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I have a string which contains alphanumeric character.

I need to check whether the string is started with number.


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hmmm, can you be more specific? The answers are mostly just checking the first char. What kinds of numbers do you want? These answers won't work for negative numbers! also, what do you want after the number... anything? – Tom Jul 10 '09 at 5:51
Yes... did you mean "number" or "digit"... now i'm confused... everyone seemed to think number meant digit ... ::sigh:: – Tom Jul 10 '09 at 6:14
That's a good point. I thought he meant digit. IF he meant number then you'll definitely want regex. – Brock Woolf Jul 10 '09 at 9:24

7 Answers 7

See the isDigit(char ch) method:

and pass it to the first character of the String using the String.charAt() method.

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Just for completeness: isDigit returns true not just 0..9 but also other (e.g. arabic) digits as well:… – Csaba_H Jul 10 '09 at 6:35
as do most methods that are named isXXX(). I think that's implicit in the method name and can be found by looking at the link to the method that I provided... – Jon Jul 10 '09 at 6:46
@Csaba_H - FYI: 0-9 are Arabic numerals - but I get your point. – McDowell Jul 10 '09 at 10:02

Sorry I didn't see your Java tag, was reading question only. I'll leave my other answers here anyway since I've typed them out.


String myString = "9Hello World!";
if ( Character.isDigit(myString.charAt(0)) )
    System.out.println("String begins with a digit");


string myString = "2Hello World!";

if (isdigit( myString[0]) )
    printf("String begins with a digit");

Regular expression:


Some proof my regex works: Unless my test data is wrong? alt text

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Brock: OP has added java tag (not specified in the question). – shahkalpesh Jul 10 '09 at 5:15
Perhaps now that I have fixed my answer the person who down voted me will reconsider? – Brock Woolf Jul 10 '09 at 5:20
thank you Sir =) – Brock Woolf Jul 10 '09 at 5:23
I believe that regex is wrong. Not for the reasons I put in my answer (because I'm not sure I am right, because it depends on what the OP intended... he needs to clarify), but because of the \b. \b is a word boundary. You want to force the digit at the beginning of the string, so you should use ^. – Tom Jul 10 '09 at 7:03
Well, the guy is a one time hit from Google and obviously doesn't understand how Stackoverflow works. He's had a ton of answers and hasn't marked one correct. I'd let it go mate. – Brock Woolf Jul 10 '09 at 9:27

I think you ought to use a regex:

import java.util.regex.*;

public class Test {
  public static void main(String[] args) {
    String neg = "-123abc";
    String pos = "123abc";
    String non = "abc123";
        /* I'm not sure if this regex is too verbose, but it should be
         * clear. It checks that the string starts with either a series
         * of one or more digits... OR a negative sign followed by 1 or
         * more digits. Anything can follow the digits. Update as you need
         * for things that should not follow the digits or for floating
         * point numbers.
    Pattern pattern = Pattern.compile("^(\\d+.*|-\\d+.*)");
    Matcher matcher = pattern.matcher(neg);
    if(matcher.matches()) {
        System.out.println("matches negative number");
    matcher = pattern.matcher(pos);
    if (matcher.matches()) {
        System.out.println("positive matches");
    matcher = pattern.matcher(non);
    if (!matcher.matches()) {
        System.out.println("letters don't match :-)!!!");

You may want to adjust this to accept floating point numbers, but this will work for negatives. Other answers won't work for negatives because they only check the first character! Be more specific about your needs and I can help you adjust this approach.

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That's an awfully complex solution for "is the first character a digit" – skaffman Jul 10 '09 at 9:26
+1 the question was ambiguous and didn't specify "is the first character a digit" – Pablojim Jul 10 '09 at 11:59
@skaffman: if you read my answer, it's pretty obvious I wasn't trying to answer "is the first character a digit"... which is NOT what the OP wrote. The OP asked: "string is started with number". I was trying to make a more robust solution that handled negatives. It's pretty clear that the question is unclear. (Read my comments on other posts). I'm not sure my answer really deserved a downvote (although I'm not sure it was you that downvoted). Also, the solution looks complex, but for it's really not... it's mostly garbage code for print statements to show what it matches properly. – Tom Jul 10 '09 at 15:53

This should work:

String s = "123foo";
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EDIT: I searched for java docs, looked at methods on string class which can get me 1st character & looked at methods on Character class to see if it has any method to check such a thing.

I think, you could do the same before asking it.

EDI2: What I mean is, try to do things, read/find & if you can't find anything - ask.
I made a mistake when posting it for the first time. isDigit is a static method on Character class.

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Good suggestion. +1 for that. – Adeel Ansari Jul 10 '09 at 9:28

If you want the entire first part of a String which contains numbers, like 12345 in the String 12345sixseven - then this works fine :)

if (Character.isDigit(input.charAt(0))) {
    int n = 0;
    while (!(n >= input.length()) && Character.isDigit(input.charAt(n))) {
      n += 1;
    number = Double.parseDouble(input.substring(0,n));

Used double because... it's double the fun.

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Use a regex like ^\d

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