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Let's say I have this string: "abcd123fx". Now, I want to make a method which checks (in order) if "a","b","c","d" etc is a number and if not, returns false. I don't know how to handle the n-th position of char and for each char, in order.

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10 Answers 10

You can check if a character is a letter of number with teh Character class.

String text = ...
char ch = texct.charAt(nth);
if (Character.isLetter(ch)) {
    // is a letter
} else if (Character.isDigit(ch)) {
    // is a digit
}

Note: these method support characters in different blocks of the unicode. e.g. it will accept characters in Arabic or Korean.

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Check the documentation. You can use charAt function.

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if (Character.isLetter(yourString.charAt(index)))
    // ... Letter

if (Character.isDigit(yourString.charAt(index)))
   // ... Number

Check this page

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This solution is way too C-like. Why don't you use Character's methods, as described in the page you linked? – mariosangiorgio Jan 8 '13 at 10:04
2  
I have done that, answer fixed. Thank you – CloudyMarble Jan 8 '13 at 10:06

Well there are a few ways you could do this. The simplest would probably be something along the lines of:

Character.isDigit(someString.charAt(x))
or  a regex way would be someString.substring(x,x).matches("[0-9]")
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To get the nth character of a string you should use charAt, the you should use the Charachter's isLetterOrDigit.

Usually, when you face these problems, you should search the javadoc looking for suitable methods.

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Check out the Java tutorials on oracle.com for more information.

Specifically for this subject:

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- As you have said that you are a newbie, i won't make this complicated using Regex, but will use inbuilt Java functionalities to answer this.

- First use subString() method to get the "abcd" part of the String, then use toCharArray() method to break the String into char elements, then use Character class's isDigit() method to know whether its a digit or not.

Eg:

public class T1 {

    public static void main(String[] args){


        String s = "abcd123fx";

        String str = s.substring(0,4);
        System.out.println(str);

        char[] cArr = str.toCharArray();

        for(char a :cArr){

            if(Character.isDigit(a)){

                System.out.println(a+" is a digit");
            }else{

                System.out.println(a+" is not a digit");
            }
        }
      }
}
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This might help you

public static boolean isNumeric(String str) {
    return str.matches("-?\\d+(.\\d+)?");
}

public static void main(String[] args){
    System.out.println(isNumeric("abcd123fx"));
}

If you have a numeric string it will return true else false

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public static void main(String[] args){
    System.out.println(checkNumber("123a44"));
}

public static boolean checkNumber(String s){
    for(int i = 0; i < s.length(); i++){
        if(Character.isDigit(s.charAt(i))){
            continue;
        }
        else{
            return false;
        }
    }
    return true;
}
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You can also have a look into the ASCII table

Depending on this you can write a method:

private boolean isNumber(char a) {
    int i = a;
    if(i >= 48 && i <=57)
        return true;
    else 
        return false;
}

// now you can look by a String

private void checkString() {
    String x = "abcd123fx ";

    for(char counter : x.toCharArray())
        System.out.println(isNumber(counter));
}
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Why downvote this? I just wanted to show him, that he can also work with the ascii Table – Kevin Esche Jan 8 '13 at 10:07
    
who ever down-voted it doesn't understand the code so I gave you +1 to make it up for that. This is good code, btw. – Abraham Jan 8 '13 at 10:23

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