Finding The Area Under The Curve Using Definite Integrals - Calculus

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This is a must-watch for students looking to conquer calculus challenges. The video's straightforward approach and practical examples demystify the process, making it easier for anyone to understand and apply definite integrals in finding the area under a curve.

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Professor Organic Chemistry Tutor, thank you for an exceptional video/lecture on Finding the Area Under a Curve using Definite Integrals in Calculus Two. From the video, the best way to find the Area under a Curve is to graph the function(s) and then calculate the required Area. Thanks to the viewers for finding and correcting the errors in this video.

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When we try to find the area under the graph for solution of x, as in x = y^2 for example, do we change it to y = √x so we solve for y? Because I went to Symbolab (site for mathematics) and it solved for y. But it also showed the graph as it is on the y axis even though it solved for y? Why do we solve for y in this case? Should not we solve for x?

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my calculus professor said that if the if the shaded area is under the x-axis, it contributes negatively to the integral so then for 11:26 the area would be 0 but you are saying this isn't the case? why?

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What do we achieve when calculating for F(a) and F(b)?

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In equation -x^2 + 6x -8 how do we find the value of y that would yield area under the curve equals to 4. Currently area is calculated with lower Y bound equal to 0.

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Find the curve bounded by the positive x,y axes and the curve y=4-×^2

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Calculate the area enclosed by y=1÷×^2-1 and y=3

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I am not understanding how the (8/3) became positive since (-2)^3 is negative then the outside has two negatives to distribute because (0-f(2)) also has an negative outside of it because A2-A1

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