Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I have two entities, Issue and User, which I'm using to represent data that comes to me from a server. There's a many-to-many relationship between Issues and Users, and when I get an Issue from the server the object has an array of User IDs.

Later, when I get a User from the server, I want to be able to find the issues that I've stored that have a matching ID.

I had been planning to use a transformable property to store the User IDs for each Issue. However, I've read that transformable properties aren't queryable. Is that true? If so, how do I create an array property that is queryable?

share|improve this question
up vote 3 down vote accepted

It is correct that you cannot query for entries in an array that is stored as a transformable attribute of the entity.

One possible solution would be to store the list of users IDs as a comma-separated string attribute in the Issue entity, and later search for a matching ID as described here: Form NSPredicate from string that contains id's.

A different solution would be to create the relationships from Issue to User already in the first pass, when reading and creating the issues. When you get an issue from the server with a list of user IDs, you would find or create the User objects and set the relationship.

share|improve this answer
    
The second approach would be nice, but I don't have the User objects at that point. I'll try the string serialisation approach, though - thanks for the suggestion! – Simon Mar 11 '13 at 12:12
    
@Simon: The idea with the second approach is that you just create User objects in the first pass (and perhaps set only the userID attribute). In the second pass you can update the (already existing) User objects with the full information, or create more User objects if they don't exist already. – Martin R Mar 11 '13 at 12:17
    
Ah, I see. Trouble is, we have so many – Simon Mar 11 '13 at 13:28
1  
@Simon: The idea of the second approach is not to create all users beforehand. For example, if you read an Issue with user ids 2,5,9 from the server, then you create 3 User objects and set the relationship from the Issue to these 3 Users. Then you read an Issue with user ids 1, 5, 10. The User object for id 5 exists already, so you have to create 2 User objects for ids 1 and 10, and so on. Each time you read an Issue from the server, you "find or create" the User objects for this issue, and set the relationships. – Martin R Mar 11 '13 at 15:06
1  
Exactly. You just create placeholder users for only the id's related to the issue. – Rakesh Mar 11 '13 at 15:25

Since you are using two entities with many-to-many relationship why don't you implement the relationship using core-data? i.e The usersSet (say) in Issue entity will be an NSSet and the issuesSet in User will be also an NSSet. If thats the case you could implement a predicate in the below way to easily get what you want:

(The below code assumes the to-many relationship between Issue to User is usersSet.)

User *userObjFromServer = <your user object from server>... 
NSString *userId = userObjFromServer.userId; //Whichever way you are doing this
NSPredicate *predicate = [NSPredicate predicateWithFormat:@"ANY usersSet.userId like %@",userId]; 

The queryable array you are talking about will be the relationship (only, its an NSSet).

share|improve this answer
    
Just noticed the answer by @Martin goes along the same line. The take away would be the predicate. And you don't have to worry about having so many User objects . Faulting in core-data will help you keep the memory-footprint as low as possible (i.e if you are following the second approach in his answer). – Rakesh Mar 11 '13 at 13:50
    
As I've mentioned to Martin, the problem is that there are so many users that it's not practical to load them from the server in advance. – Simon Mar 11 '13 at 15:01

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.