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Why is i++ not atomic in Java?

To get a bit deeper in Java I tried to count how often the loop in threads are executed.

So I used a

private static int total = 0;

in the main class.

I have two threads.

  • Thread 1: Prints System.out.println("Hello from Thread 1!");
  • Thread 2: Prints System.out.println("Hello from Thread 2!");

And I count the lines printed by thread 1 and thread 2. But the lines of thread 1 + lines of thread 2 don't match the total number of lines printed out.

Here is my code:

import java.util.concurrent.ExecutorService;
import java.util.concurrent.Executors;
import java.util.logging.Level;
import java.util.logging.Logger;

public class Test {

    private static int total = 0;
    private static int countT1 = 0;
    private static int countT2 = 0;
    private boolean run = true;

    public Test() {
        ExecutorService newCachedThreadPool = Executors.newCachedThreadPool();
        newCachedThreadPool.execute(t1);
        newCachedThreadPool.execute(t2);
        try {
            Thread.sleep(1000);
        }
        catch (InterruptedException ex) {
            Logger.getLogger(Test.class.getName()).log(Level.SEVERE, null, ex);
        }
        run = false;
        try {
            Thread.sleep(1000);
        }
        catch (InterruptedException ex) {
            Logger.getLogger(Test.class.getName()).log(Level.SEVERE, null, ex);
        }
        System.out.println((countT1 + countT2 + " == " + total));
    }

    private Runnable t1 = new Runnable() {
        @Override
        public void run() {
            while (run) {
                total++;
                countT1++;
                System.out.println("Hello #" + countT1 + " from Thread 2! Total hello: " + total);
            }
        }
    };

    private Runnable t2 = new Runnable() {
        @Override
        public void run() {
            while (run) {
                total++;
                countT2++;
                System.out.println("Hello #" + countT2 + " from Thread 2! Total hello: " + total);
            }
        }
    };

    public static void main(String[] args) {
        new Test();
    }
}
share|improve this question
13  
Why don't you try with AtomicInteger? –  Braj Aug 6 '14 at 18:56
5  
1  
the JVM has an iinc operation for incrementing integers, but that only works for local variables, where concurrency is not a concern. For fields, the compiler generates read-modify-write commands separately. –  Silly Freak Aug 6 '14 at 21:24
14  
Why would you even expect it to be atomic? –  Hot Licks Aug 6 '14 at 21:55
1  
Even on hardware that implements an "increment storage location" instruction, there's no guarantee that that's thread-safe. Just because an operation can be represented as a single operator says nothing about it's thread-safety. –  Hot Licks Aug 7 '14 at 1:51

9 Answers 9

up vote 69 down vote accepted

i++ is probably not atomic in Java because atomicity is a special requirement which is not present in the majority of the uses of i++. That requirement has a significant overhead: there is a large cost in making an increment operation atomic; it involves synchronization at both the software and hardware levels that need not be present in an ordinary increment.

You could make the argument that i++ should have been designed and documented as specifically performing an atomic increment, so that a non-atomic increment is performed using i = i + 1. However, this would break the "cultural compatibility" between Java, and C and C++. As well, it would take away a convenient notation which programmers familiar with C-like languages take for granted, giving it a special meaning that applies only in limited circumstances.

Basic C or C++ code like for (i = 0; i < LIMIT; i++) would translate into Java as for (i = 0; i < LIMIT; i = i + 1); because it would be inappropriate to use the atomic i++. What's worse, programmers coming from C or other C-like languages to Java would use i++ anyway, resulting in unnecessary use of atomic instructions.

Even at the machine instruction set level, an increment type operation is usually not atomic for performance reasons. In x86, a special instruction "lock prefix" must be used to make the inc instruction atomic: for the same reasons as above. If inc were always atomic, it would never be used when a non-atomic inc is required; programmers and compilers would generate code that loads, adds 1 and stores, because it would be way faster.

In some instruction set architectures, there is no atomic inc or perhaps no inc at all; to do an atomic inc on MIPS, you have to write a software loop which uses the ll and sc: load-linked, and store-conditional. Load-linked reads the word, and store-conditional stores the new value if the word has not changed, or else it fails (which is detected and causes a re-try).

share|improve this answer
1  
as java has no pointers, incrementing local variables is inherently thread save, so with loops the problem mostly wouldn't be so bad. your point about least surprise stands, of course. also, as it is, i = i + 1 would be a translation for ++i, not i++ –  Silly Freak Aug 6 '14 at 22:19
16  
The first word of the question is "why". As of now, this is the only answer to address the issue of "why". The other answers really just re-state the question. So +1. –  David Wallace Aug 7 '14 at 1:44
1  
It might be worth noting that an atomicity guaranty would not solve the visibility issue for updates of non-volatile fields. So unless you will treat every field as implicitly volatile once one thread has used the ++ operator on it, such an atomicity guaranty would not solve concurrent update issues. So why potentially wasting performance for something if it doesn’t solve the problem. –  Holger Aug 7 '14 at 10:49
1  
@DavidWallace don't you mean ++? ;) –  Dan Hlavenka Aug 14 '14 at 23:33

i++ involves two operations :

  1. read the current value of i
  2. increment the value and assign it to i

When two threads perform i++ on the same variable at the same time, they may both get the same current value of i, and then increment and set it to i+1, so you'll get a single incrementation instead of two.

Example :

int i = 5;
Thread 1 : i++;
           // reads value 5
Thread 2 : i++;
           // reads value 5
Thread 1 : // increments i to 6
Thread 2 : // increments i to 6
           // i == 6 instead of 7
share|improve this answer
    
(Even if i++ was atomic, it would not be well-defined/thread-safe behavior.) –  user2864740 Aug 6 '14 at 19:00
12  
+1, but "1. A, 2. B and C" sounds like three operations, not two. :) –  yshavit Aug 6 '14 at 19:10
2  
Note that even if the operation were implemented with a single machine instruction that incremented a storage location in place, there is no guarantee it would be thread-safe. The machine still needs to fetch the value, increment it, and store it back, plus there may be multiple cache copies of that storage location. –  Hot Licks Aug 7 '14 at 1:54
2  
@Aquarelle - If two processors execute the same operation against the same storage location simultaneously, and there is no "reserve" broadcast on the location, then they will almost certainly interfere and produce bogus results. Yes, it is possible for this operation to be "safe", but it takes special effort, even at the hardware level. –  Hot Licks Aug 7 '14 at 12:02
4  
But I think the question was "Why" and not "What happens". –  phresnel Aug 8 '14 at 7:17

The important thing is the JLS (Java Language Specification) rather than how various implementations of the JVM may or may not have implemented a certain feature of the language. The JLS defines the ++ postfix operator in clause 15.14.2 which says i.a. "the value 1 is added to the value of the variable and the sum is stored back into the variable". Nowhere does it mention or hint at multithreading or atomicity. For these the JLS provides volatile and synchronized. Additionally, there is the package java.util.concurrent.atomic (see http://docs.oracle.com/javase/7/docs/api/java/util/concurrent/atomic/package-summary.html)

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Why is i++ not atomic in Java?

Let's break the increment operation into multiple statements:

Thread 1 & 2 :

  1. Fetch value of total from memory
  2. Add 1 to the value
  3. Write back to the memory

If there is no synchronization then let's say Thread one has read the value 3 and incremented it to 4, but has not written it back. At this point, the context switch happens. Thread two reads the value 3, increments it and the context switch happens. Though both threads have incremented the total value, it will still be 4 - race condition.

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2  
I don't get how this should be an answer to the question. A language can define any feature as atomic, be it increments or unicorns. You just exemplify a consequence of not being atomic. –  phresnel Aug 7 '14 at 14:54
    
Yes a language can define any feature as atomic but as far as java is considered increment operator(which is the question posted by OP) is not atomic and my answer states the reasons. –  Aniket Thakur Aug 7 '14 at 16:29
1  
(sorry for my harsh tone in first comment) But then, the reason seems to be "because if it would be atomic, then there would be no race conditions". I.e., it sounds as if a race condition is desirable. –  phresnel Aug 7 '14 at 16:40
    
@phresnel the overhead introduced to keep an increment atomic is huge and rarely desired, keeping the operation cheap and as a result non atomic is desirable most of the time. –  josefx Aug 8 '14 at 6:00
4  
@josefx: Note that I am not questioning the facts, but the reasoning in this answer. It basically says "i++ is not atomic in Java because of the race conditions it has", which is like saying "a car has no airbag because of the crashes that can happen" or "you get no knife with your currywurst-order because the wurst may need to be cut". Thus, I don't think this is an answer. The question was not "What does i++ do?" or "What is the consequence of i++ not being synced?". –  phresnel Aug 8 '14 at 7:09

i++ is a statement which simply involves 3 operations:

  1. Read current value
  2. Write new value
  3. Store new value

These three operations are not meant to be executed in one step, in other words i++ is not a compound operation. As a result all sorts of things can go wrong when more than one threads are involved in a single but non-compound operation.

As an example imagine this scenario:

Time 1:

Thread A fetches i
Thread B fetches i

Time 2:

Thread A overwrites i with a new value say -foo-
Thread B overwrites i with a new value say -bar-
Thread B stores -bar- in i

// At this time thread B seems to be more 'active'. Not only does it overwrite 
// its local copy of i but also makes it in time to store -bar- back to 
// 'main' memory (i)

Time 3:

Thread A attempts to store -foo- in memory effectively overwriting the -bar- 
value (in i) which was just stored by thread B in Time 2.

Thread B has nothing to do here. Its work was done by Time 2. However it was 
all for nothing as -bar- was eventually overwritten by another thread.

And there you have it. A race condition.


That's why i++ is not atomic. If it was, none of this would have happened and each fetch-update-store would happen atomically. That's exactly what AtomicInteger is for and in your case it would probably fit right in.

P.S.

An excellent book covering all of those issues and then some is this: Java Concurrency in Practice

share|improve this answer
1  
Hmm. A language can define any feature as atomic, be it increments or unicorns. You just exemplify a consequence of not being atomic. –  phresnel Aug 7 '14 at 14:55
    
@phresnel Exactly. But I also point out that it's not a single operation which by extension implies that the computational cost for turning multiple such operations into atomic ones is much more expensive which in turn -partially- justifies why i++ is not atomic. –  Konos5 Aug 7 '14 at 15:20
1  
While I get your point, your answer is a bit confusing to the learning. I see an example, and a conclusion that says "because of the situation in the example"; imho this is an incomplete reasoning :( –  phresnel Aug 7 '14 at 15:23
1  
@phresnel Maybe not the most pedagogical answer but it's the best I can currently offer. Hopefully it will help people and not confuse them. Thanks for critisism however. I 'll try to be more precise in my future posts. –  Konos5 Aug 7 '14 at 15:30
1  
Never mind; I really appreciate the effort put into it and the example itself is really nicely executed :) –  phresnel Aug 7 '14 at 15:32

If the operation i++ would be atomic you wouldn't have the chance to read the value from it. This is exactly what you want to do using i++ (instead of using ++i).

For example look at the following code:

public static void main(final String[] args) {
    int i = 0;
    System.out.println(i++);
}

In this case we expect the output to be: 0 (because we post increment, e.g. first read, then update)

This is one of the reasons the operation can't be atomic, because you need to read the value (and do something with it) and then update the value.

The other important reason is that doing something atomically usually takes more time because of locking. It would be silly to have all the operations on primitives take a little bit longer for the rare cases when people want to have atomic operations. That is why they've added AtomicInteger and other atomic classes to the language.

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1  
This is misleading. You have to separate execution and getting the result, otherwise you couldn't get values from any atomic operation. –  phresnel Aug 7 '14 at 14:56
    
No it isn't, that is why Java's AtomicInteger has a get(), getAndIncrement(), getAndDecrement(), incrementAndGet(), decrementAndGet() etc. –  Roy van Rijn Aug 7 '14 at 18:56
1  
And the Java-language could have defined i++ to be expanded to i.getAndIncrement(). Such expanding isn't new. E.g., lambdas in C++ are expanded to anonymous class definitions in C++. –  phresnel Aug 7 '14 at 20:19

There are two steps: 1.fetch i from memory 2.set i+1 to memory so there are two steps, so it's not atomic operation. When thread1 executes i++, and thread executes i++, the final value of may be i=i+1.

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In the JVM, an increment involves a read and a write, so it's not atomic.

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Concurrency (the Thread class and such) is an added feature in v1.0 of Java. i++ was added in the beta before that, and as such is it still more than likely in its (more or less) original implementation.

It is up to the programmer to synchronize variables. Check out Oracle's tutorial on this.

Edit: To clarify, i++ is a well defined procedure that predates Java, and as such the designers of Java decided to keep the original functionality of that procedure.

The ++ operator was defined in B (1969) which predates java and threading by just a tad.

share|improve this answer
    
-1 "public class Thread ... Since: JDK1.0" Source: docs.oracle.com/javase/7/docs/api/index.html?java/lang/… –  Silly Freak Aug 6 '14 at 21:33
    
The version doesn't matter so much as the fact that it was still implemented before the Thread class and was not changed because of it, but I've edited my answer to please you. –  TheBat Aug 6 '14 at 21:37
5  
What matters is that your claim "it was still implemented before the Thread class" is not backed by sources. i++ not being atomic is a design decision, not an oversight in a growing system. –  Silly Freak Aug 6 '14 at 21:40
    
Lol that's cute. i++ was defined well before Threads, simply because there were languages that existed before Java. The creators of Java used those other languages as a base instead of redefining a well accepted procedure. Where did I ever say it was an oversight? –  TheBat Aug 7 '14 at 15:16
    
@SillyFreak Here's some sources that show how old ++ is: en.wikipedia.org/wiki/Increment_and_decrement_operators en.wikipedia.org/wiki/B_(programming_language) –  TheBat Aug 7 '14 at 15:22

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