math.exp on complex, real part

Percentage Accurate: 100.0% → 100.0%
Time: 1.8s
Alternatives: 9
Speedup: 1.0×

Specification

?
\[\begin{array}{l} \\ e^{re} \cdot \cos im \end{array} \]
(FPCore (re im) :precision binary64 (* (exp re) (cos im)))
double code(double re, double im) {
	return exp(re) * cos(im);
}
module fmin_fmax_functions
    implicit none
    private
    public fmax
    public fmin

    interface fmax
        module procedure fmax88
        module procedure fmax44
        module procedure fmax84
        module procedure fmax48
    end interface
    interface fmin
        module procedure fmin88
        module procedure fmin44
        module procedure fmin84
        module procedure fmin48
    end interface
contains
    real(8) function fmax88(x, y) result (res)
        real(8), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(x, max(x, y), y /= y), x /= x)
    end function
    real(4) function fmax44(x, y) result (res)
        real(4), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(y, merge(x, max(x, y), y /= y), x /= x)
    end function
    real(8) function fmax84(x, y) result(res)
        real(8), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(dble(y), merge(x, max(x, dble(y)), y /= y), x /= x)
    end function
    real(8) function fmax48(x, y) result(res)
        real(4), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(dble(x), max(dble(x), y), y /= y), x /= x)
    end function
    real(8) function fmin88(x, y) result (res)
        real(8), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(x, min(x, y), y /= y), x /= x)
    end function
    real(4) function fmin44(x, y) result (res)
        real(4), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(y, merge(x, min(x, y), y /= y), x /= x)
    end function
    real(8) function fmin84(x, y) result(res)
        real(8), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(dble(y), merge(x, min(x, dble(y)), y /= y), x /= x)
    end function
    real(8) function fmin48(x, y) result(res)
        real(4), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(dble(x), min(dble(x), y), y /= y), x /= x)
    end function
end module

real(8) function code(re, im)
use fmin_fmax_functions
    real(8), intent (in) :: re
    real(8), intent (in) :: im
    code = exp(re) * cos(im)
end function
public static double code(double re, double im) {
	return Math.exp(re) * Math.cos(im);
}
def code(re, im):
	return math.exp(re) * math.cos(im)
function code(re, im)
	return Float64(exp(re) * cos(im))
end
function tmp = code(re, im)
	tmp = exp(re) * cos(im);
end
code[re_, im_] := N[(N[Exp[re], $MachinePrecision] * N[Cos[im], $MachinePrecision]), $MachinePrecision]
\begin{array}{l}

\\
e^{re} \cdot \cos im
\end{array}

Local Percentage Accuracy vs ?

The average percentage accuracy by input value. Horizontal axis shows value of an input variable; the variable is choosen in the title. Vertical axis is accuracy; higher is better. Red represent the original program, while blue represents Herbie's suggestion. These can be toggled with buttons below the plot. The line is an average while dots represent individual samples.

Accuracy vs Speed?

Herbie found 9 alternatives:

AlternativeAccuracySpeedup
The accuracy (vertical axis) and speed (horizontal axis) of each alternatives. Up and to the right is better. The red square shows the initial program, and each blue circle shows an alternative.The line shows the best available speed-accuracy tradeoffs.

Initial Program: 100.0% accurate, 1.0× speedup?

\[\begin{array}{l} \\ e^{re} \cdot \cos im \end{array} \]
(FPCore (re im) :precision binary64 (* (exp re) (cos im)))
double code(double re, double im) {
	return exp(re) * cos(im);
}
module fmin_fmax_functions
    implicit none
    private
    public fmax
    public fmin

    interface fmax
        module procedure fmax88
        module procedure fmax44
        module procedure fmax84
        module procedure fmax48
    end interface
    interface fmin
        module procedure fmin88
        module procedure fmin44
        module procedure fmin84
        module procedure fmin48
    end interface
contains
    real(8) function fmax88(x, y) result (res)
        real(8), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(x, max(x, y), y /= y), x /= x)
    end function
    real(4) function fmax44(x, y) result (res)
        real(4), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(y, merge(x, max(x, y), y /= y), x /= x)
    end function
    real(8) function fmax84(x, y) result(res)
        real(8), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(dble(y), merge(x, max(x, dble(y)), y /= y), x /= x)
    end function
    real(8) function fmax48(x, y) result(res)
        real(4), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(dble(x), max(dble(x), y), y /= y), x /= x)
    end function
    real(8) function fmin88(x, y) result (res)
        real(8), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(x, min(x, y), y /= y), x /= x)
    end function
    real(4) function fmin44(x, y) result (res)
        real(4), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(y, merge(x, min(x, y), y /= y), x /= x)
    end function
    real(8) function fmin84(x, y) result(res)
        real(8), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(dble(y), merge(x, min(x, dble(y)), y /= y), x /= x)
    end function
    real(8) function fmin48(x, y) result(res)
        real(4), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(dble(x), min(dble(x), y), y /= y), x /= x)
    end function
end module

real(8) function code(re, im)
use fmin_fmax_functions
    real(8), intent (in) :: re
    real(8), intent (in) :: im
    code = exp(re) * cos(im)
end function
public static double code(double re, double im) {
	return Math.exp(re) * Math.cos(im);
}
def code(re, im):
	return math.exp(re) * math.cos(im)
function code(re, im)
	return Float64(exp(re) * cos(im))
end
function tmp = code(re, im)
	tmp = exp(re) * cos(im);
end
code[re_, im_] := N[(N[Exp[re], $MachinePrecision] * N[Cos[im], $MachinePrecision]), $MachinePrecision]
\begin{array}{l}

\\
e^{re} \cdot \cos im
\end{array}

Alternative 1: 100.0% accurate, 1.0× speedup?

\[\begin{array}{l} \\ e^{re} \cdot \cos im \end{array} \]
(FPCore (re im) :precision binary64 (* (exp re) (cos im)))
double code(double re, double im) {
	return exp(re) * cos(im);
}
module fmin_fmax_functions
    implicit none
    private
    public fmax
    public fmin

    interface fmax
        module procedure fmax88
        module procedure fmax44
        module procedure fmax84
        module procedure fmax48
    end interface
    interface fmin
        module procedure fmin88
        module procedure fmin44
        module procedure fmin84
        module procedure fmin48
    end interface
contains
    real(8) function fmax88(x, y) result (res)
        real(8), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(x, max(x, y), y /= y), x /= x)
    end function
    real(4) function fmax44(x, y) result (res)
        real(4), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(y, merge(x, max(x, y), y /= y), x /= x)
    end function
    real(8) function fmax84(x, y) result(res)
        real(8), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(dble(y), merge(x, max(x, dble(y)), y /= y), x /= x)
    end function
    real(8) function fmax48(x, y) result(res)
        real(4), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(dble(x), max(dble(x), y), y /= y), x /= x)
    end function
    real(8) function fmin88(x, y) result (res)
        real(8), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(x, min(x, y), y /= y), x /= x)
    end function
    real(4) function fmin44(x, y) result (res)
        real(4), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(y, merge(x, min(x, y), y /= y), x /= x)
    end function
    real(8) function fmin84(x, y) result(res)
        real(8), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(dble(y), merge(x, min(x, dble(y)), y /= y), x /= x)
    end function
    real(8) function fmin48(x, y) result(res)
        real(4), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(dble(x), min(dble(x), y), y /= y), x /= x)
    end function
end module

real(8) function code(re, im)
use fmin_fmax_functions
    real(8), intent (in) :: re
    real(8), intent (in) :: im
    code = exp(re) * cos(im)
end function
public static double code(double re, double im) {
	return Math.exp(re) * Math.cos(im);
}
def code(re, im):
	return math.exp(re) * math.cos(im)
function code(re, im)
	return Float64(exp(re) * cos(im))
end
function tmp = code(re, im)
	tmp = exp(re) * cos(im);
end
code[re_, im_] := N[(N[Exp[re], $MachinePrecision] * N[Cos[im], $MachinePrecision]), $MachinePrecision]
\begin{array}{l}

\\
e^{re} \cdot \cos im
\end{array}
Derivation
  1. Initial program 100.0%

    \[e^{re} \cdot \cos im \]
  2. Add Preprocessing

Alternative 2: 99.1% accurate, 0.2× speedup?

\[\begin{array}{l} \\ \begin{array}{l} t_0 := e^{re} \cdot \cos im\\ \mathbf{if}\;t\_0 \leq -\infty:\\ \;\;\;\;e^{re} \cdot \mathsf{fma}\left(im \cdot im, -0.5, 1\right)\\ \mathbf{elif}\;t\_0 \leq -0.01:\\ \;\;\;\;\cos im\\ \mathbf{elif}\;t\_0 \leq 0:\\ \;\;\;\;e^{re}\\ \mathbf{elif}\;t\_0 \leq 0.9999999999999079:\\ \;\;\;\;\frac{\cos im}{1 - re}\\ \mathbf{else}:\\ \;\;\;\;e^{re}\\ \end{array} \end{array} \]
(FPCore (re im)
 :precision binary64
 (let* ((t_0 (* (exp re) (cos im))))
   (if (<= t_0 (- INFINITY))
     (* (exp re) (fma (* im im) -0.5 1.0))
     (if (<= t_0 -0.01)
       (cos im)
       (if (<= t_0 0.0)
         (exp re)
         (if (<= t_0 0.9999999999999079) (/ (cos im) (- 1.0 re)) (exp re)))))))
double code(double re, double im) {
	double t_0 = exp(re) * cos(im);
	double tmp;
	if (t_0 <= -((double) INFINITY)) {
		tmp = exp(re) * fma((im * im), -0.5, 1.0);
	} else if (t_0 <= -0.01) {
		tmp = cos(im);
	} else if (t_0 <= 0.0) {
		tmp = exp(re);
	} else if (t_0 <= 0.9999999999999079) {
		tmp = cos(im) / (1.0 - re);
	} else {
		tmp = exp(re);
	}
	return tmp;
}
function code(re, im)
	t_0 = Float64(exp(re) * cos(im))
	tmp = 0.0
	if (t_0 <= Float64(-Inf))
		tmp = Float64(exp(re) * fma(Float64(im * im), -0.5, 1.0));
	elseif (t_0 <= -0.01)
		tmp = cos(im);
	elseif (t_0 <= 0.0)
		tmp = exp(re);
	elseif (t_0 <= 0.9999999999999079)
		tmp = Float64(cos(im) / Float64(1.0 - re));
	else
		tmp = exp(re);
	end
	return tmp
end
code[re_, im_] := Block[{t$95$0 = N[(N[Exp[re], $MachinePrecision] * N[Cos[im], $MachinePrecision]), $MachinePrecision]}, If[LessEqual[t$95$0, (-Infinity)], N[(N[Exp[re], $MachinePrecision] * N[(N[(im * im), $MachinePrecision] * -0.5 + 1.0), $MachinePrecision]), $MachinePrecision], If[LessEqual[t$95$0, -0.01], N[Cos[im], $MachinePrecision], If[LessEqual[t$95$0, 0.0], N[Exp[re], $MachinePrecision], If[LessEqual[t$95$0, 0.9999999999999079], N[(N[Cos[im], $MachinePrecision] / N[(1.0 - re), $MachinePrecision]), $MachinePrecision], N[Exp[re], $MachinePrecision]]]]]]
\begin{array}{l}

\\
\begin{array}{l}
t_0 := e^{re} \cdot \cos im\\
\mathbf{if}\;t\_0 \leq -\infty:\\
\;\;\;\;e^{re} \cdot \mathsf{fma}\left(im \cdot im, -0.5, 1\right)\\

\mathbf{elif}\;t\_0 \leq -0.01:\\
\;\;\;\;\cos im\\

\mathbf{elif}\;t\_0 \leq 0:\\
\;\;\;\;e^{re}\\

\mathbf{elif}\;t\_0 \leq 0.9999999999999079:\\
\;\;\;\;\frac{\cos im}{1 - re}\\

\mathbf{else}:\\
\;\;\;\;e^{re}\\


\end{array}
\end{array}
Derivation
  1. Split input into 4 regimes
  2. if (*.f64 (exp.f64 re) (cos.f64 im)) < -inf.0

    1. Initial program 100.0%

      \[e^{re} \cdot \cos im \]
    2. Taylor expanded in im around 0

      \[\leadsto e^{re} \cdot \color{blue}{\left(1 + \frac{-1}{2} \cdot {im}^{2}\right)} \]
    3. Step-by-step derivation
      1. lower-+.f64N/A

        \[\leadsto e^{re} \cdot \left(1 + \color{blue}{\frac{-1}{2} \cdot {im}^{2}}\right) \]
      2. lower-*.f64N/A

        \[\leadsto e^{re} \cdot \left(1 + \frac{-1}{2} \cdot \color{blue}{{im}^{2}}\right) \]
      3. lower-pow.f6462.4

        \[\leadsto e^{re} \cdot \left(1 + -0.5 \cdot {im}^{\color{blue}{2}}\right) \]
    4. Applied rewrites62.4%

      \[\leadsto e^{re} \cdot \color{blue}{\left(1 + -0.5 \cdot {im}^{2}\right)} \]
    5. Step-by-step derivation
      1. lift-+.f64N/A

        \[\leadsto e^{re} \cdot \left(1 + \color{blue}{\frac{-1}{2} \cdot {im}^{2}}\right) \]
      2. +-commutativeN/A

        \[\leadsto e^{re} \cdot \left(\frac{-1}{2} \cdot {im}^{2} + \color{blue}{1}\right) \]
      3. lift-*.f64N/A

        \[\leadsto e^{re} \cdot \left(\frac{-1}{2} \cdot {im}^{2} + 1\right) \]
      4. *-commutativeN/A

        \[\leadsto e^{re} \cdot \left({im}^{2} \cdot \frac{-1}{2} + 1\right) \]
      5. lower-fma.f6462.4

        \[\leadsto e^{re} \cdot \mathsf{fma}\left({im}^{2}, \color{blue}{-0.5}, 1\right) \]
      6. lift-pow.f64N/A

        \[\leadsto e^{re} \cdot \mathsf{fma}\left({im}^{2}, \frac{-1}{2}, 1\right) \]
      7. unpow2N/A

        \[\leadsto e^{re} \cdot \mathsf{fma}\left(im \cdot im, \frac{-1}{2}, 1\right) \]
      8. lower-*.f6462.4

        \[\leadsto e^{re} \cdot \mathsf{fma}\left(im \cdot im, -0.5, 1\right) \]
    6. Applied rewrites62.4%

      \[\leadsto e^{re} \cdot \mathsf{fma}\left(im \cdot im, \color{blue}{-0.5}, 1\right) \]

    if -inf.0 < (*.f64 (exp.f64 re) (cos.f64 im)) < -0.0100000000000000002

    1. Initial program 100.0%

      \[e^{re} \cdot \cos im \]
    2. Taylor expanded in re around 0

      \[\leadsto \color{blue}{\cos im} \]
    3. Step-by-step derivation
      1. lower-cos.f6451.2

        \[\leadsto \cos im \]
    4. Applied rewrites51.2%

      \[\leadsto \color{blue}{\cos im} \]

    if -0.0100000000000000002 < (*.f64 (exp.f64 re) (cos.f64 im)) < -0.0 or 0.99999999999990785 < (*.f64 (exp.f64 re) (cos.f64 im))

    1. Initial program 100.0%

      \[e^{re} \cdot \cos im \]
    2. Step-by-step derivation
      1. lift-*.f64N/A

        \[\leadsto \color{blue}{e^{re} \cdot \cos im} \]
      2. *-commutativeN/A

        \[\leadsto \color{blue}{\cos im \cdot e^{re}} \]
      3. lift-exp.f64N/A

        \[\leadsto \cos im \cdot \color{blue}{e^{re}} \]
      4. sinh-+-cosh-revN/A

        \[\leadsto \cos im \cdot \color{blue}{\left(\cosh re + \sinh re\right)} \]
      5. flip-+N/A

        \[\leadsto \cos im \cdot \color{blue}{\frac{\cosh re \cdot \cosh re - \sinh re \cdot \sinh re}{\cosh re - \sinh re}} \]
      6. sinh-coshN/A

        \[\leadsto \cos im \cdot \frac{\color{blue}{1}}{\cosh re - \sinh re} \]
      7. sinh---cosh-revN/A

        \[\leadsto \cos im \cdot \frac{1}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
      8. associate-*r/N/A

        \[\leadsto \color{blue}{\frac{\cos im \cdot 1}{e^{\mathsf{neg}\left(re\right)}}} \]
      9. lift-cos.f64N/A

        \[\leadsto \frac{\color{blue}{\cos im} \cdot 1}{e^{\mathsf{neg}\left(re\right)}} \]
      10. sin-PI/2N/A

        \[\leadsto \frac{\cos im \cdot \color{blue}{\sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}}{e^{\mathsf{neg}\left(re\right)}} \]
      11. lower-/.f64N/A

        \[\leadsto \color{blue}{\frac{\cos im \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}}} \]
      12. lift-cos.f64N/A

        \[\leadsto \frac{\color{blue}{\cos im} \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}} \]
      13. sin-PI/2N/A

        \[\leadsto \frac{\cos im \cdot \color{blue}{1}}{e^{\mathsf{neg}\left(re\right)}} \]
      14. *-commutativeN/A

        \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
      15. lower-*.f64N/A

        \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
      16. lower-exp.f64N/A

        \[\leadsto \frac{1 \cdot \cos im}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
      17. lower-neg.f64100.0

        \[\leadsto \frac{1 \cdot \cos im}{e^{\color{blue}{-re}}} \]
    3. Applied rewrites100.0%

      \[\leadsto \color{blue}{\frac{1 \cdot \cos im}{e^{-re}}} \]
    4. Taylor expanded in im around 0

      \[\leadsto \color{blue}{\frac{1}{e^{\mathsf{neg}\left(re\right)}}} \]
    5. Step-by-step derivation
      1. lower-/.f64N/A

        \[\leadsto \frac{1}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
      2. lower-exp.f64N/A

        \[\leadsto \frac{1}{e^{\mathsf{neg}\left(re\right)}} \]
      3. lower-neg.f6470.6

        \[\leadsto \frac{1}{e^{-re}} \]
    6. Applied rewrites70.6%

      \[\leadsto \color{blue}{\frac{1}{e^{-re}}} \]
    7. Step-by-step derivation
      1. lift-/.f64N/A

        \[\leadsto \frac{1}{\color{blue}{e^{-re}}} \]
      2. lift-exp.f64N/A

        \[\leadsto \frac{1}{e^{-re}} \]
      3. lift-neg.f64N/A

        \[\leadsto \frac{1}{e^{\mathsf{neg}\left(re\right)}} \]
      4. exp-negN/A

        \[\leadsto \frac{1}{\frac{1}{\color{blue}{e^{re}}}} \]
      5. lift-exp.f64N/A

        \[\leadsto \frac{1}{\frac{1}{e^{re}}} \]
      6. remove-double-div70.6

        \[\leadsto e^{re} \]
    8. Applied rewrites70.6%

      \[\leadsto e^{re} \]

    if -0.0 < (*.f64 (exp.f64 re) (cos.f64 im)) < 0.99999999999990785

    1. Initial program 100.0%

      \[e^{re} \cdot \cos im \]
    2. Step-by-step derivation
      1. lift-*.f64N/A

        \[\leadsto \color{blue}{e^{re} \cdot \cos im} \]
      2. *-commutativeN/A

        \[\leadsto \color{blue}{\cos im \cdot e^{re}} \]
      3. lift-exp.f64N/A

        \[\leadsto \cos im \cdot \color{blue}{e^{re}} \]
      4. sinh-+-cosh-revN/A

        \[\leadsto \cos im \cdot \color{blue}{\left(\cosh re + \sinh re\right)} \]
      5. flip-+N/A

        \[\leadsto \cos im \cdot \color{blue}{\frac{\cosh re \cdot \cosh re - \sinh re \cdot \sinh re}{\cosh re - \sinh re}} \]
      6. sinh-coshN/A

        \[\leadsto \cos im \cdot \frac{\color{blue}{1}}{\cosh re - \sinh re} \]
      7. sinh---cosh-revN/A

        \[\leadsto \cos im \cdot \frac{1}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
      8. associate-*r/N/A

        \[\leadsto \color{blue}{\frac{\cos im \cdot 1}{e^{\mathsf{neg}\left(re\right)}}} \]
      9. lift-cos.f64N/A

        \[\leadsto \frac{\color{blue}{\cos im} \cdot 1}{e^{\mathsf{neg}\left(re\right)}} \]
      10. sin-PI/2N/A

        \[\leadsto \frac{\cos im \cdot \color{blue}{\sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}}{e^{\mathsf{neg}\left(re\right)}} \]
      11. lower-/.f64N/A

        \[\leadsto \color{blue}{\frac{\cos im \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}}} \]
      12. lift-cos.f64N/A

        \[\leadsto \frac{\color{blue}{\cos im} \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}} \]
      13. sin-PI/2N/A

        \[\leadsto \frac{\cos im \cdot \color{blue}{1}}{e^{\mathsf{neg}\left(re\right)}} \]
      14. *-commutativeN/A

        \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
      15. lower-*.f64N/A

        \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
      16. lower-exp.f64N/A

        \[\leadsto \frac{1 \cdot \cos im}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
      17. lower-neg.f64100.0

        \[\leadsto \frac{1 \cdot \cos im}{e^{\color{blue}{-re}}} \]
    3. Applied rewrites100.0%

      \[\leadsto \color{blue}{\frac{1 \cdot \cos im}{e^{-re}}} \]
    4. Taylor expanded in re around 0

      \[\leadsto \frac{1 \cdot \cos im}{\color{blue}{1 + -1 \cdot re}} \]
    5. Step-by-step derivation
      1. lower-+.f64N/A

        \[\leadsto \frac{1 \cdot \cos im}{1 + \color{blue}{-1 \cdot re}} \]
      2. lower-*.f6451.9

        \[\leadsto \frac{1 \cdot \cos im}{1 + -1 \cdot \color{blue}{re}} \]
    6. Applied rewrites51.9%

      \[\leadsto \frac{1 \cdot \cos im}{\color{blue}{1 + -1 \cdot re}} \]
    7. Step-by-step derivation
      1. lift-*.f64N/A

        \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{1 + -1 \cdot re} \]
      2. *-lft-identity51.9

        \[\leadsto \frac{\color{blue}{\cos im}}{1 + -1 \cdot re} \]
      3. lift-+.f64N/A

        \[\leadsto \frac{\cos im}{1 + \color{blue}{-1 \cdot re}} \]
      4. lift-*.f64N/A

        \[\leadsto \frac{\cos im}{1 + -1 \cdot \color{blue}{re}} \]
      5. mul-1-negN/A

        \[\leadsto \frac{\cos im}{1 + \left(\mathsf{neg}\left(re\right)\right)} \]
      6. sub-flip-reverseN/A

        \[\leadsto \frac{\cos im}{1 - \color{blue}{re}} \]
      7. lower--.f6451.9

        \[\leadsto \frac{\cos im}{1 - \color{blue}{re}} \]
    8. Applied rewrites51.9%

      \[\leadsto \color{blue}{\frac{\cos im}{1 - re}} \]
  3. Recombined 4 regimes into one program.
  4. Add Preprocessing

Alternative 3: 99.1% accurate, 0.2× speedup?

\[\begin{array}{l} \\ \begin{array}{l} t_0 := e^{re} \cdot \cos im\\ \mathbf{if}\;t\_0 \leq -\infty:\\ \;\;\;\;e^{re} \cdot \mathsf{fma}\left(im \cdot im, -0.5, 1\right)\\ \mathbf{elif}\;t\_0 \leq -0.01:\\ \;\;\;\;\cos im\\ \mathbf{elif}\;t\_0 \leq 0:\\ \;\;\;\;e^{re}\\ \mathbf{elif}\;t\_0 \leq 0.9999999999999079:\\ \;\;\;\;\cos im \cdot \left(re - -1\right)\\ \mathbf{else}:\\ \;\;\;\;e^{re}\\ \end{array} \end{array} \]
(FPCore (re im)
 :precision binary64
 (let* ((t_0 (* (exp re) (cos im))))
   (if (<= t_0 (- INFINITY))
     (* (exp re) (fma (* im im) -0.5 1.0))
     (if (<= t_0 -0.01)
       (cos im)
       (if (<= t_0 0.0)
         (exp re)
         (if (<= t_0 0.9999999999999079)
           (* (cos im) (- re -1.0))
           (exp re)))))))
double code(double re, double im) {
	double t_0 = exp(re) * cos(im);
	double tmp;
	if (t_0 <= -((double) INFINITY)) {
		tmp = exp(re) * fma((im * im), -0.5, 1.0);
	} else if (t_0 <= -0.01) {
		tmp = cos(im);
	} else if (t_0 <= 0.0) {
		tmp = exp(re);
	} else if (t_0 <= 0.9999999999999079) {
		tmp = cos(im) * (re - -1.0);
	} else {
		tmp = exp(re);
	}
	return tmp;
}
function code(re, im)
	t_0 = Float64(exp(re) * cos(im))
	tmp = 0.0
	if (t_0 <= Float64(-Inf))
		tmp = Float64(exp(re) * fma(Float64(im * im), -0.5, 1.0));
	elseif (t_0 <= -0.01)
		tmp = cos(im);
	elseif (t_0 <= 0.0)
		tmp = exp(re);
	elseif (t_0 <= 0.9999999999999079)
		tmp = Float64(cos(im) * Float64(re - -1.0));
	else
		tmp = exp(re);
	end
	return tmp
end
code[re_, im_] := Block[{t$95$0 = N[(N[Exp[re], $MachinePrecision] * N[Cos[im], $MachinePrecision]), $MachinePrecision]}, If[LessEqual[t$95$0, (-Infinity)], N[(N[Exp[re], $MachinePrecision] * N[(N[(im * im), $MachinePrecision] * -0.5 + 1.0), $MachinePrecision]), $MachinePrecision], If[LessEqual[t$95$0, -0.01], N[Cos[im], $MachinePrecision], If[LessEqual[t$95$0, 0.0], N[Exp[re], $MachinePrecision], If[LessEqual[t$95$0, 0.9999999999999079], N[(N[Cos[im], $MachinePrecision] * N[(re - -1.0), $MachinePrecision]), $MachinePrecision], N[Exp[re], $MachinePrecision]]]]]]
\begin{array}{l}

\\
\begin{array}{l}
t_0 := e^{re} \cdot \cos im\\
\mathbf{if}\;t\_0 \leq -\infty:\\
\;\;\;\;e^{re} \cdot \mathsf{fma}\left(im \cdot im, -0.5, 1\right)\\

\mathbf{elif}\;t\_0 \leq -0.01:\\
\;\;\;\;\cos im\\

\mathbf{elif}\;t\_0 \leq 0:\\
\;\;\;\;e^{re}\\

\mathbf{elif}\;t\_0 \leq 0.9999999999999079:\\
\;\;\;\;\cos im \cdot \left(re - -1\right)\\

\mathbf{else}:\\
\;\;\;\;e^{re}\\


\end{array}
\end{array}
Derivation
  1. Split input into 4 regimes
  2. if (*.f64 (exp.f64 re) (cos.f64 im)) < -inf.0

    1. Initial program 100.0%

      \[e^{re} \cdot \cos im \]
    2. Taylor expanded in im around 0

      \[\leadsto e^{re} \cdot \color{blue}{\left(1 + \frac{-1}{2} \cdot {im}^{2}\right)} \]
    3. Step-by-step derivation
      1. lower-+.f64N/A

        \[\leadsto e^{re} \cdot \left(1 + \color{blue}{\frac{-1}{2} \cdot {im}^{2}}\right) \]
      2. lower-*.f64N/A

        \[\leadsto e^{re} \cdot \left(1 + \frac{-1}{2} \cdot \color{blue}{{im}^{2}}\right) \]
      3. lower-pow.f6462.4

        \[\leadsto e^{re} \cdot \left(1 + -0.5 \cdot {im}^{\color{blue}{2}}\right) \]
    4. Applied rewrites62.4%

      \[\leadsto e^{re} \cdot \color{blue}{\left(1 + -0.5 \cdot {im}^{2}\right)} \]
    5. Step-by-step derivation
      1. lift-+.f64N/A

        \[\leadsto e^{re} \cdot \left(1 + \color{blue}{\frac{-1}{2} \cdot {im}^{2}}\right) \]
      2. +-commutativeN/A

        \[\leadsto e^{re} \cdot \left(\frac{-1}{2} \cdot {im}^{2} + \color{blue}{1}\right) \]
      3. lift-*.f64N/A

        \[\leadsto e^{re} \cdot \left(\frac{-1}{2} \cdot {im}^{2} + 1\right) \]
      4. *-commutativeN/A

        \[\leadsto e^{re} \cdot \left({im}^{2} \cdot \frac{-1}{2} + 1\right) \]
      5. lower-fma.f6462.4

        \[\leadsto e^{re} \cdot \mathsf{fma}\left({im}^{2}, \color{blue}{-0.5}, 1\right) \]
      6. lift-pow.f64N/A

        \[\leadsto e^{re} \cdot \mathsf{fma}\left({im}^{2}, \frac{-1}{2}, 1\right) \]
      7. unpow2N/A

        \[\leadsto e^{re} \cdot \mathsf{fma}\left(im \cdot im, \frac{-1}{2}, 1\right) \]
      8. lower-*.f6462.4

        \[\leadsto e^{re} \cdot \mathsf{fma}\left(im \cdot im, -0.5, 1\right) \]
    6. Applied rewrites62.4%

      \[\leadsto e^{re} \cdot \mathsf{fma}\left(im \cdot im, \color{blue}{-0.5}, 1\right) \]

    if -inf.0 < (*.f64 (exp.f64 re) (cos.f64 im)) < -0.0100000000000000002

    1. Initial program 100.0%

      \[e^{re} \cdot \cos im \]
    2. Taylor expanded in re around 0

      \[\leadsto \color{blue}{\cos im} \]
    3. Step-by-step derivation
      1. lower-cos.f6451.2

        \[\leadsto \cos im \]
    4. Applied rewrites51.2%

      \[\leadsto \color{blue}{\cos im} \]

    if -0.0100000000000000002 < (*.f64 (exp.f64 re) (cos.f64 im)) < -0.0 or 0.99999999999990785 < (*.f64 (exp.f64 re) (cos.f64 im))

    1. Initial program 100.0%

      \[e^{re} \cdot \cos im \]
    2. Step-by-step derivation
      1. lift-*.f64N/A

        \[\leadsto \color{blue}{e^{re} \cdot \cos im} \]
      2. *-commutativeN/A

        \[\leadsto \color{blue}{\cos im \cdot e^{re}} \]
      3. lift-exp.f64N/A

        \[\leadsto \cos im \cdot \color{blue}{e^{re}} \]
      4. sinh-+-cosh-revN/A

        \[\leadsto \cos im \cdot \color{blue}{\left(\cosh re + \sinh re\right)} \]
      5. flip-+N/A

        \[\leadsto \cos im \cdot \color{blue}{\frac{\cosh re \cdot \cosh re - \sinh re \cdot \sinh re}{\cosh re - \sinh re}} \]
      6. sinh-coshN/A

        \[\leadsto \cos im \cdot \frac{\color{blue}{1}}{\cosh re - \sinh re} \]
      7. sinh---cosh-revN/A

        \[\leadsto \cos im \cdot \frac{1}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
      8. associate-*r/N/A

        \[\leadsto \color{blue}{\frac{\cos im \cdot 1}{e^{\mathsf{neg}\left(re\right)}}} \]
      9. lift-cos.f64N/A

        \[\leadsto \frac{\color{blue}{\cos im} \cdot 1}{e^{\mathsf{neg}\left(re\right)}} \]
      10. sin-PI/2N/A

        \[\leadsto \frac{\cos im \cdot \color{blue}{\sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}}{e^{\mathsf{neg}\left(re\right)}} \]
      11. lower-/.f64N/A

        \[\leadsto \color{blue}{\frac{\cos im \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}}} \]
      12. lift-cos.f64N/A

        \[\leadsto \frac{\color{blue}{\cos im} \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}} \]
      13. sin-PI/2N/A

        \[\leadsto \frac{\cos im \cdot \color{blue}{1}}{e^{\mathsf{neg}\left(re\right)}} \]
      14. *-commutativeN/A

        \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
      15. lower-*.f64N/A

        \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
      16. lower-exp.f64N/A

        \[\leadsto \frac{1 \cdot \cos im}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
      17. lower-neg.f64100.0

        \[\leadsto \frac{1 \cdot \cos im}{e^{\color{blue}{-re}}} \]
    3. Applied rewrites100.0%

      \[\leadsto \color{blue}{\frac{1 \cdot \cos im}{e^{-re}}} \]
    4. Taylor expanded in im around 0

      \[\leadsto \color{blue}{\frac{1}{e^{\mathsf{neg}\left(re\right)}}} \]
    5. Step-by-step derivation
      1. lower-/.f64N/A

        \[\leadsto \frac{1}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
      2. lower-exp.f64N/A

        \[\leadsto \frac{1}{e^{\mathsf{neg}\left(re\right)}} \]
      3. lower-neg.f6470.6

        \[\leadsto \frac{1}{e^{-re}} \]
    6. Applied rewrites70.6%

      \[\leadsto \color{blue}{\frac{1}{e^{-re}}} \]
    7. Step-by-step derivation
      1. lift-/.f64N/A

        \[\leadsto \frac{1}{\color{blue}{e^{-re}}} \]
      2. lift-exp.f64N/A

        \[\leadsto \frac{1}{e^{-re}} \]
      3. lift-neg.f64N/A

        \[\leadsto \frac{1}{e^{\mathsf{neg}\left(re\right)}} \]
      4. exp-negN/A

        \[\leadsto \frac{1}{\frac{1}{\color{blue}{e^{re}}}} \]
      5. lift-exp.f64N/A

        \[\leadsto \frac{1}{\frac{1}{e^{re}}} \]
      6. remove-double-div70.6

        \[\leadsto e^{re} \]
    8. Applied rewrites70.6%

      \[\leadsto e^{re} \]

    if -0.0 < (*.f64 (exp.f64 re) (cos.f64 im)) < 0.99999999999990785

    1. Initial program 100.0%

      \[e^{re} \cdot \cos im \]
    2. Taylor expanded in re around 0

      \[\leadsto \color{blue}{\left(1 + re\right)} \cdot \cos im \]
    3. Step-by-step derivation
      1. lower-+.f6452.1

        \[\leadsto \left(1 + \color{blue}{re}\right) \cdot \cos im \]
    4. Applied rewrites52.1%

      \[\leadsto \color{blue}{\left(1 + re\right)} \cdot \cos im \]
    5. Step-by-step derivation
      1. lift-*.f64N/A

        \[\leadsto \color{blue}{\left(1 + re\right) \cdot \cos im} \]
      2. *-commutativeN/A

        \[\leadsto \color{blue}{\cos im \cdot \left(1 + re\right)} \]
      3. lower-*.f6452.1

        \[\leadsto \color{blue}{\cos im \cdot \left(1 + re\right)} \]
      4. lift-+.f64N/A

        \[\leadsto \cos im \cdot \left(1 + \color{blue}{re}\right) \]
      5. +-commutativeN/A

        \[\leadsto \cos im \cdot \left(re + \color{blue}{1}\right) \]
      6. add-flipN/A

        \[\leadsto \cos im \cdot \left(re - \color{blue}{\left(\mathsf{neg}\left(1\right)\right)}\right) \]
      7. metadata-evalN/A

        \[\leadsto \cos im \cdot \left(re - -1\right) \]
      8. lower--.f6452.1

        \[\leadsto \cos im \cdot \left(re - \color{blue}{-1}\right) \]
    6. Applied rewrites52.1%

      \[\leadsto \color{blue}{\cos im \cdot \left(re - -1\right)} \]
  3. Recombined 4 regimes into one program.
  4. Add Preprocessing

Alternative 4: 98.5% accurate, 0.2× speedup?

\[\begin{array}{l} \\ \begin{array}{l} t_0 := e^{re} \cdot \cos im\\ \mathbf{if}\;t\_0 \leq -\infty:\\ \;\;\;\;e^{re} \cdot \mathsf{fma}\left(im \cdot im, -0.5, 1\right)\\ \mathbf{elif}\;t\_0 \leq -0.01:\\ \;\;\;\;\cos im\\ \mathbf{elif}\;t\_0 \leq 0:\\ \;\;\;\;e^{re}\\ \mathbf{elif}\;t\_0 \leq 0.998:\\ \;\;\;\;\cos im\\ \mathbf{else}:\\ \;\;\;\;e^{re}\\ \end{array} \end{array} \]
(FPCore (re im)
 :precision binary64
 (let* ((t_0 (* (exp re) (cos im))))
   (if (<= t_0 (- INFINITY))
     (* (exp re) (fma (* im im) -0.5 1.0))
     (if (<= t_0 -0.01)
       (cos im)
       (if (<= t_0 0.0) (exp re) (if (<= t_0 0.998) (cos im) (exp re)))))))
double code(double re, double im) {
	double t_0 = exp(re) * cos(im);
	double tmp;
	if (t_0 <= -((double) INFINITY)) {
		tmp = exp(re) * fma((im * im), -0.5, 1.0);
	} else if (t_0 <= -0.01) {
		tmp = cos(im);
	} else if (t_0 <= 0.0) {
		tmp = exp(re);
	} else if (t_0 <= 0.998) {
		tmp = cos(im);
	} else {
		tmp = exp(re);
	}
	return tmp;
}
function code(re, im)
	t_0 = Float64(exp(re) * cos(im))
	tmp = 0.0
	if (t_0 <= Float64(-Inf))
		tmp = Float64(exp(re) * fma(Float64(im * im), -0.5, 1.0));
	elseif (t_0 <= -0.01)
		tmp = cos(im);
	elseif (t_0 <= 0.0)
		tmp = exp(re);
	elseif (t_0 <= 0.998)
		tmp = cos(im);
	else
		tmp = exp(re);
	end
	return tmp
end
code[re_, im_] := Block[{t$95$0 = N[(N[Exp[re], $MachinePrecision] * N[Cos[im], $MachinePrecision]), $MachinePrecision]}, If[LessEqual[t$95$0, (-Infinity)], N[(N[Exp[re], $MachinePrecision] * N[(N[(im * im), $MachinePrecision] * -0.5 + 1.0), $MachinePrecision]), $MachinePrecision], If[LessEqual[t$95$0, -0.01], N[Cos[im], $MachinePrecision], If[LessEqual[t$95$0, 0.0], N[Exp[re], $MachinePrecision], If[LessEqual[t$95$0, 0.998], N[Cos[im], $MachinePrecision], N[Exp[re], $MachinePrecision]]]]]]
\begin{array}{l}

\\
\begin{array}{l}
t_0 := e^{re} \cdot \cos im\\
\mathbf{if}\;t\_0 \leq -\infty:\\
\;\;\;\;e^{re} \cdot \mathsf{fma}\left(im \cdot im, -0.5, 1\right)\\

\mathbf{elif}\;t\_0 \leq -0.01:\\
\;\;\;\;\cos im\\

\mathbf{elif}\;t\_0 \leq 0:\\
\;\;\;\;e^{re}\\

\mathbf{elif}\;t\_0 \leq 0.998:\\
\;\;\;\;\cos im\\

\mathbf{else}:\\
\;\;\;\;e^{re}\\


\end{array}
\end{array}
Derivation
  1. Split input into 3 regimes
  2. if (*.f64 (exp.f64 re) (cos.f64 im)) < -inf.0

    1. Initial program 100.0%

      \[e^{re} \cdot \cos im \]
    2. Taylor expanded in im around 0

      \[\leadsto e^{re} \cdot \color{blue}{\left(1 + \frac{-1}{2} \cdot {im}^{2}\right)} \]
    3. Step-by-step derivation
      1. lower-+.f64N/A

        \[\leadsto e^{re} \cdot \left(1 + \color{blue}{\frac{-1}{2} \cdot {im}^{2}}\right) \]
      2. lower-*.f64N/A

        \[\leadsto e^{re} \cdot \left(1 + \frac{-1}{2} \cdot \color{blue}{{im}^{2}}\right) \]
      3. lower-pow.f6462.4

        \[\leadsto e^{re} \cdot \left(1 + -0.5 \cdot {im}^{\color{blue}{2}}\right) \]
    4. Applied rewrites62.4%

      \[\leadsto e^{re} \cdot \color{blue}{\left(1 + -0.5 \cdot {im}^{2}\right)} \]
    5. Step-by-step derivation
      1. lift-+.f64N/A

        \[\leadsto e^{re} \cdot \left(1 + \color{blue}{\frac{-1}{2} \cdot {im}^{2}}\right) \]
      2. +-commutativeN/A

        \[\leadsto e^{re} \cdot \left(\frac{-1}{2} \cdot {im}^{2} + \color{blue}{1}\right) \]
      3. lift-*.f64N/A

        \[\leadsto e^{re} \cdot \left(\frac{-1}{2} \cdot {im}^{2} + 1\right) \]
      4. *-commutativeN/A

        \[\leadsto e^{re} \cdot \left({im}^{2} \cdot \frac{-1}{2} + 1\right) \]
      5. lower-fma.f6462.4

        \[\leadsto e^{re} \cdot \mathsf{fma}\left({im}^{2}, \color{blue}{-0.5}, 1\right) \]
      6. lift-pow.f64N/A

        \[\leadsto e^{re} \cdot \mathsf{fma}\left({im}^{2}, \frac{-1}{2}, 1\right) \]
      7. unpow2N/A

        \[\leadsto e^{re} \cdot \mathsf{fma}\left(im \cdot im, \frac{-1}{2}, 1\right) \]
      8. lower-*.f6462.4

        \[\leadsto e^{re} \cdot \mathsf{fma}\left(im \cdot im, -0.5, 1\right) \]
    6. Applied rewrites62.4%

      \[\leadsto e^{re} \cdot \mathsf{fma}\left(im \cdot im, \color{blue}{-0.5}, 1\right) \]

    if -inf.0 < (*.f64 (exp.f64 re) (cos.f64 im)) < -0.0100000000000000002 or -0.0 < (*.f64 (exp.f64 re) (cos.f64 im)) < 0.998

    1. Initial program 100.0%

      \[e^{re} \cdot \cos im \]
    2. Taylor expanded in re around 0

      \[\leadsto \color{blue}{\cos im} \]
    3. Step-by-step derivation
      1. lower-cos.f6451.2

        \[\leadsto \cos im \]
    4. Applied rewrites51.2%

      \[\leadsto \color{blue}{\cos im} \]

    if -0.0100000000000000002 < (*.f64 (exp.f64 re) (cos.f64 im)) < -0.0 or 0.998 < (*.f64 (exp.f64 re) (cos.f64 im))

    1. Initial program 100.0%

      \[e^{re} \cdot \cos im \]
    2. Step-by-step derivation
      1. lift-*.f64N/A

        \[\leadsto \color{blue}{e^{re} \cdot \cos im} \]
      2. *-commutativeN/A

        \[\leadsto \color{blue}{\cos im \cdot e^{re}} \]
      3. lift-exp.f64N/A

        \[\leadsto \cos im \cdot \color{blue}{e^{re}} \]
      4. sinh-+-cosh-revN/A

        \[\leadsto \cos im \cdot \color{blue}{\left(\cosh re + \sinh re\right)} \]
      5. flip-+N/A

        \[\leadsto \cos im \cdot \color{blue}{\frac{\cosh re \cdot \cosh re - \sinh re \cdot \sinh re}{\cosh re - \sinh re}} \]
      6. sinh-coshN/A

        \[\leadsto \cos im \cdot \frac{\color{blue}{1}}{\cosh re - \sinh re} \]
      7. sinh---cosh-revN/A

        \[\leadsto \cos im \cdot \frac{1}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
      8. associate-*r/N/A

        \[\leadsto \color{blue}{\frac{\cos im \cdot 1}{e^{\mathsf{neg}\left(re\right)}}} \]
      9. lift-cos.f64N/A

        \[\leadsto \frac{\color{blue}{\cos im} \cdot 1}{e^{\mathsf{neg}\left(re\right)}} \]
      10. sin-PI/2N/A

        \[\leadsto \frac{\cos im \cdot \color{blue}{\sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}}{e^{\mathsf{neg}\left(re\right)}} \]
      11. lower-/.f64N/A

        \[\leadsto \color{blue}{\frac{\cos im \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}}} \]
      12. lift-cos.f64N/A

        \[\leadsto \frac{\color{blue}{\cos im} \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}} \]
      13. sin-PI/2N/A

        \[\leadsto \frac{\cos im \cdot \color{blue}{1}}{e^{\mathsf{neg}\left(re\right)}} \]
      14. *-commutativeN/A

        \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
      15. lower-*.f64N/A

        \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
      16. lower-exp.f64N/A

        \[\leadsto \frac{1 \cdot \cos im}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
      17. lower-neg.f64100.0

        \[\leadsto \frac{1 \cdot \cos im}{e^{\color{blue}{-re}}} \]
    3. Applied rewrites100.0%

      \[\leadsto \color{blue}{\frac{1 \cdot \cos im}{e^{-re}}} \]
    4. Taylor expanded in im around 0

      \[\leadsto \color{blue}{\frac{1}{e^{\mathsf{neg}\left(re\right)}}} \]
    5. Step-by-step derivation
      1. lower-/.f64N/A

        \[\leadsto \frac{1}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
      2. lower-exp.f64N/A

        \[\leadsto \frac{1}{e^{\mathsf{neg}\left(re\right)}} \]
      3. lower-neg.f6470.6

        \[\leadsto \frac{1}{e^{-re}} \]
    6. Applied rewrites70.6%

      \[\leadsto \color{blue}{\frac{1}{e^{-re}}} \]
    7. Step-by-step derivation
      1. lift-/.f64N/A

        \[\leadsto \frac{1}{\color{blue}{e^{-re}}} \]
      2. lift-exp.f64N/A

        \[\leadsto \frac{1}{e^{-re}} \]
      3. lift-neg.f64N/A

        \[\leadsto \frac{1}{e^{\mathsf{neg}\left(re\right)}} \]
      4. exp-negN/A

        \[\leadsto \frac{1}{\frac{1}{\color{blue}{e^{re}}}} \]
      5. lift-exp.f64N/A

        \[\leadsto \frac{1}{\frac{1}{e^{re}}} \]
      6. remove-double-div70.6

        \[\leadsto e^{re} \]
    8. Applied rewrites70.6%

      \[\leadsto e^{re} \]
  3. Recombined 3 regimes into one program.
  4. Add Preprocessing

Alternative 5: 76.9% accurate, 0.6× speedup?

\[\begin{array}{l} \\ \begin{array}{l} \mathbf{if}\;e^{re} \cdot \cos im \leq -0.01:\\ \;\;\;\;e^{re} \cdot \mathsf{fma}\left(im \cdot im, -0.5, 1\right)\\ \mathbf{else}:\\ \;\;\;\;e^{re}\\ \end{array} \end{array} \]
(FPCore (re im)
 :precision binary64
 (if (<= (* (exp re) (cos im)) -0.01)
   (* (exp re) (fma (* im im) -0.5 1.0))
   (exp re)))
double code(double re, double im) {
	double tmp;
	if ((exp(re) * cos(im)) <= -0.01) {
		tmp = exp(re) * fma((im * im), -0.5, 1.0);
	} else {
		tmp = exp(re);
	}
	return tmp;
}
function code(re, im)
	tmp = 0.0
	if (Float64(exp(re) * cos(im)) <= -0.01)
		tmp = Float64(exp(re) * fma(Float64(im * im), -0.5, 1.0));
	else
		tmp = exp(re);
	end
	return tmp
end
code[re_, im_] := If[LessEqual[N[(N[Exp[re], $MachinePrecision] * N[Cos[im], $MachinePrecision]), $MachinePrecision], -0.01], N[(N[Exp[re], $MachinePrecision] * N[(N[(im * im), $MachinePrecision] * -0.5 + 1.0), $MachinePrecision]), $MachinePrecision], N[Exp[re], $MachinePrecision]]
\begin{array}{l}

\\
\begin{array}{l}
\mathbf{if}\;e^{re} \cdot \cos im \leq -0.01:\\
\;\;\;\;e^{re} \cdot \mathsf{fma}\left(im \cdot im, -0.5, 1\right)\\

\mathbf{else}:\\
\;\;\;\;e^{re}\\


\end{array}
\end{array}
Derivation
  1. Split input into 2 regimes
  2. if (*.f64 (exp.f64 re) (cos.f64 im)) < -0.0100000000000000002

    1. Initial program 100.0%

      \[e^{re} \cdot \cos im \]
    2. Taylor expanded in im around 0

      \[\leadsto e^{re} \cdot \color{blue}{\left(1 + \frac{-1}{2} \cdot {im}^{2}\right)} \]
    3. Step-by-step derivation
      1. lower-+.f64N/A

        \[\leadsto e^{re} \cdot \left(1 + \color{blue}{\frac{-1}{2} \cdot {im}^{2}}\right) \]
      2. lower-*.f64N/A

        \[\leadsto e^{re} \cdot \left(1 + \frac{-1}{2} \cdot \color{blue}{{im}^{2}}\right) \]
      3. lower-pow.f6462.4

        \[\leadsto e^{re} \cdot \left(1 + -0.5 \cdot {im}^{\color{blue}{2}}\right) \]
    4. Applied rewrites62.4%

      \[\leadsto e^{re} \cdot \color{blue}{\left(1 + -0.5 \cdot {im}^{2}\right)} \]
    5. Step-by-step derivation
      1. lift-+.f64N/A

        \[\leadsto e^{re} \cdot \left(1 + \color{blue}{\frac{-1}{2} \cdot {im}^{2}}\right) \]
      2. +-commutativeN/A

        \[\leadsto e^{re} \cdot \left(\frac{-1}{2} \cdot {im}^{2} + \color{blue}{1}\right) \]
      3. lift-*.f64N/A

        \[\leadsto e^{re} \cdot \left(\frac{-1}{2} \cdot {im}^{2} + 1\right) \]
      4. *-commutativeN/A

        \[\leadsto e^{re} \cdot \left({im}^{2} \cdot \frac{-1}{2} + 1\right) \]
      5. lower-fma.f6462.4

        \[\leadsto e^{re} \cdot \mathsf{fma}\left({im}^{2}, \color{blue}{-0.5}, 1\right) \]
      6. lift-pow.f64N/A

        \[\leadsto e^{re} \cdot \mathsf{fma}\left({im}^{2}, \frac{-1}{2}, 1\right) \]
      7. unpow2N/A

        \[\leadsto e^{re} \cdot \mathsf{fma}\left(im \cdot im, \frac{-1}{2}, 1\right) \]
      8. lower-*.f6462.4

        \[\leadsto e^{re} \cdot \mathsf{fma}\left(im \cdot im, -0.5, 1\right) \]
    6. Applied rewrites62.4%

      \[\leadsto e^{re} \cdot \mathsf{fma}\left(im \cdot im, \color{blue}{-0.5}, 1\right) \]

    if -0.0100000000000000002 < (*.f64 (exp.f64 re) (cos.f64 im))

    1. Initial program 100.0%

      \[e^{re} \cdot \cos im \]
    2. Step-by-step derivation
      1. lift-*.f64N/A

        \[\leadsto \color{blue}{e^{re} \cdot \cos im} \]
      2. *-commutativeN/A

        \[\leadsto \color{blue}{\cos im \cdot e^{re}} \]
      3. lift-exp.f64N/A

        \[\leadsto \cos im \cdot \color{blue}{e^{re}} \]
      4. sinh-+-cosh-revN/A

        \[\leadsto \cos im \cdot \color{blue}{\left(\cosh re + \sinh re\right)} \]
      5. flip-+N/A

        \[\leadsto \cos im \cdot \color{blue}{\frac{\cosh re \cdot \cosh re - \sinh re \cdot \sinh re}{\cosh re - \sinh re}} \]
      6. sinh-coshN/A

        \[\leadsto \cos im \cdot \frac{\color{blue}{1}}{\cosh re - \sinh re} \]
      7. sinh---cosh-revN/A

        \[\leadsto \cos im \cdot \frac{1}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
      8. associate-*r/N/A

        \[\leadsto \color{blue}{\frac{\cos im \cdot 1}{e^{\mathsf{neg}\left(re\right)}}} \]
      9. lift-cos.f64N/A

        \[\leadsto \frac{\color{blue}{\cos im} \cdot 1}{e^{\mathsf{neg}\left(re\right)}} \]
      10. sin-PI/2N/A

        \[\leadsto \frac{\cos im \cdot \color{blue}{\sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}}{e^{\mathsf{neg}\left(re\right)}} \]
      11. lower-/.f64N/A

        \[\leadsto \color{blue}{\frac{\cos im \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}}} \]
      12. lift-cos.f64N/A

        \[\leadsto \frac{\color{blue}{\cos im} \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}} \]
      13. sin-PI/2N/A

        \[\leadsto \frac{\cos im \cdot \color{blue}{1}}{e^{\mathsf{neg}\left(re\right)}} \]
      14. *-commutativeN/A

        \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
      15. lower-*.f64N/A

        \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
      16. lower-exp.f64N/A

        \[\leadsto \frac{1 \cdot \cos im}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
      17. lower-neg.f64100.0

        \[\leadsto \frac{1 \cdot \cos im}{e^{\color{blue}{-re}}} \]
    3. Applied rewrites100.0%

      \[\leadsto \color{blue}{\frac{1 \cdot \cos im}{e^{-re}}} \]
    4. Taylor expanded in im around 0

      \[\leadsto \color{blue}{\frac{1}{e^{\mathsf{neg}\left(re\right)}}} \]
    5. Step-by-step derivation
      1. lower-/.f64N/A

        \[\leadsto \frac{1}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
      2. lower-exp.f64N/A

        \[\leadsto \frac{1}{e^{\mathsf{neg}\left(re\right)}} \]
      3. lower-neg.f6470.6

        \[\leadsto \frac{1}{e^{-re}} \]
    6. Applied rewrites70.6%

      \[\leadsto \color{blue}{\frac{1}{e^{-re}}} \]
    7. Step-by-step derivation
      1. lift-/.f64N/A

        \[\leadsto \frac{1}{\color{blue}{e^{-re}}} \]
      2. lift-exp.f64N/A

        \[\leadsto \frac{1}{e^{-re}} \]
      3. lift-neg.f64N/A

        \[\leadsto \frac{1}{e^{\mathsf{neg}\left(re\right)}} \]
      4. exp-negN/A

        \[\leadsto \frac{1}{\frac{1}{\color{blue}{e^{re}}}} \]
      5. lift-exp.f64N/A

        \[\leadsto \frac{1}{\frac{1}{e^{re}}} \]
      6. remove-double-div70.6

        \[\leadsto e^{re} \]
    8. Applied rewrites70.6%

      \[\leadsto e^{re} \]
  3. Recombined 2 regimes into one program.
  4. Add Preprocessing

Alternative 6: 70.6% accurate, 4.1× speedup?

\[\begin{array}{l} \\ e^{re} \end{array} \]
(FPCore (re im) :precision binary64 (exp re))
double code(double re, double im) {
	return exp(re);
}
module fmin_fmax_functions
    implicit none
    private
    public fmax
    public fmin

    interface fmax
        module procedure fmax88
        module procedure fmax44
        module procedure fmax84
        module procedure fmax48
    end interface
    interface fmin
        module procedure fmin88
        module procedure fmin44
        module procedure fmin84
        module procedure fmin48
    end interface
contains
    real(8) function fmax88(x, y) result (res)
        real(8), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(x, max(x, y), y /= y), x /= x)
    end function
    real(4) function fmax44(x, y) result (res)
        real(4), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(y, merge(x, max(x, y), y /= y), x /= x)
    end function
    real(8) function fmax84(x, y) result(res)
        real(8), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(dble(y), merge(x, max(x, dble(y)), y /= y), x /= x)
    end function
    real(8) function fmax48(x, y) result(res)
        real(4), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(dble(x), max(dble(x), y), y /= y), x /= x)
    end function
    real(8) function fmin88(x, y) result (res)
        real(8), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(x, min(x, y), y /= y), x /= x)
    end function
    real(4) function fmin44(x, y) result (res)
        real(4), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(y, merge(x, min(x, y), y /= y), x /= x)
    end function
    real(8) function fmin84(x, y) result(res)
        real(8), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(dble(y), merge(x, min(x, dble(y)), y /= y), x /= x)
    end function
    real(8) function fmin48(x, y) result(res)
        real(4), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(dble(x), min(dble(x), y), y /= y), x /= x)
    end function
end module

real(8) function code(re, im)
use fmin_fmax_functions
    real(8), intent (in) :: re
    real(8), intent (in) :: im
    code = exp(re)
end function
public static double code(double re, double im) {
	return Math.exp(re);
}
def code(re, im):
	return math.exp(re)
function code(re, im)
	return exp(re)
end
function tmp = code(re, im)
	tmp = exp(re);
end
code[re_, im_] := N[Exp[re], $MachinePrecision]
\begin{array}{l}

\\
e^{re}
\end{array}
Derivation
  1. Initial program 100.0%

    \[e^{re} \cdot \cos im \]
  2. Step-by-step derivation
    1. lift-*.f64N/A

      \[\leadsto \color{blue}{e^{re} \cdot \cos im} \]
    2. *-commutativeN/A

      \[\leadsto \color{blue}{\cos im \cdot e^{re}} \]
    3. lift-exp.f64N/A

      \[\leadsto \cos im \cdot \color{blue}{e^{re}} \]
    4. sinh-+-cosh-revN/A

      \[\leadsto \cos im \cdot \color{blue}{\left(\cosh re + \sinh re\right)} \]
    5. flip-+N/A

      \[\leadsto \cos im \cdot \color{blue}{\frac{\cosh re \cdot \cosh re - \sinh re \cdot \sinh re}{\cosh re - \sinh re}} \]
    6. sinh-coshN/A

      \[\leadsto \cos im \cdot \frac{\color{blue}{1}}{\cosh re - \sinh re} \]
    7. sinh---cosh-revN/A

      \[\leadsto \cos im \cdot \frac{1}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
    8. associate-*r/N/A

      \[\leadsto \color{blue}{\frac{\cos im \cdot 1}{e^{\mathsf{neg}\left(re\right)}}} \]
    9. lift-cos.f64N/A

      \[\leadsto \frac{\color{blue}{\cos im} \cdot 1}{e^{\mathsf{neg}\left(re\right)}} \]
    10. sin-PI/2N/A

      \[\leadsto \frac{\cos im \cdot \color{blue}{\sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}}{e^{\mathsf{neg}\left(re\right)}} \]
    11. lower-/.f64N/A

      \[\leadsto \color{blue}{\frac{\cos im \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}}} \]
    12. lift-cos.f64N/A

      \[\leadsto \frac{\color{blue}{\cos im} \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}} \]
    13. sin-PI/2N/A

      \[\leadsto \frac{\cos im \cdot \color{blue}{1}}{e^{\mathsf{neg}\left(re\right)}} \]
    14. *-commutativeN/A

      \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
    15. lower-*.f64N/A

      \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
    16. lower-exp.f64N/A

      \[\leadsto \frac{1 \cdot \cos im}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
    17. lower-neg.f64100.0

      \[\leadsto \frac{1 \cdot \cos im}{e^{\color{blue}{-re}}} \]
  3. Applied rewrites100.0%

    \[\leadsto \color{blue}{\frac{1 \cdot \cos im}{e^{-re}}} \]
  4. Taylor expanded in im around 0

    \[\leadsto \color{blue}{\frac{1}{e^{\mathsf{neg}\left(re\right)}}} \]
  5. Step-by-step derivation
    1. lower-/.f64N/A

      \[\leadsto \frac{1}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
    2. lower-exp.f64N/A

      \[\leadsto \frac{1}{e^{\mathsf{neg}\left(re\right)}} \]
    3. lower-neg.f6470.6

      \[\leadsto \frac{1}{e^{-re}} \]
  6. Applied rewrites70.6%

    \[\leadsto \color{blue}{\frac{1}{e^{-re}}} \]
  7. Step-by-step derivation
    1. lift-/.f64N/A

      \[\leadsto \frac{1}{\color{blue}{e^{-re}}} \]
    2. lift-exp.f64N/A

      \[\leadsto \frac{1}{e^{-re}} \]
    3. lift-neg.f64N/A

      \[\leadsto \frac{1}{e^{\mathsf{neg}\left(re\right)}} \]
    4. exp-negN/A

      \[\leadsto \frac{1}{\frac{1}{\color{blue}{e^{re}}}} \]
    5. lift-exp.f64N/A

      \[\leadsto \frac{1}{\frac{1}{e^{re}}} \]
    6. remove-double-div70.6

      \[\leadsto e^{re} \]
  8. Applied rewrites70.6%

    \[\leadsto e^{re} \]
  9. Add Preprocessing

Alternative 7: 28.9% accurate, 6.6× speedup?

\[\begin{array}{l} \\ \frac{1}{1 - re} \end{array} \]
(FPCore (re im) :precision binary64 (/ 1.0 (- 1.0 re)))
double code(double re, double im) {
	return 1.0 / (1.0 - re);
}
module fmin_fmax_functions
    implicit none
    private
    public fmax
    public fmin

    interface fmax
        module procedure fmax88
        module procedure fmax44
        module procedure fmax84
        module procedure fmax48
    end interface
    interface fmin
        module procedure fmin88
        module procedure fmin44
        module procedure fmin84
        module procedure fmin48
    end interface
contains
    real(8) function fmax88(x, y) result (res)
        real(8), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(x, max(x, y), y /= y), x /= x)
    end function
    real(4) function fmax44(x, y) result (res)
        real(4), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(y, merge(x, max(x, y), y /= y), x /= x)
    end function
    real(8) function fmax84(x, y) result(res)
        real(8), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(dble(y), merge(x, max(x, dble(y)), y /= y), x /= x)
    end function
    real(8) function fmax48(x, y) result(res)
        real(4), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(dble(x), max(dble(x), y), y /= y), x /= x)
    end function
    real(8) function fmin88(x, y) result (res)
        real(8), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(x, min(x, y), y /= y), x /= x)
    end function
    real(4) function fmin44(x, y) result (res)
        real(4), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(y, merge(x, min(x, y), y /= y), x /= x)
    end function
    real(8) function fmin84(x, y) result(res)
        real(8), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(dble(y), merge(x, min(x, dble(y)), y /= y), x /= x)
    end function
    real(8) function fmin48(x, y) result(res)
        real(4), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(dble(x), min(dble(x), y), y /= y), x /= x)
    end function
end module

real(8) function code(re, im)
use fmin_fmax_functions
    real(8), intent (in) :: re
    real(8), intent (in) :: im
    code = 1.0d0 / (1.0d0 - re)
end function
public static double code(double re, double im) {
	return 1.0 / (1.0 - re);
}
def code(re, im):
	return 1.0 / (1.0 - re)
function code(re, im)
	return Float64(1.0 / Float64(1.0 - re))
end
function tmp = code(re, im)
	tmp = 1.0 / (1.0 - re);
end
code[re_, im_] := N[(1.0 / N[(1.0 - re), $MachinePrecision]), $MachinePrecision]
\begin{array}{l}

\\
\frac{1}{1 - re}
\end{array}
Derivation
  1. Initial program 100.0%

    \[e^{re} \cdot \cos im \]
  2. Step-by-step derivation
    1. lift-*.f64N/A

      \[\leadsto \color{blue}{e^{re} \cdot \cos im} \]
    2. *-commutativeN/A

      \[\leadsto \color{blue}{\cos im \cdot e^{re}} \]
    3. lift-exp.f64N/A

      \[\leadsto \cos im \cdot \color{blue}{e^{re}} \]
    4. sinh-+-cosh-revN/A

      \[\leadsto \cos im \cdot \color{blue}{\left(\cosh re + \sinh re\right)} \]
    5. flip-+N/A

      \[\leadsto \cos im \cdot \color{blue}{\frac{\cosh re \cdot \cosh re - \sinh re \cdot \sinh re}{\cosh re - \sinh re}} \]
    6. sinh-coshN/A

      \[\leadsto \cos im \cdot \frac{\color{blue}{1}}{\cosh re - \sinh re} \]
    7. sinh---cosh-revN/A

      \[\leadsto \cos im \cdot \frac{1}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
    8. associate-*r/N/A

      \[\leadsto \color{blue}{\frac{\cos im \cdot 1}{e^{\mathsf{neg}\left(re\right)}}} \]
    9. lift-cos.f64N/A

      \[\leadsto \frac{\color{blue}{\cos im} \cdot 1}{e^{\mathsf{neg}\left(re\right)}} \]
    10. sin-PI/2N/A

      \[\leadsto \frac{\cos im \cdot \color{blue}{\sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}}{e^{\mathsf{neg}\left(re\right)}} \]
    11. lower-/.f64N/A

      \[\leadsto \color{blue}{\frac{\cos im \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}}} \]
    12. lift-cos.f64N/A

      \[\leadsto \frac{\color{blue}{\cos im} \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}} \]
    13. sin-PI/2N/A

      \[\leadsto \frac{\cos im \cdot \color{blue}{1}}{e^{\mathsf{neg}\left(re\right)}} \]
    14. *-commutativeN/A

      \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
    15. lower-*.f64N/A

      \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
    16. lower-exp.f64N/A

      \[\leadsto \frac{1 \cdot \cos im}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
    17. lower-neg.f64100.0

      \[\leadsto \frac{1 \cdot \cos im}{e^{\color{blue}{-re}}} \]
  3. Applied rewrites100.0%

    \[\leadsto \color{blue}{\frac{1 \cdot \cos im}{e^{-re}}} \]
  4. Taylor expanded in im around 0

    \[\leadsto \color{blue}{\frac{1}{e^{\mathsf{neg}\left(re\right)}}} \]
  5. Step-by-step derivation
    1. lower-/.f64N/A

      \[\leadsto \frac{1}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
    2. lower-exp.f64N/A

      \[\leadsto \frac{1}{e^{\mathsf{neg}\left(re\right)}} \]
    3. lower-neg.f6470.6

      \[\leadsto \frac{1}{e^{-re}} \]
  6. Applied rewrites70.6%

    \[\leadsto \color{blue}{\frac{1}{e^{-re}}} \]
  7. Taylor expanded in re around 0

    \[\leadsto \frac{1}{1 + \color{blue}{-1 \cdot re}} \]
  8. Step-by-step derivation
    1. lower-+.f64N/A

      \[\leadsto \frac{1}{1 + -1 \cdot \color{blue}{re}} \]
    2. lower-*.f6428.9

      \[\leadsto \frac{1}{1 + -1 \cdot re} \]
  9. Applied rewrites28.9%

    \[\leadsto \frac{1}{1 + \color{blue}{-1 \cdot re}} \]
  10. Step-by-step derivation
    1. lift-+.f64N/A

      \[\leadsto \frac{1}{1 + -1 \cdot \color{blue}{re}} \]
    2. add-flipN/A

      \[\leadsto \frac{1}{1 - \left(\mathsf{neg}\left(-1 \cdot re\right)\right)} \]
    3. lower--.f64N/A

      \[\leadsto \frac{1}{1 - \left(\mathsf{neg}\left(-1 \cdot re\right)\right)} \]
    4. lift-*.f64N/A

      \[\leadsto \frac{1}{1 - \left(\mathsf{neg}\left(-1 \cdot re\right)\right)} \]
    5. *-commutativeN/A

      \[\leadsto \frac{1}{1 - \left(\mathsf{neg}\left(re \cdot -1\right)\right)} \]
    6. distribute-rgt-neg-inN/A

      \[\leadsto \frac{1}{1 - re \cdot \left(\mathsf{neg}\left(-1\right)\right)} \]
    7. metadata-evalN/A

      \[\leadsto \frac{1}{1 - re \cdot 1} \]
    8. metadata-evalN/A

      \[\leadsto \frac{1}{1 - re \cdot \frac{1}{1}} \]
    9. mult-flipN/A

      \[\leadsto \frac{1}{1 - \frac{re}{1}} \]
    10. /-rgt-identity28.9

      \[\leadsto \frac{1}{1 - re} \]
  11. Applied rewrites28.9%

    \[\leadsto \frac{1}{1 - re} \]
  12. Add Preprocessing

Alternative 8: 28.8% accurate, 12.7× speedup?

\[\begin{array}{l} \\ re - -1 \end{array} \]
(FPCore (re im) :precision binary64 (- re -1.0))
double code(double re, double im) {
	return re - -1.0;
}
module fmin_fmax_functions
    implicit none
    private
    public fmax
    public fmin

    interface fmax
        module procedure fmax88
        module procedure fmax44
        module procedure fmax84
        module procedure fmax48
    end interface
    interface fmin
        module procedure fmin88
        module procedure fmin44
        module procedure fmin84
        module procedure fmin48
    end interface
contains
    real(8) function fmax88(x, y) result (res)
        real(8), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(x, max(x, y), y /= y), x /= x)
    end function
    real(4) function fmax44(x, y) result (res)
        real(4), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(y, merge(x, max(x, y), y /= y), x /= x)
    end function
    real(8) function fmax84(x, y) result(res)
        real(8), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(dble(y), merge(x, max(x, dble(y)), y /= y), x /= x)
    end function
    real(8) function fmax48(x, y) result(res)
        real(4), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(dble(x), max(dble(x), y), y /= y), x /= x)
    end function
    real(8) function fmin88(x, y) result (res)
        real(8), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(x, min(x, y), y /= y), x /= x)
    end function
    real(4) function fmin44(x, y) result (res)
        real(4), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(y, merge(x, min(x, y), y /= y), x /= x)
    end function
    real(8) function fmin84(x, y) result(res)
        real(8), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(dble(y), merge(x, min(x, dble(y)), y /= y), x /= x)
    end function
    real(8) function fmin48(x, y) result(res)
        real(4), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(dble(x), min(dble(x), y), y /= y), x /= x)
    end function
end module

real(8) function code(re, im)
use fmin_fmax_functions
    real(8), intent (in) :: re
    real(8), intent (in) :: im
    code = re - (-1.0d0)
end function
public static double code(double re, double im) {
	return re - -1.0;
}
def code(re, im):
	return re - -1.0
function code(re, im)
	return Float64(re - -1.0)
end
function tmp = code(re, im)
	tmp = re - -1.0;
end
code[re_, im_] := N[(re - -1.0), $MachinePrecision]
\begin{array}{l}

\\
re - -1
\end{array}
Derivation
  1. Initial program 100.0%

    \[e^{re} \cdot \cos im \]
  2. Step-by-step derivation
    1. lift-*.f64N/A

      \[\leadsto \color{blue}{e^{re} \cdot \cos im} \]
    2. *-commutativeN/A

      \[\leadsto \color{blue}{\cos im \cdot e^{re}} \]
    3. lift-exp.f64N/A

      \[\leadsto \cos im \cdot \color{blue}{e^{re}} \]
    4. sinh-+-cosh-revN/A

      \[\leadsto \cos im \cdot \color{blue}{\left(\cosh re + \sinh re\right)} \]
    5. flip-+N/A

      \[\leadsto \cos im \cdot \color{blue}{\frac{\cosh re \cdot \cosh re - \sinh re \cdot \sinh re}{\cosh re - \sinh re}} \]
    6. sinh-coshN/A

      \[\leadsto \cos im \cdot \frac{\color{blue}{1}}{\cosh re - \sinh re} \]
    7. sinh---cosh-revN/A

      \[\leadsto \cos im \cdot \frac{1}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
    8. associate-*r/N/A

      \[\leadsto \color{blue}{\frac{\cos im \cdot 1}{e^{\mathsf{neg}\left(re\right)}}} \]
    9. lift-cos.f64N/A

      \[\leadsto \frac{\color{blue}{\cos im} \cdot 1}{e^{\mathsf{neg}\left(re\right)}} \]
    10. sin-PI/2N/A

      \[\leadsto \frac{\cos im \cdot \color{blue}{\sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}}{e^{\mathsf{neg}\left(re\right)}} \]
    11. lower-/.f64N/A

      \[\leadsto \color{blue}{\frac{\cos im \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}}} \]
    12. lift-cos.f64N/A

      \[\leadsto \frac{\color{blue}{\cos im} \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}} \]
    13. sin-PI/2N/A

      \[\leadsto \frac{\cos im \cdot \color{blue}{1}}{e^{\mathsf{neg}\left(re\right)}} \]
    14. *-commutativeN/A

      \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
    15. lower-*.f64N/A

      \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
    16. lower-exp.f64N/A

      \[\leadsto \frac{1 \cdot \cos im}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
    17. lower-neg.f64100.0

      \[\leadsto \frac{1 \cdot \cos im}{e^{\color{blue}{-re}}} \]
  3. Applied rewrites100.0%

    \[\leadsto \color{blue}{\frac{1 \cdot \cos im}{e^{-re}}} \]
  4. Taylor expanded in im around 0

    \[\leadsto \color{blue}{\frac{1}{e^{\mathsf{neg}\left(re\right)}}} \]
  5. Step-by-step derivation
    1. lower-/.f64N/A

      \[\leadsto \frac{1}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
    2. lower-exp.f64N/A

      \[\leadsto \frac{1}{e^{\mathsf{neg}\left(re\right)}} \]
    3. lower-neg.f6470.6

      \[\leadsto \frac{1}{e^{-re}} \]
  6. Applied rewrites70.6%

    \[\leadsto \color{blue}{\frac{1}{e^{-re}}} \]
  7. Taylor expanded in re around 0

    \[\leadsto 1 + \color{blue}{re} \]
  8. Step-by-step derivation
    1. lower-+.f6428.8

      \[\leadsto 1 + re \]
  9. Applied rewrites28.8%

    \[\leadsto 1 + \color{blue}{re} \]
  10. Step-by-step derivation
    1. lift-+.f64N/A

      \[\leadsto 1 + re \]
    2. +-commutativeN/A

      \[\leadsto re + 1 \]
    3. add-flipN/A

      \[\leadsto re - \left(\mathsf{neg}\left(1\right)\right) \]
    4. /-rgt-identityN/A

      \[\leadsto \frac{re}{1} - \left(\mathsf{neg}\left(1\right)\right) \]
    5. mult-flipN/A

      \[\leadsto re \cdot \frac{1}{1} - \left(\mathsf{neg}\left(1\right)\right) \]
    6. metadata-evalN/A

      \[\leadsto re \cdot 1 - \left(\mathsf{neg}\left(1\right)\right) \]
    7. metadata-evalN/A

      \[\leadsto re \cdot \left(\mathsf{neg}\left(-1\right)\right) - \left(\mathsf{neg}\left(1\right)\right) \]
    8. distribute-rgt-neg-inN/A

      \[\leadsto \left(\mathsf{neg}\left(re \cdot -1\right)\right) - \left(\mathsf{neg}\left(1\right)\right) \]
    9. *-commutativeN/A

      \[\leadsto \left(\mathsf{neg}\left(-1 \cdot re\right)\right) - \left(\mathsf{neg}\left(1\right)\right) \]
    10. lift-*.f64N/A

      \[\leadsto \left(\mathsf{neg}\left(-1 \cdot re\right)\right) - \left(\mathsf{neg}\left(1\right)\right) \]
    11. metadata-evalN/A

      \[\leadsto \left(\mathsf{neg}\left(-1 \cdot re\right)\right) - -1 \]
    12. lower--.f64N/A

      \[\leadsto \left(\mathsf{neg}\left(-1 \cdot re\right)\right) - -1 \]
    13. lift-*.f64N/A

      \[\leadsto \left(\mathsf{neg}\left(-1 \cdot re\right)\right) - -1 \]
    14. *-commutativeN/A

      \[\leadsto \left(\mathsf{neg}\left(re \cdot -1\right)\right) - -1 \]
    15. distribute-rgt-neg-inN/A

      \[\leadsto re \cdot \left(\mathsf{neg}\left(-1\right)\right) - -1 \]
    16. metadata-evalN/A

      \[\leadsto re \cdot 1 - -1 \]
    17. metadata-evalN/A

      \[\leadsto re \cdot \frac{1}{1} - -1 \]
    18. mult-flipN/A

      \[\leadsto \frac{re}{1} - -1 \]
    19. /-rgt-identity28.8

      \[\leadsto re - -1 \]
  11. Applied rewrites28.8%

    \[\leadsto re - \color{blue}{-1} \]
  12. Add Preprocessing

Alternative 9: 28.4% accurate, 46.0× speedup?

\[\begin{array}{l} \\ 1 \end{array} \]
(FPCore (re im) :precision binary64 1.0)
double code(double re, double im) {
	return 1.0;
}
module fmin_fmax_functions
    implicit none
    private
    public fmax
    public fmin

    interface fmax
        module procedure fmax88
        module procedure fmax44
        module procedure fmax84
        module procedure fmax48
    end interface
    interface fmin
        module procedure fmin88
        module procedure fmin44
        module procedure fmin84
        module procedure fmin48
    end interface
contains
    real(8) function fmax88(x, y) result (res)
        real(8), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(x, max(x, y), y /= y), x /= x)
    end function
    real(4) function fmax44(x, y) result (res)
        real(4), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(y, merge(x, max(x, y), y /= y), x /= x)
    end function
    real(8) function fmax84(x, y) result(res)
        real(8), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(dble(y), merge(x, max(x, dble(y)), y /= y), x /= x)
    end function
    real(8) function fmax48(x, y) result(res)
        real(4), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(dble(x), max(dble(x), y), y /= y), x /= x)
    end function
    real(8) function fmin88(x, y) result (res)
        real(8), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(x, min(x, y), y /= y), x /= x)
    end function
    real(4) function fmin44(x, y) result (res)
        real(4), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(y, merge(x, min(x, y), y /= y), x /= x)
    end function
    real(8) function fmin84(x, y) result(res)
        real(8), intent (in) :: x
        real(4), intent (in) :: y
        res = merge(dble(y), merge(x, min(x, dble(y)), y /= y), x /= x)
    end function
    real(8) function fmin48(x, y) result(res)
        real(4), intent (in) :: x
        real(8), intent (in) :: y
        res = merge(y, merge(dble(x), min(dble(x), y), y /= y), x /= x)
    end function
end module

real(8) function code(re, im)
use fmin_fmax_functions
    real(8), intent (in) :: re
    real(8), intent (in) :: im
    code = 1.0d0
end function
public static double code(double re, double im) {
	return 1.0;
}
def code(re, im):
	return 1.0
function code(re, im)
	return 1.0
end
function tmp = code(re, im)
	tmp = 1.0;
end
code[re_, im_] := 1.0
\begin{array}{l}

\\
1
\end{array}
Derivation
  1. Initial program 100.0%

    \[e^{re} \cdot \cos im \]
  2. Step-by-step derivation
    1. lift-*.f64N/A

      \[\leadsto \color{blue}{e^{re} \cdot \cos im} \]
    2. *-commutativeN/A

      \[\leadsto \color{blue}{\cos im \cdot e^{re}} \]
    3. lift-exp.f64N/A

      \[\leadsto \cos im \cdot \color{blue}{e^{re}} \]
    4. sinh-+-cosh-revN/A

      \[\leadsto \cos im \cdot \color{blue}{\left(\cosh re + \sinh re\right)} \]
    5. flip-+N/A

      \[\leadsto \cos im \cdot \color{blue}{\frac{\cosh re \cdot \cosh re - \sinh re \cdot \sinh re}{\cosh re - \sinh re}} \]
    6. sinh-coshN/A

      \[\leadsto \cos im \cdot \frac{\color{blue}{1}}{\cosh re - \sinh re} \]
    7. sinh---cosh-revN/A

      \[\leadsto \cos im \cdot \frac{1}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
    8. associate-*r/N/A

      \[\leadsto \color{blue}{\frac{\cos im \cdot 1}{e^{\mathsf{neg}\left(re\right)}}} \]
    9. lift-cos.f64N/A

      \[\leadsto \frac{\color{blue}{\cos im} \cdot 1}{e^{\mathsf{neg}\left(re\right)}} \]
    10. sin-PI/2N/A

      \[\leadsto \frac{\cos im \cdot \color{blue}{\sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}}{e^{\mathsf{neg}\left(re\right)}} \]
    11. lower-/.f64N/A

      \[\leadsto \color{blue}{\frac{\cos im \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}}} \]
    12. lift-cos.f64N/A

      \[\leadsto \frac{\color{blue}{\cos im} \cdot \sin \left(\frac{\mathsf{PI}\left(\right)}{2}\right)}{e^{\mathsf{neg}\left(re\right)}} \]
    13. sin-PI/2N/A

      \[\leadsto \frac{\cos im \cdot \color{blue}{1}}{e^{\mathsf{neg}\left(re\right)}} \]
    14. *-commutativeN/A

      \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
    15. lower-*.f64N/A

      \[\leadsto \frac{\color{blue}{1 \cdot \cos im}}{e^{\mathsf{neg}\left(re\right)}} \]
    16. lower-exp.f64N/A

      \[\leadsto \frac{1 \cdot \cos im}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
    17. lower-neg.f64100.0

      \[\leadsto \frac{1 \cdot \cos im}{e^{\color{blue}{-re}}} \]
  3. Applied rewrites100.0%

    \[\leadsto \color{blue}{\frac{1 \cdot \cos im}{e^{-re}}} \]
  4. Taylor expanded in im around 0

    \[\leadsto \color{blue}{\frac{1}{e^{\mathsf{neg}\left(re\right)}}} \]
  5. Step-by-step derivation
    1. lower-/.f64N/A

      \[\leadsto \frac{1}{\color{blue}{e^{\mathsf{neg}\left(re\right)}}} \]
    2. lower-exp.f64N/A

      \[\leadsto \frac{1}{e^{\mathsf{neg}\left(re\right)}} \]
    3. lower-neg.f6470.6

      \[\leadsto \frac{1}{e^{-re}} \]
  6. Applied rewrites70.6%

    \[\leadsto \color{blue}{\frac{1}{e^{-re}}} \]
  7. Taylor expanded in re around 0

    \[\leadsto 1 \]
  8. Step-by-step derivation
    1. Applied rewrites28.4%

      \[\leadsto 1 \]
    2. Add Preprocessing

    Reproduce

    ?
    herbie shell --seed 2025156 
    (FPCore (re im)
      :name "math.exp on complex, real part"
      :precision binary64
      (* (exp re) (cos im)))