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I am writing a query in Oracle.

I want to get a string from the right hand side but the string length is dynamic.

Ex:

299123456789

I want to get 123456789

substr(PHONE_NUMBERS,-X,Y)

X is different for each record.

I tried this:

substr(PHONE_NUMBERS,-length(PHONE_NUMBERS),Y)

and it didn't work..

How can I write this query?

Thanks.

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2  
"and it didn't work". Sorry but we are not telepathic. You need to give us more details. How didn't it work? Describe the behaviour, including any error messages. Also give us some sample data (what is CONT_PHONE_NUMBERS?). Help us to help you. –  APC Aug 9 '10 at 14:18
    
sorry, column name is PHONE_NUMBERS –  Jack Aug 9 '10 at 14:44
1  
So, what governs the offset? –  APC Aug 9 '10 at 14:49
    
Actually I solved the problem with Reverse function. I curios is there any function that retrieve data from right hand side? For example : 9 characters from right side of string.. –  Jack Aug 9 '10 at 14:55

7 Answers 7

SQL> select substr('123456',-1,6) from dual;

S
-
6

SQL> select substr('123456',-6,6) from dual;

SUBSTR
------
123456

SQL> select substr('123456',-7,6) from dual;

S
-

If you watch above statements, 3 query gives null value as -7 > length('123456').

So check the length of CONT_PHONE_NUMBERS and PHONE_NUMBERS

Hope this helps you

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I dont know the length of PHONE_NUMBERS. Each record has different length. –  Jack Aug 9 '10 at 14:45
    
@Jack, Bharat's answer will work regardless of the length of the data. A negative argument for the second parameter of SUBSTR counts from the end of the string. –  Jeffrey Kemp Aug 10 '10 at 7:54
    
@Jeffrey I know it, but length of the string is different for each record, so I have to use length function or something like that for the negative argument –  Jack Aug 10 '10 at 14:05
    
@Jack: Can you post your query and the output of that query –  Bharat Aug 10 '10 at 14:23
    
ok. I solved. Solution: substr(PHONE_NUMBERS,length(PHONE_NUMBERS)-9,9) –  Jack Aug 10 '10 at 14:28
SQL> select substr('999123456789', greatest (-9, -length('999123456789')), 9) as value from dual;

VALUE
---------
123456789

SQL> select substr('12345', greatest (-9,  -length('12345')), 9) as value from dual;

VALUE
----
12345

The call to greatest (-9, -length(string)) limits the starting offset either 9 characters left of the end or the beginning of the string.

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greatest function returns greatest number.. there is no relevance in this case.. –  Jack Aug 10 '10 at 6:55
    
As per Adam's answer, the greatest prevents the negative offset being longer than the string - i.e. substr('this string',-9) will give the 9 rightmost characters of the string BUT not if the string is SMALLER than 9 characters. The Greatest of (-9,-6) is -6. The greatest ensures it cannot offset longer than the length of the string. –  JulesLt Aug 10 '10 at 10:43
    
Couldn't edit so a second comment. This is the right answer. The greatest prevents the negative offset being longer than the string - i.e. substr('0123456789',-9) will give the 9 rightmost characters of the string. substr('0123456789',-12) gives NULL. The offset cannot be LONGER than the string. The GREATEST ensures this : GREATEST( -LENGTH('0123456789'),-12) is GREATEST(-10,-12) is -10. It ensures the offset is not longer than the string, which the first answer will not do. The first answer will work so long as string is always longer than X. –  JulesLt Aug 10 '10 at 10:50
    
Jack - the greatest () of two negative numbers is the least negative of the two. In the second of the two examples, greatest (-9, -5) evaluates to -5. –  Adam Musch Aug 10 '10 at 14:32

I just found out that regexp_substr() is perfect for this purpose :)

My challenge is picking the right-hand 16 chars from a reference string which theoretically can be everything from 7ish to 250ish chars long. It annoys me that substr( OurReference , -16 ) returns null when length( OurReference ) < 16. (On the other hand, it's kind of logical, too, that Oracle consequently returns null whenever a call to substr() goes beyond a string's boundaries.) However, I can set a regular expression to recognise everything between 1 and 16 of any char right before the end of the string:

regexp_substr( OurReference , '.{1,16}$' )

When it comes to performance issues regarding regular expressions, I can't say which of the GREATER() solution and this one performs best. Anyone test this? Generally I've experienced that regular expressions are quite fast if they're written neat and well (as this one).

Good luck! :)

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Simplest solution:

substr('299123456',-6,6)
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substr(PHONE_NUMBERS, length(PHONE_NUMBERS) - 3, 4)
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2  
Please elaborate on your answer. Add some english for clarification. –  hgwhittle Dec 12 '13 at 19:49

If you want to list last 3 chars, simplest way is

 select substr('123456',-3) from dual;
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the pattern maybe looks like this :

substr(STRING, ( length(STRING) - (TOTAL_GET_LENGTH - 1) ),TOTAL_GET_LENGTH)

in your case , it will like this :

substr('299123456789', (length('299123456789')-(9 - 1)),9)

substr('299123456789', (12-8),9)

substr('299123456789', 4,9)

the result ? of course '123456789'

the length is dynamic , voila :)

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