Find f x + h and f x + h − f x h for the function f x = x 2 − 5 .

Question

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Answer 1

Question

Chapter CR, Problem 1CR

To determine

Find fx+h and fx+h−fxh for the function fx=x2−5 .

Expert Solution & Answer

Answer to Problem 1CR

The value of fx+h=x2+h2+2hx−5 and fx+h−fxh=h+2x .

Explanation of Solution

Given:

The given function is fx=x2−5 .

Calculation:

Evaluating fx+h for the function fx=x2−5 by plugging x=x+h in fx=x2−5 .

Therefore,

fx+h=x+h2−5=x2+h2+2hx−5 ....1

Similarly, evaluating fx+h−fxh ,

fx+h−fxh=x2+h2+2hx−5−x2−5h ....From 1=x2+h2+2hx−5−x2+5h=h2+2hxh=h+2x

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(b) Find the (instantaneous) rate of change of y at x = 5. In the previous part, we found the average rate of change for several intervals of decreasing size starting at x = 5. The instantaneous rate of change of fat x = 5 is the limit of the average rate of change over the interval [x, x + h] as h approaches 0. This is given by the derivative in the following limit. lim h→0 - f(x + h) − f(x) h The first step to find this limit is to compute f(x + h). Recall that this means replacing the input variable x with the expression x + h in the rule defining f. f(x + h) = (x + h)² - 5(x+ h) = 2xh+h2_ x² + 2xh + h² 5✔ - 5 )x - 5h Step 4 - The second step for finding the derivative of fat x is to find the difference f(x + h) − f(x). - f(x + h) f(x) = = (x² x² + 2xh + h² - ])- = 2x + h² - 5h ])x-5h) - (x² - 5x) = ]) (2x + h - 5) Macbook Pro

Answer 2

Question

Chapter CR, Problem 1CR

To determine

Find fx+h and fx+h−fxh for the function fx=x2−5 .

Expert Solution & Answer

Answer to Problem 1CR

The value of fx+h=x2+h2+2hx−5 and fx+h−fxh=h+2x .

Explanation of Solution

Given:

The given function is fx=x2−5 .

Calculation:

Evaluating fx+h for the function fx=x2−5 by plugging x=x+h in fx=x2−5 .

Therefore,

fx+h=x+h2−5=x2+h2+2hx−5 ....1

Similarly, evaluating fx+h−fxh ,

fx+h−fxh=x2+h2+2hx−5−x2−5h ....From 1=x2+h2+2hx−5−x2+5h=h2+2hxh=h+2x

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Answer 3

Question

Chapter CR, Problem 1CR

To determine

Find fx+h and fx+h−fxh for the function fx=x2−5 .

Expert Solution & Answer

Answer to Problem 1CR

The value of fx+h=x2+h2+2hx−5 and fx+h−fxh=h+2x .

Explanation of Solution

Given:

The given function is fx=x2−5 .

Calculation:

Evaluating fx+h for the function fx=x2−5 by plugging x=x+h in fx=x2−5 .

Therefore,

fx+h=x+h2−5=x2+h2+2hx−5 ....1

Similarly, evaluating fx+h−fxh ,

fx+h−fxh=x2+h2+2hx−5−x2−5h ....From 1=x2+h2+2hx−5−x2+5h=h2+2hxh=h+2x

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Answer 4

Question

Chapter CR, Problem 1CR

To determine

Find fx+h and fx+h−fxh for the function fx=x2−5 .

Expert Solution & Answer

Answer to Problem 1CR

The value of fx+h=x2+h2+2hx−5 and fx+h−fxh=h+2x .

Explanation of Solution

Given:

The given function is fx=x2−5 .

Calculation:

Evaluating fx+h for the function fx=x2−5 by plugging x=x+h in fx=x2−5 .

Therefore,

fx+h=x+h2−5=x2+h2+2hx−5 ....1

Similarly, evaluating fx+h−fxh ,

fx+h−fxh=x2+h2+2hx−5−x2−5h ....From 1=x2+h2+2hx−5−x2+5h=h2+2hxh=h+2x

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Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!

Answer 5

Chapter CR, Problem 1CR

To determine

Find fx+h and fx+h−fxh for the function fx=x2−5 .

Expert Solution & Answer

Answer to Problem 1CR

The value of fx+h=x2+h2+2hx−5 and fx+h−fxh=h+2x .

Explanation of Solution

Given:

The given function is fx=x2−5 .

Calculation:

Evaluating fx+h for the function fx=x2−5 by plugging x=x+h in fx=x2−5 .

Therefore,

fx+h=x+h2−5=x2+h2+2hx−5 ....1

Similarly, evaluating fx+h−fxh ,

fx+h−fxh=x2+h2+2hx−5−x2−5h ....From 1=x2+h2+2hx−5−x2+5h=h2+2hxh=h+2x

Answer 6

Chapter CR, Problem 1CR

To determine

Find fx+h and fx+h−fxh for the function fx=x2−5 .

Expert Solution & Answer

Answer to Problem 1CR

The value of fx+h=x2+h2+2hx−5 and fx+h−fxh=h+2x .

Explanation of Solution

Given:

The given function is fx=x2−5 .

Calculation:

Evaluating fx+h for the function fx=x2−5 by plugging x=x+h in fx=x2−5 .

Therefore,

fx+h=x+h2−5=x2+h2+2hx−5 ....1

Similarly, evaluating fx+h−fxh ,

fx+h−fxh=x2+h2+2hx−5−x2−5h ....From 1=x2+h2+2hx−5−x2+5h=h2+2hxh=h+2x

Answer 7

Chapter CR, Problem 1CR

To determine

Find fx+h and fx+h−fxh for the function fx=x2−5 .

Answer 8

Expert Solution & Answer

Answer to Problem 1CR

The value of fx+h=x2+h2+2hx−5 and fx+h−fxh=h+2x .

Answer 9

Expert Solution & Answer

Answer 10

Expert Solution & Answer

Answer 11

Explanation of Solution

Given:

The given function is fx=x2−5 .

Calculation:

Evaluating fx+h for the function fx=x2−5 by plugging x=x+h in fx=x2−5 .

Therefore,

fx+h=x+h2−5=x2+h2+2hx−5 ....1

Similarly, evaluating fx+h−fxh ,

fx+h−fxh=x2+h2+2hx−5−x2−5h ....From 1=x2+h2+2hx−5−x2+5h=h2+2hxh=h+2x

Answer 12

Ch. CR - Prob. 1CR Ch. CR - Prob. 2CR Ch. CR - Prob. 3CR Ch. CR - Prob. 4CR Ch. CR - Prob. 5CR Ch. CR - Prob. 6CR Ch. CR - Prob. 7CR Ch. CR - Prob. 8CR Ch. CR - Prob. 9CR Ch. CR - Prob. 10CR

Find f x + h and f x + h − f x h for the function f x = x 2 − 5 .

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Find fx+h and fx+h−fxh for the function fx=x2−5 .

Answer to Problem 1CR

Explanation of Solution

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