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)\left(\left(\sqrt[3]{\sin \left(\mathsf{fma}\left(\log \left(\mathsf{hypot}\left(x.re, x.im\right)\right), y.im, \tan^{-1}_* \frac{x.im}{x.re} \cdot y.re\right)\right)} \cdot \sqrt[3]{\sin \left(\mathsf{fma}\left(\log \left(\mathsf{hypot}\left(x.re, x.im\right)\right), y.im, \tan^{-1}_* \frac{x.im}{x.re} \cdot y.re\right)\right)}\right) \cdot \sqrt[3]{\sin \left(\mathsf{fma}\left(\log \left(\mathsf{hypot}\left(x.re, x.im\right)\right), y.im, \left(\tan^{-1}_* \frac{x.im}{x.re} \cdot \left(\sqrt[3]{y.re} \cdot \sqrt[3]{y.re}\right)\right) \cdot \sqrt[3]{y.re}\right)\right)}\right) \cdot e^{\log \left(\mathsf{hypot}\left(x.re, x.im\right)\right) \cdot y.re - \tan^{-1}_* \frac{x.im}{x.re} \cdot y.im}double f(double x_re, double x_im, double y_re, double y_im) {
double r26361 = x_re;
double r26362 = r26361 * r26361;
double r26363 = x_im;
double r26364 = r26363 * r26363;
double r26365 = r26362 + r26364;
double r26366 = sqrt(r26365);
double r26367 = log(r26366);
double r26368 = y_re;
double r26369 = r26367 * r26368;
double r26370 = atan2(r26363, r26361);
double r26371 = y_im;
double r26372 = r26370 * r26371;
double r26373 = r26369 - r26372;
double r26374 = exp(r26373);
double r26375 = r26367 * r26371;
double r26376 = r26370 * r26368;
double r26377 = r26375 + r26376;
double r26378 = sin(r26377);
double r26379 = r26374 * r26378;
return r26379;
}
double f(double x_re, double x_im, double y_re, double y_im) {
double r26380 = x_re;
double r26381 = x_im;
double r26382 = hypot(r26380, r26381);
double r26383 = log(r26382);
double r26384 = y_im;
double r26385 = atan2(r26381, r26380);
double r26386 = y_re;
double r26387 = r26385 * r26386;
double r26388 = fma(r26383, r26384, r26387);
double r26389 = sin(r26388);
double r26390 = cbrt(r26389);
double r26391 = r26390 * r26390;
double r26392 = cbrt(r26386);
double r26393 = r26392 * r26392;
double r26394 = r26385 * r26393;
double r26395 = r26394 * r26392;
double r26396 = fma(r26383, r26384, r26395);
double r26397 = sin(r26396);
double r26398 = cbrt(r26397);
double r26399 = r26391 * r26398;
double r26400 = r26383 * r26386;
double r26401 = r26385 * r26384;
double r26402 = r26400 - r26401;
double r26403 = exp(r26402);
double r26404 = r26399 * r26403;
return r26404;
}



Bits error versus x.re



Bits error versus x.im



Bits error versus y.re



Bits error versus y.im
Initial program 33.4
Simplified8.4
rmApplied add-exp-log8.4
Applied pow-exp8.4
Applied div-exp3.5
rmApplied add-cube-cbrt3.9
rmApplied add-cube-cbrt4.0
Applied associate-*r*3.9
Final simplification3.9
herbie shell --seed 2019306 +o rules:numerics
(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)))))