
(FPCore (w h dX.u dX.v dY.u dY.v maxAniso)
:precision binary32
(let* ((t_0 (* (floor h) dX.v))
(t_1 (* (floor w) dY.u))
(t_2 (* (floor w) dX.u))
(t_3 (+ (* t_2 t_2) (* t_0 t_0)))
(t_4 (* (floor h) dY.v))
(t_5 (+ (* t_1 t_1) (* t_4 t_4)))
(t_6 (/ 1.0 (sqrt (fmax t_3 t_5)))))
(if (>= t_3 t_5) (* t_6 t_2) (* t_6 t_1))))
float code(float w, float h, float dX_46_u, float dX_46_v, float dY_46_u, float dY_46_v, float maxAniso) {
float t_0 = floorf(h) * dX_46_v;
float t_1 = floorf(w) * dY_46_u;
float t_2 = floorf(w) * dX_46_u;
float t_3 = (t_2 * t_2) + (t_0 * t_0);
float t_4 = floorf(h) * dY_46_v;
float t_5 = (t_1 * t_1) + (t_4 * t_4);
float t_6 = 1.0f / sqrtf(fmaxf(t_3, t_5));
float tmp;
if (t_3 >= t_5) {
tmp = t_6 * t_2;
} else {
tmp = t_6 * t_1;
}
return tmp;
}
function code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = Float32(floor(h) * dX_46_v) t_1 = Float32(floor(w) * dY_46_u) t_2 = Float32(floor(w) * dX_46_u) t_3 = Float32(Float32(t_2 * t_2) + Float32(t_0 * t_0)) t_4 = Float32(floor(h) * dY_46_v) t_5 = Float32(Float32(t_1 * t_1) + Float32(t_4 * t_4)) t_6 = Float32(Float32(1.0) / sqrt(((t_3 != t_3) ? t_5 : ((t_5 != t_5) ? t_3 : max(t_3, t_5))))) tmp = Float32(0.0) if (t_3 >= t_5) tmp = Float32(t_6 * t_2); else tmp = Float32(t_6 * t_1); end return tmp end
function tmp_2 = code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = floor(h) * dX_46_v; t_1 = floor(w) * dY_46_u; t_2 = floor(w) * dX_46_u; t_3 = (t_2 * t_2) + (t_0 * t_0); t_4 = floor(h) * dY_46_v; t_5 = (t_1 * t_1) + (t_4 * t_4); t_6 = single(1.0) / sqrt(max(t_3, t_5)); tmp = single(0.0); if (t_3 >= t_5) tmp = t_6 * t_2; else tmp = t_6 * t_1; end tmp_2 = tmp; end
\begin{array}{l}
\\
\begin{array}{l}
t_0 := \left\lfloorh\right\rfloor \cdot dX.v\\
t_1 := \left\lfloorw\right\rfloor \cdot dY.u\\
t_2 := \left\lfloorw\right\rfloor \cdot dX.u\\
t_3 := t\_2 \cdot t\_2 + t\_0 \cdot t\_0\\
t_4 := \left\lfloorh\right\rfloor \cdot dY.v\\
t_5 := t\_1 \cdot t\_1 + t\_4 \cdot t\_4\\
t_6 := \frac{1}{\sqrt{\mathsf{max}\left(t\_3, t\_5\right)}}\\
\mathbf{if}\;t\_3 \geq t\_5:\\
\;\;\;\;t\_6 \cdot t\_2\\
\mathbf{else}:\\
\;\;\;\;t\_6 \cdot t\_1\\
\end{array}
\end{array}
Sampling outcomes in binary32 precision:
Herbie found 10 alternatives:
| Alternative | Accuracy | Speedup |
|---|
(FPCore (w h dX.u dX.v dY.u dY.v maxAniso)
:precision binary32
(let* ((t_0 (* (floor h) dX.v))
(t_1 (* (floor w) dY.u))
(t_2 (* (floor w) dX.u))
(t_3 (+ (* t_2 t_2) (* t_0 t_0)))
(t_4 (* (floor h) dY.v))
(t_5 (+ (* t_1 t_1) (* t_4 t_4)))
(t_6 (/ 1.0 (sqrt (fmax t_3 t_5)))))
(if (>= t_3 t_5) (* t_6 t_2) (* t_6 t_1))))
float code(float w, float h, float dX_46_u, float dX_46_v, float dY_46_u, float dY_46_v, float maxAniso) {
float t_0 = floorf(h) * dX_46_v;
float t_1 = floorf(w) * dY_46_u;
float t_2 = floorf(w) * dX_46_u;
float t_3 = (t_2 * t_2) + (t_0 * t_0);
float t_4 = floorf(h) * dY_46_v;
float t_5 = (t_1 * t_1) + (t_4 * t_4);
float t_6 = 1.0f / sqrtf(fmaxf(t_3, t_5));
float tmp;
if (t_3 >= t_5) {
tmp = t_6 * t_2;
} else {
tmp = t_6 * t_1;
}
return tmp;
}
function code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = Float32(floor(h) * dX_46_v) t_1 = Float32(floor(w) * dY_46_u) t_2 = Float32(floor(w) * dX_46_u) t_3 = Float32(Float32(t_2 * t_2) + Float32(t_0 * t_0)) t_4 = Float32(floor(h) * dY_46_v) t_5 = Float32(Float32(t_1 * t_1) + Float32(t_4 * t_4)) t_6 = Float32(Float32(1.0) / sqrt(((t_3 != t_3) ? t_5 : ((t_5 != t_5) ? t_3 : max(t_3, t_5))))) tmp = Float32(0.0) if (t_3 >= t_5) tmp = Float32(t_6 * t_2); else tmp = Float32(t_6 * t_1); end return tmp end
function tmp_2 = code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = floor(h) * dX_46_v; t_1 = floor(w) * dY_46_u; t_2 = floor(w) * dX_46_u; t_3 = (t_2 * t_2) + (t_0 * t_0); t_4 = floor(h) * dY_46_v; t_5 = (t_1 * t_1) + (t_4 * t_4); t_6 = single(1.0) / sqrt(max(t_3, t_5)); tmp = single(0.0); if (t_3 >= t_5) tmp = t_6 * t_2; else tmp = t_6 * t_1; end tmp_2 = tmp; end
\begin{array}{l}
\\
\begin{array}{l}
t_0 := \left\lfloorh\right\rfloor \cdot dX.v\\
t_1 := \left\lfloorw\right\rfloor \cdot dY.u\\
t_2 := \left\lfloorw\right\rfloor \cdot dX.u\\
t_3 := t\_2 \cdot t\_2 + t\_0 \cdot t\_0\\
t_4 := \left\lfloorh\right\rfloor \cdot dY.v\\
t_5 := t\_1 \cdot t\_1 + t\_4 \cdot t\_4\\
t_6 := \frac{1}{\sqrt{\mathsf{max}\left(t\_3, t\_5\right)}}\\
\mathbf{if}\;t\_3 \geq t\_5:\\
\;\;\;\;t\_6 \cdot t\_2\\
\mathbf{else}:\\
\;\;\;\;t\_6 \cdot t\_1\\
\end{array}
\end{array}
(FPCore (w h dX.u dX.v dY.u dY.v maxAniso)
:precision binary32
(let* ((t_0 (* (floor h) dX.v))
(t_1 (* (floor w) dY.u))
(t_2 (* (floor h) dY.v))
(t_3 (* (floor w) dX.u))
(t_4
(sqrt (fmax (pow (hypot t_3 t_0) 2.0) (pow (hypot t_1 t_2) 2.0)))))
(if (>= (+ (* t_3 t_3) (* t_0 t_0)) (+ (* t_1 t_1) (* t_2 t_2)))
(/ t_3 t_4)
(/ t_1 t_4))))
float code(float w, float h, float dX_46_u, float dX_46_v, float dY_46_u, float dY_46_v, float maxAniso) {
float t_0 = floorf(h) * dX_46_v;
float t_1 = floorf(w) * dY_46_u;
float t_2 = floorf(h) * dY_46_v;
float t_3 = floorf(w) * dX_46_u;
float t_4 = sqrtf(fmaxf(powf(hypotf(t_3, t_0), 2.0f), powf(hypotf(t_1, t_2), 2.0f)));
float tmp;
if (((t_3 * t_3) + (t_0 * t_0)) >= ((t_1 * t_1) + (t_2 * t_2))) {
tmp = t_3 / t_4;
} else {
tmp = t_1 / t_4;
}
return tmp;
}
function code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = Float32(floor(h) * dX_46_v) t_1 = Float32(floor(w) * dY_46_u) t_2 = Float32(floor(h) * dY_46_v) t_3 = Float32(floor(w) * dX_46_u) t_4 = sqrt((((hypot(t_3, t_0) ^ Float32(2.0)) != (hypot(t_3, t_0) ^ Float32(2.0))) ? (hypot(t_1, t_2) ^ Float32(2.0)) : (((hypot(t_1, t_2) ^ Float32(2.0)) != (hypot(t_1, t_2) ^ Float32(2.0))) ? (hypot(t_3, t_0) ^ Float32(2.0)) : max((hypot(t_3, t_0) ^ Float32(2.0)), (hypot(t_1, t_2) ^ Float32(2.0)))))) tmp = Float32(0.0) if (Float32(Float32(t_3 * t_3) + Float32(t_0 * t_0)) >= Float32(Float32(t_1 * t_1) + Float32(t_2 * t_2))) tmp = Float32(t_3 / t_4); else tmp = Float32(t_1 / t_4); end return tmp end
function tmp_2 = code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = floor(h) * dX_46_v; t_1 = floor(w) * dY_46_u; t_2 = floor(h) * dY_46_v; t_3 = floor(w) * dX_46_u; t_4 = sqrt(max((hypot(t_3, t_0) ^ single(2.0)), (hypot(t_1, t_2) ^ single(2.0)))); tmp = single(0.0); if (((t_3 * t_3) + (t_0 * t_0)) >= ((t_1 * t_1) + (t_2 * t_2))) tmp = t_3 / t_4; else tmp = t_1 / t_4; end tmp_2 = tmp; end
\begin{array}{l}
\\
\begin{array}{l}
t_0 := \left\lfloorh\right\rfloor \cdot dX.v\\
t_1 := \left\lfloorw\right\rfloor \cdot dY.u\\
t_2 := \left\lfloorh\right\rfloor \cdot dY.v\\
t_3 := \left\lfloorw\right\rfloor \cdot dX.u\\
t_4 := \sqrt{\mathsf{max}\left({\left(\mathsf{hypot}\left(t\_3, t\_0\right)\right)}^{2}, {\left(\mathsf{hypot}\left(t\_1, t\_2\right)\right)}^{2}\right)}\\
\mathbf{if}\;t\_3 \cdot t\_3 + t\_0 \cdot t\_0 \geq t\_1 \cdot t\_1 + t\_2 \cdot t\_2:\\
\;\;\;\;\frac{t\_3}{t\_4}\\
\mathbf{else}:\\
\;\;\;\;\frac{t\_1}{t\_4}\\
\end{array}
\end{array}
Initial program 80.1%
expm1-log1p-u79.1%
expm1-undefine79.1%
Applied egg-rr79.1%
expm1-define79.1%
Simplified79.1%
associate-*l/79.2%
expm1-log1p-u80.2%
*-un-lft-identity80.2%
fma-define80.2%
Applied egg-rr80.2%
associate-*l/80.3%
*-un-lft-identity80.3%
pow280.3%
exp-to-pow80.3%
Applied egg-rr80.3%
Final simplification80.3%
(FPCore (w h dX.u dX.v dY.u dY.v maxAniso)
:precision binary32
(let* ((t_0 (pow (hypot (* (floor w) dY.u) (* (floor h) dY.v)) 2.0))
(t_1 (pow (hypot (* (floor w) dX.u) (* (floor h) dX.v)) 2.0))
(t_2 (sqrt (fmax t_1 t_0))))
(if (>= t_1 t_0) (* (floor w) (/ dX.u t_2)) (* (floor w) (/ dY.u t_2)))))
float code(float w, float h, float dX_46_u, float dX_46_v, float dY_46_u, float dY_46_v, float maxAniso) {
float t_0 = powf(hypotf((floorf(w) * dY_46_u), (floorf(h) * dY_46_v)), 2.0f);
float t_1 = powf(hypotf((floorf(w) * dX_46_u), (floorf(h) * dX_46_v)), 2.0f);
float t_2 = sqrtf(fmaxf(t_1, t_0));
float tmp;
if (t_1 >= t_0) {
tmp = floorf(w) * (dX_46_u / t_2);
} else {
tmp = floorf(w) * (dY_46_u / t_2);
}
return tmp;
}
function code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = hypot(Float32(floor(w) * dY_46_u), Float32(floor(h) * dY_46_v)) ^ Float32(2.0) t_1 = hypot(Float32(floor(w) * dX_46_u), Float32(floor(h) * dX_46_v)) ^ Float32(2.0) t_2 = sqrt(((t_1 != t_1) ? t_0 : ((t_0 != t_0) ? t_1 : max(t_1, t_0)))) tmp = Float32(0.0) if (t_1 >= t_0) tmp = Float32(floor(w) * Float32(dX_46_u / t_2)); else tmp = Float32(floor(w) * Float32(dY_46_u / t_2)); end return tmp end
function tmp_2 = code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = hypot((floor(w) * dY_46_u), (floor(h) * dY_46_v)) ^ single(2.0); t_1 = hypot((floor(w) * dX_46_u), (floor(h) * dX_46_v)) ^ single(2.0); t_2 = sqrt(max(t_1, t_0)); tmp = single(0.0); if (t_1 >= t_0) tmp = floor(w) * (dX_46_u / t_2); else tmp = floor(w) * (dY_46_u / t_2); end tmp_2 = tmp; end
\begin{array}{l}
\\
\begin{array}{l}
t_0 := {\left(\mathsf{hypot}\left(\left\lfloorw\right\rfloor \cdot dY.u, \left\lfloorh\right\rfloor \cdot dY.v\right)\right)}^{2}\\
t_1 := {\left(\mathsf{hypot}\left(\left\lfloorw\right\rfloor \cdot dX.u, \left\lfloorh\right\rfloor \cdot dX.v\right)\right)}^{2}\\
t_2 := \sqrt{\mathsf{max}\left(t\_1, t\_0\right)}\\
\mathbf{if}\;t\_1 \geq t\_0:\\
\;\;\;\;\left\lfloorw\right\rfloor \cdot \frac{dX.u}{t\_2}\\
\mathbf{else}:\\
\;\;\;\;\left\lfloorw\right\rfloor \cdot \frac{dY.u}{t\_2}\\
\end{array}
\end{array}
Initial program 80.1%
expm1-log1p-u79.1%
expm1-undefine79.1%
Applied egg-rr79.1%
expm1-define79.1%
Simplified79.1%
associate-*l/79.2%
expm1-log1p-u80.2%
*-un-lft-identity80.2%
fma-define80.2%
Applied egg-rr80.2%
Taylor expanded in w around 0 79.9%
Simplified79.9%
Final simplification79.9%
(FPCore (w h dX.u dX.v dY.u dY.v maxAniso)
:precision binary32
(let* ((t_0 (* (floor w) dX.u))
(t_1 (* (floor h) dX.v))
(t_2 (* (floor w) dY.u))
(t_3 (* (floor h) dY.v))
(t_4 (pow (hypot t_2 t_3) 2.0))
(t_5 (sqrt (fmax (pow (hypot t_0 t_1) 2.0) t_4)))
(t_6 (/ t_0 t_5)))
(if (or (<= dX.u -0.05000000074505806) (not (<= dX.u 0.4000000059604645)))
(if (>= (pow t_0 2.0) t_4) t_6 (* (floor w) (* dY.u (/ 1.0 t_5))))
(if (>= (pow t_1 2.0) (+ (* t_2 t_2) (* t_3 t_3))) t_6 (/ t_2 t_5)))))
float code(float w, float h, float dX_46_u, float dX_46_v, float dY_46_u, float dY_46_v, float maxAniso) {
float t_0 = floorf(w) * dX_46_u;
float t_1 = floorf(h) * dX_46_v;
float t_2 = floorf(w) * dY_46_u;
float t_3 = floorf(h) * dY_46_v;
float t_4 = powf(hypotf(t_2, t_3), 2.0f);
float t_5 = sqrtf(fmaxf(powf(hypotf(t_0, t_1), 2.0f), t_4));
float t_6 = t_0 / t_5;
float tmp_1;
if ((dX_46_u <= -0.05000000074505806f) || !(dX_46_u <= 0.4000000059604645f)) {
float tmp_2;
if (powf(t_0, 2.0f) >= t_4) {
tmp_2 = t_6;
} else {
tmp_2 = floorf(w) * (dY_46_u * (1.0f / t_5));
}
tmp_1 = tmp_2;
} else if (powf(t_1, 2.0f) >= ((t_2 * t_2) + (t_3 * t_3))) {
tmp_1 = t_6;
} else {
tmp_1 = t_2 / t_5;
}
return tmp_1;
}
function code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = Float32(floor(w) * dX_46_u) t_1 = Float32(floor(h) * dX_46_v) t_2 = Float32(floor(w) * dY_46_u) t_3 = Float32(floor(h) * dY_46_v) t_4 = hypot(t_2, t_3) ^ Float32(2.0) t_5 = sqrt((((hypot(t_0, t_1) ^ Float32(2.0)) != (hypot(t_0, t_1) ^ Float32(2.0))) ? t_4 : ((t_4 != t_4) ? (hypot(t_0, t_1) ^ Float32(2.0)) : max((hypot(t_0, t_1) ^ Float32(2.0)), t_4)))) t_6 = Float32(t_0 / t_5) tmp_1 = Float32(0.0) if ((dX_46_u <= Float32(-0.05000000074505806)) || !(dX_46_u <= Float32(0.4000000059604645))) tmp_2 = Float32(0.0) if ((t_0 ^ Float32(2.0)) >= t_4) tmp_2 = t_6; else tmp_2 = Float32(floor(w) * Float32(dY_46_u * Float32(Float32(1.0) / t_5))); end tmp_1 = tmp_2; elseif ((t_1 ^ Float32(2.0)) >= Float32(Float32(t_2 * t_2) + Float32(t_3 * t_3))) tmp_1 = t_6; else tmp_1 = Float32(t_2 / t_5); end return tmp_1 end
function tmp_4 = code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = floor(w) * dX_46_u; t_1 = floor(h) * dX_46_v; t_2 = floor(w) * dY_46_u; t_3 = floor(h) * dY_46_v; t_4 = hypot(t_2, t_3) ^ single(2.0); t_5 = sqrt(max((hypot(t_0, t_1) ^ single(2.0)), t_4)); t_6 = t_0 / t_5; tmp_2 = single(0.0); if ((dX_46_u <= single(-0.05000000074505806)) || ~((dX_46_u <= single(0.4000000059604645)))) tmp_3 = single(0.0); if ((t_0 ^ single(2.0)) >= t_4) tmp_3 = t_6; else tmp_3 = floor(w) * (dY_46_u * (single(1.0) / t_5)); end tmp_2 = tmp_3; elseif ((t_1 ^ single(2.0)) >= ((t_2 * t_2) + (t_3 * t_3))) tmp_2 = t_6; else tmp_2 = t_2 / t_5; end tmp_4 = tmp_2; end
\begin{array}{l}
\\
\begin{array}{l}
t_0 := \left\lfloorw\right\rfloor \cdot dX.u\\
t_1 := \left\lfloorh\right\rfloor \cdot dX.v\\
t_2 := \left\lfloorw\right\rfloor \cdot dY.u\\
t_3 := \left\lfloorh\right\rfloor \cdot dY.v\\
t_4 := {\left(\mathsf{hypot}\left(t\_2, t\_3\right)\right)}^{2}\\
t_5 := \sqrt{\mathsf{max}\left({\left(\mathsf{hypot}\left(t\_0, t\_1\right)\right)}^{2}, t\_4\right)}\\
t_6 := \frac{t\_0}{t\_5}\\
\mathbf{if}\;dX.u \leq -0.05000000074505806 \lor \neg \left(dX.u \leq 0.4000000059604645\right):\\
\;\;\;\;\begin{array}{l}
\mathbf{if}\;{t\_0}^{2} \geq t\_4:\\
\;\;\;\;t\_6\\
\mathbf{else}:\\
\;\;\;\;\left\lfloorw\right\rfloor \cdot \left(dY.u \cdot \frac{1}{t\_5}\right)\\
\end{array}\\
\mathbf{elif}\;{t\_1}^{2} \geq t\_2 \cdot t\_2 + t\_3 \cdot t\_3:\\
\;\;\;\;t\_6\\
\mathbf{else}:\\
\;\;\;\;\frac{t\_2}{t\_5}\\
\end{array}
\end{array}
if dX.u < -0.0500000007 or 0.400000006 < dX.u Initial program 78.8%
Simplified78.6%
Taylor expanded in w around 0 78.4%
Simplified78.4%
Taylor expanded in dX.u around inf 78.4%
Taylor expanded in dX.u around 0 78.4%
Simplified78.8%
if -0.0500000007 < dX.u < 0.400000006Initial program 81.4%
expm1-log1p-u80.8%
expm1-undefine80.8%
Applied egg-rr80.8%
expm1-define80.8%
Simplified80.8%
associate-*l/80.9%
expm1-log1p-u81.5%
*-un-lft-identity81.5%
fma-define81.5%
Applied egg-rr81.5%
associate-*l/81.6%
*-un-lft-identity81.6%
pow281.6%
exp-to-pow81.6%
Applied egg-rr81.6%
Taylor expanded in dX.u around 0 81.6%
*-commutative81.6%
unpow281.6%
unpow281.6%
swap-sqr81.6%
unpow281.6%
Simplified81.6%
Final simplification80.2%
(FPCore (w h dX.u dX.v dY.u dY.v maxAniso)
:precision binary32
(let* ((t_0 (* (floor w) dY.u))
(t_1 (pow (hypot t_0 (* (floor h) dY.v)) 2.0))
(t_2 (* (floor w) dX.u))
(t_3 (pow (hypot t_2 (* (floor h) dX.v)) 2.0))
(t_4 (fmax t_3 t_1))
(t_5 (sqrt t_4))
(t_6 (sqrt (/ 1.0 t_4))))
(if (<= dY.v 70000.0)
(if (>= t_3 (pow t_0 2.0))
(* (floor w) (* dX.u t_6))
(* (floor w) (* dY.u t_6)))
(if (>= (pow t_2 2.0) t_1)
(* (floor w) (/ dX.u t_5))
(* (floor w) (/ dY.u t_5))))))
float code(float w, float h, float dX_46_u, float dX_46_v, float dY_46_u, float dY_46_v, float maxAniso) {
float t_0 = floorf(w) * dY_46_u;
float t_1 = powf(hypotf(t_0, (floorf(h) * dY_46_v)), 2.0f);
float t_2 = floorf(w) * dX_46_u;
float t_3 = powf(hypotf(t_2, (floorf(h) * dX_46_v)), 2.0f);
float t_4 = fmaxf(t_3, t_1);
float t_5 = sqrtf(t_4);
float t_6 = sqrtf((1.0f / t_4));
float tmp_1;
if (dY_46_v <= 70000.0f) {
float tmp_2;
if (t_3 >= powf(t_0, 2.0f)) {
tmp_2 = floorf(w) * (dX_46_u * t_6);
} else {
tmp_2 = floorf(w) * (dY_46_u * t_6);
}
tmp_1 = tmp_2;
} else if (powf(t_2, 2.0f) >= t_1) {
tmp_1 = floorf(w) * (dX_46_u / t_5);
} else {
tmp_1 = floorf(w) * (dY_46_u / t_5);
}
return tmp_1;
}
function code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = Float32(floor(w) * dY_46_u) t_1 = hypot(t_0, Float32(floor(h) * dY_46_v)) ^ Float32(2.0) t_2 = Float32(floor(w) * dX_46_u) t_3 = hypot(t_2, Float32(floor(h) * dX_46_v)) ^ Float32(2.0) t_4 = (t_3 != t_3) ? t_1 : ((t_1 != t_1) ? t_3 : max(t_3, t_1)) t_5 = sqrt(t_4) t_6 = sqrt(Float32(Float32(1.0) / t_4)) tmp_1 = Float32(0.0) if (dY_46_v <= Float32(70000.0)) tmp_2 = Float32(0.0) if (t_3 >= (t_0 ^ Float32(2.0))) tmp_2 = Float32(floor(w) * Float32(dX_46_u * t_6)); else tmp_2 = Float32(floor(w) * Float32(dY_46_u * t_6)); end tmp_1 = tmp_2; elseif ((t_2 ^ Float32(2.0)) >= t_1) tmp_1 = Float32(floor(w) * Float32(dX_46_u / t_5)); else tmp_1 = Float32(floor(w) * Float32(dY_46_u / t_5)); end return tmp_1 end
function tmp_4 = code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = floor(w) * dY_46_u; t_1 = hypot(t_0, (floor(h) * dY_46_v)) ^ single(2.0); t_2 = floor(w) * dX_46_u; t_3 = hypot(t_2, (floor(h) * dX_46_v)) ^ single(2.0); t_4 = max(t_3, t_1); t_5 = sqrt(t_4); t_6 = sqrt((single(1.0) / t_4)); tmp_2 = single(0.0); if (dY_46_v <= single(70000.0)) tmp_3 = single(0.0); if (t_3 >= (t_0 ^ single(2.0))) tmp_3 = floor(w) * (dX_46_u * t_6); else tmp_3 = floor(w) * (dY_46_u * t_6); end tmp_2 = tmp_3; elseif ((t_2 ^ single(2.0)) >= t_1) tmp_2 = floor(w) * (dX_46_u / t_5); else tmp_2 = floor(w) * (dY_46_u / t_5); end tmp_4 = tmp_2; end
\begin{array}{l}
\\
\begin{array}{l}
t_0 := \left\lfloorw\right\rfloor \cdot dY.u\\
t_1 := {\left(\mathsf{hypot}\left(t\_0, \left\lfloorh\right\rfloor \cdot dY.v\right)\right)}^{2}\\
t_2 := \left\lfloorw\right\rfloor \cdot dX.u\\
t_3 := {\left(\mathsf{hypot}\left(t\_2, \left\lfloorh\right\rfloor \cdot dX.v\right)\right)}^{2}\\
t_4 := \mathsf{max}\left(t\_3, t\_1\right)\\
t_5 := \sqrt{t\_4}\\
t_6 := \sqrt{\frac{1}{t\_4}}\\
\mathbf{if}\;dY.v \leq 70000:\\
\;\;\;\;\begin{array}{l}
\mathbf{if}\;t\_3 \geq {t\_0}^{2}:\\
\;\;\;\;\left\lfloorw\right\rfloor \cdot \left(dX.u \cdot t\_6\right)\\
\mathbf{else}:\\
\;\;\;\;\left\lfloorw\right\rfloor \cdot \left(dY.u \cdot t\_6\right)\\
\end{array}\\
\mathbf{elif}\;{t\_2}^{2} \geq t\_1:\\
\;\;\;\;\left\lfloorw\right\rfloor \cdot \frac{dX.u}{t\_5}\\
\mathbf{else}:\\
\;\;\;\;\left\lfloorw\right\rfloor \cdot \frac{dY.u}{t\_5}\\
\end{array}
\end{array}
if dY.v < 7e4Initial program 80.6%
Simplified80.5%
Taylor expanded in w around 0 80.4%
Simplified80.1%
Taylor expanded in dY.u around inf 73.2%
*-commutative73.2%
unpow273.2%
unpow273.2%
swap-sqr73.2%
unpow273.2%
Simplified73.2%
if 7e4 < dY.v Initial program 77.7%
Simplified77.5%
Taylor expanded in w around 0 77.5%
Simplified77.6%
Taylor expanded in dX.u around inf 75.7%
Taylor expanded in dX.u around 0 75.6%
Simplified76.0%
Final simplification73.7%
(FPCore (w h dX.u dX.v dY.u dY.v maxAniso)
:precision binary32
(let* ((t_0 (* (floor w) dY.u))
(t_1 (* (floor w) dX.u))
(t_2 (pow (hypot t_0 (* (floor h) dY.v)) 2.0))
(t_3 (fmax (pow (hypot t_1 (* (floor h) dX.v)) 2.0) t_2)))
(if (>= (pow t_1 2.0) t_2)
(* (floor w) (* dX.u (sqrt (/ 1.0 t_3))))
(/ 1.0 (/ (sqrt t_3) t_0)))))
float code(float w, float h, float dX_46_u, float dX_46_v, float dY_46_u, float dY_46_v, float maxAniso) {
float t_0 = floorf(w) * dY_46_u;
float t_1 = floorf(w) * dX_46_u;
float t_2 = powf(hypotf(t_0, (floorf(h) * dY_46_v)), 2.0f);
float t_3 = fmaxf(powf(hypotf(t_1, (floorf(h) * dX_46_v)), 2.0f), t_2);
float tmp;
if (powf(t_1, 2.0f) >= t_2) {
tmp = floorf(w) * (dX_46_u * sqrtf((1.0f / t_3)));
} else {
tmp = 1.0f / (sqrtf(t_3) / t_0);
}
return tmp;
}
function code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = Float32(floor(w) * dY_46_u) t_1 = Float32(floor(w) * dX_46_u) t_2 = hypot(t_0, Float32(floor(h) * dY_46_v)) ^ Float32(2.0) t_3 = ((hypot(t_1, Float32(floor(h) * dX_46_v)) ^ Float32(2.0)) != (hypot(t_1, Float32(floor(h) * dX_46_v)) ^ Float32(2.0))) ? t_2 : ((t_2 != t_2) ? (hypot(t_1, Float32(floor(h) * dX_46_v)) ^ Float32(2.0)) : max((hypot(t_1, Float32(floor(h) * dX_46_v)) ^ Float32(2.0)), t_2)) tmp = Float32(0.0) if ((t_1 ^ Float32(2.0)) >= t_2) tmp = Float32(floor(w) * Float32(dX_46_u * sqrt(Float32(Float32(1.0) / t_3)))); else tmp = Float32(Float32(1.0) / Float32(sqrt(t_3) / t_0)); end return tmp end
function tmp_2 = code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = floor(w) * dY_46_u; t_1 = floor(w) * dX_46_u; t_2 = hypot(t_0, (floor(h) * dY_46_v)) ^ single(2.0); t_3 = max((hypot(t_1, (floor(h) * dX_46_v)) ^ single(2.0)), t_2); tmp = single(0.0); if ((t_1 ^ single(2.0)) >= t_2) tmp = floor(w) * (dX_46_u * sqrt((single(1.0) / t_3))); else tmp = single(1.0) / (sqrt(t_3) / t_0); end tmp_2 = tmp; end
\begin{array}{l}
\\
\begin{array}{l}
t_0 := \left\lfloorw\right\rfloor \cdot dY.u\\
t_1 := \left\lfloorw\right\rfloor \cdot dX.u\\
t_2 := {\left(\mathsf{hypot}\left(t\_0, \left\lfloorh\right\rfloor \cdot dY.v\right)\right)}^{2}\\
t_3 := \mathsf{max}\left({\left(\mathsf{hypot}\left(t\_1, \left\lfloorh\right\rfloor \cdot dX.v\right)\right)}^{2}, t\_2\right)\\
\mathbf{if}\;{t\_1}^{2} \geq t\_2:\\
\;\;\;\;\left\lfloorw\right\rfloor \cdot \left(dX.u \cdot \sqrt{\frac{1}{t\_3}}\right)\\
\mathbf{else}:\\
\;\;\;\;\frac{1}{\frac{\sqrt{t\_3}}{t\_0}}\\
\end{array}
\end{array}
Initial program 80.1%
Simplified80.0%
Taylor expanded in w around 0 79.9%
Simplified79.6%
Taylor expanded in dX.u around inf 68.5%
add-cube-cbrt68.1%
pow368.1%
Applied egg-rr68.1%
rem-cube-cbrt68.6%
associate-*r*68.8%
*-commutative68.8%
*-commutative68.8%
metadata-eval68.8%
Applied egg-rr68.9%
Final simplification68.9%
(FPCore (w h dX.u dX.v dY.u dY.v maxAniso)
:precision binary32
(let* ((t_0 (* (floor w) dX.u))
(t_1 (pow (hypot (* (floor w) dY.u) (* (floor h) dY.v)) 2.0))
(t_2 (sqrt (fmax (pow (hypot t_0 (* (floor h) dX.v)) 2.0) t_1))))
(if (>= (pow t_0 2.0) t_1)
(* (floor w) (/ dX.u t_2))
(* (floor w) (/ dY.u t_2)))))
float code(float w, float h, float dX_46_u, float dX_46_v, float dY_46_u, float dY_46_v, float maxAniso) {
float t_0 = floorf(w) * dX_46_u;
float t_1 = powf(hypotf((floorf(w) * dY_46_u), (floorf(h) * dY_46_v)), 2.0f);
float t_2 = sqrtf(fmaxf(powf(hypotf(t_0, (floorf(h) * dX_46_v)), 2.0f), t_1));
float tmp;
if (powf(t_0, 2.0f) >= t_1) {
tmp = floorf(w) * (dX_46_u / t_2);
} else {
tmp = floorf(w) * (dY_46_u / t_2);
}
return tmp;
}
function code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = Float32(floor(w) * dX_46_u) t_1 = hypot(Float32(floor(w) * dY_46_u), Float32(floor(h) * dY_46_v)) ^ Float32(2.0) t_2 = sqrt((((hypot(t_0, Float32(floor(h) * dX_46_v)) ^ Float32(2.0)) != (hypot(t_0, Float32(floor(h) * dX_46_v)) ^ Float32(2.0))) ? t_1 : ((t_1 != t_1) ? (hypot(t_0, Float32(floor(h) * dX_46_v)) ^ Float32(2.0)) : max((hypot(t_0, Float32(floor(h) * dX_46_v)) ^ Float32(2.0)), t_1)))) tmp = Float32(0.0) if ((t_0 ^ Float32(2.0)) >= t_1) tmp = Float32(floor(w) * Float32(dX_46_u / t_2)); else tmp = Float32(floor(w) * Float32(dY_46_u / t_2)); end return tmp end
function tmp_2 = code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = floor(w) * dX_46_u; t_1 = hypot((floor(w) * dY_46_u), (floor(h) * dY_46_v)) ^ single(2.0); t_2 = sqrt(max((hypot(t_0, (floor(h) * dX_46_v)) ^ single(2.0)), t_1)); tmp = single(0.0); if ((t_0 ^ single(2.0)) >= t_1) tmp = floor(w) * (dX_46_u / t_2); else tmp = floor(w) * (dY_46_u / t_2); end tmp_2 = tmp; end
\begin{array}{l}
\\
\begin{array}{l}
t_0 := \left\lfloorw\right\rfloor \cdot dX.u\\
t_1 := {\left(\mathsf{hypot}\left(\left\lfloorw\right\rfloor \cdot dY.u, \left\lfloorh\right\rfloor \cdot dY.v\right)\right)}^{2}\\
t_2 := \sqrt{\mathsf{max}\left({\left(\mathsf{hypot}\left(t\_0, \left\lfloorh\right\rfloor \cdot dX.v\right)\right)}^{2}, t\_1\right)}\\
\mathbf{if}\;{t\_0}^{2} \geq t\_1:\\
\;\;\;\;\left\lfloorw\right\rfloor \cdot \frac{dX.u}{t\_2}\\
\mathbf{else}:\\
\;\;\;\;\left\lfloorw\right\rfloor \cdot \frac{dY.u}{t\_2}\\
\end{array}
\end{array}
Initial program 80.1%
Simplified80.0%
Taylor expanded in w around 0 79.9%
Simplified79.6%
Taylor expanded in dX.u around inf 68.5%
Taylor expanded in dX.u around 0 68.7%
Simplified68.8%
Final simplification68.8%
(FPCore (w h dX.u dX.v dY.u dY.v maxAniso)
:precision binary32
(let* ((t_0 (* (floor w) dX.u))
(t_1 (pow t_0 2.0))
(t_2 (* (floor w) dY.u))
(t_3 (* (floor h) dY.v))
(t_4
(fmax
(pow (hypot t_0 (* (floor h) dX.v)) 2.0)
(pow (hypot t_2 t_3) 2.0)))
(t_5 (sqrt (/ 1.0 t_4)))
(t_6 (sqrt t_4)))
(if (<= dY.v 2000.0)
(if (>= t_1 (pow t_2 2.0))
(* (floor w) (* dX.u t_5))
(* (floor w) (* dY.u t_5)))
(if (>= t_1 (pow t_3 2.0))
(* dX.u (/ (floor w) t_6))
(* (floor w) (/ dY.u t_6))))))
float code(float w, float h, float dX_46_u, float dX_46_v, float dY_46_u, float dY_46_v, float maxAniso) {
float t_0 = floorf(w) * dX_46_u;
float t_1 = powf(t_0, 2.0f);
float t_2 = floorf(w) * dY_46_u;
float t_3 = floorf(h) * dY_46_v;
float t_4 = fmaxf(powf(hypotf(t_0, (floorf(h) * dX_46_v)), 2.0f), powf(hypotf(t_2, t_3), 2.0f));
float t_5 = sqrtf((1.0f / t_4));
float t_6 = sqrtf(t_4);
float tmp_1;
if (dY_46_v <= 2000.0f) {
float tmp_2;
if (t_1 >= powf(t_2, 2.0f)) {
tmp_2 = floorf(w) * (dX_46_u * t_5);
} else {
tmp_2 = floorf(w) * (dY_46_u * t_5);
}
tmp_1 = tmp_2;
} else if (t_1 >= powf(t_3, 2.0f)) {
tmp_1 = dX_46_u * (floorf(w) / t_6);
} else {
tmp_1 = floorf(w) * (dY_46_u / t_6);
}
return tmp_1;
}
function code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = Float32(floor(w) * dX_46_u) t_1 = t_0 ^ Float32(2.0) t_2 = Float32(floor(w) * dY_46_u) t_3 = Float32(floor(h) * dY_46_v) t_4 = ((hypot(t_0, Float32(floor(h) * dX_46_v)) ^ Float32(2.0)) != (hypot(t_0, Float32(floor(h) * dX_46_v)) ^ Float32(2.0))) ? (hypot(t_2, t_3) ^ Float32(2.0)) : (((hypot(t_2, t_3) ^ Float32(2.0)) != (hypot(t_2, t_3) ^ Float32(2.0))) ? (hypot(t_0, Float32(floor(h) * dX_46_v)) ^ Float32(2.0)) : max((hypot(t_0, Float32(floor(h) * dX_46_v)) ^ Float32(2.0)), (hypot(t_2, t_3) ^ Float32(2.0)))) t_5 = sqrt(Float32(Float32(1.0) / t_4)) t_6 = sqrt(t_4) tmp_1 = Float32(0.0) if (dY_46_v <= Float32(2000.0)) tmp_2 = Float32(0.0) if (t_1 >= (t_2 ^ Float32(2.0))) tmp_2 = Float32(floor(w) * Float32(dX_46_u * t_5)); else tmp_2 = Float32(floor(w) * Float32(dY_46_u * t_5)); end tmp_1 = tmp_2; elseif (t_1 >= (t_3 ^ Float32(2.0))) tmp_1 = Float32(dX_46_u * Float32(floor(w) / t_6)); else tmp_1 = Float32(floor(w) * Float32(dY_46_u / t_6)); end return tmp_1 end
function tmp_4 = code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = floor(w) * dX_46_u; t_1 = t_0 ^ single(2.0); t_2 = floor(w) * dY_46_u; t_3 = floor(h) * dY_46_v; t_4 = max((hypot(t_0, (floor(h) * dX_46_v)) ^ single(2.0)), (hypot(t_2, t_3) ^ single(2.0))); t_5 = sqrt((single(1.0) / t_4)); t_6 = sqrt(t_4); tmp_2 = single(0.0); if (dY_46_v <= single(2000.0)) tmp_3 = single(0.0); if (t_1 >= (t_2 ^ single(2.0))) tmp_3 = floor(w) * (dX_46_u * t_5); else tmp_3 = floor(w) * (dY_46_u * t_5); end tmp_2 = tmp_3; elseif (t_1 >= (t_3 ^ single(2.0))) tmp_2 = dX_46_u * (floor(w) / t_6); else tmp_2 = floor(w) * (dY_46_u / t_6); end tmp_4 = tmp_2; end
\begin{array}{l}
\\
\begin{array}{l}
t_0 := \left\lfloorw\right\rfloor \cdot dX.u\\
t_1 := {t\_0}^{2}\\
t_2 := \left\lfloorw\right\rfloor \cdot dY.u\\
t_3 := \left\lfloorh\right\rfloor \cdot dY.v\\
t_4 := \mathsf{max}\left({\left(\mathsf{hypot}\left(t\_0, \left\lfloorh\right\rfloor \cdot dX.v\right)\right)}^{2}, {\left(\mathsf{hypot}\left(t\_2, t\_3\right)\right)}^{2}\right)\\
t_5 := \sqrt{\frac{1}{t\_4}}\\
t_6 := \sqrt{t\_4}\\
\mathbf{if}\;dY.v \leq 2000:\\
\;\;\;\;\begin{array}{l}
\mathbf{if}\;t\_1 \geq {t\_2}^{2}:\\
\;\;\;\;\left\lfloorw\right\rfloor \cdot \left(dX.u \cdot t\_5\right)\\
\mathbf{else}:\\
\;\;\;\;\left\lfloorw\right\rfloor \cdot \left(dY.u \cdot t\_5\right)\\
\end{array}\\
\mathbf{elif}\;t\_1 \geq {t\_3}^{2}:\\
\;\;\;\;dX.u \cdot \frac{\left\lfloorw\right\rfloor}{t\_6}\\
\mathbf{else}:\\
\;\;\;\;\left\lfloorw\right\rfloor \cdot \frac{dY.u}{t\_6}\\
\end{array}
\end{array}
if dY.v < 2e3Initial program 81.1%
Simplified81.0%
Taylor expanded in w around 0 80.8%
Simplified80.5%
Taylor expanded in dX.u around inf 67.0%
Taylor expanded in dY.u around inf 65.2%
*-commutative74.0%
unpow274.0%
unpow274.0%
swap-sqr74.0%
unpow274.0%
Simplified65.2%
if 2e3 < dY.v Initial program 76.2%
Simplified76.1%
Taylor expanded in w around 0 76.1%
Simplified76.1%
Taylor expanded in dX.u around inf 74.3%
Taylor expanded in dY.u around 0 74.3%
*-commutative74.3%
unpow274.3%
unpow274.3%
swap-sqr74.3%
unpow274.3%
Simplified74.3%
Taylor expanded in dX.u around 0 74.3%
Simplified74.6%
Final simplification67.1%
(FPCore (w h dX.u dX.v dY.u dY.v maxAniso)
:precision binary32
(let* ((t_0 (* (floor h) dY.v))
(t_1 (pow t_0 2.0))
(t_2 (* (floor w) dX.u))
(t_3 (pow (hypot t_2 (* (floor h) dX.v)) 2.0)))
(if (>= (pow t_2 2.0) t_1)
(* (floor w) (* dX.u (sqrt (/ 1.0 (fmax t_3 t_1)))))
(*
(floor w)
(*
dY.u
(sqrt (/ 1.0 (fmax t_3 (pow (hypot (* (floor w) dY.u) t_0) 2.0)))))))))
float code(float w, float h, float dX_46_u, float dX_46_v, float dY_46_u, float dY_46_v, float maxAniso) {
float t_0 = floorf(h) * dY_46_v;
float t_1 = powf(t_0, 2.0f);
float t_2 = floorf(w) * dX_46_u;
float t_3 = powf(hypotf(t_2, (floorf(h) * dX_46_v)), 2.0f);
float tmp;
if (powf(t_2, 2.0f) >= t_1) {
tmp = floorf(w) * (dX_46_u * sqrtf((1.0f / fmaxf(t_3, t_1))));
} else {
tmp = floorf(w) * (dY_46_u * sqrtf((1.0f / fmaxf(t_3, powf(hypotf((floorf(w) * dY_46_u), t_0), 2.0f)))));
}
return tmp;
}
function code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = Float32(floor(h) * dY_46_v) t_1 = t_0 ^ Float32(2.0) t_2 = Float32(floor(w) * dX_46_u) t_3 = hypot(t_2, Float32(floor(h) * dX_46_v)) ^ Float32(2.0) tmp = Float32(0.0) if ((t_2 ^ Float32(2.0)) >= t_1) tmp = Float32(floor(w) * Float32(dX_46_u * sqrt(Float32(Float32(1.0) / ((t_3 != t_3) ? t_1 : ((t_1 != t_1) ? t_3 : max(t_3, t_1))))))); else tmp = Float32(floor(w) * Float32(dY_46_u * sqrt(Float32(Float32(1.0) / ((t_3 != t_3) ? (hypot(Float32(floor(w) * dY_46_u), t_0) ^ Float32(2.0)) : (((hypot(Float32(floor(w) * dY_46_u), t_0) ^ Float32(2.0)) != (hypot(Float32(floor(w) * dY_46_u), t_0) ^ Float32(2.0))) ? t_3 : max(t_3, (hypot(Float32(floor(w) * dY_46_u), t_0) ^ Float32(2.0))))))))); end return tmp end
function tmp_2 = code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = floor(h) * dY_46_v; t_1 = t_0 ^ single(2.0); t_2 = floor(w) * dX_46_u; t_3 = hypot(t_2, (floor(h) * dX_46_v)) ^ single(2.0); tmp = single(0.0); if ((t_2 ^ single(2.0)) >= t_1) tmp = floor(w) * (dX_46_u * sqrt((single(1.0) / max(t_3, t_1)))); else tmp = floor(w) * (dY_46_u * sqrt((single(1.0) / max(t_3, (hypot((floor(w) * dY_46_u), t_0) ^ single(2.0)))))); end tmp_2 = tmp; end
\begin{array}{l}
\\
\begin{array}{l}
t_0 := \left\lfloorh\right\rfloor \cdot dY.v\\
t_1 := {t\_0}^{2}\\
t_2 := \left\lfloorw\right\rfloor \cdot dX.u\\
t_3 := {\left(\mathsf{hypot}\left(t\_2, \left\lfloorh\right\rfloor \cdot dX.v\right)\right)}^{2}\\
\mathbf{if}\;{t\_2}^{2} \geq t\_1:\\
\;\;\;\;\left\lfloorw\right\rfloor \cdot \left(dX.u \cdot \sqrt{\frac{1}{\mathsf{max}\left(t\_3, t\_1\right)}}\right)\\
\mathbf{else}:\\
\;\;\;\;\left\lfloorw\right\rfloor \cdot \left(dY.u \cdot \sqrt{\frac{1}{\mathsf{max}\left(t\_3, {\left(\mathsf{hypot}\left(\left\lfloorw\right\rfloor \cdot dY.u, t\_0\right)\right)}^{2}\right)}}\right)\\
\end{array}
\end{array}
Initial program 80.1%
Simplified80.0%
Taylor expanded in w around 0 79.9%
Simplified79.6%
Taylor expanded in dX.u around inf 68.5%
Taylor expanded in dY.u around 0 57.9%
*-commutative57.9%
unpow257.9%
unpow257.9%
swap-sqr57.9%
unpow257.9%
Simplified57.9%
Taylor expanded in dY.u around 0 61.3%
*-commutative57.9%
unpow257.9%
unpow257.9%
swap-sqr57.9%
unpow257.9%
Simplified61.3%
Final simplification61.3%
(FPCore (w h dX.u dX.v dY.u dY.v maxAniso)
:precision binary32
(let* ((t_0 (* (floor h) dY.v))
(t_1 (* (floor w) dX.u))
(t_2
(sqrt
(fmax
(pow (hypot t_1 (* (floor h) dX.v)) 2.0)
(pow (hypot (* (floor w) dY.u) t_0) 2.0)))))
(if (>= (pow t_1 2.0) (pow t_0 2.0))
(/ t_1 t_2)
(* (floor w) (* dY.u (/ 1.0 t_2))))))
float code(float w, float h, float dX_46_u, float dX_46_v, float dY_46_u, float dY_46_v, float maxAniso) {
float t_0 = floorf(h) * dY_46_v;
float t_1 = floorf(w) * dX_46_u;
float t_2 = sqrtf(fmaxf(powf(hypotf(t_1, (floorf(h) * dX_46_v)), 2.0f), powf(hypotf((floorf(w) * dY_46_u), t_0), 2.0f)));
float tmp;
if (powf(t_1, 2.0f) >= powf(t_0, 2.0f)) {
tmp = t_1 / t_2;
} else {
tmp = floorf(w) * (dY_46_u * (1.0f / t_2));
}
return tmp;
}
function code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = Float32(floor(h) * dY_46_v) t_1 = Float32(floor(w) * dX_46_u) t_2 = sqrt((((hypot(t_1, Float32(floor(h) * dX_46_v)) ^ Float32(2.0)) != (hypot(t_1, Float32(floor(h) * dX_46_v)) ^ Float32(2.0))) ? (hypot(Float32(floor(w) * dY_46_u), t_0) ^ Float32(2.0)) : (((hypot(Float32(floor(w) * dY_46_u), t_0) ^ Float32(2.0)) != (hypot(Float32(floor(w) * dY_46_u), t_0) ^ Float32(2.0))) ? (hypot(t_1, Float32(floor(h) * dX_46_v)) ^ Float32(2.0)) : max((hypot(t_1, Float32(floor(h) * dX_46_v)) ^ Float32(2.0)), (hypot(Float32(floor(w) * dY_46_u), t_0) ^ Float32(2.0)))))) tmp = Float32(0.0) if ((t_1 ^ Float32(2.0)) >= (t_0 ^ Float32(2.0))) tmp = Float32(t_1 / t_2); else tmp = Float32(floor(w) * Float32(dY_46_u * Float32(Float32(1.0) / t_2))); end return tmp end
function tmp_2 = code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = floor(h) * dY_46_v; t_1 = floor(w) * dX_46_u; t_2 = sqrt(max((hypot(t_1, (floor(h) * dX_46_v)) ^ single(2.0)), (hypot((floor(w) * dY_46_u), t_0) ^ single(2.0)))); tmp = single(0.0); if ((t_1 ^ single(2.0)) >= (t_0 ^ single(2.0))) tmp = t_1 / t_2; else tmp = floor(w) * (dY_46_u * (single(1.0) / t_2)); end tmp_2 = tmp; end
\begin{array}{l}
\\
\begin{array}{l}
t_0 := \left\lfloorh\right\rfloor \cdot dY.v\\
t_1 := \left\lfloorw\right\rfloor \cdot dX.u\\
t_2 := \sqrt{\mathsf{max}\left({\left(\mathsf{hypot}\left(t\_1, \left\lfloorh\right\rfloor \cdot dX.v\right)\right)}^{2}, {\left(\mathsf{hypot}\left(\left\lfloorw\right\rfloor \cdot dY.u, t\_0\right)\right)}^{2}\right)}\\
\mathbf{if}\;{t\_1}^{2} \geq {t\_0}^{2}:\\
\;\;\;\;\frac{t\_1}{t\_2}\\
\mathbf{else}:\\
\;\;\;\;\left\lfloorw\right\rfloor \cdot \left(dY.u \cdot \frac{1}{t\_2}\right)\\
\end{array}
\end{array}
Initial program 80.1%
Simplified80.0%
Taylor expanded in w around 0 79.9%
Simplified79.6%
Taylor expanded in dX.u around inf 68.5%
Taylor expanded in dY.u around 0 57.9%
*-commutative57.9%
unpow257.9%
unpow257.9%
swap-sqr57.9%
unpow257.9%
Simplified57.9%
Taylor expanded in dX.u around 0 58.0%
Simplified58.2%
Final simplification58.2%
(FPCore (w h dX.u dX.v dY.u dY.v maxAniso)
:precision binary32
(let* ((t_0 (* (floor h) dY.v))
(t_1 (* (floor w) dX.u))
(t_2
(sqrt
(fmax
(pow (hypot t_1 (* (floor h) dX.v)) 2.0)
(pow (hypot (* (floor w) dY.u) t_0) 2.0)))))
(if (>= (pow t_1 2.0) (pow t_0 2.0))
(* dX.u (/ (floor w) t_2))
(* (floor w) (/ dY.u t_2)))))
float code(float w, float h, float dX_46_u, float dX_46_v, float dY_46_u, float dY_46_v, float maxAniso) {
float t_0 = floorf(h) * dY_46_v;
float t_1 = floorf(w) * dX_46_u;
float t_2 = sqrtf(fmaxf(powf(hypotf(t_1, (floorf(h) * dX_46_v)), 2.0f), powf(hypotf((floorf(w) * dY_46_u), t_0), 2.0f)));
float tmp;
if (powf(t_1, 2.0f) >= powf(t_0, 2.0f)) {
tmp = dX_46_u * (floorf(w) / t_2);
} else {
tmp = floorf(w) * (dY_46_u / t_2);
}
return tmp;
}
function code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = Float32(floor(h) * dY_46_v) t_1 = Float32(floor(w) * dX_46_u) t_2 = sqrt((((hypot(t_1, Float32(floor(h) * dX_46_v)) ^ Float32(2.0)) != (hypot(t_1, Float32(floor(h) * dX_46_v)) ^ Float32(2.0))) ? (hypot(Float32(floor(w) * dY_46_u), t_0) ^ Float32(2.0)) : (((hypot(Float32(floor(w) * dY_46_u), t_0) ^ Float32(2.0)) != (hypot(Float32(floor(w) * dY_46_u), t_0) ^ Float32(2.0))) ? (hypot(t_1, Float32(floor(h) * dX_46_v)) ^ Float32(2.0)) : max((hypot(t_1, Float32(floor(h) * dX_46_v)) ^ Float32(2.0)), (hypot(Float32(floor(w) * dY_46_u), t_0) ^ Float32(2.0)))))) tmp = Float32(0.0) if ((t_1 ^ Float32(2.0)) >= (t_0 ^ Float32(2.0))) tmp = Float32(dX_46_u * Float32(floor(w) / t_2)); else tmp = Float32(floor(w) * Float32(dY_46_u / t_2)); end return tmp end
function tmp_2 = code(w, h, dX_46_u, dX_46_v, dY_46_u, dY_46_v, maxAniso) t_0 = floor(h) * dY_46_v; t_1 = floor(w) * dX_46_u; t_2 = sqrt(max((hypot(t_1, (floor(h) * dX_46_v)) ^ single(2.0)), (hypot((floor(w) * dY_46_u), t_0) ^ single(2.0)))); tmp = single(0.0); if ((t_1 ^ single(2.0)) >= (t_0 ^ single(2.0))) tmp = dX_46_u * (floor(w) / t_2); else tmp = floor(w) * (dY_46_u / t_2); end tmp_2 = tmp; end
\begin{array}{l}
\\
\begin{array}{l}
t_0 := \left\lfloorh\right\rfloor \cdot dY.v\\
t_1 := \left\lfloorw\right\rfloor \cdot dX.u\\
t_2 := \sqrt{\mathsf{max}\left({\left(\mathsf{hypot}\left(t\_1, \left\lfloorh\right\rfloor \cdot dX.v\right)\right)}^{2}, {\left(\mathsf{hypot}\left(\left\lfloorw\right\rfloor \cdot dY.u, t\_0\right)\right)}^{2}\right)}\\
\mathbf{if}\;{t\_1}^{2} \geq {t\_0}^{2}:\\
\;\;\;\;dX.u \cdot \frac{\left\lfloorw\right\rfloor}{t\_2}\\
\mathbf{else}:\\
\;\;\;\;\left\lfloorw\right\rfloor \cdot \frac{dY.u}{t\_2}\\
\end{array}
\end{array}
Initial program 80.1%
Simplified80.0%
Taylor expanded in w around 0 79.9%
Simplified79.6%
Taylor expanded in dX.u around inf 68.5%
Taylor expanded in dY.u around 0 57.9%
*-commutative57.9%
unpow257.9%
unpow257.9%
swap-sqr57.9%
unpow257.9%
Simplified57.9%
Taylor expanded in dX.u around 0 58.0%
Simplified58.1%
Final simplification58.1%
herbie shell --seed 2024110
(FPCore (w h dX.u dX.v dY.u dY.v maxAniso)
:name "Anisotropic x16 LOD (line direction, u)"
:precision binary32
:pre (and (and (and (and (and (and (and (<= 1.0 w) (<= w 16384.0)) (and (<= 1.0 h) (<= h 16384.0))) (and (<= 1e-20 (fabs dX.u)) (<= (fabs dX.u) 1e+20))) (and (<= 1e-20 (fabs dX.v)) (<= (fabs dX.v) 1e+20))) (and (<= 1e-20 (fabs dY.u)) (<= (fabs dY.u) 1e+20))) (and (<= 1e-20 (fabs dY.v)) (<= (fabs dY.v) 1e+20))) (== maxAniso 16.0))
(if (>= (+ (* (* (floor w) dX.u) (* (floor w) dX.u)) (* (* (floor h) dX.v) (* (floor h) dX.v))) (+ (* (* (floor w) dY.u) (* (floor w) dY.u)) (* (* (floor h) dY.v) (* (floor h) dY.v)))) (* (/ 1.0 (sqrt (fmax (+ (* (* (floor w) dX.u) (* (floor w) dX.u)) (* (* (floor h) dX.v) (* (floor h) dX.v))) (+ (* (* (floor w) dY.u) (* (floor w) dY.u)) (* (* (floor h) dY.v) (* (floor h) dY.v)))))) (* (floor w) dX.u)) (* (/ 1.0 (sqrt (fmax (+ (* (* (floor w) dX.u) (* (floor w) dX.u)) (* (* (floor h) dX.v) (* (floor h) dX.v))) (+ (* (* (floor w) dY.u) (* (floor w) dY.u)) (* (* (floor h) dY.v) (* (floor h) dY.v)))))) (* (floor w) dY.u))))