\left(J \cdot \left(e^{\ell} - e^{-\ell}\right)\right) \cdot \cos \left(\frac{K}{2}\right) + U\mathsf{fma}\left(J \cdot \mathsf{fma}\left(\frac{1}{3}, {\ell}^{3}, \mathsf{fma}\left(\frac{1}{60}, {\ell}^{5}, 2 \cdot \ell\right)\right), \cos \left(\frac{K}{2}\right), U\right)double code(double J, double l, double K, double U) {
return ((double) (((double) (((double) (J * ((double) (((double) exp(l)) - ((double) exp(((double) -(l)))))))) * ((double) cos(((double) (K / 2.0)))))) + U));
}
double code(double J, double l, double K, double U) {
return ((double) fma(((double) (J * ((double) fma(0.3333333333333333, ((double) pow(l, 3.0)), ((double) fma(0.016666666666666666, ((double) pow(l, 5.0)), ((double) (2.0 * l)))))))), ((double) cos(((double) (K / 2.0)))), U));
}



Bits error versus J



Bits error versus l



Bits error versus K



Bits error versus U
Results
Initial program 17.8
Simplified17.8
Taylor expanded around 0 0.3
Simplified0.3
Final simplification0.3
herbie shell --seed 2020121 +o rules:numerics
(FPCore (J l K U)
:name "Maksimov and Kolovsky, Equation (4)"
:precision binary64
(+ (* (* J (- (exp l) (exp (- l)))) (cos (/ K 2))) U))