4

I need to compute imaginary exponential in C.

As far as I know, there is no complex number library in C. It is possible to get e^x with exp(x) of math.h, but how can I compute the value of e^(-i), where i = sqrt(-1)?

8

Note that exponent of complex number equals:

e^(ix) = cos(x)+i*sin(x)

Then:

e^(-i) = cos(-1)+i*sin(-1)
|improve this answer|||||
16

In C99, there is a complex type. Include complex.h; you may need to link with -lm on gcc. Note that Microsoft Visual C does not support complex; if you need to use this compiler, maybe you can sprinkle in some C++ and use the complex template.

I is defined as the imaginary unit, and cexp does exponentiation. Full code example:

#include <complex.h>
#include <stdio.h>

int main() {
    complex x = cexp(-I);
    printf("%lf + %lfi\n", creal(x), cimag(x));
    return 0;
}

See man 7 complex for more information.

|improve this answer|||||
  • I needed to do this manually.. Thanks for the future reference, I'll keep this in mind. – Erkan Haspulat May 14 '10 at 19:31
6

Using the Euler's Formula you have that e^-i == cos(1) - i*sin(1)

|improve this answer|||||
  • e^(-k) = cos(k) - i*sin(k), you mean. – Deep-B May 14 '10 at 15:42
  • yes, but in his case k = 1. In any case the general form is e^(-ki) = cos(k)-i*sin(k), not e^(-k) – Jack May 14 '10 at 16:42
2

e^-j is just cos(1) - j*sin(1), so you can just generate the real and imaginary parts using real functions.

|improve this answer|||||
1

Just use the cartesian form

if z = m*e^j*(arg);

re(z) = m * cos(arg);
im(z) = m * sin(arg);
|improve this answer|||||
1

Is calling a c++ function a solution for you? The C++ STL has a nice complex-class and boost also has to offer some nice options. Write a function in C++ and declare it "extern C"

extern "C" void myexp(float*, float*);

#include <complex>

using std::complex;

void myexp (float *real, float *img )
{
  complex<float> param(*real, *img);
  complex<float> result = exp (param);
  *real = result.real();
  *img = result.imag();
}

Then you can call the function from whatever C-code you rely on ( Ansi-C, C99, ...).

#include <stdio.h>

void myexp(float*, float*);

int main(){
    float real = 0.0;
    float img = -1.0;
    myexp(&real, &img);
    printf ("e^-i = %f + i* %f\n", real, img);
    return 0;
}
|improve this answer|||||
  • Thanks for the explanation but C++ is no good for me with this – Erkan Haspulat May 14 '10 at 19:32
0

In C++ it can be done directly: std::exp(std::complex(0, -1));

|improve this answer|||||

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.