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Is there a way to do the following at the same time?

static final int UN = 0; // uninitialized nodes
int[] arr;

// ... code ...

arr = new int[size];
for (int i = 0; i < 5; i++) {
    arr[i] = UN;
}

Basically, I want to declare arr once I know what its size will be and initialize it to UN without having to loop. So something like this:

int[] arr = new int[size] = UN;

Is this possible?

Thanks.

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7 Answers 7

up vote 0 down vote accepted

No, not with the standard libraries. If you write your own functions, though, you can easily do so in a single statement (not instruction; those are different). Mine looks like String[][] strings = Arrayu.fill(new String[x][y], "");

Here's a link. There's some junk in there too, though; I just posted a copy of the current source directly without cleaning it up.

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This looks interesting. Does this still loop through the indices behind the scenes? –  Hristo Aug 6 '10 at 18:40
    
Of course. That's the only way it can be done. (btw: java.lang.Arrays loops through the indices too, but it also does bounds checking even when you just call Arrays.fill(arr, UN). It's kinda stupid like that.) –  naiad Aug 6 '10 at 18:44
    
Thanks for you answers. I won't use this Arrayu since I'm trying to avoid extra "stuff" and I'll resort to my for loop. But your answer is best so far... so I'll accept it. –  Hristo Aug 6 '10 at 18:50
Arrays.fill(arr, UN);
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Although you should be aware that behind the scenes, that's going to do the same loop you were trying to avoid. –  Paul Tomblin Aug 6 '10 at 18:36
    
-1 I think the point is to avoid the extra code. Also, you can't use that to do it in a single statement because it doesn't return the array. –  naiad Aug 6 '10 at 18:38

You don't need to initialize them with 0. An int defaults to 0 already.

Just

int[] array = new int[size];

is enough. It gives you an array of zeroes of the given length. If it were an Integer[], it would have been an array of nulls.

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.. thanks. I actually asked another question that this is the answer for. So thanks :) –  Hristo Aug 6 '10 at 19:26

Well, in the case of objects (or primitives with autoboxing) you can do the following:

int count = 20;
final int UN = 0;
Integer[] values = Collections.nCopies(count, UN).toArray(new Integer[count]);

The downsides are that you have to use the object forms of the primitives (since the Collections must be of objects) and a separate List will be constructed and then thrown away. This would allow you to create the array as one statement however.

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No.

Next question?

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.. Ok. Well... is it possible to initialize an array of size n in O(1)? –  Hristo Aug 6 '10 at 18:42
    
@Vuntic... In C you can do int[5] arr = 0; right? Isn't that O(1)? –  Hristo Aug 6 '10 at 18:44
    
Good point... I wasn't thinking about memory. Thanks –  Hristo Aug 6 '10 at 18:48
    
This is really a comment, not an answer to the question. Please use "add comment" to leave feedback for the author. –  Pratik Aug 21 '12 at 11:14
1  
"No" is a perfectly legitimate answer to "Is it possible". –  Paul Tomblin Aug 21 '12 at 11:17
int arr[] = { 0, 0, 0, 0, 0 };
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.. I didn't downvote you. Sorry for that. I hate it when it happens to me. But as far as your answer goes, I know that... the problem is I don't know the size, it is in a variable. –  Hristo Aug 6 '10 at 18:39
    
Thanks for telling me you didn't down vote me, but no worries. Yes, if you don't know the size, you have to initialize in a loop, unless the number you want to initialize to is zero -- as zero is the default value for int. (Not for Integer; it's defualt is null) –  tpdi Aug 6 '10 at 20:57

Oops, read your question better:

You can init an array like so

int[] arr = new int[] {UN, UN, UN, UN, UN};

But ofcourse, if you don't know the size at compile time, then you have to do the for loop. The second technique is not possible.

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Only if you know what size it's going to be, and that size will never change. –  Paul Tomblin Aug 6 '10 at 18:35
    
I don't know the size of it to begin with... so I can't do { UN, UN, UN }. I will eventually know the size but it will be in a variable –  Hristo Aug 6 '10 at 18:36

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