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I wish to check whether a string contains a letter or a digit in a specified position.

Here's the problem:

I have a input string of length 2. The string is of the form "a1". I'm making a validation method for these types of strings.

Requirements:

  • the letter at index position 0 has to be one of the letters: a, b, c, d, e, f, g, h
  • the number/digit at index position 1 has to be one of the numbers: 1, 2, 3, 4, 5, 6, 7, 8

Thanks!

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6  
What methods have you tried? – Kyle May 6 '13 at 13:55
    
Read the string, check the first char, then check the second char. Done. – jpw May 6 '13 at 13:56
1  
Have you tried String.charAt(int)? – Karthikeyan Vaithilingam May 6 '13 at 13:58
    
I tried the charAt() and checked each index position, but couldn't get this to check for all the characters/digits i wanted to check. Also tried to loop through for checking. Did the regex method now (.matches()) and that worked out perfect. – martyft May 6 '13 at 14:31

regex

input.matches("^[abcdefgh][12345678]$");

Edit:

This is equivalent to:

input.matches("^[a-h][1-8]$");
  • The ^ anchors the match-check to the beginning of the input string.
  • The [a-h] says the first character in the string (after the ^) can be one of the characters a through h.
  • The [1-8] says the second character can be 1 through 8.
  • The $ indicates that the next thing after the [1-8] must be the end of the string.
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3  
I find ^[a-h][1-8]$much easier – toniedzwiedz May 6 '13 at 13:58
    
You can use "^[a-h][1-8]$" as pattern, don't have to specify all letters or digits that you should match – DaGLiMiOuX May 6 '13 at 13:58
1  
Yeah, I would too.... but I took the 'novice factor' in to account as well. – rolfl May 6 '13 at 13:58
    
@rolfl do you really want novices to explicitly enumerate every character available? I don't see how that's easier. – toniedzwiedz May 6 '13 at 14:01
    
Will edit andwer to have more detail, how about that ... ;-) – rolfl May 6 '13 at 14:02

Simple answer: extract the n-th letter and check if it is a number or letter:

isaletter(mystring.charAt(0));
isanumber(mystring.charAt(1));

Flexible answer: use a regex. You will need to learn something about them, but they offer great flexibility.

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try regex

 str.matches("[a-h][1-8]");
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Convert it to a char array, "a1".toCharArray()

Compare char[0] to your fields 'a'....'h' you can use == now that its a primitive, as in chars[0] == 'a'.

You can do the same for chars[1] == '1'....so on.

If you do this, you'll have to compare to the character values.

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Is speed, memory, or efficiency important? Looks like you should make two lists, loop through them (nested), then test if the concatenated list values are ==. Like ((myList(indexOuter) + my2ndList(indexInner)) == "theListHoldingYourStrings(stringIndex)). I'm new to Java and don't know what the fastest, efficient methods are however.

Use a 64 member switch statement.

switch(stringToTest) {
case "a1":  System.out.println("Valid");
             break;
case "a2": System.out.println("Valid");
             break;

. . .

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