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've got a Core Data entity called "Card" which has a relationship "info" to another entity, "CardInfo". It's a one-to-many relationship: each card can have multiple CardInfos, but each CardInfo only has one Card.

The CardInfo entity just has two strings, "cardKey" and "cardValue". The object is to allow for arbitrary input of data for cards. Say, you wanted to know what color a card was. Then you added a CardInfo to each Card that had a cardKey of "color" and a cardValue of "black" or "red".

My general question is: what's the best way to get the set of Cards where each Card has a CardInfo where the CardKey and CardValue has specific values. For example: all Cards with relationship to CardInfo cardKey='color' and cardValue='red'? Ideally, I return an NSSet of all the appropriate Card * objects.

share|improve this question

2 Answers 2

up vote 2 down vote accepted

The loop at the end is not needed. A simple KVC call will clean it up nicely.

NSFetchRequest *fetchRequest = [[NSFetchRequest alloc] init];
[fetchRequest setEntity:[NSEntityDescription entityForName:@"CardInfo" inManagedObjectContext:self.managedObjectContext]];
[fetchRequest setPredicate:[NSPredicate predicateWithFormat:@"cardKey = %@ AND cardValue = %@", thisKey, thisValue]];

NSError *error = nil;
NSArray *items = [[self managedObjectContext executeFetchRequest:fetchRequest error:&error];
[fetchRequest release], fetchRequest = nil;
NSAssert1(error == nil, @"Error fetching objects: %@\n%@", [error localizedDescription], [error userInfo]);

return [items valueForKeyPath:@"@distinctUnionOfObjects.card"];
share|improve this answer
    
To back a set actually required: return [NSSet setWithArray:[items valueForKeyPath:@"@distinctUnionOfObjects.card"]]; Thanks! –  Shannon A. Aug 26 '10 at 17:21

This is the answer that I came up with, but the two-part process seems inefficient to me. I figure there must be a more elegant way to do this with key-values or something

-(NSSet *)cardsWithCardKey:(NSString *)thisKey cardValue:(NSString *)thisValue {

    NSFetchRequest *fetchRequest = [[NSFetchRequest alloc] init];
    NSEntityDescription *entity = [NSEntityDescription entityForName:@"CardInfo" 
        inManagedObjectContext:self.managedObjectContext];

    [fetchRequest setEntity:entity];

    NSPredicate *predicate = [NSPredicate
                              predicateWithFormat:@"(cardKey=%@) AND (cardValue=%@)",
                              thisKey,thisValue];

    [fetchRequest setPredicate:predicate];

    NSError *error;
    NSArray *items = [self.managedObjectContext 
        executeFetchRequest:fetchRequest error:&error];
    [fetchRequest release];

    NSMutableSet *cardSet = [NSMutableSet setWithCapacity:[items count]];
    for (int i = 0 ; i < [items count] ; i++) {
        if ([[items objectAtIndex:i] card] != nil) {
            [cardSet addObject:[[items objectAtIndex:i] card]];
        }
    }
    return [NSSet setWithSet:cardSet];
}
share|improve this answer

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.