\frac{\log \left(\sqrt{re \cdot re + im \cdot im}\right) \cdot \log base + \tan^{-1}_* \frac{im}{re} \cdot 0.0}{\log base \cdot \log base + 0.0 \cdot 0.0}\begin{array}{l}
\mathbf{if}\;re \le -5.1667712960626506 \cdot 10^{-4}:\\
\;\;\;\;\frac{\frac{\log \left(-1 \cdot re\right) \cdot \log base + \tan^{-1}_* \frac{im}{re} \cdot 0.0}{\sqrt{\log base \cdot \log base + 0.0 \cdot 0.0}}}{\sqrt{\log base \cdot \log base + 0.0 \cdot 0.0}}\\
\mathbf{elif}\;re \le 7.68640513136930746 \cdot 10^{-207}:\\
\;\;\;\;\frac{{\left(\log \left(\sqrt{re \cdot re + im \cdot im}\right) \cdot \log base\right)}^{3} + {\left(\tan^{-1}_* \frac{im}{re} \cdot 0.0\right)}^{3}}{\left(\left(\tan^{-1}_* \frac{im}{re} \cdot 0.0\right) \cdot \left(\tan^{-1}_* \frac{im}{re} \cdot 0.0 - \log \left(\sqrt{re \cdot re + im \cdot im}\right) \cdot \log base\right) + \left(\log \left(\sqrt{re \cdot re + im \cdot im}\right) \cdot \log base\right) \cdot \left(\log \left(\sqrt{re \cdot re + im \cdot im}\right) \cdot \log base\right)\right) \cdot \left(\log base \cdot \log base + 0.0 \cdot 0.0\right)}\\
\mathbf{elif}\;re \le 1.2275721563055769 \cdot 10^{-167}:\\
\;\;\;\;\frac{\log re}{0 + \log base}\\
\mathbf{elif}\;re \le 9.30821291972732217 \cdot 10^{120}:\\
\;\;\;\;1 \cdot \frac{\log \left(\sqrt{re \cdot re + im \cdot im}\right) \cdot \log base + \tan^{-1}_* \frac{im}{re} \cdot 0.0}{0.0 \cdot 0.0 + \log base \cdot \left(2 \cdot \log \left(\sqrt[3]{base}\right) + \log \left(\sqrt[3]{base}\right)\right)}\\
\mathbf{else}:\\
\;\;\;\;\frac{\log re}{0 + \log base}\\
\end{array}double code(double re, double im, double base) {
return ((double) (((double) (((double) (((double) log(((double) sqrt(((double) (((double) (re * re)) + ((double) (im * im)))))))) * ((double) log(base)))) + ((double) (((double) atan2(im, re)) * 0.0)))) / ((double) (((double) (((double) log(base)) * ((double) log(base)))) + ((double) (0.0 * 0.0))))));
}
double code(double re, double im, double base) {
double VAR;
if ((re <= -0.0005166771296062651)) {
VAR = ((double) (((double) (((double) (((double) (((double) log(((double) (-1.0 * re)))) * ((double) log(base)))) + ((double) (((double) atan2(im, re)) * 0.0)))) / ((double) sqrt(((double) (((double) (((double) log(base)) * ((double) log(base)))) + ((double) (0.0 * 0.0)))))))) / ((double) sqrt(((double) (((double) (((double) log(base)) * ((double) log(base)))) + ((double) (0.0 * 0.0))))))));
} else {
double VAR_1;
if ((re <= 7.686405131369307e-207)) {
VAR_1 = ((double) (((double) (((double) pow(((double) (((double) log(((double) sqrt(((double) (((double) (re * re)) + ((double) (im * im)))))))) * ((double) log(base)))), 3.0)) + ((double) pow(((double) (((double) atan2(im, re)) * 0.0)), 3.0)))) / ((double) (((double) (((double) (((double) (((double) atan2(im, re)) * 0.0)) * ((double) (((double) (((double) atan2(im, re)) * 0.0)) - ((double) (((double) log(((double) sqrt(((double) (((double) (re * re)) + ((double) (im * im)))))))) * ((double) log(base)))))))) + ((double) (((double) (((double) log(((double) sqrt(((double) (((double) (re * re)) + ((double) (im * im)))))))) * ((double) log(base)))) * ((double) (((double) log(((double) sqrt(((double) (((double) (re * re)) + ((double) (im * im)))))))) * ((double) log(base)))))))) * ((double) (((double) (((double) log(base)) * ((double) log(base)))) + ((double) (0.0 * 0.0))))))));
} else {
double VAR_2;
if ((re <= 1.2275721563055769e-167)) {
VAR_2 = ((double) (((double) log(re)) / ((double) (0.0 + ((double) log(base))))));
} else {
double VAR_3;
if ((re <= 9.308212919727322e+120)) {
VAR_3 = ((double) (1.0 * ((double) (((double) (((double) (((double) log(((double) sqrt(((double) (((double) (re * re)) + ((double) (im * im)))))))) * ((double) log(base)))) + ((double) (((double) atan2(im, re)) * 0.0)))) / ((double) (((double) (0.0 * 0.0)) + ((double) (((double) log(base)) * ((double) (((double) (2.0 * ((double) log(((double) cbrt(base)))))) + ((double) log(((double) cbrt(base))))))))))))));
} else {
VAR_3 = ((double) (((double) log(re)) / ((double) (0.0 + ((double) log(base))))));
}
VAR_2 = VAR_3;
}
VAR_1 = VAR_2;
}
VAR = VAR_1;
}
return VAR;
}



Bits error versus re



Bits error versus im



Bits error versus base
Results
if re < -5.1667712960626506e-4Initial program 39.4
rmApplied add-sqr-sqrt39.4
Applied associate-/r*39.4
Taylor expanded around -inf 13.6
if -5.1667712960626506e-4 < re < 7.68640513136930746e-207Initial program 25.0
rmApplied flip3-+25.1
Applied associate-/l/25.1
Simplified25.1
if 7.68640513136930746e-207 < re < 1.2275721563055769e-167 or 9.30821291972732217e120 < re Initial program 52.1
Taylor expanded around inf 15.0
Simplified15.0
if 1.2275721563055769e-167 < re < 9.30821291972732217e120Initial program 17.1
rmApplied add-cube-cbrt17.1
Applied log-prod17.2
Applied distribute-lft-in17.2
Simplified17.2
rmApplied *-un-lft-identity17.2
Applied *-un-lft-identity17.2
Applied times-frac17.2
Simplified17.2
Simplified17.2
Final simplification18.5
herbie shell --seed 2020171
(FPCore (re im base)
:name "math.log/2 on complex, real part"
:precision binary64
(/ (+ (* (log (sqrt (+ (* re re) (* im im)))) (log base)) (* (atan2 im re) 0.0)) (+ (* (log base) (log base)) (* 0.0 0.0))))