Questions tagged [nsmanagedobjectcontext]

An instance of NSManagedObjectContext represents a single “object space”. Its primary responsibility is to manage a collection of managed objects. These objects form a group of related model objects that represent an internally consistent view of one or more persistent stores. A single managed object instance exists in one and only one context, but multiple copies of an object can exist in different contexts. Available in iOS 3.0 and later in CoreData.

An instance of NSManagedObjectContext represents a single “object space” or scratch pad in an application. Its primary responsibility is to manage a collection of managed objects. These objects form a group of related model objects that represent an internally consistent view of one or more persistent stores. A single managed object instance exists in one and only one context, but multiple copies of an object can exist in different contexts. Thus object uniquing is scoped to a particular context.

Life-cycle Management The context is a powerful object with a central role in the life-cycle of managed objects, with responsibilities from life-cycle management (including faulting) to validation, inverse relationship handling, and undo/redo. Through a context you can retrieve or “fetch” objects from a persistent store, make changes to those objects, and then either discard the changes or—again through the context—commit them back to the persistent store. The context is responsible for watching for changes in its objects and maintains an undo manager so you can have finer-grained control over undo and redo. You can insert new objects and delete ones you have fetched, and commit these modifications to the persistent store.

All objects fetched from an external store are registered in a context together with a global identifier (an instance of NSManagedObjectID) that’s used to uniquely identify each object to the external store.

Parent Store Managed object contexts have a parent store from which they retrieve data representing managed objects and through which they commit changes to managed objects.

Prior to OS X v10.7 and iOS v5.0, the parent store is always a persistent store coordinator. In OS X v10.7 and later and iOS v5.0 and later, the parent store may be another managed object context. Ultimately the root of a context’s ancestry must be a persistent store coordinator. The coordinator provides the managed object model and dispatches requests to the various persistent stores containing the data.

If a context’s parent store is another managed object context, fetch and save operations are mediated by the parent context instead of a coordinator. This pattern has a number of usage scenarios, including:

Performing background operations on a second thread or queue.

Managing discardable edits, such as in an inspector window or view.

As the first scenario implies, a parent context can service requests from children on different threads. You cannot, therefore, use parent contexts created with the thread confinement type (see Concurrency).

When you save changes in a context, the changes are only committed “one store up.” If you save a child context, changes are pushed to its parent. Changes are not saved to the persistent store until the root context is saved. (A root managed object context is one whose parent context is nil.) In addition, a parent does not pull changes from children before it saves. You must save a child context if you want ultimately to commit the changes.

Notifications A context posts notifications at various points—see NSManagedObjectContextObjectsDidChangeNotification for example. Typically, you should register to receive these notifications only from known contexts:

[[NSNotificationCenter defaultCenter] addObserver:self
                                      selector:@selector(<#Selector name#>)
                                      name:NSManagedObjectContextDidSaveNotification
                                      object:<#A managed object context#>];

Several system frameworks use Core Data internally. If you register to receive these notifications from all contexts (by passing nil as the object parameter to a method such as addObserver:selector:name:object:), then you may receive unexpected notifications that are difficult to handle.

Concurrency Core Data uses thread (or serialized queue) confinement to protect managed objects and managed object contexts (see Concurrency with Core Data). A consequence of this is that a context assumes the default owner is the thread or queue that allocated it—this is determined by the thread that calls its init method. You should not, therefore, initialize a context on one thread then pass it to a different thread. Instead, you should pass a reference to a persistent store coordinator and have the receiving thread/queue create a new context derived from that. If you use NSOperation, you must create the context in main (for a serial queue) or start (for a concurrent queue).

In OS X v10.7 and later and iOS v5.0 and later, when you create a context you can specify the concurrency pattern with which you will use it using initWithConcurrencyType:. When you create a managed object context using initWithConcurrencyType:, you have three options for its thread (queue) association

Confinement (NSConfinementConcurrencyType)

For backwards compatibility, this is the default. You promise that context will not be used by any thread other than the one on which you created it. In general, to make the behavior explicit you’re encouraged to use one of the other types instead.

You can only use this concurrency type if the managed object context’s parent store is a persistent store coordinator.

Private queue (NSPrivateQueueConcurrencyType)

The context creates and manages a private queue.

Main queue (NSMainQueueConcurrencyType)

The context is associated with the main queue, and as such is tied into the application’s event loop, but it is otherwise similar to a private queue-based context. You use this queue type for contexts linked to controllers and UI objects that are required to be used only on the main thread.

If you use contexts using the confinement pattern, you send the contexts messages directly; it’s up to you to ensure that you send the messages from the right queue.

You use contexts using the queue-based concurrency types in conjunction with performBlock: and performBlockAndWait:. You group “standard” messages to send to the context within a block to pass to one of these methods. There are two exceptions:

Setter methods on queue-based managed object contexts are thread-safe. You can invoke these methods directly on any thread.

If your code is executing on the main thread, you can invoke methods on the main queue style contexts directly instead of using the block based API.

performBlock: and performBlockAndWait: ensure the block operations are executed on the queue specified for the context. The performBlock: method returns immediately and the context executes the block methods on its own thread. With the performBlockAndWait: method, the context still executes the block methods on its own thread, but the method doesn’t return until the block is executed.

It’s important to appreciate that blocks are executed as a distinct body of work. As soon as your block ends, anyone else can enqueue another block, undo changes, reset the context, and so on. Thus blocks may be quite large, and typically end by invoking save:.

__block NSError *error;
__block BOOL savedOK = NO;
[myMOC performBlockAndWait:^{
    // Do lots of things with the context.
    savedOK = [myMOC save:&error];
}];

You can also perform other operations, such as:

NSFetchRequest *fr = [NSFetchRequest fetchRequestWithEntityName:@"Entity"];
__block NSUInteger rCount = 0;

[context performBlockAndWait:^() {
    NSError *error;
    rCount = [context countForFetchRequest:fr error:&error];
    if (rCount == NSNotFound) {
        // Handle the error.
    } }];
NSLog(@"Retrieved %d items", (int)rCount);

Subclassing Notes You are strongly discouraged from subclassing NSManagedObjectContext. The change tracking and undo management mechanisms are highly optimized and hence intricate and delicate. Interposing your own additional logic that might impact processPendingChanges can have unforeseen consequences. In situations such as store migration, Core Data will create instances of NSManagedObjectContext for its own use. Under these circumstances, you cannot rely on any features of your custom subclass. Any NSManagedObject subclass must always be fully compatible with NSManagedObjectContext (that is, it cannot rely on features of a subclass of NSManagedObjectContext).

1384 questions
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NSManagedObjectContext Locked

I have two threads operating in my app. In the Main thread I update values of keys in entities or gets some rows from Core Data. In the background thread I download data from a server. But some times during update/processing on core data on…
Ritika
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NSFetchedResultsController not firing delegate method after merging update from background thread

I have an NSFetchedResultsController and a few operations that inserts and updates managed objects on separate threads via NSOperationQueue. The FRC looks like this, note that I have set the cache to nil: [NSFetchedResultsController…
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NSManagedObject Faulted

I have an NSManagedObject that has some of its properties initialized at the start of the program. When I refer to this object later, it appears to be faulted, and the properties are not accessible. I'm not sure what I need to do. This is related to…
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where to implement Core Data?

I´m completely new to core data programming. i just try to find out where the best place for implementing the core data code would be. i´ve done the apple tutorial Locations and it worked well. now i try to transfer that to my current project what…
rockstarberlin
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Obtaining the NSManagedObjectContext

Well I was reading the Core Data tutorial for iOS on Apple's website and I don't quite get it. How do I actually obtain the NSManagedObjectContext so I can use it to access to my database?
Samuli Lehtonen
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Core data: Serious application error

I'm finishing my Core Data app ans I started my final testing. Everyfing works fine, except one thing, that happens randomly and I can't reproduce it. Here is the log (with NSZombieEnabled): 2011-07-03 20:27:53.144 MYAPP[1882:707] -[__NSCFType…
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Correct approach for safely saving a Core Data managed object context on a background thread?

The Apple "Concurrency with Core Data" documentation states the following when discussing using core data with background threads. Saving in a Background Thread is Error-prone Asynchronous queues and threads do not prevent an application from …
lucasweb
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When and how often to call processPendingChanges to ensure graph integrity

I have entities that are managed by Core Data and have several cases where, within a single method, I set some attribute values that will result graph changes that Core Data will enforce and perform additional actions that (logically) depend on…
orome
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Swift - how to pass managed object context to different view controllers

I put the core data stack in its own file as shown below. I read that using dependency injection is the best way to pass the managed object context. So in each of a handful of VCs, I declare the following property: var managedObjectContext:…
squarehippo10
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Defining context for Core Data with AppDelegate as a singleton

I’m trying to get my head around NSManagedObjectContext for Core Data. Xcode 10.1 provides a fair amount of boilerplate if the Core Data checkbox is selected when creating a new project. But I find it a bit confusing wrt how the current context is…
tkhelm
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Delete all core data records does not set hasChanges in managedContext

I am new to coreData, and I have a problem: My app executes the following 3 successive core data functions: let managedContext = persistentContainer.viewContext deleteAllCDRecords(managedContext: managedContext, in: "CDShoppingItem") …
Reinhard Männer
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IOS 10+ Persistence Store Container set parent context to main context

Following a perfect core data stack, we follow this hierarchy. For IOS 10+, Apple introduced NSPersistentContainer. In which Apple described the way for getting background context by let backgroundcontext =…
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How to properly delete a "temporary" NSManagedObject upon the application quitting

I create a temporary NSManagedObject and associate it with the main NSManagedObjectContext. I need be able to treat it as a fully functioning object (perform fetch requests, etc) inside the context and thus cannot create it without an associated…
user487890
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How to share an entity between two different core data models

I'm wondering how to share an entity between two different core data models? For example, I have a "Universe" model which describes a "WorldData" with its "CountryData". And in another hand, I have a "Population" model which describes a "HumanData"…
croustibapt
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NSManagedObjectContext's propagatesDeletesAtEndOfEvent set to false causes error on save

I have a pair of Core Data Entities of One-to-Many relationship. Department <-(optional) (delete rule: Cascade) (optional)->> Item Item <-(optional) (delete rule: Nullify) (optional)->> Department Item is a tree node-like entity, which also has a…
LShi
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