mirror of
https://github.com/YosysHQ/abc.git
synced 2026-09-03 08:25:20 +02:00
Version abc90315
This commit is contained in:
+6
-6
@@ -3729,8 +3729,8 @@ int Abc_CommandLutmin( Abc_Frame_t * pAbc, int argc, char ** argv )
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pErr = Abc_FrameReadErr(pAbc);
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// set defaults
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nLutSize = 6;
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fVerbose = 1;
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nLutSize = 4;
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fVerbose = 0;
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Extra_UtilGetoptReset();
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while ( ( c = Extra_UtilGetopt( argc, argv, "Kvh" ) ) != EOF )
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{
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@@ -3744,8 +3744,6 @@ int Abc_CommandLutmin( Abc_Frame_t * pAbc, int argc, char ** argv )
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}
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nLutSize = atoi(argv[globalUtilOptind]);
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globalUtilOptind++;
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if ( nLutSize > 1 )
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goto usage;
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break;
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case 'v':
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fVerbose ^= 1;
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@@ -23956,6 +23954,7 @@ int Abc_CommandAbc9Test( Abc_Frame_t * pAbc, int argc, char ** argv )
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Gia_Man_t * pTemp = NULL;
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int c, fVerbose = 0;
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extern void Gia_SatSolveTest( Gia_Man_t * p );
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extern void Cbs_ManSolveTest( Gia_Man_t * pGia );
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Extra_UtilGetoptReset();
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while ( ( c = Extra_UtilGetopt( argc, argv, "vh" ) ) != EOF )
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@@ -23983,8 +23982,9 @@ int Abc_CommandAbc9Test( Abc_Frame_t * pAbc, int argc, char ** argv )
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// Gia_SatSolveTest( pAbc->pAig );
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// For_ManExperiment( pAbc->pAig, 20, 1, 1 );
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// Gia_ManUnrollSpecial( pAbc->pAig, 5, 100, 1 );
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pAbc->pAig = Gia_ManDupSelf( pTemp = pAbc->pAig );
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Gia_ManStop( pTemp );
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// pAbc->pAig = Gia_ManDupSelf( pTemp = pAbc->pAig );
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// Gia_ManStop( pTemp );
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// Cbs_ManSolveTest( pAbc->pAig );
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return 0;
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usage:
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@@ -19,7 +19,7 @@
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***********************************************************************/
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#include "abc.h"
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#include "cut.h"
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#include "cut.h"
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#define LARGE_LEVEL 1000000
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+593
-105
@@ -20,6 +20,12 @@
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#include "abc.h"
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/*
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Implememented here is the algorithm for minimal-LUT decomposition
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described in the paper: T. Sasao et al. "On the number of LUTs
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to implement logic functions", To appear in Proc. IWLS'09.
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*/
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////////////////////////////////////////////////////////////////////////
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/// DECLARATIONS ///
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////////////////////////////////////////////////////////////////////////
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@@ -28,6 +34,254 @@
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/// FUNCTION DEFINITIONS ///
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////////////////////////////////////////////////////////////////////////
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/**Function*************************************************************
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Synopsis [Implements 2:1 MUX using one 3-LUT.]
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Description [The fanins are (c, d0, d1).]
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SideEffects []
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SeeAlso []
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***********************************************************************/
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Abc_Obj_t * Abc_NtkBddMux21( Abc_Ntk_t * pNtkNew, Abc_Obj_t * pFanins[] )
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{
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DdManager * dd = pNtkNew->pManFunc;
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Abc_Obj_t * pNode;
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DdNode * bSpin, * bCof0, * bCof1;
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pNode = Abc_NtkCreateNode( pNtkNew );
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Abc_ObjAddFanin( pNode, pFanins[0] );
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Abc_ObjAddFanin( pNode, pFanins[1] );
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Abc_ObjAddFanin( pNode, pFanins[2] );
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bSpin = Cudd_bddIthVar(dd, 0);
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bCof0 = Cudd_bddIthVar(dd, 1);
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bCof1 = Cudd_bddIthVar(dd, 2);
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pNode->pData = Cudd_bddIte( dd, bSpin, bCof1, bCof0 ); Cudd_Ref( pNode->pData );
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return pNode;
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}
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/**Function*************************************************************
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Synopsis [Implements 4:1 MUX using one 6-LUT.]
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Description [The fanins are (c0, c1, d00, d01, d10, d11).]
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SideEffects []
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SeeAlso []
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***********************************************************************/
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Abc_Obj_t * Abc_NtkBddMux411( Abc_Ntk_t * pNtkNew, Abc_Obj_t * pFanins[] )
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{
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DdManager * dd = pNtkNew->pManFunc;
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Abc_Obj_t * pNode;
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DdNode * bSpin, * bCof0, * bCof1;
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pNode = Abc_NtkCreateNode( pNtkNew );
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Abc_ObjAddFanin( pNode, pFanins[0] );
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Abc_ObjAddFanin( pNode, pFanins[1] );
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Abc_ObjAddFanin( pNode, pFanins[2] );
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Abc_ObjAddFanin( pNode, pFanins[3] );
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Abc_ObjAddFanin( pNode, pFanins[4] );
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Abc_ObjAddFanin( pNode, pFanins[5] );
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bSpin = Cudd_bddIthVar(dd, 1);
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bCof0 = Cudd_bddIte( dd, bSpin, Cudd_bddIthVar(dd, 3), Cudd_bddIthVar(dd, 2) ); Cudd_Ref( bCof0 );
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bCof1 = Cudd_bddIte( dd, bSpin, Cudd_bddIthVar(dd, 5), Cudd_bddIthVar(dd, 4) ); Cudd_Ref( bCof1 );
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bSpin = Cudd_bddIthVar(dd, 0);
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pNode->pData = Cudd_bddIte( dd, bSpin, bCof1, bCof0 ); Cudd_Ref( pNode->pData );
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Cudd_RecursiveDeref( dd, bCof0 );
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Cudd_RecursiveDeref( dd, bCof1 );
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return pNode;
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}
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/**Function*************************************************************
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Synopsis [Implementes 4:1 MUX using two 4-LUTs.]
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Description [The fanins are (c0, c1, d00, d01, d10, d11).]
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SideEffects []
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SeeAlso []
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***********************************************************************/
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Abc_Obj_t * Abc_NtkBddMux412( Abc_Ntk_t * pNtkNew, Abc_Obj_t * pFanins[] )
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{
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DdManager * dd = pNtkNew->pManFunc;
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Abc_Obj_t * pNodeBot, * pNodeTop;
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DdNode * bSpin, * bCof0, * bCof1;
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// bottom node
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pNodeBot = Abc_NtkCreateNode( pNtkNew );
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Abc_ObjAddFanin( pNodeBot, pFanins[0] );
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Abc_ObjAddFanin( pNodeBot, pFanins[1] );
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Abc_ObjAddFanin( pNodeBot, pFanins[2] );
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Abc_ObjAddFanin( pNodeBot, pFanins[3] );
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bSpin = Cudd_bddIthVar(dd, 0);
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bCof0 = Cudd_bddIte( dd, Cudd_bddIthVar(dd, 1), Cudd_bddIthVar(dd, 3), Cudd_bddIthVar(dd, 2) ); Cudd_Ref( bCof0 );
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bCof1 = Cudd_bddIthVar(dd, 1);
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pNodeBot->pData = Cudd_bddIte( dd, bSpin, bCof1, bCof0 ); Cudd_Ref( pNodeBot->pData );
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Cudd_RecursiveDeref( dd, bCof0 );
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// top node
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pNodeTop = Abc_NtkCreateNode( pNtkNew );
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Abc_ObjAddFanin( pNodeTop, pFanins[0] );
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Abc_ObjAddFanin( pNodeTop, pNodeBot );
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Abc_ObjAddFanin( pNodeTop, pFanins[4] );
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Abc_ObjAddFanin( pNodeTop, pFanins[5] );
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bSpin = Cudd_bddIthVar(dd, 0);
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bCof0 = Cudd_bddIthVar(dd, 1);
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bCof1 = Cudd_bddIte( dd, Cudd_bddIthVar(dd, 1), Cudd_bddIthVar(dd, 3), Cudd_bddIthVar(dd, 2) ); Cudd_Ref( bCof1 );
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pNodeTop->pData = Cudd_bddIte( dd, bSpin, bCof1, bCof0 ); Cudd_Ref( pNodeTop->pData );
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Cudd_RecursiveDeref( dd, bCof1 );
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return pNodeTop;
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}
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/**Function*************************************************************
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Synopsis [Implementes 4:1 MUX using two 4-LUTs.]
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Description [The fanins are (c0, c1, d00, d01, d10, d11).]
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SideEffects []
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SeeAlso []
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***********************************************************************/
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Abc_Obj_t * Abc_NtkBddMux412a( Abc_Ntk_t * pNtkNew, Abc_Obj_t * pFanins[] )
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{
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DdManager * dd = pNtkNew->pManFunc;
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Abc_Obj_t * pNodeBot, * pNodeTop;
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DdNode * bSpin, * bCof0, * bCof1;
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// bottom node
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pNodeBot = Abc_NtkCreateNode( pNtkNew );
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Abc_ObjAddFanin( pNodeBot, pFanins[1] );
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Abc_ObjAddFanin( pNodeBot, pFanins[2] );
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Abc_ObjAddFanin( pNodeBot, pFanins[3] );
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bSpin = Cudd_bddIthVar(dd, 0);
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bCof0 = Cudd_bddIthVar(dd, 1);
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bCof1 = Cudd_bddIthVar(dd, 2);
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pNodeBot->pData = Cudd_bddIte( dd, bSpin, bCof1, bCof0 ); Cudd_Ref( pNodeBot->pData );
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// top node
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pNodeTop = Abc_NtkCreateNode( pNtkNew );
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Abc_ObjAddFanin( pNodeTop, pFanins[0] );
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Abc_ObjAddFanin( pNodeTop, pFanins[1] );
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Abc_ObjAddFanin( pNodeTop, pNodeBot );
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Abc_ObjAddFanin( pNodeTop, pFanins[4] );
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Abc_ObjAddFanin( pNodeTop, pFanins[5] );
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bSpin = Cudd_bddIthVar(dd, 0);
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bCof0 = Cudd_bddIthVar(dd, 2);
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bCof1 = Cudd_bddIte( dd, Cudd_bddIthVar(dd, 1), Cudd_bddIthVar(dd, 4), Cudd_bddIthVar(dd, 3) ); Cudd_Ref( bCof1 );
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pNodeTop->pData = Cudd_bddIte( dd, bSpin, bCof1, bCof0 ); Cudd_Ref( pNodeTop->pData );
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Cudd_RecursiveDeref( dd, bCof1 );
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return pNodeTop;
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}
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/**Function*************************************************************
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Synopsis [Implements 4:1 MUX using three 2:1 MUXes.]
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Description [The fanins are (c0, c1, d00, d01, d10, d11).]
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SideEffects []
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SeeAlso []
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***********************************************************************/
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Abc_Obj_t * Abc_NtkBddMux413( Abc_Ntk_t * pNtkNew, Abc_Obj_t * pFanins[] )
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{
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Abc_Obj_t * pNodesBot[3], * pNodesTop[3];
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// left bottom
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pNodesBot[0] = pFanins[1];
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pNodesBot[1] = pFanins[2];
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pNodesBot[2] = pFanins[3];
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pNodesTop[1] = Abc_NtkBddMux21( pNtkNew, pNodesBot );
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// right bottom
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pNodesBot[0] = pFanins[1];
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pNodesBot[1] = pFanins[4];
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pNodesBot[2] = pFanins[5];
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pNodesTop[2] = Abc_NtkBddMux21( pNtkNew, pNodesBot );
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// top node
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pNodesTop[0] = pFanins[0];
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return Abc_NtkBddMux21( pNtkNew, pNodesTop );
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}
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/**Function*************************************************************
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Synopsis [Finds unique cofactors of the function on the given level.]
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Description []
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||||
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SideEffects []
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||||
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SeeAlso []
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***********************************************************************/
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DdNode * Abc_NtkBddCofactors_rec( DdManager * dd, DdNode * bNode, int iCof, int iLevel, int nLevels )
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{
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DdNode * bNode0, * bNode1;
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if ( Cudd_IsConstant(bNode) || iLevel == nLevels )
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return bNode;
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if ( Cudd_ReadPerm( dd, Cudd_NodeReadIndex(bNode) ) > iLevel )
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{
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bNode0 = bNode;
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bNode1 = bNode;
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}
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else if ( Cudd_IsComplement(bNode) )
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{
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bNode0 = Cudd_Not(cuddE(Cudd_Regular(bNode)));
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bNode1 = Cudd_Not(cuddT(Cudd_Regular(bNode)));
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||||
}
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else
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{
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||||
bNode0 = cuddE(bNode);
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bNode1 = cuddT(bNode);
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||||
}
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||||
if ( (iCof >> (nLevels-1-iLevel)) & 1 )
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||||
return Abc_NtkBddCofactors_rec( dd, bNode1, iCof, iLevel + 1, nLevels );
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||||
return Abc_NtkBddCofactors_rec( dd, bNode0, iCof, iLevel + 1, nLevels );
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||||
}
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||||
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||||
/**Function*************************************************************
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||||
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Synopsis [Finds unique cofactors of the function on the given level.]
|
||||
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||||
Description []
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||||
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||||
SideEffects []
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||||
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SeeAlso []
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||||
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||||
***********************************************************************/
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Vec_Ptr_t * Abc_NtkBddCofactors( DdManager * dd, DdNode * bNode, int Level )
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||||
{
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Vec_Ptr_t * vCofs;
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int i, nCofs = (1<<Level);
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||||
assert( Level > 0 && Level < 10 );
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||||
vCofs = Vec_PtrAlloc( 8 );
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||||
for ( i = 0; i < nCofs; i++ )
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Vec_PtrPush( vCofs, Abc_NtkBddCofactors_rec( dd, bNode, i, 0, Level ) );
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||||
return vCofs;
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}
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||||
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||||
/**Function*************************************************************
|
||||
|
||||
Synopsis [Comparison procedure for two integers.]
|
||||
|
||||
Description []
|
||||
|
||||
SideEffects []
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||||
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||||
SeeAlso []
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||||
|
||||
***********************************************************************/
|
||||
static int Vec_PtrSortCompare( void ** pp1, void ** pp2 )
|
||||
{
|
||||
if ( *pp1 < *pp2 )
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||||
return -1;
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||||
if ( *pp1 > *pp2 )
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||||
return 1;
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||||
return 0;
|
||||
}
|
||||
|
||||
/**Function*************************************************************
|
||||
|
||||
Synopsis [Converts the node to MUXes.]
|
||||
@@ -39,27 +293,43 @@
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||||
SeeAlso []
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||||
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||||
***********************************************************************/
|
||||
Abc_Obj_t * Abc_NtkCreateNodeLut( Abc_Ntk_t * pNtkNew, DdManager * dd, DdNode * bFunc, Abc_Obj_t * pNode, int nLutSize )
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||||
Abc_Obj_t * Abc_NtkCreateCofLut( Abc_Ntk_t * pNtkNew, DdManager * dd, DdNode * bCof, Abc_Obj_t * pNode, int Level )
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||||
{
|
||||
int fVerbose = 0;
|
||||
DdNode * bFuncNew;
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||||
Abc_Obj_t * pNodeNew;
|
||||
int i, nStart = ABC_MIN( 0, Abc_ObjFaninNum(pNode) - nLutSize );
|
||||
int i;
|
||||
assert( Abc_ObjFaninNum(pNode) > Level );
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||||
// create a new node
|
||||
pNodeNew = Abc_NtkCreateNode( pNtkNew );
|
||||
// add the fanins in the order, in which they appear in the reordered manager
|
||||
for ( i = nStart; i < Abc_ObjFaninNum(pNode); i++ )
|
||||
for ( i = Level; i < Abc_ObjFaninNum(pNode); i++ )
|
||||
Abc_ObjAddFanin( pNodeNew, Abc_ObjFanin(pNode, i)->pCopy );
|
||||
if ( fVerbose )
|
||||
{
|
||||
Extra_bddPrint( dd, bCof );
|
||||
printf( "\n" );
|
||||
printf( "\n" );
|
||||
}
|
||||
// transfer the function
|
||||
bFuncNew = Extra_bddMove( dd, bFunc, nStart ); Cudd_Ref( bFuncNew );
|
||||
assert( Cudd_SupportSize(dd, bFuncNew) <= nLutSize );
|
||||
bFuncNew = Extra_bddMove( dd, bCof, -Level ); Cudd_Ref( bFuncNew );
|
||||
if ( fVerbose )
|
||||
{
|
||||
Extra_bddPrint( dd, bFuncNew );
|
||||
printf( "\n" );
|
||||
printf( "\n" );
|
||||
}
|
||||
pNodeNew->pData = Extra_TransferLevelByLevel( dd, pNtkNew->pManFunc, bFuncNew ); Cudd_Ref( pNodeNew->pData );
|
||||
//Extra_bddPrint( pNtkNew->pManFunc, pNodeNew->pData );
|
||||
//printf( "\n" );
|
||||
//printf( "\n" );
|
||||
Cudd_RecursiveDeref( dd, bFuncNew );
|
||||
return pNodeNew;
|
||||
}
|
||||
|
||||
/**Function*************************************************************
|
||||
|
||||
Synopsis [Converts the node to MUXes.]
|
||||
Synopsis [Performs one step of Ashenhurst-Curtis decomposition.]
|
||||
|
||||
Description []
|
||||
|
||||
@@ -68,89 +338,231 @@ Abc_Obj_t * Abc_NtkCreateNodeLut( Abc_Ntk_t * pNtkNew, DdManager * dd, DdNode *
|
||||
SeeAlso []
|
||||
|
||||
***********************************************************************/
|
||||
Abc_Obj_t * Abc_NodeBddToMuxesLut_rec( DdManager * dd, DdNode * bFunc, Abc_Ntk_t * pNtkNew, st_table * tBdd2Node, Abc_Obj_t * pNode, int nLutSize )
|
||||
Abc_Obj_t * Abc_NtkBddCurtis( Abc_Ntk_t * pNtkNew, Abc_Obj_t * pNode, Vec_Ptr_t * vCofs, Vec_Ptr_t * vUniq )
|
||||
{
|
||||
Abc_Obj_t * pNodeNew, * pNodeNew0, * pNodeNew1, * pNodeNewC;
|
||||
assert( !Cudd_IsComplement(bFunc) );
|
||||
if ( bFunc == b1 )
|
||||
return Abc_NtkCreateNodeConst1(pNtkNew);
|
||||
if ( st_lookup( tBdd2Node, (char *)bFunc, (char **)&pNodeNew ) )
|
||||
return pNodeNew;
|
||||
if ( dd->perm[bFunc->index] >= Abc_ObjFaninNum(pNode) - nLutSize )
|
||||
DdManager * ddOld = pNode->pNtk->pManFunc;
|
||||
DdManager * ddNew = pNtkNew->pManFunc;
|
||||
DdNode * bCof, * bUniq, * bMint, * bTemp, * bFunc, * bBits[10], ** pbCodeVars;
|
||||
Abc_Obj_t * pNodeNew = NULL, * pNodeBS[10];
|
||||
int nLutSize = Extra_Base2Log( Vec_PtrSize(vCofs) );
|
||||
int nBits = Extra_Base2Log( Vec_PtrSize(vUniq) );
|
||||
int b, c, u, i;
|
||||
assert( nBits + 2 <= nLutSize );
|
||||
assert( nLutSize < Abc_ObjFaninNum(pNode) );
|
||||
// start BDDs for the decompoosed blocks
|
||||
for ( b = 0; b < nBits; b++ )
|
||||
bBits[b] = Cudd_ReadLogicZero(ddNew), Cudd_Ref( bBits[b] );
|
||||
// add each bound set minterm to one of the blccks
|
||||
Vec_PtrForEachEntry( vCofs, bCof, c )
|
||||
{
|
||||
pNodeNew = Abc_NtkCreateNodeLut( pNtkNew, dd, bFunc, pNode, nLutSize );
|
||||
st_insert( tBdd2Node, (char *)bFunc, (char *)pNodeNew );
|
||||
return pNodeNew;
|
||||
Vec_PtrForEachEntry( vUniq, bUniq, u )
|
||||
if ( bUniq == bCof )
|
||||
break;
|
||||
assert( u < Vec_PtrSize(vUniq) );
|
||||
for ( b = 0; b < nBits; b++ )
|
||||
{
|
||||
if ( ((u >> b) & 1) == 0 )
|
||||
continue;
|
||||
bMint = Extra_bddBitsToCube( ddNew, c, nLutSize, ddNew->vars, 1 ); Cudd_Ref( bMint );
|
||||
bBits[b] = Cudd_bddOr( ddNew, bTemp = bBits[b], bMint ); Cudd_Ref( bBits[b] );
|
||||
Cudd_RecursiveDeref( ddNew, bTemp );
|
||||
Cudd_RecursiveDeref( ddNew, bMint );
|
||||
}
|
||||
}
|
||||
// solve for the children nodes
|
||||
pNodeNew0 = Abc_NodeBddToMuxesLut_rec( dd, Cudd_Regular(cuddE(bFunc)), pNtkNew, tBdd2Node, pNode, nLutSize );
|
||||
if ( Cudd_IsComplement(cuddE(bFunc)) )
|
||||
pNodeNew0 = Abc_NtkCreateNodeInv( pNtkNew, pNodeNew0 );
|
||||
pNodeNew1 = Abc_NodeBddToMuxesLut_rec( dd, cuddT(bFunc), pNtkNew, tBdd2Node, pNode, nLutSize );
|
||||
if ( !st_lookup( tBdd2Node, (char *)Cudd_bddIthVar(dd, bFunc->index), (char **)&pNodeNewC ) )
|
||||
assert( 0 );
|
||||
// create the MUX node
|
||||
pNodeNew = Abc_NtkCreateNodeMux( pNtkNew, pNodeNewC, pNodeNew1, pNodeNew0 );
|
||||
st_insert( tBdd2Node, (char *)bFunc, (char *)pNodeNew );
|
||||
return pNodeNew;
|
||||
}
|
||||
|
||||
/**Function*************************************************************
|
||||
|
||||
Synopsis [Converts the node to MUXes.]
|
||||
|
||||
Description []
|
||||
|
||||
SideEffects []
|
||||
|
||||
SeeAlso []
|
||||
|
||||
***********************************************************************/
|
||||
Abc_Obj_t * Abc_NodeBddToMuxesLut( Abc_Ntk_t * pNtkNew, Abc_Obj_t * pNodeOld, int nLutSize )
|
||||
{
|
||||
DdManager * dd = pNodeOld->pNtk->pManFunc;
|
||||
DdNode * bFunc = pNodeOld->pData;
|
||||
Abc_Obj_t * pFaninOld, * pNodeNew;
|
||||
st_table * tBdd2Node;
|
||||
int i;
|
||||
// create the table mapping BDD nodes into the ABC nodes
|
||||
tBdd2Node = st_init_table( st_ptrcmp, st_ptrhash );
|
||||
// add the constant and the elementary vars
|
||||
Abc_ObjForEachFanin( pNodeOld, pFaninOld, i )
|
||||
st_insert( tBdd2Node, (char *)Cudd_bddIthVar(dd, i), (char *)pFaninOld->pCopy );
|
||||
// create the new nodes recursively
|
||||
pNodeNew = Abc_NodeBddToMuxesLut_rec( dd, Cudd_Regular(bFunc), pNtkNew, tBdd2Node, pNodeOld, nLutSize );
|
||||
st_free_table( tBdd2Node );
|
||||
if ( Cudd_IsComplement(bFunc) )
|
||||
pNodeNew = Abc_NtkCreateNodeInv( pNtkNew, pNodeNew );
|
||||
return pNodeNew;
|
||||
}
|
||||
|
||||
/**Function*************************************************************
|
||||
|
||||
Synopsis []
|
||||
|
||||
Description []
|
||||
|
||||
SideEffects []
|
||||
|
||||
SeeAlso []
|
||||
|
||||
***********************************************************************/
|
||||
void Abc_NtkLutminConstruct( Abc_Ntk_t * pNtkClp, Abc_Ntk_t * pNtkDec, int nLutSize )
|
||||
{
|
||||
Abc_Obj_t * pObj, * pDriver;
|
||||
int i;
|
||||
Abc_NtkForEachCo( pNtkClp, pObj, i )
|
||||
// create bound set nodes
|
||||
for ( b = 0; b < nBits; b++ )
|
||||
{
|
||||
pDriver = Abc_ObjFanin0( pObj );
|
||||
if ( !Abc_ObjIsNode(pDriver) )
|
||||
pNodeBS[b] = Abc_NtkCreateNode( pNtkNew );
|
||||
for ( i = 0; i < nLutSize; i++ )
|
||||
Abc_ObjAddFanin( pNodeBS[b], Abc_ObjFanin(pNode, i)->pCopy );
|
||||
pNodeBS[b]->pData = bBits[b]; // takes ref
|
||||
}
|
||||
// create composition node
|
||||
pNodeNew = Abc_NtkCreateNode( pNtkNew );
|
||||
// add free set variables first
|
||||
for ( i = nLutSize; i < Abc_ObjFaninNum(pNode); i++ )
|
||||
Abc_ObjAddFanin( pNodeNew, Abc_ObjFanin(pNode, i)->pCopy );
|
||||
// add code bit variables next
|
||||
for ( b = 0; b < nBits; b++ )
|
||||
Abc_ObjAddFanin( pNodeNew, pNodeBS[b] );
|
||||
// derive function of the composition node
|
||||
bFunc = Cudd_ReadLogicZero(ddNew); Cudd_Ref( bFunc );
|
||||
pbCodeVars = ddNew->vars + Abc_ObjFaninNum(pNode) - nLutSize;
|
||||
Vec_PtrForEachEntry( vUniq, bUniq, u )
|
||||
{
|
||||
bUniq = Extra_bddMove( ddOld, bUniq, -nLutSize ); Cudd_Ref( bUniq );
|
||||
bUniq = Extra_TransferLevelByLevel( ddOld, ddNew, bTemp = bUniq ); Cudd_Ref( bUniq );
|
||||
Cudd_RecursiveDeref( ddOld, bTemp );
|
||||
|
||||
bMint = Extra_bddBitsToCube( ddNew, u, nBits, pbCodeVars, 0 ); Cudd_Ref( bMint );
|
||||
bMint = Cudd_bddAnd( ddNew, bTemp = bMint, bUniq ); Cudd_Ref( bMint );
|
||||
Cudd_RecursiveDeref( ddNew, bTemp );
|
||||
Cudd_RecursiveDeref( ddNew, bUniq );
|
||||
|
||||
bFunc = Cudd_bddOr( ddNew, bTemp = bFunc, bMint ); Cudd_Ref( bFunc );
|
||||
Cudd_RecursiveDeref( ddNew, bTemp );
|
||||
Cudd_RecursiveDeref( ddNew, bMint );
|
||||
}
|
||||
pNodeNew->pData = bFunc; // takes ref
|
||||
return pNodeNew;
|
||||
}
|
||||
|
||||
/**Function*************************************************************
|
||||
|
||||
Synopsis [Tries to decompose using cofactoring into two LUTs.]
|
||||
|
||||
Description []
|
||||
|
||||
SideEffects []
|
||||
|
||||
SeeAlso []
|
||||
|
||||
***********************************************************************/
|
||||
Abc_Obj_t * Abc_NtkBddFindCofactor( Abc_Ntk_t * pNtkNew, Abc_Obj_t * pNode, int nLutSize )
|
||||
{
|
||||
Abc_Obj_t * pNodeBot, * pNodeTop;
|
||||
DdManager * ddOld = pNode->pNtk->pManFunc;
|
||||
DdManager * ddNew = pNtkNew->pManFunc;
|
||||
DdNode * bCof0, * bCof1, * bSupp, * bTemp, * bVar;
|
||||
DdNode * bCof0n, * bCof1n;
|
||||
int i, iCof, iFreeVar, fCof1Smaller = -1;
|
||||
assert( Abc_ObjFaninNum(pNode) == nLutSize + 1 );
|
||||
for ( iCof = 0; iCof < Abc_ObjFaninNum(pNode); iCof++ )
|
||||
{
|
||||
bVar = Cudd_bddIthVar( ddOld, iCof );
|
||||
bCof0 = Cudd_Cofactor( ddOld, pNode->pData, Cudd_Not(bVar) ); Cudd_Ref( bCof0 );
|
||||
bCof1 = Cudd_Cofactor( ddOld, pNode->pData, bVar ); Cudd_Ref( bCof1 );
|
||||
if ( Cudd_SupportSize( ddOld, bCof0 ) <= nLutSize - 2 )
|
||||
{
|
||||
fCof1Smaller = 0;
|
||||
break;
|
||||
}
|
||||
if ( Cudd_SupportSize( ddOld, bCof1 ) <= nLutSize - 2 )
|
||||
{
|
||||
fCof1Smaller = 1;
|
||||
break;
|
||||
}
|
||||
Cudd_RecursiveDeref( ddOld, bCof0 );
|
||||
Cudd_RecursiveDeref( ddOld, bCof1 );
|
||||
}
|
||||
if ( iCof == Abc_ObjFaninNum(pNode) )
|
||||
return NULL;
|
||||
// find unused variable
|
||||
bSupp = Cudd_Support( ddOld, fCof1Smaller? bCof1 : bCof0 ); Cudd_Ref( bSupp );
|
||||
iFreeVar = -1;
|
||||
for ( i = 0; i < Abc_ObjFaninNum(pNode); i++ )
|
||||
{
|
||||
assert( i == Cudd_ReadPerm(ddOld, i) );
|
||||
if ( i == iCof )
|
||||
continue;
|
||||
if ( Abc_ObjFaninNum(pDriver) == 0 )
|
||||
pDriver->pCopy = Abc_NtkDupObj( pNtkDec, pDriver, 0 );
|
||||
else
|
||||
pDriver->pCopy = Abc_NodeBddToMuxesLut( pNtkDec, pDriver, nLutSize );
|
||||
for ( bTemp = bSupp; !Cudd_IsConstant(bTemp); bTemp = cuddT(bTemp) )
|
||||
if ( i == (int)Cudd_NodeReadIndex(bTemp) )
|
||||
break;
|
||||
if ( Cudd_IsConstant(bTemp) )
|
||||
{
|
||||
iFreeVar = i;
|
||||
break;
|
||||
}
|
||||
}
|
||||
assert( iFreeVar != iCof && iFreeVar < Abc_ObjFaninNum(pNode) );
|
||||
Cudd_RecursiveDeref( ddOld, bSupp );
|
||||
// transfer the cofactors
|
||||
bCof0n = Extra_TransferLevelByLevel( ddOld, ddNew, bCof0 ); Cudd_Ref( bCof0n );
|
||||
bCof1n = Extra_TransferLevelByLevel( ddOld, ddNew, bCof1 ); Cudd_Ref( bCof1n );
|
||||
Cudd_RecursiveDeref( ddOld, bCof0 );
|
||||
Cudd_RecursiveDeref( ddOld, bCof1 );
|
||||
// create bottom node
|
||||
pNodeBot = Abc_NtkCreateNode( pNtkNew );
|
||||
for ( i = 0; i < Abc_ObjFaninNum(pNode); i++ )
|
||||
Abc_ObjAddFanin( pNodeBot, Abc_ObjFanin(pNode, i)->pCopy );
|
||||
pNodeBot->pData = fCof1Smaller? bCof0n : bCof1n;
|
||||
// create top node
|
||||
pNodeTop = Abc_NtkCreateNode( pNtkNew );
|
||||
for ( i = 0; i < Abc_ObjFaninNum(pNode); i++ )
|
||||
if ( i == iFreeVar )
|
||||
Abc_ObjAddFanin( pNodeTop, pNodeBot );
|
||||
else
|
||||
Abc_ObjAddFanin( pNodeTop, Abc_ObjFanin(pNode, i)->pCopy );
|
||||
// derive the new function
|
||||
pNodeTop->pData = Cudd_bddIte( ddNew,
|
||||
Cudd_bddIthVar(ddNew, iCof),
|
||||
fCof1Smaller? bCof1n : Cudd_bddIthVar(ddNew, iFreeVar),
|
||||
fCof1Smaller? Cudd_bddIthVar(ddNew, iFreeVar) : bCof0n );
|
||||
Cudd_Ref( pNodeTop->pData );
|
||||
Cudd_RecursiveDeref( ddNew, fCof1Smaller? bCof1n : bCof0n );
|
||||
return pNodeTop;
|
||||
}
|
||||
|
||||
/**Function*************************************************************
|
||||
|
||||
Synopsis [Decompose the function once.]
|
||||
|
||||
Description []
|
||||
|
||||
SideEffects []
|
||||
|
||||
SeeAlso []
|
||||
|
||||
***********************************************************************/
|
||||
Abc_Obj_t * Abc_NtkBddDecompose( Abc_Ntk_t * pNtkNew, Abc_Obj_t * pNode, int nLutSize, int fVerbose )
|
||||
{
|
||||
Vec_Ptr_t * vCofs, * vUniq;
|
||||
DdManager * dd = pNode->pNtk->pManFunc;
|
||||
DdNode * bCof;
|
||||
Abc_Obj_t * pNodeNew = NULL;
|
||||
Abc_Obj_t * pCofs[20];
|
||||
int i;
|
||||
assert( Abc_ObjFaninNum(pNode) > nLutSize );
|
||||
// try to decompose with two LUTs (the best case for Supp = LutSize + 1)
|
||||
if ( Abc_ObjFaninNum(pNode) == nLutSize + 1 )
|
||||
{
|
||||
|
||||
pNodeNew = Abc_NtkBddFindCofactor( pNtkNew, pNode, nLutSize );
|
||||
if ( pNodeNew != NULL )
|
||||
{
|
||||
if ( fVerbose )
|
||||
printf( "Decomposing %d-input node %d using MUX.\n",
|
||||
Abc_ObjFaninNum(pNode), Abc_ObjId(pNode) );
|
||||
return pNodeNew;
|
||||
}
|
||||
|
||||
}
|
||||
// cofactor w.r.t. the bound set variables
|
||||
vCofs = Abc_NtkBddCofactors( dd, pNode->pData, nLutSize );
|
||||
vUniq = Vec_PtrDup( vCofs );
|
||||
Vec_PtrUniqify( vUniq, (int (*)())Vec_PtrSortCompare );
|
||||
// only perform decomposition with it is support reduring with two less vars
|
||||
if( Vec_PtrSize(vUniq) > (1 << (nLutSize-2)) )
|
||||
{
|
||||
Vec_PtrFree( vCofs );
|
||||
vCofs = Abc_NtkBddCofactors( dd, pNode->pData, 2 );
|
||||
if ( fVerbose )
|
||||
printf( "Decomposing %d-input node %d using cofactoring with %d cofactors.\n",
|
||||
Abc_ObjFaninNum(pNode), Abc_ObjId(pNode), Vec_PtrSize(vCofs) );
|
||||
// implement the cofactors
|
||||
pCofs[0] = Abc_ObjFanin(pNode, 0)->pCopy;
|
||||
pCofs[1] = Abc_ObjFanin(pNode, 1)->pCopy;
|
||||
Vec_PtrForEachEntry( vCofs, bCof, i )
|
||||
pCofs[2+i] = Abc_NtkCreateCofLut( pNtkNew, dd, bCof, pNode, 2 );
|
||||
if ( nLutSize == 4 )
|
||||
pNodeNew = Abc_NtkBddMux412( pNtkNew, pCofs );
|
||||
else if ( nLutSize == 5 )
|
||||
pNodeNew = Abc_NtkBddMux412a( pNtkNew, pCofs );
|
||||
else if ( nLutSize == 6 )
|
||||
pNodeNew = Abc_NtkBddMux411( pNtkNew, pCofs );
|
||||
else assert( 0 );
|
||||
}
|
||||
// alternative decompose using MUX-decomposition
|
||||
else
|
||||
{
|
||||
if ( fVerbose )
|
||||
printf( "Decomposing %d-input node %d using Curtis with %d unique columns.\n",
|
||||
Abc_ObjFaninNum(pNode), Abc_ObjId(pNode), Vec_PtrSize(vUniq) );
|
||||
pNodeNew = Abc_NtkBddCurtis( pNtkNew, pNode, vCofs, vUniq );
|
||||
}
|
||||
Vec_PtrFree( vCofs );
|
||||
Vec_PtrFree( vUniq );
|
||||
return pNodeNew;
|
||||
}
|
||||
|
||||
/**Function*************************************************************
|
||||
@@ -164,42 +576,118 @@ void Abc_NtkLutminConstruct( Abc_Ntk_t * pNtkClp, Abc_Ntk_t * pNtkDec, int nLutS
|
||||
SeeAlso []
|
||||
|
||||
***********************************************************************/
|
||||
Abc_Ntk_t * Abc_NtkLutmin( Abc_Ntk_t * pNtk, int nLutSize, int fVerbose )
|
||||
void Abc_NtkLutminConstruct( Abc_Ntk_t * pNtkClp, Abc_Ntk_t * pNtkDec, int nLutSize, int fVerbose )
|
||||
{
|
||||
Vec_Ptr_t * vNodes;
|
||||
Abc_Obj_t * pNode, * pFanin;
|
||||
int i, k;
|
||||
vNodes = Abc_NtkDfs( pNtkClp, 0 );
|
||||
Vec_PtrForEachEntry( vNodes, pNode, i )
|
||||
{
|
||||
if ( Abc_ObjFaninNum(pNode) <= nLutSize )
|
||||
{
|
||||
pNode->pCopy = Abc_NtkDupObj( pNtkDec, pNode, 0 );
|
||||
Abc_ObjForEachFanin( pNode, pFanin, k )
|
||||
Abc_ObjAddFanin( pNode->pCopy, pFanin->pCopy );
|
||||
}
|
||||
else
|
||||
pNode->pCopy = Abc_NtkBddDecompose( pNtkDec, pNode, nLutSize, fVerbose );
|
||||
}
|
||||
Vec_PtrFree( vNodes );
|
||||
}
|
||||
|
||||
/**Function*************************************************************
|
||||
|
||||
Synopsis []
|
||||
|
||||
Description []
|
||||
|
||||
SideEffects []
|
||||
|
||||
SeeAlso []
|
||||
|
||||
***********************************************************************/
|
||||
Abc_Ntk_t * Abc_NtkLutminInt( Abc_Ntk_t * pNtk, int nLutSize, int fVerbose )
|
||||
{
|
||||
extern void Abc_NtkBddReorder( Abc_Ntk_t * pNtk, int fVerbose );
|
||||
Abc_Ntk_t * pNtkDec, * pNtkClp, * pTemp;
|
||||
// collapse the network and reorder BDDs
|
||||
if ( Abc_NtkIsStrash(pNtk) )
|
||||
pTemp = Abc_NtkDup( pNtk );
|
||||
else
|
||||
pTemp = Abc_NtkStrash( pNtk, 0, 1, 0 );
|
||||
pNtkClp = Abc_NtkCollapse( pTemp, 10000, 0, 1, 0 );
|
||||
Abc_NtkDelete( pTemp );
|
||||
if ( pNtkClp == NULL )
|
||||
return NULL;
|
||||
if ( !Abc_NtkIsBddLogic(pNtkClp) )
|
||||
Abc_NtkToBdd( pNtkClp );
|
||||
Abc_NtkBddReorder( pNtkClp, fVerbose );
|
||||
Abc_Ntk_t * pNtkDec;
|
||||
// minimize BDDs
|
||||
// Abc_NtkBddReorder( pNtk, fVerbose );
|
||||
Abc_NtkBddReorder( pNtk, 0 );
|
||||
// decompose one output at a time
|
||||
pNtkDec = Abc_NtkStartFrom( pNtkClp, ABC_NTK_LOGIC, ABC_FUNC_BDD );
|
||||
pNtkDec = Abc_NtkStartFrom( pNtk, ABC_NTK_LOGIC, ABC_FUNC_BDD );
|
||||
// make sure the new manager has enough inputs
|
||||
Cudd_bddIthVar( pNtkDec->pManFunc, nLutSize );
|
||||
Cudd_bddIthVar( pNtkDec->pManFunc, Abc_NtkGetFaninMax(pNtk) );
|
||||
// put the results into the new network (save new CO drivers in old CO drivers)
|
||||
Abc_NtkLutminConstruct( pNtkClp, pNtkDec, nLutSize );
|
||||
Abc_NtkLutminConstruct( pNtk, pNtkDec, nLutSize, fVerbose );
|
||||
// finalize the new network
|
||||
Abc_NtkFinalize( pNtkClp, pNtkDec );
|
||||
Abc_NtkDelete( pNtkClp );
|
||||
Abc_NtkFinalize( pNtk, pNtkDec );
|
||||
// make the network minimum base
|
||||
Abc_NtkMinimumBase( pNtkDec );
|
||||
return pNtkDec;
|
||||
}
|
||||
|
||||
/**Function*************************************************************
|
||||
|
||||
Synopsis [Performs minimum-LUT decomposition of the network.]
|
||||
|
||||
Description []
|
||||
|
||||
SideEffects []
|
||||
|
||||
SeeAlso []
|
||||
|
||||
***********************************************************************/
|
||||
Abc_Ntk_t * Abc_NtkLutmin( Abc_Ntk_t * pNtkInit, int nLutSize, int fVerbose )
|
||||
{
|
||||
extern bool Abc_NtkFraigSweep( Abc_Ntk_t * pNtk, int fUseInv, int fExdc, int fVerbose, int fVeryVerbose );
|
||||
Abc_Ntk_t * pNtkNew, * pTemp;
|
||||
int i;
|
||||
if ( nLutSize < 4 )
|
||||
{
|
||||
printf( "The LUT count (%d) should be at least 4.\n", nLutSize );
|
||||
return NULL;
|
||||
}
|
||||
if ( nLutSize > 6 )
|
||||
{
|
||||
printf( "The LUT count (%d) should not exceed 6.\n", nLutSize );
|
||||
return NULL;
|
||||
}
|
||||
// create internal representation
|
||||
if ( Abc_NtkIsStrash(pNtkInit) )
|
||||
pNtkNew = Abc_NtkDup( pNtkInit );
|
||||
else
|
||||
pNtkNew = Abc_NtkStrash( pNtkInit, 0, 1, 0 );
|
||||
// collapse the network
|
||||
pNtkNew = Abc_NtkCollapse( pTemp = pNtkNew, 10000, 0, 1, 0 );
|
||||
Abc_NtkDelete( pTemp );
|
||||
if ( pNtkNew == NULL )
|
||||
return NULL;
|
||||
// convert it to BDD
|
||||
if ( !Abc_NtkIsBddLogic(pNtkNew) )
|
||||
Abc_NtkToBdd( pNtkNew );
|
||||
// iterate decomposition
|
||||
for ( i = 0; Abc_NtkGetFaninMax(pNtkNew) > nLutSize; i++ )
|
||||
{
|
||||
if ( fVerbose )
|
||||
printf( "*** Iteration %d:\n", i+1 );
|
||||
if ( fVerbose )
|
||||
printf( "Decomposing network with %d nodes and %d max fanin count for K = %d.\n",
|
||||
Abc_NtkNodeNum(pNtkNew), Abc_NtkGetFaninMax(pNtkNew), nLutSize );
|
||||
pNtkNew = Abc_NtkLutminInt( pTemp = pNtkNew, nLutSize, fVerbose );
|
||||
Abc_NtkDelete( pTemp );
|
||||
}
|
||||
// fix the problem with complemented and duplicated CO edges
|
||||
Abc_NtkLogicMakeSimpleCos( pNtkDec, 0 );
|
||||
Abc_NtkLogicMakeSimpleCos( pNtkNew, 0 );
|
||||
// merge functionally equivalent nodes
|
||||
Abc_NtkFraigSweep( pNtkNew, 1, 0, 0, 0 );
|
||||
// make sure everything is okay
|
||||
if ( !Abc_NtkCheck( pNtkDec ) )
|
||||
if ( !Abc_NtkCheck( pNtkNew ) )
|
||||
{
|
||||
printf( "Abc_NtkLutmin: The network check has failed.\n" );
|
||||
return 0;
|
||||
}
|
||||
return pNtkDec;
|
||||
return pNtkNew;
|
||||
}
|
||||
|
||||
////////////////////////////////////////////////////////////////////////
|
||||
|
||||
Reference in New Issue
Block a user