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I need to get all numbers from a string like this:

"156234   something 567345 another thing 45789 anything"

The result should be a collection of numbers having:

156234, 567345, 45789

I tried @"\d+", but it will only give me 156234.

EDIT: The numbers are integers, however they can also occur like this "156234 something 567345 another thing 45789 anything2345". In this case I only need the integers i.e 156234, 567345, 45789 and not 156234, 567345, 45789,2345.

Also the integers which i dont want will always be preceed with a text for ex:anything2345.

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What type of numbers? Only integers, or can there be floating point number? Numbers larger than int? – vossad01 Nov 12 '12 at 18:53
Your regex matches the string example you have. Are you sure you're iterating over all the matches? – Brad Nov 12 '12 at 18:55

4 Answers 4

up vote 9 down vote accepted

Everything is ok with your regex, you just need to come through all the matches.

Regex regex = new Regex(@"\d+");

foreach (Match match in regex.Matches("156234 something 567345 another thing 45789 anything"))
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You want to split on the characters, not the digits. Use the capital D

string[] myStrings = Regex.Split(sentence, @"\D+");


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whast the reason for downvote? – IIIIIllllllllIlllllIIIIIIIIlll Nov 12 '12 at 18:58
Like the creativity of this solution +1 – Dima Nov 12 '12 at 19:01

If 2345 should not be matched in your revised sample string (156234 something 567345 another thing 45789 anything2345), you could use Dima's solution but with the regex:


This assures that the number is surrounded by word boundaries.

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This'z in java. You don't actually need a Regex.. just a normal replaceAll should do the trick for you! : For ex : You can strip off the Non-Digits, and then split and calculate the sum.

  public static int getSumOfNumbers(String s) {
    int sum = 0;
    String x = s.replaceAll("\\D+", " ");
    String[] a = x.split(" ");
    for(int i = 0; i < a.length; i++)
         sum += Integer.parseInt(a[i]);
    System.out.println(x + " : and sum is : "+sum);
    return sum;
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