18

I'm new to regular expressions, and was wondering how I could get only the first number in a string like 100 2011-10-20 14:28:55. In this case, I'd want it to return 100, but the number could also be shorter or longer.

I was thinking about something like [0-9]+, but it takes every single number separately (100,2001,10,...)

Thank you.

  • 3
    Do you know the string always starts with a number or do you want the first number from any string? If it's the former, this is not a good use of regular expressions. – Jason McCreary Oct 21 '11 at 19:10
  • I know the string always starts with a number. It always follows the pattern I gave. (value date time) – ratsimihah Oct 21 '11 at 20:43
  • Why not just look for the first space? – David R Tribble Oct 21 '11 at 22:35
5

Try this to match for first number in string (which can be not at the beginning of the string):

    String s = "2011-10-20 525 14:28:55 10";
    Pattern p = Pattern.compile("(^|\\s)([0-9]+)($|\\s)");
    Matcher m = p.matcher(s);
    if (m.find()) {
        System.out.println(m.group(2));
    }
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21
/^[^\d]*(\d+)/

This will start at the beginning, skip any non-digits, and match the first sequence of digits it finds

EDIT: this Regex will match the first group of numbers, but, as pointed out in other answers, parseInt is a better solution if you know the number is at the beginning of the string

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6

Just

([0-9]+) .* 

If you always have the space after the first number, this will work

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4

Assuming there's always a space between the first two numbers, then

preg_match('/^(\d+)/', $number_string, $matches);
$number = $matches[1]; // 100

But for something like this, you'd be better off using simple string operations:

$space_pos = strpos($number_string, ' ');
$number = substr($number_string, 0, $space_pos);

Regexs are computationally expensive, and should be avoided if possible.

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3

the below code would do the trick.

Integer num = Integer.parseInt("100 2011-10-20 14:28:55");
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  • 1
    +1 pending if the string always starts with a number... Also it's Integer.parseInt() :) – Jason McCreary Oct 21 '11 at 19:10
  • 1
    This is a more straightforward solution based on the user's confirmation that the string always starts with the desired number. For the kids at home, no need for a regular expression. Compare this code to the answer, nuff said. – Jason McCreary Oct 22 '11 at 0:30
  • 4
    NumberFormatException is thrown in this case. – Vic May 21 '13 at 20:23
2

This string extension works perfectly, even when string not starts with number. return 1234 in each case - "1234asdfwewf", "%sdfsr1234" "## # 1234"

    public static string GetFirstNumber(this string source)
    {
        if (string.IsNullOrEmpty(source) == false)
        {
            // take non digits from string start
            string notNumber = new string(source.TakeWhile(c => Char.IsDigit(c) == false).ToArray());

            if (string.IsNullOrEmpty(notNumber) == false)
            {
                //replace non digit chars from string start
                source = source.Replace(notNumber, string.Empty);
            }

            //take digits from string start
            source = new string(source.TakeWhile(char.IsDigit).ToArray());
        }
        return source;
    }
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1

[0-9] means the numbers 0-9 can be used the + means 1 or more times. if you use [0-9]{3} will get you 3 numbers

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1

Try ^(?'num'[0-9]+).*$ which forces it to start at the beginning, read a number, store it to 'num' and consume the remainder without binding.

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0
public static void main(String []args){
        Scanner s=new Scanner(System.in);
        String str=s.nextLine();
        Pattern p=Pattern.compile("[0-9]+");
        Matcher m=p.matcher(str);
        while(m.find()){
            System.out.println(m.group()+" ");

        }
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