Average Error: 16.7 → 0.1
Time: 13.0s
Precision: binary64
Cost: 13504
\[\left(J \cdot \left(e^{\ell} - e^{-\ell}\right)\right) \cdot \cos \left(\frac{K}{2}\right) + U \]
\[\cos \left(\frac{K}{2}\right) \cdot \left(J \cdot \left(2 \cdot \sinh \ell\right)\right) + U \]
(FPCore (J l K U)
 :precision binary64
 (+ (* (* J (- (exp l) (exp (- l)))) (cos (/ K 2.0))) U))
(FPCore (J l K U)
 :precision binary64
 (+ (* (cos (/ K 2.0)) (* J (* 2.0 (sinh l)))) U))
double code(double J, double l, double K, double U) {
	return ((J * (exp(l) - exp(-l))) * cos((K / 2.0))) + U;
}
double code(double J, double l, double K, double U) {
	return (cos((K / 2.0)) * (J * (2.0 * sinh(l)))) + U;
}
real(8) function code(j, l, k, u)
    real(8), intent (in) :: j
    real(8), intent (in) :: l
    real(8), intent (in) :: k
    real(8), intent (in) :: u
    code = ((j * (exp(l) - exp(-l))) * cos((k / 2.0d0))) + u
end function
real(8) function code(j, l, k, u)
    real(8), intent (in) :: j
    real(8), intent (in) :: l
    real(8), intent (in) :: k
    real(8), intent (in) :: u
    code = (cos((k / 2.0d0)) * (j * (2.0d0 * sinh(l)))) + u
end function
public static double code(double J, double l, double K, double U) {
	return ((J * (Math.exp(l) - Math.exp(-l))) * Math.cos((K / 2.0))) + U;
}
public static double code(double J, double l, double K, double U) {
	return (Math.cos((K / 2.0)) * (J * (2.0 * Math.sinh(l)))) + U;
}
def code(J, l, K, U):
	return ((J * (math.exp(l) - math.exp(-l))) * math.cos((K / 2.0))) + U
def code(J, l, K, U):
	return (math.cos((K / 2.0)) * (J * (2.0 * math.sinh(l)))) + U
function code(J, l, K, U)
	return Float64(Float64(Float64(J * Float64(exp(l) - exp(Float64(-l)))) * cos(Float64(K / 2.0))) + U)
end
function code(J, l, K, U)
	return Float64(Float64(cos(Float64(K / 2.0)) * Float64(J * Float64(2.0 * sinh(l)))) + U)
end
function tmp = code(J, l, K, U)
	tmp = ((J * (exp(l) - exp(-l))) * cos((K / 2.0))) + U;
end
function tmp = code(J, l, K, U)
	tmp = (cos((K / 2.0)) * (J * (2.0 * sinh(l)))) + U;
end
code[J_, l_, K_, U_] := N[(N[(N[(J * N[(N[Exp[l], $MachinePrecision] - N[Exp[(-l)], $MachinePrecision]), $MachinePrecision]), $MachinePrecision] * N[Cos[N[(K / 2.0), $MachinePrecision]], $MachinePrecision]), $MachinePrecision] + U), $MachinePrecision]
code[J_, l_, K_, U_] := N[(N[(N[Cos[N[(K / 2.0), $MachinePrecision]], $MachinePrecision] * N[(J * N[(2.0 * N[Sinh[l], $MachinePrecision]), $MachinePrecision]), $MachinePrecision]), $MachinePrecision] + U), $MachinePrecision]
\left(J \cdot \left(e^{\ell} - e^{-\ell}\right)\right) \cdot \cos \left(\frac{K}{2}\right) + U
\cos \left(\frac{K}{2}\right) \cdot \left(J \cdot \left(2 \cdot \sinh \ell\right)\right) + U

Error

Try it out

Your Program's Arguments

Results

Enter valid numbers for all inputs

Derivation

  1. Initial program 16.7

    \[\left(J \cdot \left(e^{\ell} - e^{-\ell}\right)\right) \cdot \cos \left(\frac{K}{2}\right) + U \]
  2. Applied egg-rr0.1

    \[\leadsto \left(J \cdot \color{blue}{\left(2 \cdot \sinh \ell\right)}\right) \cdot \cos \left(\frac{K}{2}\right) + U \]
  3. Final simplification0.1

    \[\leadsto \cos \left(\frac{K}{2}\right) \cdot \left(J \cdot \left(2 \cdot \sinh \ell\right)\right) + U \]

Alternatives

Alternative 1
Error0.5
Cost7488
\[U + \left(\left(J \cdot \ell\right) \cdot \left(2 + 0.3333333333333333 \cdot \left(\ell \cdot \ell\right)\right)\right) \cdot \cos \left(K \cdot 0.5\right) \]
Alternative 2
Error9.1
Cost7108
\[\begin{array}{l} \mathbf{if}\;J \leq -1.5741343101890726 \cdot 10^{+226}:\\ \;\;\;\;\ell \cdot \left(J \cdot \left(2 \cdot \cos \left(K \cdot 0.5\right)\right)\right)\\ \mathbf{else}:\\ \;\;\;\;U + J \cdot \left(2 \cdot \sinh \ell\right)\\ \end{array} \]
Alternative 3
Error0.7
Cost7104
\[U + 2 \cdot \left(J \cdot \left(\ell \cdot \cos \left(K \cdot 0.5\right)\right)\right) \]
Alternative 4
Error0.7
Cost7104
\[U + 2 \cdot \left(\ell \cdot \left(J \cdot \cos \left(K \cdot 0.5\right)\right)\right) \]
Alternative 5
Error8.8
Cost6848
\[U + J \cdot \left(2 \cdot \sinh \ell\right) \]
Alternative 6
Error9.0
Cost1088
\[U + \left(\ell \cdot \left(J \cdot 2\right) + 0.3333333333333333 \cdot \left(\left(J \cdot \ell\right) \cdot \left(\ell \cdot \ell\right)\right)\right) \]
Alternative 7
Error9.0
Cost832
\[U + \left(J \cdot \ell\right) \cdot \left(2 + 0.3333333333333333 \cdot \left(\ell \cdot \ell\right)\right) \]
Alternative 8
Error18.3
Cost584
\[\begin{array}{l} t_0 := 2 \cdot \left(J \cdot \ell\right)\\ \mathbf{if}\;J \leq -3.635343420646397 \cdot 10^{+187}:\\ \;\;\;\;t_0\\ \mathbf{elif}\;J \leq 2.637314754973866 \cdot 10^{+175}:\\ \;\;\;\;U\\ \mathbf{else}:\\ \;\;\;\;t_0\\ \end{array} \]
Alternative 9
Error9.1
Cost448
\[U + J \cdot \left(2 \cdot \ell\right) \]
Alternative 10
Error17.9
Cost64
\[U \]

Error

Reproduce

herbie shell --seed 2022306 
(FPCore (J l K U)
  :name "Maksimov and Kolovsky, Equation (4)"
  :precision binary64
  (+ (* (* J (- (exp l) (exp (- l)))) (cos (/ K 2.0))) U))