\left(\left(-2 \cdot J\right) \cdot \cos \left(\frac{K}{2}\right)\right) \cdot \sqrt{1 + {\left(\frac{U}{\left(2 \cdot J\right) \cdot \cos \left(\frac{K}{2}\right)}\right)}^{2}}
\begin{array}{l}
\mathbf{if}\;U \leq 2.235168568849271 \cdot 10^{+263}:\\
\;\;\;\;\begin{array}{l}
t_0 := \cos \left(\frac{K}{2}\right)\\
\left(\left(-2 \cdot J\right) \cdot t_0\right) \cdot \mathsf{hypot}\left(1, \frac{U}{t_0 \cdot \left(J \cdot 2\right)}\right)
\end{array}\\
\mathbf{else}:\\
\;\;\;\;U\\
\end{array}
(FPCore (J K U) :precision binary64 (* (* (* -2.0 J) (cos (/ K 2.0))) (sqrt (+ 1.0 (pow (/ U (* (* 2.0 J) (cos (/ K 2.0)))) 2.0)))))
(FPCore (J K U)
:precision binary64
(if (<= U 2.235168568849271e+263)
(let* ((t_0 (cos (/ K 2.0))))
(* (* (* -2.0 J) t_0) (hypot 1.0 (/ U (* t_0 (* J 2.0))))))
U))double code(double J, double K, double U) {
return ((-2.0 * J) * cos(K / 2.0)) * sqrt(1.0 + pow((U / ((2.0 * J) * cos(K / 2.0))), 2.0));
}
double code(double J, double K, double U) {
double tmp;
if (U <= 2.235168568849271e+263) {
double t_0_1 = cos(K / 2.0);
tmp = ((-2.0 * J) * t_0_1) * hypot(1.0, (U / (t_0_1 * (J * 2.0))));
} else {
tmp = U;
}
return tmp;
}



Bits error versus J



Bits error versus K



Bits error versus U
Results
if U < 2.2351685688492711e263Initial program 16.8
Simplified7.1
if 2.2351685688492711e263 < U Initial program 44.9
Simplified29.6
Taylor expanded in U around -inf 34.6
Final simplification8.0
herbie shell --seed 2022024
(FPCore (J K U)
:name "Maksimov and Kolovsky, Equation (3)"
:precision binary64
(* (* (* -2.0 J) (cos (/ K 2.0))) (sqrt (+ 1.0 (pow (/ U (* (* 2.0 J) (cos (/ K 2.0)))) 2.0)))))