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Is there a way of building SPARQL queries within SPARQL itself, like putting a CONSTRUCT in a WHERE? Can such queries include variables?

EDIT 1

Specifically, I have a named graph. Each node has a type (except, of course, the type nodes). I want to find the node pattern in a larger named graph, or the default graph, based solely on node types and predicates. An exact subgraph triples match won't work here, because node names will likely differ between subgraph and larger graph.

I may just give up trying to do this completely with SPARQL. I can query the subgraph for all its triples with a CONSTRUCT, store the RDF result in a python string, and replace all the node names with distinct, corresponding variable names. Then I can insert this python string into the WHERE of a query, and get all occurrences of the structure of the subgraph within the larger graph, regardless of node names matching.

EDIT 2

It would be nice if there were no overlap between instances of the subgraph found in the large graph. That is, when finding a dyad subgraph, one node linked to another, the large graph might be four nodes so linked together, in a line. With overlap would identify three dyads, while no overlap would only identify two.

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Depending on what you're trying to do, you might be able to use some of the same nested queries that we discussed in one of your other questions. –  Joshua Taylor Jun 28 '13 at 13:51
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Without more details, it's hard to tell exactly what you're trying to do. Can you give an approximate (probably non-working) example of the sort of thing you might like to be able to do? I.e., show the sort of query you'd like to be able to write, even if it's not well-formed SPARQL. –  Joshua Taylor Jun 28 '13 at 13:51
    
It's similar to what you had answered before. I will edit. –  NargothBond Jun 28 '13 at 15:33
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Thanks for the edit! Is this a correct understanding: given a graph with some content, e.g., X rdf:type T1 ; likes Y . Y rdf:type T2, you want to build a query that will search for things of type T1 that like things of type T2. Is this correct? –  Joshua Taylor Jun 28 '13 at 15:58
    
Yes, that's it exactly. –  NargothBond Jun 28 '13 at 16:58

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