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So I have a bunch of strings in records that include the '/' character, eg:

RECORD_NAME
Foo bar
Foo/bar
Fo/o/bar

And several million records.

I'm wanting to say, count the number of records with 2 '/' characters.

So to look for one, I'd do, say:

select count(*) from my_table where record_name like '%[/]%'

Which would presumably get all the ones with one '/' in there.

How do I go about counting the ones with say, two forward slashes? Can you include regular expressions in a SQL query?

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up vote 4 down vote accepted

this should work:

select count(*) from my_table where record_name like '%/%/%' and record_name not like '%/%/%/%'

This way you will always include the rows with two //, but if got three or more, the not like will avoid them

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So for 100, I'd have to do '%/%/%/........' and not like ... 99 times ? – Mark Mayo Aug 24 '12 at 17:53
2  
OHH....the 3 /s are obviously also in the 4 or more, nice, I see :) – Mark Mayo Aug 24 '12 at 17:53
1  
yup, will avoid all with three or more / :) – Gonzalo.- Aug 24 '12 at 17:54

Hard to determine exactly what you're trying to find, but if you're trying to distinguish rows that have 1, 2, or n / characters:

DECLARE @x TABLE(y VARCHAR(32));

INSERT @x SELECT 'Foo bar0'
UNION ALL SELECT 'Foo/bar1'
UNION ALL SELECT 'Fo/o/bar2'
UNION ALL SELECT 'Fo/obar1'
UNION ALL SELECT 'Fo/o//bar3';

;WITH x(length) AS
(
  SELECT LEN(y) - LEN(REPLACE(y, '/', ''))
  FROM @x WHERE y LIKE '%[/]%'
)
SELECT length, [count] = COUNT(*) 
  FROM x GROUP BY length;

Results:

length  count
------  -----
1       2
2       1
3       1
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