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In Java is there a way to find out if first character of a string is a number?

One way is

string.startsWith("1")

and do the above all the way till 9, but that seems very inefficient.

Edit: After the answer, I found out a regex way to do this as well:

s.substring(0,1).matches("[0-9]")
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7  
I was going to mention the regex way, but I was afraid that if I did, you would be tempted to try it. –  Michael Myers Aug 3 '09 at 16:26

3 Answers 3

up vote 131 down vote accepted
Character.isDigit(string.charAt(0))

Note that this will allow any Unicode digit, not just 0-9. You might prefer:

char c = string.charAt(0);
isDigit = (c >= '0' && c <= '9');

Or the slower regex solutions:

s.substring(0, 1).matches("\\d")
// or the equivalent
s.substring(0, 1).matches("[0-9]")

However, with any of these methods, you must first be sure that the string isn't empty. If it is, charAt(0) and substring(0, 1) will throw a StringIndexOutOfBoundsException. startsWith does not have this problem.

To make the entire condition one line and avoid length checks, you can alter the regexes to the following:

s.matches("\\d.*")
// or the equivalent
s.matches("[0-9].*")

If the condition does not appear in a tight loop in your program, the small performance hit for using regular expressions is not likely to be noticeable.

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wow. people love upvoting you :) thanks for the answer. –  Omnipresent Aug 3 '09 at 15:56
6  
Why not? It's correct twice. :) (Incidentally, I'd encourage you to vote more; voting is an integral part of this site. I see that you have 41 posts but only 19 votes in 7 months.) –  Michael Myers Aug 3 '09 at 16:04
    
Ha, I'll give you half a vote for each time you are right. –  jjnguy Oct 2 '09 at 16:45
    
Great explanation. –  Radek Dec 2 '11 at 3:11
    
Re: "you must first be sure that the string isn't empty" - true and more then that - you must also make sure its not null as if it is all the displayed methods will throw exceptions. You can either directly check ( e.g. ((null!=s) && Character.isDigit(s.charAt(0)) ) ) or use tricks like Character.isDigit((s?s:"X").charAt(0)) –  epeleg Jun 17 '13 at 6:39

Regular expressions are very strong but expensive tool. It is valid to use them for checking if the first character is a digit but it is not so elegant :) I prefer this way:

public boolean isLeadingDigit(final String value){
    final char c = value.charAt(0);
    return (c >= '0' && c <= '9');
}
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4  
1) function is not Java. 2) This only allows Arabic numerals, not Chinese, Indian, etc. That might be what you prefer, but it isn't specified in the question. 3) I already covered this exact solution in my answer four years ago. –  Michael Myers May 23 '13 at 15:44
regular expression starts with number->'^[0-9]' 
Pattern pattern = Pattern.compile('^[0-9]');
 Matcher matcher = pattern.matcher(String);

if(matcher.find()){

System.out.println("true");
}
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1  
You don't need the {1,1} suffix, which means that "the preceding pattern must appear between 1 and 1 times". This means exactly the same as the pattern does on its own. –  Andrzej Doyle Jun 4 '13 at 14:43

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