Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to get the nth element in a comma separated string using SQL in Oracle.

I have the following so far..

SELECT regexp_substr('100016154,5101884LT00001,,,,,100000010892100000012655,L,SEI,5101884LT00001,1,SL,3595.03,00,2,N,N,G,N','[^,]+',1,7)
FROM dual;

but it doesn't work when the element is empty i.e. ,, can anyone help?

share|improve this question
4  
When you see CSV or otherwise serialized values in an RDBMS you know something's not right. –  NullUserException Sep 9 '11 at 14:41
2  
@NullUserException, good point. Unfortunately I've come across it too many times :-( –  Ollie Sep 9 '11 at 14:44

4 Answers 4

up vote 4 down vote accepted

If your delimited values are always alphanumeric in between the commas then you could try:

SELECT REGEXP_SUBSTR( <delimied_string>, '[[:alnum:]]{0,},', 1, 7 )
  FROM dual;

To get the seventh value (including the trailing comma). If it is empty you just get the trailing comma (which you can easily remove).

Obviously, if you want a value other than the seventh then change the fourth parameter value to whichever nth occurrance you want e.g.

SELECT REGEXP_SUBSTR( <delimied_string>, '[[:alnum:]]{0,},', 1, <nth occurance> )
  FROM dual;

EDIT: As I love REGEX here is a solution that also removes the trailing comma

SELECT REPLACE(
          REGEXP_SUBSTR(<delimied_string>, '[[:alnum:]]{0,},', 1, <nth>), 
          ','
       )
  FROM dual;

hope it helps

share|improve this answer
    
+1, this works. –  DCookie Sep 9 '11 at 15:33

You can do it with a little trick: first replacing all commas by a comma followed by a space, and afterwards skip that extra leading space:

SQL> with data as
  2  ( select '100016154,5101884LT00001,,,,,100000010892100000012655,L,SEI,5101884LT00001,1,SL,3595.03,00,2,N,N,G,N' txt
  3      from dual
  4  )
  5  select regexp_substr(txt,'[^,]+',1,7)                             seventh_element_wrong
  6       , replace(txt,',',', ')                                      with_extra_space_after_comma
  7       , regexp_substr(replace(txt,',',', '),'[^,]+',1,7)           seventh_element_leading_space
  8       , substr(regexp_substr(replace(txt,',',', '),'[^,]+',1,7),2) the_seventh_element
  9    from data
 10  /

S WITH_EXTRA_SPACE_AFTER_COMMA
- ----------------------------------------------------------------------------------------------------------------------
SEVENTH_ELEMENT_LEADING_S THE_SEVENTH_ELEMENT
------------------------- ------------------------
1 100016154, 5101884LT00001, , , , , 100000010892100000012655, L, SEI, 5101884LT00001, 1, SL, 3595.03, 00, 2, N, N, G, N
 100000010892100000012655 100000010892100000012655

Regards,
Rob.

share|improve this answer

Unless you're stuck on regular expressions, this works as well:

WITH q AS (
SELECT '100016154,5101884LT00001,,,,,100000010892100000012655,L,SEI,5101884LT00001,1,SL,3595.03,00,2,N,N,G,N' thestring FROM dual
)
SELECT SUBSTR(thestring, INSTR(thestring,',',1,6)+1, 
                         INSTR(thestring,',',1,7)-INSTR(thestring,',',1,6)-1) "The Element"
  FROM q;

The Element
------------------------
100000010892100000012655

Another possibility. You have not specified what the source of your data is. Could you possibly use an external table to read your input source and process it via SQL?

share|improve this answer
    
would there be an overhead in calling INSTR three times in the statement as opposed to calling REGEXP_SUBSTR only once? (I realise the length of the delimited string hasn't been specified and would be a factor). –  Ollie Sep 9 '11 at 15:14
    
@Ollie, it might, only by measuring the results would you know for sure. REGEXP_* functions are not without their own overhead issues. –  DCookie Sep 9 '11 at 15:25
SELECT rtrim(regexp_substr('100016154,5101884LT00001,,,,,100000010892100000012655,L,SEI,5101884LT00001,1,SL,3595.03,00,2,N,N,G,N','[^,]{0,}[,]?',1,7),',')
FROM dual;
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.