
(FPCore (sinTheta_O h eta)
:precision binary32
(asin
(/
h
(sqrt
(-
(* eta eta)
(/
(* sinTheta_O sinTheta_O)
(sqrt (- 1.0 (* sinTheta_O sinTheta_O)))))))))
float code(float sinTheta_O, float h, float eta) {
return asinf((h / sqrtf(((eta * eta) - ((sinTheta_O * sinTheta_O) / sqrtf((1.0f - (sinTheta_O * sinTheta_O))))))));
}
real(4) function code(sintheta_o, h, eta)
real(4), intent (in) :: sintheta_o
real(4), intent (in) :: h
real(4), intent (in) :: eta
code = asin((h / sqrt(((eta * eta) - ((sintheta_o * sintheta_o) / sqrt((1.0e0 - (sintheta_o * sintheta_o))))))))
end function
function code(sinTheta_O, h, eta) return asin(Float32(h / sqrt(Float32(Float32(eta * eta) - Float32(Float32(sinTheta_O * sinTheta_O) / sqrt(Float32(Float32(1.0) - Float32(sinTheta_O * sinTheta_O)))))))) end
function tmp = code(sinTheta_O, h, eta) tmp = asin((h / sqrt(((eta * eta) - ((sinTheta_O * sinTheta_O) / sqrt((single(1.0) - (sinTheta_O * sinTheta_O)))))))); end
\begin{array}{l}
\\
\sin^{-1} \left(\frac{h}{\sqrt{eta \cdot eta - \frac{sinTheta\_O \cdot sinTheta\_O}{\sqrt{1 - sinTheta\_O \cdot sinTheta\_O}}}}\right)
\end{array}
Sampling outcomes in binary32 precision:
Herbie found 5 alternatives:
| Alternative | Accuracy | Speedup |
|---|
(FPCore (sinTheta_O h eta)
:precision binary32
(asin
(/
h
(sqrt
(-
(* eta eta)
(/
(* sinTheta_O sinTheta_O)
(sqrt (- 1.0 (* sinTheta_O sinTheta_O)))))))))
float code(float sinTheta_O, float h, float eta) {
return asinf((h / sqrtf(((eta * eta) - ((sinTheta_O * sinTheta_O) / sqrtf((1.0f - (sinTheta_O * sinTheta_O))))))));
}
real(4) function code(sintheta_o, h, eta)
real(4), intent (in) :: sintheta_o
real(4), intent (in) :: h
real(4), intent (in) :: eta
code = asin((h / sqrt(((eta * eta) - ((sintheta_o * sintheta_o) / sqrt((1.0e0 - (sintheta_o * sintheta_o))))))))
end function
function code(sinTheta_O, h, eta) return asin(Float32(h / sqrt(Float32(Float32(eta * eta) - Float32(Float32(sinTheta_O * sinTheta_O) / sqrt(Float32(Float32(1.0) - Float32(sinTheta_O * sinTheta_O)))))))) end
function tmp = code(sinTheta_O, h, eta) tmp = asin((h / sqrt(((eta * eta) - ((sinTheta_O * sinTheta_O) / sqrt((single(1.0) - (sinTheta_O * sinTheta_O)))))))); end
\begin{array}{l}
\\
\sin^{-1} \left(\frac{h}{\sqrt{eta \cdot eta - \frac{sinTheta\_O \cdot sinTheta\_O}{\sqrt{1 - sinTheta\_O \cdot sinTheta\_O}}}}\right)
\end{array}
(FPCore (sinTheta_O h eta)
:precision binary32
(let* ((t_0 (pow (- 1.0 (pow sinTheta_O 2.0)) -0.25)))
(asin
(/
h
(* (sqrt (fma sinTheta_O t_0 eta)) (sqrt (- eta (* sinTheta_O t_0))))))))
float code(float sinTheta_O, float h, float eta) {
float t_0 = powf((1.0f - powf(sinTheta_O, 2.0f)), -0.25f);
return asinf((h / (sqrtf(fmaf(sinTheta_O, t_0, eta)) * sqrtf((eta - (sinTheta_O * t_0))))));
}
function code(sinTheta_O, h, eta) t_0 = Float32(Float32(1.0) - (sinTheta_O ^ Float32(2.0))) ^ Float32(-0.25) return asin(Float32(h / Float32(sqrt(fma(sinTheta_O, t_0, eta)) * sqrt(Float32(eta - Float32(sinTheta_O * t_0)))))) end
\begin{array}{l}
\\
\begin{array}{l}
t_0 := {\left(1 - {sinTheta\_O}^{2}\right)}^{-0.25}\\
\sin^{-1} \left(\frac{h}{\sqrt{\mathsf{fma}\left(sinTheta\_O, t\_0, eta\right)} \cdot \sqrt{eta - sinTheta\_O \cdot t\_0}}\right)
\end{array}
\end{array}
Initial program 89.0%
add-sqr-sqrt89.0%
difference-of-squares89.1%
sqrt-div89.1%
sqrt-prod47.0%
add-sqr-sqrt86.1%
pow1/286.1%
sqrt-pow186.1%
pow286.1%
metadata-eval86.1%
sqrt-div86.1%
sqrt-prod47.3%
add-sqr-sqrt89.1%
pow1/289.1%
sqrt-pow189.1%
Applied egg-rr89.1%
sqrt-prod98.5%
+-commutative98.5%
div-inv98.5%
fma-define98.5%
pow-flip98.5%
metadata-eval98.5%
div-inv98.5%
pow-flip98.5%
metadata-eval98.5%
Applied egg-rr98.5%
(FPCore (sinTheta_O h eta)
:precision binary32
(asin
(/
(/ h eta)
(+
1.0
(*
-0.5
(pow
(/ (/ sinTheta_O (pow (- 1.0 (pow sinTheta_O 2.0)) 0.25)) eta)
2.0))))))
float code(float sinTheta_O, float h, float eta) {
return asinf(((h / eta) / (1.0f + (-0.5f * powf(((sinTheta_O / powf((1.0f - powf(sinTheta_O, 2.0f)), 0.25f)) / eta), 2.0f)))));
}
real(4) function code(sintheta_o, h, eta)
real(4), intent (in) :: sintheta_o
real(4), intent (in) :: h
real(4), intent (in) :: eta
code = asin(((h / eta) / (1.0e0 + ((-0.5e0) * (((sintheta_o / ((1.0e0 - (sintheta_o ** 2.0e0)) ** 0.25e0)) / eta) ** 2.0e0)))))
end function
function code(sinTheta_O, h, eta) return asin(Float32(Float32(h / eta) / Float32(Float32(1.0) + Float32(Float32(-0.5) * (Float32(Float32(sinTheta_O / (Float32(Float32(1.0) - (sinTheta_O ^ Float32(2.0))) ^ Float32(0.25))) / eta) ^ Float32(2.0)))))) end
function tmp = code(sinTheta_O, h, eta) tmp = asin(((h / eta) / (single(1.0) + (single(-0.5) * (((sinTheta_O / ((single(1.0) - (sinTheta_O ^ single(2.0))) ^ single(0.25))) / eta) ^ single(2.0)))))); end
\begin{array}{l}
\\
\sin^{-1} \left(\frac{\frac{h}{eta}}{1 + -0.5 \cdot {\left(\frac{\frac{sinTheta\_O}{{\left(1 - {sinTheta\_O}^{2}\right)}^{0.25}}}{eta}\right)}^{2}}\right)
\end{array}
Initial program 89.0%
Taylor expanded in eta around inf 89.8%
*-un-lft-identity89.8%
associate-/r*89.8%
+-commutative89.8%
fma-define89.8%
associate-*l/89.8%
sqrt-div89.8%
metadata-eval89.8%
div-inv89.8%
Applied egg-rr89.8%
fma-undefine89.8%
Applied egg-rr98.3%
Final simplification98.3%
(FPCore (sinTheta_O h eta) :precision binary32 (asin (/ (/ h eta) (+ 1.0 (* -0.5 (pow (/ sinTheta_O eta) 2.0))))))
float code(float sinTheta_O, float h, float eta) {
return asinf(((h / eta) / (1.0f + (-0.5f * powf((sinTheta_O / eta), 2.0f)))));
}
real(4) function code(sintheta_o, h, eta)
real(4), intent (in) :: sintheta_o
real(4), intent (in) :: h
real(4), intent (in) :: eta
code = asin(((h / eta) / (1.0e0 + ((-0.5e0) * ((sintheta_o / eta) ** 2.0e0)))))
end function
function code(sinTheta_O, h, eta) return asin(Float32(Float32(h / eta) / Float32(Float32(1.0) + Float32(Float32(-0.5) * (Float32(sinTheta_O / eta) ^ Float32(2.0)))))) end
function tmp = code(sinTheta_O, h, eta) tmp = asin(((h / eta) / (single(1.0) + (single(-0.5) * ((sinTheta_O / eta) ^ single(2.0)))))); end
\begin{array}{l}
\\
\sin^{-1} \left(\frac{\frac{h}{eta}}{1 + -0.5 \cdot {\left(\frac{sinTheta\_O}{eta}\right)}^{2}}\right)
\end{array}
Initial program 89.0%
Taylor expanded in eta around inf 89.8%
*-un-lft-identity89.8%
associate-/r*89.8%
+-commutative89.8%
fma-define89.8%
associate-*l/89.8%
sqrt-div89.8%
metadata-eval89.8%
div-inv89.8%
Applied egg-rr89.8%
Taylor expanded in sinTheta_O around 0 89.8%
pow189.8%
add-sqr-sqrt89.8%
pow289.8%
sqrt-div89.8%
sqrt-pow190.4%
metadata-eval90.4%
pow190.4%
sqrt-pow198.3%
metadata-eval98.3%
pow198.3%
Applied egg-rr98.3%
unpow198.3%
Simplified98.3%
Final simplification98.3%
(FPCore (sinTheta_O h eta) :precision binary32 (asin (/ h (+ eta (* -0.5 (/ (pow sinTheta_O 2.0) eta))))))
float code(float sinTheta_O, float h, float eta) {
return asinf((h / (eta + (-0.5f * (powf(sinTheta_O, 2.0f) / eta)))));
}
real(4) function code(sintheta_o, h, eta)
real(4), intent (in) :: sintheta_o
real(4), intent (in) :: h
real(4), intent (in) :: eta
code = asin((h / (eta + ((-0.5e0) * ((sintheta_o ** 2.0e0) / eta)))))
end function
function code(sinTheta_O, h, eta) return asin(Float32(h / Float32(eta + Float32(Float32(-0.5) * Float32((sinTheta_O ^ Float32(2.0)) / eta))))) end
function tmp = code(sinTheta_O, h, eta) tmp = asin((h / (eta + (single(-0.5) * ((sinTheta_O ^ single(2.0)) / eta))))); end
\begin{array}{l}
\\
\sin^{-1} \left(\frac{h}{eta + -0.5 \cdot \frac{{sinTheta\_O}^{2}}{eta}}\right)
\end{array}
Initial program 89.0%
Taylor expanded in sinTheta_O around 0 97.7%
(FPCore (sinTheta_O h eta) :precision binary32 (asin (/ h eta)))
float code(float sinTheta_O, float h, float eta) {
return asinf((h / eta));
}
real(4) function code(sintheta_o, h, eta)
real(4), intent (in) :: sintheta_o
real(4), intent (in) :: h
real(4), intent (in) :: eta
code = asin((h / eta))
end function
function code(sinTheta_O, h, eta) return asin(Float32(h / eta)) end
function tmp = code(sinTheta_O, h, eta) tmp = asin((h / eta)); end
\begin{array}{l}
\\
\sin^{-1} \left(\frac{h}{eta}\right)
\end{array}
Initial program 89.0%
Taylor expanded in eta around inf 96.3%
herbie shell --seed 2024119
(FPCore (sinTheta_O h eta)
:name "HairBSDF, gamma for a refracted ray"
:precision binary32
:pre (and (and (and (<= -1.0 sinTheta_O) (<= sinTheta_O 1.0)) (and (<= -1.0 h) (<= h 1.0))) (and (<= 0.0 eta) (<= eta 10.0)))
(asin (/ h (sqrt (- (* eta eta) (/ (* sinTheta_O sinTheta_O) (sqrt (- 1.0 (* sinTheta_O sinTheta_O)))))))))