Math FPCore C Fortran Java Python Julia MATLAB Wolfram TeX \[\frac{\left(x \cdot 2\right) \cdot y}{x - y}
\]
↓
\[\begin{array}{l}
t_0 := \left(2 \cdot y\right) \cdot \frac{x}{x - y}\\
\mathbf{if}\;x \leq -2.3 \cdot 10^{+123}:\\
\;\;\;\;t_0\\
\mathbf{elif}\;x \leq 5.2 \cdot 10^{-66}:\\
\;\;\;\;\left(x \cdot 2\right) \cdot \frac{y}{x - y}\\
\mathbf{else}:\\
\;\;\;\;t_0\\
\end{array}
\]
(FPCore (x y) :precision binary64 (/ (* (* x 2.0) y) (- x y))) ↓
(FPCore (x y)
:precision binary64
(let* ((t_0 (* (* 2.0 y) (/ x (- x y)))))
(if (<= x -2.3e+123)
t_0
(if (<= x 5.2e-66) (* (* x 2.0) (/ y (- x y))) t_0)))) double code(double x, double y) {
return ((x * 2.0) * y) / (x - y);
}
↓
double code(double x, double y) {
double t_0 = (2.0 * y) * (x / (x - y));
double tmp;
if (x <= -2.3e+123) {
tmp = t_0;
} else if (x <= 5.2e-66) {
tmp = (x * 2.0) * (y / (x - y));
} else {
tmp = t_0;
}
return tmp;
}
real(8) function code(x, y)
real(8), intent (in) :: x
real(8), intent (in) :: y
code = ((x * 2.0d0) * y) / (x - y)
end function
↓
real(8) function code(x, y)
real(8), intent (in) :: x
real(8), intent (in) :: y
real(8) :: t_0
real(8) :: tmp
t_0 = (2.0d0 * y) * (x / (x - y))
if (x <= (-2.3d+123)) then
tmp = t_0
else if (x <= 5.2d-66) then
tmp = (x * 2.0d0) * (y / (x - y))
else
tmp = t_0
end if
code = tmp
end function
public static double code(double x, double y) {
return ((x * 2.0) * y) / (x - y);
}
↓
public static double code(double x, double y) {
double t_0 = (2.0 * y) * (x / (x - y));
double tmp;
if (x <= -2.3e+123) {
tmp = t_0;
} else if (x <= 5.2e-66) {
tmp = (x * 2.0) * (y / (x - y));
} else {
tmp = t_0;
}
return tmp;
}
def code(x, y):
return ((x * 2.0) * y) / (x - y)
↓
def code(x, y):
t_0 = (2.0 * y) * (x / (x - y))
tmp = 0
if x <= -2.3e+123:
tmp = t_0
elif x <= 5.2e-66:
tmp = (x * 2.0) * (y / (x - y))
else:
tmp = t_0
return tmp
function code(x, y)
return Float64(Float64(Float64(x * 2.0) * y) / Float64(x - y))
end
↓
function code(x, y)
t_0 = Float64(Float64(2.0 * y) * Float64(x / Float64(x - y)))
tmp = 0.0
if (x <= -2.3e+123)
tmp = t_0;
elseif (x <= 5.2e-66)
tmp = Float64(Float64(x * 2.0) * Float64(y / Float64(x - y)));
else
tmp = t_0;
end
return tmp
end
function tmp = code(x, y)
tmp = ((x * 2.0) * y) / (x - y);
end
↓
function tmp_2 = code(x, y)
t_0 = (2.0 * y) * (x / (x - y));
tmp = 0.0;
if (x <= -2.3e+123)
tmp = t_0;
elseif (x <= 5.2e-66)
tmp = (x * 2.0) * (y / (x - y));
else
tmp = t_0;
end
tmp_2 = tmp;
end
code[x_, y_] := N[(N[(N[(x * 2.0), $MachinePrecision] * y), $MachinePrecision] / N[(x - y), $MachinePrecision]), $MachinePrecision]
↓
code[x_, y_] := Block[{t$95$0 = N[(N[(2.0 * y), $MachinePrecision] * N[(x / N[(x - y), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]}, If[LessEqual[x, -2.3e+123], t$95$0, If[LessEqual[x, 5.2e-66], N[(N[(x * 2.0), $MachinePrecision] * N[(y / N[(x - y), $MachinePrecision]), $MachinePrecision]), $MachinePrecision], t$95$0]]]
\frac{\left(x \cdot 2\right) \cdot y}{x - y}
↓
\begin{array}{l}
t_0 := \left(2 \cdot y\right) \cdot \frac{x}{x - y}\\
\mathbf{if}\;x \leq -2.3 \cdot 10^{+123}:\\
\;\;\;\;t_0\\
\mathbf{elif}\;x \leq 5.2 \cdot 10^{-66}:\\
\;\;\;\;\left(x \cdot 2\right) \cdot \frac{y}{x - y}\\
\mathbf{else}:\\
\;\;\;\;t_0\\
\end{array}