How to split the string "Thequickbrownfoxjumps" to substrings of equal size in Java. Eg. "Thequickbrownfoxjumps" of 4 equal size should give the output.

["Theq","uick","brow","nfox","jump","s"]

Similar Question:

Split string into equal-length substrings in Scala

  • 3
    What did you try? Why did that not work? – Thilo Sep 21 '10 at 12:18
  • 2
    Do you need to use a regex for this? Just asking because of the regex tag... – Tim Pietzcker Sep 21 '10 at 12:19
  • @Thilo link he posted is for Scala, he is asking about same in Java – Jaydeep Patel Sep 21 '10 at 12:20
  • @Thilo:I was asking what how to do it in java ,like the answer given for scala. – Emil Sep 21 '10 at 12:27

16 Answers 16

up vote 183 down vote accepted

Here's the regex one-liner version:

System.out.println(Arrays.toString(
    "Thequickbrownfoxjumps".split("(?<=\\G.{4})")
));

\G is a zero-width assertion that matches the position where the previous match ended. If there was no previous match, it matches the beginning of the input, the same as \A. The enclosing lookbehind matches the position that's four characters along from the end of the last match.

Both lookbehind and \G are advanced regex features, not supported by all flavors. Furthermore, \G is not implemented consistently across the flavors that do support it. This trick will work (for example) in Java, Perl, .NET and JGSoft, but not in PHP (PCRE), Ruby 1.9+ or TextMate (both Oniguruma). JavaScript's /y (sticky flag) isn't as flexible as \G, and couldn't be used this way even if JS did support lookbehind.

I should mention that I don't necessarily recommend this solution if you have other options. The non-regex solutions in the other answers may be longer, but they're also self-documenting; this one's just about the opposite of that. ;)

Also, this doesn't work in Android, which doesn't support the use of \G in lookbehinds.

  • 1
    Yup, that's what I was looking for. (+1) – Sean Patrick Floyd Sep 21 '10 at 15:36
  • 2
    In PHP 5.2.4 works following code: return preg_split('/(?<=\G.{'.$len.'})/u', $str,-1,PREG_SPLIT_NO_EMPTY); – Igor Mar 23 '12 at 14:50
  • 5
    For the record, using String.substring() instead of a regex, while requiring a few extra lines of code, will run somewhere on the order of 5x faster... – drewmoore Sep 23 '14 at 14:17
  • 2
    In Java this does not work for a string with newlines. It will only check up to the first newline, and if that newline happens to be before the split-size, then the string will not be split. Or have I missed something? – joensson Nov 11 '14 at 22:58
  • 4
    For the sake of completeness: splitting text over multilines needs a prefixed (?s) in the regex: (?s)(?<=\\G.{4}). – bobbel Mar 29 '16 at 10:26

Well, it's fairly easy to do this by brute force:

public static List<String> splitEqually(String text, int size) {
    // Give the list the right capacity to start with. You could use an array
    // instead if you wanted.
    List<String> ret = new ArrayList<String>((text.length() + size - 1) / size);

    for (int start = 0; start < text.length(); start += size) {
        ret.add(text.substring(start, Math.min(text.length(), start + size)));
    }
    return ret;
}

I don't think it's really worth using a regex for this.

EDIT: My reasoning for not using a regex:

  • This doesn't use any of the real pattern matching of regexes. It's just counting.
  • I suspect the above will be more efficient, although in most cases it won't matter
  • If you need to use variable sizes in different places, you've either got repetition or a helper function to build the regex itself based on a parameter - ick.
  • The regex provided in another answer firstly didn't compile (invalid escaping), and then didn't work. My code worked first time. That's more a testament to the usability of regexes vs plain code, IMO.
  • 6
    @Emil: Actually, you didn't ask for a regex. It's in the tags, but nothing in the question itself asks for a regex. You put this method in one place, and then you can split the string in just one very readable statement anywhere in your code. – Jon Skeet Sep 21 '10 at 12:31
  • 3
    Emil this is not what a regex is for. Period. – Chris Sep 21 '10 at 12:43
  • 3
    @Emil: If you want a one-liner for splitting the string, I'd recommend Guava's Splitter.fixedLength(4) as suggested by seanizer. – ColinD Sep 21 '10 at 13:43
  • 2
    @Jay:come-on you need not be that sarcastic.I'm sure it can be done using regex in just one-line.A fixed length sub-string is also a pattern.What do you say about this answer. stackoverflow.com/questions/3760152/… . – Emil Sep 21 '10 at 15:16
  • 4
    @Emil: I didn't intend that to be rude, just whimsical. The serious part of my point was that while yes, I'm sure you could come up with a Regex to do this -- I see Alan Moore has one that he claims works -- it is cryptic and therefore difficult for a later programmer to understand and maintain. A substring solution can be intuitive and readable. See Jon Skeet's 4th bullet: I agree with that 100%. – Jay Sep 21 '10 at 18:53

This is very easy with Google Guava:

for(final String token :
    Splitter
        .fixedLength(4)
        .split("Thequickbrownfoxjumps")){
    System.out.println(token);
}

Output:

Theq
uick
brow
nfox
jump
s

Or if you need the result as an array, you can use this code:

String[] tokens =
    Iterables.toArray(
        Splitter
            .fixedLength(4)
            .split("Thequickbrownfoxjumps"),
        String.class
    );

Reference:

Note: Splitter construction is shown inline above, but since Splitters are immutable and reusable, it's a good practice to store them in constants:

private static final Splitter FOUR_LETTERS = Splitter.fixedLength(4);

// more code

for(final String token : FOUR_LETTERS.split("Thequickbrownfoxjumps")){
    System.out.println(token);
}
  • Thanks for the post(For making me aware of guava library method).But i'll have to accept the regex answer stackoverflow.com/questions/3760152/… since it doesn't require any 3rd party library and a one-liner. – Emil Sep 21 '10 at 15:31
  • 1
    Man this is really useful, thanks! – javamonkey79 Oct 19 '10 at 22:41
  • 1
    Including hundreds of KB of library code just to perform this simple task is almost certainly not the right thing. – Jeffrey Blattman May 4 '16 at 22:46
  • @JeffreyBlattman including Guava just for this is probably overkill, true. But I use it as a general-purpose library in all my Java code anyway, so why not use this one additional piece of functionality – Sean Patrick Floyd Jan 26 '17 at 14:38
  • any way to join back with a separator? – Aquarius Power May 2 '17 at 5:49

If you're using Google's guava general-purpose libraries (and quite honestly, any new Java project probably should be), this is insanely trivial with the Splitter class:

for (String substring : Splitter.fixedLength(4).split(inputString)) {
    doSomethingWith(substring);
}

and that's it. Easy as!

public static String[] split(String src, int len) {
    String[] result = new String[(int)Math.ceil((double)src.length()/(double)len)];
    for (int i=0; i<result.length; i++)
        result[i] = src.substring(i*len, Math.min(src.length(), (i+1)*len));
    return result;
}
  • Since src.length() and len are both ints, your call ceiling isn't accomplishing what you want--check out how some of the other responses are doing it: (src.length() + len - 1) / len – Michael Brewer-Davis Sep 21 '10 at 13:24
  • @Michael: Good point. I didn't test it with strings of non-multiple lengths. It's fixed now. – Saul Sep 21 '10 at 13:50
public String[] splitInParts(String s, int partLength)
{
    int len = s.length();

    // Number of parts
    int nparts = (len + partLength - 1) / partLength;
    String parts[] = new String[nparts];

    // Break into parts
    int offset= 0;
    int i = 0;
    while (i < nparts)
    {
        parts[i] = s.substring(offset, Math.min(offset + partLength, len));
        offset += partLength;
        i++;
    }

    return parts;
}
  • 4
    Out of interest, do you have something against for loops? – Jon Skeet Sep 21 '10 at 12:31
  • A for loop is indeed a more 'natural' choice use for this :-) Thanks for pointing this out. – Grodriguez Sep 21 '10 at 12:36

You can use substring from String.class (handling exceptions) or from Apache lang commons (it handles exceptions for you)

static String   substring(String str, int start, int end) 

Put it inside a loop and you are good to go.

  • What's wrong with the substring method in the standard String class? – Grodriguez Sep 21 '10 at 12:26
  • The commons version avoids exceptions (out of bounds and such) – Thilo Sep 21 '10 at 12:27
  • 6
    I see; I would say I prefer to 'avoid exceptions' by controlling the parameters in the calling code instead. – Grodriguez Sep 21 '10 at 12:37

Here is a one liner implementation using Java8 streams:

String input = "Thequickbrownfoxjumps";
final AtomicInteger atomicInteger = new AtomicInteger(0);
Collection<String> result = input.chars()
                                    .mapToObj(c -> String.valueOf((char)c) )
                                    .collect(Collectors.groupingBy(c -> atomicInteger.getAndIncrement() / 4
                                                                ,Collectors.joining()))
                                    .values();

It gives the following output:

[Theq, uick, brow, nfox, jump, s]

I'd rather this simple solution:

String content = "Thequickbrownfoxjumps";
while(content.length() > 4) {
    System.out.println(content.substring(0, 4));
    content = content.substring(4);
}
System.out.println(content);
  • Don't do this! String is immutable so your code needs to copy the whole remaining string every 4 characters. Your snippet therefore takes quadratic rather than linear time in the size of the String. – Tobias Sep 1 '16 at 14:59
  • @Tobias: Even if String was mutable, this snippet does the mentioned redundant copy, except there be complex compile processes concerning it. The only reason for using this snippet is code simplicity. – Cheetah Coder Sep 21 '16 at 5:46
  • Did you change your code since you first posted it? The latest version doesn't actually make copies - substring() runs efficiently (constant time, at least on old versions of Java); it keeps a reference to the entire string's char[] (at least on old versions of Java), but that's fine in this case since you're keeping all the characters. So the latest code that you have here is actually okay (modulo that your code prints an empty line if content starts as the empty string, which may not be what one intends). – Tobias Sep 25 '16 at 22:12
  • @Tobias: I don't remember any change. – Cheetah Coder Dec 17 '16 at 6:46

In case you want to split the string equally backwards, i.e. from right to left, for example, to split 1010001111 to [10, 1000, 1111], here's the code:

/**
 * @param s         the string to be split
 * @param subLen    length of the equal-length substrings.
 * @param backwards true if the splitting is from right to left, false otherwise
 * @return an array of equal-length substrings
 * @throws ArithmeticException: / by zero when subLen == 0
 */
public static String[] split(String s, int subLen, boolean backwards) {
    assert s != null;
    int groups = s.length() % subLen == 0 ? s.length() / subLen : s.length() / subLen + 1;
    String[] strs = new String[groups];
    if (backwards) {
        for (int i = 0; i < groups; i++) {
            int beginIndex = s.length() - subLen * (i + 1);
            int endIndex = beginIndex + subLen;
            if (beginIndex < 0)
                beginIndex = 0;
            strs[groups - i - 1] = s.substring(beginIndex, endIndex);
        }
    } else {
        for (int i = 0; i < groups; i++) {
            int beginIndex = subLen * i;
            int endIndex = beginIndex + subLen;
            if (endIndex > s.length())
                endIndex = s.length();
            strs[i] = s.substring(beginIndex, endIndex);
        }
    }
    return strs;
}

I asked @Alan Moore in a comment to the accepted solution how strings with newlines could be handled. He suggested using DOTALL.

Using his suggestion I created a small sample of how that works:

public void regexDotAllExample() throws UnsupportedEncodingException {
    final String input = "The\nquick\nbrown\r\nfox\rjumps";
    final String regex = "(?<=\\G.{4})";

    Pattern splitByLengthPattern;
    String[] split;

    splitByLengthPattern = Pattern.compile(regex);
    split = splitByLengthPattern.split(input);
    System.out.println("---- Without DOTALL ----");
    for (int i = 0; i < split.length; i++) {
        byte[] s = split[i].getBytes("utf-8");
        System.out.println("[Idx: "+i+", length: "+s.length+"] - " + s);
    }
    /* Output is a single entry longer than the desired split size:
    ---- Without DOTALL ----
    [Idx: 0, length: 26] - [B@17cdc4a5
     */


    //DOTALL suggested in Alan Moores comment on SO: https://stackoverflow.com/a/3761521/1237974
    splitByLengthPattern = Pattern.compile(regex, Pattern.DOTALL);
    split = splitByLengthPattern.split(input);
    System.out.println("---- With DOTALL ----");
    for (int i = 0; i < split.length; i++) {
        byte[] s = split[i].getBytes("utf-8");
        System.out.println("[Idx: "+i+", length: "+s.length+"] - " + s);
    }
    /* Output is as desired 7 entries with each entry having a max length of 4:
    ---- With DOTALL ----
    [Idx: 0, length: 4] - [B@77b22abc
    [Idx: 1, length: 4] - [B@5213da08
    [Idx: 2, length: 4] - [B@154f6d51
    [Idx: 3, length: 4] - [B@1191ebc5
    [Idx: 4, length: 4] - [B@30ddb86
    [Idx: 5, length: 4] - [B@2c73bfb
    [Idx: 6, length: 2] - [B@6632dd29
     */

}

But I like @Jon Skeets solution in https://stackoverflow.com/a/3760193/1237974 also. For maintainability in larger projects where not everyone are equally experienced in Regular expressions I would probably use Jons solution.

Another brute force solution could be,

    String input = "thequickbrownfoxjumps";
    int n = input.length()/4;
    String[] num = new String[n];

    for(int i = 0, x=0, y=4; i<n; i++){
    num[i]  = input.substring(x,y);
    x += 4;
    y += 4;
    System.out.println(num[i]);
    }

Where the code just steps through the string with substrings

    import static java.lang.System.exit;
   import java.util.Scanner;
   import Java.util.Arrays.*;


 public class string123 {

public static void main(String[] args) {


  Scanner sc=new Scanner(System.in);
    System.out.println("Enter String");
    String r=sc.nextLine();
    String[] s=new String[10];
    int len=r.length();
       System.out.println("Enter length Of Sub-string");
    int l=sc.nextInt();
    int last;
    int f=0;
    for(int i=0;;i++){
        last=(f+l);
            if((last)>=len) last=len;
        s[i]=r.substring(f,last);
     // System.out.println(s[i]);

      if (last==len)break;
       f=(f+l);
    } 
    System.out.print(Arrays.tostring(s));
    }}

Result

 Enter String
 Thequickbrownfoxjumps
 Enter length Of Sub-string
 4

 ["Theq","uick","brow","nfox","jump","s"]
@Test
public void regexSplit() {
    String source = "Thequickbrownfoxjumps";
    // define matcher, any char, min length 1, max length 4
    Matcher matcher = Pattern.compile(".{1,4}").matcher(source);
    List<String> result = new ArrayList<>();
    while (matcher.find()) {
        result.add(source.substring(matcher.start(), matcher.end()));
    }
    String[] expected = {"Theq", "uick", "brow", "nfox", "jump", "s"};
    assertArrayEquals(result.toArray(), expected);
}

Here is my version based on RegEx and Java 8 streams. It's worth to mention that Matcher.results() method is available since Java 9.

Test included.

public static List<String> splitString(String input, int splitSize) {
    Matcher matcher = Pattern.compile("(?:(.{" + splitSize + "}))+?").matcher(input);
    return matcher.results().map(MatchResult::group).collect(Collectors.toList());
}

@Test
public void shouldSplitStringToEqualLengthParts() {
    String anyValidString = "Split me equally!";
    String[] expectedTokens2 = {"Sp", "li", "t ", "me", " e", "qu", "al", "ly"};
    String[] expectedTokens3 = {"Spl", "it ", "me ", "equ", "all"};

    Assert.assertArrayEquals(expectedTokens2, splitString(anyValidString, 2).toArray());
    Assert.assertArrayEquals(expectedTokens3, splitString(anyValidString, 3).toArray());
}

i use the following java 8 solution:

public static List<String> splitString(final String string, final int chunkSize) {
  final int numberOfChunks = (string.length() + chunkSize - 1) / chunkSize;
  return IntStream.range(0, numberOfChunks)
                  .mapToObj(index -> string.substring(index * chunkSize, Math.min((index + 1) * chunkSize, string.length())))
                  .collect(toList());
}

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