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This function takes a string wild containing '*' and '?' wild cards, and replaces the wildcards with possible chars from a tree database with nodeT *w. out holds a temporary string. Each candidates is added to a referenced bst.

void Lexicon::matchRegExpHelper(nodeT *w, string wild, Set<string> &matchSet, string out)
{   
    if (wild == "") matchSet.add(out);

    else {
        if (wild[0] != '*' || wild[0] != '?') { //this parses up to the wildcard, earlier versions used a position parameter and looped through the prefix chars recursively
            for (int j = 0; j < w->alpha.size(); j++)
                if (wild[0] == w->alpha[j].letter) matchRegExpHelper(w->alpha[j].next, wild.substr(1), matchSet, out+=wild[0]);
        } else {
            for (int i = 0; i < w->alpha.size(); i++) { 
                if (wild[0] == '?') matchRegExpHelper(w->alpha[i].next, wild.substr(1), matchSet, out+=w->alpha[i].letter);//follow path
                else { //logically, wild[0] == '*' must be true
                    if (ontLength == (wild.length() + out.length())) matchRegExpHelper(w->alpha[i].next, wild.substr(1), matchSet, out+=w->alpha[i].letter); //ontology is full, treat like a '?'
                    else matchRegExpHelper(w->alpha[i].next, wild.substr(1), matchSet, out+=(w->alpha[i].letter+'*')); //keep adding chars
                }
            }
        }
    }
}

When the first wildcard is reached the function starts over - I have tried rewriting this with the for loops, without the loops, and in differing 'prune' approaches. I am missing something basic and suspect this is a backtracking issue. Eventually the stack overflows.

Question: 1) what am I missing conceptually, and 2) how do I fix this function?

version without for loop - the test case is a bit different but similar, I'd have to test it to find it again

else {
            if (wild[0] == '?'){
                matchRegExpHelper(w, wild, ++pos, matchSet, out);//return and check next path
                matchRegExpHelper(w->alpha[pos].next, wild.substr(1), 0, matchSet, out+=w->alpha[pos].letter);//follow path
            }
            if (wild[0] == '*'){
                matchRegExpHelper(w, wild, ++pos, matchSet, out);//return and check next path
                if (ontLength == (wild.length() + out.length()))matchRegExpHelper(w->alpha[pos].next, wild.substr(1), 0, matchSet, out+=w->alpha[pos].letter); //ontology is full, treat like a '?'
                else matchRegExpHelper(w->alpha[pos].next, wild.substr(1), 0, matchSet, out+=(w->alpha[pos].letter+'*')); //keep adding chars
            }
            if (wild[0] == w->alpha[pos].letter) matchRegExpHelper(w->alpha[pos].next, wild.substr(1), 0, matchSet, out+=wild[0]);  

            matchRegExpHelper(w, wild, ++pos, matchSet, out);//check next path
        }
        for (int i = 0; i < w->alpha.size(); i++) matchRegExpHelper(w->alpha[i].next, wild.substr(1), 0, matchSet, out+=wild[0]);//step over char

the for loop at the end was an attempt to fix the overflow, i thought maybe there was no case for some threads, but I wanted those to prune, so not sure what to do

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Did you try to use the debugger? –  Basile Starynkevitch Jul 27 '12 at 10:44
    
@Basile_Starynkevitch maybe I don't know what the dubugger is, but I pressed the green arrow that said 'start debugging' - so I think the answer is yes. –  forest.peterson Jul 27 '12 at 10:53
    
You need to learn how to use your development tools for debugging. Taking time to read some documentation won't harm. You'll need to put breakpoints and to look into backtraces. –  Basile Starynkevitch Jul 27 '12 at 10:54
    
I will search for 'backtraces' - I am not a programmer, this is for my graduate experiment and this is more or less the last function I need to rewrite. I put breakpoints throughout this and followed the path, but I have not seen a tool for backtraces. –  forest.peterson Jul 27 '12 at 11:00
    
Each time it reaches the wildcard it starts again from where the function is called. Also, the first couple of webpages I read were confusing - I still have no idea what a backtrace is. Maybe something with the call stack, but reviewing the call stack was not much help, it is just the same function over and over. –  forest.peterson Jul 27 '12 at 11:06

3 Answers 3

this condition is always true: (wild[0] != '*' || wild[0] != '?')

As any character is different from one of the two, maybe you meant (wild[0] != '*' && wild[0] != '?')

I hope this helps you to make some progress...

Also conceptually, I usually don't use 'for' inside a recursive function, try to rewrite it without using 'for' probably it will be clearer, maybe not efficient but once it works you can start fine tuning the algorithm..

share|improve this answer
    
weird, it seems like and either/or logic, but you are correct. Is there a reason to avoid for loops in recursion, I have a version I wrote earlier that does not use the for loop - it also has the logic error. –  forest.peterson Jul 27 '12 at 11:22
    
it still overflows, those are good but they did not fix the issue - I think this is a backtracking issue or an run-over from the function not terminating loose loops. I had this issue back when I took CS and the TA explained it, that was in '09 though –  forest.peterson Jul 27 '12 at 11:25
    
The idea of recursive functions is that they work because every iteration (new call), solves a piece of the problem and the next takes this as precondition or postcondition, depending on the kind of recursivity. –  Picarus Jul 31 '12 at 21:23
    
In your case, if you did a 'for' based on the size of the string but when you process one position of the string the size of the string changed, the algorithm would fail.Note I am saying 'did' since I am not sure it's your case. –  Picarus Jul 31 '12 at 21:28

Every recursion should have a base terminating condition.

I've got the feeling that

 if (wild[0] != '*' || wild[0] != '?') 

is wrong (that test is always true, because a character cannot be at the same time a '*' and a '?'), it should be a conjunction && not a disjunction ||

But as I said in a comment, you really should learn how to use a debugger (i.e. putting breakpoints, asking for backtraces, querying value of variables).

Familiarity with debugging is a skill that will be valuable for all your life, beyond this particular program (or homework).

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this is not homework - graduate, like Dr Evils homework maybe; unless I am the professor then maybe it is homework - actually motel work right now :) –  forest.peterson Jul 27 '12 at 11:27
    
@Basile_Starynkevitch, I have be rereading your comments and I cannot see the solution you have made? Also, I did not mean to claim that i only want to get this task done and move on, of course life knowledge is valuable and we all will be writing software throughout our life, I did not intend to give the impression you seem to have picked up. –  forest.peterson Jul 27 '12 at 12:33
up vote 0 down vote accepted

There were three issues with this code:

@Basile_Starynkevitch noted the importance of using the debugger to follow the path - in this case with VS2008, the stack allowed parsing the steps and noting the path moving back through several functions.

@Picarus correctly noted the error in the terminating condition

These solutions led to finding:

the solution, this void function requires two return;, one after the termination condition to terminate and another at the end to catch pruned threads. from reading several websites, it seems that a return; in a void function is unusual, but this case with the recursion and multiple paths, it was required.

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