
(FPCore (a b angle) :precision binary64 (let* ((t_0 (* PI (/ angle 180.0)))) (+ (pow (* a (cos t_0)) 2.0) (pow (* b (sin t_0)) 2.0))))
double code(double a, double b, double angle) {
double t_0 = ((double) M_PI) * (angle / 180.0);
return pow((a * cos(t_0)), 2.0) + pow((b * sin(t_0)), 2.0);
}
public static double code(double a, double b, double angle) {
double t_0 = Math.PI * (angle / 180.0);
return Math.pow((a * Math.cos(t_0)), 2.0) + Math.pow((b * Math.sin(t_0)), 2.0);
}
def code(a, b, angle): t_0 = math.pi * (angle / 180.0) return math.pow((a * math.cos(t_0)), 2.0) + math.pow((b * math.sin(t_0)), 2.0)
function code(a, b, angle) t_0 = Float64(pi * Float64(angle / 180.0)) return Float64((Float64(a * cos(t_0)) ^ 2.0) + (Float64(b * sin(t_0)) ^ 2.0)) end
function tmp = code(a, b, angle) t_0 = pi * (angle / 180.0); tmp = ((a * cos(t_0)) ^ 2.0) + ((b * sin(t_0)) ^ 2.0); end
code[a_, b_, angle_] := Block[{t$95$0 = N[(Pi * N[(angle / 180.0), $MachinePrecision]), $MachinePrecision]}, N[(N[Power[N[(a * N[Cos[t$95$0], $MachinePrecision]), $MachinePrecision], 2.0], $MachinePrecision] + N[Power[N[(b * N[Sin[t$95$0], $MachinePrecision]), $MachinePrecision], 2.0], $MachinePrecision]), $MachinePrecision]]
\begin{array}{l}
\\
\begin{array}{l}
t_0 := \pi \cdot \frac{angle}{180}\\
{\left(a \cdot \cos t\_0\right)}^{2} + {\left(b \cdot \sin t\_0\right)}^{2}
\end{array}
\end{array}
Herbie found 7 alternatives:
| Alternative | Accuracy | Speedup |
|---|
(FPCore (a b angle) :precision binary64 (let* ((t_0 (* PI (/ angle 180.0)))) (+ (pow (* a (cos t_0)) 2.0) (pow (* b (sin t_0)) 2.0))))
double code(double a, double b, double angle) {
double t_0 = ((double) M_PI) * (angle / 180.0);
return pow((a * cos(t_0)), 2.0) + pow((b * sin(t_0)), 2.0);
}
public static double code(double a, double b, double angle) {
double t_0 = Math.PI * (angle / 180.0);
return Math.pow((a * Math.cos(t_0)), 2.0) + Math.pow((b * Math.sin(t_0)), 2.0);
}
def code(a, b, angle): t_0 = math.pi * (angle / 180.0) return math.pow((a * math.cos(t_0)), 2.0) + math.pow((b * math.sin(t_0)), 2.0)
function code(a, b, angle) t_0 = Float64(pi * Float64(angle / 180.0)) return Float64((Float64(a * cos(t_0)) ^ 2.0) + (Float64(b * sin(t_0)) ^ 2.0)) end
function tmp = code(a, b, angle) t_0 = pi * (angle / 180.0); tmp = ((a * cos(t_0)) ^ 2.0) + ((b * sin(t_0)) ^ 2.0); end
code[a_, b_, angle_] := Block[{t$95$0 = N[(Pi * N[(angle / 180.0), $MachinePrecision]), $MachinePrecision]}, N[(N[Power[N[(a * N[Cos[t$95$0], $MachinePrecision]), $MachinePrecision], 2.0], $MachinePrecision] + N[Power[N[(b * N[Sin[t$95$0], $MachinePrecision]), $MachinePrecision], 2.0], $MachinePrecision]), $MachinePrecision]]
\begin{array}{l}
\\
\begin{array}{l}
t_0 := \pi \cdot \frac{angle}{180}\\
{\left(a \cdot \cos t\_0\right)}^{2} + {\left(b \cdot \sin t\_0\right)}^{2}
\end{array}
\end{array}
angle_m = (fabs.f64 angle)
(FPCore (a b angle_m)
:precision binary64
(if (<= angle_m 0.00115)
(fma
(* (* 1.0 1.0) a)
a
(pow
(*
(fma
(* 0.005555555555555556 b)
PI
(*
(* (* angle_m angle_m) -2.8577960676726107e-8)
(* (* (* PI PI) PI) b)))
angle_m)
2.0))
(fma
(- 0.5 (* 0.5 (cos (* 2.0 (* (* angle_m PI) 0.005555555555555556)))))
(* b b)
(* (* 1.0 a) (* 1.0 a)))))angle_m = fabs(angle);
double code(double a, double b, double angle_m) {
double tmp;
if (angle_m <= 0.00115) {
tmp = fma(((1.0 * 1.0) * a), a, pow((fma((0.005555555555555556 * b), ((double) M_PI), (((angle_m * angle_m) * -2.8577960676726107e-8) * (((((double) M_PI) * ((double) M_PI)) * ((double) M_PI)) * b))) * angle_m), 2.0));
} else {
tmp = fma((0.5 - (0.5 * cos((2.0 * ((angle_m * ((double) M_PI)) * 0.005555555555555556))))), (b * b), ((1.0 * a) * (1.0 * a)));
}
return tmp;
}
angle_m = abs(angle) function code(a, b, angle_m) tmp = 0.0 if (angle_m <= 0.00115) tmp = fma(Float64(Float64(1.0 * 1.0) * a), a, (Float64(fma(Float64(0.005555555555555556 * b), pi, Float64(Float64(Float64(angle_m * angle_m) * -2.8577960676726107e-8) * Float64(Float64(Float64(pi * pi) * pi) * b))) * angle_m) ^ 2.0)); else tmp = fma(Float64(0.5 - Float64(0.5 * cos(Float64(2.0 * Float64(Float64(angle_m * pi) * 0.005555555555555556))))), Float64(b * b), Float64(Float64(1.0 * a) * Float64(1.0 * a))); end return tmp end
angle_m = N[Abs[angle], $MachinePrecision] code[a_, b_, angle$95$m_] := If[LessEqual[angle$95$m, 0.00115], N[(N[(N[(1.0 * 1.0), $MachinePrecision] * a), $MachinePrecision] * a + N[Power[N[(N[(N[(0.005555555555555556 * b), $MachinePrecision] * Pi + N[(N[(N[(angle$95$m * angle$95$m), $MachinePrecision] * -2.8577960676726107e-8), $MachinePrecision] * N[(N[(N[(Pi * Pi), $MachinePrecision] * Pi), $MachinePrecision] * b), $MachinePrecision]), $MachinePrecision]), $MachinePrecision] * angle$95$m), $MachinePrecision], 2.0], $MachinePrecision]), $MachinePrecision], N[(N[(0.5 - N[(0.5 * N[Cos[N[(2.0 * N[(N[(angle$95$m * Pi), $MachinePrecision] * 0.005555555555555556), $MachinePrecision]), $MachinePrecision]], $MachinePrecision]), $MachinePrecision]), $MachinePrecision] * N[(b * b), $MachinePrecision] + N[(N[(1.0 * a), $MachinePrecision] * N[(1.0 * a), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]]
\begin{array}{l}
angle_m = \left|angle\right|
\\
\begin{array}{l}
\mathbf{if}\;angle\_m \leq 0.00115:\\
\;\;\;\;\mathsf{fma}\left(\left(1 \cdot 1\right) \cdot a, a, {\left(\mathsf{fma}\left(0.005555555555555556 \cdot b, \pi, \left(\left(angle\_m \cdot angle\_m\right) \cdot -2.8577960676726107 \cdot 10^{-8}\right) \cdot \left(\left(\left(\pi \cdot \pi\right) \cdot \pi\right) \cdot b\right)\right) \cdot angle\_m\right)}^{2}\right)\\
\mathbf{else}:\\
\;\;\;\;\mathsf{fma}\left(0.5 - 0.5 \cdot \cos \left(2 \cdot \left(\left(angle\_m \cdot \pi\right) \cdot 0.005555555555555556\right)\right), b \cdot b, \left(1 \cdot a\right) \cdot \left(1 \cdot a\right)\right)\\
\end{array}
\end{array}
if angle < 0.00115Initial program 79.5%
Taylor expanded in angle around 0
Applied rewrites79.4%
Taylor expanded in angle around 0
lower-*.f6479.4
Applied rewrites79.4%
lift-+.f64N/A
lift-pow.f64N/A
lift-*.f64N/A
unpow-prod-downN/A
pow2N/A
lift-*.f64N/A
*-commutativeN/A
pow2N/A
associate-*r*N/A
Applied rewrites79.5%
Taylor expanded in angle around 0
*-commutativeN/A
lower-*.f64N/A
Applied rewrites73.1%
if 0.00115 < angle Initial program 79.5%
Taylor expanded in angle around 0
Applied rewrites79.4%
lift-+.f64N/A
lift-pow.f64N/A
lift-*.f64N/A
lift-sin.f64N/A
lift-PI.f64N/A
lift-*.f64N/A
lift-/.f64N/A
+-commutativeN/A
*-commutativeN/A
unpow-prod-downN/A
lower-fma.f64N/A
Applied rewrites69.8%
Taylor expanded in angle around inf
unpow2N/A
sqr-sin-aN/A
lower--.f64N/A
lower-*.f64N/A
lower-cos.f64N/A
lower-*.f64N/A
*-commutativeN/A
lower-*.f64N/A
lower-*.f64N/A
lift-PI.f6461.5
Applied rewrites61.5%
angle_m = (fabs.f64 angle) (FPCore (a b angle_m) :precision binary64 (fma (* 1.0 a) a (pow (* (sin (* (* 0.005555555555555556 angle_m) PI)) b) 2.0)))
angle_m = fabs(angle);
double code(double a, double b, double angle_m) {
return fma((1.0 * a), a, pow((sin(((0.005555555555555556 * angle_m) * ((double) M_PI))) * b), 2.0));
}
angle_m = abs(angle) function code(a, b, angle_m) return fma(Float64(1.0 * a), a, (Float64(sin(Float64(Float64(0.005555555555555556 * angle_m) * pi)) * b) ^ 2.0)) end
angle_m = N[Abs[angle], $MachinePrecision] code[a_, b_, angle$95$m_] := N[(N[(1.0 * a), $MachinePrecision] * a + N[Power[N[(N[Sin[N[(N[(0.005555555555555556 * angle$95$m), $MachinePrecision] * Pi), $MachinePrecision]], $MachinePrecision] * b), $MachinePrecision], 2.0], $MachinePrecision]), $MachinePrecision]
\begin{array}{l}
angle_m = \left|angle\right|
\\
\mathsf{fma}\left(1 \cdot a, a, {\left(\sin \left(\left(0.005555555555555556 \cdot angle\_m\right) \cdot \pi\right) \cdot b\right)}^{2}\right)
\end{array}
Initial program 79.5%
Taylor expanded in angle around 0
Applied rewrites79.4%
Taylor expanded in angle around 0
lower-*.f6479.4
Applied rewrites79.4%
lift-+.f64N/A
lift-pow.f64N/A
lift-*.f64N/A
unpow-prod-downN/A
pow2N/A
lift-*.f64N/A
*-commutativeN/A
pow2N/A
associate-*r*N/A
Applied rewrites79.5%
Taylor expanded in angle around 0
pow279.5
lift-/.f64N/A
*-commutativeN/A
lift-/.f6479.5
sin-+PI/279.5
Applied rewrites79.5%
angle_m = (fabs.f64 angle)
(FPCore (a b angle_m)
:precision binary64
(if (<= b 6.8e+27)
(* a a)
(fma
(* (* 1.0 1.0) a)
a
(pow (* (* (* angle_m PI) 0.005555555555555556) b) 2.0))))angle_m = fabs(angle);
double code(double a, double b, double angle_m) {
double tmp;
if (b <= 6.8e+27) {
tmp = a * a;
} else {
tmp = fma(((1.0 * 1.0) * a), a, pow((((angle_m * ((double) M_PI)) * 0.005555555555555556) * b), 2.0));
}
return tmp;
}
angle_m = abs(angle) function code(a, b, angle_m) tmp = 0.0 if (b <= 6.8e+27) tmp = Float64(a * a); else tmp = fma(Float64(Float64(1.0 * 1.0) * a), a, (Float64(Float64(Float64(angle_m * pi) * 0.005555555555555556) * b) ^ 2.0)); end return tmp end
angle_m = N[Abs[angle], $MachinePrecision] code[a_, b_, angle$95$m_] := If[LessEqual[b, 6.8e+27], N[(a * a), $MachinePrecision], N[(N[(N[(1.0 * 1.0), $MachinePrecision] * a), $MachinePrecision] * a + N[Power[N[(N[(N[(angle$95$m * Pi), $MachinePrecision] * 0.005555555555555556), $MachinePrecision] * b), $MachinePrecision], 2.0], $MachinePrecision]), $MachinePrecision]]
\begin{array}{l}
angle_m = \left|angle\right|
\\
\begin{array}{l}
\mathbf{if}\;b \leq 6.8 \cdot 10^{+27}:\\
\;\;\;\;a \cdot a\\
\mathbf{else}:\\
\;\;\;\;\mathsf{fma}\left(\left(1 \cdot 1\right) \cdot a, a, {\left(\left(\left(angle\_m \cdot \pi\right) \cdot 0.005555555555555556\right) \cdot b\right)}^{2}\right)\\
\end{array}
\end{array}
if b < 6.8e27Initial program 79.5%
Taylor expanded in angle around 0
unpow2N/A
lower-*.f6456.1
Applied rewrites56.1%
if 6.8e27 < b Initial program 79.5%
Taylor expanded in angle around 0
Applied rewrites79.4%
Taylor expanded in angle around 0
lower-*.f6479.4
Applied rewrites79.4%
lift-+.f64N/A
lift-pow.f64N/A
lift-*.f64N/A
unpow-prod-downN/A
pow2N/A
lift-*.f64N/A
*-commutativeN/A
pow2N/A
associate-*r*N/A
Applied rewrites79.5%
Taylor expanded in angle around 0
lift-/.f64N/A
*-commutativeN/A
lift-/.f64N/A
*-commutativeN/A
lower-*.f64N/A
lower-*.f64N/A
lift-PI.f6474.4
Applied rewrites74.4%
angle_m = (fabs.f64 angle)
(FPCore (a b angle_m)
:precision binary64
(if (<= b 6.8e+27)
(* a a)
(fma
(* (* 1.0 1.0) a)
a
(pow (* (* (* b PI) angle_m) 0.005555555555555556) 2.0))))angle_m = fabs(angle);
double code(double a, double b, double angle_m) {
double tmp;
if (b <= 6.8e+27) {
tmp = a * a;
} else {
tmp = fma(((1.0 * 1.0) * a), a, pow((((b * ((double) M_PI)) * angle_m) * 0.005555555555555556), 2.0));
}
return tmp;
}
angle_m = abs(angle) function code(a, b, angle_m) tmp = 0.0 if (b <= 6.8e+27) tmp = Float64(a * a); else tmp = fma(Float64(Float64(1.0 * 1.0) * a), a, (Float64(Float64(Float64(b * pi) * angle_m) * 0.005555555555555556) ^ 2.0)); end return tmp end
angle_m = N[Abs[angle], $MachinePrecision] code[a_, b_, angle$95$m_] := If[LessEqual[b, 6.8e+27], N[(a * a), $MachinePrecision], N[(N[(N[(1.0 * 1.0), $MachinePrecision] * a), $MachinePrecision] * a + N[Power[N[(N[(N[(b * Pi), $MachinePrecision] * angle$95$m), $MachinePrecision] * 0.005555555555555556), $MachinePrecision], 2.0], $MachinePrecision]), $MachinePrecision]]
\begin{array}{l}
angle_m = \left|angle\right|
\\
\begin{array}{l}
\mathbf{if}\;b \leq 6.8 \cdot 10^{+27}:\\
\;\;\;\;a \cdot a\\
\mathbf{else}:\\
\;\;\;\;\mathsf{fma}\left(\left(1 \cdot 1\right) \cdot a, a, {\left(\left(\left(b \cdot \pi\right) \cdot angle\_m\right) \cdot 0.005555555555555556\right)}^{2}\right)\\
\end{array}
\end{array}
if b < 6.8e27Initial program 79.5%
Taylor expanded in angle around 0
unpow2N/A
lower-*.f6456.1
Applied rewrites56.1%
if 6.8e27 < b Initial program 79.5%
Taylor expanded in angle around 0
Applied rewrites79.4%
Taylor expanded in angle around 0
lower-*.f6479.4
Applied rewrites79.4%
lift-+.f64N/A
lift-pow.f64N/A
lift-*.f64N/A
unpow-prod-downN/A
pow2N/A
lift-*.f64N/A
*-commutativeN/A
pow2N/A
associate-*r*N/A
Applied rewrites79.5%
Taylor expanded in angle around 0
*-commutativeN/A
lower-*.f64N/A
*-commutativeN/A
lower-*.f64N/A
lower-*.f64N/A
lift-PI.f6474.3
Applied rewrites74.3%
angle_m = (fabs.f64 angle)
(FPCore (a b angle_m)
:precision binary64
(if (<= angle_m 4.3e-160)
(* a a)
(if (<= angle_m 1.1e+157)
(fma
(* (* 1.0 1.0) a)
a
(* (* 3.08641975308642e-5 (* angle_m angle_m)) (* (* b PI) (* b PI))))
(pow (/ 1.0 a) -2.0))))angle_m = fabs(angle);
double code(double a, double b, double angle_m) {
double tmp;
if (angle_m <= 4.3e-160) {
tmp = a * a;
} else if (angle_m <= 1.1e+157) {
tmp = fma(((1.0 * 1.0) * a), a, ((3.08641975308642e-5 * (angle_m * angle_m)) * ((b * ((double) M_PI)) * (b * ((double) M_PI)))));
} else {
tmp = pow((1.0 / a), -2.0);
}
return tmp;
}
angle_m = abs(angle) function code(a, b, angle_m) tmp = 0.0 if (angle_m <= 4.3e-160) tmp = Float64(a * a); elseif (angle_m <= 1.1e+157) tmp = fma(Float64(Float64(1.0 * 1.0) * a), a, Float64(Float64(3.08641975308642e-5 * Float64(angle_m * angle_m)) * Float64(Float64(b * pi) * Float64(b * pi)))); else tmp = Float64(1.0 / a) ^ -2.0; end return tmp end
angle_m = N[Abs[angle], $MachinePrecision] code[a_, b_, angle$95$m_] := If[LessEqual[angle$95$m, 4.3e-160], N[(a * a), $MachinePrecision], If[LessEqual[angle$95$m, 1.1e+157], N[(N[(N[(1.0 * 1.0), $MachinePrecision] * a), $MachinePrecision] * a + N[(N[(3.08641975308642e-5 * N[(angle$95$m * angle$95$m), $MachinePrecision]), $MachinePrecision] * N[(N[(b * Pi), $MachinePrecision] * N[(b * Pi), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]), $MachinePrecision], N[Power[N[(1.0 / a), $MachinePrecision], -2.0], $MachinePrecision]]]
\begin{array}{l}
angle_m = \left|angle\right|
\\
\begin{array}{l}
\mathbf{if}\;angle\_m \leq 4.3 \cdot 10^{-160}:\\
\;\;\;\;a \cdot a\\
\mathbf{elif}\;angle\_m \leq 1.1 \cdot 10^{+157}:\\
\;\;\;\;\mathsf{fma}\left(\left(1 \cdot 1\right) \cdot a, a, \left(3.08641975308642 \cdot 10^{-5} \cdot \left(angle\_m \cdot angle\_m\right)\right) \cdot \left(\left(b \cdot \pi\right) \cdot \left(b \cdot \pi\right)\right)\right)\\
\mathbf{else}:\\
\;\;\;\;{\left(\frac{1}{a}\right)}^{-2}\\
\end{array}
\end{array}
if angle < 4.30000000000000014e-160Initial program 79.5%
Taylor expanded in angle around 0
unpow2N/A
lower-*.f6456.1
Applied rewrites56.1%
if 4.30000000000000014e-160 < angle < 1.1000000000000001e157Initial program 79.5%
Taylor expanded in angle around 0
Applied rewrites79.4%
Taylor expanded in angle around 0
lower-*.f6479.4
Applied rewrites79.4%
lift-+.f64N/A
lift-pow.f64N/A
lift-*.f64N/A
unpow-prod-downN/A
pow2N/A
lift-*.f64N/A
*-commutativeN/A
pow2N/A
associate-*r*N/A
Applied rewrites79.5%
Taylor expanded in angle around 0
associate-*r*N/A
lower-*.f64N/A
lower-*.f64N/A
pow2N/A
lift-*.f64N/A
pow-prod-downN/A
unpow2N/A
lower-*.f64N/A
lower-*.f64N/A
lift-PI.f64N/A
lower-*.f64N/A
lift-PI.f6463.3
Applied rewrites63.3%
if 1.1000000000000001e157 < angle Initial program 79.5%
Taylor expanded in angle around 0
unpow2N/A
lower-*.f6456.1
Applied rewrites56.1%
lift-*.f64N/A
pow2N/A
pow-to-expN/A
*-commutativeN/A
lower-exp.f64N/A
*-commutativeN/A
lower-*.f64N/A
lower-log.f6427.2
Applied rewrites27.2%
lift-exp.f64N/A
lift-*.f64N/A
lift-log.f64N/A
pow-to-expN/A
metadata-evalN/A
pow-powN/A
inv-powN/A
lower-pow.f64N/A
lower-/.f6455.9
Applied rewrites55.9%
angle_m = (fabs.f64 angle)
(FPCore (a b angle_m)
:precision binary64
(if (<= angle_m 4.2e-160)
(* a a)
(if (<= angle_m 1.1e+157)
(fma
(* (* 3.08641975308642e-5 (* angle_m angle_m)) (* PI PI))
(* b b)
(* (* 1.0 a) (* 1.0 a)))
(pow (/ 1.0 a) -2.0))))angle_m = fabs(angle);
double code(double a, double b, double angle_m) {
double tmp;
if (angle_m <= 4.2e-160) {
tmp = a * a;
} else if (angle_m <= 1.1e+157) {
tmp = fma(((3.08641975308642e-5 * (angle_m * angle_m)) * (((double) M_PI) * ((double) M_PI))), (b * b), ((1.0 * a) * (1.0 * a)));
} else {
tmp = pow((1.0 / a), -2.0);
}
return tmp;
}
angle_m = abs(angle) function code(a, b, angle_m) tmp = 0.0 if (angle_m <= 4.2e-160) tmp = Float64(a * a); elseif (angle_m <= 1.1e+157) tmp = fma(Float64(Float64(3.08641975308642e-5 * Float64(angle_m * angle_m)) * Float64(pi * pi)), Float64(b * b), Float64(Float64(1.0 * a) * Float64(1.0 * a))); else tmp = Float64(1.0 / a) ^ -2.0; end return tmp end
angle_m = N[Abs[angle], $MachinePrecision] code[a_, b_, angle$95$m_] := If[LessEqual[angle$95$m, 4.2e-160], N[(a * a), $MachinePrecision], If[LessEqual[angle$95$m, 1.1e+157], N[(N[(N[(3.08641975308642e-5 * N[(angle$95$m * angle$95$m), $MachinePrecision]), $MachinePrecision] * N[(Pi * Pi), $MachinePrecision]), $MachinePrecision] * N[(b * b), $MachinePrecision] + N[(N[(1.0 * a), $MachinePrecision] * N[(1.0 * a), $MachinePrecision]), $MachinePrecision]), $MachinePrecision], N[Power[N[(1.0 / a), $MachinePrecision], -2.0], $MachinePrecision]]]
\begin{array}{l}
angle_m = \left|angle\right|
\\
\begin{array}{l}
\mathbf{if}\;angle\_m \leq 4.2 \cdot 10^{-160}:\\
\;\;\;\;a \cdot a\\
\mathbf{elif}\;angle\_m \leq 1.1 \cdot 10^{+157}:\\
\;\;\;\;\mathsf{fma}\left(\left(3.08641975308642 \cdot 10^{-5} \cdot \left(angle\_m \cdot angle\_m\right)\right) \cdot \left(\pi \cdot \pi\right), b \cdot b, \left(1 \cdot a\right) \cdot \left(1 \cdot a\right)\right)\\
\mathbf{else}:\\
\;\;\;\;{\left(\frac{1}{a}\right)}^{-2}\\
\end{array}
\end{array}
if angle < 4.2000000000000001e-160Initial program 79.5%
Taylor expanded in angle around 0
unpow2N/A
lower-*.f6456.1
Applied rewrites56.1%
if 4.2000000000000001e-160 < angle < 1.1000000000000001e157Initial program 79.5%
Taylor expanded in angle around 0
Applied rewrites79.4%
lift-+.f64N/A
lift-pow.f64N/A
lift-*.f64N/A
lift-sin.f64N/A
lift-PI.f64N/A
lift-*.f64N/A
lift-/.f64N/A
+-commutativeN/A
*-commutativeN/A
unpow-prod-downN/A
lower-fma.f64N/A
Applied rewrites69.8%
Taylor expanded in angle around 0
associate-*r*N/A
lower-*.f64N/A
lower-*.f64N/A
pow2N/A
lift-*.f64N/A
pow2N/A
lift-*.f64N/A
lift-PI.f64N/A
lift-PI.f6463.4
Applied rewrites63.4%
if 1.1000000000000001e157 < angle Initial program 79.5%
Taylor expanded in angle around 0
unpow2N/A
lower-*.f6456.1
Applied rewrites56.1%
lift-*.f64N/A
pow2N/A
pow-to-expN/A
*-commutativeN/A
lower-exp.f64N/A
*-commutativeN/A
lower-*.f64N/A
lower-log.f6427.2
Applied rewrites27.2%
lift-exp.f64N/A
lift-*.f64N/A
lift-log.f64N/A
pow-to-expN/A
metadata-evalN/A
pow-powN/A
inv-powN/A
lower-pow.f64N/A
lower-/.f6455.9
Applied rewrites55.9%
angle_m = (fabs.f64 angle) (FPCore (a b angle_m) :precision binary64 (* a a))
angle_m = fabs(angle);
double code(double a, double b, double angle_m) {
return a * a;
}
angle_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(a, b, angle_m)
use fmin_fmax_functions
real(8), intent (in) :: a
real(8), intent (in) :: b
real(8), intent (in) :: angle_m
code = a * a
end function
angle_m = Math.abs(angle);
public static double code(double a, double b, double angle_m) {
return a * a;
}
angle_m = math.fabs(angle) def code(a, b, angle_m): return a * a
angle_m = abs(angle) function code(a, b, angle_m) return Float64(a * a) end
angle_m = abs(angle); function tmp = code(a, b, angle_m) tmp = a * a; end
angle_m = N[Abs[angle], $MachinePrecision] code[a_, b_, angle$95$m_] := N[(a * a), $MachinePrecision]
\begin{array}{l}
angle_m = \left|angle\right|
\\
a \cdot a
\end{array}
Initial program 79.5%
Taylor expanded in angle around 0
unpow2N/A
lower-*.f6456.1
Applied rewrites56.1%
herbie shell --seed 2025134
(FPCore (a b angle)
:name "ab-angle->ABCF C"
:precision binary64
(+ (pow (* a (cos (* PI (/ angle 180.0)))) 2.0) (pow (* b (sin (* PI (/ angle 180.0)))) 2.0)))