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<center><b><big><big>CppAD Speed: Gradient of Determinant by Minor Expansion</big></big></b></center>
<br/>
<b><big><a name="link_det_minor" id="link_det_minor">link_det_minor</a></big></b>


<code><font color='blue'><pre style='display:inline'> 
# include &lt;cppad/vector.hpp&gt;
# include &lt;cppad/speed/det_by_minor.hpp&gt;
# include &lt;cppad/speed/uniform_01.hpp&gt;

bool link_det_minor(
	size_t                     size     , 
	size_t                     repeat   , 
	CppAD::vector&lt;double&gt;     &amp;matrix   ,
	CppAD::vector&lt;double&gt;     &amp;gradient )
{
	// -----------------------------------------------------
	// setup

	// object for computing determinant
	typedef CppAD::<a href="ad.xml" target="_top">AD</a>&lt;double&gt;       ADScalar; 
	typedef CppAD::vector&lt;ADScalar&gt; ADVector; 
	CppAD::det_by_minor&lt;ADScalar&gt;   Det(size);

	size_t i;               // temporary index
	size_t m = 1;           // number of dependent variables
	size_t n = size * size; // number of independent variables
	ADVector   A(n);        // AD domain space vector
	ADVector   detA(m);     // AD range space vector
	
	// vectors of reverse mode weights 
	CppAD::vector&lt;double&gt; w(1);
	w[0] = 1.;

	// the AD function object
	CppAD::<a href="funconstruct.xml" target="_top">ADFun</a>&lt;double&gt; f;

	static bool printed = false;
	bool print_this_time = (! printed) &amp; (repeat &gt; 1) &amp; (size &gt;= 3);

	extern bool global_retape;
	if( global_retape ) while(repeat--)
	{
		// choose a matrix
		CppAD::uniform_01(n, matrix);
		for( i = 0; i &lt; size * size; i++)
			A[i] = matrix[i];
	
		// declare independent variables
		<a href="independent.xml" target="_top">Independent</a>(A);
	
		// AD computation of the determinant
		detA[0] = Det(A);
	
		// create function object f : A -&gt; detA
		f.Dependent(A, detA);

		extern bool global_optimize;
		if( global_optimize )
		{	size_t before, after;
			before = f.size_var();
			f.optimize();
			if( print_this_time ) 
			{	after = f.size_var();
				std::cout &lt;&lt; &quot;cppad_det_minor_optimize_size_&quot; 
				          &lt;&lt; int(size) &lt;&lt; &quot; = [ &quot; &lt;&lt; int(before) 
				          &lt;&lt; &quot;, &quot; &lt;&lt; int(after) &lt;&lt; &quot;]&quot; &lt;&lt; std::endl;
				printed         = true;
				print_this_time = false;
			}
		}
	
		// get the next matrix
		CppAD::uniform_01(n, matrix);
	
		// evaluate the determinant at the new matrix value
		f.<a href="forward.xml" target="_top">Forward</a>(0, matrix);
	
		// evaluate and return gradient using reverse mode
		gradient = f.<a href="reverse.xml" target="_top">Reverse</a>(1, w);
	}
	else
	{
		// choose a matrix
		CppAD::uniform_01(n, matrix);
		for( i = 0; i &lt; size * size; i++)
			A[i] = matrix[i];
	
		// declare independent variables
		<a href="independent.xml" target="_top">Independent</a>(A);
	
		// AD computation of the determinant
		detA[0] = Det(A);
	
		// create function object f : A -&gt; detA
		f.Dependent(A, detA);

		extern bool global_optimize;
		if( global_optimize )
		{	size_t before, after;
			before = f.size_var();
			f.optimize();
			if( print_this_time ) 
			{	after = f.size_var();
				std::cout &lt;&lt; &quot;optimize: size = &quot; &lt;&lt; size
				          &lt;&lt; &quot;: size_var() = &quot;
				          &lt;&lt; before &lt;&lt; &quot;(before) &quot; 
				          &lt;&lt; after &lt;&lt; &quot;(after) &quot; 
				          &lt;&lt; std::endl;
				printed         = true;
				print_this_time = false;
			}
		}
	
		// ------------------------------------------------------
		while(repeat--)
		{	// get the next matrix
			CppAD::uniform_01(n, matrix);
	
			// evaluate the determinant at the new matrix value
			f.<a href="forward.xml" target="_top">Forward</a>(0, matrix);
	
			// evaluate and return gradient using reverse mode
			gradient = f.<a href="reverse.xml" target="_top">Reverse</a>(1, w);
		}
	}
	return true;
}
</pre></font></code>


<hr/>Input File: speed/cppad/det_minor.cpp

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