\frac{\left(-b_2\right) + \sqrt{b_2 \cdot b_2 - a \cdot c}}{a}\begin{array}{l}
\mathbf{if}\;b_2 \le -1.063633977705377 \cdot 10^{147}:\\
\;\;\;\;\frac{1}{2} \cdot \frac{c}{b_2} - 2 \cdot \frac{b_2}{a}\\
\mathbf{elif}\;b_2 \le 1.26883362658816239 \cdot 10^{-51}:\\
\;\;\;\;\frac{\left(-b_2\right) + \sqrt{b_2 \cdot b_2 - a \cdot c}}{a}\\
\mathbf{else}:\\
\;\;\;\;\frac{-1}{2} \cdot \frac{c}{b_2}\\
\end{array}double code(double a, double b_2, double c) {
return ((double) (((double) (((double) -(b_2)) + ((double) sqrt(((double) (((double) (b_2 * b_2)) - ((double) (a * c)))))))) / a));
}
double code(double a, double b_2, double c) {
double VAR;
if ((b_2 <= -1.063633977705377e+147)) {
VAR = ((double) (((double) (0.5 * ((double) (c / b_2)))) - ((double) (2.0 * ((double) (b_2 / a))))));
} else {
double VAR_1;
if ((b_2 <= 1.2688336265881624e-51)) {
VAR_1 = ((double) (((double) (((double) -(b_2)) + ((double) sqrt(((double) (((double) (b_2 * b_2)) - ((double) (a * c)))))))) / a));
} else {
VAR_1 = ((double) (-0.5 * ((double) (c / b_2))));
}
VAR = VAR_1;
}
return VAR;
}



Bits error versus a



Bits error versus b_2



Bits error versus c
Results
if b_2 < -1.063633977705377e+147Initial program 61.3
Taylor expanded around -inf 2.6
if -1.063633977705377e+147 < b_2 < 1.2688336265881624e-51Initial program 13.3
rmApplied clear-num13.5
rmApplied clear-num13.4
Applied remove-double-div13.3
if 1.2688336265881624e-51 < b_2 Initial program 53.1
Taylor expanded around inf 8.8
Final simplification10.5
herbie shell --seed 2020113 +o rules:numerics
(FPCore (a b_2 c)
:name "quad2p (problem 3.2.1, positive)"
:precision binary64
(/ (+ (- b_2) (sqrt (- (* b_2 b_2) (* a c)))) a))