All Calculus 1 Resources
Example Questions
Example Question #98 : Regions
In units squared, what is the area underneath on the interval ?
To find the area under f(x), we need to evaluate the following:
To Evaluate, perform the following:
Example Question #14 : Area
Find the area under from 5 to 17.
Cannot be determined
To find the area under g(x) from 5 to 17 we need to evaluate the following integral:
Example Question #2981 : Functions
Find the area under the following function on the interval from to .
To find the area under the curve, we need to evaluate the following integral.
Recall to integrate polynomials, simply increase the exponent by one and divide by that number. So the above integral becomes:
We need to evaluate this on the interval {5,25}, so we plug 25 and 5 and take the difference.
So our answer is 76953.33 units squared
Example Question #2982 : Functions
Which of the following is the correct way to evaluate the following integral?
To integrate this function, we need to know a few things.
1) Any constant term can be pulled out of the integral and multiplied through at the end. So our original expression becomes this:
2) Integrating one over x doesn't follow the classic integrating rules. In this case, the integral of 1 over x is equal to the ln of x. So we do the following
We need to remember our plus c, otherwise we will not quite be correct.
We could then evaluate the function on any interval to find the area underneath the curve.
Example Question #2983 : Functions
Find the area of the following function bounded by the -axis and the line .
To find the area of a curve, we can use an integral.
Set up the following:
Because we want the area between the y axis and 4, we need to evaluate the integral from 0 to 4. (Hence the limits on our integral sign)
Recall that to integrate a polynomial, we need to increase each exponent by 1 and divide by that number, so our integral changes as follows.
So, we need to evaluate our expression from 0 to 4, which means we will plug in 4 and 0 into the equation and take the difference. However, this gets even easier when we consider that plugging in 0 will result in 0. It goes as follows:
So if we simplify, we get the following:
So our answer is 29696 units squared
Example Question #23 : How To Find Area Of A Region
Find the area between the curves and .
Looking at the graph, we see that the area lies between the points (0,0) and (1,1). Then, you can either differentiate with respect to y or x. With respect to y with to the right. We can just use the positive square root because of the domain of x being only positive. With respect to x with on top.
Example Question #4013 : Calculus
Find the area of the region bound by the -axis, and the lines and .
To find the area of a region, set up an integral and evaluate it. In this case, we need the area under the curve of g(t) on the interval [5,17]. Therfore, our integral should look like the following:
Recall to evaluate integrals with polynomials, we need to increase each exponent by 1, and then divide the term by that number. Then, once we have integrated, we need to evaluate on the given interval by plugging in each number and finding the difference between them.
This looks a little messy, but once we simplify it, it will look much better.
Okay, still a little messy, but not too bad!
Making the area under the curve 97968 units squared
Example Question #2984 : Functions
Given the functions and , what's the area of the closed region to the nearest integer?
Notice that the second equation is not a function. It would be easier to integrate with respect to y instead of x.
The following formulas are for area under the curve for two scenarios:
It will be easier to use the second scenario. The right curve is .
Find the intersection of the two curves by setting both equations equal to each other.
and
These will be the lower and upper bounds of this integral. Set up the integral and evaluate.
The area of the region to the nearest integer is .
Example Question #25 : Area
Find the area of the region bounded by , and .
Given the information that the region is bounded by , and , it is necessary to evaluate the bounds of the integral.
Substitute into to determine the values of .
These values will be the lower and upper bounds of the integral.
Set up the integral and evaluate.
Example Question #27 : How To Find Area Of A Region
Find the area between the functions and .
First, we find the points of intersection by setting the two equations equal to each other and solving. So, we solve to get and .
Then, we use the points of intersection as our limits of integration and find the definite integral of the top function - the bottom function; if you are unsure which is which, you can either graph the two together for a visual answer, or evaluate both functions at a point between the points of intersection. The larger answer will correspond to the top function .
So, proceeding with the integral, we get
at
, and at
.
So, we have that our answer is
.