\left|\left(ew \cdot \sin t\right) \cdot \cos \tan^{-1} \left(\frac{\frac{eh}{ew}}{\tan t}\right) + \left(eh \cdot \cos t\right) \cdot \sin \tan^{-1} \left(\frac{\frac{eh}{ew}}{\tan t}\right)\right|\left|\left(ew \cdot \sin t\right) \cdot \frac{1}{\sqrt{1 + \frac{eh}{ew \cdot \tan t} \cdot \frac{eh}{ew \cdot \tan t}}} + \left(eh \cdot \cos t\right) \cdot \sin \tan^{-1} \left(\frac{\frac{eh}{ew}}{\tan t}\right)\right|(FPCore (eh ew t) :precision binary64 (fabs (+ (* (* ew (sin t)) (cos (atan (/ (/ eh ew) (tan t))))) (* (* eh (cos t)) (sin (atan (/ (/ eh ew) (tan t))))))))
(FPCore (eh ew t)
:precision binary64
(fabs
(+
(*
(* ew (sin t))
(/ 1.0 (sqrt (+ 1.0 (* (/ eh (* ew (tan t))) (/ eh (* ew (tan t))))))))
(* (* eh (cos t)) (sin (atan (/ (/ eh ew) (tan t))))))))double code(double eh, double ew, double t) {
return fabs(((ew * sin(t)) * cos(atan((eh / ew) / tan(t)))) + ((eh * cos(t)) * sin(atan((eh / ew) / tan(t)))));
}
double code(double eh, double ew, double t) {
return fabs(((ew * sin(t)) * (1.0 / sqrt(1.0 + ((eh / (ew * tan(t))) * (eh / (ew * tan(t))))))) + ((eh * cos(t)) * sin(atan((eh / ew) / tan(t)))));
}



Bits error versus eh



Bits error versus ew



Bits error versus t
Results
Initial program 0.1
rmApplied cos-atan_binary64_40080.1
Simplified0.1
Final simplification0.1
herbie shell --seed 2021060
(FPCore (eh ew t)
:name "Example from Robby"
:precision binary64
(fabs (+ (* (* ew (sin t)) (cos (atan (/ (/ eh ew) (tan t))))) (* (* eh (cos t)) (sin (atan (/ (/ eh ew) (tan t))))))))