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As we know Java always initialises arrays upon creation. I.e. new int[1000000] always returns an array with all elements = 0. I understand that it's a must for Object arrays, but for primitive arrays (except may be Boolean) in most cases we don't care about the initial values.

Does anybody know a way to avoid this intialization?

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No, you can't avoid it. That's how it works. –  Brian Roach Dec 8 '12 at 18:15
    
I'm not sure I understand. All primitives have a default value. What are you trying to accomplish? –  mikeTheLiar Dec 8 '12 at 18:15
3  
He's basically wanting it to work like C where you basically have garbage (whatever happens to be in that memory) until you initialize it yourself. Java explicitly avoids this by initializing the memory when you allocate the array because an array is actually an object not just some contiguous memory. –  Brian Roach Dec 8 '12 at 18:18
2  
@EvgeniyDorofeev - no, it doesn't. An array in Java is an object on the heap rather than just a pointer to some memory on the stack/heap. It's .... just not the same thing. –  Brian Roach Dec 8 '12 at 18:20
6  
Also, I wouldn't be shocked if the JVM were smart enough to notice you were immediately writing over the array contents and omit the initialization. –  Louis Wasserman Dec 8 '12 at 18:22

3 Answers 3

I'm going to move this to an answer because it probably should be.

An "Array" in java is not what you think it is. It's not just a pointer to a chunk of contiguous memory on the stack or heap.

An Array in Java is an Object just like everything else (except primitives) and is on the heap. When you call new int[100000] you're creating a new object just like every other object, and it gets initialized, etc.

The JLS provides all the specific info about this:

http://docs.oracle.com/javase/specs/jls/se5.0/html/arrays.html

So, no. You can't avoid "initializing" an array. That's just not how Java works. There's simply no such thing as uninitialized heap memory; many people call that a "feature" as it prevents you from accessing uninitialized memory.

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up vote 4 down vote accepted

I've done some investigation. There is no legal way to create uninitialized array in Java. Even JNI NewXxxArray creates initialized arrays. So it is impossible to know exactly the cost of array zeroing. Nevertheless I've done some measurements:

1) 1000 byte arrays creation with different array size

        long t0 = System.currentTimeMillis();
        for(int i = 0; i < 1000; i++) {
//          byte[] a1 = new byte[1];
            byte[] a1 = new byte[1000000];
        }
        System.out.println(System.currentTimeMillis() - t0);

on my PC it gives < 1ms for byte[1] and ~500 ms for byte[1000000]. Sounds impressive to me.

2) We don't have a fast (native) method in JDK for filling arrays, Arrays.fill is too slow, so let's see at least how much 1000 copying of 1,000,000 size array takes with native System.arraycopy

    byte[] a1 = new byte[1000000];
    byte[] a2 = new byte[1000000];
    for(int i = 0; i < 1000; i++) {
        System.arraycopy(a1, 0, a2, 0, 1000000);
    }

It is 700 ms.

It gives me reasons to believe that a) creating long arrays is expensive b) it seems to be expensive because of useless initialization.

3) Let's take sun.misc.Unsafe http://www.javasourcecode.org/html/open-source/jdk/jdk-6u23/sun/misc/Unsafe.html. It is protected from external usage but not too much

    Field f = Unsafe.class.getDeclaredField("theUnsafe");
    f.setAccessible(true);
    Unsafe unsafe = (Unsafe)f.get(null);

Here is the cost of memory allocation test

    for(int i = 0; i < 1000; i++) {
        long m = u.allocateMemory(1000000);
    }

It takes < 1 ms, if you remember, for new byte[1000000] it took 500ms.

4) Unsafe has no direct methods to work with arrays. It needs to know class fields, but reflection shows no fields in an array. There is not much info about arrays internals, I guess it is JVM / platform specific. Nevertheless, it is, like any other Java Object, header + fields. On my PC/JVM it looks like

header - 8 bytes
int length - 4 bytes
long bufferAddress - 8 bytes

Now, using Unsafe, I will create byte[10], allocate a 10 byte memory buffer and use it as my array's elements:

    byte[] a = new byte[10];
    System.out.println(Arrays.toString(a));
    long mem = unsafe.allocateMemory(10);
    unsafe.putLong(a, 12, mem);
    System.out.println(Arrays.toString(a));

it prints

[0, 0, 0, 0, 0, 0, 0, 0, 0, 0]
[8, 15, -114, 24, 0, 0, 0, 0, 0, 0]

You can see thay array's data are not initialized.

Now I'll change our array length (though it still points to 10 bytes memory)

    unsafe.putInt(a, 8, 1000000);
    System.out.println(a.length);

it shows 1000000. It was just to prove that the idea works.

Now performance test. I will create an empty byte array a1, allocate a buffer of 1000000 bytes, assign this buffer to a1 an set a1.length = 10000000

    long t0 = System.currentTimeMillis();
    for(int i = 0; i < 1000; i++) {
        byte[] a1 = new byte[0];
        long mem1 = unsafe.allocateMemory(1000000);
        unsafe.putLong(a1, 12, mem);
        unsafe.putInt(a1, 8, 1000000);
    }
    System.out.println(System.currentTimeMillis() - t0);

it takes 10ms.

5) There are malloc and alloc in C++, malloc just allocates memory block , calloc also initializes it with zeroes.

cpp

...
JNIEXPORT void JNICALL Java_Test_malloc(JNIEnv *env, jobject obj, jint n) {
     malloc(n);
} 

java

private native static void malloc(int n);

for (int i = 0; i < 500; i++) {
    malloc(1000000);
}

results malloc - 78 ms; calloc - 468 ms

Conclusions

  1. It seems that Java array creation is slow because of useless element zeroing.
  2. We cannot change it, but Oracle can. No need to change anything in JLS, just add native methods to java.lang.reflect.Array like

    public static native xxx[] newUninitialziedXxxArray(int size);

for all primitive numeric types (byte - double) and char type. It could be used all over the JDK, like in java.util.Arrays

    public static int[] copyOf(int[] original, int newLength) {
        int[] copy = Array.newUninitializedIntArray(newLength);
        System.arraycopy(original, 0, copy, 0, Math.min(original.length, newLength));
        ...

or java.lang.String

   public String concat(String str) {
        ...   
        char[] buf = Array.newUninitializedCharArray(count + otherLen);
        getChars(0, count, buf, 0);
        ...
share|improve this answer

You are fighting at the wrong front here: low-level optimization of Java code is trusted upon the JIT compiler and giving this kind of degree of low-level control to Java code is, simply put, not idiomatic. String concatenation is quite a well-defined operation, making it an easy target for JIT optimization, if someone cares enough to do it.

But anyway, in OpenJDK you do have the option to allocate native memory with no initialization: sun.misc.Unsafe.allocateMemory. Obviously, this is not general Java API, but specific to one implementation.

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Right, already looking into Unsafe, played with it before and know how to circumvent security. allocateMemory hardly can help it returns a reference to an area, but I want a regular int[] Object. Used to work with C and Assembler. C offers malloc and calloc. The former does no initialization and it makes sense. Just was wondering if there is anything like that in Java (deep inside). –  Evgeniy Dorofeev Dec 8 '12 at 19:27
    
Just imagine, right now millions of JVMs are doing billions of useless array initializations (or inefficient string concatinations which could be improved by 30%) :) –  Evgeniy Dorofeev Dec 8 '12 at 19:32
3  
There is a lot of useless initializaiton in Java; on the other hand, there are no buffer overrung attacks, no null pointer dereference attacks, etc. That's why people love it. –  Marko Topolnik Dec 8 '12 at 19:34
    
@EvgeniyDorofeev: If the JIT can prove it's safe, it probably omits the initialization. Don't make assumptions about how Java actually translates to CPU instructions. –  Louis Wasserman Dec 8 '12 at 19:39
1  
@EvgeniyDorofeev Louis has certainly no intention to dispute the well-known contents of the JLS. He said that the JVM doesn't need to physically initialize an array if it can prove this will not be observed by running code. –  Marko Topolnik Dec 8 '12 at 20:20

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