96

I did check the other questions; this question has its focus on solving this particular question the most efficient way.

Sometimes you want to create a new string with a specified length, and with a default character filling the entire string.

ie, it would be cool if you could do new String(10, '*') and create a new String from there, with a length of 10 characters all having a *.

Because such a constructor does not exist, and you cannot extend from String, you have either to create a wrapper class or a method to do this for you.

At this moment I am using this:

protected String getStringWithLengthAndFilledWithCharacter(int length, char charToFill) {
    char[] array = new char[length];
    int pos = 0;
    while (pos < length) {
        array[pos] = charToFill;
        pos++;
    }
    return new String(array);
}

It still lacks any checking (ie, when length is 0 it will not work). I am constructing the array first because I believe it is faster than using string concatination or using a StringBuffer to do so.

Anyone else has a better sollution?

0

17 Answers 17

132

Apache Commons Lang (probably useful enough to be on the classpath of any non-trivial project) has StringUtils.repeat():

String filled = StringUtils.repeat("*", 10);

Easy!

3
  • 3
    This should be the topvoted answer. Thanks ;)
    – lmo
    Oct 21 '15 at 12:56
  • 4
    This is the best answer. The current top answer uses leftpad in an unintuitive way to do something it wasn't really intended to do, which makes it harder to understand what's supposed to happen. This answer self-documents better.
    – Benjamin
    Aug 1 '16 at 17:04
  • 1
    @Benjamin i agree and marked this as the 'real' answer :) May 7 '18 at 10:27
106

Simply use the StringUtils class from apache commons lang project. You have a leftPad method:

StringUtils.leftPad("foobar", 10, '*'); // Returns "****foobar"
6
  • 3
    +1 - that's exactly what he was looking for (aka 'cool'). For the exact same behaviour, but that's obvious, do: StringUtils.leftPad("", 10, '*'); Nov 26 '09 at 10:47
  • 3
    +1 nice solution, though I wouldn't add a jar to my project just for that.
    – abyx
    Nov 26 '09 at 10:53
  • Thanks. Yes that looks like a more suitable way to use it. Luckily I am already using this jar, so i could use this straight away. Nov 26 '09 at 10:58
  • 10
    Or use repeat(), which doesn't require the empty string at the start and is arguably clearer in intent (see my answer)
    – Cowan
    Nov 26 '09 at 11:03
  • 1
    Over 300kb for this jar?? Yuck, no thanks. Not for a mobile app. No need for bloatware.
    – AndroidDev
    Jul 19 '13 at 13:06
60

No need to do the loop, and using just standard Java library classes:

protected String getStringWithLengthAndFilledWithCharacter(int length, char charToFill) {
  if (length > 0) {
    char[] array = new char[length];
    Arrays.fill(array, charToFill);
    return new String(array);
  }
  return "";
}

As you can see, I also added suitable code for the length == 0 case.

5
  • won't the code in Arrays.fill() contain a loop...
    – NomeN
    Nov 26 '09 at 10:47
  • 4
    Maybe, but 1) it's likely to be faster and 2) that's code you don't need to write.
    – abyx
    Nov 26 '09 at 10:52
  • Good find. Yes Arrays.fill does a for loop itself. But fundementally this is better. Nov 26 '09 at 10:53
  • 1
    You should throw an IllegalArgumentException if (length < 0). (Even java.lang.NegativeArraySizeException is better.) Nov 26 '09 at 12:23
  • Great solution as it doesn't add new dependencies. +1 May 12 at 14:49
40

Some possible solutions.

This creates a String with length-times '0' filled and replaces then the '0' with the charToFill (old school).

String s = String.format("%0" + length + "d", 0).replace('0', charToFill);

This creates a List containing length-times Strings with charToFill and then joining the List into a String.

String s = String.join("", Collections.nCopies(length, String.valueOf(charToFill)));

This creates a unlimited java8 Stream with Strings with charToFill, limits the output to length and collects the results with a String joiner (new school).

String s = Stream.generate(() -> String.valueOf(charToFill)).limit(length).collect(Collectors.joining());
25

In Java 11, you have repeat:

String s = " ";
s = s.repeat(1);

(Although at the time of writing still subject to change)

1
  • 2
    This should be the new top answer.
    – KevinO
    Nov 13 '19 at 16:04
22
char[] chars = new char[10];
Arrays.fill(chars, '*');
String text = new String(chars);
7

Solution using Google Guava

String filled = Strings.repeat("*", 10);
7

To improve performance you could have a single predefined sting if you know the max length like:

String template = "####################################";

And then simply perform a substring once you know the length.

1
  • 2
    +1: I just read on another post that substring creates a String that just uses the same char[] of the original String. So it's an O(1) operation (no loop) and it saves memory (if that is a real issue) Nov 26 '09 at 12:20
5
public static String fillString(int count,char c) {
    StringBuilder sb = new StringBuilder( count );
    for( int i=0; i<count; i++ ) {
        sb.append( c ); 
    }
    return sb.toString();
}

What is wrong?

4

using Dollar is simple:

String filled = $("=").repeat(10).toString(); // produces "=========="
1
  • 3
    There are 9 = in the comment.
    – True Soft
    Aug 2 '10 at 12:46
4

Solution using Google Guava, since I prefer it to Apache Commons-Lang:

/**
 * Returns a String with exactly the given length composed entirely of
 * the given character.
 * @param length the length of the returned string
 * @param c the character to fill the String with
 */
public static String stringOfLength(final int length, final char c)
{
    return Strings.padEnd("", length, c);
}
1
  • See javacavaj's answer for a more concise solution using guava.
    – Wienczny
    Sep 25 '17 at 9:06
4

The above is fine. Do you mind if I ask you a question - Is this causing you a problem? It seams to me you are optimizing before you know if you need to.

Now for my over engineered solution. In many (thou not all) cases you can use CharSequence instead of a String.

public class OneCharSequence implements CharSequence {
  private final char value;
  private final int length;
  public OneCharSequence(final char value, final int length) {
    this.value = value;
    this.length = length;
  }
  public char   charAt(int index)  {
     if(index < length) return value;
     throw new IndexOutOfBoundsException();
  }
  public int length() {
    return length;
  }
  public CharSequence subSequence(int start, int end) {
     return new OneCharSequence(value, (end-start));
  }
  public String toString() {
    char[] array = new char[length];
    Arrays.fill(array, value);
    return new String(array);
  }
}
2

One extra note: it seems that all public ways of creating a new String instance involves necessarily the copy of whatever buffer you are working with, be it a char[], a StringBuffer or a StringBuilder. From the String javadoc (and is repeated in the respective toString methods from the other classes):

The contents of the character array are copied; subsequent modification of the character array does not affect the newly created string.

So you'll end up having a possibly big memory copy operation after the "fast filling" of the array. The only solution that may avoid this issue is the one from @mlk, if you can manage working directly with the proposed CharSequence implementation (what may be the case).

PS: I would post this as a comment but I don't have enough reputation to do that yet.

1

Try this Using the substring(int start, int end); method

String myLongString = "abcdefghij";
if (myLongString .length() >= 10)
String shortStr = myLongString.substring(0, 5)+ "...";

this will return abcde.

1

Mi solution :

  pw = "1321";
    if (pw.length() < 16){
      for(int x = pw.length() ; x < 16 ; x++){
        pw  += "*";
      }
    }

The output :

1321************
0

Try this jobber

String stringy =null;
 byte[] buffer =  new byte[100000];
            for (int i = 0; i < buffer.length; i++) {
            buffer[i] =0;

        }
            stringy =StringUtils.toAsciiString(buffer);
-2

You can use a while loop like this:

String text = "Hello";
while (text.length() < 10) { text += "*"; }
System.out.println(text);

Will give you:

Hello*****

Or get the same result with a custom method:

    public static String extendString(String text, String symbol, Integer len) {
        while (text.length() < len) { text += symbol; }
        return text;
    }

Then just call:

extendString("Hello", "*", 10)

It may also be a good idea to set a length check to prevent infinite loop.

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