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In Java, I need to make sure a String only contains alphanumeric, space and dash characters.

I found the class org.apache.commons.lang.StringUtils and the almost adequate method isAlphanumericSpace(String)... but I also need to include dashes.

What is the best way to do this? I don't want to use Regular Expressions.

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I also saw in the same library the method containsOnly(String, char[]), but that means I'd have to list the entire alphabet, numbers from 0 to 9 and a space and a dash... seems a little over explicit for what I need to do. –  Lancelot Apr 14 '09 at 23:42
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4 Answers

up vote 6 down vote accepted

Hum... just program it yourself using String.chatAt(int), it's pretty easy...

Iterate through all char in the string using a position index, then compare it using the fact that ASCII characters 0 to 9, a to z and A to Z use consecutive codes, so you only need to check that character x numerically verifies one of the conditions:

  • between '0' and '9'
  • between 'a' and 'z'
  • between 'A and 'Z'
  • a space ' '
  • a hyphen '-'

Here is a basic code sample (using CharSequence, which lets you pass a String but also a StringBuilder as arg):

public boolean isValidChar(CharSequence seq) {
    int len = seq.length();
    for(int i=0;i<len;i++) {
        char c = seq.charAt(i);
        // Test for all positive cases
        if('0'<=c && c<='9') continue;
        if('a'<=c && c<='z') continue;
        if('A'<=c && c<='Z') continue;
        if(c==' ') continue;
        if(c=='-') continue;
        // ... insert more positive character tests here
        // If we get here, we had an invalid char, fail right away
        return false;
    }
    // All seen chars were valid, succeed
    return true;
}
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I would use the java.lang.Character tests instead of making assumptions based on the ASCII character set. –  kenj0418 Apr 14 '09 at 23:48
    
Yes, Character.isLetterOrDigit() does that, but it comes with a very notable performance cost (4 or 5 times slower than a simple code point comparison). –  Varkhan Apr 15 '09 at 0:06
    
It will reject lots of other valid alpha characters - that just aren't used much in English, just so it will take 1 μs instead of 4μs. (yeah it'll reject "μs" :-) ) Making assumptions he didn't say in order to get a minor performance gain he didn't ask for isn't a good idea. –  kenj0418 Apr 15 '09 at 12:30
    
Consider SkipHead's suggestion to use StringUtils.isAlphanumericSpace, in my humble opinion it is much nicer. –  Syntax Jul 1 '11 at 2:27
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You could use:

StringUtils.isAlphanumericSpace(string.replace('-', ' '));
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For clarity SkipHead means StringUtils.isAlphanumericSpace(String), and this is much nicer than hand coding an interative check. –  Syntax Jul 1 '11 at 2:26
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Just iterate through the string, using the character-class methods in java.lang.Character to test whether each character is acceptable or not. Which is presumably all that the StringUtils methods do, and regular expressions are just a way of driving a generalised engine to do much the same.

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You have 1 of 2 options: 1. Compose a list of chars that CAN be in the string, then loop over the string checking to make sure each character IS in the list. 2. Compose a list of chars that CANNOT be in the string, then loop over the string checking to make sure each character IS NOT in the list.

Choose whatever option is quicker to compose the list.

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