Proving e^ix = cos x + i sin x

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SUMMARY

The identity eix = cos x + i sin x is proven using infinite series expansions and differential equations. The series for ex, sin(x), and cos(x) are combined to demonstrate their relationships. Additionally, the function z = cos(x) + i sin(x) is differentiated, leading to the conclusion that eix equals z when initial conditions are applied. Multiple proofs exist, depending on the mathematical background and definitions used.

PREREQUISITES
  • Understanding of infinite series and Taylor expansions
  • Familiarity with complex numbers and Euler's formula
  • Knowledge of differential equations, specifically f'' + f = 0
  • Basic integration techniques, particularly with logarithmic functions
NEXT STEPS
  • Study Taylor series for ex, sin(x), and cos(x)
  • Explore Euler's formula in depth, including its applications
  • Learn about solving second-order differential equations
  • Investigate complex analysis and its relation to trigonometric identities
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Mathematicians, physics students, and anyone interested in complex analysis and trigonometric identities.

Hyperreality
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How can I proof the identity

e^ix = cos x + i sin x?
 
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Consider the infinite sums:
e^x = 1 + x/1! + x^2/2! + x^3/3! + ...
sin(x) = x/1! - x^3/3! + x^5/5! -x^7/7! + ...
cos(x) = 1 - x^2/2! + x^4/4! -x^6/6! + ...

e^ix = 1 + ix/1! + (ix)^2/2! + (ix)^3/3!...
Notice the patterns with the powers of i and rearrange the terms to see how they relate to sin and cos.
 
or check that both functions satisfy the same de and same initial conditions,

i.e. f'' + f = 0 and f(0) = 1, f'(0) = i.
 
Hyperreality said:
How can I proof the identity

e^ix = cos x + i sin x?

You could use the function z = cos(x) + i*sin(x) with z(0)=1 and dz/dx = -sin(x) + i*cos(x) = i*cos(x) + i^2*sin(x) = i*(cos(x)+i*sin(x)) = iz. Which gives dz/dx = iz <=> dz/z = i dx integration gives \int \frac{dz}{z} = \int i \ dx which gives ln(z) + C = ix + D => ln(z) = ix+E => z = e^(ix+E). Now we have that cos(x)+i*sin(x) = e^(ix+E), and with z(0)=1 it gives that e^(i*0+E)=e^E=1 => E=0 which yields e^(ix)=cos(x)+i*sin(x).

Edit: E = D - C
 
In other words, there are a number of different proofs, depending on what you already know and how you are defining the different functions.
 

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