2

we have table where we log the details whenever user logs in to the application. we use below query to get the details which works fine

select username 
from table  
where username like 'abc%' 
order by timestamp desc

we get result

abcxyz

but when we put % at start of string it takes too much time and doesnt give any result.

select username 
from table  
where username like '%xyz' 
order by timestamp desc

or

select username 
from table  
where username like '%cx%' 
order by timestamp desc

Username column is indexed PFB details. column_position:1 column_length:512 CHAR_length:512 Descend:ACS

Can someone explain this behavior and how can I get the result for 2nd/3rd query?

4
  • It will have to do a table span - see the explain plan – Ed Heal Jan 17 '18 at 7:26
  • Put the explain plan here, as well as describe the indexes used on that table. – g00dy Jan 17 '18 at 7:27
  • 1
    Here is a list of english words- Find all with the pattern 'ben%' and all with pattern '%ben'. – miracle173 Jan 17 '18 at 8:06
  • Here is the Encyclopedia Britannica. Find all entries ending with '%ben'. – William Robertson Jan 17 '18 at 11:14
5

Your observations would be completely expected if the username column had an index on it. If it did have an index, then the following query could take advantage of that index when searching for matching user records:

select username from table where username like 'abc%' order by timestamp desc

The reason an index on username would help with the above LIKE expression is that a B-tree is built from left to right on the username.

On the other hand, an index on username would not be helpful for the following query:

select username from table where username like '%xyz' order by timestamp desc

In this case, the B-tree cannot help us to locate usernames ending in xyz. This is the case because such matching records could appear anywhere in the tree. Instead, a full table scan would probably be necessary.

For more information, you can try running explain on both of your queries.

5
  • thanks for the explanation, any way I can get results rapidly for this? Note: Indexing is enabled for this column – rohitrk89 Jan 19 '18 at 9:57
  • 1
    @rohitrk89 I'm not an expert in Oracle, and I don't know if it has a notion of a reverse index. One thing you could do would be to store the string in reverse as well in a separate column and index that. This would eat up some space, but then you could use LIKE 'xyz%' on the reversed string. – Tim Biegeleisen Jan 19 '18 at 10:01
  • Yea, as a work around I can think of that but before going for that I'll look for solution to this only. – rohitrk89 Jan 19 '18 at 13:29
  • I gave you an upvote. Or maybe you could open a new question; this one has been up for a while already. – Tim Biegeleisen Jan 19 '18 at 13:31
  • Yea, Thanks for your help so far but looking a way to I get a result faster on existing data without workaround. – rohitrk89 Jan 19 '18 at 14:13
0

The first example fetches all usernames that START with "abc", and the rest can be anything.

The second one selects all usernames that start with ANYTHING, so it has to perform full table scan (whether there's an index on USERNAME column or not). Why does it not return anything? Well, you have the data, we don't. From what you wrote, no username ends with lowercase xyz.

The same goes for the third SELECT.

If you frequently perform such a queries, consider using Oracle Text.

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