In today's world, Integration using Euler's formula has become increasingly important. Whether in the field of health, technology, education or any other field, Integration using Euler's formula has captured the attention of experts and the general public. Over the years, we have witnessed how Integration using Euler's formula has evolved and become a key issue in our society. In this article, we will thoroughly explore all facets of Integration using Euler's formula, from its history to its current applications, with the goal of providing a complete and detailed overview of its importance in today's world.
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In integral calculus, Euler's formula for complex numbers may be used to evaluate integrals involving trigonometric functions. Using Euler's formula, any trigonometric function may be written in terms of complex exponential functions, namely and and then integrated. This technique is often simpler and faster than using trigonometric identities or integration by parts, and is sufficiently powerful to integrate any rational expression involving trigonometric functions.[1]
Euler's formula states that[2]
Substituting for gives the equation
because cosine is an even function and sine is odd. These two equations can be solved for the sine and cosine to give
Consider the integral
The standard approach to this integral is to use a half-angle formula to simplify the integrand. We can use Euler's identity instead:
At this point, it would be possible to change back to real numbers using the formula e2ix + e−2ix = 2 cos 2x. Alternatively, we can integrate the complex exponentials and not change back to trigonometric functions until the end:
Consider the integral
This integral would be extremely tedious to solve using trigonometric identities, but using Euler's identity makes it relatively painless:
At this point we can either integrate directly, or we can first change the integrand to 2 cos 6x − 4 cos 4x + 2 cos 2x and continue from there. Either method gives
In addition to Euler's identity, it can be helpful to make judicious use of the real parts of complex expressions. For example, consider the integral
Since cos x is the real part of eix, we know that
The integral on the right is easy to evaluate:
Thus:
In general, this technique may be used to evaluate any fractions involving trigonometric functions. For example, consider the integral
Using Euler's identity, this integral becomes
If we now make the substitution , the result is the integral of a rational function:
One may proceed using partial fraction decomposition.
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