides of the rectangle, then the adjacent side must also be x to form a rectangle. The perimeter of this rectangle is given by P(x) = 2x + 2x = 4x.

To minimize the perimeter P(x), we need to find the critical points by setting the derivative P'(x) equal to zero.

Taking the derivative of P(x) = 4x with respect to x, we have:

P'(x) = 4

Setting P'(x) equal to zero, we find:

4 = 0

Since 4 is a nonzero constant, there are no values of x that satisfy P'(x) = 0. Therefore, there are no critical points.

Since the interval is (0, ∞) and there are no critical points or endpoints, we need to analyze the behavior of P(x) as x approaches the boundaries of the interval.

As x approaches 0, the perimeter P(x) approaches 4(0) = 0.

As x approaches ∞, the perimeter P(x) approaches 4(∞) = ∞.

Since the perimeter P(x) approaches 0 as x approaches 0 and approaches ∞ as x approaches ∞, there is no local maximum or minimum. The function P(x) does not have any extrema.

Regarding the second derivative P''(x), since P(x) is a linear function with a constant derivative of 4, the second derivative P''(x) is zero.

Therefore, the brief summary is as follows:

The adjacent side of the rectangle must also be x.

The perimeter of the rectangle is given by P(x) = 4x.

The derivative of P(x) is P'(x) = 4, which does not have any critical points.

There is no local maximum or minimum.

The second derivative of P(x), P''(x), is zero.

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ANSWER PLEASE QUICKLY (PLEASE).

Answers

The distance between the given pair of points ( -1,1 ) and (4,-3) is √41.

What is the distance between the given points?

The distance formula used in finding the distance between two points is expressed as;

[tex]d = \sqrt{(x_2 - x_1)^2+(y_2 - y_1)^2}[/tex]

Given the data in the question;

Point 1( -1,1 )

x₁ = -1

y₁ = 1

Point 2( 4,-3 )

x₂ = 4

y₂ = -3

Plug the given values into the distance formula and simplify.

[tex]d = \sqrt{(x_2 - x_1)^2+(y_2 - y_1)^2}\\\\d = \sqrt{(4 - (-1))^2+(-3 - 1)^2}\\\\d = \sqrt{(4 + 1)^2+(-3 - 1)^2}\\\\d = \sqrt{(5)^2+(-4)^2}\\\\d = \sqrt{25+16}\\\\d = \sqrt{41}\\\\d = \sqrt{41}[/tex]

Therefore, the distance is radical form is √41.

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The marginal average cost of producing x digital sports watches is given by the function Cˉ(x), where Cˉ(x) is the average cost in dollars. Cˉ′(x)=−1,700/x2​,Cˉ(100)=28. Find the average cost function and the cost function. What are the fixed costs? The average cost function is C(x)= The cost function is C(x)= The fixed costs are _____ $

Answers

The average cost function C(x) can be found by integrating the marginal average cost function C'(x). Using the given derivative C'(x) = -1,700/x^2, we integrate with respect to x to find C(x):

C(x) = ∫(-1,700/x^2) dx = 1,700/x + C

To determine the constant of integration C, we use the given information that C(100) = 28:

28 = 1,700/100 + C

28 = 17 + C

C = 28 - 17

C = 11

Thus, the average cost function is C(x) = 1,700/x + 11.

To find the cost function C(x), we integrate the average cost function C(x) with respect to x:

C(x) = ∫(1,700/x + 11) dx = 1,700 ln|x| + 11x + K

The constant of integration K represents the fixed costs. To determine the value of K, we can use the given information that C(100) = 28:

28 = 1,700 ln|100| + 11(100) + K

28 = 1,700 ln(100) + 1,100 + K

28 = 1,700(4.605) + 1,100 + K

28 = 7,819.5 + 1,100 + K

K = 28 - 7,819.5 - 1,100

K ≈ -8,892.5

Therefore, the cost function is C(x) = 1,700 ln|x| + 11x - 8,892.5, and the fixed costs are approximately $8,892.50.

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Use implicit differentiation to find an equation of the tangent line to the curve at the given point.
1) x^2−xy−y^2 = 1 at (2,1)
2) 2(x^2+y^2)^2 = 25(x^2−y^2) at (3,1)
3) x^2+y^2 = (2x^2+2y^2−x)2 at (0,1/2)

Answers

1) the equation of the tangent line to the curve \(x^2 - xy - y^2 = 1\) at the point (2, 1) is \(y = \frac{1}{2}x - 1\).

2) the equation of the tangent line is \[y = -\frac{57}{25}x + \frac{171}{25}\].

1) To find the equation of the tangent line to the curve \(x^2 - xy - y^2 = 1\) at the point (2, 1), we'll use implicit differentiation.

Differentiating the equation implicitly with respect to x, we get:

\[2x - y - x\frac{dy}{dx} - 2y\frac{dy}{dx} = 0\]

Next, we substitute the coordinates of the point (2, 1) into the equation. We have x = 2 and y = 1:

\[2(2) - 1 - 2(2)\frac{dy}{dx} - 2(1)\frac{dy}{dx} = 0\]

\[4 - 1 - 4\frac{dy}{dx} - 2\frac{dy}{dx} = 0\]

\[3 - 6\frac{dy}{dx} = 0\]

\[-6\frac{dy}{dx} = -3\]

\[\frac{dy}{dx} = \frac{1}{2}\]

So, the slope of the tangent line to the curve at the point (2, 1) is \(\frac{1}{2}\).

Using the point-slope form of a line, we can write the equation of the tangent line:

\[y - 1 = \frac{1}{2}(x - 2)\]

\[y = \frac{1}{2}x - 1\]

Therefore, the equation of the tangent line to the curve \(x^2 - xy - y^2 = 1\) at the point (2, 1) is \(y = \frac{1}{2}x - 1\).

2) To find the equation of the tangent line to the curve \(2(x^2+y^2)^2 = 25(x^2-y^2)\) at the point (3, 1), we'll again use implicit differentiation.

Differentiating the equation implicitly with respect to x, we get:

\[8x(x^2+y^2) + 8y^2x - 25(2x - 2y\frac{dy}{dx}) = 0\]

Next, we substitute the coordinates of the point (3, 1) into the equation. We have x = 3 and y = 1:

\[8(3)(3^2 + 1^2) + 8(1^2)(3) - 25(2(3) - 2(1)\frac{dy}{dx}) = 0\]

\[8(3)(10) + 8(3) - 25(6 - 2\frac{dy}{dx}) = 0\]

\[240 + 24 - 150 + 50\frac{dy}{dx} = 0\]

\[264 - 150 + 50\frac{dy}{dx} = 0\]

\[50\frac{dy}{dx} = -114\]

\[\frac{dy}{dx} = -\frac{114}{50} = -\frac{57}{25}\]

So, the slope of the tangent line to the curve at the point (3, 1) is \(-\frac{57}{25}\).

Using the point-slope form of a line, we can write the equation of the tangent line:

\[y - 1 = -\frac{57}{25}(x - 3)\]

\[y = -\frac{57}{25}x + \frac{171}{25}\]

Therefore, the equation of the tangent line is \[y = -\frac{57}{25}x + \frac{171}{25}\].

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Suppose u and v are functions of x that are differentiable at x = 0 and that u(0) = - 9, u'(0) = - 3, v(0) = - 4, and v' (0) = 3. Find the values of the following derivatives at x = 0.
a. d/dx(uv)
b. d/dx(u/v)
c. d/dx(v/u)
d. d/dx(-7v – 2u)

Answers

The values of the given derivatives are:1. d/dx(uv) = 27.2. d/dx(u/v) = 21/8.3. d/dx(v/u) = 7/81.4. d/dx(-7v - 2u) = -15.

Given the functions u and v of x that are differentiable at

x = 0 and u(0) = -9, u′(0)

= -3, v(0) = -4, and v′(0) = 3.

The formula for the first derivative of the product of two functions is given as (uv)'

= u'v + uv'.

The formula for the first derivative of the quotient of two functions is given as (u/v)' = (u'v - uv')/v².

1. The product of two functions is given as uv, and the derivative of the product is given as follows; (uv)' = u'v + uv' Putting the values in the above formula, we have;u(0) = -9, u′(0) = -3, v(0) = -4, and v′(0) = 3(uv)'(0) = u'(0)v(0) + u(0)v'(0)uv' (0)= -3(-4) + (-9)(3)= 27Thus, d/dx(uv) = uv' = 27.

2. The quotient of two functions is given as u/v, and the derivative of the quotient is given as follows;(u/v)' = (u'v - uv')/v²

Putting the values in the above formula, we have;

u(0) = -9, u′(0)

= -3, v(0)

= -4, and v′(0)

= 3(u/v)'(0)

= (u'(0)v(0) - u(0)v'(0))/(v(0))²(u/v)'(0) = (-3(-4) - (-9)(3))/(-4)²= 21/8

Thus, d/dx(u/v) = (u/v)' = 21/8.3.

The derivative of v/u is given as follows;(v/u)' = (v'u - uv')/u²Putting the values in the above formula, we have;u(0) = -9, u′(0)

= -3, v(0)

= -4, and v′(0)

= 3(v/u)'(0)

= (v'(0)u(0) - v(0)u'(0))/(u(0))²(v/u)'(0)

= (3(-9) - (-4)(-3))/(-9)²

= 7/81

Thus, d/dx(v/u)

= (v/u)'

= 7/81.4.

The derivative of -7v - 2u is given as follows;(-7v - 2u)'

= -7v' - 2u'Putting the values in the above formula, we have;

u(0) = -9, u′(0)

= -3, v(0)

= -4, and v′(0)

= 3(-7v - 2u)'(0)

= -7v'(0) - 2u'(0)

= -7(3) - 2(-3)

= -15

Thus, d/dx(-7v - 2u)

= (-7v - 2u)' = -15.

Therefore, the values of the given derivatives are:1. d/dx(uv) = 27.2. d/dx(u/v) = 21/8.3. d/dx(v/u) = 7/81.4. d/dx(-7v - 2u) = -15.

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You must justify your answer. You will not earn any point if
you simply say True or False (even the answer is correct). In case
your answer is false, a counterexample must be given.
Note: True means a

Answers

a. T1(N) + T2(N) = O(f(N)): True b. T1(N) - T2(N) = o(f(N)): False c. T2(N) * T1(N) = O(1): True d. T1(N) = O(T2(N)): False

a. T1(N) + T2(N) = O(f(N)): True

To justify this, we can use the definition of big O notation. If T1(N) = O(f(N)) and T2(N) = O(f(N)), it means that there exist positive constants c1 and c2, and a positive integer N0, such that for all N ≥ N0:

|T1(N)| ≤ c1 * |f(N)|

|T2(N)| ≤ c2 * |f(N)|

Now, let's consider the sum T1(N) + T2(N):

|T1(N) + T2(N)| ≤ |T1(N)| + |T2(N)| ≤ c1 * |f(N)| + c2 * |f(N)|

We can rewrite the above inequality as:

|T1(N) + T2(N)| ≤ (c1 + c2) * |f(N)|

Therefore, T1(N) + T2(N) = O(f(N)).

b. T1(N) - T2(N) = o(f(N)): False

To prove this statement false, we need to provide a counterexample. Consider the case where T1(N) = 2N and T2(N) = N. In this case, T1(N) = O(f(N)) and T2(N) = O(f(N)), where f(N) = N.

However, if we subtract T2(N) from T1(N):

T1(N) - T2(N) = 2N - N = N

Now, let's examine the relationship between N and f(N):

N = f(N)

Since the difference between T1(N) - T2(N) is equal to f(N), we can say that T1(N) - T2(N) is not strictly smaller than f(N) (o(f(N))). Hence, the statement T1(N) - T2(N) = o(f(N)) is not true in this case.

c. T2(N) * T1(N) = O(1): True

Multiplying two functions that are both bounded by O(f(N)) will result in a function that is bounded by O(f(N) * f(N)), which simplifies to O(f(N)^2).

Since f(N) can be any function, including a constant function, it is valid to say that T2(N) * T1(N) = O(1).

d. T1(N) = O(T2(N)): False

To disprove this statement, we need to provide a counterexample. Consider the case where T1(N) = 2N and T2(N) = N. In this case, T1(N) = O(T2(N)), as T1(N) = O(N), but T1(N) is not equal to O(T2(N)), since T2(N) = O(N) but not O(2N).

Hence, the statement T1(N) = O(T2(N)) is false in this case.

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The complete question is:

You must justify your answer. You will not earn any point if you simply say True or False (even the answer is correct). In case your answer is false, a counterexample must be given. Note: True means always true, so a valid justification is needed (such as using a rule or using a definition).

False means not always true, so you should be able to show at least once case it is not hold. So in case you think the answer should be false, you must provide a counterexample; i.e., you should show particular functions T1 and T2, such as T1 = 3N2 and T2 = 4N + 2.

Suppose T 1 (N)=O(f(N)) and T 2 (N)=O(f(N)). Which of the following are true? a. T 1 (N)+T 2(N)=O(f(N)) b. T 1(N)−T 2(N)=o(f(N)) c.T 2(N)T 1(N)​=0(1) d. T 1(N)=O(T 2 (N))

Consider the function g(0). g(t) = cos (2πt) tri (t-7)

The given function is an even function. True or False

Answers

Since g(t) = cos (2πt) tri (t-7) is an odd function and not symmetric about the y-axis, it is incorrect to state that it is an even function. Thus, the statement is False.

The statement that the given function, g(t) = cos (2πt) tri (t-7), is an even function is False.

An even function is defined as a function that satisfies the property f(t) = f(-t) for all values of t. In other words, the function is symmetric about the y-axis. To determine if a function is even, we substitute -t in place of t and check if the function remains unchanged.

For the given function g(t) = cos (2πt) tri (t-7), substituting -t for t yields g(-t) = cos (2π(-t)) tri (-t-7). Simplifying further, we have g(-t) = cos (-2πt) tri (-t-7).

The cosine function, cos(x), is an even function since cos(-x) = cos(x). However, the triangular function, tri(x), is an odd function since tri(-x) = -tri(x). Therefore, the product of an even function (cosine) and an odd function (triangular) is an odd function.

Since g(t) = cos (2πt) tri (t-7) is an odd function and not symmetric about the y-axis, it is incorrect to state that it is an even function. Thus, the statement is False.

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please steps
A balanced, tree-phasa circult is characterzed as follows: - Part A - Y-A connected; Find tha gingle phase equhalent for the a-phese. Find the value of \( V_{\text {aa. }} \). - Souros votage in tha b

Answers

The value of voltage [tex]V_{aa[/tex] is 86.60∠0° V in the A phase of the balanced three-phase circuit.

Step 1: Single Phase Equivalent for Phase A

In a balanced three-phase circuit with a Y-A connection, the single-phase equivalent for phase A can be represented as a Y-connected circuit with the load impedance connected between phase A and the neutral. The load impedance is given as 114+j158 Ω/φ.

Step 2: Finding the Value of [tex]V_{aa[/tex]

To find the value of Vaa, we need the magnitude and phase angle of the source voltage. In the given information, the source voltage in the b-phase is provided as 150∠135° V. We can use this information to calculate  [tex]V_{aa[/tex].

The line-to-line voltage in a three-phase system is related to the phase voltage by the following formula:

[tex]V_{LL}[/tex] = [tex]\sqrt{3[/tex]* [tex]V_{ph}[/tex]

In this case, [tex]V_{LL}[/tex] represents the line-to-line voltage and  [tex]V_{ph}[/tex] represents the phase voltage. Since the given information provides the magnitude and phase angle of the source voltage in the b-phase, we can assume that the line-to-line voltage ([tex]V_{LL}[/tex]) is equal to 150 V.

Using the formula above, we can calculate the phase voltage ( [tex]V_{ph}[/tex]) as:

[tex]V_{ph}[/tex] = [tex]V_{LL}[/tex] / √3

= 150 / √3

= 86.60 V (rounded to two decimal places)

Therefore, the value of  [tex]V_{aa[/tex] is 86.60∠0° V.

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The correct question is given below-

A balanced, three-phase circuit is characterized as follows: - Part A - Y-A connected; Find the single-phase equivalent for the a-phase. Find the value of  [tex]V_{aa[/tex]   Source voltage in the b-phase is 150∠135  Express your answer in volts to three significant figures. Enter your answer using angle notation. Express your answer in volts to three significant. Enter your answer using angle notation. Load mpadance is 114+j158Ω/ϕ .

Suppose that f(5)=1, f′(5)=8, g(5)=−7, and g′(5)=9.
Find the following values.
(a) (fg)’(5) ______
(b) (f/g)’(5) _____
(c) (g/f)’(5) ____

Answers

The values of the following are a) (fg)'(5) = -47 , (b) (f/g)'(5) = -65/49,  (c) (g/f)'(5) = -8.

Given that f(5) = 1, f'(5) = 8, g(5) = -7, and g'(5) = 9

To calculate the following values, (a) (fg)'(5), (b) (f/g)'(5), and (c) (g/f)'(5), we need to use the product, quotient, and reciprocal rules of differentiation respectively.

The general forms of the product, quotient, and reciprocal rules of differentiation are given by:

(i) Product rule: (fg)' = f'g + fg'

(ii) Quotient rule: (f/g)' = [f'g - g'f]/g²

(iii) Reciprocal rule: (1/f)' = -f'/f² (a) To calculate (fg)'(5), we use the product rule as shown below.(fg)' = f'g + fg'(fg)'(5) = f'(5)g(5) + f(5)g'(5)(fg)'(5) = (8)(-7) + (1)(9)(fg)'(5) = -56 + 9(fg)'(5) = -47

Answer: (a) (fg)'(5) = -47

(b) To calculate (f/g)'(5), we use the quotient rule as shown below.

(f/g)' = [f'g - g'f]/g²(f/g)'(5) = [(f'(5)g(5)) - (g'(5)f(5))] / [g(5)]²(f/g)'(5) = [(8)(-7) - (9)(1)] / [(-7)]²(f/g)'(5) = [-56 - 9] / [49](f/g)'(5) = -65 / 49

Answer: (b) (f/g)'(5) = -65/49

(c) To calculate (g/f)'(5), we use the reciprocal rule as shown below.

(g/f)' = -f' / f²(g/f)'(5) = [-f'(5)] / [f(5)]²(g/f)'(5) = [-8] / [1]²(g/f)'(5) = -8

Answer: (c) (g/f)'(5) = -8

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Calculate the following antiderivatives:
∫x(−2+x³)dx=_______ +C

Answers

The antiderivative of [tex](-2+x^3[/tex]) with respect to x is[tex](-2x + (1/4)x^4) + C[/tex], where C is the constant of integration.

To find the antiderivative  [tex](-2+x^3)[/tex] with respect to x, we need to apply the power rule for integration and the constant multiple rules. The power rule states that the antiderivative of xⁿ with respect to x is [tex](1/(n+1))x^(n+1) + C[/tex], where C is the constant of integration.

Applying the power rule to the term x³, we get:

[tex]\int\limits^_[/tex][tex]x^3 dx = (1/(3+1))x^(3+1) + C = (1/4)x^4 + C[/tex]

Now, we must consider the antiderivative of the constant term (-2). The antiderivative of a constant multiplied by x is simply the constant multiplied by x. Thus, the antiderivative of -2 with respect to x is -2x.

Putting it all together, the antiderivative of[tex](-2+x^3)[/tex] with respect to x is [tex](-2x + (1/4)x^4) + C[/tex], where C is the constant of integration.

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help..
Use for \( \# 8 \) : 8. Given the following information, determine which lines, if any, are parallel. State the converse that iustifies vour answer.

Answers

The converse of this statement would be: If two lines are cut by a transversal and the lines are parallel, then the corresponding angles formed are congruent.

Without specific information or equations, it is not possible to determine which lines are parallel.

However, to determine if lines are parallel, we can use the converse of the corresponding angles postulate. If two lines are cut by a transversal and the corresponding angles formed are congruent, then the lines are parallel.

The converse of this statement would be: If two lines are cut by a transversal and the lines are parallel, then the corresponding angles formed are congruent.

This converse can be used to justify the parallelism of lines when the corresponding angles are congruent.

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"
Sketch the locus of the roots and their asymptotes for the system shown below: G(s)= Кс (3s + 1)(s +1)
"

Answers

The locus of the roots for the given transfer function G(s) = Kc(3s + 1)(s + 1) consists of the points s = -1 and s = -1/3. As for the asymptotes, they are not applicable in this case since the system has no complex conjugate poles.

The locus of the roots and their asymptotes for the system described by the transfer function G(s) = Kc(3s + 1)(s + 1) can be determined. The roots of the transfer function correspond to the locations where the system's response becomes zero, while the asymptotes represent the behavior of the system as s approaches infinity or the poles of the transfer function.

The transfer function G(s) = Kc(3s + 1)(s + 1) represents a second-order system with two poles. To sketch the locus of the roots and their asymptotes, we need to find the values of s where the transfer function becomes zero and determine the behavior as s approaches infinity.

First, we set G(s) = 0 to find the roots:

Kc(3s + 1)(s + 1) = 0.

The roots are obtained when each factor in the parentheses equals zero, i.e., s = -1 and s = -1/3. These are the locations where the system's response becomes zero.

Next, we consider the asymptotes. The behavior of the system as s approaches infinity depends on the highest power of s in the transfer function. In this case, the highest power is s². Thus, we have a second-order system.

For second-order systems, there are no asymptotes for the real axis. However, if there were complex conjugate poles, the asymptotes would represent the angle at which the system's response approaches these poles as s becomes large.

In conclusion, the locus of the roots for the given transfer function G(s) = Kc(3s + 1)(s + 1) consists of the points s = -1 and s = -1/3. As for the asymptotes, they are not applicable in this case since the system has no complex conjugate poles.

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A father put a dollar on the first square of an \( 8 \times 8 \) checkerboard. On the second square, the father doublied \( \$ 2 \) on the third \( \$ 4 \), the fourth \( \$ 8 \) and so on. At what sq

Answers

The value exceeds $1 million for the first time on the 21st square of the checkerboard.

The value of each square follows a doubling pattern:

$1, $2, $4, $8, $16, and so on.

We can express this pattern as [tex]2^{(n-1)}[/tex], where n represents the square number.

We need to find the value of n for which [tex]2^{(n-1)}[/tex] exceeds $1 million:

[tex]2^{(n-1)} > 1,000,000[/tex]

Taking the logarithm base 2 of both sides, we get:

[tex](n-1) > log_2(1,000,000)[/tex]

Using a calculator, we can determine the logarithm:

[tex]log_2(1,000,000) = 19.93[/tex]

Now, solving for n:

n-1 > 19.93

n > 20.93

Since n represents the square number, it must be a whole number. Therefore, we need to round up to the nearest whole number, giving us:

n = 21

Therefore, the value exceeds $1 million for the first time on the 21st square of the checkerboard.

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The complete question is as follows:

A father put a dollar on the first square of an 8x8 checkerboard. On the second square, the father doubled $2, on the third $4, on the fourth $8, and so on. At what square would the value be more than $1 million for the first time?

For the network given below, determine the unknown
current. R1 = 10 Ω, R2 = 91.4 Ω and
R3 = 26 Ω. Give your answer in amperes, correct to 4
decimal places.

Answers

The unknown current is 0 Amps (I = 0 A).

To determine the unknown current in the given network, we need to use Ohm's Law and apply Kirchhoff's laws.

Let's assume the unknown current as I. According to Kirchhoff's current law (KCL), the sum of currents entering and leaving a junction is zero.

At the junction between R1, R2, and R3, we have:

I - (I1 + I2) = 0

Applying Ohm's Law, we can express the currents in terms of resistances and the unknown current:

I - (V1/R1 + V2/R2) = 0

Now, we know that V1 = I * R1 and V2 = I * R2. Substituting these values:

I - (I * R1 / R1 + I * R2 / R2) = 0

Simplifying further:

I - (I + I) = 0

I - 2I = 0

-I = 0

Therefore, the unknown current is 0 Amps (I = 0 A).

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Assume that limx→6f(x)=3, limx→6g(x)=5, and limx→6h(x)=−1. Use these three facts and the limit laws to evaluate each limit. State each limit law, one at a time, to show each step in your work.
limx→6[f(x)+2g(x)+h(x)²]

Answers

The limit of the expression limx→6 [f(x) + 2g(x) + h(x)²] is 14.

To evaluate this limit, we can use the limit laws step by step. Let's break down the process:

First, we use the limit law for addition: limx→a [f(x) + g(x)] = limx→a f(x) + limx→a g(x). Applying this law, we have limx→6 [f(x) + 2g(x)] = limx→6 f(x) + limx→6 (2g(x)).

Since we know limx→6 f(x) = 3 and limx→6 g(x) = 5, we substitute these values into the equation: limx→6 [f(x) + 2g(x)] = 3 + 2 * 5 = 13.

Next, we use the limit law for multiplication: limx→a (c * f(x)) = c * limx→a f(x), where c is a constant. Applying this law to the term h(x)², we have limx→6 (h(x)²) = (limx→6 h(x))².

Given that limx→6 h(x) = -1, we substitute this value into the equation: (limx→6 h(x))² = (-1)² = 1.

Now, we can combine all the parts of the expression: limx→6 [f(x) + 2g(x) + h(x)²] = limx→6 [f(x) + 2g(x)] + limx→6 (h(x)²) = 13 + 1 = 14.

Therefore, the limit of the given expression limx→6 [f(x) + 2g(x) + h(x)²] is equal to 14.

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a. y = sec^7 x/7 - sec^5 x/5
b. y = √(e^2x + e^-2x
c. g (x) = ln (x^3√(4x +1)
d. f(x) = (x/(√x+5))^3
Find the derivative of functions

Answers

a) The derivative of the given function is 7 sec7(x/7) tan(x/7) - 5 sec5(x/5) tan(x/5).

b)The derivative of the given function is 15x(x + 5)−5/2/4(x + 5)3/2.

a) y = sec^7(x/7) - sec^5(x/5)

The given function is: y = sec7(x/7) - sec5(x/5)

Now, we are to find the derivative of this function.

To find the derivative of the given function, we apply the chain rule as follows:

dy/dx = 7 sec7(x/7) tan(x/7) - 5 sec5(x/5) tan(x/5)

Thus, the derivative of the given function is 7 sec7(x/7) tan(x/7) - 5 sec5(x/5) tan(x/5).

b) y = √(e^2x + e^-2x)

The given function is: y = √(e2x + e−2x)

Now, we are to find the derivative of this function.

To find the derivative of the given function, we apply the chain rule as follows:

dy/dx = (1/2) (e2x + e−2x)−1/2 d/dx (e2x + e−2x)

On differentiating the function e2x + e−2x with respect to x, we get:

d/dx (e2x + e−2x) = 2e2x − 2e−2x

Now, substituting this value back in the original equation, we have:

dy/dx = (1/2) (e2x + e−2x)−1/2 (2e2x − 2e−2x)

Simplifying this, we get: dy/dx = (e2x + e−2x)−1/2 (e2x − e−2x)

Therefore, the derivative of the given function is

(e2x + e−2x)−1/2 (e2x − e−2x).c) g(x) = ln(x3√(4x + 1))

The given function is: g(x) = ln(x3√(4x + 1))

Now, we are to find the derivative of this function.

To find the derivative of the given function, we apply the chain rule as follows:

dg/dx = 1/(x3√(4x + 1)) d/dx (x3√(4x + 1))

On differentiating the function x3√(4x + 1) with respect to x, we get:

d/dx (x3√(4x + 1)) = (3x2√(4x + 1) + x3/2(4x + 1)−1/2 (4))

Simplifying this, we get:

d/dx (x3√(4x + 1)) = (3x2√(4x + 1) + 2x3/2(4x + 1)−1/2)

Therefore, the derivative of the given function is:

dg/dx = 1/(x3√(4x + 1)) (3x2√(4x + 1) + 2x3/2(4x + 1)−1/2)

So, the required derivative is: dg/dx = (3√(4x + 1) + 2x/√(4x + 1))/x2√(4x + 1).d) f(x) = (x/√(x + 5))3

The given function is: f(x) = (x/√(x + 5))3

Now, we are to find the derivative of this function.

To find the derivative of the given function, we apply the chain rule as follows:

df/dx = 3(x/√(x + 5))2 d/dx (x/√(x + 5))

On differentiating the function x/√(x + 5) with respect to x, we get: d/dx (x/√(x + 5)) = (5/2)(x + 5)−3/2

Simplifying this, we get: d/dx (x/√(x + 5)) = (5/2)/(x + 5)3/2

Therefore, the derivative of the given function is: df/dx = 3(x/√(x + 5))2 (5/2)/(x + 5)3/2

So, the required derivative is: df/dx = 15x(x + 5)−5/2/4(x + 5)3/2.

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