314

How to create a sub-array from another array? Is there a method that takes the indexes from the first array such as:

methodName(object array, int start, int end)

I don't want to go over making loops and making my program suffer.

I keep getting error:

cannot find symbol method copyOfRange(int[],int,int)

This is my code:

import java.util.*;

public class testing 
{
    public static void main(String [] arg) 
    {   
        int[] src = new int[] {1, 2, 3, 4, 5}; 
        int b1[] = Arrays.copyOfRange(src, 0, 2);
    }
}
0
343

You can use

JDK > 1.5

Arrays.copyOfRange(Object[] src, int from, int to)

Javadoc

JDK <= 1.5

System.arraycopy(Object[] src, int srcStartIndex, Object[] dest, int dstStartIndex, int lengthOfCopiedIndices); 

Javadoc

2
  • 3
    I was having some issues with not having Object[]s in my Arrays.copyOfRange. Check your imports to ensure you are using java.util.Arrays. Somehow a different Arrays version got imported and I wasted 15 minutes checking JREs and JDKs for the issue. – NuclearPeon Oct 9 '13 at 21:30
  • @NuclearPeon Thank you!!! Would have taken me a long while before I figured it out myself. Eclipse automatically imported org.bouncycastle.util.Arrays. – Snackoverflow Jul 19 '17 at 12:30
142

Arrays.copyOfRange(..) was added in Java 1.6. So perhaps you don't have the latest version. If it's not possible to upgrade, look at System.arraycopy(..)

5
  • 1
    @Sami either upgrade to 1.6 or see this doc for reference download.oracle.com/javase/1.4.2/docs/api/java/lang/System.html – jmj Dec 14 '10 at 13:54
  • 4
    Which vendor is your JDK from. Sun/Oracle never released a version 4.00.28 and google couldn't find it either. – Peter Lawrey Dec 14 '10 at 14:16
  • copyOfRange nulls trailing elements if they are out of source array range instead of allocating a smaller array :( – Daneel Yaitskov Jun 26 '15 at 14:59
  • 14
    someone should add in the answer that while "start-index" is inclusive, "end-index" is exclusive – Yan King Yin Oct 9 '15 at 12:14
  • @YanKingYin you are correct--this is precisely what I was reading the comments for :) – Ben Kushigian Aug 30 '18 at 11:06
53

Use copyOfRange method from java.util.Arrays class:

int[] newArray = Arrays.copyOfRange(oldArray, startIndex, endIndex);

For more details:

Link to similar question

20

Yes, it's called System.arraycopy(Object, int, Object, int, int) .

It's still going to perform a loop somewhere though, unless this can get optimized into something like REP STOSW by the JIT (in which case the loop is inside the CPU).

int[] src = new int[] {1, 2, 3, 4, 5};
int[] dst = new int[3];

System.arraycopy(src, 1, dst, 0, 3); // Copies 2, 3, 4 into dst
0
11

JDK >= 1.8

I agree with all the answers above. There is also a nice way with Java 8 Streams:

int[] subArr = IntStream.range(startInclusive, endExclusive)
                        .map(i -> src[i])
                        .toArray();

The benefit about this is, it can be useful for many different types of "src" array and helps to improve writing pipeline operations on the stream.

Not particular about this question, but for example, if the source array was double[] and we wanted to take average() of the sub-array:

double avg = IntStream.range(startInclusive, endExclusive)
                    .mapToDouble(index -> src[index])
                    .average()
                    .getAsDouble();
8

Using Apache ArrayUtils downloadable at this link you can easy use the method

subarray(boolean[] array, int startIndexInclusive, int endIndexExclusive) 

"boolean" is only an example, there are methods for all primitives java types

3
int newArrayLength = 30; 

int[] newArray = new int[newArrayLength];

System.arrayCopy(oldArray, 0, newArray, 0, newArray.length);
2

The code is correct so I'm guessing that you are using an older JDK. The javadoc for that method says it has been there since 1.6. At the command line type:

java -version

I'm guessing that you are not running 1.6

1

I you are using java prior to version 1.6 use System.arraycopy() instead. Or upgrade your environment.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.