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I'm writing a program where the user enters a String in the following format:

"What is the square of 10?"
  1. I need to check that there is a number in the String
  2. and then extract just the number.
  3. If i use .contains("\\d+") or .contains("[0-9]+"), the program can't find a number in the String, no matter what the input is, but .matches("\\d+")will only work when there is only numbers.

What can I use as a solution for finding and extracting?

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If you want to extract the first number, not just the digit from the input string, see my answer. –  Sajal Dutta Sep 3 '13 at 11:44
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9 Answers

try this

str.matches(".*\\d+.*");
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Pattern p = Pattern.compile("(([A-Z].*[0-9])");
Matcher m = p.matcher("TEST 123");
boolean b = m.find();
System.out.println(b);
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Try the following pattern:

.matches("[a-zA-Z ]*\\d+.*")
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However if the user is polite and says "please" this will fail. Plus in OP's example, there is a "?" to account for. –  christopher Sep 3 '13 at 11:19
    
I've fixed it. :) –  kocko Sep 3 '13 at 11:19
    
Are you sure you've fixed it? –  christopher Sep 3 '13 at 11:23
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You can try this

String text = "ddd123.0114cc";
    String numOnly = text.replaceAll("\\p{Alpha}","");
    try {
        double numVal = Double.valueOf(numOnly);
        System.out.println(text +" contains numbers");
    } catch (NumberFormatException e){
        System.out.println(text+" not contains numbers");
    }     
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As you don't only want to look for a number but also extract it, you should write a small function doing that for you. Go letter by letter till you spot a digit. Ah, just found the necessary code for you on stackoverflow: find integer in string. Look at the accepted answer.

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If you want to extract the first number out of the input string, you can do-

public static String extractNumber(final String str) {                

    if(str == null || str.isEmpty()) return "";

    StringBuilder sb = new StringBuilder();
    boolean found = false;
    for(char c : str.toCharArray()){
        if(Character.isDigit(c)){
            sb.append(c);
            found = true;
        } else if(found){
            // If we already found a digit before and this char is not a digit, stop looping
            break;                
        }
    }

    return sb.toString();
}

Examples:

For input "123abc", the method above will return 123.

For "abc1000def", 1000.

For "555abc45", 555.

For "abc", will return an empty string.

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up vote 0 down vote accepted

The solution I went with looks like this:

    Pattern numberPat = Pattern.compile("\\d+");
    Matcher matcher1 = numberPat.matcher(line);

    Pattern stringPat = Pattern.compile("What is the square of", Pattern.CASE_INSENSITIVE);
    Matcher matcher2 = stringPat.matcher(line);

    if (matcher2.find())
    {

        if (matcher1.find())
        {
            int number = Integer.parseInt(matcher1.group());

            pw.println(number + " squared = " + (number * number));
        }
    }

I'm sure it's not a perfect solution, but it suited my needs. Thank you all for the help. :)

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I think it is faster than regex .

public final boolean containsDigit(String s) {
    boolean containsDigit = false;

    if (s != null && !s.isEmpty()) {
        for (char c : s.toCharArray()) {
            if (containsDigit = Character.isDigit(c)) {
                break;
            }
        }
    }

    return containsDigit;
}
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I am sorry I didn't see extracting.If you want to extract the number in string , you can easily edit this code. –  Melih Altıntaş Sep 3 '13 at 12:03
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The code below is enough for "Check if a String contains numbers in Java"

Pattern p = Pattern.compile("([0-9])");
Matcher m = p.matcher("Here is ur string");

if(m.find()){
    System.out.println("Hello "+m.find());
}
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