
(FPCore (a b c) :precision binary64 (/ (- (- b) (sqrt (- (* b b) (* 4.0 (* a c))))) (* 2.0 a)))
double code(double a, double b, double c) {
return (-b - sqrt(((b * b) - (4.0 * (a * c))))) / (2.0 * a);
}
real(8) function code(a, b, c)
real(8), intent (in) :: a
real(8), intent (in) :: b
real(8), intent (in) :: c
code = (-b - sqrt(((b * b) - (4.0d0 * (a * c))))) / (2.0d0 * a)
end function
public static double code(double a, double b, double c) {
return (-b - Math.sqrt(((b * b) - (4.0 * (a * c))))) / (2.0 * a);
}
def code(a, b, c): return (-b - math.sqrt(((b * b) - (4.0 * (a * c))))) / (2.0 * a)
function code(a, b, c) return Float64(Float64(Float64(-b) - sqrt(Float64(Float64(b * b) - Float64(4.0 * Float64(a * c))))) / Float64(2.0 * a)) end
function tmp = code(a, b, c) tmp = (-b - sqrt(((b * b) - (4.0 * (a * c))))) / (2.0 * a); end
code[a_, b_, c_] := N[(N[((-b) - N[Sqrt[N[(N[(b * b), $MachinePrecision] - N[(4.0 * N[(a * c), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]), $MachinePrecision] / N[(2.0 * a), $MachinePrecision]), $MachinePrecision]
\begin{array}{l}
\\
\frac{\left(-b\right) - \sqrt{b \cdot b - 4 \cdot \left(a \cdot c\right)}}{2 \cdot a}
\end{array}
Sampling outcomes in binary64 precision:
Herbie found 7 alternatives:
| Alternative | Accuracy | Speedup |
|---|
(FPCore (a b c) :precision binary64 (/ (- (- b) (sqrt (- (* b b) (* 4.0 (* a c))))) (* 2.0 a)))
double code(double a, double b, double c) {
return (-b - sqrt(((b * b) - (4.0 * (a * c))))) / (2.0 * a);
}
real(8) function code(a, b, c)
real(8), intent (in) :: a
real(8), intent (in) :: b
real(8), intent (in) :: c
code = (-b - sqrt(((b * b) - (4.0d0 * (a * c))))) / (2.0d0 * a)
end function
public static double code(double a, double b, double c) {
return (-b - Math.sqrt(((b * b) - (4.0 * (a * c))))) / (2.0 * a);
}
def code(a, b, c): return (-b - math.sqrt(((b * b) - (4.0 * (a * c))))) / (2.0 * a)
function code(a, b, c) return Float64(Float64(Float64(-b) - sqrt(Float64(Float64(b * b) - Float64(4.0 * Float64(a * c))))) / Float64(2.0 * a)) end
function tmp = code(a, b, c) tmp = (-b - sqrt(((b * b) - (4.0 * (a * c))))) / (2.0 * a); end
code[a_, b_, c_] := N[(N[((-b) - N[Sqrt[N[(N[(b * b), $MachinePrecision] - N[(4.0 * N[(a * c), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]), $MachinePrecision] / N[(2.0 * a), $MachinePrecision]), $MachinePrecision]
\begin{array}{l}
\\
\frac{\left(-b\right) - \sqrt{b \cdot b - 4 \cdot \left(a \cdot c\right)}}{2 \cdot a}
\end{array}
(FPCore (a b c)
:precision binary64
(if (<= b -6e-78)
(/ c (- b))
(if (<= b 2e+106)
(/ (- (- b) (sqrt (- (* b b) (* 4.0 (* c a))))) (* a 2.0))
(- (/ c b) (/ b a)))))
double code(double a, double b, double c) {
double tmp;
if (b <= -6e-78) {
tmp = c / -b;
} else if (b <= 2e+106) {
tmp = (-b - sqrt(((b * b) - (4.0 * (c * a))))) / (a * 2.0);
} else {
tmp = (c / b) - (b / a);
}
return tmp;
}
real(8) function code(a, b, c)
real(8), intent (in) :: a
real(8), intent (in) :: b
real(8), intent (in) :: c
real(8) :: tmp
if (b <= (-6d-78)) then
tmp = c / -b
else if (b <= 2d+106) then
tmp = (-b - sqrt(((b * b) - (4.0d0 * (c * a))))) / (a * 2.0d0)
else
tmp = (c / b) - (b / a)
end if
code = tmp
end function
public static double code(double a, double b, double c) {
double tmp;
if (b <= -6e-78) {
tmp = c / -b;
} else if (b <= 2e+106) {
tmp = (-b - Math.sqrt(((b * b) - (4.0 * (c * a))))) / (a * 2.0);
} else {
tmp = (c / b) - (b / a);
}
return tmp;
}
def code(a, b, c): tmp = 0 if b <= -6e-78: tmp = c / -b elif b <= 2e+106: tmp = (-b - math.sqrt(((b * b) - (4.0 * (c * a))))) / (a * 2.0) else: tmp = (c / b) - (b / a) return tmp
function code(a, b, c) tmp = 0.0 if (b <= -6e-78) tmp = Float64(c / Float64(-b)); elseif (b <= 2e+106) tmp = Float64(Float64(Float64(-b) - sqrt(Float64(Float64(b * b) - Float64(4.0 * Float64(c * a))))) / Float64(a * 2.0)); else tmp = Float64(Float64(c / b) - Float64(b / a)); end return tmp end
function tmp_2 = code(a, b, c) tmp = 0.0; if (b <= -6e-78) tmp = c / -b; elseif (b <= 2e+106) tmp = (-b - sqrt(((b * b) - (4.0 * (c * a))))) / (a * 2.0); else tmp = (c / b) - (b / a); end tmp_2 = tmp; end
code[a_, b_, c_] := If[LessEqual[b, -6e-78], N[(c / (-b)), $MachinePrecision], If[LessEqual[b, 2e+106], N[(N[((-b) - N[Sqrt[N[(N[(b * b), $MachinePrecision] - N[(4.0 * N[(c * a), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]), $MachinePrecision] / N[(a * 2.0), $MachinePrecision]), $MachinePrecision], N[(N[(c / b), $MachinePrecision] - N[(b / a), $MachinePrecision]), $MachinePrecision]]]
\begin{array}{l}
\\
\begin{array}{l}
\mathbf{if}\;b \leq -6 \cdot 10^{-78}:\\
\;\;\;\;\frac{c}{-b}\\
\mathbf{elif}\;b \leq 2 \cdot 10^{+106}:\\
\;\;\;\;\frac{\left(-b\right) - \sqrt{b \cdot b - 4 \cdot \left(c \cdot a\right)}}{a \cdot 2}\\
\mathbf{else}:\\
\;\;\;\;\frac{c}{b} - \frac{b}{a}\\
\end{array}
\end{array}
if b < -5.99999999999999975e-78Initial program 14.8%
div-sub14.3%
sub-neg14.3%
neg-mul-114.3%
*-commutative14.3%
associate-/l*11.2%
distribute-neg-frac11.2%
neg-mul-111.2%
*-commutative11.2%
associate-/l*14.3%
distribute-rgt-out14.8%
associate-/r*14.8%
metadata-eval14.8%
sub-neg14.8%
+-commutative14.8%
Simplified14.8%
Taylor expanded in b around -inf 86.8%
mul-1-neg86.8%
distribute-neg-frac286.8%
Simplified86.8%
if -5.99999999999999975e-78 < b < 2.00000000000000018e106Initial program 88.8%
if 2.00000000000000018e106 < b Initial program 55.8%
div-sub55.8%
sub-neg55.8%
neg-mul-155.8%
*-commutative55.8%
associate-/l*55.8%
distribute-neg-frac55.8%
neg-mul-155.8%
*-commutative55.8%
associate-/l*55.7%
distribute-rgt-out55.7%
associate-/r*55.7%
metadata-eval55.7%
sub-neg55.7%
+-commutative55.7%
Simplified56.0%
Taylor expanded in c around 0 96.9%
+-commutative96.9%
mul-1-neg96.9%
unsub-neg96.9%
Simplified96.9%
Final simplification89.7%
(FPCore (a b c)
:precision binary64
(if (<= b -1.35e-78)
(/ c (- b))
(if (<= b 2.75e-39)
(/ (- (- b) (sqrt (* (* c a) -4.0))) (* a 2.0))
(- (/ c b) (/ b a)))))
double code(double a, double b, double c) {
double tmp;
if (b <= -1.35e-78) {
tmp = c / -b;
} else if (b <= 2.75e-39) {
tmp = (-b - sqrt(((c * a) * -4.0))) / (a * 2.0);
} else {
tmp = (c / b) - (b / a);
}
return tmp;
}
real(8) function code(a, b, c)
real(8), intent (in) :: a
real(8), intent (in) :: b
real(8), intent (in) :: c
real(8) :: tmp
if (b <= (-1.35d-78)) then
tmp = c / -b
else if (b <= 2.75d-39) then
tmp = (-b - sqrt(((c * a) * (-4.0d0)))) / (a * 2.0d0)
else
tmp = (c / b) - (b / a)
end if
code = tmp
end function
public static double code(double a, double b, double c) {
double tmp;
if (b <= -1.35e-78) {
tmp = c / -b;
} else if (b <= 2.75e-39) {
tmp = (-b - Math.sqrt(((c * a) * -4.0))) / (a * 2.0);
} else {
tmp = (c / b) - (b / a);
}
return tmp;
}
def code(a, b, c): tmp = 0 if b <= -1.35e-78: tmp = c / -b elif b <= 2.75e-39: tmp = (-b - math.sqrt(((c * a) * -4.0))) / (a * 2.0) else: tmp = (c / b) - (b / a) return tmp
function code(a, b, c) tmp = 0.0 if (b <= -1.35e-78) tmp = Float64(c / Float64(-b)); elseif (b <= 2.75e-39) tmp = Float64(Float64(Float64(-b) - sqrt(Float64(Float64(c * a) * -4.0))) / Float64(a * 2.0)); else tmp = Float64(Float64(c / b) - Float64(b / a)); end return tmp end
function tmp_2 = code(a, b, c) tmp = 0.0; if (b <= -1.35e-78) tmp = c / -b; elseif (b <= 2.75e-39) tmp = (-b - sqrt(((c * a) * -4.0))) / (a * 2.0); else tmp = (c / b) - (b / a); end tmp_2 = tmp; end
code[a_, b_, c_] := If[LessEqual[b, -1.35e-78], N[(c / (-b)), $MachinePrecision], If[LessEqual[b, 2.75e-39], N[(N[((-b) - N[Sqrt[N[(N[(c * a), $MachinePrecision] * -4.0), $MachinePrecision]], $MachinePrecision]), $MachinePrecision] / N[(a * 2.0), $MachinePrecision]), $MachinePrecision], N[(N[(c / b), $MachinePrecision] - N[(b / a), $MachinePrecision]), $MachinePrecision]]]
\begin{array}{l}
\\
\begin{array}{l}
\mathbf{if}\;b \leq -1.35 \cdot 10^{-78}:\\
\;\;\;\;\frac{c}{-b}\\
\mathbf{elif}\;b \leq 2.75 \cdot 10^{-39}:\\
\;\;\;\;\frac{\left(-b\right) - \sqrt{\left(c \cdot a\right) \cdot -4}}{a \cdot 2}\\
\mathbf{else}:\\
\;\;\;\;\frac{c}{b} - \frac{b}{a}\\
\end{array}
\end{array}
if b < -1.34999999999999997e-78Initial program 14.8%
div-sub14.3%
sub-neg14.3%
neg-mul-114.3%
*-commutative14.3%
associate-/l*11.2%
distribute-neg-frac11.2%
neg-mul-111.2%
*-commutative11.2%
associate-/l*14.3%
distribute-rgt-out14.8%
associate-/r*14.8%
metadata-eval14.8%
sub-neg14.8%
+-commutative14.8%
Simplified14.8%
Taylor expanded in b around -inf 86.8%
mul-1-neg86.8%
distribute-neg-frac286.8%
Simplified86.8%
if -1.34999999999999997e-78 < b < 2.75000000000000009e-39Initial program 82.9%
*-commutative82.9%
*-commutative82.9%
sqr-neg82.9%
*-commutative82.9%
sqr-neg82.9%
*-commutative82.9%
associate-*r*82.9%
Simplified82.9%
Taylor expanded in b around 0 79.1%
*-commutative79.1%
Simplified79.1%
if 2.75000000000000009e-39 < b Initial program 75.0%
div-sub75.0%
sub-neg75.0%
neg-mul-175.0%
*-commutative75.0%
associate-/l*74.9%
distribute-neg-frac74.9%
neg-mul-174.9%
*-commutative74.9%
associate-/l*74.9%
distribute-rgt-out74.8%
associate-/r*74.8%
metadata-eval74.8%
sub-neg74.8%
+-commutative74.8%
Simplified75.0%
Taylor expanded in c around 0 87.6%
+-commutative87.6%
mul-1-neg87.6%
unsub-neg87.6%
Simplified87.6%
Final simplification85.1%
(FPCore (a b c) :precision binary64 (if (<= b -5e-310) (/ c (- b)) (- (/ c b) (/ b a))))
double code(double a, double b, double c) {
double tmp;
if (b <= -5e-310) {
tmp = c / -b;
} else {
tmp = (c / b) - (b / a);
}
return tmp;
}
real(8) function code(a, b, c)
real(8), intent (in) :: a
real(8), intent (in) :: b
real(8), intent (in) :: c
real(8) :: tmp
if (b <= (-5d-310)) then
tmp = c / -b
else
tmp = (c / b) - (b / a)
end if
code = tmp
end function
public static double code(double a, double b, double c) {
double tmp;
if (b <= -5e-310) {
tmp = c / -b;
} else {
tmp = (c / b) - (b / a);
}
return tmp;
}
def code(a, b, c): tmp = 0 if b <= -5e-310: tmp = c / -b else: tmp = (c / b) - (b / a) return tmp
function code(a, b, c) tmp = 0.0 if (b <= -5e-310) tmp = Float64(c / Float64(-b)); else tmp = Float64(Float64(c / b) - Float64(b / a)); end return tmp end
function tmp_2 = code(a, b, c) tmp = 0.0; if (b <= -5e-310) tmp = c / -b; else tmp = (c / b) - (b / a); end tmp_2 = tmp; end
code[a_, b_, c_] := If[LessEqual[b, -5e-310], N[(c / (-b)), $MachinePrecision], N[(N[(c / b), $MachinePrecision] - N[(b / a), $MachinePrecision]), $MachinePrecision]]
\begin{array}{l}
\\
\begin{array}{l}
\mathbf{if}\;b \leq -5 \cdot 10^{-310}:\\
\;\;\;\;\frac{c}{-b}\\
\mathbf{else}:\\
\;\;\;\;\frac{c}{b} - \frac{b}{a}\\
\end{array}
\end{array}
if b < -4.999999999999985e-310Initial program 31.4%
div-sub31.1%
sub-neg31.1%
neg-mul-131.1%
*-commutative31.1%
associate-/l*28.7%
distribute-neg-frac28.7%
neg-mul-128.7%
*-commutative28.7%
associate-/l*31.0%
distribute-rgt-out31.4%
associate-/r*31.4%
metadata-eval31.4%
sub-neg31.4%
+-commutative31.4%
Simplified31.4%
Taylor expanded in b around -inf 68.5%
mul-1-neg68.5%
distribute-neg-frac268.5%
Simplified68.5%
if -4.999999999999985e-310 < b Initial program 77.0%
div-sub77.0%
sub-neg77.0%
neg-mul-177.0%
*-commutative77.0%
associate-/l*77.0%
distribute-neg-frac77.0%
neg-mul-177.0%
*-commutative77.0%
associate-/l*76.9%
distribute-rgt-out76.9%
associate-/r*76.9%
metadata-eval76.9%
sub-neg76.9%
+-commutative76.9%
Simplified77.0%
Taylor expanded in c around 0 67.2%
+-commutative67.2%
mul-1-neg67.2%
unsub-neg67.2%
Simplified67.2%
(FPCore (a b c) :precision binary64 (if (<= b -5e-310) (/ c (- b)) (/ b (- a))))
double code(double a, double b, double c) {
double tmp;
if (b <= -5e-310) {
tmp = c / -b;
} else {
tmp = b / -a;
}
return tmp;
}
real(8) function code(a, b, c)
real(8), intent (in) :: a
real(8), intent (in) :: b
real(8), intent (in) :: c
real(8) :: tmp
if (b <= (-5d-310)) then
tmp = c / -b
else
tmp = b / -a
end if
code = tmp
end function
public static double code(double a, double b, double c) {
double tmp;
if (b <= -5e-310) {
tmp = c / -b;
} else {
tmp = b / -a;
}
return tmp;
}
def code(a, b, c): tmp = 0 if b <= -5e-310: tmp = c / -b else: tmp = b / -a return tmp
function code(a, b, c) tmp = 0.0 if (b <= -5e-310) tmp = Float64(c / Float64(-b)); else tmp = Float64(b / Float64(-a)); end return tmp end
function tmp_2 = code(a, b, c) tmp = 0.0; if (b <= -5e-310) tmp = c / -b; else tmp = b / -a; end tmp_2 = tmp; end
code[a_, b_, c_] := If[LessEqual[b, -5e-310], N[(c / (-b)), $MachinePrecision], N[(b / (-a)), $MachinePrecision]]
\begin{array}{l}
\\
\begin{array}{l}
\mathbf{if}\;b \leq -5 \cdot 10^{-310}:\\
\;\;\;\;\frac{c}{-b}\\
\mathbf{else}:\\
\;\;\;\;\frac{b}{-a}\\
\end{array}
\end{array}
if b < -4.999999999999985e-310Initial program 31.4%
div-sub31.1%
sub-neg31.1%
neg-mul-131.1%
*-commutative31.1%
associate-/l*28.7%
distribute-neg-frac28.7%
neg-mul-128.7%
*-commutative28.7%
associate-/l*31.0%
distribute-rgt-out31.4%
associate-/r*31.4%
metadata-eval31.4%
sub-neg31.4%
+-commutative31.4%
Simplified31.4%
Taylor expanded in b around -inf 68.5%
mul-1-neg68.5%
distribute-neg-frac268.5%
Simplified68.5%
if -4.999999999999985e-310 < b Initial program 77.0%
div-sub77.0%
sub-neg77.0%
neg-mul-177.0%
*-commutative77.0%
associate-/l*77.0%
distribute-neg-frac77.0%
neg-mul-177.0%
*-commutative77.0%
associate-/l*76.9%
distribute-rgt-out76.9%
associate-/r*76.9%
metadata-eval76.9%
sub-neg76.9%
+-commutative76.9%
Simplified77.0%
Taylor expanded in a around 0 66.9%
associate-*r/66.9%
mul-1-neg66.9%
Simplified66.9%
Final simplification67.7%
(FPCore (a b c) :precision binary64 (/ c (- b)))
double code(double a, double b, double c) {
return c / -b;
}
real(8) function code(a, b, c)
real(8), intent (in) :: a
real(8), intent (in) :: b
real(8), intent (in) :: c
code = c / -b
end function
public static double code(double a, double b, double c) {
return c / -b;
}
def code(a, b, c): return c / -b
function code(a, b, c) return Float64(c / Float64(-b)) end
function tmp = code(a, b, c) tmp = c / -b; end
code[a_, b_, c_] := N[(c / (-b)), $MachinePrecision]
\begin{array}{l}
\\
\frac{c}{-b}
\end{array}
Initial program 54.9%
div-sub54.8%
sub-neg54.8%
neg-mul-154.8%
*-commutative54.8%
associate-/l*53.6%
distribute-neg-frac53.6%
neg-mul-153.6%
*-commutative53.6%
associate-/l*54.7%
distribute-rgt-out54.8%
associate-/r*54.8%
metadata-eval54.8%
sub-neg54.8%
+-commutative54.8%
Simplified54.9%
Taylor expanded in b around -inf 34.2%
mul-1-neg34.2%
distribute-neg-frac234.2%
Simplified34.2%
(FPCore (a b c) :precision binary64 (/ c b))
double code(double a, double b, double c) {
return c / b;
}
real(8) function code(a, b, c)
real(8), intent (in) :: a
real(8), intent (in) :: b
real(8), intent (in) :: c
code = c / b
end function
public static double code(double a, double b, double c) {
return c / b;
}
def code(a, b, c): return c / b
function code(a, b, c) return Float64(c / b) end
function tmp = code(a, b, c) tmp = c / b; end
code[a_, b_, c_] := N[(c / b), $MachinePrecision]
\begin{array}{l}
\\
\frac{c}{b}
\end{array}
Initial program 54.9%
div-sub54.8%
sub-neg54.8%
neg-mul-154.8%
*-commutative54.8%
associate-/l*53.6%
distribute-neg-frac53.6%
neg-mul-153.6%
*-commutative53.6%
associate-/l*54.7%
distribute-rgt-out54.8%
associate-/r*54.8%
metadata-eval54.8%
sub-neg54.8%
+-commutative54.8%
Simplified54.9%
Taylor expanded in b around -inf 34.2%
mul-1-neg34.2%
distribute-neg-frac234.2%
Simplified34.2%
add-sqr-sqrt33.0%
sqrt-unprod27.9%
sqr-neg27.9%
sqrt-prod1.9%
add-sqr-sqrt9.8%
*-un-lft-identity9.8%
Applied egg-rr9.8%
*-lft-identity9.8%
Simplified9.8%
(FPCore (a b c) :precision binary64 (/ b a))
double code(double a, double b, double c) {
return b / a;
}
real(8) function code(a, b, c)
real(8), intent (in) :: a
real(8), intent (in) :: b
real(8), intent (in) :: c
code = b / a
end function
public static double code(double a, double b, double c) {
return b / a;
}
def code(a, b, c): return b / a
function code(a, b, c) return Float64(b / a) end
function tmp = code(a, b, c) tmp = b / a; end
code[a_, b_, c_] := N[(b / a), $MachinePrecision]
\begin{array}{l}
\\
\frac{b}{a}
\end{array}
Initial program 54.9%
div-sub54.8%
sub-neg54.8%
neg-mul-154.8%
*-commutative54.8%
associate-/l*53.6%
distribute-neg-frac53.6%
neg-mul-153.6%
*-commutative53.6%
associate-/l*54.7%
distribute-rgt-out54.8%
associate-/r*54.8%
metadata-eval54.8%
sub-neg54.8%
+-commutative54.8%
Simplified54.9%
Taylor expanded in a around 0 35.8%
associate-*r/35.8%
mul-1-neg35.8%
Simplified35.8%
div-inv35.7%
neg-mul-135.7%
neg-mul-135.7%
add-sqr-sqrt1.3%
sqrt-unprod1.9%
sqr-neg1.9%
sqrt-prod0.7%
add-sqr-sqrt2.5%
Applied egg-rr2.5%
associate-*r/2.5%
*-rgt-identity2.5%
Simplified2.5%
(FPCore (a b c)
:precision binary64
(let* ((t_0 (fabs (/ b 2.0)))
(t_1 (* (sqrt (fabs a)) (sqrt (fabs c))))
(t_2
(if (== (copysign a c) a)
(* (sqrt (- t_0 t_1)) (sqrt (+ t_0 t_1)))
(hypot (/ b 2.0) t_1))))
(if (< b 0.0) (/ c (- t_2 (/ b 2.0))) (/ (+ (/ b 2.0) t_2) (- a)))))
double code(double a, double b, double c) {
double t_0 = fabs((b / 2.0));
double t_1 = sqrt(fabs(a)) * sqrt(fabs(c));
double tmp;
if (copysign(a, c) == a) {
tmp = sqrt((t_0 - t_1)) * sqrt((t_0 + t_1));
} else {
tmp = hypot((b / 2.0), t_1);
}
double t_2 = tmp;
double tmp_1;
if (b < 0.0) {
tmp_1 = c / (t_2 - (b / 2.0));
} else {
tmp_1 = ((b / 2.0) + t_2) / -a;
}
return tmp_1;
}
public static double code(double a, double b, double c) {
double t_0 = Math.abs((b / 2.0));
double t_1 = Math.sqrt(Math.abs(a)) * Math.sqrt(Math.abs(c));
double tmp;
if (Math.copySign(a, c) == a) {
tmp = Math.sqrt((t_0 - t_1)) * Math.sqrt((t_0 + t_1));
} else {
tmp = Math.hypot((b / 2.0), t_1);
}
double t_2 = tmp;
double tmp_1;
if (b < 0.0) {
tmp_1 = c / (t_2 - (b / 2.0));
} else {
tmp_1 = ((b / 2.0) + t_2) / -a;
}
return tmp_1;
}
def code(a, b, c): t_0 = math.fabs((b / 2.0)) t_1 = math.sqrt(math.fabs(a)) * math.sqrt(math.fabs(c)) tmp = 0 if math.copysign(a, c) == a: tmp = math.sqrt((t_0 - t_1)) * math.sqrt((t_0 + t_1)) else: tmp = math.hypot((b / 2.0), t_1) t_2 = tmp tmp_1 = 0 if b < 0.0: tmp_1 = c / (t_2 - (b / 2.0)) else: tmp_1 = ((b / 2.0) + t_2) / -a return tmp_1
function code(a, b, c) t_0 = abs(Float64(b / 2.0)) t_1 = Float64(sqrt(abs(a)) * sqrt(abs(c))) tmp = 0.0 if (copysign(a, c) == a) tmp = Float64(sqrt(Float64(t_0 - t_1)) * sqrt(Float64(t_0 + t_1))); else tmp = hypot(Float64(b / 2.0), t_1); end t_2 = tmp tmp_1 = 0.0 if (b < 0.0) tmp_1 = Float64(c / Float64(t_2 - Float64(b / 2.0))); else tmp_1 = Float64(Float64(Float64(b / 2.0) + t_2) / Float64(-a)); end return tmp_1 end
function tmp_3 = code(a, b, c) t_0 = abs((b / 2.0)); t_1 = sqrt(abs(a)) * sqrt(abs(c)); tmp = 0.0; if ((sign(c) * abs(a)) == a) tmp = sqrt((t_0 - t_1)) * sqrt((t_0 + t_1)); else tmp = hypot((b / 2.0), t_1); end t_2 = tmp; tmp_2 = 0.0; if (b < 0.0) tmp_2 = c / (t_2 - (b / 2.0)); else tmp_2 = ((b / 2.0) + t_2) / -a; end tmp_3 = tmp_2; end
code[a_, b_, c_] := Block[{t$95$0 = N[Abs[N[(b / 2.0), $MachinePrecision]], $MachinePrecision]}, Block[{t$95$1 = N[(N[Sqrt[N[Abs[a], $MachinePrecision]], $MachinePrecision] * N[Sqrt[N[Abs[c], $MachinePrecision]], $MachinePrecision]), $MachinePrecision]}, Block[{t$95$2 = If[Equal[N[With[{TMP1 = Abs[a], TMP2 = Sign[c]}, TMP1 * If[TMP2 == 0, 1, TMP2]], $MachinePrecision], a], N[(N[Sqrt[N[(t$95$0 - t$95$1), $MachinePrecision]], $MachinePrecision] * N[Sqrt[N[(t$95$0 + t$95$1), $MachinePrecision]], $MachinePrecision]), $MachinePrecision], N[Sqrt[N[(b / 2.0), $MachinePrecision] ^ 2 + t$95$1 ^ 2], $MachinePrecision]]}, If[Less[b, 0.0], N[(c / N[(t$95$2 - N[(b / 2.0), $MachinePrecision]), $MachinePrecision]), $MachinePrecision], N[(N[(N[(b / 2.0), $MachinePrecision] + t$95$2), $MachinePrecision] / (-a)), $MachinePrecision]]]]]
\begin{array}{l}
\\
\begin{array}{l}
t_0 := \left|\frac{b}{2}\right|\\
t_1 := \sqrt{\left|a\right|} \cdot \sqrt{\left|c\right|}\\
t_2 := \begin{array}{l}
\mathbf{if}\;\mathsf{copysign}\left(a, c\right) = a:\\
\;\;\;\;\sqrt{t\_0 - t\_1} \cdot \sqrt{t\_0 + t\_1}\\
\mathbf{else}:\\
\;\;\;\;\mathsf{hypot}\left(\frac{b}{2}, t\_1\right)\\
\end{array}\\
\mathbf{if}\;b < 0:\\
\;\;\;\;\frac{c}{t\_2 - \frac{b}{2}}\\
\mathbf{else}:\\
\;\;\;\;\frac{\frac{b}{2} + t\_2}{-a}\\
\end{array}
\end{array}
herbie shell --seed 2024136
(FPCore (a b c)
:name "quadm (p42, negative)"
:precision binary64
:herbie-expected 10
:alt
(! :herbie-platform default (let ((sqtD (let ((x (* (sqrt (fabs a)) (sqrt (fabs c))))) (if (== (copysign a c) a) (* (sqrt (- (fabs (/ b 2)) x)) (sqrt (+ (fabs (/ b 2)) x))) (hypot (/ b 2) x))))) (if (< b 0) (/ c (- sqtD (/ b 2))) (/ (+ (/ b 2) sqtD) (- a)))))
(/ (- (- b) (sqrt (- (* b b) (* 4.0 (* a c))))) (* 2.0 a)))