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I have a directed graph. I want to know if a node N is always in path of an upper node T. The way I check it is by starting from the entry node and perform a depth first search. If in any path it is seen that node N is encountered before node T, it is assumed its not always in its path.

As an example, in the attached image, the entry node is entry_0_CC_FC, upper Node is if_end_0_CC_FC and node N is land.lhs.true26_0_CC_FC.

However I am seeing that my algorithm is stuck in an infinite loop. Either its taking too much time, or stuck, I am not sure. There are 119 blocks in this graph by the way. Here is the code. Could you see any problem which can make it stuck in infinite loop.

void CheckIfNotAlwaysInPath(bool& violation, BasicBlock* BS, 
  BasicBlock* BT, BasicBlock* BN, set<BasicBlock*> visited)
{
    int i;

    // If already visited
    if ( visited.find( BS ) != visited.end() ) // If already had visited
        return;

    visited.insert(BS);

    if ( BS == BN )
    {
        if ( visited.find( BT ) == visited.end() )
            violation = true;
        return;
    }

    if ( isa<ReturnInst>(BS->getTerminator()) )
        return;
    if ( BS->getTerminator()->getNumSuccessors() == 0 )
        return;


    for( i = 0; i < BS->getTerminator()->getNumSuccessors(); i++ )
    {
        if ( visited.find( BS->getTerminator()->getSuccessor(i) ) == visited.end() )
            CheckIfNotAlwaysInPath(violation, BS->getTerminator()->getSuccessor(i), BT, BN, visited);
    }
}

enter image description here.

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The graph is a bit big, at least for my part I can't recognize a thing in this graph, would you mind scaling it so it's less pixelized? –  mmoment Aug 30 '12 at 9:35
    
Do you think its too big and takes too much time to compute for every path –  user1018562 Aug 30 '12 at 9:37
2  
First time a screenshot fails the "minimal, complete example" requirement! –  Kerrek SB Aug 30 '12 at 9:39
    
Kerrek SB: What do you mean by "fails the minimal complete example requirement"? –  user1018562 Aug 30 '12 at 9:40
    
No, I was trying to say that I'm having a hard time recognizing the characters of the blocks:) –  mmoment Aug 30 '12 at 9:40

1 Answer 1

Check for feedbacks in the graph. Then check the referring function blocks / state machine in the code. The upper part of the diagram until if.end531_0_CC_FC should be alright. Afterwards the for.body blocks or the for.cond675.loopexit_0_cc_FC might be error prone ... or some of the other loopbacks.

My first guess would be the loopback from for.cond675.loopexit_0_cc_FC to for.body.688.lr.ph_0_CC_FC though.

share|improve this answer
    
But I make sure, we don't loop back. The visited set is for that purpose. Do you think I can still have a loopback? –  user1018562 Aug 30 '12 at 9:48
    
There are conditional feedbacks in the graph, right? –  mmoment Aug 30 '12 at 9:53
    
Basically for for.cond675, for.body688 is a successor. Now since for.body688 is already in the visited set (since we encountered it before), the algorithm will not visit it once more. In this way, loopbacks are not parsed again. –  user1018562 Aug 30 '12 at 9:56

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