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I wasn't sure how to search for the answer:

select orderid, REGEXP_REPLACE (
orderid, 
'^0+(.)',
'\1'
) as new_order_id
from orders 
where length('new_order_id') < 6

This returns nothing. But I know the data is there. If I do:

select orderid, REGEXP_REPLACE (
orderid, 
'^0+(.)',
'\1'
) as new_order_id
from orders 
order by order_id asc

I get order ids like 1, 2, 3...

So how can I get back the ones that are less than six? Does the where not operation on my returned regexp_replace data after the dataset is returned. Oracle if it matters.

Also, I believe my query is knocking out all leading zeros and replacing it with nothing. Not sure what the \1 means. Yes, I copied it. I thought it was putting nothing there, which is what I want. Just truncate leading zeros.

Thanks.

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3 Answers 3

up vote 2 down vote accepted

Try this:

select * from
(select orderid
      , regexp_replace(orderid,'^0+(.)','\1') new_order_id
   from orders)
where length(new_order_id) < 6;

You can avoid using regexp:

select orderid
     , ltrim(orderid,'0') new_order_id
  from orders
 where length(ltrim(orderid,'0'))<6
 order by 1;
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thank for the answer and the good query. I made it harder than it was. –  johnny Nov 28 '11 at 21:38

In your query,

where length('new_order_id') < 6

compares the length of the literal string 'new_order_id', not the value of the field new_order_id.

Try removing the quotes:

where length(new_order_id) < 6
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I had already tried that to no avail. invalid identifier –  johnny Nov 28 '11 at 18:23
    
@johnny: You might have to spell out the REGEXP_REPLACE(order_id, ...) in the WHERE clause. –  NPE Nov 28 '11 at 18:24
    
I don't think it likes replace in the where clause. –  johnny Nov 28 '11 at 18:56

The length of the string 'new_order_id' is never less than 6. Probably you will have to do the length(regexp_replace(...)) < 6 instead if oracle doesn't support using the output column name without quotes (I have no idea).

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