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I search the net for answers to this problem, but unfortunately I don't think I am fluent enough in core data procedures to actually include the right combo of keywords.

I have two entities... Users and Bookmarks with a one-to-many relationship.

Users : string:firstName, string:lastname, string:iconImage with a relationship to Bookmarks - inverse

Bookmarks : string:title, string:url, string:content, image:Binary Data, order:Integer32 with a relationship to Users - inverse

My goal here is to query the bookmarks for a particular user and find the highest number for the key:order, so that when I add an new bookmark, it will be one larger than the max. I have seen the Apple example, which works and makes sense, but I need a little more. The example returns the maximum value for all records in that entity.

-(NSNumber*) getNextBookmarksOrderForUser:(NSManagedObjectID*)userID
{
    NSNumber *highOrder;
    Users *user =[self getUserByID:userID];

    if (user)
    {
        NSExpression *keyPathExpression     = [NSExpression expressionForKeyPath:@"order"];
        NSExpression *highestOrderingNumber = [NSExpression expressionForFunction:@"max:" arguments:[NSArray arrayWithObject:keyPathExpression]];
        NSExpressionDescription *expressionDescription = [[NSExpressionDescription alloc]init];
        [expressionDescription setName:@"maxOrdering"];
        [expressionDescription setExpression:highestOrderingNumber];
        [expressionDescription setExpressionResultType:NSDecimalAttributeType];

        NSEntityDescription *entity = [NSEntityDescription entityForName:@"Bookmarks" inManagedObjectContext:[_dataContext managedObjectContext]];


        NSFetchRequest *request = [[NSFetchRequest alloc]init];        
        [request setEntity:entity];
        [request setPropertiesToFetch:[NSArray arrayWithObject:expressionDescription]];
        [request setResultType:NSDictionaryResultType];


        NSError *error = nil;
        NSArray *objects = [[_dataContext managedObjectContext] executeFetchRequest:request error:&error];

        if(objects == nil) {
            // Handle the error
        }
        else {
                if ([objects count] > 0) {

                highOrder = [NSNumber numberWithInt:[[[objects objectAtIndex:0] valueForKey:@"maxOrdering"]intValue]];

            NSLog(@"Highest ordering number: %@", highOrder);               
            }   
        }        

        return highOrder;
    }

    return nil;
}

So if I have two users, one with 10 bookmark and the other with 25, the above code will always return 25. I tried adding a predicate:

NSPredicate *byUser = [NSPredicate predicateWithFormat:@"self == %@", user];
[request setPredicate:byUser];

Does anyone have any suggestions? I Know that I could return all bookmark for a user and the write the code to find my value, but I would like to do it the most efficient way.

Thank you for any help.

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I think you should use a predicate like this [NSPredicate predicateWithFormat:@"users == %@", user]; Since you against Bookmarks. I suppose that a user can have one or many bookmarks, while a bookmark is associated with a single user. –  flexaddicted Jan 6 '13 at 14:51
    
Errata: Since you query against... –  flexaddicted Jan 6 '13 at 15:16
    
Oh my, I feel like an idiot now. Thank you, that is exactly what I needed. Unfortunately, core data is a little confusing sometimes. This method is just a standard SQL query, where I was thinking in Core Data objects. Thank you again. –  jtingato Jan 6 '13 at 15:42
    
You're welcome. I added my comment as a reply. Mark it as answered if you want. –  flexaddicted Jan 6 '13 at 15:55
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1 Answer

From my comment

I think you should use a predicate like this [NSPredicate predicateWithFormat:@"users == %@", user]; Since you are querying against Bookmarks.

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