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.

neo4j version: 2.0.1

My model consists of a subgraph for a timeline (smallest unit is hour-of-day) and a subgraph for pageIds (called categories due to legacy issues). Between a timeline node (year, month, day, hour) and a pageId (leaf) node you find many relationships of type SCORED_PI_ON with a property count. This relationship models the accesses per pageId per timeline unit. Look at an example with one hour and one pageId on http://console.neo4j.org/?id=rlq4pl . The background: I evaluate if neo4j is suitable for our web analytics applications.

Using the Java API I insert new timeline nodes (i.e. hour) and new category nodes (i.e. category1/category2/leaf). After that I want to connect a timeline node to a leaf category node with a relationship SCORED_PI_ON and the measured count . But I do not find any method to do that, for example a method node.getRelationship(targetNode, RelationshipType, Direction) . After some research I found this SO question indicating that you have to do a foreach checking every relationship. This is of linear complexity O(n) which I am afraid of for performance issues.

So I have 2 questions:

  1. Is the foreach really the only approach in the API? Am I right that this will have a negative impact on performance in relation to our dataset: There are around 8.000.000 category nodes (including 5.000.000 leaf nodes) created per year. So a year node has 5.000.000 incoming SCORED_PI_ON relationships. Looking from the other side a leaf category has a max of 10.000 outgoing SCORED_PI_ON relationships per year. Of course we want to query from both sides :)
  2. Using cypher the problem does not seem obvious. I can match both nodes (timeline and leaf category) and MERGE create the SCORED_PI_ON relationship (for details see [1] at bottom). Thinking about performance I wonder if the engine internally does a linear complexity scan to find out if the relationship is already existing between the nodes?

[1]:

MATCH (timelineRoot:SubgraphRoot:Timeline { name : 'timeline'})-[:HAS_YEAR]->
(year:Timeline:Year { value: 2014 })-[:HAS_MONTH]->
(month:Timeline:Month { value: 3 })-[:HAS_DAY]->
(day:Timeline:Day { value: 2 })-[:HAS_HOUR]->
(hour:Timeline:Hour { value: 9 })
WITH year, month, day, hour
MERGE (catRoot)-[:HAS_CHILD]->(c3:Category { name:'v1news' })
MERGE (c3)-[:HAS_CHILD]->(c4:Category { name:'stories' })
MERGE (c4)-[:HAS_CHILD]->(c5:Category { name:'ticker' })
MERGE (c5)-[:HAS_CHILD]->(c6:Category:Pixel { name:'2220335' })
MERGE (c6)-[hourpi:SCORED_PI_ON]->(hour)
ON CREATE SET hourpi.count = 2
ON MATCH SET hourpi.count = hourpi.count + 2
share|improve this question

Your Answer

 
discard

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

Browse other questions tagged or ask your own question.