e^{\log \left(\sqrt{x.re \cdot x.re + x.im \cdot x.im}\right) \cdot y.re - \tan^{-1}_* \frac{x.im}{x.re} \cdot y.im} \cdot \sin \left(\log \left(\sqrt{x.re \cdot x.re + x.im \cdot x.im}\right) \cdot y.im + \tan^{-1}_* \frac{x.im}{x.re} \cdot y.re\right)\begin{array}{l}
\mathbf{if}\;x.re \le -5.84957079009290675 \cdot 10^{-48}:\\
\;\;\;\;e^{\log \left(\sqrt{x.re \cdot x.re + x.im \cdot x.im}\right) \cdot y.re - \tan^{-1}_* \frac{x.im}{x.re} \cdot y.im} \cdot \sin \left(\tan^{-1}_* \frac{x.im}{x.re} \cdot y.re - y.im \cdot \log \left(\frac{-1}{x.re}\right)\right)\\
\mathbf{elif}\;x.re \le 8.47912844829158588 \cdot 10^{-189}:\\
\;\;\;\;e^{\log \left(\sqrt{x.re \cdot x.re + x.im \cdot x.im}\right) \cdot y.re - \tan^{-1}_* \frac{x.im}{x.re} \cdot y.im} \cdot \sin \left(\log \left(\left(\sqrt[3]{\sqrt{x.re \cdot x.re + x.im \cdot x.im}} \cdot \sqrt[3]{\sqrt{x.re \cdot x.re + x.im \cdot x.im}}\right) \cdot \sqrt[3]{\sqrt{x.re \cdot x.re + x.im \cdot x.im}}\right) \cdot y.im + \tan^{-1}_* \frac{x.im}{x.re} \cdot y.re\right)\\
\mathbf{else}:\\
\;\;\;\;e^{\log \left(\sqrt{x.re \cdot x.re + x.im \cdot x.im}\right) \cdot y.re - \tan^{-1}_* \frac{x.im}{x.re} \cdot y.im} \cdot \sin \left(\log x.re \cdot y.im + \tan^{-1}_* \frac{x.im}{x.re} \cdot y.re\right)\\
\end{array}double code(double x_46_re, double x_46_im, double y_46_re, double y_46_im) {
return (exp(((log(sqrt(((x_46_re * x_46_re) + (x_46_im * x_46_im)))) * y_46_re) - (atan2(x_46_im, x_46_re) * y_46_im))) * sin(((log(sqrt(((x_46_re * x_46_re) + (x_46_im * x_46_im)))) * y_46_im) + (atan2(x_46_im, x_46_re) * y_46_re))));
}
double code(double x_46_re, double x_46_im, double y_46_re, double y_46_im) {
double VAR;
if ((x_46_re <= -5.849570790092907e-48)) {
VAR = (exp(((log(sqrt(((x_46_re * x_46_re) + (x_46_im * x_46_im)))) * y_46_re) - (atan2(x_46_im, x_46_re) * y_46_im))) * sin(((atan2(x_46_im, x_46_re) * y_46_re) - (y_46_im * log((-1.0 / x_46_re))))));
} else {
double VAR_1;
if ((x_46_re <= 8.479128448291586e-189)) {
VAR_1 = (exp(((log(sqrt(((x_46_re * x_46_re) + (x_46_im * x_46_im)))) * y_46_re) - (atan2(x_46_im, x_46_re) * y_46_im))) * sin(((log(((cbrt(sqrt(((x_46_re * x_46_re) + (x_46_im * x_46_im)))) * cbrt(sqrt(((x_46_re * x_46_re) + (x_46_im * x_46_im))))) * cbrt(sqrt(((x_46_re * x_46_re) + (x_46_im * x_46_im)))))) * y_46_im) + (atan2(x_46_im, x_46_re) * y_46_re))));
} else {
VAR_1 = (exp(((log(sqrt(((x_46_re * x_46_re) + (x_46_im * x_46_im)))) * y_46_re) - (atan2(x_46_im, x_46_re) * y_46_im))) * sin(((log(x_46_re) * y_46_im) + (atan2(x_46_im, x_46_re) * y_46_re))));
}
VAR = VAR_1;
}
return VAR;
}



Bits error versus x.re



Bits error versus x.im



Bits error versus y.re



Bits error versus y.im
Results
if x.re < -5.849570790092907e-48Initial program 36.6
Taylor expanded around -inf 20.5
if -5.849570790092907e-48 < x.re < 8.479128448291586e-189Initial program 26.0
rmApplied add-cube-cbrt26.0
if 8.479128448291586e-189 < x.re Initial program 35.2
Taylor expanded around inf 24.4
Final simplification23.8
herbie shell --seed 2020105
(FPCore (x.re x.im y.re y.im)
:name "powComplex, imaginary part"
:precision binary64
(* (exp (- (* (log (sqrt (+ (* x.re x.re) (* x.im x.im)))) y.re) (* (atan2 x.im x.re) y.im))) (sin (+ (* (log (sqrt (+ (* x.re x.re) (* x.im x.im)))) y.im) (* (atan2 x.im x.re) y.re)))))