Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I have something like "ali123hgj". i want to have 123 in integer. how can i make it in java?

share|improve this question
What about "abc123def567ghi" or "abcdef"? – kennytm Apr 4 '10 at 14:01
You have always 3 chars before the number or it is just an example? – lbedogni Apr 4 '10 at 14:02
it is not just three character .it is number between 0 or more character. it can be "123","sdfs","123fdhf","fgdkjhgf123" – Ali_IT Apr 4 '10 at 14:09

6 Answers 6

up vote 5 down vote accepted

Use the following RegExp (see



final Pattern pattern = Pattern.compile("\\d+"); // the regex
final Matcher matcher = pattern.matcher("ali123hgj"); // your string

final ArrayList<Integer> ints = new ArrayList<Integer>(); // results

while (matcher.find()) { // for each match
    ints.add(Integer.parseInt(; // convert to int
share|improve this answer
int i = Integer.parseInt("blah123yeah4yeah".replaceAll("\\D", ""));
// i == 1234

Note how this will "merge" digits from different parts of the strings together into one number. If you only have one number anyway, then this still works. If you only want the first number, then you can do something like this:

int i = Integer.parseInt("x-42x100x".replaceAll("^\\D*?(-?\\d+).*$", "$1"));
// i == -42

The regex is a bit more complicated, but it basically replaces the whole string with the first sequence of digits that it contains (with optional minus sign), before using Integer.parseInt to parse into integer.

share|improve this answer

You could probably do it along these lines:

Pattern pattern = Pattern.compile("[^0-9]*([0-9]*)[^0-9]*");
Matcher matcher = pattern.matcher("ali123hgj");
boolean matchFound = matcher.find();
if (matchFound) {

It's easily adaptable to multiple number group as well. The code is just for orientation: it hasn't been tested.

share|improve this answer
int index = -1;
for (int i = 0; i < str.length(); i++) {
   if (Character.isDigit(str.charAt(i)) {
      index = i; // found a digit
if (index >= 0) {
   int value = String.parseInt(str.substring(index)); // parseInt ignores anything after the number
} else {
   // doesn't contain int...
share|improve this answer
public static final List<Integer> scanIntegers2(final String source) {
    final ArrayList<Integer> result = new ArrayList<Integer>(); 
    // in real life define this as a static member of the class.
    // defining integers -123, 12 etc as matches.
    final Pattern integerPattern = Pattern.compile("(\\-?\\d+)");
    final Matcher matched = integerPattern.matcher(source);
    while (matched.find()) {
    return result;

Input "asg123d ddhd-2222-33sds --- ---222 ss---33dd 234" results in this ouput [123, -2222, -33, -222, -33, 234]

share|improve this answer

This is the Google Guava #CharMatcher Way.

String alphanumeric = "12ABC34def";

String digits = CharMatcher.JAVA_DIGIT.retainFrom(alphanumeric); // 1234

String letters = CharMatcher.JAVA_LETTER.retainFrom(alphanumeric); // ABCdef

If you only care to match ASCII digits, use

String digits = CharMatcher.inRange('0', '9').retainFrom(alphanumeric); // 1234

If you only care to match letters of the Latin alphabet, use

String letters = CharMatcher.inRange('a', 'z')
                         .or(inRange('A', 'Z')).retainFrom(alphanumeric); // ABCdef
share|improve this answer

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

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