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I have a column with values like:

1492966EMAIL1ABCDEFGHIJK12/22/2012 04:20:35

I want to replace the whole part after EMAIL1 in the column and this has to be done for more than 500000 rows. The problem is that the number of digits before EMAIL1 is not common in all the rows, but the value EMAIL1 is there in all the rows. I am not able to find the right function to go about this as I have tried using substr and trim, but I am not able to get the right query for this.

Can someone please tell me how this can be achieved in Oracle SQL? Let me know if more details are needed on the same.

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4 Answers 4

up vote 0 down vote accepted

It seems like you can use the functions REPLACE(), SUBSTR() and, INSTR() in the following:

select 
  replace(yourcol, substr(yourcol, instr(yourcol, 'EMAIL1')+6), '') newCol
from yourtable

See SQL Fiddle with Demo

Your final value will be:

|        NEWCOL |
-----------------
| 1492966EMAIL1 |

Then if you were to use this in a UPDATE statement, the query would be:

update yourtable
  set yourcol = replace(yourcol, substr(yourcol, instr(yourcol, 'EMAIL1')+6), '');

See SQL Fiddle with Demo

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this kind of looks fine..but its giving me the part before the EMAIL1...is it possible to get (and replace) the part after EMAIL1 as i want the data till EMAIL1 to be intact..only the part after that needs to be changed –  Sid Dec 22 '12 at 12:28
    
@Sid if it is giving you the part before the EMAIL1, then you can easily replace it by changing the empty string to what you want -- see this demo -- sqlfiddle.com/#!4/e2a0a/14 In my original answer, I was just replacing the stuff after with an empty string –  bluefeet Dec 22 '12 at 12:30
    
yes..it looks fine i guess..i will replace the empty string with the data i want..just confirming if the update statement given by you would work or not? –  Sid Dec 22 '12 at 12:37
    
@Sid yes the update statement will work, just replace the empty string with the value you want –  bluefeet Dec 22 '12 at 12:38
    
i will try this out and get back to u..as its a huge table, the update would take some time –  Sid Dec 22 '12 at 12:41

This will exactly do your purpose,

Select SUBSTR(val,1,instr(val,'EMAIL1')+5) from table1

fiddle_demo

Get the string after 'EMAIL1' and replace it required string,

Select replace(SUBSTR(val,instr(val,'EMAIL1')+5),
'String you want to replace','string that replaces')
from table1

demo

update table1 set val=(Select replace(SUBSTR(val,instr(val,'EMAIL1')+5),
'String you want to replace','string that replaces') from table1)
where lower(val) like '%email1%';

update_demo

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This method is simple and easy :) –  Mari Dec 22 '12 at 12:15
    
can u pls explain this to me..difference between 'column' and 'my column'..?? –  Sid Dec 22 '12 at 12:17
    
what 'column' and 'my column' are you referring to? They are just examples. Did you see my fiddle_demo link, there I have demonstrated your requirement. Pls ask for more help :) –  Mari Dec 22 '12 at 12:19
    
@Sid Is my solution is working? –  Mari Dec 22 '12 at 12:22
    
uh..the query looks fine..but i dont want the data before EMAIL1..i want the data after that to be replaced by something else.. –  Sid Dec 22 '12 at 12:35

i hope your requirement is to concatenate a string after email1..for this sub-string position till email1 and concatenation with your required string ..

select SUBSTR(column_name,1,INSTR(column_name,'EMAIL1')+5)||'string' from table1
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thank u..the query is almost similar to the one i used above provided by bluefeet.. –  Sid Dec 22 '12 at 23:44
    
ok..you are welcome.. –  GKV Dec 23 '12 at 3:14
  • Use INSTR function to find position of occurence of string EMAIL1 .
  • Select substring starting from beginning of original string upto starting position of EMAIL1 plus 6 characters . 6 is length of EMAIL1 substring.

If you want to select in this manner do

SELECT substr( column_name, 1, instr(column_name,'EMAIL1')+6)

If you want to update column values

UPDATE <table>
SET column_name = substr( column_name, 1, instr(column_name,'EMAIL1')+6)
share|improve this answer
    
i tried that..thing is that wen i use instr, it gives me an error saying subquery returns more than one row: select substr ( column_name, (select instr(column_name, 'L1') + 2 from table_name)) –  Sid Dec 22 '12 at 12:18
    
There is no need of inner select...no select before instr..substr() function works on one value at a time , your inner select is returning many rows and hence the error –  mmhasannn Dec 22 '12 at 12:23
    
i dont want to change the column name..i want to change the data..ie the rows only!! –  Sid Dec 22 '12 at 12:29
    
ofcourse ! thats what it will do..column_name stores the value in your table , its the values on which the function will work... –  mmhasannn Dec 22 '12 at 12:31
    
thanks for ur help!! –  Sid Dec 22 '12 at 23:42

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