45

How can I check if a string contains only numbers and alphabets ie. is alphanumeric?

70

Considering you want to check for ASCII Alphanumeric characters, Try this "^[a-zA-Z0-9]*$", use this RegEx in String.matches(Regex) it will return true if it is alphanumeric else it will return false.

public boolean isAlphaNumeric(String s){
    String pattern= "^[a-zA-Z0-9]*$";
    return s.matches(pattern);
}

It will help for more details about regex read http://www.vogella.com/articles/JavaRegularExpressions/article.html

  • 8
    -1 as this doesn't cover all alphanumberic characters. M42's response is better. – tster Jan 14 '13 at 22:41
  • 8
    Poor use of if, better would be return s.matches(pattern) – Fr4nz May 12 '15 at 11:48
  • 2
    * allow empty string , use + , like this : ^[a-zA-Z0-9]+$ – Adnan Abdollah Zaki Dec 14 '15 at 16:00
  • Do you really need to add the boundary matchers (^,$) at the beginning and end? It seems like String pattern="[a-zA-Z0-9]+"; would behave the same way since + is greedy. – krick Jun 29 '17 at 21:08
  • Need regex to check if string not contain "test" and contain only alphabet and space. please help – shiva Sep 11 '18 at 7:03
23

In order to be unicode compatible:

^[\pL\pN]+$

where

\pL stands for any letter
\pN stands for any number
  • Not working. Giving: java.util.regex.PatternSyntaxException: Incorrect Unicode property near index 5. – Abdalrahman Shatou Sep 13 '16 at 9:13
11

It's 2016 or later and things have progressed. This matches Unicode alphanumeric strings:

^[\\p{IsAlphabetic}\\p{IsDigit}]+$

See the reference (section "Classes for Unicode scripts, blocks, categories and binary properties"). There's also this answer that I found helpful.

9

See the documentation of Pattern.

Assuming US-ASCII alphabet (a-z, A-Z), you could use \p{Alnum}.

A regex to check that a line contains only such characters is "^[\\p{Alnum}]*$".

That also matches empty string. To exclude empty string: "^[\\p{Alnum}]+$".

5

Use character classes:

^[[:alnum:]]*$
  • 4
    This is the right idea, but POSIX character class syntax is not valid in Java, and the question is tagged as Java. The equivalent Java syntax for your answer is "^[\\p{Alnum}]*$", as mentioned below. (If such tagging is not considered to be sufficiently conspicuous by site guidelines, let me know and I'll add a comment to the question itself. :)) – Mark A. Fitzgerald May 7 '14 at 15:56
3
Pattern pattern = Pattern.compile("^[a-zA-Z0-9]*$");
Matcher matcher = pattern.matcher("Teststring123");
if(matcher.matches()) {
     // yay! alphanumeric!
}
1

try this [0-9a-zA-Z]+ for only alpha and num with one char at-least..

may need modification so test on it

http://www.regexplanet.com/advanced/java/index.html

Pattern pattern = Pattern.compile("^[0-9a-zA-Z]+$");
Matcher matcher = pattern.matcher(phoneNumber);
if (matcher.matches()) {

}
0

100% alphanumeric regex (it contain only alphanumeric not even integers & characters only alphanumeric)

for example special char (not allowed) 123 (not allowed ) asdf (not allowed)

1235asdf (allowed)

String name="^[^]\d*[a-zA-Z][a-zA-Z\d]*$";

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