143

What is the best and/or easiest way to recognize if a string.charAt(index) is an A-z letter or a number in Java without using regular expressions? Thanks.

270

Character.isDigit(string.charAt(index)) (JavaDoc) will return true if it's a digit
Character.isLetter(string.charAt(index)) (JavaDoc) will return true if it's a letter

  • 13
    Note: that these tell you if the character is a Unicode letter / digit. The OP asked for "an A-z letter" ... whatever that means. – Stephen C Oct 29 '10 at 0:58
  • 4
    Why does the ASCII ├ (255 ) pass in my case? I thought its for a-z, A-Z and 0-9 only? – mr5 Aug 27 '15 at 6:04
  • @CᴏɴᴏʀO'Bʀɪᴇɴ Links are now fixed. Thanks for letting me know. – Adam Feb 6 '17 at 23:06
  • 16
    UseCharacter.isLetterOrDigit(string.charAt(index)) for both the verifications. – Aspirant9 Feb 16 '17 at 3:12
  • Be careful, isLetterOrDigit gives true on way more than a-Z0-9 !!! refer to the doc here docs.oracle.com/javase/7/docs/api/java/lang/… – fl0w Mar 6 '19 at 16:49
24

I'm looking for a function that checks only if it's one of the Latin letters or a decimal number. Since char c = 255, which in printable version is and considered as a letter by Character.isLetter(c). This function I think is what most developers are looking for:

private static boolean isLetterOrDigit(char c) {
    return (c >= 'a' && c <= 'z') ||
           (c >= 'A' && c <= 'Z') ||
           (c >= '0' && c <= '9');
}
  • 1
    Just went through our code and was amazed how many bugs were in there because of isLetter and isLetterOrDigit... Thank you! – fl0w Mar 6 '19 at 16:47
  • 1
    Somehow you have gotten your character-sets and or display fonts mixed up. Unicode codepoint u00ff is actually the character ÿ. (Lower-case y with an umlaut.) The codepoint that represents ├ is u251c. – Stephen C Jun 1 '20 at 11:56
  • @StephenC you're right. I forgot how I end up typing that character instead of nbsp – mr5 Jun 3 '20 at 15:46
  • 2
    On Kotlin it is much simpler if (c in 'a'..'z' || с in 'A'..'Z' || c in '0'..'9') – Vlad Jul 14 '20 at 7:58
24

As the answers indicate (if you examine them carefully!), your question is ambiguous. What do you mean by "an A-z letter" or a digit?

  • If you want to know if a character is a Unicode letter or digit, then use the Character.isLetter and Character.isDigit methods.

  • If you want to know if a character is an ASCII letter or digit, then the best thing to do is to test by comparing with the character ranges 'a' to 'z', 'A' to 'Z' and '0' to '9'.

Note that all ASCII letters / digits are Unicode letters / digits ... but there are many Unicode letters / digits characters that are not ASCII. For example, accented letters, cyrillic, sanskrit, ...


The general solution is to do this:

Character.UnicodeBlock block = Character.UnicodeBlock.of(someCodePoint);

and then test to see if the block is one of the ones that you are interested in. In some cases you will need to test for multiple blocks. For example, there are (at least) 4 code blocks for Cyrillic characters and 7 for Latin. The Character.UnicodeBlock class defines static constants for well-known blocks; see the javadocs.

Note that any code point will be in at most one block.

12

Java Character class has an isLetterOrDigit method since version 1.0.2

8

I don't know about best, but this seems pretty simple to me:

Character.isDigit(str.charAt(index))
Character.isLetter(str.charAt(index))
5
// check if ch is a letter
if ((ch >= 'a' && ch <= 'z') || (ch >= 'A' && ch <= 'Z'))
    // ...

// check if ch is a digit
if (ch >= '0' && ch <= '9')
    // ...

// check if ch is a whitespace
if ((ch == ' ') || (ch =='\n') || (ch == '\t'))
    // ...

Source: https://docs.oracle.com/javase/tutorial/i18n/text/charintro.html

  • 1
    The preceding code is wrong because it works only with English and a few other languages. To internationalize the previous example, replace it with the following statements: char ch; // ... // This code is OK! if (Character.isLetter(ch)) // ... if (Character.isDigit(ch)) // ... if (Character.isSpaceChar(ch)) // ... – Yao Li Jul 20 '17 at 6:10
  • OP clearly asked if a string.charAt(index) is an A-z letter. So we are not talking about other languages are we ? – vadasambar Jul 20 '17 at 8:57
  • In e.g., German, an ä could be considered to be in the a-z range. – Robert Aug 27 '18 at 23:17
4

Compare its value. It should be between the value of 'a' and 'z', 'A' and 'Z', '0' and '9'

  • 1
    This manual approach is better than the built-in Character.isLetter() method? – IgorGanapolsky Dec 16 '15 at 19:10
  • 1
    @IgorGanapolsky - It depends precisely what you are trying to do. Hint: they do different things! – Stephen C Jul 26 '16 at 7:53
  • @StephenC I thought Character.isLetter() is rudimentary. Unless we are talking about internationalization? – IgorGanapolsky Jul 26 '16 at 12:31
  • 1
    @IgorGanapolsky - Read the javadocs. Then check the Unicode specs for what code-points the respective character classes actually contain. >>Of course<< we are talking about internationalization. Characters in Java are all Unicode based. – Stephen C Jul 26 '16 at 13:44
  • how do you do this? – john ktejik Sep 5 '18 at 4:17
3

Use the below code

Character.isLetterOrDigit(string.charAt(index))

  • 1
    What does your answer add that hasn't been covered in the previous answers? – Robert Aug 27 '18 at 23:18
  • Be careful, isLetterOrDigit gives true on way more than a-Z0-9 !!! refer to the doc here docs.oracle.com/javase/7/docs/api/java/lang/… – fl0w Mar 6 '19 at 16:49
  • Robert, instead of calling two functions you can of course just call one function. – sheikh May 8 '19 at 9:16
0
 import java.util.Scanner;
 public class v{
 public static void main(String args[]){
 Scanner in=new Scanner(System.in);
    String str;
    int l;
    int flag=0;
    System.out.println("Enter the String:");
    str=in.nextLine();
    str=str.toLowerCase();
    str=str.replaceAll("\\s","");
    char[] ch=str.toCharArray();
    l=str.length();
    for(int i=0;i<l;i++){
        if ((ch[i] >= 'a' && ch[i]<= 'z') || (ch[i] >= 'A' && ch[i] <= 'Z')){
        flag=0;
        }
        else

        flag++;
        break;
        } 
if(flag==0)
    System.out.println("Onlt char");


}
}

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