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I am trying to fetch an id from an oracle table. It's something like TN0001234567890345. What I want is to sort the values according to the right most 10 positions (e.g. 4567890345). I am using Oracle 11g. Is there any function to cut the rightmost 10 places in Oracle SQL ?

Thanks in advance

tismon

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Thanks a lot codaddict and Peter G for helping me. Its is working fine now :) –  tismon Oct 8 '10 at 7:34

2 Answers 2

You can use SUBSTR function as:

select substr('TN0001234567890345',-10) from dual;

Output:

4567890345
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3  
+1. Also, the third parameter is not required: substr('TN0001234567890345',-10) yields the same result. –  Jeffrey Kemp Oct 8 '10 at 9:15
    
@Jeffrey: Thanks for pointing. –  codaddict Oct 10 '10 at 6:40

Another way of doing it though more tedious. Use the REVERSE and SUBSTR functions as indicated below:

SELECT REVERSE(SUBSTR(REVERSE('TN0001234567890345'), 1, 10)) FROM DUAL;

The first REVERSE function will return the string 5430987654321000NT. The SUBSTR function will read our new string 5430987654321000NT from the first character to the tenth character which will return 5430987654. The last REVERSE function will return our original string minus the first 8 characters i.e. 4567890345

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Please don't do this. It's a waste. –  Barett Aug 15 '14 at 16:00
    
Why would you do this ? –  Bibz Aug 24 at 14:22

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