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 -5.5056818624775264 \cdot 10^{-309}:\\
\;\;\;\;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{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 f(double x_re, double x_im, double y_re, double y_im) {
double r16279 = x_re;
double r16280 = r16279 * r16279;
double r16281 = x_im;
double r16282 = r16281 * r16281;
double r16283 = r16280 + r16282;
double r16284 = sqrt(r16283);
double r16285 = log(r16284);
double r16286 = y_re;
double r16287 = r16285 * r16286;
double r16288 = atan2(r16281, r16279);
double r16289 = y_im;
double r16290 = r16288 * r16289;
double r16291 = r16287 - r16290;
double r16292 = exp(r16291);
double r16293 = r16285 * r16289;
double r16294 = r16288 * r16286;
double r16295 = r16293 + r16294;
double r16296 = sin(r16295);
double r16297 = r16292 * r16296;
return r16297;
}
double f(double x_re, double x_im, double y_re, double y_im) {
double r16298 = x_re;
double r16299 = -5.505681862477526e-309;
bool r16300 = r16298 <= r16299;
double r16301 = r16298 * r16298;
double r16302 = x_im;
double r16303 = r16302 * r16302;
double r16304 = r16301 + r16303;
double r16305 = sqrt(r16304);
double r16306 = log(r16305);
double r16307 = y_re;
double r16308 = r16306 * r16307;
double r16309 = atan2(r16302, r16298);
double r16310 = y_im;
double r16311 = r16309 * r16310;
double r16312 = r16308 - r16311;
double r16313 = exp(r16312);
double r16314 = r16309 * r16307;
double r16315 = -1.0;
double r16316 = r16315 / r16298;
double r16317 = log(r16316);
double r16318 = r16310 * r16317;
double r16319 = r16314 - r16318;
double r16320 = sin(r16319);
double r16321 = r16313 * r16320;
double r16322 = log(r16298);
double r16323 = r16322 * r16310;
double r16324 = r16323 + r16314;
double r16325 = sin(r16324);
double r16326 = r16313 * r16325;
double r16327 = r16300 ? r16321 : r16326;
return r16327;
}



Bits error versus x.re



Bits error versus x.im



Bits error versus y.re



Bits error versus y.im
Results
if x.re < -5.505681862477526e-309Initial program 31.5
rmApplied add-cbrt-cube36.5
Simplified36.5
Taylor expanded around -inf 20.4
if -5.505681862477526e-309 < x.re Initial program 35.6
Taylor expanded around inf 24.3
Final simplification22.4
herbie shell --seed 2020027
(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)))))