Result for FastMath dist3

Alternative 1: 100.0% accurate, 1.9× speedup?

\[\begin{array}{l} \\ d1 \cdot \left(d2 + \left(d3 + 37\right)\right) \end{array} \]

(FPCore (d1 d2 d3) :precision binary64 (* d1 (+ d2 (+ d3 37.0))))

double code(double d1, double d2, double d3) {
	return d1 * (d2 + (d3 + 37.0));
}

real(8) function code(d1, d2, d3)
    real(8), intent (in) :: d1
    real(8), intent (in) :: d2
    real(8), intent (in) :: d3
    code = d1 * (d2 + (d3 + 37.0d0))
end function

public static double code(double d1, double d2, double d3) {
	return d1 * (d2 + (d3 + 37.0));
}

def code(d1, d2, d3):
	return d1 * (d2 + (d3 + 37.0))

function code(d1, d2, d3)
	return Float64(d1 * Float64(d2 + Float64(d3 + 37.0)))
end

function tmp = code(d1, d2, d3)
	tmp = d1 * (d2 + (d3 + 37.0));
end

code[d1_, d2_, d3_] := N[(d1 * N[(d2 + N[(d3 + 37.0), $MachinePrecision]), $MachinePrecision]), $MachinePrecision]

\begin{array}{l}

\\
d1 \cdot \left(d2 + \left(d3 + 37\right)\right)
\end{array}

Derivation

Initial program 97.2%
\[\left(d1 \cdot d2 + \left(d3 + 5\right) \cdot d1\right) + d1 \cdot 32 \]
Step-by-step derivation
1. *-commutative97.2%
  \[\leadsto \left(d1 \cdot d2 + \color{blue}{d1 \cdot \left(d3 + 5\right)}\right) + d1 \cdot 32 \]
2. distribute-lft-out99.6%
  \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 5\right)\right)} + d1 \cdot 32 \]
3. distribute-lft-out100.0%
  \[\leadsto \color{blue}{d1 \cdot \left(\left(d2 + \left(d3 + 5\right)\right) + 32\right)} \]
4. associate-+r+100.0%
  \[\leadsto d1 \cdot \color{blue}{\left(d2 + \left(\left(d3 + 5\right) + 32\right)\right)} \]
5. associate-+l+100.0%
  \[\leadsto d1 \cdot \left(d2 + \color{blue}{\left(d3 + \left(5 + 32\right)\right)}\right) \]
6. metadata-eval100.0%
  \[\leadsto d1 \cdot \left(d2 + \left(d3 + \color{blue}{37}\right)\right) \]
Simplified100.0%
\[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 37\right)\right)} \]
Final simplification100.0%
\[\leadsto d1 \cdot \left(d2 + \left(d3 + 37\right)\right) \]

Alternative 2: 52.5% accurate, 1.0× speedup?

\[\begin{array}{l} \\ \begin{array}{l} \mathbf{if}\;d2 \leq -960000:\\ \;\;\;\;d1 \cdot d2\\ \mathbf{elif}\;d2 \leq -1.7 \cdot 10^{-32}:\\ \;\;\;\;d1 \cdot d3\\ \mathbf{elif}\;d2 \leq -2 \cdot 10^{-166} \lor \neg \left(d2 \leq -4.2 \cdot 10^{-189}\right) \land d2 \leq -5.45 \cdot 10^{-275}:\\ \;\;\;\;d1 \cdot 37\\ \mathbf{else}:\\ \;\;\;\;d1 \cdot d3\\ \end{array} \end{array} \]

(FPCore (d1 d2 d3)
 :precision binary64
 (if (<= d2 -960000.0)
   (* d1 d2)
   (if (<= d2 -1.7e-32)
     (* d1 d3)
     (if (or (<= d2 -2e-166) (and (not (<= d2 -4.2e-189)) (<= d2 -5.45e-275)))
       (* d1 37.0)
       (* d1 d3)))))

double code(double d1, double d2, double d3) {
	double tmp;
	if (d2 <= -960000.0) {
		tmp = d1 * d2;
	} else if (d2 <= -1.7e-32) {
		tmp = d1 * d3;
	} else if ((d2 <= -2e-166) || (!(d2 <= -4.2e-189) && (d2 <= -5.45e-275))) {
		tmp = d1 * 37.0;
	} else {
		tmp = d1 * d3;
	}
	return tmp;
}

real(8) function code(d1, d2, d3)
    real(8), intent (in) :: d1
    real(8), intent (in) :: d2
    real(8), intent (in) :: d3
    real(8) :: tmp
    if (d2 <= (-960000.0d0)) then
        tmp = d1 * d2
    else if (d2 <= (-1.7d-32)) then
        tmp = d1 * d3
    else if ((d2 <= (-2d-166)) .or. (.not. (d2 <= (-4.2d-189))) .and. (d2 <= (-5.45d-275))) then
        tmp = d1 * 37.0d0
    else
        tmp = d1 * d3
    end if
    code = tmp
end function

public static double code(double d1, double d2, double d3) {
	double tmp;
	if (d2 <= -960000.0) {
		tmp = d1 * d2;
	} else if (d2 <= -1.7e-32) {
		tmp = d1 * d3;
	} else if ((d2 <= -2e-166) || (!(d2 <= -4.2e-189) && (d2 <= -5.45e-275))) {
		tmp = d1 * 37.0;
	} else {
		tmp = d1 * d3;
	}
	return tmp;
}

def code(d1, d2, d3):
	tmp = 0
	if d2 <= -960000.0:
		tmp = d1 * d2
	elif d2 <= -1.7e-32:
		tmp = d1 * d3
	elif (d2 <= -2e-166) or (not (d2 <= -4.2e-189) and (d2 <= -5.45e-275)):
		tmp = d1 * 37.0
	else:
		tmp = d1 * d3
	return tmp

function code(d1, d2, d3)
	tmp = 0.0
	if (d2 <= -960000.0)
		tmp = Float64(d1 * d2);
	elseif (d2 <= -1.7e-32)
		tmp = Float64(d1 * d3);
	elseif ((d2 <= -2e-166) || (!(d2 <= -4.2e-189) && (d2 <= -5.45e-275)))
		tmp = Float64(d1 * 37.0);
	else
		tmp = Float64(d1 * d3);
	end
	return tmp
end

function tmp_2 = code(d1, d2, d3)
	tmp = 0.0;
	if (d2 <= -960000.0)
		tmp = d1 * d2;
	elseif (d2 <= -1.7e-32)
		tmp = d1 * d3;
	elseif ((d2 <= -2e-166) || (~((d2 <= -4.2e-189)) && (d2 <= -5.45e-275)))
		tmp = d1 * 37.0;
	else
		tmp = d1 * d3;
	end
	tmp_2 = tmp;
end

code[d1_, d2_, d3_] := If[LessEqual[d2, -960000.0], N[(d1 * d2), $MachinePrecision], If[LessEqual[d2, -1.7e-32], N[(d1 * d3), $MachinePrecision], If[Or[LessEqual[d2, -2e-166], And[N[Not[LessEqual[d2, -4.2e-189]], $MachinePrecision], LessEqual[d2, -5.45e-275]]], N[(d1 * 37.0), $MachinePrecision], N[(d1 * d3), $MachinePrecision]]]]

\begin{array}{l}

\\
\begin{array}{l}
\mathbf{if}\;d2 \leq -960000:\\
\;\;\;\;d1 \cdot d2\\

\mathbf{elif}\;d2 \leq -1.7 \cdot 10^{-32}:\\
\;\;\;\;d1 \cdot d3\\

\mathbf{elif}\;d2 \leq -2 \cdot 10^{-166} \lor \neg \left(d2 \leq -4.2 \cdot 10^{-189}\right) \land d2 \leq -5.45 \cdot 10^{-275}:\\
\;\;\;\;d1 \cdot 37\\

\mathbf{else}:\\
\;\;\;\;d1 \cdot d3\\


\end{array}
\end{array}

Derivation

Split input into 3 regimes
if d2 < -9.6e5
1. Initial program 92.0%
  \[\left(d1 \cdot d2 + \left(d3 + 5\right) \cdot d1\right) + d1 \cdot 32 \]
2. Step-by-step derivation
  1. *-commutative92.0%
    \[\leadsto \left(d1 \cdot d2 + \color{blue}{d1 \cdot \left(d3 + 5\right)}\right) + d1 \cdot 32 \]
  2. distribute-lft-out98.0%
    \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 5\right)\right)} + d1 \cdot 32 \]
  3. distribute-lft-out100.0%
    \[\leadsto \color{blue}{d1 \cdot \left(\left(d2 + \left(d3 + 5\right)\right) + 32\right)} \]
  4. associate-+r+100.0%
    \[\leadsto d1 \cdot \color{blue}{\left(d2 + \left(\left(d3 + 5\right) + 32\right)\right)} \]
  5. associate-+l+100.0%
    \[\leadsto d1 \cdot \left(d2 + \color{blue}{\left(d3 + \left(5 + 32\right)\right)}\right) \]
  6. metadata-eval100.0%
    \[\leadsto d1 \cdot \left(d2 + \left(d3 + \color{blue}{37}\right)\right) \]
3. Simplified100.0%
  \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 37\right)\right)} \]
4. Taylor expanded in d2 around inf 69.8%
  \[\leadsto \color{blue}{d2 \cdot d1} \]
if -9.6e5 < d2 < -1.69999999999999989e-32 or -2.00000000000000008e-166 < d2 < -4.20000000000000033e-189 or -5.44999999999999987e-275 < d2
1. Initial program 97.9%
  \[\left(d1 \cdot d2 + \left(d3 + 5\right) \cdot d1\right) + d1 \cdot 32 \]
2. Step-by-step derivation
  1. *-commutative97.9%
    \[\leadsto \left(d1 \cdot d2 + \color{blue}{d1 \cdot \left(d3 + 5\right)}\right) + d1 \cdot 32 \]
  2. distribute-lft-out99.9%
    \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 5\right)\right)} + d1 \cdot 32 \]
  3. distribute-lft-out100.0%
    \[\leadsto \color{blue}{d1 \cdot \left(\left(d2 + \left(d3 + 5\right)\right) + 32\right)} \]
  4. associate-+r+100.0%
    \[\leadsto d1 \cdot \color{blue}{\left(d2 + \left(\left(d3 + 5\right) + 32\right)\right)} \]
  5. associate-+l+100.0%
    \[\leadsto d1 \cdot \left(d2 + \color{blue}{\left(d3 + \left(5 + 32\right)\right)}\right) \]
  6. metadata-eval100.0%
    \[\leadsto d1 \cdot \left(d2 + \left(d3 + \color{blue}{37}\right)\right) \]
3. Simplified100.0%
  \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 37\right)\right)} \]
4. Taylor expanded in d3 around inf 51.8%
  \[\leadsto \color{blue}{d1 \cdot d3} \]
if -1.69999999999999989e-32 < d2 < -2.00000000000000008e-166 or -4.20000000000000033e-189 < d2 < -5.44999999999999987e-275
1. Initial program 100.0%
  \[\left(d1 \cdot d2 + \left(d3 + 5\right) \cdot d1\right) + d1 \cdot 32 \]
2. Step-by-step derivation
  1. *-commutative100.0%
    \[\leadsto \left(d1 \cdot d2 + \color{blue}{d1 \cdot \left(d3 + 5\right)}\right) + d1 \cdot 32 \]
  2. distribute-lft-out100.0%
    \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 5\right)\right)} + d1 \cdot 32 \]
  3. distribute-lft-out100.0%
    \[\leadsto \color{blue}{d1 \cdot \left(\left(d2 + \left(d3 + 5\right)\right) + 32\right)} \]
  4. associate-+r+100.0%
    \[\leadsto d1 \cdot \color{blue}{\left(d2 + \left(\left(d3 + 5\right) + 32\right)\right)} \]
  5. associate-+l+100.0%
    \[\leadsto d1 \cdot \left(d2 + \color{blue}{\left(d3 + \left(5 + 32\right)\right)}\right) \]
  6. metadata-eval100.0%
    \[\leadsto d1 \cdot \left(d2 + \left(d3 + \color{blue}{37}\right)\right) \]
3. Simplified100.0%
  \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 37\right)\right)} \]
4. Taylor expanded in d3 around 0 57.7%
  \[\leadsto \color{blue}{d1 \cdot \left(d2 + 37\right)} \]
5. Taylor expanded in d2 around 0 57.7%
  \[\leadsto \color{blue}{37 \cdot d1} \]
Recombined 3 regimes into one program.
Final simplification56.6%
\[\leadsto \begin{array}{l} \mathbf{if}\;d2 \leq -960000:\\ \;\;\;\;d1 \cdot d2\\ \mathbf{elif}\;d2 \leq -1.7 \cdot 10^{-32}:\\ \;\;\;\;d1 \cdot d3\\ \mathbf{elif}\;d2 \leq -2 \cdot 10^{-166} \lor \neg \left(d2 \leq -4.2 \cdot 10^{-189}\right) \land d2 \leq -5.45 \cdot 10^{-275}:\\ \;\;\;\;d1 \cdot 37\\ \mathbf{else}:\\ \;\;\;\;d1 \cdot d3\\ \end{array} \]

Alternative 3: 75.5% accurate, 1.8× speedup?

\[\begin{array}{l} \\ \begin{array}{l} \mathbf{if}\;d3 \leq 6.8 \cdot 10^{+30}:\\ \;\;\;\;d1 \cdot \left(d2 + 37\right)\\ \mathbf{else}:\\ \;\;\;\;d1 \cdot d3\\ \end{array} \end{array} \]

(FPCore (d1 d2 d3)
 :precision binary64
 (if (<= d3 6.8e+30) (* d1 (+ d2 37.0)) (* d1 d3)))

double code(double d1, double d2, double d3) {
	double tmp;
	if (d3 <= 6.8e+30) {
		tmp = d1 * (d2 + 37.0);
	} else {
		tmp = d1 * d3;
	}
	return tmp;
}

real(8) function code(d1, d2, d3)
    real(8), intent (in) :: d1
    real(8), intent (in) :: d2
    real(8), intent (in) :: d3
    real(8) :: tmp
    if (d3 <= 6.8d+30) then
        tmp = d1 * (d2 + 37.0d0)
    else
        tmp = d1 * d3
    end if
    code = tmp
end function

public static double code(double d1, double d2, double d3) {
	double tmp;
	if (d3 <= 6.8e+30) {
		tmp = d1 * (d2 + 37.0);
	} else {
		tmp = d1 * d3;
	}
	return tmp;
}

def code(d1, d2, d3):
	tmp = 0
	if d3 <= 6.8e+30:
		tmp = d1 * (d2 + 37.0)
	else:
		tmp = d1 * d3
	return tmp

function code(d1, d2, d3)
	tmp = 0.0
	if (d3 <= 6.8e+30)
		tmp = Float64(d1 * Float64(d2 + 37.0));
	else
		tmp = Float64(d1 * d3);
	end
	return tmp
end

function tmp_2 = code(d1, d2, d3)
	tmp = 0.0;
	if (d3 <= 6.8e+30)
		tmp = d1 * (d2 + 37.0);
	else
		tmp = d1 * d3;
	end
	tmp_2 = tmp;
end

code[d1_, d2_, d3_] := If[LessEqual[d3, 6.8e+30], N[(d1 * N[(d2 + 37.0), $MachinePrecision]), $MachinePrecision], N[(d1 * d3), $MachinePrecision]]

\begin{array}{l}

\\
\begin{array}{l}
\mathbf{if}\;d3 \leq 6.8 \cdot 10^{+30}:\\
\;\;\;\;d1 \cdot \left(d2 + 37\right)\\

\mathbf{else}:\\
\;\;\;\;d1 \cdot d3\\


\end{array}
\end{array}

Derivation

Split input into 2 regimes
if d3 < 6.8000000000000005e30
1. Initial program 97.4%
  \[\left(d1 \cdot d2 + \left(d3 + 5\right) \cdot d1\right) + d1 \cdot 32 \]
2. Step-by-step derivation
  1. *-commutative97.4%
    \[\leadsto \left(d1 \cdot d2 + \color{blue}{d1 \cdot \left(d3 + 5\right)}\right) + d1 \cdot 32 \]
  2. distribute-lft-out99.4%
    \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 5\right)\right)} + d1 \cdot 32 \]
  3. distribute-lft-out100.0%
    \[\leadsto \color{blue}{d1 \cdot \left(\left(d2 + \left(d3 + 5\right)\right) + 32\right)} \]
  4. associate-+r+100.0%
    \[\leadsto d1 \cdot \color{blue}{\left(d2 + \left(\left(d3 + 5\right) + 32\right)\right)} \]
  5. associate-+l+100.0%
    \[\leadsto d1 \cdot \left(d2 + \color{blue}{\left(d3 + \left(5 + 32\right)\right)}\right) \]
  6. metadata-eval100.0%
    \[\leadsto d1 \cdot \left(d2 + \left(d3 + \color{blue}{37}\right)\right) \]
3. Simplified100.0%
  \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 37\right)\right)} \]
4. Taylor expanded in d3 around 0 67.4%
  \[\leadsto \color{blue}{d1 \cdot \left(d2 + 37\right)} \]
if 6.8000000000000005e30 < d3
1. Initial program 96.5%
  \[\left(d1 \cdot d2 + \left(d3 + 5\right) \cdot d1\right) + d1 \cdot 32 \]
2. Step-by-step derivation
  1. *-commutative96.5%
    \[\leadsto \left(d1 \cdot d2 + \color{blue}{d1 \cdot \left(d3 + 5\right)}\right) + d1 \cdot 32 \]
  2. distribute-lft-out100.0%
    \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 5\right)\right)} + d1 \cdot 32 \]
  3. distribute-lft-out100.0%
    \[\leadsto \color{blue}{d1 \cdot \left(\left(d2 + \left(d3 + 5\right)\right) + 32\right)} \]
  4. associate-+r+100.0%
    \[\leadsto d1 \cdot \color{blue}{\left(d2 + \left(\left(d3 + 5\right) + 32\right)\right)} \]
  5. associate-+l+100.0%
    \[\leadsto d1 \cdot \left(d2 + \color{blue}{\left(d3 + \left(5 + 32\right)\right)}\right) \]
  6. metadata-eval100.0%
    \[\leadsto d1 \cdot \left(d2 + \left(d3 + \color{blue}{37}\right)\right) \]
3. Simplified100.0%
  \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 37\right)\right)} \]
4. Taylor expanded in d3 around inf 88.8%
  \[\leadsto \color{blue}{d1 \cdot d3} \]
Recombined 2 regimes into one program.
Final simplification72.2%
\[\leadsto \begin{array}{l} \mathbf{if}\;d3 \leq 6.8 \cdot 10^{+30}:\\ \;\;\;\;d1 \cdot \left(d2 + 37\right)\\ \mathbf{else}:\\ \;\;\;\;d1 \cdot d3\\ \end{array} \]

Alternative 4: 76.4% accurate, 1.8× speedup?

\[\begin{array}{l} \\ \begin{array}{l} \mathbf{if}\;d2 \leq -0.021:\\ \;\;\;\;d1 \cdot \left(d2 + 37\right)\\ \mathbf{else}:\\ \;\;\;\;d1 \cdot \left(d3 + 37\right)\\ \end{array} \end{array} \]

(FPCore (d1 d2 d3)
 :precision binary64
 (if (<= d2 -0.021) (* d1 (+ d2 37.0)) (* d1 (+ d3 37.0))))

double code(double d1, double d2, double d3) {
	double tmp;
	if (d2 <= -0.021) {
		tmp = d1 * (d2 + 37.0);
	} else {
		tmp = d1 * (d3 + 37.0);
	}
	return tmp;
}

real(8) function code(d1, d2, d3)
    real(8), intent (in) :: d1
    real(8), intent (in) :: d2
    real(8), intent (in) :: d3
    real(8) :: tmp
    if (d2 <= (-0.021d0)) then
        tmp = d1 * (d2 + 37.0d0)
    else
        tmp = d1 * (d3 + 37.0d0)
    end if
    code = tmp
end function

public static double code(double d1, double d2, double d3) {
	double tmp;
	if (d2 <= -0.021) {
		tmp = d1 * (d2 + 37.0);
	} else {
		tmp = d1 * (d3 + 37.0);
	}
	return tmp;
}

def code(d1, d2, d3):
	tmp = 0
	if d2 <= -0.021:
		tmp = d1 * (d2 + 37.0)
	else:
		tmp = d1 * (d3 + 37.0)
	return tmp

function code(d1, d2, d3)
	tmp = 0.0
	if (d2 <= -0.021)
		tmp = Float64(d1 * Float64(d2 + 37.0));
	else
		tmp = Float64(d1 * Float64(d3 + 37.0));
	end
	return tmp
end

function tmp_2 = code(d1, d2, d3)
	tmp = 0.0;
	if (d2 <= -0.021)
		tmp = d1 * (d2 + 37.0);
	else
		tmp = d1 * (d3 + 37.0);
	end
	tmp_2 = tmp;
end

code[d1_, d2_, d3_] := If[LessEqual[d2, -0.021], N[(d1 * N[(d2 + 37.0), $MachinePrecision]), $MachinePrecision], N[(d1 * N[(d3 + 37.0), $MachinePrecision]), $MachinePrecision]]

\begin{array}{l}

\\
\begin{array}{l}
\mathbf{if}\;d2 \leq -0.021:\\
\;\;\;\;d1 \cdot \left(d2 + 37\right)\\

\mathbf{else}:\\
\;\;\;\;d1 \cdot \left(d3 + 37\right)\\


\end{array}
\end{array}

Derivation

Split input into 2 regimes
if d2 < -0.0210000000000000013
1. Initial program 92.4%
  \[\left(d1 \cdot d2 + \left(d3 + 5\right) \cdot d1\right) + d1 \cdot 32 \]
2. Step-by-step derivation
  1. *-commutative92.4%
    \[\leadsto \left(d1 \cdot d2 + \color{blue}{d1 \cdot \left(d3 + 5\right)}\right) + d1 \cdot 32 \]
  2. distribute-lft-out98.1%
    \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 5\right)\right)} + d1 \cdot 32 \]
  3. distribute-lft-out100.0%
    \[\leadsto \color{blue}{d1 \cdot \left(\left(d2 + \left(d3 + 5\right)\right) + 32\right)} \]
  4. associate-+r+100.0%
    \[\leadsto d1 \cdot \color{blue}{\left(d2 + \left(\left(d3 + 5\right) + 32\right)\right)} \]
  5. associate-+l+100.0%
    \[\leadsto d1 \cdot \left(d2 + \color{blue}{\left(d3 + \left(5 + 32\right)\right)}\right) \]
  6. metadata-eval100.0%
    \[\leadsto d1 \cdot \left(d2 + \left(d3 + \color{blue}{37}\right)\right) \]
3. Simplified100.0%
  \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 37\right)\right)} \]
4. Taylor expanded in d3 around 0 71.1%
  \[\leadsto \color{blue}{d1 \cdot \left(d2 + 37\right)} \]
if -0.0210000000000000013 < d2
1. Initial program 98.5%
  \[\left(d1 \cdot d2 + \left(d3 + 5\right) \cdot d1\right) + d1 \cdot 32 \]
2. Step-by-step derivation
  1. *-commutative98.5%
    \[\leadsto \left(d1 \cdot d2 + \color{blue}{d1 \cdot \left(d3 + 5\right)}\right) + d1 \cdot 32 \]
  2. distribute-lft-out100.0%
    \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 5\right)\right)} + d1 \cdot 32 \]
  3. distribute-lft-out100.0%
    \[\leadsto \color{blue}{d1 \cdot \left(\left(d2 + \left(d3 + 5\right)\right) + 32\right)} \]
  4. associate-+r+100.0%
    \[\leadsto d1 \cdot \color{blue}{\left(d2 + \left(\left(d3 + 5\right) + 32\right)\right)} \]
  5. associate-+l+100.0%
    \[\leadsto d1 \cdot \left(d2 + \color{blue}{\left(d3 + \left(5 + 32\right)\right)}\right) \]
  6. metadata-eval100.0%
    \[\leadsto d1 \cdot \left(d2 + \left(d3 + \color{blue}{37}\right)\right) \]
3. Simplified100.0%
  \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 37\right)\right)} \]
4. Taylor expanded in d2 around 0 78.5%
  \[\leadsto \color{blue}{\left(37 + d3\right) \cdot d1} \]
Recombined 2 regimes into one program.
Final simplification77.0%
\[\leadsto \begin{array}{l} \mathbf{if}\;d2 \leq -0.021:\\ \;\;\;\;d1 \cdot \left(d2 + 37\right)\\ \mathbf{else}:\\ \;\;\;\;d1 \cdot \left(d3 + 37\right)\\ \end{array} \]

Alternative 5: 44.6% accurate, 2.6× speedup?

\[\begin{array}{l} \\ \begin{array}{l} \mathbf{if}\;d3 \leq 0.00016:\\ \;\;\;\;d1 \cdot 37\\ \mathbf{else}:\\ \;\;\;\;d1 \cdot d3\\ \end{array} \end{array} \]

(FPCore (d1 d2 d3)
 :precision binary64
 (if (<= d3 0.00016) (* d1 37.0) (* d1 d3)))

double code(double d1, double d2, double d3) {
	double tmp;
	if (d3 <= 0.00016) {
		tmp = d1 * 37.0;
	} else {
		tmp = d1 * d3;
	}
	return tmp;
}

real(8) function code(d1, d2, d3)
    real(8), intent (in) :: d1
    real(8), intent (in) :: d2
    real(8), intent (in) :: d3
    real(8) :: tmp
    if (d3 <= 0.00016d0) then
        tmp = d1 * 37.0d0
    else
        tmp = d1 * d3
    end if
    code = tmp
end function

public static double code(double d1, double d2, double d3) {
	double tmp;
	if (d3 <= 0.00016) {
		tmp = d1 * 37.0;
	} else {
		tmp = d1 * d3;
	}
	return tmp;
}

def code(d1, d2, d3):
	tmp = 0
	if d3 <= 0.00016:
		tmp = d1 * 37.0
	else:
		tmp = d1 * d3
	return tmp

function code(d1, d2, d3)
	tmp = 0.0
	if (d3 <= 0.00016)
		tmp = Float64(d1 * 37.0);
	else
		tmp = Float64(d1 * d3);
	end
	return tmp
end

function tmp_2 = code(d1, d2, d3)
	tmp = 0.0;
	if (d3 <= 0.00016)
		tmp = d1 * 37.0;
	else
		tmp = d1 * d3;
	end
	tmp_2 = tmp;
end

code[d1_, d2_, d3_] := If[LessEqual[d3, 0.00016], N[(d1 * 37.0), $MachinePrecision], N[(d1 * d3), $MachinePrecision]]

\begin{array}{l}

\\
\begin{array}{l}
\mathbf{if}\;d3 \leq 0.00016:\\
\;\;\;\;d1 \cdot 37\\

\mathbf{else}:\\
\;\;\;\;d1 \cdot d3\\


\end{array}
\end{array}

Derivation

Split input into 2 regimes
if d3 < 1.60000000000000013e-4
1. Initial program 97.9%
  \[\left(d1 \cdot d2 + \left(d3 + 5\right) \cdot d1\right) + d1 \cdot 32 \]
2. Step-by-step derivation
  1. *-commutative97.9%
    \[\leadsto \left(d1 \cdot d2 + \color{blue}{d1 \cdot \left(d3 + 5\right)}\right) + d1 \cdot 32 \]
  2. distribute-lft-out99.4%
    \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 5\right)\right)} + d1 \cdot 32 \]
  3. distribute-lft-out100.0%
    \[\leadsto \color{blue}{d1 \cdot \left(\left(d2 + \left(d3 + 5\right)\right) + 32\right)} \]
  4. associate-+r+100.0%
    \[\leadsto d1 \cdot \color{blue}{\left(d2 + \left(\left(d3 + 5\right) + 32\right)\right)} \]
  5. associate-+l+100.0%
    \[\leadsto d1 \cdot \left(d2 + \color{blue}{\left(d3 + \left(5 + 32\right)\right)}\right) \]
  6. metadata-eval100.0%
    \[\leadsto d1 \cdot \left(d2 + \left(d3 + \color{blue}{37}\right)\right) \]
3. Simplified100.0%
  \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 37\right)\right)} \]
4. Taylor expanded in d3 around 0 67.7%
  \[\leadsto \color{blue}{d1 \cdot \left(d2 + 37\right)} \]
5. Taylor expanded in d2 around 0 31.5%
  \[\leadsto \color{blue}{37 \cdot d1} \]
if 1.60000000000000013e-4 < d3
1. Initial program 95.1%
  \[\left(d1 \cdot d2 + \left(d3 + 5\right) \cdot d1\right) + d1 \cdot 32 \]
2. Step-by-step derivation
  1. *-commutative95.1%
    \[\leadsto \left(d1 \cdot d2 + \color{blue}{d1 \cdot \left(d3 + 5\right)}\right) + d1 \cdot 32 \]
  2. distribute-lft-out100.0%
    \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 5\right)\right)} + d1 \cdot 32 \]
  3. distribute-lft-out100.0%
    \[\leadsto \color{blue}{d1 \cdot \left(\left(d2 + \left(d3 + 5\right)\right) + 32\right)} \]
  4. associate-+r+100.0%
    \[\leadsto d1 \cdot \color{blue}{\left(d2 + \left(\left(d3 + 5\right) + 32\right)\right)} \]
  5. associate-+l+100.0%
    \[\leadsto d1 \cdot \left(d2 + \color{blue}{\left(d3 + \left(5 + 32\right)\right)}\right) \]
  6. metadata-eval100.0%
    \[\leadsto d1 \cdot \left(d2 + \left(d3 + \color{blue}{37}\right)\right) \]
3. Simplified100.0%
  \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 37\right)\right)} \]
4. Taylor expanded in d3 around inf 85.5%
  \[\leadsto \color{blue}{d1 \cdot d3} \]
Recombined 2 regimes into one program.
Final simplification44.6%
\[\leadsto \begin{array}{l} \mathbf{if}\;d3 \leq 0.00016:\\ \;\;\;\;d1 \cdot 37\\ \mathbf{else}:\\ \;\;\;\;d1 \cdot d3\\ \end{array} \]

Alternative 6: 27.0% accurate, 4.3× speedup?

\[\begin{array}{l} \\ d1 \cdot 37 \end{array} \]

(FPCore (d1 d2 d3) :precision binary64 (* d1 37.0))

double code(double d1, double d2, double d3) {
	return d1 * 37.0;
}

real(8) function code(d1, d2, d3)
    real(8), intent (in) :: d1
    real(8), intent (in) :: d2
    real(8), intent (in) :: d3
    code = d1 * 37.0d0
end function

public static double code(double d1, double d2, double d3) {
	return d1 * 37.0;
}

def code(d1, d2, d3):
	return d1 * 37.0

function code(d1, d2, d3)
	return Float64(d1 * 37.0)
end

function tmp = code(d1, d2, d3)
	tmp = d1 * 37.0;
end

code[d1_, d2_, d3_] := N[(d1 * 37.0), $MachinePrecision]

\begin{array}{l}

\\
d1 \cdot 37
\end{array}

Derivation

Initial program 97.2%
\[\left(d1 \cdot d2 + \left(d3 + 5\right) \cdot d1\right) + d1 \cdot 32 \]
Step-by-step derivation
1. *-commutative97.2%
  \[\leadsto \left(d1 \cdot d2 + \color{blue}{d1 \cdot \left(d3 + 5\right)}\right) + d1 \cdot 32 \]
2. distribute-lft-out99.6%
  \[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 5\right)\right)} + d1 \cdot 32 \]
3. distribute-lft-out100.0%
  \[\leadsto \color{blue}{d1 \cdot \left(\left(d2 + \left(d3 + 5\right)\right) + 32\right)} \]
4. associate-+r+100.0%
  \[\leadsto d1 \cdot \color{blue}{\left(d2 + \left(\left(d3 + 5\right) + 32\right)\right)} \]
5. associate-+l+100.0%
  \[\leadsto d1 \cdot \left(d2 + \color{blue}{\left(d3 + \left(5 + 32\right)\right)}\right) \]
6. metadata-eval100.0%
  \[\leadsto d1 \cdot \left(d2 + \left(d3 + \color{blue}{37}\right)\right) \]
Simplified100.0%
\[\leadsto \color{blue}{d1 \cdot \left(d2 + \left(d3 + 37\right)\right)} \]
Taylor expanded in d3 around 0 55.7%
\[\leadsto \color{blue}{d1 \cdot \left(d2 + 37\right)} \]
Taylor expanded in d2 around 0 25.1%
\[\leadsto \color{blue}{37 \cdot d1} \]
Final simplification25.1%
\[\leadsto d1 \cdot 37 \]

FastMath dist3

Unsound rule application detected in e-graph. Results may not be sound. (more)

20.5% of points produce a very large (infinite) output. You may want to add a precondition. (more)

Specification

Local Percentage Accuracy vs ?

Accuracy vs Speed?

Initial Program: 97.9% accurate, 1.0× speedup?

Alternative 1: 100.0% accurate, 1.9× speedup?

Alternative 2: 52.5% accurate, 1.0× speedup?

`if d2 < -9.6e5`

`if -9.6e5 < d2 < -1.69999999999999989e-32 or -2.00000000000000008e-166 < d2 < -4.20000000000000033e-189 or -5.44999999999999987e-275 < d2`

`if -1.69999999999999989e-32 < d2 < -2.00000000000000008e-166 or -4.20000000000000033e-189 < d2 < -5.44999999999999987e-275`

Alternative 3: 75.5% accurate, 1.8× speedup?

`if d3 < 6.8000000000000005e30`

`if 6.8000000000000005e30 < d3`

Alternative 4: 76.4% accurate, 1.8× speedup?

`if d2 < -0.0210000000000000013`

`if -0.0210000000000000013 < d2`

Alternative 5: 44.6% accurate, 2.6× speedup?

`if d3 < 1.60000000000000013e-4`

`if 1.60000000000000013e-4 < d3`

Alternative 6: 27.0% accurate, 4.3× speedup?

Developer target: 100.0% accurate, 1.9× speedup?

Reproduce

Unsound rule application detected in e-graph. Results may not be sound. (more)

20.5% of points produce a very large (infinite) output. You may want to add a precondition. (more)

Specification

Local Percentage Accuracy vs ?

Accuracy vs Speed?

Initial Program: 97.9% accurate, 1.0× speedupMathFPCoreCFortranJavaPythonJuliaMATLABWolframTeX?

Alternative 1: 100.0% accurate, 1.9× speedupMathFPCoreCFortranJavaPythonJuliaMATLABWolframTeX?

Alternative 2: 52.5% accurate, 1.0× speedupMathFPCoreCFortranJavaPythonJuliaMATLABWolframTeX?

if d2 < -9.6e5

if -9.6e5 < d2 < -1.69999999999999989e-32 or -2.00000000000000008e-166 < d2 < -4.20000000000000033e-189 or -5.44999999999999987e-275 < d2

if -1.69999999999999989e-32 < d2 < -2.00000000000000008e-166 or -4.20000000000000033e-189 < d2 < -5.44999999999999987e-275

Alternative 3: 75.5% accurate, 1.8× speedupMathFPCoreCFortranJavaPythonJuliaMATLABWolframTeX?

if d3 < 6.8000000000000005e30

if 6.8000000000000005e30 < d3

Alternative 4: 76.4% accurate, 1.8× speedupMathFPCoreCFortranJavaPythonJuliaMATLABWolframTeX?

if d2 < -0.0210000000000000013

if -0.0210000000000000013 < d2

Alternative 5: 44.6% accurate, 2.6× speedupMathFPCoreCFortranJavaPythonJuliaMATLABWolframTeX?

if d3 < 1.60000000000000013e-4

if 1.60000000000000013e-4 < d3

Alternative 6: 27.0% accurate, 4.3× speedupMathFPCoreCFortranJavaPythonJuliaMATLABWolframTeX?

Developer target: 100.0% accurate, 1.9× speedupMathFPCoreCFortranJavaPythonJuliaMATLABWolframTeX?

Reproduce

Initial Program: 97.9% accurate, 1.0× speedup?

Alternative 1: 100.0% accurate, 1.9× speedup?

Alternative 2: 52.5% accurate, 1.0× speedup?

`if d2 < -9.6e5`

`if -9.6e5 < d2 < -1.69999999999999989e-32 or -2.00000000000000008e-166 < d2 < -4.20000000000000033e-189 or -5.44999999999999987e-275 < d2`

`if -1.69999999999999989e-32 < d2 < -2.00000000000000008e-166 or -4.20000000000000033e-189 < d2 < -5.44999999999999987e-275`

Alternative 3: 75.5% accurate, 1.8× speedup?

`if d3 < 6.8000000000000005e30`

`if 6.8000000000000005e30 < d3`

Alternative 4: 76.4% accurate, 1.8× speedup?

`if d2 < -0.0210000000000000013`

`if -0.0210000000000000013 < d2`

Alternative 5: 44.6% accurate, 2.6× speedup?

`if d3 < 1.60000000000000013e-4`

`if 1.60000000000000013e-4 < d3`

Alternative 6: 27.0% accurate, 4.3× speedup?

Developer target: 100.0% accurate, 1.9× speedup?