Given's Rotation SVD example

Percentage Accurate: 79.1% → 99.8%
Time: 4.3s
Alternatives: 9
Speedup: 0.5×

Specification

?
\[10^{-150} < \left|x\right| \land \left|x\right| < 10^{+150}\]
\[\begin{array}{l} \\ \sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \end{array} \]
(FPCore (p x)
 :precision binary64
 (sqrt (* 0.5 (+ 1.0 (/ x (sqrt (+ (* (* 4.0 p) p) (* x x))))))))
double code(double p, double x) {
	return sqrt((0.5 * (1.0 + (x / sqrt((((4.0 * p) * p) + (x * x)))))));
}
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(p, x)
use fmin_fmax_functions
    real(8), intent (in) :: p
    real(8), intent (in) :: x
    code = sqrt((0.5d0 * (1.0d0 + (x / sqrt((((4.0d0 * p) * p) + (x * x)))))))
end function
public static double code(double p, double x) {
	return Math.sqrt((0.5 * (1.0 + (x / Math.sqrt((((4.0 * p) * p) + (x * x)))))));
}
def code(p, x):
	return math.sqrt((0.5 * (1.0 + (x / math.sqrt((((4.0 * p) * p) + (x * x)))))))
function code(p, x)
	return sqrt(Float64(0.5 * Float64(1.0 + Float64(x / sqrt(Float64(Float64(Float64(4.0 * p) * p) + Float64(x * x)))))))
end
function tmp = code(p, x)
	tmp = sqrt((0.5 * (1.0 + (x / sqrt((((4.0 * p) * p) + (x * x)))))));
end
code[p_, x_] := N[Sqrt[N[(0.5 * N[(1.0 + N[(x / N[Sqrt[N[(N[(N[(4.0 * p), $MachinePrecision] * p), $MachinePrecision] + N[(x * x), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]
\begin{array}{l}

\\
\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}
\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: 79.1% accurate, 1.0× speedup?

\[\begin{array}{l} \\ \sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \end{array} \]
(FPCore (p x)
 :precision binary64
 (sqrt (* 0.5 (+ 1.0 (/ x (sqrt (+ (* (* 4.0 p) p) (* x x))))))))
double code(double p, double x) {
	return sqrt((0.5 * (1.0 + (x / sqrt((((4.0 * p) * p) + (x * x)))))));
}
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(p, x)
use fmin_fmax_functions
    real(8), intent (in) :: p
    real(8), intent (in) :: x
    code = sqrt((0.5d0 * (1.0d0 + (x / sqrt((((4.0d0 * p) * p) + (x * x)))))))
end function
public static double code(double p, double x) {
	return Math.sqrt((0.5 * (1.0 + (x / Math.sqrt((((4.0 * p) * p) + (x * x)))))));
}
def code(p, x):
	return math.sqrt((0.5 * (1.0 + (x / math.sqrt((((4.0 * p) * p) + (x * x)))))))
function code(p, x)
	return sqrt(Float64(0.5 * Float64(1.0 + Float64(x / sqrt(Float64(Float64(Float64(4.0 * p) * p) + Float64(x * x)))))))
end
function tmp = code(p, x)
	tmp = sqrt((0.5 * (1.0 + (x / sqrt((((4.0 * p) * p) + (x * x)))))));
end
code[p_, x_] := N[Sqrt[N[(0.5 * N[(1.0 + N[(x / N[Sqrt[N[(N[(N[(4.0 * p), $MachinePrecision] * p), $MachinePrecision] + N[(x * x), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]
\begin{array}{l}

\\
\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}
\end{array}

Alternative 1: 99.8% accurate, 0.5× speedup?

\[\begin{array}{l} p_m = \left|p\right| \\ \begin{array}{l} \mathbf{if}\;\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\_m\right) \cdot p\_m + x \cdot x}}\right)} \leq 0:\\ \;\;\;\;-\frac{p\_m}{x}\\ \mathbf{else}:\\ \;\;\;\;\sqrt{0.5 \cdot \left(1 + x \cdot \sqrt{\frac{1}{\mathsf{fma}\left(x, x, \left(p\_m \cdot 4\right) \cdot p\_m\right)}}\right)}\\ \end{array} \end{array} \]
p_m = (fabs.f64 p)
(FPCore (p_m x)
 :precision binary64
 (if (<=
      (sqrt (* 0.5 (+ 1.0 (/ x (sqrt (+ (* (* 4.0 p_m) p_m) (* x x)))))))
      0.0)
   (- (/ p_m x))
   (sqrt (* 0.5 (+ 1.0 (* x (sqrt (/ 1.0 (fma x x (* (* p_m 4.0) p_m))))))))))
p_m = fabs(p);
double code(double p_m, double x) {
	double tmp;
	if (sqrt((0.5 * (1.0 + (x / sqrt((((4.0 * p_m) * p_m) + (x * x))))))) <= 0.0) {
		tmp = -(p_m / x);
	} else {
		tmp = sqrt((0.5 * (1.0 + (x * sqrt((1.0 / fma(x, x, ((p_m * 4.0) * p_m))))))));
	}
	return tmp;
}
p_m = abs(p)
function code(p_m, x)
	tmp = 0.0
	if (sqrt(Float64(0.5 * Float64(1.0 + Float64(x / sqrt(Float64(Float64(Float64(4.0 * p_m) * p_m) + Float64(x * x))))))) <= 0.0)
		tmp = Float64(-Float64(p_m / x));
	else
		tmp = sqrt(Float64(0.5 * Float64(1.0 + Float64(x * sqrt(Float64(1.0 / fma(x, x, Float64(Float64(p_m * 4.0) * p_m))))))));
	end
	return tmp
end
p_m = N[Abs[p], $MachinePrecision]
code[p$95$m_, x_] := If[LessEqual[N[Sqrt[N[(0.5 * N[(1.0 + N[(x / N[Sqrt[N[(N[(N[(4.0 * p$95$m), $MachinePrecision] * p$95$m), $MachinePrecision] + N[(x * x), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]], $MachinePrecision], 0.0], (-N[(p$95$m / x), $MachinePrecision]), N[Sqrt[N[(0.5 * N[(1.0 + N[(x * N[Sqrt[N[(1.0 / N[(x * x + N[(N[(p$95$m * 4.0), $MachinePrecision] * p$95$m), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]]
\begin{array}{l}
p_m = \left|p\right|

\\
\begin{array}{l}
\mathbf{if}\;\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\_m\right) \cdot p\_m + x \cdot x}}\right)} \leq 0:\\
\;\;\;\;-\frac{p\_m}{x}\\

\mathbf{else}:\\
\;\;\;\;\sqrt{0.5 \cdot \left(1 + x \cdot \sqrt{\frac{1}{\mathsf{fma}\left(x, x, \left(p\_m \cdot 4\right) \cdot p\_m\right)}}\right)}\\


\end{array}
\end{array}
Derivation
  1. Split input into 2 regimes
  2. if (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x))))))) < 0.0

    1. Initial program 79.1%

      \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
    2. Step-by-step derivation
      1. lift-*.f64N/A

        \[\leadsto \sqrt{\color{blue}{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
      2. lift-+.f64N/A

        \[\leadsto \sqrt{\frac{1}{2} \cdot \color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
      3. lift-/.f64N/A

        \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \color{blue}{\frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
      4. lift-sqrt.f64N/A

        \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\color{blue}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
      5. lift-+.f64N/A

        \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
      6. lift-*.f64N/A

        \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p} + x \cdot x}}\right)} \]
      7. lift-*.f64N/A

        \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right)} \cdot p + x \cdot x}}\right)} \]
      8. lift-*.f64N/A

        \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + \color{blue}{x \cdot x}}}\right)} \]
      9. *-commutativeN/A

        \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
      10. lower-*.f64N/A

        \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
    3. Applied rewrites79.2%

      \[\leadsto \color{blue}{\sqrt{\left(\frac{x}{\sqrt{\mathsf{fma}\left(x, x, \left(p \cdot 4\right) \cdot p\right)}} + 1\right) \cdot 0.5}} \]
    4. Taylor expanded in x around -inf

      \[\leadsto \color{blue}{-1 \cdot \frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x}} \]
    5. Step-by-step derivation
      1. mul-1-negN/A

        \[\leadsto \mathsf{neg}\left(\frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x}\right) \]
      2. lower-neg.f64N/A

        \[\leadsto -\frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x} \]
      3. sqrt-unprodN/A

        \[\leadsto -\frac{p \cdot \sqrt{\frac{1}{2} \cdot 2}}{x} \]
      4. metadata-evalN/A

        \[\leadsto -\frac{p \cdot \sqrt{1}}{x} \]
      5. metadata-evalN/A

        \[\leadsto -\frac{p \cdot 1}{x} \]
      6. associate-/l*N/A

        \[\leadsto -p \cdot \frac{1}{x} \]
      7. lower-*.f64N/A

        \[\leadsto -p \cdot \frac{1}{x} \]
      8. lower-/.f6426.7

        \[\leadsto -p \cdot \frac{1}{x} \]
    6. Applied rewrites26.7%

      \[\leadsto \color{blue}{-p \cdot \frac{1}{x}} \]
    7. Step-by-step derivation
      1. Applied rewrites26.8%

        \[\leadsto \color{blue}{-\frac{p}{x}} \]

      if 0.0 < (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x)))))))

      1. Initial program 79.1%

        \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
      2. Step-by-step derivation
        1. lift-/.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \color{blue}{\frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
        2. lift-sqrt.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\color{blue}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
        3. lift-+.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
        4. lift-*.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p} + x \cdot x}}\right)} \]
        5. lift-*.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right)} \cdot p + x \cdot x}}\right)} \]
        6. lift-*.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + \color{blue}{x \cdot x}}}\right)} \]
        7. mult-flipN/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \color{blue}{x \cdot \frac{1}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
        8. lower-*.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \color{blue}{x \cdot \frac{1}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
        9. metadata-evalN/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + x \cdot \frac{\color{blue}{\sqrt{1}}}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
        10. sqrt-undivN/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + x \cdot \color{blue}{\sqrt{\frac{1}{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
        11. lower-sqrt.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + x \cdot \color{blue}{\sqrt{\frac{1}{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
        12. lower-/.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + x \cdot \sqrt{\color{blue}{\frac{1}{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
        13. pow2N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + x \cdot \sqrt{\frac{1}{\left(4 \cdot p\right) \cdot p + \color{blue}{{x}^{2}}}}\right)} \]
        14. +-commutativeN/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + x \cdot \sqrt{\frac{1}{\color{blue}{{x}^{2} + \left(4 \cdot p\right) \cdot p}}}\right)} \]
        15. pow2N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + x \cdot \sqrt{\frac{1}{\color{blue}{x \cdot x} + \left(4 \cdot p\right) \cdot p}}\right)} \]
        16. lower-fma.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + x \cdot \sqrt{\frac{1}{\color{blue}{\mathsf{fma}\left(x, x, \left(4 \cdot p\right) \cdot p\right)}}}\right)} \]
        17. lower-*.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + x \cdot \sqrt{\frac{1}{\mathsf{fma}\left(x, x, \color{blue}{\left(4 \cdot p\right) \cdot p}\right)}}\right)} \]
        18. *-commutativeN/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + x \cdot \sqrt{\frac{1}{\mathsf{fma}\left(x, x, \color{blue}{\left(p \cdot 4\right)} \cdot p\right)}}\right)} \]
        19. lower-*.f6478.6

          \[\leadsto \sqrt{0.5 \cdot \left(1 + x \cdot \sqrt{\frac{1}{\mathsf{fma}\left(x, x, \color{blue}{\left(p \cdot 4\right)} \cdot p\right)}}\right)} \]
      3. Applied rewrites78.6%

        \[\leadsto \sqrt{0.5 \cdot \left(1 + \color{blue}{x \cdot \sqrt{\frac{1}{\mathsf{fma}\left(x, x, \left(p \cdot 4\right) \cdot p\right)}}}\right)} \]
    8. Recombined 2 regimes into one program.
    9. Add Preprocessing

    Alternative 2: 99.8% accurate, 0.5× speedup?

    \[\begin{array}{l} p_m = \left|p\right| \\ \begin{array}{l} \mathbf{if}\;\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\_m\right) \cdot p\_m + x \cdot x}}\right)} \leq 0:\\ \;\;\;\;-\frac{p\_m}{x}\\ \mathbf{else}:\\ \;\;\;\;\sqrt{\left(\frac{x}{\sqrt{\mathsf{fma}\left(p\_m \cdot p\_m, 4, x \cdot x\right)}} - -1\right) \cdot 0.5}\\ \end{array} \end{array} \]
    p_m = (fabs.f64 p)
    (FPCore (p_m x)
     :precision binary64
     (if (<=
          (sqrt (* 0.5 (+ 1.0 (/ x (sqrt (+ (* (* 4.0 p_m) p_m) (* x x)))))))
          0.0)
       (- (/ p_m x))
       (sqrt (* (- (/ x (sqrt (fma (* p_m p_m) 4.0 (* x x)))) -1.0) 0.5))))
    p_m = fabs(p);
    double code(double p_m, double x) {
    	double tmp;
    	if (sqrt((0.5 * (1.0 + (x / sqrt((((4.0 * p_m) * p_m) + (x * x))))))) <= 0.0) {
    		tmp = -(p_m / x);
    	} else {
    		tmp = sqrt((((x / sqrt(fma((p_m * p_m), 4.0, (x * x)))) - -1.0) * 0.5));
    	}
    	return tmp;
    }
    
    p_m = abs(p)
    function code(p_m, x)
    	tmp = 0.0
    	if (sqrt(Float64(0.5 * Float64(1.0 + Float64(x / sqrt(Float64(Float64(Float64(4.0 * p_m) * p_m) + Float64(x * x))))))) <= 0.0)
    		tmp = Float64(-Float64(p_m / x));
    	else
    		tmp = sqrt(Float64(Float64(Float64(x / sqrt(fma(Float64(p_m * p_m), 4.0, Float64(x * x)))) - -1.0) * 0.5));
    	end
    	return tmp
    end
    
    p_m = N[Abs[p], $MachinePrecision]
    code[p$95$m_, x_] := If[LessEqual[N[Sqrt[N[(0.5 * N[(1.0 + N[(x / N[Sqrt[N[(N[(N[(4.0 * p$95$m), $MachinePrecision] * p$95$m), $MachinePrecision] + N[(x * x), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]], $MachinePrecision], 0.0], (-N[(p$95$m / x), $MachinePrecision]), N[Sqrt[N[(N[(N[(x / N[Sqrt[N[(N[(p$95$m * p$95$m), $MachinePrecision] * 4.0 + N[(x * x), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]), $MachinePrecision] - -1.0), $MachinePrecision] * 0.5), $MachinePrecision]], $MachinePrecision]]
    
    \begin{array}{l}
    p_m = \left|p\right|
    
    \\
    \begin{array}{l}
    \mathbf{if}\;\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\_m\right) \cdot p\_m + x \cdot x}}\right)} \leq 0:\\
    \;\;\;\;-\frac{p\_m}{x}\\
    
    \mathbf{else}:\\
    \;\;\;\;\sqrt{\left(\frac{x}{\sqrt{\mathsf{fma}\left(p\_m \cdot p\_m, 4, x \cdot x\right)}} - -1\right) \cdot 0.5}\\
    
    
    \end{array}
    \end{array}
    
    Derivation
    1. Split input into 2 regimes
    2. if (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x))))))) < 0.0

      1. Initial program 79.1%

        \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
      2. Step-by-step derivation
        1. lift-*.f64N/A

          \[\leadsto \sqrt{\color{blue}{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
        2. lift-+.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
        3. lift-/.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \color{blue}{\frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
        4. lift-sqrt.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\color{blue}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
        5. lift-+.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
        6. lift-*.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p} + x \cdot x}}\right)} \]
        7. lift-*.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right)} \cdot p + x \cdot x}}\right)} \]
        8. lift-*.f64N/A

          \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + \color{blue}{x \cdot x}}}\right)} \]
        9. *-commutativeN/A

          \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
        10. lower-*.f64N/A

          \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
      3. Applied rewrites79.2%

        \[\leadsto \color{blue}{\sqrt{\left(\frac{x}{\sqrt{\mathsf{fma}\left(x, x, \left(p \cdot 4\right) \cdot p\right)}} + 1\right) \cdot 0.5}} \]
      4. Taylor expanded in x around -inf

        \[\leadsto \color{blue}{-1 \cdot \frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x}} \]
      5. Step-by-step derivation
        1. mul-1-negN/A

          \[\leadsto \mathsf{neg}\left(\frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x}\right) \]
        2. lower-neg.f64N/A

          \[\leadsto -\frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x} \]
        3. sqrt-unprodN/A

          \[\leadsto -\frac{p \cdot \sqrt{\frac{1}{2} \cdot 2}}{x} \]
        4. metadata-evalN/A

          \[\leadsto -\frac{p \cdot \sqrt{1}}{x} \]
        5. metadata-evalN/A

          \[\leadsto -\frac{p \cdot 1}{x} \]
        6. associate-/l*N/A

          \[\leadsto -p \cdot \frac{1}{x} \]
        7. lower-*.f64N/A

          \[\leadsto -p \cdot \frac{1}{x} \]
        8. lower-/.f6426.7

          \[\leadsto -p \cdot \frac{1}{x} \]
      6. Applied rewrites26.7%

        \[\leadsto \color{blue}{-p \cdot \frac{1}{x}} \]
      7. Step-by-step derivation
        1. Applied rewrites26.8%

          \[\leadsto \color{blue}{-\frac{p}{x}} \]

        if 0.0 < (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x)))))))

        1. Initial program 79.1%

          \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
        2. Step-by-step derivation
          1. lift-*.f64N/A

            \[\leadsto \sqrt{\color{blue}{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
          2. lift-+.f64N/A

            \[\leadsto \sqrt{\frac{1}{2} \cdot \color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
          3. lift-/.f64N/A

            \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \color{blue}{\frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
          4. lift-sqrt.f64N/A

            \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\color{blue}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
          5. lift-+.f64N/A

            \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
          6. lift-*.f64N/A

            \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p} + x \cdot x}}\right)} \]
          7. lift-*.f64N/A

            \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right)} \cdot p + x \cdot x}}\right)} \]
          8. lift-*.f64N/A

            \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + \color{blue}{x \cdot x}}}\right)} \]
          9. *-commutativeN/A

            \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
          10. lower-*.f64N/A

            \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
        3. Applied rewrites79.2%

          \[\leadsto \color{blue}{\sqrt{\left(\frac{x}{\sqrt{\mathsf{fma}\left(x, x, \left(p \cdot 4\right) \cdot p\right)}} + 1\right) \cdot 0.5}} \]
        4. Step-by-step derivation
          1. Applied rewrites79.1%

            \[\leadsto \color{blue}{\sqrt{\left(\frac{x}{\sqrt{\mathsf{fma}\left(p \cdot p, 4, x \cdot x\right)}} - -1\right) \cdot 0.5}} \]
        5. Recombined 2 regimes into one program.
        6. Add Preprocessing

        Alternative 3: 99.0% accurate, 0.4× speedup?

        \[\begin{array}{l} p_m = \left|p\right| \\ \begin{array}{l} t_0 := \sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\_m\right) \cdot p\_m + x \cdot x}}\right)}\\ \mathbf{if}\;t\_0 \leq 0:\\ \;\;\;\;-\frac{p\_m}{x}\\ \mathbf{elif}\;t\_0 \leq 0.8:\\ \;\;\;\;\sqrt{\mathsf{fma}\left(\frac{x}{p\_m}, 0.25, 0.5\right)}\\ \mathbf{else}:\\ \;\;\;\;\mathsf{fma}\left(p\_m \cdot \frac{p\_m}{x \cdot x}, -0.5, 1\right)\\ \end{array} \end{array} \]
        p_m = (fabs.f64 p)
        (FPCore (p_m x)
         :precision binary64
         (let* ((t_0
                 (sqrt (* 0.5 (+ 1.0 (/ x (sqrt (+ (* (* 4.0 p_m) p_m) (* x x)))))))))
           (if (<= t_0 0.0)
             (- (/ p_m x))
             (if (<= t_0 0.8)
               (sqrt (fma (/ x p_m) 0.25 0.5))
               (fma (* p_m (/ p_m (* x x))) -0.5 1.0)))))
        p_m = fabs(p);
        double code(double p_m, double x) {
        	double t_0 = sqrt((0.5 * (1.0 + (x / sqrt((((4.0 * p_m) * p_m) + (x * x)))))));
        	double tmp;
        	if (t_0 <= 0.0) {
        		tmp = -(p_m / x);
        	} else if (t_0 <= 0.8) {
        		tmp = sqrt(fma((x / p_m), 0.25, 0.5));
        	} else {
        		tmp = fma((p_m * (p_m / (x * x))), -0.5, 1.0);
        	}
        	return tmp;
        }
        
        p_m = abs(p)
        function code(p_m, x)
        	t_0 = sqrt(Float64(0.5 * Float64(1.0 + Float64(x / sqrt(Float64(Float64(Float64(4.0 * p_m) * p_m) + Float64(x * x)))))))
        	tmp = 0.0
        	if (t_0 <= 0.0)
        		tmp = Float64(-Float64(p_m / x));
        	elseif (t_0 <= 0.8)
        		tmp = sqrt(fma(Float64(x / p_m), 0.25, 0.5));
        	else
        		tmp = fma(Float64(p_m * Float64(p_m / Float64(x * x))), -0.5, 1.0);
        	end
        	return tmp
        end
        
        p_m = N[Abs[p], $MachinePrecision]
        code[p$95$m_, x_] := Block[{t$95$0 = N[Sqrt[N[(0.5 * N[(1.0 + N[(x / N[Sqrt[N[(N[(N[(4.0 * p$95$m), $MachinePrecision] * p$95$m), $MachinePrecision] + N[(x * x), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]}, If[LessEqual[t$95$0, 0.0], (-N[(p$95$m / x), $MachinePrecision]), If[LessEqual[t$95$0, 0.8], N[Sqrt[N[(N[(x / p$95$m), $MachinePrecision] * 0.25 + 0.5), $MachinePrecision]], $MachinePrecision], N[(N[(p$95$m * N[(p$95$m / N[(x * x), $MachinePrecision]), $MachinePrecision]), $MachinePrecision] * -0.5 + 1.0), $MachinePrecision]]]]
        
        \begin{array}{l}
        p_m = \left|p\right|
        
        \\
        \begin{array}{l}
        t_0 := \sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\_m\right) \cdot p\_m + x \cdot x}}\right)}\\
        \mathbf{if}\;t\_0 \leq 0:\\
        \;\;\;\;-\frac{p\_m}{x}\\
        
        \mathbf{elif}\;t\_0 \leq 0.8:\\
        \;\;\;\;\sqrt{\mathsf{fma}\left(\frac{x}{p\_m}, 0.25, 0.5\right)}\\
        
        \mathbf{else}:\\
        \;\;\;\;\mathsf{fma}\left(p\_m \cdot \frac{p\_m}{x \cdot x}, -0.5, 1\right)\\
        
        
        \end{array}
        \end{array}
        
        Derivation
        1. Split input into 3 regimes
        2. if (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x))))))) < 0.0

          1. Initial program 79.1%

            \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
          2. Step-by-step derivation
            1. lift-*.f64N/A

              \[\leadsto \sqrt{\color{blue}{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
            2. lift-+.f64N/A

              \[\leadsto \sqrt{\frac{1}{2} \cdot \color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
            3. lift-/.f64N/A

              \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \color{blue}{\frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
            4. lift-sqrt.f64N/A

              \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\color{blue}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
            5. lift-+.f64N/A

              \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
            6. lift-*.f64N/A

              \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p} + x \cdot x}}\right)} \]
            7. lift-*.f64N/A

              \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right)} \cdot p + x \cdot x}}\right)} \]
            8. lift-*.f64N/A

              \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + \color{blue}{x \cdot x}}}\right)} \]
            9. *-commutativeN/A

              \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
            10. lower-*.f64N/A

              \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
          3. Applied rewrites79.2%

            \[\leadsto \color{blue}{\sqrt{\left(\frac{x}{\sqrt{\mathsf{fma}\left(x, x, \left(p \cdot 4\right) \cdot p\right)}} + 1\right) \cdot 0.5}} \]
          4. Taylor expanded in x around -inf

            \[\leadsto \color{blue}{-1 \cdot \frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x}} \]
          5. Step-by-step derivation
            1. mul-1-negN/A

              \[\leadsto \mathsf{neg}\left(\frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x}\right) \]
            2. lower-neg.f64N/A

              \[\leadsto -\frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x} \]
            3. sqrt-unprodN/A

              \[\leadsto -\frac{p \cdot \sqrt{\frac{1}{2} \cdot 2}}{x} \]
            4. metadata-evalN/A

              \[\leadsto -\frac{p \cdot \sqrt{1}}{x} \]
            5. metadata-evalN/A

              \[\leadsto -\frac{p \cdot 1}{x} \]
            6. associate-/l*N/A

              \[\leadsto -p \cdot \frac{1}{x} \]
            7. lower-*.f64N/A

              \[\leadsto -p \cdot \frac{1}{x} \]
            8. lower-/.f6426.7

              \[\leadsto -p \cdot \frac{1}{x} \]
          6. Applied rewrites26.7%

            \[\leadsto \color{blue}{-p \cdot \frac{1}{x}} \]
          7. Step-by-step derivation
            1. Applied rewrites26.8%

              \[\leadsto \color{blue}{-\frac{p}{x}} \]

            if 0.0 < (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x))))))) < 0.80000000000000004

            1. Initial program 79.1%

              \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
            2. Taylor expanded in p around inf

              \[\leadsto \sqrt{\color{blue}{\frac{1}{2} + \frac{1}{4} \cdot \frac{x}{p}}} \]
            3. Step-by-step derivation
              1. +-commutativeN/A

                \[\leadsto \sqrt{\frac{1}{4} \cdot \frac{x}{p} + \color{blue}{\frac{1}{2}}} \]
              2. *-commutativeN/A

                \[\leadsto \sqrt{\frac{x}{p} \cdot \frac{1}{4} + \frac{1}{2}} \]
              3. lower-fma.f64N/A

                \[\leadsto \sqrt{\mathsf{fma}\left(\frac{x}{p}, \color{blue}{\frac{1}{4}}, \frac{1}{2}\right)} \]
              4. lower-/.f6451.8

                \[\leadsto \sqrt{\mathsf{fma}\left(\frac{x}{p}, 0.25, 0.5\right)} \]
            4. Applied rewrites51.8%

              \[\leadsto \sqrt{\color{blue}{\mathsf{fma}\left(\frac{x}{p}, 0.25, 0.5\right)}} \]

            if 0.80000000000000004 < (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x)))))))

            1. Initial program 79.1%

              \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
            2. Taylor expanded in p around 0

              \[\leadsto \color{blue}{-1 \cdot \frac{{p}^{2} \cdot \sqrt{\frac{1}{2}}}{{x}^{2} \cdot \sqrt{2}} + \sqrt{\frac{1}{2}} \cdot \sqrt{2}} \]
            3. Step-by-step derivation
              1. sqrt-unprodN/A

                \[\leadsto -1 \cdot \frac{{p}^{2} \cdot \sqrt{\frac{1}{2}}}{{x}^{2} \cdot \sqrt{2}} + \sqrt{\frac{1}{2} \cdot 2} \]
              2. metadata-evalN/A

                \[\leadsto -1 \cdot \frac{{p}^{2} \cdot \sqrt{\frac{1}{2}}}{{x}^{2} \cdot \sqrt{2}} + \sqrt{1} \]
              3. metadata-evalN/A

                \[\leadsto -1 \cdot \frac{{p}^{2} \cdot \sqrt{\frac{1}{2}}}{{x}^{2} \cdot \sqrt{2}} + 1 \]
              4. add-flipN/A

                \[\leadsto -1 \cdot \frac{{p}^{2} \cdot \sqrt{\frac{1}{2}}}{{x}^{2} \cdot \sqrt{2}} - \color{blue}{\left(\mathsf{neg}\left(1\right)\right)} \]
              5. metadata-evalN/A

                \[\leadsto -1 \cdot \frac{{p}^{2} \cdot \sqrt{\frac{1}{2}}}{{x}^{2} \cdot \sqrt{2}} - -1 \]
              6. lower--.f64N/A

                \[\leadsto -1 \cdot \frac{{p}^{2} \cdot \sqrt{\frac{1}{2}}}{{x}^{2} \cdot \sqrt{2}} - \color{blue}{-1} \]
            4. Applied rewrites26.3%

              \[\leadsto \color{blue}{\left(-\frac{p \cdot p}{x \cdot x} \cdot 0.5\right) - -1} \]
            5. Applied rewrites26.3%

              \[\leadsto \color{blue}{\mathsf{fma}\left(p \cdot \frac{p}{x \cdot x}, -0.5, 1\right)} \]
          8. Recombined 3 regimes into one program.
          9. Add Preprocessing

          Alternative 4: 99.0% accurate, 0.4× speedup?

          \[\begin{array}{l} p_m = \left|p\right| \\ \begin{array}{l} t_0 := \sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\_m\right) \cdot p\_m + x \cdot x}}\right)}\\ \mathbf{if}\;t\_0 \leq 0:\\ \;\;\;\;-\frac{p\_m}{x}\\ \mathbf{elif}\;t\_0 \leq 0.8:\\ \;\;\;\;\sqrt{\mathsf{fma}\left(\frac{x}{p\_m}, 0.25, 0.5\right)}\\ \mathbf{else}:\\ \;\;\;\;\sqrt{1 - \frac{p\_m}{x \cdot x} \cdot p\_m}\\ \end{array} \end{array} \]
          p_m = (fabs.f64 p)
          (FPCore (p_m x)
           :precision binary64
           (let* ((t_0
                   (sqrt (* 0.5 (+ 1.0 (/ x (sqrt (+ (* (* 4.0 p_m) p_m) (* x x)))))))))
             (if (<= t_0 0.0)
               (- (/ p_m x))
               (if (<= t_0 0.8)
                 (sqrt (fma (/ x p_m) 0.25 0.5))
                 (sqrt (- 1.0 (* (/ p_m (* x x)) p_m)))))))
          p_m = fabs(p);
          double code(double p_m, double x) {
          	double t_0 = sqrt((0.5 * (1.0 + (x / sqrt((((4.0 * p_m) * p_m) + (x * x)))))));
          	double tmp;
          	if (t_0 <= 0.0) {
          		tmp = -(p_m / x);
          	} else if (t_0 <= 0.8) {
          		tmp = sqrt(fma((x / p_m), 0.25, 0.5));
          	} else {
          		tmp = sqrt((1.0 - ((p_m / (x * x)) * p_m)));
          	}
          	return tmp;
          }
          
          p_m = abs(p)
          function code(p_m, x)
          	t_0 = sqrt(Float64(0.5 * Float64(1.0 + Float64(x / sqrt(Float64(Float64(Float64(4.0 * p_m) * p_m) + Float64(x * x)))))))
          	tmp = 0.0
          	if (t_0 <= 0.0)
          		tmp = Float64(-Float64(p_m / x));
          	elseif (t_0 <= 0.8)
          		tmp = sqrt(fma(Float64(x / p_m), 0.25, 0.5));
          	else
          		tmp = sqrt(Float64(1.0 - Float64(Float64(p_m / Float64(x * x)) * p_m)));
          	end
          	return tmp
          end
          
          p_m = N[Abs[p], $MachinePrecision]
          code[p$95$m_, x_] := Block[{t$95$0 = N[Sqrt[N[(0.5 * N[(1.0 + N[(x / N[Sqrt[N[(N[(N[(4.0 * p$95$m), $MachinePrecision] * p$95$m), $MachinePrecision] + N[(x * x), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]}, If[LessEqual[t$95$0, 0.0], (-N[(p$95$m / x), $MachinePrecision]), If[LessEqual[t$95$0, 0.8], N[Sqrt[N[(N[(x / p$95$m), $MachinePrecision] * 0.25 + 0.5), $MachinePrecision]], $MachinePrecision], N[Sqrt[N[(1.0 - N[(N[(p$95$m / N[(x * x), $MachinePrecision]), $MachinePrecision] * p$95$m), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]]]]
          
          \begin{array}{l}
          p_m = \left|p\right|
          
          \\
          \begin{array}{l}
          t_0 := \sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\_m\right) \cdot p\_m + x \cdot x}}\right)}\\
          \mathbf{if}\;t\_0 \leq 0:\\
          \;\;\;\;-\frac{p\_m}{x}\\
          
          \mathbf{elif}\;t\_0 \leq 0.8:\\
          \;\;\;\;\sqrt{\mathsf{fma}\left(\frac{x}{p\_m}, 0.25, 0.5\right)}\\
          
          \mathbf{else}:\\
          \;\;\;\;\sqrt{1 - \frac{p\_m}{x \cdot x} \cdot p\_m}\\
          
          
          \end{array}
          \end{array}
          
          Derivation
          1. Split input into 3 regimes
          2. if (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x))))))) < 0.0

            1. Initial program 79.1%

              \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
            2. Step-by-step derivation
              1. lift-*.f64N/A

                \[\leadsto \sqrt{\color{blue}{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
              2. lift-+.f64N/A

                \[\leadsto \sqrt{\frac{1}{2} \cdot \color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
              3. lift-/.f64N/A

                \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \color{blue}{\frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
              4. lift-sqrt.f64N/A

                \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\color{blue}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
              5. lift-+.f64N/A

                \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
              6. lift-*.f64N/A

                \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p} + x \cdot x}}\right)} \]
              7. lift-*.f64N/A

                \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right)} \cdot p + x \cdot x}}\right)} \]
              8. lift-*.f64N/A

                \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + \color{blue}{x \cdot x}}}\right)} \]
              9. *-commutativeN/A

                \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
              10. lower-*.f64N/A

                \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
            3. Applied rewrites79.2%

              \[\leadsto \color{blue}{\sqrt{\left(\frac{x}{\sqrt{\mathsf{fma}\left(x, x, \left(p \cdot 4\right) \cdot p\right)}} + 1\right) \cdot 0.5}} \]
            4. Taylor expanded in x around -inf

              \[\leadsto \color{blue}{-1 \cdot \frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x}} \]
            5. Step-by-step derivation
              1. mul-1-negN/A

                \[\leadsto \mathsf{neg}\left(\frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x}\right) \]
              2. lower-neg.f64N/A

                \[\leadsto -\frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x} \]
              3. sqrt-unprodN/A

                \[\leadsto -\frac{p \cdot \sqrt{\frac{1}{2} \cdot 2}}{x} \]
              4. metadata-evalN/A

                \[\leadsto -\frac{p \cdot \sqrt{1}}{x} \]
              5. metadata-evalN/A

                \[\leadsto -\frac{p \cdot 1}{x} \]
              6. associate-/l*N/A

                \[\leadsto -p \cdot \frac{1}{x} \]
              7. lower-*.f64N/A

                \[\leadsto -p \cdot \frac{1}{x} \]
              8. lower-/.f6426.7

                \[\leadsto -p \cdot \frac{1}{x} \]
            6. Applied rewrites26.7%

              \[\leadsto \color{blue}{-p \cdot \frac{1}{x}} \]
            7. Step-by-step derivation
              1. Applied rewrites26.8%

                \[\leadsto \color{blue}{-\frac{p}{x}} \]

              if 0.0 < (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x))))))) < 0.80000000000000004

              1. Initial program 79.1%

                \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
              2. Taylor expanded in p around inf

                \[\leadsto \sqrt{\color{blue}{\frac{1}{2} + \frac{1}{4} \cdot \frac{x}{p}}} \]
              3. Step-by-step derivation
                1. +-commutativeN/A

                  \[\leadsto \sqrt{\frac{1}{4} \cdot \frac{x}{p} + \color{blue}{\frac{1}{2}}} \]
                2. *-commutativeN/A

                  \[\leadsto \sqrt{\frac{x}{p} \cdot \frac{1}{4} + \frac{1}{2}} \]
                3. lower-fma.f64N/A

                  \[\leadsto \sqrt{\mathsf{fma}\left(\frac{x}{p}, \color{blue}{\frac{1}{4}}, \frac{1}{2}\right)} \]
                4. lower-/.f6451.8

                  \[\leadsto \sqrt{\mathsf{fma}\left(\frac{x}{p}, 0.25, 0.5\right)} \]
              4. Applied rewrites51.8%

                \[\leadsto \sqrt{\color{blue}{\mathsf{fma}\left(\frac{x}{p}, 0.25, 0.5\right)}} \]

              if 0.80000000000000004 < (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x)))))))

              1. Initial program 79.1%

                \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
              2. Taylor expanded in p around 0

                \[\leadsto \sqrt{\color{blue}{1 + -1 \cdot \frac{{p}^{2}}{{x}^{2}}}} \]
              3. Step-by-step derivation
                1. +-commutativeN/A

                  \[\leadsto \sqrt{-1 \cdot \frac{{p}^{2}}{{x}^{2}} + \color{blue}{1}} \]
                2. lower-+.f64N/A

                  \[\leadsto \sqrt{-1 \cdot \frac{{p}^{2}}{{x}^{2}} + \color{blue}{1}} \]
                3. mul-1-negN/A

                  \[\leadsto \sqrt{\left(\mathsf{neg}\left(\frac{{p}^{2}}{{x}^{2}}\right)\right) + 1} \]
                4. lower-neg.f64N/A

                  \[\leadsto \sqrt{\left(-\frac{{p}^{2}}{{x}^{2}}\right) + 1} \]
                5. lower-/.f64N/A

                  \[\leadsto \sqrt{\left(-\frac{{p}^{2}}{{x}^{2}}\right) + 1} \]
                6. unpow2N/A

                  \[\leadsto \sqrt{\left(-\frac{p \cdot p}{{x}^{2}}\right) + 1} \]
                7. lower-*.f64N/A

                  \[\leadsto \sqrt{\left(-\frac{p \cdot p}{{x}^{2}}\right) + 1} \]
                8. pow2N/A

                  \[\leadsto \sqrt{\left(-\frac{p \cdot p}{x \cdot x}\right) + 1} \]
                9. lift-*.f6425.9

                  \[\leadsto \sqrt{\left(-\frac{p \cdot p}{x \cdot x}\right) + 1} \]
              4. Applied rewrites25.9%

                \[\leadsto \sqrt{\color{blue}{\left(-\frac{p \cdot p}{x \cdot x}\right) + 1}} \]
              5. Taylor expanded in x around 0

                \[\leadsto \sqrt{\frac{{x}^{2} - {p}^{2}}{\color{blue}{{x}^{2}}}} \]
              6. Step-by-step derivation
                1. div-subN/A

                  \[\leadsto \sqrt{\frac{{x}^{2}}{{x}^{2}} - \frac{{p}^{2}}{\color{blue}{{x}^{2}}}} \]
                2. pow-divN/A

                  \[\leadsto \sqrt{{x}^{\left(2 - 2\right)} - \frac{{p}^{2}}{{\color{blue}{x}}^{2}}} \]
                3. metadata-evalN/A

                  \[\leadsto \sqrt{{x}^{0} - \frac{{p}^{2}}{{x}^{2}}} \]
                4. metadata-evalN/A

                  \[\leadsto \sqrt{1 - \frac{{p}^{2}}{{\color{blue}{x}}^{2}}} \]
                5. lower--.f64N/A

                  \[\leadsto \sqrt{1 - \frac{{p}^{2}}{\color{blue}{{x}^{2}}}} \]
                6. pow2N/A

                  \[\leadsto \sqrt{1 - \frac{p \cdot p}{{x}^{2}}} \]
                7. associate-/l*N/A

                  \[\leadsto \sqrt{1 - p \cdot \frac{p}{\color{blue}{{x}^{2}}}} \]
                8. pow2N/A

                  \[\leadsto \sqrt{1 - p \cdot \frac{p}{x \cdot x}} \]
                9. *-commutativeN/A

                  \[\leadsto \sqrt{1 - \frac{p}{x \cdot x} \cdot p} \]
                10. lower-*.f64N/A

                  \[\leadsto \sqrt{1 - \frac{p}{x \cdot x} \cdot p} \]
                11. lift-/.f64N/A

                  \[\leadsto \sqrt{1 - \frac{p}{x \cdot x} \cdot p} \]
                12. lift-*.f6425.9

                  \[\leadsto \sqrt{1 - \frac{p}{x \cdot x} \cdot p} \]
              7. Applied rewrites25.9%

                \[\leadsto \sqrt{1 - \color{blue}{\frac{p}{x \cdot x} \cdot p}} \]
            8. Recombined 3 regimes into one program.
            9. Add Preprocessing

            Alternative 5: 98.9% accurate, 0.4× speedup?

            \[\begin{array}{l} p_m = \left|p\right| \\ \begin{array}{l} t_0 := \sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\_m\right) \cdot p\_m + x \cdot x}}\right)}\\ \mathbf{if}\;t\_0 \leq 0:\\ \;\;\;\;-\frac{p\_m}{x}\\ \mathbf{elif}\;t\_0 \leq 0.8:\\ \;\;\;\;\sqrt{\mathsf{fma}\left(\frac{x}{p\_m}, 0.25, 0.5\right)}\\ \mathbf{else}:\\ \;\;\;\;1\\ \end{array} \end{array} \]
            p_m = (fabs.f64 p)
            (FPCore (p_m x)
             :precision binary64
             (let* ((t_0
                     (sqrt (* 0.5 (+ 1.0 (/ x (sqrt (+ (* (* 4.0 p_m) p_m) (* x x)))))))))
               (if (<= t_0 0.0)
                 (- (/ p_m x))
                 (if (<= t_0 0.8) (sqrt (fma (/ x p_m) 0.25 0.5)) 1.0))))
            p_m = fabs(p);
            double code(double p_m, double x) {
            	double t_0 = sqrt((0.5 * (1.0 + (x / sqrt((((4.0 * p_m) * p_m) + (x * x)))))));
            	double tmp;
            	if (t_0 <= 0.0) {
            		tmp = -(p_m / x);
            	} else if (t_0 <= 0.8) {
            		tmp = sqrt(fma((x / p_m), 0.25, 0.5));
            	} else {
            		tmp = 1.0;
            	}
            	return tmp;
            }
            
            p_m = abs(p)
            function code(p_m, x)
            	t_0 = sqrt(Float64(0.5 * Float64(1.0 + Float64(x / sqrt(Float64(Float64(Float64(4.0 * p_m) * p_m) + Float64(x * x)))))))
            	tmp = 0.0
            	if (t_0 <= 0.0)
            		tmp = Float64(-Float64(p_m / x));
            	elseif (t_0 <= 0.8)
            		tmp = sqrt(fma(Float64(x / p_m), 0.25, 0.5));
            	else
            		tmp = 1.0;
            	end
            	return tmp
            end
            
            p_m = N[Abs[p], $MachinePrecision]
            code[p$95$m_, x_] := Block[{t$95$0 = N[Sqrt[N[(0.5 * N[(1.0 + N[(x / N[Sqrt[N[(N[(N[(4.0 * p$95$m), $MachinePrecision] * p$95$m), $MachinePrecision] + N[(x * x), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]}, If[LessEqual[t$95$0, 0.0], (-N[(p$95$m / x), $MachinePrecision]), If[LessEqual[t$95$0, 0.8], N[Sqrt[N[(N[(x / p$95$m), $MachinePrecision] * 0.25 + 0.5), $MachinePrecision]], $MachinePrecision], 1.0]]]
            
            \begin{array}{l}
            p_m = \left|p\right|
            
            \\
            \begin{array}{l}
            t_0 := \sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\_m\right) \cdot p\_m + x \cdot x}}\right)}\\
            \mathbf{if}\;t\_0 \leq 0:\\
            \;\;\;\;-\frac{p\_m}{x}\\
            
            \mathbf{elif}\;t\_0 \leq 0.8:\\
            \;\;\;\;\sqrt{\mathsf{fma}\left(\frac{x}{p\_m}, 0.25, 0.5\right)}\\
            
            \mathbf{else}:\\
            \;\;\;\;1\\
            
            
            \end{array}
            \end{array}
            
            Derivation
            1. Split input into 3 regimes
            2. if (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x))))))) < 0.0

              1. Initial program 79.1%

                \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
              2. Step-by-step derivation
                1. lift-*.f64N/A

                  \[\leadsto \sqrt{\color{blue}{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
                2. lift-+.f64N/A

                  \[\leadsto \sqrt{\frac{1}{2} \cdot \color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
                3. lift-/.f64N/A

                  \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \color{blue}{\frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
                4. lift-sqrt.f64N/A

                  \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\color{blue}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
                5. lift-+.f64N/A

                  \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
                6. lift-*.f64N/A

                  \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p} + x \cdot x}}\right)} \]
                7. lift-*.f64N/A

                  \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right)} \cdot p + x \cdot x}}\right)} \]
                8. lift-*.f64N/A

                  \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + \color{blue}{x \cdot x}}}\right)} \]
                9. *-commutativeN/A

                  \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
                10. lower-*.f64N/A

                  \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
              3. Applied rewrites79.2%

                \[\leadsto \color{blue}{\sqrt{\left(\frac{x}{\sqrt{\mathsf{fma}\left(x, x, \left(p \cdot 4\right) \cdot p\right)}} + 1\right) \cdot 0.5}} \]
              4. Taylor expanded in x around -inf

                \[\leadsto \color{blue}{-1 \cdot \frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x}} \]
              5. Step-by-step derivation
                1. mul-1-negN/A

                  \[\leadsto \mathsf{neg}\left(\frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x}\right) \]
                2. lower-neg.f64N/A

                  \[\leadsto -\frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x} \]
                3. sqrt-unprodN/A

                  \[\leadsto -\frac{p \cdot \sqrt{\frac{1}{2} \cdot 2}}{x} \]
                4. metadata-evalN/A

                  \[\leadsto -\frac{p \cdot \sqrt{1}}{x} \]
                5. metadata-evalN/A

                  \[\leadsto -\frac{p \cdot 1}{x} \]
                6. associate-/l*N/A

                  \[\leadsto -p \cdot \frac{1}{x} \]
                7. lower-*.f64N/A

                  \[\leadsto -p \cdot \frac{1}{x} \]
                8. lower-/.f6426.7

                  \[\leadsto -p \cdot \frac{1}{x} \]
              6. Applied rewrites26.7%

                \[\leadsto \color{blue}{-p \cdot \frac{1}{x}} \]
              7. Step-by-step derivation
                1. Applied rewrites26.8%

                  \[\leadsto \color{blue}{-\frac{p}{x}} \]

                if 0.0 < (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x))))))) < 0.80000000000000004

                1. Initial program 79.1%

                  \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
                2. Taylor expanded in p around inf

                  \[\leadsto \sqrt{\color{blue}{\frac{1}{2} + \frac{1}{4} \cdot \frac{x}{p}}} \]
                3. Step-by-step derivation
                  1. +-commutativeN/A

                    \[\leadsto \sqrt{\frac{1}{4} \cdot \frac{x}{p} + \color{blue}{\frac{1}{2}}} \]
                  2. *-commutativeN/A

                    \[\leadsto \sqrt{\frac{x}{p} \cdot \frac{1}{4} + \frac{1}{2}} \]
                  3. lower-fma.f64N/A

                    \[\leadsto \sqrt{\mathsf{fma}\left(\frac{x}{p}, \color{blue}{\frac{1}{4}}, \frac{1}{2}\right)} \]
                  4. lower-/.f6451.8

                    \[\leadsto \sqrt{\mathsf{fma}\left(\frac{x}{p}, 0.25, 0.5\right)} \]
                4. Applied rewrites51.8%

                  \[\leadsto \sqrt{\color{blue}{\mathsf{fma}\left(\frac{x}{p}, 0.25, 0.5\right)}} \]

                if 0.80000000000000004 < (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x)))))))

                1. Initial program 79.1%

                  \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
                2. Taylor expanded in p around 0

                  \[\leadsto \color{blue}{\sqrt{\frac{1}{2}} \cdot \sqrt{2}} \]
                3. Step-by-step derivation
                  1. sqrt-unprodN/A

                    \[\leadsto \sqrt{\frac{1}{2} \cdot 2} \]
                  2. metadata-evalN/A

                    \[\leadsto \sqrt{1} \]
                  3. metadata-eval35.8

                    \[\leadsto 1 \]
                4. Applied rewrites35.8%

                  \[\leadsto \color{blue}{1} \]
              8. Recombined 3 regimes into one program.
              9. Add Preprocessing

              Alternative 6: 98.4% accurate, 0.5× speedup?

              \[\begin{array}{l} p_m = \left|p\right| \\ \begin{array}{l} \mathbf{if}\;\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\_m\right) \cdot p\_m + x \cdot x}}\right)} \leq 0:\\ \;\;\;\;-\frac{p\_m}{x}\\ \mathbf{else}:\\ \;\;\;\;\sqrt{\left(\frac{x}{\mathsf{fma}\left(\frac{p\_m \cdot p\_m}{x}, 2, x\right)} - -1\right) \cdot 0.5}\\ \end{array} \end{array} \]
              p_m = (fabs.f64 p)
              (FPCore (p_m x)
               :precision binary64
               (if (<=
                    (sqrt (* 0.5 (+ 1.0 (/ x (sqrt (+ (* (* 4.0 p_m) p_m) (* x x)))))))
                    0.0)
                 (- (/ p_m x))
                 (sqrt (* (- (/ x (fma (/ (* p_m p_m) x) 2.0 x)) -1.0) 0.5))))
              p_m = fabs(p);
              double code(double p_m, double x) {
              	double tmp;
              	if (sqrt((0.5 * (1.0 + (x / sqrt((((4.0 * p_m) * p_m) + (x * x))))))) <= 0.0) {
              		tmp = -(p_m / x);
              	} else {
              		tmp = sqrt((((x / fma(((p_m * p_m) / x), 2.0, x)) - -1.0) * 0.5));
              	}
              	return tmp;
              }
              
              p_m = abs(p)
              function code(p_m, x)
              	tmp = 0.0
              	if (sqrt(Float64(0.5 * Float64(1.0 + Float64(x / sqrt(Float64(Float64(Float64(4.0 * p_m) * p_m) + Float64(x * x))))))) <= 0.0)
              		tmp = Float64(-Float64(p_m / x));
              	else
              		tmp = sqrt(Float64(Float64(Float64(x / fma(Float64(Float64(p_m * p_m) / x), 2.0, x)) - -1.0) * 0.5));
              	end
              	return tmp
              end
              
              p_m = N[Abs[p], $MachinePrecision]
              code[p$95$m_, x_] := If[LessEqual[N[Sqrt[N[(0.5 * N[(1.0 + N[(x / N[Sqrt[N[(N[(N[(4.0 * p$95$m), $MachinePrecision] * p$95$m), $MachinePrecision] + N[(x * x), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]], $MachinePrecision], 0.0], (-N[(p$95$m / x), $MachinePrecision]), N[Sqrt[N[(N[(N[(x / N[(N[(N[(p$95$m * p$95$m), $MachinePrecision] / x), $MachinePrecision] * 2.0 + x), $MachinePrecision]), $MachinePrecision] - -1.0), $MachinePrecision] * 0.5), $MachinePrecision]], $MachinePrecision]]
              
              \begin{array}{l}
              p_m = \left|p\right|
              
              \\
              \begin{array}{l}
              \mathbf{if}\;\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\_m\right) \cdot p\_m + x \cdot x}}\right)} \leq 0:\\
              \;\;\;\;-\frac{p\_m}{x}\\
              
              \mathbf{else}:\\
              \;\;\;\;\sqrt{\left(\frac{x}{\mathsf{fma}\left(\frac{p\_m \cdot p\_m}{x}, 2, x\right)} - -1\right) \cdot 0.5}\\
              
              
              \end{array}
              \end{array}
              
              Derivation
              1. Split input into 2 regimes
              2. if (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x))))))) < 0.0

                1. Initial program 79.1%

                  \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
                2. Step-by-step derivation
                  1. lift-*.f64N/A

                    \[\leadsto \sqrt{\color{blue}{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
                  2. lift-+.f64N/A

                    \[\leadsto \sqrt{\frac{1}{2} \cdot \color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
                  3. lift-/.f64N/A

                    \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \color{blue}{\frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
                  4. lift-sqrt.f64N/A

                    \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\color{blue}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
                  5. lift-+.f64N/A

                    \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
                  6. lift-*.f64N/A

                    \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p} + x \cdot x}}\right)} \]
                  7. lift-*.f64N/A

                    \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right)} \cdot p + x \cdot x}}\right)} \]
                  8. lift-*.f64N/A

                    \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + \color{blue}{x \cdot x}}}\right)} \]
                  9. *-commutativeN/A

                    \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
                  10. lower-*.f64N/A

                    \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
                3. Applied rewrites79.2%

                  \[\leadsto \color{blue}{\sqrt{\left(\frac{x}{\sqrt{\mathsf{fma}\left(x, x, \left(p \cdot 4\right) \cdot p\right)}} + 1\right) \cdot 0.5}} \]
                4. Taylor expanded in x around -inf

                  \[\leadsto \color{blue}{-1 \cdot \frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x}} \]
                5. Step-by-step derivation
                  1. mul-1-negN/A

                    \[\leadsto \mathsf{neg}\left(\frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x}\right) \]
                  2. lower-neg.f64N/A

                    \[\leadsto -\frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x} \]
                  3. sqrt-unprodN/A

                    \[\leadsto -\frac{p \cdot \sqrt{\frac{1}{2} \cdot 2}}{x} \]
                  4. metadata-evalN/A

                    \[\leadsto -\frac{p \cdot \sqrt{1}}{x} \]
                  5. metadata-evalN/A

                    \[\leadsto -\frac{p \cdot 1}{x} \]
                  6. associate-/l*N/A

                    \[\leadsto -p \cdot \frac{1}{x} \]
                  7. lower-*.f64N/A

                    \[\leadsto -p \cdot \frac{1}{x} \]
                  8. lower-/.f6426.7

                    \[\leadsto -p \cdot \frac{1}{x} \]
                6. Applied rewrites26.7%

                  \[\leadsto \color{blue}{-p \cdot \frac{1}{x}} \]
                7. Step-by-step derivation
                  1. Applied rewrites26.8%

                    \[\leadsto \color{blue}{-\frac{p}{x}} \]

                  if 0.0 < (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x)))))))

                  1. Initial program 79.1%

                    \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
                  2. Step-by-step derivation
                    1. lift-*.f64N/A

                      \[\leadsto \sqrt{\color{blue}{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
                    2. lift-+.f64N/A

                      \[\leadsto \sqrt{\frac{1}{2} \cdot \color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
                    3. lift-/.f64N/A

                      \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \color{blue}{\frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
                    4. lift-sqrt.f64N/A

                      \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\color{blue}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
                    5. lift-+.f64N/A

                      \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
                    6. lift-*.f64N/A

                      \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p} + x \cdot x}}\right)} \]
                    7. lift-*.f64N/A

                      \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right)} \cdot p + x \cdot x}}\right)} \]
                    8. lift-*.f64N/A

                      \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + \color{blue}{x \cdot x}}}\right)} \]
                    9. *-commutativeN/A

                      \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
                    10. lower-*.f64N/A

                      \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
                  3. Applied rewrites79.2%

                    \[\leadsto \color{blue}{\sqrt{\left(\frac{x}{\sqrt{\mathsf{fma}\left(x, x, \left(p \cdot 4\right) \cdot p\right)}} + 1\right) \cdot 0.5}} \]
                  4. Step-by-step derivation
                    1. Applied rewrites79.1%

                      \[\leadsto \color{blue}{\sqrt{\left(\frac{x}{\sqrt{\mathsf{fma}\left(p \cdot p, 4, x \cdot x\right)}} - -1\right) \cdot 0.5}} \]
                    2. Taylor expanded in p around 0

                      \[\leadsto \sqrt{\left(\frac{x}{\color{blue}{x + 2 \cdot \frac{{p}^{2}}{x}}} - -1\right) \cdot \frac{1}{2}} \]
                    3. Step-by-step derivation
                      1. +-commutativeN/A

                        \[\leadsto \sqrt{\left(\frac{x}{2 \cdot \frac{{p}^{2}}{x} + \color{blue}{x}} - -1\right) \cdot \frac{1}{2}} \]
                      2. *-commutativeN/A

                        \[\leadsto \sqrt{\left(\frac{x}{\frac{{p}^{2}}{x} \cdot 2 + x} - -1\right) \cdot \frac{1}{2}} \]
                      3. lower-fma.f64N/A

                        \[\leadsto \sqrt{\left(\frac{x}{\mathsf{fma}\left(\frac{{p}^{2}}{x}, \color{blue}{2}, x\right)} - -1\right) \cdot \frac{1}{2}} \]
                      4. lower-/.f64N/A

                        \[\leadsto \sqrt{\left(\frac{x}{\mathsf{fma}\left(\frac{{p}^{2}}{x}, 2, x\right)} - -1\right) \cdot \frac{1}{2}} \]
                      5. pow2N/A

                        \[\leadsto \sqrt{\left(\frac{x}{\mathsf{fma}\left(\frac{p \cdot p}{x}, 2, x\right)} - -1\right) \cdot \frac{1}{2}} \]
                      6. lift-*.f6475.4

                        \[\leadsto \sqrt{\left(\frac{x}{\mathsf{fma}\left(\frac{p \cdot p}{x}, 2, x\right)} - -1\right) \cdot 0.5} \]
                    4. Applied rewrites75.4%

                      \[\leadsto \sqrt{\left(\frac{x}{\color{blue}{\mathsf{fma}\left(\frac{p \cdot p}{x}, 2, x\right)}} - -1\right) \cdot 0.5} \]
                  5. Recombined 2 regimes into one program.
                  6. Add Preprocessing

                  Alternative 7: 98.3% accurate, 0.4× speedup?

                  \[\begin{array}{l} p_m = \left|p\right| \\ \begin{array}{l} t_0 := \sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\_m\right) \cdot p\_m + x \cdot x}}\right)}\\ \mathbf{if}\;t\_0 \leq 0:\\ \;\;\;\;-\frac{p\_m}{x}\\ \mathbf{elif}\;t\_0 \leq 0.8:\\ \;\;\;\;\sqrt{0.5}\\ \mathbf{else}:\\ \;\;\;\;1\\ \end{array} \end{array} \]
                  p_m = (fabs.f64 p)
                  (FPCore (p_m x)
                   :precision binary64
                   (let* ((t_0
                           (sqrt (* 0.5 (+ 1.0 (/ x (sqrt (+ (* (* 4.0 p_m) p_m) (* x x)))))))))
                     (if (<= t_0 0.0) (- (/ p_m x)) (if (<= t_0 0.8) (sqrt 0.5) 1.0))))
                  p_m = fabs(p);
                  double code(double p_m, double x) {
                  	double t_0 = sqrt((0.5 * (1.0 + (x / sqrt((((4.0 * p_m) * p_m) + (x * x)))))));
                  	double tmp;
                  	if (t_0 <= 0.0) {
                  		tmp = -(p_m / x);
                  	} else if (t_0 <= 0.8) {
                  		tmp = sqrt(0.5);
                  	} else {
                  		tmp = 1.0;
                  	}
                  	return tmp;
                  }
                  
                  p_m =     private
                  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(p_m, x)
                  use fmin_fmax_functions
                      real(8), intent (in) :: p_m
                      real(8), intent (in) :: x
                      real(8) :: t_0
                      real(8) :: tmp
                      t_0 = sqrt((0.5d0 * (1.0d0 + (x / sqrt((((4.0d0 * p_m) * p_m) + (x * x)))))))
                      if (t_0 <= 0.0d0) then
                          tmp = -(p_m / x)
                      else if (t_0 <= 0.8d0) then
                          tmp = sqrt(0.5d0)
                      else
                          tmp = 1.0d0
                      end if
                      code = tmp
                  end function
                  
                  p_m = Math.abs(p);
                  public static double code(double p_m, double x) {
                  	double t_0 = Math.sqrt((0.5 * (1.0 + (x / Math.sqrt((((4.0 * p_m) * p_m) + (x * x)))))));
                  	double tmp;
                  	if (t_0 <= 0.0) {
                  		tmp = -(p_m / x);
                  	} else if (t_0 <= 0.8) {
                  		tmp = Math.sqrt(0.5);
                  	} else {
                  		tmp = 1.0;
                  	}
                  	return tmp;
                  }
                  
                  p_m = math.fabs(p)
                  def code(p_m, x):
                  	t_0 = math.sqrt((0.5 * (1.0 + (x / math.sqrt((((4.0 * p_m) * p_m) + (x * x)))))))
                  	tmp = 0
                  	if t_0 <= 0.0:
                  		tmp = -(p_m / x)
                  	elif t_0 <= 0.8:
                  		tmp = math.sqrt(0.5)
                  	else:
                  		tmp = 1.0
                  	return tmp
                  
                  p_m = abs(p)
                  function code(p_m, x)
                  	t_0 = sqrt(Float64(0.5 * Float64(1.0 + Float64(x / sqrt(Float64(Float64(Float64(4.0 * p_m) * p_m) + Float64(x * x)))))))
                  	tmp = 0.0
                  	if (t_0 <= 0.0)
                  		tmp = Float64(-Float64(p_m / x));
                  	elseif (t_0 <= 0.8)
                  		tmp = sqrt(0.5);
                  	else
                  		tmp = 1.0;
                  	end
                  	return tmp
                  end
                  
                  p_m = abs(p);
                  function tmp_2 = code(p_m, x)
                  	t_0 = sqrt((0.5 * (1.0 + (x / sqrt((((4.0 * p_m) * p_m) + (x * x)))))));
                  	tmp = 0.0;
                  	if (t_0 <= 0.0)
                  		tmp = -(p_m / x);
                  	elseif (t_0 <= 0.8)
                  		tmp = sqrt(0.5);
                  	else
                  		tmp = 1.0;
                  	end
                  	tmp_2 = tmp;
                  end
                  
                  p_m = N[Abs[p], $MachinePrecision]
                  code[p$95$m_, x_] := Block[{t$95$0 = N[Sqrt[N[(0.5 * N[(1.0 + N[(x / N[Sqrt[N[(N[(N[(4.0 * p$95$m), $MachinePrecision] * p$95$m), $MachinePrecision] + N[(x * x), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]}, If[LessEqual[t$95$0, 0.0], (-N[(p$95$m / x), $MachinePrecision]), If[LessEqual[t$95$0, 0.8], N[Sqrt[0.5], $MachinePrecision], 1.0]]]
                  
                  \begin{array}{l}
                  p_m = \left|p\right|
                  
                  \\
                  \begin{array}{l}
                  t_0 := \sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\_m\right) \cdot p\_m + x \cdot x}}\right)}\\
                  \mathbf{if}\;t\_0 \leq 0:\\
                  \;\;\;\;-\frac{p\_m}{x}\\
                  
                  \mathbf{elif}\;t\_0 \leq 0.8:\\
                  \;\;\;\;\sqrt{0.5}\\
                  
                  \mathbf{else}:\\
                  \;\;\;\;1\\
                  
                  
                  \end{array}
                  \end{array}
                  
                  Derivation
                  1. Split input into 3 regimes
                  2. if (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x))))))) < 0.0

                    1. Initial program 79.1%

                      \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
                    2. Step-by-step derivation
                      1. lift-*.f64N/A

                        \[\leadsto \sqrt{\color{blue}{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
                      2. lift-+.f64N/A

                        \[\leadsto \sqrt{\frac{1}{2} \cdot \color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)}} \]
                      3. lift-/.f64N/A

                        \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \color{blue}{\frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
                      4. lift-sqrt.f64N/A

                        \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\color{blue}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
                      5. lift-+.f64N/A

                        \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p + x \cdot x}}}\right)} \]
                      6. lift-*.f64N/A

                        \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right) \cdot p} + x \cdot x}}\right)} \]
                      7. lift-*.f64N/A

                        \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\color{blue}{\left(4 \cdot p\right)} \cdot p + x \cdot x}}\right)} \]
                      8. lift-*.f64N/A

                        \[\leadsto \sqrt{\frac{1}{2} \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + \color{blue}{x \cdot x}}}\right)} \]
                      9. *-commutativeN/A

                        \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
                      10. lower-*.f64N/A

                        \[\leadsto \sqrt{\color{blue}{\left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right) \cdot \frac{1}{2}}} \]
                    3. Applied rewrites79.2%

                      \[\leadsto \color{blue}{\sqrt{\left(\frac{x}{\sqrt{\mathsf{fma}\left(x, x, \left(p \cdot 4\right) \cdot p\right)}} + 1\right) \cdot 0.5}} \]
                    4. Taylor expanded in x around -inf

                      \[\leadsto \color{blue}{-1 \cdot \frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x}} \]
                    5. Step-by-step derivation
                      1. mul-1-negN/A

                        \[\leadsto \mathsf{neg}\left(\frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x}\right) \]
                      2. lower-neg.f64N/A

                        \[\leadsto -\frac{p \cdot \left(\sqrt{\frac{1}{2}} \cdot \sqrt{2}\right)}{x} \]
                      3. sqrt-unprodN/A

                        \[\leadsto -\frac{p \cdot \sqrt{\frac{1}{2} \cdot 2}}{x} \]
                      4. metadata-evalN/A

                        \[\leadsto -\frac{p \cdot \sqrt{1}}{x} \]
                      5. metadata-evalN/A

                        \[\leadsto -\frac{p \cdot 1}{x} \]
                      6. associate-/l*N/A

                        \[\leadsto -p \cdot \frac{1}{x} \]
                      7. lower-*.f64N/A

                        \[\leadsto -p \cdot \frac{1}{x} \]
                      8. lower-/.f6426.7

                        \[\leadsto -p \cdot \frac{1}{x} \]
                    6. Applied rewrites26.7%

                      \[\leadsto \color{blue}{-p \cdot \frac{1}{x}} \]
                    7. Step-by-step derivation
                      1. Applied rewrites26.8%

                        \[\leadsto \color{blue}{-\frac{p}{x}} \]

                      if 0.0 < (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x))))))) < 0.80000000000000004

                      1. Initial program 79.1%

                        \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
                      2. Taylor expanded in p around inf

                        \[\leadsto \sqrt{\color{blue}{\frac{1}{2}}} \]
                      3. Step-by-step derivation
                        1. Applied rewrites55.7%

                          \[\leadsto \sqrt{\color{blue}{0.5}} \]

                        if 0.80000000000000004 < (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x)))))))

                        1. Initial program 79.1%

                          \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
                        2. Taylor expanded in p around 0

                          \[\leadsto \color{blue}{\sqrt{\frac{1}{2}} \cdot \sqrt{2}} \]
                        3. Step-by-step derivation
                          1. sqrt-unprodN/A

                            \[\leadsto \sqrt{\frac{1}{2} \cdot 2} \]
                          2. metadata-evalN/A

                            \[\leadsto \sqrt{1} \]
                          3. metadata-eval35.8

                            \[\leadsto 1 \]
                        4. Applied rewrites35.8%

                          \[\leadsto \color{blue}{1} \]
                      4. Recombined 3 regimes into one program.
                      5. Add Preprocessing

                      Alternative 8: 75.3% accurate, 0.8× speedup?

                      \[\begin{array}{l} p_m = \left|p\right| \\ \begin{array}{l} \mathbf{if}\;\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\_m\right) \cdot p\_m + x \cdot x}}\right)} \leq 0.86:\\ \;\;\;\;\sqrt{0.5}\\ \mathbf{else}:\\ \;\;\;\;1\\ \end{array} \end{array} \]
                      p_m = (fabs.f64 p)
                      (FPCore (p_m x)
                       :precision binary64
                       (if (<=
                            (sqrt (* 0.5 (+ 1.0 (/ x (sqrt (+ (* (* 4.0 p_m) p_m) (* x x)))))))
                            0.86)
                         (sqrt 0.5)
                         1.0))
                      p_m = fabs(p);
                      double code(double p_m, double x) {
                      	double tmp;
                      	if (sqrt((0.5 * (1.0 + (x / sqrt((((4.0 * p_m) * p_m) + (x * x))))))) <= 0.86) {
                      		tmp = sqrt(0.5);
                      	} else {
                      		tmp = 1.0;
                      	}
                      	return tmp;
                      }
                      
                      p_m =     private
                      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(p_m, x)
                      use fmin_fmax_functions
                          real(8), intent (in) :: p_m
                          real(8), intent (in) :: x
                          real(8) :: tmp
                          if (sqrt((0.5d0 * (1.0d0 + (x / sqrt((((4.0d0 * p_m) * p_m) + (x * x))))))) <= 0.86d0) then
                              tmp = sqrt(0.5d0)
                          else
                              tmp = 1.0d0
                          end if
                          code = tmp
                      end function
                      
                      p_m = Math.abs(p);
                      public static double code(double p_m, double x) {
                      	double tmp;
                      	if (Math.sqrt((0.5 * (1.0 + (x / Math.sqrt((((4.0 * p_m) * p_m) + (x * x))))))) <= 0.86) {
                      		tmp = Math.sqrt(0.5);
                      	} else {
                      		tmp = 1.0;
                      	}
                      	return tmp;
                      }
                      
                      p_m = math.fabs(p)
                      def code(p_m, x):
                      	tmp = 0
                      	if math.sqrt((0.5 * (1.0 + (x / math.sqrt((((4.0 * p_m) * p_m) + (x * x))))))) <= 0.86:
                      		tmp = math.sqrt(0.5)
                      	else:
                      		tmp = 1.0
                      	return tmp
                      
                      p_m = abs(p)
                      function code(p_m, x)
                      	tmp = 0.0
                      	if (sqrt(Float64(0.5 * Float64(1.0 + Float64(x / sqrt(Float64(Float64(Float64(4.0 * p_m) * p_m) + Float64(x * x))))))) <= 0.86)
                      		tmp = sqrt(0.5);
                      	else
                      		tmp = 1.0;
                      	end
                      	return tmp
                      end
                      
                      p_m = abs(p);
                      function tmp_2 = code(p_m, x)
                      	tmp = 0.0;
                      	if (sqrt((0.5 * (1.0 + (x / sqrt((((4.0 * p_m) * p_m) + (x * x))))))) <= 0.86)
                      		tmp = sqrt(0.5);
                      	else
                      		tmp = 1.0;
                      	end
                      	tmp_2 = tmp;
                      end
                      
                      p_m = N[Abs[p], $MachinePrecision]
                      code[p$95$m_, x_] := If[LessEqual[N[Sqrt[N[(0.5 * N[(1.0 + N[(x / N[Sqrt[N[(N[(N[(4.0 * p$95$m), $MachinePrecision] * p$95$m), $MachinePrecision] + N[(x * x), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]], $MachinePrecision], 0.86], N[Sqrt[0.5], $MachinePrecision], 1.0]
                      
                      \begin{array}{l}
                      p_m = \left|p\right|
                      
                      \\
                      \begin{array}{l}
                      \mathbf{if}\;\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\_m\right) \cdot p\_m + x \cdot x}}\right)} \leq 0.86:\\
                      \;\;\;\;\sqrt{0.5}\\
                      
                      \mathbf{else}:\\
                      \;\;\;\;1\\
                      
                      
                      \end{array}
                      \end{array}
                      
                      Derivation
                      1. Split input into 2 regimes
                      2. if (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x))))))) < 0.859999999999999987

                        1. Initial program 79.1%

                          \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
                        2. Taylor expanded in p around inf

                          \[\leadsto \sqrt{\color{blue}{\frac{1}{2}}} \]
                        3. Step-by-step derivation
                          1. Applied rewrites55.7%

                            \[\leadsto \sqrt{\color{blue}{0.5}} \]

                          if 0.859999999999999987 < (sqrt.f64 (*.f64 #s(literal 1/2 binary64) (+.f64 #s(literal 1 binary64) (/.f64 x (sqrt.f64 (+.f64 (*.f64 (*.f64 #s(literal 4 binary64) p) p) (*.f64 x x)))))))

                          1. Initial program 79.1%

                            \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
                          2. Taylor expanded in p around 0

                            \[\leadsto \color{blue}{\sqrt{\frac{1}{2}} \cdot \sqrt{2}} \]
                          3. Step-by-step derivation
                            1. sqrt-unprodN/A

                              \[\leadsto \sqrt{\frac{1}{2} \cdot 2} \]
                            2. metadata-evalN/A

                              \[\leadsto \sqrt{1} \]
                            3. metadata-eval35.8

                              \[\leadsto 1 \]
                          4. Applied rewrites35.8%

                            \[\leadsto \color{blue}{1} \]
                        4. Recombined 2 regimes into one program.
                        5. Add Preprocessing

                        Alternative 9: 35.8% accurate, 25.2× speedup?

                        \[\begin{array}{l} p_m = \left|p\right| \\ 1 \end{array} \]
                        p_m = (fabs.f64 p)
                        (FPCore (p_m x) :precision binary64 1.0)
                        p_m = fabs(p);
                        double code(double p_m, double x) {
                        	return 1.0;
                        }
                        
                        p_m =     private
                        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(p_m, x)
                        use fmin_fmax_functions
                            real(8), intent (in) :: p_m
                            real(8), intent (in) :: x
                            code = 1.0d0
                        end function
                        
                        p_m = Math.abs(p);
                        public static double code(double p_m, double x) {
                        	return 1.0;
                        }
                        
                        p_m = math.fabs(p)
                        def code(p_m, x):
                        	return 1.0
                        
                        p_m = abs(p)
                        function code(p_m, x)
                        	return 1.0
                        end
                        
                        p_m = abs(p);
                        function tmp = code(p_m, x)
                        	tmp = 1.0;
                        end
                        
                        p_m = N[Abs[p], $MachinePrecision]
                        code[p$95$m_, x_] := 1.0
                        
                        \begin{array}{l}
                        p_m = \left|p\right|
                        
                        \\
                        1
                        \end{array}
                        
                        Derivation
                        1. Initial program 79.1%

                          \[\sqrt{0.5 \cdot \left(1 + \frac{x}{\sqrt{\left(4 \cdot p\right) \cdot p + x \cdot x}}\right)} \]
                        2. Taylor expanded in p around 0

                          \[\leadsto \color{blue}{\sqrt{\frac{1}{2}} \cdot \sqrt{2}} \]
                        3. Step-by-step derivation
                          1. sqrt-unprodN/A

                            \[\leadsto \sqrt{\frac{1}{2} \cdot 2} \]
                          2. metadata-evalN/A

                            \[\leadsto \sqrt{1} \]
                          3. metadata-eval35.8

                            \[\leadsto 1 \]
                        4. Applied rewrites35.8%

                          \[\leadsto \color{blue}{1} \]
                        5. Add Preprocessing

                        Developer Target 1: 79.1% accurate, 0.8× speedup?

                        \[\begin{array}{l} \\ \sqrt{0.5 + \frac{\mathsf{copysign}\left(0.5, x\right)}{\mathsf{hypot}\left(1, \frac{2 \cdot p}{x}\right)}} \end{array} \]
                        (FPCore (p x)
                         :precision binary64
                         (sqrt (+ 0.5 (/ (copysign 0.5 x) (hypot 1.0 (/ (* 2.0 p) x))))))
                        double code(double p, double x) {
                        	return sqrt((0.5 + (copysign(0.5, x) / hypot(1.0, ((2.0 * p) / x)))));
                        }
                        
                        public static double code(double p, double x) {
                        	return Math.sqrt((0.5 + (Math.copySign(0.5, x) / Math.hypot(1.0, ((2.0 * p) / x)))));
                        }
                        
                        def code(p, x):
                        	return math.sqrt((0.5 + (math.copysign(0.5, x) / math.hypot(1.0, ((2.0 * p) / x)))))
                        
                        function code(p, x)
                        	return sqrt(Float64(0.5 + Float64(copysign(0.5, x) / hypot(1.0, Float64(Float64(2.0 * p) / x)))))
                        end
                        
                        function tmp = code(p, x)
                        	tmp = sqrt((0.5 + ((sign(x) * abs(0.5)) / hypot(1.0, ((2.0 * p) / x)))));
                        end
                        
                        code[p_, x_] := N[Sqrt[N[(0.5 + N[(N[With[{TMP1 = Abs[0.5], TMP2 = Sign[x]}, TMP1 * If[TMP2 == 0, 1, TMP2]], $MachinePrecision] / N[Sqrt[1.0 ^ 2 + N[(N[(2.0 * p), $MachinePrecision] / x), $MachinePrecision] ^ 2], $MachinePrecision]), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]
                        
                        \begin{array}{l}
                        
                        \\
                        \sqrt{0.5 + \frac{\mathsf{copysign}\left(0.5, x\right)}{\mathsf{hypot}\left(1, \frac{2 \cdot p}{x}\right)}}
                        \end{array}
                        

                        Reproduce

                        ?
                        herbie shell --seed 2025134 
                        (FPCore (p x)
                          :name "Given's Rotation SVD example"
                          :precision binary64
                          :pre (and (< 1e-150 (fabs x)) (< (fabs x) 1e+150))
                        
                          :alt
                          (! :herbie-platform c (sqrt (+ 1/2 (/ (copysign 1/2 x) (hypot 1 (/ (* 2 p) x))))))
                        
                          (sqrt (* 0.5 (+ 1.0 (/ x (sqrt (+ (* (* 4.0 p) p) (* x x))))))))