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can someone help me to write a java regex to retrieve a value from the following string please?

XX0001  15NOV XXX SELECTED RAX                                       AXXXXX DXXXXXXXXX           REF NBR  002            SSSS 

I wanted to extract the value 002. All the strings / characters before 002 are fixed length and properly padded with trailing space (if req.). could have any string/numeric/special displayable characters.

I am looking for something like ... get 002 from that position ignoring whatever before. ?

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Well, what have you got so far? –  mdm Dec 12 '11 at 16:40
1  
What language? You don't need a regex. If the position is fixed, you just need to get a substring of length 3 starting from a certain position. –  Jonathan M Dec 12 '11 at 16:42
    
@arungnair, OK, I saw your comment below in npinti's answer. But I don't understand. Why do you need to use a regex for this? Is this homework? –  Jonathan M Dec 12 '11 at 20:58
    
Jonathan, No it is not homework. Its a requirement i am currently implementing and there is already a regEx based parser in place. And, I need to parse set of string for specfic values. Could have been done better with various ways, but currently regex is the only option i have. Thanks –  javaagn Dec 13 '11 at 9:02

4 Answers 4

Assuming that you want the last set of digits before the end of the string, you might want to do something like this:

^.*\\d{3}\\s+.{4}$

This should instruct the Regex Engine to start matching from the beginning of the string, match any characters and then, from the end, match 3 numbers, a space and any 4 characters.

Also, if you have fixed sizes and lengths, you can most likely get away with a .substring method, it is less complex.

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Sorry, I should have been bit more clear. As many suggested before java would be easy. But, i need to use an existing java regex framework and had to use that to build a parser regular expression pattern. So, java is not an option, so needed to write some regular expression to reach the position and take the numeric value. the bit, I am stuck with how to write a pattern to 'read 8 character block (number/chrs/special chrs), then read next 6 .. so on till i reach the 002 ? may be wrong approach ... –  javaagn Dec 12 '11 at 16:59
    
With regex you can start reading from the end, which is what the regex I propose does. –  npinti Dec 12 '11 at 19:14

What language?

If javascript:

myCode=myString.substring(56,58);

or

myCode=myString.substr(56,3);

If PHP:

$myCode=substr($myString,56,3);

This simpler option is preferable to regex because it is faster. You can use this because you're working with fixed length strings.

EDIT: Just saw your edit referencing Java. So in Java:

String myCode = myString.substring(56,59);
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You don't need regex to do that. Just use the String method substring:

String myString = originalString.substring(106,109); // myString = "002"

106 is the begin index, and 109 the end index - 1. To simply get the first, just take the length of the original string just before the number you want to get, for instance:

System.out.println("XX0001  15NOV XXX SELECTED RAX                                       AXXXXX DXXXXXXXXX           REF NBR  ".length());
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In Java

string.substring(56,59);
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So he edits his original question and I get downvoted because my answer no longer applies. Seems stupid... –  Danny Dec 12 '11 at 18:24

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