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Solve for z over the imaginary numbers. Please help!

Solve for z over the imaginary numbers. Please help!
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4 votes
Solve for z over the imaginary numbers. Please help!

Solve for z over the imaginary numbers. Please help!-example-1
User Jevon
by
7.0k points

1 Answer

6 votes

2e^z+5=0

2e^z=-5

e^z=-\frac52

e^(z+2ki\pi)=-\frac52

where
k\in\mathbb Z. Taking the logarithm of both sides gives


\log e^(z+2ki\pi)=\log\left(-\frac52\right)

\log e^(z+2ki\pi)=\log\frac52+\log(-1)

\log e^(z+2ki\pi)=\log\frac52+\log(e^(i\pi))

z+2ki\pi=\log\frac52+i\pi

z=\log\frac52+(2k+1)i\pi
User Abhishek Chaurasia
by
7.9k points
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