Calculus 1 : Increasing Intervals

Study concepts, example questions & explanations for Calculus 1

varsity tutors app store varsity tutors android store

Example Questions

Example Question #11 : Increasing Intervals

Is  increasing, decreasing, or flat at ?

Possible Answers:

f(x) is decreasing at the point, because f'(x) is negative.

 f(x) is decreasing at the point, because f'(x) is positive.

f(x) is flat at the point, because f'(x) is zero.

f(x) is increasing at the point, because f'(x) is positive.

Correct answer:

f(x) is decreasing at the point, because f'(x) is negative.

Explanation:

Is f(x) increasing, decreasing, or flat at ?

Recall that to find if a function is increasing or decreasing, we can use its first derivative. If f'(x) is positive, f(x) is increasing. If f'(x) is negative, f(x) is decreasing.

So, given:

 

We get

Then:

Therefore, f(x) is decreasing at the point, because f'(x) is negative.

Example Question #31 : Intervals

Tell whether  is increasing or decreasing on the interval .

Possible Answers:

Decreasing, because g'(t) is negative.

Decreasing, because g'(t) is positive.

Increasing, because g'(t) is positive.

Increasing, because g'(t) is negative.

Correct answer:

Increasing, because g'(t) is positive.

Explanation:

Tell whether g(t) is increasing or decreasing on the interval [4,7]

To find increasing and decreasing, find where the first derivative is positive and negative. If g'(t) is positive, then g(t) is increasing and vice-versa.

Then,plug in the endpoints of [4,7] and see what you get for a sign.

So, since g'(t) is positive on the interval, g(t) is increasing.

Example Question #2632 : Calculus

Find the interval on which the function is increasing:

Possible Answers:

The function is never increasing.

Correct answer:

Explanation:

To find the interval(s) on which the function is increasing, we must find the intervals on which the first derivative of the function is positive. 

The first derivative of the function is:

and was found using the rule

Now we must find the critical value, at which the first derivative is equal to zero:

Now, we make the intervals on which we look at the sign of the first derivative:

On the first interval the first derivative is positive, while on the second it is negative. Thus, the first interval is our answer, because over this range of x values, the first derivative is positive and the function is increasing. 

Example Question #31 : Intervals

Suppose  is continuous for all  and known to have at least one root, and  for all . Which of the following must be true?

Possible Answers:

  has at least one inflection point

  has at least one more root

 has only one root

Correct answer:

 has only one root

Explanation:

If  is continuous everywhere and always increasing (i.e.  for all ), then it must be true that after  has attained its root, it can never do so again because it can't "return" to the -axis. NOTE: this is not automatically true of functions that aren't continuous. As for the other choices, the possibility of at least having one more root is automatically false and a simple counterexample to the notion thay  has to have an inflection point is a simple increasing lines. It has a constant positive derivative, but possesses no upward or downward concavity and has no inflection points.

Example Question #15 : Increasing Intervals

Deletable Note to the admin: I am virtually 100% sure the derivative has been correct. Derivative of the top is 6x. Derivative of the bottom is 1/x. So numerator of derivative by quotient rule is . You will note the second term in this is 3x. Denominator is self explanatory. I do not see where it is wrong.

Let   .  On what subintervals of the interval  is  increasing?

Possible Answers:

Only intervals where >

No subinterval of .

Every nontrivial subinterval of 

 

 

Correct answer:

Every nontrivial subinterval of 

 

 

Explanation:

Take the first derivative of :

 

   by quotient rule

 

 is increasing whenever  is positive, that is, whenever both the numerator and denominator are of the same sign. The function  is certainly positive for all values of  greater than  because  and since 

 

 

is positive for all positive , it is increasing on the interval, too. It will never be negative. For the same reason, the numerator is always positive. With the numerator and denominator always positive everywhere on the given interval, the derivative is always positive and the function is always increasing. So for any interval of nonzero length within ,  is increasing.

 

NOTE: Interestingly the opposite of the choice  >  is also true.  on the entire interval because at , we have

 

. So the numerator is larger to begin with, and since:

 

  for all  (or any  for that matter), the derivative of the numerator is greater, too. This means the numerator will always be larger, so this condition coincides with the condition of  being positive.

Example Question #41 : Intervals

Find the intervals on which the following function is increasing:

Possible Answers:

Correct answer:

Explanation:

To find the intervals on which the function is increasing, we must find the intervals where the first derivative is positive. To do this, we must find the first derivative, and find its critical values (at which the first derivative is equal to zero):

The derivative was found using the following rule:

Now, write the intervals of the function for which c is the upper and lower bound:

Note that at the critical value, the derivative is neither positive nor negative.

Now, we analyze the sign of the derivative within each interval; on the first interval, the derivative is always negative, but on the second interval, the first derivative is always positive. In other words, for this set of values -  -  the function is increasing. 

Example Question #41 : Intervals

Determint the intervals on which the following function is increasing:

Possible Answers:

Correct answer:

Explanation:

To determine the intervals on which the function is increasing, we must determine the intervals on which the first derivative of the function is positive. To start, we must find the first derivative:

The derivative was found using the following rule:

The first derivative is a positive constant, therefore the function is increasing on the entire domain, .

Example Question #43 : Intervals

When is the function increasing?

Possible Answers:

Correct answer:

Explanation:

To find where the function is increasing, you must first find the derivative of the function so you can test critical points. The derivative of the function is . Then, set that equal to  to find the critical points. When you set that equal to , you get . Then set up a number line so you can test values to determine when the function is increasing and decreasing. We know it's changing direction at our critical point, . So let's pick a point to the left of  and plug it in to the derivative. I'll pick : . Since the answer is negative, we know that the function is decreasing. Pick a point to the right of 2. I'll pick 3: . Since the answer is positive, the function is increasing. Therefore, the function is increasing from .

Example Question #44 : Intervals

Find the intervals on which the function is increasing:

Possible Answers:

Correct answer:

Explanation:

To find the intervals on which the function is increasing, we must find the intervals on which the first derivative is positive. 

To start, we must first find where the first derivative of the function is zero:

The first derivative was found using the following rule:

Now, set this function equal to zero to get the critical values (values at which the first derivative is equal to zero):

Next, we create the intervals using the critical value as the upper and lower bound of the limits, respectively:

On the first interval, the first derivative is negative, but on the second interval, the first derivative is positive, meaning that on this interval the function is increasing. (Simply plug in any point on the interval into the first derivative function and check the sign.)

The answer is 

Example Question #45 : Intervals

Find the interval on which the following function is increasing.

Possible Answers:

always

never

Correct answer:

Explanation:

To solve, you must first differentiate the function once and then find where the derivative is positive. To differentiate, use the power rule:

Thus,

Now you must find where this is greater than 0, and therefore increasing.

Therefore, our answer is when x is greater than 2. Thus, .

Learning Tools by Varsity Tutors