Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am working on a proof of concept for my organization using Neo4j. As an example, I've chosen to model a companies management hierarchy (who manages who, who is managed by X etc). It seems like it would work well in a graph, but I can't find any way to get the data back out of Neo4j in the way I would want to display it.

The query I need is: Tell me everyone that reports to person X, all the way down. So that means, everyone who directly reports to X and anyone who reports to them etc.

I see I can do that in Cypher, but it returns a flattened 2d result. But that isn't very helpful since it doesn't describe the management structure of the results.

It seems what I really want is a graph of the people all the way down. Can this be done without doing queries for every level of management?

I am using the C# Neo4JClient, but I am interested in any solution at this point.

share|improve this question
    
How does your cypher statement look so far? –  Michael Hunger Sep 17 '12 at 23:41
add comment

2 Answers 2

up vote 3 down vote accepted

You could return all paths to the root X of your structure.

start x=node:people(name='foo')
match path = x<-[:REPORTS_TO*]-person
return path

You can also return nodes(path) or rels(path) or use any of the expressions filter, length, extract or the predicates ALL, ANY, SINGLE, NONE on the path collection.

share|improve this answer
    
Yes, that works but it is still a table of results. It means parsing and reconstituting a graph on the client end. What I want is to just get a graph from neo4j. It seems like a letdown to express all of this data nicely in a graph but only get the results back in tabular format. –  awl Sep 20 '12 at 16:31
add comment

This is my solution for extracting trees:

Note: This solution works at my project but I had to change it for your question since we have some other unnecessary constraints.

After finding all root entities for extracting,

With entity as rootEntity

I've added these matches to the query:

match
    rootEntity-[*0..]->subEntity, 
    parentEntity-->subEntity

and this where:

where rootEntity = subEntity or (rootEntity-[*0..]->parentEntity)

then, I returned (distinct) the data as follows :

id(rootEntity), 
id(parentEntity),
id(entity),
subEntity

the rest of the solution is C#:

First some data fix is needed because NEO4J will return the root entities several times (one for each incoming relationships):

results.ForEach(
        x =>
        {
            if (x.Id == x.RootId)
                x.ParentId = 0;
        });

and distinct by Id:

results =
    results
    .GroupBy(x => x.Id)
    .Select(x => x.First())
    .ToList();

Then, we can build the tree:

    ....
    var trees = results
        .GroupBy(x => x.RootId)
        .Select(singleTreeEntities => GenerateSingleEntity(singleTreeEntities.Key, singleTreeEntities))

    return trees;
}

private Entity GenerateSingleEntity(long id, IEnumerable<Entities> treeEntities)
{
    var currEntity = treeEntities.SingleOrDefault(x => x.Id == id);

    return new Entity
    {
        Id = id,
        SomeData = currEntity.SubEntity.SomeData,
        SomeOtherData = currEntity.SubEntity.SomeOtherData,
        ChildEntities =
            treeEntities
                .Where(x => x.ParentId == id)
                .Select(x => GenerateSingleEntity(x.Id, treeEntities)))
    };
}
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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