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I'm trying to follow the docs http://readthedocs.org/docs/neo4j-rest-client/en/latest/indices.html

I expect the index query to return a node, but it returns an "Iterable: Node" instead:

db = GraphDatabase("http://localhost:7474/db/data")
playerIndex = db.nodes.indexes.get("index1")
playerNode = db.nodes.create(player_id = "Homer")
playerIndex.add("player_id", "Homer", playerNode)
print playerIndex["player_id"]["Homer"], "\n", playerNode

prints:

<Neo4j Iterable: Node>
<Neo4j Node: http://localhost:7474/db/data/node/157>

How can I get neo4jrestclient index query results to return a Node like the 2nd line?

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2 Answers 2

up vote 3 down vote accepted

Index lookups can return more than one node so in this case, it's returning an iterator. To get the next item in the iterator, do .next():

print playerIndex["player_id"]["Homer"].next(), "\n", playerNode

See: https://github.com/versae/neo4j-rest-client/blob/master/neo4jrestclient/iterable.py

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As @espeed has pointed, call .next() will give you the next node in the index. You can also iterate over the iterator:

for node in playerIndex["player_id"]["Homer"]:
    print node, "\n", playerNode

Or just get all the results in the iterator using the slice [:]:

print playerIndex["player_id"]["Homer"][:], "\n", playerNode

The client behaves in this way because any index query always returns a list of elements, even if there is only one. So, the best weay to handle this is using an iterator with lazy load.

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impressed You guys rock! Keep up the great work! –  McPedr0 May 11 '12 at 22:15

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