125

This question already has an answer here:

In Java for String class there is a method called matches, how to use this method to check if my string is having only digits using regular expression. I tried with below examples, but both of them returned me false as result.

String regex = "[0-9]";
String data = "23343453";
System.out.println(data.matches(regex));

String regex = "^[0-9]";
String data = "23343453";
System.out.println(data.matches(regex));

marked as duplicate by Mark Rotteveel java May 13 '18 at 10:32

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

300

Try

String regex = "[0-9]+";

or

String regex = "\\d+";

As per Java regular expressions, the + means "one or more times" and \d means "a digit".

Note: the "double backslash" is an escape sequence to get a single backslash - therefore, \\d in a java String gives you the actual result: \d

References:

Java Regular Expressions

Java Character Escape Sequences


Edit: due to some confusion in other answers, I am writing a test case and will explain some more things in detail.

Firstly, if you are in doubt about the correctness of this solution (or others), please run this test case:

String regex = "\\d+";

// positive test cases, should all be "true"
System.out.println("1".matches(regex));
System.out.println("12345".matches(regex));
System.out.println("123456789".matches(regex));

// negative test cases, should all be "false"
System.out.println("".matches(regex));
System.out.println("foo".matches(regex));
System.out.println("aa123bb".matches(regex));

Question 1: Isn't it necessary to add ^ and $ to the regex, so it won't match "aa123bb" ?

No. In java, the matches method (which was specified in the question) matches a complete string, not fragments. In other words, it is not necessary to use ^\\d+$ (even though it is also correct). Please see the last negative test case.

Please note that if you use an online "regex checker" then this may behave differently. To match fragments of a string in Java, you can use the find method instead, described in detail here:

Difference between matches() and find() in Java Regex

Question 2: Won't this regex also match the empty string, "" ?

No. A regex \\d* would match the empty string, but \\d+ does not. The star * means zero or more, whereas the plus + means one or more. Please see the first negative test case.

Question 3: Isn't it faster to compile a regex Pattern?

Yes. It is indeed faster to compile a regex Pattern once, rather than on every invocation of matches, and so if performance implications are important then a Pattern can be compiled and used like this:

Pattern pattern = Pattern.compile(regex);
System.out.println(pattern.matcher("1").matches());
System.out.println(pattern.matcher("12345").matches());
System.out.println(pattern.matcher("123456789").matches());
33

You can also use NumberUtil.isNumber(String str) from Apache Commons

  • 1
    @user2065083 Its always recommended to user standard API to solve your problem. Anyone giving it a single read can understand (and maintain) your code. So its beneficial from long term point of view. – Apurv Feb 27 '13 at 12:28
  • 4
    Note that this method matches also Unicode digits. – user11153 Aug 14 '14 at 12:55
  • 1
    Note that this will also match strings such as 0xAF, 2.3e-4 and 123L. – vikingsteve Oct 29 '15 at 11:15
  • 3
    Note to import org.apache.commons.lang.math.NumberUtils instead of org.apache.commons.lang.NumberUtils which is deprecated. – Lucky Mar 12 '16 at 14:39
  • 1
    There is a caveat to this that bears mentioning. If you do this know that NumberUtil.isNumber("1000D") will return true, so if you're really looking for only digits this this will not work. – kasdega Jan 23 '18 at 16:56
8

One more solution, that hasn't been posted, yet:

String regex = "\\p{Digit}+"; // uses POSIX character class
5

You must allow for more than a digit (the + sign) as in:

String regex = "[0-9]+"; 
String data = "23343453"; 
System.out.println(data.matches(regex));
5
Long.parseLong(data)

and catch exception, it handles minus sign.

Although the number of digits is limited this actually creates a variable of the data which can be used, which is, I would imagine, the most common use-case.

  • 4
    What happens if it's a string which contains more digits than Integer can support ? – Brian Agnew Feb 27 '13 at 11:53
  • @BrianAgnew you have a very big number, changed to long. – NimChimpsky Feb 27 '13 at 11:54
  • 3
    What happens if it's a string which contains more digits than Long can support ? – Brian Agnew Feb 27 '13 at 11:57
  • @BrianAgnew I change my answer to big decimal ... and then you say the same again ? (i am not arguing with your point, but I think my answer can still be useful in some cases). Such as you want to actually use the data in your code, not just validate it. – NimChimpsky Feb 27 '13 at 11:57
  • 4
    I'll keep on saying it so long as you promote an answer with a limited number of supported digits :-) Unless you highlight that as a limitation of the answer (which I don't think is unreasonable - practicalities should be observed). I do in fact think what you're proposing is a useful answer, and had considered it myself – Brian Agnew Feb 27 '13 at 12:00
5

Using regular expressions is costly in terms of performance. Trying to parse string as a long value is inefficient and unreliable, and may be not what you need.

What I suggest is to simply check if each character is a digit, what can be efficiently done using Java 8 lambda expressions:

boolean isNumeric = someString.chars().allMatch(x -> Character.isDigit(x));
  • Have you done any benchmarking between your solution and regex? I doubt it performs better than regex but can't be sure! – Ean V Feb 6 '16 at 12:57
  • @Ean well, I've just made a benchmark: gist.github.com/maxmalysh/a991bbe4a923539f19fb. The difference for short strings is negligible. However, streams work better for really long strings (2x times faster for 100-million character string). – Max Malysh Feb 6 '16 at 16:38
  • Yes, makes sense for large strings. Should've mentioned I meant for this question. – Ean V Feb 10 '16 at 4:31
  • @MaxMalysh great answer! Character.isDigit(x) can be further simplified to Character::isDigit. – mre May 2 '18 at 19:45
1

According to Oracle's Java Documentation:

private static final Pattern NUMBER_PATTERN = Pattern.compile(
        "[\\x00-\\x20]*[+-]?(NaN|Infinity|((((\\p{Digit}+)(\\.)?((\\p{Digit}+)?)" +
        "([eE][+-]?(\\p{Digit}+))?)|(\\.((\\p{Digit}+))([eE][+-]?(\\p{Digit}+))?)|" +
        "(((0[xX](\\p{XDigit}+)(\\.)?)|(0[xX](\\p{XDigit}+)?(\\.)(\\p{XDigit}+)))" +
        "[pP][+-]?(\\p{Digit}+)))[fFdD]?))[\\x00-\\x20]*");
boolean isNumber(String s){
return NUMBER_PATTERN.matcher(s).matches()
}
0

We can use either Pattern.compile("[0-9]+.[0-9]+") or Pattern.compile("\\d+.\\d+"). They have the same meaning.

the pattern [0-9] means digit. The same as '\d'. '+' means it appears more times. '.' for integer or float.

Try following code:

import java.util.regex.Pattern;

    public class PatternSample {

        public boolean containNumbersOnly(String source){
            boolean result = false;
            Pattern pattern = Pattern.compile("[0-9]+.[0-9]+"); //correct pattern for both float and integer.
            pattern = Pattern.compile("\\d+.\\d+"); //correct pattern for both float and integer.

            result = pattern.matcher(source).matches();
            if(result){
                System.out.println("\"" + source + "\""  + " is a number");
            }else
                System.out.println("\"" + source + "\""  + " is a String");
            return result;
        }

        public static void main(String[] args){
            PatternSample obj = new PatternSample();
            obj.containNumbersOnly("123456.a");
            obj.containNumbersOnly("123456 ");
            obj.containNumbersOnly("123456");
            obj.containNumbersOnly("0123456.0");
            obj.containNumbersOnly("0123456a.0");
        }

    }

Output:

"123456.a" is a String
"123456 " is a String
"123456" is a number
"0123456.0" is a number
"0123456a.0" is a String
  • 1
    this fails obj.containNumbersOnly("0123456,058782"); – Phoenix404 May 24 '18 at 14:31
0

Try this part of code:

void containsOnlyNumbers(String str)
{
    try {
        Integer num = Integer.valueOf(str);
        System.out.println("is a number");
    } catch (NumberFormatException e) {
        // TODO: handle exception
        System.out.println("is not a number");
    }

}

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