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I am using SQL and I would like to count the number of rows without a loop. I can't seem to get the "COUNT" keyword working but I know that in MySQL mysql_num_row does the trick. Is there a similar method to mysql_num_row in SQL?

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2 Answers 2

up vote 3 down vote accepted
SELECT COUNT(*) FROM tablename

This will count the number of rows/entries in the table "tablename"

For more info, check out the manual:

[EDIT] As Ken White suggested you can of course narrow down the resulting recordset by adding a WHERE-clause

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+1. Just as an addition, you can qualify with a WHERE clause also: SELECT COUNT(*) FROM tablename WHERE SomeCondition – Ken White Mar 30 '11 at 19:02

Given ANY query

select ..
from .. multiple ..
where .. group by.. order by..
limit ..

Wrap it in a subquery, and COUNT(*) over it

select count(*) from (

select ..
from .. multiple ..
where .. group by.. order by..
limit ..

) X

The ) X bit is to give it an alias name, as required by syntax. Of course, if your original query ended with a ;, drop it from the subquery.

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Ummm... Why would you want to make a single query a pair of queries, when you can just do the filtering in the count() query itself? Try both, and look at the plan for them. (Not down-voting, because it's technically correct, but it's not a good idea IMO.) – Ken White Mar 30 '11 at 21:49
@Ken - this is a general approach. Consider a complex query starting with SELECT a, b, sum(c), min(D) .... group by a,b - here do you put the COUNT(*)? FYI in PHP, mysql_num_rows works on any query, hence a generalized answer to match. – RichardTheKiwi Mar 30 '11 at 22:00
@Ken: Some queries may not be easily changed so the counting is done on the query itself. I guess if they are pretty complex with subqueries as fields or with DISTINCT. I'm sure Richard can supply an example. – ypercube Mar 30 '11 at 22:04
Thanks for clarifying your reasoning; I'm not MySQL/PHP qualified ;). I probably would add that as part of the answer. @ypercube: Agreed. Both of you: I didn't see the need for adding the complexity based on the question asked. :) – Ken White Mar 31 '11 at 0:48

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