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I have a graph network stored in an SQL server. The graph network ( collection of labeled, undirected and connected graphs) is stored in Vertex-Edge mapping scheme (i.e there are 2 tables..one for vertices and one for edges) :

Vertices ( graphID , vertexID, vertexLabel )

Edges ( graphID , sourceVertex , destinationVertex ,edgeLabel )

I am looking for a simple way of counting a particular subgraph in this network. For example: I would like to find how many instances of "A-B-C" are present in this network : "C-D-A-B-C-E-A-B-C-F". I have a few ideas on how this can be done in say Java or C++ ...but I have no clue how to approach this problem using SQL. any ideas?

A little background: I'm no student..this is a small project I would like to pursue. I do a lot of social media analysis (in memory) but have little experience mining graphs against an SQL database.

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1 Answer

up vote 1 down vote accepted

my idea is to create a stored procedure which input is a string like 'A-B-C' or a precreated table with vertices in proper order ('A', 'B', 'C'). So you will have a loop and step by step you should walk through the path 'A-B-C'. For this you need a temp table for vertices on current step:
1)step 0

@currentLabel = getNextVertexLabel(...) --need to decide how to do this
select 
  * 
into #v
from Vertices 
where 
  vertexLabel = @currentLabel

--we need it later
select 
  * 
into #tempV 
from #v 
where 
  0 <> 0

2)step i

@currentLabel = getNextVertexLabel(...)

insert #tempV
select
  vs.*
from #v v
join Edges e on
  e.SourceVertex = v.VertexID
  and e.graphID = v.graphID
join Vertices vs on
  e.destinationVertex = vs.VertexID
  and e.graphID = vs.graphID
where
  vs.vertexLabel = @currentLabel

truncate table #v
insert #v
select * from #tempV

truncate table #tempV

3)after loop

You result will store at #v. So the number of subgraphs will be:

select count(*) from #v
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thanks for the answer @pkuderov I will have to try this out to verify it. –  agentx Nov 8 '12 at 16:35
    
@agentx, ...so? ;) –  pkuderov Nov 16 '12 at 16:39
    
sorry for the late reply! yes..I was able to get it working but I guess at the end of the day, enumerating on graph nodes in a relational database is expensive (joins!!)...but this was a good exercise to show the limitations of a relational database in handling large graphs. –  agentx Dec 2 '12 at 21:01
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