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I want to see if an object is persistet in Core Data or not. For example, I have Friends in Core Data, and I identify them by firstName. I can query core data to see if "George" is known. If the result set array contains more than zero objects, I know George is there. But Core Data loads the whole thing into memory, and I actually just want to know if George is stored or not.

How would I do it the most efficient way?

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3 Answers 3

up vote 64 down vote accepted

Setup a Core Data request and, instead of actually issuing the query, do the following:

NSError *error = nil;
NSUInteger count = [managedObjectContext countForFetchRequest:request
                                                        error:&error];
if (!error) {
    return count;
} else {
  return 0;
}

In practice, the method countForFetchRequest:error: returns the number of objects a given fetch request would have returned if it had been passed to executeFetchRequest:error:.


Edit: (by Regexident)

As Josh Caswell correctly commented, the correct way to handle errors is either this:

if (count == NSNotFound) {
    NSLog(@"Error: %@", error);
    return 0;
}
return count;

or this (without error logging):

return (count != NSNotFound) ? count : 0;
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and it should be more efficient because under the hood, the SQL engine should be doing and COUNT instead of a SELECT –  Ken Aspeslagh Feb 12 '10 at 14:12
10  
Please note that the error handling here is incorrect; as is generally the case in Cocoa, you must check the direct return value (count) before checking the error object. In this case, the docs say that a return of NSNotFound signals an error. –  Josh Caswell Apr 19 '12 at 19:43
    
Massimo, how does this post answer the OP's question? The OP asked how he could determine if an object with a specific value i.e. "George" exists in the persisted store. –  Pavan Aug 16 at 17:58
    
@Pavan, the question asked how to QUICKLY determine if an object exists, not how to return the object. Now, if the returned count associated to the query is zero (and there was no error), then you are sure that the object is not stored in the persistent store. Otherwise, you know the object (at least one) is there. –  Massimo Cafaro Aug 18 at 9:56
    
@MassimoCafaro you are right. If the object did exist, whats the quickest way to retrieve that 1 object then? –  Pavan Aug 18 at 15:30

Yes, definitely there is a better method. Setup a fetch request as usual, but, instead of actually executing it, simply ask for the number of objects it would have returned if it had been passed to executeFetchRequest:error:

This can be done using

- (NSUInteger)countForFetchRequest:(NSFetchRequest *)request error:(NSError **)error;

Something like this:

- (int) numberOfContacts{

    NSFetchRequest *request = [[NSFetchRequest alloc] init];
    NSManagedObjectContext *managedObjectContext = yourManagedObjectContext;
    NSEntityDescription *entity = [NSEntityDescription entityForName:@"Contacts" inManagedObjectContext:managedObjectContext];
    [request setEntity:entity];

    NSError *error = nil;
    NSUInteger count = [managedObjectContext countForFetchRequest:request error:&error];
    [request release];

    if (!error){
        return count;
    }
    else
        return -1;

}
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This is identical to the accepted answer. –  jrturton Dec 15 '12 at 9:44
6  
Yes but i have included full method and details. –  shaikh Dec 15 '12 at 9:57
4  
good for noobs like me Faizan :) –  Allen Aug 23 '13 at 5:07

According to Core Data Documentation, you should not keep fetching to see if objects exists.

There are many situations where you may need to find existing objects (objects already saved in a store) for a set of discrete input values. A simple solution is to create a loop, then for each value in turn execute a fetch to determine whether there is a matching persisted object and so on. This pattern does not scale well. If you profile your application with this pattern, you typically find the fetch to be one of the more expensive operations in the loop (compared to just iterating over a collection of items). Even worse, this pattern turns an O(n) problem into an O(n^2) problem.

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