\frac{x.re \cdot y.re + x.im \cdot y.im}{y.re \cdot y.re + y.im \cdot y.im}\frac{\frac{1}{\frac{\sqrt{y.re \cdot y.re + y.im \cdot y.im}}{y.re \cdot x.re + y.im \cdot x.im}}}{\sqrt{y.re \cdot y.re + y.im \cdot y.im}}(FPCore (x.re x.im y.re y.im) :precision binary64 (/ (+ (* x.re y.re) (* x.im y.im)) (+ (* y.re y.re) (* y.im y.im))))
(FPCore (x.re x.im y.re y.im) :precision binary64 (/ (/ 1.0 (/ (sqrt (+ (* y.re y.re) (* y.im y.im))) (+ (* y.re x.re) (* y.im x.im)))) (sqrt (+ (* y.re y.re) (* y.im y.im)))))
double code(double x_46_re, double x_46_im, double y_46_re, double y_46_im) {
return ((x_46_re * y_46_re) + (x_46_im * y_46_im)) / ((y_46_re * y_46_re) + (y_46_im * y_46_im));
}
double code(double x_46_re, double x_46_im, double y_46_re, double y_46_im) {
return (1.0 / (sqrt((y_46_re * y_46_re) + (y_46_im * y_46_im)) / ((y_46_re * x_46_re) + (y_46_im * x_46_im)))) / sqrt((y_46_re * y_46_re) + (y_46_im * y_46_im));
}



Bits error versus x.re



Bits error versus x.im



Bits error versus y.re



Bits error versus y.im
Results
Initial program 26.0
rmApplied add-sqr-sqrt_binary6426.0
Applied associate-/r*_binary6426.0
rmApplied clear-num_binary6426.0
Simplified26.0
Final simplification26.0
herbie shell --seed 2020224
(FPCore (x.re x.im y.re y.im)
:name "_divideComplex, real part"
:precision binary64
(/ (+ (* x.re y.re) (* x.im y.im)) (+ (* y.re y.re) (* y.im y.im))))