
(FPCore (ux uy maxCos) :precision binary32 (let* ((t_0 (+ (- 1.0 ux) (* ux maxCos)))) (* (cos (* (* uy 2.0) PI)) (sqrt (- 1.0 (* t_0 t_0))))))
float code(float ux, float uy, float maxCos) {
float t_0 = (1.0f - ux) + (ux * maxCos);
return cosf(((uy * 2.0f) * ((float) M_PI))) * sqrtf((1.0f - (t_0 * t_0)));
}
function code(ux, uy, maxCos) t_0 = Float32(Float32(Float32(1.0) - ux) + Float32(ux * maxCos)) return Float32(cos(Float32(Float32(uy * Float32(2.0)) * Float32(pi))) * sqrt(Float32(Float32(1.0) - Float32(t_0 * t_0)))) end
function tmp = code(ux, uy, maxCos) t_0 = (single(1.0) - ux) + (ux * maxCos); tmp = cos(((uy * single(2.0)) * single(pi))) * sqrt((single(1.0) - (t_0 * t_0))); end
\begin{array}{l}
\\
\begin{array}{l}
t_0 := \left(1 - ux\right) + ux \cdot maxCos\\
\cos \left(\left(uy \cdot 2\right) \cdot \pi\right) \cdot \sqrt{1 - t\_0 \cdot t\_0}
\end{array}
\end{array}
Sampling outcomes in binary32 precision:
Herbie found 11 alternatives:
| Alternative | Accuracy | Speedup |
|---|
(FPCore (ux uy maxCos) :precision binary32 (let* ((t_0 (+ (- 1.0 ux) (* ux maxCos)))) (* (cos (* (* uy 2.0) PI)) (sqrt (- 1.0 (* t_0 t_0))))))
float code(float ux, float uy, float maxCos) {
float t_0 = (1.0f - ux) + (ux * maxCos);
return cosf(((uy * 2.0f) * ((float) M_PI))) * sqrtf((1.0f - (t_0 * t_0)));
}
function code(ux, uy, maxCos) t_0 = Float32(Float32(Float32(1.0) - ux) + Float32(ux * maxCos)) return Float32(cos(Float32(Float32(uy * Float32(2.0)) * Float32(pi))) * sqrt(Float32(Float32(1.0) - Float32(t_0 * t_0)))) end
function tmp = code(ux, uy, maxCos) t_0 = (single(1.0) - ux) + (ux * maxCos); tmp = cos(((uy * single(2.0)) * single(pi))) * sqrt((single(1.0) - (t_0 * t_0))); end
\begin{array}{l}
\\
\begin{array}{l}
t_0 := \left(1 - ux\right) + ux \cdot maxCos\\
\cos \left(\left(uy \cdot 2\right) \cdot \pi\right) \cdot \sqrt{1 - t\_0 \cdot t\_0}
\end{array}
\end{array}
(FPCore (ux uy maxCos) :precision binary32 (* (cos (* (* uy 2.0) PI)) (sqrt (* ux (- (* maxCos -2.0) (- (* ux (pow (+ -1.0 maxCos) 2.0)) 2.0))))))
float code(float ux, float uy, float maxCos) {
return cosf(((uy * 2.0f) * ((float) M_PI))) * sqrtf((ux * ((maxCos * -2.0f) - ((ux * powf((-1.0f + maxCos), 2.0f)) - 2.0f))));
}
function code(ux, uy, maxCos) return Float32(cos(Float32(Float32(uy * Float32(2.0)) * Float32(pi))) * sqrt(Float32(ux * Float32(Float32(maxCos * Float32(-2.0)) - Float32(Float32(ux * (Float32(Float32(-1.0) + maxCos) ^ Float32(2.0))) - Float32(2.0)))))) end
function tmp = code(ux, uy, maxCos) tmp = cos(((uy * single(2.0)) * single(pi))) * sqrt((ux * ((maxCos * single(-2.0)) - ((ux * ((single(-1.0) + maxCos) ^ single(2.0))) - single(2.0))))); end
\begin{array}{l}
\\
\cos \left(\left(uy \cdot 2\right) \cdot \pi\right) \cdot \sqrt{ux \cdot \left(maxCos \cdot -2 - \left(ux \cdot {\left(-1 + maxCos\right)}^{2} - 2\right)\right)}
\end{array}
Initial program 55.3%
Taylor expanded in ux around 0 98.8%
cancel-sign-sub-inv98.8%
associate-*r*98.8%
mul-1-neg98.8%
sub-neg98.8%
metadata-eval98.8%
+-commutative98.8%
metadata-eval98.8%
*-commutative98.8%
Simplified98.8%
Final simplification98.8%
(FPCore (ux uy maxCos) :precision binary32 (* (cos (* (* uy 2.0) PI)) (sqrt (- (- (* 2.0 ux) (* ux ux)) (* maxCos (* ux (- 2.0 (* 2.0 ux))))))))
float code(float ux, float uy, float maxCos) {
return cosf(((uy * 2.0f) * ((float) M_PI))) * sqrtf((((2.0f * ux) - (ux * ux)) - (maxCos * (ux * (2.0f - (2.0f * ux))))));
}
function code(ux, uy, maxCos) return Float32(cos(Float32(Float32(uy * Float32(2.0)) * Float32(pi))) * sqrt(Float32(Float32(Float32(Float32(2.0) * ux) - Float32(ux * ux)) - Float32(maxCos * Float32(ux * Float32(Float32(2.0) - Float32(Float32(2.0) * ux))))))) end
function tmp = code(ux, uy, maxCos) tmp = cos(((uy * single(2.0)) * single(pi))) * sqrt((((single(2.0) * ux) - (ux * ux)) - (maxCos * (ux * (single(2.0) - (single(2.0) * ux)))))); end
\begin{array}{l}
\\
\cos \left(\left(uy \cdot 2\right) \cdot \pi\right) \cdot \sqrt{\left(2 \cdot ux - ux \cdot ux\right) - maxCos \cdot \left(ux \cdot \left(2 - 2 \cdot ux\right)\right)}
\end{array}
Initial program 55.3%
Taylor expanded in ux around 0 98.8%
cancel-sign-sub-inv98.8%
associate-*r*98.8%
mul-1-neg98.8%
sub-neg98.8%
metadata-eval98.8%
+-commutative98.8%
metadata-eval98.8%
*-commutative98.8%
Simplified98.8%
Taylor expanded in maxCos around 0 98.7%
distribute-rgt-in98.7%
*-commutative98.7%
mul-1-neg98.7%
Applied egg-rr98.7%
Final simplification98.7%
(FPCore (ux uy maxCos) :precision binary32 (* (cos (* (* uy 2.0) PI)) (sqrt (- (* ux (- 2.0 ux)) (* maxCos (* ux (- 2.0 (* 2.0 ux))))))))
float code(float ux, float uy, float maxCos) {
return cosf(((uy * 2.0f) * ((float) M_PI))) * sqrtf(((ux * (2.0f - ux)) - (maxCos * (ux * (2.0f - (2.0f * ux))))));
}
function code(ux, uy, maxCos) return Float32(cos(Float32(Float32(uy * Float32(2.0)) * Float32(pi))) * sqrt(Float32(Float32(ux * Float32(Float32(2.0) - ux)) - Float32(maxCos * Float32(ux * Float32(Float32(2.0) - Float32(Float32(2.0) * ux))))))) end
function tmp = code(ux, uy, maxCos) tmp = cos(((uy * single(2.0)) * single(pi))) * sqrt(((ux * (single(2.0) - ux)) - (maxCos * (ux * (single(2.0) - (single(2.0) * ux)))))); end
\begin{array}{l}
\\
\cos \left(\left(uy \cdot 2\right) \cdot \pi\right) \cdot \sqrt{ux \cdot \left(2 - ux\right) - maxCos \cdot \left(ux \cdot \left(2 - 2 \cdot ux\right)\right)}
\end{array}
Initial program 55.3%
Taylor expanded in ux around 0 98.8%
cancel-sign-sub-inv98.8%
associate-*r*98.8%
mul-1-neg98.8%
sub-neg98.8%
metadata-eval98.8%
+-commutative98.8%
metadata-eval98.8%
*-commutative98.8%
Simplified98.8%
Taylor expanded in maxCos around 0 98.7%
Final simplification98.7%
(FPCore (ux uy maxCos) :precision binary32 (* (cos (* (* uy 2.0) PI)) (sqrt (+ (* ux (- 2.0 ux)) (* -2.0 (* ux maxCos))))))
float code(float ux, float uy, float maxCos) {
return cosf(((uy * 2.0f) * ((float) M_PI))) * sqrtf(((ux * (2.0f - ux)) + (-2.0f * (ux * maxCos))));
}
function code(ux, uy, maxCos) return Float32(cos(Float32(Float32(uy * Float32(2.0)) * Float32(pi))) * sqrt(Float32(Float32(ux * Float32(Float32(2.0) - ux)) + Float32(Float32(-2.0) * Float32(ux * maxCos))))) end
function tmp = code(ux, uy, maxCos) tmp = cos(((uy * single(2.0)) * single(pi))) * sqrt(((ux * (single(2.0) - ux)) + (single(-2.0) * (ux * maxCos)))); end
\begin{array}{l}
\\
\cos \left(\left(uy \cdot 2\right) \cdot \pi\right) \cdot \sqrt{ux \cdot \left(2 - ux\right) + -2 \cdot \left(ux \cdot maxCos\right)}
\end{array}
Initial program 55.3%
Taylor expanded in ux around 0 98.8%
cancel-sign-sub-inv98.8%
associate-*r*98.8%
mul-1-neg98.8%
sub-neg98.8%
metadata-eval98.8%
+-commutative98.8%
metadata-eval98.8%
*-commutative98.8%
Simplified98.8%
Taylor expanded in maxCos around 0 98.7%
Taylor expanded in ux around 0 98.3%
*-commutative98.3%
Simplified98.3%
Final simplification98.3%
(FPCore (ux uy maxCos) :precision binary32 (* (cos (* (* uy 2.0) PI)) (sqrt (* ux (- 2.0 ux)))))
float code(float ux, float uy, float maxCos) {
return cosf(((uy * 2.0f) * ((float) M_PI))) * sqrtf((ux * (2.0f - ux)));
}
function code(ux, uy, maxCos) return Float32(cos(Float32(Float32(uy * Float32(2.0)) * Float32(pi))) * sqrt(Float32(ux * Float32(Float32(2.0) - ux)))) end
function tmp = code(ux, uy, maxCos) tmp = cos(((uy * single(2.0)) * single(pi))) * sqrt((ux * (single(2.0) - ux))); end
\begin{array}{l}
\\
\cos \left(\left(uy \cdot 2\right) \cdot \pi\right) \cdot \sqrt{ux \cdot \left(2 - ux\right)}
\end{array}
Initial program 55.3%
Taylor expanded in ux around 0 98.8%
cancel-sign-sub-inv98.8%
associate-*r*98.8%
mul-1-neg98.8%
sub-neg98.8%
metadata-eval98.8%
+-commutative98.8%
metadata-eval98.8%
*-commutative98.8%
Simplified98.8%
Taylor expanded in maxCos around 0 94.5%
neg-mul-194.5%
unsub-neg94.5%
Simplified94.5%
Final simplification94.5%
(FPCore (ux uy maxCos) :precision binary32 (if (<= ux 0.00026000000070780516) (sqrt (+ (* 2.0 ux) (* -2.0 (* ux maxCos)))) (sqrt (+ 1.0 (* (+ 1.0 (- (* ux maxCos) ux)) (+ ux -1.0))))))
float code(float ux, float uy, float maxCos) {
float tmp;
if (ux <= 0.00026000000070780516f) {
tmp = sqrtf(((2.0f * ux) + (-2.0f * (ux * maxCos))));
} else {
tmp = sqrtf((1.0f + ((1.0f + ((ux * maxCos) - ux)) * (ux + -1.0f))));
}
return tmp;
}
real(4) function code(ux, uy, maxcos)
real(4), intent (in) :: ux
real(4), intent (in) :: uy
real(4), intent (in) :: maxcos
real(4) :: tmp
if (ux <= 0.00026000000070780516e0) then
tmp = sqrt(((2.0e0 * ux) + ((-2.0e0) * (ux * maxcos))))
else
tmp = sqrt((1.0e0 + ((1.0e0 + ((ux * maxcos) - ux)) * (ux + (-1.0e0)))))
end if
code = tmp
end function
function code(ux, uy, maxCos) tmp = Float32(0.0) if (ux <= Float32(0.00026000000070780516)) tmp = sqrt(Float32(Float32(Float32(2.0) * ux) + Float32(Float32(-2.0) * Float32(ux * maxCos)))); else tmp = sqrt(Float32(Float32(1.0) + Float32(Float32(Float32(1.0) + Float32(Float32(ux * maxCos) - ux)) * Float32(ux + Float32(-1.0))))); end return tmp end
function tmp_2 = code(ux, uy, maxCos) tmp = single(0.0); if (ux <= single(0.00026000000070780516)) tmp = sqrt(((single(2.0) * ux) + (single(-2.0) * (ux * maxCos)))); else tmp = sqrt((single(1.0) + ((single(1.0) + ((ux * maxCos) - ux)) * (ux + single(-1.0))))); end tmp_2 = tmp; end
\begin{array}{l}
\\
\begin{array}{l}
\mathbf{if}\;ux \leq 0.00026000000070780516:\\
\;\;\;\;\sqrt{2 \cdot ux + -2 \cdot \left(ux \cdot maxCos\right)}\\
\mathbf{else}:\\
\;\;\;\;\sqrt{1 + \left(1 + \left(ux \cdot maxCos - ux\right)\right) \cdot \left(ux + -1\right)}\\
\end{array}
\end{array}
if ux < 2.60000001e-4Initial program 35.7%
associate-*l*35.7%
sub-neg35.7%
+-commutative35.7%
distribute-rgt-neg-in35.7%
fma-define35.7%
Simplified35.8%
Taylor expanded in uy around 0 32.6%
Simplified32.7%
Taylor expanded in ux around 0 75.5%
Taylor expanded in maxCos around 0 75.5%
if 2.60000001e-4 < ux Initial program 89.7%
associate-*l*89.7%
sub-neg89.7%
+-commutative89.7%
distribute-rgt-neg-in89.7%
fma-define90.1%
Simplified90.1%
Taylor expanded in uy around 0 75.2%
Simplified75.2%
Taylor expanded in maxCos around 0 74.4%
neg-mul-174.4%
Simplified74.4%
Final simplification75.1%
(FPCore (ux uy maxCos) :precision binary32 (sqrt (- (* ux (- 2.0 ux)) (* maxCos (* ux (- 2.0 (* 2.0 ux)))))))
float code(float ux, float uy, float maxCos) {
return sqrtf(((ux * (2.0f - ux)) - (maxCos * (ux * (2.0f - (2.0f * ux))))));
}
real(4) function code(ux, uy, maxcos)
real(4), intent (in) :: ux
real(4), intent (in) :: uy
real(4), intent (in) :: maxcos
code = sqrt(((ux * (2.0e0 - ux)) - (maxcos * (ux * (2.0e0 - (2.0e0 * ux))))))
end function
function code(ux, uy, maxCos) return sqrt(Float32(Float32(ux * Float32(Float32(2.0) - ux)) - Float32(maxCos * Float32(ux * Float32(Float32(2.0) - Float32(Float32(2.0) * ux)))))) end
function tmp = code(ux, uy, maxCos) tmp = sqrt(((ux * (single(2.0) - ux)) - (maxCos * (ux * (single(2.0) - (single(2.0) * ux)))))); end
\begin{array}{l}
\\
\sqrt{ux \cdot \left(2 - ux\right) - maxCos \cdot \left(ux \cdot \left(2 - 2 \cdot ux\right)\right)}
\end{array}
Initial program 55.3%
Taylor expanded in ux around 0 98.8%
cancel-sign-sub-inv98.8%
associate-*r*98.8%
mul-1-neg98.8%
sub-neg98.8%
metadata-eval98.8%
+-commutative98.8%
metadata-eval98.8%
*-commutative98.8%
Simplified98.8%
Taylor expanded in maxCos around 0 98.7%
Taylor expanded in uy around 0 79.8%
Final simplification79.8%
(FPCore (ux uy maxCos) :precision binary32 (if (<= ux 0.00026000000070780516) (sqrt (+ (* 2.0 ux) (* -2.0 (* ux maxCos)))) (sqrt (+ 1.0 (* (- 1.0 ux) (+ ux -1.0))))))
float code(float ux, float uy, float maxCos) {
float tmp;
if (ux <= 0.00026000000070780516f) {
tmp = sqrtf(((2.0f * ux) + (-2.0f * (ux * maxCos))));
} else {
tmp = sqrtf((1.0f + ((1.0f - ux) * (ux + -1.0f))));
}
return tmp;
}
real(4) function code(ux, uy, maxcos)
real(4), intent (in) :: ux
real(4), intent (in) :: uy
real(4), intent (in) :: maxcos
real(4) :: tmp
if (ux <= 0.00026000000070780516e0) then
tmp = sqrt(((2.0e0 * ux) + ((-2.0e0) * (ux * maxcos))))
else
tmp = sqrt((1.0e0 + ((1.0e0 - ux) * (ux + (-1.0e0)))))
end if
code = tmp
end function
function code(ux, uy, maxCos) tmp = Float32(0.0) if (ux <= Float32(0.00026000000070780516)) tmp = sqrt(Float32(Float32(Float32(2.0) * ux) + Float32(Float32(-2.0) * Float32(ux * maxCos)))); else tmp = sqrt(Float32(Float32(1.0) + Float32(Float32(Float32(1.0) - ux) * Float32(ux + Float32(-1.0))))); end return tmp end
function tmp_2 = code(ux, uy, maxCos) tmp = single(0.0); if (ux <= single(0.00026000000070780516)) tmp = sqrt(((single(2.0) * ux) + (single(-2.0) * (ux * maxCos)))); else tmp = sqrt((single(1.0) + ((single(1.0) - ux) * (ux + single(-1.0))))); end tmp_2 = tmp; end
\begin{array}{l}
\\
\begin{array}{l}
\mathbf{if}\;ux \leq 0.00026000000070780516:\\
\;\;\;\;\sqrt{2 \cdot ux + -2 \cdot \left(ux \cdot maxCos\right)}\\
\mathbf{else}:\\
\;\;\;\;\sqrt{1 + \left(1 - ux\right) \cdot \left(ux + -1\right)}\\
\end{array}
\end{array}
if ux < 2.60000001e-4Initial program 35.7%
associate-*l*35.7%
sub-neg35.7%
+-commutative35.7%
distribute-rgt-neg-in35.7%
fma-define35.7%
Simplified35.8%
Taylor expanded in uy around 0 32.6%
Simplified32.7%
Taylor expanded in ux around 0 75.5%
Taylor expanded in maxCos around 0 75.5%
if 2.60000001e-4 < ux Initial program 89.7%
associate-*l*89.7%
sub-neg89.7%
+-commutative89.7%
distribute-rgt-neg-in89.7%
fma-define90.1%
Simplified90.1%
Taylor expanded in uy around 0 75.2%
Simplified75.2%
Taylor expanded in maxCos around 0 74.2%
Final simplification75.0%
(FPCore (ux uy maxCos) :precision binary32 (sqrt (+ (* 2.0 ux) (* -2.0 (* ux maxCos)))))
float code(float ux, float uy, float maxCos) {
return sqrtf(((2.0f * ux) + (-2.0f * (ux * maxCos))));
}
real(4) function code(ux, uy, maxcos)
real(4), intent (in) :: ux
real(4), intent (in) :: uy
real(4), intent (in) :: maxcos
code = sqrt(((2.0e0 * ux) + ((-2.0e0) * (ux * maxcos))))
end function
function code(ux, uy, maxCos) return sqrt(Float32(Float32(Float32(2.0) * ux) + Float32(Float32(-2.0) * Float32(ux * maxCos)))) end
function tmp = code(ux, uy, maxCos) tmp = sqrt(((single(2.0) * ux) + (single(-2.0) * (ux * maxCos)))); end
\begin{array}{l}
\\
\sqrt{2 \cdot ux + -2 \cdot \left(ux \cdot maxCos\right)}
\end{array}
Initial program 55.3%
associate-*l*55.3%
sub-neg55.3%
+-commutative55.3%
distribute-rgt-neg-in55.3%
fma-define55.4%
Simplified55.6%
Taylor expanded in uy around 0 48.1%
Simplified48.1%
Taylor expanded in ux around 0 64.4%
Taylor expanded in maxCos around 0 64.4%
Final simplification64.4%
(FPCore (ux uy maxCos) :precision binary32 (sqrt (* ux (- 2.0 (* 2.0 maxCos)))))
float code(float ux, float uy, float maxCos) {
return sqrtf((ux * (2.0f - (2.0f * maxCos))));
}
real(4) function code(ux, uy, maxcos)
real(4), intent (in) :: ux
real(4), intent (in) :: uy
real(4), intent (in) :: maxcos
code = sqrt((ux * (2.0e0 - (2.0e0 * maxcos))))
end function
function code(ux, uy, maxCos) return sqrt(Float32(ux * Float32(Float32(2.0) - Float32(Float32(2.0) * maxCos)))) end
function tmp = code(ux, uy, maxCos) tmp = sqrt((ux * (single(2.0) - (single(2.0) * maxCos)))); end
\begin{array}{l}
\\
\sqrt{ux \cdot \left(2 - 2 \cdot maxCos\right)}
\end{array}
Initial program 55.3%
associate-*l*55.3%
sub-neg55.3%
+-commutative55.3%
distribute-rgt-neg-in55.3%
fma-define55.4%
Simplified55.6%
Taylor expanded in uy around 0 48.1%
Simplified48.1%
Taylor expanded in ux around 0 64.4%
Final simplification64.4%
(FPCore (ux uy maxCos) :precision binary32 (* maxCos (* ux (sqrt -1.0))))
float code(float ux, float uy, float maxCos) {
return maxCos * (ux * sqrtf(-1.0f));
}
real(4) function code(ux, uy, maxcos)
real(4), intent (in) :: ux
real(4), intent (in) :: uy
real(4), intent (in) :: maxcos
code = maxcos * (ux * sqrt((-1.0e0)))
end function
function code(ux, uy, maxCos) return Float32(maxCos * Float32(ux * sqrt(Float32(-1.0)))) end
function tmp = code(ux, uy, maxCos) tmp = maxCos * (ux * sqrt(single(-1.0))); end
\begin{array}{l}
\\
maxCos \cdot \left(ux \cdot \sqrt{-1}\right)
\end{array}
Initial program 55.3%
associate-*l*55.3%
sub-neg55.3%
+-commutative55.3%
distribute-rgt-neg-in55.3%
fma-define55.4%
Simplified55.6%
Taylor expanded in uy around 0 48.1%
Simplified48.1%
Taylor expanded in maxCos around inf -0.0%
Final simplification-0.0%
herbie shell --seed 2024089
(FPCore (ux uy maxCos)
:name "UniformSampleCone, x"
:precision binary32
:pre (and (and (and (<= 2.328306437e-10 ux) (<= ux 1.0)) (and (<= 2.328306437e-10 uy) (<= uy 1.0))) (and (<= 0.0 maxCos) (<= maxCos 1.0)))
(* (cos (* (* uy 2.0) PI)) (sqrt (- 1.0 (* (+ (- 1.0 ux) (* ux maxCos)) (+ (- 1.0 ux) (* ux maxCos)))))))