1

Assumed that i have 2 trees in the graph:

(:TreeA)-->({caption:'b1'})-->({caption:'c1'})-->({caption:'d1'})
        +->({caption:'b2'})-->({caption:'c2'})
        +->({caption:'b3'})
        +->({caption:'b4'})-->({caption:'c4'})-->({caption:'d4'})
                           |                  +->({caption:'d5'})
                           +->({caption:'c6'})
                           +->({caption:'c7'})-->({caption:'d7'})

(:TreeB)-->({caption:'b4'})-->({caption:'c4'})

Is there any way to compare if TreeB is a subpath of TreeA?

Thank much

1 Answer 1

1

Isomorphism problems are tricky, but since we're working with trees we can cheat a bit.

If we can match on all paths from root to end node, and produce a textual representation of those paths by extracting and joining the node captions, and we do that for both :TreeA and :TreeB, then we can check that for all of :TreeB's path representations, that they occur (form the prefix) of at least one of :TreeA's path representations.

// first get text representation of paths from :TreeA
MATCH p = (:TreeA)-[*]->(end)
WHERE NOT (end)-->()
WITH [node in tail(nodes(p)) | node.caption] as captionPath
WITH reduce(path='', caption in captionPath | path + ',' + caption) as pathText
WITH collect(pathText) as aPaths

// then get text representation of paths from :TreeB
MATCH p = (:TreeB)-[*]->(end)
WHERE NOT (end)-->()
WITH aPaths, [node in tail(nodes(p)) | node.caption] as captionPath
WITH aPaths, reduce(path='', caption in captionPath | path + ',' + caption) as pathText
WITH aPaths, collect(pathText) as bPaths

// ensure all text representations of :TreeB occur in at least one of the paths from :TreeA
RETURN all(path in bPaths WHERE any(aPath in aPaths WHERE aPath STARTS WITH path))

Note that if you're using APOC Procedures, you can replace usage of the reduce function:

reduce(path='', caption in captionPath | path + ',' + caption) as pathText

with the join() function:

apoc.text.join(captionPath, ',') as pathText

0

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.