
(FPCore (x.re x.im y.re y.im) :precision binary64 (+ (* x.re y.im) (* x.im y.re)))
double code(double x_46_re, double x_46_im, double y_46_re, double y_46_im) {
return (x_46_re * y_46_im) + (x_46_im * y_46_re);
}
real(8) function code(x_46re, x_46im, y_46re, y_46im)
real(8), intent (in) :: x_46re
real(8), intent (in) :: x_46im
real(8), intent (in) :: y_46re
real(8), intent (in) :: y_46im
code = (x_46re * y_46im) + (x_46im * y_46re)
end function
public static double code(double x_46_re, double x_46_im, double y_46_re, double y_46_im) {
return (x_46_re * y_46_im) + (x_46_im * y_46_re);
}
def code(x_46_re, x_46_im, y_46_re, y_46_im): return (x_46_re * y_46_im) + (x_46_im * y_46_re)
function code(x_46_re, x_46_im, y_46_re, y_46_im) return Float64(Float64(x_46_re * y_46_im) + Float64(x_46_im * y_46_re)) end
function tmp = code(x_46_re, x_46_im, y_46_re, y_46_im) tmp = (x_46_re * y_46_im) + (x_46_im * y_46_re); end
code[x$46$re_, x$46$im_, y$46$re_, y$46$im_] := N[(N[(x$46$re * y$46$im), $MachinePrecision] + N[(x$46$im * y$46$re), $MachinePrecision]), $MachinePrecision]
\begin{array}{l}
\\
x.re \cdot y.im + x.im \cdot y.re
\end{array}
Sampling outcomes in binary64 precision:
Herbie found 4 alternatives:
| Alternative | Accuracy | Speedup |
|---|
(FPCore (x.re x.im y.re y.im) :precision binary64 (+ (* x.re y.im) (* x.im y.re)))
double code(double x_46_re, double x_46_im, double y_46_re, double y_46_im) {
return (x_46_re * y_46_im) + (x_46_im * y_46_re);
}
real(8) function code(x_46re, x_46im, y_46re, y_46im)
real(8), intent (in) :: x_46re
real(8), intent (in) :: x_46im
real(8), intent (in) :: y_46re
real(8), intent (in) :: y_46im
code = (x_46re * y_46im) + (x_46im * y_46re)
end function
public static double code(double x_46_re, double x_46_im, double y_46_re, double y_46_im) {
return (x_46_re * y_46_im) + (x_46_im * y_46_re);
}
def code(x_46_re, x_46_im, y_46_re, y_46_im): return (x_46_re * y_46_im) + (x_46_im * y_46_re)
function code(x_46_re, x_46_im, y_46_re, y_46_im) return Float64(Float64(x_46_re * y_46_im) + Float64(x_46_im * y_46_re)) end
function tmp = code(x_46_re, x_46_im, y_46_re, y_46_im) tmp = (x_46_re * y_46_im) + (x_46_im * y_46_re); end
code[x$46$re_, x$46$im_, y$46$re_, y$46$im_] := N[(N[(x$46$re * y$46$im), $MachinePrecision] + N[(x$46$im * y$46$re), $MachinePrecision]), $MachinePrecision]
\begin{array}{l}
\\
x.re \cdot y.im + x.im \cdot y.re
\end{array}
(FPCore (x.re x.im y.re y.im) :precision binary64 (fma x.re y.im (* x.im y.re)))
double code(double x_46_re, double x_46_im, double y_46_re, double y_46_im) {
return fma(x_46_re, y_46_im, (x_46_im * y_46_re));
}
function code(x_46_re, x_46_im, y_46_re, y_46_im) return fma(x_46_re, y_46_im, Float64(x_46_im * y_46_re)) end
code[x$46$re_, x$46$im_, y$46$re_, y$46$im_] := N[(x$46$re * y$46$im + N[(x$46$im * y$46$re), $MachinePrecision]), $MachinePrecision]
\begin{array}{l}
\\
\mathsf{fma}\left(x.re, y.im, x.im \cdot y.re\right)
\end{array}
Initial program 100.0%
fma-define100.0%
Simplified100.0%
(FPCore (x.re x.im y.re y.im)
:precision binary64
(if (or (<= (* x.im y.re) -8e+58)
(and (not (<= (* x.im y.re) 4.8e-38))
(or (<= (* x.im y.re) 56000.0)
(not (<= (* x.im y.re) 1.85e+81)))))
(* x.im y.re)
(* x.re y.im)))
double code(double x_46_re, double x_46_im, double y_46_re, double y_46_im) {
double tmp;
if (((x_46_im * y_46_re) <= -8e+58) || (!((x_46_im * y_46_re) <= 4.8e-38) && (((x_46_im * y_46_re) <= 56000.0) || !((x_46_im * y_46_re) <= 1.85e+81)))) {
tmp = x_46_im * y_46_re;
} else {
tmp = x_46_re * y_46_im;
}
return tmp;
}
real(8) function code(x_46re, x_46im, y_46re, y_46im)
real(8), intent (in) :: x_46re
real(8), intent (in) :: x_46im
real(8), intent (in) :: y_46re
real(8), intent (in) :: y_46im
real(8) :: tmp
if (((x_46im * y_46re) <= (-8d+58)) .or. (.not. ((x_46im * y_46re) <= 4.8d-38)) .and. ((x_46im * y_46re) <= 56000.0d0) .or. (.not. ((x_46im * y_46re) <= 1.85d+81))) then
tmp = x_46im * y_46re
else
tmp = x_46re * y_46im
end if
code = tmp
end function
public static double code(double x_46_re, double x_46_im, double y_46_re, double y_46_im) {
double tmp;
if (((x_46_im * y_46_re) <= -8e+58) || (!((x_46_im * y_46_re) <= 4.8e-38) && (((x_46_im * y_46_re) <= 56000.0) || !((x_46_im * y_46_re) <= 1.85e+81)))) {
tmp = x_46_im * y_46_re;
} else {
tmp = x_46_re * y_46_im;
}
return tmp;
}
def code(x_46_re, x_46_im, y_46_re, y_46_im): tmp = 0 if ((x_46_im * y_46_re) <= -8e+58) or (not ((x_46_im * y_46_re) <= 4.8e-38) and (((x_46_im * y_46_re) <= 56000.0) or not ((x_46_im * y_46_re) <= 1.85e+81))): tmp = x_46_im * y_46_re else: tmp = x_46_re * y_46_im return tmp
function code(x_46_re, x_46_im, y_46_re, y_46_im) tmp = 0.0 if ((Float64(x_46_im * y_46_re) <= -8e+58) || (!(Float64(x_46_im * y_46_re) <= 4.8e-38) && ((Float64(x_46_im * y_46_re) <= 56000.0) || !(Float64(x_46_im * y_46_re) <= 1.85e+81)))) tmp = Float64(x_46_im * y_46_re); else tmp = Float64(x_46_re * y_46_im); end return tmp end
function tmp_2 = code(x_46_re, x_46_im, y_46_re, y_46_im) tmp = 0.0; if (((x_46_im * y_46_re) <= -8e+58) || (~(((x_46_im * y_46_re) <= 4.8e-38)) && (((x_46_im * y_46_re) <= 56000.0) || ~(((x_46_im * y_46_re) <= 1.85e+81))))) tmp = x_46_im * y_46_re; else tmp = x_46_re * y_46_im; end tmp_2 = tmp; end
code[x$46$re_, x$46$im_, y$46$re_, y$46$im_] := If[Or[LessEqual[N[(x$46$im * y$46$re), $MachinePrecision], -8e+58], And[N[Not[LessEqual[N[(x$46$im * y$46$re), $MachinePrecision], 4.8e-38]], $MachinePrecision], Or[LessEqual[N[(x$46$im * y$46$re), $MachinePrecision], 56000.0], N[Not[LessEqual[N[(x$46$im * y$46$re), $MachinePrecision], 1.85e+81]], $MachinePrecision]]]], N[(x$46$im * y$46$re), $MachinePrecision], N[(x$46$re * y$46$im), $MachinePrecision]]
\begin{array}{l}
\\
\begin{array}{l}
\mathbf{if}\;x.im \cdot y.re \leq -8 \cdot 10^{+58} \lor \neg \left(x.im \cdot y.re \leq 4.8 \cdot 10^{-38}\right) \land \left(x.im \cdot y.re \leq 56000 \lor \neg \left(x.im \cdot y.re \leq 1.85 \cdot 10^{+81}\right)\right):\\
\;\;\;\;x.im \cdot y.re\\
\mathbf{else}:\\
\;\;\;\;x.re \cdot y.im\\
\end{array}
\end{array}
if (*.f64 x.im y.re) < -7.99999999999999955e58 or 4.80000000000000044e-38 < (*.f64 x.im y.re) < 56000 or 1.85e81 < (*.f64 x.im y.re) Initial program 100.0%
Taylor expanded in x.re around 0 82.3%
if -7.99999999999999955e58 < (*.f64 x.im y.re) < 4.80000000000000044e-38 or 56000 < (*.f64 x.im y.re) < 1.85e81Initial program 100.0%
Taylor expanded in x.re around inf 84.6%
Final simplification83.5%
(FPCore (x.re x.im y.re y.im) :precision binary64 (+ (* x.im y.re) (* x.re y.im)))
double code(double x_46_re, double x_46_im, double y_46_re, double y_46_im) {
return (x_46_im * y_46_re) + (x_46_re * y_46_im);
}
real(8) function code(x_46re, x_46im, y_46re, y_46im)
real(8), intent (in) :: x_46re
real(8), intent (in) :: x_46im
real(8), intent (in) :: y_46re
real(8), intent (in) :: y_46im
code = (x_46im * y_46re) + (x_46re * y_46im)
end function
public static double code(double x_46_re, double x_46_im, double y_46_re, double y_46_im) {
return (x_46_im * y_46_re) + (x_46_re * y_46_im);
}
def code(x_46_re, x_46_im, y_46_re, y_46_im): return (x_46_im * y_46_re) + (x_46_re * y_46_im)
function code(x_46_re, x_46_im, y_46_re, y_46_im) return Float64(Float64(x_46_im * y_46_re) + Float64(x_46_re * y_46_im)) end
function tmp = code(x_46_re, x_46_im, y_46_re, y_46_im) tmp = (x_46_im * y_46_re) + (x_46_re * y_46_im); end
code[x$46$re_, x$46$im_, y$46$re_, y$46$im_] := N[(N[(x$46$im * y$46$re), $MachinePrecision] + N[(x$46$re * y$46$im), $MachinePrecision]), $MachinePrecision]
\begin{array}{l}
\\
x.im \cdot y.re + x.re \cdot y.im
\end{array}
Initial program 100.0%
Final simplification100.0%
(FPCore (x.re x.im y.re y.im) :precision binary64 (* x.im y.re))
double code(double x_46_re, double x_46_im, double y_46_re, double y_46_im) {
return x_46_im * y_46_re;
}
real(8) function code(x_46re, x_46im, y_46re, y_46im)
real(8), intent (in) :: x_46re
real(8), intent (in) :: x_46im
real(8), intent (in) :: y_46re
real(8), intent (in) :: y_46im
code = x_46im * y_46re
end function
public static double code(double x_46_re, double x_46_im, double y_46_re, double y_46_im) {
return x_46_im * y_46_re;
}
def code(x_46_re, x_46_im, y_46_re, y_46_im): return x_46_im * y_46_re
function code(x_46_re, x_46_im, y_46_re, y_46_im) return Float64(x_46_im * y_46_re) end
function tmp = code(x_46_re, x_46_im, y_46_re, y_46_im) tmp = x_46_im * y_46_re; end
code[x$46$re_, x$46$im_, y$46$re_, y$46$im_] := N[(x$46$im * y$46$re), $MachinePrecision]
\begin{array}{l}
\\
x.im \cdot y.re
\end{array}
Initial program 100.0%
Taylor expanded in x.re around 0 51.9%
herbie shell --seed 2024101
(FPCore (x.re x.im y.re y.im)
:name "_multiplyComplex, imaginary part"
:precision binary64
(+ (* x.re y.im) (* x.im y.re)))