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I have the following table on db which has 2 columns :

from      to    
00001     00002
00001     00003
00002     00003
00002     00004
00003     00001
00003     00004
00002     00004
00004     00002
00005     00003
00005     00001
00006     00007
00009     00006

I need to get with perl and dbi the connection of specific number, for example the output of 00001 will be the below connection :

00001 00002 0003 00004 00005

because 00001 connected to 00002 and 00003 and 00002 and 00003 connected to those new number 00004 and 00005 .

Is there an algorithm to implement this and what is the best solution in perl to implement such algorithm ?

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If you have (1,2),(1,3) what is the output of 1? –  Saeed Amiri Nov 24 '11 at 21:10
    
it will be 1,2,3 because 1 is connected to 2 and to 3 –  smith Nov 24 '11 at 21:17
1  
@smith Please fix the example -- there is no connection to 5 from 1,2,3, or 4. –  jwpat7 Nov 24 '11 at 23:04
    
Which database are you using? Some databases will let you do this with a single query. –  mu is too short Nov 24 '11 at 23:39
    
@mu - and others let you write a while loop to do that –  DVK Nov 25 '11 at 11:46

2 Answers 2

up vote 1 down vote accepted

It seems that you want to find a connected subtree (it's a directed graph, e.g. a tree, so you want tree algos).

This is done using tree search algorithms - DFS (Depth First Search) or BFS (Breath First Search). You can implement either one in SQL or in Perl (or in a DBI mix though it's more annoying than pure SQL or pure Perl solution).

The general BFS would be:

  • Create a queue (Hint: in Perl, queues and stacks are naturally represented by arrays)

  • Store the original node in the queue.

  • While the queue is not empty, repeat:

    • Pop the first node N off the queue.

    • Mark that node as "traversed". The easiest approach is to set a hash element in a %seen hash with a key of N to a value of 1.

    • Print N to the path

    • Find all the nodes from DB connected from N.

    • Add those nodes from the last step that have NOT yet been seen to the end of the queue.

  • End loop.

share|improve this answer
    
It is not tree obviously. –  Hynek -Pichi- Vychodil Nov 24 '11 at 22:48

One possible approach:

sub AllReachable {
    my ( $dbi, $sql, @todo ) = @_;
    my %done;
    while (@todo) {
        my $res = $dbi->selectcol_arrayref( sprintf $sql, join( ",", @todo ) );
        @done{@todo} = ();
        @todo = grep {!exists $done{$_}} @$res;
    }
    return keys %done;
}

my @result = AllReachable($dbi, 'SELECT DISTINCT to FROM table WHERE from IN (%s)', 1);
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Doesn't exactly optimize the number of SQL calls ... –  reinierpost Nov 25 '11 at 10:22
    
@reinierpost: What? Do you understand what it does? No, you don't understand it. It makes same amount of queries as length of longest path. In contrary DVK solution (without source code) does query per vertex. Guess which number of queries is less, dunno. –  Hynek -Pichi- Vychodil Nov 25 '11 at 13:55
    
@Hynek-Pichi-Vychodil - you seem to be confusing SQL calls with SQL queries. They are not the same and don't necessarily bear the same costs. Re: lack of source code - I have a deep aversion to doing work for people who didn't bother doing ANY work - if you bother looking at my answer history, I've been known to provide page-long code with several versions to people who asked a question which shows they genuinely tried and want to learn how to do better. –  DVK Nov 25 '11 at 18:41
1  
@Hynek-Pichi-Vychodil - too bad you don't know enough about tree traversal to understand that with sufficient tuning BFS takes O(M) queries where M is a tree depth. Which is precisely the # of calls that your code has, because it implements a BFS. It merely does so via a bunch of SQL calls vs. 1 call, doing the "seen" logic in Perl instead of SQL. –  DVK Nov 28 '11 at 12:14
1  
@Hynek-Pichi-Vychodil In any case, you were right: I didn't read your code carefully enough. –  reinierpost Nov 28 '11 at 15:51

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