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How can you split a word to its constituent letters?

Example of code which is not working

 class Test {
         public static void main( String[] args) {
             String[] result = "Stack Me 123 Heppa1 oeu".split("\\a");                                                                                   

             // output should be
             // S
             // t
             // a
             // c
             // k
             // M
             // e
             // H
             // e
             // ...
             for ( int x=0; x<result.length; x++) {
                 System.out.println(result[x] + "\n");
             }
         }
     }

The problem seems to be in the character \\a. It should be a [A-Za-z].

share|improve this question
1  
Your example doesn't make it clear if you want "123" to be split up or not. – patros Oct 5 '09 at 19:29
    
patros: I do not want "123" to be split up. – Masi Oct 5 '09 at 19:46
up vote 27 down vote accepted

You need to use split("");.

That will split it by every character.

However I think it would be better to iterate over a String's characters like so:

for (int i = 0;i < str.length(); i++){
    System.out.println(str.charAt(i));
}

It is unnecessary to create another copy of your String in a different form.

share|improve this answer
    
+1: Hmm, I didn't think about creating another copy of the string. Good point. – Powerlord Oct 5 '09 at 19:34
    
One thing to consider here is str.charAt(i) will return a char. So if you need a String you will need to do Character.toString(str.charAt(i)). This will create a copy of that character, but that is still better than O(n) space that using str.split("") would give you. – catalyst294 Feb 9 '14 at 16:51
    
That always creates an array that is one slot longer than characters are there in the string, with the first character being empty. Example "abcd" would yield {"","a","b","c","d"} – Tulains Córdova Mar 24 '15 at 15:47

"Stack Me 123 Heppa1 oeu".toCharArray() ?

share|improve this answer
    
+1: Simple, concise, and can easily be fed to for. – Powerlord Oct 5 '09 at 19:33
    
Creating an extra char array is an extra step that is not necessary. – jjnguy Oct 5 '09 at 19:37
    
Depends. My guess is that above a certain length an arrayCopy and direct array access is "faster" than calling hundreds of charAt's. – Zed Oct 5 '09 at 19:41
1  
Calling charAt is O(1) because the String is implemented using an array in the back end. Creating a copy will be slower always. – jjnguy Oct 5 '09 at 19:46
    
Calling charAt(i) is implemented to first make a sanity check on the input parameter then offsetting it with the internal offset, and after this yes, it is an array access. – Zed Oct 5 '09 at 19:55

Including numbers but not whitespace:

"Stack Me 123 Heppa1 oeu".replaceAll("\\W","").toCharArray();

=> S, t, a, c, k, M, e, 1, 2, 3, H, e, p, p, a, 1, o, e, u

Without numbers and whitespace:

"Stack Me 123 Heppa1 oeu".replaceAll("[^a-z^A-Z]","").toCharArray()

=> S, t, a, c, k, M, e, H, e, p, p, a, o, e, u

share|improve this answer
 char[] result = "Stack Me 123 Heppa1 oeu".toCharArray();
share|improve this answer
String[] result = "Stack Me 123 Heppa1 oeu".split("**(?<=\\G.{1})**");
System.out.println(java.util.Arrays.toString(result));
share|improve this answer

I'm pretty sure he doesn't want the spaces to be output though.

for (char c: s.toCharArray()) {
    if (isAlpha(c)) {
       System.out.println(c);
     }
}
share|improve this answer

You can use

String [] strArr = Str.split("");
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