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How can we split an array of objects? For example, I have a variety of chars like this:

['H', 'e', 'l', 'l', 'o', ' ', 'W', 'o', 'r', 'l', 'd']

I want to split the array with the spaces seen in position 6. After breaking, the collection will look like this:

Array1 = ['H', 'e', 'l', 'l', 'o']
Array2 = ['W', 'o', 'r', 'l', 'd']

I did find a post something like this over here, but that is not in java or Kotlin.

I know I could have done it this way:

String str = TextUtils.join(",", arr);

String[] splittedString = str.split(" ");

But, I want another way if it is possible. Using this .split method takes up a lot of memory and about 30-40 milliseconds on large arrays.

How can I do this with java or Kotlin?

11
  • Not useful @azro. I might not know what the array contains in its value. I want to split it with a space as u can see in the example given May 18 at 5:56
  • No @azro. I didn't solve my problem. Why duplicated it? May 18 at 5:56
  • If the original array contains characters only, then you could just join the original array into a string, split it by space and then split the parts again into their characters. It remains unclear what the actual use case is and what the return type of a split method should be (List<List<Char>>?)
    – Stuck
    May 18 at 6:04
  • Good choice. But, I have at least a 5000 elements in my array. Converting and splitting will surely take some time @Stuck May 18 at 6:05
  • 1
    an array is a very raw structure, very few things can be done on it, so there will no short solutoin
    – azro
    May 18 at 6:22

5 Answers 5

4

A simple solution is joining the original array into a string, split by space and then split again into the characters (here in kotlin):

arr.joinToString().split(" ").map{ it.split() }

This is not optimized but still in O(n) (linear complexity). It benefits from readability which most often should be preferred whereas performance should be addressed if this is critical to your task at hand.

4
  • what is that split the second time? May 18 at 6:20
  • 1
    the first split separates the joined string by space which results in array -parts that contain multiple characters. The second split then splits those parts again into the characters.
    – Stuck
    May 18 at 6:23
  • 1
    Try joinToString then. I updated the answer.
    – Stuck
    May 18 at 6:26
  • this one does not seem to work. The previous one was doing the job. This given me an error in the IDE. See this error May 18 at 9:51
1

Did it in Java for fun. Not very concise though. I cant seem to be able to do it using Streams properly.

public static void main(String[] args) {
        char[] chars = {'H', 'e', 'l', 'l', 'o', ' ', 'W', 'o', 'r', 'l', 'd'};
        char[][] char2d;

        String[] tokens = String.valueOf(chars).split(" ");
        char2d = new char[tokens.length][];
        for (int i=0; i< tokens.length; i++) {
            char2d[i] = tokens[i].toCharArray();
        }

        for (int i=0; i< char2d.length; i++){
            System.out.println(Arrays.toString(char2d[i]));
        }
    }

Output:

[H, e, l, l, o]
[W, o, r, l, d]

Managed to replicate it with streams as follows:

char[][] char2d2 = Arrays.stream(tokens).map(String::toCharArray).toArray(char[][]::new);
for (int i=0; i< char2d2.length; i++){
    System.out.println(Arrays.toString(char2d2[i]));
}

Gives the same output as above.

0

I assume a generic array with elements that does have a proper implementation of Object::equals; for a mere array of char, the suggested solutions based on the String operations are the most effective implementations.

Try this:

final Element [] input = …
final Element split = …
final List<Element[]> output = new ArrayList<>();

var start = 0;
var end = 0;
while( end < input.length )
{
  if( input [end].equals( split ) )
  {
    output.add( Arrays.copyOfRange( input( start, end ) ) );
    start = end + 1;
  }
  ++end;
}
if( start < end ) output.add( Arrays.copyOfRange( input( start, end ) ) );
7
  • Your answer is a bit weird. It uses java somewhere and Kotlin somewhere. Also, my IDE is complaining about that May 18 at 9:53
  • 3
    @Sambhav.K – I am using pure Java, but Java 17 …
    – tquadrat
    May 18 at 11:44
  • Oh. I am not aware of java 17. I though that var and val are in ktx. Not in java. So, was a bit confused. And, those 3 dots in a row in the top 3 lines if u see, what are those? I have only seen them in method params May 18 at 15:54
  • @Sambhav.K – Oh, the ellipsis in my code sample … they are just indicating that I was to lazy to provide a sample for the array to split, and for the element that marks the "split" (in the sample with the character, this was the blank).
    – tquadrat
    May 18 at 16:33
  • that split is space -> ' ' right? May 18 at 16:33
0

Here is one way to do it with just an extra ArrayList and StringBuilder, no converting the whole input to a String.

String[] splitOnSpaces(char[] chars) {
    List<String> strings = new ArrayList<>();
    StringBuilder word = new StringBuilder();
    for (int i = 0; i < chars.length; ) {
        while (i < chars.length && chars[i] == ' ') {
            ++i;
        }
        while (i < chars.length && chars[i] != ' ') {
            word.append(chars[i++]);
        }
        if (word.length() > 0) {
            strings.add(word.toString());
            word.setLength(0);
        }
    }
    return strings.toArray(String[]::new);
}

It could be even more concise if you allow single statements to be on the same line as if or while statements.

String[] splitOnSpaces(char[] chars) {
    List<String> strings = new ArrayList<>();
    StringBuilder word = new StringBuilder();
    for (int i = 0; i < chars.length; ) {
        while (i < chars.length && chars[i] == ' ') ++i;
        while (i < chars.length && chars[i] != ' ') word.append(chars[i++]);
        if (word.length() > 0) strings.add(word.toString());
        word.setLength(0);
    }
    return strings.toArray(String[]::new);
}
-1

Converting the array to a String and splitting it in Java:

    final String[] array = { "H", "e", "l", "l", "o", " ", "W", "o", "r", "l", "d" };
    final String[] arr = String.join("", array).split(" ");
    final String[] subArray1 = arr[0].split("");
    final String[] subArray2 = arr[1].split("");

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