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I have a alhpanumeric string. I also have one number with me. The string will always start with this number. How do I separate this number from the string and get the remaining part of the string?

e.g. string => 21fgggg21.lkkk and number=> 21

result=> fgggg21.lkkk

or

string=> 215699898.55fff and number=> 2

result=> 15699898.55fff

Any hint would be appreciated. Thanks.

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3 Answers 3

up vote 3 down vote accepted
substr(string, length(number)+1)

or

regexp_replace(string, '^'||number)
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Thanks Egor! regexp_replace, worked like a charm. –  user613114 Mar 22 '13 at 7:25
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You could also use REGEXP_REPLACE. To remove '21' from the beginning of the string:

SELECT REGEXP_REPLACE('21fgggg21.lkkk', '^21') FROM DUAL;

REGEXP_REPLA
------------
fgggg21.lkkk

To remove '2' from the beginning of the string:

SELECT REGEXP_REPLACE('215699898.55fff', '^2') FROM DUAL;

REGEXP_REPLACE
--------------
15699898.55fff

By way of explanation...

  1. The caret (^) means "anchor to the beginning of the string".
  2. ^21 means "match 21 at the beginning of the string".
  3. REGEXP_REPLACE has an optional third parameter of what to replace the matched string with. Because you just want to remove the matched string you can omit the parameter, which replaces it with nothing.
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Thank you very much for nice explanation. I will mark your answer as helpful. But I will choose Egor's answer as final once, cause he had answered it before you. Thanks again. –  user613114 Mar 22 '13 at 7:25
    
Appreciate it! I'm also voting up Egor's answer because, well, it's excellent - it was more targeted than mine and gave two options. –  Ed Gibbs Mar 22 '13 at 13:04
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If you are just looking to select it, you can use a combination of substr and instr.

substr(string, instr(string, 'number') + 1, len(string))

Your result should basically be the string started after where the number is located.

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instr(string, 'number') would always be equal to 1 as string starts with number –  Egor Skriptunoff Mar 22 '13 at 5:37
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