\frac{\log \left(\sqrt{re \cdot re + im \cdot im}\right) \cdot \log base + \tan^{-1}_* \frac{im}{re} \cdot 0}{\log base \cdot \log base + 0 \cdot 0}\begin{array}{l}
\mathbf{if}\;re \leq -1.4992729020066265 \cdot 10^{+105}:\\
\;\;\;\;\frac{\log 1 - \log \left(\frac{-1}{re}\right)}{\log base}\\
\mathbf{elif}\;re \leq 1.7435253549818522 \cdot 10^{-250}:\\
\;\;\;\;\left(\log base \cdot \log \left(\sqrt{re \cdot re + im \cdot im}\right) + \tan^{-1}_* \frac{im}{re} \cdot 0\right) \cdot \frac{1}{{\left(\log base\right)}^{2} + 0 \cdot 0}\\
\mathbf{elif}\;re \leq 3.212414840868755 \cdot 10^{-166}:\\
\;\;\;\;\frac{\log 1 + \log im}{\log base}\\
\mathbf{elif}\;re \leq 5.451000501311567 \cdot 10^{+130}:\\
\;\;\;\;\frac{\log base \cdot \log \left(\sqrt{re \cdot re + im \cdot im}\right) + \tan^{-1}_* \frac{im}{re} \cdot 0}{0 \cdot 0 + \left(\log base \cdot \log \left(\sqrt[3]{base}\right) + 2 \cdot \left(\log base \cdot \log \left(\sqrt[3]{base}\right)\right)\right)}\\
\mathbf{else}:\\
\;\;\;\;\frac{\tan^{-1}_* \frac{im}{re} \cdot 0 + \log base \cdot \log re}{0 \cdot 0 + \log base \cdot \log base}\\
\end{array}(FPCore (re im base) :precision binary64 (/ (+ (* (log (sqrt (+ (* re re) (* im im)))) (log base)) (* (atan2 im re) 0.0)) (+ (* (log base) (log base)) (* 0.0 0.0))))
(FPCore (re im base)
:precision binary64
(if (<= re -1.4992729020066265e+105)
(/ (- (log 1.0) (log (/ -1.0 re))) (log base))
(if (<= re 1.7435253549818522e-250)
(*
(+
(* (log base) (log (sqrt (+ (* re re) (* im im)))))
(* (atan2 im re) 0.0))
(/ 1.0 (+ (pow (log base) 2.0) (* 0.0 0.0))))
(if (<= re 3.212414840868755e-166)
(/ (+ (log 1.0) (log im)) (log base))
(if (<= re 5.451000501311567e+130)
(/
(+
(* (log base) (log (sqrt (+ (* re re) (* im im)))))
(* (atan2 im re) 0.0))
(+
(* 0.0 0.0)
(+
(* (log base) (log (cbrt base)))
(* 2.0 (* (log base) (log (cbrt base)))))))
(/
(+ (* (atan2 im re) 0.0) (* (log base) (log re)))
(+ (* 0.0 0.0) (* (log base) (log base)))))))))double code(double re, double im, double base) {
return (((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 tmp;
if ((re <= -1.4992729020066265e+105)) {
tmp = (((double) (((double) log(1.0)) - ((double) log((-1.0 / re))))) / ((double) log(base)));
} else {
double tmp_1;
if ((re <= 1.7435253549818522e-250)) {
tmp_1 = ((double) (((double) (((double) (((double) log(base)) * ((double) log(((double) sqrt(((double) (((double) (re * re)) + ((double) (im * im)))))))))) + ((double) (((double) atan2(im, re)) * 0.0)))) * (1.0 / ((double) (((double) pow(((double) log(base)), 2.0)) + ((double) (0.0 * 0.0)))))));
} else {
double tmp_2;
if ((re <= 3.212414840868755e-166)) {
tmp_2 = (((double) (((double) log(1.0)) + ((double) log(im)))) / ((double) log(base)));
} else {
double tmp_3;
if ((re <= 5.451000501311567e+130)) {
tmp_3 = (((double) (((double) (((double) log(base)) * ((double) log(((double) sqrt(((double) (((double) (re * re)) + ((double) (im * im)))))))))) + ((double) (((double) atan2(im, re)) * 0.0)))) / ((double) (((double) (0.0 * 0.0)) + ((double) (((double) (((double) log(base)) * ((double) log(((double) cbrt(base)))))) + ((double) (2.0 * ((double) (((double) log(base)) * ((double) log(((double) cbrt(base)))))))))))));
} else {
tmp_3 = (((double) (((double) (((double) atan2(im, re)) * 0.0)) + ((double) (((double) log(base)) * ((double) log(re)))))) / ((double) (((double) (0.0 * 0.0)) + ((double) (((double) log(base)) * ((double) log(base)))))));
}
tmp_2 = tmp_3;
}
tmp_1 = tmp_2;
}
tmp = tmp_1;
}
return tmp;
}



Bits error versus re



Bits error versus im



Bits error versus base
Results
if re < -1.49927290200662647e105Initial program Error: 52.1 bits
Taylor expanded around -inf Error: 64.0 bits
SimplifiedError: 8.3 bits
if -1.49927290200662647e105 < re < 1.7435253549818522e-250Initial program Error: 22.7 bits
rmApplied div-invError: 22.8 bits
SimplifiedError: 22.8 bits
if 1.7435253549818522e-250 < re < 3.21241484086875527e-166Initial program Error: 32.8 bits
Taylor expanded around 0 Error: 35.8 bits
SimplifiedError: 35.8 bits
if 3.21241484086875527e-166 < re < 5.45100050131156667e130Initial program Error: 15.8 bits
rmApplied add-cube-cbrtError: 15.8 bits
Applied log-prodError: 15.8 bits
Applied distribute-lft-inError: 15.9 bits
SimplifiedError: 15.9 bits
if 5.45100050131156667e130 < re Initial program Error: 57.5 bits
Taylor expanded around inf Error: 7.1 bits
Final simplificationError: 17.2 bits
herbie shell --seed 2020203
(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))))