
(FPCore (x tau) :precision binary32 (let* ((t_1 (* (* x PI) tau))) (* (/ (sin t_1) t_1) (/ (sin (* x PI)) (* x PI)))))
float code(float x, float tau) {
float t_1 = (x * ((float) M_PI)) * tau;
return (sinf(t_1) / t_1) * (sinf((x * ((float) M_PI))) / (x * ((float) M_PI)));
}
function code(x, tau) t_1 = Float32(Float32(x * Float32(pi)) * tau) return Float32(Float32(sin(t_1) / t_1) * Float32(sin(Float32(x * Float32(pi))) / Float32(x * Float32(pi)))) end
function tmp = code(x, tau) t_1 = (x * single(pi)) * tau; tmp = (sin(t_1) / t_1) * (sin((x * single(pi))) / (x * single(pi))); end
\begin{array}{l}
\\
\begin{array}{l}
t_1 := \left(x \cdot \pi\right) \cdot tau\\
\frac{\sin t\_1}{t\_1} \cdot \frac{\sin \left(x \cdot \pi\right)}{x \cdot \pi}
\end{array}
\end{array}
Sampling outcomes in binary32 precision:
Herbie found 7 alternatives:
| Alternative | Accuracy | Speedup |
|---|
(FPCore (x tau) :precision binary32 (let* ((t_1 (* (* x PI) tau))) (* (/ (sin t_1) t_1) (/ (sin (* x PI)) (* x PI)))))
float code(float x, float tau) {
float t_1 = (x * ((float) M_PI)) * tau;
return (sinf(t_1) / t_1) * (sinf((x * ((float) M_PI))) / (x * ((float) M_PI)));
}
function code(x, tau) t_1 = Float32(Float32(x * Float32(pi)) * tau) return Float32(Float32(sin(t_1) / t_1) * Float32(sin(Float32(x * Float32(pi))) / Float32(x * Float32(pi)))) end
function tmp = code(x, tau) t_1 = (x * single(pi)) * tau; tmp = (sin(t_1) / t_1) * (sin((x * single(pi))) / (x * single(pi))); end
\begin{array}{l}
\\
\begin{array}{l}
t_1 := \left(x \cdot \pi\right) \cdot tau\\
\frac{\sin t\_1}{t\_1} \cdot \frac{\sin \left(x \cdot \pi\right)}{x \cdot \pi}
\end{array}
\end{array}
(FPCore (x tau) :precision binary32 (let* ((t_1 (* PI (* x tau)))) (* (/ (sin t_1) t_1) (/ (sin (* PI x)) (* PI x)))))
float code(float x, float tau) {
float t_1 = ((float) M_PI) * (x * tau);
return (sinf(t_1) / t_1) * (sinf((((float) M_PI) * x)) / (((float) M_PI) * x));
}
function code(x, tau) t_1 = Float32(Float32(pi) * Float32(x * tau)) return Float32(Float32(sin(t_1) / t_1) * Float32(sin(Float32(Float32(pi) * x)) / Float32(Float32(pi) * x))) end
function tmp = code(x, tau) t_1 = single(pi) * (x * tau); tmp = (sin(t_1) / t_1) * (sin((single(pi) * x)) / (single(pi) * x)); end
\begin{array}{l}
\\
\begin{array}{l}
t_1 := \pi \cdot \left(x \cdot tau\right)\\
\frac{\sin t\_1}{t\_1} \cdot \frac{\sin \left(\pi \cdot x\right)}{\pi \cdot x}
\end{array}
\end{array}
Initial program 97.9%
*-commutative97.9%
associate-*l*97.3%
*-commutative97.3%
associate-*l*97.9%
Simplified97.9%
Final simplification97.9%
(FPCore (x tau) :precision binary32 (let* ((t_1 (* x (* PI tau)))) (* (sin t_1) (/ (sin (* PI x)) (* PI (* x t_1))))))
float code(float x, float tau) {
float t_1 = x * (((float) M_PI) * tau);
return sinf(t_1) * (sinf((((float) M_PI) * x)) / (((float) M_PI) * (x * t_1)));
}
function code(x, tau) t_1 = Float32(x * Float32(Float32(pi) * tau)) return Float32(sin(t_1) * Float32(sin(Float32(Float32(pi) * x)) / Float32(Float32(pi) * Float32(x * t_1)))) end
function tmp = code(x, tau) t_1 = x * (single(pi) * tau); tmp = sin(t_1) * (sin((single(pi) * x)) / (single(pi) * (x * t_1))); end
\begin{array}{l}
\\
\begin{array}{l}
t_1 := x \cdot \left(\pi \cdot tau\right)\\
\sin t\_1 \cdot \frac{\sin \left(\pi \cdot x\right)}{\pi \cdot \left(x \cdot t\_1\right)}
\end{array}
\end{array}
Initial program 97.9%
associate-*l/98.0%
associate-/l*97.8%
associate-*l*97.4%
associate-/l/97.3%
*-commutative97.3%
*-commutative97.3%
associate-*l*97.3%
associate-*l*97.6%
Simplified97.6%
Final simplification97.6%
(FPCore (x tau) :precision binary32 (let* ((t_1 (* x (* PI tau)))) (* (sin t_1) (/ (sin (* PI x)) (* (* PI x) t_1)))))
float code(float x, float tau) {
float t_1 = x * (((float) M_PI) * tau);
return sinf(t_1) * (sinf((((float) M_PI) * x)) / ((((float) M_PI) * x) * t_1));
}
function code(x, tau) t_1 = Float32(x * Float32(Float32(pi) * tau)) return Float32(sin(t_1) * Float32(sin(Float32(Float32(pi) * x)) / Float32(Float32(Float32(pi) * x) * t_1))) end
function tmp = code(x, tau) t_1 = x * (single(pi) * tau); tmp = sin(t_1) * (sin((single(pi) * x)) / ((single(pi) * x) * t_1)); end
\begin{array}{l}
\\
\begin{array}{l}
t_1 := x \cdot \left(\pi \cdot tau\right)\\
\sin t\_1 \cdot \frac{\sin \left(\pi \cdot x\right)}{\left(\pi \cdot x\right) \cdot t\_1}
\end{array}
\end{array}
Initial program 97.9%
associate-*l/98.0%
associate-/l*97.8%
associate-*l*97.4%
associate-/l/97.3%
associate-*l*97.8%
Simplified97.8%
Final simplification97.8%
(FPCore (x tau) :precision binary32 (* (/ x x) (/ (/ (sin (* PI (* x tau))) x) (* PI tau))))
float code(float x, float tau) {
return (x / x) * ((sinf((((float) M_PI) * (x * tau))) / x) / (((float) M_PI) * tau));
}
function code(x, tau) return Float32(Float32(x / x) * Float32(Float32(sin(Float32(Float32(pi) * Float32(x * tau))) / x) / Float32(Float32(pi) * tau))) end
function tmp = code(x, tau) tmp = (x / x) * ((sin((single(pi) * (x * tau))) / x) / (single(pi) * tau)); end
\begin{array}{l}
\\
\frac{x}{x} \cdot \frac{\frac{\sin \left(\pi \cdot \left(x \cdot tau\right)\right)}{x}}{\pi \cdot tau}
\end{array}
Initial program 97.9%
associate-*l/98.0%
associate-/l*97.8%
associate-*l*97.4%
associate-/l/97.3%
*-commutative97.3%
*-commutative97.3%
associate-*l*97.3%
associate-*l*97.6%
Simplified97.6%
associate-*r/97.6%
associate-*r*97.9%
*-commutative97.9%
associate-/r*97.9%
*-commutative97.9%
*-commutative97.9%
associate-*r*97.3%
*-commutative97.3%
associate-*r*97.4%
*-commutative97.4%
associate-*r*97.1%
Applied egg-rr97.9%
times-frac97.6%
associate-*r*97.2%
*-commutative97.2%
associate-*r*97.2%
times-frac97.4%
Applied egg-rr97.4%
Taylor expanded in x around 0 68.4%
Final simplification68.4%
(FPCore (x tau) :precision binary32 (* (sin (* PI x)) (/ 1.0 (* PI x))))
float code(float x, float tau) {
return sinf((((float) M_PI) * x)) * (1.0f / (((float) M_PI) * x));
}
function code(x, tau) return Float32(sin(Float32(Float32(pi) * x)) * Float32(Float32(1.0) / Float32(Float32(pi) * x))) end
function tmp = code(x, tau) tmp = sin((single(pi) * x)) * (single(1.0) / (single(pi) * x)); end
\begin{array}{l}
\\
\sin \left(\pi \cdot x\right) \cdot \frac{1}{\pi \cdot x}
\end{array}
Initial program 97.9%
associate-*l/98.0%
associate-/l*97.8%
associate-*l*97.4%
associate-/l/97.3%
*-commutative97.3%
*-commutative97.3%
associate-*l*97.3%
associate-*l*97.6%
Simplified97.6%
Taylor expanded in tau around 0 61.6%
clear-num61.7%
associate-/r/61.6%
*-commutative61.6%
*-commutative61.6%
Applied egg-rr61.6%
Final simplification61.6%
(FPCore (x tau) :precision binary32 (/ (sin (* PI x)) (* PI x)))
float code(float x, float tau) {
return sinf((((float) M_PI) * x)) / (((float) M_PI) * x);
}
function code(x, tau) return Float32(sin(Float32(Float32(pi) * x)) / Float32(Float32(pi) * x)) end
function tmp = code(x, tau) tmp = sin((single(pi) * x)) / (single(pi) * x); end
\begin{array}{l}
\\
\frac{\sin \left(\pi \cdot x\right)}{\pi \cdot x}
\end{array}
Initial program 97.9%
associate-*l/98.0%
associate-/l*97.8%
associate-*l*97.4%
associate-/l/97.3%
*-commutative97.3%
*-commutative97.3%
associate-*l*97.3%
associate-*l*97.6%
Simplified97.6%
Taylor expanded in tau around 0 61.6%
Final simplification61.6%
(FPCore (x tau) :precision binary32 1.0)
float code(float x, float tau) {
return 1.0f;
}
real(4) function code(x, tau)
real(4), intent (in) :: x
real(4), intent (in) :: tau
code = 1.0e0
end function
function code(x, tau) return Float32(1.0) end
function tmp = code(x, tau) tmp = single(1.0); end
\begin{array}{l}
\\
1
\end{array}
Initial program 97.9%
associate-*l/98.0%
associate-/l*97.8%
associate-*l*97.4%
associate-/l/97.3%
*-commutative97.3%
*-commutative97.3%
associate-*l*97.3%
associate-*l*97.6%
Simplified97.6%
associate-*r/97.6%
associate-*r*97.9%
*-commutative97.9%
associate-/r*97.9%
*-commutative97.9%
*-commutative97.9%
associate-*r*97.3%
*-commutative97.3%
associate-*r*97.4%
*-commutative97.4%
associate-*r*97.1%
Applied egg-rr97.9%
Taylor expanded in x around 0 60.7%
Final simplification60.7%
herbie shell --seed 2024066
(FPCore (x tau)
:name "Lanczos kernel"
:precision binary32
:pre (and (and (<= 1e-5 x) (<= x 1.0)) (and (<= 1.0 tau) (<= tau 5.0)))
(* (/ (sin (* (* x PI) tau)) (* (* x PI) tau)) (/ (sin (* x PI)) (* x PI))))