| Alternative 1 | |
|---|---|
| Accuracy | 98.5% |
| Cost | 585 |
\[\begin{array}{l}
\mathbf{if}\;x \leq -1 \lor \neg \left(x \leq 1\right):\\
\;\;\;\;\frac{-2}{x \cdot x}\\
\mathbf{else}:\\
\;\;\;\;2\\
\end{array}
\]
(FPCore (x) :precision binary64 (- (/ 1.0 (+ x 1.0)) (/ 1.0 (- x 1.0))))
(FPCore (x) :precision binary64 (/ (/ 2.0 (- 1.0 x)) (+ 1.0 x)))
double code(double x) {
return (1.0 / (x + 1.0)) - (1.0 / (x - 1.0));
}
double code(double x) {
return (2.0 / (1.0 - x)) / (1.0 + x);
}
real(8) function code(x)
real(8), intent (in) :: x
code = (1.0d0 / (x + 1.0d0)) - (1.0d0 / (x - 1.0d0))
end function
real(8) function code(x)
real(8), intent (in) :: x
code = (2.0d0 / (1.0d0 - x)) / (1.0d0 + x)
end function
public static double code(double x) {
return (1.0 / (x + 1.0)) - (1.0 / (x - 1.0));
}
public static double code(double x) {
return (2.0 / (1.0 - x)) / (1.0 + x);
}
def code(x): return (1.0 / (x + 1.0)) - (1.0 / (x - 1.0))
def code(x): return (2.0 / (1.0 - x)) / (1.0 + x)
function code(x) return Float64(Float64(1.0 / Float64(x + 1.0)) - Float64(1.0 / Float64(x - 1.0))) end
function code(x) return Float64(Float64(2.0 / Float64(1.0 - x)) / Float64(1.0 + x)) end
function tmp = code(x) tmp = (1.0 / (x + 1.0)) - (1.0 / (x - 1.0)); end
function tmp = code(x) tmp = (2.0 / (1.0 - x)) / (1.0 + x); end
code[x_] := N[(N[(1.0 / N[(x + 1.0), $MachinePrecision]), $MachinePrecision] - N[(1.0 / N[(x - 1.0), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]
code[x_] := N[(N[(2.0 / N[(1.0 - x), $MachinePrecision]), $MachinePrecision] / N[(1.0 + x), $MachinePrecision]), $MachinePrecision]
\frac{1}{x + 1} - \frac{1}{x - 1}
\frac{\frac{2}{1 - x}}{1 + x}
Results
Initial program 77.3%
Applied egg-rr78.3%
Applied egg-rr99.9%
Simplified99.9%
[Start]99.9 | \[ \frac{\left(2 + \left(x - x\right)\right) \cdot \frac{1}{1 - x}}{1 + x}
\] |
|---|---|
associate-*r/ [=>]99.9 | \[ \frac{\color{blue}{\frac{\left(2 + \left(x - x\right)\right) \cdot 1}{1 - x}}}{1 + x}
\] |
+-commutative [=>]99.9 | \[ \frac{\frac{\color{blue}{\left(\left(x - x\right) + 2\right)} \cdot 1}{1 - x}}{1 + x}
\] |
+-inverses [=>]99.9 | \[ \frac{\frac{\left(\color{blue}{0} + 2\right) \cdot 1}{1 - x}}{1 + x}
\] |
metadata-eval [=>]99.9 | \[ \frac{\frac{\color{blue}{2} \cdot 1}{1 - x}}{1 + x}
\] |
metadata-eval [=>]99.9 | \[ \frac{\frac{\color{blue}{2}}{1 - x}}{1 + x}
\] |
Final simplification99.9%
| Alternative 1 | |
|---|---|
| Accuracy | 98.5% |
| Cost | 585 |
| Alternative 2 | |
|---|---|
| Accuracy | 98.9% |
| Cost | 585 |
| Alternative 3 | |
|---|---|
| Accuracy | 99.9% |
| Cost | 576 |
| Alternative 4 | |
|---|---|
| Accuracy | 99.4% |
| Cost | 448 |
| Alternative 5 | |
|---|---|
| Accuracy | 50.7% |
| Cost | 64 |
herbie shell --seed 2023141
(FPCore (x)
:name "Asymptote A"
:precision binary64
(- (/ 1.0 (+ x 1.0)) (/ 1.0 (- x 1.0))))