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I have several strings in the rough form:

[some text] [some number] [some more text]

I want to extract the text in [some number] using the Java Regex classes.

I know roughly what regular expression I want to use (though all suggestions are welcome). What I'm really interested in are the Java calls to take the regex string and use it on the source data to produce the value of [some number].

EDIT: I should add that I'm only interested in a single [some number] (basically, the first instance). The source strings are short and I'm not going to be looking for multiple occurrences of [some number].

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6  
...and now I'm off to research. Let's see if SO can get an answer for me before I figure it out myself. :-P –  Craig Walker Oct 25 '08 at 21:42

11 Answers 11

up vote 133 down vote accepted

Try:

Pattern p = Pattern.compile("^[a-zA-Z]+([0-9]+).*");
Matcher m = p.matcher("Testing123Testing");

if (m.find()) {
    System.out.println(m.group(1));
}
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35  
Don't forget to reuse Patter object. Compiling of patter take huge amount of time. –  Rastislav Komara Oct 26 '08 at 11:32
10  
Agreed. Usually I'd define the pattern as a private static final Pattern PATTERN = Pattern.compile("..."); But that's just me. –  Allain Lalonde Oct 27 '08 at 13:42
3  
we can simply use Pattern p = Pattern.compile("\\d+"); –  javaMan Nov 14 '11 at 1:05
7  
Without explanation this is a poor answer. –  Martin Spamer May 24 '13 at 14:04
    
You may also reuse the Matcher. Call the Matcher's reset() method between each use. If you are sharing the matcher across multiple concurrent threads you should synchronize the operation. –  Marquez May 28 at 20:26

Allain basically has the java code, so you can use that. However, his expression only matches if your numbers are only preceded by a stream of word characters.

"(\\d+)"

should be able to find the first string of digits. You don't need to specify what's before it, if you're sure that it's going to be the first string of digits. Likewise, there is no use to specify what's after it, unless you want that. If you just want the number, and are sure that it will be the first string of one or more digits then that's all you need.

If you expect it to be offset by spaces, it will make it even more distinct to specify `

"\\s+(\\d+)\\s+"

might be better.

If you need all three parts, this will do:

"(\\D+)(\\d+)(.*)"

EDIT The Expressions given by Allain and Jack suggest that you need to specify some subset of non-digits in order to capture digits. If you tell the regex engine you're looking for \d then it's going to ignore everything before the digits. If J or A's expression fits your pattern, then the whole match equals the input string. And there's no reason to specify it. It probably slows a clean match down, if it isn't totally ignored.

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you can test Axemans' hypothesis by running a sample test and checking the performance of his vs. A/J solution. –  anjanb Oct 26 '08 at 0:16
    
Don't you need to specify the beginning and end of the string. Otherwise things like 124xxx123xxx would be matched even though it doesn't fit into his syntax? Or are ^ and $ implicit? –  Allain Lalonde Oct 26 '08 at 12:44
    
Allain, yours would fail as well. You and Jack make an assumption that non-digit characters will precede the digits. They either do or they don't. In which case, none of these expressions will parse this line. I repeat that as specified, the pattern for the digits is enough. –  Axeman Oct 26 '08 at 16:10
public class Regex1 {
    public static void main(String[]args) {
        Pattern p = Pattern.compile("\\d+");
        Matcher m = p.matcher("hello1234goodboy789very2345");
        while(m.find()) {
            System.out.println(m.group());
        }
    }
}

Output:

1234
789
2345
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2  
This is a good answer! –  mat_boy Apr 12 '13 at 7:42

In Java 1.4 and up:

String input = "...";
Matcher matcher = Pattern.compile("[^0-9]+([0-9]+)[^0-9]+").matcher(input);
if (matcher.find()) {
    String someNumberStr = matcher.group(1);
    // if you need this to be an int:
    int someNumberInt = Integer.parseInt(someNumberStr);
}
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In addition to Pattern, the Java String class also has several methods that can work with regular expressions, in your case the code will be:

"ab123abc".replaceFirst("\\D*(\\d*).*", "$1")

where \\D is a non-digit character.

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Slick. I didn't know about this. Since when? –  Allain Lalonde Nov 27 '12 at 14:53

This function collect all matching sequences from string. In this example it takes all email addresses from string.

    public List<String> GetAllEmails(String a_Value)
{
    final String EMAIL_PATTERN = "[_A-Za-z0-9-\\+]+(\\.[_A-Za-z0-9-]+)*@"
        + "[A-Za-z0-9-]+(\\.[A-Za-z0-9]+)*(\\.[A-Za-z]{2,})";

    List<String> result = null;

    Matcher m =  Pattern.compile(EMAIL_PATTERN).matcher(a_Value);

    if (m.find())
    {
        result = new ArrayList<String>();
        result.add(m.group());

        while(m.find())
        {
            result.add(m.group());
        }
    }
    return result;
}

For a_Value = "adf@gmail.com, alamakota@interia.pl, chujtam@ofofofo.pl, <dzwignia@osiem.osiem>>>> lalala@srutututu.pl" it will create List of 5 elements.

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Look you can do it using StringTokenizer

String str = "as:"+123+"as:"+234+"as:"+345;
StringTokenizer st = new StringTokenizer(str,"as:");

while(st.hasMoreTokens())
{
  String k = st.nextToken();    // you will get first numeric data i.e 123
  int kk = Integer.parseInt(k);
  System.out.println("k string token in integer        " + kk);

  String k1 = st.nextToken();   //  you will get second numeric data i.e 234
  int kk1 = Integer.parseInt(k1);
  System.out.println("new string k1 token in integer   :" + kk1);

  String k2 = st.nextToken();   //  you will get third numeric data i.e 345
  int kk2 = Integer.parseInt(k2);
  System.out.println("k2 string token is in integer   : " + kk2);
}

Since we are taking these numeric data into three different variables we can use this data anywhere in the code (for further use)

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How about [^\\d]*([0-9]+[\\s]*[.,]{0,1}[\\s]*[0-9]*).* I think it would take care of numbers with fractional part. I included white spaces and included , as possible separator. I'm trying to get the numbers out of a string including floats and taking into account that the user might make a mistake and include white spaces while typing the number.

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Try doing something like this:

Pattern p = Pattern.compile("^.+(\\d+).+");
Matcher m = p.matcher("Testing123Testing");

if (m.find()) {
    System.out.println(m.group(1));
}
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-1. Because .+ greedily consumes characters, \d+ only captures the "3" from "123". Also, inside string literals, you need to escape the backslash (your example will not compile). –  Bart Kiers Apr 5 '11 at 14:16

Sometimes you can use simple .split("REGEXP") method available in java.lang.String. For example:

String input = "first,second,third";

//To retrieve 'first' 
input.split(",")[0] 
//second
input.split(",")[1]
//third
input.split(",")[2]
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if you are reading from file then this can help you

              try{
             InputStream inputStream = (InputStream) mnpMainBean.getUploadedBulk().getInputStream();
             BufferedReader br = new BufferedReader(new InputStreamReader(inputStream));
             String line;
             //Ref:03
             while ((line = br.readLine()) != null) {
                if (line.matches("[A-Z],\\d,(\\d*,){2}(\\s*\\d*\\|\\d*:)+")) {
                     String[] splitRecord = line.split(",");
                     //do something
                 }
                 else{
                     br.close();
                     //error
                     return;
                 }
             }
                br.close();

             }
         }
         catch (IOException  ioExpception){
             logger.logDebug("Exception " + ioExpception.getStackTrace());
         }
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