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Is there some easy way to pad Strings in Java?

Seems like something that should be in some StringUtil-like API, but I can't find anything that does this.

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On the issue of the apache function vs the string formatter there is little doubt that the apache function is more clear and easy to read. Wrapping the formatter in function names isn't ideal. –  Terra Caines Jul 8 '10 at 2:24

18 Answers 18

up vote 60 down vote accepted

Apache StringUtils has several methods: leftPad, rightPad, center and repeat. http://www.jdocs.com/lang/2.1/org/apache/commons/lang/StringUtils.html

[EDIT]

As others have mentioned, String.format() and the Formatter classes in the JDK are better options. Use them over the commons code.

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40  
java.util.Formatter (and String.format()) does this. Always prefer the JDK to an external library if the JDK version does the job (which it does). –  cletus Dec 23 '08 at 12:02
5  
For several reasons, I'd now prefer Guava to Apache Commons; this answer shows how to do it in Guava. –  Jonik Oct 24 '12 at 12:37
1  
@Jonik: Agreed. Guava > Commons. –  GaryF Oct 24 '12 at 22:00
1  
@glen3b: For an individual utility, like these string padding helpers, it really makes no difference which lib to use. That said, Guava is overall a more modern, cleaner and better documented lib than its counterparts in various Apache Commons projects (Commons Lang, Commons Collections, Commons IO, etc). It's also built by really smart guys (Kevin Bourrillion et al), many of whom are active at SO. Myself I ended up replacing the various Apache Commons libs with just Guava years ago, and have had no regrets. –  Jonik May 18 at 18:59
1  
@glen3b: Some good further reading at this question. –  Jonik May 18 at 19:00

Since 1.5, String.format() can be used to left/right pad a given string.

public static String padRight(String s, int n) {
     return String.format("%1$-" + n + "s", s);  
}

public static String padLeft(String s, int n) {
    return String.format("%1$" + n + "s", s);  
}

...

public static void main(String args[]) throws Exception {
 System.out.println(padRight("Howto", 20) + "*");
 System.out.println(padLeft("Howto", 20) + "*");
}
/*
  output :
     Howto               *
                    Howto*
*/
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16  
What if you need to lpad with other chars (not spaces) ? Is it still possible with String.format ? I am not able to make it work... –  Guido García Aug 11 '09 at 15:48
2  
AFAIK String.format() can't do that but it's not too difficult to code it, see rgagnon.com/javadetails/java-0448.html (2nd example) –  RealHowTo Dec 7 '09 at 14:47
48  
@Nullw0rm, if you're referring to rgagnon.com, be aware that RealHowTo is the author of rgagnon.com too, so he would be crediting himself... –  Colin Pickard Nov 12 '10 at 14:17
3  
at least on my JVM, the "#" doesn't work, the "-" is fine. (Just delete the #). This may be consistent with the formatter documentation, I dunno; it says "'#' '\u0023' Requires the output use an alternate form. The definition of the form is specified by the conversion." –  gatoatigrado Jan 2 '11 at 21:25
2  
Thanks for the awesome answer. I have a doubt though, what is the 1$ for? @leo has made a very similar answer that doesn't use 1$ and it apparently has the same effect. Does it make a difference? –  Fabrício Matté Mar 8 '13 at 19:14

Padding to 10 characters:

String.format("%10s", "foo").replace(' ', '*');
String.format("%-10s", "bar").replace(' ', '*');
String.format("%10s", "longer than 10 chars").replace(' ', '*');

output:

  *******foo
  bar*******
  longer*than*10*chars

Display '*' for characters of password:

String password = "secret123";
String padded = String.format("%"+password.length()+"s", "").replace(' ', '*');

output has the same length as the password string:

  secret123
  *********
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15  
Just as long as we all remember not to pass in a string with spaces... :D –  aboveyou00 Jan 18 '13 at 3:20

In Guava, this is easy:

Strings.padStart("string", 10, ' ');
Strings.padEnd("string", 10, ' ');
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3  
+1. In any sensible modern Java project, this is the correct solution. :-) –  Jonik Oct 24 '12 at 12:34

Besides Apache Commons, also see String.format which should be able to take care of simple padding (e.g. with spaces).

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Have a look at org.apache.commons.lang.StringUtils#rightPad(String str, int size, char padChar).

But the algorithm is very simple (pad right up to size chars):

public String pad(String str, int size, char padChar)
{
  StringBuffer padded = new StringBuffer(str);
  while (padded.length() < size)
  {
    padded.append(padChar);
  }
  return padded.toString();
}
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9  
Note that as of Java 1.5 it's worth using StringBuilder instead of StringBuffer. –  Jon Skeet Dec 23 '08 at 9:34
1  
You are right, it would be better to use if Java 5 is set. –  Arne Burmeister Dec 23 '08 at 22:00

something simple:

s="123"
s="00000000".substring(s.length())+s;
//now s="00000123"
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This took me a little while to figure out. The real key is to read that Formatter documentation.

// Get your data from wherever.
final byte[] data = getData();
// Get the digest engine.
final MessageDigest md5= MessageDigest.getInstance("MD5");
// Send your data through it.
md5.update(data);
// Parse the data as a positive BigInteger.
final BigInteger digest = new BigInteger(1,md5.digest());
// Pad the digest with blanks, 32 wide.
String hex = String.format(
    // See: http://download.oracle.com/javase/1.5.0/docs/api/java/util/Formatter.html
    // Format: %[argument_index$][flags][width]conversion
    // Conversion: 'x', 'X'  integral    The result is formatted as a hexadecimal integer
    "%1$32x",
    digest
);
// Replace the blank padding with 0s.
hex = hex.replace(" ","0");
System.out.println(hex);
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Why make the end so complicated? You could have just done String hex = String.format("%032x", digest); and had the exact same results, just without a needless replace() and having to use the $ to access specific variables (there's only one, after all.) –  ArtOfWarfare Oct 17 '12 at 17:37
    
@ArtOfWarfare fair point. Someone originally asked for padding hex values in another question, I saw that I had a link to the formatter documentation. It's complicated for completeness. –  Nthalk Mar 4 at 21:42
public static String LPad(String str, Integer length, char car) {
  return str
         + 
         String.format("%" + (length - str.length()) + "s", "")
                     .replace(" ", String.valueOf(car));
}

public static String RPad(String str, Integer length, char car) {
  return String.format("%" + (length - str.length()) + "s", "")
               .replace(" ", String.valueOf(car)) 
         +
         str;
}

LPad("Hi", 10, 'R') //gives "RRRRRRRRHi"
RPad("Hi", 10, 'R') //gives "HiRRRRRRRR"
RPad("Hi", 10, ' ') //gives "Hi        "
//etc...
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1  
Pay attention: you inverted functions names; if you run it you'll see. –  bluish Feb 10 '12 at 7:52
    
plus if the original str contains spaces then this doesn't work –  Steven Shaw Sep 27 '12 at 8:34
    
@StevenShaw If I'm not mistaken, the replace does not target the original str, so this is correct. –  mafu Jun 22 at 23:08
    
By convention you should not use a capital letter for function names. –  principal-ideal-domain yesterday

i know this thread is kind of old and the original question was for an easy solution but if it's supposed to be really fast, you should use a char array.

public static String pad(String str, int size, char padChar)
{
    if (str.length() < size)
    {
        char[] temp = new char[size];
        int i = 0;

        while (i < str.length())
        {
            temp[i] = str.charAt(i);
            i++;
        }

        while (i < size)
        {
            temp[i] = padChar;
            i++;
        }

        str = new String(temp);
    }

    return str;
}

the formatter solution is not optimal. just building the format string creates 2 new strings.

apache's solution can be improved by initializing the sb with the target size so replacing below

StringBuffer padded = new StringBuffer(str); 

with

StringBuffer padded = new StringBuffer(pad); 
padded.append(value);

would prevent the sb's internal buffer from growing.

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If the StringBuffer can't be accessed by multiple threads at once (which in this case is true), you should use a StringBuilder (in JDK1.5+) to avoid the overhead of synchronization. –  glen3b May 20 at 23:40

You can reduce the per-call overhead by retaining the padding data, rather than rebuilding it every time:

public class RightPadder {

    private int length;
    private String padding;

    public RightPadder(int length, String pad) {
        this.length = length;
        StringBuilder sb = new StringBuilder(pad);
        while (sb.length() < length) {
            sb.append(sb);
        }
        padding = sb.toString();
   }

    public String pad(String s) {
        return (s.length() < length ? s + padding : s).substring(0, length);
    }

}

As an alternative, you can make the result length a parameter to the pad(...) method. In that case do the adjustment of the hidden padding in that method instead of in the constructor.

(Hint: For extra credit, make it thread-safe! ;-)

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1  
That is thread safe, except for unsafe publication (make your fields final, as a matter of course). I think performance could be improved by doing a substring before the + which should be replaced by concat (strangely enough). –  Tom Hawtin - tackline Dec 24 '08 at 12:44

Here is another way to pad to the right:

// put the number of spaces, or any character you like, in your paddedString

String paddedString = "--------------------";

String myStringToBePadded = "I like donuts";

myStringToBePadded = myStringToBePadded + paddedString.substring(myStringToBePadded.length());

//result:
myStringToBePadded = "I like donuts-------";
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This works:

"".format("%1$-" + 9 + "s", "XXX").replaceAll(" ", "0")

It will fill your String XXX up to 9 Chars with a whitespace. After that all Whitespaces will be replaced with a 0. You can change the whitespace and the 0 to whatever you want...

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public static String padLeft(String in, int size, char padChar) {                
    if (in.length() <= size) {
        char[] temp = new char[size];
        /* Llenado Array con el padChar*/
        for(int i =0;i<size;i++){
            temp[i]= padChar;
        }
        int posIniTemp = size-in.length();
        for(int i=0;i<in.length();i++){
            temp[posIniTemp]=in.charAt(i);
            posIniTemp++;
        }            
        return new String(temp);
    }
    return "";
}
share|improve this answer

java.util.Formatter will do left and right padding. No need for odd third party dependencies (would you want to add them for something so trivial).

[I've left out the details and made this post 'community wiki' as it is not something I have a need for.]

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4  
I disagree. In any larger Java project you will typically do such a lot of String manipulation, that the increased readability and avoidance of errors is well worth using Apache Commons Lang. You all know code like someString.subString(someString.indexOf(startCharacter), someString.lastIndexOf(endCharacter)), which can easily be avoided with StringUtils. –  Bananeweizen May 30 '11 at 20:15

you can use the built in StringBuilder append() and insert() methods, for padding of variable string lengths:

AbstractStringBuilder append(CharSequence s, int start, int end) ;

For Example:

private static final String  MAX_STRING = "                    "; //20 spaces

    Set<StringBuilder> set= new HashSet<StringBuilder>();
    set.add(new StringBuilder("12345678"));
    set.add(new StringBuilder("123456789"));
    set.add(new StringBuilder("1234567811"));
    set.add(new StringBuilder("12345678123"));
    set.add(new StringBuilder("1234567812234"));
    set.add(new StringBuilder("1234567812222"));
    set.add(new StringBuilder("12345678122334"));

    for(StringBuilder padMe: set)
        padMe.append(MAX_STRING, padMe.length(), MAX_STRING.length());
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A simple solution would be:

package nl;
public class Padder {
    public static void main(String[] args) {
        String s = "123" ;
        System.out.println("#"+("     " + s).substring(s.length())+"#");
    }
}
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How is this

String is "hello" and required padding is 15 with "0" left pad

String ax="Hello";
while(ax.length() < 15) ax="0"+ax;
share|improve this answer
    
I liked this one. :) –  null Mar 28 at 7:37
2  
this one generates up to 15 new strings. –  claj Apr 14 at 8:54

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