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What do atomic and nonatomic mean in property declarations?

@property(nonatomic, retain) UITextField *userName;
@property(atomic, retain) UITextField *userName;
@property(retain) UITextField *userName;

What is the operational difference between these 3?

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71  
Youve must have come a long ways since asking this question mr wayne –  brianSan Dec 25 '12 at 9:34
17  
You would think, wouldn't you. –  Alex Wayne Dec 25 '12 at 22:13
2  
3  
last 2 are the same :) –  Yassine Houssni Jan 22 '13 at 8:52

14 Answers 14

up vote 978 down vote accepted

The last two are identical; "atomic" is the default behavior (note that it is not actually a keyword; it is specified only by the absence of nonatomic -- atomic was added as a keyword in recent versions of llvm/clang).

Assuming that you are @synthesizing the method implementations, atomic vs. non-atomic changes the generated code. If you are writing your own setter/getters, atomic/nonatomic/retain/assign/copy are merely advisory. (Note: @synthesize is now the default behavior in recent versions of LLVM. There is also no need to declare instance variables; they will be synthesized automatically, too, and will have an _ prepended to their name to prevent accidental direct access).

With "atomic", the synthesized setter/getter will ensure that a whole value is always returned from the getter or set by the setter, regardless of setter activity on any other thread. That is, if thread A is in the middle of the getter while thread B calls the setter, an actual viable value -- an autoreleased object, most likely -- will be returned to the caller in A.

In nonatomic, no such guarantees are made. Thus, nonatomic is considerably faster than "atomic".

What "atomic" does not do is make any guarantees about thread safety. If thread A is calling the getter simultaneously with thread B and C calling the setter with different values, thread A may get any one of the three values returned -- the one prior to any setters being called or either of the values passed into the setters in B and C. Likewise, the object may end up with the value from B or C, no way to tell.

Ensuring data integrity -- one of the primary challenges of multi-threaded programming -- is achieved by other means.

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40  
It just occured to me that if you provide data integrity, atomicity of properties is not required, as you'll only have one thread writing to a property at any one time (during which time no reads are allowed either). Am I right in thinking this? –  T . Aug 18 '09 at 16:27
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That would generally be correct. Example; if you were to manage access to a sub-graph of objects such that the sub-graph is only ever interacted with on a single thread, all properties used on that sub-graph can be nonatomic. –  bbum Aug 20 '09 at 7:17
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Just a bit of pedantry: technically, the last 2 are not identical, since there is no atomic keyword. The second-to-last one is incorrect and won't compile, whereas the last one will. –  Dave DeLong Mar 7 '11 at 23:30
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@BenFlynn Exactly. Which is largely why atomic is useless. In a properly designed system, it should be exceptionally rare to have any API that is designed to be pounded on from multiple threads at whim for this and several other reasons. –  bbum Jan 26 '12 at 18:52
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@MattDiPasquale It is a design mistake that some of us fought very hard against. –  bbum Jul 14 '13 at 16:47

This is explained in Apple's documentation, but below are some examples of what is actually happening. Note that there is no "atomic" keyword, if you do not specify "nonatomic" then the property is atomic, but specifying "atomic" explicitly will result in an error.

//@property(nonatomic, retain) UITextField *userName;
//Generates roughly

- (UITextField *) userName {
    return userName;
}

- (void) setUserName:(UITextField *)userName_ {
    [userName_ retain];
    [userName release];
    userName = userName_;
}

Now, the atomic variant is a bit more complicated:

//@property(retain) UITextField *userName;
//Generates roughly

- (UITextField *) userName {
    UITextField *retval = nil;
    @synchronized(self) {
        retval = [[userName retain] autorelease];
    }
    return retval;
}

- (void) setUserName:(UITextField *)userName_ {
    @synchronized(self) {
      [userName release];
      userName = [userName_ retain];
    }
}

Basically, the atomic version has to take a lock in order to guarantee thread safety, and also is bumping the ref count on the object (and the autorelease count to balance it) so that the object is guaranteed to exist for the caller, otherwise there is a potential race condition if another thread is setting the value, causing the ref count to drop to 0.

There are actually a large number of different variants of how these things work depending on whether the properties are scalar values or objects, and how retain, copy, readonly, nonatomic, etc interact. In general the property synthesizers just know how to do the "right thing" for all combinations.

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Not that the lock doesn't "guarantee thread safety". –  Jonathan Sterling Dec 31 '09 at 22:36
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Thread safety in the sense that concurrent accesses on multiple threads will not cause corruption due to retain/release (malloc/free) issues will using the accessors. Obviously it doesn't (and can't) guarantee safety with respect to the semantics of a particular object returned by the accessor. –  Louis Gerbarg Jan 1 '10 at 21:58
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I just noticed that about 6 months ago someone edited my answer, and replaced the code with incorrect code, I have rolled it back. For reference, the nonatomic accessor DOES NOT need to retain/autorelease its return value since it does not need to worry that another thread is tweaking the retain count. This is one of the primary efficiency gains of declaring something nonatomic. If you are going to edit someone else's answers in code, please make sure you actually know what you are doing. –  Louis Gerbarg Aug 10 '10 at 16:54
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@Louis Gerbarg: I believe your version of the (nonatomic, retain) setter will not work properly if you try to assign the same object (that is: userName == userName_) –  Florin Aug 12 '10 at 9:29
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Your code is slightly misleading; there is no guarantee on what atomic getters/setters are synchronized. Critically,@property (assign) id delegate; is not synchronized on anything (iOS SDK GCC 4.2 ARM -Os), which means there's a race between [self.delegate delegateMethod:self]; and foo.delegate = nil; self.foo = nil; [super dealloc];. See stackoverflow.com/questions/917884/… –  tc. Dec 1 '10 at 18:20

Late Responder - The syntax and semantics are already well-defined by other excellent answers to this question. Because execution and performance are not detailed well, I will add my answer.

What is the functional difference between these 3?

I'd always considered atomic as a default quite curious. At the abstraction level we work at, using atomic properties for a class as a vehicle to achieve 100% thread-safety is a corner case. For truly correct multithreaded programs, intervention by the programmer is almost certainly a requirement. Meanwhile, performance characteristics and execution have not yet been detailed in depth. Having written some heavily multithreaded programs over the years, I had been declaring my properties as nonatomic the entire time because atomic was not sensible for any purpose. During discussion of the details of atomic and nonatomic properties this question, I did some profiling encountered some curious results.

Execution

Ok. First thing I would like to clear up is that the locking implementation is implementation defined and abstracted. Louis uses @synchronized(self) in his example -- I have seen this as a common source of confusion. The implementation does not actually use @synchronized(self); it uses object level spin locks. Louis's illustration is good for a high level illustration using constructs we are all familiar with, but it's important to know it does not use @synchronized(self).

Another difference is that atomic properties will retain/release cycle your objects within the getter.

Performance

Here's the interesting part: Performance using atomic property accesses in uncontested (e.g. single-threaded) cases can be really very fast in some cases. in less than ideal cases, use of atomic accesses can cost more than 20 times the overhead of nonatomic. While the Contested case using 7 threads was 44 times slower for the 3 byte struct (2.2 GHz i7 Quad Core, x86_64). The 3 byte struct is example of a very slow property.

Interesting side note: User-defined accessors of the 3 byte struct were 52 times faster than the synthesized atomic accessors; or 84% the speed of synthesized nonatomic accessors.

Objects in contested cases can also exceed 50 times.

Due to the number of optimizations and variations in implementations, it's quite difficult to measure real world impacts in these contexts. You might often hear something like "Trust it, unless you profile and find it is a problem". Due to the abstraction level, it's actually quite difficult to measure actual impact. Gleaning actual costs from profiles can be very time consuming, and due to abstractions, quite inaccurate. As well, ARC vs MRC can make a big difference.

So let's step back, not focus on the implementation of property accesses, we'll include usual suspects like objc_msgSend, and examine some real world high level results for many calls to a NSString getter in uncontested cases (values in seconds):

  • MRC | nonatomic | manually implemented getters: 2
  • MRC | nonatomic | synthesized getter: 7
  • MRC | atomic | synthesized getter: 47
  • ARC | nonatomic | synthesized getter: 38 (note: ARC's adding ref count cycling here)
  • ARC | atomic | synthesized getter: 47

As you have probably guessed, reference count activity/cycling is a significant contributor with atomics and under ARC. You would also see greater differences in contested cases.

Although I pay close attention to performance, I still say Semantics First!. Meanwhile, performance is a low priority for many projects. However, knowing execution details and costs of technologies you use certainly doesn't hurt. You should use the right technology for your needs, purposes, and abilities. Hopefully this will save you a few hours of comparisons, and help you make a better informed decision when designing your programs.

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MRC | atomic | synthesized getter: 47 ARC | atomic | synthesized getter: 47 What makes them the same? Should't ARC have more overhead? –  SDEZero Aug 27 '12 at 15:20
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@LouisTan spin lock acquisition and retain/autorelease activity. ARC has some nice internal optimizations beyond the domain of atomic getters, btw. –  justin Aug 27 '12 at 15:37
    
So if atomic properties are bad y are they default. To increase the boilerplate code ? –  Kunal Balani Sep 17 '13 at 20:44
    
@KunalBalani my best guess: somebody thought ObjC garbage collection was the future (which was available only on OS X, and is now deprecated). under GC, the get/set implementations took less time to execute (there is no ref count operation). –  justin Sep 17 '13 at 23:48
    
In my tests: property atomic (147 ns) vs nonatomic (140 ns) - single threaded. However a setter with synchronized took 915 ns compared to the same setter without synchronized: 50 ns. –  LearnCocos2D Sep 23 '13 at 12:09

Atomic

  • Is default behavior
  • will ensure the present process is completed by the cpu, before another process access the variable
  • not fast, as it ensures the process is completed entirely

Non-Atomic

  • Is NOT default behavior
  • faster (for synthesized code, ie for variable created using @property, @synthesize )
  • not thread safe
  • may result in unexpected behavior, when two different process access the same variable at the same time
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s/process/thread/ ;-) –  DarkDust Feb 7 at 10:44

The best was to understand the difference is using following example. Suppose there is an atomic string property called "name", and if you call [self setName:@"A"] from thread A, call [self setName:@"B"] from thread B, and call [self name] from thread C, then all operation on different thread will be performed serially which means if one thread is executing setter or getter, then other threads will wait. This makes property "name" read/write safe but if another thread D calls [name release] simultaneously then this operation might produce a crash because there is no setter/getter call involved here. Which means an object is read/write safe (ATOMIC) but not thread safe as another threads can simultaneously send any type of messages to the object. Developer should ensure thread safety for such objects.

If the property "name" was nonatomic, then all threads in above example - A,B, C and D will execute simultaneously producing any unpredictable result. In case of atomic, Either one of A, B or C will execute first but D can still execute in parallel. Hope this helps.

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Easiest answer first: There's no difference between your second two examples. By default, property accessors are atomic.

Atomic accessors in a non garbage collected environment (i.e. when using retain/release/autorelease) will use a lock to ensure that another thread doesn't interfere with the correct setting/getting of the value.

See the "Performance and Threading" section of Apple's Objective-C 2.0 documentation for some more information and for other considerations when creating multi-threaded apps.

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So why would I want to specifically make something nonatomic? –  Alex Wayne Feb 26 '09 at 3:00
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Two reasons. First off, for synthesized code it generates faster (but not threadsafe code). Second, if you are writing customer accessors that are not atomic it lets you annotate for any future user that the code is not atomic when they are reading its interface, without making them implementation. –  Louis Gerbarg Feb 26 '09 at 6:34
    
I think now this is changed, now for iOS, default is non-atomic. –  Anoop Vaidya Mar 15 '13 at 9:10
    
@AnoopVaidya Do you have a link to this? –  Dogweather Mar 26 '13 at 7:48
    

I found a pretty well put explanation of atomic and non-atomic properties here. Here's some relevant text from the same:

'atomic' means it cannot be broken down. In OS/programming terms an atomic function call is one that cannot be interrupted - the entire function must be executed, and not swapped out of the CPU by the OS's usual context switching until it's complete. Just in case you didn't know: since the CPU can only do one thing at a time, the OS rotates access to the CPU to all running processes in little time-slices, to give the illusion of multitasking. The CPU scheduler can (and does) interrupt a process at any point in its execution - even in mid function call. So for actions like updating shared counter variables where two processes could try to update the variable at the same time, they must be executed 'atomically', i.e., each update action has to finish in its entirety before any other process can be swapped onto the CPU.

So I'd be guessing that atomic in this case means the attribute reader methods cannot be interrupted - in effect meaning that the variable(s) being read by the method cannot change their value half way through because some other thread/call/function gets swapped onto the CPU.

Because the atomic variables can not be interrupted, the value contained by them at any point is (thread-lock) guaranteed to be uncorrupted, although, ensuring this thread lock makes access to them slower. non-atomic variables, on the other hand, make no such guarantee but do offer the luxury of quicker access. To sum it up, go with non-atomic when you know your variables won't be accessed by multiple threads simultaneously and speed things up.

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After reading so many Articles, SO posts and made demo apps to check Variable property attributes, I decided to put all the attributes information together

  1. atomic //default
  2. nonatomic
  3. strong=retain //default
  4. weak= unsafe_unretained
  5. retain
  6. assign //default
  7. unsafe_unretained
  8. copy
  9. readonly
  10. readwrite //default

so below is the detailed article link where you can find above mentioned all attributes, that will defiantly help you. Many thanks to all the people who give best answers here!!

Variable property attributes or Modifiers in iOS

01.atomic - Atomic means only one thread access the variable(static type). - Atomic is thread safe. - but it is slow in performance - atomic is default behavior - Atomic accessors in a non garbage collected environment (i.e. when using retain/release/autorelease) will use a lock to ensure that another thread doesn't interfere with the correct setting/getting of the value. - it is not actually a keyword.

Example :

@property (retain) NSString *name;

@synthesize name;

02.nonatomic - Nonatomic means multiple thread access the variable(dynamic type). - Nonatomic is thread unsafe. - but it is fast in performance - Nonatomic is NOT default behavior,we need to add nonatomic keyword in property attribute. - it may result in unexpected behavior, when two different process (threads) access the same variable at the same time.

Example:

@property (nonatomic, retain) NSString *name;

@synthesize name;
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this link is awesome, must check! –  Kenpachi Aug 3 '13 at 2:32

Atomic = thread safety

Non-atomic = No thread safety

Thread safety:

instance varialbe is thread-safe if it behaves correctly when accessed from multiple threads, regardless of the scheduling or interleaving of the execution of those threads by the runtime environment, and with no additional synchronization or other coordination on the part of the calling code

In our context:

if a thread changes the value of the instance the changed value is available to all the threads

only one thread can change the value at a time.

Where to use atomic:

if the instance variable is gonna be accessed on multi threading environment

Implication of atomic:

not as fast as non atomic bcuz nonatomic doesn't require any watch dog work on that from runtime

Where to use non atomic:

if the instance variable is not gonna be changed by multiple threads u can use this.it improves the perfomance

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Everything you say here is correct, but the last sentence is essentially "wrong", Dura, for today's programming. It's really inconceivable you would bother to try to "improve performance" this way. (I mean, before you got within lightyears of that, you would be "not using ARC", "not using NSString because it is slow!" and so on.) To make an extreme example, it would be like saying "team, don't put any comments in the code, as it slows us down." There is no realistic development pipeline where you would want the (nonexistent) theoretical performance gains at the sake of unreliability. –  Joe Blow Jun 1 at 8:37
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@JoeBlow its a fact you can verify it here developer.apple.com/library/mac/documentation/Cocoa/Conceptual/… –  HDA Jun 1 at 13:47

Atomic guarantees that access to the property will be performed in an atomic manner. E.g. it will be thread safe, any get/set of a property on one thread must complete before another can access it.

If you imagine the following function occurring on two threads at once you can see why the results would not be pretty.

-(void) setName:(NSString*)string
{
  if (name)
  {
    [name release]; 
    // what happens if the second thread jumps in now !?
    // name may be deleted, but our 'name' variable is still set!
    name = nil;
  }

  ...
}
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It won't be thread safe. Atomicity only guarantees that you get a value that is whole -- which may not be the same as the value currently in the object. Atomicity does not generally contribute to thread safety. –  bbum Feb 26 '09 at 6:32
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That comment doesn't make a lot of sense. Can you clarify? If you look at examples on the Apple site then the atomic keyword synchronizes on the object while updating its properties. –  Andrew Grant Feb 26 '09 at 7:31
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Sure; thread safety can only be really expressed at the model level, not the individual accessor. Think of firstName/lastName, thread A retrieves firstName, thread B sets lastName, thread A retrieves lasName, thread B sets firstName. A now has a mismatched set of names; atomicity can't protect against that without introducing transaction atomicity which is a model level issue. –  bbum Jun 28 '09 at 16:42

Atomic means only one thread access the variable(static type). Atomic is thread safe but it is slow.

Nonatomic means multiple thread access the variable(dynamic type). Nonatomic is thread unsafe but it is fast.

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+1 best answer so far I read tons of pages but this is the exact point –  RDC Feb 20 '13 at 8:18

There is no such keyword "atomic"

@property(atomic, retain) UITextField *userName;

we can use the above like

@property(retain) UITextField *userName;

Getting issues if i use @property(atomic,retain)NSString *myString

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"There is such keyword", That the keyword is not required by default and even is the default value does not mean the keyword does not exist. –  Matthijn Feb 25 '13 at 14:51

The default is atomic, this means it does cost you performance whenever you use the property, but it is thread safe. What Objective-C does, is set a lock, so only the actual thread may access the variable, as long as the setter/getter is executed.

Example with MRC of a property with an ivar _internal:

[_internal lock]; //lock
id result = [[value retain] autorelease];
[_internal unlock];
return result;

So these last two are the same:

@property(atomic, retain) UITextField *userName;

@property(retain) UITextField *userName; // defaults to atomic

On the other hand does nonatomic add nothing to your code. So it is only thread safe if you code security mechanism yourself.

@property(nonatomic, retain) UITextField *userName;

The keywords doesn't have to be written as first property attribute at all.

Don't forget, this doesn't mean that the property as a whole is thread-safe. Only the method call of the setter/getter is. But if you use a setter and after that a getter at the same time with 2 different threads, it could be broken too!

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If you are using your property in multithreaded code then you would be able to see the difference b/w nonatomic & atomic attributes. Non atomic is faster than atomic & atomic is thread safe not non atomic.

"Vijayendra Tripathi" has already given an example for multithreaded environment.

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