312

I've seen questions on how to prefix zeros here in SO. But not the other way!

Can you guys suggest me how to remove the leading zeros in alphanumeric text? Are there any built-in APIs or do I need to write a method to trim the leading zeros?

Example:

01234 converts to 1234
0001234a converts to 1234a
001234-a converts to 1234-a
101234 remains as 101234
2509398 remains as 2509398
123z remains as 123z
000002829839 converts to 2829839

21 Answers 21

770

Regex is the best tool for the job; what it should be depends on the problem specification. The following removes leading zeroes, but leaves one if necessary (i.e. it wouldn't just turn "0" to a blank string).

s.replaceFirst("^0+(?!$)", "")

The ^ anchor will make sure that the 0+ being matched is at the beginning of the input. The (?!$) negative lookahead ensures that not the entire string will be matched.

Test harness:

String[] in = {
    "01234",         // "[1234]"
    "0001234a",      // "[1234a]"
    "101234",        // "[101234]"
    "000002829839",  // "[2829839]"
    "0",             // "[0]"
    "0000000",       // "[0]"
    "0000009",       // "[9]"
    "000000z",       // "[z]"
    "000000.z",      // "[.z]"
};
for (String s : in) {
    System.out.println("[" + s.replaceFirst("^0+(?!$)", "") + "]");
}

See also

11
  • 38
    Thank you. And you have tested ruthlessly ;) Great !! +1 for the tests.
    – jai
    May 10, 2010 at 9:17
  • 6
    @Greg: This question is about Java, not JavaScript. Java SE has had the method String.replaceFirst() since version 1.4.
    – Jonik
    May 22, 2012 at 10:37
  • 7
    adding trim() to s.replaceFirst("^0+(?!$)", "") (ie. s.trim().replaceFirst("^0+(?!$)", "") will help in removing padded spaces!
    – AVA
    Mar 12, 2014 at 11:05
  • 2
    isn't regex a bit expensive for such a simple task?
    – demongolem
    Jul 24, 2015 at 15:18
  • 20
    This does not work in Kotlin, you need to be explicit about the Regex .replaceFirst("^0+(?!$)".toRegex(), "")
    – mkabatek
    Sep 28, 2018 at 21:27
173

You can use the StringUtils class from Apache Commons Lang like this:

StringUtils.stripStart(yourString,"0");
3
  • 1
    Does this have a problem with "0" alone? @Hamilton Rodrigues
    – orpqK
    Feb 17, 2015 at 17:26
  • 4
    If using this on "0" alone, it gives back "". So care if this is not the desired effect required.
    – dARKpRINCE
    Oct 21, 2015 at 15:10
  • Upvoted cause it works for the use cases in the question asked. Helped me here too for a quick solution. Thx! Oct 27, 2016 at 19:36
43

If you are using Kotlin This is the only code that you need:

yourString.trimStart('0')
40

How about the regex way:

String s = "001234-a";
s = s.replaceFirst ("^0*", "");

The ^ anchors to the start of the string (I'm assuming from context your strings are not multi-line here, otherwise you may need to look into \A for start of input rather than start of line). The 0* means zero or more 0 characters (you could use 0+ as well). The replaceFirst just replaces all those 0 characters at the start with nothing.

And if, like Vadzim, your definition of leading zeros doesn't include turning "0" (or "000" or similar strings) into an empty string (a rational enough expectation), simply put it back if necessary:

String s = "00000000";
s = s.replaceFirst ("^0*", "");
if (s.isEmpty()) s = "0";
1
  • 8
    It has problem with "0" alone.
    – Vadzim
    Nov 27, 2012 at 13:17
31

A clear way without any need of regExp and any external libraries.

public static String trimLeadingZeros(String source) {
    for (int i = 0; i < source.length(); ++i) {
        char c = source.charAt(i);
        if (c != '0') {
            return source.substring(i);
        }
    }
    return ""; // or return "0";
}
4
  • 1
    Although your check for space isn't according to the question, nevertheless I think your answer would execute the quickest. Oct 29, 2015 at 23:00
  • @JohnFowler 10x for the catch, fixed after 2+ years Jan 31, 2018 at 12:04
  • 1
    And the method needs a return at the end if the loop finds only zeros. return ""; or return "0"; if you want at least one zero Feb 23, 2018 at 0:19
  • @slipperyseal I left it open so that you can change it based on your needs but since people tend to copy/paste, it is not a bad idea to always have a default behaviour. thanks for the comment Feb 23, 2018 at 11:32
15

To go with thelost's Apache Commons answer: using guava-libraries (Google's general-purpose Java utility library which I would argue should now be on the classpath of any non-trivial Java project), this would use CharMatcher:

CharMatcher.is('0').trimLeadingFrom(inputString);
3
  • +1, the correct answer for any project using Guava. (And now in 2012 that should mean pretty much any Java project.)
    – Jonik
    May 22, 2012 at 9:18
  • 1
    @Cowan Does this have a problem with "0" alone? Will CharMatcher.is('0').trimLeadingFrom("0"); Return the "0" or empty String?
    – orpqK
    Feb 17, 2015 at 17:28
  • @PhoonOne: I just tested this; it returns the empty string.
    – Stephan202
    Dec 14, 2016 at 9:48
14

You could just do: String s = Integer.valueOf("0001007").toString();

2
  • 7
    Won't handle alphanumeric.
    – slaman
    Dec 30, 2019 at 21:18
  • 1
    It will also fail if the value is too big for Integer like "00087878787878787878" May 18, 2021 at 19:16
6

Use this:

String x = "00123".replaceAll("^0*", ""); // -> 123
0
5

Use Apache Commons StringUtils class:

StringUtils.strip(String str, String stripChars);
2
  • 6
    WARNING! This will strip leading and ending zeroes, which may not be what you want. Nov 12, 2010 at 10:20
  • 25
    You can strip only leading zeroes using StringUtils.stripStart().
    – Josh Rosen
    Dec 14, 2011 at 22:53
2

Using Regexp with groups:

Pattern pattern = Pattern.compile("(0*)(.*)");
String result = "";
Matcher matcher = pattern.matcher(content);
if (matcher.matches())
{
      // first group contains 0, second group the remaining characters
      // 000abcd - > 000, abcd
      result = matcher.group(2);
}

return result;
2

Using regex as some of the answers suggest is a good way to do that. If you don't want to use regex then you can use this code:

String s = "00a0a121";

while(s.length()>0 && s.charAt(0)=='0')
{
   s = s.substring(1); 
}
1
2

If you (like me) need to remove all the leading zeros from each "word" in a string, you can modify @polygenelubricants' answer to the following:

String s = "003 d0g 00ss 00 0 00";
s.replaceAll("\\b0+(?!\\b)", "");

which results in:

3 d0g ss 0 0 0
2

Using kotlin it is easy

value.trimStart('0')
1

I think that it is so easy to do that. You can just loop over the string from the start and removing zeros until you found a not zero char.

int lastLeadZeroIndex = 0;
for (int i = 0; i < str.length(); i++) {
  char c = str.charAt(i);
  if (c == '0') {
    lastLeadZeroIndex = i;
  } else {
    break;
  }
}

str = str.subString(lastLeadZeroIndex+1, str.length());
1

Without using Regex or substring() function on String which will be inefficient -

public static String removeZero(String str){
        StringBuffer sb = new StringBuffer(str);
        while (sb.length()>1 && sb.charAt(0) == '0')
            sb.deleteCharAt(0);
        return sb.toString();  // return in String
    }
0

You could replace "^0*(.*)" to "$1" with regex

1
  • 1
    The only issue I see here is this might replace a lone zero '0' to a blank. Feb 28, 2012 at 15:25
0
       String s="0000000000046457657772752256266542=56256010000085100000";      
    String removeString="";

    for(int i =0;i<s.length();i++){
      if(s.charAt(i)=='0')
        removeString=removeString+"0";
      else 
        break;
    }

    System.out.println("original string - "+s);

    System.out.println("after removing 0's -"+s.replaceFirst(removeString,""));
0

If you don't want to use regex or external library. You can do with "for":

String input="0000008008451"
String output = input.trim();
for( ;output.length() > 1 && output.charAt(0) == '0'; output = output.substring(1));

System.out.println(output);//8008451
1
  • 1
    Too many String generated during this loop... if there is 1000 0 ...
    – AxelH
    Jan 12, 2018 at 12:08
0

I made some benchmark tests and found, that the fastest way (by far) is this solution:

    private static String removeLeadingZeros(String s) {
      try {
          Integer intVal = Integer.parseInt(s);
          s = intVal.toString();
      } catch (Exception ex) {
          // whatever
      }
      return s;
    }

Especially regular expressions are very slow in a long iteration. (I needed to find out the fastest way for a batchjob.)

1
  • 1
    This doesn't work for alphanumerics, but it does work for my uses. Feb 15, 2021 at 22:16
-2

And what about just searching for the first non-zero character?

[1-9]\d+

This regex finds the first digit between 1 and 9 followed by any number of digits, so for "00012345" it returns "12345". It can be easily adapted for alphanumeric strings.

1
  • 1
    This will not allow zero afterwards as well. Apr 28, 2020 at 11:49
-2

  const removeFirstZero = (ele) => parseInt(ele).toString()
  
  console.log('raw ' + '0776211121')
  console.log('removedZero ' + removeFirstZero('0776211121'))

3
  • 1
    That does not answer the question, because it does not work if the input contains other characters.
    – Hulk
    Mar 30, 2023 at 11:24
  • The question was asked about Java (refer to question tags), also the answer expected shall be covering all the cases and not just one particular case. Also, check if the question has been already answered.
    – shashi009
    Apr 1, 2023 at 16:01
  • As it’s currently written, your answer is unclear. Please edit to add additional details that will help others understand how this addresses the question asked. You can find more information on how to write good answers in the help center.
    – Community Bot
    Apr 1, 2023 at 16:01

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