Question:
Evaluate: $\int\limits_{0}^{\frac{\pi}{4 }} \sqrt{1-sin\, 2x} \,\,\, dx $
Evaluate: $\int\limits_{0}^{\frac{\pi}{4 }} \sqrt{1-sin\, 2x} \,\,\, dx $
Updated On: Jul 6, 2022
- $\sqrt{2}-1$
- $\sqrt{2}+1$
- $\sqrt{2}$
- None of these
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The Correct Option is A
Solution and Explanation
We have,
$ I= \int\limits_{0}^{\frac{\pi}{4}}\sqrt{1-sin\, 2x } \,dx $
$= \int\limits_{0}^{\frac{\pi }{4}}\sqrt{sin ^{2}\,x +cos^{2}\,x -2\,sin \,x \,cos\, x }\,dx$
$=\int\limits_{0}^{\frac{\pi }{4}}\sqrt{\left(cos\,x -sin\,x\right)^{2}}= \int_{0}^{\frac{\pi }{4}}\left|\left(cos\,x-sin\, x\right)\right| dx $
$= \int\limits_{0}^{\pi/4}\left(cos\, x-sin\,x\right)dx \left[\because 0 < x < \pi/4, cos\,x > sin\,x \right]$
$ = \left[sin\,x +cos \,x\right]_{0}^{\pi/4} = \frac{2}{\sqrt{2}} -1= \sqrt{2}-1$
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Concepts Used:
Integral
The representation of the area of a region under a curve is called to be as integral. The actual value of an integral can be acquired (approximately) by drawing rectangles.
- The definite integral of a function can be shown as the area of the region bounded by its graph of the given function between two points in the line.
- The area of a region is found by splitting it into thin vertical rectangles and applying the lower and the upper limits, the area of the region is summarized.
- An integral of a function over an interval on which the integral is described.
Also, F(x) is known to be a Newton-Leibnitz integral or antiderivative or primitive of a function f(x) on an interval I.
F'(x) = f(x)
For every value of x = I.
Types of Integrals:
Integral calculus helps to resolve two major types of problems:
- The problem of getting a function if its derivative is given.
- The problem of getting the area bounded by the graph of a function under given situations.